1 /*- 2 * SPDX-License-Identifier: BSD-3-Clause 3 * 4 * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project. 5 * All rights reserved. 6 * 7 * Redistribution and use in source and binary forms, with or without 8 * modification, are permitted provided that the following conditions 9 * are met: 10 * 1. Redistributions of source code must retain the above copyright 11 * notice, this list of conditions and the following disclaimer. 12 * 2. Redistributions in binary form must reproduce the above copyright 13 * notice, this list of conditions and the following disclaimer in the 14 * documentation and/or other materials provided with the distribution. 15 * 3. Neither the name of the project nor the names of its contributors 16 * may be used to endorse or promote products derived from this software 17 * without specific prior written permission. 18 * 19 * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND 20 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 21 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 22 * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE 23 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 24 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 25 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 26 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 27 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 28 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 29 * SUCH DAMAGE. 30 * 31 * $KAME: nd6_rtr.c,v 1.111 2001/04/27 01:37:15 jinmei Exp $ 32 */ 33 34 #include "opt_inet.h" 35 #include "opt_inet6.h" 36 37 #include <sys/param.h> 38 #include <sys/systm.h> 39 #include <sys/malloc.h> 40 #include <sys/mbuf.h> 41 #include <sys/refcount.h> 42 #include <sys/socket.h> 43 #include <sys/sockio.h> 44 #include <sys/time.h> 45 #include <sys/kernel.h> 46 #include <sys/lock.h> 47 #include <sys/errno.h> 48 #include <sys/rmlock.h> 49 #include <sys/rwlock.h> 50 #include <sys/sysctl.h> 51 #include <sys/syslog.h> 52 #include <sys/queue.h> 53 #include <sys/random.h> 54 55 #include <net/if.h> 56 #include <net/if_var.h> 57 #include <net/if_private.h> 58 #include <net/if_types.h> 59 #include <net/if_dl.h> 60 #include <net/route.h> 61 #include <net/route/nhop.h> 62 #include <net/route/route_ctl.h> 63 #include <net/radix.h> 64 #include <net/vnet.h> 65 66 #include <netinet/in.h> 67 #include <net/if_llatbl.h> 68 #include <netinet6/in6_var.h> 69 #include <netinet6/in6_ifattach.h> 70 #include <netinet/ip6.h> 71 #include <netinet6/ip6_var.h> 72 #include <netinet6/nd6.h> 73 #include <netinet/icmp6.h> 74 #include <netinet6/scope6_var.h> 75 76 #include <machine/atomic.h> 77 78 MALLOC_DEFINE(M_IP6NDP, "ip6ndp", "IPv6 Neighbor Discovery"); 79 80 static struct nd_defrouter *defrtrlist_update(struct nd_defrouter *); 81 static int prelist_update(struct nd_prefixctl *, struct nd_defrouter *, 82 bool, int); 83 static int nd6_prefix_onlink(struct nd_prefix *); 84 static int in6_get_tmp_ifid(struct in6_aliasreq *); 85 86 TAILQ_HEAD(nd6_drhead, nd_defrouter); 87 VNET_DEFINE_STATIC(struct nd6_drhead, nd6_defrouter); 88 #define V_nd6_defrouter VNET(nd6_defrouter) 89 90 VNET_DECLARE(int, nd6_recalc_reachtm_interval); 91 #define V_nd6_recalc_reachtm_interval VNET(nd6_recalc_reachtm_interval) 92 93 VNET_DEFINE_STATIC(struct ifnet *, nd6_defifp); 94 VNET_DEFINE(int, nd6_defifindex); 95 #define V_nd6_defifp VNET(nd6_defifp) 96 97 VNET_DEFINE(int, ip6_use_tempaddr) = 0; 98 VNET_DEFINE(bool, ip6_use_stableaddr) = 1; 99 100 VNET_DEFINE(int, ip6_desync_factor); 101 VNET_DEFINE(uint32_t, ip6_temp_max_desync_factor) = TEMP_MAX_DESYNC_FACTOR_BASE; 102 VNET_DEFINE(u_int32_t, ip6_temp_preferred_lifetime) = DEF_TEMP_PREFERRED_LIFETIME; 103 VNET_DEFINE(u_int32_t, ip6_temp_valid_lifetime) = DEF_TEMP_VALID_LIFETIME; 104 105 VNET_DEFINE(int, ip6_temp_regen_advance) = TEMPADDR_REGEN_ADVANCE; 106 107 #ifdef EXPERIMENTAL 108 VNET_DEFINE_STATIC(int, nd6_ignore_ipv6_only_ra) = 1; 109 #define V_nd6_ignore_ipv6_only_ra VNET(nd6_ignore_ipv6_only_ra) 110 SYSCTL_INT(_net_inet6_icmp6, OID_AUTO, 111 nd6_ignore_ipv6_only_ra, CTLFLAG_VNET | CTLFLAG_RW, 112 &VNET_NAME(nd6_ignore_ipv6_only_ra), 0, 113 "Ignore the 'IPv6-Only flag' in RA messages in compliance with " 114 "draft-ietf-6man-ipv6only-flag"); 115 #endif 116 117 /* RTPREF_MEDIUM has to be 0! */ 118 #define RTPREF_HIGH 1 119 #define RTPREF_MEDIUM 0 120 #define RTPREF_LOW (-1) 121 #define RTPREF_RESERVED (-2) 122 #define RTPREF_INVALID (-3) /* internal */ 123 124 static void 125 defrouter_ref(struct nd_defrouter *dr) 126 { 127 128 refcount_acquire(&dr->refcnt); 129 } 130 131 void 132 defrouter_rele(struct nd_defrouter *dr) 133 { 134 135 if (refcount_release(&dr->refcnt)) 136 free(dr, M_IP6NDP); 137 } 138 139 /* 140 * Remove a router from the global list and optionally stash it in a 141 * caller-supplied queue. 142 */ 143 static void 144 defrouter_unlink(struct nd_defrouter *dr, struct nd6_drhead *drq) 145 { 146 147 ND6_WLOCK_ASSERT(); 148 149 TAILQ_REMOVE(&V_nd6_defrouter, dr, dr_entry); 150 V_nd6_list_genid++; 151 if (drq != NULL) 152 TAILQ_INSERT_TAIL(drq, dr, dr_entry); 153 } 154 155 /* 156 * Receive Router Solicitation Message - just for routers. 157 * Router solicitation/advertisement is mostly managed by userland program 158 * (rtadvd) so here we have no function like nd6_ra_output(). 159 * 160 * Based on RFC 2461 161 */ 162 void 163 nd6_rs_input(struct mbuf *m, int off, int icmp6len) 164 { 165 struct ifnet *ifp; 166 struct ip6_hdr *ip6; 167 struct nd_router_solicit *nd_rs; 168 struct in6_addr saddr6; 169 union nd_opts ndopts; 170 char ip6bufs[INET6_ADDRSTRLEN], ip6bufd[INET6_ADDRSTRLEN]; 171 char *lladdr; 172 int lladdrlen; 173 174 ifp = m->m_pkthdr.rcvif; 175 176 /* 177 * Accept RS only when V_ip6_forwarding=1 and the interface has 178 * no ND6_IFF_ACCEPT_RTADV. 179 */ 180 if (!V_ip6_forwarding || ifp->if_inet6->nd_flags & ND6_IFF_ACCEPT_RTADV) 181 goto freeit; 182 183 /* RFC 6980: Nodes MUST silently ignore fragments */ 184 if(m->m_flags & M_FRAGMENTED) 185 goto freeit; 186 187 /* Sanity checks */ 188 ip6 = mtod(m, struct ip6_hdr *); 189 if (__predict_false(ip6->ip6_hlim != 255)) { 190 ICMP6STAT_INC(icp6s_invlhlim); 191 nd6log((LOG_ERR, 192 "%s: invalid hlim (%d) from %s to %s on %s\n", __func__, 193 ip6->ip6_hlim, ip6_sprintf(ip6bufs, &ip6->ip6_src), 194 ip6_sprintf(ip6bufd, &ip6->ip6_dst), if_name(ifp))); 195 goto bad; 196 } 197 198 /* 199 * Don't update the neighbor cache, if src = ::. 200 * This indicates that the src has no IP address assigned yet. 201 */ 202 saddr6 = ip6->ip6_src; 203 if (IN6_IS_ADDR_UNSPECIFIED(&saddr6)) 204 goto freeit; 205 206 if (m->m_len < off + icmp6len) { 207 m = m_pullup(m, off + icmp6len); 208 if (m == NULL) { 209 IP6STAT_INC(ip6s_exthdrtoolong); 210 return; 211 } 212 } 213 ip6 = mtod(m, struct ip6_hdr *); 214 nd_rs = (struct nd_router_solicit *)((caddr_t)ip6 + off); 215 216 icmp6len -= sizeof(*nd_rs); 217 nd6_option_init(nd_rs + 1, icmp6len, &ndopts); 218 if (nd6_options(&ndopts) < 0) { 219 nd6log((LOG_INFO, 220 "%s: invalid ND option, ignored\n", __func__)); 221 /* nd6_options have incremented stats */ 222 goto freeit; 223 } 224 225 lladdr = NULL; 226 lladdrlen = 0; 227 if (ndopts.nd_opts_src_lladdr) { 228 lladdr = (char *)(ndopts.nd_opts_src_lladdr + 1); 229 lladdrlen = ndopts.nd_opts_src_lladdr->nd_opt_len << 3; 230 } 231 232 if (lladdr && ((ifp->if_addrlen + 2 + 7) & ~7) != lladdrlen) { 233 nd6log((LOG_INFO, 234 "%s: lladdrlen mismatch for %s (if %d, RS packet %d)\n", 235 __func__, ip6_sprintf(ip6bufs, &saddr6), 236 ifp->if_addrlen, lladdrlen - 2)); 237 goto bad; 238 } 239 240 nd6_cache_lladdr(ifp, &saddr6, lladdr, lladdrlen, ND_ROUTER_SOLICIT, 0); 241 242 freeit: 243 m_freem(m); 244 return; 245 246 bad: 247 ICMP6STAT_INC(icp6s_badrs); 248 m_freem(m); 249 } 250 251 #ifdef EXPERIMENTAL 252 /* 253 * An initial update routine for draft-ietf-6man-ipv6only-flag. 254 * We need to iterate over all default routers for the given 255 * interface to see whether they are all advertising the "S" 256 * (IPv6-Only) flag. If they do set, otherwise unset, the 257 * interface flag we later use to filter on. 258 * 259 * XXXGL: The use of IF_ADDR_WLOCK (previously it was IF_AFDATA_LOCK) in this 260 * function is quite strange. 261 */ 262 static void 263 defrtr_ipv6_only_ifp(struct ifnet *ifp) 264 { 265 struct nd_defrouter *dr; 266 bool ipv6_only, ipv6_only_old; 267 #ifdef INET 268 struct epoch_tracker et; 269 struct ifaddr *ifa; 270 bool has_ipv4_addr; 271 #endif 272 273 if (V_nd6_ignore_ipv6_only_ra != 0) 274 return; 275 276 ipv6_only = true; 277 ND6_RLOCK(); 278 TAILQ_FOREACH(dr, &V_nd6_defrouter, dr_entry) 279 if (dr->ifp == ifp && 280 (dr->raflags & ND_RA_FLAG_IPV6_ONLY) == 0) 281 ipv6_only = false; 282 ND6_RUNLOCK(); 283 284 IF_ADDR_WLOCK(ifp); 285 ipv6_only_old = ifp->if_inet6->nd_flags & ND6_IFF_IPV6_ONLY; 286 IF_ADDR_WUNLOCK(ifp); 287 288 /* If nothing changed, we have an early exit. */ 289 if (ipv6_only == ipv6_only_old) 290 return; 291 292 #ifdef INET 293 /* 294 * Should we want to set the IPV6-ONLY flag, check if the 295 * interface has a non-0/0 and non-link-local IPv4 address 296 * configured on it. If it has we will assume working 297 * IPv4 operations and will clear the interface flag. 298 */ 299 has_ipv4_addr = false; 300 if (ipv6_only) { 301 NET_EPOCH_ENTER(et); 302 CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) { 303 if (ifa->ifa_addr->sa_family != AF_INET) 304 continue; 305 if (in_canforward( 306 satosin(ifa->ifa_addr)->sin_addr)) { 307 has_ipv4_addr = true; 308 break; 309 } 310 } 311 NET_EPOCH_EXIT(et); 312 } 313 if (ipv6_only && has_ipv4_addr) { 314 log(LOG_NOTICE, "%s rcvd RA w/ IPv6-Only flag set but has IPv4 " 315 "configured, ignoring IPv6-Only flag.\n", ifp->if_xname); 316 ipv6_only = false; 317 } 318 #endif 319 320 IF_ADDR_WLOCK(ifp); 321 if (ipv6_only) 322 ifp->if_inet6->nd_flags |= ND6_IFF_IPV6_ONLY; 323 else 324 ifp->if_inet6->nd_flags &= ~ND6_IFF_IPV6_ONLY; 325 IF_ADDR_WUNLOCK(ifp); 326 327 #ifdef notyet 328 /* Send notification of flag change. */ 329 #endif 330 } 331 332 static void 333 defrtr_ipv6_only_ipf_down(struct ifnet *ifp) 334 { 335 336 IF_ADDR_WLOCK(ifp); 337 ifp->if_inet6->nd_flags &= ~ND6_IFF_IPV6_ONLY; 338 IF_ADDR_WUNLOCK(ifp); 339 } 340 #endif /* EXPERIMENTAL */ 341 342 void 343 nd6_ifnet_link_event(void *arg __unused, struct ifnet *ifp, int linkstate) 344 { 345 346 /* 347 * XXX-BZ we might want to trigger re-evaluation of our default router 348 * availability. E.g., on link down the default router might be 349 * unreachable but a different interface might still have connectivity. 350 */ 351 352 #ifdef EXPERIMENTAL 353 if (linkstate == LINK_STATE_DOWN) 354 defrtr_ipv6_only_ipf_down(ifp); 355 #endif 356 } 357 358 static void 359 nd6_ra_opt_pi(struct nd_opt_hdr *pt, struct ifnet *ifp, 360 struct nd_router_advert *nd_ra, struct nd_defrouter *dr, 361 bool auth, bool mcast) 362 { 363 struct nd_opt_prefix_info *pi = NULL; 364 struct nd_prefixctl pr; 365 char ip6bufs[INET6_ADDRSTRLEN]; 366 367 if (pt->nd_opt_type != ND_OPT_PREFIX_INFORMATION) 368 return; 369 370 pi = (struct nd_opt_prefix_info *)pt; 371 if (pi->nd_opt_pi_len != 4) { 372 nd6log((LOG_INFO, 373 "%s: invalid option len %d for prefix " 374 "information option, ignored\n", __func__, 375 pi->nd_opt_pi_len)); 376 return; 377 } 378 379 if (pi->nd_opt_pi_prefix_len > 128) { 380 nd6log((LOG_INFO, 381 "%s: invalid prefix len %d for prefix " 382 "information option, ignored\n", __func__, 383 pi->nd_opt_pi_prefix_len)); 384 return; 385 } 386 387 if (IN6_IS_ADDR_MULTICAST(&pi->nd_opt_pi_prefix) 388 || IN6_IS_ADDR_LINKLOCAL(&pi->nd_opt_pi_prefix)) { 389 nd6log((LOG_INFO, 390 "%s: invalid prefix %s, ignored\n", 391 __func__, ip6_sprintf(ip6bufs, 392 &pi->nd_opt_pi_prefix))); 393 return; 394 } 395 396 bzero(&pr, sizeof(pr)); 397 pr.ndpr_prefix.sin6_family = AF_INET6; 398 pr.ndpr_prefix.sin6_len = sizeof(pr.ndpr_prefix); 399 pr.ndpr_prefix.sin6_addr = pi->nd_opt_pi_prefix; 400 pr.ndpr_ifp = ifp; 401 402 pr.ndpr_raf_onlink = (pi->nd_opt_pi_flags_reserved & 403 ND_OPT_PI_FLAG_ONLINK) ? 1 : 0; 404 pr.ndpr_raf_auto = (pi->nd_opt_pi_flags_reserved & 405 ND_OPT_PI_FLAG_AUTO) ? 1 : 0; 406 pr.ndpr_plen = pi->nd_opt_pi_prefix_len; 407 pr.ndpr_vltime = ntohl(pi->nd_opt_pi_valid_time); 408 pr.ndpr_pltime = ntohl(pi->nd_opt_pi_preferred_time); 409 (void)prelist_update(&pr, dr, auth, mcast); 410 } 411 412 static void 413 nd6_ra_opt_mtu(struct nd_opt_mtu *optmtu, struct ifnet *ifp, 414 struct in6_addr saddr6) 415 { 416 struct in6_ifextra *ndi; 417 char ip6bufs[INET6_ADDRSTRLEN]; 418 uint32_t mtu, maxmtu; 419 420 ndi = ifp->if_inet6; 421 422 if (optmtu->nd_opt_mtu_len != 1) 423 return; 424 mtu = (uint32_t)ntohl(optmtu->nd_opt_mtu_mtu); 425 /* lower bound */ 426 if (mtu < IPV6_MMTU) { 427 nd6log((LOG_INFO, "%s: bogus mtu option mtu=%u sent from %s, " 428 "ignoring\n", __func__, mtu, ip6_sprintf(ip6bufs, &saddr6))); 429 return; 430 } 431 432 /* upper bound */ 433 maxmtu = (ndi->nd_maxmtu && ndi->nd_maxmtu < ifp->if_mtu) 434 ? ndi->nd_maxmtu : ifp->if_mtu; 435 if (mtu <= maxmtu) { 436 if (ndi->nd_linkmtu != mtu) { 437 ndi->nd_linkmtu = mtu; 438 rt_updatemtu(ifp); 439 } 440 } else { 441 nd6log((LOG_INFO, "%s: bogus mtu=%u sent from %s; " 442 "exceeds maxmtu %u, ignoring\n", __func__, 443 mtu, ip6_sprintf(ip6bufs, &saddr6), maxmtu)); 444 } 445 } 446 447 static int 448 nd6_ra_opt_src_lladdr(struct nd_opt_hdr *opthdr, struct ifnet *ifp, 449 struct in6_addr saddr6) 450 { 451 char ip6bufs[INET6_ADDRSTRLEN]; 452 char *lladdr = NULL; 453 int lladdrlen = 0; 454 455 if (opthdr != NULL) { 456 lladdr = (char *)(opthdr + 1); 457 lladdrlen = opthdr->nd_opt_len << 3; 458 } 459 460 if (lladdr && ((ifp->if_addrlen + 2 + 7) & ~7) != lladdrlen) { 461 nd6log((LOG_INFO, 462 "%s: lladdrlen mismatch for %s (if %d, RA packet %d)\n", 463 __func__, ip6_sprintf(ip6bufs, &saddr6), 464 ifp->if_addrlen, lladdrlen - 2)); 465 return (-1); 466 } 467 468 nd6_cache_lladdr(ifp, &saddr6, lladdr, lladdrlen, ND_ROUTER_ADVERT, 0); 469 470 /* 471 * Installing a link-layer address might change the state of the 472 * router's neighbor cache, which might also affect our on-link 473 * detection of adveritsed prefixes. 474 */ 475 pfxlist_onlink_check(); 476 return (0); 477 } 478 479 /* 480 * Receive Router Advertisement Message. 481 * 482 * Based on RFC 2461 483 * TODO: on-link bit on prefix information 484 * TODO: ND_RA_FLAG_{OTHER,MANAGED} processing 485 */ 486 void 487 nd6_ra_input(struct mbuf *m, int off, int icmp6len) 488 { 489 struct ifnet *ifp; 490 struct in6_ifextra *ndi; 491 struct ip6_hdr *ip6; 492 struct nd_router_advert *nd_ra; 493 struct nd_opt_hdr *pt; 494 struct in6_addr saddr6; 495 struct nd_defrouter dr0, *dr; 496 union nd_opts ndopts; 497 char ip6bufs[INET6_ADDRSTRLEN], ip6bufd[INET6_ADDRSTRLEN]; 498 uint32_t advreachable; 499 bool mcast, auth; 500 501 /* 502 * We only accept RAs only when the per-interface flag 503 * ND6_IFF_ACCEPT_RTADV is on the receiving interface. 504 */ 505 ifp = m->m_pkthdr.rcvif; 506 ndi = ifp->if_inet6; 507 if (!(ndi->nd_flags & ND6_IFF_ACCEPT_RTADV)) 508 goto freeit; 509 510 /* RFC 6980: Nodes MUST silently ignore fragments */ 511 if(m->m_flags & M_FRAGMENTED) 512 goto freeit; 513 514 ip6 = mtod(m, struct ip6_hdr *); 515 /* RFC 4861 section 6.1.2: hlim must be 255 */ 516 if (__predict_false(ip6->ip6_hlim != 255)) { 517 ICMP6STAT_INC(icp6s_invlhlim); 518 nd6log((LOG_ERR, 519 "%s: invalid hlim (%d) from %s to %s on %s\n", __func__, 520 ip6->ip6_hlim, ip6_sprintf(ip6bufs, &ip6->ip6_src), 521 ip6_sprintf(ip6bufd, &ip6->ip6_dst), if_name(ifp))); 522 goto bad; 523 } 524 525 saddr6 = ip6->ip6_src; 526 /* RFC 4861 section 6.1.2: source address must be link-local */ 527 if (!IN6_IS_ADDR_LINKLOCAL(&saddr6)) { 528 nd6log((LOG_ERR, 529 "%s: src %s is not link-local\n", __func__, 530 ip6_sprintf(ip6bufs, &saddr6))); 531 goto bad; 532 } 533 534 if (m->m_len < off + icmp6len) { 535 m = m_pullup(m, off + icmp6len); 536 if (m == NULL) { 537 IP6STAT_INC(ip6s_exthdrtoolong); 538 return; 539 } 540 } 541 nd_ra = (struct nd_router_advert *)((caddr_t)ip6 + off); 542 543 icmp6len -= sizeof(*nd_ra); 544 nd6_option_init(nd_ra + 1, icmp6len, &ndopts); 545 if (nd6_options(&ndopts) < 0) { 546 nd6log((LOG_INFO, 547 "%s: invalid ND option, ignored\n", __func__)); 548 /* nd6_options have incremented stats */ 549 goto freeit; 550 } 551 552 dr = NULL; 553 mcast = false; 554 /* remember if this is a multicasted advertisement */ 555 if (IN6_IS_ADDR_MULTICAST(&ip6->ip6_dst)) 556 mcast = true; 557 558 bzero(&dr0, sizeof(dr0)); 559 dr0.rtaddr = saddr6; 560 dr0.raflags = nd_ra->nd_ra_flags_reserved; 561 /* 562 * Effectively-disable routes from RA messages when 563 * ND6_IFF_NO_RADR enabled on the receiving interface or 564 * (ip6.forwarding == 1 && ip6.rfc6204w3 != 1). 565 */ 566 if ((ndi->nd_flags & ND6_IFF_NO_RADR) || 567 (V_ip6_forwarding && !V_ip6_rfc6204w3)) 568 dr0.rtlifetime = 0; 569 else 570 dr0.rtlifetime = ntohs(nd_ra->nd_ra_router_lifetime); 571 dr0.expire = time_uptime + dr0.rtlifetime; 572 dr0.ifp = ifp; 573 /* 574 * RFC 4861 6.3.4: RA fields such as Cur Hop Limit, 575 * Reachable Time, and Retrans Timer may be unspecified. 576 * In such cases, the parameter should be ignored. 577 */ 578 if (nd_ra->nd_ra_reachable) { 579 advreachable = ntohl(nd_ra->nd_ra_reachable); 580 if (advreachable <= MAX_REACHABLE_TIME && 581 ndi->nd_basereachable != advreachable) { 582 ndi->nd_basereachable = advreachable; 583 ndi->nd_reachable = 584 ND_COMPUTE_RTIME(ndi->nd_basereachable); 585 ndi->nd_recalc_timer = V_nd6_recalc_reachtm_interval; 586 } 587 } 588 if (nd_ra->nd_ra_retransmit) 589 ndi->nd_retrans = ntohl(nd_ra->nd_ra_retransmit); 590 if (nd_ra->nd_ra_curhoplimit) { 591 if (ndi->nd_curhoplimit < nd_ra->nd_ra_curhoplimit) 592 ndi->nd_curhoplimit = nd_ra->nd_ra_curhoplimit; 593 else if (ndi->nd_curhoplimit != nd_ra->nd_ra_curhoplimit) { 594 log(LOG_ERR, "RA with a lower CurHopLimit sent from " 595 "%s on %s (current = %d, received = %d). " 596 "Ignored.\n", ip6_sprintf(ip6bufs, &ip6->ip6_src), 597 if_name(ifp), ndi->nd_curhoplimit, 598 nd_ra->nd_ra_curhoplimit); 599 } 600 } 601 dr = defrtrlist_update(&dr0); 602 #ifdef EXPERIMENTAL 603 defrtr_ipv6_only_ifp(ifp); 604 #endif 605 /* Prefix Information */ 606 if (ndopts.nd_opts_pi != NULL) { 607 /* 608 * Authenticity for NA consists authentication for 609 * both IP header and IP datagrams, doesn't it ? 610 */ 611 auth = ((m->m_flags & M_AUTHIPHDR) && (m->m_flags & M_AUTHIPDGM)); 612 for (pt = (struct nd_opt_hdr *)ndopts.nd_opts_pi; 613 pt <= (struct nd_opt_hdr *)ndopts.nd_opts_pi_end; 614 pt = (struct nd_opt_hdr *)((caddr_t)pt + 615 (pt->nd_opt_len << 3))) { 616 nd6_ra_opt_pi(pt, ifp, nd_ra, dr, auth, mcast); 617 } 618 } 619 if (dr != NULL) { 620 defrouter_rele(dr); 621 dr = NULL; 622 } 623 624 /* MTU */ 625 if (ndopts.nd_opts_mtu != NULL) 626 nd6_ra_opt_mtu(ndopts.nd_opts_mtu, ifp, saddr6); 627 628 /* Source link layer address */ 629 if (nd6_ra_opt_src_lladdr(ndopts.nd_opts_src_lladdr, ifp, saddr6) != 0) 630 goto bad; 631 632 freeit: 633 m_freem(m); 634 return; 635 636 bad: 637 ICMP6STAT_INC(icp6s_badra); 638 m_freem(m); 639 } 640 641 /* PFXRTR */ 642 static struct nd_pfxrouter * 643 pfxrtr_lookup(struct nd_prefix *pr, struct nd_defrouter *dr) 644 { 645 struct nd_pfxrouter *search; 646 647 ND6_LOCK_ASSERT(); 648 649 LIST_FOREACH(search, &pr->ndpr_advrtrs, pfr_entry) { 650 if (search->router == dr) 651 break; 652 } 653 return (search); 654 } 655 656 static void 657 pfxrtr_add(struct nd_prefix *pr, struct nd_defrouter *dr) 658 { 659 struct nd_pfxrouter *new; 660 bool update; 661 662 ND6_UNLOCK_ASSERT(); 663 664 ND6_RLOCK(); 665 if (pfxrtr_lookup(pr, dr) != NULL) { 666 ND6_RUNLOCK(); 667 return; 668 } 669 ND6_RUNLOCK(); 670 671 new = malloc(sizeof(*new), M_IP6NDP, M_NOWAIT | M_ZERO); 672 if (new == NULL) 673 return; 674 defrouter_ref(dr); 675 new->router = dr; 676 677 ND6_WLOCK(); 678 if (pfxrtr_lookup(pr, dr) == NULL) { 679 LIST_INSERT_HEAD(&pr->ndpr_advrtrs, new, pfr_entry); 680 update = true; 681 } else { 682 /* We lost a race to add the reference. */ 683 defrouter_rele(dr); 684 free(new, M_IP6NDP); 685 update = false; 686 } 687 ND6_WUNLOCK(); 688 689 if (update) 690 pfxlist_onlink_check(); 691 } 692 693 static void 694 pfxrtr_del(struct nd_pfxrouter *pfr) 695 { 696 697 ND6_WLOCK_ASSERT(); 698 699 LIST_REMOVE(pfr, pfr_entry); 700 defrouter_rele(pfr->router); 701 free(pfr, M_IP6NDP); 702 } 703 704 /* Default router list processing sub routines. */ 705 static void 706 defrouter_addreq(struct nd_defrouter *new) 707 { 708 uint32_t fibnum = new->ifp->if_fib; 709 struct rib_cmd_info rc = {}; 710 int error = 0; 711 712 NET_EPOCH_ASSERT(); 713 714 struct sockaddr_in6 gw = { 715 .sin6_family = AF_INET6, 716 .sin6_len = sizeof(struct sockaddr_in6), 717 .sin6_addr = new->rtaddr, 718 }; 719 720 error = rib_add_default_route(fibnum, AF_INET6, new->ifp, 721 (struct sockaddr *)&gw, &rc); 722 723 if (error == 0) { 724 struct nhop_object *nh = nhop_select_func(rc.rc_nh_new, 0); 725 rt_routemsg(RTM_ADD, rc.rc_rt, nh, fibnum); 726 new->installed = 1; 727 } 728 } 729 730 /* 731 * Remove the default route for a given router. 732 * This is just a subroutine function for defrouter_select_fib(), and 733 * should not be called from anywhere else. 734 */ 735 static void 736 defrouter_delreq(struct nd_defrouter *dr) 737 { 738 uint32_t fibnum = dr->ifp->if_fib; 739 struct epoch_tracker et; 740 struct rib_cmd_info rc; 741 int error; 742 743 struct sockaddr_in6 dst = { 744 .sin6_family = AF_INET6, 745 .sin6_len = sizeof(struct sockaddr_in6), 746 }; 747 748 struct sockaddr_in6 gw = { 749 .sin6_family = AF_INET6, 750 .sin6_len = sizeof(struct sockaddr_in6), 751 .sin6_addr = dr->rtaddr, 752 }; 753 754 NET_EPOCH_ENTER(et); 755 error = rib_del_route_px(fibnum, (struct sockaddr *)&dst, 0, 756 rib_match_gw, (struct sockaddr *)&gw, 0, &rc); 757 if (error == 0) { 758 struct nhop_object *nh = nhop_select_func(rc.rc_nh_old, 0); 759 rt_routemsg(RTM_DELETE, rc.rc_rt, nh, fibnum); 760 } 761 NET_EPOCH_EXIT(et); 762 763 dr->installed = 0; 764 } 765 766 static void 767 defrouter_del(struct nd_defrouter *dr) 768 { 769 struct nd_defrouter *deldr = NULL; 770 struct nd_prefix *pr; 771 struct nd_pfxrouter *pfxrtr; 772 773 ND6_UNLOCK_ASSERT(); 774 775 /* 776 * Flush all the routing table entries that use the router 777 * as a next hop. 778 */ 779 if (dr->ifp->if_inet6->nd_flags & ND6_IFF_ACCEPT_RTADV) 780 rt6_flush(&dr->rtaddr, dr->ifp); 781 782 #ifdef EXPERIMENTAL 783 defrtr_ipv6_only_ifp(dr->ifp); 784 #endif 785 786 if (dr->installed) { 787 deldr = dr; 788 defrouter_delreq(dr); 789 } 790 791 /* 792 * Also delete all the pointers to the router in each prefix lists. 793 */ 794 ND6_WLOCK(); 795 LIST_FOREACH(pr, &V_nd_prefix, ndpr_entry) { 796 if ((pfxrtr = pfxrtr_lookup(pr, dr)) != NULL) 797 pfxrtr_del(pfxrtr); 798 } 799 ND6_WUNLOCK(); 800 801 pfxlist_onlink_check(); 802 803 /* 804 * If the router is the primary one, choose a new one. 805 * Note that defrouter_select_fib() will remove the current 806 * gateway from the routing table. 807 */ 808 if (deldr) 809 defrouter_select_fib(deldr->ifp->if_fib); 810 811 /* 812 * Release the list reference. 813 */ 814 defrouter_rele(dr); 815 } 816 817 struct nd_defrouter * 818 defrouter_lookup_locked(const struct in6_addr *addr, struct ifnet *ifp) 819 { 820 struct nd_defrouter *dr; 821 822 ND6_LOCK_ASSERT(); 823 TAILQ_FOREACH(dr, &V_nd6_defrouter, dr_entry) 824 if (dr->ifp == ifp && IN6_ARE_ADDR_EQUAL(addr, &dr->rtaddr)) { 825 defrouter_ref(dr); 826 return (dr); 827 } 828 return (NULL); 829 } 830 831 struct nd_defrouter * 832 defrouter_lookup(const struct in6_addr *addr, struct ifnet *ifp) 833 { 834 struct nd_defrouter *dr; 835 836 ND6_RLOCK(); 837 dr = defrouter_lookup_locked(addr, ifp); 838 ND6_RUNLOCK(); 839 return (dr); 840 } 841 842 /* 843 * Remove all default routes from default router list. 844 */ 845 void 846 defrouter_reset(void) 847 { 848 struct nd_defrouter *dr, **dra; 849 int count, i; 850 851 count = i = 0; 852 853 /* 854 * We can't delete routes with the ND lock held, so make a copy of the 855 * current default router list and use that when deleting routes. 856 */ 857 ND6_RLOCK(); 858 TAILQ_FOREACH(dr, &V_nd6_defrouter, dr_entry) 859 count++; 860 ND6_RUNLOCK(); 861 862 dra = malloc(count * sizeof(*dra), M_TEMP, M_WAITOK | M_ZERO); 863 864 ND6_RLOCK(); 865 TAILQ_FOREACH(dr, &V_nd6_defrouter, dr_entry) { 866 if (i == count) 867 break; 868 defrouter_ref(dr); 869 dra[i++] = dr; 870 } 871 ND6_RUNLOCK(); 872 873 for (i = 0; i < count && dra[i] != NULL; i++) { 874 defrouter_delreq(dra[i]); 875 defrouter_rele(dra[i]); 876 } 877 free(dra, M_TEMP); 878 879 /* 880 * XXX should we also nuke any default routers in the kernel, by 881 * going through them by rtalloc1()? 882 */ 883 } 884 885 /* 886 * Look up a matching default router list entry and remove it. Returns true if a 887 * matching entry was found, false otherwise. 888 */ 889 bool 890 defrouter_remove(struct in6_addr *addr, struct ifnet *ifp) 891 { 892 struct nd_defrouter *dr; 893 894 ND6_WLOCK(); 895 dr = defrouter_lookup_locked(addr, ifp); 896 if (dr == NULL) { 897 ND6_WUNLOCK(); 898 return (false); 899 } 900 901 defrouter_unlink(dr, NULL); 902 ND6_WUNLOCK(); 903 defrouter_del(dr); 904 defrouter_rele(dr); 905 return (true); 906 } 907 908 /* 909 * for default router selection 910 * regards router-preference field as a 2-bit signed integer 911 */ 912 static int 913 rtpref(struct nd_defrouter *dr) 914 { 915 switch (dr->raflags & ND_RA_FLAG_RTPREF_MASK) { 916 case ND_RA_FLAG_RTPREF_HIGH: 917 return (RTPREF_HIGH); 918 case ND_RA_FLAG_RTPREF_MEDIUM: 919 case ND_RA_FLAG_RTPREF_RSV: 920 return (RTPREF_MEDIUM); 921 case ND_RA_FLAG_RTPREF_LOW: 922 return (RTPREF_LOW); 923 default: 924 /* 925 * This case should never happen. If it did, it would mean a 926 * serious bug of kernel internal. We thus always bark here. 927 * Or, can we even panic? 928 */ 929 log(LOG_ERR, "rtpref: impossible RA flag %x\n", dr->raflags); 930 return (RTPREF_INVALID); 931 } 932 /* NOTREACHED */ 933 } 934 935 static bool 936 is_dr_reachable(const struct nd_defrouter *dr) { 937 struct llentry *ln = NULL; 938 939 ln = nd6_lookup(&dr->rtaddr, LLE_SF(AF_INET6, 0), dr->ifp); 940 if (ln == NULL) 941 return (false); 942 bool reachable = ND6_IS_LLINFO_PROBREACH(ln); 943 LLE_RUNLOCK(ln); 944 return reachable; 945 } 946 947 /* 948 * Default Router Selection according to Section 6.3.6 of RFC 2461 and 949 * draft-ietf-ipngwg-router-selection: 950 * 1) Routers that are reachable or probably reachable should be preferred. 951 * If we have more than one (probably) reachable router, prefer ones 952 * with the highest router preference. 953 * 2) When no routers on the list are known to be reachable or 954 * probably reachable, routers SHOULD be selected in a round-robin 955 * fashion, regardless of router preference values. 956 * 3) If the Default Router List is empty, assume that all 957 * destinations are on-link. 958 * 959 * We assume nd_defrouter is sorted by router preference value. 960 * Since the code below covers both with and without router preference cases, 961 * we do not need to classify the cases by ifdef. 962 * 963 * At this moment, we do not try to install more than one default router, 964 * even when the multipath routing is available, because we're not sure about 965 * the benefits for stub hosts comparing to the risk of making the code 966 * complicated and the possibility of introducing bugs. 967 * 968 * We maintain a single list of routers for multiple FIBs, only considering one 969 * at a time based on the receiving interface's FIB. If @fibnum is RT_ALL_FIBS, 970 * we do the whole thing multiple times. 971 */ 972 void 973 defrouter_select_fib(int fibnum) 974 { 975 struct epoch_tracker et; 976 struct nd_defrouter *dr, *selected_dr, *installed_dr; 977 978 if (fibnum == RT_ALL_FIBS) { 979 for (fibnum = 0; fibnum < rt_numfibs; fibnum++) { 980 defrouter_select_fib(fibnum); 981 } 982 return; 983 } 984 985 ND6_RLOCK(); 986 /* 987 * Let's handle easy case (3) first: 988 * If default router list is empty, there's nothing to be done. 989 */ 990 if (TAILQ_EMPTY(&V_nd6_defrouter)) { 991 ND6_RUNLOCK(); 992 return; 993 } 994 995 /* 996 * Search for a (probably) reachable router from the list. 997 * We just pick up the first reachable one (if any), assuming that 998 * the ordering rule of the list described in defrtrlist_update(). 999 */ 1000 selected_dr = installed_dr = NULL; 1001 NET_EPOCH_ENTER(et); 1002 TAILQ_FOREACH(dr, &V_nd6_defrouter, dr_entry) { 1003 if (dr->ifp->if_fib != fibnum) 1004 continue; 1005 1006 if (selected_dr == NULL && is_dr_reachable(dr)) { 1007 selected_dr = dr; 1008 defrouter_ref(selected_dr); 1009 } 1010 1011 if (dr->installed) { 1012 if (installed_dr == NULL) { 1013 installed_dr = dr; 1014 defrouter_ref(installed_dr); 1015 } else { 1016 /* 1017 * this should not happen. 1018 * warn for diagnosis. 1019 */ 1020 log(LOG_ERR, "defrouter_select_fib: more than " 1021 "one router is installed\n"); 1022 } 1023 } 1024 } 1025 1026 /* 1027 * If none of the default routers was found to be reachable, 1028 * round-robin the list regardless of preference. 1029 * Otherwise, if we have an installed router, check if the selected 1030 * (reachable) router should really be preferred to the installed one. 1031 * We only prefer the new router when the old one is not reachable 1032 * or when the new one has a really higher preference value. 1033 */ 1034 if (selected_dr == NULL) { 1035 if (installed_dr == NULL || 1036 TAILQ_NEXT(installed_dr, dr_entry) == NULL) 1037 dr = TAILQ_FIRST(&V_nd6_defrouter); 1038 else 1039 dr = TAILQ_NEXT(installed_dr, dr_entry); 1040 1041 /* Ensure we select a router for this FIB. */ 1042 TAILQ_FOREACH_FROM(dr, &V_nd6_defrouter, dr_entry) { 1043 if (dr->ifp->if_fib == fibnum) { 1044 selected_dr = dr; 1045 defrouter_ref(selected_dr); 1046 break; 1047 } 1048 } 1049 } else if (installed_dr != NULL) { 1050 if (is_dr_reachable(installed_dr) && 1051 rtpref(selected_dr) <= rtpref(installed_dr)) { 1052 defrouter_rele(selected_dr); 1053 selected_dr = installed_dr; 1054 } 1055 } 1056 ND6_RUNLOCK(); 1057 1058 /* 1059 * If we selected a router for this FIB and it's different 1060 * than the installed one, remove the installed router and 1061 * install the selected one in its place. 1062 */ 1063 if (installed_dr != selected_dr) { 1064 if (installed_dr != NULL) { 1065 defrouter_delreq(installed_dr); 1066 defrouter_rele(installed_dr); 1067 } 1068 if (selected_dr != NULL) 1069 defrouter_addreq(selected_dr); 1070 } 1071 if (selected_dr != NULL) 1072 defrouter_rele(selected_dr); 1073 NET_EPOCH_EXIT(et); 1074 } 1075 1076 static struct nd_defrouter * 1077 defrtrlist_update(struct nd_defrouter *new) 1078 { 1079 struct nd_defrouter *dr, *n; 1080 uint64_t genid; 1081 int oldpref; 1082 bool writelocked; 1083 1084 if (new->rtlifetime == 0) { 1085 defrouter_remove(&new->rtaddr, new->ifp); 1086 return (NULL); 1087 } 1088 1089 ND6_RLOCK(); 1090 writelocked = false; 1091 restart: 1092 dr = defrouter_lookup_locked(&new->rtaddr, new->ifp); 1093 if (dr != NULL) { 1094 oldpref = rtpref(dr); 1095 1096 /* override */ 1097 dr->raflags = new->raflags; /* XXX flag check */ 1098 dr->rtlifetime = new->rtlifetime; 1099 dr->expire = new->expire; 1100 1101 /* 1102 * If the preference does not change, there's no need 1103 * to sort the entries. Also make sure the selected 1104 * router is still installed in the kernel. 1105 */ 1106 if (dr->installed && rtpref(new) == oldpref) { 1107 if (writelocked) 1108 ND6_WUNLOCK(); 1109 else 1110 ND6_RUNLOCK(); 1111 return (dr); 1112 } 1113 } 1114 1115 /* 1116 * The router needs to be reinserted into the default router 1117 * list, so upgrade to a write lock. If that fails and the list 1118 * has potentially changed while the lock was dropped, we'll 1119 * redo the lookup with the write lock held. 1120 */ 1121 if (!writelocked) { 1122 writelocked = true; 1123 if (!ND6_TRY_UPGRADE()) { 1124 genid = V_nd6_list_genid; 1125 ND6_RUNLOCK(); 1126 ND6_WLOCK(); 1127 if (genid != V_nd6_list_genid) 1128 goto restart; 1129 } 1130 } 1131 1132 if (dr != NULL) { 1133 /* 1134 * The preferred router may have changed, so relocate this 1135 * router. 1136 */ 1137 TAILQ_REMOVE(&V_nd6_defrouter, dr, dr_entry); 1138 n = dr; 1139 } else { 1140 n = malloc(sizeof(*n), M_IP6NDP, M_NOWAIT | M_ZERO); 1141 if (n == NULL) { 1142 ND6_WUNLOCK(); 1143 return (NULL); 1144 } 1145 memcpy(n, new, sizeof(*n)); 1146 /* Initialize with an extra reference for the caller. */ 1147 refcount_init(&n->refcnt, 2); 1148 } 1149 1150 /* 1151 * Insert the new router in the Default Router List; 1152 * The Default Router List should be in the descending order 1153 * of router-preferece. Routers with the same preference are 1154 * sorted in the arriving time order. 1155 */ 1156 1157 /* insert at the end of the group */ 1158 TAILQ_FOREACH(dr, &V_nd6_defrouter, dr_entry) { 1159 if (rtpref(n) > rtpref(dr)) 1160 break; 1161 } 1162 if (dr != NULL) 1163 TAILQ_INSERT_BEFORE(dr, n, dr_entry); 1164 else 1165 TAILQ_INSERT_TAIL(&V_nd6_defrouter, n, dr_entry); 1166 V_nd6_list_genid++; 1167 ND6_WUNLOCK(); 1168 1169 defrouter_select_fib(new->ifp->if_fib); 1170 1171 return (n); 1172 } 1173 1174 static void 1175 in6_init_prefix_ltimes(struct nd_prefix *ndpr) 1176 { 1177 ndpr->ndpr_preferred = in6_expire_time(ndpr->ndpr_pltime); 1178 ndpr->ndpr_expire = in6_expire_time(ndpr->ndpr_vltime); 1179 } 1180 1181 static void 1182 in6_init_address_ltimes(struct nd_prefix *new, struct in6_addrlifetime *lt6) 1183 { 1184 lt6->ia6t_preferred = in6_expire_time(lt6->ia6t_pltime); 1185 lt6->ia6t_expire = in6_expire_time(lt6->ia6t_vltime); 1186 } 1187 1188 static struct in6_ifaddr * 1189 in6_ifadd(struct nd_prefixctl *pr, int mcast) 1190 { 1191 struct ifnet *ifp = pr->ndpr_ifp; 1192 struct ifaddr *ifa; 1193 struct in6_aliasreq ifra; 1194 struct in6_ifaddr *ia = NULL, *ib = NULL; 1195 int error, plen0; 1196 struct in6_addr *ifid_addr = NULL, mask, newaddr; 1197 int prefixlen = pr->ndpr_plen; 1198 int updateflags; 1199 char ip6buf[INET6_ADDRSTRLEN]; 1200 1201 in6_prefixlen2mask(&mask, prefixlen); 1202 1203 /* 1204 * find a link-local address (will be interface ID). 1205 * Is it really mandatory? Theoretically, a global or a site-local 1206 * address can be configured without a link-local address, if we 1207 * have a unique interface identifier... 1208 * 1209 * it is not mandatory to have a link-local address, we can generate 1210 * interface identifier on the fly. we do this because: 1211 * (1) it should be the easiest way to find interface identifier. 1212 * (2) RFC2462 5.4 suggesting the use of the same interface identifier 1213 * for multiple addresses on a single interface, and possible shortcut 1214 * of DAD. we omitted DAD for this reason in the past. 1215 * (3) a user can prevent autoconfiguration of global address 1216 * by removing link-local address by hand (this is partly because we 1217 * don't have other way to control the use of IPv6 on an interface. 1218 * this has been our design choice - cf. NRL's "ifconfig auto"). 1219 * (4) it is easier to manage when an interface has addresses 1220 * with the same interface identifier, than to have multiple addresses 1221 * with different interface identifiers. 1222 * 1223 * If using stable privacy generation, generate a new address with 1224 * the algorithm specified in RFC 7217 section 5 1225 */ 1226 1227 /* make ifaddr */ 1228 in6_prepare_ifra(&ifra, &pr->ndpr_prefix.sin6_addr, &mask); 1229 1230 if (ifp->if_inet6->nd_flags & ND6_IFF_STABLEADDR) { 1231 memcpy(&newaddr, &pr->ndpr_prefix.sin6_addr, sizeof(pr->ndpr_prefix.sin6_addr)); 1232 1233 if(!in6_get_stableifid(ifp, &newaddr, prefixlen)) 1234 return NULL; 1235 } else { 1236 ifa = (struct ifaddr *)in6ifa_ifpforlinklocal(ifp, 0); /* 0 is OK? */ 1237 if (ifa) { 1238 ib = (struct in6_ifaddr *)ifa; 1239 ifid_addr = &ib->ia_addr.sin6_addr; 1240 1241 /* prefixlen + ifidlen must be equal to 128 */ 1242 plen0 = in6_mask2len(&ib->ia_prefixmask.sin6_addr, NULL); 1243 if (prefixlen != plen0) { 1244 ifa_free(ifa); 1245 ifid_addr = NULL; 1246 nd6log((LOG_DEBUG, 1247 "%s: wrong prefixlen for %s (prefix=%d ifid=%d)\n", 1248 __func__, if_name(ifp), prefixlen, 128 - plen0)); 1249 } 1250 } 1251 1252 /* No suitable LL address, get the ifid directly */ 1253 if (ifid_addr == NULL) { 1254 ifa = ifa_alloc(sizeof(struct in6_ifaddr), M_NOWAIT); 1255 if (ifa != NULL) { 1256 ib = (struct in6_ifaddr *)ifa; 1257 ifid_addr = &ib->ia_addr.sin6_addr; 1258 if(in6_get_ifid(ifp, NULL, ifid_addr) != 0) { 1259 nd6log((LOG_DEBUG, 1260 "%s: failed to get ifid for %s\n", 1261 __func__, if_name(ifp))); 1262 ifa_free(ifa); 1263 ifid_addr = NULL; 1264 } 1265 } 1266 } 1267 1268 if (ifid_addr == NULL) { 1269 nd6log((LOG_INFO, 1270 "%s: could not determine ifid for %s\n", 1271 __func__, if_name(ifp))); 1272 return NULL; 1273 } 1274 1275 memcpy(&newaddr, &ib->ia_addr.sin6_addr, sizeof(ib->ia_addr.sin6_addr)); 1276 ifa_free(ifa); 1277 } 1278 1279 IN6_MASK_ADDR(&ifra.ifra_addr.sin6_addr, &mask); 1280 /* interface ID */ 1281 ifra.ifra_addr.sin6_addr.s6_addr32[0] |= (newaddr.s6_addr32[0] & ~mask.s6_addr32[0]); 1282 ifra.ifra_addr.sin6_addr.s6_addr32[1] |= (newaddr.s6_addr32[1] & ~mask.s6_addr32[1]); 1283 ifra.ifra_addr.sin6_addr.s6_addr32[2] |= (newaddr.s6_addr32[2] & ~mask.s6_addr32[2]); 1284 ifra.ifra_addr.sin6_addr.s6_addr32[3] |= (newaddr.s6_addr32[3] & ~mask.s6_addr32[3]); 1285 1286 /* lifetimes. */ 1287 ifra.ifra_lifetime.ia6t_vltime = pr->ndpr_vltime; 1288 ifra.ifra_lifetime.ia6t_pltime = pr->ndpr_pltime; 1289 1290 /* XXX: scope zone ID? */ 1291 1292 ifra.ifra_flags |= IN6_IFF_AUTOCONF; /* obey autoconf */ 1293 1294 /* 1295 * Make sure that we do not have this address already. This should 1296 * usually not happen, but we can still see this case, e.g., if we 1297 * have manually configured the exact address to be configured. 1298 */ 1299 ifa = (struct ifaddr *)in6ifa_ifpwithaddr(ifp, 1300 &ifra.ifra_addr.sin6_addr); 1301 if (ifa != NULL) { 1302 ifa_free(ifa); 1303 /* this should be rare enough to make an explicit log */ 1304 log(LOG_INFO, "in6_ifadd: %s is already configured\n", 1305 ip6_sprintf(ip6buf, &ifra.ifra_addr.sin6_addr)); 1306 return (NULL); 1307 } 1308 1309 /* 1310 * Allocate ifaddr structure, link into chain, etc. 1311 * If we are going to create a new address upon receiving a multicasted 1312 * RA, we need to impose a random delay before starting DAD. 1313 * [draft-ietf-ipv6-rfc2462bis-02.txt, Section 5.4.2] 1314 */ 1315 updateflags = 0; 1316 if (mcast) 1317 updateflags |= IN6_IFAUPDATE_DADDELAY; 1318 if ((error = in6_update_ifa(ifp, &ifra, NULL, updateflags)) != 0) { 1319 nd6log((LOG_ERR, 1320 "%s: failed to make ifaddr %s on %s (errno=%d)\n", __func__, 1321 ip6_sprintf(ip6buf, &ifra.ifra_addr.sin6_addr), 1322 if_name(ifp), error)); 1323 return (NULL); /* ifaddr must not have been allocated. */ 1324 } 1325 1326 ia = in6ifa_ifpwithaddr(ifp, &ifra.ifra_addr.sin6_addr); 1327 /* 1328 * XXXRW: Assumption of non-NULLness here might not be true with 1329 * fine-grained locking -- should we validate it? Or just return 1330 * earlier ifa rather than looking it up again? 1331 */ 1332 return (ia); /* this is always non-NULL and referenced. */ 1333 } 1334 1335 static struct nd_prefix * 1336 nd6_prefix_lookup_locked(struct nd_prefixctl *key) 1337 { 1338 struct nd_prefix *search; 1339 1340 ND6_LOCK_ASSERT(); 1341 1342 LIST_FOREACH(search, &V_nd_prefix, ndpr_entry) { 1343 if (key->ndpr_ifp == search->ndpr_ifp && 1344 key->ndpr_plen == search->ndpr_plen && 1345 in6_are_prefix_equal(&key->ndpr_prefix.sin6_addr, 1346 &search->ndpr_prefix.sin6_addr, key->ndpr_plen)) { 1347 nd6_prefix_ref(search); 1348 break; 1349 } 1350 } 1351 return (search); 1352 } 1353 1354 struct nd_prefix * 1355 nd6_prefix_lookup(struct nd_prefixctl *key) 1356 { 1357 struct nd_prefix *search; 1358 1359 ND6_RLOCK(); 1360 search = nd6_prefix_lookup_locked(key); 1361 ND6_RUNLOCK(); 1362 return (search); 1363 } 1364 1365 void 1366 nd6_prefix_ref(struct nd_prefix *pr) 1367 { 1368 1369 refcount_acquire(&pr->ndpr_refcnt); 1370 } 1371 1372 void 1373 nd6_prefix_rele(struct nd_prefix *pr) 1374 { 1375 1376 if (refcount_release(&pr->ndpr_refcnt)) { 1377 KASSERT(LIST_EMPTY(&pr->ndpr_advrtrs), 1378 ("prefix %p has advertising routers", pr)); 1379 free(pr, M_IP6NDP); 1380 } 1381 } 1382 1383 int 1384 nd6_prelist_add(struct nd_prefixctl *pr, struct nd_defrouter *dr, 1385 struct nd_prefix **newp) 1386 { 1387 struct nd_prefix *new; 1388 char ip6buf[INET6_ADDRSTRLEN]; 1389 int error; 1390 1391 new = malloc(sizeof(*new), M_IP6NDP, M_NOWAIT | M_ZERO); 1392 if (new == NULL) 1393 return (ENOMEM); 1394 refcount_init(&new->ndpr_refcnt, newp != NULL ? 2 : 1); 1395 new->ndpr_ifp = pr->ndpr_ifp; 1396 new->ndpr_prefix = pr->ndpr_prefix; 1397 new->ndpr_plen = pr->ndpr_plen; 1398 new->ndpr_vltime = pr->ndpr_vltime; 1399 new->ndpr_pltime = pr->ndpr_pltime; 1400 new->ndpr_flags = pr->ndpr_flags; 1401 new->ndpr_lastupdate = time_uptime; 1402 in6_init_prefix_ltimes(new); 1403 1404 /* initialization */ 1405 LIST_INIT(&new->ndpr_advrtrs); 1406 in6_prefixlen2mask(&new->ndpr_mask, new->ndpr_plen); 1407 /* make prefix in the canonical form */ 1408 IN6_MASK_ADDR(&new->ndpr_prefix.sin6_addr, &new->ndpr_mask); 1409 1410 ND6_WLOCK(); 1411 LIST_INSERT_HEAD(&V_nd_prefix, new, ndpr_entry); 1412 V_nd6_list_genid++; 1413 ND6_WUNLOCK(); 1414 1415 /* ND_OPT_PI_FLAG_ONLINK processing */ 1416 if (new->ndpr_raf_onlink) { 1417 struct epoch_tracker et; 1418 1419 ND6_ONLINK_LOCK(); 1420 NET_EPOCH_ENTER(et); 1421 if ((error = nd6_prefix_onlink(new)) != 0) { 1422 nd6log((LOG_ERR, "%s: failed to make the prefix %s/%d " 1423 "on-link on %s (errno=%d)\n", __func__, 1424 ip6_sprintf(ip6buf, &pr->ndpr_prefix.sin6_addr), 1425 pr->ndpr_plen, if_name(pr->ndpr_ifp), error)); 1426 /* proceed anyway. XXX: is it correct? */ 1427 } 1428 NET_EPOCH_EXIT(et); 1429 ND6_ONLINK_UNLOCK(); 1430 } 1431 1432 if (dr != NULL) 1433 pfxrtr_add(new, dr); 1434 if (newp != NULL) 1435 *newp = new; 1436 return (0); 1437 } 1438 1439 /* 1440 * Remove a prefix from the prefix list and optionally stash it in a 1441 * caller-provided list. 1442 * 1443 * The ND6 lock must be held. 1444 */ 1445 void 1446 nd6_prefix_unlink(struct nd_prefix *pr, struct nd_prhead *list) 1447 { 1448 1449 ND6_WLOCK_ASSERT(); 1450 1451 LIST_REMOVE(pr, ndpr_entry); 1452 V_nd6_list_genid++; 1453 if (list != NULL) 1454 LIST_INSERT_HEAD(list, pr, ndpr_entry); 1455 } 1456 1457 /* 1458 * Free an unlinked prefix, first marking it off-link if necessary. 1459 */ 1460 void 1461 nd6_prefix_del(struct nd_prefix *pr) 1462 { 1463 struct nd_pfxrouter *pfr, *next; 1464 int e; 1465 char ip6buf[INET6_ADDRSTRLEN]; 1466 1467 KASSERT(pr->ndpr_addrcnt == 0, 1468 ("prefix %p has referencing addresses", pr)); 1469 ND6_UNLOCK_ASSERT(); 1470 1471 /* 1472 * Though these flags are now meaningless, we'd rather keep the value 1473 * of pr->ndpr_raf_onlink and pr->ndpr_raf_auto not to confuse users 1474 * when executing "ndp -p". 1475 */ 1476 if ((pr->ndpr_stateflags & NDPRF_ONLINK) != 0) { 1477 ND6_ONLINK_LOCK(); 1478 if ((e = nd6_prefix_offlink(pr)) != 0) { 1479 nd6log((LOG_ERR, 1480 "%s: failed to make the prefix %s/%d offlink on %s " 1481 "(errno=%d)\n", __func__, 1482 ip6_sprintf(ip6buf, &pr->ndpr_prefix.sin6_addr), 1483 pr->ndpr_plen, if_name(pr->ndpr_ifp), e)); 1484 /* what should we do? */ 1485 } 1486 ND6_ONLINK_UNLOCK(); 1487 } 1488 1489 /* Release references to routers that have advertised this prefix. */ 1490 ND6_WLOCK(); 1491 LIST_FOREACH_SAFE(pfr, &pr->ndpr_advrtrs, pfr_entry, next) 1492 pfxrtr_del(pfr); 1493 ND6_WUNLOCK(); 1494 1495 nd6_prefix_rele(pr); 1496 1497 pfxlist_onlink_check(); 1498 } 1499 1500 static int 1501 prelist_update(struct nd_prefixctl *new, struct nd_defrouter *dr, 1502 bool auth, int mcast) 1503 { 1504 struct in6_ifaddr *ia6 = NULL, *ia6_match = NULL; 1505 struct ifaddr *ifa; 1506 struct ifnet *ifp = new->ndpr_ifp; 1507 struct nd_prefix *pr; 1508 int error = 0; 1509 struct in6_addrlifetime lt6_tmp; 1510 char ip6buf[INET6_ADDRSTRLEN]; 1511 bool has_temporary = false; 1512 1513 NET_EPOCH_ASSERT(); 1514 1515 if ((pr = nd6_prefix_lookup(new)) != NULL) { 1516 /* 1517 * nd6_prefix_lookup() ensures that pr and new have the same 1518 * prefix on a same interface. 1519 */ 1520 1521 /* 1522 * Update prefix information. Note that the on-link (L) bit 1523 * and the autonomous (A) bit should NOT be changed from 1 1524 * to 0. 1525 */ 1526 if (new->ndpr_raf_onlink == 1) 1527 pr->ndpr_raf_onlink = 1; 1528 if (new->ndpr_raf_auto == 1) 1529 pr->ndpr_raf_auto = 1; 1530 if (new->ndpr_raf_onlink) { 1531 pr->ndpr_vltime = new->ndpr_vltime; 1532 pr->ndpr_pltime = new->ndpr_pltime; 1533 in6_init_prefix_ltimes(pr); 1534 pr->ndpr_lastupdate = time_uptime; 1535 } 1536 1537 if (new->ndpr_raf_onlink && 1538 (pr->ndpr_stateflags & NDPRF_ONLINK) == 0) { 1539 ND6_ONLINK_LOCK(); 1540 if ((error = nd6_prefix_onlink(pr)) != 0) { 1541 nd6log((LOG_ERR, 1542 "%s: failed to make the prefix %s/%d " 1543 "on-link on %s (errno=%d)\n", __func__, 1544 ip6_sprintf(ip6buf, 1545 &pr->ndpr_prefix.sin6_addr), 1546 pr->ndpr_plen, if_name(pr->ndpr_ifp), 1547 error)); 1548 /* proceed anyway. XXX: is it correct? */ 1549 } 1550 ND6_ONLINK_UNLOCK(); 1551 } 1552 1553 if (dr != NULL) 1554 pfxrtr_add(pr, dr); 1555 } else { 1556 if (new->ndpr_vltime == 0) 1557 goto end; 1558 if (new->ndpr_raf_onlink == 0 && new->ndpr_raf_auto == 0) 1559 goto end; 1560 1561 error = nd6_prelist_add(new, dr, &pr); 1562 if (error != 0) { 1563 nd6log((LOG_NOTICE, "%s: nd6_prelist_add() failed for " 1564 "the prefix %s/%d on %s (errno=%d)\n", __func__, 1565 ip6_sprintf(ip6buf, &new->ndpr_prefix.sin6_addr), 1566 new->ndpr_plen, if_name(new->ndpr_ifp), error)); 1567 goto end; /* we should just give up in this case. */ 1568 } 1569 1570 /* 1571 * XXX: from the ND point of view, we can ignore a prefix 1572 * with the on-link bit being zero. However, we need a 1573 * prefix structure for references from autoconfigured 1574 * addresses. Thus, we explicitly make sure that the prefix 1575 * itself expires now. 1576 */ 1577 if (pr->ndpr_raf_onlink == 0) { 1578 pr->ndpr_vltime = 0; 1579 pr->ndpr_pltime = 0; 1580 in6_init_prefix_ltimes(pr); 1581 } 1582 } 1583 1584 /* 1585 * Address autoconfiguration based on Section 5.5.3 of RFC 2462. 1586 * Note that pr must be non NULL at this point. 1587 */ 1588 1589 /* 5.5.3 (a). Ignore the prefix without the A bit set. */ 1590 if (!new->ndpr_raf_auto) 1591 goto end; 1592 1593 /* 1594 * 5.5.3 (b). the link-local prefix should have been ignored in 1595 * nd6_ra_input. 1596 */ 1597 1598 /* 5.5.3 (c). Consistency check on lifetimes: pltime <= vltime. */ 1599 if (new->ndpr_pltime > new->ndpr_vltime) { 1600 error = EINVAL; /* XXX: won't be used */ 1601 goto end; 1602 } 1603 1604 /* 1605 * 5.5.3 (d). If the prefix advertised is not equal to the prefix of 1606 * an address configured by stateless autoconfiguration already in the 1607 * list of addresses associated with the interface, and the Valid 1608 * Lifetime is not 0, form an address. We first check if we have 1609 * a matching prefix. 1610 * Note: we apply a clarification in rfc2462bis-02 here. We only 1611 * consider autoconfigured addresses while RFC2462 simply said 1612 * "address". 1613 */ 1614 CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) { 1615 struct in6_ifaddr *ifa6; 1616 u_int32_t remaininglifetime; 1617 1618 if (ifa->ifa_addr->sa_family != AF_INET6) 1619 continue; 1620 1621 ifa6 = (struct in6_ifaddr *)ifa; 1622 1623 /* 1624 * We only consider autoconfigured addresses as per rfc2462bis. 1625 */ 1626 if (!(ifa6->ia6_flags & IN6_IFF_AUTOCONF)) 1627 continue; 1628 1629 /* 1630 * Spec is not clear here, but I believe we should concentrate 1631 * on unicast (i.e. not anycast) addresses. 1632 * XXX: other ia6_flags? detached or duplicated? 1633 */ 1634 if ((ifa6->ia6_flags & IN6_IFF_ANYCAST) != 0) 1635 continue; 1636 1637 /* 1638 * Ignore the address if it is not associated with a prefix 1639 * or is associated with a prefix that is different from this 1640 * one. (pr is never NULL here) 1641 */ 1642 if (ifa6->ia6_ndpr != pr) 1643 continue; 1644 1645 /* 1646 * An already autoconfigured address matched. Now that we 1647 * are sure there is at least one matched address, we can 1648 * proceed to 5.5.3. (e): update the lifetimes according to the 1649 * "two hours" rule and the privacy extension. 1650 * We apply some clarifications in rfc2462bis: 1651 * - use remaininglifetime instead of storedlifetime as a 1652 * variable name 1653 * - remove the dead code in the "two-hour" rule 1654 */ 1655 #define TWOHOUR (120*60) 1656 lt6_tmp = ifa6->ia6_lifetime; 1657 1658 if (lt6_tmp.ia6t_vltime == ND6_INFINITE_LIFETIME) 1659 remaininglifetime = ND6_INFINITE_LIFETIME; 1660 else if (time_uptime - ifa6->ia6_updatetime > 1661 lt6_tmp.ia6t_vltime) { 1662 /* 1663 * The case of "invalid" address. We should usually 1664 * not see this case. 1665 */ 1666 remaininglifetime = 0; 1667 } else 1668 remaininglifetime = lt6_tmp.ia6t_vltime - 1669 (time_uptime - ifa6->ia6_updatetime); 1670 1671 /* when not updating, keep the current stored lifetime. */ 1672 lt6_tmp.ia6t_vltime = remaininglifetime; 1673 1674 if (TWOHOUR < new->ndpr_vltime || 1675 remaininglifetime < new->ndpr_vltime) { 1676 lt6_tmp.ia6t_vltime = new->ndpr_vltime; 1677 } else if (remaininglifetime <= TWOHOUR) { 1678 if (auth) { 1679 lt6_tmp.ia6t_vltime = new->ndpr_vltime; 1680 } 1681 } else { 1682 /* 1683 * new->ndpr_vltime <= TWOHOUR && 1684 * TWOHOUR < remaininglifetime 1685 */ 1686 lt6_tmp.ia6t_vltime = TWOHOUR; 1687 } 1688 1689 /* The 2 hour rule is not imposed for preferred lifetime. */ 1690 lt6_tmp.ia6t_pltime = new->ndpr_pltime; 1691 1692 in6_init_address_ltimes(pr, <6_tmp); 1693 1694 /* 1695 * We need to treat lifetimes for temporary addresses 1696 * differently, according to 1697 * draft-ietf-ipv6-privacy-addrs-v2-01.txt 3.3 (1); 1698 * we only update the lifetimes when they are in the maximum 1699 * intervals. 1700 */ 1701 if ((ifa6->ia6_flags & IN6_IFF_TEMPORARY) != 0) { 1702 u_int32_t maxvltime, maxpltime; 1703 1704 /* 1705 * if stable addresses (RFC 7217) are enabled, mark that a temporary address has been found 1706 * to avoid generating uneeded extra ones. 1707 */ 1708 if (ifp->if_inet6->nd_flags & ND6_IFF_STABLEADDR) 1709 has_temporary = true; 1710 1711 if (V_ip6_temp_valid_lifetime > 1712 (u_int32_t)((time_uptime - ifa6->ia6_createtime) + 1713 V_ip6_desync_factor)) { 1714 maxvltime = V_ip6_temp_valid_lifetime - 1715 (time_uptime - ifa6->ia6_createtime) - 1716 V_ip6_desync_factor; 1717 } else 1718 maxvltime = 0; 1719 if (V_ip6_temp_preferred_lifetime > 1720 (u_int32_t)((time_uptime - ifa6->ia6_createtime) + 1721 V_ip6_desync_factor)) { 1722 maxpltime = V_ip6_temp_preferred_lifetime - 1723 (time_uptime - ifa6->ia6_createtime) - 1724 V_ip6_desync_factor; 1725 } else 1726 maxpltime = 0; 1727 1728 if (lt6_tmp.ia6t_vltime == ND6_INFINITE_LIFETIME || 1729 lt6_tmp.ia6t_vltime > maxvltime) { 1730 lt6_tmp.ia6t_vltime = maxvltime; 1731 } 1732 if (lt6_tmp.ia6t_pltime == ND6_INFINITE_LIFETIME || 1733 lt6_tmp.ia6t_pltime > maxpltime) { 1734 lt6_tmp.ia6t_pltime = maxpltime; 1735 } 1736 } 1737 ifa6->ia6_lifetime = lt6_tmp; 1738 ifa6->ia6_updatetime = time_uptime; 1739 1740 /* 1741 * If using stable addresses (RFC 7217) and we still have retries to perform, ignore 1742 * addresses already marked as duplicated, since a new one will be generated. 1743 * Also ignore addresses marked as temporary, since their generation is orthogonal to 1744 * opaque stable ones. 1745 * 1746 * There is a small race condition, in that the dad_counter could be incremented 1747 * between here and when a new address is generated, but this will cause that generation 1748 * to fail and no further retries should happen. 1749 */ 1750 if (ifp->if_inet6->nd_flags & ND6_IFF_STABLEADDR && 1751 atomic_load_int(&DAD_FAILURES(ifp)) <= V_ip6_stableaddr_maxretries && 1752 ifa6->ia6_flags & (IN6_IFF_DUPLICATED | IN6_IFF_TEMPORARY)) 1753 continue; 1754 1755 if (ia6_match == NULL) /* remember the first one */ 1756 ia6_match = ifa6; 1757 } 1758 if (ia6_match == NULL && new->ndpr_vltime) { 1759 int ifidlen; 1760 1761 /* 1762 * 5.5.3 (d) (continued) 1763 * No address matched and the valid lifetime is non-zero. 1764 * Create a new address. 1765 */ 1766 1767 /* 1768 * Prefix Length check: 1769 * If the sum of the prefix length and interface identifier 1770 * length does not equal 128 bits, the Prefix Information 1771 * option MUST be ignored. The length of the interface 1772 * identifier is defined in a separate link-type specific 1773 * document. 1774 */ 1775 ifidlen = in6_if2idlen(ifp); 1776 if (ifidlen < 0) { 1777 /* this should not happen, so we always log it. */ 1778 log(LOG_ERR, "prelist_update: IFID undefined (%s)\n", 1779 if_name(ifp)); 1780 goto end; 1781 } 1782 if (ifidlen + pr->ndpr_plen != 128) { 1783 nd6log((LOG_INFO, 1784 "%s: invalid prefixlen %d for %s, ignored\n", 1785 __func__, pr->ndpr_plen, if_name(ifp))); 1786 goto end; 1787 } 1788 1789 if ((ia6 = in6_ifadd(new, mcast)) != NULL) { 1790 /* 1791 * note that we should use pr (not new) for reference. 1792 */ 1793 pr->ndpr_addrcnt++; 1794 ia6->ia6_ndpr = pr; 1795 1796 /* 1797 * RFC 3041 3.3 (2). 1798 * When a new public address is created as described 1799 * in RFC2462, also create a new temporary address. 1800 * 1801 * RFC 3041 3.5. 1802 * When an interface connects to a new link, a new 1803 * randomized interface identifier should be generated 1804 * immediately together with a new set of temporary 1805 * addresses. Thus, we specifiy 1 as the 2nd arg of 1806 * in6_tmpifadd(). 1807 * 1808 * Skip this if a temporary address has been marked as 1809 * found (happens only if stable addresses (RFC 7217) is in use) 1810 */ 1811 if (V_ip6_use_tempaddr && !has_temporary) { 1812 int e; 1813 if ((e = in6_tmpifadd(ia6, 1, 1)) != 0) { 1814 nd6log((LOG_NOTICE, "%s: failed to " 1815 "create a temporary address " 1816 "(errno=%d)\n", __func__, e)); 1817 } 1818 } 1819 ifa_free(&ia6->ia_ifa); 1820 1821 /* 1822 * A newly added address might affect the status 1823 * of other addresses, so we check and update it. 1824 * XXX: what if address duplication happens? 1825 */ 1826 pfxlist_onlink_check(); 1827 } else { 1828 /* just set an error. do not bark here. */ 1829 error = EADDRNOTAVAIL; /* XXX: might be unused. */ 1830 } 1831 } 1832 1833 end: 1834 if (pr != NULL) 1835 nd6_prefix_rele(pr); 1836 return (error); 1837 } 1838 1839 /* 1840 * A supplement function used in the on-link detection below; 1841 * detect if a given prefix has a (probably) reachable advertising router. 1842 * XXX: lengthy function name... 1843 */ 1844 static struct nd_pfxrouter * 1845 find_pfxlist_reachable_router(struct nd_prefix *pr) 1846 { 1847 struct epoch_tracker et; 1848 struct nd_pfxrouter *pfxrtr; 1849 1850 ND6_LOCK_ASSERT(); 1851 1852 NET_EPOCH_ENTER(et); 1853 LIST_FOREACH(pfxrtr, &pr->ndpr_advrtrs, pfr_entry) { 1854 if (is_dr_reachable(pfxrtr->router)) 1855 break; 1856 } 1857 NET_EPOCH_EXIT(et); 1858 return (pfxrtr); 1859 } 1860 1861 /* 1862 * Check if each prefix in the prefix list has at least one available router 1863 * that advertised the prefix (a router is "available" if its neighbor cache 1864 * entry is reachable or probably reachable). 1865 * If the check fails, the prefix may be off-link, because, for example, 1866 * we have moved from the network but the lifetime of the prefix has not 1867 * expired yet. So we should not use the prefix if there is another prefix 1868 * that has an available router. 1869 * But, if there is no prefix that has an available router, we still regard 1870 * all the prefixes as on-link. This is because we can't tell if all the 1871 * routers are simply dead or if we really moved from the network and there 1872 * is no router around us. 1873 */ 1874 void 1875 pfxlist_onlink_check(void) 1876 { 1877 struct nd_prefix *pr; 1878 struct in6_ifaddr *ifa; 1879 struct nd_defrouter *dr; 1880 struct nd_pfxrouter *pfxrtr = NULL; 1881 struct rm_priotracker in6_ifa_tracker; 1882 uint64_t genid; 1883 uint32_t flags; 1884 1885 ND6_ONLINK_LOCK(); 1886 ND6_RLOCK(); 1887 1888 /* 1889 * Check if there is a prefix that has a reachable advertising 1890 * router. 1891 */ 1892 LIST_FOREACH(pr, &V_nd_prefix, ndpr_entry) { 1893 if (pr->ndpr_raf_onlink && find_pfxlist_reachable_router(pr)) 1894 break; 1895 } 1896 1897 /* 1898 * If we have no such prefix, check whether we still have a router 1899 * that does not advertise any prefixes. 1900 */ 1901 if (pr == NULL) { 1902 TAILQ_FOREACH(dr, &V_nd6_defrouter, dr_entry) { 1903 struct nd_prefix *pr0; 1904 1905 LIST_FOREACH(pr0, &V_nd_prefix, ndpr_entry) { 1906 if ((pfxrtr = pfxrtr_lookup(pr0, dr)) != NULL) 1907 break; 1908 } 1909 if (pfxrtr != NULL) 1910 break; 1911 } 1912 } 1913 if (pr != NULL || (!TAILQ_EMPTY(&V_nd6_defrouter) && pfxrtr == NULL)) { 1914 /* 1915 * There is at least one prefix that has a reachable router, 1916 * or at least a router which probably does not advertise 1917 * any prefixes. The latter would be the case when we move 1918 * to a new link where we have a router that does not provide 1919 * prefixes and we configure an address by hand. 1920 * Detach prefixes which have no reachable advertising 1921 * router, and attach other prefixes. 1922 */ 1923 LIST_FOREACH(pr, &V_nd_prefix, ndpr_entry) { 1924 /* XXX: a link-local prefix should never be detached */ 1925 if (IN6_IS_ADDR_LINKLOCAL(&pr->ndpr_prefix.sin6_addr) || 1926 pr->ndpr_raf_onlink == 0 || 1927 pr->ndpr_raf_auto == 0) 1928 continue; 1929 1930 if ((pr->ndpr_stateflags & NDPRF_DETACHED) == 0 && 1931 find_pfxlist_reachable_router(pr) == NULL) 1932 pr->ndpr_stateflags |= NDPRF_DETACHED; 1933 else if ((pr->ndpr_stateflags & NDPRF_DETACHED) != 0 && 1934 find_pfxlist_reachable_router(pr) != NULL) 1935 pr->ndpr_stateflags &= ~NDPRF_DETACHED; 1936 } 1937 } else { 1938 /* there is no prefix that has a reachable router */ 1939 LIST_FOREACH(pr, &V_nd_prefix, ndpr_entry) { 1940 if (IN6_IS_ADDR_LINKLOCAL(&pr->ndpr_prefix.sin6_addr) || 1941 pr->ndpr_raf_onlink == 0 || 1942 pr->ndpr_raf_auto == 0) 1943 continue; 1944 pr->ndpr_stateflags &= ~NDPRF_DETACHED; 1945 } 1946 } 1947 1948 /* 1949 * Remove each interface route associated with a (just) detached 1950 * prefix, and reinstall the interface route for a (just) attached 1951 * prefix. Note that all attempt of reinstallation does not 1952 * necessarily success, when a same prefix is shared among multiple 1953 * interfaces. Such cases will be handled in nd6_prefix_onlink, 1954 * so we don't have to care about them. 1955 */ 1956 restart: 1957 LIST_FOREACH(pr, &V_nd_prefix, ndpr_entry) { 1958 char ip6buf[INET6_ADDRSTRLEN]; 1959 int e; 1960 1961 if (IN6_IS_ADDR_LINKLOCAL(&pr->ndpr_prefix.sin6_addr) || 1962 pr->ndpr_raf_onlink == 0 || 1963 pr->ndpr_raf_auto == 0) 1964 continue; 1965 1966 flags = pr->ndpr_stateflags & (NDPRF_DETACHED | NDPRF_ONLINK); 1967 if (flags == 0 || flags == (NDPRF_DETACHED | NDPRF_ONLINK)) { 1968 genid = V_nd6_list_genid; 1969 ND6_RUNLOCK(); 1970 if ((flags & NDPRF_ONLINK) != 0 && 1971 (e = nd6_prefix_offlink(pr)) != 0) { 1972 nd6log((LOG_ERR, 1973 "%s: failed to make %s/%d offlink " 1974 "(errno=%d)\n", __func__, 1975 ip6_sprintf(ip6buf, 1976 &pr->ndpr_prefix.sin6_addr), 1977 pr->ndpr_plen, e)); 1978 } else if ((flags & NDPRF_ONLINK) == 0 && 1979 (e = nd6_prefix_onlink(pr)) != 0) { 1980 nd6log((LOG_ERR, 1981 "%s: failed to make %s/%d onlink " 1982 "(errno=%d)\n", __func__, 1983 ip6_sprintf(ip6buf, 1984 &pr->ndpr_prefix.sin6_addr), 1985 pr->ndpr_plen, e)); 1986 } 1987 ND6_RLOCK(); 1988 if (genid != V_nd6_list_genid) 1989 goto restart; 1990 } 1991 } 1992 1993 /* 1994 * Changes on the prefix status might affect address status as well. 1995 * Make sure that all addresses derived from an attached prefix are 1996 * attached, and that all addresses derived from a detached prefix are 1997 * detached. Note, however, that a manually configured address should 1998 * always be attached. 1999 * The precise detection logic is same as the one for prefixes. 2000 */ 2001 IN6_IFADDR_RLOCK(&in6_ifa_tracker); 2002 CK_STAILQ_FOREACH(ifa, &V_in6_ifaddrhead, ia_link) { 2003 if (!(ifa->ia6_flags & IN6_IFF_AUTOCONF)) 2004 continue; 2005 2006 if (ifa->ia6_ndpr == NULL) { 2007 /* 2008 * This can happen when we first configure the address 2009 * (i.e. the address exists, but the prefix does not). 2010 * XXX: complicated relationships... 2011 */ 2012 continue; 2013 } 2014 2015 if (find_pfxlist_reachable_router(ifa->ia6_ndpr)) 2016 break; 2017 } 2018 if (ifa) { 2019 CK_STAILQ_FOREACH(ifa, &V_in6_ifaddrhead, ia_link) { 2020 if ((ifa->ia6_flags & IN6_IFF_AUTOCONF) == 0) 2021 continue; 2022 2023 if (ifa->ia6_ndpr == NULL) /* XXX: see above. */ 2024 continue; 2025 2026 if (find_pfxlist_reachable_router(ifa->ia6_ndpr)) { 2027 if (ifa->ia6_flags & IN6_IFF_DETACHED) { 2028 ifa->ia6_flags &= ~IN6_IFF_DETACHED; 2029 ifa->ia6_flags |= IN6_IFF_TENTATIVE; 2030 nd6_dad_start((struct ifaddr *)ifa, 0); 2031 } 2032 } else { 2033 ifa->ia6_flags |= IN6_IFF_DETACHED; 2034 } 2035 } 2036 } else { 2037 CK_STAILQ_FOREACH(ifa, &V_in6_ifaddrhead, ia_link) { 2038 if ((ifa->ia6_flags & IN6_IFF_AUTOCONF) == 0) 2039 continue; 2040 2041 if (ifa->ia6_flags & IN6_IFF_DETACHED) { 2042 ifa->ia6_flags &= ~IN6_IFF_DETACHED; 2043 ifa->ia6_flags |= IN6_IFF_TENTATIVE; 2044 /* Do we need a delay in this case? */ 2045 nd6_dad_start((struct ifaddr *)ifa, 0); 2046 } 2047 } 2048 } 2049 IN6_IFADDR_RUNLOCK(&in6_ifa_tracker); 2050 ND6_RUNLOCK(); 2051 ND6_ONLINK_UNLOCK(); 2052 } 2053 2054 /* 2055 * Add or remove interface route specified by @dst, @netmask and @ifp. 2056 * ifa can be NULL. 2057 * Returns 0 on success 2058 */ 2059 static int 2060 nd6_prefix_rtrequest(uint32_t fibnum, int cmd, struct sockaddr_in6 *dst, 2061 struct sockaddr_in6 *netmask, struct ifnet *ifp, struct ifaddr *ifa) 2062 { 2063 struct epoch_tracker et; 2064 int error; 2065 2066 /* Prepare gateway */ 2067 struct sockaddr_dl_short sdl = { 2068 .sdl_family = AF_LINK, 2069 .sdl_len = sizeof(struct sockaddr_dl_short), 2070 .sdl_type = ifp->if_type, 2071 .sdl_index = ifp->if_index, 2072 }; 2073 2074 struct rt_addrinfo info = { 2075 .rti_ifa = ifa, 2076 .rti_ifp = ifp, 2077 .rti_flags = RTF_PINNED | ((netmask != NULL) ? 0 : RTF_HOST), 2078 .rti_info = { 2079 [RTAX_DST] = (struct sockaddr *)dst, 2080 [RTAX_NETMASK] = (struct sockaddr *)netmask, 2081 [RTAX_GATEWAY] = (struct sockaddr *)&sdl, 2082 }, 2083 }; 2084 /* Don't set additional per-gw filters on removal */ 2085 2086 NET_EPOCH_ENTER(et); 2087 error = rib_handle_ifaddr_info(fibnum, cmd, &info); 2088 NET_EPOCH_EXIT(et); 2089 return (error); 2090 } 2091 2092 static int 2093 nd6_prefix_onlink_rtrequest(struct nd_prefix *pr, struct ifaddr *ifa) 2094 { 2095 int error; 2096 2097 struct sockaddr_in6 mask6 = { 2098 .sin6_family = AF_INET6, 2099 .sin6_len = sizeof(struct sockaddr_in6), 2100 .sin6_addr = pr->ndpr_mask, 2101 }; 2102 struct sockaddr_in6 *pmask6 = (pr->ndpr_plen != 128) ? &mask6 : NULL; 2103 2104 error = nd6_prefix_rtrequest(pr->ndpr_ifp->if_fib, RTM_ADD, 2105 &pr->ndpr_prefix, pmask6, pr->ndpr_ifp, ifa); 2106 if (error == 0) 2107 pr->ndpr_stateflags |= NDPRF_ONLINK; 2108 2109 return (error); 2110 } 2111 2112 static int 2113 nd6_prefix_onlink(struct nd_prefix *pr) 2114 { 2115 struct epoch_tracker et; 2116 struct ifaddr *ifa; 2117 struct ifnet *ifp = pr->ndpr_ifp; 2118 struct nd_prefix *opr; 2119 char ip6buf[INET6_ADDRSTRLEN]; 2120 int error; 2121 2122 ND6_ONLINK_LOCK_ASSERT(); 2123 ND6_UNLOCK_ASSERT(); 2124 2125 if ((pr->ndpr_stateflags & NDPRF_ONLINK) != 0) 2126 return (EEXIST); 2127 2128 /* 2129 * Add the interface route associated with the prefix. Before 2130 * installing the route, check if there's the same prefix on another 2131 * interface, and the prefix has already installed the interface route. 2132 * Although such a configuration is expected to be rare, we explicitly 2133 * allow it. 2134 */ 2135 ND6_RLOCK(); 2136 LIST_FOREACH(opr, &V_nd_prefix, ndpr_entry) { 2137 if (opr == pr) 2138 continue; 2139 2140 if ((opr->ndpr_stateflags & NDPRF_ONLINK) == 0) 2141 continue; 2142 2143 if (!V_rt_add_addr_allfibs && 2144 opr->ndpr_ifp->if_fib != pr->ndpr_ifp->if_fib) 2145 continue; 2146 2147 if (opr->ndpr_plen == pr->ndpr_plen && 2148 in6_are_prefix_equal(&pr->ndpr_prefix.sin6_addr, 2149 &opr->ndpr_prefix.sin6_addr, pr->ndpr_plen)) { 2150 ND6_RUNLOCK(); 2151 return (0); 2152 } 2153 } 2154 ND6_RUNLOCK(); 2155 2156 /* 2157 * We prefer link-local addresses as the associated interface address. 2158 */ 2159 /* search for a link-local addr */ 2160 NET_EPOCH_ENTER(et); 2161 ifa = (struct ifaddr *)in6ifa_ifpforlinklocal(ifp, 2162 IN6_IFF_NOTREADY | IN6_IFF_ANYCAST); 2163 if (ifa == NULL) { 2164 /* XXX: freebsd does not have ifa_ifwithaf */ 2165 CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) { 2166 if (ifa->ifa_addr->sa_family == AF_INET6) { 2167 ifa_ref(ifa); 2168 break; 2169 } 2170 } 2171 /* should we care about ia6_flags? */ 2172 } 2173 if (ifa == NULL) { 2174 /* 2175 * This can still happen, when, for example, we receive an RA 2176 * containing a prefix with the L bit set and the A bit clear, 2177 * after removing all IPv6 addresses on the receiving 2178 * interface. This should, of course, be rare though. 2179 */ 2180 nd6log((LOG_NOTICE, 2181 "%s: failed to find any ifaddr to add route for a " 2182 "prefix(%s/%d) on %s\n", __func__, 2183 ip6_sprintf(ip6buf, &pr->ndpr_prefix.sin6_addr), 2184 pr->ndpr_plen, if_name(ifp))); 2185 error = 0; 2186 } else { 2187 error = nd6_prefix_onlink_rtrequest(pr, ifa); 2188 ifa_free(ifa); 2189 } 2190 NET_EPOCH_EXIT(et); 2191 2192 return (error); 2193 } 2194 2195 int 2196 nd6_prefix_offlink(struct nd_prefix *pr) 2197 { 2198 int error = 0; 2199 struct ifnet *ifp = pr->ndpr_ifp; 2200 struct nd_prefix *opr; 2201 char ip6buf[INET6_ADDRSTRLEN]; 2202 uint64_t genid; 2203 int a_failure; 2204 2205 ND6_ONLINK_LOCK_ASSERT(); 2206 ND6_UNLOCK_ASSERT(); 2207 2208 if ((pr->ndpr_stateflags & NDPRF_ONLINK) == 0) 2209 return (EEXIST); 2210 2211 struct sockaddr_in6 mask6 = { 2212 .sin6_family = AF_INET6, 2213 .sin6_len = sizeof(struct sockaddr_in6), 2214 .sin6_addr = pr->ndpr_mask, 2215 }; 2216 struct sockaddr_in6 *pmask6 = (pr->ndpr_plen != 128) ? &mask6 : NULL; 2217 2218 error = nd6_prefix_rtrequest(ifp->if_fib, RTM_DELETE, 2219 &pr->ndpr_prefix, pmask6, ifp, NULL); 2220 2221 a_failure = 1; 2222 if (error == 0) { 2223 pr->ndpr_stateflags &= ~NDPRF_ONLINK; 2224 2225 /* 2226 * There might be the same prefix on another interface, 2227 * the prefix which could not be on-link just because we have 2228 * the interface route (see comments in nd6_prefix_onlink). 2229 * If there's one, try to make the prefix on-link on the 2230 * interface. 2231 */ 2232 ND6_RLOCK(); 2233 restart: 2234 LIST_FOREACH(opr, &V_nd_prefix, ndpr_entry) { 2235 /* 2236 * KAME specific: detached prefixes should not be 2237 * on-link. 2238 */ 2239 if (opr == pr || (opr->ndpr_stateflags & 2240 (NDPRF_ONLINK | NDPRF_DETACHED)) != 0) 2241 continue; 2242 2243 if (opr->ndpr_plen == pr->ndpr_plen && 2244 in6_are_prefix_equal(&pr->ndpr_prefix.sin6_addr, 2245 &opr->ndpr_prefix.sin6_addr, pr->ndpr_plen)) { 2246 int e; 2247 2248 genid = V_nd6_list_genid; 2249 ND6_RUNLOCK(); 2250 if ((e = nd6_prefix_onlink(opr)) != 0) { 2251 nd6log((LOG_ERR, 2252 "%s: failed to recover a prefix " 2253 "%s/%d from %s to %s (errno=%d)\n", 2254 __func__, ip6_sprintf(ip6buf, 2255 &opr->ndpr_prefix.sin6_addr), 2256 opr->ndpr_plen, if_name(ifp), 2257 if_name(opr->ndpr_ifp), e)); 2258 } else 2259 a_failure = 0; 2260 ND6_RLOCK(); 2261 if (genid != V_nd6_list_genid) 2262 goto restart; 2263 } 2264 } 2265 ND6_RUNLOCK(); 2266 } else { 2267 /* XXX: can we still set the NDPRF_ONLINK flag? */ 2268 nd6log((LOG_ERR, 2269 "%s: failed to delete route: %s/%d on %s (errno=%d)\n", 2270 __func__, ip6_sprintf(ip6buf, &pr->ndpr_prefix.sin6_addr), 2271 pr->ndpr_plen, if_name(ifp), error)); 2272 } 2273 2274 if (a_failure) 2275 lltable_prefix_free(AF_INET6, 2276 (struct sockaddr *)&pr->ndpr_prefix, 2277 (struct sockaddr *)&mask6, LLE_STATIC); 2278 2279 return (error); 2280 } 2281 2282 /* 2283 * Get a randomized interface identifier for a temporary address 2284 * Based on RFC 8981, Section 3.3.1. 2285 */ 2286 static int 2287 in6_get_tmp_ifid(struct in6_aliasreq *ifra) 2288 { 2289 struct in6_addr *addr; 2290 2291 if(!is_random_seeded()){ 2292 return 1; 2293 } 2294 2295 addr = &(ifra->ifra_addr.sin6_addr); 2296 regen: 2297 ifra->ifra_addr.sin6_addr.s6_addr32[2] |= 2298 (arc4random() & ~(ifra->ifra_prefixmask.sin6_addr.s6_addr32[2])); 2299 ifra->ifra_addr.sin6_addr.s6_addr32[3] |= 2300 (arc4random() & ~(ifra->ifra_prefixmask.sin6_addr.s6_addr32[3])); 2301 2302 /* 2303 * Check if generated address is not inappropriate: 2304 * 2305 * - Reserved IPv6 Interface Identifiers 2306 * (https://www.iana.org/assignments/ipv6-interface-ids/) 2307 */ 2308 2309 /* Subnet-router anycast: 0000:0000:0000:0000 */ 2310 if (!(addr->s6_addr32[2] | addr->s6_addr32[3])) 2311 goto regen; 2312 2313 /* 2314 * IANA Ethernet block: 0200:5EFF:FE00:0000-0200:5EFF:FE00:5212 2315 * Proxy Mobile IPv6: 0200:5EFF:FE00:5213 2316 * IANA Ethernet block: 0200:5EFF:FE00:5214-0200:5EFF:FEFF:FFFF 2317 */ 2318 if (ntohl(addr->s6_addr32[2]) == 0x02005eff && 2319 (ntohl(addr->s6_addr32[3]) & 0Xff000000) == 0xfe000000) 2320 goto regen; 2321 2322 /* Reserved subnet anycast addresses */ 2323 if (ntohl(addr->s6_addr32[2]) == 0xfdffffff && 2324 ntohl(addr->s6_addr32[3]) >= 0Xffffff80) 2325 goto regen; 2326 2327 return 0; 2328 } 2329 2330 /* 2331 * ia0 - corresponding public address 2332 */ 2333 int 2334 in6_tmpifadd(const struct in6_ifaddr *ia0, int forcegen, int delay) 2335 { 2336 struct ifnet *ifp = ia0->ia_ifa.ifa_ifp; 2337 struct in6_ifaddr *newia; 2338 struct in6_aliasreq ifra; 2339 int error; 2340 int trylimit = 3; /* XXX: adhoc value */ 2341 int updateflags; 2342 time_t vltime0, pltime0; 2343 2344 in6_prepare_ifra(&ifra, &ia0->ia_addr.sin6_addr, 2345 &ia0->ia_prefixmask.sin6_addr); 2346 2347 ifra.ifra_addr = ia0->ia_addr; /* XXX: do we need this ? */ 2348 /* clear the old IFID */ 2349 IN6_MASK_ADDR(&ifra.ifra_addr.sin6_addr, 2350 &ifra.ifra_prefixmask.sin6_addr); 2351 2352 again: 2353 if (in6_get_tmp_ifid(&ifra) != 0) { 2354 nd6log((LOG_NOTICE, "%s: failed to find a good random IFID\n", 2355 __func__)); 2356 return (EINVAL); 2357 } 2358 2359 /* 2360 * in6_get_tmpifid() quite likely provided a unique interface ID. 2361 * However, we may still have a chance to see collision, because 2362 * there may be a time lag between generation of the ID and generation 2363 * of the address. So, we'll do one more sanity check. 2364 */ 2365 2366 if (in6_localip(&ifra.ifra_addr.sin6_addr) != 0) { 2367 if (trylimit-- > 0) { 2368 forcegen = 1; 2369 goto again; 2370 } 2371 2372 /* Give up. Something strange should have happened. */ 2373 nd6log((LOG_NOTICE, "%s: failed to find a unique random IFID\n", 2374 __func__)); 2375 return (EEXIST); 2376 } 2377 2378 /* 2379 * The Valid Lifetime is the lower of the Valid Lifetime of the 2380 * public address or TEMP_VALID_LIFETIME. 2381 * The Preferred Lifetime is the lower of the Preferred Lifetime 2382 * of the public address or TEMP_PREFERRED_LIFETIME - 2383 * DESYNC_FACTOR. 2384 */ 2385 if (ia0->ia6_lifetime.ia6t_vltime != ND6_INFINITE_LIFETIME) { 2386 vltime0 = IFA6_IS_INVALID(ia0) ? 0 : 2387 (ia0->ia6_lifetime.ia6t_vltime - 2388 (time_uptime - ia0->ia6_updatetime)); 2389 if (vltime0 > V_ip6_temp_valid_lifetime) 2390 vltime0 = V_ip6_temp_valid_lifetime; 2391 } else 2392 vltime0 = V_ip6_temp_valid_lifetime; 2393 if (ia0->ia6_lifetime.ia6t_pltime != ND6_INFINITE_LIFETIME) { 2394 pltime0 = IFA6_IS_DEPRECATED(ia0) ? 0 : 2395 (ia0->ia6_lifetime.ia6t_pltime - 2396 (time_uptime - ia0->ia6_updatetime)); 2397 if (pltime0 > V_ip6_temp_preferred_lifetime - V_ip6_desync_factor){ 2398 pltime0 = V_ip6_temp_preferred_lifetime - 2399 V_ip6_desync_factor; 2400 } 2401 } else 2402 pltime0 = V_ip6_temp_preferred_lifetime - V_ip6_desync_factor; 2403 ifra.ifra_lifetime.ia6t_vltime = vltime0; 2404 ifra.ifra_lifetime.ia6t_pltime = pltime0; 2405 2406 /* 2407 * A temporary address is created only if this calculated Preferred 2408 * Lifetime is greater than REGEN_ADVANCE time units. 2409 */ 2410 if (ifra.ifra_lifetime.ia6t_pltime <= V_ip6_temp_regen_advance) 2411 return (0); 2412 2413 /* XXX: scope zone ID? */ 2414 2415 ifra.ifra_flags |= (IN6_IFF_AUTOCONF|IN6_IFF_TEMPORARY); 2416 2417 /* allocate ifaddr structure, link into chain, etc. */ 2418 updateflags = 0; 2419 if (delay) 2420 updateflags |= IN6_IFAUPDATE_DADDELAY; 2421 if ((error = in6_update_ifa(ifp, &ifra, NULL, updateflags)) != 0) 2422 return (error); 2423 2424 newia = in6ifa_ifpwithaddr(ifp, &ifra.ifra_addr.sin6_addr); 2425 if (newia == NULL) { /* XXX: can it happen? */ 2426 nd6log((LOG_ERR, 2427 "%s: ifa update succeeded, but we got no ifaddr\n", 2428 __func__)); 2429 return (EINVAL); /* XXX */ 2430 } 2431 newia->ia6_ndpr = ia0->ia6_ndpr; 2432 newia->ia6_ndpr->ndpr_addrcnt++; 2433 ifa_free(&newia->ia_ifa); 2434 2435 /* 2436 * A newly added address might affect the status of other addresses. 2437 * XXX: when the temporary address is generated with a new public 2438 * address, the onlink check is redundant. However, it would be safe 2439 * to do the check explicitly everywhere a new address is generated, 2440 * and, in fact, we surely need the check when we create a new 2441 * temporary address due to deprecation of an old temporary address. 2442 */ 2443 pfxlist_onlink_check(); 2444 2445 return (0); 2446 } 2447 2448 static int 2449 rt6_deleteroute(const struct rtentry *rt, const struct nhop_object *nh, 2450 void *arg) 2451 { 2452 struct in6_addr *gate = (struct in6_addr *)arg; 2453 int nh_rt_flags; 2454 2455 if (nh->gw_sa.sa_family != AF_INET6) 2456 return (0); 2457 2458 if (!IN6_ARE_ADDR_EQUAL(gate, &nh->gw6_sa.sin6_addr)) { 2459 return (0); 2460 } 2461 2462 /* 2463 * Do not delete a static route. 2464 * XXX: this seems to be a bit ad-hoc. Should we consider the 2465 * 'cloned' bit instead? 2466 */ 2467 nh_rt_flags = nhop_get_rtflags(nh); 2468 if ((nh_rt_flags & RTF_STATIC) != 0) 2469 return (0); 2470 2471 /* 2472 * We delete only host route. This means, in particular, we don't 2473 * delete default route. 2474 */ 2475 if ((nh_rt_flags & RTF_HOST) == 0) 2476 return (0); 2477 2478 return (1); 2479 #undef SIN6 2480 } 2481 2482 /* 2483 * Delete all the routing table entries that use the specified gateway. 2484 * XXX: this function causes search through all entries of routing table, so 2485 * it shouldn't be called when acting as a router. 2486 */ 2487 void 2488 rt6_flush(struct in6_addr *gateway, struct ifnet *ifp) 2489 { 2490 2491 /* We'll care only link-local addresses */ 2492 if (!IN6_IS_ADDR_LINKLOCAL(gateway)) 2493 return; 2494 2495 /* XXX Do we really need to walk any but the default FIB? */ 2496 rib_foreach_table_walk_del(AF_INET6, rt6_deleteroute, (void *)gateway); 2497 } 2498 2499 int 2500 nd6_setdefaultiface(int ifindex) 2501 { 2502 2503 if (V_nd6_defifindex != ifindex) { 2504 V_nd6_defifindex = ifindex; 2505 if (V_nd6_defifindex != 0) { 2506 struct epoch_tracker et; 2507 2508 /* 2509 * XXXGL: this function should use ifnet_byindex_ref! 2510 */ 2511 NET_EPOCH_ENTER(et); 2512 V_nd6_defifp = ifnet_byindex(V_nd6_defifindex); 2513 NET_EPOCH_EXIT(et); 2514 if (V_nd6_defifp == NULL) 2515 return (EINVAL); 2516 } else 2517 V_nd6_defifp = NULL; 2518 2519 /* 2520 * Our current implementation assumes one-to-one mapping between 2521 * interfaces and links, so it would be natural to use the 2522 * default interface as the default link. 2523 */ 2524 scope6_setdefault(V_nd6_defifp); 2525 } 2526 2527 return (0); 2528 } 2529 2530 bool 2531 nd6_defrouter_list_empty(void) 2532 { 2533 2534 return (TAILQ_EMPTY(&V_nd6_defrouter)); 2535 } 2536 2537 void 2538 nd6_defrouter_timer(void) 2539 { 2540 struct nd_defrouter *dr, *ndr; 2541 struct nd6_drhead drq; 2542 2543 TAILQ_INIT(&drq); 2544 2545 ND6_WLOCK(); 2546 TAILQ_FOREACH_SAFE(dr, &V_nd6_defrouter, dr_entry, ndr) 2547 if (dr->expire && dr->expire < time_uptime) 2548 defrouter_unlink(dr, &drq); 2549 ND6_WUNLOCK(); 2550 2551 while ((dr = TAILQ_FIRST(&drq)) != NULL) { 2552 TAILQ_REMOVE(&drq, dr, dr_entry); 2553 defrouter_del(dr); 2554 } 2555 } 2556 2557 /* 2558 * Nuke default router list entries toward ifp. 2559 * We defer removal of default router list entries that is installed in the 2560 * routing table, in order to keep additional side effects as small as possible. 2561 */ 2562 void 2563 nd6_defrouter_purge(struct ifnet *ifp) 2564 { 2565 struct nd_defrouter *dr, *ndr; 2566 struct nd6_drhead drq; 2567 2568 TAILQ_INIT(&drq); 2569 2570 ND6_WLOCK(); 2571 TAILQ_FOREACH_SAFE(dr, &V_nd6_defrouter, dr_entry, ndr) { 2572 if (dr->installed) 2573 continue; 2574 if (dr->ifp == ifp) 2575 defrouter_unlink(dr, &drq); 2576 } 2577 TAILQ_FOREACH_SAFE(dr, &V_nd6_defrouter, dr_entry, ndr) { 2578 if (!dr->installed) 2579 continue; 2580 if (dr->ifp == ifp) 2581 defrouter_unlink(dr, &drq); 2582 } 2583 ND6_WUNLOCK(); 2584 2585 /* Delete the unlinked router objects. */ 2586 while ((dr = TAILQ_FIRST(&drq)) != NULL) { 2587 TAILQ_REMOVE(&drq, dr, dr_entry); 2588 defrouter_del(dr); 2589 } 2590 } 2591 2592 void 2593 nd6_defrouter_flush_all(void) 2594 { 2595 struct nd_defrouter *dr; 2596 struct nd6_drhead drq; 2597 2598 TAILQ_INIT(&drq); 2599 2600 ND6_WLOCK(); 2601 while ((dr = TAILQ_FIRST(&V_nd6_defrouter)) != NULL) 2602 defrouter_unlink(dr, &drq); 2603 ND6_WUNLOCK(); 2604 2605 while ((dr = TAILQ_FIRST(&drq)) != NULL) { 2606 TAILQ_REMOVE(&drq, dr, dr_entry); 2607 defrouter_del(dr); 2608 } 2609 } 2610 2611 void 2612 nd6_defrouter_init(void) 2613 { 2614 2615 TAILQ_INIT(&V_nd6_defrouter); 2616 } 2617 2618 static int 2619 nd6_sysctl_drlist(SYSCTL_HANDLER_ARGS) 2620 { 2621 struct in6_defrouter d; 2622 struct nd_defrouter *dr; 2623 int error; 2624 2625 if (req->newptr != NULL) 2626 return (EPERM); 2627 2628 error = sysctl_wire_old_buffer(req, 0); 2629 if (error != 0) 2630 return (error); 2631 2632 bzero(&d, sizeof(d)); 2633 d.rtaddr.sin6_family = AF_INET6; 2634 d.rtaddr.sin6_len = sizeof(d.rtaddr); 2635 2636 ND6_RLOCK(); 2637 TAILQ_FOREACH(dr, &V_nd6_defrouter, dr_entry) { 2638 d.rtaddr.sin6_addr = dr->rtaddr; 2639 error = sa6_recoverscope(&d.rtaddr); 2640 if (error != 0) 2641 break; 2642 d.flags = dr->raflags; 2643 d.rtlifetime = dr->rtlifetime; 2644 d.expire = dr->expire + (time_second - time_uptime); 2645 d.if_index = dr->ifp->if_index; 2646 error = SYSCTL_OUT(req, &d, sizeof(d)); 2647 if (error != 0) 2648 break; 2649 } 2650 ND6_RUNLOCK(); 2651 return (error); 2652 } 2653 SYSCTL_PROC(_net_inet6_icmp6, ICMPV6CTL_ND6_DRLIST, nd6_drlist, 2654 CTLTYPE_OPAQUE | CTLFLAG_RD | CTLFLAG_MPSAFE, 2655 NULL, 0, nd6_sysctl_drlist, "S,in6_defrouter", 2656 "NDP default router list"); 2657