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 * Copyright 2006 Sun Microsystems, Inc. All rights reserved. 23 * Use is subject to license terms. 24 */ 25 /* 26 * Copyright (c) 1990 Mentat Inc. 27 */ 28 29 #pragma ident "%Z%%M% %I% %E% SMI" 30 31 #include <sys/types.h> 32 #include <sys/stream.h> 33 #include <sys/dlpi.h> 34 #include <sys/stropts.h> 35 #include <sys/sysmacros.h> 36 #include <sys/strsun.h> 37 #include <sys/strlog.h> 38 #include <sys/strsubr.h> 39 #define _SUN_TPI_VERSION 2 40 #include <sys/tihdr.h> 41 #include <sys/ddi.h> 42 #include <sys/sunddi.h> 43 #include <sys/cmn_err.h> 44 #include <sys/debug.h> 45 #include <sys/sdt.h> 46 #include <sys/kobj.h> 47 #include <sys/zone.h> 48 #include <sys/neti.h> 49 #include <sys/hook.h> 50 51 #include <sys/kmem.h> 52 #include <sys/systm.h> 53 #include <sys/param.h> 54 #include <sys/socket.h> 55 #include <sys/vtrace.h> 56 #include <sys/isa_defs.h> 57 #include <sys/atomic.h> 58 #include <sys/iphada.h> 59 #include <sys/policy.h> 60 #include <net/if.h> 61 #include <net/if_types.h> 62 #include <net/route.h> 63 #include <net/if_dl.h> 64 #include <sys/sockio.h> 65 #include <netinet/in.h> 66 #include <netinet/ip6.h> 67 #include <netinet/icmp6.h> 68 #include <netinet/sctp.h> 69 70 #include <inet/common.h> 71 #include <inet/mi.h> 72 #include <inet/mib2.h> 73 #include <inet/nd.h> 74 #include <inet/arp.h> 75 76 #include <inet/ip.h> 77 #include <inet/ip_impl.h> 78 #include <inet/ip6.h> 79 #include <inet/ip6_asp.h> 80 #include <inet/tcp.h> 81 #include <inet/tcp_impl.h> 82 #include <inet/udp_impl.h> 83 #include <inet/ipp_common.h> 84 85 #include <inet/ip_multi.h> 86 #include <inet/ip_if.h> 87 #include <inet/ip_ire.h> 88 #include <inet/ip_rts.h> 89 #include <inet/optcom.h> 90 #include <inet/ip_ndp.h> 91 #include <net/pfkeyv2.h> 92 #include <inet/ipsec_info.h> 93 #include <inet/sadb.h> 94 #include <inet/ipsec_impl.h> 95 #include <inet/tun.h> 96 #include <inet/sctp_ip.h> 97 #include <sys/pattr.h> 98 #include <inet/ipclassifier.h> 99 #include <inet/ipsecah.h> 100 #include <inet/udp_impl.h> 101 #include <sys/squeue.h> 102 103 #include <sys/tsol/label.h> 104 #include <sys/tsol/tnet.h> 105 106 #include <rpc/pmap_prot.h> 107 108 /* Temporary; for CR 6451644 work-around */ 109 #include <sys/ethernet.h> 110 111 extern squeue_func_t ip_input_proc; 112 113 /* 114 * IP statistics. 115 */ 116 #define IP6_STAT(x) (ip6_statistics.x.value.ui64++) 117 #define IP6_STAT_UPDATE(x, n) (ip6_statistics.x.value.ui64 += (n)) 118 119 typedef struct ip6_stat { 120 kstat_named_t ip6_udp_fast_path; 121 kstat_named_t ip6_udp_slow_path; 122 kstat_named_t ip6_udp_fannorm; 123 kstat_named_t ip6_udp_fanmb; 124 kstat_named_t ip6_out_sw_cksum; 125 kstat_named_t ip6_in_sw_cksum; 126 kstat_named_t ip6_tcp_in_full_hw_cksum_err; 127 kstat_named_t ip6_tcp_in_part_hw_cksum_err; 128 kstat_named_t ip6_tcp_in_sw_cksum_err; 129 kstat_named_t ip6_tcp_out_sw_cksum_bytes; 130 kstat_named_t ip6_udp_in_full_hw_cksum_err; 131 kstat_named_t ip6_udp_in_part_hw_cksum_err; 132 kstat_named_t ip6_udp_in_sw_cksum_err; 133 kstat_named_t ip6_udp_out_sw_cksum_bytes; 134 kstat_named_t ip6_frag_mdt_pkt_out; 135 kstat_named_t ip6_frag_mdt_discarded; 136 kstat_named_t ip6_frag_mdt_allocfail; 137 kstat_named_t ip6_frag_mdt_addpdescfail; 138 kstat_named_t ip6_frag_mdt_allocd; 139 } ip6_stat_t; 140 141 static ip6_stat_t ip6_statistics = { 142 { "ip6_udp_fast_path", KSTAT_DATA_UINT64 }, 143 { "ip6_udp_slow_path", KSTAT_DATA_UINT64 }, 144 { "ip6_udp_fannorm", KSTAT_DATA_UINT64 }, 145 { "ip6_udp_fanmb", KSTAT_DATA_UINT64 }, 146 { "ip6_out_sw_cksum", KSTAT_DATA_UINT64 }, 147 { "ip6_in_sw_cksum", KSTAT_DATA_UINT64 }, 148 { "ip6_tcp_in_full_hw_cksum_err", KSTAT_DATA_UINT64 }, 149 { "ip6_tcp_in_part_hw_cksum_err", KSTAT_DATA_UINT64 }, 150 { "ip6_tcp_in_sw_cksum_err", KSTAT_DATA_UINT64 }, 151 { "ip6_tcp_out_sw_cksum_bytes", KSTAT_DATA_UINT64 }, 152 { "ip6_udp_in_full_hw_cksum_err", KSTAT_DATA_UINT64 }, 153 { "ip6_udp_in_part_hw_cksum_err", KSTAT_DATA_UINT64 }, 154 { "ip6_udp_in_sw_cksum_err", KSTAT_DATA_UINT64 }, 155 { "ip6_udp_out_sw_cksum_bytes", KSTAT_DATA_UINT64 }, 156 { "ip6_frag_mdt_pkt_out", KSTAT_DATA_UINT64 }, 157 { "ip6_frag_mdt_discarded", KSTAT_DATA_UINT64 }, 158 { "ip6_frag_mdt_allocfail", KSTAT_DATA_UINT64 }, 159 { "ip6_frag_mdt_addpdescfail", KSTAT_DATA_UINT64 }, 160 { "ip6_frag_mdt_allocd", KSTAT_DATA_UINT64 }, 161 }; 162 163 static kstat_t *ip6_kstat; 164 165 /* 166 * Naming conventions: 167 * These rules should be judiciously applied 168 * if there is a need to identify something as IPv6 versus IPv4 169 * IPv6 funcions will end with _v6 in the ip module. 170 * IPv6 funcions will end with _ipv6 in the transport modules. 171 * IPv6 macros: 172 * Some macros end with _V6; e.g. ILL_FRAG_HASH_V6 173 * Some macros start with V6_; e.g. V6_OR_V4_INADDR_ANY 174 * And then there are ..V4_PART_OF_V6. 175 * The intent is that macros in the ip module end with _V6. 176 * IPv6 global variables will start with ipv6_ 177 * IPv6 structures will start with ipv6 178 * IPv6 defined constants should start with IPV6_ 179 * (but then there are NDP_DEFAULT_VERS_PRI_AND_FLOW, etc) 180 */ 181 182 /* 183 * IPv6 mibs when the interface (ill) is not known. 184 * When the ill is known the per-interface mib in the ill is used. 185 */ 186 mib2_ipv6IfStatsEntry_t ip6_mib; 187 mib2_ipv6IfIcmpEntry_t icmp6_mib; 188 189 /* 190 * ip6opt_ls is used to enable IPv6 (via /etc/system on TX systems). 191 * We need to do this because we didn't obtain the IP6OPT_LS (0x0a) 192 * from IANA. This mechanism will remain in effect until an official 193 * number is obtained. 194 */ 195 uchar_t ip6opt_ls; 196 197 uint_t ipv6_ire_default_count; /* Number of IPv6 IRE_DEFAULT entries */ 198 uint_t ipv6_ire_default_index; /* Walking IPv6 index used to mod in */ 199 200 const in6_addr_t ipv6_all_ones = 201 { 0xffffffffU, 0xffffffffU, 0xffffffffU, 0xffffffffU }; 202 const in6_addr_t ipv6_all_zeros = { 0, 0, 0, 0 }; 203 204 #ifdef _BIG_ENDIAN 205 const in6_addr_t ipv6_unspecified_group = { 0xff000000U, 0, 0, 0 }; 206 #else /* _BIG_ENDIAN */ 207 const in6_addr_t ipv6_unspecified_group = { 0x000000ffU, 0, 0, 0 }; 208 #endif /* _BIG_ENDIAN */ 209 210 #ifdef _BIG_ENDIAN 211 const in6_addr_t ipv6_loopback = { 0, 0, 0, 0x00000001U }; 212 #else /* _BIG_ENDIAN */ 213 const in6_addr_t ipv6_loopback = { 0, 0, 0, 0x01000000U }; 214 #endif /* _BIG_ENDIAN */ 215 216 #ifdef _BIG_ENDIAN 217 const in6_addr_t ipv6_all_hosts_mcast = { 0xff020000U, 0, 0, 0x00000001U }; 218 #else /* _BIG_ENDIAN */ 219 const in6_addr_t ipv6_all_hosts_mcast = { 0x000002ffU, 0, 0, 0x01000000U }; 220 #endif /* _BIG_ENDIAN */ 221 222 #ifdef _BIG_ENDIAN 223 const in6_addr_t ipv6_all_rtrs_mcast = { 0xff020000U, 0, 0, 0x00000002U }; 224 #else /* _BIG_ENDIAN */ 225 const in6_addr_t ipv6_all_rtrs_mcast = { 0x000002ffU, 0, 0, 0x02000000U }; 226 #endif /* _BIG_ENDIAN */ 227 228 #ifdef _BIG_ENDIAN 229 const in6_addr_t ipv6_all_v2rtrs_mcast = { 0xff020000U, 0, 0, 0x00000016U }; 230 #else /* _BIG_ENDIAN */ 231 const in6_addr_t ipv6_all_v2rtrs_mcast = { 0x000002ffU, 0, 0, 0x16000000U }; 232 #endif /* _BIG_ENDIAN */ 233 234 #ifdef _BIG_ENDIAN 235 const in6_addr_t ipv6_solicited_node_mcast = 236 { 0xff020000U, 0, 0x00000001U, 0xff000000U }; 237 #else /* _BIG_ENDIAN */ 238 const in6_addr_t ipv6_solicited_node_mcast = 239 { 0x000002ffU, 0, 0x01000000U, 0x000000ffU }; 240 #endif /* _BIG_ENDIAN */ 241 242 /* 243 * Used by icmp_send_redirect_v6 for picking random src. 244 */ 245 uint_t icmp_redirect_v6_src_index; 246 247 /* Leave room for ip_newroute to tack on the src and target addresses */ 248 #define OK_RESOLVER_MP_V6(mp) \ 249 ((mp) && ((mp)->b_wptr - (mp)->b_rptr) >= (2 * IPV6_ADDR_LEN)) 250 251 static void icmp_inbound_too_big_v6(queue_t *, mblk_t *, ill_t *ill, 252 boolean_t, zoneid_t); 253 static void icmp_pkt_v6(queue_t *, mblk_t *, void *, size_t, 254 const in6_addr_t *, boolean_t, zoneid_t); 255 static void icmp_redirect_v6(queue_t *, mblk_t *, ill_t *ill); 256 static int ip_bind_connected_v6(conn_t *, mblk_t *, in6_addr_t *, 257 uint16_t, const in6_addr_t *, ip6_pkt_t *, uint16_t, 258 boolean_t, boolean_t, boolean_t, boolean_t); 259 static boolean_t ip_bind_insert_ire_v6(mblk_t *, ire_t *, const in6_addr_t *, 260 iulp_t *); 261 static int ip_bind_laddr_v6(conn_t *, mblk_t *, const in6_addr_t *, 262 uint16_t, boolean_t, boolean_t, boolean_t); 263 static void ip_fanout_proto_v6(queue_t *, mblk_t *, ip6_t *, ill_t *, 264 ill_t *, uint8_t, uint_t, uint_t, boolean_t, zoneid_t); 265 static void ip_fanout_tcp_v6(queue_t *, mblk_t *, ip6_t *, ill_t *, 266 ill_t *, uint_t, uint_t, boolean_t, zoneid_t); 267 static void ip_fanout_udp_v6(queue_t *, mblk_t *, ip6_t *, uint32_t, 268 ill_t *, ill_t *, uint_t, boolean_t, zoneid_t); 269 static int ip_process_options_v6(queue_t *, mblk_t *, ip6_t *, 270 uint8_t *, uint_t, uint8_t); 271 static mblk_t *ip_rput_frag_v6(queue_t *, mblk_t *, ip6_t *, 272 ip6_frag_t *, uint_t, uint_t *, uint32_t *, uint16_t *); 273 static boolean_t ip_source_routed_v6(ip6_t *, mblk_t *); 274 static void ip_wput_ire_v6(queue_t *, mblk_t *, ire_t *, int, int, 275 conn_t *, int, int, int, zoneid_t); 276 static boolean_t ip_ulp_cando_pkt2big(int); 277 278 void ip_rput_v6(queue_t *, mblk_t *); 279 static void ip_wput_v6(queue_t *, mblk_t *); 280 281 /* 282 * A template for an IPv6 AR_ENTRY_QUERY 283 */ 284 static areq_t ipv6_areq_template = { 285 AR_ENTRY_QUERY, /* cmd */ 286 sizeof (areq_t)+(2*IPV6_ADDR_LEN), /* name offset */ 287 sizeof (areq_t), /* name len (filled by ill_arp_alloc) */ 288 IP6_DL_SAP, /* protocol, from arps perspective */ 289 sizeof (areq_t), /* target addr offset */ 290 IPV6_ADDR_LEN, /* target addr_length */ 291 0, /* flags */ 292 sizeof (areq_t) + IPV6_ADDR_LEN, /* sender addr offset */ 293 IPV6_ADDR_LEN, /* sender addr length */ 294 6, /* xmit_count */ 295 1000, /* (re)xmit_interval in milliseconds */ 296 4 /* max # of requests to buffer */ 297 /* anything else filled in by the code */ 298 }; 299 300 struct qinit rinit_ipv6 = { 301 (pfi_t)ip_rput_v6, 302 NULL, 303 ip_open, 304 ip_close, 305 NULL, 306 &ip_mod_info 307 }; 308 309 struct qinit winit_ipv6 = { 310 (pfi_t)ip_wput_v6, 311 (pfi_t)ip_wsrv, 312 ip_open, 313 ip_close, 314 NULL, 315 &ip_mod_info 316 }; 317 318 /* 319 * Handle IPv6 ICMP packets sent to us. Consume the mblk passed in. 320 * The message has already been checksummed and if needed, 321 * a copy has been made to be sent any interested ICMP client (conn) 322 * Note that this is different than icmp_inbound() which does the fanout 323 * to conn's as well as local processing of the ICMP packets. 324 * 325 * All error messages are passed to the matching transport stream. 326 * 327 * Zones notes: 328 * The packet is only processed in the context of the specified zone: typically 329 * only this zone will reply to an echo request. This means that the caller must 330 * call icmp_inbound_v6() for each relevant zone. 331 */ 332 static void 333 icmp_inbound_v6(queue_t *q, mblk_t *mp, ill_t *ill, uint_t hdr_length, 334 boolean_t mctl_present, uint_t flags, zoneid_t zoneid, mblk_t *dl_mp) 335 { 336 icmp6_t *icmp6; 337 ip6_t *ip6h; 338 boolean_t interested; 339 ip6i_t *ip6i; 340 in6_addr_t origsrc; 341 ire_t *ire; 342 mblk_t *first_mp; 343 ipsec_in_t *ii; 344 345 ASSERT(ill != NULL); 346 first_mp = mp; 347 if (mctl_present) { 348 mp = first_mp->b_cont; 349 ASSERT(mp != NULL); 350 351 ii = (ipsec_in_t *)first_mp->b_rptr; 352 ASSERT(ii->ipsec_in_type == IPSEC_IN); 353 } 354 355 ip6h = (ip6_t *)mp->b_rptr; 356 357 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInMsgs); 358 359 if ((mp->b_wptr - mp->b_rptr) < (hdr_length + ICMP6_MINLEN)) { 360 if (!pullupmsg(mp, hdr_length + ICMP6_MINLEN)) { 361 ip1dbg(("icmp_inbound_v6: pullupmsg failed\n")); 362 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInErrors); 363 freemsg(first_mp); 364 return; 365 } 366 ip6h = (ip6_t *)mp->b_rptr; 367 } 368 if (icmp_accept_clear_messages == 0) { 369 first_mp = ipsec_check_global_policy(first_mp, NULL, 370 NULL, ip6h, mctl_present); 371 if (first_mp == NULL) 372 return; 373 } 374 375 /* 376 * On a labeled system, we have to check whether the zone itself is 377 * permitted to receive raw traffic. 378 */ 379 if (is_system_labeled()) { 380 if (zoneid == ALL_ZONES) 381 zoneid = tsol_packet_to_zoneid(mp); 382 if (!tsol_can_accept_raw(mp, B_FALSE)) { 383 ip1dbg(("icmp_inbound_v6: zone %d can't receive raw", 384 zoneid)); 385 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInErrors); 386 freemsg(first_mp); 387 return; 388 } 389 } 390 391 icmp6 = (icmp6_t *)(&mp->b_rptr[hdr_length]); 392 ip2dbg(("icmp_inbound_v6: type %d code %d\n", icmp6->icmp6_type, 393 icmp6->icmp6_code)); 394 interested = !(icmp6->icmp6_type & ICMP6_INFOMSG_MASK); 395 396 /* Initiate IPPF processing here */ 397 if (IP6_IN_IPP(flags)) { 398 399 /* 400 * If the ifindex changes due to SIOCSLIFINDEX 401 * packet may return to IP on the wrong ill. 402 */ 403 ip_process(IPP_LOCAL_IN, &mp, ill->ill_phyint->phyint_ifindex); 404 if (mp == NULL) { 405 if (mctl_present) { 406 freeb(first_mp); 407 } 408 return; 409 } 410 } 411 412 switch (icmp6->icmp6_type) { 413 case ICMP6_DST_UNREACH: 414 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInDestUnreachs); 415 if (icmp6->icmp6_code == ICMP6_DST_UNREACH_ADMIN) 416 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInAdminProhibs); 417 break; 418 419 case ICMP6_TIME_EXCEEDED: 420 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInTimeExcds); 421 break; 422 423 case ICMP6_PARAM_PROB: 424 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInParmProblems); 425 break; 426 427 case ICMP6_PACKET_TOO_BIG: 428 icmp_inbound_too_big_v6(q, first_mp, ill, mctl_present, 429 zoneid); 430 return; 431 case ICMP6_ECHO_REQUEST: 432 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInEchos); 433 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst) && 434 !ipv6_resp_echo_mcast) 435 break; 436 437 /* 438 * We must have exclusive use of the mblk to convert it to 439 * a response. 440 * If not, we copy it. 441 */ 442 if (mp->b_datap->db_ref > 1) { 443 mblk_t *mp1; 444 445 mp1 = copymsg(mp); 446 freemsg(mp); 447 if (mp1 == NULL) { 448 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 449 if (mctl_present) 450 freeb(first_mp); 451 return; 452 } 453 mp = mp1; 454 ip6h = (ip6_t *)mp->b_rptr; 455 icmp6 = (icmp6_t *)(&mp->b_rptr[hdr_length]); 456 if (mctl_present) 457 first_mp->b_cont = mp; 458 else 459 first_mp = mp; 460 } 461 462 /* 463 * Turn the echo into an echo reply. 464 * Remove any extension headers (do not reverse a source route) 465 * and clear the flow id (keep traffic class for now). 466 */ 467 if (hdr_length != IPV6_HDR_LEN) { 468 int i; 469 470 for (i = 0; i < IPV6_HDR_LEN; i++) 471 mp->b_rptr[hdr_length - i - 1] = 472 mp->b_rptr[IPV6_HDR_LEN - i - 1]; 473 mp->b_rptr += (hdr_length - IPV6_HDR_LEN); 474 ip6h = (ip6_t *)mp->b_rptr; 475 ip6h->ip6_nxt = IPPROTO_ICMPV6; 476 hdr_length = IPV6_HDR_LEN; 477 } 478 ip6h->ip6_vcf &= ~IPV6_FLOWINFO_FLOWLABEL; 479 icmp6->icmp6_type = ICMP6_ECHO_REPLY; 480 481 ip6h->ip6_plen = 482 htons((uint16_t)(msgdsize(mp) - IPV6_HDR_LEN)); 483 origsrc = ip6h->ip6_src; 484 /* 485 * Reverse the source and destination addresses. 486 * If the return address is a multicast, zero out the source 487 * (ip_wput_v6 will set an address). 488 */ 489 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst)) { 490 ip6h->ip6_src = ipv6_all_zeros; 491 ip6h->ip6_dst = origsrc; 492 } else { 493 ip6h->ip6_src = ip6h->ip6_dst; 494 ip6h->ip6_dst = origsrc; 495 } 496 497 /* set the hop limit */ 498 ip6h->ip6_hops = ipv6_def_hops; 499 500 /* 501 * Prepare for checksum by putting icmp length in the icmp 502 * checksum field. The checksum is calculated in ip_wput_v6. 503 */ 504 icmp6->icmp6_cksum = ip6h->ip6_plen; 505 /* 506 * ICMP echo replies should go out on the same interface 507 * the request came on as probes used by in.mpathd for 508 * detecting NIC failures are ECHO packets. We turn-off load 509 * spreading by allocating a ip6i and setting ip6i_attach_if 510 * to B_TRUE which is handled both by ip_wput_v6 and 511 * ip_newroute_v6. If we don't turnoff load spreading, 512 * the packets might get dropped if there are no 513 * non-FAILED/INACTIVE interfaces for it to go out on and 514 * in.mpathd would wrongly detect a failure or mis-detect 515 * a NIC failure as a link failure. As load spreading can 516 * happen only if ill_group is not NULL, we do only for 517 * that case and this does not affect the normal case. 518 * 519 * We force this only on echo packets that came from on-link 520 * hosts. We restrict this to link-local addresses which 521 * is used by in.mpathd for probing. In the IPv6 case, 522 * default routes typically have an ire_ipif pointer and 523 * hence a MATCH_IRE_ILL later in ip_newroute_v6/ip_wput_v6 524 * might work. As a default route out of this interface 525 * may not be present, enforcing this packet to go out in 526 * this case may not work. 527 */ 528 if (ill->ill_group != NULL && 529 IN6_IS_ADDR_LINKLOCAL(&origsrc)) { 530 /* 531 * If we are sending replies to ourselves, don't 532 * set ATTACH_IF as we may not be able to find 533 * the IRE_LOCAL on this ill i.e setting ATTACH_IF 534 * causes ip_wput_v6 to look for an IRE_LOCAL on 535 * "ill" which it may not find and will try to 536 * create an IRE_CACHE for our local address. Once 537 * we do this, we will try to forward all packets 538 * meant to our LOCAL address. 539 */ 540 ire = ire_cache_lookup_v6(&ip6h->ip6_dst, ALL_ZONES, 541 NULL); 542 if (ire == NULL || ire->ire_type != IRE_LOCAL) { 543 mp = ip_add_info_v6(mp, NULL, &ip6h->ip6_dst); 544 if (mp == NULL) { 545 BUMP_MIB(ill->ill_icmp6_mib, 546 ipv6IfIcmpInErrors); 547 if (ire != NULL) 548 ire_refrele(ire); 549 if (mctl_present) 550 freeb(first_mp); 551 return; 552 } else if (mctl_present) { 553 first_mp->b_cont = mp; 554 } else { 555 first_mp = mp; 556 } 557 ip6i = (ip6i_t *)mp->b_rptr; 558 ip6i->ip6i_flags = IP6I_ATTACH_IF; 559 ip6i->ip6i_ifindex = 560 ill->ill_phyint->phyint_ifindex; 561 } 562 if (ire != NULL) 563 ire_refrele(ire); 564 } 565 566 if (!mctl_present) { 567 /* 568 * This packet should go out the same way as it 569 * came in i.e in clear. To make sure that global 570 * policy will not be applied to this in ip_wput, 571 * we attach a IPSEC_IN mp and clear ipsec_in_secure. 572 */ 573 ASSERT(first_mp == mp); 574 if ((first_mp = ipsec_in_alloc(B_FALSE)) == NULL) { 575 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 576 freemsg(mp); 577 return; 578 } 579 ii = (ipsec_in_t *)first_mp->b_rptr; 580 581 /* This is not a secure packet */ 582 ii->ipsec_in_secure = B_FALSE; 583 first_mp->b_cont = mp; 584 } 585 ii->ipsec_in_zoneid = zoneid; 586 ASSERT(zoneid != ALL_ZONES); 587 if (!ipsec_in_to_out(first_mp, NULL, ip6h)) { 588 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 589 return; 590 } 591 put(WR(q), first_mp); 592 return; 593 594 case ICMP6_ECHO_REPLY: 595 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInEchoReplies); 596 break; 597 598 case ND_ROUTER_SOLICIT: 599 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInRouterSolicits); 600 break; 601 602 case ND_ROUTER_ADVERT: 603 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInRouterAdvertisements); 604 break; 605 606 case ND_NEIGHBOR_SOLICIT: 607 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInNeighborSolicits); 608 if (mctl_present) 609 freeb(first_mp); 610 /* XXX may wish to pass first_mp up to ndp_input someday. */ 611 ndp_input(ill, mp, dl_mp); 612 return; 613 614 case ND_NEIGHBOR_ADVERT: 615 BUMP_MIB(ill->ill_icmp6_mib, 616 ipv6IfIcmpInNeighborAdvertisements); 617 if (mctl_present) 618 freeb(first_mp); 619 /* XXX may wish to pass first_mp up to ndp_input someday. */ 620 ndp_input(ill, mp, dl_mp); 621 return; 622 623 case ND_REDIRECT: { 624 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInRedirects); 625 626 if (ipv6_ignore_redirect) 627 break; 628 629 /* 630 * As there is no upper client to deliver, we don't 631 * need the first_mp any more. 632 */ 633 if (mctl_present) 634 freeb(first_mp); 635 if (!pullupmsg(mp, -1)) { 636 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInBadRedirects); 637 break; 638 } 639 icmp_redirect_v6(q, mp, ill); 640 return; 641 } 642 643 /* 644 * The next three icmp messages will be handled by MLD. 645 * Pass all valid MLD packets up to any process(es) 646 * listening on a raw ICMP socket. MLD messages are 647 * freed by mld_input function. 648 */ 649 case MLD_LISTENER_QUERY: 650 case MLD_LISTENER_REPORT: 651 case MLD_LISTENER_REDUCTION: 652 if (mctl_present) 653 freeb(first_mp); 654 mld_input(q, mp, ill); 655 return; 656 default: 657 break; 658 } 659 if (interested) { 660 icmp_inbound_error_fanout_v6(q, first_mp, ip6h, icmp6, ill, 661 mctl_present, zoneid); 662 } else { 663 freemsg(first_mp); 664 } 665 } 666 667 /* 668 * Process received IPv6 ICMP Packet too big. 669 * After updating any IRE it does the fanout to any matching transport streams. 670 * Assumes the IPv6 plus ICMPv6 headers have been pulled up but nothing else. 671 */ 672 /* ARGSUSED */ 673 static void 674 icmp_inbound_too_big_v6(queue_t *q, mblk_t *mp, ill_t *ill, 675 boolean_t mctl_present, zoneid_t zoneid) 676 { 677 ip6_t *ip6h; 678 ip6_t *inner_ip6h; 679 icmp6_t *icmp6; 680 uint16_t hdr_length; 681 uint32_t mtu; 682 ire_t *ire, *first_ire; 683 mblk_t *first_mp; 684 685 first_mp = mp; 686 if (mctl_present) 687 mp = first_mp->b_cont; 688 /* 689 * We must have exclusive use of the mblk to update the MTU 690 * in the packet. 691 * If not, we copy it. 692 * 693 * If there's an M_CTL present, we know that allocated first_mp 694 * earlier in this function, so we know first_mp has refcnt of one. 695 */ 696 ASSERT(!mctl_present || first_mp->b_datap->db_ref == 1); 697 if (mp->b_datap->db_ref > 1) { 698 mblk_t *mp1; 699 700 mp1 = copymsg(mp); 701 freemsg(mp); 702 if (mp1 == NULL) { 703 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 704 if (mctl_present) 705 freeb(first_mp); 706 return; 707 } 708 mp = mp1; 709 if (mctl_present) 710 first_mp->b_cont = mp; 711 else 712 first_mp = mp; 713 } 714 ip6h = (ip6_t *)mp->b_rptr; 715 if (ip6h->ip6_nxt != IPPROTO_ICMPV6) 716 hdr_length = ip_hdr_length_v6(mp, ip6h); 717 else 718 hdr_length = IPV6_HDR_LEN; 719 720 icmp6 = (icmp6_t *)(&mp->b_rptr[hdr_length]); 721 ASSERT((size_t)(mp->b_wptr - mp->b_rptr) >= hdr_length + ICMP6_MINLEN); 722 inner_ip6h = (ip6_t *)&icmp6[1]; /* Packet in error */ 723 if ((uchar_t *)&inner_ip6h[1] > mp->b_wptr) { 724 if (!pullupmsg(mp, (uchar_t *)&inner_ip6h[1] - mp->b_rptr)) { 725 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 726 freemsg(first_mp); 727 return; 728 } 729 ip6h = (ip6_t *)mp->b_rptr; 730 icmp6 = (icmp6_t *)&mp->b_rptr[hdr_length]; 731 inner_ip6h = (ip6_t *)&icmp6[1]; 732 } 733 734 /* 735 * For link local destinations matching simply on IRE type is not 736 * sufficient. Same link local addresses for different ILL's is 737 * possible. 738 */ 739 740 if (IN6_IS_ADDR_LINKLOCAL(&inner_ip6h->ip6_dst)) { 741 first_ire = ire_ctable_lookup_v6(&inner_ip6h->ip6_dst, NULL, 742 IRE_CACHE, ill->ill_ipif, ALL_ZONES, NULL, 743 MATCH_IRE_TYPE | MATCH_IRE_ILL_GROUP); 744 745 if (first_ire == NULL) { 746 if (ip_debug > 2) { 747 /* ip1dbg */ 748 pr_addr_dbg("icmp_inbound_too_big_v6:" 749 "no ire for dst %s\n", AF_INET6, 750 &inner_ip6h->ip6_dst); 751 } 752 freemsg(first_mp); 753 return; 754 } 755 756 mtu = ntohl(icmp6->icmp6_mtu); 757 rw_enter(&first_ire->ire_bucket->irb_lock, RW_READER); 758 for (ire = first_ire; ire != NULL && 759 IN6_ARE_ADDR_EQUAL(&ire->ire_addr_v6, &inner_ip6h->ip6_dst); 760 ire = ire->ire_next) { 761 mutex_enter(&ire->ire_lock); 762 if (mtu < IPV6_MIN_MTU) { 763 ip1dbg(("Received mtu less than IPv6 " 764 "min mtu %d: %d\n", IPV6_MIN_MTU, mtu)); 765 mtu = IPV6_MIN_MTU; 766 /* 767 * If an mtu less than IPv6 min mtu is received, 768 * we must include a fragment header in 769 * subsequent packets. 770 */ 771 ire->ire_frag_flag |= IPH_FRAG_HDR; 772 } 773 ip1dbg(("Received mtu from router: %d\n", mtu)); 774 ire->ire_max_frag = MIN(ire->ire_max_frag, mtu); 775 /* Record the new max frag size for the ULP. */ 776 if (ire->ire_frag_flag & IPH_FRAG_HDR) { 777 /* 778 * If we need a fragment header in every packet 779 * (above case or multirouting), make sure the 780 * ULP takes it into account when computing the 781 * payload size. 782 */ 783 icmp6->icmp6_mtu = htonl(ire->ire_max_frag - 784 sizeof (ip6_frag_t)); 785 } else { 786 icmp6->icmp6_mtu = htonl(ire->ire_max_frag); 787 } 788 mutex_exit(&ire->ire_lock); 789 } 790 rw_exit(&first_ire->ire_bucket->irb_lock); 791 ire_refrele(first_ire); 792 } else { 793 irb_t *irb = NULL; 794 /* 795 * for non-link local destinations we match only on the IRE type 796 */ 797 ire = ire_ctable_lookup_v6(&inner_ip6h->ip6_dst, NULL, 798 IRE_CACHE, ill->ill_ipif, ALL_ZONES, NULL, MATCH_IRE_TYPE); 799 if (ire == NULL) { 800 if (ip_debug > 2) { 801 /* ip1dbg */ 802 pr_addr_dbg("icmp_inbound_too_big_v6:" 803 "no ire for dst %s\n", 804 AF_INET6, &inner_ip6h->ip6_dst); 805 } 806 freemsg(first_mp); 807 return; 808 } 809 irb = ire->ire_bucket; 810 ire_refrele(ire); 811 rw_enter(&irb->irb_lock, RW_READER); 812 for (ire = irb->irb_ire; ire != NULL; ire = ire->ire_next) { 813 if (IN6_ARE_ADDR_EQUAL(&ire->ire_addr_v6, 814 &inner_ip6h->ip6_dst)) { 815 mtu = ntohl(icmp6->icmp6_mtu); 816 mutex_enter(&ire->ire_lock); 817 if (mtu < IPV6_MIN_MTU) { 818 ip1dbg(("Received mtu less than IPv6" 819 "min mtu %d: %d\n", 820 IPV6_MIN_MTU, mtu)); 821 mtu = IPV6_MIN_MTU; 822 /* 823 * If an mtu less than IPv6 min mtu is 824 * received, we must include a fragment 825 * header in subsequent packets. 826 */ 827 ire->ire_frag_flag |= IPH_FRAG_HDR; 828 } 829 830 ip1dbg(("Received mtu from router: %d\n", mtu)); 831 ire->ire_max_frag = MIN(ire->ire_max_frag, mtu); 832 /* Record the new max frag size for the ULP. */ 833 if (ire->ire_frag_flag & IPH_FRAG_HDR) { 834 /* 835 * If we need a fragment header in 836 * every packet (above case or 837 * multirouting), make sure the ULP 838 * takes it into account when computing 839 * the payload size. 840 */ 841 icmp6->icmp6_mtu = 842 htonl(ire->ire_max_frag - 843 sizeof (ip6_frag_t)); 844 } else { 845 icmp6->icmp6_mtu = 846 htonl(ire->ire_max_frag); 847 } 848 mutex_exit(&ire->ire_lock); 849 } 850 } 851 rw_exit(&irb->irb_lock); 852 } 853 icmp_inbound_error_fanout_v6(q, first_mp, ip6h, icmp6, ill, 854 mctl_present, zoneid); 855 } 856 857 static void 858 pkt_too_big(conn_t *connp, void *arg) 859 { 860 mblk_t *mp; 861 862 if (!connp->conn_ipv6_recvpathmtu) 863 return; 864 865 /* create message and drop it on this connections read queue */ 866 if ((mp = dupb((mblk_t *)arg)) == NULL) { 867 return; 868 } 869 mp->b_datap->db_type = M_CTL; 870 871 putnext(connp->conn_rq, mp); 872 } 873 874 /* 875 * Fanout received ICMPv6 error packets to the transports. 876 * Assumes the IPv6 plus ICMPv6 headers have been pulled up but nothing else. 877 */ 878 void 879 icmp_inbound_error_fanout_v6(queue_t *q, mblk_t *mp, ip6_t *ip6h, 880 icmp6_t *icmp6, ill_t *ill, boolean_t mctl_present, zoneid_t zoneid) 881 { 882 uint16_t *up; /* Pointer to ports in ULP header */ 883 uint32_t ports; /* reversed ports for fanout */ 884 ip6_t rip6h; /* With reversed addresses */ 885 uint16_t hdr_length; 886 uint8_t *nexthdrp; 887 uint8_t nexthdr; 888 mblk_t *first_mp; 889 ipsec_in_t *ii; 890 tcpha_t *tcpha; 891 conn_t *connp; 892 893 first_mp = mp; 894 if (mctl_present) { 895 mp = first_mp->b_cont; 896 ASSERT(mp != NULL); 897 898 ii = (ipsec_in_t *)first_mp->b_rptr; 899 ASSERT(ii->ipsec_in_type == IPSEC_IN); 900 } else { 901 ii = NULL; 902 } 903 904 hdr_length = (uint16_t)((uchar_t *)icmp6 - (uchar_t *)ip6h); 905 ASSERT((size_t)(mp->b_wptr - (uchar_t *)icmp6) >= ICMP6_MINLEN); 906 907 /* 908 * Need to pullup everything in order to use 909 * ip_hdr_length_nexthdr_v6() 910 */ 911 if (mp->b_cont != NULL) { 912 if (!pullupmsg(mp, -1)) { 913 ip1dbg(("icmp_inbound_error_fanout_v6: " 914 "pullupmsg failed\n")); 915 goto drop_pkt; 916 } 917 ip6h = (ip6_t *)mp->b_rptr; 918 icmp6 = (icmp6_t *)(&mp->b_rptr[hdr_length]); 919 } 920 921 ip6h = (ip6_t *)&icmp6[1]; /* Packet in error */ 922 if ((uchar_t *)&ip6h[1] > mp->b_wptr) 923 goto drop_pkt; 924 925 if (!ip_hdr_length_nexthdr_v6(mp, ip6h, &hdr_length, &nexthdrp)) 926 goto drop_pkt; 927 nexthdr = *nexthdrp; 928 929 /* Set message type, must be done after pullups */ 930 mp->b_datap->db_type = M_CTL; 931 932 if (icmp6->icmp6_type == ICMP6_PACKET_TOO_BIG) { 933 /* 934 * Deliver indication of ICMP6_PACKET_TOO_BIG to interested 935 * sockets. 936 * 937 * Note I don't like walking every connection to deliver 938 * this information to a set of listeners. A separate 939 * list could be kept to keep the cost of this down. 940 */ 941 ipcl_walk(pkt_too_big, (void *)mp); 942 } 943 944 /* Try to pass the ICMP message to clients who need it */ 945 switch (nexthdr) { 946 case IPPROTO_UDP: { 947 /* 948 * Verify we have at least ICMP_MIN_TP_HDR_LEN bytes of 949 * UDP header to get the port information. 950 */ 951 if ((uchar_t *)ip6h + hdr_length + ICMP_MIN_TP_HDR_LEN > 952 mp->b_wptr) { 953 break; 954 } 955 /* 956 * Attempt to find a client stream based on port. 957 * Note that we do a reverse lookup since the header is 958 * in the form we sent it out. 959 * The rip6h header is only used for the IPCL_UDP_MATCH_V6 960 * and we only set the src and dst addresses and nexthdr. 961 */ 962 up = (uint16_t *)((uchar_t *)ip6h + hdr_length); 963 rip6h.ip6_src = ip6h->ip6_dst; 964 rip6h.ip6_dst = ip6h->ip6_src; 965 rip6h.ip6_nxt = nexthdr; 966 ((uint16_t *)&ports)[0] = up[1]; 967 ((uint16_t *)&ports)[1] = up[0]; 968 969 ip_fanout_udp_v6(q, first_mp, &rip6h, ports, ill, ill, 970 IP6_NO_IPPOLICY, mctl_present, zoneid); 971 return; 972 } 973 case IPPROTO_TCP: { 974 /* 975 * Verify we have at least ICMP_MIN_TP_HDR_LEN bytes of 976 * the TCP header to get the port information. 977 */ 978 if ((uchar_t *)ip6h + hdr_length + ICMP_MIN_TP_HDR_LEN > 979 mp->b_wptr) { 980 break; 981 } 982 983 /* 984 * Attempt to find a client stream based on port. 985 * Note that we do a reverse lookup since the header is 986 * in the form we sent it out. 987 * The rip6h header is only used for the IP_TCP_*MATCH_V6 and 988 * we only set the src and dst addresses and nexthdr. 989 */ 990 991 tcpha = (tcpha_t *)((char *)ip6h + hdr_length); 992 connp = ipcl_tcp_lookup_reversed_ipv6(ip6h, tcpha, 993 TCPS_LISTEN, ill->ill_phyint->phyint_ifindex); 994 if (connp == NULL) { 995 goto drop_pkt; 996 } 997 998 squeue_fill(connp->conn_sqp, first_mp, tcp_input, 999 connp, SQTAG_TCP6_INPUT_ICMP_ERR); 1000 return; 1001 1002 } 1003 case IPPROTO_SCTP: 1004 /* 1005 * Verify we have at least ICMP_MIN_TP_HDR_LEN bytes of 1006 * the SCTP header to get the port information. 1007 */ 1008 if ((uchar_t *)ip6h + hdr_length + ICMP_MIN_TP_HDR_LEN > 1009 mp->b_wptr) { 1010 break; 1011 } 1012 1013 up = (uint16_t *)((uchar_t *)ip6h + hdr_length); 1014 ((uint16_t *)&ports)[0] = up[1]; 1015 ((uint16_t *)&ports)[1] = up[0]; 1016 ip_fanout_sctp(mp, ill, (ipha_t *)ip6h, ports, 0, mctl_present, 1017 IP6_NO_IPPOLICY, 0, zoneid); 1018 return; 1019 case IPPROTO_ESP: 1020 case IPPROTO_AH: { 1021 int ipsec_rc; 1022 1023 /* 1024 * We need a IPSEC_IN in the front to fanout to AH/ESP. 1025 * We will re-use the IPSEC_IN if it is already present as 1026 * AH/ESP will not affect any fields in the IPSEC_IN for 1027 * ICMP errors. If there is no IPSEC_IN, allocate a new 1028 * one and attach it in the front. 1029 */ 1030 if (ii != NULL) { 1031 /* 1032 * ip_fanout_proto_again converts the ICMP errors 1033 * that come back from AH/ESP to M_DATA so that 1034 * if it is non-AH/ESP and we do a pullupmsg in 1035 * this function, it would work. Convert it back 1036 * to M_CTL before we send up as this is a ICMP 1037 * error. This could have been generated locally or 1038 * by some router. Validate the inner IPSEC 1039 * headers. 1040 * 1041 * NOTE : ill_index is used by ip_fanout_proto_again 1042 * to locate the ill. 1043 */ 1044 ASSERT(ill != NULL); 1045 ii->ipsec_in_ill_index = 1046 ill->ill_phyint->phyint_ifindex; 1047 ii->ipsec_in_rill_index = ii->ipsec_in_ill_index; 1048 first_mp->b_cont->b_datap->db_type = M_CTL; 1049 } else { 1050 /* 1051 * IPSEC_IN is not present. We attach a ipsec_in 1052 * message and send up to IPSEC for validating 1053 * and removing the IPSEC headers. Clear 1054 * ipsec_in_secure so that when we return 1055 * from IPSEC, we don't mistakenly think that this 1056 * is a secure packet came from the network. 1057 * 1058 * NOTE : ill_index is used by ip_fanout_proto_again 1059 * to locate the ill. 1060 */ 1061 ASSERT(first_mp == mp); 1062 first_mp = ipsec_in_alloc(B_FALSE); 1063 if (first_mp == NULL) { 1064 freemsg(mp); 1065 BUMP_MIB(&ip_mib, ipInDiscards); 1066 return; 1067 } 1068 ii = (ipsec_in_t *)first_mp->b_rptr; 1069 1070 /* This is not a secure packet */ 1071 ii->ipsec_in_secure = B_FALSE; 1072 first_mp->b_cont = mp; 1073 mp->b_datap->db_type = M_CTL; 1074 ASSERT(ill != NULL); 1075 ii->ipsec_in_ill_index = 1076 ill->ill_phyint->phyint_ifindex; 1077 ii->ipsec_in_rill_index = ii->ipsec_in_ill_index; 1078 } 1079 1080 if (!ipsec_loaded()) { 1081 ip_proto_not_sup(q, first_mp, 0, zoneid); 1082 return; 1083 } 1084 1085 if (nexthdr == IPPROTO_ESP) 1086 ipsec_rc = ipsecesp_icmp_error(first_mp); 1087 else 1088 ipsec_rc = ipsecah_icmp_error(first_mp); 1089 if (ipsec_rc == IPSEC_STATUS_FAILED) 1090 return; 1091 1092 ip_fanout_proto_again(first_mp, ill, ill, NULL); 1093 return; 1094 } 1095 case IPPROTO_ENCAP: 1096 case IPPROTO_IPV6: 1097 if ((uint8_t *)ip6h + hdr_length + 1098 (nexthdr == IPPROTO_ENCAP ? sizeof (ipha_t) : 1099 sizeof (ip6_t)) > mp->b_wptr) 1100 goto drop_pkt; 1101 1102 if (nexthdr == IPPROTO_ENCAP || 1103 !IN6_ARE_ADDR_EQUAL( 1104 &((ip6_t *)(((uint8_t *)ip6h) + hdr_length))->ip6_src, 1105 &ip6h->ip6_src) || 1106 !IN6_ARE_ADDR_EQUAL( 1107 &((ip6_t *)(((uint8_t *)ip6h) + hdr_length))->ip6_dst, 1108 &ip6h->ip6_dst)) { 1109 /* 1110 * For tunnels that have used IPsec protection, 1111 * we need to adjust the MTU to take into account 1112 * the IPsec overhead. 1113 */ 1114 if (ii != NULL) 1115 icmp6->icmp6_mtu = htons( 1116 ntohs(icmp6->icmp6_mtu) - 1117 ipsec_in_extra_length(first_mp)); 1118 } else { 1119 /* 1120 * Self-encapsulated case. As in the ipv4 case, 1121 * we need to strip the 2nd IP header. Since mp 1122 * is already pulled-up, we can simply bcopy 1123 * the 3rd header + data over the 2nd header. 1124 */ 1125 uint16_t unused_len; 1126 ip6_t *inner_ip6h = (ip6_t *) 1127 ((uchar_t *)ip6h + hdr_length); 1128 1129 /* 1130 * Make sure we don't do recursion more than once. 1131 */ 1132 if (!ip_hdr_length_nexthdr_v6(mp, inner_ip6h, 1133 &unused_len, &nexthdrp) || 1134 *nexthdrp == IPPROTO_IPV6) { 1135 goto drop_pkt; 1136 } 1137 1138 /* 1139 * We are about to modify the packet. Make a copy if 1140 * someone else has a reference to it. 1141 */ 1142 if (DB_REF(mp) > 1) { 1143 mblk_t *mp1; 1144 uint16_t icmp6_offset; 1145 1146 mp1 = copymsg(mp); 1147 if (mp1 == NULL) { 1148 goto drop_pkt; 1149 } 1150 icmp6_offset = (uint16_t) 1151 ((uchar_t *)icmp6 - mp->b_rptr); 1152 freemsg(mp); 1153 mp = mp1; 1154 1155 icmp6 = (icmp6_t *)(mp->b_rptr + icmp6_offset); 1156 ip6h = (ip6_t *)&icmp6[1]; 1157 inner_ip6h = (ip6_t *) 1158 ((uchar_t *)ip6h + hdr_length); 1159 1160 if (mctl_present) 1161 first_mp->b_cont = mp; 1162 else 1163 first_mp = mp; 1164 } 1165 1166 /* 1167 * Need to set db_type back to M_DATA before 1168 * refeeding mp into this function. 1169 */ 1170 DB_TYPE(mp) = M_DATA; 1171 1172 /* 1173 * Copy the 3rd header + remaining data on top 1174 * of the 2nd header. 1175 */ 1176 bcopy(inner_ip6h, ip6h, 1177 mp->b_wptr - (uchar_t *)inner_ip6h); 1178 1179 /* 1180 * Subtract length of the 2nd header. 1181 */ 1182 mp->b_wptr -= hdr_length; 1183 1184 /* 1185 * Now recurse, and see what I _really_ should be 1186 * doing here. 1187 */ 1188 icmp_inbound_error_fanout_v6(q, first_mp, 1189 (ip6_t *)mp->b_rptr, icmp6, ill, mctl_present, 1190 zoneid); 1191 return; 1192 } 1193 /* FALLTHRU */ 1194 default: 1195 /* 1196 * The rip6h header is only used for the lookup and we 1197 * only set the src and dst addresses and nexthdr. 1198 */ 1199 rip6h.ip6_src = ip6h->ip6_dst; 1200 rip6h.ip6_dst = ip6h->ip6_src; 1201 rip6h.ip6_nxt = nexthdr; 1202 ip_fanout_proto_v6(q, first_mp, &rip6h, ill, ill, nexthdr, 0, 1203 IP6_NO_IPPOLICY, mctl_present, zoneid); 1204 return; 1205 } 1206 /* NOTREACHED */ 1207 drop_pkt: 1208 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInErrors); 1209 ip1dbg(("icmp_inbound_error_fanout_v6: drop pkt\n")); 1210 freemsg(first_mp); 1211 } 1212 1213 /* 1214 * Process received IPv6 ICMP Redirect messages. 1215 */ 1216 /* ARGSUSED */ 1217 static void 1218 icmp_redirect_v6(queue_t *q, mblk_t *mp, ill_t *ill) 1219 { 1220 ip6_t *ip6h; 1221 uint16_t hdr_length; 1222 nd_redirect_t *rd; 1223 ire_t *ire; 1224 ire_t *prev_ire; 1225 ire_t *redir_ire; 1226 in6_addr_t *src, *dst, *gateway; 1227 nd_opt_hdr_t *opt; 1228 nce_t *nce; 1229 int nce_flags = 0; 1230 int err = 0; 1231 boolean_t redirect_to_router = B_FALSE; 1232 int len; 1233 int optlen; 1234 iulp_t ulp_info = { 0 }; 1235 ill_t *prev_ire_ill; 1236 ipif_t *ipif; 1237 1238 ip6h = (ip6_t *)mp->b_rptr; 1239 if (ip6h->ip6_nxt != IPPROTO_ICMPV6) 1240 hdr_length = ip_hdr_length_v6(mp, ip6h); 1241 else 1242 hdr_length = IPV6_HDR_LEN; 1243 1244 rd = (nd_redirect_t *)&mp->b_rptr[hdr_length]; 1245 len = mp->b_wptr - mp->b_rptr - hdr_length; 1246 src = &ip6h->ip6_src; 1247 dst = &rd->nd_rd_dst; 1248 gateway = &rd->nd_rd_target; 1249 1250 /* Verify if it is a valid redirect */ 1251 if (!IN6_IS_ADDR_LINKLOCAL(src) || 1252 (ip6h->ip6_hops != IPV6_MAX_HOPS) || 1253 (rd->nd_rd_code != 0) || 1254 (len < sizeof (nd_redirect_t)) || 1255 (IN6_IS_ADDR_V4MAPPED(dst)) || 1256 (IN6_IS_ADDR_MULTICAST(dst))) { 1257 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInBadRedirects); 1258 freemsg(mp); 1259 return; 1260 } 1261 1262 if (!(IN6_IS_ADDR_LINKLOCAL(gateway) || 1263 IN6_ARE_ADDR_EQUAL(gateway, dst))) { 1264 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInBadRedirects); 1265 freemsg(mp); 1266 return; 1267 } 1268 1269 if (len > sizeof (nd_redirect_t)) { 1270 if (!ndp_verify_optlen((nd_opt_hdr_t *)&rd[1], 1271 len - sizeof (nd_redirect_t))) { 1272 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInBadRedirects); 1273 freemsg(mp); 1274 return; 1275 } 1276 } 1277 1278 if (!IN6_ARE_ADDR_EQUAL(gateway, dst)) { 1279 redirect_to_router = B_TRUE; 1280 nce_flags |= NCE_F_ISROUTER; 1281 } 1282 1283 /* ipif will be refreleased afterwards */ 1284 ipif = ipif_get_next_ipif(NULL, ill); 1285 if (ipif == NULL) { 1286 freemsg(mp); 1287 return; 1288 } 1289 1290 /* 1291 * Verify that the IP source address of the redirect is 1292 * the same as the current first-hop router for the specified 1293 * ICMP destination address. 1294 * Also, Make sure we had a route for the dest in question and 1295 * that route was pointing to the old gateway (the source of the 1296 * redirect packet.) 1297 */ 1298 1299 prev_ire = ire_route_lookup_v6(dst, 0, src, 0, ipif, NULL, 1300 ALL_ZONES, NULL, MATCH_IRE_GW | MATCH_IRE_ILL_GROUP | 1301 MATCH_IRE_DEFAULT); 1302 1303 /* 1304 * Check that 1305 * the redirect was not from ourselves 1306 * old gateway is still directly reachable 1307 */ 1308 if (prev_ire == NULL || 1309 prev_ire->ire_type == IRE_LOCAL) { 1310 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInBadRedirects); 1311 ipif_refrele(ipif); 1312 goto fail_redirect; 1313 } 1314 prev_ire_ill = ire_to_ill(prev_ire); 1315 ASSERT(prev_ire_ill != NULL); 1316 if (prev_ire_ill->ill_flags & ILLF_NONUD) 1317 nce_flags |= NCE_F_NONUD; 1318 1319 /* 1320 * Should we use the old ULP info to create the new gateway? From 1321 * a user's perspective, we should inherit the info so that it 1322 * is a "smooth" transition. If we do not do that, then new 1323 * connections going thru the new gateway will have no route metrics, 1324 * which is counter-intuitive to user. From a network point of 1325 * view, this may or may not make sense even though the new gateway 1326 * is still directly connected to us so the route metrics should not 1327 * change much. 1328 * 1329 * But if the old ire_uinfo is not initialized, we do another 1330 * recursive lookup on the dest using the new gateway. There may 1331 * be a route to that. If so, use it to initialize the redirect 1332 * route. 1333 */ 1334 if (prev_ire->ire_uinfo.iulp_set) { 1335 bcopy(&prev_ire->ire_uinfo, &ulp_info, sizeof (iulp_t)); 1336 } else if (redirect_to_router) { 1337 /* 1338 * Only do the following if the redirection is really to 1339 * a router. 1340 */ 1341 ire_t *tmp_ire; 1342 ire_t *sire; 1343 1344 tmp_ire = ire_ftable_lookup_v6(dst, 0, gateway, 0, NULL, &sire, 1345 ALL_ZONES, 0, NULL, 1346 (MATCH_IRE_RECURSIVE | MATCH_IRE_GW | MATCH_IRE_DEFAULT)); 1347 if (sire != NULL) { 1348 bcopy(&sire->ire_uinfo, &ulp_info, sizeof (iulp_t)); 1349 ASSERT(tmp_ire != NULL); 1350 ire_refrele(tmp_ire); 1351 ire_refrele(sire); 1352 } else if (tmp_ire != NULL) { 1353 bcopy(&tmp_ire->ire_uinfo, &ulp_info, 1354 sizeof (iulp_t)); 1355 ire_refrele(tmp_ire); 1356 } 1357 } 1358 1359 optlen = mp->b_wptr - mp->b_rptr - hdr_length - sizeof (nd_redirect_t); 1360 opt = (nd_opt_hdr_t *)&rd[1]; 1361 opt = ndp_get_option(opt, optlen, ND_OPT_TARGET_LINKADDR); 1362 if (opt != NULL) { 1363 err = ndp_lookup_then_add(ill, 1364 (uchar_t *)&opt[1], /* Link layer address */ 1365 gateway, 1366 &ipv6_all_ones, /* prefix mask */ 1367 &ipv6_all_zeros, /* Mapping mask */ 1368 0, 1369 nce_flags, 1370 ND_STALE, 1371 &nce, 1372 NULL, 1373 NULL); 1374 switch (err) { 1375 case 0: 1376 NCE_REFRELE(nce); 1377 break; 1378 case EEXIST: 1379 /* 1380 * Check to see if link layer address has changed and 1381 * process the nce_state accordingly. 1382 */ 1383 ndp_process(nce, (uchar_t *)&opt[1], 0, B_FALSE); 1384 NCE_REFRELE(nce); 1385 break; 1386 default: 1387 ip1dbg(("icmp_redirect_v6: NCE create failed %d\n", 1388 err)); 1389 ipif_refrele(ipif); 1390 goto fail_redirect; 1391 } 1392 } 1393 if (redirect_to_router) { 1394 /* icmp_redirect_ok_v6() must have already verified this */ 1395 ASSERT(IN6_IS_ADDR_LINKLOCAL(gateway)); 1396 1397 /* 1398 * Create a Route Association. This will allow us to remember 1399 * a router told us to use the particular gateway. 1400 */ 1401 ire = ire_create_v6( 1402 dst, 1403 &ipv6_all_ones, /* mask */ 1404 &prev_ire->ire_src_addr_v6, /* source addr */ 1405 gateway, /* gateway addr */ 1406 &prev_ire->ire_max_frag, /* max frag */ 1407 NULL, /* Fast Path header */ 1408 NULL, /* no rfq */ 1409 NULL, /* no stq */ 1410 IRE_HOST, 1411 NULL, 1412 prev_ire->ire_ipif, 1413 NULL, 1414 0, 1415 0, 1416 (RTF_DYNAMIC | RTF_GATEWAY | RTF_HOST), 1417 &ulp_info, 1418 NULL, 1419 NULL); 1420 } else { 1421 queue_t *stq; 1422 1423 stq = (ipif->ipif_net_type == IRE_IF_RESOLVER) 1424 ? ipif->ipif_rq : ipif->ipif_wq; 1425 1426 /* 1427 * Just create an on link entry, i.e. interface route. 1428 */ 1429 ire = ire_create_v6( 1430 dst, /* gateway == dst */ 1431 &ipv6_all_ones, /* mask */ 1432 &prev_ire->ire_src_addr_v6, /* source addr */ 1433 &ipv6_all_zeros, /* gateway addr */ 1434 &prev_ire->ire_max_frag, /* max frag */ 1435 NULL, /* Fast Path header */ 1436 NULL, /* ire rfq */ 1437 stq, /* ire stq */ 1438 ipif->ipif_net_type, /* IF_[NO]RESOLVER */ 1439 NULL, 1440 prev_ire->ire_ipif, 1441 &ipv6_all_ones, 1442 0, 1443 0, 1444 (RTF_DYNAMIC | RTF_HOST), 1445 &ulp_info, 1446 NULL, 1447 NULL); 1448 } 1449 1450 /* Release reference from earlier ipif_get_next_ipif() */ 1451 ipif_refrele(ipif); 1452 1453 if (ire == NULL) 1454 goto fail_redirect; 1455 1456 if (ire_add(&ire, NULL, NULL, NULL, B_FALSE) == 0) { 1457 1458 /* tell routing sockets that we received a redirect */ 1459 ip_rts_change_v6(RTM_REDIRECT, 1460 &rd->nd_rd_dst, 1461 &rd->nd_rd_target, 1462 &ipv6_all_ones, 0, &ire->ire_src_addr_v6, 1463 (RTF_DYNAMIC | RTF_GATEWAY | RTF_HOST), 0, 1464 (RTA_DST | RTA_GATEWAY | RTA_NETMASK | RTA_AUTHOR)); 1465 1466 /* 1467 * Delete any existing IRE_HOST type ires for this destination. 1468 * This together with the added IRE has the effect of 1469 * modifying an existing redirect. 1470 */ 1471 redir_ire = ire_ftable_lookup_v6(dst, 0, src, IRE_HOST, 1472 ire->ire_ipif, NULL, ALL_ZONES, 0, NULL, 1473 (MATCH_IRE_GW | MATCH_IRE_TYPE | MATCH_IRE_ILL_GROUP)); 1474 1475 ire_refrele(ire); /* Held in ire_add_v6 */ 1476 1477 if (redir_ire != NULL) { 1478 if (redir_ire->ire_flags & RTF_DYNAMIC) 1479 ire_delete(redir_ire); 1480 ire_refrele(redir_ire); 1481 } 1482 } 1483 1484 if (prev_ire->ire_type == IRE_CACHE) 1485 ire_delete(prev_ire); 1486 ire_refrele(prev_ire); 1487 prev_ire = NULL; 1488 1489 fail_redirect: 1490 if (prev_ire != NULL) 1491 ire_refrele(prev_ire); 1492 freemsg(mp); 1493 } 1494 1495 static ill_t * 1496 ip_queue_to_ill_v6(queue_t *q) 1497 { 1498 ill_t *ill; 1499 1500 ASSERT(WR(q) == q); 1501 1502 if (q->q_next != NULL) { 1503 ill = (ill_t *)q->q_ptr; 1504 if (ILL_CAN_LOOKUP(ill)) 1505 ill_refhold(ill); 1506 else 1507 ill = NULL; 1508 } else { 1509 ill = ill_lookup_on_name(ipif_loopback_name, B_FALSE, B_TRUE, 1510 NULL, NULL, NULL, NULL, NULL); 1511 } 1512 if (ill == NULL) 1513 ip0dbg(("ip_queue_to_ill_v6: no ill\n")); 1514 return (ill); 1515 } 1516 1517 /* 1518 * Assigns an appropriate source address to the packet. 1519 * If origdst is one of our IP addresses that use it as the source. 1520 * If the queue is an ill queue then select a source from that ill. 1521 * Otherwise pick a source based on a route lookup back to the origsrc. 1522 * 1523 * src is the return parameter. Returns a pointer to src or NULL if failure. 1524 */ 1525 static in6_addr_t * 1526 icmp_pick_source_v6(queue_t *wq, in6_addr_t *origsrc, in6_addr_t *origdst, 1527 in6_addr_t *src, zoneid_t zoneid) 1528 { 1529 ill_t *ill; 1530 ire_t *ire; 1531 ipif_t *ipif; 1532 1533 ASSERT(!(wq->q_flag & QREADR)); 1534 if (wq->q_next != NULL) { 1535 ill = (ill_t *)wq->q_ptr; 1536 } else { 1537 ill = NULL; 1538 } 1539 1540 ire = ire_route_lookup_v6(origdst, 0, 0, (IRE_LOCAL|IRE_LOOPBACK), 1541 NULL, NULL, zoneid, NULL, (MATCH_IRE_TYPE|MATCH_IRE_ZONEONLY)); 1542 if (ire != NULL) { 1543 /* Destined to one of our addresses */ 1544 *src = *origdst; 1545 ire_refrele(ire); 1546 return (src); 1547 } 1548 if (ire != NULL) { 1549 ire_refrele(ire); 1550 ire = NULL; 1551 } 1552 if (ill == NULL) { 1553 /* What is the route back to the original source? */ 1554 ire = ire_route_lookup_v6(origsrc, 0, 0, 0, 1555 NULL, NULL, zoneid, NULL, 1556 (MATCH_IRE_DEFAULT|MATCH_IRE_RECURSIVE)); 1557 if (ire == NULL) { 1558 BUMP_MIB(&ip6_mib, ipv6OutNoRoutes); 1559 return (NULL); 1560 } 1561 /* 1562 * Does not matter whether we use ire_stq or ire_ipif here. 1563 * Just pick an ill for ICMP replies. 1564 */ 1565 ASSERT(ire->ire_ipif != NULL); 1566 ill = ire->ire_ipif->ipif_ill; 1567 ire_refrele(ire); 1568 } 1569 ipif = ipif_select_source_v6(ill, origsrc, RESTRICT_TO_NONE, 1570 IPV6_PREFER_SRC_DEFAULT, zoneid); 1571 if (ipif != NULL) { 1572 *src = ipif->ipif_v6src_addr; 1573 ipif_refrele(ipif); 1574 return (src); 1575 } 1576 /* 1577 * Unusual case - can't find a usable source address to reach the 1578 * original source. Use what in the route to the source. 1579 */ 1580 ire = ire_route_lookup_v6(origsrc, 0, 0, 0, 1581 NULL, NULL, zoneid, NULL, 1582 (MATCH_IRE_DEFAULT|MATCH_IRE_RECURSIVE)); 1583 if (ire == NULL) { 1584 BUMP_MIB(&ip6_mib, ipv6OutNoRoutes); 1585 return (NULL); 1586 } 1587 ASSERT(ire != NULL); 1588 *src = ire->ire_src_addr_v6; 1589 ire_refrele(ire); 1590 return (src); 1591 } 1592 1593 /* 1594 * Build and ship an IPv6 ICMP message using the packet data in mp, 1595 * and the ICMP header pointed to by "stuff". (May be called as 1596 * writer.) 1597 * Note: assumes that icmp_pkt_err_ok_v6 has been called to 1598 * verify that an icmp error packet can be sent. 1599 * 1600 * If q is an ill write side queue (which is the case when packets 1601 * arrive from ip_rput) then ip_wput code will ensure that packets to 1602 * link-local destinations are sent out that ill. 1603 * 1604 * If v6src_ptr is set use it as a source. Otherwise select a reasonable 1605 * source address (see above function). 1606 */ 1607 static void 1608 icmp_pkt_v6(queue_t *q, mblk_t *mp, void *stuff, size_t len, 1609 const in6_addr_t *v6src_ptr, boolean_t mctl_present, zoneid_t zoneid) 1610 { 1611 ip6_t *ip6h; 1612 in6_addr_t v6dst; 1613 size_t len_needed; 1614 size_t msg_len; 1615 mblk_t *mp1; 1616 icmp6_t *icmp6; 1617 ill_t *ill; 1618 in6_addr_t v6src; 1619 mblk_t *ipsec_mp; 1620 ipsec_out_t *io; 1621 1622 ill = ip_queue_to_ill_v6(q); 1623 if (ill == NULL) { 1624 freemsg(mp); 1625 return; 1626 } 1627 1628 if (mctl_present) { 1629 /* 1630 * If it is : 1631 * 1632 * 1) a IPSEC_OUT, then this is caused by outbound 1633 * datagram originating on this host. IPSEC processing 1634 * may or may not have been done. Refer to comments above 1635 * icmp_inbound_error_fanout for details. 1636 * 1637 * 2) a IPSEC_IN if we are generating a icmp_message 1638 * for an incoming datagram destined for us i.e called 1639 * from ip_fanout_send_icmp. 1640 */ 1641 ipsec_info_t *in; 1642 1643 ipsec_mp = mp; 1644 mp = ipsec_mp->b_cont; 1645 1646 in = (ipsec_info_t *)ipsec_mp->b_rptr; 1647 ip6h = (ip6_t *)mp->b_rptr; 1648 1649 ASSERT(in->ipsec_info_type == IPSEC_OUT || 1650 in->ipsec_info_type == IPSEC_IN); 1651 1652 if (in->ipsec_info_type == IPSEC_IN) { 1653 /* 1654 * Convert the IPSEC_IN to IPSEC_OUT. 1655 */ 1656 if (!ipsec_in_to_out(ipsec_mp, NULL, ip6h)) { 1657 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 1658 ill_refrele(ill); 1659 return; 1660 } 1661 } else { 1662 ASSERT(in->ipsec_info_type == IPSEC_OUT); 1663 io = (ipsec_out_t *)in; 1664 /* 1665 * Clear out ipsec_out_proc_begin, so we do a fresh 1666 * ire lookup. 1667 */ 1668 io->ipsec_out_proc_begin = B_FALSE; 1669 } 1670 } else { 1671 /* 1672 * This is in clear. The icmp message we are building 1673 * here should go out in clear. 1674 */ 1675 ipsec_in_t *ii; 1676 ASSERT(mp->b_datap->db_type == M_DATA); 1677 if ((ipsec_mp = ipsec_in_alloc(B_FALSE)) == NULL) { 1678 freemsg(mp); 1679 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 1680 ill_refrele(ill); 1681 return; 1682 } 1683 ii = (ipsec_in_t *)ipsec_mp->b_rptr; 1684 1685 /* This is not a secure packet */ 1686 ii->ipsec_in_secure = B_FALSE; 1687 /* 1688 * For trusted extensions using a shared IP address we can 1689 * send using any zoneid. 1690 */ 1691 if (zoneid == ALL_ZONES) 1692 ii->ipsec_in_zoneid = GLOBAL_ZONEID; 1693 else 1694 ii->ipsec_in_zoneid = zoneid; 1695 ipsec_mp->b_cont = mp; 1696 ip6h = (ip6_t *)mp->b_rptr; 1697 /* 1698 * Convert the IPSEC_IN to IPSEC_OUT. 1699 */ 1700 if (!ipsec_in_to_out(ipsec_mp, NULL, ip6h)) { 1701 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 1702 ill_refrele(ill); 1703 return; 1704 } 1705 } 1706 io = (ipsec_out_t *)ipsec_mp->b_rptr; 1707 1708 if (v6src_ptr != NULL) { 1709 v6src = *v6src_ptr; 1710 } else { 1711 if (icmp_pick_source_v6(q, &ip6h->ip6_src, &ip6h->ip6_dst, 1712 &v6src, zoneid) == NULL) { 1713 freemsg(ipsec_mp); 1714 ill_refrele(ill); 1715 return; 1716 } 1717 } 1718 v6dst = ip6h->ip6_src; 1719 len_needed = ipv6_icmp_return - IPV6_HDR_LEN - len; 1720 msg_len = msgdsize(mp); 1721 if (msg_len > len_needed) { 1722 if (!adjmsg(mp, len_needed - msg_len)) { 1723 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutErrors); 1724 freemsg(ipsec_mp); 1725 ill_refrele(ill); 1726 return; 1727 } 1728 msg_len = len_needed; 1729 } 1730 mp1 = allocb(IPV6_HDR_LEN + len, BPRI_HI); 1731 if (mp1 == NULL) { 1732 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutErrors); 1733 freemsg(ipsec_mp); 1734 ill_refrele(ill); 1735 return; 1736 } 1737 ill_refrele(ill); 1738 mp1->b_cont = mp; 1739 mp = mp1; 1740 ASSERT(ipsec_mp->b_datap->db_type == M_CTL && 1741 io->ipsec_out_type == IPSEC_OUT); 1742 ipsec_mp->b_cont = mp; 1743 1744 /* 1745 * Set ipsec_out_icmp_loopback so we can let the ICMP messages this 1746 * node generates be accepted in peace by all on-host destinations. 1747 * If we do NOT assume that all on-host destinations trust 1748 * self-generated ICMP messages, then rework here, ip.c, and spd.c. 1749 * (Look for ipsec_out_icmp_loopback). 1750 */ 1751 io->ipsec_out_icmp_loopback = B_TRUE; 1752 1753 ip6h = (ip6_t *)mp->b_rptr; 1754 mp1->b_wptr = (uchar_t *)ip6h + (IPV6_HDR_LEN + len); 1755 1756 ip6h->ip6_vcf = IPV6_DEFAULT_VERS_AND_FLOW; 1757 ip6h->ip6_nxt = IPPROTO_ICMPV6; 1758 ip6h->ip6_hops = ipv6_def_hops; 1759 ip6h->ip6_dst = v6dst; 1760 ip6h->ip6_src = v6src; 1761 msg_len += IPV6_HDR_LEN + len; 1762 if (msg_len > IP_MAXPACKET + IPV6_HDR_LEN) { 1763 (void) adjmsg(mp, IP_MAXPACKET + IPV6_HDR_LEN - msg_len); 1764 msg_len = IP_MAXPACKET + IPV6_HDR_LEN; 1765 } 1766 ip6h->ip6_plen = htons((uint16_t)(msgdsize(mp) - IPV6_HDR_LEN)); 1767 icmp6 = (icmp6_t *)&ip6h[1]; 1768 bcopy(stuff, (char *)icmp6, len); 1769 /* 1770 * Prepare for checksum by putting icmp length in the icmp 1771 * checksum field. The checksum is calculated in ip_wput_v6. 1772 */ 1773 icmp6->icmp6_cksum = ip6h->ip6_plen; 1774 if (icmp6->icmp6_type == ND_REDIRECT) { 1775 ip6h->ip6_hops = IPV6_MAX_HOPS; 1776 } 1777 /* Send to V6 writeside put routine */ 1778 put(q, ipsec_mp); 1779 } 1780 1781 /* 1782 * Update the output mib when ICMPv6 packets are sent. 1783 */ 1784 static void 1785 icmp_update_out_mib_v6(ill_t *ill, icmp6_t *icmp6) 1786 { 1787 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutMsgs); 1788 1789 switch (icmp6->icmp6_type) { 1790 case ICMP6_DST_UNREACH: 1791 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutDestUnreachs); 1792 if (icmp6->icmp6_code == ICMP6_DST_UNREACH_ADMIN) 1793 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutAdminProhibs); 1794 break; 1795 1796 case ICMP6_TIME_EXCEEDED: 1797 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutTimeExcds); 1798 break; 1799 1800 case ICMP6_PARAM_PROB: 1801 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutParmProblems); 1802 break; 1803 1804 case ICMP6_PACKET_TOO_BIG: 1805 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutPktTooBigs); 1806 break; 1807 1808 case ICMP6_ECHO_REQUEST: 1809 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutEchos); 1810 break; 1811 1812 case ICMP6_ECHO_REPLY: 1813 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutEchoReplies); 1814 break; 1815 1816 case ND_ROUTER_SOLICIT: 1817 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutRouterSolicits); 1818 break; 1819 1820 case ND_ROUTER_ADVERT: 1821 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutRouterAdvertisements); 1822 break; 1823 1824 case ND_NEIGHBOR_SOLICIT: 1825 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutNeighborSolicits); 1826 break; 1827 1828 case ND_NEIGHBOR_ADVERT: 1829 BUMP_MIB(ill->ill_icmp6_mib, 1830 ipv6IfIcmpOutNeighborAdvertisements); 1831 break; 1832 1833 case ND_REDIRECT: 1834 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutRedirects); 1835 break; 1836 1837 case MLD_LISTENER_QUERY: 1838 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutGroupMembQueries); 1839 break; 1840 1841 case MLD_LISTENER_REPORT: 1842 case MLD_V2_LISTENER_REPORT: 1843 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutGroupMembResponses); 1844 break; 1845 1846 case MLD_LISTENER_REDUCTION: 1847 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpOutGroupMembReductions); 1848 break; 1849 } 1850 } 1851 1852 /* 1853 * Check if it is ok to send an ICMPv6 error packet in 1854 * response to the IP packet in mp. 1855 * Free the message and return null if no 1856 * ICMP error packet should be sent. 1857 */ 1858 static mblk_t * 1859 icmp_pkt_err_ok_v6(queue_t *q, mblk_t *mp, 1860 boolean_t llbcast, boolean_t mcast_ok) 1861 { 1862 ip6_t *ip6h; 1863 1864 if (!mp) 1865 return (NULL); 1866 1867 ip6h = (ip6_t *)mp->b_rptr; 1868 1869 /* Check if source address uniquely identifies the host */ 1870 1871 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_src) || 1872 IN6_IS_ADDR_V4MAPPED(&ip6h->ip6_src) || 1873 IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src)) { 1874 freemsg(mp); 1875 return (NULL); 1876 } 1877 1878 if (ip6h->ip6_nxt == IPPROTO_ICMPV6) { 1879 size_t len_needed = IPV6_HDR_LEN + ICMP6_MINLEN; 1880 icmp6_t *icmp6; 1881 1882 if (mp->b_wptr - mp->b_rptr < len_needed) { 1883 if (!pullupmsg(mp, len_needed)) { 1884 ill_t *ill; 1885 1886 ill = ip_queue_to_ill_v6(q); 1887 if (ill == NULL) { 1888 BUMP_MIB(&icmp6_mib, 1889 ipv6IfIcmpInErrors); 1890 } else { 1891 BUMP_MIB(ill->ill_icmp6_mib, 1892 ipv6IfIcmpInErrors); 1893 ill_refrele(ill); 1894 } 1895 freemsg(mp); 1896 return (NULL); 1897 } 1898 ip6h = (ip6_t *)mp->b_rptr; 1899 } 1900 icmp6 = (icmp6_t *)&ip6h[1]; 1901 /* Explicitly do not generate errors in response to redirects */ 1902 if (ICMP6_IS_ERROR(icmp6->icmp6_type) || 1903 icmp6->icmp6_type == ND_REDIRECT) { 1904 freemsg(mp); 1905 return (NULL); 1906 } 1907 } 1908 /* 1909 * Check that the destination is not multicast and that the packet 1910 * was not sent on link layer broadcast or multicast. (Exception 1911 * is Packet too big message as per the draft - when mcast_ok is set.) 1912 */ 1913 if (!mcast_ok && 1914 (llbcast || IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst))) { 1915 freemsg(mp); 1916 return (NULL); 1917 } 1918 if (icmp_err_rate_limit()) { 1919 /* 1920 * Only send ICMP error packets every so often. 1921 * This should be done on a per port/source basis, 1922 * but for now this will suffice. 1923 */ 1924 freemsg(mp); 1925 return (NULL); 1926 } 1927 return (mp); 1928 } 1929 1930 /* 1931 * Generate an ICMPv6 redirect message. 1932 * Include target link layer address option if it exits. 1933 * Always include redirect header. 1934 */ 1935 static void 1936 icmp_send_redirect_v6(queue_t *q, mblk_t *mp, in6_addr_t *targetp, 1937 in6_addr_t *dest, ill_t *ill, boolean_t llbcast) 1938 { 1939 nd_redirect_t *rd; 1940 nd_opt_rd_hdr_t *rdh; 1941 uchar_t *buf; 1942 nce_t *nce = NULL; 1943 nd_opt_hdr_t *opt; 1944 int len; 1945 int ll_opt_len = 0; 1946 int max_redir_hdr_data_len; 1947 int pkt_len; 1948 in6_addr_t *srcp; 1949 1950 /* 1951 * We are called from ip_rput where we could 1952 * not have attached an IPSEC_IN. 1953 */ 1954 ASSERT(mp->b_datap->db_type == M_DATA); 1955 1956 mp = icmp_pkt_err_ok_v6(q, mp, llbcast, B_FALSE); 1957 if (mp == NULL) 1958 return; 1959 nce = ndp_lookup_v6(ill, targetp, B_FALSE); 1960 if (nce != NULL && nce->nce_state != ND_INCOMPLETE) { 1961 ll_opt_len = (sizeof (nd_opt_hdr_t) + 1962 ill->ill_phys_addr_length + 7)/8 * 8; 1963 } 1964 len = sizeof (nd_redirect_t) + sizeof (nd_opt_rd_hdr_t) + ll_opt_len; 1965 ASSERT(len % 4 == 0); 1966 buf = kmem_alloc(len, KM_NOSLEEP); 1967 if (buf == NULL) { 1968 if (nce != NULL) 1969 NCE_REFRELE(nce); 1970 freemsg(mp); 1971 return; 1972 } 1973 1974 rd = (nd_redirect_t *)buf; 1975 rd->nd_rd_type = (uint8_t)ND_REDIRECT; 1976 rd->nd_rd_code = 0; 1977 rd->nd_rd_reserved = 0; 1978 rd->nd_rd_target = *targetp; 1979 rd->nd_rd_dst = *dest; 1980 1981 opt = (nd_opt_hdr_t *)(buf + sizeof (nd_redirect_t)); 1982 if (nce != NULL && ll_opt_len != 0) { 1983 opt->nd_opt_type = ND_OPT_TARGET_LINKADDR; 1984 opt->nd_opt_len = ll_opt_len/8; 1985 bcopy((char *)nce->nce_res_mp->b_rptr + 1986 NCE_LL_ADDR_OFFSET(ill), &opt[1], 1987 ill->ill_phys_addr_length); 1988 } 1989 if (nce != NULL) 1990 NCE_REFRELE(nce); 1991 rdh = (nd_opt_rd_hdr_t *)(buf + sizeof (nd_redirect_t) + ll_opt_len); 1992 rdh->nd_opt_rh_type = (uint8_t)ND_OPT_REDIRECTED_HEADER; 1993 /* max_redir_hdr_data_len and nd_opt_rh_len must be multiple of 8 */ 1994 max_redir_hdr_data_len = (ipv6_icmp_return - IPV6_HDR_LEN - len)/8*8; 1995 pkt_len = msgdsize(mp); 1996 /* Make sure mp is 8 byte aligned */ 1997 if (pkt_len > max_redir_hdr_data_len) { 1998 rdh->nd_opt_rh_len = (max_redir_hdr_data_len + 1999 sizeof (nd_opt_rd_hdr_t))/8; 2000 (void) adjmsg(mp, max_redir_hdr_data_len - pkt_len); 2001 } else { 2002 rdh->nd_opt_rh_len = (pkt_len + sizeof (nd_opt_rd_hdr_t))/8; 2003 (void) adjmsg(mp, -(pkt_len % 8)); 2004 } 2005 rdh->nd_opt_rh_reserved1 = 0; 2006 rdh->nd_opt_rh_reserved2 = 0; 2007 /* ipif_v6src_addr contains the link-local source address */ 2008 rw_enter(&ill_g_lock, RW_READER); 2009 if (ill->ill_group != NULL) { 2010 /* 2011 * The receiver of the redirect will verify whether it 2012 * had a route through us (srcp that we will use in 2013 * the redirect) or not. As we load spread even link-locals, 2014 * we don't know which source address the receiver of 2015 * redirect has in its route for communicating with us. 2016 * Thus we randomly choose a source here and finally we 2017 * should get to the right one and it will eventually 2018 * accept the redirect from us. We can't call 2019 * ip_lookup_scope_v6 because we don't have the right 2020 * link-local address here. Thus we randomly choose one. 2021 */ 2022 int cnt = ill->ill_group->illgrp_ill_count; 2023 2024 ill = ill->ill_group->illgrp_ill; 2025 cnt = ++icmp_redirect_v6_src_index % cnt; 2026 while (cnt--) 2027 ill = ill->ill_group_next; 2028 srcp = &ill->ill_ipif->ipif_v6src_addr; 2029 } else { 2030 srcp = &ill->ill_ipif->ipif_v6src_addr; 2031 } 2032 rw_exit(&ill_g_lock); 2033 /* Redirects sent by router, and router is global zone */ 2034 icmp_pkt_v6(q, mp, buf, len, srcp, B_FALSE, GLOBAL_ZONEID); 2035 kmem_free(buf, len); 2036 } 2037 2038 2039 /* Generate an ICMP time exceeded message. (May be called as writer.) */ 2040 void 2041 icmp_time_exceeded_v6(queue_t *q, mblk_t *mp, uint8_t code, 2042 boolean_t llbcast, boolean_t mcast_ok, zoneid_t zoneid) 2043 { 2044 icmp6_t icmp6; 2045 boolean_t mctl_present; 2046 mblk_t *first_mp; 2047 2048 EXTRACT_PKT_MP(mp, first_mp, mctl_present); 2049 2050 mp = icmp_pkt_err_ok_v6(q, mp, llbcast, mcast_ok); 2051 if (mp == NULL) { 2052 if (mctl_present) 2053 freeb(first_mp); 2054 return; 2055 } 2056 bzero(&icmp6, sizeof (icmp6_t)); 2057 icmp6.icmp6_type = ICMP6_TIME_EXCEEDED; 2058 icmp6.icmp6_code = code; 2059 icmp_pkt_v6(q, first_mp, &icmp6, sizeof (icmp6_t), NULL, mctl_present, 2060 zoneid); 2061 } 2062 2063 /* 2064 * Generate an ICMP unreachable message. 2065 */ 2066 void 2067 icmp_unreachable_v6(queue_t *q, mblk_t *mp, uint8_t code, 2068 boolean_t llbcast, boolean_t mcast_ok, zoneid_t zoneid) 2069 { 2070 icmp6_t icmp6; 2071 boolean_t mctl_present; 2072 mblk_t *first_mp; 2073 2074 EXTRACT_PKT_MP(mp, first_mp, mctl_present); 2075 2076 mp = icmp_pkt_err_ok_v6(q, mp, llbcast, mcast_ok); 2077 if (mp == NULL) { 2078 if (mctl_present) 2079 freeb(first_mp); 2080 return; 2081 } 2082 bzero(&icmp6, sizeof (icmp6_t)); 2083 icmp6.icmp6_type = ICMP6_DST_UNREACH; 2084 icmp6.icmp6_code = code; 2085 icmp_pkt_v6(q, first_mp, &icmp6, sizeof (icmp6_t), NULL, mctl_present, 2086 zoneid); 2087 } 2088 2089 /* 2090 * Generate an ICMP pkt too big message. 2091 */ 2092 static void 2093 icmp_pkt2big_v6(queue_t *q, mblk_t *mp, uint32_t mtu, 2094 boolean_t llbcast, boolean_t mcast_ok, zoneid_t zoneid) 2095 { 2096 icmp6_t icmp6; 2097 mblk_t *first_mp; 2098 boolean_t mctl_present; 2099 2100 EXTRACT_PKT_MP(mp, first_mp, mctl_present); 2101 2102 mp = icmp_pkt_err_ok_v6(q, mp, llbcast, mcast_ok); 2103 if (mp == NULL) { 2104 if (mctl_present) 2105 freeb(first_mp); 2106 return; 2107 } 2108 bzero(&icmp6, sizeof (icmp6_t)); 2109 icmp6.icmp6_type = ICMP6_PACKET_TOO_BIG; 2110 icmp6.icmp6_code = 0; 2111 icmp6.icmp6_mtu = htonl(mtu); 2112 2113 icmp_pkt_v6(q, first_mp, &icmp6, sizeof (icmp6_t), NULL, mctl_present, 2114 zoneid); 2115 } 2116 2117 /* 2118 * Generate an ICMP parameter problem message. (May be called as writer.) 2119 * 'offset' is the offset from the beginning of the packet in error. 2120 */ 2121 static void 2122 icmp_param_problem_v6(queue_t *q, mblk_t *mp, uint8_t code, 2123 uint32_t offset, boolean_t llbcast, boolean_t mcast_ok, zoneid_t zoneid) 2124 { 2125 icmp6_t icmp6; 2126 boolean_t mctl_present; 2127 mblk_t *first_mp; 2128 2129 EXTRACT_PKT_MP(mp, first_mp, mctl_present); 2130 2131 mp = icmp_pkt_err_ok_v6(q, mp, llbcast, mcast_ok); 2132 if (mp == NULL) { 2133 if (mctl_present) 2134 freeb(first_mp); 2135 return; 2136 } 2137 bzero((char *)&icmp6, sizeof (icmp6_t)); 2138 icmp6.icmp6_type = ICMP6_PARAM_PROB; 2139 icmp6.icmp6_code = code; 2140 icmp6.icmp6_pptr = htonl(offset); 2141 icmp_pkt_v6(q, first_mp, &icmp6, sizeof (icmp6_t), NULL, mctl_present, 2142 zoneid); 2143 } 2144 2145 /* 2146 * This code will need to take into account the possibility of binding 2147 * to a link local address on a multi-homed host, in which case the 2148 * outgoing interface (from the conn) will need to be used when getting 2149 * an ire for the dst. Going through proper outgoing interface and 2150 * choosing the source address corresponding to the outgoing interface 2151 * is necessary when the destination address is a link-local address and 2152 * IPV6_BOUND_IF or IPV6_PKTINFO or scope_id has been set. 2153 * This can happen when active connection is setup; thus ipp pointer 2154 * is passed here from tcp_connect_*() routines, in non-TCP cases NULL 2155 * pointer is passed as ipp pointer. 2156 */ 2157 mblk_t * 2158 ip_bind_v6(queue_t *q, mblk_t *mp, conn_t *connp, ip6_pkt_t *ipp) 2159 { 2160 ssize_t len; 2161 int protocol; 2162 struct T_bind_req *tbr; 2163 sin6_t *sin6; 2164 ipa6_conn_t *ac6; 2165 in6_addr_t *v6srcp; 2166 in6_addr_t *v6dstp; 2167 uint16_t lport; 2168 uint16_t fport; 2169 uchar_t *ucp; 2170 mblk_t *mp1; 2171 boolean_t ire_requested; 2172 boolean_t ipsec_policy_set; 2173 int error = 0; 2174 boolean_t local_bind; 2175 boolean_t orig_pkt_isv6 = connp->conn_pkt_isv6; 2176 ipa6_conn_x_t *acx6; 2177 boolean_t verify_dst; 2178 2179 ASSERT(connp->conn_af_isv6); 2180 len = mp->b_wptr - mp->b_rptr; 2181 if (len < (sizeof (*tbr) + 1)) { 2182 (void) mi_strlog(q, 1, SL_ERROR|SL_TRACE, 2183 "ip_bind_v6: bogus msg, len %ld", len); 2184 goto bad_addr; 2185 } 2186 /* Back up and extract the protocol identifier. */ 2187 mp->b_wptr--; 2188 tbr = (struct T_bind_req *)mp->b_rptr; 2189 /* Reset the message type in preparation for shipping it back. */ 2190 mp->b_datap->db_type = M_PCPROTO; 2191 2192 protocol = *mp->b_wptr & 0xFF; 2193 connp->conn_ulp = (uint8_t)protocol; 2194 2195 /* 2196 * Check for a zero length address. This is from a protocol that 2197 * wants to register to receive all packets of its type. 2198 */ 2199 if (tbr->ADDR_length == 0) { 2200 if ((protocol == IPPROTO_TCP || protocol == IPPROTO_SCTP || 2201 protocol == IPPROTO_ESP || protocol == IPPROTO_AH) && 2202 ipcl_proto_fanout_v6[protocol].connf_head != NULL) { 2203 /* 2204 * TCP, SCTP, AH, and ESP have single protocol fanouts. 2205 * Do not allow others to bind to these. 2206 */ 2207 goto bad_addr; 2208 } 2209 2210 /* 2211 * 2212 * The udp module never sends down a zero-length address, 2213 * and allowing this on a labeled system will break MLP 2214 * functionality. 2215 */ 2216 if (is_system_labeled() && protocol == IPPROTO_UDP) 2217 goto bad_addr; 2218 2219 /* Allow ipsec plumbing */ 2220 if (connp->conn_mac_exempt && protocol != IPPROTO_AH && 2221 protocol != IPPROTO_ESP) 2222 goto bad_addr; 2223 2224 connp->conn_srcv6 = ipv6_all_zeros; 2225 ipcl_proto_insert_v6(connp, protocol); 2226 2227 tbr->PRIM_type = T_BIND_ACK; 2228 return (mp); 2229 } 2230 2231 /* Extract the address pointer from the message. */ 2232 ucp = (uchar_t *)mi_offset_param(mp, tbr->ADDR_offset, 2233 tbr->ADDR_length); 2234 if (ucp == NULL) { 2235 ip1dbg(("ip_bind_v6: no address\n")); 2236 goto bad_addr; 2237 } 2238 if (!OK_32PTR(ucp)) { 2239 ip1dbg(("ip_bind_v6: unaligned address\n")); 2240 goto bad_addr; 2241 } 2242 mp1 = mp->b_cont; /* trailing mp if any */ 2243 ire_requested = (mp1 && mp1->b_datap->db_type == IRE_DB_REQ_TYPE); 2244 ipsec_policy_set = (mp1 && mp1->b_datap->db_type == IPSEC_POLICY_SET); 2245 2246 switch (tbr->ADDR_length) { 2247 default: 2248 ip1dbg(("ip_bind_v6: bad address length %d\n", 2249 (int)tbr->ADDR_length)); 2250 goto bad_addr; 2251 2252 case IPV6_ADDR_LEN: 2253 /* Verification of local address only */ 2254 v6srcp = (in6_addr_t *)ucp; 2255 lport = 0; 2256 local_bind = B_TRUE; 2257 break; 2258 2259 case sizeof (sin6_t): 2260 sin6 = (sin6_t *)ucp; 2261 v6srcp = &sin6->sin6_addr; 2262 lport = sin6->sin6_port; 2263 local_bind = B_TRUE; 2264 break; 2265 2266 case sizeof (ipa6_conn_t): 2267 /* 2268 * Verify that both the source and destination addresses 2269 * are valid. 2270 * Note that we allow connect to broadcast and multicast 2271 * addresses when ire_requested is set. Thus the ULP 2272 * has to check for IRE_BROADCAST and multicast. 2273 */ 2274 ac6 = (ipa6_conn_t *)ucp; 2275 v6srcp = &ac6->ac6_laddr; 2276 v6dstp = &ac6->ac6_faddr; 2277 fport = ac6->ac6_fport; 2278 /* For raw socket, the local port is not set. */ 2279 lport = ac6->ac6_lport != 0 ? ac6->ac6_lport : 2280 connp->conn_lport; 2281 local_bind = B_FALSE; 2282 /* Always verify destination reachability. */ 2283 verify_dst = B_TRUE; 2284 break; 2285 2286 case sizeof (ipa6_conn_x_t): 2287 /* 2288 * Verify that the source address is valid. 2289 * Note that we allow connect to broadcast and multicast 2290 * addresses when ire_requested is set. Thus the ULP 2291 * has to check for IRE_BROADCAST and multicast. 2292 */ 2293 acx6 = (ipa6_conn_x_t *)ucp; 2294 ac6 = &acx6->ac6x_conn; 2295 v6srcp = &ac6->ac6_laddr; 2296 v6dstp = &ac6->ac6_faddr; 2297 fport = ac6->ac6_fport; 2298 lport = ac6->ac6_lport; 2299 local_bind = B_FALSE; 2300 /* 2301 * Client that passed ipa6_conn_x_t to us specifies whether to 2302 * verify destination reachability. 2303 */ 2304 verify_dst = (acx6->ac6x_flags & ACX_VERIFY_DST) != 0; 2305 break; 2306 } 2307 if (local_bind) { 2308 if (IN6_IS_ADDR_V4MAPPED(v6srcp) && !connp->conn_ipv6_v6only) { 2309 /* Bind to IPv4 address */ 2310 ipaddr_t v4src; 2311 2312 IN6_V4MAPPED_TO_IPADDR(v6srcp, v4src); 2313 2314 error = ip_bind_laddr(connp, mp, v4src, lport, 2315 ire_requested, ipsec_policy_set, 2316 tbr->ADDR_length != IPV6_ADDR_LEN); 2317 if (error != 0) 2318 goto bad_addr; 2319 connp->conn_pkt_isv6 = B_FALSE; 2320 } else { 2321 if (IN6_IS_ADDR_V4MAPPED(v6srcp)) { 2322 error = 0; 2323 goto bad_addr; 2324 } 2325 error = ip_bind_laddr_v6(connp, mp, v6srcp, lport, 2326 ire_requested, ipsec_policy_set, 2327 (tbr->ADDR_length != IPV6_ADDR_LEN)); 2328 if (error != 0) 2329 goto bad_addr; 2330 connp->conn_pkt_isv6 = B_TRUE; 2331 } 2332 } else { 2333 /* 2334 * Bind to local and remote address. Local might be 2335 * unspecified in which case it will be extracted from 2336 * ire_src_addr_v6 2337 */ 2338 if (IN6_IS_ADDR_V4MAPPED(v6dstp) && !connp->conn_ipv6_v6only) { 2339 /* Connect to IPv4 address */ 2340 ipaddr_t v4src; 2341 ipaddr_t v4dst; 2342 2343 /* Is the source unspecified or mapped? */ 2344 if (!IN6_IS_ADDR_V4MAPPED(v6srcp) && 2345 !IN6_IS_ADDR_UNSPECIFIED(v6srcp)) { 2346 ip1dbg(("ip_bind_v6: " 2347 "dst is mapped, but not the src\n")); 2348 goto bad_addr; 2349 } 2350 IN6_V4MAPPED_TO_IPADDR(v6srcp, v4src); 2351 IN6_V4MAPPED_TO_IPADDR(v6dstp, v4dst); 2352 2353 /* 2354 * XXX Fix needed. Need to pass ipsec_policy_set 2355 * instead of B_FALSE. 2356 */ 2357 2358 /* Always verify destination reachability. */ 2359 error = ip_bind_connected(connp, mp, &v4src, lport, 2360 v4dst, fport, ire_requested, ipsec_policy_set, 2361 B_TRUE, B_TRUE); 2362 if (error != 0) 2363 goto bad_addr; 2364 IN6_IPADDR_TO_V4MAPPED(v4src, v6srcp); 2365 connp->conn_pkt_isv6 = B_FALSE; 2366 } else if (IN6_IS_ADDR_V4MAPPED(v6srcp)) { 2367 ip1dbg(("ip_bind_v6: " 2368 "src is mapped, but not the dst\n")); 2369 goto bad_addr; 2370 } else { 2371 error = ip_bind_connected_v6(connp, mp, v6srcp, 2372 lport, v6dstp, ipp, fport, ire_requested, 2373 ipsec_policy_set, B_TRUE, verify_dst); 2374 if (error != 0) 2375 goto bad_addr; 2376 connp->conn_pkt_isv6 = B_TRUE; 2377 } 2378 } 2379 /* Update qinfo if v4/v6 changed */ 2380 if ((orig_pkt_isv6 != connp->conn_pkt_isv6) && 2381 !(IPCL_IS_TCP(connp) || IPCL_IS_UDP(connp))) { 2382 if (connp->conn_pkt_isv6) 2383 ip_setqinfo(RD(q), IPV6_MINOR, B_TRUE); 2384 else 2385 ip_setqinfo(RD(q), IPV4_MINOR, B_TRUE); 2386 } 2387 2388 /* 2389 * Pass the IPSEC headers size in ire_ipsec_overhead. 2390 * We can't do this in ip_bind_insert_ire because the policy 2391 * may not have been inherited at that point in time and hence 2392 * conn_out_enforce_policy may not be set. 2393 */ 2394 mp1 = mp->b_cont; 2395 if (ire_requested && connp->conn_out_enforce_policy && 2396 mp1 != NULL && DB_TYPE(mp1) == IRE_DB_REQ_TYPE) { 2397 ire_t *ire = (ire_t *)mp1->b_rptr; 2398 ASSERT(MBLKL(mp1) >= sizeof (ire_t)); 2399 ire->ire_ipsec_overhead = (conn_ipsec_length(connp)); 2400 } 2401 2402 /* Send it home. */ 2403 mp->b_datap->db_type = M_PCPROTO; 2404 tbr->PRIM_type = T_BIND_ACK; 2405 return (mp); 2406 2407 bad_addr: 2408 if (error == EINPROGRESS) 2409 return (NULL); 2410 if (error > 0) 2411 mp = mi_tpi_err_ack_alloc(mp, TSYSERR, error); 2412 else 2413 mp = mi_tpi_err_ack_alloc(mp, TBADADDR, 0); 2414 return (mp); 2415 } 2416 2417 /* 2418 * Here address is verified to be a valid local address. 2419 * If the IRE_DB_REQ_TYPE mp is present, a multicast 2420 * address is also considered a valid local address. 2421 * In the case of a multicast address, however, the 2422 * upper protocol is expected to reset the src address 2423 * to 0 if it sees an ire with IN6_IS_ADDR_MULTICAST returned so that 2424 * no packets are emitted with multicast address as 2425 * source address. 2426 * The addresses valid for bind are: 2427 * (1) - in6addr_any 2428 * (2) - IP address of an UP interface 2429 * (3) - IP address of a DOWN interface 2430 * (4) - a multicast address. In this case 2431 * the conn will only receive packets destined to 2432 * the specified multicast address. Note: the 2433 * application still has to issue an 2434 * IPV6_JOIN_GROUP socket option. 2435 * 2436 * In all the above cases, the bound address must be valid in the current zone. 2437 * When the address is loopback or multicast, there might be many matching IREs 2438 * so bind has to look up based on the zone. 2439 */ 2440 static int 2441 ip_bind_laddr_v6(conn_t *connp, mblk_t *mp, const in6_addr_t *v6src, 2442 uint16_t lport, boolean_t ire_requested, boolean_t ipsec_policy_set, 2443 boolean_t fanout_insert) 2444 { 2445 int error = 0; 2446 ire_t *src_ire = NULL; 2447 ipif_t *ipif = NULL; 2448 mblk_t *policy_mp; 2449 zoneid_t zoneid; 2450 2451 if (ipsec_policy_set) 2452 policy_mp = mp->b_cont; 2453 2454 /* 2455 * If it was previously connected, conn_fully_bound would have 2456 * been set. 2457 */ 2458 connp->conn_fully_bound = B_FALSE; 2459 2460 zoneid = connp->conn_zoneid; 2461 2462 if (!IN6_IS_ADDR_UNSPECIFIED(v6src)) { 2463 src_ire = ire_route_lookup_v6(v6src, 0, 0, 2464 0, NULL, NULL, zoneid, NULL, MATCH_IRE_ZONEONLY); 2465 /* 2466 * If an address other than in6addr_any is requested, 2467 * we verify that it is a valid address for bind 2468 * Note: Following code is in if-else-if form for 2469 * readability compared to a condition check. 2470 */ 2471 ASSERT(src_ire == NULL || !(src_ire->ire_type & IRE_BROADCAST)); 2472 if (IRE_IS_LOCAL(src_ire)) { 2473 /* 2474 * (2) Bind to address of local UP interface 2475 */ 2476 ipif = src_ire->ire_ipif; 2477 } else if (IN6_IS_ADDR_MULTICAST(v6src)) { 2478 ipif_t *multi_ipif = NULL; 2479 ire_t *save_ire; 2480 /* 2481 * (4) bind to multicast address. 2482 * Fake out the IRE returned to upper 2483 * layer to be a broadcast IRE in 2484 * ip_bind_insert_ire_v6(). 2485 * Pass other information that matches 2486 * the ipif (e.g. the source address). 2487 * conn_multicast_ill is only used for 2488 * IPv6 packets 2489 */ 2490 mutex_enter(&connp->conn_lock); 2491 if (connp->conn_multicast_ill != NULL) { 2492 (void) ipif_lookup_zoneid( 2493 connp->conn_multicast_ill, zoneid, 0, 2494 &multi_ipif); 2495 } else { 2496 /* 2497 * Look for default like 2498 * ip_wput_v6 2499 */ 2500 multi_ipif = ipif_lookup_group_v6( 2501 &ipv6_unspecified_group, zoneid); 2502 } 2503 mutex_exit(&connp->conn_lock); 2504 save_ire = src_ire; 2505 src_ire = NULL; 2506 if (multi_ipif == NULL || !ire_requested || 2507 (src_ire = ipif_to_ire_v6(multi_ipif)) == NULL) { 2508 src_ire = save_ire; 2509 error = EADDRNOTAVAIL; 2510 } else { 2511 ASSERT(src_ire != NULL); 2512 if (save_ire != NULL) 2513 ire_refrele(save_ire); 2514 } 2515 if (multi_ipif != NULL) 2516 ipif_refrele(multi_ipif); 2517 } else { 2518 *mp->b_wptr++ = (char)connp->conn_ulp; 2519 ipif = ipif_lookup_addr_v6(v6src, NULL, zoneid, 2520 CONNP_TO_WQ(connp), mp, ip_wput_nondata, &error); 2521 if (ipif == NULL) { 2522 if (error == EINPROGRESS) { 2523 if (src_ire != NULL) 2524 ire_refrele(src_ire); 2525 return (error); 2526 } 2527 /* 2528 * Not a valid address for bind 2529 */ 2530 error = EADDRNOTAVAIL; 2531 } else { 2532 ipif_refrele(ipif); 2533 } 2534 /* 2535 * Just to keep it consistent with the processing in 2536 * ip_bind_v6(). 2537 */ 2538 mp->b_wptr--; 2539 } 2540 2541 if (error != 0) { 2542 /* Red Alert! Attempting to be a bogon! */ 2543 if (ip_debug > 2) { 2544 /* ip1dbg */ 2545 pr_addr_dbg("ip_bind_laddr_v6: bad src" 2546 " address %s\n", AF_INET6, v6src); 2547 } 2548 goto bad_addr; 2549 } 2550 } 2551 2552 /* 2553 * Allow setting new policies. For example, disconnects come 2554 * down as ipa_t bind. As we would have set conn_policy_cached 2555 * to B_TRUE before, we should set it to B_FALSE, so that policy 2556 * can change after the disconnect. 2557 */ 2558 connp->conn_policy_cached = B_FALSE; 2559 2560 /* If not fanout_insert this was just an address verification */ 2561 if (fanout_insert) { 2562 /* 2563 * The addresses have been verified. Time to insert in 2564 * the correct fanout list. 2565 */ 2566 connp->conn_srcv6 = *v6src; 2567 connp->conn_remv6 = ipv6_all_zeros; 2568 connp->conn_lport = lport; 2569 connp->conn_fport = 0; 2570 2571 /* 2572 * We need to make sure that the conn_recv is set to a non-null 2573 * value before we insert the conn_t into the classifier table. 2574 * This is to avoid a race with an incoming packet which does 2575 * an ipcl_classify(). 2576 */ 2577 if (*mp->b_wptr == IPPROTO_TCP) 2578 connp->conn_recv = tcp_conn_request; 2579 error = ipcl_bind_insert_v6(connp, *mp->b_wptr, v6src, lport); 2580 } 2581 if (error == 0) { 2582 if (ire_requested) { 2583 if (!ip_bind_insert_ire_v6(mp, src_ire, v6src, NULL)) { 2584 error = -1; 2585 goto bad_addr; 2586 } 2587 } else if (ipsec_policy_set) { 2588 if (!ip_bind_ipsec_policy_set(connp, policy_mp)) { 2589 error = -1; 2590 goto bad_addr; 2591 } 2592 } 2593 } else if (connp->conn_ulp == IPPROTO_TCP) { 2594 connp->conn_recv = tcp_input; 2595 } 2596 bad_addr: 2597 if (error != 0) { 2598 if (connp->conn_anon_port) { 2599 (void) tsol_mlp_anon(crgetzone(connp->conn_cred), 2600 connp->conn_mlp_type, connp->conn_ulp, ntohs(lport), 2601 B_FALSE); 2602 } 2603 connp->conn_mlp_type = mlptSingle; 2604 } 2605 2606 if (src_ire != NULL) 2607 ire_refrele(src_ire); 2608 2609 if (ipsec_policy_set) { 2610 ASSERT(policy_mp != NULL); 2611 freeb(policy_mp); 2612 /* 2613 * As of now assume that nothing else accompanies 2614 * IPSEC_POLICY_SET. 2615 */ 2616 mp->b_cont = NULL; 2617 } 2618 return (error); 2619 } 2620 2621 /* ARGSUSED */ 2622 static void 2623 ip_bind_connected_resume_v6(ipsq_t *ipsq, queue_t *q, mblk_t *mp, 2624 void *dummy_arg) 2625 { 2626 conn_t *connp = NULL; 2627 t_scalar_t prim; 2628 2629 ASSERT(DB_TYPE(mp) == M_PROTO || DB_TYPE(mp) == M_PCPROTO); 2630 2631 if (CONN_Q(q)) 2632 connp = Q_TO_CONN(q); 2633 ASSERT(connp != NULL); 2634 2635 prim = ((union T_primitives *)mp->b_rptr)->type; 2636 ASSERT(prim == O_T_BIND_REQ || prim == T_BIND_REQ); 2637 2638 if (IPCL_IS_TCP(connp)) { 2639 /* Pass sticky_ipp for scope_id and pktinfo */ 2640 mp = ip_bind_v6(q, mp, connp, &connp->conn_tcp->tcp_sticky_ipp); 2641 } else { 2642 /* For UDP and ICMP */ 2643 mp = ip_bind_v6(q, mp, connp, NULL); 2644 } 2645 if (mp != NULL) { 2646 if (IPCL_IS_TCP(connp)) { 2647 CONN_INC_REF(connp); 2648 squeue_fill(connp->conn_sqp, mp, ip_resume_tcp_bind, 2649 connp, SQTAG_TCP_RPUTOTHER); 2650 } else if (IPCL_IS_UDP(connp)) { 2651 udp_resume_bind(connp, mp); 2652 } else { 2653 qreply(q, mp); 2654 CONN_OPER_PENDING_DONE(connp); 2655 } 2656 } 2657 } 2658 2659 /* 2660 * Verify that both the source and destination addresses 2661 * are valid. If verify_dst, then destination address must also be reachable, 2662 * i.e. have a route. Protocols like TCP want this. Tunnels do not. 2663 * It takes ip6_pkt_t * as one of the arguments to determine correct 2664 * source address when IPV6_PKTINFO or scope_id is set along with a link-local 2665 * destination address. Note that parameter ipp is only useful for TCP connect 2666 * when scope_id is set or IPV6_PKTINFO option is set with an ifindex. For all 2667 * non-TCP cases, it is NULL and for all other tcp cases it is not useful. 2668 * 2669 */ 2670 static int 2671 ip_bind_connected_v6(conn_t *connp, mblk_t *mp, in6_addr_t *v6src, 2672 uint16_t lport, const in6_addr_t *v6dst, ip6_pkt_t *ipp, uint16_t fport, 2673 boolean_t ire_requested, boolean_t ipsec_policy_set, 2674 boolean_t fanout_insert, boolean_t verify_dst) 2675 { 2676 ire_t *src_ire; 2677 ire_t *dst_ire; 2678 int error = 0; 2679 int protocol; 2680 mblk_t *policy_mp; 2681 ire_t *sire = NULL; 2682 ire_t *md_dst_ire = NULL; 2683 ill_t *md_ill = NULL; 2684 ill_t *dst_ill = NULL; 2685 ipif_t *src_ipif = NULL; 2686 zoneid_t zoneid; 2687 boolean_t ill_held = B_FALSE; 2688 2689 src_ire = dst_ire = NULL; 2690 /* 2691 * NOTE: The protocol is beyond the wptr because that's how 2692 * the undocumented transport<-->IP T_BIND_REQ behavior works. 2693 */ 2694 protocol = *mp->b_wptr & 0xFF; 2695 2696 /* 2697 * If we never got a disconnect before, clear it now. 2698 */ 2699 connp->conn_fully_bound = B_FALSE; 2700 2701 if (ipsec_policy_set) { 2702 policy_mp = mp->b_cont; 2703 } 2704 2705 zoneid = connp->conn_zoneid; 2706 2707 if (IN6_IS_ADDR_MULTICAST(v6dst)) { 2708 ipif_t *ipif; 2709 2710 /* 2711 * Use an "emulated" IRE_BROADCAST to tell the transport it 2712 * is a multicast. 2713 * Pass other information that matches 2714 * the ipif (e.g. the source address). 2715 * 2716 * conn_multicast_ill is only used for IPv6 packets 2717 */ 2718 mutex_enter(&connp->conn_lock); 2719 if (connp->conn_multicast_ill != NULL) { 2720 (void) ipif_lookup_zoneid(connp->conn_multicast_ill, 2721 zoneid, 0, &ipif); 2722 } else { 2723 /* Look for default like ip_wput_v6 */ 2724 ipif = ipif_lookup_group_v6(v6dst, zoneid); 2725 } 2726 mutex_exit(&connp->conn_lock); 2727 if (ipif == NULL || !ire_requested || 2728 (dst_ire = ipif_to_ire_v6(ipif)) == NULL) { 2729 if (ipif != NULL) 2730 ipif_refrele(ipif); 2731 if (ip_debug > 2) { 2732 /* ip1dbg */ 2733 pr_addr_dbg("ip_bind_connected_v6: bad " 2734 "connected multicast %s\n", AF_INET6, 2735 v6dst); 2736 } 2737 error = ENETUNREACH; 2738 goto bad_addr; 2739 } 2740 if (ipif != NULL) 2741 ipif_refrele(ipif); 2742 } else { 2743 dst_ire = ire_route_lookup_v6(v6dst, NULL, NULL, 0, 2744 NULL, &sire, zoneid, MBLK_GETLABEL(mp), 2745 MATCH_IRE_RECURSIVE | MATCH_IRE_DEFAULT | 2746 MATCH_IRE_PARENT | MATCH_IRE_RJ_BHOLE | MATCH_IRE_SECATTR); 2747 /* 2748 * We also prevent ire's with src address INADDR_ANY to 2749 * be used, which are created temporarily for 2750 * sending out packets from endpoints that have 2751 * conn_unspec_src set. 2752 */ 2753 if (dst_ire == NULL || 2754 (dst_ire->ire_flags & (RTF_REJECT|RTF_BLACKHOLE)) || 2755 IN6_IS_ADDR_UNSPECIFIED(&dst_ire->ire_src_addr_v6)) { 2756 /* 2757 * When verifying destination reachability, we always 2758 * complain. 2759 * 2760 * When not verifying destination reachability but we 2761 * found an IRE, i.e. the destination is reachable, 2762 * then the other tests still apply and we complain. 2763 */ 2764 if (verify_dst || (dst_ire != NULL)) { 2765 if (ip_debug > 2) { 2766 /* ip1dbg */ 2767 pr_addr_dbg("ip_bind_connected_v6: bad" 2768 " connected dst %s\n", AF_INET6, 2769 v6dst); 2770 } 2771 if (dst_ire == NULL || 2772 !(dst_ire->ire_type & IRE_HOST)) { 2773 error = ENETUNREACH; 2774 } else { 2775 error = EHOSTUNREACH; 2776 } 2777 goto bad_addr; 2778 } 2779 } 2780 } 2781 2782 /* 2783 * We now know that routing will allow us to reach the destination. 2784 * Check whether Trusted Solaris policy allows communication with this 2785 * host, and pretend that the destination is unreachable if not. 2786 * 2787 * This is never a problem for TCP, since that transport is known to 2788 * compute the label properly as part of the tcp_rput_other T_BIND_ACK 2789 * handling. If the remote is unreachable, it will be detected at that 2790 * point, so there's no reason to check it here. 2791 * 2792 * Note that for sendto (and other datagram-oriented friends), this 2793 * check is done as part of the data path label computation instead. 2794 * The check here is just to make non-TCP connect() report the right 2795 * error. 2796 */ 2797 if (dst_ire != NULL && is_system_labeled() && 2798 !IPCL_IS_TCP(connp) && 2799 tsol_compute_label_v6(DB_CREDDEF(mp, connp->conn_cred), v6dst, NULL, 2800 connp->conn_mac_exempt) != 0) { 2801 error = EHOSTUNREACH; 2802 if (ip_debug > 2) { 2803 pr_addr_dbg("ip_bind_connected: no label for dst %s\n", 2804 AF_INET6, v6dst); 2805 } 2806 goto bad_addr; 2807 } 2808 2809 /* 2810 * If the app does a connect(), it means that it will most likely 2811 * send more than 1 packet to the destination. It makes sense 2812 * to clear the temporary flag. 2813 */ 2814 if (dst_ire != NULL && dst_ire->ire_type == IRE_CACHE && 2815 (dst_ire->ire_marks & IRE_MARK_TEMPORARY)) { 2816 irb_t *irb = dst_ire->ire_bucket; 2817 2818 rw_enter(&irb->irb_lock, RW_WRITER); 2819 dst_ire->ire_marks &= ~IRE_MARK_TEMPORARY; 2820 irb->irb_tmp_ire_cnt--; 2821 rw_exit(&irb->irb_lock); 2822 } 2823 2824 ASSERT(dst_ire == NULL || dst_ire->ire_ipversion == IPV6_VERSION); 2825 2826 /* 2827 * See if we should notify ULP about MDT; we do this whether or not 2828 * ire_requested is TRUE, in order to handle active connects; MDT 2829 * eligibility tests for passive connects are handled separately 2830 * through tcp_adapt_ire(). We do this before the source address 2831 * selection, because dst_ire may change after a call to 2832 * ipif_select_source_v6(). This is a best-effort check, as the 2833 * packet for this connection may not actually go through 2834 * dst_ire->ire_stq, and the exact IRE can only be known after 2835 * calling ip_newroute_v6(). This is why we further check on the 2836 * IRE during Multidata packet transmission in tcp_multisend(). 2837 */ 2838 if (ip_multidata_outbound && !ipsec_policy_set && dst_ire != NULL && 2839 !(dst_ire->ire_type & (IRE_LOCAL | IRE_LOOPBACK | IRE_BROADCAST)) && 2840 (md_ill = ire_to_ill(dst_ire), md_ill != NULL) && 2841 ILL_MDT_CAPABLE(md_ill)) { 2842 md_dst_ire = dst_ire; 2843 IRE_REFHOLD(md_dst_ire); 2844 } 2845 2846 if (dst_ire != NULL && 2847 dst_ire->ire_type == IRE_LOCAL && 2848 dst_ire->ire_zoneid != zoneid && 2849 dst_ire->ire_zoneid != ALL_ZONES) { 2850 src_ire = ire_ftable_lookup_v6(v6dst, 0, 0, 0, NULL, NULL, 2851 zoneid, 0, NULL, 2852 MATCH_IRE_RECURSIVE | MATCH_IRE_DEFAULT | 2853 MATCH_IRE_RJ_BHOLE); 2854 if (src_ire == NULL) { 2855 error = EHOSTUNREACH; 2856 goto bad_addr; 2857 } else if (src_ire->ire_flags & (RTF_REJECT|RTF_BLACKHOLE)) { 2858 if (!(src_ire->ire_type & IRE_HOST)) 2859 error = ENETUNREACH; 2860 else 2861 error = EHOSTUNREACH; 2862 goto bad_addr; 2863 } 2864 if (IN6_IS_ADDR_UNSPECIFIED(v6src)) { 2865 src_ipif = src_ire->ire_ipif; 2866 ipif_refhold(src_ipif); 2867 *v6src = src_ipif->ipif_v6lcl_addr; 2868 } 2869 ire_refrele(src_ire); 2870 src_ire = NULL; 2871 } else if (IN6_IS_ADDR_UNSPECIFIED(v6src) && dst_ire != NULL) { 2872 if ((sire != NULL) && (sire->ire_flags & RTF_SETSRC)) { 2873 *v6src = sire->ire_src_addr_v6; 2874 ire_refrele(dst_ire); 2875 dst_ire = sire; 2876 sire = NULL; 2877 } else if (dst_ire->ire_type == IRE_CACHE && 2878 (dst_ire->ire_flags & RTF_SETSRC)) { 2879 ASSERT(dst_ire->ire_zoneid == zoneid || 2880 dst_ire->ire_zoneid == ALL_ZONES); 2881 *v6src = dst_ire->ire_src_addr_v6; 2882 } else { 2883 /* 2884 * Pick a source address so that a proper inbound load 2885 * spreading would happen. Use dst_ill specified by the 2886 * app. when socket option or scopeid is set. 2887 */ 2888 int err; 2889 2890 if (ipp != NULL && ipp->ipp_ifindex != 0) { 2891 uint_t if_index; 2892 2893 /* 2894 * Scope id or IPV6_PKTINFO 2895 */ 2896 2897 if_index = ipp->ipp_ifindex; 2898 dst_ill = ill_lookup_on_ifindex( 2899 if_index, B_TRUE, NULL, NULL, NULL, NULL); 2900 if (dst_ill == NULL) { 2901 ip1dbg(("ip_bind_connected_v6:" 2902 " bad ifindex %d\n", if_index)); 2903 error = EADDRNOTAVAIL; 2904 goto bad_addr; 2905 } 2906 ill_held = B_TRUE; 2907 } else if (connp->conn_outgoing_ill != NULL) { 2908 /* 2909 * For IPV6_BOUND_IF socket option, 2910 * conn_outgoing_ill should be set 2911 * already in TCP or UDP/ICMP. 2912 */ 2913 dst_ill = conn_get_held_ill(connp, 2914 &connp->conn_outgoing_ill, &err); 2915 if (err == ILL_LOOKUP_FAILED) { 2916 ip1dbg(("ip_bind_connected_v6:" 2917 "no ill for bound_if\n")); 2918 error = EADDRNOTAVAIL; 2919 goto bad_addr; 2920 } 2921 ill_held = B_TRUE; 2922 } else if (dst_ire->ire_stq != NULL) { 2923 /* No need to hold ill here */ 2924 dst_ill = (ill_t *)dst_ire->ire_stq->q_ptr; 2925 } else { 2926 /* No need to hold ill here */ 2927 dst_ill = dst_ire->ire_ipif->ipif_ill; 2928 } 2929 if (!ip6_asp_can_lookup()) { 2930 *mp->b_wptr++ = (char)protocol; 2931 ip6_asp_pending_op(CONNP_TO_WQ(connp), mp, 2932 ip_bind_connected_resume_v6); 2933 error = EINPROGRESS; 2934 goto refrele_and_quit; 2935 } 2936 src_ipif = ipif_select_source_v6(dst_ill, v6dst, 2937 RESTRICT_TO_NONE, connp->conn_src_preferences, 2938 zoneid); 2939 ip6_asp_table_refrele(); 2940 if (src_ipif == NULL) { 2941 pr_addr_dbg("ip_bind_connected_v6: " 2942 "no usable source address for " 2943 "connection to %s\n", AF_INET6, v6dst); 2944 error = EADDRNOTAVAIL; 2945 goto bad_addr; 2946 } 2947 *v6src = src_ipif->ipif_v6lcl_addr; 2948 } 2949 } 2950 2951 /* 2952 * We do ire_route_lookup_v6() here (and not an interface lookup) 2953 * as we assert that v6src should only come from an 2954 * UP interface for hard binding. 2955 */ 2956 src_ire = ire_route_lookup_v6(v6src, 0, 0, 0, NULL, 2957 NULL, zoneid, NULL, MATCH_IRE_ZONEONLY); 2958 2959 /* src_ire must be a local|loopback */ 2960 if (!IRE_IS_LOCAL(src_ire)) { 2961 if (ip_debug > 2) { 2962 /* ip1dbg */ 2963 pr_addr_dbg("ip_bind_connected_v6: bad " 2964 "connected src %s\n", AF_INET6, v6src); 2965 } 2966 error = EADDRNOTAVAIL; 2967 goto bad_addr; 2968 } 2969 2970 /* 2971 * If the source address is a loopback address, the 2972 * destination had best be local or multicast. 2973 * The transports that can't handle multicast will reject 2974 * those addresses. 2975 */ 2976 if (src_ire->ire_type == IRE_LOOPBACK && 2977 !(IRE_IS_LOCAL(dst_ire) || IN6_IS_ADDR_MULTICAST(v6dst) || 2978 IN6_IS_ADDR_V4MAPPED_CLASSD(v6dst))) { 2979 ip1dbg(("ip_bind_connected_v6: bad connected loopback\n")); 2980 error = -1; 2981 goto bad_addr; 2982 } 2983 /* 2984 * Allow setting new policies. For example, disconnects come 2985 * down as ipa_t bind. As we would have set conn_policy_cached 2986 * to B_TRUE before, we should set it to B_FALSE, so that policy 2987 * can change after the disconnect. 2988 */ 2989 connp->conn_policy_cached = B_FALSE; 2990 2991 /* 2992 * The addresses have been verified. Initialize the conn 2993 * before calling the policy as they expect the conns 2994 * initialized. 2995 */ 2996 connp->conn_srcv6 = *v6src; 2997 connp->conn_remv6 = *v6dst; 2998 connp->conn_lport = lport; 2999 connp->conn_fport = fport; 3000 3001 ASSERT(!(ipsec_policy_set && ire_requested)); 3002 if (ire_requested) { 3003 iulp_t *ulp_info = NULL; 3004 3005 /* 3006 * Note that sire will not be NULL if this is an off-link 3007 * connection and there is not cache for that dest yet. 3008 * 3009 * XXX Because of an existing bug, if there are multiple 3010 * default routes, the IRE returned now may not be the actual 3011 * default route used (default routes are chosen in a 3012 * round robin fashion). So if the metrics for different 3013 * default routes are different, we may return the wrong 3014 * metrics. This will not be a problem if the existing 3015 * bug is fixed. 3016 */ 3017 if (sire != NULL) 3018 ulp_info = &(sire->ire_uinfo); 3019 3020 if (!ip_bind_insert_ire_v6(mp, dst_ire, v6dst, ulp_info)) { 3021 error = -1; 3022 goto bad_addr; 3023 } 3024 } else if (ipsec_policy_set) { 3025 if (!ip_bind_ipsec_policy_set(connp, policy_mp)) { 3026 error = -1; 3027 goto bad_addr; 3028 } 3029 } 3030 3031 /* 3032 * Cache IPsec policy in this conn. If we have per-socket policy, 3033 * we'll cache that. If we don't, we'll inherit global policy. 3034 * 3035 * We can't insert until the conn reflects the policy. Note that 3036 * conn_policy_cached is set by ipsec_conn_cache_policy() even for 3037 * connections where we don't have a policy. This is to prevent 3038 * global policy lookups in the inbound path. 3039 * 3040 * If we insert before we set conn_policy_cached, 3041 * CONN_INBOUND_POLICY_PRESENT_V6() check can still evaluate true 3042 * because global policy cound be non-empty. We normally call 3043 * ipsec_check_policy() for conn_policy_cached connections only if 3044 * conn_in_enforce_policy is set. But in this case, 3045 * conn_policy_cached can get set anytime since we made the 3046 * CONN_INBOUND_POLICY_PRESENT_V6() check and ipsec_check_policy() 3047 * is called, which will make the above assumption false. Thus, we 3048 * need to insert after we set conn_policy_cached. 3049 */ 3050 if ((error = ipsec_conn_cache_policy(connp, B_FALSE)) != 0) 3051 goto bad_addr; 3052 3053 /* If not fanout_insert this was just an address verification */ 3054 if (fanout_insert) { 3055 /* 3056 * The addresses have been verified. Time to insert in 3057 * the correct fanout list. 3058 * We need to make sure that the conn_recv is set to a non-null 3059 * value before we insert the conn_t into the classifier table. 3060 * This is to avoid a race with an incoming packet which does 3061 * an ipcl_classify(). 3062 */ 3063 if (protocol == IPPROTO_TCP) 3064 connp->conn_recv = tcp_input; 3065 error = ipcl_conn_insert_v6(connp, protocol, v6src, v6dst, 3066 connp->conn_ports, 3067 IPCL_IS_TCP(connp) ? connp->conn_tcp->tcp_bound_if : 0); 3068 } 3069 if (error == 0) { 3070 connp->conn_fully_bound = B_TRUE; 3071 /* 3072 * Our initial checks for MDT have passed; the IRE is not 3073 * LOCAL/LOOPBACK/BROADCAST, and the link layer seems to 3074 * be supporting MDT. Pass the IRE, IPC and ILL into 3075 * ip_mdinfo_return(), which performs further checks 3076 * against them and upon success, returns the MDT info 3077 * mblk which we will attach to the bind acknowledgment. 3078 */ 3079 if (md_dst_ire != NULL) { 3080 mblk_t *mdinfo_mp; 3081 3082 ASSERT(md_ill != NULL); 3083 ASSERT(md_ill->ill_mdt_capab != NULL); 3084 if ((mdinfo_mp = ip_mdinfo_return(md_dst_ire, connp, 3085 md_ill->ill_name, md_ill->ill_mdt_capab)) != NULL) 3086 linkb(mp, mdinfo_mp); 3087 } 3088 } 3089 bad_addr: 3090 if (ipsec_policy_set) { 3091 ASSERT(policy_mp != NULL); 3092 freeb(policy_mp); 3093 /* 3094 * As of now assume that nothing else accompanies 3095 * IPSEC_POLICY_SET. 3096 */ 3097 mp->b_cont = NULL; 3098 } 3099 refrele_and_quit: 3100 if (src_ire != NULL) 3101 IRE_REFRELE(src_ire); 3102 if (dst_ire != NULL) 3103 IRE_REFRELE(dst_ire); 3104 if (sire != NULL) 3105 IRE_REFRELE(sire); 3106 if (src_ipif != NULL) 3107 ipif_refrele(src_ipif); 3108 if (md_dst_ire != NULL) 3109 IRE_REFRELE(md_dst_ire); 3110 if (ill_held && dst_ill != NULL) 3111 ill_refrele(dst_ill); 3112 return (error); 3113 } 3114 3115 /* 3116 * Insert the ire in b_cont. Returns false if it fails (due to lack of space). 3117 * Makes the IRE be IRE_BROADCAST if dst is a multicast address. 3118 */ 3119 static boolean_t 3120 ip_bind_insert_ire_v6(mblk_t *mp, ire_t *ire, const in6_addr_t *dst, 3121 iulp_t *ulp_info) 3122 { 3123 mblk_t *mp1; 3124 ire_t *ret_ire; 3125 3126 mp1 = mp->b_cont; 3127 ASSERT(mp1 != NULL); 3128 3129 if (ire != NULL) { 3130 /* 3131 * mp1 initialized above to IRE_DB_REQ_TYPE 3132 * appended mblk. Its <upper protocol>'s 3133 * job to make sure there is room. 3134 */ 3135 if ((mp1->b_datap->db_lim - mp1->b_rptr) < sizeof (ire_t)) 3136 return (B_FALSE); 3137 3138 mp1->b_datap->db_type = IRE_DB_TYPE; 3139 mp1->b_wptr = mp1->b_rptr + sizeof (ire_t); 3140 bcopy(ire, mp1->b_rptr, sizeof (ire_t)); 3141 ret_ire = (ire_t *)mp1->b_rptr; 3142 if (IN6_IS_ADDR_MULTICAST(dst) || 3143 IN6_IS_ADDR_V4MAPPED_CLASSD(dst)) { 3144 ret_ire->ire_type = IRE_BROADCAST; 3145 ret_ire->ire_addr_v6 = *dst; 3146 } 3147 if (ulp_info != NULL) { 3148 bcopy(ulp_info, &(ret_ire->ire_uinfo), 3149 sizeof (iulp_t)); 3150 } 3151 ret_ire->ire_mp = mp1; 3152 } else { 3153 /* 3154 * No IRE was found. Remove IRE mblk. 3155 */ 3156 mp->b_cont = mp1->b_cont; 3157 freeb(mp1); 3158 } 3159 return (B_TRUE); 3160 } 3161 3162 /* 3163 * Add an ip6i_t header to the front of the mblk. 3164 * Inline if possible else allocate a separate mblk containing only the ip6i_t. 3165 * Returns NULL if allocation fails (and frees original message). 3166 * Used in outgoing path when going through ip_newroute_*v6(). 3167 * Used in incoming path to pass ifindex to transports. 3168 */ 3169 mblk_t * 3170 ip_add_info_v6(mblk_t *mp, ill_t *ill, const in6_addr_t *dst) 3171 { 3172 mblk_t *mp1; 3173 ip6i_t *ip6i; 3174 ip6_t *ip6h; 3175 3176 ip6h = (ip6_t *)mp->b_rptr; 3177 ip6i = (ip6i_t *)(mp->b_rptr - sizeof (ip6i_t)); 3178 if ((uchar_t *)ip6i < mp->b_datap->db_base || 3179 mp->b_datap->db_ref > 1) { 3180 mp1 = allocb(sizeof (ip6i_t), BPRI_MED); 3181 if (mp1 == NULL) { 3182 freemsg(mp); 3183 return (NULL); 3184 } 3185 mp1->b_wptr = mp1->b_rptr = mp1->b_datap->db_lim; 3186 mp1->b_cont = mp; 3187 mp = mp1; 3188 ip6i = (ip6i_t *)(mp->b_rptr - sizeof (ip6i_t)); 3189 } 3190 mp->b_rptr = (uchar_t *)ip6i; 3191 ip6i->ip6i_vcf = ip6h->ip6_vcf; 3192 ip6i->ip6i_nxt = IPPROTO_RAW; 3193 if (ill != NULL) { 3194 ip6i->ip6i_flags = IP6I_IFINDEX; 3195 ip6i->ip6i_ifindex = ill->ill_phyint->phyint_ifindex; 3196 } else { 3197 ip6i->ip6i_flags = 0; 3198 } 3199 ip6i->ip6i_nexthop = *dst; 3200 return (mp); 3201 } 3202 3203 /* 3204 * Handle protocols with which IP is less intimate. There 3205 * can be more than one stream bound to a particular 3206 * protocol. When this is the case, normally each one gets a copy 3207 * of any incoming packets. 3208 * However, if the packet was tunneled and not multicast we only send to it 3209 * the first match. 3210 * 3211 * Zones notes: 3212 * Packets will be distributed to streams in all zones. This is really only 3213 * useful for ICMPv6 as only applications in the global zone can create raw 3214 * sockets for other protocols. 3215 */ 3216 static void 3217 ip_fanout_proto_v6(queue_t *q, mblk_t *mp, ip6_t *ip6h, ill_t *ill, 3218 ill_t *inill, uint8_t nexthdr, uint_t nexthdr_offset, uint_t flags, 3219 boolean_t mctl_present, zoneid_t zoneid) 3220 { 3221 queue_t *rq; 3222 mblk_t *mp1, *first_mp1; 3223 in6_addr_t dst = ip6h->ip6_dst; 3224 in6_addr_t src = ip6h->ip6_src; 3225 boolean_t one_only; 3226 mblk_t *first_mp = mp; 3227 boolean_t secure, shared_addr; 3228 conn_t *connp, *first_connp, *next_connp; 3229 connf_t *connfp; 3230 3231 if (mctl_present) { 3232 mp = first_mp->b_cont; 3233 secure = ipsec_in_is_secure(first_mp); 3234 ASSERT(mp != NULL); 3235 } else { 3236 secure = B_FALSE; 3237 } 3238 3239 /* 3240 * If the packet was tunneled and not multicast we only send to it 3241 * the first match. 3242 */ 3243 one_only = ((nexthdr == IPPROTO_ENCAP || nexthdr == IPPROTO_IPV6) && 3244 !IN6_IS_ADDR_MULTICAST(&dst)); 3245 3246 shared_addr = (zoneid == ALL_ZONES); 3247 if (shared_addr) { 3248 /* 3249 * We don't allow multilevel ports for raw IP, so no need to 3250 * check for that here. 3251 */ 3252 zoneid = tsol_packet_to_zoneid(mp); 3253 } 3254 3255 connfp = &ipcl_proto_fanout_v6[nexthdr]; 3256 mutex_enter(&connfp->connf_lock); 3257 connp = connfp->connf_head; 3258 for (connp = connfp->connf_head; connp != NULL; 3259 connp = connp->conn_next) { 3260 if (IPCL_PROTO_MATCH_V6(connp, nexthdr, ip6h, ill, flags, 3261 zoneid) && 3262 (!is_system_labeled() || 3263 tsol_receive_local(mp, &dst, IPV6_VERSION, shared_addr, 3264 connp))) 3265 break; 3266 } 3267 3268 if (connp == NULL || connp->conn_upq == NULL) { 3269 /* 3270 * No one bound to this port. Is 3271 * there a client that wants all 3272 * unclaimed datagrams? 3273 */ 3274 mutex_exit(&connfp->connf_lock); 3275 if (ip_fanout_send_icmp_v6(q, first_mp, flags, 3276 ICMP6_PARAM_PROB, ICMP6_PARAMPROB_NEXTHEADER, 3277 nexthdr_offset, mctl_present, zoneid)) { 3278 BUMP_MIB(ill->ill_ip6_mib, ipv6InUnknownProtos); 3279 } 3280 3281 return; 3282 } 3283 3284 CONN_INC_REF(connp); 3285 first_connp = connp; 3286 3287 /* 3288 * XXX: Fix the multiple protocol listeners case. We should not 3289 * be walking the conn->next list here. 3290 */ 3291 if (one_only) { 3292 /* 3293 * Only send message to one tunnel driver by immediately 3294 * terminating the loop. 3295 */ 3296 connp = NULL; 3297 } else { 3298 connp = connp->conn_next; 3299 3300 } 3301 for (;;) { 3302 while (connp != NULL) { 3303 if (IPCL_PROTO_MATCH_V6(connp, nexthdr, ip6h, ill, 3304 flags, zoneid) && 3305 (!is_system_labeled() || 3306 tsol_receive_local(mp, &dst, IPV6_VERSION, 3307 shared_addr, connp))) 3308 break; 3309 connp = connp->conn_next; 3310 } 3311 3312 /* 3313 * Just copy the data part alone. The mctl part is 3314 * needed just for verifying policy and it is never 3315 * sent up. 3316 */ 3317 if (connp == NULL || connp->conn_upq == NULL || 3318 (((first_mp1 = dupmsg(first_mp)) == NULL) && 3319 ((first_mp1 = ip_copymsg(first_mp)) == NULL))) { 3320 /* 3321 * No more intested clients or memory 3322 * allocation failed 3323 */ 3324 connp = first_connp; 3325 break; 3326 } 3327 mp1 = mctl_present ? first_mp1->b_cont : first_mp1; 3328 CONN_INC_REF(connp); 3329 mutex_exit(&connfp->connf_lock); 3330 rq = connp->conn_rq; 3331 /* 3332 * For link-local always add ifindex so that transport can set 3333 * sin6_scope_id. Avoid it for ICMP error fanout. 3334 */ 3335 if ((connp->conn_ipv6_recvpktinfo || 3336 IN6_IS_ADDR_LINKLOCAL(&src)) && 3337 (flags & IP_FF_IP6INFO)) { 3338 /* Add header */ 3339 mp1 = ip_add_info_v6(mp1, inill, &dst); 3340 } 3341 if (mp1 == NULL) { 3342 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 3343 } else if (!canputnext(rq)) { 3344 if (flags & IP_FF_RAWIP) { 3345 BUMP_MIB(ill->ill_ip6_mib, rawipInOverflows); 3346 } else { 3347 BUMP_MIB(ill->ill_icmp6_mib, 3348 ipv6IfIcmpInOverflows); 3349 } 3350 3351 freemsg(mp1); 3352 } else { 3353 /* 3354 * Don't enforce here if we're a tunnel - let "tun" do 3355 * it instead. 3356 */ 3357 if (!IPCL_IS_IPTUN(connp) && 3358 (CONN_INBOUND_POLICY_PRESENT_V6(connp) || secure)) { 3359 first_mp1 = ipsec_check_inbound_policy 3360 (first_mp1, connp, NULL, ip6h, 3361 mctl_present); 3362 } 3363 if (first_mp1 != NULL) { 3364 if (mctl_present) 3365 freeb(first_mp1); 3366 BUMP_MIB(ill->ill_ip6_mib, ipv6InDelivers); 3367 putnext(rq, mp1); 3368 } 3369 } 3370 mutex_enter(&connfp->connf_lock); 3371 /* Follow the next pointer before releasing the conn. */ 3372 next_connp = connp->conn_next; 3373 CONN_DEC_REF(connp); 3374 connp = next_connp; 3375 } 3376 3377 /* Last one. Send it upstream. */ 3378 mutex_exit(&connfp->connf_lock); 3379 3380 /* Initiate IPPF processing */ 3381 if (IP6_IN_IPP(flags)) { 3382 uint_t ifindex; 3383 3384 mutex_enter(&ill->ill_lock); 3385 ifindex = ill->ill_phyint->phyint_ifindex; 3386 mutex_exit(&ill->ill_lock); 3387 ip_process(IPP_LOCAL_IN, &mp, ifindex); 3388 if (mp == NULL) { 3389 CONN_DEC_REF(connp); 3390 if (mctl_present) 3391 freeb(first_mp); 3392 return; 3393 } 3394 } 3395 3396 /* 3397 * For link-local always add ifindex so that transport can set 3398 * sin6_scope_id. Avoid it for ICMP error fanout. 3399 */ 3400 if ((connp->conn_ipv6_recvpktinfo || IN6_IS_ADDR_LINKLOCAL(&src)) && 3401 (flags & IP_FF_IP6INFO)) { 3402 /* Add header */ 3403 mp = ip_add_info_v6(mp, inill, &dst); 3404 if (mp == NULL) { 3405 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 3406 CONN_DEC_REF(connp); 3407 if (mctl_present) 3408 freeb(first_mp); 3409 return; 3410 } else if (mctl_present) { 3411 first_mp->b_cont = mp; 3412 } else { 3413 first_mp = mp; 3414 } 3415 } 3416 3417 rq = connp->conn_rq; 3418 if (!canputnext(rq)) { 3419 if (flags & IP_FF_RAWIP) { 3420 BUMP_MIB(ill->ill_ip6_mib, rawipInOverflows); 3421 } else { 3422 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInOverflows); 3423 } 3424 3425 freemsg(first_mp); 3426 } else { 3427 if (IPCL_IS_IPTUN(connp)) { 3428 /* 3429 * Tunneled packet. We enforce policy in the tunnel 3430 * module itself. 3431 * 3432 * Send the WHOLE packet up (incl. IPSEC_IN) without 3433 * a policy check. 3434 */ 3435 putnext(rq, first_mp); 3436 CONN_DEC_REF(connp); 3437 return; 3438 } 3439 /* 3440 * Don't enforce here if we're a tunnel - let "tun" do 3441 * it instead. 3442 */ 3443 if (nexthdr != IPPROTO_ENCAP && nexthdr != IPPROTO_IPV6 && 3444 (CONN_INBOUND_POLICY_PRESENT(connp) || secure)) { 3445 first_mp = ipsec_check_inbound_policy(first_mp, connp, 3446 NULL, ip6h, mctl_present); 3447 if (first_mp == NULL) { 3448 CONN_DEC_REF(connp); 3449 return; 3450 } 3451 } 3452 BUMP_MIB(ill->ill_ip6_mib, ipv6InDelivers); 3453 putnext(rq, mp); 3454 if (mctl_present) 3455 freeb(first_mp); 3456 } 3457 CONN_DEC_REF(connp); 3458 } 3459 3460 /* 3461 * Send an ICMP error after patching up the packet appropriately. Returns 3462 * non-zero if the appropriate MIB should be bumped; zero otherwise. 3463 */ 3464 int 3465 ip_fanout_send_icmp_v6(queue_t *q, mblk_t *mp, uint_t flags, 3466 uint_t icmp_type, uint8_t icmp_code, uint_t nexthdr_offset, 3467 boolean_t mctl_present, zoneid_t zoneid) 3468 { 3469 ip6_t *ip6h; 3470 mblk_t *first_mp; 3471 boolean_t secure; 3472 unsigned char db_type; 3473 3474 first_mp = mp; 3475 if (mctl_present) { 3476 mp = mp->b_cont; 3477 secure = ipsec_in_is_secure(first_mp); 3478 ASSERT(mp != NULL); 3479 } else { 3480 /* 3481 * If this is an ICMP error being reported - which goes 3482 * up as M_CTLs, we need to convert them to M_DATA till 3483 * we finish checking with global policy because 3484 * ipsec_check_global_policy() assumes M_DATA as clear 3485 * and M_CTL as secure. 3486 */ 3487 db_type = mp->b_datap->db_type; 3488 mp->b_datap->db_type = M_DATA; 3489 secure = B_FALSE; 3490 } 3491 /* 3492 * We are generating an icmp error for some inbound packet. 3493 * Called from all ip_fanout_(udp, tcp, proto) functions. 3494 * Before we generate an error, check with global policy 3495 * to see whether this is allowed to enter the system. As 3496 * there is no "conn", we are checking with global policy. 3497 */ 3498 ip6h = (ip6_t *)mp->b_rptr; 3499 if (secure || ipsec_inbound_v6_policy_present) { 3500 first_mp = ipsec_check_global_policy(first_mp, NULL, 3501 NULL, ip6h, mctl_present); 3502 if (first_mp == NULL) 3503 return (0); 3504 } 3505 3506 if (!mctl_present) 3507 mp->b_datap->db_type = db_type; 3508 3509 if (flags & IP_FF_SEND_ICMP) { 3510 if (flags & IP_FF_HDR_COMPLETE) { 3511 if (ip_hdr_complete_v6(ip6h, zoneid)) { 3512 freemsg(first_mp); 3513 return (1); 3514 } 3515 } 3516 switch (icmp_type) { 3517 case ICMP6_DST_UNREACH: 3518 icmp_unreachable_v6(WR(q), first_mp, icmp_code, 3519 B_FALSE, B_FALSE, zoneid); 3520 break; 3521 case ICMP6_PARAM_PROB: 3522 icmp_param_problem_v6(WR(q), first_mp, icmp_code, 3523 nexthdr_offset, B_FALSE, B_FALSE, zoneid); 3524 break; 3525 default: 3526 #ifdef DEBUG 3527 panic("ip_fanout_send_icmp_v6: wrong type"); 3528 /*NOTREACHED*/ 3529 #else 3530 freemsg(first_mp); 3531 break; 3532 #endif 3533 } 3534 } else { 3535 freemsg(first_mp); 3536 return (0); 3537 } 3538 3539 return (1); 3540 } 3541 3542 3543 /* 3544 * Fanout for TCP packets 3545 * The caller puts <fport, lport> in the ports parameter. 3546 */ 3547 static void 3548 ip_fanout_tcp_v6(queue_t *q, mblk_t *mp, ip6_t *ip6h, ill_t *ill, ill_t *inill, 3549 uint_t flags, uint_t hdr_len, boolean_t mctl_present, zoneid_t zoneid) 3550 { 3551 mblk_t *first_mp; 3552 boolean_t secure; 3553 conn_t *connp; 3554 tcph_t *tcph; 3555 boolean_t syn_present = B_FALSE; 3556 3557 first_mp = mp; 3558 if (mctl_present) { 3559 mp = first_mp->b_cont; 3560 secure = ipsec_in_is_secure(first_mp); 3561 ASSERT(mp != NULL); 3562 } else { 3563 secure = B_FALSE; 3564 } 3565 3566 connp = ipcl_classify_v6(mp, IPPROTO_TCP, hdr_len, zoneid); 3567 3568 if (connp == NULL || 3569 !conn_wantpacket_v6(connp, ill, ip6h, flags, zoneid)) { 3570 /* 3571 * No hard-bound match. Send Reset. 3572 */ 3573 dblk_t *dp = mp->b_datap; 3574 uint32_t ill_index; 3575 3576 ASSERT((dp->db_struioflag & STRUIO_IP) == 0); 3577 3578 /* Initiate IPPf processing, if needed. */ 3579 if (IPP_ENABLED(IPP_LOCAL_IN) && (flags & IP6_NO_IPPOLICY)) { 3580 ill_index = ill->ill_phyint->phyint_ifindex; 3581 ip_process(IPP_LOCAL_IN, &first_mp, ill_index); 3582 if (first_mp == NULL) { 3583 if (connp != NULL) 3584 CONN_DEC_REF(connp); 3585 return; 3586 } 3587 } 3588 BUMP_MIB(ill->ill_ip6_mib, ipv6InDelivers); 3589 tcp_xmit_listeners_reset(first_mp, hdr_len, zoneid); 3590 if (connp != NULL) 3591 CONN_DEC_REF(connp); 3592 return; 3593 } 3594 3595 tcph = (tcph_t *)&mp->b_rptr[hdr_len]; 3596 if ((tcph->th_flags[0] & (TH_SYN|TH_ACK|TH_RST|TH_URG)) == TH_SYN) { 3597 if (connp->conn_flags & IPCL_TCP) { 3598 squeue_t *sqp; 3599 3600 /* 3601 * For fused tcp loopback, assign the eager's 3602 * squeue to be that of the active connect's. 3603 */ 3604 if ((flags & IP_FF_LOOPBACK) && do_tcp_fusion && 3605 !CONN_INBOUND_POLICY_PRESENT_V6(connp) && !secure && 3606 !IP6_IN_IPP(flags)) { 3607 ASSERT(Q_TO_CONN(q) != NULL); 3608 sqp = Q_TO_CONN(q)->conn_sqp; 3609 } else { 3610 sqp = IP_SQUEUE_GET(lbolt); 3611 } 3612 3613 mp->b_datap->db_struioflag |= STRUIO_EAGER; 3614 DB_CKSUMSTART(mp) = (intptr_t)sqp; 3615 3616 /* 3617 * db_cksumstuff is unused in the incoming 3618 * path; Thus store the ifindex here. It will 3619 * be cleared in tcp_conn_create_v6(). 3620 */ 3621 DB_CKSUMSTUFF(mp) = 3622 (intptr_t)ill->ill_phyint->phyint_ifindex; 3623 syn_present = B_TRUE; 3624 } 3625 } 3626 3627 if (IPCL_IS_TCP(connp) && IPCL_IS_BOUND(connp) && !syn_present) { 3628 uint_t flags = (unsigned int)tcph->th_flags[0] & 0xFF; 3629 if ((flags & TH_RST) || (flags & TH_URG)) { 3630 CONN_DEC_REF(connp); 3631 freemsg(first_mp); 3632 return; 3633 } 3634 if (flags & TH_ACK) { 3635 tcp_xmit_listeners_reset(first_mp, hdr_len, zoneid); 3636 CONN_DEC_REF(connp); 3637 return; 3638 } 3639 3640 CONN_DEC_REF(connp); 3641 freemsg(first_mp); 3642 return; 3643 } 3644 3645 if (CONN_INBOUND_POLICY_PRESENT_V6(connp) || secure) { 3646 first_mp = ipsec_check_inbound_policy(first_mp, connp, 3647 NULL, ip6h, mctl_present); 3648 if (first_mp == NULL) { 3649 CONN_DEC_REF(connp); 3650 return; 3651 } 3652 if (IPCL_IS_TCP(connp) && IPCL_IS_BOUND(connp)) { 3653 ASSERT(syn_present); 3654 if (mctl_present) { 3655 ASSERT(first_mp != mp); 3656 first_mp->b_datap->db_struioflag |= 3657 STRUIO_POLICY; 3658 } else { 3659 ASSERT(first_mp == mp); 3660 mp->b_datap->db_struioflag &= 3661 ~STRUIO_EAGER; 3662 mp->b_datap->db_struioflag |= 3663 STRUIO_POLICY; 3664 } 3665 } else { 3666 /* 3667 * Discard first_mp early since we're dealing with a 3668 * fully-connected conn_t and tcp doesn't do policy in 3669 * this case. Also, if someone is bound to IPPROTO_TCP 3670 * over raw IP, they don't expect to see a M_CTL. 3671 */ 3672 if (mctl_present) { 3673 freeb(first_mp); 3674 mctl_present = B_FALSE; 3675 } 3676 first_mp = mp; 3677 } 3678 } 3679 3680 /* Initiate IPPF processing */ 3681 if (IP6_IN_IPP(flags)) { 3682 uint_t ifindex; 3683 3684 mutex_enter(&ill->ill_lock); 3685 ifindex = ill->ill_phyint->phyint_ifindex; 3686 mutex_exit(&ill->ill_lock); 3687 ip_process(IPP_LOCAL_IN, &mp, ifindex); 3688 if (mp == NULL) { 3689 CONN_DEC_REF(connp); 3690 if (mctl_present) { 3691 freeb(first_mp); 3692 } 3693 return; 3694 } else if (mctl_present) { 3695 /* 3696 * ip_add_info_v6 might return a new mp. 3697 */ 3698 ASSERT(first_mp != mp); 3699 first_mp->b_cont = mp; 3700 } else { 3701 first_mp = mp; 3702 } 3703 } 3704 3705 /* 3706 * For link-local always add ifindex so that TCP can bind to that 3707 * interface. Avoid it for ICMP error fanout. 3708 */ 3709 if (!syn_present && ((connp->conn_ipv6_recvpktinfo || 3710 IN6_IS_ADDR_LINKLOCAL(&ip6h->ip6_src)) && 3711 (flags & IP_FF_IP6INFO))) { 3712 /* Add header */ 3713 mp = ip_add_info_v6(mp, inill, &ip6h->ip6_dst); 3714 if (mp == NULL) { 3715 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 3716 CONN_DEC_REF(connp); 3717 if (mctl_present) 3718 freeb(first_mp); 3719 return; 3720 } else if (mctl_present) { 3721 ASSERT(first_mp != mp); 3722 first_mp->b_cont = mp; 3723 } else { 3724 first_mp = mp; 3725 } 3726 } 3727 3728 BUMP_MIB(ill->ill_ip6_mib, ipv6InDelivers); 3729 if (IPCL_IS_TCP(connp)) { 3730 (*ip_input_proc)(connp->conn_sqp, first_mp, 3731 connp->conn_recv, connp, SQTAG_IP6_TCP_INPUT); 3732 } else { 3733 putnext(connp->conn_rq, first_mp); 3734 CONN_DEC_REF(connp); 3735 } 3736 } 3737 3738 /* 3739 * Fanout for UDP packets. 3740 * The caller puts <fport, lport> in the ports parameter. 3741 * ire_type must be IRE_BROADCAST for multicast and broadcast packets. 3742 * 3743 * If SO_REUSEADDR is set all multicast and broadcast packets 3744 * will be delivered to all streams bound to the same port. 3745 * 3746 * Zones notes: 3747 * Multicast packets will be distributed to streams in all zones. 3748 */ 3749 static void 3750 ip_fanout_udp_v6(queue_t *q, mblk_t *mp, ip6_t *ip6h, uint32_t ports, 3751 ill_t *ill, ill_t *inill, uint_t flags, boolean_t mctl_present, 3752 zoneid_t zoneid) 3753 { 3754 uint32_t dstport, srcport; 3755 in6_addr_t dst; 3756 mblk_t *first_mp; 3757 boolean_t secure; 3758 conn_t *connp; 3759 connf_t *connfp; 3760 conn_t *first_conn; 3761 conn_t *next_conn; 3762 mblk_t *mp1, *first_mp1; 3763 in6_addr_t src; 3764 boolean_t shared_addr; 3765 3766 first_mp = mp; 3767 if (mctl_present) { 3768 mp = first_mp->b_cont; 3769 secure = ipsec_in_is_secure(first_mp); 3770 ASSERT(mp != NULL); 3771 } else { 3772 secure = B_FALSE; 3773 } 3774 3775 /* Extract ports in net byte order */ 3776 dstport = htons(ntohl(ports) & 0xFFFF); 3777 srcport = htons(ntohl(ports) >> 16); 3778 dst = ip6h->ip6_dst; 3779 src = ip6h->ip6_src; 3780 3781 shared_addr = (zoneid == ALL_ZONES); 3782 if (shared_addr) { 3783 zoneid = tsol_mlp_findzone(IPPROTO_UDP, dstport); 3784 /* 3785 * If no shared MLP is found, tsol_mlp_findzone returns 3786 * ALL_ZONES. In that case, we assume it's SLP, and 3787 * search for the zone based on the packet label. 3788 * That will also return ALL_ZONES on failure, but 3789 * we never allow conn_zoneid to be set to ALL_ZONES. 3790 */ 3791 if (zoneid == ALL_ZONES) 3792 zoneid = tsol_packet_to_zoneid(mp); 3793 } 3794 3795 /* Attempt to find a client stream based on destination port. */ 3796 connfp = &ipcl_udp_fanout[IPCL_UDP_HASH(dstport)]; 3797 mutex_enter(&connfp->connf_lock); 3798 connp = connfp->connf_head; 3799 if (!IN6_IS_ADDR_MULTICAST(&dst)) { 3800 /* 3801 * Not multicast. Send to the one (first) client we find. 3802 */ 3803 while (connp != NULL) { 3804 if (IPCL_UDP_MATCH_V6(connp, dstport, dst, srcport, 3805 src) && IPCL_ZONE_MATCH(connp, zoneid) && 3806 conn_wantpacket_v6(connp, ill, ip6h, 3807 flags, zoneid)) { 3808 break; 3809 } 3810 connp = connp->conn_next; 3811 } 3812 if (connp == NULL || connp->conn_upq == NULL) 3813 goto notfound; 3814 3815 if (is_system_labeled() && 3816 !tsol_receive_local(mp, &dst, IPV6_VERSION, shared_addr, 3817 connp)) 3818 goto notfound; 3819 3820 /* Found a client */ 3821 CONN_INC_REF(connp); 3822 mutex_exit(&connfp->connf_lock); 3823 3824 if (CONN_UDP_FLOWCTLD(connp)) { 3825 freemsg(first_mp); 3826 CONN_DEC_REF(connp); 3827 return; 3828 } 3829 if (CONN_INBOUND_POLICY_PRESENT_V6(connp) || secure) { 3830 first_mp = ipsec_check_inbound_policy(first_mp, 3831 connp, NULL, ip6h, mctl_present); 3832 if (first_mp == NULL) { 3833 CONN_DEC_REF(connp); 3834 return; 3835 } 3836 } 3837 /* Initiate IPPF processing */ 3838 if (IP6_IN_IPP(flags)) { 3839 uint_t ifindex; 3840 3841 mutex_enter(&ill->ill_lock); 3842 ifindex = ill->ill_phyint->phyint_ifindex; 3843 mutex_exit(&ill->ill_lock); 3844 ip_process(IPP_LOCAL_IN, &mp, ifindex); 3845 if (mp == NULL) { 3846 CONN_DEC_REF(connp); 3847 if (mctl_present) 3848 freeb(first_mp); 3849 return; 3850 } 3851 } 3852 /* 3853 * For link-local always add ifindex so that 3854 * transport can set sin6_scope_id. Avoid it for 3855 * ICMP error fanout. 3856 */ 3857 if ((connp->conn_ipv6_recvpktinfo || 3858 IN6_IS_ADDR_LINKLOCAL(&src)) && 3859 (flags & IP_FF_IP6INFO)) { 3860 /* Add header */ 3861 mp = ip_add_info_v6(mp, inill, &dst); 3862 if (mp == NULL) { 3863 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 3864 CONN_DEC_REF(connp); 3865 if (mctl_present) 3866 freeb(first_mp); 3867 return; 3868 } else if (mctl_present) { 3869 first_mp->b_cont = mp; 3870 } else { 3871 first_mp = mp; 3872 } 3873 } 3874 BUMP_MIB(ill->ill_ip6_mib, ipv6InDelivers); 3875 3876 /* Send it upstream */ 3877 CONN_UDP_RECV(connp, mp); 3878 3879 IP6_STAT(ip6_udp_fannorm); 3880 CONN_DEC_REF(connp); 3881 if (mctl_present) 3882 freeb(first_mp); 3883 return; 3884 } 3885 3886 while (connp != NULL) { 3887 if ((IPCL_UDP_MATCH_V6(connp, dstport, dst, srcport, src)) && 3888 conn_wantpacket_v6(connp, ill, ip6h, flags, zoneid) && 3889 (!is_system_labeled() || 3890 tsol_receive_local(mp, &dst, IPV6_VERSION, shared_addr, 3891 connp))) 3892 break; 3893 connp = connp->conn_next; 3894 } 3895 3896 if (connp == NULL || connp->conn_upq == NULL) 3897 goto notfound; 3898 3899 first_conn = connp; 3900 3901 CONN_INC_REF(connp); 3902 connp = connp->conn_next; 3903 for (;;) { 3904 while (connp != NULL) { 3905 if (IPCL_UDP_MATCH_V6(connp, dstport, dst, srcport, 3906 src) && conn_wantpacket_v6(connp, ill, ip6h, 3907 flags, zoneid) && 3908 (!is_system_labeled() || 3909 tsol_receive_local(mp, &dst, IPV6_VERSION, 3910 shared_addr, connp))) 3911 break; 3912 connp = connp->conn_next; 3913 } 3914 /* 3915 * Just copy the data part alone. The mctl part is 3916 * needed just for verifying policy and it is never 3917 * sent up. 3918 */ 3919 if (connp == NULL || 3920 (((first_mp1 = dupmsg(first_mp)) == NULL) && 3921 ((first_mp1 = ip_copymsg(first_mp)) 3922 == NULL))) { 3923 /* 3924 * No more interested clients or memory 3925 * allocation failed 3926 */ 3927 connp = first_conn; 3928 break; 3929 } 3930 mp1 = mctl_present ? first_mp1->b_cont : first_mp1; 3931 CONN_INC_REF(connp); 3932 mutex_exit(&connfp->connf_lock); 3933 /* 3934 * For link-local always add ifindex so that transport 3935 * can set sin6_scope_id. Avoid it for ICMP error 3936 * fanout. 3937 */ 3938 if ((connp->conn_ipv6_recvpktinfo || 3939 IN6_IS_ADDR_LINKLOCAL(&src)) && 3940 (flags & IP_FF_IP6INFO)) { 3941 /* Add header */ 3942 mp1 = ip_add_info_v6(mp1, inill, &dst); 3943 } 3944 /* mp1 could have changed */ 3945 if (mctl_present) 3946 first_mp1->b_cont = mp1; 3947 else 3948 first_mp1 = mp1; 3949 if (mp1 == NULL) { 3950 if (mctl_present) 3951 freeb(first_mp1); 3952 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 3953 goto next_one; 3954 } 3955 if (CONN_UDP_FLOWCTLD(connp)) { 3956 BUMP_MIB(ill->ill_ip6_mib, udpInOverflows); 3957 freemsg(first_mp1); 3958 goto next_one; 3959 } 3960 3961 if (CONN_INBOUND_POLICY_PRESENT_V6(connp) || 3962 secure) { 3963 first_mp1 = ipsec_check_inbound_policy 3964 (first_mp1, connp, NULL, ip6h, 3965 mctl_present); 3966 } 3967 if (first_mp1 != NULL) { 3968 if (mctl_present) 3969 freeb(first_mp1); 3970 BUMP_MIB(ill->ill_ip6_mib, ipv6InDelivers); 3971 3972 /* Send it upstream */ 3973 CONN_UDP_RECV(connp, mp1); 3974 } 3975 next_one: 3976 mutex_enter(&connfp->connf_lock); 3977 /* Follow the next pointer before releasing the conn. */ 3978 next_conn = connp->conn_next; 3979 IP6_STAT(ip6_udp_fanmb); 3980 CONN_DEC_REF(connp); 3981 connp = next_conn; 3982 } 3983 3984 /* Last one. Send it upstream. */ 3985 mutex_exit(&connfp->connf_lock); 3986 3987 /* Initiate IPPF processing */ 3988 if (IP6_IN_IPP(flags)) { 3989 uint_t ifindex; 3990 3991 mutex_enter(&ill->ill_lock); 3992 ifindex = ill->ill_phyint->phyint_ifindex; 3993 mutex_exit(&ill->ill_lock); 3994 ip_process(IPP_LOCAL_IN, &mp, ifindex); 3995 if (mp == NULL) { 3996 CONN_DEC_REF(connp); 3997 if (mctl_present) { 3998 freeb(first_mp); 3999 } 4000 return; 4001 } 4002 } 4003 4004 /* 4005 * For link-local always add ifindex so that transport can set 4006 * sin6_scope_id. Avoid it for ICMP error fanout. 4007 */ 4008 if ((connp->conn_ipv6_recvpktinfo || 4009 IN6_IS_ADDR_LINKLOCAL(&src)) && (flags & IP_FF_IP6INFO)) { 4010 /* Add header */ 4011 mp = ip_add_info_v6(mp, inill, &dst); 4012 if (mp == NULL) { 4013 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 4014 CONN_DEC_REF(connp); 4015 if (mctl_present) 4016 freeb(first_mp); 4017 return; 4018 } else if (mctl_present) { 4019 first_mp->b_cont = mp; 4020 } else { 4021 first_mp = mp; 4022 } 4023 } 4024 if (CONN_UDP_FLOWCTLD(connp)) { 4025 BUMP_MIB(ill->ill_ip6_mib, udpInOverflows); 4026 freemsg(mp); 4027 } else { 4028 if (CONN_INBOUND_POLICY_PRESENT_V6(connp) || secure) { 4029 first_mp = ipsec_check_inbound_policy(first_mp, 4030 connp, NULL, ip6h, mctl_present); 4031 if (first_mp == NULL) { 4032 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 4033 CONN_DEC_REF(connp); 4034 return; 4035 } 4036 } 4037 BUMP_MIB(ill->ill_ip6_mib, ipv6InDelivers); 4038 4039 /* Send it upstream */ 4040 CONN_UDP_RECV(connp, mp); 4041 } 4042 IP6_STAT(ip6_udp_fanmb); 4043 CONN_DEC_REF(connp); 4044 if (mctl_present) 4045 freeb(first_mp); 4046 return; 4047 4048 notfound: 4049 mutex_exit(&connfp->connf_lock); 4050 /* 4051 * No one bound to this port. Is 4052 * there a client that wants all 4053 * unclaimed datagrams? 4054 */ 4055 if (ipcl_proto_fanout_v6[IPPROTO_UDP].connf_head != NULL) { 4056 ip_fanout_proto_v6(q, first_mp, ip6h, ill, inill, IPPROTO_UDP, 4057 0, flags | IP_FF_RAWIP | IP_FF_IP6INFO, mctl_present, 4058 zoneid); 4059 } else { 4060 if (ip_fanout_send_icmp_v6(q, first_mp, flags, 4061 ICMP6_DST_UNREACH, ICMP6_DST_UNREACH_NOPORT, 0, 4062 mctl_present, zoneid)) { 4063 BUMP_MIB(&ip_mib, udpNoPorts); 4064 } 4065 } 4066 } 4067 4068 /* 4069 * int ip_find_hdr_v6() 4070 * 4071 * This routine is used by the upper layer protocols and the IP tunnel 4072 * module to: 4073 * - Set extension header pointers to appropriate locations 4074 * - Determine IPv6 header length and return it 4075 * - Return a pointer to the last nexthdr value 4076 * 4077 * The caller must initialize ipp_fields. 4078 * 4079 * NOTE: If multiple extension headers of the same type are present, 4080 * ip_find_hdr_v6() will set the respective extension header pointers 4081 * to the first one that it encounters in the IPv6 header. It also 4082 * skips fragment headers. This routine deals with malformed packets 4083 * of various sorts in which case the returned length is up to the 4084 * malformed part. 4085 */ 4086 int 4087 ip_find_hdr_v6(mblk_t *mp, ip6_t *ip6h, ip6_pkt_t *ipp, uint8_t *nexthdrp) 4088 { 4089 uint_t length, ehdrlen; 4090 uint8_t nexthdr; 4091 uint8_t *whereptr, *endptr; 4092 ip6_dest_t *tmpdstopts; 4093 ip6_rthdr_t *tmprthdr; 4094 ip6_hbh_t *tmphopopts; 4095 ip6_frag_t *tmpfraghdr; 4096 4097 length = IPV6_HDR_LEN; 4098 whereptr = ((uint8_t *)&ip6h[1]); /* point to next hdr */ 4099 endptr = mp->b_wptr; 4100 4101 nexthdr = ip6h->ip6_nxt; 4102 while (whereptr < endptr) { 4103 /* Is there enough left for len + nexthdr? */ 4104 if (whereptr + MIN_EHDR_LEN > endptr) 4105 goto done; 4106 4107 switch (nexthdr) { 4108 case IPPROTO_HOPOPTS: 4109 tmphopopts = (ip6_hbh_t *)whereptr; 4110 ehdrlen = 8 * (tmphopopts->ip6h_len + 1); 4111 if ((uchar_t *)tmphopopts + ehdrlen > endptr) 4112 goto done; 4113 nexthdr = tmphopopts->ip6h_nxt; 4114 /* return only 1st hbh */ 4115 if (!(ipp->ipp_fields & IPPF_HOPOPTS)) { 4116 ipp->ipp_fields |= IPPF_HOPOPTS; 4117 ipp->ipp_hopopts = tmphopopts; 4118 ipp->ipp_hopoptslen = ehdrlen; 4119 } 4120 break; 4121 case IPPROTO_DSTOPTS: 4122 tmpdstopts = (ip6_dest_t *)whereptr; 4123 ehdrlen = 8 * (tmpdstopts->ip6d_len + 1); 4124 if ((uchar_t *)tmpdstopts + ehdrlen > endptr) 4125 goto done; 4126 nexthdr = tmpdstopts->ip6d_nxt; 4127 /* 4128 * ipp_dstopts is set to the destination header after a 4129 * routing header. 4130 * Assume it is a post-rthdr destination header 4131 * and adjust when we find an rthdr. 4132 */ 4133 if (!(ipp->ipp_fields & IPPF_DSTOPTS)) { 4134 ipp->ipp_fields |= IPPF_DSTOPTS; 4135 ipp->ipp_dstopts = tmpdstopts; 4136 ipp->ipp_dstoptslen = ehdrlen; 4137 } 4138 break; 4139 case IPPROTO_ROUTING: 4140 tmprthdr = (ip6_rthdr_t *)whereptr; 4141 ehdrlen = 8 * (tmprthdr->ip6r_len + 1); 4142 if ((uchar_t *)tmprthdr + ehdrlen > endptr) 4143 goto done; 4144 nexthdr = tmprthdr->ip6r_nxt; 4145 /* return only 1st rthdr */ 4146 if (!(ipp->ipp_fields & IPPF_RTHDR)) { 4147 ipp->ipp_fields |= IPPF_RTHDR; 4148 ipp->ipp_rthdr = tmprthdr; 4149 ipp->ipp_rthdrlen = ehdrlen; 4150 } 4151 /* 4152 * Make any destination header we've seen be a 4153 * pre-rthdr destination header. 4154 */ 4155 if (ipp->ipp_fields & IPPF_DSTOPTS) { 4156 ipp->ipp_fields &= ~IPPF_DSTOPTS; 4157 ipp->ipp_fields |= IPPF_RTDSTOPTS; 4158 ipp->ipp_rtdstopts = ipp->ipp_dstopts; 4159 ipp->ipp_dstopts = NULL; 4160 ipp->ipp_rtdstoptslen = ipp->ipp_dstoptslen; 4161 ipp->ipp_dstoptslen = 0; 4162 } 4163 break; 4164 case IPPROTO_FRAGMENT: 4165 tmpfraghdr = (ip6_frag_t *)whereptr; 4166 ehdrlen = sizeof (ip6_frag_t); 4167 if ((uchar_t *)tmpfraghdr + ehdrlen > endptr) 4168 goto done; 4169 nexthdr = tmpfraghdr->ip6f_nxt; 4170 if (!(ipp->ipp_fields & IPPF_FRAGHDR)) { 4171 ipp->ipp_fields |= IPPF_FRAGHDR; 4172 ipp->ipp_fraghdr = tmpfraghdr; 4173 ipp->ipp_fraghdrlen = ehdrlen; 4174 } 4175 break; 4176 case IPPROTO_NONE: 4177 default: 4178 goto done; 4179 } 4180 length += ehdrlen; 4181 whereptr += ehdrlen; 4182 } 4183 done: 4184 if (nexthdrp != NULL) 4185 *nexthdrp = nexthdr; 4186 return (length); 4187 } 4188 4189 int 4190 ip_hdr_complete_v6(ip6_t *ip6h, zoneid_t zoneid) 4191 { 4192 ire_t *ire; 4193 4194 if (IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src)) { 4195 ire = ire_lookup_local_v6(zoneid); 4196 if (ire == NULL) { 4197 ip1dbg(("ip_hdr_complete_v6: no source IRE\n")); 4198 return (1); 4199 } 4200 ip6h->ip6_src = ire->ire_addr_v6; 4201 ire_refrele(ire); 4202 } 4203 ip6h->ip6_vcf = IPV6_DEFAULT_VERS_AND_FLOW; 4204 ip6h->ip6_hops = ipv6_def_hops; 4205 return (0); 4206 } 4207 4208 /* 4209 * Try to determine where and what are the IPv6 header length and 4210 * pointer to nexthdr value for the upper layer protocol (or an 4211 * unknown next hdr). 4212 * 4213 * Parameters returns a pointer to the nexthdr value; 4214 * Must handle malformed packets of various sorts. 4215 * Function returns failure for malformed cases. 4216 */ 4217 boolean_t 4218 ip_hdr_length_nexthdr_v6(mblk_t *mp, ip6_t *ip6h, uint16_t *hdr_length_ptr, 4219 uint8_t **nexthdrpp) 4220 { 4221 uint16_t length; 4222 uint_t ehdrlen; 4223 uint8_t *nexthdrp; 4224 uint8_t *whereptr; 4225 uint8_t *endptr; 4226 ip6_dest_t *desthdr; 4227 ip6_rthdr_t *rthdr; 4228 ip6_frag_t *fraghdr; 4229 4230 ASSERT(IPH_HDR_VERSION(ip6h) == IPV6_VERSION); 4231 length = IPV6_HDR_LEN; 4232 whereptr = ((uint8_t *)&ip6h[1]); /* point to next hdr */ 4233 endptr = mp->b_wptr; 4234 4235 nexthdrp = &ip6h->ip6_nxt; 4236 while (whereptr < endptr) { 4237 /* Is there enough left for len + nexthdr? */ 4238 if (whereptr + MIN_EHDR_LEN > endptr) 4239 break; 4240 4241 switch (*nexthdrp) { 4242 case IPPROTO_HOPOPTS: 4243 case IPPROTO_DSTOPTS: 4244 /* Assumes the headers are identical for hbh and dst */ 4245 desthdr = (ip6_dest_t *)whereptr; 4246 ehdrlen = 8 * (desthdr->ip6d_len + 1); 4247 if ((uchar_t *)desthdr + ehdrlen > endptr) 4248 return (B_FALSE); 4249 nexthdrp = &desthdr->ip6d_nxt; 4250 break; 4251 case IPPROTO_ROUTING: 4252 rthdr = (ip6_rthdr_t *)whereptr; 4253 ehdrlen = 8 * (rthdr->ip6r_len + 1); 4254 if ((uchar_t *)rthdr + ehdrlen > endptr) 4255 return (B_FALSE); 4256 nexthdrp = &rthdr->ip6r_nxt; 4257 break; 4258 case IPPROTO_FRAGMENT: 4259 fraghdr = (ip6_frag_t *)whereptr; 4260 ehdrlen = sizeof (ip6_frag_t); 4261 if ((uchar_t *)&fraghdr[1] > endptr) 4262 return (B_FALSE); 4263 nexthdrp = &fraghdr->ip6f_nxt; 4264 break; 4265 case IPPROTO_NONE: 4266 /* No next header means we're finished */ 4267 default: 4268 *hdr_length_ptr = length; 4269 *nexthdrpp = nexthdrp; 4270 return (B_TRUE); 4271 } 4272 length += ehdrlen; 4273 whereptr += ehdrlen; 4274 *hdr_length_ptr = length; 4275 *nexthdrpp = nexthdrp; 4276 } 4277 switch (*nexthdrp) { 4278 case IPPROTO_HOPOPTS: 4279 case IPPROTO_DSTOPTS: 4280 case IPPROTO_ROUTING: 4281 case IPPROTO_FRAGMENT: 4282 /* 4283 * If any know extension headers are still to be processed, 4284 * the packet's malformed (or at least all the IP header(s) are 4285 * not in the same mblk - and that should never happen. 4286 */ 4287 return (B_FALSE); 4288 4289 default: 4290 /* 4291 * If we get here, we know that all of the IP headers were in 4292 * the same mblk, even if the ULP header is in the next mblk. 4293 */ 4294 *hdr_length_ptr = length; 4295 *nexthdrpp = nexthdrp; 4296 return (B_TRUE); 4297 } 4298 } 4299 4300 /* 4301 * Return the length of the IPv6 related headers (including extension headers) 4302 * Returns a length even if the packet is malformed. 4303 */ 4304 int 4305 ip_hdr_length_v6(mblk_t *mp, ip6_t *ip6h) 4306 { 4307 uint16_t hdr_len; 4308 uint8_t *nexthdrp; 4309 4310 (void) ip_hdr_length_nexthdr_v6(mp, ip6h, &hdr_len, &nexthdrp); 4311 return (hdr_len); 4312 } 4313 4314 /* 4315 * Select an ill for the packet by considering load spreading across 4316 * a different ill in the group if dst_ill is part of some group. 4317 */ 4318 static ill_t * 4319 ip_newroute_get_dst_ill_v6(ill_t *dst_ill) 4320 { 4321 ill_t *ill; 4322 4323 /* 4324 * We schedule irrespective of whether the source address is 4325 * INADDR_UNSPECIED or not. 4326 */ 4327 ill = illgrp_scheduler(dst_ill); 4328 if (ill == NULL) 4329 return (NULL); 4330 4331 /* 4332 * For groups with names ip_sioctl_groupname ensures that all 4333 * ills are of same type. For groups without names, ifgrp_insert 4334 * ensures this. 4335 */ 4336 ASSERT(dst_ill->ill_type == ill->ill_type); 4337 4338 return (ill); 4339 } 4340 4341 /* 4342 * IPv6 - 4343 * ip_newroute_v6 is called by ip_rput_data_v6 or ip_wput_v6 whenever we need 4344 * to send out a packet to a destination address for which we do not have 4345 * specific routing information. 4346 * 4347 * Handle non-multicast packets. If ill is non-NULL the match is done 4348 * for that ill. 4349 * 4350 * When a specific ill is specified (using IPV6_PKTINFO, 4351 * IPV6_MULTICAST_IF, or IPV6_BOUND_IF) we will only match 4352 * on routing entries (ftable and ctable) that have a matching 4353 * ire->ire_ipif->ipif_ill. Thus this can only be used 4354 * for destinations that are on-link for the specific ill 4355 * and that can appear on multiple links. Thus it is useful 4356 * for multicast destinations, link-local destinations, and 4357 * at some point perhaps for site-local destinations (if the 4358 * node sits at a site boundary). 4359 * We create the cache entries in the regular ctable since 4360 * it can not "confuse" things for other destinations. 4361 * table. 4362 * 4363 * When ill is part of a ill group, we subject the packets 4364 * to load spreading even if the ill is specified by the 4365 * means described above. We disable only for IPV6_BOUND_PIF 4366 * and for the cases where IP6I_ATTACH_IF is set i.e NS/NA/ 4367 * Echo replies to link-local destinations have IP6I_ATTACH_IF 4368 * set. 4369 * 4370 * NOTE : These are the scopes of some of the variables that point at IRE, 4371 * which needs to be followed while making any future modifications 4372 * to avoid memory leaks. 4373 * 4374 * - ire and sire are the entries looked up initially by 4375 * ire_ftable_lookup_v6. 4376 * - ipif_ire is used to hold the interface ire associated with 4377 * the new cache ire. But it's scope is limited, so we always REFRELE 4378 * it before branching out to error paths. 4379 * - save_ire is initialized before ire_create, so that ire returned 4380 * by ire_create will not over-write the ire. We REFRELE save_ire 4381 * before breaking out of the switch. 4382 * 4383 * Thus on failures, we have to REFRELE only ire and sire, if they 4384 * are not NULL. 4385 * 4386 * v6srcp may be used in the future. Currently unused. 4387 */ 4388 /* ARGSUSED */ 4389 void 4390 ip_newroute_v6(queue_t *q, mblk_t *mp, const in6_addr_t *v6dstp, 4391 const in6_addr_t *v6srcp, ill_t *ill, zoneid_t zoneid) 4392 { 4393 in6_addr_t v6gw; 4394 in6_addr_t dst; 4395 ire_t *ire = NULL; 4396 ipif_t *src_ipif = NULL; 4397 ill_t *dst_ill = NULL; 4398 ire_t *sire = NULL; 4399 ire_t *save_ire; 4400 mblk_t *dlureq_mp; 4401 ip6_t *ip6h; 4402 int err = 0; 4403 mblk_t *first_mp; 4404 ipsec_out_t *io; 4405 ill_t *attach_ill = NULL; 4406 ushort_t ire_marks = 0; 4407 int match_flags; 4408 boolean_t ip6i_present; 4409 ire_t *first_sire = NULL; 4410 mblk_t *copy_mp = NULL; 4411 mblk_t *xmit_mp = NULL; 4412 in6_addr_t save_dst; 4413 uint32_t multirt_flags = 4414 MULTIRT_CACHEGW | MULTIRT_USESTAMP | MULTIRT_SETSTAMP; 4415 boolean_t multirt_is_resolvable; 4416 boolean_t multirt_resolve_next; 4417 boolean_t need_rele = B_FALSE; 4418 boolean_t do_attach_ill = B_FALSE; 4419 boolean_t ip6_asp_table_held = B_FALSE; 4420 tsol_ire_gw_secattr_t *attrp = NULL; 4421 tsol_gcgrp_t *gcgrp = NULL; 4422 tsol_gcgrp_addr_t ga; 4423 4424 ASSERT(!IN6_IS_ADDR_MULTICAST(v6dstp)); 4425 4426 first_mp = mp; 4427 if (mp->b_datap->db_type == M_CTL) { 4428 mp = mp->b_cont; 4429 io = (ipsec_out_t *)first_mp->b_rptr; 4430 ASSERT(io->ipsec_out_type == IPSEC_OUT); 4431 } else { 4432 io = NULL; 4433 } 4434 4435 /* 4436 * If this end point is bound to IPIF_NOFAILOVER, set bnf_ill and 4437 * bind_to_nofailover B_TRUE. We can't use conn to determine as it 4438 * could be NULL. 4439 * 4440 * This information can appear either in an ip6i_t or an IPSEC_OUT 4441 * message. 4442 */ 4443 ip6h = (ip6_t *)mp->b_rptr; 4444 ip6i_present = (ip6h->ip6_nxt == IPPROTO_RAW); 4445 if (ip6i_present || (io != NULL && io->ipsec_out_attach_if)) { 4446 if (!ip6i_present || 4447 ((ip6i_t *)ip6h)->ip6i_flags & IP6I_ATTACH_IF) { 4448 attach_ill = ip_grab_attach_ill(ill, first_mp, 4449 (ip6i_present ? ((ip6i_t *)ip6h)->ip6i_ifindex : 4450 io->ipsec_out_ill_index), B_TRUE); 4451 /* Failure case frees things for us. */ 4452 if (attach_ill == NULL) 4453 return; 4454 4455 /* 4456 * Check if we need an ire that will not be 4457 * looked up by anybody else i.e. HIDDEN. 4458 */ 4459 if (ill_is_probeonly(attach_ill)) 4460 ire_marks = IRE_MARK_HIDDEN; 4461 } 4462 } 4463 4464 if (IN6_IS_ADDR_LOOPBACK(v6dstp)) { 4465 ip1dbg(("ip_newroute_v6: dst with loopback addr\n")); 4466 goto icmp_err_ret; 4467 } else if ((v6srcp != NULL) && IN6_IS_ADDR_LOOPBACK(v6srcp)) { 4468 ip1dbg(("ip_newroute_v6: src with loopback addr\n")); 4469 goto icmp_err_ret; 4470 } 4471 4472 /* 4473 * If this IRE is created for forwarding or it is not for 4474 * TCP traffic, mark it as temporary. 4475 * 4476 * Is it sufficient just to check the next header?? 4477 */ 4478 if (mp->b_prev != NULL || !IP_FLOW_CONTROLLED_ULP(ip6h->ip6_nxt)) 4479 ire_marks |= IRE_MARK_TEMPORARY; 4480 4481 /* 4482 * Get what we can from ire_ftable_lookup_v6 which will follow an IRE 4483 * chain until it gets the most specific information available. 4484 * For example, we know that there is no IRE_CACHE for this dest, 4485 * but there may be an IRE_OFFSUBNET which specifies a gateway. 4486 * ire_ftable_lookup_v6 will look up the gateway, etc. 4487 */ 4488 4489 if (ill == NULL) { 4490 match_flags = MATCH_IRE_RECURSIVE | MATCH_IRE_DEFAULT | 4491 MATCH_IRE_PARENT | MATCH_IRE_RJ_BHOLE | MATCH_IRE_SECATTR; 4492 ire = ire_ftable_lookup_v6(v6dstp, 0, 0, 0, 4493 NULL, &sire, zoneid, 0, MBLK_GETLABEL(mp), 4494 match_flags); 4495 /* 4496 * ire_add_then_send -> ip_newroute_v6 in the CGTP case passes 4497 * in a NULL ill, but the packet could be a neighbor 4498 * solicitation/advertisment and could have a valid attach_ill. 4499 */ 4500 if (attach_ill != NULL) 4501 ill_refrele(attach_ill); 4502 } else { 4503 if (attach_ill != NULL) { 4504 /* 4505 * attach_ill is set only for communicating with 4506 * on-link hosts. So, don't look for DEFAULT. 4507 * ip_wput_v6 passes the right ill in this case and 4508 * hence we can assert. 4509 */ 4510 ASSERT(ill == attach_ill); 4511 ill_refrele(attach_ill); 4512 do_attach_ill = B_TRUE; 4513 match_flags = MATCH_IRE_RJ_BHOLE | MATCH_IRE_ILL; 4514 } else { 4515 match_flags = MATCH_IRE_RECURSIVE | MATCH_IRE_DEFAULT | 4516 MATCH_IRE_RJ_BHOLE | MATCH_IRE_ILL_GROUP; 4517 } 4518 match_flags |= MATCH_IRE_PARENT | MATCH_IRE_SECATTR; 4519 ire = ire_ftable_lookup_v6(v6dstp, NULL, NULL, 0, ill->ill_ipif, 4520 &sire, zoneid, 0, MBLK_GETLABEL(mp), match_flags); 4521 } 4522 4523 ip3dbg(("ip_newroute_v6: ire_ftable_lookup_v6() " 4524 "returned ire %p, sire %p\n", (void *)ire, (void *)sire)); 4525 4526 if (zoneid == ALL_ZONES && ire != NULL) { 4527 /* 4528 * In the forwarding case, we can use a route from any zone 4529 * since we won't change the source address. We can easily 4530 * assert that the source address is already set when there's no 4531 * ip6_info header - otherwise we'd have to call pullupmsg(). 4532 */ 4533 ASSERT(ip6i_present || 4534 !IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src)); 4535 zoneid = ire->ire_zoneid; 4536 } 4537 4538 /* 4539 * We enter a loop that will be run only once in most cases. 4540 * The loop is re-entered in the case where the destination 4541 * can be reached through multiple RTF_MULTIRT-flagged routes. 4542 * The intention is to compute multiple routes to a single 4543 * destination in a single ip_newroute_v6 call. 4544 * The information is contained in sire->ire_flags. 4545 */ 4546 do { 4547 multirt_resolve_next = B_FALSE; 4548 4549 if (dst_ill != NULL) { 4550 ill_refrele(dst_ill); 4551 dst_ill = NULL; 4552 } 4553 if (src_ipif != NULL) { 4554 ipif_refrele(src_ipif); 4555 src_ipif = NULL; 4556 } 4557 if ((sire != NULL) && sire->ire_flags & RTF_MULTIRT) { 4558 ip3dbg(("ip_newroute_v6: starting new resolution " 4559 "with first_mp %p, tag %d\n", 4560 (void *)first_mp, MULTIRT_DEBUG_TAGGED(first_mp))); 4561 4562 /* 4563 * We check if there are trailing unresolved routes for 4564 * the destination contained in sire. 4565 */ 4566 multirt_is_resolvable = ire_multirt_lookup_v6(&ire, 4567 &sire, multirt_flags, MBLK_GETLABEL(mp)); 4568 4569 ip3dbg(("ip_newroute_v6: multirt_is_resolvable %d, " 4570 "ire %p, sire %p\n", 4571 multirt_is_resolvable, (void *)ire, (void *)sire)); 4572 4573 if (!multirt_is_resolvable) { 4574 /* 4575 * No more multirt routes to resolve; give up 4576 * (all routes resolved or no more resolvable 4577 * routes). 4578 */ 4579 if (ire != NULL) { 4580 ire_refrele(ire); 4581 ire = NULL; 4582 } 4583 } else { 4584 ASSERT(sire != NULL); 4585 ASSERT(ire != NULL); 4586 /* 4587 * We simply use first_sire as a flag that 4588 * indicates if a resolvable multirt route has 4589 * already been found during the preceding 4590 * loops. If it is not the case, we may have 4591 * to send an ICMP error to report that the 4592 * destination is unreachable. We do not 4593 * IRE_REFHOLD first_sire. 4594 */ 4595 if (first_sire == NULL) { 4596 first_sire = sire; 4597 } 4598 } 4599 } 4600 if ((ire == NULL) || (ire == sire)) { 4601 /* 4602 * either ire == NULL (the destination cannot be 4603 * resolved) or ire == sire (the gateway cannot be 4604 * resolved). At this point, there are no more routes 4605 * to resolve for the destination, thus we exit. 4606 */ 4607 if (ip_debug > 3) { 4608 /* ip2dbg */ 4609 pr_addr_dbg("ip_newroute_v6: " 4610 "can't resolve %s\n", AF_INET6, v6dstp); 4611 } 4612 ip3dbg(("ip_newroute_v6: " 4613 "ire %p, sire %p, first_sire %p\n", 4614 (void *)ire, (void *)sire, (void *)first_sire)); 4615 4616 if (sire != NULL) { 4617 ire_refrele(sire); 4618 sire = NULL; 4619 } 4620 4621 if (first_sire != NULL) { 4622 /* 4623 * At least one multirt route has been found 4624 * in the same ip_newroute() call; there is no 4625 * need to report an ICMP error. 4626 * first_sire was not IRE_REFHOLDed. 4627 */ 4628 MULTIRT_DEBUG_UNTAG(first_mp); 4629 freemsg(first_mp); 4630 return; 4631 } 4632 ip_rts_change_v6(RTM_MISS, v6dstp, 0, 0, 0, 0, 0, 0, 4633 RTA_DST); 4634 goto icmp_err_ret; 4635 } 4636 4637 ASSERT(ire->ire_ipversion == IPV6_VERSION); 4638 4639 /* 4640 * Verify that the returned IRE does not have either the 4641 * RTF_REJECT or RTF_BLACKHOLE flags set and that the IRE is 4642 * either an IRE_CACHE, IRE_IF_NORESOLVER or IRE_IF_RESOLVER. 4643 */ 4644 if ((ire->ire_flags & (RTF_REJECT | RTF_BLACKHOLE)) || 4645 (ire->ire_type & (IRE_CACHE | IRE_INTERFACE)) == 0) 4646 goto icmp_err_ret; 4647 4648 /* 4649 * Increment the ire_ob_pkt_count field for ire if it is an 4650 * INTERFACE (IF_RESOLVER or IF_NORESOLVER) IRE type, and 4651 * increment the same for the parent IRE, sire, if it is some 4652 * sort of prefix IRE (which includes DEFAULT, PREFIX, HOST 4653 * and HOST_REDIRECT). 4654 */ 4655 if ((ire->ire_type & IRE_INTERFACE) != 0) { 4656 UPDATE_OB_PKT_COUNT(ire); 4657 ire->ire_last_used_time = lbolt; 4658 } 4659 4660 if (sire != NULL) { 4661 mutex_enter(&sire->ire_lock); 4662 v6gw = sire->ire_gateway_addr_v6; 4663 mutex_exit(&sire->ire_lock); 4664 ASSERT((sire->ire_type & (IRE_CACHETABLE | 4665 IRE_INTERFACE)) == 0); 4666 UPDATE_OB_PKT_COUNT(sire); 4667 sire->ire_last_used_time = lbolt; 4668 } else { 4669 v6gw = ipv6_all_zeros; 4670 } 4671 4672 /* 4673 * We have a route to reach the destination. 4674 * 4675 * 1) If the interface is part of ill group, try to get a new 4676 * ill taking load spreading into account. 4677 * 4678 * 2) After selecting the ill, get a source address that might 4679 * create good inbound load spreading and that matches the 4680 * right scope. ipif_select_source_v6 does this for us. 4681 * 4682 * If the application specified the ill (ifindex), we still 4683 * load spread. Only if the packets needs to go out specifically 4684 * on a given ill e.g. bind to IPIF_NOFAILOVER address, 4685 * IPV6_BOUND_PIF we don't try to use a different ill for load 4686 * spreading. 4687 */ 4688 if (!do_attach_ill) { 4689 /* 4690 * If the interface belongs to an interface group, 4691 * make sure the next possible interface in the group 4692 * is used. This encourages load spreading among 4693 * peers in an interface group. However, in the case 4694 * of multirouting, load spreading is not used, as we 4695 * actually want to replicate outgoing packets through 4696 * particular interfaces. 4697 * 4698 * Note: While we pick a dst_ill we are really only 4699 * interested in the ill for load spreading. 4700 * The source ipif is determined by source address 4701 * selection below. 4702 */ 4703 if ((sire != NULL) && (sire->ire_flags & RTF_MULTIRT)) { 4704 dst_ill = ire->ire_ipif->ipif_ill; 4705 /* For uniformity do a refhold */ 4706 ill_refhold(dst_ill); 4707 } else { 4708 /* 4709 * If we are here trying to create an IRE_CACHE 4710 * for an offlink destination and have the 4711 * IRE_CACHE for the next hop and the latter is 4712 * using virtual IP source address selection i.e 4713 * it's ire->ire_ipif is pointing to a virtual 4714 * network interface (vni) then 4715 * ip_newroute_get_dst_ll() will return the vni 4716 * interface as the dst_ill. Since the vni is 4717 * virtual i.e not associated with any physical 4718 * interface, it cannot be the dst_ill, hence 4719 * in such a case call ip_newroute_get_dst_ll() 4720 * with the stq_ill instead of the ire_ipif ILL. 4721 * The function returns a refheld ill. 4722 */ 4723 if ((ire->ire_type == IRE_CACHE) && 4724 IS_VNI(ire->ire_ipif->ipif_ill)) 4725 dst_ill = ip_newroute_get_dst_ill_v6( 4726 ire->ire_stq->q_ptr); 4727 else 4728 dst_ill = ip_newroute_get_dst_ill_v6( 4729 ire->ire_ipif->ipif_ill); 4730 } 4731 if (dst_ill == NULL) { 4732 if (ip_debug > 2) { 4733 pr_addr_dbg("ip_newroute_v6 : no dst " 4734 "ill for dst %s\n", 4735 AF_INET6, v6dstp); 4736 } 4737 goto icmp_err_ret; 4738 } else if (dst_ill->ill_group == NULL && ill != NULL && 4739 dst_ill != ill) { 4740 /* 4741 * If "ill" is not part of any group, we should 4742 * have found a route matching "ill" as we 4743 * called ire_ftable_lookup_v6 with 4744 * MATCH_IRE_ILL_GROUP. 4745 * Rather than asserting when there is a 4746 * mismatch, we just drop the packet. 4747 */ 4748 ip0dbg(("ip_newroute_v6: BOUND_IF failed : " 4749 "dst_ill %s ill %s\n", 4750 dst_ill->ill_name, 4751 ill->ill_name)); 4752 goto icmp_err_ret; 4753 } 4754 } else { 4755 dst_ill = ire->ire_ipif->ipif_ill; 4756 /* For uniformity do refhold */ 4757 ill_refhold(dst_ill); 4758 /* 4759 * We should have found a route matching ill as we 4760 * called ire_ftable_lookup_v6 with MATCH_IRE_ILL. 4761 * Rather than asserting, while there is a mismatch, 4762 * we just drop the packet. 4763 */ 4764 if (dst_ill != ill) { 4765 ip0dbg(("ip_newroute_v6: Packet dropped as " 4766 "IP6I_ATTACH_IF ill is %s, " 4767 "ire->ire_ipif->ipif_ill is %s\n", 4768 ill->ill_name, 4769 dst_ill->ill_name)); 4770 goto icmp_err_ret; 4771 } 4772 } 4773 /* 4774 * Pick a source address which matches the scope of the 4775 * destination address. 4776 * For RTF_SETSRC routes, the source address is imposed by the 4777 * parent ire (sire). 4778 */ 4779 ASSERT(src_ipif == NULL); 4780 if (ire->ire_type == IRE_IF_RESOLVER && 4781 !IN6_IS_ADDR_UNSPECIFIED(&v6gw) && 4782 ip6_asp_can_lookup()) { 4783 /* 4784 * The ire cache entry we're adding is for the 4785 * gateway itself. The source address in this case 4786 * is relative to the gateway's address. 4787 */ 4788 ip6_asp_table_held = B_TRUE; 4789 src_ipif = ipif_select_source_v6(dst_ill, &v6gw, 4790 RESTRICT_TO_GROUP, IPV6_PREFER_SRC_DEFAULT, zoneid); 4791 if (src_ipif != NULL) 4792 ire_marks |= IRE_MARK_USESRC_CHECK; 4793 } else { 4794 if ((sire != NULL) && (sire->ire_flags & RTF_SETSRC)) { 4795 /* 4796 * Check that the ipif matching the requested 4797 * source address still exists. 4798 */ 4799 src_ipif = ipif_lookup_addr_v6( 4800 &sire->ire_src_addr_v6, NULL, zoneid, 4801 NULL, NULL, NULL, NULL); 4802 } 4803 if (src_ipif == NULL && ip6_asp_can_lookup()) { 4804 uint_t restrict_ill = RESTRICT_TO_NONE; 4805 4806 if (ip6i_present && ((ip6i_t *)ip6h)->ip6i_flags 4807 & IP6I_ATTACH_IF) 4808 restrict_ill = RESTRICT_TO_ILL; 4809 ip6_asp_table_held = B_TRUE; 4810 src_ipif = ipif_select_source_v6(dst_ill, 4811 v6dstp, restrict_ill, 4812 IPV6_PREFER_SRC_DEFAULT, zoneid); 4813 if (src_ipif != NULL) 4814 ire_marks |= IRE_MARK_USESRC_CHECK; 4815 } 4816 } 4817 4818 if (src_ipif == NULL) { 4819 if (ip_debug > 2) { 4820 /* ip1dbg */ 4821 pr_addr_dbg("ip_newroute_v6: no src for " 4822 "dst %s\n, ", AF_INET6, v6dstp); 4823 printf("ip_newroute_v6: interface name %s\n", 4824 dst_ill->ill_name); 4825 } 4826 goto icmp_err_ret; 4827 } 4828 4829 if (ip_debug > 3) { 4830 /* ip2dbg */ 4831 pr_addr_dbg("ip_newroute_v6: first hop %s\n", 4832 AF_INET6, &v6gw); 4833 } 4834 ip2dbg(("\tire type %s (%d)\n", 4835 ip_nv_lookup(ire_nv_tbl, ire->ire_type), ire->ire_type)); 4836 4837 /* 4838 * At this point in ip_newroute_v6(), ire is either the 4839 * IRE_CACHE of the next-hop gateway for an off-subnet 4840 * destination or an IRE_INTERFACE type that should be used 4841 * to resolve an on-subnet destination or an on-subnet 4842 * next-hop gateway. 4843 * 4844 * In the IRE_CACHE case, we have the following : 4845 * 4846 * 1) src_ipif - used for getting a source address. 4847 * 4848 * 2) dst_ill - from which we derive ire_stq/ire_rfq. This 4849 * means packets using this IRE_CACHE will go out on dst_ill. 4850 * 4851 * 3) The IRE sire will point to the prefix that is the longest 4852 * matching route for the destination. These prefix types 4853 * include IRE_DEFAULT, IRE_PREFIX, IRE_HOST. 4854 * 4855 * The newly created IRE_CACHE entry for the off-subnet 4856 * destination is tied to both the prefix route and the 4857 * interface route used to resolve the next-hop gateway 4858 * via the ire_phandle and ire_ihandle fields, respectively. 4859 * 4860 * In the IRE_INTERFACE case, we have the following : 4861 * 4862 * 1) src_ipif - used for getting a source address. 4863 * 4864 * 2) dst_ill - from which we derive ire_stq/ire_rfq. This 4865 * means packets using the IRE_CACHE that we will build 4866 * here will go out on dst_ill. 4867 * 4868 * 3) sire may or may not be NULL. But, the IRE_CACHE that is 4869 * to be created will only be tied to the IRE_INTERFACE that 4870 * was derived from the ire_ihandle field. 4871 * 4872 * If sire is non-NULL, it means the destination is off-link 4873 * and we will first create the IRE_CACHE for the gateway. 4874 * Next time through ip_newroute_v6, we will create the 4875 * IRE_CACHE for the final destination as described above. 4876 */ 4877 save_ire = ire; 4878 switch (ire->ire_type) { 4879 case IRE_CACHE: { 4880 ire_t *ipif_ire; 4881 4882 ASSERT(sire != NULL); 4883 if (IN6_IS_ADDR_UNSPECIFIED(&v6gw)) { 4884 mutex_enter(&ire->ire_lock); 4885 v6gw = ire->ire_gateway_addr_v6; 4886 mutex_exit(&ire->ire_lock); 4887 } 4888 /* 4889 * We need 3 ire's to create a new cache ire for an 4890 * off-link destination from the cache ire of the 4891 * gateway. 4892 * 4893 * 1. The prefix ire 'sire' 4894 * 2. The cache ire of the gateway 'ire' 4895 * 3. The interface ire 'ipif_ire' 4896 * 4897 * We have (1) and (2). We lookup (3) below. 4898 * 4899 * If there is no interface route to the gateway, 4900 * it is a race condition, where we found the cache 4901 * but the inteface route has been deleted. 4902 */ 4903 ipif_ire = ire_ihandle_lookup_offlink_v6(ire, sire); 4904 if (ipif_ire == NULL) { 4905 ip1dbg(("ip_newroute_v6:" 4906 "ire_ihandle_lookup_offlink_v6 failed\n")); 4907 goto icmp_err_ret; 4908 } 4909 /* 4910 * Assume DL_UNITDATA_REQ is same for all physical 4911 * interfaces in the ifgrp. If it isn't, this code will 4912 * have to be seriously rewhacked to allow the 4913 * fastpath probing (such that I cache the link 4914 * header in the IRE_CACHE) to work over ifgrps. 4915 * We have what we need to build an IRE_CACHE. 4916 */ 4917 /* 4918 * Note: the new ire inherits RTF_SETSRC 4919 * and RTF_MULTIRT to propagate these flags from prefix 4920 * to cache. 4921 */ 4922 4923 /* 4924 * Check cached gateway IRE for any security 4925 * attributes; if found, associate the gateway 4926 * credentials group to the destination IRE. 4927 */ 4928 if ((attrp = save_ire->ire_gw_secattr) != NULL) { 4929 mutex_enter(&attrp->igsa_lock); 4930 if ((gcgrp = attrp->igsa_gcgrp) != NULL) 4931 GCGRP_REFHOLD(gcgrp); 4932 mutex_exit(&attrp->igsa_lock); 4933 } 4934 4935 ire = ire_create_v6( 4936 v6dstp, /* dest address */ 4937 &ipv6_all_ones, /* mask */ 4938 &src_ipif->ipif_v6src_addr, /* source address */ 4939 &v6gw, /* gateway address */ 4940 &save_ire->ire_max_frag, 4941 NULL, /* Fast Path header */ 4942 dst_ill->ill_rq, /* recv-from queue */ 4943 dst_ill->ill_wq, /* send-to queue */ 4944 IRE_CACHE, 4945 NULL, 4946 src_ipif, 4947 &sire->ire_mask_v6, /* Parent mask */ 4948 sire->ire_phandle, /* Parent handle */ 4949 ipif_ire->ire_ihandle, /* Interface handle */ 4950 sire->ire_flags & /* flags if any */ 4951 (RTF_SETSRC | RTF_MULTIRT), 4952 &(sire->ire_uinfo), 4953 NULL, 4954 gcgrp); 4955 4956 if (ire == NULL) { 4957 if (gcgrp != NULL) { 4958 GCGRP_REFRELE(gcgrp); 4959 gcgrp = NULL; 4960 } 4961 ire_refrele(save_ire); 4962 ire_refrele(ipif_ire); 4963 break; 4964 } 4965 4966 /* reference now held by IRE */ 4967 gcgrp = NULL; 4968 4969 ire->ire_marks |= ire_marks; 4970 4971 /* 4972 * Prevent sire and ipif_ire from getting deleted. The 4973 * newly created ire is tied to both of them via the 4974 * phandle and ihandle respectively. 4975 */ 4976 IRB_REFHOLD(sire->ire_bucket); 4977 /* Has it been removed already ? */ 4978 if (sire->ire_marks & IRE_MARK_CONDEMNED) { 4979 IRB_REFRELE(sire->ire_bucket); 4980 ire_refrele(ipif_ire); 4981 ire_refrele(save_ire); 4982 break; 4983 } 4984 4985 IRB_REFHOLD(ipif_ire->ire_bucket); 4986 /* Has it been removed already ? */ 4987 if (ipif_ire->ire_marks & IRE_MARK_CONDEMNED) { 4988 IRB_REFRELE(ipif_ire->ire_bucket); 4989 IRB_REFRELE(sire->ire_bucket); 4990 ire_refrele(ipif_ire); 4991 ire_refrele(save_ire); 4992 break; 4993 } 4994 4995 xmit_mp = first_mp; 4996 if (ire->ire_flags & RTF_MULTIRT) { 4997 copy_mp = copymsg(first_mp); 4998 if (copy_mp != NULL) { 4999 xmit_mp = copy_mp; 5000 MULTIRT_DEBUG_TAG(first_mp); 5001 } 5002 } 5003 ire_add_then_send(q, ire, xmit_mp); 5004 if (ip6_asp_table_held) { 5005 ip6_asp_table_refrele(); 5006 ip6_asp_table_held = B_FALSE; 5007 } 5008 ire_refrele(save_ire); 5009 5010 /* Assert that sire is not deleted yet. */ 5011 ASSERT(sire->ire_ptpn != NULL); 5012 IRB_REFRELE(sire->ire_bucket); 5013 5014 /* Assert that ipif_ire is not deleted yet. */ 5015 ASSERT(ipif_ire->ire_ptpn != NULL); 5016 IRB_REFRELE(ipif_ire->ire_bucket); 5017 ire_refrele(ipif_ire); 5018 5019 if (copy_mp != NULL) { 5020 /* 5021 * Search for the next unresolved 5022 * multirt route. 5023 */ 5024 copy_mp = NULL; 5025 ipif_ire = NULL; 5026 ire = NULL; 5027 /* re-enter the loop */ 5028 multirt_resolve_next = B_TRUE; 5029 continue; 5030 } 5031 ire_refrele(sire); 5032 ill_refrele(dst_ill); 5033 ipif_refrele(src_ipif); 5034 return; 5035 } 5036 case IRE_IF_NORESOLVER: 5037 /* 5038 * We have what we need to build an IRE_CACHE. 5039 * 5040 * Create a new dlureq_mp with the IPv6 gateway 5041 * address in destination address in the DLPI hdr 5042 * if the physical length is exactly 16 bytes. 5043 */ 5044 if (dst_ill->ill_phys_addr_length == IPV6_ADDR_LEN) { 5045 const in6_addr_t *addr; 5046 5047 if (!IN6_IS_ADDR_UNSPECIFIED(&v6gw)) 5048 addr = &v6gw; 5049 else 5050 addr = v6dstp; 5051 5052 dlureq_mp = ill_dlur_gen((uchar_t *)addr, 5053 dst_ill->ill_phys_addr_length, 5054 dst_ill->ill_sap, 5055 dst_ill->ill_sap_length); 5056 } else { 5057 dlureq_mp = ill_dlur_gen(NULL, 5058 dst_ill->ill_phys_addr_length, 5059 dst_ill->ill_sap, 5060 dst_ill->ill_sap_length); 5061 } 5062 if (dlureq_mp == NULL) 5063 break; 5064 /* 5065 * TSol note: We are creating the ire cache for the 5066 * destination 'dst'. If 'dst' is offlink, going 5067 * through the first hop 'gw', the security attributes 5068 * of 'dst' must be set to point to the gateway 5069 * credentials of gateway 'gw'. If 'dst' is onlink, it 5070 * is possible that 'dst' is a potential gateway that is 5071 * referenced by some route that has some security 5072 * attributes. Thus in the former case, we need to do a 5073 * gcgrp_lookup of 'gw' while in the latter case we 5074 * need to do gcgrp_lookup of 'dst' itself. 5075 */ 5076 ga.ga_af = AF_INET6; 5077 if (!IN6_IS_ADDR_UNSPECIFIED(&v6gw)) 5078 ga.ga_addr = v6gw; 5079 else 5080 ga.ga_addr = *v6dstp; 5081 gcgrp = gcgrp_lookup(&ga, B_FALSE); 5082 5083 /* 5084 * Note: the new ire inherits sire flags RTF_SETSRC 5085 * and RTF_MULTIRT to propagate those rules from prefix 5086 * to cache. 5087 */ 5088 ire = ire_create_v6( 5089 v6dstp, /* dest address */ 5090 &ipv6_all_ones, /* mask */ 5091 &src_ipif->ipif_v6src_addr, /* source address */ 5092 &v6gw, /* gateway address */ 5093 &save_ire->ire_max_frag, 5094 NULL, /* Fast Path header */ 5095 dst_ill->ill_rq, /* recv-from queue */ 5096 dst_ill->ill_wq, /* send-to queue */ 5097 IRE_CACHE, 5098 dlureq_mp, 5099 src_ipif, 5100 &save_ire->ire_mask_v6, /* Parent mask */ 5101 (sire != NULL) ? /* Parent handle */ 5102 sire->ire_phandle : 0, 5103 save_ire->ire_ihandle, /* Interface handle */ 5104 (sire != NULL) ? /* flags if any */ 5105 sire->ire_flags & 5106 (RTF_SETSRC | RTF_MULTIRT) : 0, 5107 &(save_ire->ire_uinfo), 5108 NULL, 5109 gcgrp); 5110 5111 freeb(dlureq_mp); 5112 5113 if (ire == NULL) { 5114 if (gcgrp != NULL) { 5115 GCGRP_REFRELE(gcgrp); 5116 gcgrp = NULL; 5117 } 5118 ire_refrele(save_ire); 5119 break; 5120 } 5121 5122 /* reference now held by IRE */ 5123 gcgrp = NULL; 5124 5125 ire->ire_marks |= ire_marks; 5126 5127 if (!IN6_IS_ADDR_UNSPECIFIED(&v6gw)) 5128 dst = v6gw; 5129 else 5130 dst = *v6dstp; 5131 err = ndp_noresolver(dst_ill, &dst); 5132 if (err != 0) { 5133 ire_refrele(save_ire); 5134 break; 5135 } 5136 5137 /* Prevent save_ire from getting deleted */ 5138 IRB_REFHOLD(save_ire->ire_bucket); 5139 /* Has it been removed already ? */ 5140 if (save_ire->ire_marks & IRE_MARK_CONDEMNED) { 5141 IRB_REFRELE(save_ire->ire_bucket); 5142 ire_refrele(save_ire); 5143 break; 5144 } 5145 5146 xmit_mp = first_mp; 5147 /* 5148 * In case of MULTIRT, a copy of the current packet 5149 * to send is made to further re-enter the 5150 * loop and attempt another route resolution 5151 */ 5152 if ((sire != NULL) && sire->ire_flags & RTF_MULTIRT) { 5153 copy_mp = copymsg(first_mp); 5154 if (copy_mp != NULL) { 5155 xmit_mp = copy_mp; 5156 MULTIRT_DEBUG_TAG(first_mp); 5157 } 5158 } 5159 ire_add_then_send(q, ire, xmit_mp); 5160 if (ip6_asp_table_held) { 5161 ip6_asp_table_refrele(); 5162 ip6_asp_table_held = B_FALSE; 5163 } 5164 5165 /* Assert that it is not deleted yet. */ 5166 ASSERT(save_ire->ire_ptpn != NULL); 5167 IRB_REFRELE(save_ire->ire_bucket); 5168 ire_refrele(save_ire); 5169 5170 if (copy_mp != NULL) { 5171 /* 5172 * If we found a (no)resolver, we ignore any 5173 * trailing top priority IRE_CACHE in 5174 * further loops. This ensures that we do not 5175 * omit any (no)resolver despite the priority 5176 * in this call. 5177 * IRE_CACHE, if any, will be processed 5178 * by another thread entering ip_newroute(), 5179 * (on resolver response, for example). 5180 * We use this to force multiple parallel 5181 * resolution as soon as a packet needs to be 5182 * sent. The result is, after one packet 5183 * emission all reachable routes are generally 5184 * resolved. 5185 * Otherwise, complete resolution of MULTIRT 5186 * routes would require several emissions as 5187 * side effect. 5188 */ 5189 multirt_flags &= ~MULTIRT_CACHEGW; 5190 5191 /* 5192 * Search for the next unresolved multirt 5193 * route. 5194 */ 5195 copy_mp = NULL; 5196 save_ire = NULL; 5197 ire = NULL; 5198 /* re-enter the loop */ 5199 multirt_resolve_next = B_TRUE; 5200 continue; 5201 } 5202 5203 /* Don't need sire anymore */ 5204 if (sire != NULL) 5205 ire_refrele(sire); 5206 ill_refrele(dst_ill); 5207 ipif_refrele(src_ipif); 5208 return; 5209 5210 case IRE_IF_RESOLVER: 5211 /* 5212 * We can't build an IRE_CACHE yet, but at least we 5213 * found a resolver that can help. 5214 */ 5215 dst = *v6dstp; 5216 5217 /* 5218 * To be at this point in the code with a non-zero gw 5219 * means that dst is reachable through a gateway that 5220 * we have never resolved. By changing dst to the gw 5221 * addr we resolve the gateway first. When 5222 * ire_add_then_send() tries to put the IP dg to dst, 5223 * it will reenter ip_newroute() at which time we will 5224 * find the IRE_CACHE for the gw and create another 5225 * IRE_CACHE above (for dst itself). 5226 */ 5227 if (!IN6_IS_ADDR_UNSPECIFIED(&v6gw)) { 5228 save_dst = dst; 5229 dst = v6gw; 5230 v6gw = ipv6_all_zeros; 5231 } 5232 if (dst_ill->ill_flags & ILLF_XRESOLV) { 5233 /* 5234 * Ask the external resolver to do its thing. 5235 * Make an mblk chain in the following form: 5236 * ARQ_REQ_MBLK-->IRE_MBLK-->packet 5237 */ 5238 mblk_t *ire_mp; 5239 mblk_t *areq_mp; 5240 areq_t *areq; 5241 in6_addr_t *addrp; 5242 5243 ip1dbg(("ip_newroute_v6:ILLF_XRESOLV\n")); 5244 if (ip6_asp_table_held) { 5245 ip6_asp_table_refrele(); 5246 ip6_asp_table_held = B_FALSE; 5247 } 5248 ire = ire_create_mp_v6( 5249 &dst, /* dest address */ 5250 &ipv6_all_ones, /* mask */ 5251 &src_ipif->ipif_v6src_addr, 5252 /* source address */ 5253 &v6gw, /* gateway address */ 5254 NULL, /* Fast Path header */ 5255 dst_ill->ill_rq, /* recv-from queue */ 5256 dst_ill->ill_wq, /* send-to queue */ 5257 IRE_CACHE, 5258 NULL, 5259 src_ipif, 5260 &save_ire->ire_mask_v6, 5261 /* Parent mask */ 5262 0, 5263 save_ire->ire_ihandle, 5264 /* Interface handle */ 5265 0, /* flags if any */ 5266 &(save_ire->ire_uinfo), 5267 NULL, 5268 NULL); 5269 5270 ire_refrele(save_ire); 5271 if (ire == NULL) { 5272 ip1dbg(("ip_newroute_v6:" 5273 "ire is NULL\n")); 5274 break; 5275 } 5276 5277 if ((sire != NULL) && 5278 (sire->ire_flags & RTF_MULTIRT)) { 5279 /* 5280 * processing a copy of the packet to 5281 * send for further resolution loops 5282 */ 5283 copy_mp = copymsg(first_mp); 5284 if (copy_mp != NULL) 5285 MULTIRT_DEBUG_TAG(copy_mp); 5286 } 5287 ire->ire_marks |= ire_marks; 5288 ire_mp = ire->ire_mp; 5289 /* 5290 * Now create or find an nce for this interface. 5291 * The hw addr will need to to be set from 5292 * the reply to the AR_ENTRY_QUERY that 5293 * we're about to send. This will be done in 5294 * ire_add_v6(). 5295 */ 5296 err = ndp_resolver(dst_ill, &dst, mp, zoneid); 5297 switch (err) { 5298 case 0: 5299 /* 5300 * New cache entry created. 5301 * Break, then ask the external 5302 * resolver. 5303 */ 5304 break; 5305 case EINPROGRESS: 5306 /* 5307 * Resolution in progress; 5308 * packet has been queued by 5309 * ndp_resolver(). 5310 */ 5311 ire_delete(ire); 5312 ire = NULL; 5313 /* 5314 * Check if another multirt 5315 * route must be resolved. 5316 */ 5317 if (copy_mp != NULL) { 5318 /* 5319 * If we found a resolver, we 5320 * ignore any trailing top 5321 * priority IRE_CACHE in 5322 * further loops. The reason is 5323 * the same as for noresolver. 5324 */ 5325 multirt_flags &= 5326 ~MULTIRT_CACHEGW; 5327 /* 5328 * Search for the next 5329 * unresolved multirt route. 5330 */ 5331 first_mp = copy_mp; 5332 copy_mp = NULL; 5333 mp = first_mp; 5334 if (mp->b_datap->db_type == 5335 M_CTL) { 5336 mp = mp->b_cont; 5337 } 5338 ASSERT(sire != NULL); 5339 dst = save_dst; 5340 /* 5341 * re-enter the loop 5342 */ 5343 multirt_resolve_next = 5344 B_TRUE; 5345 continue; 5346 } 5347 5348 if (sire != NULL) 5349 ire_refrele(sire); 5350 ill_refrele(dst_ill); 5351 ipif_refrele(src_ipif); 5352 return; 5353 default: 5354 /* 5355 * Transient error; packet will be 5356 * freed. 5357 */ 5358 ire_delete(ire); 5359 ire = NULL; 5360 break; 5361 } 5362 if (err != 0) 5363 break; 5364 /* 5365 * Now set up the AR_ENTRY_QUERY and send it. 5366 */ 5367 areq_mp = ill_arp_alloc(dst_ill, 5368 (uchar_t *)&ipv6_areq_template, 5369 (caddr_t)&dst); 5370 if (areq_mp == NULL) { 5371 ip1dbg(("ip_newroute_v6:" 5372 "areq_mp is NULL\n")); 5373 freemsg(ire_mp); 5374 break; 5375 } 5376 areq = (areq_t *)areq_mp->b_rptr; 5377 addrp = (in6_addr_t *)((char *)areq + 5378 areq->areq_target_addr_offset); 5379 *addrp = dst; 5380 addrp = (in6_addr_t *)((char *)areq + 5381 areq->areq_sender_addr_offset); 5382 *addrp = src_ipif->ipif_v6src_addr; 5383 /* 5384 * link the chain, then send up to the resolver. 5385 */ 5386 linkb(areq_mp, ire_mp); 5387 linkb(areq_mp, mp); 5388 ip1dbg(("ip_newroute_v6:" 5389 "putnext to resolver\n")); 5390 putnext(dst_ill->ill_rq, areq_mp); 5391 /* 5392 * Check if another multirt route 5393 * must be resolved. 5394 */ 5395 ire = NULL; 5396 if (copy_mp != NULL) { 5397 /* 5398 * If we find a resolver, we ignore any 5399 * trailing top priority IRE_CACHE in 5400 * further loops. The reason is the 5401 * same as for noresolver. 5402 */ 5403 multirt_flags &= ~MULTIRT_CACHEGW; 5404 /* 5405 * Search for the next unresolved 5406 * multirt route. 5407 */ 5408 first_mp = copy_mp; 5409 copy_mp = NULL; 5410 mp = first_mp; 5411 if (mp->b_datap->db_type == M_CTL) { 5412 mp = mp->b_cont; 5413 } 5414 ASSERT(sire != NULL); 5415 dst = save_dst; 5416 /* 5417 * re-enter the loop 5418 */ 5419 multirt_resolve_next = B_TRUE; 5420 continue; 5421 } 5422 5423 if (sire != NULL) 5424 ire_refrele(sire); 5425 ill_refrele(dst_ill); 5426 ipif_refrele(src_ipif); 5427 return; 5428 } 5429 /* 5430 * Non-external resolver case. 5431 * 5432 * TSol note: Please see the note above the 5433 * IRE_IF_NORESOLVER case. 5434 */ 5435 ga.ga_af = AF_INET6; 5436 ga.ga_addr = dst; 5437 gcgrp = gcgrp_lookup(&ga, B_FALSE); 5438 5439 ire = ire_create_v6( 5440 &dst, /* dest address */ 5441 &ipv6_all_ones, /* mask */ 5442 &src_ipif->ipif_v6src_addr, /* source address */ 5443 &v6gw, /* gateway address */ 5444 &save_ire->ire_max_frag, 5445 NULL, /* Fast Path header */ 5446 dst_ill->ill_rq, /* recv-from queue */ 5447 dst_ill->ill_wq, /* send-to queue */ 5448 IRE_CACHE, 5449 NULL, 5450 src_ipif, 5451 &save_ire->ire_mask_v6, /* Parent mask */ 5452 0, 5453 save_ire->ire_ihandle, /* Interface handle */ 5454 0, /* flags if any */ 5455 &(save_ire->ire_uinfo), 5456 NULL, 5457 gcgrp); 5458 5459 if (ire == NULL) { 5460 if (gcgrp != NULL) { 5461 GCGRP_REFRELE(gcgrp); 5462 gcgrp = NULL; 5463 } 5464 ire_refrele(save_ire); 5465 break; 5466 } 5467 5468 /* reference now held by IRE */ 5469 gcgrp = NULL; 5470 5471 if ((sire != NULL) && 5472 (sire->ire_flags & RTF_MULTIRT)) { 5473 copy_mp = copymsg(first_mp); 5474 if (copy_mp != NULL) 5475 MULTIRT_DEBUG_TAG(copy_mp); 5476 } 5477 5478 ire->ire_marks |= ire_marks; 5479 err = ndp_resolver(dst_ill, &dst, first_mp, zoneid); 5480 switch (err) { 5481 case 0: 5482 /* Prevent save_ire from getting deleted */ 5483 IRB_REFHOLD(save_ire->ire_bucket); 5484 /* Has it been removed already ? */ 5485 if (save_ire->ire_marks & IRE_MARK_CONDEMNED) { 5486 IRB_REFRELE(save_ire->ire_bucket); 5487 ire_refrele(save_ire); 5488 break; 5489 } 5490 5491 /* 5492 * We have a resolved cache entry, 5493 * add in the IRE. 5494 */ 5495 ire_add_then_send(q, ire, first_mp); 5496 if (ip6_asp_table_held) { 5497 ip6_asp_table_refrele(); 5498 ip6_asp_table_held = B_FALSE; 5499 } 5500 5501 /* Assert that it is not deleted yet. */ 5502 ASSERT(save_ire->ire_ptpn != NULL); 5503 IRB_REFRELE(save_ire->ire_bucket); 5504 ire_refrele(save_ire); 5505 /* 5506 * Check if another multirt route 5507 * must be resolved. 5508 */ 5509 ire = NULL; 5510 if (copy_mp != NULL) { 5511 /* 5512 * If we find a resolver, we ignore any 5513 * trailing top priority IRE_CACHE in 5514 * further loops. The reason is the 5515 * same as for noresolver. 5516 */ 5517 multirt_flags &= ~MULTIRT_CACHEGW; 5518 /* 5519 * Search for the next unresolved 5520 * multirt route. 5521 */ 5522 first_mp = copy_mp; 5523 copy_mp = NULL; 5524 mp = first_mp; 5525 if (mp->b_datap->db_type == M_CTL) { 5526 mp = mp->b_cont; 5527 } 5528 ASSERT(sire != NULL); 5529 dst = save_dst; 5530 /* 5531 * re-enter the loop 5532 */ 5533 multirt_resolve_next = B_TRUE; 5534 continue; 5535 } 5536 5537 if (sire != NULL) 5538 ire_refrele(sire); 5539 ill_refrele(dst_ill); 5540 ipif_refrele(src_ipif); 5541 return; 5542 5543 case EINPROGRESS: 5544 /* 5545 * mp was consumed - presumably queued. 5546 * No need for ire, presumably resolution is 5547 * in progress, and ire will be added when the 5548 * address is resolved. 5549 */ 5550 if (ip6_asp_table_held) { 5551 ip6_asp_table_refrele(); 5552 ip6_asp_table_held = B_FALSE; 5553 } 5554 ASSERT(ire->ire_nce == NULL); 5555 ire_delete(ire); 5556 ire_refrele(save_ire); 5557 /* 5558 * Check if another multirt route 5559 * must be resolved. 5560 */ 5561 ire = NULL; 5562 if (copy_mp != NULL) { 5563 /* 5564 * If we find a resolver, we ignore any 5565 * trailing top priority IRE_CACHE in 5566 * further loops. The reason is the 5567 * same as for noresolver. 5568 */ 5569 multirt_flags &= ~MULTIRT_CACHEGW; 5570 /* 5571 * Search for the next unresolved 5572 * multirt route. 5573 */ 5574 first_mp = copy_mp; 5575 copy_mp = NULL; 5576 mp = first_mp; 5577 if (mp->b_datap->db_type == M_CTL) { 5578 mp = mp->b_cont; 5579 } 5580 ASSERT(sire != NULL); 5581 dst = save_dst; 5582 /* 5583 * re-enter the loop 5584 */ 5585 multirt_resolve_next = B_TRUE; 5586 continue; 5587 } 5588 if (sire != NULL) 5589 ire_refrele(sire); 5590 ill_refrele(dst_ill); 5591 ipif_refrele(src_ipif); 5592 return; 5593 default: 5594 /* Some transient error */ 5595 ASSERT(ire->ire_nce == NULL); 5596 ire_refrele(save_ire); 5597 break; 5598 } 5599 break; 5600 default: 5601 break; 5602 } 5603 if (ip6_asp_table_held) { 5604 ip6_asp_table_refrele(); 5605 ip6_asp_table_held = B_FALSE; 5606 } 5607 } while (multirt_resolve_next); 5608 5609 err_ret: 5610 ip1dbg(("ip_newroute_v6: dropped\n")); 5611 if (src_ipif != NULL) 5612 ipif_refrele(src_ipif); 5613 if (dst_ill != NULL) { 5614 need_rele = B_TRUE; 5615 ill = dst_ill; 5616 } 5617 if (ill != NULL) { 5618 if (mp->b_prev != NULL) { 5619 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 5620 } else { 5621 BUMP_MIB(ill->ill_ip6_mib, ipv6OutDiscards); 5622 } 5623 5624 if (need_rele) 5625 ill_refrele(ill); 5626 } else { 5627 if (mp->b_prev != NULL) { 5628 BUMP_MIB(&ip6_mib, ipv6InDiscards); 5629 } else { 5630 BUMP_MIB(&ip6_mib, ipv6OutDiscards); 5631 } 5632 } 5633 /* Did this packet originate externally? */ 5634 if (mp->b_prev) { 5635 mp->b_next = NULL; 5636 mp->b_prev = NULL; 5637 } 5638 if (copy_mp != NULL) { 5639 MULTIRT_DEBUG_UNTAG(copy_mp); 5640 freemsg(copy_mp); 5641 } 5642 MULTIRT_DEBUG_UNTAG(first_mp); 5643 freemsg(first_mp); 5644 if (ire != NULL) 5645 ire_refrele(ire); 5646 if (sire != NULL) 5647 ire_refrele(sire); 5648 return; 5649 5650 icmp_err_ret: 5651 if (ip6_asp_table_held) 5652 ip6_asp_table_refrele(); 5653 if (src_ipif != NULL) 5654 ipif_refrele(src_ipif); 5655 if (dst_ill != NULL) { 5656 need_rele = B_TRUE; 5657 ill = dst_ill; 5658 } 5659 ip1dbg(("ip_newroute_v6: no route\n")); 5660 if (sire != NULL) 5661 ire_refrele(sire); 5662 /* 5663 * We need to set sire to NULL to avoid double freeing if we 5664 * ever goto err_ret from below. 5665 */ 5666 sire = NULL; 5667 ip6h = (ip6_t *)mp->b_rptr; 5668 /* Skip ip6i_t header if present */ 5669 if (ip6h->ip6_nxt == IPPROTO_RAW) { 5670 /* Make sure the IPv6 header is present */ 5671 if ((mp->b_wptr - (uchar_t *)ip6h) < 5672 sizeof (ip6i_t) + IPV6_HDR_LEN) { 5673 if (!pullupmsg(mp, sizeof (ip6i_t) + IPV6_HDR_LEN)) { 5674 ip1dbg(("ip_newroute_v6: pullupmsg failed\n")); 5675 goto err_ret; 5676 } 5677 } 5678 mp->b_rptr += sizeof (ip6i_t); 5679 ip6h = (ip6_t *)mp->b_rptr; 5680 } 5681 /* Did this packet originate externally? */ 5682 if (mp->b_prev) { 5683 if (ill != NULL) { 5684 BUMP_MIB(ill->ill_ip6_mib, ipv6InNoRoutes); 5685 } else { 5686 BUMP_MIB(&ip6_mib, ipv6InNoRoutes); 5687 } 5688 mp->b_next = NULL; 5689 mp->b_prev = NULL; 5690 q = WR(q); 5691 } else { 5692 if (ill != NULL) { 5693 BUMP_MIB(ill->ill_ip6_mib, ipv6OutNoRoutes); 5694 } else { 5695 BUMP_MIB(&ip6_mib, ipv6OutNoRoutes); 5696 } 5697 if (ip_hdr_complete_v6(ip6h, zoneid)) { 5698 /* Failed */ 5699 if (copy_mp != NULL) { 5700 MULTIRT_DEBUG_UNTAG(copy_mp); 5701 freemsg(copy_mp); 5702 } 5703 MULTIRT_DEBUG_UNTAG(first_mp); 5704 freemsg(first_mp); 5705 if (ire != NULL) 5706 ire_refrele(ire); 5707 if (need_rele) 5708 ill_refrele(ill); 5709 return; 5710 } 5711 } 5712 5713 if (need_rele) 5714 ill_refrele(ill); 5715 5716 /* 5717 * At this point we will have ire only if RTF_BLACKHOLE 5718 * or RTF_REJECT flags are set on the IRE. It will not 5719 * generate ICMP6_DST_UNREACH_NOROUTE if RTF_BLACKHOLE is set. 5720 */ 5721 if (ire != NULL) { 5722 if (ire->ire_flags & RTF_BLACKHOLE) { 5723 ire_refrele(ire); 5724 if (copy_mp != NULL) { 5725 MULTIRT_DEBUG_UNTAG(copy_mp); 5726 freemsg(copy_mp); 5727 } 5728 MULTIRT_DEBUG_UNTAG(first_mp); 5729 freemsg(first_mp); 5730 return; 5731 } 5732 ire_refrele(ire); 5733 } 5734 if (ip_debug > 3) { 5735 /* ip2dbg */ 5736 pr_addr_dbg("ip_newroute_v6: no route to %s\n", 5737 AF_INET6, v6dstp); 5738 } 5739 icmp_unreachable_v6(WR(q), first_mp, ICMP6_DST_UNREACH_NOROUTE, 5740 B_FALSE, B_FALSE, zoneid); 5741 } 5742 5743 /* 5744 * ip_newroute_ipif_v6 is called by ip_wput_v6 and ip_wput_ipsec_out_v6 whenever 5745 * we need to send out a packet to a destination address for which we do not 5746 * have specific routing information. It is only used for multicast packets. 5747 * 5748 * If unspec_src we allow creating an IRE with source address zero. 5749 * ire_send_v6() will delete it after the packet is sent. 5750 */ 5751 void 5752 ip_newroute_ipif_v6(queue_t *q, mblk_t *mp, ipif_t *ipif, 5753 in6_addr_t v6dst, int unspec_src, zoneid_t zoneid) 5754 { 5755 ire_t *ire = NULL; 5756 ipif_t *src_ipif = NULL; 5757 int err = 0; 5758 ill_t *dst_ill = NULL; 5759 ire_t *save_ire; 5760 ushort_t ire_marks = 0; 5761 ipsec_out_t *io; 5762 ill_t *attach_ill = NULL; 5763 ill_t *ill; 5764 ip6_t *ip6h; 5765 mblk_t *first_mp; 5766 boolean_t ip6i_present; 5767 ire_t *fire = NULL; 5768 mblk_t *copy_mp = NULL; 5769 boolean_t multirt_resolve_next; 5770 in6_addr_t *v6dstp = &v6dst; 5771 boolean_t ipif_held = B_FALSE; 5772 boolean_t ill_held = B_FALSE; 5773 boolean_t ip6_asp_table_held = B_FALSE; 5774 5775 /* 5776 * This loop is run only once in most cases. 5777 * We loop to resolve further routes only when the destination 5778 * can be reached through multiple RTF_MULTIRT-flagged ires. 5779 */ 5780 do { 5781 multirt_resolve_next = B_FALSE; 5782 if (dst_ill != NULL) { 5783 ill_refrele(dst_ill); 5784 dst_ill = NULL; 5785 } 5786 5787 if (src_ipif != NULL) { 5788 ipif_refrele(src_ipif); 5789 src_ipif = NULL; 5790 } 5791 ASSERT(ipif != NULL); 5792 ill = ipif->ipif_ill; 5793 5794 ASSERT(!IN6_IS_ADDR_V4MAPPED(v6dstp)); 5795 if (ip_debug > 2) { 5796 /* ip1dbg */ 5797 pr_addr_dbg("ip_newroute_ipif_v6: v6dst %s\n", 5798 AF_INET6, v6dstp); 5799 printf("ip_newroute_ipif_v6: if %s, v6 %d\n", 5800 ill->ill_name, ipif->ipif_isv6); 5801 } 5802 5803 first_mp = mp; 5804 if (mp->b_datap->db_type == M_CTL) { 5805 mp = mp->b_cont; 5806 io = (ipsec_out_t *)first_mp->b_rptr; 5807 ASSERT(io->ipsec_out_type == IPSEC_OUT); 5808 } else { 5809 io = NULL; 5810 } 5811 5812 /* 5813 * If the interface is a pt-pt interface we look for an 5814 * IRE_IF_RESOLVER or IRE_IF_NORESOLVER that matches both the 5815 * local_address and the pt-pt destination address. 5816 * Otherwise we just match the local address. 5817 */ 5818 if (!(ill->ill_flags & ILLF_MULTICAST)) { 5819 goto err_ret; 5820 } 5821 /* 5822 * If this end point is bound to IPIF_NOFAILOVER, set bnf_ill 5823 * and bind_to_nofailover B_TRUE. We can't use conn to determine 5824 * as it could be NULL. 5825 * 5826 * This information can appear either in an ip6i_t or an 5827 * IPSEC_OUT message. 5828 */ 5829 ip6h = (ip6_t *)mp->b_rptr; 5830 ip6i_present = (ip6h->ip6_nxt == IPPROTO_RAW); 5831 if (ip6i_present || (io != NULL && io->ipsec_out_attach_if)) { 5832 if (!ip6i_present || 5833 ((ip6i_t *)ip6h)->ip6i_flags & IP6I_ATTACH_IF) { 5834 attach_ill = ip_grab_attach_ill(ill, first_mp, 5835 (ip6i_present ? 5836 ((ip6i_t *)ip6h)->ip6i_ifindex : 5837 io->ipsec_out_ill_index), B_TRUE); 5838 /* Failure case frees things for us. */ 5839 if (attach_ill == NULL) 5840 return; 5841 5842 /* 5843 * Check if we need an ire that will not be 5844 * looked up by anybody else i.e. HIDDEN. 5845 */ 5846 if (ill_is_probeonly(attach_ill)) 5847 ire_marks = IRE_MARK_HIDDEN; 5848 } 5849 } 5850 5851 /* 5852 * We check if an IRE_OFFSUBNET for the addr that goes through 5853 * ipif exists. We need it to determine if the RTF_SETSRC and/or 5854 * RTF_MULTIRT flags must be honored. 5855 */ 5856 fire = ipif_lookup_multi_ire_v6(ipif, v6dstp); 5857 ip2dbg(("ip_newroute_ipif_v6: " 5858 "ipif_lookup_multi_ire_v6(" 5859 "ipif %p, dst %08x) = fire %p\n", 5860 (void *)ipif, ntohl(V4_PART_OF_V6((*v6dstp))), 5861 (void *)fire)); 5862 5863 /* 5864 * If the application specified the ill (ifindex), we still 5865 * load spread. Only if the packets needs to go out specifically 5866 * on a given ill e.g. binding to IPIF_NOFAILOVER address or 5867 * IPV6_BOUND_PIF, or there is a parent ire entry that specified 5868 * multirouting, then we don't try to use a different ill for 5869 * load spreading. 5870 */ 5871 if (attach_ill == NULL) { 5872 /* 5873 * If the interface belongs to an interface group, 5874 * make sure the next possible interface in the group 5875 * is used. This encourages load spreading among peers 5876 * in an interface group. 5877 * 5878 * Note: While we pick a dst_ill we are really only 5879 * interested in the ill for load spreading. The source 5880 * ipif is determined by source address selection below. 5881 */ 5882 if ((fire != NULL) && (fire->ire_flags & RTF_MULTIRT)) { 5883 dst_ill = ipif->ipif_ill; 5884 /* For uniformity do a refhold */ 5885 ill_refhold(dst_ill); 5886 } else { 5887 /* refheld by ip_newroute_get_dst_ill_v6 */ 5888 dst_ill = 5889 ip_newroute_get_dst_ill_v6(ipif->ipif_ill); 5890 } 5891 if (dst_ill == NULL) { 5892 if (ip_debug > 2) { 5893 pr_addr_dbg("ip_newroute_ipif_v6: " 5894 "no dst ill for dst %s\n", 5895 AF_INET6, v6dstp); 5896 } 5897 goto err_ret; 5898 } 5899 } else { 5900 dst_ill = ipif->ipif_ill; 5901 /* 5902 * ip_wput_v6 passes the right ipif for IPIF_NOFAILOVER 5903 * and IPV6_BOUND_PIF case. 5904 */ 5905 ASSERT(dst_ill == attach_ill); 5906 /* attach_ill is already refheld */ 5907 } 5908 /* 5909 * Pick a source address which matches the scope of the 5910 * destination address. 5911 * For RTF_SETSRC routes, the source address is imposed by the 5912 * parent ire (fire). 5913 */ 5914 ASSERT(src_ipif == NULL); 5915 if ((fire != NULL) && (fire->ire_flags & RTF_SETSRC)) { 5916 /* 5917 * Check that the ipif matching the requested source 5918 * address still exists. 5919 */ 5920 src_ipif = 5921 ipif_lookup_addr_v6(&fire->ire_src_addr_v6, 5922 NULL, zoneid, NULL, NULL, NULL, NULL); 5923 } 5924 if (src_ipif == NULL && ip6_asp_can_lookup()) { 5925 ip6_asp_table_held = B_TRUE; 5926 src_ipif = ipif_select_source_v6(dst_ill, v6dstp, 5927 RESTRICT_TO_NONE, IPV6_PREFER_SRC_DEFAULT, zoneid); 5928 } 5929 5930 if (src_ipif == NULL) { 5931 if (!unspec_src) { 5932 if (ip_debug > 2) { 5933 /* ip1dbg */ 5934 pr_addr_dbg("ip_newroute_ipif_v6: " 5935 "no src for dst %s\n,", 5936 AF_INET6, v6dstp); 5937 printf(" through interface %s\n", 5938 dst_ill->ill_name); 5939 } 5940 goto err_ret; 5941 } 5942 src_ipif = ipif; 5943 ipif_refhold(src_ipif); 5944 } 5945 ire = ipif_to_ire_v6(ipif); 5946 if (ire == NULL) { 5947 if (ip_debug > 2) { 5948 /* ip1dbg */ 5949 pr_addr_dbg("ip_newroute_ipif_v6: v6src %s\n", 5950 AF_INET6, &ipif->ipif_v6lcl_addr); 5951 printf("ip_newroute_ipif_v6: " 5952 "if %s\n", dst_ill->ill_name); 5953 } 5954 goto err_ret; 5955 } 5956 if (ire->ire_flags & (RTF_REJECT | RTF_BLACKHOLE)) 5957 goto err_ret; 5958 5959 ASSERT(ire->ire_ipversion == IPV6_VERSION); 5960 5961 ip1dbg(("ip_newroute_ipif_v6: interface type %s (%d),", 5962 ip_nv_lookup(ire_nv_tbl, ire->ire_type), ire->ire_type)); 5963 if (ip_debug > 2) { 5964 /* ip1dbg */ 5965 pr_addr_dbg(" address %s\n", 5966 AF_INET6, &ire->ire_src_addr_v6); 5967 } 5968 save_ire = ire; 5969 ip2dbg(("ip_newroute_ipif: ire %p, ipif %p\n", 5970 (void *)ire, (void *)ipif)); 5971 5972 if ((fire != NULL) && (fire->ire_flags & RTF_MULTIRT)) { 5973 /* 5974 * an IRE_OFFSUBET was looked up 5975 * on that interface. 5976 * this ire has RTF_MULTIRT flag, 5977 * so the resolution loop 5978 * will be re-entered to resolve 5979 * additional routes on other 5980 * interfaces. For that purpose, 5981 * a copy of the packet is 5982 * made at this point. 5983 */ 5984 fire->ire_last_used_time = lbolt; 5985 copy_mp = copymsg(first_mp); 5986 if (copy_mp) { 5987 MULTIRT_DEBUG_TAG(copy_mp); 5988 } 5989 } 5990 5991 ASSERT((attach_ill == NULL) || (dst_ill == attach_ill)); 5992 switch (ire->ire_type) { 5993 case IRE_IF_NORESOLVER: { 5994 /* We have what we need to build an IRE_CACHE. */ 5995 mblk_t *dlureq_mp; 5996 5997 /* 5998 * Create a new dlureq_mp with the 5999 * IPv6 gateway address in destination address in the 6000 * DLPI hdr if the physical length is exactly 16 bytes. 6001 */ 6002 ASSERT(dst_ill->ill_isv6); 6003 if (dst_ill->ill_phys_addr_length == IPV6_ADDR_LEN) { 6004 dlureq_mp = ill_dlur_gen((uchar_t *)v6dstp, 6005 dst_ill->ill_phys_addr_length, 6006 dst_ill->ill_sap, 6007 dst_ill->ill_sap_length); 6008 } else { 6009 dlureq_mp = ill_dlur_gen(NULL, 6010 dst_ill->ill_phys_addr_length, 6011 dst_ill->ill_sap, 6012 dst_ill->ill_sap_length); 6013 } 6014 6015 if (dlureq_mp == NULL) 6016 break; 6017 /* 6018 * The newly created ire will inherit the flags of the 6019 * parent ire, if any. 6020 */ 6021 ire = ire_create_v6( 6022 v6dstp, /* dest address */ 6023 &ipv6_all_ones, /* mask */ 6024 &src_ipif->ipif_v6src_addr, /* source address */ 6025 NULL, /* gateway address */ 6026 &save_ire->ire_max_frag, 6027 NULL, /* Fast Path header */ 6028 dst_ill->ill_rq, /* recv-from queue */ 6029 dst_ill->ill_wq, /* send-to queue */ 6030 IRE_CACHE, 6031 dlureq_mp, 6032 src_ipif, 6033 NULL, 6034 (fire != NULL) ? /* Parent handle */ 6035 fire->ire_phandle : 0, 6036 save_ire->ire_ihandle, /* Interface handle */ 6037 (fire != NULL) ? 6038 (fire->ire_flags & (RTF_SETSRC | RTF_MULTIRT)) : 6039 0, 6040 &ire_uinfo_null, 6041 NULL, 6042 NULL); 6043 6044 freeb(dlureq_mp); 6045 6046 if (ire == NULL) { 6047 ire_refrele(save_ire); 6048 break; 6049 } 6050 6051 ire->ire_marks |= ire_marks; 6052 6053 err = ndp_noresolver(dst_ill, v6dstp); 6054 if (err != 0) { 6055 ire_refrele(save_ire); 6056 break; 6057 } 6058 6059 /* Prevent save_ire from getting deleted */ 6060 IRB_REFHOLD(save_ire->ire_bucket); 6061 /* Has it been removed already ? */ 6062 if (save_ire->ire_marks & IRE_MARK_CONDEMNED) { 6063 IRB_REFRELE(save_ire->ire_bucket); 6064 ire_refrele(save_ire); 6065 break; 6066 } 6067 6068 ire_add_then_send(q, ire, first_mp); 6069 if (ip6_asp_table_held) { 6070 ip6_asp_table_refrele(); 6071 ip6_asp_table_held = B_FALSE; 6072 } 6073 6074 /* Assert that it is not deleted yet. */ 6075 ASSERT(save_ire->ire_ptpn != NULL); 6076 IRB_REFRELE(save_ire->ire_bucket); 6077 ire_refrele(save_ire); 6078 if (fire != NULL) { 6079 ire_refrele(fire); 6080 fire = NULL; 6081 } 6082 6083 /* 6084 * The resolution loop is re-entered if we 6085 * actually are in a multirouting case. 6086 */ 6087 if (copy_mp != NULL) { 6088 boolean_t need_resolve = 6089 ire_multirt_need_resolve_v6(v6dstp, 6090 MBLK_GETLABEL(copy_mp)); 6091 if (!need_resolve) { 6092 MULTIRT_DEBUG_UNTAG(copy_mp); 6093 freemsg(copy_mp); 6094 copy_mp = NULL; 6095 } else { 6096 /* 6097 * ipif_lookup_group_v6() calls 6098 * ire_lookup_multi_v6() that uses 6099 * ire_ftable_lookup_v6() to find 6100 * an IRE_INTERFACE for the group. 6101 * In the multirt case, 6102 * ire_lookup_multi_v6() then invokes 6103 * ire_multirt_lookup_v6() to find 6104 * the next resolvable ire. 6105 * As a result, we obtain a new 6106 * interface, derived from the 6107 * next ire. 6108 */ 6109 if (ipif_held) { 6110 ipif_refrele(ipif); 6111 ipif_held = B_FALSE; 6112 } 6113 ipif = ipif_lookup_group_v6(v6dstp, 6114 zoneid); 6115 ip2dbg(("ip_newroute_ipif: " 6116 "multirt dst %08x, ipif %p\n", 6117 ntohl(V4_PART_OF_V6((*v6dstp))), 6118 (void *)ipif)); 6119 if (ipif != NULL) { 6120 ipif_held = B_TRUE; 6121 mp = copy_mp; 6122 copy_mp = NULL; 6123 multirt_resolve_next = 6124 B_TRUE; 6125 continue; 6126 } else { 6127 freemsg(copy_mp); 6128 } 6129 } 6130 } 6131 ill_refrele(dst_ill); 6132 if (ipif_held) { 6133 ipif_refrele(ipif); 6134 ipif_held = B_FALSE; 6135 } 6136 if (src_ipif != NULL) 6137 ipif_refrele(src_ipif); 6138 return; 6139 } 6140 case IRE_IF_RESOLVER: { 6141 6142 ASSERT(dst_ill->ill_isv6); 6143 6144 /* 6145 * We obtain a partial IRE_CACHE which we will pass 6146 * along with the resolver query. When the response 6147 * comes back it will be there ready for us to add. 6148 */ 6149 /* 6150 * the newly created ire will inherit the flags of the 6151 * parent ire, if any. 6152 */ 6153 ire = ire_create_v6( 6154 v6dstp, /* dest address */ 6155 &ipv6_all_ones, /* mask */ 6156 &src_ipif->ipif_v6src_addr, /* source address */ 6157 NULL, /* gateway address */ 6158 &save_ire->ire_max_frag, 6159 NULL, /* Fast Path header */ 6160 dst_ill->ill_rq, /* recv-from queue */ 6161 dst_ill->ill_wq, /* send-to queue */ 6162 IRE_CACHE, 6163 NULL, 6164 src_ipif, 6165 NULL, 6166 (fire != NULL) ? /* Parent handle */ 6167 fire->ire_phandle : 0, 6168 save_ire->ire_ihandle, /* Interface handle */ 6169 (fire != NULL) ? 6170 (fire->ire_flags & (RTF_SETSRC | RTF_MULTIRT)) : 6171 0, 6172 &ire_uinfo_null, 6173 NULL, 6174 NULL); 6175 6176 if (ire == NULL) { 6177 ire_refrele(save_ire); 6178 break; 6179 } 6180 6181 ire->ire_marks |= ire_marks; 6182 6183 /* Resolve and add ire to the ctable */ 6184 err = ndp_resolver(dst_ill, v6dstp, first_mp, zoneid); 6185 switch (err) { 6186 case 0: 6187 /* Prevent save_ire from getting deleted */ 6188 IRB_REFHOLD(save_ire->ire_bucket); 6189 /* Has it been removed already ? */ 6190 if (save_ire->ire_marks & IRE_MARK_CONDEMNED) { 6191 IRB_REFRELE(save_ire->ire_bucket); 6192 ire_refrele(save_ire); 6193 break; 6194 } 6195 /* 6196 * We have a resolved cache entry, 6197 * add in the IRE. 6198 */ 6199 ire_add_then_send(q, ire, first_mp); 6200 if (ip6_asp_table_held) { 6201 ip6_asp_table_refrele(); 6202 ip6_asp_table_held = B_FALSE; 6203 } 6204 6205 /* Assert that it is not deleted yet. */ 6206 ASSERT(save_ire->ire_ptpn != NULL); 6207 IRB_REFRELE(save_ire->ire_bucket); 6208 ire_refrele(save_ire); 6209 if (fire != NULL) { 6210 ire_refrele(fire); 6211 fire = NULL; 6212 } 6213 6214 /* 6215 * The resolution loop is re-entered if we 6216 * actually are in a multirouting case. 6217 */ 6218 if (copy_mp != NULL) { 6219 boolean_t need_resolve = 6220 ire_multirt_need_resolve_v6(v6dstp, 6221 MBLK_GETLABEL(copy_mp)); 6222 if (!need_resolve) { 6223 MULTIRT_DEBUG_UNTAG(copy_mp); 6224 freemsg(copy_mp); 6225 copy_mp = NULL; 6226 } else { 6227 /* 6228 * ipif_lookup_group_v6() calls 6229 * ire_lookup_multi_v6() that 6230 * uses ire_ftable_lookup_v6() 6231 * to find an IRE_INTERFACE for 6232 * the group. In the multirt 6233 * case, ire_lookup_multi_v6() 6234 * then invokes 6235 * ire_multirt_lookup_v6() to 6236 * find the next resolvable ire. 6237 * As a result, we obtain a new 6238 * interface, derived from the 6239 * next ire. 6240 */ 6241 if (ipif_held) { 6242 ipif_refrele(ipif); 6243 ipif_held = B_FALSE; 6244 } 6245 ipif = ipif_lookup_group_v6( 6246 v6dstp, zoneid); 6247 ip2dbg(("ip_newroute_ipif: " 6248 "multirt dst %08x, " 6249 "ipif %p\n", 6250 ntohl(V4_PART_OF_V6( 6251 (*v6dstp))), 6252 (void *)ipif)); 6253 if (ipif != NULL) { 6254 ipif_held = B_TRUE; 6255 mp = copy_mp; 6256 copy_mp = NULL; 6257 multirt_resolve_next = 6258 B_TRUE; 6259 continue; 6260 } else { 6261 freemsg(copy_mp); 6262 } 6263 } 6264 } 6265 ill_refrele(dst_ill); 6266 if (ipif_held) { 6267 ipif_refrele(ipif); 6268 ipif_held = B_FALSE; 6269 } 6270 if (src_ipif != NULL) 6271 ipif_refrele(src_ipif); 6272 return; 6273 6274 case EINPROGRESS: 6275 /* 6276 * mp was consumed - presumably queued. 6277 * No need for ire, presumably resolution is 6278 * in progress, and ire will be added when the 6279 * address is resolved. 6280 */ 6281 if (ip6_asp_table_held) { 6282 ip6_asp_table_refrele(); 6283 ip6_asp_table_held = B_FALSE; 6284 } 6285 ire_delete(ire); 6286 ire_refrele(save_ire); 6287 if (fire != NULL) { 6288 ire_refrele(fire); 6289 fire = NULL; 6290 } 6291 6292 /* 6293 * The resolution loop is re-entered if we 6294 * actually are in a multirouting case. 6295 */ 6296 if (copy_mp != NULL) { 6297 boolean_t need_resolve = 6298 ire_multirt_need_resolve_v6(v6dstp, 6299 MBLK_GETLABEL(copy_mp)); 6300 if (!need_resolve) { 6301 MULTIRT_DEBUG_UNTAG(copy_mp); 6302 freemsg(copy_mp); 6303 copy_mp = NULL; 6304 } else { 6305 /* 6306 * ipif_lookup_group_v6() calls 6307 * ire_lookup_multi_v6() that 6308 * uses ire_ftable_lookup_v6() 6309 * to find an IRE_INTERFACE for 6310 * the group. In the multirt 6311 * case, ire_lookup_multi_v6() 6312 * then invokes 6313 * ire_multirt_lookup_v6() to 6314 * find the next resolvable ire. 6315 * As a result, we obtain a new 6316 * interface, derived from the 6317 * next ire. 6318 */ 6319 if (ipif_held) { 6320 ipif_refrele(ipif); 6321 ipif_held = B_FALSE; 6322 } 6323 ipif = ipif_lookup_group_v6( 6324 v6dstp, zoneid); 6325 ip2dbg(("ip_newroute_ipif: " 6326 "multirt dst %08x, " 6327 "ipif %p\n", 6328 ntohl(V4_PART_OF_V6( 6329 (*v6dstp))), 6330 (void *)ipif)); 6331 if (ipif != NULL) { 6332 ipif_held = B_TRUE; 6333 mp = copy_mp; 6334 copy_mp = NULL; 6335 multirt_resolve_next = 6336 B_TRUE; 6337 continue; 6338 } else { 6339 freemsg(copy_mp); 6340 } 6341 } 6342 } 6343 ill_refrele(dst_ill); 6344 if (ipif_held) { 6345 ipif_refrele(ipif); 6346 ipif_held = B_FALSE; 6347 } 6348 if (src_ipif != NULL) 6349 ipif_refrele(src_ipif); 6350 return; 6351 default: 6352 /* Some transient error */ 6353 ire_refrele(save_ire); 6354 break; 6355 } 6356 break; 6357 } 6358 default: 6359 break; 6360 } 6361 if (ip6_asp_table_held) { 6362 ip6_asp_table_refrele(); 6363 ip6_asp_table_held = B_FALSE; 6364 } 6365 } while (multirt_resolve_next); 6366 6367 err_ret: 6368 if (ip6_asp_table_held) 6369 ip6_asp_table_refrele(); 6370 if (ire != NULL) 6371 ire_refrele(ire); 6372 if (fire != NULL) 6373 ire_refrele(fire); 6374 if (ipif != NULL && ipif_held) 6375 ipif_refrele(ipif); 6376 if (src_ipif != NULL) 6377 ipif_refrele(src_ipif); 6378 /* Multicast - no point in trying to generate ICMP error */ 6379 ASSERT((attach_ill == NULL) || (dst_ill == attach_ill)); 6380 if (dst_ill != NULL) { 6381 ill = dst_ill; 6382 ill_held = B_TRUE; 6383 } 6384 if (mp->b_prev || mp->b_next) { 6385 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 6386 } else { 6387 BUMP_MIB(ill->ill_ip6_mib, ipv6OutDiscards); 6388 } 6389 ip1dbg(("ip_newroute_ipif_v6: dropped\n")); 6390 mp->b_next = NULL; 6391 mp->b_prev = NULL; 6392 freemsg(first_mp); 6393 if (ill_held) 6394 ill_refrele(ill); 6395 } 6396 6397 /* 6398 * Parse and process any hop-by-hop or destination options. 6399 * 6400 * Assumes that q is an ill read queue so that ICMP errors for link-local 6401 * destinations are sent out the correct interface. 6402 * 6403 * Returns -1 if there was an error and mp has been consumed. 6404 * Returns 0 if no special action is needed. 6405 * Returns 1 if the packet contained a router alert option for this node 6406 * which is verified to be "interesting/known" for our implementation. 6407 * 6408 * XXX Note: In future as more hbh or dest options are defined, 6409 * it may be better to have different routines for hbh and dest 6410 * options as opt_type fields other than IP6OPT_PAD1 and IP6OPT_PADN 6411 * may have same value in different namespaces. Or is it same namespace ?? 6412 * Current code checks for each opt_type (other than pads) if it is in 6413 * the expected nexthdr (hbh or dest) 6414 */ 6415 static int 6416 ip_process_options_v6(queue_t *q, mblk_t *mp, ip6_t *ip6h, 6417 uint8_t *optptr, uint_t optlen, uint8_t hdr_type) 6418 { 6419 uint8_t opt_type; 6420 uint_t optused; 6421 int ret = 0; 6422 mblk_t *first_mp; 6423 const char *errtype; 6424 zoneid_t zoneid; 6425 ill_t *ill = q->q_ptr; 6426 6427 first_mp = mp; 6428 if (mp->b_datap->db_type == M_CTL) { 6429 mp = mp->b_cont; 6430 } 6431 6432 while (optlen != 0) { 6433 opt_type = *optptr; 6434 if (opt_type == IP6OPT_PAD1) { 6435 optused = 1; 6436 } else { 6437 if (optlen < 2) 6438 goto bad_opt; 6439 errtype = "malformed"; 6440 if (opt_type == ip6opt_ls) { 6441 optused = 2 + optptr[1]; 6442 if (optused > optlen) 6443 goto bad_opt; 6444 } else switch (opt_type) { 6445 case IP6OPT_PADN: 6446 /* 6447 * Note:We don't verify that (N-2) pad octets 6448 * are zero as required by spec. Adhere to 6449 * "be liberal in what you accept..." part of 6450 * implementation philosophy (RFC791,RFC1122) 6451 */ 6452 optused = 2 + optptr[1]; 6453 if (optused > optlen) 6454 goto bad_opt; 6455 break; 6456 6457 case IP6OPT_JUMBO: 6458 if (hdr_type != IPPROTO_HOPOPTS) 6459 goto opt_error; 6460 goto opt_error; /* XXX Not implemented! */ 6461 6462 case IP6OPT_ROUTER_ALERT: { 6463 struct ip6_opt_router *or; 6464 6465 if (hdr_type != IPPROTO_HOPOPTS) 6466 goto opt_error; 6467 optused = 2 + optptr[1]; 6468 if (optused > optlen) 6469 goto bad_opt; 6470 or = (struct ip6_opt_router *)optptr; 6471 /* Check total length and alignment */ 6472 if (optused != sizeof (*or) || 6473 ((uintptr_t)or->ip6or_value & 0x1) != 0) 6474 goto opt_error; 6475 /* Check value */ 6476 switch (*((uint16_t *)or->ip6or_value)) { 6477 case IP6_ALERT_MLD: 6478 case IP6_ALERT_RSVP: 6479 ret = 1; 6480 } 6481 break; 6482 } 6483 case IP6OPT_HOME_ADDRESS: { 6484 /* 6485 * Minimal support for the home address option 6486 * (which is required by all IPv6 nodes). 6487 * Implement by just swapping the home address 6488 * and source address. 6489 * XXX Note: this has IPsec implications since 6490 * AH needs to take this into account. 6491 * Also, when IPsec is used we need to ensure 6492 * that this is only processed once 6493 * in the received packet (to avoid swapping 6494 * back and forth). 6495 * NOTE:This option processing is considered 6496 * to be unsafe and prone to a denial of 6497 * service attack. 6498 * The current processing is not safe even with 6499 * IPsec secured IP packets. Since the home 6500 * address option processing requirement still 6501 * is in the IETF draft and in the process of 6502 * being redefined for its usage, it has been 6503 * decided to turn off the option by default. 6504 * If this section of code needs to be executed, 6505 * ndd variable ip6_ignore_home_address_opt 6506 * should be set to 0 at the user's own risk. 6507 */ 6508 struct ip6_opt_home_address *oh; 6509 in6_addr_t tmp; 6510 6511 if (ipv6_ignore_home_address_opt) 6512 goto opt_error; 6513 6514 if (hdr_type != IPPROTO_DSTOPTS) 6515 goto opt_error; 6516 optused = 2 + optptr[1]; 6517 if (optused > optlen) 6518 goto bad_opt; 6519 6520 /* 6521 * We did this dest. opt the first time 6522 * around (i.e. before AH processing). 6523 * If we've done AH... stop now. 6524 */ 6525 if (first_mp != mp) { 6526 ipsec_in_t *ii; 6527 6528 ii = (ipsec_in_t *)first_mp->b_rptr; 6529 if (ii->ipsec_in_ah_sa != NULL) 6530 break; 6531 } 6532 6533 oh = (struct ip6_opt_home_address *)optptr; 6534 /* Check total length and alignment */ 6535 if (optused < sizeof (*oh) || 6536 ((uintptr_t)oh->ip6oh_addr & 0x7) != 0) 6537 goto opt_error; 6538 /* Swap ip6_src and the home address */ 6539 tmp = ip6h->ip6_src; 6540 /* XXX Note: only 8 byte alignment option */ 6541 ip6h->ip6_src = *(in6_addr_t *)oh->ip6oh_addr; 6542 *(in6_addr_t *)oh->ip6oh_addr = tmp; 6543 break; 6544 } 6545 6546 case IP6OPT_TUNNEL_LIMIT: 6547 if (hdr_type != IPPROTO_DSTOPTS) { 6548 goto opt_error; 6549 } 6550 optused = 2 + optptr[1]; 6551 if (optused > optlen) { 6552 goto bad_opt; 6553 } 6554 if (optused != 3) { 6555 goto opt_error; 6556 } 6557 break; 6558 6559 default: 6560 errtype = "unknown"; 6561 /* FALLTHROUGH */ 6562 opt_error: 6563 /* Determine which zone should send error */ 6564 zoneid = ipif_lookup_addr_zoneid_v6( 6565 &ip6h->ip6_dst, ill); 6566 switch (IP6OPT_TYPE(opt_type)) { 6567 case IP6OPT_TYPE_SKIP: 6568 optused = 2 + optptr[1]; 6569 if (optused > optlen) 6570 goto bad_opt; 6571 ip1dbg(("ip_process_options_v6: %s " 6572 "opt 0x%x skipped\n", 6573 errtype, opt_type)); 6574 break; 6575 case IP6OPT_TYPE_DISCARD: 6576 ip1dbg(("ip_process_options_v6: %s " 6577 "opt 0x%x; packet dropped\n", 6578 errtype, opt_type)); 6579 freemsg(first_mp); 6580 return (-1); 6581 case IP6OPT_TYPE_ICMP: 6582 if (zoneid == ALL_ZONES) { 6583 freemsg(first_mp); 6584 return (-1); 6585 } 6586 icmp_param_problem_v6(WR(q), first_mp, 6587 ICMP6_PARAMPROB_OPTION, 6588 (uint32_t)(optptr - 6589 (uint8_t *)ip6h), 6590 B_FALSE, B_FALSE, zoneid); 6591 return (-1); 6592 case IP6OPT_TYPE_FORCEICMP: 6593 if (zoneid == ALL_ZONES) { 6594 freemsg(first_mp); 6595 return (-1); 6596 } 6597 icmp_param_problem_v6(WR(q), first_mp, 6598 ICMP6_PARAMPROB_OPTION, 6599 (uint32_t)(optptr - 6600 (uint8_t *)ip6h), 6601 B_FALSE, B_TRUE, zoneid); 6602 return (-1); 6603 default: 6604 ASSERT(0); 6605 } 6606 } 6607 } 6608 optlen -= optused; 6609 optptr += optused; 6610 } 6611 return (ret); 6612 6613 bad_opt: 6614 /* Determine which zone should send error */ 6615 zoneid = ipif_lookup_addr_zoneid_v6(&ip6h->ip6_dst, ill); 6616 if (zoneid == ALL_ZONES) { 6617 freemsg(first_mp); 6618 } else { 6619 icmp_param_problem_v6(WR(q), first_mp, ICMP6_PARAMPROB_OPTION, 6620 (uint32_t)(optptr - (uint8_t *)ip6h), 6621 B_FALSE, B_FALSE, zoneid); 6622 } 6623 return (-1); 6624 } 6625 6626 /* 6627 * Process a routing header that is not yet empty. 6628 * Only handles type 0 routing headers. 6629 */ 6630 static void 6631 ip_process_rthdr(queue_t *q, mblk_t *mp, ip6_t *ip6h, ip6_rthdr_t *rth, 6632 ill_t *ill, uint_t flags, mblk_t *hada_mp, mblk_t *dl_mp) 6633 { 6634 ip6_rthdr0_t *rthdr; 6635 uint_t ehdrlen; 6636 uint_t numaddr; 6637 in6_addr_t *addrptr; 6638 in6_addr_t tmp; 6639 6640 ASSERT(rth->ip6r_segleft != 0); 6641 6642 if (!ipv6_forward_src_routed) { 6643 /* XXX Check for source routed out same interface? */ 6644 BUMP_MIB(ill->ill_ip6_mib, ipv6ForwProhibits); 6645 BUMP_MIB(ill->ill_ip6_mib, ipv6InAddrErrors); 6646 freemsg(hada_mp); 6647 freemsg(mp); 6648 return; 6649 } 6650 6651 if (rth->ip6r_type != 0) { 6652 if (hada_mp != NULL) 6653 goto hada_drop; 6654 /* Sent by forwarding path, and router is global zone */ 6655 icmp_param_problem_v6(WR(q), mp, 6656 ICMP6_PARAMPROB_HEADER, 6657 (uint32_t)((uchar_t *)&rth->ip6r_type - (uchar_t *)ip6h), 6658 B_FALSE, B_FALSE, GLOBAL_ZONEID); 6659 return; 6660 } 6661 rthdr = (ip6_rthdr0_t *)rth; 6662 ehdrlen = 8 * (rthdr->ip6r0_len + 1); 6663 ASSERT(mp->b_rptr + ehdrlen <= mp->b_wptr); 6664 addrptr = (in6_addr_t *)((char *)rthdr + sizeof (*rthdr)); 6665 /* rthdr->ip6r0_len is twice the number of addresses in the header */ 6666 if (rthdr->ip6r0_len & 0x1) { 6667 /* An odd length is impossible */ 6668 if (hada_mp != NULL) 6669 goto hada_drop; 6670 /* Sent by forwarding path, and router is global zone */ 6671 icmp_param_problem_v6(WR(q), mp, 6672 ICMP6_PARAMPROB_HEADER, 6673 (uint32_t)((uchar_t *)&rthdr->ip6r0_len - (uchar_t *)ip6h), 6674 B_FALSE, B_FALSE, GLOBAL_ZONEID); 6675 return; 6676 } 6677 numaddr = rthdr->ip6r0_len / 2; 6678 if (rthdr->ip6r0_segleft > numaddr) { 6679 /* segleft exceeds number of addresses in routing header */ 6680 if (hada_mp != NULL) 6681 goto hada_drop; 6682 /* Sent by forwarding path, and router is global zone */ 6683 icmp_param_problem_v6(WR(q), mp, 6684 ICMP6_PARAMPROB_HEADER, 6685 (uint32_t)((uchar_t *)&rthdr->ip6r0_segleft - 6686 (uchar_t *)ip6h), 6687 B_FALSE, B_FALSE, GLOBAL_ZONEID); 6688 return; 6689 } 6690 addrptr += (numaddr - rthdr->ip6r0_segleft); 6691 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst) || 6692 IN6_IS_ADDR_MULTICAST(addrptr)) { 6693 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 6694 freemsg(hada_mp); 6695 freemsg(mp); 6696 return; 6697 } 6698 /* Swap */ 6699 tmp = *addrptr; 6700 *addrptr = ip6h->ip6_dst; 6701 ip6h->ip6_dst = tmp; 6702 rthdr->ip6r0_segleft--; 6703 /* Don't allow any mapped addresses - ip_wput_v6 can't handle them */ 6704 if (IN6_IS_ADDR_V4MAPPED(&ip6h->ip6_dst)) { 6705 if (hada_mp != NULL) 6706 goto hada_drop; 6707 /* Sent by forwarding path, and router is global zone */ 6708 icmp_unreachable_v6(WR(q), mp, ICMP6_DST_UNREACH_NOROUTE, 6709 B_FALSE, B_FALSE, GLOBAL_ZONEID); 6710 return; 6711 } 6712 if (ip_check_v6_mblk(mp, ill) == 0) { 6713 ip6h = (ip6_t *)mp->b_rptr; 6714 ip_rput_data_v6(q, ill, mp, ip6h, flags, hada_mp, dl_mp); 6715 } 6716 return; 6717 hada_drop: 6718 /* IPsec kstats: bean counter? */ 6719 freemsg(hada_mp); 6720 freemsg(mp); 6721 } 6722 6723 /* 6724 * Read side put procedure for IPv6 module. 6725 */ 6726 void 6727 ip_rput_v6(queue_t *q, mblk_t *mp) 6728 { 6729 mblk_t *first_mp; 6730 mblk_t *hada_mp = NULL; 6731 ip6_t *ip6h; 6732 boolean_t ll_multicast = B_FALSE; 6733 boolean_t mctl_present = B_FALSE; 6734 ill_t *ill; 6735 struct iocblk *iocp; 6736 uint_t flags = 0; 6737 mblk_t *dl_mp; 6738 6739 ill = (ill_t *)q->q_ptr; 6740 if (ill->ill_state_flags & ILL_CONDEMNED) { 6741 union DL_primitives *dl; 6742 6743 dl = (union DL_primitives *)mp->b_rptr; 6744 /* 6745 * Things are opening or closing - only accept DLPI 6746 * ack messages. If the stream is closing and ip_wsrv 6747 * has completed, ip_close is out of the qwait, but has 6748 * not yet completed qprocsoff. Don't proceed any further 6749 * because the ill has been cleaned up and things hanging 6750 * off the ill have been freed. 6751 */ 6752 if ((mp->b_datap->db_type != M_PCPROTO) || 6753 (dl->dl_primitive == DL_UNITDATA_IND)) { 6754 inet_freemsg(mp); 6755 return; 6756 } 6757 } 6758 6759 dl_mp = NULL; 6760 switch (mp->b_datap->db_type) { 6761 case M_DATA: { 6762 int hlen; 6763 uchar_t *ucp; 6764 struct ether_header *eh; 6765 dl_unitdata_ind_t *dui; 6766 6767 /* 6768 * This is a work-around for CR 6451644, a bug in Nemo. It 6769 * should be removed when that problem is fixed. 6770 */ 6771 if (ill->ill_mactype == DL_ETHER && 6772 (hlen = MBLKHEAD(mp)) >= sizeof (struct ether_header) && 6773 (ucp = mp->b_rptr)[-1] == (IP6_DL_SAP & 0xFF) && 6774 ucp[-2] == (IP6_DL_SAP >> 8)) { 6775 if (hlen >= sizeof (struct ether_vlan_header) && 6776 ucp[-5] == 0 && ucp[-6] == 0x81) 6777 ucp -= sizeof (struct ether_vlan_header); 6778 else 6779 ucp -= sizeof (struct ether_header); 6780 /* 6781 * If it's a group address, then fabricate a 6782 * DL_UNITDATA_IND message. 6783 */ 6784 if ((ll_multicast = (ucp[0] & 1)) != 0 && 6785 (dl_mp = allocb(DL_UNITDATA_IND_SIZE + 16, 6786 BPRI_HI)) != NULL) { 6787 eh = (struct ether_header *)ucp; 6788 dui = (dl_unitdata_ind_t *)dl_mp->b_rptr; 6789 DB_TYPE(dl_mp) = M_PROTO; 6790 dl_mp->b_wptr = (uchar_t *)(dui + 1) + 16; 6791 dui->dl_primitive = DL_UNITDATA_IND; 6792 dui->dl_dest_addr_length = 8; 6793 dui->dl_dest_addr_offset = DL_UNITDATA_IND_SIZE; 6794 dui->dl_src_addr_length = 8; 6795 dui->dl_src_addr_offset = DL_UNITDATA_IND_SIZE + 6796 8; 6797 dui->dl_group_address = 1; 6798 ucp = (uchar_t *)(dui + 1); 6799 if (ill->ill_sap_length > 0) 6800 ucp += ill->ill_sap_length; 6801 bcopy(&eh->ether_dhost, ucp, 6); 6802 bcopy(&eh->ether_shost, ucp + 8, 6); 6803 ucp = (uchar_t *)(dui + 1); 6804 if (ill->ill_sap_length < 0) 6805 ucp += 8 + ill->ill_sap_length; 6806 bcopy(&eh->ether_type, ucp, 2); 6807 bcopy(&eh->ether_type, ucp + 8, 2); 6808 } 6809 } 6810 break; 6811 } 6812 6813 case M_PROTO: 6814 case M_PCPROTO: 6815 if (((dl_unitdata_ind_t *)mp->b_rptr)->dl_primitive != 6816 DL_UNITDATA_IND) { 6817 /* Go handle anything other than data elsewhere. */ 6818 ip_rput_dlpi(q, mp); 6819 return; 6820 } 6821 #define dlur ((dl_unitdata_ind_t *)mp->b_rptr) 6822 ll_multicast = dlur->dl_group_address; 6823 #undef dlur 6824 /* Save the DLPI header. */ 6825 dl_mp = mp; 6826 mp = mp->b_cont; 6827 dl_mp->b_cont = NULL; 6828 break; 6829 case M_BREAK: 6830 panic("ip_rput_v6: got an M_BREAK"); 6831 /*NOTREACHED*/ 6832 case M_IOCACK: 6833 iocp = (struct iocblk *)mp->b_rptr; 6834 switch (iocp->ioc_cmd) { 6835 case DL_IOC_HDR_INFO: 6836 ill = (ill_t *)q->q_ptr; 6837 ill_fastpath_ack(ill, mp); 6838 return; 6839 case SIOCSTUNPARAM: 6840 case SIOCGTUNPARAM: 6841 case OSIOCSTUNPARAM: 6842 case OSIOCGTUNPARAM: 6843 /* Go through qwriter */ 6844 break; 6845 default: 6846 putnext(q, mp); 6847 return; 6848 } 6849 /* FALLTHRU */ 6850 case M_ERROR: 6851 case M_HANGUP: 6852 mutex_enter(&ill->ill_lock); 6853 if (ill->ill_state_flags & ILL_CONDEMNED) { 6854 mutex_exit(&ill->ill_lock); 6855 freemsg(mp); 6856 return; 6857 } 6858 ill_refhold_locked(ill); 6859 mutex_exit(&ill->ill_lock); 6860 qwriter_ip(NULL, ill, q, mp, ip_rput_other, CUR_OP, B_FALSE); 6861 return; 6862 case M_CTL: 6863 if ((MBLKL(mp) > sizeof (int)) && 6864 ((da_ipsec_t *)mp->b_rptr)->da_type == IPHADA_M_CTL) { 6865 ASSERT(MBLKL(mp) >= sizeof (da_ipsec_t)); 6866 mctl_present = B_TRUE; 6867 break; 6868 } 6869 putnext(q, mp); 6870 return; 6871 case M_IOCNAK: 6872 iocp = (struct iocblk *)mp->b_rptr; 6873 switch (iocp->ioc_cmd) { 6874 case DL_IOC_HDR_INFO: 6875 case SIOCSTUNPARAM: 6876 case SIOCGTUNPARAM: 6877 case OSIOCSTUNPARAM: 6878 case OSIOCGTUNPARAM: 6879 mutex_enter(&ill->ill_lock); 6880 if (ill->ill_state_flags & ILL_CONDEMNED) { 6881 mutex_exit(&ill->ill_lock); 6882 freemsg(mp); 6883 return; 6884 } 6885 ill_refhold_locked(ill); 6886 mutex_exit(&ill->ill_lock); 6887 qwriter_ip(NULL, ill, q, mp, ip_rput_other, CUR_OP, 6888 B_FALSE); 6889 return; 6890 default: 6891 break; 6892 } 6893 /* FALLTHRU */ 6894 default: 6895 putnext(q, mp); 6896 return; 6897 } 6898 6899 BUMP_MIB(ill->ill_ip6_mib, ipv6InReceives); 6900 /* 6901 * if db_ref > 1 then copymsg and free original. Packet may be 6902 * changed and do not want other entity who has a reference to this 6903 * message to trip over the changes. This is a blind change because 6904 * trying to catch all places that might change packet is too 6905 * difficult (since it may be a module above this one). 6906 */ 6907 if (mp->b_datap->db_ref > 1) { 6908 mblk_t *mp1; 6909 6910 mp1 = copymsg(mp); 6911 freemsg(mp); 6912 if (mp1 == NULL) { 6913 first_mp = NULL; 6914 goto discard; 6915 } 6916 mp = mp1; 6917 } 6918 first_mp = mp; 6919 if (mctl_present) { 6920 hada_mp = first_mp; 6921 mp = first_mp->b_cont; 6922 } 6923 6924 if (ip_check_v6_mblk(mp, ill) == -1) 6925 return; 6926 6927 ip6h = (ip6_t *)mp->b_rptr; 6928 6929 DTRACE_PROBE4(ip6__physical__in__start, 6930 ill_t *, ill, ill_t *, NULL, 6931 ip6_t *, ip6h, mblk_t *, first_mp); 6932 6933 FW_HOOKS6(ip6_physical_in_event, ipv6firewall_physical_in, 6934 ill, NULL, ip6h, first_mp, mp); 6935 6936 DTRACE_PROBE1(ip6__physical__in__end, mblk_t *, first_mp); 6937 6938 if (first_mp == NULL) 6939 return; 6940 6941 if ((ip6h->ip6_vcf & IPV6_VERS_AND_FLOW_MASK) == 6942 IPV6_DEFAULT_VERS_AND_FLOW) { 6943 /* 6944 * It may be a bit too expensive to do this mapped address 6945 * check here, but in the interest of robustness, it seems 6946 * like the correct place. 6947 * TODO: Avoid this check for e.g. connected TCP sockets 6948 */ 6949 if (IN6_IS_ADDR_V4MAPPED(&ip6h->ip6_src)) { 6950 ip1dbg(("ip_rput_v6: pkt with mapped src addr\n")); 6951 goto discard; 6952 } 6953 6954 if (IN6_IS_ADDR_LOOPBACK(&ip6h->ip6_src)) { 6955 ip1dbg(("ip_rput_v6: pkt with loopback src")); 6956 goto discard; 6957 } else if (IN6_IS_ADDR_LOOPBACK(&ip6h->ip6_dst)) { 6958 ip1dbg(("ip_rput_v6: pkt with loopback dst")); 6959 goto discard; 6960 } 6961 6962 flags |= (ll_multicast ? IP6_IN_LLMCAST : 0); 6963 ip_rput_data_v6(q, ill, mp, ip6h, flags, hada_mp, dl_mp); 6964 } else { 6965 BUMP_MIB(ill->ill_ip6_mib, ipv6InIPv4); 6966 goto discard; 6967 } 6968 freemsg(dl_mp); 6969 return; 6970 6971 discard: 6972 if (dl_mp != NULL) 6973 freeb(dl_mp); 6974 freemsg(first_mp); 6975 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 6976 } 6977 6978 /* 6979 * Walk through the IPv6 packet in mp and see if there's an AH header 6980 * in it. See if the AH header needs to get done before other headers in 6981 * the packet. (Worker function for ipsec_early_ah_v6().) 6982 */ 6983 #define IPSEC_HDR_DONT_PROCESS 0 6984 #define IPSEC_HDR_PROCESS 1 6985 #define IPSEC_MEMORY_ERROR 2 6986 static int 6987 ipsec_needs_processing_v6(mblk_t *mp, uint8_t *nexthdr) 6988 { 6989 uint_t length; 6990 uint_t ehdrlen; 6991 uint8_t *whereptr; 6992 uint8_t *endptr; 6993 uint8_t *nexthdrp; 6994 ip6_dest_t *desthdr; 6995 ip6_rthdr_t *rthdr; 6996 ip6_t *ip6h; 6997 6998 /* 6999 * For now just pullup everything. In general, the less pullups, 7000 * the better, but there's so much squirrelling through anyway, 7001 * it's just easier this way. 7002 */ 7003 if (!pullupmsg(mp, -1)) { 7004 return (IPSEC_MEMORY_ERROR); 7005 } 7006 7007 ip6h = (ip6_t *)mp->b_rptr; 7008 length = IPV6_HDR_LEN; 7009 whereptr = ((uint8_t *)&ip6h[1]); /* point to next hdr */ 7010 endptr = mp->b_wptr; 7011 7012 /* 7013 * We can't just use the argument nexthdr in the place 7014 * of nexthdrp becaue we don't dereference nexthdrp 7015 * till we confirm whether it is a valid address. 7016 */ 7017 nexthdrp = &ip6h->ip6_nxt; 7018 while (whereptr < endptr) { 7019 /* Is there enough left for len + nexthdr? */ 7020 if (whereptr + MIN_EHDR_LEN > endptr) 7021 return (IPSEC_MEMORY_ERROR); 7022 7023 switch (*nexthdrp) { 7024 case IPPROTO_HOPOPTS: 7025 case IPPROTO_DSTOPTS: 7026 /* Assumes the headers are identical for hbh and dst */ 7027 desthdr = (ip6_dest_t *)whereptr; 7028 ehdrlen = 8 * (desthdr->ip6d_len + 1); 7029 if ((uchar_t *)desthdr + ehdrlen > endptr) 7030 return (IPSEC_MEMORY_ERROR); 7031 /* 7032 * Return DONT_PROCESS because of potential Mobile IPv6 7033 * cruft for destination options. 7034 */ 7035 if (*nexthdrp == IPPROTO_DSTOPTS) 7036 return (IPSEC_HDR_DONT_PROCESS); 7037 nexthdrp = &desthdr->ip6d_nxt; 7038 break; 7039 case IPPROTO_ROUTING: 7040 rthdr = (ip6_rthdr_t *)whereptr; 7041 7042 /* 7043 * If there's more hops left on the routing header, 7044 * return now with DON'T PROCESS. 7045 */ 7046 if (rthdr->ip6r_segleft > 0) 7047 return (IPSEC_HDR_DONT_PROCESS); 7048 7049 ehdrlen = 8 * (rthdr->ip6r_len + 1); 7050 if ((uchar_t *)rthdr + ehdrlen > endptr) 7051 return (IPSEC_MEMORY_ERROR); 7052 nexthdrp = &rthdr->ip6r_nxt; 7053 break; 7054 case IPPROTO_FRAGMENT: 7055 /* Wait for reassembly */ 7056 return (IPSEC_HDR_DONT_PROCESS); 7057 case IPPROTO_AH: 7058 *nexthdr = IPPROTO_AH; 7059 return (IPSEC_HDR_PROCESS); 7060 case IPPROTO_NONE: 7061 /* No next header means we're finished */ 7062 default: 7063 return (IPSEC_HDR_DONT_PROCESS); 7064 } 7065 length += ehdrlen; 7066 whereptr += ehdrlen; 7067 } 7068 panic("ipsec_needs_processing_v6"); 7069 /*NOTREACHED*/ 7070 } 7071 7072 /* 7073 * Path for AH if options are present. If this is the first time we are 7074 * sending a datagram to AH, allocate a IPSEC_IN message and prepend it. 7075 * Otherwise, just fanout. Return value answers the boolean question: 7076 * "Did I consume the mblk you sent me?" 7077 * 7078 * Sometimes AH needs to be done before other IPv6 headers for security 7079 * reasons. This function (and its ipsec_needs_processing_v6() above) 7080 * indicates if that is so, and fans out to the appropriate IPsec protocol 7081 * for the datagram passed in. 7082 */ 7083 static boolean_t 7084 ipsec_early_ah_v6(queue_t *q, mblk_t *first_mp, boolean_t mctl_present, 7085 ill_t *ill, ire_t *ire, mblk_t *hada_mp, zoneid_t zoneid) 7086 { 7087 mblk_t *mp; 7088 uint8_t nexthdr; 7089 ipsec_in_t *ii = NULL; 7090 ah_t *ah; 7091 ipsec_status_t ipsec_rc; 7092 7093 ASSERT((hada_mp == NULL) || (!mctl_present)); 7094 7095 switch (ipsec_needs_processing_v6( 7096 (mctl_present ? first_mp->b_cont : first_mp), &nexthdr)) { 7097 case IPSEC_MEMORY_ERROR: 7098 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 7099 freemsg(hada_mp); 7100 freemsg(first_mp); 7101 return (B_TRUE); 7102 case IPSEC_HDR_DONT_PROCESS: 7103 return (B_FALSE); 7104 } 7105 7106 /* Default means send it to AH! */ 7107 ASSERT(nexthdr == IPPROTO_AH); 7108 if (!mctl_present) { 7109 mp = first_mp; 7110 if ((first_mp = ipsec_in_alloc(B_FALSE)) == NULL) { 7111 ip1dbg(("ipsec_early_ah_v6: IPSEC_IN " 7112 "allocation failure.\n")); 7113 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 7114 freemsg(hada_mp); 7115 freemsg(mp); 7116 return (B_TRUE); 7117 } 7118 /* 7119 * Store the ill_index so that when we come back 7120 * from IPSEC we ride on the same queue. 7121 */ 7122 ii = (ipsec_in_t *)first_mp->b_rptr; 7123 ii->ipsec_in_ill_index = ill->ill_phyint->phyint_ifindex; 7124 ii->ipsec_in_rill_index = ii->ipsec_in_ill_index; 7125 first_mp->b_cont = mp; 7126 } 7127 /* 7128 * Cache hardware acceleration info. 7129 */ 7130 if (hada_mp != NULL) { 7131 ASSERT(ii != NULL); 7132 IPSECHW_DEBUG(IPSECHW_PKT, ("ipsec_early_ah_v6: " 7133 "caching data attr.\n")); 7134 ii->ipsec_in_accelerated = B_TRUE; 7135 ii->ipsec_in_da = hada_mp; 7136 } 7137 7138 if (!ipsec_loaded()) { 7139 ip_proto_not_sup(q, first_mp, IP_FF_SEND_ICMP, zoneid); 7140 return (B_TRUE); 7141 } 7142 7143 ah = ipsec_inbound_ah_sa(first_mp); 7144 if (ah == NULL) 7145 return (B_TRUE); 7146 ASSERT(ii->ipsec_in_ah_sa != NULL); 7147 ASSERT(ii->ipsec_in_ah_sa->ipsa_input_func != NULL); 7148 ipsec_rc = ii->ipsec_in_ah_sa->ipsa_input_func(first_mp, ah); 7149 7150 switch (ipsec_rc) { 7151 case IPSEC_STATUS_SUCCESS: 7152 /* we're done with IPsec processing, send it up */ 7153 ip_fanout_proto_again(first_mp, ill, ill, ire); 7154 break; 7155 case IPSEC_STATUS_FAILED: 7156 BUMP_MIB(&ip6_mib, ipv6InDiscards); 7157 break; 7158 case IPSEC_STATUS_PENDING: 7159 /* no action needed */ 7160 break; 7161 } 7162 return (B_TRUE); 7163 } 7164 7165 /* 7166 * Validate the IPv6 mblk for alignment. 7167 */ 7168 int 7169 ip_check_v6_mblk(mblk_t *mp, ill_t *ill) 7170 { 7171 int pkt_len, ip6_len; 7172 ip6_t *ip6h = (ip6_t *)mp->b_rptr; 7173 7174 /* check for alignment and full IPv6 header */ 7175 if (!OK_32PTR((uchar_t *)ip6h) || 7176 (mp->b_wptr - (uchar_t *)ip6h) < IPV6_HDR_LEN) { 7177 if (!pullupmsg(mp, IPV6_HDR_LEN)) { 7178 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 7179 ip1dbg(("ip_rput_v6: pullupmsg failed\n")); 7180 freemsg(mp); 7181 return (-1); 7182 } 7183 ip6h = (ip6_t *)mp->b_rptr; 7184 } 7185 7186 ASSERT(OK_32PTR((uchar_t *)ip6h) && 7187 (mp->b_wptr - (uchar_t *)ip6h) >= IPV6_HDR_LEN); 7188 7189 if (mp->b_cont == NULL) 7190 pkt_len = mp->b_wptr - mp->b_rptr; 7191 else 7192 pkt_len = msgdsize(mp); 7193 ip6_len = ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN; 7194 7195 /* 7196 * Check for bogus (too short packet) and packet which 7197 * was padded by the link layer. 7198 */ 7199 if (ip6_len != pkt_len) { 7200 ssize_t diff; 7201 7202 if (ip6_len > pkt_len) { 7203 ip1dbg(("ip_rput_data_v6: packet too short %d %d\n", 7204 ip6_len, pkt_len)); 7205 BUMP_MIB(ill->ill_ip6_mib, ipv6InTruncatedPkts); 7206 freemsg(mp); 7207 return (-1); 7208 } 7209 diff = (ssize_t)(pkt_len - ip6_len); 7210 7211 if (!adjmsg(mp, -diff)) { 7212 ip1dbg(("ip_rput_data_v6: adjmsg failed\n")); 7213 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 7214 freemsg(mp); 7215 return (-1); 7216 } 7217 } 7218 return (0); 7219 } 7220 7221 /* 7222 * ip_rput_data_v6 -- received IPv6 packets in M_DATA messages show up here. 7223 * ip_rput_v6 has already verified alignment, the min length, the version, 7224 * and db_ref = 1. 7225 * 7226 * The ill passed in (the arg named inill) is the ill that the packet 7227 * actually arrived on. We need to remember this when saving the 7228 * input interface index into potential IPV6_PKTINFO data in 7229 * ip_add_info_v6(). 7230 * 7231 * This routine doesn't free dl_mp; that's the caller's responsibility on 7232 * return. (Note that the callers are complex enough that there's no tail 7233 * recursion here anyway.) 7234 */ 7235 void 7236 ip_rput_data_v6(queue_t *q, ill_t *inill, mblk_t *mp, ip6_t *ip6h, 7237 uint_t flags, mblk_t *hada_mp, mblk_t *dl_mp) 7238 { 7239 ire_t *ire = NULL; 7240 queue_t *rq; 7241 ill_t *ill = inill; 7242 ill_t *outill; 7243 ipif_t *ipif; 7244 uint8_t *whereptr; 7245 uint8_t nexthdr; 7246 uint16_t remlen; 7247 uint_t prev_nexthdr_offset; 7248 uint_t used; 7249 size_t pkt_len; 7250 uint16_t ip6_len; 7251 uint_t hdr_len; 7252 boolean_t mctl_present; 7253 mblk_t *first_mp; 7254 mblk_t *first_mp1; 7255 boolean_t no_forward; 7256 ip6_hbh_t *hbhhdr; 7257 boolean_t ll_multicast = (flags & IP6_IN_LLMCAST); 7258 conn_t *connp; 7259 ilm_t *ilm; 7260 uint32_t ports; 7261 uint_t ipif_id = 0; 7262 zoneid_t zoneid = GLOBAL_ZONEID; 7263 uint16_t hck_flags, reass_hck_flags; 7264 uint32_t reass_sum; 7265 boolean_t cksum_err; 7266 mblk_t *mp1; 7267 7268 EXTRACT_PKT_MP(mp, first_mp, mctl_present); 7269 7270 if (hada_mp != NULL) { 7271 /* 7272 * It's an IPsec accelerated packet. 7273 * Keep a pointer to the data attributes around until 7274 * we allocate the ipsecinfo structure. 7275 */ 7276 IPSECHW_DEBUG(IPSECHW_PKT, 7277 ("ip_rput_data_v6: inbound HW accelerated IPsec pkt\n")); 7278 hada_mp->b_cont = NULL; 7279 /* 7280 * Since it is accelerated, it came directly from 7281 * the ill. 7282 */ 7283 ASSERT(mctl_present == B_FALSE); 7284 ASSERT(mp->b_datap->db_type != M_CTL); 7285 } 7286 7287 ip6h = (ip6_t *)mp->b_rptr; 7288 ip6_len = ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN; 7289 pkt_len = ip6_len; 7290 7291 if (ILL_HCKSUM_CAPABLE(ill) && !mctl_present && dohwcksum) 7292 hck_flags = DB_CKSUMFLAGS(mp); 7293 else 7294 hck_flags = 0; 7295 7296 /* Clear checksum flags in case we need to forward */ 7297 DB_CKSUMFLAGS(mp) = 0; 7298 reass_sum = reass_hck_flags = 0; 7299 7300 nexthdr = ip6h->ip6_nxt; 7301 7302 prev_nexthdr_offset = (uint_t)((uchar_t *)&ip6h->ip6_nxt - 7303 (uchar_t *)ip6h); 7304 whereptr = (uint8_t *)&ip6h[1]; 7305 remlen = pkt_len - IPV6_HDR_LEN; /* Track how much is left */ 7306 7307 /* Process hop by hop header options */ 7308 if (nexthdr == IPPROTO_HOPOPTS) { 7309 uint_t ehdrlen; 7310 uint8_t *optptr; 7311 7312 if (remlen < MIN_EHDR_LEN) 7313 goto pkt_too_short; 7314 if (mp->b_cont != NULL && 7315 whereptr + MIN_EHDR_LEN > mp->b_wptr) { 7316 if (!pullupmsg(mp, IPV6_HDR_LEN + MIN_EHDR_LEN)) { 7317 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 7318 freemsg(hada_mp); 7319 freemsg(first_mp); 7320 return; 7321 } 7322 ip6h = (ip6_t *)mp->b_rptr; 7323 whereptr = (uint8_t *)ip6h + pkt_len - remlen; 7324 } 7325 hbhhdr = (ip6_hbh_t *)whereptr; 7326 nexthdr = hbhhdr->ip6h_nxt; 7327 prev_nexthdr_offset = (uint_t)(whereptr - (uint8_t *)ip6h); 7328 ehdrlen = 8 * (hbhhdr->ip6h_len + 1); 7329 7330 if (remlen < ehdrlen) 7331 goto pkt_too_short; 7332 if (mp->b_cont != NULL && 7333 whereptr + ehdrlen > mp->b_wptr) { 7334 if (!pullupmsg(mp, IPV6_HDR_LEN + ehdrlen)) { 7335 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 7336 freemsg(hada_mp); 7337 freemsg(first_mp); 7338 return; 7339 } 7340 ip6h = (ip6_t *)mp->b_rptr; 7341 whereptr = (uint8_t *)ip6h + pkt_len - remlen; 7342 hbhhdr = (ip6_hbh_t *)whereptr; 7343 } 7344 7345 optptr = whereptr + 2; 7346 whereptr += ehdrlen; 7347 remlen -= ehdrlen; 7348 switch (ip_process_options_v6(q, first_mp, ip6h, optptr, 7349 ehdrlen - 2, IPPROTO_HOPOPTS)) { 7350 case -1: 7351 /* 7352 * Packet has been consumed and any 7353 * needed ICMP messages sent. 7354 */ 7355 BUMP_MIB(ill->ill_ip6_mib, ipv6InHdrErrors); 7356 freemsg(hada_mp); 7357 return; 7358 case 0: 7359 /* no action needed */ 7360 break; 7361 case 1: 7362 /* Known router alert */ 7363 goto ipv6forus; 7364 } 7365 } 7366 7367 /* 7368 * Attach any necessary label information to this packet. 7369 */ 7370 if (is_system_labeled() && !tsol_get_pkt_label(mp, IPV6_VERSION)) { 7371 if (ip6opt_ls != 0) 7372 ip0dbg(("tsol_get_pkt_label v6 failed\n")); 7373 BUMP_MIB(ill->ill_ip6_mib, ipv6InHdrErrors); 7374 freemsg(hada_mp); 7375 freemsg(first_mp); 7376 return; 7377 } 7378 7379 /* 7380 * On incoming v6 multicast packets we will bypass the ire table, 7381 * and assume that the read queue corresponds to the targetted 7382 * interface. 7383 * 7384 * The effect of this is the same as the IPv4 original code, but is 7385 * much cleaner I think. See ip_rput for how that was done. 7386 */ 7387 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst)) { 7388 BUMP_MIB(ill->ill_ip6_mib, ipv6InMcastPkts); 7389 /* 7390 * XXX TODO Give to mrouted to for multicast forwarding. 7391 */ 7392 ILM_WALKER_HOLD(ill); 7393 ilm = ilm_lookup_ill_v6(ill, &ip6h->ip6_dst, ALL_ZONES); 7394 ILM_WALKER_RELE(ill); 7395 if (ilm == NULL) { 7396 if (ip_debug > 3) { 7397 /* ip2dbg */ 7398 pr_addr_dbg("ip_rput_data_v6: got mcast packet" 7399 " which is not for us: %s\n", AF_INET6, 7400 &ip6h->ip6_dst); 7401 } 7402 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 7403 freemsg(hada_mp); 7404 freemsg(first_mp); 7405 return; 7406 } 7407 if (ip_debug > 3) { 7408 /* ip2dbg */ 7409 pr_addr_dbg("ip_rput_data_v6: multicast for us: %s\n", 7410 AF_INET6, &ip6h->ip6_dst); 7411 } 7412 rq = ill->ill_rq; 7413 zoneid = GLOBAL_ZONEID; 7414 goto ipv6forus; 7415 } 7416 7417 ipif = ill->ill_ipif; 7418 7419 /* 7420 * If a packet was received on an interface that is a 6to4 tunnel, 7421 * incoming IPv6 packets, with a 6to4 addressed IPv6 destination, must 7422 * be checked to have a 6to4 prefix (2002:V4ADDR::/48) that is equal to 7423 * the 6to4 prefix of the address configured on the receiving interface. 7424 * Otherwise, the packet was delivered to this interface in error and 7425 * the packet must be dropped. 7426 */ 7427 if ((ill->ill_is_6to4tun) && IN6_IS_ADDR_6TO4(&ip6h->ip6_dst)) { 7428 7429 if (!IN6_ARE_6TO4_PREFIX_EQUAL(&ipif->ipif_v6lcl_addr, 7430 &ip6h->ip6_dst)) { 7431 if (ip_debug > 2) { 7432 /* ip1dbg */ 7433 pr_addr_dbg("ip_rput_data_v6: received 6to4 " 7434 "addressed packet which is not for us: " 7435 "%s\n", AF_INET6, &ip6h->ip6_dst); 7436 } 7437 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 7438 freemsg(first_mp); 7439 return; 7440 } 7441 } 7442 7443 /* 7444 * Find an ire that matches destination. For link-local addresses 7445 * we have to match the ill. 7446 * TBD for site local addresses. 7447 */ 7448 if (IN6_IS_ADDR_LINKLOCAL(&ip6h->ip6_dst)) { 7449 ire = ire_ctable_lookup_v6(&ip6h->ip6_dst, NULL, 7450 IRE_CACHE|IRE_LOCAL, ill->ill_ipif, ALL_ZONES, NULL, 7451 MATCH_IRE_TYPE | MATCH_IRE_ILL_GROUP); 7452 } else { 7453 ire = ire_cache_lookup_v6(&ip6h->ip6_dst, ALL_ZONES, 7454 MBLK_GETLABEL(mp)); 7455 } 7456 if (ire == NULL) { 7457 /* 7458 * No matching IRE found. Mark this packet as having 7459 * originated externally. 7460 */ 7461 if (!(ill->ill_flags & ILLF_ROUTER) || ll_multicast) { 7462 BUMP_MIB(ill->ill_ip6_mib, ipv6ForwProhibits); 7463 if (!(ill->ill_flags & ILLF_ROUTER)) 7464 BUMP_MIB(ill->ill_ip6_mib, ipv6InAddrErrors); 7465 freemsg(hada_mp); 7466 freemsg(first_mp); 7467 return; 7468 } 7469 if (ip6h->ip6_hops <= 1) { 7470 if (hada_mp != NULL) 7471 goto hada_drop; 7472 /* Sent by forwarding path, and router is global zone */ 7473 icmp_time_exceeded_v6(WR(q), first_mp, 7474 ICMP6_TIME_EXCEED_TRANSIT, ll_multicast, B_FALSE, 7475 GLOBAL_ZONEID); 7476 return; 7477 } 7478 /* 7479 * Per RFC 3513 section 2.5.2, we must not forward packets with 7480 * an unspecified source address. 7481 */ 7482 if (IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src)) { 7483 BUMP_MIB(ill->ill_ip6_mib, ipv6ForwProhibits); 7484 freemsg(hada_mp); 7485 freemsg(first_mp); 7486 return; 7487 } 7488 mp->b_prev = (mblk_t *)(uintptr_t) 7489 ill->ill_phyint->phyint_ifindex; 7490 ip_newroute_v6(q, mp, &ip6h->ip6_dst, &ip6h->ip6_src, 7491 IN6_IS_ADDR_LINKLOCAL(&ip6h->ip6_dst) ? ill : NULL, 7492 ALL_ZONES); 7493 return; 7494 } 7495 ipif_id = ire->ire_ipif->ipif_seqid; 7496 /* we have a matching IRE */ 7497 if (ire->ire_stq != NULL) { 7498 ill_group_t *ill_group; 7499 ill_group_t *ire_group; 7500 7501 /* 7502 * To be quicker, we may wish not to chase pointers 7503 * (ire->ire_ipif->ipif_ill...) and instead store the 7504 * forwarding policy in the ire. An unfortunate side- 7505 * effect of this would be requiring an ire flush whenever 7506 * the ILLF_ROUTER flag changes. For now, chase pointers 7507 * once and store in the boolean no_forward. 7508 * 7509 * This appears twice to keep it out of the non-forwarding, 7510 * yes-it's-for-us-on-the-right-interface case. 7511 */ 7512 no_forward = ((ill->ill_flags & 7513 ire->ire_ipif->ipif_ill->ill_flags & ILLF_ROUTER) == 0); 7514 7515 7516 ASSERT(first_mp == mp); 7517 /* 7518 * This ire has a send-to queue - forward the packet. 7519 */ 7520 if (no_forward || ll_multicast || (hada_mp != NULL)) { 7521 freemsg(hada_mp); 7522 BUMP_MIB(ill->ill_ip6_mib, ipv6ForwProhibits); 7523 if (no_forward) 7524 BUMP_MIB(ill->ill_ip6_mib, ipv6InAddrErrors); 7525 freemsg(mp); 7526 ire_refrele(ire); 7527 return; 7528 } 7529 if (ip6h->ip6_hops <= 1) { 7530 ip1dbg(("ip_rput_data_v6: hop limit expired.\n")); 7531 /* Sent by forwarding path, and router is global zone */ 7532 icmp_time_exceeded_v6(WR(q), mp, 7533 ICMP6_TIME_EXCEED_TRANSIT, ll_multicast, B_FALSE, 7534 GLOBAL_ZONEID); 7535 ire_refrele(ire); 7536 return; 7537 } 7538 /* 7539 * Per RFC 3513 section 2.5.2, we must not forward packets with 7540 * an unspecified source address. 7541 */ 7542 if (IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src)) { 7543 BUMP_MIB(ill->ill_ip6_mib, ipv6ForwProhibits); 7544 freemsg(mp); 7545 ire_refrele(ire); 7546 return; 7547 } 7548 7549 if (is_system_labeled()) { 7550 mblk_t *mp1; 7551 7552 if ((mp1 = tsol_ip_forward(ire, mp)) == NULL) { 7553 BUMP_MIB(ill->ill_ip6_mib, ipv6ForwProhibits); 7554 freemsg(mp); 7555 ire_refrele(ire); 7556 return; 7557 } 7558 /* Size may have changed */ 7559 mp = mp1; 7560 ip6h = (ip6_t *)mp->b_rptr; 7561 pkt_len = msgdsize(mp); 7562 } 7563 7564 if (pkt_len > ire->ire_max_frag) { 7565 BUMP_MIB(ill->ill_ip6_mib, ipv6InTooBigErrors); 7566 /* Sent by forwarding path, and router is global zone */ 7567 icmp_pkt2big_v6(WR(q), mp, ire->ire_max_frag, 7568 ll_multicast, B_TRUE, GLOBAL_ZONEID); 7569 ire_refrele(ire); 7570 return; 7571 } 7572 7573 /* 7574 * Check to see if we're forwarding the packet to a 7575 * different link from which it came. If so, check the 7576 * source and destination addresses since routers must not 7577 * forward any packets with link-local source or 7578 * destination addresses to other links. Otherwise (if 7579 * we're forwarding onto the same link), conditionally send 7580 * a redirect message. 7581 */ 7582 ill_group = ill->ill_group; 7583 ire_group = ((ill_t *)(ire->ire_rfq)->q_ptr)->ill_group; 7584 if (ire->ire_rfq != q && (ill_group == NULL || 7585 ill_group != ire_group)) { 7586 if (IN6_IS_ADDR_LINKLOCAL(&ip6h->ip6_dst) || 7587 IN6_IS_ADDR_LINKLOCAL(&ip6h->ip6_src)) { 7588 BUMP_MIB(ill->ill_ip6_mib, ipv6InAddrErrors); 7589 freemsg(mp); 7590 ire_refrele(ire); 7591 return; 7592 } 7593 /* TBD add site-local check at site boundary? */ 7594 } else if (ipv6_send_redirects) { 7595 in6_addr_t *v6targ; 7596 in6_addr_t gw_addr_v6; 7597 ire_t *src_ire_v6 = NULL; 7598 7599 /* 7600 * Don't send a redirect when forwarding a source 7601 * routed packet. 7602 */ 7603 if (ip_source_routed_v6(ip6h, mp)) 7604 goto forward; 7605 7606 mutex_enter(&ire->ire_lock); 7607 gw_addr_v6 = ire->ire_gateway_addr_v6; 7608 mutex_exit(&ire->ire_lock); 7609 if (!IN6_IS_ADDR_UNSPECIFIED(&gw_addr_v6)) { 7610 v6targ = &gw_addr_v6; 7611 /* 7612 * We won't send redirects to a router 7613 * that doesn't have a link local 7614 * address, but will forward. 7615 */ 7616 if (!IN6_IS_ADDR_LINKLOCAL(v6targ)) { 7617 BUMP_MIB(ill->ill_ip6_mib, 7618 ipv6InAddrErrors); 7619 goto forward; 7620 } 7621 } else { 7622 v6targ = &ip6h->ip6_dst; 7623 } 7624 7625 src_ire_v6 = ire_ftable_lookup_v6(&ip6h->ip6_src, 7626 NULL, NULL, IRE_INTERFACE, ire->ire_ipif, NULL, 7627 ALL_ZONES, 0, NULL, 7628 MATCH_IRE_IPIF | MATCH_IRE_TYPE); 7629 7630 if (src_ire_v6 != NULL) { 7631 /* 7632 * The source is directly connected. 7633 */ 7634 mp1 = copymsg(mp); 7635 if (mp1 != NULL) { 7636 icmp_send_redirect_v6(WR(q), 7637 mp1, v6targ, &ip6h->ip6_dst, 7638 ill, B_FALSE); 7639 } 7640 ire_refrele(src_ire_v6); 7641 } 7642 } 7643 7644 forward: 7645 /* Hoplimit verified above */ 7646 ip6h->ip6_hops--; 7647 7648 outill = ire->ire_ipif->ipif_ill; 7649 7650 DTRACE_PROBE4(ip6__forwarding__start, 7651 ill_t *, inill, ill_t *, outill, 7652 ip6_t *, ip6h, mblk_t *, mp); 7653 7654 FW_HOOKS6(ip6_forwarding_event, ipv6firewall_forwarding, 7655 inill, outill, ip6h, mp, mp); 7656 7657 DTRACE_PROBE1(ip6__forwarding__end, mblk_t *, mp); 7658 7659 if (mp != NULL) { 7660 UPDATE_IB_PKT_COUNT(ire); 7661 ire->ire_last_used_time = lbolt; 7662 BUMP_MIB(ill->ill_ip6_mib, ipv6OutForwDatagrams); 7663 ip_xmit_v6(mp, ire, 0, NULL, B_FALSE, NULL); 7664 } 7665 IRE_REFRELE(ire); 7666 return; 7667 } 7668 rq = ire->ire_rfq; 7669 7670 /* 7671 * Need to put on correct queue for reassembly to find it. 7672 * No need to use put() since reassembly has its own locks. 7673 * Note: multicast packets and packets destined to addresses 7674 * assigned to loopback (ire_rfq is NULL) will be reassembled on 7675 * the arriving ill. 7676 */ 7677 if (rq != q) { 7678 boolean_t check_multi = B_TRUE; 7679 ill_group_t *ill_group = NULL; 7680 ill_group_t *ire_group = NULL; 7681 ill_t *ire_ill = NULL; 7682 uint_t ill_ifindex = ill->ill_usesrc_ifindex; 7683 7684 /* 7685 * To be quicker, we may wish not to chase pointers 7686 * (ire->ire_ipif->ipif_ill...) and instead store the 7687 * forwarding policy in the ire. An unfortunate side- 7688 * effect of this would be requiring an ire flush whenever 7689 * the ILLF_ROUTER flag changes. For now, chase pointers 7690 * once and store in the boolean no_forward. 7691 */ 7692 no_forward = ((ill->ill_flags & 7693 ire->ire_ipif->ipif_ill->ill_flags & ILLF_ROUTER) == 0); 7694 7695 ill_group = ill->ill_group; 7696 if (rq != NULL) { 7697 ire_ill = (ill_t *)(rq->q_ptr); 7698 ire_group = ire_ill->ill_group; 7699 } 7700 7701 /* 7702 * If it's part of the same IPMP group, or if it's a legal 7703 * address on the 'usesrc' interface, then bypass strict 7704 * checks. 7705 */ 7706 if (ill_group != NULL && ill_group == ire_group) { 7707 check_multi = B_FALSE; 7708 } else if (ill_ifindex != 0 && ire_ill != NULL && 7709 ill_ifindex == ire_ill->ill_phyint->phyint_ifindex) { 7710 check_multi = B_FALSE; 7711 } 7712 7713 ASSERT(!IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst)); 7714 if (check_multi && ipv6_strict_dst_multihoming && no_forward) { 7715 /* 7716 * This packet came in on an interface other than the 7717 * one associated with the destination address 7718 * and we are strict about matches. 7719 * 7720 * As long as the ills belong to the same group, 7721 * we don't consider them to arriving on the wrong 7722 * interface. Thus, when the switch is doing inbound 7723 * load spreading, we won't drop packets when we 7724 * are doing strict multihoming checks. 7725 */ 7726 BUMP_MIB(ill->ill_ip6_mib, ipv6ForwProhibits); 7727 freemsg(hada_mp); 7728 freemsg(first_mp); 7729 ire_refrele(ire); 7730 return; 7731 } 7732 7733 if (rq != NULL) 7734 q = rq; 7735 7736 ill = (ill_t *)q->q_ptr; 7737 ASSERT(ill); 7738 } 7739 7740 zoneid = ire->ire_zoneid; 7741 UPDATE_IB_PKT_COUNT(ire); 7742 ire->ire_last_used_time = lbolt; 7743 /* Don't use the ire after this point. */ 7744 ire_refrele(ire); 7745 ipv6forus: 7746 /* 7747 * Looks like this packet is for us one way or another. 7748 * This is where we'll process destination headers etc. 7749 */ 7750 for (; ; ) { 7751 switch (nexthdr) { 7752 case IPPROTO_TCP: { 7753 uint16_t *up; 7754 uint32_t sum; 7755 int offset; 7756 7757 hdr_len = pkt_len - remlen; 7758 7759 if (hada_mp != NULL) { 7760 ip0dbg(("tcp hada drop\n")); 7761 goto hada_drop; 7762 } 7763 7764 7765 /* TCP needs all of the TCP header */ 7766 if (remlen < TCP_MIN_HEADER_LENGTH) 7767 goto pkt_too_short; 7768 if (mp->b_cont != NULL && 7769 whereptr + TCP_MIN_HEADER_LENGTH > mp->b_wptr) { 7770 if (!pullupmsg(mp, 7771 hdr_len + TCP_MIN_HEADER_LENGTH)) { 7772 BUMP_MIB(ill->ill_ip6_mib, 7773 ipv6InDiscards); 7774 freemsg(first_mp); 7775 return; 7776 } 7777 hck_flags = 0; 7778 ip6h = (ip6_t *)mp->b_rptr; 7779 whereptr = (uint8_t *)ip6h + hdr_len; 7780 } 7781 /* 7782 * Extract the offset field from the TCP header. 7783 */ 7784 offset = ((uchar_t *)ip6h)[hdr_len + 12] >> 4; 7785 if (offset != 5) { 7786 if (offset < 5) { 7787 ip1dbg(("ip_rput_data_v6: short " 7788 "TCP data offset")); 7789 BUMP_MIB(ill->ill_ip6_mib, 7790 ipv6InDiscards); 7791 freemsg(first_mp); 7792 return; 7793 } 7794 /* 7795 * There must be TCP options. 7796 * Make sure we can grab them. 7797 */ 7798 offset <<= 2; 7799 if (remlen < offset) 7800 goto pkt_too_short; 7801 if (mp->b_cont != NULL && 7802 whereptr + offset > mp->b_wptr) { 7803 if (!pullupmsg(mp, 7804 hdr_len + offset)) { 7805 BUMP_MIB(ill->ill_ip6_mib, 7806 ipv6InDiscards); 7807 freemsg(first_mp); 7808 return; 7809 } 7810 hck_flags = 0; 7811 ip6h = (ip6_t *)mp->b_rptr; 7812 whereptr = (uint8_t *)ip6h + hdr_len; 7813 } 7814 } 7815 7816 up = (uint16_t *)&ip6h->ip6_src; 7817 /* 7818 * TCP checksum calculation. First sum up the 7819 * pseudo-header fields: 7820 * - Source IPv6 address 7821 * - Destination IPv6 address 7822 * - TCP payload length 7823 * - TCP protocol ID 7824 */ 7825 sum = htons(IPPROTO_TCP + remlen) + 7826 up[0] + up[1] + up[2] + up[3] + 7827 up[4] + up[5] + up[6] + up[7] + 7828 up[8] + up[9] + up[10] + up[11] + 7829 up[12] + up[13] + up[14] + up[15]; 7830 7831 /* Fold initial sum */ 7832 sum = (sum & 0xffff) + (sum >> 16); 7833 7834 mp1 = mp->b_cont; 7835 7836 if ((hck_flags & (HCK_FULLCKSUM|HCK_PARTIALCKSUM)) == 0) 7837 IP6_STAT(ip6_in_sw_cksum); 7838 7839 IP_CKSUM_RECV(hck_flags, sum, (uchar_t *) 7840 ((uchar_t *)mp->b_rptr + DB_CKSUMSTART(mp)), 7841 (int32_t)(whereptr - (uchar_t *)mp->b_rptr), 7842 mp, mp1, cksum_err); 7843 7844 if (cksum_err) { 7845 BUMP_MIB(&ip_mib, tcpInErrs); 7846 7847 if (hck_flags & HCK_FULLCKSUM) 7848 IP6_STAT(ip6_tcp_in_full_hw_cksum_err); 7849 else if (hck_flags & HCK_PARTIALCKSUM) 7850 IP6_STAT(ip6_tcp_in_part_hw_cksum_err); 7851 else 7852 IP6_STAT(ip6_tcp_in_sw_cksum_err); 7853 7854 freemsg(first_mp); 7855 return; 7856 } 7857 tcp_fanout: 7858 ip_fanout_tcp_v6(q, first_mp, ip6h, ill, inill, 7859 (flags|IP_FF_SEND_ICMP|IP_FF_SYN_ADDIRE| 7860 IP_FF_IP6INFO), hdr_len, mctl_present, zoneid); 7861 return; 7862 } 7863 case IPPROTO_SCTP: 7864 { 7865 sctp_hdr_t *sctph; 7866 uint32_t calcsum, pktsum; 7867 uint_t hdr_len = pkt_len - remlen; 7868 7869 /* SCTP needs all of the SCTP header */ 7870 if (remlen < sizeof (*sctph)) { 7871 goto pkt_too_short; 7872 } 7873 if (whereptr + sizeof (*sctph) > mp->b_wptr) { 7874 ASSERT(mp->b_cont != NULL); 7875 if (!pullupmsg(mp, hdr_len + sizeof (*sctph))) { 7876 BUMP_MIB(ill->ill_ip6_mib, 7877 ipv6InDiscards); 7878 freemsg(mp); 7879 return; 7880 } 7881 ip6h = (ip6_t *)mp->b_rptr; 7882 whereptr = (uint8_t *)ip6h + hdr_len; 7883 } 7884 7885 sctph = (sctp_hdr_t *)(mp->b_rptr + hdr_len); 7886 /* checksum */ 7887 pktsum = sctph->sh_chksum; 7888 sctph->sh_chksum = 0; 7889 calcsum = sctp_cksum(mp, hdr_len); 7890 if (calcsum != pktsum) { 7891 BUMP_MIB(&sctp_mib, sctpChecksumError); 7892 freemsg(mp); 7893 return; 7894 } 7895 sctph->sh_chksum = pktsum; 7896 ports = *(uint32_t *)(mp->b_rptr + hdr_len); 7897 if ((connp = sctp_fanout(&ip6h->ip6_src, &ip6h->ip6_dst, 7898 ports, ipif_id, zoneid, mp)) == NULL) { 7899 ip_fanout_sctp_raw(first_mp, ill, 7900 (ipha_t *)ip6h, B_FALSE, ports, 7901 mctl_present, 7902 (flags|IP_FF_SEND_ICMP|IP_FF_IP6INFO), 7903 B_TRUE, ipif_id, zoneid); 7904 return; 7905 } 7906 BUMP_MIB(&ip_mib, ipInDelivers); 7907 sctp_input(connp, (ipha_t *)ip6h, mp, first_mp, ill, 7908 B_FALSE, mctl_present); 7909 return; 7910 } 7911 case IPPROTO_UDP: { 7912 uint16_t *up; 7913 uint32_t sum; 7914 7915 hdr_len = pkt_len - remlen; 7916 7917 if (hada_mp != NULL) { 7918 ip0dbg(("udp hada drop\n")); 7919 goto hada_drop; 7920 } 7921 7922 /* Verify that at least the ports are present */ 7923 if (remlen < UDPH_SIZE) 7924 goto pkt_too_short; 7925 if (mp->b_cont != NULL && 7926 whereptr + UDPH_SIZE > mp->b_wptr) { 7927 if (!pullupmsg(mp, hdr_len + UDPH_SIZE)) { 7928 BUMP_MIB(ill->ill_ip6_mib, 7929 ipv6InDiscards); 7930 freemsg(first_mp); 7931 return; 7932 } 7933 hck_flags = 0; 7934 ip6h = (ip6_t *)mp->b_rptr; 7935 whereptr = (uint8_t *)ip6h + hdr_len; 7936 } 7937 7938 /* 7939 * Before going through the regular checksum 7940 * calculation, make sure the received checksum 7941 * is non-zero. RFC 2460 says, a 0x0000 checksum 7942 * in a UDP packet (within IPv6 packet) is invalid 7943 * and should be replaced by 0xffff. This makes 7944 * sense as regular checksum calculation will 7945 * pass for both the cases i.e. 0x0000 and 0xffff. 7946 * Removing one of the case makes error detection 7947 * stronger. 7948 */ 7949 7950 if (((udpha_t *)whereptr)->uha_checksum == 0) { 7951 /* 0x0000 checksum is invalid */ 7952 ip1dbg(("ip_rput_data_v6: Invalid UDP " 7953 "checksum value 0x0000\n")); 7954 BUMP_MIB(ill->ill_ip6_mib, udpInCksumErrs); 7955 freemsg(first_mp); 7956 return; 7957 } 7958 7959 up = (uint16_t *)&ip6h->ip6_src; 7960 7961 /* 7962 * UDP checksum calculation. First sum up the 7963 * pseudo-header fields: 7964 * - Source IPv6 address 7965 * - Destination IPv6 address 7966 * - UDP payload length 7967 * - UDP protocol ID 7968 */ 7969 7970 sum = htons(IPPROTO_UDP + remlen) + 7971 up[0] + up[1] + up[2] + up[3] + 7972 up[4] + up[5] + up[6] + up[7] + 7973 up[8] + up[9] + up[10] + up[11] + 7974 up[12] + up[13] + up[14] + up[15]; 7975 7976 /* Fold initial sum */ 7977 sum = (sum & 0xffff) + (sum >> 16); 7978 7979 if (reass_hck_flags != 0) { 7980 hck_flags = reass_hck_flags; 7981 7982 IP_CKSUM_RECV_REASS(hck_flags, 7983 (int32_t)(whereptr - (uchar_t *)mp->b_rptr), 7984 sum, reass_sum, cksum_err); 7985 } else { 7986 mp1 = mp->b_cont; 7987 7988 IP_CKSUM_RECV(hck_flags, sum, (uchar_t *) 7989 ((uchar_t *)mp->b_rptr + DB_CKSUMSTART(mp)), 7990 (int32_t)(whereptr - (uchar_t *)mp->b_rptr), 7991 mp, mp1, cksum_err); 7992 } 7993 7994 if ((hck_flags & (HCK_FULLCKSUM|HCK_PARTIALCKSUM)) == 0) 7995 IP6_STAT(ip6_in_sw_cksum); 7996 7997 if (cksum_err) { 7998 BUMP_MIB(ill->ill_ip6_mib, udpInCksumErrs); 7999 8000 if (hck_flags & HCK_FULLCKSUM) 8001 IP6_STAT(ip6_udp_in_full_hw_cksum_err); 8002 else if (hck_flags & HCK_PARTIALCKSUM) 8003 IP6_STAT(ip6_udp_in_part_hw_cksum_err); 8004 else 8005 IP6_STAT(ip6_udp_in_sw_cksum_err); 8006 8007 freemsg(first_mp); 8008 return; 8009 } 8010 goto udp_fanout; 8011 } 8012 case IPPROTO_ICMPV6: { 8013 uint16_t *up; 8014 uint32_t sum; 8015 uint_t hdr_len = pkt_len - remlen; 8016 8017 if (hada_mp != NULL) { 8018 ip0dbg(("icmp hada drop\n")); 8019 goto hada_drop; 8020 } 8021 8022 up = (uint16_t *)&ip6h->ip6_src; 8023 sum = htons(IPPROTO_ICMPV6 + remlen) + 8024 up[0] + up[1] + up[2] + up[3] + 8025 up[4] + up[5] + up[6] + up[7] + 8026 up[8] + up[9] + up[10] + up[11] + 8027 up[12] + up[13] + up[14] + up[15]; 8028 sum = (sum & 0xffff) + (sum >> 16); 8029 sum = IP_CSUM(mp, hdr_len, sum); 8030 if (sum != 0) { 8031 /* IPv6 ICMP checksum failed */ 8032 ip1dbg(("ip_rput_data_v6: ICMPv6 checksum " 8033 "failed %x\n", 8034 sum)); 8035 BUMP_MIB(ill->ill_icmp6_mib, ipv6IfIcmpInMsgs); 8036 BUMP_MIB(ill->ill_icmp6_mib, 8037 ipv6IfIcmpInErrors); 8038 freemsg(first_mp); 8039 return; 8040 } 8041 8042 icmp_fanout: 8043 /* Check variable for testing applications */ 8044 if (ipv6_drop_inbound_icmpv6) { 8045 freemsg(first_mp); 8046 return; 8047 } 8048 /* 8049 * Assume that there is always at least one conn for 8050 * ICMPv6 (in.ndpd) i.e. don't optimize the case 8051 * where there is no conn. 8052 */ 8053 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst)) { 8054 ASSERT(!(ill->ill_phyint->phyint_flags & 8055 PHYI_LOOPBACK)); 8056 /* 8057 * In the multicast case, applications may have 8058 * joined the group from different zones, so we 8059 * need to deliver the packet to each of them. 8060 * Loop through the multicast memberships 8061 * structures (ilm) on the receive ill and send 8062 * a copy of the packet up each matching one. 8063 */ 8064 ILM_WALKER_HOLD(ill); 8065 for (ilm = ill->ill_ilm; ilm != NULL; 8066 ilm = ilm->ilm_next) { 8067 if (ilm->ilm_flags & ILM_DELETED) 8068 continue; 8069 if (!IN6_ARE_ADDR_EQUAL( 8070 &ilm->ilm_v6addr, &ip6h->ip6_dst)) 8071 continue; 8072 if (!ipif_lookup_zoneid(ill, 8073 ilm->ilm_zoneid, IPIF_UP, NULL)) 8074 continue; 8075 8076 first_mp1 = ip_copymsg(first_mp); 8077 if (first_mp1 == NULL) 8078 continue; 8079 icmp_inbound_v6(q, first_mp1, ill, 8080 hdr_len, mctl_present, 0, 8081 ilm->ilm_zoneid, dl_mp); 8082 } 8083 ILM_WALKER_RELE(ill); 8084 } else { 8085 first_mp1 = ip_copymsg(first_mp); 8086 if (first_mp1 != NULL) 8087 icmp_inbound_v6(q, first_mp1, ill, 8088 hdr_len, mctl_present, 0, zoneid, 8089 dl_mp); 8090 } 8091 } 8092 /* FALLTHRU */ 8093 default: { 8094 /* 8095 * Handle protocols with which IPv6 is less intimate. 8096 */ 8097 uint_t proto_flags = IP_FF_RAWIP|IP_FF_IP6INFO; 8098 8099 if (hada_mp != NULL) { 8100 ip0dbg(("default hada drop\n")); 8101 goto hada_drop; 8102 } 8103 8104 /* 8105 * Enable sending ICMP for "Unknown" nexthdr 8106 * case. i.e. where we did not FALLTHRU from 8107 * IPPROTO_ICMPV6 processing case above. 8108 * If we did FALLTHRU, then the packet has already been 8109 * processed for IPPF, don't process it again in 8110 * ip_fanout_proto_v6; set IP6_NO_IPPOLICY in the 8111 * flags 8112 */ 8113 if (nexthdr != IPPROTO_ICMPV6) 8114 proto_flags |= IP_FF_SEND_ICMP; 8115 else 8116 proto_flags |= IP6_NO_IPPOLICY; 8117 8118 ip_fanout_proto_v6(q, first_mp, ip6h, ill, inill, 8119 nexthdr, prev_nexthdr_offset, (flags|proto_flags), 8120 mctl_present, zoneid); 8121 return; 8122 } 8123 8124 case IPPROTO_DSTOPTS: { 8125 uint_t ehdrlen; 8126 uint8_t *optptr; 8127 ip6_dest_t *desthdr; 8128 8129 /* Check if AH is present. */ 8130 if (ipsec_early_ah_v6(q, first_mp, mctl_present, ill, 8131 ire, hada_mp, zoneid)) { 8132 ip0dbg(("dst early hada drop\n")); 8133 return; 8134 } 8135 8136 /* 8137 * Reinitialize pointers, as ipsec_early_ah_v6() does 8138 * complete pullups. We don't have to do more pullups 8139 * as a result. 8140 */ 8141 whereptr = (uint8_t *)((uintptr_t)mp->b_rptr + 8142 (uintptr_t)(whereptr - ((uint8_t *)ip6h))); 8143 ip6h = (ip6_t *)mp->b_rptr; 8144 8145 if (remlen < MIN_EHDR_LEN) 8146 goto pkt_too_short; 8147 8148 desthdr = (ip6_dest_t *)whereptr; 8149 nexthdr = desthdr->ip6d_nxt; 8150 prev_nexthdr_offset = (uint_t)(whereptr - 8151 (uint8_t *)ip6h); 8152 ehdrlen = 8 * (desthdr->ip6d_len + 1); 8153 if (remlen < ehdrlen) 8154 goto pkt_too_short; 8155 optptr = whereptr + 2; 8156 /* 8157 * Note: XXX This code does not seem to make 8158 * distinction between Destination Options Header 8159 * being before/after Routing Header which can 8160 * happen if we are at the end of source route. 8161 * This may become significant in future. 8162 * (No real significant Destination Options are 8163 * defined/implemented yet ). 8164 */ 8165 switch (ip_process_options_v6(q, first_mp, ip6h, optptr, 8166 ehdrlen - 2, IPPROTO_DSTOPTS)) { 8167 case -1: 8168 /* 8169 * Packet has been consumed and any needed 8170 * ICMP errors sent. 8171 */ 8172 BUMP_MIB(ill->ill_ip6_mib, ipv6InHdrErrors); 8173 freemsg(hada_mp); 8174 return; 8175 case 0: 8176 /* No action needed continue */ 8177 break; 8178 case 1: 8179 /* 8180 * Unnexpected return value 8181 * (Router alert is a Hop-by-Hop option) 8182 */ 8183 #ifdef DEBUG 8184 panic("ip_rput_data_v6: router " 8185 "alert hbh opt indication in dest opt"); 8186 /*NOTREACHED*/ 8187 #else 8188 freemsg(hada_mp); 8189 freemsg(first_mp); 8190 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 8191 return; 8192 #endif 8193 } 8194 used = ehdrlen; 8195 break; 8196 } 8197 case IPPROTO_FRAGMENT: { 8198 ip6_frag_t *fraghdr; 8199 size_t no_frag_hdr_len; 8200 8201 if (hada_mp != NULL) { 8202 ip0dbg(("frag hada drop\n")); 8203 goto hada_drop; 8204 } 8205 8206 ASSERT(first_mp == mp); 8207 if (remlen < sizeof (ip6_frag_t)) 8208 goto pkt_too_short; 8209 8210 if (mp->b_cont != NULL && 8211 whereptr + sizeof (ip6_frag_t) > mp->b_wptr) { 8212 if (!pullupmsg(mp, 8213 pkt_len - remlen + sizeof (ip6_frag_t))) { 8214 BUMP_MIB(ill->ill_ip6_mib, 8215 ipv6InDiscards); 8216 freemsg(mp); 8217 return; 8218 } 8219 hck_flags = 0; 8220 ip6h = (ip6_t *)mp->b_rptr; 8221 whereptr = (uint8_t *)ip6h + pkt_len - remlen; 8222 } 8223 8224 fraghdr = (ip6_frag_t *)whereptr; 8225 used = (uint_t)sizeof (ip6_frag_t); 8226 BUMP_MIB(ill->ill_ip6_mib, ipv6ReasmReqds); 8227 8228 /* 8229 * Invoke the CGTP (multirouting) filtering module to 8230 * process the incoming packet. Packets identified as 8231 * duplicates must be discarded. Filtering is active 8232 * only if the the ip_cgtp_filter ndd variable is 8233 * non-zero. 8234 */ 8235 if (ip_cgtp_filter && (ip_cgtp_filter_ops != NULL)) { 8236 int cgtp_flt_pkt = 8237 ip_cgtp_filter_ops->cfo_filter_v6( 8238 inill->ill_rq, ip6h, fraghdr); 8239 if (cgtp_flt_pkt == CGTP_IP_PKT_DUPLICATE) { 8240 freemsg(mp); 8241 return; 8242 } 8243 } 8244 8245 /* Restore the flags */ 8246 DB_CKSUMFLAGS(mp) = hck_flags; 8247 8248 mp = ip_rput_frag_v6(q, mp, ip6h, fraghdr, 8249 remlen - used, &prev_nexthdr_offset, 8250 &reass_sum, &reass_hck_flags); 8251 if (mp == NULL) { 8252 /* Reassembly is still pending */ 8253 return; 8254 } 8255 /* The first mblk are the headers before the frag hdr */ 8256 BUMP_MIB(ill->ill_ip6_mib, ipv6ReasmOKs); 8257 8258 first_mp = mp; /* mp has most likely changed! */ 8259 no_frag_hdr_len = mp->b_wptr - mp->b_rptr; 8260 ip6h = (ip6_t *)mp->b_rptr; 8261 nexthdr = ((char *)ip6h)[prev_nexthdr_offset]; 8262 whereptr = mp->b_rptr + no_frag_hdr_len; 8263 remlen = ntohs(ip6h->ip6_plen) + 8264 (uint16_t)(IPV6_HDR_LEN - no_frag_hdr_len); 8265 pkt_len = msgdsize(mp); 8266 used = 0; 8267 break; 8268 } 8269 case IPPROTO_HOPOPTS: 8270 if (hada_mp != NULL) { 8271 ip0dbg(("hop hada drop\n")); 8272 goto hada_drop; 8273 } 8274 /* 8275 * Illegal header sequence. 8276 * (Hop-by-hop headers are processed above 8277 * and required to immediately follow IPv6 header) 8278 */ 8279 icmp_param_problem_v6(WR(q), first_mp, 8280 ICMP6_PARAMPROB_NEXTHEADER, 8281 prev_nexthdr_offset, 8282 B_FALSE, B_FALSE, zoneid); 8283 return; 8284 8285 case IPPROTO_ROUTING: { 8286 uint_t ehdrlen; 8287 ip6_rthdr_t *rthdr; 8288 8289 /* Check if AH is present. */ 8290 if (ipsec_early_ah_v6(q, first_mp, mctl_present, ill, 8291 ire, hada_mp, zoneid)) { 8292 ip0dbg(("routing hada drop\n")); 8293 return; 8294 } 8295 8296 /* 8297 * Reinitialize pointers, as ipsec_early_ah_v6() does 8298 * complete pullups. We don't have to do more pullups 8299 * as a result. 8300 */ 8301 whereptr = (uint8_t *)((uintptr_t)mp->b_rptr + 8302 (uintptr_t)(whereptr - ((uint8_t *)ip6h))); 8303 ip6h = (ip6_t *)mp->b_rptr; 8304 8305 if (remlen < MIN_EHDR_LEN) 8306 goto pkt_too_short; 8307 rthdr = (ip6_rthdr_t *)whereptr; 8308 nexthdr = rthdr->ip6r_nxt; 8309 prev_nexthdr_offset = (uint_t)(whereptr - 8310 (uint8_t *)ip6h); 8311 ehdrlen = 8 * (rthdr->ip6r_len + 1); 8312 if (remlen < ehdrlen) 8313 goto pkt_too_short; 8314 if (rthdr->ip6r_segleft != 0) { 8315 /* Not end of source route */ 8316 if (ll_multicast) { 8317 BUMP_MIB(ill->ill_ip6_mib, 8318 ipv6ForwProhibits); 8319 freemsg(hada_mp); 8320 freemsg(mp); 8321 return; 8322 } 8323 ip_process_rthdr(q, mp, ip6h, rthdr, ill, 8324 flags, hada_mp, dl_mp); 8325 return; 8326 } 8327 used = ehdrlen; 8328 break; 8329 } 8330 case IPPROTO_AH: 8331 case IPPROTO_ESP: { 8332 /* 8333 * Fast path for AH/ESP. If this is the first time 8334 * we are sending a datagram to AH/ESP, allocate 8335 * a IPSEC_IN message and prepend it. Otherwise, 8336 * just fanout. 8337 */ 8338 8339 ipsec_in_t *ii; 8340 int ipsec_rc; 8341 8342 if (!mctl_present) { 8343 ASSERT(first_mp == mp); 8344 if ((first_mp = ipsec_in_alloc(B_FALSE)) == 8345 NULL) { 8346 ip1dbg(("ip_rput_data_v6: IPSEC_IN " 8347 "allocation failure.\n")); 8348 BUMP_MIB(ill->ill_ip6_mib, 8349 ipv6InDiscards); 8350 freemsg(mp); 8351 return; 8352 } 8353 /* 8354 * Store the ill_index so that when we come back 8355 * from IPSEC we ride on the same queue. 8356 */ 8357 ii = (ipsec_in_t *)first_mp->b_rptr; 8358 ii->ipsec_in_ill_index = 8359 ill->ill_phyint->phyint_ifindex; 8360 ii->ipsec_in_rill_index = 8361 ii->ipsec_in_ill_index; 8362 first_mp->b_cont = mp; 8363 /* 8364 * Cache hardware acceleration info. 8365 */ 8366 if (hada_mp != NULL) { 8367 IPSECHW_DEBUG(IPSECHW_PKT, 8368 ("ip_rput_data_v6: " 8369 "caching data attr.\n")); 8370 ii->ipsec_in_accelerated = B_TRUE; 8371 ii->ipsec_in_da = hada_mp; 8372 hada_mp = NULL; 8373 } 8374 } else { 8375 ii = (ipsec_in_t *)first_mp->b_rptr; 8376 } 8377 8378 if (!ipsec_loaded()) { 8379 ip_proto_not_sup(q, first_mp, IP_FF_SEND_ICMP, 8380 ire->ire_zoneid); 8381 return; 8382 } 8383 8384 /* select inbound SA and have IPsec process the pkt */ 8385 if (nexthdr == IPPROTO_ESP) { 8386 esph_t *esph = ipsec_inbound_esp_sa(first_mp); 8387 if (esph == NULL) 8388 return; 8389 ASSERT(ii->ipsec_in_esp_sa != NULL); 8390 ASSERT(ii->ipsec_in_esp_sa->ipsa_input_func != 8391 NULL); 8392 ipsec_rc = ii->ipsec_in_esp_sa->ipsa_input_func( 8393 first_mp, esph); 8394 } else { 8395 ah_t *ah = ipsec_inbound_ah_sa(first_mp); 8396 if (ah == NULL) 8397 return; 8398 ASSERT(ii->ipsec_in_ah_sa != NULL); 8399 ASSERT(ii->ipsec_in_ah_sa->ipsa_input_func != 8400 NULL); 8401 ipsec_rc = ii->ipsec_in_ah_sa->ipsa_input_func( 8402 first_mp, ah); 8403 } 8404 8405 switch (ipsec_rc) { 8406 case IPSEC_STATUS_SUCCESS: 8407 break; 8408 case IPSEC_STATUS_FAILED: 8409 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 8410 /* FALLTHRU */ 8411 case IPSEC_STATUS_PENDING: 8412 return; 8413 } 8414 /* we're done with IPsec processing, send it up */ 8415 ip_fanout_proto_again(first_mp, ill, inill, ire); 8416 return; 8417 } 8418 case IPPROTO_NONE: 8419 /* All processing is done. Count as "delivered". */ 8420 freemsg(hada_mp); 8421 freemsg(first_mp); 8422 BUMP_MIB(ill->ill_ip6_mib, ipv6InDelivers); 8423 return; 8424 } 8425 whereptr += used; 8426 ASSERT(remlen >= used); 8427 remlen -= used; 8428 } 8429 /* NOTREACHED */ 8430 8431 pkt_too_short: 8432 ip1dbg(("ip_rput_data_v6: packet too short %d %lu %d\n", 8433 ip6_len, pkt_len, remlen)); 8434 BUMP_MIB(ill->ill_ip6_mib, ipv6InTruncatedPkts); 8435 freemsg(hada_mp); 8436 freemsg(first_mp); 8437 return; 8438 udp_fanout: 8439 if (mctl_present || IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst)) { 8440 connp = NULL; 8441 } else { 8442 connp = ipcl_classify_v6(mp, IPPROTO_UDP, hdr_len, zoneid); 8443 if ((connp != NULL) && (connp->conn_upq == NULL)) { 8444 CONN_DEC_REF(connp); 8445 connp = NULL; 8446 } 8447 } 8448 8449 if (connp == NULL) { 8450 uint32_t ports; 8451 8452 ports = *(uint32_t *)(mp->b_rptr + hdr_len + 8453 UDP_PORTS_OFFSET); 8454 IP6_STAT(ip6_udp_slow_path); 8455 ip_fanout_udp_v6(q, first_mp, ip6h, ports, ill, inill, 8456 (flags|IP_FF_SEND_ICMP|IP_FF_IP6INFO), mctl_present, 8457 zoneid); 8458 return; 8459 } 8460 8461 if (CONN_UDP_FLOWCTLD(connp)) { 8462 freemsg(first_mp); 8463 BUMP_MIB(ill->ill_ip6_mib, udpInOverflows); 8464 CONN_DEC_REF(connp); 8465 return; 8466 } 8467 8468 /* Initiate IPPF processing */ 8469 if (IP6_IN_IPP(flags)) { 8470 ip_process(IPP_LOCAL_IN, &mp, ill->ill_phyint->phyint_ifindex); 8471 if (mp == NULL) { 8472 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 8473 CONN_DEC_REF(connp); 8474 return; 8475 } 8476 } 8477 8478 if (connp->conn_ipv6_recvpktinfo || 8479 IN6_IS_ADDR_LINKLOCAL(&ip6h->ip6_src)) { 8480 mp = ip_add_info_v6(mp, inill, &ip6h->ip6_dst); 8481 if (mp == NULL) { 8482 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 8483 CONN_DEC_REF(connp); 8484 return; 8485 } 8486 } 8487 8488 IP6_STAT(ip6_udp_fast_path); 8489 BUMP_MIB(ill->ill_ip6_mib, ipv6InReceives); 8490 BUMP_MIB(ill->ill_ip6_mib, ipv6InDelivers); 8491 8492 /* Send it upstream */ 8493 CONN_UDP_RECV(connp, mp); 8494 8495 CONN_DEC_REF(connp); 8496 freemsg(hada_mp); 8497 return; 8498 8499 hada_drop: 8500 ip1dbg(("ip_rput_data_v6: malformed accelerated packet\n")); 8501 /* IPsec kstats: bump counter here */ 8502 freemsg(hada_mp); 8503 freemsg(first_mp); 8504 } 8505 8506 /* 8507 * Reassemble fragment. 8508 * When it returns a completed message the first mblk will only contain 8509 * the headers prior to the fragment header. 8510 * 8511 * prev_nexthdr_offset is an offset indication of where the nexthdr field is 8512 * of the preceding header. This is needed to patch the previous header's 8513 * nexthdr field when reassembly completes. 8514 */ 8515 static mblk_t * 8516 ip_rput_frag_v6(queue_t *q, mblk_t *mp, ip6_t *ip6h, 8517 ip6_frag_t *fraghdr, uint_t remlen, uint_t *prev_nexthdr_offset, 8518 uint32_t *cksum_val, uint16_t *cksum_flags) 8519 { 8520 ill_t *ill = (ill_t *)q->q_ptr; 8521 uint32_t ident = ntohl(fraghdr->ip6f_ident); 8522 uint16_t offset; 8523 boolean_t more_frags; 8524 uint8_t nexthdr = fraghdr->ip6f_nxt; 8525 in6_addr_t *v6dst_ptr; 8526 in6_addr_t *v6src_ptr; 8527 uint_t end; 8528 uint_t hdr_length; 8529 size_t count; 8530 ipf_t *ipf; 8531 ipf_t **ipfp; 8532 ipfb_t *ipfb; 8533 mblk_t *mp1; 8534 uint8_t ecn_info = 0; 8535 size_t msg_len; 8536 mblk_t *tail_mp; 8537 mblk_t *t_mp; 8538 boolean_t pruned = B_FALSE; 8539 uint32_t sum_val; 8540 uint16_t sum_flags; 8541 8542 8543 if (cksum_val != NULL) 8544 *cksum_val = 0; 8545 if (cksum_flags != NULL) 8546 *cksum_flags = 0; 8547 8548 /* 8549 * We utilize hardware computed checksum info only for UDP since 8550 * IP fragmentation is a normal occurence for the protocol. In 8551 * addition, checksum offload support for IP fragments carrying 8552 * UDP payload is commonly implemented across network adapters. 8553 */ 8554 ASSERT(ill != NULL); 8555 if (nexthdr == IPPROTO_UDP && dohwcksum && ILL_HCKSUM_CAPABLE(ill) && 8556 (DB_CKSUMFLAGS(mp) & (HCK_FULLCKSUM | HCK_PARTIALCKSUM))) { 8557 mblk_t *mp1 = mp->b_cont; 8558 int32_t len; 8559 8560 /* Record checksum information from the packet */ 8561 sum_val = (uint32_t)DB_CKSUM16(mp); 8562 sum_flags = DB_CKSUMFLAGS(mp); 8563 8564 /* fragmented payload offset from beginning of mblk */ 8565 offset = (uint16_t)((uchar_t *)&fraghdr[1] - mp->b_rptr); 8566 8567 if ((sum_flags & HCK_PARTIALCKSUM) && 8568 (mp1 == NULL || mp1->b_cont == NULL) && 8569 offset >= (uint16_t)DB_CKSUMSTART(mp) && 8570 ((len = offset - (uint16_t)DB_CKSUMSTART(mp)) & 1) == 0) { 8571 uint32_t adj; 8572 /* 8573 * Partial checksum has been calculated by hardware 8574 * and attached to the packet; in addition, any 8575 * prepended extraneous data is even byte aligned. 8576 * If any such data exists, we adjust the checksum; 8577 * this would also handle any postpended data. 8578 */ 8579 IP_ADJCKSUM_PARTIAL(mp->b_rptr + DB_CKSUMSTART(mp), 8580 mp, mp1, len, adj); 8581 8582 /* One's complement subtract extraneous checksum */ 8583 if (adj >= sum_val) 8584 sum_val = ~(adj - sum_val) & 0xFFFF; 8585 else 8586 sum_val -= adj; 8587 } 8588 } else { 8589 sum_val = 0; 8590 sum_flags = 0; 8591 } 8592 8593 /* Clear hardware checksumming flag */ 8594 DB_CKSUMFLAGS(mp) = 0; 8595 8596 /* 8597 * Note: Fragment offset in header is in 8-octet units. 8598 * Clearing least significant 3 bits not only extracts 8599 * it but also gets it in units of octets. 8600 */ 8601 offset = ntohs(fraghdr->ip6f_offlg) & ~7; 8602 more_frags = (fraghdr->ip6f_offlg & IP6F_MORE_FRAG); 8603 8604 /* 8605 * Is the more frags flag on and the payload length not a multiple 8606 * of eight? 8607 */ 8608 if (more_frags && (ntohs(ip6h->ip6_plen) & 7)) { 8609 zoneid_t zoneid; 8610 8611 BUMP_MIB(ill->ill_ip6_mib, ipv6InHdrErrors); 8612 zoneid = ipif_lookup_addr_zoneid_v6(&ip6h->ip6_dst, ill); 8613 if (zoneid == ALL_ZONES) { 8614 freemsg(mp); 8615 return (NULL); 8616 } 8617 icmp_param_problem_v6(WR(q), mp, ICMP6_PARAMPROB_HEADER, 8618 (uint32_t)((char *)&ip6h->ip6_plen - 8619 (char *)ip6h), B_FALSE, B_FALSE, zoneid); 8620 return (NULL); 8621 } 8622 8623 v6src_ptr = &ip6h->ip6_src; 8624 v6dst_ptr = &ip6h->ip6_dst; 8625 end = remlen; 8626 8627 hdr_length = (uint_t)((char *)&fraghdr[1] - (char *)ip6h); 8628 end += offset; 8629 8630 /* 8631 * Would fragment cause reassembled packet to have a payload length 8632 * greater than IP_MAXPACKET - the max payload size? 8633 */ 8634 if (end > IP_MAXPACKET) { 8635 zoneid_t zoneid; 8636 8637 BUMP_MIB(ill->ill_ip6_mib, ipv6InHdrErrors); 8638 zoneid = ipif_lookup_addr_zoneid_v6(&ip6h->ip6_dst, ill); 8639 if (zoneid == ALL_ZONES) { 8640 freemsg(mp); 8641 return (NULL); 8642 } 8643 icmp_param_problem_v6(WR(q), mp, ICMP6_PARAMPROB_HEADER, 8644 (uint32_t)((char *)&fraghdr->ip6f_offlg - 8645 (char *)ip6h), B_FALSE, B_FALSE, zoneid); 8646 return (NULL); 8647 } 8648 8649 /* 8650 * This packet just has one fragment. Reassembly not 8651 * needed. 8652 */ 8653 if (!more_frags && offset == 0) { 8654 goto reass_done; 8655 } 8656 8657 /* 8658 * Drop the fragmented as early as possible, if 8659 * we don't have resource(s) to re-assemble. 8660 */ 8661 if (ip_reass_queue_bytes == 0) { 8662 freemsg(mp); 8663 return (NULL); 8664 } 8665 8666 /* Record the ECN field info. */ 8667 ecn_info = (uint8_t)(ntohl(ip6h->ip6_vcf & htonl(~0xFFCFFFFF)) >> 20); 8668 /* 8669 * If this is not the first fragment, dump the unfragmentable 8670 * portion of the packet. 8671 */ 8672 if (offset) 8673 mp->b_rptr = (uchar_t *)&fraghdr[1]; 8674 8675 /* 8676 * Fragmentation reassembly. Each ILL has a hash table for 8677 * queueing packets undergoing reassembly for all IPIFs 8678 * associated with the ILL. The hash is based on the packet 8679 * IP ident field. The ILL frag hash table was allocated 8680 * as a timer block at the time the ILL was created. Whenever 8681 * there is anything on the reassembly queue, the timer will 8682 * be running. 8683 */ 8684 msg_len = MBLKSIZE(mp); 8685 tail_mp = mp; 8686 while (tail_mp->b_cont != NULL) { 8687 tail_mp = tail_mp->b_cont; 8688 msg_len += MBLKSIZE(tail_mp); 8689 } 8690 /* 8691 * If the reassembly list for this ILL will get too big 8692 * prune it. 8693 */ 8694 8695 if ((msg_len + sizeof (*ipf) + ill->ill_frag_count) >= 8696 ip_reass_queue_bytes) { 8697 ill_frag_prune(ill, (ip_reass_queue_bytes < msg_len) ? 0 8698 : (ip_reass_queue_bytes - msg_len)); 8699 pruned = B_TRUE; 8700 } 8701 8702 ipfb = &ill->ill_frag_hash_tbl[ILL_FRAG_HASH_V6(*v6src_ptr, ident)]; 8703 mutex_enter(&ipfb->ipfb_lock); 8704 8705 ipfp = &ipfb->ipfb_ipf; 8706 /* Try to find an existing fragment queue for this packet. */ 8707 for (;;) { 8708 ipf = ipfp[0]; 8709 if (ipf) { 8710 /* 8711 * It has to match on ident, source address, and 8712 * dest address. 8713 */ 8714 if (ipf->ipf_ident == ident && 8715 IN6_ARE_ADDR_EQUAL(&ipf->ipf_v6src, v6src_ptr) && 8716 IN6_ARE_ADDR_EQUAL(&ipf->ipf_v6dst, v6dst_ptr)) { 8717 8718 /* 8719 * If we have received too many 8720 * duplicate fragments for this packet 8721 * free it. 8722 */ 8723 if (ipf->ipf_num_dups > ip_max_frag_dups) { 8724 ill_frag_free_pkts(ill, ipfb, ipf, 1); 8725 freemsg(mp); 8726 mutex_exit(&ipfb->ipfb_lock); 8727 return (NULL); 8728 } 8729 8730 break; 8731 } 8732 ipfp = &ipf->ipf_hash_next; 8733 continue; 8734 } 8735 8736 8737 /* 8738 * If we pruned the list, do we want to store this new 8739 * fragment?. We apply an optimization here based on the 8740 * fact that most fragments will be received in order. 8741 * So if the offset of this incoming fragment is zero, 8742 * it is the first fragment of a new packet. We will 8743 * keep it. Otherwise drop the fragment, as we have 8744 * probably pruned the packet already (since the 8745 * packet cannot be found). 8746 */ 8747 8748 if (pruned && offset != 0) { 8749 mutex_exit(&ipfb->ipfb_lock); 8750 freemsg(mp); 8751 return (NULL); 8752 } 8753 8754 /* New guy. Allocate a frag message. */ 8755 mp1 = allocb(sizeof (*ipf), BPRI_MED); 8756 if (!mp1) { 8757 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 8758 freemsg(mp); 8759 partial_reass_done: 8760 mutex_exit(&ipfb->ipfb_lock); 8761 return (NULL); 8762 } 8763 8764 if (ipfb->ipfb_frag_pkts >= MAX_FRAG_PKTS) { 8765 /* 8766 * Too many fragmented packets in this hash bucket. 8767 * Free the oldest. 8768 */ 8769 ill_frag_free_pkts(ill, ipfb, ipfb->ipfb_ipf, 1); 8770 } 8771 8772 mp1->b_cont = mp; 8773 8774 /* Initialize the fragment header. */ 8775 ipf = (ipf_t *)mp1->b_rptr; 8776 ipf->ipf_mp = mp1; 8777 ipf->ipf_ptphn = ipfp; 8778 ipfp[0] = ipf; 8779 ipf->ipf_hash_next = NULL; 8780 ipf->ipf_ident = ident; 8781 ipf->ipf_v6src = *v6src_ptr; 8782 ipf->ipf_v6dst = *v6dst_ptr; 8783 /* Record reassembly start time. */ 8784 ipf->ipf_timestamp = gethrestime_sec(); 8785 /* Record ipf generation and account for frag header */ 8786 ipf->ipf_gen = ill->ill_ipf_gen++; 8787 ipf->ipf_count = MBLKSIZE(mp1); 8788 ipf->ipf_protocol = nexthdr; 8789 ipf->ipf_nf_hdr_len = 0; 8790 ipf->ipf_prev_nexthdr_offset = 0; 8791 ipf->ipf_last_frag_seen = B_FALSE; 8792 ipf->ipf_ecn = ecn_info; 8793 ipf->ipf_num_dups = 0; 8794 ipfb->ipfb_frag_pkts++; 8795 ipf->ipf_checksum = 0; 8796 ipf->ipf_checksum_flags = 0; 8797 8798 /* Store checksum value in fragment header */ 8799 if (sum_flags != 0) { 8800 sum_val = (sum_val & 0xFFFF) + (sum_val >> 16); 8801 sum_val = (sum_val & 0xFFFF) + (sum_val >> 16); 8802 ipf->ipf_checksum = sum_val; 8803 ipf->ipf_checksum_flags = sum_flags; 8804 } 8805 8806 /* 8807 * We handle reassembly two ways. In the easy case, 8808 * where all the fragments show up in order, we do 8809 * minimal bookkeeping, and just clip new pieces on 8810 * the end. If we ever see a hole, then we go off 8811 * to ip_reassemble which has to mark the pieces and 8812 * keep track of the number of holes, etc. Obviously, 8813 * the point of having both mechanisms is so we can 8814 * handle the easy case as efficiently as possible. 8815 */ 8816 if (offset == 0) { 8817 /* Easy case, in-order reassembly so far. */ 8818 /* Update the byte count */ 8819 ipf->ipf_count += msg_len; 8820 ipf->ipf_tail_mp = tail_mp; 8821 /* 8822 * Keep track of next expected offset in 8823 * ipf_end. 8824 */ 8825 ipf->ipf_end = end; 8826 ipf->ipf_nf_hdr_len = hdr_length; 8827 ipf->ipf_prev_nexthdr_offset = *prev_nexthdr_offset; 8828 } else { 8829 /* Hard case, hole at the beginning. */ 8830 ipf->ipf_tail_mp = NULL; 8831 /* 8832 * ipf_end == 0 means that we have given up 8833 * on easy reassembly. 8834 */ 8835 ipf->ipf_end = 0; 8836 8837 /* Forget checksum offload from now on */ 8838 ipf->ipf_checksum_flags = 0; 8839 8840 /* 8841 * ipf_hole_cnt is set by ip_reassemble. 8842 * ipf_count is updated by ip_reassemble. 8843 * No need to check for return value here 8844 * as we don't expect reassembly to complete or 8845 * fail for the first fragment itself. 8846 */ 8847 (void) ip_reassemble(mp, ipf, offset, more_frags, ill, 8848 msg_len); 8849 } 8850 /* Update per ipfb and ill byte counts */ 8851 ipfb->ipfb_count += ipf->ipf_count; 8852 ASSERT(ipfb->ipfb_count > 0); /* Wraparound */ 8853 ill->ill_frag_count += ipf->ipf_count; 8854 ASSERT(ill->ill_frag_count > 0); /* Wraparound */ 8855 /* If the frag timer wasn't already going, start it. */ 8856 mutex_enter(&ill->ill_lock); 8857 ill_frag_timer_start(ill); 8858 mutex_exit(&ill->ill_lock); 8859 goto partial_reass_done; 8860 } 8861 8862 /* 8863 * If the packet's flag has changed (it could be coming up 8864 * from an interface different than the previous, therefore 8865 * possibly different checksum capability), then forget about 8866 * any stored checksum states. Otherwise add the value to 8867 * the existing one stored in the fragment header. 8868 */ 8869 if (sum_flags != 0 && sum_flags == ipf->ipf_checksum_flags) { 8870 sum_val += ipf->ipf_checksum; 8871 sum_val = (sum_val & 0xFFFF) + (sum_val >> 16); 8872 sum_val = (sum_val & 0xFFFF) + (sum_val >> 16); 8873 ipf->ipf_checksum = sum_val; 8874 } else if (ipf->ipf_checksum_flags != 0) { 8875 /* Forget checksum offload from now on */ 8876 ipf->ipf_checksum_flags = 0; 8877 } 8878 8879 /* 8880 * We have a new piece of a datagram which is already being 8881 * reassembled. Update the ECN info if all IP fragments 8882 * are ECN capable. If there is one which is not, clear 8883 * all the info. If there is at least one which has CE 8884 * code point, IP needs to report that up to transport. 8885 */ 8886 if (ecn_info != IPH_ECN_NECT && ipf->ipf_ecn != IPH_ECN_NECT) { 8887 if (ecn_info == IPH_ECN_CE) 8888 ipf->ipf_ecn = IPH_ECN_CE; 8889 } else { 8890 ipf->ipf_ecn = IPH_ECN_NECT; 8891 } 8892 8893 if (offset && ipf->ipf_end == offset) { 8894 /* The new fragment fits at the end */ 8895 ipf->ipf_tail_mp->b_cont = mp; 8896 /* Update the byte count */ 8897 ipf->ipf_count += msg_len; 8898 /* Update per ipfb and ill byte counts */ 8899 ipfb->ipfb_count += msg_len; 8900 ASSERT(ipfb->ipfb_count > 0); /* Wraparound */ 8901 ill->ill_frag_count += msg_len; 8902 ASSERT(ill->ill_frag_count > 0); /* Wraparound */ 8903 if (more_frags) { 8904 /* More to come. */ 8905 ipf->ipf_end = end; 8906 ipf->ipf_tail_mp = tail_mp; 8907 goto partial_reass_done; 8908 } 8909 } else { 8910 /* 8911 * Go do the hard cases. 8912 * Call ip_reassemble(). 8913 */ 8914 int ret; 8915 8916 if (offset == 0) { 8917 if (ipf->ipf_prev_nexthdr_offset == 0) { 8918 ipf->ipf_nf_hdr_len = hdr_length; 8919 ipf->ipf_prev_nexthdr_offset = 8920 *prev_nexthdr_offset; 8921 } 8922 } 8923 /* Save current byte count */ 8924 count = ipf->ipf_count; 8925 ret = ip_reassemble(mp, ipf, offset, more_frags, ill, msg_len); 8926 8927 /* Count of bytes added and subtracted (freeb()ed) */ 8928 count = ipf->ipf_count - count; 8929 if (count) { 8930 /* Update per ipfb and ill byte counts */ 8931 ipfb->ipfb_count += count; 8932 ASSERT(ipfb->ipfb_count > 0); /* Wraparound */ 8933 ill->ill_frag_count += count; 8934 ASSERT(ill->ill_frag_count > 0); /* Wraparound */ 8935 } 8936 if (ret == IP_REASS_PARTIAL) { 8937 goto partial_reass_done; 8938 } else if (ret == IP_REASS_FAILED) { 8939 /* Reassembly failed. Free up all resources */ 8940 ill_frag_free_pkts(ill, ipfb, ipf, 1); 8941 for (t_mp = mp; t_mp != NULL; t_mp = t_mp->b_cont) { 8942 IP_REASS_SET_START(t_mp, 0); 8943 IP_REASS_SET_END(t_mp, 0); 8944 } 8945 freemsg(mp); 8946 goto partial_reass_done; 8947 } 8948 8949 /* We will reach here iff 'ret' is IP_REASS_COMPLETE */ 8950 } 8951 /* 8952 * We have completed reassembly. Unhook the frag header from 8953 * the reassembly list. 8954 * 8955 * Grab the unfragmentable header length next header value out 8956 * of the first fragment 8957 */ 8958 ASSERT(ipf->ipf_nf_hdr_len != 0); 8959 hdr_length = ipf->ipf_nf_hdr_len; 8960 8961 /* 8962 * Before we free the frag header, record the ECN info 8963 * to report back to the transport. 8964 */ 8965 ecn_info = ipf->ipf_ecn; 8966 8967 /* 8968 * Store the nextheader field in the header preceding the fragment 8969 * header 8970 */ 8971 nexthdr = ipf->ipf_protocol; 8972 *prev_nexthdr_offset = ipf->ipf_prev_nexthdr_offset; 8973 ipfp = ipf->ipf_ptphn; 8974 8975 /* We need to supply these to caller */ 8976 if ((sum_flags = ipf->ipf_checksum_flags) != 0) 8977 sum_val = ipf->ipf_checksum; 8978 else 8979 sum_val = 0; 8980 8981 mp1 = ipf->ipf_mp; 8982 count = ipf->ipf_count; 8983 ipf = ipf->ipf_hash_next; 8984 if (ipf) 8985 ipf->ipf_ptphn = ipfp; 8986 ipfp[0] = ipf; 8987 ill->ill_frag_count -= count; 8988 ASSERT(ipfb->ipfb_count >= count); 8989 ipfb->ipfb_count -= count; 8990 ipfb->ipfb_frag_pkts--; 8991 mutex_exit(&ipfb->ipfb_lock); 8992 /* Ditch the frag header. */ 8993 mp = mp1->b_cont; 8994 freeb(mp1); 8995 8996 /* 8997 * Make sure the packet is good by doing some sanity 8998 * check. If bad we can silentely drop the packet. 8999 */ 9000 reass_done: 9001 if (hdr_length < sizeof (ip6_frag_t)) { 9002 BUMP_MIB(ill->ill_ip6_mib, ipv6InHdrErrors); 9003 ip1dbg(("ip_rput_frag_v6: bad packet\n")); 9004 freemsg(mp); 9005 return (NULL); 9006 } 9007 9008 /* 9009 * Remove the fragment header from the initial header by 9010 * splitting the mblk into the non-fragmentable header and 9011 * everthing after the fragment extension header. This has the 9012 * side effect of putting all the headers that need destination 9013 * processing into the b_cont block-- on return this fact is 9014 * used in order to avoid having to look at the extensions 9015 * already processed. 9016 * 9017 * Note that this code assumes that the unfragmentable portion 9018 * of the header is in the first mblk and increments 9019 * the read pointer past it. If this assumption is broken 9020 * this code fails badly. 9021 */ 9022 if (mp->b_rptr + hdr_length != mp->b_wptr) { 9023 mblk_t *nmp; 9024 9025 if (!(nmp = dupb(mp))) { 9026 BUMP_MIB(ill->ill_ip6_mib, ipv6InDiscards); 9027 ip1dbg(("ip_rput_frag_v6: dupb failed\n")); 9028 freemsg(mp); 9029 return (NULL); 9030 } 9031 nmp->b_cont = mp->b_cont; 9032 mp->b_cont = nmp; 9033 nmp->b_rptr += hdr_length; 9034 } 9035 mp->b_wptr = mp->b_rptr + hdr_length - sizeof (ip6_frag_t); 9036 9037 ip6h = (ip6_t *)mp->b_rptr; 9038 ((char *)ip6h)[*prev_nexthdr_offset] = nexthdr; 9039 9040 /* Restore original IP length in header. */ 9041 ip6h->ip6_plen = htons((uint16_t)(msgdsize(mp) - IPV6_HDR_LEN)); 9042 /* Record the ECN info. */ 9043 ip6h->ip6_vcf &= htonl(0xFFCFFFFF); 9044 ip6h->ip6_vcf |= htonl(ecn_info << 20); 9045 9046 /* Reassembly is successful; return checksum information if needed */ 9047 if (cksum_val != NULL) 9048 *cksum_val = sum_val; 9049 if (cksum_flags != NULL) 9050 *cksum_flags = sum_flags; 9051 9052 return (mp); 9053 } 9054 9055 /* 9056 * Walk through the options to see if there is a routing header. 9057 * If present get the destination which is the last address of 9058 * the option. 9059 */ 9060 in6_addr_t 9061 ip_get_dst_v6(ip6_t *ip6h, boolean_t *is_fragment) 9062 { 9063 uint8_t nexthdr; 9064 uint8_t *whereptr; 9065 ip6_hbh_t *hbhhdr; 9066 ip6_dest_t *dsthdr; 9067 ip6_rthdr0_t *rthdr; 9068 ip6_frag_t *fraghdr; 9069 int ehdrlen; 9070 int left; 9071 in6_addr_t *ap, rv; 9072 9073 if (is_fragment != NULL) 9074 *is_fragment = B_FALSE; 9075 9076 rv = ip6h->ip6_dst; 9077 9078 nexthdr = ip6h->ip6_nxt; 9079 whereptr = (uint8_t *)&ip6h[1]; 9080 for (;;) { 9081 9082 ASSERT(nexthdr != IPPROTO_RAW); 9083 switch (nexthdr) { 9084 case IPPROTO_HOPOPTS: 9085 hbhhdr = (ip6_hbh_t *)whereptr; 9086 nexthdr = hbhhdr->ip6h_nxt; 9087 ehdrlen = 8 * (hbhhdr->ip6h_len + 1); 9088 break; 9089 case IPPROTO_DSTOPTS: 9090 dsthdr = (ip6_dest_t *)whereptr; 9091 nexthdr = dsthdr->ip6d_nxt; 9092 ehdrlen = 8 * (dsthdr->ip6d_len + 1); 9093 break; 9094 case IPPROTO_ROUTING: 9095 rthdr = (ip6_rthdr0_t *)whereptr; 9096 nexthdr = rthdr->ip6r0_nxt; 9097 ehdrlen = 8 * (rthdr->ip6r0_len + 1); 9098 9099 left = rthdr->ip6r0_segleft; 9100 ap = (in6_addr_t *)((char *)rthdr + sizeof (*rthdr)); 9101 rv = *(ap + left - 1); 9102 /* 9103 * If the caller doesn't care whether the packet 9104 * is a fragment or not, we can stop here since 9105 * we have our destination. 9106 */ 9107 if (is_fragment == NULL) 9108 goto done; 9109 break; 9110 case IPPROTO_FRAGMENT: 9111 fraghdr = (ip6_frag_t *)whereptr; 9112 nexthdr = fraghdr->ip6f_nxt; 9113 ehdrlen = sizeof (ip6_frag_t); 9114 if (is_fragment != NULL) 9115 *is_fragment = B_TRUE; 9116 goto done; 9117 default : 9118 goto done; 9119 } 9120 whereptr += ehdrlen; 9121 } 9122 9123 done: 9124 return (rv); 9125 } 9126 9127 /* 9128 * ip_source_routed_v6: 9129 * This function is called by redirect code in ip_rput_data_v6 to 9130 * know whether this packet is source routed through this node i.e 9131 * whether this node (router) is part of the journey. This 9132 * function is called under two cases : 9133 * 9134 * case 1 : Routing header was processed by this node and 9135 * ip_process_rthdr replaced ip6_dst with the next hop 9136 * and we are forwarding the packet to the next hop. 9137 * 9138 * case 2 : Routing header was not processed by this node and we 9139 * are just forwarding the packet. 9140 * 9141 * For case (1) we don't want to send redirects. For case(2) we 9142 * want to send redirects. 9143 */ 9144 static boolean_t 9145 ip_source_routed_v6(ip6_t *ip6h, mblk_t *mp) 9146 { 9147 uint8_t nexthdr; 9148 in6_addr_t *addrptr; 9149 ip6_rthdr0_t *rthdr; 9150 uint8_t numaddr; 9151 ip6_hbh_t *hbhhdr; 9152 uint_t ehdrlen; 9153 uint8_t *byteptr; 9154 9155 ip2dbg(("ip_source_routed_v6\n")); 9156 nexthdr = ip6h->ip6_nxt; 9157 ehdrlen = IPV6_HDR_LEN; 9158 9159 /* if a routing hdr is preceeded by HOPOPT or DSTOPT */ 9160 while (nexthdr == IPPROTO_HOPOPTS || 9161 nexthdr == IPPROTO_DSTOPTS) { 9162 byteptr = (uint8_t *)ip6h + ehdrlen; 9163 /* 9164 * Check if we have already processed 9165 * packets or we are just a forwarding 9166 * router which only pulled up msgs up 9167 * to IPV6HDR and one HBH ext header 9168 */ 9169 if (byteptr + MIN_EHDR_LEN > mp->b_wptr) { 9170 ip2dbg(("ip_source_routed_v6: Extension" 9171 " headers not processed\n")); 9172 return (B_FALSE); 9173 } 9174 hbhhdr = (ip6_hbh_t *)byteptr; 9175 nexthdr = hbhhdr->ip6h_nxt; 9176 ehdrlen = ehdrlen + 8 * (hbhhdr->ip6h_len + 1); 9177 } 9178 switch (nexthdr) { 9179 case IPPROTO_ROUTING: 9180 byteptr = (uint8_t *)ip6h + ehdrlen; 9181 /* 9182 * If for some reason, we haven't pulled up 9183 * the routing hdr data mblk, then we must 9184 * not have processed it at all. So for sure 9185 * we are not part of the source routed journey. 9186 */ 9187 if (byteptr + MIN_EHDR_LEN > mp->b_wptr) { 9188 ip2dbg(("ip_source_routed_v6: Routing" 9189 " header not processed\n")); 9190 return (B_FALSE); 9191 } 9192 rthdr = (ip6_rthdr0_t *)byteptr; 9193 /* 9194 * Either we are an intermediate router or the 9195 * last hop before destination and we have 9196 * already processed the routing header. 9197 * If segment_left is greater than or equal to zero, 9198 * then we must be the (numaddr - segleft) entry 9199 * of the routing header. Although ip6r0_segleft 9200 * is a unit8_t variable, we still check for zero 9201 * or greater value, if in case the data type 9202 * is changed someday in future. 9203 */ 9204 if (rthdr->ip6r0_segleft > 0 || 9205 rthdr->ip6r0_segleft == 0) { 9206 ire_t *ire = NULL; 9207 9208 numaddr = rthdr->ip6r0_len / 2; 9209 addrptr = (in6_addr_t *)((char *)rthdr + 9210 sizeof (*rthdr)); 9211 addrptr += (numaddr - (rthdr->ip6r0_segleft + 1)); 9212 if (addrptr != NULL) { 9213 ire = ire_ctable_lookup_v6(addrptr, NULL, 9214 IRE_LOCAL, NULL, ALL_ZONES, NULL, 9215 MATCH_IRE_TYPE); 9216 if (ire != NULL) { 9217 ire_refrele(ire); 9218 return (B_TRUE); 9219 } 9220 ip1dbg(("ip_source_routed_v6: No ire found\n")); 9221 } 9222 } 9223 /* FALLTHRU */ 9224 default: 9225 ip2dbg(("ip_source_routed_v6: Not source routed here\n")); 9226 return (B_FALSE); 9227 } 9228 } 9229 9230 /* 9231 * ip_wput_v6 -- Packets sent down from transport modules show up here. 9232 * Assumes that the following set of headers appear in the first 9233 * mblk: 9234 * ip6i_t (if present) CAN also appear as a separate mblk. 9235 * ip6_t 9236 * Any extension headers 9237 * TCP/UDP/SCTP header (if present) 9238 * The routine can handle an ICMPv6 header that is not in the first mblk. 9239 * 9240 * The order to determine the outgoing interface is as follows: 9241 * 1. IPV6_BOUND_PIF is set, use that ill (conn_outgoing_pill) 9242 * 2. If conn_nofailover_ill is set then use that ill. 9243 * 3. If an ip6i_t with IP6I_IFINDEX set then use that ill. 9244 * 4. If q is an ill queue and (link local or multicast destination) then 9245 * use that ill. 9246 * 5. If IPV6_BOUND_IF has been set use that ill. 9247 * 6. For multicast: if IPV6_MULTICAST_IF has been set use it. Otherwise 9248 * look for the best IRE match for the unspecified group to determine 9249 * the ill. 9250 * 7. For unicast: Just do an IRE lookup for the best match. 9251 * 9252 * arg2 is always a queue_t *. 9253 * When that queue is an ill_t (i.e. q_next != NULL), then arg must be 9254 * the zoneid. 9255 * When that queue is not an ill_t, then arg must be a conn_t pointer. 9256 */ 9257 void 9258 ip_output_v6(void *arg, mblk_t *mp, void *arg2, int caller) 9259 { 9260 conn_t *connp = NULL; 9261 queue_t *q = (queue_t *)arg2; 9262 ire_t *ire = NULL; 9263 ire_t *sctp_ire = NULL; 9264 ip6_t *ip6h; 9265 in6_addr_t *v6dstp; 9266 ill_t *ill = NULL; 9267 ipif_t *ipif; 9268 ip6i_t *ip6i; 9269 int cksum_request; /* -1 => normal. */ 9270 /* 1 => Skip TCP/UDP/SCTP checksum */ 9271 /* Otherwise contains insert offset for checksum */ 9272 int unspec_src; 9273 boolean_t do_outrequests; /* Increment OutRequests? */ 9274 mib2_ipv6IfStatsEntry_t *mibptr; 9275 int match_flags = MATCH_IRE_ILL_GROUP; 9276 boolean_t attach_if = B_FALSE; 9277 mblk_t *first_mp; 9278 boolean_t mctl_present; 9279 ipsec_out_t *io; 9280 boolean_t drop_if_delayed = B_FALSE; 9281 boolean_t multirt_need_resolve = B_FALSE; 9282 mblk_t *copy_mp = NULL; 9283 int err; 9284 int ip6i_flags = 0; 9285 zoneid_t zoneid; 9286 ill_t *saved_ill = NULL; 9287 boolean_t conn_lock_held; 9288 boolean_t need_decref = B_FALSE; 9289 9290 /* 9291 * Highest bit in version field is Reachability Confirmation bit 9292 * used by NUD in ip_xmit_v6(). 9293 */ 9294 #ifdef _BIG_ENDIAN 9295 #define IPVER(ip6h) ((((uint32_t *)ip6h)[0] >> 28) & 0x7) 9296 #else 9297 #define IPVER(ip6h) ((((uint32_t *)ip6h)[0] >> 4) & 0x7) 9298 #endif 9299 9300 /* 9301 * M_CTL comes from 6 places 9302 * 9303 * 1) TCP sends down IPSEC_OUT(M_CTL) for detached connections 9304 * both V4 and V6 datagrams. 9305 * 9306 * 2) AH/ESP sends down M_CTL after doing their job with both 9307 * V4 and V6 datagrams. 9308 * 9309 * 3) NDP callbacks when nce is resolved and IPSEC_OUT has been 9310 * attached. 9311 * 9312 * 4) Notifications from an external resolver (for XRESOLV ifs) 9313 * 9314 * 5) AH/ESP send down IPSEC_CTL(M_CTL) to be relayed to hardware for 9315 * IPsec hardware acceleration support. 9316 * 9317 * 6) TUN_HELLO. 9318 * 9319 * We need to handle (1)'s IPv6 case and (3) here. For the 9320 * IPv4 case in (1), and (2), IPSEC processing has already 9321 * started. The code in ip_wput() already knows how to handle 9322 * continuing IPSEC processing (for IPv4 and IPv6). All other 9323 * M_CTLs (including case (4)) are passed on to ip_wput_nondata() 9324 * for handling. 9325 */ 9326 first_mp = mp; 9327 mctl_present = B_FALSE; 9328 io = NULL; 9329 9330 /* Multidata transmit? */ 9331 if (DB_TYPE(mp) == M_MULTIDATA) { 9332 /* 9333 * We should never get here, since all Multidata messages 9334 * originating from tcp should have been directed over to 9335 * tcp_multisend() in the first place. 9336 */ 9337 BUMP_MIB(&ip6_mib, ipv6OutDiscards); 9338 freemsg(mp); 9339 return; 9340 } else if (DB_TYPE(mp) == M_CTL) { 9341 uint32_t mctltype = 0; 9342 uint32_t mlen = MBLKL(first_mp); 9343 9344 mp = mp->b_cont; 9345 mctl_present = B_TRUE; 9346 io = (ipsec_out_t *)first_mp->b_rptr; 9347 9348 /* 9349 * Validate this M_CTL message. The only three types of 9350 * M_CTL messages we expect to see in this code path are 9351 * ipsec_out_t or ipsec_in_t structures (allocated as 9352 * ipsec_info_t unions), or ipsec_ctl_t structures. 9353 * The ipsec_out_type and ipsec_in_type overlap in the two 9354 * data structures, and they are either set to IPSEC_OUT 9355 * or IPSEC_IN depending on which data structure it is. 9356 * ipsec_ctl_t is an IPSEC_CTL. 9357 * 9358 * All other M_CTL messages are sent to ip_wput_nondata() 9359 * for handling. 9360 */ 9361 if (mlen >= sizeof (io->ipsec_out_type)) 9362 mctltype = io->ipsec_out_type; 9363 9364 if ((mlen == sizeof (ipsec_ctl_t)) && 9365 (mctltype == IPSEC_CTL)) { 9366 ip_output(arg, first_mp, arg2, caller); 9367 return; 9368 } 9369 9370 if ((mlen < sizeof (ipsec_info_t)) || 9371 (mctltype != IPSEC_OUT && mctltype != IPSEC_IN) || 9372 mp == NULL) { 9373 ip_wput_nondata(NULL, q, first_mp, NULL); 9374 return; 9375 } 9376 /* NDP callbacks have q_next non-NULL. That's case #3. */ 9377 if (q->q_next == NULL) { 9378 ip6h = (ip6_t *)mp->b_rptr; 9379 /* 9380 * For a freshly-generated TCP dgram that needs IPV6 9381 * processing, don't call ip_wput immediately. We can 9382 * tell this by the ipsec_out_proc_begin. In-progress 9383 * IPSEC_OUT messages have proc_begin set to TRUE, 9384 * and we want to send all IPSEC_IN messages to 9385 * ip_wput() for IPsec processing or finishing. 9386 */ 9387 if (mctltype == IPSEC_IN || 9388 IPVER(ip6h) != IPV6_VERSION || 9389 io->ipsec_out_proc_begin) { 9390 mibptr = &ip6_mib; 9391 goto notv6; 9392 } 9393 } 9394 } else if (DB_TYPE(mp) != M_DATA) { 9395 ip_wput_nondata(NULL, q, mp, NULL); 9396 return; 9397 } 9398 9399 ip6h = (ip6_t *)mp->b_rptr; 9400 9401 if (IPVER(ip6h) != IPV6_VERSION) { 9402 mibptr = &ip6_mib; 9403 goto notv6; 9404 } 9405 9406 if (q->q_next != NULL) { 9407 ill = (ill_t *)q->q_ptr; 9408 /* 9409 * We don't know if this ill will be used for IPv6 9410 * until the ILLF_IPV6 flag is set via SIOCSLIFNAME. 9411 * ipif_set_values() sets the ill_isv6 flag to true if 9412 * ILLF_IPV6 is set. If the ill_isv6 flag isn't true, 9413 * just drop the packet. 9414 */ 9415 if (!ill->ill_isv6) { 9416 ip1dbg(("ip_wput_v6: Received an IPv6 packet before " 9417 "ILLF_IPV6 was set\n")); 9418 freemsg(first_mp); 9419 return; 9420 } 9421 /* For uniformity do a refhold */ 9422 mutex_enter(&ill->ill_lock); 9423 if (!ILL_CAN_LOOKUP(ill)) { 9424 mutex_exit(&ill->ill_lock); 9425 freemsg(first_mp); 9426 return; 9427 } 9428 ill_refhold_locked(ill); 9429 mutex_exit(&ill->ill_lock); 9430 mibptr = ill->ill_ip6_mib; 9431 /* 9432 * ill_ip6_mib is allocated by ipif_set_values() when 9433 * ill_isv6 is set. Thus if ill_isv6 is true, 9434 * ill_ip6_mib had better not be NULL. 9435 */ 9436 ASSERT(mibptr != NULL); 9437 unspec_src = 0; 9438 BUMP_MIB(mibptr, ipv6OutRequests); 9439 do_outrequests = B_FALSE; 9440 zoneid = (zoneid_t)(uintptr_t)arg; 9441 } else { 9442 connp = (conn_t *)arg; 9443 ASSERT(connp != NULL); 9444 zoneid = connp->conn_zoneid; 9445 9446 /* is queue flow controlled? */ 9447 if ((q->q_first || connp->conn_draining) && 9448 (caller == IP_WPUT)) { 9449 /* 9450 * 1) TCP sends down M_CTL for detached connections. 9451 * 2) AH/ESP sends down M_CTL. 9452 * 9453 * We don't flow control either of the above. Only 9454 * UDP and others are flow controlled for which we 9455 * can't have a M_CTL. 9456 */ 9457 ASSERT(first_mp == mp); 9458 (void) putq(q, mp); 9459 return; 9460 } 9461 mibptr = &ip6_mib; 9462 unspec_src = connp->conn_unspec_src; 9463 do_outrequests = B_TRUE; 9464 if (mp->b_flag & MSGHASREF) { 9465 mp->b_flag &= ~MSGHASREF; 9466 ASSERT(connp->conn_ulp == IPPROTO_SCTP); 9467 SCTP_EXTRACT_IPINFO(mp, sctp_ire); 9468 need_decref = B_TRUE; 9469 } 9470 9471 /* 9472 * If there is a policy, try to attach an ipsec_out in 9473 * the front. At the end, first_mp either points to a 9474 * M_DATA message or IPSEC_OUT message linked to a 9475 * M_DATA message. We have to do it now as we might 9476 * lose the "conn" if we go through ip_newroute. 9477 */ 9478 if (!mctl_present && 9479 (connp->conn_out_enforce_policy || 9480 connp->conn_latch != NULL)) { 9481 ASSERT(first_mp == mp); 9482 /* XXX Any better way to get the protocol fast ? */ 9483 if (((mp = ipsec_attach_ipsec_out(mp, connp, NULL, 9484 connp->conn_ulp)) == NULL)) { 9485 if (need_decref) 9486 CONN_DEC_REF(connp); 9487 return; 9488 } else { 9489 ASSERT(mp->b_datap->db_type == M_CTL); 9490 first_mp = mp; 9491 mp = mp->b_cont; 9492 mctl_present = B_TRUE; 9493 io = (ipsec_out_t *)first_mp->b_rptr; 9494 } 9495 } 9496 } 9497 9498 /* check for alignment and full IPv6 header */ 9499 if (!OK_32PTR((uchar_t *)ip6h) || 9500 (mp->b_wptr - (uchar_t *)ip6h) < IPV6_HDR_LEN) { 9501 ip0dbg(("ip_wput_v6: bad alignment or length\n")); 9502 if (do_outrequests) 9503 BUMP_MIB(mibptr, ipv6OutRequests); 9504 BUMP_MIB(mibptr, ipv6OutDiscards); 9505 freemsg(first_mp); 9506 if (ill != NULL) 9507 ill_refrele(ill); 9508 if (need_decref) 9509 CONN_DEC_REF(connp); 9510 return; 9511 } 9512 v6dstp = &ip6h->ip6_dst; 9513 cksum_request = -1; 9514 ip6i = NULL; 9515 9516 /* 9517 * Once neighbor discovery has completed, ndp_process() will provide 9518 * locally generated packets for which processing can be reattempted. 9519 * In these cases, connp is NULL and the original zone is part of a 9520 * prepended ipsec_out_t. 9521 */ 9522 if (io != NULL) { 9523 /* 9524 * When coming from icmp_input_v6, the zoneid might not match 9525 * for the loopback case, because inside icmp_input_v6 the 9526 * queue_t is a conn queue from the sending side. 9527 */ 9528 zoneid = io->ipsec_out_zoneid; 9529 ASSERT(zoneid != ALL_ZONES); 9530 } 9531 9532 if (ip6h->ip6_nxt == IPPROTO_RAW) { 9533 /* 9534 * This is an ip6i_t header followed by an ip6_hdr. 9535 * Check which fields are set. 9536 * 9537 * When the packet comes from a transport we should have 9538 * all needed headers in the first mblk. However, when 9539 * going through ip_newroute*_v6 the ip6i might be in 9540 * a separate mblk when we return here. In that case 9541 * we pullup everything to ensure that extension and transport 9542 * headers "stay" in the first mblk. 9543 */ 9544 ip6i = (ip6i_t *)ip6h; 9545 ip6i_flags = ip6i->ip6i_flags; 9546 9547 ASSERT((mp->b_wptr - (uchar_t *)ip6i) == sizeof (ip6i_t) || 9548 ((mp->b_wptr - (uchar_t *)ip6i) >= 9549 sizeof (ip6i_t) + IPV6_HDR_LEN)); 9550 9551 if ((mp->b_wptr - (uchar_t *)ip6i) == sizeof (ip6i_t)) { 9552 if (!pullupmsg(mp, -1)) { 9553 ip1dbg(("ip_wput_v6: pullupmsg failed\n")); 9554 if (do_outrequests) 9555 BUMP_MIB(mibptr, ipv6OutRequests); 9556 BUMP_MIB(mibptr, ipv6OutDiscards); 9557 freemsg(first_mp); 9558 if (ill != NULL) 9559 ill_refrele(ill); 9560 if (need_decref) 9561 CONN_DEC_REF(connp); 9562 return; 9563 } 9564 ip6h = (ip6_t *)mp->b_rptr; 9565 v6dstp = &ip6h->ip6_dst; 9566 ip6i = (ip6i_t *)ip6h; 9567 } 9568 ip6h = (ip6_t *)&ip6i[1]; 9569 9570 /* 9571 * Advance rptr past the ip6i_t to get ready for 9572 * transmitting the packet. However, if the packet gets 9573 * passed to ip_newroute*_v6 then rptr is moved back so 9574 * that the ip6i_t header can be inspected when the 9575 * packet comes back here after passing through 9576 * ire_add_then_send. 9577 */ 9578 mp->b_rptr = (uchar_t *)ip6h; 9579 9580 /* 9581 * IP6I_ATTACH_IF is set in this function when we had a 9582 * conn and it was either bound to the IPFF_NOFAILOVER address 9583 * or IPV6_BOUND_PIF was set. These options override other 9584 * options that set the ifindex. We come here with 9585 * IP6I_ATTACH_IF set when we can't find the ire and 9586 * ip_newroute_v6 is feeding the packet for second time. 9587 */ 9588 if ((ip6i->ip6i_flags & IP6I_IFINDEX) || 9589 (ip6i->ip6i_flags & IP6I_ATTACH_IF)) { 9590 ASSERT(ip6i->ip6i_ifindex != 0); 9591 if (ill != NULL) 9592 ill_refrele(ill); 9593 ill = ill_lookup_on_ifindex(ip6i->ip6i_ifindex, 1, 9594 NULL, NULL, NULL, NULL); 9595 if (ill == NULL) { 9596 if (do_outrequests) 9597 BUMP_MIB(mibptr, ipv6OutRequests); 9598 BUMP_MIB(mibptr, ipv6OutDiscards); 9599 ip1dbg(("ip_wput_v6: bad ifindex %d\n", 9600 ip6i->ip6i_ifindex)); 9601 if (need_decref) 9602 CONN_DEC_REF(connp); 9603 freemsg(first_mp); 9604 return; 9605 } 9606 mibptr = ill->ill_ip6_mib; 9607 if (ip6i->ip6i_flags & IP6I_IFINDEX) { 9608 /* 9609 * Preserve the index so that when we return 9610 * from IPSEC processing, we know where to 9611 * send the packet. 9612 */ 9613 if (mctl_present) { 9614 ASSERT(io != NULL); 9615 io->ipsec_out_ill_index = 9616 ip6i->ip6i_ifindex; 9617 } 9618 } 9619 if (ip6i->ip6i_flags & IP6I_ATTACH_IF) { 9620 /* 9621 * This is a multipathing probe packet that has 9622 * been delayed in ND resolution. Drop the 9623 * packet for the reasons mentioned in 9624 * nce_queue_mp() 9625 */ 9626 if ((ip6i->ip6i_flags & IP6I_DROP_IFDELAYED) && 9627 (ip6i->ip6i_flags & IP6I_ND_DELAYED)) { 9628 freemsg(first_mp); 9629 ill_refrele(ill); 9630 if (need_decref) 9631 CONN_DEC_REF(connp); 9632 return; 9633 } 9634 } 9635 } 9636 if (ip6i->ip6i_flags & IP6I_VERIFY_SRC) { 9637 cred_t *cr = DB_CREDDEF(mp, GET_QUEUE_CRED(q)); 9638 9639 ASSERT(!IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src)); 9640 if (secpolicy_net_rawaccess(cr) != 0) { 9641 ire = ire_route_lookup_v6(&ip6h->ip6_src, 9642 0, 0, (IRE_LOCAL|IRE_LOOPBACK), NULL, 9643 NULL, zoneid, NULL, 9644 MATCH_IRE_TYPE | MATCH_IRE_ZONEONLY); 9645 if (ire == NULL) { 9646 if (do_outrequests) 9647 BUMP_MIB(mibptr, 9648 ipv6OutRequests); 9649 BUMP_MIB(mibptr, ipv6OutDiscards); 9650 ip1dbg(("ip_wput_v6: bad source " 9651 "addr\n")); 9652 freemsg(first_mp); 9653 if (ill != NULL) 9654 ill_refrele(ill); 9655 if (need_decref) 9656 CONN_DEC_REF(connp); 9657 return; 9658 } 9659 ire_refrele(ire); 9660 } 9661 /* No need to verify again when using ip_newroute */ 9662 ip6i->ip6i_flags &= ~IP6I_VERIFY_SRC; 9663 } 9664 if (!(ip6i->ip6i_flags & IP6I_NEXTHOP)) { 9665 /* 9666 * Make sure they match since ip_newroute*_v6 etc might 9667 * (unknown to them) inspect ip6i_nexthop when 9668 * they think they access ip6_dst. 9669 */ 9670 ip6i->ip6i_nexthop = ip6h->ip6_dst; 9671 } 9672 if (ip6i->ip6i_flags & IP6I_NO_ULP_CKSUM) 9673 cksum_request = 1; 9674 if (ip6i->ip6i_flags & IP6I_RAW_CHECKSUM) 9675 cksum_request = ip6i->ip6i_checksum_off; 9676 if (ip6i->ip6i_flags & IP6I_UNSPEC_SRC) 9677 unspec_src = 1; 9678 9679 if (do_outrequests && ill != NULL) { 9680 BUMP_MIB(mibptr, ipv6OutRequests); 9681 do_outrequests = B_FALSE; 9682 } 9683 /* 9684 * Store ip6i_t info that we need after we come back 9685 * from IPSEC processing. 9686 */ 9687 if (mctl_present) { 9688 ASSERT(io != NULL); 9689 io->ipsec_out_unspec_src = unspec_src; 9690 } 9691 } 9692 if (connp != NULL && connp->conn_dontroute) 9693 ip6h->ip6_hops = 1; 9694 9695 if (IN6_IS_ADDR_MULTICAST(v6dstp)) 9696 goto ipv6multicast; 9697 9698 /* 1. IPV6_BOUND_PIF takes precedence over all the ifindex settings. */ 9699 if (connp != NULL && connp->conn_outgoing_pill != NULL) { 9700 ill_t *conn_outgoing_pill; 9701 9702 conn_outgoing_pill = conn_get_held_ill(connp, 9703 &connp->conn_outgoing_pill, &err); 9704 if (err == ILL_LOOKUP_FAILED) { 9705 if (ill != NULL) 9706 ill_refrele(ill); 9707 if (need_decref) 9708 CONN_DEC_REF(connp); 9709 freemsg(first_mp); 9710 return; 9711 } 9712 if (conn_outgoing_pill != NULL) { 9713 if (ill != NULL) 9714 ill_refrele(ill); 9715 ill = conn_outgoing_pill; 9716 attach_if = B_TRUE; 9717 match_flags = MATCH_IRE_ILL; 9718 mibptr = ill->ill_ip6_mib; 9719 9720 /* 9721 * Check if we need an ire that will not be 9722 * looked up by anybody else i.e. HIDDEN. 9723 */ 9724 if (ill_is_probeonly(ill)) 9725 match_flags |= MATCH_IRE_MARK_HIDDEN; 9726 goto send_from_ill; 9727 } 9728 } 9729 9730 /* 2. If ipc_nofailover_ill is set then use that ill. */ 9731 if (connp != NULL && connp->conn_nofailover_ill != NULL) { 9732 ill_t *conn_nofailover_ill; 9733 9734 conn_nofailover_ill = conn_get_held_ill(connp, 9735 &connp->conn_nofailover_ill, &err); 9736 if (err == ILL_LOOKUP_FAILED) { 9737 if (ill != NULL) 9738 ill_refrele(ill); 9739 if (need_decref) 9740 CONN_DEC_REF(connp); 9741 freemsg(first_mp); 9742 return; 9743 } 9744 if (conn_nofailover_ill != NULL) { 9745 if (ill != NULL) 9746 ill_refrele(ill); 9747 ill = conn_nofailover_ill; 9748 attach_if = B_TRUE; 9749 /* 9750 * Assumes that ipc_nofailover_ill is used only for 9751 * multipathing probe packets. These packets are better 9752 * dropped, if they are delayed in ND resolution, for 9753 * the reasons described in nce_queue_mp(). 9754 * IP6I_DROP_IFDELAYED will be set later on in this 9755 * function for this packet. 9756 */ 9757 drop_if_delayed = B_TRUE; 9758 match_flags = MATCH_IRE_ILL; 9759 mibptr = ill->ill_ip6_mib; 9760 9761 /* 9762 * Check if we need an ire that will not be 9763 * looked up by anybody else i.e. HIDDEN. 9764 */ 9765 if (ill_is_probeonly(ill)) 9766 match_flags |= MATCH_IRE_MARK_HIDDEN; 9767 goto send_from_ill; 9768 } 9769 } 9770 9771 /* 9772 * Redo 1. If we did not find an IRE_CACHE the first time, we should 9773 * have an ip6i_t with IP6I_ATTACH_IF if IPV6_BOUND_PIF or 9774 * bind to the IPIF_NOFAILOVER address was used on this endpoint. 9775 */ 9776 if (ip6i != NULL && (ip6i->ip6i_flags & IP6I_ATTACH_IF)) { 9777 ASSERT(ip6i->ip6i_ifindex != 0); 9778 attach_if = B_TRUE; 9779 ASSERT(ill != NULL); 9780 match_flags = MATCH_IRE_ILL; 9781 9782 /* 9783 * Check if we need an ire that will not be 9784 * looked up by anybody else i.e. HIDDEN. 9785 */ 9786 if (ill_is_probeonly(ill)) 9787 match_flags |= MATCH_IRE_MARK_HIDDEN; 9788 goto send_from_ill; 9789 } 9790 9791 /* 3. If an ip6i_t with IP6I_IFINDEX set then use that ill. */ 9792 if (ip6i != NULL && (ip6i->ip6i_flags & IP6I_IFINDEX)) { 9793 ASSERT(ill != NULL); 9794 goto send_from_ill; 9795 } 9796 9797 /* 9798 * 4. If q is an ill queue and (link local or multicast destination) 9799 * then use that ill. 9800 */ 9801 if (ill != NULL && IN6_IS_ADDR_LINKLOCAL(v6dstp)) { 9802 goto send_from_ill; 9803 } 9804 9805 /* 5. If IPV6_BOUND_IF has been set use that ill. */ 9806 if (connp != NULL && connp->conn_outgoing_ill != NULL) { 9807 ill_t *conn_outgoing_ill; 9808 9809 conn_outgoing_ill = conn_get_held_ill(connp, 9810 &connp->conn_outgoing_ill, &err); 9811 if (err == ILL_LOOKUP_FAILED) { 9812 if (ill != NULL) 9813 ill_refrele(ill); 9814 if (need_decref) 9815 CONN_DEC_REF(connp); 9816 freemsg(first_mp); 9817 return; 9818 } 9819 if (ill != NULL) 9820 ill_refrele(ill); 9821 ill = conn_outgoing_ill; 9822 mibptr = ill->ill_ip6_mib; 9823 goto send_from_ill; 9824 } 9825 9826 /* 9827 * 6. For unicast: Just do an IRE lookup for the best match. 9828 * If we get here for a link-local address it is rather random 9829 * what interface we pick on a multihomed host. 9830 * *If* there is an IRE_CACHE (and the link-local address 9831 * isn't duplicated on multi links) this will find the IRE_CACHE. 9832 * Otherwise it will use one of the matching IRE_INTERFACE routes 9833 * for the link-local prefix. Hence, applications 9834 * *should* be encouraged to specify an outgoing interface when sending 9835 * to a link local address. 9836 */ 9837 if (connp == NULL || (IP_FLOW_CONTROLLED_ULP(connp->conn_ulp) && 9838 !connp->conn_fully_bound)) { 9839 /* 9840 * We cache IRE_CACHEs to avoid lookups. We don't do 9841 * this for the tcp global queue and listen end point 9842 * as it does not really have a real destination to 9843 * talk to. 9844 */ 9845 ire = ire_cache_lookup_v6(v6dstp, zoneid, MBLK_GETLABEL(mp)); 9846 } else { 9847 /* 9848 * IRE_MARK_CONDEMNED is marked in ire_delete. We don't 9849 * grab a lock here to check for CONDEMNED as it is okay 9850 * to send a packet or two with the IRE_CACHE that is going 9851 * away. 9852 */ 9853 mutex_enter(&connp->conn_lock); 9854 ire = sctp_ire != NULL ? sctp_ire : connp->conn_ire_cache; 9855 if (ire != NULL && 9856 IN6_ARE_ADDR_EQUAL(&ire->ire_addr_v6, v6dstp) && 9857 !(ire->ire_marks & IRE_MARK_CONDEMNED)) { 9858 9859 IRE_REFHOLD(ire); 9860 mutex_exit(&connp->conn_lock); 9861 9862 } else { 9863 boolean_t cached = B_FALSE; 9864 9865 connp->conn_ire_cache = NULL; 9866 mutex_exit(&connp->conn_lock); 9867 /* Release the old ire */ 9868 if (ire != NULL && sctp_ire == NULL) 9869 IRE_REFRELE_NOTR(ire); 9870 9871 ire = ire_cache_lookup_v6(v6dstp, zoneid, 9872 MBLK_GETLABEL(mp)); 9873 if (ire != NULL) { 9874 IRE_REFHOLD_NOTR(ire); 9875 9876 mutex_enter(&connp->conn_lock); 9877 if (!(connp->conn_state_flags & CONN_CLOSING) && 9878 (connp->conn_ire_cache == NULL)) { 9879 rw_enter(&ire->ire_bucket->irb_lock, 9880 RW_READER); 9881 if (!(ire->ire_marks & 9882 IRE_MARK_CONDEMNED)) { 9883 connp->conn_ire_cache = ire; 9884 cached = B_TRUE; 9885 } 9886 rw_exit(&ire->ire_bucket->irb_lock); 9887 } 9888 mutex_exit(&connp->conn_lock); 9889 9890 /* 9891 * We can continue to use the ire but since it 9892 * was not cached, we should drop the extra 9893 * reference. 9894 */ 9895 if (!cached) 9896 IRE_REFRELE_NOTR(ire); 9897 } 9898 } 9899 } 9900 9901 if (ire != NULL) { 9902 if (do_outrequests) { 9903 /* Handle IRE_LOCAL's that might appear here */ 9904 if (ire->ire_type == IRE_CACHE) { 9905 mibptr = ((ill_t *)ire->ire_stq->q_ptr)-> 9906 ill_ip6_mib; 9907 } else { 9908 mibptr = ire->ire_ipif->ipif_ill->ill_ip6_mib; 9909 } 9910 BUMP_MIB(mibptr, ipv6OutRequests); 9911 } 9912 ASSERT(!attach_if); 9913 9914 /* 9915 * Check if the ire has the RTF_MULTIRT flag, inherited 9916 * from an IRE_OFFSUBNET ire entry in ip_newroute(). 9917 */ 9918 if (ire->ire_flags & RTF_MULTIRT) { 9919 /* 9920 * Force hop limit of multirouted packets if required. 9921 * The hop limit of such packets is bounded by the 9922 * ip_multirt_ttl ndd variable. 9923 * NDP packets must have a hop limit of 255; don't 9924 * change the hop limit in that case. 9925 */ 9926 if ((ip_multirt_ttl > 0) && 9927 (ip6h->ip6_hops > ip_multirt_ttl) && 9928 (ip6h->ip6_hops != IPV6_MAX_HOPS)) { 9929 if (ip_debug > 3) { 9930 ip2dbg(("ip_wput_v6: forcing multirt " 9931 "hop limit to %d (was %d) ", 9932 ip_multirt_ttl, ip6h->ip6_hops)); 9933 pr_addr_dbg("v6dst %s\n", AF_INET6, 9934 &ire->ire_addr_v6); 9935 } 9936 ip6h->ip6_hops = ip_multirt_ttl; 9937 } 9938 9939 /* 9940 * We look at this point if there are pending 9941 * unresolved routes. ire_multirt_need_resolve_v6() 9942 * checks in O(n) that all IRE_OFFSUBNET ire 9943 * entries for the packet's destination and 9944 * flagged RTF_MULTIRT are currently resolved. 9945 * If some remain unresolved, we do a copy 9946 * of the current message. It will be used 9947 * to initiate additional route resolutions. 9948 */ 9949 multirt_need_resolve = 9950 ire_multirt_need_resolve_v6(&ire->ire_addr_v6, 9951 MBLK_GETLABEL(first_mp)); 9952 ip2dbg(("ip_wput_v6: ire %p, " 9953 "multirt_need_resolve %d, first_mp %p\n", 9954 (void *)ire, multirt_need_resolve, 9955 (void *)first_mp)); 9956 if (multirt_need_resolve) { 9957 copy_mp = copymsg(first_mp); 9958 if (copy_mp != NULL) { 9959 MULTIRT_DEBUG_TAG(copy_mp); 9960 } 9961 } 9962 } 9963 ip_wput_ire_v6(q, first_mp, ire, unspec_src, cksum_request, 9964 connp, caller, 0, ip6i_flags, zoneid); 9965 if (need_decref) { 9966 CONN_DEC_REF(connp); 9967 connp = NULL; 9968 } 9969 IRE_REFRELE(ire); 9970 9971 /* 9972 * Try to resolve another multiroute if 9973 * ire_multirt_need_resolve_v6() deemed it necessary. 9974 * copy_mp will be consumed (sent or freed) by 9975 * ip_newroute_v6(). 9976 */ 9977 if (copy_mp != NULL) { 9978 if (mctl_present) { 9979 ip6h = (ip6_t *)copy_mp->b_cont->b_rptr; 9980 } else { 9981 ip6h = (ip6_t *)copy_mp->b_rptr; 9982 } 9983 ip_newroute_v6(q, copy_mp, &ip6h->ip6_dst, 9984 &ip6h->ip6_src, NULL, zoneid); 9985 } 9986 if (ill != NULL) 9987 ill_refrele(ill); 9988 return; 9989 } 9990 9991 /* 9992 * No full IRE for this destination. Send it to 9993 * ip_newroute_v6 to see if anything else matches. 9994 * Mark this packet as having originated on this 9995 * machine. 9996 * Update rptr if there was an ip6i_t header. 9997 */ 9998 mp->b_prev = NULL; 9999 mp->b_next = NULL; 10000 if (ip6i != NULL) 10001 mp->b_rptr -= sizeof (ip6i_t); 10002 10003 if (unspec_src) { 10004 if (ip6i == NULL) { 10005 /* 10006 * Add ip6i_t header to carry unspec_src 10007 * until the packet comes back in ip_wput_v6. 10008 */ 10009 mp = ip_add_info_v6(mp, NULL, v6dstp); 10010 if (mp == NULL) { 10011 if (do_outrequests) 10012 BUMP_MIB(mibptr, ipv6OutRequests); 10013 BUMP_MIB(mibptr, ipv6OutDiscards); 10014 if (mctl_present) 10015 freeb(first_mp); 10016 if (ill != NULL) 10017 ill_refrele(ill); 10018 if (need_decref) 10019 CONN_DEC_REF(connp); 10020 return; 10021 } 10022 ip6i = (ip6i_t *)mp->b_rptr; 10023 10024 if (mctl_present) { 10025 ASSERT(first_mp != mp); 10026 first_mp->b_cont = mp; 10027 } else { 10028 first_mp = mp; 10029 } 10030 10031 if ((mp->b_wptr - (uchar_t *)ip6i) == 10032 sizeof (ip6i_t)) { 10033 /* 10034 * ndp_resolver called from ip_newroute_v6 10035 * expects pulled up message. 10036 */ 10037 if (!pullupmsg(mp, -1)) { 10038 ip1dbg(("ip_wput_v6: pullupmsg" 10039 " failed\n")); 10040 if (do_outrequests) { 10041 BUMP_MIB(mibptr, 10042 ipv6OutRequests); 10043 } 10044 BUMP_MIB(mibptr, ipv6OutDiscards); 10045 freemsg(first_mp); 10046 if (ill != NULL) 10047 ill_refrele(ill); 10048 if (need_decref) 10049 CONN_DEC_REF(connp); 10050 return; 10051 } 10052 ip6i = (ip6i_t *)mp->b_rptr; 10053 } 10054 ip6h = (ip6_t *)&ip6i[1]; 10055 v6dstp = &ip6h->ip6_dst; 10056 } 10057 ip6i->ip6i_flags |= IP6I_UNSPEC_SRC; 10058 if (mctl_present) { 10059 ASSERT(io != NULL); 10060 io->ipsec_out_unspec_src = unspec_src; 10061 } 10062 } 10063 if (do_outrequests) 10064 BUMP_MIB(mibptr, ipv6OutRequests); 10065 if (need_decref) 10066 CONN_DEC_REF(connp); 10067 ip_newroute_v6(q, first_mp, v6dstp, &ip6h->ip6_src, NULL, zoneid); 10068 if (ill != NULL) 10069 ill_refrele(ill); 10070 return; 10071 10072 10073 /* 10074 * Handle multicast packets with or without an conn. 10075 * Assumes that the transports set ip6_hops taking 10076 * IPV6_MULTICAST_HOPS (and the other ways to set the hoplimit) 10077 * into account. 10078 */ 10079 ipv6multicast: 10080 ip2dbg(("ip_wput_v6: multicast\n")); 10081 10082 /* 10083 * 1. IPV6_BOUND_PIF takes precedence over all the ifindex settings 10084 * 2. If conn_nofailover_ill is set then use that ill. 10085 * 10086 * Hold the conn_lock till we refhold the ill of interest that is 10087 * pointed to from the conn. Since we cannot do an ill/ipif_refrele 10088 * while holding any locks, postpone the refrele until after the 10089 * conn_lock is dropped. 10090 */ 10091 if (connp != NULL) { 10092 mutex_enter(&connp->conn_lock); 10093 conn_lock_held = B_TRUE; 10094 } else { 10095 conn_lock_held = B_FALSE; 10096 } 10097 if (connp != NULL && connp->conn_outgoing_pill != NULL) { 10098 err = ill_check_and_refhold(connp->conn_outgoing_pill); 10099 if (err == ILL_LOOKUP_FAILED) { 10100 ip1dbg(("ip_output_v6: multicast" 10101 " conn_outgoing_pill no ipif\n")); 10102 multicast_discard: 10103 ASSERT(saved_ill == NULL); 10104 if (conn_lock_held) 10105 mutex_exit(&connp->conn_lock); 10106 if (ill != NULL) 10107 ill_refrele(ill); 10108 freemsg(first_mp); 10109 if (do_outrequests) 10110 BUMP_MIB(mibptr, ipv6OutDiscards); 10111 if (need_decref) 10112 CONN_DEC_REF(connp); 10113 return; 10114 } 10115 saved_ill = ill; 10116 ill = connp->conn_outgoing_pill; 10117 attach_if = B_TRUE; 10118 match_flags = MATCH_IRE_ILL; 10119 mibptr = ill->ill_ip6_mib; 10120 10121 /* 10122 * Check if we need an ire that will not be 10123 * looked up by anybody else i.e. HIDDEN. 10124 */ 10125 if (ill_is_probeonly(ill)) 10126 match_flags |= MATCH_IRE_MARK_HIDDEN; 10127 } else if (connp != NULL && connp->conn_nofailover_ill != NULL) { 10128 err = ill_check_and_refhold(connp->conn_nofailover_ill); 10129 if (err == ILL_LOOKUP_FAILED) { 10130 ip1dbg(("ip_output_v6: multicast" 10131 " conn_nofailover_ill no ipif\n")); 10132 goto multicast_discard; 10133 } 10134 saved_ill = ill; 10135 ill = connp->conn_nofailover_ill; 10136 attach_if = B_TRUE; 10137 match_flags = MATCH_IRE_ILL; 10138 10139 /* 10140 * Check if we need an ire that will not be 10141 * looked up by anybody else i.e. HIDDEN. 10142 */ 10143 if (ill_is_probeonly(ill)) 10144 match_flags |= MATCH_IRE_MARK_HIDDEN; 10145 } else if (ip6i != NULL && (ip6i->ip6i_flags & IP6I_ATTACH_IF)) { 10146 /* 10147 * Redo 1. If we did not find an IRE_CACHE the first time, 10148 * we should have an ip6i_t with IP6I_ATTACH_IF if 10149 * IPV6_BOUND_PIF or bind to the IPIF_NOFAILOVER address was 10150 * used on this endpoint. 10151 */ 10152 ASSERT(ip6i->ip6i_ifindex != 0); 10153 attach_if = B_TRUE; 10154 ASSERT(ill != NULL); 10155 match_flags = MATCH_IRE_ILL; 10156 10157 /* 10158 * Check if we need an ire that will not be 10159 * looked up by anybody else i.e. HIDDEN. 10160 */ 10161 if (ill_is_probeonly(ill)) 10162 match_flags |= MATCH_IRE_MARK_HIDDEN; 10163 } else if (ip6i != NULL && (ip6i->ip6i_flags & IP6I_IFINDEX)) { 10164 /* 3. If an ip6i_t with IP6I_IFINDEX set then use that ill. */ 10165 10166 ASSERT(ill != NULL); 10167 } else if (ill != NULL) { 10168 /* 10169 * 4. If q is an ill queue and (link local or multicast 10170 * destination) then use that ill. 10171 * We don't need the ipif initialization here. 10172 * This useless assert below is just to prevent lint from 10173 * reporting a null body if statement. 10174 */ 10175 ASSERT(ill != NULL); 10176 } else if (connp != NULL) { 10177 /* 10178 * 5. If IPV6_BOUND_IF has been set use that ill. 10179 * 10180 * 6. For multicast: if IPV6_MULTICAST_IF has been set use it. 10181 * Otherwise look for the best IRE match for the unspecified 10182 * group to determine the ill. 10183 * 10184 * conn_multicast_ill is used for only IPv6 packets. 10185 * conn_multicast_ipif is used for only IPv4 packets. 10186 * Thus a PF_INET6 socket send both IPv4 and IPv6 10187 * multicast packets using different IP*_MULTICAST_IF 10188 * interfaces. 10189 */ 10190 if (connp->conn_outgoing_ill != NULL) { 10191 err = ill_check_and_refhold(connp->conn_outgoing_ill); 10192 if (err == ILL_LOOKUP_FAILED) { 10193 ip1dbg(("ip_output_v6: multicast" 10194 " conn_outgoing_ill no ipif\n")); 10195 goto multicast_discard; 10196 } 10197 ill = connp->conn_outgoing_ill; 10198 } else if (connp->conn_multicast_ill != NULL) { 10199 err = ill_check_and_refhold(connp->conn_multicast_ill); 10200 if (err == ILL_LOOKUP_FAILED) { 10201 ip1dbg(("ip_output_v6: multicast" 10202 " conn_multicast_ill no ipif\n")); 10203 goto multicast_discard; 10204 } 10205 ill = connp->conn_multicast_ill; 10206 } else { 10207 mutex_exit(&connp->conn_lock); 10208 conn_lock_held = B_FALSE; 10209 ipif = ipif_lookup_group_v6(v6dstp, zoneid); 10210 if (ipif == NULL) { 10211 ip1dbg(("ip_output_v6: multicast no ipif\n")); 10212 goto multicast_discard; 10213 } 10214 /* 10215 * We have a ref to this ipif, so we can safely 10216 * access ipif_ill. 10217 */ 10218 ill = ipif->ipif_ill; 10219 mutex_enter(&ill->ill_lock); 10220 if (!ILL_CAN_LOOKUP(ill)) { 10221 mutex_exit(&ill->ill_lock); 10222 ipif_refrele(ipif); 10223 ill = NULL; 10224 ip1dbg(("ip_output_v6: multicast no ipif\n")); 10225 goto multicast_discard; 10226 } 10227 ill_refhold_locked(ill); 10228 mutex_exit(&ill->ill_lock); 10229 ipif_refrele(ipif); 10230 /* 10231 * Save binding until IPV6_MULTICAST_IF 10232 * changes it 10233 */ 10234 mutex_enter(&connp->conn_lock); 10235 connp->conn_multicast_ill = ill; 10236 connp->conn_orig_multicast_ifindex = 10237 ill->ill_phyint->phyint_ifindex; 10238 mutex_exit(&connp->conn_lock); 10239 } 10240 } 10241 if (conn_lock_held) 10242 mutex_exit(&connp->conn_lock); 10243 10244 if (saved_ill != NULL) 10245 ill_refrele(saved_ill); 10246 10247 ASSERT(ill != NULL); 10248 /* 10249 * For multicast loopback interfaces replace the multicast address 10250 * with a unicast address for the ire lookup. 10251 */ 10252 if (ill->ill_phyint->phyint_flags & PHYI_LOOPBACK) 10253 v6dstp = &ill->ill_ipif->ipif_v6lcl_addr; 10254 10255 mibptr = ill->ill_ip6_mib; 10256 if (do_outrequests) { 10257 BUMP_MIB(mibptr, ipv6OutRequests); 10258 do_outrequests = B_FALSE; 10259 } 10260 BUMP_MIB(mibptr, ipv6OutMcastPkts); 10261 10262 /* 10263 * As we may lose the conn by the time we reach ip_wput_ire_v6 10264 * we copy conn_multicast_loop and conn_dontroute on to an 10265 * ipsec_out. In case if this datagram goes out secure, 10266 * we need the ill_index also. Copy that also into the 10267 * ipsec_out. 10268 */ 10269 if (mctl_present) { 10270 io = (ipsec_out_t *)first_mp->b_rptr; 10271 ASSERT(first_mp->b_datap->db_type == M_CTL); 10272 ASSERT(io->ipsec_out_type == IPSEC_OUT); 10273 } else { 10274 ASSERT(mp == first_mp); 10275 if ((first_mp = ipsec_alloc_ipsec_out()) == NULL) { 10276 BUMP_MIB(mibptr, ipv6OutDiscards); 10277 freemsg(mp); 10278 if (ill != NULL) 10279 ill_refrele(ill); 10280 if (need_decref) 10281 CONN_DEC_REF(connp); 10282 return; 10283 } 10284 io = (ipsec_out_t *)first_mp->b_rptr; 10285 /* This is not a secure packet */ 10286 io->ipsec_out_secure = B_FALSE; 10287 io->ipsec_out_use_global_policy = B_TRUE; 10288 io->ipsec_out_zoneid = 10289 (zoneid != ALL_ZONES ? zoneid : GLOBAL_ZONEID); 10290 first_mp->b_cont = mp; 10291 mctl_present = B_TRUE; 10292 } 10293 io->ipsec_out_ill_index = ill->ill_phyint->phyint_ifindex; 10294 io->ipsec_out_unspec_src = unspec_src; 10295 if (connp != NULL) 10296 io->ipsec_out_dontroute = connp->conn_dontroute; 10297 10298 send_from_ill: 10299 ASSERT(ill != NULL); 10300 ASSERT(mibptr == ill->ill_ip6_mib); 10301 if (do_outrequests) { 10302 BUMP_MIB(mibptr, ipv6OutRequests); 10303 do_outrequests = B_FALSE; 10304 } 10305 10306 if (io != NULL) 10307 io->ipsec_out_ill_index = ill->ill_phyint->phyint_ifindex; 10308 10309 /* 10310 * When a specific ill is specified (using IPV6_PKTINFO, 10311 * IPV6_MULTICAST_IF, or IPV6_BOUND_IF) we will only match 10312 * on routing entries (ftable and ctable) that have a matching 10313 * ire->ire_ipif->ipif_ill. Thus this can only be used 10314 * for destinations that are on-link for the specific ill 10315 * and that can appear on multiple links. Thus it is useful 10316 * for multicast destinations, link-local destinations, and 10317 * at some point perhaps for site-local destinations (if the 10318 * node sits at a site boundary). 10319 * We create the cache entries in the regular ctable since 10320 * it can not "confuse" things for other destinations. 10321 * table. 10322 * 10323 * NOTE : conn_ire_cache is not used for caching ire_ctable_lookups. 10324 * It is used only when ire_cache_lookup is used above. 10325 */ 10326 ire = ire_ctable_lookup_v6(v6dstp, 0, 0, ill->ill_ipif, 10327 zoneid, MBLK_GETLABEL(mp), match_flags); 10328 if (ire != NULL) { 10329 /* 10330 * Check if the ire has the RTF_MULTIRT flag, inherited 10331 * from an IRE_OFFSUBNET ire entry in ip_newroute(). 10332 */ 10333 if (ire->ire_flags & RTF_MULTIRT) { 10334 /* 10335 * Force hop limit of multirouted packets if required. 10336 * The hop limit of such packets is bounded by the 10337 * ip_multirt_ttl ndd variable. 10338 * NDP packets must have a hop limit of 255; don't 10339 * change the hop limit in that case. 10340 */ 10341 if ((ip_multirt_ttl > 0) && 10342 (ip6h->ip6_hops > ip_multirt_ttl) && 10343 (ip6h->ip6_hops != IPV6_MAX_HOPS)) { 10344 if (ip_debug > 3) { 10345 ip2dbg(("ip_wput_v6: forcing multirt " 10346 "hop limit to %d (was %d) ", 10347 ip_multirt_ttl, ip6h->ip6_hops)); 10348 pr_addr_dbg("v6dst %s\n", AF_INET6, 10349 &ire->ire_addr_v6); 10350 } 10351 ip6h->ip6_hops = ip_multirt_ttl; 10352 } 10353 10354 /* 10355 * We look at this point if there are pending 10356 * unresolved routes. ire_multirt_need_resolve_v6() 10357 * checks in O(n) that all IRE_OFFSUBNET ire 10358 * entries for the packet's destination and 10359 * flagged RTF_MULTIRT are currently resolved. 10360 * If some remain unresolved, we make a copy 10361 * of the current message. It will be used 10362 * to initiate additional route resolutions. 10363 */ 10364 multirt_need_resolve = 10365 ire_multirt_need_resolve_v6(&ire->ire_addr_v6, 10366 MBLK_GETLABEL(first_mp)); 10367 ip2dbg(("ip_wput_v6[send_from_ill]: ire %p, " 10368 "multirt_need_resolve %d, first_mp %p\n", 10369 (void *)ire, multirt_need_resolve, 10370 (void *)first_mp)); 10371 if (multirt_need_resolve) { 10372 copy_mp = copymsg(first_mp); 10373 if (copy_mp != NULL) { 10374 MULTIRT_DEBUG_TAG(copy_mp); 10375 } 10376 } 10377 } 10378 10379 ip1dbg(("ip_wput_v6: send on %s, ire = %p, ill index = %d\n", 10380 ill->ill_name, (void *)ire, 10381 ill->ill_phyint->phyint_ifindex)); 10382 ip_wput_ire_v6(q, first_mp, ire, unspec_src, cksum_request, 10383 connp, caller, 10384 (attach_if ? ill->ill_phyint->phyint_ifindex : 0), 10385 ip6i_flags, zoneid); 10386 ire_refrele(ire); 10387 if (need_decref) { 10388 CONN_DEC_REF(connp); 10389 connp = NULL; 10390 } 10391 10392 /* 10393 * Try to resolve another multiroute if 10394 * ire_multirt_need_resolve_v6() deemed it necessary. 10395 * copy_mp will be consumed (sent or freed) by 10396 * ip_newroute_[ipif_]v6(). 10397 */ 10398 if (copy_mp != NULL) { 10399 if (mctl_present) { 10400 ip6h = (ip6_t *)copy_mp->b_cont->b_rptr; 10401 } else { 10402 ip6h = (ip6_t *)copy_mp->b_rptr; 10403 } 10404 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst)) { 10405 ipif = ipif_lookup_group_v6(&ip6h->ip6_dst, 10406 zoneid); 10407 if (ipif == NULL) { 10408 ip1dbg(("ip_wput_v6: No ipif for " 10409 "multicast\n")); 10410 MULTIRT_DEBUG_UNTAG(copy_mp); 10411 freemsg(copy_mp); 10412 return; 10413 } 10414 ip_newroute_ipif_v6(q, copy_mp, ipif, 10415 ip6h->ip6_dst, unspec_src, zoneid); 10416 ipif_refrele(ipif); 10417 } else { 10418 ip_newroute_v6(q, copy_mp, &ip6h->ip6_dst, 10419 &ip6h->ip6_src, ill, zoneid); 10420 } 10421 } 10422 ill_refrele(ill); 10423 return; 10424 } 10425 if (need_decref) { 10426 CONN_DEC_REF(connp); 10427 connp = NULL; 10428 } 10429 10430 /* Update rptr if there was an ip6i_t header. */ 10431 if (ip6i != NULL) 10432 mp->b_rptr -= sizeof (ip6i_t); 10433 if (unspec_src || attach_if) { 10434 if (ip6i == NULL) { 10435 /* 10436 * Add ip6i_t header to carry unspec_src 10437 * or attach_if until the packet comes back in 10438 * ip_wput_v6. 10439 */ 10440 if (mctl_present) { 10441 first_mp->b_cont = 10442 ip_add_info_v6(mp, NULL, v6dstp); 10443 mp = first_mp->b_cont; 10444 if (mp == NULL) 10445 freeb(first_mp); 10446 } else { 10447 first_mp = mp = ip_add_info_v6(mp, NULL, 10448 v6dstp); 10449 } 10450 if (mp == NULL) { 10451 BUMP_MIB(mibptr, ipv6OutDiscards); 10452 ill_refrele(ill); 10453 return; 10454 } 10455 ip6i = (ip6i_t *)mp->b_rptr; 10456 if ((mp->b_wptr - (uchar_t *)ip6i) == 10457 sizeof (ip6i_t)) { 10458 /* 10459 * ndp_resolver called from ip_newroute_v6 10460 * expects a pulled up message. 10461 */ 10462 if (!pullupmsg(mp, -1)) { 10463 ip1dbg(("ip_wput_v6: pullupmsg" 10464 " failed\n")); 10465 BUMP_MIB(mibptr, ipv6OutDiscards); 10466 freemsg(first_mp); 10467 return; 10468 } 10469 ip6i = (ip6i_t *)mp->b_rptr; 10470 } 10471 ip6h = (ip6_t *)&ip6i[1]; 10472 v6dstp = &ip6h->ip6_dst; 10473 } 10474 if (unspec_src) 10475 ip6i->ip6i_flags |= IP6I_UNSPEC_SRC; 10476 if (attach_if) { 10477 /* 10478 * Bind to nofailover/BOUND_PIF overrides ifindex. 10479 */ 10480 ip6i->ip6i_flags |= IP6I_ATTACH_IF; 10481 ip6i->ip6i_flags &= ~IP6I_IFINDEX; 10482 ip6i->ip6i_ifindex = ill->ill_phyint->phyint_ifindex; 10483 if (drop_if_delayed) { 10484 /* This is a multipathing probe packet */ 10485 ip6i->ip6i_flags |= IP6I_DROP_IFDELAYED; 10486 } 10487 } 10488 if (mctl_present) { 10489 ASSERT(io != NULL); 10490 io->ipsec_out_unspec_src = unspec_src; 10491 } 10492 } 10493 if (IN6_IS_ADDR_MULTICAST(v6dstp)) { 10494 ip_newroute_ipif_v6(q, first_mp, ill->ill_ipif, *v6dstp, 10495 unspec_src, zoneid); 10496 } else { 10497 ip_newroute_v6(q, first_mp, v6dstp, &ip6h->ip6_src, ill, 10498 zoneid); 10499 } 10500 ill_refrele(ill); 10501 return; 10502 10503 notv6: 10504 /* 10505 * XXX implement a IPv4 and IPv6 packet counter per conn and 10506 * switch when ratio exceeds e.g. 10:1 10507 */ 10508 if (q->q_next == NULL) { 10509 connp = Q_TO_CONN(q); 10510 10511 if (IPCL_IS_TCP(connp)) { 10512 /* change conn_send for the tcp_v4_connections */ 10513 connp->conn_send = ip_output; 10514 } else if (connp->conn_ulp == IPPROTO_SCTP) { 10515 /* The 'q' is the default SCTP queue */ 10516 connp = (conn_t *)arg; 10517 } else { 10518 ip_setqinfo(RD(q), IPV4_MINOR, B_TRUE); 10519 } 10520 } 10521 BUMP_MIB(mibptr, ipv6OutIPv4); 10522 (void) ip_output(arg, first_mp, arg2, caller); 10523 if (ill != NULL) 10524 ill_refrele(ill); 10525 } 10526 10527 /* 10528 * If this is a conn_t queue, then we pass in the conn. This includes the 10529 * zoneid. 10530 * Otherwise, this is a message for an ill_t queue, 10531 * in which case we use the global zoneid since those are all part of 10532 * the global zone. 10533 */ 10534 static void 10535 ip_wput_v6(queue_t *q, mblk_t *mp) 10536 { 10537 if (CONN_Q(q)) 10538 ip_output_v6(Q_TO_CONN(q), mp, q, IP_WPUT); 10539 else 10540 ip_output_v6(GLOBAL_ZONEID, mp, q, IP_WPUT); 10541 } 10542 10543 static void 10544 ipsec_out_attach_if(ipsec_out_t *io, int attach_index) 10545 { 10546 ASSERT(io->ipsec_out_type == IPSEC_OUT); 10547 io->ipsec_out_attach_if = B_TRUE; 10548 io->ipsec_out_ill_index = attach_index; 10549 } 10550 10551 /* 10552 * NULL send-to queue - packet is to be delivered locally. 10553 */ 10554 void 10555 ip_wput_local_v6(queue_t *q, ill_t *ill, ip6_t *ip6h, mblk_t *first_mp, 10556 ire_t *ire, int fanout_flags) 10557 { 10558 uint32_t ports; 10559 mblk_t *mp = first_mp, *first_mp1; 10560 boolean_t mctl_present; 10561 uint8_t nexthdr; 10562 uint16_t hdr_length; 10563 ipsec_out_t *io; 10564 mib2_ipv6IfStatsEntry_t *mibptr; 10565 ilm_t *ilm; 10566 uint_t nexthdr_offset; 10567 10568 if (DB_TYPE(mp) == M_CTL) { 10569 io = (ipsec_out_t *)mp->b_rptr; 10570 if (!io->ipsec_out_secure) { 10571 mp = mp->b_cont; 10572 freeb(first_mp); 10573 first_mp = mp; 10574 mctl_present = B_FALSE; 10575 } else { 10576 mctl_present = B_TRUE; 10577 mp = first_mp->b_cont; 10578 ipsec_out_to_in(first_mp); 10579 } 10580 } else { 10581 mctl_present = B_FALSE; 10582 } 10583 10584 nexthdr = ip6h->ip6_nxt; 10585 mibptr = ill->ill_ip6_mib; 10586 10587 /* Fastpath */ 10588 switch (nexthdr) { 10589 case IPPROTO_TCP: 10590 case IPPROTO_UDP: 10591 case IPPROTO_ICMPV6: 10592 case IPPROTO_SCTP: 10593 hdr_length = IPV6_HDR_LEN; 10594 nexthdr_offset = (uint_t)((uchar_t *)&ip6h->ip6_nxt - 10595 (uchar_t *)ip6h); 10596 break; 10597 default: { 10598 uint8_t *nexthdrp; 10599 10600 if (!ip_hdr_length_nexthdr_v6(mp, ip6h, 10601 &hdr_length, &nexthdrp)) { 10602 /* Malformed packet */ 10603 BUMP_MIB(mibptr, ipv6OutDiscards); 10604 freemsg(first_mp); 10605 return; 10606 } 10607 nexthdr = *nexthdrp; 10608 nexthdr_offset = nexthdrp - (uint8_t *)ip6h; 10609 break; 10610 } 10611 } 10612 10613 10614 DTRACE_PROBE4(ip6__loopback__in__start, 10615 ill_t *, ill, ill_t *, NULL, 10616 ip6_t *, ip6h, mblk_t *, first_mp); 10617 10618 FW_HOOKS6(ip6_loopback_in_event, ipv6firewall_loopback_in, 10619 ill, NULL, ip6h, first_mp, mp); 10620 10621 DTRACE_PROBE1(ip6__loopback__in__end, mblk_t *, first_mp); 10622 10623 if (first_mp == NULL) 10624 return; 10625 10626 nexthdr = ip6h->ip6_nxt; 10627 10628 UPDATE_OB_PKT_COUNT(ire); 10629 ire->ire_last_used_time = lbolt; 10630 10631 /* 10632 * Remove reacability confirmation bit from version field 10633 * before looping back the packet. 10634 */ 10635 if (ip6h->ip6_vcf & IP_FORWARD_PROG) { 10636 ip6h->ip6_vcf &= ~IP_FORWARD_PROG; 10637 } 10638 10639 switch (nexthdr) { 10640 case IPPROTO_TCP: 10641 if (DB_TYPE(mp) == M_DATA) { 10642 /* 10643 * M_DATA mblk, so init mblk (chain) for 10644 * no struio(). 10645 */ 10646 mblk_t *mp1 = mp; 10647 10648 do { 10649 mp1->b_datap->db_struioflag = 0; 10650 } while ((mp1 = mp1->b_cont) != NULL); 10651 } 10652 ports = *(uint32_t *)(mp->b_rptr + hdr_length + 10653 TCP_PORTS_OFFSET); 10654 ip_fanout_tcp_v6(q, first_mp, ip6h, ill, ill, 10655 fanout_flags|IP_FF_SEND_ICMP|IP_FF_SYN_ADDIRE| 10656 IP_FF_IP6INFO|IP6_NO_IPPOLICY|IP_FF_LOOPBACK, 10657 hdr_length, mctl_present, ire->ire_zoneid); 10658 return; 10659 10660 case IPPROTO_UDP: 10661 ports = *(uint32_t *)(mp->b_rptr + hdr_length + 10662 UDP_PORTS_OFFSET); 10663 ip_fanout_udp_v6(q, first_mp, ip6h, ports, ill, ill, 10664 fanout_flags|IP_FF_SEND_ICMP|IP_FF_IP6INFO| 10665 IP6_NO_IPPOLICY, mctl_present, ire->ire_zoneid); 10666 return; 10667 10668 case IPPROTO_SCTP: 10669 { 10670 uint_t ipif_seqid = ire->ire_ipif->ipif_seqid; 10671 10672 ports = *(uint32_t *)(mp->b_rptr + hdr_length); 10673 ip_fanout_sctp(mp, ill, (ipha_t *)ip6h, ports, 10674 fanout_flags|IP_FF_SEND_ICMP|IP_FF_IP6INFO, 10675 mctl_present, IP6_NO_IPPOLICY, ipif_seqid, 10676 ire->ire_zoneid); 10677 return; 10678 } 10679 case IPPROTO_ICMPV6: { 10680 icmp6_t *icmp6; 10681 10682 /* check for full IPv6+ICMPv6 header */ 10683 if ((mp->b_wptr - mp->b_rptr) < 10684 (hdr_length + ICMP6_MINLEN)) { 10685 if (!pullupmsg(mp, hdr_length + ICMP6_MINLEN)) { 10686 ip1dbg(("ip_wput_v6: ICMP hdr pullupmsg" 10687 " failed\n")); 10688 BUMP_MIB(mibptr, ipv6OutDiscards); 10689 freemsg(first_mp); 10690 return; 10691 } 10692 ip6h = (ip6_t *)mp->b_rptr; 10693 } 10694 icmp6 = (icmp6_t *)((uchar_t *)ip6h + hdr_length); 10695 10696 /* Update output mib stats */ 10697 icmp_update_out_mib_v6(ill, icmp6); 10698 10699 /* Check variable for testing applications */ 10700 if (ipv6_drop_inbound_icmpv6) { 10701 freemsg(first_mp); 10702 return; 10703 } 10704 /* 10705 * Assume that there is always at least one conn for 10706 * ICMPv6 (in.ndpd) i.e. don't optimize the case 10707 * where there is no conn. 10708 */ 10709 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst) && 10710 !(ill->ill_phyint->phyint_flags & PHYI_LOOPBACK)) { 10711 /* 10712 * In the multicast case, applications may have 10713 * joined the group from different zones, so we 10714 * need to deliver the packet to each of them. 10715 * Loop through the multicast memberships 10716 * structures (ilm) on the receive ill and send 10717 * a copy of the packet up each matching one. 10718 * However, we don't do this for multicasts sent 10719 * on the loopback interface (PHYI_LOOPBACK flag 10720 * set) as they must stay in the sender's zone. 10721 */ 10722 ILM_WALKER_HOLD(ill); 10723 for (ilm = ill->ill_ilm; ilm != NULL; 10724 ilm = ilm->ilm_next) { 10725 if (ilm->ilm_flags & ILM_DELETED) 10726 continue; 10727 if (!IN6_ARE_ADDR_EQUAL( 10728 &ilm->ilm_v6addr, &ip6h->ip6_dst)) 10729 continue; 10730 if ((fanout_flags & 10731 IP_FF_NO_MCAST_LOOP) && 10732 ilm->ilm_zoneid == ire->ire_zoneid) 10733 continue; 10734 if (!ipif_lookup_zoneid(ill, 10735 ilm->ilm_zoneid, IPIF_UP, NULL)) 10736 continue; 10737 10738 first_mp1 = ip_copymsg(first_mp); 10739 if (first_mp1 == NULL) 10740 continue; 10741 icmp_inbound_v6(q, first_mp1, ill, 10742 hdr_length, mctl_present, 10743 IP6_NO_IPPOLICY, ilm->ilm_zoneid, 10744 NULL); 10745 } 10746 ILM_WALKER_RELE(ill); 10747 } else { 10748 first_mp1 = ip_copymsg(first_mp); 10749 if (first_mp1 != NULL) 10750 icmp_inbound_v6(q, first_mp1, ill, 10751 hdr_length, mctl_present, 10752 IP6_NO_IPPOLICY, ire->ire_zoneid, 10753 NULL); 10754 } 10755 } 10756 /* FALLTHRU */ 10757 default: { 10758 /* 10759 * Handle protocols with which IPv6 is less intimate. 10760 */ 10761 fanout_flags |= IP_FF_RAWIP|IP_FF_IP6INFO; 10762 10763 /* 10764 * Enable sending ICMP for "Unknown" nexthdr 10765 * case. i.e. where we did not FALLTHRU from 10766 * IPPROTO_ICMPV6 processing case above. 10767 */ 10768 if (nexthdr != IPPROTO_ICMPV6) 10769 fanout_flags |= IP_FF_SEND_ICMP; 10770 /* 10771 * Note: There can be more than one stream bound 10772 * to a particular protocol. When this is the case, 10773 * each one gets a copy of any incoming packets. 10774 */ 10775 ip_fanout_proto_v6(q, first_mp, ip6h, ill, ill, nexthdr, 10776 nexthdr_offset, fanout_flags|IP6_NO_IPPOLICY, 10777 mctl_present, ire->ire_zoneid); 10778 return; 10779 } 10780 } 10781 } 10782 10783 /* 10784 * Send packet using IRE. 10785 * Checksumming is controlled by cksum_request: 10786 * -1 => normal i.e. TCP/UDP/SCTP/ICMPv6 are checksummed and nothing else. 10787 * 1 => Skip TCP/UDP/SCTP checksum 10788 * Otherwise => checksum_request contains insert offset for checksum 10789 * 10790 * Assumes that the following set of headers appear in the first 10791 * mblk: 10792 * ip6_t 10793 * Any extension headers 10794 * TCP/UDP/SCTP header (if present) 10795 * The routine can handle an ICMPv6 header that is not in the first mblk. 10796 * 10797 * NOTE : This function does not ire_refrele the ire passed in as the 10798 * argument unlike ip_wput_ire where the REFRELE is done. 10799 * Refer to ip_wput_ire for more on this. 10800 */ 10801 static void 10802 ip_wput_ire_v6(queue_t *q, mblk_t *mp, ire_t *ire, int unspec_src, 10803 int cksum_request, conn_t *connp, int caller, int attach_index, int flags, 10804 zoneid_t zoneid) 10805 { 10806 ip6_t *ip6h; 10807 uint8_t nexthdr; 10808 uint16_t hdr_length; 10809 uint_t reachable = 0x0; 10810 ill_t *ill; 10811 mib2_ipv6IfStatsEntry_t *mibptr; 10812 mblk_t *first_mp; 10813 boolean_t mctl_present; 10814 ipsec_out_t *io; 10815 boolean_t conn_dontroute; /* conn value for multicast */ 10816 boolean_t conn_multicast_loop; /* conn value for multicast */ 10817 boolean_t multicast_forward; /* Should we forward ? */ 10818 int max_frag; 10819 10820 ill = ire_to_ill(ire); 10821 first_mp = mp; 10822 multicast_forward = B_FALSE; 10823 10824 if (mp->b_datap->db_type != M_CTL) { 10825 ip6h = (ip6_t *)first_mp->b_rptr; 10826 } else { 10827 io = (ipsec_out_t *)first_mp->b_rptr; 10828 ASSERT(io->ipsec_out_type == IPSEC_OUT); 10829 /* 10830 * Grab the zone id now because the M_CTL can be discarded by 10831 * ip_wput_ire_parse_ipsec_out() below. 10832 */ 10833 ASSERT(zoneid == io->ipsec_out_zoneid); 10834 ASSERT(zoneid != ALL_ZONES); 10835 ip6h = (ip6_t *)first_mp->b_cont->b_rptr; 10836 /* 10837 * For the multicast case, ipsec_out carries conn_dontroute and 10838 * conn_multicast_loop as conn may not be available here. We 10839 * need this for multicast loopback and forwarding which is done 10840 * later in the code. 10841 */ 10842 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst)) { 10843 conn_dontroute = io->ipsec_out_dontroute; 10844 conn_multicast_loop = io->ipsec_out_multicast_loop; 10845 /* 10846 * If conn_dontroute is not set or conn_multicast_loop 10847 * is set, we need to do forwarding/loopback. For 10848 * datagrams from ip_wput_multicast, conn_dontroute is 10849 * set to B_TRUE and conn_multicast_loop is set to 10850 * B_FALSE so that we neither do forwarding nor 10851 * loopback. 10852 */ 10853 if (!conn_dontroute || conn_multicast_loop) 10854 multicast_forward = B_TRUE; 10855 } 10856 } 10857 10858 /* 10859 * If the sender didn't supply the hop limit and there is a default 10860 * unicast hop limit associated with the output interface, we use 10861 * that if the packet is unicast. Interface specific unicast hop 10862 * limits as set via the SIOCSLIFLNKINFO ioctl. 10863 */ 10864 if (ill->ill_max_hops != 0 && !(flags & IP6I_HOPLIMIT) && 10865 !(IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst))) { 10866 ip6h->ip6_hops = ill->ill_max_hops; 10867 } 10868 10869 if (ire->ire_type == IRE_LOCAL && ire->ire_zoneid != zoneid && 10870 ire->ire_zoneid != ALL_ZONES) { 10871 /* 10872 * When a zone sends a packet to another zone, we try to deliver 10873 * the packet under the same conditions as if the destination 10874 * was a real node on the network. To do so, we look for a 10875 * matching route in the forwarding table. 10876 * RTF_REJECT and RTF_BLACKHOLE are handled just like 10877 * ip_newroute_v6() does. 10878 * Note that IRE_LOCAL are special, since they are used 10879 * when the zoneid doesn't match in some cases. This means that 10880 * we need to handle ipha_src differently since ire_src_addr 10881 * belongs to the receiving zone instead of the sending zone. 10882 * When ip_restrict_interzone_loopback is set, then 10883 * ire_cache_lookup_v6() ensures that IRE_LOCAL are only used 10884 * for loopback between zones when the logical "Ethernet" would 10885 * have looped them back. 10886 */ 10887 ire_t *src_ire; 10888 10889 src_ire = ire_ftable_lookup_v6(&ip6h->ip6_dst, 0, 0, 0, 10890 NULL, NULL, zoneid, 0, NULL, (MATCH_IRE_RECURSIVE | 10891 MATCH_IRE_DEFAULT | MATCH_IRE_RJ_BHOLE)); 10892 if (src_ire != NULL && 10893 !(src_ire->ire_flags & (RTF_REJECT | RTF_BLACKHOLE)) && 10894 (!ip_restrict_interzone_loopback || 10895 ire_local_same_ill_group(ire, src_ire))) { 10896 if (IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src) && 10897 !unspec_src) { 10898 ip6h->ip6_src = src_ire->ire_src_addr_v6; 10899 } 10900 ire_refrele(src_ire); 10901 } else { 10902 BUMP_MIB(ill->ill_ip6_mib, ipv6OutNoRoutes); 10903 if (src_ire != NULL) { 10904 if (src_ire->ire_flags & RTF_BLACKHOLE) { 10905 ire_refrele(src_ire); 10906 freemsg(first_mp); 10907 return; 10908 } 10909 ire_refrele(src_ire); 10910 } 10911 if (ip_hdr_complete_v6(ip6h, zoneid)) { 10912 /* Failed */ 10913 freemsg(first_mp); 10914 return; 10915 } 10916 icmp_unreachable_v6(q, first_mp, 10917 ICMP6_DST_UNREACH_NOROUTE, B_FALSE, B_FALSE, 10918 zoneid); 10919 return; 10920 } 10921 } 10922 10923 if (mp->b_datap->db_type == M_CTL || ipsec_outbound_v6_policy_present) { 10924 mp = ip_wput_ire_parse_ipsec_out(first_mp, NULL, ip6h, ire, 10925 connp, unspec_src, zoneid); 10926 if (mp == NULL) { 10927 return; 10928 } 10929 } 10930 10931 first_mp = mp; 10932 if (mp->b_datap->db_type == M_CTL) { 10933 io = (ipsec_out_t *)mp->b_rptr; 10934 ASSERT(io->ipsec_out_type == IPSEC_OUT); 10935 mp = mp->b_cont; 10936 mctl_present = B_TRUE; 10937 } else { 10938 mctl_present = B_FALSE; 10939 } 10940 10941 ip6h = (ip6_t *)mp->b_rptr; 10942 nexthdr = ip6h->ip6_nxt; 10943 mibptr = ill->ill_ip6_mib; 10944 10945 if (IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src) && !unspec_src) { 10946 ipif_t *ipif; 10947 10948 /* 10949 * Select the source address using ipif_select_source_v6. 10950 */ 10951 if (attach_index != 0) { 10952 ipif = ipif_select_source_v6(ill, &ip6h->ip6_dst, 10953 RESTRICT_TO_ILL, IPV6_PREFER_SRC_DEFAULT, zoneid); 10954 } else { 10955 ipif = ipif_select_source_v6(ill, &ip6h->ip6_dst, 10956 RESTRICT_TO_NONE, IPV6_PREFER_SRC_DEFAULT, zoneid); 10957 } 10958 if (ipif == NULL) { 10959 if (ip_debug > 2) { 10960 /* ip1dbg */ 10961 pr_addr_dbg("ip_wput_ire_v6: no src for " 10962 "dst %s\n, ", AF_INET6, &ip6h->ip6_dst); 10963 printf("ip_wput_ire_v6: interface name %s\n", 10964 ill->ill_name); 10965 } 10966 freemsg(first_mp); 10967 return; 10968 } 10969 ip6h->ip6_src = ipif->ipif_v6src_addr; 10970 ipif_refrele(ipif); 10971 } 10972 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst)) { 10973 if ((connp != NULL && connp->conn_multicast_loop) || 10974 !(ill->ill_phyint->phyint_flags & PHYI_LOOPBACK)) { 10975 ilm_t *ilm; 10976 10977 ILM_WALKER_HOLD(ill); 10978 ilm = ilm_lookup_ill_v6(ill, &ip6h->ip6_dst, ALL_ZONES); 10979 ILM_WALKER_RELE(ill); 10980 if (ilm != NULL) { 10981 mblk_t *nmp; 10982 int fanout_flags = 0; 10983 10984 if (connp != NULL && 10985 !connp->conn_multicast_loop) { 10986 fanout_flags |= IP_FF_NO_MCAST_LOOP; 10987 } 10988 ip1dbg(("ip_wput_ire_v6: " 10989 "Loopback multicast\n")); 10990 nmp = ip_copymsg(first_mp); 10991 if (nmp != NULL) { 10992 ip6_t *nip6h; 10993 mblk_t *mp_ip6h; 10994 10995 if (mctl_present) { 10996 nip6h = (ip6_t *) 10997 nmp->b_cont->b_rptr; 10998 mp_ip6h = nmp->b_cont; 10999 } else { 11000 nip6h = (ip6_t *)nmp->b_rptr; 11001 mp_ip6h = nmp; 11002 } 11003 11004 DTRACE_PROBE4( 11005 ip6__loopback__out__start, 11006 ill_t *, NULL, 11007 ill_t *, ill, 11008 ip6_t *, nip6h, 11009 mblk_t *, nmp); 11010 11011 FW_HOOKS6(ip6_loopback_out_event, 11012 ipv6firewall_loopback_out, 11013 NULL, ill, nip6h, nmp, mp_ip6h); 11014 11015 DTRACE_PROBE1( 11016 ip6__loopback__out__end, 11017 mblk_t *, nmp); 11018 11019 if (nmp != NULL) { 11020 /* 11021 * Deliver locally and to 11022 * every local zone, except 11023 * the sending zone when 11024 * IPV6_MULTICAST_LOOP is 11025 * disabled. 11026 */ 11027 ip_wput_local_v6(RD(q), ill, 11028 nip6h, nmp, 11029 ire, fanout_flags); 11030 } 11031 } else { 11032 BUMP_MIB(mibptr, ipv6OutDiscards); 11033 ip1dbg(("ip_wput_ire_v6: " 11034 "copymsg failed\n")); 11035 } 11036 } 11037 } 11038 if (ip6h->ip6_hops == 0 || 11039 IN6_IS_ADDR_MC_NODELOCAL(&ip6h->ip6_dst) || 11040 (ill->ill_phyint->phyint_flags & PHYI_LOOPBACK)) { 11041 /* 11042 * Local multicast or just loopback on loopback 11043 * interface. 11044 */ 11045 BUMP_MIB(mibptr, ipv6OutMcastPkts); 11046 ip1dbg(("ip_wput_ire_v6: local multicast only\n")); 11047 freemsg(first_mp); 11048 return; 11049 } 11050 } 11051 11052 if (ire->ire_stq != NULL) { 11053 uint32_t sum; 11054 uint_t ill_index = ((ill_t *)ire->ire_stq->q_ptr)-> 11055 ill_phyint->phyint_ifindex; 11056 queue_t *dev_q = ire->ire_stq->q_next; 11057 11058 /* 11059 * non-NULL send-to queue - packet is to be sent 11060 * out an interface. 11061 */ 11062 11063 /* Driver is flow-controlling? */ 11064 if (!IP_FLOW_CONTROLLED_ULP(nexthdr) && 11065 ((dev_q->q_next || dev_q->q_first) && !canput(dev_q))) { 11066 /* 11067 * Queue packet if we have an conn to give back 11068 * pressure. We can't queue packets intended for 11069 * hardware acceleration since we've tossed that 11070 * state already. If the packet is being fed back 11071 * from ire_send_v6, we don't know the position in 11072 * the queue to enqueue the packet and we discard 11073 * the packet. 11074 */ 11075 if (ip_output_queue && connp != NULL && 11076 !mctl_present && caller != IRE_SEND) { 11077 if (caller == IP_WSRV) { 11078 connp->conn_did_putbq = 1; 11079 (void) putbq(connp->conn_wq, mp); 11080 conn_drain_insert(connp); 11081 /* 11082 * caller == IP_WSRV implies we are 11083 * the service thread, and the 11084 * queue is already noenabled. 11085 * The check for canput and 11086 * the putbq is not atomic. 11087 * So we need to check again. 11088 */ 11089 if (canput(dev_q)) 11090 connp->conn_did_putbq = 0; 11091 } else { 11092 (void) putq(connp->conn_wq, mp); 11093 } 11094 return; 11095 } 11096 BUMP_MIB(mibptr, ipv6OutDiscards); 11097 freemsg(first_mp); 11098 return; 11099 } 11100 11101 /* 11102 * Look for reachability confirmations from the transport. 11103 */ 11104 if (ip6h->ip6_vcf & IP_FORWARD_PROG) { 11105 reachable |= IPV6_REACHABILITY_CONFIRMATION; 11106 ip6h->ip6_vcf &= ~IP_FORWARD_PROG; 11107 if (mctl_present) 11108 io->ipsec_out_reachable = B_TRUE; 11109 } 11110 /* Fastpath */ 11111 switch (nexthdr) { 11112 case IPPROTO_TCP: 11113 case IPPROTO_UDP: 11114 case IPPROTO_ICMPV6: 11115 case IPPROTO_SCTP: 11116 hdr_length = IPV6_HDR_LEN; 11117 break; 11118 default: { 11119 uint8_t *nexthdrp; 11120 11121 if (!ip_hdr_length_nexthdr_v6(mp, ip6h, 11122 &hdr_length, &nexthdrp)) { 11123 /* Malformed packet */ 11124 BUMP_MIB(mibptr, ipv6OutDiscards); 11125 freemsg(first_mp); 11126 return; 11127 } 11128 nexthdr = *nexthdrp; 11129 break; 11130 } 11131 } 11132 11133 if (cksum_request != -1 && nexthdr != IPPROTO_ICMPV6) { 11134 uint16_t *up; 11135 uint16_t *insp; 11136 11137 /* 11138 * The packet header is processed once for all, even 11139 * in the multirouting case. We disable hardware 11140 * checksum if the packet is multirouted, as it will be 11141 * replicated via several interfaces, and not all of 11142 * them may have this capability. 11143 */ 11144 if (cksum_request == 1 && 11145 !(ire->ire_flags & RTF_MULTIRT)) { 11146 /* Skip the transport checksum */ 11147 goto cksum_done; 11148 } 11149 /* 11150 * Do user-configured raw checksum. 11151 * Compute checksum and insert at offset "cksum_request" 11152 */ 11153 11154 /* check for enough headers for checksum */ 11155 cksum_request += hdr_length; /* offset from rptr */ 11156 if ((mp->b_wptr - mp->b_rptr) < 11157 (cksum_request + sizeof (int16_t))) { 11158 if (!pullupmsg(mp, 11159 cksum_request + sizeof (int16_t))) { 11160 ip1dbg(("ip_wput_v6: ICMP hdr pullupmsg" 11161 " failed\n")); 11162 BUMP_MIB(mibptr, ipv6OutDiscards); 11163 freemsg(first_mp); 11164 return; 11165 } 11166 ip6h = (ip6_t *)mp->b_rptr; 11167 } 11168 insp = (uint16_t *)((uchar_t *)ip6h + cksum_request); 11169 ASSERT(((uintptr_t)insp & 0x1) == 0); 11170 up = (uint16_t *)&ip6h->ip6_src; 11171 /* 11172 * icmp has placed length and routing 11173 * header adjustment in *insp. 11174 */ 11175 sum = htons(nexthdr) + 11176 up[0] + up[1] + up[2] + up[3] + 11177 up[4] + up[5] + up[6] + up[7] + 11178 up[8] + up[9] + up[10] + up[11] + 11179 up[12] + up[13] + up[14] + up[15]; 11180 sum = (sum & 0xffff) + (sum >> 16); 11181 *insp = IP_CSUM(mp, hdr_length, sum); 11182 if (*insp == 0) 11183 *insp = 0xFFFF; 11184 } else if (nexthdr == IPPROTO_TCP) { 11185 uint16_t *up; 11186 11187 /* 11188 * Check for full IPv6 header + enough TCP header 11189 * to get at the checksum field. 11190 */ 11191 if ((mp->b_wptr - mp->b_rptr) < 11192 (hdr_length + TCP_CHECKSUM_OFFSET + 11193 TCP_CHECKSUM_SIZE)) { 11194 if (!pullupmsg(mp, hdr_length + 11195 TCP_CHECKSUM_OFFSET + TCP_CHECKSUM_SIZE)) { 11196 ip1dbg(("ip_wput_v6: TCP hdr pullupmsg" 11197 " failed\n")); 11198 BUMP_MIB(mibptr, ipv6OutDiscards); 11199 freemsg(first_mp); 11200 return; 11201 } 11202 ip6h = (ip6_t *)mp->b_rptr; 11203 } 11204 11205 up = (uint16_t *)&ip6h->ip6_src; 11206 /* 11207 * Note: The TCP module has stored the length value 11208 * into the tcp checksum field, so we don't 11209 * need to explicitly sum it in here. 11210 */ 11211 sum = up[0] + up[1] + up[2] + up[3] + 11212 up[4] + up[5] + up[6] + up[7] + 11213 up[8] + up[9] + up[10] + up[11] + 11214 up[12] + up[13] + up[14] + up[15]; 11215 11216 /* Fold the initial sum */ 11217 sum = (sum & 0xffff) + (sum >> 16); 11218 11219 up = (uint16_t *)(((uchar_t *)ip6h) + 11220 hdr_length + TCP_CHECKSUM_OFFSET); 11221 11222 IP_CKSUM_XMIT(ill, ire, mp, ip6h, up, IPPROTO_TCP, 11223 hdr_length, ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN, 11224 ire->ire_max_frag, mctl_present, sum); 11225 11226 /* Software checksum? */ 11227 if (DB_CKSUMFLAGS(mp) == 0) { 11228 IP6_STAT(ip6_out_sw_cksum); 11229 IP6_STAT_UPDATE(ip6_tcp_out_sw_cksum_bytes, 11230 (ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN) - 11231 hdr_length); 11232 } 11233 } else if (nexthdr == IPPROTO_UDP) { 11234 uint16_t *up; 11235 11236 /* 11237 * check for full IPv6 header + enough UDP header 11238 * to get at the UDP checksum field 11239 */ 11240 if ((mp->b_wptr - mp->b_rptr) < (hdr_length + 11241 UDP_CHECKSUM_OFFSET + UDP_CHECKSUM_SIZE)) { 11242 if (!pullupmsg(mp, hdr_length + 11243 UDP_CHECKSUM_OFFSET + UDP_CHECKSUM_SIZE)) { 11244 ip1dbg(("ip_wput_v6: UDP hdr pullupmsg" 11245 " failed\n")); 11246 BUMP_MIB(mibptr, ipv6OutDiscards); 11247 freemsg(first_mp); 11248 return; 11249 } 11250 ip6h = (ip6_t *)mp->b_rptr; 11251 } 11252 up = (uint16_t *)&ip6h->ip6_src; 11253 /* 11254 * Note: The UDP module has stored the length value 11255 * into the udp checksum field, so we don't 11256 * need to explicitly sum it in here. 11257 */ 11258 sum = up[0] + up[1] + up[2] + up[3] + 11259 up[4] + up[5] + up[6] + up[7] + 11260 up[8] + up[9] + up[10] + up[11] + 11261 up[12] + up[13] + up[14] + up[15]; 11262 11263 /* Fold the initial sum */ 11264 sum = (sum & 0xffff) + (sum >> 16); 11265 11266 up = (uint16_t *)(((uchar_t *)ip6h) + 11267 hdr_length + UDP_CHECKSUM_OFFSET); 11268 11269 IP_CKSUM_XMIT(ill, ire, mp, ip6h, up, IPPROTO_UDP, 11270 hdr_length, ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN, 11271 ire->ire_max_frag, mctl_present, sum); 11272 11273 /* Software checksum? */ 11274 if (DB_CKSUMFLAGS(mp) == 0) { 11275 IP6_STAT(ip6_out_sw_cksum); 11276 IP6_STAT_UPDATE(ip6_udp_out_sw_cksum_bytes, 11277 (ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN) - 11278 hdr_length); 11279 } 11280 } else if (nexthdr == IPPROTO_ICMPV6) { 11281 uint16_t *up; 11282 icmp6_t *icmp6; 11283 11284 /* check for full IPv6+ICMPv6 header */ 11285 if ((mp->b_wptr - mp->b_rptr) < 11286 (hdr_length + ICMP6_MINLEN)) { 11287 if (!pullupmsg(mp, hdr_length + ICMP6_MINLEN)) { 11288 ip1dbg(("ip_wput_v6: ICMP hdr pullupmsg" 11289 " failed\n")); 11290 BUMP_MIB(mibptr, ipv6OutDiscards); 11291 freemsg(first_mp); 11292 return; 11293 } 11294 ip6h = (ip6_t *)mp->b_rptr; 11295 } 11296 icmp6 = (icmp6_t *)((uchar_t *)ip6h + hdr_length); 11297 up = (uint16_t *)&ip6h->ip6_src; 11298 /* 11299 * icmp has placed length and routing 11300 * header adjustment in icmp6_cksum. 11301 */ 11302 sum = htons(IPPROTO_ICMPV6) + 11303 up[0] + up[1] + up[2] + up[3] + 11304 up[4] + up[5] + up[6] + up[7] + 11305 up[8] + up[9] + up[10] + up[11] + 11306 up[12] + up[13] + up[14] + up[15]; 11307 sum = (sum & 0xffff) + (sum >> 16); 11308 icmp6->icmp6_cksum = IP_CSUM(mp, hdr_length, sum); 11309 if (icmp6->icmp6_cksum == 0) 11310 icmp6->icmp6_cksum = 0xFFFF; 11311 11312 /* Update output mib stats */ 11313 icmp_update_out_mib_v6(ill, icmp6); 11314 } else if (nexthdr == IPPROTO_SCTP) { 11315 sctp_hdr_t *sctph; 11316 11317 if (MBLKL(mp) < (hdr_length + sizeof (*sctph))) { 11318 if (!pullupmsg(mp, hdr_length + 11319 sizeof (*sctph))) { 11320 ip1dbg(("ip_wput_v6: SCTP hdr pullupmsg" 11321 " failed\n")); 11322 BUMP_MIB(ill->ill_ip6_mib, 11323 ipv6OutDiscards); 11324 freemsg(mp); 11325 return; 11326 } 11327 ip6h = (ip6_t *)mp->b_rptr; 11328 } 11329 sctph = (sctp_hdr_t *)(mp->b_rptr + hdr_length); 11330 sctph->sh_chksum = 0; 11331 sctph->sh_chksum = sctp_cksum(mp, hdr_length); 11332 } 11333 11334 cksum_done: 11335 /* 11336 * We force the insertion of a fragment header using the 11337 * IPH_FRAG_HDR flag in two cases: 11338 * - after reception of an ICMPv6 "packet too big" message 11339 * with a MTU < 1280 (cf. RFC 2460 section 5) 11340 * - for multirouted IPv6 packets, so that the receiver can 11341 * discard duplicates according to their fragment identifier 11342 * 11343 * Two flags modifed from the API can modify this behavior. 11344 * The first is IPV6_USE_MIN_MTU. With this API the user 11345 * can specify how to manage PMTUD for unicast and multicast. 11346 * 11347 * IPV6_DONTFRAG disallows fragmentation. 11348 */ 11349 max_frag = ire->ire_max_frag; 11350 switch (IP6I_USE_MIN_MTU_API(flags)) { 11351 case IPV6_USE_MIN_MTU_DEFAULT: 11352 case IPV6_USE_MIN_MTU_UNICAST: 11353 if (IN6_IS_ADDR_MULTICAST(&ip6h->ip6_dst)) { 11354 max_frag = IPV6_MIN_MTU; 11355 } 11356 break; 11357 11358 case IPV6_USE_MIN_MTU_NEVER: 11359 max_frag = IPV6_MIN_MTU; 11360 break; 11361 } 11362 if (ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN > max_frag || 11363 (ire->ire_frag_flag & IPH_FRAG_HDR)) { 11364 if (connp != NULL && (flags & IP6I_DONTFRAG)) { 11365 icmp_pkt2big_v6(ire->ire_stq, first_mp, 11366 max_frag, B_FALSE, B_TRUE, zoneid); 11367 return; 11368 } 11369 11370 if (ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN != 11371 (mp->b_cont ? msgdsize(mp) : 11372 mp->b_wptr - (uchar_t *)ip6h)) { 11373 ip0dbg(("Packet length mismatch: %d, %ld\n", 11374 ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN, 11375 msgdsize(mp))); 11376 freemsg(first_mp); 11377 return; 11378 } 11379 /* Do IPSEC processing first */ 11380 if (mctl_present) { 11381 if (attach_index != 0) 11382 ipsec_out_attach_if(io, attach_index); 11383 ipsec_out_process(q, first_mp, ire, ill_index); 11384 return; 11385 } 11386 ASSERT(mp->b_prev == NULL); 11387 ip2dbg(("Fragmenting Size = %d, mtu = %d\n", 11388 ntohs(ip6h->ip6_plen) + 11389 IPV6_HDR_LEN, max_frag)); 11390 ASSERT(mp == first_mp); 11391 /* Initiate IPPF processing */ 11392 if (IPP_ENABLED(IPP_LOCAL_OUT)) { 11393 ip_process(IPP_LOCAL_OUT, &mp, ill_index); 11394 if (mp == NULL) { 11395 return; 11396 } 11397 } 11398 ip_wput_frag_v6(mp, ire, reachable, connp, 11399 caller, max_frag); 11400 return; 11401 } 11402 /* Do IPSEC processing first */ 11403 if (mctl_present) { 11404 int extra_len = ipsec_out_extra_length(first_mp); 11405 11406 if (ntohs(ip6h->ip6_plen) + IPV6_HDR_LEN + extra_len > 11407 max_frag && ip_ulp_cando_pkt2big(nexthdr)) { 11408 /* 11409 * IPsec headers will push the packet over the 11410 * MTU limit. Issue an ICMPv6 Packet Too Big 11411 * message for this packet if the upper-layer 11412 * that issued this packet will be able to 11413 * react to the icmp_pkt2big_v6() that we'll 11414 * generate. 11415 */ 11416 icmp_pkt2big_v6(ire->ire_stq, first_mp, 11417 max_frag, B_FALSE, B_TRUE, zoneid); 11418 return; 11419 } 11420 if (attach_index != 0) 11421 ipsec_out_attach_if(io, attach_index); 11422 ipsec_out_process(q, first_mp, ire, ill_index); 11423 return; 11424 } 11425 /* 11426 * XXX multicast: add ip_mforward_v6() here. 11427 * Check conn_dontroute 11428 */ 11429 #ifdef lint 11430 /* 11431 * XXX The only purpose of this statement is to avoid lint 11432 * errors. See the above "XXX multicast". When that gets 11433 * fixed, remove this whole #ifdef lint section. 11434 */ 11435 ip3dbg(("multicast forward is %s.\n", 11436 (multicast_forward ? "TRUE" : "FALSE"))); 11437 #endif 11438 11439 UPDATE_OB_PKT_COUNT(ire); 11440 ire->ire_last_used_time = lbolt; 11441 ASSERT(mp == first_mp); 11442 ip_xmit_v6(mp, ire, reachable, connp, caller, NULL); 11443 } else { 11444 DTRACE_PROBE4(ip6__loopback__out__start, 11445 ill_t *, NULL, ill_t *, ill, 11446 ip6_t *, ip6h, mblk_t *, first_mp); 11447 FW_HOOKS6(ip6_loopback_out_event, ipv6firewall_loopback_out, 11448 NULL, ill, ip6h, first_mp, mp); 11449 DTRACE_PROBE1(ip6__loopback__out__end, mblk_t *, first_mp); 11450 if (first_mp != NULL) 11451 ip_wput_local_v6(RD(q), ill, ip6h, first_mp, ire, 0); 11452 } 11453 } 11454 11455 /* 11456 * Outbound IPv6 fragmentation routine using MDT. 11457 */ 11458 static void 11459 ip_wput_frag_mdt_v6(mblk_t *mp, ire_t *ire, size_t max_chunk, 11460 size_t unfragmentable_len, uint8_t nexthdr, uint_t prev_nexthdr_offset) 11461 { 11462 ip6_t *ip6h = (ip6_t *)mp->b_rptr; 11463 uint_t pkts, wroff, hdr_chunk_len, pbuf_idx; 11464 mblk_t *hdr_mp, *md_mp = NULL; 11465 int i1; 11466 multidata_t *mmd; 11467 unsigned char *hdr_ptr, *pld_ptr; 11468 ip_pdescinfo_t pdi; 11469 uint32_t ident; 11470 size_t len; 11471 uint16_t offset; 11472 queue_t *stq = ire->ire_stq; 11473 ill_t *ill = (ill_t *)stq->q_ptr; 11474 11475 ASSERT(DB_TYPE(mp) == M_DATA); 11476 ASSERT(MBLKL(mp) > unfragmentable_len); 11477 11478 /* 11479 * Move read ptr past unfragmentable portion, we don't want this part 11480 * of the data in our fragments. 11481 */ 11482 mp->b_rptr += unfragmentable_len; 11483 11484 /* Calculate how many packets we will send out */ 11485 i1 = (mp->b_cont == NULL) ? MBLKL(mp) : msgsize(mp); 11486 pkts = (i1 + max_chunk - 1) / max_chunk; 11487 ASSERT(pkts > 1); 11488 11489 /* Allocate a message block which will hold all the IP Headers. */ 11490 wroff = ip_wroff_extra; 11491 hdr_chunk_len = wroff + unfragmentable_len + sizeof (ip6_frag_t); 11492 11493 i1 = pkts * hdr_chunk_len; 11494 /* 11495 * Create the header buffer, Multidata and destination address 11496 * and SAP attribute that should be associated with it. 11497 */ 11498 if ((hdr_mp = allocb(i1, BPRI_HI)) == NULL || 11499 ((hdr_mp->b_wptr += i1), 11500 (mmd = mmd_alloc(hdr_mp, &md_mp, KM_NOSLEEP)) == NULL) || 11501 !ip_md_addr_attr(mmd, NULL, ire->ire_nce->nce_res_mp)) { 11502 freemsg(mp); 11503 if (md_mp == NULL) { 11504 freemsg(hdr_mp); 11505 } else { 11506 free_mmd: IP6_STAT(ip6_frag_mdt_discarded); 11507 freemsg(md_mp); 11508 } 11509 IP6_STAT(ip6_frag_mdt_allocfail); 11510 BUMP_MIB(ill->ill_ip6_mib, ipv6OutFragFails); 11511 UPDATE_MIB(ill->ill_ip6_mib, ipv6OutDiscards, pkts); 11512 return; 11513 } 11514 IP6_STAT(ip6_frag_mdt_allocd); 11515 11516 /* 11517 * Add a payload buffer to the Multidata; this operation must not 11518 * fail, or otherwise our logic in this routine is broken. There 11519 * is no memory allocation done by the routine, so any returned 11520 * failure simply tells us that we've done something wrong. 11521 * 11522 * A failure tells us that either we're adding the same payload 11523 * buffer more than once, or we're trying to add more buffers than 11524 * allowed. None of the above cases should happen, and we panic 11525 * because either there's horrible heap corruption, and/or 11526 * programming mistake. 11527 */ 11528 if ((pbuf_idx = mmd_addpldbuf(mmd, mp)) < 0) { 11529 goto pbuf_panic; 11530 } 11531 11532 hdr_ptr = hdr_mp->b_rptr; 11533 pld_ptr = mp->b_rptr; 11534 11535 pdi.flags = PDESC_HBUF_REF | PDESC_PBUF_REF; 11536 11537 ident = htonl(atomic_add_32_nv(&ire->ire_ident, 1)); 11538 11539 /* 11540 * len is the total length of the fragmentable data in this 11541 * datagram. For each fragment sent, we will decrement len 11542 * by the amount of fragmentable data sent in that fragment 11543 * until len reaches zero. 11544 */ 11545 len = ntohs(ip6h->ip6_plen) - (unfragmentable_len - IPV6_HDR_LEN); 11546 11547 offset = 0; 11548 prev_nexthdr_offset += wroff; 11549 11550 while (len != 0) { 11551 size_t mlen; 11552 ip6_t *fip6h; 11553 ip6_frag_t *fraghdr; 11554 int error; 11555 11556 ASSERT((hdr_ptr + hdr_chunk_len) <= hdr_mp->b_wptr); 11557 mlen = MIN(len, max_chunk); 11558 len -= mlen; 11559 11560 fip6h = (ip6_t *)(hdr_ptr + wroff); 11561 ASSERT(OK_32PTR(fip6h)); 11562 bcopy(ip6h, fip6h, unfragmentable_len); 11563 hdr_ptr[prev_nexthdr_offset] = IPPROTO_FRAGMENT; 11564 11565 fip6h->ip6_plen = htons((uint16_t)(mlen + 11566 unfragmentable_len - IPV6_HDR_LEN + sizeof (ip6_frag_t))); 11567 11568 fraghdr = (ip6_frag_t *)((unsigned char *)fip6h + 11569 unfragmentable_len); 11570 fraghdr->ip6f_nxt = nexthdr; 11571 fraghdr->ip6f_reserved = 0; 11572 fraghdr->ip6f_offlg = htons(offset) | 11573 ((len != 0) ? IP6F_MORE_FRAG : 0); 11574 fraghdr->ip6f_ident = ident; 11575 11576 /* 11577 * Record offset and size of header and data of the next packet 11578 * in the multidata message. 11579 */ 11580 PDESC_HDR_ADD(&pdi, hdr_ptr, wroff, 11581 unfragmentable_len + sizeof (ip6_frag_t), 0); 11582 PDESC_PLD_INIT(&pdi); 11583 i1 = MIN(mp->b_wptr - pld_ptr, mlen); 11584 ASSERT(i1 > 0); 11585 PDESC_PLD_SPAN_ADD(&pdi, pbuf_idx, pld_ptr, i1); 11586 if (i1 == mlen) { 11587 pld_ptr += mlen; 11588 } else { 11589 i1 = mlen - i1; 11590 mp = mp->b_cont; 11591 ASSERT(mp != NULL); 11592 ASSERT(MBLKL(mp) >= i1); 11593 /* 11594 * Attach the next payload message block to the 11595 * multidata message. 11596 */ 11597 if ((pbuf_idx = mmd_addpldbuf(mmd, mp)) < 0) 11598 goto pbuf_panic; 11599 PDESC_PLD_SPAN_ADD(&pdi, pbuf_idx, mp->b_rptr, i1); 11600 pld_ptr = mp->b_rptr + i1; 11601 } 11602 11603 if ((mmd_addpdesc(mmd, (pdescinfo_t *)&pdi, &error, 11604 KM_NOSLEEP)) == NULL) { 11605 /* 11606 * Any failure other than ENOMEM indicates that we 11607 * have passed in invalid pdesc info or parameters 11608 * to mmd_addpdesc, which must not happen. 11609 * 11610 * EINVAL is a result of failure on boundary checks 11611 * against the pdesc info contents. It should not 11612 * happen, and we panic because either there's 11613 * horrible heap corruption, and/or programming 11614 * mistake. 11615 */ 11616 if (error != ENOMEM) { 11617 cmn_err(CE_PANIC, "ip_wput_frag_mdt_v6: " 11618 "pdesc logic error detected for " 11619 "mmd %p pinfo %p (%d)\n", 11620 (void *)mmd, (void *)&pdi, error); 11621 /* NOTREACHED */ 11622 } 11623 IP6_STAT(ip6_frag_mdt_addpdescfail); 11624 /* Free unattached payload message blocks as well */ 11625 md_mp->b_cont = mp->b_cont; 11626 goto free_mmd; 11627 } 11628 11629 /* Advance fragment offset. */ 11630 offset += mlen; 11631 11632 /* Advance to location for next header in the buffer. */ 11633 hdr_ptr += hdr_chunk_len; 11634 11635 /* Did we reach the next payload message block? */ 11636 if (pld_ptr == mp->b_wptr && mp->b_cont != NULL) { 11637 mp = mp->b_cont; 11638 /* 11639 * Attach the next message block with payload 11640 * data to the multidata message. 11641 */ 11642 if ((pbuf_idx = mmd_addpldbuf(mmd, mp)) < 0) 11643 goto pbuf_panic; 11644 pld_ptr = mp->b_rptr; 11645 } 11646 } 11647 11648 ASSERT(hdr_mp->b_wptr == hdr_ptr); 11649 ASSERT(mp->b_wptr == pld_ptr); 11650 11651 /* Update IP statistics */ 11652 UPDATE_MIB(ill->ill_ip6_mib, ipv6OutFragCreates, pkts); 11653 BUMP_MIB(ill->ill_ip6_mib, ipv6OutFragOKs); 11654 IP6_STAT_UPDATE(ip6_frag_mdt_pkt_out, pkts); 11655 11656 ire->ire_ob_pkt_count += pkts; 11657 if (ire->ire_ipif != NULL) 11658 atomic_add_32(&ire->ire_ipif->ipif_ob_pkt_count, pkts); 11659 11660 ire->ire_last_used_time = lbolt; 11661 /* Send it down */ 11662 putnext(stq, md_mp); 11663 return; 11664 11665 pbuf_panic: 11666 cmn_err(CE_PANIC, "ip_wput_frag_mdt_v6: payload buffer logic " 11667 "error for mmd %p pbuf %p (%d)", (void *)mmd, (void *)mp, 11668 pbuf_idx); 11669 /* NOTREACHED */ 11670 } 11671 11672 /* 11673 * IPv6 fragmentation. Essentially the same as IPv4 fragmentation. 11674 * We have not optimized this in terms of number of mblks 11675 * allocated. For instance, for each fragment sent we always allocate a 11676 * mblk to hold the IPv6 header and fragment header. 11677 * 11678 * Assumes that all the extension headers are contained in the first mblk. 11679 * 11680 * The fragment header is inserted after an hop-by-hop options header 11681 * and after [an optional destinations header followed by] a routing header. 11682 * 11683 * NOTE : This function does not ire_refrele the ire passed in as 11684 * the argument. 11685 */ 11686 void 11687 ip_wput_frag_v6(mblk_t *mp, ire_t *ire, uint_t reachable, conn_t *connp, 11688 int caller, int max_frag) 11689 { 11690 ip6_t *ip6h = (ip6_t *)mp->b_rptr; 11691 ip6_t *fip6h; 11692 mblk_t *hmp; 11693 mblk_t *hmp0; 11694 mblk_t *dmp; 11695 ip6_frag_t *fraghdr; 11696 size_t unfragmentable_len; 11697 size_t len; 11698 size_t mlen; 11699 size_t max_chunk; 11700 uint32_t ident; 11701 uint16_t off_flags; 11702 uint16_t offset = 0; 11703 ill_t *ill; 11704 uint8_t nexthdr; 11705 uint_t prev_nexthdr_offset; 11706 uint8_t *ptr; 11707 11708 ASSERT(ire->ire_type == IRE_CACHE); 11709 ill = (ill_t *)ire->ire_stq->q_ptr; 11710 11711 /* 11712 * Determine the length of the unfragmentable portion of this 11713 * datagram. This consists of the IPv6 header, a potential 11714 * hop-by-hop options header, a potential pre-routing-header 11715 * destination options header, and a potential routing header. 11716 */ 11717 nexthdr = ip6h->ip6_nxt; 11718 prev_nexthdr_offset = (uint8_t *)&ip6h->ip6_nxt - (uint8_t *)ip6h; 11719 ptr = (uint8_t *)&ip6h[1]; 11720 11721 if (nexthdr == IPPROTO_HOPOPTS) { 11722 ip6_hbh_t *hbh_hdr; 11723 uint_t hdr_len; 11724 11725 hbh_hdr = (ip6_hbh_t *)ptr; 11726 hdr_len = 8 * (hbh_hdr->ip6h_len + 1); 11727 nexthdr = hbh_hdr->ip6h_nxt; 11728 prev_nexthdr_offset = (uint8_t *)&hbh_hdr->ip6h_nxt 11729 - (uint8_t *)ip6h; 11730 ptr += hdr_len; 11731 } 11732 if (nexthdr == IPPROTO_DSTOPTS) { 11733 ip6_dest_t *dest_hdr; 11734 uint_t hdr_len; 11735 11736 dest_hdr = (ip6_dest_t *)ptr; 11737 if (dest_hdr->ip6d_nxt == IPPROTO_ROUTING) { 11738 hdr_len = 8 * (dest_hdr->ip6d_len + 1); 11739 nexthdr = dest_hdr->ip6d_nxt; 11740 prev_nexthdr_offset = (uint8_t *)&dest_hdr->ip6d_nxt 11741 - (uint8_t *)ip6h; 11742 ptr += hdr_len; 11743 } 11744 } 11745 if (nexthdr == IPPROTO_ROUTING) { 11746 ip6_rthdr_t *rthdr; 11747 uint_t hdr_len; 11748 11749 rthdr = (ip6_rthdr_t *)ptr; 11750 nexthdr = rthdr->ip6r_nxt; 11751 prev_nexthdr_offset = (uint8_t *)&rthdr->ip6r_nxt 11752 - (uint8_t *)ip6h; 11753 hdr_len = 8 * (rthdr->ip6r_len + 1); 11754 ptr += hdr_len; 11755 } 11756 unfragmentable_len = (uint_t)(ptr - (uint8_t *)ip6h); 11757 11758 max_chunk = (min(max_frag, ire->ire_max_frag) - unfragmentable_len - 11759 sizeof (ip6_frag_t)) & ~7; 11760 11761 /* Check if we can use MDT to send out the frags. */ 11762 ASSERT(!IRE_IS_LOCAL(ire)); 11763 if (ip_multidata_outbound && reachable == 0 && 11764 !(ire->ire_flags & RTF_MULTIRT) && ILL_MDT_CAPABLE(ill) && 11765 IP_CAN_FRAG_MDT(mp, unfragmentable_len, max_chunk)) { 11766 ip_wput_frag_mdt_v6(mp, ire, max_chunk, unfragmentable_len, 11767 nexthdr, prev_nexthdr_offset); 11768 return; 11769 } 11770 11771 /* 11772 * Allocate an mblk with enough room for the link-layer 11773 * header, the unfragmentable part of the datagram, and the 11774 * fragment header. This (or a copy) will be used as the 11775 * first mblk for each fragment we send. 11776 */ 11777 hmp = allocb(unfragmentable_len + sizeof (ip6_frag_t) + ip_wroff_extra, 11778 BPRI_HI); 11779 if (hmp == NULL) { 11780 BUMP_MIB(ill->ill_ip6_mib, ipv6OutFragFails); 11781 freemsg(mp); 11782 return; 11783 } 11784 hmp->b_rptr += ip_wroff_extra; 11785 hmp->b_wptr = hmp->b_rptr + unfragmentable_len + sizeof (ip6_frag_t); 11786 11787 fip6h = (ip6_t *)hmp->b_rptr; 11788 fraghdr = (ip6_frag_t *)(hmp->b_rptr + unfragmentable_len); 11789 11790 bcopy(ip6h, fip6h, unfragmentable_len); 11791 hmp->b_rptr[prev_nexthdr_offset] = IPPROTO_FRAGMENT; 11792 11793 ident = atomic_add_32_nv(&ire->ire_ident, 1); 11794 11795 fraghdr->ip6f_nxt = nexthdr; 11796 fraghdr->ip6f_reserved = 0; 11797 fraghdr->ip6f_offlg = 0; 11798 fraghdr->ip6f_ident = htonl(ident); 11799 11800 /* 11801 * len is the total length of the fragmentable data in this 11802 * datagram. For each fragment sent, we will decrement len 11803 * by the amount of fragmentable data sent in that fragment 11804 * until len reaches zero. 11805 */ 11806 len = ntohs(ip6h->ip6_plen) - (unfragmentable_len - IPV6_HDR_LEN); 11807 11808 /* 11809 * Move read ptr past unfragmentable portion, we don't want this part 11810 * of the data in our fragments. 11811 */ 11812 mp->b_rptr += unfragmentable_len; 11813 11814 while (len != 0) { 11815 mlen = MIN(len, max_chunk); 11816 len -= mlen; 11817 if (len != 0) { 11818 /* Not last */ 11819 hmp0 = copyb(hmp); 11820 if (hmp0 == NULL) { 11821 freeb(hmp); 11822 freemsg(mp); 11823 BUMP_MIB(ill->ill_ip6_mib, ipv6OutFragFails); 11824 ip1dbg(("ip_wput_frag_v6: copyb failed\n")); 11825 return; 11826 } 11827 off_flags = IP6F_MORE_FRAG; 11828 } else { 11829 /* Last fragment */ 11830 hmp0 = hmp; 11831 hmp = NULL; 11832 off_flags = 0; 11833 } 11834 fip6h = (ip6_t *)(hmp0->b_rptr); 11835 fraghdr = (ip6_frag_t *)(hmp0->b_rptr + unfragmentable_len); 11836 11837 fip6h->ip6_plen = htons((uint16_t)(mlen + 11838 unfragmentable_len - IPV6_HDR_LEN + sizeof (ip6_frag_t))); 11839 /* 11840 * Note: Optimization alert. 11841 * In IPv6 (and IPv4) protocol header, Fragment Offset 11842 * ("offset") is 13 bits wide and in 8-octet units. 11843 * In IPv6 protocol header (unlike IPv4) in a 16 bit field, 11844 * it occupies the most significant 13 bits. 11845 * (least significant 13 bits in IPv4). 11846 * We do not do any shifts here. Not shifting is same effect 11847 * as taking offset value in octet units, dividing by 8 and 11848 * then shifting 3 bits left to line it up in place in proper 11849 * place protocol header. 11850 */ 11851 fraghdr->ip6f_offlg = htons(offset) | off_flags; 11852 11853 if (!(dmp = ip_carve_mp(&mp, mlen))) { 11854 /* mp has already been freed by ip_carve_mp() */ 11855 if (hmp != NULL) 11856 freeb(hmp); 11857 freeb(hmp0); 11858 ip1dbg(("ip_carve_mp: failed\n")); 11859 BUMP_MIB(ill->ill_ip6_mib, ipv6OutFragFails); 11860 return; 11861 } 11862 hmp0->b_cont = dmp; 11863 /* Get the priority marking, if any */ 11864 hmp0->b_band = dmp->b_band; 11865 UPDATE_OB_PKT_COUNT(ire); 11866 ire->ire_last_used_time = lbolt; 11867 ip_xmit_v6(hmp0, ire, reachable | IP6_NO_IPPOLICY, connp, 11868 caller, NULL); 11869 reachable = 0; /* No need to redo state machine in loop */ 11870 BUMP_MIB(ill->ill_ip6_mib, ipv6OutFragCreates); 11871 offset += mlen; 11872 } 11873 BUMP_MIB(ill->ill_ip6_mib, ipv6OutFragOKs); 11874 } 11875 11876 /* 11877 * Determine if the ill and multicast aspects of that packets 11878 * "matches" the conn. 11879 */ 11880 boolean_t 11881 conn_wantpacket_v6(conn_t *connp, ill_t *ill, ip6_t *ip6h, int fanout_flags, 11882 zoneid_t zoneid) 11883 { 11884 ill_t *in_ill; 11885 boolean_t wantpacket = B_TRUE; 11886 in6_addr_t *v6dst_ptr = &ip6h->ip6_dst; 11887 in6_addr_t *v6src_ptr = &ip6h->ip6_src; 11888 11889 /* 11890 * conn_incoming_ill is set by IPV6_BOUND_IF which limits 11891 * unicast and multicast reception to conn_incoming_ill. 11892 * conn_wantpacket_v6 is called both for unicast and 11893 * multicast. 11894 * 11895 * 1) The unicast copy of the packet can come anywhere in 11896 * the ill group if it is part of the group. Thus, we 11897 * need to check to see whether the ill group matches 11898 * if in_ill is part of a group. 11899 * 11900 * 2) ip_rput does not suppress duplicate multicast packets. 11901 * If there are two interfaces in a ill group and we have 11902 * 2 applications (conns) joined a multicast group G on 11903 * both the interfaces, ilm_lookup_ill filter in ip_rput 11904 * will give us two packets because we join G on both the 11905 * interfaces rather than nominating just one interface 11906 * for receiving multicast like broadcast above. So, 11907 * we have to call ilg_lookup_ill to filter out duplicate 11908 * copies, if ill is part of a group, to supress duplicates. 11909 */ 11910 in_ill = connp->conn_incoming_ill; 11911 if (in_ill != NULL) { 11912 mutex_enter(&connp->conn_lock); 11913 in_ill = connp->conn_incoming_ill; 11914 mutex_enter(&ill->ill_lock); 11915 /* 11916 * No IPMP, and the packet did not arrive on conn_incoming_ill 11917 * OR, IPMP in use and the packet arrived on an IPMP group 11918 * different from the conn_incoming_ill's IPMP group. 11919 * Reject the packet. 11920 */ 11921 if ((in_ill->ill_group == NULL && in_ill != ill) || 11922 (in_ill->ill_group != NULL && 11923 in_ill->ill_group != ill->ill_group)) { 11924 wantpacket = B_FALSE; 11925 } 11926 mutex_exit(&ill->ill_lock); 11927 mutex_exit(&connp->conn_lock); 11928 if (!wantpacket) 11929 return (B_FALSE); 11930 } 11931 11932 if (connp->conn_multi_router) 11933 return (B_TRUE); 11934 11935 if (!IN6_IS_ADDR_MULTICAST(v6dst_ptr) && 11936 !IN6_IS_ADDR_V4MAPPED_CLASSD(v6dst_ptr)) { 11937 /* 11938 * Unicast case: we match the conn only if it's in the specified 11939 * zone. 11940 */ 11941 return (IPCL_ZONE_MATCH(connp, zoneid)); 11942 } 11943 11944 if ((fanout_flags & IP_FF_NO_MCAST_LOOP) && 11945 (connp->conn_zoneid == zoneid || zoneid == ALL_ZONES)) { 11946 /* 11947 * Loopback case: the sending endpoint has IP_MULTICAST_LOOP 11948 * disabled, therefore we don't dispatch the multicast packet to 11949 * the sending zone. 11950 */ 11951 return (B_FALSE); 11952 } 11953 11954 if ((ill->ill_phyint->phyint_flags & PHYI_LOOPBACK) && 11955 connp->conn_zoneid != zoneid && zoneid != ALL_ZONES) { 11956 /* 11957 * Multicast packet on the loopback interface: we only match 11958 * conns who joined the group in the specified zone. 11959 */ 11960 return (B_FALSE); 11961 } 11962 11963 mutex_enter(&connp->conn_lock); 11964 wantpacket = 11965 ilg_lookup_ill_withsrc_v6(connp, v6dst_ptr, v6src_ptr, ill) != NULL; 11966 mutex_exit(&connp->conn_lock); 11967 11968 return (wantpacket); 11969 } 11970 11971 11972 /* 11973 * Transmit a packet and update any NUD state based on the flags 11974 * XXX need to "recover" any ip6i_t when doing putq! 11975 * 11976 * NOTE : This function does not ire_refrele the ire passed in as the 11977 * argument. 11978 */ 11979 void 11980 ip_xmit_v6(mblk_t *mp, ire_t *ire, uint_t flags, conn_t *connp, 11981 int caller, ipsec_out_t *io) 11982 { 11983 mblk_t *mp1; 11984 nce_t *nce = ire->ire_nce; 11985 ill_t *ill; 11986 ill_t *out_ill; 11987 uint64_t delta; 11988 ip6_t *ip6h; 11989 queue_t *stq = ire->ire_stq; 11990 ire_t *ire1 = NULL; 11991 ire_t *save_ire = ire; 11992 boolean_t multirt_send = B_FALSE; 11993 mblk_t *next_mp = NULL; 11994 11995 ip6h = (ip6_t *)mp->b_rptr; 11996 ASSERT(!IN6_IS_ADDR_V4MAPPED(&ire->ire_addr_v6)); 11997 ASSERT(ire->ire_ipversion == IPV6_VERSION); 11998 ASSERT(nce != NULL); 11999 ASSERT(mp->b_datap->db_type == M_DATA); 12000 ASSERT(stq != NULL); 12001 12002 ill = ire_to_ill(ire); 12003 if (!ill) { 12004 ip0dbg(("ip_xmit_v6: ire_to_ill failed\n")); 12005 freemsg(mp); 12006 return; 12007 } 12008 12009 /* 12010 * If a packet is to be sent out an interface that is a 6to4 12011 * tunnel, outgoing IPv6 packets, with a 6to4 addressed IPv6 12012 * destination, must be checked to have a 6to4 prefix 12013 * (2002:V4ADDR::/48) that is NOT equal to the 6to4 prefix of 12014 * address configured on the sending interface. Otherwise, 12015 * the packet was delivered to this interface in error and the 12016 * packet must be dropped. 12017 */ 12018 if ((ill->ill_is_6to4tun) && IN6_IS_ADDR_6TO4(&ip6h->ip6_dst)) { 12019 ipif_t *ipif = ill->ill_ipif; 12020 12021 if (IN6_ARE_6TO4_PREFIX_EQUAL(&ipif->ipif_v6lcl_addr, 12022 &ip6h->ip6_dst)) { 12023 if (ip_debug > 2) { 12024 /* ip1dbg */ 12025 pr_addr_dbg("ip_xmit_v6: attempting to " 12026 "send 6to4 addressed IPv6 " 12027 "destination (%s) out the wrong " 12028 "interface.\n", AF_INET6, 12029 &ip6h->ip6_dst); 12030 } 12031 BUMP_MIB(ill->ill_ip6_mib, ipv6OutDiscards); 12032 freemsg(mp); 12033 return; 12034 } 12035 } 12036 12037 /* Flow-control check has been done in ip_wput_ire_v6 */ 12038 if (IP_FLOW_CONTROLLED_ULP(ip6h->ip6_nxt) || caller == IP_WPUT || 12039 caller == IP_WSRV || canput(stq->q_next)) { 12040 uint32_t ill_index; 12041 12042 /* 12043 * In most cases, the emission loop below is entered only 12044 * once. Only in the case where the ire holds the 12045 * RTF_MULTIRT flag, do we loop to process all RTF_MULTIRT 12046 * flagged ires in the bucket, and send the packet 12047 * through all crossed RTF_MULTIRT routes. 12048 */ 12049 if (ire->ire_flags & RTF_MULTIRT) { 12050 /* 12051 * Multirouting case. The bucket where ire is stored 12052 * probably holds other RTF_MULTIRT flagged ires 12053 * to the destination. In this call to ip_xmit_v6, 12054 * we attempt to send the packet through all 12055 * those ires. Thus, we first ensure that ire is the 12056 * first RTF_MULTIRT ire in the bucket, 12057 * before walking the ire list. 12058 */ 12059 ire_t *first_ire; 12060 irb_t *irb = ire->ire_bucket; 12061 ASSERT(irb != NULL); 12062 multirt_send = B_TRUE; 12063 12064 /* Make sure we do not omit any multiroute ire. */ 12065 IRB_REFHOLD(irb); 12066 for (first_ire = irb->irb_ire; 12067 first_ire != NULL; 12068 first_ire = first_ire->ire_next) { 12069 if ((first_ire->ire_flags & RTF_MULTIRT) && 12070 (IN6_ARE_ADDR_EQUAL(&first_ire->ire_addr_v6, 12071 &ire->ire_addr_v6)) && 12072 !(first_ire->ire_marks & 12073 (IRE_MARK_CONDEMNED | IRE_MARK_HIDDEN))) 12074 break; 12075 } 12076 12077 if ((first_ire != NULL) && (first_ire != ire)) { 12078 IRE_REFHOLD(first_ire); 12079 /* ire will be released by the caller */ 12080 ire = first_ire; 12081 nce = ire->ire_nce; 12082 stq = ire->ire_stq; 12083 ill = ire_to_ill(ire); 12084 } 12085 IRB_REFRELE(irb); 12086 } else if (connp != NULL && IPCL_IS_TCP(connp) && 12087 connp->conn_mdt_ok && !connp->conn_tcp->tcp_mdt && 12088 ILL_MDT_USABLE(ill)) { 12089 /* 12090 * This tcp connection was marked as MDT-capable, but 12091 * it has been turned off due changes in the interface. 12092 * Now that the interface support is back, turn it on 12093 * by notifying tcp. We don't directly modify tcp_mdt, 12094 * since we leave all the details to the tcp code that 12095 * knows better. 12096 */ 12097 mblk_t *mdimp = ip_mdinfo_alloc(ill->ill_mdt_capab); 12098 12099 if (mdimp == NULL) { 12100 ip0dbg(("ip_xmit_v6: can't re-enable MDT for " 12101 "connp %p (ENOMEM)\n", (void *)connp)); 12102 } else { 12103 CONN_INC_REF(connp); 12104 squeue_fill(connp->conn_sqp, mdimp, tcp_input, 12105 connp, SQTAG_TCP_INPUT_MCTL); 12106 } 12107 } 12108 12109 do { 12110 mblk_t *mp_ip6h; 12111 12112 if (multirt_send) { 12113 irb_t *irb; 12114 /* 12115 * We are in a multiple send case, need to get 12116 * the next ire and make a duplicate of the 12117 * packet. ire1 holds here the next ire to 12118 * process in the bucket. If multirouting is 12119 * expected, any non-RTF_MULTIRT ire that has 12120 * the right destination address is ignored. 12121 */ 12122 irb = ire->ire_bucket; 12123 ASSERT(irb != NULL); 12124 12125 IRB_REFHOLD(irb); 12126 for (ire1 = ire->ire_next; 12127 ire1 != NULL; 12128 ire1 = ire1->ire_next) { 12129 if (!(ire1->ire_flags & RTF_MULTIRT)) 12130 continue; 12131 if (!IN6_ARE_ADDR_EQUAL( 12132 &ire1->ire_addr_v6, 12133 &ire->ire_addr_v6)) 12134 continue; 12135 if (ire1->ire_marks & 12136 (IRE_MARK_CONDEMNED| 12137 IRE_MARK_HIDDEN)) 12138 continue; 12139 12140 /* Got one */ 12141 if (ire1 != save_ire) { 12142 IRE_REFHOLD(ire1); 12143 } 12144 break; 12145 } 12146 IRB_REFRELE(irb); 12147 12148 if (ire1 != NULL) { 12149 next_mp = copyb(mp); 12150 if ((next_mp == NULL) || 12151 ((mp->b_cont != NULL) && 12152 ((next_mp->b_cont = 12153 dupmsg(mp->b_cont)) == 12154 NULL))) { 12155 freemsg(next_mp); 12156 next_mp = NULL; 12157 ire_refrele(ire1); 12158 ire1 = NULL; 12159 } 12160 } 12161 12162 /* Last multiroute ire; don't loop anymore. */ 12163 if (ire1 == NULL) { 12164 multirt_send = B_FALSE; 12165 } 12166 } 12167 12168 ill_index = 12169 ((ill_t *)stq->q_ptr)->ill_phyint->phyint_ifindex; 12170 12171 /* Initiate IPPF processing */ 12172 if (IP6_OUT_IPP(flags)) { 12173 ip_process(IPP_LOCAL_OUT, &mp, ill_index); 12174 if (mp == NULL) { 12175 BUMP_MIB(ill->ill_ip6_mib, 12176 ipv6OutDiscards); 12177 if (next_mp != NULL) 12178 freemsg(next_mp); 12179 if (ire != save_ire) { 12180 ire_refrele(ire); 12181 } 12182 return; 12183 } 12184 ip6h = (ip6_t *)mp->b_rptr; 12185 } 12186 mp_ip6h = mp; 12187 12188 /* 12189 * Check for fastpath, we need to hold nce_lock to 12190 * prevent fastpath update from chaining nce_fp_mp. 12191 */ 12192 12193 ASSERT(nce->nce_ipversion != IPV4_VERSION); 12194 mutex_enter(&nce->nce_lock); 12195 if ((mp1 = nce->nce_fp_mp) != NULL) { 12196 uint32_t hlen; 12197 uchar_t *rptr; 12198 12199 hlen = MBLKL(mp1); 12200 rptr = mp->b_rptr - hlen; 12201 /* 12202 * make sure there is room for the fastpath 12203 * datalink header 12204 */ 12205 if (rptr < mp->b_datap->db_base) { 12206 mp1 = copyb(mp1); 12207 mutex_exit(&nce->nce_lock); 12208 if (mp1 == NULL) { 12209 BUMP_MIB(ill->ill_ip6_mib, 12210 ipv6OutDiscards); 12211 freemsg(mp); 12212 if (next_mp != NULL) 12213 freemsg(next_mp); 12214 if (ire != save_ire) { 12215 ire_refrele(ire); 12216 } 12217 return; 12218 } 12219 mp1->b_cont = mp; 12220 12221 /* Get the priority marking, if any */ 12222 mp1->b_band = mp->b_band; 12223 mp = mp1; 12224 } else { 12225 mp->b_rptr = rptr; 12226 /* 12227 * fastpath - pre-pend datalink 12228 * header 12229 */ 12230 bcopy(mp1->b_rptr, rptr, hlen); 12231 mutex_exit(&nce->nce_lock); 12232 } 12233 } else { 12234 /* 12235 * Get the DL_UNITDATA_REQ. 12236 */ 12237 mp1 = nce->nce_res_mp; 12238 if (mp1 == NULL) { 12239 mutex_exit(&nce->nce_lock); 12240 ip1dbg(("ip_xmit_v6: No resolution " 12241 "block ire = %p\n", (void *)ire)); 12242 freemsg(mp); 12243 if (next_mp != NULL) 12244 freemsg(next_mp); 12245 if (ire != save_ire) { 12246 ire_refrele(ire); 12247 } 12248 return; 12249 } 12250 /* 12251 * Prepend the DL_UNITDATA_REQ. 12252 */ 12253 mp1 = copyb(mp1); 12254 mutex_exit(&nce->nce_lock); 12255 if (mp1 == NULL) { 12256 BUMP_MIB(ill->ill_ip6_mib, 12257 ipv6OutDiscards); 12258 freemsg(mp); 12259 if (next_mp != NULL) 12260 freemsg(next_mp); 12261 if (ire != save_ire) { 12262 ire_refrele(ire); 12263 } 12264 return; 12265 } 12266 mp1->b_cont = mp; 12267 12268 /* Get the priority marking, if any */ 12269 mp1->b_band = mp->b_band; 12270 mp = mp1; 12271 } 12272 12273 out_ill = (ill_t *)stq->q_ptr; 12274 12275 DTRACE_PROBE4(ip6__physical__out__start, 12276 ill_t *, NULL, ill_t *, out_ill, 12277 ip6_t *, ip6h, mblk_t *, mp); 12278 12279 FW_HOOKS6(ip6_physical_out_event, 12280 ipv6firewall_physical_out, 12281 NULL, out_ill, ip6h, mp, mp_ip6h); 12282 12283 DTRACE_PROBE1(ip6__physical__out__end, mblk_t *, mp); 12284 12285 if (mp == NULL) { 12286 if (multirt_send) { 12287 ASSERT(ire1 != NULL); 12288 if (ire != save_ire) { 12289 ire_refrele(ire); 12290 } 12291 /* 12292 * Proceed with the next RTF_MULTIRT 12293 * ire, also set up the send-to queue 12294 * accordingly. 12295 */ 12296 ire = ire1; 12297 ire1 = NULL; 12298 stq = ire->ire_stq; 12299 nce = ire->ire_nce; 12300 ill = ire_to_ill(ire); 12301 mp = next_mp; 12302 next_mp = NULL; 12303 continue; 12304 } else { 12305 ASSERT(next_mp == NULL); 12306 ASSERT(ire1 == NULL); 12307 break; 12308 } 12309 } 12310 12311 /* 12312 * Update ire counters; for save_ire, this has been 12313 * done by the caller. 12314 */ 12315 if (ire != save_ire) { 12316 UPDATE_OB_PKT_COUNT(ire); 12317 ire->ire_last_used_time = lbolt; 12318 } 12319 12320 /* 12321 * Send it down. XXX Do we want to flow control AH/ESP 12322 * packets that carry TCP payloads? We don't flow 12323 * control TCP packets, but we should also not 12324 * flow-control TCP packets that have been protected. 12325 * We don't have an easy way to find out if an AH/ESP 12326 * packet was originally TCP or not currently. 12327 */ 12328 if (io == NULL) { 12329 putnext(stq, mp); 12330 } else { 12331 /* 12332 * Safety Pup says: make sure this is 12333 * going to the right interface! 12334 */ 12335 if (io->ipsec_out_capab_ill_index != 12336 ill_index) { 12337 /* IPsec kstats: bump lose counter */ 12338 freemsg(mp1); 12339 } else { 12340 ipsec_hw_putnext(stq, mp); 12341 } 12342 } 12343 12344 if (nce->nce_flags & (NCE_F_NONUD|NCE_F_PERMANENT)) { 12345 if (ire != save_ire) { 12346 ire_refrele(ire); 12347 } 12348 if (multirt_send) { 12349 ASSERT(ire1 != NULL); 12350 /* 12351 * Proceed with the next RTF_MULTIRT 12352 * ire, also set up the send-to queue 12353 * accordingly. 12354 */ 12355 ire = ire1; 12356 ire1 = NULL; 12357 stq = ire->ire_stq; 12358 nce = ire->ire_nce; 12359 ill = ire_to_ill(ire); 12360 mp = next_mp; 12361 next_mp = NULL; 12362 continue; 12363 } 12364 ASSERT(next_mp == NULL); 12365 ASSERT(ire1 == NULL); 12366 return; 12367 } 12368 12369 ASSERT(nce->nce_state != ND_INCOMPLETE); 12370 12371 /* 12372 * Check for upper layer advice 12373 */ 12374 if (flags & IPV6_REACHABILITY_CONFIRMATION) { 12375 /* 12376 * It should be o.k. to check the state without 12377 * a lock here, at most we lose an advice. 12378 */ 12379 nce->nce_last = TICK_TO_MSEC(lbolt64); 12380 if (nce->nce_state != ND_REACHABLE) { 12381 12382 mutex_enter(&nce->nce_lock); 12383 nce->nce_state = ND_REACHABLE; 12384 nce->nce_pcnt = ND_MAX_UNICAST_SOLICIT; 12385 mutex_exit(&nce->nce_lock); 12386 (void) untimeout(nce->nce_timeout_id); 12387 if (ip_debug > 2) { 12388 /* ip1dbg */ 12389 pr_addr_dbg("ip_xmit_v6: state" 12390 " for %s changed to" 12391 " REACHABLE\n", AF_INET6, 12392 &ire->ire_addr_v6); 12393 } 12394 } 12395 if (ire != save_ire) { 12396 ire_refrele(ire); 12397 } 12398 if (multirt_send) { 12399 ASSERT(ire1 != NULL); 12400 /* 12401 * Proceed with the next RTF_MULTIRT 12402 * ire, also set up the send-to queue 12403 * accordingly. 12404 */ 12405 ire = ire1; 12406 ire1 = NULL; 12407 stq = ire->ire_stq; 12408 nce = ire->ire_nce; 12409 ill = ire_to_ill(ire); 12410 mp = next_mp; 12411 next_mp = NULL; 12412 continue; 12413 } 12414 ASSERT(next_mp == NULL); 12415 ASSERT(ire1 == NULL); 12416 return; 12417 } 12418 12419 delta = TICK_TO_MSEC(lbolt64) - nce->nce_last; 12420 ip1dbg(("ip_xmit_v6: delta = %" PRId64 12421 " ill_reachable_time = %d \n", delta, 12422 ill->ill_reachable_time)); 12423 if (delta > (uint64_t)ill->ill_reachable_time) { 12424 nce = ire->ire_nce; 12425 mutex_enter(&nce->nce_lock); 12426 switch (nce->nce_state) { 12427 case ND_REACHABLE: 12428 case ND_STALE: 12429 /* 12430 * ND_REACHABLE is identical to 12431 * ND_STALE in this specific case. If 12432 * reachable time has expired for this 12433 * neighbor (delta is greater than 12434 * reachable time), conceptually, the 12435 * neighbor cache is no longer in 12436 * REACHABLE state, but already in 12437 * STALE state. So the correct 12438 * transition here is to ND_DELAY. 12439 */ 12440 nce->nce_state = ND_DELAY; 12441 mutex_exit(&nce->nce_lock); 12442 NDP_RESTART_TIMER(nce, 12443 delay_first_probe_time); 12444 if (ip_debug > 3) { 12445 /* ip2dbg */ 12446 pr_addr_dbg("ip_xmit_v6: state" 12447 " for %s changed to" 12448 " DELAY\n", AF_INET6, 12449 &ire->ire_addr_v6); 12450 } 12451 break; 12452 case ND_DELAY: 12453 case ND_PROBE: 12454 mutex_exit(&nce->nce_lock); 12455 /* Timers have already started */ 12456 break; 12457 case ND_UNREACHABLE: 12458 /* 12459 * ndp timer has detected that this nce 12460 * is unreachable and initiated deleting 12461 * this nce and all its associated IREs. 12462 * This is a race where we found the 12463 * ire before it was deleted and have 12464 * just sent out a packet using this 12465 * unreachable nce. 12466 */ 12467 mutex_exit(&nce->nce_lock); 12468 break; 12469 default: 12470 ASSERT(0); 12471 } 12472 } 12473 12474 if (multirt_send) { 12475 ASSERT(ire1 != NULL); 12476 /* 12477 * Proceed with the next RTF_MULTIRT ire, 12478 * Also set up the send-to queue accordingly. 12479 */ 12480 if (ire != save_ire) { 12481 ire_refrele(ire); 12482 } 12483 ire = ire1; 12484 ire1 = NULL; 12485 stq = ire->ire_stq; 12486 nce = ire->ire_nce; 12487 ill = ire_to_ill(ire); 12488 mp = next_mp; 12489 next_mp = NULL; 12490 } 12491 } while (multirt_send); 12492 /* 12493 * In the multirouting case, release the last ire used for 12494 * emission. save_ire will be released by the caller. 12495 */ 12496 if (ire != save_ire) { 12497 ire_refrele(ire); 12498 } 12499 } else { 12500 /* 12501 * Queue packet if we have an conn to give back pressure. 12502 * We can't queue packets intended for hardware acceleration 12503 * since we've tossed that state already. If the packet is 12504 * being fed back from ire_send_v6, we don't know the 12505 * position in the queue to enqueue the packet and we discard 12506 * the packet. 12507 */ 12508 if (ip_output_queue && (connp != NULL) && (io == NULL) && 12509 (caller != IRE_SEND)) { 12510 if (caller == IP_WSRV) { 12511 connp->conn_did_putbq = 1; 12512 (void) putbq(connp->conn_wq, mp); 12513 conn_drain_insert(connp); 12514 /* 12515 * caller == IP_WSRV implies we are 12516 * the service thread, and the 12517 * queue is already noenabled. 12518 * The check for canput and 12519 * the putbq is not atomic. 12520 * So we need to check again. 12521 */ 12522 if (canput(stq->q_next)) 12523 connp->conn_did_putbq = 0; 12524 } else { 12525 (void) putq(connp->conn_wq, mp); 12526 } 12527 return; 12528 } 12529 BUMP_MIB(ill->ill_ip6_mib, ipv6OutDiscards); 12530 freemsg(mp); 12531 return; 12532 } 12533 } 12534 12535 /* 12536 * pr_addr_dbg function provides the needed buffer space to call 12537 * inet_ntop() function's 3rd argument. This function should be 12538 * used by any kernel routine which wants to save INET6_ADDRSTRLEN 12539 * stack buffer space in it's own stack frame. This function uses 12540 * a buffer from it's own stack and prints the information. 12541 * Example: pr_addr_dbg("func: no route for %s\n ", AF_INET, addr) 12542 * 12543 * Note: This function can call inet_ntop() once. 12544 */ 12545 void 12546 pr_addr_dbg(char *fmt1, int af, const void *addr) 12547 { 12548 char buf[INET6_ADDRSTRLEN]; 12549 12550 if (fmt1 == NULL) { 12551 ip0dbg(("pr_addr_dbg: Wrong arguments\n")); 12552 return; 12553 } 12554 12555 /* 12556 * This does not compare debug level and just prints 12557 * out. Thus it is the responsibility of the caller 12558 * to check the appropriate debug-level before calling 12559 * this function. 12560 */ 12561 if (ip_debug > 0) { 12562 printf(fmt1, inet_ntop(af, addr, buf, sizeof (buf))); 12563 } 12564 12565 12566 } 12567 12568 12569 /* 12570 * Return the length in bytes of the IPv6 headers (base header, ip6i_t 12571 * if needed and extension headers) that will be needed based on the 12572 * ip6_pkt_t structure passed by the caller. 12573 * 12574 * The returned length does not include the length of the upper level 12575 * protocol (ULP) header. 12576 */ 12577 int 12578 ip_total_hdrs_len_v6(ip6_pkt_t *ipp) 12579 { 12580 int len; 12581 12582 len = IPV6_HDR_LEN; 12583 if (ipp->ipp_fields & IPPF_HAS_IP6I) 12584 len += sizeof (ip6i_t); 12585 if (ipp->ipp_fields & IPPF_HOPOPTS) { 12586 ASSERT(ipp->ipp_hopoptslen != 0); 12587 len += ipp->ipp_hopoptslen; 12588 } 12589 if (ipp->ipp_fields & IPPF_RTHDR) { 12590 ASSERT(ipp->ipp_rthdrlen != 0); 12591 len += ipp->ipp_rthdrlen; 12592 } 12593 /* 12594 * En-route destination options 12595 * Only do them if there's a routing header as well 12596 */ 12597 if ((ipp->ipp_fields & (IPPF_RTDSTOPTS|IPPF_RTHDR)) == 12598 (IPPF_RTDSTOPTS|IPPF_RTHDR)) { 12599 ASSERT(ipp->ipp_rtdstoptslen != 0); 12600 len += ipp->ipp_rtdstoptslen; 12601 } 12602 if (ipp->ipp_fields & IPPF_DSTOPTS) { 12603 ASSERT(ipp->ipp_dstoptslen != 0); 12604 len += ipp->ipp_dstoptslen; 12605 } 12606 return (len); 12607 } 12608 12609 /* 12610 * All-purpose routine to build a header chain of an IPv6 header 12611 * followed by any required extension headers and a proto header, 12612 * preceeded (where necessary) by an ip6i_t private header. 12613 * 12614 * The fields of the IPv6 header that are derived from the ip6_pkt_t 12615 * will be filled in appropriately. 12616 * Thus the caller must fill in the rest of the IPv6 header, such as 12617 * traffic class/flowid, source address (if not set here), hoplimit (if not 12618 * set here) and destination address. 12619 * 12620 * The extension headers and ip6i_t header will all be fully filled in. 12621 */ 12622 void 12623 ip_build_hdrs_v6(uchar_t *ext_hdrs, uint_t ext_hdrs_len, 12624 ip6_pkt_t *ipp, uint8_t protocol) 12625 { 12626 uint8_t *nxthdr_ptr; 12627 uint8_t *cp; 12628 ip6i_t *ip6i; 12629 ip6_t *ip6h = (ip6_t *)ext_hdrs; 12630 12631 /* 12632 * If sending private ip6i_t header down (checksum info, nexthop, 12633 * or ifindex), adjust ip header pointer and set ip6i_t header pointer, 12634 * then fill it in. (The checksum info will be filled in by icmp). 12635 */ 12636 if (ipp->ipp_fields & IPPF_HAS_IP6I) { 12637 ip6i = (ip6i_t *)ip6h; 12638 ip6h = (ip6_t *)&ip6i[1]; 12639 12640 ip6i->ip6i_flags = 0; 12641 ip6i->ip6i_vcf = IPV6_DEFAULT_VERS_AND_FLOW; 12642 if (ipp->ipp_fields & IPPF_IFINDEX || 12643 ipp->ipp_fields & IPPF_SCOPE_ID) { 12644 ASSERT(ipp->ipp_ifindex != 0); 12645 ip6i->ip6i_flags |= IP6I_IFINDEX; 12646 ip6i->ip6i_ifindex = ipp->ipp_ifindex; 12647 } 12648 if (ipp->ipp_fields & IPPF_ADDR) { 12649 /* 12650 * Enable per-packet source address verification if 12651 * IPV6_PKTINFO specified the source address. 12652 * ip6_src is set in the transport's _wput function. 12653 */ 12654 ASSERT(!IN6_IS_ADDR_UNSPECIFIED( 12655 &ipp->ipp_addr)); 12656 ip6i->ip6i_flags |= IP6I_VERIFY_SRC; 12657 } 12658 if (ipp->ipp_fields & IPPF_UNICAST_HOPS) { 12659 ip6h->ip6_hops = ipp->ipp_unicast_hops; 12660 /* 12661 * We need to set this flag so that IP doesn't 12662 * rewrite the IPv6 header's hoplimit with the 12663 * current default value. 12664 */ 12665 ip6i->ip6i_flags |= IP6I_HOPLIMIT; 12666 } 12667 if (ipp->ipp_fields & IPPF_NEXTHOP) { 12668 ASSERT(!IN6_IS_ADDR_UNSPECIFIED( 12669 &ipp->ipp_nexthop)); 12670 ip6i->ip6i_flags |= IP6I_NEXTHOP; 12671 ip6i->ip6i_nexthop = ipp->ipp_nexthop; 12672 } 12673 /* 12674 * tell IP this is an ip6i_t private header 12675 */ 12676 ip6i->ip6i_nxt = IPPROTO_RAW; 12677 } 12678 /* Initialize IPv6 header */ 12679 ip6h->ip6_vcf = IPV6_DEFAULT_VERS_AND_FLOW; 12680 if (ipp->ipp_fields & IPPF_TCLASS) { 12681 ip6h->ip6_vcf = (ip6h->ip6_vcf & ~IPV6_FLOWINFO_TCLASS) | 12682 (ipp->ipp_tclass << 20); 12683 } 12684 if (ipp->ipp_fields & IPPF_ADDR) 12685 ip6h->ip6_src = ipp->ipp_addr; 12686 12687 nxthdr_ptr = (uint8_t *)&ip6h->ip6_nxt; 12688 cp = (uint8_t *)&ip6h[1]; 12689 /* 12690 * Here's where we have to start stringing together 12691 * any extension headers in the right order: 12692 * Hop-by-hop, destination, routing, and final destination opts. 12693 */ 12694 if (ipp->ipp_fields & IPPF_HOPOPTS) { 12695 /* Hop-by-hop options */ 12696 ip6_hbh_t *hbh = (ip6_hbh_t *)cp; 12697 12698 *nxthdr_ptr = IPPROTO_HOPOPTS; 12699 nxthdr_ptr = &hbh->ip6h_nxt; 12700 12701 bcopy(ipp->ipp_hopopts, cp, ipp->ipp_hopoptslen); 12702 cp += ipp->ipp_hopoptslen; 12703 } 12704 /* 12705 * En-route destination options 12706 * Only do them if there's a routing header as well 12707 */ 12708 if ((ipp->ipp_fields & (IPPF_RTDSTOPTS|IPPF_RTHDR)) == 12709 (IPPF_RTDSTOPTS|IPPF_RTHDR)) { 12710 ip6_dest_t *dst = (ip6_dest_t *)cp; 12711 12712 *nxthdr_ptr = IPPROTO_DSTOPTS; 12713 nxthdr_ptr = &dst->ip6d_nxt; 12714 12715 bcopy(ipp->ipp_rtdstopts, cp, ipp->ipp_rtdstoptslen); 12716 cp += ipp->ipp_rtdstoptslen; 12717 } 12718 /* 12719 * Routing header next 12720 */ 12721 if (ipp->ipp_fields & IPPF_RTHDR) { 12722 ip6_rthdr_t *rt = (ip6_rthdr_t *)cp; 12723 12724 *nxthdr_ptr = IPPROTO_ROUTING; 12725 nxthdr_ptr = &rt->ip6r_nxt; 12726 12727 bcopy(ipp->ipp_rthdr, cp, ipp->ipp_rthdrlen); 12728 cp += ipp->ipp_rthdrlen; 12729 } 12730 /* 12731 * Do ultimate destination options 12732 */ 12733 if (ipp->ipp_fields & IPPF_DSTOPTS) { 12734 ip6_dest_t *dest = (ip6_dest_t *)cp; 12735 12736 *nxthdr_ptr = IPPROTO_DSTOPTS; 12737 nxthdr_ptr = &dest->ip6d_nxt; 12738 12739 bcopy(ipp->ipp_dstopts, cp, ipp->ipp_dstoptslen); 12740 cp += ipp->ipp_dstoptslen; 12741 } 12742 /* 12743 * Now set the last header pointer to the proto passed in 12744 */ 12745 *nxthdr_ptr = protocol; 12746 ASSERT((int)(cp - ext_hdrs) == ext_hdrs_len); 12747 } 12748 12749 /* 12750 * Return a pointer to the routing header extension header 12751 * in the IPv6 header(s) chain passed in. 12752 * If none found, return NULL 12753 * Assumes that all extension headers are in same mblk as the v6 header 12754 */ 12755 ip6_rthdr_t * 12756 ip_find_rthdr_v6(ip6_t *ip6h, uint8_t *endptr) 12757 { 12758 ip6_dest_t *desthdr; 12759 ip6_frag_t *fraghdr; 12760 uint_t hdrlen; 12761 uint8_t nexthdr; 12762 uint8_t *ptr = (uint8_t *)&ip6h[1]; 12763 12764 if (ip6h->ip6_nxt == IPPROTO_ROUTING) 12765 return ((ip6_rthdr_t *)ptr); 12766 12767 /* 12768 * The routing header will precede all extension headers 12769 * other than the hop-by-hop and destination options 12770 * extension headers, so if we see anything other than those, 12771 * we're done and didn't find it. 12772 * We could see a destination options header alone but no 12773 * routing header, in which case we'll return NULL as soon as 12774 * we see anything after that. 12775 * Hop-by-hop and destination option headers are identical, 12776 * so we can use either one we want as a template. 12777 */ 12778 nexthdr = ip6h->ip6_nxt; 12779 while (ptr < endptr) { 12780 /* Is there enough left for len + nexthdr? */ 12781 if (ptr + MIN_EHDR_LEN > endptr) 12782 return (NULL); 12783 12784 switch (nexthdr) { 12785 case IPPROTO_HOPOPTS: 12786 case IPPROTO_DSTOPTS: 12787 /* Assumes the headers are identical for hbh and dst */ 12788 desthdr = (ip6_dest_t *)ptr; 12789 hdrlen = 8 * (desthdr->ip6d_len + 1); 12790 nexthdr = desthdr->ip6d_nxt; 12791 break; 12792 12793 case IPPROTO_ROUTING: 12794 return ((ip6_rthdr_t *)ptr); 12795 12796 case IPPROTO_FRAGMENT: 12797 fraghdr = (ip6_frag_t *)ptr; 12798 hdrlen = sizeof (ip6_frag_t); 12799 nexthdr = fraghdr->ip6f_nxt; 12800 break; 12801 12802 default: 12803 return (NULL); 12804 } 12805 ptr += hdrlen; 12806 } 12807 return (NULL); 12808 } 12809 12810 /* 12811 * Called for source-routed packets originating on this node. 12812 * Manipulates the original routing header by moving every entry up 12813 * one slot, placing the first entry in the v6 header's v6_dst field, 12814 * and placing the ultimate destination in the routing header's last 12815 * slot. 12816 * 12817 * Returns the checksum diference between the ultimate destination 12818 * (last hop in the routing header when the packet is sent) and 12819 * the first hop (ip6_dst when the packet is sent) 12820 */ 12821 uint32_t 12822 ip_massage_options_v6(ip6_t *ip6h, ip6_rthdr_t *rth) 12823 { 12824 uint_t numaddr; 12825 uint_t i; 12826 in6_addr_t *addrptr; 12827 in6_addr_t tmp; 12828 ip6_rthdr0_t *rthdr = (ip6_rthdr0_t *)rth; 12829 uint32_t cksm; 12830 uint32_t addrsum = 0; 12831 uint16_t *ptr; 12832 12833 /* 12834 * Perform any processing needed for source routing. 12835 * We know that all extension headers will be in the same mblk 12836 * as the IPv6 header. 12837 */ 12838 12839 /* 12840 * If no segments left in header, or the header length field is zero, 12841 * don't move hop addresses around; 12842 * Checksum difference is zero. 12843 */ 12844 if ((rthdr->ip6r0_segleft == 0) || (rthdr->ip6r0_len == 0)) 12845 return (0); 12846 12847 ptr = (uint16_t *)&ip6h->ip6_dst; 12848 cksm = 0; 12849 for (i = 0; i < (sizeof (in6_addr_t) / sizeof (uint16_t)); i++) { 12850 cksm += ptr[i]; 12851 } 12852 cksm = (cksm & 0xFFFF) + (cksm >> 16); 12853 12854 /* 12855 * Here's where the fun begins - we have to 12856 * move all addresses up one spot, take the 12857 * first hop and make it our first ip6_dst, 12858 * and place the ultimate destination in the 12859 * newly-opened last slot. 12860 */ 12861 addrptr = (in6_addr_t *)((char *)rthdr + sizeof (*rthdr)); 12862 numaddr = rthdr->ip6r0_len / 2; 12863 tmp = *addrptr; 12864 for (i = 0; i < (numaddr - 1); addrptr++, i++) { 12865 *addrptr = addrptr[1]; 12866 } 12867 *addrptr = ip6h->ip6_dst; 12868 ip6h->ip6_dst = tmp; 12869 12870 /* 12871 * From the checksummed ultimate destination subtract the checksummed 12872 * current ip6_dst (the first hop address). Return that number. 12873 * (In the v4 case, the second part of this is done in each routine 12874 * that calls ip_massage_options(). We do it all in this one place 12875 * for v6). 12876 */ 12877 ptr = (uint16_t *)&ip6h->ip6_dst; 12878 for (i = 0; i < (sizeof (in6_addr_t) / sizeof (uint16_t)); i++) { 12879 addrsum += ptr[i]; 12880 } 12881 cksm -= ((addrsum >> 16) + (addrsum & 0xFFFF)); 12882 if ((int)cksm < 0) 12883 cksm--; 12884 cksm = (cksm & 0xFFFF) + (cksm >> 16); 12885 12886 return (cksm); 12887 } 12888 12889 /* 12890 * See if the upper-level protocol indicated by 'proto' will be able 12891 * to do something with an ICMP_FRAGMENTATION_NEEDED (IPv4) or 12892 * ICMP6_PACKET_TOO_BIG (IPv6). 12893 */ 12894 static boolean_t 12895 ip_ulp_cando_pkt2big(int proto) 12896 { 12897 /* 12898 * For now, only TCP can handle this. 12899 * Tunnels may be able to also, but since tun isn't working over 12900 * IPv6 yet, don't worry about it for now. 12901 */ 12902 return (proto == IPPROTO_TCP); 12903 } 12904 12905 12906 /* 12907 * Propagate a multicast group membership operation (join/leave) (*fn) on 12908 * all interfaces crossed by the related multirt routes. 12909 * The call is considered successful if the operation succeeds 12910 * on at least one interface. 12911 * The function is called if the destination address in the packet to send 12912 * is multirouted. 12913 */ 12914 int 12915 ip_multirt_apply_membership_v6(int (*fn)(conn_t *, boolean_t, 12916 const in6_addr_t *, int, mcast_record_t, const in6_addr_t *, mblk_t *), 12917 ire_t *ire, conn_t *connp, boolean_t checkonly, const in6_addr_t *v6grp, 12918 mcast_record_t fmode, const in6_addr_t *v6src, mblk_t *first_mp) 12919 { 12920 ire_t *ire_gw; 12921 irb_t *irb; 12922 int index, error = 0; 12923 opt_restart_t *or; 12924 12925 irb = ire->ire_bucket; 12926 ASSERT(irb != NULL); 12927 12928 ASSERT(DB_TYPE(first_mp) == M_CTL); 12929 or = (opt_restart_t *)first_mp->b_rptr; 12930 12931 IRB_REFHOLD(irb); 12932 for (; ire != NULL; ire = ire->ire_next) { 12933 if ((ire->ire_flags & RTF_MULTIRT) == 0) 12934 continue; 12935 if (!IN6_ARE_ADDR_EQUAL(&ire->ire_addr_v6, v6grp)) 12936 continue; 12937 12938 ire_gw = ire_ftable_lookup_v6(&ire->ire_gateway_addr_v6, 0, 0, 12939 IRE_INTERFACE, NULL, NULL, ALL_ZONES, 0, NULL, 12940 MATCH_IRE_RECURSIVE | MATCH_IRE_TYPE); 12941 /* No resolver exists for the gateway; skip this ire. */ 12942 if (ire_gw == NULL) 12943 continue; 12944 index = ire_gw->ire_ipif->ipif_ill->ill_phyint->phyint_ifindex; 12945 /* 12946 * A resolver exists: we can get the interface on which we have 12947 * to apply the operation. 12948 */ 12949 error = fn(connp, checkonly, v6grp, index, fmode, v6src, 12950 first_mp); 12951 if (error == 0) 12952 or->or_private = CGTP_MCAST_SUCCESS; 12953 12954 if (ip_debug > 0) { 12955 ulong_t off; 12956 char *ksym; 12957 12958 ksym = kobj_getsymname((uintptr_t)fn, &off); 12959 ip2dbg(("ip_multirt_apply_membership_v6: " 12960 "called %s, multirt group 0x%08x via itf 0x%08x, " 12961 "error %d [success %u]\n", 12962 ksym ? ksym : "?", 12963 ntohl(V4_PART_OF_V6((*v6grp))), 12964 ntohl(V4_PART_OF_V6(ire_gw->ire_src_addr_v6)), 12965 error, or->or_private)); 12966 } 12967 12968 ire_refrele(ire_gw); 12969 if (error == EINPROGRESS) { 12970 IRB_REFRELE(irb); 12971 return (error); 12972 } 12973 } 12974 IRB_REFRELE(irb); 12975 /* 12976 * Consider the call as successful if we succeeded on at least 12977 * one interface. Otherwise, return the last encountered error. 12978 */ 12979 return (or->or_private == CGTP_MCAST_SUCCESS ? 0 : error); 12980 } 12981 12982 void 12983 ip6_kstat_init(void) 12984 { 12985 if ((ip6_kstat = kstat_create("ip", 0, "ip6stat", 12986 "net", KSTAT_TYPE_NAMED, 12987 sizeof (ip6_statistics) / sizeof (kstat_named_t), 12988 KSTAT_FLAG_VIRTUAL)) != NULL) { 12989 ip6_kstat->ks_data = &ip6_statistics; 12990 kstat_install(ip6_kstat); 12991 } 12992 } 12993 12994 /* 12995 * The following two functions set and get the value for the 12996 * IPV6_SRC_PREFERENCES socket option. 12997 */ 12998 int 12999 ip6_set_src_preferences(conn_t *connp, uint32_t prefs) 13000 { 13001 /* 13002 * We only support preferences that are covered by 13003 * IPV6_PREFER_SRC_MASK. 13004 */ 13005 if (prefs & ~IPV6_PREFER_SRC_MASK) 13006 return (EINVAL); 13007 13008 /* 13009 * Look for conflicting preferences or default preferences. If 13010 * both bits of a related pair are clear, the application wants the 13011 * system's default value for that pair. Both bits in a pair can't 13012 * be set. 13013 */ 13014 if ((prefs & IPV6_PREFER_SRC_MIPMASK) == 0) { 13015 prefs |= IPV6_PREFER_SRC_MIPDEFAULT; 13016 } else if ((prefs & IPV6_PREFER_SRC_MIPMASK) == 13017 IPV6_PREFER_SRC_MIPMASK) { 13018 return (EINVAL); 13019 } 13020 if ((prefs & IPV6_PREFER_SRC_TMPMASK) == 0) { 13021 prefs |= IPV6_PREFER_SRC_TMPDEFAULT; 13022 } else if ((prefs & IPV6_PREFER_SRC_TMPMASK) == 13023 IPV6_PREFER_SRC_TMPMASK) { 13024 return (EINVAL); 13025 } 13026 if ((prefs & IPV6_PREFER_SRC_CGAMASK) == 0) { 13027 prefs |= IPV6_PREFER_SRC_CGADEFAULT; 13028 } else if ((prefs & IPV6_PREFER_SRC_CGAMASK) == 13029 IPV6_PREFER_SRC_CGAMASK) { 13030 return (EINVAL); 13031 } 13032 13033 connp->conn_src_preferences = prefs; 13034 return (0); 13035 } 13036 13037 size_t 13038 ip6_get_src_preferences(conn_t *connp, uint32_t *val) 13039 { 13040 *val = connp->conn_src_preferences; 13041 return (sizeof (connp->conn_src_preferences)); 13042 } 13043 13044 int 13045 ip6_set_pktinfo(cred_t *cr, conn_t *connp, struct in6_pktinfo *pkti, mblk_t *mp) 13046 { 13047 ill_t *ill; 13048 ire_t *ire; 13049 int error; 13050 13051 /* 13052 * Verify the source address and ifindex. Privileged users can use 13053 * any source address. For ancillary data the source address is 13054 * checked in ip_wput_v6. 13055 */ 13056 if (pkti->ipi6_ifindex != 0) { 13057 ASSERT(connp != NULL); 13058 ill = ill_lookup_on_ifindex(pkti->ipi6_ifindex, B_TRUE, 13059 CONNP_TO_WQ(connp), mp, ip_restart_optmgmt, &error); 13060 if (ill == NULL) { 13061 /* 13062 * We just want to know if the interface exists, we 13063 * don't really care about the ill pointer itself. 13064 */ 13065 if (error != EINPROGRESS) 13066 return (error); 13067 error = 0; /* Ensure we don't use it below */ 13068 } else { 13069 ill_refrele(ill); 13070 } 13071 } 13072 if (!IN6_IS_ADDR_UNSPECIFIED(&pkti->ipi6_addr) && 13073 secpolicy_net_rawaccess(cr) != 0) { 13074 ire = ire_route_lookup_v6(&pkti->ipi6_addr, 0, 0, 13075 (IRE_LOCAL|IRE_LOOPBACK), NULL, NULL, 13076 connp->conn_zoneid, NULL, MATCH_IRE_TYPE); 13077 if (ire != NULL) 13078 ire_refrele(ire); 13079 else 13080 return (ENXIO); 13081 } 13082 return (0); 13083 } 13084 13085 /* 13086 * Get the size of the IP options (including the IP headers size) 13087 * without including the AH header's size. If till_ah is B_FALSE, 13088 * and if AH header is present, dest options beyond AH header will 13089 * also be included in the returned size. 13090 */ 13091 int 13092 ipsec_ah_get_hdr_size_v6(mblk_t *mp, boolean_t till_ah) 13093 { 13094 ip6_t *ip6h; 13095 uint8_t nexthdr; 13096 uint8_t *whereptr; 13097 ip6_hbh_t *hbhhdr; 13098 ip6_dest_t *dsthdr; 13099 ip6_rthdr_t *rthdr; 13100 int ehdrlen; 13101 int size; 13102 ah_t *ah; 13103 13104 ip6h = (ip6_t *)mp->b_rptr; 13105 size = IPV6_HDR_LEN; 13106 nexthdr = ip6h->ip6_nxt; 13107 whereptr = (uint8_t *)&ip6h[1]; 13108 for (;;) { 13109 /* Assume IP has already stripped it */ 13110 ASSERT(nexthdr != IPPROTO_FRAGMENT && nexthdr != IPPROTO_RAW); 13111 switch (nexthdr) { 13112 case IPPROTO_HOPOPTS: 13113 hbhhdr = (ip6_hbh_t *)whereptr; 13114 nexthdr = hbhhdr->ip6h_nxt; 13115 ehdrlen = 8 * (hbhhdr->ip6h_len + 1); 13116 break; 13117 case IPPROTO_DSTOPTS: 13118 dsthdr = (ip6_dest_t *)whereptr; 13119 nexthdr = dsthdr->ip6d_nxt; 13120 ehdrlen = 8 * (dsthdr->ip6d_len + 1); 13121 break; 13122 case IPPROTO_ROUTING: 13123 rthdr = (ip6_rthdr_t *)whereptr; 13124 nexthdr = rthdr->ip6r_nxt; 13125 ehdrlen = 8 * (rthdr->ip6r_len + 1); 13126 break; 13127 default : 13128 if (till_ah) { 13129 ASSERT(nexthdr == IPPROTO_AH); 13130 return (size); 13131 } 13132 /* 13133 * If we don't have a AH header to traverse, 13134 * return now. This happens normally for 13135 * outbound datagrams where we have not inserted 13136 * the AH header. 13137 */ 13138 if (nexthdr != IPPROTO_AH) { 13139 return (size); 13140 } 13141 13142 /* 13143 * We don't include the AH header's size 13144 * to be symmetrical with other cases where 13145 * we either don't have a AH header (outbound) 13146 * or peek into the AH header yet (inbound and 13147 * not pulled up yet). 13148 */ 13149 ah = (ah_t *)whereptr; 13150 nexthdr = ah->ah_nexthdr; 13151 ehdrlen = (ah->ah_length << 2) + 8; 13152 13153 if (nexthdr == IPPROTO_DSTOPTS) { 13154 if (whereptr + ehdrlen >= mp->b_wptr) { 13155 /* 13156 * The destination options header 13157 * is not part of the first mblk. 13158 */ 13159 whereptr = mp->b_cont->b_rptr; 13160 } else { 13161 whereptr += ehdrlen; 13162 } 13163 13164 dsthdr = (ip6_dest_t *)whereptr; 13165 ehdrlen = 8 * (dsthdr->ip6d_len + 1); 13166 size += ehdrlen; 13167 } 13168 return (size); 13169 } 13170 whereptr += ehdrlen; 13171 size += ehdrlen; 13172 } 13173 } 13174