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 2010 Sun Microsystems, Inc. All rights reserved. 24 * Use is subject to license terms. 25 */ 26 /* Copyright (c) 1990 Mentat Inc. */ 27 28 #ifndef _INET_IP_H 29 #define _INET_IP_H 30 31 #ifdef __cplusplus 32 extern "C" { 33 #endif 34 35 #include <sys/isa_defs.h> 36 #include <sys/types.h> 37 #include <inet/mib2.h> 38 #include <inet/nd.h> 39 #include <sys/atomic.h> 40 #include <net/if_dl.h> 41 #include <net/if.h> 42 #include <netinet/ip.h> 43 #include <netinet/igmp.h> 44 #include <sys/neti.h> 45 #include <sys/hook.h> 46 #include <sys/hook_event.h> 47 #include <sys/hook_impl.h> 48 #include <inet/ip_stack.h> 49 50 #ifdef _KERNEL 51 #include <netinet/ip6.h> 52 #include <sys/avl.h> 53 #include <sys/list.h> 54 #include <sys/vmem.h> 55 #include <sys/squeue.h> 56 #include <net/route.h> 57 #include <sys/systm.h> 58 #include <net/radix.h> 59 #include <sys/modhash.h> 60 61 #ifdef DEBUG 62 #define CONN_DEBUG 63 #endif 64 65 #define IP_DEBUG 66 /* 67 * The mt-streams(9F) flags for the IP module; put here so that other 68 * "drivers" that are actually IP (e.g., ICMP, UDP) can use the same set 69 * of flags. 70 */ 71 #define IP_DEVMTFLAGS D_MP 72 #endif /* _KERNEL */ 73 74 #define IP_MOD_NAME "ip" 75 #define IP_DEV_NAME "/dev/ip" 76 #define IP6_DEV_NAME "/dev/ip6" 77 78 #define UDP_MOD_NAME "udp" 79 #define UDP_DEV_NAME "/dev/udp" 80 #define UDP6_DEV_NAME "/dev/udp6" 81 82 #define TCP_MOD_NAME "tcp" 83 #define TCP_DEV_NAME "/dev/tcp" 84 #define TCP6_DEV_NAME "/dev/tcp6" 85 86 #define SCTP_MOD_NAME "sctp" 87 88 #ifndef _IPADDR_T 89 #define _IPADDR_T 90 typedef uint32_t ipaddr_t; 91 #endif 92 93 /* Number of bits in an address */ 94 #define IP_ABITS 32 95 #define IPV4_ABITS IP_ABITS 96 #define IPV6_ABITS 128 97 98 #define IP_HOST_MASK (ipaddr_t)0xffffffffU 99 100 #define IP_CSUM(mp, off, sum) (~ip_cksum(mp, off, sum) & 0xFFFF) 101 #define IP_CSUM_PARTIAL(mp, off, sum) ip_cksum(mp, off, sum) 102 #define IP_BCSUM_PARTIAL(bp, len, sum) bcksum(bp, len, sum) 103 104 #define ILL_FRAG_HASH_TBL_COUNT ((unsigned int)64) 105 #define ILL_FRAG_HASH_TBL_SIZE (ILL_FRAG_HASH_TBL_COUNT * sizeof (ipfb_t)) 106 107 #define IPV4_ADDR_LEN 4 108 #define IP_ADDR_LEN IPV4_ADDR_LEN 109 #define IP_ARP_PROTO_TYPE 0x0800 110 111 #define IPV4_VERSION 4 112 #define IP_VERSION IPV4_VERSION 113 #define IP_SIMPLE_HDR_LENGTH_IN_WORDS 5 114 #define IP_SIMPLE_HDR_LENGTH 20 115 #define IP_MAX_HDR_LENGTH 60 116 117 #define IP_MAX_OPT_LENGTH (IP_MAX_HDR_LENGTH-IP_SIMPLE_HDR_LENGTH) 118 119 #define IP_MIN_MTU (IP_MAX_HDR_LENGTH + 8) /* 68 bytes */ 120 121 /* 122 * XXX IP_MAXPACKET is defined in <netinet/ip.h> as well. At some point the 123 * 2 files should be cleaned up to remove all redundant definitions. 124 */ 125 #define IP_MAXPACKET 65535 126 #define IP_SIMPLE_HDR_VERSION \ 127 ((IP_VERSION << 4) | IP_SIMPLE_HDR_LENGTH_IN_WORDS) 128 129 #define UDPH_SIZE 8 130 131 /* 132 * Constants and type definitions to support IP IOCTL commands 133 */ 134 #define IP_IOCTL (('i'<<8)|'p') 135 #define IP_IOC_IRE_DELETE 4 136 #define IP_IOC_IRE_DELETE_NO_REPLY 5 137 #define IP_IOC_RTS_REQUEST 7 138 139 /* Common definitions used by IP IOCTL data structures */ 140 typedef struct ipllcmd_s { 141 uint_t ipllc_cmd; 142 uint_t ipllc_name_offset; 143 uint_t ipllc_name_length; 144 } ipllc_t; 145 146 /* IP IRE Delete Command Structure. */ 147 typedef struct ipid_s { 148 ipllc_t ipid_ipllc; 149 uint_t ipid_ire_type; 150 uint_t ipid_addr_offset; 151 uint_t ipid_addr_length; 152 uint_t ipid_mask_offset; 153 uint_t ipid_mask_length; 154 } ipid_t; 155 156 #define ipid_cmd ipid_ipllc.ipllc_cmd 157 158 #ifdef _KERNEL 159 /* 160 * Temporary state for ip options parser. 161 */ 162 typedef struct ipoptp_s 163 { 164 uint8_t *ipoptp_next; /* next option to look at */ 165 uint8_t *ipoptp_end; /* end of options */ 166 uint8_t *ipoptp_cur; /* start of current option */ 167 uint8_t ipoptp_len; /* length of current option */ 168 uint32_t ipoptp_flags; 169 } ipoptp_t; 170 171 /* 172 * Flag(s) for ipoptp_flags 173 */ 174 #define IPOPTP_ERROR 0x00000001 175 #endif /* _KERNEL */ 176 177 /* Controls forwarding of IP packets, set via ndd */ 178 #define IP_FORWARD_NEVER 0 179 #define IP_FORWARD_ALWAYS 1 180 181 #define WE_ARE_FORWARDING(ipst) ((ipst)->ips_ip_g_forward == IP_FORWARD_ALWAYS) 182 183 #define IPH_HDR_LENGTH(ipha) \ 184 ((int)(((ipha_t *)ipha)->ipha_version_and_hdr_length & 0xF) << 2) 185 186 #define IPH_HDR_VERSION(ipha) \ 187 ((int)(((ipha_t *)ipha)->ipha_version_and_hdr_length) >> 4) 188 189 #ifdef _KERNEL 190 /* 191 * IP reassembly macros. We hide starting and ending offsets in b_next and 192 * b_prev of messages on the reassembly queue. The messages are chained using 193 * b_cont. These macros are used in ip_reassemble() so we don't have to see 194 * the ugly casts and assignments. 195 * Note that the offsets are <= 64k i.e. a uint_t is sufficient to represent 196 * them. 197 */ 198 #define IP_REASS_START(mp) ((uint_t)(uintptr_t)((mp)->b_next)) 199 #define IP_REASS_SET_START(mp, u) \ 200 ((mp)->b_next = (mblk_t *)(uintptr_t)(u)) 201 #define IP_REASS_END(mp) ((uint_t)(uintptr_t)((mp)->b_prev)) 202 #define IP_REASS_SET_END(mp, u) \ 203 ((mp)->b_prev = (mblk_t *)(uintptr_t)(u)) 204 205 #define IP_REASS_COMPLETE 0x1 206 #define IP_REASS_PARTIAL 0x2 207 #define IP_REASS_FAILED 0x4 208 209 /* 210 * Test to determine whether this is a module instance of IP or a 211 * driver instance of IP. 212 */ 213 #define CONN_Q(q) (WR(q)->q_next == NULL) 214 215 #define Q_TO_CONN(q) ((conn_t *)(q)->q_ptr) 216 #define Q_TO_TCP(q) (Q_TO_CONN((q))->conn_tcp) 217 #define Q_TO_UDP(q) (Q_TO_CONN((q))->conn_udp) 218 #define Q_TO_ICMP(q) (Q_TO_CONN((q))->conn_icmp) 219 #define Q_TO_RTS(q) (Q_TO_CONN((q))->conn_rts) 220 221 #define CONNP_TO_WQ(connp) ((connp)->conn_wq) 222 #define CONNP_TO_RQ(connp) ((connp)->conn_rq) 223 224 #define GRAB_CONN_LOCK(q) { \ 225 if (q != NULL && CONN_Q(q)) \ 226 mutex_enter(&(Q_TO_CONN(q))->conn_lock); \ 227 } 228 229 #define RELEASE_CONN_LOCK(q) { \ 230 if (q != NULL && CONN_Q(q)) \ 231 mutex_exit(&(Q_TO_CONN(q))->conn_lock); \ 232 } 233 234 /* 235 * Ref counter macros for ioctls. This provides a guard for TCP to stop 236 * tcp_close from removing the rq/wq whilst an ioctl is still in flight on the 237 * stream. The ioctl could have been queued on e.g. an ipsq. tcp_close will wait 238 * until the ioctlref count is zero before proceeding. 239 * Ideally conn_oper_pending_ill would be used for this purpose. However, in the 240 * case where an ioctl is aborted or interrupted, it can be cleared prematurely. 241 * There are also some race possibilities between ip and the stream head which 242 * can also end up with conn_oper_pending_ill being cleared prematurely. So, to 243 * avoid these situations, we use a dedicated ref counter for ioctls which is 244 * used in addition to and in parallel with the normal conn_ref count. 245 */ 246 #define CONN_INC_IOCTLREF_LOCKED(connp) { \ 247 ASSERT(MUTEX_HELD(&(connp)->conn_lock)); \ 248 DTRACE_PROBE1(conn__inc__ioctlref, conn_t *, (connp)); \ 249 (connp)->conn_ioctlref++; \ 250 mutex_exit(&(connp)->conn_lock); \ 251 } 252 253 #define CONN_INC_IOCTLREF(connp) { \ 254 mutex_enter(&(connp)->conn_lock); \ 255 CONN_INC_IOCTLREF_LOCKED(connp); \ 256 } 257 258 #define CONN_DEC_IOCTLREF(connp) { \ 259 mutex_enter(&(connp)->conn_lock); \ 260 DTRACE_PROBE1(conn__dec__ioctlref, conn_t *, (connp)); \ 261 /* Make sure conn_ioctlref will not underflow. */ \ 262 ASSERT((connp)->conn_ioctlref != 0); \ 263 if ((--(connp)->conn_ioctlref == 0) && \ 264 ((connp)->conn_state_flags & CONN_CLOSING)) { \ 265 cv_broadcast(&(connp)->conn_cv); \ 266 } \ 267 mutex_exit(&(connp)->conn_lock); \ 268 } 269 270 271 /* 272 * Complete the pending operation. Usually an ioctl. Can also 273 * be a bind or option management request that got enqueued 274 * in an ipsq_t. Called on completion of the operation. 275 */ 276 #define CONN_OPER_PENDING_DONE(connp) { \ 277 mutex_enter(&(connp)->conn_lock); \ 278 (connp)->conn_oper_pending_ill = NULL; \ 279 cv_broadcast(&(connp)->conn_refcv); \ 280 mutex_exit(&(connp)->conn_lock); \ 281 CONN_DEC_REF(connp); \ 282 } 283 284 /* 285 * Values for squeue switch: 286 */ 287 #define IP_SQUEUE_ENTER_NODRAIN 1 288 #define IP_SQUEUE_ENTER 2 289 #define IP_SQUEUE_FILL 3 290 291 extern int ip_squeue_flag; 292 293 /* IP Fragmentation Reassembly Header */ 294 typedef struct ipf_s { 295 struct ipf_s *ipf_hash_next; 296 struct ipf_s **ipf_ptphn; /* Pointer to previous hash next. */ 297 uint32_t ipf_ident; /* Ident to match. */ 298 uint8_t ipf_protocol; /* Protocol to match. */ 299 uchar_t ipf_last_frag_seen : 1; /* Last fragment seen ? */ 300 time_t ipf_timestamp; /* Reassembly start time. */ 301 mblk_t *ipf_mp; /* mblk we live in. */ 302 mblk_t *ipf_tail_mp; /* Frag queue tail pointer. */ 303 int ipf_hole_cnt; /* Number of holes (hard-case). */ 304 int ipf_end; /* Tail end offset (0 -> hard-case). */ 305 uint_t ipf_gen; /* Frag queue generation */ 306 size_t ipf_count; /* Count of bytes used by frag */ 307 uint_t ipf_nf_hdr_len; /* Length of nonfragmented header */ 308 in6_addr_t ipf_v6src; /* IPv6 source address */ 309 in6_addr_t ipf_v6dst; /* IPv6 dest address */ 310 uint_t ipf_prev_nexthdr_offset; /* Offset for nexthdr value */ 311 uint8_t ipf_ecn; /* ECN info for the fragments */ 312 uint8_t ipf_num_dups; /* Number of times dup frags recvd */ 313 uint16_t ipf_checksum_flags; /* Hardware checksum flags */ 314 uint32_t ipf_checksum; /* Partial checksum of fragment data */ 315 } ipf_t; 316 317 /* 318 * IPv4 Fragments 319 */ 320 #define IS_V4_FRAGMENT(ipha_fragment_offset_and_flags) \ 321 (((ntohs(ipha_fragment_offset_and_flags) & IPH_OFFSET) != 0) || \ 322 ((ntohs(ipha_fragment_offset_and_flags) & IPH_MF) != 0)) 323 324 #define ipf_src V4_PART_OF_V6(ipf_v6src) 325 #define ipf_dst V4_PART_OF_V6(ipf_v6dst) 326 327 #endif /* _KERNEL */ 328 329 /* ICMP types */ 330 #define ICMP_ECHO_REPLY 0 331 #define ICMP_DEST_UNREACHABLE 3 332 #define ICMP_SOURCE_QUENCH 4 333 #define ICMP_REDIRECT 5 334 #define ICMP_ECHO_REQUEST 8 335 #define ICMP_ROUTER_ADVERTISEMENT 9 336 #define ICMP_ROUTER_SOLICITATION 10 337 #define ICMP_TIME_EXCEEDED 11 338 #define ICMP_PARAM_PROBLEM 12 339 #define ICMP_TIME_STAMP_REQUEST 13 340 #define ICMP_TIME_STAMP_REPLY 14 341 #define ICMP_INFO_REQUEST 15 342 #define ICMP_INFO_REPLY 16 343 #define ICMP_ADDRESS_MASK_REQUEST 17 344 #define ICMP_ADDRESS_MASK_REPLY 18 345 346 /* Evaluates to true if the ICMP type is an ICMP error */ 347 #define ICMP_IS_ERROR(type) ( \ 348 (type) == ICMP_DEST_UNREACHABLE || \ 349 (type) == ICMP_SOURCE_QUENCH || \ 350 (type) == ICMP_TIME_EXCEEDED || \ 351 (type) == ICMP_PARAM_PROBLEM) 352 353 /* ICMP_TIME_EXCEEDED codes */ 354 #define ICMP_TTL_EXCEEDED 0 355 #define ICMP_REASSEMBLY_TIME_EXCEEDED 1 356 357 /* ICMP_DEST_UNREACHABLE codes */ 358 #define ICMP_NET_UNREACHABLE 0 359 #define ICMP_HOST_UNREACHABLE 1 360 #define ICMP_PROTOCOL_UNREACHABLE 2 361 #define ICMP_PORT_UNREACHABLE 3 362 #define ICMP_FRAGMENTATION_NEEDED 4 363 #define ICMP_SOURCE_ROUTE_FAILED 5 364 #define ICMP_DEST_NET_UNKNOWN 6 365 #define ICMP_DEST_HOST_UNKNOWN 7 366 #define ICMP_SRC_HOST_ISOLATED 8 367 #define ICMP_DEST_NET_UNREACH_ADMIN 9 368 #define ICMP_DEST_HOST_UNREACH_ADMIN 10 369 #define ICMP_DEST_NET_UNREACH_TOS 11 370 #define ICMP_DEST_HOST_UNREACH_TOS 12 371 372 /* ICMP Header Structure */ 373 typedef struct icmph_s { 374 uint8_t icmph_type; 375 uint8_t icmph_code; 376 uint16_t icmph_checksum; 377 union { 378 struct { /* ECHO request/response structure */ 379 uint16_t u_echo_ident; 380 uint16_t u_echo_seqnum; 381 } u_echo; 382 struct { /* Destination unreachable structure */ 383 uint16_t u_du_zero; 384 uint16_t u_du_mtu; 385 } u_du; 386 struct { /* Parameter problem structure */ 387 uint8_t u_pp_ptr; 388 uint8_t u_pp_rsvd[3]; 389 } u_pp; 390 struct { /* Redirect structure */ 391 ipaddr_t u_rd_gateway; 392 } u_rd; 393 } icmph_u; 394 } icmph_t; 395 396 #define icmph_echo_ident icmph_u.u_echo.u_echo_ident 397 #define icmph_echo_seqnum icmph_u.u_echo.u_echo_seqnum 398 #define icmph_du_zero icmph_u.u_du.u_du_zero 399 #define icmph_du_mtu icmph_u.u_du.u_du_mtu 400 #define icmph_pp_ptr icmph_u.u_pp.u_pp_ptr 401 #define icmph_rd_gateway icmph_u.u_rd.u_rd_gateway 402 403 #define ICMPH_SIZE 8 404 405 /* 406 * Minimum length of transport layer header included in an ICMP error 407 * message for it to be considered valid. 408 */ 409 #define ICMP_MIN_TP_HDR_LEN 8 410 411 /* Aligned IP header */ 412 typedef struct ipha_s { 413 uint8_t ipha_version_and_hdr_length; 414 uint8_t ipha_type_of_service; 415 uint16_t ipha_length; 416 uint16_t ipha_ident; 417 uint16_t ipha_fragment_offset_and_flags; 418 uint8_t ipha_ttl; 419 uint8_t ipha_protocol; 420 uint16_t ipha_hdr_checksum; 421 ipaddr_t ipha_src; 422 ipaddr_t ipha_dst; 423 } ipha_t; 424 425 /* 426 * IP Flags 427 * 428 * Some of these constant names are copied for the DTrace IP provider in 429 * usr/src/lib/libdtrace/common/{ip.d.in, ip.sed.in}, which should be kept 430 * in sync. 431 */ 432 #define IPH_DF 0x4000 /* Don't fragment */ 433 #define IPH_MF 0x2000 /* More fragments to come */ 434 #define IPH_OFFSET 0x1FFF /* Where the offset lives */ 435 436 /* Byte-order specific values */ 437 #ifdef _BIG_ENDIAN 438 #define IPH_DF_HTONS 0x4000 /* Don't fragment */ 439 #define IPH_MF_HTONS 0x2000 /* More fragments to come */ 440 #define IPH_OFFSET_HTONS 0x1FFF /* Where the offset lives */ 441 #else 442 #define IPH_DF_HTONS 0x0040 /* Don't fragment */ 443 #define IPH_MF_HTONS 0x0020 /* More fragments to come */ 444 #define IPH_OFFSET_HTONS 0xFF1F /* Where the offset lives */ 445 #endif 446 447 /* ECN code points for IPv4 TOS byte and IPv6 traffic class octet. */ 448 #define IPH_ECN_NECT 0x0 /* Not ECN-Capable Transport */ 449 #define IPH_ECN_ECT1 0x1 /* ECN-Capable Transport, ECT(1) */ 450 #define IPH_ECN_ECT0 0x2 /* ECN-Capable Transport, ECT(0) */ 451 #define IPH_ECN_CE 0x3 /* ECN-Congestion Experienced (CE) */ 452 453 struct ill_s; 454 455 typedef void ip_v6intfid_func_t(struct ill_s *, in6_addr_t *); 456 typedef void ip_v6mapinfo_func_t(struct ill_s *, uchar_t *, uchar_t *); 457 typedef void ip_v4mapinfo_func_t(struct ill_s *, uchar_t *, uchar_t *); 458 459 /* IP Mac info structure */ 460 typedef struct ip_m_s { 461 t_uscalar_t ip_m_mac_type; /* From <sys/dlpi.h> */ 462 int ip_m_type; /* From <net/if_types.h> */ 463 t_uscalar_t ip_m_ipv4sap; 464 t_uscalar_t ip_m_ipv6sap; 465 ip_v4mapinfo_func_t *ip_m_v4mapping; 466 ip_v6mapinfo_func_t *ip_m_v6mapping; 467 ip_v6intfid_func_t *ip_m_v6intfid; 468 ip_v6intfid_func_t *ip_m_v6destintfid; 469 } ip_m_t; 470 471 /* 472 * The following functions attempt to reduce the link layer dependency 473 * of the IP stack. The current set of link specific operations are: 474 * a. map from IPv4 class D (224.0/4) multicast address range or the 475 * IPv6 multicast address range (ff00::/8) to the link layer multicast 476 * address. 477 * b. derive the default IPv6 interface identifier from the interface. 478 * c. derive the default IPv6 destination interface identifier from 479 * the interface (point-to-point only). 480 */ 481 extern void ip_mcast_mapping(struct ill_s *, uchar_t *, uchar_t *); 482 /* ip_m_v6*intfid return void and are never NULL */ 483 #define MEDIA_V6INTFID(ip_m, ill, v6ptr) (ip_m)->ip_m_v6intfid(ill, v6ptr) 484 #define MEDIA_V6DESTINTFID(ip_m, ill, v6ptr) \ 485 (ip_m)->ip_m_v6destintfid(ill, v6ptr) 486 487 /* Router entry types */ 488 #define IRE_BROADCAST 0x0001 /* Route entry for broadcast address */ 489 #define IRE_DEFAULT 0x0002 /* Route entry for default gateway */ 490 #define IRE_LOCAL 0x0004 /* Route entry for local address */ 491 #define IRE_LOOPBACK 0x0008 /* Route entry for loopback address */ 492 #define IRE_PREFIX 0x0010 /* Route entry for prefix routes */ 493 #ifndef _KERNEL 494 /* Keep so user-level still compiles */ 495 #define IRE_CACHE 0x0020 /* Cached Route entry */ 496 #endif 497 #define IRE_IF_NORESOLVER 0x0040 /* Route entry for local interface */ 498 /* net without any address mapping. */ 499 #define IRE_IF_RESOLVER 0x0080 /* Route entry for local interface */ 500 /* net with resolver. */ 501 #define IRE_HOST 0x0100 /* Host route entry */ 502 /* Keep so user-level still compiles */ 503 #define IRE_HOST_REDIRECT 0x0200 /* only used for T_SVR4_OPTMGMT_REQ */ 504 #define IRE_IF_CLONE 0x0400 /* Per host clone of IRE_IF */ 505 #define IRE_MULTICAST 0x0800 /* Special - not in table */ 506 #define IRE_NOROUTE 0x1000 /* Special - not in table */ 507 508 #define IRE_INTERFACE (IRE_IF_NORESOLVER | IRE_IF_RESOLVER) 509 510 #define IRE_IF_ALL (IRE_IF_NORESOLVER | IRE_IF_RESOLVER | \ 511 IRE_IF_CLONE) 512 #define IRE_OFFSUBNET (IRE_DEFAULT | IRE_PREFIX | IRE_HOST) 513 #define IRE_OFFLINK IRE_OFFSUBNET 514 /* 515 * Note that we view IRE_NOROUTE as ONLINK since we can "send" to them without 516 * going through a router; the result of sending will be an error/icmp error. 517 */ 518 #define IRE_ONLINK (IRE_IF_ALL|IRE_LOCAL|IRE_LOOPBACK| \ 519 IRE_BROADCAST|IRE_MULTICAST|IRE_NOROUTE) 520 521 /* Arguments to ire_flush_cache() */ 522 #define IRE_FLUSH_DELETE 0 523 #define IRE_FLUSH_ADD 1 524 #define IRE_FLUSH_GWCHANGE 2 525 526 /* 527 * Flags to ire_route_recursive 528 */ 529 #define IRR_NONE 0 530 #define IRR_ALLOCATE 1 /* OK to allocate IRE_IF_CLONE */ 531 #define IRR_INCOMPLETE 2 /* OK to return incomplete chain */ 532 533 /* 534 * Open/close synchronization flags. 535 * These are kept in a separate field in the conn and the synchronization 536 * depends on the atomic 32 bit access to that field. 537 */ 538 #define CONN_CLOSING 0x01 /* ip_close waiting for ip_wsrv */ 539 #define CONN_CONDEMNED 0x02 /* conn is closing, no more refs */ 540 #define CONN_INCIPIENT 0x04 /* conn not yet visible, no refs */ 541 #define CONN_QUIESCED 0x08 /* conn is now quiescent */ 542 #define CONN_UPDATE_ILL 0x10 /* conn_update_ill in progress */ 543 544 /* 545 * Flags for dce_flags field. Specifies which information has been set. 546 * dce_ident is always present, but the other ones are identified by the flags. 547 */ 548 #define DCEF_DEFAULT 0x0001 /* Default DCE - no pmtu or uinfo */ 549 #define DCEF_PMTU 0x0002 /* Different than interface MTU */ 550 #define DCEF_UINFO 0x0004 /* dce_uinfo set */ 551 #define DCEF_TOO_SMALL_PMTU 0x0008 /* Smaller than IPv4/IPv6 MIN */ 552 553 #ifdef _KERNEL 554 /* 555 * Extra structures need for per-src-addr filtering (IGMPv3/MLDv2) 556 */ 557 #define MAX_FILTER_SIZE 64 558 559 typedef struct slist_s { 560 int sl_numsrc; 561 in6_addr_t sl_addr[MAX_FILTER_SIZE]; 562 } slist_t; 563 564 /* 565 * Following struct is used to maintain retransmission state for 566 * a multicast group. One rtx_state_t struct is an in-line field 567 * of the ilm_t struct; the slist_ts in the rtx_state_t struct are 568 * alloc'd as needed. 569 */ 570 typedef struct rtx_state_s { 571 uint_t rtx_timer; /* retrans timer */ 572 int rtx_cnt; /* retrans count */ 573 int rtx_fmode_cnt; /* retrans count for fmode change */ 574 slist_t *rtx_allow; 575 slist_t *rtx_block; 576 } rtx_state_t; 577 578 /* 579 * Used to construct list of multicast address records that will be 580 * sent in a single listener report. 581 */ 582 typedef struct mrec_s { 583 struct mrec_s *mrec_next; 584 uint8_t mrec_type; 585 uint8_t mrec_auxlen; /* currently unused */ 586 in6_addr_t mrec_group; 587 slist_t mrec_srcs; 588 } mrec_t; 589 590 /* Group membership list per upper conn */ 591 592 /* 593 * We record the multicast information from the socket option in 594 * ilg_ifaddr/ilg_ifindex. This allows rejoining the group in the case when 595 * the ifaddr (or ifindex) disappears and later reappears, potentially on 596 * a different ill. The IPv6 multicast socket options and ioctls all specify 597 * the interface using an ifindex. For IPv4 some socket options/ioctls use 598 * the interface address and others use the index. We record here the method 599 * that was actually used (and leave the other of ilg_ifaddr or ilg_ifindex) 600 * at zero so that we can rejoin the way the application intended. 601 * 602 * We track the ill on which we will or already have joined an ilm using 603 * ilg_ill. When we have succeeded joining the ilm and have a refhold on it 604 * then we set ilg_ilm. Thus intentionally there is a window where ilg_ill is 605 * set and ilg_ilm is not set. This allows clearing ilg_ill as a signal that 606 * the ill is being unplumbed and the ilm should be discarded. 607 * 608 * ilg records the state of multicast memberships of a socket end point. 609 * ilm records the state of multicast memberships with the driver and is 610 * maintained per interface. 611 * 612 * The ilg state is protected by conn_ilg_lock. 613 * The ilg will not be freed until ilg_refcnt drops to zero. 614 */ 615 typedef struct ilg_s { 616 struct ilg_s *ilg_next; 617 struct ilg_s **ilg_ptpn; 618 struct conn_s *ilg_connp; /* Back pointer to get lock */ 619 in6_addr_t ilg_v6group; 620 ipaddr_t ilg_ifaddr; /* For some IPv4 cases */ 621 uint_t ilg_ifindex; /* IPv6 and some other IPv4 cases */ 622 struct ill_s *ilg_ill; /* Where ilm is joined. No refhold */ 623 struct ilm_s *ilg_ilm; /* With ilm_refhold */ 624 uint_t ilg_refcnt; 625 mcast_record_t ilg_fmode; /* MODE_IS_INCLUDE/MODE_IS_EXCLUDE */ 626 slist_t *ilg_filter; 627 boolean_t ilg_condemned; /* Conceptually deleted */ 628 } ilg_t; 629 630 /* 631 * Multicast address list entry for ill. 632 * ilm_ill is used by IPv4 and IPv6 633 * 634 * The ilm state (and other multicast state on the ill) is protected by 635 * ill_mcast_lock. Operations that change state on both an ilg and ilm 636 * in addition use ill_mcast_serializer to ensure that we can't have 637 * interleaving between e.g., add and delete operations for the same conn_t, 638 * group, and ill. 639 * 640 * The comment below (and for other netstack_t references) refers 641 * to the fact that we only do netstack_hold in particular cases, 642 * such as the references from open endpoints (ill_t and conn_t's 643 * pointers). Internally within IP we rely on IP's ability to cleanup e.g. 644 * ire_t's when an ill goes away. 645 */ 646 typedef struct ilm_s { 647 in6_addr_t ilm_v6addr; 648 int ilm_refcnt; 649 uint_t ilm_timer; /* IGMP/MLD query resp timer, in msec */ 650 struct ilm_s *ilm_next; /* Linked list for each ill */ 651 uint_t ilm_state; /* state of the membership */ 652 struct ill_s *ilm_ill; /* Back pointer to ill - ill_ilm_cnt */ 653 zoneid_t ilm_zoneid; 654 int ilm_no_ilg_cnt; /* number of joins w/ no ilg */ 655 mcast_record_t ilm_fmode; /* MODE_IS_INCLUDE/MODE_IS_EXCLUDE */ 656 slist_t *ilm_filter; /* source filter list */ 657 slist_t *ilm_pendsrcs; /* relevant src addrs for pending req */ 658 rtx_state_t ilm_rtx; /* SCR retransmission state */ 659 ipaddr_t ilm_ifaddr; /* For IPv4 netstat */ 660 ip_stack_t *ilm_ipst; /* Does not have a netstack_hold */ 661 } ilm_t; 662 663 #define ilm_addr V4_PART_OF_V6(ilm_v6addr) 664 665 /* 666 * Soft reference to an IPsec SA. 667 * 668 * On relative terms, conn's can be persistent (living as long as the 669 * processes which create them), while SA's are ephemeral (dying when 670 * they hit their time-based or byte-based lifetimes). 671 * 672 * We could hold a hard reference to an SA from an ipsec_latch_t, 673 * but this would cause expired SA's to linger for a potentially 674 * unbounded time. 675 * 676 * Instead, we remember the hash bucket number and bucket generation 677 * in addition to the pointer. The bucket generation is incremented on 678 * each deletion. 679 */ 680 typedef struct ipsa_ref_s 681 { 682 struct ipsa_s *ipsr_sa; 683 struct isaf_s *ipsr_bucket; 684 uint64_t ipsr_gen; 685 } ipsa_ref_t; 686 687 /* 688 * IPsec "latching" state. 689 * 690 * In the presence of IPsec policy, fully-bound conn's bind a connection 691 * to more than just the 5-tuple, but also a specific IPsec action and 692 * identity-pair. 693 * The identity pair is accessed from both the receive and transmit side 694 * hence it is maintained in the ipsec_latch_t structure. conn_latch and 695 * ixa_ipsec_latch points to it. 696 * The policy and actions are stored in conn_latch_in_policy and 697 * conn_latch_in_action for the inbound side, and in ixa_ipsec_policy and 698 * ixa_ipsec_action for the transmit side. 699 * 700 * As an optimization, we also cache soft references to IPsec SA's in 701 * ip_xmit_attr_t so that we can fast-path around most of the work needed for 702 * outbound IPsec SA selection. 703 */ 704 typedef struct ipsec_latch_s 705 { 706 kmutex_t ipl_lock; 707 uint32_t ipl_refcnt; 708 709 struct ipsid_s *ipl_local_cid; 710 struct ipsid_s *ipl_remote_cid; 711 unsigned int 712 ipl_ids_latched : 1, 713 714 ipl_pad_to_bit_31 : 31; 715 } ipsec_latch_t; 716 717 #define IPLATCH_REFHOLD(ipl) { \ 718 atomic_add_32(&(ipl)->ipl_refcnt, 1); \ 719 ASSERT((ipl)->ipl_refcnt != 0); \ 720 } 721 722 #define IPLATCH_REFRELE(ipl) { \ 723 ASSERT((ipl)->ipl_refcnt != 0); \ 724 membar_exit(); \ 725 if (atomic_add_32_nv(&(ipl)->ipl_refcnt, -1) == 0) \ 726 iplatch_free(ipl); \ 727 } 728 729 /* 730 * peer identity structure. 731 */ 732 typedef struct conn_s conn_t; 733 734 /* 735 * This is used to match an inbound/outbound datagram with policy. 736 */ 737 typedef struct ipsec_selector { 738 in6_addr_t ips_local_addr_v6; 739 in6_addr_t ips_remote_addr_v6; 740 uint16_t ips_local_port; 741 uint16_t ips_remote_port; 742 uint8_t ips_icmp_type; 743 uint8_t ips_icmp_code; 744 uint8_t ips_protocol; 745 uint8_t ips_isv4 : 1, 746 ips_is_icmp_inv_acq: 1; 747 } ipsec_selector_t; 748 749 /* 750 * Note that we put v4 addresses in the *first* 32-bit word of the 751 * selector rather than the last to simplify the prefix match/mask code 752 * in spd.c 753 */ 754 #define ips_local_addr_v4 ips_local_addr_v6.s6_addr32[0] 755 #define ips_remote_addr_v4 ips_remote_addr_v6.s6_addr32[0] 756 757 /* Values used in IP by IPSEC Code */ 758 #define IPSEC_OUTBOUND B_TRUE 759 #define IPSEC_INBOUND B_FALSE 760 761 /* 762 * There are two variants in policy failures. The packet may come in 763 * secure when not needed (IPSEC_POLICY_???_NOT_NEEDED) or it may not 764 * have the desired level of protection (IPSEC_POLICY_MISMATCH). 765 */ 766 #define IPSEC_POLICY_NOT_NEEDED 0 767 #define IPSEC_POLICY_MISMATCH 1 768 #define IPSEC_POLICY_AUTH_NOT_NEEDED 2 769 #define IPSEC_POLICY_ENCR_NOT_NEEDED 3 770 #define IPSEC_POLICY_SE_NOT_NEEDED 4 771 #define IPSEC_POLICY_MAX 5 /* Always max + 1. */ 772 773 /* 774 * Check with IPSEC inbound policy if 775 * 776 * 1) per-socket policy is present - indicated by conn_in_enforce_policy. 777 * 2) Or if we have not cached policy on the conn and the global policy is 778 * non-empty. 779 */ 780 #define CONN_INBOUND_POLICY_PRESENT(connp, ipss) \ 781 ((connp)->conn_in_enforce_policy || \ 782 (!((connp)->conn_policy_cached) && \ 783 (ipss)->ipsec_inbound_v4_policy_present)) 784 785 #define CONN_INBOUND_POLICY_PRESENT_V6(connp, ipss) \ 786 ((connp)->conn_in_enforce_policy || \ 787 (!(connp)->conn_policy_cached && \ 788 (ipss)->ipsec_inbound_v6_policy_present)) 789 790 #define CONN_OUTBOUND_POLICY_PRESENT(connp, ipss) \ 791 ((connp)->conn_out_enforce_policy || \ 792 (!((connp)->conn_policy_cached) && \ 793 (ipss)->ipsec_outbound_v4_policy_present)) 794 795 #define CONN_OUTBOUND_POLICY_PRESENT_V6(connp, ipss) \ 796 ((connp)->conn_out_enforce_policy || \ 797 (!(connp)->conn_policy_cached && \ 798 (ipss)->ipsec_outbound_v6_policy_present)) 799 800 /* 801 * Information cached in IRE for upper layer protocol (ULP). 802 */ 803 typedef struct iulp_s { 804 boolean_t iulp_set; /* Is any metric set? */ 805 uint32_t iulp_ssthresh; /* Slow start threshold (TCP). */ 806 clock_t iulp_rtt; /* Guestimate in millisecs. */ 807 clock_t iulp_rtt_sd; /* Cached value of RTT variance. */ 808 uint32_t iulp_spipe; /* Send pipe size. */ 809 uint32_t iulp_rpipe; /* Receive pipe size. */ 810 uint32_t iulp_rtomax; /* Max round trip timeout. */ 811 uint32_t iulp_sack; /* Use SACK option (TCP)? */ 812 uint32_t iulp_mtu; /* Setable with routing sockets */ 813 814 uint32_t 815 iulp_tstamp_ok : 1, /* Use timestamp option (TCP)? */ 816 iulp_wscale_ok : 1, /* Use window scale option (TCP)? */ 817 iulp_ecn_ok : 1, /* Enable ECN (for TCP)? */ 818 iulp_pmtud_ok : 1, /* Enable PMTUd? */ 819 820 /* These three are passed out by ip_set_destination */ 821 iulp_localnet: 1, /* IRE_ONLINK */ 822 iulp_loopback: 1, /* IRE_LOOPBACK */ 823 iulp_local: 1, /* IRE_LOCAL */ 824 825 iulp_not_used : 25; 826 } iulp_t; 827 828 /* 829 * The conn drain list structure (idl_t). 830 * The list is protected by idl_lock. Each conn_t inserted in the list 831 * points back at this idl_t using conn_idl. IP primes the draining of the 832 * conns queued in these lists, by qenabling the 1st conn of each list. This 833 * occurs when STREAMS backenables ip_wsrv on the IP module. Each conn instance 834 * of ip_wsrv successively qenables the next conn in the list. 835 * idl_lock protects all other members of idl_t and conn_drain_next 836 * and conn_drain_prev of conn_t. The conn_lock protects IPCF_DRAIN_DISABLED 837 * flag of the conn_t and conn_idl. 838 * 839 * The conn drain list, idl_t, itself is part of tx cookie list structure. 840 * A tx cookie list points to a blocked Tx ring and contains the list of 841 * all conn's that are blocked due to the flow-controlled Tx ring (via 842 * the idl drain list). Note that a link can have multiple Tx rings. The 843 * drain list will store the conn's blocked due to Tx ring being flow 844 * controlled. 845 */ 846 847 typedef uintptr_t ip_mac_tx_cookie_t; 848 typedef struct idl_s idl_t; 849 typedef struct idl_tx_list_s idl_tx_list_t; 850 851 struct idl_tx_list_s { 852 ip_mac_tx_cookie_t txl_cookie; 853 kmutex_t txl_lock; /* Lock for this list */ 854 idl_t *txl_drain_list; 855 int txl_drain_index; 856 }; 857 858 struct idl_s { 859 conn_t *idl_conn; /* Head of drain list */ 860 kmutex_t idl_lock; /* Lock for this list */ 861 uint32_t 862 idl_repeat : 1, /* Last conn must re-enable */ 863 /* drain list again */ 864 idl_unused : 31; 865 idl_tx_list_t *idl_itl; 866 }; 867 868 #define CONN_DRAIN_LIST_LOCK(connp) (&((connp)->conn_idl->idl_lock)) 869 870 /* 871 * Interface route structure which holds the necessary information to recreate 872 * routes that are tied to an interface i.e. have ire_ill set. 873 * 874 * These routes which were initially created via a routing socket or via the 875 * SIOCADDRT ioctl may be gateway routes (RTF_GATEWAY being set) or may be 876 * traditional interface routes. When an ill comes back up after being 877 * down, this information will be used to recreate the routes. These 878 * are part of an mblk_t chain that hangs off of the ILL (ill_saved_ire_mp). 879 */ 880 typedef struct ifrt_s { 881 ushort_t ifrt_type; /* Type of IRE */ 882 in6_addr_t ifrt_v6addr; /* Address IRE represents. */ 883 in6_addr_t ifrt_v6gateway_addr; /* Gateway if IRE_OFFLINK */ 884 in6_addr_t ifrt_v6setsrc_addr; /* Src addr if RTF_SETSRC */ 885 in6_addr_t ifrt_v6mask; /* Mask for matching IRE. */ 886 uint32_t ifrt_flags; /* flags related to route */ 887 iulp_t ifrt_metrics; /* Routing socket metrics */ 888 zoneid_t ifrt_zoneid; /* zoneid for route */ 889 } ifrt_t; 890 891 #define ifrt_addr V4_PART_OF_V6(ifrt_v6addr) 892 #define ifrt_gateway_addr V4_PART_OF_V6(ifrt_v6gateway_addr) 893 #define ifrt_mask V4_PART_OF_V6(ifrt_v6mask) 894 #define ifrt_setsrc_addr V4_PART_OF_V6(ifrt_v6setsrc_addr) 895 896 /* Number of IP addresses that can be hosted on a physical interface */ 897 #define MAX_ADDRS_PER_IF 8192 898 /* 899 * Number of Source addresses to be considered for source address 900 * selection. Used by ipif_select_source_v4/v6. 901 */ 902 #define MAX_IPIF_SELECT_SOURCE 50 903 904 #ifdef IP_DEBUG 905 /* 906 * Trace refholds and refreles for debugging. 907 */ 908 #define TR_STACK_DEPTH 14 909 typedef struct tr_buf_s { 910 int tr_depth; 911 clock_t tr_time; 912 pc_t tr_stack[TR_STACK_DEPTH]; 913 } tr_buf_t; 914 915 typedef struct th_trace_s { 916 int th_refcnt; 917 uint_t th_trace_lastref; 918 kthread_t *th_id; 919 #define TR_BUF_MAX 38 920 tr_buf_t th_trbuf[TR_BUF_MAX]; 921 } th_trace_t; 922 923 typedef struct th_hash_s { 924 list_node_t thh_link; 925 mod_hash_t *thh_hash; 926 ip_stack_t *thh_ipst; 927 } th_hash_t; 928 #endif 929 930 /* The following are ipif_state_flags */ 931 #define IPIF_CONDEMNED 0x1 /* The ipif is being removed */ 932 #define IPIF_CHANGING 0x2 /* A critcal ipif field is changing */ 933 #define IPIF_SET_LINKLOCAL 0x10 /* transient flag during bringup */ 934 935 /* IP interface structure, one per local address */ 936 typedef struct ipif_s { 937 struct ipif_s *ipif_next; 938 struct ill_s *ipif_ill; /* Back pointer to our ill */ 939 int ipif_id; /* Logical unit number */ 940 in6_addr_t ipif_v6lcl_addr; /* Local IP address for this if. */ 941 in6_addr_t ipif_v6subnet; /* Subnet prefix for this if. */ 942 in6_addr_t ipif_v6net_mask; /* Net mask for this interface. */ 943 in6_addr_t ipif_v6brd_addr; /* Broadcast addr for this interface. */ 944 in6_addr_t ipif_v6pp_dst_addr; /* Point-to-point dest address. */ 945 uint64_t ipif_flags; /* Interface flags. */ 946 uint_t ipif_metric; /* BSD if metric, for compatibility. */ 947 uint_t ipif_ire_type; /* IRE_LOCAL or IRE_LOOPBACK */ 948 949 /* 950 * The packet count in the ipif contain the sum of the 951 * packet counts in dead IRE_LOCAL/LOOPBACK for this ipif. 952 */ 953 uint_t ipif_ib_pkt_count; /* Inbound packets for our dead IREs */ 954 955 /* Exclusive bit fields, protected by ipsq_t */ 956 unsigned int 957 ipif_was_up : 1, /* ipif was up before */ 958 ipif_addr_ready : 1, /* DAD is done */ 959 ipif_was_dup : 1, /* DAD had failed */ 960 ipif_added_nce : 1, /* nce added for local address */ 961 962 ipif_pad_to_31 : 28; 963 964 ilm_t *ipif_allhosts_ilm; /* For all-nodes join */ 965 ilm_t *ipif_solmulti_ilm; /* For IPv6 solicited multicast join */ 966 967 uint_t ipif_seqid; /* unique index across all ills */ 968 uint_t ipif_state_flags; /* See IPIF_* flag defs above */ 969 uint_t ipif_refcnt; /* active consistent reader cnt */ 970 971 zoneid_t ipif_zoneid; /* zone ID number */ 972 timeout_id_t ipif_recovery_id; /* Timer for DAD recovery */ 973 boolean_t ipif_trace_disable; /* True when alloc fails */ 974 /* 975 * For an IPMP interface, ipif_bound_ill tracks the ill whose hardware 976 * information this ipif is associated with via ARP/NDP. We can use 977 * an ill pointer (rather than an index) because only ills that are 978 * part of a group will be pointed to, and an ill cannot disappear 979 * while it's in a group. 980 */ 981 struct ill_s *ipif_bound_ill; 982 struct ipif_s *ipif_bound_next; /* bound ipif chain */ 983 boolean_t ipif_bound; /* B_TRUE if we successfully bound */ 984 985 struct ire_s *ipif_ire_local; /* Our IRE_LOCAL or LOOPBACK */ 986 struct ire_s *ipif_ire_if; /* Our IRE_INTERFACE */ 987 } ipif_t; 988 989 /* 990 * The following table lists the protection levels of the various members 991 * of the ipif_t. The following notation is used. 992 * 993 * Write once - Written to only once at the time of bringing up 994 * the interface and can be safely read after the bringup without any lock. 995 * 996 * ipsq - Need to execute in the ipsq to perform the indicated access. 997 * 998 * ill_lock - Need to hold this mutex to perform the indicated access. 999 * 1000 * ill_g_lock - Need to hold this rw lock as reader/writer for read access or 1001 * write access respectively. 1002 * 1003 * down ill - Written to only when the ill is down (i.e all ipifs are down) 1004 * up ill - Read only when the ill is up (i.e. at least 1 ipif is up) 1005 * 1006 * Table of ipif_t members and their protection 1007 * 1008 * ipif_next ipsq + ill_lock + ipsq OR ill_lock OR 1009 * ill_g_lock ill_g_lock 1010 * ipif_ill ipsq + down ipif write once 1011 * ipif_id ipsq + down ipif write once 1012 * ipif_v6lcl_addr ipsq + down ipif up ipif 1013 * ipif_v6subnet ipsq + down ipif up ipif 1014 * ipif_v6net_mask ipsq + down ipif up ipif 1015 * 1016 * ipif_v6brd_addr 1017 * ipif_v6pp_dst_addr 1018 * ipif_flags ill_lock ill_lock 1019 * ipif_metric 1020 * ipif_ire_type ipsq + down ill up ill 1021 * 1022 * ipif_ib_pkt_count Approx 1023 * 1024 * bit fields ill_lock ill_lock 1025 * 1026 * ipif_allhosts_ilm ipsq ipsq 1027 * ipif_solmulti_ilm ipsq ipsq 1028 * 1029 * ipif_seqid ipsq Write once 1030 * 1031 * ipif_state_flags ill_lock ill_lock 1032 * ipif_refcnt ill_lock ill_lock 1033 * ipif_bound_ill ipsq + ipmp_lock ipsq OR ipmp_lock 1034 * ipif_bound_next ipsq ipsq 1035 * ipif_bound ipsq ipsq 1036 * 1037 * ipif_ire_local ipsq + ips_ill_g_lock ipsq OR ips_ill_g_lock 1038 * ipif_ire_if ipsq + ips_ill_g_lock ipsq OR ips_ill_g_lock 1039 */ 1040 1041 /* 1042 * Return values from ip_laddr_verify_{v4,v6} 1043 */ 1044 typedef enum { IPVL_UNICAST_UP, IPVL_UNICAST_DOWN, IPVL_MCAST, IPVL_BCAST, 1045 IPVL_BAD} ip_laddr_t; 1046 1047 1048 #define IP_TR_HASH(tid) ((((uintptr_t)tid) >> 6) & (IP_TR_HASH_MAX - 1)) 1049 1050 #ifdef DEBUG 1051 #define IPIF_TRACE_REF(ipif) ipif_trace_ref(ipif) 1052 #define ILL_TRACE_REF(ill) ill_trace_ref(ill) 1053 #define IPIF_UNTRACE_REF(ipif) ipif_untrace_ref(ipif) 1054 #define ILL_UNTRACE_REF(ill) ill_untrace_ref(ill) 1055 #else 1056 #define IPIF_TRACE_REF(ipif) 1057 #define ILL_TRACE_REF(ill) 1058 #define IPIF_UNTRACE_REF(ipif) 1059 #define ILL_UNTRACE_REF(ill) 1060 #endif 1061 1062 /* IPv4 compatibility macros */ 1063 #define ipif_lcl_addr V4_PART_OF_V6(ipif_v6lcl_addr) 1064 #define ipif_subnet V4_PART_OF_V6(ipif_v6subnet) 1065 #define ipif_net_mask V4_PART_OF_V6(ipif_v6net_mask) 1066 #define ipif_brd_addr V4_PART_OF_V6(ipif_v6brd_addr) 1067 #define ipif_pp_dst_addr V4_PART_OF_V6(ipif_v6pp_dst_addr) 1068 1069 /* Macros for easy backreferences to the ill. */ 1070 #define ipif_isv6 ipif_ill->ill_isv6 1071 1072 #define SIOCLIFADDR_NDX 112 /* ndx of SIOCLIFADDR in the ndx ioctl table */ 1073 1074 /* 1075 * mode value for ip_ioctl_finish for finishing an ioctl 1076 */ 1077 #define CONN_CLOSE 1 /* No mi_copy */ 1078 #define COPYOUT 2 /* do an mi_copyout if needed */ 1079 #define NO_COPYOUT 3 /* do an mi_copy_done */ 1080 #define IPI2MODE(ipi) ((ipi)->ipi_flags & IPI_GET_CMD ? COPYOUT : NO_COPYOUT) 1081 1082 /* 1083 * The IP-MT design revolves around the serialization objects ipsq_t (IPSQ) 1084 * and ipxop_t (exclusive operation or "xop"). Becoming "writer" on an IPSQ 1085 * ensures that no other threads can become "writer" on any IPSQs sharing that 1086 * IPSQ's xop until the writer thread is done. 1087 * 1088 * Each phyint points to one IPSQ that remains fixed over the phyint's life. 1089 * Each IPSQ points to one xop that can change over the IPSQ's life. If a 1090 * phyint is *not* in an IPMP group, then its IPSQ will refer to the IPSQ's 1091 * "own" xop (ipsq_ownxop). If a phyint *is* part of an IPMP group, then its 1092 * IPSQ will refer to the "group" xop, which is shorthand for the xop of the 1093 * IPSQ of the IPMP meta-interface's phyint. Thus, all phyints that are part 1094 * of the same IPMP group will have their IPSQ's point to the group xop, and 1095 * thus becoming "writer" on any phyint in the group will prevent any other 1096 * writer on any other phyint in the group. All IPSQs sharing the same xop 1097 * are chained together through ipsq_next (in the degenerate common case, 1098 * ipsq_next simply refers to itself). Note that the group xop is guaranteed 1099 * to exist at least as long as there are members in the group, since the IPMP 1100 * meta-interface can only be destroyed if the group is empty. 1101 * 1102 * Incoming exclusive operation requests are enqueued on the IPSQ they arrived 1103 * on rather than the xop. This makes switching xop's (as would happen when a 1104 * phyint leaves an IPMP group) simple, because after the phyint leaves the 1105 * group, any operations enqueued on its IPSQ can be safely processed with 1106 * respect to its new xop, and any operations enqueued on the IPSQs of its 1107 * former group can be processed with respect to their existing group xop. 1108 * Even so, switching xops is a subtle dance; see ipsq_dq() for details. 1109 * 1110 * An IPSQ's "own" xop is embedded within the IPSQ itself since they have have 1111 * identical lifetimes, and because doing so simplifies pointer management. 1112 * While each phyint and IPSQ point to each other, it is not possible to free 1113 * the IPSQ when the phyint is freed, since we may still *inside* the IPSQ 1114 * when the phyint is being freed. Thus, ipsq_phyint is set to NULL when the 1115 * phyint is freed, and the IPSQ free is later done in ipsq_exit(). 1116 * 1117 * ipsq_t synchronization: read write 1118 * 1119 * ipsq_xopq_mphead ipx_lock ipx_lock 1120 * ipsq_xopq_mptail ipx_lock ipx_lock 1121 * ipsq_xop_switch_mp ipsq_lock ipsq_lock 1122 * ipsq_phyint write once write once 1123 * ipsq_next RW_READER ill_g_lock RW_WRITER ill_g_lock 1124 * ipsq_xop ipsq_lock or ipsq ipsq_lock + ipsq 1125 * ipsq_swxop ipsq ipsq 1126 * ipsq_ownxop see ipxop_t see ipxop_t 1127 * ipsq_ipst write once write once 1128 * 1129 * ipxop_t synchronization: read write 1130 * 1131 * ipx_writer ipx_lock ipx_lock 1132 * ipx_xop_queued ipx_lock ipx_lock 1133 * ipx_mphead ipx_lock ipx_lock 1134 * ipx_mptail ipx_lock ipx_lock 1135 * ipx_ipsq write once write once 1136 * ips_ipsq_queued ipx_lock ipx_lock 1137 * ipx_waitfor ipsq or ipx_lock ipsq + ipx_lock 1138 * ipx_reentry_cnt ipsq or ipx_lock ipsq + ipx_lock 1139 * ipx_current_done ipsq ipsq 1140 * ipx_current_ioctl ipsq ipsq 1141 * ipx_current_ipif ipsq or ipx_lock ipsq + ipx_lock 1142 * ipx_pending_ipif ipsq or ipx_lock ipsq + ipx_lock 1143 * ipx_pending_mp ipsq or ipx_lock ipsq + ipx_lock 1144 * ipx_forced ipsq ipsq 1145 * ipx_depth ipsq ipsq 1146 * ipx_stack ipsq ipsq 1147 */ 1148 typedef struct ipxop_s { 1149 kmutex_t ipx_lock; /* see above */ 1150 kthread_t *ipx_writer; /* current owner */ 1151 mblk_t *ipx_mphead; /* messages tied to this op */ 1152 mblk_t *ipx_mptail; 1153 struct ipsq_s *ipx_ipsq; /* associated ipsq */ 1154 boolean_t ipx_ipsq_queued; /* ipsq using xop has queued op */ 1155 int ipx_waitfor; /* waiting; values encoded below */ 1156 int ipx_reentry_cnt; 1157 boolean_t ipx_current_done; /* is the current operation done? */ 1158 int ipx_current_ioctl; /* current ioctl, or 0 if no ioctl */ 1159 ipif_t *ipx_current_ipif; /* ipif for current op */ 1160 ipif_t *ipx_pending_ipif; /* ipif for ipx_pending_mp */ 1161 mblk_t *ipx_pending_mp; /* current ioctl mp while waiting */ 1162 boolean_t ipx_forced; /* debugging aid */ 1163 #ifdef DEBUG 1164 int ipx_depth; /* debugging aid */ 1165 #define IPX_STACK_DEPTH 15 1166 pc_t ipx_stack[IPX_STACK_DEPTH]; /* debugging aid */ 1167 #endif 1168 } ipxop_t; 1169 1170 typedef struct ipsq_s { 1171 kmutex_t ipsq_lock; /* see above */ 1172 mblk_t *ipsq_switch_mp; /* op to handle right after switch */ 1173 mblk_t *ipsq_xopq_mphead; /* list of excl ops (mostly ioctls) */ 1174 mblk_t *ipsq_xopq_mptail; 1175 struct phyint *ipsq_phyint; /* associated phyint */ 1176 struct ipsq_s *ipsq_next; /* next ipsq sharing ipsq_xop */ 1177 struct ipxop_s *ipsq_xop; /* current xop synchronization info */ 1178 struct ipxop_s *ipsq_swxop; /* switch xop to on ipsq_exit() */ 1179 struct ipxop_s ipsq_ownxop; /* our own xop (may not be in-use) */ 1180 ip_stack_t *ipsq_ipst; /* does not have a netstack_hold */ 1181 } ipsq_t; 1182 1183 /* 1184 * ipx_waitfor values: 1185 */ 1186 enum { 1187 IPIF_DOWN = 1, /* ipif_down() waiting for refcnts to drop */ 1188 ILL_DOWN, /* ill_down() waiting for refcnts to drop */ 1189 IPIF_FREE, /* ipif_free() waiting for refcnts to drop */ 1190 ILL_FREE /* ill unplumb waiting for refcnts to drop */ 1191 }; 1192 1193 /* Operation types for ipsq_try_enter() */ 1194 #define CUR_OP 0 /* request writer within current operation */ 1195 #define NEW_OP 1 /* request writer for a new operation */ 1196 #define SWITCH_OP 2 /* request writer once IPSQ XOP switches */ 1197 1198 /* 1199 * Kstats tracked on each IPMP meta-interface. Order here must match 1200 * ipmp_kstats[] in ip/ipmp.c. 1201 */ 1202 enum { 1203 IPMP_KSTAT_OBYTES, IPMP_KSTAT_OBYTES64, IPMP_KSTAT_RBYTES, 1204 IPMP_KSTAT_RBYTES64, IPMP_KSTAT_OPACKETS, IPMP_KSTAT_OPACKETS64, 1205 IPMP_KSTAT_OERRORS, IPMP_KSTAT_IPACKETS, IPMP_KSTAT_IPACKETS64, 1206 IPMP_KSTAT_IERRORS, IPMP_KSTAT_MULTIRCV, IPMP_KSTAT_MULTIXMT, 1207 IPMP_KSTAT_BRDCSTRCV, IPMP_KSTAT_BRDCSTXMT, IPMP_KSTAT_LINK_UP, 1208 IPMP_KSTAT_MAX /* keep last */ 1209 }; 1210 1211 /* 1212 * phyint represents state that is common to both IPv4 and IPv6 interfaces. 1213 * There is a separate ill_t representing IPv4 and IPv6 which has a 1214 * backpointer to the phyint structure for accessing common state. 1215 */ 1216 typedef struct phyint { 1217 struct ill_s *phyint_illv4; 1218 struct ill_s *phyint_illv6; 1219 uint_t phyint_ifindex; /* SIOCSLIFINDEX */ 1220 uint64_t phyint_flags; 1221 avl_node_t phyint_avl_by_index; /* avl tree by index */ 1222 avl_node_t phyint_avl_by_name; /* avl tree by name */ 1223 kmutex_t phyint_lock; 1224 struct ipsq_s *phyint_ipsq; /* back pointer to ipsq */ 1225 struct ipmp_grp_s *phyint_grp; /* associated IPMP group */ 1226 char phyint_name[LIFNAMSIZ]; /* physical interface name */ 1227 uint64_t phyint_kstats0[IPMP_KSTAT_MAX]; /* baseline kstats */ 1228 } phyint_t; 1229 1230 #define CACHE_ALIGN_SIZE 64 1231 #define CACHE_ALIGN(align_struct) P2ROUNDUP(sizeof (struct align_struct),\ 1232 CACHE_ALIGN_SIZE) 1233 struct _phyint_list_s_ { 1234 avl_tree_t phyint_list_avl_by_index; /* avl tree by index */ 1235 avl_tree_t phyint_list_avl_by_name; /* avl tree by name */ 1236 }; 1237 1238 typedef union phyint_list_u { 1239 struct _phyint_list_s_ phyint_list_s; 1240 char phyint_list_filler[CACHE_ALIGN(_phyint_list_s_)]; 1241 } phyint_list_t; 1242 1243 #define phyint_list_avl_by_index phyint_list_s.phyint_list_avl_by_index 1244 #define phyint_list_avl_by_name phyint_list_s.phyint_list_avl_by_name 1245 1246 /* 1247 * Fragmentation hash bucket 1248 */ 1249 typedef struct ipfb_s { 1250 struct ipf_s *ipfb_ipf; /* List of ... */ 1251 size_t ipfb_count; /* Count of bytes used by frag(s) */ 1252 kmutex_t ipfb_lock; /* Protect all ipf in list */ 1253 uint_t ipfb_frag_pkts; /* num of distinct fragmented pkts */ 1254 } ipfb_t; 1255 1256 /* 1257 * IRE bucket structure. Usually there is an array of such structures, 1258 * each pointing to a linked list of ires. irb_refcnt counts the number 1259 * of walkers of a given hash bucket. Usually the reference count is 1260 * bumped up if the walker wants no IRES to be DELETED while walking the 1261 * list. Bumping up does not PREVENT ADDITION. This allows walking a given 1262 * hash bucket without stumbling up on a free pointer. 1263 * 1264 * irb_t structures in ip_ftable are dynamically allocated and freed. 1265 * In order to identify the irb_t structures that can be safely kmem_free'd 1266 * we need to ensure that 1267 * - the irb_refcnt is quiescent, indicating no other walkers, 1268 * - no other threads or ire's are holding references to the irb, 1269 * i.e., irb_nire == 0, 1270 * - there are no active ire's in the bucket, i.e., irb_ire_cnt == 0 1271 */ 1272 typedef struct irb { 1273 struct ire_s *irb_ire; /* First ire in this bucket */ 1274 /* Should be first in this struct */ 1275 krwlock_t irb_lock; /* Protect this bucket */ 1276 uint_t irb_refcnt; /* Protected by irb_lock */ 1277 uchar_t irb_marks; /* CONDEMNED ires in this bucket ? */ 1278 #define IRB_MARK_CONDEMNED 0x0001 /* Contains some IRE_IS_CONDEMNED */ 1279 #define IRB_MARK_DYNAMIC 0x0002 /* Dynamically allocated */ 1280 /* Once IPv6 uses radix then IRB_MARK_DYNAMIC will be always be set */ 1281 uint_t irb_ire_cnt; /* Num of active IRE in this bucket */ 1282 int irb_nire; /* Num of ftable ire's that ref irb */ 1283 ip_stack_t *irb_ipst; /* Does not have a netstack_hold */ 1284 } irb_t; 1285 1286 #define IRB2RT(irb) (rt_t *)((caddr_t)(irb) - offsetof(rt_t, rt_irb)) 1287 1288 /* Forward declarations */ 1289 struct dce_s; 1290 typedef struct dce_s dce_t; 1291 struct ire_s; 1292 typedef struct ire_s ire_t; 1293 struct ncec_s; 1294 typedef struct ncec_s ncec_t; 1295 struct nce_s; 1296 typedef struct nce_s nce_t; 1297 struct ip_recv_attr_s; 1298 typedef struct ip_recv_attr_s ip_recv_attr_t; 1299 struct ip_xmit_attr_s; 1300 typedef struct ip_xmit_attr_s ip_xmit_attr_t; 1301 1302 struct tsol_ire_gw_secattr_s; 1303 typedef struct tsol_ire_gw_secattr_s tsol_ire_gw_secattr_t; 1304 1305 /* 1306 * This is a structure for a one-element route cache that is passed 1307 * by reference between ip_input and ill_inputfn. 1308 */ 1309 typedef struct { 1310 ire_t *rtc_ire; 1311 ipaddr_t rtc_ipaddr; 1312 in6_addr_t rtc_ip6addr; 1313 } rtc_t; 1314 1315 /* 1316 * Note: Temporarily use 64 bits, and will probably go back to 32 bits after 1317 * more cleanup work is done. 1318 */ 1319 typedef uint64_t iaflags_t; 1320 1321 /* The ill input function pointer type */ 1322 typedef void (*pfillinput_t)(mblk_t *, void *, void *, ip_recv_attr_t *, 1323 rtc_t *); 1324 1325 /* The ire receive function pointer type */ 1326 typedef void (*pfirerecv_t)(ire_t *, mblk_t *, void *, ip_recv_attr_t *); 1327 1328 /* The ire send and postfrag function pointer types */ 1329 typedef int (*pfiresend_t)(ire_t *, mblk_t *, void *, 1330 ip_xmit_attr_t *, uint32_t *); 1331 typedef int (*pfirepostfrag_t)(mblk_t *, nce_t *, iaflags_t, uint_t, uint32_t, 1332 zoneid_t, zoneid_t, uintptr_t *); 1333 1334 1335 #define IP_V4_G_HEAD 0 1336 #define IP_V6_G_HEAD 1 1337 1338 #define MAX_G_HEADS 2 1339 1340 /* 1341 * unpadded ill_if structure 1342 */ 1343 struct _ill_if_s_ { 1344 union ill_if_u *illif_next; 1345 union ill_if_u *illif_prev; 1346 avl_tree_t illif_avl_by_ppa; /* AVL tree sorted on ppa */ 1347 vmem_t *illif_ppa_arena; /* ppa index space */ 1348 uint16_t illif_mcast_v1; /* hints for */ 1349 uint16_t illif_mcast_v2; /* [igmp|mld]_slowtimo */ 1350 int illif_name_len; /* name length */ 1351 char illif_name[LIFNAMSIZ]; /* name of interface type */ 1352 }; 1353 1354 /* cache aligned ill_if structure */ 1355 typedef union ill_if_u { 1356 struct _ill_if_s_ ill_if_s; 1357 char illif_filler[CACHE_ALIGN(_ill_if_s_)]; 1358 } ill_if_t; 1359 1360 #define illif_next ill_if_s.illif_next 1361 #define illif_prev ill_if_s.illif_prev 1362 #define illif_avl_by_ppa ill_if_s.illif_avl_by_ppa 1363 #define illif_ppa_arena ill_if_s.illif_ppa_arena 1364 #define illif_mcast_v1 ill_if_s.illif_mcast_v1 1365 #define illif_mcast_v2 ill_if_s.illif_mcast_v2 1366 #define illif_name ill_if_s.illif_name 1367 #define illif_name_len ill_if_s.illif_name_len 1368 1369 typedef struct ill_walk_context_s { 1370 int ctx_current_list; /* current list being searched */ 1371 int ctx_last_list; /* last list to search */ 1372 } ill_walk_context_t; 1373 1374 /* 1375 * ill_g_heads structure, one for IPV4 and one for IPV6 1376 */ 1377 struct _ill_g_head_s_ { 1378 ill_if_t *ill_g_list_head; 1379 ill_if_t *ill_g_list_tail; 1380 }; 1381 1382 typedef union ill_g_head_u { 1383 struct _ill_g_head_s_ ill_g_head_s; 1384 char ill_g_head_filler[CACHE_ALIGN(_ill_g_head_s_)]; 1385 } ill_g_head_t; 1386 1387 #define ill_g_list_head ill_g_head_s.ill_g_list_head 1388 #define ill_g_list_tail ill_g_head_s.ill_g_list_tail 1389 1390 #define IP_V4_ILL_G_LIST(ipst) \ 1391 (ipst)->ips_ill_g_heads[IP_V4_G_HEAD].ill_g_list_head 1392 #define IP_V6_ILL_G_LIST(ipst) \ 1393 (ipst)->ips_ill_g_heads[IP_V6_G_HEAD].ill_g_list_head 1394 #define IP_VX_ILL_G_LIST(i, ipst) \ 1395 (ipst)->ips_ill_g_heads[i].ill_g_list_head 1396 1397 #define ILL_START_WALK_V4(ctx_ptr, ipst) \ 1398 ill_first(IP_V4_G_HEAD, IP_V4_G_HEAD, ctx_ptr, ipst) 1399 #define ILL_START_WALK_V6(ctx_ptr, ipst) \ 1400 ill_first(IP_V6_G_HEAD, IP_V6_G_HEAD, ctx_ptr, ipst) 1401 #define ILL_START_WALK_ALL(ctx_ptr, ipst) \ 1402 ill_first(MAX_G_HEADS, MAX_G_HEADS, ctx_ptr, ipst) 1403 1404 /* 1405 * Capabilities, possible flags for ill_capabilities. 1406 */ 1407 #define ILL_CAPAB_LSO 0x04 /* Large Send Offload */ 1408 #define ILL_CAPAB_HCKSUM 0x08 /* Hardware checksumming */ 1409 #define ILL_CAPAB_ZEROCOPY 0x10 /* Zero-copy */ 1410 #define ILL_CAPAB_DLD 0x20 /* DLD capabilities */ 1411 #define ILL_CAPAB_DLD_POLL 0x40 /* Polling */ 1412 #define ILL_CAPAB_DLD_DIRECT 0x80 /* Direct function call */ 1413 1414 /* 1415 * Per-ill Hardware Checksumming capbilities. 1416 */ 1417 typedef struct ill_hcksum_capab_s ill_hcksum_capab_t; 1418 1419 /* 1420 * Per-ill Zero-copy capabilities. 1421 */ 1422 typedef struct ill_zerocopy_capab_s ill_zerocopy_capab_t; 1423 1424 /* 1425 * DLD capbilities. 1426 */ 1427 typedef struct ill_dld_capab_s ill_dld_capab_t; 1428 1429 /* 1430 * Per-ill polling resource map. 1431 */ 1432 typedef struct ill_rx_ring ill_rx_ring_t; 1433 1434 /* 1435 * Per-ill Large Send Offload capabilities. 1436 */ 1437 typedef struct ill_lso_capab_s ill_lso_capab_t; 1438 1439 /* The following are ill_state_flags */ 1440 #define ILL_LL_SUBNET_PENDING 0x01 /* Waiting for DL_INFO_ACK from drv */ 1441 #define ILL_CONDEMNED 0x02 /* No more new ref's to the ILL */ 1442 #define ILL_DL_UNBIND_IN_PROGRESS 0x04 /* UNBIND_REQ is sent */ 1443 #define ILL_DOWN_IN_PROGRESS 0x08 /* ILL is going down - no new nce's */ 1444 #define ILL_LL_BIND_PENDING 0x0020 /* XXX Reuse ILL_LL_SUBNET_PENDING ? */ 1445 #define ILL_LL_UP 0x0040 1446 #define ILL_LL_DOWN 0x0080 1447 1448 /* Is this an ILL whose source address is used by other ILL's ? */ 1449 #define IS_USESRC_ILL(ill) \ 1450 (((ill)->ill_usesrc_ifindex == 0) && \ 1451 ((ill)->ill_usesrc_grp_next != NULL)) 1452 1453 /* Is this a client/consumer of the usesrc ILL ? */ 1454 #define IS_USESRC_CLI_ILL(ill) \ 1455 (((ill)->ill_usesrc_ifindex != 0) && \ 1456 ((ill)->ill_usesrc_grp_next != NULL)) 1457 1458 /* Is this an virtual network interface (vni) ILL ? */ 1459 #define IS_VNI(ill) \ 1460 (((ill)->ill_phyint->phyint_flags & (PHYI_LOOPBACK|PHYI_VIRTUAL)) == \ 1461 PHYI_VIRTUAL) 1462 1463 /* Is this a loopback ILL? */ 1464 #define IS_LOOPBACK(ill) \ 1465 ((ill)->ill_phyint->phyint_flags & PHYI_LOOPBACK) 1466 1467 /* Is this an IPMP meta-interface ILL? */ 1468 #define IS_IPMP(ill) \ 1469 ((ill)->ill_phyint->phyint_flags & PHYI_IPMP) 1470 1471 /* Is this ILL under an IPMP meta-interface? (aka "in a group?") */ 1472 #define IS_UNDER_IPMP(ill) \ 1473 ((ill)->ill_grp != NULL && !IS_IPMP(ill)) 1474 1475 /* Is ill1 in the same illgrp as ill2? */ 1476 #define IS_IN_SAME_ILLGRP(ill1, ill2) \ 1477 ((ill1)->ill_grp != NULL && ((ill1)->ill_grp == (ill2)->ill_grp)) 1478 1479 /* Is ill1 on the same LAN as ill2? */ 1480 #define IS_ON_SAME_LAN(ill1, ill2) \ 1481 ((ill1) == (ill2) || IS_IN_SAME_ILLGRP(ill1, ill2)) 1482 1483 #define ILL_OTHER(ill) \ 1484 ((ill)->ill_isv6 ? (ill)->ill_phyint->phyint_illv4 : \ 1485 (ill)->ill_phyint->phyint_illv6) 1486 1487 /* 1488 * IPMP group ILL state structure -- up to two per IPMP group (V4 and V6). 1489 * Created when the V4 and/or V6 IPMP meta-interface is I_PLINK'd. It is 1490 * guaranteed to persist while there are interfaces of that type in the group. 1491 * In general, most fields are accessed outside of the IPSQ (e.g., in the 1492 * datapath), and thus use locks in addition to the IPSQ for protection. 1493 * 1494 * synchronization: read write 1495 * 1496 * ig_if ipsq or ill_g_lock ipsq and ill_g_lock 1497 * ig_actif ipsq or ipmp_lock ipsq and ipmp_lock 1498 * ig_nactif ipsq or ipmp_lock ipsq and ipmp_lock 1499 * ig_next_ill ipsq or ipmp_lock ipsq and ipmp_lock 1500 * ig_ipmp_ill write once write once 1501 * ig_cast_ill ipsq or ipmp_lock ipsq and ipmp_lock 1502 * ig_arpent ipsq ipsq 1503 * ig_mtu ipsq ipsq 1504 */ 1505 typedef struct ipmp_illgrp_s { 1506 list_t ig_if; /* list of all interfaces */ 1507 list_t ig_actif; /* list of active interfaces */ 1508 uint_t ig_nactif; /* number of active interfaces */ 1509 struct ill_s *ig_next_ill; /* next active interface to use */ 1510 struct ill_s *ig_ipmp_ill; /* backpointer to IPMP meta-interface */ 1511 struct ill_s *ig_cast_ill; /* nominated ill for multi/broadcast */ 1512 list_t ig_arpent; /* list of ARP entries */ 1513 uint_t ig_mtu; /* ig_ipmp_ill->ill_max_mtu */ 1514 } ipmp_illgrp_t; 1515 1516 /* 1517 * IPMP group state structure -- one per IPMP group. Created when the 1518 * IPMP meta-interface is plumbed; it is guaranteed to persist while there 1519 * are interfaces in it. 1520 * 1521 * ipmp_grp_t synchronization: read write 1522 * 1523 * gr_name ipmp_lock ipmp_lock 1524 * gr_ifname write once write once 1525 * gr_mactype ipmp_lock ipmp_lock 1526 * gr_phyint write once write once 1527 * gr_nif ipmp_lock ipmp_lock 1528 * gr_nactif ipsq ipsq 1529 * gr_v4 ipmp_lock ipmp_lock 1530 * gr_v6 ipmp_lock ipmp_lock 1531 * gr_nv4 ipmp_lock ipmp_lock 1532 * gr_nv6 ipmp_lock ipmp_lock 1533 * gr_pendv4 ipmp_lock ipmp_lock 1534 * gr_pendv6 ipmp_lock ipmp_lock 1535 * gr_linkdownmp ipsq ipsq 1536 * gr_ksp ipmp_lock ipmp_lock 1537 * gr_kstats0 atomic atomic 1538 */ 1539 typedef struct ipmp_grp_s { 1540 char gr_name[LIFGRNAMSIZ]; /* group name */ 1541 char gr_ifname[LIFNAMSIZ]; /* interface name */ 1542 t_uscalar_t gr_mactype; /* DLPI mactype of group */ 1543 phyint_t *gr_phyint; /* IPMP group phyint */ 1544 uint_t gr_nif; /* number of interfaces in group */ 1545 uint_t gr_nactif; /* number of active interfaces */ 1546 ipmp_illgrp_t *gr_v4; /* V4 group information */ 1547 ipmp_illgrp_t *gr_v6; /* V6 group information */ 1548 uint_t gr_nv4; /* number of ills in V4 group */ 1549 uint_t gr_nv6; /* number of ills in V6 group */ 1550 uint_t gr_pendv4; /* number of pending ills in V4 group */ 1551 uint_t gr_pendv6; /* number of pending ills in V6 group */ 1552 mblk_t *gr_linkdownmp; /* message used to bring link down */ 1553 kstat_t *gr_ksp; /* group kstat pointer */ 1554 uint64_t gr_kstats0[IPMP_KSTAT_MAX]; /* baseline group kstats */ 1555 } ipmp_grp_t; 1556 1557 /* 1558 * IPMP ARP entry -- one per SIOCS*ARP entry tied to the group. Used to keep 1559 * ARP up-to-date as the active set of interfaces in the group changes. 1560 */ 1561 typedef struct ipmp_arpent_s { 1562 ipaddr_t ia_ipaddr; /* IP address for this entry */ 1563 boolean_t ia_proxyarp; /* proxy ARP entry? */ 1564 boolean_t ia_notified; /* ARP notified about this entry? */ 1565 list_node_t ia_node; /* next ARP entry in list */ 1566 uint16_t ia_flags; /* nce_flags for the address */ 1567 size_t ia_lladdr_len; 1568 uchar_t *ia_lladdr; 1569 } ipmp_arpent_t; 1570 1571 struct arl_s; 1572 1573 /* 1574 * Per-ill capabilities. 1575 */ 1576 struct ill_hcksum_capab_s { 1577 uint_t ill_hcksum_version; /* interface version */ 1578 uint_t ill_hcksum_txflags; /* capabilities on transmit */ 1579 }; 1580 1581 struct ill_zerocopy_capab_s { 1582 uint_t ill_zerocopy_version; /* interface version */ 1583 uint_t ill_zerocopy_flags; /* capabilities */ 1584 }; 1585 1586 struct ill_lso_capab_s { 1587 uint_t ill_lso_flags; /* capabilities */ 1588 uint_t ill_lso_max; /* maximum size of payload */ 1589 }; 1590 1591 /* 1592 * IP Lower level Structure. 1593 * Instance data structure in ip_open when there is a device below us. 1594 */ 1595 typedef struct ill_s { 1596 pfillinput_t ill_inputfn; /* Fast input function selector */ 1597 ill_if_t *ill_ifptr; /* pointer to interface type */ 1598 queue_t *ill_rq; /* Read queue. */ 1599 queue_t *ill_wq; /* Write queue. */ 1600 1601 int ill_error; /* Error value sent up by device. */ 1602 1603 ipif_t *ill_ipif; /* Interface chain for this ILL. */ 1604 1605 uint_t ill_ipif_up_count; /* Number of IPIFs currently up. */ 1606 uint_t ill_max_frag; /* Max IDU from DLPI. */ 1607 uint_t ill_current_frag; /* Current IDU from DLPI. */ 1608 uint_t ill_mtu; /* User-specified MTU; SIOCSLIFMTU */ 1609 char *ill_name; /* Our name. */ 1610 uint_t ill_ipif_dup_count; /* Number of duplicate addresses. */ 1611 uint_t ill_name_length; /* Name length, incl. terminator. */ 1612 char *ill_ndd_name; /* Name + ":ip?_forwarding" for NDD. */ 1613 uint_t ill_net_type; /* IRE_IF_RESOLVER/IRE_IF_NORESOLVER. */ 1614 /* 1615 * Physical Point of Attachment num. If DLPI style 1 provider 1616 * then this is derived from the devname. 1617 */ 1618 uint_t ill_ppa; 1619 t_uscalar_t ill_sap; 1620 t_scalar_t ill_sap_length; /* Including sign (for position) */ 1621 uint_t ill_phys_addr_length; /* Excluding the sap. */ 1622 uint_t ill_bcast_addr_length; /* Only set when the DL provider */ 1623 /* supports broadcast. */ 1624 t_uscalar_t ill_mactype; 1625 uint8_t *ill_frag_ptr; /* Reassembly state. */ 1626 timeout_id_t ill_frag_timer_id; /* timeout id for the frag timer */ 1627 ipfb_t *ill_frag_hash_tbl; /* Fragment hash list head. */ 1628 1629 krwlock_t ill_mcast_lock; /* Protects multicast state */ 1630 kmutex_t ill_mcast_serializer; /* Serialize across ilg and ilm state */ 1631 ilm_t *ill_ilm; /* Multicast membership for ill */ 1632 uint_t ill_global_timer; /* for IGMPv3/MLDv2 general queries */ 1633 int ill_mcast_type; /* type of router which is querier */ 1634 /* on this interface */ 1635 uint16_t ill_mcast_v1_time; /* # slow timeouts since last v1 qry */ 1636 uint16_t ill_mcast_v2_time; /* # slow timeouts since last v2 qry */ 1637 uint8_t ill_mcast_v1_tset; /* 1 => timer is set; 0 => not set */ 1638 uint8_t ill_mcast_v2_tset; /* 1 => timer is set; 0 => not set */ 1639 1640 uint8_t ill_mcast_rv; /* IGMPv3/MLDv2 robustness variable */ 1641 int ill_mcast_qi; /* IGMPv3/MLDv2 query interval var */ 1642 1643 /* 1644 * All non-NULL cells between 'ill_first_mp_to_free' and 1645 * 'ill_last_mp_to_free' are freed in ill_delete. 1646 */ 1647 #define ill_first_mp_to_free ill_bcast_mp 1648 mblk_t *ill_bcast_mp; /* DLPI header for broadcasts. */ 1649 mblk_t *ill_unbind_mp; /* unbind mp from ill_dl_up() */ 1650 mblk_t *ill_promiscoff_mp; /* for ill_leave_allmulti() */ 1651 mblk_t *ill_dlpi_deferred; /* b_next chain of control messages */ 1652 mblk_t *ill_dest_addr_mp; /* mblk which holds ill_dest_addr */ 1653 mblk_t *ill_replumb_mp; /* replumb mp from ill_replumb() */ 1654 mblk_t *ill_phys_addr_mp; /* mblk which holds ill_phys_addr */ 1655 mblk_t *ill_mcast_deferred; /* b_next chain of IGMP/MLD packets */ 1656 #define ill_last_mp_to_free ill_mcast_deferred 1657 1658 cred_t *ill_credp; /* opener's credentials */ 1659 uint8_t *ill_phys_addr; /* ill_phys_addr_mp->b_rptr + off */ 1660 uint8_t *ill_dest_addr; /* ill_dest_addr_mp->b_rptr + off */ 1661 1662 uint_t ill_state_flags; /* see ILL_* flags above */ 1663 1664 /* Following bit fields protected by ipsq_t */ 1665 uint_t 1666 ill_needs_attach : 1, 1667 ill_reserved : 1, 1668 ill_isv6 : 1, 1669 ill_dlpi_style_set : 1, 1670 1671 ill_ifname_pending : 1, 1672 ill_logical_down : 1, 1673 ill_dl_up : 1, 1674 ill_up_ipifs : 1, 1675 1676 ill_note_link : 1, /* supports link-up notification */ 1677 ill_capab_reneg : 1, /* capability renegotiation to be done */ 1678 ill_dld_capab_inprog : 1, /* direct dld capab call in prog */ 1679 ill_need_recover_multicast : 1, 1680 1681 ill_replumbing : 1, 1682 ill_arl_dlpi_pending : 1, 1683 1684 ill_pad_to_bit_31 : 18; 1685 1686 /* Following bit fields protected by ill_lock */ 1687 uint_t 1688 ill_fragtimer_executing : 1, 1689 ill_fragtimer_needrestart : 1, 1690 ill_manual_token : 1, /* system won't override ill_token */ 1691 ill_manual_linklocal : 1, /* system won't auto-conf linklocal */ 1692 1693 ill_manual_dst_linklocal : 1, /* same for pt-pt dst linklocal */ 1694 1695 ill_pad_bit_31 : 27; 1696 1697 /* 1698 * Used in SIOCSIFMUXID and SIOCGIFMUXID for 'ifconfig unplumb'. 1699 */ 1700 int ill_muxid; /* muxid returned from plink */ 1701 1702 /* Used for IP frag reassembly throttling on a per ILL basis. */ 1703 uint_t ill_ipf_gen; /* Generation of next fragment queue */ 1704 uint_t ill_frag_count; /* Count of all reassembly mblk bytes */ 1705 uint_t ill_frag_free_num_pkts; /* num of fragmented packets to free */ 1706 clock_t ill_last_frag_clean_time; /* time when frag's were pruned */ 1707 int ill_type; /* From <net/if_types.h> */ 1708 uint_t ill_dlpi_multicast_state; /* See below IDS_* */ 1709 uint_t ill_dlpi_fastpath_state; /* See below IDS_* */ 1710 1711 /* 1712 * Capabilities related fields. 1713 */ 1714 uint_t ill_dlpi_capab_state; /* State of capability query, IDCS_* */ 1715 uint_t ill_capab_pending_cnt; 1716 uint64_t ill_capabilities; /* Enabled capabilities, ILL_CAPAB_* */ 1717 ill_hcksum_capab_t *ill_hcksum_capab; /* H/W cksumming capabilities */ 1718 ill_zerocopy_capab_t *ill_zerocopy_capab; /* Zero-copy capabilities */ 1719 ill_dld_capab_t *ill_dld_capab; /* DLD capabilities */ 1720 ill_lso_capab_t *ill_lso_capab; /* Large Segment Offload capabilities */ 1721 mblk_t *ill_capab_reset_mp; /* Preallocated mblk for capab reset */ 1722 1723 uint8_t ill_max_hops; /* Maximum hops for any logical interface */ 1724 uint_t ill_user_mtu; /* User-specified MTU via SIOCSLIFLNKINFO */ 1725 uint32_t ill_reachable_time; /* Value for ND algorithm in msec */ 1726 uint32_t ill_reachable_retrans_time; /* Value for ND algorithm msec */ 1727 uint_t ill_max_buf; /* Max # of req to buffer for ND */ 1728 in6_addr_t ill_token; /* IPv6 interface id */ 1729 in6_addr_t ill_dest_token; /* Destination IPv6 interface id */ 1730 uint_t ill_token_length; 1731 uint32_t ill_xmit_count; /* ndp max multicast xmits */ 1732 mib2_ipIfStatsEntry_t *ill_ip_mib; /* ver indep. interface mib */ 1733 mib2_ipv6IfIcmpEntry_t *ill_icmp6_mib; /* Per interface mib */ 1734 1735 phyint_t *ill_phyint; 1736 uint64_t ill_flags; 1737 1738 kmutex_t ill_lock; /* Please see table below */ 1739 /* 1740 * The ill_nd_lla* fields handle the link layer address option 1741 * from neighbor discovery. This is used for external IPv6 1742 * address resolution. 1743 */ 1744 mblk_t *ill_nd_lla_mp; /* mblk which holds ill_nd_lla */ 1745 uint8_t *ill_nd_lla; /* Link Layer Address */ 1746 uint_t ill_nd_lla_len; /* Link Layer Address length */ 1747 /* 1748 * We have 4 phys_addr_req's sent down. This field keeps track 1749 * of which one is pending. 1750 */ 1751 t_uscalar_t ill_phys_addr_pend; /* which dl_phys_addr_req pending */ 1752 /* 1753 * Used to save errors that occur during plumbing 1754 */ 1755 uint_t ill_ifname_pending_err; 1756 avl_node_t ill_avl_byppa; /* avl node based on ppa */ 1757 list_t ill_nce; /* pointer to nce_s list */ 1758 uint_t ill_refcnt; /* active refcnt by threads */ 1759 uint_t ill_ire_cnt; /* ires associated with this ill */ 1760 kcondvar_t ill_cv; 1761 uint_t ill_ncec_cnt; /* ncecs associated with this ill */ 1762 uint_t ill_nce_cnt; /* nces associated with this ill */ 1763 uint_t ill_waiters; /* threads waiting in ipsq_enter */ 1764 /* 1765 * Contains the upper read queue pointer of the module immediately 1766 * beneath IP. This field allows IP to validate sub-capability 1767 * acknowledgments coming up from downstream. 1768 */ 1769 queue_t *ill_lmod_rq; /* read queue pointer of module below */ 1770 uint_t ill_lmod_cnt; /* number of modules beneath IP */ 1771 ip_m_t *ill_media; /* media specific params/functions */ 1772 t_uscalar_t ill_dlpi_pending; /* Last DLPI primitive issued */ 1773 uint_t ill_usesrc_ifindex; /* use src addr from this ILL */ 1774 struct ill_s *ill_usesrc_grp_next; /* Next ILL in the usesrc group */ 1775 boolean_t ill_trace_disable; /* True when alloc fails */ 1776 zoneid_t ill_zoneid; 1777 ip_stack_t *ill_ipst; /* Corresponds to a netstack_hold */ 1778 uint32_t ill_dhcpinit; /* IP_DHCPINIT_IFs for ill */ 1779 void *ill_flownotify_mh; /* Tx flow ctl, mac cb handle */ 1780 uint_t ill_ilm_cnt; /* ilms referencing this ill */ 1781 uint_t ill_ipallmulti_cnt; /* ip_join_allmulti() calls */ 1782 ilm_t *ill_ipallmulti_ilm; 1783 1784 mblk_t *ill_saved_ire_mp; /* Allocated for each extra IRE */ 1785 /* with ire_ill set so they can */ 1786 /* survive the ill going down and up. */ 1787 kmutex_t ill_saved_ire_lock; /* Protects ill_saved_ire_mp, cnt */ 1788 uint_t ill_saved_ire_cnt; /* # entries */ 1789 struct arl_ill_common_s *ill_common; 1790 ire_t *ill_ire_multicast; /* IRE_MULTICAST for ill */ 1791 clock_t ill_defend_start; /* start of 1 hour period */ 1792 uint_t ill_defend_count; /* # of announce/defends per ill */ 1793 /* 1794 * IPMP fields. 1795 */ 1796 ipmp_illgrp_t *ill_grp; /* IPMP group information */ 1797 list_node_t ill_actnode; /* next active ill in group */ 1798 list_node_t ill_grpnode; /* next ill in group */ 1799 ipif_t *ill_src_ipif; /* source address selection rotor */ 1800 ipif_t *ill_move_ipif; /* ipif awaiting move to new ill */ 1801 boolean_t ill_nom_cast; /* nominated for mcast/bcast */ 1802 uint_t ill_bound_cnt; /* # of data addresses bound to ill */ 1803 ipif_t *ill_bound_ipif; /* ipif chain bound to ill */ 1804 timeout_id_t ill_refresh_tid; /* ill refresh retry timeout id */ 1805 1806 uint32_t ill_mrouter_cnt; /* mrouter allmulti joins */ 1807 } ill_t; 1808 1809 /* 1810 * ILL_FREE_OK() means that there are no incoming pointer references 1811 * to the ill. 1812 */ 1813 #define ILL_FREE_OK(ill) \ 1814 ((ill)->ill_ire_cnt == 0 && (ill)->ill_ilm_cnt == 0 && \ 1815 (ill)->ill_ncec_cnt == 0 && (ill)->ill_nce_cnt == 0) 1816 1817 /* 1818 * An ipif/ill can be marked down only when the ire and ncec references 1819 * to that ipif/ill goes to zero. ILL_DOWN_OK() is a necessary condition 1820 * quiescence checks. See comments above IPIF_DOWN_OK for details 1821 * on why ires and nces are selectively considered for this macro. 1822 */ 1823 #define ILL_DOWN_OK(ill) \ 1824 (ill->ill_ire_cnt == 0 && ill->ill_ncec_cnt == 0 && \ 1825 ill->ill_nce_cnt == 0) 1826 1827 /* 1828 * The following table lists the protection levels of the various members 1829 * of the ill_t. Same notation as that used for ipif_t above is used. 1830 * 1831 * Write Read 1832 * 1833 * ill_ifptr ill_g_lock + s Write once 1834 * ill_rq ipsq Write once 1835 * ill_wq ipsq Write once 1836 * 1837 * ill_error ipsq None 1838 * ill_ipif ill_g_lock + ipsq ill_g_lock OR ipsq 1839 * ill_ipif_up_count ill_lock + ipsq ill_lock OR ipsq 1840 * ill_max_frag ill_lock ill_lock 1841 * ill_current_frag ill_lock ill_lock 1842 * 1843 * ill_name ill_g_lock + ipsq Write once 1844 * ill_name_length ill_g_lock + ipsq Write once 1845 * ill_ndd_name ipsq Write once 1846 * ill_net_type ipsq Write once 1847 * ill_ppa ill_g_lock + ipsq Write once 1848 * ill_sap ipsq + down ill Write once 1849 * ill_sap_length ipsq + down ill Write once 1850 * ill_phys_addr_length ipsq + down ill Write once 1851 * 1852 * ill_bcast_addr_length ipsq ipsq 1853 * ill_mactype ipsq ipsq 1854 * ill_frag_ptr ipsq ipsq 1855 * 1856 * ill_frag_timer_id ill_lock ill_lock 1857 * ill_frag_hash_tbl ipsq up ill 1858 * ill_ilm ill_mcast_lock(WRITER) ill_mcast_lock(READER) 1859 * ill_global_timer ill_mcast_lock(WRITER) ill_mcast_lock(READER) 1860 * ill_mcast_type ill_mcast_lock(WRITER) ill_mcast_lock(READER) 1861 * ill_mcast_v1_time ill_mcast_lock(WRITER) ill_mcast_lock(READER) 1862 * ill_mcast_v2_time ill_mcast_lock(WRITER) ill_mcast_lock(READER) 1863 * ill_mcast_v1_tset ill_mcast_lock(WRITER) ill_mcast_lock(READER) 1864 * ill_mcast_v2_tset ill_mcast_lock(WRITER) ill_mcast_lock(READER) 1865 * ill_mcast_rv ill_mcast_lock(WRITER) ill_mcast_lock(READER) 1866 * ill_mcast_qi ill_mcast_lock(WRITER) ill_mcast_lock(READER) 1867 * 1868 * ill_down_mp ipsq ipsq 1869 * ill_dlpi_deferred ill_lock ill_lock 1870 * ill_dlpi_pending ipsq + ill_lock ipsq or ill_lock or 1871 * absence of ipsq writer. 1872 * ill_phys_addr_mp ipsq + down ill only when ill is up 1873 * ill_mcast_deferred ill_lock ill_lock 1874 * ill_phys_addr ipsq + down ill only when ill is up 1875 * ill_dest_addr_mp ipsq + down ill only when ill is up 1876 * ill_dest_addr ipsq + down ill only when ill is up 1877 * 1878 * ill_state_flags ill_lock ill_lock 1879 * exclusive bit flags ipsq_t ipsq_t 1880 * shared bit flags ill_lock ill_lock 1881 * 1882 * ill_muxid ipsq Not atomic 1883 * 1884 * ill_ipf_gen Not atomic 1885 * ill_frag_count atomics atomics 1886 * ill_type ipsq + down ill only when ill is up 1887 * ill_dlpi_multicast_state ill_lock ill_lock 1888 * ill_dlpi_fastpath_state ill_lock ill_lock 1889 * ill_dlpi_capab_state ipsq ipsq 1890 * ill_max_hops ipsq Not atomic 1891 * 1892 * ill_mtu ill_lock None 1893 * 1894 * ill_user_mtu ipsq + ill_lock ill_lock 1895 * ill_reachable_time ipsq + ill_lock ill_lock 1896 * ill_reachable_retrans_time ipsq + ill_lock ill_lock 1897 * ill_max_buf ipsq + ill_lock ill_lock 1898 * 1899 * Next 2 fields need ill_lock because of the get ioctls. They should not 1900 * report partially updated results without executing in the ipsq. 1901 * ill_token ipsq + ill_lock ill_lock 1902 * ill_token_length ipsq + ill_lock ill_lock 1903 * ill_dest_token ipsq + down ill only when ill is up 1904 * ill_xmit_count ipsq + down ill write once 1905 * ill_ip6_mib ipsq + down ill only when ill is up 1906 * ill_icmp6_mib ipsq + down ill only when ill is up 1907 * 1908 * ill_phyint ipsq, ill_g_lock, ill_lock Any of them 1909 * ill_flags ill_lock ill_lock 1910 * ill_nd_lla_mp ipsq + down ill only when ill is up 1911 * ill_nd_lla ipsq + down ill only when ill is up 1912 * ill_nd_lla_len ipsq + down ill only when ill is up 1913 * ill_phys_addr_pend ipsq + down ill only when ill is up 1914 * ill_ifname_pending_err ipsq ipsq 1915 * ill_avl_byppa ipsq, ill_g_lock write once 1916 * 1917 * ill_fastpath_list ill_lock ill_lock 1918 * ill_refcnt ill_lock ill_lock 1919 * ill_ire_cnt ill_lock ill_lock 1920 * ill_cv ill_lock ill_lock 1921 * ill_ncec_cnt ill_lock ill_lock 1922 * ill_nce_cnt ill_lock ill_lock 1923 * ill_ilm_cnt ill_lock ill_lock 1924 * ill_src_ipif ill_g_lock ill_g_lock 1925 * ill_trace ill_lock ill_lock 1926 * ill_usesrc_grp_next ill_g_usesrc_lock ill_g_usesrc_lock 1927 * ill_dhcpinit atomics atomics 1928 * ill_flownotify_mh write once write once 1929 * ill_capab_pending_cnt ipsq ipsq 1930 * ill_ipallmulti_cnt ill_lock ill_lock 1931 * ill_ipallmulti_ilm ill_lock ill_lock 1932 * ill_saved_ire_mp ill_saved_ire_lock ill_saved_ire_lock 1933 * ill_saved_ire_cnt ill_saved_ire_lock ill_saved_ire_lock 1934 * ill_arl ??? ??? 1935 * ill_ire_multicast ipsq + quiescent none 1936 * ill_bound_ipif ipsq ipsq 1937 * ill_actnode ipsq + ipmp_lock ipsq OR ipmp_lock 1938 * ill_grpnode ipsq + ill_g_lock ipsq OR ill_g_lock 1939 * ill_src_ipif ill_g_lock ill_g_lock 1940 * ill_move_ipif ipsq ipsq 1941 * ill_nom_cast ipsq ipsq OR advisory 1942 * ill_refresh_tid ill_lock ill_lock 1943 * ill_grp (for IPMP ill) write once write once 1944 * ill_grp (for underlying ill) ipsq + ill_g_lock ipsq OR ill_g_lock 1945 * ill_mrouter_cnt atomics atomics 1946 * 1947 * NOTE: It's OK to make heuristic decisions on an underlying interface 1948 * by using IS_UNDER_IPMP() or comparing ill_grp's raw pointer value. 1949 */ 1950 1951 /* 1952 * For ioctl restart mechanism see ip_reprocess_ioctl() 1953 */ 1954 struct ip_ioctl_cmd_s; 1955 1956 typedef int (*ifunc_t)(ipif_t *, struct sockaddr_in *, queue_t *, mblk_t *, 1957 struct ip_ioctl_cmd_s *, void *); 1958 1959 typedef struct ip_ioctl_cmd_s { 1960 int ipi_cmd; 1961 size_t ipi_copyin_size; 1962 uint_t ipi_flags; 1963 uint_t ipi_cmd_type; 1964 ifunc_t ipi_func; 1965 ifunc_t ipi_func_restart; 1966 } ip_ioctl_cmd_t; 1967 1968 /* 1969 * ipi_cmd_type: 1970 * 1971 * IF_CMD 1 old style ifreq cmd 1972 * LIF_CMD 2 new style lifreq cmd 1973 * ARP_CMD 3 arpreq cmd 1974 * XARP_CMD 4 xarpreq cmd 1975 * MSFILT_CMD 5 multicast source filter cmd 1976 * MISC_CMD 6 misc cmd (not a more specific one above) 1977 */ 1978 1979 enum { IF_CMD = 1, LIF_CMD, ARP_CMD, XARP_CMD, MSFILT_CMD, MISC_CMD }; 1980 1981 #define IPI_DONTCARE 0 /* For ioctl encoded values that don't matter */ 1982 1983 /* Flag values in ipi_flags */ 1984 #define IPI_PRIV 0x1 /* Root only command */ 1985 #define IPI_MODOK 0x2 /* Permitted on mod instance of IP */ 1986 #define IPI_WR 0x4 /* Need to grab writer access */ 1987 #define IPI_GET_CMD 0x8 /* branch to mi_copyout on success */ 1988 /* unused 0x10 */ 1989 #define IPI_NULL_BCONT 0x20 /* ioctl has not data and hence no b_cont */ 1990 1991 extern ip_ioctl_cmd_t ip_ndx_ioctl_table[]; 1992 extern ip_ioctl_cmd_t ip_misc_ioctl_table[]; 1993 extern int ip_ndx_ioctl_count; 1994 extern int ip_misc_ioctl_count; 1995 1996 /* Passed down by ARP to IP during I_PLINK/I_PUNLINK */ 1997 typedef struct ipmx_s { 1998 char ipmx_name[LIFNAMSIZ]; /* if name */ 1999 uint_t 2000 ipmx_arpdev_stream : 1, /* This is the arp stream */ 2001 ipmx_notused : 31; 2002 } ipmx_t; 2003 2004 /* 2005 * State for detecting if a driver supports certain features. 2006 * Support for DL_ENABMULTI_REQ uses ill_dlpi_multicast_state. 2007 * Support for DLPI M_DATA fastpath uses ill_dlpi_fastpath_state. 2008 */ 2009 #define IDS_UNKNOWN 0 /* No DLPI request sent */ 2010 #define IDS_INPROGRESS 1 /* DLPI request sent */ 2011 #define IDS_OK 2 /* DLPI request completed successfully */ 2012 #define IDS_FAILED 3 /* DLPI request failed */ 2013 2014 /* Support for DL_CAPABILITY_REQ uses ill_dlpi_capab_state. */ 2015 enum { 2016 IDCS_UNKNOWN, 2017 IDCS_PROBE_SENT, 2018 IDCS_OK, 2019 IDCS_RESET_SENT, 2020 IDCS_RENEG, 2021 IDCS_FAILED 2022 }; 2023 2024 /* Named Dispatch Parameter Management Structure */ 2025 typedef struct ipparam_s { 2026 uint_t ip_param_min; 2027 uint_t ip_param_max; 2028 uint_t ip_param_value; 2029 char *ip_param_name; 2030 } ipparam_t; 2031 2032 /* Extended NDP Management Structure */ 2033 typedef struct ipndp_s { 2034 ndgetf_t ip_ndp_getf; 2035 ndsetf_t ip_ndp_setf; 2036 caddr_t ip_ndp_data; 2037 char *ip_ndp_name; 2038 } ipndp_t; 2039 2040 /* IXA Notification types */ 2041 typedef enum { 2042 IXAN_LSO, /* LSO capability change */ 2043 IXAN_PMTU, /* PMTU change */ 2044 IXAN_ZCOPY /* ZEROCOPY capability change */ 2045 } ixa_notify_type_t; 2046 2047 typedef uint_t ixa_notify_arg_t; 2048 2049 typedef void (*ixa_notify_t)(void *, ip_xmit_attr_t *ixa, ixa_notify_type_t, 2050 ixa_notify_arg_t); 2051 2052 /* 2053 * Attribute flags that are common to the transmit and receive attributes 2054 */ 2055 #define IAF_IS_IPV4 0x80000000 /* ipsec_*_v4 */ 2056 #define IAF_TRUSTED_ICMP 0x40000000 /* ipsec_*_icmp_loopback */ 2057 #define IAF_NO_LOOP_ZONEID_SET 0x20000000 /* Zone that shouldn't have */ 2058 /* a copy */ 2059 #define IAF_LOOPBACK_COPY 0x10000000 /* For multi and broadcast */ 2060 2061 #define IAF_MASK 0xf0000000 /* Flags that are common */ 2062 2063 /* 2064 * Transmit side attributes used between the transport protocols and IP as 2065 * well as inside IP. It is also used to cache information in the conn_t i.e. 2066 * replaces conn_ire and the IPsec caching in the conn_t. 2067 */ 2068 struct ip_xmit_attr_s { 2069 iaflags_t ixa_flags; /* IXAF_*. See below */ 2070 2071 uint32_t ixa_free_flags; /* IXA_FREE_*. See below */ 2072 uint32_t ixa_refcnt; /* Using atomics */ 2073 2074 /* 2075 * Always initialized independently of ixa_flags settings. 2076 * Used by ip_xmit so we keep them up front for cache locality. 2077 */ 2078 uint32_t ixa_xmit_hint; /* For ECMP and GLD TX ring fanout */ 2079 uint_t ixa_pktlen; /* Always set. For frag and stats */ 2080 zoneid_t ixa_zoneid; /* Assumed always set */ 2081 2082 /* Always set for conn_ip_output(); might be stale */ 2083 /* 2084 * Since TCP keeps the conn_t around past the process going away 2085 * we need to use the "notr" (e.g, ire_refhold_notr) for ixa_ire, 2086 * ixa_nce, and ixa_dce. 2087 */ 2088 ire_t *ixa_ire; /* Forwarding table entry */ 2089 uint_t ixa_ire_generation; 2090 nce_t *ixa_nce; /* Neighbor cache entry */ 2091 dce_t *ixa_dce; /* Destination cache entry */ 2092 uint_t ixa_dce_generation; 2093 uint_t ixa_src_generation; /* If IXAF_VERIFY_SOURCE */ 2094 2095 uint32_t ixa_src_preferences; /* prefs for src addr select */ 2096 uint32_t ixa_pmtu; /* IXAF_VERIFY_PMTU */ 2097 2098 /* Set by ULP if IXAF_VERIFY_PMTU; otherwise set by IP */ 2099 uint32_t ixa_fragsize; 2100 2101 int8_t ixa_use_min_mtu; /* IXAF_USE_MIN_MTU values */ 2102 2103 pfirepostfrag_t ixa_postfragfn; /* Set internally in IP */ 2104 2105 in6_addr_t ixa_nexthop_v6; /* IXAF_NEXTHOP_SET */ 2106 #define ixa_nexthop_v4 V4_PART_OF_V6(ixa_nexthop_v6) 2107 2108 zoneid_t ixa_no_loop_zoneid; /* IXAF_NO_LOOP_ZONEID_SET */ 2109 2110 uint_t ixa_scopeid; /* For IPv6 link-locals */ 2111 2112 uint_t ixa_broadcast_ttl; /* IXAF_BROACAST_TTL_SET */ 2113 2114 uint_t ixa_multicast_ttl; /* Assumed set for multicast */ 2115 uint_t ixa_multicast_ifindex; /* Assumed set for multicast */ 2116 ipaddr_t ixa_multicast_ifaddr; /* Assumed set for multicast */ 2117 2118 int ixa_raw_cksum_offset; /* If IXAF_SET_RAW_CKSUM */ 2119 2120 uint32_t ixa_ident; /* For IPv6 fragment header */ 2121 2122 /* 2123 * Cached LSO information. 2124 */ 2125 ill_lso_capab_t ixa_lso_capab; /* Valid when IXAF_LSO_CAPAB */ 2126 2127 uint64_t ixa_ipsec_policy_gen; /* Generation from iph_gen */ 2128 /* 2129 * The following IPsec fields are only initialized when 2130 * IXAF_IPSEC_SECURE is set. Otherwise they contain garbage. 2131 */ 2132 ipsec_latch_t *ixa_ipsec_latch; /* Just the ids */ 2133 struct ipsa_s *ixa_ipsec_ah_sa; /* Hard reference SA for AH */ 2134 struct ipsa_s *ixa_ipsec_esp_sa; /* Hard reference SA for ESP */ 2135 struct ipsec_policy_s *ixa_ipsec_policy; /* why are we here? */ 2136 struct ipsec_action_s *ixa_ipsec_action; /* For reflected packets */ 2137 ipsa_ref_t ixa_ipsec_ref[2]; /* Soft reference to SA */ 2138 /* 0: ESP, 1: AH */ 2139 2140 /* 2141 * The selectors here are potentially different than the SPD rule's 2142 * selectors, and we need to have both available for IKEv2. 2143 * 2144 * NOTE: "Source" and "Dest" are w.r.t. outbound datagrams. Ports can 2145 * be zero, and the protocol number is needed to make the ports 2146 * significant. 2147 */ 2148 uint16_t ixa_ipsec_src_port; /* Source port number of d-gram. */ 2149 uint16_t ixa_ipsec_dst_port; /* Destination port number of d-gram. */ 2150 uint8_t ixa_ipsec_icmp_type; /* ICMP type of d-gram */ 2151 uint8_t ixa_ipsec_icmp_code; /* ICMP code of d-gram */ 2152 2153 sa_family_t ixa_ipsec_inaf; /* Inner address family */ 2154 #define IXA_MAX_ADDRLEN 4 /* Max addr len. (in 32-bit words) */ 2155 uint32_t ixa_ipsec_insrc[IXA_MAX_ADDRLEN]; /* Inner src address */ 2156 uint32_t ixa_ipsec_indst[IXA_MAX_ADDRLEN]; /* Inner dest address */ 2157 uint8_t ixa_ipsec_insrcpfx; /* Inner source prefix */ 2158 uint8_t ixa_ipsec_indstpfx; /* Inner destination prefix */ 2159 2160 uint8_t ixa_ipsec_proto; /* IP protocol number for d-gram. */ 2161 2162 /* Always initialized independently of ixa_flags settings */ 2163 uint_t ixa_ifindex; /* Assumed always set */ 2164 uint16_t ixa_ip_hdr_length; /* Points to ULP header */ 2165 uint8_t ixa_protocol; /* Protocol number for ULP cksum */ 2166 ts_label_t *ixa_tsl; /* Always set. NULL if not TX */ 2167 ip_stack_t *ixa_ipst; /* Always set */ 2168 uint32_t ixa_extra_ident; /* Set if LSO */ 2169 cred_t *ixa_cred; /* For getpeerucred */ 2170 pid_t ixa_cpid; /* For getpeerucred */ 2171 2172 #ifdef DEBUG 2173 kthread_t *ixa_curthread; /* For serialization assert */ 2174 #endif 2175 squeue_t *ixa_sqp; /* Set from conn_sqp as a hint */ 2176 uintptr_t ixa_cookie; /* cookie to use for tx flow control */ 2177 2178 /* 2179 * Must be set by ULP if any of IXAF_VERIFY_LSO, IXAF_VERIFY_PMTU, 2180 * or IXAF_VERIFY_ZCOPY is set. 2181 */ 2182 ixa_notify_t ixa_notify; /* Registered upcall notify function */ 2183 void *ixa_notify_cookie; /* ULP cookie for ixa_notify */ 2184 }; 2185 2186 /* 2187 * Flags to indicate which transmit attributes are set. 2188 * Split into "xxx_SET" ones which indicate that the "xxx" field it set, and 2189 * single flags. 2190 */ 2191 #define IXAF_REACH_CONF 0x00000001 /* Reachability confirmation */ 2192 #define IXAF_BROADCAST_TTL_SET 0x00000002 /* ixa_broadcast_ttl valid */ 2193 #define IXAF_SET_SOURCE 0x00000004 /* Replace if broadcast */ 2194 #define IXAF_USE_MIN_MTU 0x00000008 /* IPV6_USE_MIN_MTU */ 2195 2196 #define IXAF_DONTFRAG 0x00000010 /* IP*_DONTFRAG */ 2197 #define IXAF_VERIFY_PMTU 0x00000020 /* ixa_pmtu/ixa_fragsize set */ 2198 #define IXAF_PMTU_DISCOVERY 0x00000040 /* Create/use PMTU state */ 2199 #define IXAF_MULTICAST_LOOP 0x00000080 /* IP_MULTICAST_LOOP */ 2200 2201 #define IXAF_IPSEC_SECURE 0x00000100 /* Need IPsec processing */ 2202 #define IXAF_UCRED_TSL 0x00000200 /* ixa_tsl from SCM_UCRED */ 2203 #define IXAF_DONTROUTE 0x00000400 /* SO_DONTROUTE */ 2204 #define IXAF_NO_IPSEC 0x00000800 /* Ignore policy */ 2205 2206 #define IXAF_PMTU_TOO_SMALL 0x00001000 /* PMTU too small */ 2207 #define IXAF_SET_ULP_CKSUM 0x00002000 /* Calculate ULP checksum */ 2208 #define IXAF_VERIFY_SOURCE 0x00004000 /* Check that source is ok */ 2209 #define IXAF_NEXTHOP_SET 0x00008000 /* ixa_nexthop set */ 2210 2211 #define IXAF_PMTU_IPV4_DF 0x00010000 /* Set IPv4 DF */ 2212 #define IXAF_NO_DEV_FLOW_CTL 0x00020000 /* Protocol needs no flow ctl */ 2213 #define IXAF_NO_TTL_CHANGE 0x00040000 /* Internal to IP */ 2214 #define IXAF_IPV6_ADD_FRAGHDR 0x00080000 /* Add fragment header */ 2215 2216 #define IXAF_IPSEC_TUNNEL 0x00100000 /* Tunnel mode */ 2217 #define IXAF_NO_PFHOOK 0x00200000 /* Skip xmit pfhook */ 2218 #define IXAF_NO_TRACE 0x00400000 /* When back from ARP/ND */ 2219 #define IXAF_SCOPEID_SET 0x00800000 /* ixa_scopeid set */ 2220 2221 #define IXAF_MULTIRT_MULTICAST 0x01000000 /* MULTIRT for multicast */ 2222 #define IXAF_NO_HW_CKSUM 0x02000000 /* Force software cksum */ 2223 #define IXAF_SET_RAW_CKSUM 0x04000000 /* Use ixa_raw_cksum_offset */ 2224 #define IXAF_IPSEC_GLOBAL_POLICY 0x08000000 /* Policy came from global */ 2225 2226 /* Note the following uses bits 0x10000000 through 0x80000000 */ 2227 #define IXAF_IS_IPV4 IAF_IS_IPV4 2228 #define IXAF_TRUSTED_ICMP IAF_TRUSTED_ICMP 2229 #define IXAF_NO_LOOP_ZONEID_SET IAF_NO_LOOP_ZONEID_SET 2230 #define IXAF_LOOPBACK_COPY IAF_LOOPBACK_COPY 2231 2232 /* Note: use the upper 32 bits */ 2233 #define IXAF_VERIFY_LSO 0x100000000 /* Check LSO capability */ 2234 #define IXAF_LSO_CAPAB 0x200000000 /* Capable of LSO */ 2235 #define IXAF_VERIFY_ZCOPY 0x400000000 /* Check Zero Copy capability */ 2236 #define IXAF_ZCOPY_CAPAB 0x800000000 /* Capable of ZEROCOPY */ 2237 2238 /* 2239 * The normal flags for sending packets e.g., icmp errors 2240 */ 2241 #define IXAF_BASIC_SIMPLE_V4 (IXAF_SET_ULP_CKSUM | IXAF_IS_IPV4) 2242 #define IXAF_BASIC_SIMPLE_V6 (IXAF_SET_ULP_CKSUM) 2243 2244 /* 2245 * Normally these fields do not have a hold. But in some cases they do, for 2246 * instance when we've gone through ip_*_attr_to/from_mblk. 2247 * We use ixa_free_flags to indicate that they have a hold and need to be 2248 * released on cleanup. 2249 */ 2250 #define IXA_FREE_CRED 0x00000001 /* ixa_cred needs to be rele */ 2251 #define IXA_FREE_TSL 0x00000002 /* ixa_tsl needs to be rele */ 2252 2253 /* 2254 * Simplistic way to set the ixa_xmit_hint for locally generated traffic 2255 * and forwarded traffic. The shift amount are based on the size of the 2256 * structs to discard the low order bits which don't have much if any variation 2257 * (coloring in kmem_cache_alloc might provide some variation). 2258 * 2259 * Basing the locally generated hint on the address of the conn_t means that 2260 * the packets from the same socket/connection do not get reordered. 2261 * Basing the hint for forwarded traffic on the ill_ring_t means that 2262 * packets from the same NIC+ring are likely to use the same outbound ring 2263 * hence we get low contention on the ring in the transmitting driver. 2264 */ 2265 #define CONN_TO_XMIT_HINT(connp) ((uint32_t)(((uintptr_t)connp) >> 11)) 2266 #define ILL_RING_TO_XMIT_HINT(ring) ((uint32_t)(((uintptr_t)ring) >> 7)) 2267 2268 /* 2269 * IP set Destination Flags used by function ip_set_destination, 2270 * ip_attr_connect, and conn_connect. 2271 */ 2272 #define IPDF_ALLOW_MCBC 0x1 /* Allow multi/broadcast */ 2273 #define IPDF_VERIFY_DST 0x2 /* Verify destination addr */ 2274 #define IPDF_SELECT_SRC 0x4 /* Select source address */ 2275 #define IPDF_LSO 0x8 /* Try LSO */ 2276 #define IPDF_IPSEC 0x10 /* Set IPsec policy */ 2277 #define IPDF_ZONE_IS_GLOBAL 0x20 /* From conn_zone_is_global */ 2278 #define IPDF_ZCOPY 0x40 /* Try ZEROCOPY */ 2279 #define IPDF_UNIQUE_DCE 0x80 /* Get a per-destination DCE */ 2280 2281 /* 2282 * Receive side attributes used between the transport protocols and IP as 2283 * well as inside IP. 2284 */ 2285 struct ip_recv_attr_s { 2286 iaflags_t ira_flags; /* See below */ 2287 2288 uint32_t ira_free_flags; /* IRA_FREE_*. See below */ 2289 2290 /* 2291 * This is a hint for TCP SYN packets. 2292 * Always initialized independently of ira_flags settings 2293 */ 2294 squeue_t *ira_sqp; 2295 ill_rx_ring_t *ira_ring; /* Internal to IP */ 2296 2297 /* For ip_accept_tcp when IRAF_TARGET_SQP is set */ 2298 squeue_t *ira_target_sqp; 2299 mblk_t *ira_target_sqp_mp; 2300 2301 /* Always initialized independently of ira_flags settings */ 2302 uint32_t ira_xmit_hint; /* For ECMP and GLD TX ring fanout */ 2303 zoneid_t ira_zoneid; /* ALL_ZONES unless local delivery */ 2304 uint_t ira_pktlen; /* Always set. For frag and stats */ 2305 uint16_t ira_ip_hdr_length; /* Points to ULP header */ 2306 uint8_t ira_protocol; /* Protocol number for ULP cksum */ 2307 uint_t ira_rifindex; /* Received ifindex */ 2308 uint_t ira_ruifindex; /* Received upper ifindex */ 2309 ts_label_t *ira_tsl; /* Always set. NULL if not TX */ 2310 /* 2311 * ira_rill and ira_ill is set inside IP, but not when conn_recv is 2312 * called; ULPs should use ira_ruifindex instead. 2313 */ 2314 ill_t *ira_rill; /* ill where packet came */ 2315 ill_t *ira_ill; /* ill where IP address hosted */ 2316 cred_t *ira_cred; /* For getpeerucred */ 2317 pid_t ira_cpid; /* For getpeerucred */ 2318 2319 /* Used when IRAF_VERIFIED_SRC is set; this source was ok */ 2320 ipaddr_t ira_verified_src; 2321 2322 /* 2323 * The following IPsec fields are only initialized when 2324 * IRAF_IPSEC_SECURE is set. Otherwise they contain garbage. 2325 */ 2326 struct ipsec_action_s *ira_ipsec_action; /* how we made it in.. */ 2327 struct ipsa_s *ira_ipsec_ah_sa; /* SA for AH */ 2328 struct ipsa_s *ira_ipsec_esp_sa; /* SA for ESP */ 2329 2330 ipaddr_t ira_mroute_tunnel; /* IRAF_MROUTE_TUNNEL_SET */ 2331 2332 zoneid_t ira_no_loop_zoneid; /* IRAF_NO_LOOP_ZONEID_SET */ 2333 2334 uint32_t ira_esp_udp_ports; /* IRAF_ESP_UDP_PORTS */ 2335 2336 /* 2337 * For IP_RECVSLLA and ip_ndp_conflict/find_solicitation. 2338 * Same size as max for sockaddr_dl 2339 */ 2340 #define IRA_L2SRC_SIZE 244 2341 uint8_t ira_l2src[IRA_L2SRC_SIZE]; /* If IRAF_L2SRC_SET */ 2342 2343 /* 2344 * Local handle that we use to do lazy setting of ira_l2src. 2345 * We defer setting l2src until needed but we do before any 2346 * ip_input pullupmsg or copymsg. 2347 */ 2348 struct mac_header_info_s *ira_mhip; /* Could be NULL */ 2349 }; 2350 2351 /* 2352 * Flags to indicate which receive attributes are set. 2353 */ 2354 #define IRAF_SYSTEM_LABELED 0x00000001 /* is_system_labeled() */ 2355 #define IRAF_IPV4_OPTIONS 0x00000002 /* Performance */ 2356 #define IRAF_MULTICAST 0x00000004 /* Was multicast at L3 */ 2357 #define IRAF_BROADCAST 0x00000008 /* Was broadcast at L3 */ 2358 #define IRAF_MULTIBROADCAST (IRAF_MULTICAST|IRAF_BROADCAST) 2359 2360 #define IRAF_LOOPBACK 0x00000010 /* Looped back by IP */ 2361 #define IRAF_VERIFY_IP_CKSUM 0x00000020 /* Need to verify IP */ 2362 #define IRAF_VERIFY_ULP_CKSUM 0x00000040 /* Need to verify TCP,UDP,etc */ 2363 #define IRAF_SCTP_CSUM_ERR 0x00000080 /* sctp pkt has failed chksum */ 2364 2365 #define IRAF_IPSEC_SECURE 0x00000100 /* Passed AH and/or ESP */ 2366 #define IRAF_DHCP_UNICAST 0x00000200 2367 #define IRAF_IPSEC_DECAPS 0x00000400 /* Was packet decapsulated */ 2368 /* from a matching inner packet? */ 2369 #define IRAF_TARGET_SQP 0x00000800 /* ira_target_sqp is set */ 2370 #define IRAF_VERIFIED_SRC 0x00001000 /* ira_verified_src set */ 2371 #define IRAF_RSVP 0x00002000 /* RSVP packet for rsvpd */ 2372 #define IRAF_MROUTE_TUNNEL_SET 0x00004000 /* From ip_mroute_decap */ 2373 #define IRAF_PIM_REGISTER 0x00008000 /* From register_mforward */ 2374 2375 #define IRAF_TX_MAC_EXEMPTABLE 0x00010000 /* Allow MAC_EXEMPT readdown */ 2376 #define IRAF_TX_SHARED_ADDR 0x00020000 /* Arrived on ALL_ZONES addr */ 2377 #define IRAF_ESP_UDP_PORTS 0x00040000 /* NAT-traversal packet */ 2378 #define IRAF_NO_HW_CKSUM 0x00080000 /* Force software cksum */ 2379 2380 #define IRAF_ICMP_ERROR 0x00100000 /* Send to conn_recvicmp */ 2381 #define IRAF_ROUTER_ALERT 0x00200000 /* IPv6 router alert */ 2382 #define IRAF_L2SRC_SET 0x00400000 /* ira_l2src has been set */ 2383 #define IRAF_L2SRC_LOOPBACK 0x00800000 /* Came from us */ 2384 2385 #define IRAF_L2DST_MULTICAST 0x01000000 /* Multicast at L2 */ 2386 #define IRAF_L2DST_BROADCAST 0x02000000 /* Broadcast at L2 */ 2387 /* Unused 0x04000000 */ 2388 /* Unused 0x08000000 */ 2389 2390 /* Below starts with 0x10000000 */ 2391 #define IRAF_IS_IPV4 IAF_IS_IPV4 2392 #define IRAF_TRUSTED_ICMP IAF_TRUSTED_ICMP 2393 #define IRAF_NO_LOOP_ZONEID_SET IAF_NO_LOOP_ZONEID_SET 2394 #define IRAF_LOOPBACK_COPY IAF_LOOPBACK_COPY 2395 2396 /* 2397 * Normally these fields do not have a hold. But in some cases they do, for 2398 * instance when we've gone through ip_*_attr_to/from_mblk. 2399 * We use ira_free_flags to indicate that they have a hold and need to be 2400 * released on cleanup. 2401 */ 2402 #define IRA_FREE_CRED 0x00000001 /* ira_cred needs to be rele */ 2403 #define IRA_FREE_TSL 0x00000002 /* ira_tsl needs to be rele */ 2404 2405 /* 2406 * Optional destination cache entry for path MTU information, 2407 * and ULP metrics. 2408 */ 2409 struct dce_s { 2410 uint_t dce_generation; /* Changed since cached? */ 2411 uint_t dce_flags; /* See below */ 2412 uint_t dce_ipversion; /* IPv4/IPv6 version */ 2413 uint32_t dce_pmtu; /* Path MTU if DCEF_PMTU */ 2414 uint32_t dce_ident; /* Per destination IP ident. */ 2415 iulp_t dce_uinfo; /* Metrics if DCEF_UINFO */ 2416 2417 struct dce_s *dce_next; 2418 struct dce_s **dce_ptpn; 2419 struct dcb_s *dce_bucket; 2420 2421 union { 2422 in6_addr_t dceu_v6addr; 2423 ipaddr_t dceu_v4addr; 2424 } dce_u; 2425 #define dce_v4addr dce_u.dceu_v4addr 2426 #define dce_v6addr dce_u.dceu_v6addr 2427 /* Note that for IPv6+IPMP we use the ifindex for the upper interface */ 2428 uint_t dce_ifindex; /* For IPv6 link-locals */ 2429 2430 kmutex_t dce_lock; 2431 uint_t dce_refcnt; 2432 uint64_t dce_last_change_time; /* Path MTU. In seconds */ 2433 2434 ip_stack_t *dce_ipst; /* Does not have a netstack_hold */ 2435 }; 2436 2437 /* 2438 * Values for dce_generation. 2439 * 2440 * If a DCE has DCE_GENERATION_CONDEMNED, the last dce_refrele should delete 2441 * it. 2442 * 2443 * DCE_GENERATION_VERIFY is never stored in dce_generation but it is 2444 * stored in places that cache DCE (such as ixa_dce_generation). 2445 * It is used as a signal that the cache is stale and needs to be reverified. 2446 */ 2447 #define DCE_GENERATION_CONDEMNED 0 2448 #define DCE_GENERATION_VERIFY 1 2449 #define DCE_GENERATION_INITIAL 2 2450 #define DCE_IS_CONDEMNED(dce) \ 2451 ((dce)->dce_generation == DCE_GENERATION_CONDEMNED) 2452 2453 2454 /* 2455 * Values for ips_src_generation. 2456 * 2457 * SRC_GENERATION_VERIFY is never stored in ips_src_generation but it is 2458 * stored in places that cache IREs (ixa_src_generation). It is used as a 2459 * signal that the cache is stale and needs to be reverified. 2460 */ 2461 #define SRC_GENERATION_VERIFY 0 2462 #define SRC_GENERATION_INITIAL 1 2463 2464 /* 2465 * The kernel stores security attributes of all gateways in a database made 2466 * up of one or more tsol_gcdb_t elements. Each tsol_gcdb_t contains the 2467 * security-related credentials of the gateway. More than one gateways may 2468 * share entries in the database. 2469 * 2470 * The tsol_gc_t structure represents the gateway to credential association, 2471 * and refers to an entry in the database. One or more tsol_gc_t entities are 2472 * grouped together to form one or more tsol_gcgrp_t, each representing the 2473 * list of security attributes specific to the gateway. A gateway may be 2474 * associated with at most one credentials group. 2475 */ 2476 struct tsol_gcgrp_s; 2477 2478 extern uchar_t ip6opt_ls; /* TX IPv6 enabler */ 2479 2480 /* 2481 * Gateway security credential record. 2482 */ 2483 typedef struct tsol_gcdb_s { 2484 uint_t gcdb_refcnt; /* reference count */ 2485 struct rtsa_s gcdb_attr; /* security attributes */ 2486 #define gcdb_mask gcdb_attr.rtsa_mask 2487 #define gcdb_doi gcdb_attr.rtsa_doi 2488 #define gcdb_slrange gcdb_attr.rtsa_slrange 2489 } tsol_gcdb_t; 2490 2491 /* 2492 * Gateway to credential association. 2493 */ 2494 typedef struct tsol_gc_s { 2495 uint_t gc_refcnt; /* reference count */ 2496 struct tsol_gcgrp_s *gc_grp; /* pointer to group */ 2497 struct tsol_gc_s *gc_prev; /* previous in list */ 2498 struct tsol_gc_s *gc_next; /* next in list */ 2499 tsol_gcdb_t *gc_db; /* pointer to actual credentials */ 2500 } tsol_gc_t; 2501 2502 /* 2503 * Gateway credentials group address. 2504 */ 2505 typedef struct tsol_gcgrp_addr_s { 2506 int ga_af; /* address family */ 2507 in6_addr_t ga_addr; /* IPv4 mapped or IPv6 address */ 2508 } tsol_gcgrp_addr_t; 2509 2510 /* 2511 * Gateway credentials group. 2512 */ 2513 typedef struct tsol_gcgrp_s { 2514 uint_t gcgrp_refcnt; /* reference count */ 2515 krwlock_t gcgrp_rwlock; /* lock to protect following */ 2516 uint_t gcgrp_count; /* number of credentials */ 2517 tsol_gc_t *gcgrp_head; /* first credential in list */ 2518 tsol_gc_t *gcgrp_tail; /* last credential in list */ 2519 tsol_gcgrp_addr_t gcgrp_addr; /* next-hop gateway address */ 2520 } tsol_gcgrp_t; 2521 2522 extern kmutex_t gcgrp_lock; 2523 2524 #define GC_REFRELE(p) { \ 2525 ASSERT((p)->gc_grp != NULL); \ 2526 rw_enter(&(p)->gc_grp->gcgrp_rwlock, RW_WRITER); \ 2527 ASSERT((p)->gc_refcnt > 0); \ 2528 if (--((p)->gc_refcnt) == 0) \ 2529 gc_inactive(p); \ 2530 else \ 2531 rw_exit(&(p)->gc_grp->gcgrp_rwlock); \ 2532 } 2533 2534 #define GCGRP_REFHOLD(p) { \ 2535 mutex_enter(&gcgrp_lock); \ 2536 ++((p)->gcgrp_refcnt); \ 2537 ASSERT((p)->gcgrp_refcnt != 0); \ 2538 mutex_exit(&gcgrp_lock); \ 2539 } 2540 2541 #define GCGRP_REFRELE(p) { \ 2542 mutex_enter(&gcgrp_lock); \ 2543 ASSERT((p)->gcgrp_refcnt > 0); \ 2544 if (--((p)->gcgrp_refcnt) == 0) \ 2545 gcgrp_inactive(p); \ 2546 ASSERT(MUTEX_HELD(&gcgrp_lock)); \ 2547 mutex_exit(&gcgrp_lock); \ 2548 } 2549 2550 /* 2551 * IRE gateway security attributes structure, pointed to by tsol_ire_gw_secattr 2552 */ 2553 struct tsol_tnrhc; 2554 2555 struct tsol_ire_gw_secattr_s { 2556 kmutex_t igsa_lock; /* lock to protect following */ 2557 struct tsol_tnrhc *igsa_rhc; /* host entry for gateway */ 2558 tsol_gc_t *igsa_gc; /* for prefix IREs */ 2559 }; 2560 2561 void irb_refrele_ftable(irb_t *); 2562 2563 extern struct kmem_cache *rt_entry_cache; 2564 2565 typedef struct ire4 { 2566 ipaddr_t ire4_mask; /* Mask for matching this IRE. */ 2567 ipaddr_t ire4_addr; /* Address this IRE represents. */ 2568 ipaddr_t ire4_gateway_addr; /* Gateway including for IRE_ONLINK */ 2569 ipaddr_t ire4_setsrc_addr; /* RTF_SETSRC */ 2570 } ire4_t; 2571 2572 typedef struct ire6 { 2573 in6_addr_t ire6_mask; /* Mask for matching this IRE. */ 2574 in6_addr_t ire6_addr; /* Address this IRE represents. */ 2575 in6_addr_t ire6_gateway_addr; /* Gateway including for IRE_ONLINK */ 2576 in6_addr_t ire6_setsrc_addr; /* RTF_SETSRC */ 2577 } ire6_t; 2578 2579 typedef union ire_addr { 2580 ire6_t ire6_u; 2581 ire4_t ire4_u; 2582 } ire_addr_u_t; 2583 2584 /* 2585 * Internet Routing Entry 2586 * When we have multiple identical IREs we logically add them by manipulating 2587 * ire_identical_ref and ire_delete first decrements 2588 * that and when it reaches 1 we know it is the last IRE. 2589 * "identical" is defined as being the same for: 2590 * ire_addr, ire_netmask, ire_gateway, ire_ill, ire_zoneid, and ire_type 2591 * For instance, multiple IRE_BROADCASTs for the same subnet number are 2592 * viewed as identical, and so are the IRE_INTERFACEs when there are 2593 * multiple logical interfaces (on the same ill) with the same subnet prefix. 2594 */ 2595 struct ire_s { 2596 struct ire_s *ire_next; /* The hash chain must be first. */ 2597 struct ire_s **ire_ptpn; /* Pointer to previous next. */ 2598 uint32_t ire_refcnt; /* Number of references */ 2599 ill_t *ire_ill; 2600 uint32_t ire_identical_ref; /* IRE_INTERFACE, IRE_BROADCAST */ 2601 uchar_t ire_ipversion; /* IPv4/IPv6 version */ 2602 ushort_t ire_type; /* Type of IRE */ 2603 uint_t ire_generation; /* Generation including CONDEMNED */ 2604 uint_t ire_ib_pkt_count; /* Inbound packets for ire_addr */ 2605 uint_t ire_ob_pkt_count; /* Outbound packets to ire_addr */ 2606 time_t ire_create_time; /* Time (in secs) IRE was created. */ 2607 uint32_t ire_flags; /* flags related to route (RTF_*) */ 2608 /* 2609 * ire_testhidden is TRUE for INTERFACE IREs of IS_UNDER_IPMP(ill) 2610 * interfaces 2611 */ 2612 boolean_t ire_testhidden; 2613 pfirerecv_t ire_recvfn; /* Receive side handling */ 2614 pfiresend_t ire_sendfn; /* Send side handling */ 2615 pfirepostfrag_t ire_postfragfn; /* Bottom end of send handling */ 2616 2617 uint_t ire_masklen; /* # bits in ire_mask{,_v6} */ 2618 ire_addr_u_t ire_u; /* IPv4/IPv6 address info. */ 2619 2620 irb_t *ire_bucket; /* Hash bucket when ire_ptphn is set */ 2621 kmutex_t ire_lock; 2622 clock_t ire_last_used_time; /* For IRE_LOCAL reception */ 2623 tsol_ire_gw_secattr_t *ire_gw_secattr; /* gateway security attributes */ 2624 zoneid_t ire_zoneid; 2625 2626 /* 2627 * Cached information of where to send packets that match this route. 2628 * The ire_dep_* information is used to determine when ire_nce_cache 2629 * needs to be updated. 2630 * ire_nce_cache is the fastpath for the Neighbor Cache Entry 2631 * for IPv6; arp info for IPv4 2632 * Since this is a cache setup and torn down independently of 2633 * applications we need to use nce_ref{rele,hold}_notr for it. 2634 */ 2635 nce_t *ire_nce_cache; 2636 2637 /* 2638 * Quick check whether the ire_type and ire_masklen indicates 2639 * that the IRE can have ire_nce_cache set i.e., whether it is 2640 * IRE_ONLINK and for a single destination. 2641 */ 2642 boolean_t ire_nce_capable; 2643 2644 /* 2645 * Dependency tracking so we can safely cache IRE and NCE pointers 2646 * in offlink and onlink IREs. 2647 * These are locked under the ips_ire_dep_lock rwlock. Write held 2648 * when modifying the linkage. 2649 * ire_dep_parent (Also chain towards IRE for nexthop) 2650 * ire_dep_parent_generation: ire_generation of ire_dep_parent 2651 * ire_dep_children (From parent to first child) 2652 * ire_dep_sib_next (linked list of siblings) 2653 * ire_dep_sib_ptpn (linked list of siblings) 2654 * 2655 * The parent has a ire_refhold on each child, and each child has 2656 * an ire_refhold on its parent. 2657 * Since ire_dep_parent is a cache setup and torn down independently of 2658 * applications we need to use ire_ref{rele,hold}_notr for it. 2659 */ 2660 ire_t *ire_dep_parent; 2661 ire_t *ire_dep_children; 2662 ire_t *ire_dep_sib_next; 2663 ire_t **ire_dep_sib_ptpn; /* Pointer to previous next */ 2664 uint_t ire_dep_parent_generation; 2665 2666 uint_t ire_badcnt; /* Number of times ND_UNREACHABLE */ 2667 uint64_t ire_last_badcnt; /* In seconds */ 2668 2669 /* ire_defense* and ire_last_used_time are only used on IRE_LOCALs */ 2670 uint_t ire_defense_count; /* number of ARP conflicts */ 2671 uint_t ire_defense_time; /* last time defended (secs) */ 2672 2673 boolean_t ire_trace_disable; /* True when alloc fails */ 2674 ip_stack_t *ire_ipst; /* Does not have a netstack_hold */ 2675 iulp_t ire_metrics; 2676 }; 2677 2678 /* IPv4 compatibility macros */ 2679 #define ire_mask ire_u.ire4_u.ire4_mask 2680 #define ire_addr ire_u.ire4_u.ire4_addr 2681 #define ire_gateway_addr ire_u.ire4_u.ire4_gateway_addr 2682 #define ire_setsrc_addr ire_u.ire4_u.ire4_setsrc_addr 2683 2684 #define ire_mask_v6 ire_u.ire6_u.ire6_mask 2685 #define ire_addr_v6 ire_u.ire6_u.ire6_addr 2686 #define ire_gateway_addr_v6 ire_u.ire6_u.ire6_gateway_addr 2687 #define ire_setsrc_addr_v6 ire_u.ire6_u.ire6_setsrc_addr 2688 2689 /* 2690 * Values for ire_generation. 2691 * 2692 * If an IRE is marked with IRE_IS_CONDEMNED, the last walker of 2693 * the bucket should delete this IRE from this bucket. 2694 * 2695 * IRE_GENERATION_VERIFY is never stored in ire_generation but it is 2696 * stored in places that cache IREs (such as ixa_ire_generation and 2697 * ire_dep_parent_generation). It is used as a signal that the cache is 2698 * stale and needs to be reverified. 2699 */ 2700 #define IRE_GENERATION_CONDEMNED 0 2701 #define IRE_GENERATION_VERIFY 1 2702 #define IRE_GENERATION_INITIAL 2 2703 #define IRE_IS_CONDEMNED(ire) \ 2704 ((ire)->ire_generation == IRE_GENERATION_CONDEMNED) 2705 2706 /* Convenient typedefs for sockaddrs */ 2707 typedef struct sockaddr_in sin_t; 2708 typedef struct sockaddr_in6 sin6_t; 2709 2710 /* Name/Value Descriptor. */ 2711 typedef struct nv_s { 2712 uint64_t nv_value; 2713 char *nv_name; 2714 } nv_t; 2715 2716 #define ILL_FRAG_HASH(s, i) \ 2717 ((ntohl(s) ^ ((i) ^ ((i) >> 8))) % ILL_FRAG_HASH_TBL_COUNT) 2718 2719 /* 2720 * The MAX number of allowed fragmented packets per hash bucket 2721 * calculation is based on the most common mtu size of 1500. This limit 2722 * will work well for other mtu sizes as well. 2723 */ 2724 #define COMMON_IP_MTU 1500 2725 #define MAX_FRAG_MIN 10 2726 #define MAX_FRAG_PKTS(ipst) \ 2727 MAX(MAX_FRAG_MIN, (2 * (ipst->ips_ip_reass_queue_bytes / \ 2728 (COMMON_IP_MTU * ILL_FRAG_HASH_TBL_COUNT)))) 2729 2730 /* 2731 * Maximum dups allowed per packet. 2732 */ 2733 extern uint_t ip_max_frag_dups; 2734 2735 /* 2736 * Per-packet information for received packets and transmitted. 2737 * Used by the transport protocols when converting between the packet 2738 * and ancillary data and socket options. 2739 * 2740 * Note: This private data structure and related IPPF_* constant 2741 * definitions are exposed to enable compilation of some debugging tools 2742 * like lsof which use struct tcp_t in <inet/tcp.h>. This is intended to be 2743 * a temporary hack and long term alternate interfaces should be defined 2744 * to support the needs of such tools and private definitions moved to 2745 * private headers. 2746 */ 2747 struct ip_pkt_s { 2748 uint_t ipp_fields; /* Which fields are valid */ 2749 in6_addr_t ipp_addr; /* pktinfo src/dst addr */ 2750 #define ipp_addr_v4 V4_PART_OF_V6(ipp_addr) 2751 uint_t ipp_unicast_hops; /* IPV6_UNICAST_HOPS, IP_TTL */ 2752 uint_t ipp_hoplimit; /* IPV6_HOPLIMIT */ 2753 uint_t ipp_hopoptslen; 2754 uint_t ipp_rthdrdstoptslen; 2755 uint_t ipp_rthdrlen; 2756 uint_t ipp_dstoptslen; 2757 uint_t ipp_fraghdrlen; 2758 ip6_hbh_t *ipp_hopopts; 2759 ip6_dest_t *ipp_rthdrdstopts; 2760 ip6_rthdr_t *ipp_rthdr; 2761 ip6_dest_t *ipp_dstopts; 2762 ip6_frag_t *ipp_fraghdr; 2763 uint8_t ipp_tclass; /* IPV6_TCLASS */ 2764 uint8_t ipp_type_of_service; /* IP_TOS */ 2765 uint_t ipp_ipv4_options_len; /* Len of IPv4 options */ 2766 uint8_t *ipp_ipv4_options; /* Ptr to IPv4 options */ 2767 uint_t ipp_label_len_v4; /* Len of TX label for IPv4 */ 2768 uint8_t *ipp_label_v4; /* TX label for IPv4 */ 2769 uint_t ipp_label_len_v6; /* Len of TX label for IPv6 */ 2770 uint8_t *ipp_label_v6; /* TX label for IPv6 */ 2771 }; 2772 typedef struct ip_pkt_s ip_pkt_t; 2773 2774 extern void ip_pkt_free(ip_pkt_t *); /* free storage inside ip_pkt_t */ 2775 extern ipaddr_t ip_pkt_source_route_v4(const ip_pkt_t *); 2776 extern in6_addr_t *ip_pkt_source_route_v6(const ip_pkt_t *); 2777 extern int ip_pkt_copy(ip_pkt_t *, ip_pkt_t *, int); 2778 extern void ip_pkt_source_route_reverse_v4(ip_pkt_t *); 2779 2780 /* ipp_fields values */ 2781 #define IPPF_ADDR 0x0001 /* Part of in6_pktinfo: src/dst addr */ 2782 #define IPPF_HOPLIMIT 0x0002 /* Overrides unicast and multicast */ 2783 #define IPPF_TCLASS 0x0004 /* Overrides class in sin6_flowinfo */ 2784 2785 #define IPPF_HOPOPTS 0x0010 /* ipp_hopopts set */ 2786 #define IPPF_RTHDR 0x0020 /* ipp_rthdr set */ 2787 #define IPPF_RTHDRDSTOPTS 0x0040 /* ipp_rthdrdstopts set */ 2788 #define IPPF_DSTOPTS 0x0080 /* ipp_dstopts set */ 2789 2790 #define IPPF_IPV4_OPTIONS 0x0100 /* ipp_ipv4_options set */ 2791 #define IPPF_LABEL_V4 0x0200 /* ipp_label_v4 set */ 2792 #define IPPF_LABEL_V6 0x0400 /* ipp_label_v6 set */ 2793 2794 #define IPPF_FRAGHDR 0x0800 /* Used for IPsec receive side */ 2795 2796 /* 2797 * Data structure which is passed to conn_opt_get/set. 2798 * The conn_t is included even though it can be inferred from queue_t. 2799 * setsockopt and getsockopt use conn_ixa and conn_xmit_ipp. However, 2800 * when handling ancillary data we use separate ixa and ipps. 2801 */ 2802 typedef struct conn_opt_arg_s { 2803 conn_t *coa_connp; 2804 ip_xmit_attr_t *coa_ixa; 2805 ip_pkt_t *coa_ipp; 2806 boolean_t coa_ancillary; /* Ancillary data and not setsockopt */ 2807 uint_t coa_changed; /* See below */ 2808 } conn_opt_arg_t; 2809 2810 /* 2811 * Flags for what changed. 2812 * If we want to be more efficient in the future we can have more fine 2813 * grained flags e.g., a flag for just IP_TOS changing. 2814 * For now we either call ip_set_destination (for "route changed") 2815 * and/or conn_build_hdr_template/conn_prepend_hdr (for "header changed"). 2816 */ 2817 #define COA_HEADER_CHANGED 0x0001 2818 #define COA_ROUTE_CHANGED 0x0002 2819 #define COA_RCVBUF_CHANGED 0x0004 /* SO_RCVBUF */ 2820 #define COA_SNDBUF_CHANGED 0x0008 /* SO_SNDBUF */ 2821 #define COA_WROFF_CHANGED 0x0010 /* Header size changed */ 2822 #define COA_ICMP_BIND_NEEDED 0x0020 2823 #define COA_OOBINLINE_CHANGED 0x0040 2824 2825 #define TCP_PORTS_OFFSET 0 2826 #define UDP_PORTS_OFFSET 0 2827 2828 /* 2829 * lookups return the ill/ipif only if the flags are clear OR Iam writer. 2830 * ill / ipif lookup functions increment the refcnt on the ill / ipif only 2831 * after calling these macros. This ensures that the refcnt on the ipif or 2832 * ill will eventually drop down to zero. 2833 */ 2834 #define ILL_LOOKUP_FAILED 1 /* Used as error code */ 2835 #define IPIF_LOOKUP_FAILED 2 /* Used as error code */ 2836 2837 #define ILL_CAN_LOOKUP(ill) \ 2838 (!((ill)->ill_state_flags & ILL_CONDEMNED) || \ 2839 IAM_WRITER_ILL(ill)) 2840 2841 #define ILL_IS_CONDEMNED(ill) \ 2842 ((ill)->ill_state_flags & ILL_CONDEMNED) 2843 2844 #define IPIF_CAN_LOOKUP(ipif) \ 2845 (!((ipif)->ipif_state_flags & IPIF_CONDEMNED) || \ 2846 IAM_WRITER_IPIF(ipif)) 2847 2848 #define IPIF_IS_CONDEMNED(ipif) \ 2849 ((ipif)->ipif_state_flags & IPIF_CONDEMNED) 2850 2851 #define IPIF_IS_CHANGING(ipif) \ 2852 ((ipif)->ipif_state_flags & IPIF_CHANGING) 2853 2854 /* Macros used to assert that this thread is a writer */ 2855 #define IAM_WRITER_IPSQ(ipsq) ((ipsq)->ipsq_xop->ipx_writer == curthread) 2856 #define IAM_WRITER_ILL(ill) IAM_WRITER_IPSQ((ill)->ill_phyint->phyint_ipsq) 2857 #define IAM_WRITER_IPIF(ipif) IAM_WRITER_ILL((ipif)->ipif_ill) 2858 2859 /* 2860 * Grab ill locks in the proper order. The order is highest addressed 2861 * ill is locked first. 2862 */ 2863 #define GRAB_ILL_LOCKS(ill_1, ill_2) \ 2864 { \ 2865 if ((ill_1) > (ill_2)) { \ 2866 if (ill_1 != NULL) \ 2867 mutex_enter(&(ill_1)->ill_lock); \ 2868 if (ill_2 != NULL) \ 2869 mutex_enter(&(ill_2)->ill_lock); \ 2870 } else { \ 2871 if (ill_2 != NULL) \ 2872 mutex_enter(&(ill_2)->ill_lock); \ 2873 if (ill_1 != NULL && ill_1 != ill_2) \ 2874 mutex_enter(&(ill_1)->ill_lock); \ 2875 } \ 2876 } 2877 2878 #define RELEASE_ILL_LOCKS(ill_1, ill_2) \ 2879 { \ 2880 if (ill_1 != NULL) \ 2881 mutex_exit(&(ill_1)->ill_lock); \ 2882 if (ill_2 != NULL && ill_2 != ill_1) \ 2883 mutex_exit(&(ill_2)->ill_lock); \ 2884 } 2885 2886 /* Get the other protocol instance ill */ 2887 #define ILL_OTHER(ill) \ 2888 ((ill)->ill_isv6 ? (ill)->ill_phyint->phyint_illv4 : \ 2889 (ill)->ill_phyint->phyint_illv6) 2890 2891 /* ioctl command info: Ioctl properties extracted and stored in here */ 2892 typedef struct cmd_info_s 2893 { 2894 ipif_t *ci_ipif; /* ipif associated with [l]ifreq ioctl's */ 2895 sin_t *ci_sin; /* the sin struct passed down */ 2896 sin6_t *ci_sin6; /* the sin6_t struct passed down */ 2897 struct lifreq *ci_lifr; /* the lifreq struct passed down */ 2898 } cmd_info_t; 2899 2900 extern struct kmem_cache *ire_cache; 2901 2902 extern ipaddr_t ip_g_all_ones; 2903 2904 extern uint_t ip_loopback_mtu; /* /etc/system */ 2905 extern uint_t ip_loopback_mtuplus; 2906 extern uint_t ip_loopback_mtu_v6plus; 2907 2908 extern vmem_t *ip_minor_arena_sa; 2909 extern vmem_t *ip_minor_arena_la; 2910 2911 /* 2912 * ip_g_forward controls IP forwarding. It takes two values: 2913 * 0: IP_FORWARD_NEVER Don't forward packets ever. 2914 * 1: IP_FORWARD_ALWAYS Forward packets for elsewhere. 2915 * 2916 * RFC1122 says there must be a configuration switch to control forwarding, 2917 * but that the default MUST be to not forward packets ever. Implicit 2918 * control based on configuration of multiple interfaces MUST NOT be 2919 * implemented (Section 3.1). SunOS 4.1 did provide the "automatic" capability 2920 * and, in fact, it was the default. That capability is now provided in the 2921 * /etc/rc2.d/S69inet script. 2922 */ 2923 2924 #define ips_ip_respond_to_address_mask_broadcast ips_param_arr[0].ip_param_value 2925 #define ips_ip_g_resp_to_echo_bcast ips_param_arr[1].ip_param_value 2926 #define ips_ip_g_resp_to_echo_mcast ips_param_arr[2].ip_param_value 2927 #define ips_ip_g_resp_to_timestamp ips_param_arr[3].ip_param_value 2928 #define ips_ip_g_resp_to_timestamp_bcast ips_param_arr[4].ip_param_value 2929 #define ips_ip_g_send_redirects ips_param_arr[5].ip_param_value 2930 #define ips_ip_g_forward_directed_bcast ips_param_arr[6].ip_param_value 2931 #define ips_ip_mrtdebug ips_param_arr[7].ip_param_value 2932 #define ips_ip_ire_reclaim_fraction ips_param_arr[8].ip_param_value 2933 #define ips_ip_nce_reclaim_fraction ips_param_arr[9].ip_param_value 2934 #define ips_ip_dce_reclaim_fraction ips_param_arr[10].ip_param_value 2935 #define ips_ip_def_ttl ips_param_arr[11].ip_param_value 2936 #define ips_ip_forward_src_routed ips_param_arr[12].ip_param_value 2937 #define ips_ip_wroff_extra ips_param_arr[13].ip_param_value 2938 #define ips_ip_pathmtu_interval ips_param_arr[14].ip_param_value 2939 #define ips_ip_icmp_return ips_param_arr[15].ip_param_value 2940 #define ips_ip_path_mtu_discovery ips_param_arr[16].ip_param_value 2941 #define ips_ip_pmtu_min ips_param_arr[17].ip_param_value 2942 #define ips_ip_ignore_redirect ips_param_arr[18].ip_param_value 2943 #define ips_ip_arp_icmp_error ips_param_arr[19].ip_param_value 2944 #define ips_ip_broadcast_ttl ips_param_arr[20].ip_param_value 2945 #define ips_ip_icmp_err_interval ips_param_arr[21].ip_param_value 2946 #define ips_ip_icmp_err_burst ips_param_arr[22].ip_param_value 2947 #define ips_ip_reass_queue_bytes ips_param_arr[23].ip_param_value 2948 #define ips_ip_strict_dst_multihoming ips_param_arr[24].ip_param_value 2949 #define ips_ip_addrs_per_if ips_param_arr[25].ip_param_value 2950 #define ips_ipsec_override_persocket_policy ips_param_arr[26].ip_param_value 2951 #define ips_icmp_accept_clear_messages ips_param_arr[27].ip_param_value 2952 #define ips_igmp_accept_clear_messages ips_param_arr[28].ip_param_value 2953 2954 /* IPv6 configuration knobs */ 2955 #define ips_delay_first_probe_time ips_param_arr[29].ip_param_value 2956 #define ips_max_unicast_solicit ips_param_arr[30].ip_param_value 2957 #define ips_ipv6_def_hops ips_param_arr[31].ip_param_value 2958 #define ips_ipv6_icmp_return ips_param_arr[32].ip_param_value 2959 #define ips_ipv6_forward_src_routed ips_param_arr[33].ip_param_value 2960 #define ips_ipv6_resp_echo_mcast ips_param_arr[34].ip_param_value 2961 #define ips_ipv6_send_redirects ips_param_arr[35].ip_param_value 2962 #define ips_ipv6_ignore_redirect ips_param_arr[36].ip_param_value 2963 #define ips_ipv6_strict_dst_multihoming ips_param_arr[37].ip_param_value 2964 #define ips_src_check ips_param_arr[38].ip_param_value 2965 #define ips_ipsec_policy_log_interval ips_param_arr[39].ip_param_value 2966 #define ips_pim_accept_clear_messages ips_param_arr[40].ip_param_value 2967 #define ips_ip_ndp_unsolicit_interval ips_param_arr[41].ip_param_value 2968 #define ips_ip_ndp_unsolicit_count ips_param_arr[42].ip_param_value 2969 #define ips_ipv6_ignore_home_address_opt ips_param_arr[43].ip_param_value 2970 2971 /* Misc IP configuration knobs */ 2972 #define ips_ip_policy_mask ips_param_arr[44].ip_param_value 2973 #define ips_ip_ecmp_behavior ips_param_arr[45].ip_param_value 2974 #define ips_ip_multirt_ttl ips_param_arr[46].ip_param_value 2975 #define ips_ip_ire_badcnt_lifetime ips_param_arr[47].ip_param_value 2976 #define ips_ip_max_temp_idle ips_param_arr[48].ip_param_value 2977 #define ips_ip_max_temp_defend ips_param_arr[49].ip_param_value 2978 #define ips_ip_max_defend ips_param_arr[50].ip_param_value 2979 #define ips_ip_defend_interval ips_param_arr[51].ip_param_value 2980 #define ips_ip_dup_recovery ips_param_arr[52].ip_param_value 2981 #define ips_ip_restrict_interzone_loopback ips_param_arr[53].ip_param_value 2982 #define ips_ip_lso_outbound ips_param_arr[54].ip_param_value 2983 #define ips_igmp_max_version ips_param_arr[55].ip_param_value 2984 #define ips_mld_max_version ips_param_arr[56].ip_param_value 2985 #define ips_ipv6_drop_inbound_icmpv6 ips_param_arr[57].ip_param_value 2986 #define ips_arp_probe_delay ips_param_arr[58].ip_param_value 2987 #define ips_arp_fastprobe_delay ips_param_arr[59].ip_param_value 2988 #define ips_arp_probe_interval ips_param_arr[60].ip_param_value 2989 #define ips_arp_fastprobe_interval ips_param_arr[61].ip_param_value 2990 #define ips_arp_probe_count ips_param_arr[62].ip_param_value 2991 #define ips_arp_fastprobe_count ips_param_arr[63].ip_param_value 2992 #define ips_ipv4_dad_announce_interval ips_param_arr[64].ip_param_value 2993 #define ips_ipv6_dad_announce_interval ips_param_arr[65].ip_param_value 2994 #define ips_arp_defend_interval ips_param_arr[66].ip_param_value 2995 #define ips_arp_defend_rate ips_param_arr[67].ip_param_value 2996 #define ips_ndp_defend_interval ips_param_arr[68].ip_param_value 2997 #define ips_ndp_defend_rate ips_param_arr[69].ip_param_value 2998 #define ips_arp_defend_period ips_param_arr[70].ip_param_value 2999 #define ips_ndp_defend_period ips_param_arr[71].ip_param_value 3000 #define ips_ipv4_icmp_return_pmtu ips_param_arr[72].ip_param_value 3001 #define ips_ipv6_icmp_return_pmtu ips_param_arr[73].ip_param_value 3002 #define ips_ip_arp_publish_count ips_param_arr[74].ip_param_value 3003 #define ips_ip_arp_publish_interval ips_param_arr[75].ip_param_value 3004 3005 extern int dohwcksum; /* use h/w cksum if supported by the h/w */ 3006 #ifdef ZC_TEST 3007 extern int noswcksum; 3008 #endif 3009 3010 extern char ipif_loopback_name[]; 3011 3012 extern nv_t *ire_nv_tbl; 3013 3014 extern struct module_info ip_mod_info; 3015 3016 #define HOOKS4_INTERESTED_PHYSICAL_IN(ipst) \ 3017 ((ipst)->ips_ip4_physical_in_event.he_interested) 3018 #define HOOKS6_INTERESTED_PHYSICAL_IN(ipst) \ 3019 ((ipst)->ips_ip6_physical_in_event.he_interested) 3020 #define HOOKS4_INTERESTED_PHYSICAL_OUT(ipst) \ 3021 ((ipst)->ips_ip4_physical_out_event.he_interested) 3022 #define HOOKS6_INTERESTED_PHYSICAL_OUT(ipst) \ 3023 ((ipst)->ips_ip6_physical_out_event.he_interested) 3024 #define HOOKS4_INTERESTED_FORWARDING(ipst) \ 3025 ((ipst)->ips_ip4_forwarding_event.he_interested) 3026 #define HOOKS6_INTERESTED_FORWARDING(ipst) \ 3027 ((ipst)->ips_ip6_forwarding_event.he_interested) 3028 #define HOOKS4_INTERESTED_LOOPBACK_IN(ipst) \ 3029 ((ipst)->ips_ip4_loopback_in_event.he_interested) 3030 #define HOOKS6_INTERESTED_LOOPBACK_IN(ipst) \ 3031 ((ipst)->ips_ip6_loopback_in_event.he_interested) 3032 #define HOOKS4_INTERESTED_LOOPBACK_OUT(ipst) \ 3033 ((ipst)->ips_ip4_loopback_out_event.he_interested) 3034 #define HOOKS6_INTERESTED_LOOPBACK_OUT(ipst) \ 3035 ((ipst)->ips_ip6_loopback_out_event.he_interested) 3036 /* 3037 * Hooks marcos used inside of ip 3038 * The callers use the above INTERESTED macros first, hence 3039 * the he_interested check is superflous. 3040 */ 3041 #define FW_HOOKS(_hook, _event, _ilp, _olp, _iph, _fm, _m, _llm, ipst, _err) \ 3042 if ((_hook).he_interested) { \ 3043 hook_pkt_event_t info; \ 3044 \ 3045 _NOTE(CONSTCOND) \ 3046 ASSERT((_ilp != NULL) || (_olp != NULL)); \ 3047 \ 3048 FW_SET_ILL_INDEX(info.hpe_ifp, (ill_t *)_ilp); \ 3049 FW_SET_ILL_INDEX(info.hpe_ofp, (ill_t *)_olp); \ 3050 info.hpe_protocol = ipst->ips_ipv4_net_data; \ 3051 info.hpe_hdr = _iph; \ 3052 info.hpe_mp = &(_fm); \ 3053 info.hpe_mb = _m; \ 3054 info.hpe_flags = _llm; \ 3055 _err = hook_run(ipst->ips_ipv4_net_data->netd_hooks, \ 3056 _event, (hook_data_t)&info); \ 3057 if (_err != 0) { \ 3058 ip2dbg(("%s hook dropped mblk chain %p hdr %p\n",\ 3059 (_hook).he_name, (void *)_fm, (void *)_m)); \ 3060 if (_fm != NULL) { \ 3061 freemsg(_fm); \ 3062 _fm = NULL; \ 3063 } \ 3064 _iph = NULL; \ 3065 _m = NULL; \ 3066 } else { \ 3067 _iph = info.hpe_hdr; \ 3068 _m = info.hpe_mb; \ 3069 } \ 3070 } 3071 3072 #define FW_HOOKS6(_hook, _event, _ilp, _olp, _iph, _fm, _m, _llm, ipst, _err) \ 3073 if ((_hook).he_interested) { \ 3074 hook_pkt_event_t info; \ 3075 \ 3076 _NOTE(CONSTCOND) \ 3077 ASSERT((_ilp != NULL) || (_olp != NULL)); \ 3078 \ 3079 FW_SET_ILL_INDEX(info.hpe_ifp, (ill_t *)_ilp); \ 3080 FW_SET_ILL_INDEX(info.hpe_ofp, (ill_t *)_olp); \ 3081 info.hpe_protocol = ipst->ips_ipv6_net_data; \ 3082 info.hpe_hdr = _iph; \ 3083 info.hpe_mp = &(_fm); \ 3084 info.hpe_mb = _m; \ 3085 info.hpe_flags = _llm; \ 3086 _err = hook_run(ipst->ips_ipv6_net_data->netd_hooks, \ 3087 _event, (hook_data_t)&info); \ 3088 if (_err != 0) { \ 3089 ip2dbg(("%s hook dropped mblk chain %p hdr %p\n",\ 3090 (_hook).he_name, (void *)_fm, (void *)_m)); \ 3091 if (_fm != NULL) { \ 3092 freemsg(_fm); \ 3093 _fm = NULL; \ 3094 } \ 3095 _iph = NULL; \ 3096 _m = NULL; \ 3097 } else { \ 3098 _iph = info.hpe_hdr; \ 3099 _m = info.hpe_mb; \ 3100 } \ 3101 } 3102 3103 #define FW_SET_ILL_INDEX(fp, ill) \ 3104 _NOTE(CONSTCOND) \ 3105 if ((ill) == NULL || (ill)->ill_phyint == NULL) { \ 3106 (fp) = 0; \ 3107 _NOTE(CONSTCOND) \ 3108 } else if (IS_UNDER_IPMP(ill)) { \ 3109 (fp) = ipmp_ill_get_ipmp_ifindex(ill); \ 3110 } else { \ 3111 (fp) = (ill)->ill_phyint->phyint_ifindex; \ 3112 } 3113 3114 /* 3115 * Network byte order macros 3116 */ 3117 #ifdef _BIG_ENDIAN 3118 #define N_IN_CLASSA_NET IN_CLASSA_NET 3119 #define N_IN_CLASSD_NET IN_CLASSD_NET 3120 #define N_INADDR_UNSPEC_GROUP INADDR_UNSPEC_GROUP 3121 #define N_IN_LOOPBACK_NET (ipaddr_t)0x7f000000U 3122 #else /* _BIG_ENDIAN */ 3123 #define N_IN_CLASSA_NET (ipaddr_t)0x000000ffU 3124 #define N_IN_CLASSD_NET (ipaddr_t)0x000000f0U 3125 #define N_INADDR_UNSPEC_GROUP (ipaddr_t)0x000000e0U 3126 #define N_IN_LOOPBACK_NET (ipaddr_t)0x0000007fU 3127 #endif /* _BIG_ENDIAN */ 3128 #define CLASSD(addr) (((addr) & N_IN_CLASSD_NET) == N_INADDR_UNSPEC_GROUP) 3129 #define CLASSE(addr) (((addr) & N_IN_CLASSD_NET) == N_IN_CLASSD_NET) 3130 #define IP_LOOPBACK_ADDR(addr) \ 3131 (((addr) & N_IN_CLASSA_NET == N_IN_LOOPBACK_NET)) 3132 3133 extern int ip_debug; 3134 extern uint_t ip_thread_data; 3135 extern krwlock_t ip_thread_rwlock; 3136 extern list_t ip_thread_list; 3137 3138 #ifdef IP_DEBUG 3139 #include <sys/debug.h> 3140 #include <sys/promif.h> 3141 3142 #define ip0dbg(a) printf a 3143 #define ip1dbg(a) if (ip_debug > 2) printf a 3144 #define ip2dbg(a) if (ip_debug > 3) printf a 3145 #define ip3dbg(a) if (ip_debug > 4) printf a 3146 #else 3147 #define ip0dbg(a) /* */ 3148 #define ip1dbg(a) /* */ 3149 #define ip2dbg(a) /* */ 3150 #define ip3dbg(a) /* */ 3151 #endif /* IP_DEBUG */ 3152 3153 /* Default MAC-layer address string length for mac_colon_addr */ 3154 #define MAC_STR_LEN 128 3155 3156 struct mac_header_info_s; 3157 3158 extern void ill_frag_timer(void *); 3159 extern ill_t *ill_first(int, int, ill_walk_context_t *, ip_stack_t *); 3160 extern ill_t *ill_next(ill_walk_context_t *, ill_t *); 3161 extern void ill_frag_timer_start(ill_t *); 3162 extern void ill_nic_event_dispatch(ill_t *, lif_if_t, nic_event_t, 3163 nic_event_data_t, size_t); 3164 extern mblk_t *ip_carve_mp(mblk_t **, ssize_t); 3165 extern mblk_t *ip_dlpi_alloc(size_t, t_uscalar_t); 3166 extern mblk_t *ip_dlnotify_alloc(uint_t, uint_t); 3167 extern char *ip_dot_addr(ipaddr_t, char *); 3168 extern const char *mac_colon_addr(const uint8_t *, size_t, char *, size_t); 3169 extern void ip_lwput(queue_t *, mblk_t *); 3170 extern boolean_t icmp_err_rate_limit(ip_stack_t *); 3171 extern void icmp_frag_needed(mblk_t *, int, ip_recv_attr_t *); 3172 extern mblk_t *icmp_inbound_v4(mblk_t *, ip_recv_attr_t *); 3173 extern void icmp_time_exceeded(mblk_t *, uint8_t, ip_recv_attr_t *); 3174 extern void icmp_unreachable(mblk_t *, uint8_t, ip_recv_attr_t *); 3175 extern boolean_t ip_ipsec_policy_inherit(conn_t *, conn_t *, ip_recv_attr_t *); 3176 extern void *ip_pullup(mblk_t *, ssize_t, ip_recv_attr_t *); 3177 extern void ip_setl2src(mblk_t *, ip_recv_attr_t *, ill_t *); 3178 extern mblk_t *ip_check_and_align_header(mblk_t *, uint_t, ip_recv_attr_t *); 3179 extern mblk_t *ip_check_length(mblk_t *, uchar_t *, ssize_t, uint_t, uint_t, 3180 ip_recv_attr_t *); 3181 extern mblk_t *ip_check_optlen(mblk_t *, ipha_t *, uint_t, uint_t, 3182 ip_recv_attr_t *); 3183 extern mblk_t *ip_fix_dbref(mblk_t *, ip_recv_attr_t *); 3184 extern uint_t ip_cksum(mblk_t *, int, uint32_t); 3185 extern int ip_close(queue_t *, int); 3186 extern uint16_t ip_csum_hdr(ipha_t *); 3187 extern void ip_forward_xmit_v4(nce_t *, ill_t *, mblk_t *, ipha_t *, 3188 ip_recv_attr_t *, uint32_t, uint32_t); 3189 extern boolean_t ip_forward_options(mblk_t *, ipha_t *, ill_t *, 3190 ip_recv_attr_t *); 3191 extern int ip_fragment_v4(mblk_t *, nce_t *, iaflags_t, uint_t, uint32_t, 3192 uint32_t, zoneid_t, zoneid_t, pfirepostfrag_t postfragfn, 3193 uintptr_t *cookie); 3194 extern void ip_proto_not_sup(mblk_t *, ip_recv_attr_t *); 3195 extern void ip_ire_g_fini(void); 3196 extern void ip_ire_g_init(void); 3197 extern void ip_ire_fini(ip_stack_t *); 3198 extern void ip_ire_init(ip_stack_t *); 3199 extern void ip_mdata_to_mhi(ill_t *, mblk_t *, struct mac_header_info_s *); 3200 extern int ip_openv4(queue_t *q, dev_t *devp, int flag, int sflag, 3201 cred_t *credp); 3202 extern int ip_openv6(queue_t *q, dev_t *devp, int flag, int sflag, 3203 cred_t *credp); 3204 extern int ip_reassemble(mblk_t *, ipf_t *, uint_t, boolean_t, ill_t *, 3205 size_t); 3206 extern void ip_rput(queue_t *, mblk_t *); 3207 extern void ip_input(ill_t *, ill_rx_ring_t *, mblk_t *, 3208 struct mac_header_info_s *); 3209 extern void ip_input_v6(ill_t *, ill_rx_ring_t *, mblk_t *, 3210 struct mac_header_info_s *); 3211 extern mblk_t *ip_input_common_v4(ill_t *, ill_rx_ring_t *, mblk_t *, 3212 struct mac_header_info_s *, squeue_t *, mblk_t **, uint_t *); 3213 extern mblk_t *ip_input_common_v6(ill_t *, ill_rx_ring_t *, mblk_t *, 3214 struct mac_header_info_s *, squeue_t *, mblk_t **, uint_t *); 3215 extern void ill_input_full_v4(mblk_t *, void *, void *, 3216 ip_recv_attr_t *, rtc_t *); 3217 extern void ill_input_short_v4(mblk_t *, void *, void *, 3218 ip_recv_attr_t *, rtc_t *); 3219 extern void ill_input_full_v6(mblk_t *, void *, void *, 3220 ip_recv_attr_t *, rtc_t *); 3221 extern void ill_input_short_v6(mblk_t *, void *, void *, 3222 ip_recv_attr_t *, rtc_t *); 3223 extern ipaddr_t ip_input_options(ipha_t *, ipaddr_t, mblk_t *, 3224 ip_recv_attr_t *, int *); 3225 extern boolean_t ip_input_local_options(mblk_t *, ipha_t *, ip_recv_attr_t *); 3226 extern mblk_t *ip_input_fragment(mblk_t *, ipha_t *, ip_recv_attr_t *); 3227 extern mblk_t *ip_input_fragment_v6(mblk_t *, ip6_t *, ip6_frag_t *, uint_t, 3228 ip_recv_attr_t *); 3229 extern void ip_input_post_ipsec(mblk_t *, ip_recv_attr_t *); 3230 extern void ip_fanout_v4(mblk_t *, ipha_t *, ip_recv_attr_t *); 3231 extern void ip_fanout_v6(mblk_t *, ip6_t *, ip_recv_attr_t *); 3232 extern void ip_fanout_proto_conn(conn_t *, mblk_t *, ipha_t *, ip6_t *, 3233 ip_recv_attr_t *); 3234 extern void ip_fanout_proto_v4(mblk_t *, ipha_t *, ip_recv_attr_t *); 3235 extern void ip_fanout_send_icmp_v4(mblk_t *, uint_t, uint_t, 3236 ip_recv_attr_t *); 3237 extern void ip_fanout_udp_conn(conn_t *, mblk_t *, ipha_t *, ip6_t *, 3238 ip_recv_attr_t *); 3239 extern void ip_fanout_udp_multi_v4(mblk_t *, ipha_t *, uint16_t, uint16_t, 3240 ip_recv_attr_t *); 3241 extern mblk_t *zero_spi_check(mblk_t *, ip_recv_attr_t *); 3242 extern void ip_build_hdrs_v4(uchar_t *, uint_t, const ip_pkt_t *, uint8_t); 3243 extern int ip_find_hdr_v4(ipha_t *, ip_pkt_t *, boolean_t); 3244 extern int ip_total_hdrs_len_v4(const ip_pkt_t *); 3245 3246 extern mblk_t *ip_accept_tcp(ill_t *, ill_rx_ring_t *, squeue_t *, 3247 mblk_t *, mblk_t **, uint_t *cnt); 3248 extern void ip_rput_dlpi(ill_t *, mblk_t *); 3249 extern void ip_rput_notdata(ill_t *, mblk_t *); 3250 3251 extern void ip_mib2_add_ip_stats(mib2_ipIfStatsEntry_t *, 3252 mib2_ipIfStatsEntry_t *); 3253 extern void ip_mib2_add_icmp6_stats(mib2_ipv6IfIcmpEntry_t *, 3254 mib2_ipv6IfIcmpEntry_t *); 3255 extern void ip_rput_other(ipsq_t *, queue_t *, mblk_t *, void *); 3256 extern ire_t *ip_check_multihome(void *, ire_t *, ill_t *); 3257 extern void ip_send_potential_redirect_v4(mblk_t *, ipha_t *, ire_t *, 3258 ip_recv_attr_t *); 3259 extern int ip_set_destination_v4(ipaddr_t *, ipaddr_t, ipaddr_t, 3260 ip_xmit_attr_t *, iulp_t *, uint32_t, uint_t); 3261 extern int ip_set_destination_v6(in6_addr_t *, const in6_addr_t *, 3262 const in6_addr_t *, ip_xmit_attr_t *, iulp_t *, uint32_t, uint_t); 3263 3264 extern int ip_output_simple(mblk_t *, ip_xmit_attr_t *); 3265 extern int ip_output_simple_v4(mblk_t *, ip_xmit_attr_t *); 3266 extern int ip_output_simple_v6(mblk_t *, ip_xmit_attr_t *); 3267 extern int ip_output_options(mblk_t *, ipha_t *, ip_xmit_attr_t *, 3268 ill_t *); 3269 extern void ip_output_local_options(ipha_t *, ip_stack_t *); 3270 3271 extern ip_xmit_attr_t *conn_get_ixa(conn_t *, boolean_t); 3272 extern ip_xmit_attr_t *conn_get_ixa_tryhard(conn_t *, boolean_t); 3273 extern ip_xmit_attr_t *conn_replace_ixa(conn_t *, ip_xmit_attr_t *); 3274 extern ip_xmit_attr_t *conn_get_ixa_exclusive(conn_t *); 3275 extern ip_xmit_attr_t *ip_xmit_attr_duplicate(ip_xmit_attr_t *); 3276 extern void ip_xmit_attr_replace_tsl(ip_xmit_attr_t *, ts_label_t *); 3277 extern void ip_xmit_attr_restore_tsl(ip_xmit_attr_t *, cred_t *); 3278 boolean_t ip_recv_attr_replace_label(ip_recv_attr_t *, ts_label_t *); 3279 extern void ixa_inactive(ip_xmit_attr_t *); 3280 extern void ixa_refrele(ip_xmit_attr_t *); 3281 extern boolean_t ixa_check_drain_insert(conn_t *, ip_xmit_attr_t *); 3282 extern void ixa_cleanup(ip_xmit_attr_t *); 3283 extern void ira_cleanup(ip_recv_attr_t *, boolean_t); 3284 extern void ixa_safe_copy(ip_xmit_attr_t *, ip_xmit_attr_t *); 3285 3286 extern int conn_ip_output(mblk_t *, ip_xmit_attr_t *); 3287 extern boolean_t ip_output_verify_local(ip_xmit_attr_t *); 3288 extern mblk_t *ip_output_process_local(mblk_t *, ip_xmit_attr_t *, boolean_t, 3289 boolean_t, conn_t *); 3290 3291 extern int conn_opt_get(conn_opt_arg_t *, t_scalar_t, t_scalar_t, 3292 uchar_t *); 3293 extern int conn_opt_set(conn_opt_arg_t *, t_scalar_t, t_scalar_t, uint_t, 3294 uchar_t *, boolean_t, cred_t *); 3295 extern boolean_t conn_same_as_last_v4(conn_t *, sin_t *); 3296 extern boolean_t conn_same_as_last_v6(conn_t *, sin6_t *); 3297 extern int conn_update_label(const conn_t *, const ip_xmit_attr_t *, 3298 const in6_addr_t *, ip_pkt_t *); 3299 3300 extern int ip_opt_set_multicast_group(conn_t *, t_scalar_t, 3301 uchar_t *, boolean_t, boolean_t); 3302 extern int ip_opt_set_multicast_sources(conn_t *, t_scalar_t, 3303 uchar_t *, boolean_t, boolean_t); 3304 extern int conn_getsockname(conn_t *, struct sockaddr *, uint_t *); 3305 extern int conn_getpeername(conn_t *, struct sockaddr *, uint_t *); 3306 3307 extern int conn_build_hdr_template(conn_t *, uint_t, uint_t, 3308 const in6_addr_t *, const in6_addr_t *, uint32_t); 3309 extern mblk_t *conn_prepend_hdr(ip_xmit_attr_t *, const ip_pkt_t *, 3310 const in6_addr_t *, const in6_addr_t *, uint8_t, uint32_t, uint_t, 3311 mblk_t *, uint_t, uint_t, uint32_t *, int *); 3312 extern void ip_attr_newdst(ip_xmit_attr_t *); 3313 extern void ip_attr_nexthop(const ip_pkt_t *, const ip_xmit_attr_t *, 3314 const in6_addr_t *, in6_addr_t *); 3315 extern int conn_connect(conn_t *, iulp_t *, uint32_t); 3316 extern int ip_attr_connect(const conn_t *, ip_xmit_attr_t *, 3317 const in6_addr_t *, const in6_addr_t *, const in6_addr_t *, in_port_t, 3318 in6_addr_t *, iulp_t *, uint32_t); 3319 extern int conn_inherit_parent(conn_t *, conn_t *); 3320 3321 extern void conn_ixa_cleanup(conn_t *connp, void *arg); 3322 3323 extern boolean_t conn_wantpacket(conn_t *, ip_recv_attr_t *, ipha_t *); 3324 extern uint_t ip_type_v4(ipaddr_t, ip_stack_t *); 3325 extern uint_t ip_type_v6(const in6_addr_t *, ip_stack_t *); 3326 3327 extern void ip_wput_nondata(queue_t *, mblk_t *); 3328 extern void ip_wsrv(queue_t *); 3329 extern char *ip_nv_lookup(nv_t *, int); 3330 extern boolean_t ip_local_addr_ok_v6(const in6_addr_t *, const in6_addr_t *); 3331 extern boolean_t ip_remote_addr_ok_v6(const in6_addr_t *, const in6_addr_t *); 3332 extern ipaddr_t ip_massage_options(ipha_t *, netstack_t *); 3333 extern ipaddr_t ip_net_mask(ipaddr_t); 3334 extern void arp_bringup_done(ill_t *, int); 3335 extern void arp_replumb_done(ill_t *, int); 3336 3337 extern struct qinit iprinitv6; 3338 3339 extern void ipmp_init(ip_stack_t *); 3340 extern void ipmp_destroy(ip_stack_t *); 3341 extern ipmp_grp_t *ipmp_grp_create(const char *, phyint_t *); 3342 extern void ipmp_grp_destroy(ipmp_grp_t *); 3343 extern void ipmp_grp_info(const ipmp_grp_t *, lifgroupinfo_t *); 3344 extern int ipmp_grp_rename(ipmp_grp_t *, const char *); 3345 extern ipmp_grp_t *ipmp_grp_lookup(const char *, ip_stack_t *); 3346 extern int ipmp_grp_vet_phyint(ipmp_grp_t *, phyint_t *); 3347 extern ipmp_illgrp_t *ipmp_illgrp_create(ill_t *); 3348 extern void ipmp_illgrp_destroy(ipmp_illgrp_t *); 3349 extern ill_t *ipmp_illgrp_add_ipif(ipmp_illgrp_t *, ipif_t *); 3350 extern void ipmp_illgrp_del_ipif(ipmp_illgrp_t *, ipif_t *); 3351 extern ill_t *ipmp_illgrp_next_ill(ipmp_illgrp_t *); 3352 extern ill_t *ipmp_illgrp_hold_next_ill(ipmp_illgrp_t *); 3353 extern ill_t *ipmp_illgrp_hold_cast_ill(ipmp_illgrp_t *); 3354 extern ill_t *ipmp_illgrp_ipmp_ill(ipmp_illgrp_t *); 3355 extern void ipmp_illgrp_refresh_mtu(ipmp_illgrp_t *); 3356 extern ipmp_arpent_t *ipmp_illgrp_create_arpent(ipmp_illgrp_t *, 3357 boolean_t, ipaddr_t, uchar_t *, size_t, uint16_t); 3358 extern void ipmp_illgrp_destroy_arpent(ipmp_illgrp_t *, ipmp_arpent_t *); 3359 extern ipmp_arpent_t *ipmp_illgrp_lookup_arpent(ipmp_illgrp_t *, ipaddr_t *); 3360 extern void ipmp_illgrp_refresh_arpent(ipmp_illgrp_t *); 3361 extern void ipmp_illgrp_mark_arpent(ipmp_illgrp_t *, ipmp_arpent_t *); 3362 extern ill_t *ipmp_illgrp_find_ill(ipmp_illgrp_t *, uchar_t *, uint_t); 3363 extern void ipmp_illgrp_link_grp(ipmp_illgrp_t *, ipmp_grp_t *); 3364 extern int ipmp_illgrp_unlink_grp(ipmp_illgrp_t *); 3365 extern uint_t ipmp_ill_get_ipmp_ifindex(const ill_t *); 3366 extern void ipmp_ill_join_illgrp(ill_t *, ipmp_illgrp_t *); 3367 extern void ipmp_ill_leave_illgrp(ill_t *); 3368 extern ill_t *ipmp_ill_hold_ipmp_ill(ill_t *); 3369 extern boolean_t ipmp_ill_is_active(ill_t *); 3370 extern void ipmp_ill_refresh_active(ill_t *); 3371 extern void ipmp_phyint_join_grp(phyint_t *, ipmp_grp_t *); 3372 extern void ipmp_phyint_leave_grp(phyint_t *); 3373 extern void ipmp_phyint_refresh_active(phyint_t *); 3374 extern ill_t *ipmp_ipif_bound_ill(const ipif_t *); 3375 extern ill_t *ipmp_ipif_hold_bound_ill(const ipif_t *); 3376 extern boolean_t ipmp_ipif_is_dataaddr(const ipif_t *); 3377 extern boolean_t ipmp_ipif_is_stubaddr(const ipif_t *); 3378 extern boolean_t ipmp_packet_is_probe(mblk_t *, ill_t *); 3379 extern ill_t *ipmp_ill_get_xmit_ill(ill_t *, boolean_t); 3380 extern void ipmp_ncec_flush_nce(ncec_t *); 3381 extern void ipmp_ncec_fastpath(ncec_t *, ill_t *); 3382 3383 extern void conn_drain_insert(conn_t *, idl_tx_list_t *); 3384 extern void conn_setqfull(conn_t *, boolean_t *); 3385 extern void conn_clrqfull(conn_t *, boolean_t *); 3386 extern int conn_ipsec_length(conn_t *); 3387 extern ipaddr_t ip_get_dst(ipha_t *); 3388 extern uint_t ip_get_pmtu(ip_xmit_attr_t *); 3389 extern uint_t ip_get_base_mtu(ill_t *, ire_t *); 3390 extern mblk_t *ip_output_attach_policy(mblk_t *, ipha_t *, ip6_t *, 3391 const conn_t *, ip_xmit_attr_t *); 3392 extern int ipsec_out_extra_length(ip_xmit_attr_t *); 3393 extern int ipsec_out_process(mblk_t *, ip_xmit_attr_t *); 3394 extern int ip_output_post_ipsec(mblk_t *, ip_xmit_attr_t *); 3395 extern void ipsec_out_to_in(ip_xmit_attr_t *, ill_t *ill, 3396 ip_recv_attr_t *); 3397 3398 extern void ire_cleanup(ire_t *); 3399 extern void ire_inactive(ire_t *); 3400 extern boolean_t irb_inactive(irb_t *); 3401 extern ire_t *ire_unlink(irb_t *); 3402 3403 #ifdef DEBUG 3404 extern boolean_t th_trace_ref(const void *, ip_stack_t *); 3405 extern void th_trace_unref(const void *); 3406 extern void th_trace_cleanup(const void *, boolean_t); 3407 extern void ire_trace_ref(ire_t *); 3408 extern void ire_untrace_ref(ire_t *); 3409 #endif 3410 3411 extern int ip_srcid_insert(const in6_addr_t *, zoneid_t, ip_stack_t *); 3412 extern int ip_srcid_remove(const in6_addr_t *, zoneid_t, ip_stack_t *); 3413 extern void ip_srcid_find_id(uint_t, in6_addr_t *, zoneid_t, netstack_t *); 3414 extern uint_t ip_srcid_find_addr(const in6_addr_t *, zoneid_t, netstack_t *); 3415 3416 extern uint8_t ipoptp_next(ipoptp_t *); 3417 extern uint8_t ipoptp_first(ipoptp_t *, ipha_t *); 3418 extern int ip_opt_get_user(conn_t *, uchar_t *); 3419 extern int ipsec_req_from_conn(conn_t *, ipsec_req_t *, int); 3420 extern int ip_snmp_get(queue_t *q, mblk_t *mctl, int level); 3421 extern int ip_snmp_set(queue_t *q, int, int, uchar_t *, int); 3422 extern void ip_process_ioctl(ipsq_t *, queue_t *, mblk_t *, void *); 3423 extern void ip_quiesce_conn(conn_t *); 3424 extern void ip_reprocess_ioctl(ipsq_t *, queue_t *, mblk_t *, void *); 3425 extern void ip_ioctl_finish(queue_t *, mblk_t *, int, int, ipsq_t *); 3426 3427 extern boolean_t ip_cmpbuf(const void *, uint_t, boolean_t, const void *, 3428 uint_t); 3429 extern boolean_t ip_allocbuf(void **, uint_t *, boolean_t, const void *, 3430 uint_t); 3431 extern void ip_savebuf(void **, uint_t *, boolean_t, const void *, uint_t); 3432 3433 extern boolean_t ipsq_pending_mp_cleanup(ill_t *, conn_t *); 3434 extern void conn_ioctl_cleanup(conn_t *); 3435 3436 extern void ip_unbind(conn_t *); 3437 3438 extern void tnet_init(void); 3439 extern void tnet_fini(void); 3440 3441 /* 3442 * Hook functions to enable cluster networking 3443 * On non-clustered systems these vectors must always be NULL. 3444 */ 3445 extern int (*cl_inet_isclusterwide)(netstackid_t stack_id, uint8_t protocol, 3446 sa_family_t addr_family, uint8_t *laddrp, void *args); 3447 extern uint32_t (*cl_inet_ipident)(netstackid_t stack_id, uint8_t protocol, 3448 sa_family_t addr_family, uint8_t *laddrp, uint8_t *faddrp, 3449 void *args); 3450 extern int (*cl_inet_connect2)(netstackid_t stack_id, uint8_t protocol, 3451 boolean_t is_outgoing, sa_family_t addr_family, uint8_t *laddrp, 3452 in_port_t lport, uint8_t *faddrp, in_port_t fport, void *args); 3453 extern void (*cl_inet_getspi)(netstackid_t, uint8_t, uint8_t *, size_t, 3454 void *); 3455 extern void (*cl_inet_getspi)(netstackid_t stack_id, uint8_t protocol, 3456 uint8_t *ptr, size_t len, void *args); 3457 extern int (*cl_inet_checkspi)(netstackid_t stack_id, uint8_t protocol, 3458 uint32_t spi, void *args); 3459 extern void (*cl_inet_deletespi)(netstackid_t stack_id, uint8_t protocol, 3460 uint32_t spi, void *args); 3461 extern void (*cl_inet_idlesa)(netstackid_t, uint8_t, uint32_t, 3462 sa_family_t, in6_addr_t, in6_addr_t, void *); 3463 3464 3465 /* Hooks for CGTP (multirt routes) filtering module */ 3466 #define CGTP_FILTER_REV_1 1 3467 #define CGTP_FILTER_REV_2 2 3468 #define CGTP_FILTER_REV_3 3 3469 #define CGTP_FILTER_REV CGTP_FILTER_REV_3 3470 3471 /* cfo_filter and cfo_filter_v6 hooks return values */ 3472 #define CGTP_IP_PKT_NOT_CGTP 0 3473 #define CGTP_IP_PKT_PREMIUM 1 3474 #define CGTP_IP_PKT_DUPLICATE 2 3475 3476 /* Version 3 of the filter interface */ 3477 typedef struct cgtp_filter_ops { 3478 int cfo_filter_rev; /* CGTP_FILTER_REV_3 */ 3479 int (*cfo_change_state)(netstackid_t, int); 3480 int (*cfo_add_dest_v4)(netstackid_t, ipaddr_t, ipaddr_t, 3481 ipaddr_t, ipaddr_t); 3482 int (*cfo_del_dest_v4)(netstackid_t, ipaddr_t, ipaddr_t); 3483 int (*cfo_add_dest_v6)(netstackid_t, in6_addr_t *, in6_addr_t *, 3484 in6_addr_t *, in6_addr_t *); 3485 int (*cfo_del_dest_v6)(netstackid_t, in6_addr_t *, in6_addr_t *); 3486 int (*cfo_filter)(netstackid_t, uint_t, mblk_t *); 3487 int (*cfo_filter_v6)(netstackid_t, uint_t, ip6_t *, 3488 ip6_frag_t *); 3489 } cgtp_filter_ops_t; 3490 3491 #define CGTP_MCAST_SUCCESS 1 3492 3493 /* 3494 * The separate CGTP module needs this global symbol so that it 3495 * can check the version and determine whether to use the old or the new 3496 * version of the filtering interface. 3497 */ 3498 extern int ip_cgtp_filter_rev; 3499 3500 extern int ip_cgtp_filter_supported(void); 3501 extern int ip_cgtp_filter_register(netstackid_t, cgtp_filter_ops_t *); 3502 extern int ip_cgtp_filter_unregister(netstackid_t); 3503 extern int ip_cgtp_filter_is_registered(netstackid_t); 3504 3505 /* 3506 * rr_ring_state cycles in the order shown below from RR_FREE through 3507 * RR_FREE_IN_PROG and back to RR_FREE. 3508 */ 3509 typedef enum { 3510 RR_FREE, /* Free slot */ 3511 RR_SQUEUE_UNBOUND, /* Ring's squeue is unbound */ 3512 RR_SQUEUE_BIND_INPROG, /* Ring's squeue bind in progress */ 3513 RR_SQUEUE_BOUND, /* Ring's squeue bound to cpu */ 3514 RR_FREE_INPROG /* Ring is being freed */ 3515 } ip_ring_state_t; 3516 3517 #define ILL_MAX_RINGS 256 /* Max num of rx rings we can manage */ 3518 #define ILL_POLLING 0x01 /* Polling in use */ 3519 3520 /* 3521 * These functions pointer types are exported by the mac/dls layer. 3522 * we need to duplicate the definitions here because we cannot 3523 * include mac/dls header files here. 3524 */ 3525 typedef boolean_t (*ip_mac_intr_disable_t)(void *); 3526 typedef void (*ip_mac_intr_enable_t)(void *); 3527 typedef ip_mac_tx_cookie_t (*ip_dld_tx_t)(void *, mblk_t *, 3528 uint64_t, uint16_t); 3529 typedef void (*ip_flow_enable_t)(void *, ip_mac_tx_cookie_t); 3530 typedef void *(*ip_dld_callb_t)(void *, 3531 ip_flow_enable_t, void *); 3532 typedef boolean_t (*ip_dld_fctl_t)(void *, ip_mac_tx_cookie_t); 3533 typedef int (*ip_capab_func_t)(void *, uint_t, 3534 void *, uint_t); 3535 3536 /* 3537 * POLLING README 3538 * sq_get_pkts() is called to pick packets from softring in poll mode. It 3539 * calls rr_rx to get the chain and process it with rr_ip_accept. 3540 * rr_rx = mac_soft_ring_poll() to pick packets 3541 * rr_ip_accept = ip_accept_tcp() to process packets 3542 */ 3543 3544 /* 3545 * XXX: With protocol, service specific squeues, they will have 3546 * specific acceptor functions. 3547 */ 3548 typedef mblk_t *(*ip_mac_rx_t)(void *, size_t); 3549 typedef mblk_t *(*ip_accept_t)(ill_t *, ill_rx_ring_t *, 3550 squeue_t *, mblk_t *, mblk_t **, uint_t *); 3551 3552 /* 3553 * rr_intr_enable, rr_intr_disable, rr_rx_handle, rr_rx: 3554 * May be accessed while in the squeue AND after checking that SQS_POLL_CAPAB 3555 * is set. 3556 * 3557 * rr_ring_state: Protected by ill_lock. 3558 */ 3559 struct ill_rx_ring { 3560 ip_mac_intr_disable_t rr_intr_disable; /* Interrupt disabling func */ 3561 ip_mac_intr_enable_t rr_intr_enable; /* Interrupt enabling func */ 3562 void *rr_intr_handle; /* Handle interrupt funcs */ 3563 ip_mac_rx_t rr_rx; /* Driver receive function */ 3564 ip_accept_t rr_ip_accept; /* IP accept function */ 3565 void *rr_rx_handle; /* Handle for Rx ring */ 3566 squeue_t *rr_sqp; /* Squeue the ring is bound to */ 3567 ill_t *rr_ill; /* back pointer to ill */ 3568 ip_ring_state_t rr_ring_state; /* State of this ring */ 3569 }; 3570 3571 /* 3572 * IP - DLD direct function call capability 3573 * Suffixes, df - dld function, dh - dld handle, 3574 * cf - client (IP) function, ch - client handle 3575 */ 3576 typedef struct ill_dld_direct_s { /* DLD provided driver Tx */ 3577 ip_dld_tx_t idd_tx_df; /* str_mdata_fastpath_put */ 3578 void *idd_tx_dh; /* dld_str_t *dsp */ 3579 ip_dld_callb_t idd_tx_cb_df; /* mac_tx_srs_notify */ 3580 void *idd_tx_cb_dh; /* mac_client_handle_t *mch */ 3581 ip_dld_fctl_t idd_tx_fctl_df; /* mac_tx_is_flow_blocked */ 3582 void *idd_tx_fctl_dh; /* mac_client_handle */ 3583 } ill_dld_direct_t; 3584 3585 /* IP - DLD polling capability */ 3586 typedef struct ill_dld_poll_s { 3587 ill_rx_ring_t idp_ring_tbl[ILL_MAX_RINGS]; 3588 } ill_dld_poll_t; 3589 3590 /* Describes ill->ill_dld_capab */ 3591 struct ill_dld_capab_s { 3592 ip_capab_func_t idc_capab_df; /* dld_capab_func */ 3593 void *idc_capab_dh; /* dld_str_t *dsp */ 3594 ill_dld_direct_t idc_direct; 3595 ill_dld_poll_t idc_poll; 3596 }; 3597 3598 /* 3599 * IP squeues exports 3600 */ 3601 extern boolean_t ip_squeue_fanout; 3602 3603 #define IP_SQUEUE_GET(hint) ip_squeue_random(hint) 3604 3605 extern void ip_squeue_init(void (*)(squeue_t *)); 3606 extern squeue_t *ip_squeue_random(uint_t); 3607 extern squeue_t *ip_squeue_get(ill_rx_ring_t *); 3608 extern squeue_t *ip_squeue_getfree(pri_t); 3609 extern int ip_squeue_cpu_move(squeue_t *, processorid_t); 3610 extern void *ip_squeue_add_ring(ill_t *, void *); 3611 extern void ip_squeue_bind_ring(ill_t *, ill_rx_ring_t *, processorid_t); 3612 extern void ip_squeue_clean_ring(ill_t *, ill_rx_ring_t *); 3613 extern void ip_squeue_quiesce_ring(ill_t *, ill_rx_ring_t *); 3614 extern void ip_squeue_restart_ring(ill_t *, ill_rx_ring_t *); 3615 extern void ip_squeue_clean_all(ill_t *); 3616 extern boolean_t ip_source_routed(ipha_t *, ip_stack_t *); 3617 3618 extern void tcp_wput(queue_t *, mblk_t *); 3619 3620 extern int ip_fill_mtuinfo(conn_t *, ip_xmit_attr_t *, 3621 struct ip6_mtuinfo *); 3622 extern hook_t *ipobs_register_hook(netstack_t *, pfv_t); 3623 extern void ipobs_unregister_hook(netstack_t *, hook_t *); 3624 extern void ipobs_hook(mblk_t *, int, zoneid_t, zoneid_t, const ill_t *, 3625 ip_stack_t *); 3626 typedef void (*ipsq_func_t)(ipsq_t *, queue_t *, mblk_t *, void *); 3627 3628 extern void dce_g_init(void); 3629 extern void dce_g_destroy(void); 3630 extern void dce_stack_init(ip_stack_t *); 3631 extern void dce_stack_destroy(ip_stack_t *); 3632 extern void dce_cleanup(uint_t, ip_stack_t *); 3633 extern dce_t *dce_get_default(ip_stack_t *); 3634 extern dce_t *dce_lookup_pkt(mblk_t *, ip_xmit_attr_t *, uint_t *); 3635 extern dce_t *dce_lookup_v4(ipaddr_t, ip_stack_t *, uint_t *); 3636 extern dce_t *dce_lookup_v6(const in6_addr_t *, uint_t, ip_stack_t *, 3637 uint_t *); 3638 extern dce_t *dce_lookup_and_add_v4(ipaddr_t, ip_stack_t *); 3639 extern dce_t *dce_lookup_and_add_v6(const in6_addr_t *, uint_t, 3640 ip_stack_t *); 3641 extern int dce_update_uinfo_v4(ipaddr_t, iulp_t *, ip_stack_t *); 3642 extern int dce_update_uinfo_v6(const in6_addr_t *, uint_t, iulp_t *, 3643 ip_stack_t *); 3644 extern int dce_update_uinfo(const in6_addr_t *, uint_t, iulp_t *, 3645 ip_stack_t *); 3646 extern void dce_increment_generation(dce_t *); 3647 extern void dce_increment_all_generations(boolean_t, ip_stack_t *); 3648 extern void dce_refrele(dce_t *); 3649 extern void dce_refhold(dce_t *); 3650 extern void dce_refrele_notr(dce_t *); 3651 extern void dce_refhold_notr(dce_t *); 3652 mblk_t *ip_snmp_get_mib2_ip_dce(queue_t *, mblk_t *, ip_stack_t *ipst); 3653 3654 extern ip_laddr_t ip_laddr_verify_v4(ipaddr_t, zoneid_t, 3655 ip_stack_t *, boolean_t); 3656 extern ip_laddr_t ip_laddr_verify_v6(const in6_addr_t *, zoneid_t, 3657 ip_stack_t *, boolean_t, uint_t); 3658 extern int ip_laddr_fanout_insert(conn_t *); 3659 3660 extern boolean_t ip_verify_src(mblk_t *, ip_xmit_attr_t *, uint_t *); 3661 extern int ip_verify_ire(mblk_t *, ip_xmit_attr_t *); 3662 3663 extern mblk_t *ip_xmit_attr_to_mblk(ip_xmit_attr_t *); 3664 extern boolean_t ip_xmit_attr_from_mblk(mblk_t *, ip_xmit_attr_t *); 3665 extern mblk_t *ip_xmit_attr_free_mblk(mblk_t *); 3666 extern mblk_t *ip_recv_attr_to_mblk(ip_recv_attr_t *); 3667 extern boolean_t ip_recv_attr_from_mblk(mblk_t *, ip_recv_attr_t *); 3668 extern mblk_t *ip_recv_attr_free_mblk(mblk_t *); 3669 extern boolean_t ip_recv_attr_is_mblk(mblk_t *); 3670 3671 /* 3672 * Squeue tags. Tags only need to be unique when the callback function is the 3673 * same to distinguish between different calls, but we use unique tags for 3674 * convenience anyway. 3675 */ 3676 #define SQTAG_IP_INPUT 1 3677 #define SQTAG_TCP_INPUT_ICMP_ERR 2 3678 #define SQTAG_TCP6_INPUT_ICMP_ERR 3 3679 #define SQTAG_IP_TCP_INPUT 4 3680 #define SQTAG_IP6_TCP_INPUT 5 3681 #define SQTAG_IP_TCP_CLOSE 6 3682 #define SQTAG_TCP_OUTPUT 7 3683 #define SQTAG_TCP_TIMER 8 3684 #define SQTAG_TCP_TIMEWAIT 9 3685 #define SQTAG_TCP_ACCEPT_FINISH 10 3686 #define SQTAG_TCP_ACCEPT_FINISH_Q0 11 3687 #define SQTAG_TCP_ACCEPT_PENDING 12 3688 #define SQTAG_TCP_LISTEN_DISCON 13 3689 #define SQTAG_TCP_CONN_REQ_1 14 3690 #define SQTAG_TCP_EAGER_BLOWOFF 15 3691 #define SQTAG_TCP_EAGER_CLEANUP 16 3692 #define SQTAG_TCP_EAGER_CLEANUP_Q0 17 3693 #define SQTAG_TCP_CONN_IND 18 3694 #define SQTAG_TCP_RSRV 19 3695 #define SQTAG_TCP_ABORT_BUCKET 20 3696 #define SQTAG_TCP_REINPUT 21 3697 #define SQTAG_TCP_REINPUT_EAGER 22 3698 #define SQTAG_TCP_INPUT_MCTL 23 3699 #define SQTAG_TCP_RPUTOTHER 24 3700 #define SQTAG_IP_PROTO_AGAIN 25 3701 #define SQTAG_IP_FANOUT_TCP 26 3702 #define SQTAG_IPSQ_CLEAN_RING 27 3703 #define SQTAG_TCP_WPUT_OTHER 28 3704 #define SQTAG_TCP_CONN_REQ_UNBOUND 29 3705 #define SQTAG_TCP_SEND_PENDING 30 3706 #define SQTAG_BIND_RETRY 31 3707 #define SQTAG_UDP_FANOUT 32 3708 #define SQTAG_UDP_INPUT 33 3709 #define SQTAG_UDP_WPUT 34 3710 #define SQTAG_UDP_OUTPUT 35 3711 #define SQTAG_TCP_KSSL_INPUT 36 3712 #define SQTAG_TCP_DROP_Q0 37 3713 #define SQTAG_TCP_CONN_REQ_2 38 3714 #define SQTAG_IP_INPUT_RX_RING 39 3715 #define SQTAG_SQUEUE_CHANGE 40 3716 #define SQTAG_CONNECT_FINISH 41 3717 #define SQTAG_SYNCHRONOUS_OP 42 3718 #define SQTAG_TCP_SHUTDOWN_OUTPUT 43 3719 #define SQTAG_TCP_IXA_CLEANUP 44 3720 #define SQTAG_TCP_SEND_SYNACK 45 3721 3722 #endif /* _KERNEL */ 3723 3724 #ifdef __cplusplus 3725 } 3726 #endif 3727 3728 #endif /* _INET_IP_H */ 3729