nd6.c revision 1.61 1 /* $NetBSD: nd6.c,v 1.61 2002/05/30 05:06:29 itojun Exp $ */
2 /* $KAME: nd6.c,v 1.151 2001/06/19 14:24:41 sumikawa Exp $ */
3
4 /*
5 * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * 3. Neither the name of the project nor the names of its contributors
17 * may be used to endorse or promote products derived from this software
18 * without specific prior written permission.
19 *
20 * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
21 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
22 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
23 * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
24 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
25 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
26 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
27 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
28 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
29 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
30 * SUCH DAMAGE.
31 */
32
33 #include <sys/cdefs.h>
34 __KERNEL_RCSID(0, "$NetBSD: nd6.c,v 1.61 2002/05/30 05:06:29 itojun Exp $");
35
36 #include <sys/param.h>
37 #include <sys/systm.h>
38 #include <sys/callout.h>
39 #include <sys/malloc.h>
40 #include <sys/mbuf.h>
41 #include <sys/socket.h>
42 #include <sys/sockio.h>
43 #include <sys/time.h>
44 #include <sys/kernel.h>
45 #include <sys/protosw.h>
46 #include <sys/errno.h>
47 #include <sys/ioctl.h>
48 #include <sys/syslog.h>
49 #include <sys/queue.h>
50
51 #include <net/if.h>
52 #include <net/if_dl.h>
53 #include <net/if_types.h>
54 #include <net/if_atm.h>
55 #include <net/if_ieee1394.h>
56 #include <net/route.h>
57
58 #include <netinet/in.h>
59 #include <net/if_ether.h>
60 #include <netinet/if_inarp.h>
61 #include <net/if_fddi.h>
62 #include <net/if_ieee80211.h>
63 #include <netinet6/in6_var.h>
64 #include <netinet/ip6.h>
65 #include <netinet6/ip6_var.h>
66 #include <netinet6/nd6.h>
67 #include <netinet6/in6_prefix.h>
68 #include <netinet/icmp6.h>
69
70 #include "loop.h"
71 extern struct ifnet loif[NLOOP];
72
73 #include <net/net_osdep.h>
74
75 #define ND6_SLOWTIMER_INTERVAL (60 * 60) /* 1 hour */
76 #define ND6_RECALC_REACHTM_INTERVAL (60 * 120) /* 2 hours */
77
78 #define SIN6(s) ((struct sockaddr_in6 *)s)
79 #define SDL(s) ((struct sockaddr_dl *)s)
80
81 /* timer values */
82 int nd6_prune = 1; /* walk list every 1 seconds */
83 int nd6_delay = 5; /* delay first probe time 5 second */
84 int nd6_umaxtries = 3; /* maximum unicast query */
85 int nd6_mmaxtries = 3; /* maximum multicast query */
86 int nd6_useloopback = 1; /* use loopback interface for local traffic */
87 int nd6_gctimer = (60 * 60 * 24); /* 1 day: garbage collection timer */
88
89 /* preventing too many loops in ND option parsing */
90 int nd6_maxndopt = 10; /* max # of ND options allowed */
91
92 int nd6_maxnudhint = 0; /* max # of subsequent upper layer hints */
93
94 #ifdef ND6_DEBUG
95 int nd6_debug = 1;
96 #else
97 int nd6_debug = 0;
98 #endif
99
100 /* for debugging? */
101 static int nd6_inuse, nd6_allocated;
102
103 struct llinfo_nd6 llinfo_nd6 = {&llinfo_nd6, &llinfo_nd6};
104 struct nd_drhead nd_defrouter;
105 struct nd_prhead nd_prefix = { 0 };
106
107 int nd6_recalc_reachtm_interval = ND6_RECALC_REACHTM_INTERVAL;
108 static struct sockaddr_in6 all1_sa;
109
110 static void nd6_setmtu0 __P((struct ifnet *, struct nd_ifinfo *));
111 static void nd6_slowtimo __P((void *));
112 static struct llinfo_nd6 *nd6_free __P((struct rtentry *, int));
113
114 struct callout nd6_slowtimo_ch;
115 struct callout nd6_timer_ch;
116
117 void
118 nd6_init()
119 {
120 static int nd6_init_done = 0;
121 int i;
122
123 if (nd6_init_done) {
124 log(LOG_NOTICE, "nd6_init called more than once(ignored)\n");
125 return;
126 }
127
128 all1_sa.sin6_family = AF_INET6;
129 all1_sa.sin6_len = sizeof(struct sockaddr_in6);
130 for (i = 0; i < sizeof(all1_sa.sin6_addr); i++)
131 all1_sa.sin6_addr.s6_addr[i] = 0xff;
132
133 /* initialization of the default router list */
134 TAILQ_INIT(&nd_defrouter);
135
136 nd6_init_done = 1;
137
138 /* start timer */
139 callout_reset(&nd6_slowtimo_ch, ND6_SLOWTIMER_INTERVAL * hz,
140 nd6_slowtimo, NULL);
141 }
142
143 struct nd_ifinfo *
144 nd6_ifattach(ifp)
145 struct ifnet *ifp;
146 {
147 struct nd_ifinfo *nd;
148
149 nd = (struct nd_ifinfo *)malloc(sizeof(*nd), M_IP6NDP, M_WAITOK);
150 bzero(nd, sizeof(*nd));
151
152 nd->initialized = 1;
153
154 nd->chlim = IPV6_DEFHLIM;
155 nd->basereachable = REACHABLE_TIME;
156 nd->reachable = ND_COMPUTE_RTIME(nd->basereachable);
157 nd->retrans = RETRANS_TIMER;
158 nd->flags = ND6_IFF_PERFORMNUD;
159
160 /* XXX: we cannot call nd6_setmtu since ifp is not fully initialized */
161 nd6_setmtu0(ifp, nd);
162
163 return nd;
164 }
165
166 void
167 nd6_ifdetach(nd)
168 struct nd_ifinfo *nd;
169 {
170
171 free(nd, M_IP6NDP);
172 }
173
174 void
175 nd6_setmtu(ifp)
176 struct ifnet *ifp;
177 {
178 nd6_setmtu0(ifp, ND_IFINFO(ifp));
179 }
180
181 void
182 nd6_setmtu0(ifp, ndi)
183 struct ifnet *ifp;
184 struct nd_ifinfo *ndi;
185 {
186 u_int32_t omaxmtu;
187
188 omaxmtu = ndi->maxmtu;
189
190 switch (ifp->if_type) {
191 case IFT_ARCNET: /* XXX MTU handling needs more work */
192 ndi->maxmtu = MIN(60480, ifp->if_mtu);
193 break;
194 case IFT_ETHER:
195 ndi->maxmtu = MIN(ETHERMTU, ifp->if_mtu);
196 break;
197 case IFT_FDDI:
198 ndi->maxmtu = MIN(FDDIIPMTU, ifp->if_mtu);
199 break;
200 case IFT_ATM:
201 ndi->maxmtu = MIN(ATMMTU, ifp->if_mtu);
202 break;
203 case IFT_IEEE1394:
204 ndi->maxmtu = MIN(IEEE1394MTU, ifp->if_mtu);
205 break;
206 case IFT_IEEE80211:
207 ndi->maxmtu = MIN(IEEE80211_MTU, ifp->if_mtu);
208 break;
209 default:
210 ndi->maxmtu = ifp->if_mtu;
211 break;
212 }
213
214 /*
215 * Decreasing the interface MTU under IPV6 minimum MTU may cause
216 * undesirable situation. We thus notify the operator of the change
217 * explicitly. The check for omaxmtu is necessary to restrict the
218 * log to the case of changing the MTU, not initializing it.
219 */
220 if (omaxmtu >= IPV6_MMTU && ndi->maxmtu < IPV6_MMTU) {
221 log(LOG_NOTICE, "nd6_setmtu0: "
222 "new link MTU on %s (%lu) is too small for IPv6\n",
223 if_name(ifp), (unsigned long)ndi->maxmtu);
224 }
225
226 if (ndi->maxmtu > in6_maxmtu)
227 in6_setmaxmtu(); /* check all interfaces just in case */
228 }
229
230 void
231 nd6_option_init(opt, icmp6len, ndopts)
232 void *opt;
233 int icmp6len;
234 union nd_opts *ndopts;
235 {
236
237 bzero(ndopts, sizeof(*ndopts));
238 ndopts->nd_opts_search = (struct nd_opt_hdr *)opt;
239 ndopts->nd_opts_last
240 = (struct nd_opt_hdr *)(((u_char *)opt) + icmp6len);
241
242 if (icmp6len == 0) {
243 ndopts->nd_opts_done = 1;
244 ndopts->nd_opts_search = NULL;
245 }
246 }
247
248 /*
249 * Take one ND option.
250 */
251 struct nd_opt_hdr *
252 nd6_option(ndopts)
253 union nd_opts *ndopts;
254 {
255 struct nd_opt_hdr *nd_opt;
256 int olen;
257
258 if (!ndopts)
259 panic("ndopts == NULL in nd6_option\n");
260 if (!ndopts->nd_opts_last)
261 panic("uninitialized ndopts in nd6_option\n");
262 if (!ndopts->nd_opts_search)
263 return NULL;
264 if (ndopts->nd_opts_done)
265 return NULL;
266
267 nd_opt = ndopts->nd_opts_search;
268
269 /* make sure nd_opt_len is inside the buffer */
270 if ((caddr_t)&nd_opt->nd_opt_len >= (caddr_t)ndopts->nd_opts_last) {
271 bzero(ndopts, sizeof(*ndopts));
272 return NULL;
273 }
274
275 olen = nd_opt->nd_opt_len << 3;
276 if (olen == 0) {
277 /*
278 * Message validation requires that all included
279 * options have a length that is greater than zero.
280 */
281 bzero(ndopts, sizeof(*ndopts));
282 return NULL;
283 }
284
285 ndopts->nd_opts_search = (struct nd_opt_hdr *)((caddr_t)nd_opt + olen);
286 if (ndopts->nd_opts_search > ndopts->nd_opts_last) {
287 /* option overruns the end of buffer, invalid */
288 bzero(ndopts, sizeof(*ndopts));
289 return NULL;
290 } else if (ndopts->nd_opts_search == ndopts->nd_opts_last) {
291 /* reached the end of options chain */
292 ndopts->nd_opts_done = 1;
293 ndopts->nd_opts_search = NULL;
294 }
295 return nd_opt;
296 }
297
298 /*
299 * Parse multiple ND options.
300 * This function is much easier to use, for ND routines that do not need
301 * multiple options of the same type.
302 */
303 int
304 nd6_options(ndopts)
305 union nd_opts *ndopts;
306 {
307 struct nd_opt_hdr *nd_opt;
308 int i = 0;
309
310 if (!ndopts)
311 panic("ndopts == NULL in nd6_options\n");
312 if (!ndopts->nd_opts_last)
313 panic("uninitialized ndopts in nd6_options\n");
314 if (!ndopts->nd_opts_search)
315 return 0;
316
317 while (1) {
318 nd_opt = nd6_option(ndopts);
319 if (!nd_opt && !ndopts->nd_opts_last) {
320 /*
321 * Message validation requires that all included
322 * options have a length that is greater than zero.
323 */
324 icmp6stat.icp6s_nd_badopt++;
325 bzero(ndopts, sizeof(*ndopts));
326 return -1;
327 }
328
329 if (!nd_opt)
330 goto skip1;
331
332 switch (nd_opt->nd_opt_type) {
333 case ND_OPT_SOURCE_LINKADDR:
334 case ND_OPT_TARGET_LINKADDR:
335 case ND_OPT_MTU:
336 case ND_OPT_REDIRECTED_HEADER:
337 if (ndopts->nd_opt_array[nd_opt->nd_opt_type]) {
338 nd6log((LOG_INFO,
339 "duplicated ND6 option found (type=%d)\n",
340 nd_opt->nd_opt_type));
341 /* XXX bark? */
342 } else {
343 ndopts->nd_opt_array[nd_opt->nd_opt_type]
344 = nd_opt;
345 }
346 break;
347 case ND_OPT_PREFIX_INFORMATION:
348 if (ndopts->nd_opt_array[nd_opt->nd_opt_type] == 0) {
349 ndopts->nd_opt_array[nd_opt->nd_opt_type]
350 = nd_opt;
351 }
352 ndopts->nd_opts_pi_end =
353 (struct nd_opt_prefix_info *)nd_opt;
354 break;
355 default:
356 /*
357 * Unknown options must be silently ignored,
358 * to accomodate future extension to the protocol.
359 */
360 nd6log((LOG_DEBUG,
361 "nd6_options: unsupported option %d - "
362 "option ignored\n", nd_opt->nd_opt_type));
363 }
364
365 skip1:
366 i++;
367 if (i > nd6_maxndopt) {
368 icmp6stat.icp6s_nd_toomanyopt++;
369 nd6log((LOG_INFO, "too many loop in nd opt\n"));
370 break;
371 }
372
373 if (ndopts->nd_opts_done)
374 break;
375 }
376
377 return 0;
378 }
379
380 /*
381 * ND6 timer routine to expire default route list and prefix list
382 */
383 void
384 nd6_timer(ignored_arg)
385 void *ignored_arg;
386 {
387 int s;
388 struct llinfo_nd6 *ln;
389 struct nd_defrouter *dr;
390 struct nd_prefix *pr;
391 long time_second = time.tv_sec;
392
393 s = splsoftnet();
394 callout_reset(&nd6_timer_ch, nd6_prune * hz,
395 nd6_timer, NULL);
396
397 ln = llinfo_nd6.ln_next;
398 while (ln && ln != &llinfo_nd6) {
399 struct rtentry *rt;
400 struct ifnet *ifp;
401 struct sockaddr_in6 *dst;
402 struct llinfo_nd6 *next = ln->ln_next;
403 /* XXX: used for the DELAY case only: */
404 struct nd_ifinfo *ndi = NULL;
405
406 if ((rt = ln->ln_rt) == NULL) {
407 ln = next;
408 continue;
409 }
410 if ((ifp = rt->rt_ifp) == NULL) {
411 ln = next;
412 continue;
413 }
414 ndi = ND_IFINFO(ifp);
415 dst = (struct sockaddr_in6 *)rt_key(rt);
416
417 if (ln->ln_expire > time_second) {
418 ln = next;
419 continue;
420 }
421
422 /* sanity check */
423 if (!rt)
424 panic("rt=0 in nd6_timer(ln=%p)\n", ln);
425 if (rt->rt_llinfo && (struct llinfo_nd6 *)rt->rt_llinfo != ln)
426 panic("rt_llinfo(%p) is not equal to ln(%p)\n",
427 rt->rt_llinfo, ln);
428 if (!dst)
429 panic("dst=0 in nd6_timer(ln=%p)\n", ln);
430
431 switch (ln->ln_state) {
432 case ND6_LLINFO_INCOMPLETE:
433 if (ln->ln_asked < nd6_mmaxtries) {
434 ln->ln_asked++;
435 ln->ln_expire = time_second +
436 ND6_RETRANS_SEC(ND_IFINFO(ifp)->retrans);
437 nd6_ns_output(ifp, NULL, &dst->sin6_addr,
438 ln, 0);
439 } else {
440 struct mbuf *m = ln->ln_hold;
441 if (m) {
442 if (rt->rt_ifp) {
443 /*
444 * Fake rcvif to make ICMP error
445 * more helpful in diagnosing
446 * for the receiver.
447 * XXX: should we consider
448 * older rcvif?
449 */
450 m->m_pkthdr.rcvif = rt->rt_ifp;
451 }
452 icmp6_error(m, ICMP6_DST_UNREACH,
453 ICMP6_DST_UNREACH_ADDR, 0);
454 ln->ln_hold = NULL;
455 }
456 next = nd6_free(rt, 0);
457 }
458 break;
459 case ND6_LLINFO_REACHABLE:
460 if (ln->ln_expire) {
461 ln->ln_state = ND6_LLINFO_STALE;
462 ln->ln_expire = time_second + nd6_gctimer;
463 }
464 break;
465
466 case ND6_LLINFO_STALE:
467 /* Garbage Collection(RFC 2461 5.3) */
468 if (ln->ln_expire)
469 next = nd6_free(rt, 1);
470 break;
471
472 case ND6_LLINFO_DELAY:
473 if (ndi && (ndi->flags & ND6_IFF_PERFORMNUD) != 0) {
474 /* We need NUD */
475 ln->ln_asked = 1;
476 ln->ln_state = ND6_LLINFO_PROBE;
477 ln->ln_expire = time_second +
478 ndi->retrans / 1000;
479 nd6_ns_output(ifp, &dst->sin6_addr,
480 &dst->sin6_addr,
481 ln, 0);
482 } else {
483 ln->ln_state = ND6_LLINFO_STALE; /* XXX */
484 ln->ln_expire = time_second + nd6_gctimer;
485 }
486 break;
487 case ND6_LLINFO_PROBE:
488 if (ln->ln_asked < nd6_umaxtries) {
489 ln->ln_asked++;
490 ln->ln_expire = time_second +
491 ND6_RETRANS_SEC(ND_IFINFO(ifp)->retrans);
492 nd6_ns_output(ifp, &dst->sin6_addr,
493 &dst->sin6_addr, ln, 0);
494 } else {
495 next = nd6_free(rt, 0);
496 }
497 break;
498 }
499 ln = next;
500 }
501
502 /* expire default router list */
503 dr = TAILQ_FIRST(&nd_defrouter);
504 while (dr) {
505 if (dr->expire && dr->expire < time_second) {
506 struct nd_defrouter *t;
507 t = TAILQ_NEXT(dr, dr_entry);
508 defrtrlist_del(dr);
509 dr = t;
510 } else {
511 dr = TAILQ_NEXT(dr, dr_entry);
512 }
513 }
514 pr = nd_prefix.lh_first;
515 while (pr) {
516 struct in6_ifaddr *ia6;
517 struct in6_addrlifetime *lt6;
518
519 if (IN6_IS_ADDR_UNSPECIFIED(&pr->ndpr_addr))
520 ia6 = NULL;
521 else
522 ia6 = in6ifa_ifpwithaddr(pr->ndpr_ifp, &pr->ndpr_addr);
523
524 if (ia6) {
525 /* check address lifetime */
526 lt6 = &ia6->ia6_lifetime;
527 if (lt6->ia6t_preferred && lt6->ia6t_preferred < time_second)
528 ia6->ia6_flags |= IN6_IFF_DEPRECATED;
529 if (lt6->ia6t_expire && lt6->ia6t_expire < time_second) {
530 if (!IN6_IS_ADDR_UNSPECIFIED(&pr->ndpr_addr))
531 in6_ifdel(pr->ndpr_ifp, &pr->ndpr_addr);
532 /* xxx ND_OPT_PI_FLAG_ONLINK processing */
533 }
534 }
535
536 /*
537 * check prefix lifetime.
538 * since pltime is just for autoconf, pltime processing for
539 * prefix is not necessary.
540 *
541 * we offset expire time by NDPR_KEEP_EXPIRE, so that we
542 * can use the old prefix information to validate the
543 * next prefix information to come. See prelist_update()
544 * for actual validation.
545 */
546 if (pr->ndpr_expire
547 && pr->ndpr_expire + NDPR_KEEP_EXPIRED < time_second) {
548 struct nd_prefix *t;
549 t = pr->ndpr_next;
550
551 /*
552 * address expiration and prefix expiration are
553 * separate. NEVER perform in6_ifdel here.
554 */
555
556 prelist_remove(pr);
557 pr = t;
558 } else
559 pr = pr->ndpr_next;
560 }
561 splx(s);
562 }
563
564 /*
565 * Nuke neighbor cache/prefix/default router management table, right before
566 * ifp goes away.
567 */
568 void
569 nd6_purge(ifp)
570 struct ifnet *ifp;
571 {
572 struct llinfo_nd6 *ln, *nln;
573 struct nd_defrouter *dr, *ndr, drany;
574 struct nd_prefix *pr, *npr;
575
576 /* Nuke default router list entries toward ifp */
577 if ((dr = TAILQ_FIRST(&nd_defrouter)) != NULL) {
578 /*
579 * The first entry of the list may be stored in
580 * the routing table, so we'll delete it later.
581 */
582 for (dr = TAILQ_NEXT(dr, dr_entry); dr; dr = ndr) {
583 ndr = TAILQ_NEXT(dr, dr_entry);
584 if (dr->ifp == ifp)
585 defrtrlist_del(dr);
586 }
587 dr = TAILQ_FIRST(&nd_defrouter);
588 if (dr->ifp == ifp)
589 defrtrlist_del(dr);
590 }
591
592 /* Nuke prefix list entries toward ifp */
593 for (pr = nd_prefix.lh_first; pr; pr = npr) {
594 npr = pr->ndpr_next;
595 if (pr->ndpr_ifp == ifp) {
596 if (!IN6_IS_ADDR_UNSPECIFIED(&pr->ndpr_addr))
597 in6_ifdel(pr->ndpr_ifp, &pr->ndpr_addr);
598 prelist_remove(pr);
599 }
600 }
601
602 /* cancel default outgoing interface setting */
603 if (nd6_defifindex == ifp->if_index)
604 nd6_setdefaultiface(0);
605
606 if (!ip6_forwarding && ip6_accept_rtadv) { /* XXX: too restrictive? */
607 /* refresh default router list */
608 bzero(&drany, sizeof(drany));
609 defrouter_delreq(&drany, 0);
610 defrouter_select();
611 }
612
613 /*
614 * Nuke neighbor cache entries for the ifp.
615 * Note that rt->rt_ifp may not be the same as ifp,
616 * due to KAME goto ours hack. See RTM_RESOLVE case in
617 * nd6_rtrequest(), and ip6_input().
618 */
619 ln = llinfo_nd6.ln_next;
620 while (ln && ln != &llinfo_nd6) {
621 struct rtentry *rt;
622 struct sockaddr_dl *sdl;
623
624 nln = ln->ln_next;
625 rt = ln->ln_rt;
626 if (rt && rt->rt_gateway &&
627 rt->rt_gateway->sa_family == AF_LINK) {
628 sdl = (struct sockaddr_dl *)rt->rt_gateway;
629 if (sdl->sdl_index == ifp->if_index)
630 nln = nd6_free(rt, 0);
631 }
632 ln = nln;
633 }
634 }
635
636 struct rtentry *
637 nd6_lookup(addr6, create, ifp)
638 struct in6_addr *addr6;
639 int create;
640 struct ifnet *ifp;
641 {
642 struct rtentry *rt;
643 struct sockaddr_in6 sin6;
644
645 bzero(&sin6, sizeof(sin6));
646 sin6.sin6_len = sizeof(struct sockaddr_in6);
647 sin6.sin6_family = AF_INET6;
648 sin6.sin6_addr = *addr6;
649 rt = rtalloc1((struct sockaddr *)&sin6, create);
650 if (rt && (rt->rt_flags & RTF_LLINFO) == 0) {
651 /*
652 * This is the case for the default route.
653 * If we want to create a neighbor cache for the address, we
654 * should free the route for the destination and allocate an
655 * interface route.
656 */
657 if (create) {
658 RTFREE(rt);
659 rt = 0;
660 }
661 }
662 if (!rt) {
663 if (create && ifp) {
664 int e;
665
666 /*
667 * If no route is available and create is set,
668 * we allocate a host route for the destination
669 * and treat it like an interface route.
670 * This hack is necessary for a neighbor which can't
671 * be covered by our own prefix.
672 */
673 struct ifaddr *ifa =
674 ifaof_ifpforaddr((struct sockaddr *)&sin6, ifp);
675 if (ifa == NULL)
676 return(NULL);
677
678 /*
679 * Create a new route. RTF_LLINFO is necessary
680 * to create a Neighbor Cache entry for the
681 * destination in nd6_rtrequest which will be
682 * called in rtrequest via ifa->ifa_rtrequest.
683 */
684 if ((e = rtrequest(RTM_ADD, (struct sockaddr *)&sin6,
685 ifa->ifa_addr,
686 (struct sockaddr *)&all1_sa,
687 (ifa->ifa_flags |
688 RTF_HOST | RTF_LLINFO) &
689 ~RTF_CLONING,
690 &rt)) != 0) {
691 #if 0
692 log(LOG_ERR,
693 "nd6_lookup: failed to add route for a "
694 "neighbor(%s), errno=%d\n",
695 ip6_sprintf(addr6), e);
696 #endif
697 return(NULL);
698 }
699 if (rt == NULL)
700 return(NULL);
701 if (rt->rt_llinfo) {
702 struct llinfo_nd6 *ln =
703 (struct llinfo_nd6 *)rt->rt_llinfo;
704 ln->ln_state = ND6_LLINFO_NOSTATE;
705 }
706 } else
707 return(NULL);
708 }
709 rt->rt_refcnt--;
710 /*
711 * Validation for the entry.
712 * XXX: we can't use rt->rt_ifp to check for the interface, since
713 * it might be the loopback interface if the entry is for our
714 * own address on a non-loopback interface. Instead, we should
715 * use rt->rt_ifa->ifa_ifp, which would specify the REAL interface.
716 */
717 if ((rt->rt_flags & RTF_GATEWAY) || (rt->rt_flags & RTF_LLINFO) == 0 ||
718 rt->rt_gateway->sa_family != AF_LINK ||
719 (ifp && rt->rt_ifa->ifa_ifp != ifp)) {
720 if (create) {
721 log(LOG_DEBUG, "nd6_lookup: failed to lookup %s (if = %s)\n",
722 ip6_sprintf(addr6), ifp ? if_name(ifp) : "unspec");
723 }
724 return(0);
725 }
726 return(rt);
727 }
728
729 /*
730 * Detect if a given IPv6 address identifies a neighbor on a given link.
731 * XXX: should take care of the destination of a p2p link?
732 */
733 int
734 nd6_is_addr_neighbor(addr, ifp)
735 struct sockaddr_in6 *addr;
736 struct ifnet *ifp;
737 {
738 struct ifaddr *ifa;
739 int i;
740
741 #define IFADDR6(a) ((((struct in6_ifaddr *)(a))->ia_addr).sin6_addr)
742 #define IFMASK6(a) ((((struct in6_ifaddr *)(a))->ia_prefixmask).sin6_addr)
743
744 /*
745 * A link-local address is always a neighbor.
746 * XXX: we should use the sin6_scope_id field rather than the embedded
747 * interface index.
748 * XXX: a link does not necessarily specify a single interface.
749 */
750 if (IN6_IS_ADDR_LINKLOCAL(&addr->sin6_addr) &&
751 ntohs(*(u_int16_t *)&addr->sin6_addr.s6_addr[2]) == ifp->if_index)
752 return(1);
753
754 /*
755 * If the address matches one of our addresses,
756 * it should be a neighbor.
757 */
758 for (ifa = ifp->if_addrlist.tqh_first;
759 ifa;
760 ifa = ifa->ifa_list.tqe_next)
761 {
762 if (ifa->ifa_addr->sa_family != AF_INET6)
763 next: continue;
764
765 for (i = 0; i < 4; i++) {
766 if ((IFADDR6(ifa).s6_addr32[i] ^
767 addr->sin6_addr.s6_addr32[i]) &
768 IFMASK6(ifa).s6_addr32[i])
769 goto next;
770 }
771 return(1);
772 }
773
774 /*
775 * Even if the address matches none of our addresses, it might be
776 * in the neighbor cache.
777 */
778 if (nd6_lookup(&addr->sin6_addr, 0, ifp))
779 return(1);
780
781 return(0);
782 #undef IFADDR6
783 #undef IFMASK6
784 }
785
786 /*
787 * Free an nd6 llinfo entry.
788 * Since the function would cause significant changes in the kernel, DO NOT
789 * make it global, unless you have a strong reason for the change, and are sure
790 * that the change is safe.
791 */
792 static struct llinfo_nd6 *
793 nd6_free(rt, gc)
794 struct rtentry *rt;
795 int gc;
796 {
797 struct llinfo_nd6 *ln = (struct llinfo_nd6 *)rt->rt_llinfo, *next;
798 struct in6_addr in6 = ((struct sockaddr_in6 *)rt_key(rt))->sin6_addr;
799 struct nd_defrouter *dr;
800
801 /*
802 * we used to have pfctlinput(PRC_HOSTDEAD) here.
803 * even though it is not harmful, it was not really necessary.
804 */
805
806 if (!ip6_forwarding && ip6_accept_rtadv) { /* XXX: too restrictive? */
807 int s;
808 s = splsoftnet();
809 dr = defrouter_lookup(&((struct sockaddr_in6 *)rt_key(rt))->sin6_addr,
810 rt->rt_ifp);
811
812 if (dr != NULL && dr->expire &&
813 ln->ln_state == ND6_LLINFO_STALE && gc) {
814 /*
815 * If the reason for the deletion is just garbage
816 * collection, and the neighbor is an active default
817 * router, do not delete it. Instead, reset the GC
818 * timer using the router's lifetime.
819 * Simply deleting the entry would affect default
820 * router selection, which is not necessarily a good
821 * thing, especially when we're using router preference
822 * values.
823 * XXX: the check for ln_state would be redundant,
824 * but we intentionally keep it just in case.
825 */
826 ln->ln_expire = dr->expire;
827 splx(s);
828 return(ln->ln_next);
829 }
830
831 if (ln->ln_router || dr) {
832 /*
833 * rt6_flush must be called whether or not the neighbor
834 * is in the Default Router List.
835 * See a corresponding comment in nd6_na_input().
836 */
837 rt6_flush(&in6, rt->rt_ifp);
838 }
839
840 if (dr) {
841 /*
842 * Unreachablity of a router might affect the default
843 * router selection and on-link detection of advertised
844 * prefixes.
845 */
846
847 /*
848 * Temporarily fake the state to choose a new default
849 * router and to perform on-link determination of
850 * prefixes correctly.
851 * Below the state will be set correctly,
852 * or the entry itself will be deleted.
853 */
854 ln->ln_state = ND6_LLINFO_INCOMPLETE;
855
856 /*
857 * Since defrouter_select() does not affect the
858 * on-link determination and MIP6 needs the check
859 * before the default router selection, we perform
860 * the check now.
861 */
862 pfxlist_onlink_check();
863
864 if (dr == TAILQ_FIRST(&nd_defrouter)) {
865 /*
866 * It is used as the current default router,
867 * so we have to move it to the end of the
868 * list and choose a new one.
869 * XXX: it is not very efficient if this is
870 * the only router.
871 */
872 TAILQ_REMOVE(&nd_defrouter, dr, dr_entry);
873 TAILQ_INSERT_TAIL(&nd_defrouter, dr, dr_entry);
874
875 defrouter_select();
876 }
877 }
878 splx(s);
879 }
880
881 /*
882 * Before deleting the entry, remember the next entry as the
883 * return value. We need this because pfxlist_onlink_check() above
884 * might have freed other entries (particularly the old next entry) as
885 * a side effect (XXX).
886 */
887 next = ln->ln_next;
888
889 /*
890 * Detach the route from the routing tree and the list of neighbor
891 * caches, and disable the route entry not to be used in already
892 * cached routes.
893 */
894 rtrequest(RTM_DELETE, rt_key(rt), (struct sockaddr *)0,
895 rt_mask(rt), 0, (struct rtentry **)0);
896
897 return(next);
898 }
899
900 /*
901 * Upper-layer reachability hint for Neighbor Unreachability Detection.
902 *
903 * XXX cost-effective metods?
904 */
905 void
906 nd6_nud_hint(rt, dst6, force)
907 struct rtentry *rt;
908 struct in6_addr *dst6;
909 int force;
910 {
911 struct llinfo_nd6 *ln;
912 long time_second = time.tv_sec;
913
914 /*
915 * If the caller specified "rt", use that. Otherwise, resolve the
916 * routing table by supplied "dst6".
917 */
918 if (!rt) {
919 if (!dst6)
920 return;
921 if (!(rt = nd6_lookup(dst6, 0, NULL)))
922 return;
923 }
924
925 if ((rt->rt_flags & RTF_GATEWAY) != 0 ||
926 (rt->rt_flags & RTF_LLINFO) == 0 ||
927 !rt->rt_llinfo || !rt->rt_gateway ||
928 rt->rt_gateway->sa_family != AF_LINK) {
929 /* This is not a host route. */
930 return;
931 }
932
933 ln = (struct llinfo_nd6 *)rt->rt_llinfo;
934 if (ln->ln_state < ND6_LLINFO_REACHABLE)
935 return;
936
937 /*
938 * if we get upper-layer reachability confirmation many times,
939 * it is possible we have false information.
940 */
941 if (!force) {
942 ln->ln_byhint++;
943 if (ln->ln_byhint > nd6_maxnudhint)
944 return;
945 }
946
947 ln->ln_state = ND6_LLINFO_REACHABLE;
948 if (ln->ln_expire)
949 ln->ln_expire = time_second + ND_IFINFO(rt->rt_ifp)->reachable;
950 }
951
952 void
953 nd6_rtrequest(req, rt, info)
954 int req;
955 struct rtentry *rt;
956 struct rt_addrinfo *info; /* xxx unused */
957 {
958 struct sockaddr *gate = rt->rt_gateway;
959 struct llinfo_nd6 *ln = (struct llinfo_nd6 *)rt->rt_llinfo;
960 static struct sockaddr_dl null_sdl = {sizeof(null_sdl), AF_LINK};
961 struct ifnet *ifp = rt->rt_ifp;
962 struct ifaddr *ifa;
963 long time_second = time.tv_sec;
964
965 if ((rt->rt_flags & RTF_GATEWAY))
966 return;
967
968 if (nd6_need_cache(ifp) == 0 && (rt->rt_flags & RTF_HOST) == 0) {
969 /*
970 * This is probably an interface direct route for a link
971 * which does not need neighbor caches (e.g. fe80::%lo0/64).
972 * We do not need special treatment below for such a route.
973 * Moreover, the RTF_LLINFO flag which would be set below
974 * would annoy the ndp(8) command.
975 */
976 return;
977 }
978
979 switch (req) {
980 case RTM_ADD:
981 /*
982 * There is no backward compatibility :)
983 *
984 * if ((rt->rt_flags & RTF_HOST) == 0 &&
985 * SIN(rt_mask(rt))->sin_addr.s_addr != 0xffffffff)
986 * rt->rt_flags |= RTF_CLONING;
987 */
988 if (rt->rt_flags & (RTF_CLONING | RTF_LLINFO)) {
989 /*
990 * Case 1: This route should come from
991 * a route to interface. RTF_LLINFO flag is set
992 * for a host route whose destination should be
993 * treated as on-link.
994 */
995 rt_setgate(rt, rt_key(rt),
996 (struct sockaddr *)&null_sdl);
997 gate = rt->rt_gateway;
998 SDL(gate)->sdl_type = ifp->if_type;
999 SDL(gate)->sdl_index = ifp->if_index;
1000 if (ln)
1001 ln->ln_expire = time_second;
1002 #if 1
1003 if (ln && ln->ln_expire == 0) {
1004 /* kludge for desktops */
1005 #if 0
1006 printf("nd6_rtequest: time.tv_sec is zero; "
1007 "treat it as 1\n");
1008 #endif
1009 ln->ln_expire = 1;
1010 }
1011 #endif
1012 if ((rt->rt_flags & RTF_CLONING))
1013 break;
1014 }
1015 /*
1016 * In IPv4 code, we try to annonuce new RTF_ANNOUNCE entry here.
1017 * We don't do that here since llinfo is not ready yet.
1018 *
1019 * There are also couple of other things to be discussed:
1020 * - unsolicited NA code needs improvement beforehand
1021 * - RFC2461 says we MAY send multicast unsolicited NA
1022 * (7.2.6 paragraph 4), however, it also says that we
1023 * SHOULD provide a mechanism to prevent multicast NA storm.
1024 * we don't have anything like it right now.
1025 * note that the mechanism needs a mutual agreement
1026 * between proxies, which means that we need to implement
1027 * a new protocol, or a new kludge.
1028 * - from RFC2461 6.2.4, host MUST NOT send an unsolicited NA.
1029 * we need to check ip6forwarding before sending it.
1030 * (or should we allow proxy ND configuration only for
1031 * routers? there's no mention about proxy ND from hosts)
1032 */
1033 #if 0
1034 /* XXX it does not work */
1035 if (rt->rt_flags & RTF_ANNOUNCE)
1036 nd6_na_output(ifp,
1037 &SIN6(rt_key(rt))->sin6_addr,
1038 &SIN6(rt_key(rt))->sin6_addr,
1039 ip6_forwarding ? ND_NA_FLAG_ROUTER : 0,
1040 1, NULL);
1041 #endif
1042 /* FALLTHROUGH */
1043 case RTM_RESOLVE:
1044 if ((ifp->if_flags & IFF_POINTOPOINT) == 0) {
1045 /*
1046 * Address resolution isn't necessary for a point to
1047 * point link, so we can skip this test for a p2p link.
1048 */
1049 if (gate->sa_family != AF_LINK ||
1050 gate->sa_len < sizeof(null_sdl)) {
1051 log(LOG_DEBUG,
1052 "nd6_rtrequest: bad gateway value: %s\n",
1053 if_name(ifp));
1054 break;
1055 }
1056 SDL(gate)->sdl_type = ifp->if_type;
1057 SDL(gate)->sdl_index = ifp->if_index;
1058 }
1059 if (ln != NULL)
1060 break; /* This happens on a route change */
1061 /*
1062 * Case 2: This route may come from cloning, or a manual route
1063 * add with a LL address.
1064 */
1065 R_Malloc(ln, struct llinfo_nd6 *, sizeof(*ln));
1066 rt->rt_llinfo = (caddr_t)ln;
1067 if (!ln) {
1068 log(LOG_DEBUG, "nd6_rtrequest: malloc failed\n");
1069 break;
1070 }
1071 nd6_inuse++;
1072 nd6_allocated++;
1073 Bzero(ln, sizeof(*ln));
1074 ln->ln_rt = rt;
1075 /* this is required for "ndp" command. - shin */
1076 if (req == RTM_ADD) {
1077 /*
1078 * gate should have some valid AF_LINK entry,
1079 * and ln->ln_expire should have some lifetime
1080 * which is specified by ndp command.
1081 */
1082 ln->ln_state = ND6_LLINFO_REACHABLE;
1083 ln->ln_byhint = 0;
1084 } else {
1085 /*
1086 * When req == RTM_RESOLVE, rt is created and
1087 * initialized in rtrequest(), so rt_expire is 0.
1088 */
1089 ln->ln_state = ND6_LLINFO_NOSTATE;
1090 ln->ln_expire = time_second;
1091 }
1092 rt->rt_flags |= RTF_LLINFO;
1093 ln->ln_next = llinfo_nd6.ln_next;
1094 llinfo_nd6.ln_next = ln;
1095 ln->ln_prev = &llinfo_nd6;
1096 ln->ln_next->ln_prev = ln;
1097
1098 /*
1099 * check if rt_key(rt) is one of my address assigned
1100 * to the interface.
1101 */
1102 ifa = (struct ifaddr *)in6ifa_ifpwithaddr(rt->rt_ifp,
1103 &SIN6(rt_key(rt))->sin6_addr);
1104 if (ifa) {
1105 caddr_t macp = nd6_ifptomac(ifp);
1106 ln->ln_expire = 0;
1107 ln->ln_state = ND6_LLINFO_REACHABLE;
1108 ln->ln_byhint = 0;
1109 if (macp) {
1110 Bcopy(macp, LLADDR(SDL(gate)), ifp->if_addrlen);
1111 SDL(gate)->sdl_alen = ifp->if_addrlen;
1112 }
1113 if (nd6_useloopback) {
1114 rt->rt_ifp = &loif[0]; /* XXX */
1115 /*
1116 * Make sure rt_ifa be equal to the ifaddr
1117 * corresponding to the address.
1118 * We need this because when we refer
1119 * rt_ifa->ia6_flags in ip6_input, we assume
1120 * that the rt_ifa points to the address instead
1121 * of the loopback address.
1122 */
1123 if (ifa != rt->rt_ifa) {
1124 IFAFREE(rt->rt_ifa);
1125 IFAREF(ifa);
1126 rt->rt_ifa = ifa;
1127 }
1128 }
1129 } else if (rt->rt_flags & RTF_ANNOUNCE) {
1130 ln->ln_expire = 0;
1131 ln->ln_state = ND6_LLINFO_REACHABLE;
1132 ln->ln_byhint = 0;
1133
1134 /* join solicited node multicast for proxy ND */
1135 if (ifp->if_flags & IFF_MULTICAST) {
1136 struct in6_addr llsol;
1137 int error;
1138
1139 llsol = SIN6(rt_key(rt))->sin6_addr;
1140 llsol.s6_addr16[0] = htons(0xff02);
1141 llsol.s6_addr16[1] = htons(ifp->if_index);
1142 llsol.s6_addr32[1] = 0;
1143 llsol.s6_addr32[2] = htonl(1);
1144 llsol.s6_addr8[12] = 0xff;
1145
1146 if (!in6_addmulti(&llsol, ifp, &error)) {
1147 nd6log((LOG_ERR, "%s: failed to join "
1148 "%s (errno=%d)\n", if_name(ifp),
1149 ip6_sprintf(&llsol), error));
1150 }
1151 }
1152 }
1153 break;
1154
1155 case RTM_DELETE:
1156 if (!ln)
1157 break;
1158 /* leave from solicited node multicast for proxy ND */
1159 if ((rt->rt_flags & RTF_ANNOUNCE) != 0 &&
1160 (ifp->if_flags & IFF_MULTICAST) != 0) {
1161 struct in6_addr llsol;
1162 struct in6_multi *in6m;
1163
1164 llsol = SIN6(rt_key(rt))->sin6_addr;
1165 llsol.s6_addr16[0] = htons(0xff02);
1166 llsol.s6_addr16[1] = htons(ifp->if_index);
1167 llsol.s6_addr32[1] = 0;
1168 llsol.s6_addr32[2] = htonl(1);
1169 llsol.s6_addr8[12] = 0xff;
1170
1171 IN6_LOOKUP_MULTI(llsol, ifp, in6m);
1172 if (in6m)
1173 in6_delmulti(in6m);
1174 }
1175 nd6_inuse--;
1176 ln->ln_next->ln_prev = ln->ln_prev;
1177 ln->ln_prev->ln_next = ln->ln_next;
1178 ln->ln_prev = NULL;
1179 rt->rt_llinfo = 0;
1180 rt->rt_flags &= ~RTF_LLINFO;
1181 if (ln->ln_hold)
1182 m_freem(ln->ln_hold);
1183 Free((caddr_t)ln);
1184 }
1185 }
1186
1187 void
1188 nd6_p2p_rtrequest(req, rt, info)
1189 int req;
1190 struct rtentry *rt;
1191 struct rt_addrinfo *info; /* xxx unused */
1192 {
1193 struct sockaddr *gate = rt->rt_gateway;
1194 static struct sockaddr_dl null_sdl = {sizeof(null_sdl), AF_LINK};
1195 struct ifnet *ifp = rt->rt_ifp;
1196 struct ifaddr *ifa;
1197
1198 if (rt->rt_flags & RTF_GATEWAY)
1199 return;
1200
1201 switch (req) {
1202 case RTM_ADD:
1203 /*
1204 * There is no backward compatibility :)
1205 *
1206 * if ((rt->rt_flags & RTF_HOST) == 0 &&
1207 * SIN(rt_mask(rt))->sin_addr.s_addr != 0xffffffff)
1208 * rt->rt_flags |= RTF_CLONING;
1209 */
1210 if (rt->rt_flags & RTF_CLONING) {
1211 /*
1212 * Case 1: This route should come from
1213 * a route to interface.
1214 */
1215 rt_setgate(rt, rt_key(rt),
1216 (struct sockaddr *)&null_sdl);
1217 gate = rt->rt_gateway;
1218 SDL(gate)->sdl_type = ifp->if_type;
1219 SDL(gate)->sdl_index = ifp->if_index;
1220 break;
1221 }
1222 /* Announce a new entry if requested. */
1223 if (rt->rt_flags & RTF_ANNOUNCE)
1224 nd6_na_output(ifp,
1225 &SIN6(rt_key(rt))->sin6_addr,
1226 &SIN6(rt_key(rt))->sin6_addr,
1227 ip6_forwarding ? ND_NA_FLAG_ROUTER : 0,
1228 1, NULL);
1229 /* FALLTHROUGH */
1230 case RTM_RESOLVE:
1231 /*
1232 * check if rt_key(rt) is one of my address assigned
1233 * to the interface.
1234 */
1235 ifa = (struct ifaddr *)in6ifa_ifpwithaddr(rt->rt_ifp,
1236 &SIN6(rt_key(rt))->sin6_addr);
1237 if (ifa) {
1238 if (nd6_useloopback) {
1239 rt->rt_ifp = &loif[0]; /*XXX*/
1240 }
1241 }
1242 break;
1243 }
1244 }
1245
1246 int
1247 nd6_ioctl(cmd, data, ifp)
1248 u_long cmd;
1249 caddr_t data;
1250 struct ifnet *ifp;
1251 {
1252 struct in6_drlist *drl = (struct in6_drlist *)data;
1253 struct in6_prlist *prl = (struct in6_prlist *)data;
1254 struct in6_ndireq *ndi = (struct in6_ndireq *)data;
1255 struct in6_nbrinfo *nbi = (struct in6_nbrinfo *)data;
1256 struct in6_ndifreq *ndif = (struct in6_ndifreq *)data;
1257 struct nd_defrouter *dr, any;
1258 struct nd_prefix *pr;
1259 struct rtentry *rt;
1260 int i = 0, error = 0;
1261 int s;
1262
1263 switch (cmd) {
1264 case SIOCGDRLST_IN6:
1265 bzero(drl, sizeof(*drl));
1266 s = splsoftnet();
1267 dr = TAILQ_FIRST(&nd_defrouter);
1268 while (dr && i < DRLSTSIZ) {
1269 drl->defrouter[i].rtaddr = dr->rtaddr;
1270 if (IN6_IS_ADDR_LINKLOCAL(&drl->defrouter[i].rtaddr)) {
1271 /* XXX: need to this hack for KAME stack */
1272 drl->defrouter[i].rtaddr.s6_addr16[1] = 0;
1273 } else
1274 log(LOG_ERR,
1275 "default router list contains a "
1276 "non-linklocal address(%s)\n",
1277 ip6_sprintf(&drl->defrouter[i].rtaddr));
1278
1279 drl->defrouter[i].flags = dr->flags;
1280 drl->defrouter[i].rtlifetime = dr->rtlifetime;
1281 drl->defrouter[i].expire = dr->expire;
1282 drl->defrouter[i].if_index = dr->ifp->if_index;
1283 i++;
1284 dr = TAILQ_NEXT(dr, dr_entry);
1285 }
1286 splx(s);
1287 break;
1288 case SIOCGPRLST_IN6:
1289 /*
1290 * XXX meaning of fields, especialy "raflags", is very
1291 * differnet between RA prefix list and RR/static prefix list.
1292 * how about separating ioctls into two?
1293 */
1294 bzero(prl, sizeof(*prl));
1295 s = splsoftnet();
1296 pr = nd_prefix.lh_first;
1297 while (pr && i < PRLSTSIZ) {
1298 struct nd_pfxrouter *pfr;
1299 int j;
1300
1301 prl->prefix[i].prefix = pr->ndpr_prefix.sin6_addr;
1302 prl->prefix[i].raflags = pr->ndpr_raf;
1303 prl->prefix[i].prefixlen = pr->ndpr_plen;
1304 prl->prefix[i].vltime = pr->ndpr_vltime;
1305 prl->prefix[i].pltime = pr->ndpr_pltime;
1306 prl->prefix[i].if_index = pr->ndpr_ifp->if_index;
1307 prl->prefix[i].expire = pr->ndpr_expire;
1308
1309 pfr = pr->ndpr_advrtrs.lh_first;
1310 j = 0;
1311 while (pfr) {
1312 if (j < DRLSTSIZ) {
1313 #define RTRADDR prl->prefix[i].advrtr[j]
1314 RTRADDR = pfr->router->rtaddr;
1315 if (IN6_IS_ADDR_LINKLOCAL(&RTRADDR)) {
1316 /* XXX: hack for KAME */
1317 RTRADDR.s6_addr16[1] = 0;
1318 } else
1319 log(LOG_ERR,
1320 "a router(%s) advertises "
1321 "a prefix with "
1322 "non-link local address\n",
1323 ip6_sprintf(&RTRADDR));
1324 #undef RTRADDR
1325 }
1326 j++;
1327 pfr = pfr->pfr_next;
1328 }
1329 prl->prefix[i].advrtrs = j;
1330 prl->prefix[i].origin = PR_ORIG_RA;
1331
1332 i++;
1333 pr = pr->ndpr_next;
1334 }
1335 {
1336 struct rr_prefix *rpp;
1337
1338 for (rpp = LIST_FIRST(&rr_prefix); rpp;
1339 rpp = LIST_NEXT(rpp, rp_entry)) {
1340 if (i >= PRLSTSIZ)
1341 break;
1342 prl->prefix[i].prefix = rpp->rp_prefix.sin6_addr;
1343 prl->prefix[i].raflags = rpp->rp_raf;
1344 prl->prefix[i].prefixlen = rpp->rp_plen;
1345 prl->prefix[i].vltime = rpp->rp_vltime;
1346 prl->prefix[i].pltime = rpp->rp_pltime;
1347 prl->prefix[i].if_index = rpp->rp_ifp->if_index;
1348 prl->prefix[i].expire = rpp->rp_expire;
1349 prl->prefix[i].advrtrs = 0;
1350 prl->prefix[i].origin = rpp->rp_origin;
1351 i++;
1352 }
1353 }
1354 splx(s);
1355
1356 break;
1357 case OSIOCGIFINFO_IN6:
1358 /* XXX: old ndp(8) assumes a positive value for linkmtu. */
1359 bzero(&ndi->ndi, sizeof(ndi->ndi));
1360 ndi->ndi.linkmtu = IN6_LINKMTU(ifp);
1361 ndi->ndi.maxmtu = ND_IFINFO(ifp)->maxmtu;
1362 ndi->ndi.basereachable = ND_IFINFO(ifp)->basereachable;
1363 ndi->ndi.reachable = ND_IFINFO(ifp)->reachable;
1364 ndi->ndi.retrans = ND_IFINFO(ifp)->retrans;
1365 ndi->ndi.flags = ND_IFINFO(ifp)->flags;
1366 ndi->ndi.recalctm = ND_IFINFO(ifp)->recalctm;
1367 ndi->ndi.chlim = ND_IFINFO(ifp)->chlim;
1368 break;
1369 case SIOCGIFINFO_IN6:
1370 ndi->ndi = *ND_IFINFO(ifp);
1371 break;
1372 case SIOCSIFINFO_FLAGS:
1373 ND_IFINFO(ifp)->flags = ndi->ndi.flags;
1374 break;
1375 case SIOCSNDFLUSH_IN6: /* XXX: the ioctl name is confusing... */
1376 /* flush default router list */
1377 /*
1378 * xxx sumikawa: should not delete route if default
1379 * route equals to the top of default router list
1380 */
1381 bzero(&any, sizeof(any));
1382 defrouter_delreq(&any, 0);
1383 defrouter_select();
1384 /* xxx sumikawa: flush prefix list */
1385 break;
1386 case SIOCSPFXFLUSH_IN6:
1387 {
1388 /* flush all the prefix advertised by routers */
1389 struct nd_prefix *pr, *next;
1390
1391 s = splsoftnet();
1392 for (pr = nd_prefix.lh_first; pr; pr = next) {
1393 next = pr->ndpr_next;
1394 if (!IN6_IS_ADDR_UNSPECIFIED(&pr->ndpr_addr))
1395 in6_ifdel(pr->ndpr_ifp, &pr->ndpr_addr);
1396 prelist_remove(pr);
1397 }
1398 splx(s);
1399 break;
1400 }
1401 case SIOCSRTRFLUSH_IN6:
1402 {
1403 /* flush all the default routers */
1404 struct nd_defrouter *dr, *next;
1405
1406 s = splsoftnet();
1407 if ((dr = TAILQ_FIRST(&nd_defrouter)) != NULL) {
1408 /*
1409 * The first entry of the list may be stored in
1410 * the routing table, so we'll delete it later.
1411 */
1412 for (dr = TAILQ_NEXT(dr, dr_entry); dr; dr = next) {
1413 next = TAILQ_NEXT(dr, dr_entry);
1414 defrtrlist_del(dr);
1415 }
1416 defrtrlist_del(TAILQ_FIRST(&nd_defrouter));
1417 }
1418 splx(s);
1419 break;
1420 }
1421 case SIOCGNBRINFO_IN6:
1422 {
1423 struct llinfo_nd6 *ln;
1424 struct in6_addr nb_addr = nbi->addr; /* make local for safety */
1425
1426 /*
1427 * XXX: KAME specific hack for scoped addresses
1428 * XXXX: for other scopes than link-local?
1429 */
1430 if (IN6_IS_ADDR_LINKLOCAL(&nbi->addr) ||
1431 IN6_IS_ADDR_MC_LINKLOCAL(&nbi->addr)) {
1432 u_int16_t *idp = (u_int16_t *)&nb_addr.s6_addr[2];
1433
1434 if (*idp == 0)
1435 *idp = htons(ifp->if_index);
1436 }
1437
1438 s = splsoftnet();
1439 if ((rt = nd6_lookup(&nb_addr, 0, ifp)) == NULL) {
1440 error = EINVAL;
1441 splx(s);
1442 break;
1443 }
1444 ln = (struct llinfo_nd6 *)rt->rt_llinfo;
1445 nbi->state = ln->ln_state;
1446 nbi->asked = ln->ln_asked;
1447 nbi->isrouter = ln->ln_router;
1448 nbi->expire = ln->ln_expire;
1449 splx(s);
1450
1451 break;
1452 }
1453 case SIOCGDEFIFACE_IN6: /* XXX: should be implemented as a sysctl? */
1454 ndif->ifindex = nd6_defifindex;
1455 break;
1456 case SIOCSDEFIFACE_IN6: /* XXX: should be implemented as a sysctl? */
1457 return(nd6_setdefaultiface(ndif->ifindex));
1458 break;
1459 }
1460 return(error);
1461 }
1462
1463 /*
1464 * Create neighbor cache entry and cache link-layer address,
1465 * on reception of inbound ND6 packets. (RS/RA/NS/redirect)
1466 */
1467 struct rtentry *
1468 nd6_cache_lladdr(ifp, from, lladdr, lladdrlen, type, code)
1469 struct ifnet *ifp;
1470 struct in6_addr *from;
1471 char *lladdr;
1472 int lladdrlen;
1473 int type; /* ICMP6 type */
1474 int code; /* type dependent information */
1475 {
1476 struct rtentry *rt = NULL;
1477 struct llinfo_nd6 *ln = NULL;
1478 int is_newentry;
1479 struct sockaddr_dl *sdl = NULL;
1480 int do_update;
1481 int olladdr;
1482 int llchange;
1483 int newstate = 0;
1484 long time_second = time.tv_sec;
1485
1486 if (!ifp)
1487 panic("ifp == NULL in nd6_cache_lladdr");
1488 if (!from)
1489 panic("from == NULL in nd6_cache_lladdr");
1490
1491 /* nothing must be updated for unspecified address */
1492 if (IN6_IS_ADDR_UNSPECIFIED(from))
1493 return NULL;
1494
1495 /*
1496 * Validation about ifp->if_addrlen and lladdrlen must be done in
1497 * the caller.
1498 *
1499 * XXX If the link does not have link-layer adderss, what should
1500 * we do? (ifp->if_addrlen == 0)
1501 * Spec says nothing in sections for RA, RS and NA. There's small
1502 * description on it in NS section (RFC 2461 7.2.3).
1503 */
1504
1505 rt = nd6_lookup(from, 0, ifp);
1506 if (!rt) {
1507 #if 0
1508 /* nothing must be done if there's no lladdr */
1509 if (!lladdr || !lladdrlen)
1510 return NULL;
1511 #endif
1512
1513 rt = nd6_lookup(from, 1, ifp);
1514 is_newentry = 1;
1515 } else {
1516 /* do nothing if static ndp is set */
1517 if (rt->rt_flags & RTF_STATIC)
1518 return NULL;
1519 is_newentry = 0;
1520 }
1521
1522 if (!rt)
1523 return NULL;
1524 if ((rt->rt_flags & (RTF_GATEWAY | RTF_LLINFO)) != RTF_LLINFO) {
1525 fail:
1526 (void)nd6_free(rt, 0);
1527 return NULL;
1528 }
1529 ln = (struct llinfo_nd6 *)rt->rt_llinfo;
1530 if (!ln)
1531 goto fail;
1532 if (!rt->rt_gateway)
1533 goto fail;
1534 if (rt->rt_gateway->sa_family != AF_LINK)
1535 goto fail;
1536 sdl = SDL(rt->rt_gateway);
1537
1538 olladdr = (sdl->sdl_alen) ? 1 : 0;
1539 if (olladdr && lladdr) {
1540 if (bcmp(lladdr, LLADDR(sdl), ifp->if_addrlen))
1541 llchange = 1;
1542 else
1543 llchange = 0;
1544 } else
1545 llchange = 0;
1546
1547 /*
1548 * newentry olladdr lladdr llchange (*=record)
1549 * 0 n n -- (1)
1550 * 0 y n -- (2)
1551 * 0 n y -- (3) * STALE
1552 * 0 y y n (4) *
1553 * 0 y y y (5) * STALE
1554 * 1 -- n -- (6) NOSTATE(= PASSIVE)
1555 * 1 -- y -- (7) * STALE
1556 */
1557
1558 if (lladdr) { /* (3-5) and (7) */
1559 /*
1560 * Record source link-layer address
1561 * XXX is it dependent to ifp->if_type?
1562 */
1563 sdl->sdl_alen = ifp->if_addrlen;
1564 bcopy(lladdr, LLADDR(sdl), ifp->if_addrlen);
1565 }
1566
1567 if (!is_newentry) {
1568 if ((!olladdr && lladdr) /* (3) */
1569 || (olladdr && lladdr && llchange)) { /* (5) */
1570 do_update = 1;
1571 newstate = ND6_LLINFO_STALE;
1572 } else /* (1-2,4) */
1573 do_update = 0;
1574 } else {
1575 do_update = 1;
1576 if (!lladdr) /* (6) */
1577 newstate = ND6_LLINFO_NOSTATE;
1578 else /* (7) */
1579 newstate = ND6_LLINFO_STALE;
1580 }
1581
1582 if (do_update) {
1583 /*
1584 * Update the state of the neighbor cache.
1585 */
1586 ln->ln_state = newstate;
1587
1588 if (ln->ln_state == ND6_LLINFO_STALE) {
1589 /*
1590 * XXX: since nd6_output() below will cause
1591 * state tansition to DELAY and reset the timer,
1592 * we must set the timer now, although it is actually
1593 * meaningless.
1594 */
1595 ln->ln_expire = time_second + nd6_gctimer;
1596
1597 if (ln->ln_hold) {
1598 /*
1599 * we assume ifp is not a p2p here, so just
1600 * set the 2nd argument as the 1st one.
1601 */
1602 nd6_output(ifp, ifp, ln->ln_hold,
1603 (struct sockaddr_in6 *)rt_key(rt),
1604 rt);
1605 ln->ln_hold = NULL;
1606 }
1607 } else if (ln->ln_state == ND6_LLINFO_INCOMPLETE) {
1608 /* probe right away */
1609 ln->ln_expire = time_second;
1610 }
1611 }
1612
1613 /*
1614 * ICMP6 type dependent behavior.
1615 *
1616 * NS: clear IsRouter if new entry
1617 * RS: clear IsRouter
1618 * RA: set IsRouter if there's lladdr
1619 * redir: clear IsRouter if new entry
1620 *
1621 * RA case, (1):
1622 * The spec says that we must set IsRouter in the following cases:
1623 * - If lladdr exist, set IsRouter. This means (1-5).
1624 * - If it is old entry (!newentry), set IsRouter. This means (7).
1625 * So, based on the spec, in (1-5) and (7) cases we must set IsRouter.
1626 * A quetion arises for (1) case. (1) case has no lladdr in the
1627 * neighbor cache, this is similar to (6).
1628 * This case is rare but we figured that we MUST NOT set IsRouter.
1629 *
1630 * newentry olladdr lladdr llchange NS RS RA redir
1631 * D R
1632 * 0 n n -- (1) c ? s
1633 * 0 y n -- (2) c s s
1634 * 0 n y -- (3) c s s
1635 * 0 y y n (4) c s s
1636 * 0 y y y (5) c s s
1637 * 1 -- n -- (6) c c c s
1638 * 1 -- y -- (7) c c s c s
1639 *
1640 * (c=clear s=set)
1641 */
1642 switch (type & 0xff) {
1643 case ND_NEIGHBOR_SOLICIT:
1644 /*
1645 * New entry must have is_router flag cleared.
1646 */
1647 if (is_newentry) /* (6-7) */
1648 ln->ln_router = 0;
1649 break;
1650 case ND_REDIRECT:
1651 /*
1652 * If the icmp is a redirect to a better router, always set the
1653 * is_router flag. Otherwise, if the entry is newly created,
1654 * clear the flag. [RFC 2461, sec 8.3]
1655 */
1656 if (code == ND_REDIRECT_ROUTER)
1657 ln->ln_router = 1;
1658 else if (is_newentry) /* (6-7) */
1659 ln->ln_router = 0;
1660 break;
1661 case ND_ROUTER_SOLICIT:
1662 /*
1663 * is_router flag must always be cleared.
1664 */
1665 ln->ln_router = 0;
1666 break;
1667 case ND_ROUTER_ADVERT:
1668 /*
1669 * Mark an entry with lladdr as a router.
1670 */
1671 if ((!is_newentry && (olladdr || lladdr)) /* (2-5) */
1672 || (is_newentry && lladdr)) { /* (7) */
1673 ln->ln_router = 1;
1674 }
1675 break;
1676 }
1677
1678 /*
1679 * When the link-layer address of a router changes, select the
1680 * best router again. In particular, when the neighbor entry is newly
1681 * created, it might affect the selection policy.
1682 * Question: can we restrict the first condition to the "is_newentry"
1683 * case?
1684 * XXX: when we hear an RA from a new router with the link-layer
1685 * address option, defrouter_select() is called twice, since
1686 * defrtrlist_update called the function as well. However, I believe
1687 * we can compromise the overhead, since it only happens the first
1688 * time.
1689 * XXX: although defrouter_select() should not have a bad effect
1690 * for those are not autoconfigured hosts, we explicitly avoid such
1691 * cases for safety.
1692 */
1693 if (do_update && ln->ln_router && !ip6_forwarding && ip6_accept_rtadv)
1694 defrouter_select();
1695
1696 return rt;
1697 }
1698
1699 static void
1700 nd6_slowtimo(ignored_arg)
1701 void *ignored_arg;
1702 {
1703 int s = splsoftnet();
1704 struct nd_ifinfo *nd6if;
1705 struct ifnet *ifp;
1706
1707 callout_reset(&nd6_slowtimo_ch, ND6_SLOWTIMER_INTERVAL * hz,
1708 nd6_slowtimo, NULL);
1709 for (ifp = TAILQ_FIRST(&ifnet); ifp; ifp = TAILQ_NEXT(ifp, if_list))
1710 {
1711 nd6if = ND_IFINFO(ifp);
1712 if (nd6if->basereachable && /* already initialized */
1713 (nd6if->recalctm -= ND6_SLOWTIMER_INTERVAL) <= 0) {
1714 /*
1715 * Since reachable time rarely changes by router
1716 * advertisements, we SHOULD insure that a new random
1717 * value gets recomputed at least once every few hours.
1718 * (RFC 2461, 6.3.4)
1719 */
1720 nd6if->recalctm = nd6_recalc_reachtm_interval;
1721 nd6if->reachable = ND_COMPUTE_RTIME(nd6if->basereachable);
1722 }
1723 }
1724 splx(s);
1725 }
1726
1727 #define senderr(e) { error = (e); goto bad;}
1728 int
1729 nd6_output(ifp, origifp, m0, dst, rt0)
1730 struct ifnet *ifp;
1731 struct ifnet *origifp;
1732 struct mbuf *m0;
1733 struct sockaddr_in6 *dst;
1734 struct rtentry *rt0;
1735 {
1736 struct mbuf *m = m0;
1737 struct rtentry *rt = rt0;
1738 struct sockaddr_in6 *gw6 = NULL;
1739 struct llinfo_nd6 *ln = NULL;
1740 int error = 0;
1741 long time_second = time.tv_sec;
1742
1743 if (IN6_IS_ADDR_MULTICAST(&dst->sin6_addr))
1744 goto sendpkt;
1745
1746 if (nd6_need_cache(ifp) == 0)
1747 goto sendpkt;
1748
1749 /*
1750 * next hop determination. This routine is derived from ether_outpout.
1751 */
1752 if (rt) {
1753 if ((rt->rt_flags & RTF_UP) == 0) {
1754 if ((rt0 = rt = rtalloc1((struct sockaddr *)dst, 1)) !=
1755 NULL)
1756 {
1757 rt->rt_refcnt--;
1758 if (rt->rt_ifp != ifp) {
1759 /* XXX: loop care? */
1760 return nd6_output(ifp, origifp, m0,
1761 dst, rt);
1762 }
1763 } else
1764 senderr(EHOSTUNREACH);
1765 }
1766
1767 if (rt->rt_flags & RTF_GATEWAY) {
1768 gw6 = (struct sockaddr_in6 *)rt->rt_gateway;
1769
1770 /*
1771 * We skip link-layer address resolution and NUD
1772 * if the gateway is not a neighbor from ND point
1773 * of view, regardless the value of nd_ifinfo.flags.
1774 * The second condition is a bit tricky; we skip
1775 * if the gateway is our own address, which is
1776 * sometimes used to install a route to a p2p link.
1777 */
1778 if (!nd6_is_addr_neighbor(gw6, ifp) ||
1779 in6ifa_ifpwithaddr(ifp, &gw6->sin6_addr)) {
1780 /*
1781 * We allow this kind of tricky route only
1782 * when the outgoing interface is p2p.
1783 * XXX: we may need a more generic rule here.
1784 */
1785 if ((ifp->if_flags & IFF_POINTOPOINT) == 0)
1786 senderr(EHOSTUNREACH);
1787
1788 goto sendpkt;
1789 }
1790
1791 if (rt->rt_gwroute == 0)
1792 goto lookup;
1793 if (((rt = rt->rt_gwroute)->rt_flags & RTF_UP) == 0) {
1794 rtfree(rt); rt = rt0;
1795 lookup:
1796 rt->rt_gwroute = rtalloc1(rt->rt_gateway, 1);
1797 if ((rt = rt->rt_gwroute) == 0)
1798 senderr(EHOSTUNREACH);
1799 /* the "G" test below also prevents rt == rt0 */
1800 if ((rt->rt_flags & RTF_GATEWAY) ||
1801 (rt->rt_ifp != ifp)) {
1802 rt->rt_refcnt--;
1803 rt0->rt_gwroute = 0;
1804 senderr(EHOSTUNREACH);
1805 }
1806 }
1807 }
1808 }
1809
1810 /*
1811 * Address resolution or Neighbor Unreachability Detection
1812 * for the next hop.
1813 * At this point, the destination of the packet must be a unicast
1814 * or an anycast address(i.e. not a multicast).
1815 */
1816
1817 /* Look up the neighbor cache for the nexthop */
1818 if (rt && (rt->rt_flags & RTF_LLINFO) != 0)
1819 ln = (struct llinfo_nd6 *)rt->rt_llinfo;
1820 else {
1821 /*
1822 * Since nd6_is_addr_neighbor() internally calls nd6_lookup(),
1823 * the condition below is not very efficient. But we believe
1824 * it is tolerable, because this should be a rare case.
1825 */
1826 if (nd6_is_addr_neighbor(dst, ifp) &&
1827 (rt = nd6_lookup(&dst->sin6_addr, 1, ifp)) != NULL)
1828 ln = (struct llinfo_nd6 *)rt->rt_llinfo;
1829 }
1830 if (!ln || !rt) {
1831 if ((ifp->if_flags & IFF_POINTOPOINT) == 0 &&
1832 !(ND_IFINFO(ifp)->flags & ND6_IFF_PERFORMNUD)) {
1833 log(LOG_DEBUG,
1834 "nd6_output: can't allocate llinfo for %s "
1835 "(ln=%p, rt=%p)\n",
1836 ip6_sprintf(&dst->sin6_addr), ln, rt);
1837 senderr(EIO); /* XXX: good error? */
1838 }
1839
1840 goto sendpkt; /* send anyway */
1841 }
1842
1843 /* We don't have to do link-layer address resolution on a p2p link. */
1844 if ((ifp->if_flags & IFF_POINTOPOINT) != 0 &&
1845 ln->ln_state < ND6_LLINFO_REACHABLE) {
1846 ln->ln_state = ND6_LLINFO_STALE;
1847 ln->ln_expire = time_second + nd6_gctimer;
1848 }
1849
1850 /*
1851 * The first time we send a packet to a neighbor whose entry is
1852 * STALE, we have to change the state to DELAY and a sets a timer to
1853 * expire in DELAY_FIRST_PROBE_TIME seconds to ensure do
1854 * neighbor unreachability detection on expiration.
1855 * (RFC 2461 7.3.3)
1856 */
1857 if (ln->ln_state == ND6_LLINFO_STALE) {
1858 ln->ln_asked = 0;
1859 ln->ln_state = ND6_LLINFO_DELAY;
1860 ln->ln_expire = time_second + nd6_delay;
1861 }
1862
1863 /*
1864 * If the neighbor cache entry has a state other than INCOMPLETE
1865 * (i.e. its link-layer address is already resolved), just
1866 * send the packet.
1867 */
1868 if (ln->ln_state > ND6_LLINFO_INCOMPLETE)
1869 goto sendpkt;
1870
1871 /*
1872 * There is a neighbor cache entry, but no ethernet address
1873 * response yet. Replace the held mbuf (if any) with this
1874 * latest one.
1875 * This code conforms to the rate-limiting rule described in Section
1876 * 7.2.2 of RFC 2461, because the timer is set correctly after sending
1877 * an NS below.
1878 */
1879 if (ln->ln_state == ND6_LLINFO_NOSTATE)
1880 ln->ln_state = ND6_LLINFO_INCOMPLETE;
1881 if (ln->ln_hold)
1882 m_freem(ln->ln_hold);
1883 ln->ln_hold = m;
1884 if (ln->ln_expire) {
1885 if (ln->ln_asked < nd6_mmaxtries &&
1886 ln->ln_expire < time_second) {
1887 ln->ln_asked++;
1888 ln->ln_expire = time_second +
1889 ND6_RETRANS_SEC(ND_IFINFO(ifp)->retrans);
1890 nd6_ns_output(ifp, NULL, &dst->sin6_addr, ln, 0);
1891 }
1892 }
1893 return(0);
1894
1895 sendpkt:
1896
1897 if ((ifp->if_flags & IFF_LOOPBACK) != 0) {
1898 return((*ifp->if_output)(origifp, m, (struct sockaddr *)dst,
1899 rt));
1900 }
1901 return((*ifp->if_output)(ifp, m, (struct sockaddr *)dst, rt));
1902
1903 bad:
1904 if (m)
1905 m_freem(m);
1906 return (error);
1907 }
1908 #undef senderr
1909
1910 int
1911 nd6_need_cache(ifp)
1912 struct ifnet *ifp;
1913 {
1914 /*
1915 * XXX: we currently do not make neighbor cache on any interface
1916 * other than ARCnet, Ethernet, FDDI and GIF.
1917 *
1918 * RFC2893 says:
1919 * - unidirectional tunnels needs no ND
1920 */
1921 switch (ifp->if_type) {
1922 case IFT_ARCNET:
1923 case IFT_ETHER:
1924 case IFT_FDDI:
1925 case IFT_IEEE1394:
1926 case IFT_GIF: /* XXX need more cases? */
1927 return(1);
1928 default:
1929 return(0);
1930 }
1931 }
1932
1933 int
1934 nd6_storelladdr(ifp, rt, m, dst, desten)
1935 struct ifnet *ifp;
1936 struct rtentry *rt;
1937 struct mbuf *m;
1938 struct sockaddr *dst;
1939 u_char *desten;
1940 {
1941 struct sockaddr_dl *sdl;
1942
1943 if (m->m_flags & M_MCAST) {
1944 switch (ifp->if_type) {
1945 case IFT_ETHER:
1946 case IFT_FDDI:
1947 ETHER_MAP_IPV6_MULTICAST(&SIN6(dst)->sin6_addr,
1948 desten);
1949 return(1);
1950 case IFT_IEEE1394:
1951 bcopy(ifp->if_broadcastaddr, desten, ifp->if_addrlen);
1952 return(1);
1953 case IFT_ARCNET:
1954 *desten = 0;
1955 return(1);
1956 default:
1957 m_freem(m);
1958 return(0);
1959 }
1960 }
1961
1962 if (rt == NULL) {
1963 /* this could happen, if we could not allocate memory */
1964 m_freem(m);
1965 return(0);
1966 }
1967 if (rt->rt_gateway->sa_family != AF_LINK) {
1968 printf("nd6_storelladdr: something odd happens\n");
1969 m_freem(m);
1970 return(0);
1971 }
1972 sdl = SDL(rt->rt_gateway);
1973 if (sdl->sdl_alen == 0) {
1974 /* this should be impossible, but we bark here for debugging */
1975 printf("nd6_storelladdr: sdl_alen == 0, dst=%s, if=%s\n",
1976 ip6_sprintf(&SIN6(dst)->sin6_addr), if_name(ifp));
1977 m_freem(m);
1978 return(0);
1979 }
1980
1981 bcopy(LLADDR(sdl), desten, sdl->sdl_alen);
1982 return(1);
1983 }
1984