1 /* 2 * CDDL HEADER START 3 * 4 * The contents of this file are subject to the terms of the 5 * Common Development and Distribution License (the "License"). 6 * You may not use this file except in compliance with the License. 7 * 8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9 * or http://www.opensolaris.org/os/licensing. 10 * See the License for the specific language governing permissions 11 * and limitations under the License. 12 * 13 * When distributing Covered Code, include this CDDL HEADER in each 14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15 * If applicable, add the following below this CDDL HEADER, with the 16 * fields enclosed by brackets "[]" replaced with your own identifying 17 * information: Portions Copyright [yyyy] [name of copyright owner] 18 * 19 * CDDL HEADER END 20 */ 21 22 /* 23 * Copyright 2006 Sun Microsystems, Inc. All rights reserved. 24 * Use is subject to license terms. 25 */ 26 /* Copyright (c) 1990 Mentat Inc. */ 27 28 #pragma ident "%Z%%M% %I% %E% SMI" 29 const char tcp_version[] = "%Z%%M% %I% %E% SMI"; 30 31 32 #include <sys/types.h> 33 #include <sys/stream.h> 34 #include <sys/strsun.h> 35 #include <sys/strsubr.h> 36 #include <sys/stropts.h> 37 #include <sys/strlog.h> 38 #include <sys/strsun.h> 39 #define _SUN_TPI_VERSION 2 40 #include <sys/tihdr.h> 41 #include <sys/timod.h> 42 #include <sys/ddi.h> 43 #include <sys/sunddi.h> 44 #include <sys/suntpi.h> 45 #include <sys/xti_inet.h> 46 #include <sys/cmn_err.h> 47 #include <sys/debug.h> 48 #include <sys/sdt.h> 49 #include <sys/vtrace.h> 50 #include <sys/kmem.h> 51 #include <sys/ethernet.h> 52 #include <sys/cpuvar.h> 53 #include <sys/dlpi.h> 54 #include <sys/multidata.h> 55 #include <sys/multidata_impl.h> 56 #include <sys/pattr.h> 57 #include <sys/policy.h> 58 #include <sys/priv.h> 59 #include <sys/zone.h> 60 61 #include <sys/errno.h> 62 #include <sys/signal.h> 63 #include <sys/socket.h> 64 #include <sys/sockio.h> 65 #include <sys/isa_defs.h> 66 #include <sys/md5.h> 67 #include <sys/random.h> 68 #include <netinet/in.h> 69 #include <netinet/tcp.h> 70 #include <netinet/ip6.h> 71 #include <netinet/icmp6.h> 72 #include <net/if.h> 73 #include <net/route.h> 74 #include <inet/ipsec_impl.h> 75 76 #include <inet/common.h> 77 #include <inet/ip.h> 78 #include <inet/ip_impl.h> 79 #include <inet/ip6.h> 80 #include <inet/ip_ndp.h> 81 #include <inet/mi.h> 82 #include <inet/mib2.h> 83 #include <inet/nd.h> 84 #include <inet/optcom.h> 85 #include <inet/snmpcom.h> 86 #include <inet/kstatcom.h> 87 #include <inet/tcp.h> 88 #include <inet/tcp_impl.h> 89 #include <net/pfkeyv2.h> 90 #include <inet/ipsec_info.h> 91 #include <inet/ipdrop.h> 92 #include <inet/tcp_trace.h> 93 94 #include <inet/ipclassifier.h> 95 #include <inet/ip_ire.h> 96 #include <inet/ip_ftable.h> 97 #include <inet/ip_if.h> 98 #include <inet/ipp_common.h> 99 #include <inet/ip_netinfo.h> 100 #include <sys/squeue.h> 101 #include <inet/kssl/ksslapi.h> 102 #include <sys/tsol/label.h> 103 #include <sys/tsol/tnet.h> 104 #include <sys/sdt.h> 105 #include <rpc/pmap_prot.h> 106 107 /* 108 * TCP Notes: aka FireEngine Phase I (PSARC 2002/433) 109 * 110 * (Read the detailed design doc in PSARC case directory) 111 * 112 * The entire tcp state is contained in tcp_t and conn_t structure 113 * which are allocated in tandem using ipcl_conn_create() and passing 114 * IPCL_CONNTCP as a flag. We use 'conn_ref' and 'conn_lock' to protect 115 * the references on the tcp_t. The tcp_t structure is never compressed 116 * and packets always land on the correct TCP perimeter from the time 117 * eager is created till the time tcp_t dies (as such the old mentat 118 * TCP global queue is not used for detached state and no IPSEC checking 119 * is required). The global queue is still allocated to send out resets 120 * for connection which have no listeners and IP directly calls 121 * tcp_xmit_listeners_reset() which does any policy check. 122 * 123 * Protection and Synchronisation mechanism: 124 * 125 * The tcp data structure does not use any kind of lock for protecting 126 * its state but instead uses 'squeues' for mutual exclusion from various 127 * read and write side threads. To access a tcp member, the thread should 128 * always be behind squeue (via squeue_enter, squeue_enter_nodrain, or 129 * squeue_fill). Since the squeues allow a direct function call, caller 130 * can pass any tcp function having prototype of edesc_t as argument 131 * (different from traditional STREAMs model where packets come in only 132 * designated entry points). The list of functions that can be directly 133 * called via squeue are listed before the usual function prototype. 134 * 135 * Referencing: 136 * 137 * TCP is MT-Hot and we use a reference based scheme to make sure that the 138 * tcp structure doesn't disappear when its needed. When the application 139 * creates an outgoing connection or accepts an incoming connection, we 140 * start out with 2 references on 'conn_ref'. One for TCP and one for IP. 141 * The IP reference is just a symbolic reference since ip_tcpclose() 142 * looks at tcp structure after tcp_close_output() returns which could 143 * have dropped the last TCP reference. So as long as the connection is 144 * in attached state i.e. !TCP_IS_DETACHED, we have 2 references on the 145 * conn_t. The classifier puts its own reference when the connection is 146 * inserted in listen or connected hash. Anytime a thread needs to enter 147 * the tcp connection perimeter, it retrieves the conn/tcp from q->ptr 148 * on write side or by doing a classify on read side and then puts a 149 * reference on the conn before doing squeue_enter/tryenter/fill. For 150 * read side, the classifier itself puts the reference under fanout lock 151 * to make sure that tcp can't disappear before it gets processed. The 152 * squeue will drop this reference automatically so the called function 153 * doesn't have to do a DEC_REF. 154 * 155 * Opening a new connection: 156 * 157 * The outgoing connection open is pretty simple. ip_tcpopen() does the 158 * work in creating the conn/tcp structure and initializing it. The 159 * squeue assignment is done based on the CPU the application 160 * is running on. So for outbound connections, processing is always done 161 * on application CPU which might be different from the incoming CPU 162 * being interrupted by the NIC. An optimal way would be to figure out 163 * the NIC <-> CPU binding at listen time, and assign the outgoing 164 * connection to the squeue attached to the CPU that will be interrupted 165 * for incoming packets (we know the NIC based on the bind IP address). 166 * This might seem like a problem if more data is going out but the 167 * fact is that in most cases the transmit is ACK driven transmit where 168 * the outgoing data normally sits on TCP's xmit queue waiting to be 169 * transmitted. 170 * 171 * Accepting a connection: 172 * 173 * This is a more interesting case because of various races involved in 174 * establishing a eager in its own perimeter. Read the meta comment on 175 * top of tcp_conn_request(). But briefly, the squeue is picked by 176 * ip_tcp_input()/ip_fanout_tcp_v6() based on the interrupted CPU. 177 * 178 * Closing a connection: 179 * 180 * The close is fairly straight forward. tcp_close() calls tcp_close_output() 181 * via squeue to do the close and mark the tcp as detached if the connection 182 * was in state TCPS_ESTABLISHED or greater. In the later case, TCP keep its 183 * reference but tcp_close() drop IP's reference always. So if tcp was 184 * not killed, it is sitting in time_wait list with 2 reference - 1 for TCP 185 * and 1 because it is in classifier's connected hash. This is the condition 186 * we use to determine that its OK to clean up the tcp outside of squeue 187 * when time wait expires (check the ref under fanout and conn_lock and 188 * if it is 2, remove it from fanout hash and kill it). 189 * 190 * Although close just drops the necessary references and marks the 191 * tcp_detached state, tcp_close needs to know the tcp_detached has been 192 * set (under squeue) before letting the STREAM go away (because a 193 * inbound packet might attempt to go up the STREAM while the close 194 * has happened and tcp_detached is not set). So a special lock and 195 * flag is used along with a condition variable (tcp_closelock, tcp_closed, 196 * and tcp_closecv) to signal tcp_close that tcp_close_out() has marked 197 * tcp_detached. 198 * 199 * Special provisions and fast paths: 200 * 201 * We make special provision for (AF_INET, SOCK_STREAM) sockets which 202 * can't have 'ipv6_recvpktinfo' set and for these type of sockets, IP 203 * will never send a M_CTL to TCP. As such, ip_tcp_input() which handles 204 * all TCP packets from the wire makes a IPCL_IS_TCP4_CONNECTED_NO_POLICY 205 * check to send packets directly to tcp_rput_data via squeue. Everyone 206 * else comes through tcp_input() on the read side. 207 * 208 * We also make special provisions for sockfs by marking tcp_issocket 209 * whenever we have only sockfs on top of TCP. This allows us to skip 210 * putting the tcp in acceptor hash since a sockfs listener can never 211 * become acceptor and also avoid allocating a tcp_t for acceptor STREAM 212 * since eager has already been allocated and the accept now happens 213 * on acceptor STREAM. There is a big blob of comment on top of 214 * tcp_conn_request explaining the new accept. When socket is POP'd, 215 * sockfs sends us an ioctl to mark the fact and we go back to old 216 * behaviour. Once tcp_issocket is unset, its never set for the 217 * life of that connection. 218 * 219 * IPsec notes : 220 * 221 * Since a packet is always executed on the correct TCP perimeter 222 * all IPsec processing is defered to IP including checking new 223 * connections and setting IPSEC policies for new connection. The 224 * only exception is tcp_xmit_listeners_reset() which is called 225 * directly from IP and needs to policy check to see if TH_RST 226 * can be sent out. 227 * 228 * PFHooks notes : 229 * 230 * For mdt case, one meta buffer contains multiple packets. Mblks for every 231 * packet are assembled and passed to the hooks. When packets are blocked, 232 * or boundary of any packet is changed, the mdt processing is stopped, and 233 * packets of the meta buffer are send to the IP path one by one. 234 */ 235 236 extern major_t TCP6_MAJ; 237 238 /* 239 * Values for squeue switch: 240 * 1: squeue_enter_nodrain 241 * 2: squeue_enter 242 * 3: squeue_fill 243 */ 244 int tcp_squeue_close = 2; 245 int tcp_squeue_wput = 2; 246 247 squeue_func_t tcp_squeue_close_proc; 248 squeue_func_t tcp_squeue_wput_proc; 249 250 /* 251 * This controls how tiny a write must be before we try to copy it 252 * into the the mblk on the tail of the transmit queue. Not much 253 * speedup is observed for values larger than sixteen. Zero will 254 * disable the optimisation. 255 */ 256 int tcp_tx_pull_len = 16; 257 258 /* 259 * TCP Statistics. 260 * 261 * How TCP statistics work. 262 * 263 * There are two types of statistics invoked by two macros. 264 * 265 * TCP_STAT(name) does non-atomic increment of a named stat counter. It is 266 * supposed to be used in non MT-hot paths of the code. 267 * 268 * TCP_DBGSTAT(name) does atomic increment of a named stat counter. It is 269 * supposed to be used for DEBUG purposes and may be used on a hot path. 270 * 271 * Both TCP_STAT and TCP_DBGSTAT counters are available using kstat 272 * (use "kstat tcp" to get them). 273 * 274 * There is also additional debugging facility that marks tcp_clean_death() 275 * instances and saves them in tcp_t structure. It is triggered by 276 * TCP_TAG_CLEAN_DEATH define. Also, there is a global array of counters for 277 * tcp_clean_death() calls that counts the number of times each tag was hit. It 278 * is triggered by TCP_CLD_COUNTERS define. 279 * 280 * How to add new counters. 281 * 282 * 1) Add a field in the tcp_stat structure describing your counter. 283 * 2) Add a line in tcp_statistics with the name of the counter. 284 * 285 * IMPORTANT!! - make sure that both are in sync !! 286 * 3) Use either TCP_STAT or TCP_DBGSTAT with the name. 287 * 288 * Please avoid using private counters which are not kstat-exported. 289 * 290 * TCP_TAG_CLEAN_DEATH set to 1 enables tagging of tcp_clean_death() instances 291 * in tcp_t structure. 292 * 293 * TCP_MAX_CLEAN_DEATH_TAG is the maximum number of possible clean death tags. 294 */ 295 296 #ifndef TCP_DEBUG_COUNTER 297 #ifdef DEBUG 298 #define TCP_DEBUG_COUNTER 1 299 #else 300 #define TCP_DEBUG_COUNTER 0 301 #endif 302 #endif 303 304 #define TCP_CLD_COUNTERS 0 305 306 #define TCP_TAG_CLEAN_DEATH 1 307 #define TCP_MAX_CLEAN_DEATH_TAG 32 308 309 #ifdef lint 310 static int _lint_dummy_; 311 #endif 312 313 #if TCP_CLD_COUNTERS 314 static uint_t tcp_clean_death_stat[TCP_MAX_CLEAN_DEATH_TAG]; 315 #define TCP_CLD_STAT(x) tcp_clean_death_stat[x]++ 316 #elif defined(lint) 317 #define TCP_CLD_STAT(x) ASSERT(_lint_dummy_ == 0); 318 #else 319 #define TCP_CLD_STAT(x) 320 #endif 321 322 #if TCP_DEBUG_COUNTER 323 #define TCP_DBGSTAT(x) atomic_add_64(&(tcp_statistics.x.value.ui64), 1) 324 #elif defined(lint) 325 #define TCP_DBGSTAT(x) ASSERT(_lint_dummy_ == 0); 326 #else 327 #define TCP_DBGSTAT(x) 328 #endif 329 330 tcp_stat_t tcp_statistics = { 331 { "tcp_time_wait", KSTAT_DATA_UINT64 }, 332 { "tcp_time_wait_syn", KSTAT_DATA_UINT64 }, 333 { "tcp_time_wait_success", KSTAT_DATA_UINT64 }, 334 { "tcp_time_wait_fail", KSTAT_DATA_UINT64 }, 335 { "tcp_reinput_syn", KSTAT_DATA_UINT64 }, 336 { "tcp_ip_output", KSTAT_DATA_UINT64 }, 337 { "tcp_detach_non_time_wait", KSTAT_DATA_UINT64 }, 338 { "tcp_detach_time_wait", KSTAT_DATA_UINT64 }, 339 { "tcp_time_wait_reap", KSTAT_DATA_UINT64 }, 340 { "tcp_clean_death_nondetached", KSTAT_DATA_UINT64 }, 341 { "tcp_reinit_calls", KSTAT_DATA_UINT64 }, 342 { "tcp_eager_err1", KSTAT_DATA_UINT64 }, 343 { "tcp_eager_err2", KSTAT_DATA_UINT64 }, 344 { "tcp_eager_blowoff_calls", KSTAT_DATA_UINT64 }, 345 { "tcp_eager_blowoff_q", KSTAT_DATA_UINT64 }, 346 { "tcp_eager_blowoff_q0", KSTAT_DATA_UINT64 }, 347 { "tcp_not_hard_bound", KSTAT_DATA_UINT64 }, 348 { "tcp_no_listener", KSTAT_DATA_UINT64 }, 349 { "tcp_found_eager", KSTAT_DATA_UINT64 }, 350 { "tcp_wrong_queue", KSTAT_DATA_UINT64 }, 351 { "tcp_found_eager_binding1", KSTAT_DATA_UINT64 }, 352 { "tcp_found_eager_bound1", KSTAT_DATA_UINT64 }, 353 { "tcp_eager_has_listener1", KSTAT_DATA_UINT64 }, 354 { "tcp_open_alloc", KSTAT_DATA_UINT64 }, 355 { "tcp_open_detached_alloc", KSTAT_DATA_UINT64 }, 356 { "tcp_rput_time_wait", KSTAT_DATA_UINT64 }, 357 { "tcp_listendrop", KSTAT_DATA_UINT64 }, 358 { "tcp_listendropq0", KSTAT_DATA_UINT64 }, 359 { "tcp_wrong_rq", KSTAT_DATA_UINT64 }, 360 { "tcp_rsrv_calls", KSTAT_DATA_UINT64 }, 361 { "tcp_eagerfree2", KSTAT_DATA_UINT64 }, 362 { "tcp_eagerfree3", KSTAT_DATA_UINT64 }, 363 { "tcp_eagerfree4", KSTAT_DATA_UINT64 }, 364 { "tcp_eagerfree5", KSTAT_DATA_UINT64 }, 365 { "tcp_timewait_syn_fail", KSTAT_DATA_UINT64 }, 366 { "tcp_listen_badflags", KSTAT_DATA_UINT64 }, 367 { "tcp_timeout_calls", KSTAT_DATA_UINT64 }, 368 { "tcp_timeout_cached_alloc", KSTAT_DATA_UINT64 }, 369 { "tcp_timeout_cancel_reqs", KSTAT_DATA_UINT64 }, 370 { "tcp_timeout_canceled", KSTAT_DATA_UINT64 }, 371 { "tcp_timermp_alloced", KSTAT_DATA_UINT64 }, 372 { "tcp_timermp_freed", KSTAT_DATA_UINT64 }, 373 { "tcp_timermp_allocfail", KSTAT_DATA_UINT64 }, 374 { "tcp_timermp_allocdblfail", KSTAT_DATA_UINT64 }, 375 { "tcp_push_timer_cnt", KSTAT_DATA_UINT64 }, 376 { "tcp_ack_timer_cnt", KSTAT_DATA_UINT64 }, 377 { "tcp_ire_null1", KSTAT_DATA_UINT64 }, 378 { "tcp_ire_null", KSTAT_DATA_UINT64 }, 379 { "tcp_ip_send", KSTAT_DATA_UINT64 }, 380 { "tcp_ip_ire_send", KSTAT_DATA_UINT64 }, 381 { "tcp_wsrv_called", KSTAT_DATA_UINT64 }, 382 { "tcp_flwctl_on", KSTAT_DATA_UINT64 }, 383 { "tcp_timer_fire_early", KSTAT_DATA_UINT64 }, 384 { "tcp_timer_fire_miss", KSTAT_DATA_UINT64 }, 385 { "tcp_freelist_cleanup", KSTAT_DATA_UINT64 }, 386 { "tcp_rput_v6_error", KSTAT_DATA_UINT64 }, 387 { "tcp_out_sw_cksum", KSTAT_DATA_UINT64 }, 388 { "tcp_out_sw_cksum_bytes", KSTAT_DATA_UINT64 }, 389 { "tcp_zcopy_on", KSTAT_DATA_UINT64 }, 390 { "tcp_zcopy_off", KSTAT_DATA_UINT64 }, 391 { "tcp_zcopy_backoff", KSTAT_DATA_UINT64 }, 392 { "tcp_zcopy_disable", KSTAT_DATA_UINT64 }, 393 { "tcp_mdt_pkt_out", KSTAT_DATA_UINT64 }, 394 { "tcp_mdt_pkt_out_v4", KSTAT_DATA_UINT64 }, 395 { "tcp_mdt_pkt_out_v6", KSTAT_DATA_UINT64 }, 396 { "tcp_mdt_discarded", KSTAT_DATA_UINT64 }, 397 { "tcp_mdt_conn_halted1", KSTAT_DATA_UINT64 }, 398 { "tcp_mdt_conn_halted2", KSTAT_DATA_UINT64 }, 399 { "tcp_mdt_conn_halted3", KSTAT_DATA_UINT64 }, 400 { "tcp_mdt_conn_resumed1", KSTAT_DATA_UINT64 }, 401 { "tcp_mdt_conn_resumed2", KSTAT_DATA_UINT64 }, 402 { "tcp_mdt_legacy_small", KSTAT_DATA_UINT64 }, 403 { "tcp_mdt_legacy_all", KSTAT_DATA_UINT64 }, 404 { "tcp_mdt_legacy_ret", KSTAT_DATA_UINT64 }, 405 { "tcp_mdt_allocfail", KSTAT_DATA_UINT64 }, 406 { "tcp_mdt_addpdescfail", KSTAT_DATA_UINT64 }, 407 { "tcp_mdt_allocd", KSTAT_DATA_UINT64 }, 408 { "tcp_mdt_linked", KSTAT_DATA_UINT64 }, 409 { "tcp_fusion_flowctl", KSTAT_DATA_UINT64 }, 410 { "tcp_fusion_backenabled", KSTAT_DATA_UINT64 }, 411 { "tcp_fusion_urg", KSTAT_DATA_UINT64 }, 412 { "tcp_fusion_putnext", KSTAT_DATA_UINT64 }, 413 { "tcp_fusion_unfusable", KSTAT_DATA_UINT64 }, 414 { "tcp_fusion_aborted", KSTAT_DATA_UINT64 }, 415 { "tcp_fusion_unqualified", KSTAT_DATA_UINT64 }, 416 { "tcp_fusion_rrw_busy", KSTAT_DATA_UINT64 }, 417 { "tcp_fusion_rrw_msgcnt", KSTAT_DATA_UINT64 }, 418 { "tcp_fusion_rrw_plugged", KSTAT_DATA_UINT64 }, 419 { "tcp_in_ack_unsent_drop", KSTAT_DATA_UINT64 }, 420 { "tcp_sock_fallback", KSTAT_DATA_UINT64 }, 421 { "tcp_lso_enabled", KSTAT_DATA_UINT64 }, 422 { "tcp_lso_disabled", KSTAT_DATA_UINT64 }, 423 { "tcp_lso_times", KSTAT_DATA_UINT64 }, 424 { "tcp_lso_pkt_out", KSTAT_DATA_UINT64 }, 425 }; 426 427 static kstat_t *tcp_kstat; 428 429 /* 430 * Call either ip_output or ip_output_v6. This replaces putnext() calls on the 431 * tcp write side. 432 */ 433 #define CALL_IP_WPUT(connp, q, mp) { \ 434 ASSERT(((q)->q_flag & QREADR) == 0); \ 435 TCP_DBGSTAT(tcp_ip_output); \ 436 connp->conn_send(connp, (mp), (q), IP_WPUT); \ 437 } 438 439 /* Macros for timestamp comparisons */ 440 #define TSTMP_GEQ(a, b) ((int32_t)((a)-(b)) >= 0) 441 #define TSTMP_LT(a, b) ((int32_t)((a)-(b)) < 0) 442 443 /* 444 * Parameters for TCP Initial Send Sequence number (ISS) generation. When 445 * tcp_strong_iss is set to 1, which is the default, the ISS is calculated 446 * by adding three components: a time component which grows by 1 every 4096 447 * nanoseconds (versus every 4 microseconds suggested by RFC 793, page 27); 448 * a per-connection component which grows by 125000 for every new connection; 449 * and an "extra" component that grows by a random amount centered 450 * approximately on 64000. This causes the the ISS generator to cycle every 451 * 4.89 hours if no TCP connections are made, and faster if connections are 452 * made. 453 * 454 * When tcp_strong_iss is set to 0, ISS is calculated by adding two 455 * components: a time component which grows by 250000 every second; and 456 * a per-connection component which grows by 125000 for every new connections. 457 * 458 * A third method, when tcp_strong_iss is set to 2, for generating ISS is 459 * prescribed by Steve Bellovin. This involves adding time, the 125000 per 460 * connection, and a one-way hash (MD5) of the connection ID <sport, dport, 461 * src, dst>, a "truly" random (per RFC 1750) number, and a console-entered 462 * password. 463 */ 464 #define ISS_INCR 250000 465 #define ISS_NSEC_SHT 12 466 467 static uint32_t tcp_iss_incr_extra; /* Incremented for each connection */ 468 static kmutex_t tcp_iss_key_lock; 469 static MD5_CTX tcp_iss_key; 470 static sin_t sin_null; /* Zero address for quick clears */ 471 static sin6_t sin6_null; /* Zero address for quick clears */ 472 473 /* Packet dropper for TCP IPsec policy drops. */ 474 static ipdropper_t tcp_dropper; 475 476 /* 477 * This implementation follows the 4.3BSD interpretation of the urgent 478 * pointer and not RFC 1122. Switching to RFC 1122 behavior would cause 479 * incompatible changes in protocols like telnet and rlogin. 480 */ 481 #define TCP_OLD_URP_INTERPRETATION 1 482 483 #define TCP_IS_DETACHED_NONEAGER(tcp) \ 484 (TCP_IS_DETACHED(tcp) && \ 485 (!(tcp)->tcp_hard_binding)) 486 487 /* 488 * TCP reassembly macros. We hide starting and ending sequence numbers in 489 * b_next and b_prev of messages on the reassembly queue. The messages are 490 * chained using b_cont. These macros are used in tcp_reass() so we don't 491 * have to see the ugly casts and assignments. 492 */ 493 #define TCP_REASS_SEQ(mp) ((uint32_t)(uintptr_t)((mp)->b_next)) 494 #define TCP_REASS_SET_SEQ(mp, u) ((mp)->b_next = \ 495 (mblk_t *)(uintptr_t)(u)) 496 #define TCP_REASS_END(mp) ((uint32_t)(uintptr_t)((mp)->b_prev)) 497 #define TCP_REASS_SET_END(mp, u) ((mp)->b_prev = \ 498 (mblk_t *)(uintptr_t)(u)) 499 500 /* 501 * Implementation of TCP Timers. 502 * ============================= 503 * 504 * INTERFACE: 505 * 506 * There are two basic functions dealing with tcp timers: 507 * 508 * timeout_id_t tcp_timeout(connp, func, time) 509 * clock_t tcp_timeout_cancel(connp, timeout_id) 510 * TCP_TIMER_RESTART(tcp, intvl) 511 * 512 * tcp_timeout() starts a timer for the 'tcp' instance arranging to call 'func' 513 * after 'time' ticks passed. The function called by timeout() must adhere to 514 * the same restrictions as a driver soft interrupt handler - it must not sleep 515 * or call other functions that might sleep. The value returned is the opaque 516 * non-zero timeout identifier that can be passed to tcp_timeout_cancel() to 517 * cancel the request. The call to tcp_timeout() may fail in which case it 518 * returns zero. This is different from the timeout(9F) function which never 519 * fails. 520 * 521 * The call-back function 'func' always receives 'connp' as its single 522 * argument. It is always executed in the squeue corresponding to the tcp 523 * structure. The tcp structure is guaranteed to be present at the time the 524 * call-back is called. 525 * 526 * NOTE: The call-back function 'func' is never called if tcp is in 527 * the TCPS_CLOSED state. 528 * 529 * tcp_timeout_cancel() attempts to cancel a pending tcp_timeout() 530 * request. locks acquired by the call-back routine should not be held across 531 * the call to tcp_timeout_cancel() or a deadlock may result. 532 * 533 * tcp_timeout_cancel() returns -1 if it can not cancel the timeout request. 534 * Otherwise, it returns an integer value greater than or equal to 0. In 535 * particular, if the call-back function is already placed on the squeue, it can 536 * not be canceled. 537 * 538 * NOTE: both tcp_timeout() and tcp_timeout_cancel() should always be called 539 * within squeue context corresponding to the tcp instance. Since the 540 * call-back is also called via the same squeue, there are no race 541 * conditions described in untimeout(9F) manual page since all calls are 542 * strictly serialized. 543 * 544 * TCP_TIMER_RESTART() is a macro that attempts to cancel a pending timeout 545 * stored in tcp_timer_tid and starts a new one using 546 * MSEC_TO_TICK(intvl). It always uses tcp_timer() function as a call-back 547 * and stores the return value of tcp_timeout() in the tcp->tcp_timer_tid 548 * field. 549 * 550 * NOTE: since the timeout cancellation is not guaranteed, the cancelled 551 * call-back may still be called, so it is possible tcp_timer() will be 552 * called several times. This should not be a problem since tcp_timer() 553 * should always check the tcp instance state. 554 * 555 * 556 * IMPLEMENTATION: 557 * 558 * TCP timers are implemented using three-stage process. The call to 559 * tcp_timeout() uses timeout(9F) function to call tcp_timer_callback() function 560 * when the timer expires. The tcp_timer_callback() arranges the call of the 561 * tcp_timer_handler() function via squeue corresponding to the tcp 562 * instance. The tcp_timer_handler() calls actual requested timeout call-back 563 * and passes tcp instance as an argument to it. Information is passed between 564 * stages using the tcp_timer_t structure which contains the connp pointer, the 565 * tcp call-back to call and the timeout id returned by the timeout(9F). 566 * 567 * The tcp_timer_t structure is not used directly, it is embedded in an mblk_t - 568 * like structure that is used to enter an squeue. The mp->b_rptr of this pseudo 569 * mblk points to the beginning of tcp_timer_t structure. The tcp_timeout() 570 * returns the pointer to this mblk. 571 * 572 * The pseudo mblk is allocated from a special tcp_timer_cache kmem cache. It 573 * looks like a normal mblk without actual dblk attached to it. 574 * 575 * To optimize performance each tcp instance holds a small cache of timer 576 * mblocks. In the current implementation it caches up to two timer mblocks per 577 * tcp instance. The cache is preserved over tcp frees and is only freed when 578 * the whole tcp structure is destroyed by its kmem destructor. Since all tcp 579 * timer processing happens on a corresponding squeue, the cache manipulation 580 * does not require any locks. Experiments show that majority of timer mblocks 581 * allocations are satisfied from the tcp cache and do not involve kmem calls. 582 * 583 * The tcp_timeout() places a refhold on the connp instance which guarantees 584 * that it will be present at the time the call-back function fires. The 585 * tcp_timer_handler() drops the reference after calling the call-back, so the 586 * call-back function does not need to manipulate the references explicitly. 587 */ 588 589 typedef struct tcp_timer_s { 590 conn_t *connp; 591 void (*tcpt_proc)(void *); 592 timeout_id_t tcpt_tid; 593 } tcp_timer_t; 594 595 static kmem_cache_t *tcp_timercache; 596 kmem_cache_t *tcp_sack_info_cache; 597 kmem_cache_t *tcp_iphc_cache; 598 599 /* 600 * For scalability, we must not run a timer for every TCP connection 601 * in TIME_WAIT state. To see why, consider (for time wait interval of 602 * 4 minutes): 603 * 1000 connections/sec * 240 seconds/time wait = 240,000 active conn's 604 * 605 * This list is ordered by time, so you need only delete from the head 606 * until you get to entries which aren't old enough to delete yet. 607 * The list consists of only the detached TIME_WAIT connections. 608 * 609 * Note that the timer (tcp_time_wait_expire) is started when the tcp_t 610 * becomes detached TIME_WAIT (either by changing the state and already 611 * being detached or the other way around). This means that the TIME_WAIT 612 * state can be extended (up to doubled) if the connection doesn't become 613 * detached for a long time. 614 * 615 * The list manipulations (including tcp_time_wait_next/prev) 616 * are protected by the tcp_time_wait_lock. The content of the 617 * detached TIME_WAIT connections is protected by the normal perimeters. 618 */ 619 620 typedef struct tcp_squeue_priv_s { 621 kmutex_t tcp_time_wait_lock; 622 /* Protects the next 3 globals */ 623 timeout_id_t tcp_time_wait_tid; 624 tcp_t *tcp_time_wait_head; 625 tcp_t *tcp_time_wait_tail; 626 tcp_t *tcp_free_list; 627 uint_t tcp_free_list_cnt; 628 } tcp_squeue_priv_t; 629 630 /* 631 * TCP_TIME_WAIT_DELAY governs how often the time_wait_collector runs. 632 * Running it every 5 seconds seems to give the best results. 633 */ 634 #define TCP_TIME_WAIT_DELAY drv_usectohz(5000000) 635 636 /* 637 * To prevent memory hog, limit the number of entries in tcp_free_list 638 * to 1% of available memory / number of cpus 639 */ 640 uint_t tcp_free_list_max_cnt = 0; 641 642 #define TCP_XMIT_LOWATER 4096 643 #define TCP_XMIT_HIWATER 49152 644 #define TCP_RECV_LOWATER 2048 645 #define TCP_RECV_HIWATER 49152 646 647 /* 648 * PAWS needs a timer for 24 days. This is the number of ticks in 24 days 649 */ 650 #define PAWS_TIMEOUT ((clock_t)(24*24*60*60*hz)) 651 652 #define TIDUSZ 4096 /* transport interface data unit size */ 653 654 /* 655 * Bind hash list size and has function. It has to be a power of 2 for 656 * hashing. 657 */ 658 #define TCP_BIND_FANOUT_SIZE 512 659 #define TCP_BIND_HASH(lport) (ntohs(lport) & (TCP_BIND_FANOUT_SIZE - 1)) 660 /* 661 * Size of listen and acceptor hash list. It has to be a power of 2 for 662 * hashing. 663 */ 664 #define TCP_FANOUT_SIZE 256 665 666 #ifdef _ILP32 667 #define TCP_ACCEPTOR_HASH(accid) \ 668 (((uint_t)(accid) >> 8) & (TCP_FANOUT_SIZE - 1)) 669 #else 670 #define TCP_ACCEPTOR_HASH(accid) \ 671 ((uint_t)(accid) & (TCP_FANOUT_SIZE - 1)) 672 #endif /* _ILP32 */ 673 674 #define IP_ADDR_CACHE_SIZE 2048 675 #define IP_ADDR_CACHE_HASH(faddr) \ 676 (ntohl(faddr) & (IP_ADDR_CACHE_SIZE -1)) 677 678 /* Hash for HSPs uses all 32 bits, since both networks and hosts are in table */ 679 #define TCP_HSP_HASH_SIZE 256 680 681 #define TCP_HSP_HASH(addr) \ 682 (((addr>>24) ^ (addr >>16) ^ \ 683 (addr>>8) ^ (addr)) % TCP_HSP_HASH_SIZE) 684 685 /* 686 * TCP options struct returned from tcp_parse_options. 687 */ 688 typedef struct tcp_opt_s { 689 uint32_t tcp_opt_mss; 690 uint32_t tcp_opt_wscale; 691 uint32_t tcp_opt_ts_val; 692 uint32_t tcp_opt_ts_ecr; 693 tcp_t *tcp; 694 } tcp_opt_t; 695 696 /* 697 * RFC1323-recommended phrasing of TSTAMP option, for easier parsing 698 */ 699 700 #ifdef _BIG_ENDIAN 701 #define TCPOPT_NOP_NOP_TSTAMP ((TCPOPT_NOP << 24) | (TCPOPT_NOP << 16) | \ 702 (TCPOPT_TSTAMP << 8) | 10) 703 #else 704 #define TCPOPT_NOP_NOP_TSTAMP ((10 << 24) | (TCPOPT_TSTAMP << 16) | \ 705 (TCPOPT_NOP << 8) | TCPOPT_NOP) 706 #endif 707 708 /* 709 * Flags returned from tcp_parse_options. 710 */ 711 #define TCP_OPT_MSS_PRESENT 1 712 #define TCP_OPT_WSCALE_PRESENT 2 713 #define TCP_OPT_TSTAMP_PRESENT 4 714 #define TCP_OPT_SACK_OK_PRESENT 8 715 #define TCP_OPT_SACK_PRESENT 16 716 717 /* TCP option length */ 718 #define TCPOPT_NOP_LEN 1 719 #define TCPOPT_MAXSEG_LEN 4 720 #define TCPOPT_WS_LEN 3 721 #define TCPOPT_REAL_WS_LEN (TCPOPT_WS_LEN+1) 722 #define TCPOPT_TSTAMP_LEN 10 723 #define TCPOPT_REAL_TS_LEN (TCPOPT_TSTAMP_LEN+2) 724 #define TCPOPT_SACK_OK_LEN 2 725 #define TCPOPT_REAL_SACK_OK_LEN (TCPOPT_SACK_OK_LEN+2) 726 #define TCPOPT_REAL_SACK_LEN 4 727 #define TCPOPT_MAX_SACK_LEN 36 728 #define TCPOPT_HEADER_LEN 2 729 730 /* TCP cwnd burst factor. */ 731 #define TCP_CWND_INFINITE 65535 732 #define TCP_CWND_SS 3 733 #define TCP_CWND_NORMAL 5 734 735 /* Maximum TCP initial cwin (start/restart). */ 736 #define TCP_MAX_INIT_CWND 8 737 738 /* 739 * Initialize cwnd according to RFC 3390. def_max_init_cwnd is 740 * either tcp_slow_start_initial or tcp_slow_start_after idle 741 * depending on the caller. If the upper layer has not used the 742 * TCP_INIT_CWND option to change the initial cwnd, tcp_init_cwnd 743 * should be 0 and we use the formula in RFC 3390 to set tcp_cwnd. 744 * If the upper layer has changed set the tcp_init_cwnd, just use 745 * it to calculate the tcp_cwnd. 746 */ 747 #define SET_TCP_INIT_CWND(tcp, mss, def_max_init_cwnd) \ 748 { \ 749 if ((tcp)->tcp_init_cwnd == 0) { \ 750 (tcp)->tcp_cwnd = MIN(def_max_init_cwnd * (mss), \ 751 MIN(4 * (mss), MAX(2 * (mss), 4380 / (mss) * (mss)))); \ 752 } else { \ 753 (tcp)->tcp_cwnd = (tcp)->tcp_init_cwnd * (mss); \ 754 } \ 755 tcp->tcp_cwnd_cnt = 0; \ 756 } 757 758 /* TCP Timer control structure */ 759 typedef struct tcpt_s { 760 pfv_t tcpt_pfv; /* The routine we are to call */ 761 tcp_t *tcpt_tcp; /* The parameter we are to pass in */ 762 } tcpt_t; 763 764 /* Host Specific Parameter structure */ 765 typedef struct tcp_hsp { 766 struct tcp_hsp *tcp_hsp_next; 767 in6_addr_t tcp_hsp_addr_v6; 768 in6_addr_t tcp_hsp_subnet_v6; 769 uint_t tcp_hsp_vers; /* IPV4_VERSION | IPV6_VERSION */ 770 int32_t tcp_hsp_sendspace; 771 int32_t tcp_hsp_recvspace; 772 int32_t tcp_hsp_tstamp; 773 } tcp_hsp_t; 774 #define tcp_hsp_addr V4_PART_OF_V6(tcp_hsp_addr_v6) 775 #define tcp_hsp_subnet V4_PART_OF_V6(tcp_hsp_subnet_v6) 776 777 /* 778 * Functions called directly via squeue having a prototype of edesc_t. 779 */ 780 void tcp_conn_request(void *arg, mblk_t *mp, void *arg2); 781 static void tcp_wput_nondata(void *arg, mblk_t *mp, void *arg2); 782 void tcp_accept_finish(void *arg, mblk_t *mp, void *arg2); 783 static void tcp_wput_ioctl(void *arg, mblk_t *mp, void *arg2); 784 static void tcp_wput_proto(void *arg, mblk_t *mp, void *arg2); 785 void tcp_input(void *arg, mblk_t *mp, void *arg2); 786 void tcp_rput_data(void *arg, mblk_t *mp, void *arg2); 787 static void tcp_close_output(void *arg, mblk_t *mp, void *arg2); 788 void tcp_output(void *arg, mblk_t *mp, void *arg2); 789 static void tcp_rsrv_input(void *arg, mblk_t *mp, void *arg2); 790 static void tcp_timer_handler(void *arg, mblk_t *mp, void *arg2); 791 static void tcp_linger_interrupted(void *arg, mblk_t *mp, void *arg2); 792 793 794 /* Prototype for TCP functions */ 795 static void tcp_random_init(void); 796 int tcp_random(void); 797 static void tcp_accept(tcp_t *tcp, mblk_t *mp); 798 static void tcp_accept_swap(tcp_t *listener, tcp_t *acceptor, 799 tcp_t *eager); 800 static int tcp_adapt_ire(tcp_t *tcp, mblk_t *ire_mp); 801 static in_port_t tcp_bindi(tcp_t *tcp, in_port_t port, const in6_addr_t *laddr, 802 int reuseaddr, boolean_t quick_connect, boolean_t bind_to_req_port_only, 803 boolean_t user_specified); 804 static void tcp_closei_local(tcp_t *tcp); 805 static void tcp_close_detached(tcp_t *tcp); 806 static boolean_t tcp_conn_con(tcp_t *tcp, uchar_t *iphdr, tcph_t *tcph, 807 mblk_t *idmp, mblk_t **defermp); 808 static void tcp_connect(tcp_t *tcp, mblk_t *mp); 809 static void tcp_connect_ipv4(tcp_t *tcp, mblk_t *mp, ipaddr_t *dstaddrp, 810 in_port_t dstport, uint_t srcid); 811 static void tcp_connect_ipv6(tcp_t *tcp, mblk_t *mp, in6_addr_t *dstaddrp, 812 in_port_t dstport, uint32_t flowinfo, uint_t srcid, 813 uint32_t scope_id); 814 static int tcp_clean_death(tcp_t *tcp, int err, uint8_t tag); 815 static void tcp_def_q_set(tcp_t *tcp, mblk_t *mp); 816 static void tcp_disconnect(tcp_t *tcp, mblk_t *mp); 817 static char *tcp_display(tcp_t *tcp, char *, char); 818 static boolean_t tcp_eager_blowoff(tcp_t *listener, t_scalar_t seqnum); 819 static void tcp_eager_cleanup(tcp_t *listener, boolean_t q0_only); 820 static void tcp_eager_unlink(tcp_t *tcp); 821 static void tcp_err_ack(tcp_t *tcp, mblk_t *mp, int tlierr, 822 int unixerr); 823 static void tcp_err_ack_prim(tcp_t *tcp, mblk_t *mp, int primitive, 824 int tlierr, int unixerr); 825 static int tcp_extra_priv_ports_get(queue_t *q, mblk_t *mp, caddr_t cp, 826 cred_t *cr); 827 static int tcp_extra_priv_ports_add(queue_t *q, mblk_t *mp, 828 char *value, caddr_t cp, cred_t *cr); 829 static int tcp_extra_priv_ports_del(queue_t *q, mblk_t *mp, 830 char *value, caddr_t cp, cred_t *cr); 831 static int tcp_tpistate(tcp_t *tcp); 832 static void tcp_bind_hash_insert(tf_t *tf, tcp_t *tcp, 833 int caller_holds_lock); 834 static void tcp_bind_hash_remove(tcp_t *tcp); 835 static tcp_t *tcp_acceptor_hash_lookup(t_uscalar_t id); 836 void tcp_acceptor_hash_insert(t_uscalar_t id, tcp_t *tcp); 837 static void tcp_acceptor_hash_remove(tcp_t *tcp); 838 static void tcp_capability_req(tcp_t *tcp, mblk_t *mp); 839 static void tcp_info_req(tcp_t *tcp, mblk_t *mp); 840 static void tcp_addr_req(tcp_t *tcp, mblk_t *mp); 841 static void tcp_addr_req_ipv6(tcp_t *tcp, mblk_t *mp); 842 static int tcp_header_init_ipv4(tcp_t *tcp); 843 static int tcp_header_init_ipv6(tcp_t *tcp); 844 int tcp_init(tcp_t *tcp, queue_t *q); 845 static int tcp_init_values(tcp_t *tcp); 846 static mblk_t *tcp_ip_advise_mblk(void *addr, int addr_len, ipic_t **ipic); 847 static mblk_t *tcp_ip_bind_mp(tcp_t *tcp, t_scalar_t bind_prim, 848 t_scalar_t addr_length); 849 static void tcp_ip_ire_mark_advice(tcp_t *tcp); 850 static void tcp_ip_notify(tcp_t *tcp); 851 static mblk_t *tcp_ire_mp(mblk_t *mp); 852 static void tcp_iss_init(tcp_t *tcp); 853 static void tcp_keepalive_killer(void *arg); 854 static int tcp_parse_options(tcph_t *tcph, tcp_opt_t *tcpopt); 855 static void tcp_mss_set(tcp_t *tcp, uint32_t size); 856 static int tcp_conprim_opt_process(tcp_t *tcp, mblk_t *mp, 857 int *do_disconnectp, int *t_errorp, int *sys_errorp); 858 static boolean_t tcp_allow_connopt_set(int level, int name); 859 int tcp_opt_default(queue_t *q, int level, int name, uchar_t *ptr); 860 int tcp_opt_get(queue_t *q, int level, int name, uchar_t *ptr); 861 int tcp_opt_set(queue_t *q, uint_t optset_context, int level, 862 int name, uint_t inlen, uchar_t *invalp, uint_t *outlenp, 863 uchar_t *outvalp, void *thisdg_attrs, cred_t *cr, 864 mblk_t *mblk); 865 static void tcp_opt_reverse(tcp_t *tcp, ipha_t *ipha); 866 static int tcp_opt_set_header(tcp_t *tcp, boolean_t checkonly, 867 uchar_t *ptr, uint_t len); 868 static int tcp_param_get(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr); 869 static boolean_t tcp_param_register(tcpparam_t *tcppa, int cnt); 870 static int tcp_param_set(queue_t *q, mblk_t *mp, char *value, 871 caddr_t cp, cred_t *cr); 872 static int tcp_param_set_aligned(queue_t *q, mblk_t *mp, char *value, 873 caddr_t cp, cred_t *cr); 874 static void tcp_iss_key_init(uint8_t *phrase, int len); 875 static int tcp_1948_phrase_set(queue_t *q, mblk_t *mp, char *value, 876 caddr_t cp, cred_t *cr); 877 static void tcp_process_shrunk_swnd(tcp_t *tcp, uint32_t shrunk_cnt); 878 static mblk_t *tcp_reass(tcp_t *tcp, mblk_t *mp, uint32_t start); 879 static void tcp_reass_elim_overlap(tcp_t *tcp, mblk_t *mp); 880 static void tcp_reinit(tcp_t *tcp); 881 static void tcp_reinit_values(tcp_t *tcp); 882 static void tcp_report_item(mblk_t *mp, tcp_t *tcp, int hashval, 883 tcp_t *thisstream, cred_t *cr); 884 885 static uint_t tcp_rcv_drain(queue_t *q, tcp_t *tcp); 886 static void tcp_sack_rxmit(tcp_t *tcp, uint_t *flags); 887 static boolean_t tcp_send_rst_chk(void); 888 static void tcp_ss_rexmit(tcp_t *tcp); 889 static mblk_t *tcp_rput_add_ancillary(tcp_t *tcp, mblk_t *mp, ip6_pkt_t *ipp); 890 static void tcp_process_options(tcp_t *, tcph_t *); 891 static void tcp_rput_common(tcp_t *tcp, mblk_t *mp); 892 static void tcp_rsrv(queue_t *q); 893 static int tcp_rwnd_set(tcp_t *tcp, uint32_t rwnd); 894 static int tcp_snmp_state(tcp_t *tcp); 895 static int tcp_status_report(queue_t *q, mblk_t *mp, caddr_t cp, 896 cred_t *cr); 897 static int tcp_bind_hash_report(queue_t *q, mblk_t *mp, caddr_t cp, 898 cred_t *cr); 899 static int tcp_listen_hash_report(queue_t *q, mblk_t *mp, caddr_t cp, 900 cred_t *cr); 901 static int tcp_conn_hash_report(queue_t *q, mblk_t *mp, caddr_t cp, 902 cred_t *cr); 903 static int tcp_acceptor_hash_report(queue_t *q, mblk_t *mp, caddr_t cp, 904 cred_t *cr); 905 static int tcp_host_param_set(queue_t *q, mblk_t *mp, char *value, 906 caddr_t cp, cred_t *cr); 907 static int tcp_host_param_set_ipv6(queue_t *q, mblk_t *mp, char *value, 908 caddr_t cp, cred_t *cr); 909 static int tcp_host_param_report(queue_t *q, mblk_t *mp, caddr_t cp, 910 cred_t *cr); 911 static void tcp_timer(void *arg); 912 static void tcp_timer_callback(void *); 913 static in_port_t tcp_update_next_port(in_port_t port, const tcp_t *tcp, 914 boolean_t random); 915 static in_port_t tcp_get_next_priv_port(const tcp_t *); 916 static void tcp_wput_sock(queue_t *q, mblk_t *mp); 917 void tcp_wput_accept(queue_t *q, mblk_t *mp); 918 static void tcp_wput_data(tcp_t *tcp, mblk_t *mp, boolean_t urgent); 919 static void tcp_wput_flush(tcp_t *tcp, mblk_t *mp); 920 static void tcp_wput_iocdata(tcp_t *tcp, mblk_t *mp); 921 static int tcp_send(queue_t *q, tcp_t *tcp, const int mss, 922 const int tcp_hdr_len, const int tcp_tcp_hdr_len, 923 const int num_sack_blk, int *usable, uint_t *snxt, 924 int *tail_unsent, mblk_t **xmit_tail, mblk_t *local_time, 925 const int mdt_thres); 926 static int tcp_multisend(queue_t *q, tcp_t *tcp, const int mss, 927 const int tcp_hdr_len, const int tcp_tcp_hdr_len, 928 const int num_sack_blk, int *usable, uint_t *snxt, 929 int *tail_unsent, mblk_t **xmit_tail, mblk_t *local_time, 930 const int mdt_thres); 931 static void tcp_fill_header(tcp_t *tcp, uchar_t *rptr, clock_t now, 932 int num_sack_blk); 933 static void tcp_wsrv(queue_t *q); 934 static int tcp_xmit_end(tcp_t *tcp); 935 static void tcp_ack_timer(void *arg); 936 static mblk_t *tcp_ack_mp(tcp_t *tcp); 937 static void tcp_xmit_early_reset(char *str, mblk_t *mp, 938 uint32_t seq, uint32_t ack, int ctl, uint_t ip_hdr_len, 939 zoneid_t zoneid); 940 static void tcp_xmit_ctl(char *str, tcp_t *tcp, uint32_t seq, 941 uint32_t ack, int ctl); 942 static tcp_hsp_t *tcp_hsp_lookup(ipaddr_t addr); 943 static tcp_hsp_t *tcp_hsp_lookup_ipv6(in6_addr_t *addr); 944 static int setmaxps(queue_t *q, int maxpsz); 945 static void tcp_set_rto(tcp_t *, time_t); 946 static boolean_t tcp_check_policy(tcp_t *, mblk_t *, ipha_t *, ip6_t *, 947 boolean_t, boolean_t); 948 static void tcp_icmp_error_ipv6(tcp_t *tcp, mblk_t *mp, 949 boolean_t ipsec_mctl); 950 static mblk_t *tcp_setsockopt_mp(int level, int cmd, 951 char *opt, int optlen); 952 static int tcp_build_hdrs(queue_t *, tcp_t *); 953 static void tcp_time_wait_processing(tcp_t *tcp, mblk_t *mp, 954 uint32_t seg_seq, uint32_t seg_ack, int seg_len, 955 tcph_t *tcph); 956 boolean_t tcp_paws_check(tcp_t *tcp, tcph_t *tcph, tcp_opt_t *tcpoptp); 957 boolean_t tcp_reserved_port_add(int, in_port_t *, in_port_t *); 958 boolean_t tcp_reserved_port_del(in_port_t, in_port_t); 959 boolean_t tcp_reserved_port_check(in_port_t); 960 static tcp_t *tcp_alloc_temp_tcp(in_port_t); 961 static int tcp_reserved_port_list(queue_t *, mblk_t *, caddr_t, cred_t *); 962 static mblk_t *tcp_mdt_info_mp(mblk_t *); 963 static void tcp_mdt_update(tcp_t *, ill_mdt_capab_t *, boolean_t); 964 static int tcp_mdt_add_attrs(multidata_t *, const mblk_t *, 965 const boolean_t, const uint32_t, const uint32_t, 966 const uint32_t, const uint32_t); 967 static void tcp_multisend_data(tcp_t *, ire_t *, const ill_t *, mblk_t *, 968 const uint_t, const uint_t, boolean_t *); 969 static mblk_t *tcp_lso_info_mp(mblk_t *); 970 static void tcp_lso_update(tcp_t *, ill_lso_capab_t *); 971 static void tcp_send_data(tcp_t *, queue_t *, mblk_t *); 972 extern mblk_t *tcp_timermp_alloc(int); 973 extern void tcp_timermp_free(tcp_t *); 974 static void tcp_timer_free(tcp_t *tcp, mblk_t *mp); 975 static void tcp_stop_lingering(tcp_t *tcp); 976 static void tcp_close_linger_timeout(void *arg); 977 void tcp_ddi_init(void); 978 void tcp_ddi_destroy(void); 979 static void tcp_kstat_init(void); 980 static void tcp_kstat_fini(void); 981 static int tcp_kstat_update(kstat_t *kp, int rw); 982 void tcp_reinput(conn_t *connp, mblk_t *mp, squeue_t *sqp); 983 static int tcp_conn_create_v6(conn_t *lconnp, conn_t *connp, mblk_t *mp, 984 tcph_t *tcph, uint_t ipvers, mblk_t *idmp); 985 static int tcp_conn_create_v4(conn_t *lconnp, conn_t *connp, ipha_t *ipha, 986 tcph_t *tcph, mblk_t *idmp); 987 static squeue_func_t tcp_squeue_switch(int); 988 989 static int tcp_open(queue_t *, dev_t *, int, int, cred_t *); 990 static int tcp_close(queue_t *, int); 991 static int tcpclose_accept(queue_t *); 992 static int tcp_modclose(queue_t *); 993 static void tcp_wput_mod(queue_t *, mblk_t *); 994 995 static void tcp_squeue_add(squeue_t *); 996 static boolean_t tcp_zcopy_check(tcp_t *); 997 static void tcp_zcopy_notify(tcp_t *); 998 static mblk_t *tcp_zcopy_disable(tcp_t *, mblk_t *); 999 static mblk_t *tcp_zcopy_backoff(tcp_t *, mblk_t *, int); 1000 static void tcp_ire_ill_check(tcp_t *, ire_t *, ill_t *, boolean_t); 1001 1002 extern void tcp_kssl_input(tcp_t *, mblk_t *); 1003 1004 void tcp_eager_kill(void *arg, mblk_t *mp, void *arg2); 1005 void tcp_clean_death_wrapper(void *arg, mblk_t *mp, void *arg2); 1006 1007 /* 1008 * Routines related to the TCP_IOC_ABORT_CONN ioctl command. 1009 * 1010 * TCP_IOC_ABORT_CONN is a non-transparent ioctl command used for aborting 1011 * TCP connections. To invoke this ioctl, a tcp_ioc_abort_conn_t structure 1012 * (defined in tcp.h) needs to be filled in and passed into the kernel 1013 * via an I_STR ioctl command (see streamio(7I)). The tcp_ioc_abort_conn_t 1014 * structure contains the four-tuple of a TCP connection and a range of TCP 1015 * states (specified by ac_start and ac_end). The use of wildcard addresses 1016 * and ports is allowed. Connections with a matching four tuple and a state 1017 * within the specified range will be aborted. The valid states for the 1018 * ac_start and ac_end fields are in the range TCPS_SYN_SENT to TCPS_TIME_WAIT, 1019 * inclusive. 1020 * 1021 * An application which has its connection aborted by this ioctl will receive 1022 * an error that is dependent on the connection state at the time of the abort. 1023 * If the connection state is < TCPS_TIME_WAIT, an application should behave as 1024 * though a RST packet has been received. If the connection state is equal to 1025 * TCPS_TIME_WAIT, the 2MSL timeout will immediately be canceled by the kernel 1026 * and all resources associated with the connection will be freed. 1027 */ 1028 static mblk_t *tcp_ioctl_abort_build_msg(tcp_ioc_abort_conn_t *, tcp_t *); 1029 static void tcp_ioctl_abort_dump(tcp_ioc_abort_conn_t *); 1030 static void tcp_ioctl_abort_handler(tcp_t *, mblk_t *); 1031 static int tcp_ioctl_abort(tcp_ioc_abort_conn_t *); 1032 static void tcp_ioctl_abort_conn(queue_t *, mblk_t *); 1033 static int tcp_ioctl_abort_bucket(tcp_ioc_abort_conn_t *, int, int *, 1034 boolean_t); 1035 1036 static struct module_info tcp_rinfo = { 1037 TCP_MOD_ID, TCP_MOD_NAME, 0, INFPSZ, TCP_RECV_HIWATER, TCP_RECV_LOWATER 1038 }; 1039 1040 static struct module_info tcp_winfo = { 1041 TCP_MOD_ID, TCP_MOD_NAME, 0, INFPSZ, 127, 16 1042 }; 1043 1044 /* 1045 * Entry points for TCP as a module. It only allows SNMP requests 1046 * to pass through. 1047 */ 1048 struct qinit tcp_mod_rinit = { 1049 (pfi_t)putnext, NULL, tcp_open, ip_snmpmod_close, NULL, &tcp_rinfo, 1050 }; 1051 1052 struct qinit tcp_mod_winit = { 1053 (pfi_t)ip_snmpmod_wput, NULL, tcp_open, ip_snmpmod_close, NULL, 1054 &tcp_rinfo 1055 }; 1056 1057 /* 1058 * Entry points for TCP as a device. The normal case which supports 1059 * the TCP functionality. 1060 */ 1061 struct qinit tcp_rinit = { 1062 NULL, (pfi_t)tcp_rsrv, tcp_open, tcp_close, NULL, &tcp_rinfo 1063 }; 1064 1065 struct qinit tcp_winit = { 1066 (pfi_t)tcp_wput, (pfi_t)tcp_wsrv, NULL, NULL, NULL, &tcp_winfo 1067 }; 1068 1069 /* Initial entry point for TCP in socket mode. */ 1070 struct qinit tcp_sock_winit = { 1071 (pfi_t)tcp_wput_sock, (pfi_t)tcp_wsrv, NULL, NULL, NULL, &tcp_winfo 1072 }; 1073 1074 /* 1075 * Entry points for TCP as a acceptor STREAM opened by sockfs when doing 1076 * an accept. Avoid allocating data structures since eager has already 1077 * been created. 1078 */ 1079 struct qinit tcp_acceptor_rinit = { 1080 NULL, (pfi_t)tcp_rsrv, NULL, tcpclose_accept, NULL, &tcp_winfo 1081 }; 1082 1083 struct qinit tcp_acceptor_winit = { 1084 (pfi_t)tcp_wput_accept, NULL, NULL, NULL, NULL, &tcp_winfo 1085 }; 1086 1087 /* 1088 * Entry points for TCP loopback (read side only) 1089 */ 1090 struct qinit tcp_loopback_rinit = { 1091 (pfi_t)0, (pfi_t)tcp_rsrv, tcp_open, tcp_close, (pfi_t)0, 1092 &tcp_rinfo, NULL, tcp_fuse_rrw, tcp_fuse_rinfop, STRUIOT_STANDARD 1093 }; 1094 1095 struct streamtab tcpinfo = { 1096 &tcp_rinit, &tcp_winit 1097 }; 1098 1099 extern squeue_func_t tcp_squeue_wput_proc; 1100 extern squeue_func_t tcp_squeue_timer_proc; 1101 1102 /* Protected by tcp_g_q_lock */ 1103 static queue_t *tcp_g_q; /* Default queue used during detached closes */ 1104 kmutex_t tcp_g_q_lock; 1105 1106 /* Protected by tcp_hsp_lock */ 1107 /* 1108 * XXX The host param mechanism should go away and instead we should use 1109 * the metrics associated with the routes to determine the default sndspace 1110 * and rcvspace. 1111 */ 1112 static tcp_hsp_t **tcp_hsp_hash; /* Hash table for HSPs */ 1113 krwlock_t tcp_hsp_lock; 1114 1115 /* 1116 * Extra privileged ports. In host byte order. 1117 * Protected by tcp_epriv_port_lock. 1118 */ 1119 #define TCP_NUM_EPRIV_PORTS 64 1120 static int tcp_g_num_epriv_ports = TCP_NUM_EPRIV_PORTS; 1121 static uint16_t tcp_g_epriv_ports[TCP_NUM_EPRIV_PORTS] = { 2049, 4045 }; 1122 kmutex_t tcp_epriv_port_lock; 1123 1124 /* 1125 * The smallest anonymous port in the privileged port range which TCP 1126 * looks for free port. Use in the option TCP_ANONPRIVBIND. 1127 */ 1128 static in_port_t tcp_min_anonpriv_port = 512; 1129 1130 /* Only modified during _init and _fini thus no locking is needed. */ 1131 static caddr_t tcp_g_nd; /* Head of 'named dispatch' variable list */ 1132 1133 /* Hint not protected by any lock */ 1134 static uint_t tcp_next_port_to_try; 1135 1136 1137 /* TCP bind hash list - all tcp_t with state >= BOUND. */ 1138 tf_t tcp_bind_fanout[TCP_BIND_FANOUT_SIZE]; 1139 1140 /* TCP queue hash list - all tcp_t in case they will be an acceptor. */ 1141 static tf_t tcp_acceptor_fanout[TCP_FANOUT_SIZE]; 1142 1143 /* 1144 * TCP has a private interface for other kernel modules to reserve a 1145 * port range for them to use. Once reserved, TCP will not use any ports 1146 * in the range. This interface relies on the TCP_EXCLBIND feature. If 1147 * the semantics of TCP_EXCLBIND is changed, implementation of this interface 1148 * has to be verified. 1149 * 1150 * There can be TCP_RESERVED_PORTS_ARRAY_MAX_SIZE port ranges. Each port 1151 * range can cover at most TCP_RESERVED_PORTS_RANGE_MAX ports. A port 1152 * range is [port a, port b] inclusive. And each port range is between 1153 * TCP_LOWESET_RESERVED_PORT and TCP_LARGEST_RESERVED_PORT inclusive. 1154 * 1155 * Note that the default anonymous port range starts from 32768. There is 1156 * no port "collision" between that and the reserved port range. If there 1157 * is port collision (because the default smallest anonymous port is lowered 1158 * or some apps specifically bind to ports in the reserved port range), the 1159 * system may not be able to reserve a port range even there are enough 1160 * unbound ports as a reserved port range contains consecutive ports . 1161 */ 1162 #define TCP_RESERVED_PORTS_ARRAY_MAX_SIZE 5 1163 #define TCP_RESERVED_PORTS_RANGE_MAX 1000 1164 #define TCP_SMALLEST_RESERVED_PORT 10240 1165 #define TCP_LARGEST_RESERVED_PORT 20480 1166 1167 /* Structure to represent those reserved port ranges. */ 1168 typedef struct tcp_rport_s { 1169 in_port_t lo_port; 1170 in_port_t hi_port; 1171 tcp_t **temp_tcp_array; 1172 } tcp_rport_t; 1173 1174 /* The reserved port array. */ 1175 static tcp_rport_t tcp_reserved_port[TCP_RESERVED_PORTS_ARRAY_MAX_SIZE]; 1176 1177 /* Locks to protect the tcp_reserved_ports array. */ 1178 static krwlock_t tcp_reserved_port_lock; 1179 1180 /* The number of ranges in the array. */ 1181 uint32_t tcp_reserved_port_array_size = 0; 1182 1183 /* 1184 * MIB-2 stuff for SNMP 1185 * Note: tcpInErrs {tcp 15} is accumulated in ip.c 1186 */ 1187 mib2_tcp_t tcp_mib; /* SNMP fixed size info */ 1188 kstat_t *tcp_mibkp; /* kstat exporting tcp_mib data */ 1189 1190 boolean_t tcp_icmp_source_quench = B_FALSE; 1191 /* 1192 * Following assumes TPI alignment requirements stay along 32 bit 1193 * boundaries 1194 */ 1195 #define ROUNDUP32(x) \ 1196 (((x) + (sizeof (int32_t) - 1)) & ~(sizeof (int32_t) - 1)) 1197 1198 /* Template for response to info request. */ 1199 static struct T_info_ack tcp_g_t_info_ack = { 1200 T_INFO_ACK, /* PRIM_type */ 1201 0, /* TSDU_size */ 1202 T_INFINITE, /* ETSDU_size */ 1203 T_INVALID, /* CDATA_size */ 1204 T_INVALID, /* DDATA_size */ 1205 sizeof (sin_t), /* ADDR_size */ 1206 0, /* OPT_size - not initialized here */ 1207 TIDUSZ, /* TIDU_size */ 1208 T_COTS_ORD, /* SERV_type */ 1209 TCPS_IDLE, /* CURRENT_state */ 1210 (XPG4_1|EXPINLINE) /* PROVIDER_flag */ 1211 }; 1212 1213 static struct T_info_ack tcp_g_t_info_ack_v6 = { 1214 T_INFO_ACK, /* PRIM_type */ 1215 0, /* TSDU_size */ 1216 T_INFINITE, /* ETSDU_size */ 1217 T_INVALID, /* CDATA_size */ 1218 T_INVALID, /* DDATA_size */ 1219 sizeof (sin6_t), /* ADDR_size */ 1220 0, /* OPT_size - not initialized here */ 1221 TIDUSZ, /* TIDU_size */ 1222 T_COTS_ORD, /* SERV_type */ 1223 TCPS_IDLE, /* CURRENT_state */ 1224 (XPG4_1|EXPINLINE) /* PROVIDER_flag */ 1225 }; 1226 1227 #define MS 1L 1228 #define SECONDS (1000 * MS) 1229 #define MINUTES (60 * SECONDS) 1230 #define HOURS (60 * MINUTES) 1231 #define DAYS (24 * HOURS) 1232 1233 #define PARAM_MAX (~(uint32_t)0) 1234 1235 /* Max size IP datagram is 64k - 1 */ 1236 #define TCP_MSS_MAX_IPV4 (IP_MAXPACKET - (sizeof (ipha_t) + sizeof (tcph_t))) 1237 #define TCP_MSS_MAX_IPV6 (IP_MAXPACKET - (sizeof (ip6_t) + sizeof (tcph_t))) 1238 /* Max of the above */ 1239 #define TCP_MSS_MAX TCP_MSS_MAX_IPV4 1240 1241 /* Largest TCP port number */ 1242 #define TCP_MAX_PORT (64 * 1024 - 1) 1243 1244 /* 1245 * tcp_wroff_xtra is the extra space in front of TCP/IP header for link 1246 * layer header. It has to be a multiple of 4. 1247 */ 1248 static tcpparam_t tcp_wroff_xtra_param = { 0, 256, 32, "tcp_wroff_xtra" }; 1249 #define tcp_wroff_xtra tcp_wroff_xtra_param.tcp_param_val 1250 1251 /* 1252 * All of these are alterable, within the min/max values given, at run time. 1253 * Note that the default value of "tcp_time_wait_interval" is four minutes, 1254 * per the TCP spec. 1255 */ 1256 /* BEGIN CSTYLED */ 1257 tcpparam_t tcp_param_arr[] = { 1258 /*min max value name */ 1259 { 1*SECONDS, 10*MINUTES, 1*MINUTES, "tcp_time_wait_interval"}, 1260 { 1, PARAM_MAX, 128, "tcp_conn_req_max_q" }, 1261 { 0, PARAM_MAX, 1024, "tcp_conn_req_max_q0" }, 1262 { 1, 1024, 1, "tcp_conn_req_min" }, 1263 { 0*MS, 20*SECONDS, 0*MS, "tcp_conn_grace_period" }, 1264 { 128, (1<<30), 1024*1024, "tcp_cwnd_max" }, 1265 { 0, 10, 0, "tcp_debug" }, 1266 { 1024, (32*1024), 1024, "tcp_smallest_nonpriv_port"}, 1267 { 1*SECONDS, PARAM_MAX, 3*MINUTES, "tcp_ip_abort_cinterval"}, 1268 { 1*SECONDS, PARAM_MAX, 3*MINUTES, "tcp_ip_abort_linterval"}, 1269 { 500*MS, PARAM_MAX, 8*MINUTES, "tcp_ip_abort_interval"}, 1270 { 1*SECONDS, PARAM_MAX, 10*SECONDS, "tcp_ip_notify_cinterval"}, 1271 { 500*MS, PARAM_MAX, 10*SECONDS, "tcp_ip_notify_interval"}, 1272 { 1, 255, 64, "tcp_ipv4_ttl"}, 1273 { 10*SECONDS, 10*DAYS, 2*HOURS, "tcp_keepalive_interval"}, 1274 { 0, 100, 10, "tcp_maxpsz_multiplier" }, 1275 { 1, TCP_MSS_MAX_IPV4, 536, "tcp_mss_def_ipv4"}, 1276 { 1, TCP_MSS_MAX_IPV4, TCP_MSS_MAX_IPV4, "tcp_mss_max_ipv4"}, 1277 { 1, TCP_MSS_MAX, 108, "tcp_mss_min"}, 1278 { 1, (64*1024)-1, (4*1024)-1, "tcp_naglim_def"}, 1279 { 1*MS, 20*SECONDS, 3*SECONDS, "tcp_rexmit_interval_initial"}, 1280 { 1*MS, 2*HOURS, 60*SECONDS, "tcp_rexmit_interval_max"}, 1281 { 1*MS, 2*HOURS, 400*MS, "tcp_rexmit_interval_min"}, 1282 { 1*MS, 1*MINUTES, 100*MS, "tcp_deferred_ack_interval" }, 1283 { 0, 16, 0, "tcp_snd_lowat_fraction" }, 1284 { 0, 128000, 0, "tcp_sth_rcv_hiwat" }, 1285 { 0, 128000, 0, "tcp_sth_rcv_lowat" }, 1286 { 1, 10000, 3, "tcp_dupack_fast_retransmit" }, 1287 { 0, 1, 0, "tcp_ignore_path_mtu" }, 1288 { 1024, TCP_MAX_PORT, 32*1024, "tcp_smallest_anon_port"}, 1289 { 1024, TCP_MAX_PORT, TCP_MAX_PORT, "tcp_largest_anon_port"}, 1290 { TCP_XMIT_LOWATER, (1<<30), TCP_XMIT_HIWATER,"tcp_xmit_hiwat"}, 1291 { TCP_XMIT_LOWATER, (1<<30), TCP_XMIT_LOWATER,"tcp_xmit_lowat"}, 1292 { TCP_RECV_LOWATER, (1<<30), TCP_RECV_HIWATER,"tcp_recv_hiwat"}, 1293 { 1, 65536, 4, "tcp_recv_hiwat_minmss"}, 1294 { 1*SECONDS, PARAM_MAX, 675*SECONDS, "tcp_fin_wait_2_flush_interval"}, 1295 { 0, TCP_MSS_MAX, 64, "tcp_co_min"}, 1296 { 8192, (1<<30), 1024*1024, "tcp_max_buf"}, 1297 /* 1298 * Question: What default value should I set for tcp_strong_iss? 1299 */ 1300 { 0, 2, 1, "tcp_strong_iss"}, 1301 { 0, 65536, 20, "tcp_rtt_updates"}, 1302 { 0, 1, 1, "tcp_wscale_always"}, 1303 { 0, 1, 0, "tcp_tstamp_always"}, 1304 { 0, 1, 1, "tcp_tstamp_if_wscale"}, 1305 { 0*MS, 2*HOURS, 0*MS, "tcp_rexmit_interval_extra"}, 1306 { 0, 16, 2, "tcp_deferred_acks_max"}, 1307 { 1, 16384, 4, "tcp_slow_start_after_idle"}, 1308 { 1, 4, 4, "tcp_slow_start_initial"}, 1309 { 10*MS, 50*MS, 20*MS, "tcp_co_timer_interval"}, 1310 { 0, 2, 2, "tcp_sack_permitted"}, 1311 { 0, 1, 0, "tcp_trace"}, 1312 { 0, 1, 1, "tcp_compression_enabled"}, 1313 { 0, IPV6_MAX_HOPS, IPV6_DEFAULT_HOPS, "tcp_ipv6_hoplimit"}, 1314 { 1, TCP_MSS_MAX_IPV6, 1220, "tcp_mss_def_ipv6"}, 1315 { 1, TCP_MSS_MAX_IPV6, TCP_MSS_MAX_IPV6, "tcp_mss_max_ipv6"}, 1316 { 0, 1, 0, "tcp_rev_src_routes"}, 1317 { 10*MS, 500*MS, 50*MS, "tcp_local_dack_interval"}, 1318 { 100*MS, 60*SECONDS, 1*SECONDS, "tcp_ndd_get_info_interval"}, 1319 { 0, 16, 8, "tcp_local_dacks_max"}, 1320 { 0, 2, 1, "tcp_ecn_permitted"}, 1321 { 0, 1, 1, "tcp_rst_sent_rate_enabled"}, 1322 { 0, PARAM_MAX, 40, "tcp_rst_sent_rate"}, 1323 { 0, 100*MS, 50*MS, "tcp_push_timer_interval"}, 1324 { 0, 1, 0, "tcp_use_smss_as_mss_opt"}, 1325 { 0, PARAM_MAX, 8*MINUTES, "tcp_keepalive_abort_interval"}, 1326 }; 1327 /* END CSTYLED */ 1328 1329 /* 1330 * tcp_mdt_hdr_{head,tail}_min are the leading and trailing spaces of 1331 * each header fragment in the header buffer. Each parameter value has 1332 * to be a multiple of 4 (32-bit aligned). 1333 */ 1334 static tcpparam_t tcp_mdt_head_param = { 32, 256, 32, "tcp_mdt_hdr_head_min" }; 1335 static tcpparam_t tcp_mdt_tail_param = { 0, 256, 32, "tcp_mdt_hdr_tail_min" }; 1336 #define tcp_mdt_hdr_head_min tcp_mdt_head_param.tcp_param_val 1337 #define tcp_mdt_hdr_tail_min tcp_mdt_tail_param.tcp_param_val 1338 1339 /* 1340 * tcp_mdt_max_pbufs is the upper limit value that tcp uses to figure out 1341 * the maximum number of payload buffers associated per Multidata. 1342 */ 1343 static tcpparam_t tcp_mdt_max_pbufs_param = 1344 { 1, MULTIDATA_MAX_PBUFS, MULTIDATA_MAX_PBUFS, "tcp_mdt_max_pbufs" }; 1345 #define tcp_mdt_max_pbufs tcp_mdt_max_pbufs_param.tcp_param_val 1346 1347 /* Round up the value to the nearest mss. */ 1348 #define MSS_ROUNDUP(value, mss) ((((value) - 1) / (mss) + 1) * (mss)) 1349 1350 /* 1351 * Set ECN capable transport (ECT) code point in IP header. 1352 * 1353 * Note that there are 2 ECT code points '01' and '10', which are called 1354 * ECT(1) and ECT(0) respectively. Here we follow the original ECT code 1355 * point ECT(0) for TCP as described in RFC 2481. 1356 */ 1357 #define SET_ECT(tcp, iph) \ 1358 if ((tcp)->tcp_ipversion == IPV4_VERSION) { \ 1359 /* We need to clear the code point first. */ \ 1360 ((ipha_t *)(iph))->ipha_type_of_service &= 0xFC; \ 1361 ((ipha_t *)(iph))->ipha_type_of_service |= IPH_ECN_ECT0; \ 1362 } else { \ 1363 ((ip6_t *)(iph))->ip6_vcf &= htonl(0xFFCFFFFF); \ 1364 ((ip6_t *)(iph))->ip6_vcf |= htonl(IPH_ECN_ECT0 << 20); \ 1365 } 1366 1367 /* 1368 * The format argument to pass to tcp_display(). 1369 * DISP_PORT_ONLY means that the returned string has only port info. 1370 * DISP_ADDR_AND_PORT means that the returned string also contains the 1371 * remote and local IP address. 1372 */ 1373 #define DISP_PORT_ONLY 1 1374 #define DISP_ADDR_AND_PORT 2 1375 1376 /* 1377 * This controls the rate some ndd info report functions can be used 1378 * by non-privileged users. It stores the last time such info is 1379 * requested. When those report functions are called again, this 1380 * is checked with the current time and compare with the ndd param 1381 * tcp_ndd_get_info_interval. 1382 */ 1383 static clock_t tcp_last_ndd_get_info_time = 0; 1384 #define NDD_TOO_QUICK_MSG \ 1385 "ndd get info rate too high for non-privileged users, try again " \ 1386 "later.\n" 1387 #define NDD_OUT_OF_BUF_MSG "<< Out of buffer >>\n" 1388 1389 #define IS_VMLOANED_MBLK(mp) \ 1390 (((mp)->b_datap->db_struioflag & STRUIO_ZC) != 0) 1391 1392 /* 1393 * These two variables control the rate for TCP to generate RSTs in 1394 * response to segments not belonging to any connections. We limit 1395 * TCP to sent out tcp_rst_sent_rate (ndd param) number of RSTs in 1396 * each 1 second interval. This is to protect TCP against DoS attack. 1397 */ 1398 static clock_t tcp_last_rst_intrvl; 1399 static uint32_t tcp_rst_cnt; 1400 1401 /* The number of RST not sent because of the rate limit. */ 1402 static uint32_t tcp_rst_unsent; 1403 1404 /* Enable or disable b_cont M_MULTIDATA chaining for MDT. */ 1405 boolean_t tcp_mdt_chain = B_TRUE; 1406 1407 /* 1408 * MDT threshold in the form of effective send MSS multiplier; we take 1409 * the MDT path if the amount of unsent data exceeds the threshold value 1410 * (default threshold is 1*SMSS). 1411 */ 1412 uint_t tcp_mdt_smss_threshold = 1; 1413 1414 uint32_t do_tcpzcopy = 1; /* 0: disable, 1: enable, 2: force */ 1415 1416 /* 1417 * Forces all connections to obey the value of the tcp_maxpsz_multiplier 1418 * tunable settable via NDD. Otherwise, the per-connection behavior is 1419 * determined dynamically during tcp_adapt_ire(), which is the default. 1420 */ 1421 boolean_t tcp_static_maxpsz = B_FALSE; 1422 1423 /* If set to 0, pick ephemeral port sequentially; otherwise randomly. */ 1424 uint32_t tcp_random_anon_port = 1; 1425 1426 /* 1427 * To reach to an eager in Q0 which can be dropped due to an incoming 1428 * new SYN request when Q0 is full, a new doubly linked list is 1429 * introduced. This list allows to select an eager from Q0 in O(1) time. 1430 * This is needed to avoid spending too much time walking through the 1431 * long list of eagers in Q0 when tcp_drop_q0() is called. Each member of 1432 * this new list has to be a member of Q0. 1433 * This list is headed by listener's tcp_t. When the list is empty, 1434 * both the pointers - tcp_eager_next_drop_q0 and tcp_eager_prev_drop_q0, 1435 * of listener's tcp_t point to listener's tcp_t itself. 1436 * 1437 * Given an eager in Q0 and a listener, MAKE_DROPPABLE() puts the eager 1438 * in the list. MAKE_UNDROPPABLE() takes the eager out of the list. 1439 * These macros do not affect the eager's membership to Q0. 1440 */ 1441 1442 1443 #define MAKE_DROPPABLE(listener, eager) \ 1444 if ((eager)->tcp_eager_next_drop_q0 == NULL) { \ 1445 (listener)->tcp_eager_next_drop_q0->tcp_eager_prev_drop_q0\ 1446 = (eager); \ 1447 (eager)->tcp_eager_prev_drop_q0 = (listener); \ 1448 (eager)->tcp_eager_next_drop_q0 = \ 1449 (listener)->tcp_eager_next_drop_q0; \ 1450 (listener)->tcp_eager_next_drop_q0 = (eager); \ 1451 } 1452 1453 #define MAKE_UNDROPPABLE(eager) \ 1454 if ((eager)->tcp_eager_next_drop_q0 != NULL) { \ 1455 (eager)->tcp_eager_next_drop_q0->tcp_eager_prev_drop_q0 \ 1456 = (eager)->tcp_eager_prev_drop_q0; \ 1457 (eager)->tcp_eager_prev_drop_q0->tcp_eager_next_drop_q0 \ 1458 = (eager)->tcp_eager_next_drop_q0; \ 1459 (eager)->tcp_eager_prev_drop_q0 = NULL; \ 1460 (eager)->tcp_eager_next_drop_q0 = NULL; \ 1461 } 1462 1463 /* 1464 * If tcp_drop_ack_unsent_cnt is greater than 0, when TCP receives more 1465 * than tcp_drop_ack_unsent_cnt number of ACKs which acknowledge unsent 1466 * data, TCP will not respond with an ACK. RFC 793 requires that 1467 * TCP responds with an ACK for such a bogus ACK. By not following 1468 * the RFC, we prevent TCP from getting into an ACK storm if somehow 1469 * an attacker successfully spoofs an acceptable segment to our 1470 * peer; or when our peer is "confused." 1471 */ 1472 uint32_t tcp_drop_ack_unsent_cnt = 10; 1473 1474 /* 1475 * Hook functions to enable cluster networking 1476 * On non-clustered systems these vectors must always be NULL. 1477 */ 1478 1479 void (*cl_inet_listen)(uint8_t protocol, sa_family_t addr_family, 1480 uint8_t *laddrp, in_port_t lport) = NULL; 1481 void (*cl_inet_unlisten)(uint8_t protocol, sa_family_t addr_family, 1482 uint8_t *laddrp, in_port_t lport) = NULL; 1483 void (*cl_inet_connect)(uint8_t protocol, sa_family_t addr_family, 1484 uint8_t *laddrp, in_port_t lport, 1485 uint8_t *faddrp, in_port_t fport) = NULL; 1486 void (*cl_inet_disconnect)(uint8_t protocol, sa_family_t addr_family, 1487 uint8_t *laddrp, in_port_t lport, 1488 uint8_t *faddrp, in_port_t fport) = NULL; 1489 1490 /* 1491 * The following are defined in ip.c 1492 */ 1493 extern int (*cl_inet_isclusterwide)(uint8_t protocol, sa_family_t addr_family, 1494 uint8_t *laddrp); 1495 extern uint32_t (*cl_inet_ipident)(uint8_t protocol, sa_family_t addr_family, 1496 uint8_t *laddrp, uint8_t *faddrp); 1497 1498 #define CL_INET_CONNECT(tcp) { \ 1499 if (cl_inet_connect != NULL) { \ 1500 /* \ 1501 * Running in cluster mode - register active connection \ 1502 * information \ 1503 */ \ 1504 if ((tcp)->tcp_ipversion == IPV4_VERSION) { \ 1505 if ((tcp)->tcp_ipha->ipha_src != 0) { \ 1506 (*cl_inet_connect)(IPPROTO_TCP, AF_INET,\ 1507 (uint8_t *)(&((tcp)->tcp_ipha->ipha_src)),\ 1508 (in_port_t)(tcp)->tcp_lport, \ 1509 (uint8_t *)(&((tcp)->tcp_ipha->ipha_dst)),\ 1510 (in_port_t)(tcp)->tcp_fport); \ 1511 } \ 1512 } else { \ 1513 if (!IN6_IS_ADDR_UNSPECIFIED( \ 1514 &(tcp)->tcp_ip6h->ip6_src)) {\ 1515 (*cl_inet_connect)(IPPROTO_TCP, AF_INET6,\ 1516 (uint8_t *)(&((tcp)->tcp_ip6h->ip6_src)),\ 1517 (in_port_t)(tcp)->tcp_lport, \ 1518 (uint8_t *)(&((tcp)->tcp_ip6h->ip6_dst)),\ 1519 (in_port_t)(tcp)->tcp_fport); \ 1520 } \ 1521 } \ 1522 } \ 1523 } 1524 1525 #define CL_INET_DISCONNECT(tcp) { \ 1526 if (cl_inet_disconnect != NULL) { \ 1527 /* \ 1528 * Running in cluster mode - deregister active \ 1529 * connection information \ 1530 */ \ 1531 if ((tcp)->tcp_ipversion == IPV4_VERSION) { \ 1532 if ((tcp)->tcp_ip_src != 0) { \ 1533 (*cl_inet_disconnect)(IPPROTO_TCP, \ 1534 AF_INET, \ 1535 (uint8_t *)(&((tcp)->tcp_ip_src)),\ 1536 (in_port_t)(tcp)->tcp_lport, \ 1537 (uint8_t *) \ 1538 (&((tcp)->tcp_ipha->ipha_dst)),\ 1539 (in_port_t)(tcp)->tcp_fport); \ 1540 } \ 1541 } else { \ 1542 if (!IN6_IS_ADDR_UNSPECIFIED( \ 1543 &(tcp)->tcp_ip_src_v6)) { \ 1544 (*cl_inet_disconnect)(IPPROTO_TCP, AF_INET6,\ 1545 (uint8_t *)(&((tcp)->tcp_ip_src_v6)),\ 1546 (in_port_t)(tcp)->tcp_lport, \ 1547 (uint8_t *) \ 1548 (&((tcp)->tcp_ip6h->ip6_dst)),\ 1549 (in_port_t)(tcp)->tcp_fport); \ 1550 } \ 1551 } \ 1552 } \ 1553 } 1554 1555 /* 1556 * Cluster networking hook for traversing current connection list. 1557 * This routine is used to extract the current list of live connections 1558 * which must continue to to be dispatched to this node. 1559 */ 1560 int cl_tcp_walk_list(int (*callback)(cl_tcp_info_t *, void *), void *arg); 1561 1562 /* 1563 * Figure out the value of window scale opton. Note that the rwnd is 1564 * ASSUMED to be rounded up to the nearest MSS before the calculation. 1565 * We cannot find the scale value and then do a round up of tcp_rwnd 1566 * because the scale value may not be correct after that. 1567 * 1568 * Set the compiler flag to make this function inline. 1569 */ 1570 static void 1571 tcp_set_ws_value(tcp_t *tcp) 1572 { 1573 int i; 1574 uint32_t rwnd = tcp->tcp_rwnd; 1575 1576 for (i = 0; rwnd > TCP_MAXWIN && i < TCP_MAX_WINSHIFT; 1577 i++, rwnd >>= 1) 1578 ; 1579 tcp->tcp_rcv_ws = i; 1580 } 1581 1582 /* 1583 * Remove a connection from the list of detached TIME_WAIT connections. 1584 * It returns B_FALSE if it can't remove the connection from the list 1585 * as the connection has already been removed from the list due to an 1586 * earlier call to tcp_time_wait_remove(); otherwise it returns B_TRUE. 1587 */ 1588 static boolean_t 1589 tcp_time_wait_remove(tcp_t *tcp, tcp_squeue_priv_t *tcp_time_wait) 1590 { 1591 boolean_t locked = B_FALSE; 1592 1593 if (tcp_time_wait == NULL) { 1594 tcp_time_wait = *((tcp_squeue_priv_t **) 1595 squeue_getprivate(tcp->tcp_connp->conn_sqp, SQPRIVATE_TCP)); 1596 mutex_enter(&tcp_time_wait->tcp_time_wait_lock); 1597 locked = B_TRUE; 1598 } 1599 1600 if (tcp->tcp_time_wait_expire == 0) { 1601 ASSERT(tcp->tcp_time_wait_next == NULL); 1602 ASSERT(tcp->tcp_time_wait_prev == NULL); 1603 if (locked) 1604 mutex_exit(&tcp_time_wait->tcp_time_wait_lock); 1605 return (B_FALSE); 1606 } 1607 ASSERT(TCP_IS_DETACHED(tcp)); 1608 ASSERT(tcp->tcp_state == TCPS_TIME_WAIT); 1609 1610 if (tcp == tcp_time_wait->tcp_time_wait_head) { 1611 ASSERT(tcp->tcp_time_wait_prev == NULL); 1612 tcp_time_wait->tcp_time_wait_head = tcp->tcp_time_wait_next; 1613 if (tcp_time_wait->tcp_time_wait_head != NULL) { 1614 tcp_time_wait->tcp_time_wait_head->tcp_time_wait_prev = 1615 NULL; 1616 } else { 1617 tcp_time_wait->tcp_time_wait_tail = NULL; 1618 } 1619 } else if (tcp == tcp_time_wait->tcp_time_wait_tail) { 1620 ASSERT(tcp != tcp_time_wait->tcp_time_wait_head); 1621 ASSERT(tcp->tcp_time_wait_next == NULL); 1622 tcp_time_wait->tcp_time_wait_tail = tcp->tcp_time_wait_prev; 1623 ASSERT(tcp_time_wait->tcp_time_wait_tail != NULL); 1624 tcp_time_wait->tcp_time_wait_tail->tcp_time_wait_next = NULL; 1625 } else { 1626 ASSERT(tcp->tcp_time_wait_prev->tcp_time_wait_next == tcp); 1627 ASSERT(tcp->tcp_time_wait_next->tcp_time_wait_prev == tcp); 1628 tcp->tcp_time_wait_prev->tcp_time_wait_next = 1629 tcp->tcp_time_wait_next; 1630 tcp->tcp_time_wait_next->tcp_time_wait_prev = 1631 tcp->tcp_time_wait_prev; 1632 } 1633 tcp->tcp_time_wait_next = NULL; 1634 tcp->tcp_time_wait_prev = NULL; 1635 tcp->tcp_time_wait_expire = 0; 1636 1637 if (locked) 1638 mutex_exit(&tcp_time_wait->tcp_time_wait_lock); 1639 return (B_TRUE); 1640 } 1641 1642 /* 1643 * Add a connection to the list of detached TIME_WAIT connections 1644 * and set its time to expire. 1645 */ 1646 static void 1647 tcp_time_wait_append(tcp_t *tcp) 1648 { 1649 tcp_squeue_priv_t *tcp_time_wait = 1650 *((tcp_squeue_priv_t **)squeue_getprivate(tcp->tcp_connp->conn_sqp, 1651 SQPRIVATE_TCP)); 1652 1653 tcp_timers_stop(tcp); 1654 1655 /* Freed above */ 1656 ASSERT(tcp->tcp_timer_tid == 0); 1657 ASSERT(tcp->tcp_ack_tid == 0); 1658 1659 /* must have happened at the time of detaching the tcp */ 1660 ASSERT(tcp->tcp_ptpahn == NULL); 1661 ASSERT(tcp->tcp_flow_stopped == 0); 1662 ASSERT(tcp->tcp_time_wait_next == NULL); 1663 ASSERT(tcp->tcp_time_wait_prev == NULL); 1664 ASSERT(tcp->tcp_time_wait_expire == NULL); 1665 ASSERT(tcp->tcp_listener == NULL); 1666 1667 tcp->tcp_time_wait_expire = ddi_get_lbolt(); 1668 /* 1669 * The value computed below in tcp->tcp_time_wait_expire may 1670 * appear negative or wrap around. That is ok since our 1671 * interest is only in the difference between the current lbolt 1672 * value and tcp->tcp_time_wait_expire. But the value should not 1673 * be zero, since it means the tcp is not in the TIME_WAIT list. 1674 * The corresponding comparison in tcp_time_wait_collector() uses 1675 * modular arithmetic. 1676 */ 1677 tcp->tcp_time_wait_expire += 1678 drv_usectohz(tcp_time_wait_interval * 1000); 1679 if (tcp->tcp_time_wait_expire == 0) 1680 tcp->tcp_time_wait_expire = 1; 1681 1682 ASSERT(TCP_IS_DETACHED(tcp)); 1683 ASSERT(tcp->tcp_state == TCPS_TIME_WAIT); 1684 ASSERT(tcp->tcp_time_wait_next == NULL); 1685 ASSERT(tcp->tcp_time_wait_prev == NULL); 1686 TCP_DBGSTAT(tcp_time_wait); 1687 mutex_enter(&tcp_time_wait->tcp_time_wait_lock); 1688 if (tcp_time_wait->tcp_time_wait_head == NULL) { 1689 ASSERT(tcp_time_wait->tcp_time_wait_tail == NULL); 1690 tcp_time_wait->tcp_time_wait_head = tcp; 1691 } else { 1692 ASSERT(tcp_time_wait->tcp_time_wait_tail != NULL); 1693 ASSERT(tcp_time_wait->tcp_time_wait_tail->tcp_state == 1694 TCPS_TIME_WAIT); 1695 tcp_time_wait->tcp_time_wait_tail->tcp_time_wait_next = tcp; 1696 tcp->tcp_time_wait_prev = tcp_time_wait->tcp_time_wait_tail; 1697 } 1698 tcp_time_wait->tcp_time_wait_tail = tcp; 1699 mutex_exit(&tcp_time_wait->tcp_time_wait_lock); 1700 } 1701 1702 /* ARGSUSED */ 1703 void 1704 tcp_timewait_output(void *arg, mblk_t *mp, void *arg2) 1705 { 1706 conn_t *connp = (conn_t *)arg; 1707 tcp_t *tcp = connp->conn_tcp; 1708 1709 ASSERT(tcp != NULL); 1710 if (tcp->tcp_state == TCPS_CLOSED) { 1711 return; 1712 } 1713 1714 ASSERT((tcp->tcp_family == AF_INET && 1715 tcp->tcp_ipversion == IPV4_VERSION) || 1716 (tcp->tcp_family == AF_INET6 && 1717 (tcp->tcp_ipversion == IPV4_VERSION || 1718 tcp->tcp_ipversion == IPV6_VERSION))); 1719 ASSERT(!tcp->tcp_listener); 1720 1721 TCP_STAT(tcp_time_wait_reap); 1722 ASSERT(TCP_IS_DETACHED(tcp)); 1723 1724 /* 1725 * Because they have no upstream client to rebind or tcp_close() 1726 * them later, we axe the connection here and now. 1727 */ 1728 tcp_close_detached(tcp); 1729 } 1730 1731 void 1732 tcp_cleanup(tcp_t *tcp) 1733 { 1734 mblk_t *mp; 1735 char *tcp_iphc; 1736 int tcp_iphc_len; 1737 int tcp_hdr_grown; 1738 tcp_sack_info_t *tcp_sack_info; 1739 conn_t *connp = tcp->tcp_connp; 1740 1741 tcp_bind_hash_remove(tcp); 1742 tcp_free(tcp); 1743 1744 /* Release any SSL context */ 1745 if (tcp->tcp_kssl_ent != NULL) { 1746 kssl_release_ent(tcp->tcp_kssl_ent, NULL, KSSL_NO_PROXY); 1747 tcp->tcp_kssl_ent = NULL; 1748 } 1749 1750 if (tcp->tcp_kssl_ctx != NULL) { 1751 kssl_release_ctx(tcp->tcp_kssl_ctx); 1752 tcp->tcp_kssl_ctx = NULL; 1753 } 1754 tcp->tcp_kssl_pending = B_FALSE; 1755 1756 conn_delete_ire(connp, NULL); 1757 if (connp->conn_flags & IPCL_TCPCONN) { 1758 if (connp->conn_latch != NULL) 1759 IPLATCH_REFRELE(connp->conn_latch); 1760 if (connp->conn_policy != NULL) 1761 IPPH_REFRELE(connp->conn_policy); 1762 } 1763 1764 /* 1765 * Since we will bzero the entire structure, we need to 1766 * remove it and reinsert it in global hash list. We 1767 * know the walkers can't get to this conn because we 1768 * had set CONDEMNED flag earlier and checked reference 1769 * under conn_lock so walker won't pick it and when we 1770 * go the ipcl_globalhash_remove() below, no walker 1771 * can get to it. 1772 */ 1773 ipcl_globalhash_remove(connp); 1774 1775 /* Save some state */ 1776 mp = tcp->tcp_timercache; 1777 1778 tcp_sack_info = tcp->tcp_sack_info; 1779 tcp_iphc = tcp->tcp_iphc; 1780 tcp_iphc_len = tcp->tcp_iphc_len; 1781 tcp_hdr_grown = tcp->tcp_hdr_grown; 1782 1783 if (connp->conn_cred != NULL) 1784 crfree(connp->conn_cred); 1785 if (connp->conn_peercred != NULL) 1786 crfree(connp->conn_peercred); 1787 bzero(connp, sizeof (conn_t)); 1788 bzero(tcp, sizeof (tcp_t)); 1789 1790 /* restore the state */ 1791 tcp->tcp_timercache = mp; 1792 1793 tcp->tcp_sack_info = tcp_sack_info; 1794 tcp->tcp_iphc = tcp_iphc; 1795 tcp->tcp_iphc_len = tcp_iphc_len; 1796 tcp->tcp_hdr_grown = tcp_hdr_grown; 1797 1798 1799 tcp->tcp_connp = connp; 1800 1801 connp->conn_tcp = tcp; 1802 connp->conn_flags = IPCL_TCPCONN; 1803 connp->conn_state_flags = CONN_INCIPIENT; 1804 connp->conn_ulp = IPPROTO_TCP; 1805 connp->conn_ref = 1; 1806 1807 ipcl_globalhash_insert(connp); 1808 } 1809 1810 /* 1811 * Blows away all tcps whose TIME_WAIT has expired. List traversal 1812 * is done forwards from the head. 1813 */ 1814 /* ARGSUSED */ 1815 void 1816 tcp_time_wait_collector(void *arg) 1817 { 1818 tcp_t *tcp; 1819 clock_t now; 1820 mblk_t *mp; 1821 conn_t *connp; 1822 kmutex_t *lock; 1823 boolean_t removed; 1824 1825 squeue_t *sqp = (squeue_t *)arg; 1826 tcp_squeue_priv_t *tcp_time_wait = 1827 *((tcp_squeue_priv_t **)squeue_getprivate(sqp, SQPRIVATE_TCP)); 1828 1829 mutex_enter(&tcp_time_wait->tcp_time_wait_lock); 1830 tcp_time_wait->tcp_time_wait_tid = 0; 1831 1832 if (tcp_time_wait->tcp_free_list != NULL && 1833 tcp_time_wait->tcp_free_list->tcp_in_free_list == B_TRUE) { 1834 TCP_STAT(tcp_freelist_cleanup); 1835 while ((tcp = tcp_time_wait->tcp_free_list) != NULL) { 1836 tcp_time_wait->tcp_free_list = tcp->tcp_time_wait_next; 1837 CONN_DEC_REF(tcp->tcp_connp); 1838 } 1839 tcp_time_wait->tcp_free_list_cnt = 0; 1840 } 1841 1842 /* 1843 * In order to reap time waits reliably, we should use a 1844 * source of time that is not adjustable by the user -- hence 1845 * the call to ddi_get_lbolt(). 1846 */ 1847 now = ddi_get_lbolt(); 1848 while ((tcp = tcp_time_wait->tcp_time_wait_head) != NULL) { 1849 /* 1850 * Compare times using modular arithmetic, since 1851 * lbolt can wrapover. 1852 */ 1853 if ((now - tcp->tcp_time_wait_expire) < 0) { 1854 break; 1855 } 1856 1857 removed = tcp_time_wait_remove(tcp, tcp_time_wait); 1858 ASSERT(removed); 1859 1860 connp = tcp->tcp_connp; 1861 ASSERT(connp->conn_fanout != NULL); 1862 lock = &connp->conn_fanout->connf_lock; 1863 /* 1864 * This is essentially a TW reclaim fast path optimization for 1865 * performance where the timewait collector checks under the 1866 * fanout lock (so that no one else can get access to the 1867 * conn_t) that the refcnt is 2 i.e. one for TCP and one for 1868 * the classifier hash list. If ref count is indeed 2, we can 1869 * just remove the conn under the fanout lock and avoid 1870 * cleaning up the conn under the squeue, provided that 1871 * clustering callbacks are not enabled. If clustering is 1872 * enabled, we need to make the clustering callback before 1873 * setting the CONDEMNED flag and after dropping all locks and 1874 * so we forego this optimization and fall back to the slow 1875 * path. Also please see the comments in tcp_closei_local 1876 * regarding the refcnt logic. 1877 * 1878 * Since we are holding the tcp_time_wait_lock, its better 1879 * not to block on the fanout_lock because other connections 1880 * can't add themselves to time_wait list. So we do a 1881 * tryenter instead of mutex_enter. 1882 */ 1883 if (mutex_tryenter(lock)) { 1884 mutex_enter(&connp->conn_lock); 1885 if ((connp->conn_ref == 2) && 1886 (cl_inet_disconnect == NULL)) { 1887 ipcl_hash_remove_locked(connp, 1888 connp->conn_fanout); 1889 /* 1890 * Set the CONDEMNED flag now itself so that 1891 * the refcnt cannot increase due to any 1892 * walker. But we have still not cleaned up 1893 * conn_ire_cache. This is still ok since 1894 * we are going to clean it up in tcp_cleanup 1895 * immediately and any interface unplumb 1896 * thread will wait till the ire is blown away 1897 */ 1898 connp->conn_state_flags |= CONN_CONDEMNED; 1899 mutex_exit(lock); 1900 mutex_exit(&connp->conn_lock); 1901 if (tcp_time_wait->tcp_free_list_cnt < 1902 tcp_free_list_max_cnt) { 1903 /* Add to head of tcp_free_list */ 1904 mutex_exit( 1905 &tcp_time_wait->tcp_time_wait_lock); 1906 tcp_cleanup(tcp); 1907 mutex_enter( 1908 &tcp_time_wait->tcp_time_wait_lock); 1909 tcp->tcp_time_wait_next = 1910 tcp_time_wait->tcp_free_list; 1911 tcp_time_wait->tcp_free_list = tcp; 1912 tcp_time_wait->tcp_free_list_cnt++; 1913 continue; 1914 } else { 1915 /* Do not add to tcp_free_list */ 1916 mutex_exit( 1917 &tcp_time_wait->tcp_time_wait_lock); 1918 tcp_bind_hash_remove(tcp); 1919 conn_delete_ire(tcp->tcp_connp, NULL); 1920 CONN_DEC_REF(tcp->tcp_connp); 1921 } 1922 } else { 1923 CONN_INC_REF_LOCKED(connp); 1924 mutex_exit(lock); 1925 mutex_exit(&tcp_time_wait->tcp_time_wait_lock); 1926 mutex_exit(&connp->conn_lock); 1927 /* 1928 * We can reuse the closemp here since conn has 1929 * detached (otherwise we wouldn't even be in 1930 * time_wait list). tcp_closemp_used can safely 1931 * be changed without taking a lock as no other 1932 * thread can concurrently access it at this 1933 * point in the connection lifecycle. We 1934 * increment tcp_closemp_used to record any 1935 * attempt to reuse tcp_closemp while it is 1936 * still in use. 1937 */ 1938 1939 if (tcp->tcp_closemp.b_prev == NULL) 1940 tcp->tcp_closemp_used = 1; 1941 else 1942 tcp->tcp_closemp_used++; 1943 1944 TCP_DEBUG_GETPCSTACK(tcp->tcmp_stk, 15); 1945 mp = &tcp->tcp_closemp; 1946 squeue_fill(connp->conn_sqp, mp, 1947 tcp_timewait_output, connp, 1948 SQTAG_TCP_TIMEWAIT); 1949 } 1950 } else { 1951 mutex_enter(&connp->conn_lock); 1952 CONN_INC_REF_LOCKED(connp); 1953 mutex_exit(&tcp_time_wait->tcp_time_wait_lock); 1954 mutex_exit(&connp->conn_lock); 1955 /* 1956 * We can reuse the closemp here since conn has 1957 * detached (otherwise we wouldn't even be in 1958 * time_wait list). tcp_closemp_used can safely 1959 * be changed without taking a lock as no other 1960 * thread can concurrently access it at this 1961 * point in the connection lifecycle. We 1962 * increment tcp_closemp_used to record any 1963 * attempt to reuse tcp_closemp while it is 1964 * still in use. 1965 */ 1966 1967 if (tcp->tcp_closemp.b_prev == NULL) 1968 tcp->tcp_closemp_used = 1; 1969 else 1970 tcp->tcp_closemp_used++; 1971 1972 TCP_DEBUG_GETPCSTACK(tcp->tcmp_stk, 15); 1973 mp = &tcp->tcp_closemp; 1974 squeue_fill(connp->conn_sqp, mp, 1975 tcp_timewait_output, connp, 0); 1976 } 1977 mutex_enter(&tcp_time_wait->tcp_time_wait_lock); 1978 } 1979 1980 if (tcp_time_wait->tcp_free_list != NULL) 1981 tcp_time_wait->tcp_free_list->tcp_in_free_list = B_TRUE; 1982 1983 tcp_time_wait->tcp_time_wait_tid = 1984 timeout(tcp_time_wait_collector, sqp, TCP_TIME_WAIT_DELAY); 1985 mutex_exit(&tcp_time_wait->tcp_time_wait_lock); 1986 } 1987 1988 /* 1989 * Reply to a clients T_CONN_RES TPI message. This function 1990 * is used only for TLI/XTI listener. Sockfs sends T_CONN_RES 1991 * on the acceptor STREAM and processed in tcp_wput_accept(). 1992 * Read the block comment on top of tcp_conn_request(). 1993 */ 1994 static void 1995 tcp_accept(tcp_t *listener, mblk_t *mp) 1996 { 1997 tcp_t *acceptor; 1998 tcp_t *eager; 1999 tcp_t *tcp; 2000 struct T_conn_res *tcr; 2001 t_uscalar_t acceptor_id; 2002 t_scalar_t seqnum; 2003 mblk_t *opt_mp = NULL; /* T_OPTMGMT_REQ messages */ 2004 mblk_t *ok_mp; 2005 mblk_t *mp1; 2006 2007 if ((mp->b_wptr - mp->b_rptr) < sizeof (*tcr)) { 2008 tcp_err_ack(listener, mp, TPROTO, 0); 2009 return; 2010 } 2011 tcr = (struct T_conn_res *)mp->b_rptr; 2012 2013 /* 2014 * Under ILP32 the stream head points tcr->ACCEPTOR_id at the 2015 * read side queue of the streams device underneath us i.e. the 2016 * read side queue of 'ip'. Since we can't deference QUEUE_ptr we 2017 * look it up in the queue_hash. Under LP64 it sends down the 2018 * minor_t of the accepting endpoint. 2019 * 2020 * Once the acceptor/eager are modified (in tcp_accept_swap) the 2021 * fanout hash lock is held. 2022 * This prevents any thread from entering the acceptor queue from 2023 * below (since it has not been hard bound yet i.e. any inbound 2024 * packets will arrive on the listener or default tcp queue and 2025 * go through tcp_lookup). 2026 * The CONN_INC_REF will prevent the acceptor from closing. 2027 * 2028 * XXX It is still possible for a tli application to send down data 2029 * on the accepting stream while another thread calls t_accept. 2030 * This should not be a problem for well-behaved applications since 2031 * the T_OK_ACK is sent after the queue swapping is completed. 2032 * 2033 * If the accepting fd is the same as the listening fd, avoid 2034 * queue hash lookup since that will return an eager listener in a 2035 * already established state. 2036 */ 2037 acceptor_id = tcr->ACCEPTOR_id; 2038 mutex_enter(&listener->tcp_eager_lock); 2039 if (listener->tcp_acceptor_id == acceptor_id) { 2040 eager = listener->tcp_eager_next_q; 2041 /* only count how many T_CONN_INDs so don't count q0 */ 2042 if ((listener->tcp_conn_req_cnt_q != 1) || 2043 (eager->tcp_conn_req_seqnum != tcr->SEQ_number)) { 2044 mutex_exit(&listener->tcp_eager_lock); 2045 tcp_err_ack(listener, mp, TBADF, 0); 2046 return; 2047 } 2048 if (listener->tcp_conn_req_cnt_q0 != 0) { 2049 /* Throw away all the eagers on q0. */ 2050 tcp_eager_cleanup(listener, 1); 2051 } 2052 if (listener->tcp_syn_defense) { 2053 listener->tcp_syn_defense = B_FALSE; 2054 if (listener->tcp_ip_addr_cache != NULL) { 2055 kmem_free(listener->tcp_ip_addr_cache, 2056 IP_ADDR_CACHE_SIZE * sizeof (ipaddr_t)); 2057 listener->tcp_ip_addr_cache = NULL; 2058 } 2059 } 2060 /* 2061 * Transfer tcp_conn_req_max to the eager so that when 2062 * a disconnect occurs we can revert the endpoint to the 2063 * listen state. 2064 */ 2065 eager->tcp_conn_req_max = listener->tcp_conn_req_max; 2066 ASSERT(listener->tcp_conn_req_cnt_q0 == 0); 2067 /* 2068 * Get a reference on the acceptor just like the 2069 * tcp_acceptor_hash_lookup below. 2070 */ 2071 acceptor = listener; 2072 CONN_INC_REF(acceptor->tcp_connp); 2073 } else { 2074 acceptor = tcp_acceptor_hash_lookup(acceptor_id); 2075 if (acceptor == NULL) { 2076 if (listener->tcp_debug) { 2077 (void) strlog(TCP_MOD_ID, 0, 1, 2078 SL_ERROR|SL_TRACE, 2079 "tcp_accept: did not find acceptor 0x%x\n", 2080 acceptor_id); 2081 } 2082 mutex_exit(&listener->tcp_eager_lock); 2083 tcp_err_ack(listener, mp, TPROVMISMATCH, 0); 2084 return; 2085 } 2086 /* 2087 * Verify acceptor state. The acceptable states for an acceptor 2088 * include TCPS_IDLE and TCPS_BOUND. 2089 */ 2090 switch (acceptor->tcp_state) { 2091 case TCPS_IDLE: 2092 /* FALLTHRU */ 2093 case TCPS_BOUND: 2094 break; 2095 default: 2096 CONN_DEC_REF(acceptor->tcp_connp); 2097 mutex_exit(&listener->tcp_eager_lock); 2098 tcp_err_ack(listener, mp, TOUTSTATE, 0); 2099 return; 2100 } 2101 } 2102 2103 /* The listener must be in TCPS_LISTEN */ 2104 if (listener->tcp_state != TCPS_LISTEN) { 2105 CONN_DEC_REF(acceptor->tcp_connp); 2106 mutex_exit(&listener->tcp_eager_lock); 2107 tcp_err_ack(listener, mp, TOUTSTATE, 0); 2108 return; 2109 } 2110 2111 /* 2112 * Rendezvous with an eager connection request packet hanging off 2113 * 'tcp' that has the 'seqnum' tag. We tagged the detached open 2114 * tcp structure when the connection packet arrived in 2115 * tcp_conn_request(). 2116 */ 2117 seqnum = tcr->SEQ_number; 2118 eager = listener; 2119 do { 2120 eager = eager->tcp_eager_next_q; 2121 if (eager == NULL) { 2122 CONN_DEC_REF(acceptor->tcp_connp); 2123 mutex_exit(&listener->tcp_eager_lock); 2124 tcp_err_ack(listener, mp, TBADSEQ, 0); 2125 return; 2126 } 2127 } while (eager->tcp_conn_req_seqnum != seqnum); 2128 mutex_exit(&listener->tcp_eager_lock); 2129 2130 /* 2131 * At this point, both acceptor and listener have 2 ref 2132 * that they begin with. Acceptor has one additional ref 2133 * we placed in lookup while listener has 3 additional 2134 * ref for being behind the squeue (tcp_accept() is 2135 * done on listener's squeue); being in classifier hash; 2136 * and eager's ref on listener. 2137 */ 2138 ASSERT(listener->tcp_connp->conn_ref >= 5); 2139 ASSERT(acceptor->tcp_connp->conn_ref >= 3); 2140 2141 /* 2142 * The eager at this point is set in its own squeue and 2143 * could easily have been killed (tcp_accept_finish will 2144 * deal with that) because of a TH_RST so we can only 2145 * ASSERT for a single ref. 2146 */ 2147 ASSERT(eager->tcp_connp->conn_ref >= 1); 2148 2149 /* Pre allocate the stroptions mblk also */ 2150 opt_mp = allocb(sizeof (struct stroptions), BPRI_HI); 2151 if (opt_mp == NULL) { 2152 CONN_DEC_REF(acceptor->tcp_connp); 2153 CONN_DEC_REF(eager->tcp_connp); 2154 tcp_err_ack(listener, mp, TSYSERR, ENOMEM); 2155 return; 2156 } 2157 DB_TYPE(opt_mp) = M_SETOPTS; 2158 opt_mp->b_wptr += sizeof (struct stroptions); 2159 2160 /* 2161 * Prepare for inheriting IPV6_BOUND_IF and IPV6_RECVPKTINFO 2162 * from listener to acceptor. The message is chained on opt_mp 2163 * which will be sent onto eager's squeue. 2164 */ 2165 if (listener->tcp_bound_if != 0) { 2166 /* allocate optmgmt req */ 2167 mp1 = tcp_setsockopt_mp(IPPROTO_IPV6, 2168 IPV6_BOUND_IF, (char *)&listener->tcp_bound_if, 2169 sizeof (int)); 2170 if (mp1 != NULL) 2171 linkb(opt_mp, mp1); 2172 } 2173 if (listener->tcp_ipv6_recvancillary & TCP_IPV6_RECVPKTINFO) { 2174 uint_t on = 1; 2175 2176 /* allocate optmgmt req */ 2177 mp1 = tcp_setsockopt_mp(IPPROTO_IPV6, 2178 IPV6_RECVPKTINFO, (char *)&on, sizeof (on)); 2179 if (mp1 != NULL) 2180 linkb(opt_mp, mp1); 2181 } 2182 2183 /* Re-use mp1 to hold a copy of mp, in case reallocb fails */ 2184 if ((mp1 = copymsg(mp)) == NULL) { 2185 CONN_DEC_REF(acceptor->tcp_connp); 2186 CONN_DEC_REF(eager->tcp_connp); 2187 freemsg(opt_mp); 2188 tcp_err_ack(listener, mp, TSYSERR, ENOMEM); 2189 return; 2190 } 2191 2192 tcr = (struct T_conn_res *)mp1->b_rptr; 2193 2194 /* 2195 * This is an expanded version of mi_tpi_ok_ack_alloc() 2196 * which allocates a larger mblk and appends the new 2197 * local address to the ok_ack. The address is copied by 2198 * soaccept() for getsockname(). 2199 */ 2200 { 2201 int extra; 2202 2203 extra = (eager->tcp_family == AF_INET) ? 2204 sizeof (sin_t) : sizeof (sin6_t); 2205 2206 /* 2207 * Try to re-use mp, if possible. Otherwise, allocate 2208 * an mblk and return it as ok_mp. In any case, mp 2209 * is no longer usable upon return. 2210 */ 2211 if ((ok_mp = mi_tpi_ok_ack_alloc_extra(mp, extra)) == NULL) { 2212 CONN_DEC_REF(acceptor->tcp_connp); 2213 CONN_DEC_REF(eager->tcp_connp); 2214 freemsg(opt_mp); 2215 /* Original mp has been freed by now, so use mp1 */ 2216 tcp_err_ack(listener, mp1, TSYSERR, ENOMEM); 2217 return; 2218 } 2219 2220 mp = NULL; /* We should never use mp after this point */ 2221 2222 switch (extra) { 2223 case sizeof (sin_t): { 2224 sin_t *sin = (sin_t *)ok_mp->b_wptr; 2225 2226 ok_mp->b_wptr += extra; 2227 sin->sin_family = AF_INET; 2228 sin->sin_port = eager->tcp_lport; 2229 sin->sin_addr.s_addr = 2230 eager->tcp_ipha->ipha_src; 2231 break; 2232 } 2233 case sizeof (sin6_t): { 2234 sin6_t *sin6 = (sin6_t *)ok_mp->b_wptr; 2235 2236 ok_mp->b_wptr += extra; 2237 sin6->sin6_family = AF_INET6; 2238 sin6->sin6_port = eager->tcp_lport; 2239 if (eager->tcp_ipversion == IPV4_VERSION) { 2240 sin6->sin6_flowinfo = 0; 2241 IN6_IPADDR_TO_V4MAPPED( 2242 eager->tcp_ipha->ipha_src, 2243 &sin6->sin6_addr); 2244 } else { 2245 ASSERT(eager->tcp_ip6h != NULL); 2246 sin6->sin6_flowinfo = 2247 eager->tcp_ip6h->ip6_vcf & 2248 ~IPV6_VERS_AND_FLOW_MASK; 2249 sin6->sin6_addr = 2250 eager->tcp_ip6h->ip6_src; 2251 } 2252 break; 2253 } 2254 default: 2255 break; 2256 } 2257 ASSERT(ok_mp->b_wptr <= ok_mp->b_datap->db_lim); 2258 } 2259 2260 /* 2261 * If there are no options we know that the T_CONN_RES will 2262 * succeed. However, we can't send the T_OK_ACK upstream until 2263 * the tcp_accept_swap is done since it would be dangerous to 2264 * let the application start using the new fd prior to the swap. 2265 */ 2266 tcp_accept_swap(listener, acceptor, eager); 2267 2268 /* 2269 * tcp_accept_swap unlinks eager from listener but does not drop 2270 * the eager's reference on the listener. 2271 */ 2272 ASSERT(eager->tcp_listener == NULL); 2273 ASSERT(listener->tcp_connp->conn_ref >= 5); 2274 2275 /* 2276 * The eager is now associated with its own queue. Insert in 2277 * the hash so that the connection can be reused for a future 2278 * T_CONN_RES. 2279 */ 2280 tcp_acceptor_hash_insert(acceptor_id, eager); 2281 2282 /* 2283 * We now do the processing of options with T_CONN_RES. 2284 * We delay till now since we wanted to have queue to pass to 2285 * option processing routines that points back to the right 2286 * instance structure which does not happen until after 2287 * tcp_accept_swap(). 2288 * 2289 * Note: 2290 * The sanity of the logic here assumes that whatever options 2291 * are appropriate to inherit from listner=>eager are done 2292 * before this point, and whatever were to be overridden (or not) 2293 * in transfer logic from eager=>acceptor in tcp_accept_swap(). 2294 * [ Warning: acceptor endpoint can have T_OPTMGMT_REQ done to it 2295 * before its ACCEPTOR_id comes down in T_CONN_RES ] 2296 * This may not be true at this point in time but can be fixed 2297 * independently. This option processing code starts with 2298 * the instantiated acceptor instance and the final queue at 2299 * this point. 2300 */ 2301 2302 if (tcr->OPT_length != 0) { 2303 /* Options to process */ 2304 int t_error = 0; 2305 int sys_error = 0; 2306 int do_disconnect = 0; 2307 2308 if (tcp_conprim_opt_process(eager, mp1, 2309 &do_disconnect, &t_error, &sys_error) < 0) { 2310 eager->tcp_accept_error = 1; 2311 if (do_disconnect) { 2312 /* 2313 * An option failed which does not allow 2314 * connection to be accepted. 2315 * 2316 * We allow T_CONN_RES to succeed and 2317 * put a T_DISCON_IND on the eager queue. 2318 */ 2319 ASSERT(t_error == 0 && sys_error == 0); 2320 eager->tcp_send_discon_ind = 1; 2321 } else { 2322 ASSERT(t_error != 0); 2323 freemsg(ok_mp); 2324 /* 2325 * Original mp was either freed or set 2326 * to ok_mp above, so use mp1 instead. 2327 */ 2328 tcp_err_ack(listener, mp1, t_error, sys_error); 2329 goto finish; 2330 } 2331 } 2332 /* 2333 * Most likely success in setting options (except if 2334 * eager->tcp_send_discon_ind set). 2335 * mp1 option buffer represented by OPT_length/offset 2336 * potentially modified and contains results of setting 2337 * options at this point 2338 */ 2339 } 2340 2341 /* We no longer need mp1, since all options processing has passed */ 2342 freemsg(mp1); 2343 2344 putnext(listener->tcp_rq, ok_mp); 2345 2346 mutex_enter(&listener->tcp_eager_lock); 2347 if (listener->tcp_eager_prev_q0->tcp_conn_def_q0) { 2348 tcp_t *tail; 2349 mblk_t *conn_ind; 2350 2351 /* 2352 * This path should not be executed if listener and 2353 * acceptor streams are the same. 2354 */ 2355 ASSERT(listener != acceptor); 2356 2357 tcp = listener->tcp_eager_prev_q0; 2358 /* 2359 * listener->tcp_eager_prev_q0 points to the TAIL of the 2360 * deferred T_conn_ind queue. We need to get to the head of 2361 * the queue in order to send up T_conn_ind the same order as 2362 * how the 3WHS is completed. 2363 */ 2364 while (tcp != listener) { 2365 if (!tcp->tcp_eager_prev_q0->tcp_conn_def_q0) 2366 break; 2367 else 2368 tcp = tcp->tcp_eager_prev_q0; 2369 } 2370 ASSERT(tcp != listener); 2371 conn_ind = tcp->tcp_conn.tcp_eager_conn_ind; 2372 ASSERT(conn_ind != NULL); 2373 tcp->tcp_conn.tcp_eager_conn_ind = NULL; 2374 2375 /* Move from q0 to q */ 2376 ASSERT(listener->tcp_conn_req_cnt_q0 > 0); 2377 listener->tcp_conn_req_cnt_q0--; 2378 listener->tcp_conn_req_cnt_q++; 2379 tcp->tcp_eager_next_q0->tcp_eager_prev_q0 = 2380 tcp->tcp_eager_prev_q0; 2381 tcp->tcp_eager_prev_q0->tcp_eager_next_q0 = 2382 tcp->tcp_eager_next_q0; 2383 tcp->tcp_eager_prev_q0 = NULL; 2384 tcp->tcp_eager_next_q0 = NULL; 2385 tcp->tcp_conn_def_q0 = B_FALSE; 2386 2387 /* Make sure the tcp isn't in the list of droppables */ 2388 ASSERT(tcp->tcp_eager_next_drop_q0 == NULL && 2389 tcp->tcp_eager_prev_drop_q0 == NULL); 2390 2391 /* 2392 * Insert at end of the queue because sockfs sends 2393 * down T_CONN_RES in chronological order. Leaving 2394 * the older conn indications at front of the queue 2395 * helps reducing search time. 2396 */ 2397 tail = listener->tcp_eager_last_q; 2398 if (tail != NULL) 2399 tail->tcp_eager_next_q = tcp; 2400 else 2401 listener->tcp_eager_next_q = tcp; 2402 listener->tcp_eager_last_q = tcp; 2403 tcp->tcp_eager_next_q = NULL; 2404 mutex_exit(&listener->tcp_eager_lock); 2405 putnext(tcp->tcp_rq, conn_ind); 2406 } else { 2407 mutex_exit(&listener->tcp_eager_lock); 2408 } 2409 2410 /* 2411 * Done with the acceptor - free it 2412 * 2413 * Note: from this point on, no access to listener should be made 2414 * as listener can be equal to acceptor. 2415 */ 2416 finish: 2417 ASSERT(acceptor->tcp_detached); 2418 acceptor->tcp_rq = tcp_g_q; 2419 acceptor->tcp_wq = WR(tcp_g_q); 2420 (void) tcp_clean_death(acceptor, 0, 2); 2421 CONN_DEC_REF(acceptor->tcp_connp); 2422 2423 /* 2424 * In case we already received a FIN we have to make tcp_rput send 2425 * the ordrel_ind. This will also send up a window update if the window 2426 * has opened up. 2427 * 2428 * In the normal case of a successful connection acceptance 2429 * we give the O_T_BIND_REQ to the read side put procedure as an 2430 * indication that this was just accepted. This tells tcp_rput to 2431 * pass up any data queued in tcp_rcv_list. 2432 * 2433 * In the fringe case where options sent with T_CONN_RES failed and 2434 * we required, we would be indicating a T_DISCON_IND to blow 2435 * away this connection. 2436 */ 2437 2438 /* 2439 * XXX: we currently have a problem if XTI application closes the 2440 * acceptor stream in between. This problem exists in on10-gate also 2441 * and is well know but nothing can be done short of major rewrite 2442 * to fix it. Now it is possible to take care of it by assigning TLI/XTI 2443 * eager same squeue as listener (we can distinguish non socket 2444 * listeners at the time of handling a SYN in tcp_conn_request) 2445 * and do most of the work that tcp_accept_finish does here itself 2446 * and then get behind the acceptor squeue to access the acceptor 2447 * queue. 2448 */ 2449 /* 2450 * We already have a ref on tcp so no need to do one before squeue_fill 2451 */ 2452 squeue_fill(eager->tcp_connp->conn_sqp, opt_mp, 2453 tcp_accept_finish, eager->tcp_connp, SQTAG_TCP_ACCEPT_FINISH); 2454 } 2455 2456 /* 2457 * Swap information between the eager and acceptor for a TLI/XTI client. 2458 * The sockfs accept is done on the acceptor stream and control goes 2459 * through tcp_wput_accept() and tcp_accept()/tcp_accept_swap() is not 2460 * called. In either case, both the eager and listener are in their own 2461 * perimeter (squeue) and the code has to deal with potential race. 2462 * 2463 * See the block comment on top of tcp_accept() and tcp_wput_accept(). 2464 */ 2465 static void 2466 tcp_accept_swap(tcp_t *listener, tcp_t *acceptor, tcp_t *eager) 2467 { 2468 conn_t *econnp, *aconnp; 2469 2470 ASSERT(eager->tcp_rq == listener->tcp_rq); 2471 ASSERT(eager->tcp_detached && !acceptor->tcp_detached); 2472 ASSERT(!eager->tcp_hard_bound); 2473 ASSERT(!TCP_IS_SOCKET(acceptor)); 2474 ASSERT(!TCP_IS_SOCKET(eager)); 2475 ASSERT(!TCP_IS_SOCKET(listener)); 2476 2477 acceptor->tcp_detached = B_TRUE; 2478 /* 2479 * To permit stream re-use by TLI/XTI, the eager needs a copy of 2480 * the acceptor id. 2481 */ 2482 eager->tcp_acceptor_id = acceptor->tcp_acceptor_id; 2483 2484 /* remove eager from listen list... */ 2485 mutex_enter(&listener->tcp_eager_lock); 2486 tcp_eager_unlink(eager); 2487 ASSERT(eager->tcp_eager_next_q == NULL && 2488 eager->tcp_eager_last_q == NULL); 2489 ASSERT(eager->tcp_eager_next_q0 == NULL && 2490 eager->tcp_eager_prev_q0 == NULL); 2491 mutex_exit(&listener->tcp_eager_lock); 2492 eager->tcp_rq = acceptor->tcp_rq; 2493 eager->tcp_wq = acceptor->tcp_wq; 2494 2495 econnp = eager->tcp_connp; 2496 aconnp = acceptor->tcp_connp; 2497 2498 eager->tcp_rq->q_ptr = econnp; 2499 eager->tcp_wq->q_ptr = econnp; 2500 2501 /* 2502 * In the TLI/XTI loopback case, we are inside the listener's squeue, 2503 * which might be a different squeue from our peer TCP instance. 2504 * For TCP Fusion, the peer expects that whenever tcp_detached is 2505 * clear, our TCP queues point to the acceptor's queues. Thus, use 2506 * membar_producer() to ensure that the assignments of tcp_rq/tcp_wq 2507 * above reach global visibility prior to the clearing of tcp_detached. 2508 */ 2509 membar_producer(); 2510 eager->tcp_detached = B_FALSE; 2511 2512 ASSERT(eager->tcp_ack_tid == 0); 2513 2514 econnp->conn_dev = aconnp->conn_dev; 2515 if (eager->tcp_cred != NULL) 2516 crfree(eager->tcp_cred); 2517 eager->tcp_cred = econnp->conn_cred = aconnp->conn_cred; 2518 aconnp->conn_cred = NULL; 2519 2520 econnp->conn_zoneid = aconnp->conn_zoneid; 2521 econnp->conn_allzones = aconnp->conn_allzones; 2522 2523 econnp->conn_mac_exempt = aconnp->conn_mac_exempt; 2524 aconnp->conn_mac_exempt = B_FALSE; 2525 2526 ASSERT(aconnp->conn_peercred == NULL); 2527 2528 /* Do the IPC initialization */ 2529 CONN_INC_REF(econnp); 2530 2531 econnp->conn_multicast_loop = aconnp->conn_multicast_loop; 2532 econnp->conn_af_isv6 = aconnp->conn_af_isv6; 2533 econnp->conn_pkt_isv6 = aconnp->conn_pkt_isv6; 2534 econnp->conn_ulp = aconnp->conn_ulp; 2535 2536 /* Done with old IPC. Drop its ref on its connp */ 2537 CONN_DEC_REF(aconnp); 2538 } 2539 2540 2541 /* 2542 * Adapt to the information, such as rtt and rtt_sd, provided from the 2543 * ire cached in conn_cache_ire. If no ire cached, do a ire lookup. 2544 * 2545 * Checks for multicast and broadcast destination address. 2546 * Returns zero on failure; non-zero if ok. 2547 * 2548 * Note that the MSS calculation here is based on the info given in 2549 * the IRE. We do not do any calculation based on TCP options. They 2550 * will be handled in tcp_rput_other() and tcp_rput_data() when TCP 2551 * knows which options to use. 2552 * 2553 * Note on how TCP gets its parameters for a connection. 2554 * 2555 * When a tcp_t structure is allocated, it gets all the default parameters. 2556 * In tcp_adapt_ire(), it gets those metric parameters, like rtt, rtt_sd, 2557 * spipe, rpipe, ... from the route metrics. Route metric overrides the 2558 * default. But if there is an associated tcp_host_param, it will override 2559 * the metrics. 2560 * 2561 * An incoming SYN with a multicast or broadcast destination address, is dropped 2562 * in 1 of 2 places. 2563 * 2564 * 1. If the packet was received over the wire it is dropped in 2565 * ip_rput_process_broadcast() 2566 * 2567 * 2. If the packet was received through internal IP loopback, i.e. the packet 2568 * was generated and received on the same machine, it is dropped in 2569 * ip_wput_local() 2570 * 2571 * An incoming SYN with a multicast or broadcast source address is always 2572 * dropped in tcp_adapt_ire. The same logic in tcp_adapt_ire also serves to 2573 * reject an attempt to connect to a broadcast or multicast (destination) 2574 * address. 2575 */ 2576 static int 2577 tcp_adapt_ire(tcp_t *tcp, mblk_t *ire_mp) 2578 { 2579 tcp_hsp_t *hsp; 2580 ire_t *ire; 2581 ire_t *sire = NULL; 2582 iulp_t *ire_uinfo = NULL; 2583 uint32_t mss_max; 2584 uint32_t mss; 2585 boolean_t tcp_detached = TCP_IS_DETACHED(tcp); 2586 conn_t *connp = tcp->tcp_connp; 2587 boolean_t ire_cacheable = B_FALSE; 2588 zoneid_t zoneid = connp->conn_zoneid; 2589 int match_flags = MATCH_IRE_RECURSIVE | MATCH_IRE_DEFAULT | 2590 MATCH_IRE_SECATTR; 2591 ts_label_t *tsl = crgetlabel(CONN_CRED(connp)); 2592 ill_t *ill = NULL; 2593 boolean_t incoming = (ire_mp == NULL); 2594 2595 ASSERT(connp->conn_ire_cache == NULL); 2596 2597 if (tcp->tcp_ipversion == IPV4_VERSION) { 2598 2599 if (CLASSD(tcp->tcp_connp->conn_rem)) { 2600 BUMP_MIB(&ip_mib, ipInDiscards); 2601 return (0); 2602 } 2603 /* 2604 * If IP_NEXTHOP is set, then look for an IRE_CACHE 2605 * for the destination with the nexthop as gateway. 2606 * ire_ctable_lookup() is used because this particular 2607 * ire, if it exists, will be marked private. 2608 * If that is not available, use the interface ire 2609 * for the nexthop. 2610 * 2611 * TSol: tcp_update_label will detect label mismatches based 2612 * only on the destination's label, but that would not 2613 * detect label mismatches based on the security attributes 2614 * of routes or next hop gateway. Hence we need to pass the 2615 * label to ire_ftable_lookup below in order to locate the 2616 * right prefix (and/or) ire cache. Similarly we also need 2617 * pass the label to the ire_cache_lookup below to locate 2618 * the right ire that also matches on the label. 2619 */ 2620 if (tcp->tcp_connp->conn_nexthop_set) { 2621 ire = ire_ctable_lookup(tcp->tcp_connp->conn_rem, 2622 tcp->tcp_connp->conn_nexthop_v4, 0, NULL, zoneid, 2623 tsl, MATCH_IRE_MARK_PRIVATE_ADDR | MATCH_IRE_GW); 2624 if (ire == NULL) { 2625 ire = ire_ftable_lookup( 2626 tcp->tcp_connp->conn_nexthop_v4, 2627 0, 0, IRE_INTERFACE, NULL, NULL, zoneid, 0, 2628 tsl, match_flags); 2629 if (ire == NULL) 2630 return (0); 2631 } else { 2632 ire_uinfo = &ire->ire_uinfo; 2633 } 2634 } else { 2635 ire = ire_cache_lookup(tcp->tcp_connp->conn_rem, 2636 zoneid, tsl); 2637 if (ire != NULL) { 2638 ire_cacheable = B_TRUE; 2639 ire_uinfo = (ire_mp != NULL) ? 2640 &((ire_t *)ire_mp->b_rptr)->ire_uinfo: 2641 &ire->ire_uinfo; 2642 2643 } else { 2644 if (ire_mp == NULL) { 2645 ire = ire_ftable_lookup( 2646 tcp->tcp_connp->conn_rem, 2647 0, 0, 0, NULL, &sire, zoneid, 0, 2648 tsl, (MATCH_IRE_RECURSIVE | 2649 MATCH_IRE_DEFAULT)); 2650 if (ire == NULL) 2651 return (0); 2652 ire_uinfo = (sire != NULL) ? 2653 &sire->ire_uinfo : 2654 &ire->ire_uinfo; 2655 } else { 2656 ire = (ire_t *)ire_mp->b_rptr; 2657 ire_uinfo = 2658 &((ire_t *) 2659 ire_mp->b_rptr)->ire_uinfo; 2660 } 2661 } 2662 } 2663 ASSERT(ire != NULL); 2664 2665 if ((ire->ire_src_addr == INADDR_ANY) || 2666 (ire->ire_type & IRE_BROADCAST)) { 2667 /* 2668 * ire->ire_mp is non null when ire_mp passed in is used 2669 * ire->ire_mp is set in ip_bind_insert_ire[_v6](). 2670 */ 2671 if (ire->ire_mp == NULL) 2672 ire_refrele(ire); 2673 if (sire != NULL) 2674 ire_refrele(sire); 2675 return (0); 2676 } 2677 2678 if (tcp->tcp_ipha->ipha_src == INADDR_ANY) { 2679 ipaddr_t src_addr; 2680 2681 /* 2682 * ip_bind_connected() has stored the correct source 2683 * address in conn_src. 2684 */ 2685 src_addr = tcp->tcp_connp->conn_src; 2686 tcp->tcp_ipha->ipha_src = src_addr; 2687 /* 2688 * Copy of the src addr. in tcp_t is needed 2689 * for the lookup funcs. 2690 */ 2691 IN6_IPADDR_TO_V4MAPPED(src_addr, &tcp->tcp_ip_src_v6); 2692 } 2693 /* 2694 * Set the fragment bit so that IP will tell us if the MTU 2695 * should change. IP tells us the latest setting of 2696 * ip_path_mtu_discovery through ire_frag_flag. 2697 */ 2698 if (ip_path_mtu_discovery) { 2699 tcp->tcp_ipha->ipha_fragment_offset_and_flags = 2700 htons(IPH_DF); 2701 } 2702 /* 2703 * If ire_uinfo is NULL, this is the IRE_INTERFACE case 2704 * for IP_NEXTHOP. No cache ire has been found for the 2705 * destination and we are working with the nexthop's 2706 * interface ire. Since we need to forward all packets 2707 * to the nexthop first, we "blindly" set tcp_localnet 2708 * to false, eventhough the destination may also be 2709 * onlink. 2710 */ 2711 if (ire_uinfo == NULL) 2712 tcp->tcp_localnet = 0; 2713 else 2714 tcp->tcp_localnet = (ire->ire_gateway_addr == 0); 2715 } else { 2716 /* 2717 * For incoming connection ire_mp = NULL 2718 * For outgoing connection ire_mp != NULL 2719 * Technically we should check conn_incoming_ill 2720 * when ire_mp is NULL and conn_outgoing_ill when 2721 * ire_mp is non-NULL. But this is performance 2722 * critical path and for IPV*_BOUND_IF, outgoing 2723 * and incoming ill are always set to the same value. 2724 */ 2725 ill_t *dst_ill = NULL; 2726 ipif_t *dst_ipif = NULL; 2727 2728 ASSERT(connp->conn_outgoing_ill == connp->conn_incoming_ill); 2729 2730 if (connp->conn_outgoing_ill != NULL) { 2731 /* Outgoing or incoming path */ 2732 int err; 2733 2734 dst_ill = conn_get_held_ill(connp, 2735 &connp->conn_outgoing_ill, &err); 2736 if (err == ILL_LOOKUP_FAILED || dst_ill == NULL) { 2737 ip1dbg(("tcp_adapt_ire: ill_lookup failed\n")); 2738 return (0); 2739 } 2740 match_flags |= MATCH_IRE_ILL; 2741 dst_ipif = dst_ill->ill_ipif; 2742 } 2743 ire = ire_ctable_lookup_v6(&tcp->tcp_connp->conn_remv6, 2744 0, 0, dst_ipif, zoneid, tsl, match_flags); 2745 2746 if (ire != NULL) { 2747 ire_cacheable = B_TRUE; 2748 ire_uinfo = (ire_mp != NULL) ? 2749 &((ire_t *)ire_mp->b_rptr)->ire_uinfo: 2750 &ire->ire_uinfo; 2751 } else { 2752 if (ire_mp == NULL) { 2753 ire = ire_ftable_lookup_v6( 2754 &tcp->tcp_connp->conn_remv6, 2755 0, 0, 0, dst_ipif, &sire, zoneid, 2756 0, tsl, match_flags); 2757 if (ire == NULL) { 2758 if (dst_ill != NULL) 2759 ill_refrele(dst_ill); 2760 return (0); 2761 } 2762 ire_uinfo = (sire != NULL) ? &sire->ire_uinfo : 2763 &ire->ire_uinfo; 2764 } else { 2765 ire = (ire_t *)ire_mp->b_rptr; 2766 ire_uinfo = 2767 &((ire_t *)ire_mp->b_rptr)->ire_uinfo; 2768 } 2769 } 2770 if (dst_ill != NULL) 2771 ill_refrele(dst_ill); 2772 2773 ASSERT(ire != NULL); 2774 ASSERT(ire_uinfo != NULL); 2775 2776 if (IN6_IS_ADDR_UNSPECIFIED(&ire->ire_src_addr_v6) || 2777 IN6_IS_ADDR_MULTICAST(&ire->ire_addr_v6)) { 2778 /* 2779 * ire->ire_mp is non null when ire_mp passed in is used 2780 * ire->ire_mp is set in ip_bind_insert_ire[_v6](). 2781 */ 2782 if (ire->ire_mp == NULL) 2783 ire_refrele(ire); 2784 if (sire != NULL) 2785 ire_refrele(sire); 2786 return (0); 2787 } 2788 2789 if (IN6_IS_ADDR_UNSPECIFIED(&tcp->tcp_ip6h->ip6_src)) { 2790 in6_addr_t src_addr; 2791 2792 /* 2793 * ip_bind_connected_v6() has stored the correct source 2794 * address per IPv6 addr. selection policy in 2795 * conn_src_v6. 2796 */ 2797 src_addr = tcp->tcp_connp->conn_srcv6; 2798 2799 tcp->tcp_ip6h->ip6_src = src_addr; 2800 /* 2801 * Copy of the src addr. in tcp_t is needed 2802 * for the lookup funcs. 2803 */ 2804 tcp->tcp_ip_src_v6 = src_addr; 2805 ASSERT(IN6_ARE_ADDR_EQUAL(&tcp->tcp_ip6h->ip6_src, 2806 &connp->conn_srcv6)); 2807 } 2808 tcp->tcp_localnet = 2809 IN6_IS_ADDR_UNSPECIFIED(&ire->ire_gateway_addr_v6); 2810 } 2811 2812 /* 2813 * This allows applications to fail quickly when connections are made 2814 * to dead hosts. Hosts can be labeled dead by adding a reject route 2815 * with both the RTF_REJECT and RTF_PRIVATE flags set. 2816 */ 2817 if ((ire->ire_flags & RTF_REJECT) && 2818 (ire->ire_flags & RTF_PRIVATE)) 2819 goto error; 2820 2821 /* 2822 * Make use of the cached rtt and rtt_sd values to calculate the 2823 * initial RTO. Note that they are already initialized in 2824 * tcp_init_values(). 2825 * If ire_uinfo is NULL, i.e., we do not have a cache ire for 2826 * IP_NEXTHOP, but instead are using the interface ire for the 2827 * nexthop, then we do not use the ire_uinfo from that ire to 2828 * do any initializations. 2829 */ 2830 if (ire_uinfo != NULL) { 2831 if (ire_uinfo->iulp_rtt != 0) { 2832 clock_t rto; 2833 2834 tcp->tcp_rtt_sa = ire_uinfo->iulp_rtt; 2835 tcp->tcp_rtt_sd = ire_uinfo->iulp_rtt_sd; 2836 rto = (tcp->tcp_rtt_sa >> 3) + tcp->tcp_rtt_sd + 2837 tcp_rexmit_interval_extra + (tcp->tcp_rtt_sa >> 5); 2838 2839 if (rto > tcp_rexmit_interval_max) { 2840 tcp->tcp_rto = tcp_rexmit_interval_max; 2841 } else if (rto < tcp_rexmit_interval_min) { 2842 tcp->tcp_rto = tcp_rexmit_interval_min; 2843 } else { 2844 tcp->tcp_rto = rto; 2845 } 2846 } 2847 if (ire_uinfo->iulp_ssthresh != 0) 2848 tcp->tcp_cwnd_ssthresh = ire_uinfo->iulp_ssthresh; 2849 else 2850 tcp->tcp_cwnd_ssthresh = TCP_MAX_LARGEWIN; 2851 if (ire_uinfo->iulp_spipe > 0) { 2852 tcp->tcp_xmit_hiwater = MIN(ire_uinfo->iulp_spipe, 2853 tcp_max_buf); 2854 if (tcp_snd_lowat_fraction != 0) 2855 tcp->tcp_xmit_lowater = tcp->tcp_xmit_hiwater / 2856 tcp_snd_lowat_fraction; 2857 (void) tcp_maxpsz_set(tcp, B_TRUE); 2858 } 2859 /* 2860 * Note that up till now, acceptor always inherits receive 2861 * window from the listener. But if there is a metrics 2862 * associated with a host, we should use that instead of 2863 * inheriting it from listener. Thus we need to pass this 2864 * info back to the caller. 2865 */ 2866 if (ire_uinfo->iulp_rpipe > 0) { 2867 tcp->tcp_rwnd = MIN(ire_uinfo->iulp_rpipe, tcp_max_buf); 2868 } 2869 2870 if (ire_uinfo->iulp_rtomax > 0) { 2871 tcp->tcp_second_timer_threshold = 2872 ire_uinfo->iulp_rtomax; 2873 } 2874 2875 /* 2876 * Use the metric option settings, iulp_tstamp_ok and 2877 * iulp_wscale_ok, only for active open. What this means 2878 * is that if the other side uses timestamp or window 2879 * scale option, TCP will also use those options. That 2880 * is for passive open. If the application sets a 2881 * large window, window scale is enabled regardless of 2882 * the value in iulp_wscale_ok. This is the behavior 2883 * since 2.6. So we keep it. 2884 * The only case left in passive open processing is the 2885 * check for SACK. 2886 * For ECN, it should probably be like SACK. But the 2887 * current value is binary, so we treat it like the other 2888 * cases. The metric only controls active open.For passive 2889 * open, the ndd param, tcp_ecn_permitted, controls the 2890 * behavior. 2891 */ 2892 if (!tcp_detached) { 2893 /* 2894 * The if check means that the following can only 2895 * be turned on by the metrics only IRE, but not off. 2896 */ 2897 if (ire_uinfo->iulp_tstamp_ok) 2898 tcp->tcp_snd_ts_ok = B_TRUE; 2899 if (ire_uinfo->iulp_wscale_ok) 2900 tcp->tcp_snd_ws_ok = B_TRUE; 2901 if (ire_uinfo->iulp_sack == 2) 2902 tcp->tcp_snd_sack_ok = B_TRUE; 2903 if (ire_uinfo->iulp_ecn_ok) 2904 tcp->tcp_ecn_ok = B_TRUE; 2905 } else { 2906 /* 2907 * Passive open. 2908 * 2909 * As above, the if check means that SACK can only be 2910 * turned on by the metric only IRE. 2911 */ 2912 if (ire_uinfo->iulp_sack > 0) { 2913 tcp->tcp_snd_sack_ok = B_TRUE; 2914 } 2915 } 2916 } 2917 2918 2919 /* 2920 * XXX: Note that currently, ire_max_frag can be as small as 68 2921 * because of PMTUd. So tcp_mss may go to negative if combined 2922 * length of all those options exceeds 28 bytes. But because 2923 * of the tcp_mss_min check below, we may not have a problem if 2924 * tcp_mss_min is of a reasonable value. The default is 1 so 2925 * the negative problem still exists. And the check defeats PMTUd. 2926 * In fact, if PMTUd finds that the MSS should be smaller than 2927 * tcp_mss_min, TCP should turn off PMUTd and use the tcp_mss_min 2928 * value. 2929 * 2930 * We do not deal with that now. All those problems related to 2931 * PMTUd will be fixed later. 2932 */ 2933 ASSERT(ire->ire_max_frag != 0); 2934 mss = tcp->tcp_if_mtu = ire->ire_max_frag; 2935 if (tcp->tcp_ipp_fields & IPPF_USE_MIN_MTU) { 2936 if (tcp->tcp_ipp_use_min_mtu == IPV6_USE_MIN_MTU_NEVER) { 2937 mss = MIN(mss, IPV6_MIN_MTU); 2938 } 2939 } 2940 2941 /* Sanity check for MSS value. */ 2942 if (tcp->tcp_ipversion == IPV4_VERSION) 2943 mss_max = tcp_mss_max_ipv4; 2944 else 2945 mss_max = tcp_mss_max_ipv6; 2946 2947 if (tcp->tcp_ipversion == IPV6_VERSION && 2948 (ire->ire_frag_flag & IPH_FRAG_HDR)) { 2949 /* 2950 * After receiving an ICMPv6 "packet too big" message with a 2951 * MTU < 1280, and for multirouted IPv6 packets, the IP layer 2952 * will insert a 8-byte fragment header in every packet; we 2953 * reduce the MSS by that amount here. 2954 */ 2955 mss -= sizeof (ip6_frag_t); 2956 } 2957 2958 if (tcp->tcp_ipsec_overhead == 0) 2959 tcp->tcp_ipsec_overhead = conn_ipsec_length(connp); 2960 2961 mss -= tcp->tcp_ipsec_overhead; 2962 2963 if (mss < tcp_mss_min) 2964 mss = tcp_mss_min; 2965 if (mss > mss_max) 2966 mss = mss_max; 2967 2968 /* Note that this is the maximum MSS, excluding all options. */ 2969 tcp->tcp_mss = mss; 2970 2971 /* 2972 * Initialize the ISS here now that we have the full connection ID. 2973 * The RFC 1948 method of initial sequence number generation requires 2974 * knowledge of the full connection ID before setting the ISS. 2975 */ 2976 2977 tcp_iss_init(tcp); 2978 2979 if (ire->ire_type & (IRE_LOOPBACK | IRE_LOCAL)) 2980 tcp->tcp_loopback = B_TRUE; 2981 2982 if (tcp->tcp_ipversion == IPV4_VERSION) { 2983 hsp = tcp_hsp_lookup(tcp->tcp_remote); 2984 } else { 2985 hsp = tcp_hsp_lookup_ipv6(&tcp->tcp_remote_v6); 2986 } 2987 2988 if (hsp != NULL) { 2989 /* Only modify if we're going to make them bigger */ 2990 if (hsp->tcp_hsp_sendspace > tcp->tcp_xmit_hiwater) { 2991 tcp->tcp_xmit_hiwater = hsp->tcp_hsp_sendspace; 2992 if (tcp_snd_lowat_fraction != 0) 2993 tcp->tcp_xmit_lowater = tcp->tcp_xmit_hiwater / 2994 tcp_snd_lowat_fraction; 2995 } 2996 2997 if (hsp->tcp_hsp_recvspace > tcp->tcp_rwnd) { 2998 tcp->tcp_rwnd = hsp->tcp_hsp_recvspace; 2999 } 3000 3001 /* Copy timestamp flag only for active open */ 3002 if (!tcp_detached) 3003 tcp->tcp_snd_ts_ok = hsp->tcp_hsp_tstamp; 3004 } 3005 3006 if (sire != NULL) 3007 IRE_REFRELE(sire); 3008 3009 /* 3010 * If we got an IRE_CACHE and an ILL, go through their properties; 3011 * otherwise, this is deferred until later when we have an IRE_CACHE. 3012 */ 3013 if (tcp->tcp_loopback || 3014 (ire_cacheable && (ill = ire_to_ill(ire)) != NULL)) { 3015 /* 3016 * For incoming, see if this tcp may be MDT-capable. For 3017 * outgoing, this process has been taken care of through 3018 * tcp_rput_other. 3019 */ 3020 tcp_ire_ill_check(tcp, ire, ill, incoming); 3021 tcp->tcp_ire_ill_check_done = B_TRUE; 3022 } 3023 3024 mutex_enter(&connp->conn_lock); 3025 /* 3026 * Make sure that conn is not marked incipient 3027 * for incoming connections. A blind 3028 * removal of incipient flag is cheaper than 3029 * check and removal. 3030 */ 3031 connp->conn_state_flags &= ~CONN_INCIPIENT; 3032 3033 /* Must not cache forwarding table routes. */ 3034 if (ire_cacheable) { 3035 rw_enter(&ire->ire_bucket->irb_lock, RW_READER); 3036 if (!(ire->ire_marks & IRE_MARK_CONDEMNED)) { 3037 connp->conn_ire_cache = ire; 3038 IRE_UNTRACE_REF(ire); 3039 rw_exit(&ire->ire_bucket->irb_lock); 3040 mutex_exit(&connp->conn_lock); 3041 return (1); 3042 } 3043 rw_exit(&ire->ire_bucket->irb_lock); 3044 } 3045 mutex_exit(&connp->conn_lock); 3046 3047 if (ire->ire_mp == NULL) 3048 ire_refrele(ire); 3049 return (1); 3050 3051 error: 3052 if (ire->ire_mp == NULL) 3053 ire_refrele(ire); 3054 if (sire != NULL) 3055 ire_refrele(sire); 3056 return (0); 3057 } 3058 3059 /* 3060 * tcp_bind is called (holding the writer lock) by tcp_wput_proto to process a 3061 * O_T_BIND_REQ/T_BIND_REQ message. 3062 */ 3063 static void 3064 tcp_bind(tcp_t *tcp, mblk_t *mp) 3065 { 3066 sin_t *sin; 3067 sin6_t *sin6; 3068 mblk_t *mp1; 3069 in_port_t requested_port; 3070 in_port_t allocated_port; 3071 struct T_bind_req *tbr; 3072 boolean_t bind_to_req_port_only; 3073 boolean_t backlog_update = B_FALSE; 3074 boolean_t user_specified; 3075 in6_addr_t v6addr; 3076 ipaddr_t v4addr; 3077 uint_t origipversion; 3078 int err; 3079 queue_t *q = tcp->tcp_wq; 3080 conn_t *connp; 3081 mlp_type_t addrtype, mlptype; 3082 zone_t *zone; 3083 cred_t *cr; 3084 in_port_t mlp_port; 3085 3086 ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= (uintptr_t)INT_MAX); 3087 if ((mp->b_wptr - mp->b_rptr) < sizeof (*tbr)) { 3088 if (tcp->tcp_debug) { 3089 (void) strlog(TCP_MOD_ID, 0, 1, SL_ERROR|SL_TRACE, 3090 "tcp_bind: bad req, len %u", 3091 (uint_t)(mp->b_wptr - mp->b_rptr)); 3092 } 3093 tcp_err_ack(tcp, mp, TPROTO, 0); 3094 return; 3095 } 3096 /* Make sure the largest address fits */ 3097 mp1 = reallocb(mp, sizeof (struct T_bind_ack) + sizeof (sin6_t) + 1, 1); 3098 if (mp1 == NULL) { 3099 tcp_err_ack(tcp, mp, TSYSERR, ENOMEM); 3100 return; 3101 } 3102 mp = mp1; 3103 tbr = (struct T_bind_req *)mp->b_rptr; 3104 if (tcp->tcp_state >= TCPS_BOUND) { 3105 if ((tcp->tcp_state == TCPS_BOUND || 3106 tcp->tcp_state == TCPS_LISTEN) && 3107 tcp->tcp_conn_req_max != tbr->CONIND_number && 3108 tbr->CONIND_number > 0) { 3109 /* 3110 * Handle listen() increasing CONIND_number. 3111 * This is more "liberal" then what the TPI spec 3112 * requires but is needed to avoid a t_unbind 3113 * when handling listen() since the port number 3114 * might be "stolen" between the unbind and bind. 3115 */ 3116 backlog_update = B_TRUE; 3117 goto do_bind; 3118 } 3119 if (tcp->tcp_debug) { 3120 (void) strlog(TCP_MOD_ID, 0, 1, SL_ERROR|SL_TRACE, 3121 "tcp_bind: bad state, %d", tcp->tcp_state); 3122 } 3123 tcp_err_ack(tcp, mp, TOUTSTATE, 0); 3124 return; 3125 } 3126 origipversion = tcp->tcp_ipversion; 3127 3128 switch (tbr->ADDR_length) { 3129 case 0: /* request for a generic port */ 3130 tbr->ADDR_offset = sizeof (struct T_bind_req); 3131 if (tcp->tcp_family == AF_INET) { 3132 tbr->ADDR_length = sizeof (sin_t); 3133 sin = (sin_t *)&tbr[1]; 3134 *sin = sin_null; 3135 sin->sin_family = AF_INET; 3136 mp->b_wptr = (uchar_t *)&sin[1]; 3137 tcp->tcp_ipversion = IPV4_VERSION; 3138 IN6_IPADDR_TO_V4MAPPED(INADDR_ANY, &v6addr); 3139 } else { 3140 ASSERT(tcp->tcp_family == AF_INET6); 3141 tbr->ADDR_length = sizeof (sin6_t); 3142 sin6 = (sin6_t *)&tbr[1]; 3143 *sin6 = sin6_null; 3144 sin6->sin6_family = AF_INET6; 3145 mp->b_wptr = (uchar_t *)&sin6[1]; 3146 tcp->tcp_ipversion = IPV6_VERSION; 3147 V6_SET_ZERO(v6addr); 3148 } 3149 requested_port = 0; 3150 break; 3151 3152 case sizeof (sin_t): /* Complete IPv4 address */ 3153 sin = (sin_t *)mi_offset_param(mp, tbr->ADDR_offset, 3154 sizeof (sin_t)); 3155 if (sin == NULL || !OK_32PTR((char *)sin)) { 3156 if (tcp->tcp_debug) { 3157 (void) strlog(TCP_MOD_ID, 0, 1, 3158 SL_ERROR|SL_TRACE, 3159 "tcp_bind: bad address parameter, " 3160 "offset %d, len %d", 3161 tbr->ADDR_offset, tbr->ADDR_length); 3162 } 3163 tcp_err_ack(tcp, mp, TPROTO, 0); 3164 return; 3165 } 3166 /* 3167 * With sockets sockfs will accept bogus sin_family in 3168 * bind() and replace it with the family used in the socket 3169 * call. 3170 */ 3171 if (sin->sin_family != AF_INET || 3172 tcp->tcp_family != AF_INET) { 3173 tcp_err_ack(tcp, mp, TSYSERR, EAFNOSUPPORT); 3174 return; 3175 } 3176 requested_port = ntohs(sin->sin_port); 3177 tcp->tcp_ipversion = IPV4_VERSION; 3178 v4addr = sin->sin_addr.s_addr; 3179 IN6_IPADDR_TO_V4MAPPED(v4addr, &v6addr); 3180 break; 3181 3182 case sizeof (sin6_t): /* Complete IPv6 address */ 3183 sin6 = (sin6_t *)mi_offset_param(mp, 3184 tbr->ADDR_offset, sizeof (sin6_t)); 3185 if (sin6 == NULL || !OK_32PTR((char *)sin6)) { 3186 if (tcp->tcp_debug) { 3187 (void) strlog(TCP_MOD_ID, 0, 1, 3188 SL_ERROR|SL_TRACE, 3189 "tcp_bind: bad IPv6 address parameter, " 3190 "offset %d, len %d", tbr->ADDR_offset, 3191 tbr->ADDR_length); 3192 } 3193 tcp_err_ack(tcp, mp, TSYSERR, EINVAL); 3194 return; 3195 } 3196 if (sin6->sin6_family != AF_INET6 || 3197 tcp->tcp_family != AF_INET6) { 3198 tcp_err_ack(tcp, mp, TSYSERR, EAFNOSUPPORT); 3199 return; 3200 } 3201 requested_port = ntohs(sin6->sin6_port); 3202 tcp->tcp_ipversion = IN6_IS_ADDR_V4MAPPED(&sin6->sin6_addr) ? 3203 IPV4_VERSION : IPV6_VERSION; 3204 v6addr = sin6->sin6_addr; 3205 break; 3206 3207 default: 3208 if (tcp->tcp_debug) { 3209 (void) strlog(TCP_MOD_ID, 0, 1, SL_ERROR|SL_TRACE, 3210 "tcp_bind: bad address length, %d", 3211 tbr->ADDR_length); 3212 } 3213 tcp_err_ack(tcp, mp, TBADADDR, 0); 3214 return; 3215 } 3216 tcp->tcp_bound_source_v6 = v6addr; 3217 3218 /* Check for change in ipversion */ 3219 if (origipversion != tcp->tcp_ipversion) { 3220 ASSERT(tcp->tcp_family == AF_INET6); 3221 err = tcp->tcp_ipversion == IPV6_VERSION ? 3222 tcp_header_init_ipv6(tcp) : tcp_header_init_ipv4(tcp); 3223 if (err) { 3224 tcp_err_ack(tcp, mp, TSYSERR, ENOMEM); 3225 return; 3226 } 3227 } 3228 3229 /* 3230 * Initialize family specific fields. Copy of the src addr. 3231 * in tcp_t is needed for the lookup funcs. 3232 */ 3233 if (tcp->tcp_ipversion == IPV6_VERSION) { 3234 tcp->tcp_ip6h->ip6_src = v6addr; 3235 } else { 3236 IN6_V4MAPPED_TO_IPADDR(&v6addr, tcp->tcp_ipha->ipha_src); 3237 } 3238 tcp->tcp_ip_src_v6 = v6addr; 3239 3240 /* 3241 * For O_T_BIND_REQ: 3242 * Verify that the target port/addr is available, or choose 3243 * another. 3244 * For T_BIND_REQ: 3245 * Verify that the target port/addr is available or fail. 3246 * In both cases when it succeeds the tcp is inserted in the 3247 * bind hash table. This ensures that the operation is atomic 3248 * under the lock on the hash bucket. 3249 */ 3250 bind_to_req_port_only = requested_port != 0 && 3251 tbr->PRIM_type != O_T_BIND_REQ; 3252 /* 3253 * Get a valid port (within the anonymous range and should not 3254 * be a privileged one) to use if the user has not given a port. 3255 * If multiple threads are here, they may all start with 3256 * with the same initial port. But, it should be fine as long as 3257 * tcp_bindi will ensure that no two threads will be assigned 3258 * the same port. 3259 * 3260 * NOTE: XXX If a privileged process asks for an anonymous port, we 3261 * still check for ports only in the range > tcp_smallest_non_priv_port, 3262 * unless TCP_ANONPRIVBIND option is set. 3263 */ 3264 mlptype = mlptSingle; 3265 mlp_port = requested_port; 3266 if (requested_port == 0) { 3267 requested_port = tcp->tcp_anon_priv_bind ? 3268 tcp_get_next_priv_port(tcp) : 3269 tcp_update_next_port(tcp_next_port_to_try, tcp, B_TRUE); 3270 if (requested_port == 0) { 3271 tcp_err_ack(tcp, mp, TNOADDR, 0); 3272 return; 3273 } 3274 user_specified = B_FALSE; 3275 3276 /* 3277 * If the user went through one of the RPC interfaces to create 3278 * this socket and RPC is MLP in this zone, then give him an 3279 * anonymous MLP. 3280 */ 3281 cr = DB_CREDDEF(mp, tcp->tcp_cred); 3282 connp = tcp->tcp_connp; 3283 if (connp->conn_anon_mlp && is_system_labeled()) { 3284 zone = crgetzone(cr); 3285 addrtype = tsol_mlp_addr_type(zone->zone_id, 3286 IPV6_VERSION, &v6addr); 3287 if (addrtype == mlptSingle) { 3288 tcp_err_ack(tcp, mp, TNOADDR, 0); 3289 return; 3290 } 3291 mlptype = tsol_mlp_port_type(zone, IPPROTO_TCP, 3292 PMAPPORT, addrtype); 3293 mlp_port = PMAPPORT; 3294 } 3295 } else { 3296 int i; 3297 boolean_t priv = B_FALSE; 3298 3299 /* 3300 * If the requested_port is in the well-known privileged range, 3301 * verify that the stream was opened by a privileged user. 3302 * Note: No locks are held when inspecting tcp_g_*epriv_ports 3303 * but instead the code relies on: 3304 * - the fact that the address of the array and its size never 3305 * changes 3306 * - the atomic assignment of the elements of the array 3307 */ 3308 cr = DB_CREDDEF(mp, tcp->tcp_cred); 3309 if (requested_port < tcp_smallest_nonpriv_port) { 3310 priv = B_TRUE; 3311 } else { 3312 for (i = 0; i < tcp_g_num_epriv_ports; i++) { 3313 if (requested_port == 3314 tcp_g_epriv_ports[i]) { 3315 priv = B_TRUE; 3316 break; 3317 } 3318 } 3319 } 3320 if (priv) { 3321 if (secpolicy_net_privaddr(cr, requested_port) != 0) { 3322 if (tcp->tcp_debug) { 3323 (void) strlog(TCP_MOD_ID, 0, 1, 3324 SL_ERROR|SL_TRACE, 3325 "tcp_bind: no priv for port %d", 3326 requested_port); 3327 } 3328 tcp_err_ack(tcp, mp, TACCES, 0); 3329 return; 3330 } 3331 } 3332 user_specified = B_TRUE; 3333 3334 connp = tcp->tcp_connp; 3335 if (is_system_labeled()) { 3336 zone = crgetzone(cr); 3337 addrtype = tsol_mlp_addr_type(zone->zone_id, 3338 IPV6_VERSION, &v6addr); 3339 if (addrtype == mlptSingle) { 3340 tcp_err_ack(tcp, mp, TNOADDR, 0); 3341 return; 3342 } 3343 mlptype = tsol_mlp_port_type(zone, IPPROTO_TCP, 3344 requested_port, addrtype); 3345 } 3346 } 3347 3348 if (mlptype != mlptSingle) { 3349 if (secpolicy_net_bindmlp(cr) != 0) { 3350 if (tcp->tcp_debug) { 3351 (void) strlog(TCP_MOD_ID, 0, 1, 3352 SL_ERROR|SL_TRACE, 3353 "tcp_bind: no priv for multilevel port %d", 3354 requested_port); 3355 } 3356 tcp_err_ack(tcp, mp, TACCES, 0); 3357 return; 3358 } 3359 3360 /* 3361 * If we're specifically binding a shared IP address and the 3362 * port is MLP on shared addresses, then check to see if this 3363 * zone actually owns the MLP. Reject if not. 3364 */ 3365 if (mlptype == mlptShared && addrtype == mlptShared) { 3366 zoneid_t mlpzone; 3367 3368 mlpzone = tsol_mlp_findzone(IPPROTO_TCP, 3369 htons(mlp_port)); 3370 if (connp->conn_zoneid != mlpzone) { 3371 if (tcp->tcp_debug) { 3372 (void) strlog(TCP_MOD_ID, 0, 1, 3373 SL_ERROR|SL_TRACE, 3374 "tcp_bind: attempt to bind port " 3375 "%d on shared addr in zone %d " 3376 "(should be %d)", 3377 mlp_port, connp->conn_zoneid, 3378 mlpzone); 3379 } 3380 tcp_err_ack(tcp, mp, TACCES, 0); 3381 return; 3382 } 3383 } 3384 3385 if (!user_specified) { 3386 err = tsol_mlp_anon(zone, mlptype, connp->conn_ulp, 3387 requested_port, B_TRUE); 3388 if (err != 0) { 3389 if (tcp->tcp_debug) { 3390 (void) strlog(TCP_MOD_ID, 0, 1, 3391 SL_ERROR|SL_TRACE, 3392 "tcp_bind: cannot establish anon " 3393 "MLP for port %d", 3394 requested_port); 3395 } 3396 tcp_err_ack(tcp, mp, TSYSERR, err); 3397 return; 3398 } 3399 connp->conn_anon_port = B_TRUE; 3400 } 3401 connp->conn_mlp_type = mlptype; 3402 } 3403 3404 allocated_port = tcp_bindi(tcp, requested_port, &v6addr, 3405 tcp->tcp_reuseaddr, B_FALSE, bind_to_req_port_only, user_specified); 3406 3407 if (allocated_port == 0) { 3408 connp->conn_mlp_type = mlptSingle; 3409 if (connp->conn_anon_port) { 3410 connp->conn_anon_port = B_FALSE; 3411 (void) tsol_mlp_anon(zone, mlptype, connp->conn_ulp, 3412 requested_port, B_FALSE); 3413 } 3414 if (bind_to_req_port_only) { 3415 if (tcp->tcp_debug) { 3416 (void) strlog(TCP_MOD_ID, 0, 1, 3417 SL_ERROR|SL_TRACE, 3418 "tcp_bind: requested addr busy"); 3419 } 3420 tcp_err_ack(tcp, mp, TADDRBUSY, 0); 3421 } else { 3422 /* If we are out of ports, fail the bind. */ 3423 if (tcp->tcp_debug) { 3424 (void) strlog(TCP_MOD_ID, 0, 1, 3425 SL_ERROR|SL_TRACE, 3426 "tcp_bind: out of ports?"); 3427 } 3428 tcp_err_ack(tcp, mp, TNOADDR, 0); 3429 } 3430 return; 3431 } 3432 ASSERT(tcp->tcp_state == TCPS_BOUND); 3433 do_bind: 3434 if (!backlog_update) { 3435 if (tcp->tcp_family == AF_INET) 3436 sin->sin_port = htons(allocated_port); 3437 else 3438 sin6->sin6_port = htons(allocated_port); 3439 } 3440 if (tcp->tcp_family == AF_INET) { 3441 if (tbr->CONIND_number != 0) { 3442 mp1 = tcp_ip_bind_mp(tcp, tbr->PRIM_type, 3443 sizeof (sin_t)); 3444 } else { 3445 /* Just verify the local IP address */ 3446 mp1 = tcp_ip_bind_mp(tcp, tbr->PRIM_type, IP_ADDR_LEN); 3447 } 3448 } else { 3449 if (tbr->CONIND_number != 0) { 3450 mp1 = tcp_ip_bind_mp(tcp, tbr->PRIM_type, 3451 sizeof (sin6_t)); 3452 } else { 3453 /* Just verify the local IP address */ 3454 mp1 = tcp_ip_bind_mp(tcp, tbr->PRIM_type, 3455 IPV6_ADDR_LEN); 3456 } 3457 } 3458 if (mp1 == NULL) { 3459 if (connp->conn_anon_port) { 3460 connp->conn_anon_port = B_FALSE; 3461 (void) tsol_mlp_anon(zone, mlptype, connp->conn_ulp, 3462 requested_port, B_FALSE); 3463 } 3464 connp->conn_mlp_type = mlptSingle; 3465 tcp_err_ack(tcp, mp, TSYSERR, ENOMEM); 3466 return; 3467 } 3468 3469 tbr->PRIM_type = T_BIND_ACK; 3470 mp->b_datap->db_type = M_PCPROTO; 3471 3472 /* Chain in the reply mp for tcp_rput() */ 3473 mp1->b_cont = mp; 3474 mp = mp1; 3475 3476 tcp->tcp_conn_req_max = tbr->CONIND_number; 3477 if (tcp->tcp_conn_req_max) { 3478 if (tcp->tcp_conn_req_max < tcp_conn_req_min) 3479 tcp->tcp_conn_req_max = tcp_conn_req_min; 3480 if (tcp->tcp_conn_req_max > tcp_conn_req_max_q) 3481 tcp->tcp_conn_req_max = tcp_conn_req_max_q; 3482 /* 3483 * If this is a listener, do not reset the eager list 3484 * and other stuffs. Note that we don't check if the 3485 * existing eager list meets the new tcp_conn_req_max 3486 * requirement. 3487 */ 3488 if (tcp->tcp_state != TCPS_LISTEN) { 3489 tcp->tcp_state = TCPS_LISTEN; 3490 /* Initialize the chain. Don't need the eager_lock */ 3491 tcp->tcp_eager_next_q0 = tcp->tcp_eager_prev_q0 = tcp; 3492 tcp->tcp_eager_next_drop_q0 = tcp; 3493 tcp->tcp_eager_prev_drop_q0 = tcp; 3494 tcp->tcp_second_ctimer_threshold = 3495 tcp_ip_abort_linterval; 3496 } 3497 } 3498 3499 /* 3500 * We can call ip_bind directly which returns a T_BIND_ACK mp. The 3501 * processing continues in tcp_rput_other(). 3502 */ 3503 if (tcp->tcp_family == AF_INET6) { 3504 ASSERT(tcp->tcp_connp->conn_af_isv6); 3505 mp = ip_bind_v6(q, mp, tcp->tcp_connp, &tcp->tcp_sticky_ipp); 3506 } else { 3507 ASSERT(!tcp->tcp_connp->conn_af_isv6); 3508 mp = ip_bind_v4(q, mp, tcp->tcp_connp); 3509 } 3510 /* 3511 * If the bind cannot complete immediately 3512 * IP will arrange to call tcp_rput_other 3513 * when the bind completes. 3514 */ 3515 if (mp != NULL) { 3516 tcp_rput_other(tcp, mp); 3517 } else { 3518 /* 3519 * Bind will be resumed later. Need to ensure 3520 * that conn doesn't disappear when that happens. 3521 * This will be decremented in ip_resume_tcp_bind(). 3522 */ 3523 CONN_INC_REF(tcp->tcp_connp); 3524 } 3525 } 3526 3527 3528 /* 3529 * If the "bind_to_req_port_only" parameter is set, if the requested port 3530 * number is available, return it, If not return 0 3531 * 3532 * If "bind_to_req_port_only" parameter is not set and 3533 * If the requested port number is available, return it. If not, return 3534 * the first anonymous port we happen across. If no anonymous ports are 3535 * available, return 0. addr is the requested local address, if any. 3536 * 3537 * In either case, when succeeding update the tcp_t to record the port number 3538 * and insert it in the bind hash table. 3539 * 3540 * Note that TCP over IPv4 and IPv6 sockets can use the same port number 3541 * without setting SO_REUSEADDR. This is needed so that they 3542 * can be viewed as two independent transport protocols. 3543 */ 3544 static in_port_t 3545 tcp_bindi(tcp_t *tcp, in_port_t port, const in6_addr_t *laddr, 3546 int reuseaddr, boolean_t quick_connect, 3547 boolean_t bind_to_req_port_only, boolean_t user_specified) 3548 { 3549 /* number of times we have run around the loop */ 3550 int count = 0; 3551 /* maximum number of times to run around the loop */ 3552 int loopmax; 3553 conn_t *connp = tcp->tcp_connp; 3554 zoneid_t zoneid = connp->conn_zoneid; 3555 3556 /* 3557 * Lookup for free addresses is done in a loop and "loopmax" 3558 * influences how long we spin in the loop 3559 */ 3560 if (bind_to_req_port_only) { 3561 /* 3562 * If the requested port is busy, don't bother to look 3563 * for a new one. Setting loop maximum count to 1 has 3564 * that effect. 3565 */ 3566 loopmax = 1; 3567 } else { 3568 /* 3569 * If the requested port is busy, look for a free one 3570 * in the anonymous port range. 3571 * Set loopmax appropriately so that one does not look 3572 * forever in the case all of the anonymous ports are in use. 3573 */ 3574 if (tcp->tcp_anon_priv_bind) { 3575 /* 3576 * loopmax = 3577 * (IPPORT_RESERVED-1) - tcp_min_anonpriv_port + 1 3578 */ 3579 loopmax = IPPORT_RESERVED - tcp_min_anonpriv_port; 3580 } else { 3581 loopmax = (tcp_largest_anon_port - 3582 tcp_smallest_anon_port + 1); 3583 } 3584 } 3585 do { 3586 uint16_t lport; 3587 tf_t *tbf; 3588 tcp_t *ltcp; 3589 conn_t *lconnp; 3590 3591 lport = htons(port); 3592 3593 /* 3594 * Ensure that the tcp_t is not currently in the bind hash. 3595 * Hold the lock on the hash bucket to ensure that 3596 * the duplicate check plus the insertion is an atomic 3597 * operation. 3598 * 3599 * This function does an inline lookup on the bind hash list 3600 * Make sure that we access only members of tcp_t 3601 * and that we don't look at tcp_tcp, since we are not 3602 * doing a CONN_INC_REF. 3603 */ 3604 tcp_bind_hash_remove(tcp); 3605 tbf = &tcp_bind_fanout[TCP_BIND_HASH(lport)]; 3606 mutex_enter(&tbf->tf_lock); 3607 for (ltcp = tbf->tf_tcp; ltcp != NULL; 3608 ltcp = ltcp->tcp_bind_hash) { 3609 boolean_t not_socket; 3610 boolean_t exclbind; 3611 3612 if (lport != ltcp->tcp_lport) 3613 continue; 3614 3615 lconnp = ltcp->tcp_connp; 3616 3617 /* 3618 * On a labeled system, we must treat bindings to ports 3619 * on shared IP addresses by sockets with MAC exemption 3620 * privilege as being in all zones, as there's 3621 * otherwise no way to identify the right receiver. 3622 */ 3623 if (!IPCL_ZONE_MATCH(ltcp->tcp_connp, zoneid) && 3624 !lconnp->conn_mac_exempt && 3625 !connp->conn_mac_exempt) 3626 continue; 3627 3628 /* 3629 * If TCP_EXCLBIND is set for either the bound or 3630 * binding endpoint, the semantics of bind 3631 * is changed according to the following. 3632 * 3633 * spec = specified address (v4 or v6) 3634 * unspec = unspecified address (v4 or v6) 3635 * A = specified addresses are different for endpoints 3636 * 3637 * bound bind to allowed 3638 * ------------------------------------- 3639 * unspec unspec no 3640 * unspec spec no 3641 * spec unspec no 3642 * spec spec yes if A 3643 * 3644 * For labeled systems, SO_MAC_EXEMPT behaves the same 3645 * as TCP_EXCLBIND, except that zoneid is ignored. 3646 * 3647 * Note: 3648 * 3649 * 1. Because of TLI semantics, an endpoint can go 3650 * back from, say TCP_ESTABLISHED to TCPS_LISTEN or 3651 * TCPS_BOUND, depending on whether it is originally 3652 * a listener or not. That is why we need to check 3653 * for states greater than or equal to TCPS_BOUND 3654 * here. 3655 * 3656 * 2. Ideally, we should only check for state equals 3657 * to TCPS_LISTEN. And the following check should be 3658 * added. 3659 * 3660 * if (ltcp->tcp_state == TCPS_LISTEN || 3661 * !reuseaddr || !ltcp->tcp_reuseaddr) { 3662 * ... 3663 * } 3664 * 3665 * The semantics will be changed to this. If the 3666 * endpoint on the list is in state not equal to 3667 * TCPS_LISTEN and both endpoints have SO_REUSEADDR 3668 * set, let the bind succeed. 3669 * 3670 * Because of (1), we cannot do that for TLI 3671 * endpoints. But we can do that for socket endpoints. 3672 * If in future, we can change this going back 3673 * semantics, we can use the above check for TLI also. 3674 */ 3675 not_socket = !(TCP_IS_SOCKET(ltcp) && 3676 TCP_IS_SOCKET(tcp)); 3677 exclbind = ltcp->tcp_exclbind || tcp->tcp_exclbind; 3678 3679 if (lconnp->conn_mac_exempt || connp->conn_mac_exempt || 3680 (exclbind && (not_socket || 3681 ltcp->tcp_state <= TCPS_ESTABLISHED))) { 3682 if (V6_OR_V4_INADDR_ANY( 3683 ltcp->tcp_bound_source_v6) || 3684 V6_OR_V4_INADDR_ANY(*laddr) || 3685 IN6_ARE_ADDR_EQUAL(laddr, 3686 <cp->tcp_bound_source_v6)) { 3687 break; 3688 } 3689 continue; 3690 } 3691 3692 /* 3693 * Check ipversion to allow IPv4 and IPv6 sockets to 3694 * have disjoint port number spaces, if *_EXCLBIND 3695 * is not set and only if the application binds to a 3696 * specific port. We use the same autoassigned port 3697 * number space for IPv4 and IPv6 sockets. 3698 */ 3699 if (tcp->tcp_ipversion != ltcp->tcp_ipversion && 3700 bind_to_req_port_only) 3701 continue; 3702 3703 /* 3704 * Ideally, we should make sure that the source 3705 * address, remote address, and remote port in the 3706 * four tuple for this tcp-connection is unique. 3707 * However, trying to find out the local source 3708 * address would require too much code duplication 3709 * with IP, since IP needs needs to have that code 3710 * to support userland TCP implementations. 3711 */ 3712 if (quick_connect && 3713 (ltcp->tcp_state > TCPS_LISTEN) && 3714 ((tcp->tcp_fport != ltcp->tcp_fport) || 3715 !IN6_ARE_ADDR_EQUAL(&tcp->tcp_remote_v6, 3716 <cp->tcp_remote_v6))) 3717 continue; 3718 3719 if (!reuseaddr) { 3720 /* 3721 * No socket option SO_REUSEADDR. 3722 * If existing port is bound to 3723 * a non-wildcard IP address 3724 * and the requesting stream is 3725 * bound to a distinct 3726 * different IP addresses 3727 * (non-wildcard, also), keep 3728 * going. 3729 */ 3730 if (!V6_OR_V4_INADDR_ANY(*laddr) && 3731 !V6_OR_V4_INADDR_ANY( 3732 ltcp->tcp_bound_source_v6) && 3733 !IN6_ARE_ADDR_EQUAL(laddr, 3734 <cp->tcp_bound_source_v6)) 3735 continue; 3736 if (ltcp->tcp_state >= TCPS_BOUND) { 3737 /* 3738 * This port is being used and 3739 * its state is >= TCPS_BOUND, 3740 * so we can't bind to it. 3741 */ 3742 break; 3743 } 3744 } else { 3745 /* 3746 * socket option SO_REUSEADDR is set on the 3747 * binding tcp_t. 3748 * 3749 * If two streams are bound to 3750 * same IP address or both addr 3751 * and bound source are wildcards 3752 * (INADDR_ANY), we want to stop 3753 * searching. 3754 * We have found a match of IP source 3755 * address and source port, which is 3756 * refused regardless of the 3757 * SO_REUSEADDR setting, so we break. 3758 */ 3759 if (IN6_ARE_ADDR_EQUAL(laddr, 3760 <cp->tcp_bound_source_v6) && 3761 (ltcp->tcp_state == TCPS_LISTEN || 3762 ltcp->tcp_state == TCPS_BOUND)) 3763 break; 3764 } 3765 } 3766 if (ltcp != NULL) { 3767 /* The port number is busy */ 3768 mutex_exit(&tbf->tf_lock); 3769 } else { 3770 /* 3771 * This port is ours. Insert in fanout and mark as 3772 * bound to prevent others from getting the port 3773 * number. 3774 */ 3775 tcp->tcp_state = TCPS_BOUND; 3776 tcp->tcp_lport = htons(port); 3777 *(uint16_t *)tcp->tcp_tcph->th_lport = tcp->tcp_lport; 3778 3779 ASSERT(&tcp_bind_fanout[TCP_BIND_HASH( 3780 tcp->tcp_lport)] == tbf); 3781 tcp_bind_hash_insert(tbf, tcp, 1); 3782 3783 mutex_exit(&tbf->tf_lock); 3784 3785 /* 3786 * We don't want tcp_next_port_to_try to "inherit" 3787 * a port number supplied by the user in a bind. 3788 */ 3789 if (user_specified) 3790 return (port); 3791 3792 /* 3793 * This is the only place where tcp_next_port_to_try 3794 * is updated. After the update, it may or may not 3795 * be in the valid range. 3796 */ 3797 if (!tcp->tcp_anon_priv_bind) 3798 tcp_next_port_to_try = port + 1; 3799 return (port); 3800 } 3801 3802 if (tcp->tcp_anon_priv_bind) { 3803 port = tcp_get_next_priv_port(tcp); 3804 } else { 3805 if (count == 0 && user_specified) { 3806 /* 3807 * We may have to return an anonymous port. So 3808 * get one to start with. 3809 */ 3810 port = 3811 tcp_update_next_port(tcp_next_port_to_try, 3812 tcp, B_TRUE); 3813 user_specified = B_FALSE; 3814 } else { 3815 port = tcp_update_next_port(port + 1, tcp, 3816 B_FALSE); 3817 } 3818 } 3819 if (port == 0) 3820 break; 3821 3822 /* 3823 * Don't let this loop run forever in the case where 3824 * all of the anonymous ports are in use. 3825 */ 3826 } while (++count < loopmax); 3827 return (0); 3828 } 3829 3830 /* 3831 * tcp_clean_death / tcp_close_detached must not be called more than once 3832 * on a tcp. Thus every function that potentially calls tcp_clean_death 3833 * must check for the tcp state before calling tcp_clean_death. 3834 * Eg. tcp_input, tcp_rput_data, tcp_eager_kill, tcp_clean_death_wrapper, 3835 * tcp_timer_handler, all check for the tcp state. 3836 */ 3837 /* ARGSUSED */ 3838 void 3839 tcp_clean_death_wrapper(void *arg, mblk_t *mp, void *arg2) 3840 { 3841 tcp_t *tcp = ((conn_t *)arg)->conn_tcp; 3842 3843 freemsg(mp); 3844 if (tcp->tcp_state > TCPS_BOUND) 3845 (void) tcp_clean_death(((conn_t *)arg)->conn_tcp, ETIMEDOUT, 5); 3846 } 3847 3848 /* 3849 * We are dying for some reason. Try to do it gracefully. (May be called 3850 * as writer.) 3851 * 3852 * Return -1 if the structure was not cleaned up (if the cleanup had to be 3853 * done by a service procedure). 3854 * TBD - Should the return value distinguish between the tcp_t being 3855 * freed and it being reinitialized? 3856 */ 3857 static int 3858 tcp_clean_death(tcp_t *tcp, int err, uint8_t tag) 3859 { 3860 mblk_t *mp; 3861 queue_t *q; 3862 3863 TCP_CLD_STAT(tag); 3864 3865 #if TCP_TAG_CLEAN_DEATH 3866 tcp->tcp_cleandeathtag = tag; 3867 #endif 3868 3869 if (tcp->tcp_fused) 3870 tcp_unfuse(tcp); 3871 3872 if (tcp->tcp_linger_tid != 0 && 3873 TCP_TIMER_CANCEL(tcp, tcp->tcp_linger_tid) >= 0) { 3874 tcp_stop_lingering(tcp); 3875 } 3876 3877 ASSERT(tcp != NULL); 3878 ASSERT((tcp->tcp_family == AF_INET && 3879 tcp->tcp_ipversion == IPV4_VERSION) || 3880 (tcp->tcp_family == AF_INET6 && 3881 (tcp->tcp_ipversion == IPV4_VERSION || 3882 tcp->tcp_ipversion == IPV6_VERSION))); 3883 3884 if (TCP_IS_DETACHED(tcp)) { 3885 if (tcp->tcp_hard_binding) { 3886 /* 3887 * Its an eager that we are dealing with. We close the 3888 * eager but in case a conn_ind has already gone to the 3889 * listener, let tcp_accept_finish() send a discon_ind 3890 * to the listener and drop the last reference. If the 3891 * listener doesn't even know about the eager i.e. the 3892 * conn_ind hasn't gone up, blow away the eager and drop 3893 * the last reference as well. If the conn_ind has gone 3894 * up, state should be BOUND. tcp_accept_finish 3895 * will figure out that the connection has received a 3896 * RST and will send a DISCON_IND to the application. 3897 */ 3898 tcp_closei_local(tcp); 3899 if (!tcp->tcp_tconnind_started) { 3900 CONN_DEC_REF(tcp->tcp_connp); 3901 } else { 3902 tcp->tcp_state = TCPS_BOUND; 3903 } 3904 } else { 3905 tcp_close_detached(tcp); 3906 } 3907 return (0); 3908 } 3909 3910 TCP_STAT(tcp_clean_death_nondetached); 3911 3912 /* 3913 * If T_ORDREL_IND has not been sent yet (done when service routine 3914 * is run) postpone cleaning up the endpoint until service routine 3915 * has sent up the T_ORDREL_IND. Avoid clearing out an existing 3916 * client_errno since tcp_close uses the client_errno field. 3917 */ 3918 if (tcp->tcp_fin_rcvd && !tcp->tcp_ordrel_done) { 3919 if (err != 0) 3920 tcp->tcp_client_errno = err; 3921 3922 tcp->tcp_deferred_clean_death = B_TRUE; 3923 return (-1); 3924 } 3925 3926 q = tcp->tcp_rq; 3927 3928 /* Trash all inbound data */ 3929 flushq(q, FLUSHALL); 3930 3931 /* 3932 * If we are at least part way open and there is error 3933 * (err==0 implies no error) 3934 * notify our client by a T_DISCON_IND. 3935 */ 3936 if ((tcp->tcp_state >= TCPS_SYN_SENT) && err) { 3937 if (tcp->tcp_state >= TCPS_ESTABLISHED && 3938 !TCP_IS_SOCKET(tcp)) { 3939 /* 3940 * Send M_FLUSH according to TPI. Because sockets will 3941 * (and must) ignore FLUSHR we do that only for TPI 3942 * endpoints and sockets in STREAMS mode. 3943 */ 3944 (void) putnextctl1(q, M_FLUSH, FLUSHR); 3945 } 3946 if (tcp->tcp_debug) { 3947 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE|SL_ERROR, 3948 "tcp_clean_death: discon err %d", err); 3949 } 3950 mp = mi_tpi_discon_ind(NULL, err, 0); 3951 if (mp != NULL) { 3952 putnext(q, mp); 3953 } else { 3954 if (tcp->tcp_debug) { 3955 (void) strlog(TCP_MOD_ID, 0, 1, 3956 SL_ERROR|SL_TRACE, 3957 "tcp_clean_death, sending M_ERROR"); 3958 } 3959 (void) putnextctl1(q, M_ERROR, EPROTO); 3960 } 3961 if (tcp->tcp_state <= TCPS_SYN_RCVD) { 3962 /* SYN_SENT or SYN_RCVD */ 3963 BUMP_MIB(&tcp_mib, tcpAttemptFails); 3964 } else if (tcp->tcp_state <= TCPS_CLOSE_WAIT) { 3965 /* ESTABLISHED or CLOSE_WAIT */ 3966 BUMP_MIB(&tcp_mib, tcpEstabResets); 3967 } 3968 } 3969 3970 tcp_reinit(tcp); 3971 return (-1); 3972 } 3973 3974 /* 3975 * In case tcp is in the "lingering state" and waits for the SO_LINGER timeout 3976 * to expire, stop the wait and finish the close. 3977 */ 3978 static void 3979 tcp_stop_lingering(tcp_t *tcp) 3980 { 3981 clock_t delta = 0; 3982 3983 tcp->tcp_linger_tid = 0; 3984 if (tcp->tcp_state > TCPS_LISTEN) { 3985 tcp_acceptor_hash_remove(tcp); 3986 if (tcp->tcp_flow_stopped) { 3987 tcp_clrqfull(tcp); 3988 } 3989 3990 if (tcp->tcp_timer_tid != 0) { 3991 delta = TCP_TIMER_CANCEL(tcp, tcp->tcp_timer_tid); 3992 tcp->tcp_timer_tid = 0; 3993 } 3994 /* 3995 * Need to cancel those timers which will not be used when 3996 * TCP is detached. This has to be done before the tcp_wq 3997 * is set to the global queue. 3998 */ 3999 tcp_timers_stop(tcp); 4000 4001 4002 tcp->tcp_detached = B_TRUE; 4003 tcp->tcp_rq = tcp_g_q; 4004 tcp->tcp_wq = WR(tcp_g_q); 4005 4006 if (tcp->tcp_state == TCPS_TIME_WAIT) { 4007 tcp_time_wait_append(tcp); 4008 TCP_DBGSTAT(tcp_detach_time_wait); 4009 goto finish; 4010 } 4011 4012 /* 4013 * If delta is zero the timer event wasn't executed and was 4014 * successfully canceled. In this case we need to restart it 4015 * with the minimal delta possible. 4016 */ 4017 if (delta >= 0) { 4018 tcp->tcp_timer_tid = TCP_TIMER(tcp, tcp_timer, 4019 delta ? delta : 1); 4020 } 4021 } else { 4022 tcp_closei_local(tcp); 4023 CONN_DEC_REF(tcp->tcp_connp); 4024 } 4025 finish: 4026 /* Signal closing thread that it can complete close */ 4027 mutex_enter(&tcp->tcp_closelock); 4028 tcp->tcp_detached = B_TRUE; 4029 tcp->tcp_rq = tcp_g_q; 4030 tcp->tcp_wq = WR(tcp_g_q); 4031 tcp->tcp_closed = 1; 4032 cv_signal(&tcp->tcp_closecv); 4033 mutex_exit(&tcp->tcp_closelock); 4034 } 4035 4036 /* 4037 * Handle lingering timeouts. This function is called when the SO_LINGER timeout 4038 * expires. 4039 */ 4040 static void 4041 tcp_close_linger_timeout(void *arg) 4042 { 4043 conn_t *connp = (conn_t *)arg; 4044 tcp_t *tcp = connp->conn_tcp; 4045 4046 tcp->tcp_client_errno = ETIMEDOUT; 4047 tcp_stop_lingering(tcp); 4048 } 4049 4050 static int 4051 tcp_close(queue_t *q, int flags) 4052 { 4053 conn_t *connp = Q_TO_CONN(q); 4054 tcp_t *tcp = connp->conn_tcp; 4055 mblk_t *mp = &tcp->tcp_closemp; 4056 boolean_t conn_ioctl_cleanup_reqd = B_FALSE; 4057 boolean_t linger_interrupted = B_FALSE; 4058 mblk_t *bp; 4059 4060 ASSERT(WR(q)->q_next == NULL); 4061 ASSERT(connp->conn_ref >= 2); 4062 ASSERT((connp->conn_flags & IPCL_TCPMOD) == 0); 4063 4064 /* 4065 * We are being closed as /dev/tcp or /dev/tcp6. 4066 * 4067 * Mark the conn as closing. ill_pending_mp_add will not 4068 * add any mp to the pending mp list, after this conn has 4069 * started closing. Same for sq_pending_mp_add 4070 */ 4071 mutex_enter(&connp->conn_lock); 4072 connp->conn_state_flags |= CONN_CLOSING; 4073 if (connp->conn_oper_pending_ill != NULL) 4074 conn_ioctl_cleanup_reqd = B_TRUE; 4075 CONN_INC_REF_LOCKED(connp); 4076 mutex_exit(&connp->conn_lock); 4077 tcp->tcp_closeflags = (uint8_t)flags; 4078 ASSERT(connp->conn_ref >= 3); 4079 4080 /* 4081 * tcp_closemp_used is used below without any protection of a lock 4082 * as we don't expect any one else to use it concurrently at this 4083 * point otherwise it would be a major defect, though we do 4084 * increment tcp_closemp_used to record any attempt to reuse 4085 * tcp_closemp while it is still in use. This would help debugging. 4086 */ 4087 4088 if (mp->b_prev == NULL) { 4089 tcp->tcp_closemp_used = 1; 4090 } else { 4091 tcp->tcp_closemp_used++; 4092 ASSERT(mp->b_prev == NULL); 4093 } 4094 4095 TCP_DEBUG_GETPCSTACK(tcp->tcmp_stk, 15); 4096 4097 (*tcp_squeue_close_proc)(connp->conn_sqp, mp, 4098 tcp_close_output, connp, SQTAG_IP_TCP_CLOSE); 4099 4100 mutex_enter(&tcp->tcp_closelock); 4101 while (!tcp->tcp_closed) { 4102 if (!cv_wait_sig(&tcp->tcp_closecv, &tcp->tcp_closelock)) { 4103 /* 4104 * We got interrupted. Check if we are lingering, 4105 * if yes, post a message to stop and wait until 4106 * tcp_closed is set. If we aren't lingering, 4107 * just go back around. 4108 */ 4109 if (tcp->tcp_linger && 4110 tcp->tcp_lingertime > 0 && 4111 !linger_interrupted) { 4112 mutex_exit(&tcp->tcp_closelock); 4113 /* Entering squeue, bump ref count. */ 4114 CONN_INC_REF(connp); 4115 bp = allocb_wait(0, BPRI_HI, STR_NOSIG, NULL); 4116 squeue_enter(connp->conn_sqp, bp, 4117 tcp_linger_interrupted, connp, 4118 SQTAG_IP_TCP_CLOSE); 4119 linger_interrupted = B_TRUE; 4120 mutex_enter(&tcp->tcp_closelock); 4121 } 4122 } 4123 } 4124 mutex_exit(&tcp->tcp_closelock); 4125 4126 /* 4127 * In the case of listener streams that have eagers in the q or q0 4128 * we wait for the eagers to drop their reference to us. tcp_rq and 4129 * tcp_wq of the eagers point to our queues. By waiting for the 4130 * refcnt to drop to 1, we are sure that the eagers have cleaned 4131 * up their queue pointers and also dropped their references to us. 4132 */ 4133 if (tcp->tcp_wait_for_eagers) { 4134 mutex_enter(&connp->conn_lock); 4135 while (connp->conn_ref != 1) { 4136 cv_wait(&connp->conn_cv, &connp->conn_lock); 4137 } 4138 mutex_exit(&connp->conn_lock); 4139 } 4140 /* 4141 * ioctl cleanup. The mp is queued in the 4142 * ill_pending_mp or in the sq_pending_mp. 4143 */ 4144 if (conn_ioctl_cleanup_reqd) 4145 conn_ioctl_cleanup(connp); 4146 4147 qprocsoff(q); 4148 inet_minor_free(ip_minor_arena, connp->conn_dev); 4149 4150 tcp->tcp_cpid = -1; 4151 4152 /* 4153 * Drop IP's reference on the conn. This is the last reference 4154 * on the connp if the state was less than established. If the 4155 * connection has gone into timewait state, then we will have 4156 * one ref for the TCP and one more ref (total of two) for the 4157 * classifier connected hash list (a timewait connections stays 4158 * in connected hash till closed). 4159 * 4160 * We can't assert the references because there might be other 4161 * transient reference places because of some walkers or queued 4162 * packets in squeue for the timewait state. 4163 */ 4164 CONN_DEC_REF(connp); 4165 q->q_ptr = WR(q)->q_ptr = NULL; 4166 return (0); 4167 } 4168 4169 static int 4170 tcpclose_accept(queue_t *q) 4171 { 4172 ASSERT(WR(q)->q_qinfo == &tcp_acceptor_winit); 4173 4174 /* 4175 * We had opened an acceptor STREAM for sockfs which is 4176 * now being closed due to some error. 4177 */ 4178 qprocsoff(q); 4179 inet_minor_free(ip_minor_arena, (dev_t)q->q_ptr); 4180 q->q_ptr = WR(q)->q_ptr = NULL; 4181 return (0); 4182 } 4183 4184 /* 4185 * Called by tcp_close() routine via squeue when lingering is 4186 * interrupted by a signal. 4187 */ 4188 4189 /* ARGSUSED */ 4190 static void 4191 tcp_linger_interrupted(void *arg, mblk_t *mp, void *arg2) 4192 { 4193 conn_t *connp = (conn_t *)arg; 4194 tcp_t *tcp = connp->conn_tcp; 4195 4196 freeb(mp); 4197 if (tcp->tcp_linger_tid != 0 && 4198 TCP_TIMER_CANCEL(tcp, tcp->tcp_linger_tid) >= 0) { 4199 tcp_stop_lingering(tcp); 4200 tcp->tcp_client_errno = EINTR; 4201 } 4202 } 4203 4204 /* 4205 * Called by streams close routine via squeues when our client blows off her 4206 * descriptor, we take this to mean: "close the stream state NOW, close the tcp 4207 * connection politely" When SO_LINGER is set (with a non-zero linger time and 4208 * it is not a nonblocking socket) then this routine sleeps until the FIN is 4209 * acked. 4210 * 4211 * NOTE: tcp_close potentially returns error when lingering. 4212 * However, the stream head currently does not pass these errors 4213 * to the application. 4.4BSD only returns EINTR and EWOULDBLOCK 4214 * errors to the application (from tsleep()) and not errors 4215 * like ECONNRESET caused by receiving a reset packet. 4216 */ 4217 4218 /* ARGSUSED */ 4219 static void 4220 tcp_close_output(void *arg, mblk_t *mp, void *arg2) 4221 { 4222 char *msg; 4223 conn_t *connp = (conn_t *)arg; 4224 tcp_t *tcp = connp->conn_tcp; 4225 clock_t delta = 0; 4226 4227 ASSERT((connp->conn_fanout != NULL && connp->conn_ref >= 4) || 4228 (connp->conn_fanout == NULL && connp->conn_ref >= 3)); 4229 4230 /* Cancel any pending timeout */ 4231 if (tcp->tcp_ordrelid != 0) { 4232 if (tcp->tcp_timeout) { 4233 (void) TCP_TIMER_CANCEL(tcp, tcp->tcp_ordrelid); 4234 } 4235 tcp->tcp_ordrelid = 0; 4236 tcp->tcp_timeout = B_FALSE; 4237 } 4238 4239 mutex_enter(&tcp->tcp_eager_lock); 4240 if (tcp->tcp_conn_req_cnt_q0 != 0 || tcp->tcp_conn_req_cnt_q != 0) { 4241 /* Cleanup for listener */ 4242 tcp_eager_cleanup(tcp, 0); 4243 tcp->tcp_wait_for_eagers = 1; 4244 } 4245 mutex_exit(&tcp->tcp_eager_lock); 4246 4247 connp->conn_mdt_ok = B_FALSE; 4248 tcp->tcp_mdt = B_FALSE; 4249 4250 connp->conn_lso_ok = B_FALSE; 4251 tcp->tcp_lso = B_FALSE; 4252 4253 msg = NULL; 4254 switch (tcp->tcp_state) { 4255 case TCPS_CLOSED: 4256 case TCPS_IDLE: 4257 case TCPS_BOUND: 4258 case TCPS_LISTEN: 4259 break; 4260 case TCPS_SYN_SENT: 4261 msg = "tcp_close, during connect"; 4262 break; 4263 case TCPS_SYN_RCVD: 4264 /* 4265 * Close during the connect 3-way handshake 4266 * but here there may or may not be pending data 4267 * already on queue. Process almost same as in 4268 * the ESTABLISHED state. 4269 */ 4270 /* FALLTHRU */ 4271 default: 4272 if (tcp->tcp_fused) 4273 tcp_unfuse(tcp); 4274 4275 /* 4276 * If SO_LINGER has set a zero linger time, abort the 4277 * connection with a reset. 4278 */ 4279 if (tcp->tcp_linger && tcp->tcp_lingertime == 0) { 4280 msg = "tcp_close, zero lingertime"; 4281 break; 4282 } 4283 4284 ASSERT(tcp->tcp_hard_bound || tcp->tcp_hard_binding); 4285 /* 4286 * Abort connection if there is unread data queued. 4287 */ 4288 if (tcp->tcp_rcv_list || tcp->tcp_reass_head) { 4289 msg = "tcp_close, unread data"; 4290 break; 4291 } 4292 /* 4293 * tcp_hard_bound is now cleared thus all packets go through 4294 * tcp_lookup. This fact is used by tcp_detach below. 4295 * 4296 * We have done a qwait() above which could have possibly 4297 * drained more messages in turn causing transition to a 4298 * different state. Check whether we have to do the rest 4299 * of the processing or not. 4300 */ 4301 if (tcp->tcp_state <= TCPS_LISTEN) 4302 break; 4303 4304 /* 4305 * Transmit the FIN before detaching the tcp_t. 4306 * After tcp_detach returns this queue/perimeter 4307 * no longer owns the tcp_t thus others can modify it. 4308 */ 4309 (void) tcp_xmit_end(tcp); 4310 4311 /* 4312 * If lingering on close then wait until the fin is acked, 4313 * the SO_LINGER time passes, or a reset is sent/received. 4314 */ 4315 if (tcp->tcp_linger && tcp->tcp_lingertime > 0 && 4316 !(tcp->tcp_fin_acked) && 4317 tcp->tcp_state >= TCPS_ESTABLISHED) { 4318 if (tcp->tcp_closeflags & (FNDELAY|FNONBLOCK)) { 4319 tcp->tcp_client_errno = EWOULDBLOCK; 4320 } else if (tcp->tcp_client_errno == 0) { 4321 4322 ASSERT(tcp->tcp_linger_tid == 0); 4323 4324 tcp->tcp_linger_tid = TCP_TIMER(tcp, 4325 tcp_close_linger_timeout, 4326 tcp->tcp_lingertime * hz); 4327 4328 /* tcp_close_linger_timeout will finish close */ 4329 if (tcp->tcp_linger_tid == 0) 4330 tcp->tcp_client_errno = ENOSR; 4331 else 4332 return; 4333 } 4334 4335 /* 4336 * Check if we need to detach or just close 4337 * the instance. 4338 */ 4339 if (tcp->tcp_state <= TCPS_LISTEN) 4340 break; 4341 } 4342 4343 /* 4344 * Make sure that no other thread will access the tcp_rq of 4345 * this instance (through lookups etc.) as tcp_rq will go 4346 * away shortly. 4347 */ 4348 tcp_acceptor_hash_remove(tcp); 4349 4350 if (tcp->tcp_flow_stopped) { 4351 tcp_clrqfull(tcp); 4352 } 4353 4354 if (tcp->tcp_timer_tid != 0) { 4355 delta = TCP_TIMER_CANCEL(tcp, tcp->tcp_timer_tid); 4356 tcp->tcp_timer_tid = 0; 4357 } 4358 /* 4359 * Need to cancel those timers which will not be used when 4360 * TCP is detached. This has to be done before the tcp_wq 4361 * is set to the global queue. 4362 */ 4363 tcp_timers_stop(tcp); 4364 4365 tcp->tcp_detached = B_TRUE; 4366 if (tcp->tcp_state == TCPS_TIME_WAIT) { 4367 tcp_time_wait_append(tcp); 4368 TCP_DBGSTAT(tcp_detach_time_wait); 4369 ASSERT(connp->conn_ref >= 3); 4370 goto finish; 4371 } 4372 4373 /* 4374 * If delta is zero the timer event wasn't executed and was 4375 * successfully canceled. In this case we need to restart it 4376 * with the minimal delta possible. 4377 */ 4378 if (delta >= 0) 4379 tcp->tcp_timer_tid = TCP_TIMER(tcp, tcp_timer, 4380 delta ? delta : 1); 4381 4382 ASSERT(connp->conn_ref >= 3); 4383 goto finish; 4384 } 4385 4386 /* Detach did not complete. Still need to remove q from stream. */ 4387 if (msg) { 4388 if (tcp->tcp_state == TCPS_ESTABLISHED || 4389 tcp->tcp_state == TCPS_CLOSE_WAIT) 4390 BUMP_MIB(&tcp_mib, tcpEstabResets); 4391 if (tcp->tcp_state == TCPS_SYN_SENT || 4392 tcp->tcp_state == TCPS_SYN_RCVD) 4393 BUMP_MIB(&tcp_mib, tcpAttemptFails); 4394 tcp_xmit_ctl(msg, tcp, tcp->tcp_snxt, 0, TH_RST); 4395 } 4396 4397 tcp_closei_local(tcp); 4398 CONN_DEC_REF(connp); 4399 ASSERT(connp->conn_ref >= 2); 4400 4401 finish: 4402 /* 4403 * Although packets are always processed on the correct 4404 * tcp's perimeter and access is serialized via squeue's, 4405 * IP still needs a queue when sending packets in time_wait 4406 * state so use WR(tcp_g_q) till ip_output() can be 4407 * changed to deal with just connp. For read side, we 4408 * could have set tcp_rq to NULL but there are some cases 4409 * in tcp_rput_data() from early days of this code which 4410 * do a putnext without checking if tcp is closed. Those 4411 * need to be identified before both tcp_rq and tcp_wq 4412 * can be set to NULL and tcp_q_q can disappear forever. 4413 */ 4414 mutex_enter(&tcp->tcp_closelock); 4415 /* 4416 * Don't change the queues in the case of a listener that has 4417 * eagers in its q or q0. It could surprise the eagers. 4418 * Instead wait for the eagers outside the squeue. 4419 */ 4420 if (!tcp->tcp_wait_for_eagers) { 4421 tcp->tcp_detached = B_TRUE; 4422 tcp->tcp_rq = tcp_g_q; 4423 tcp->tcp_wq = WR(tcp_g_q); 4424 } 4425 4426 /* Signal tcp_close() to finish closing. */ 4427 tcp->tcp_closed = 1; 4428 cv_signal(&tcp->tcp_closecv); 4429 mutex_exit(&tcp->tcp_closelock); 4430 } 4431 4432 4433 /* 4434 * Clean up the b_next and b_prev fields of every mblk pointed at by *mpp. 4435 * Some stream heads get upset if they see these later on as anything but NULL. 4436 */ 4437 static void 4438 tcp_close_mpp(mblk_t **mpp) 4439 { 4440 mblk_t *mp; 4441 4442 if ((mp = *mpp) != NULL) { 4443 do { 4444 mp->b_next = NULL; 4445 mp->b_prev = NULL; 4446 } while ((mp = mp->b_cont) != NULL); 4447 4448 mp = *mpp; 4449 *mpp = NULL; 4450 freemsg(mp); 4451 } 4452 } 4453 4454 /* Do detached close. */ 4455 static void 4456 tcp_close_detached(tcp_t *tcp) 4457 { 4458 if (tcp->tcp_fused) 4459 tcp_unfuse(tcp); 4460 4461 /* 4462 * Clustering code serializes TCP disconnect callbacks and 4463 * cluster tcp list walks by blocking a TCP disconnect callback 4464 * if a cluster tcp list walk is in progress. This ensures 4465 * accurate accounting of TCPs in the cluster code even though 4466 * the TCP list walk itself is not atomic. 4467 */ 4468 tcp_closei_local(tcp); 4469 CONN_DEC_REF(tcp->tcp_connp); 4470 } 4471 4472 /* 4473 * Stop all TCP timers, and free the timer mblks if requested. 4474 */ 4475 void 4476 tcp_timers_stop(tcp_t *tcp) 4477 { 4478 if (tcp->tcp_timer_tid != 0) { 4479 (void) TCP_TIMER_CANCEL(tcp, tcp->tcp_timer_tid); 4480 tcp->tcp_timer_tid = 0; 4481 } 4482 if (tcp->tcp_ka_tid != 0) { 4483 (void) TCP_TIMER_CANCEL(tcp, tcp->tcp_ka_tid); 4484 tcp->tcp_ka_tid = 0; 4485 } 4486 if (tcp->tcp_ack_tid != 0) { 4487 (void) TCP_TIMER_CANCEL(tcp, tcp->tcp_ack_tid); 4488 tcp->tcp_ack_tid = 0; 4489 } 4490 if (tcp->tcp_push_tid != 0) { 4491 (void) TCP_TIMER_CANCEL(tcp, tcp->tcp_push_tid); 4492 tcp->tcp_push_tid = 0; 4493 } 4494 } 4495 4496 /* 4497 * The tcp_t is going away. Remove it from all lists and set it 4498 * to TCPS_CLOSED. The freeing up of memory is deferred until 4499 * tcp_inactive. This is needed since a thread in tcp_rput might have 4500 * done a CONN_INC_REF on this structure before it was removed from the 4501 * hashes. 4502 */ 4503 static void 4504 tcp_closei_local(tcp_t *tcp) 4505 { 4506 ire_t *ire; 4507 conn_t *connp = tcp->tcp_connp; 4508 4509 if (!TCP_IS_SOCKET(tcp)) 4510 tcp_acceptor_hash_remove(tcp); 4511 4512 UPDATE_MIB(&tcp_mib, tcpInSegs, tcp->tcp_ibsegs); 4513 tcp->tcp_ibsegs = 0; 4514 UPDATE_MIB(&tcp_mib, tcpOutSegs, tcp->tcp_obsegs); 4515 tcp->tcp_obsegs = 0; 4516 4517 /* 4518 * If we are an eager connection hanging off a listener that 4519 * hasn't formally accepted the connection yet, get off his 4520 * list and blow off any data that we have accumulated. 4521 */ 4522 if (tcp->tcp_listener != NULL) { 4523 tcp_t *listener = tcp->tcp_listener; 4524 mutex_enter(&listener->tcp_eager_lock); 4525 /* 4526 * tcp_tconnind_started == B_TRUE means that the 4527 * conn_ind has already gone to listener. At 4528 * this point, eager will be closed but we 4529 * leave it in listeners eager list so that 4530 * if listener decides to close without doing 4531 * accept, we can clean this up. In tcp_wput_accept 4532 * we take care of the case of accept on closed 4533 * eager. 4534 */ 4535 if (!tcp->tcp_tconnind_started) { 4536 tcp_eager_unlink(tcp); 4537 mutex_exit(&listener->tcp_eager_lock); 4538 /* 4539 * We don't want to have any pointers to the 4540 * listener queue, after we have released our 4541 * reference on the listener 4542 */ 4543 tcp->tcp_rq = tcp_g_q; 4544 tcp->tcp_wq = WR(tcp_g_q); 4545 CONN_DEC_REF(listener->tcp_connp); 4546 } else { 4547 mutex_exit(&listener->tcp_eager_lock); 4548 } 4549 } 4550 4551 /* Stop all the timers */ 4552 tcp_timers_stop(tcp); 4553 4554 if (tcp->tcp_state == TCPS_LISTEN) { 4555 if (tcp->tcp_ip_addr_cache) { 4556 kmem_free((void *)tcp->tcp_ip_addr_cache, 4557 IP_ADDR_CACHE_SIZE * sizeof (ipaddr_t)); 4558 tcp->tcp_ip_addr_cache = NULL; 4559 } 4560 } 4561 if (tcp->tcp_flow_stopped) 4562 tcp_clrqfull(tcp); 4563 4564 tcp_bind_hash_remove(tcp); 4565 /* 4566 * If the tcp_time_wait_collector (which runs outside the squeue) 4567 * is trying to remove this tcp from the time wait list, we will 4568 * block in tcp_time_wait_remove while trying to acquire the 4569 * tcp_time_wait_lock. The logic in tcp_time_wait_collector also 4570 * requires the ipcl_hash_remove to be ordered after the 4571 * tcp_time_wait_remove for the refcnt checks to work correctly. 4572 */ 4573 if (tcp->tcp_state == TCPS_TIME_WAIT) 4574 (void) tcp_time_wait_remove(tcp, NULL); 4575 CL_INET_DISCONNECT(tcp); 4576 ipcl_hash_remove(connp); 4577 4578 /* 4579 * Delete the cached ire in conn_ire_cache and also mark 4580 * the conn as CONDEMNED 4581 */ 4582 mutex_enter(&connp->conn_lock); 4583 connp->conn_state_flags |= CONN_CONDEMNED; 4584 ire = connp->conn_ire_cache; 4585 connp->conn_ire_cache = NULL; 4586 mutex_exit(&connp->conn_lock); 4587 if (ire != NULL) 4588 IRE_REFRELE_NOTR(ire); 4589 4590 /* Need to cleanup any pending ioctls */ 4591 ASSERT(tcp->tcp_time_wait_next == NULL); 4592 ASSERT(tcp->tcp_time_wait_prev == NULL); 4593 ASSERT(tcp->tcp_time_wait_expire == 0); 4594 tcp->tcp_state = TCPS_CLOSED; 4595 4596 /* Release any SSL context */ 4597 if (tcp->tcp_kssl_ent != NULL) { 4598 kssl_release_ent(tcp->tcp_kssl_ent, NULL, KSSL_NO_PROXY); 4599 tcp->tcp_kssl_ent = NULL; 4600 } 4601 if (tcp->tcp_kssl_ctx != NULL) { 4602 kssl_release_ctx(tcp->tcp_kssl_ctx); 4603 tcp->tcp_kssl_ctx = NULL; 4604 } 4605 tcp->tcp_kssl_pending = B_FALSE; 4606 } 4607 4608 /* 4609 * tcp is dying (called from ipcl_conn_destroy and error cases). 4610 * Free the tcp_t in either case. 4611 */ 4612 void 4613 tcp_free(tcp_t *tcp) 4614 { 4615 mblk_t *mp; 4616 ip6_pkt_t *ipp; 4617 4618 ASSERT(tcp != NULL); 4619 ASSERT(tcp->tcp_ptpahn == NULL && tcp->tcp_acceptor_hash == NULL); 4620 4621 tcp->tcp_rq = NULL; 4622 tcp->tcp_wq = NULL; 4623 4624 tcp_close_mpp(&tcp->tcp_xmit_head); 4625 tcp_close_mpp(&tcp->tcp_reass_head); 4626 if (tcp->tcp_rcv_list != NULL) { 4627 /* Free b_next chain */ 4628 tcp_close_mpp(&tcp->tcp_rcv_list); 4629 } 4630 if ((mp = tcp->tcp_urp_mp) != NULL) { 4631 freemsg(mp); 4632 } 4633 if ((mp = tcp->tcp_urp_mark_mp) != NULL) { 4634 freemsg(mp); 4635 } 4636 4637 if (tcp->tcp_fused_sigurg_mp != NULL) { 4638 freeb(tcp->tcp_fused_sigurg_mp); 4639 tcp->tcp_fused_sigurg_mp = NULL; 4640 } 4641 4642 if (tcp->tcp_sack_info != NULL) { 4643 if (tcp->tcp_notsack_list != NULL) { 4644 TCP_NOTSACK_REMOVE_ALL(tcp->tcp_notsack_list); 4645 } 4646 bzero(tcp->tcp_sack_info, sizeof (tcp_sack_info_t)); 4647 } 4648 4649 if (tcp->tcp_hopopts != NULL) { 4650 mi_free(tcp->tcp_hopopts); 4651 tcp->tcp_hopopts = NULL; 4652 tcp->tcp_hopoptslen = 0; 4653 } 4654 ASSERT(tcp->tcp_hopoptslen == 0); 4655 if (tcp->tcp_dstopts != NULL) { 4656 mi_free(tcp->tcp_dstopts); 4657 tcp->tcp_dstopts = NULL; 4658 tcp->tcp_dstoptslen = 0; 4659 } 4660 ASSERT(tcp->tcp_dstoptslen == 0); 4661 if (tcp->tcp_rtdstopts != NULL) { 4662 mi_free(tcp->tcp_rtdstopts); 4663 tcp->tcp_rtdstopts = NULL; 4664 tcp->tcp_rtdstoptslen = 0; 4665 } 4666 ASSERT(tcp->tcp_rtdstoptslen == 0); 4667 if (tcp->tcp_rthdr != NULL) { 4668 mi_free(tcp->tcp_rthdr); 4669 tcp->tcp_rthdr = NULL; 4670 tcp->tcp_rthdrlen = 0; 4671 } 4672 ASSERT(tcp->tcp_rthdrlen == 0); 4673 4674 ipp = &tcp->tcp_sticky_ipp; 4675 if (ipp->ipp_fields & (IPPF_HOPOPTS | IPPF_RTDSTOPTS | IPPF_DSTOPTS | 4676 IPPF_RTHDR)) 4677 ip6_pkt_free(ipp); 4678 4679 /* 4680 * Free memory associated with the tcp/ip header template. 4681 */ 4682 4683 if (tcp->tcp_iphc != NULL) 4684 bzero(tcp->tcp_iphc, tcp->tcp_iphc_len); 4685 4686 /* 4687 * Following is really a blowing away a union. 4688 * It happens to have exactly two members of identical size 4689 * the following code is enough. 4690 */ 4691 tcp_close_mpp(&tcp->tcp_conn.tcp_eager_conn_ind); 4692 4693 if (tcp->tcp_tracebuf != NULL) { 4694 kmem_free(tcp->tcp_tracebuf, sizeof (tcptrch_t)); 4695 tcp->tcp_tracebuf = NULL; 4696 } 4697 } 4698 4699 4700 /* 4701 * Put a connection confirmation message upstream built from the 4702 * address information within 'iph' and 'tcph'. Report our success or failure. 4703 */ 4704 static boolean_t 4705 tcp_conn_con(tcp_t *tcp, uchar_t *iphdr, tcph_t *tcph, mblk_t *idmp, 4706 mblk_t **defermp) 4707 { 4708 sin_t sin; 4709 sin6_t sin6; 4710 mblk_t *mp; 4711 char *optp = NULL; 4712 int optlen = 0; 4713 cred_t *cr; 4714 4715 if (defermp != NULL) 4716 *defermp = NULL; 4717 4718 if (tcp->tcp_conn.tcp_opts_conn_req != NULL) { 4719 /* 4720 * Return in T_CONN_CON results of option negotiation through 4721 * the T_CONN_REQ. Note: If there is an real end-to-end option 4722 * negotiation, then what is received from remote end needs 4723 * to be taken into account but there is no such thing (yet?) 4724 * in our TCP/IP. 4725 * Note: We do not use mi_offset_param() here as 4726 * tcp_opts_conn_req contents do not directly come from 4727 * an application and are either generated in kernel or 4728 * from user input that was already verified. 4729 */ 4730 mp = tcp->tcp_conn.tcp_opts_conn_req; 4731 optp = (char *)(mp->b_rptr + 4732 ((struct T_conn_req *)mp->b_rptr)->OPT_offset); 4733 optlen = (int) 4734 ((struct T_conn_req *)mp->b_rptr)->OPT_length; 4735 } 4736 4737 if (IPH_HDR_VERSION(iphdr) == IPV4_VERSION) { 4738 ipha_t *ipha = (ipha_t *)iphdr; 4739 4740 /* packet is IPv4 */ 4741 if (tcp->tcp_family == AF_INET) { 4742 sin = sin_null; 4743 sin.sin_addr.s_addr = ipha->ipha_src; 4744 sin.sin_port = *(uint16_t *)tcph->th_lport; 4745 sin.sin_family = AF_INET; 4746 mp = mi_tpi_conn_con(NULL, (char *)&sin, 4747 (int)sizeof (sin_t), optp, optlen); 4748 } else { 4749 sin6 = sin6_null; 4750 IN6_IPADDR_TO_V4MAPPED(ipha->ipha_src, &sin6.sin6_addr); 4751 sin6.sin6_port = *(uint16_t *)tcph->th_lport; 4752 sin6.sin6_family = AF_INET6; 4753 mp = mi_tpi_conn_con(NULL, (char *)&sin6, 4754 (int)sizeof (sin6_t), optp, optlen); 4755 4756 } 4757 } else { 4758 ip6_t *ip6h = (ip6_t *)iphdr; 4759 4760 ASSERT(IPH_HDR_VERSION(iphdr) == IPV6_VERSION); 4761 ASSERT(tcp->tcp_family == AF_INET6); 4762 sin6 = sin6_null; 4763 sin6.sin6_addr = ip6h->ip6_src; 4764 sin6.sin6_port = *(uint16_t *)tcph->th_lport; 4765 sin6.sin6_family = AF_INET6; 4766 sin6.sin6_flowinfo = ip6h->ip6_vcf & ~IPV6_VERS_AND_FLOW_MASK; 4767 mp = mi_tpi_conn_con(NULL, (char *)&sin6, 4768 (int)sizeof (sin6_t), optp, optlen); 4769 } 4770 4771 if (!mp) 4772 return (B_FALSE); 4773 4774 if ((cr = DB_CRED(idmp)) != NULL) { 4775 mblk_setcred(mp, cr); 4776 DB_CPID(mp) = DB_CPID(idmp); 4777 } 4778 4779 if (defermp == NULL) 4780 putnext(tcp->tcp_rq, mp); 4781 else 4782 *defermp = mp; 4783 4784 if (tcp->tcp_conn.tcp_opts_conn_req != NULL) 4785 tcp_close_mpp(&tcp->tcp_conn.tcp_opts_conn_req); 4786 return (B_TRUE); 4787 } 4788 4789 /* 4790 * Defense for the SYN attack - 4791 * 1. When q0 is full, drop from the tail (tcp_eager_prev_drop_q0) the oldest 4792 * one from the list of droppable eagers. This list is a subset of q0. 4793 * see comments before the definition of MAKE_DROPPABLE(). 4794 * 2. Don't drop a SYN request before its first timeout. This gives every 4795 * request at least til the first timeout to complete its 3-way handshake. 4796 * 3. Maintain tcp_syn_rcvd_timeout as an accurate count of how many 4797 * requests currently on the queue that has timed out. This will be used 4798 * as an indicator of whether an attack is under way, so that appropriate 4799 * actions can be taken. (It's incremented in tcp_timer() and decremented 4800 * either when eager goes into ESTABLISHED, or gets freed up.) 4801 * 4. The current threshold is - # of timeout > q0len/4 => SYN alert on 4802 * # of timeout drops back to <= q0len/32 => SYN alert off 4803 */ 4804 static boolean_t 4805 tcp_drop_q0(tcp_t *tcp) 4806 { 4807 tcp_t *eager; 4808 mblk_t *mp; 4809 4810 ASSERT(MUTEX_HELD(&tcp->tcp_eager_lock)); 4811 ASSERT(tcp->tcp_eager_next_q0 != tcp->tcp_eager_prev_q0); 4812 4813 /* Pick oldest eager from the list of droppable eagers */ 4814 eager = tcp->tcp_eager_prev_drop_q0; 4815 4816 /* If list is empty. return B_FALSE */ 4817 if (eager == tcp) { 4818 return (B_FALSE); 4819 } 4820 4821 /* If allocated, the mp will be freed in tcp_clean_death_wrapper() */ 4822 if ((mp = allocb(0, BPRI_HI)) == NULL) 4823 return (B_FALSE); 4824 4825 /* 4826 * Take this eager out from the list of droppable eagers since we are 4827 * going to drop it. 4828 */ 4829 MAKE_UNDROPPABLE(eager); 4830 4831 if (tcp->tcp_debug) { 4832 (void) strlog(TCP_MOD_ID, 0, 3, SL_TRACE, 4833 "tcp_drop_q0: listen half-open queue (max=%d) overflow" 4834 " (%d pending) on %s, drop one", tcp_conn_req_max_q0, 4835 tcp->tcp_conn_req_cnt_q0, 4836 tcp_display(tcp, NULL, DISP_PORT_ONLY)); 4837 } 4838 4839 BUMP_MIB(&tcp_mib, tcpHalfOpenDrop); 4840 4841 /* Put a reference on the conn as we are enqueueing it in the sqeue */ 4842 CONN_INC_REF(eager->tcp_connp); 4843 4844 /* Mark the IRE created for this SYN request temporary */ 4845 tcp_ip_ire_mark_advice(eager); 4846 squeue_fill(eager->tcp_connp->conn_sqp, mp, 4847 tcp_clean_death_wrapper, eager->tcp_connp, SQTAG_TCP_DROP_Q0); 4848 4849 return (B_TRUE); 4850 } 4851 4852 int 4853 tcp_conn_create_v6(conn_t *lconnp, conn_t *connp, mblk_t *mp, 4854 tcph_t *tcph, uint_t ipvers, mblk_t *idmp) 4855 { 4856 tcp_t *ltcp = lconnp->conn_tcp; 4857 tcp_t *tcp = connp->conn_tcp; 4858 mblk_t *tpi_mp; 4859 ipha_t *ipha; 4860 ip6_t *ip6h; 4861 sin6_t sin6; 4862 in6_addr_t v6dst; 4863 int err; 4864 int ifindex = 0; 4865 cred_t *cr; 4866 4867 if (ipvers == IPV4_VERSION) { 4868 ipha = (ipha_t *)mp->b_rptr; 4869 4870 connp->conn_send = ip_output; 4871 connp->conn_recv = tcp_input; 4872 4873 IN6_IPADDR_TO_V4MAPPED(ipha->ipha_dst, &connp->conn_srcv6); 4874 IN6_IPADDR_TO_V4MAPPED(ipha->ipha_src, &connp->conn_remv6); 4875 4876 sin6 = sin6_null; 4877 IN6_IPADDR_TO_V4MAPPED(ipha->ipha_src, &sin6.sin6_addr); 4878 IN6_IPADDR_TO_V4MAPPED(ipha->ipha_dst, &v6dst); 4879 sin6.sin6_port = *(uint16_t *)tcph->th_lport; 4880 sin6.sin6_family = AF_INET6; 4881 sin6.__sin6_src_id = ip_srcid_find_addr(&v6dst, 4882 lconnp->conn_zoneid); 4883 if (tcp->tcp_recvdstaddr) { 4884 sin6_t sin6d; 4885 4886 sin6d = sin6_null; 4887 IN6_IPADDR_TO_V4MAPPED(ipha->ipha_dst, 4888 &sin6d.sin6_addr); 4889 sin6d.sin6_port = *(uint16_t *)tcph->th_fport; 4890 sin6d.sin6_family = AF_INET; 4891 tpi_mp = mi_tpi_extconn_ind(NULL, 4892 (char *)&sin6d, sizeof (sin6_t), 4893 (char *)&tcp, 4894 (t_scalar_t)sizeof (intptr_t), 4895 (char *)&sin6d, sizeof (sin6_t), 4896 (t_scalar_t)ltcp->tcp_conn_req_seqnum); 4897 } else { 4898 tpi_mp = mi_tpi_conn_ind(NULL, 4899 (char *)&sin6, sizeof (sin6_t), 4900 (char *)&tcp, (t_scalar_t)sizeof (intptr_t), 4901 (t_scalar_t)ltcp->tcp_conn_req_seqnum); 4902 } 4903 } else { 4904 ip6h = (ip6_t *)mp->b_rptr; 4905 4906 connp->conn_send = ip_output_v6; 4907 connp->conn_recv = tcp_input; 4908 4909 connp->conn_srcv6 = ip6h->ip6_dst; 4910 connp->conn_remv6 = ip6h->ip6_src; 4911 4912 /* db_cksumstuff is set at ip_fanout_tcp_v6 */ 4913 ifindex = (int)DB_CKSUMSTUFF(mp); 4914 DB_CKSUMSTUFF(mp) = 0; 4915 4916 sin6 = sin6_null; 4917 sin6.sin6_addr = ip6h->ip6_src; 4918 sin6.sin6_port = *(uint16_t *)tcph->th_lport; 4919 sin6.sin6_family = AF_INET6; 4920 sin6.sin6_flowinfo = ip6h->ip6_vcf & ~IPV6_VERS_AND_FLOW_MASK; 4921 sin6.__sin6_src_id = ip_srcid_find_addr(&ip6h->ip6_dst, 4922 lconnp->conn_zoneid); 4923 4924 if (IN6_IS_ADDR_LINKSCOPE(&ip6h->ip6_src)) { 4925 /* Pass up the scope_id of remote addr */ 4926 sin6.sin6_scope_id = ifindex; 4927 } else { 4928 sin6.sin6_scope_id = 0; 4929 } 4930 if (tcp->tcp_recvdstaddr) { 4931 sin6_t sin6d; 4932 4933 sin6d = sin6_null; 4934 sin6.sin6_addr = ip6h->ip6_dst; 4935 sin6d.sin6_port = *(uint16_t *)tcph->th_fport; 4936 sin6d.sin6_family = AF_INET; 4937 tpi_mp = mi_tpi_extconn_ind(NULL, 4938 (char *)&sin6d, sizeof (sin6_t), 4939 (char *)&tcp, (t_scalar_t)sizeof (intptr_t), 4940 (char *)&sin6d, sizeof (sin6_t), 4941 (t_scalar_t)ltcp->tcp_conn_req_seqnum); 4942 } else { 4943 tpi_mp = mi_tpi_conn_ind(NULL, 4944 (char *)&sin6, sizeof (sin6_t), 4945 (char *)&tcp, (t_scalar_t)sizeof (intptr_t), 4946 (t_scalar_t)ltcp->tcp_conn_req_seqnum); 4947 } 4948 } 4949 4950 if (tpi_mp == NULL) 4951 return (ENOMEM); 4952 4953 connp->conn_fport = *(uint16_t *)tcph->th_lport; 4954 connp->conn_lport = *(uint16_t *)tcph->th_fport; 4955 connp->conn_flags |= (IPCL_TCP6|IPCL_EAGER); 4956 connp->conn_fully_bound = B_FALSE; 4957 4958 if (tcp_trace) 4959 tcp->tcp_tracebuf = kmem_zalloc(sizeof (tcptrch_t), KM_NOSLEEP); 4960 4961 /* Inherit information from the "parent" */ 4962 tcp->tcp_ipversion = ltcp->tcp_ipversion; 4963 tcp->tcp_family = ltcp->tcp_family; 4964 tcp->tcp_wq = ltcp->tcp_wq; 4965 tcp->tcp_rq = ltcp->tcp_rq; 4966 tcp->tcp_mss = tcp_mss_def_ipv6; 4967 tcp->tcp_detached = B_TRUE; 4968 if ((err = tcp_init_values(tcp)) != 0) { 4969 freemsg(tpi_mp); 4970 return (err); 4971 } 4972 4973 if (ipvers == IPV4_VERSION) { 4974 if ((err = tcp_header_init_ipv4(tcp)) != 0) { 4975 freemsg(tpi_mp); 4976 return (err); 4977 } 4978 ASSERT(tcp->tcp_ipha != NULL); 4979 } else { 4980 /* ifindex must be already set */ 4981 ASSERT(ifindex != 0); 4982 4983 if (ltcp->tcp_bound_if != 0) { 4984 /* 4985 * Set newtcp's bound_if equal to 4986 * listener's value. If ifindex is 4987 * not the same as ltcp->tcp_bound_if, 4988 * it must be a packet for the ipmp group 4989 * of interfaces 4990 */ 4991 tcp->tcp_bound_if = ltcp->tcp_bound_if; 4992 } else if (IN6_IS_ADDR_LINKSCOPE(&ip6h->ip6_src)) { 4993 tcp->tcp_bound_if = ifindex; 4994 } 4995 4996 tcp->tcp_ipv6_recvancillary = ltcp->tcp_ipv6_recvancillary; 4997 tcp->tcp_recvifindex = 0; 4998 tcp->tcp_recvhops = 0xffffffffU; 4999 ASSERT(tcp->tcp_ip6h != NULL); 5000 } 5001 5002 tcp->tcp_lport = ltcp->tcp_lport; 5003 5004 if (ltcp->tcp_ipversion == tcp->tcp_ipversion) { 5005 if (tcp->tcp_iphc_len != ltcp->tcp_iphc_len) { 5006 /* 5007 * Listener had options of some sort; eager inherits. 5008 * Free up the eager template and allocate one 5009 * of the right size. 5010 */ 5011 if (tcp->tcp_hdr_grown) { 5012 kmem_free(tcp->tcp_iphc, tcp->tcp_iphc_len); 5013 } else { 5014 bzero(tcp->tcp_iphc, tcp->tcp_iphc_len); 5015 kmem_cache_free(tcp_iphc_cache, tcp->tcp_iphc); 5016 } 5017 tcp->tcp_iphc = kmem_zalloc(ltcp->tcp_iphc_len, 5018 KM_NOSLEEP); 5019 if (tcp->tcp_iphc == NULL) { 5020 tcp->tcp_iphc_len = 0; 5021 freemsg(tpi_mp); 5022 return (ENOMEM); 5023 } 5024 tcp->tcp_iphc_len = ltcp->tcp_iphc_len; 5025 tcp->tcp_hdr_grown = B_TRUE; 5026 } 5027 tcp->tcp_hdr_len = ltcp->tcp_hdr_len; 5028 tcp->tcp_ip_hdr_len = ltcp->tcp_ip_hdr_len; 5029 tcp->tcp_tcp_hdr_len = ltcp->tcp_tcp_hdr_len; 5030 tcp->tcp_ip6_hops = ltcp->tcp_ip6_hops; 5031 tcp->tcp_ip6_vcf = ltcp->tcp_ip6_vcf; 5032 5033 /* 5034 * Copy the IP+TCP header template from listener to eager 5035 */ 5036 bcopy(ltcp->tcp_iphc, tcp->tcp_iphc, ltcp->tcp_hdr_len); 5037 if (tcp->tcp_ipversion == IPV6_VERSION) { 5038 if (((ip6i_t *)(tcp->tcp_iphc))->ip6i_nxt == 5039 IPPROTO_RAW) { 5040 tcp->tcp_ip6h = 5041 (ip6_t *)(tcp->tcp_iphc + 5042 sizeof (ip6i_t)); 5043 } else { 5044 tcp->tcp_ip6h = 5045 (ip6_t *)(tcp->tcp_iphc); 5046 } 5047 tcp->tcp_ipha = NULL; 5048 } else { 5049 tcp->tcp_ipha = (ipha_t *)tcp->tcp_iphc; 5050 tcp->tcp_ip6h = NULL; 5051 } 5052 tcp->tcp_tcph = (tcph_t *)(tcp->tcp_iphc + 5053 tcp->tcp_ip_hdr_len); 5054 } else { 5055 /* 5056 * only valid case when ipversion of listener and 5057 * eager differ is when listener is IPv6 and 5058 * eager is IPv4. 5059 * Eager header template has been initialized to the 5060 * maximum v4 header sizes, which includes space for 5061 * TCP and IP options. 5062 */ 5063 ASSERT((ltcp->tcp_ipversion == IPV6_VERSION) && 5064 (tcp->tcp_ipversion == IPV4_VERSION)); 5065 ASSERT(tcp->tcp_iphc_len >= 5066 TCP_MAX_COMBINED_HEADER_LENGTH); 5067 tcp->tcp_tcp_hdr_len = ltcp->tcp_tcp_hdr_len; 5068 /* copy IP header fields individually */ 5069 tcp->tcp_ipha->ipha_ttl = 5070 ltcp->tcp_ip6h->ip6_hops; 5071 bcopy(ltcp->tcp_tcph->th_lport, 5072 tcp->tcp_tcph->th_lport, sizeof (ushort_t)); 5073 } 5074 5075 bcopy(tcph->th_lport, tcp->tcp_tcph->th_fport, sizeof (in_port_t)); 5076 bcopy(tcp->tcp_tcph->th_fport, &tcp->tcp_fport, 5077 sizeof (in_port_t)); 5078 5079 if (ltcp->tcp_lport == 0) { 5080 tcp->tcp_lport = *(in_port_t *)tcph->th_fport; 5081 bcopy(tcph->th_fport, tcp->tcp_tcph->th_lport, 5082 sizeof (in_port_t)); 5083 } 5084 5085 if (tcp->tcp_ipversion == IPV4_VERSION) { 5086 ASSERT(ipha != NULL); 5087 tcp->tcp_ipha->ipha_dst = ipha->ipha_src; 5088 tcp->tcp_ipha->ipha_src = ipha->ipha_dst; 5089 5090 /* Source routing option copyover (reverse it) */ 5091 if (tcp_rev_src_routes) 5092 tcp_opt_reverse(tcp, ipha); 5093 } else { 5094 ASSERT(ip6h != NULL); 5095 tcp->tcp_ip6h->ip6_dst = ip6h->ip6_src; 5096 tcp->tcp_ip6h->ip6_src = ip6h->ip6_dst; 5097 } 5098 5099 ASSERT(tcp->tcp_conn.tcp_eager_conn_ind == NULL); 5100 ASSERT(!tcp->tcp_tconnind_started); 5101 /* 5102 * If the SYN contains a credential, it's a loopback packet; attach 5103 * the credential to the TPI message. 5104 */ 5105 if ((cr = DB_CRED(idmp)) != NULL) { 5106 mblk_setcred(tpi_mp, cr); 5107 DB_CPID(tpi_mp) = DB_CPID(idmp); 5108 } 5109 tcp->tcp_conn.tcp_eager_conn_ind = tpi_mp; 5110 5111 /* Inherit the listener's SSL protection state */ 5112 5113 if ((tcp->tcp_kssl_ent = ltcp->tcp_kssl_ent) != NULL) { 5114 kssl_hold_ent(tcp->tcp_kssl_ent); 5115 tcp->tcp_kssl_pending = B_TRUE; 5116 } 5117 5118 return (0); 5119 } 5120 5121 5122 int 5123 tcp_conn_create_v4(conn_t *lconnp, conn_t *connp, ipha_t *ipha, 5124 tcph_t *tcph, mblk_t *idmp) 5125 { 5126 tcp_t *ltcp = lconnp->conn_tcp; 5127 tcp_t *tcp = connp->conn_tcp; 5128 sin_t sin; 5129 mblk_t *tpi_mp = NULL; 5130 int err; 5131 cred_t *cr; 5132 5133 sin = sin_null; 5134 sin.sin_addr.s_addr = ipha->ipha_src; 5135 sin.sin_port = *(uint16_t *)tcph->th_lport; 5136 sin.sin_family = AF_INET; 5137 if (ltcp->tcp_recvdstaddr) { 5138 sin_t sind; 5139 5140 sind = sin_null; 5141 sind.sin_addr.s_addr = ipha->ipha_dst; 5142 sind.sin_port = *(uint16_t *)tcph->th_fport; 5143 sind.sin_family = AF_INET; 5144 tpi_mp = mi_tpi_extconn_ind(NULL, 5145 (char *)&sind, sizeof (sin_t), (char *)&tcp, 5146 (t_scalar_t)sizeof (intptr_t), (char *)&sind, 5147 sizeof (sin_t), (t_scalar_t)ltcp->tcp_conn_req_seqnum); 5148 } else { 5149 tpi_mp = mi_tpi_conn_ind(NULL, 5150 (char *)&sin, sizeof (sin_t), 5151 (char *)&tcp, (t_scalar_t)sizeof (intptr_t), 5152 (t_scalar_t)ltcp->tcp_conn_req_seqnum); 5153 } 5154 5155 if (tpi_mp == NULL) { 5156 return (ENOMEM); 5157 } 5158 5159 connp->conn_flags |= (IPCL_TCP4|IPCL_EAGER); 5160 connp->conn_send = ip_output; 5161 connp->conn_recv = tcp_input; 5162 connp->conn_fully_bound = B_FALSE; 5163 5164 IN6_IPADDR_TO_V4MAPPED(ipha->ipha_dst, &connp->conn_srcv6); 5165 IN6_IPADDR_TO_V4MAPPED(ipha->ipha_src, &connp->conn_remv6); 5166 connp->conn_fport = *(uint16_t *)tcph->th_lport; 5167 connp->conn_lport = *(uint16_t *)tcph->th_fport; 5168 5169 if (tcp_trace) { 5170 tcp->tcp_tracebuf = kmem_zalloc(sizeof (tcptrch_t), KM_NOSLEEP); 5171 } 5172 5173 /* Inherit information from the "parent" */ 5174 tcp->tcp_ipversion = ltcp->tcp_ipversion; 5175 tcp->tcp_family = ltcp->tcp_family; 5176 tcp->tcp_wq = ltcp->tcp_wq; 5177 tcp->tcp_rq = ltcp->tcp_rq; 5178 tcp->tcp_mss = tcp_mss_def_ipv4; 5179 tcp->tcp_detached = B_TRUE; 5180 if ((err = tcp_init_values(tcp)) != 0) { 5181 freemsg(tpi_mp); 5182 return (err); 5183 } 5184 5185 /* 5186 * Let's make sure that eager tcp template has enough space to 5187 * copy IPv4 listener's tcp template. Since the conn_t structure is 5188 * preserved and tcp_iphc_len is also preserved, an eager conn_t may 5189 * have a tcp_template of total len TCP_MAX_COMBINED_HEADER_LENGTH or 5190 * more (in case of re-allocation of conn_t with tcp-IPv6 template with 5191 * extension headers or with ip6i_t struct). Note that bcopy() below 5192 * copies listener tcp's hdr_len which cannot be greater than TCP_MAX_ 5193 * COMBINED_HEADER_LENGTH as this listener must be a IPv4 listener. 5194 */ 5195 ASSERT(tcp->tcp_iphc_len >= TCP_MAX_COMBINED_HEADER_LENGTH); 5196 ASSERT(ltcp->tcp_hdr_len <= TCP_MAX_COMBINED_HEADER_LENGTH); 5197 5198 tcp->tcp_hdr_len = ltcp->tcp_hdr_len; 5199 tcp->tcp_ip_hdr_len = ltcp->tcp_ip_hdr_len; 5200 tcp->tcp_tcp_hdr_len = ltcp->tcp_tcp_hdr_len; 5201 tcp->tcp_ttl = ltcp->tcp_ttl; 5202 tcp->tcp_tos = ltcp->tcp_tos; 5203 5204 /* Copy the IP+TCP header template from listener to eager */ 5205 bcopy(ltcp->tcp_iphc, tcp->tcp_iphc, ltcp->tcp_hdr_len); 5206 tcp->tcp_ipha = (ipha_t *)tcp->tcp_iphc; 5207 tcp->tcp_ip6h = NULL; 5208 tcp->tcp_tcph = (tcph_t *)(tcp->tcp_iphc + 5209 tcp->tcp_ip_hdr_len); 5210 5211 /* Initialize the IP addresses and Ports */ 5212 tcp->tcp_ipha->ipha_dst = ipha->ipha_src; 5213 tcp->tcp_ipha->ipha_src = ipha->ipha_dst; 5214 bcopy(tcph->th_lport, tcp->tcp_tcph->th_fport, sizeof (in_port_t)); 5215 bcopy(tcph->th_fport, tcp->tcp_tcph->th_lport, sizeof (in_port_t)); 5216 5217 /* Source routing option copyover (reverse it) */ 5218 if (tcp_rev_src_routes) 5219 tcp_opt_reverse(tcp, ipha); 5220 5221 ASSERT(tcp->tcp_conn.tcp_eager_conn_ind == NULL); 5222 ASSERT(!tcp->tcp_tconnind_started); 5223 5224 /* 5225 * If the SYN contains a credential, it's a loopback packet; attach 5226 * the credential to the TPI message. 5227 */ 5228 if ((cr = DB_CRED(idmp)) != NULL) { 5229 mblk_setcred(tpi_mp, cr); 5230 DB_CPID(tpi_mp) = DB_CPID(idmp); 5231 } 5232 tcp->tcp_conn.tcp_eager_conn_ind = tpi_mp; 5233 5234 /* Inherit the listener's SSL protection state */ 5235 if ((tcp->tcp_kssl_ent = ltcp->tcp_kssl_ent) != NULL) { 5236 kssl_hold_ent(tcp->tcp_kssl_ent); 5237 tcp->tcp_kssl_pending = B_TRUE; 5238 } 5239 5240 return (0); 5241 } 5242 5243 /* 5244 * sets up conn for ipsec. 5245 * if the first mblk is M_CTL it is consumed and mpp is updated. 5246 * in case of error mpp is freed. 5247 */ 5248 conn_t * 5249 tcp_get_ipsec_conn(tcp_t *tcp, squeue_t *sqp, mblk_t **mpp) 5250 { 5251 conn_t *connp = tcp->tcp_connp; 5252 conn_t *econnp; 5253 squeue_t *new_sqp; 5254 mblk_t *first_mp = *mpp; 5255 mblk_t *mp = *mpp; 5256 boolean_t mctl_present = B_FALSE; 5257 uint_t ipvers; 5258 5259 econnp = tcp_get_conn(sqp); 5260 if (econnp == NULL) { 5261 freemsg(first_mp); 5262 return (NULL); 5263 } 5264 if (DB_TYPE(mp) == M_CTL) { 5265 if (mp->b_cont == NULL || 5266 mp->b_cont->b_datap->db_type != M_DATA) { 5267 freemsg(first_mp); 5268 return (NULL); 5269 } 5270 mp = mp->b_cont; 5271 if ((mp->b_datap->db_struioflag & STRUIO_EAGER) == 0) { 5272 freemsg(first_mp); 5273 return (NULL); 5274 } 5275 5276 mp->b_datap->db_struioflag &= ~STRUIO_EAGER; 5277 first_mp->b_datap->db_struioflag &= ~STRUIO_POLICY; 5278 mctl_present = B_TRUE; 5279 } else { 5280 ASSERT(mp->b_datap->db_struioflag & STRUIO_POLICY); 5281 mp->b_datap->db_struioflag &= ~STRUIO_POLICY; 5282 } 5283 5284 new_sqp = (squeue_t *)DB_CKSUMSTART(mp); 5285 DB_CKSUMSTART(mp) = 0; 5286 5287 ASSERT(OK_32PTR(mp->b_rptr)); 5288 ipvers = IPH_HDR_VERSION(mp->b_rptr); 5289 if (ipvers == IPV4_VERSION) { 5290 uint16_t *up; 5291 uint32_t ports; 5292 ipha_t *ipha; 5293 5294 ipha = (ipha_t *)mp->b_rptr; 5295 up = (uint16_t *)((uchar_t *)ipha + 5296 IPH_HDR_LENGTH(ipha) + TCP_PORTS_OFFSET); 5297 ports = *(uint32_t *)up; 5298 IPCL_TCP_EAGER_INIT(econnp, IPPROTO_TCP, 5299 ipha->ipha_dst, ipha->ipha_src, ports); 5300 } else { 5301 uint16_t *up; 5302 uint32_t ports; 5303 uint16_t ip_hdr_len; 5304 uint8_t *nexthdrp; 5305 ip6_t *ip6h; 5306 tcph_t *tcph; 5307 5308 ip6h = (ip6_t *)mp->b_rptr; 5309 if (ip6h->ip6_nxt == IPPROTO_TCP) { 5310 ip_hdr_len = IPV6_HDR_LEN; 5311 } else if (!ip_hdr_length_nexthdr_v6(mp, ip6h, &ip_hdr_len, 5312 &nexthdrp) || *nexthdrp != IPPROTO_TCP) { 5313 CONN_DEC_REF(econnp); 5314 freemsg(first_mp); 5315 return (NULL); 5316 } 5317 tcph = (tcph_t *)&mp->b_rptr[ip_hdr_len]; 5318 up = (uint16_t *)tcph->th_lport; 5319 ports = *(uint32_t *)up; 5320 IPCL_TCP_EAGER_INIT_V6(econnp, IPPROTO_TCP, 5321 ip6h->ip6_dst, ip6h->ip6_src, ports); 5322 } 5323 5324 /* 5325 * The caller already ensured that there is a sqp present. 5326 */ 5327 econnp->conn_sqp = new_sqp; 5328 5329 if (connp->conn_policy != NULL) { 5330 ipsec_in_t *ii; 5331 ii = (ipsec_in_t *)(first_mp->b_rptr); 5332 ASSERT(ii->ipsec_in_policy == NULL); 5333 IPPH_REFHOLD(connp->conn_policy); 5334 ii->ipsec_in_policy = connp->conn_policy; 5335 5336 first_mp->b_datap->db_type = IPSEC_POLICY_SET; 5337 if (!ip_bind_ipsec_policy_set(econnp, first_mp)) { 5338 CONN_DEC_REF(econnp); 5339 freemsg(first_mp); 5340 return (NULL); 5341 } 5342 } 5343 5344 if (ipsec_conn_cache_policy(econnp, ipvers == IPV4_VERSION) != 0) { 5345 CONN_DEC_REF(econnp); 5346 freemsg(first_mp); 5347 return (NULL); 5348 } 5349 5350 /* 5351 * If we know we have some policy, pass the "IPSEC" 5352 * options size TCP uses this adjust the MSS. 5353 */ 5354 econnp->conn_tcp->tcp_ipsec_overhead = conn_ipsec_length(econnp); 5355 if (mctl_present) { 5356 freeb(first_mp); 5357 *mpp = mp; 5358 } 5359 5360 return (econnp); 5361 } 5362 5363 /* 5364 * tcp_get_conn/tcp_free_conn 5365 * 5366 * tcp_get_conn is used to get a clean tcp connection structure. 5367 * It tries to reuse the connections put on the freelist by the 5368 * time_wait_collector failing which it goes to kmem_cache. This 5369 * way has two benefits compared to just allocating from and 5370 * freeing to kmem_cache. 5371 * 1) The time_wait_collector can free (which includes the cleanup) 5372 * outside the squeue. So when the interrupt comes, we have a clean 5373 * connection sitting in the freelist. Obviously, this buys us 5374 * performance. 5375 * 5376 * 2) Defence against DOS attack. Allocating a tcp/conn in tcp_conn_request 5377 * has multiple disadvantages - tying up the squeue during alloc, and the 5378 * fact that IPSec policy initialization has to happen here which 5379 * requires us sending a M_CTL and checking for it i.e. real ugliness. 5380 * But allocating the conn/tcp in IP land is also not the best since 5381 * we can't check the 'q' and 'q0' which are protected by squeue and 5382 * blindly allocate memory which might have to be freed here if we are 5383 * not allowed to accept the connection. By using the freelist and 5384 * putting the conn/tcp back in freelist, we don't pay a penalty for 5385 * allocating memory without checking 'q/q0' and freeing it if we can't 5386 * accept the connection. 5387 * 5388 * Care should be taken to put the conn back in the same squeue's freelist 5389 * from which it was allocated. Best results are obtained if conn is 5390 * allocated from listener's squeue and freed to the same. Time wait 5391 * collector will free up the freelist is the connection ends up sitting 5392 * there for too long. 5393 */ 5394 void * 5395 tcp_get_conn(void *arg) 5396 { 5397 tcp_t *tcp = NULL; 5398 conn_t *connp = NULL; 5399 squeue_t *sqp = (squeue_t *)arg; 5400 tcp_squeue_priv_t *tcp_time_wait; 5401 5402 tcp_time_wait = 5403 *((tcp_squeue_priv_t **)squeue_getprivate(sqp, SQPRIVATE_TCP)); 5404 5405 mutex_enter(&tcp_time_wait->tcp_time_wait_lock); 5406 tcp = tcp_time_wait->tcp_free_list; 5407 ASSERT((tcp != NULL) ^ (tcp_time_wait->tcp_free_list_cnt == 0)); 5408 if (tcp != NULL) { 5409 tcp_time_wait->tcp_free_list = tcp->tcp_time_wait_next; 5410 tcp_time_wait->tcp_free_list_cnt--; 5411 mutex_exit(&tcp_time_wait->tcp_time_wait_lock); 5412 tcp->tcp_time_wait_next = NULL; 5413 connp = tcp->tcp_connp; 5414 connp->conn_flags |= IPCL_REUSED; 5415 return ((void *)connp); 5416 } 5417 mutex_exit(&tcp_time_wait->tcp_time_wait_lock); 5418 if ((connp = ipcl_conn_create(IPCL_TCPCONN, KM_NOSLEEP)) == NULL) 5419 return (NULL); 5420 return ((void *)connp); 5421 } 5422 5423 /* 5424 * Update the cached label for the given tcp_t. This should be called once per 5425 * connection, and before any packets are sent or tcp_process_options is 5426 * invoked. Returns B_FALSE if the correct label could not be constructed. 5427 */ 5428 static boolean_t 5429 tcp_update_label(tcp_t *tcp, const cred_t *cr) 5430 { 5431 conn_t *connp = tcp->tcp_connp; 5432 5433 if (tcp->tcp_ipversion == IPV4_VERSION) { 5434 uchar_t optbuf[IP_MAX_OPT_LENGTH]; 5435 int added; 5436 5437 if (tsol_compute_label(cr, tcp->tcp_remote, optbuf, 5438 connp->conn_mac_exempt) != 0) 5439 return (B_FALSE); 5440 5441 added = tsol_remove_secopt(tcp->tcp_ipha, tcp->tcp_hdr_len); 5442 if (added == -1) 5443 return (B_FALSE); 5444 tcp->tcp_hdr_len += added; 5445 tcp->tcp_tcph = (tcph_t *)((uchar_t *)tcp->tcp_tcph + added); 5446 tcp->tcp_ip_hdr_len += added; 5447 if ((tcp->tcp_label_len = optbuf[IPOPT_OLEN]) != 0) { 5448 tcp->tcp_label_len = (tcp->tcp_label_len + 3) & ~3; 5449 added = tsol_prepend_option(optbuf, tcp->tcp_ipha, 5450 tcp->tcp_hdr_len); 5451 if (added == -1) 5452 return (B_FALSE); 5453 tcp->tcp_hdr_len += added; 5454 tcp->tcp_tcph = (tcph_t *) 5455 ((uchar_t *)tcp->tcp_tcph + added); 5456 tcp->tcp_ip_hdr_len += added; 5457 } 5458 } else { 5459 uchar_t optbuf[TSOL_MAX_IPV6_OPTION]; 5460 5461 if (tsol_compute_label_v6(cr, &tcp->tcp_remote_v6, optbuf, 5462 connp->conn_mac_exempt) != 0) 5463 return (B_FALSE); 5464 if (tsol_update_sticky(&tcp->tcp_sticky_ipp, 5465 &tcp->tcp_label_len, optbuf) != 0) 5466 return (B_FALSE); 5467 if (tcp_build_hdrs(tcp->tcp_rq, tcp) != 0) 5468 return (B_FALSE); 5469 } 5470 5471 connp->conn_ulp_labeled = 1; 5472 5473 return (B_TRUE); 5474 } 5475 5476 /* BEGIN CSTYLED */ 5477 /* 5478 * 5479 * The sockfs ACCEPT path: 5480 * ======================= 5481 * 5482 * The eager is now established in its own perimeter as soon as SYN is 5483 * received in tcp_conn_request(). When sockfs receives conn_ind, it 5484 * completes the accept processing on the acceptor STREAM. The sending 5485 * of conn_ind part is common for both sockfs listener and a TLI/XTI 5486 * listener but a TLI/XTI listener completes the accept processing 5487 * on the listener perimeter. 5488 * 5489 * Common control flow for 3 way handshake: 5490 * ---------------------------------------- 5491 * 5492 * incoming SYN (listener perimeter) -> tcp_rput_data() 5493 * -> tcp_conn_request() 5494 * 5495 * incoming SYN-ACK-ACK (eager perim) -> tcp_rput_data() 5496 * send T_CONN_IND (listener perim) -> tcp_send_conn_ind() 5497 * 5498 * Sockfs ACCEPT Path: 5499 * ------------------- 5500 * 5501 * open acceptor stream (ip_tcpopen allocates tcp_wput_accept() 5502 * as STREAM entry point) 5503 * 5504 * soaccept() sends T_CONN_RES on the acceptor STREAM to tcp_wput_accept() 5505 * 5506 * tcp_wput_accept() extracts the eager and makes the q->q_ptr <-> eager 5507 * association (we are not behind eager's squeue but sockfs is protecting us 5508 * and no one knows about this stream yet. The STREAMS entry point q->q_info 5509 * is changed to point at tcp_wput(). 5510 * 5511 * tcp_wput_accept() sends any deferred eagers via tcp_send_pending() to 5512 * listener (done on listener's perimeter). 5513 * 5514 * tcp_wput_accept() calls tcp_accept_finish() on eagers perimeter to finish 5515 * accept. 5516 * 5517 * TLI/XTI client ACCEPT path: 5518 * --------------------------- 5519 * 5520 * soaccept() sends T_CONN_RES on the listener STREAM. 5521 * 5522 * tcp_accept() -> tcp_accept_swap() complete the processing and send 5523 * the bind_mp to eager perimeter to finish accept (tcp_rput_other()). 5524 * 5525 * Locks: 5526 * ====== 5527 * 5528 * listener->tcp_eager_lock protects the listeners->tcp_eager_next_q0 and 5529 * and listeners->tcp_eager_next_q. 5530 * 5531 * Referencing: 5532 * ============ 5533 * 5534 * 1) We start out in tcp_conn_request by eager placing a ref on 5535 * listener and listener adding eager to listeners->tcp_eager_next_q0. 5536 * 5537 * 2) When a SYN-ACK-ACK arrives, we send the conn_ind to listener. Before 5538 * doing so we place a ref on the eager. This ref is finally dropped at the 5539 * end of tcp_accept_finish() while unwinding from the squeue, i.e. the 5540 * reference is dropped by the squeue framework. 5541 * 5542 * 3) The ref on listener placed in 1 above is dropped in tcp_accept_finish 5543 * 5544 * The reference must be released by the same entity that added the reference 5545 * In the above scheme, the eager is the entity that adds and releases the 5546 * references. Note that tcp_accept_finish executes in the squeue of the eager 5547 * (albeit after it is attached to the acceptor stream). Though 1. executes 5548 * in the listener's squeue, the eager is nascent at this point and the 5549 * reference can be considered to have been added on behalf of the eager. 5550 * 5551 * Eager getting a Reset or listener closing: 5552 * ========================================== 5553 * 5554 * Once the listener and eager are linked, the listener never does the unlink. 5555 * If the listener needs to close, tcp_eager_cleanup() is called which queues 5556 * a message on all eager perimeter. The eager then does the unlink, clears 5557 * any pointers to the listener's queue and drops the reference to the 5558 * listener. The listener waits in tcp_close outside the squeue until its 5559 * refcount has dropped to 1. This ensures that the listener has waited for 5560 * all eagers to clear their association with the listener. 5561 * 5562 * Similarly, if eager decides to go away, it can unlink itself and close. 5563 * When the T_CONN_RES comes down, we check if eager has closed. Note that 5564 * the reference to eager is still valid because of the extra ref we put 5565 * in tcp_send_conn_ind. 5566 * 5567 * Listener can always locate the eager under the protection 5568 * of the listener->tcp_eager_lock, and then do a refhold 5569 * on the eager during the accept processing. 5570 * 5571 * The acceptor stream accesses the eager in the accept processing 5572 * based on the ref placed on eager before sending T_conn_ind. 5573 * The only entity that can negate this refhold is a listener close 5574 * which is mutually exclusive with an active acceptor stream. 5575 * 5576 * Eager's reference on the listener 5577 * =================================== 5578 * 5579 * If the accept happens (even on a closed eager) the eager drops its 5580 * reference on the listener at the start of tcp_accept_finish. If the 5581 * eager is killed due to an incoming RST before the T_conn_ind is sent up, 5582 * the reference is dropped in tcp_closei_local. If the listener closes, 5583 * the reference is dropped in tcp_eager_kill. In all cases the reference 5584 * is dropped while executing in the eager's context (squeue). 5585 */ 5586 /* END CSTYLED */ 5587 5588 /* Process the SYN packet, mp, directed at the listener 'tcp' */ 5589 5590 /* 5591 * THIS FUNCTION IS DIRECTLY CALLED BY IP VIA SQUEUE FOR SYN. 5592 * tcp_rput_data will not see any SYN packets. 5593 */ 5594 /* ARGSUSED */ 5595 void 5596 tcp_conn_request(void *arg, mblk_t *mp, void *arg2) 5597 { 5598 tcph_t *tcph; 5599 uint32_t seg_seq; 5600 tcp_t *eager; 5601 uint_t ipvers; 5602 ipha_t *ipha; 5603 ip6_t *ip6h; 5604 int err; 5605 conn_t *econnp = NULL; 5606 squeue_t *new_sqp; 5607 mblk_t *mp1; 5608 uint_t ip_hdr_len; 5609 conn_t *connp = (conn_t *)arg; 5610 tcp_t *tcp = connp->conn_tcp; 5611 ire_t *ire; 5612 cred_t *credp; 5613 5614 if (tcp->tcp_state != TCPS_LISTEN) 5615 goto error2; 5616 5617 ASSERT((tcp->tcp_connp->conn_flags & IPCL_BOUND) != 0); 5618 5619 mutex_enter(&tcp->tcp_eager_lock); 5620 if (tcp->tcp_conn_req_cnt_q >= tcp->tcp_conn_req_max) { 5621 mutex_exit(&tcp->tcp_eager_lock); 5622 TCP_STAT(tcp_listendrop); 5623 BUMP_MIB(&tcp_mib, tcpListenDrop); 5624 if (tcp->tcp_debug) { 5625 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE|SL_ERROR, 5626 "tcp_conn_request: listen backlog (max=%d) " 5627 "overflow (%d pending) on %s", 5628 tcp->tcp_conn_req_max, tcp->tcp_conn_req_cnt_q, 5629 tcp_display(tcp, NULL, DISP_PORT_ONLY)); 5630 } 5631 goto error2; 5632 } 5633 5634 if (tcp->tcp_conn_req_cnt_q0 >= 5635 tcp->tcp_conn_req_max + tcp_conn_req_max_q0) { 5636 /* 5637 * Q0 is full. Drop a pending half-open req from the queue 5638 * to make room for the new SYN req. Also mark the time we 5639 * drop a SYN. 5640 * 5641 * A more aggressive defense against SYN attack will 5642 * be to set the "tcp_syn_defense" flag now. 5643 */ 5644 TCP_STAT(tcp_listendropq0); 5645 tcp->tcp_last_rcv_lbolt = lbolt64; 5646 if (!tcp_drop_q0(tcp)) { 5647 mutex_exit(&tcp->tcp_eager_lock); 5648 BUMP_MIB(&tcp_mib, tcpListenDropQ0); 5649 if (tcp->tcp_debug) { 5650 (void) strlog(TCP_MOD_ID, 0, 3, SL_TRACE, 5651 "tcp_conn_request: listen half-open queue " 5652 "(max=%d) full (%d pending) on %s", 5653 tcp_conn_req_max_q0, 5654 tcp->tcp_conn_req_cnt_q0, 5655 tcp_display(tcp, NULL, 5656 DISP_PORT_ONLY)); 5657 } 5658 goto error2; 5659 } 5660 } 5661 mutex_exit(&tcp->tcp_eager_lock); 5662 5663 /* 5664 * IP adds STRUIO_EAGER and ensures that the received packet is 5665 * M_DATA even if conn_ipv6_recvpktinfo is enabled or for ip6 5666 * link local address. If IPSec is enabled, db_struioflag has 5667 * STRUIO_POLICY set (mutually exclusive from STRUIO_EAGER); 5668 * otherwise an error case if neither of them is set. 5669 */ 5670 if ((mp->b_datap->db_struioflag & STRUIO_EAGER) != 0) { 5671 new_sqp = (squeue_t *)DB_CKSUMSTART(mp); 5672 DB_CKSUMSTART(mp) = 0; 5673 mp->b_datap->db_struioflag &= ~STRUIO_EAGER; 5674 econnp = (conn_t *)tcp_get_conn(arg2); 5675 if (econnp == NULL) 5676 goto error2; 5677 econnp->conn_sqp = new_sqp; 5678 } else if ((mp->b_datap->db_struioflag & STRUIO_POLICY) != 0) { 5679 /* 5680 * mp is updated in tcp_get_ipsec_conn(). 5681 */ 5682 econnp = tcp_get_ipsec_conn(tcp, arg2, &mp); 5683 if (econnp == NULL) { 5684 /* 5685 * mp freed by tcp_get_ipsec_conn. 5686 */ 5687 return; 5688 } 5689 } else { 5690 goto error2; 5691 } 5692 5693 ASSERT(DB_TYPE(mp) == M_DATA); 5694 5695 ipvers = IPH_HDR_VERSION(mp->b_rptr); 5696 ASSERT(ipvers == IPV6_VERSION || ipvers == IPV4_VERSION); 5697 ASSERT(OK_32PTR(mp->b_rptr)); 5698 if (ipvers == IPV4_VERSION) { 5699 ipha = (ipha_t *)mp->b_rptr; 5700 ip_hdr_len = IPH_HDR_LENGTH(ipha); 5701 tcph = (tcph_t *)&mp->b_rptr[ip_hdr_len]; 5702 } else { 5703 ip6h = (ip6_t *)mp->b_rptr; 5704 ip_hdr_len = ip_hdr_length_v6(mp, ip6h); 5705 tcph = (tcph_t *)&mp->b_rptr[ip_hdr_len]; 5706 } 5707 5708 if (tcp->tcp_family == AF_INET) { 5709 ASSERT(ipvers == IPV4_VERSION); 5710 err = tcp_conn_create_v4(connp, econnp, ipha, tcph, mp); 5711 } else { 5712 err = tcp_conn_create_v6(connp, econnp, mp, tcph, ipvers, mp); 5713 } 5714 5715 if (err) 5716 goto error3; 5717 5718 eager = econnp->conn_tcp; 5719 5720 /* Inherit various TCP parameters from the listener */ 5721 eager->tcp_naglim = tcp->tcp_naglim; 5722 eager->tcp_first_timer_threshold = 5723 tcp->tcp_first_timer_threshold; 5724 eager->tcp_second_timer_threshold = 5725 tcp->tcp_second_timer_threshold; 5726 5727 eager->tcp_first_ctimer_threshold = 5728 tcp->tcp_first_ctimer_threshold; 5729 eager->tcp_second_ctimer_threshold = 5730 tcp->tcp_second_ctimer_threshold; 5731 5732 /* 5733 * tcp_adapt_ire() may change tcp_rwnd according to the ire metrics. 5734 * If it does not, the eager's receive window will be set to the 5735 * listener's receive window later in this function. 5736 */ 5737 eager->tcp_rwnd = 0; 5738 5739 /* 5740 * Inherit listener's tcp_init_cwnd. Need to do this before 5741 * calling tcp_process_options() where tcp_mss_set() is called 5742 * to set the initial cwnd. 5743 */ 5744 eager->tcp_init_cwnd = tcp->tcp_init_cwnd; 5745 5746 /* 5747 * Zones: tcp_adapt_ire() and tcp_send_data() both need the 5748 * zone id before the accept is completed in tcp_wput_accept(). 5749 */ 5750 econnp->conn_zoneid = connp->conn_zoneid; 5751 econnp->conn_allzones = connp->conn_allzones; 5752 5753 /* Copy nexthop information from listener to eager */ 5754 if (connp->conn_nexthop_set) { 5755 econnp->conn_nexthop_set = connp->conn_nexthop_set; 5756 econnp->conn_nexthop_v4 = connp->conn_nexthop_v4; 5757 } 5758 5759 /* 5760 * TSOL: tsol_input_proc() needs the eager's cred before the 5761 * eager is accepted 5762 */ 5763 econnp->conn_cred = eager->tcp_cred = credp = connp->conn_cred; 5764 crhold(credp); 5765 5766 /* 5767 * If the caller has the process-wide flag set, then default to MAC 5768 * exempt mode. This allows read-down to unlabeled hosts. 5769 */ 5770 if (getpflags(NET_MAC_AWARE, credp) != 0) 5771 econnp->conn_mac_exempt = B_TRUE; 5772 5773 if (is_system_labeled()) { 5774 cred_t *cr; 5775 5776 if (connp->conn_mlp_type != mlptSingle) { 5777 cr = econnp->conn_peercred = DB_CRED(mp); 5778 if (cr != NULL) 5779 crhold(cr); 5780 else 5781 cr = econnp->conn_cred; 5782 DTRACE_PROBE2(mlp_syn_accept, conn_t *, 5783 econnp, cred_t *, cr) 5784 } else { 5785 cr = econnp->conn_cred; 5786 DTRACE_PROBE2(syn_accept, conn_t *, 5787 econnp, cred_t *, cr) 5788 } 5789 5790 if (!tcp_update_label(eager, cr)) { 5791 DTRACE_PROBE3( 5792 tx__ip__log__error__connrequest__tcp, 5793 char *, "eager connp(1) label on SYN mp(2) failed", 5794 conn_t *, econnp, mblk_t *, mp); 5795 goto error3; 5796 } 5797 } 5798 5799 eager->tcp_hard_binding = B_TRUE; 5800 5801 tcp_bind_hash_insert(&tcp_bind_fanout[ 5802 TCP_BIND_HASH(eager->tcp_lport)], eager, 0); 5803 5804 CL_INET_CONNECT(eager); 5805 5806 /* 5807 * No need to check for multicast destination since ip will only pass 5808 * up multicasts to those that have expressed interest 5809 * TODO: what about rejecting broadcasts? 5810 * Also check that source is not a multicast or broadcast address. 5811 */ 5812 eager->tcp_state = TCPS_SYN_RCVD; 5813 5814 5815 /* 5816 * There should be no ire in the mp as we are being called after 5817 * receiving the SYN. 5818 */ 5819 ASSERT(tcp_ire_mp(mp) == NULL); 5820 5821 /* 5822 * Adapt our mss, ttl, ... according to information provided in IRE. 5823 */ 5824 5825 if (tcp_adapt_ire(eager, NULL) == 0) { 5826 /* Undo the bind_hash_insert */ 5827 tcp_bind_hash_remove(eager); 5828 goto error3; 5829 } 5830 5831 /* Process all TCP options. */ 5832 tcp_process_options(eager, tcph); 5833 5834 /* Is the other end ECN capable? */ 5835 if (tcp_ecn_permitted >= 1 && 5836 (tcph->th_flags[0] & (TH_ECE|TH_CWR)) == (TH_ECE|TH_CWR)) { 5837 eager->tcp_ecn_ok = B_TRUE; 5838 } 5839 5840 /* 5841 * listener->tcp_rq->q_hiwat should be the default window size or a 5842 * window size changed via SO_RCVBUF option. First round up the 5843 * eager's tcp_rwnd to the nearest MSS. Then find out the window 5844 * scale option value if needed. Call tcp_rwnd_set() to finish the 5845 * setting. 5846 * 5847 * Note if there is a rpipe metric associated with the remote host, 5848 * we should not inherit receive window size from listener. 5849 */ 5850 eager->tcp_rwnd = MSS_ROUNDUP( 5851 (eager->tcp_rwnd == 0 ? tcp->tcp_rq->q_hiwat : 5852 eager->tcp_rwnd), eager->tcp_mss); 5853 if (eager->tcp_snd_ws_ok) 5854 tcp_set_ws_value(eager); 5855 /* 5856 * Note that this is the only place tcp_rwnd_set() is called for 5857 * accepting a connection. We need to call it here instead of 5858 * after the 3-way handshake because we need to tell the other 5859 * side our rwnd in the SYN-ACK segment. 5860 */ 5861 (void) tcp_rwnd_set(eager, eager->tcp_rwnd); 5862 5863 /* 5864 * We eliminate the need for sockfs to send down a T_SVR4_OPTMGMT_REQ 5865 * via soaccept()->soinheritoptions() which essentially applies 5866 * all the listener options to the new STREAM. The options that we 5867 * need to take care of are: 5868 * SO_DEBUG, SO_REUSEADDR, SO_KEEPALIVE, SO_DONTROUTE, SO_BROADCAST, 5869 * SO_USELOOPBACK, SO_OOBINLINE, SO_DGRAM_ERRIND, SO_LINGER, 5870 * SO_SNDBUF, SO_RCVBUF. 5871 * 5872 * SO_RCVBUF: tcp_rwnd_set() above takes care of it. 5873 * SO_SNDBUF: Set the tcp_xmit_hiwater for the eager. When 5874 * tcp_maxpsz_set() gets called later from 5875 * tcp_accept_finish(), the option takes effect. 5876 * 5877 */ 5878 /* Set the TCP options */ 5879 eager->tcp_xmit_hiwater = tcp->tcp_xmit_hiwater; 5880 eager->tcp_dgram_errind = tcp->tcp_dgram_errind; 5881 eager->tcp_oobinline = tcp->tcp_oobinline; 5882 eager->tcp_reuseaddr = tcp->tcp_reuseaddr; 5883 eager->tcp_broadcast = tcp->tcp_broadcast; 5884 eager->tcp_useloopback = tcp->tcp_useloopback; 5885 eager->tcp_dontroute = tcp->tcp_dontroute; 5886 eager->tcp_linger = tcp->tcp_linger; 5887 eager->tcp_lingertime = tcp->tcp_lingertime; 5888 if (tcp->tcp_ka_enabled) 5889 eager->tcp_ka_enabled = 1; 5890 5891 /* Set the IP options */ 5892 econnp->conn_broadcast = connp->conn_broadcast; 5893 econnp->conn_loopback = connp->conn_loopback; 5894 econnp->conn_dontroute = connp->conn_dontroute; 5895 econnp->conn_reuseaddr = connp->conn_reuseaddr; 5896 5897 /* Put a ref on the listener for the eager. */ 5898 CONN_INC_REF(connp); 5899 mutex_enter(&tcp->tcp_eager_lock); 5900 tcp->tcp_eager_next_q0->tcp_eager_prev_q0 = eager; 5901 eager->tcp_eager_next_q0 = tcp->tcp_eager_next_q0; 5902 tcp->tcp_eager_next_q0 = eager; 5903 eager->tcp_eager_prev_q0 = tcp; 5904 5905 /* Set tcp_listener before adding it to tcp_conn_fanout */ 5906 eager->tcp_listener = tcp; 5907 eager->tcp_saved_listener = tcp; 5908 5909 /* 5910 * Tag this detached tcp vector for later retrieval 5911 * by our listener client in tcp_accept(). 5912 */ 5913 eager->tcp_conn_req_seqnum = tcp->tcp_conn_req_seqnum; 5914 tcp->tcp_conn_req_cnt_q0++; 5915 if (++tcp->tcp_conn_req_seqnum == -1) { 5916 /* 5917 * -1 is "special" and defined in TPI as something 5918 * that should never be used in T_CONN_IND 5919 */ 5920 ++tcp->tcp_conn_req_seqnum; 5921 } 5922 mutex_exit(&tcp->tcp_eager_lock); 5923 5924 if (tcp->tcp_syn_defense) { 5925 /* Don't drop the SYN that comes from a good IP source */ 5926 ipaddr_t *addr_cache = (ipaddr_t *)(tcp->tcp_ip_addr_cache); 5927 if (addr_cache != NULL && eager->tcp_remote == 5928 addr_cache[IP_ADDR_CACHE_HASH(eager->tcp_remote)]) { 5929 eager->tcp_dontdrop = B_TRUE; 5930 } 5931 } 5932 5933 /* 5934 * We need to insert the eager in its own perimeter but as soon 5935 * as we do that, we expose the eager to the classifier and 5936 * should not touch any field outside the eager's perimeter. 5937 * So do all the work necessary before inserting the eager 5938 * in its own perimeter. Be optimistic that ipcl_conn_insert() 5939 * will succeed but undo everything if it fails. 5940 */ 5941 seg_seq = ABE32_TO_U32(tcph->th_seq); 5942 eager->tcp_irs = seg_seq; 5943 eager->tcp_rack = seg_seq; 5944 eager->tcp_rnxt = seg_seq + 1; 5945 U32_TO_ABE32(eager->tcp_rnxt, eager->tcp_tcph->th_ack); 5946 BUMP_MIB(&tcp_mib, tcpPassiveOpens); 5947 eager->tcp_state = TCPS_SYN_RCVD; 5948 mp1 = tcp_xmit_mp(eager, eager->tcp_xmit_head, eager->tcp_mss, 5949 NULL, NULL, eager->tcp_iss, B_FALSE, NULL, B_FALSE); 5950 if (mp1 == NULL) 5951 goto error1; 5952 DB_CPID(mp1) = tcp->tcp_cpid; 5953 5954 /* 5955 * We need to start the rto timer. In normal case, we start 5956 * the timer after sending the packet on the wire (or at 5957 * least believing that packet was sent by waiting for 5958 * CALL_IP_WPUT() to return). Since this is the first packet 5959 * being sent on the wire for the eager, our initial tcp_rto 5960 * is at least tcp_rexmit_interval_min which is a fairly 5961 * large value to allow the algorithm to adjust slowly to large 5962 * fluctuations of RTT during first few transmissions. 5963 * 5964 * Starting the timer first and then sending the packet in this 5965 * case shouldn't make much difference since tcp_rexmit_interval_min 5966 * is of the order of several 100ms and starting the timer 5967 * first and then sending the packet will result in difference 5968 * of few micro seconds. 5969 * 5970 * Without this optimization, we are forced to hold the fanout 5971 * lock across the ipcl_bind_insert() and sending the packet 5972 * so that we don't race against an incoming packet (maybe RST) 5973 * for this eager. 5974 */ 5975 5976 TCP_RECORD_TRACE(eager, mp1, TCP_TRACE_SEND_PKT); 5977 TCP_TIMER_RESTART(eager, eager->tcp_rto); 5978 5979 5980 /* 5981 * Insert the eager in its own perimeter now. We are ready to deal 5982 * with any packets on eager. 5983 */ 5984 if (eager->tcp_ipversion == IPV4_VERSION) { 5985 if (ipcl_conn_insert(econnp, IPPROTO_TCP, 0, 0, 0) != 0) { 5986 goto error; 5987 } 5988 } else { 5989 if (ipcl_conn_insert_v6(econnp, IPPROTO_TCP, 0, 0, 0, 0) != 0) { 5990 goto error; 5991 } 5992 } 5993 5994 /* mark conn as fully-bound */ 5995 econnp->conn_fully_bound = B_TRUE; 5996 5997 /* Send the SYN-ACK */ 5998 tcp_send_data(eager, eager->tcp_wq, mp1); 5999 freemsg(mp); 6000 6001 return; 6002 error: 6003 (void) TCP_TIMER_CANCEL(eager, eager->tcp_timer_tid); 6004 freemsg(mp1); 6005 error1: 6006 /* Undo what we did above */ 6007 mutex_enter(&tcp->tcp_eager_lock); 6008 tcp_eager_unlink(eager); 6009 mutex_exit(&tcp->tcp_eager_lock); 6010 /* Drop eager's reference on the listener */ 6011 CONN_DEC_REF(connp); 6012 6013 /* 6014 * Delete the cached ire in conn_ire_cache and also mark 6015 * the conn as CONDEMNED 6016 */ 6017 mutex_enter(&econnp->conn_lock); 6018 econnp->conn_state_flags |= CONN_CONDEMNED; 6019 ire = econnp->conn_ire_cache; 6020 econnp->conn_ire_cache = NULL; 6021 mutex_exit(&econnp->conn_lock); 6022 if (ire != NULL) 6023 IRE_REFRELE_NOTR(ire); 6024 6025 /* 6026 * tcp_accept_comm inserts the eager to the bind_hash 6027 * we need to remove it from the hash if ipcl_conn_insert 6028 * fails. 6029 */ 6030 tcp_bind_hash_remove(eager); 6031 /* Drop the eager ref placed in tcp_open_detached */ 6032 CONN_DEC_REF(econnp); 6033 6034 /* 6035 * If a connection already exists, send the mp to that connections so 6036 * that it can be appropriately dealt with. 6037 */ 6038 if ((econnp = ipcl_classify(mp, connp->conn_zoneid)) != NULL) { 6039 if (!IPCL_IS_CONNECTED(econnp)) { 6040 /* 6041 * Something bad happened. ipcl_conn_insert() 6042 * failed because a connection already existed 6043 * in connected hash but we can't find it 6044 * anymore (someone blew it away). Just 6045 * free this message and hopefully remote 6046 * will retransmit at which time the SYN can be 6047 * treated as a new connection or dealth with 6048 * a TH_RST if a connection already exists. 6049 */ 6050 CONN_DEC_REF(econnp); 6051 freemsg(mp); 6052 } else { 6053 squeue_fill(econnp->conn_sqp, mp, tcp_input, 6054 econnp, SQTAG_TCP_CONN_REQ); 6055 } 6056 } else { 6057 /* Nobody wants this packet */ 6058 freemsg(mp); 6059 } 6060 return; 6061 error2: 6062 freemsg(mp); 6063 return; 6064 error3: 6065 CONN_DEC_REF(econnp); 6066 freemsg(mp); 6067 } 6068 6069 /* 6070 * In an ideal case of vertical partition in NUMA architecture, its 6071 * beneficial to have the listener and all the incoming connections 6072 * tied to the same squeue. The other constraint is that incoming 6073 * connections should be tied to the squeue attached to interrupted 6074 * CPU for obvious locality reason so this leaves the listener to 6075 * be tied to the same squeue. Our only problem is that when listener 6076 * is binding, the CPU that will get interrupted by the NIC whose 6077 * IP address the listener is binding to is not even known. So 6078 * the code below allows us to change that binding at the time the 6079 * CPU is interrupted by virtue of incoming connection's squeue. 6080 * 6081 * This is usefull only in case of a listener bound to a specific IP 6082 * address. For other kind of listeners, they get bound the 6083 * very first time and there is no attempt to rebind them. 6084 */ 6085 void 6086 tcp_conn_request_unbound(void *arg, mblk_t *mp, void *arg2) 6087 { 6088 conn_t *connp = (conn_t *)arg; 6089 squeue_t *sqp = (squeue_t *)arg2; 6090 squeue_t *new_sqp; 6091 uint32_t conn_flags; 6092 6093 if ((mp->b_datap->db_struioflag & STRUIO_EAGER) != 0) { 6094 new_sqp = (squeue_t *)DB_CKSUMSTART(mp); 6095 } else { 6096 goto done; 6097 } 6098 6099 if (connp->conn_fanout == NULL) 6100 goto done; 6101 6102 if (!(connp->conn_flags & IPCL_FULLY_BOUND)) { 6103 mutex_enter(&connp->conn_fanout->connf_lock); 6104 mutex_enter(&connp->conn_lock); 6105 /* 6106 * No one from read or write side can access us now 6107 * except for already queued packets on this squeue. 6108 * But since we haven't changed the squeue yet, they 6109 * can't execute. If they are processed after we have 6110 * changed the squeue, they are sent back to the 6111 * correct squeue down below. 6112 * But a listner close can race with processing of 6113 * incoming SYN. If incoming SYN processing changes 6114 * the squeue then the listener close which is waiting 6115 * to enter the squeue would operate on the wrong 6116 * squeue. Hence we don't change the squeue here unless 6117 * the refcount is exactly the minimum refcount. The 6118 * minimum refcount of 4 is counted as - 1 each for 6119 * TCP and IP, 1 for being in the classifier hash, and 6120 * 1 for the mblk being processed. 6121 */ 6122 6123 if (connp->conn_ref != 4 || 6124 connp->conn_tcp->tcp_state != TCPS_LISTEN) { 6125 mutex_exit(&connp->conn_lock); 6126 mutex_exit(&connp->conn_fanout->connf_lock); 6127 goto done; 6128 } 6129 if (connp->conn_sqp != new_sqp) { 6130 while (connp->conn_sqp != new_sqp) 6131 (void) casptr(&connp->conn_sqp, sqp, new_sqp); 6132 } 6133 6134 do { 6135 conn_flags = connp->conn_flags; 6136 conn_flags |= IPCL_FULLY_BOUND; 6137 (void) cas32(&connp->conn_flags, connp->conn_flags, 6138 conn_flags); 6139 } while (!(connp->conn_flags & IPCL_FULLY_BOUND)); 6140 6141 mutex_exit(&connp->conn_fanout->connf_lock); 6142 mutex_exit(&connp->conn_lock); 6143 } 6144 6145 done: 6146 if (connp->conn_sqp != sqp) { 6147 CONN_INC_REF(connp); 6148 squeue_fill(connp->conn_sqp, mp, 6149 connp->conn_recv, connp, SQTAG_TCP_CONN_REQ_UNBOUND); 6150 } else { 6151 tcp_conn_request(connp, mp, sqp); 6152 } 6153 } 6154 6155 /* 6156 * Successful connect request processing begins when our client passes 6157 * a T_CONN_REQ message into tcp_wput() and ends when tcp_rput() passes 6158 * our T_OK_ACK reply message upstream. The control flow looks like this: 6159 * upstream -> tcp_wput() -> tcp_wput_proto() -> tcp_connect() -> IP 6160 * upstream <- tcp_rput() <- IP 6161 * After various error checks are completed, tcp_connect() lays 6162 * the target address and port into the composite header template, 6163 * preallocates the T_OK_ACK reply message, construct a full 12 byte bind 6164 * request followed by an IRE request, and passes the three mblk message 6165 * down to IP looking like this: 6166 * O_T_BIND_REQ for IP --> IRE req --> T_OK_ACK for our client 6167 * Processing continues in tcp_rput() when we receive the following message: 6168 * T_BIND_ACK from IP --> IRE ack --> T_OK_ACK for our client 6169 * After consuming the first two mblks, tcp_rput() calls tcp_timer(), 6170 * to fire off the connection request, and then passes the T_OK_ACK mblk 6171 * upstream that we filled in below. There are, of course, numerous 6172 * error conditions along the way which truncate the processing described 6173 * above. 6174 */ 6175 static void 6176 tcp_connect(tcp_t *tcp, mblk_t *mp) 6177 { 6178 sin_t *sin; 6179 sin6_t *sin6; 6180 queue_t *q = tcp->tcp_wq; 6181 struct T_conn_req *tcr; 6182 ipaddr_t *dstaddrp; 6183 in_port_t dstport; 6184 uint_t srcid; 6185 6186 tcr = (struct T_conn_req *)mp->b_rptr; 6187 6188 ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= (uintptr_t)INT_MAX); 6189 if ((mp->b_wptr - mp->b_rptr) < sizeof (*tcr)) { 6190 tcp_err_ack(tcp, mp, TPROTO, 0); 6191 return; 6192 } 6193 6194 /* 6195 * Determine packet type based on type of address passed in 6196 * the request should contain an IPv4 or IPv6 address. 6197 * Make sure that address family matches the type of 6198 * family of the the address passed down 6199 */ 6200 switch (tcr->DEST_length) { 6201 default: 6202 tcp_err_ack(tcp, mp, TBADADDR, 0); 6203 return; 6204 6205 case (sizeof (sin_t) - sizeof (sin->sin_zero)): { 6206 /* 6207 * XXX: The check for valid DEST_length was not there 6208 * in earlier releases and some buggy 6209 * TLI apps (e.g Sybase) got away with not feeding 6210 * in sin_zero part of address. 6211 * We allow that bug to keep those buggy apps humming. 6212 * Test suites require the check on DEST_length. 6213 * We construct a new mblk with valid DEST_length 6214 * free the original so the rest of the code does 6215 * not have to keep track of this special shorter 6216 * length address case. 6217 */ 6218 mblk_t *nmp; 6219 struct T_conn_req *ntcr; 6220 sin_t *nsin; 6221 6222 nmp = allocb(sizeof (struct T_conn_req) + sizeof (sin_t) + 6223 tcr->OPT_length, BPRI_HI); 6224 if (nmp == NULL) { 6225 tcp_err_ack(tcp, mp, TSYSERR, ENOMEM); 6226 return; 6227 } 6228 ntcr = (struct T_conn_req *)nmp->b_rptr; 6229 bzero(ntcr, sizeof (struct T_conn_req)); /* zero fill */ 6230 ntcr->PRIM_type = T_CONN_REQ; 6231 ntcr->DEST_length = sizeof (sin_t); 6232 ntcr->DEST_offset = sizeof (struct T_conn_req); 6233 6234 nsin = (sin_t *)((uchar_t *)ntcr + ntcr->DEST_offset); 6235 *nsin = sin_null; 6236 /* Get pointer to shorter address to copy from original mp */ 6237 sin = (sin_t *)mi_offset_param(mp, tcr->DEST_offset, 6238 tcr->DEST_length); /* extract DEST_length worth of sin_t */ 6239 if (sin == NULL || !OK_32PTR((char *)sin)) { 6240 freemsg(nmp); 6241 tcp_err_ack(tcp, mp, TSYSERR, EINVAL); 6242 return; 6243 } 6244 nsin->sin_family = sin->sin_family; 6245 nsin->sin_port = sin->sin_port; 6246 nsin->sin_addr = sin->sin_addr; 6247 /* Note:nsin->sin_zero zero-fill with sin_null assign above */ 6248 nmp->b_wptr = (uchar_t *)&nsin[1]; 6249 if (tcr->OPT_length != 0) { 6250 ntcr->OPT_length = tcr->OPT_length; 6251 ntcr->OPT_offset = nmp->b_wptr - nmp->b_rptr; 6252 bcopy((uchar_t *)tcr + tcr->OPT_offset, 6253 (uchar_t *)ntcr + ntcr->OPT_offset, 6254 tcr->OPT_length); 6255 nmp->b_wptr += tcr->OPT_length; 6256 } 6257 freemsg(mp); /* original mp freed */ 6258 mp = nmp; /* re-initialize original variables */ 6259 tcr = ntcr; 6260 } 6261 /* FALLTHRU */ 6262 6263 case sizeof (sin_t): 6264 sin = (sin_t *)mi_offset_param(mp, tcr->DEST_offset, 6265 sizeof (sin_t)); 6266 if (sin == NULL || !OK_32PTR((char *)sin)) { 6267 tcp_err_ack(tcp, mp, TSYSERR, EINVAL); 6268 return; 6269 } 6270 if (tcp->tcp_family != AF_INET || 6271 sin->sin_family != AF_INET) { 6272 tcp_err_ack(tcp, mp, TSYSERR, EAFNOSUPPORT); 6273 return; 6274 } 6275 if (sin->sin_port == 0) { 6276 tcp_err_ack(tcp, mp, TBADADDR, 0); 6277 return; 6278 } 6279 if (tcp->tcp_connp && tcp->tcp_connp->conn_ipv6_v6only) { 6280 tcp_err_ack(tcp, mp, TSYSERR, EAFNOSUPPORT); 6281 return; 6282 } 6283 6284 break; 6285 6286 case sizeof (sin6_t): 6287 sin6 = (sin6_t *)mi_offset_param(mp, tcr->DEST_offset, 6288 sizeof (sin6_t)); 6289 if (sin6 == NULL || !OK_32PTR((char *)sin6)) { 6290 tcp_err_ack(tcp, mp, TSYSERR, EINVAL); 6291 return; 6292 } 6293 if (tcp->tcp_family != AF_INET6 || 6294 sin6->sin6_family != AF_INET6) { 6295 tcp_err_ack(tcp, mp, TSYSERR, EAFNOSUPPORT); 6296 return; 6297 } 6298 if (sin6->sin6_port == 0) { 6299 tcp_err_ack(tcp, mp, TBADADDR, 0); 6300 return; 6301 } 6302 break; 6303 } 6304 /* 6305 * TODO: If someone in TCPS_TIME_WAIT has this dst/port we 6306 * should key on their sequence number and cut them loose. 6307 */ 6308 6309 /* 6310 * If options passed in, feed it for verification and handling 6311 */ 6312 if (tcr->OPT_length != 0) { 6313 mblk_t *ok_mp; 6314 mblk_t *discon_mp; 6315 mblk_t *conn_opts_mp; 6316 int t_error, sys_error, do_disconnect; 6317 6318 conn_opts_mp = NULL; 6319 6320 if (tcp_conprim_opt_process(tcp, mp, 6321 &do_disconnect, &t_error, &sys_error) < 0) { 6322 if (do_disconnect) { 6323 ASSERT(t_error == 0 && sys_error == 0); 6324 discon_mp = mi_tpi_discon_ind(NULL, 6325 ECONNREFUSED, 0); 6326 if (!discon_mp) { 6327 tcp_err_ack_prim(tcp, mp, T_CONN_REQ, 6328 TSYSERR, ENOMEM); 6329 return; 6330 } 6331 ok_mp = mi_tpi_ok_ack_alloc(mp); 6332 if (!ok_mp) { 6333 tcp_err_ack_prim(tcp, NULL, T_CONN_REQ, 6334 TSYSERR, ENOMEM); 6335 return; 6336 } 6337 qreply(q, ok_mp); 6338 qreply(q, discon_mp); /* no flush! */ 6339 } else { 6340 ASSERT(t_error != 0); 6341 tcp_err_ack_prim(tcp, mp, T_CONN_REQ, t_error, 6342 sys_error); 6343 } 6344 return; 6345 } 6346 /* 6347 * Success in setting options, the mp option buffer represented 6348 * by OPT_length/offset has been potentially modified and 6349 * contains results of option processing. We copy it in 6350 * another mp to save it for potentially influencing returning 6351 * it in T_CONN_CONN. 6352 */ 6353 if (tcr->OPT_length != 0) { /* there are resulting options */ 6354 conn_opts_mp = copyb(mp); 6355 if (!conn_opts_mp) { 6356 tcp_err_ack_prim(tcp, mp, T_CONN_REQ, 6357 TSYSERR, ENOMEM); 6358 return; 6359 } 6360 ASSERT(tcp->tcp_conn.tcp_opts_conn_req == NULL); 6361 tcp->tcp_conn.tcp_opts_conn_req = conn_opts_mp; 6362 /* 6363 * Note: 6364 * These resulting option negotiation can include any 6365 * end-to-end negotiation options but there no such 6366 * thing (yet?) in our TCP/IP. 6367 */ 6368 } 6369 } 6370 6371 /* 6372 * If we're connecting to an IPv4-mapped IPv6 address, we need to 6373 * make sure that the template IP header in the tcp structure is an 6374 * IPv4 header, and that the tcp_ipversion is IPV4_VERSION. We 6375 * need to this before we call tcp_bindi() so that the port lookup 6376 * code will look for ports in the correct port space (IPv4 and 6377 * IPv6 have separate port spaces). 6378 */ 6379 if (tcp->tcp_family == AF_INET6 && tcp->tcp_ipversion == IPV6_VERSION && 6380 IN6_IS_ADDR_V4MAPPED(&sin6->sin6_addr)) { 6381 int err = 0; 6382 6383 err = tcp_header_init_ipv4(tcp); 6384 if (err != 0) { 6385 mp = mi_tpi_err_ack_alloc(mp, TSYSERR, ENOMEM); 6386 goto connect_failed; 6387 } 6388 if (tcp->tcp_lport != 0) 6389 *(uint16_t *)tcp->tcp_tcph->th_lport = tcp->tcp_lport; 6390 } 6391 6392 switch (tcp->tcp_state) { 6393 case TCPS_IDLE: 6394 /* 6395 * We support quick connect, refer to comments in 6396 * tcp_connect_*() 6397 */ 6398 /* FALLTHRU */ 6399 case TCPS_BOUND: 6400 case TCPS_LISTEN: 6401 if (tcp->tcp_family == AF_INET6) { 6402 if (!IN6_IS_ADDR_V4MAPPED(&sin6->sin6_addr)) { 6403 tcp_connect_ipv6(tcp, mp, 6404 &sin6->sin6_addr, 6405 sin6->sin6_port, sin6->sin6_flowinfo, 6406 sin6->__sin6_src_id, sin6->sin6_scope_id); 6407 return; 6408 } 6409 /* 6410 * Destination adress is mapped IPv6 address. 6411 * Source bound address should be unspecified or 6412 * IPv6 mapped address as well. 6413 */ 6414 if (!IN6_IS_ADDR_UNSPECIFIED( 6415 &tcp->tcp_bound_source_v6) && 6416 !IN6_IS_ADDR_V4MAPPED(&tcp->tcp_bound_source_v6)) { 6417 mp = mi_tpi_err_ack_alloc(mp, TSYSERR, 6418 EADDRNOTAVAIL); 6419 break; 6420 } 6421 dstaddrp = &V4_PART_OF_V6((sin6->sin6_addr)); 6422 dstport = sin6->sin6_port; 6423 srcid = sin6->__sin6_src_id; 6424 } else { 6425 dstaddrp = &sin->sin_addr.s_addr; 6426 dstport = sin->sin_port; 6427 srcid = 0; 6428 } 6429 6430 tcp_connect_ipv4(tcp, mp, dstaddrp, dstport, srcid); 6431 return; 6432 default: 6433 mp = mi_tpi_err_ack_alloc(mp, TOUTSTATE, 0); 6434 break; 6435 } 6436 /* 6437 * Note: Code below is the "failure" case 6438 */ 6439 /* return error ack and blow away saved option results if any */ 6440 connect_failed: 6441 if (mp != NULL) 6442 putnext(tcp->tcp_rq, mp); 6443 else { 6444 tcp_err_ack_prim(tcp, NULL, T_CONN_REQ, 6445 TSYSERR, ENOMEM); 6446 } 6447 if (tcp->tcp_conn.tcp_opts_conn_req != NULL) 6448 tcp_close_mpp(&tcp->tcp_conn.tcp_opts_conn_req); 6449 } 6450 6451 /* 6452 * Handle connect to IPv4 destinations, including connections for AF_INET6 6453 * sockets connecting to IPv4 mapped IPv6 destinations. 6454 */ 6455 static void 6456 tcp_connect_ipv4(tcp_t *tcp, mblk_t *mp, ipaddr_t *dstaddrp, in_port_t dstport, 6457 uint_t srcid) 6458 { 6459 tcph_t *tcph; 6460 mblk_t *mp1; 6461 ipaddr_t dstaddr = *dstaddrp; 6462 int32_t oldstate; 6463 uint16_t lport; 6464 6465 ASSERT(tcp->tcp_ipversion == IPV4_VERSION); 6466 6467 /* Check for attempt to connect to INADDR_ANY */ 6468 if (dstaddr == INADDR_ANY) { 6469 /* 6470 * SunOS 4.x and 4.3 BSD allow an application 6471 * to connect a TCP socket to INADDR_ANY. 6472 * When they do this, the kernel picks the 6473 * address of one interface and uses it 6474 * instead. The kernel usually ends up 6475 * picking the address of the loopback 6476 * interface. This is an undocumented feature. 6477 * However, we provide the same thing here 6478 * in order to have source and binary 6479 * compatibility with SunOS 4.x. 6480 * Update the T_CONN_REQ (sin/sin6) since it is used to 6481 * generate the T_CONN_CON. 6482 */ 6483 dstaddr = htonl(INADDR_LOOPBACK); 6484 *dstaddrp = dstaddr; 6485 } 6486 6487 /* Handle __sin6_src_id if socket not bound to an IP address */ 6488 if (srcid != 0 && tcp->tcp_ipha->ipha_src == INADDR_ANY) { 6489 ip_srcid_find_id(srcid, &tcp->tcp_ip_src_v6, 6490 tcp->tcp_connp->conn_zoneid); 6491 IN6_V4MAPPED_TO_IPADDR(&tcp->tcp_ip_src_v6, 6492 tcp->tcp_ipha->ipha_src); 6493 } 6494 6495 /* 6496 * Don't let an endpoint connect to itself. Note that 6497 * the test here does not catch the case where the 6498 * source IP addr was left unspecified by the user. In 6499 * this case, the source addr is set in tcp_adapt_ire() 6500 * using the reply to the T_BIND message that we send 6501 * down to IP here and the check is repeated in tcp_rput_other. 6502 */ 6503 if (dstaddr == tcp->tcp_ipha->ipha_src && 6504 dstport == tcp->tcp_lport) { 6505 mp = mi_tpi_err_ack_alloc(mp, TBADADDR, 0); 6506 goto failed; 6507 } 6508 6509 tcp->tcp_ipha->ipha_dst = dstaddr; 6510 IN6_IPADDR_TO_V4MAPPED(dstaddr, &tcp->tcp_remote_v6); 6511 6512 /* 6513 * Massage a source route if any putting the first hop 6514 * in iph_dst. Compute a starting value for the checksum which 6515 * takes into account that the original iph_dst should be 6516 * included in the checksum but that ip will include the 6517 * first hop in the source route in the tcp checksum. 6518 */ 6519 tcp->tcp_sum = ip_massage_options(tcp->tcp_ipha); 6520 tcp->tcp_sum = (tcp->tcp_sum & 0xFFFF) + (tcp->tcp_sum >> 16); 6521 tcp->tcp_sum -= ((tcp->tcp_ipha->ipha_dst >> 16) + 6522 (tcp->tcp_ipha->ipha_dst & 0xffff)); 6523 if ((int)tcp->tcp_sum < 0) 6524 tcp->tcp_sum--; 6525 tcp->tcp_sum = (tcp->tcp_sum & 0xFFFF) + (tcp->tcp_sum >> 16); 6526 tcp->tcp_sum = ntohs((tcp->tcp_sum & 0xFFFF) + 6527 (tcp->tcp_sum >> 16)); 6528 tcph = tcp->tcp_tcph; 6529 *(uint16_t *)tcph->th_fport = dstport; 6530 tcp->tcp_fport = dstport; 6531 6532 oldstate = tcp->tcp_state; 6533 /* 6534 * At this point the remote destination address and remote port fields 6535 * in the tcp-four-tuple have been filled in the tcp structure. Now we 6536 * have to see which state tcp was in so we can take apropriate action. 6537 */ 6538 if (oldstate == TCPS_IDLE) { 6539 /* 6540 * We support a quick connect capability here, allowing 6541 * clients to transition directly from IDLE to SYN_SENT 6542 * tcp_bindi will pick an unused port, insert the connection 6543 * in the bind hash and transition to BOUND state. 6544 */ 6545 lport = tcp_update_next_port(tcp_next_port_to_try, tcp, B_TRUE); 6546 lport = tcp_bindi(tcp, lport, &tcp->tcp_ip_src_v6, 0, B_TRUE, 6547 B_FALSE, B_FALSE); 6548 if (lport == 0) { 6549 mp = mi_tpi_err_ack_alloc(mp, TNOADDR, 0); 6550 goto failed; 6551 } 6552 } 6553 tcp->tcp_state = TCPS_SYN_SENT; 6554 6555 /* 6556 * TODO: allow data with connect requests 6557 * by unlinking M_DATA trailers here and 6558 * linking them in behind the T_OK_ACK mblk. 6559 * The tcp_rput() bind ack handler would then 6560 * feed them to tcp_wput_data() rather than call 6561 * tcp_timer(). 6562 */ 6563 mp = mi_tpi_ok_ack_alloc(mp); 6564 if (!mp) { 6565 tcp->tcp_state = oldstate; 6566 goto failed; 6567 } 6568 if (tcp->tcp_family == AF_INET) { 6569 mp1 = tcp_ip_bind_mp(tcp, O_T_BIND_REQ, 6570 sizeof (ipa_conn_t)); 6571 } else { 6572 mp1 = tcp_ip_bind_mp(tcp, O_T_BIND_REQ, 6573 sizeof (ipa6_conn_t)); 6574 } 6575 if (mp1) { 6576 /* Hang onto the T_OK_ACK for later. */ 6577 linkb(mp1, mp); 6578 mblk_setcred(mp1, tcp->tcp_cred); 6579 if (tcp->tcp_family == AF_INET) 6580 mp1 = ip_bind_v4(tcp->tcp_wq, mp1, tcp->tcp_connp); 6581 else { 6582 mp1 = ip_bind_v6(tcp->tcp_wq, mp1, tcp->tcp_connp, 6583 &tcp->tcp_sticky_ipp); 6584 } 6585 BUMP_MIB(&tcp_mib, tcpActiveOpens); 6586 tcp->tcp_active_open = 1; 6587 /* 6588 * If the bind cannot complete immediately 6589 * IP will arrange to call tcp_rput_other 6590 * when the bind completes. 6591 */ 6592 if (mp1 != NULL) 6593 tcp_rput_other(tcp, mp1); 6594 return; 6595 } 6596 /* Error case */ 6597 tcp->tcp_state = oldstate; 6598 mp = mi_tpi_err_ack_alloc(mp, TSYSERR, ENOMEM); 6599 6600 failed: 6601 /* return error ack and blow away saved option results if any */ 6602 if (mp != NULL) 6603 putnext(tcp->tcp_rq, mp); 6604 else { 6605 tcp_err_ack_prim(tcp, NULL, T_CONN_REQ, 6606 TSYSERR, ENOMEM); 6607 } 6608 if (tcp->tcp_conn.tcp_opts_conn_req != NULL) 6609 tcp_close_mpp(&tcp->tcp_conn.tcp_opts_conn_req); 6610 6611 } 6612 6613 /* 6614 * Handle connect to IPv6 destinations. 6615 */ 6616 static void 6617 tcp_connect_ipv6(tcp_t *tcp, mblk_t *mp, in6_addr_t *dstaddrp, 6618 in_port_t dstport, uint32_t flowinfo, uint_t srcid, uint32_t scope_id) 6619 { 6620 tcph_t *tcph; 6621 mblk_t *mp1; 6622 ip6_rthdr_t *rth; 6623 int32_t oldstate; 6624 uint16_t lport; 6625 6626 ASSERT(tcp->tcp_family == AF_INET6); 6627 6628 /* 6629 * If we're here, it means that the destination address is a native 6630 * IPv6 address. Return an error if tcp_ipversion is not IPv6. A 6631 * reason why it might not be IPv6 is if the socket was bound to an 6632 * IPv4-mapped IPv6 address. 6633 */ 6634 if (tcp->tcp_ipversion != IPV6_VERSION) { 6635 mp = mi_tpi_err_ack_alloc(mp, TBADADDR, 0); 6636 goto failed; 6637 } 6638 6639 /* 6640 * Interpret a zero destination to mean loopback. 6641 * Update the T_CONN_REQ (sin/sin6) since it is used to 6642 * generate the T_CONN_CON. 6643 */ 6644 if (IN6_IS_ADDR_UNSPECIFIED(dstaddrp)) { 6645 *dstaddrp = ipv6_loopback; 6646 } 6647 6648 /* Handle __sin6_src_id if socket not bound to an IP address */ 6649 if (srcid != 0 && IN6_IS_ADDR_UNSPECIFIED(&tcp->tcp_ip6h->ip6_src)) { 6650 ip_srcid_find_id(srcid, &tcp->tcp_ip6h->ip6_src, 6651 tcp->tcp_connp->conn_zoneid); 6652 tcp->tcp_ip_src_v6 = tcp->tcp_ip6h->ip6_src; 6653 } 6654 6655 /* 6656 * Take care of the scope_id now and add ip6i_t 6657 * if ip6i_t is not already allocated through TCP 6658 * sticky options. At this point tcp_ip6h does not 6659 * have dst info, thus use dstaddrp. 6660 */ 6661 if (scope_id != 0 && 6662 IN6_IS_ADDR_LINKSCOPE(dstaddrp)) { 6663 ip6_pkt_t *ipp = &tcp->tcp_sticky_ipp; 6664 ip6i_t *ip6i; 6665 6666 ipp->ipp_ifindex = scope_id; 6667 ip6i = (ip6i_t *)tcp->tcp_iphc; 6668 6669 if ((ipp->ipp_fields & IPPF_HAS_IP6I) && 6670 ip6i != NULL && (ip6i->ip6i_nxt == IPPROTO_RAW)) { 6671 /* Already allocated */ 6672 ip6i->ip6i_flags |= IP6I_IFINDEX; 6673 ip6i->ip6i_ifindex = ipp->ipp_ifindex; 6674 ipp->ipp_fields |= IPPF_SCOPE_ID; 6675 } else { 6676 int reterr; 6677 6678 ipp->ipp_fields |= IPPF_SCOPE_ID; 6679 if (ipp->ipp_fields & IPPF_HAS_IP6I) 6680 ip2dbg(("tcp_connect_v6: SCOPE_ID set\n")); 6681 reterr = tcp_build_hdrs(tcp->tcp_rq, tcp); 6682 if (reterr != 0) 6683 goto failed; 6684 ip1dbg(("tcp_connect_ipv6: tcp_bld_hdrs returned\n")); 6685 } 6686 } 6687 6688 /* 6689 * Don't let an endpoint connect to itself. Note that 6690 * the test here does not catch the case where the 6691 * source IP addr was left unspecified by the user. In 6692 * this case, the source addr is set in tcp_adapt_ire() 6693 * using the reply to the T_BIND message that we send 6694 * down to IP here and the check is repeated in tcp_rput_other. 6695 */ 6696 if (IN6_ARE_ADDR_EQUAL(dstaddrp, &tcp->tcp_ip6h->ip6_src) && 6697 (dstport == tcp->tcp_lport)) { 6698 mp = mi_tpi_err_ack_alloc(mp, TBADADDR, 0); 6699 goto failed; 6700 } 6701 6702 tcp->tcp_ip6h->ip6_dst = *dstaddrp; 6703 tcp->tcp_remote_v6 = *dstaddrp; 6704 tcp->tcp_ip6h->ip6_vcf = 6705 (IPV6_DEFAULT_VERS_AND_FLOW & IPV6_VERS_AND_FLOW_MASK) | 6706 (flowinfo & ~IPV6_VERS_AND_FLOW_MASK); 6707 6708 6709 /* 6710 * Massage a routing header (if present) putting the first hop 6711 * in ip6_dst. Compute a starting value for the checksum which 6712 * takes into account that the original ip6_dst should be 6713 * included in the checksum but that ip will include the 6714 * first hop in the source route in the tcp checksum. 6715 */ 6716 rth = ip_find_rthdr_v6(tcp->tcp_ip6h, (uint8_t *)tcp->tcp_tcph); 6717 if (rth != NULL) { 6718 6719 tcp->tcp_sum = ip_massage_options_v6(tcp->tcp_ip6h, rth); 6720 tcp->tcp_sum = ntohs((tcp->tcp_sum & 0xFFFF) + 6721 (tcp->tcp_sum >> 16)); 6722 } else { 6723 tcp->tcp_sum = 0; 6724 } 6725 6726 tcph = tcp->tcp_tcph; 6727 *(uint16_t *)tcph->th_fport = dstport; 6728 tcp->tcp_fport = dstport; 6729 6730 oldstate = tcp->tcp_state; 6731 /* 6732 * At this point the remote destination address and remote port fields 6733 * in the tcp-four-tuple have been filled in the tcp structure. Now we 6734 * have to see which state tcp was in so we can take apropriate action. 6735 */ 6736 if (oldstate == TCPS_IDLE) { 6737 /* 6738 * We support a quick connect capability here, allowing 6739 * clients to transition directly from IDLE to SYN_SENT 6740 * tcp_bindi will pick an unused port, insert the connection 6741 * in the bind hash and transition to BOUND state. 6742 */ 6743 lport = tcp_update_next_port(tcp_next_port_to_try, tcp, B_TRUE); 6744 lport = tcp_bindi(tcp, lport, &tcp->tcp_ip_src_v6, 0, B_TRUE, 6745 B_FALSE, B_FALSE); 6746 if (lport == 0) { 6747 mp = mi_tpi_err_ack_alloc(mp, TNOADDR, 0); 6748 goto failed; 6749 } 6750 } 6751 tcp->tcp_state = TCPS_SYN_SENT; 6752 /* 6753 * TODO: allow data with connect requests 6754 * by unlinking M_DATA trailers here and 6755 * linking them in behind the T_OK_ACK mblk. 6756 * The tcp_rput() bind ack handler would then 6757 * feed them to tcp_wput_data() rather than call 6758 * tcp_timer(). 6759 */ 6760 mp = mi_tpi_ok_ack_alloc(mp); 6761 if (!mp) { 6762 tcp->tcp_state = oldstate; 6763 goto failed; 6764 } 6765 mp1 = tcp_ip_bind_mp(tcp, O_T_BIND_REQ, sizeof (ipa6_conn_t)); 6766 if (mp1) { 6767 /* Hang onto the T_OK_ACK for later. */ 6768 linkb(mp1, mp); 6769 mblk_setcred(mp1, tcp->tcp_cred); 6770 mp1 = ip_bind_v6(tcp->tcp_wq, mp1, tcp->tcp_connp, 6771 &tcp->tcp_sticky_ipp); 6772 BUMP_MIB(&tcp_mib, tcpActiveOpens); 6773 tcp->tcp_active_open = 1; 6774 /* ip_bind_v6() may return ACK or ERROR */ 6775 if (mp1 != NULL) 6776 tcp_rput_other(tcp, mp1); 6777 return; 6778 } 6779 /* Error case */ 6780 tcp->tcp_state = oldstate; 6781 mp = mi_tpi_err_ack_alloc(mp, TSYSERR, ENOMEM); 6782 6783 failed: 6784 /* return error ack and blow away saved option results if any */ 6785 if (mp != NULL) 6786 putnext(tcp->tcp_rq, mp); 6787 else { 6788 tcp_err_ack_prim(tcp, NULL, T_CONN_REQ, 6789 TSYSERR, ENOMEM); 6790 } 6791 if (tcp->tcp_conn.tcp_opts_conn_req != NULL) 6792 tcp_close_mpp(&tcp->tcp_conn.tcp_opts_conn_req); 6793 } 6794 6795 /* 6796 * We need a stream q for detached closing tcp connections 6797 * to use. Our client hereby indicates that this q is the 6798 * one to use. 6799 */ 6800 static void 6801 tcp_def_q_set(tcp_t *tcp, mblk_t *mp) 6802 { 6803 struct iocblk *iocp = (struct iocblk *)mp->b_rptr; 6804 queue_t *q = tcp->tcp_wq; 6805 6806 mp->b_datap->db_type = M_IOCACK; 6807 iocp->ioc_count = 0; 6808 mutex_enter(&tcp_g_q_lock); 6809 if (tcp_g_q != NULL) { 6810 mutex_exit(&tcp_g_q_lock); 6811 iocp->ioc_error = EALREADY; 6812 } else { 6813 mblk_t *mp1; 6814 6815 mp1 = tcp_ip_bind_mp(tcp, O_T_BIND_REQ, 0); 6816 if (mp1 == NULL) { 6817 mutex_exit(&tcp_g_q_lock); 6818 iocp->ioc_error = ENOMEM; 6819 } else { 6820 tcp_g_q = tcp->tcp_rq; 6821 mutex_exit(&tcp_g_q_lock); 6822 iocp->ioc_error = 0; 6823 iocp->ioc_rval = 0; 6824 /* 6825 * We are passing tcp_sticky_ipp as NULL 6826 * as it is not useful for tcp_default queue 6827 */ 6828 mp1 = ip_bind_v6(q, mp1, tcp->tcp_connp, NULL); 6829 if (mp1 != NULL) 6830 tcp_rput_other(tcp, mp1); 6831 } 6832 } 6833 qreply(q, mp); 6834 } 6835 6836 /* 6837 * Our client hereby directs us to reject the connection request 6838 * that tcp_conn_request() marked with 'seqnum'. Rejection consists 6839 * of sending the appropriate RST, not an ICMP error. 6840 */ 6841 static void 6842 tcp_disconnect(tcp_t *tcp, mblk_t *mp) 6843 { 6844 tcp_t *ltcp = NULL; 6845 t_scalar_t seqnum; 6846 conn_t *connp; 6847 6848 ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= (uintptr_t)INT_MAX); 6849 if ((mp->b_wptr - mp->b_rptr) < sizeof (struct T_discon_req)) { 6850 tcp_err_ack(tcp, mp, TPROTO, 0); 6851 return; 6852 } 6853 6854 /* 6855 * Right now, upper modules pass down a T_DISCON_REQ to TCP, 6856 * when the stream is in BOUND state. Do not send a reset, 6857 * since the destination IP address is not valid, and it can 6858 * be the initialized value of all zeros (broadcast address). 6859 * 6860 * If TCP has sent down a bind request to IP and has not 6861 * received the reply, reject the request. Otherwise, TCP 6862 * will be confused. 6863 */ 6864 if (tcp->tcp_state <= TCPS_BOUND || tcp->tcp_hard_binding) { 6865 if (tcp->tcp_debug) { 6866 (void) strlog(TCP_MOD_ID, 0, 1, SL_ERROR|SL_TRACE, 6867 "tcp_disconnect: bad state, %d", tcp->tcp_state); 6868 } 6869 tcp_err_ack(tcp, mp, TOUTSTATE, 0); 6870 return; 6871 } 6872 6873 seqnum = ((struct T_discon_req *)mp->b_rptr)->SEQ_number; 6874 6875 if (seqnum == -1 || tcp->tcp_conn_req_max == 0) { 6876 6877 /* 6878 * According to TPI, for non-listeners, ignore seqnum 6879 * and disconnect. 6880 * Following interpretation of -1 seqnum is historical 6881 * and implied TPI ? (TPI only states that for T_CONN_IND, 6882 * a valid seqnum should not be -1). 6883 * 6884 * -1 means disconnect everything 6885 * regardless even on a listener. 6886 */ 6887 6888 int old_state = tcp->tcp_state; 6889 6890 /* 6891 * The connection can't be on the tcp_time_wait_head list 6892 * since it is not detached. 6893 */ 6894 ASSERT(tcp->tcp_time_wait_next == NULL); 6895 ASSERT(tcp->tcp_time_wait_prev == NULL); 6896 ASSERT(tcp->tcp_time_wait_expire == 0); 6897 ltcp = NULL; 6898 /* 6899 * If it used to be a listener, check to make sure no one else 6900 * has taken the port before switching back to LISTEN state. 6901 */ 6902 if (tcp->tcp_ipversion == IPV4_VERSION) { 6903 connp = ipcl_lookup_listener_v4(tcp->tcp_lport, 6904 tcp->tcp_ipha->ipha_src, 6905 tcp->tcp_connp->conn_zoneid); 6906 if (connp != NULL) 6907 ltcp = connp->conn_tcp; 6908 } else { 6909 /* Allow tcp_bound_if listeners? */ 6910 connp = ipcl_lookup_listener_v6(tcp->tcp_lport, 6911 &tcp->tcp_ip6h->ip6_src, 0, 6912 tcp->tcp_connp->conn_zoneid); 6913 if (connp != NULL) 6914 ltcp = connp->conn_tcp; 6915 } 6916 if (tcp->tcp_conn_req_max && ltcp == NULL) { 6917 tcp->tcp_state = TCPS_LISTEN; 6918 } else if (old_state > TCPS_BOUND) { 6919 tcp->tcp_conn_req_max = 0; 6920 tcp->tcp_state = TCPS_BOUND; 6921 } 6922 if (ltcp != NULL) 6923 CONN_DEC_REF(ltcp->tcp_connp); 6924 if (old_state == TCPS_SYN_SENT || old_state == TCPS_SYN_RCVD) { 6925 BUMP_MIB(&tcp_mib, tcpAttemptFails); 6926 } else if (old_state == TCPS_ESTABLISHED || 6927 old_state == TCPS_CLOSE_WAIT) { 6928 BUMP_MIB(&tcp_mib, tcpEstabResets); 6929 } 6930 6931 if (tcp->tcp_fused) 6932 tcp_unfuse(tcp); 6933 6934 mutex_enter(&tcp->tcp_eager_lock); 6935 if ((tcp->tcp_conn_req_cnt_q0 != 0) || 6936 (tcp->tcp_conn_req_cnt_q != 0)) { 6937 tcp_eager_cleanup(tcp, 0); 6938 } 6939 mutex_exit(&tcp->tcp_eager_lock); 6940 6941 tcp_xmit_ctl("tcp_disconnect", tcp, tcp->tcp_snxt, 6942 tcp->tcp_rnxt, TH_RST | TH_ACK); 6943 6944 tcp_reinit(tcp); 6945 6946 if (old_state >= TCPS_ESTABLISHED) { 6947 /* Send M_FLUSH according to TPI */ 6948 (void) putnextctl1(tcp->tcp_rq, M_FLUSH, FLUSHRW); 6949 } 6950 mp = mi_tpi_ok_ack_alloc(mp); 6951 if (mp) 6952 putnext(tcp->tcp_rq, mp); 6953 return; 6954 } else if (!tcp_eager_blowoff(tcp, seqnum)) { 6955 tcp_err_ack(tcp, mp, TBADSEQ, 0); 6956 return; 6957 } 6958 if (tcp->tcp_state >= TCPS_ESTABLISHED) { 6959 /* Send M_FLUSH according to TPI */ 6960 (void) putnextctl1(tcp->tcp_rq, M_FLUSH, FLUSHRW); 6961 } 6962 mp = mi_tpi_ok_ack_alloc(mp); 6963 if (mp) 6964 putnext(tcp->tcp_rq, mp); 6965 } 6966 6967 /* 6968 * Diagnostic routine used to return a string associated with the tcp state. 6969 * Note that if the caller does not supply a buffer, it will use an internal 6970 * static string. This means that if multiple threads call this function at 6971 * the same time, output can be corrupted... Note also that this function 6972 * does not check the size of the supplied buffer. The caller has to make 6973 * sure that it is big enough. 6974 */ 6975 static char * 6976 tcp_display(tcp_t *tcp, char *sup_buf, char format) 6977 { 6978 char buf1[30]; 6979 static char priv_buf[INET6_ADDRSTRLEN * 2 + 80]; 6980 char *buf; 6981 char *cp; 6982 in6_addr_t local, remote; 6983 char local_addrbuf[INET6_ADDRSTRLEN]; 6984 char remote_addrbuf[INET6_ADDRSTRLEN]; 6985 6986 if (sup_buf != NULL) 6987 buf = sup_buf; 6988 else 6989 buf = priv_buf; 6990 6991 if (tcp == NULL) 6992 return ("NULL_TCP"); 6993 switch (tcp->tcp_state) { 6994 case TCPS_CLOSED: 6995 cp = "TCP_CLOSED"; 6996 break; 6997 case TCPS_IDLE: 6998 cp = "TCP_IDLE"; 6999 break; 7000 case TCPS_BOUND: 7001 cp = "TCP_BOUND"; 7002 break; 7003 case TCPS_LISTEN: 7004 cp = "TCP_LISTEN"; 7005 break; 7006 case TCPS_SYN_SENT: 7007 cp = "TCP_SYN_SENT"; 7008 break; 7009 case TCPS_SYN_RCVD: 7010 cp = "TCP_SYN_RCVD"; 7011 break; 7012 case TCPS_ESTABLISHED: 7013 cp = "TCP_ESTABLISHED"; 7014 break; 7015 case TCPS_CLOSE_WAIT: 7016 cp = "TCP_CLOSE_WAIT"; 7017 break; 7018 case TCPS_FIN_WAIT_1: 7019 cp = "TCP_FIN_WAIT_1"; 7020 break; 7021 case TCPS_CLOSING: 7022 cp = "TCP_CLOSING"; 7023 break; 7024 case TCPS_LAST_ACK: 7025 cp = "TCP_LAST_ACK"; 7026 break; 7027 case TCPS_FIN_WAIT_2: 7028 cp = "TCP_FIN_WAIT_2"; 7029 break; 7030 case TCPS_TIME_WAIT: 7031 cp = "TCP_TIME_WAIT"; 7032 break; 7033 default: 7034 (void) mi_sprintf(buf1, "TCPUnkState(%d)", tcp->tcp_state); 7035 cp = buf1; 7036 break; 7037 } 7038 switch (format) { 7039 case DISP_ADDR_AND_PORT: 7040 if (tcp->tcp_ipversion == IPV4_VERSION) { 7041 /* 7042 * Note that we use the remote address in the tcp_b 7043 * structure. This means that it will print out 7044 * the real destination address, not the next hop's 7045 * address if source routing is used. 7046 */ 7047 IN6_IPADDR_TO_V4MAPPED(tcp->tcp_ip_src, &local); 7048 IN6_IPADDR_TO_V4MAPPED(tcp->tcp_remote, &remote); 7049 7050 } else { 7051 local = tcp->tcp_ip_src_v6; 7052 remote = tcp->tcp_remote_v6; 7053 } 7054 (void) inet_ntop(AF_INET6, &local, local_addrbuf, 7055 sizeof (local_addrbuf)); 7056 (void) inet_ntop(AF_INET6, &remote, remote_addrbuf, 7057 sizeof (remote_addrbuf)); 7058 (void) mi_sprintf(buf, "[%s.%u, %s.%u] %s", 7059 local_addrbuf, ntohs(tcp->tcp_lport), remote_addrbuf, 7060 ntohs(tcp->tcp_fport), cp); 7061 break; 7062 case DISP_PORT_ONLY: 7063 default: 7064 (void) mi_sprintf(buf, "[%u, %u] %s", 7065 ntohs(tcp->tcp_lport), ntohs(tcp->tcp_fport), cp); 7066 break; 7067 } 7068 7069 return (buf); 7070 } 7071 7072 /* 7073 * Called via squeue to get on to eager's perimeter to send a 7074 * TH_RST. The listener wants the eager to disappear either 7075 * by means of tcp_eager_blowoff() or tcp_eager_cleanup() 7076 * being called. 7077 */ 7078 /* ARGSUSED */ 7079 void 7080 tcp_eager_kill(void *arg, mblk_t *mp, void *arg2) 7081 { 7082 conn_t *econnp = (conn_t *)arg; 7083 tcp_t *eager = econnp->conn_tcp; 7084 tcp_t *listener = eager->tcp_listener; 7085 7086 /* 7087 * We could be called because listener is closing. Since 7088 * the eager is using listener's queue's, its not safe. 7089 * Better use the default queue just to send the TH_RST 7090 * out. 7091 */ 7092 eager->tcp_rq = tcp_g_q; 7093 eager->tcp_wq = WR(tcp_g_q); 7094 7095 if (eager->tcp_state > TCPS_LISTEN) { 7096 tcp_xmit_ctl("tcp_eager_kill, can't wait", 7097 eager, eager->tcp_snxt, 0, TH_RST); 7098 } 7099 7100 /* We are here because listener wants this eager gone */ 7101 if (listener != NULL) { 7102 mutex_enter(&listener->tcp_eager_lock); 7103 tcp_eager_unlink(eager); 7104 if (eager->tcp_tconnind_started) { 7105 /* 7106 * The eager has sent a conn_ind up to the 7107 * listener but listener decides to close 7108 * instead. We need to drop the extra ref 7109 * placed on eager in tcp_rput_data() before 7110 * sending the conn_ind to listener. 7111 */ 7112 CONN_DEC_REF(econnp); 7113 } 7114 mutex_exit(&listener->tcp_eager_lock); 7115 CONN_DEC_REF(listener->tcp_connp); 7116 } 7117 7118 if (eager->tcp_state > TCPS_BOUND) 7119 tcp_close_detached(eager); 7120 } 7121 7122 /* 7123 * Reset any eager connection hanging off this listener marked 7124 * with 'seqnum' and then reclaim it's resources. 7125 */ 7126 static boolean_t 7127 tcp_eager_blowoff(tcp_t *listener, t_scalar_t seqnum) 7128 { 7129 tcp_t *eager; 7130 mblk_t *mp; 7131 7132 TCP_STAT(tcp_eager_blowoff_calls); 7133 eager = listener; 7134 mutex_enter(&listener->tcp_eager_lock); 7135 do { 7136 eager = eager->tcp_eager_next_q; 7137 if (eager == NULL) { 7138 mutex_exit(&listener->tcp_eager_lock); 7139 return (B_FALSE); 7140 } 7141 } while (eager->tcp_conn_req_seqnum != seqnum); 7142 7143 if (eager->tcp_closemp_used > 0) { 7144 mutex_exit(&listener->tcp_eager_lock); 7145 return (B_TRUE); 7146 } 7147 eager->tcp_closemp_used = 1; 7148 TCP_DEBUG_GETPCSTACK(eager->tcmp_stk, 15); 7149 CONN_INC_REF(eager->tcp_connp); 7150 mutex_exit(&listener->tcp_eager_lock); 7151 mp = &eager->tcp_closemp; 7152 squeue_fill(eager->tcp_connp->conn_sqp, mp, tcp_eager_kill, 7153 eager->tcp_connp, SQTAG_TCP_EAGER_BLOWOFF); 7154 return (B_TRUE); 7155 } 7156 7157 /* 7158 * Reset any eager connection hanging off this listener 7159 * and then reclaim it's resources. 7160 */ 7161 static void 7162 tcp_eager_cleanup(tcp_t *listener, boolean_t q0_only) 7163 { 7164 tcp_t *eager; 7165 mblk_t *mp; 7166 7167 ASSERT(MUTEX_HELD(&listener->tcp_eager_lock)); 7168 7169 if (!q0_only) { 7170 /* First cleanup q */ 7171 TCP_STAT(tcp_eager_blowoff_q); 7172 eager = listener->tcp_eager_next_q; 7173 while (eager != NULL) { 7174 if (eager->tcp_closemp_used == 0) { 7175 eager->tcp_closemp_used = 1; 7176 TCP_DEBUG_GETPCSTACK(eager->tcmp_stk, 15); 7177 CONN_INC_REF(eager->tcp_connp); 7178 mp = &eager->tcp_closemp; 7179 squeue_fill(eager->tcp_connp->conn_sqp, mp, 7180 tcp_eager_kill, eager->tcp_connp, 7181 SQTAG_TCP_EAGER_CLEANUP); 7182 } 7183 eager = eager->tcp_eager_next_q; 7184 } 7185 } 7186 /* Then cleanup q0 */ 7187 TCP_STAT(tcp_eager_blowoff_q0); 7188 eager = listener->tcp_eager_next_q0; 7189 while (eager != listener) { 7190 if (eager->tcp_closemp_used == 0) { 7191 eager->tcp_closemp_used = 1; 7192 TCP_DEBUG_GETPCSTACK(eager->tcmp_stk, 15); 7193 CONN_INC_REF(eager->tcp_connp); 7194 mp = &eager->tcp_closemp; 7195 squeue_fill(eager->tcp_connp->conn_sqp, mp, 7196 tcp_eager_kill, eager->tcp_connp, 7197 SQTAG_TCP_EAGER_CLEANUP_Q0); 7198 } 7199 eager = eager->tcp_eager_next_q0; 7200 } 7201 } 7202 7203 /* 7204 * If we are an eager connection hanging off a listener that hasn't 7205 * formally accepted the connection yet, get off his list and blow off 7206 * any data that we have accumulated. 7207 */ 7208 static void 7209 tcp_eager_unlink(tcp_t *tcp) 7210 { 7211 tcp_t *listener = tcp->tcp_listener; 7212 7213 ASSERT(MUTEX_HELD(&listener->tcp_eager_lock)); 7214 ASSERT(listener != NULL); 7215 if (tcp->tcp_eager_next_q0 != NULL) { 7216 ASSERT(tcp->tcp_eager_prev_q0 != NULL); 7217 7218 /* Remove the eager tcp from q0 */ 7219 tcp->tcp_eager_next_q0->tcp_eager_prev_q0 = 7220 tcp->tcp_eager_prev_q0; 7221 tcp->tcp_eager_prev_q0->tcp_eager_next_q0 = 7222 tcp->tcp_eager_next_q0; 7223 ASSERT(listener->tcp_conn_req_cnt_q0 > 0); 7224 listener->tcp_conn_req_cnt_q0--; 7225 7226 tcp->tcp_eager_next_q0 = NULL; 7227 tcp->tcp_eager_prev_q0 = NULL; 7228 7229 /* 7230 * Take the eager out, if it is in the list of droppable 7231 * eagers. 7232 */ 7233 MAKE_UNDROPPABLE(tcp); 7234 7235 if (tcp->tcp_syn_rcvd_timeout != 0) { 7236 /* we have timed out before */ 7237 ASSERT(listener->tcp_syn_rcvd_timeout > 0); 7238 listener->tcp_syn_rcvd_timeout--; 7239 } 7240 } else { 7241 tcp_t **tcpp = &listener->tcp_eager_next_q; 7242 tcp_t *prev = NULL; 7243 7244 for (; tcpp[0]; tcpp = &tcpp[0]->tcp_eager_next_q) { 7245 if (tcpp[0] == tcp) { 7246 if (listener->tcp_eager_last_q == tcp) { 7247 /* 7248 * If we are unlinking the last 7249 * element on the list, adjust 7250 * tail pointer. Set tail pointer 7251 * to nil when list is empty. 7252 */ 7253 ASSERT(tcp->tcp_eager_next_q == NULL); 7254 if (listener->tcp_eager_last_q == 7255 listener->tcp_eager_next_q) { 7256 listener->tcp_eager_last_q = 7257 NULL; 7258 } else { 7259 /* 7260 * We won't get here if there 7261 * is only one eager in the 7262 * list. 7263 */ 7264 ASSERT(prev != NULL); 7265 listener->tcp_eager_last_q = 7266 prev; 7267 } 7268 } 7269 tcpp[0] = tcp->tcp_eager_next_q; 7270 tcp->tcp_eager_next_q = NULL; 7271 tcp->tcp_eager_last_q = NULL; 7272 ASSERT(listener->tcp_conn_req_cnt_q > 0); 7273 listener->tcp_conn_req_cnt_q--; 7274 break; 7275 } 7276 prev = tcpp[0]; 7277 } 7278 } 7279 tcp->tcp_listener = NULL; 7280 } 7281 7282 /* Shorthand to generate and send TPI error acks to our client */ 7283 static void 7284 tcp_err_ack(tcp_t *tcp, mblk_t *mp, int t_error, int sys_error) 7285 { 7286 if ((mp = mi_tpi_err_ack_alloc(mp, t_error, sys_error)) != NULL) 7287 putnext(tcp->tcp_rq, mp); 7288 } 7289 7290 /* Shorthand to generate and send TPI error acks to our client */ 7291 static void 7292 tcp_err_ack_prim(tcp_t *tcp, mblk_t *mp, int primitive, 7293 int t_error, int sys_error) 7294 { 7295 struct T_error_ack *teackp; 7296 7297 if ((mp = tpi_ack_alloc(mp, sizeof (struct T_error_ack), 7298 M_PCPROTO, T_ERROR_ACK)) != NULL) { 7299 teackp = (struct T_error_ack *)mp->b_rptr; 7300 teackp->ERROR_prim = primitive; 7301 teackp->TLI_error = t_error; 7302 teackp->UNIX_error = sys_error; 7303 putnext(tcp->tcp_rq, mp); 7304 } 7305 } 7306 7307 /* 7308 * Note: No locks are held when inspecting tcp_g_*epriv_ports 7309 * but instead the code relies on: 7310 * - the fact that the address of the array and its size never changes 7311 * - the atomic assignment of the elements of the array 7312 */ 7313 /* ARGSUSED */ 7314 static int 7315 tcp_extra_priv_ports_get(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr) 7316 { 7317 int i; 7318 7319 for (i = 0; i < tcp_g_num_epriv_ports; i++) { 7320 if (tcp_g_epriv_ports[i] != 0) 7321 (void) mi_mpprintf(mp, "%d ", tcp_g_epriv_ports[i]); 7322 } 7323 return (0); 7324 } 7325 7326 /* 7327 * Hold a lock while changing tcp_g_epriv_ports to prevent multiple 7328 * threads from changing it at the same time. 7329 */ 7330 /* ARGSUSED */ 7331 static int 7332 tcp_extra_priv_ports_add(queue_t *q, mblk_t *mp, char *value, caddr_t cp, 7333 cred_t *cr) 7334 { 7335 long new_value; 7336 int i; 7337 7338 /* 7339 * Fail the request if the new value does not lie within the 7340 * port number limits. 7341 */ 7342 if (ddi_strtol(value, NULL, 10, &new_value) != 0 || 7343 new_value <= 0 || new_value >= 65536) { 7344 return (EINVAL); 7345 } 7346 7347 mutex_enter(&tcp_epriv_port_lock); 7348 /* Check if the value is already in the list */ 7349 for (i = 0; i < tcp_g_num_epriv_ports; i++) { 7350 if (new_value == tcp_g_epriv_ports[i]) { 7351 mutex_exit(&tcp_epriv_port_lock); 7352 return (EEXIST); 7353 } 7354 } 7355 /* Find an empty slot */ 7356 for (i = 0; i < tcp_g_num_epriv_ports; i++) { 7357 if (tcp_g_epriv_ports[i] == 0) 7358 break; 7359 } 7360 if (i == tcp_g_num_epriv_ports) { 7361 mutex_exit(&tcp_epriv_port_lock); 7362 return (EOVERFLOW); 7363 } 7364 /* Set the new value */ 7365 tcp_g_epriv_ports[i] = (uint16_t)new_value; 7366 mutex_exit(&tcp_epriv_port_lock); 7367 return (0); 7368 } 7369 7370 /* 7371 * Hold a lock while changing tcp_g_epriv_ports to prevent multiple 7372 * threads from changing it at the same time. 7373 */ 7374 /* ARGSUSED */ 7375 static int 7376 tcp_extra_priv_ports_del(queue_t *q, mblk_t *mp, char *value, caddr_t cp, 7377 cred_t *cr) 7378 { 7379 long new_value; 7380 int i; 7381 7382 /* 7383 * Fail the request if the new value does not lie within the 7384 * port number limits. 7385 */ 7386 if (ddi_strtol(value, NULL, 10, &new_value) != 0 || new_value <= 0 || 7387 new_value >= 65536) { 7388 return (EINVAL); 7389 } 7390 7391 mutex_enter(&tcp_epriv_port_lock); 7392 /* Check that the value is already in the list */ 7393 for (i = 0; i < tcp_g_num_epriv_ports; i++) { 7394 if (tcp_g_epriv_ports[i] == new_value) 7395 break; 7396 } 7397 if (i == tcp_g_num_epriv_ports) { 7398 mutex_exit(&tcp_epriv_port_lock); 7399 return (ESRCH); 7400 } 7401 /* Clear the value */ 7402 tcp_g_epriv_ports[i] = 0; 7403 mutex_exit(&tcp_epriv_port_lock); 7404 return (0); 7405 } 7406 7407 /* Return the TPI/TLI equivalent of our current tcp_state */ 7408 static int 7409 tcp_tpistate(tcp_t *tcp) 7410 { 7411 switch (tcp->tcp_state) { 7412 case TCPS_IDLE: 7413 return (TS_UNBND); 7414 case TCPS_LISTEN: 7415 /* 7416 * Return whether there are outstanding T_CONN_IND waiting 7417 * for the matching T_CONN_RES. Therefore don't count q0. 7418 */ 7419 if (tcp->tcp_conn_req_cnt_q > 0) 7420 return (TS_WRES_CIND); 7421 else 7422 return (TS_IDLE); 7423 case TCPS_BOUND: 7424 return (TS_IDLE); 7425 case TCPS_SYN_SENT: 7426 return (TS_WCON_CREQ); 7427 case TCPS_SYN_RCVD: 7428 /* 7429 * Note: assumption: this has to the active open SYN_RCVD. 7430 * The passive instance is detached in SYN_RCVD stage of 7431 * incoming connection processing so we cannot get request 7432 * for T_info_ack on it. 7433 */ 7434 return (TS_WACK_CRES); 7435 case TCPS_ESTABLISHED: 7436 return (TS_DATA_XFER); 7437 case TCPS_CLOSE_WAIT: 7438 return (TS_WREQ_ORDREL); 7439 case TCPS_FIN_WAIT_1: 7440 return (TS_WIND_ORDREL); 7441 case TCPS_FIN_WAIT_2: 7442 return (TS_WIND_ORDREL); 7443 7444 case TCPS_CLOSING: 7445 case TCPS_LAST_ACK: 7446 case TCPS_TIME_WAIT: 7447 case TCPS_CLOSED: 7448 /* 7449 * Following TS_WACK_DREQ7 is a rendition of "not 7450 * yet TS_IDLE" TPI state. There is no best match to any 7451 * TPI state for TCPS_{CLOSING, LAST_ACK, TIME_WAIT} but we 7452 * choose a value chosen that will map to TLI/XTI level 7453 * state of TSTATECHNG (state is process of changing) which 7454 * captures what this dummy state represents. 7455 */ 7456 return (TS_WACK_DREQ7); 7457 default: 7458 cmn_err(CE_WARN, "tcp_tpistate: strange state (%d) %s", 7459 tcp->tcp_state, tcp_display(tcp, NULL, 7460 DISP_PORT_ONLY)); 7461 return (TS_UNBND); 7462 } 7463 } 7464 7465 static void 7466 tcp_copy_info(struct T_info_ack *tia, tcp_t *tcp) 7467 { 7468 if (tcp->tcp_family == AF_INET6) 7469 *tia = tcp_g_t_info_ack_v6; 7470 else 7471 *tia = tcp_g_t_info_ack; 7472 tia->CURRENT_state = tcp_tpistate(tcp); 7473 tia->OPT_size = tcp_max_optsize; 7474 if (tcp->tcp_mss == 0) { 7475 /* Not yet set - tcp_open does not set mss */ 7476 if (tcp->tcp_ipversion == IPV4_VERSION) 7477 tia->TIDU_size = tcp_mss_def_ipv4; 7478 else 7479 tia->TIDU_size = tcp_mss_def_ipv6; 7480 } else { 7481 tia->TIDU_size = tcp->tcp_mss; 7482 } 7483 /* TODO: Default ETSDU is 1. Is that correct for tcp? */ 7484 } 7485 7486 /* 7487 * This routine responds to T_CAPABILITY_REQ messages. It is called by 7488 * tcp_wput. Much of the T_CAPABILITY_ACK information is copied from 7489 * tcp_g_t_info_ack. The current state of the stream is copied from 7490 * tcp_state. 7491 */ 7492 static void 7493 tcp_capability_req(tcp_t *tcp, mblk_t *mp) 7494 { 7495 t_uscalar_t cap_bits1; 7496 struct T_capability_ack *tcap; 7497 7498 if (MBLKL(mp) < sizeof (struct T_capability_req)) { 7499 freemsg(mp); 7500 return; 7501 } 7502 7503 cap_bits1 = ((struct T_capability_req *)mp->b_rptr)->CAP_bits1; 7504 7505 mp = tpi_ack_alloc(mp, sizeof (struct T_capability_ack), 7506 mp->b_datap->db_type, T_CAPABILITY_ACK); 7507 if (mp == NULL) 7508 return; 7509 7510 tcap = (struct T_capability_ack *)mp->b_rptr; 7511 tcap->CAP_bits1 = 0; 7512 7513 if (cap_bits1 & TC1_INFO) { 7514 tcp_copy_info(&tcap->INFO_ack, tcp); 7515 tcap->CAP_bits1 |= TC1_INFO; 7516 } 7517 7518 if (cap_bits1 & TC1_ACCEPTOR_ID) { 7519 tcap->ACCEPTOR_id = tcp->tcp_acceptor_id; 7520 tcap->CAP_bits1 |= TC1_ACCEPTOR_ID; 7521 } 7522 7523 putnext(tcp->tcp_rq, mp); 7524 } 7525 7526 /* 7527 * This routine responds to T_INFO_REQ messages. It is called by tcp_wput. 7528 * Most of the T_INFO_ACK information is copied from tcp_g_t_info_ack. 7529 * The current state of the stream is copied from tcp_state. 7530 */ 7531 static void 7532 tcp_info_req(tcp_t *tcp, mblk_t *mp) 7533 { 7534 mp = tpi_ack_alloc(mp, sizeof (struct T_info_ack), M_PCPROTO, 7535 T_INFO_ACK); 7536 if (!mp) { 7537 tcp_err_ack(tcp, mp, TSYSERR, ENOMEM); 7538 return; 7539 } 7540 tcp_copy_info((struct T_info_ack *)mp->b_rptr, tcp); 7541 putnext(tcp->tcp_rq, mp); 7542 } 7543 7544 /* Respond to the TPI addr request */ 7545 static void 7546 tcp_addr_req(tcp_t *tcp, mblk_t *mp) 7547 { 7548 sin_t *sin; 7549 mblk_t *ackmp; 7550 struct T_addr_ack *taa; 7551 7552 /* Make it large enough for worst case */ 7553 ackmp = reallocb(mp, sizeof (struct T_addr_ack) + 7554 2 * sizeof (sin6_t), 1); 7555 if (ackmp == NULL) { 7556 tcp_err_ack(tcp, mp, TSYSERR, ENOMEM); 7557 return; 7558 } 7559 7560 if (tcp->tcp_ipversion == IPV6_VERSION) { 7561 tcp_addr_req_ipv6(tcp, ackmp); 7562 return; 7563 } 7564 taa = (struct T_addr_ack *)ackmp->b_rptr; 7565 7566 bzero(taa, sizeof (struct T_addr_ack)); 7567 ackmp->b_wptr = (uchar_t *)&taa[1]; 7568 7569 taa->PRIM_type = T_ADDR_ACK; 7570 ackmp->b_datap->db_type = M_PCPROTO; 7571 7572 /* 7573 * Note: Following code assumes 32 bit alignment of basic 7574 * data structures like sin_t and struct T_addr_ack. 7575 */ 7576 if (tcp->tcp_state >= TCPS_BOUND) { 7577 /* 7578 * Fill in local address 7579 */ 7580 taa->LOCADDR_length = sizeof (sin_t); 7581 taa->LOCADDR_offset = sizeof (*taa); 7582 7583 sin = (sin_t *)&taa[1]; 7584 7585 /* Fill zeroes and then intialize non-zero fields */ 7586 *sin = sin_null; 7587 7588 sin->sin_family = AF_INET; 7589 7590 sin->sin_addr.s_addr = tcp->tcp_ipha->ipha_src; 7591 sin->sin_port = *(uint16_t *)tcp->tcp_tcph->th_lport; 7592 7593 ackmp->b_wptr = (uchar_t *)&sin[1]; 7594 7595 if (tcp->tcp_state >= TCPS_SYN_RCVD) { 7596 /* 7597 * Fill in Remote address 7598 */ 7599 taa->REMADDR_length = sizeof (sin_t); 7600 taa->REMADDR_offset = ROUNDUP32(taa->LOCADDR_offset + 7601 taa->LOCADDR_length); 7602 7603 sin = (sin_t *)(ackmp->b_rptr + taa->REMADDR_offset); 7604 *sin = sin_null; 7605 sin->sin_family = AF_INET; 7606 sin->sin_addr.s_addr = tcp->tcp_remote; 7607 sin->sin_port = tcp->tcp_fport; 7608 7609 ackmp->b_wptr = (uchar_t *)&sin[1]; 7610 } 7611 } 7612 putnext(tcp->tcp_rq, ackmp); 7613 } 7614 7615 /* Assumes that tcp_addr_req gets enough space and alignment */ 7616 static void 7617 tcp_addr_req_ipv6(tcp_t *tcp, mblk_t *ackmp) 7618 { 7619 sin6_t *sin6; 7620 struct T_addr_ack *taa; 7621 7622 ASSERT(tcp->tcp_ipversion == IPV6_VERSION); 7623 ASSERT(OK_32PTR(ackmp->b_rptr)); 7624 ASSERT(ackmp->b_wptr - ackmp->b_rptr >= sizeof (struct T_addr_ack) + 7625 2 * sizeof (sin6_t)); 7626 7627 taa = (struct T_addr_ack *)ackmp->b_rptr; 7628 7629 bzero(taa, sizeof (struct T_addr_ack)); 7630 ackmp->b_wptr = (uchar_t *)&taa[1]; 7631 7632 taa->PRIM_type = T_ADDR_ACK; 7633 ackmp->b_datap->db_type = M_PCPROTO; 7634 7635 /* 7636 * Note: Following code assumes 32 bit alignment of basic 7637 * data structures like sin6_t and struct T_addr_ack. 7638 */ 7639 if (tcp->tcp_state >= TCPS_BOUND) { 7640 /* 7641 * Fill in local address 7642 */ 7643 taa->LOCADDR_length = sizeof (sin6_t); 7644 taa->LOCADDR_offset = sizeof (*taa); 7645 7646 sin6 = (sin6_t *)&taa[1]; 7647 *sin6 = sin6_null; 7648 7649 sin6->sin6_family = AF_INET6; 7650 sin6->sin6_addr = tcp->tcp_ip6h->ip6_src; 7651 sin6->sin6_port = tcp->tcp_lport; 7652 7653 ackmp->b_wptr = (uchar_t *)&sin6[1]; 7654 7655 if (tcp->tcp_state >= TCPS_SYN_RCVD) { 7656 /* 7657 * Fill in Remote address 7658 */ 7659 taa->REMADDR_length = sizeof (sin6_t); 7660 taa->REMADDR_offset = ROUNDUP32(taa->LOCADDR_offset + 7661 taa->LOCADDR_length); 7662 7663 sin6 = (sin6_t *)(ackmp->b_rptr + taa->REMADDR_offset); 7664 *sin6 = sin6_null; 7665 sin6->sin6_family = AF_INET6; 7666 sin6->sin6_flowinfo = 7667 tcp->tcp_ip6h->ip6_vcf & 7668 ~IPV6_VERS_AND_FLOW_MASK; 7669 sin6->sin6_addr = tcp->tcp_remote_v6; 7670 sin6->sin6_port = tcp->tcp_fport; 7671 7672 ackmp->b_wptr = (uchar_t *)&sin6[1]; 7673 } 7674 } 7675 putnext(tcp->tcp_rq, ackmp); 7676 } 7677 7678 /* 7679 * Handle reinitialization of a tcp structure. 7680 * Maintain "binding state" resetting the state to BOUND, LISTEN, or IDLE. 7681 */ 7682 static void 7683 tcp_reinit(tcp_t *tcp) 7684 { 7685 mblk_t *mp; 7686 int err; 7687 7688 TCP_STAT(tcp_reinit_calls); 7689 7690 /* tcp_reinit should never be called for detached tcp_t's */ 7691 ASSERT(tcp->tcp_listener == NULL); 7692 ASSERT((tcp->tcp_family == AF_INET && 7693 tcp->tcp_ipversion == IPV4_VERSION) || 7694 (tcp->tcp_family == AF_INET6 && 7695 (tcp->tcp_ipversion == IPV4_VERSION || 7696 tcp->tcp_ipversion == IPV6_VERSION))); 7697 7698 /* Cancel outstanding timers */ 7699 tcp_timers_stop(tcp); 7700 7701 /* 7702 * Reset everything in the state vector, after updating global 7703 * MIB data from instance counters. 7704 */ 7705 UPDATE_MIB(&tcp_mib, tcpInSegs, tcp->tcp_ibsegs); 7706 tcp->tcp_ibsegs = 0; 7707 UPDATE_MIB(&tcp_mib, tcpOutSegs, tcp->tcp_obsegs); 7708 tcp->tcp_obsegs = 0; 7709 7710 tcp_close_mpp(&tcp->tcp_xmit_head); 7711 if (tcp->tcp_snd_zcopy_aware) 7712 tcp_zcopy_notify(tcp); 7713 tcp->tcp_xmit_last = tcp->tcp_xmit_tail = NULL; 7714 tcp->tcp_unsent = tcp->tcp_xmit_tail_unsent = 0; 7715 if (tcp->tcp_flow_stopped && 7716 TCP_UNSENT_BYTES(tcp) <= tcp->tcp_xmit_lowater) { 7717 tcp_clrqfull(tcp); 7718 } 7719 tcp_close_mpp(&tcp->tcp_reass_head); 7720 tcp->tcp_reass_tail = NULL; 7721 if (tcp->tcp_rcv_list != NULL) { 7722 /* Free b_next chain */ 7723 tcp_close_mpp(&tcp->tcp_rcv_list); 7724 tcp->tcp_rcv_last_head = NULL; 7725 tcp->tcp_rcv_last_tail = NULL; 7726 tcp->tcp_rcv_cnt = 0; 7727 } 7728 tcp->tcp_rcv_last_tail = NULL; 7729 7730 if ((mp = tcp->tcp_urp_mp) != NULL) { 7731 freemsg(mp); 7732 tcp->tcp_urp_mp = NULL; 7733 } 7734 if ((mp = tcp->tcp_urp_mark_mp) != NULL) { 7735 freemsg(mp); 7736 tcp->tcp_urp_mark_mp = NULL; 7737 } 7738 if (tcp->tcp_fused_sigurg_mp != NULL) { 7739 freeb(tcp->tcp_fused_sigurg_mp); 7740 tcp->tcp_fused_sigurg_mp = NULL; 7741 } 7742 7743 /* 7744 * Following is a union with two members which are 7745 * identical types and size so the following cleanup 7746 * is enough. 7747 */ 7748 tcp_close_mpp(&tcp->tcp_conn.tcp_eager_conn_ind); 7749 7750 CL_INET_DISCONNECT(tcp); 7751 7752 /* 7753 * The connection can't be on the tcp_time_wait_head list 7754 * since it is not detached. 7755 */ 7756 ASSERT(tcp->tcp_time_wait_next == NULL); 7757 ASSERT(tcp->tcp_time_wait_prev == NULL); 7758 ASSERT(tcp->tcp_time_wait_expire == 0); 7759 7760 if (tcp->tcp_kssl_pending) { 7761 tcp->tcp_kssl_pending = B_FALSE; 7762 7763 /* Don't reset if the initialized by bind. */ 7764 if (tcp->tcp_kssl_ent != NULL) { 7765 kssl_release_ent(tcp->tcp_kssl_ent, NULL, 7766 KSSL_NO_PROXY); 7767 } 7768 } 7769 if (tcp->tcp_kssl_ctx != NULL) { 7770 kssl_release_ctx(tcp->tcp_kssl_ctx); 7771 tcp->tcp_kssl_ctx = NULL; 7772 } 7773 7774 /* 7775 * Reset/preserve other values 7776 */ 7777 tcp_reinit_values(tcp); 7778 ipcl_hash_remove(tcp->tcp_connp); 7779 conn_delete_ire(tcp->tcp_connp, NULL); 7780 7781 if (tcp->tcp_conn_req_max != 0) { 7782 /* 7783 * This is the case when a TLI program uses the same 7784 * transport end point to accept a connection. This 7785 * makes the TCP both a listener and acceptor. When 7786 * this connection is closed, we need to set the state 7787 * back to TCPS_LISTEN. Make sure that the eager list 7788 * is reinitialized. 7789 * 7790 * Note that this stream is still bound to the four 7791 * tuples of the previous connection in IP. If a new 7792 * SYN with different foreign address comes in, IP will 7793 * not find it and will send it to the global queue. In 7794 * the global queue, TCP will do a tcp_lookup_listener() 7795 * to find this stream. This works because this stream 7796 * is only removed from connected hash. 7797 * 7798 */ 7799 tcp->tcp_state = TCPS_LISTEN; 7800 tcp->tcp_eager_next_q0 = tcp->tcp_eager_prev_q0 = tcp; 7801 tcp->tcp_eager_next_drop_q0 = tcp; 7802 tcp->tcp_eager_prev_drop_q0 = tcp; 7803 tcp->tcp_connp->conn_recv = tcp_conn_request; 7804 if (tcp->tcp_family == AF_INET6) { 7805 ASSERT(tcp->tcp_connp->conn_af_isv6); 7806 (void) ipcl_bind_insert_v6(tcp->tcp_connp, IPPROTO_TCP, 7807 &tcp->tcp_ip6h->ip6_src, tcp->tcp_lport); 7808 } else { 7809 ASSERT(!tcp->tcp_connp->conn_af_isv6); 7810 (void) ipcl_bind_insert(tcp->tcp_connp, IPPROTO_TCP, 7811 tcp->tcp_ipha->ipha_src, tcp->tcp_lport); 7812 } 7813 } else { 7814 tcp->tcp_state = TCPS_BOUND; 7815 } 7816 7817 /* 7818 * Initialize to default values 7819 * Can't fail since enough header template space already allocated 7820 * at open(). 7821 */ 7822 err = tcp_init_values(tcp); 7823 ASSERT(err == 0); 7824 /* Restore state in tcp_tcph */ 7825 bcopy(&tcp->tcp_lport, tcp->tcp_tcph->th_lport, TCP_PORT_LEN); 7826 if (tcp->tcp_ipversion == IPV4_VERSION) 7827 tcp->tcp_ipha->ipha_src = tcp->tcp_bound_source; 7828 else 7829 tcp->tcp_ip6h->ip6_src = tcp->tcp_bound_source_v6; 7830 /* 7831 * Copy of the src addr. in tcp_t is needed in tcp_t 7832 * since the lookup funcs can only lookup on tcp_t 7833 */ 7834 tcp->tcp_ip_src_v6 = tcp->tcp_bound_source_v6; 7835 7836 ASSERT(tcp->tcp_ptpbhn != NULL); 7837 tcp->tcp_rq->q_hiwat = tcp_recv_hiwat; 7838 tcp->tcp_rwnd = tcp_recv_hiwat; 7839 tcp->tcp_mss = tcp->tcp_ipversion != IPV4_VERSION ? 7840 tcp_mss_def_ipv6 : tcp_mss_def_ipv4; 7841 } 7842 7843 /* 7844 * Force values to zero that need be zero. 7845 * Do not touch values asociated with the BOUND or LISTEN state 7846 * since the connection will end up in that state after the reinit. 7847 * NOTE: tcp_reinit_values MUST have a line for each field in the tcp_t 7848 * structure! 7849 */ 7850 static void 7851 tcp_reinit_values(tcp) 7852 tcp_t *tcp; 7853 { 7854 #ifndef lint 7855 #define DONTCARE(x) 7856 #define PRESERVE(x) 7857 #else 7858 #define DONTCARE(x) ((x) = (x)) 7859 #define PRESERVE(x) ((x) = (x)) 7860 #endif /* lint */ 7861 7862 PRESERVE(tcp->tcp_bind_hash); 7863 PRESERVE(tcp->tcp_ptpbhn); 7864 PRESERVE(tcp->tcp_acceptor_hash); 7865 PRESERVE(tcp->tcp_ptpahn); 7866 7867 /* Should be ASSERT NULL on these with new code! */ 7868 ASSERT(tcp->tcp_time_wait_next == NULL); 7869 ASSERT(tcp->tcp_time_wait_prev == NULL); 7870 ASSERT(tcp->tcp_time_wait_expire == 0); 7871 PRESERVE(tcp->tcp_state); 7872 PRESERVE(tcp->tcp_rq); 7873 PRESERVE(tcp->tcp_wq); 7874 7875 ASSERT(tcp->tcp_xmit_head == NULL); 7876 ASSERT(tcp->tcp_xmit_last == NULL); 7877 ASSERT(tcp->tcp_unsent == 0); 7878 ASSERT(tcp->tcp_xmit_tail == NULL); 7879 ASSERT(tcp->tcp_xmit_tail_unsent == 0); 7880 7881 tcp->tcp_snxt = 0; /* Displayed in mib */ 7882 tcp->tcp_suna = 0; /* Displayed in mib */ 7883 tcp->tcp_swnd = 0; 7884 DONTCARE(tcp->tcp_cwnd); /* Init in tcp_mss_set */ 7885 7886 ASSERT(tcp->tcp_ibsegs == 0); 7887 ASSERT(tcp->tcp_obsegs == 0); 7888 7889 if (tcp->tcp_iphc != NULL) { 7890 ASSERT(tcp->tcp_iphc_len >= TCP_MAX_COMBINED_HEADER_LENGTH); 7891 bzero(tcp->tcp_iphc, tcp->tcp_iphc_len); 7892 } 7893 7894 DONTCARE(tcp->tcp_naglim); /* Init in tcp_init_values */ 7895 DONTCARE(tcp->tcp_hdr_len); /* Init in tcp_init_values */ 7896 DONTCARE(tcp->tcp_ipha); 7897 DONTCARE(tcp->tcp_ip6h); 7898 DONTCARE(tcp->tcp_ip_hdr_len); 7899 DONTCARE(tcp->tcp_tcph); 7900 DONTCARE(tcp->tcp_tcp_hdr_len); /* Init in tcp_init_values */ 7901 tcp->tcp_valid_bits = 0; 7902 7903 DONTCARE(tcp->tcp_xmit_hiwater); /* Init in tcp_init_values */ 7904 DONTCARE(tcp->tcp_timer_backoff); /* Init in tcp_init_values */ 7905 DONTCARE(tcp->tcp_last_recv_time); /* Init in tcp_init_values */ 7906 tcp->tcp_last_rcv_lbolt = 0; 7907 7908 tcp->tcp_init_cwnd = 0; 7909 7910 tcp->tcp_urp_last_valid = 0; 7911 tcp->tcp_hard_binding = 0; 7912 tcp->tcp_hard_bound = 0; 7913 PRESERVE(tcp->tcp_cred); 7914 PRESERVE(tcp->tcp_cpid); 7915 PRESERVE(tcp->tcp_exclbind); 7916 7917 tcp->tcp_fin_acked = 0; 7918 tcp->tcp_fin_rcvd = 0; 7919 tcp->tcp_fin_sent = 0; 7920 tcp->tcp_ordrel_done = 0; 7921 7922 tcp->tcp_debug = 0; 7923 tcp->tcp_dontroute = 0; 7924 tcp->tcp_broadcast = 0; 7925 7926 tcp->tcp_useloopback = 0; 7927 tcp->tcp_reuseaddr = 0; 7928 tcp->tcp_oobinline = 0; 7929 tcp->tcp_dgram_errind = 0; 7930 7931 tcp->tcp_detached = 0; 7932 tcp->tcp_bind_pending = 0; 7933 tcp->tcp_unbind_pending = 0; 7934 tcp->tcp_deferred_clean_death = 0; 7935 7936 tcp->tcp_snd_ws_ok = B_FALSE; 7937 tcp->tcp_snd_ts_ok = B_FALSE; 7938 tcp->tcp_linger = 0; 7939 tcp->tcp_ka_enabled = 0; 7940 tcp->tcp_zero_win_probe = 0; 7941 7942 tcp->tcp_loopback = 0; 7943 tcp->tcp_localnet = 0; 7944 tcp->tcp_syn_defense = 0; 7945 tcp->tcp_set_timer = 0; 7946 7947 tcp->tcp_active_open = 0; 7948 ASSERT(tcp->tcp_timeout == B_FALSE); 7949 tcp->tcp_rexmit = B_FALSE; 7950 tcp->tcp_xmit_zc_clean = B_FALSE; 7951 7952 tcp->tcp_snd_sack_ok = B_FALSE; 7953 PRESERVE(tcp->tcp_recvdstaddr); 7954 tcp->tcp_hwcksum = B_FALSE; 7955 7956 tcp->tcp_ire_ill_check_done = B_FALSE; 7957 DONTCARE(tcp->tcp_maxpsz); /* Init in tcp_init_values */ 7958 7959 tcp->tcp_mdt = B_FALSE; 7960 tcp->tcp_mdt_hdr_head = 0; 7961 tcp->tcp_mdt_hdr_tail = 0; 7962 7963 tcp->tcp_conn_def_q0 = 0; 7964 tcp->tcp_ip_forward_progress = B_FALSE; 7965 tcp->tcp_anon_priv_bind = 0; 7966 tcp->tcp_ecn_ok = B_FALSE; 7967 7968 tcp->tcp_cwr = B_FALSE; 7969 tcp->tcp_ecn_echo_on = B_FALSE; 7970 7971 if (tcp->tcp_sack_info != NULL) { 7972 if (tcp->tcp_notsack_list != NULL) { 7973 TCP_NOTSACK_REMOVE_ALL(tcp->tcp_notsack_list); 7974 } 7975 kmem_cache_free(tcp_sack_info_cache, tcp->tcp_sack_info); 7976 tcp->tcp_sack_info = NULL; 7977 } 7978 7979 tcp->tcp_rcv_ws = 0; 7980 tcp->tcp_snd_ws = 0; 7981 tcp->tcp_ts_recent = 0; 7982 tcp->tcp_rnxt = 0; /* Displayed in mib */ 7983 DONTCARE(tcp->tcp_rwnd); /* Set in tcp_reinit() */ 7984 tcp->tcp_if_mtu = 0; 7985 7986 ASSERT(tcp->tcp_reass_head == NULL); 7987 ASSERT(tcp->tcp_reass_tail == NULL); 7988 7989 tcp->tcp_cwnd_cnt = 0; 7990 7991 ASSERT(tcp->tcp_rcv_list == NULL); 7992 ASSERT(tcp->tcp_rcv_last_head == NULL); 7993 ASSERT(tcp->tcp_rcv_last_tail == NULL); 7994 ASSERT(tcp->tcp_rcv_cnt == 0); 7995 7996 DONTCARE(tcp->tcp_cwnd_ssthresh); /* Init in tcp_adapt_ire */ 7997 DONTCARE(tcp->tcp_cwnd_max); /* Init in tcp_init_values */ 7998 tcp->tcp_csuna = 0; 7999 8000 tcp->tcp_rto = 0; /* Displayed in MIB */ 8001 DONTCARE(tcp->tcp_rtt_sa); /* Init in tcp_init_values */ 8002 DONTCARE(tcp->tcp_rtt_sd); /* Init in tcp_init_values */ 8003 tcp->tcp_rtt_update = 0; 8004 8005 DONTCARE(tcp->tcp_swl1); /* Init in case TCPS_LISTEN/TCPS_SYN_SENT */ 8006 DONTCARE(tcp->tcp_swl2); /* Init in case TCPS_LISTEN/TCPS_SYN_SENT */ 8007 8008 tcp->tcp_rack = 0; /* Displayed in mib */ 8009 tcp->tcp_rack_cnt = 0; 8010 tcp->tcp_rack_cur_max = 0; 8011 tcp->tcp_rack_abs_max = 0; 8012 8013 tcp->tcp_max_swnd = 0; 8014 8015 ASSERT(tcp->tcp_listener == NULL); 8016 8017 DONTCARE(tcp->tcp_xmit_lowater); /* Init in tcp_init_values */ 8018 8019 DONTCARE(tcp->tcp_irs); /* tcp_valid_bits cleared */ 8020 DONTCARE(tcp->tcp_iss); /* tcp_valid_bits cleared */ 8021 DONTCARE(tcp->tcp_fss); /* tcp_valid_bits cleared */ 8022 DONTCARE(tcp->tcp_urg); /* tcp_valid_bits cleared */ 8023 8024 ASSERT(tcp->tcp_conn_req_cnt_q == 0); 8025 ASSERT(tcp->tcp_conn_req_cnt_q0 == 0); 8026 PRESERVE(tcp->tcp_conn_req_max); 8027 PRESERVE(tcp->tcp_conn_req_seqnum); 8028 8029 DONTCARE(tcp->tcp_ip_hdr_len); /* Init in tcp_init_values */ 8030 DONTCARE(tcp->tcp_first_timer_threshold); /* Init in tcp_init_values */ 8031 DONTCARE(tcp->tcp_second_timer_threshold); /* Init in tcp_init_values */ 8032 DONTCARE(tcp->tcp_first_ctimer_threshold); /* Init in tcp_init_values */ 8033 DONTCARE(tcp->tcp_second_ctimer_threshold); /* in tcp_init_values */ 8034 8035 tcp->tcp_lingertime = 0; 8036 8037 DONTCARE(tcp->tcp_urp_last); /* tcp_urp_last_valid is cleared */ 8038 ASSERT(tcp->tcp_urp_mp == NULL); 8039 ASSERT(tcp->tcp_urp_mark_mp == NULL); 8040 ASSERT(tcp->tcp_fused_sigurg_mp == NULL); 8041 8042 ASSERT(tcp->tcp_eager_next_q == NULL); 8043 ASSERT(tcp->tcp_eager_last_q == NULL); 8044 ASSERT((tcp->tcp_eager_next_q0 == NULL && 8045 tcp->tcp_eager_prev_q0 == NULL) || 8046 tcp->tcp_eager_next_q0 == tcp->tcp_eager_prev_q0); 8047 ASSERT(tcp->tcp_conn.tcp_eager_conn_ind == NULL); 8048 8049 ASSERT((tcp->tcp_eager_next_drop_q0 == NULL && 8050 tcp->tcp_eager_prev_drop_q0 == NULL) || 8051 tcp->tcp_eager_next_drop_q0 == tcp->tcp_eager_prev_drop_q0); 8052 8053 tcp->tcp_client_errno = 0; 8054 8055 DONTCARE(tcp->tcp_sum); /* Init in tcp_init_values */ 8056 8057 tcp->tcp_remote_v6 = ipv6_all_zeros; /* Displayed in MIB */ 8058 8059 PRESERVE(tcp->tcp_bound_source_v6); 8060 tcp->tcp_last_sent_len = 0; 8061 tcp->tcp_dupack_cnt = 0; 8062 8063 tcp->tcp_fport = 0; /* Displayed in MIB */ 8064 PRESERVE(tcp->tcp_lport); 8065 8066 PRESERVE(tcp->tcp_acceptor_lockp); 8067 8068 ASSERT(tcp->tcp_ordrelid == 0); 8069 PRESERVE(tcp->tcp_acceptor_id); 8070 DONTCARE(tcp->tcp_ipsec_overhead); 8071 8072 /* 8073 * If tcp_tracing flag is ON (i.e. We have a trace buffer 8074 * in tcp structure and now tracing), Re-initialize all 8075 * members of tcp_traceinfo. 8076 */ 8077 if (tcp->tcp_tracebuf != NULL) { 8078 bzero(tcp->tcp_tracebuf, sizeof (tcptrch_t)); 8079 } 8080 8081 PRESERVE(tcp->tcp_family); 8082 if (tcp->tcp_family == AF_INET6) { 8083 tcp->tcp_ipversion = IPV6_VERSION; 8084 tcp->tcp_mss = tcp_mss_def_ipv6; 8085 } else { 8086 tcp->tcp_ipversion = IPV4_VERSION; 8087 tcp->tcp_mss = tcp_mss_def_ipv4; 8088 } 8089 8090 tcp->tcp_bound_if = 0; 8091 tcp->tcp_ipv6_recvancillary = 0; 8092 tcp->tcp_recvifindex = 0; 8093 tcp->tcp_recvhops = 0; 8094 tcp->tcp_closed = 0; 8095 tcp->tcp_cleandeathtag = 0; 8096 if (tcp->tcp_hopopts != NULL) { 8097 mi_free(tcp->tcp_hopopts); 8098 tcp->tcp_hopopts = NULL; 8099 tcp->tcp_hopoptslen = 0; 8100 } 8101 ASSERT(tcp->tcp_hopoptslen == 0); 8102 if (tcp->tcp_dstopts != NULL) { 8103 mi_free(tcp->tcp_dstopts); 8104 tcp->tcp_dstopts = NULL; 8105 tcp->tcp_dstoptslen = 0; 8106 } 8107 ASSERT(tcp->tcp_dstoptslen == 0); 8108 if (tcp->tcp_rtdstopts != NULL) { 8109 mi_free(tcp->tcp_rtdstopts); 8110 tcp->tcp_rtdstopts = NULL; 8111 tcp->tcp_rtdstoptslen = 0; 8112 } 8113 ASSERT(tcp->tcp_rtdstoptslen == 0); 8114 if (tcp->tcp_rthdr != NULL) { 8115 mi_free(tcp->tcp_rthdr); 8116 tcp->tcp_rthdr = NULL; 8117 tcp->tcp_rthdrlen = 0; 8118 } 8119 ASSERT(tcp->tcp_rthdrlen == 0); 8120 PRESERVE(tcp->tcp_drop_opt_ack_cnt); 8121 8122 /* Reset fusion-related fields */ 8123 tcp->tcp_fused = B_FALSE; 8124 tcp->tcp_unfusable = B_FALSE; 8125 tcp->tcp_fused_sigurg = B_FALSE; 8126 tcp->tcp_direct_sockfs = B_FALSE; 8127 tcp->tcp_fuse_syncstr_stopped = B_FALSE; 8128 tcp->tcp_fuse_syncstr_plugged = B_FALSE; 8129 tcp->tcp_loopback_peer = NULL; 8130 tcp->tcp_fuse_rcv_hiwater = 0; 8131 tcp->tcp_fuse_rcv_unread_hiwater = 0; 8132 tcp->tcp_fuse_rcv_unread_cnt = 0; 8133 8134 tcp->tcp_lso = B_FALSE; 8135 8136 tcp->tcp_in_ack_unsent = 0; 8137 tcp->tcp_cork = B_FALSE; 8138 tcp->tcp_tconnind_started = B_FALSE; 8139 8140 PRESERVE(tcp->tcp_squeue_bytes); 8141 8142 ASSERT(tcp->tcp_kssl_ctx == NULL); 8143 ASSERT(!tcp->tcp_kssl_pending); 8144 PRESERVE(tcp->tcp_kssl_ent); 8145 8146 tcp->tcp_closemp_used = 0; 8147 8148 #ifdef DEBUG 8149 DONTCARE(tcp->tcmp_stk[0]); 8150 #endif 8151 8152 8153 #undef DONTCARE 8154 #undef PRESERVE 8155 } 8156 8157 /* 8158 * Allocate necessary resources and initialize state vector. 8159 * Guaranteed not to fail so that when an error is returned, 8160 * the caller doesn't need to do any additional cleanup. 8161 */ 8162 int 8163 tcp_init(tcp_t *tcp, queue_t *q) 8164 { 8165 int err; 8166 8167 tcp->tcp_rq = q; 8168 tcp->tcp_wq = WR(q); 8169 tcp->tcp_state = TCPS_IDLE; 8170 if ((err = tcp_init_values(tcp)) != 0) 8171 tcp_timers_stop(tcp); 8172 return (err); 8173 } 8174 8175 static int 8176 tcp_init_values(tcp_t *tcp) 8177 { 8178 int err; 8179 8180 ASSERT((tcp->tcp_family == AF_INET && 8181 tcp->tcp_ipversion == IPV4_VERSION) || 8182 (tcp->tcp_family == AF_INET6 && 8183 (tcp->tcp_ipversion == IPV4_VERSION || 8184 tcp->tcp_ipversion == IPV6_VERSION))); 8185 8186 /* 8187 * Initialize tcp_rtt_sa and tcp_rtt_sd so that the calculated RTO 8188 * will be close to tcp_rexmit_interval_initial. By doing this, we 8189 * allow the algorithm to adjust slowly to large fluctuations of RTT 8190 * during first few transmissions of a connection as seen in slow 8191 * links. 8192 */ 8193 tcp->tcp_rtt_sa = tcp_rexmit_interval_initial << 2; 8194 tcp->tcp_rtt_sd = tcp_rexmit_interval_initial >> 1; 8195 tcp->tcp_rto = (tcp->tcp_rtt_sa >> 3) + tcp->tcp_rtt_sd + 8196 tcp_rexmit_interval_extra + (tcp->tcp_rtt_sa >> 5) + 8197 tcp_conn_grace_period; 8198 if (tcp->tcp_rto < tcp_rexmit_interval_min) 8199 tcp->tcp_rto = tcp_rexmit_interval_min; 8200 tcp->tcp_timer_backoff = 0; 8201 tcp->tcp_ms_we_have_waited = 0; 8202 tcp->tcp_last_recv_time = lbolt; 8203 tcp->tcp_cwnd_max = tcp_cwnd_max_; 8204 tcp->tcp_cwnd_ssthresh = TCP_MAX_LARGEWIN; 8205 tcp->tcp_snd_burst = TCP_CWND_INFINITE; 8206 8207 tcp->tcp_maxpsz = tcp_maxpsz_multiplier; 8208 8209 tcp->tcp_first_timer_threshold = tcp_ip_notify_interval; 8210 tcp->tcp_first_ctimer_threshold = tcp_ip_notify_cinterval; 8211 tcp->tcp_second_timer_threshold = tcp_ip_abort_interval; 8212 /* 8213 * Fix it to tcp_ip_abort_linterval later if it turns out to be a 8214 * passive open. 8215 */ 8216 tcp->tcp_second_ctimer_threshold = tcp_ip_abort_cinterval; 8217 8218 tcp->tcp_naglim = tcp_naglim_def; 8219 8220 /* NOTE: ISS is now set in tcp_adapt_ire(). */ 8221 8222 tcp->tcp_mdt_hdr_head = 0; 8223 tcp->tcp_mdt_hdr_tail = 0; 8224 8225 /* Reset fusion-related fields */ 8226 tcp->tcp_fused = B_FALSE; 8227 tcp->tcp_unfusable = B_FALSE; 8228 tcp->tcp_fused_sigurg = B_FALSE; 8229 tcp->tcp_direct_sockfs = B_FALSE; 8230 tcp->tcp_fuse_syncstr_stopped = B_FALSE; 8231 tcp->tcp_fuse_syncstr_plugged = B_FALSE; 8232 tcp->tcp_loopback_peer = NULL; 8233 tcp->tcp_fuse_rcv_hiwater = 0; 8234 tcp->tcp_fuse_rcv_unread_hiwater = 0; 8235 tcp->tcp_fuse_rcv_unread_cnt = 0; 8236 8237 /* Initialize the header template */ 8238 if (tcp->tcp_ipversion == IPV4_VERSION) { 8239 err = tcp_header_init_ipv4(tcp); 8240 } else { 8241 err = tcp_header_init_ipv6(tcp); 8242 } 8243 if (err) 8244 return (err); 8245 8246 /* 8247 * Init the window scale to the max so tcp_rwnd_set() won't pare 8248 * down tcp_rwnd. tcp_adapt_ire() will set the right value later. 8249 */ 8250 tcp->tcp_rcv_ws = TCP_MAX_WINSHIFT; 8251 tcp->tcp_xmit_lowater = tcp_xmit_lowat; 8252 tcp->tcp_xmit_hiwater = tcp_xmit_hiwat; 8253 8254 tcp->tcp_cork = B_FALSE; 8255 /* 8256 * Init the tcp_debug option. This value determines whether TCP 8257 * calls strlog() to print out debug messages. Doing this 8258 * initialization here means that this value is not inherited thru 8259 * tcp_reinit(). 8260 */ 8261 tcp->tcp_debug = tcp_dbg; 8262 8263 tcp->tcp_ka_interval = tcp_keepalive_interval; 8264 tcp->tcp_ka_abort_thres = tcp_keepalive_abort_interval; 8265 8266 return (0); 8267 } 8268 8269 /* 8270 * Initialize the IPv4 header. Loses any record of any IP options. 8271 */ 8272 static int 8273 tcp_header_init_ipv4(tcp_t *tcp) 8274 { 8275 tcph_t *tcph; 8276 uint32_t sum; 8277 conn_t *connp; 8278 8279 /* 8280 * This is a simple initialization. If there's 8281 * already a template, it should never be too small, 8282 * so reuse it. Otherwise, allocate space for the new one. 8283 */ 8284 if (tcp->tcp_iphc == NULL) { 8285 ASSERT(tcp->tcp_iphc_len == 0); 8286 tcp->tcp_iphc_len = TCP_MAX_COMBINED_HEADER_LENGTH; 8287 tcp->tcp_iphc = kmem_cache_alloc(tcp_iphc_cache, KM_NOSLEEP); 8288 if (tcp->tcp_iphc == NULL) { 8289 tcp->tcp_iphc_len = 0; 8290 return (ENOMEM); 8291 } 8292 } 8293 8294 /* options are gone; may need a new label */ 8295 connp = tcp->tcp_connp; 8296 connp->conn_mlp_type = mlptSingle; 8297 connp->conn_ulp_labeled = !is_system_labeled(); 8298 ASSERT(tcp->tcp_iphc_len >= TCP_MAX_COMBINED_HEADER_LENGTH); 8299 tcp->tcp_ipha = (ipha_t *)tcp->tcp_iphc; 8300 tcp->tcp_ip6h = NULL; 8301 tcp->tcp_ipversion = IPV4_VERSION; 8302 tcp->tcp_hdr_len = sizeof (ipha_t) + sizeof (tcph_t); 8303 tcp->tcp_tcp_hdr_len = sizeof (tcph_t); 8304 tcp->tcp_ip_hdr_len = sizeof (ipha_t); 8305 tcp->tcp_ipha->ipha_length = htons(sizeof (ipha_t) + sizeof (tcph_t)); 8306 tcp->tcp_ipha->ipha_version_and_hdr_length 8307 = (IP_VERSION << 4) | IP_SIMPLE_HDR_LENGTH_IN_WORDS; 8308 tcp->tcp_ipha->ipha_ident = 0; 8309 8310 tcp->tcp_ttl = (uchar_t)tcp_ipv4_ttl; 8311 tcp->tcp_tos = 0; 8312 tcp->tcp_ipha->ipha_fragment_offset_and_flags = 0; 8313 tcp->tcp_ipha->ipha_ttl = (uchar_t)tcp_ipv4_ttl; 8314 tcp->tcp_ipha->ipha_protocol = IPPROTO_TCP; 8315 8316 tcph = (tcph_t *)(tcp->tcp_iphc + sizeof (ipha_t)); 8317 tcp->tcp_tcph = tcph; 8318 tcph->th_offset_and_rsrvd[0] = (5 << 4); 8319 /* 8320 * IP wants our header length in the checksum field to 8321 * allow it to perform a single pseudo-header+checksum 8322 * calculation on behalf of TCP. 8323 * Include the adjustment for a source route once IP_OPTIONS is set. 8324 */ 8325 sum = sizeof (tcph_t) + tcp->tcp_sum; 8326 sum = (sum >> 16) + (sum & 0xFFFF); 8327 U16_TO_ABE16(sum, tcph->th_sum); 8328 return (0); 8329 } 8330 8331 /* 8332 * Initialize the IPv6 header. Loses any record of any IPv6 extension headers. 8333 */ 8334 static int 8335 tcp_header_init_ipv6(tcp_t *tcp) 8336 { 8337 tcph_t *tcph; 8338 uint32_t sum; 8339 conn_t *connp; 8340 8341 /* 8342 * This is a simple initialization. If there's 8343 * already a template, it should never be too small, 8344 * so reuse it. Otherwise, allocate space for the new one. 8345 * Ensure that there is enough space to "downgrade" the tcp_t 8346 * to an IPv4 tcp_t. This requires having space for a full load 8347 * of IPv4 options, as well as a full load of TCP options 8348 * (TCP_MAX_COMBINED_HEADER_LENGTH, 120 bytes); this is more space 8349 * than a v6 header and a TCP header with a full load of TCP options 8350 * (IPV6_HDR_LEN is 40 bytes; TCP_MAX_HDR_LENGTH is 60 bytes). 8351 * We want to avoid reallocation in the "downgraded" case when 8352 * processing outbound IPv4 options. 8353 */ 8354 if (tcp->tcp_iphc == NULL) { 8355 ASSERT(tcp->tcp_iphc_len == 0); 8356 tcp->tcp_iphc_len = TCP_MAX_COMBINED_HEADER_LENGTH; 8357 tcp->tcp_iphc = kmem_cache_alloc(tcp_iphc_cache, KM_NOSLEEP); 8358 if (tcp->tcp_iphc == NULL) { 8359 tcp->tcp_iphc_len = 0; 8360 return (ENOMEM); 8361 } 8362 } 8363 8364 /* options are gone; may need a new label */ 8365 connp = tcp->tcp_connp; 8366 connp->conn_mlp_type = mlptSingle; 8367 connp->conn_ulp_labeled = !is_system_labeled(); 8368 8369 ASSERT(tcp->tcp_iphc_len >= TCP_MAX_COMBINED_HEADER_LENGTH); 8370 tcp->tcp_ipversion = IPV6_VERSION; 8371 tcp->tcp_hdr_len = IPV6_HDR_LEN + sizeof (tcph_t); 8372 tcp->tcp_tcp_hdr_len = sizeof (tcph_t); 8373 tcp->tcp_ip_hdr_len = IPV6_HDR_LEN; 8374 tcp->tcp_ip6h = (ip6_t *)tcp->tcp_iphc; 8375 tcp->tcp_ipha = NULL; 8376 8377 /* Initialize the header template */ 8378 8379 tcp->tcp_ip6h->ip6_vcf = IPV6_DEFAULT_VERS_AND_FLOW; 8380 tcp->tcp_ip6h->ip6_plen = ntohs(sizeof (tcph_t)); 8381 tcp->tcp_ip6h->ip6_nxt = IPPROTO_TCP; 8382 tcp->tcp_ip6h->ip6_hops = (uint8_t)tcp_ipv6_hoplimit; 8383 8384 tcph = (tcph_t *)(tcp->tcp_iphc + IPV6_HDR_LEN); 8385 tcp->tcp_tcph = tcph; 8386 tcph->th_offset_and_rsrvd[0] = (5 << 4); 8387 /* 8388 * IP wants our header length in the checksum field to 8389 * allow it to perform a single psuedo-header+checksum 8390 * calculation on behalf of TCP. 8391 * Include the adjustment for a source route when IPV6_RTHDR is set. 8392 */ 8393 sum = sizeof (tcph_t) + tcp->tcp_sum; 8394 sum = (sum >> 16) + (sum & 0xFFFF); 8395 U16_TO_ABE16(sum, tcph->th_sum); 8396 return (0); 8397 } 8398 8399 /* At minimum we need 8 bytes in the TCP header for the lookup */ 8400 #define ICMP_MIN_TCP_HDR 8 8401 8402 /* 8403 * tcp_icmp_error is called by tcp_rput_other to process ICMP error messages 8404 * passed up by IP. The message is always received on the correct tcp_t. 8405 * Assumes that IP has pulled up everything up to and including the ICMP header. 8406 */ 8407 void 8408 tcp_icmp_error(tcp_t *tcp, mblk_t *mp) 8409 { 8410 icmph_t *icmph; 8411 ipha_t *ipha; 8412 int iph_hdr_length; 8413 tcph_t *tcph; 8414 boolean_t ipsec_mctl = B_FALSE; 8415 boolean_t secure; 8416 mblk_t *first_mp = mp; 8417 uint32_t new_mss; 8418 uint32_t ratio; 8419 size_t mp_size = MBLKL(mp); 8420 uint32_t seg_seq; 8421 8422 /* Assume IP provides aligned packets - otherwise toss */ 8423 if (!OK_32PTR(mp->b_rptr)) { 8424 freemsg(mp); 8425 return; 8426 } 8427 8428 /* 8429 * Since ICMP errors are normal data marked with M_CTL when sent 8430 * to TCP or UDP, we have to look for a IPSEC_IN value to identify 8431 * packets starting with an ipsec_info_t, see ipsec_info.h. 8432 */ 8433 if ((mp_size == sizeof (ipsec_info_t)) && 8434 (((ipsec_info_t *)mp->b_rptr)->ipsec_info_type == IPSEC_IN)) { 8435 ASSERT(mp->b_cont != NULL); 8436 mp = mp->b_cont; 8437 /* IP should have done this */ 8438 ASSERT(OK_32PTR(mp->b_rptr)); 8439 mp_size = MBLKL(mp); 8440 ipsec_mctl = B_TRUE; 8441 } 8442 8443 /* 8444 * Verify that we have a complete outer IP header. If not, drop it. 8445 */ 8446 if (mp_size < sizeof (ipha_t)) { 8447 noticmpv4: 8448 freemsg(first_mp); 8449 return; 8450 } 8451 8452 ipha = (ipha_t *)mp->b_rptr; 8453 /* 8454 * Verify IP version. Anything other than IPv4 or IPv6 packet is sent 8455 * upstream. ICMPv6 is handled in tcp_icmp_error_ipv6. 8456 */ 8457 switch (IPH_HDR_VERSION(ipha)) { 8458 case IPV6_VERSION: 8459 tcp_icmp_error_ipv6(tcp, first_mp, ipsec_mctl); 8460 return; 8461 case IPV4_VERSION: 8462 break; 8463 default: 8464 goto noticmpv4; 8465 } 8466 8467 /* Skip past the outer IP and ICMP headers */ 8468 iph_hdr_length = IPH_HDR_LENGTH(ipha); 8469 icmph = (icmph_t *)&mp->b_rptr[iph_hdr_length]; 8470 /* 8471 * If we don't have the correct outer IP header length or if the ULP 8472 * is not IPPROTO_ICMP or if we don't have a complete inner IP header 8473 * send it upstream. 8474 */ 8475 if (iph_hdr_length < sizeof (ipha_t) || 8476 ipha->ipha_protocol != IPPROTO_ICMP || 8477 (ipha_t *)&icmph[1] + 1 > (ipha_t *)mp->b_wptr) { 8478 goto noticmpv4; 8479 } 8480 ipha = (ipha_t *)&icmph[1]; 8481 8482 /* Skip past the inner IP and find the ULP header */ 8483 iph_hdr_length = IPH_HDR_LENGTH(ipha); 8484 tcph = (tcph_t *)((char *)ipha + iph_hdr_length); 8485 /* 8486 * If we don't have the correct inner IP header length or if the ULP 8487 * is not IPPROTO_TCP or if we don't have at least ICMP_MIN_TCP_HDR 8488 * bytes of TCP header, drop it. 8489 */ 8490 if (iph_hdr_length < sizeof (ipha_t) || 8491 ipha->ipha_protocol != IPPROTO_TCP || 8492 (uchar_t *)tcph + ICMP_MIN_TCP_HDR > mp->b_wptr) { 8493 goto noticmpv4; 8494 } 8495 8496 if (TCP_IS_DETACHED_NONEAGER(tcp)) { 8497 if (ipsec_mctl) { 8498 secure = ipsec_in_is_secure(first_mp); 8499 } else { 8500 secure = B_FALSE; 8501 } 8502 if (secure) { 8503 /* 8504 * If we are willing to accept this in clear 8505 * we don't have to verify policy. 8506 */ 8507 if (!ipsec_inbound_accept_clear(mp, ipha, NULL)) { 8508 if (!tcp_check_policy(tcp, first_mp, 8509 ipha, NULL, secure, ipsec_mctl)) { 8510 /* 8511 * tcp_check_policy called 8512 * ip_drop_packet() on failure. 8513 */ 8514 return; 8515 } 8516 } 8517 } 8518 } else if (ipsec_mctl) { 8519 /* 8520 * This is a hard_bound connection. IP has already 8521 * verified policy. We don't have to do it again. 8522 */ 8523 freeb(first_mp); 8524 first_mp = mp; 8525 ipsec_mctl = B_FALSE; 8526 } 8527 8528 seg_seq = ABE32_TO_U32(tcph->th_seq); 8529 /* 8530 * TCP SHOULD check that the TCP sequence number contained in 8531 * payload of the ICMP error message is within the range 8532 * SND.UNA <= SEG.SEQ < SND.NXT. 8533 */ 8534 if (SEQ_LT(seg_seq, tcp->tcp_suna) || SEQ_GEQ(seg_seq, tcp->tcp_snxt)) { 8535 /* 8536 * If the ICMP message is bogus, should we kill the 8537 * connection, or should we just drop the bogus ICMP 8538 * message? It would probably make more sense to just 8539 * drop the message so that if this one managed to get 8540 * in, the real connection should not suffer. 8541 */ 8542 goto noticmpv4; 8543 } 8544 8545 switch (icmph->icmph_type) { 8546 case ICMP_DEST_UNREACHABLE: 8547 switch (icmph->icmph_code) { 8548 case ICMP_FRAGMENTATION_NEEDED: 8549 /* 8550 * Reduce the MSS based on the new MTU. This will 8551 * eliminate any fragmentation locally. 8552 * N.B. There may well be some funny side-effects on 8553 * the local send policy and the remote receive policy. 8554 * Pending further research, we provide 8555 * tcp_ignore_path_mtu just in case this proves 8556 * disastrous somewhere. 8557 * 8558 * After updating the MSS, retransmit part of the 8559 * dropped segment using the new mss by calling 8560 * tcp_wput_data(). Need to adjust all those 8561 * params to make sure tcp_wput_data() work properly. 8562 */ 8563 if (tcp_ignore_path_mtu) 8564 break; 8565 8566 /* 8567 * Decrease the MSS by time stamp options 8568 * IP options and IPSEC options. tcp_hdr_len 8569 * includes time stamp option and IP option 8570 * length. 8571 */ 8572 8573 new_mss = ntohs(icmph->icmph_du_mtu) - 8574 tcp->tcp_hdr_len - tcp->tcp_ipsec_overhead; 8575 8576 /* 8577 * Only update the MSS if the new one is 8578 * smaller than the previous one. This is 8579 * to avoid problems when getting multiple 8580 * ICMP errors for the same MTU. 8581 */ 8582 if (new_mss >= tcp->tcp_mss) 8583 break; 8584 8585 /* 8586 * Stop doing PMTU if new_mss is less than 68 8587 * or less than tcp_mss_min. 8588 * The value 68 comes from rfc 1191. 8589 */ 8590 if (new_mss < MAX(68, tcp_mss_min)) 8591 tcp->tcp_ipha->ipha_fragment_offset_and_flags = 8592 0; 8593 8594 ratio = tcp->tcp_cwnd / tcp->tcp_mss; 8595 ASSERT(ratio >= 1); 8596 tcp_mss_set(tcp, new_mss); 8597 8598 /* 8599 * Make sure we have something to 8600 * send. 8601 */ 8602 if (SEQ_LT(tcp->tcp_suna, tcp->tcp_snxt) && 8603 (tcp->tcp_xmit_head != NULL)) { 8604 /* 8605 * Shrink tcp_cwnd in 8606 * proportion to the old MSS/new MSS. 8607 */ 8608 tcp->tcp_cwnd = ratio * tcp->tcp_mss; 8609 if ((tcp->tcp_valid_bits & TCP_FSS_VALID) && 8610 (tcp->tcp_unsent == 0)) { 8611 tcp->tcp_rexmit_max = tcp->tcp_fss; 8612 } else { 8613 tcp->tcp_rexmit_max = tcp->tcp_snxt; 8614 } 8615 tcp->tcp_rexmit_nxt = tcp->tcp_suna; 8616 tcp->tcp_rexmit = B_TRUE; 8617 tcp->tcp_dupack_cnt = 0; 8618 tcp->tcp_snd_burst = TCP_CWND_SS; 8619 tcp_ss_rexmit(tcp); 8620 } 8621 break; 8622 case ICMP_PORT_UNREACHABLE: 8623 case ICMP_PROTOCOL_UNREACHABLE: 8624 switch (tcp->tcp_state) { 8625 case TCPS_SYN_SENT: 8626 case TCPS_SYN_RCVD: 8627 /* 8628 * ICMP can snipe away incipient 8629 * TCP connections as long as 8630 * seq number is same as initial 8631 * send seq number. 8632 */ 8633 if (seg_seq == tcp->tcp_iss) { 8634 (void) tcp_clean_death(tcp, 8635 ECONNREFUSED, 6); 8636 } 8637 break; 8638 } 8639 break; 8640 case ICMP_HOST_UNREACHABLE: 8641 case ICMP_NET_UNREACHABLE: 8642 /* Record the error in case we finally time out. */ 8643 if (icmph->icmph_code == ICMP_HOST_UNREACHABLE) 8644 tcp->tcp_client_errno = EHOSTUNREACH; 8645 else 8646 tcp->tcp_client_errno = ENETUNREACH; 8647 if (tcp->tcp_state == TCPS_SYN_RCVD) { 8648 if (tcp->tcp_listener != NULL && 8649 tcp->tcp_listener->tcp_syn_defense) { 8650 /* 8651 * Ditch the half-open connection if we 8652 * suspect a SYN attack is under way. 8653 */ 8654 tcp_ip_ire_mark_advice(tcp); 8655 (void) tcp_clean_death(tcp, 8656 tcp->tcp_client_errno, 7); 8657 } 8658 } 8659 break; 8660 default: 8661 break; 8662 } 8663 break; 8664 case ICMP_SOURCE_QUENCH: { 8665 /* 8666 * use a global boolean to control 8667 * whether TCP should respond to ICMP_SOURCE_QUENCH. 8668 * The default is false. 8669 */ 8670 if (tcp_icmp_source_quench) { 8671 /* 8672 * Reduce the sending rate as if we got a 8673 * retransmit timeout 8674 */ 8675 uint32_t npkt; 8676 8677 npkt = ((tcp->tcp_snxt - tcp->tcp_suna) >> 1) / 8678 tcp->tcp_mss; 8679 tcp->tcp_cwnd_ssthresh = MAX(npkt, 2) * tcp->tcp_mss; 8680 tcp->tcp_cwnd = tcp->tcp_mss; 8681 tcp->tcp_cwnd_cnt = 0; 8682 } 8683 break; 8684 } 8685 } 8686 freemsg(first_mp); 8687 } 8688 8689 /* 8690 * tcp_icmp_error_ipv6 is called by tcp_rput_other to process ICMPv6 8691 * error messages passed up by IP. 8692 * Assumes that IP has pulled up all the extension headers as well 8693 * as the ICMPv6 header. 8694 */ 8695 static void 8696 tcp_icmp_error_ipv6(tcp_t *tcp, mblk_t *mp, boolean_t ipsec_mctl) 8697 { 8698 icmp6_t *icmp6; 8699 ip6_t *ip6h; 8700 uint16_t iph_hdr_length; 8701 tcpha_t *tcpha; 8702 uint8_t *nexthdrp; 8703 uint32_t new_mss; 8704 uint32_t ratio; 8705 boolean_t secure; 8706 mblk_t *first_mp = mp; 8707 size_t mp_size; 8708 uint32_t seg_seq; 8709 8710 /* 8711 * The caller has determined if this is an IPSEC_IN packet and 8712 * set ipsec_mctl appropriately (see tcp_icmp_error). 8713 */ 8714 if (ipsec_mctl) 8715 mp = mp->b_cont; 8716 8717 mp_size = MBLKL(mp); 8718 8719 /* 8720 * Verify that we have a complete IP header. If not, send it upstream. 8721 */ 8722 if (mp_size < sizeof (ip6_t)) { 8723 noticmpv6: 8724 freemsg(first_mp); 8725 return; 8726 } 8727 8728 /* 8729 * Verify this is an ICMPV6 packet, else send it upstream. 8730 */ 8731 ip6h = (ip6_t *)mp->b_rptr; 8732 if (ip6h->ip6_nxt == IPPROTO_ICMPV6) { 8733 iph_hdr_length = IPV6_HDR_LEN; 8734 } else if (!ip_hdr_length_nexthdr_v6(mp, ip6h, &iph_hdr_length, 8735 &nexthdrp) || 8736 *nexthdrp != IPPROTO_ICMPV6) { 8737 goto noticmpv6; 8738 } 8739 icmp6 = (icmp6_t *)&mp->b_rptr[iph_hdr_length]; 8740 ip6h = (ip6_t *)&icmp6[1]; 8741 /* 8742 * Verify if we have a complete ICMP and inner IP header. 8743 */ 8744 if ((uchar_t *)&ip6h[1] > mp->b_wptr) 8745 goto noticmpv6; 8746 8747 if (!ip_hdr_length_nexthdr_v6(mp, ip6h, &iph_hdr_length, &nexthdrp)) 8748 goto noticmpv6; 8749 tcpha = (tcpha_t *)((char *)ip6h + iph_hdr_length); 8750 /* 8751 * Validate inner header. If the ULP is not IPPROTO_TCP or if we don't 8752 * have at least ICMP_MIN_TCP_HDR bytes of TCP header drop the 8753 * packet. 8754 */ 8755 if ((*nexthdrp != IPPROTO_TCP) || 8756 ((uchar_t *)tcpha + ICMP_MIN_TCP_HDR) > mp->b_wptr) { 8757 goto noticmpv6; 8758 } 8759 8760 /* 8761 * ICMP errors come on the right queue or come on 8762 * listener/global queue for detached connections and 8763 * get switched to the right queue. If it comes on the 8764 * right queue, policy check has already been done by IP 8765 * and thus free the first_mp without verifying the policy. 8766 * If it has come for a non-hard bound connection, we need 8767 * to verify policy as IP may not have done it. 8768 */ 8769 if (!tcp->tcp_hard_bound) { 8770 if (ipsec_mctl) { 8771 secure = ipsec_in_is_secure(first_mp); 8772 } else { 8773 secure = B_FALSE; 8774 } 8775 if (secure) { 8776 /* 8777 * If we are willing to accept this in clear 8778 * we don't have to verify policy. 8779 */ 8780 if (!ipsec_inbound_accept_clear(mp, NULL, ip6h)) { 8781 if (!tcp_check_policy(tcp, first_mp, 8782 NULL, ip6h, secure, ipsec_mctl)) { 8783 /* 8784 * tcp_check_policy called 8785 * ip_drop_packet() on failure. 8786 */ 8787 return; 8788 } 8789 } 8790 } 8791 } else if (ipsec_mctl) { 8792 /* 8793 * This is a hard_bound connection. IP has already 8794 * verified policy. We don't have to do it again. 8795 */ 8796 freeb(first_mp); 8797 first_mp = mp; 8798 ipsec_mctl = B_FALSE; 8799 } 8800 8801 seg_seq = ntohl(tcpha->tha_seq); 8802 /* 8803 * TCP SHOULD check that the TCP sequence number contained in 8804 * payload of the ICMP error message is within the range 8805 * SND.UNA <= SEG.SEQ < SND.NXT. 8806 */ 8807 if (SEQ_LT(seg_seq, tcp->tcp_suna) || SEQ_GEQ(seg_seq, tcp->tcp_snxt)) { 8808 /* 8809 * If the ICMP message is bogus, should we kill the 8810 * connection, or should we just drop the bogus ICMP 8811 * message? It would probably make more sense to just 8812 * drop the message so that if this one managed to get 8813 * in, the real connection should not suffer. 8814 */ 8815 goto noticmpv6; 8816 } 8817 8818 switch (icmp6->icmp6_type) { 8819 case ICMP6_PACKET_TOO_BIG: 8820 /* 8821 * Reduce the MSS based on the new MTU. This will 8822 * eliminate any fragmentation locally. 8823 * N.B. There may well be some funny side-effects on 8824 * the local send policy and the remote receive policy. 8825 * Pending further research, we provide 8826 * tcp_ignore_path_mtu just in case this proves 8827 * disastrous somewhere. 8828 * 8829 * After updating the MSS, retransmit part of the 8830 * dropped segment using the new mss by calling 8831 * tcp_wput_data(). Need to adjust all those 8832 * params to make sure tcp_wput_data() work properly. 8833 */ 8834 if (tcp_ignore_path_mtu) 8835 break; 8836 8837 /* 8838 * Decrease the MSS by time stamp options 8839 * IP options and IPSEC options. tcp_hdr_len 8840 * includes time stamp option and IP option 8841 * length. 8842 */ 8843 new_mss = ntohs(icmp6->icmp6_mtu) - tcp->tcp_hdr_len - 8844 tcp->tcp_ipsec_overhead; 8845 8846 /* 8847 * Only update the MSS if the new one is 8848 * smaller than the previous one. This is 8849 * to avoid problems when getting multiple 8850 * ICMP errors for the same MTU. 8851 */ 8852 if (new_mss >= tcp->tcp_mss) 8853 break; 8854 8855 ratio = tcp->tcp_cwnd / tcp->tcp_mss; 8856 ASSERT(ratio >= 1); 8857 tcp_mss_set(tcp, new_mss); 8858 8859 /* 8860 * Make sure we have something to 8861 * send. 8862 */ 8863 if (SEQ_LT(tcp->tcp_suna, tcp->tcp_snxt) && 8864 (tcp->tcp_xmit_head != NULL)) { 8865 /* 8866 * Shrink tcp_cwnd in 8867 * proportion to the old MSS/new MSS. 8868 */ 8869 tcp->tcp_cwnd = ratio * tcp->tcp_mss; 8870 if ((tcp->tcp_valid_bits & TCP_FSS_VALID) && 8871 (tcp->tcp_unsent == 0)) { 8872 tcp->tcp_rexmit_max = tcp->tcp_fss; 8873 } else { 8874 tcp->tcp_rexmit_max = tcp->tcp_snxt; 8875 } 8876 tcp->tcp_rexmit_nxt = tcp->tcp_suna; 8877 tcp->tcp_rexmit = B_TRUE; 8878 tcp->tcp_dupack_cnt = 0; 8879 tcp->tcp_snd_burst = TCP_CWND_SS; 8880 tcp_ss_rexmit(tcp); 8881 } 8882 break; 8883 8884 case ICMP6_DST_UNREACH: 8885 switch (icmp6->icmp6_code) { 8886 case ICMP6_DST_UNREACH_NOPORT: 8887 if (((tcp->tcp_state == TCPS_SYN_SENT) || 8888 (tcp->tcp_state == TCPS_SYN_RCVD)) && 8889 (seg_seq == tcp->tcp_iss)) { 8890 (void) tcp_clean_death(tcp, 8891 ECONNREFUSED, 8); 8892 } 8893 break; 8894 8895 case ICMP6_DST_UNREACH_ADMIN: 8896 case ICMP6_DST_UNREACH_NOROUTE: 8897 case ICMP6_DST_UNREACH_BEYONDSCOPE: 8898 case ICMP6_DST_UNREACH_ADDR: 8899 /* Record the error in case we finally time out. */ 8900 tcp->tcp_client_errno = EHOSTUNREACH; 8901 if (((tcp->tcp_state == TCPS_SYN_SENT) || 8902 (tcp->tcp_state == TCPS_SYN_RCVD)) && 8903 (seg_seq == tcp->tcp_iss)) { 8904 if (tcp->tcp_listener != NULL && 8905 tcp->tcp_listener->tcp_syn_defense) { 8906 /* 8907 * Ditch the half-open connection if we 8908 * suspect a SYN attack is under way. 8909 */ 8910 tcp_ip_ire_mark_advice(tcp); 8911 (void) tcp_clean_death(tcp, 8912 tcp->tcp_client_errno, 9); 8913 } 8914 } 8915 8916 8917 break; 8918 default: 8919 break; 8920 } 8921 break; 8922 8923 case ICMP6_PARAM_PROB: 8924 /* If this corresponds to an ICMP_PROTOCOL_UNREACHABLE */ 8925 if (icmp6->icmp6_code == ICMP6_PARAMPROB_NEXTHEADER && 8926 (uchar_t *)ip6h + icmp6->icmp6_pptr == 8927 (uchar_t *)nexthdrp) { 8928 if (tcp->tcp_state == TCPS_SYN_SENT || 8929 tcp->tcp_state == TCPS_SYN_RCVD) { 8930 (void) tcp_clean_death(tcp, 8931 ECONNREFUSED, 10); 8932 } 8933 break; 8934 } 8935 break; 8936 8937 case ICMP6_TIME_EXCEEDED: 8938 default: 8939 break; 8940 } 8941 freemsg(first_mp); 8942 } 8943 8944 /* 8945 * IP recognizes seven kinds of bind requests: 8946 * 8947 * - A zero-length address binds only to the protocol number. 8948 * 8949 * - A 4-byte address is treated as a request to 8950 * validate that the address is a valid local IPv4 8951 * address, appropriate for an application to bind to. 8952 * IP does the verification, but does not make any note 8953 * of the address at this time. 8954 * 8955 * - A 16-byte address contains is treated as a request 8956 * to validate a local IPv6 address, as the 4-byte 8957 * address case above. 8958 * 8959 * - A 16-byte sockaddr_in to validate the local IPv4 address and also 8960 * use it for the inbound fanout of packets. 8961 * 8962 * - A 24-byte sockaddr_in6 to validate the local IPv6 address and also 8963 * use it for the inbound fanout of packets. 8964 * 8965 * - A 12-byte address (ipa_conn_t) containing complete IPv4 fanout 8966 * information consisting of local and remote addresses 8967 * and ports. In this case, the addresses are both 8968 * validated as appropriate for this operation, and, if 8969 * so, the information is retained for use in the 8970 * inbound fanout. 8971 * 8972 * - A 36-byte address address (ipa6_conn_t) containing complete IPv6 8973 * fanout information, like the 12-byte case above. 8974 * 8975 * IP will also fill in the IRE request mblk with information 8976 * regarding our peer. In all cases, we notify IP of our protocol 8977 * type by appending a single protocol byte to the bind request. 8978 */ 8979 static mblk_t * 8980 tcp_ip_bind_mp(tcp_t *tcp, t_scalar_t bind_prim, t_scalar_t addr_length) 8981 { 8982 char *cp; 8983 mblk_t *mp; 8984 struct T_bind_req *tbr; 8985 ipa_conn_t *ac; 8986 ipa6_conn_t *ac6; 8987 sin_t *sin; 8988 sin6_t *sin6; 8989 8990 ASSERT(bind_prim == O_T_BIND_REQ || bind_prim == T_BIND_REQ); 8991 ASSERT((tcp->tcp_family == AF_INET && 8992 tcp->tcp_ipversion == IPV4_VERSION) || 8993 (tcp->tcp_family == AF_INET6 && 8994 (tcp->tcp_ipversion == IPV4_VERSION || 8995 tcp->tcp_ipversion == IPV6_VERSION))); 8996 8997 mp = allocb(sizeof (*tbr) + addr_length + 1, BPRI_HI); 8998 if (!mp) 8999 return (mp); 9000 mp->b_datap->db_type = M_PROTO; 9001 tbr = (struct T_bind_req *)mp->b_rptr; 9002 tbr->PRIM_type = bind_prim; 9003 tbr->ADDR_offset = sizeof (*tbr); 9004 tbr->CONIND_number = 0; 9005 tbr->ADDR_length = addr_length; 9006 cp = (char *)&tbr[1]; 9007 switch (addr_length) { 9008 case sizeof (ipa_conn_t): 9009 ASSERT(tcp->tcp_family == AF_INET); 9010 ASSERT(tcp->tcp_ipversion == IPV4_VERSION); 9011 9012 mp->b_cont = allocb(sizeof (ire_t), BPRI_HI); 9013 if (mp->b_cont == NULL) { 9014 freemsg(mp); 9015 return (NULL); 9016 } 9017 mp->b_cont->b_wptr += sizeof (ire_t); 9018 mp->b_cont->b_datap->db_type = IRE_DB_REQ_TYPE; 9019 9020 /* cp known to be 32 bit aligned */ 9021 ac = (ipa_conn_t *)cp; 9022 ac->ac_laddr = tcp->tcp_ipha->ipha_src; 9023 ac->ac_faddr = tcp->tcp_remote; 9024 ac->ac_fport = tcp->tcp_fport; 9025 ac->ac_lport = tcp->tcp_lport; 9026 tcp->tcp_hard_binding = 1; 9027 break; 9028 9029 case sizeof (ipa6_conn_t): 9030 ASSERT(tcp->tcp_family == AF_INET6); 9031 9032 mp->b_cont = allocb(sizeof (ire_t), BPRI_HI); 9033 if (mp->b_cont == NULL) { 9034 freemsg(mp); 9035 return (NULL); 9036 } 9037 mp->b_cont->b_wptr += sizeof (ire_t); 9038 mp->b_cont->b_datap->db_type = IRE_DB_REQ_TYPE; 9039 9040 /* cp known to be 32 bit aligned */ 9041 ac6 = (ipa6_conn_t *)cp; 9042 if (tcp->tcp_ipversion == IPV4_VERSION) { 9043 IN6_IPADDR_TO_V4MAPPED(tcp->tcp_ipha->ipha_src, 9044 &ac6->ac6_laddr); 9045 } else { 9046 ac6->ac6_laddr = tcp->tcp_ip6h->ip6_src; 9047 } 9048 ac6->ac6_faddr = tcp->tcp_remote_v6; 9049 ac6->ac6_fport = tcp->tcp_fport; 9050 ac6->ac6_lport = tcp->tcp_lport; 9051 tcp->tcp_hard_binding = 1; 9052 break; 9053 9054 case sizeof (sin_t): 9055 /* 9056 * NOTE: IPV6_ADDR_LEN also has same size. 9057 * Use family to discriminate. 9058 */ 9059 if (tcp->tcp_family == AF_INET) { 9060 sin = (sin_t *)cp; 9061 9062 *sin = sin_null; 9063 sin->sin_family = AF_INET; 9064 sin->sin_addr.s_addr = tcp->tcp_bound_source; 9065 sin->sin_port = tcp->tcp_lport; 9066 break; 9067 } else { 9068 *(in6_addr_t *)cp = tcp->tcp_bound_source_v6; 9069 } 9070 break; 9071 9072 case sizeof (sin6_t): 9073 ASSERT(tcp->tcp_family == AF_INET6); 9074 sin6 = (sin6_t *)cp; 9075 9076 *sin6 = sin6_null; 9077 sin6->sin6_family = AF_INET6; 9078 sin6->sin6_addr = tcp->tcp_bound_source_v6; 9079 sin6->sin6_port = tcp->tcp_lport; 9080 break; 9081 9082 case IP_ADDR_LEN: 9083 ASSERT(tcp->tcp_ipversion == IPV4_VERSION); 9084 *(uint32_t *)cp = tcp->tcp_ipha->ipha_src; 9085 break; 9086 9087 } 9088 /* Add protocol number to end */ 9089 cp[addr_length] = (char)IPPROTO_TCP; 9090 mp->b_wptr = (uchar_t *)&cp[addr_length + 1]; 9091 return (mp); 9092 } 9093 9094 /* 9095 * Notify IP that we are having trouble with this connection. IP should 9096 * blow the IRE away and start over. 9097 */ 9098 static void 9099 tcp_ip_notify(tcp_t *tcp) 9100 { 9101 struct iocblk *iocp; 9102 ipid_t *ipid; 9103 mblk_t *mp; 9104 9105 /* IPv6 has NUD thus notification to delete the IRE is not needed */ 9106 if (tcp->tcp_ipversion == IPV6_VERSION) 9107 return; 9108 9109 mp = mkiocb(IP_IOCTL); 9110 if (mp == NULL) 9111 return; 9112 9113 iocp = (struct iocblk *)mp->b_rptr; 9114 iocp->ioc_count = sizeof (ipid_t) + sizeof (tcp->tcp_ipha->ipha_dst); 9115 9116 mp->b_cont = allocb(iocp->ioc_count, BPRI_HI); 9117 if (!mp->b_cont) { 9118 freeb(mp); 9119 return; 9120 } 9121 9122 ipid = (ipid_t *)mp->b_cont->b_rptr; 9123 mp->b_cont->b_wptr += iocp->ioc_count; 9124 bzero(ipid, sizeof (*ipid)); 9125 ipid->ipid_cmd = IP_IOC_IRE_DELETE_NO_REPLY; 9126 ipid->ipid_ire_type = IRE_CACHE; 9127 ipid->ipid_addr_offset = sizeof (ipid_t); 9128 ipid->ipid_addr_length = sizeof (tcp->tcp_ipha->ipha_dst); 9129 /* 9130 * Note: in the case of source routing we want to blow away the 9131 * route to the first source route hop. 9132 */ 9133 bcopy(&tcp->tcp_ipha->ipha_dst, &ipid[1], 9134 sizeof (tcp->tcp_ipha->ipha_dst)); 9135 9136 CALL_IP_WPUT(tcp->tcp_connp, tcp->tcp_wq, mp); 9137 } 9138 9139 /* Unlink and return any mblk that looks like it contains an ire */ 9140 static mblk_t * 9141 tcp_ire_mp(mblk_t *mp) 9142 { 9143 mblk_t *prev_mp; 9144 9145 for (;;) { 9146 prev_mp = mp; 9147 mp = mp->b_cont; 9148 if (mp == NULL) 9149 break; 9150 switch (DB_TYPE(mp)) { 9151 case IRE_DB_TYPE: 9152 case IRE_DB_REQ_TYPE: 9153 if (prev_mp != NULL) 9154 prev_mp->b_cont = mp->b_cont; 9155 mp->b_cont = NULL; 9156 return (mp); 9157 default: 9158 break; 9159 } 9160 } 9161 return (mp); 9162 } 9163 9164 /* 9165 * Timer callback routine for keepalive probe. We do a fake resend of 9166 * last ACKed byte. Then set a timer using RTO. When the timer expires, 9167 * check to see if we have heard anything from the other end for the last 9168 * RTO period. If we have, set the timer to expire for another 9169 * tcp_keepalive_intrvl and check again. If we have not, set a timer using 9170 * RTO << 1 and check again when it expires. Keep exponentially increasing 9171 * the timeout if we have not heard from the other side. If for more than 9172 * (tcp_ka_interval + tcp_ka_abort_thres) we have not heard anything, 9173 * kill the connection unless the keepalive abort threshold is 0. In 9174 * that case, we will probe "forever." 9175 */ 9176 static void 9177 tcp_keepalive_killer(void *arg) 9178 { 9179 mblk_t *mp; 9180 conn_t *connp = (conn_t *)arg; 9181 tcp_t *tcp = connp->conn_tcp; 9182 int32_t firetime; 9183 int32_t idletime; 9184 int32_t ka_intrvl; 9185 9186 tcp->tcp_ka_tid = 0; 9187 9188 if (tcp->tcp_fused) 9189 return; 9190 9191 BUMP_MIB(&tcp_mib, tcpTimKeepalive); 9192 ka_intrvl = tcp->tcp_ka_interval; 9193 9194 /* 9195 * Keepalive probe should only be sent if the application has not 9196 * done a close on the connection. 9197 */ 9198 if (tcp->tcp_state > TCPS_CLOSE_WAIT) { 9199 return; 9200 } 9201 /* Timer fired too early, restart it. */ 9202 if (tcp->tcp_state < TCPS_ESTABLISHED) { 9203 tcp->tcp_ka_tid = TCP_TIMER(tcp, tcp_keepalive_killer, 9204 MSEC_TO_TICK(ka_intrvl)); 9205 return; 9206 } 9207 9208 idletime = TICK_TO_MSEC(lbolt - tcp->tcp_last_recv_time); 9209 /* 9210 * If we have not heard from the other side for a long 9211 * time, kill the connection unless the keepalive abort 9212 * threshold is 0. In that case, we will probe "forever." 9213 */ 9214 if (tcp->tcp_ka_abort_thres != 0 && 9215 idletime > (ka_intrvl + tcp->tcp_ka_abort_thres)) { 9216 BUMP_MIB(&tcp_mib, tcpTimKeepaliveDrop); 9217 (void) tcp_clean_death(tcp, tcp->tcp_client_errno ? 9218 tcp->tcp_client_errno : ETIMEDOUT, 11); 9219 return; 9220 } 9221 9222 if (tcp->tcp_snxt == tcp->tcp_suna && 9223 idletime >= ka_intrvl) { 9224 /* Fake resend of last ACKed byte. */ 9225 mblk_t *mp1 = allocb(1, BPRI_LO); 9226 9227 if (mp1 != NULL) { 9228 *mp1->b_wptr++ = '\0'; 9229 mp = tcp_xmit_mp(tcp, mp1, 1, NULL, NULL, 9230 tcp->tcp_suna - 1, B_FALSE, NULL, B_TRUE); 9231 freeb(mp1); 9232 /* 9233 * if allocation failed, fall through to start the 9234 * timer back. 9235 */ 9236 if (mp != NULL) { 9237 TCP_RECORD_TRACE(tcp, mp, 9238 TCP_TRACE_SEND_PKT); 9239 tcp_send_data(tcp, tcp->tcp_wq, mp); 9240 BUMP_MIB(&tcp_mib, tcpTimKeepaliveProbe); 9241 if (tcp->tcp_ka_last_intrvl != 0) { 9242 /* 9243 * We should probe again at least 9244 * in ka_intrvl, but not more than 9245 * tcp_rexmit_interval_max. 9246 */ 9247 firetime = MIN(ka_intrvl - 1, 9248 tcp->tcp_ka_last_intrvl << 1); 9249 if (firetime > tcp_rexmit_interval_max) 9250 firetime = 9251 tcp_rexmit_interval_max; 9252 } else { 9253 firetime = tcp->tcp_rto; 9254 } 9255 tcp->tcp_ka_tid = TCP_TIMER(tcp, 9256 tcp_keepalive_killer, 9257 MSEC_TO_TICK(firetime)); 9258 tcp->tcp_ka_last_intrvl = firetime; 9259 return; 9260 } 9261 } 9262 } else { 9263 tcp->tcp_ka_last_intrvl = 0; 9264 } 9265 9266 /* firetime can be negative if (mp1 == NULL || mp == NULL) */ 9267 if ((firetime = ka_intrvl - idletime) < 0) { 9268 firetime = ka_intrvl; 9269 } 9270 tcp->tcp_ka_tid = TCP_TIMER(tcp, tcp_keepalive_killer, 9271 MSEC_TO_TICK(firetime)); 9272 } 9273 9274 int 9275 tcp_maxpsz_set(tcp_t *tcp, boolean_t set_maxblk) 9276 { 9277 queue_t *q = tcp->tcp_rq; 9278 int32_t mss = tcp->tcp_mss; 9279 int maxpsz; 9280 9281 if (TCP_IS_DETACHED(tcp)) 9282 return (mss); 9283 9284 if (tcp->tcp_fused) { 9285 maxpsz = tcp_fuse_maxpsz_set(tcp); 9286 mss = INFPSZ; 9287 } else if (tcp->tcp_mdt || tcp->tcp_lso || tcp->tcp_maxpsz == 0) { 9288 /* 9289 * Set the sd_qn_maxpsz according to the socket send buffer 9290 * size, and sd_maxblk to INFPSZ (-1). This will essentially 9291 * instruct the stream head to copyin user data into contiguous 9292 * kernel-allocated buffers without breaking it up into smaller 9293 * chunks. We round up the buffer size to the nearest SMSS. 9294 */ 9295 maxpsz = MSS_ROUNDUP(tcp->tcp_xmit_hiwater, mss); 9296 if (tcp->tcp_kssl_ctx == NULL) 9297 mss = INFPSZ; 9298 else 9299 mss = SSL3_MAX_RECORD_LEN; 9300 } else { 9301 /* 9302 * Set sd_qn_maxpsz to approx half the (receivers) buffer 9303 * (and a multiple of the mss). This instructs the stream 9304 * head to break down larger than SMSS writes into SMSS- 9305 * size mblks, up to tcp_maxpsz_multiplier mblks at a time. 9306 */ 9307 maxpsz = tcp->tcp_maxpsz * mss; 9308 if (maxpsz > tcp->tcp_xmit_hiwater/2) { 9309 maxpsz = tcp->tcp_xmit_hiwater/2; 9310 /* Round up to nearest mss */ 9311 maxpsz = MSS_ROUNDUP(maxpsz, mss); 9312 } 9313 } 9314 (void) setmaxps(q, maxpsz); 9315 tcp->tcp_wq->q_maxpsz = maxpsz; 9316 9317 if (set_maxblk) 9318 (void) mi_set_sth_maxblk(q, mss); 9319 9320 return (mss); 9321 } 9322 9323 /* 9324 * Extract option values from a tcp header. We put any found values into the 9325 * tcpopt struct and return a bitmask saying which options were found. 9326 */ 9327 static int 9328 tcp_parse_options(tcph_t *tcph, tcp_opt_t *tcpopt) 9329 { 9330 uchar_t *endp; 9331 int len; 9332 uint32_t mss; 9333 uchar_t *up = (uchar_t *)tcph; 9334 int found = 0; 9335 int32_t sack_len; 9336 tcp_seq sack_begin, sack_end; 9337 tcp_t *tcp; 9338 9339 endp = up + TCP_HDR_LENGTH(tcph); 9340 up += TCP_MIN_HEADER_LENGTH; 9341 while (up < endp) { 9342 len = endp - up; 9343 switch (*up) { 9344 case TCPOPT_EOL: 9345 break; 9346 9347 case TCPOPT_NOP: 9348 up++; 9349 continue; 9350 9351 case TCPOPT_MAXSEG: 9352 if (len < TCPOPT_MAXSEG_LEN || 9353 up[1] != TCPOPT_MAXSEG_LEN) 9354 break; 9355 9356 mss = BE16_TO_U16(up+2); 9357 /* Caller must handle tcp_mss_min and tcp_mss_max_* */ 9358 tcpopt->tcp_opt_mss = mss; 9359 found |= TCP_OPT_MSS_PRESENT; 9360 9361 up += TCPOPT_MAXSEG_LEN; 9362 continue; 9363 9364 case TCPOPT_WSCALE: 9365 if (len < TCPOPT_WS_LEN || up[1] != TCPOPT_WS_LEN) 9366 break; 9367 9368 if (up[2] > TCP_MAX_WINSHIFT) 9369 tcpopt->tcp_opt_wscale = TCP_MAX_WINSHIFT; 9370 else 9371 tcpopt->tcp_opt_wscale = up[2]; 9372 found |= TCP_OPT_WSCALE_PRESENT; 9373 9374 up += TCPOPT_WS_LEN; 9375 continue; 9376 9377 case TCPOPT_SACK_PERMITTED: 9378 if (len < TCPOPT_SACK_OK_LEN || 9379 up[1] != TCPOPT_SACK_OK_LEN) 9380 break; 9381 found |= TCP_OPT_SACK_OK_PRESENT; 9382 up += TCPOPT_SACK_OK_LEN; 9383 continue; 9384 9385 case TCPOPT_SACK: 9386 if (len <= 2 || up[1] <= 2 || len < up[1]) 9387 break; 9388 9389 /* If TCP is not interested in SACK blks... */ 9390 if ((tcp = tcpopt->tcp) == NULL) { 9391 up += up[1]; 9392 continue; 9393 } 9394 sack_len = up[1] - TCPOPT_HEADER_LEN; 9395 up += TCPOPT_HEADER_LEN; 9396 9397 /* 9398 * If the list is empty, allocate one and assume 9399 * nothing is sack'ed. 9400 */ 9401 ASSERT(tcp->tcp_sack_info != NULL); 9402 if (tcp->tcp_notsack_list == NULL) { 9403 tcp_notsack_update(&(tcp->tcp_notsack_list), 9404 tcp->tcp_suna, tcp->tcp_snxt, 9405 &(tcp->tcp_num_notsack_blk), 9406 &(tcp->tcp_cnt_notsack_list)); 9407 9408 /* 9409 * Make sure tcp_notsack_list is not NULL. 9410 * This happens when kmem_alloc(KM_NOSLEEP) 9411 * returns NULL. 9412 */ 9413 if (tcp->tcp_notsack_list == NULL) { 9414 up += sack_len; 9415 continue; 9416 } 9417 tcp->tcp_fack = tcp->tcp_suna; 9418 } 9419 9420 while (sack_len > 0) { 9421 if (up + 8 > endp) { 9422 up = endp; 9423 break; 9424 } 9425 sack_begin = BE32_TO_U32(up); 9426 up += 4; 9427 sack_end = BE32_TO_U32(up); 9428 up += 4; 9429 sack_len -= 8; 9430 /* 9431 * Bounds checking. Make sure the SACK 9432 * info is within tcp_suna and tcp_snxt. 9433 * If this SACK blk is out of bound, ignore 9434 * it but continue to parse the following 9435 * blks. 9436 */ 9437 if (SEQ_LEQ(sack_end, sack_begin) || 9438 SEQ_LT(sack_begin, tcp->tcp_suna) || 9439 SEQ_GT(sack_end, tcp->tcp_snxt)) { 9440 continue; 9441 } 9442 tcp_notsack_insert(&(tcp->tcp_notsack_list), 9443 sack_begin, sack_end, 9444 &(tcp->tcp_num_notsack_blk), 9445 &(tcp->tcp_cnt_notsack_list)); 9446 if (SEQ_GT(sack_end, tcp->tcp_fack)) { 9447 tcp->tcp_fack = sack_end; 9448 } 9449 } 9450 found |= TCP_OPT_SACK_PRESENT; 9451 continue; 9452 9453 case TCPOPT_TSTAMP: 9454 if (len < TCPOPT_TSTAMP_LEN || 9455 up[1] != TCPOPT_TSTAMP_LEN) 9456 break; 9457 9458 tcpopt->tcp_opt_ts_val = BE32_TO_U32(up+2); 9459 tcpopt->tcp_opt_ts_ecr = BE32_TO_U32(up+6); 9460 9461 found |= TCP_OPT_TSTAMP_PRESENT; 9462 9463 up += TCPOPT_TSTAMP_LEN; 9464 continue; 9465 9466 default: 9467 if (len <= 1 || len < (int)up[1] || up[1] == 0) 9468 break; 9469 up += up[1]; 9470 continue; 9471 } 9472 break; 9473 } 9474 return (found); 9475 } 9476 9477 /* 9478 * Set the mss associated with a particular tcp based on its current value, 9479 * and a new one passed in. Observe minimums and maximums, and reset 9480 * other state variables that we want to view as multiples of mss. 9481 * 9482 * This function is called in various places mainly because 9483 * 1) Various stuffs, tcp_mss, tcp_cwnd, ... need to be adjusted when the 9484 * other side's SYN/SYN-ACK packet arrives. 9485 * 2) PMTUd may get us a new MSS. 9486 * 3) If the other side stops sending us timestamp option, we need to 9487 * increase the MSS size to use the extra bytes available. 9488 */ 9489 static void 9490 tcp_mss_set(tcp_t *tcp, uint32_t mss) 9491 { 9492 uint32_t mss_max; 9493 9494 if (tcp->tcp_ipversion == IPV4_VERSION) 9495 mss_max = tcp_mss_max_ipv4; 9496 else 9497 mss_max = tcp_mss_max_ipv6; 9498 9499 if (mss < tcp_mss_min) 9500 mss = tcp_mss_min; 9501 if (mss > mss_max) 9502 mss = mss_max; 9503 /* 9504 * Unless naglim has been set by our client to 9505 * a non-mss value, force naglim to track mss. 9506 * This can help to aggregate small writes. 9507 */ 9508 if (mss < tcp->tcp_naglim || tcp->tcp_mss == tcp->tcp_naglim) 9509 tcp->tcp_naglim = mss; 9510 /* 9511 * TCP should be able to buffer at least 4 MSS data for obvious 9512 * performance reason. 9513 */ 9514 if ((mss << 2) > tcp->tcp_xmit_hiwater) 9515 tcp->tcp_xmit_hiwater = mss << 2; 9516 9517 /* 9518 * Check if we need to apply the tcp_init_cwnd here. If 9519 * it is set and the MSS gets bigger (should not happen 9520 * normally), we need to adjust the resulting tcp_cwnd properly. 9521 * The new tcp_cwnd should not get bigger. 9522 */ 9523 if (tcp->tcp_init_cwnd == 0) { 9524 tcp->tcp_cwnd = MIN(tcp_slow_start_initial * mss, 9525 MIN(4 * mss, MAX(2 * mss, 4380 / mss * mss))); 9526 } else { 9527 if (tcp->tcp_mss < mss) { 9528 tcp->tcp_cwnd = MAX(1, 9529 (tcp->tcp_init_cwnd * tcp->tcp_mss / mss)) * mss; 9530 } else { 9531 tcp->tcp_cwnd = tcp->tcp_init_cwnd * mss; 9532 } 9533 } 9534 tcp->tcp_mss = mss; 9535 tcp->tcp_cwnd_cnt = 0; 9536 (void) tcp_maxpsz_set(tcp, B_TRUE); 9537 } 9538 9539 static int 9540 tcp_open(queue_t *q, dev_t *devp, int flag, int sflag, cred_t *credp) 9541 { 9542 tcp_t *tcp = NULL; 9543 conn_t *connp; 9544 int err; 9545 dev_t conn_dev; 9546 zoneid_t zoneid = getzoneid(); 9547 9548 /* 9549 * Special case for install: miniroot needs to be able to access files 9550 * via NFS as though it were always in the global zone. 9551 */ 9552 if (credp == kcred && nfs_global_client_only != 0) 9553 zoneid = GLOBAL_ZONEID; 9554 9555 if (q->q_ptr != NULL) 9556 return (0); 9557 9558 if (sflag == MODOPEN) { 9559 /* 9560 * This is a special case. The purpose of a modopen 9561 * is to allow just the T_SVR4_OPTMGMT_REQ to pass 9562 * through for MIB browsers. Everything else is failed. 9563 */ 9564 connp = (conn_t *)tcp_get_conn(IP_SQUEUE_GET(lbolt)); 9565 9566 if (connp == NULL) 9567 return (ENOMEM); 9568 9569 connp->conn_flags |= IPCL_TCPMOD; 9570 connp->conn_cred = credp; 9571 connp->conn_zoneid = zoneid; 9572 q->q_ptr = WR(q)->q_ptr = connp; 9573 crhold(credp); 9574 q->q_qinfo = &tcp_mod_rinit; 9575 WR(q)->q_qinfo = &tcp_mod_winit; 9576 qprocson(q); 9577 return (0); 9578 } 9579 9580 if ((conn_dev = inet_minor_alloc(ip_minor_arena)) == 0) 9581 return (EBUSY); 9582 9583 *devp = makedevice(getemajor(*devp), (minor_t)conn_dev); 9584 9585 if (flag & SO_ACCEPTOR) { 9586 q->q_qinfo = &tcp_acceptor_rinit; 9587 q->q_ptr = (void *)conn_dev; 9588 WR(q)->q_qinfo = &tcp_acceptor_winit; 9589 WR(q)->q_ptr = (void *)conn_dev; 9590 qprocson(q); 9591 return (0); 9592 } 9593 9594 connp = (conn_t *)tcp_get_conn(IP_SQUEUE_GET(lbolt)); 9595 if (connp == NULL) { 9596 inet_minor_free(ip_minor_arena, conn_dev); 9597 q->q_ptr = NULL; 9598 return (ENOSR); 9599 } 9600 connp->conn_sqp = IP_SQUEUE_GET(lbolt); 9601 tcp = connp->conn_tcp; 9602 9603 q->q_ptr = WR(q)->q_ptr = connp; 9604 if (getmajor(*devp) == TCP6_MAJ) { 9605 connp->conn_flags |= (IPCL_TCP6|IPCL_ISV6); 9606 connp->conn_send = ip_output_v6; 9607 connp->conn_af_isv6 = B_TRUE; 9608 connp->conn_pkt_isv6 = B_TRUE; 9609 connp->conn_src_preferences = IPV6_PREFER_SRC_DEFAULT; 9610 tcp->tcp_ipversion = IPV6_VERSION; 9611 tcp->tcp_family = AF_INET6; 9612 tcp->tcp_mss = tcp_mss_def_ipv6; 9613 } else { 9614 connp->conn_flags |= IPCL_TCP4; 9615 connp->conn_send = ip_output; 9616 connp->conn_af_isv6 = B_FALSE; 9617 connp->conn_pkt_isv6 = B_FALSE; 9618 tcp->tcp_ipversion = IPV4_VERSION; 9619 tcp->tcp_family = AF_INET; 9620 tcp->tcp_mss = tcp_mss_def_ipv4; 9621 } 9622 9623 /* 9624 * TCP keeps a copy of cred for cache locality reasons but 9625 * we put a reference only once. If connp->conn_cred 9626 * becomes invalid, tcp_cred should also be set to NULL. 9627 */ 9628 tcp->tcp_cred = connp->conn_cred = credp; 9629 crhold(connp->conn_cred); 9630 tcp->tcp_cpid = curproc->p_pid; 9631 connp->conn_zoneid = zoneid; 9632 connp->conn_mlp_type = mlptSingle; 9633 connp->conn_ulp_labeled = !is_system_labeled(); 9634 9635 /* 9636 * If the caller has the process-wide flag set, then default to MAC 9637 * exempt mode. This allows read-down to unlabeled hosts. 9638 */ 9639 if (getpflags(NET_MAC_AWARE, credp) != 0) 9640 connp->conn_mac_exempt = B_TRUE; 9641 9642 connp->conn_dev = conn_dev; 9643 9644 ASSERT(q->q_qinfo == &tcp_rinit); 9645 ASSERT(WR(q)->q_qinfo == &tcp_winit); 9646 9647 if (flag & SO_SOCKSTR) { 9648 /* 9649 * No need to insert a socket in tcp acceptor hash. 9650 * If it was a socket acceptor stream, we dealt with 9651 * it above. A socket listener can never accept a 9652 * connection and doesn't need acceptor_id. 9653 */ 9654 connp->conn_flags |= IPCL_SOCKET; 9655 tcp->tcp_issocket = 1; 9656 WR(q)->q_qinfo = &tcp_sock_winit; 9657 } else { 9658 #ifdef _ILP32 9659 tcp->tcp_acceptor_id = (t_uscalar_t)RD(q); 9660 #else 9661 tcp->tcp_acceptor_id = conn_dev; 9662 #endif /* _ILP32 */ 9663 tcp_acceptor_hash_insert(tcp->tcp_acceptor_id, tcp); 9664 } 9665 9666 if (tcp_trace) 9667 tcp->tcp_tracebuf = kmem_zalloc(sizeof (tcptrch_t), KM_SLEEP); 9668 9669 err = tcp_init(tcp, q); 9670 if (err != 0) { 9671 inet_minor_free(ip_minor_arena, connp->conn_dev); 9672 tcp_acceptor_hash_remove(tcp); 9673 CONN_DEC_REF(connp); 9674 q->q_ptr = WR(q)->q_ptr = NULL; 9675 return (err); 9676 } 9677 9678 RD(q)->q_hiwat = tcp_recv_hiwat; 9679 tcp->tcp_rwnd = tcp_recv_hiwat; 9680 9681 /* Non-zero default values */ 9682 connp->conn_multicast_loop = IP_DEFAULT_MULTICAST_LOOP; 9683 /* 9684 * Put the ref for TCP. Ref for IP was already put 9685 * by ipcl_conn_create. Also Make the conn_t globally 9686 * visible to walkers 9687 */ 9688 mutex_enter(&connp->conn_lock); 9689 CONN_INC_REF_LOCKED(connp); 9690 ASSERT(connp->conn_ref == 2); 9691 connp->conn_state_flags &= ~CONN_INCIPIENT; 9692 mutex_exit(&connp->conn_lock); 9693 9694 qprocson(q); 9695 return (0); 9696 } 9697 9698 /* 9699 * Some TCP options can be "set" by requesting them in the option 9700 * buffer. This is needed for XTI feature test though we do not 9701 * allow it in general. We interpret that this mechanism is more 9702 * applicable to OSI protocols and need not be allowed in general. 9703 * This routine filters out options for which it is not allowed (most) 9704 * and lets through those (few) for which it is. [ The XTI interface 9705 * test suite specifics will imply that any XTI_GENERIC level XTI_* if 9706 * ever implemented will have to be allowed here ]. 9707 */ 9708 static boolean_t 9709 tcp_allow_connopt_set(int level, int name) 9710 { 9711 9712 switch (level) { 9713 case IPPROTO_TCP: 9714 switch (name) { 9715 case TCP_NODELAY: 9716 return (B_TRUE); 9717 default: 9718 return (B_FALSE); 9719 } 9720 /*NOTREACHED*/ 9721 default: 9722 return (B_FALSE); 9723 } 9724 /*NOTREACHED*/ 9725 } 9726 9727 /* 9728 * This routine gets default values of certain options whose default 9729 * values are maintained by protocol specific code 9730 */ 9731 /* ARGSUSED */ 9732 int 9733 tcp_opt_default(queue_t *q, int level, int name, uchar_t *ptr) 9734 { 9735 int32_t *i1 = (int32_t *)ptr; 9736 9737 switch (level) { 9738 case IPPROTO_TCP: 9739 switch (name) { 9740 case TCP_NOTIFY_THRESHOLD: 9741 *i1 = tcp_ip_notify_interval; 9742 break; 9743 case TCP_ABORT_THRESHOLD: 9744 *i1 = tcp_ip_abort_interval; 9745 break; 9746 case TCP_CONN_NOTIFY_THRESHOLD: 9747 *i1 = tcp_ip_notify_cinterval; 9748 break; 9749 case TCP_CONN_ABORT_THRESHOLD: 9750 *i1 = tcp_ip_abort_cinterval; 9751 break; 9752 default: 9753 return (-1); 9754 } 9755 break; 9756 case IPPROTO_IP: 9757 switch (name) { 9758 case IP_TTL: 9759 *i1 = tcp_ipv4_ttl; 9760 break; 9761 default: 9762 return (-1); 9763 } 9764 break; 9765 case IPPROTO_IPV6: 9766 switch (name) { 9767 case IPV6_UNICAST_HOPS: 9768 *i1 = tcp_ipv6_hoplimit; 9769 break; 9770 default: 9771 return (-1); 9772 } 9773 break; 9774 default: 9775 return (-1); 9776 } 9777 return (sizeof (int)); 9778 } 9779 9780 9781 /* 9782 * TCP routine to get the values of options. 9783 */ 9784 int 9785 tcp_opt_get(queue_t *q, int level, int name, uchar_t *ptr) 9786 { 9787 int *i1 = (int *)ptr; 9788 conn_t *connp = Q_TO_CONN(q); 9789 tcp_t *tcp = connp->conn_tcp; 9790 ip6_pkt_t *ipp = &tcp->tcp_sticky_ipp; 9791 9792 switch (level) { 9793 case SOL_SOCKET: 9794 switch (name) { 9795 case SO_LINGER: { 9796 struct linger *lgr = (struct linger *)ptr; 9797 9798 lgr->l_onoff = tcp->tcp_linger ? SO_LINGER : 0; 9799 lgr->l_linger = tcp->tcp_lingertime; 9800 } 9801 return (sizeof (struct linger)); 9802 case SO_DEBUG: 9803 *i1 = tcp->tcp_debug ? SO_DEBUG : 0; 9804 break; 9805 case SO_KEEPALIVE: 9806 *i1 = tcp->tcp_ka_enabled ? SO_KEEPALIVE : 0; 9807 break; 9808 case SO_DONTROUTE: 9809 *i1 = tcp->tcp_dontroute ? SO_DONTROUTE : 0; 9810 break; 9811 case SO_USELOOPBACK: 9812 *i1 = tcp->tcp_useloopback ? SO_USELOOPBACK : 0; 9813 break; 9814 case SO_BROADCAST: 9815 *i1 = tcp->tcp_broadcast ? SO_BROADCAST : 0; 9816 break; 9817 case SO_REUSEADDR: 9818 *i1 = tcp->tcp_reuseaddr ? SO_REUSEADDR : 0; 9819 break; 9820 case SO_OOBINLINE: 9821 *i1 = tcp->tcp_oobinline ? SO_OOBINLINE : 0; 9822 break; 9823 case SO_DGRAM_ERRIND: 9824 *i1 = tcp->tcp_dgram_errind ? SO_DGRAM_ERRIND : 0; 9825 break; 9826 case SO_TYPE: 9827 *i1 = SOCK_STREAM; 9828 break; 9829 case SO_SNDBUF: 9830 *i1 = tcp->tcp_xmit_hiwater; 9831 break; 9832 case SO_RCVBUF: 9833 *i1 = RD(q)->q_hiwat; 9834 break; 9835 case SO_SND_COPYAVOID: 9836 *i1 = tcp->tcp_snd_zcopy_on ? 9837 SO_SND_COPYAVOID : 0; 9838 break; 9839 case SO_ALLZONES: 9840 *i1 = connp->conn_allzones ? 1 : 0; 9841 break; 9842 case SO_ANON_MLP: 9843 *i1 = connp->conn_anon_mlp; 9844 break; 9845 case SO_MAC_EXEMPT: 9846 *i1 = connp->conn_mac_exempt; 9847 break; 9848 case SO_EXCLBIND: 9849 *i1 = tcp->tcp_exclbind ? SO_EXCLBIND : 0; 9850 break; 9851 default: 9852 return (-1); 9853 } 9854 break; 9855 case IPPROTO_TCP: 9856 switch (name) { 9857 case TCP_NODELAY: 9858 *i1 = (tcp->tcp_naglim == 1) ? TCP_NODELAY : 0; 9859 break; 9860 case TCP_MAXSEG: 9861 *i1 = tcp->tcp_mss; 9862 break; 9863 case TCP_NOTIFY_THRESHOLD: 9864 *i1 = (int)tcp->tcp_first_timer_threshold; 9865 break; 9866 case TCP_ABORT_THRESHOLD: 9867 *i1 = tcp->tcp_second_timer_threshold; 9868 break; 9869 case TCP_CONN_NOTIFY_THRESHOLD: 9870 *i1 = tcp->tcp_first_ctimer_threshold; 9871 break; 9872 case TCP_CONN_ABORT_THRESHOLD: 9873 *i1 = tcp->tcp_second_ctimer_threshold; 9874 break; 9875 case TCP_RECVDSTADDR: 9876 *i1 = tcp->tcp_recvdstaddr; 9877 break; 9878 case TCP_ANONPRIVBIND: 9879 *i1 = tcp->tcp_anon_priv_bind; 9880 break; 9881 case TCP_EXCLBIND: 9882 *i1 = tcp->tcp_exclbind ? TCP_EXCLBIND : 0; 9883 break; 9884 case TCP_INIT_CWND: 9885 *i1 = tcp->tcp_init_cwnd; 9886 break; 9887 case TCP_KEEPALIVE_THRESHOLD: 9888 *i1 = tcp->tcp_ka_interval; 9889 break; 9890 case TCP_KEEPALIVE_ABORT_THRESHOLD: 9891 *i1 = tcp->tcp_ka_abort_thres; 9892 break; 9893 case TCP_CORK: 9894 *i1 = tcp->tcp_cork; 9895 break; 9896 default: 9897 return (-1); 9898 } 9899 break; 9900 case IPPROTO_IP: 9901 if (tcp->tcp_family != AF_INET) 9902 return (-1); 9903 switch (name) { 9904 case IP_OPTIONS: 9905 case T_IP_OPTIONS: { 9906 /* 9907 * This is compatible with BSD in that in only return 9908 * the reverse source route with the final destination 9909 * as the last entry. The first 4 bytes of the option 9910 * will contain the final destination. 9911 */ 9912 int opt_len; 9913 9914 opt_len = (char *)tcp->tcp_tcph - (char *)tcp->tcp_ipha; 9915 opt_len -= tcp->tcp_label_len + IP_SIMPLE_HDR_LENGTH; 9916 ASSERT(opt_len >= 0); 9917 /* Caller ensures enough space */ 9918 if (opt_len > 0) { 9919 /* 9920 * TODO: Do we have to handle getsockopt on an 9921 * initiator as well? 9922 */ 9923 return (ip_opt_get_user(tcp->tcp_ipha, ptr)); 9924 } 9925 return (0); 9926 } 9927 case IP_TOS: 9928 case T_IP_TOS: 9929 *i1 = (int)tcp->tcp_ipha->ipha_type_of_service; 9930 break; 9931 case IP_TTL: 9932 *i1 = (int)tcp->tcp_ipha->ipha_ttl; 9933 break; 9934 case IP_NEXTHOP: 9935 /* Handled at IP level */ 9936 return (-EINVAL); 9937 default: 9938 return (-1); 9939 } 9940 break; 9941 case IPPROTO_IPV6: 9942 /* 9943 * IPPROTO_IPV6 options are only supported for sockets 9944 * that are using IPv6 on the wire. 9945 */ 9946 if (tcp->tcp_ipversion != IPV6_VERSION) { 9947 return (-1); 9948 } 9949 switch (name) { 9950 case IPV6_UNICAST_HOPS: 9951 *i1 = (unsigned int) tcp->tcp_ip6h->ip6_hops; 9952 break; /* goto sizeof (int) option return */ 9953 case IPV6_BOUND_IF: 9954 /* Zero if not set */ 9955 *i1 = tcp->tcp_bound_if; 9956 break; /* goto sizeof (int) option return */ 9957 case IPV6_RECVPKTINFO: 9958 if (tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVPKTINFO) 9959 *i1 = 1; 9960 else 9961 *i1 = 0; 9962 break; /* goto sizeof (int) option return */ 9963 case IPV6_RECVTCLASS: 9964 if (tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVTCLASS) 9965 *i1 = 1; 9966 else 9967 *i1 = 0; 9968 break; /* goto sizeof (int) option return */ 9969 case IPV6_RECVHOPLIMIT: 9970 if (tcp->tcp_ipv6_recvancillary & 9971 TCP_IPV6_RECVHOPLIMIT) 9972 *i1 = 1; 9973 else 9974 *i1 = 0; 9975 break; /* goto sizeof (int) option return */ 9976 case IPV6_RECVHOPOPTS: 9977 if (tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVHOPOPTS) 9978 *i1 = 1; 9979 else 9980 *i1 = 0; 9981 break; /* goto sizeof (int) option return */ 9982 case IPV6_RECVDSTOPTS: 9983 if (tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVDSTOPTS) 9984 *i1 = 1; 9985 else 9986 *i1 = 0; 9987 break; /* goto sizeof (int) option return */ 9988 case _OLD_IPV6_RECVDSTOPTS: 9989 if (tcp->tcp_ipv6_recvancillary & 9990 TCP_OLD_IPV6_RECVDSTOPTS) 9991 *i1 = 1; 9992 else 9993 *i1 = 0; 9994 break; /* goto sizeof (int) option return */ 9995 case IPV6_RECVRTHDR: 9996 if (tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVRTHDR) 9997 *i1 = 1; 9998 else 9999 *i1 = 0; 10000 break; /* goto sizeof (int) option return */ 10001 case IPV6_RECVRTHDRDSTOPTS: 10002 if (tcp->tcp_ipv6_recvancillary & 10003 TCP_IPV6_RECVRTDSTOPTS) 10004 *i1 = 1; 10005 else 10006 *i1 = 0; 10007 break; /* goto sizeof (int) option return */ 10008 case IPV6_PKTINFO: { 10009 /* XXX assumes that caller has room for max size! */ 10010 struct in6_pktinfo *pkti; 10011 10012 pkti = (struct in6_pktinfo *)ptr; 10013 if (ipp->ipp_fields & IPPF_IFINDEX) 10014 pkti->ipi6_ifindex = ipp->ipp_ifindex; 10015 else 10016 pkti->ipi6_ifindex = 0; 10017 if (ipp->ipp_fields & IPPF_ADDR) 10018 pkti->ipi6_addr = ipp->ipp_addr; 10019 else 10020 pkti->ipi6_addr = ipv6_all_zeros; 10021 return (sizeof (struct in6_pktinfo)); 10022 } 10023 case IPV6_TCLASS: 10024 if (ipp->ipp_fields & IPPF_TCLASS) 10025 *i1 = ipp->ipp_tclass; 10026 else 10027 *i1 = IPV6_FLOW_TCLASS( 10028 IPV6_DEFAULT_VERS_AND_FLOW); 10029 break; /* goto sizeof (int) option return */ 10030 case IPV6_NEXTHOP: { 10031 sin6_t *sin6 = (sin6_t *)ptr; 10032 10033 if (!(ipp->ipp_fields & IPPF_NEXTHOP)) 10034 return (0); 10035 *sin6 = sin6_null; 10036 sin6->sin6_family = AF_INET6; 10037 sin6->sin6_addr = ipp->ipp_nexthop; 10038 return (sizeof (sin6_t)); 10039 } 10040 case IPV6_HOPOPTS: 10041 if (!(ipp->ipp_fields & IPPF_HOPOPTS)) 10042 return (0); 10043 if (ipp->ipp_hopoptslen <= tcp->tcp_label_len) 10044 return (0); 10045 bcopy((char *)ipp->ipp_hopopts + tcp->tcp_label_len, 10046 ptr, ipp->ipp_hopoptslen - tcp->tcp_label_len); 10047 if (tcp->tcp_label_len > 0) { 10048 ptr[0] = ((char *)ipp->ipp_hopopts)[0]; 10049 ptr[1] = (ipp->ipp_hopoptslen - 10050 tcp->tcp_label_len + 7) / 8 - 1; 10051 } 10052 return (ipp->ipp_hopoptslen - tcp->tcp_label_len); 10053 case IPV6_RTHDRDSTOPTS: 10054 if (!(ipp->ipp_fields & IPPF_RTDSTOPTS)) 10055 return (0); 10056 bcopy(ipp->ipp_rtdstopts, ptr, ipp->ipp_rtdstoptslen); 10057 return (ipp->ipp_rtdstoptslen); 10058 case IPV6_RTHDR: 10059 if (!(ipp->ipp_fields & IPPF_RTHDR)) 10060 return (0); 10061 bcopy(ipp->ipp_rthdr, ptr, ipp->ipp_rthdrlen); 10062 return (ipp->ipp_rthdrlen); 10063 case IPV6_DSTOPTS: 10064 if (!(ipp->ipp_fields & IPPF_DSTOPTS)) 10065 return (0); 10066 bcopy(ipp->ipp_dstopts, ptr, ipp->ipp_dstoptslen); 10067 return (ipp->ipp_dstoptslen); 10068 case IPV6_SRC_PREFERENCES: 10069 return (ip6_get_src_preferences(connp, 10070 (uint32_t *)ptr)); 10071 case IPV6_PATHMTU: { 10072 struct ip6_mtuinfo *mtuinfo = (struct ip6_mtuinfo *)ptr; 10073 10074 if (tcp->tcp_state < TCPS_ESTABLISHED) 10075 return (-1); 10076 10077 return (ip_fill_mtuinfo(&connp->conn_remv6, 10078 connp->conn_fport, mtuinfo)); 10079 } 10080 default: 10081 return (-1); 10082 } 10083 break; 10084 default: 10085 return (-1); 10086 } 10087 return (sizeof (int)); 10088 } 10089 10090 /* 10091 * We declare as 'int' rather than 'void' to satisfy pfi_t arg requirements. 10092 * Parameters are assumed to be verified by the caller. 10093 */ 10094 /* ARGSUSED */ 10095 int 10096 tcp_opt_set(queue_t *q, uint_t optset_context, int level, int name, 10097 uint_t inlen, uchar_t *invalp, uint_t *outlenp, uchar_t *outvalp, 10098 void *thisdg_attrs, cred_t *cr, mblk_t *mblk) 10099 { 10100 conn_t *connp = Q_TO_CONN(q); 10101 tcp_t *tcp = connp->conn_tcp; 10102 int *i1 = (int *)invalp; 10103 boolean_t onoff = (*i1 == 0) ? 0 : 1; 10104 boolean_t checkonly; 10105 int reterr; 10106 10107 switch (optset_context) { 10108 case SETFN_OPTCOM_CHECKONLY: 10109 checkonly = B_TRUE; 10110 /* 10111 * Note: Implies T_CHECK semantics for T_OPTCOM_REQ 10112 * inlen != 0 implies value supplied and 10113 * we have to "pretend" to set it. 10114 * inlen == 0 implies that there is no 10115 * value part in T_CHECK request and just validation 10116 * done elsewhere should be enough, we just return here. 10117 */ 10118 if (inlen == 0) { 10119 *outlenp = 0; 10120 return (0); 10121 } 10122 break; 10123 case SETFN_OPTCOM_NEGOTIATE: 10124 checkonly = B_FALSE; 10125 break; 10126 case SETFN_UD_NEGOTIATE: /* error on conn-oriented transports ? */ 10127 case SETFN_CONN_NEGOTIATE: 10128 checkonly = B_FALSE; 10129 /* 10130 * Negotiating local and "association-related" options 10131 * from other (T_CONN_REQ, T_CONN_RES,T_UNITDATA_REQ) 10132 * primitives is allowed by XTI, but we choose 10133 * to not implement this style negotiation for Internet 10134 * protocols (We interpret it is a must for OSI world but 10135 * optional for Internet protocols) for all options. 10136 * [ Will do only for the few options that enable test 10137 * suites that our XTI implementation of this feature 10138 * works for transports that do allow it ] 10139 */ 10140 if (!tcp_allow_connopt_set(level, name)) { 10141 *outlenp = 0; 10142 return (EINVAL); 10143 } 10144 break; 10145 default: 10146 /* 10147 * We should never get here 10148 */ 10149 *outlenp = 0; 10150 return (EINVAL); 10151 } 10152 10153 ASSERT((optset_context != SETFN_OPTCOM_CHECKONLY) || 10154 (optset_context == SETFN_OPTCOM_CHECKONLY && inlen != 0)); 10155 10156 /* 10157 * For TCP, we should have no ancillary data sent down 10158 * (sendmsg isn't supported for SOCK_STREAM), so thisdg_attrs 10159 * has to be zero. 10160 */ 10161 ASSERT(thisdg_attrs == NULL); 10162 10163 /* 10164 * For fixed length options, no sanity check 10165 * of passed in length is done. It is assumed *_optcom_req() 10166 * routines do the right thing. 10167 */ 10168 10169 switch (level) { 10170 case SOL_SOCKET: 10171 switch (name) { 10172 case SO_LINGER: { 10173 struct linger *lgr = (struct linger *)invalp; 10174 10175 if (!checkonly) { 10176 if (lgr->l_onoff) { 10177 tcp->tcp_linger = 1; 10178 tcp->tcp_lingertime = lgr->l_linger; 10179 } else { 10180 tcp->tcp_linger = 0; 10181 tcp->tcp_lingertime = 0; 10182 } 10183 /* struct copy */ 10184 *(struct linger *)outvalp = *lgr; 10185 } else { 10186 if (!lgr->l_onoff) { 10187 ((struct linger *)outvalp)->l_onoff = 0; 10188 ((struct linger *)outvalp)->l_linger = 0; 10189 } else { 10190 /* struct copy */ 10191 *(struct linger *)outvalp = *lgr; 10192 } 10193 } 10194 *outlenp = sizeof (struct linger); 10195 return (0); 10196 } 10197 case SO_DEBUG: 10198 if (!checkonly) 10199 tcp->tcp_debug = onoff; 10200 break; 10201 case SO_KEEPALIVE: 10202 if (checkonly) { 10203 /* T_CHECK case */ 10204 break; 10205 } 10206 10207 if (!onoff) { 10208 if (tcp->tcp_ka_enabled) { 10209 if (tcp->tcp_ka_tid != 0) { 10210 (void) TCP_TIMER_CANCEL(tcp, 10211 tcp->tcp_ka_tid); 10212 tcp->tcp_ka_tid = 0; 10213 } 10214 tcp->tcp_ka_enabled = 0; 10215 } 10216 break; 10217 } 10218 if (!tcp->tcp_ka_enabled) { 10219 /* Crank up the keepalive timer */ 10220 tcp->tcp_ka_last_intrvl = 0; 10221 tcp->tcp_ka_tid = TCP_TIMER(tcp, 10222 tcp_keepalive_killer, 10223 MSEC_TO_TICK(tcp->tcp_ka_interval)); 10224 tcp->tcp_ka_enabled = 1; 10225 } 10226 break; 10227 case SO_DONTROUTE: 10228 /* 10229 * SO_DONTROUTE, SO_USELOOPBACK, and SO_BROADCAST are 10230 * only of interest to IP. We track them here only so 10231 * that we can report their current value. 10232 */ 10233 if (!checkonly) { 10234 tcp->tcp_dontroute = onoff; 10235 tcp->tcp_connp->conn_dontroute = onoff; 10236 } 10237 break; 10238 case SO_USELOOPBACK: 10239 if (!checkonly) { 10240 tcp->tcp_useloopback = onoff; 10241 tcp->tcp_connp->conn_loopback = onoff; 10242 } 10243 break; 10244 case SO_BROADCAST: 10245 if (!checkonly) { 10246 tcp->tcp_broadcast = onoff; 10247 tcp->tcp_connp->conn_broadcast = onoff; 10248 } 10249 break; 10250 case SO_REUSEADDR: 10251 if (!checkonly) { 10252 tcp->tcp_reuseaddr = onoff; 10253 tcp->tcp_connp->conn_reuseaddr = onoff; 10254 } 10255 break; 10256 case SO_OOBINLINE: 10257 if (!checkonly) 10258 tcp->tcp_oobinline = onoff; 10259 break; 10260 case SO_DGRAM_ERRIND: 10261 if (!checkonly) 10262 tcp->tcp_dgram_errind = onoff; 10263 break; 10264 case SO_SNDBUF: { 10265 tcp_t *peer_tcp; 10266 10267 if (*i1 > tcp_max_buf) { 10268 *outlenp = 0; 10269 return (ENOBUFS); 10270 } 10271 if (checkonly) 10272 break; 10273 10274 tcp->tcp_xmit_hiwater = *i1; 10275 if (tcp_snd_lowat_fraction != 0) 10276 tcp->tcp_xmit_lowater = 10277 tcp->tcp_xmit_hiwater / 10278 tcp_snd_lowat_fraction; 10279 (void) tcp_maxpsz_set(tcp, B_TRUE); 10280 /* 10281 * If we are flow-controlled, recheck the condition. 10282 * There are apps that increase SO_SNDBUF size when 10283 * flow-controlled (EWOULDBLOCK), and expect the flow 10284 * control condition to be lifted right away. 10285 * 10286 * For the fused tcp loopback case, in order to avoid 10287 * a race with the peer's tcp_fuse_rrw() we need to 10288 * hold its fuse_lock while accessing tcp_flow_stopped. 10289 */ 10290 peer_tcp = tcp->tcp_loopback_peer; 10291 ASSERT(!tcp->tcp_fused || peer_tcp != NULL); 10292 if (tcp->tcp_fused) 10293 mutex_enter(&peer_tcp->tcp_fuse_lock); 10294 10295 if (tcp->tcp_flow_stopped && 10296 TCP_UNSENT_BYTES(tcp) < tcp->tcp_xmit_hiwater) { 10297 tcp_clrqfull(tcp); 10298 } 10299 if (tcp->tcp_fused) 10300 mutex_exit(&peer_tcp->tcp_fuse_lock); 10301 break; 10302 } 10303 case SO_RCVBUF: 10304 if (*i1 > tcp_max_buf) { 10305 *outlenp = 0; 10306 return (ENOBUFS); 10307 } 10308 /* Silently ignore zero */ 10309 if (!checkonly && *i1 != 0) { 10310 *i1 = MSS_ROUNDUP(*i1, tcp->tcp_mss); 10311 (void) tcp_rwnd_set(tcp, *i1); 10312 } 10313 /* 10314 * XXX should we return the rwnd here 10315 * and tcp_opt_get ? 10316 */ 10317 break; 10318 case SO_SND_COPYAVOID: 10319 if (!checkonly) { 10320 /* we only allow enable at most once for now */ 10321 if (tcp->tcp_loopback || 10322 (!tcp->tcp_snd_zcopy_aware && 10323 (onoff != 1 || !tcp_zcopy_check(tcp)))) { 10324 *outlenp = 0; 10325 return (EOPNOTSUPP); 10326 } 10327 tcp->tcp_snd_zcopy_aware = 1; 10328 } 10329 break; 10330 case SO_ALLZONES: 10331 /* Handled at the IP level */ 10332 return (-EINVAL); 10333 case SO_ANON_MLP: 10334 if (!checkonly) { 10335 mutex_enter(&connp->conn_lock); 10336 connp->conn_anon_mlp = onoff; 10337 mutex_exit(&connp->conn_lock); 10338 } 10339 break; 10340 case SO_MAC_EXEMPT: 10341 if (secpolicy_net_mac_aware(cr) != 0 || 10342 IPCL_IS_BOUND(connp)) 10343 return (EACCES); 10344 if (!checkonly) { 10345 mutex_enter(&connp->conn_lock); 10346 connp->conn_mac_exempt = onoff; 10347 mutex_exit(&connp->conn_lock); 10348 } 10349 break; 10350 case SO_EXCLBIND: 10351 if (!checkonly) 10352 tcp->tcp_exclbind = onoff; 10353 break; 10354 default: 10355 *outlenp = 0; 10356 return (EINVAL); 10357 } 10358 break; 10359 case IPPROTO_TCP: 10360 switch (name) { 10361 case TCP_NODELAY: 10362 if (!checkonly) 10363 tcp->tcp_naglim = *i1 ? 1 : tcp->tcp_mss; 10364 break; 10365 case TCP_NOTIFY_THRESHOLD: 10366 if (!checkonly) 10367 tcp->tcp_first_timer_threshold = *i1; 10368 break; 10369 case TCP_ABORT_THRESHOLD: 10370 if (!checkonly) 10371 tcp->tcp_second_timer_threshold = *i1; 10372 break; 10373 case TCP_CONN_NOTIFY_THRESHOLD: 10374 if (!checkonly) 10375 tcp->tcp_first_ctimer_threshold = *i1; 10376 break; 10377 case TCP_CONN_ABORT_THRESHOLD: 10378 if (!checkonly) 10379 tcp->tcp_second_ctimer_threshold = *i1; 10380 break; 10381 case TCP_RECVDSTADDR: 10382 if (tcp->tcp_state > TCPS_LISTEN) 10383 return (EOPNOTSUPP); 10384 if (!checkonly) 10385 tcp->tcp_recvdstaddr = onoff; 10386 break; 10387 case TCP_ANONPRIVBIND: 10388 if ((reterr = secpolicy_net_privaddr(cr, 0)) != 0) { 10389 *outlenp = 0; 10390 return (reterr); 10391 } 10392 if (!checkonly) { 10393 tcp->tcp_anon_priv_bind = onoff; 10394 } 10395 break; 10396 case TCP_EXCLBIND: 10397 if (!checkonly) 10398 tcp->tcp_exclbind = onoff; 10399 break; /* goto sizeof (int) option return */ 10400 case TCP_INIT_CWND: { 10401 uint32_t init_cwnd = *((uint32_t *)invalp); 10402 10403 if (checkonly) 10404 break; 10405 10406 /* 10407 * Only allow socket with network configuration 10408 * privilege to set the initial cwnd to be larger 10409 * than allowed by RFC 3390. 10410 */ 10411 if (init_cwnd <= MIN(4, MAX(2, 4380 / tcp->tcp_mss))) { 10412 tcp->tcp_init_cwnd = init_cwnd; 10413 break; 10414 } 10415 if ((reterr = secpolicy_net_config(cr, B_TRUE)) != 0) { 10416 *outlenp = 0; 10417 return (reterr); 10418 } 10419 if (init_cwnd > TCP_MAX_INIT_CWND) { 10420 *outlenp = 0; 10421 return (EINVAL); 10422 } 10423 tcp->tcp_init_cwnd = init_cwnd; 10424 break; 10425 } 10426 case TCP_KEEPALIVE_THRESHOLD: 10427 if (checkonly) 10428 break; 10429 10430 if (*i1 < tcp_keepalive_interval_low || 10431 *i1 > tcp_keepalive_interval_high) { 10432 *outlenp = 0; 10433 return (EINVAL); 10434 } 10435 if (*i1 != tcp->tcp_ka_interval) { 10436 tcp->tcp_ka_interval = *i1; 10437 /* 10438 * Check if we need to restart the 10439 * keepalive timer. 10440 */ 10441 if (tcp->tcp_ka_tid != 0) { 10442 ASSERT(tcp->tcp_ka_enabled); 10443 (void) TCP_TIMER_CANCEL(tcp, 10444 tcp->tcp_ka_tid); 10445 tcp->tcp_ka_last_intrvl = 0; 10446 tcp->tcp_ka_tid = TCP_TIMER(tcp, 10447 tcp_keepalive_killer, 10448 MSEC_TO_TICK(tcp->tcp_ka_interval)); 10449 } 10450 } 10451 break; 10452 case TCP_KEEPALIVE_ABORT_THRESHOLD: 10453 if (!checkonly) { 10454 if (*i1 < tcp_keepalive_abort_interval_low || 10455 *i1 > tcp_keepalive_abort_interval_high) { 10456 *outlenp = 0; 10457 return (EINVAL); 10458 } 10459 tcp->tcp_ka_abort_thres = *i1; 10460 } 10461 break; 10462 case TCP_CORK: 10463 if (!checkonly) { 10464 /* 10465 * if tcp->tcp_cork was set and is now 10466 * being unset, we have to make sure that 10467 * the remaining data gets sent out. Also 10468 * unset tcp->tcp_cork so that tcp_wput_data() 10469 * can send data even if it is less than mss 10470 */ 10471 if (tcp->tcp_cork && onoff == 0 && 10472 tcp->tcp_unsent > 0) { 10473 tcp->tcp_cork = B_FALSE; 10474 tcp_wput_data(tcp, NULL, B_FALSE); 10475 } 10476 tcp->tcp_cork = onoff; 10477 } 10478 break; 10479 default: 10480 *outlenp = 0; 10481 return (EINVAL); 10482 } 10483 break; 10484 case IPPROTO_IP: 10485 if (tcp->tcp_family != AF_INET) { 10486 *outlenp = 0; 10487 return (ENOPROTOOPT); 10488 } 10489 switch (name) { 10490 case IP_OPTIONS: 10491 case T_IP_OPTIONS: 10492 reterr = tcp_opt_set_header(tcp, checkonly, 10493 invalp, inlen); 10494 if (reterr) { 10495 *outlenp = 0; 10496 return (reterr); 10497 } 10498 /* OK return - copy input buffer into output buffer */ 10499 if (invalp != outvalp) { 10500 /* don't trust bcopy for identical src/dst */ 10501 bcopy(invalp, outvalp, inlen); 10502 } 10503 *outlenp = inlen; 10504 return (0); 10505 case IP_TOS: 10506 case T_IP_TOS: 10507 if (!checkonly) { 10508 tcp->tcp_ipha->ipha_type_of_service = 10509 (uchar_t)*i1; 10510 tcp->tcp_tos = (uchar_t)*i1; 10511 } 10512 break; 10513 case IP_TTL: 10514 if (!checkonly) { 10515 tcp->tcp_ipha->ipha_ttl = (uchar_t)*i1; 10516 tcp->tcp_ttl = (uchar_t)*i1; 10517 } 10518 break; 10519 case IP_BOUND_IF: 10520 case IP_NEXTHOP: 10521 /* Handled at the IP level */ 10522 return (-EINVAL); 10523 case IP_SEC_OPT: 10524 /* 10525 * We should not allow policy setting after 10526 * we start listening for connections. 10527 */ 10528 if (tcp->tcp_state == TCPS_LISTEN) { 10529 return (EINVAL); 10530 } else { 10531 /* Handled at the IP level */ 10532 return (-EINVAL); 10533 } 10534 default: 10535 *outlenp = 0; 10536 return (EINVAL); 10537 } 10538 break; 10539 case IPPROTO_IPV6: { 10540 ip6_pkt_t *ipp; 10541 10542 /* 10543 * IPPROTO_IPV6 options are only supported for sockets 10544 * that are using IPv6 on the wire. 10545 */ 10546 if (tcp->tcp_ipversion != IPV6_VERSION) { 10547 *outlenp = 0; 10548 return (ENOPROTOOPT); 10549 } 10550 /* 10551 * Only sticky options; no ancillary data 10552 */ 10553 ASSERT(thisdg_attrs == NULL); 10554 ipp = &tcp->tcp_sticky_ipp; 10555 10556 switch (name) { 10557 case IPV6_UNICAST_HOPS: 10558 /* -1 means use default */ 10559 if (*i1 < -1 || *i1 > IPV6_MAX_HOPS) { 10560 *outlenp = 0; 10561 return (EINVAL); 10562 } 10563 if (!checkonly) { 10564 if (*i1 == -1) { 10565 tcp->tcp_ip6h->ip6_hops = 10566 ipp->ipp_unicast_hops = 10567 (uint8_t)tcp_ipv6_hoplimit; 10568 ipp->ipp_fields &= ~IPPF_UNICAST_HOPS; 10569 /* Pass modified value to IP. */ 10570 *i1 = tcp->tcp_ip6h->ip6_hops; 10571 } else { 10572 tcp->tcp_ip6h->ip6_hops = 10573 ipp->ipp_unicast_hops = 10574 (uint8_t)*i1; 10575 ipp->ipp_fields |= IPPF_UNICAST_HOPS; 10576 } 10577 reterr = tcp_build_hdrs(q, tcp); 10578 if (reterr != 0) 10579 return (reterr); 10580 } 10581 break; 10582 case IPV6_BOUND_IF: 10583 if (!checkonly) { 10584 int error = 0; 10585 10586 tcp->tcp_bound_if = *i1; 10587 error = ip_opt_set_ill(tcp->tcp_connp, *i1, 10588 B_TRUE, checkonly, level, name, mblk); 10589 if (error != 0) { 10590 *outlenp = 0; 10591 return (error); 10592 } 10593 } 10594 break; 10595 /* 10596 * Set boolean switches for ancillary data delivery 10597 */ 10598 case IPV6_RECVPKTINFO: 10599 if (!checkonly) { 10600 if (onoff) 10601 tcp->tcp_ipv6_recvancillary |= 10602 TCP_IPV6_RECVPKTINFO; 10603 else 10604 tcp->tcp_ipv6_recvancillary &= 10605 ~TCP_IPV6_RECVPKTINFO; 10606 /* Force it to be sent up with the next msg */ 10607 tcp->tcp_recvifindex = 0; 10608 } 10609 break; 10610 case IPV6_RECVTCLASS: 10611 if (!checkonly) { 10612 if (onoff) 10613 tcp->tcp_ipv6_recvancillary |= 10614 TCP_IPV6_RECVTCLASS; 10615 else 10616 tcp->tcp_ipv6_recvancillary &= 10617 ~TCP_IPV6_RECVTCLASS; 10618 } 10619 break; 10620 case IPV6_RECVHOPLIMIT: 10621 if (!checkonly) { 10622 if (onoff) 10623 tcp->tcp_ipv6_recvancillary |= 10624 TCP_IPV6_RECVHOPLIMIT; 10625 else 10626 tcp->tcp_ipv6_recvancillary &= 10627 ~TCP_IPV6_RECVHOPLIMIT; 10628 /* Force it to be sent up with the next msg */ 10629 tcp->tcp_recvhops = 0xffffffffU; 10630 } 10631 break; 10632 case IPV6_RECVHOPOPTS: 10633 if (!checkonly) { 10634 if (onoff) 10635 tcp->tcp_ipv6_recvancillary |= 10636 TCP_IPV6_RECVHOPOPTS; 10637 else 10638 tcp->tcp_ipv6_recvancillary &= 10639 ~TCP_IPV6_RECVHOPOPTS; 10640 } 10641 break; 10642 case IPV6_RECVDSTOPTS: 10643 if (!checkonly) { 10644 if (onoff) 10645 tcp->tcp_ipv6_recvancillary |= 10646 TCP_IPV6_RECVDSTOPTS; 10647 else 10648 tcp->tcp_ipv6_recvancillary &= 10649 ~TCP_IPV6_RECVDSTOPTS; 10650 } 10651 break; 10652 case _OLD_IPV6_RECVDSTOPTS: 10653 if (!checkonly) { 10654 if (onoff) 10655 tcp->tcp_ipv6_recvancillary |= 10656 TCP_OLD_IPV6_RECVDSTOPTS; 10657 else 10658 tcp->tcp_ipv6_recvancillary &= 10659 ~TCP_OLD_IPV6_RECVDSTOPTS; 10660 } 10661 break; 10662 case IPV6_RECVRTHDR: 10663 if (!checkonly) { 10664 if (onoff) 10665 tcp->tcp_ipv6_recvancillary |= 10666 TCP_IPV6_RECVRTHDR; 10667 else 10668 tcp->tcp_ipv6_recvancillary &= 10669 ~TCP_IPV6_RECVRTHDR; 10670 } 10671 break; 10672 case IPV6_RECVRTHDRDSTOPTS: 10673 if (!checkonly) { 10674 if (onoff) 10675 tcp->tcp_ipv6_recvancillary |= 10676 TCP_IPV6_RECVRTDSTOPTS; 10677 else 10678 tcp->tcp_ipv6_recvancillary &= 10679 ~TCP_IPV6_RECVRTDSTOPTS; 10680 } 10681 break; 10682 case IPV6_PKTINFO: 10683 if (inlen != 0 && inlen != sizeof (struct in6_pktinfo)) 10684 return (EINVAL); 10685 if (checkonly) 10686 break; 10687 10688 if (inlen == 0) { 10689 ipp->ipp_fields &= ~(IPPF_IFINDEX|IPPF_ADDR); 10690 } else { 10691 struct in6_pktinfo *pkti; 10692 10693 pkti = (struct in6_pktinfo *)invalp; 10694 /* 10695 * RFC 3542 states that ipi6_addr must be 10696 * the unspecified address when setting the 10697 * IPV6_PKTINFO sticky socket option on a 10698 * TCP socket. 10699 */ 10700 if (!IN6_IS_ADDR_UNSPECIFIED(&pkti->ipi6_addr)) 10701 return (EINVAL); 10702 /* 10703 * ip6_set_pktinfo() validates the source 10704 * address and interface index. 10705 */ 10706 reterr = ip6_set_pktinfo(cr, tcp->tcp_connp, 10707 pkti, mblk); 10708 if (reterr != 0) 10709 return (reterr); 10710 ipp->ipp_ifindex = pkti->ipi6_ifindex; 10711 ipp->ipp_addr = pkti->ipi6_addr; 10712 if (ipp->ipp_ifindex != 0) 10713 ipp->ipp_fields |= IPPF_IFINDEX; 10714 else 10715 ipp->ipp_fields &= ~IPPF_IFINDEX; 10716 if (!IN6_IS_ADDR_UNSPECIFIED(&ipp->ipp_addr)) 10717 ipp->ipp_fields |= IPPF_ADDR; 10718 else 10719 ipp->ipp_fields &= ~IPPF_ADDR; 10720 } 10721 reterr = tcp_build_hdrs(q, tcp); 10722 if (reterr != 0) 10723 return (reterr); 10724 break; 10725 case IPV6_TCLASS: 10726 if (inlen != 0 && inlen != sizeof (int)) 10727 return (EINVAL); 10728 if (checkonly) 10729 break; 10730 10731 if (inlen == 0) { 10732 ipp->ipp_fields &= ~IPPF_TCLASS; 10733 } else { 10734 if (*i1 > 255 || *i1 < -1) 10735 return (EINVAL); 10736 if (*i1 == -1) { 10737 ipp->ipp_tclass = 0; 10738 *i1 = 0; 10739 } else { 10740 ipp->ipp_tclass = *i1; 10741 } 10742 ipp->ipp_fields |= IPPF_TCLASS; 10743 } 10744 reterr = tcp_build_hdrs(q, tcp); 10745 if (reterr != 0) 10746 return (reterr); 10747 break; 10748 case IPV6_NEXTHOP: 10749 /* 10750 * IP will verify that the nexthop is reachable 10751 * and fail for sticky options. 10752 */ 10753 if (inlen != 0 && inlen != sizeof (sin6_t)) 10754 return (EINVAL); 10755 if (checkonly) 10756 break; 10757 10758 if (inlen == 0) { 10759 ipp->ipp_fields &= ~IPPF_NEXTHOP; 10760 } else { 10761 sin6_t *sin6 = (sin6_t *)invalp; 10762 10763 if (sin6->sin6_family != AF_INET6) 10764 return (EAFNOSUPPORT); 10765 if (IN6_IS_ADDR_V4MAPPED( 10766 &sin6->sin6_addr)) 10767 return (EADDRNOTAVAIL); 10768 ipp->ipp_nexthop = sin6->sin6_addr; 10769 if (!IN6_IS_ADDR_UNSPECIFIED( 10770 &ipp->ipp_nexthop)) 10771 ipp->ipp_fields |= IPPF_NEXTHOP; 10772 else 10773 ipp->ipp_fields &= ~IPPF_NEXTHOP; 10774 } 10775 reterr = tcp_build_hdrs(q, tcp); 10776 if (reterr != 0) 10777 return (reterr); 10778 break; 10779 case IPV6_HOPOPTS: { 10780 ip6_hbh_t *hopts = (ip6_hbh_t *)invalp; 10781 10782 /* 10783 * Sanity checks - minimum size, size a multiple of 10784 * eight bytes, and matching size passed in. 10785 */ 10786 if (inlen != 0 && 10787 inlen != (8 * (hopts->ip6h_len + 1))) 10788 return (EINVAL); 10789 10790 if (checkonly) 10791 break; 10792 10793 reterr = optcom_pkt_set(invalp, inlen, B_TRUE, 10794 (uchar_t **)&ipp->ipp_hopopts, 10795 &ipp->ipp_hopoptslen, tcp->tcp_label_len); 10796 if (reterr != 0) 10797 return (reterr); 10798 if (ipp->ipp_hopoptslen == 0) 10799 ipp->ipp_fields &= ~IPPF_HOPOPTS; 10800 else 10801 ipp->ipp_fields |= IPPF_HOPOPTS; 10802 reterr = tcp_build_hdrs(q, tcp); 10803 if (reterr != 0) 10804 return (reterr); 10805 break; 10806 } 10807 case IPV6_RTHDRDSTOPTS: { 10808 ip6_dest_t *dopts = (ip6_dest_t *)invalp; 10809 10810 /* 10811 * Sanity checks - minimum size, size a multiple of 10812 * eight bytes, and matching size passed in. 10813 */ 10814 if (inlen != 0 && 10815 inlen != (8 * (dopts->ip6d_len + 1))) 10816 return (EINVAL); 10817 10818 if (checkonly) 10819 break; 10820 10821 reterr = optcom_pkt_set(invalp, inlen, B_TRUE, 10822 (uchar_t **)&ipp->ipp_rtdstopts, 10823 &ipp->ipp_rtdstoptslen, 0); 10824 if (reterr != 0) 10825 return (reterr); 10826 if (ipp->ipp_rtdstoptslen == 0) 10827 ipp->ipp_fields &= ~IPPF_RTDSTOPTS; 10828 else 10829 ipp->ipp_fields |= IPPF_RTDSTOPTS; 10830 reterr = tcp_build_hdrs(q, tcp); 10831 if (reterr != 0) 10832 return (reterr); 10833 break; 10834 } 10835 case IPV6_DSTOPTS: { 10836 ip6_dest_t *dopts = (ip6_dest_t *)invalp; 10837 10838 /* 10839 * Sanity checks - minimum size, size a multiple of 10840 * eight bytes, and matching size passed in. 10841 */ 10842 if (inlen != 0 && 10843 inlen != (8 * (dopts->ip6d_len + 1))) 10844 return (EINVAL); 10845 10846 if (checkonly) 10847 break; 10848 10849 reterr = optcom_pkt_set(invalp, inlen, B_TRUE, 10850 (uchar_t **)&ipp->ipp_dstopts, 10851 &ipp->ipp_dstoptslen, 0); 10852 if (reterr != 0) 10853 return (reterr); 10854 if (ipp->ipp_dstoptslen == 0) 10855 ipp->ipp_fields &= ~IPPF_DSTOPTS; 10856 else 10857 ipp->ipp_fields |= IPPF_DSTOPTS; 10858 reterr = tcp_build_hdrs(q, tcp); 10859 if (reterr != 0) 10860 return (reterr); 10861 break; 10862 } 10863 case IPV6_RTHDR: { 10864 ip6_rthdr_t *rt = (ip6_rthdr_t *)invalp; 10865 10866 /* 10867 * Sanity checks - minimum size, size a multiple of 10868 * eight bytes, and matching size passed in. 10869 */ 10870 if (inlen != 0 && 10871 inlen != (8 * (rt->ip6r_len + 1))) 10872 return (EINVAL); 10873 10874 if (checkonly) 10875 break; 10876 10877 reterr = optcom_pkt_set(invalp, inlen, B_TRUE, 10878 (uchar_t **)&ipp->ipp_rthdr, 10879 &ipp->ipp_rthdrlen, 0); 10880 if (reterr != 0) 10881 return (reterr); 10882 if (ipp->ipp_rthdrlen == 0) 10883 ipp->ipp_fields &= ~IPPF_RTHDR; 10884 else 10885 ipp->ipp_fields |= IPPF_RTHDR; 10886 reterr = tcp_build_hdrs(q, tcp); 10887 if (reterr != 0) 10888 return (reterr); 10889 break; 10890 } 10891 case IPV6_V6ONLY: 10892 if (!checkonly) 10893 tcp->tcp_connp->conn_ipv6_v6only = onoff; 10894 break; 10895 case IPV6_USE_MIN_MTU: 10896 if (inlen != sizeof (int)) 10897 return (EINVAL); 10898 10899 if (*i1 < -1 || *i1 > 1) 10900 return (EINVAL); 10901 10902 if (checkonly) 10903 break; 10904 10905 ipp->ipp_fields |= IPPF_USE_MIN_MTU; 10906 ipp->ipp_use_min_mtu = *i1; 10907 break; 10908 case IPV6_BOUND_PIF: 10909 /* Handled at the IP level */ 10910 return (-EINVAL); 10911 case IPV6_SEC_OPT: 10912 /* 10913 * We should not allow policy setting after 10914 * we start listening for connections. 10915 */ 10916 if (tcp->tcp_state == TCPS_LISTEN) { 10917 return (EINVAL); 10918 } else { 10919 /* Handled at the IP level */ 10920 return (-EINVAL); 10921 } 10922 case IPV6_SRC_PREFERENCES: 10923 if (inlen != sizeof (uint32_t)) 10924 return (EINVAL); 10925 reterr = ip6_set_src_preferences(tcp->tcp_connp, 10926 *(uint32_t *)invalp); 10927 if (reterr != 0) { 10928 *outlenp = 0; 10929 return (reterr); 10930 } 10931 break; 10932 default: 10933 *outlenp = 0; 10934 return (EINVAL); 10935 } 10936 break; 10937 } /* end IPPROTO_IPV6 */ 10938 default: 10939 *outlenp = 0; 10940 return (EINVAL); 10941 } 10942 /* 10943 * Common case of OK return with outval same as inval 10944 */ 10945 if (invalp != outvalp) { 10946 /* don't trust bcopy for identical src/dst */ 10947 (void) bcopy(invalp, outvalp, inlen); 10948 } 10949 *outlenp = inlen; 10950 return (0); 10951 } 10952 10953 /* 10954 * Update tcp_sticky_hdrs based on tcp_sticky_ipp. 10955 * The headers include ip6i_t (if needed), ip6_t, any sticky extension 10956 * headers, and the maximum size tcp header (to avoid reallocation 10957 * on the fly for additional tcp options). 10958 * Returns failure if can't allocate memory. 10959 */ 10960 static int 10961 tcp_build_hdrs(queue_t *q, tcp_t *tcp) 10962 { 10963 char *hdrs; 10964 uint_t hdrs_len; 10965 ip6i_t *ip6i; 10966 char buf[TCP_MAX_HDR_LENGTH]; 10967 ip6_pkt_t *ipp = &tcp->tcp_sticky_ipp; 10968 in6_addr_t src, dst; 10969 10970 /* 10971 * save the existing tcp header and source/dest IP addresses 10972 */ 10973 bcopy(tcp->tcp_tcph, buf, tcp->tcp_tcp_hdr_len); 10974 src = tcp->tcp_ip6h->ip6_src; 10975 dst = tcp->tcp_ip6h->ip6_dst; 10976 hdrs_len = ip_total_hdrs_len_v6(ipp) + TCP_MAX_HDR_LENGTH; 10977 ASSERT(hdrs_len != 0); 10978 if (hdrs_len > tcp->tcp_iphc_len) { 10979 /* Need to reallocate */ 10980 hdrs = kmem_zalloc(hdrs_len, KM_NOSLEEP); 10981 if (hdrs == NULL) 10982 return (ENOMEM); 10983 if (tcp->tcp_iphc != NULL) { 10984 if (tcp->tcp_hdr_grown) { 10985 kmem_free(tcp->tcp_iphc, tcp->tcp_iphc_len); 10986 } else { 10987 bzero(tcp->tcp_iphc, tcp->tcp_iphc_len); 10988 kmem_cache_free(tcp_iphc_cache, tcp->tcp_iphc); 10989 } 10990 tcp->tcp_iphc_len = 0; 10991 } 10992 ASSERT(tcp->tcp_iphc_len == 0); 10993 tcp->tcp_iphc = hdrs; 10994 tcp->tcp_iphc_len = hdrs_len; 10995 tcp->tcp_hdr_grown = B_TRUE; 10996 } 10997 ip_build_hdrs_v6((uchar_t *)tcp->tcp_iphc, 10998 hdrs_len - TCP_MAX_HDR_LENGTH, ipp, IPPROTO_TCP); 10999 11000 /* Set header fields not in ipp */ 11001 if (ipp->ipp_fields & IPPF_HAS_IP6I) { 11002 ip6i = (ip6i_t *)tcp->tcp_iphc; 11003 tcp->tcp_ip6h = (ip6_t *)&ip6i[1]; 11004 } else { 11005 tcp->tcp_ip6h = (ip6_t *)tcp->tcp_iphc; 11006 } 11007 /* 11008 * tcp->tcp_ip_hdr_len will include ip6i_t if there is one. 11009 * 11010 * tcp->tcp_tcp_hdr_len doesn't change here. 11011 */ 11012 tcp->tcp_ip_hdr_len = hdrs_len - TCP_MAX_HDR_LENGTH; 11013 tcp->tcp_tcph = (tcph_t *)(tcp->tcp_iphc + tcp->tcp_ip_hdr_len); 11014 tcp->tcp_hdr_len = tcp->tcp_ip_hdr_len + tcp->tcp_tcp_hdr_len; 11015 11016 bcopy(buf, tcp->tcp_tcph, tcp->tcp_tcp_hdr_len); 11017 11018 tcp->tcp_ip6h->ip6_src = src; 11019 tcp->tcp_ip6h->ip6_dst = dst; 11020 11021 /* 11022 * If the hop limit was not set by ip_build_hdrs_v6(), set it to 11023 * the default value for TCP. 11024 */ 11025 if (!(ipp->ipp_fields & IPPF_UNICAST_HOPS)) 11026 tcp->tcp_ip6h->ip6_hops = tcp_ipv6_hoplimit; 11027 11028 /* 11029 * If we're setting extension headers after a connection 11030 * has been established, and if we have a routing header 11031 * among the extension headers, call ip_massage_options_v6 to 11032 * manipulate the routing header/ip6_dst set the checksum 11033 * difference in the tcp header template. 11034 * (This happens in tcp_connect_ipv6 if the routing header 11035 * is set prior to the connect.) 11036 * Set the tcp_sum to zero first in case we've cleared a 11037 * routing header or don't have one at all. 11038 */ 11039 tcp->tcp_sum = 0; 11040 if ((tcp->tcp_state >= TCPS_SYN_SENT) && 11041 (tcp->tcp_ipp_fields & IPPF_RTHDR)) { 11042 ip6_rthdr_t *rth = ip_find_rthdr_v6(tcp->tcp_ip6h, 11043 (uint8_t *)tcp->tcp_tcph); 11044 if (rth != NULL) { 11045 tcp->tcp_sum = ip_massage_options_v6(tcp->tcp_ip6h, 11046 rth); 11047 tcp->tcp_sum = ntohs((tcp->tcp_sum & 0xFFFF) + 11048 (tcp->tcp_sum >> 16)); 11049 } 11050 } 11051 11052 /* Try to get everything in a single mblk */ 11053 (void) mi_set_sth_wroff(RD(q), hdrs_len + tcp_wroff_xtra); 11054 return (0); 11055 } 11056 11057 /* 11058 * Transfer any source route option from ipha to buf/dst in reversed form. 11059 */ 11060 static int 11061 tcp_opt_rev_src_route(ipha_t *ipha, char *buf, uchar_t *dst) 11062 { 11063 ipoptp_t opts; 11064 uchar_t *opt; 11065 uint8_t optval; 11066 uint8_t optlen; 11067 uint32_t len = 0; 11068 11069 for (optval = ipoptp_first(&opts, ipha); 11070 optval != IPOPT_EOL; 11071 optval = ipoptp_next(&opts)) { 11072 opt = opts.ipoptp_cur; 11073 optlen = opts.ipoptp_len; 11074 switch (optval) { 11075 int off1, off2; 11076 case IPOPT_SSRR: 11077 case IPOPT_LSRR: 11078 11079 /* Reverse source route */ 11080 /* 11081 * First entry should be the next to last one in the 11082 * current source route (the last entry is our 11083 * address.) 11084 * The last entry should be the final destination. 11085 */ 11086 buf[IPOPT_OPTVAL] = (uint8_t)optval; 11087 buf[IPOPT_OLEN] = (uint8_t)optlen; 11088 off1 = IPOPT_MINOFF_SR - 1; 11089 off2 = opt[IPOPT_OFFSET] - IP_ADDR_LEN - 1; 11090 if (off2 < 0) { 11091 /* No entries in source route */ 11092 break; 11093 } 11094 bcopy(opt + off2, dst, IP_ADDR_LEN); 11095 /* 11096 * Note: use src since ipha has not had its src 11097 * and dst reversed (it is in the state it was 11098 * received. 11099 */ 11100 bcopy(&ipha->ipha_src, buf + off2, 11101 IP_ADDR_LEN); 11102 off2 -= IP_ADDR_LEN; 11103 11104 while (off2 > 0) { 11105 bcopy(opt + off2, buf + off1, 11106 IP_ADDR_LEN); 11107 off1 += IP_ADDR_LEN; 11108 off2 -= IP_ADDR_LEN; 11109 } 11110 buf[IPOPT_OFFSET] = IPOPT_MINOFF_SR; 11111 buf += optlen; 11112 len += optlen; 11113 break; 11114 } 11115 } 11116 done: 11117 /* Pad the resulting options */ 11118 while (len & 0x3) { 11119 *buf++ = IPOPT_EOL; 11120 len++; 11121 } 11122 return (len); 11123 } 11124 11125 11126 /* 11127 * Extract and revert a source route from ipha (if any) 11128 * and then update the relevant fields in both tcp_t and the standard header. 11129 */ 11130 static void 11131 tcp_opt_reverse(tcp_t *tcp, ipha_t *ipha) 11132 { 11133 char buf[TCP_MAX_HDR_LENGTH]; 11134 uint_t tcph_len; 11135 int len; 11136 11137 ASSERT(IPH_HDR_VERSION(ipha) == IPV4_VERSION); 11138 len = IPH_HDR_LENGTH(ipha); 11139 if (len == IP_SIMPLE_HDR_LENGTH) 11140 /* Nothing to do */ 11141 return; 11142 if (len > IP_SIMPLE_HDR_LENGTH + TCP_MAX_IP_OPTIONS_LENGTH || 11143 (len & 0x3)) 11144 return; 11145 11146 tcph_len = tcp->tcp_tcp_hdr_len; 11147 bcopy(tcp->tcp_tcph, buf, tcph_len); 11148 tcp->tcp_sum = (tcp->tcp_ipha->ipha_dst >> 16) + 11149 (tcp->tcp_ipha->ipha_dst & 0xffff); 11150 len = tcp_opt_rev_src_route(ipha, (char *)tcp->tcp_ipha + 11151 IP_SIMPLE_HDR_LENGTH, (uchar_t *)&tcp->tcp_ipha->ipha_dst); 11152 len += IP_SIMPLE_HDR_LENGTH; 11153 tcp->tcp_sum -= ((tcp->tcp_ipha->ipha_dst >> 16) + 11154 (tcp->tcp_ipha->ipha_dst & 0xffff)); 11155 if ((int)tcp->tcp_sum < 0) 11156 tcp->tcp_sum--; 11157 tcp->tcp_sum = (tcp->tcp_sum & 0xFFFF) + (tcp->tcp_sum >> 16); 11158 tcp->tcp_sum = ntohs((tcp->tcp_sum & 0xFFFF) + (tcp->tcp_sum >> 16)); 11159 tcp->tcp_tcph = (tcph_t *)((char *)tcp->tcp_ipha + len); 11160 bcopy(buf, tcp->tcp_tcph, tcph_len); 11161 tcp->tcp_ip_hdr_len = len; 11162 tcp->tcp_ipha->ipha_version_and_hdr_length = 11163 (IP_VERSION << 4) | (len >> 2); 11164 len += tcph_len; 11165 tcp->tcp_hdr_len = len; 11166 } 11167 11168 /* 11169 * Copy the standard header into its new location, 11170 * lay in the new options and then update the relevant 11171 * fields in both tcp_t and the standard header. 11172 */ 11173 static int 11174 tcp_opt_set_header(tcp_t *tcp, boolean_t checkonly, uchar_t *ptr, uint_t len) 11175 { 11176 uint_t tcph_len; 11177 uint8_t *ip_optp; 11178 tcph_t *new_tcph; 11179 11180 if ((len > TCP_MAX_IP_OPTIONS_LENGTH) || (len & 0x3)) 11181 return (EINVAL); 11182 11183 if (len > IP_MAX_OPT_LENGTH - tcp->tcp_label_len) 11184 return (EINVAL); 11185 11186 if (checkonly) { 11187 /* 11188 * do not really set, just pretend to - T_CHECK 11189 */ 11190 return (0); 11191 } 11192 11193 ip_optp = (uint8_t *)tcp->tcp_ipha + IP_SIMPLE_HDR_LENGTH; 11194 if (tcp->tcp_label_len > 0) { 11195 int padlen; 11196 uint8_t opt; 11197 11198 /* convert list termination to no-ops */ 11199 padlen = tcp->tcp_label_len - ip_optp[IPOPT_OLEN]; 11200 ip_optp += ip_optp[IPOPT_OLEN]; 11201 opt = len > 0 ? IPOPT_NOP : IPOPT_EOL; 11202 while (--padlen >= 0) 11203 *ip_optp++ = opt; 11204 } 11205 tcph_len = tcp->tcp_tcp_hdr_len; 11206 new_tcph = (tcph_t *)(ip_optp + len); 11207 ovbcopy(tcp->tcp_tcph, new_tcph, tcph_len); 11208 tcp->tcp_tcph = new_tcph; 11209 bcopy(ptr, ip_optp, len); 11210 11211 len += IP_SIMPLE_HDR_LENGTH + tcp->tcp_label_len; 11212 11213 tcp->tcp_ip_hdr_len = len; 11214 tcp->tcp_ipha->ipha_version_and_hdr_length = 11215 (IP_VERSION << 4) | (len >> 2); 11216 tcp->tcp_hdr_len = len + tcph_len; 11217 if (!TCP_IS_DETACHED(tcp)) { 11218 /* Always allocate room for all options. */ 11219 (void) mi_set_sth_wroff(tcp->tcp_rq, 11220 TCP_MAX_COMBINED_HEADER_LENGTH + tcp_wroff_xtra); 11221 } 11222 return (0); 11223 } 11224 11225 /* Get callback routine passed to nd_load by tcp_param_register */ 11226 /* ARGSUSED */ 11227 static int 11228 tcp_param_get(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr) 11229 { 11230 tcpparam_t *tcppa = (tcpparam_t *)cp; 11231 11232 (void) mi_mpprintf(mp, "%u", tcppa->tcp_param_val); 11233 return (0); 11234 } 11235 11236 /* 11237 * Walk through the param array specified registering each element with the 11238 * named dispatch handler. 11239 */ 11240 static boolean_t 11241 tcp_param_register(tcpparam_t *tcppa, int cnt) 11242 { 11243 for (; cnt-- > 0; tcppa++) { 11244 if (tcppa->tcp_param_name && tcppa->tcp_param_name[0]) { 11245 if (!nd_load(&tcp_g_nd, tcppa->tcp_param_name, 11246 tcp_param_get, tcp_param_set, 11247 (caddr_t)tcppa)) { 11248 nd_free(&tcp_g_nd); 11249 return (B_FALSE); 11250 } 11251 } 11252 } 11253 if (!nd_load(&tcp_g_nd, tcp_wroff_xtra_param.tcp_param_name, 11254 tcp_param_get, tcp_param_set_aligned, 11255 (caddr_t)&tcp_wroff_xtra_param)) { 11256 nd_free(&tcp_g_nd); 11257 return (B_FALSE); 11258 } 11259 if (!nd_load(&tcp_g_nd, tcp_mdt_head_param.tcp_param_name, 11260 tcp_param_get, tcp_param_set_aligned, 11261 (caddr_t)&tcp_mdt_head_param)) { 11262 nd_free(&tcp_g_nd); 11263 return (B_FALSE); 11264 } 11265 if (!nd_load(&tcp_g_nd, tcp_mdt_tail_param.tcp_param_name, 11266 tcp_param_get, tcp_param_set_aligned, 11267 (caddr_t)&tcp_mdt_tail_param)) { 11268 nd_free(&tcp_g_nd); 11269 return (B_FALSE); 11270 } 11271 if (!nd_load(&tcp_g_nd, tcp_mdt_max_pbufs_param.tcp_param_name, 11272 tcp_param_get, tcp_param_set, 11273 (caddr_t)&tcp_mdt_max_pbufs_param)) { 11274 nd_free(&tcp_g_nd); 11275 return (B_FALSE); 11276 } 11277 if (!nd_load(&tcp_g_nd, "tcp_extra_priv_ports", 11278 tcp_extra_priv_ports_get, NULL, NULL)) { 11279 nd_free(&tcp_g_nd); 11280 return (B_FALSE); 11281 } 11282 if (!nd_load(&tcp_g_nd, "tcp_extra_priv_ports_add", 11283 NULL, tcp_extra_priv_ports_add, NULL)) { 11284 nd_free(&tcp_g_nd); 11285 return (B_FALSE); 11286 } 11287 if (!nd_load(&tcp_g_nd, "tcp_extra_priv_ports_del", 11288 NULL, tcp_extra_priv_ports_del, NULL)) { 11289 nd_free(&tcp_g_nd); 11290 return (B_FALSE); 11291 } 11292 if (!nd_load(&tcp_g_nd, "tcp_status", tcp_status_report, NULL, 11293 NULL)) { 11294 nd_free(&tcp_g_nd); 11295 return (B_FALSE); 11296 } 11297 if (!nd_load(&tcp_g_nd, "tcp_bind_hash", tcp_bind_hash_report, 11298 NULL, NULL)) { 11299 nd_free(&tcp_g_nd); 11300 return (B_FALSE); 11301 } 11302 if (!nd_load(&tcp_g_nd, "tcp_listen_hash", tcp_listen_hash_report, 11303 NULL, NULL)) { 11304 nd_free(&tcp_g_nd); 11305 return (B_FALSE); 11306 } 11307 if (!nd_load(&tcp_g_nd, "tcp_conn_hash", tcp_conn_hash_report, 11308 NULL, NULL)) { 11309 nd_free(&tcp_g_nd); 11310 return (B_FALSE); 11311 } 11312 if (!nd_load(&tcp_g_nd, "tcp_acceptor_hash", tcp_acceptor_hash_report, 11313 NULL, NULL)) { 11314 nd_free(&tcp_g_nd); 11315 return (B_FALSE); 11316 } 11317 if (!nd_load(&tcp_g_nd, "tcp_host_param", tcp_host_param_report, 11318 tcp_host_param_set, NULL)) { 11319 nd_free(&tcp_g_nd); 11320 return (B_FALSE); 11321 } 11322 if (!nd_load(&tcp_g_nd, "tcp_host_param_ipv6", tcp_host_param_report, 11323 tcp_host_param_set_ipv6, NULL)) { 11324 nd_free(&tcp_g_nd); 11325 return (B_FALSE); 11326 } 11327 if (!nd_load(&tcp_g_nd, "tcp_1948_phrase", NULL, tcp_1948_phrase_set, 11328 NULL)) { 11329 nd_free(&tcp_g_nd); 11330 return (B_FALSE); 11331 } 11332 if (!nd_load(&tcp_g_nd, "tcp_reserved_port_list", 11333 tcp_reserved_port_list, NULL, NULL)) { 11334 nd_free(&tcp_g_nd); 11335 return (B_FALSE); 11336 } 11337 /* 11338 * Dummy ndd variables - only to convey obsolescence information 11339 * through printing of their name (no get or set routines) 11340 * XXX Remove in future releases ? 11341 */ 11342 if (!nd_load(&tcp_g_nd, 11343 "tcp_close_wait_interval(obsoleted - " 11344 "use tcp_time_wait_interval)", NULL, NULL, NULL)) { 11345 nd_free(&tcp_g_nd); 11346 return (B_FALSE); 11347 } 11348 return (B_TRUE); 11349 } 11350 11351 /* ndd set routine for tcp_wroff_xtra, tcp_mdt_hdr_{head,tail}_min. */ 11352 /* ARGSUSED */ 11353 static int 11354 tcp_param_set_aligned(queue_t *q, mblk_t *mp, char *value, caddr_t cp, 11355 cred_t *cr) 11356 { 11357 long new_value; 11358 tcpparam_t *tcppa = (tcpparam_t *)cp; 11359 11360 if (ddi_strtol(value, NULL, 10, &new_value) != 0 || 11361 new_value < tcppa->tcp_param_min || 11362 new_value > tcppa->tcp_param_max) { 11363 return (EINVAL); 11364 } 11365 /* 11366 * Need to make sure new_value is a multiple of 4. If it is not, 11367 * round it up. For future 64 bit requirement, we actually make it 11368 * a multiple of 8. 11369 */ 11370 if (new_value & 0x7) { 11371 new_value = (new_value & ~0x7) + 0x8; 11372 } 11373 tcppa->tcp_param_val = new_value; 11374 return (0); 11375 } 11376 11377 /* Set callback routine passed to nd_load by tcp_param_register */ 11378 /* ARGSUSED */ 11379 static int 11380 tcp_param_set(queue_t *q, mblk_t *mp, char *value, caddr_t cp, cred_t *cr) 11381 { 11382 long new_value; 11383 tcpparam_t *tcppa = (tcpparam_t *)cp; 11384 11385 if (ddi_strtol(value, NULL, 10, &new_value) != 0 || 11386 new_value < tcppa->tcp_param_min || 11387 new_value > tcppa->tcp_param_max) { 11388 return (EINVAL); 11389 } 11390 tcppa->tcp_param_val = new_value; 11391 return (0); 11392 } 11393 11394 /* 11395 * Add a new piece to the tcp reassembly queue. If the gap at the beginning 11396 * is filled, return as much as we can. The message passed in may be 11397 * multi-part, chained using b_cont. "start" is the starting sequence 11398 * number for this piece. 11399 */ 11400 static mblk_t * 11401 tcp_reass(tcp_t *tcp, mblk_t *mp, uint32_t start) 11402 { 11403 uint32_t end; 11404 mblk_t *mp1; 11405 mblk_t *mp2; 11406 mblk_t *next_mp; 11407 uint32_t u1; 11408 11409 /* Walk through all the new pieces. */ 11410 do { 11411 ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= 11412 (uintptr_t)INT_MAX); 11413 end = start + (int)(mp->b_wptr - mp->b_rptr); 11414 next_mp = mp->b_cont; 11415 if (start == end) { 11416 /* Empty. Blast it. */ 11417 freeb(mp); 11418 continue; 11419 } 11420 mp->b_cont = NULL; 11421 TCP_REASS_SET_SEQ(mp, start); 11422 TCP_REASS_SET_END(mp, end); 11423 mp1 = tcp->tcp_reass_tail; 11424 if (!mp1) { 11425 tcp->tcp_reass_tail = mp; 11426 tcp->tcp_reass_head = mp; 11427 BUMP_MIB(&tcp_mib, tcpInDataUnorderSegs); 11428 UPDATE_MIB(&tcp_mib, 11429 tcpInDataUnorderBytes, end - start); 11430 continue; 11431 } 11432 /* New stuff completely beyond tail? */ 11433 if (SEQ_GEQ(start, TCP_REASS_END(mp1))) { 11434 /* Link it on end. */ 11435 mp1->b_cont = mp; 11436 tcp->tcp_reass_tail = mp; 11437 BUMP_MIB(&tcp_mib, tcpInDataUnorderSegs); 11438 UPDATE_MIB(&tcp_mib, 11439 tcpInDataUnorderBytes, end - start); 11440 continue; 11441 } 11442 mp1 = tcp->tcp_reass_head; 11443 u1 = TCP_REASS_SEQ(mp1); 11444 /* New stuff at the front? */ 11445 if (SEQ_LT(start, u1)) { 11446 /* Yes... Check for overlap. */ 11447 mp->b_cont = mp1; 11448 tcp->tcp_reass_head = mp; 11449 tcp_reass_elim_overlap(tcp, mp); 11450 continue; 11451 } 11452 /* 11453 * The new piece fits somewhere between the head and tail. 11454 * We find our slot, where mp1 precedes us and mp2 trails. 11455 */ 11456 for (; (mp2 = mp1->b_cont) != NULL; mp1 = mp2) { 11457 u1 = TCP_REASS_SEQ(mp2); 11458 if (SEQ_LEQ(start, u1)) 11459 break; 11460 } 11461 /* Link ourselves in */ 11462 mp->b_cont = mp2; 11463 mp1->b_cont = mp; 11464 11465 /* Trim overlap with following mblk(s) first */ 11466 tcp_reass_elim_overlap(tcp, mp); 11467 11468 /* Trim overlap with preceding mblk */ 11469 tcp_reass_elim_overlap(tcp, mp1); 11470 11471 } while (start = end, mp = next_mp); 11472 mp1 = tcp->tcp_reass_head; 11473 /* Anything ready to go? */ 11474 if (TCP_REASS_SEQ(mp1) != tcp->tcp_rnxt) 11475 return (NULL); 11476 /* Eat what we can off the queue */ 11477 for (;;) { 11478 mp = mp1->b_cont; 11479 end = TCP_REASS_END(mp1); 11480 TCP_REASS_SET_SEQ(mp1, 0); 11481 TCP_REASS_SET_END(mp1, 0); 11482 if (!mp) { 11483 tcp->tcp_reass_tail = NULL; 11484 break; 11485 } 11486 if (end != TCP_REASS_SEQ(mp)) { 11487 mp1->b_cont = NULL; 11488 break; 11489 } 11490 mp1 = mp; 11491 } 11492 mp1 = tcp->tcp_reass_head; 11493 tcp->tcp_reass_head = mp; 11494 return (mp1); 11495 } 11496 11497 /* Eliminate any overlap that mp may have over later mblks */ 11498 static void 11499 tcp_reass_elim_overlap(tcp_t *tcp, mblk_t *mp) 11500 { 11501 uint32_t end; 11502 mblk_t *mp1; 11503 uint32_t u1; 11504 11505 end = TCP_REASS_END(mp); 11506 while ((mp1 = mp->b_cont) != NULL) { 11507 u1 = TCP_REASS_SEQ(mp1); 11508 if (!SEQ_GT(end, u1)) 11509 break; 11510 if (!SEQ_GEQ(end, TCP_REASS_END(mp1))) { 11511 mp->b_wptr -= end - u1; 11512 TCP_REASS_SET_END(mp, u1); 11513 BUMP_MIB(&tcp_mib, tcpInDataPartDupSegs); 11514 UPDATE_MIB(&tcp_mib, tcpInDataPartDupBytes, end - u1); 11515 break; 11516 } 11517 mp->b_cont = mp1->b_cont; 11518 TCP_REASS_SET_SEQ(mp1, 0); 11519 TCP_REASS_SET_END(mp1, 0); 11520 freeb(mp1); 11521 BUMP_MIB(&tcp_mib, tcpInDataDupSegs); 11522 UPDATE_MIB(&tcp_mib, tcpInDataDupBytes, end - u1); 11523 } 11524 if (!mp1) 11525 tcp->tcp_reass_tail = mp; 11526 } 11527 11528 /* 11529 * Send up all messages queued on tcp_rcv_list. 11530 */ 11531 static uint_t 11532 tcp_rcv_drain(queue_t *q, tcp_t *tcp) 11533 { 11534 mblk_t *mp; 11535 uint_t ret = 0; 11536 uint_t thwin; 11537 #ifdef DEBUG 11538 uint_t cnt = 0; 11539 #endif 11540 /* Can't drain on an eager connection */ 11541 if (tcp->tcp_listener != NULL) 11542 return (ret); 11543 11544 /* 11545 * Handle two cases here: we are currently fused or we were 11546 * previously fused and have some urgent data to be delivered 11547 * upstream. The latter happens because we either ran out of 11548 * memory or were detached and therefore sending the SIGURG was 11549 * deferred until this point. In either case we pass control 11550 * over to tcp_fuse_rcv_drain() since it may need to complete 11551 * some work. 11552 */ 11553 if ((tcp->tcp_fused || tcp->tcp_fused_sigurg)) { 11554 ASSERT(tcp->tcp_fused_sigurg_mp != NULL); 11555 if (tcp_fuse_rcv_drain(q, tcp, tcp->tcp_fused ? NULL : 11556 &tcp->tcp_fused_sigurg_mp)) 11557 return (ret); 11558 } 11559 11560 while ((mp = tcp->tcp_rcv_list) != NULL) { 11561 tcp->tcp_rcv_list = mp->b_next; 11562 mp->b_next = NULL; 11563 #ifdef DEBUG 11564 cnt += msgdsize(mp); 11565 #endif 11566 /* Does this need SSL processing first? */ 11567 if ((tcp->tcp_kssl_ctx != NULL) && (DB_TYPE(mp) == M_DATA)) { 11568 tcp_kssl_input(tcp, mp); 11569 continue; 11570 } 11571 putnext(q, mp); 11572 } 11573 ASSERT(cnt == tcp->tcp_rcv_cnt); 11574 tcp->tcp_rcv_last_head = NULL; 11575 tcp->tcp_rcv_last_tail = NULL; 11576 tcp->tcp_rcv_cnt = 0; 11577 11578 /* Learn the latest rwnd information that we sent to the other side. */ 11579 thwin = ((uint_t)BE16_TO_U16(tcp->tcp_tcph->th_win)) 11580 << tcp->tcp_rcv_ws; 11581 /* This is peer's calculated send window (our receive window). */ 11582 thwin -= tcp->tcp_rnxt - tcp->tcp_rack; 11583 /* 11584 * Increase the receive window to max. But we need to do receiver 11585 * SWS avoidance. This means that we need to check the increase of 11586 * of receive window is at least 1 MSS. 11587 */ 11588 if (canputnext(q) && (q->q_hiwat - thwin >= tcp->tcp_mss)) { 11589 /* 11590 * If the window that the other side knows is less than max 11591 * deferred acks segments, send an update immediately. 11592 */ 11593 if (thwin < tcp->tcp_rack_cur_max * tcp->tcp_mss) { 11594 BUMP_MIB(&tcp_mib, tcpOutWinUpdate); 11595 ret = TH_ACK_NEEDED; 11596 } 11597 tcp->tcp_rwnd = q->q_hiwat; 11598 } 11599 /* No need for the push timer now. */ 11600 if (tcp->tcp_push_tid != 0) { 11601 (void) TCP_TIMER_CANCEL(tcp, tcp->tcp_push_tid); 11602 tcp->tcp_push_tid = 0; 11603 } 11604 return (ret); 11605 } 11606 11607 /* 11608 * Queue data on tcp_rcv_list which is a b_next chain. 11609 * tcp_rcv_last_head/tail is the last element of this chain. 11610 * Each element of the chain is a b_cont chain. 11611 * 11612 * M_DATA messages are added to the current element. 11613 * Other messages are added as new (b_next) elements. 11614 */ 11615 void 11616 tcp_rcv_enqueue(tcp_t *tcp, mblk_t *mp, uint_t seg_len) 11617 { 11618 ASSERT(seg_len == msgdsize(mp)); 11619 ASSERT(tcp->tcp_rcv_list == NULL || tcp->tcp_rcv_last_head != NULL); 11620 11621 if (tcp->tcp_rcv_list == NULL) { 11622 ASSERT(tcp->tcp_rcv_last_head == NULL); 11623 tcp->tcp_rcv_list = mp; 11624 tcp->tcp_rcv_last_head = mp; 11625 } else if (DB_TYPE(mp) == DB_TYPE(tcp->tcp_rcv_last_head)) { 11626 tcp->tcp_rcv_last_tail->b_cont = mp; 11627 } else { 11628 tcp->tcp_rcv_last_head->b_next = mp; 11629 tcp->tcp_rcv_last_head = mp; 11630 } 11631 11632 while (mp->b_cont) 11633 mp = mp->b_cont; 11634 11635 tcp->tcp_rcv_last_tail = mp; 11636 tcp->tcp_rcv_cnt += seg_len; 11637 tcp->tcp_rwnd -= seg_len; 11638 } 11639 11640 /* 11641 * DEFAULT TCP ENTRY POINT via squeue on READ side. 11642 * 11643 * This is the default entry function into TCP on the read side. TCP is 11644 * always entered via squeue i.e. using squeue's for mutual exclusion. 11645 * When classifier does a lookup to find the tcp, it also puts a reference 11646 * on the conn structure associated so the tcp is guaranteed to exist 11647 * when we come here. We still need to check the state because it might 11648 * as well has been closed. The squeue processing function i.e. squeue_enter, 11649 * squeue_enter_nodrain, or squeue_drain is responsible for doing the 11650 * CONN_DEC_REF. 11651 * 11652 * Apart from the default entry point, IP also sends packets directly to 11653 * tcp_rput_data for AF_INET fast path and tcp_conn_request for incoming 11654 * connections. 11655 */ 11656 void 11657 tcp_input(void *arg, mblk_t *mp, void *arg2) 11658 { 11659 conn_t *connp = (conn_t *)arg; 11660 tcp_t *tcp = (tcp_t *)connp->conn_tcp; 11661 11662 /* arg2 is the sqp */ 11663 ASSERT(arg2 != NULL); 11664 ASSERT(mp != NULL); 11665 11666 /* 11667 * Don't accept any input on a closed tcp as this TCP logically does 11668 * not exist on the system. Don't proceed further with this TCP. 11669 * For eg. this packet could trigger another close of this tcp 11670 * which would be disastrous for tcp_refcnt. tcp_close_detached / 11671 * tcp_clean_death / tcp_closei_local must be called at most once 11672 * on a TCP. In this case we need to refeed the packet into the 11673 * classifier and figure out where the packet should go. Need to 11674 * preserve the recv_ill somehow. Until we figure that out, for 11675 * now just drop the packet if we can't classify the packet. 11676 */ 11677 if (tcp->tcp_state == TCPS_CLOSED || 11678 tcp->tcp_state == TCPS_BOUND) { 11679 conn_t *new_connp; 11680 11681 new_connp = ipcl_classify(mp, connp->conn_zoneid); 11682 if (new_connp != NULL) { 11683 tcp_reinput(new_connp, mp, arg2); 11684 return; 11685 } 11686 /* We failed to classify. For now just drop the packet */ 11687 freemsg(mp); 11688 return; 11689 } 11690 11691 if (DB_TYPE(mp) == M_DATA) 11692 tcp_rput_data(connp, mp, arg2); 11693 else 11694 tcp_rput_common(tcp, mp); 11695 } 11696 11697 /* 11698 * The read side put procedure. 11699 * The packets passed up by ip are assume to be aligned according to 11700 * OK_32PTR and the IP+TCP headers fitting in the first mblk. 11701 */ 11702 static void 11703 tcp_rput_common(tcp_t *tcp, mblk_t *mp) 11704 { 11705 /* 11706 * tcp_rput_data() does not expect M_CTL except for the case 11707 * where tcp_ipv6_recvancillary is set and we get a IN_PKTINFO 11708 * type. Need to make sure that any other M_CTLs don't make 11709 * it to tcp_rput_data since it is not expecting any and doesn't 11710 * check for it. 11711 */ 11712 if (DB_TYPE(mp) == M_CTL) { 11713 switch (*(uint32_t *)(mp->b_rptr)) { 11714 case TCP_IOC_ABORT_CONN: 11715 /* 11716 * Handle connection abort request. 11717 */ 11718 tcp_ioctl_abort_handler(tcp, mp); 11719 return; 11720 case IPSEC_IN: 11721 /* 11722 * Only secure icmp arrive in TCP and they 11723 * don't go through data path. 11724 */ 11725 tcp_icmp_error(tcp, mp); 11726 return; 11727 case IN_PKTINFO: 11728 /* 11729 * Handle IPV6_RECVPKTINFO socket option on AF_INET6 11730 * sockets that are receiving IPv4 traffic. tcp 11731 */ 11732 ASSERT(tcp->tcp_family == AF_INET6); 11733 ASSERT(tcp->tcp_ipv6_recvancillary & 11734 TCP_IPV6_RECVPKTINFO); 11735 tcp_rput_data(tcp->tcp_connp, mp, 11736 tcp->tcp_connp->conn_sqp); 11737 return; 11738 case MDT_IOC_INFO_UPDATE: 11739 /* 11740 * Handle Multidata information update; the 11741 * following routine will free the message. 11742 */ 11743 if (tcp->tcp_connp->conn_mdt_ok) { 11744 tcp_mdt_update(tcp, 11745 &((ip_mdt_info_t *)mp->b_rptr)->mdt_capab, 11746 B_FALSE); 11747 } 11748 freemsg(mp); 11749 return; 11750 case LSO_IOC_INFO_UPDATE: 11751 /* 11752 * Handle LSO information update; the following 11753 * routine will free the message. 11754 */ 11755 if (tcp->tcp_connp->conn_lso_ok) { 11756 tcp_lso_update(tcp, 11757 &((ip_lso_info_t *)mp->b_rptr)->lso_capab); 11758 } 11759 freemsg(mp); 11760 return; 11761 default: 11762 break; 11763 } 11764 } 11765 11766 /* No point processing the message if tcp is already closed */ 11767 if (TCP_IS_DETACHED_NONEAGER(tcp)) { 11768 freemsg(mp); 11769 return; 11770 } 11771 11772 tcp_rput_other(tcp, mp); 11773 } 11774 11775 11776 /* The minimum of smoothed mean deviation in RTO calculation. */ 11777 #define TCP_SD_MIN 400 11778 11779 /* 11780 * Set RTO for this connection. The formula is from Jacobson and Karels' 11781 * "Congestion Avoidance and Control" in SIGCOMM '88. The variable names 11782 * are the same as those in Appendix A.2 of that paper. 11783 * 11784 * m = new measurement 11785 * sa = smoothed RTT average (8 * average estimates). 11786 * sv = smoothed mean deviation (mdev) of RTT (4 * deviation estimates). 11787 */ 11788 static void 11789 tcp_set_rto(tcp_t *tcp, clock_t rtt) 11790 { 11791 long m = TICK_TO_MSEC(rtt); 11792 clock_t sa = tcp->tcp_rtt_sa; 11793 clock_t sv = tcp->tcp_rtt_sd; 11794 clock_t rto; 11795 11796 BUMP_MIB(&tcp_mib, tcpRttUpdate); 11797 tcp->tcp_rtt_update++; 11798 11799 /* tcp_rtt_sa is not 0 means this is a new sample. */ 11800 if (sa != 0) { 11801 /* 11802 * Update average estimator: 11803 * new rtt = 7/8 old rtt + 1/8 Error 11804 */ 11805 11806 /* m is now Error in estimate. */ 11807 m -= sa >> 3; 11808 if ((sa += m) <= 0) { 11809 /* 11810 * Don't allow the smoothed average to be negative. 11811 * We use 0 to denote reinitialization of the 11812 * variables. 11813 */ 11814 sa = 1; 11815 } 11816 11817 /* 11818 * Update deviation estimator: 11819 * new mdev = 3/4 old mdev + 1/4 (abs(Error) - old mdev) 11820 */ 11821 if (m < 0) 11822 m = -m; 11823 m -= sv >> 2; 11824 sv += m; 11825 } else { 11826 /* 11827 * This follows BSD's implementation. So the reinitialized 11828 * RTO is 3 * m. We cannot go less than 2 because if the 11829 * link is bandwidth dominated, doubling the window size 11830 * during slow start means doubling the RTT. We want to be 11831 * more conservative when we reinitialize our estimates. 3 11832 * is just a convenient number. 11833 */ 11834 sa = m << 3; 11835 sv = m << 1; 11836 } 11837 if (sv < TCP_SD_MIN) { 11838 /* 11839 * We do not know that if sa captures the delay ACK 11840 * effect as in a long train of segments, a receiver 11841 * does not delay its ACKs. So set the minimum of sv 11842 * to be TCP_SD_MIN, which is default to 400 ms, twice 11843 * of BSD DATO. That means the minimum of mean 11844 * deviation is 100 ms. 11845 * 11846 */ 11847 sv = TCP_SD_MIN; 11848 } 11849 tcp->tcp_rtt_sa = sa; 11850 tcp->tcp_rtt_sd = sv; 11851 /* 11852 * RTO = average estimates (sa / 8) + 4 * deviation estimates (sv) 11853 * 11854 * Add tcp_rexmit_interval extra in case of extreme environment 11855 * where the algorithm fails to work. The default value of 11856 * tcp_rexmit_interval_extra should be 0. 11857 * 11858 * As we use a finer grained clock than BSD and update 11859 * RTO for every ACKs, add in another .25 of RTT to the 11860 * deviation of RTO to accomodate burstiness of 1/4 of 11861 * window size. 11862 */ 11863 rto = (sa >> 3) + sv + tcp_rexmit_interval_extra + (sa >> 5); 11864 11865 if (rto > tcp_rexmit_interval_max) { 11866 tcp->tcp_rto = tcp_rexmit_interval_max; 11867 } else if (rto < tcp_rexmit_interval_min) { 11868 tcp->tcp_rto = tcp_rexmit_interval_min; 11869 } else { 11870 tcp->tcp_rto = rto; 11871 } 11872 11873 /* Now, we can reset tcp_timer_backoff to use the new RTO... */ 11874 tcp->tcp_timer_backoff = 0; 11875 } 11876 11877 /* 11878 * tcp_get_seg_mp() is called to get the pointer to a segment in the 11879 * send queue which starts at the given seq. no. 11880 * 11881 * Parameters: 11882 * tcp_t *tcp: the tcp instance pointer. 11883 * uint32_t seq: the starting seq. no of the requested segment. 11884 * int32_t *off: after the execution, *off will be the offset to 11885 * the returned mblk which points to the requested seq no. 11886 * It is the caller's responsibility to send in a non-null off. 11887 * 11888 * Return: 11889 * A mblk_t pointer pointing to the requested segment in send queue. 11890 */ 11891 static mblk_t * 11892 tcp_get_seg_mp(tcp_t *tcp, uint32_t seq, int32_t *off) 11893 { 11894 int32_t cnt; 11895 mblk_t *mp; 11896 11897 /* Defensive coding. Make sure we don't send incorrect data. */ 11898 if (SEQ_LT(seq, tcp->tcp_suna) || SEQ_GEQ(seq, tcp->tcp_snxt)) 11899 return (NULL); 11900 11901 cnt = seq - tcp->tcp_suna; 11902 mp = tcp->tcp_xmit_head; 11903 while (cnt > 0 && mp != NULL) { 11904 cnt -= mp->b_wptr - mp->b_rptr; 11905 if (cnt < 0) { 11906 cnt += mp->b_wptr - mp->b_rptr; 11907 break; 11908 } 11909 mp = mp->b_cont; 11910 } 11911 ASSERT(mp != NULL); 11912 *off = cnt; 11913 return (mp); 11914 } 11915 11916 /* 11917 * This function handles all retransmissions if SACK is enabled for this 11918 * connection. First it calculates how many segments can be retransmitted 11919 * based on tcp_pipe. Then it goes thru the notsack list to find eligible 11920 * segments. A segment is eligible if sack_cnt for that segment is greater 11921 * than or equal tcp_dupack_fast_retransmit. After it has retransmitted 11922 * all eligible segments, it checks to see if TCP can send some new segments 11923 * (fast recovery). If it can, set the appropriate flag for tcp_rput_data(). 11924 * 11925 * Parameters: 11926 * tcp_t *tcp: the tcp structure of the connection. 11927 * uint_t *flags: in return, appropriate value will be set for 11928 * tcp_rput_data(). 11929 */ 11930 static void 11931 tcp_sack_rxmit(tcp_t *tcp, uint_t *flags) 11932 { 11933 notsack_blk_t *notsack_blk; 11934 int32_t usable_swnd; 11935 int32_t mss; 11936 uint32_t seg_len; 11937 mblk_t *xmit_mp; 11938 11939 ASSERT(tcp->tcp_sack_info != NULL); 11940 ASSERT(tcp->tcp_notsack_list != NULL); 11941 ASSERT(tcp->tcp_rexmit == B_FALSE); 11942 11943 /* Defensive coding in case there is a bug... */ 11944 if (tcp->tcp_notsack_list == NULL) { 11945 return; 11946 } 11947 notsack_blk = tcp->tcp_notsack_list; 11948 mss = tcp->tcp_mss; 11949 11950 /* 11951 * Limit the num of outstanding data in the network to be 11952 * tcp_cwnd_ssthresh, which is half of the original congestion wnd. 11953 */ 11954 usable_swnd = tcp->tcp_cwnd_ssthresh - tcp->tcp_pipe; 11955 11956 /* At least retransmit 1 MSS of data. */ 11957 if (usable_swnd <= 0) { 11958 usable_swnd = mss; 11959 } 11960 11961 /* Make sure no new RTT samples will be taken. */ 11962 tcp->tcp_csuna = tcp->tcp_snxt; 11963 11964 notsack_blk = tcp->tcp_notsack_list; 11965 while (usable_swnd > 0) { 11966 mblk_t *snxt_mp, *tmp_mp; 11967 tcp_seq begin = tcp->tcp_sack_snxt; 11968 tcp_seq end; 11969 int32_t off; 11970 11971 for (; notsack_blk != NULL; notsack_blk = notsack_blk->next) { 11972 if (SEQ_GT(notsack_blk->end, begin) && 11973 (notsack_blk->sack_cnt >= 11974 tcp_dupack_fast_retransmit)) { 11975 end = notsack_blk->end; 11976 if (SEQ_LT(begin, notsack_blk->begin)) { 11977 begin = notsack_blk->begin; 11978 } 11979 break; 11980 } 11981 } 11982 /* 11983 * All holes are filled. Manipulate tcp_cwnd to send more 11984 * if we can. Note that after the SACK recovery, tcp_cwnd is 11985 * set to tcp_cwnd_ssthresh. 11986 */ 11987 if (notsack_blk == NULL) { 11988 usable_swnd = tcp->tcp_cwnd_ssthresh - tcp->tcp_pipe; 11989 if (usable_swnd <= 0 || tcp->tcp_unsent == 0) { 11990 tcp->tcp_cwnd = tcp->tcp_snxt - tcp->tcp_suna; 11991 ASSERT(tcp->tcp_cwnd > 0); 11992 return; 11993 } else { 11994 usable_swnd = usable_swnd / mss; 11995 tcp->tcp_cwnd = tcp->tcp_snxt - tcp->tcp_suna + 11996 MAX(usable_swnd * mss, mss); 11997 *flags |= TH_XMIT_NEEDED; 11998 return; 11999 } 12000 } 12001 12002 /* 12003 * Note that we may send more than usable_swnd allows here 12004 * because of round off, but no more than 1 MSS of data. 12005 */ 12006 seg_len = end - begin; 12007 if (seg_len > mss) 12008 seg_len = mss; 12009 snxt_mp = tcp_get_seg_mp(tcp, begin, &off); 12010 ASSERT(snxt_mp != NULL); 12011 /* This should not happen. Defensive coding again... */ 12012 if (snxt_mp == NULL) { 12013 return; 12014 } 12015 12016 xmit_mp = tcp_xmit_mp(tcp, snxt_mp, seg_len, &off, 12017 &tmp_mp, begin, B_TRUE, &seg_len, B_TRUE); 12018 if (xmit_mp == NULL) 12019 return; 12020 12021 usable_swnd -= seg_len; 12022 tcp->tcp_pipe += seg_len; 12023 tcp->tcp_sack_snxt = begin + seg_len; 12024 TCP_RECORD_TRACE(tcp, xmit_mp, TCP_TRACE_SEND_PKT); 12025 tcp_send_data(tcp, tcp->tcp_wq, xmit_mp); 12026 12027 /* 12028 * Update the send timestamp to avoid false retransmission. 12029 */ 12030 snxt_mp->b_prev = (mblk_t *)lbolt; 12031 12032 BUMP_MIB(&tcp_mib, tcpRetransSegs); 12033 UPDATE_MIB(&tcp_mib, tcpRetransBytes, seg_len); 12034 BUMP_MIB(&tcp_mib, tcpOutSackRetransSegs); 12035 /* 12036 * Update tcp_rexmit_max to extend this SACK recovery phase. 12037 * This happens when new data sent during fast recovery is 12038 * also lost. If TCP retransmits those new data, it needs 12039 * to extend SACK recover phase to avoid starting another 12040 * fast retransmit/recovery unnecessarily. 12041 */ 12042 if (SEQ_GT(tcp->tcp_sack_snxt, tcp->tcp_rexmit_max)) { 12043 tcp->tcp_rexmit_max = tcp->tcp_sack_snxt; 12044 } 12045 } 12046 } 12047 12048 /* 12049 * This function handles policy checking at TCP level for non-hard_bound/ 12050 * detached connections. 12051 */ 12052 static boolean_t 12053 tcp_check_policy(tcp_t *tcp, mblk_t *first_mp, ipha_t *ipha, ip6_t *ip6h, 12054 boolean_t secure, boolean_t mctl_present) 12055 { 12056 ipsec_latch_t *ipl = NULL; 12057 ipsec_action_t *act = NULL; 12058 mblk_t *data_mp; 12059 ipsec_in_t *ii; 12060 const char *reason; 12061 kstat_named_t *counter; 12062 12063 ASSERT(mctl_present || !secure); 12064 12065 ASSERT((ipha == NULL && ip6h != NULL) || 12066 (ip6h == NULL && ipha != NULL)); 12067 12068 /* 12069 * We don't necessarily have an ipsec_in_act action to verify 12070 * policy because of assymetrical policy where we have only 12071 * outbound policy and no inbound policy (possible with global 12072 * policy). 12073 */ 12074 if (!secure) { 12075 if (act == NULL || act->ipa_act.ipa_type == IPSEC_ACT_BYPASS || 12076 act->ipa_act.ipa_type == IPSEC_ACT_CLEAR) 12077 return (B_TRUE); 12078 ipsec_log_policy_failure(IPSEC_POLICY_MISMATCH, 12079 "tcp_check_policy", ipha, ip6h, secure); 12080 ip_drop_packet(first_mp, B_TRUE, NULL, NULL, 12081 &ipdrops_tcp_clear, &tcp_dropper); 12082 return (B_FALSE); 12083 } 12084 12085 /* 12086 * We have a secure packet. 12087 */ 12088 if (act == NULL) { 12089 ipsec_log_policy_failure(IPSEC_POLICY_NOT_NEEDED, 12090 "tcp_check_policy", ipha, ip6h, secure); 12091 ip_drop_packet(first_mp, B_TRUE, NULL, NULL, 12092 &ipdrops_tcp_secure, &tcp_dropper); 12093 return (B_FALSE); 12094 } 12095 12096 /* 12097 * XXX This whole routine is currently incorrect. ipl should 12098 * be set to the latch pointer, but is currently not set, so 12099 * we initialize it to NULL to avoid picking up random garbage. 12100 */ 12101 if (ipl == NULL) 12102 return (B_TRUE); 12103 12104 data_mp = first_mp->b_cont; 12105 12106 ii = (ipsec_in_t *)first_mp->b_rptr; 12107 12108 if (ipsec_check_ipsecin_latch(ii, data_mp, ipl, ipha, ip6h, &reason, 12109 &counter, tcp->tcp_connp)) { 12110 BUMP_MIB(&ip_mib, ipsecInSucceeded); 12111 return (B_TRUE); 12112 } 12113 (void) strlog(TCP_MOD_ID, 0, 0, SL_ERROR|SL_WARN|SL_CONSOLE, 12114 "tcp inbound policy mismatch: %s, packet dropped\n", 12115 reason); 12116 BUMP_MIB(&ip_mib, ipsecInFailed); 12117 12118 ip_drop_packet(first_mp, B_TRUE, NULL, NULL, counter, &tcp_dropper); 12119 return (B_FALSE); 12120 } 12121 12122 /* 12123 * tcp_ss_rexmit() is called in tcp_rput_data() to do slow start 12124 * retransmission after a timeout. 12125 * 12126 * To limit the number of duplicate segments, we limit the number of segment 12127 * to be sent in one time to tcp_snd_burst, the burst variable. 12128 */ 12129 static void 12130 tcp_ss_rexmit(tcp_t *tcp) 12131 { 12132 uint32_t snxt; 12133 uint32_t smax; 12134 int32_t win; 12135 int32_t mss; 12136 int32_t off; 12137 int32_t burst = tcp->tcp_snd_burst; 12138 mblk_t *snxt_mp; 12139 12140 /* 12141 * Note that tcp_rexmit can be set even though TCP has retransmitted 12142 * all unack'ed segments. 12143 */ 12144 if (SEQ_LT(tcp->tcp_rexmit_nxt, tcp->tcp_rexmit_max)) { 12145 smax = tcp->tcp_rexmit_max; 12146 snxt = tcp->tcp_rexmit_nxt; 12147 if (SEQ_LT(snxt, tcp->tcp_suna)) { 12148 snxt = tcp->tcp_suna; 12149 } 12150 win = MIN(tcp->tcp_cwnd, tcp->tcp_swnd); 12151 win -= snxt - tcp->tcp_suna; 12152 mss = tcp->tcp_mss; 12153 snxt_mp = tcp_get_seg_mp(tcp, snxt, &off); 12154 12155 while (SEQ_LT(snxt, smax) && (win > 0) && 12156 (burst > 0) && (snxt_mp != NULL)) { 12157 mblk_t *xmit_mp; 12158 mblk_t *old_snxt_mp = snxt_mp; 12159 uint32_t cnt = mss; 12160 12161 if (win < cnt) { 12162 cnt = win; 12163 } 12164 if (SEQ_GT(snxt + cnt, smax)) { 12165 cnt = smax - snxt; 12166 } 12167 xmit_mp = tcp_xmit_mp(tcp, snxt_mp, cnt, &off, 12168 &snxt_mp, snxt, B_TRUE, &cnt, B_TRUE); 12169 if (xmit_mp == NULL) 12170 return; 12171 12172 tcp_send_data(tcp, tcp->tcp_wq, xmit_mp); 12173 12174 snxt += cnt; 12175 win -= cnt; 12176 /* 12177 * Update the send timestamp to avoid false 12178 * retransmission. 12179 */ 12180 old_snxt_mp->b_prev = (mblk_t *)lbolt; 12181 BUMP_MIB(&tcp_mib, tcpRetransSegs); 12182 UPDATE_MIB(&tcp_mib, tcpRetransBytes, cnt); 12183 12184 tcp->tcp_rexmit_nxt = snxt; 12185 burst--; 12186 } 12187 /* 12188 * If we have transmitted all we have at the time 12189 * we started the retranmission, we can leave 12190 * the rest of the job to tcp_wput_data(). But we 12191 * need to check the send window first. If the 12192 * win is not 0, go on with tcp_wput_data(). 12193 */ 12194 if (SEQ_LT(snxt, smax) || win == 0) { 12195 return; 12196 } 12197 } 12198 /* Only call tcp_wput_data() if there is data to be sent. */ 12199 if (tcp->tcp_unsent) { 12200 tcp_wput_data(tcp, NULL, B_FALSE); 12201 } 12202 } 12203 12204 /* 12205 * Process all TCP option in SYN segment. Note that this function should 12206 * be called after tcp_adapt_ire() is called so that the necessary info 12207 * from IRE is already set in the tcp structure. 12208 * 12209 * This function sets up the correct tcp_mss value according to the 12210 * MSS option value and our header size. It also sets up the window scale 12211 * and timestamp values, and initialize SACK info blocks. But it does not 12212 * change receive window size after setting the tcp_mss value. The caller 12213 * should do the appropriate change. 12214 */ 12215 void 12216 tcp_process_options(tcp_t *tcp, tcph_t *tcph) 12217 { 12218 int options; 12219 tcp_opt_t tcpopt; 12220 uint32_t mss_max; 12221 char *tmp_tcph; 12222 12223 tcpopt.tcp = NULL; 12224 options = tcp_parse_options(tcph, &tcpopt); 12225 12226 /* 12227 * Process MSS option. Note that MSS option value does not account 12228 * for IP or TCP options. This means that it is equal to MTU - minimum 12229 * IP+TCP header size, which is 40 bytes for IPv4 and 60 bytes for 12230 * IPv6. 12231 */ 12232 if (!(options & TCP_OPT_MSS_PRESENT)) { 12233 if (tcp->tcp_ipversion == IPV4_VERSION) 12234 tcpopt.tcp_opt_mss = tcp_mss_def_ipv4; 12235 else 12236 tcpopt.tcp_opt_mss = tcp_mss_def_ipv6; 12237 } else { 12238 if (tcp->tcp_ipversion == IPV4_VERSION) 12239 mss_max = tcp_mss_max_ipv4; 12240 else 12241 mss_max = tcp_mss_max_ipv6; 12242 if (tcpopt.tcp_opt_mss < tcp_mss_min) 12243 tcpopt.tcp_opt_mss = tcp_mss_min; 12244 else if (tcpopt.tcp_opt_mss > mss_max) 12245 tcpopt.tcp_opt_mss = mss_max; 12246 } 12247 12248 /* Process Window Scale option. */ 12249 if (options & TCP_OPT_WSCALE_PRESENT) { 12250 tcp->tcp_snd_ws = tcpopt.tcp_opt_wscale; 12251 tcp->tcp_snd_ws_ok = B_TRUE; 12252 } else { 12253 tcp->tcp_snd_ws = B_FALSE; 12254 tcp->tcp_snd_ws_ok = B_FALSE; 12255 tcp->tcp_rcv_ws = B_FALSE; 12256 } 12257 12258 /* Process Timestamp option. */ 12259 if ((options & TCP_OPT_TSTAMP_PRESENT) && 12260 (tcp->tcp_snd_ts_ok || TCP_IS_DETACHED(tcp))) { 12261 tmp_tcph = (char *)tcp->tcp_tcph; 12262 12263 tcp->tcp_snd_ts_ok = B_TRUE; 12264 tcp->tcp_ts_recent = tcpopt.tcp_opt_ts_val; 12265 tcp->tcp_last_rcv_lbolt = lbolt64; 12266 ASSERT(OK_32PTR(tmp_tcph)); 12267 ASSERT(tcp->tcp_tcp_hdr_len == TCP_MIN_HEADER_LENGTH); 12268 12269 /* Fill in our template header with basic timestamp option. */ 12270 tmp_tcph += tcp->tcp_tcp_hdr_len; 12271 tmp_tcph[0] = TCPOPT_NOP; 12272 tmp_tcph[1] = TCPOPT_NOP; 12273 tmp_tcph[2] = TCPOPT_TSTAMP; 12274 tmp_tcph[3] = TCPOPT_TSTAMP_LEN; 12275 tcp->tcp_hdr_len += TCPOPT_REAL_TS_LEN; 12276 tcp->tcp_tcp_hdr_len += TCPOPT_REAL_TS_LEN; 12277 tcp->tcp_tcph->th_offset_and_rsrvd[0] += (3 << 4); 12278 } else { 12279 tcp->tcp_snd_ts_ok = B_FALSE; 12280 } 12281 12282 /* 12283 * Process SACK options. If SACK is enabled for this connection, 12284 * then allocate the SACK info structure. Note the following ways 12285 * when tcp_snd_sack_ok is set to true. 12286 * 12287 * For active connection: in tcp_adapt_ire() called in 12288 * tcp_rput_other(), or in tcp_rput_other() when tcp_sack_permitted 12289 * is checked. 12290 * 12291 * For passive connection: in tcp_adapt_ire() called in 12292 * tcp_accept_comm(). 12293 * 12294 * That's the reason why the extra TCP_IS_DETACHED() check is there. 12295 * That check makes sure that if we did not send a SACK OK option, 12296 * we will not enable SACK for this connection even though the other 12297 * side sends us SACK OK option. For active connection, the SACK 12298 * info structure has already been allocated. So we need to free 12299 * it if SACK is disabled. 12300 */ 12301 if ((options & TCP_OPT_SACK_OK_PRESENT) && 12302 (tcp->tcp_snd_sack_ok || 12303 (tcp_sack_permitted != 0 && TCP_IS_DETACHED(tcp)))) { 12304 /* This should be true only in the passive case. */ 12305 if (tcp->tcp_sack_info == NULL) { 12306 ASSERT(TCP_IS_DETACHED(tcp)); 12307 tcp->tcp_sack_info = 12308 kmem_cache_alloc(tcp_sack_info_cache, KM_NOSLEEP); 12309 } 12310 if (tcp->tcp_sack_info == NULL) { 12311 tcp->tcp_snd_sack_ok = B_FALSE; 12312 } else { 12313 tcp->tcp_snd_sack_ok = B_TRUE; 12314 if (tcp->tcp_snd_ts_ok) { 12315 tcp->tcp_max_sack_blk = 3; 12316 } else { 12317 tcp->tcp_max_sack_blk = 4; 12318 } 12319 } 12320 } else { 12321 /* 12322 * Resetting tcp_snd_sack_ok to B_FALSE so that 12323 * no SACK info will be used for this 12324 * connection. This assumes that SACK usage 12325 * permission is negotiated. This may need 12326 * to be changed once this is clarified. 12327 */ 12328 if (tcp->tcp_sack_info != NULL) { 12329 ASSERT(tcp->tcp_notsack_list == NULL); 12330 kmem_cache_free(tcp_sack_info_cache, 12331 tcp->tcp_sack_info); 12332 tcp->tcp_sack_info = NULL; 12333 } 12334 tcp->tcp_snd_sack_ok = B_FALSE; 12335 } 12336 12337 /* 12338 * Now we know the exact TCP/IP header length, subtract 12339 * that from tcp_mss to get our side's MSS. 12340 */ 12341 tcp->tcp_mss -= tcp->tcp_hdr_len; 12342 /* 12343 * Here we assume that the other side's header size will be equal to 12344 * our header size. We calculate the real MSS accordingly. Need to 12345 * take into additional stuffs IPsec puts in. 12346 * 12347 * Real MSS = Opt.MSS - (our TCP/IP header - min TCP/IP header) 12348 */ 12349 tcpopt.tcp_opt_mss -= tcp->tcp_hdr_len + tcp->tcp_ipsec_overhead - 12350 ((tcp->tcp_ipversion == IPV4_VERSION ? 12351 IP_SIMPLE_HDR_LENGTH : IPV6_HDR_LEN) + TCP_MIN_HEADER_LENGTH); 12352 12353 /* 12354 * Set MSS to the smaller one of both ends of the connection. 12355 * We should not have called tcp_mss_set() before, but our 12356 * side of the MSS should have been set to a proper value 12357 * by tcp_adapt_ire(). tcp_mss_set() will also set up the 12358 * STREAM head parameters properly. 12359 * 12360 * If we have a larger-than-16-bit window but the other side 12361 * didn't want to do window scale, tcp_rwnd_set() will take 12362 * care of that. 12363 */ 12364 tcp_mss_set(tcp, MIN(tcpopt.tcp_opt_mss, tcp->tcp_mss)); 12365 } 12366 12367 /* 12368 * Sends the T_CONN_IND to the listener. The caller calls this 12369 * functions via squeue to get inside the listener's perimeter 12370 * once the 3 way hand shake is done a T_CONN_IND needs to be 12371 * sent. As an optimization, the caller can call this directly 12372 * if listener's perimeter is same as eager's. 12373 */ 12374 /* ARGSUSED */ 12375 void 12376 tcp_send_conn_ind(void *arg, mblk_t *mp, void *arg2) 12377 { 12378 conn_t *lconnp = (conn_t *)arg; 12379 tcp_t *listener = lconnp->conn_tcp; 12380 tcp_t *tcp; 12381 struct T_conn_ind *conn_ind; 12382 ipaddr_t *addr_cache; 12383 boolean_t need_send_conn_ind = B_FALSE; 12384 12385 /* retrieve the eager */ 12386 conn_ind = (struct T_conn_ind *)mp->b_rptr; 12387 ASSERT(conn_ind->OPT_offset != 0 && 12388 conn_ind->OPT_length == sizeof (intptr_t)); 12389 bcopy(mp->b_rptr + conn_ind->OPT_offset, &tcp, 12390 conn_ind->OPT_length); 12391 12392 /* 12393 * TLI/XTI applications will get confused by 12394 * sending eager as an option since it violates 12395 * the option semantics. So remove the eager as 12396 * option since TLI/XTI app doesn't need it anyway. 12397 */ 12398 if (!TCP_IS_SOCKET(listener)) { 12399 conn_ind->OPT_length = 0; 12400 conn_ind->OPT_offset = 0; 12401 } 12402 if (listener->tcp_state == TCPS_CLOSED || 12403 TCP_IS_DETACHED(listener)) { 12404 /* 12405 * If listener has closed, it would have caused a 12406 * a cleanup/blowoff to happen for the eager. We 12407 * just need to return. 12408 */ 12409 freemsg(mp); 12410 return; 12411 } 12412 12413 12414 /* 12415 * if the conn_req_q is full defer passing up the 12416 * T_CONN_IND until space is availabe after t_accept() 12417 * processing 12418 */ 12419 mutex_enter(&listener->tcp_eager_lock); 12420 12421 /* 12422 * Take the eager out, if it is in the list of droppable eagers 12423 * as we are here because the 3W handshake is over. 12424 */ 12425 MAKE_UNDROPPABLE(tcp); 12426 12427 if (listener->tcp_conn_req_cnt_q < listener->tcp_conn_req_max) { 12428 tcp_t *tail; 12429 12430 /* 12431 * The eager already has an extra ref put in tcp_rput_data 12432 * so that it stays till accept comes back even though it 12433 * might get into TCPS_CLOSED as a result of a TH_RST etc. 12434 */ 12435 ASSERT(listener->tcp_conn_req_cnt_q0 > 0); 12436 listener->tcp_conn_req_cnt_q0--; 12437 listener->tcp_conn_req_cnt_q++; 12438 12439 /* Move from SYN_RCVD to ESTABLISHED list */ 12440 tcp->tcp_eager_next_q0->tcp_eager_prev_q0 = 12441 tcp->tcp_eager_prev_q0; 12442 tcp->tcp_eager_prev_q0->tcp_eager_next_q0 = 12443 tcp->tcp_eager_next_q0; 12444 tcp->tcp_eager_prev_q0 = NULL; 12445 tcp->tcp_eager_next_q0 = NULL; 12446 12447 /* 12448 * Insert at end of the queue because sockfs 12449 * sends down T_CONN_RES in chronological 12450 * order. Leaving the older conn indications 12451 * at front of the queue helps reducing search 12452 * time. 12453 */ 12454 tail = listener->tcp_eager_last_q; 12455 if (tail != NULL) 12456 tail->tcp_eager_next_q = tcp; 12457 else 12458 listener->tcp_eager_next_q = tcp; 12459 listener->tcp_eager_last_q = tcp; 12460 tcp->tcp_eager_next_q = NULL; 12461 /* 12462 * Delay sending up the T_conn_ind until we are 12463 * done with the eager. Once we have have sent up 12464 * the T_conn_ind, the accept can potentially complete 12465 * any time and release the refhold we have on the eager. 12466 */ 12467 need_send_conn_ind = B_TRUE; 12468 } else { 12469 /* 12470 * Defer connection on q0 and set deferred 12471 * connection bit true 12472 */ 12473 tcp->tcp_conn_def_q0 = B_TRUE; 12474 12475 /* take tcp out of q0 ... */ 12476 tcp->tcp_eager_prev_q0->tcp_eager_next_q0 = 12477 tcp->tcp_eager_next_q0; 12478 tcp->tcp_eager_next_q0->tcp_eager_prev_q0 = 12479 tcp->tcp_eager_prev_q0; 12480 12481 /* ... and place it at the end of q0 */ 12482 tcp->tcp_eager_prev_q0 = listener->tcp_eager_prev_q0; 12483 tcp->tcp_eager_next_q0 = listener; 12484 listener->tcp_eager_prev_q0->tcp_eager_next_q0 = tcp; 12485 listener->tcp_eager_prev_q0 = tcp; 12486 tcp->tcp_conn.tcp_eager_conn_ind = mp; 12487 } 12488 12489 /* we have timed out before */ 12490 if (tcp->tcp_syn_rcvd_timeout != 0) { 12491 tcp->tcp_syn_rcvd_timeout = 0; 12492 listener->tcp_syn_rcvd_timeout--; 12493 if (listener->tcp_syn_defense && 12494 listener->tcp_syn_rcvd_timeout <= 12495 (tcp_conn_req_max_q0 >> 5) && 12496 10*MINUTES < TICK_TO_MSEC(lbolt64 - 12497 listener->tcp_last_rcv_lbolt)) { 12498 /* 12499 * Turn off the defense mode if we 12500 * believe the SYN attack is over. 12501 */ 12502 listener->tcp_syn_defense = B_FALSE; 12503 if (listener->tcp_ip_addr_cache) { 12504 kmem_free((void *)listener->tcp_ip_addr_cache, 12505 IP_ADDR_CACHE_SIZE * sizeof (ipaddr_t)); 12506 listener->tcp_ip_addr_cache = NULL; 12507 } 12508 } 12509 } 12510 addr_cache = (ipaddr_t *)(listener->tcp_ip_addr_cache); 12511 if (addr_cache != NULL) { 12512 /* 12513 * We have finished a 3-way handshake with this 12514 * remote host. This proves the IP addr is good. 12515 * Cache it! 12516 */ 12517 addr_cache[IP_ADDR_CACHE_HASH( 12518 tcp->tcp_remote)] = tcp->tcp_remote; 12519 } 12520 mutex_exit(&listener->tcp_eager_lock); 12521 if (need_send_conn_ind) 12522 putnext(listener->tcp_rq, mp); 12523 } 12524 12525 mblk_t * 12526 tcp_find_pktinfo(tcp_t *tcp, mblk_t *mp, uint_t *ipversp, uint_t *ip_hdr_lenp, 12527 uint_t *ifindexp, ip6_pkt_t *ippp) 12528 { 12529 in_pktinfo_t *pinfo; 12530 ip6_t *ip6h; 12531 uchar_t *rptr; 12532 mblk_t *first_mp = mp; 12533 boolean_t mctl_present = B_FALSE; 12534 uint_t ifindex = 0; 12535 ip6_pkt_t ipp; 12536 uint_t ipvers; 12537 uint_t ip_hdr_len; 12538 12539 rptr = mp->b_rptr; 12540 ASSERT(OK_32PTR(rptr)); 12541 ASSERT(tcp != NULL); 12542 ipp.ipp_fields = 0; 12543 12544 switch DB_TYPE(mp) { 12545 case M_CTL: 12546 mp = mp->b_cont; 12547 if (mp == NULL) { 12548 freemsg(first_mp); 12549 return (NULL); 12550 } 12551 if (DB_TYPE(mp) != M_DATA) { 12552 freemsg(first_mp); 12553 return (NULL); 12554 } 12555 mctl_present = B_TRUE; 12556 break; 12557 case M_DATA: 12558 break; 12559 default: 12560 cmn_err(CE_NOTE, "tcp_find_pktinfo: unknown db_type"); 12561 freemsg(mp); 12562 return (NULL); 12563 } 12564 ipvers = IPH_HDR_VERSION(rptr); 12565 if (ipvers == IPV4_VERSION) { 12566 if (tcp == NULL) { 12567 ip_hdr_len = IPH_HDR_LENGTH(rptr); 12568 goto done; 12569 } 12570 12571 ipp.ipp_fields |= IPPF_HOPLIMIT; 12572 ipp.ipp_hoplimit = ((ipha_t *)rptr)->ipha_ttl; 12573 12574 /* 12575 * If we have IN_PKTINFO in an M_CTL and tcp_ipv6_recvancillary 12576 * has TCP_IPV6_RECVPKTINFO set, pass I/F index along in ipp. 12577 */ 12578 if ((tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVPKTINFO) && 12579 mctl_present) { 12580 pinfo = (in_pktinfo_t *)first_mp->b_rptr; 12581 if ((MBLKL(first_mp) == sizeof (in_pktinfo_t)) && 12582 (pinfo->in_pkt_ulp_type == IN_PKTINFO) && 12583 (pinfo->in_pkt_flags & IPF_RECVIF)) { 12584 ipp.ipp_fields |= IPPF_IFINDEX; 12585 ipp.ipp_ifindex = pinfo->in_pkt_ifindex; 12586 ifindex = pinfo->in_pkt_ifindex; 12587 } 12588 freeb(first_mp); 12589 mctl_present = B_FALSE; 12590 } 12591 ip_hdr_len = IPH_HDR_LENGTH(rptr); 12592 } else { 12593 ip6h = (ip6_t *)rptr; 12594 12595 ASSERT(ipvers == IPV6_VERSION); 12596 ipp.ipp_fields = IPPF_HOPLIMIT | IPPF_TCLASS; 12597 ipp.ipp_tclass = (ip6h->ip6_flow & 0x0FF00000) >> 20; 12598 ipp.ipp_hoplimit = ip6h->ip6_hops; 12599 12600 if (ip6h->ip6_nxt != IPPROTO_TCP) { 12601 uint8_t nexthdrp; 12602 12603 /* Look for ifindex information */ 12604 if (ip6h->ip6_nxt == IPPROTO_RAW) { 12605 ip6i_t *ip6i = (ip6i_t *)ip6h; 12606 if ((uchar_t *)&ip6i[1] > mp->b_wptr) { 12607 BUMP_MIB(&ip_mib, tcpInErrs); 12608 freemsg(first_mp); 12609 return (NULL); 12610 } 12611 12612 if (ip6i->ip6i_flags & IP6I_IFINDEX) { 12613 ASSERT(ip6i->ip6i_ifindex != 0); 12614 ipp.ipp_fields |= IPPF_IFINDEX; 12615 ipp.ipp_ifindex = ip6i->ip6i_ifindex; 12616 ifindex = ip6i->ip6i_ifindex; 12617 } 12618 rptr = (uchar_t *)&ip6i[1]; 12619 mp->b_rptr = rptr; 12620 if (rptr == mp->b_wptr) { 12621 mblk_t *mp1; 12622 mp1 = mp->b_cont; 12623 freeb(mp); 12624 mp = mp1; 12625 rptr = mp->b_rptr; 12626 } 12627 if (MBLKL(mp) < IPV6_HDR_LEN + 12628 sizeof (tcph_t)) { 12629 BUMP_MIB(&ip_mib, tcpInErrs); 12630 freemsg(first_mp); 12631 return (NULL); 12632 } 12633 ip6h = (ip6_t *)rptr; 12634 } 12635 12636 /* 12637 * Find any potentially interesting extension headers 12638 * as well as the length of the IPv6 + extension 12639 * headers. 12640 */ 12641 ip_hdr_len = ip_find_hdr_v6(mp, ip6h, &ipp, &nexthdrp); 12642 /* Verify if this is a TCP packet */ 12643 if (nexthdrp != IPPROTO_TCP) { 12644 BUMP_MIB(&ip_mib, tcpInErrs); 12645 freemsg(first_mp); 12646 return (NULL); 12647 } 12648 } else { 12649 ip_hdr_len = IPV6_HDR_LEN; 12650 } 12651 } 12652 12653 done: 12654 if (ipversp != NULL) 12655 *ipversp = ipvers; 12656 if (ip_hdr_lenp != NULL) 12657 *ip_hdr_lenp = ip_hdr_len; 12658 if (ippp != NULL) 12659 *ippp = ipp; 12660 if (ifindexp != NULL) 12661 *ifindexp = ifindex; 12662 if (mctl_present) { 12663 freeb(first_mp); 12664 } 12665 return (mp); 12666 } 12667 12668 /* 12669 * Handle M_DATA messages from IP. Its called directly from IP via 12670 * squeue for AF_INET type sockets fast path. No M_CTL are expected 12671 * in this path. 12672 * 12673 * For everything else (including AF_INET6 sockets with 'tcp_ipversion' 12674 * v4 and v6), we are called through tcp_input() and a M_CTL can 12675 * be present for options but tcp_find_pktinfo() deals with it. We 12676 * only expect M_DATA packets after tcp_find_pktinfo() is done. 12677 * 12678 * The first argument is always the connp/tcp to which the mp belongs. 12679 * There are no exceptions to this rule. The caller has already put 12680 * a reference on this connp/tcp and once tcp_rput_data() returns, 12681 * the squeue will do the refrele. 12682 * 12683 * The TH_SYN for the listener directly go to tcp_conn_request via 12684 * squeue. 12685 * 12686 * sqp: NULL = recursive, sqp != NULL means called from squeue 12687 */ 12688 void 12689 tcp_rput_data(void *arg, mblk_t *mp, void *arg2) 12690 { 12691 int32_t bytes_acked; 12692 int32_t gap; 12693 mblk_t *mp1; 12694 uint_t flags; 12695 uint32_t new_swnd = 0; 12696 uchar_t *iphdr; 12697 uchar_t *rptr; 12698 int32_t rgap; 12699 uint32_t seg_ack; 12700 int seg_len; 12701 uint_t ip_hdr_len; 12702 uint32_t seg_seq; 12703 tcph_t *tcph; 12704 int urp; 12705 tcp_opt_t tcpopt; 12706 uint_t ipvers; 12707 ip6_pkt_t ipp; 12708 boolean_t ofo_seg = B_FALSE; /* Out of order segment */ 12709 uint32_t cwnd; 12710 uint32_t add; 12711 int npkt; 12712 int mss; 12713 conn_t *connp = (conn_t *)arg; 12714 squeue_t *sqp = (squeue_t *)arg2; 12715 tcp_t *tcp = connp->conn_tcp; 12716 12717 /* 12718 * RST from fused tcp loopback peer should trigger an unfuse. 12719 */ 12720 if (tcp->tcp_fused) { 12721 TCP_STAT(tcp_fusion_aborted); 12722 tcp_unfuse(tcp); 12723 } 12724 12725 iphdr = mp->b_rptr; 12726 rptr = mp->b_rptr; 12727 ASSERT(OK_32PTR(rptr)); 12728 12729 /* 12730 * An AF_INET socket is not capable of receiving any pktinfo. Do inline 12731 * processing here. For rest call tcp_find_pktinfo to fill up the 12732 * necessary information. 12733 */ 12734 if (IPCL_IS_TCP4(connp)) { 12735 ipvers = IPV4_VERSION; 12736 ip_hdr_len = IPH_HDR_LENGTH(rptr); 12737 } else { 12738 mp = tcp_find_pktinfo(tcp, mp, &ipvers, &ip_hdr_len, 12739 NULL, &ipp); 12740 if (mp == NULL) { 12741 TCP_STAT(tcp_rput_v6_error); 12742 return; 12743 } 12744 iphdr = mp->b_rptr; 12745 rptr = mp->b_rptr; 12746 } 12747 ASSERT(DB_TYPE(mp) == M_DATA); 12748 12749 tcph = (tcph_t *)&rptr[ip_hdr_len]; 12750 seg_seq = ABE32_TO_U32(tcph->th_seq); 12751 seg_ack = ABE32_TO_U32(tcph->th_ack); 12752 ASSERT((uintptr_t)(mp->b_wptr - rptr) <= (uintptr_t)INT_MAX); 12753 seg_len = (int)(mp->b_wptr - rptr) - 12754 (ip_hdr_len + TCP_HDR_LENGTH(tcph)); 12755 if ((mp1 = mp->b_cont) != NULL && mp1->b_datap->db_type == M_DATA) { 12756 do { 12757 ASSERT((uintptr_t)(mp1->b_wptr - mp1->b_rptr) <= 12758 (uintptr_t)INT_MAX); 12759 seg_len += (int)(mp1->b_wptr - mp1->b_rptr); 12760 } while ((mp1 = mp1->b_cont) != NULL && 12761 mp1->b_datap->db_type == M_DATA); 12762 } 12763 12764 if (tcp->tcp_state == TCPS_TIME_WAIT) { 12765 tcp_time_wait_processing(tcp, mp, seg_seq, seg_ack, 12766 seg_len, tcph); 12767 return; 12768 } 12769 12770 if (sqp != NULL) { 12771 /* 12772 * This is the correct place to update tcp_last_recv_time. Note 12773 * that it is also updated for tcp structure that belongs to 12774 * global and listener queues which do not really need updating. 12775 * But that should not cause any harm. And it is updated for 12776 * all kinds of incoming segments, not only for data segments. 12777 */ 12778 tcp->tcp_last_recv_time = lbolt; 12779 } 12780 12781 flags = (unsigned int)tcph->th_flags[0] & 0xFF; 12782 12783 BUMP_LOCAL(tcp->tcp_ibsegs); 12784 TCP_RECORD_TRACE(tcp, mp, TCP_TRACE_RECV_PKT); 12785 12786 if ((flags & TH_URG) && sqp != NULL) { 12787 /* 12788 * TCP can't handle urgent pointers that arrive before 12789 * the connection has been accept()ed since it can't 12790 * buffer OOB data. Discard segment if this happens. 12791 * 12792 * Nor can it reassemble urgent pointers, so discard 12793 * if it's not the next segment expected. 12794 * 12795 * Otherwise, collapse chain into one mblk (discard if 12796 * that fails). This makes sure the headers, retransmitted 12797 * data, and new data all are in the same mblk. 12798 */ 12799 ASSERT(mp != NULL); 12800 if (tcp->tcp_listener || !pullupmsg(mp, -1)) { 12801 freemsg(mp); 12802 return; 12803 } 12804 /* Update pointers into message */ 12805 iphdr = rptr = mp->b_rptr; 12806 tcph = (tcph_t *)&rptr[ip_hdr_len]; 12807 if (SEQ_GT(seg_seq, tcp->tcp_rnxt)) { 12808 /* 12809 * Since we can't handle any data with this urgent 12810 * pointer that is out of sequence, we expunge 12811 * the data. This allows us to still register 12812 * the urgent mark and generate the M_PCSIG, 12813 * which we can do. 12814 */ 12815 mp->b_wptr = (uchar_t *)tcph + TCP_HDR_LENGTH(tcph); 12816 seg_len = 0; 12817 } 12818 } 12819 12820 switch (tcp->tcp_state) { 12821 case TCPS_SYN_SENT: 12822 if (flags & TH_ACK) { 12823 /* 12824 * Note that our stack cannot send data before a 12825 * connection is established, therefore the 12826 * following check is valid. Otherwise, it has 12827 * to be changed. 12828 */ 12829 if (SEQ_LEQ(seg_ack, tcp->tcp_iss) || 12830 SEQ_GT(seg_ack, tcp->tcp_snxt)) { 12831 freemsg(mp); 12832 if (flags & TH_RST) 12833 return; 12834 tcp_xmit_ctl("TCPS_SYN_SENT-Bad_seq", 12835 tcp, seg_ack, 0, TH_RST); 12836 return; 12837 } 12838 ASSERT(tcp->tcp_suna + 1 == seg_ack); 12839 } 12840 if (flags & TH_RST) { 12841 freemsg(mp); 12842 if (flags & TH_ACK) 12843 (void) tcp_clean_death(tcp, 12844 ECONNREFUSED, 13); 12845 return; 12846 } 12847 if (!(flags & TH_SYN)) { 12848 freemsg(mp); 12849 return; 12850 } 12851 12852 /* Process all TCP options. */ 12853 tcp_process_options(tcp, tcph); 12854 /* 12855 * The following changes our rwnd to be a multiple of the 12856 * MIN(peer MSS, our MSS) for performance reason. 12857 */ 12858 (void) tcp_rwnd_set(tcp, MSS_ROUNDUP(tcp->tcp_rq->q_hiwat, 12859 tcp->tcp_mss)); 12860 12861 /* Is the other end ECN capable? */ 12862 if (tcp->tcp_ecn_ok) { 12863 if ((flags & (TH_ECE|TH_CWR)) != TH_ECE) { 12864 tcp->tcp_ecn_ok = B_FALSE; 12865 } 12866 } 12867 /* 12868 * Clear ECN flags because it may interfere with later 12869 * processing. 12870 */ 12871 flags &= ~(TH_ECE|TH_CWR); 12872 12873 tcp->tcp_irs = seg_seq; 12874 tcp->tcp_rack = seg_seq; 12875 tcp->tcp_rnxt = seg_seq + 1; 12876 U32_TO_ABE32(tcp->tcp_rnxt, tcp->tcp_tcph->th_ack); 12877 if (!TCP_IS_DETACHED(tcp)) { 12878 /* Allocate room for SACK options if needed. */ 12879 if (tcp->tcp_snd_sack_ok) { 12880 (void) mi_set_sth_wroff(tcp->tcp_rq, 12881 tcp->tcp_hdr_len + TCPOPT_MAX_SACK_LEN + 12882 (tcp->tcp_loopback ? 0 : tcp_wroff_xtra)); 12883 } else { 12884 (void) mi_set_sth_wroff(tcp->tcp_rq, 12885 tcp->tcp_hdr_len + 12886 (tcp->tcp_loopback ? 0 : tcp_wroff_xtra)); 12887 } 12888 } 12889 if (flags & TH_ACK) { 12890 /* 12891 * If we can't get the confirmation upstream, pretend 12892 * we didn't even see this one. 12893 * 12894 * XXX: how can we pretend we didn't see it if we 12895 * have updated rnxt et. al. 12896 * 12897 * For loopback we defer sending up the T_CONN_CON 12898 * until after some checks below. 12899 */ 12900 mp1 = NULL; 12901 if (!tcp_conn_con(tcp, iphdr, tcph, mp, 12902 tcp->tcp_loopback ? &mp1 : NULL)) { 12903 freemsg(mp); 12904 return; 12905 } 12906 /* SYN was acked - making progress */ 12907 if (tcp->tcp_ipversion == IPV6_VERSION) 12908 tcp->tcp_ip_forward_progress = B_TRUE; 12909 12910 /* One for the SYN */ 12911 tcp->tcp_suna = tcp->tcp_iss + 1; 12912 tcp->tcp_valid_bits &= ~TCP_ISS_VALID; 12913 tcp->tcp_state = TCPS_ESTABLISHED; 12914 12915 /* 12916 * If SYN was retransmitted, need to reset all 12917 * retransmission info. This is because this 12918 * segment will be treated as a dup ACK. 12919 */ 12920 if (tcp->tcp_rexmit) { 12921 tcp->tcp_rexmit = B_FALSE; 12922 tcp->tcp_rexmit_nxt = tcp->tcp_snxt; 12923 tcp->tcp_rexmit_max = tcp->tcp_snxt; 12924 tcp->tcp_snd_burst = tcp->tcp_localnet ? 12925 TCP_CWND_INFINITE : TCP_CWND_NORMAL; 12926 tcp->tcp_ms_we_have_waited = 0; 12927 12928 /* 12929 * Set tcp_cwnd back to 1 MSS, per 12930 * recommendation from 12931 * draft-floyd-incr-init-win-01.txt, 12932 * Increasing TCP's Initial Window. 12933 */ 12934 tcp->tcp_cwnd = tcp->tcp_mss; 12935 } 12936 12937 tcp->tcp_swl1 = seg_seq; 12938 tcp->tcp_swl2 = seg_ack; 12939 12940 new_swnd = BE16_TO_U16(tcph->th_win); 12941 tcp->tcp_swnd = new_swnd; 12942 if (new_swnd > tcp->tcp_max_swnd) 12943 tcp->tcp_max_swnd = new_swnd; 12944 12945 /* 12946 * Always send the three-way handshake ack immediately 12947 * in order to make the connection complete as soon as 12948 * possible on the accepting host. 12949 */ 12950 flags |= TH_ACK_NEEDED; 12951 12952 /* 12953 * Special case for loopback. At this point we have 12954 * received SYN-ACK from the remote endpoint. In 12955 * order to ensure that both endpoints reach the 12956 * fused state prior to any data exchange, the final 12957 * ACK needs to be sent before we indicate T_CONN_CON 12958 * to the module upstream. 12959 */ 12960 if (tcp->tcp_loopback) { 12961 mblk_t *ack_mp; 12962 12963 ASSERT(!tcp->tcp_unfusable); 12964 ASSERT(mp1 != NULL); 12965 /* 12966 * For loopback, we always get a pure SYN-ACK 12967 * and only need to send back the final ACK 12968 * with no data (this is because the other 12969 * tcp is ours and we don't do T/TCP). This 12970 * final ACK triggers the passive side to 12971 * perform fusion in ESTABLISHED state. 12972 */ 12973 if ((ack_mp = tcp_ack_mp(tcp)) != NULL) { 12974 if (tcp->tcp_ack_tid != 0) { 12975 (void) TCP_TIMER_CANCEL(tcp, 12976 tcp->tcp_ack_tid); 12977 tcp->tcp_ack_tid = 0; 12978 } 12979 TCP_RECORD_TRACE(tcp, ack_mp, 12980 TCP_TRACE_SEND_PKT); 12981 tcp_send_data(tcp, tcp->tcp_wq, ack_mp); 12982 BUMP_LOCAL(tcp->tcp_obsegs); 12983 BUMP_MIB(&tcp_mib, tcpOutAck); 12984 12985 /* Send up T_CONN_CON */ 12986 putnext(tcp->tcp_rq, mp1); 12987 12988 freemsg(mp); 12989 return; 12990 } 12991 /* 12992 * Forget fusion; we need to handle more 12993 * complex cases below. Send the deferred 12994 * T_CONN_CON message upstream and proceed 12995 * as usual. Mark this tcp as not capable 12996 * of fusion. 12997 */ 12998 TCP_STAT(tcp_fusion_unfusable); 12999 tcp->tcp_unfusable = B_TRUE; 13000 putnext(tcp->tcp_rq, mp1); 13001 } 13002 13003 /* 13004 * Check to see if there is data to be sent. If 13005 * yes, set the transmit flag. Then check to see 13006 * if received data processing needs to be done. 13007 * If not, go straight to xmit_check. This short 13008 * cut is OK as we don't support T/TCP. 13009 */ 13010 if (tcp->tcp_unsent) 13011 flags |= TH_XMIT_NEEDED; 13012 13013 if (seg_len == 0 && !(flags & TH_URG)) { 13014 freemsg(mp); 13015 goto xmit_check; 13016 } 13017 13018 flags &= ~TH_SYN; 13019 seg_seq++; 13020 break; 13021 } 13022 tcp->tcp_state = TCPS_SYN_RCVD; 13023 mp1 = tcp_xmit_mp(tcp, tcp->tcp_xmit_head, tcp->tcp_mss, 13024 NULL, NULL, tcp->tcp_iss, B_FALSE, NULL, B_FALSE); 13025 if (mp1) { 13026 DB_CPID(mp1) = tcp->tcp_cpid; 13027 TCP_RECORD_TRACE(tcp, mp1, TCP_TRACE_SEND_PKT); 13028 tcp_send_data(tcp, tcp->tcp_wq, mp1); 13029 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 13030 } 13031 freemsg(mp); 13032 return; 13033 case TCPS_SYN_RCVD: 13034 if (flags & TH_ACK) { 13035 /* 13036 * In this state, a SYN|ACK packet is either bogus 13037 * because the other side must be ACKing our SYN which 13038 * indicates it has seen the ACK for their SYN and 13039 * shouldn't retransmit it or we're crossing SYNs 13040 * on active open. 13041 */ 13042 if ((flags & TH_SYN) && !tcp->tcp_active_open) { 13043 freemsg(mp); 13044 tcp_xmit_ctl("TCPS_SYN_RCVD-bad_syn", 13045 tcp, seg_ack, 0, TH_RST); 13046 return; 13047 } 13048 /* 13049 * NOTE: RFC 793 pg. 72 says this should be 13050 * tcp->tcp_suna <= seg_ack <= tcp->tcp_snxt 13051 * but that would mean we have an ack that ignored 13052 * our SYN. 13053 */ 13054 if (SEQ_LEQ(seg_ack, tcp->tcp_suna) || 13055 SEQ_GT(seg_ack, tcp->tcp_snxt)) { 13056 freemsg(mp); 13057 tcp_xmit_ctl("TCPS_SYN_RCVD-bad_ack", 13058 tcp, seg_ack, 0, TH_RST); 13059 return; 13060 } 13061 } 13062 break; 13063 case TCPS_LISTEN: 13064 /* 13065 * Only a TLI listener can come through this path when a 13066 * acceptor is going back to be a listener and a packet 13067 * for the acceptor hits the classifier. For a socket 13068 * listener, this can never happen because a listener 13069 * can never accept connection on itself and hence a 13070 * socket acceptor can not go back to being a listener. 13071 */ 13072 ASSERT(!TCP_IS_SOCKET(tcp)); 13073 /*FALLTHRU*/ 13074 case TCPS_CLOSED: 13075 case TCPS_BOUND: { 13076 conn_t *new_connp; 13077 13078 new_connp = ipcl_classify(mp, connp->conn_zoneid); 13079 if (new_connp != NULL) { 13080 tcp_reinput(new_connp, mp, connp->conn_sqp); 13081 return; 13082 } 13083 /* We failed to classify. For now just drop the packet */ 13084 freemsg(mp); 13085 return; 13086 } 13087 case TCPS_IDLE: 13088 /* 13089 * Handle the case where the tcp_clean_death() has happened 13090 * on a connection (application hasn't closed yet) but a packet 13091 * was already queued on squeue before tcp_clean_death() 13092 * was processed. Calling tcp_clean_death() twice on same 13093 * connection can result in weird behaviour. 13094 */ 13095 freemsg(mp); 13096 return; 13097 default: 13098 break; 13099 } 13100 13101 /* 13102 * Already on the correct queue/perimeter. 13103 * If this is a detached connection and not an eager 13104 * connection hanging off a listener then new data 13105 * (past the FIN) will cause a reset. 13106 * We do a special check here where it 13107 * is out of the main line, rather than check 13108 * if we are detached every time we see new 13109 * data down below. 13110 */ 13111 if (TCP_IS_DETACHED_NONEAGER(tcp) && 13112 (seg_len > 0 && SEQ_GT(seg_seq + seg_len, tcp->tcp_rnxt))) { 13113 BUMP_MIB(&tcp_mib, tcpInClosed); 13114 TCP_RECORD_TRACE(tcp, 13115 mp, TCP_TRACE_RECV_PKT); 13116 13117 freemsg(mp); 13118 /* 13119 * This could be an SSL closure alert. We're detached so just 13120 * acknowledge it this last time. 13121 */ 13122 if (tcp->tcp_kssl_ctx != NULL) { 13123 kssl_release_ctx(tcp->tcp_kssl_ctx); 13124 tcp->tcp_kssl_ctx = NULL; 13125 13126 tcp->tcp_rnxt += seg_len; 13127 U32_TO_ABE32(tcp->tcp_rnxt, tcp->tcp_tcph->th_ack); 13128 flags |= TH_ACK_NEEDED; 13129 goto ack_check; 13130 } 13131 13132 tcp_xmit_ctl("new data when detached", tcp, 13133 tcp->tcp_snxt, 0, TH_RST); 13134 (void) tcp_clean_death(tcp, EPROTO, 12); 13135 return; 13136 } 13137 13138 mp->b_rptr = (uchar_t *)tcph + TCP_HDR_LENGTH(tcph); 13139 urp = BE16_TO_U16(tcph->th_urp) - TCP_OLD_URP_INTERPRETATION; 13140 new_swnd = BE16_TO_U16(tcph->th_win) << 13141 ((tcph->th_flags[0] & TH_SYN) ? 0 : tcp->tcp_snd_ws); 13142 mss = tcp->tcp_mss; 13143 13144 if (tcp->tcp_snd_ts_ok) { 13145 if (!tcp_paws_check(tcp, tcph, &tcpopt)) { 13146 /* 13147 * This segment is not acceptable. 13148 * Drop it and send back an ACK. 13149 */ 13150 freemsg(mp); 13151 flags |= TH_ACK_NEEDED; 13152 goto ack_check; 13153 } 13154 } else if (tcp->tcp_snd_sack_ok) { 13155 ASSERT(tcp->tcp_sack_info != NULL); 13156 tcpopt.tcp = tcp; 13157 /* 13158 * SACK info in already updated in tcp_parse_options. Ignore 13159 * all other TCP options... 13160 */ 13161 (void) tcp_parse_options(tcph, &tcpopt); 13162 } 13163 try_again:; 13164 gap = seg_seq - tcp->tcp_rnxt; 13165 rgap = tcp->tcp_rwnd - (gap + seg_len); 13166 /* 13167 * gap is the amount of sequence space between what we expect to see 13168 * and what we got for seg_seq. A positive value for gap means 13169 * something got lost. A negative value means we got some old stuff. 13170 */ 13171 if (gap < 0) { 13172 /* Old stuff present. Is the SYN in there? */ 13173 if (seg_seq == tcp->tcp_irs && (flags & TH_SYN) && 13174 (seg_len != 0)) { 13175 flags &= ~TH_SYN; 13176 seg_seq++; 13177 urp--; 13178 /* Recompute the gaps after noting the SYN. */ 13179 goto try_again; 13180 } 13181 BUMP_MIB(&tcp_mib, tcpInDataDupSegs); 13182 UPDATE_MIB(&tcp_mib, tcpInDataDupBytes, 13183 (seg_len > -gap ? -gap : seg_len)); 13184 /* Remove the old stuff from seg_len. */ 13185 seg_len += gap; 13186 /* 13187 * Anything left? 13188 * Make sure to check for unack'd FIN when rest of data 13189 * has been previously ack'd. 13190 */ 13191 if (seg_len < 0 || (seg_len == 0 && !(flags & TH_FIN))) { 13192 /* 13193 * Resets are only valid if they lie within our offered 13194 * window. If the RST bit is set, we just ignore this 13195 * segment. 13196 */ 13197 if (flags & TH_RST) { 13198 freemsg(mp); 13199 return; 13200 } 13201 13202 /* 13203 * The arriving of dup data packets indicate that we 13204 * may have postponed an ack for too long, or the other 13205 * side's RTT estimate is out of shape. Start acking 13206 * more often. 13207 */ 13208 if (SEQ_GEQ(seg_seq + seg_len - gap, tcp->tcp_rack) && 13209 tcp->tcp_rack_cnt >= 1 && 13210 tcp->tcp_rack_abs_max > 2) { 13211 tcp->tcp_rack_abs_max--; 13212 } 13213 tcp->tcp_rack_cur_max = 1; 13214 13215 /* 13216 * This segment is "unacceptable". None of its 13217 * sequence space lies within our advertized window. 13218 * 13219 * Adjust seg_len to the original value for tracing. 13220 */ 13221 seg_len -= gap; 13222 if (tcp->tcp_debug) { 13223 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 13224 "tcp_rput: unacceptable, gap %d, rgap %d, " 13225 "flags 0x%x, seg_seq %u, seg_ack %u, " 13226 "seg_len %d, rnxt %u, snxt %u, %s", 13227 gap, rgap, flags, seg_seq, seg_ack, 13228 seg_len, tcp->tcp_rnxt, tcp->tcp_snxt, 13229 tcp_display(tcp, NULL, 13230 DISP_ADDR_AND_PORT)); 13231 } 13232 13233 /* 13234 * Arrange to send an ACK in response to the 13235 * unacceptable segment per RFC 793 page 69. There 13236 * is only one small difference between ours and the 13237 * acceptability test in the RFC - we accept ACK-only 13238 * packet with SEG.SEQ = RCV.NXT+RCV.WND and no ACK 13239 * will be generated. 13240 * 13241 * Note that we have to ACK an ACK-only packet at least 13242 * for stacks that send 0-length keep-alives with 13243 * SEG.SEQ = SND.NXT-1 as recommended by RFC1122, 13244 * section 4.2.3.6. As long as we don't ever generate 13245 * an unacceptable packet in response to an incoming 13246 * packet that is unacceptable, it should not cause 13247 * "ACK wars". 13248 */ 13249 flags |= TH_ACK_NEEDED; 13250 13251 /* 13252 * Continue processing this segment in order to use the 13253 * ACK information it contains, but skip all other 13254 * sequence-number processing. Processing the ACK 13255 * information is necessary in order to 13256 * re-synchronize connections that may have lost 13257 * synchronization. 13258 * 13259 * We clear seg_len and flag fields related to 13260 * sequence number processing as they are not 13261 * to be trusted for an unacceptable segment. 13262 */ 13263 seg_len = 0; 13264 flags &= ~(TH_SYN | TH_FIN | TH_URG); 13265 goto process_ack; 13266 } 13267 13268 /* Fix seg_seq, and chew the gap off the front. */ 13269 seg_seq = tcp->tcp_rnxt; 13270 urp += gap; 13271 do { 13272 mblk_t *mp2; 13273 ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= 13274 (uintptr_t)UINT_MAX); 13275 gap += (uint_t)(mp->b_wptr - mp->b_rptr); 13276 if (gap > 0) { 13277 mp->b_rptr = mp->b_wptr - gap; 13278 break; 13279 } 13280 mp2 = mp; 13281 mp = mp->b_cont; 13282 freeb(mp2); 13283 } while (gap < 0); 13284 /* 13285 * If the urgent data has already been acknowledged, we 13286 * should ignore TH_URG below 13287 */ 13288 if (urp < 0) 13289 flags &= ~TH_URG; 13290 } 13291 /* 13292 * rgap is the amount of stuff received out of window. A negative 13293 * value is the amount out of window. 13294 */ 13295 if (rgap < 0) { 13296 mblk_t *mp2; 13297 13298 if (tcp->tcp_rwnd == 0) { 13299 BUMP_MIB(&tcp_mib, tcpInWinProbe); 13300 } else { 13301 BUMP_MIB(&tcp_mib, tcpInDataPastWinSegs); 13302 UPDATE_MIB(&tcp_mib, tcpInDataPastWinBytes, -rgap); 13303 } 13304 13305 /* 13306 * seg_len does not include the FIN, so if more than 13307 * just the FIN is out of window, we act like we don't 13308 * see it. (If just the FIN is out of window, rgap 13309 * will be zero and we will go ahead and acknowledge 13310 * the FIN.) 13311 */ 13312 flags &= ~TH_FIN; 13313 13314 /* Fix seg_len and make sure there is something left. */ 13315 seg_len += rgap; 13316 if (seg_len <= 0) { 13317 /* 13318 * Resets are only valid if they lie within our offered 13319 * window. If the RST bit is set, we just ignore this 13320 * segment. 13321 */ 13322 if (flags & TH_RST) { 13323 freemsg(mp); 13324 return; 13325 } 13326 13327 /* Per RFC 793, we need to send back an ACK. */ 13328 flags |= TH_ACK_NEEDED; 13329 13330 /* 13331 * Send SIGURG as soon as possible i.e. even 13332 * if the TH_URG was delivered in a window probe 13333 * packet (which will be unacceptable). 13334 * 13335 * We generate a signal if none has been generated 13336 * for this connection or if this is a new urgent 13337 * byte. Also send a zero-length "unmarked" message 13338 * to inform SIOCATMARK that this is not the mark. 13339 * 13340 * tcp_urp_last_valid is cleared when the T_exdata_ind 13341 * is sent up. This plus the check for old data 13342 * (gap >= 0) handles the wraparound of the sequence 13343 * number space without having to always track the 13344 * correct MAX(tcp_urp_last, tcp_rnxt). (BSD tracks 13345 * this max in its rcv_up variable). 13346 * 13347 * This prevents duplicate SIGURGS due to a "late" 13348 * zero-window probe when the T_EXDATA_IND has already 13349 * been sent up. 13350 */ 13351 if ((flags & TH_URG) && 13352 (!tcp->tcp_urp_last_valid || SEQ_GT(urp + seg_seq, 13353 tcp->tcp_urp_last))) { 13354 mp1 = allocb(0, BPRI_MED); 13355 if (mp1 == NULL) { 13356 freemsg(mp); 13357 return; 13358 } 13359 if (!TCP_IS_DETACHED(tcp) && 13360 !putnextctl1(tcp->tcp_rq, M_PCSIG, 13361 SIGURG)) { 13362 /* Try again on the rexmit. */ 13363 freemsg(mp1); 13364 freemsg(mp); 13365 return; 13366 } 13367 /* 13368 * If the next byte would be the mark 13369 * then mark with MARKNEXT else mark 13370 * with NOTMARKNEXT. 13371 */ 13372 if (gap == 0 && urp == 0) 13373 mp1->b_flag |= MSGMARKNEXT; 13374 else 13375 mp1->b_flag |= MSGNOTMARKNEXT; 13376 freemsg(tcp->tcp_urp_mark_mp); 13377 tcp->tcp_urp_mark_mp = mp1; 13378 flags |= TH_SEND_URP_MARK; 13379 tcp->tcp_urp_last_valid = B_TRUE; 13380 tcp->tcp_urp_last = urp + seg_seq; 13381 } 13382 /* 13383 * If this is a zero window probe, continue to 13384 * process the ACK part. But we need to set seg_len 13385 * to 0 to avoid data processing. Otherwise just 13386 * drop the segment and send back an ACK. 13387 */ 13388 if (tcp->tcp_rwnd == 0 && seg_seq == tcp->tcp_rnxt) { 13389 flags &= ~(TH_SYN | TH_URG); 13390 seg_len = 0; 13391 goto process_ack; 13392 } else { 13393 freemsg(mp); 13394 goto ack_check; 13395 } 13396 } 13397 /* Pitch out of window stuff off the end. */ 13398 rgap = seg_len; 13399 mp2 = mp; 13400 do { 13401 ASSERT((uintptr_t)(mp2->b_wptr - mp2->b_rptr) <= 13402 (uintptr_t)INT_MAX); 13403 rgap -= (int)(mp2->b_wptr - mp2->b_rptr); 13404 if (rgap < 0) { 13405 mp2->b_wptr += rgap; 13406 if ((mp1 = mp2->b_cont) != NULL) { 13407 mp2->b_cont = NULL; 13408 freemsg(mp1); 13409 } 13410 break; 13411 } 13412 } while ((mp2 = mp2->b_cont) != NULL); 13413 } 13414 ok:; 13415 /* 13416 * TCP should check ECN info for segments inside the window only. 13417 * Therefore the check should be done here. 13418 */ 13419 if (tcp->tcp_ecn_ok) { 13420 if (flags & TH_CWR) { 13421 tcp->tcp_ecn_echo_on = B_FALSE; 13422 } 13423 /* 13424 * Note that both ECN_CE and CWR can be set in the 13425 * same segment. In this case, we once again turn 13426 * on ECN_ECHO. 13427 */ 13428 if (tcp->tcp_ipversion == IPV4_VERSION) { 13429 uchar_t tos = ((ipha_t *)rptr)->ipha_type_of_service; 13430 13431 if ((tos & IPH_ECN_CE) == IPH_ECN_CE) { 13432 tcp->tcp_ecn_echo_on = B_TRUE; 13433 } 13434 } else { 13435 uint32_t vcf = ((ip6_t *)rptr)->ip6_vcf; 13436 13437 if ((vcf & htonl(IPH_ECN_CE << 20)) == 13438 htonl(IPH_ECN_CE << 20)) { 13439 tcp->tcp_ecn_echo_on = B_TRUE; 13440 } 13441 } 13442 } 13443 13444 /* 13445 * Check whether we can update tcp_ts_recent. This test is 13446 * NOT the one in RFC 1323 3.4. It is from Braden, 1993, "TCP 13447 * Extensions for High Performance: An Update", Internet Draft. 13448 */ 13449 if (tcp->tcp_snd_ts_ok && 13450 TSTMP_GEQ(tcpopt.tcp_opt_ts_val, tcp->tcp_ts_recent) && 13451 SEQ_LEQ(seg_seq, tcp->tcp_rack)) { 13452 tcp->tcp_ts_recent = tcpopt.tcp_opt_ts_val; 13453 tcp->tcp_last_rcv_lbolt = lbolt64; 13454 } 13455 13456 if (seg_seq != tcp->tcp_rnxt || tcp->tcp_reass_head) { 13457 /* 13458 * FIN in an out of order segment. We record this in 13459 * tcp_valid_bits and the seq num of FIN in tcp_ofo_fin_seq. 13460 * Clear the FIN so that any check on FIN flag will fail. 13461 * Remember that FIN also counts in the sequence number 13462 * space. So we need to ack out of order FIN only segments. 13463 */ 13464 if (flags & TH_FIN) { 13465 tcp->tcp_valid_bits |= TCP_OFO_FIN_VALID; 13466 tcp->tcp_ofo_fin_seq = seg_seq + seg_len; 13467 flags &= ~TH_FIN; 13468 flags |= TH_ACK_NEEDED; 13469 } 13470 if (seg_len > 0) { 13471 /* Fill in the SACK blk list. */ 13472 if (tcp->tcp_snd_sack_ok) { 13473 ASSERT(tcp->tcp_sack_info != NULL); 13474 tcp_sack_insert(tcp->tcp_sack_list, 13475 seg_seq, seg_seq + seg_len, 13476 &(tcp->tcp_num_sack_blk)); 13477 } 13478 13479 /* 13480 * Attempt reassembly and see if we have something 13481 * ready to go. 13482 */ 13483 mp = tcp_reass(tcp, mp, seg_seq); 13484 /* Always ack out of order packets */ 13485 flags |= TH_ACK_NEEDED | TH_PUSH; 13486 if (mp) { 13487 ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= 13488 (uintptr_t)INT_MAX); 13489 seg_len = mp->b_cont ? msgdsize(mp) : 13490 (int)(mp->b_wptr - mp->b_rptr); 13491 seg_seq = tcp->tcp_rnxt; 13492 /* 13493 * A gap is filled and the seq num and len 13494 * of the gap match that of a previously 13495 * received FIN, put the FIN flag back in. 13496 */ 13497 if ((tcp->tcp_valid_bits & TCP_OFO_FIN_VALID) && 13498 seg_seq + seg_len == tcp->tcp_ofo_fin_seq) { 13499 flags |= TH_FIN; 13500 tcp->tcp_valid_bits &= 13501 ~TCP_OFO_FIN_VALID; 13502 } 13503 } else { 13504 /* 13505 * Keep going even with NULL mp. 13506 * There may be a useful ACK or something else 13507 * we don't want to miss. 13508 * 13509 * But TCP should not perform fast retransmit 13510 * because of the ack number. TCP uses 13511 * seg_len == 0 to determine if it is a pure 13512 * ACK. And this is not a pure ACK. 13513 */ 13514 seg_len = 0; 13515 ofo_seg = B_TRUE; 13516 } 13517 } 13518 } else if (seg_len > 0) { 13519 BUMP_MIB(&tcp_mib, tcpInDataInorderSegs); 13520 UPDATE_MIB(&tcp_mib, tcpInDataInorderBytes, seg_len); 13521 /* 13522 * If an out of order FIN was received before, and the seq 13523 * num and len of the new segment match that of the FIN, 13524 * put the FIN flag back in. 13525 */ 13526 if ((tcp->tcp_valid_bits & TCP_OFO_FIN_VALID) && 13527 seg_seq + seg_len == tcp->tcp_ofo_fin_seq) { 13528 flags |= TH_FIN; 13529 tcp->tcp_valid_bits &= ~TCP_OFO_FIN_VALID; 13530 } 13531 } 13532 if ((flags & (TH_RST | TH_SYN | TH_URG | TH_ACK)) != TH_ACK) { 13533 if (flags & TH_RST) { 13534 freemsg(mp); 13535 switch (tcp->tcp_state) { 13536 case TCPS_SYN_RCVD: 13537 (void) tcp_clean_death(tcp, ECONNREFUSED, 14); 13538 break; 13539 case TCPS_ESTABLISHED: 13540 case TCPS_FIN_WAIT_1: 13541 case TCPS_FIN_WAIT_2: 13542 case TCPS_CLOSE_WAIT: 13543 (void) tcp_clean_death(tcp, ECONNRESET, 15); 13544 break; 13545 case TCPS_CLOSING: 13546 case TCPS_LAST_ACK: 13547 (void) tcp_clean_death(tcp, 0, 16); 13548 break; 13549 default: 13550 ASSERT(tcp->tcp_state != TCPS_TIME_WAIT); 13551 (void) tcp_clean_death(tcp, ENXIO, 17); 13552 break; 13553 } 13554 return; 13555 } 13556 if (flags & TH_SYN) { 13557 /* 13558 * See RFC 793, Page 71 13559 * 13560 * The seq number must be in the window as it should 13561 * be "fixed" above. If it is outside window, it should 13562 * be already rejected. Note that we allow seg_seq to be 13563 * rnxt + rwnd because we want to accept 0 window probe. 13564 */ 13565 ASSERT(SEQ_GEQ(seg_seq, tcp->tcp_rnxt) && 13566 SEQ_LEQ(seg_seq, tcp->tcp_rnxt + tcp->tcp_rwnd)); 13567 freemsg(mp); 13568 /* 13569 * If the ACK flag is not set, just use our snxt as the 13570 * seq number of the RST segment. 13571 */ 13572 if (!(flags & TH_ACK)) { 13573 seg_ack = tcp->tcp_snxt; 13574 } 13575 tcp_xmit_ctl("TH_SYN", tcp, seg_ack, seg_seq + 1, 13576 TH_RST|TH_ACK); 13577 ASSERT(tcp->tcp_state != TCPS_TIME_WAIT); 13578 (void) tcp_clean_death(tcp, ECONNRESET, 18); 13579 return; 13580 } 13581 /* 13582 * urp could be -1 when the urp field in the packet is 0 13583 * and TCP_OLD_URP_INTERPRETATION is set. This implies that the urgent 13584 * byte was at seg_seq - 1, in which case we ignore the urgent flag. 13585 */ 13586 if (flags & TH_URG && urp >= 0) { 13587 if (!tcp->tcp_urp_last_valid || 13588 SEQ_GT(urp + seg_seq, tcp->tcp_urp_last)) { 13589 /* 13590 * If we haven't generated the signal yet for this 13591 * urgent pointer value, do it now. Also, send up a 13592 * zero-length M_DATA indicating whether or not this is 13593 * the mark. The latter is not needed when a 13594 * T_EXDATA_IND is sent up. However, if there are 13595 * allocation failures this code relies on the sender 13596 * retransmitting and the socket code for determining 13597 * the mark should not block waiting for the peer to 13598 * transmit. Thus, for simplicity we always send up the 13599 * mark indication. 13600 */ 13601 mp1 = allocb(0, BPRI_MED); 13602 if (mp1 == NULL) { 13603 freemsg(mp); 13604 return; 13605 } 13606 if (!TCP_IS_DETACHED(tcp) && 13607 !putnextctl1(tcp->tcp_rq, M_PCSIG, SIGURG)) { 13608 /* Try again on the rexmit. */ 13609 freemsg(mp1); 13610 freemsg(mp); 13611 return; 13612 } 13613 /* 13614 * Mark with NOTMARKNEXT for now. 13615 * The code below will change this to MARKNEXT 13616 * if we are at the mark. 13617 * 13618 * If there are allocation failures (e.g. in dupmsg 13619 * below) the next time tcp_rput_data sees the urgent 13620 * segment it will send up the MSG*MARKNEXT message. 13621 */ 13622 mp1->b_flag |= MSGNOTMARKNEXT; 13623 freemsg(tcp->tcp_urp_mark_mp); 13624 tcp->tcp_urp_mark_mp = mp1; 13625 flags |= TH_SEND_URP_MARK; 13626 #ifdef DEBUG 13627 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 13628 "tcp_rput: sent M_PCSIG 2 seq %x urp %x " 13629 "last %x, %s", 13630 seg_seq, urp, tcp->tcp_urp_last, 13631 tcp_display(tcp, NULL, DISP_PORT_ONLY)); 13632 #endif /* DEBUG */ 13633 tcp->tcp_urp_last_valid = B_TRUE; 13634 tcp->tcp_urp_last = urp + seg_seq; 13635 } else if (tcp->tcp_urp_mark_mp != NULL) { 13636 /* 13637 * An allocation failure prevented the previous 13638 * tcp_rput_data from sending up the allocated 13639 * MSG*MARKNEXT message - send it up this time 13640 * around. 13641 */ 13642 flags |= TH_SEND_URP_MARK; 13643 } 13644 13645 /* 13646 * If the urgent byte is in this segment, make sure that it is 13647 * all by itself. This makes it much easier to deal with the 13648 * possibility of an allocation failure on the T_exdata_ind. 13649 * Note that seg_len is the number of bytes in the segment, and 13650 * urp is the offset into the segment of the urgent byte. 13651 * urp < seg_len means that the urgent byte is in this segment. 13652 */ 13653 if (urp < seg_len) { 13654 if (seg_len != 1) { 13655 uint32_t tmp_rnxt; 13656 /* 13657 * Break it up and feed it back in. 13658 * Re-attach the IP header. 13659 */ 13660 mp->b_rptr = iphdr; 13661 if (urp > 0) { 13662 /* 13663 * There is stuff before the urgent 13664 * byte. 13665 */ 13666 mp1 = dupmsg(mp); 13667 if (!mp1) { 13668 /* 13669 * Trim from urgent byte on. 13670 * The rest will come back. 13671 */ 13672 (void) adjmsg(mp, 13673 urp - seg_len); 13674 tcp_rput_data(connp, 13675 mp, NULL); 13676 return; 13677 } 13678 (void) adjmsg(mp1, urp - seg_len); 13679 /* Feed this piece back in. */ 13680 tmp_rnxt = tcp->tcp_rnxt; 13681 tcp_rput_data(connp, mp1, NULL); 13682 /* 13683 * If the data passed back in was not 13684 * processed (ie: bad ACK) sending 13685 * the remainder back in will cause a 13686 * loop. In this case, drop the 13687 * packet and let the sender try 13688 * sending a good packet. 13689 */ 13690 if (tmp_rnxt == tcp->tcp_rnxt) { 13691 freemsg(mp); 13692 return; 13693 } 13694 } 13695 if (urp != seg_len - 1) { 13696 uint32_t tmp_rnxt; 13697 /* 13698 * There is stuff after the urgent 13699 * byte. 13700 */ 13701 mp1 = dupmsg(mp); 13702 if (!mp1) { 13703 /* 13704 * Trim everything beyond the 13705 * urgent byte. The rest will 13706 * come back. 13707 */ 13708 (void) adjmsg(mp, 13709 urp + 1 - seg_len); 13710 tcp_rput_data(connp, 13711 mp, NULL); 13712 return; 13713 } 13714 (void) adjmsg(mp1, urp + 1 - seg_len); 13715 tmp_rnxt = tcp->tcp_rnxt; 13716 tcp_rput_data(connp, mp1, NULL); 13717 /* 13718 * If the data passed back in was not 13719 * processed (ie: bad ACK) sending 13720 * the remainder back in will cause a 13721 * loop. In this case, drop the 13722 * packet and let the sender try 13723 * sending a good packet. 13724 */ 13725 if (tmp_rnxt == tcp->tcp_rnxt) { 13726 freemsg(mp); 13727 return; 13728 } 13729 } 13730 tcp_rput_data(connp, mp, NULL); 13731 return; 13732 } 13733 /* 13734 * This segment contains only the urgent byte. We 13735 * have to allocate the T_exdata_ind, if we can. 13736 */ 13737 if (!tcp->tcp_urp_mp) { 13738 struct T_exdata_ind *tei; 13739 mp1 = allocb(sizeof (struct T_exdata_ind), 13740 BPRI_MED); 13741 if (!mp1) { 13742 /* 13743 * Sigh... It'll be back. 13744 * Generate any MSG*MARK message now. 13745 */ 13746 freemsg(mp); 13747 seg_len = 0; 13748 if (flags & TH_SEND_URP_MARK) { 13749 13750 13751 ASSERT(tcp->tcp_urp_mark_mp); 13752 tcp->tcp_urp_mark_mp->b_flag &= 13753 ~MSGNOTMARKNEXT; 13754 tcp->tcp_urp_mark_mp->b_flag |= 13755 MSGMARKNEXT; 13756 } 13757 goto ack_check; 13758 } 13759 mp1->b_datap->db_type = M_PROTO; 13760 tei = (struct T_exdata_ind *)mp1->b_rptr; 13761 tei->PRIM_type = T_EXDATA_IND; 13762 tei->MORE_flag = 0; 13763 mp1->b_wptr = (uchar_t *)&tei[1]; 13764 tcp->tcp_urp_mp = mp1; 13765 #ifdef DEBUG 13766 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 13767 "tcp_rput: allocated exdata_ind %s", 13768 tcp_display(tcp, NULL, 13769 DISP_PORT_ONLY)); 13770 #endif /* DEBUG */ 13771 /* 13772 * There is no need to send a separate MSG*MARK 13773 * message since the T_EXDATA_IND will be sent 13774 * now. 13775 */ 13776 flags &= ~TH_SEND_URP_MARK; 13777 freemsg(tcp->tcp_urp_mark_mp); 13778 tcp->tcp_urp_mark_mp = NULL; 13779 } 13780 /* 13781 * Now we are all set. On the next putnext upstream, 13782 * tcp_urp_mp will be non-NULL and will get prepended 13783 * to what has to be this piece containing the urgent 13784 * byte. If for any reason we abort this segment below, 13785 * if it comes back, we will have this ready, or it 13786 * will get blown off in close. 13787 */ 13788 } else if (urp == seg_len) { 13789 /* 13790 * The urgent byte is the next byte after this sequence 13791 * number. If there is data it is marked with 13792 * MSGMARKNEXT and any tcp_urp_mark_mp is discarded 13793 * since it is not needed. Otherwise, if the code 13794 * above just allocated a zero-length tcp_urp_mark_mp 13795 * message, that message is tagged with MSGMARKNEXT. 13796 * Sending up these MSGMARKNEXT messages makes 13797 * SIOCATMARK work correctly even though 13798 * the T_EXDATA_IND will not be sent up until the 13799 * urgent byte arrives. 13800 */ 13801 if (seg_len != 0) { 13802 flags |= TH_MARKNEXT_NEEDED; 13803 freemsg(tcp->tcp_urp_mark_mp); 13804 tcp->tcp_urp_mark_mp = NULL; 13805 flags &= ~TH_SEND_URP_MARK; 13806 } else if (tcp->tcp_urp_mark_mp != NULL) { 13807 flags |= TH_SEND_URP_MARK; 13808 tcp->tcp_urp_mark_mp->b_flag &= 13809 ~MSGNOTMARKNEXT; 13810 tcp->tcp_urp_mark_mp->b_flag |= MSGMARKNEXT; 13811 } 13812 #ifdef DEBUG 13813 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 13814 "tcp_rput: AT MARK, len %d, flags 0x%x, %s", 13815 seg_len, flags, 13816 tcp_display(tcp, NULL, DISP_PORT_ONLY)); 13817 #endif /* DEBUG */ 13818 } else { 13819 /* Data left until we hit mark */ 13820 #ifdef DEBUG 13821 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 13822 "tcp_rput: URP %d bytes left, %s", 13823 urp - seg_len, tcp_display(tcp, NULL, 13824 DISP_PORT_ONLY)); 13825 #endif /* DEBUG */ 13826 } 13827 } 13828 13829 process_ack: 13830 if (!(flags & TH_ACK)) { 13831 freemsg(mp); 13832 goto xmit_check; 13833 } 13834 } 13835 bytes_acked = (int)(seg_ack - tcp->tcp_suna); 13836 13837 if (tcp->tcp_ipversion == IPV6_VERSION && bytes_acked > 0) 13838 tcp->tcp_ip_forward_progress = B_TRUE; 13839 if (tcp->tcp_state == TCPS_SYN_RCVD) { 13840 if ((tcp->tcp_conn.tcp_eager_conn_ind != NULL) && 13841 ((tcp->tcp_kssl_ent == NULL) || !tcp->tcp_kssl_pending)) { 13842 /* 3-way handshake complete - pass up the T_CONN_IND */ 13843 tcp_t *listener = tcp->tcp_listener; 13844 mblk_t *mp = tcp->tcp_conn.tcp_eager_conn_ind; 13845 13846 tcp->tcp_tconnind_started = B_TRUE; 13847 tcp->tcp_conn.tcp_eager_conn_ind = NULL; 13848 /* 13849 * We are here means eager is fine but it can 13850 * get a TH_RST at any point between now and till 13851 * accept completes and disappear. We need to 13852 * ensure that reference to eager is valid after 13853 * we get out of eager's perimeter. So we do 13854 * an extra refhold. 13855 */ 13856 CONN_INC_REF(connp); 13857 13858 /* 13859 * The listener also exists because of the refhold 13860 * done in tcp_conn_request. Its possible that it 13861 * might have closed. We will check that once we 13862 * get inside listeners context. 13863 */ 13864 CONN_INC_REF(listener->tcp_connp); 13865 if (listener->tcp_connp->conn_sqp == 13866 connp->conn_sqp) { 13867 tcp_send_conn_ind(listener->tcp_connp, mp, 13868 listener->tcp_connp->conn_sqp); 13869 CONN_DEC_REF(listener->tcp_connp); 13870 } else if (!tcp->tcp_loopback) { 13871 squeue_fill(listener->tcp_connp->conn_sqp, mp, 13872 tcp_send_conn_ind, 13873 listener->tcp_connp, SQTAG_TCP_CONN_IND); 13874 } else { 13875 squeue_enter(listener->tcp_connp->conn_sqp, mp, 13876 tcp_send_conn_ind, listener->tcp_connp, 13877 SQTAG_TCP_CONN_IND); 13878 } 13879 } 13880 13881 if (tcp->tcp_active_open) { 13882 /* 13883 * We are seeing the final ack in the three way 13884 * hand shake of a active open'ed connection 13885 * so we must send up a T_CONN_CON 13886 */ 13887 if (!tcp_conn_con(tcp, iphdr, tcph, mp, NULL)) { 13888 freemsg(mp); 13889 return; 13890 } 13891 /* 13892 * Don't fuse the loopback endpoints for 13893 * simultaneous active opens. 13894 */ 13895 if (tcp->tcp_loopback) { 13896 TCP_STAT(tcp_fusion_unfusable); 13897 tcp->tcp_unfusable = B_TRUE; 13898 } 13899 } 13900 13901 tcp->tcp_suna = tcp->tcp_iss + 1; /* One for the SYN */ 13902 bytes_acked--; 13903 /* SYN was acked - making progress */ 13904 if (tcp->tcp_ipversion == IPV6_VERSION) 13905 tcp->tcp_ip_forward_progress = B_TRUE; 13906 13907 /* 13908 * If SYN was retransmitted, need to reset all 13909 * retransmission info as this segment will be 13910 * treated as a dup ACK. 13911 */ 13912 if (tcp->tcp_rexmit) { 13913 tcp->tcp_rexmit = B_FALSE; 13914 tcp->tcp_rexmit_nxt = tcp->tcp_snxt; 13915 tcp->tcp_rexmit_max = tcp->tcp_snxt; 13916 tcp->tcp_snd_burst = tcp->tcp_localnet ? 13917 TCP_CWND_INFINITE : TCP_CWND_NORMAL; 13918 tcp->tcp_ms_we_have_waited = 0; 13919 tcp->tcp_cwnd = mss; 13920 } 13921 13922 /* 13923 * We set the send window to zero here. 13924 * This is needed if there is data to be 13925 * processed already on the queue. 13926 * Later (at swnd_update label), the 13927 * "new_swnd > tcp_swnd" condition is satisfied 13928 * the XMIT_NEEDED flag is set in the current 13929 * (SYN_RCVD) state. This ensures tcp_wput_data() is 13930 * called if there is already data on queue in 13931 * this state. 13932 */ 13933 tcp->tcp_swnd = 0; 13934 13935 if (new_swnd > tcp->tcp_max_swnd) 13936 tcp->tcp_max_swnd = new_swnd; 13937 tcp->tcp_swl1 = seg_seq; 13938 tcp->tcp_swl2 = seg_ack; 13939 tcp->tcp_state = TCPS_ESTABLISHED; 13940 tcp->tcp_valid_bits &= ~TCP_ISS_VALID; 13941 13942 /* Fuse when both sides are in ESTABLISHED state */ 13943 if (tcp->tcp_loopback && do_tcp_fusion) 13944 tcp_fuse(tcp, iphdr, tcph); 13945 13946 } 13947 /* This code follows 4.4BSD-Lite2 mostly. */ 13948 if (bytes_acked < 0) 13949 goto est; 13950 13951 /* 13952 * If TCP is ECN capable and the congestion experience bit is 13953 * set, reduce tcp_cwnd and tcp_ssthresh. But this should only be 13954 * done once per window (or more loosely, per RTT). 13955 */ 13956 if (tcp->tcp_cwr && SEQ_GT(seg_ack, tcp->tcp_cwr_snd_max)) 13957 tcp->tcp_cwr = B_FALSE; 13958 if (tcp->tcp_ecn_ok && (flags & TH_ECE)) { 13959 if (!tcp->tcp_cwr) { 13960 npkt = ((tcp->tcp_snxt - tcp->tcp_suna) >> 1) / mss; 13961 tcp->tcp_cwnd_ssthresh = MAX(npkt, 2) * mss; 13962 tcp->tcp_cwnd = npkt * mss; 13963 /* 13964 * If the cwnd is 0, use the timer to clock out 13965 * new segments. This is required by the ECN spec. 13966 */ 13967 if (npkt == 0) { 13968 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 13969 /* 13970 * This makes sure that when the ACK comes 13971 * back, we will increase tcp_cwnd by 1 MSS. 13972 */ 13973 tcp->tcp_cwnd_cnt = 0; 13974 } 13975 tcp->tcp_cwr = B_TRUE; 13976 /* 13977 * This marks the end of the current window of in 13978 * flight data. That is why we don't use 13979 * tcp_suna + tcp_swnd. Only data in flight can 13980 * provide ECN info. 13981 */ 13982 tcp->tcp_cwr_snd_max = tcp->tcp_snxt; 13983 tcp->tcp_ecn_cwr_sent = B_FALSE; 13984 } 13985 } 13986 13987 mp1 = tcp->tcp_xmit_head; 13988 if (bytes_acked == 0) { 13989 if (!ofo_seg && seg_len == 0 && new_swnd == tcp->tcp_swnd) { 13990 int dupack_cnt; 13991 13992 BUMP_MIB(&tcp_mib, tcpInDupAck); 13993 /* 13994 * Fast retransmit. When we have seen exactly three 13995 * identical ACKs while we have unacked data 13996 * outstanding we take it as a hint that our peer 13997 * dropped something. 13998 * 13999 * If TCP is retransmitting, don't do fast retransmit. 14000 */ 14001 if (mp1 && tcp->tcp_suna != tcp->tcp_snxt && 14002 ! tcp->tcp_rexmit) { 14003 /* Do Limited Transmit */ 14004 if ((dupack_cnt = ++tcp->tcp_dupack_cnt) < 14005 tcp_dupack_fast_retransmit) { 14006 /* 14007 * RFC 3042 14008 * 14009 * What we need to do is temporarily 14010 * increase tcp_cwnd so that new 14011 * data can be sent if it is allowed 14012 * by the receive window (tcp_rwnd). 14013 * tcp_wput_data() will take care of 14014 * the rest. 14015 * 14016 * If the connection is SACK capable, 14017 * only do limited xmit when there 14018 * is SACK info. 14019 * 14020 * Note how tcp_cwnd is incremented. 14021 * The first dup ACK will increase 14022 * it by 1 MSS. The second dup ACK 14023 * will increase it by 2 MSS. This 14024 * means that only 1 new segment will 14025 * be sent for each dup ACK. 14026 */ 14027 if (tcp->tcp_unsent > 0 && 14028 (!tcp->tcp_snd_sack_ok || 14029 (tcp->tcp_snd_sack_ok && 14030 tcp->tcp_notsack_list != NULL))) { 14031 tcp->tcp_cwnd += mss << 14032 (tcp->tcp_dupack_cnt - 1); 14033 flags |= TH_LIMIT_XMIT; 14034 } 14035 } else if (dupack_cnt == 14036 tcp_dupack_fast_retransmit) { 14037 14038 /* 14039 * If we have reduced tcp_ssthresh 14040 * because of ECN, do not reduce it again 14041 * unless it is already one window of data 14042 * away. After one window of data, tcp_cwr 14043 * should then be cleared. Note that 14044 * for non ECN capable connection, tcp_cwr 14045 * should always be false. 14046 * 14047 * Adjust cwnd since the duplicate 14048 * ack indicates that a packet was 14049 * dropped (due to congestion.) 14050 */ 14051 if (!tcp->tcp_cwr) { 14052 npkt = ((tcp->tcp_snxt - 14053 tcp->tcp_suna) >> 1) / mss; 14054 tcp->tcp_cwnd_ssthresh = MAX(npkt, 2) * 14055 mss; 14056 tcp->tcp_cwnd = (npkt + 14057 tcp->tcp_dupack_cnt) * mss; 14058 } 14059 if (tcp->tcp_ecn_ok) { 14060 tcp->tcp_cwr = B_TRUE; 14061 tcp->tcp_cwr_snd_max = tcp->tcp_snxt; 14062 tcp->tcp_ecn_cwr_sent = B_FALSE; 14063 } 14064 14065 /* 14066 * We do Hoe's algorithm. Refer to her 14067 * paper "Improving the Start-up Behavior 14068 * of a Congestion Control Scheme for TCP," 14069 * appeared in SIGCOMM'96. 14070 * 14071 * Save highest seq no we have sent so far. 14072 * Be careful about the invisible FIN byte. 14073 */ 14074 if ((tcp->tcp_valid_bits & TCP_FSS_VALID) && 14075 (tcp->tcp_unsent == 0)) { 14076 tcp->tcp_rexmit_max = tcp->tcp_fss; 14077 } else { 14078 tcp->tcp_rexmit_max = tcp->tcp_snxt; 14079 } 14080 14081 /* 14082 * Do not allow bursty traffic during. 14083 * fast recovery. Refer to Fall and Floyd's 14084 * paper "Simulation-based Comparisons of 14085 * Tahoe, Reno and SACK TCP" (in CCR?) 14086 * This is a best current practise. 14087 */ 14088 tcp->tcp_snd_burst = TCP_CWND_SS; 14089 14090 /* 14091 * For SACK: 14092 * Calculate tcp_pipe, which is the 14093 * estimated number of bytes in 14094 * network. 14095 * 14096 * tcp_fack is the highest sack'ed seq num 14097 * TCP has received. 14098 * 14099 * tcp_pipe is explained in the above quoted 14100 * Fall and Floyd's paper. tcp_fack is 14101 * explained in Mathis and Mahdavi's 14102 * "Forward Acknowledgment: Refining TCP 14103 * Congestion Control" in SIGCOMM '96. 14104 */ 14105 if (tcp->tcp_snd_sack_ok) { 14106 ASSERT(tcp->tcp_sack_info != NULL); 14107 if (tcp->tcp_notsack_list != NULL) { 14108 tcp->tcp_pipe = tcp->tcp_snxt - 14109 tcp->tcp_fack; 14110 tcp->tcp_sack_snxt = seg_ack; 14111 flags |= TH_NEED_SACK_REXMIT; 14112 } else { 14113 /* 14114 * Always initialize tcp_pipe 14115 * even though we don't have 14116 * any SACK info. If later 14117 * we get SACK info and 14118 * tcp_pipe is not initialized, 14119 * funny things will happen. 14120 */ 14121 tcp->tcp_pipe = 14122 tcp->tcp_cwnd_ssthresh; 14123 } 14124 } else { 14125 flags |= TH_REXMIT_NEEDED; 14126 } /* tcp_snd_sack_ok */ 14127 14128 } else { 14129 /* 14130 * Here we perform congestion 14131 * avoidance, but NOT slow start. 14132 * This is known as the Fast 14133 * Recovery Algorithm. 14134 */ 14135 if (tcp->tcp_snd_sack_ok && 14136 tcp->tcp_notsack_list != NULL) { 14137 flags |= TH_NEED_SACK_REXMIT; 14138 tcp->tcp_pipe -= mss; 14139 if (tcp->tcp_pipe < 0) 14140 tcp->tcp_pipe = 0; 14141 } else { 14142 /* 14143 * We know that one more packet has 14144 * left the pipe thus we can update 14145 * cwnd. 14146 */ 14147 cwnd = tcp->tcp_cwnd + mss; 14148 if (cwnd > tcp->tcp_cwnd_max) 14149 cwnd = tcp->tcp_cwnd_max; 14150 tcp->tcp_cwnd = cwnd; 14151 if (tcp->tcp_unsent > 0) 14152 flags |= TH_XMIT_NEEDED; 14153 } 14154 } 14155 } 14156 } else if (tcp->tcp_zero_win_probe) { 14157 /* 14158 * If the window has opened, need to arrange 14159 * to send additional data. 14160 */ 14161 if (new_swnd != 0) { 14162 /* tcp_suna != tcp_snxt */ 14163 /* Packet contains a window update */ 14164 BUMP_MIB(&tcp_mib, tcpInWinUpdate); 14165 tcp->tcp_zero_win_probe = 0; 14166 tcp->tcp_timer_backoff = 0; 14167 tcp->tcp_ms_we_have_waited = 0; 14168 14169 /* 14170 * Transmit starting with tcp_suna since 14171 * the one byte probe is not ack'ed. 14172 * If TCP has sent more than one identical 14173 * probe, tcp_rexmit will be set. That means 14174 * tcp_ss_rexmit() will send out the one 14175 * byte along with new data. Otherwise, 14176 * fake the retransmission. 14177 */ 14178 flags |= TH_XMIT_NEEDED; 14179 if (!tcp->tcp_rexmit) { 14180 tcp->tcp_rexmit = B_TRUE; 14181 tcp->tcp_dupack_cnt = 0; 14182 tcp->tcp_rexmit_nxt = tcp->tcp_suna; 14183 tcp->tcp_rexmit_max = tcp->tcp_suna + 1; 14184 } 14185 } 14186 } 14187 goto swnd_update; 14188 } 14189 14190 /* 14191 * Check for "acceptability" of ACK value per RFC 793, pages 72 - 73. 14192 * If the ACK value acks something that we have not yet sent, it might 14193 * be an old duplicate segment. Send an ACK to re-synchronize the 14194 * other side. 14195 * Note: reset in response to unacceptable ACK in SYN_RECEIVE 14196 * state is handled above, so we can always just drop the segment and 14197 * send an ACK here. 14198 * 14199 * Should we send ACKs in response to ACK only segments? 14200 */ 14201 if (SEQ_GT(seg_ack, tcp->tcp_snxt)) { 14202 BUMP_MIB(&tcp_mib, tcpInAckUnsent); 14203 /* drop the received segment */ 14204 freemsg(mp); 14205 14206 /* 14207 * Send back an ACK. If tcp_drop_ack_unsent_cnt is 14208 * greater than 0, check if the number of such 14209 * bogus ACks is greater than that count. If yes, 14210 * don't send back any ACK. This prevents TCP from 14211 * getting into an ACK storm if somehow an attacker 14212 * successfully spoofs an acceptable segment to our 14213 * peer. 14214 */ 14215 if (tcp_drop_ack_unsent_cnt > 0 && 14216 ++tcp->tcp_in_ack_unsent > tcp_drop_ack_unsent_cnt) { 14217 TCP_STAT(tcp_in_ack_unsent_drop); 14218 return; 14219 } 14220 mp = tcp_ack_mp(tcp); 14221 if (mp != NULL) { 14222 TCP_RECORD_TRACE(tcp, mp, TCP_TRACE_SEND_PKT); 14223 BUMP_LOCAL(tcp->tcp_obsegs); 14224 BUMP_MIB(&tcp_mib, tcpOutAck); 14225 tcp_send_data(tcp, tcp->tcp_wq, mp); 14226 } 14227 return; 14228 } 14229 14230 /* 14231 * TCP gets a new ACK, update the notsack'ed list to delete those 14232 * blocks that are covered by this ACK. 14233 */ 14234 if (tcp->tcp_snd_sack_ok && tcp->tcp_notsack_list != NULL) { 14235 tcp_notsack_remove(&(tcp->tcp_notsack_list), seg_ack, 14236 &(tcp->tcp_num_notsack_blk), &(tcp->tcp_cnt_notsack_list)); 14237 } 14238 14239 /* 14240 * If we got an ACK after fast retransmit, check to see 14241 * if it is a partial ACK. If it is not and the congestion 14242 * window was inflated to account for the other side's 14243 * cached packets, retract it. If it is, do Hoe's algorithm. 14244 */ 14245 if (tcp->tcp_dupack_cnt >= tcp_dupack_fast_retransmit) { 14246 ASSERT(tcp->tcp_rexmit == B_FALSE); 14247 if (SEQ_GEQ(seg_ack, tcp->tcp_rexmit_max)) { 14248 tcp->tcp_dupack_cnt = 0; 14249 /* 14250 * Restore the orig tcp_cwnd_ssthresh after 14251 * fast retransmit phase. 14252 */ 14253 if (tcp->tcp_cwnd > tcp->tcp_cwnd_ssthresh) { 14254 tcp->tcp_cwnd = tcp->tcp_cwnd_ssthresh; 14255 } 14256 tcp->tcp_rexmit_max = seg_ack; 14257 tcp->tcp_cwnd_cnt = 0; 14258 tcp->tcp_snd_burst = tcp->tcp_localnet ? 14259 TCP_CWND_INFINITE : TCP_CWND_NORMAL; 14260 14261 /* 14262 * Remove all notsack info to avoid confusion with 14263 * the next fast retrasnmit/recovery phase. 14264 */ 14265 if (tcp->tcp_snd_sack_ok && 14266 tcp->tcp_notsack_list != NULL) { 14267 TCP_NOTSACK_REMOVE_ALL(tcp->tcp_notsack_list); 14268 } 14269 } else { 14270 if (tcp->tcp_snd_sack_ok && 14271 tcp->tcp_notsack_list != NULL) { 14272 flags |= TH_NEED_SACK_REXMIT; 14273 tcp->tcp_pipe -= mss; 14274 if (tcp->tcp_pipe < 0) 14275 tcp->tcp_pipe = 0; 14276 } else { 14277 /* 14278 * Hoe's algorithm: 14279 * 14280 * Retransmit the unack'ed segment and 14281 * restart fast recovery. Note that we 14282 * need to scale back tcp_cwnd to the 14283 * original value when we started fast 14284 * recovery. This is to prevent overly 14285 * aggressive behaviour in sending new 14286 * segments. 14287 */ 14288 tcp->tcp_cwnd = tcp->tcp_cwnd_ssthresh + 14289 tcp_dupack_fast_retransmit * mss; 14290 tcp->tcp_cwnd_cnt = tcp->tcp_cwnd; 14291 flags |= TH_REXMIT_NEEDED; 14292 } 14293 } 14294 } else { 14295 tcp->tcp_dupack_cnt = 0; 14296 if (tcp->tcp_rexmit) { 14297 /* 14298 * TCP is retranmitting. If the ACK ack's all 14299 * outstanding data, update tcp_rexmit_max and 14300 * tcp_rexmit_nxt. Otherwise, update tcp_rexmit_nxt 14301 * to the correct value. 14302 * 14303 * Note that SEQ_LEQ() is used. This is to avoid 14304 * unnecessary fast retransmit caused by dup ACKs 14305 * received when TCP does slow start retransmission 14306 * after a time out. During this phase, TCP may 14307 * send out segments which are already received. 14308 * This causes dup ACKs to be sent back. 14309 */ 14310 if (SEQ_LEQ(seg_ack, tcp->tcp_rexmit_max)) { 14311 if (SEQ_GT(seg_ack, tcp->tcp_rexmit_nxt)) { 14312 tcp->tcp_rexmit_nxt = seg_ack; 14313 } 14314 if (seg_ack != tcp->tcp_rexmit_max) { 14315 flags |= TH_XMIT_NEEDED; 14316 } 14317 } else { 14318 tcp->tcp_rexmit = B_FALSE; 14319 tcp->tcp_xmit_zc_clean = B_FALSE; 14320 tcp->tcp_rexmit_nxt = tcp->tcp_snxt; 14321 tcp->tcp_snd_burst = tcp->tcp_localnet ? 14322 TCP_CWND_INFINITE : TCP_CWND_NORMAL; 14323 } 14324 tcp->tcp_ms_we_have_waited = 0; 14325 } 14326 } 14327 14328 BUMP_MIB(&tcp_mib, tcpInAckSegs); 14329 UPDATE_MIB(&tcp_mib, tcpInAckBytes, bytes_acked); 14330 tcp->tcp_suna = seg_ack; 14331 if (tcp->tcp_zero_win_probe != 0) { 14332 tcp->tcp_zero_win_probe = 0; 14333 tcp->tcp_timer_backoff = 0; 14334 } 14335 14336 /* 14337 * If tcp_xmit_head is NULL, then it must be the FIN being ack'ed. 14338 * Note that it cannot be the SYN being ack'ed. The code flow 14339 * will not reach here. 14340 */ 14341 if (mp1 == NULL) { 14342 goto fin_acked; 14343 } 14344 14345 /* 14346 * Update the congestion window. 14347 * 14348 * If TCP is not ECN capable or TCP is ECN capable but the 14349 * congestion experience bit is not set, increase the tcp_cwnd as 14350 * usual. 14351 */ 14352 if (!tcp->tcp_ecn_ok || !(flags & TH_ECE)) { 14353 cwnd = tcp->tcp_cwnd; 14354 add = mss; 14355 14356 if (cwnd >= tcp->tcp_cwnd_ssthresh) { 14357 /* 14358 * This is to prevent an increase of less than 1 MSS of 14359 * tcp_cwnd. With partial increase, tcp_wput_data() 14360 * may send out tinygrams in order to preserve mblk 14361 * boundaries. 14362 * 14363 * By initializing tcp_cwnd_cnt to new tcp_cwnd and 14364 * decrementing it by 1 MSS for every ACKs, tcp_cwnd is 14365 * increased by 1 MSS for every RTTs. 14366 */ 14367 if (tcp->tcp_cwnd_cnt <= 0) { 14368 tcp->tcp_cwnd_cnt = cwnd + add; 14369 } else { 14370 tcp->tcp_cwnd_cnt -= add; 14371 add = 0; 14372 } 14373 } 14374 tcp->tcp_cwnd = MIN(cwnd + add, tcp->tcp_cwnd_max); 14375 } 14376 14377 /* See if the latest urgent data has been acknowledged */ 14378 if ((tcp->tcp_valid_bits & TCP_URG_VALID) && 14379 SEQ_GT(seg_ack, tcp->tcp_urg)) 14380 tcp->tcp_valid_bits &= ~TCP_URG_VALID; 14381 14382 /* Can we update the RTT estimates? */ 14383 if (tcp->tcp_snd_ts_ok) { 14384 /* Ignore zero timestamp echo-reply. */ 14385 if (tcpopt.tcp_opt_ts_ecr != 0) { 14386 tcp_set_rto(tcp, (int32_t)lbolt - 14387 (int32_t)tcpopt.tcp_opt_ts_ecr); 14388 } 14389 14390 /* If needed, restart the timer. */ 14391 if (tcp->tcp_set_timer == 1) { 14392 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 14393 tcp->tcp_set_timer = 0; 14394 } 14395 /* 14396 * Update tcp_csuna in case the other side stops sending 14397 * us timestamps. 14398 */ 14399 tcp->tcp_csuna = tcp->tcp_snxt; 14400 } else if (SEQ_GT(seg_ack, tcp->tcp_csuna)) { 14401 /* 14402 * An ACK sequence we haven't seen before, so get the RTT 14403 * and update the RTO. But first check if the timestamp is 14404 * valid to use. 14405 */ 14406 if ((mp1->b_next != NULL) && 14407 SEQ_GT(seg_ack, (uint32_t)(uintptr_t)(mp1->b_next))) 14408 tcp_set_rto(tcp, (int32_t)lbolt - 14409 (int32_t)(intptr_t)mp1->b_prev); 14410 else 14411 BUMP_MIB(&tcp_mib, tcpRttNoUpdate); 14412 14413 /* Remeber the last sequence to be ACKed */ 14414 tcp->tcp_csuna = seg_ack; 14415 if (tcp->tcp_set_timer == 1) { 14416 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 14417 tcp->tcp_set_timer = 0; 14418 } 14419 } else { 14420 BUMP_MIB(&tcp_mib, tcpRttNoUpdate); 14421 } 14422 14423 /* Eat acknowledged bytes off the xmit queue. */ 14424 for (;;) { 14425 mblk_t *mp2; 14426 uchar_t *wptr; 14427 14428 wptr = mp1->b_wptr; 14429 ASSERT((uintptr_t)(wptr - mp1->b_rptr) <= (uintptr_t)INT_MAX); 14430 bytes_acked -= (int)(wptr - mp1->b_rptr); 14431 if (bytes_acked < 0) { 14432 mp1->b_rptr = wptr + bytes_acked; 14433 /* 14434 * Set a new timestamp if all the bytes timed by the 14435 * old timestamp have been ack'ed. 14436 */ 14437 if (SEQ_GT(seg_ack, 14438 (uint32_t)(uintptr_t)(mp1->b_next))) { 14439 mp1->b_prev = (mblk_t *)(uintptr_t)lbolt; 14440 mp1->b_next = NULL; 14441 } 14442 break; 14443 } 14444 mp1->b_next = NULL; 14445 mp1->b_prev = NULL; 14446 mp2 = mp1; 14447 mp1 = mp1->b_cont; 14448 14449 /* 14450 * This notification is required for some zero-copy 14451 * clients to maintain a copy semantic. After the data 14452 * is ack'ed, client is safe to modify or reuse the buffer. 14453 */ 14454 if (tcp->tcp_snd_zcopy_aware && 14455 (mp2->b_datap->db_struioflag & STRUIO_ZCNOTIFY)) 14456 tcp_zcopy_notify(tcp); 14457 freeb(mp2); 14458 if (bytes_acked == 0) { 14459 if (mp1 == NULL) { 14460 /* Everything is ack'ed, clear the tail. */ 14461 tcp->tcp_xmit_tail = NULL; 14462 /* 14463 * Cancel the timer unless we are still 14464 * waiting for an ACK for the FIN packet. 14465 */ 14466 if (tcp->tcp_timer_tid != 0 && 14467 tcp->tcp_snxt == tcp->tcp_suna) { 14468 (void) TCP_TIMER_CANCEL(tcp, 14469 tcp->tcp_timer_tid); 14470 tcp->tcp_timer_tid = 0; 14471 } 14472 goto pre_swnd_update; 14473 } 14474 if (mp2 != tcp->tcp_xmit_tail) 14475 break; 14476 tcp->tcp_xmit_tail = mp1; 14477 ASSERT((uintptr_t)(mp1->b_wptr - mp1->b_rptr) <= 14478 (uintptr_t)INT_MAX); 14479 tcp->tcp_xmit_tail_unsent = (int)(mp1->b_wptr - 14480 mp1->b_rptr); 14481 break; 14482 } 14483 if (mp1 == NULL) { 14484 /* 14485 * More was acked but there is nothing more 14486 * outstanding. This means that the FIN was 14487 * just acked or that we're talking to a clown. 14488 */ 14489 fin_acked: 14490 ASSERT(tcp->tcp_fin_sent); 14491 tcp->tcp_xmit_tail = NULL; 14492 if (tcp->tcp_fin_sent) { 14493 /* FIN was acked - making progress */ 14494 if (tcp->tcp_ipversion == IPV6_VERSION && 14495 !tcp->tcp_fin_acked) 14496 tcp->tcp_ip_forward_progress = B_TRUE; 14497 tcp->tcp_fin_acked = B_TRUE; 14498 if (tcp->tcp_linger_tid != 0 && 14499 TCP_TIMER_CANCEL(tcp, 14500 tcp->tcp_linger_tid) >= 0) { 14501 tcp_stop_lingering(tcp); 14502 } 14503 } else { 14504 /* 14505 * We should never get here because 14506 * we have already checked that the 14507 * number of bytes ack'ed should be 14508 * smaller than or equal to what we 14509 * have sent so far (it is the 14510 * acceptability check of the ACK). 14511 * We can only get here if the send 14512 * queue is corrupted. 14513 * 14514 * Terminate the connection and 14515 * panic the system. It is better 14516 * for us to panic instead of 14517 * continuing to avoid other disaster. 14518 */ 14519 tcp_xmit_ctl(NULL, tcp, tcp->tcp_snxt, 14520 tcp->tcp_rnxt, TH_RST|TH_ACK); 14521 panic("Memory corruption " 14522 "detected for connection %s.", 14523 tcp_display(tcp, NULL, 14524 DISP_ADDR_AND_PORT)); 14525 /*NOTREACHED*/ 14526 } 14527 goto pre_swnd_update; 14528 } 14529 ASSERT(mp2 != tcp->tcp_xmit_tail); 14530 } 14531 if (tcp->tcp_unsent) { 14532 flags |= TH_XMIT_NEEDED; 14533 } 14534 pre_swnd_update: 14535 tcp->tcp_xmit_head = mp1; 14536 swnd_update: 14537 /* 14538 * The following check is different from most other implementations. 14539 * For bi-directional transfer, when segments are dropped, the 14540 * "normal" check will not accept a window update in those 14541 * retransmitted segemnts. Failing to do that, TCP may send out 14542 * segments which are outside receiver's window. As TCP accepts 14543 * the ack in those retransmitted segments, if the window update in 14544 * the same segment is not accepted, TCP will incorrectly calculates 14545 * that it can send more segments. This can create a deadlock 14546 * with the receiver if its window becomes zero. 14547 */ 14548 if (SEQ_LT(tcp->tcp_swl2, seg_ack) || 14549 SEQ_LT(tcp->tcp_swl1, seg_seq) || 14550 (tcp->tcp_swl1 == seg_seq && new_swnd > tcp->tcp_swnd)) { 14551 /* 14552 * The criteria for update is: 14553 * 14554 * 1. the segment acknowledges some data. Or 14555 * 2. the segment is new, i.e. it has a higher seq num. Or 14556 * 3. the segment is not old and the advertised window is 14557 * larger than the previous advertised window. 14558 */ 14559 if (tcp->tcp_unsent && new_swnd > tcp->tcp_swnd) 14560 flags |= TH_XMIT_NEEDED; 14561 tcp->tcp_swnd = new_swnd; 14562 if (new_swnd > tcp->tcp_max_swnd) 14563 tcp->tcp_max_swnd = new_swnd; 14564 tcp->tcp_swl1 = seg_seq; 14565 tcp->tcp_swl2 = seg_ack; 14566 } 14567 est: 14568 if (tcp->tcp_state > TCPS_ESTABLISHED) { 14569 14570 switch (tcp->tcp_state) { 14571 case TCPS_FIN_WAIT_1: 14572 if (tcp->tcp_fin_acked) { 14573 tcp->tcp_state = TCPS_FIN_WAIT_2; 14574 /* 14575 * We implement the non-standard BSD/SunOS 14576 * FIN_WAIT_2 flushing algorithm. 14577 * If there is no user attached to this 14578 * TCP endpoint, then this TCP struct 14579 * could hang around forever in FIN_WAIT_2 14580 * state if the peer forgets to send us 14581 * a FIN. To prevent this, we wait only 14582 * 2*MSL (a convenient time value) for 14583 * the FIN to arrive. If it doesn't show up, 14584 * we flush the TCP endpoint. This algorithm, 14585 * though a violation of RFC-793, has worked 14586 * for over 10 years in BSD systems. 14587 * Note: SunOS 4.x waits 675 seconds before 14588 * flushing the FIN_WAIT_2 connection. 14589 */ 14590 TCP_TIMER_RESTART(tcp, 14591 tcp_fin_wait_2_flush_interval); 14592 } 14593 break; 14594 case TCPS_FIN_WAIT_2: 14595 break; /* Shutdown hook? */ 14596 case TCPS_LAST_ACK: 14597 freemsg(mp); 14598 if (tcp->tcp_fin_acked) { 14599 (void) tcp_clean_death(tcp, 0, 19); 14600 return; 14601 } 14602 goto xmit_check; 14603 case TCPS_CLOSING: 14604 if (tcp->tcp_fin_acked) { 14605 tcp->tcp_state = TCPS_TIME_WAIT; 14606 /* 14607 * Unconditionally clear the exclusive binding 14608 * bit so this TIME-WAIT connection won't 14609 * interfere with new ones. 14610 */ 14611 tcp->tcp_exclbind = 0; 14612 if (!TCP_IS_DETACHED(tcp)) { 14613 TCP_TIMER_RESTART(tcp, 14614 tcp_time_wait_interval); 14615 } else { 14616 tcp_time_wait_append(tcp); 14617 TCP_DBGSTAT(tcp_rput_time_wait); 14618 } 14619 } 14620 /*FALLTHRU*/ 14621 case TCPS_CLOSE_WAIT: 14622 freemsg(mp); 14623 goto xmit_check; 14624 default: 14625 ASSERT(tcp->tcp_state != TCPS_TIME_WAIT); 14626 break; 14627 } 14628 } 14629 if (flags & TH_FIN) { 14630 /* Make sure we ack the fin */ 14631 flags |= TH_ACK_NEEDED; 14632 if (!tcp->tcp_fin_rcvd) { 14633 tcp->tcp_fin_rcvd = B_TRUE; 14634 tcp->tcp_rnxt++; 14635 tcph = tcp->tcp_tcph; 14636 U32_TO_ABE32(tcp->tcp_rnxt, tcph->th_ack); 14637 14638 /* 14639 * Generate the ordrel_ind at the end unless we 14640 * are an eager guy. 14641 * In the eager case tcp_rsrv will do this when run 14642 * after tcp_accept is done. 14643 */ 14644 if (tcp->tcp_listener == NULL && 14645 !TCP_IS_DETACHED(tcp) && (!tcp->tcp_hard_binding)) 14646 flags |= TH_ORDREL_NEEDED; 14647 switch (tcp->tcp_state) { 14648 case TCPS_SYN_RCVD: 14649 case TCPS_ESTABLISHED: 14650 tcp->tcp_state = TCPS_CLOSE_WAIT; 14651 /* Keepalive? */ 14652 break; 14653 case TCPS_FIN_WAIT_1: 14654 if (!tcp->tcp_fin_acked) { 14655 tcp->tcp_state = TCPS_CLOSING; 14656 break; 14657 } 14658 /* FALLTHRU */ 14659 case TCPS_FIN_WAIT_2: 14660 tcp->tcp_state = TCPS_TIME_WAIT; 14661 /* 14662 * Unconditionally clear the exclusive binding 14663 * bit so this TIME-WAIT connection won't 14664 * interfere with new ones. 14665 */ 14666 tcp->tcp_exclbind = 0; 14667 if (!TCP_IS_DETACHED(tcp)) { 14668 TCP_TIMER_RESTART(tcp, 14669 tcp_time_wait_interval); 14670 } else { 14671 tcp_time_wait_append(tcp); 14672 TCP_DBGSTAT(tcp_rput_time_wait); 14673 } 14674 if (seg_len) { 14675 /* 14676 * implies data piggybacked on FIN. 14677 * break to handle data. 14678 */ 14679 break; 14680 } 14681 freemsg(mp); 14682 goto ack_check; 14683 } 14684 } 14685 } 14686 if (mp == NULL) 14687 goto xmit_check; 14688 if (seg_len == 0) { 14689 freemsg(mp); 14690 goto xmit_check; 14691 } 14692 if (mp->b_rptr == mp->b_wptr) { 14693 /* 14694 * The header has been consumed, so we remove the 14695 * zero-length mblk here. 14696 */ 14697 mp1 = mp; 14698 mp = mp->b_cont; 14699 freeb(mp1); 14700 } 14701 tcph = tcp->tcp_tcph; 14702 tcp->tcp_rack_cnt++; 14703 { 14704 uint32_t cur_max; 14705 14706 cur_max = tcp->tcp_rack_cur_max; 14707 if (tcp->tcp_rack_cnt >= cur_max) { 14708 /* 14709 * We have more unacked data than we should - send 14710 * an ACK now. 14711 */ 14712 flags |= TH_ACK_NEEDED; 14713 cur_max++; 14714 if (cur_max > tcp->tcp_rack_abs_max) 14715 tcp->tcp_rack_cur_max = tcp->tcp_rack_abs_max; 14716 else 14717 tcp->tcp_rack_cur_max = cur_max; 14718 } else if (TCP_IS_DETACHED(tcp)) { 14719 /* We don't have an ACK timer for detached TCP. */ 14720 flags |= TH_ACK_NEEDED; 14721 } else if (seg_len < mss) { 14722 /* 14723 * If we get a segment that is less than an mss, and we 14724 * already have unacknowledged data, and the amount 14725 * unacknowledged is not a multiple of mss, then we 14726 * better generate an ACK now. Otherwise, this may be 14727 * the tail piece of a transaction, and we would rather 14728 * wait for the response. 14729 */ 14730 uint32_t udif; 14731 ASSERT((uintptr_t)(tcp->tcp_rnxt - tcp->tcp_rack) <= 14732 (uintptr_t)INT_MAX); 14733 udif = (int)(tcp->tcp_rnxt - tcp->tcp_rack); 14734 if (udif && (udif % mss)) 14735 flags |= TH_ACK_NEEDED; 14736 else 14737 flags |= TH_ACK_TIMER_NEEDED; 14738 } else { 14739 /* Start delayed ack timer */ 14740 flags |= TH_ACK_TIMER_NEEDED; 14741 } 14742 } 14743 tcp->tcp_rnxt += seg_len; 14744 U32_TO_ABE32(tcp->tcp_rnxt, tcph->th_ack); 14745 14746 /* Update SACK list */ 14747 if (tcp->tcp_snd_sack_ok && tcp->tcp_num_sack_blk > 0) { 14748 tcp_sack_remove(tcp->tcp_sack_list, tcp->tcp_rnxt, 14749 &(tcp->tcp_num_sack_blk)); 14750 } 14751 14752 if (tcp->tcp_urp_mp) { 14753 tcp->tcp_urp_mp->b_cont = mp; 14754 mp = tcp->tcp_urp_mp; 14755 tcp->tcp_urp_mp = NULL; 14756 /* Ready for a new signal. */ 14757 tcp->tcp_urp_last_valid = B_FALSE; 14758 #ifdef DEBUG 14759 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 14760 "tcp_rput: sending exdata_ind %s", 14761 tcp_display(tcp, NULL, DISP_PORT_ONLY)); 14762 #endif /* DEBUG */ 14763 } 14764 14765 /* 14766 * Check for ancillary data changes compared to last segment. 14767 */ 14768 if (tcp->tcp_ipv6_recvancillary != 0) { 14769 mp = tcp_rput_add_ancillary(tcp, mp, &ipp); 14770 if (mp == NULL) 14771 return; 14772 } 14773 14774 if (tcp->tcp_listener || tcp->tcp_hard_binding) { 14775 /* 14776 * Side queue inbound data until the accept happens. 14777 * tcp_accept/tcp_rput drains this when the accept happens. 14778 * M_DATA is queued on b_cont. Otherwise (T_OPTDATA_IND or 14779 * T_EXDATA_IND) it is queued on b_next. 14780 * XXX Make urgent data use this. Requires: 14781 * Removing tcp_listener check for TH_URG 14782 * Making M_PCPROTO and MARK messages skip the eager case 14783 */ 14784 14785 if (tcp->tcp_kssl_pending) { 14786 tcp_kssl_input(tcp, mp); 14787 } else { 14788 tcp_rcv_enqueue(tcp, mp, seg_len); 14789 } 14790 } else { 14791 if (mp->b_datap->db_type != M_DATA || 14792 (flags & TH_MARKNEXT_NEEDED)) { 14793 if (tcp->tcp_rcv_list != NULL) { 14794 flags |= tcp_rcv_drain(tcp->tcp_rq, tcp); 14795 } 14796 ASSERT(tcp->tcp_rcv_list == NULL || 14797 tcp->tcp_fused_sigurg); 14798 if (flags & TH_MARKNEXT_NEEDED) { 14799 #ifdef DEBUG 14800 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 14801 "tcp_rput: sending MSGMARKNEXT %s", 14802 tcp_display(tcp, NULL, 14803 DISP_PORT_ONLY)); 14804 #endif /* DEBUG */ 14805 mp->b_flag |= MSGMARKNEXT; 14806 flags &= ~TH_MARKNEXT_NEEDED; 14807 } 14808 14809 /* Does this need SSL processing first? */ 14810 if ((tcp->tcp_kssl_ctx != NULL) && 14811 (DB_TYPE(mp) == M_DATA)) { 14812 tcp_kssl_input(tcp, mp); 14813 } else { 14814 putnext(tcp->tcp_rq, mp); 14815 if (!canputnext(tcp->tcp_rq)) 14816 tcp->tcp_rwnd -= seg_len; 14817 } 14818 } else if ((flags & (TH_PUSH|TH_FIN)) || 14819 tcp->tcp_rcv_cnt + seg_len >= tcp->tcp_rq->q_hiwat >> 3) { 14820 if (tcp->tcp_rcv_list != NULL) { 14821 /* 14822 * Enqueue the new segment first and then 14823 * call tcp_rcv_drain() to send all data 14824 * up. The other way to do this is to 14825 * send all queued data up and then call 14826 * putnext() to send the new segment up. 14827 * This way can remove the else part later 14828 * on. 14829 * 14830 * We don't this to avoid one more call to 14831 * canputnext() as tcp_rcv_drain() needs to 14832 * call canputnext(). 14833 */ 14834 tcp_rcv_enqueue(tcp, mp, seg_len); 14835 flags |= tcp_rcv_drain(tcp->tcp_rq, tcp); 14836 } else { 14837 /* Does this need SSL processing first? */ 14838 if ((tcp->tcp_kssl_ctx != NULL) && 14839 (DB_TYPE(mp) == M_DATA)) { 14840 tcp_kssl_input(tcp, mp); 14841 } else { 14842 putnext(tcp->tcp_rq, mp); 14843 if (!canputnext(tcp->tcp_rq)) 14844 tcp->tcp_rwnd -= seg_len; 14845 } 14846 } 14847 } else { 14848 /* 14849 * Enqueue all packets when processing an mblk 14850 * from the co queue and also enqueue normal packets. 14851 */ 14852 tcp_rcv_enqueue(tcp, mp, seg_len); 14853 } 14854 /* 14855 * Make sure the timer is running if we have data waiting 14856 * for a push bit. This provides resiliency against 14857 * implementations that do not correctly generate push bits. 14858 */ 14859 if (tcp->tcp_rcv_list != NULL && tcp->tcp_push_tid == 0) { 14860 /* 14861 * The connection may be closed at this point, so don't 14862 * do anything for a detached tcp. 14863 */ 14864 if (!TCP_IS_DETACHED(tcp)) 14865 tcp->tcp_push_tid = TCP_TIMER(tcp, 14866 tcp_push_timer, 14867 MSEC_TO_TICK(tcp_push_timer_interval)); 14868 } 14869 } 14870 xmit_check: 14871 /* Is there anything left to do? */ 14872 ASSERT(!(flags & TH_MARKNEXT_NEEDED)); 14873 if ((flags & (TH_REXMIT_NEEDED|TH_XMIT_NEEDED|TH_ACK_NEEDED| 14874 TH_NEED_SACK_REXMIT|TH_LIMIT_XMIT|TH_ACK_TIMER_NEEDED| 14875 TH_ORDREL_NEEDED|TH_SEND_URP_MARK)) == 0) 14876 goto done; 14877 14878 /* Any transmit work to do and a non-zero window? */ 14879 if ((flags & (TH_REXMIT_NEEDED|TH_XMIT_NEEDED|TH_NEED_SACK_REXMIT| 14880 TH_LIMIT_XMIT)) && tcp->tcp_swnd != 0) { 14881 if (flags & TH_REXMIT_NEEDED) { 14882 uint32_t snd_size = tcp->tcp_snxt - tcp->tcp_suna; 14883 14884 BUMP_MIB(&tcp_mib, tcpOutFastRetrans); 14885 if (snd_size > mss) 14886 snd_size = mss; 14887 if (snd_size > tcp->tcp_swnd) 14888 snd_size = tcp->tcp_swnd; 14889 mp1 = tcp_xmit_mp(tcp, tcp->tcp_xmit_head, snd_size, 14890 NULL, NULL, tcp->tcp_suna, B_TRUE, &snd_size, 14891 B_TRUE); 14892 14893 if (mp1 != NULL) { 14894 tcp->tcp_xmit_head->b_prev = (mblk_t *)lbolt; 14895 tcp->tcp_csuna = tcp->tcp_snxt; 14896 BUMP_MIB(&tcp_mib, tcpRetransSegs); 14897 UPDATE_MIB(&tcp_mib, tcpRetransBytes, snd_size); 14898 TCP_RECORD_TRACE(tcp, mp1, 14899 TCP_TRACE_SEND_PKT); 14900 tcp_send_data(tcp, tcp->tcp_wq, mp1); 14901 } 14902 } 14903 if (flags & TH_NEED_SACK_REXMIT) { 14904 tcp_sack_rxmit(tcp, &flags); 14905 } 14906 /* 14907 * For TH_LIMIT_XMIT, tcp_wput_data() is called to send 14908 * out new segment. Note that tcp_rexmit should not be 14909 * set, otherwise TH_LIMIT_XMIT should not be set. 14910 */ 14911 if (flags & (TH_XMIT_NEEDED|TH_LIMIT_XMIT)) { 14912 if (!tcp->tcp_rexmit) { 14913 tcp_wput_data(tcp, NULL, B_FALSE); 14914 } else { 14915 tcp_ss_rexmit(tcp); 14916 } 14917 } 14918 /* 14919 * Adjust tcp_cwnd back to normal value after sending 14920 * new data segments. 14921 */ 14922 if (flags & TH_LIMIT_XMIT) { 14923 tcp->tcp_cwnd -= mss << (tcp->tcp_dupack_cnt - 1); 14924 /* 14925 * This will restart the timer. Restarting the 14926 * timer is used to avoid a timeout before the 14927 * limited transmitted segment's ACK gets back. 14928 */ 14929 if (tcp->tcp_xmit_head != NULL) 14930 tcp->tcp_xmit_head->b_prev = (mblk_t *)lbolt; 14931 } 14932 14933 /* Anything more to do? */ 14934 if ((flags & (TH_ACK_NEEDED|TH_ACK_TIMER_NEEDED| 14935 TH_ORDREL_NEEDED|TH_SEND_URP_MARK)) == 0) 14936 goto done; 14937 } 14938 ack_check: 14939 if (flags & TH_SEND_URP_MARK) { 14940 ASSERT(tcp->tcp_urp_mark_mp); 14941 /* 14942 * Send up any queued data and then send the mark message 14943 */ 14944 if (tcp->tcp_rcv_list != NULL) { 14945 flags |= tcp_rcv_drain(tcp->tcp_rq, tcp); 14946 } 14947 ASSERT(tcp->tcp_rcv_list == NULL || tcp->tcp_fused_sigurg); 14948 14949 mp1 = tcp->tcp_urp_mark_mp; 14950 tcp->tcp_urp_mark_mp = NULL; 14951 #ifdef DEBUG 14952 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 14953 "tcp_rput: sending zero-length %s %s", 14954 ((mp1->b_flag & MSGMARKNEXT) ? "MSGMARKNEXT" : 14955 "MSGNOTMARKNEXT"), 14956 tcp_display(tcp, NULL, DISP_PORT_ONLY)); 14957 #endif /* DEBUG */ 14958 putnext(tcp->tcp_rq, mp1); 14959 flags &= ~TH_SEND_URP_MARK; 14960 } 14961 if (flags & TH_ACK_NEEDED) { 14962 /* 14963 * Time to send an ack for some reason. 14964 */ 14965 mp1 = tcp_ack_mp(tcp); 14966 14967 if (mp1 != NULL) { 14968 TCP_RECORD_TRACE(tcp, mp1, TCP_TRACE_SEND_PKT); 14969 tcp_send_data(tcp, tcp->tcp_wq, mp1); 14970 BUMP_LOCAL(tcp->tcp_obsegs); 14971 BUMP_MIB(&tcp_mib, tcpOutAck); 14972 } 14973 if (tcp->tcp_ack_tid != 0) { 14974 (void) TCP_TIMER_CANCEL(tcp, tcp->tcp_ack_tid); 14975 tcp->tcp_ack_tid = 0; 14976 } 14977 } 14978 if (flags & TH_ACK_TIMER_NEEDED) { 14979 /* 14980 * Arrange for deferred ACK or push wait timeout. 14981 * Start timer if it is not already running. 14982 */ 14983 if (tcp->tcp_ack_tid == 0) { 14984 tcp->tcp_ack_tid = TCP_TIMER(tcp, tcp_ack_timer, 14985 MSEC_TO_TICK(tcp->tcp_localnet ? 14986 (clock_t)tcp_local_dack_interval : 14987 (clock_t)tcp_deferred_ack_interval)); 14988 } 14989 } 14990 if (flags & TH_ORDREL_NEEDED) { 14991 /* 14992 * Send up the ordrel_ind unless we are an eager guy. 14993 * In the eager case tcp_rsrv will do this when run 14994 * after tcp_accept is done. 14995 */ 14996 ASSERT(tcp->tcp_listener == NULL); 14997 if (tcp->tcp_rcv_list != NULL) { 14998 /* 14999 * Push any mblk(s) enqueued from co processing. 15000 */ 15001 flags |= tcp_rcv_drain(tcp->tcp_rq, tcp); 15002 } 15003 ASSERT(tcp->tcp_rcv_list == NULL || tcp->tcp_fused_sigurg); 15004 if ((mp1 = mi_tpi_ordrel_ind()) != NULL) { 15005 tcp->tcp_ordrel_done = B_TRUE; 15006 putnext(tcp->tcp_rq, mp1); 15007 if (tcp->tcp_deferred_clean_death) { 15008 /* 15009 * tcp_clean_death was deferred 15010 * for T_ORDREL_IND - do it now 15011 */ 15012 (void) tcp_clean_death(tcp, 15013 tcp->tcp_client_errno, 20); 15014 tcp->tcp_deferred_clean_death = B_FALSE; 15015 } 15016 } else { 15017 /* 15018 * Run the orderly release in the 15019 * service routine. 15020 */ 15021 qenable(tcp->tcp_rq); 15022 /* 15023 * Caveat(XXX): The machine may be so 15024 * overloaded that tcp_rsrv() is not scheduled 15025 * until after the endpoint has transitioned 15026 * to TCPS_TIME_WAIT 15027 * and tcp_time_wait_interval expires. Then 15028 * tcp_timer() will blow away state in tcp_t 15029 * and T_ORDREL_IND will never be delivered 15030 * upstream. Unlikely but potentially 15031 * a problem. 15032 */ 15033 } 15034 } 15035 done: 15036 ASSERT(!(flags & TH_MARKNEXT_NEEDED)); 15037 } 15038 15039 /* 15040 * This function does PAWS protection check. Returns B_TRUE if the 15041 * segment passes the PAWS test, else returns B_FALSE. 15042 */ 15043 boolean_t 15044 tcp_paws_check(tcp_t *tcp, tcph_t *tcph, tcp_opt_t *tcpoptp) 15045 { 15046 uint8_t flags; 15047 int options; 15048 uint8_t *up; 15049 15050 flags = (unsigned int)tcph->th_flags[0] & 0xFF; 15051 /* 15052 * If timestamp option is aligned nicely, get values inline, 15053 * otherwise call general routine to parse. Only do that 15054 * if timestamp is the only option. 15055 */ 15056 if (TCP_HDR_LENGTH(tcph) == (uint32_t)TCP_MIN_HEADER_LENGTH + 15057 TCPOPT_REAL_TS_LEN && 15058 OK_32PTR((up = ((uint8_t *)tcph) + 15059 TCP_MIN_HEADER_LENGTH)) && 15060 *(uint32_t *)up == TCPOPT_NOP_NOP_TSTAMP) { 15061 tcpoptp->tcp_opt_ts_val = ABE32_TO_U32((up+4)); 15062 tcpoptp->tcp_opt_ts_ecr = ABE32_TO_U32((up+8)); 15063 15064 options = TCP_OPT_TSTAMP_PRESENT; 15065 } else { 15066 if (tcp->tcp_snd_sack_ok) { 15067 tcpoptp->tcp = tcp; 15068 } else { 15069 tcpoptp->tcp = NULL; 15070 } 15071 options = tcp_parse_options(tcph, tcpoptp); 15072 } 15073 15074 if (options & TCP_OPT_TSTAMP_PRESENT) { 15075 /* 15076 * Do PAWS per RFC 1323 section 4.2. Accept RST 15077 * regardless of the timestamp, page 18 RFC 1323.bis. 15078 */ 15079 if ((flags & TH_RST) == 0 && 15080 TSTMP_LT(tcpoptp->tcp_opt_ts_val, 15081 tcp->tcp_ts_recent)) { 15082 if (TSTMP_LT(lbolt64, tcp->tcp_last_rcv_lbolt + 15083 PAWS_TIMEOUT)) { 15084 /* This segment is not acceptable. */ 15085 return (B_FALSE); 15086 } else { 15087 /* 15088 * Connection has been idle for 15089 * too long. Reset the timestamp 15090 * and assume the segment is valid. 15091 */ 15092 tcp->tcp_ts_recent = 15093 tcpoptp->tcp_opt_ts_val; 15094 } 15095 } 15096 } else { 15097 /* 15098 * If we don't get a timestamp on every packet, we 15099 * figure we can't really trust 'em, so we stop sending 15100 * and parsing them. 15101 */ 15102 tcp->tcp_snd_ts_ok = B_FALSE; 15103 15104 tcp->tcp_hdr_len -= TCPOPT_REAL_TS_LEN; 15105 tcp->tcp_tcp_hdr_len -= TCPOPT_REAL_TS_LEN; 15106 tcp->tcp_tcph->th_offset_and_rsrvd[0] -= (3 << 4); 15107 tcp_mss_set(tcp, tcp->tcp_mss + TCPOPT_REAL_TS_LEN); 15108 if (tcp->tcp_snd_sack_ok) { 15109 ASSERT(tcp->tcp_sack_info != NULL); 15110 tcp->tcp_max_sack_blk = 4; 15111 } 15112 } 15113 return (B_TRUE); 15114 } 15115 15116 /* 15117 * Attach ancillary data to a received TCP segments for the 15118 * ancillary pieces requested by the application that are 15119 * different than they were in the previous data segment. 15120 * 15121 * Save the "current" values once memory allocation is ok so that 15122 * when memory allocation fails we can just wait for the next data segment. 15123 */ 15124 static mblk_t * 15125 tcp_rput_add_ancillary(tcp_t *tcp, mblk_t *mp, ip6_pkt_t *ipp) 15126 { 15127 struct T_optdata_ind *todi; 15128 int optlen; 15129 uchar_t *optptr; 15130 struct T_opthdr *toh; 15131 uint_t addflag; /* Which pieces to add */ 15132 mblk_t *mp1; 15133 15134 optlen = 0; 15135 addflag = 0; 15136 /* If app asked for pktinfo and the index has changed ... */ 15137 if ((ipp->ipp_fields & IPPF_IFINDEX) && 15138 ipp->ipp_ifindex != tcp->tcp_recvifindex && 15139 (tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVPKTINFO)) { 15140 optlen += sizeof (struct T_opthdr) + 15141 sizeof (struct in6_pktinfo); 15142 addflag |= TCP_IPV6_RECVPKTINFO; 15143 } 15144 /* If app asked for hoplimit and it has changed ... */ 15145 if ((ipp->ipp_fields & IPPF_HOPLIMIT) && 15146 ipp->ipp_hoplimit != tcp->tcp_recvhops && 15147 (tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVHOPLIMIT)) { 15148 optlen += sizeof (struct T_opthdr) + sizeof (uint_t); 15149 addflag |= TCP_IPV6_RECVHOPLIMIT; 15150 } 15151 /* If app asked for tclass and it has changed ... */ 15152 if ((ipp->ipp_fields & IPPF_TCLASS) && 15153 ipp->ipp_tclass != tcp->tcp_recvtclass && 15154 (tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVTCLASS)) { 15155 optlen += sizeof (struct T_opthdr) + sizeof (uint_t); 15156 addflag |= TCP_IPV6_RECVTCLASS; 15157 } 15158 /* 15159 * If app asked for hopbyhop headers and it has changed ... 15160 * For security labels, note that (1) security labels can't change on 15161 * a connected socket at all, (2) we're connected to at most one peer, 15162 * (3) if anything changes, then it must be some other extra option. 15163 */ 15164 if ((tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVHOPOPTS) && 15165 ip_cmpbuf(tcp->tcp_hopopts, tcp->tcp_hopoptslen, 15166 (ipp->ipp_fields & IPPF_HOPOPTS), 15167 ipp->ipp_hopopts, ipp->ipp_hopoptslen)) { 15168 optlen += sizeof (struct T_opthdr) + ipp->ipp_hopoptslen - 15169 tcp->tcp_label_len; 15170 addflag |= TCP_IPV6_RECVHOPOPTS; 15171 if (!ip_allocbuf((void **)&tcp->tcp_hopopts, 15172 &tcp->tcp_hopoptslen, (ipp->ipp_fields & IPPF_HOPOPTS), 15173 ipp->ipp_hopopts, ipp->ipp_hopoptslen)) 15174 return (mp); 15175 } 15176 /* If app asked for dst headers before routing headers ... */ 15177 if ((tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVRTDSTOPTS) && 15178 ip_cmpbuf(tcp->tcp_rtdstopts, tcp->tcp_rtdstoptslen, 15179 (ipp->ipp_fields & IPPF_RTDSTOPTS), 15180 ipp->ipp_rtdstopts, ipp->ipp_rtdstoptslen)) { 15181 optlen += sizeof (struct T_opthdr) + 15182 ipp->ipp_rtdstoptslen; 15183 addflag |= TCP_IPV6_RECVRTDSTOPTS; 15184 if (!ip_allocbuf((void **)&tcp->tcp_rtdstopts, 15185 &tcp->tcp_rtdstoptslen, (ipp->ipp_fields & IPPF_RTDSTOPTS), 15186 ipp->ipp_rtdstopts, ipp->ipp_rtdstoptslen)) 15187 return (mp); 15188 } 15189 /* If app asked for routing headers and it has changed ... */ 15190 if ((tcp->tcp_ipv6_recvancillary & TCP_IPV6_RECVRTHDR) && 15191 ip_cmpbuf(tcp->tcp_rthdr, tcp->tcp_rthdrlen, 15192 (ipp->ipp_fields & IPPF_RTHDR), 15193 ipp->ipp_rthdr, ipp->ipp_rthdrlen)) { 15194 optlen += sizeof (struct T_opthdr) + ipp->ipp_rthdrlen; 15195 addflag |= TCP_IPV6_RECVRTHDR; 15196 if (!ip_allocbuf((void **)&tcp->tcp_rthdr, 15197 &tcp->tcp_rthdrlen, (ipp->ipp_fields & IPPF_RTHDR), 15198 ipp->ipp_rthdr, ipp->ipp_rthdrlen)) 15199 return (mp); 15200 } 15201 /* If app asked for dest headers and it has changed ... */ 15202 if ((tcp->tcp_ipv6_recvancillary & 15203 (TCP_IPV6_RECVDSTOPTS | TCP_OLD_IPV6_RECVDSTOPTS)) && 15204 ip_cmpbuf(tcp->tcp_dstopts, tcp->tcp_dstoptslen, 15205 (ipp->ipp_fields & IPPF_DSTOPTS), 15206 ipp->ipp_dstopts, ipp->ipp_dstoptslen)) { 15207 optlen += sizeof (struct T_opthdr) + ipp->ipp_dstoptslen; 15208 addflag |= TCP_IPV6_RECVDSTOPTS; 15209 if (!ip_allocbuf((void **)&tcp->tcp_dstopts, 15210 &tcp->tcp_dstoptslen, (ipp->ipp_fields & IPPF_DSTOPTS), 15211 ipp->ipp_dstopts, ipp->ipp_dstoptslen)) 15212 return (mp); 15213 } 15214 15215 if (optlen == 0) { 15216 /* Nothing to add */ 15217 return (mp); 15218 } 15219 mp1 = allocb(sizeof (struct T_optdata_ind) + optlen, BPRI_MED); 15220 if (mp1 == NULL) { 15221 /* 15222 * Defer sending ancillary data until the next TCP segment 15223 * arrives. 15224 */ 15225 return (mp); 15226 } 15227 mp1->b_cont = mp; 15228 mp = mp1; 15229 mp->b_wptr += sizeof (*todi) + optlen; 15230 mp->b_datap->db_type = M_PROTO; 15231 todi = (struct T_optdata_ind *)mp->b_rptr; 15232 todi->PRIM_type = T_OPTDATA_IND; 15233 todi->DATA_flag = 1; /* MORE data */ 15234 todi->OPT_length = optlen; 15235 todi->OPT_offset = sizeof (*todi); 15236 optptr = (uchar_t *)&todi[1]; 15237 /* 15238 * If app asked for pktinfo and the index has changed ... 15239 * Note that the local address never changes for the connection. 15240 */ 15241 if (addflag & TCP_IPV6_RECVPKTINFO) { 15242 struct in6_pktinfo *pkti; 15243 15244 toh = (struct T_opthdr *)optptr; 15245 toh->level = IPPROTO_IPV6; 15246 toh->name = IPV6_PKTINFO; 15247 toh->len = sizeof (*toh) + sizeof (*pkti); 15248 toh->status = 0; 15249 optptr += sizeof (*toh); 15250 pkti = (struct in6_pktinfo *)optptr; 15251 if (tcp->tcp_ipversion == IPV6_VERSION) 15252 pkti->ipi6_addr = tcp->tcp_ip6h->ip6_src; 15253 else 15254 IN6_IPADDR_TO_V4MAPPED(tcp->tcp_ipha->ipha_src, 15255 &pkti->ipi6_addr); 15256 pkti->ipi6_ifindex = ipp->ipp_ifindex; 15257 optptr += sizeof (*pkti); 15258 ASSERT(OK_32PTR(optptr)); 15259 /* Save as "last" value */ 15260 tcp->tcp_recvifindex = ipp->ipp_ifindex; 15261 } 15262 /* If app asked for hoplimit and it has changed ... */ 15263 if (addflag & TCP_IPV6_RECVHOPLIMIT) { 15264 toh = (struct T_opthdr *)optptr; 15265 toh->level = IPPROTO_IPV6; 15266 toh->name = IPV6_HOPLIMIT; 15267 toh->len = sizeof (*toh) + sizeof (uint_t); 15268 toh->status = 0; 15269 optptr += sizeof (*toh); 15270 *(uint_t *)optptr = ipp->ipp_hoplimit; 15271 optptr += sizeof (uint_t); 15272 ASSERT(OK_32PTR(optptr)); 15273 /* Save as "last" value */ 15274 tcp->tcp_recvhops = ipp->ipp_hoplimit; 15275 } 15276 /* If app asked for tclass and it has changed ... */ 15277 if (addflag & TCP_IPV6_RECVTCLASS) { 15278 toh = (struct T_opthdr *)optptr; 15279 toh->level = IPPROTO_IPV6; 15280 toh->name = IPV6_TCLASS; 15281 toh->len = sizeof (*toh) + sizeof (uint_t); 15282 toh->status = 0; 15283 optptr += sizeof (*toh); 15284 *(uint_t *)optptr = ipp->ipp_tclass; 15285 optptr += sizeof (uint_t); 15286 ASSERT(OK_32PTR(optptr)); 15287 /* Save as "last" value */ 15288 tcp->tcp_recvtclass = ipp->ipp_tclass; 15289 } 15290 if (addflag & TCP_IPV6_RECVHOPOPTS) { 15291 toh = (struct T_opthdr *)optptr; 15292 toh->level = IPPROTO_IPV6; 15293 toh->name = IPV6_HOPOPTS; 15294 toh->len = sizeof (*toh) + ipp->ipp_hopoptslen - 15295 tcp->tcp_label_len; 15296 toh->status = 0; 15297 optptr += sizeof (*toh); 15298 bcopy((uchar_t *)ipp->ipp_hopopts + tcp->tcp_label_len, optptr, 15299 ipp->ipp_hopoptslen - tcp->tcp_label_len); 15300 optptr += ipp->ipp_hopoptslen - tcp->tcp_label_len; 15301 ASSERT(OK_32PTR(optptr)); 15302 /* Save as last value */ 15303 ip_savebuf((void **)&tcp->tcp_hopopts, &tcp->tcp_hopoptslen, 15304 (ipp->ipp_fields & IPPF_HOPOPTS), 15305 ipp->ipp_hopopts, ipp->ipp_hopoptslen); 15306 } 15307 if (addflag & TCP_IPV6_RECVRTDSTOPTS) { 15308 toh = (struct T_opthdr *)optptr; 15309 toh->level = IPPROTO_IPV6; 15310 toh->name = IPV6_RTHDRDSTOPTS; 15311 toh->len = sizeof (*toh) + ipp->ipp_rtdstoptslen; 15312 toh->status = 0; 15313 optptr += sizeof (*toh); 15314 bcopy(ipp->ipp_rtdstopts, optptr, ipp->ipp_rtdstoptslen); 15315 optptr += ipp->ipp_rtdstoptslen; 15316 ASSERT(OK_32PTR(optptr)); 15317 /* Save as last value */ 15318 ip_savebuf((void **)&tcp->tcp_rtdstopts, 15319 &tcp->tcp_rtdstoptslen, 15320 (ipp->ipp_fields & IPPF_RTDSTOPTS), 15321 ipp->ipp_rtdstopts, ipp->ipp_rtdstoptslen); 15322 } 15323 if (addflag & TCP_IPV6_RECVRTHDR) { 15324 toh = (struct T_opthdr *)optptr; 15325 toh->level = IPPROTO_IPV6; 15326 toh->name = IPV6_RTHDR; 15327 toh->len = sizeof (*toh) + ipp->ipp_rthdrlen; 15328 toh->status = 0; 15329 optptr += sizeof (*toh); 15330 bcopy(ipp->ipp_rthdr, optptr, ipp->ipp_rthdrlen); 15331 optptr += ipp->ipp_rthdrlen; 15332 ASSERT(OK_32PTR(optptr)); 15333 /* Save as last value */ 15334 ip_savebuf((void **)&tcp->tcp_rthdr, &tcp->tcp_rthdrlen, 15335 (ipp->ipp_fields & IPPF_RTHDR), 15336 ipp->ipp_rthdr, ipp->ipp_rthdrlen); 15337 } 15338 if (addflag & (TCP_IPV6_RECVDSTOPTS | TCP_OLD_IPV6_RECVDSTOPTS)) { 15339 toh = (struct T_opthdr *)optptr; 15340 toh->level = IPPROTO_IPV6; 15341 toh->name = IPV6_DSTOPTS; 15342 toh->len = sizeof (*toh) + ipp->ipp_dstoptslen; 15343 toh->status = 0; 15344 optptr += sizeof (*toh); 15345 bcopy(ipp->ipp_dstopts, optptr, ipp->ipp_dstoptslen); 15346 optptr += ipp->ipp_dstoptslen; 15347 ASSERT(OK_32PTR(optptr)); 15348 /* Save as last value */ 15349 ip_savebuf((void **)&tcp->tcp_dstopts, &tcp->tcp_dstoptslen, 15350 (ipp->ipp_fields & IPPF_DSTOPTS), 15351 ipp->ipp_dstopts, ipp->ipp_dstoptslen); 15352 } 15353 ASSERT(optptr == mp->b_wptr); 15354 return (mp); 15355 } 15356 15357 15358 /* 15359 * Handle a *T_BIND_REQ that has failed either due to a T_ERROR_ACK 15360 * or a "bad" IRE detected by tcp_adapt_ire. 15361 * We can't tell if the failure was due to the laddr or the faddr 15362 * thus we clear out all addresses and ports. 15363 */ 15364 static void 15365 tcp_bind_failed(tcp_t *tcp, mblk_t *mp, int error) 15366 { 15367 queue_t *q = tcp->tcp_rq; 15368 tcph_t *tcph; 15369 struct T_error_ack *tea; 15370 conn_t *connp = tcp->tcp_connp; 15371 15372 15373 ASSERT(mp->b_datap->db_type == M_PCPROTO); 15374 15375 if (mp->b_cont) { 15376 freemsg(mp->b_cont); 15377 mp->b_cont = NULL; 15378 } 15379 tea = (struct T_error_ack *)mp->b_rptr; 15380 switch (tea->PRIM_type) { 15381 case T_BIND_ACK: 15382 /* 15383 * Need to unbind with classifier since we were just told that 15384 * our bind succeeded. 15385 */ 15386 tcp->tcp_hard_bound = B_FALSE; 15387 tcp->tcp_hard_binding = B_FALSE; 15388 15389 ipcl_hash_remove(connp); 15390 /* Reuse the mblk if possible */ 15391 ASSERT(mp->b_datap->db_lim - mp->b_datap->db_base >= 15392 sizeof (*tea)); 15393 mp->b_rptr = mp->b_datap->db_base; 15394 mp->b_wptr = mp->b_rptr + sizeof (*tea); 15395 tea = (struct T_error_ack *)mp->b_rptr; 15396 tea->PRIM_type = T_ERROR_ACK; 15397 tea->TLI_error = TSYSERR; 15398 tea->UNIX_error = error; 15399 if (tcp->tcp_state >= TCPS_SYN_SENT) { 15400 tea->ERROR_prim = T_CONN_REQ; 15401 } else { 15402 tea->ERROR_prim = O_T_BIND_REQ; 15403 } 15404 break; 15405 15406 case T_ERROR_ACK: 15407 if (tcp->tcp_state >= TCPS_SYN_SENT) 15408 tea->ERROR_prim = T_CONN_REQ; 15409 break; 15410 default: 15411 panic("tcp_bind_failed: unexpected TPI type"); 15412 /*NOTREACHED*/ 15413 } 15414 15415 tcp->tcp_state = TCPS_IDLE; 15416 if (tcp->tcp_ipversion == IPV4_VERSION) 15417 tcp->tcp_ipha->ipha_src = 0; 15418 else 15419 V6_SET_ZERO(tcp->tcp_ip6h->ip6_src); 15420 /* 15421 * Copy of the src addr. in tcp_t is needed since 15422 * the lookup funcs. can only look at tcp_t 15423 */ 15424 V6_SET_ZERO(tcp->tcp_ip_src_v6); 15425 15426 tcph = tcp->tcp_tcph; 15427 tcph->th_lport[0] = 0; 15428 tcph->th_lport[1] = 0; 15429 tcp_bind_hash_remove(tcp); 15430 bzero(&connp->u_port, sizeof (connp->u_port)); 15431 /* blow away saved option results if any */ 15432 if (tcp->tcp_conn.tcp_opts_conn_req != NULL) 15433 tcp_close_mpp(&tcp->tcp_conn.tcp_opts_conn_req); 15434 15435 conn_delete_ire(tcp->tcp_connp, NULL); 15436 putnext(q, mp); 15437 } 15438 15439 /* 15440 * tcp_rput_other is called by tcp_rput to handle everything other than M_DATA 15441 * messages. 15442 */ 15443 void 15444 tcp_rput_other(tcp_t *tcp, mblk_t *mp) 15445 { 15446 mblk_t *mp1; 15447 uchar_t *rptr = mp->b_rptr; 15448 queue_t *q = tcp->tcp_rq; 15449 struct T_error_ack *tea; 15450 uint32_t mss; 15451 mblk_t *syn_mp; 15452 mblk_t *mdti; 15453 mblk_t *lsoi; 15454 int retval; 15455 mblk_t *ire_mp; 15456 15457 switch (mp->b_datap->db_type) { 15458 case M_PROTO: 15459 case M_PCPROTO: 15460 ASSERT((uintptr_t)(mp->b_wptr - rptr) <= (uintptr_t)INT_MAX); 15461 if ((mp->b_wptr - rptr) < sizeof (t_scalar_t)) 15462 break; 15463 tea = (struct T_error_ack *)rptr; 15464 switch (tea->PRIM_type) { 15465 case T_BIND_ACK: 15466 /* 15467 * Adapt Multidata information, if any. The 15468 * following tcp_mdt_update routine will free 15469 * the message. 15470 */ 15471 if ((mdti = tcp_mdt_info_mp(mp)) != NULL) { 15472 tcp_mdt_update(tcp, &((ip_mdt_info_t *)mdti-> 15473 b_rptr)->mdt_capab, B_TRUE); 15474 freemsg(mdti); 15475 } 15476 15477 /* 15478 * Check to update LSO information with tcp, and 15479 * tcp_lso_update routine will free the message. 15480 */ 15481 if ((lsoi = tcp_lso_info_mp(mp)) != NULL) { 15482 tcp_lso_update(tcp, &((ip_lso_info_t *)lsoi-> 15483 b_rptr)->lso_capab); 15484 freemsg(lsoi); 15485 } 15486 15487 /* Get the IRE, if we had requested for it */ 15488 ire_mp = tcp_ire_mp(mp); 15489 15490 if (tcp->tcp_hard_binding) { 15491 tcp->tcp_hard_binding = B_FALSE; 15492 tcp->tcp_hard_bound = B_TRUE; 15493 CL_INET_CONNECT(tcp); 15494 } else { 15495 if (ire_mp != NULL) 15496 freeb(ire_mp); 15497 goto after_syn_sent; 15498 } 15499 15500 retval = tcp_adapt_ire(tcp, ire_mp); 15501 if (ire_mp != NULL) 15502 freeb(ire_mp); 15503 if (retval == 0) { 15504 tcp_bind_failed(tcp, mp, 15505 (int)((tcp->tcp_state >= TCPS_SYN_SENT) ? 15506 ENETUNREACH : EADDRNOTAVAIL)); 15507 return; 15508 } 15509 /* 15510 * Don't let an endpoint connect to itself. 15511 * Also checked in tcp_connect() but that 15512 * check can't handle the case when the 15513 * local IP address is INADDR_ANY. 15514 */ 15515 if (tcp->tcp_ipversion == IPV4_VERSION) { 15516 if ((tcp->tcp_ipha->ipha_dst == 15517 tcp->tcp_ipha->ipha_src) && 15518 (BE16_EQL(tcp->tcp_tcph->th_lport, 15519 tcp->tcp_tcph->th_fport))) { 15520 tcp_bind_failed(tcp, mp, EADDRNOTAVAIL); 15521 return; 15522 } 15523 } else { 15524 if (IN6_ARE_ADDR_EQUAL( 15525 &tcp->tcp_ip6h->ip6_dst, 15526 &tcp->tcp_ip6h->ip6_src) && 15527 (BE16_EQL(tcp->tcp_tcph->th_lport, 15528 tcp->tcp_tcph->th_fport))) { 15529 tcp_bind_failed(tcp, mp, EADDRNOTAVAIL); 15530 return; 15531 } 15532 } 15533 ASSERT(tcp->tcp_state == TCPS_SYN_SENT); 15534 /* 15535 * This should not be possible! Just for 15536 * defensive coding... 15537 */ 15538 if (tcp->tcp_state != TCPS_SYN_SENT) 15539 goto after_syn_sent; 15540 15541 if (is_system_labeled() && 15542 !tcp_update_label(tcp, CONN_CRED(tcp->tcp_connp))) { 15543 tcp_bind_failed(tcp, mp, EHOSTUNREACH); 15544 return; 15545 } 15546 15547 ASSERT(q == tcp->tcp_rq); 15548 /* 15549 * tcp_adapt_ire() does not adjust 15550 * for TCP/IP header length. 15551 */ 15552 mss = tcp->tcp_mss - tcp->tcp_hdr_len; 15553 15554 /* 15555 * Just make sure our rwnd is at 15556 * least tcp_recv_hiwat_mss * MSS 15557 * large, and round up to the nearest 15558 * MSS. 15559 * 15560 * We do the round up here because 15561 * we need to get the interface 15562 * MTU first before we can do the 15563 * round up. 15564 */ 15565 tcp->tcp_rwnd = MAX(MSS_ROUNDUP(tcp->tcp_rwnd, mss), 15566 tcp_recv_hiwat_minmss * mss); 15567 q->q_hiwat = tcp->tcp_rwnd; 15568 tcp_set_ws_value(tcp); 15569 U32_TO_ABE16((tcp->tcp_rwnd >> tcp->tcp_rcv_ws), 15570 tcp->tcp_tcph->th_win); 15571 if (tcp->tcp_rcv_ws > 0 || tcp_wscale_always) 15572 tcp->tcp_snd_ws_ok = B_TRUE; 15573 15574 /* 15575 * Set tcp_snd_ts_ok to true 15576 * so that tcp_xmit_mp will 15577 * include the timestamp 15578 * option in the SYN segment. 15579 */ 15580 if (tcp_tstamp_always || 15581 (tcp->tcp_rcv_ws && tcp_tstamp_if_wscale)) { 15582 tcp->tcp_snd_ts_ok = B_TRUE; 15583 } 15584 15585 /* 15586 * tcp_snd_sack_ok can be set in 15587 * tcp_adapt_ire() if the sack metric 15588 * is set. So check it here also. 15589 */ 15590 if (tcp_sack_permitted == 2 || 15591 tcp->tcp_snd_sack_ok) { 15592 if (tcp->tcp_sack_info == NULL) { 15593 tcp->tcp_sack_info = 15594 kmem_cache_alloc(tcp_sack_info_cache, 15595 KM_SLEEP); 15596 } 15597 tcp->tcp_snd_sack_ok = B_TRUE; 15598 } 15599 15600 /* 15601 * Should we use ECN? Note that the current 15602 * default value (SunOS 5.9) of tcp_ecn_permitted 15603 * is 1. The reason for doing this is that there 15604 * are equipments out there that will drop ECN 15605 * enabled IP packets. Setting it to 1 avoids 15606 * compatibility problems. 15607 */ 15608 if (tcp_ecn_permitted == 2) 15609 tcp->tcp_ecn_ok = B_TRUE; 15610 15611 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 15612 syn_mp = tcp_xmit_mp(tcp, NULL, 0, NULL, NULL, 15613 tcp->tcp_iss, B_FALSE, NULL, B_FALSE); 15614 if (syn_mp) { 15615 cred_t *cr; 15616 pid_t pid; 15617 15618 /* 15619 * Obtain the credential from the 15620 * thread calling connect(); the credential 15621 * lives on in the second mblk which 15622 * originated from T_CONN_REQ and is echoed 15623 * with the T_BIND_ACK from ip. If none 15624 * can be found, default to the creator 15625 * of the socket. 15626 */ 15627 if (mp->b_cont == NULL || 15628 (cr = DB_CRED(mp->b_cont)) == NULL) { 15629 cr = tcp->tcp_cred; 15630 pid = tcp->tcp_cpid; 15631 } else { 15632 pid = DB_CPID(mp->b_cont); 15633 } 15634 15635 TCP_RECORD_TRACE(tcp, syn_mp, 15636 TCP_TRACE_SEND_PKT); 15637 mblk_setcred(syn_mp, cr); 15638 DB_CPID(syn_mp) = pid; 15639 tcp_send_data(tcp, tcp->tcp_wq, syn_mp); 15640 } 15641 after_syn_sent: 15642 /* 15643 * A trailer mblk indicates a waiting client upstream. 15644 * We complete here the processing begun in 15645 * either tcp_bind() or tcp_connect() by passing 15646 * upstream the reply message they supplied. 15647 */ 15648 mp1 = mp; 15649 mp = mp->b_cont; 15650 freeb(mp1); 15651 if (mp) 15652 break; 15653 return; 15654 case T_ERROR_ACK: 15655 if (tcp->tcp_debug) { 15656 (void) strlog(TCP_MOD_ID, 0, 1, 15657 SL_TRACE|SL_ERROR, 15658 "tcp_rput_other: case T_ERROR_ACK, " 15659 "ERROR_prim == %d", 15660 tea->ERROR_prim); 15661 } 15662 switch (tea->ERROR_prim) { 15663 case O_T_BIND_REQ: 15664 case T_BIND_REQ: 15665 tcp_bind_failed(tcp, mp, 15666 (int)((tcp->tcp_state >= TCPS_SYN_SENT) ? 15667 ENETUNREACH : EADDRNOTAVAIL)); 15668 return; 15669 case T_UNBIND_REQ: 15670 tcp->tcp_hard_binding = B_FALSE; 15671 tcp->tcp_hard_bound = B_FALSE; 15672 if (mp->b_cont) { 15673 freemsg(mp->b_cont); 15674 mp->b_cont = NULL; 15675 } 15676 if (tcp->tcp_unbind_pending) 15677 tcp->tcp_unbind_pending = 0; 15678 else { 15679 /* From tcp_ip_unbind() - free */ 15680 freemsg(mp); 15681 return; 15682 } 15683 break; 15684 case T_SVR4_OPTMGMT_REQ: 15685 if (tcp->tcp_drop_opt_ack_cnt > 0) { 15686 /* T_OPTMGMT_REQ generated by TCP */ 15687 printf("T_SVR4_OPTMGMT_REQ failed " 15688 "%d/%d - dropped (cnt %d)\n", 15689 tea->TLI_error, tea->UNIX_error, 15690 tcp->tcp_drop_opt_ack_cnt); 15691 freemsg(mp); 15692 tcp->tcp_drop_opt_ack_cnt--; 15693 return; 15694 } 15695 break; 15696 } 15697 if (tea->ERROR_prim == T_SVR4_OPTMGMT_REQ && 15698 tcp->tcp_drop_opt_ack_cnt > 0) { 15699 printf("T_SVR4_OPTMGMT_REQ failed %d/%d " 15700 "- dropped (cnt %d)\n", 15701 tea->TLI_error, tea->UNIX_error, 15702 tcp->tcp_drop_opt_ack_cnt); 15703 freemsg(mp); 15704 tcp->tcp_drop_opt_ack_cnt--; 15705 return; 15706 } 15707 break; 15708 case T_OPTMGMT_ACK: 15709 if (tcp->tcp_drop_opt_ack_cnt > 0) { 15710 /* T_OPTMGMT_REQ generated by TCP */ 15711 freemsg(mp); 15712 tcp->tcp_drop_opt_ack_cnt--; 15713 return; 15714 } 15715 break; 15716 default: 15717 break; 15718 } 15719 break; 15720 case M_CTL: 15721 /* 15722 * ICMP messages. 15723 */ 15724 tcp_icmp_error(tcp, mp); 15725 return; 15726 case M_FLUSH: 15727 if (*rptr & FLUSHR) 15728 flushq(q, FLUSHDATA); 15729 break; 15730 default: 15731 break; 15732 } 15733 /* 15734 * Make sure we set this bit before sending the ACK for 15735 * bind. Otherwise accept could possibly run and free 15736 * this tcp struct. 15737 */ 15738 putnext(q, mp); 15739 } 15740 15741 /* 15742 * Called as the result of a qbufcall or a qtimeout to remedy a failure 15743 * to allocate a T_ordrel_ind in tcp_rsrv(). qenable(q) will make 15744 * tcp_rsrv() try again. 15745 */ 15746 static void 15747 tcp_ordrel_kick(void *arg) 15748 { 15749 conn_t *connp = (conn_t *)arg; 15750 tcp_t *tcp = connp->conn_tcp; 15751 15752 tcp->tcp_ordrelid = 0; 15753 tcp->tcp_timeout = B_FALSE; 15754 if (!TCP_IS_DETACHED(tcp) && tcp->tcp_rq != NULL && 15755 tcp->tcp_fin_rcvd && !tcp->tcp_ordrel_done) { 15756 qenable(tcp->tcp_rq); 15757 } 15758 } 15759 15760 /* ARGSUSED */ 15761 static void 15762 tcp_rsrv_input(void *arg, mblk_t *mp, void *arg2) 15763 { 15764 conn_t *connp = (conn_t *)arg; 15765 tcp_t *tcp = connp->conn_tcp; 15766 queue_t *q = tcp->tcp_rq; 15767 uint_t thwin; 15768 15769 freeb(mp); 15770 15771 TCP_STAT(tcp_rsrv_calls); 15772 15773 if (TCP_IS_DETACHED(tcp) || q == NULL) { 15774 return; 15775 } 15776 15777 if (tcp->tcp_fused) { 15778 tcp_t *peer_tcp = tcp->tcp_loopback_peer; 15779 15780 ASSERT(tcp->tcp_fused); 15781 ASSERT(peer_tcp != NULL && peer_tcp->tcp_fused); 15782 ASSERT(peer_tcp->tcp_loopback_peer == tcp); 15783 ASSERT(!TCP_IS_DETACHED(tcp)); 15784 ASSERT(tcp->tcp_connp->conn_sqp == 15785 peer_tcp->tcp_connp->conn_sqp); 15786 15787 /* 15788 * Normally we would not get backenabled in synchronous 15789 * streams mode, but in case this happens, we need to plug 15790 * synchronous streams during our drain to prevent a race 15791 * with tcp_fuse_rrw() or tcp_fuse_rinfop(). 15792 */ 15793 TCP_FUSE_SYNCSTR_PLUG_DRAIN(tcp); 15794 if (tcp->tcp_rcv_list != NULL) 15795 (void) tcp_rcv_drain(tcp->tcp_rq, tcp); 15796 15797 tcp_clrqfull(peer_tcp); 15798 TCP_FUSE_SYNCSTR_UNPLUG_DRAIN(tcp); 15799 TCP_STAT(tcp_fusion_backenabled); 15800 return; 15801 } 15802 15803 if (canputnext(q)) { 15804 tcp->tcp_rwnd = q->q_hiwat; 15805 thwin = ((uint_t)BE16_TO_U16(tcp->tcp_tcph->th_win)) 15806 << tcp->tcp_rcv_ws; 15807 thwin -= tcp->tcp_rnxt - tcp->tcp_rack; 15808 /* 15809 * Send back a window update immediately if TCP is above 15810 * ESTABLISHED state and the increase of the rcv window 15811 * that the other side knows is at least 1 MSS after flow 15812 * control is lifted. 15813 */ 15814 if (tcp->tcp_state >= TCPS_ESTABLISHED && 15815 (q->q_hiwat - thwin >= tcp->tcp_mss)) { 15816 tcp_xmit_ctl(NULL, tcp, 15817 (tcp->tcp_swnd == 0) ? tcp->tcp_suna : 15818 tcp->tcp_snxt, tcp->tcp_rnxt, TH_ACK); 15819 BUMP_MIB(&tcp_mib, tcpOutWinUpdate); 15820 } 15821 } 15822 /* Handle a failure to allocate a T_ORDREL_IND here */ 15823 if (tcp->tcp_fin_rcvd && !tcp->tcp_ordrel_done) { 15824 ASSERT(tcp->tcp_listener == NULL); 15825 if (tcp->tcp_rcv_list != NULL) { 15826 (void) tcp_rcv_drain(q, tcp); 15827 } 15828 ASSERT(tcp->tcp_rcv_list == NULL || tcp->tcp_fused_sigurg); 15829 mp = mi_tpi_ordrel_ind(); 15830 if (mp) { 15831 tcp->tcp_ordrel_done = B_TRUE; 15832 putnext(q, mp); 15833 if (tcp->tcp_deferred_clean_death) { 15834 /* 15835 * tcp_clean_death was deferred for 15836 * T_ORDREL_IND - do it now 15837 */ 15838 tcp->tcp_deferred_clean_death = B_FALSE; 15839 (void) tcp_clean_death(tcp, 15840 tcp->tcp_client_errno, 22); 15841 } 15842 } else if (!tcp->tcp_timeout && tcp->tcp_ordrelid == 0) { 15843 /* 15844 * If there isn't already a timer running 15845 * start one. Use a 4 second 15846 * timer as a fallback since it can't fail. 15847 */ 15848 tcp->tcp_timeout = B_TRUE; 15849 tcp->tcp_ordrelid = TCP_TIMER(tcp, tcp_ordrel_kick, 15850 MSEC_TO_TICK(4000)); 15851 } 15852 } 15853 } 15854 15855 /* 15856 * The read side service routine is called mostly when we get back-enabled as a 15857 * result of flow control relief. Since we don't actually queue anything in 15858 * TCP, we have no data to send out of here. What we do is clear the receive 15859 * window, and send out a window update. 15860 * This routine is also called to drive an orderly release message upstream 15861 * if the attempt in tcp_rput failed. 15862 */ 15863 static void 15864 tcp_rsrv(queue_t *q) 15865 { 15866 conn_t *connp = Q_TO_CONN(q); 15867 tcp_t *tcp = connp->conn_tcp; 15868 mblk_t *mp; 15869 15870 /* No code does a putq on the read side */ 15871 ASSERT(q->q_first == NULL); 15872 15873 /* Nothing to do for the default queue */ 15874 if (q == tcp_g_q) { 15875 return; 15876 } 15877 15878 mp = allocb(0, BPRI_HI); 15879 if (mp == NULL) { 15880 /* 15881 * We are under memory pressure. Return for now and we 15882 * we will be called again later. 15883 */ 15884 if (!tcp->tcp_timeout && tcp->tcp_ordrelid == 0) { 15885 /* 15886 * If there isn't already a timer running 15887 * start one. Use a 4 second 15888 * timer as a fallback since it can't fail. 15889 */ 15890 tcp->tcp_timeout = B_TRUE; 15891 tcp->tcp_ordrelid = TCP_TIMER(tcp, tcp_ordrel_kick, 15892 MSEC_TO_TICK(4000)); 15893 } 15894 return; 15895 } 15896 CONN_INC_REF(connp); 15897 squeue_enter(connp->conn_sqp, mp, tcp_rsrv_input, connp, 15898 SQTAG_TCP_RSRV); 15899 } 15900 15901 /* 15902 * tcp_rwnd_set() is called to adjust the receive window to a desired value. 15903 * We do not allow the receive window to shrink. After setting rwnd, 15904 * set the flow control hiwat of the stream. 15905 * 15906 * This function is called in 2 cases: 15907 * 15908 * 1) Before data transfer begins, in tcp_accept_comm() for accepting a 15909 * connection (passive open) and in tcp_rput_data() for active connect. 15910 * This is called after tcp_mss_set() when the desired MSS value is known. 15911 * This makes sure that our window size is a mutiple of the other side's 15912 * MSS. 15913 * 2) Handling SO_RCVBUF option. 15914 * 15915 * It is ASSUMED that the requested size is a multiple of the current MSS. 15916 * 15917 * XXX - Should allow a lower rwnd than tcp_recv_hiwat_minmss * mss if the 15918 * user requests so. 15919 */ 15920 static int 15921 tcp_rwnd_set(tcp_t *tcp, uint32_t rwnd) 15922 { 15923 uint32_t mss = tcp->tcp_mss; 15924 uint32_t old_max_rwnd; 15925 uint32_t max_transmittable_rwnd; 15926 boolean_t tcp_detached = TCP_IS_DETACHED(tcp); 15927 15928 if (tcp->tcp_fused) { 15929 size_t sth_hiwat; 15930 tcp_t *peer_tcp = tcp->tcp_loopback_peer; 15931 15932 ASSERT(peer_tcp != NULL); 15933 /* 15934 * Record the stream head's high water mark for 15935 * this endpoint; this is used for flow-control 15936 * purposes in tcp_fuse_output(). 15937 */ 15938 sth_hiwat = tcp_fuse_set_rcv_hiwat(tcp, rwnd); 15939 if (!tcp_detached) 15940 (void) mi_set_sth_hiwat(tcp->tcp_rq, sth_hiwat); 15941 15942 /* 15943 * In the fusion case, the maxpsz stream head value of 15944 * our peer is set according to its send buffer size 15945 * and our receive buffer size; since the latter may 15946 * have changed we need to update the peer's maxpsz. 15947 */ 15948 (void) tcp_maxpsz_set(peer_tcp, B_TRUE); 15949 return (rwnd); 15950 } 15951 15952 if (tcp_detached) 15953 old_max_rwnd = tcp->tcp_rwnd; 15954 else 15955 old_max_rwnd = tcp->tcp_rq->q_hiwat; 15956 15957 /* 15958 * Insist on a receive window that is at least 15959 * tcp_recv_hiwat_minmss * MSS (default 4 * MSS) to avoid 15960 * funny TCP interactions of Nagle algorithm, SWS avoidance 15961 * and delayed acknowledgement. 15962 */ 15963 rwnd = MAX(rwnd, tcp_recv_hiwat_minmss * mss); 15964 15965 /* 15966 * If window size info has already been exchanged, TCP should not 15967 * shrink the window. Shrinking window is doable if done carefully. 15968 * We may add that support later. But so far there is not a real 15969 * need to do that. 15970 */ 15971 if (rwnd < old_max_rwnd && tcp->tcp_state > TCPS_SYN_SENT) { 15972 /* MSS may have changed, do a round up again. */ 15973 rwnd = MSS_ROUNDUP(old_max_rwnd, mss); 15974 } 15975 15976 /* 15977 * tcp_rcv_ws starts with TCP_MAX_WINSHIFT so the following check 15978 * can be applied even before the window scale option is decided. 15979 */ 15980 max_transmittable_rwnd = TCP_MAXWIN << tcp->tcp_rcv_ws; 15981 if (rwnd > max_transmittable_rwnd) { 15982 rwnd = max_transmittable_rwnd - 15983 (max_transmittable_rwnd % mss); 15984 if (rwnd < mss) 15985 rwnd = max_transmittable_rwnd; 15986 /* 15987 * If we're over the limit we may have to back down tcp_rwnd. 15988 * The increment below won't work for us. So we set all three 15989 * here and the increment below will have no effect. 15990 */ 15991 tcp->tcp_rwnd = old_max_rwnd = rwnd; 15992 } 15993 if (tcp->tcp_localnet) { 15994 tcp->tcp_rack_abs_max = 15995 MIN(tcp_local_dacks_max, rwnd / mss / 2); 15996 } else { 15997 /* 15998 * For a remote host on a different subnet (through a router), 15999 * we ack every other packet to be conforming to RFC1122. 16000 * tcp_deferred_acks_max is default to 2. 16001 */ 16002 tcp->tcp_rack_abs_max = 16003 MIN(tcp_deferred_acks_max, rwnd / mss / 2); 16004 } 16005 if (tcp->tcp_rack_cur_max > tcp->tcp_rack_abs_max) 16006 tcp->tcp_rack_cur_max = tcp->tcp_rack_abs_max; 16007 else 16008 tcp->tcp_rack_cur_max = 0; 16009 /* 16010 * Increment the current rwnd by the amount the maximum grew (we 16011 * can not overwrite it since we might be in the middle of a 16012 * connection.) 16013 */ 16014 tcp->tcp_rwnd += rwnd - old_max_rwnd; 16015 U32_TO_ABE16(tcp->tcp_rwnd >> tcp->tcp_rcv_ws, tcp->tcp_tcph->th_win); 16016 if ((tcp->tcp_rcv_ws > 0) && rwnd > tcp->tcp_cwnd_max) 16017 tcp->tcp_cwnd_max = rwnd; 16018 16019 if (tcp_detached) 16020 return (rwnd); 16021 /* 16022 * We set the maximum receive window into rq->q_hiwat. 16023 * This is not actually used for flow control. 16024 */ 16025 tcp->tcp_rq->q_hiwat = rwnd; 16026 /* 16027 * Set the Stream head high water mark. This doesn't have to be 16028 * here, since we are simply using default values, but we would 16029 * prefer to choose these values algorithmically, with a likely 16030 * relationship to rwnd. 16031 */ 16032 (void) mi_set_sth_hiwat(tcp->tcp_rq, MAX(rwnd, tcp_sth_rcv_hiwat)); 16033 return (rwnd); 16034 } 16035 16036 /* 16037 * Return SNMP stuff in buffer in mpdata. 16038 */ 16039 int 16040 tcp_snmp_get(queue_t *q, mblk_t *mpctl) 16041 { 16042 mblk_t *mpdata; 16043 mblk_t *mp_conn_ctl = NULL; 16044 mblk_t *mp_conn_tail; 16045 mblk_t *mp_attr_ctl = NULL; 16046 mblk_t *mp_attr_tail; 16047 mblk_t *mp6_conn_ctl = NULL; 16048 mblk_t *mp6_conn_tail; 16049 mblk_t *mp6_attr_ctl = NULL; 16050 mblk_t *mp6_attr_tail; 16051 struct opthdr *optp; 16052 mib2_tcpConnEntry_t tce; 16053 mib2_tcp6ConnEntry_t tce6; 16054 mib2_transportMLPEntry_t mlp; 16055 connf_t *connfp; 16056 conn_t *connp; 16057 int i; 16058 boolean_t ispriv; 16059 zoneid_t zoneid; 16060 int v4_conn_idx; 16061 int v6_conn_idx; 16062 16063 if (mpctl == NULL || 16064 (mpdata = mpctl->b_cont) == NULL || 16065 (mp_conn_ctl = copymsg(mpctl)) == NULL || 16066 (mp_attr_ctl = copymsg(mpctl)) == NULL || 16067 (mp6_conn_ctl = copymsg(mpctl)) == NULL || 16068 (mp6_attr_ctl = copymsg(mpctl)) == NULL) { 16069 freemsg(mp_conn_ctl); 16070 freemsg(mp_attr_ctl); 16071 freemsg(mp6_conn_ctl); 16072 freemsg(mp6_attr_ctl); 16073 return (0); 16074 } 16075 16076 /* build table of connections -- need count in fixed part */ 16077 SET_MIB(tcp_mib.tcpRtoAlgorithm, 4); /* vanj */ 16078 SET_MIB(tcp_mib.tcpRtoMin, tcp_rexmit_interval_min); 16079 SET_MIB(tcp_mib.tcpRtoMax, tcp_rexmit_interval_max); 16080 SET_MIB(tcp_mib.tcpMaxConn, -1); 16081 SET_MIB(tcp_mib.tcpCurrEstab, 0); 16082 16083 ispriv = 16084 secpolicy_net_config((Q_TO_CONN(q))->conn_cred, B_TRUE) == 0; 16085 zoneid = Q_TO_CONN(q)->conn_zoneid; 16086 16087 v4_conn_idx = v6_conn_idx = 0; 16088 mp_conn_tail = mp_attr_tail = mp6_conn_tail = mp6_attr_tail = NULL; 16089 16090 for (i = 0; i < CONN_G_HASH_SIZE; i++) { 16091 16092 connfp = &ipcl_globalhash_fanout[i]; 16093 16094 connp = NULL; 16095 16096 while ((connp = 16097 ipcl_get_next_conn(connfp, connp, IPCL_TCP)) != NULL) { 16098 tcp_t *tcp; 16099 boolean_t needattr; 16100 16101 if (connp->conn_zoneid != zoneid) 16102 continue; /* not in this zone */ 16103 16104 tcp = connp->conn_tcp; 16105 UPDATE_MIB(&tcp_mib, tcpInSegs, tcp->tcp_ibsegs); 16106 tcp->tcp_ibsegs = 0; 16107 UPDATE_MIB(&tcp_mib, tcpOutSegs, tcp->tcp_obsegs); 16108 tcp->tcp_obsegs = 0; 16109 16110 tce6.tcp6ConnState = tce.tcpConnState = 16111 tcp_snmp_state(tcp); 16112 if (tce.tcpConnState == MIB2_TCP_established || 16113 tce.tcpConnState == MIB2_TCP_closeWait) 16114 BUMP_MIB(&tcp_mib, tcpCurrEstab); 16115 16116 needattr = B_FALSE; 16117 bzero(&mlp, sizeof (mlp)); 16118 if (connp->conn_mlp_type != mlptSingle) { 16119 if (connp->conn_mlp_type == mlptShared || 16120 connp->conn_mlp_type == mlptBoth) 16121 mlp.tme_flags |= MIB2_TMEF_SHARED; 16122 if (connp->conn_mlp_type == mlptPrivate || 16123 connp->conn_mlp_type == mlptBoth) 16124 mlp.tme_flags |= MIB2_TMEF_PRIVATE; 16125 needattr = B_TRUE; 16126 } 16127 if (connp->conn_peercred != NULL) { 16128 ts_label_t *tsl; 16129 16130 tsl = crgetlabel(connp->conn_peercred); 16131 mlp.tme_doi = label2doi(tsl); 16132 mlp.tme_label = *label2bslabel(tsl); 16133 needattr = B_TRUE; 16134 } 16135 16136 /* Create a message to report on IPv6 entries */ 16137 if (tcp->tcp_ipversion == IPV6_VERSION) { 16138 tce6.tcp6ConnLocalAddress = tcp->tcp_ip_src_v6; 16139 tce6.tcp6ConnRemAddress = tcp->tcp_remote_v6; 16140 tce6.tcp6ConnLocalPort = ntohs(tcp->tcp_lport); 16141 tce6.tcp6ConnRemPort = ntohs(tcp->tcp_fport); 16142 tce6.tcp6ConnIfIndex = tcp->tcp_bound_if; 16143 /* Don't want just anybody seeing these... */ 16144 if (ispriv) { 16145 tce6.tcp6ConnEntryInfo.ce_snxt = 16146 tcp->tcp_snxt; 16147 tce6.tcp6ConnEntryInfo.ce_suna = 16148 tcp->tcp_suna; 16149 tce6.tcp6ConnEntryInfo.ce_rnxt = 16150 tcp->tcp_rnxt; 16151 tce6.tcp6ConnEntryInfo.ce_rack = 16152 tcp->tcp_rack; 16153 } else { 16154 /* 16155 * Netstat, unfortunately, uses this to 16156 * get send/receive queue sizes. How to fix? 16157 * Why not compute the difference only? 16158 */ 16159 tce6.tcp6ConnEntryInfo.ce_snxt = 16160 tcp->tcp_snxt - tcp->tcp_suna; 16161 tce6.tcp6ConnEntryInfo.ce_suna = 0; 16162 tce6.tcp6ConnEntryInfo.ce_rnxt = 16163 tcp->tcp_rnxt - tcp->tcp_rack; 16164 tce6.tcp6ConnEntryInfo.ce_rack = 0; 16165 } 16166 16167 tce6.tcp6ConnEntryInfo.ce_swnd = tcp->tcp_swnd; 16168 tce6.tcp6ConnEntryInfo.ce_rwnd = tcp->tcp_rwnd; 16169 tce6.tcp6ConnEntryInfo.ce_rto = tcp->tcp_rto; 16170 tce6.tcp6ConnEntryInfo.ce_mss = tcp->tcp_mss; 16171 tce6.tcp6ConnEntryInfo.ce_state = tcp->tcp_state; 16172 16173 (void) snmp_append_data2(mp6_conn_ctl->b_cont, 16174 &mp6_conn_tail, (char *)&tce6, sizeof (tce6)); 16175 16176 mlp.tme_connidx = v6_conn_idx++; 16177 if (needattr) 16178 (void) snmp_append_data2(mp6_attr_ctl->b_cont, 16179 &mp6_attr_tail, (char *)&mlp, sizeof (mlp)); 16180 } 16181 /* 16182 * Create an IPv4 table entry for IPv4 entries and also 16183 * for IPv6 entries which are bound to in6addr_any 16184 * but don't have IPV6_V6ONLY set. 16185 * (i.e. anything an IPv4 peer could connect to) 16186 */ 16187 if (tcp->tcp_ipversion == IPV4_VERSION || 16188 (tcp->tcp_state <= TCPS_LISTEN && 16189 !tcp->tcp_connp->conn_ipv6_v6only && 16190 IN6_IS_ADDR_UNSPECIFIED(&tcp->tcp_ip_src_v6))) { 16191 if (tcp->tcp_ipversion == IPV6_VERSION) { 16192 tce.tcpConnRemAddress = INADDR_ANY; 16193 tce.tcpConnLocalAddress = INADDR_ANY; 16194 } else { 16195 tce.tcpConnRemAddress = 16196 tcp->tcp_remote; 16197 tce.tcpConnLocalAddress = 16198 tcp->tcp_ip_src; 16199 } 16200 tce.tcpConnLocalPort = ntohs(tcp->tcp_lport); 16201 tce.tcpConnRemPort = ntohs(tcp->tcp_fport); 16202 /* Don't want just anybody seeing these... */ 16203 if (ispriv) { 16204 tce.tcpConnEntryInfo.ce_snxt = 16205 tcp->tcp_snxt; 16206 tce.tcpConnEntryInfo.ce_suna = 16207 tcp->tcp_suna; 16208 tce.tcpConnEntryInfo.ce_rnxt = 16209 tcp->tcp_rnxt; 16210 tce.tcpConnEntryInfo.ce_rack = 16211 tcp->tcp_rack; 16212 } else { 16213 /* 16214 * Netstat, unfortunately, uses this to 16215 * get send/receive queue sizes. How 16216 * to fix? 16217 * Why not compute the difference only? 16218 */ 16219 tce.tcpConnEntryInfo.ce_snxt = 16220 tcp->tcp_snxt - tcp->tcp_suna; 16221 tce.tcpConnEntryInfo.ce_suna = 0; 16222 tce.tcpConnEntryInfo.ce_rnxt = 16223 tcp->tcp_rnxt - tcp->tcp_rack; 16224 tce.tcpConnEntryInfo.ce_rack = 0; 16225 } 16226 16227 tce.tcpConnEntryInfo.ce_swnd = tcp->tcp_swnd; 16228 tce.tcpConnEntryInfo.ce_rwnd = tcp->tcp_rwnd; 16229 tce.tcpConnEntryInfo.ce_rto = tcp->tcp_rto; 16230 tce.tcpConnEntryInfo.ce_mss = tcp->tcp_mss; 16231 tce.tcpConnEntryInfo.ce_state = 16232 tcp->tcp_state; 16233 16234 (void) snmp_append_data2(mp_conn_ctl->b_cont, 16235 &mp_conn_tail, (char *)&tce, sizeof (tce)); 16236 16237 mlp.tme_connidx = v4_conn_idx++; 16238 if (needattr) 16239 (void) snmp_append_data2( 16240 mp_attr_ctl->b_cont, 16241 &mp_attr_tail, (char *)&mlp, 16242 sizeof (mlp)); 16243 } 16244 } 16245 } 16246 16247 /* fixed length structure for IPv4 and IPv6 counters */ 16248 SET_MIB(tcp_mib.tcpConnTableSize, sizeof (mib2_tcpConnEntry_t)); 16249 SET_MIB(tcp_mib.tcp6ConnTableSize, sizeof (mib2_tcp6ConnEntry_t)); 16250 optp = (struct opthdr *)&mpctl->b_rptr[sizeof (struct T_optmgmt_ack)]; 16251 optp->level = MIB2_TCP; 16252 optp->name = 0; 16253 (void) snmp_append_data(mpdata, (char *)&tcp_mib, sizeof (tcp_mib)); 16254 optp->len = msgdsize(mpdata); 16255 qreply(q, mpctl); 16256 16257 /* table of connections... */ 16258 optp = (struct opthdr *)&mp_conn_ctl->b_rptr[ 16259 sizeof (struct T_optmgmt_ack)]; 16260 optp->level = MIB2_TCP; 16261 optp->name = MIB2_TCP_CONN; 16262 optp->len = msgdsize(mp_conn_ctl->b_cont); 16263 qreply(q, mp_conn_ctl); 16264 16265 /* table of MLP attributes... */ 16266 optp = (struct opthdr *)&mp_attr_ctl->b_rptr[ 16267 sizeof (struct T_optmgmt_ack)]; 16268 optp->level = MIB2_TCP; 16269 optp->name = EXPER_XPORT_MLP; 16270 optp->len = msgdsize(mp_attr_ctl->b_cont); 16271 if (optp->len == 0) 16272 freemsg(mp_attr_ctl); 16273 else 16274 qreply(q, mp_attr_ctl); 16275 16276 /* table of IPv6 connections... */ 16277 optp = (struct opthdr *)&mp6_conn_ctl->b_rptr[ 16278 sizeof (struct T_optmgmt_ack)]; 16279 optp->level = MIB2_TCP6; 16280 optp->name = MIB2_TCP6_CONN; 16281 optp->len = msgdsize(mp6_conn_ctl->b_cont); 16282 qreply(q, mp6_conn_ctl); 16283 16284 /* table of IPv6 MLP attributes... */ 16285 optp = (struct opthdr *)&mp6_attr_ctl->b_rptr[ 16286 sizeof (struct T_optmgmt_ack)]; 16287 optp->level = MIB2_TCP6; 16288 optp->name = EXPER_XPORT_MLP; 16289 optp->len = msgdsize(mp6_attr_ctl->b_cont); 16290 if (optp->len == 0) 16291 freemsg(mp6_attr_ctl); 16292 else 16293 qreply(q, mp6_attr_ctl); 16294 return (1); 16295 } 16296 16297 /* Return 0 if invalid set request, 1 otherwise, including non-tcp requests */ 16298 /* ARGSUSED */ 16299 int 16300 tcp_snmp_set(queue_t *q, int level, int name, uchar_t *ptr, int len) 16301 { 16302 mib2_tcpConnEntry_t *tce = (mib2_tcpConnEntry_t *)ptr; 16303 16304 switch (level) { 16305 case MIB2_TCP: 16306 switch (name) { 16307 case 13: 16308 if (tce->tcpConnState != MIB2_TCP_deleteTCB) 16309 return (0); 16310 /* TODO: delete entry defined by tce */ 16311 return (1); 16312 default: 16313 return (0); 16314 } 16315 default: 16316 return (1); 16317 } 16318 } 16319 16320 /* Translate TCP state to MIB2 TCP state. */ 16321 static int 16322 tcp_snmp_state(tcp_t *tcp) 16323 { 16324 if (tcp == NULL) 16325 return (0); 16326 16327 switch (tcp->tcp_state) { 16328 case TCPS_CLOSED: 16329 case TCPS_IDLE: /* RFC1213 doesn't have analogue for IDLE & BOUND */ 16330 case TCPS_BOUND: 16331 return (MIB2_TCP_closed); 16332 case TCPS_LISTEN: 16333 return (MIB2_TCP_listen); 16334 case TCPS_SYN_SENT: 16335 return (MIB2_TCP_synSent); 16336 case TCPS_SYN_RCVD: 16337 return (MIB2_TCP_synReceived); 16338 case TCPS_ESTABLISHED: 16339 return (MIB2_TCP_established); 16340 case TCPS_CLOSE_WAIT: 16341 return (MIB2_TCP_closeWait); 16342 case TCPS_FIN_WAIT_1: 16343 return (MIB2_TCP_finWait1); 16344 case TCPS_CLOSING: 16345 return (MIB2_TCP_closing); 16346 case TCPS_LAST_ACK: 16347 return (MIB2_TCP_lastAck); 16348 case TCPS_FIN_WAIT_2: 16349 return (MIB2_TCP_finWait2); 16350 case TCPS_TIME_WAIT: 16351 return (MIB2_TCP_timeWait); 16352 default: 16353 return (0); 16354 } 16355 } 16356 16357 static char tcp_report_header[] = 16358 "TCP " MI_COL_HDRPAD_STR 16359 "zone dest snxt suna " 16360 "swnd rnxt rack rwnd rto mss w sw rw t " 16361 "recent [lport,fport] state"; 16362 16363 /* 16364 * TCP status report triggered via the Named Dispatch mechanism. 16365 */ 16366 /* ARGSUSED */ 16367 static void 16368 tcp_report_item(mblk_t *mp, tcp_t *tcp, int hashval, tcp_t *thisstream, 16369 cred_t *cr) 16370 { 16371 char hash[10], addrbuf[INET6_ADDRSTRLEN]; 16372 boolean_t ispriv = secpolicy_net_config(cr, B_TRUE) == 0; 16373 char cflag; 16374 in6_addr_t v6dst; 16375 char buf[80]; 16376 uint_t print_len, buf_len; 16377 16378 buf_len = mp->b_datap->db_lim - mp->b_wptr; 16379 if (buf_len <= 0) 16380 return; 16381 16382 if (hashval >= 0) 16383 (void) sprintf(hash, "%03d ", hashval); 16384 else 16385 hash[0] = '\0'; 16386 16387 /* 16388 * Note that we use the remote address in the tcp_b structure. 16389 * This means that it will print out the real destination address, 16390 * not the next hop's address if source routing is used. This 16391 * avoid the confusion on the output because user may not 16392 * know that source routing is used for a connection. 16393 */ 16394 if (tcp->tcp_ipversion == IPV4_VERSION) { 16395 IN6_IPADDR_TO_V4MAPPED(tcp->tcp_remote, &v6dst); 16396 } else { 16397 v6dst = tcp->tcp_remote_v6; 16398 } 16399 (void) inet_ntop(AF_INET6, &v6dst, addrbuf, sizeof (addrbuf)); 16400 /* 16401 * the ispriv checks are so that normal users cannot determine 16402 * sequence number information using NDD. 16403 */ 16404 16405 if (TCP_IS_DETACHED(tcp)) 16406 cflag = '*'; 16407 else 16408 cflag = ' '; 16409 print_len = snprintf((char *)mp->b_wptr, buf_len, 16410 "%s " MI_COL_PTRFMT_STR "%d %s %08x %08x %010d %08x %08x " 16411 "%010d %05ld %05d %1d %02d %02d %1d %08x %s%c\n", 16412 hash, 16413 (void *)tcp, 16414 tcp->tcp_connp->conn_zoneid, 16415 addrbuf, 16416 (ispriv) ? tcp->tcp_snxt : 0, 16417 (ispriv) ? tcp->tcp_suna : 0, 16418 tcp->tcp_swnd, 16419 (ispriv) ? tcp->tcp_rnxt : 0, 16420 (ispriv) ? tcp->tcp_rack : 0, 16421 tcp->tcp_rwnd, 16422 tcp->tcp_rto, 16423 tcp->tcp_mss, 16424 tcp->tcp_snd_ws_ok, 16425 tcp->tcp_snd_ws, 16426 tcp->tcp_rcv_ws, 16427 tcp->tcp_snd_ts_ok, 16428 tcp->tcp_ts_recent, 16429 tcp_display(tcp, buf, DISP_PORT_ONLY), cflag); 16430 if (print_len < buf_len) { 16431 ((mblk_t *)mp)->b_wptr += print_len; 16432 } else { 16433 ((mblk_t *)mp)->b_wptr += buf_len; 16434 } 16435 } 16436 16437 /* 16438 * TCP status report (for listeners only) triggered via the Named Dispatch 16439 * mechanism. 16440 */ 16441 /* ARGSUSED */ 16442 static void 16443 tcp_report_listener(mblk_t *mp, tcp_t *tcp, int hashval) 16444 { 16445 char addrbuf[INET6_ADDRSTRLEN]; 16446 in6_addr_t v6dst; 16447 uint_t print_len, buf_len; 16448 16449 buf_len = mp->b_datap->db_lim - mp->b_wptr; 16450 if (buf_len <= 0) 16451 return; 16452 16453 if (tcp->tcp_ipversion == IPV4_VERSION) { 16454 IN6_IPADDR_TO_V4MAPPED(tcp->tcp_ipha->ipha_src, &v6dst); 16455 (void) inet_ntop(AF_INET6, &v6dst, addrbuf, sizeof (addrbuf)); 16456 } else { 16457 (void) inet_ntop(AF_INET6, &tcp->tcp_ip6h->ip6_src, 16458 addrbuf, sizeof (addrbuf)); 16459 } 16460 print_len = snprintf((char *)mp->b_wptr, buf_len, 16461 "%03d " 16462 MI_COL_PTRFMT_STR 16463 "%d %s %05u %08u %d/%d/%d%c\n", 16464 hashval, (void *)tcp, 16465 tcp->tcp_connp->conn_zoneid, 16466 addrbuf, 16467 (uint_t)BE16_TO_U16(tcp->tcp_tcph->th_lport), 16468 tcp->tcp_conn_req_seqnum, 16469 tcp->tcp_conn_req_cnt_q0, tcp->tcp_conn_req_cnt_q, 16470 tcp->tcp_conn_req_max, 16471 tcp->tcp_syn_defense ? '*' : ' '); 16472 if (print_len < buf_len) { 16473 ((mblk_t *)mp)->b_wptr += print_len; 16474 } else { 16475 ((mblk_t *)mp)->b_wptr += buf_len; 16476 } 16477 } 16478 16479 /* TCP status report triggered via the Named Dispatch mechanism. */ 16480 /* ARGSUSED */ 16481 static int 16482 tcp_status_report(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr) 16483 { 16484 tcp_t *tcp; 16485 int i; 16486 conn_t *connp; 16487 connf_t *connfp; 16488 zoneid_t zoneid; 16489 16490 /* 16491 * Because of the ndd constraint, at most we can have 64K buffer 16492 * to put in all TCP info. So to be more efficient, just 16493 * allocate a 64K buffer here, assuming we need that large buffer. 16494 * This may be a problem as any user can read tcp_status. Therefore 16495 * we limit the rate of doing this using tcp_ndd_get_info_interval. 16496 * This should be OK as normal users should not do this too often. 16497 */ 16498 if (cr == NULL || secpolicy_net_config(cr, B_TRUE) != 0) { 16499 if (ddi_get_lbolt() - tcp_last_ndd_get_info_time < 16500 drv_usectohz(tcp_ndd_get_info_interval * 1000)) { 16501 (void) mi_mpprintf(mp, NDD_TOO_QUICK_MSG); 16502 return (0); 16503 } 16504 } 16505 if ((mp->b_cont = allocb(ND_MAX_BUF_LEN, BPRI_HI)) == NULL) { 16506 /* The following may work even if we cannot get a large buf. */ 16507 (void) mi_mpprintf(mp, NDD_OUT_OF_BUF_MSG); 16508 return (0); 16509 } 16510 16511 (void) mi_mpprintf(mp, "%s", tcp_report_header); 16512 16513 zoneid = Q_TO_CONN(q)->conn_zoneid; 16514 for (i = 0; i < CONN_G_HASH_SIZE; i++) { 16515 16516 connfp = &ipcl_globalhash_fanout[i]; 16517 16518 connp = NULL; 16519 16520 while ((connp = 16521 ipcl_get_next_conn(connfp, connp, IPCL_TCP)) != NULL) { 16522 tcp = connp->conn_tcp; 16523 if (zoneid != GLOBAL_ZONEID && 16524 zoneid != connp->conn_zoneid) 16525 continue; 16526 tcp_report_item(mp->b_cont, tcp, -1, tcp, 16527 cr); 16528 } 16529 16530 } 16531 16532 tcp_last_ndd_get_info_time = ddi_get_lbolt(); 16533 return (0); 16534 } 16535 16536 /* TCP status report triggered via the Named Dispatch mechanism. */ 16537 /* ARGSUSED */ 16538 static int 16539 tcp_bind_hash_report(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr) 16540 { 16541 tf_t *tbf; 16542 tcp_t *tcp; 16543 int i; 16544 zoneid_t zoneid; 16545 16546 /* Refer to comments in tcp_status_report(). */ 16547 if (cr == NULL || secpolicy_net_config(cr, B_TRUE) != 0) { 16548 if (ddi_get_lbolt() - tcp_last_ndd_get_info_time < 16549 drv_usectohz(tcp_ndd_get_info_interval * 1000)) { 16550 (void) mi_mpprintf(mp, NDD_TOO_QUICK_MSG); 16551 return (0); 16552 } 16553 } 16554 if ((mp->b_cont = allocb(ND_MAX_BUF_LEN, BPRI_HI)) == NULL) { 16555 /* The following may work even if we cannot get a large buf. */ 16556 (void) mi_mpprintf(mp, NDD_OUT_OF_BUF_MSG); 16557 return (0); 16558 } 16559 16560 (void) mi_mpprintf(mp, " %s", tcp_report_header); 16561 16562 zoneid = Q_TO_CONN(q)->conn_zoneid; 16563 16564 for (i = 0; i < A_CNT(tcp_bind_fanout); i++) { 16565 tbf = &tcp_bind_fanout[i]; 16566 mutex_enter(&tbf->tf_lock); 16567 for (tcp = tbf->tf_tcp; tcp != NULL; 16568 tcp = tcp->tcp_bind_hash) { 16569 if (zoneid != GLOBAL_ZONEID && 16570 zoneid != tcp->tcp_connp->conn_zoneid) 16571 continue; 16572 CONN_INC_REF(tcp->tcp_connp); 16573 tcp_report_item(mp->b_cont, tcp, i, 16574 Q_TO_TCP(q), cr); 16575 CONN_DEC_REF(tcp->tcp_connp); 16576 } 16577 mutex_exit(&tbf->tf_lock); 16578 } 16579 tcp_last_ndd_get_info_time = ddi_get_lbolt(); 16580 return (0); 16581 } 16582 16583 /* TCP status report triggered via the Named Dispatch mechanism. */ 16584 /* ARGSUSED */ 16585 static int 16586 tcp_listen_hash_report(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr) 16587 { 16588 connf_t *connfp; 16589 conn_t *connp; 16590 tcp_t *tcp; 16591 int i; 16592 zoneid_t zoneid; 16593 16594 /* Refer to comments in tcp_status_report(). */ 16595 if (cr == NULL || secpolicy_net_config(cr, B_TRUE) != 0) { 16596 if (ddi_get_lbolt() - tcp_last_ndd_get_info_time < 16597 drv_usectohz(tcp_ndd_get_info_interval * 1000)) { 16598 (void) mi_mpprintf(mp, NDD_TOO_QUICK_MSG); 16599 return (0); 16600 } 16601 } 16602 if ((mp->b_cont = allocb(ND_MAX_BUF_LEN, BPRI_HI)) == NULL) { 16603 /* The following may work even if we cannot get a large buf. */ 16604 (void) mi_mpprintf(mp, NDD_OUT_OF_BUF_MSG); 16605 return (0); 16606 } 16607 16608 (void) mi_mpprintf(mp, 16609 " TCP " MI_COL_HDRPAD_STR 16610 "zone IP addr port seqnum backlog (q0/q/max)"); 16611 16612 zoneid = Q_TO_CONN(q)->conn_zoneid; 16613 16614 for (i = 0; i < ipcl_bind_fanout_size; i++) { 16615 connfp = &ipcl_bind_fanout[i]; 16616 connp = NULL; 16617 while ((connp = 16618 ipcl_get_next_conn(connfp, connp, IPCL_TCP)) != NULL) { 16619 tcp = connp->conn_tcp; 16620 if (zoneid != GLOBAL_ZONEID && 16621 zoneid != connp->conn_zoneid) 16622 continue; 16623 tcp_report_listener(mp->b_cont, tcp, i); 16624 } 16625 } 16626 16627 tcp_last_ndd_get_info_time = ddi_get_lbolt(); 16628 return (0); 16629 } 16630 16631 /* TCP status report triggered via the Named Dispatch mechanism. */ 16632 /* ARGSUSED */ 16633 static int 16634 tcp_conn_hash_report(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr) 16635 { 16636 connf_t *connfp; 16637 conn_t *connp; 16638 tcp_t *tcp; 16639 int i; 16640 zoneid_t zoneid; 16641 16642 /* Refer to comments in tcp_status_report(). */ 16643 if (cr == NULL || secpolicy_net_config(cr, B_TRUE) != 0) { 16644 if (ddi_get_lbolt() - tcp_last_ndd_get_info_time < 16645 drv_usectohz(tcp_ndd_get_info_interval * 1000)) { 16646 (void) mi_mpprintf(mp, NDD_TOO_QUICK_MSG); 16647 return (0); 16648 } 16649 } 16650 if ((mp->b_cont = allocb(ND_MAX_BUF_LEN, BPRI_HI)) == NULL) { 16651 /* The following may work even if we cannot get a large buf. */ 16652 (void) mi_mpprintf(mp, NDD_OUT_OF_BUF_MSG); 16653 return (0); 16654 } 16655 16656 (void) mi_mpprintf(mp, "tcp_conn_hash_size = %d", 16657 ipcl_conn_fanout_size); 16658 (void) mi_mpprintf(mp, " %s", tcp_report_header); 16659 16660 zoneid = Q_TO_CONN(q)->conn_zoneid; 16661 16662 for (i = 0; i < ipcl_conn_fanout_size; i++) { 16663 connfp = &ipcl_conn_fanout[i]; 16664 connp = NULL; 16665 while ((connp = 16666 ipcl_get_next_conn(connfp, connp, IPCL_TCP)) != NULL) { 16667 tcp = connp->conn_tcp; 16668 if (zoneid != GLOBAL_ZONEID && 16669 zoneid != connp->conn_zoneid) 16670 continue; 16671 tcp_report_item(mp->b_cont, tcp, i, 16672 Q_TO_TCP(q), cr); 16673 } 16674 } 16675 16676 tcp_last_ndd_get_info_time = ddi_get_lbolt(); 16677 return (0); 16678 } 16679 16680 /* TCP status report triggered via the Named Dispatch mechanism. */ 16681 /* ARGSUSED */ 16682 static int 16683 tcp_acceptor_hash_report(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr) 16684 { 16685 tf_t *tf; 16686 tcp_t *tcp; 16687 int i; 16688 zoneid_t zoneid; 16689 16690 /* Refer to comments in tcp_status_report(). */ 16691 if (cr == NULL || secpolicy_net_config(cr, B_TRUE) != 0) { 16692 if (ddi_get_lbolt() - tcp_last_ndd_get_info_time < 16693 drv_usectohz(tcp_ndd_get_info_interval * 1000)) { 16694 (void) mi_mpprintf(mp, NDD_TOO_QUICK_MSG); 16695 return (0); 16696 } 16697 } 16698 if ((mp->b_cont = allocb(ND_MAX_BUF_LEN, BPRI_HI)) == NULL) { 16699 /* The following may work even if we cannot get a large buf. */ 16700 (void) mi_mpprintf(mp, NDD_OUT_OF_BUF_MSG); 16701 return (0); 16702 } 16703 16704 (void) mi_mpprintf(mp, " %s", tcp_report_header); 16705 16706 zoneid = Q_TO_CONN(q)->conn_zoneid; 16707 16708 for (i = 0; i < A_CNT(tcp_acceptor_fanout); i++) { 16709 tf = &tcp_acceptor_fanout[i]; 16710 mutex_enter(&tf->tf_lock); 16711 for (tcp = tf->tf_tcp; tcp != NULL; 16712 tcp = tcp->tcp_acceptor_hash) { 16713 if (zoneid != GLOBAL_ZONEID && 16714 zoneid != tcp->tcp_connp->conn_zoneid) 16715 continue; 16716 tcp_report_item(mp->b_cont, tcp, i, 16717 Q_TO_TCP(q), cr); 16718 } 16719 mutex_exit(&tf->tf_lock); 16720 } 16721 tcp_last_ndd_get_info_time = ddi_get_lbolt(); 16722 return (0); 16723 } 16724 16725 /* 16726 * tcp_timer is the timer service routine. It handles the retransmission, 16727 * FIN_WAIT_2 flush, and zero window probe timeout events. It figures out 16728 * from the state of the tcp instance what kind of action needs to be done 16729 * at the time it is called. 16730 */ 16731 static void 16732 tcp_timer(void *arg) 16733 { 16734 mblk_t *mp; 16735 clock_t first_threshold; 16736 clock_t second_threshold; 16737 clock_t ms; 16738 uint32_t mss; 16739 conn_t *connp = (conn_t *)arg; 16740 tcp_t *tcp = connp->conn_tcp; 16741 16742 tcp->tcp_timer_tid = 0; 16743 16744 if (tcp->tcp_fused) 16745 return; 16746 16747 first_threshold = tcp->tcp_first_timer_threshold; 16748 second_threshold = tcp->tcp_second_timer_threshold; 16749 switch (tcp->tcp_state) { 16750 case TCPS_IDLE: 16751 case TCPS_BOUND: 16752 case TCPS_LISTEN: 16753 return; 16754 case TCPS_SYN_RCVD: { 16755 tcp_t *listener = tcp->tcp_listener; 16756 16757 if (tcp->tcp_syn_rcvd_timeout == 0 && (listener != NULL)) { 16758 ASSERT(tcp->tcp_rq == listener->tcp_rq); 16759 /* it's our first timeout */ 16760 tcp->tcp_syn_rcvd_timeout = 1; 16761 mutex_enter(&listener->tcp_eager_lock); 16762 listener->tcp_syn_rcvd_timeout++; 16763 if (!tcp->tcp_dontdrop && tcp->tcp_closemp_used == 0) { 16764 /* 16765 * Make this eager available for drop if we 16766 * need to drop one to accomodate a new 16767 * incoming SYN request. 16768 */ 16769 MAKE_DROPPABLE(listener, tcp); 16770 } 16771 if (!listener->tcp_syn_defense && 16772 (listener->tcp_syn_rcvd_timeout > 16773 (tcp_conn_req_max_q0 >> 2)) && 16774 (tcp_conn_req_max_q0 > 200)) { 16775 /* We may be under attack. Put on a defense. */ 16776 listener->tcp_syn_defense = B_TRUE; 16777 cmn_err(CE_WARN, "High TCP connect timeout " 16778 "rate! System (port %d) may be under a " 16779 "SYN flood attack!", 16780 BE16_TO_U16(listener->tcp_tcph->th_lport)); 16781 16782 listener->tcp_ip_addr_cache = kmem_zalloc( 16783 IP_ADDR_CACHE_SIZE * sizeof (ipaddr_t), 16784 KM_NOSLEEP); 16785 } 16786 mutex_exit(&listener->tcp_eager_lock); 16787 } else if (listener != NULL) { 16788 mutex_enter(&listener->tcp_eager_lock); 16789 tcp->tcp_syn_rcvd_timeout++; 16790 if (tcp->tcp_syn_rcvd_timeout > 1 && 16791 tcp->tcp_closemp_used == 0) { 16792 /* 16793 * This is our second timeout. Put the tcp in 16794 * the list of droppable eagers to allow it to 16795 * be dropped, if needed. We don't check 16796 * whether tcp_dontdrop is set or not to 16797 * protect ourselve from a SYN attack where a 16798 * remote host can spoof itself as one of the 16799 * good IP source and continue to hold 16800 * resources too long. 16801 */ 16802 MAKE_DROPPABLE(listener, tcp); 16803 } 16804 mutex_exit(&listener->tcp_eager_lock); 16805 } 16806 } 16807 /* FALLTHRU */ 16808 case TCPS_SYN_SENT: 16809 first_threshold = tcp->tcp_first_ctimer_threshold; 16810 second_threshold = tcp->tcp_second_ctimer_threshold; 16811 break; 16812 case TCPS_ESTABLISHED: 16813 case TCPS_FIN_WAIT_1: 16814 case TCPS_CLOSING: 16815 case TCPS_CLOSE_WAIT: 16816 case TCPS_LAST_ACK: 16817 /* If we have data to rexmit */ 16818 if (tcp->tcp_suna != tcp->tcp_snxt) { 16819 clock_t time_to_wait; 16820 16821 BUMP_MIB(&tcp_mib, tcpTimRetrans); 16822 if (!tcp->tcp_xmit_head) 16823 break; 16824 time_to_wait = lbolt - 16825 (clock_t)tcp->tcp_xmit_head->b_prev; 16826 time_to_wait = tcp->tcp_rto - 16827 TICK_TO_MSEC(time_to_wait); 16828 /* 16829 * If the timer fires too early, 1 clock tick earlier, 16830 * restart the timer. 16831 */ 16832 if (time_to_wait > msec_per_tick) { 16833 TCP_STAT(tcp_timer_fire_early); 16834 TCP_TIMER_RESTART(tcp, time_to_wait); 16835 return; 16836 } 16837 /* 16838 * When we probe zero windows, we force the swnd open. 16839 * If our peer acks with a closed window swnd will be 16840 * set to zero by tcp_rput(). As long as we are 16841 * receiving acks tcp_rput will 16842 * reset 'tcp_ms_we_have_waited' so as not to trip the 16843 * first and second interval actions. NOTE: the timer 16844 * interval is allowed to continue its exponential 16845 * backoff. 16846 */ 16847 if (tcp->tcp_swnd == 0 || tcp->tcp_zero_win_probe) { 16848 if (tcp->tcp_debug) { 16849 (void) strlog(TCP_MOD_ID, 0, 1, 16850 SL_TRACE, "tcp_timer: zero win"); 16851 } 16852 } else { 16853 /* 16854 * After retransmission, we need to do 16855 * slow start. Set the ssthresh to one 16856 * half of current effective window and 16857 * cwnd to one MSS. Also reset 16858 * tcp_cwnd_cnt. 16859 * 16860 * Note that if tcp_ssthresh is reduced because 16861 * of ECN, do not reduce it again unless it is 16862 * already one window of data away (tcp_cwr 16863 * should then be cleared) or this is a 16864 * timeout for a retransmitted segment. 16865 */ 16866 uint32_t npkt; 16867 16868 if (!tcp->tcp_cwr || tcp->tcp_rexmit) { 16869 npkt = ((tcp->tcp_timer_backoff ? 16870 tcp->tcp_cwnd_ssthresh : 16871 tcp->tcp_snxt - 16872 tcp->tcp_suna) >> 1) / tcp->tcp_mss; 16873 tcp->tcp_cwnd_ssthresh = MAX(npkt, 2) * 16874 tcp->tcp_mss; 16875 } 16876 tcp->tcp_cwnd = tcp->tcp_mss; 16877 tcp->tcp_cwnd_cnt = 0; 16878 if (tcp->tcp_ecn_ok) { 16879 tcp->tcp_cwr = B_TRUE; 16880 tcp->tcp_cwr_snd_max = tcp->tcp_snxt; 16881 tcp->tcp_ecn_cwr_sent = B_FALSE; 16882 } 16883 } 16884 break; 16885 } 16886 /* 16887 * We have something to send yet we cannot send. The 16888 * reason can be: 16889 * 16890 * 1. Zero send window: we need to do zero window probe. 16891 * 2. Zero cwnd: because of ECN, we need to "clock out 16892 * segments. 16893 * 3. SWS avoidance: receiver may have shrunk window, 16894 * reset our knowledge. 16895 * 16896 * Note that condition 2 can happen with either 1 or 16897 * 3. But 1 and 3 are exclusive. 16898 */ 16899 if (tcp->tcp_unsent != 0) { 16900 if (tcp->tcp_cwnd == 0) { 16901 /* 16902 * Set tcp_cwnd to 1 MSS so that a 16903 * new segment can be sent out. We 16904 * are "clocking out" new data when 16905 * the network is really congested. 16906 */ 16907 ASSERT(tcp->tcp_ecn_ok); 16908 tcp->tcp_cwnd = tcp->tcp_mss; 16909 } 16910 if (tcp->tcp_swnd == 0) { 16911 /* Extend window for zero window probe */ 16912 tcp->tcp_swnd++; 16913 tcp->tcp_zero_win_probe = B_TRUE; 16914 BUMP_MIB(&tcp_mib, tcpOutWinProbe); 16915 } else { 16916 /* 16917 * Handle timeout from sender SWS avoidance. 16918 * Reset our knowledge of the max send window 16919 * since the receiver might have reduced its 16920 * receive buffer. Avoid setting tcp_max_swnd 16921 * to one since that will essentially disable 16922 * the SWS checks. 16923 * 16924 * Note that since we don't have a SWS 16925 * state variable, if the timeout is set 16926 * for ECN but not for SWS, this 16927 * code will also be executed. This is 16928 * fine as tcp_max_swnd is updated 16929 * constantly and it will not affect 16930 * anything. 16931 */ 16932 tcp->tcp_max_swnd = MAX(tcp->tcp_swnd, 2); 16933 } 16934 tcp_wput_data(tcp, NULL, B_FALSE); 16935 return; 16936 } 16937 /* Is there a FIN that needs to be to re retransmitted? */ 16938 if ((tcp->tcp_valid_bits & TCP_FSS_VALID) && 16939 !tcp->tcp_fin_acked) 16940 break; 16941 /* Nothing to do, return without restarting timer. */ 16942 TCP_STAT(tcp_timer_fire_miss); 16943 return; 16944 case TCPS_FIN_WAIT_2: 16945 /* 16946 * User closed the TCP endpoint and peer ACK'ed our FIN. 16947 * We waited some time for for peer's FIN, but it hasn't 16948 * arrived. We flush the connection now to avoid 16949 * case where the peer has rebooted. 16950 */ 16951 if (TCP_IS_DETACHED(tcp)) { 16952 (void) tcp_clean_death(tcp, 0, 23); 16953 } else { 16954 TCP_TIMER_RESTART(tcp, tcp_fin_wait_2_flush_interval); 16955 } 16956 return; 16957 case TCPS_TIME_WAIT: 16958 (void) tcp_clean_death(tcp, 0, 24); 16959 return; 16960 default: 16961 if (tcp->tcp_debug) { 16962 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE|SL_ERROR, 16963 "tcp_timer: strange state (%d) %s", 16964 tcp->tcp_state, tcp_display(tcp, NULL, 16965 DISP_PORT_ONLY)); 16966 } 16967 return; 16968 } 16969 if ((ms = tcp->tcp_ms_we_have_waited) > second_threshold) { 16970 /* 16971 * For zero window probe, we need to send indefinitely, 16972 * unless we have not heard from the other side for some 16973 * time... 16974 */ 16975 if ((tcp->tcp_zero_win_probe == 0) || 16976 (TICK_TO_MSEC(lbolt - tcp->tcp_last_recv_time) > 16977 second_threshold)) { 16978 BUMP_MIB(&tcp_mib, tcpTimRetransDrop); 16979 /* 16980 * If TCP is in SYN_RCVD state, send back a 16981 * RST|ACK as BSD does. Note that tcp_zero_win_probe 16982 * should be zero in TCPS_SYN_RCVD state. 16983 */ 16984 if (tcp->tcp_state == TCPS_SYN_RCVD) { 16985 tcp_xmit_ctl("tcp_timer: RST sent on timeout " 16986 "in SYN_RCVD", 16987 tcp, tcp->tcp_snxt, 16988 tcp->tcp_rnxt, TH_RST | TH_ACK); 16989 } 16990 (void) tcp_clean_death(tcp, 16991 tcp->tcp_client_errno ? 16992 tcp->tcp_client_errno : ETIMEDOUT, 25); 16993 return; 16994 } else { 16995 /* 16996 * Set tcp_ms_we_have_waited to second_threshold 16997 * so that in next timeout, we will do the above 16998 * check (lbolt - tcp_last_recv_time). This is 16999 * also to avoid overflow. 17000 * 17001 * We don't need to decrement tcp_timer_backoff 17002 * to avoid overflow because it will be decremented 17003 * later if new timeout value is greater than 17004 * tcp_rexmit_interval_max. In the case when 17005 * tcp_rexmit_interval_max is greater than 17006 * second_threshold, it means that we will wait 17007 * longer than second_threshold to send the next 17008 * window probe. 17009 */ 17010 tcp->tcp_ms_we_have_waited = second_threshold; 17011 } 17012 } else if (ms > first_threshold) { 17013 if (tcp->tcp_snd_zcopy_aware && (!tcp->tcp_xmit_zc_clean) && 17014 tcp->tcp_xmit_head != NULL) { 17015 tcp->tcp_xmit_head = 17016 tcp_zcopy_backoff(tcp, tcp->tcp_xmit_head, 1); 17017 } 17018 /* 17019 * We have been retransmitting for too long... The RTT 17020 * we calculated is probably incorrect. Reinitialize it. 17021 * Need to compensate for 0 tcp_rtt_sa. Reset 17022 * tcp_rtt_update so that we won't accidentally cache a 17023 * bad value. But only do this if this is not a zero 17024 * window probe. 17025 */ 17026 if (tcp->tcp_rtt_sa != 0 && tcp->tcp_zero_win_probe == 0) { 17027 tcp->tcp_rtt_sd += (tcp->tcp_rtt_sa >> 3) + 17028 (tcp->tcp_rtt_sa >> 5); 17029 tcp->tcp_rtt_sa = 0; 17030 tcp_ip_notify(tcp); 17031 tcp->tcp_rtt_update = 0; 17032 } 17033 } 17034 tcp->tcp_timer_backoff++; 17035 if ((ms = (tcp->tcp_rtt_sa >> 3) + tcp->tcp_rtt_sd + 17036 tcp_rexmit_interval_extra + (tcp->tcp_rtt_sa >> 5)) < 17037 tcp_rexmit_interval_min) { 17038 /* 17039 * This means the original RTO is tcp_rexmit_interval_min. 17040 * So we will use tcp_rexmit_interval_min as the RTO value 17041 * and do the backoff. 17042 */ 17043 ms = tcp_rexmit_interval_min << tcp->tcp_timer_backoff; 17044 } else { 17045 ms <<= tcp->tcp_timer_backoff; 17046 } 17047 if (ms > tcp_rexmit_interval_max) { 17048 ms = tcp_rexmit_interval_max; 17049 /* 17050 * ms is at max, decrement tcp_timer_backoff to avoid 17051 * overflow. 17052 */ 17053 tcp->tcp_timer_backoff--; 17054 } 17055 tcp->tcp_ms_we_have_waited += ms; 17056 if (tcp->tcp_zero_win_probe == 0) { 17057 tcp->tcp_rto = ms; 17058 } 17059 TCP_TIMER_RESTART(tcp, ms); 17060 /* 17061 * This is after a timeout and tcp_rto is backed off. Set 17062 * tcp_set_timer to 1 so that next time RTO is updated, we will 17063 * restart the timer with a correct value. 17064 */ 17065 tcp->tcp_set_timer = 1; 17066 mss = tcp->tcp_snxt - tcp->tcp_suna; 17067 if (mss > tcp->tcp_mss) 17068 mss = tcp->tcp_mss; 17069 if (mss > tcp->tcp_swnd && tcp->tcp_swnd != 0) 17070 mss = tcp->tcp_swnd; 17071 17072 if ((mp = tcp->tcp_xmit_head) != NULL) 17073 mp->b_prev = (mblk_t *)lbolt; 17074 mp = tcp_xmit_mp(tcp, mp, mss, NULL, NULL, tcp->tcp_suna, B_TRUE, &mss, 17075 B_TRUE); 17076 17077 /* 17078 * When slow start after retransmission begins, start with 17079 * this seq no. tcp_rexmit_max marks the end of special slow 17080 * start phase. tcp_snd_burst controls how many segments 17081 * can be sent because of an ack. 17082 */ 17083 tcp->tcp_rexmit_nxt = tcp->tcp_suna; 17084 tcp->tcp_snd_burst = TCP_CWND_SS; 17085 if ((tcp->tcp_valid_bits & TCP_FSS_VALID) && 17086 (tcp->tcp_unsent == 0)) { 17087 tcp->tcp_rexmit_max = tcp->tcp_fss; 17088 } else { 17089 tcp->tcp_rexmit_max = tcp->tcp_snxt; 17090 } 17091 tcp->tcp_rexmit = B_TRUE; 17092 tcp->tcp_dupack_cnt = 0; 17093 17094 /* 17095 * Remove all rexmit SACK blk to start from fresh. 17096 */ 17097 if (tcp->tcp_snd_sack_ok && tcp->tcp_notsack_list != NULL) { 17098 TCP_NOTSACK_REMOVE_ALL(tcp->tcp_notsack_list); 17099 tcp->tcp_num_notsack_blk = 0; 17100 tcp->tcp_cnt_notsack_list = 0; 17101 } 17102 if (mp == NULL) { 17103 return; 17104 } 17105 /* Attach credentials to retransmitted initial SYNs. */ 17106 if (tcp->tcp_state == TCPS_SYN_SENT) { 17107 mblk_setcred(mp, tcp->tcp_cred); 17108 DB_CPID(mp) = tcp->tcp_cpid; 17109 } 17110 17111 tcp->tcp_csuna = tcp->tcp_snxt; 17112 BUMP_MIB(&tcp_mib, tcpRetransSegs); 17113 UPDATE_MIB(&tcp_mib, tcpRetransBytes, mss); 17114 TCP_RECORD_TRACE(tcp, mp, TCP_TRACE_SEND_PKT); 17115 tcp_send_data(tcp, tcp->tcp_wq, mp); 17116 17117 } 17118 17119 /* tcp_unbind is called by tcp_wput_proto to handle T_UNBIND_REQ messages. */ 17120 static void 17121 tcp_unbind(tcp_t *tcp, mblk_t *mp) 17122 { 17123 conn_t *connp; 17124 17125 switch (tcp->tcp_state) { 17126 case TCPS_BOUND: 17127 case TCPS_LISTEN: 17128 break; 17129 default: 17130 tcp_err_ack(tcp, mp, TOUTSTATE, 0); 17131 return; 17132 } 17133 17134 /* 17135 * Need to clean up all the eagers since after the unbind, segments 17136 * will no longer be delivered to this listener stream. 17137 */ 17138 mutex_enter(&tcp->tcp_eager_lock); 17139 if (tcp->tcp_conn_req_cnt_q0 != 0 || tcp->tcp_conn_req_cnt_q != 0) { 17140 tcp_eager_cleanup(tcp, 0); 17141 } 17142 mutex_exit(&tcp->tcp_eager_lock); 17143 17144 if (tcp->tcp_ipversion == IPV4_VERSION) { 17145 tcp->tcp_ipha->ipha_src = 0; 17146 } else { 17147 V6_SET_ZERO(tcp->tcp_ip6h->ip6_src); 17148 } 17149 V6_SET_ZERO(tcp->tcp_ip_src_v6); 17150 bzero(tcp->tcp_tcph->th_lport, sizeof (tcp->tcp_tcph->th_lport)); 17151 tcp_bind_hash_remove(tcp); 17152 tcp->tcp_state = TCPS_IDLE; 17153 tcp->tcp_mdt = B_FALSE; 17154 /* Send M_FLUSH according to TPI */ 17155 (void) putnextctl1(tcp->tcp_rq, M_FLUSH, FLUSHRW); 17156 connp = tcp->tcp_connp; 17157 connp->conn_mdt_ok = B_FALSE; 17158 ipcl_hash_remove(connp); 17159 bzero(&connp->conn_ports, sizeof (connp->conn_ports)); 17160 mp = mi_tpi_ok_ack_alloc(mp); 17161 putnext(tcp->tcp_rq, mp); 17162 } 17163 17164 /* 17165 * Don't let port fall into the privileged range. 17166 * Since the extra privileged ports can be arbitrary we also 17167 * ensure that we exclude those from consideration. 17168 * tcp_g_epriv_ports is not sorted thus we loop over it until 17169 * there are no changes. 17170 * 17171 * Note: No locks are held when inspecting tcp_g_*epriv_ports 17172 * but instead the code relies on: 17173 * - the fact that the address of the array and its size never changes 17174 * - the atomic assignment of the elements of the array 17175 * 17176 * Returns 0 if there are no more ports available. 17177 * 17178 * TS note: skip multilevel ports. 17179 */ 17180 static in_port_t 17181 tcp_update_next_port(in_port_t port, const tcp_t *tcp, boolean_t random) 17182 { 17183 int i; 17184 boolean_t restart = B_FALSE; 17185 17186 if (random && tcp_random_anon_port != 0) { 17187 (void) random_get_pseudo_bytes((uint8_t *)&port, 17188 sizeof (in_port_t)); 17189 /* 17190 * Unless changed by a sys admin, the smallest anon port 17191 * is 32768 and the largest anon port is 65535. It is 17192 * very likely (50%) for the random port to be smaller 17193 * than the smallest anon port. When that happens, 17194 * add port % (anon port range) to the smallest anon 17195 * port to get the random port. It should fall into the 17196 * valid anon port range. 17197 */ 17198 if (port < tcp_smallest_anon_port) { 17199 port = tcp_smallest_anon_port + 17200 port % (tcp_largest_anon_port - 17201 tcp_smallest_anon_port); 17202 } 17203 } 17204 17205 retry: 17206 if (port < tcp_smallest_anon_port) 17207 port = (in_port_t)tcp_smallest_anon_port; 17208 17209 if (port > tcp_largest_anon_port) { 17210 if (restart) 17211 return (0); 17212 restart = B_TRUE; 17213 port = (in_port_t)tcp_smallest_anon_port; 17214 } 17215 17216 if (port < tcp_smallest_nonpriv_port) 17217 port = (in_port_t)tcp_smallest_nonpriv_port; 17218 17219 for (i = 0; i < tcp_g_num_epriv_ports; i++) { 17220 if (port == tcp_g_epriv_ports[i]) { 17221 port++; 17222 /* 17223 * Make sure whether the port is in the 17224 * valid range. 17225 */ 17226 goto retry; 17227 } 17228 } 17229 if (is_system_labeled() && 17230 (i = tsol_next_port(crgetzone(tcp->tcp_cred), port, 17231 IPPROTO_TCP, B_TRUE)) != 0) { 17232 port = i; 17233 goto retry; 17234 } 17235 return (port); 17236 } 17237 17238 /* 17239 * Return the next anonymous port in the privileged port range for 17240 * bind checking. It starts at IPPORT_RESERVED - 1 and goes 17241 * downwards. This is the same behavior as documented in the userland 17242 * library call rresvport(3N). 17243 * 17244 * TS note: skip multilevel ports. 17245 */ 17246 static in_port_t 17247 tcp_get_next_priv_port(const tcp_t *tcp) 17248 { 17249 static in_port_t next_priv_port = IPPORT_RESERVED - 1; 17250 in_port_t nextport; 17251 boolean_t restart = B_FALSE; 17252 17253 retry: 17254 if (next_priv_port < tcp_min_anonpriv_port || 17255 next_priv_port >= IPPORT_RESERVED) { 17256 next_priv_port = IPPORT_RESERVED - 1; 17257 if (restart) 17258 return (0); 17259 restart = B_TRUE; 17260 } 17261 if (is_system_labeled() && 17262 (nextport = tsol_next_port(crgetzone(tcp->tcp_cred), 17263 next_priv_port, IPPROTO_TCP, B_FALSE)) != 0) { 17264 next_priv_port = nextport; 17265 goto retry; 17266 } 17267 return (next_priv_port--); 17268 } 17269 17270 /* The write side r/w procedure. */ 17271 17272 #if CCS_STATS 17273 struct { 17274 struct { 17275 int64_t count, bytes; 17276 } tot, hit; 17277 } wrw_stats; 17278 #endif 17279 17280 /* 17281 * Call by tcp_wput() to handle all non data, except M_PROTO and M_PCPROTO, 17282 * messages. 17283 */ 17284 /* ARGSUSED */ 17285 static void 17286 tcp_wput_nondata(void *arg, mblk_t *mp, void *arg2) 17287 { 17288 conn_t *connp = (conn_t *)arg; 17289 tcp_t *tcp = connp->conn_tcp; 17290 queue_t *q = tcp->tcp_wq; 17291 17292 ASSERT(DB_TYPE(mp) != M_IOCTL); 17293 /* 17294 * TCP is D_MP and qprocsoff() is done towards the end of the tcp_close. 17295 * Once the close starts, streamhead and sockfs will not let any data 17296 * packets come down (close ensures that there are no threads using the 17297 * queue and no new threads will come down) but since qprocsoff() 17298 * hasn't happened yet, a M_FLUSH or some non data message might 17299 * get reflected back (in response to our own FLUSHRW) and get 17300 * processed after tcp_close() is done. The conn would still be valid 17301 * because a ref would have added but we need to check the state 17302 * before actually processing the packet. 17303 */ 17304 if (TCP_IS_DETACHED(tcp) || (tcp->tcp_state == TCPS_CLOSED)) { 17305 freemsg(mp); 17306 return; 17307 } 17308 17309 switch (DB_TYPE(mp)) { 17310 case M_IOCDATA: 17311 tcp_wput_iocdata(tcp, mp); 17312 break; 17313 case M_FLUSH: 17314 tcp_wput_flush(tcp, mp); 17315 break; 17316 default: 17317 CALL_IP_WPUT(connp, q, mp); 17318 break; 17319 } 17320 } 17321 17322 /* 17323 * The TCP fast path write put procedure. 17324 * NOTE: the logic of the fast path is duplicated from tcp_wput_data() 17325 */ 17326 /* ARGSUSED */ 17327 void 17328 tcp_output(void *arg, mblk_t *mp, void *arg2) 17329 { 17330 int len; 17331 int hdrlen; 17332 int plen; 17333 mblk_t *mp1; 17334 uchar_t *rptr; 17335 uint32_t snxt; 17336 tcph_t *tcph; 17337 struct datab *db; 17338 uint32_t suna; 17339 uint32_t mss; 17340 ipaddr_t *dst; 17341 ipaddr_t *src; 17342 uint32_t sum; 17343 int usable; 17344 conn_t *connp = (conn_t *)arg; 17345 tcp_t *tcp = connp->conn_tcp; 17346 uint32_t msize; 17347 17348 /* 17349 * Try and ASSERT the minimum possible references on the 17350 * conn early enough. Since we are executing on write side, 17351 * the connection is obviously not detached and that means 17352 * there is a ref each for TCP and IP. Since we are behind 17353 * the squeue, the minimum references needed are 3. If the 17354 * conn is in classifier hash list, there should be an 17355 * extra ref for that (we check both the possibilities). 17356 */ 17357 ASSERT((connp->conn_fanout != NULL && connp->conn_ref >= 4) || 17358 (connp->conn_fanout == NULL && connp->conn_ref >= 3)); 17359 17360 ASSERT(DB_TYPE(mp) == M_DATA); 17361 msize = (mp->b_cont == NULL) ? MBLKL(mp) : msgdsize(mp); 17362 17363 mutex_enter(&connp->conn_lock); 17364 tcp->tcp_squeue_bytes -= msize; 17365 mutex_exit(&connp->conn_lock); 17366 17367 /* Bypass tcp protocol for fused tcp loopback */ 17368 if (tcp->tcp_fused && tcp_fuse_output(tcp, mp, msize)) 17369 return; 17370 17371 mss = tcp->tcp_mss; 17372 if (tcp->tcp_xmit_zc_clean) 17373 mp = tcp_zcopy_backoff(tcp, mp, 0); 17374 17375 ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= (uintptr_t)INT_MAX); 17376 len = (int)(mp->b_wptr - mp->b_rptr); 17377 17378 /* 17379 * Criteria for fast path: 17380 * 17381 * 1. no unsent data 17382 * 2. single mblk in request 17383 * 3. connection established 17384 * 4. data in mblk 17385 * 5. len <= mss 17386 * 6. no tcp_valid bits 17387 */ 17388 if ((tcp->tcp_unsent != 0) || 17389 (tcp->tcp_cork) || 17390 (mp->b_cont != NULL) || 17391 (tcp->tcp_state != TCPS_ESTABLISHED) || 17392 (len == 0) || 17393 (len > mss) || 17394 (tcp->tcp_valid_bits != 0)) { 17395 tcp_wput_data(tcp, mp, B_FALSE); 17396 return; 17397 } 17398 17399 ASSERT(tcp->tcp_xmit_tail_unsent == 0); 17400 ASSERT(tcp->tcp_fin_sent == 0); 17401 17402 /* queue new packet onto retransmission queue */ 17403 if (tcp->tcp_xmit_head == NULL) { 17404 tcp->tcp_xmit_head = mp; 17405 } else { 17406 tcp->tcp_xmit_last->b_cont = mp; 17407 } 17408 tcp->tcp_xmit_last = mp; 17409 tcp->tcp_xmit_tail = mp; 17410 17411 /* find out how much we can send */ 17412 /* BEGIN CSTYLED */ 17413 /* 17414 * un-acked usable 17415 * |--------------|-----------------| 17416 * tcp_suna tcp_snxt tcp_suna+tcp_swnd 17417 */ 17418 /* END CSTYLED */ 17419 17420 /* start sending from tcp_snxt */ 17421 snxt = tcp->tcp_snxt; 17422 17423 /* 17424 * Check to see if this connection has been idled for some 17425 * time and no ACK is expected. If it is, we need to slow 17426 * start again to get back the connection's "self-clock" as 17427 * described in VJ's paper. 17428 * 17429 * Refer to the comment in tcp_mss_set() for the calculation 17430 * of tcp_cwnd after idle. 17431 */ 17432 if ((tcp->tcp_suna == snxt) && !tcp->tcp_localnet && 17433 (TICK_TO_MSEC(lbolt - tcp->tcp_last_recv_time) >= tcp->tcp_rto)) { 17434 SET_TCP_INIT_CWND(tcp, mss, tcp_slow_start_after_idle); 17435 } 17436 17437 usable = tcp->tcp_swnd; /* tcp window size */ 17438 if (usable > tcp->tcp_cwnd) 17439 usable = tcp->tcp_cwnd; /* congestion window smaller */ 17440 usable -= snxt; /* subtract stuff already sent */ 17441 suna = tcp->tcp_suna; 17442 usable += suna; 17443 /* usable can be < 0 if the congestion window is smaller */ 17444 if (len > usable) { 17445 /* Can't send complete M_DATA in one shot */ 17446 goto slow; 17447 } 17448 17449 if (tcp->tcp_flow_stopped && 17450 TCP_UNSENT_BYTES(tcp) <= tcp->tcp_xmit_lowater) { 17451 tcp_clrqfull(tcp); 17452 } 17453 17454 /* 17455 * determine if anything to send (Nagle). 17456 * 17457 * 1. len < tcp_mss (i.e. small) 17458 * 2. unacknowledged data present 17459 * 3. len < nagle limit 17460 * 4. last packet sent < nagle limit (previous packet sent) 17461 */ 17462 if ((len < mss) && (snxt != suna) && 17463 (len < (int)tcp->tcp_naglim) && 17464 (tcp->tcp_last_sent_len < tcp->tcp_naglim)) { 17465 /* 17466 * This was the first unsent packet and normally 17467 * mss < xmit_hiwater so there is no need to worry 17468 * about flow control. The next packet will go 17469 * through the flow control check in tcp_wput_data(). 17470 */ 17471 /* leftover work from above */ 17472 tcp->tcp_unsent = len; 17473 tcp->tcp_xmit_tail_unsent = len; 17474 17475 return; 17476 } 17477 17478 /* len <= tcp->tcp_mss && len == unsent so no silly window */ 17479 17480 if (snxt == suna) { 17481 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 17482 } 17483 17484 /* we have always sent something */ 17485 tcp->tcp_rack_cnt = 0; 17486 17487 tcp->tcp_snxt = snxt + len; 17488 tcp->tcp_rack = tcp->tcp_rnxt; 17489 17490 if ((mp1 = dupb(mp)) == 0) 17491 goto no_memory; 17492 mp->b_prev = (mblk_t *)(uintptr_t)lbolt; 17493 mp->b_next = (mblk_t *)(uintptr_t)snxt; 17494 17495 /* adjust tcp header information */ 17496 tcph = tcp->tcp_tcph; 17497 tcph->th_flags[0] = (TH_ACK|TH_PUSH); 17498 17499 sum = len + tcp->tcp_tcp_hdr_len + tcp->tcp_sum; 17500 sum = (sum >> 16) + (sum & 0xFFFF); 17501 U16_TO_ABE16(sum, tcph->th_sum); 17502 17503 U32_TO_ABE32(snxt, tcph->th_seq); 17504 17505 BUMP_MIB(&tcp_mib, tcpOutDataSegs); 17506 UPDATE_MIB(&tcp_mib, tcpOutDataBytes, len); 17507 BUMP_LOCAL(tcp->tcp_obsegs); 17508 17509 /* Update the latest receive window size in TCP header. */ 17510 U32_TO_ABE16(tcp->tcp_rwnd >> tcp->tcp_rcv_ws, 17511 tcph->th_win); 17512 17513 tcp->tcp_last_sent_len = (ushort_t)len; 17514 17515 plen = len + tcp->tcp_hdr_len; 17516 17517 if (tcp->tcp_ipversion == IPV4_VERSION) { 17518 tcp->tcp_ipha->ipha_length = htons(plen); 17519 } else { 17520 tcp->tcp_ip6h->ip6_plen = htons(plen - 17521 ((char *)&tcp->tcp_ip6h[1] - tcp->tcp_iphc)); 17522 } 17523 17524 /* see if we need to allocate a mblk for the headers */ 17525 hdrlen = tcp->tcp_hdr_len; 17526 rptr = mp1->b_rptr - hdrlen; 17527 db = mp1->b_datap; 17528 if ((db->db_ref != 2) || rptr < db->db_base || 17529 (!OK_32PTR(rptr))) { 17530 /* NOTE: we assume allocb returns an OK_32PTR */ 17531 mp = allocb(tcp->tcp_ip_hdr_len + TCP_MAX_HDR_LENGTH + 17532 tcp_wroff_xtra, BPRI_MED); 17533 if (!mp) { 17534 freemsg(mp1); 17535 goto no_memory; 17536 } 17537 mp->b_cont = mp1; 17538 mp1 = mp; 17539 /* Leave room for Link Level header */ 17540 /* hdrlen = tcp->tcp_hdr_len; */ 17541 rptr = &mp1->b_rptr[tcp_wroff_xtra]; 17542 mp1->b_wptr = &rptr[hdrlen]; 17543 } 17544 mp1->b_rptr = rptr; 17545 17546 /* Fill in the timestamp option. */ 17547 if (tcp->tcp_snd_ts_ok) { 17548 U32_TO_BE32((uint32_t)lbolt, 17549 (char *)tcph+TCP_MIN_HEADER_LENGTH+4); 17550 U32_TO_BE32(tcp->tcp_ts_recent, 17551 (char *)tcph+TCP_MIN_HEADER_LENGTH+8); 17552 } else { 17553 ASSERT(tcp->tcp_tcp_hdr_len == TCP_MIN_HEADER_LENGTH); 17554 } 17555 17556 /* copy header into outgoing packet */ 17557 dst = (ipaddr_t *)rptr; 17558 src = (ipaddr_t *)tcp->tcp_iphc; 17559 dst[0] = src[0]; 17560 dst[1] = src[1]; 17561 dst[2] = src[2]; 17562 dst[3] = src[3]; 17563 dst[4] = src[4]; 17564 dst[5] = src[5]; 17565 dst[6] = src[6]; 17566 dst[7] = src[7]; 17567 dst[8] = src[8]; 17568 dst[9] = src[9]; 17569 if (hdrlen -= 40) { 17570 hdrlen >>= 2; 17571 dst += 10; 17572 src += 10; 17573 do { 17574 *dst++ = *src++; 17575 } while (--hdrlen); 17576 } 17577 17578 /* 17579 * Set the ECN info in the TCP header. Note that this 17580 * is not the template header. 17581 */ 17582 if (tcp->tcp_ecn_ok) { 17583 SET_ECT(tcp, rptr); 17584 17585 tcph = (tcph_t *)(rptr + tcp->tcp_ip_hdr_len); 17586 if (tcp->tcp_ecn_echo_on) 17587 tcph->th_flags[0] |= TH_ECE; 17588 if (tcp->tcp_cwr && !tcp->tcp_ecn_cwr_sent) { 17589 tcph->th_flags[0] |= TH_CWR; 17590 tcp->tcp_ecn_cwr_sent = B_TRUE; 17591 } 17592 } 17593 17594 if (tcp->tcp_ip_forward_progress) { 17595 ASSERT(tcp->tcp_ipversion == IPV6_VERSION); 17596 *(uint32_t *)mp1->b_rptr |= IP_FORWARD_PROG; 17597 tcp->tcp_ip_forward_progress = B_FALSE; 17598 } 17599 TCP_RECORD_TRACE(tcp, mp1, TCP_TRACE_SEND_PKT); 17600 tcp_send_data(tcp, tcp->tcp_wq, mp1); 17601 return; 17602 17603 /* 17604 * If we ran out of memory, we pretend to have sent the packet 17605 * and that it was lost on the wire. 17606 */ 17607 no_memory: 17608 return; 17609 17610 slow: 17611 /* leftover work from above */ 17612 tcp->tcp_unsent = len; 17613 tcp->tcp_xmit_tail_unsent = len; 17614 tcp_wput_data(tcp, NULL, B_FALSE); 17615 } 17616 17617 /* 17618 * The function called through squeue to get behind eager's perimeter to 17619 * finish the accept processing. 17620 */ 17621 /* ARGSUSED */ 17622 void 17623 tcp_accept_finish(void *arg, mblk_t *mp, void *arg2) 17624 { 17625 conn_t *connp = (conn_t *)arg; 17626 tcp_t *tcp = connp->conn_tcp; 17627 queue_t *q = tcp->tcp_rq; 17628 mblk_t *mp1; 17629 mblk_t *stropt_mp = mp; 17630 struct stroptions *stropt; 17631 uint_t thwin; 17632 17633 /* 17634 * Drop the eager's ref on the listener, that was placed when 17635 * this eager began life in tcp_conn_request. 17636 */ 17637 CONN_DEC_REF(tcp->tcp_saved_listener->tcp_connp); 17638 17639 if (tcp->tcp_state <= TCPS_BOUND || tcp->tcp_accept_error) { 17640 /* 17641 * Someone blewoff the eager before we could finish 17642 * the accept. 17643 * 17644 * The only reason eager exists it because we put in 17645 * a ref on it when conn ind went up. We need to send 17646 * a disconnect indication up while the last reference 17647 * on the eager will be dropped by the squeue when we 17648 * return. 17649 */ 17650 ASSERT(tcp->tcp_listener == NULL); 17651 if (tcp->tcp_issocket || tcp->tcp_send_discon_ind) { 17652 struct T_discon_ind *tdi; 17653 17654 (void) putnextctl1(q, M_FLUSH, FLUSHRW); 17655 /* 17656 * Let us reuse the incoming mblk to avoid memory 17657 * allocation failure problems. We know that the 17658 * size of the incoming mblk i.e. stroptions is greater 17659 * than sizeof T_discon_ind. So the reallocb below 17660 * can't fail. 17661 */ 17662 freemsg(mp->b_cont); 17663 mp->b_cont = NULL; 17664 ASSERT(DB_REF(mp) == 1); 17665 mp = reallocb(mp, sizeof (struct T_discon_ind), 17666 B_FALSE); 17667 ASSERT(mp != NULL); 17668 DB_TYPE(mp) = M_PROTO; 17669 ((union T_primitives *)mp->b_rptr)->type = T_DISCON_IND; 17670 tdi = (struct T_discon_ind *)mp->b_rptr; 17671 if (tcp->tcp_issocket) { 17672 tdi->DISCON_reason = ECONNREFUSED; 17673 tdi->SEQ_number = 0; 17674 } else { 17675 tdi->DISCON_reason = ENOPROTOOPT; 17676 tdi->SEQ_number = 17677 tcp->tcp_conn_req_seqnum; 17678 } 17679 mp->b_wptr = mp->b_rptr + sizeof (struct T_discon_ind); 17680 putnext(q, mp); 17681 } else { 17682 freemsg(mp); 17683 } 17684 if (tcp->tcp_hard_binding) { 17685 tcp->tcp_hard_binding = B_FALSE; 17686 tcp->tcp_hard_bound = B_TRUE; 17687 } 17688 tcp->tcp_detached = B_FALSE; 17689 return; 17690 } 17691 17692 mp1 = stropt_mp->b_cont; 17693 stropt_mp->b_cont = NULL; 17694 ASSERT(DB_TYPE(stropt_mp) == M_SETOPTS); 17695 stropt = (struct stroptions *)stropt_mp->b_rptr; 17696 17697 while (mp1 != NULL) { 17698 mp = mp1; 17699 mp1 = mp1->b_cont; 17700 mp->b_cont = NULL; 17701 tcp->tcp_drop_opt_ack_cnt++; 17702 CALL_IP_WPUT(connp, tcp->tcp_wq, mp); 17703 } 17704 mp = NULL; 17705 17706 /* 17707 * For a loopback connection with tcp_direct_sockfs on, note that 17708 * we don't have to protect tcp_rcv_list yet because synchronous 17709 * streams has not yet been enabled and tcp_fuse_rrw() cannot 17710 * possibly race with us. 17711 */ 17712 17713 /* 17714 * Set the max window size (tcp_rq->q_hiwat) of the acceptor 17715 * properly. This is the first time we know of the acceptor' 17716 * queue. So we do it here. 17717 */ 17718 if (tcp->tcp_rcv_list == NULL) { 17719 /* 17720 * Recv queue is empty, tcp_rwnd should not have changed. 17721 * That means it should be equal to the listener's tcp_rwnd. 17722 */ 17723 tcp->tcp_rq->q_hiwat = tcp->tcp_rwnd; 17724 } else { 17725 #ifdef DEBUG 17726 uint_t cnt = 0; 17727 17728 mp1 = tcp->tcp_rcv_list; 17729 while ((mp = mp1) != NULL) { 17730 mp1 = mp->b_next; 17731 cnt += msgdsize(mp); 17732 } 17733 ASSERT(cnt != 0 && tcp->tcp_rcv_cnt == cnt); 17734 #endif 17735 /* There is some data, add them back to get the max. */ 17736 tcp->tcp_rq->q_hiwat = tcp->tcp_rwnd + tcp->tcp_rcv_cnt; 17737 } 17738 17739 stropt->so_flags = SO_HIWAT; 17740 stropt->so_hiwat = MAX(q->q_hiwat, tcp_sth_rcv_hiwat); 17741 17742 stropt->so_flags |= SO_MAXBLK; 17743 stropt->so_maxblk = tcp_maxpsz_set(tcp, B_FALSE); 17744 17745 /* 17746 * This is the first time we run on the correct 17747 * queue after tcp_accept. So fix all the q parameters 17748 * here. 17749 */ 17750 /* Allocate room for SACK options if needed. */ 17751 stropt->so_flags |= SO_WROFF; 17752 if (tcp->tcp_fused) { 17753 ASSERT(tcp->tcp_loopback); 17754 ASSERT(tcp->tcp_loopback_peer != NULL); 17755 /* 17756 * For fused tcp loopback, set the stream head's write 17757 * offset value to zero since we won't be needing any room 17758 * for TCP/IP headers. This would also improve performance 17759 * since it would reduce the amount of work done by kmem. 17760 * Non-fused tcp loopback case is handled separately below. 17761 */ 17762 stropt->so_wroff = 0; 17763 /* 17764 * Record the stream head's high water mark for this endpoint; 17765 * this is used for flow-control purposes in tcp_fuse_output(). 17766 */ 17767 stropt->so_hiwat = tcp_fuse_set_rcv_hiwat(tcp, q->q_hiwat); 17768 /* 17769 * Update the peer's transmit parameters according to 17770 * our recently calculated high water mark value. 17771 */ 17772 (void) tcp_maxpsz_set(tcp->tcp_loopback_peer, B_TRUE); 17773 } else if (tcp->tcp_snd_sack_ok) { 17774 stropt->so_wroff = tcp->tcp_hdr_len + TCPOPT_MAX_SACK_LEN + 17775 (tcp->tcp_loopback ? 0 : tcp_wroff_xtra); 17776 } else { 17777 stropt->so_wroff = tcp->tcp_hdr_len + (tcp->tcp_loopback ? 0 : 17778 tcp_wroff_xtra); 17779 } 17780 17781 /* 17782 * If this is endpoint is handling SSL, then reserve extra 17783 * offset and space at the end. 17784 * Also have the stream head allocate SSL3_MAX_RECORD_LEN packets, 17785 * overriding the previous setting. The extra cost of signing and 17786 * encrypting multiple MSS-size records (12 of them with Ethernet), 17787 * instead of a single contiguous one by the stream head 17788 * largely outweighs the statistical reduction of ACKs, when 17789 * applicable. The peer will also save on decyption and verification 17790 * costs. 17791 */ 17792 if (tcp->tcp_kssl_ctx != NULL) { 17793 stropt->so_wroff += SSL3_WROFFSET; 17794 17795 stropt->so_flags |= SO_TAIL; 17796 stropt->so_tail = SSL3_MAX_TAIL_LEN; 17797 17798 stropt->so_maxblk = SSL3_MAX_RECORD_LEN; 17799 } 17800 17801 /* Send the options up */ 17802 putnext(q, stropt_mp); 17803 17804 /* 17805 * Pass up any data and/or a fin that has been received. 17806 * 17807 * Adjust receive window in case it had decreased 17808 * (because there is data <=> tcp_rcv_list != NULL) 17809 * while the connection was detached. Note that 17810 * in case the eager was flow-controlled, w/o this 17811 * code, the rwnd may never open up again! 17812 */ 17813 if (tcp->tcp_rcv_list != NULL) { 17814 /* We drain directly in case of fused tcp loopback */ 17815 if (!tcp->tcp_fused && canputnext(q)) { 17816 tcp->tcp_rwnd = q->q_hiwat; 17817 thwin = ((uint_t)BE16_TO_U16(tcp->tcp_tcph->th_win)) 17818 << tcp->tcp_rcv_ws; 17819 thwin -= tcp->tcp_rnxt - tcp->tcp_rack; 17820 if (tcp->tcp_state >= TCPS_ESTABLISHED && 17821 (q->q_hiwat - thwin >= tcp->tcp_mss)) { 17822 tcp_xmit_ctl(NULL, 17823 tcp, (tcp->tcp_swnd == 0) ? 17824 tcp->tcp_suna : tcp->tcp_snxt, 17825 tcp->tcp_rnxt, TH_ACK); 17826 BUMP_MIB(&tcp_mib, tcpOutWinUpdate); 17827 } 17828 17829 } 17830 (void) tcp_rcv_drain(q, tcp); 17831 17832 /* 17833 * For fused tcp loopback, back-enable peer endpoint 17834 * if it's currently flow-controlled. 17835 */ 17836 if (tcp->tcp_fused && 17837 tcp->tcp_loopback_peer->tcp_flow_stopped) { 17838 tcp_t *peer_tcp = tcp->tcp_loopback_peer; 17839 17840 ASSERT(peer_tcp != NULL); 17841 ASSERT(peer_tcp->tcp_fused); 17842 17843 tcp_clrqfull(peer_tcp); 17844 TCP_STAT(tcp_fusion_backenabled); 17845 } 17846 } 17847 ASSERT(tcp->tcp_rcv_list == NULL || tcp->tcp_fused_sigurg); 17848 if (tcp->tcp_fin_rcvd && !tcp->tcp_ordrel_done) { 17849 mp = mi_tpi_ordrel_ind(); 17850 if (mp) { 17851 tcp->tcp_ordrel_done = B_TRUE; 17852 putnext(q, mp); 17853 if (tcp->tcp_deferred_clean_death) { 17854 /* 17855 * tcp_clean_death was deferred 17856 * for T_ORDREL_IND - do it now 17857 */ 17858 (void) tcp_clean_death(tcp, 17859 tcp->tcp_client_errno, 21); 17860 tcp->tcp_deferred_clean_death = B_FALSE; 17861 } 17862 } else { 17863 /* 17864 * Run the orderly release in the 17865 * service routine. 17866 */ 17867 qenable(q); 17868 } 17869 } 17870 if (tcp->tcp_hard_binding) { 17871 tcp->tcp_hard_binding = B_FALSE; 17872 tcp->tcp_hard_bound = B_TRUE; 17873 } 17874 17875 tcp->tcp_detached = B_FALSE; 17876 17877 /* We can enable synchronous streams now */ 17878 if (tcp->tcp_fused) { 17879 tcp_fuse_syncstr_enable_pair(tcp); 17880 } 17881 17882 if (tcp->tcp_ka_enabled) { 17883 tcp->tcp_ka_last_intrvl = 0; 17884 tcp->tcp_ka_tid = TCP_TIMER(tcp, tcp_keepalive_killer, 17885 MSEC_TO_TICK(tcp->tcp_ka_interval)); 17886 } 17887 17888 /* 17889 * At this point, eager is fully established and will 17890 * have the following references - 17891 * 17892 * 2 references for connection to exist (1 for TCP and 1 for IP). 17893 * 1 reference for the squeue which will be dropped by the squeue as 17894 * soon as this function returns. 17895 * There will be 1 additonal reference for being in classifier 17896 * hash list provided something bad hasn't happened. 17897 */ 17898 ASSERT((connp->conn_fanout != NULL && connp->conn_ref >= 4) || 17899 (connp->conn_fanout == NULL && connp->conn_ref >= 3)); 17900 } 17901 17902 /* 17903 * The function called through squeue to get behind listener's perimeter to 17904 * send a deffered conn_ind. 17905 */ 17906 /* ARGSUSED */ 17907 void 17908 tcp_send_pending(void *arg, mblk_t *mp, void *arg2) 17909 { 17910 conn_t *connp = (conn_t *)arg; 17911 tcp_t *listener = connp->conn_tcp; 17912 17913 if (listener->tcp_state == TCPS_CLOSED || 17914 TCP_IS_DETACHED(listener)) { 17915 /* 17916 * If listener has closed, it would have caused a 17917 * a cleanup/blowoff to happen for the eager. 17918 */ 17919 tcp_t *tcp; 17920 struct T_conn_ind *conn_ind; 17921 17922 conn_ind = (struct T_conn_ind *)mp->b_rptr; 17923 bcopy(mp->b_rptr + conn_ind->OPT_offset, &tcp, 17924 conn_ind->OPT_length); 17925 /* 17926 * We need to drop the ref on eager that was put 17927 * tcp_rput_data() before trying to send the conn_ind 17928 * to listener. The conn_ind was deferred in tcp_send_conn_ind 17929 * and tcp_wput_accept() is sending this deferred conn_ind but 17930 * listener is closed so we drop the ref. 17931 */ 17932 CONN_DEC_REF(tcp->tcp_connp); 17933 freemsg(mp); 17934 return; 17935 } 17936 putnext(listener->tcp_rq, mp); 17937 } 17938 17939 17940 /* 17941 * This is the STREAMS entry point for T_CONN_RES coming down on 17942 * Acceptor STREAM when sockfs listener does accept processing. 17943 * Read the block comment on top pf tcp_conn_request(). 17944 */ 17945 void 17946 tcp_wput_accept(queue_t *q, mblk_t *mp) 17947 { 17948 queue_t *rq = RD(q); 17949 struct T_conn_res *conn_res; 17950 tcp_t *eager; 17951 tcp_t *listener; 17952 struct T_ok_ack *ok; 17953 t_scalar_t PRIM_type; 17954 mblk_t *opt_mp; 17955 conn_t *econnp; 17956 17957 ASSERT(DB_TYPE(mp) == M_PROTO); 17958 17959 conn_res = (struct T_conn_res *)mp->b_rptr; 17960 ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= (uintptr_t)INT_MAX); 17961 if ((mp->b_wptr - mp->b_rptr) < sizeof (struct T_conn_res)) { 17962 mp = mi_tpi_err_ack_alloc(mp, TPROTO, 0); 17963 if (mp != NULL) 17964 putnext(rq, mp); 17965 return; 17966 } 17967 switch (conn_res->PRIM_type) { 17968 case O_T_CONN_RES: 17969 case T_CONN_RES: 17970 /* 17971 * We pass up an err ack if allocb fails. This will 17972 * cause sockfs to issue a T_DISCON_REQ which will cause 17973 * tcp_eager_blowoff to be called. sockfs will then call 17974 * rq->q_qinfo->qi_qclose to cleanup the acceptor stream. 17975 * we need to do the allocb up here because we have to 17976 * make sure rq->q_qinfo->qi_qclose still points to the 17977 * correct function (tcpclose_accept) in case allocb 17978 * fails. 17979 */ 17980 opt_mp = allocb(sizeof (struct stroptions), BPRI_HI); 17981 if (opt_mp == NULL) { 17982 mp = mi_tpi_err_ack_alloc(mp, TPROTO, 0); 17983 if (mp != NULL) 17984 putnext(rq, mp); 17985 return; 17986 } 17987 17988 bcopy(mp->b_rptr + conn_res->OPT_offset, 17989 &eager, conn_res->OPT_length); 17990 PRIM_type = conn_res->PRIM_type; 17991 mp->b_datap->db_type = M_PCPROTO; 17992 mp->b_wptr = mp->b_rptr + sizeof (struct T_ok_ack); 17993 ok = (struct T_ok_ack *)mp->b_rptr; 17994 ok->PRIM_type = T_OK_ACK; 17995 ok->CORRECT_prim = PRIM_type; 17996 econnp = eager->tcp_connp; 17997 econnp->conn_dev = (dev_t)q->q_ptr; 17998 eager->tcp_rq = rq; 17999 eager->tcp_wq = q; 18000 rq->q_ptr = econnp; 18001 rq->q_qinfo = &tcp_rinit; 18002 q->q_ptr = econnp; 18003 q->q_qinfo = &tcp_winit; 18004 listener = eager->tcp_listener; 18005 eager->tcp_issocket = B_TRUE; 18006 18007 econnp->conn_zoneid = listener->tcp_connp->conn_zoneid; 18008 econnp->conn_allzones = listener->tcp_connp->conn_allzones; 18009 18010 /* Put the ref for IP */ 18011 CONN_INC_REF(econnp); 18012 18013 /* 18014 * We should have minimum of 3 references on the conn 18015 * at this point. One each for TCP and IP and one for 18016 * the T_conn_ind that was sent up when the 3-way handshake 18017 * completed. In the normal case we would also have another 18018 * reference (making a total of 4) for the conn being in the 18019 * classifier hash list. However the eager could have received 18020 * an RST subsequently and tcp_closei_local could have removed 18021 * the eager from the classifier hash list, hence we can't 18022 * assert that reference. 18023 */ 18024 ASSERT(econnp->conn_ref >= 3); 18025 18026 /* 18027 * Send the new local address also up to sockfs. There 18028 * should already be enough space in the mp that came 18029 * down from soaccept(). 18030 */ 18031 if (eager->tcp_family == AF_INET) { 18032 sin_t *sin; 18033 18034 ASSERT((mp->b_datap->db_lim - mp->b_datap->db_base) >= 18035 (sizeof (struct T_ok_ack) + sizeof (sin_t))); 18036 sin = (sin_t *)mp->b_wptr; 18037 mp->b_wptr += sizeof (sin_t); 18038 sin->sin_family = AF_INET; 18039 sin->sin_port = eager->tcp_lport; 18040 sin->sin_addr.s_addr = eager->tcp_ipha->ipha_src; 18041 } else { 18042 sin6_t *sin6; 18043 18044 ASSERT((mp->b_datap->db_lim - mp->b_datap->db_base) >= 18045 sizeof (struct T_ok_ack) + sizeof (sin6_t)); 18046 sin6 = (sin6_t *)mp->b_wptr; 18047 mp->b_wptr += sizeof (sin6_t); 18048 sin6->sin6_family = AF_INET6; 18049 sin6->sin6_port = eager->tcp_lport; 18050 if (eager->tcp_ipversion == IPV4_VERSION) { 18051 sin6->sin6_flowinfo = 0; 18052 IN6_IPADDR_TO_V4MAPPED( 18053 eager->tcp_ipha->ipha_src, 18054 &sin6->sin6_addr); 18055 } else { 18056 ASSERT(eager->tcp_ip6h != NULL); 18057 sin6->sin6_flowinfo = 18058 eager->tcp_ip6h->ip6_vcf & 18059 ~IPV6_VERS_AND_FLOW_MASK; 18060 sin6->sin6_addr = eager->tcp_ip6h->ip6_src; 18061 } 18062 sin6->sin6_scope_id = 0; 18063 sin6->__sin6_src_id = 0; 18064 } 18065 18066 putnext(rq, mp); 18067 18068 opt_mp->b_datap->db_type = M_SETOPTS; 18069 opt_mp->b_wptr += sizeof (struct stroptions); 18070 18071 /* 18072 * Prepare for inheriting IPV6_BOUND_IF and IPV6_RECVPKTINFO 18073 * from listener to acceptor. The message is chained on the 18074 * bind_mp which tcp_rput_other will send down to IP. 18075 */ 18076 if (listener->tcp_bound_if != 0) { 18077 /* allocate optmgmt req */ 18078 mp = tcp_setsockopt_mp(IPPROTO_IPV6, 18079 IPV6_BOUND_IF, (char *)&listener->tcp_bound_if, 18080 sizeof (int)); 18081 if (mp != NULL) 18082 linkb(opt_mp, mp); 18083 } 18084 if (listener->tcp_ipv6_recvancillary & TCP_IPV6_RECVPKTINFO) { 18085 uint_t on = 1; 18086 18087 /* allocate optmgmt req */ 18088 mp = tcp_setsockopt_mp(IPPROTO_IPV6, 18089 IPV6_RECVPKTINFO, (char *)&on, sizeof (on)); 18090 if (mp != NULL) 18091 linkb(opt_mp, mp); 18092 } 18093 18094 18095 mutex_enter(&listener->tcp_eager_lock); 18096 18097 if (listener->tcp_eager_prev_q0->tcp_conn_def_q0) { 18098 18099 tcp_t *tail; 18100 tcp_t *tcp; 18101 mblk_t *mp1; 18102 18103 tcp = listener->tcp_eager_prev_q0; 18104 /* 18105 * listener->tcp_eager_prev_q0 points to the TAIL of the 18106 * deferred T_conn_ind queue. We need to get to the head 18107 * of the queue in order to send up T_conn_ind the same 18108 * order as how the 3WHS is completed. 18109 */ 18110 while (tcp != listener) { 18111 if (!tcp->tcp_eager_prev_q0->tcp_conn_def_q0 && 18112 !tcp->tcp_kssl_pending) 18113 break; 18114 else 18115 tcp = tcp->tcp_eager_prev_q0; 18116 } 18117 /* None of the pending eagers can be sent up now */ 18118 if (tcp == listener) 18119 goto no_more_eagers; 18120 18121 mp1 = tcp->tcp_conn.tcp_eager_conn_ind; 18122 tcp->tcp_conn.tcp_eager_conn_ind = NULL; 18123 /* Move from q0 to q */ 18124 ASSERT(listener->tcp_conn_req_cnt_q0 > 0); 18125 listener->tcp_conn_req_cnt_q0--; 18126 listener->tcp_conn_req_cnt_q++; 18127 tcp->tcp_eager_next_q0->tcp_eager_prev_q0 = 18128 tcp->tcp_eager_prev_q0; 18129 tcp->tcp_eager_prev_q0->tcp_eager_next_q0 = 18130 tcp->tcp_eager_next_q0; 18131 tcp->tcp_eager_prev_q0 = NULL; 18132 tcp->tcp_eager_next_q0 = NULL; 18133 tcp->tcp_conn_def_q0 = B_FALSE; 18134 18135 /* Make sure the tcp isn't in the list of droppables */ 18136 ASSERT(tcp->tcp_eager_next_drop_q0 == NULL && 18137 tcp->tcp_eager_prev_drop_q0 == NULL); 18138 18139 /* 18140 * Insert at end of the queue because sockfs sends 18141 * down T_CONN_RES in chronological order. Leaving 18142 * the older conn indications at front of the queue 18143 * helps reducing search time. 18144 */ 18145 tail = listener->tcp_eager_last_q; 18146 if (tail != NULL) { 18147 tail->tcp_eager_next_q = tcp; 18148 } else { 18149 listener->tcp_eager_next_q = tcp; 18150 } 18151 listener->tcp_eager_last_q = tcp; 18152 tcp->tcp_eager_next_q = NULL; 18153 18154 /* Need to get inside the listener perimeter */ 18155 CONN_INC_REF(listener->tcp_connp); 18156 squeue_fill(listener->tcp_connp->conn_sqp, mp1, 18157 tcp_send_pending, listener->tcp_connp, 18158 SQTAG_TCP_SEND_PENDING); 18159 } 18160 no_more_eagers: 18161 tcp_eager_unlink(eager); 18162 mutex_exit(&listener->tcp_eager_lock); 18163 18164 /* 18165 * At this point, the eager is detached from the listener 18166 * but we still have an extra refs on eager (apart from the 18167 * usual tcp references). The ref was placed in tcp_rput_data 18168 * before sending the conn_ind in tcp_send_conn_ind. 18169 * The ref will be dropped in tcp_accept_finish(). 18170 */ 18171 squeue_enter_nodrain(econnp->conn_sqp, opt_mp, 18172 tcp_accept_finish, econnp, SQTAG_TCP_ACCEPT_FINISH_Q0); 18173 return; 18174 default: 18175 mp = mi_tpi_err_ack_alloc(mp, TNOTSUPPORT, 0); 18176 if (mp != NULL) 18177 putnext(rq, mp); 18178 return; 18179 } 18180 } 18181 18182 void 18183 tcp_wput(queue_t *q, mblk_t *mp) 18184 { 18185 conn_t *connp = Q_TO_CONN(q); 18186 tcp_t *tcp; 18187 void (*output_proc)(); 18188 t_scalar_t type; 18189 uchar_t *rptr; 18190 struct iocblk *iocp; 18191 uint32_t msize; 18192 18193 ASSERT(connp->conn_ref >= 2); 18194 18195 switch (DB_TYPE(mp)) { 18196 case M_DATA: 18197 tcp = connp->conn_tcp; 18198 ASSERT(tcp != NULL); 18199 18200 msize = msgdsize(mp); 18201 18202 mutex_enter(&connp->conn_lock); 18203 CONN_INC_REF_LOCKED(connp); 18204 18205 tcp->tcp_squeue_bytes += msize; 18206 if (TCP_UNSENT_BYTES(tcp) > tcp->tcp_xmit_hiwater) { 18207 mutex_exit(&connp->conn_lock); 18208 tcp_setqfull(tcp); 18209 } else 18210 mutex_exit(&connp->conn_lock); 18211 18212 (*tcp_squeue_wput_proc)(connp->conn_sqp, mp, 18213 tcp_output, connp, SQTAG_TCP_OUTPUT); 18214 return; 18215 case M_PROTO: 18216 case M_PCPROTO: 18217 /* 18218 * if it is a snmp message, don't get behind the squeue 18219 */ 18220 tcp = connp->conn_tcp; 18221 rptr = mp->b_rptr; 18222 if ((mp->b_wptr - rptr) >= sizeof (t_scalar_t)) { 18223 type = ((union T_primitives *)rptr)->type; 18224 } else { 18225 if (tcp->tcp_debug) { 18226 (void) strlog(TCP_MOD_ID, 0, 1, 18227 SL_ERROR|SL_TRACE, 18228 "tcp_wput_proto, dropping one..."); 18229 } 18230 freemsg(mp); 18231 return; 18232 } 18233 if (type == T_SVR4_OPTMGMT_REQ) { 18234 cred_t *cr = DB_CREDDEF(mp, tcp->tcp_cred); 18235 if (snmpcom_req(q, mp, tcp_snmp_set, tcp_snmp_get, 18236 cr)) { 18237 /* 18238 * This was a SNMP request 18239 */ 18240 return; 18241 } else { 18242 output_proc = tcp_wput_proto; 18243 } 18244 } else { 18245 output_proc = tcp_wput_proto; 18246 } 18247 break; 18248 case M_IOCTL: 18249 /* 18250 * Most ioctls can be processed right away without going via 18251 * squeues - process them right here. Those that do require 18252 * squeue (currently TCP_IOC_DEFAULT_Q and _SIOCSOCKFALLBACK) 18253 * are processed by tcp_wput_ioctl(). 18254 */ 18255 iocp = (struct iocblk *)mp->b_rptr; 18256 tcp = connp->conn_tcp; 18257 18258 switch (iocp->ioc_cmd) { 18259 case TCP_IOC_ABORT_CONN: 18260 tcp_ioctl_abort_conn(q, mp); 18261 return; 18262 case TI_GETPEERNAME: 18263 if (tcp->tcp_state < TCPS_SYN_RCVD) { 18264 iocp->ioc_error = ENOTCONN; 18265 iocp->ioc_count = 0; 18266 mp->b_datap->db_type = M_IOCACK; 18267 qreply(q, mp); 18268 return; 18269 } 18270 /* FALLTHRU */ 18271 case TI_GETMYNAME: 18272 mi_copyin(q, mp, NULL, 18273 SIZEOF_STRUCT(strbuf, iocp->ioc_flag)); 18274 return; 18275 case ND_SET: 18276 /* nd_getset does the necessary checks */ 18277 case ND_GET: 18278 if (!nd_getset(q, tcp_g_nd, mp)) { 18279 CALL_IP_WPUT(connp, q, mp); 18280 return; 18281 } 18282 qreply(q, mp); 18283 return; 18284 case TCP_IOC_DEFAULT_Q: 18285 /* 18286 * Wants to be the default wq. Check the credentials 18287 * first, the rest is executed via squeue. 18288 */ 18289 if (secpolicy_net_config(iocp->ioc_cr, B_FALSE) != 0) { 18290 iocp->ioc_error = EPERM; 18291 iocp->ioc_count = 0; 18292 mp->b_datap->db_type = M_IOCACK; 18293 qreply(q, mp); 18294 return; 18295 } 18296 output_proc = tcp_wput_ioctl; 18297 break; 18298 default: 18299 output_proc = tcp_wput_ioctl; 18300 break; 18301 } 18302 break; 18303 default: 18304 output_proc = tcp_wput_nondata; 18305 break; 18306 } 18307 18308 CONN_INC_REF(connp); 18309 (*tcp_squeue_wput_proc)(connp->conn_sqp, mp, 18310 output_proc, connp, SQTAG_TCP_WPUT_OTHER); 18311 } 18312 18313 /* 18314 * Initial STREAMS write side put() procedure for sockets. It tries to 18315 * handle the T_CAPABILITY_REQ which sockfs sends down while setting 18316 * up the socket without using the squeue. Non T_CAPABILITY_REQ messages 18317 * are handled by tcp_wput() as usual. 18318 * 18319 * All further messages will also be handled by tcp_wput() because we cannot 18320 * be sure that the above short cut is safe later. 18321 */ 18322 static void 18323 tcp_wput_sock(queue_t *wq, mblk_t *mp) 18324 { 18325 conn_t *connp = Q_TO_CONN(wq); 18326 tcp_t *tcp = connp->conn_tcp; 18327 struct T_capability_req *car = (struct T_capability_req *)mp->b_rptr; 18328 18329 ASSERT(wq->q_qinfo == &tcp_sock_winit); 18330 wq->q_qinfo = &tcp_winit; 18331 18332 ASSERT(IPCL_IS_TCP(connp)); 18333 ASSERT(TCP_IS_SOCKET(tcp)); 18334 18335 if (DB_TYPE(mp) == M_PCPROTO && 18336 MBLKL(mp) == sizeof (struct T_capability_req) && 18337 car->PRIM_type == T_CAPABILITY_REQ) { 18338 tcp_capability_req(tcp, mp); 18339 return; 18340 } 18341 18342 tcp_wput(wq, mp); 18343 } 18344 18345 static boolean_t 18346 tcp_zcopy_check(tcp_t *tcp) 18347 { 18348 conn_t *connp = tcp->tcp_connp; 18349 ire_t *ire; 18350 boolean_t zc_enabled = B_FALSE; 18351 18352 if (do_tcpzcopy == 2) 18353 zc_enabled = B_TRUE; 18354 else if (tcp->tcp_ipversion == IPV4_VERSION && 18355 IPCL_IS_CONNECTED(connp) && 18356 (connp->conn_flags & IPCL_CHECK_POLICY) == 0 && 18357 connp->conn_dontroute == 0 && 18358 !connp->conn_nexthop_set && 18359 connp->conn_xmit_if_ill == NULL && 18360 connp->conn_nofailover_ill == NULL && 18361 do_tcpzcopy == 1) { 18362 /* 18363 * the checks above closely resemble the fast path checks 18364 * in tcp_send_data(). 18365 */ 18366 mutex_enter(&connp->conn_lock); 18367 ire = connp->conn_ire_cache; 18368 ASSERT(!(connp->conn_state_flags & CONN_INCIPIENT)); 18369 if (ire != NULL && !(ire->ire_marks & IRE_MARK_CONDEMNED)) { 18370 IRE_REFHOLD(ire); 18371 if (ire->ire_stq != NULL) { 18372 ill_t *ill = (ill_t *)ire->ire_stq->q_ptr; 18373 18374 zc_enabled = ill && (ill->ill_capabilities & 18375 ILL_CAPAB_ZEROCOPY) && 18376 (ill->ill_zerocopy_capab-> 18377 ill_zerocopy_flags != 0); 18378 } 18379 IRE_REFRELE(ire); 18380 } 18381 mutex_exit(&connp->conn_lock); 18382 } 18383 tcp->tcp_snd_zcopy_on = zc_enabled; 18384 if (!TCP_IS_DETACHED(tcp)) { 18385 if (zc_enabled) { 18386 (void) mi_set_sth_copyopt(tcp->tcp_rq, ZCVMSAFE); 18387 TCP_STAT(tcp_zcopy_on); 18388 } else { 18389 (void) mi_set_sth_copyopt(tcp->tcp_rq, ZCVMUNSAFE); 18390 TCP_STAT(tcp_zcopy_off); 18391 } 18392 } 18393 return (zc_enabled); 18394 } 18395 18396 static mblk_t * 18397 tcp_zcopy_disable(tcp_t *tcp, mblk_t *bp) 18398 { 18399 if (do_tcpzcopy == 2) 18400 return (bp); 18401 else if (tcp->tcp_snd_zcopy_on) { 18402 tcp->tcp_snd_zcopy_on = B_FALSE; 18403 if (!TCP_IS_DETACHED(tcp)) { 18404 (void) mi_set_sth_copyopt(tcp->tcp_rq, ZCVMUNSAFE); 18405 TCP_STAT(tcp_zcopy_disable); 18406 } 18407 } 18408 return (tcp_zcopy_backoff(tcp, bp, 0)); 18409 } 18410 18411 /* 18412 * Backoff from a zero-copy mblk by copying data to a new mblk and freeing 18413 * the original desballoca'ed segmapped mblk. 18414 */ 18415 static mblk_t * 18416 tcp_zcopy_backoff(tcp_t *tcp, mblk_t *bp, int fix_xmitlist) 18417 { 18418 mblk_t *head, *tail, *nbp; 18419 if (IS_VMLOANED_MBLK(bp)) { 18420 TCP_STAT(tcp_zcopy_backoff); 18421 if ((head = copyb(bp)) == NULL) { 18422 /* fail to backoff; leave it for the next backoff */ 18423 tcp->tcp_xmit_zc_clean = B_FALSE; 18424 return (bp); 18425 } 18426 if (bp->b_datap->db_struioflag & STRUIO_ZCNOTIFY) { 18427 if (fix_xmitlist) 18428 tcp_zcopy_notify(tcp); 18429 else 18430 head->b_datap->db_struioflag |= STRUIO_ZCNOTIFY; 18431 } 18432 nbp = bp->b_cont; 18433 if (fix_xmitlist) { 18434 head->b_prev = bp->b_prev; 18435 head->b_next = bp->b_next; 18436 if (tcp->tcp_xmit_tail == bp) 18437 tcp->tcp_xmit_tail = head; 18438 } 18439 bp->b_next = NULL; 18440 bp->b_prev = NULL; 18441 freeb(bp); 18442 } else { 18443 head = bp; 18444 nbp = bp->b_cont; 18445 } 18446 tail = head; 18447 while (nbp) { 18448 if (IS_VMLOANED_MBLK(nbp)) { 18449 TCP_STAT(tcp_zcopy_backoff); 18450 if ((tail->b_cont = copyb(nbp)) == NULL) { 18451 tcp->tcp_xmit_zc_clean = B_FALSE; 18452 tail->b_cont = nbp; 18453 return (head); 18454 } 18455 tail = tail->b_cont; 18456 if (nbp->b_datap->db_struioflag & STRUIO_ZCNOTIFY) { 18457 if (fix_xmitlist) 18458 tcp_zcopy_notify(tcp); 18459 else 18460 tail->b_datap->db_struioflag |= 18461 STRUIO_ZCNOTIFY; 18462 } 18463 bp = nbp; 18464 nbp = nbp->b_cont; 18465 if (fix_xmitlist) { 18466 tail->b_prev = bp->b_prev; 18467 tail->b_next = bp->b_next; 18468 if (tcp->tcp_xmit_tail == bp) 18469 tcp->tcp_xmit_tail = tail; 18470 } 18471 bp->b_next = NULL; 18472 bp->b_prev = NULL; 18473 freeb(bp); 18474 } else { 18475 tail->b_cont = nbp; 18476 tail = nbp; 18477 nbp = nbp->b_cont; 18478 } 18479 } 18480 if (fix_xmitlist) { 18481 tcp->tcp_xmit_last = tail; 18482 tcp->tcp_xmit_zc_clean = B_TRUE; 18483 } 18484 return (head); 18485 } 18486 18487 static void 18488 tcp_zcopy_notify(tcp_t *tcp) 18489 { 18490 struct stdata *stp; 18491 18492 if (tcp->tcp_detached) 18493 return; 18494 stp = STREAM(tcp->tcp_rq); 18495 mutex_enter(&stp->sd_lock); 18496 stp->sd_flag |= STZCNOTIFY; 18497 cv_broadcast(&stp->sd_zcopy_wait); 18498 mutex_exit(&stp->sd_lock); 18499 } 18500 18501 static boolean_t 18502 tcp_send_find_ire(tcp_t *tcp, ipaddr_t *dst, ire_t **irep) 18503 { 18504 ire_t *ire; 18505 conn_t *connp = tcp->tcp_connp; 18506 18507 18508 mutex_enter(&connp->conn_lock); 18509 ire = connp->conn_ire_cache; 18510 ASSERT(!(connp->conn_state_flags & CONN_INCIPIENT)); 18511 18512 if ((ire != NULL) && 18513 (((dst != NULL) && (ire->ire_addr == *dst)) || ((dst == NULL) && 18514 IN6_ARE_ADDR_EQUAL(&ire->ire_addr_v6, &tcp->tcp_ip6h->ip6_dst))) && 18515 !(ire->ire_marks & IRE_MARK_CONDEMNED)) { 18516 IRE_REFHOLD(ire); 18517 mutex_exit(&connp->conn_lock); 18518 } else { 18519 boolean_t cached = B_FALSE; 18520 ts_label_t *tsl; 18521 18522 /* force a recheck later on */ 18523 tcp->tcp_ire_ill_check_done = B_FALSE; 18524 18525 TCP_DBGSTAT(tcp_ire_null1); 18526 connp->conn_ire_cache = NULL; 18527 mutex_exit(&connp->conn_lock); 18528 18529 if (ire != NULL) 18530 IRE_REFRELE_NOTR(ire); 18531 18532 tsl = crgetlabel(CONN_CRED(connp)); 18533 ire = (dst ? ire_cache_lookup(*dst, connp->conn_zoneid, tsl) : 18534 ire_cache_lookup_v6(&tcp->tcp_ip6h->ip6_dst, 18535 connp->conn_zoneid, tsl)); 18536 18537 if (ire == NULL) { 18538 TCP_STAT(tcp_ire_null); 18539 return (B_FALSE); 18540 } 18541 18542 IRE_REFHOLD_NOTR(ire); 18543 /* 18544 * Since we are inside the squeue, there cannot be another 18545 * thread in TCP trying to set the conn_ire_cache now. The 18546 * check for IRE_MARK_CONDEMNED ensures that an interface 18547 * unplumb thread has not yet started cleaning up the conns. 18548 * Hence we don't need to grab the conn lock. 18549 */ 18550 if (!(connp->conn_state_flags & CONN_CLOSING)) { 18551 rw_enter(&ire->ire_bucket->irb_lock, RW_READER); 18552 if (!(ire->ire_marks & IRE_MARK_CONDEMNED)) { 18553 connp->conn_ire_cache = ire; 18554 cached = B_TRUE; 18555 } 18556 rw_exit(&ire->ire_bucket->irb_lock); 18557 } 18558 18559 /* 18560 * We can continue to use the ire but since it was 18561 * not cached, we should drop the extra reference. 18562 */ 18563 if (!cached) 18564 IRE_REFRELE_NOTR(ire); 18565 18566 /* 18567 * Rampart note: no need to select a new label here, since 18568 * labels are not allowed to change during the life of a TCP 18569 * connection. 18570 */ 18571 } 18572 18573 *irep = ire; 18574 18575 return (B_TRUE); 18576 } 18577 18578 /* 18579 * Called from tcp_send() or tcp_send_data() to find workable IRE. 18580 * 18581 * 0 = success; 18582 * 1 = failed to find ire and ill. 18583 */ 18584 static boolean_t 18585 tcp_send_find_ire_ill(tcp_t *tcp, mblk_t *mp, ire_t **irep, ill_t **illp) 18586 { 18587 ipha_t *ipha; 18588 ipaddr_t dst; 18589 ire_t *ire; 18590 ill_t *ill; 18591 conn_t *connp = tcp->tcp_connp; 18592 mblk_t *ire_fp_mp; 18593 18594 if (mp != NULL) 18595 ipha = (ipha_t *)mp->b_rptr; 18596 else 18597 ipha = tcp->tcp_ipha; 18598 dst = ipha->ipha_dst; 18599 18600 if (!tcp_send_find_ire(tcp, &dst, &ire)) 18601 return (B_FALSE); 18602 18603 if ((ire->ire_flags & RTF_MULTIRT) || 18604 (ire->ire_stq == NULL) || 18605 (ire->ire_nce == NULL) || 18606 ((ire_fp_mp = ire->ire_nce->nce_fp_mp) == NULL) || 18607 ((mp != NULL) && (ire->ire_max_frag < ntohs(ipha->ipha_length) || 18608 MBLKL(ire_fp_mp) > MBLKHEAD(mp)))) { 18609 TCP_STAT(tcp_ip_ire_send); 18610 IRE_REFRELE(ire); 18611 return (B_FALSE); 18612 } 18613 18614 ill = ire_to_ill(ire); 18615 if (connp->conn_outgoing_ill != NULL) { 18616 ill_t *conn_outgoing_ill = NULL; 18617 /* 18618 * Choose a good ill in the group to send the packets on. 18619 */ 18620 ire = conn_set_outgoing_ill(connp, ire, &conn_outgoing_ill); 18621 ill = ire_to_ill(ire); 18622 } 18623 ASSERT(ill != NULL); 18624 18625 if (!tcp->tcp_ire_ill_check_done) { 18626 tcp_ire_ill_check(tcp, ire, ill, B_TRUE); 18627 tcp->tcp_ire_ill_check_done = B_TRUE; 18628 } 18629 18630 *irep = ire; 18631 *illp = ill; 18632 18633 return (B_TRUE); 18634 } 18635 18636 static void 18637 tcp_send_data(tcp_t *tcp, queue_t *q, mblk_t *mp) 18638 { 18639 ipha_t *ipha; 18640 ipaddr_t src; 18641 ipaddr_t dst; 18642 uint32_t cksum; 18643 ire_t *ire; 18644 uint16_t *up; 18645 ill_t *ill; 18646 conn_t *connp = tcp->tcp_connp; 18647 uint32_t hcksum_txflags = 0; 18648 mblk_t *ire_fp_mp; 18649 uint_t ire_fp_mp_len; 18650 18651 ASSERT(DB_TYPE(mp) == M_DATA); 18652 18653 if (DB_CRED(mp) == NULL) 18654 mblk_setcred(mp, CONN_CRED(connp)); 18655 18656 ipha = (ipha_t *)mp->b_rptr; 18657 src = ipha->ipha_src; 18658 dst = ipha->ipha_dst; 18659 18660 /* 18661 * Drop off fast path for IPv6 and also if options are present or 18662 * we need to resolve a TS label. 18663 */ 18664 if (tcp->tcp_ipversion != IPV4_VERSION || 18665 !IPCL_IS_CONNECTED(connp) || 18666 !CONN_IS_LSO_MD_FASTPATH(connp) || 18667 (connp->conn_flags & IPCL_CHECK_POLICY) != 0 || 18668 !connp->conn_ulp_labeled || 18669 ipha->ipha_ident == IP_HDR_INCLUDED || 18670 ipha->ipha_version_and_hdr_length != IP_SIMPLE_HDR_VERSION || 18671 IPP_ENABLED(IPP_LOCAL_OUT)) { 18672 if (tcp->tcp_snd_zcopy_aware) 18673 mp = tcp_zcopy_disable(tcp, mp); 18674 TCP_STAT(tcp_ip_send); 18675 CALL_IP_WPUT(connp, q, mp); 18676 return; 18677 } 18678 18679 if (!tcp_send_find_ire_ill(tcp, mp, &ire, &ill)) { 18680 if (tcp->tcp_snd_zcopy_aware) 18681 mp = tcp_zcopy_backoff(tcp, mp, 0); 18682 CALL_IP_WPUT(connp, q, mp); 18683 return; 18684 } 18685 ire_fp_mp = ire->ire_nce->nce_fp_mp; 18686 ire_fp_mp_len = MBLKL(ire_fp_mp); 18687 18688 ASSERT(ipha->ipha_ident == 0 || ipha->ipha_ident == IP_HDR_INCLUDED); 18689 ipha->ipha_ident = (uint16_t)atomic_add_32_nv(&ire->ire_ident, 1); 18690 #ifndef _BIG_ENDIAN 18691 ipha->ipha_ident = (ipha->ipha_ident << 8) | (ipha->ipha_ident >> 8); 18692 #endif 18693 18694 /* 18695 * Check to see if we need to re-enable LSO/MDT for this connection 18696 * because it was previously disabled due to changes in the ill; 18697 * note that by doing it here, this re-enabling only applies when 18698 * the packet is not dispatched through CALL_IP_WPUT(). 18699 * 18700 * That means for IPv4, it is worth re-enabling LSO/MDT for the fastpath 18701 * case, since that's how we ended up here. For IPv6, we do the 18702 * re-enabling work in ip_xmit_v6(), albeit indirectly via squeue. 18703 */ 18704 if (connp->conn_lso_ok && !tcp->tcp_lso && ILL_LSO_TCP_USABLE(ill)) { 18705 /* 18706 * Restore LSO for this connection, so that next time around 18707 * it is eligible to go through tcp_lsosend() path again. 18708 */ 18709 TCP_STAT(tcp_lso_enabled); 18710 tcp->tcp_lso = B_TRUE; 18711 ip1dbg(("tcp_send_data: reenabling LSO for connp %p on " 18712 "interface %s\n", (void *)connp, ill->ill_name)); 18713 } else if (connp->conn_mdt_ok && !tcp->tcp_mdt && ILL_MDT_USABLE(ill)) { 18714 /* 18715 * Restore MDT for this connection, so that next time around 18716 * it is eligible to go through tcp_multisend() path again. 18717 */ 18718 TCP_STAT(tcp_mdt_conn_resumed1); 18719 tcp->tcp_mdt = B_TRUE; 18720 ip1dbg(("tcp_send_data: reenabling MDT for connp %p on " 18721 "interface %s\n", (void *)connp, ill->ill_name)); 18722 } 18723 18724 if (tcp->tcp_snd_zcopy_aware) { 18725 if ((ill->ill_capabilities & ILL_CAPAB_ZEROCOPY) == 0 || 18726 (ill->ill_zerocopy_capab->ill_zerocopy_flags == 0)) 18727 mp = tcp_zcopy_disable(tcp, mp); 18728 /* 18729 * we shouldn't need to reset ipha as the mp containing 18730 * ipha should never be a zero-copy mp. 18731 */ 18732 } 18733 18734 if (ILL_HCKSUM_CAPABLE(ill) && dohwcksum) { 18735 ASSERT(ill->ill_hcksum_capab != NULL); 18736 hcksum_txflags = ill->ill_hcksum_capab->ill_hcksum_txflags; 18737 } 18738 18739 /* pseudo-header checksum (do it in parts for IP header checksum) */ 18740 cksum = (dst >> 16) + (dst & 0xFFFF) + (src >> 16) + (src & 0xFFFF); 18741 18742 ASSERT(ipha->ipha_version_and_hdr_length == IP_SIMPLE_HDR_VERSION); 18743 up = IPH_TCPH_CHECKSUMP(ipha, IP_SIMPLE_HDR_LENGTH); 18744 18745 IP_CKSUM_XMIT_FAST(ire->ire_ipversion, hcksum_txflags, mp, ipha, up, 18746 IPPROTO_TCP, IP_SIMPLE_HDR_LENGTH, ntohs(ipha->ipha_length), cksum); 18747 18748 /* Software checksum? */ 18749 if (DB_CKSUMFLAGS(mp) == 0) { 18750 TCP_STAT(tcp_out_sw_cksum); 18751 TCP_STAT_UPDATE(tcp_out_sw_cksum_bytes, 18752 ntohs(ipha->ipha_length) - IP_SIMPLE_HDR_LENGTH); 18753 } 18754 18755 ipha->ipha_fragment_offset_and_flags |= 18756 (uint32_t)htons(ire->ire_frag_flag); 18757 18758 /* Calculate IP header checksum if hardware isn't capable */ 18759 if (!(DB_CKSUMFLAGS(mp) & HCK_IPV4_HDRCKSUM)) { 18760 IP_HDR_CKSUM(ipha, cksum, ((uint32_t *)ipha)[0], 18761 ((uint16_t *)ipha)[4]); 18762 } 18763 18764 ASSERT(DB_TYPE(ire_fp_mp) == M_DATA); 18765 mp->b_rptr = (uchar_t *)ipha - ire_fp_mp_len; 18766 bcopy(ire_fp_mp->b_rptr, mp->b_rptr, ire_fp_mp_len); 18767 18768 UPDATE_OB_PKT_COUNT(ire); 18769 ire->ire_last_used_time = lbolt; 18770 BUMP_MIB(&ip_mib, ipOutRequests); 18771 18772 if (ILL_DLS_CAPABLE(ill)) { 18773 /* 18774 * Send the packet directly to DLD, where it may be queued 18775 * depending on the availability of transmit resources at 18776 * the media layer. 18777 */ 18778 IP_DLS_ILL_TX(ill, ipha, mp); 18779 } else { 18780 ill_t *out_ill = (ill_t *)ire->ire_stq->q_ptr; 18781 DTRACE_PROBE4(ip4__physical__out__start, 18782 ill_t *, NULL, ill_t *, out_ill, 18783 ipha_t *, ipha, mblk_t *, mp); 18784 FW_HOOKS(ip4_physical_out_event, ipv4firewall_physical_out, 18785 NULL, out_ill, ipha, mp, mp); 18786 DTRACE_PROBE1(ip4__physical__out__end, mblk_t *, mp); 18787 if (mp != NULL) 18788 putnext(ire->ire_stq, mp); 18789 } 18790 IRE_REFRELE(ire); 18791 } 18792 18793 /* 18794 * This handles the case when the receiver has shrunk its win. Per RFC 1122 18795 * if the receiver shrinks the window, i.e. moves the right window to the 18796 * left, the we should not send new data, but should retransmit normally the 18797 * old unacked data between suna and suna + swnd. We might has sent data 18798 * that is now outside the new window, pretend that we didn't send it. 18799 */ 18800 static void 18801 tcp_process_shrunk_swnd(tcp_t *tcp, uint32_t shrunk_count) 18802 { 18803 uint32_t snxt = tcp->tcp_snxt; 18804 mblk_t *xmit_tail; 18805 int32_t offset; 18806 18807 ASSERT(shrunk_count > 0); 18808 18809 /* Pretend we didn't send the data outside the window */ 18810 snxt -= shrunk_count; 18811 18812 /* Get the mblk and the offset in it per the shrunk window */ 18813 xmit_tail = tcp_get_seg_mp(tcp, snxt, &offset); 18814 18815 ASSERT(xmit_tail != NULL); 18816 18817 /* Reset all the values per the now shrunk window */ 18818 tcp->tcp_snxt = snxt; 18819 tcp->tcp_xmit_tail = xmit_tail; 18820 tcp->tcp_xmit_tail_unsent = xmit_tail->b_wptr - xmit_tail->b_rptr - 18821 offset; 18822 tcp->tcp_unsent += shrunk_count; 18823 18824 if (tcp->tcp_suna == tcp->tcp_snxt && tcp->tcp_swnd == 0) 18825 /* 18826 * Make sure the timer is running so that we will probe a zero 18827 * window. 18828 */ 18829 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 18830 } 18831 18832 18833 /* 18834 * The TCP normal data output path. 18835 * NOTE: the logic of the fast path is duplicated from this function. 18836 */ 18837 static void 18838 tcp_wput_data(tcp_t *tcp, mblk_t *mp, boolean_t urgent) 18839 { 18840 int len; 18841 mblk_t *local_time; 18842 mblk_t *mp1; 18843 uint32_t snxt; 18844 int tail_unsent; 18845 int tcpstate; 18846 int usable = 0; 18847 mblk_t *xmit_tail; 18848 queue_t *q = tcp->tcp_wq; 18849 int32_t mss; 18850 int32_t num_sack_blk = 0; 18851 int32_t tcp_hdr_len; 18852 int32_t tcp_tcp_hdr_len; 18853 int mdt_thres; 18854 int rc; 18855 18856 tcpstate = tcp->tcp_state; 18857 if (mp == NULL) { 18858 /* 18859 * tcp_wput_data() with NULL mp should only be called when 18860 * there is unsent data. 18861 */ 18862 ASSERT(tcp->tcp_unsent > 0); 18863 /* Really tacky... but we need this for detached closes. */ 18864 len = tcp->tcp_unsent; 18865 goto data_null; 18866 } 18867 18868 #if CCS_STATS 18869 wrw_stats.tot.count++; 18870 wrw_stats.tot.bytes += msgdsize(mp); 18871 #endif 18872 ASSERT(mp->b_datap->db_type == M_DATA); 18873 /* 18874 * Don't allow data after T_ORDREL_REQ or T_DISCON_REQ, 18875 * or before a connection attempt has begun. 18876 */ 18877 if (tcpstate < TCPS_SYN_SENT || tcpstate > TCPS_CLOSE_WAIT || 18878 (tcp->tcp_valid_bits & TCP_FSS_VALID) != 0) { 18879 if ((tcp->tcp_valid_bits & TCP_FSS_VALID) != 0) { 18880 #ifdef DEBUG 18881 cmn_err(CE_WARN, 18882 "tcp_wput_data: data after ordrel, %s", 18883 tcp_display(tcp, NULL, 18884 DISP_ADDR_AND_PORT)); 18885 #else 18886 if (tcp->tcp_debug) { 18887 (void) strlog(TCP_MOD_ID, 0, 1, 18888 SL_TRACE|SL_ERROR, 18889 "tcp_wput_data: data after ordrel, %s\n", 18890 tcp_display(tcp, NULL, 18891 DISP_ADDR_AND_PORT)); 18892 } 18893 #endif /* DEBUG */ 18894 } 18895 if (tcp->tcp_snd_zcopy_aware && 18896 (mp->b_datap->db_struioflag & STRUIO_ZCNOTIFY) != 0) 18897 tcp_zcopy_notify(tcp); 18898 freemsg(mp); 18899 if (tcp->tcp_flow_stopped && 18900 TCP_UNSENT_BYTES(tcp) <= tcp->tcp_xmit_lowater) { 18901 tcp_clrqfull(tcp); 18902 } 18903 return; 18904 } 18905 18906 /* Strip empties */ 18907 for (;;) { 18908 ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= 18909 (uintptr_t)INT_MAX); 18910 len = (int)(mp->b_wptr - mp->b_rptr); 18911 if (len > 0) 18912 break; 18913 mp1 = mp; 18914 mp = mp->b_cont; 18915 freeb(mp1); 18916 if (!mp) { 18917 return; 18918 } 18919 } 18920 18921 /* If we are the first on the list ... */ 18922 if (tcp->tcp_xmit_head == NULL) { 18923 tcp->tcp_xmit_head = mp; 18924 tcp->tcp_xmit_tail = mp; 18925 tcp->tcp_xmit_tail_unsent = len; 18926 } else { 18927 /* If tiny tx and room in txq tail, pullup to save mblks. */ 18928 struct datab *dp; 18929 18930 mp1 = tcp->tcp_xmit_last; 18931 if (len < tcp_tx_pull_len && 18932 (dp = mp1->b_datap)->db_ref == 1 && 18933 dp->db_lim - mp1->b_wptr >= len) { 18934 ASSERT(len > 0); 18935 ASSERT(!mp1->b_cont); 18936 if (len == 1) { 18937 *mp1->b_wptr++ = *mp->b_rptr; 18938 } else { 18939 bcopy(mp->b_rptr, mp1->b_wptr, len); 18940 mp1->b_wptr += len; 18941 } 18942 if (mp1 == tcp->tcp_xmit_tail) 18943 tcp->tcp_xmit_tail_unsent += len; 18944 mp1->b_cont = mp->b_cont; 18945 if (tcp->tcp_snd_zcopy_aware && 18946 (mp->b_datap->db_struioflag & STRUIO_ZCNOTIFY)) 18947 mp1->b_datap->db_struioflag |= STRUIO_ZCNOTIFY; 18948 freeb(mp); 18949 mp = mp1; 18950 } else { 18951 tcp->tcp_xmit_last->b_cont = mp; 18952 } 18953 len += tcp->tcp_unsent; 18954 } 18955 18956 /* Tack on however many more positive length mblks we have */ 18957 if ((mp1 = mp->b_cont) != NULL) { 18958 do { 18959 int tlen; 18960 ASSERT((uintptr_t)(mp1->b_wptr - mp1->b_rptr) <= 18961 (uintptr_t)INT_MAX); 18962 tlen = (int)(mp1->b_wptr - mp1->b_rptr); 18963 if (tlen <= 0) { 18964 mp->b_cont = mp1->b_cont; 18965 freeb(mp1); 18966 } else { 18967 len += tlen; 18968 mp = mp1; 18969 } 18970 } while ((mp1 = mp->b_cont) != NULL); 18971 } 18972 tcp->tcp_xmit_last = mp; 18973 tcp->tcp_unsent = len; 18974 18975 if (urgent) 18976 usable = 1; 18977 18978 data_null: 18979 snxt = tcp->tcp_snxt; 18980 xmit_tail = tcp->tcp_xmit_tail; 18981 tail_unsent = tcp->tcp_xmit_tail_unsent; 18982 18983 /* 18984 * Note that tcp_mss has been adjusted to take into account the 18985 * timestamp option if applicable. Because SACK options do not 18986 * appear in every TCP segments and they are of variable lengths, 18987 * they cannot be included in tcp_mss. Thus we need to calculate 18988 * the actual segment length when we need to send a segment which 18989 * includes SACK options. 18990 */ 18991 if (tcp->tcp_snd_sack_ok && tcp->tcp_num_sack_blk > 0) { 18992 int32_t opt_len; 18993 18994 num_sack_blk = MIN(tcp->tcp_max_sack_blk, 18995 tcp->tcp_num_sack_blk); 18996 opt_len = num_sack_blk * sizeof (sack_blk_t) + TCPOPT_NOP_LEN * 18997 2 + TCPOPT_HEADER_LEN; 18998 mss = tcp->tcp_mss - opt_len; 18999 tcp_hdr_len = tcp->tcp_hdr_len + opt_len; 19000 tcp_tcp_hdr_len = tcp->tcp_tcp_hdr_len + opt_len; 19001 } else { 19002 mss = tcp->tcp_mss; 19003 tcp_hdr_len = tcp->tcp_hdr_len; 19004 tcp_tcp_hdr_len = tcp->tcp_tcp_hdr_len; 19005 } 19006 19007 if ((tcp->tcp_suna == snxt) && !tcp->tcp_localnet && 19008 (TICK_TO_MSEC(lbolt - tcp->tcp_last_recv_time) >= tcp->tcp_rto)) { 19009 SET_TCP_INIT_CWND(tcp, mss, tcp_slow_start_after_idle); 19010 } 19011 if (tcpstate == TCPS_SYN_RCVD) { 19012 /* 19013 * The three-way connection establishment handshake is not 19014 * complete yet. We want to queue the data for transmission 19015 * after entering ESTABLISHED state (RFC793). A jump to 19016 * "done" label effectively leaves data on the queue. 19017 */ 19018 goto done; 19019 } else { 19020 int usable_r; 19021 19022 /* 19023 * In the special case when cwnd is zero, which can only 19024 * happen if the connection is ECN capable, return now. 19025 * New segments is sent using tcp_timer(). The timer 19026 * is set in tcp_rput_data(). 19027 */ 19028 if (tcp->tcp_cwnd == 0) { 19029 /* 19030 * Note that tcp_cwnd is 0 before 3-way handshake is 19031 * finished. 19032 */ 19033 ASSERT(tcp->tcp_ecn_ok || 19034 tcp->tcp_state < TCPS_ESTABLISHED); 19035 return; 19036 } 19037 19038 /* NOTE: trouble if xmitting while SYN not acked? */ 19039 usable_r = snxt - tcp->tcp_suna; 19040 usable_r = tcp->tcp_swnd - usable_r; 19041 19042 /* 19043 * Check if the receiver has shrunk the window. If 19044 * tcp_wput_data() with NULL mp is called, tcp_fin_sent 19045 * cannot be set as there is unsent data, so FIN cannot 19046 * be sent out. Otherwise, we need to take into account 19047 * of FIN as it consumes an "invisible" sequence number. 19048 */ 19049 ASSERT(tcp->tcp_fin_sent == 0); 19050 if (usable_r < 0) { 19051 /* 19052 * The receiver has shrunk the window and we have sent 19053 * -usable_r date beyond the window, re-adjust. 19054 * 19055 * If TCP window scaling is enabled, there can be 19056 * round down error as the advertised receive window 19057 * is actually right shifted n bits. This means that 19058 * the lower n bits info is wiped out. It will look 19059 * like the window is shrunk. Do a check here to 19060 * see if the shrunk amount is actually within the 19061 * error in window calculation. If it is, just 19062 * return. Note that this check is inside the 19063 * shrunk window check. This makes sure that even 19064 * though tcp_process_shrunk_swnd() is not called, 19065 * we will stop further processing. 19066 */ 19067 if ((-usable_r >> tcp->tcp_snd_ws) > 0) { 19068 tcp_process_shrunk_swnd(tcp, -usable_r); 19069 } 19070 return; 19071 } 19072 19073 /* usable = MIN(swnd, cwnd) - unacked_bytes */ 19074 if (tcp->tcp_swnd > tcp->tcp_cwnd) 19075 usable_r -= tcp->tcp_swnd - tcp->tcp_cwnd; 19076 19077 /* usable = MIN(usable, unsent) */ 19078 if (usable_r > len) 19079 usable_r = len; 19080 19081 /* usable = MAX(usable, {1 for urgent, 0 for data}) */ 19082 if (usable_r > 0) { 19083 usable = usable_r; 19084 } else { 19085 /* Bypass all other unnecessary processing. */ 19086 goto done; 19087 } 19088 } 19089 19090 local_time = (mblk_t *)lbolt; 19091 19092 /* 19093 * "Our" Nagle Algorithm. This is not the same as in the old 19094 * BSD. This is more in line with the true intent of Nagle. 19095 * 19096 * The conditions are: 19097 * 1. The amount of unsent data (or amount of data which can be 19098 * sent, whichever is smaller) is less than Nagle limit. 19099 * 2. The last sent size is also less than Nagle limit. 19100 * 3. There is unack'ed data. 19101 * 4. Urgent pointer is not set. Send urgent data ignoring the 19102 * Nagle algorithm. This reduces the probability that urgent 19103 * bytes get "merged" together. 19104 * 5. The app has not closed the connection. This eliminates the 19105 * wait time of the receiving side waiting for the last piece of 19106 * (small) data. 19107 * 19108 * If all are satisified, exit without sending anything. Note 19109 * that Nagle limit can be smaller than 1 MSS. Nagle limit is 19110 * the smaller of 1 MSS and global tcp_naglim_def (default to be 19111 * 4095). 19112 */ 19113 if (usable < (int)tcp->tcp_naglim && 19114 tcp->tcp_naglim > tcp->tcp_last_sent_len && 19115 snxt != tcp->tcp_suna && 19116 !(tcp->tcp_valid_bits & TCP_URG_VALID) && 19117 !(tcp->tcp_valid_bits & TCP_FSS_VALID)) { 19118 goto done; 19119 } 19120 19121 if (tcp->tcp_cork) { 19122 /* 19123 * if the tcp->tcp_cork option is set, then we have to force 19124 * TCP not to send partial segment (smaller than MSS bytes). 19125 * We are calculating the usable now based on full mss and 19126 * will save the rest of remaining data for later. 19127 */ 19128 if (usable < mss) 19129 goto done; 19130 usable = (usable / mss) * mss; 19131 } 19132 19133 /* Update the latest receive window size in TCP header. */ 19134 U32_TO_ABE16(tcp->tcp_rwnd >> tcp->tcp_rcv_ws, 19135 tcp->tcp_tcph->th_win); 19136 19137 /* 19138 * Determine if it's worthwhile to attempt LSO or MDT, based on: 19139 * 19140 * 1. Simple TCP/IP{v4,v6} (no options). 19141 * 2. IPSEC/IPQoS processing is not needed for the TCP connection. 19142 * 3. If the TCP connection is in ESTABLISHED state. 19143 * 4. The TCP is not detached. 19144 * 19145 * If any of the above conditions have changed during the 19146 * connection, stop using LSO/MDT and restore the stream head 19147 * parameters accordingly. 19148 */ 19149 if ((tcp->tcp_lso || tcp->tcp_mdt) && 19150 ((tcp->tcp_ipversion == IPV4_VERSION && 19151 tcp->tcp_ip_hdr_len != IP_SIMPLE_HDR_LENGTH) || 19152 (tcp->tcp_ipversion == IPV6_VERSION && 19153 tcp->tcp_ip_hdr_len != IPV6_HDR_LEN) || 19154 tcp->tcp_state != TCPS_ESTABLISHED || 19155 TCP_IS_DETACHED(tcp) || !CONN_IS_LSO_MD_FASTPATH(tcp->tcp_connp) || 19156 CONN_IPSEC_OUT_ENCAPSULATED(tcp->tcp_connp) || 19157 IPP_ENABLED(IPP_LOCAL_OUT))) { 19158 if (tcp->tcp_lso) { 19159 tcp->tcp_connp->conn_lso_ok = B_FALSE; 19160 tcp->tcp_lso = B_FALSE; 19161 } else { 19162 tcp->tcp_connp->conn_mdt_ok = B_FALSE; 19163 tcp->tcp_mdt = B_FALSE; 19164 } 19165 19166 /* Anything other than detached is considered pathological */ 19167 if (!TCP_IS_DETACHED(tcp)) { 19168 if (tcp->tcp_lso) 19169 TCP_STAT(tcp_lso_disabled); 19170 else 19171 TCP_STAT(tcp_mdt_conn_halted1); 19172 (void) tcp_maxpsz_set(tcp, B_TRUE); 19173 } 19174 } 19175 19176 /* Use MDT if sendable amount is greater than the threshold */ 19177 if (tcp->tcp_mdt && 19178 (mdt_thres = mss << tcp_mdt_smss_threshold, usable > mdt_thres) && 19179 (tail_unsent > mdt_thres || (xmit_tail->b_cont != NULL && 19180 MBLKL(xmit_tail->b_cont) > mdt_thres)) && 19181 (tcp->tcp_valid_bits == 0 || 19182 tcp->tcp_valid_bits == TCP_FSS_VALID)) { 19183 ASSERT(tcp->tcp_connp->conn_mdt_ok); 19184 rc = tcp_multisend(q, tcp, mss, tcp_hdr_len, tcp_tcp_hdr_len, 19185 num_sack_blk, &usable, &snxt, &tail_unsent, &xmit_tail, 19186 local_time, mdt_thres); 19187 } else { 19188 rc = tcp_send(q, tcp, mss, tcp_hdr_len, tcp_tcp_hdr_len, 19189 num_sack_blk, &usable, &snxt, &tail_unsent, &xmit_tail, 19190 local_time, INT_MAX); 19191 } 19192 19193 /* Pretend that all we were trying to send really got sent */ 19194 if (rc < 0 && tail_unsent < 0) { 19195 do { 19196 xmit_tail = xmit_tail->b_cont; 19197 xmit_tail->b_prev = local_time; 19198 ASSERT((uintptr_t)(xmit_tail->b_wptr - 19199 xmit_tail->b_rptr) <= (uintptr_t)INT_MAX); 19200 tail_unsent += (int)(xmit_tail->b_wptr - 19201 xmit_tail->b_rptr); 19202 } while (tail_unsent < 0); 19203 } 19204 done:; 19205 tcp->tcp_xmit_tail = xmit_tail; 19206 tcp->tcp_xmit_tail_unsent = tail_unsent; 19207 len = tcp->tcp_snxt - snxt; 19208 if (len) { 19209 /* 19210 * If new data was sent, need to update the notsack 19211 * list, which is, afterall, data blocks that have 19212 * not been sack'ed by the receiver. New data is 19213 * not sack'ed. 19214 */ 19215 if (tcp->tcp_snd_sack_ok && tcp->tcp_notsack_list != NULL) { 19216 /* len is a negative value. */ 19217 tcp->tcp_pipe -= len; 19218 tcp_notsack_update(&(tcp->tcp_notsack_list), 19219 tcp->tcp_snxt, snxt, 19220 &(tcp->tcp_num_notsack_blk), 19221 &(tcp->tcp_cnt_notsack_list)); 19222 } 19223 tcp->tcp_snxt = snxt + tcp->tcp_fin_sent; 19224 tcp->tcp_rack = tcp->tcp_rnxt; 19225 tcp->tcp_rack_cnt = 0; 19226 if ((snxt + len) == tcp->tcp_suna) { 19227 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 19228 } 19229 } else if (snxt == tcp->tcp_suna && tcp->tcp_swnd == 0) { 19230 /* 19231 * Didn't send anything. Make sure the timer is running 19232 * so that we will probe a zero window. 19233 */ 19234 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 19235 } 19236 /* Note that len is the amount we just sent but with a negative sign */ 19237 tcp->tcp_unsent += len; 19238 if (tcp->tcp_flow_stopped) { 19239 if (TCP_UNSENT_BYTES(tcp) <= tcp->tcp_xmit_lowater) { 19240 tcp_clrqfull(tcp); 19241 } 19242 } else if (TCP_UNSENT_BYTES(tcp) >= tcp->tcp_xmit_hiwater) { 19243 tcp_setqfull(tcp); 19244 } 19245 } 19246 19247 /* 19248 * tcp_fill_header is called by tcp_send() and tcp_multisend() to fill the 19249 * outgoing TCP header with the template header, as well as other 19250 * options such as time-stamp, ECN and/or SACK. 19251 */ 19252 static void 19253 tcp_fill_header(tcp_t *tcp, uchar_t *rptr, clock_t now, int num_sack_blk) 19254 { 19255 tcph_t *tcp_tmpl, *tcp_h; 19256 uint32_t *dst, *src; 19257 int hdrlen; 19258 19259 ASSERT(OK_32PTR(rptr)); 19260 19261 /* Template header */ 19262 tcp_tmpl = tcp->tcp_tcph; 19263 19264 /* Header of outgoing packet */ 19265 tcp_h = (tcph_t *)(rptr + tcp->tcp_ip_hdr_len); 19266 19267 /* dst and src are opaque 32-bit fields, used for copying */ 19268 dst = (uint32_t *)rptr; 19269 src = (uint32_t *)tcp->tcp_iphc; 19270 hdrlen = tcp->tcp_hdr_len; 19271 19272 /* Fill time-stamp option if needed */ 19273 if (tcp->tcp_snd_ts_ok) { 19274 U32_TO_BE32((uint32_t)now, 19275 (char *)tcp_tmpl + TCP_MIN_HEADER_LENGTH + 4); 19276 U32_TO_BE32(tcp->tcp_ts_recent, 19277 (char *)tcp_tmpl + TCP_MIN_HEADER_LENGTH + 8); 19278 } else { 19279 ASSERT(tcp->tcp_tcp_hdr_len == TCP_MIN_HEADER_LENGTH); 19280 } 19281 19282 /* 19283 * Copy the template header; is this really more efficient than 19284 * calling bcopy()? For simple IPv4/TCP, it may be the case, 19285 * but perhaps not for other scenarios. 19286 */ 19287 dst[0] = src[0]; 19288 dst[1] = src[1]; 19289 dst[2] = src[2]; 19290 dst[3] = src[3]; 19291 dst[4] = src[4]; 19292 dst[5] = src[5]; 19293 dst[6] = src[6]; 19294 dst[7] = src[7]; 19295 dst[8] = src[8]; 19296 dst[9] = src[9]; 19297 if (hdrlen -= 40) { 19298 hdrlen >>= 2; 19299 dst += 10; 19300 src += 10; 19301 do { 19302 *dst++ = *src++; 19303 } while (--hdrlen); 19304 } 19305 19306 /* 19307 * Set the ECN info in the TCP header if it is not a zero 19308 * window probe. Zero window probe is only sent in 19309 * tcp_wput_data() and tcp_timer(). 19310 */ 19311 if (tcp->tcp_ecn_ok && !tcp->tcp_zero_win_probe) { 19312 SET_ECT(tcp, rptr); 19313 19314 if (tcp->tcp_ecn_echo_on) 19315 tcp_h->th_flags[0] |= TH_ECE; 19316 if (tcp->tcp_cwr && !tcp->tcp_ecn_cwr_sent) { 19317 tcp_h->th_flags[0] |= TH_CWR; 19318 tcp->tcp_ecn_cwr_sent = B_TRUE; 19319 } 19320 } 19321 19322 /* Fill in SACK options */ 19323 if (num_sack_blk > 0) { 19324 uchar_t *wptr = rptr + tcp->tcp_hdr_len; 19325 sack_blk_t *tmp; 19326 int32_t i; 19327 19328 wptr[0] = TCPOPT_NOP; 19329 wptr[1] = TCPOPT_NOP; 19330 wptr[2] = TCPOPT_SACK; 19331 wptr[3] = TCPOPT_HEADER_LEN + num_sack_blk * 19332 sizeof (sack_blk_t); 19333 wptr += TCPOPT_REAL_SACK_LEN; 19334 19335 tmp = tcp->tcp_sack_list; 19336 for (i = 0; i < num_sack_blk; i++) { 19337 U32_TO_BE32(tmp[i].begin, wptr); 19338 wptr += sizeof (tcp_seq); 19339 U32_TO_BE32(tmp[i].end, wptr); 19340 wptr += sizeof (tcp_seq); 19341 } 19342 tcp_h->th_offset_and_rsrvd[0] += 19343 ((num_sack_blk * 2 + 1) << 4); 19344 } 19345 } 19346 19347 /* 19348 * tcp_mdt_add_attrs() is called by tcp_multisend() in order to attach 19349 * the destination address and SAP attribute, and if necessary, the 19350 * hardware checksum offload attribute to a Multidata message. 19351 */ 19352 static int 19353 tcp_mdt_add_attrs(multidata_t *mmd, const mblk_t *dlmp, const boolean_t hwcksum, 19354 const uint32_t start, const uint32_t stuff, const uint32_t end, 19355 const uint32_t flags) 19356 { 19357 /* Add global destination address & SAP attribute */ 19358 if (dlmp == NULL || !ip_md_addr_attr(mmd, NULL, dlmp)) { 19359 ip1dbg(("tcp_mdt_add_attrs: can't add global physical " 19360 "destination address+SAP\n")); 19361 19362 if (dlmp != NULL) 19363 TCP_STAT(tcp_mdt_allocfail); 19364 return (-1); 19365 } 19366 19367 /* Add global hwcksum attribute */ 19368 if (hwcksum && 19369 !ip_md_hcksum_attr(mmd, NULL, start, stuff, end, flags)) { 19370 ip1dbg(("tcp_mdt_add_attrs: can't add global hardware " 19371 "checksum attribute\n")); 19372 19373 TCP_STAT(tcp_mdt_allocfail); 19374 return (-1); 19375 } 19376 19377 return (0); 19378 } 19379 19380 /* 19381 * Smaller and private version of pdescinfo_t used specifically for TCP, 19382 * which allows for only two payload spans per packet. 19383 */ 19384 typedef struct tcp_pdescinfo_s PDESCINFO_STRUCT(2) tcp_pdescinfo_t; 19385 19386 /* 19387 * tcp_multisend() is called by tcp_wput_data() for Multidata Transmit 19388 * scheme, and returns one the following: 19389 * 19390 * -1 = failed allocation. 19391 * 0 = success; burst count reached, or usable send window is too small, 19392 * and that we'd rather wait until later before sending again. 19393 */ 19394 static int 19395 tcp_multisend(queue_t *q, tcp_t *tcp, const int mss, const int tcp_hdr_len, 19396 const int tcp_tcp_hdr_len, const int num_sack_blk, int *usable, 19397 uint_t *snxt, int *tail_unsent, mblk_t **xmit_tail, mblk_t *local_time, 19398 const int mdt_thres) 19399 { 19400 mblk_t *md_mp_head, *md_mp, *md_pbuf, *md_pbuf_nxt, *md_hbuf; 19401 multidata_t *mmd; 19402 uint_t obsegs, obbytes, hdr_frag_sz; 19403 uint_t cur_hdr_off, cur_pld_off, base_pld_off, first_snxt; 19404 int num_burst_seg, max_pld; 19405 pdesc_t *pkt; 19406 tcp_pdescinfo_t tcp_pkt_info; 19407 pdescinfo_t *pkt_info; 19408 int pbuf_idx, pbuf_idx_nxt; 19409 int seg_len, len, spill, af; 19410 boolean_t add_buffer, zcopy, clusterwide; 19411 boolean_t buf_trunked = B_FALSE; 19412 boolean_t rconfirm = B_FALSE; 19413 boolean_t done = B_FALSE; 19414 uint32_t cksum; 19415 uint32_t hwcksum_flags; 19416 ire_t *ire = NULL; 19417 ill_t *ill; 19418 ipha_t *ipha; 19419 ip6_t *ip6h; 19420 ipaddr_t src, dst; 19421 ill_zerocopy_capab_t *zc_cap = NULL; 19422 uint16_t *up; 19423 int err; 19424 conn_t *connp; 19425 mblk_t *mp, *mp1, *fw_mp_head = NULL; 19426 uchar_t *pld_start; 19427 19428 #ifdef _BIG_ENDIAN 19429 #define IPVER(ip6h) ((((uint32_t *)ip6h)[0] >> 28) & 0x7) 19430 #else 19431 #define IPVER(ip6h) ((((uint32_t *)ip6h)[0] >> 4) & 0x7) 19432 #endif 19433 19434 #define PREP_NEW_MULTIDATA() { \ 19435 mmd = NULL; \ 19436 md_mp = md_hbuf = NULL; \ 19437 cur_hdr_off = 0; \ 19438 max_pld = tcp->tcp_mdt_max_pld; \ 19439 pbuf_idx = pbuf_idx_nxt = -1; \ 19440 add_buffer = B_TRUE; \ 19441 zcopy = B_FALSE; \ 19442 } 19443 19444 #define PREP_NEW_PBUF() { \ 19445 md_pbuf = md_pbuf_nxt = NULL; \ 19446 pbuf_idx = pbuf_idx_nxt = -1; \ 19447 cur_pld_off = 0; \ 19448 first_snxt = *snxt; \ 19449 ASSERT(*tail_unsent > 0); \ 19450 base_pld_off = MBLKL(*xmit_tail) - *tail_unsent; \ 19451 } 19452 19453 ASSERT(mdt_thres >= mss); 19454 ASSERT(*usable > 0 && *usable > mdt_thres); 19455 ASSERT(tcp->tcp_state == TCPS_ESTABLISHED); 19456 ASSERT(!TCP_IS_DETACHED(tcp)); 19457 ASSERT(tcp->tcp_valid_bits == 0 || 19458 tcp->tcp_valid_bits == TCP_FSS_VALID); 19459 ASSERT((tcp->tcp_ipversion == IPV4_VERSION && 19460 tcp->tcp_ip_hdr_len == IP_SIMPLE_HDR_LENGTH) || 19461 (tcp->tcp_ipversion == IPV6_VERSION && 19462 tcp->tcp_ip_hdr_len == IPV6_HDR_LEN)); 19463 19464 connp = tcp->tcp_connp; 19465 ASSERT(connp != NULL); 19466 ASSERT(CONN_IS_LSO_MD_FASTPATH(connp)); 19467 ASSERT(!CONN_IPSEC_OUT_ENCAPSULATED(connp)); 19468 19469 /* 19470 * Note that tcp will only declare at most 2 payload spans per 19471 * packet, which is much lower than the maximum allowable number 19472 * of packet spans per Multidata. For this reason, we use the 19473 * privately declared and smaller descriptor info structure, in 19474 * order to save some stack space. 19475 */ 19476 pkt_info = (pdescinfo_t *)&tcp_pkt_info; 19477 19478 af = (tcp->tcp_ipversion == IPV4_VERSION) ? AF_INET : AF_INET6; 19479 if (af == AF_INET) { 19480 dst = tcp->tcp_ipha->ipha_dst; 19481 src = tcp->tcp_ipha->ipha_src; 19482 ASSERT(!CLASSD(dst)); 19483 } 19484 ASSERT(af == AF_INET || 19485 !IN6_IS_ADDR_MULTICAST(&tcp->tcp_ip6h->ip6_dst)); 19486 19487 obsegs = obbytes = 0; 19488 num_burst_seg = tcp->tcp_snd_burst; 19489 md_mp_head = NULL; 19490 PREP_NEW_MULTIDATA(); 19491 19492 /* 19493 * Before we go on further, make sure there is an IRE that we can 19494 * use, and that the ILL supports MDT. Otherwise, there's no point 19495 * in proceeding any further, and we should just hand everything 19496 * off to the legacy path. 19497 */ 19498 if (!tcp_send_find_ire(tcp, (af == AF_INET) ? &dst : NULL, &ire)) 19499 goto legacy_send_no_md; 19500 19501 ASSERT(ire != NULL); 19502 ASSERT(af != AF_INET || ire->ire_ipversion == IPV4_VERSION); 19503 ASSERT(af == AF_INET || !IN6_IS_ADDR_V4MAPPED(&(ire->ire_addr_v6))); 19504 ASSERT(af == AF_INET || ire->ire_nce != NULL); 19505 ASSERT(!(ire->ire_type & IRE_BROADCAST)); 19506 /* 19507 * If we do support loopback for MDT (which requires modifications 19508 * to the receiving paths), the following assertions should go away, 19509 * and we would be sending the Multidata to loopback conn later on. 19510 */ 19511 ASSERT(!IRE_IS_LOCAL(ire)); 19512 ASSERT(ire->ire_stq != NULL); 19513 19514 ill = ire_to_ill(ire); 19515 ASSERT(ill != NULL); 19516 ASSERT(!ILL_MDT_CAPABLE(ill) || ill->ill_mdt_capab != NULL); 19517 19518 if (!tcp->tcp_ire_ill_check_done) { 19519 tcp_ire_ill_check(tcp, ire, ill, B_TRUE); 19520 tcp->tcp_ire_ill_check_done = B_TRUE; 19521 } 19522 19523 /* 19524 * If the underlying interface conditions have changed, or if the 19525 * new interface does not support MDT, go back to legacy path. 19526 */ 19527 if (!ILL_MDT_USABLE(ill) || (ire->ire_flags & RTF_MULTIRT) != 0) { 19528 /* don't go through this path anymore for this connection */ 19529 TCP_STAT(tcp_mdt_conn_halted2); 19530 tcp->tcp_mdt = B_FALSE; 19531 ip1dbg(("tcp_multisend: disabling MDT for connp %p on " 19532 "interface %s\n", (void *)connp, ill->ill_name)); 19533 /* IRE will be released prior to returning */ 19534 goto legacy_send_no_md; 19535 } 19536 19537 if (ill->ill_capabilities & ILL_CAPAB_ZEROCOPY) 19538 zc_cap = ill->ill_zerocopy_capab; 19539 19540 /* 19541 * Check if we can take tcp fast-path. Note that "incomplete" 19542 * ire's (where the link-layer for next hop is not resolved 19543 * or where the fast-path header in nce_fp_mp is not available 19544 * yet) are sent down the legacy (slow) path. 19545 * NOTE: We should fix ip_xmit_v4 to handle M_MULTIDATA 19546 */ 19547 if (ire->ire_nce && ire->ire_nce->nce_state != ND_REACHABLE) { 19548 /* IRE will be released prior to returning */ 19549 goto legacy_send_no_md; 19550 } 19551 19552 /* go to legacy path if interface doesn't support zerocopy */ 19553 if (tcp->tcp_snd_zcopy_aware && do_tcpzcopy != 2 && 19554 (zc_cap == NULL || zc_cap->ill_zerocopy_flags == 0)) { 19555 /* IRE will be released prior to returning */ 19556 goto legacy_send_no_md; 19557 } 19558 19559 /* does the interface support hardware checksum offload? */ 19560 hwcksum_flags = 0; 19561 if (ILL_HCKSUM_CAPABLE(ill) && 19562 (ill->ill_hcksum_capab->ill_hcksum_txflags & 19563 (HCKSUM_INET_FULL_V4 | HCKSUM_INET_FULL_V6 | HCKSUM_INET_PARTIAL | 19564 HCKSUM_IPHDRCKSUM)) && dohwcksum) { 19565 if (ill->ill_hcksum_capab->ill_hcksum_txflags & 19566 HCKSUM_IPHDRCKSUM) 19567 hwcksum_flags = HCK_IPV4_HDRCKSUM; 19568 19569 if (ill->ill_hcksum_capab->ill_hcksum_txflags & 19570 (HCKSUM_INET_FULL_V4 | HCKSUM_INET_FULL_V6)) 19571 hwcksum_flags |= HCK_FULLCKSUM; 19572 else if (ill->ill_hcksum_capab->ill_hcksum_txflags & 19573 HCKSUM_INET_PARTIAL) 19574 hwcksum_flags |= HCK_PARTIALCKSUM; 19575 } 19576 19577 /* 19578 * Each header fragment consists of the leading extra space, 19579 * followed by the TCP/IP header, and the trailing extra space. 19580 * We make sure that each header fragment begins on a 32-bit 19581 * aligned memory address (tcp_mdt_hdr_head is already 32-bit 19582 * aligned in tcp_mdt_update). 19583 */ 19584 hdr_frag_sz = roundup((tcp->tcp_mdt_hdr_head + tcp_hdr_len + 19585 tcp->tcp_mdt_hdr_tail), 4); 19586 19587 /* are we starting from the beginning of data block? */ 19588 if (*tail_unsent == 0) { 19589 *xmit_tail = (*xmit_tail)->b_cont; 19590 ASSERT((uintptr_t)MBLKL(*xmit_tail) <= (uintptr_t)INT_MAX); 19591 *tail_unsent = (int)MBLKL(*xmit_tail); 19592 } 19593 19594 /* 19595 * Here we create one or more Multidata messages, each made up of 19596 * one header buffer and up to N payload buffers. This entire 19597 * operation is done within two loops: 19598 * 19599 * The outer loop mostly deals with creating the Multidata message, 19600 * as well as the header buffer that gets added to it. It also 19601 * links the Multidata messages together such that all of them can 19602 * be sent down to the lower layer in a single putnext call; this 19603 * linking behavior depends on the tcp_mdt_chain tunable. 19604 * 19605 * The inner loop takes an existing Multidata message, and adds 19606 * one or more (up to tcp_mdt_max_pld) payload buffers to it. It 19607 * packetizes those buffers by filling up the corresponding header 19608 * buffer fragments with the proper IP and TCP headers, and by 19609 * describing the layout of each packet in the packet descriptors 19610 * that get added to the Multidata. 19611 */ 19612 do { 19613 /* 19614 * If usable send window is too small, or data blocks in 19615 * transmit list are smaller than our threshold (i.e. app 19616 * performs large writes followed by small ones), we hand 19617 * off the control over to the legacy path. Note that we'll 19618 * get back the control once it encounters a large block. 19619 */ 19620 if (*usable < mss || (*tail_unsent <= mdt_thres && 19621 (*xmit_tail)->b_cont != NULL && 19622 MBLKL((*xmit_tail)->b_cont) <= mdt_thres)) { 19623 /* send down what we've got so far */ 19624 if (md_mp_head != NULL) { 19625 tcp_multisend_data(tcp, ire, ill, md_mp_head, 19626 obsegs, obbytes, &rconfirm); 19627 } 19628 /* 19629 * Pass control over to tcp_send(), but tell it to 19630 * return to us once a large-size transmission is 19631 * possible. 19632 */ 19633 TCP_STAT(tcp_mdt_legacy_small); 19634 if ((err = tcp_send(q, tcp, mss, tcp_hdr_len, 19635 tcp_tcp_hdr_len, num_sack_blk, usable, snxt, 19636 tail_unsent, xmit_tail, local_time, 19637 mdt_thres)) <= 0) { 19638 /* burst count reached, or alloc failed */ 19639 IRE_REFRELE(ire); 19640 return (err); 19641 } 19642 19643 /* tcp_send() may have sent everything, so check */ 19644 if (*usable <= 0) { 19645 IRE_REFRELE(ire); 19646 return (0); 19647 } 19648 19649 TCP_STAT(tcp_mdt_legacy_ret); 19650 /* 19651 * We may have delivered the Multidata, so make sure 19652 * to re-initialize before the next round. 19653 */ 19654 md_mp_head = NULL; 19655 obsegs = obbytes = 0; 19656 num_burst_seg = tcp->tcp_snd_burst; 19657 PREP_NEW_MULTIDATA(); 19658 19659 /* are we starting from the beginning of data block? */ 19660 if (*tail_unsent == 0) { 19661 *xmit_tail = (*xmit_tail)->b_cont; 19662 ASSERT((uintptr_t)MBLKL(*xmit_tail) <= 19663 (uintptr_t)INT_MAX); 19664 *tail_unsent = (int)MBLKL(*xmit_tail); 19665 } 19666 } 19667 19668 /* 19669 * max_pld limits the number of mblks in tcp's transmit 19670 * queue that can be added to a Multidata message. Once 19671 * this counter reaches zero, no more additional mblks 19672 * can be added to it. What happens afterwards depends 19673 * on whether or not we are set to chain the Multidata 19674 * messages. If we are to link them together, reset 19675 * max_pld to its original value (tcp_mdt_max_pld) and 19676 * prepare to create a new Multidata message which will 19677 * get linked to md_mp_head. Else, leave it alone and 19678 * let the inner loop break on its own. 19679 */ 19680 if (tcp_mdt_chain && max_pld == 0) 19681 PREP_NEW_MULTIDATA(); 19682 19683 /* adding a payload buffer; re-initialize values */ 19684 if (add_buffer) 19685 PREP_NEW_PBUF(); 19686 19687 /* 19688 * If we don't have a Multidata, either because we just 19689 * (re)entered this outer loop, or after we branched off 19690 * to tcp_send above, setup the Multidata and header 19691 * buffer to be used. 19692 */ 19693 if (md_mp == NULL) { 19694 int md_hbuflen; 19695 uint32_t start, stuff; 19696 19697 /* 19698 * Calculate Multidata header buffer size large enough 19699 * to hold all of the headers that can possibly be 19700 * sent at this moment. We'd rather over-estimate 19701 * the size than running out of space; this is okay 19702 * since this buffer is small anyway. 19703 */ 19704 md_hbuflen = (howmany(*usable, mss) + 1) * hdr_frag_sz; 19705 19706 /* 19707 * Start and stuff offset for partial hardware 19708 * checksum offload; these are currently for IPv4. 19709 * For full checksum offload, they are set to zero. 19710 */ 19711 if ((hwcksum_flags & HCK_PARTIALCKSUM)) { 19712 if (af == AF_INET) { 19713 start = IP_SIMPLE_HDR_LENGTH; 19714 stuff = IP_SIMPLE_HDR_LENGTH + 19715 TCP_CHECKSUM_OFFSET; 19716 } else { 19717 start = IPV6_HDR_LEN; 19718 stuff = IPV6_HDR_LEN + 19719 TCP_CHECKSUM_OFFSET; 19720 } 19721 } else { 19722 start = stuff = 0; 19723 } 19724 19725 /* 19726 * Create the header buffer, Multidata, as well as 19727 * any necessary attributes (destination address, 19728 * SAP and hardware checksum offload) that should 19729 * be associated with the Multidata message. 19730 */ 19731 ASSERT(cur_hdr_off == 0); 19732 if ((md_hbuf = allocb(md_hbuflen, BPRI_HI)) == NULL || 19733 ((md_hbuf->b_wptr += md_hbuflen), 19734 (mmd = mmd_alloc(md_hbuf, &md_mp, 19735 KM_NOSLEEP)) == NULL) || (tcp_mdt_add_attrs(mmd, 19736 /* fastpath mblk */ 19737 ire->ire_nce->nce_res_mp, 19738 /* hardware checksum enabled */ 19739 (hwcksum_flags & (HCK_FULLCKSUM|HCK_PARTIALCKSUM)), 19740 /* hardware checksum offsets */ 19741 start, stuff, 0, 19742 /* hardware checksum flag */ 19743 hwcksum_flags) != 0)) { 19744 legacy_send: 19745 if (md_mp != NULL) { 19746 /* Unlink message from the chain */ 19747 if (md_mp_head != NULL) { 19748 err = (intptr_t)rmvb(md_mp_head, 19749 md_mp); 19750 /* 19751 * We can't assert that rmvb 19752 * did not return -1, since we 19753 * may get here before linkb 19754 * happens. We do, however, 19755 * check if we just removed the 19756 * only element in the list. 19757 */ 19758 if (err == 0) 19759 md_mp_head = NULL; 19760 } 19761 /* md_hbuf gets freed automatically */ 19762 TCP_STAT(tcp_mdt_discarded); 19763 freeb(md_mp); 19764 } else { 19765 /* Either allocb or mmd_alloc failed */ 19766 TCP_STAT(tcp_mdt_allocfail); 19767 if (md_hbuf != NULL) 19768 freeb(md_hbuf); 19769 } 19770 19771 /* send down what we've got so far */ 19772 if (md_mp_head != NULL) { 19773 tcp_multisend_data(tcp, ire, ill, 19774 md_mp_head, obsegs, obbytes, 19775 &rconfirm); 19776 } 19777 legacy_send_no_md: 19778 if (ire != NULL) 19779 IRE_REFRELE(ire); 19780 /* 19781 * Too bad; let the legacy path handle this. 19782 * We specify INT_MAX for the threshold, since 19783 * we gave up with the Multidata processings 19784 * and let the old path have it all. 19785 */ 19786 TCP_STAT(tcp_mdt_legacy_all); 19787 return (tcp_send(q, tcp, mss, tcp_hdr_len, 19788 tcp_tcp_hdr_len, num_sack_blk, usable, 19789 snxt, tail_unsent, xmit_tail, local_time, 19790 INT_MAX)); 19791 } 19792 19793 /* link to any existing ones, if applicable */ 19794 TCP_STAT(tcp_mdt_allocd); 19795 if (md_mp_head == NULL) { 19796 md_mp_head = md_mp; 19797 } else if (tcp_mdt_chain) { 19798 TCP_STAT(tcp_mdt_linked); 19799 linkb(md_mp_head, md_mp); 19800 } 19801 } 19802 19803 ASSERT(md_mp_head != NULL); 19804 ASSERT(tcp_mdt_chain || md_mp_head->b_cont == NULL); 19805 ASSERT(md_mp != NULL && mmd != NULL); 19806 ASSERT(md_hbuf != NULL); 19807 19808 /* 19809 * Packetize the transmittable portion of the data block; 19810 * each data block is essentially added to the Multidata 19811 * as a payload buffer. We also deal with adding more 19812 * than one payload buffers, which happens when the remaining 19813 * packetized portion of the current payload buffer is less 19814 * than MSS, while the next data block in transmit queue 19815 * has enough data to make up for one. This "spillover" 19816 * case essentially creates a split-packet, where portions 19817 * of the packet's payload fragments may span across two 19818 * virtually discontiguous address blocks. 19819 */ 19820 seg_len = mss; 19821 do { 19822 len = seg_len; 19823 19824 ASSERT(len > 0); 19825 ASSERT(max_pld >= 0); 19826 ASSERT(!add_buffer || cur_pld_off == 0); 19827 19828 /* 19829 * First time around for this payload buffer; note 19830 * in the case of a spillover, the following has 19831 * been done prior to adding the split-packet 19832 * descriptor to Multidata, and we don't want to 19833 * repeat the process. 19834 */ 19835 if (add_buffer) { 19836 ASSERT(mmd != NULL); 19837 ASSERT(md_pbuf == NULL); 19838 ASSERT(md_pbuf_nxt == NULL); 19839 ASSERT(pbuf_idx == -1 && pbuf_idx_nxt == -1); 19840 19841 /* 19842 * Have we reached the limit? We'd get to 19843 * this case when we're not chaining the 19844 * Multidata messages together, and since 19845 * we're done, terminate this loop. 19846 */ 19847 if (max_pld == 0) 19848 break; /* done */ 19849 19850 if ((md_pbuf = dupb(*xmit_tail)) == NULL) { 19851 TCP_STAT(tcp_mdt_allocfail); 19852 goto legacy_send; /* out_of_mem */ 19853 } 19854 19855 if (IS_VMLOANED_MBLK(md_pbuf) && !zcopy && 19856 zc_cap != NULL) { 19857 if (!ip_md_zcopy_attr(mmd, NULL, 19858 zc_cap->ill_zerocopy_flags)) { 19859 freeb(md_pbuf); 19860 TCP_STAT(tcp_mdt_allocfail); 19861 /* out_of_mem */ 19862 goto legacy_send; 19863 } 19864 zcopy = B_TRUE; 19865 } 19866 19867 md_pbuf->b_rptr += base_pld_off; 19868 19869 /* 19870 * Add a payload buffer to the Multidata; this 19871 * operation must not fail, or otherwise our 19872 * logic in this routine is broken. There 19873 * is no memory allocation done by the 19874 * routine, so any returned failure simply 19875 * tells us that we've done something wrong. 19876 * 19877 * A failure tells us that either we're adding 19878 * the same payload buffer more than once, or 19879 * we're trying to add more buffers than 19880 * allowed (max_pld calculation is wrong). 19881 * None of the above cases should happen, and 19882 * we panic because either there's horrible 19883 * heap corruption, and/or programming mistake. 19884 */ 19885 pbuf_idx = mmd_addpldbuf(mmd, md_pbuf); 19886 if (pbuf_idx < 0) { 19887 cmn_err(CE_PANIC, "tcp_multisend: " 19888 "payload buffer logic error " 19889 "detected for tcp %p mmd %p " 19890 "pbuf %p (%d)\n", 19891 (void *)tcp, (void *)mmd, 19892 (void *)md_pbuf, pbuf_idx); 19893 } 19894 19895 ASSERT(max_pld > 0); 19896 --max_pld; 19897 add_buffer = B_FALSE; 19898 } 19899 19900 ASSERT(md_mp_head != NULL); 19901 ASSERT(md_pbuf != NULL); 19902 ASSERT(md_pbuf_nxt == NULL); 19903 ASSERT(pbuf_idx != -1); 19904 ASSERT(pbuf_idx_nxt == -1); 19905 ASSERT(*usable > 0); 19906 19907 /* 19908 * We spillover to the next payload buffer only 19909 * if all of the following is true: 19910 * 19911 * 1. There is not enough data on the current 19912 * payload buffer to make up `len', 19913 * 2. We are allowed to send `len', 19914 * 3. The next payload buffer length is large 19915 * enough to accomodate `spill'. 19916 */ 19917 if ((spill = len - *tail_unsent) > 0 && 19918 *usable >= len && 19919 MBLKL((*xmit_tail)->b_cont) >= spill && 19920 max_pld > 0) { 19921 md_pbuf_nxt = dupb((*xmit_tail)->b_cont); 19922 if (md_pbuf_nxt == NULL) { 19923 TCP_STAT(tcp_mdt_allocfail); 19924 goto legacy_send; /* out_of_mem */ 19925 } 19926 19927 if (IS_VMLOANED_MBLK(md_pbuf_nxt) && !zcopy && 19928 zc_cap != NULL) { 19929 if (!ip_md_zcopy_attr(mmd, NULL, 19930 zc_cap->ill_zerocopy_flags)) { 19931 freeb(md_pbuf_nxt); 19932 TCP_STAT(tcp_mdt_allocfail); 19933 /* out_of_mem */ 19934 goto legacy_send; 19935 } 19936 zcopy = B_TRUE; 19937 } 19938 19939 /* 19940 * See comments above on the first call to 19941 * mmd_addpldbuf for explanation on the panic. 19942 */ 19943 pbuf_idx_nxt = mmd_addpldbuf(mmd, md_pbuf_nxt); 19944 if (pbuf_idx_nxt < 0) { 19945 panic("tcp_multisend: " 19946 "next payload buffer logic error " 19947 "detected for tcp %p mmd %p " 19948 "pbuf %p (%d)\n", 19949 (void *)tcp, (void *)mmd, 19950 (void *)md_pbuf_nxt, pbuf_idx_nxt); 19951 } 19952 19953 ASSERT(max_pld > 0); 19954 --max_pld; 19955 } else if (spill > 0) { 19956 /* 19957 * If there's a spillover, but the following 19958 * xmit_tail couldn't give us enough octets 19959 * to reach "len", then stop the current 19960 * Multidata creation and let the legacy 19961 * tcp_send() path take over. We don't want 19962 * to send the tiny segment as part of this 19963 * Multidata for performance reasons; instead, 19964 * we let the legacy path deal with grouping 19965 * it with the subsequent small mblks. 19966 */ 19967 if (*usable >= len && 19968 MBLKL((*xmit_tail)->b_cont) < spill) { 19969 max_pld = 0; 19970 break; /* done */ 19971 } 19972 19973 /* 19974 * We can't spillover, and we are near 19975 * the end of the current payload buffer, 19976 * so send what's left. 19977 */ 19978 ASSERT(*tail_unsent > 0); 19979 len = *tail_unsent; 19980 } 19981 19982 /* tail_unsent is negated if there is a spillover */ 19983 *tail_unsent -= len; 19984 *usable -= len; 19985 ASSERT(*usable >= 0); 19986 19987 if (*usable < mss) 19988 seg_len = *usable; 19989 /* 19990 * Sender SWS avoidance; see comments in tcp_send(); 19991 * everything else is the same, except that we only 19992 * do this here if there is no more data to be sent 19993 * following the current xmit_tail. We don't check 19994 * for 1-byte urgent data because we shouldn't get 19995 * here if TCP_URG_VALID is set. 19996 */ 19997 if (*usable > 0 && *usable < mss && 19998 ((md_pbuf_nxt == NULL && 19999 (*xmit_tail)->b_cont == NULL) || 20000 (md_pbuf_nxt != NULL && 20001 (*xmit_tail)->b_cont->b_cont == NULL)) && 20002 seg_len < (tcp->tcp_max_swnd >> 1) && 20003 (tcp->tcp_unsent - 20004 ((*snxt + len) - tcp->tcp_snxt)) > seg_len && 20005 !tcp->tcp_zero_win_probe) { 20006 if ((*snxt + len) == tcp->tcp_snxt && 20007 (*snxt + len) == tcp->tcp_suna) { 20008 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 20009 } 20010 done = B_TRUE; 20011 } 20012 20013 /* 20014 * Prime pump for IP's checksumming on our behalf; 20015 * include the adjustment for a source route if any. 20016 * Do this only for software/partial hardware checksum 20017 * offload, as this field gets zeroed out later for 20018 * the full hardware checksum offload case. 20019 */ 20020 if (!(hwcksum_flags & HCK_FULLCKSUM)) { 20021 cksum = len + tcp_tcp_hdr_len + tcp->tcp_sum; 20022 cksum = (cksum >> 16) + (cksum & 0xFFFF); 20023 U16_TO_ABE16(cksum, tcp->tcp_tcph->th_sum); 20024 } 20025 20026 U32_TO_ABE32(*snxt, tcp->tcp_tcph->th_seq); 20027 *snxt += len; 20028 20029 tcp->tcp_tcph->th_flags[0] = TH_ACK; 20030 /* 20031 * We set the PUSH bit only if TCP has no more buffered 20032 * data to be transmitted (or if sender SWS avoidance 20033 * takes place), as opposed to setting it for every 20034 * last packet in the burst. 20035 */ 20036 if (done || 20037 (tcp->tcp_unsent - (*snxt - tcp->tcp_snxt)) == 0) 20038 tcp->tcp_tcph->th_flags[0] |= TH_PUSH; 20039 20040 /* 20041 * Set FIN bit if this is our last segment; snxt 20042 * already includes its length, and it will not 20043 * be adjusted after this point. 20044 */ 20045 if (tcp->tcp_valid_bits == TCP_FSS_VALID && 20046 *snxt == tcp->tcp_fss) { 20047 if (!tcp->tcp_fin_acked) { 20048 tcp->tcp_tcph->th_flags[0] |= TH_FIN; 20049 BUMP_MIB(&tcp_mib, tcpOutControl); 20050 } 20051 if (!tcp->tcp_fin_sent) { 20052 tcp->tcp_fin_sent = B_TRUE; 20053 /* 20054 * tcp state must be ESTABLISHED 20055 * in order for us to get here in 20056 * the first place. 20057 */ 20058 tcp->tcp_state = TCPS_FIN_WAIT_1; 20059 20060 /* 20061 * Upon returning from this routine, 20062 * tcp_wput_data() will set tcp_snxt 20063 * to be equal to snxt + tcp_fin_sent. 20064 * This is essentially the same as 20065 * setting it to tcp_fss + 1. 20066 */ 20067 } 20068 } 20069 20070 tcp->tcp_last_sent_len = (ushort_t)len; 20071 20072 len += tcp_hdr_len; 20073 if (tcp->tcp_ipversion == IPV4_VERSION) 20074 tcp->tcp_ipha->ipha_length = htons(len); 20075 else 20076 tcp->tcp_ip6h->ip6_plen = htons(len - 20077 ((char *)&tcp->tcp_ip6h[1] - 20078 tcp->tcp_iphc)); 20079 20080 pkt_info->flags = (PDESC_HBUF_REF | PDESC_PBUF_REF); 20081 20082 /* setup header fragment */ 20083 PDESC_HDR_ADD(pkt_info, 20084 md_hbuf->b_rptr + cur_hdr_off, /* base */ 20085 tcp->tcp_mdt_hdr_head, /* head room */ 20086 tcp_hdr_len, /* len */ 20087 tcp->tcp_mdt_hdr_tail); /* tail room */ 20088 20089 ASSERT(pkt_info->hdr_lim - pkt_info->hdr_base == 20090 hdr_frag_sz); 20091 ASSERT(MBLKIN(md_hbuf, 20092 (pkt_info->hdr_base - md_hbuf->b_rptr), 20093 PDESC_HDRSIZE(pkt_info))); 20094 20095 /* setup first payload fragment */ 20096 PDESC_PLD_INIT(pkt_info); 20097 PDESC_PLD_SPAN_ADD(pkt_info, 20098 pbuf_idx, /* index */ 20099 md_pbuf->b_rptr + cur_pld_off, /* start */ 20100 tcp->tcp_last_sent_len); /* len */ 20101 20102 /* create a split-packet in case of a spillover */ 20103 if (md_pbuf_nxt != NULL) { 20104 ASSERT(spill > 0); 20105 ASSERT(pbuf_idx_nxt > pbuf_idx); 20106 ASSERT(!add_buffer); 20107 20108 md_pbuf = md_pbuf_nxt; 20109 md_pbuf_nxt = NULL; 20110 pbuf_idx = pbuf_idx_nxt; 20111 pbuf_idx_nxt = -1; 20112 cur_pld_off = spill; 20113 20114 /* trim out first payload fragment */ 20115 PDESC_PLD_SPAN_TRIM(pkt_info, 0, spill); 20116 20117 /* setup second payload fragment */ 20118 PDESC_PLD_SPAN_ADD(pkt_info, 20119 pbuf_idx, /* index */ 20120 md_pbuf->b_rptr, /* start */ 20121 spill); /* len */ 20122 20123 if ((*xmit_tail)->b_next == NULL) { 20124 /* 20125 * Store the lbolt used for RTT 20126 * estimation. We can only record one 20127 * timestamp per mblk so we do it when 20128 * we reach the end of the payload 20129 * buffer. Also we only take a new 20130 * timestamp sample when the previous 20131 * timed data from the same mblk has 20132 * been ack'ed. 20133 */ 20134 (*xmit_tail)->b_prev = local_time; 20135 (*xmit_tail)->b_next = 20136 (mblk_t *)(uintptr_t)first_snxt; 20137 } 20138 20139 first_snxt = *snxt - spill; 20140 20141 /* 20142 * Advance xmit_tail; usable could be 0 by 20143 * the time we got here, but we made sure 20144 * above that we would only spillover to 20145 * the next data block if usable includes 20146 * the spilled-over amount prior to the 20147 * subtraction. Therefore, we are sure 20148 * that xmit_tail->b_cont can't be NULL. 20149 */ 20150 ASSERT((*xmit_tail)->b_cont != NULL); 20151 *xmit_tail = (*xmit_tail)->b_cont; 20152 ASSERT((uintptr_t)MBLKL(*xmit_tail) <= 20153 (uintptr_t)INT_MAX); 20154 *tail_unsent = (int)MBLKL(*xmit_tail) - spill; 20155 } else { 20156 cur_pld_off += tcp->tcp_last_sent_len; 20157 } 20158 20159 /* 20160 * Fill in the header using the template header, and 20161 * add options such as time-stamp, ECN and/or SACK, 20162 * as needed. 20163 */ 20164 tcp_fill_header(tcp, pkt_info->hdr_rptr, 20165 (clock_t)local_time, num_sack_blk); 20166 20167 /* take care of some IP header businesses */ 20168 if (af == AF_INET) { 20169 ipha = (ipha_t *)pkt_info->hdr_rptr; 20170 20171 ASSERT(OK_32PTR((uchar_t *)ipha)); 20172 ASSERT(PDESC_HDRL(pkt_info) >= 20173 IP_SIMPLE_HDR_LENGTH); 20174 ASSERT(ipha->ipha_version_and_hdr_length == 20175 IP_SIMPLE_HDR_VERSION); 20176 20177 /* 20178 * Assign ident value for current packet; see 20179 * related comments in ip_wput_ire() about the 20180 * contract private interface with clustering 20181 * group. 20182 */ 20183 clusterwide = B_FALSE; 20184 if (cl_inet_ipident != NULL) { 20185 ASSERT(cl_inet_isclusterwide != NULL); 20186 if ((*cl_inet_isclusterwide)(IPPROTO_IP, 20187 AF_INET, 20188 (uint8_t *)(uintptr_t)src)) { 20189 ipha->ipha_ident = 20190 (*cl_inet_ipident) 20191 (IPPROTO_IP, AF_INET, 20192 (uint8_t *)(uintptr_t)src, 20193 (uint8_t *)(uintptr_t)dst); 20194 clusterwide = B_TRUE; 20195 } 20196 } 20197 20198 if (!clusterwide) { 20199 ipha->ipha_ident = (uint16_t) 20200 atomic_add_32_nv( 20201 &ire->ire_ident, 1); 20202 } 20203 #ifndef _BIG_ENDIAN 20204 ipha->ipha_ident = (ipha->ipha_ident << 8) | 20205 (ipha->ipha_ident >> 8); 20206 #endif 20207 } else { 20208 ip6h = (ip6_t *)pkt_info->hdr_rptr; 20209 20210 ASSERT(OK_32PTR((uchar_t *)ip6h)); 20211 ASSERT(IPVER(ip6h) == IPV6_VERSION); 20212 ASSERT(ip6h->ip6_nxt == IPPROTO_TCP); 20213 ASSERT(PDESC_HDRL(pkt_info) >= 20214 (IPV6_HDR_LEN + TCP_CHECKSUM_OFFSET + 20215 TCP_CHECKSUM_SIZE)); 20216 ASSERT(tcp->tcp_ipversion == IPV6_VERSION); 20217 20218 if (tcp->tcp_ip_forward_progress) { 20219 rconfirm = B_TRUE; 20220 tcp->tcp_ip_forward_progress = B_FALSE; 20221 } 20222 } 20223 20224 /* at least one payload span, and at most two */ 20225 ASSERT(pkt_info->pld_cnt > 0 && pkt_info->pld_cnt < 3); 20226 20227 /* add the packet descriptor to Multidata */ 20228 if ((pkt = mmd_addpdesc(mmd, pkt_info, &err, 20229 KM_NOSLEEP)) == NULL) { 20230 /* 20231 * Any failure other than ENOMEM indicates 20232 * that we have passed in invalid pkt_info 20233 * or parameters to mmd_addpdesc, which must 20234 * not happen. 20235 * 20236 * EINVAL is a result of failure on boundary 20237 * checks against the pkt_info contents. It 20238 * should not happen, and we panic because 20239 * either there's horrible heap corruption, 20240 * and/or programming mistake. 20241 */ 20242 if (err != ENOMEM) { 20243 cmn_err(CE_PANIC, "tcp_multisend: " 20244 "pdesc logic error detected for " 20245 "tcp %p mmd %p pinfo %p (%d)\n", 20246 (void *)tcp, (void *)mmd, 20247 (void *)pkt_info, err); 20248 } 20249 TCP_STAT(tcp_mdt_addpdescfail); 20250 goto legacy_send; /* out_of_mem */ 20251 } 20252 ASSERT(pkt != NULL); 20253 20254 /* calculate IP header and TCP checksums */ 20255 if (af == AF_INET) { 20256 /* calculate pseudo-header checksum */ 20257 cksum = (dst >> 16) + (dst & 0xFFFF) + 20258 (src >> 16) + (src & 0xFFFF); 20259 20260 /* offset for TCP header checksum */ 20261 up = IPH_TCPH_CHECKSUMP(ipha, 20262 IP_SIMPLE_HDR_LENGTH); 20263 } else { 20264 up = (uint16_t *)&ip6h->ip6_src; 20265 20266 /* calculate pseudo-header checksum */ 20267 cksum = up[0] + up[1] + up[2] + up[3] + 20268 up[4] + up[5] + up[6] + up[7] + 20269 up[8] + up[9] + up[10] + up[11] + 20270 up[12] + up[13] + up[14] + up[15]; 20271 20272 /* Fold the initial sum */ 20273 cksum = (cksum & 0xffff) + (cksum >> 16); 20274 20275 up = (uint16_t *)(((uchar_t *)ip6h) + 20276 IPV6_HDR_LEN + TCP_CHECKSUM_OFFSET); 20277 } 20278 20279 if (hwcksum_flags & HCK_FULLCKSUM) { 20280 /* clear checksum field for hardware */ 20281 *up = 0; 20282 } else if (hwcksum_flags & HCK_PARTIALCKSUM) { 20283 uint32_t sum; 20284 20285 /* pseudo-header checksumming */ 20286 sum = *up + cksum + IP_TCP_CSUM_COMP; 20287 sum = (sum & 0xFFFF) + (sum >> 16); 20288 *up = (sum & 0xFFFF) + (sum >> 16); 20289 } else { 20290 /* software checksumming */ 20291 TCP_STAT(tcp_out_sw_cksum); 20292 TCP_STAT_UPDATE(tcp_out_sw_cksum_bytes, 20293 tcp->tcp_hdr_len + tcp->tcp_last_sent_len); 20294 *up = IP_MD_CSUM(pkt, tcp->tcp_ip_hdr_len, 20295 cksum + IP_TCP_CSUM_COMP); 20296 if (*up == 0) 20297 *up = 0xFFFF; 20298 } 20299 20300 /* IPv4 header checksum */ 20301 if (af == AF_INET) { 20302 ipha->ipha_fragment_offset_and_flags |= 20303 (uint32_t)htons(ire->ire_frag_flag); 20304 20305 if (hwcksum_flags & HCK_IPV4_HDRCKSUM) { 20306 ipha->ipha_hdr_checksum = 0; 20307 } else { 20308 IP_HDR_CKSUM(ipha, cksum, 20309 ((uint32_t *)ipha)[0], 20310 ((uint16_t *)ipha)[4]); 20311 } 20312 } 20313 20314 if (af == AF_INET && HOOKS4_INTERESTED_PHYSICAL_OUT|| 20315 af == AF_INET6 && HOOKS6_INTERESTED_PHYSICAL_OUT) { 20316 /* build header(IP/TCP) mblk for this segment */ 20317 if ((mp = dupb(md_hbuf)) == NULL) 20318 goto legacy_send; 20319 20320 mp->b_rptr = pkt_info->hdr_rptr; 20321 mp->b_wptr = pkt_info->hdr_wptr; 20322 20323 /* build payload mblk for this segment */ 20324 if ((mp1 = dupb(*xmit_tail)) == NULL) { 20325 freemsg(mp); 20326 goto legacy_send; 20327 } 20328 mp1->b_wptr = md_pbuf->b_rptr + cur_pld_off; 20329 mp1->b_rptr = mp1->b_wptr - 20330 tcp->tcp_last_sent_len; 20331 linkb(mp, mp1); 20332 20333 pld_start = mp1->b_rptr; 20334 20335 if (af == AF_INET) { 20336 DTRACE_PROBE4( 20337 ip4__physical__out__start, 20338 ill_t *, NULL, 20339 ill_t *, ill, 20340 ipha_t *, ipha, 20341 mblk_t *, mp); 20342 FW_HOOKS(ip4_physical_out_event, 20343 ipv4firewall_physical_out, 20344 NULL, ill, ipha, mp, mp); 20345 DTRACE_PROBE1( 20346 ip4__physical__out__end, 20347 mblk_t *, mp); 20348 } else { 20349 DTRACE_PROBE4( 20350 ip6__physical__out_start, 20351 ill_t *, NULL, 20352 ill_t *, ill, 20353 ip6_t *, ip6h, 20354 mblk_t *, mp); 20355 FW_HOOKS6(ip6_physical_out_event, 20356 ipv6firewall_physical_out, 20357 NULL, ill, ip6h, mp, mp); 20358 DTRACE_PROBE1( 20359 ip6__physical__out__end, 20360 mblk_t *, mp); 20361 } 20362 20363 if (buf_trunked && mp != NULL) { 20364 /* 20365 * Need to pass it to normal path. 20366 */ 20367 CALL_IP_WPUT(tcp->tcp_connp, q, mp); 20368 } else if (mp == NULL || 20369 mp->b_rptr != pkt_info->hdr_rptr || 20370 mp->b_wptr != pkt_info->hdr_wptr || 20371 (mp1 = mp->b_cont) == NULL || 20372 mp1->b_rptr != pld_start || 20373 mp1->b_wptr != pld_start + 20374 tcp->tcp_last_sent_len || 20375 mp1->b_cont != NULL) { 20376 /* 20377 * Need to pass all packets of this 20378 * buffer to normal path, either when 20379 * packet is blocked, or when boundary 20380 * of header buffer or payload buffer 20381 * has been changed by FW_HOOKS[6]. 20382 */ 20383 buf_trunked = B_TRUE; 20384 if (md_mp_head != NULL) { 20385 err = (intptr_t)rmvb(md_mp_head, 20386 md_mp); 20387 if (err == 0) 20388 md_mp_head = NULL; 20389 } 20390 20391 /* send down what we've got so far */ 20392 if (md_mp_head != NULL) { 20393 tcp_multisend_data(tcp, ire, 20394 ill, md_mp_head, obsegs, 20395 obbytes, &rconfirm); 20396 } 20397 md_mp_head = NULL; 20398 20399 if (mp != NULL) 20400 CALL_IP_WPUT(tcp->tcp_connp, 20401 q, mp); 20402 20403 mp1 = fw_mp_head; 20404 do { 20405 mp = mp1; 20406 mp1 = mp1->b_next; 20407 mp->b_next = NULL; 20408 mp->b_prev = NULL; 20409 CALL_IP_WPUT(tcp->tcp_connp, 20410 q, mp); 20411 } while (mp1 != NULL); 20412 20413 fw_mp_head = NULL; 20414 } else { 20415 if (fw_mp_head == NULL) 20416 fw_mp_head = mp; 20417 else 20418 fw_mp_head->b_prev->b_next = mp; 20419 fw_mp_head->b_prev = mp; 20420 } 20421 } 20422 20423 /* advance header offset */ 20424 cur_hdr_off += hdr_frag_sz; 20425 20426 obbytes += tcp->tcp_last_sent_len; 20427 ++obsegs; 20428 } while (!done && *usable > 0 && --num_burst_seg > 0 && 20429 *tail_unsent > 0); 20430 20431 if ((*xmit_tail)->b_next == NULL) { 20432 /* 20433 * Store the lbolt used for RTT estimation. We can only 20434 * record one timestamp per mblk so we do it when we 20435 * reach the end of the payload buffer. Also we only 20436 * take a new timestamp sample when the previous timed 20437 * data from the same mblk has been ack'ed. 20438 */ 20439 (*xmit_tail)->b_prev = local_time; 20440 (*xmit_tail)->b_next = (mblk_t *)(uintptr_t)first_snxt; 20441 } 20442 20443 ASSERT(*tail_unsent >= 0); 20444 if (*tail_unsent > 0) { 20445 /* 20446 * We got here because we broke out of the above 20447 * loop due to of one of the following cases: 20448 * 20449 * 1. len < adjusted MSS (i.e. small), 20450 * 2. Sender SWS avoidance, 20451 * 3. max_pld is zero. 20452 * 20453 * We are done for this Multidata, so trim our 20454 * last payload buffer (if any) accordingly. 20455 */ 20456 if (md_pbuf != NULL) 20457 md_pbuf->b_wptr -= *tail_unsent; 20458 } else if (*usable > 0) { 20459 *xmit_tail = (*xmit_tail)->b_cont; 20460 ASSERT((uintptr_t)MBLKL(*xmit_tail) <= 20461 (uintptr_t)INT_MAX); 20462 *tail_unsent = (int)MBLKL(*xmit_tail); 20463 add_buffer = B_TRUE; 20464 } 20465 20466 while (fw_mp_head) { 20467 mp = fw_mp_head; 20468 fw_mp_head = fw_mp_head->b_next; 20469 mp->b_prev = mp->b_next = NULL; 20470 freemsg(mp); 20471 } 20472 if (buf_trunked) { 20473 TCP_STAT(tcp_mdt_discarded); 20474 freeb(md_mp); 20475 buf_trunked = B_FALSE; 20476 } 20477 } while (!done && *usable > 0 && num_burst_seg > 0 && 20478 (tcp_mdt_chain || max_pld > 0)); 20479 20480 if (md_mp_head != NULL) { 20481 /* send everything down */ 20482 tcp_multisend_data(tcp, ire, ill, md_mp_head, obsegs, obbytes, 20483 &rconfirm); 20484 } 20485 20486 #undef PREP_NEW_MULTIDATA 20487 #undef PREP_NEW_PBUF 20488 #undef IPVER 20489 20490 IRE_REFRELE(ire); 20491 return (0); 20492 } 20493 20494 /* 20495 * A wrapper function for sending one or more Multidata messages down to 20496 * the module below ip; this routine does not release the reference of the 20497 * IRE (caller does that). This routine is analogous to tcp_send_data(). 20498 */ 20499 static void 20500 tcp_multisend_data(tcp_t *tcp, ire_t *ire, const ill_t *ill, mblk_t *md_mp_head, 20501 const uint_t obsegs, const uint_t obbytes, boolean_t *rconfirm) 20502 { 20503 uint64_t delta; 20504 nce_t *nce; 20505 20506 ASSERT(ire != NULL && ill != NULL); 20507 ASSERT(ire->ire_stq != NULL); 20508 ASSERT(md_mp_head != NULL); 20509 ASSERT(rconfirm != NULL); 20510 20511 /* adjust MIBs and IRE timestamp */ 20512 TCP_RECORD_TRACE(tcp, md_mp_head, TCP_TRACE_SEND_PKT); 20513 tcp->tcp_obsegs += obsegs; 20514 UPDATE_MIB(&tcp_mib, tcpOutDataSegs, obsegs); 20515 UPDATE_MIB(&tcp_mib, tcpOutDataBytes, obbytes); 20516 TCP_STAT_UPDATE(tcp_mdt_pkt_out, obsegs); 20517 20518 if (tcp->tcp_ipversion == IPV4_VERSION) { 20519 TCP_STAT_UPDATE(tcp_mdt_pkt_out_v4, obsegs); 20520 UPDATE_MIB(&ip_mib, ipOutRequests, obsegs); 20521 } else { 20522 TCP_STAT_UPDATE(tcp_mdt_pkt_out_v6, obsegs); 20523 UPDATE_MIB(&ip6_mib, ipv6OutRequests, obsegs); 20524 } 20525 20526 ire->ire_ob_pkt_count += obsegs; 20527 if (ire->ire_ipif != NULL) 20528 atomic_add_32(&ire->ire_ipif->ipif_ob_pkt_count, obsegs); 20529 ire->ire_last_used_time = lbolt; 20530 20531 /* send it down */ 20532 putnext(ire->ire_stq, md_mp_head); 20533 20534 /* we're done for TCP/IPv4 */ 20535 if (tcp->tcp_ipversion == IPV4_VERSION) 20536 return; 20537 20538 nce = ire->ire_nce; 20539 20540 ASSERT(nce != NULL); 20541 ASSERT(!(nce->nce_flags & (NCE_F_NONUD|NCE_F_PERMANENT))); 20542 ASSERT(nce->nce_state != ND_INCOMPLETE); 20543 20544 /* reachability confirmation? */ 20545 if (*rconfirm) { 20546 nce->nce_last = TICK_TO_MSEC(lbolt64); 20547 if (nce->nce_state != ND_REACHABLE) { 20548 mutex_enter(&nce->nce_lock); 20549 nce->nce_state = ND_REACHABLE; 20550 nce->nce_pcnt = ND_MAX_UNICAST_SOLICIT; 20551 mutex_exit(&nce->nce_lock); 20552 (void) untimeout(nce->nce_timeout_id); 20553 if (ip_debug > 2) { 20554 /* ip1dbg */ 20555 pr_addr_dbg("tcp_multisend_data: state " 20556 "for %s changed to REACHABLE\n", 20557 AF_INET6, &ire->ire_addr_v6); 20558 } 20559 } 20560 /* reset transport reachability confirmation */ 20561 *rconfirm = B_FALSE; 20562 } 20563 20564 delta = TICK_TO_MSEC(lbolt64) - nce->nce_last; 20565 ip1dbg(("tcp_multisend_data: delta = %" PRId64 20566 " ill_reachable_time = %d \n", delta, ill->ill_reachable_time)); 20567 20568 if (delta > (uint64_t)ill->ill_reachable_time) { 20569 mutex_enter(&nce->nce_lock); 20570 switch (nce->nce_state) { 20571 case ND_REACHABLE: 20572 case ND_STALE: 20573 /* 20574 * ND_REACHABLE is identical to ND_STALE in this 20575 * specific case. If reachable time has expired for 20576 * this neighbor (delta is greater than reachable 20577 * time), conceptually, the neighbor cache is no 20578 * longer in REACHABLE state, but already in STALE 20579 * state. So the correct transition here is to 20580 * ND_DELAY. 20581 */ 20582 nce->nce_state = ND_DELAY; 20583 mutex_exit(&nce->nce_lock); 20584 NDP_RESTART_TIMER(nce, delay_first_probe_time); 20585 if (ip_debug > 3) { 20586 /* ip2dbg */ 20587 pr_addr_dbg("tcp_multisend_data: state " 20588 "for %s changed to DELAY\n", 20589 AF_INET6, &ire->ire_addr_v6); 20590 } 20591 break; 20592 case ND_DELAY: 20593 case ND_PROBE: 20594 mutex_exit(&nce->nce_lock); 20595 /* Timers have already started */ 20596 break; 20597 case ND_UNREACHABLE: 20598 /* 20599 * ndp timer has detected that this nce is 20600 * unreachable and initiated deleting this nce 20601 * and all its associated IREs. This is a race 20602 * where we found the ire before it was deleted 20603 * and have just sent out a packet using this 20604 * unreachable nce. 20605 */ 20606 mutex_exit(&nce->nce_lock); 20607 break; 20608 default: 20609 ASSERT(0); 20610 } 20611 } 20612 } 20613 20614 /* 20615 * Derived from tcp_send_data(). 20616 */ 20617 static void 20618 tcp_lsosend_data(tcp_t *tcp, mblk_t *mp, ire_t *ire, ill_t *ill, const int mss, 20619 int num_lso_seg) 20620 { 20621 ipha_t *ipha; 20622 mblk_t *ire_fp_mp; 20623 uint_t ire_fp_mp_len; 20624 uint32_t hcksum_txflags = 0; 20625 ipaddr_t src; 20626 ipaddr_t dst; 20627 uint32_t cksum; 20628 uint16_t *up; 20629 20630 ASSERT(DB_TYPE(mp) == M_DATA); 20631 ASSERT(tcp->tcp_state == TCPS_ESTABLISHED); 20632 ASSERT(tcp->tcp_ipversion == IPV4_VERSION); 20633 ASSERT(tcp->tcp_connp != NULL); 20634 ASSERT(CONN_IS_LSO_MD_FASTPATH(tcp->tcp_connp)); 20635 20636 ipha = (ipha_t *)mp->b_rptr; 20637 src = ipha->ipha_src; 20638 dst = ipha->ipha_dst; 20639 20640 ASSERT(ipha->ipha_ident == 0 || ipha->ipha_ident == IP_HDR_INCLUDED); 20641 ipha->ipha_ident = (uint16_t)atomic_add_32_nv(&ire->ire_ident, 20642 num_lso_seg); 20643 #ifndef _BIG_ENDIAN 20644 ipha->ipha_ident = (ipha->ipha_ident << 8) | (ipha->ipha_ident >> 8); 20645 #endif 20646 if (tcp->tcp_snd_zcopy_aware) { 20647 if ((ill->ill_capabilities & ILL_CAPAB_ZEROCOPY) == 0 || 20648 (ill->ill_zerocopy_capab->ill_zerocopy_flags == 0)) 20649 mp = tcp_zcopy_disable(tcp, mp); 20650 } 20651 20652 if (ILL_HCKSUM_CAPABLE(ill) && dohwcksum) { 20653 ASSERT(ill->ill_hcksum_capab != NULL); 20654 hcksum_txflags = ill->ill_hcksum_capab->ill_hcksum_txflags; 20655 } 20656 20657 /* 20658 * Since the TCP checksum should be recalculated by h/w, we can just 20659 * zero the checksum field for HCK_FULLCKSUM, or calculate partial 20660 * pseudo-header checksum for HCK_PARTIALCKSUM. 20661 * The partial pseudo-header excludes TCP length, that was calculated 20662 * in tcp_send(), so to zero *up before further processing. 20663 */ 20664 cksum = (dst >> 16) + (dst & 0xFFFF) + (src >> 16) + (src & 0xFFFF); 20665 20666 up = IPH_TCPH_CHECKSUMP(ipha, IP_SIMPLE_HDR_LENGTH); 20667 *up = 0; 20668 20669 IP_CKSUM_XMIT_FAST(ire->ire_ipversion, hcksum_txflags, mp, ipha, up, 20670 IPPROTO_TCP, IP_SIMPLE_HDR_LENGTH, ntohs(ipha->ipha_length), cksum); 20671 20672 /* 20673 * Append LSO flag to DB_LSOFLAGS(mp) and set the mss to DB_LSOMSS(mp). 20674 */ 20675 DB_LSOFLAGS(mp) |= HW_LSO; 20676 DB_LSOMSS(mp) = mss; 20677 20678 ipha->ipha_fragment_offset_and_flags |= 20679 (uint32_t)htons(ire->ire_frag_flag); 20680 20681 ire_fp_mp = ire->ire_nce->nce_fp_mp; 20682 ire_fp_mp_len = MBLKL(ire_fp_mp); 20683 ASSERT(DB_TYPE(ire_fp_mp) == M_DATA); 20684 mp->b_rptr = (uchar_t *)ipha - ire_fp_mp_len; 20685 bcopy(ire_fp_mp->b_rptr, mp->b_rptr, ire_fp_mp_len); 20686 20687 UPDATE_OB_PKT_COUNT(ire); 20688 ire->ire_last_used_time = lbolt; 20689 BUMP_MIB(&ip_mib, ipOutRequests); 20690 20691 if (ILL_DLS_CAPABLE(ill)) { 20692 /* 20693 * Send the packet directly to DLD, where it may be queued 20694 * depending on the availability of transmit resources at 20695 * the media layer. 20696 */ 20697 IP_DLS_ILL_TX(ill, ipha, mp); 20698 } else { 20699 ill_t *out_ill = (ill_t *)ire->ire_stq->q_ptr; 20700 DTRACE_PROBE4(ip4__physical__out__start, 20701 ill_t *, NULL, ill_t *, out_ill, 20702 ipha_t *, ipha, mblk_t *, mp); 20703 FW_HOOKS(ip4_physical_out_event, ipv4firewall_physical_out, 20704 NULL, out_ill, ipha, mp, mp); 20705 DTRACE_PROBE1(ip4__physical__out__end, mblk_t *, mp); 20706 if (mp != NULL) 20707 putnext(ire->ire_stq, mp); 20708 } 20709 } 20710 20711 /* 20712 * tcp_send() is called by tcp_wput_data() for non-Multidata transmission 20713 * scheme, and returns one of the following: 20714 * 20715 * -1 = failed allocation. 20716 * 0 = success; burst count reached, or usable send window is too small, 20717 * and that we'd rather wait until later before sending again. 20718 * 1 = success; we are called from tcp_multisend(), and both usable send 20719 * window and tail_unsent are greater than the MDT threshold, and thus 20720 * Multidata Transmit should be used instead. 20721 */ 20722 static int 20723 tcp_send(queue_t *q, tcp_t *tcp, const int mss, const int tcp_hdr_len, 20724 const int tcp_tcp_hdr_len, const int num_sack_blk, int *usable, 20725 uint_t *snxt, int *tail_unsent, mblk_t **xmit_tail, mblk_t *local_time, 20726 const int mdt_thres) 20727 { 20728 int num_burst_seg = tcp->tcp_snd_burst; 20729 ire_t *ire = NULL; 20730 ill_t *ill = NULL; 20731 mblk_t *ire_fp_mp = NULL; 20732 uint_t ire_fp_mp_len = 0; 20733 int num_lso_seg = 1; 20734 uint_t lso_usable; 20735 boolean_t do_lso_send = B_FALSE; 20736 20737 /* 20738 * Check LSO capability before any further work. And the similar check 20739 * need to be done in for(;;) loop. 20740 * LSO will be deployed when therer is more than one mss of available 20741 * data and a burst transmission is allowed. 20742 */ 20743 if (tcp->tcp_lso && 20744 (tcp->tcp_valid_bits == 0 || 20745 tcp->tcp_valid_bits == TCP_FSS_VALID) && 20746 num_burst_seg >= 2 && (*usable - 1) / mss >= 1) { 20747 /* 20748 * Try to find usable IRE/ILL and do basic check to the ILL. 20749 */ 20750 if (tcp_send_find_ire_ill(tcp, NULL, &ire, &ill)) { 20751 /* 20752 * Enable LSO with this transmission. 20753 * Since IRE has been hold in 20754 * tcp_send_find_ire_ill(), IRE_REFRELE(ire) 20755 * should be called before return. 20756 */ 20757 do_lso_send = B_TRUE; 20758 ire_fp_mp = ire->ire_nce->nce_fp_mp; 20759 ire_fp_mp_len = MBLKL(ire_fp_mp); 20760 /* Round up to multiple of 4 */ 20761 ire_fp_mp_len = ((ire_fp_mp_len + 3) / 4) * 4; 20762 } else { 20763 do_lso_send = B_FALSE; 20764 ill = NULL; 20765 } 20766 } 20767 20768 for (;;) { 20769 struct datab *db; 20770 tcph_t *tcph; 20771 uint32_t sum; 20772 mblk_t *mp, *mp1; 20773 uchar_t *rptr; 20774 int len; 20775 20776 /* 20777 * If we're called by tcp_multisend(), and the amount of 20778 * sendable data as well as the size of current xmit_tail 20779 * is beyond the MDT threshold, return to the caller and 20780 * let the large data transmit be done using MDT. 20781 */ 20782 if (*usable > 0 && *usable > mdt_thres && 20783 (*tail_unsent > mdt_thres || (*tail_unsent == 0 && 20784 MBLKL((*xmit_tail)->b_cont) > mdt_thres))) { 20785 ASSERT(tcp->tcp_mdt); 20786 return (1); /* success; do large send */ 20787 } 20788 20789 if (num_burst_seg == 0) 20790 break; /* success; burst count reached */ 20791 20792 /* 20793 * Calculate the maximum payload length we can send in *one* 20794 * time. 20795 */ 20796 if (do_lso_send) { 20797 /* 20798 * Check whether need to do LSO any more. 20799 */ 20800 if (num_burst_seg >= 2 && (*usable - 1) / mss >= 1) { 20801 lso_usable = MIN(tcp->tcp_lso_max, *usable); 20802 lso_usable = MIN(lso_usable, 20803 num_burst_seg * mss); 20804 20805 num_lso_seg = lso_usable / mss; 20806 if (lso_usable % mss) { 20807 num_lso_seg++; 20808 tcp->tcp_last_sent_len = (ushort_t) 20809 (lso_usable % mss); 20810 } else { 20811 tcp->tcp_last_sent_len = (ushort_t)mss; 20812 } 20813 } else { 20814 do_lso_send = B_FALSE; 20815 num_lso_seg = 1; 20816 lso_usable = mss; 20817 } 20818 } 20819 20820 ASSERT(num_lso_seg <= IP_MAXPACKET / mss + 1); 20821 20822 /* 20823 * Adjust num_burst_seg here. 20824 */ 20825 num_burst_seg -= num_lso_seg; 20826 20827 len = mss; 20828 if (len > *usable) { 20829 ASSERT(do_lso_send == B_FALSE); 20830 20831 len = *usable; 20832 if (len <= 0) { 20833 /* Terminate the loop */ 20834 break; /* success; too small */ 20835 } 20836 /* 20837 * Sender silly-window avoidance. 20838 * Ignore this if we are going to send a 20839 * zero window probe out. 20840 * 20841 * TODO: force data into microscopic window? 20842 * ==> (!pushed || (unsent > usable)) 20843 */ 20844 if (len < (tcp->tcp_max_swnd >> 1) && 20845 (tcp->tcp_unsent - (*snxt - tcp->tcp_snxt)) > len && 20846 !((tcp->tcp_valid_bits & TCP_URG_VALID) && 20847 len == 1) && (! tcp->tcp_zero_win_probe)) { 20848 /* 20849 * If the retransmit timer is not running 20850 * we start it so that we will retransmit 20851 * in the case when the the receiver has 20852 * decremented the window. 20853 */ 20854 if (*snxt == tcp->tcp_snxt && 20855 *snxt == tcp->tcp_suna) { 20856 /* 20857 * We are not supposed to send 20858 * anything. So let's wait a little 20859 * bit longer before breaking SWS 20860 * avoidance. 20861 * 20862 * What should the value be? 20863 * Suggestion: MAX(init rexmit time, 20864 * tcp->tcp_rto) 20865 */ 20866 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 20867 } 20868 break; /* success; too small */ 20869 } 20870 } 20871 20872 tcph = tcp->tcp_tcph; 20873 20874 /* 20875 * The reason to adjust len here is that we need to set flags 20876 * and calculate checksum. 20877 */ 20878 if (do_lso_send) 20879 len = lso_usable; 20880 20881 *usable -= len; /* Approximate - can be adjusted later */ 20882 if (*usable > 0) 20883 tcph->th_flags[0] = TH_ACK; 20884 else 20885 tcph->th_flags[0] = (TH_ACK | TH_PUSH); 20886 20887 /* 20888 * Prime pump for IP's checksumming on our behalf 20889 * Include the adjustment for a source route if any. 20890 */ 20891 sum = len + tcp_tcp_hdr_len + tcp->tcp_sum; 20892 sum = (sum >> 16) + (sum & 0xFFFF); 20893 U16_TO_ABE16(sum, tcph->th_sum); 20894 20895 U32_TO_ABE32(*snxt, tcph->th_seq); 20896 20897 /* 20898 * Branch off to tcp_xmit_mp() if any of the VALID bits is 20899 * set. For the case when TCP_FSS_VALID is the only valid 20900 * bit (normal active close), branch off only when we think 20901 * that the FIN flag needs to be set. Note for this case, 20902 * that (snxt + len) may not reflect the actual seg_len, 20903 * as len may be further reduced in tcp_xmit_mp(). If len 20904 * gets modified, we will end up here again. 20905 */ 20906 if (tcp->tcp_valid_bits != 0 && 20907 (tcp->tcp_valid_bits != TCP_FSS_VALID || 20908 ((*snxt + len) == tcp->tcp_fss))) { 20909 uchar_t *prev_rptr; 20910 uint32_t prev_snxt = tcp->tcp_snxt; 20911 20912 if (*tail_unsent == 0) { 20913 ASSERT((*xmit_tail)->b_cont != NULL); 20914 *xmit_tail = (*xmit_tail)->b_cont; 20915 prev_rptr = (*xmit_tail)->b_rptr; 20916 *tail_unsent = (int)((*xmit_tail)->b_wptr - 20917 (*xmit_tail)->b_rptr); 20918 } else { 20919 prev_rptr = (*xmit_tail)->b_rptr; 20920 (*xmit_tail)->b_rptr = (*xmit_tail)->b_wptr - 20921 *tail_unsent; 20922 } 20923 mp = tcp_xmit_mp(tcp, *xmit_tail, len, NULL, NULL, 20924 *snxt, B_FALSE, (uint32_t *)&len, B_FALSE); 20925 /* Restore tcp_snxt so we get amount sent right. */ 20926 tcp->tcp_snxt = prev_snxt; 20927 if (prev_rptr == (*xmit_tail)->b_rptr) { 20928 /* 20929 * If the previous timestamp is still in use, 20930 * don't stomp on it. 20931 */ 20932 if ((*xmit_tail)->b_next == NULL) { 20933 (*xmit_tail)->b_prev = local_time; 20934 (*xmit_tail)->b_next = 20935 (mblk_t *)(uintptr_t)(*snxt); 20936 } 20937 } else 20938 (*xmit_tail)->b_rptr = prev_rptr; 20939 20940 if (mp == NULL) { 20941 if (ire != NULL) 20942 IRE_REFRELE(ire); 20943 return (-1); 20944 } 20945 mp1 = mp->b_cont; 20946 20947 if (len <= mss) /* LSO is unusable (!do_lso_send) */ 20948 tcp->tcp_last_sent_len = (ushort_t)len; 20949 while (mp1->b_cont) { 20950 *xmit_tail = (*xmit_tail)->b_cont; 20951 (*xmit_tail)->b_prev = local_time; 20952 (*xmit_tail)->b_next = 20953 (mblk_t *)(uintptr_t)(*snxt); 20954 mp1 = mp1->b_cont; 20955 } 20956 *snxt += len; 20957 *tail_unsent = (*xmit_tail)->b_wptr - mp1->b_wptr; 20958 BUMP_LOCAL(tcp->tcp_obsegs); 20959 BUMP_MIB(&tcp_mib, tcpOutDataSegs); 20960 UPDATE_MIB(&tcp_mib, tcpOutDataBytes, len); 20961 TCP_RECORD_TRACE(tcp, mp, TCP_TRACE_SEND_PKT); 20962 tcp_send_data(tcp, q, mp); 20963 continue; 20964 } 20965 20966 *snxt += len; /* Adjust later if we don't send all of len */ 20967 BUMP_MIB(&tcp_mib, tcpOutDataSegs); 20968 UPDATE_MIB(&tcp_mib, tcpOutDataBytes, len); 20969 20970 if (*tail_unsent) { 20971 /* Are the bytes above us in flight? */ 20972 rptr = (*xmit_tail)->b_wptr - *tail_unsent; 20973 if (rptr != (*xmit_tail)->b_rptr) { 20974 *tail_unsent -= len; 20975 if (len <= mss) /* LSO is unusable */ 20976 tcp->tcp_last_sent_len = (ushort_t)len; 20977 len += tcp_hdr_len; 20978 if (tcp->tcp_ipversion == IPV4_VERSION) 20979 tcp->tcp_ipha->ipha_length = htons(len); 20980 else 20981 tcp->tcp_ip6h->ip6_plen = 20982 htons(len - 20983 ((char *)&tcp->tcp_ip6h[1] - 20984 tcp->tcp_iphc)); 20985 mp = dupb(*xmit_tail); 20986 if (mp == NULL) { 20987 if (ire != NULL) 20988 IRE_REFRELE(ire); 20989 return (-1); /* out_of_mem */ 20990 } 20991 mp->b_rptr = rptr; 20992 /* 20993 * If the old timestamp is no longer in use, 20994 * sample a new timestamp now. 20995 */ 20996 if ((*xmit_tail)->b_next == NULL) { 20997 (*xmit_tail)->b_prev = local_time; 20998 (*xmit_tail)->b_next = 20999 (mblk_t *)(uintptr_t)(*snxt-len); 21000 } 21001 goto must_alloc; 21002 } 21003 } else { 21004 *xmit_tail = (*xmit_tail)->b_cont; 21005 ASSERT((uintptr_t)((*xmit_tail)->b_wptr - 21006 (*xmit_tail)->b_rptr) <= (uintptr_t)INT_MAX); 21007 *tail_unsent = (int)((*xmit_tail)->b_wptr - 21008 (*xmit_tail)->b_rptr); 21009 } 21010 21011 (*xmit_tail)->b_prev = local_time; 21012 (*xmit_tail)->b_next = (mblk_t *)(uintptr_t)(*snxt - len); 21013 21014 *tail_unsent -= len; 21015 if (len <= mss) /* LSO is unusable (!do_lso_send) */ 21016 tcp->tcp_last_sent_len = (ushort_t)len; 21017 21018 len += tcp_hdr_len; 21019 if (tcp->tcp_ipversion == IPV4_VERSION) 21020 tcp->tcp_ipha->ipha_length = htons(len); 21021 else 21022 tcp->tcp_ip6h->ip6_plen = htons(len - 21023 ((char *)&tcp->tcp_ip6h[1] - tcp->tcp_iphc)); 21024 21025 mp = dupb(*xmit_tail); 21026 if (mp == NULL) { 21027 if (ire != NULL) 21028 IRE_REFRELE(ire); 21029 return (-1); /* out_of_mem */ 21030 } 21031 21032 len = tcp_hdr_len; 21033 /* 21034 * There are four reasons to allocate a new hdr mblk: 21035 * 1) The bytes above us are in use by another packet 21036 * 2) We don't have good alignment 21037 * 3) The mblk is being shared 21038 * 4) We don't have enough room for a header 21039 */ 21040 rptr = mp->b_rptr - len; 21041 if (!OK_32PTR(rptr) || 21042 ((db = mp->b_datap), db->db_ref != 2) || 21043 rptr < db->db_base + ire_fp_mp_len) { 21044 /* NOTE: we assume allocb returns an OK_32PTR */ 21045 21046 must_alloc:; 21047 mp1 = allocb(tcp->tcp_ip_hdr_len + TCP_MAX_HDR_LENGTH + 21048 tcp_wroff_xtra + ire_fp_mp_len, BPRI_MED); 21049 if (mp1 == NULL) { 21050 freemsg(mp); 21051 if (ire != NULL) 21052 IRE_REFRELE(ire); 21053 return (-1); /* out_of_mem */ 21054 } 21055 mp1->b_cont = mp; 21056 mp = mp1; 21057 /* Leave room for Link Level header */ 21058 len = tcp_hdr_len; 21059 rptr = &mp->b_rptr[tcp_wroff_xtra + ire_fp_mp_len]; 21060 mp->b_wptr = &rptr[len]; 21061 } 21062 21063 /* 21064 * Fill in the header using the template header, and add 21065 * options such as time-stamp, ECN and/or SACK, as needed. 21066 */ 21067 tcp_fill_header(tcp, rptr, (clock_t)local_time, num_sack_blk); 21068 21069 mp->b_rptr = rptr; 21070 21071 if (*tail_unsent) { 21072 int spill = *tail_unsent; 21073 21074 mp1 = mp->b_cont; 21075 if (mp1 == NULL) 21076 mp1 = mp; 21077 21078 /* 21079 * If we're a little short, tack on more mblks until 21080 * there is no more spillover. 21081 */ 21082 while (spill < 0) { 21083 mblk_t *nmp; 21084 int nmpsz; 21085 21086 nmp = (*xmit_tail)->b_cont; 21087 nmpsz = MBLKL(nmp); 21088 21089 /* 21090 * Excess data in mblk; can we split it? 21091 * If MDT is enabled for the connection, 21092 * keep on splitting as this is a transient 21093 * send path. 21094 */ 21095 if (!do_lso_send && !tcp->tcp_mdt && 21096 (spill + nmpsz > 0)) { 21097 /* 21098 * Don't split if stream head was 21099 * told to break up larger writes 21100 * into smaller ones. 21101 */ 21102 if (tcp->tcp_maxpsz > 0) 21103 break; 21104 21105 /* 21106 * Next mblk is less than SMSS/2 21107 * rounded up to nearest 64-byte; 21108 * let it get sent as part of the 21109 * next segment. 21110 */ 21111 if (tcp->tcp_localnet && 21112 !tcp->tcp_cork && 21113 (nmpsz < roundup((mss >> 1), 64))) 21114 break; 21115 } 21116 21117 *xmit_tail = nmp; 21118 ASSERT((uintptr_t)nmpsz <= (uintptr_t)INT_MAX); 21119 /* Stash for rtt use later */ 21120 (*xmit_tail)->b_prev = local_time; 21121 (*xmit_tail)->b_next = 21122 (mblk_t *)(uintptr_t)(*snxt - len); 21123 mp1->b_cont = dupb(*xmit_tail); 21124 mp1 = mp1->b_cont; 21125 21126 spill += nmpsz; 21127 if (mp1 == NULL) { 21128 *tail_unsent = spill; 21129 freemsg(mp); 21130 if (ire != NULL) 21131 IRE_REFRELE(ire); 21132 return (-1); /* out_of_mem */ 21133 } 21134 } 21135 21136 /* Trim back any surplus on the last mblk */ 21137 if (spill >= 0) { 21138 mp1->b_wptr -= spill; 21139 *tail_unsent = spill; 21140 } else { 21141 /* 21142 * We did not send everything we could in 21143 * order to remain within the b_cont limit. 21144 */ 21145 *usable -= spill; 21146 *snxt += spill; 21147 tcp->tcp_last_sent_len += spill; 21148 UPDATE_MIB(&tcp_mib, tcpOutDataBytes, spill); 21149 /* 21150 * Adjust the checksum 21151 */ 21152 tcph = (tcph_t *)(rptr + tcp->tcp_ip_hdr_len); 21153 sum += spill; 21154 sum = (sum >> 16) + (sum & 0xFFFF); 21155 U16_TO_ABE16(sum, tcph->th_sum); 21156 if (tcp->tcp_ipversion == IPV4_VERSION) { 21157 sum = ntohs( 21158 ((ipha_t *)rptr)->ipha_length) + 21159 spill; 21160 ((ipha_t *)rptr)->ipha_length = 21161 htons(sum); 21162 } else { 21163 sum = ntohs( 21164 ((ip6_t *)rptr)->ip6_plen) + 21165 spill; 21166 ((ip6_t *)rptr)->ip6_plen = 21167 htons(sum); 21168 } 21169 *tail_unsent = 0; 21170 } 21171 } 21172 if (tcp->tcp_ip_forward_progress) { 21173 ASSERT(tcp->tcp_ipversion == IPV6_VERSION); 21174 *(uint32_t *)mp->b_rptr |= IP_FORWARD_PROG; 21175 tcp->tcp_ip_forward_progress = B_FALSE; 21176 } 21177 21178 TCP_RECORD_TRACE(tcp, mp, TCP_TRACE_SEND_PKT); 21179 if (do_lso_send) { 21180 tcp_lsosend_data(tcp, mp, ire, ill, mss, 21181 num_lso_seg); 21182 tcp->tcp_obsegs += num_lso_seg; 21183 21184 TCP_STAT(tcp_lso_times); 21185 TCP_STAT_UPDATE(tcp_lso_pkt_out, num_lso_seg); 21186 } else { 21187 tcp_send_data(tcp, q, mp); 21188 BUMP_LOCAL(tcp->tcp_obsegs); 21189 } 21190 } 21191 21192 if (ire != NULL) 21193 IRE_REFRELE(ire); 21194 return (0); 21195 } 21196 21197 /* Unlink and return any mblk that looks like it contains a MDT info */ 21198 static mblk_t * 21199 tcp_mdt_info_mp(mblk_t *mp) 21200 { 21201 mblk_t *prev_mp; 21202 21203 for (;;) { 21204 prev_mp = mp; 21205 /* no more to process? */ 21206 if ((mp = mp->b_cont) == NULL) 21207 break; 21208 21209 switch (DB_TYPE(mp)) { 21210 case M_CTL: 21211 if (*(uint32_t *)mp->b_rptr != MDT_IOC_INFO_UPDATE) 21212 continue; 21213 ASSERT(prev_mp != NULL); 21214 prev_mp->b_cont = mp->b_cont; 21215 mp->b_cont = NULL; 21216 return (mp); 21217 default: 21218 break; 21219 } 21220 } 21221 return (mp); 21222 } 21223 21224 /* MDT info update routine, called when IP notifies us about MDT */ 21225 static void 21226 tcp_mdt_update(tcp_t *tcp, ill_mdt_capab_t *mdt_capab, boolean_t first) 21227 { 21228 boolean_t prev_state; 21229 21230 /* 21231 * IP is telling us to abort MDT on this connection? We know 21232 * this because the capability is only turned off when IP 21233 * encounters some pathological cases, e.g. link-layer change 21234 * where the new driver doesn't support MDT, or in situation 21235 * where MDT usage on the link-layer has been switched off. 21236 * IP would not have sent us the initial MDT_IOC_INFO_UPDATE 21237 * if the link-layer doesn't support MDT, and if it does, it 21238 * will indicate that the feature is to be turned on. 21239 */ 21240 prev_state = tcp->tcp_mdt; 21241 tcp->tcp_mdt = (mdt_capab->ill_mdt_on != 0); 21242 if (!tcp->tcp_mdt && !first) { 21243 TCP_STAT(tcp_mdt_conn_halted3); 21244 ip1dbg(("tcp_mdt_update: disabling MDT for connp %p\n", 21245 (void *)tcp->tcp_connp)); 21246 } 21247 21248 /* 21249 * We currently only support MDT on simple TCP/{IPv4,IPv6}, 21250 * so disable MDT otherwise. The checks are done here 21251 * and in tcp_wput_data(). 21252 */ 21253 if (tcp->tcp_mdt && 21254 (tcp->tcp_ipversion == IPV4_VERSION && 21255 tcp->tcp_ip_hdr_len != IP_SIMPLE_HDR_LENGTH) || 21256 (tcp->tcp_ipversion == IPV6_VERSION && 21257 tcp->tcp_ip_hdr_len != IPV6_HDR_LEN)) 21258 tcp->tcp_mdt = B_FALSE; 21259 21260 if (tcp->tcp_mdt) { 21261 if (mdt_capab->ill_mdt_version != MDT_VERSION_2) { 21262 cmn_err(CE_NOTE, "tcp_mdt_update: unknown MDT " 21263 "version (%d), expected version is %d", 21264 mdt_capab->ill_mdt_version, MDT_VERSION_2); 21265 tcp->tcp_mdt = B_FALSE; 21266 return; 21267 } 21268 21269 /* 21270 * We need the driver to be able to handle at least three 21271 * spans per packet in order for tcp MDT to be utilized. 21272 * The first is for the header portion, while the rest are 21273 * needed to handle a packet that straddles across two 21274 * virtually non-contiguous buffers; a typical tcp packet 21275 * therefore consists of only two spans. Note that we take 21276 * a zero as "don't care". 21277 */ 21278 if (mdt_capab->ill_mdt_span_limit > 0 && 21279 mdt_capab->ill_mdt_span_limit < 3) { 21280 tcp->tcp_mdt = B_FALSE; 21281 return; 21282 } 21283 21284 /* a zero means driver wants default value */ 21285 tcp->tcp_mdt_max_pld = MIN(mdt_capab->ill_mdt_max_pld, 21286 tcp_mdt_max_pbufs); 21287 if (tcp->tcp_mdt_max_pld == 0) 21288 tcp->tcp_mdt_max_pld = tcp_mdt_max_pbufs; 21289 21290 /* ensure 32-bit alignment */ 21291 tcp->tcp_mdt_hdr_head = roundup(MAX(tcp_mdt_hdr_head_min, 21292 mdt_capab->ill_mdt_hdr_head), 4); 21293 tcp->tcp_mdt_hdr_tail = roundup(MAX(tcp_mdt_hdr_tail_min, 21294 mdt_capab->ill_mdt_hdr_tail), 4); 21295 21296 if (!first && !prev_state) { 21297 TCP_STAT(tcp_mdt_conn_resumed2); 21298 ip1dbg(("tcp_mdt_update: reenabling MDT for connp %p\n", 21299 (void *)tcp->tcp_connp)); 21300 } 21301 } 21302 } 21303 21304 /* Unlink and return any mblk that looks like it contains a LSO info */ 21305 static mblk_t * 21306 tcp_lso_info_mp(mblk_t *mp) 21307 { 21308 mblk_t *prev_mp; 21309 21310 for (;;) { 21311 prev_mp = mp; 21312 /* no more to process? */ 21313 if ((mp = mp->b_cont) == NULL) 21314 break; 21315 21316 switch (DB_TYPE(mp)) { 21317 case M_CTL: 21318 if (*(uint32_t *)mp->b_rptr != LSO_IOC_INFO_UPDATE) 21319 continue; 21320 ASSERT(prev_mp != NULL); 21321 prev_mp->b_cont = mp->b_cont; 21322 mp->b_cont = NULL; 21323 return (mp); 21324 default: 21325 break; 21326 } 21327 } 21328 21329 return (mp); 21330 } 21331 21332 /* LSO info update routine, called when IP notifies us about LSO */ 21333 static void 21334 tcp_lso_update(tcp_t *tcp, ill_lso_capab_t *lso_capab) 21335 { 21336 /* 21337 * IP is telling us to abort LSO on this connection? We know 21338 * this because the capability is only turned off when IP 21339 * encounters some pathological cases, e.g. link-layer change 21340 * where the new NIC/driver doesn't support LSO, or in situation 21341 * where LSO usage on the link-layer has been switched off. 21342 * IP would not have sent us the initial LSO_IOC_INFO_UPDATE 21343 * if the link-layer doesn't support LSO, and if it does, it 21344 * will indicate that the feature is to be turned on. 21345 */ 21346 tcp->tcp_lso = (lso_capab->ill_lso_on != 0); 21347 TCP_STAT(tcp_lso_enabled); 21348 21349 /* 21350 * We currently only support LSO on simple TCP/IPv4, 21351 * so disable LSO otherwise. The checks are done here 21352 * and in tcp_wput_data(). 21353 */ 21354 if (tcp->tcp_lso && 21355 (tcp->tcp_ipversion == IPV4_VERSION && 21356 tcp->tcp_ip_hdr_len != IP_SIMPLE_HDR_LENGTH) || 21357 (tcp->tcp_ipversion == IPV6_VERSION)) { 21358 tcp->tcp_lso = B_FALSE; 21359 TCP_STAT(tcp_lso_disabled); 21360 } else { 21361 tcp->tcp_lso_max = MIN(TCP_MAX_LSO_LENGTH, 21362 lso_capab->ill_lso_max); 21363 } 21364 } 21365 21366 static void 21367 tcp_ire_ill_check(tcp_t *tcp, ire_t *ire, ill_t *ill, boolean_t check_lso_mdt) 21368 { 21369 conn_t *connp = tcp->tcp_connp; 21370 21371 ASSERT(ire != NULL); 21372 21373 /* 21374 * We may be in the fastpath here, and although we essentially do 21375 * similar checks as in ip_bind_connected{_v6}/ip_xxinfo_return, 21376 * we try to keep things as brief as possible. After all, these 21377 * are only best-effort checks, and we do more thorough ones prior 21378 * to calling tcp_send()/tcp_multisend(). 21379 */ 21380 if ((ip_lso_outbound || ip_multidata_outbound) && check_lso_mdt && 21381 !(ire->ire_type & (IRE_LOCAL | IRE_LOOPBACK)) && 21382 ill != NULL && !CONN_IPSEC_OUT_ENCAPSULATED(connp) && 21383 !(ire->ire_flags & RTF_MULTIRT) && 21384 !IPP_ENABLED(IPP_LOCAL_OUT) && 21385 CONN_IS_LSO_MD_FASTPATH(connp)) { 21386 if (ip_lso_outbound && ILL_LSO_CAPABLE(ill)) { 21387 /* Cache the result */ 21388 connp->conn_lso_ok = B_TRUE; 21389 21390 ASSERT(ill->ill_lso_capab != NULL); 21391 if (!ill->ill_lso_capab->ill_lso_on) { 21392 ill->ill_lso_capab->ill_lso_on = 1; 21393 ip1dbg(("tcp_ire_ill_check: connp %p enables " 21394 "LSO for interface %s\n", (void *)connp, 21395 ill->ill_name)); 21396 } 21397 tcp_lso_update(tcp, ill->ill_lso_capab); 21398 } else if (ip_multidata_outbound && ILL_MDT_CAPABLE(ill)) { 21399 /* Cache the result */ 21400 connp->conn_mdt_ok = B_TRUE; 21401 21402 ASSERT(ill->ill_mdt_capab != NULL); 21403 if (!ill->ill_mdt_capab->ill_mdt_on) { 21404 ill->ill_mdt_capab->ill_mdt_on = 1; 21405 ip1dbg(("tcp_ire_ill_check: connp %p enables " 21406 "MDT for interface %s\n", (void *)connp, 21407 ill->ill_name)); 21408 } 21409 tcp_mdt_update(tcp, ill->ill_mdt_capab, B_TRUE); 21410 } 21411 } 21412 21413 /* 21414 * The goal is to reduce the number of generated tcp segments by 21415 * setting the maxpsz multiplier to 0; this will have an affect on 21416 * tcp_maxpsz_set(). With this behavior, tcp will pack more data 21417 * into each packet, up to SMSS bytes. Doing this reduces the number 21418 * of outbound segments and incoming ACKs, thus allowing for better 21419 * network and system performance. In contrast the legacy behavior 21420 * may result in sending less than SMSS size, because the last mblk 21421 * for some packets may have more data than needed to make up SMSS, 21422 * and the legacy code refused to "split" it. 21423 * 21424 * We apply the new behavior on following situations: 21425 * 21426 * 1) Loopback connections, 21427 * 2) Connections in which the remote peer is not on local subnet, 21428 * 3) Local subnet connections over the bge interface (see below). 21429 * 21430 * Ideally, we would like this behavior to apply for interfaces other 21431 * than bge. However, doing so would negatively impact drivers which 21432 * perform dynamic mapping and unmapping of DMA resources, which are 21433 * increased by setting the maxpsz multiplier to 0 (more mblks per 21434 * packet will be generated by tcp). The bge driver does not suffer 21435 * from this, as it copies the mblks into pre-mapped buffers, and 21436 * therefore does not require more I/O resources than before. 21437 * 21438 * Otherwise, this behavior is present on all network interfaces when 21439 * the destination endpoint is non-local, since reducing the number 21440 * of packets in general is good for the network. 21441 * 21442 * TODO We need to remove this hard-coded conditional for bge once 21443 * a better "self-tuning" mechanism, or a way to comprehend 21444 * the driver transmit strategy is devised. Until the solution 21445 * is found and well understood, we live with this hack. 21446 */ 21447 if (!tcp_static_maxpsz && 21448 (tcp->tcp_loopback || !tcp->tcp_localnet || 21449 (ill->ill_name_length > 3 && bcmp(ill->ill_name, "bge", 3) == 0))) { 21450 /* override the default value */ 21451 tcp->tcp_maxpsz = 0; 21452 21453 ip3dbg(("tcp_ire_ill_check: connp %p tcp_maxpsz %d on " 21454 "interface %s\n", (void *)connp, tcp->tcp_maxpsz, 21455 ill != NULL ? ill->ill_name : ipif_loopback_name)); 21456 } 21457 21458 /* set the stream head parameters accordingly */ 21459 (void) tcp_maxpsz_set(tcp, B_TRUE); 21460 } 21461 21462 /* tcp_wput_flush is called by tcp_wput_nondata to handle M_FLUSH messages. */ 21463 static void 21464 tcp_wput_flush(tcp_t *tcp, mblk_t *mp) 21465 { 21466 uchar_t fval = *mp->b_rptr; 21467 mblk_t *tail; 21468 queue_t *q = tcp->tcp_wq; 21469 21470 /* TODO: How should flush interact with urgent data? */ 21471 if ((fval & FLUSHW) && tcp->tcp_xmit_head && 21472 !(tcp->tcp_valid_bits & TCP_URG_VALID)) { 21473 /* 21474 * Flush only data that has not yet been put on the wire. If 21475 * we flush data that we have already transmitted, life, as we 21476 * know it, may come to an end. 21477 */ 21478 tail = tcp->tcp_xmit_tail; 21479 tail->b_wptr -= tcp->tcp_xmit_tail_unsent; 21480 tcp->tcp_xmit_tail_unsent = 0; 21481 tcp->tcp_unsent = 0; 21482 if (tail->b_wptr != tail->b_rptr) 21483 tail = tail->b_cont; 21484 if (tail) { 21485 mblk_t **excess = &tcp->tcp_xmit_head; 21486 for (;;) { 21487 mblk_t *mp1 = *excess; 21488 if (mp1 == tail) 21489 break; 21490 tcp->tcp_xmit_tail = mp1; 21491 tcp->tcp_xmit_last = mp1; 21492 excess = &mp1->b_cont; 21493 } 21494 *excess = NULL; 21495 tcp_close_mpp(&tail); 21496 if (tcp->tcp_snd_zcopy_aware) 21497 tcp_zcopy_notify(tcp); 21498 } 21499 /* 21500 * We have no unsent data, so unsent must be less than 21501 * tcp_xmit_lowater, so re-enable flow. 21502 */ 21503 if (tcp->tcp_flow_stopped) { 21504 tcp_clrqfull(tcp); 21505 } 21506 } 21507 /* 21508 * TODO: you can't just flush these, you have to increase rwnd for one 21509 * thing. For another, how should urgent data interact? 21510 */ 21511 if (fval & FLUSHR) { 21512 *mp->b_rptr = fval & ~FLUSHW; 21513 /* XXX */ 21514 qreply(q, mp); 21515 return; 21516 } 21517 freemsg(mp); 21518 } 21519 21520 /* 21521 * tcp_wput_iocdata is called by tcp_wput_nondata to handle all M_IOCDATA 21522 * messages. 21523 */ 21524 static void 21525 tcp_wput_iocdata(tcp_t *tcp, mblk_t *mp) 21526 { 21527 mblk_t *mp1; 21528 STRUCT_HANDLE(strbuf, sb); 21529 uint16_t port; 21530 queue_t *q = tcp->tcp_wq; 21531 in6_addr_t v6addr; 21532 ipaddr_t v4addr; 21533 uint32_t flowinfo = 0; 21534 int addrlen; 21535 21536 /* Make sure it is one of ours. */ 21537 switch (((struct iocblk *)mp->b_rptr)->ioc_cmd) { 21538 case TI_GETMYNAME: 21539 case TI_GETPEERNAME: 21540 break; 21541 default: 21542 CALL_IP_WPUT(tcp->tcp_connp, q, mp); 21543 return; 21544 } 21545 switch (mi_copy_state(q, mp, &mp1)) { 21546 case -1: 21547 return; 21548 case MI_COPY_CASE(MI_COPY_IN, 1): 21549 break; 21550 case MI_COPY_CASE(MI_COPY_OUT, 1): 21551 /* Copy out the strbuf. */ 21552 mi_copyout(q, mp); 21553 return; 21554 case MI_COPY_CASE(MI_COPY_OUT, 2): 21555 /* All done. */ 21556 mi_copy_done(q, mp, 0); 21557 return; 21558 default: 21559 mi_copy_done(q, mp, EPROTO); 21560 return; 21561 } 21562 /* Check alignment of the strbuf */ 21563 if (!OK_32PTR(mp1->b_rptr)) { 21564 mi_copy_done(q, mp, EINVAL); 21565 return; 21566 } 21567 21568 STRUCT_SET_HANDLE(sb, ((struct iocblk *)mp->b_rptr)->ioc_flag, 21569 (void *)mp1->b_rptr); 21570 addrlen = tcp->tcp_family == AF_INET ? sizeof (sin_t) : sizeof (sin6_t); 21571 21572 if (STRUCT_FGET(sb, maxlen) < addrlen) { 21573 mi_copy_done(q, mp, EINVAL); 21574 return; 21575 } 21576 switch (((struct iocblk *)mp->b_rptr)->ioc_cmd) { 21577 case TI_GETMYNAME: 21578 if (tcp->tcp_family == AF_INET) { 21579 if (tcp->tcp_ipversion == IPV4_VERSION) { 21580 v4addr = tcp->tcp_ipha->ipha_src; 21581 } else { 21582 /* can't return an address in this case */ 21583 v4addr = 0; 21584 } 21585 } else { 21586 /* tcp->tcp_family == AF_INET6 */ 21587 if (tcp->tcp_ipversion == IPV4_VERSION) { 21588 IN6_IPADDR_TO_V4MAPPED(tcp->tcp_ipha->ipha_src, 21589 &v6addr); 21590 } else { 21591 v6addr = tcp->tcp_ip6h->ip6_src; 21592 } 21593 } 21594 port = tcp->tcp_lport; 21595 break; 21596 case TI_GETPEERNAME: 21597 if (tcp->tcp_family == AF_INET) { 21598 if (tcp->tcp_ipversion == IPV4_VERSION) { 21599 IN6_V4MAPPED_TO_IPADDR(&tcp->tcp_remote_v6, 21600 v4addr); 21601 } else { 21602 /* can't return an address in this case */ 21603 v4addr = 0; 21604 } 21605 } else { 21606 /* tcp->tcp_family == AF_INET6) */ 21607 v6addr = tcp->tcp_remote_v6; 21608 if (tcp->tcp_ipversion == IPV6_VERSION) { 21609 /* 21610 * No flowinfo if tcp->tcp_ipversion is v4. 21611 * 21612 * flowinfo was already initialized to zero 21613 * where it was declared above, so only 21614 * set it if ipversion is v6. 21615 */ 21616 flowinfo = tcp->tcp_ip6h->ip6_vcf & 21617 ~IPV6_VERS_AND_FLOW_MASK; 21618 } 21619 } 21620 port = tcp->tcp_fport; 21621 break; 21622 default: 21623 mi_copy_done(q, mp, EPROTO); 21624 return; 21625 } 21626 mp1 = mi_copyout_alloc(q, mp, STRUCT_FGETP(sb, buf), addrlen, B_TRUE); 21627 if (!mp1) 21628 return; 21629 21630 if (tcp->tcp_family == AF_INET) { 21631 sin_t *sin; 21632 21633 STRUCT_FSET(sb, len, (int)sizeof (sin_t)); 21634 sin = (sin_t *)mp1->b_rptr; 21635 mp1->b_wptr = (uchar_t *)&sin[1]; 21636 *sin = sin_null; 21637 sin->sin_family = AF_INET; 21638 sin->sin_addr.s_addr = v4addr; 21639 sin->sin_port = port; 21640 } else { 21641 /* tcp->tcp_family == AF_INET6 */ 21642 sin6_t *sin6; 21643 21644 STRUCT_FSET(sb, len, (int)sizeof (sin6_t)); 21645 sin6 = (sin6_t *)mp1->b_rptr; 21646 mp1->b_wptr = (uchar_t *)&sin6[1]; 21647 *sin6 = sin6_null; 21648 sin6->sin6_family = AF_INET6; 21649 sin6->sin6_flowinfo = flowinfo; 21650 sin6->sin6_addr = v6addr; 21651 sin6->sin6_port = port; 21652 } 21653 /* Copy out the address */ 21654 mi_copyout(q, mp); 21655 } 21656 21657 /* 21658 * tcp_wput_ioctl is called by tcp_wput_nondata() to handle all M_IOCTL 21659 * messages. 21660 */ 21661 /* ARGSUSED */ 21662 static void 21663 tcp_wput_ioctl(void *arg, mblk_t *mp, void *arg2) 21664 { 21665 conn_t *connp = (conn_t *)arg; 21666 tcp_t *tcp = connp->conn_tcp; 21667 queue_t *q = tcp->tcp_wq; 21668 struct iocblk *iocp; 21669 21670 ASSERT(DB_TYPE(mp) == M_IOCTL); 21671 /* 21672 * Try and ASSERT the minimum possible references on the 21673 * conn early enough. Since we are executing on write side, 21674 * the connection is obviously not detached and that means 21675 * there is a ref each for TCP and IP. Since we are behind 21676 * the squeue, the minimum references needed are 3. If the 21677 * conn is in classifier hash list, there should be an 21678 * extra ref for that (we check both the possibilities). 21679 */ 21680 ASSERT((connp->conn_fanout != NULL && connp->conn_ref >= 4) || 21681 (connp->conn_fanout == NULL && connp->conn_ref >= 3)); 21682 21683 iocp = (struct iocblk *)mp->b_rptr; 21684 switch (iocp->ioc_cmd) { 21685 case TCP_IOC_DEFAULT_Q: 21686 /* Wants to be the default wq. */ 21687 if (secpolicy_net_config(iocp->ioc_cr, B_FALSE) != 0) { 21688 iocp->ioc_error = EPERM; 21689 iocp->ioc_count = 0; 21690 mp->b_datap->db_type = M_IOCACK; 21691 qreply(q, mp); 21692 return; 21693 } 21694 tcp_def_q_set(tcp, mp); 21695 return; 21696 case _SIOCSOCKFALLBACK: 21697 /* 21698 * Either sockmod is about to be popped and the socket 21699 * would now be treated as a plain stream, or a module 21700 * is about to be pushed so we could no longer use read- 21701 * side synchronous streams for fused loopback tcp. 21702 * Drain any queued data and disable direct sockfs 21703 * interface from now on. 21704 */ 21705 if (!tcp->tcp_issocket) { 21706 DB_TYPE(mp) = M_IOCNAK; 21707 iocp->ioc_error = EINVAL; 21708 } else { 21709 #ifdef _ILP32 21710 tcp->tcp_acceptor_id = (t_uscalar_t)RD(q); 21711 #else 21712 tcp->tcp_acceptor_id = tcp->tcp_connp->conn_dev; 21713 #endif 21714 /* 21715 * Insert this socket into the acceptor hash. 21716 * We might need it for T_CONN_RES message 21717 */ 21718 tcp_acceptor_hash_insert(tcp->tcp_acceptor_id, tcp); 21719 21720 if (tcp->tcp_fused) { 21721 /* 21722 * This is a fused loopback tcp; disable 21723 * read-side synchronous streams interface 21724 * and drain any queued data. It is okay 21725 * to do this for non-synchronous streams 21726 * fused tcp as well. 21727 */ 21728 tcp_fuse_disable_pair(tcp, B_FALSE); 21729 } 21730 tcp->tcp_issocket = B_FALSE; 21731 TCP_STAT(tcp_sock_fallback); 21732 21733 DB_TYPE(mp) = M_IOCACK; 21734 iocp->ioc_error = 0; 21735 } 21736 iocp->ioc_count = 0; 21737 iocp->ioc_rval = 0; 21738 qreply(q, mp); 21739 return; 21740 } 21741 CALL_IP_WPUT(connp, q, mp); 21742 } 21743 21744 /* 21745 * This routine is called by tcp_wput() to handle all TPI requests. 21746 */ 21747 /* ARGSUSED */ 21748 static void 21749 tcp_wput_proto(void *arg, mblk_t *mp, void *arg2) 21750 { 21751 conn_t *connp = (conn_t *)arg; 21752 tcp_t *tcp = connp->conn_tcp; 21753 union T_primitives *tprim = (union T_primitives *)mp->b_rptr; 21754 uchar_t *rptr; 21755 t_scalar_t type; 21756 int len; 21757 cred_t *cr = DB_CREDDEF(mp, tcp->tcp_cred); 21758 21759 /* 21760 * Try and ASSERT the minimum possible references on the 21761 * conn early enough. Since we are executing on write side, 21762 * the connection is obviously not detached and that means 21763 * there is a ref each for TCP and IP. Since we are behind 21764 * the squeue, the minimum references needed are 3. If the 21765 * conn is in classifier hash list, there should be an 21766 * extra ref for that (we check both the possibilities). 21767 */ 21768 ASSERT((connp->conn_fanout != NULL && connp->conn_ref >= 4) || 21769 (connp->conn_fanout == NULL && connp->conn_ref >= 3)); 21770 21771 rptr = mp->b_rptr; 21772 ASSERT((uintptr_t)(mp->b_wptr - rptr) <= (uintptr_t)INT_MAX); 21773 if ((mp->b_wptr - rptr) >= sizeof (t_scalar_t)) { 21774 type = ((union T_primitives *)rptr)->type; 21775 if (type == T_EXDATA_REQ) { 21776 uint32_t msize = msgdsize(mp->b_cont); 21777 21778 len = msize - 1; 21779 if (len < 0) { 21780 freemsg(mp); 21781 return; 21782 } 21783 /* 21784 * Try to force urgent data out on the wire. 21785 * Even if we have unsent data this will 21786 * at least send the urgent flag. 21787 * XXX does not handle more flag correctly. 21788 */ 21789 len += tcp->tcp_unsent; 21790 len += tcp->tcp_snxt; 21791 tcp->tcp_urg = len; 21792 tcp->tcp_valid_bits |= TCP_URG_VALID; 21793 21794 /* Bypass tcp protocol for fused tcp loopback */ 21795 if (tcp->tcp_fused && tcp_fuse_output(tcp, mp, msize)) 21796 return; 21797 } else if (type != T_DATA_REQ) { 21798 goto non_urgent_data; 21799 } 21800 /* TODO: options, flags, ... from user */ 21801 /* Set length to zero for reclamation below */ 21802 tcp_wput_data(tcp, mp->b_cont, B_TRUE); 21803 freeb(mp); 21804 return; 21805 } else { 21806 if (tcp->tcp_debug) { 21807 (void) strlog(TCP_MOD_ID, 0, 1, SL_ERROR|SL_TRACE, 21808 "tcp_wput_proto, dropping one..."); 21809 } 21810 freemsg(mp); 21811 return; 21812 } 21813 21814 non_urgent_data: 21815 21816 switch ((int)tprim->type) { 21817 case T_SSL_PROXY_BIND_REQ: /* an SSL proxy endpoint bind request */ 21818 /* 21819 * save the kssl_ent_t from the next block, and convert this 21820 * back to a normal bind_req. 21821 */ 21822 if (mp->b_cont != NULL) { 21823 ASSERT(MBLKL(mp->b_cont) >= sizeof (kssl_ent_t)); 21824 21825 if (tcp->tcp_kssl_ent != NULL) { 21826 kssl_release_ent(tcp->tcp_kssl_ent, NULL, 21827 KSSL_NO_PROXY); 21828 tcp->tcp_kssl_ent = NULL; 21829 } 21830 bcopy(mp->b_cont->b_rptr, &tcp->tcp_kssl_ent, 21831 sizeof (kssl_ent_t)); 21832 kssl_hold_ent(tcp->tcp_kssl_ent); 21833 freemsg(mp->b_cont); 21834 mp->b_cont = NULL; 21835 } 21836 tprim->type = T_BIND_REQ; 21837 21838 /* FALLTHROUGH */ 21839 case O_T_BIND_REQ: /* bind request */ 21840 case T_BIND_REQ: /* new semantics bind request */ 21841 tcp_bind(tcp, mp); 21842 break; 21843 case T_UNBIND_REQ: /* unbind request */ 21844 tcp_unbind(tcp, mp); 21845 break; 21846 case O_T_CONN_RES: /* old connection response XXX */ 21847 case T_CONN_RES: /* connection response */ 21848 tcp_accept(tcp, mp); 21849 break; 21850 case T_CONN_REQ: /* connection request */ 21851 tcp_connect(tcp, mp); 21852 break; 21853 case T_DISCON_REQ: /* disconnect request */ 21854 tcp_disconnect(tcp, mp); 21855 break; 21856 case T_CAPABILITY_REQ: 21857 tcp_capability_req(tcp, mp); /* capability request */ 21858 break; 21859 case T_INFO_REQ: /* information request */ 21860 tcp_info_req(tcp, mp); 21861 break; 21862 case T_SVR4_OPTMGMT_REQ: /* manage options req */ 21863 /* Only IP is allowed to return meaningful value */ 21864 (void) svr4_optcom_req(tcp->tcp_wq, mp, cr, &tcp_opt_obj); 21865 break; 21866 case T_OPTMGMT_REQ: 21867 /* 21868 * Note: no support for snmpcom_req() through new 21869 * T_OPTMGMT_REQ. See comments in ip.c 21870 */ 21871 /* Only IP is allowed to return meaningful value */ 21872 (void) tpi_optcom_req(tcp->tcp_wq, mp, cr, &tcp_opt_obj); 21873 break; 21874 21875 case T_UNITDATA_REQ: /* unitdata request */ 21876 tcp_err_ack(tcp, mp, TNOTSUPPORT, 0); 21877 break; 21878 case T_ORDREL_REQ: /* orderly release req */ 21879 freemsg(mp); 21880 21881 if (tcp->tcp_fused) 21882 tcp_unfuse(tcp); 21883 21884 if (tcp_xmit_end(tcp) != 0) { 21885 /* 21886 * We were crossing FINs and got a reset from 21887 * the other side. Just ignore it. 21888 */ 21889 if (tcp->tcp_debug) { 21890 (void) strlog(TCP_MOD_ID, 0, 1, 21891 SL_ERROR|SL_TRACE, 21892 "tcp_wput_proto, T_ORDREL_REQ out of " 21893 "state %s", 21894 tcp_display(tcp, NULL, 21895 DISP_ADDR_AND_PORT)); 21896 } 21897 } 21898 break; 21899 case T_ADDR_REQ: 21900 tcp_addr_req(tcp, mp); 21901 break; 21902 default: 21903 if (tcp->tcp_debug) { 21904 (void) strlog(TCP_MOD_ID, 0, 1, SL_ERROR|SL_TRACE, 21905 "tcp_wput_proto, bogus TPI msg, type %d", 21906 tprim->type); 21907 } 21908 /* 21909 * We used to M_ERROR. Sending TNOTSUPPORT gives the user 21910 * to recover. 21911 */ 21912 tcp_err_ack(tcp, mp, TNOTSUPPORT, 0); 21913 break; 21914 } 21915 } 21916 21917 /* 21918 * The TCP write service routine should never be called... 21919 */ 21920 /* ARGSUSED */ 21921 static void 21922 tcp_wsrv(queue_t *q) 21923 { 21924 TCP_STAT(tcp_wsrv_called); 21925 } 21926 21927 /* Non overlapping byte exchanger */ 21928 static void 21929 tcp_xchg(uchar_t *a, uchar_t *b, int len) 21930 { 21931 uchar_t uch; 21932 21933 while (len-- > 0) { 21934 uch = a[len]; 21935 a[len] = b[len]; 21936 b[len] = uch; 21937 } 21938 } 21939 21940 /* 21941 * Send out a control packet on the tcp connection specified. This routine 21942 * is typically called where we need a simple ACK or RST generated. 21943 */ 21944 static void 21945 tcp_xmit_ctl(char *str, tcp_t *tcp, uint32_t seq, uint32_t ack, int ctl) 21946 { 21947 uchar_t *rptr; 21948 tcph_t *tcph; 21949 ipha_t *ipha = NULL; 21950 ip6_t *ip6h = NULL; 21951 uint32_t sum; 21952 int tcp_hdr_len; 21953 int tcp_ip_hdr_len; 21954 mblk_t *mp; 21955 21956 /* 21957 * Save sum for use in source route later. 21958 */ 21959 ASSERT(tcp != NULL); 21960 sum = tcp->tcp_tcp_hdr_len + tcp->tcp_sum; 21961 tcp_hdr_len = tcp->tcp_hdr_len; 21962 tcp_ip_hdr_len = tcp->tcp_ip_hdr_len; 21963 21964 /* If a text string is passed in with the request, pass it to strlog. */ 21965 if (str != NULL && tcp->tcp_debug) { 21966 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 21967 "tcp_xmit_ctl: '%s', seq 0x%x, ack 0x%x, ctl 0x%x", 21968 str, seq, ack, ctl); 21969 } 21970 mp = allocb(tcp_ip_hdr_len + TCP_MAX_HDR_LENGTH + tcp_wroff_xtra, 21971 BPRI_MED); 21972 if (mp == NULL) { 21973 return; 21974 } 21975 rptr = &mp->b_rptr[tcp_wroff_xtra]; 21976 mp->b_rptr = rptr; 21977 mp->b_wptr = &rptr[tcp_hdr_len]; 21978 bcopy(tcp->tcp_iphc, rptr, tcp_hdr_len); 21979 21980 if (tcp->tcp_ipversion == IPV4_VERSION) { 21981 ipha = (ipha_t *)rptr; 21982 ipha->ipha_length = htons(tcp_hdr_len); 21983 } else { 21984 ip6h = (ip6_t *)rptr; 21985 ASSERT(tcp != NULL); 21986 ip6h->ip6_plen = htons(tcp->tcp_hdr_len - 21987 ((char *)&tcp->tcp_ip6h[1] - tcp->tcp_iphc)); 21988 } 21989 tcph = (tcph_t *)&rptr[tcp_ip_hdr_len]; 21990 tcph->th_flags[0] = (uint8_t)ctl; 21991 if (ctl & TH_RST) { 21992 BUMP_MIB(&tcp_mib, tcpOutRsts); 21993 BUMP_MIB(&tcp_mib, tcpOutControl); 21994 /* 21995 * Don't send TSopt w/ TH_RST packets per RFC 1323. 21996 */ 21997 if (tcp->tcp_snd_ts_ok && 21998 tcp->tcp_state > TCPS_SYN_SENT) { 21999 mp->b_wptr = &rptr[tcp_hdr_len - TCPOPT_REAL_TS_LEN]; 22000 *(mp->b_wptr) = TCPOPT_EOL; 22001 if (tcp->tcp_ipversion == IPV4_VERSION) { 22002 ipha->ipha_length = htons(tcp_hdr_len - 22003 TCPOPT_REAL_TS_LEN); 22004 } else { 22005 ip6h->ip6_plen = htons(ntohs(ip6h->ip6_plen) - 22006 TCPOPT_REAL_TS_LEN); 22007 } 22008 tcph->th_offset_and_rsrvd[0] -= (3 << 4); 22009 sum -= TCPOPT_REAL_TS_LEN; 22010 } 22011 } 22012 if (ctl & TH_ACK) { 22013 if (tcp->tcp_snd_ts_ok) { 22014 U32_TO_BE32(lbolt, 22015 (char *)tcph+TCP_MIN_HEADER_LENGTH+4); 22016 U32_TO_BE32(tcp->tcp_ts_recent, 22017 (char *)tcph+TCP_MIN_HEADER_LENGTH+8); 22018 } 22019 22020 /* Update the latest receive window size in TCP header. */ 22021 U32_TO_ABE16(tcp->tcp_rwnd >> tcp->tcp_rcv_ws, 22022 tcph->th_win); 22023 tcp->tcp_rack = ack; 22024 tcp->tcp_rack_cnt = 0; 22025 BUMP_MIB(&tcp_mib, tcpOutAck); 22026 } 22027 BUMP_LOCAL(tcp->tcp_obsegs); 22028 U32_TO_BE32(seq, tcph->th_seq); 22029 U32_TO_BE32(ack, tcph->th_ack); 22030 /* 22031 * Include the adjustment for a source route if any. 22032 */ 22033 sum = (sum >> 16) + (sum & 0xFFFF); 22034 U16_TO_BE16(sum, tcph->th_sum); 22035 TCP_RECORD_TRACE(tcp, mp, TCP_TRACE_SEND_PKT); 22036 tcp_send_data(tcp, tcp->tcp_wq, mp); 22037 } 22038 22039 /* 22040 * If this routine returns B_TRUE, TCP can generate a RST in response 22041 * to a segment. If it returns B_FALSE, TCP should not respond. 22042 */ 22043 static boolean_t 22044 tcp_send_rst_chk(void) 22045 { 22046 clock_t now; 22047 22048 /* 22049 * TCP needs to protect itself from generating too many RSTs. 22050 * This can be a DoS attack by sending us random segments 22051 * soliciting RSTs. 22052 * 22053 * What we do here is to have a limit of tcp_rst_sent_rate RSTs 22054 * in each 1 second interval. In this way, TCP still generate 22055 * RSTs in normal cases but when under attack, the impact is 22056 * limited. 22057 */ 22058 if (tcp_rst_sent_rate_enabled != 0) { 22059 now = lbolt; 22060 /* lbolt can wrap around. */ 22061 if ((tcp_last_rst_intrvl > now) || 22062 (TICK_TO_MSEC(now - tcp_last_rst_intrvl) > 1*SECONDS)) { 22063 tcp_last_rst_intrvl = now; 22064 tcp_rst_cnt = 1; 22065 } else if (++tcp_rst_cnt > tcp_rst_sent_rate) { 22066 return (B_FALSE); 22067 } 22068 } 22069 return (B_TRUE); 22070 } 22071 22072 /* 22073 * Send down the advice IP ioctl to tell IP to mark an IRE temporary. 22074 */ 22075 static void 22076 tcp_ip_ire_mark_advice(tcp_t *tcp) 22077 { 22078 mblk_t *mp; 22079 ipic_t *ipic; 22080 22081 if (tcp->tcp_ipversion == IPV4_VERSION) { 22082 mp = tcp_ip_advise_mblk(&tcp->tcp_ipha->ipha_dst, IP_ADDR_LEN, 22083 &ipic); 22084 } else { 22085 mp = tcp_ip_advise_mblk(&tcp->tcp_ip6h->ip6_dst, IPV6_ADDR_LEN, 22086 &ipic); 22087 } 22088 if (mp == NULL) 22089 return; 22090 ipic->ipic_ire_marks |= IRE_MARK_TEMPORARY; 22091 CALL_IP_WPUT(tcp->tcp_connp, tcp->tcp_wq, mp); 22092 } 22093 22094 /* 22095 * Return an IP advice ioctl mblk and set ipic to be the pointer 22096 * to the advice structure. 22097 */ 22098 static mblk_t * 22099 tcp_ip_advise_mblk(void *addr, int addr_len, ipic_t **ipic) 22100 { 22101 struct iocblk *ioc; 22102 mblk_t *mp, *mp1; 22103 22104 mp = allocb(sizeof (ipic_t) + addr_len, BPRI_HI); 22105 if (mp == NULL) 22106 return (NULL); 22107 bzero(mp->b_rptr, sizeof (ipic_t) + addr_len); 22108 *ipic = (ipic_t *)mp->b_rptr; 22109 (*ipic)->ipic_cmd = IP_IOC_IRE_ADVISE_NO_REPLY; 22110 (*ipic)->ipic_addr_offset = sizeof (ipic_t); 22111 22112 bcopy(addr, *ipic + 1, addr_len); 22113 22114 (*ipic)->ipic_addr_length = addr_len; 22115 mp->b_wptr = &mp->b_rptr[sizeof (ipic_t) + addr_len]; 22116 22117 mp1 = mkiocb(IP_IOCTL); 22118 if (mp1 == NULL) { 22119 freemsg(mp); 22120 return (NULL); 22121 } 22122 mp1->b_cont = mp; 22123 ioc = (struct iocblk *)mp1->b_rptr; 22124 ioc->ioc_count = sizeof (ipic_t) + addr_len; 22125 22126 return (mp1); 22127 } 22128 22129 /* 22130 * Generate a reset based on an inbound packet for which there is no active 22131 * tcp state that we can find. 22132 * 22133 * IPSEC NOTE : Try to send the reply with the same protection as it came 22134 * in. We still have the ipsec_mp that the packet was attached to. Thus 22135 * the packet will go out at the same level of protection as it came in by 22136 * converting the IPSEC_IN to IPSEC_OUT. 22137 */ 22138 static void 22139 tcp_xmit_early_reset(char *str, mblk_t *mp, uint32_t seq, 22140 uint32_t ack, int ctl, uint_t ip_hdr_len, zoneid_t zoneid) 22141 { 22142 ipha_t *ipha = NULL; 22143 ip6_t *ip6h = NULL; 22144 ushort_t len; 22145 tcph_t *tcph; 22146 int i; 22147 mblk_t *ipsec_mp; 22148 boolean_t mctl_present; 22149 ipic_t *ipic; 22150 ipaddr_t v4addr; 22151 in6_addr_t v6addr; 22152 int addr_len; 22153 void *addr; 22154 queue_t *q = tcp_g_q; 22155 tcp_t *tcp = Q_TO_TCP(q); 22156 cred_t *cr; 22157 mblk_t *nmp; 22158 22159 if (!tcp_send_rst_chk()) { 22160 tcp_rst_unsent++; 22161 freemsg(mp); 22162 return; 22163 } 22164 22165 if (mp->b_datap->db_type == M_CTL) { 22166 ipsec_mp = mp; 22167 mp = mp->b_cont; 22168 mctl_present = B_TRUE; 22169 } else { 22170 ipsec_mp = mp; 22171 mctl_present = B_FALSE; 22172 } 22173 22174 if (str && q && tcp_dbg) { 22175 (void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE, 22176 "tcp_xmit_early_reset: '%s', seq 0x%x, ack 0x%x, " 22177 "flags 0x%x", 22178 str, seq, ack, ctl); 22179 } 22180 if (mp->b_datap->db_ref != 1) { 22181 mblk_t *mp1 = copyb(mp); 22182 freemsg(mp); 22183 mp = mp1; 22184 if (!mp) { 22185 if (mctl_present) 22186 freeb(ipsec_mp); 22187 return; 22188 } else { 22189 if (mctl_present) { 22190 ipsec_mp->b_cont = mp; 22191 } else { 22192 ipsec_mp = mp; 22193 } 22194 } 22195 } else if (mp->b_cont) { 22196 freemsg(mp->b_cont); 22197 mp->b_cont = NULL; 22198 } 22199 /* 22200 * We skip reversing source route here. 22201 * (for now we replace all IP options with EOL) 22202 */ 22203 if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) { 22204 ipha = (ipha_t *)mp->b_rptr; 22205 for (i = IP_SIMPLE_HDR_LENGTH; i < (int)ip_hdr_len; i++) 22206 mp->b_rptr[i] = IPOPT_EOL; 22207 /* 22208 * Make sure that src address isn't flagrantly invalid. 22209 * Not all broadcast address checking for the src address 22210 * is possible, since we don't know the netmask of the src 22211 * addr. No check for destination address is done, since 22212 * IP will not pass up a packet with a broadcast dest 22213 * address to TCP. Similar checks are done below for IPv6. 22214 */ 22215 if (ipha->ipha_src == 0 || ipha->ipha_src == INADDR_BROADCAST || 22216 CLASSD(ipha->ipha_src)) { 22217 freemsg(ipsec_mp); 22218 BUMP_MIB(&ip_mib, ipInDiscards); 22219 return; 22220 } 22221 } else { 22222 ip6h = (ip6_t *)mp->b_rptr; 22223 22224 if (IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src) || 22225 IN6_IS_ADDR_MULTICAST(&ip6h->ip6_src)) { 22226 freemsg(ipsec_mp); 22227 BUMP_MIB(&ip6_mib, ipv6InDiscards); 22228 return; 22229 } 22230 22231 /* Remove any extension headers assuming partial overlay */ 22232 if (ip_hdr_len > IPV6_HDR_LEN) { 22233 uint8_t *to; 22234 22235 to = mp->b_rptr + ip_hdr_len - IPV6_HDR_LEN; 22236 ovbcopy(ip6h, to, IPV6_HDR_LEN); 22237 mp->b_rptr += ip_hdr_len - IPV6_HDR_LEN; 22238 ip_hdr_len = IPV6_HDR_LEN; 22239 ip6h = (ip6_t *)mp->b_rptr; 22240 ip6h->ip6_nxt = IPPROTO_TCP; 22241 } 22242 } 22243 tcph = (tcph_t *)&mp->b_rptr[ip_hdr_len]; 22244 if (tcph->th_flags[0] & TH_RST) { 22245 freemsg(ipsec_mp); 22246 return; 22247 } 22248 tcph->th_offset_and_rsrvd[0] = (5 << 4); 22249 len = ip_hdr_len + sizeof (tcph_t); 22250 mp->b_wptr = &mp->b_rptr[len]; 22251 if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) { 22252 ipha->ipha_length = htons(len); 22253 /* Swap addresses */ 22254 v4addr = ipha->ipha_src; 22255 ipha->ipha_src = ipha->ipha_dst; 22256 ipha->ipha_dst = v4addr; 22257 ipha->ipha_ident = 0; 22258 ipha->ipha_ttl = (uchar_t)tcp_ipv4_ttl; 22259 addr_len = IP_ADDR_LEN; 22260 addr = &v4addr; 22261 } else { 22262 /* No ip6i_t in this case */ 22263 ip6h->ip6_plen = htons(len - IPV6_HDR_LEN); 22264 /* Swap addresses */ 22265 v6addr = ip6h->ip6_src; 22266 ip6h->ip6_src = ip6h->ip6_dst; 22267 ip6h->ip6_dst = v6addr; 22268 ip6h->ip6_hops = (uchar_t)tcp_ipv6_hoplimit; 22269 addr_len = IPV6_ADDR_LEN; 22270 addr = &v6addr; 22271 } 22272 tcp_xchg(tcph->th_fport, tcph->th_lport, 2); 22273 U32_TO_BE32(ack, tcph->th_ack); 22274 U32_TO_BE32(seq, tcph->th_seq); 22275 U16_TO_BE16(0, tcph->th_win); 22276 U16_TO_BE16(sizeof (tcph_t), tcph->th_sum); 22277 tcph->th_flags[0] = (uint8_t)ctl; 22278 if (ctl & TH_RST) { 22279 BUMP_MIB(&tcp_mib, tcpOutRsts); 22280 BUMP_MIB(&tcp_mib, tcpOutControl); 22281 } 22282 22283 /* IP trusts us to set up labels when required. */ 22284 if (is_system_labeled() && (cr = DB_CRED(mp)) != NULL && 22285 crgetlabel(cr) != NULL) { 22286 int err, adjust; 22287 22288 if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) 22289 err = tsol_check_label(cr, &mp, &adjust, 22290 tcp->tcp_connp->conn_mac_exempt); 22291 else 22292 err = tsol_check_label_v6(cr, &mp, &adjust, 22293 tcp->tcp_connp->conn_mac_exempt); 22294 if (mctl_present) 22295 ipsec_mp->b_cont = mp; 22296 else 22297 ipsec_mp = mp; 22298 if (err != 0) { 22299 freemsg(ipsec_mp); 22300 return; 22301 } 22302 if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) { 22303 ipha = (ipha_t *)mp->b_rptr; 22304 adjust += ntohs(ipha->ipha_length); 22305 ipha->ipha_length = htons(adjust); 22306 } else { 22307 ip6h = (ip6_t *)mp->b_rptr; 22308 } 22309 } 22310 22311 if (mctl_present) { 22312 ipsec_in_t *ii = (ipsec_in_t *)ipsec_mp->b_rptr; 22313 22314 ASSERT(ii->ipsec_in_type == IPSEC_IN); 22315 if (!ipsec_in_to_out(ipsec_mp, ipha, ip6h)) { 22316 return; 22317 } 22318 } 22319 if (zoneid == ALL_ZONES) 22320 zoneid = GLOBAL_ZONEID; 22321 22322 /* Add the zoneid so ip_output routes it properly */ 22323 if ((nmp = ip_prepend_zoneid(ipsec_mp, zoneid)) == NULL) { 22324 freemsg(ipsec_mp); 22325 return; 22326 } 22327 ipsec_mp = nmp; 22328 22329 /* 22330 * NOTE: one might consider tracing a TCP packet here, but 22331 * this function has no active TCP state and no tcp structure 22332 * that has a trace buffer. If we traced here, we would have 22333 * to keep a local trace buffer in tcp_record_trace(). 22334 * 22335 * TSol note: The mblk that contains the incoming packet was 22336 * reused by tcp_xmit_listener_reset, so it already contains 22337 * the right credentials and we don't need to call mblk_setcred. 22338 * Also the conn's cred is not right since it is associated 22339 * with tcp_g_q. 22340 */ 22341 CALL_IP_WPUT(tcp->tcp_connp, tcp->tcp_wq, ipsec_mp); 22342 22343 /* 22344 * Tell IP to mark the IRE used for this destination temporary. 22345 * This way, we can limit our exposure to DoS attack because IP 22346 * creates an IRE for each destination. If there are too many, 22347 * the time to do any routing lookup will be extremely long. And 22348 * the lookup can be in interrupt context. 22349 * 22350 * Note that in normal circumstances, this marking should not 22351 * affect anything. It would be nice if only 1 message is 22352 * needed to inform IP that the IRE created for this RST should 22353 * not be added to the cache table. But there is currently 22354 * not such communication mechanism between TCP and IP. So 22355 * the best we can do now is to send the advice ioctl to IP 22356 * to mark the IRE temporary. 22357 */ 22358 if ((mp = tcp_ip_advise_mblk(addr, addr_len, &ipic)) != NULL) { 22359 ipic->ipic_ire_marks |= IRE_MARK_TEMPORARY; 22360 CALL_IP_WPUT(tcp->tcp_connp, tcp->tcp_wq, mp); 22361 } 22362 } 22363 22364 /* 22365 * Initiate closedown sequence on an active connection. (May be called as 22366 * writer.) Return value zero for OK return, non-zero for error return. 22367 */ 22368 static int 22369 tcp_xmit_end(tcp_t *tcp) 22370 { 22371 ipic_t *ipic; 22372 mblk_t *mp; 22373 22374 if (tcp->tcp_state < TCPS_SYN_RCVD || 22375 tcp->tcp_state > TCPS_CLOSE_WAIT) { 22376 /* 22377 * Invalid state, only states TCPS_SYN_RCVD, 22378 * TCPS_ESTABLISHED and TCPS_CLOSE_WAIT are valid 22379 */ 22380 return (-1); 22381 } 22382 22383 tcp->tcp_fss = tcp->tcp_snxt + tcp->tcp_unsent; 22384 tcp->tcp_valid_bits |= TCP_FSS_VALID; 22385 /* 22386 * If there is nothing more unsent, send the FIN now. 22387 * Otherwise, it will go out with the last segment. 22388 */ 22389 if (tcp->tcp_unsent == 0) { 22390 mp = tcp_xmit_mp(tcp, NULL, 0, NULL, NULL, 22391 tcp->tcp_fss, B_FALSE, NULL, B_FALSE); 22392 22393 if (mp) { 22394 TCP_RECORD_TRACE(tcp, mp, TCP_TRACE_SEND_PKT); 22395 tcp_send_data(tcp, tcp->tcp_wq, mp); 22396 } else { 22397 /* 22398 * Couldn't allocate msg. Pretend we got it out. 22399 * Wait for rexmit timeout. 22400 */ 22401 tcp->tcp_snxt = tcp->tcp_fss + 1; 22402 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 22403 } 22404 22405 /* 22406 * If needed, update tcp_rexmit_snxt as tcp_snxt is 22407 * changed. 22408 */ 22409 if (tcp->tcp_rexmit && tcp->tcp_rexmit_nxt == tcp->tcp_fss) { 22410 tcp->tcp_rexmit_nxt = tcp->tcp_snxt; 22411 } 22412 } else { 22413 /* 22414 * If tcp->tcp_cork is set, then the data will not get sent, 22415 * so we have to check that and unset it first. 22416 */ 22417 if (tcp->tcp_cork) 22418 tcp->tcp_cork = B_FALSE; 22419 tcp_wput_data(tcp, NULL, B_FALSE); 22420 } 22421 22422 /* 22423 * If TCP does not get enough samples of RTT or tcp_rtt_updates 22424 * is 0, don't update the cache. 22425 */ 22426 if (tcp_rtt_updates == 0 || tcp->tcp_rtt_update < tcp_rtt_updates) 22427 return (0); 22428 22429 /* 22430 * NOTE: should not update if source routes i.e. if tcp_remote if 22431 * different from the destination. 22432 */ 22433 if (tcp->tcp_ipversion == IPV4_VERSION) { 22434 if (tcp->tcp_remote != tcp->tcp_ipha->ipha_dst) { 22435 return (0); 22436 } 22437 mp = tcp_ip_advise_mblk(&tcp->tcp_ipha->ipha_dst, IP_ADDR_LEN, 22438 &ipic); 22439 } else { 22440 if (!(IN6_ARE_ADDR_EQUAL(&tcp->tcp_remote_v6, 22441 &tcp->tcp_ip6h->ip6_dst))) { 22442 return (0); 22443 } 22444 mp = tcp_ip_advise_mblk(&tcp->tcp_ip6h->ip6_dst, IPV6_ADDR_LEN, 22445 &ipic); 22446 } 22447 22448 /* Record route attributes in the IRE for use by future connections. */ 22449 if (mp == NULL) 22450 return (0); 22451 22452 /* 22453 * We do not have a good algorithm to update ssthresh at this time. 22454 * So don't do any update. 22455 */ 22456 ipic->ipic_rtt = tcp->tcp_rtt_sa; 22457 ipic->ipic_rtt_sd = tcp->tcp_rtt_sd; 22458 22459 CALL_IP_WPUT(tcp->tcp_connp, tcp->tcp_wq, mp); 22460 return (0); 22461 } 22462 22463 /* 22464 * Generate a "no listener here" RST in response to an "unknown" segment. 22465 * Note that we are reusing the incoming mp to construct the outgoing 22466 * RST. 22467 */ 22468 void 22469 tcp_xmit_listeners_reset(mblk_t *mp, uint_t ip_hdr_len, zoneid_t zoneid) 22470 { 22471 uchar_t *rptr; 22472 uint32_t seg_len; 22473 tcph_t *tcph; 22474 uint32_t seg_seq; 22475 uint32_t seg_ack; 22476 uint_t flags; 22477 mblk_t *ipsec_mp; 22478 ipha_t *ipha; 22479 ip6_t *ip6h; 22480 boolean_t mctl_present = B_FALSE; 22481 boolean_t check = B_TRUE; 22482 boolean_t policy_present; 22483 22484 TCP_STAT(tcp_no_listener); 22485 22486 ipsec_mp = mp; 22487 22488 if (mp->b_datap->db_type == M_CTL) { 22489 ipsec_in_t *ii; 22490 22491 mctl_present = B_TRUE; 22492 mp = mp->b_cont; 22493 22494 ii = (ipsec_in_t *)ipsec_mp->b_rptr; 22495 ASSERT(ii->ipsec_in_type == IPSEC_IN); 22496 if (ii->ipsec_in_dont_check) { 22497 check = B_FALSE; 22498 if (!ii->ipsec_in_secure) { 22499 freeb(ipsec_mp); 22500 mctl_present = B_FALSE; 22501 ipsec_mp = mp; 22502 } 22503 } 22504 } 22505 22506 if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) { 22507 policy_present = ipsec_inbound_v4_policy_present; 22508 ipha = (ipha_t *)mp->b_rptr; 22509 ip6h = NULL; 22510 } else { 22511 policy_present = ipsec_inbound_v6_policy_present; 22512 ipha = NULL; 22513 ip6h = (ip6_t *)mp->b_rptr; 22514 } 22515 22516 if (check && policy_present) { 22517 /* 22518 * The conn_t parameter is NULL because we already know 22519 * nobody's home. 22520 */ 22521 ipsec_mp = ipsec_check_global_policy( 22522 ipsec_mp, (conn_t *)NULL, ipha, ip6h, mctl_present); 22523 if (ipsec_mp == NULL) 22524 return; 22525 } 22526 if (is_system_labeled() && !tsol_can_reply_error(mp)) { 22527 DTRACE_PROBE2( 22528 tx__ip__log__error__nolistener__tcp, 22529 char *, "Could not reply with RST to mp(1)", 22530 mblk_t *, mp); 22531 ip2dbg(("tcp_xmit_listeners_reset: not permitted to reply\n")); 22532 freemsg(ipsec_mp); 22533 return; 22534 } 22535 22536 rptr = mp->b_rptr; 22537 22538 tcph = (tcph_t *)&rptr[ip_hdr_len]; 22539 seg_seq = BE32_TO_U32(tcph->th_seq); 22540 seg_ack = BE32_TO_U32(tcph->th_ack); 22541 flags = tcph->th_flags[0]; 22542 22543 seg_len = msgdsize(mp) - (TCP_HDR_LENGTH(tcph) + ip_hdr_len); 22544 if (flags & TH_RST) { 22545 freemsg(ipsec_mp); 22546 } else if (flags & TH_ACK) { 22547 tcp_xmit_early_reset("no tcp, reset", 22548 ipsec_mp, seg_ack, 0, TH_RST, ip_hdr_len, zoneid); 22549 } else { 22550 if (flags & TH_SYN) { 22551 seg_len++; 22552 } else { 22553 /* 22554 * Here we violate the RFC. Note that a normal 22555 * TCP will never send a segment without the ACK 22556 * flag, except for RST or SYN segment. This 22557 * segment is neither. Just drop it on the 22558 * floor. 22559 */ 22560 freemsg(ipsec_mp); 22561 tcp_rst_unsent++; 22562 return; 22563 } 22564 22565 tcp_xmit_early_reset("no tcp, reset/ack", 22566 ipsec_mp, 0, seg_seq + seg_len, 22567 TH_RST | TH_ACK, ip_hdr_len, zoneid); 22568 } 22569 } 22570 22571 /* 22572 * tcp_xmit_mp is called to return a pointer to an mblk chain complete with 22573 * ip and tcp header ready to pass down to IP. If the mp passed in is 22574 * non-NULL, then up to max_to_send bytes of data will be dup'ed off that 22575 * mblk. (If sendall is not set the dup'ing will stop at an mblk boundary 22576 * otherwise it will dup partial mblks.) 22577 * Otherwise, an appropriate ACK packet will be generated. This 22578 * routine is not usually called to send new data for the first time. It 22579 * is mostly called out of the timer for retransmits, and to generate ACKs. 22580 * 22581 * If offset is not NULL, the returned mblk chain's first mblk's b_rptr will 22582 * be adjusted by *offset. And after dupb(), the offset and the ending mblk 22583 * of the original mblk chain will be returned in *offset and *end_mp. 22584 */ 22585 mblk_t * 22586 tcp_xmit_mp(tcp_t *tcp, mblk_t *mp, int32_t max_to_send, int32_t *offset, 22587 mblk_t **end_mp, uint32_t seq, boolean_t sendall, uint32_t *seg_len, 22588 boolean_t rexmit) 22589 { 22590 int data_length; 22591 int32_t off = 0; 22592 uint_t flags; 22593 mblk_t *mp1; 22594 mblk_t *mp2; 22595 uchar_t *rptr; 22596 tcph_t *tcph; 22597 int32_t num_sack_blk = 0; 22598 int32_t sack_opt_len = 0; 22599 22600 /* Allocate for our maximum TCP header + link-level */ 22601 mp1 = allocb(tcp->tcp_ip_hdr_len + TCP_MAX_HDR_LENGTH + tcp_wroff_xtra, 22602 BPRI_MED); 22603 if (!mp1) 22604 return (NULL); 22605 data_length = 0; 22606 22607 /* 22608 * Note that tcp_mss has been adjusted to take into account the 22609 * timestamp option if applicable. Because SACK options do not 22610 * appear in every TCP segments and they are of variable lengths, 22611 * they cannot be included in tcp_mss. Thus we need to calculate 22612 * the actual segment length when we need to send a segment which 22613 * includes SACK options. 22614 */ 22615 if (tcp->tcp_snd_sack_ok && tcp->tcp_num_sack_blk > 0) { 22616 num_sack_blk = MIN(tcp->tcp_max_sack_blk, 22617 tcp->tcp_num_sack_blk); 22618 sack_opt_len = num_sack_blk * sizeof (sack_blk_t) + 22619 TCPOPT_NOP_LEN * 2 + TCPOPT_HEADER_LEN; 22620 if (max_to_send + sack_opt_len > tcp->tcp_mss) 22621 max_to_send -= sack_opt_len; 22622 } 22623 22624 if (offset != NULL) { 22625 off = *offset; 22626 /* We use offset as an indicator that end_mp is not NULL. */ 22627 *end_mp = NULL; 22628 } 22629 for (mp2 = mp1; mp && data_length != max_to_send; mp = mp->b_cont) { 22630 /* This could be faster with cooperation from downstream */ 22631 if (mp2 != mp1 && !sendall && 22632 data_length + (int)(mp->b_wptr - mp->b_rptr) > 22633 max_to_send) 22634 /* 22635 * Don't send the next mblk since the whole mblk 22636 * does not fit. 22637 */ 22638 break; 22639 mp2->b_cont = dupb(mp); 22640 mp2 = mp2->b_cont; 22641 if (!mp2) { 22642 freemsg(mp1); 22643 return (NULL); 22644 } 22645 mp2->b_rptr += off; 22646 ASSERT((uintptr_t)(mp2->b_wptr - mp2->b_rptr) <= 22647 (uintptr_t)INT_MAX); 22648 22649 data_length += (int)(mp2->b_wptr - mp2->b_rptr); 22650 if (data_length > max_to_send) { 22651 mp2->b_wptr -= data_length - max_to_send; 22652 data_length = max_to_send; 22653 off = mp2->b_wptr - mp->b_rptr; 22654 break; 22655 } else { 22656 off = 0; 22657 } 22658 } 22659 if (offset != NULL) { 22660 *offset = off; 22661 *end_mp = mp; 22662 } 22663 if (seg_len != NULL) { 22664 *seg_len = data_length; 22665 } 22666 22667 /* Update the latest receive window size in TCP header. */ 22668 U32_TO_ABE16(tcp->tcp_rwnd >> tcp->tcp_rcv_ws, 22669 tcp->tcp_tcph->th_win); 22670 22671 rptr = mp1->b_rptr + tcp_wroff_xtra; 22672 mp1->b_rptr = rptr; 22673 mp1->b_wptr = rptr + tcp->tcp_hdr_len + sack_opt_len; 22674 bcopy(tcp->tcp_iphc, rptr, tcp->tcp_hdr_len); 22675 tcph = (tcph_t *)&rptr[tcp->tcp_ip_hdr_len]; 22676 U32_TO_ABE32(seq, tcph->th_seq); 22677 22678 /* 22679 * Use tcp_unsent to determine if the PUSH bit should be used assumes 22680 * that this function was called from tcp_wput_data. Thus, when called 22681 * to retransmit data the setting of the PUSH bit may appear some 22682 * what random in that it might get set when it should not. This 22683 * should not pose any performance issues. 22684 */ 22685 if (data_length != 0 && (tcp->tcp_unsent == 0 || 22686 tcp->tcp_unsent == data_length)) { 22687 flags = TH_ACK | TH_PUSH; 22688 } else { 22689 flags = TH_ACK; 22690 } 22691 22692 if (tcp->tcp_ecn_ok) { 22693 if (tcp->tcp_ecn_echo_on) 22694 flags |= TH_ECE; 22695 22696 /* 22697 * Only set ECT bit and ECN_CWR if a segment contains new data. 22698 * There is no TCP flow control for non-data segments, and 22699 * only data segment is transmitted reliably. 22700 */ 22701 if (data_length > 0 && !rexmit) { 22702 SET_ECT(tcp, rptr); 22703 if (tcp->tcp_cwr && !tcp->tcp_ecn_cwr_sent) { 22704 flags |= TH_CWR; 22705 tcp->tcp_ecn_cwr_sent = B_TRUE; 22706 } 22707 } 22708 } 22709 22710 if (tcp->tcp_valid_bits) { 22711 uint32_t u1; 22712 22713 if ((tcp->tcp_valid_bits & TCP_ISS_VALID) && 22714 seq == tcp->tcp_iss) { 22715 uchar_t *wptr; 22716 22717 /* 22718 * If TCP_ISS_VALID and the seq number is tcp_iss, 22719 * TCP can only be in SYN-SENT, SYN-RCVD or 22720 * FIN-WAIT-1 state. It can be FIN-WAIT-1 if 22721 * our SYN is not ack'ed but the app closes this 22722 * TCP connection. 22723 */ 22724 ASSERT(tcp->tcp_state == TCPS_SYN_SENT || 22725 tcp->tcp_state == TCPS_SYN_RCVD || 22726 tcp->tcp_state == TCPS_FIN_WAIT_1); 22727 22728 /* 22729 * Tack on the MSS option. It is always needed 22730 * for both active and passive open. 22731 * 22732 * MSS option value should be interface MTU - MIN 22733 * TCP/IP header according to RFC 793 as it means 22734 * the maximum segment size TCP can receive. But 22735 * to get around some broken middle boxes/end hosts 22736 * out there, we allow the option value to be the 22737 * same as the MSS option size on the peer side. 22738 * In this way, the other side will not send 22739 * anything larger than they can receive. 22740 * 22741 * Note that for SYN_SENT state, the ndd param 22742 * tcp_use_smss_as_mss_opt has no effect as we 22743 * don't know the peer's MSS option value. So 22744 * the only case we need to take care of is in 22745 * SYN_RCVD state, which is done later. 22746 */ 22747 wptr = mp1->b_wptr; 22748 wptr[0] = TCPOPT_MAXSEG; 22749 wptr[1] = TCPOPT_MAXSEG_LEN; 22750 wptr += 2; 22751 u1 = tcp->tcp_if_mtu - 22752 (tcp->tcp_ipversion == IPV4_VERSION ? 22753 IP_SIMPLE_HDR_LENGTH : IPV6_HDR_LEN) - 22754 TCP_MIN_HEADER_LENGTH; 22755 U16_TO_BE16(u1, wptr); 22756 mp1->b_wptr = wptr + 2; 22757 /* Update the offset to cover the additional word */ 22758 tcph->th_offset_and_rsrvd[0] += (1 << 4); 22759 22760 /* 22761 * Note that the following way of filling in 22762 * TCP options are not optimal. Some NOPs can 22763 * be saved. But there is no need at this time 22764 * to optimize it. When it is needed, we will 22765 * do it. 22766 */ 22767 switch (tcp->tcp_state) { 22768 case TCPS_SYN_SENT: 22769 flags = TH_SYN; 22770 22771 if (tcp->tcp_snd_ts_ok) { 22772 uint32_t llbolt = (uint32_t)lbolt; 22773 22774 wptr = mp1->b_wptr; 22775 wptr[0] = TCPOPT_NOP; 22776 wptr[1] = TCPOPT_NOP; 22777 wptr[2] = TCPOPT_TSTAMP; 22778 wptr[3] = TCPOPT_TSTAMP_LEN; 22779 wptr += 4; 22780 U32_TO_BE32(llbolt, wptr); 22781 wptr += 4; 22782 ASSERT(tcp->tcp_ts_recent == 0); 22783 U32_TO_BE32(0L, wptr); 22784 mp1->b_wptr += TCPOPT_REAL_TS_LEN; 22785 tcph->th_offset_and_rsrvd[0] += 22786 (3 << 4); 22787 } 22788 22789 /* 22790 * Set up all the bits to tell other side 22791 * we are ECN capable. 22792 */ 22793 if (tcp->tcp_ecn_ok) { 22794 flags |= (TH_ECE | TH_CWR); 22795 } 22796 break; 22797 case TCPS_SYN_RCVD: 22798 flags |= TH_SYN; 22799 22800 /* 22801 * Reset the MSS option value to be SMSS 22802 * We should probably add back the bytes 22803 * for timestamp option and IPsec. We 22804 * don't do that as this is a workaround 22805 * for broken middle boxes/end hosts, it 22806 * is better for us to be more cautious. 22807 * They may not take these things into 22808 * account in their SMSS calculation. Thus 22809 * the peer's calculated SMSS may be smaller 22810 * than what it can be. This should be OK. 22811 */ 22812 if (tcp_use_smss_as_mss_opt) { 22813 u1 = tcp->tcp_mss; 22814 U16_TO_BE16(u1, wptr); 22815 } 22816 22817 /* 22818 * If the other side is ECN capable, reply 22819 * that we are also ECN capable. 22820 */ 22821 if (tcp->tcp_ecn_ok) 22822 flags |= TH_ECE; 22823 break; 22824 default: 22825 /* 22826 * The above ASSERT() makes sure that this 22827 * must be FIN-WAIT-1 state. Our SYN has 22828 * not been ack'ed so retransmit it. 22829 */ 22830 flags |= TH_SYN; 22831 break; 22832 } 22833 22834 if (tcp->tcp_snd_ws_ok) { 22835 wptr = mp1->b_wptr; 22836 wptr[0] = TCPOPT_NOP; 22837 wptr[1] = TCPOPT_WSCALE; 22838 wptr[2] = TCPOPT_WS_LEN; 22839 wptr[3] = (uchar_t)tcp->tcp_rcv_ws; 22840 mp1->b_wptr += TCPOPT_REAL_WS_LEN; 22841 tcph->th_offset_and_rsrvd[0] += (1 << 4); 22842 } 22843 22844 if (tcp->tcp_snd_sack_ok) { 22845 wptr = mp1->b_wptr; 22846 wptr[0] = TCPOPT_NOP; 22847 wptr[1] = TCPOPT_NOP; 22848 wptr[2] = TCPOPT_SACK_PERMITTED; 22849 wptr[3] = TCPOPT_SACK_OK_LEN; 22850 mp1->b_wptr += TCPOPT_REAL_SACK_OK_LEN; 22851 tcph->th_offset_and_rsrvd[0] += (1 << 4); 22852 } 22853 22854 /* allocb() of adequate mblk assures space */ 22855 ASSERT((uintptr_t)(mp1->b_wptr - mp1->b_rptr) <= 22856 (uintptr_t)INT_MAX); 22857 u1 = (int)(mp1->b_wptr - mp1->b_rptr); 22858 /* 22859 * Get IP set to checksum on our behalf 22860 * Include the adjustment for a source route if any. 22861 */ 22862 u1 += tcp->tcp_sum; 22863 u1 = (u1 >> 16) + (u1 & 0xFFFF); 22864 U16_TO_BE16(u1, tcph->th_sum); 22865 BUMP_MIB(&tcp_mib, tcpOutControl); 22866 } 22867 if ((tcp->tcp_valid_bits & TCP_FSS_VALID) && 22868 (seq + data_length) == tcp->tcp_fss) { 22869 if (!tcp->tcp_fin_acked) { 22870 flags |= TH_FIN; 22871 BUMP_MIB(&tcp_mib, tcpOutControl); 22872 } 22873 if (!tcp->tcp_fin_sent) { 22874 tcp->tcp_fin_sent = B_TRUE; 22875 switch (tcp->tcp_state) { 22876 case TCPS_SYN_RCVD: 22877 case TCPS_ESTABLISHED: 22878 tcp->tcp_state = TCPS_FIN_WAIT_1; 22879 break; 22880 case TCPS_CLOSE_WAIT: 22881 tcp->tcp_state = TCPS_LAST_ACK; 22882 break; 22883 } 22884 if (tcp->tcp_suna == tcp->tcp_snxt) 22885 TCP_TIMER_RESTART(tcp, tcp->tcp_rto); 22886 tcp->tcp_snxt = tcp->tcp_fss + 1; 22887 } 22888 } 22889 /* 22890 * Note the trick here. u1 is unsigned. When tcp_urg 22891 * is smaller than seq, u1 will become a very huge value. 22892 * So the comparison will fail. Also note that tcp_urp 22893 * should be positive, see RFC 793 page 17. 22894 */ 22895 u1 = tcp->tcp_urg - seq + TCP_OLD_URP_INTERPRETATION; 22896 if ((tcp->tcp_valid_bits & TCP_URG_VALID) && u1 != 0 && 22897 u1 < (uint32_t)(64 * 1024)) { 22898 flags |= TH_URG; 22899 BUMP_MIB(&tcp_mib, tcpOutUrg); 22900 U32_TO_ABE16(u1, tcph->th_urp); 22901 } 22902 } 22903 tcph->th_flags[0] = (uchar_t)flags; 22904 tcp->tcp_rack = tcp->tcp_rnxt; 22905 tcp->tcp_rack_cnt = 0; 22906 22907 if (tcp->tcp_snd_ts_ok) { 22908 if (tcp->tcp_state != TCPS_SYN_SENT) { 22909 uint32_t llbolt = (uint32_t)lbolt; 22910 22911 U32_TO_BE32(llbolt, 22912 (char *)tcph+TCP_MIN_HEADER_LENGTH+4); 22913 U32_TO_BE32(tcp->tcp_ts_recent, 22914 (char *)tcph+TCP_MIN_HEADER_LENGTH+8); 22915 } 22916 } 22917 22918 if (num_sack_blk > 0) { 22919 uchar_t *wptr = (uchar_t *)tcph + tcp->tcp_tcp_hdr_len; 22920 sack_blk_t *tmp; 22921 int32_t i; 22922 22923 wptr[0] = TCPOPT_NOP; 22924 wptr[1] = TCPOPT_NOP; 22925 wptr[2] = TCPOPT_SACK; 22926 wptr[3] = TCPOPT_HEADER_LEN + num_sack_blk * 22927 sizeof (sack_blk_t); 22928 wptr += TCPOPT_REAL_SACK_LEN; 22929 22930 tmp = tcp->tcp_sack_list; 22931 for (i = 0; i < num_sack_blk; i++) { 22932 U32_TO_BE32(tmp[i].begin, wptr); 22933 wptr += sizeof (tcp_seq); 22934 U32_TO_BE32(tmp[i].end, wptr); 22935 wptr += sizeof (tcp_seq); 22936 } 22937 tcph->th_offset_and_rsrvd[0] += ((num_sack_blk * 2 + 1) << 4); 22938 } 22939 ASSERT((uintptr_t)(mp1->b_wptr - rptr) <= (uintptr_t)INT_MAX); 22940 data_length += (int)(mp1->b_wptr - rptr); 22941 if (tcp->tcp_ipversion == IPV4_VERSION) { 22942 ((ipha_t *)rptr)->ipha_length = htons(data_length); 22943 } else { 22944 ip6_t *ip6 = (ip6_t *)(rptr + 22945 (((ip6_t *)rptr)->ip6_nxt == IPPROTO_RAW ? 22946 sizeof (ip6i_t) : 0)); 22947 22948 ip6->ip6_plen = htons(data_length - 22949 ((char *)&tcp->tcp_ip6h[1] - tcp->tcp_iphc)); 22950 } 22951 22952 /* 22953 * Prime pump for IP 22954 * Include the adjustment for a source route if any. 22955 */ 22956 data_length -= tcp->tcp_ip_hdr_len; 22957 data_length += tcp->tcp_sum; 22958 data_length = (data_length >> 16) + (data_length & 0xFFFF); 22959 U16_TO_ABE16(data_length, tcph->th_sum); 22960 if (tcp->tcp_ip_forward_progress) { 22961 ASSERT(tcp->tcp_ipversion == IPV6_VERSION); 22962 *(uint32_t *)mp1->b_rptr |= IP_FORWARD_PROG; 22963 tcp->tcp_ip_forward_progress = B_FALSE; 22964 } 22965 return (mp1); 22966 } 22967 22968 /* This function handles the push timeout. */ 22969 void 22970 tcp_push_timer(void *arg) 22971 { 22972 conn_t *connp = (conn_t *)arg; 22973 tcp_t *tcp = connp->conn_tcp; 22974 22975 TCP_DBGSTAT(tcp_push_timer_cnt); 22976 22977 ASSERT(tcp->tcp_listener == NULL); 22978 22979 /* 22980 * We need to plug synchronous streams during our drain to prevent 22981 * a race with tcp_fuse_rrw() or tcp_fusion_rinfop(). 22982 */ 22983 TCP_FUSE_SYNCSTR_PLUG_DRAIN(tcp); 22984 tcp->tcp_push_tid = 0; 22985 if ((tcp->tcp_rcv_list != NULL) && 22986 (tcp_rcv_drain(tcp->tcp_rq, tcp) == TH_ACK_NEEDED)) 22987 tcp_xmit_ctl(NULL, tcp, tcp->tcp_snxt, tcp->tcp_rnxt, TH_ACK); 22988 TCP_FUSE_SYNCSTR_UNPLUG_DRAIN(tcp); 22989 } 22990 22991 /* 22992 * This function handles delayed ACK timeout. 22993 */ 22994 static void 22995 tcp_ack_timer(void *arg) 22996 { 22997 conn_t *connp = (conn_t *)arg; 22998 tcp_t *tcp = connp->conn_tcp; 22999 mblk_t *mp; 23000 23001 TCP_DBGSTAT(tcp_ack_timer_cnt); 23002 23003 tcp->tcp_ack_tid = 0; 23004 23005 if (tcp->tcp_fused) 23006 return; 23007 23008 /* 23009 * Do not send ACK if there is no outstanding unack'ed data. 23010 */ 23011 if (tcp->tcp_rnxt == tcp->tcp_rack) { 23012 return; 23013 } 23014 23015 if ((tcp->tcp_rnxt - tcp->tcp_rack) > tcp->tcp_mss) { 23016 /* 23017 * Make sure we don't allow deferred ACKs to result in 23018 * timer-based ACKing. If we have held off an ACK 23019 * when there was more than an mss here, and the timer 23020 * goes off, we have to worry about the possibility 23021 * that the sender isn't doing slow-start, or is out 23022 * of step with us for some other reason. We fall 23023 * permanently back in the direction of 23024 * ACK-every-other-packet as suggested in RFC 1122. 23025 */ 23026 if (tcp->tcp_rack_abs_max > 2) 23027 tcp->tcp_rack_abs_max--; 23028 tcp->tcp_rack_cur_max = 2; 23029 } 23030 mp = tcp_ack_mp(tcp); 23031 23032 if (mp != NULL) { 23033 TCP_RECORD_TRACE(tcp, mp, TCP_TRACE_SEND_PKT); 23034 BUMP_LOCAL(tcp->tcp_obsegs); 23035 BUMP_MIB(&tcp_mib, tcpOutAck); 23036 BUMP_MIB(&tcp_mib, tcpOutAckDelayed); 23037 tcp_send_data(tcp, tcp->tcp_wq, mp); 23038 } 23039 } 23040 23041 23042 /* Generate an ACK-only (no data) segment for a TCP endpoint */ 23043 static mblk_t * 23044 tcp_ack_mp(tcp_t *tcp) 23045 { 23046 uint32_t seq_no; 23047 23048 /* 23049 * There are a few cases to be considered while setting the sequence no. 23050 * Essentially, we can come here while processing an unacceptable pkt 23051 * in the TCPS_SYN_RCVD state, in which case we set the sequence number 23052 * to snxt (per RFC 793), note the swnd wouldn't have been set yet. 23053 * If we are here for a zero window probe, stick with suna. In all 23054 * other cases, we check if suna + swnd encompasses snxt and set 23055 * the sequence number to snxt, if so. If snxt falls outside the 23056 * window (the receiver probably shrunk its window), we will go with 23057 * suna + swnd, otherwise the sequence no will be unacceptable to the 23058 * receiver. 23059 */ 23060 if (tcp->tcp_zero_win_probe) { 23061 seq_no = tcp->tcp_suna; 23062 } else if (tcp->tcp_state == TCPS_SYN_RCVD) { 23063 ASSERT(tcp->tcp_swnd == 0); 23064 seq_no = tcp->tcp_snxt; 23065 } else { 23066 seq_no = SEQ_GT(tcp->tcp_snxt, 23067 (tcp->tcp_suna + tcp->tcp_swnd)) ? 23068 (tcp->tcp_suna + tcp->tcp_swnd) : tcp->tcp_snxt; 23069 } 23070 23071 if (tcp->tcp_valid_bits) { 23072 /* 23073 * For the complex case where we have to send some 23074 * controls (FIN or SYN), let tcp_xmit_mp do it. 23075 */ 23076 return (tcp_xmit_mp(tcp, NULL, 0, NULL, NULL, seq_no, B_FALSE, 23077 NULL, B_FALSE)); 23078 } else { 23079 /* Generate a simple ACK */ 23080 int data_length; 23081 uchar_t *rptr; 23082 tcph_t *tcph; 23083 mblk_t *mp1; 23084 int32_t tcp_hdr_len; 23085 int32_t tcp_tcp_hdr_len; 23086 int32_t num_sack_blk = 0; 23087 int32_t sack_opt_len; 23088 23089 /* 23090 * Allocate space for TCP + IP headers 23091 * and link-level header 23092 */ 23093 if (tcp->tcp_snd_sack_ok && tcp->tcp_num_sack_blk > 0) { 23094 num_sack_blk = MIN(tcp->tcp_max_sack_blk, 23095 tcp->tcp_num_sack_blk); 23096 sack_opt_len = num_sack_blk * sizeof (sack_blk_t) + 23097 TCPOPT_NOP_LEN * 2 + TCPOPT_HEADER_LEN; 23098 tcp_hdr_len = tcp->tcp_hdr_len + sack_opt_len; 23099 tcp_tcp_hdr_len = tcp->tcp_tcp_hdr_len + sack_opt_len; 23100 } else { 23101 tcp_hdr_len = tcp->tcp_hdr_len; 23102 tcp_tcp_hdr_len = tcp->tcp_tcp_hdr_len; 23103 } 23104 mp1 = allocb(tcp_hdr_len + tcp_wroff_xtra, BPRI_MED); 23105 if (!mp1) 23106 return (NULL); 23107 23108 /* Update the latest receive window size in TCP header. */ 23109 U32_TO_ABE16(tcp->tcp_rwnd >> tcp->tcp_rcv_ws, 23110 tcp->tcp_tcph->th_win); 23111 /* copy in prototype TCP + IP header */ 23112 rptr = mp1->b_rptr + tcp_wroff_xtra; 23113 mp1->b_rptr = rptr; 23114 mp1->b_wptr = rptr + tcp_hdr_len; 23115 bcopy(tcp->tcp_iphc, rptr, tcp->tcp_hdr_len); 23116 23117 tcph = (tcph_t *)&rptr[tcp->tcp_ip_hdr_len]; 23118 23119 /* Set the TCP sequence number. */ 23120 U32_TO_ABE32(seq_no, tcph->th_seq); 23121 23122 /* Set up the TCP flag field. */ 23123 tcph->th_flags[0] = (uchar_t)TH_ACK; 23124 if (tcp->tcp_ecn_echo_on) 23125 tcph->th_flags[0] |= TH_ECE; 23126 23127 tcp->tcp_rack = tcp->tcp_rnxt; 23128 tcp->tcp_rack_cnt = 0; 23129 23130 /* fill in timestamp option if in use */ 23131 if (tcp->tcp_snd_ts_ok) { 23132 uint32_t llbolt = (uint32_t)lbolt; 23133 23134 U32_TO_BE32(llbolt, 23135 (char *)tcph+TCP_MIN_HEADER_LENGTH+4); 23136 U32_TO_BE32(tcp->tcp_ts_recent, 23137 (char *)tcph+TCP_MIN_HEADER_LENGTH+8); 23138 } 23139 23140 /* Fill in SACK options */ 23141 if (num_sack_blk > 0) { 23142 uchar_t *wptr = (uchar_t *)tcph + tcp->tcp_tcp_hdr_len; 23143 sack_blk_t *tmp; 23144 int32_t i; 23145 23146 wptr[0] = TCPOPT_NOP; 23147 wptr[1] = TCPOPT_NOP; 23148 wptr[2] = TCPOPT_SACK; 23149 wptr[3] = TCPOPT_HEADER_LEN + num_sack_blk * 23150 sizeof (sack_blk_t); 23151 wptr += TCPOPT_REAL_SACK_LEN; 23152 23153 tmp = tcp->tcp_sack_list; 23154 for (i = 0; i < num_sack_blk; i++) { 23155 U32_TO_BE32(tmp[i].begin, wptr); 23156 wptr += sizeof (tcp_seq); 23157 U32_TO_BE32(tmp[i].end, wptr); 23158 wptr += sizeof (tcp_seq); 23159 } 23160 tcph->th_offset_and_rsrvd[0] += ((num_sack_blk * 2 + 1) 23161 << 4); 23162 } 23163 23164 if (tcp->tcp_ipversion == IPV4_VERSION) { 23165 ((ipha_t *)rptr)->ipha_length = htons(tcp_hdr_len); 23166 } else { 23167 /* Check for ip6i_t header in sticky hdrs */ 23168 ip6_t *ip6 = (ip6_t *)(rptr + 23169 (((ip6_t *)rptr)->ip6_nxt == IPPROTO_RAW ? 23170 sizeof (ip6i_t) : 0)); 23171 23172 ip6->ip6_plen = htons(tcp_hdr_len - 23173 ((char *)&tcp->tcp_ip6h[1] - tcp->tcp_iphc)); 23174 } 23175 23176 /* 23177 * Prime pump for checksum calculation in IP. Include the 23178 * adjustment for a source route if any. 23179 */ 23180 data_length = tcp_tcp_hdr_len + tcp->tcp_sum; 23181 data_length = (data_length >> 16) + (data_length & 0xFFFF); 23182 U16_TO_ABE16(data_length, tcph->th_sum); 23183 23184 if (tcp->tcp_ip_forward_progress) { 23185 ASSERT(tcp->tcp_ipversion == IPV6_VERSION); 23186 *(uint32_t *)mp1->b_rptr |= IP_FORWARD_PROG; 23187 tcp->tcp_ip_forward_progress = B_FALSE; 23188 } 23189 return (mp1); 23190 } 23191 } 23192 23193 /* 23194 * To create a temporary tcp structure for inserting into bind hash list. 23195 * The parameter is assumed to be in network byte order, ready for use. 23196 */ 23197 /* ARGSUSED */ 23198 static tcp_t * 23199 tcp_alloc_temp_tcp(in_port_t port) 23200 { 23201 conn_t *connp; 23202 tcp_t *tcp; 23203 23204 connp = ipcl_conn_create(IPCL_TCPCONN, KM_SLEEP); 23205 if (connp == NULL) 23206 return (NULL); 23207 23208 tcp = connp->conn_tcp; 23209 23210 /* 23211 * Only initialize the necessary info in those structures. Note 23212 * that since INADDR_ANY is all 0, we do not need to set 23213 * tcp_bound_source to INADDR_ANY here. 23214 */ 23215 tcp->tcp_state = TCPS_BOUND; 23216 tcp->tcp_lport = port; 23217 tcp->tcp_exclbind = 1; 23218 tcp->tcp_reserved_port = 1; 23219 23220 /* Just for place holding... */ 23221 tcp->tcp_ipversion = IPV4_VERSION; 23222 23223 return (tcp); 23224 } 23225 23226 /* 23227 * To remove a port range specified by lo_port and hi_port from the 23228 * reserved port ranges. This is one of the three public functions of 23229 * the reserved port interface. Note that a port range has to be removed 23230 * as a whole. Ports in a range cannot be removed individually. 23231 * 23232 * Params: 23233 * in_port_t lo_port: the beginning port of the reserved port range to 23234 * be deleted. 23235 * in_port_t hi_port: the ending port of the reserved port range to 23236 * be deleted. 23237 * 23238 * Return: 23239 * B_TRUE if the deletion is successful, B_FALSE otherwise. 23240 */ 23241 boolean_t 23242 tcp_reserved_port_del(in_port_t lo_port, in_port_t hi_port) 23243 { 23244 int i, j; 23245 int size; 23246 tcp_t **temp_tcp_array; 23247 tcp_t *tcp; 23248 23249 rw_enter(&tcp_reserved_port_lock, RW_WRITER); 23250 23251 /* First make sure that the port ranage is indeed reserved. */ 23252 for (i = 0; i < tcp_reserved_port_array_size; i++) { 23253 if (tcp_reserved_port[i].lo_port == lo_port) { 23254 hi_port = tcp_reserved_port[i].hi_port; 23255 temp_tcp_array = tcp_reserved_port[i].temp_tcp_array; 23256 break; 23257 } 23258 } 23259 if (i == tcp_reserved_port_array_size) { 23260 rw_exit(&tcp_reserved_port_lock); 23261 return (B_FALSE); 23262 } 23263 23264 /* 23265 * Remove the range from the array. This simple loop is possible 23266 * because port ranges are inserted in ascending order. 23267 */ 23268 for (j = i; j < tcp_reserved_port_array_size - 1; j++) { 23269 tcp_reserved_port[j].lo_port = tcp_reserved_port[j+1].lo_port; 23270 tcp_reserved_port[j].hi_port = tcp_reserved_port[j+1].hi_port; 23271 tcp_reserved_port[j].temp_tcp_array = 23272 tcp_reserved_port[j+1].temp_tcp_array; 23273 } 23274 23275 /* Remove all the temporary tcp structures. */ 23276 size = hi_port - lo_port + 1; 23277 while (size > 0) { 23278 tcp = temp_tcp_array[size - 1]; 23279 ASSERT(tcp != NULL); 23280 tcp_bind_hash_remove(tcp); 23281 CONN_DEC_REF(tcp->tcp_connp); 23282 size--; 23283 } 23284 kmem_free(temp_tcp_array, (hi_port - lo_port + 1) * sizeof (tcp_t *)); 23285 tcp_reserved_port_array_size--; 23286 rw_exit(&tcp_reserved_port_lock); 23287 return (B_TRUE); 23288 } 23289 23290 /* 23291 * Macro to remove temporary tcp structure from the bind hash list. The 23292 * first parameter is the list of tcp to be removed. The second parameter 23293 * is the number of tcps in the array. 23294 */ 23295 #define TCP_TMP_TCP_REMOVE(tcp_array, num) \ 23296 { \ 23297 while ((num) > 0) { \ 23298 tcp_t *tcp = (tcp_array)[(num) - 1]; \ 23299 tf_t *tbf; \ 23300 tcp_t *tcpnext; \ 23301 tbf = &tcp_bind_fanout[TCP_BIND_HASH(tcp->tcp_lport)]; \ 23302 mutex_enter(&tbf->tf_lock); \ 23303 tcpnext = tcp->tcp_bind_hash; \ 23304 if (tcpnext) { \ 23305 tcpnext->tcp_ptpbhn = \ 23306 tcp->tcp_ptpbhn; \ 23307 } \ 23308 *tcp->tcp_ptpbhn = tcpnext; \ 23309 mutex_exit(&tbf->tf_lock); \ 23310 kmem_free(tcp, sizeof (tcp_t)); \ 23311 (tcp_array)[(num) - 1] = NULL; \ 23312 (num)--; \ 23313 } \ 23314 } 23315 23316 /* 23317 * The public interface for other modules to call to reserve a port range 23318 * in TCP. The caller passes in how large a port range it wants. TCP 23319 * will try to find a range and return it via lo_port and hi_port. This is 23320 * used by NCA's nca_conn_init. 23321 * NCA can only be used in the global zone so this only affects the global 23322 * zone's ports. 23323 * 23324 * Params: 23325 * int size: the size of the port range to be reserved. 23326 * in_port_t *lo_port (referenced): returns the beginning port of the 23327 * reserved port range added. 23328 * in_port_t *hi_port (referenced): returns the ending port of the 23329 * reserved port range added. 23330 * 23331 * Return: 23332 * B_TRUE if the port reservation is successful, B_FALSE otherwise. 23333 */ 23334 boolean_t 23335 tcp_reserved_port_add(int size, in_port_t *lo_port, in_port_t *hi_port) 23336 { 23337 tcp_t *tcp; 23338 tcp_t *tmp_tcp; 23339 tcp_t **temp_tcp_array; 23340 tf_t *tbf; 23341 in_port_t net_port; 23342 in_port_t port; 23343 int32_t cur_size; 23344 int i, j; 23345 boolean_t used; 23346 tcp_rport_t tmp_ports[TCP_RESERVED_PORTS_ARRAY_MAX_SIZE]; 23347 zoneid_t zoneid = GLOBAL_ZONEID; 23348 23349 /* Sanity check. */ 23350 if (size <= 0 || size > TCP_RESERVED_PORTS_RANGE_MAX) { 23351 return (B_FALSE); 23352 } 23353 23354 rw_enter(&tcp_reserved_port_lock, RW_WRITER); 23355 if (tcp_reserved_port_array_size == TCP_RESERVED_PORTS_ARRAY_MAX_SIZE) { 23356 rw_exit(&tcp_reserved_port_lock); 23357 return (B_FALSE); 23358 } 23359 23360 /* 23361 * Find the starting port to try. Since the port ranges are ordered 23362 * in the reserved port array, we can do a simple search here. 23363 */ 23364 *lo_port = TCP_SMALLEST_RESERVED_PORT; 23365 *hi_port = TCP_LARGEST_RESERVED_PORT; 23366 for (i = 0; i < tcp_reserved_port_array_size; 23367 *lo_port = tcp_reserved_port[i].hi_port + 1, i++) { 23368 if (tcp_reserved_port[i].lo_port - *lo_port >= size) { 23369 *hi_port = tcp_reserved_port[i].lo_port - 1; 23370 break; 23371 } 23372 } 23373 /* No available port range. */ 23374 if (i == tcp_reserved_port_array_size && *hi_port - *lo_port < size) { 23375 rw_exit(&tcp_reserved_port_lock); 23376 return (B_FALSE); 23377 } 23378 23379 temp_tcp_array = kmem_zalloc(size * sizeof (tcp_t *), KM_NOSLEEP); 23380 if (temp_tcp_array == NULL) { 23381 rw_exit(&tcp_reserved_port_lock); 23382 return (B_FALSE); 23383 } 23384 23385 /* Go thru the port range to see if some ports are already bound. */ 23386 for (port = *lo_port, cur_size = 0; 23387 cur_size < size && port <= *hi_port; 23388 cur_size++, port++) { 23389 used = B_FALSE; 23390 net_port = htons(port); 23391 tbf = &tcp_bind_fanout[TCP_BIND_HASH(net_port)]; 23392 mutex_enter(&tbf->tf_lock); 23393 for (tcp = tbf->tf_tcp; tcp != NULL; 23394 tcp = tcp->tcp_bind_hash) { 23395 if (IPCL_ZONE_MATCH(tcp->tcp_connp, zoneid) && 23396 net_port == tcp->tcp_lport) { 23397 /* 23398 * A port is already bound. Search again 23399 * starting from port + 1. Release all 23400 * temporary tcps. 23401 */ 23402 mutex_exit(&tbf->tf_lock); 23403 TCP_TMP_TCP_REMOVE(temp_tcp_array, cur_size); 23404 *lo_port = port + 1; 23405 cur_size = -1; 23406 used = B_TRUE; 23407 break; 23408 } 23409 } 23410 if (!used) { 23411 if ((tmp_tcp = tcp_alloc_temp_tcp(net_port)) == NULL) { 23412 /* 23413 * Allocation failure. Just fail the request. 23414 * Need to remove all those temporary tcp 23415 * structures. 23416 */ 23417 mutex_exit(&tbf->tf_lock); 23418 TCP_TMP_TCP_REMOVE(temp_tcp_array, cur_size); 23419 rw_exit(&tcp_reserved_port_lock); 23420 kmem_free(temp_tcp_array, 23421 (hi_port - lo_port + 1) * 23422 sizeof (tcp_t *)); 23423 return (B_FALSE); 23424 } 23425 temp_tcp_array[cur_size] = tmp_tcp; 23426 tcp_bind_hash_insert(tbf, tmp_tcp, B_TRUE); 23427 mutex_exit(&tbf->tf_lock); 23428 } 23429 } 23430 23431 /* 23432 * The current range is not large enough. We can actually do another 23433 * search if this search is done between 2 reserved port ranges. But 23434 * for first release, we just stop here and return saying that no port 23435 * range is available. 23436 */ 23437 if (cur_size < size) { 23438 TCP_TMP_TCP_REMOVE(temp_tcp_array, cur_size); 23439 rw_exit(&tcp_reserved_port_lock); 23440 kmem_free(temp_tcp_array, size * sizeof (tcp_t *)); 23441 return (B_FALSE); 23442 } 23443 *hi_port = port - 1; 23444 23445 /* 23446 * Insert range into array in ascending order. Since this function 23447 * must not be called often, we choose to use the simplest method. 23448 * The above array should not consume excessive stack space as 23449 * the size must be very small. If in future releases, we find 23450 * that we should provide more reserved port ranges, this function 23451 * has to be modified to be more efficient. 23452 */ 23453 if (tcp_reserved_port_array_size == 0) { 23454 tcp_reserved_port[0].lo_port = *lo_port; 23455 tcp_reserved_port[0].hi_port = *hi_port; 23456 tcp_reserved_port[0].temp_tcp_array = temp_tcp_array; 23457 } else { 23458 for (i = 0, j = 0; i < tcp_reserved_port_array_size; i++, j++) { 23459 if (*lo_port < tcp_reserved_port[i].lo_port && i == j) { 23460 tmp_ports[j].lo_port = *lo_port; 23461 tmp_ports[j].hi_port = *hi_port; 23462 tmp_ports[j].temp_tcp_array = temp_tcp_array; 23463 j++; 23464 } 23465 tmp_ports[j].lo_port = tcp_reserved_port[i].lo_port; 23466 tmp_ports[j].hi_port = tcp_reserved_port[i].hi_port; 23467 tmp_ports[j].temp_tcp_array = 23468 tcp_reserved_port[i].temp_tcp_array; 23469 } 23470 if (j == i) { 23471 tmp_ports[j].lo_port = *lo_port; 23472 tmp_ports[j].hi_port = *hi_port; 23473 tmp_ports[j].temp_tcp_array = temp_tcp_array; 23474 } 23475 bcopy(tmp_ports, tcp_reserved_port, sizeof (tmp_ports)); 23476 } 23477 tcp_reserved_port_array_size++; 23478 rw_exit(&tcp_reserved_port_lock); 23479 return (B_TRUE); 23480 } 23481 23482 /* 23483 * Check to see if a port is in any reserved port range. 23484 * 23485 * Params: 23486 * in_port_t port: the port to be verified. 23487 * 23488 * Return: 23489 * B_TRUE is the port is inside a reserved port range, B_FALSE otherwise. 23490 */ 23491 boolean_t 23492 tcp_reserved_port_check(in_port_t port) 23493 { 23494 int i; 23495 23496 rw_enter(&tcp_reserved_port_lock, RW_READER); 23497 for (i = 0; i < tcp_reserved_port_array_size; i++) { 23498 if (port >= tcp_reserved_port[i].lo_port || 23499 port <= tcp_reserved_port[i].hi_port) { 23500 rw_exit(&tcp_reserved_port_lock); 23501 return (B_TRUE); 23502 } 23503 } 23504 rw_exit(&tcp_reserved_port_lock); 23505 return (B_FALSE); 23506 } 23507 23508 /* 23509 * To list all reserved port ranges. This is the function to handle 23510 * ndd tcp_reserved_port_list. 23511 */ 23512 /* ARGSUSED */ 23513 static int 23514 tcp_reserved_port_list(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr) 23515 { 23516 int i; 23517 23518 rw_enter(&tcp_reserved_port_lock, RW_READER); 23519 if (tcp_reserved_port_array_size > 0) 23520 (void) mi_mpprintf(mp, "The following ports are reserved:"); 23521 else 23522 (void) mi_mpprintf(mp, "No port is reserved."); 23523 for (i = 0; i < tcp_reserved_port_array_size; i++) { 23524 (void) mi_mpprintf(mp, "%d-%d", 23525 tcp_reserved_port[i].lo_port, tcp_reserved_port[i].hi_port); 23526 } 23527 rw_exit(&tcp_reserved_port_lock); 23528 return (0); 23529 } 23530 23531 /* 23532 * Hash list insertion routine for tcp_t structures. 23533 * Inserts entries with the ones bound to a specific IP address first 23534 * followed by those bound to INADDR_ANY. 23535 */ 23536 static void 23537 tcp_bind_hash_insert(tf_t *tbf, tcp_t *tcp, int caller_holds_lock) 23538 { 23539 tcp_t **tcpp; 23540 tcp_t *tcpnext; 23541 23542 if (tcp->tcp_ptpbhn != NULL) { 23543 ASSERT(!caller_holds_lock); 23544 tcp_bind_hash_remove(tcp); 23545 } 23546 tcpp = &tbf->tf_tcp; 23547 if (!caller_holds_lock) { 23548 mutex_enter(&tbf->tf_lock); 23549 } else { 23550 ASSERT(MUTEX_HELD(&tbf->tf_lock)); 23551 } 23552 tcpnext = tcpp[0]; 23553 if (tcpnext) { 23554 /* 23555 * If the new tcp bound to the INADDR_ANY address 23556 * and the first one in the list is not bound to 23557 * INADDR_ANY we skip all entries until we find the 23558 * first one bound to INADDR_ANY. 23559 * This makes sure that applications binding to a 23560 * specific address get preference over those binding to 23561 * INADDR_ANY. 23562 */ 23563 if (V6_OR_V4_INADDR_ANY(tcp->tcp_bound_source_v6) && 23564 !V6_OR_V4_INADDR_ANY(tcpnext->tcp_bound_source_v6)) { 23565 while ((tcpnext = tcpp[0]) != NULL && 23566 !V6_OR_V4_INADDR_ANY(tcpnext->tcp_bound_source_v6)) 23567 tcpp = &(tcpnext->tcp_bind_hash); 23568 if (tcpnext) 23569 tcpnext->tcp_ptpbhn = &tcp->tcp_bind_hash; 23570 } else 23571 tcpnext->tcp_ptpbhn = &tcp->tcp_bind_hash; 23572 } 23573 tcp->tcp_bind_hash = tcpnext; 23574 tcp->tcp_ptpbhn = tcpp; 23575 tcpp[0] = tcp; 23576 if (!caller_holds_lock) 23577 mutex_exit(&tbf->tf_lock); 23578 } 23579 23580 /* 23581 * Hash list removal routine for tcp_t structures. 23582 */ 23583 static void 23584 tcp_bind_hash_remove(tcp_t *tcp) 23585 { 23586 tcp_t *tcpnext; 23587 kmutex_t *lockp; 23588 23589 if (tcp->tcp_ptpbhn == NULL) 23590 return; 23591 23592 /* 23593 * Extract the lock pointer in case there are concurrent 23594 * hash_remove's for this instance. 23595 */ 23596 ASSERT(tcp->tcp_lport != 0); 23597 lockp = &tcp_bind_fanout[TCP_BIND_HASH(tcp->tcp_lport)].tf_lock; 23598 23599 ASSERT(lockp != NULL); 23600 mutex_enter(lockp); 23601 if (tcp->tcp_ptpbhn) { 23602 tcpnext = tcp->tcp_bind_hash; 23603 if (tcpnext) { 23604 tcpnext->tcp_ptpbhn = tcp->tcp_ptpbhn; 23605 tcp->tcp_bind_hash = NULL; 23606 } 23607 *tcp->tcp_ptpbhn = tcpnext; 23608 tcp->tcp_ptpbhn = NULL; 23609 } 23610 mutex_exit(lockp); 23611 } 23612 23613 23614 /* 23615 * Hash list lookup routine for tcp_t structures. 23616 * Returns with a CONN_INC_REF tcp structure. Caller must do a CONN_DEC_REF. 23617 */ 23618 static tcp_t * 23619 tcp_acceptor_hash_lookup(t_uscalar_t id) 23620 { 23621 tf_t *tf; 23622 tcp_t *tcp; 23623 23624 tf = &tcp_acceptor_fanout[TCP_ACCEPTOR_HASH(id)]; 23625 mutex_enter(&tf->tf_lock); 23626 for (tcp = tf->tf_tcp; tcp != NULL; 23627 tcp = tcp->tcp_acceptor_hash) { 23628 if (tcp->tcp_acceptor_id == id) { 23629 CONN_INC_REF(tcp->tcp_connp); 23630 mutex_exit(&tf->tf_lock); 23631 return (tcp); 23632 } 23633 } 23634 mutex_exit(&tf->tf_lock); 23635 return (NULL); 23636 } 23637 23638 23639 /* 23640 * Hash list insertion routine for tcp_t structures. 23641 */ 23642 void 23643 tcp_acceptor_hash_insert(t_uscalar_t id, tcp_t *tcp) 23644 { 23645 tf_t *tf; 23646 tcp_t **tcpp; 23647 tcp_t *tcpnext; 23648 23649 tf = &tcp_acceptor_fanout[TCP_ACCEPTOR_HASH(id)]; 23650 23651 if (tcp->tcp_ptpahn != NULL) 23652 tcp_acceptor_hash_remove(tcp); 23653 tcpp = &tf->tf_tcp; 23654 mutex_enter(&tf->tf_lock); 23655 tcpnext = tcpp[0]; 23656 if (tcpnext) 23657 tcpnext->tcp_ptpahn = &tcp->tcp_acceptor_hash; 23658 tcp->tcp_acceptor_hash = tcpnext; 23659 tcp->tcp_ptpahn = tcpp; 23660 tcpp[0] = tcp; 23661 tcp->tcp_acceptor_lockp = &tf->tf_lock; /* For tcp_*_hash_remove */ 23662 mutex_exit(&tf->tf_lock); 23663 } 23664 23665 /* 23666 * Hash list removal routine for tcp_t structures. 23667 */ 23668 static void 23669 tcp_acceptor_hash_remove(tcp_t *tcp) 23670 { 23671 tcp_t *tcpnext; 23672 kmutex_t *lockp; 23673 23674 /* 23675 * Extract the lock pointer in case there are concurrent 23676 * hash_remove's for this instance. 23677 */ 23678 lockp = tcp->tcp_acceptor_lockp; 23679 23680 if (tcp->tcp_ptpahn == NULL) 23681 return; 23682 23683 ASSERT(lockp != NULL); 23684 mutex_enter(lockp); 23685 if (tcp->tcp_ptpahn) { 23686 tcpnext = tcp->tcp_acceptor_hash; 23687 if (tcpnext) { 23688 tcpnext->tcp_ptpahn = tcp->tcp_ptpahn; 23689 tcp->tcp_acceptor_hash = NULL; 23690 } 23691 *tcp->tcp_ptpahn = tcpnext; 23692 tcp->tcp_ptpahn = NULL; 23693 } 23694 mutex_exit(lockp); 23695 tcp->tcp_acceptor_lockp = NULL; 23696 } 23697 23698 /* ARGSUSED */ 23699 static int 23700 tcp_host_param_setvalue(queue_t *q, mblk_t *mp, char *value, caddr_t cp, int af) 23701 { 23702 int error = 0; 23703 int retval; 23704 char *end; 23705 23706 tcp_hsp_t *hsp; 23707 tcp_hsp_t *hspprev; 23708 23709 ipaddr_t addr = 0; /* Address we're looking for */ 23710 in6_addr_t v6addr; /* Address we're looking for */ 23711 uint32_t hash; /* Hash of that address */ 23712 23713 /* 23714 * If the following variables are still zero after parsing the input 23715 * string, the user didn't specify them and we don't change them in 23716 * the HSP. 23717 */ 23718 23719 ipaddr_t mask = 0; /* Subnet mask */ 23720 in6_addr_t v6mask; 23721 long sendspace = 0; /* Send buffer size */ 23722 long recvspace = 0; /* Receive buffer size */ 23723 long timestamp = 0; /* Originate TCP TSTAMP option, 1 = yes */ 23724 boolean_t delete = B_FALSE; /* User asked to delete this HSP */ 23725 23726 rw_enter(&tcp_hsp_lock, RW_WRITER); 23727 23728 /* Parse and validate address */ 23729 if (af == AF_INET) { 23730 retval = inet_pton(af, value, &addr); 23731 if (retval == 1) 23732 IN6_IPADDR_TO_V4MAPPED(addr, &v6addr); 23733 } else if (af == AF_INET6) { 23734 retval = inet_pton(af, value, &v6addr); 23735 } else { 23736 error = EINVAL; 23737 goto done; 23738 } 23739 if (retval == 0) { 23740 error = EINVAL; 23741 goto done; 23742 } 23743 23744 while ((*value) && *value != ' ') 23745 value++; 23746 23747 /* Parse individual keywords, set variables if found */ 23748 while (*value) { 23749 /* Skip leading blanks */ 23750 23751 while (*value == ' ' || *value == '\t') 23752 value++; 23753 23754 /* If at end of string, we're done */ 23755 23756 if (!*value) 23757 break; 23758 23759 /* We have a word, figure out what it is */ 23760 23761 if (strncmp("mask", value, 4) == 0) { 23762 value += 4; 23763 while (*value == ' ' || *value == '\t') 23764 value++; 23765 /* Parse subnet mask */ 23766 if (af == AF_INET) { 23767 retval = inet_pton(af, value, &mask); 23768 if (retval == 1) { 23769 V4MASK_TO_V6(mask, v6mask); 23770 } 23771 } else if (af == AF_INET6) { 23772 retval = inet_pton(af, value, &v6mask); 23773 } 23774 if (retval != 1) { 23775 error = EINVAL; 23776 goto done; 23777 } 23778 while ((*value) && *value != ' ') 23779 value++; 23780 } else if (strncmp("sendspace", value, 9) == 0) { 23781 value += 9; 23782 23783 if (ddi_strtol(value, &end, 0, &sendspace) != 0 || 23784 sendspace < TCP_XMIT_HIWATER || 23785 sendspace >= (1L<<30)) { 23786 error = EINVAL; 23787 goto done; 23788 } 23789 value = end; 23790 } else if (strncmp("recvspace", value, 9) == 0) { 23791 value += 9; 23792 23793 if (ddi_strtol(value, &end, 0, &recvspace) != 0 || 23794 recvspace < TCP_RECV_HIWATER || 23795 recvspace >= (1L<<30)) { 23796 error = EINVAL; 23797 goto done; 23798 } 23799 value = end; 23800 } else if (strncmp("timestamp", value, 9) == 0) { 23801 value += 9; 23802 23803 if (ddi_strtol(value, &end, 0, ×tamp) != 0 || 23804 timestamp < 0 || timestamp > 1) { 23805 error = EINVAL; 23806 goto done; 23807 } 23808 23809 /* 23810 * We increment timestamp so we know it's been set; 23811 * this is undone when we put it in the HSP 23812 */ 23813 timestamp++; 23814 value = end; 23815 } else if (strncmp("delete", value, 6) == 0) { 23816 value += 6; 23817 delete = B_TRUE; 23818 } else { 23819 error = EINVAL; 23820 goto done; 23821 } 23822 } 23823 23824 /* Hash address for lookup */ 23825 23826 hash = TCP_HSP_HASH(addr); 23827 23828 if (delete) { 23829 /* 23830 * Note that deletes don't return an error if the thing 23831 * we're trying to delete isn't there. 23832 */ 23833 if (tcp_hsp_hash == NULL) 23834 goto done; 23835 hsp = tcp_hsp_hash[hash]; 23836 23837 if (hsp) { 23838 if (IN6_ARE_ADDR_EQUAL(&hsp->tcp_hsp_addr_v6, 23839 &v6addr)) { 23840 tcp_hsp_hash[hash] = hsp->tcp_hsp_next; 23841 mi_free((char *)hsp); 23842 } else { 23843 hspprev = hsp; 23844 while ((hsp = hsp->tcp_hsp_next) != NULL) { 23845 if (IN6_ARE_ADDR_EQUAL( 23846 &hsp->tcp_hsp_addr_v6, &v6addr)) { 23847 hspprev->tcp_hsp_next = 23848 hsp->tcp_hsp_next; 23849 mi_free((char *)hsp); 23850 break; 23851 } 23852 hspprev = hsp; 23853 } 23854 } 23855 } 23856 } else { 23857 /* 23858 * We're adding/modifying an HSP. If we haven't already done 23859 * so, allocate the hash table. 23860 */ 23861 23862 if (!tcp_hsp_hash) { 23863 tcp_hsp_hash = (tcp_hsp_t **) 23864 mi_zalloc(sizeof (tcp_hsp_t *) * TCP_HSP_HASH_SIZE); 23865 if (!tcp_hsp_hash) { 23866 error = EINVAL; 23867 goto done; 23868 } 23869 } 23870 23871 /* Get head of hash chain */ 23872 23873 hsp = tcp_hsp_hash[hash]; 23874 23875 /* Try to find pre-existing hsp on hash chain */ 23876 /* Doesn't handle CIDR prefixes. */ 23877 while (hsp) { 23878 if (IN6_ARE_ADDR_EQUAL(&hsp->tcp_hsp_addr_v6, &v6addr)) 23879 break; 23880 hsp = hsp->tcp_hsp_next; 23881 } 23882 23883 /* 23884 * If we didn't, create one with default values and put it 23885 * at head of hash chain 23886 */ 23887 23888 if (!hsp) { 23889 hsp = (tcp_hsp_t *)mi_zalloc(sizeof (tcp_hsp_t)); 23890 if (!hsp) { 23891 error = EINVAL; 23892 goto done; 23893 } 23894 hsp->tcp_hsp_next = tcp_hsp_hash[hash]; 23895 tcp_hsp_hash[hash] = hsp; 23896 } 23897 23898 /* Set values that the user asked us to change */ 23899 23900 hsp->tcp_hsp_addr_v6 = v6addr; 23901 if (IN6_IS_ADDR_V4MAPPED(&v6addr)) 23902 hsp->tcp_hsp_vers = IPV4_VERSION; 23903 else 23904 hsp->tcp_hsp_vers = IPV6_VERSION; 23905 hsp->tcp_hsp_subnet_v6 = v6mask; 23906 if (sendspace > 0) 23907 hsp->tcp_hsp_sendspace = sendspace; 23908 if (recvspace > 0) 23909 hsp->tcp_hsp_recvspace = recvspace; 23910 if (timestamp > 0) 23911 hsp->tcp_hsp_tstamp = timestamp - 1; 23912 } 23913 23914 done: 23915 rw_exit(&tcp_hsp_lock); 23916 return (error); 23917 } 23918 23919 /* Set callback routine passed to nd_load by tcp_param_register. */ 23920 /* ARGSUSED */ 23921 static int 23922 tcp_host_param_set(queue_t *q, mblk_t *mp, char *value, caddr_t cp, cred_t *cr) 23923 { 23924 return (tcp_host_param_setvalue(q, mp, value, cp, AF_INET)); 23925 } 23926 /* ARGSUSED */ 23927 static int 23928 tcp_host_param_set_ipv6(queue_t *q, mblk_t *mp, char *value, caddr_t cp, 23929 cred_t *cr) 23930 { 23931 return (tcp_host_param_setvalue(q, mp, value, cp, AF_INET6)); 23932 } 23933 23934 /* TCP host parameters report triggered via the Named Dispatch mechanism. */ 23935 /* ARGSUSED */ 23936 static int 23937 tcp_host_param_report(queue_t *q, mblk_t *mp, caddr_t cp, cred_t *cr) 23938 { 23939 tcp_hsp_t *hsp; 23940 int i; 23941 char addrbuf[INET6_ADDRSTRLEN], subnetbuf[INET6_ADDRSTRLEN]; 23942 23943 rw_enter(&tcp_hsp_lock, RW_READER); 23944 (void) mi_mpprintf(mp, 23945 "Hash HSP " MI_COL_HDRPAD_STR 23946 "Address Subnet Mask Send Receive TStamp"); 23947 if (tcp_hsp_hash) { 23948 for (i = 0; i < TCP_HSP_HASH_SIZE; i++) { 23949 hsp = tcp_hsp_hash[i]; 23950 while (hsp) { 23951 if (hsp->tcp_hsp_vers == IPV4_VERSION) { 23952 (void) inet_ntop(AF_INET, 23953 &hsp->tcp_hsp_addr, 23954 addrbuf, sizeof (addrbuf)); 23955 (void) inet_ntop(AF_INET, 23956 &hsp->tcp_hsp_subnet, 23957 subnetbuf, sizeof (subnetbuf)); 23958 } else { 23959 (void) inet_ntop(AF_INET6, 23960 &hsp->tcp_hsp_addr_v6, 23961 addrbuf, sizeof (addrbuf)); 23962 (void) inet_ntop(AF_INET6, 23963 &hsp->tcp_hsp_subnet_v6, 23964 subnetbuf, sizeof (subnetbuf)); 23965 } 23966 (void) mi_mpprintf(mp, 23967 " %03d " MI_COL_PTRFMT_STR 23968 "%s %s %010d %010d %d", 23969 i, 23970 (void *)hsp, 23971 addrbuf, 23972 subnetbuf, 23973 hsp->tcp_hsp_sendspace, 23974 hsp->tcp_hsp_recvspace, 23975 hsp->tcp_hsp_tstamp); 23976 23977 hsp = hsp->tcp_hsp_next; 23978 } 23979 } 23980 } 23981 rw_exit(&tcp_hsp_lock); 23982 return (0); 23983 } 23984 23985 23986 /* Data for fast netmask macro used by tcp_hsp_lookup */ 23987 23988 static ipaddr_t netmasks[] = { 23989 IN_CLASSA_NET, IN_CLASSA_NET, IN_CLASSB_NET, 23990 IN_CLASSC_NET | IN_CLASSD_NET /* Class C,D,E */ 23991 }; 23992 23993 #define netmask(addr) (netmasks[(ipaddr_t)(addr) >> 30]) 23994 23995 /* 23996 * XXX This routine should go away and instead we should use the metrics 23997 * associated with the routes to determine the default sndspace and rcvspace. 23998 */ 23999 static tcp_hsp_t * 24000 tcp_hsp_lookup(ipaddr_t addr) 24001 { 24002 tcp_hsp_t *hsp = NULL; 24003 24004 /* Quick check without acquiring the lock. */ 24005 if (tcp_hsp_hash == NULL) 24006 return (NULL); 24007 24008 rw_enter(&tcp_hsp_lock, RW_READER); 24009 24010 /* This routine finds the best-matching HSP for address addr. */ 24011 24012 if (tcp_hsp_hash) { 24013 int i; 24014 ipaddr_t srchaddr; 24015 tcp_hsp_t *hsp_net; 24016 24017 /* We do three passes: host, network, and subnet. */ 24018 24019 srchaddr = addr; 24020 24021 for (i = 1; i <= 3; i++) { 24022 /* Look for exact match on srchaddr */ 24023 24024 hsp = tcp_hsp_hash[TCP_HSP_HASH(srchaddr)]; 24025 while (hsp) { 24026 if (hsp->tcp_hsp_vers == IPV4_VERSION && 24027 hsp->tcp_hsp_addr == srchaddr) 24028 break; 24029 hsp = hsp->tcp_hsp_next; 24030 } 24031 ASSERT(hsp == NULL || 24032 hsp->tcp_hsp_vers == IPV4_VERSION); 24033 24034 /* 24035 * If this is the first pass: 24036 * If we found a match, great, return it. 24037 * If not, search for the network on the second pass. 24038 */ 24039 24040 if (i == 1) 24041 if (hsp) 24042 break; 24043 else 24044 { 24045 srchaddr = addr & netmask(addr); 24046 continue; 24047 } 24048 24049 /* 24050 * If this is the second pass: 24051 * If we found a match, but there's a subnet mask, 24052 * save the match but try again using the subnet 24053 * mask on the third pass. 24054 * Otherwise, return whatever we found. 24055 */ 24056 24057 if (i == 2) { 24058 if (hsp && hsp->tcp_hsp_subnet) { 24059 hsp_net = hsp; 24060 srchaddr = addr & hsp->tcp_hsp_subnet; 24061 continue; 24062 } else { 24063 break; 24064 } 24065 } 24066 24067 /* 24068 * This must be the third pass. If we didn't find 24069 * anything, return the saved network HSP instead. 24070 */ 24071 24072 if (!hsp) 24073 hsp = hsp_net; 24074 } 24075 } 24076 24077 rw_exit(&tcp_hsp_lock); 24078 return (hsp); 24079 } 24080 24081 /* 24082 * XXX Equally broken as the IPv4 routine. Doesn't handle longest 24083 * match lookup. 24084 */ 24085 static tcp_hsp_t * 24086 tcp_hsp_lookup_ipv6(in6_addr_t *v6addr) 24087 { 24088 tcp_hsp_t *hsp = NULL; 24089 24090 /* Quick check without acquiring the lock. */ 24091 if (tcp_hsp_hash == NULL) 24092 return (NULL); 24093 24094 rw_enter(&tcp_hsp_lock, RW_READER); 24095 24096 /* This routine finds the best-matching HSP for address addr. */ 24097 24098 if (tcp_hsp_hash) { 24099 int i; 24100 in6_addr_t v6srchaddr; 24101 tcp_hsp_t *hsp_net; 24102 24103 /* We do three passes: host, network, and subnet. */ 24104 24105 v6srchaddr = *v6addr; 24106 24107 for (i = 1; i <= 3; i++) { 24108 /* Look for exact match on srchaddr */ 24109 24110 hsp = tcp_hsp_hash[TCP_HSP_HASH( 24111 V4_PART_OF_V6(v6srchaddr))]; 24112 while (hsp) { 24113 if (hsp->tcp_hsp_vers == IPV6_VERSION && 24114 IN6_ARE_ADDR_EQUAL(&hsp->tcp_hsp_addr_v6, 24115 &v6srchaddr)) 24116 break; 24117 hsp = hsp->tcp_hsp_next; 24118 } 24119 24120 /* 24121 * If this is the first pass: 24122 * If we found a match, great, return it. 24123 * If not, search for the network on the second pass. 24124 */ 24125 24126 if (i == 1) 24127 if (hsp) 24128 break; 24129 else { 24130 /* Assume a 64 bit mask */ 24131 v6srchaddr.s6_addr32[0] = 24132 v6addr->s6_addr32[0]; 24133 v6srchaddr.s6_addr32[1] = 24134 v6addr->s6_addr32[1]; 24135 v6srchaddr.s6_addr32[2] = 0; 24136 v6srchaddr.s6_addr32[3] = 0; 24137 continue; 24138 } 24139 24140 /* 24141 * If this is the second pass: 24142 * If we found a match, but there's a subnet mask, 24143 * save the match but try again using the subnet 24144 * mask on the third pass. 24145 * Otherwise, return whatever we found. 24146 */ 24147 24148 if (i == 2) { 24149 ASSERT(hsp == NULL || 24150 hsp->tcp_hsp_vers == IPV6_VERSION); 24151 if (hsp && 24152 !IN6_IS_ADDR_UNSPECIFIED( 24153 &hsp->tcp_hsp_subnet_v6)) { 24154 hsp_net = hsp; 24155 V6_MASK_COPY(*v6addr, 24156 hsp->tcp_hsp_subnet_v6, v6srchaddr); 24157 continue; 24158 } else { 24159 break; 24160 } 24161 } 24162 24163 /* 24164 * This must be the third pass. If we didn't find 24165 * anything, return the saved network HSP instead. 24166 */ 24167 24168 if (!hsp) 24169 hsp = hsp_net; 24170 } 24171 } 24172 24173 rw_exit(&tcp_hsp_lock); 24174 return (hsp); 24175 } 24176 24177 /* 24178 * Type three generator adapted from the random() function in 4.4 BSD: 24179 */ 24180 24181 /* 24182 * Copyright (c) 1983, 1993 24183 * The Regents of the University of California. All rights reserved. 24184 * 24185 * Redistribution and use in source and binary forms, with or without 24186 * modification, are permitted provided that the following conditions 24187 * are met: 24188 * 1. Redistributions of source code must retain the above copyright 24189 * notice, this list of conditions and the following disclaimer. 24190 * 2. Redistributions in binary form must reproduce the above copyright 24191 * notice, this list of conditions and the following disclaimer in the 24192 * documentation and/or other materials provided with the distribution. 24193 * 3. All advertising materials mentioning features or use of this software 24194 * must display the following acknowledgement: 24195 * This product includes software developed by the University of 24196 * California, Berkeley and its contributors. 24197 * 4. Neither the name of the University nor the names of its contributors 24198 * may be used to endorse or promote products derived from this software 24199 * without specific prior written permission. 24200 * 24201 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND 24202 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 24203 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 24204 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 24205 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 24206 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 24207 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 24208 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 24209 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 24210 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 24211 * SUCH DAMAGE. 24212 */ 24213 24214 /* Type 3 -- x**31 + x**3 + 1 */ 24215 #define DEG_3 31 24216 #define SEP_3 3 24217 24218 24219 /* Protected by tcp_random_lock */ 24220 static int tcp_randtbl[DEG_3 + 1]; 24221 24222 static int *tcp_random_fptr = &tcp_randtbl[SEP_3 + 1]; 24223 static int *tcp_random_rptr = &tcp_randtbl[1]; 24224 24225 static int *tcp_random_state = &tcp_randtbl[1]; 24226 static int *tcp_random_end_ptr = &tcp_randtbl[DEG_3 + 1]; 24227 24228 kmutex_t tcp_random_lock; 24229 24230 void 24231 tcp_random_init(void) 24232 { 24233 int i; 24234 hrtime_t hrt; 24235 time_t wallclock; 24236 uint64_t result; 24237 24238 /* 24239 * Use high-res timer and current time for seed. Gethrtime() returns 24240 * a longlong, which may contain resolution down to nanoseconds. 24241 * The current time will either be a 32-bit or a 64-bit quantity. 24242 * XOR the two together in a 64-bit result variable. 24243 * Convert the result to a 32-bit value by multiplying the high-order 24244 * 32-bits by the low-order 32-bits. 24245 */ 24246 24247 hrt = gethrtime(); 24248 (void) drv_getparm(TIME, &wallclock); 24249 result = (uint64_t)wallclock ^ (uint64_t)hrt; 24250 mutex_enter(&tcp_random_lock); 24251 tcp_random_state[0] = ((result >> 32) & 0xffffffff) * 24252 (result & 0xffffffff); 24253 24254 for (i = 1; i < DEG_3; i++) 24255 tcp_random_state[i] = 1103515245 * tcp_random_state[i - 1] 24256 + 12345; 24257 tcp_random_fptr = &tcp_random_state[SEP_3]; 24258 tcp_random_rptr = &tcp_random_state[0]; 24259 mutex_exit(&tcp_random_lock); 24260 for (i = 0; i < 10 * DEG_3; i++) 24261 (void) tcp_random(); 24262 } 24263 24264 /* 24265 * tcp_random: Return a random number in the range [1 - (128K + 1)]. 24266 * This range is selected to be approximately centered on TCP_ISS / 2, 24267 * and easy to compute. We get this value by generating a 32-bit random 24268 * number, selecting out the high-order 17 bits, and then adding one so 24269 * that we never return zero. 24270 */ 24271 int 24272 tcp_random(void) 24273 { 24274 int i; 24275 24276 mutex_enter(&tcp_random_lock); 24277 *tcp_random_fptr += *tcp_random_rptr; 24278 24279 /* 24280 * The high-order bits are more random than the low-order bits, 24281 * so we select out the high-order 17 bits and add one so that 24282 * we never return zero. 24283 */ 24284 i = ((*tcp_random_fptr >> 15) & 0x1ffff) + 1; 24285 if (++tcp_random_fptr >= tcp_random_end_ptr) { 24286 tcp_random_fptr = tcp_random_state; 24287 ++tcp_random_rptr; 24288 } else if (++tcp_random_rptr >= tcp_random_end_ptr) 24289 tcp_random_rptr = tcp_random_state; 24290 24291 mutex_exit(&tcp_random_lock); 24292 return (i); 24293 } 24294 24295 /* 24296 * XXX This will go away when TPI is extended to send 24297 * info reqs to sockfs/timod ..... 24298 * Given a queue, set the max packet size for the write 24299 * side of the queue below stream head. This value is 24300 * cached on the stream head. 24301 * Returns 1 on success, 0 otherwise. 24302 */ 24303 static int 24304 setmaxps(queue_t *q, int maxpsz) 24305 { 24306 struct stdata *stp; 24307 queue_t *wq; 24308 stp = STREAM(q); 24309 24310 /* 24311 * At this point change of a queue parameter is not allowed 24312 * when a multiplexor is sitting on top. 24313 */ 24314 if (stp->sd_flag & STPLEX) 24315 return (0); 24316 24317 claimstr(stp->sd_wrq); 24318 wq = stp->sd_wrq->q_next; 24319 ASSERT(wq != NULL); 24320 (void) strqset(wq, QMAXPSZ, 0, maxpsz); 24321 releasestr(stp->sd_wrq); 24322 return (1); 24323 } 24324 24325 static int 24326 tcp_conprim_opt_process(tcp_t *tcp, mblk_t *mp, int *do_disconnectp, 24327 int *t_errorp, int *sys_errorp) 24328 { 24329 int error; 24330 int is_absreq_failure; 24331 t_scalar_t *opt_lenp; 24332 t_scalar_t opt_offset; 24333 int prim_type; 24334 struct T_conn_req *tcreqp; 24335 struct T_conn_res *tcresp; 24336 cred_t *cr; 24337 24338 cr = DB_CREDDEF(mp, tcp->tcp_cred); 24339 24340 prim_type = ((union T_primitives *)mp->b_rptr)->type; 24341 ASSERT(prim_type == T_CONN_REQ || prim_type == O_T_CONN_RES || 24342 prim_type == T_CONN_RES); 24343 24344 switch (prim_type) { 24345 case T_CONN_REQ: 24346 tcreqp = (struct T_conn_req *)mp->b_rptr; 24347 opt_offset = tcreqp->OPT_offset; 24348 opt_lenp = (t_scalar_t *)&tcreqp->OPT_length; 24349 break; 24350 case O_T_CONN_RES: 24351 case T_CONN_RES: 24352 tcresp = (struct T_conn_res *)mp->b_rptr; 24353 opt_offset = tcresp->OPT_offset; 24354 opt_lenp = (t_scalar_t *)&tcresp->OPT_length; 24355 break; 24356 } 24357 24358 *t_errorp = 0; 24359 *sys_errorp = 0; 24360 *do_disconnectp = 0; 24361 24362 error = tpi_optcom_buf(tcp->tcp_wq, mp, opt_lenp, 24363 opt_offset, cr, &tcp_opt_obj, 24364 NULL, &is_absreq_failure); 24365 24366 switch (error) { 24367 case 0: /* no error */ 24368 ASSERT(is_absreq_failure == 0); 24369 return (0); 24370 case ENOPROTOOPT: 24371 *t_errorp = TBADOPT; 24372 break; 24373 case EACCES: 24374 *t_errorp = TACCES; 24375 break; 24376 default: 24377 *t_errorp = TSYSERR; *sys_errorp = error; 24378 break; 24379 } 24380 if (is_absreq_failure != 0) { 24381 /* 24382 * The connection request should get the local ack 24383 * T_OK_ACK and then a T_DISCON_IND. 24384 */ 24385 *do_disconnectp = 1; 24386 } 24387 return (-1); 24388 } 24389 24390 /* 24391 * Split this function out so that if the secret changes, I'm okay. 24392 * 24393 * Initialize the tcp_iss_cookie and tcp_iss_key. 24394 */ 24395 24396 #define PASSWD_SIZE 16 /* MUST be multiple of 4 */ 24397 24398 static void 24399 tcp_iss_key_init(uint8_t *phrase, int len) 24400 { 24401 struct { 24402 int32_t current_time; 24403 uint32_t randnum; 24404 uint16_t pad; 24405 uint8_t ether[6]; 24406 uint8_t passwd[PASSWD_SIZE]; 24407 } tcp_iss_cookie; 24408 time_t t; 24409 24410 /* 24411 * Start with the current absolute time. 24412 */ 24413 (void) drv_getparm(TIME, &t); 24414 tcp_iss_cookie.current_time = t; 24415 24416 /* 24417 * XXX - Need a more random number per RFC 1750, not this crap. 24418 * OTOH, if what follows is pretty random, then I'm in better shape. 24419 */ 24420 tcp_iss_cookie.randnum = (uint32_t)(gethrtime() + tcp_random()); 24421 tcp_iss_cookie.pad = 0x365c; /* Picked from HMAC pad values. */ 24422 24423 /* 24424 * The cpu_type_info is pretty non-random. Ugggh. It does serve 24425 * as a good template. 24426 */ 24427 bcopy(&cpu_list->cpu_type_info, &tcp_iss_cookie.passwd, 24428 min(PASSWD_SIZE, sizeof (cpu_list->cpu_type_info))); 24429 24430 /* 24431 * The pass-phrase. Normally this is supplied by user-called NDD. 24432 */ 24433 bcopy(phrase, &tcp_iss_cookie.passwd, min(PASSWD_SIZE, len)); 24434 24435 /* 24436 * See 4010593 if this section becomes a problem again, 24437 * but the local ethernet address is useful here. 24438 */ 24439 (void) localetheraddr(NULL, 24440 (struct ether_addr *)&tcp_iss_cookie.ether); 24441 24442 /* 24443 * Hash 'em all together. The MD5Final is called per-connection. 24444 */ 24445 mutex_enter(&tcp_iss_key_lock); 24446 MD5Init(&tcp_iss_key); 24447 MD5Update(&tcp_iss_key, (uchar_t *)&tcp_iss_cookie, 24448 sizeof (tcp_iss_cookie)); 24449 mutex_exit(&tcp_iss_key_lock); 24450 } 24451 24452 /* 24453 * Set the RFC 1948 pass phrase 24454 */ 24455 /* ARGSUSED */ 24456 static int 24457 tcp_1948_phrase_set(queue_t *q, mblk_t *mp, char *value, caddr_t cp, 24458 cred_t *cr) 24459 { 24460 /* 24461 * Basically, value contains a new pass phrase. Pass it along! 24462 */ 24463 tcp_iss_key_init((uint8_t *)value, strlen(value)); 24464 return (0); 24465 } 24466 24467 /* ARGSUSED */ 24468 static int 24469 tcp_sack_info_constructor(void *buf, void *cdrarg, int kmflags) 24470 { 24471 bzero(buf, sizeof (tcp_sack_info_t)); 24472 return (0); 24473 } 24474 24475 /* ARGSUSED */ 24476 static int 24477 tcp_iphc_constructor(void *buf, void *cdrarg, int kmflags) 24478 { 24479 bzero(buf, TCP_MAX_COMBINED_HEADER_LENGTH); 24480 return (0); 24481 } 24482 24483 void 24484 tcp_ddi_init(void) 24485 { 24486 int i; 24487 24488 /* Initialize locks */ 24489 rw_init(&tcp_hsp_lock, NULL, RW_DEFAULT, NULL); 24490 mutex_init(&tcp_g_q_lock, NULL, MUTEX_DEFAULT, NULL); 24491 mutex_init(&tcp_random_lock, NULL, MUTEX_DEFAULT, NULL); 24492 mutex_init(&tcp_iss_key_lock, NULL, MUTEX_DEFAULT, NULL); 24493 mutex_init(&tcp_epriv_port_lock, NULL, MUTEX_DEFAULT, NULL); 24494 rw_init(&tcp_reserved_port_lock, NULL, RW_DEFAULT, NULL); 24495 24496 for (i = 0; i < A_CNT(tcp_bind_fanout); i++) { 24497 mutex_init(&tcp_bind_fanout[i].tf_lock, NULL, 24498 MUTEX_DEFAULT, NULL); 24499 } 24500 24501 for (i = 0; i < A_CNT(tcp_acceptor_fanout); i++) { 24502 mutex_init(&tcp_acceptor_fanout[i].tf_lock, NULL, 24503 MUTEX_DEFAULT, NULL); 24504 } 24505 24506 /* TCP's IPsec code calls the packet dropper. */ 24507 ip_drop_register(&tcp_dropper, "TCP IPsec policy enforcement"); 24508 24509 if (!tcp_g_nd) { 24510 if (!tcp_param_register(tcp_param_arr, A_CNT(tcp_param_arr))) { 24511 nd_free(&tcp_g_nd); 24512 } 24513 } 24514 24515 /* 24516 * Note: To really walk the device tree you need the devinfo 24517 * pointer to your device which is only available after probe/attach. 24518 * The following is safe only because it uses ddi_root_node() 24519 */ 24520 tcp_max_optsize = optcom_max_optsize(tcp_opt_obj.odb_opt_des_arr, 24521 tcp_opt_obj.odb_opt_arr_cnt); 24522 24523 tcp_timercache = kmem_cache_create("tcp_timercache", 24524 sizeof (tcp_timer_t) + sizeof (mblk_t), 0, 24525 NULL, NULL, NULL, NULL, NULL, 0); 24526 24527 tcp_sack_info_cache = kmem_cache_create("tcp_sack_info_cache", 24528 sizeof (tcp_sack_info_t), 0, 24529 tcp_sack_info_constructor, NULL, NULL, NULL, NULL, 0); 24530 24531 tcp_iphc_cache = kmem_cache_create("tcp_iphc_cache", 24532 TCP_MAX_COMBINED_HEADER_LENGTH, 0, 24533 tcp_iphc_constructor, NULL, NULL, NULL, NULL, 0); 24534 24535 tcp_squeue_wput_proc = tcp_squeue_switch(tcp_squeue_wput); 24536 tcp_squeue_close_proc = tcp_squeue_switch(tcp_squeue_close); 24537 24538 ip_squeue_init(tcp_squeue_add); 24539 24540 /* Initialize the random number generator */ 24541 tcp_random_init(); 24542 24543 /* 24544 * Initialize RFC 1948 secret values. This will probably be reset once 24545 * by the boot scripts. 24546 * 24547 * Use NULL name, as the name is caught by the new lockstats. 24548 * 24549 * Initialize with some random, non-guessable string, like the global 24550 * T_INFO_ACK. 24551 */ 24552 24553 tcp_iss_key_init((uint8_t *)&tcp_g_t_info_ack, 24554 sizeof (tcp_g_t_info_ack)); 24555 24556 if ((tcp_kstat = kstat_create(TCP_MOD_NAME, 0, "tcpstat", 24557 "net", KSTAT_TYPE_NAMED, 24558 sizeof (tcp_statistics) / sizeof (kstat_named_t), 24559 KSTAT_FLAG_VIRTUAL)) != NULL) { 24560 tcp_kstat->ks_data = &tcp_statistics; 24561 kstat_install(tcp_kstat); 24562 } 24563 24564 tcp_kstat_init(); 24565 } 24566 24567 void 24568 tcp_ddi_destroy(void) 24569 { 24570 int i; 24571 24572 nd_free(&tcp_g_nd); 24573 24574 for (i = 0; i < A_CNT(tcp_bind_fanout); i++) { 24575 mutex_destroy(&tcp_bind_fanout[i].tf_lock); 24576 } 24577 24578 for (i = 0; i < A_CNT(tcp_acceptor_fanout); i++) { 24579 mutex_destroy(&tcp_acceptor_fanout[i].tf_lock); 24580 } 24581 24582 mutex_destroy(&tcp_iss_key_lock); 24583 rw_destroy(&tcp_hsp_lock); 24584 mutex_destroy(&tcp_g_q_lock); 24585 mutex_destroy(&tcp_random_lock); 24586 mutex_destroy(&tcp_epriv_port_lock); 24587 rw_destroy(&tcp_reserved_port_lock); 24588 24589 ip_drop_unregister(&tcp_dropper); 24590 24591 kmem_cache_destroy(tcp_timercache); 24592 kmem_cache_destroy(tcp_sack_info_cache); 24593 kmem_cache_destroy(tcp_iphc_cache); 24594 24595 tcp_kstat_fini(); 24596 } 24597 24598 /* 24599 * Generate ISS, taking into account NDD changes may happen halfway through. 24600 * (If the iss is not zero, set it.) 24601 */ 24602 24603 static void 24604 tcp_iss_init(tcp_t *tcp) 24605 { 24606 MD5_CTX context; 24607 struct { uint32_t ports; in6_addr_t src; in6_addr_t dst; } arg; 24608 uint32_t answer[4]; 24609 24610 tcp_iss_incr_extra += (ISS_INCR >> 1); 24611 tcp->tcp_iss = tcp_iss_incr_extra; 24612 switch (tcp_strong_iss) { 24613 case 2: 24614 mutex_enter(&tcp_iss_key_lock); 24615 context = tcp_iss_key; 24616 mutex_exit(&tcp_iss_key_lock); 24617 arg.ports = tcp->tcp_ports; 24618 if (tcp->tcp_ipversion == IPV4_VERSION) { 24619 IN6_IPADDR_TO_V4MAPPED(tcp->tcp_ipha->ipha_src, 24620 &arg.src); 24621 IN6_IPADDR_TO_V4MAPPED(tcp->tcp_ipha->ipha_dst, 24622 &arg.dst); 24623 } else { 24624 arg.src = tcp->tcp_ip6h->ip6_src; 24625 arg.dst = tcp->tcp_ip6h->ip6_dst; 24626 } 24627 MD5Update(&context, (uchar_t *)&arg, sizeof (arg)); 24628 MD5Final((uchar_t *)answer, &context); 24629 tcp->tcp_iss += answer[0] ^ answer[1] ^ answer[2] ^ answer[3]; 24630 /* 24631 * Now that we've hashed into a unique per-connection sequence 24632 * space, add a random increment per strong_iss == 1. So I 24633 * guess we'll have to... 24634 */ 24635 /* FALLTHRU */ 24636 case 1: 24637 tcp->tcp_iss += (gethrtime() >> ISS_NSEC_SHT) + tcp_random(); 24638 break; 24639 default: 24640 tcp->tcp_iss += (uint32_t)gethrestime_sec() * ISS_INCR; 24641 break; 24642 } 24643 tcp->tcp_valid_bits = TCP_ISS_VALID; 24644 tcp->tcp_fss = tcp->tcp_iss - 1; 24645 tcp->tcp_suna = tcp->tcp_iss; 24646 tcp->tcp_snxt = tcp->tcp_iss + 1; 24647 tcp->tcp_rexmit_nxt = tcp->tcp_snxt; 24648 tcp->tcp_csuna = tcp->tcp_snxt; 24649 } 24650 24651 /* 24652 * Exported routine for extracting active tcp connection status. 24653 * 24654 * This is used by the Solaris Cluster Networking software to 24655 * gather a list of connections that need to be forwarded to 24656 * specific nodes in the cluster when configuration changes occur. 24657 * 24658 * The callback is invoked for each tcp_t structure. Returning 24659 * non-zero from the callback routine terminates the search. 24660 */ 24661 int 24662 cl_tcp_walk_list(int (*callback)(cl_tcp_info_t *, void *), void *arg) 24663 { 24664 tcp_t *tcp; 24665 cl_tcp_info_t cl_tcpi; 24666 connf_t *connfp; 24667 conn_t *connp; 24668 int i; 24669 24670 ASSERT(callback != NULL); 24671 24672 for (i = 0; i < CONN_G_HASH_SIZE; i++) { 24673 24674 connfp = &ipcl_globalhash_fanout[i]; 24675 connp = NULL; 24676 24677 while ((connp = 24678 ipcl_get_next_conn(connfp, connp, IPCL_TCP)) != NULL) { 24679 24680 tcp = connp->conn_tcp; 24681 cl_tcpi.cl_tcpi_version = CL_TCPI_V1; 24682 cl_tcpi.cl_tcpi_ipversion = tcp->tcp_ipversion; 24683 cl_tcpi.cl_tcpi_state = tcp->tcp_state; 24684 cl_tcpi.cl_tcpi_lport = tcp->tcp_lport; 24685 cl_tcpi.cl_tcpi_fport = tcp->tcp_fport; 24686 /* 24687 * The macros tcp_laddr and tcp_faddr give the IPv4 24688 * addresses. They are copied implicitly below as 24689 * mapped addresses. 24690 */ 24691 cl_tcpi.cl_tcpi_laddr_v6 = tcp->tcp_ip_src_v6; 24692 if (tcp->tcp_ipversion == IPV4_VERSION) { 24693 cl_tcpi.cl_tcpi_faddr = 24694 tcp->tcp_ipha->ipha_dst; 24695 } else { 24696 cl_tcpi.cl_tcpi_faddr_v6 = 24697 tcp->tcp_ip6h->ip6_dst; 24698 } 24699 24700 /* 24701 * If the callback returns non-zero 24702 * we terminate the traversal. 24703 */ 24704 if ((*callback)(&cl_tcpi, arg) != 0) { 24705 CONN_DEC_REF(tcp->tcp_connp); 24706 return (1); 24707 } 24708 } 24709 } 24710 24711 return (0); 24712 } 24713 24714 /* 24715 * Macros used for accessing the different types of sockaddr 24716 * structures inside a tcp_ioc_abort_conn_t. 24717 */ 24718 #define TCP_AC_V4LADDR(acp) ((sin_t *)&(acp)->ac_local) 24719 #define TCP_AC_V4RADDR(acp) ((sin_t *)&(acp)->ac_remote) 24720 #define TCP_AC_V4LOCAL(acp) (TCP_AC_V4LADDR(acp)->sin_addr.s_addr) 24721 #define TCP_AC_V4REMOTE(acp) (TCP_AC_V4RADDR(acp)->sin_addr.s_addr) 24722 #define TCP_AC_V4LPORT(acp) (TCP_AC_V4LADDR(acp)->sin_port) 24723 #define TCP_AC_V4RPORT(acp) (TCP_AC_V4RADDR(acp)->sin_port) 24724 #define TCP_AC_V6LADDR(acp) ((sin6_t *)&(acp)->ac_local) 24725 #define TCP_AC_V6RADDR(acp) ((sin6_t *)&(acp)->ac_remote) 24726 #define TCP_AC_V6LOCAL(acp) (TCP_AC_V6LADDR(acp)->sin6_addr) 24727 #define TCP_AC_V6REMOTE(acp) (TCP_AC_V6RADDR(acp)->sin6_addr) 24728 #define TCP_AC_V6LPORT(acp) (TCP_AC_V6LADDR(acp)->sin6_port) 24729 #define TCP_AC_V6RPORT(acp) (TCP_AC_V6RADDR(acp)->sin6_port) 24730 24731 /* 24732 * Return the correct error code to mimic the behavior 24733 * of a connection reset. 24734 */ 24735 #define TCP_AC_GET_ERRCODE(state, err) { \ 24736 switch ((state)) { \ 24737 case TCPS_SYN_SENT: \ 24738 case TCPS_SYN_RCVD: \ 24739 (err) = ECONNREFUSED; \ 24740 break; \ 24741 case TCPS_ESTABLISHED: \ 24742 case TCPS_FIN_WAIT_1: \ 24743 case TCPS_FIN_WAIT_2: \ 24744 case TCPS_CLOSE_WAIT: \ 24745 (err) = ECONNRESET; \ 24746 break; \ 24747 case TCPS_CLOSING: \ 24748 case TCPS_LAST_ACK: \ 24749 case TCPS_TIME_WAIT: \ 24750 (err) = 0; \ 24751 break; \ 24752 default: \ 24753 (err) = ENXIO; \ 24754 } \ 24755 } 24756 24757 /* 24758 * Check if a tcp structure matches the info in acp. 24759 */ 24760 #define TCP_AC_ADDR_MATCH(acp, tcp) \ 24761 (((acp)->ac_local.ss_family == AF_INET) ? \ 24762 ((TCP_AC_V4LOCAL((acp)) == INADDR_ANY || \ 24763 TCP_AC_V4LOCAL((acp)) == (tcp)->tcp_ip_src) && \ 24764 (TCP_AC_V4REMOTE((acp)) == INADDR_ANY || \ 24765 TCP_AC_V4REMOTE((acp)) == (tcp)->tcp_remote) && \ 24766 (TCP_AC_V4LPORT((acp)) == 0 || \ 24767 TCP_AC_V4LPORT((acp)) == (tcp)->tcp_lport) && \ 24768 (TCP_AC_V4RPORT((acp)) == 0 || \ 24769 TCP_AC_V4RPORT((acp)) == (tcp)->tcp_fport) && \ 24770 (acp)->ac_start <= (tcp)->tcp_state && \ 24771 (acp)->ac_end >= (tcp)->tcp_state) : \ 24772 ((IN6_IS_ADDR_UNSPECIFIED(&TCP_AC_V6LOCAL((acp))) || \ 24773 IN6_ARE_ADDR_EQUAL(&TCP_AC_V6LOCAL((acp)), \ 24774 &(tcp)->tcp_ip_src_v6)) && \ 24775 (IN6_IS_ADDR_UNSPECIFIED(&TCP_AC_V6REMOTE((acp))) || \ 24776 IN6_ARE_ADDR_EQUAL(&TCP_AC_V6REMOTE((acp)), \ 24777 &(tcp)->tcp_remote_v6)) && \ 24778 (TCP_AC_V6LPORT((acp)) == 0 || \ 24779 TCP_AC_V6LPORT((acp)) == (tcp)->tcp_lport) && \ 24780 (TCP_AC_V6RPORT((acp)) == 0 || \ 24781 TCP_AC_V6RPORT((acp)) == (tcp)->tcp_fport) && \ 24782 (acp)->ac_start <= (tcp)->tcp_state && \ 24783 (acp)->ac_end >= (tcp)->tcp_state)) 24784 24785 #define TCP_AC_MATCH(acp, tcp) \ 24786 (((acp)->ac_zoneid == ALL_ZONES || \ 24787 (acp)->ac_zoneid == tcp->tcp_connp->conn_zoneid) ? \ 24788 TCP_AC_ADDR_MATCH(acp, tcp) : 0) 24789 24790 /* 24791 * Build a message containing a tcp_ioc_abort_conn_t structure 24792 * which is filled in with information from acp and tp. 24793 */ 24794 static mblk_t * 24795 tcp_ioctl_abort_build_msg(tcp_ioc_abort_conn_t *acp, tcp_t *tp) 24796 { 24797 mblk_t *mp; 24798 tcp_ioc_abort_conn_t *tacp; 24799 24800 mp = allocb(sizeof (uint32_t) + sizeof (*acp), BPRI_LO); 24801 if (mp == NULL) 24802 return (NULL); 24803 24804 mp->b_datap->db_type = M_CTL; 24805 24806 *((uint32_t *)mp->b_rptr) = TCP_IOC_ABORT_CONN; 24807 tacp = (tcp_ioc_abort_conn_t *)((uchar_t *)mp->b_rptr + 24808 sizeof (uint32_t)); 24809 24810 tacp->ac_start = acp->ac_start; 24811 tacp->ac_end = acp->ac_end; 24812 tacp->ac_zoneid = acp->ac_zoneid; 24813 24814 if (acp->ac_local.ss_family == AF_INET) { 24815 tacp->ac_local.ss_family = AF_INET; 24816 tacp->ac_remote.ss_family = AF_INET; 24817 TCP_AC_V4LOCAL(tacp) = tp->tcp_ip_src; 24818 TCP_AC_V4REMOTE(tacp) = tp->tcp_remote; 24819 TCP_AC_V4LPORT(tacp) = tp->tcp_lport; 24820 TCP_AC_V4RPORT(tacp) = tp->tcp_fport; 24821 } else { 24822 tacp->ac_local.ss_family = AF_INET6; 24823 tacp->ac_remote.ss_family = AF_INET6; 24824 TCP_AC_V6LOCAL(tacp) = tp->tcp_ip_src_v6; 24825 TCP_AC_V6REMOTE(tacp) = tp->tcp_remote_v6; 24826 TCP_AC_V6LPORT(tacp) = tp->tcp_lport; 24827 TCP_AC_V6RPORT(tacp) = tp->tcp_fport; 24828 } 24829 mp->b_wptr = (uchar_t *)mp->b_rptr + sizeof (uint32_t) + sizeof (*acp); 24830 return (mp); 24831 } 24832 24833 /* 24834 * Print a tcp_ioc_abort_conn_t structure. 24835 */ 24836 static void 24837 tcp_ioctl_abort_dump(tcp_ioc_abort_conn_t *acp) 24838 { 24839 char lbuf[128]; 24840 char rbuf[128]; 24841 sa_family_t af; 24842 in_port_t lport, rport; 24843 ushort_t logflags; 24844 24845 af = acp->ac_local.ss_family; 24846 24847 if (af == AF_INET) { 24848 (void) inet_ntop(af, (const void *)&TCP_AC_V4LOCAL(acp), 24849 lbuf, 128); 24850 (void) inet_ntop(af, (const void *)&TCP_AC_V4REMOTE(acp), 24851 rbuf, 128); 24852 lport = ntohs(TCP_AC_V4LPORT(acp)); 24853 rport = ntohs(TCP_AC_V4RPORT(acp)); 24854 } else { 24855 (void) inet_ntop(af, (const void *)&TCP_AC_V6LOCAL(acp), 24856 lbuf, 128); 24857 (void) inet_ntop(af, (const void *)&TCP_AC_V6REMOTE(acp), 24858 rbuf, 128); 24859 lport = ntohs(TCP_AC_V6LPORT(acp)); 24860 rport = ntohs(TCP_AC_V6RPORT(acp)); 24861 } 24862 24863 logflags = SL_TRACE | SL_NOTE; 24864 /* 24865 * Don't print this message to the console if the operation was done 24866 * to a non-global zone. 24867 */ 24868 if (acp->ac_zoneid == GLOBAL_ZONEID || acp->ac_zoneid == ALL_ZONES) 24869 logflags |= SL_CONSOLE; 24870 (void) strlog(TCP_MOD_ID, 0, 1, logflags, 24871 "TCP_IOC_ABORT_CONN: local = %s:%d, remote = %s:%d, " 24872 "start = %d, end = %d\n", lbuf, lport, rbuf, rport, 24873 acp->ac_start, acp->ac_end); 24874 } 24875 24876 /* 24877 * Called inside tcp_rput when a message built using 24878 * tcp_ioctl_abort_build_msg is put into a queue. 24879 * Note that when we get here there is no wildcard in acp any more. 24880 */ 24881 static void 24882 tcp_ioctl_abort_handler(tcp_t *tcp, mblk_t *mp) 24883 { 24884 tcp_ioc_abort_conn_t *acp; 24885 24886 acp = (tcp_ioc_abort_conn_t *)(mp->b_rptr + sizeof (uint32_t)); 24887 if (tcp->tcp_state <= acp->ac_end) { 24888 /* 24889 * If we get here, we are already on the correct 24890 * squeue. This ioctl follows the following path 24891 * tcp_wput -> tcp_wput_ioctl -> tcp_ioctl_abort_conn 24892 * ->tcp_ioctl_abort->squeue_fill (if on a 24893 * different squeue) 24894 */ 24895 int errcode; 24896 24897 TCP_AC_GET_ERRCODE(tcp->tcp_state, errcode); 24898 (void) tcp_clean_death(tcp, errcode, 26); 24899 } 24900 freemsg(mp); 24901 } 24902 24903 /* 24904 * Abort all matching connections on a hash chain. 24905 */ 24906 static int 24907 tcp_ioctl_abort_bucket(tcp_ioc_abort_conn_t *acp, int index, int *count, 24908 boolean_t exact) 24909 { 24910 int nmatch, err = 0; 24911 tcp_t *tcp; 24912 MBLKP mp, last, listhead = NULL; 24913 conn_t *tconnp; 24914 connf_t *connfp = &ipcl_conn_fanout[index]; 24915 24916 startover: 24917 nmatch = 0; 24918 24919 mutex_enter(&connfp->connf_lock); 24920 for (tconnp = connfp->connf_head; tconnp != NULL; 24921 tconnp = tconnp->conn_next) { 24922 tcp = tconnp->conn_tcp; 24923 if (TCP_AC_MATCH(acp, tcp)) { 24924 CONN_INC_REF(tcp->tcp_connp); 24925 mp = tcp_ioctl_abort_build_msg(acp, tcp); 24926 if (mp == NULL) { 24927 err = ENOMEM; 24928 CONN_DEC_REF(tcp->tcp_connp); 24929 break; 24930 } 24931 mp->b_prev = (mblk_t *)tcp; 24932 24933 if (listhead == NULL) { 24934 listhead = mp; 24935 last = mp; 24936 } else { 24937 last->b_next = mp; 24938 last = mp; 24939 } 24940 nmatch++; 24941 if (exact) 24942 break; 24943 } 24944 24945 /* Avoid holding lock for too long. */ 24946 if (nmatch >= 500) 24947 break; 24948 } 24949 mutex_exit(&connfp->connf_lock); 24950 24951 /* Pass mp into the correct tcp */ 24952 while ((mp = listhead) != NULL) { 24953 listhead = listhead->b_next; 24954 tcp = (tcp_t *)mp->b_prev; 24955 mp->b_next = mp->b_prev = NULL; 24956 squeue_fill(tcp->tcp_connp->conn_sqp, mp, 24957 tcp_input, tcp->tcp_connp, SQTAG_TCP_ABORT_BUCKET); 24958 } 24959 24960 *count += nmatch; 24961 if (nmatch >= 500 && err == 0) 24962 goto startover; 24963 return (err); 24964 } 24965 24966 /* 24967 * Abort all connections that matches the attributes specified in acp. 24968 */ 24969 static int 24970 tcp_ioctl_abort(tcp_ioc_abort_conn_t *acp) 24971 { 24972 sa_family_t af; 24973 uint32_t ports; 24974 uint16_t *pports; 24975 int err = 0, count = 0; 24976 boolean_t exact = B_FALSE; /* set when there is no wildcard */ 24977 int index = -1; 24978 ushort_t logflags; 24979 24980 af = acp->ac_local.ss_family; 24981 24982 if (af == AF_INET) { 24983 if (TCP_AC_V4REMOTE(acp) != INADDR_ANY && 24984 TCP_AC_V4LPORT(acp) != 0 && TCP_AC_V4RPORT(acp) != 0) { 24985 pports = (uint16_t *)&ports; 24986 pports[1] = TCP_AC_V4LPORT(acp); 24987 pports[0] = TCP_AC_V4RPORT(acp); 24988 exact = (TCP_AC_V4LOCAL(acp) != INADDR_ANY); 24989 } 24990 } else { 24991 if (!IN6_IS_ADDR_UNSPECIFIED(&TCP_AC_V6REMOTE(acp)) && 24992 TCP_AC_V6LPORT(acp) != 0 && TCP_AC_V6RPORT(acp) != 0) { 24993 pports = (uint16_t *)&ports; 24994 pports[1] = TCP_AC_V6LPORT(acp); 24995 pports[0] = TCP_AC_V6RPORT(acp); 24996 exact = !IN6_IS_ADDR_UNSPECIFIED(&TCP_AC_V6LOCAL(acp)); 24997 } 24998 } 24999 25000 /* 25001 * For cases where remote addr, local port, and remote port are non- 25002 * wildcards, tcp_ioctl_abort_bucket will only be called once. 25003 */ 25004 if (index != -1) { 25005 err = tcp_ioctl_abort_bucket(acp, index, 25006 &count, exact); 25007 } else { 25008 /* 25009 * loop through all entries for wildcard case 25010 */ 25011 for (index = 0; index < ipcl_conn_fanout_size; index++) { 25012 err = tcp_ioctl_abort_bucket(acp, index, 25013 &count, exact); 25014 if (err != 0) 25015 break; 25016 } 25017 } 25018 25019 logflags = SL_TRACE | SL_NOTE; 25020 /* 25021 * Don't print this message to the console if the operation was done 25022 * to a non-global zone. 25023 */ 25024 if (acp->ac_zoneid == GLOBAL_ZONEID || acp->ac_zoneid == ALL_ZONES) 25025 logflags |= SL_CONSOLE; 25026 (void) strlog(TCP_MOD_ID, 0, 1, logflags, "TCP_IOC_ABORT_CONN: " 25027 "aborted %d connection%c\n", count, ((count > 1) ? 's' : ' ')); 25028 if (err == 0 && count == 0) 25029 err = ENOENT; 25030 return (err); 25031 } 25032 25033 /* 25034 * Process the TCP_IOC_ABORT_CONN ioctl request. 25035 */ 25036 static void 25037 tcp_ioctl_abort_conn(queue_t *q, mblk_t *mp) 25038 { 25039 int err; 25040 IOCP iocp; 25041 MBLKP mp1; 25042 sa_family_t laf, raf; 25043 tcp_ioc_abort_conn_t *acp; 25044 zone_t *zptr; 25045 zoneid_t zoneid = Q_TO_CONN(q)->conn_zoneid; 25046 25047 iocp = (IOCP)mp->b_rptr; 25048 25049 if ((mp1 = mp->b_cont) == NULL || 25050 iocp->ioc_count != sizeof (tcp_ioc_abort_conn_t)) { 25051 err = EINVAL; 25052 goto out; 25053 } 25054 25055 /* check permissions */ 25056 if (secpolicy_net_config(iocp->ioc_cr, B_FALSE) != 0) { 25057 err = EPERM; 25058 goto out; 25059 } 25060 25061 if (mp1->b_cont != NULL) { 25062 freemsg(mp1->b_cont); 25063 mp1->b_cont = NULL; 25064 } 25065 25066 acp = (tcp_ioc_abort_conn_t *)mp1->b_rptr; 25067 laf = acp->ac_local.ss_family; 25068 raf = acp->ac_remote.ss_family; 25069 25070 /* check that a zone with the supplied zoneid exists */ 25071 if (acp->ac_zoneid != GLOBAL_ZONEID && acp->ac_zoneid != ALL_ZONES) { 25072 zptr = zone_find_by_id(zoneid); 25073 if (zptr != NULL) { 25074 zone_rele(zptr); 25075 } else { 25076 err = EINVAL; 25077 goto out; 25078 } 25079 } 25080 25081 if (acp->ac_start < TCPS_SYN_SENT || acp->ac_end > TCPS_TIME_WAIT || 25082 acp->ac_start > acp->ac_end || laf != raf || 25083 (laf != AF_INET && laf != AF_INET6)) { 25084 err = EINVAL; 25085 goto out; 25086 } 25087 25088 tcp_ioctl_abort_dump(acp); 25089 err = tcp_ioctl_abort(acp); 25090 25091 out: 25092 if (mp1 != NULL) { 25093 freemsg(mp1); 25094 mp->b_cont = NULL; 25095 } 25096 25097 if (err != 0) 25098 miocnak(q, mp, 0, err); 25099 else 25100 miocack(q, mp, 0, 0); 25101 } 25102 25103 /* 25104 * tcp_time_wait_processing() handles processing of incoming packets when 25105 * the tcp is in the TIME_WAIT state. 25106 * A TIME_WAIT tcp that has an associated open TCP stream is never put 25107 * on the time wait list. 25108 */ 25109 void 25110 tcp_time_wait_processing(tcp_t *tcp, mblk_t *mp, uint32_t seg_seq, 25111 uint32_t seg_ack, int seg_len, tcph_t *tcph) 25112 { 25113 int32_t bytes_acked; 25114 int32_t gap; 25115 int32_t rgap; 25116 tcp_opt_t tcpopt; 25117 uint_t flags; 25118 uint32_t new_swnd = 0; 25119 conn_t *connp; 25120 25121 BUMP_LOCAL(tcp->tcp_ibsegs); 25122 TCP_RECORD_TRACE(tcp, mp, TCP_TRACE_RECV_PKT); 25123 25124 flags = (unsigned int)tcph->th_flags[0] & 0xFF; 25125 new_swnd = BE16_TO_U16(tcph->th_win) << 25126 ((tcph->th_flags[0] & TH_SYN) ? 0 : tcp->tcp_snd_ws); 25127 if (tcp->tcp_snd_ts_ok) { 25128 if (!tcp_paws_check(tcp, tcph, &tcpopt)) { 25129 tcp_xmit_ctl(NULL, tcp, tcp->tcp_snxt, 25130 tcp->tcp_rnxt, TH_ACK); 25131 goto done; 25132 } 25133 } 25134 gap = seg_seq - tcp->tcp_rnxt; 25135 rgap = tcp->tcp_rwnd - (gap + seg_len); 25136 if (gap < 0) { 25137 BUMP_MIB(&tcp_mib, tcpInDataDupSegs); 25138 UPDATE_MIB(&tcp_mib, tcpInDataDupBytes, 25139 (seg_len > -gap ? -gap : seg_len)); 25140 seg_len += gap; 25141 if (seg_len < 0 || (seg_len == 0 && !(flags & TH_FIN))) { 25142 if (flags & TH_RST) { 25143 goto done; 25144 } 25145 if ((flags & TH_FIN) && seg_len == -1) { 25146 /* 25147 * When TCP receives a duplicate FIN in 25148 * TIME_WAIT state, restart the 2 MSL timer. 25149 * See page 73 in RFC 793. Make sure this TCP 25150 * is already on the TIME_WAIT list. If not, 25151 * just restart the timer. 25152 */ 25153 if (TCP_IS_DETACHED(tcp)) { 25154 if (tcp_time_wait_remove(tcp, NULL) == 25155 B_TRUE) { 25156 tcp_time_wait_append(tcp); 25157 TCP_DBGSTAT(tcp_rput_time_wait); 25158 } 25159 } else { 25160 ASSERT(tcp != NULL); 25161 TCP_TIMER_RESTART(tcp, 25162 tcp_time_wait_interval); 25163 } 25164 tcp_xmit_ctl(NULL, tcp, tcp->tcp_snxt, 25165 tcp->tcp_rnxt, TH_ACK); 25166 goto done; 25167 } 25168 flags |= TH_ACK_NEEDED; 25169 seg_len = 0; 25170 goto process_ack; 25171 } 25172 25173 /* Fix seg_seq, and chew the gap off the front. */ 25174 seg_seq = tcp->tcp_rnxt; 25175 } 25176 25177 if ((flags & TH_SYN) && gap > 0 && rgap < 0) { 25178 /* 25179 * Make sure that when we accept the connection, pick 25180 * an ISS greater than (tcp_snxt + ISS_INCR/2) for the 25181 * old connection. 25182 * 25183 * The next ISS generated is equal to tcp_iss_incr_extra 25184 * + ISS_INCR/2 + other components depending on the 25185 * value of tcp_strong_iss. We pre-calculate the new 25186 * ISS here and compare with tcp_snxt to determine if 25187 * we need to make adjustment to tcp_iss_incr_extra. 25188 * 25189 * The above calculation is ugly and is a 25190 * waste of CPU cycles... 25191 */ 25192 uint32_t new_iss = tcp_iss_incr_extra; 25193 int32_t adj; 25194 25195 switch (tcp_strong_iss) { 25196 case 2: { 25197 /* Add time and MD5 components. */ 25198 uint32_t answer[4]; 25199 struct { 25200 uint32_t ports; 25201 in6_addr_t src; 25202 in6_addr_t dst; 25203 } arg; 25204 MD5_CTX context; 25205 25206 mutex_enter(&tcp_iss_key_lock); 25207 context = tcp_iss_key; 25208 mutex_exit(&tcp_iss_key_lock); 25209 arg.ports = tcp->tcp_ports; 25210 /* We use MAPPED addresses in tcp_iss_init */ 25211 arg.src = tcp->tcp_ip_src_v6; 25212 if (tcp->tcp_ipversion == IPV4_VERSION) { 25213 IN6_IPADDR_TO_V4MAPPED( 25214 tcp->tcp_ipha->ipha_dst, 25215 &arg.dst); 25216 } else { 25217 arg.dst = 25218 tcp->tcp_ip6h->ip6_dst; 25219 } 25220 MD5Update(&context, (uchar_t *)&arg, 25221 sizeof (arg)); 25222 MD5Final((uchar_t *)answer, &context); 25223 answer[0] ^= answer[1] ^ answer[2] ^ answer[3]; 25224 new_iss += (gethrtime() >> ISS_NSEC_SHT) + answer[0]; 25225 break; 25226 } 25227 case 1: 25228 /* Add time component and min random (i.e. 1). */ 25229 new_iss += (gethrtime() >> ISS_NSEC_SHT) + 1; 25230 break; 25231 default: 25232 /* Add only time component. */ 25233 new_iss += (uint32_t)gethrestime_sec() * ISS_INCR; 25234 break; 25235 } 25236 if ((adj = (int32_t)(tcp->tcp_snxt - new_iss)) > 0) { 25237 /* 25238 * New ISS not guaranteed to be ISS_INCR/2 25239 * ahead of the current tcp_snxt, so add the 25240 * difference to tcp_iss_incr_extra. 25241 */ 25242 tcp_iss_incr_extra += adj; 25243 } 25244 /* 25245 * If tcp_clean_death() can not perform the task now, 25246 * drop the SYN packet and let the other side re-xmit. 25247 * Otherwise pass the SYN packet back in, since the 25248 * old tcp state has been cleaned up or freed. 25249 */ 25250 if (tcp_clean_death(tcp, 0, 27) == -1) 25251 goto done; 25252 /* 25253 * We will come back to tcp_rput_data 25254 * on the global queue. Packets destined 25255 * for the global queue will be checked 25256 * with global policy. But the policy for 25257 * this packet has already been checked as 25258 * this was destined for the detached 25259 * connection. We need to bypass policy 25260 * check this time by attaching a dummy 25261 * ipsec_in with ipsec_in_dont_check set. 25262 */ 25263 if ((connp = ipcl_classify(mp, tcp->tcp_connp->conn_zoneid)) != 25264 NULL) { 25265 TCP_STAT(tcp_time_wait_syn_success); 25266 tcp_reinput(connp, mp, tcp->tcp_connp->conn_sqp); 25267 return; 25268 } 25269 goto done; 25270 } 25271 25272 /* 25273 * rgap is the amount of stuff received out of window. A negative 25274 * value is the amount out of window. 25275 */ 25276 if (rgap < 0) { 25277 BUMP_MIB(&tcp_mib, tcpInDataPastWinSegs); 25278 UPDATE_MIB(&tcp_mib, tcpInDataPastWinBytes, -rgap); 25279 /* Fix seg_len and make sure there is something left. */ 25280 seg_len += rgap; 25281 if (seg_len <= 0) { 25282 if (flags & TH_RST) { 25283 goto done; 25284 } 25285 flags |= TH_ACK_NEEDED; 25286 seg_len = 0; 25287 goto process_ack; 25288 } 25289 } 25290 /* 25291 * Check whether we can update tcp_ts_recent. This test is 25292 * NOT the one in RFC 1323 3.4. It is from Braden, 1993, "TCP 25293 * Extensions for High Performance: An Update", Internet Draft. 25294 */ 25295 if (tcp->tcp_snd_ts_ok && 25296 TSTMP_GEQ(tcpopt.tcp_opt_ts_val, tcp->tcp_ts_recent) && 25297 SEQ_LEQ(seg_seq, tcp->tcp_rack)) { 25298 tcp->tcp_ts_recent = tcpopt.tcp_opt_ts_val; 25299 tcp->tcp_last_rcv_lbolt = lbolt64; 25300 } 25301 25302 if (seg_seq != tcp->tcp_rnxt && seg_len > 0) { 25303 /* Always ack out of order packets */ 25304 flags |= TH_ACK_NEEDED; 25305 seg_len = 0; 25306 } else if (seg_len > 0) { 25307 BUMP_MIB(&tcp_mib, tcpInClosed); 25308 BUMP_MIB(&tcp_mib, tcpInDataInorderSegs); 25309 UPDATE_MIB(&tcp_mib, tcpInDataInorderBytes, seg_len); 25310 } 25311 if (flags & TH_RST) { 25312 (void) tcp_clean_death(tcp, 0, 28); 25313 goto done; 25314 } 25315 if (flags & TH_SYN) { 25316 tcp_xmit_ctl("TH_SYN", tcp, seg_ack, seg_seq + 1, 25317 TH_RST|TH_ACK); 25318 /* 25319 * Do not delete the TCP structure if it is in 25320 * TIME_WAIT state. Refer to RFC 1122, 4.2.2.13. 25321 */ 25322 goto done; 25323 } 25324 process_ack: 25325 if (flags & TH_ACK) { 25326 bytes_acked = (int)(seg_ack - tcp->tcp_suna); 25327 if (bytes_acked <= 0) { 25328 if (bytes_acked == 0 && seg_len == 0 && 25329 new_swnd == tcp->tcp_swnd) 25330 BUMP_MIB(&tcp_mib, tcpInDupAck); 25331 } else { 25332 /* Acks something not sent */ 25333 flags |= TH_ACK_NEEDED; 25334 } 25335 } 25336 if (flags & TH_ACK_NEEDED) { 25337 /* 25338 * Time to send an ack for some reason. 25339 */ 25340 tcp_xmit_ctl(NULL, tcp, tcp->tcp_snxt, 25341 tcp->tcp_rnxt, TH_ACK); 25342 } 25343 done: 25344 if ((mp->b_datap->db_struioflag & STRUIO_EAGER) != 0) { 25345 DB_CKSUMSTART(mp) = 0; 25346 mp->b_datap->db_struioflag &= ~STRUIO_EAGER; 25347 TCP_STAT(tcp_time_wait_syn_fail); 25348 } 25349 freemsg(mp); 25350 } 25351 25352 /* 25353 * Allocate a T_SVR4_OPTMGMT_REQ. 25354 * The caller needs to increment tcp_drop_opt_ack_cnt when sending these so 25355 * that tcp_rput_other can drop the acks. 25356 */ 25357 static mblk_t * 25358 tcp_setsockopt_mp(int level, int cmd, char *opt, int optlen) 25359 { 25360 mblk_t *mp; 25361 struct T_optmgmt_req *tor; 25362 struct opthdr *oh; 25363 uint_t size; 25364 char *optptr; 25365 25366 size = sizeof (*tor) + sizeof (*oh) + optlen; 25367 mp = allocb(size, BPRI_MED); 25368 if (mp == NULL) 25369 return (NULL); 25370 25371 mp->b_wptr += size; 25372 mp->b_datap->db_type = M_PROTO; 25373 tor = (struct T_optmgmt_req *)mp->b_rptr; 25374 tor->PRIM_type = T_SVR4_OPTMGMT_REQ; 25375 tor->MGMT_flags = T_NEGOTIATE; 25376 tor->OPT_length = sizeof (*oh) + optlen; 25377 tor->OPT_offset = (t_scalar_t)sizeof (*tor); 25378 25379 oh = (struct opthdr *)&tor[1]; 25380 oh->level = level; 25381 oh->name = cmd; 25382 oh->len = optlen; 25383 if (optlen != 0) { 25384 optptr = (char *)&oh[1]; 25385 bcopy(opt, optptr, optlen); 25386 } 25387 return (mp); 25388 } 25389 25390 /* 25391 * TCP Timers Implementation. 25392 */ 25393 timeout_id_t 25394 tcp_timeout(conn_t *connp, void (*f)(void *), clock_t tim) 25395 { 25396 mblk_t *mp; 25397 tcp_timer_t *tcpt; 25398 tcp_t *tcp = connp->conn_tcp; 25399 25400 ASSERT(connp->conn_sqp != NULL); 25401 25402 TCP_DBGSTAT(tcp_timeout_calls); 25403 25404 if (tcp->tcp_timercache == NULL) { 25405 mp = tcp_timermp_alloc(KM_NOSLEEP | KM_PANIC); 25406 } else { 25407 TCP_DBGSTAT(tcp_timeout_cached_alloc); 25408 mp = tcp->tcp_timercache; 25409 tcp->tcp_timercache = mp->b_next; 25410 mp->b_next = NULL; 25411 ASSERT(mp->b_wptr == NULL); 25412 } 25413 25414 CONN_INC_REF(connp); 25415 tcpt = (tcp_timer_t *)mp->b_rptr; 25416 tcpt->connp = connp; 25417 tcpt->tcpt_proc = f; 25418 tcpt->tcpt_tid = timeout(tcp_timer_callback, mp, tim); 25419 return ((timeout_id_t)mp); 25420 } 25421 25422 static void 25423 tcp_timer_callback(void *arg) 25424 { 25425 mblk_t *mp = (mblk_t *)arg; 25426 tcp_timer_t *tcpt; 25427 conn_t *connp; 25428 25429 tcpt = (tcp_timer_t *)mp->b_rptr; 25430 connp = tcpt->connp; 25431 squeue_fill(connp->conn_sqp, mp, 25432 tcp_timer_handler, connp, SQTAG_TCP_TIMER); 25433 } 25434 25435 static void 25436 tcp_timer_handler(void *arg, mblk_t *mp, void *arg2) 25437 { 25438 tcp_timer_t *tcpt; 25439 conn_t *connp = (conn_t *)arg; 25440 tcp_t *tcp = connp->conn_tcp; 25441 25442 tcpt = (tcp_timer_t *)mp->b_rptr; 25443 ASSERT(connp == tcpt->connp); 25444 ASSERT((squeue_t *)arg2 == connp->conn_sqp); 25445 25446 /* 25447 * If the TCP has reached the closed state, don't proceed any 25448 * further. This TCP logically does not exist on the system. 25449 * tcpt_proc could for example access queues, that have already 25450 * been qprocoff'ed off. Also see comments at the start of tcp_input 25451 */ 25452 if (tcp->tcp_state != TCPS_CLOSED) { 25453 (*tcpt->tcpt_proc)(connp); 25454 } else { 25455 tcp->tcp_timer_tid = 0; 25456 } 25457 tcp_timer_free(connp->conn_tcp, mp); 25458 } 25459 25460 /* 25461 * There is potential race with untimeout and the handler firing at the same 25462 * time. The mblock may be freed by the handler while we are trying to use 25463 * it. But since both should execute on the same squeue, this race should not 25464 * occur. 25465 */ 25466 clock_t 25467 tcp_timeout_cancel(conn_t *connp, timeout_id_t id) 25468 { 25469 mblk_t *mp = (mblk_t *)id; 25470 tcp_timer_t *tcpt; 25471 clock_t delta; 25472 25473 TCP_DBGSTAT(tcp_timeout_cancel_reqs); 25474 25475 if (mp == NULL) 25476 return (-1); 25477 25478 tcpt = (tcp_timer_t *)mp->b_rptr; 25479 ASSERT(tcpt->connp == connp); 25480 25481 delta = untimeout(tcpt->tcpt_tid); 25482 25483 if (delta >= 0) { 25484 TCP_DBGSTAT(tcp_timeout_canceled); 25485 tcp_timer_free(connp->conn_tcp, mp); 25486 CONN_DEC_REF(connp); 25487 } 25488 25489 return (delta); 25490 } 25491 25492 /* 25493 * Allocate space for the timer event. The allocation looks like mblk, but it is 25494 * not a proper mblk. To avoid confusion we set b_wptr to NULL. 25495 * 25496 * Dealing with failures: If we can't allocate from the timer cache we try 25497 * allocating from dblock caches using allocb_tryhard(). In this case b_wptr 25498 * points to b_rptr. 25499 * If we can't allocate anything using allocb_tryhard(), we perform a last 25500 * attempt and use kmem_alloc_tryhard(). In this case we set b_wptr to -1 and 25501 * save the actual allocation size in b_datap. 25502 */ 25503 mblk_t * 25504 tcp_timermp_alloc(int kmflags) 25505 { 25506 mblk_t *mp = (mblk_t *)kmem_cache_alloc(tcp_timercache, 25507 kmflags & ~KM_PANIC); 25508 25509 if (mp != NULL) { 25510 mp->b_next = mp->b_prev = NULL; 25511 mp->b_rptr = (uchar_t *)(&mp[1]); 25512 mp->b_wptr = NULL; 25513 mp->b_datap = NULL; 25514 mp->b_queue = NULL; 25515 } else if (kmflags & KM_PANIC) { 25516 /* 25517 * Failed to allocate memory for the timer. Try allocating from 25518 * dblock caches. 25519 */ 25520 TCP_STAT(tcp_timermp_allocfail); 25521 mp = allocb_tryhard(sizeof (tcp_timer_t)); 25522 if (mp == NULL) { 25523 size_t size = 0; 25524 /* 25525 * Memory is really low. Try tryhard allocation. 25526 */ 25527 TCP_STAT(tcp_timermp_allocdblfail); 25528 mp = kmem_alloc_tryhard(sizeof (mblk_t) + 25529 sizeof (tcp_timer_t), &size, kmflags); 25530 mp->b_rptr = (uchar_t *)(&mp[1]); 25531 mp->b_next = mp->b_prev = NULL; 25532 mp->b_wptr = (uchar_t *)-1; 25533 mp->b_datap = (dblk_t *)size; 25534 mp->b_queue = NULL; 25535 } 25536 ASSERT(mp->b_wptr != NULL); 25537 } 25538 TCP_DBGSTAT(tcp_timermp_alloced); 25539 25540 return (mp); 25541 } 25542 25543 /* 25544 * Free per-tcp timer cache. 25545 * It can only contain entries from tcp_timercache. 25546 */ 25547 void 25548 tcp_timermp_free(tcp_t *tcp) 25549 { 25550 mblk_t *mp; 25551 25552 while ((mp = tcp->tcp_timercache) != NULL) { 25553 ASSERT(mp->b_wptr == NULL); 25554 tcp->tcp_timercache = tcp->tcp_timercache->b_next; 25555 kmem_cache_free(tcp_timercache, mp); 25556 } 25557 } 25558 25559 /* 25560 * Free timer event. Put it on the per-tcp timer cache if there is not too many 25561 * events there already (currently at most two events are cached). 25562 * If the event is not allocated from the timer cache, free it right away. 25563 */ 25564 static void 25565 tcp_timer_free(tcp_t *tcp, mblk_t *mp) 25566 { 25567 mblk_t *mp1 = tcp->tcp_timercache; 25568 25569 if (mp->b_wptr != NULL) { 25570 /* 25571 * This allocation is not from a timer cache, free it right 25572 * away. 25573 */ 25574 if (mp->b_wptr != (uchar_t *)-1) 25575 freeb(mp); 25576 else 25577 kmem_free(mp, (size_t)mp->b_datap); 25578 } else if (mp1 == NULL || mp1->b_next == NULL) { 25579 /* Cache this timer block for future allocations */ 25580 mp->b_rptr = (uchar_t *)(&mp[1]); 25581 mp->b_next = mp1; 25582 tcp->tcp_timercache = mp; 25583 } else { 25584 kmem_cache_free(tcp_timercache, mp); 25585 TCP_DBGSTAT(tcp_timermp_freed); 25586 } 25587 } 25588 25589 /* 25590 * End of TCP Timers implementation. 25591 */ 25592 25593 /* 25594 * tcp_{set,clr}qfull() functions are used to either set or clear QFULL 25595 * on the specified backing STREAMS q. Note, the caller may make the 25596 * decision to call based on the tcp_t.tcp_flow_stopped value which 25597 * when check outside the q's lock is only an advisory check ... 25598 */ 25599 25600 void 25601 tcp_setqfull(tcp_t *tcp) 25602 { 25603 queue_t *q = tcp->tcp_wq; 25604 25605 if (!(q->q_flag & QFULL)) { 25606 mutex_enter(QLOCK(q)); 25607 if (!(q->q_flag & QFULL)) { 25608 /* still need to set QFULL */ 25609 q->q_flag |= QFULL; 25610 tcp->tcp_flow_stopped = B_TRUE; 25611 mutex_exit(QLOCK(q)); 25612 TCP_STAT(tcp_flwctl_on); 25613 } else { 25614 mutex_exit(QLOCK(q)); 25615 } 25616 } 25617 } 25618 25619 void 25620 tcp_clrqfull(tcp_t *tcp) 25621 { 25622 queue_t *q = tcp->tcp_wq; 25623 25624 if (q->q_flag & QFULL) { 25625 mutex_enter(QLOCK(q)); 25626 if (q->q_flag & QFULL) { 25627 q->q_flag &= ~QFULL; 25628 tcp->tcp_flow_stopped = B_FALSE; 25629 mutex_exit(QLOCK(q)); 25630 if (q->q_flag & QWANTW) 25631 qbackenable(q, 0); 25632 } else { 25633 mutex_exit(QLOCK(q)); 25634 } 25635 } 25636 } 25637 25638 /* 25639 * TCP Kstats implementation 25640 */ 25641 static void 25642 tcp_kstat_init(void) 25643 { 25644 tcp_named_kstat_t template = { 25645 { "rtoAlgorithm", KSTAT_DATA_INT32, 0 }, 25646 { "rtoMin", KSTAT_DATA_INT32, 0 }, 25647 { "rtoMax", KSTAT_DATA_INT32, 0 }, 25648 { "maxConn", KSTAT_DATA_INT32, 0 }, 25649 { "activeOpens", KSTAT_DATA_UINT32, 0 }, 25650 { "passiveOpens", KSTAT_DATA_UINT32, 0 }, 25651 { "attemptFails", KSTAT_DATA_UINT32, 0 }, 25652 { "estabResets", KSTAT_DATA_UINT32, 0 }, 25653 { "currEstab", KSTAT_DATA_UINT32, 0 }, 25654 { "inSegs", KSTAT_DATA_UINT32, 0 }, 25655 { "outSegs", KSTAT_DATA_UINT32, 0 }, 25656 { "retransSegs", KSTAT_DATA_UINT32, 0 }, 25657 { "connTableSize", KSTAT_DATA_INT32, 0 }, 25658 { "outRsts", KSTAT_DATA_UINT32, 0 }, 25659 { "outDataSegs", KSTAT_DATA_UINT32, 0 }, 25660 { "outDataBytes", KSTAT_DATA_UINT32, 0 }, 25661 { "retransBytes", KSTAT_DATA_UINT32, 0 }, 25662 { "outAck", KSTAT_DATA_UINT32, 0 }, 25663 { "outAckDelayed", KSTAT_DATA_UINT32, 0 }, 25664 { "outUrg", KSTAT_DATA_UINT32, 0 }, 25665 { "outWinUpdate", KSTAT_DATA_UINT32, 0 }, 25666 { "outWinProbe", KSTAT_DATA_UINT32, 0 }, 25667 { "outControl", KSTAT_DATA_UINT32, 0 }, 25668 { "outFastRetrans", KSTAT_DATA_UINT32, 0 }, 25669 { "inAckSegs", KSTAT_DATA_UINT32, 0 }, 25670 { "inAckBytes", KSTAT_DATA_UINT32, 0 }, 25671 { "inDupAck", KSTAT_DATA_UINT32, 0 }, 25672 { "inAckUnsent", KSTAT_DATA_UINT32, 0 }, 25673 { "inDataInorderSegs", KSTAT_DATA_UINT32, 0 }, 25674 { "inDataInorderBytes", KSTAT_DATA_UINT32, 0 }, 25675 { "inDataUnorderSegs", KSTAT_DATA_UINT32, 0 }, 25676 { "inDataUnorderBytes", KSTAT_DATA_UINT32, 0 }, 25677 { "inDataDupSegs", KSTAT_DATA_UINT32, 0 }, 25678 { "inDataDupBytes", KSTAT_DATA_UINT32, 0 }, 25679 { "inDataPartDupSegs", KSTAT_DATA_UINT32, 0 }, 25680 { "inDataPartDupBytes", KSTAT_DATA_UINT32, 0 }, 25681 { "inDataPastWinSegs", KSTAT_DATA_UINT32, 0 }, 25682 { "inDataPastWinBytes", KSTAT_DATA_UINT32, 0 }, 25683 { "inWinProbe", KSTAT_DATA_UINT32, 0 }, 25684 { "inWinUpdate", KSTAT_DATA_UINT32, 0 }, 25685 { "inClosed", KSTAT_DATA_UINT32, 0 }, 25686 { "rttUpdate", KSTAT_DATA_UINT32, 0 }, 25687 { "rttNoUpdate", KSTAT_DATA_UINT32, 0 }, 25688 { "timRetrans", KSTAT_DATA_UINT32, 0 }, 25689 { "timRetransDrop", KSTAT_DATA_UINT32, 0 }, 25690 { "timKeepalive", KSTAT_DATA_UINT32, 0 }, 25691 { "timKeepaliveProbe", KSTAT_DATA_UINT32, 0 }, 25692 { "timKeepaliveDrop", KSTAT_DATA_UINT32, 0 }, 25693 { "listenDrop", KSTAT_DATA_UINT32, 0 }, 25694 { "listenDropQ0", KSTAT_DATA_UINT32, 0 }, 25695 { "halfOpenDrop", KSTAT_DATA_UINT32, 0 }, 25696 { "outSackRetransSegs", KSTAT_DATA_UINT32, 0 }, 25697 { "connTableSize6", KSTAT_DATA_INT32, 0 } 25698 }; 25699 25700 tcp_mibkp = kstat_create(TCP_MOD_NAME, 0, TCP_MOD_NAME, 25701 "mib2", KSTAT_TYPE_NAMED, NUM_OF_FIELDS(tcp_named_kstat_t), 0); 25702 25703 if (tcp_mibkp == NULL) 25704 return; 25705 25706 template.rtoAlgorithm.value.ui32 = 4; 25707 template.rtoMin.value.ui32 = tcp_rexmit_interval_min; 25708 template.rtoMax.value.ui32 = tcp_rexmit_interval_max; 25709 template.maxConn.value.i32 = -1; 25710 25711 bcopy(&template, tcp_mibkp->ks_data, sizeof (template)); 25712 25713 tcp_mibkp->ks_update = tcp_kstat_update; 25714 25715 kstat_install(tcp_mibkp); 25716 } 25717 25718 static void 25719 tcp_kstat_fini(void) 25720 { 25721 25722 if (tcp_mibkp != NULL) { 25723 kstat_delete(tcp_mibkp); 25724 tcp_mibkp = NULL; 25725 } 25726 } 25727 25728 static int 25729 tcp_kstat_update(kstat_t *kp, int rw) 25730 { 25731 tcp_named_kstat_t *tcpkp; 25732 tcp_t *tcp; 25733 connf_t *connfp; 25734 conn_t *connp; 25735 int i; 25736 25737 if (!kp || !kp->ks_data) 25738 return (EIO); 25739 25740 if (rw == KSTAT_WRITE) 25741 return (EACCES); 25742 25743 tcpkp = (tcp_named_kstat_t *)kp->ks_data; 25744 25745 tcpkp->currEstab.value.ui32 = 0; 25746 25747 for (i = 0; i < CONN_G_HASH_SIZE; i++) { 25748 connfp = &ipcl_globalhash_fanout[i]; 25749 connp = NULL; 25750 while ((connp = 25751 ipcl_get_next_conn(connfp, connp, IPCL_TCP)) != NULL) { 25752 tcp = connp->conn_tcp; 25753 switch (tcp_snmp_state(tcp)) { 25754 case MIB2_TCP_established: 25755 case MIB2_TCP_closeWait: 25756 tcpkp->currEstab.value.ui32++; 25757 break; 25758 } 25759 } 25760 } 25761 25762 tcpkp->activeOpens.value.ui32 = tcp_mib.tcpActiveOpens; 25763 tcpkp->passiveOpens.value.ui32 = tcp_mib.tcpPassiveOpens; 25764 tcpkp->attemptFails.value.ui32 = tcp_mib.tcpAttemptFails; 25765 tcpkp->estabResets.value.ui32 = tcp_mib.tcpEstabResets; 25766 tcpkp->inSegs.value.ui32 = tcp_mib.tcpInSegs; 25767 tcpkp->outSegs.value.ui32 = tcp_mib.tcpOutSegs; 25768 tcpkp->retransSegs.value.ui32 = tcp_mib.tcpRetransSegs; 25769 tcpkp->connTableSize.value.i32 = tcp_mib.tcpConnTableSize; 25770 tcpkp->outRsts.value.ui32 = tcp_mib.tcpOutRsts; 25771 tcpkp->outDataSegs.value.ui32 = tcp_mib.tcpOutDataSegs; 25772 tcpkp->outDataBytes.value.ui32 = tcp_mib.tcpOutDataBytes; 25773 tcpkp->retransBytes.value.ui32 = tcp_mib.tcpRetransBytes; 25774 tcpkp->outAck.value.ui32 = tcp_mib.tcpOutAck; 25775 tcpkp->outAckDelayed.value.ui32 = tcp_mib.tcpOutAckDelayed; 25776 tcpkp->outUrg.value.ui32 = tcp_mib.tcpOutUrg; 25777 tcpkp->outWinUpdate.value.ui32 = tcp_mib.tcpOutWinUpdate; 25778 tcpkp->outWinProbe.value.ui32 = tcp_mib.tcpOutWinProbe; 25779 tcpkp->outControl.value.ui32 = tcp_mib.tcpOutControl; 25780 tcpkp->outFastRetrans.value.ui32 = tcp_mib.tcpOutFastRetrans; 25781 tcpkp->inAckSegs.value.ui32 = tcp_mib.tcpInAckSegs; 25782 tcpkp->inAckBytes.value.ui32 = tcp_mib.tcpInAckBytes; 25783 tcpkp->inDupAck.value.ui32 = tcp_mib.tcpInDupAck; 25784 tcpkp->inAckUnsent.value.ui32 = tcp_mib.tcpInAckUnsent; 25785 tcpkp->inDataInorderSegs.value.ui32 = tcp_mib.tcpInDataInorderSegs; 25786 tcpkp->inDataInorderBytes.value.ui32 = tcp_mib.tcpInDataInorderBytes; 25787 tcpkp->inDataUnorderSegs.value.ui32 = tcp_mib.tcpInDataUnorderSegs; 25788 tcpkp->inDataUnorderBytes.value.ui32 = tcp_mib.tcpInDataUnorderBytes; 25789 tcpkp->inDataDupSegs.value.ui32 = tcp_mib.tcpInDataDupSegs; 25790 tcpkp->inDataDupBytes.value.ui32 = tcp_mib.tcpInDataDupBytes; 25791 tcpkp->inDataPartDupSegs.value.ui32 = tcp_mib.tcpInDataPartDupSegs; 25792 tcpkp->inDataPartDupBytes.value.ui32 = tcp_mib.tcpInDataPartDupBytes; 25793 tcpkp->inDataPastWinSegs.value.ui32 = tcp_mib.tcpInDataPastWinSegs; 25794 tcpkp->inDataPastWinBytes.value.ui32 = tcp_mib.tcpInDataPastWinBytes; 25795 tcpkp->inWinProbe.value.ui32 = tcp_mib.tcpInWinProbe; 25796 tcpkp->inWinUpdate.value.ui32 = tcp_mib.tcpInWinUpdate; 25797 tcpkp->inClosed.value.ui32 = tcp_mib.tcpInClosed; 25798 tcpkp->rttNoUpdate.value.ui32 = tcp_mib.tcpRttNoUpdate; 25799 tcpkp->rttUpdate.value.ui32 = tcp_mib.tcpRttUpdate; 25800 tcpkp->timRetrans.value.ui32 = tcp_mib.tcpTimRetrans; 25801 tcpkp->timRetransDrop.value.ui32 = tcp_mib.tcpTimRetransDrop; 25802 tcpkp->timKeepalive.value.ui32 = tcp_mib.tcpTimKeepalive; 25803 tcpkp->timKeepaliveProbe.value.ui32 = tcp_mib.tcpTimKeepaliveProbe; 25804 tcpkp->timKeepaliveDrop.value.ui32 = tcp_mib.tcpTimKeepaliveDrop; 25805 tcpkp->listenDrop.value.ui32 = tcp_mib.tcpListenDrop; 25806 tcpkp->listenDropQ0.value.ui32 = tcp_mib.tcpListenDropQ0; 25807 tcpkp->halfOpenDrop.value.ui32 = tcp_mib.tcpHalfOpenDrop; 25808 tcpkp->outSackRetransSegs.value.ui32 = tcp_mib.tcpOutSackRetransSegs; 25809 tcpkp->connTableSize6.value.i32 = tcp_mib.tcp6ConnTableSize; 25810 25811 return (0); 25812 } 25813 25814 void 25815 tcp_reinput(conn_t *connp, mblk_t *mp, squeue_t *sqp) 25816 { 25817 uint16_t hdr_len; 25818 ipha_t *ipha; 25819 uint8_t *nexthdrp; 25820 tcph_t *tcph; 25821 25822 /* Already has an eager */ 25823 if ((mp->b_datap->db_struioflag & STRUIO_EAGER) != 0) { 25824 TCP_STAT(tcp_reinput_syn); 25825 squeue_enter(connp->conn_sqp, mp, connp->conn_recv, 25826 connp, SQTAG_TCP_REINPUT_EAGER); 25827 return; 25828 } 25829 25830 switch (IPH_HDR_VERSION(mp->b_rptr)) { 25831 case IPV4_VERSION: 25832 ipha = (ipha_t *)mp->b_rptr; 25833 hdr_len = IPH_HDR_LENGTH(ipha); 25834 break; 25835 case IPV6_VERSION: 25836 if (!ip_hdr_length_nexthdr_v6(mp, (ip6_t *)mp->b_rptr, 25837 &hdr_len, &nexthdrp)) { 25838 CONN_DEC_REF(connp); 25839 freemsg(mp); 25840 return; 25841 } 25842 break; 25843 } 25844 25845 tcph = (tcph_t *)&mp->b_rptr[hdr_len]; 25846 if ((tcph->th_flags[0] & (TH_SYN|TH_ACK|TH_RST|TH_URG)) == TH_SYN) { 25847 mp->b_datap->db_struioflag |= STRUIO_EAGER; 25848 DB_CKSUMSTART(mp) = (intptr_t)sqp; 25849 } 25850 25851 squeue_fill(connp->conn_sqp, mp, connp->conn_recv, connp, 25852 SQTAG_TCP_REINPUT); 25853 } 25854 25855 static squeue_func_t 25856 tcp_squeue_switch(int val) 25857 { 25858 squeue_func_t rval = squeue_fill; 25859 25860 switch (val) { 25861 case 1: 25862 rval = squeue_enter_nodrain; 25863 break; 25864 case 2: 25865 rval = squeue_enter; 25866 break; 25867 default: 25868 break; 25869 } 25870 return (rval); 25871 } 25872 25873 static void 25874 tcp_squeue_add(squeue_t *sqp) 25875 { 25876 tcp_squeue_priv_t *tcp_time_wait = kmem_zalloc( 25877 sizeof (tcp_squeue_priv_t), KM_SLEEP); 25878 25879 *squeue_getprivate(sqp, SQPRIVATE_TCP) = (intptr_t)tcp_time_wait; 25880 tcp_time_wait->tcp_time_wait_tid = timeout(tcp_time_wait_collector, 25881 sqp, TCP_TIME_WAIT_DELAY); 25882 if (tcp_free_list_max_cnt == 0) { 25883 int tcp_ncpus = ((boot_max_ncpus == -1) ? 25884 max_ncpus : boot_max_ncpus); 25885 25886 /* 25887 * Limit number of entries to 1% of availble memory / tcp_ncpus 25888 */ 25889 tcp_free_list_max_cnt = (freemem * PAGESIZE) / 25890 (tcp_ncpus * sizeof (tcp_t) * 100); 25891 } 25892 tcp_time_wait->tcp_free_list_cnt = 0; 25893 } 25894