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nd6.c revision 1.138
      1 /*	$NetBSD: nd6.c,v 1.138 2011/11/19 22:51:29 tls Exp $	*/
      2 /*	$KAME: nd6.c,v 1.279 2002/06/08 11:16:51 itojun 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 1.138 2011/11/19 22:51:29 tls Exp $");
     35 
     36 #include "opt_ipsec.h"
     37 
     38 #include <sys/param.h>
     39 #include <sys/systm.h>
     40 #include <sys/callout.h>
     41 #include <sys/malloc.h>
     42 #include <sys/mbuf.h>
     43 #include <sys/socket.h>
     44 #include <sys/socketvar.h>
     45 #include <sys/sockio.h>
     46 #include <sys/time.h>
     47 #include <sys/kernel.h>
     48 #include <sys/protosw.h>
     49 #include <sys/errno.h>
     50 #include <sys/ioctl.h>
     51 #include <sys/syslog.h>
     52 #include <sys/queue.h>
     53 #include <sys/cprng.h>
     54 
     55 #include <net/if.h>
     56 #include <net/if_dl.h>
     57 #include <net/if_types.h>
     58 #include <net/route.h>
     59 #include <net/if_ether.h>
     60 #include <net/if_fddi.h>
     61 #include <net/if_arc.h>
     62 
     63 #include <netinet/in.h>
     64 #include <netinet6/in6_var.h>
     65 #include <netinet/ip6.h>
     66 #include <netinet6/ip6_var.h>
     67 #include <netinet6/scope6_var.h>
     68 #include <netinet6/nd6.h>
     69 #include <netinet/icmp6.h>
     70 #include <netinet6/icmp6_private.h>
     71 
     72 #ifdef IPSEC
     73 #include <netinet6/ipsec.h>
     74 #endif
     75 
     76 #include <net/net_osdep.h>
     77 
     78 #define ND6_SLOWTIMER_INTERVAL (60 * 60) /* 1 hour */
     79 #define ND6_RECALC_REACHTM_INTERVAL (60 * 120) /* 2 hours */
     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 int nd6_maxqueuelen = 1; /* max # of packets cached in unresolved ND entries */
     95 
     96 #ifdef ND6_DEBUG
     97 int nd6_debug = 1;
     98 #else
     99 int nd6_debug = 0;
    100 #endif
    101 
    102 /* for debugging? */
    103 static int nd6_inuse, nd6_allocated;
    104 
    105 struct llinfo_nd6 llinfo_nd6 = {
    106 	.ln_prev = &llinfo_nd6,
    107 	.ln_next = &llinfo_nd6,
    108 };
    109 struct nd_drhead nd_defrouter;
    110 struct nd_prhead nd_prefix = { 0 };
    111 
    112 int nd6_recalc_reachtm_interval = ND6_RECALC_REACHTM_INTERVAL;
    113 static const struct sockaddr_in6 all1_sa = {
    114 	  .sin6_family = AF_INET6
    115 	, .sin6_len = sizeof(struct sockaddr_in6)
    116 	, .sin6_addr = {.s6_addr = {0xff, 0xff, 0xff, 0xff,
    117 				    0xff, 0xff, 0xff, 0xff,
    118 				    0xff, 0xff, 0xff, 0xff,
    119 				    0xff, 0xff, 0xff, 0xff}}
    120 };
    121 
    122 static void nd6_setmtu0(struct ifnet *, struct nd_ifinfo *);
    123 static void nd6_slowtimo(void *);
    124 static int regen_tmpaddr(struct in6_ifaddr *);
    125 static struct llinfo_nd6 *nd6_free(struct rtentry *, int);
    126 static void nd6_llinfo_timer(void *);
    127 static void clear_llinfo_pqueue(struct llinfo_nd6 *);
    128 
    129 callout_t nd6_slowtimo_ch;
    130 callout_t nd6_timer_ch;
    131 extern callout_t in6_tmpaddrtimer_ch;
    132 
    133 static int fill_drlist(void *, size_t *, size_t);
    134 static int fill_prlist(void *, size_t *, size_t);
    135 
    136 MALLOC_DEFINE(M_IP6NDP, "NDP", "IPv6 Neighbour Discovery");
    137 
    138 void
    139 nd6_init(void)
    140 {
    141 	static int nd6_init_done = 0;
    142 
    143 	if (nd6_init_done) {
    144 		log(LOG_NOTICE, "nd6_init called more than once(ignored)\n");
    145 		return;
    146 	}
    147 
    148 	/* initialization of the default router list */
    149 	TAILQ_INIT(&nd_defrouter);
    150 
    151 	nd6_init_done = 1;
    152 
    153 	callout_init(&nd6_slowtimo_ch, CALLOUT_MPSAFE);
    154 	callout_init(&nd6_timer_ch, CALLOUT_MPSAFE);
    155 
    156 	/* start timer */
    157 	callout_reset(&nd6_slowtimo_ch, ND6_SLOWTIMER_INTERVAL * hz,
    158 	    nd6_slowtimo, NULL);
    159 }
    160 
    161 struct nd_ifinfo *
    162 nd6_ifattach(struct ifnet *ifp)
    163 {
    164 	struct nd_ifinfo *nd;
    165 
    166 	nd = (struct nd_ifinfo *)malloc(sizeof(*nd), M_IP6NDP, M_WAITOK);
    167 	memset(nd, 0, sizeof(*nd));
    168 
    169 	nd->initialized = 1;
    170 
    171 	nd->chlim = IPV6_DEFHLIM;
    172 	nd->basereachable = REACHABLE_TIME;
    173 	nd->reachable = ND_COMPUTE_RTIME(nd->basereachable);
    174 	nd->retrans = RETRANS_TIMER;
    175 	/*
    176 	 * Note that the default value of ip6_accept_rtadv is 0.
    177 	 * Because we do not set ND6_IFF_OVERRIDE_RTADV here, we won't
    178 	 * accept RAs by default.
    179 	 */
    180 	nd->flags = ND6_IFF_PERFORMNUD | ND6_IFF_ACCEPT_RTADV;
    181 
    182 	/* XXX: we cannot call nd6_setmtu since ifp is not fully initialized */
    183 	nd6_setmtu0(ifp, nd);
    184 
    185 	return nd;
    186 }
    187 
    188 void
    189 nd6_ifdetach(struct nd_ifinfo *nd)
    190 {
    191 
    192 	free(nd, M_IP6NDP);
    193 }
    194 
    195 void
    196 nd6_setmtu(struct ifnet *ifp)
    197 {
    198 	nd6_setmtu0(ifp, ND_IFINFO(ifp));
    199 }
    200 
    201 void
    202 nd6_setmtu0(struct ifnet *ifp, struct nd_ifinfo *ndi)
    203 {
    204 	u_int32_t omaxmtu;
    205 
    206 	omaxmtu = ndi->maxmtu;
    207 
    208 	switch (ifp->if_type) {
    209 	case IFT_ARCNET:
    210 		ndi->maxmtu = MIN(ARC_PHDS_MAXMTU, ifp->if_mtu); /* RFC2497 */
    211 		break;
    212 	case IFT_FDDI:
    213 		ndi->maxmtu = MIN(FDDIIPMTU, ifp->if_mtu);
    214 		break;
    215 	default:
    216 		ndi->maxmtu = ifp->if_mtu;
    217 		break;
    218 	}
    219 
    220 	/*
    221 	 * Decreasing the interface MTU under IPV6 minimum MTU may cause
    222 	 * undesirable situation.  We thus notify the operator of the change
    223 	 * explicitly.  The check for omaxmtu is necessary to restrict the
    224 	 * log to the case of changing the MTU, not initializing it.
    225 	 */
    226 	if (omaxmtu >= IPV6_MMTU && ndi->maxmtu < IPV6_MMTU) {
    227 		log(LOG_NOTICE, "nd6_setmtu0: new link MTU on %s (%lu) is too"
    228 		    " small for IPv6 which needs %lu\n",
    229 		    if_name(ifp), (unsigned long)ndi->maxmtu, (unsigned long)
    230 		    IPV6_MMTU);
    231 	}
    232 
    233 	if (ndi->maxmtu > in6_maxmtu)
    234 		in6_setmaxmtu(); /* check all interfaces just in case */
    235 }
    236 
    237 void
    238 nd6_option_init(void *opt, int icmp6len, union nd_opts *ndopts)
    239 {
    240 
    241 	memset(ndopts, 0, sizeof(*ndopts));
    242 	ndopts->nd_opts_search = (struct nd_opt_hdr *)opt;
    243 	ndopts->nd_opts_last
    244 		= (struct nd_opt_hdr *)(((u_char *)opt) + icmp6len);
    245 
    246 	if (icmp6len == 0) {
    247 		ndopts->nd_opts_done = 1;
    248 		ndopts->nd_opts_search = NULL;
    249 	}
    250 }
    251 
    252 /*
    253  * Take one ND option.
    254  */
    255 struct nd_opt_hdr *
    256 nd6_option(union nd_opts *ndopts)
    257 {
    258 	struct nd_opt_hdr *nd_opt;
    259 	int olen;
    260 
    261 	if (ndopts == NULL)
    262 		panic("ndopts == NULL in nd6_option");
    263 	if (ndopts->nd_opts_last == NULL)
    264 		panic("uninitialized ndopts in nd6_option");
    265 	if (ndopts->nd_opts_search == NULL)
    266 		return NULL;
    267 	if (ndopts->nd_opts_done)
    268 		return NULL;
    269 
    270 	nd_opt = ndopts->nd_opts_search;
    271 
    272 	/* make sure nd_opt_len is inside the buffer */
    273 	if ((void *)&nd_opt->nd_opt_len >= (void *)ndopts->nd_opts_last) {
    274 		memset(ndopts, 0, sizeof(*ndopts));
    275 		return NULL;
    276 	}
    277 
    278 	olen = nd_opt->nd_opt_len << 3;
    279 	if (olen == 0) {
    280 		/*
    281 		 * Message validation requires that all included
    282 		 * options have a length that is greater than zero.
    283 		 */
    284 		memset(ndopts, 0, sizeof(*ndopts));
    285 		return NULL;
    286 	}
    287 
    288 	ndopts->nd_opts_search = (struct nd_opt_hdr *)((char *)nd_opt + olen);
    289 	if (ndopts->nd_opts_search > ndopts->nd_opts_last) {
    290 		/* option overruns the end of buffer, invalid */
    291 		memset(ndopts, 0, sizeof(*ndopts));
    292 		return NULL;
    293 	} else if (ndopts->nd_opts_search == ndopts->nd_opts_last) {
    294 		/* reached the end of options chain */
    295 		ndopts->nd_opts_done = 1;
    296 		ndopts->nd_opts_search = NULL;
    297 	}
    298 	return nd_opt;
    299 }
    300 
    301 /*
    302  * Parse multiple ND options.
    303  * This function is much easier to use, for ND routines that do not need
    304  * multiple options of the same type.
    305  */
    306 int
    307 nd6_options(union nd_opts *ndopts)
    308 {
    309 	struct nd_opt_hdr *nd_opt;
    310 	int i = 0;
    311 
    312 	if (ndopts == NULL)
    313 		panic("ndopts == NULL in nd6_options");
    314 	if (ndopts->nd_opts_last == NULL)
    315 		panic("uninitialized ndopts in nd6_options");
    316 	if (ndopts->nd_opts_search == NULL)
    317 		return 0;
    318 
    319 	while (1) {
    320 		nd_opt = nd6_option(ndopts);
    321 		if (nd_opt == NULL && ndopts->nd_opts_last == NULL) {
    322 			/*
    323 			 * Message validation requires that all included
    324 			 * options have a length that is greater than zero.
    325 			 */
    326 			ICMP6_STATINC(ICMP6_STAT_ND_BADOPT);
    327 			memset(ndopts, 0, sizeof(*ndopts));
    328 			return -1;
    329 		}
    330 
    331 		if (nd_opt == NULL)
    332 			goto skip1;
    333 
    334 		switch (nd_opt->nd_opt_type) {
    335 		case ND_OPT_SOURCE_LINKADDR:
    336 		case ND_OPT_TARGET_LINKADDR:
    337 		case ND_OPT_MTU:
    338 		case ND_OPT_REDIRECTED_HEADER:
    339 			if (ndopts->nd_opt_array[nd_opt->nd_opt_type]) {
    340 				nd6log((LOG_INFO,
    341 				    "duplicated ND6 option found (type=%d)\n",
    342 				    nd_opt->nd_opt_type));
    343 				/* XXX bark? */
    344 			} else {
    345 				ndopts->nd_opt_array[nd_opt->nd_opt_type]
    346 					= nd_opt;
    347 			}
    348 			break;
    349 		case ND_OPT_PREFIX_INFORMATION:
    350 			if (ndopts->nd_opt_array[nd_opt->nd_opt_type] == 0) {
    351 				ndopts->nd_opt_array[nd_opt->nd_opt_type]
    352 					= nd_opt;
    353 			}
    354 			ndopts->nd_opts_pi_end =
    355 				(struct nd_opt_prefix_info *)nd_opt;
    356 			break;
    357 		default:
    358 			/*
    359 			 * Unknown options must be silently ignored,
    360 			 * to accommodate future extension to the protocol.
    361 			 */
    362 			nd6log((LOG_DEBUG,
    363 			    "nd6_options: unsupported option %d - "
    364 			    "option ignored\n", nd_opt->nd_opt_type));
    365 		}
    366 
    367 skip1:
    368 		i++;
    369 		if (i > nd6_maxndopt) {
    370 			ICMP6_STATINC(ICMP6_STAT_ND_TOOMANYOPT);
    371 			nd6log((LOG_INFO, "too many loop in nd opt\n"));
    372 			break;
    373 		}
    374 
    375 		if (ndopts->nd_opts_done)
    376 			break;
    377 	}
    378 
    379 	return 0;
    380 }
    381 
    382 /*
    383  * ND6 timer routine to handle ND6 entries
    384  */
    385 void
    386 nd6_llinfo_settimer(struct llinfo_nd6 *ln, long xtick)
    387 {
    388 	int s;
    389 
    390 	s = splsoftnet();
    391 
    392 	if (xtick < 0) {
    393 		ln->ln_expire = 0;
    394 		ln->ln_ntick = 0;
    395 		callout_stop(&ln->ln_timer_ch);
    396 	} else {
    397 		ln->ln_expire = time_second + xtick / hz;
    398 		if (xtick > INT_MAX) {
    399 			ln->ln_ntick = xtick - INT_MAX;
    400 			callout_reset(&ln->ln_timer_ch, INT_MAX,
    401 			    nd6_llinfo_timer, ln);
    402 		} else {
    403 			ln->ln_ntick = 0;
    404 			callout_reset(&ln->ln_timer_ch, xtick,
    405 			    nd6_llinfo_timer, ln);
    406 		}
    407 	}
    408 
    409 	splx(s);
    410 }
    411 
    412 static void
    413 nd6_llinfo_timer(void *arg)
    414 {
    415 	struct llinfo_nd6 *ln;
    416 	struct rtentry *rt;
    417 	const struct sockaddr_in6 *dst;
    418 	struct ifnet *ifp;
    419 	struct nd_ifinfo *ndi = NULL;
    420 
    421 	mutex_enter(softnet_lock);
    422 	KERNEL_LOCK(1, NULL);
    423 
    424 	ln = (struct llinfo_nd6 *)arg;
    425 
    426 	if (ln->ln_ntick > 0) {
    427 		nd6_llinfo_settimer(ln, ln->ln_ntick);
    428 		KERNEL_UNLOCK_ONE(NULL);
    429 		mutex_exit(softnet_lock);
    430 		return;
    431 	}
    432 
    433 	if ((rt = ln->ln_rt) == NULL)
    434 		panic("ln->ln_rt == NULL");
    435 	if ((ifp = rt->rt_ifp) == NULL)
    436 		panic("ln->ln_rt->rt_ifp == NULL");
    437 	ndi = ND_IFINFO(ifp);
    438 	dst = satocsin6(rt_getkey(rt));
    439 
    440 	/* sanity check */
    441 	if (rt->rt_llinfo && (struct llinfo_nd6 *)rt->rt_llinfo != ln)
    442 		panic("rt_llinfo(%p) is not equal to ln(%p)",
    443 		      rt->rt_llinfo, ln);
    444 	if (!dst)
    445 		panic("dst=0 in nd6_timer(ln=%p)", ln);
    446 
    447 	switch (ln->ln_state) {
    448 	case ND6_LLINFO_INCOMPLETE:
    449 		if (ln->ln_asked < nd6_mmaxtries) {
    450 			ln->ln_asked++;
    451 			nd6_llinfo_settimer(ln, (long)ndi->retrans * hz / 1000);
    452 			nd6_ns_output(ifp, NULL, &dst->sin6_addr, ln, 0);
    453 		} else {
    454 			struct mbuf *m = ln->ln_hold;
    455 			if (m) {
    456 				struct mbuf *m0;
    457 
    458 				/*
    459 				 * assuming every packet in ln_hold has
    460 				 * the same IP header
    461 				 */
    462 				m0 = m->m_nextpkt;
    463 				m->m_nextpkt = NULL;
    464 				icmp6_error2(m, ICMP6_DST_UNREACH,
    465 				    ICMP6_DST_UNREACH_ADDR, 0, rt->rt_ifp);
    466 
    467 				ln->ln_hold = m0;
    468 				clear_llinfo_pqueue(ln);
    469  			}
    470 			(void)nd6_free(rt, 0);
    471 			ln = NULL;
    472 		}
    473 		break;
    474 	case ND6_LLINFO_REACHABLE:
    475 		if (!ND6_LLINFO_PERMANENT(ln)) {
    476 			ln->ln_state = ND6_LLINFO_STALE;
    477 			nd6_llinfo_settimer(ln, (long)nd6_gctimer * hz);
    478 		}
    479 		break;
    480 
    481 	case ND6_LLINFO_STALE:
    482 		/* Garbage Collection(RFC 2461 5.3) */
    483 		if (!ND6_LLINFO_PERMANENT(ln)) {
    484 			(void)nd6_free(rt, 1);
    485 			ln = NULL;
    486 		}
    487 		break;
    488 
    489 	case ND6_LLINFO_DELAY:
    490 		if (ndi && (ndi->flags & ND6_IFF_PERFORMNUD) != 0) {
    491 			/* We need NUD */
    492 			ln->ln_asked = 1;
    493 			ln->ln_state = ND6_LLINFO_PROBE;
    494 			nd6_llinfo_settimer(ln, (long)ndi->retrans * hz / 1000);
    495 			nd6_ns_output(ifp, &dst->sin6_addr,
    496 			    &dst->sin6_addr, ln, 0);
    497 		} else {
    498 			ln->ln_state = ND6_LLINFO_STALE; /* XXX */
    499 			nd6_llinfo_settimer(ln, (long)nd6_gctimer * hz);
    500 		}
    501 		break;
    502 	case ND6_LLINFO_PROBE:
    503 		if (ln->ln_asked < nd6_umaxtries) {
    504 			ln->ln_asked++;
    505 			nd6_llinfo_settimer(ln, (long)ndi->retrans * hz / 1000);
    506 			nd6_ns_output(ifp, &dst->sin6_addr,
    507 			    &dst->sin6_addr, ln, 0);
    508 		} else {
    509 			(void)nd6_free(rt, 0);
    510 			ln = NULL;
    511 		}
    512 		break;
    513 	}
    514 
    515 	KERNEL_UNLOCK_ONE(NULL);
    516 	mutex_exit(softnet_lock);
    517 }
    518 
    519 /*
    520  * ND6 timer routine to expire default route list and prefix list
    521  */
    522 void
    523 nd6_timer(void *ignored_arg)
    524 {
    525 	struct nd_defrouter *next_dr, *dr;
    526 	struct nd_prefix *next_pr, *pr;
    527 	struct in6_ifaddr *ia6, *nia6;
    528 
    529 	callout_reset(&nd6_timer_ch, nd6_prune * hz,
    530 	    nd6_timer, NULL);
    531 
    532 	mutex_enter(softnet_lock);
    533 	KERNEL_LOCK(1, NULL);
    534 
    535 	/* expire default router list */
    536 
    537 	for (dr = TAILQ_FIRST(&nd_defrouter); dr != NULL; dr = next_dr) {
    538 		next_dr = TAILQ_NEXT(dr, dr_entry);
    539 		if (dr->expire && dr->expire < time_second) {
    540 			defrtrlist_del(dr);
    541 		}
    542 	}
    543 
    544 	/*
    545 	 * expire interface addresses.
    546 	 * in the past the loop was inside prefix expiry processing.
    547 	 * However, from a stricter speci-confrmance standpoint, we should
    548 	 * rather separate address lifetimes and prefix lifetimes.
    549 	 */
    550   addrloop:
    551 	for (ia6 = in6_ifaddr; ia6; ia6 = nia6) {
    552 		nia6 = ia6->ia_next;
    553 		/* check address lifetime */
    554 		if (IFA6_IS_INVALID(ia6)) {
    555 			int regen = 0;
    556 
    557 			/*
    558 			 * If the expiring address is temporary, try
    559 			 * regenerating a new one.  This would be useful when
    560 			 * we suspended a laptop PC, then turned it on after a
    561 			 * period that could invalidate all temporary
    562 			 * addresses.  Although we may have to restart the
    563 			 * loop (see below), it must be after purging the
    564 			 * address.  Otherwise, we'd see an infinite loop of
    565 			 * regeneration.
    566 			 */
    567 			if (ip6_use_tempaddr &&
    568 			    (ia6->ia6_flags & IN6_IFF_TEMPORARY) != 0) {
    569 				if (regen_tmpaddr(ia6) == 0)
    570 					regen = 1;
    571 			}
    572 
    573  			in6_purgeaddr(&ia6->ia_ifa);
    574 
    575 			if (regen)
    576 				goto addrloop; /* XXX: see below */
    577 		} else if (IFA6_IS_DEPRECATED(ia6)) {
    578 			int oldflags = ia6->ia6_flags;
    579 
    580  			ia6->ia6_flags |= IN6_IFF_DEPRECATED;
    581 
    582 			/*
    583 			 * If a temporary address has just become deprecated,
    584 			 * regenerate a new one if possible.
    585 			 */
    586 			if (ip6_use_tempaddr &&
    587 			    (ia6->ia6_flags & IN6_IFF_TEMPORARY) != 0 &&
    588 			    (oldflags & IN6_IFF_DEPRECATED) == 0) {
    589 
    590 				if (regen_tmpaddr(ia6) == 0) {
    591 					/*
    592 					 * A new temporary address is
    593 					 * generated.
    594 					 * XXX: this means the address chain
    595 					 * has changed while we are still in
    596 					 * the loop.  Although the change
    597 					 * would not cause disaster (because
    598 					 * it's not a deletion, but an
    599 					 * addition,) we'd rather restart the
    600 					 * loop just for safety.  Or does this
    601 					 * significantly reduce performance??
    602 					 */
    603 					goto addrloop;
    604 				}
    605 			}
    606 		} else {
    607 			/*
    608 			 * A new RA might have made a deprecated address
    609 			 * preferred.
    610 			 */
    611 			ia6->ia6_flags &= ~IN6_IFF_DEPRECATED;
    612 		}
    613 	}
    614 
    615 	/* expire prefix list */
    616 	for (pr = LIST_FIRST(&nd_prefix); pr != NULL; pr = next_pr) {
    617 		next_pr = LIST_NEXT(pr, ndpr_entry);
    618 		/*
    619 		 * check prefix lifetime.
    620 		 * since pltime is just for autoconf, pltime processing for
    621 		 * prefix is not necessary.
    622 		 */
    623 		if (pr->ndpr_vltime != ND6_INFINITE_LIFETIME &&
    624 		    time_second - pr->ndpr_lastupdate > pr->ndpr_vltime) {
    625 
    626 			/*
    627 			 * address expiration and prefix expiration are
    628 			 * separate.  NEVER perform in6_purgeaddr here.
    629 			 */
    630 
    631 			prelist_remove(pr);
    632 		}
    633 	}
    634 
    635 	KERNEL_UNLOCK_ONE(NULL);
    636 	mutex_exit(softnet_lock);
    637 }
    638 
    639 /* ia6: deprecated/invalidated temporary address */
    640 static int
    641 regen_tmpaddr(struct in6_ifaddr *ia6)
    642 {
    643 	struct ifaddr *ifa;
    644 	struct ifnet *ifp;
    645 	struct in6_ifaddr *public_ifa6 = NULL;
    646 
    647 	ifp = ia6->ia_ifa.ifa_ifp;
    648 	IFADDR_FOREACH(ifa, ifp) {
    649 		struct in6_ifaddr *it6;
    650 
    651 		if (ifa->ifa_addr->sa_family != AF_INET6)
    652 			continue;
    653 
    654 		it6 = (struct in6_ifaddr *)ifa;
    655 
    656 		/* ignore no autoconf addresses. */
    657 		if ((it6->ia6_flags & IN6_IFF_AUTOCONF) == 0)
    658 			continue;
    659 
    660 		/* ignore autoconf addresses with different prefixes. */
    661 		if (it6->ia6_ndpr == NULL || it6->ia6_ndpr != ia6->ia6_ndpr)
    662 			continue;
    663 
    664 		/*
    665 		 * Now we are looking at an autoconf address with the same
    666 		 * prefix as ours.  If the address is temporary and is still
    667 		 * preferred, do not create another one.  It would be rare, but
    668 		 * could happen, for example, when we resume a laptop PC after
    669 		 * a long period.
    670 		 */
    671 		if ((it6->ia6_flags & IN6_IFF_TEMPORARY) != 0 &&
    672 		    !IFA6_IS_DEPRECATED(it6)) {
    673 			public_ifa6 = NULL;
    674 			break;
    675 		}
    676 
    677 		/*
    678 		 * This is a public autoconf address that has the same prefix
    679 		 * as ours.  If it is preferred, keep it.  We can't break the
    680 		 * loop here, because there may be a still-preferred temporary
    681 		 * address with the prefix.
    682 		 */
    683 		if (!IFA6_IS_DEPRECATED(it6))
    684 		    public_ifa6 = it6;
    685 	}
    686 
    687 	if (public_ifa6 != NULL) {
    688 		int e;
    689 
    690 		/*
    691 		 * Random factor is introduced in the preferred lifetime, so
    692 		 * we do not need additional delay (3rd arg to in6_tmpifadd).
    693 		 */
    694 		if ((e = in6_tmpifadd(public_ifa6, 0, 0)) != 0) {
    695 			log(LOG_NOTICE, "regen_tmpaddr: failed to create a new"
    696 			    " tmp addr, errno=%d\n", e);
    697 			return -1;
    698 		}
    699 		return 0;
    700 	}
    701 
    702 	return -1;
    703 }
    704 
    705 bool
    706 nd6_accepts_rtadv(const struct nd_ifinfo *ndi)
    707 {
    708 	switch (ndi->flags & (ND6_IFF_ACCEPT_RTADV|ND6_IFF_OVERRIDE_RTADV)) {
    709 	case ND6_IFF_OVERRIDE_RTADV|ND6_IFF_ACCEPT_RTADV:
    710 		return true;
    711 	case ND6_IFF_ACCEPT_RTADV:
    712 		return ip6_accept_rtadv != 0;
    713 	case ND6_IFF_OVERRIDE_RTADV:
    714 	case 0:
    715 	default:
    716 		return false;
    717 	}
    718 }
    719 
    720 /*
    721  * Nuke neighbor cache/prefix/default router management table, right before
    722  * ifp goes away.
    723  */
    724 void
    725 nd6_purge(struct ifnet *ifp)
    726 {
    727 	struct nd_ifinfo *ndi = ND_IFINFO(ifp);
    728 	struct llinfo_nd6 *ln, *nln;
    729 	struct nd_defrouter *dr, *ndr;
    730 	struct nd_prefix *pr, *npr;
    731 
    732 	/*
    733 	 * Nuke default router list entries toward ifp.
    734 	 * We defer removal of default router list entries that is installed
    735 	 * in the routing table, in order to keep additional side effects as
    736 	 * small as possible.
    737 	 */
    738 	for (dr = TAILQ_FIRST(&nd_defrouter); dr != NULL; dr = ndr) {
    739 		ndr = TAILQ_NEXT(dr, dr_entry);
    740 		if (dr->installed)
    741 			continue;
    742 
    743 		if (dr->ifp == ifp)
    744 			defrtrlist_del(dr);
    745 	}
    746 	for (dr = TAILQ_FIRST(&nd_defrouter); dr != NULL; dr = ndr) {
    747 		ndr = TAILQ_NEXT(dr, dr_entry);
    748 		if (!dr->installed)
    749 			continue;
    750 
    751 		if (dr->ifp == ifp)
    752 			defrtrlist_del(dr);
    753 	}
    754 
    755 	/* Nuke prefix list entries toward ifp */
    756 	for (pr = LIST_FIRST(&nd_prefix); pr != NULL; pr = npr) {
    757 		npr = LIST_NEXT(pr, ndpr_entry);
    758 		if (pr->ndpr_ifp == ifp) {
    759 			/*
    760 			 * Because if_detach() does *not* release prefixes
    761 			 * while purging addresses the reference count will
    762 			 * still be above zero. We therefore reset it to
    763 			 * make sure that the prefix really gets purged.
    764 			 */
    765 			pr->ndpr_refcnt = 0;
    766 			/*
    767 			 * Previously, pr->ndpr_addr is removed as well,
    768 			 * but I strongly believe we don't have to do it.
    769 			 * nd6_purge() is only called from in6_ifdetach(),
    770 			 * which removes all the associated interface addresses
    771 			 * by itself.
    772 			 * (jinmei (at) kame.net 20010129)
    773 			 */
    774 			prelist_remove(pr);
    775 		}
    776 	}
    777 
    778 	/* cancel default outgoing interface setting */
    779 	if (nd6_defifindex == ifp->if_index)
    780 		nd6_setdefaultiface(0);
    781 
    782 	/* XXX: too restrictive? */
    783 	if (!ip6_forwarding && ndi && nd6_accepts_rtadv(ndi)) {
    784 		/* refresh default router list */
    785 		defrouter_select();
    786 	}
    787 
    788 	/*
    789 	 * Nuke neighbor cache entries for the ifp.
    790 	 * Note that rt->rt_ifp may not be the same as ifp,
    791 	 * due to KAME goto ours hack.  See RTM_RESOLVE case in
    792 	 * nd6_rtrequest(), and ip6_input().
    793 	 */
    794 	ln = llinfo_nd6.ln_next;
    795 	while (ln != NULL && ln != &llinfo_nd6) {
    796 		struct rtentry *rt;
    797 		const struct sockaddr_dl *sdl;
    798 
    799 		nln = ln->ln_next;
    800 		rt = ln->ln_rt;
    801 		if (rt && rt->rt_gateway &&
    802 		    rt->rt_gateway->sa_family == AF_LINK) {
    803 			sdl = satocsdl(rt->rt_gateway);
    804 			if (sdl->sdl_index == ifp->if_index)
    805 				nln = nd6_free(rt, 0);
    806 		}
    807 		ln = nln;
    808 	}
    809 }
    810 
    811 struct rtentry *
    812 nd6_lookup(const struct in6_addr *addr6, int create, struct ifnet *ifp)
    813 {
    814 	struct rtentry *rt;
    815 	struct sockaddr_in6 sin6;
    816 
    817 	sockaddr_in6_init(&sin6, addr6, 0, 0, 0);
    818 	rt = rtalloc1((struct sockaddr *)&sin6, create);
    819 	if (rt != NULL && (rt->rt_flags & RTF_LLINFO) == 0) {
    820 		/*
    821 		 * This is the case for the default route.
    822 		 * If we want to create a neighbor cache for the address, we
    823 		 * should free the route for the destination and allocate an
    824 		 * interface route.
    825 		 */
    826 		if (create) {
    827 			RTFREE(rt);
    828 			rt = NULL;
    829 		}
    830 	}
    831 	if (rt != NULL)
    832 		;
    833 	else if (create && ifp) {
    834 		int e;
    835 
    836 		/*
    837 		 * If no route is available and create is set,
    838 		 * we allocate a host route for the destination
    839 		 * and treat it like an interface route.
    840 		 * This hack is necessary for a neighbor which can't
    841 		 * be covered by our own prefix.
    842 		 */
    843 		struct ifaddr *ifa =
    844 		    ifaof_ifpforaddr((struct sockaddr *)&sin6, ifp);
    845 		if (ifa == NULL)
    846 			return NULL;
    847 
    848 		/*
    849 		 * Create a new route.  RTF_LLINFO is necessary
    850 		 * to create a Neighbor Cache entry for the
    851 		 * destination in nd6_rtrequest which will be
    852 		 * called in rtrequest via ifa->ifa_rtrequest.
    853 		 */
    854 		if ((e = rtrequest(RTM_ADD, (const struct sockaddr *)&sin6,
    855 		    ifa->ifa_addr, (const struct sockaddr *)&all1_sa,
    856 		    (ifa->ifa_flags | RTF_HOST | RTF_LLINFO) &
    857 		    ~RTF_CLONING, &rt)) != 0) {
    858 #if 0
    859 			log(LOG_ERR,
    860 			    "nd6_lookup: failed to add route for a "
    861 			    "neighbor(%s), errno=%d\n",
    862 			    ip6_sprintf(addr6), e);
    863 #endif
    864 			return NULL;
    865 		}
    866 		if (rt == NULL)
    867 			return NULL;
    868 		if (rt->rt_llinfo) {
    869 			struct llinfo_nd6 *ln =
    870 			    (struct llinfo_nd6 *)rt->rt_llinfo;
    871 			ln->ln_state = ND6_LLINFO_NOSTATE;
    872 		}
    873 	} else
    874 		return NULL;
    875 	rt->rt_refcnt--;
    876 	/*
    877 	 * Validation for the entry.
    878 	 * Note that the check for rt_llinfo is necessary because a cloned
    879 	 * route from a parent route that has the L flag (e.g. the default
    880 	 * route to a p2p interface) may have the flag, too, while the
    881 	 * destination is not actually a neighbor.
    882 	 * XXX: we can't use rt->rt_ifp to check for the interface, since
    883 	 *      it might be the loopback interface if the entry is for our
    884 	 *      own address on a non-loopback interface. Instead, we should
    885 	 *      use rt->rt_ifa->ifa_ifp, which would specify the REAL
    886 	 *	interface.
    887 	 * Note also that ifa_ifp and ifp may differ when we connect two
    888 	 * interfaces to a same link, install a link prefix to an interface,
    889 	 * and try to install a neighbor cache on an interface that does not
    890 	 * have a route to the prefix.
    891 	 */
    892 	if ((rt->rt_flags & RTF_GATEWAY) || (rt->rt_flags & RTF_LLINFO) == 0 ||
    893 	    rt->rt_gateway->sa_family != AF_LINK || rt->rt_llinfo == NULL ||
    894 	    (ifp && rt->rt_ifa->ifa_ifp != ifp)) {
    895 		if (create) {
    896 			nd6log((LOG_DEBUG,
    897 			    "nd6_lookup: failed to lookup %s (if = %s)\n",
    898 			    ip6_sprintf(addr6),
    899 			    ifp ? if_name(ifp) : "unspec"));
    900 		}
    901 		return NULL;
    902 	}
    903 	return rt;
    904 }
    905 
    906 /*
    907  * Detect if a given IPv6 address identifies a neighbor on a given link.
    908  * XXX: should take care of the destination of a p2p link?
    909  */
    910 int
    911 nd6_is_addr_neighbor(const struct sockaddr_in6 *addr, struct ifnet *ifp)
    912 {
    913 	struct nd_prefix *pr;
    914 
    915 	/*
    916 	 * A link-local address is always a neighbor.
    917 	 * XXX: a link does not necessarily specify a single interface.
    918 	 */
    919 	if (IN6_IS_ADDR_LINKLOCAL(&addr->sin6_addr)) {
    920 		struct sockaddr_in6 sin6_copy;
    921 		u_int32_t zone;
    922 
    923 		/*
    924 		 * We need sin6_copy since sa6_recoverscope() may modify the
    925 		 * content (XXX).
    926 		 */
    927 		sin6_copy = *addr;
    928 		if (sa6_recoverscope(&sin6_copy))
    929 			return 0; /* XXX: should be impossible */
    930 		if (in6_setscope(&sin6_copy.sin6_addr, ifp, &zone))
    931 			return 0;
    932 		if (sin6_copy.sin6_scope_id == zone)
    933 			return 1;
    934 		else
    935 			return 0;
    936 	}
    937 
    938 	/*
    939 	 * If the address matches one of our on-link prefixes, it should be a
    940 	 * neighbor.
    941 	 */
    942 	LIST_FOREACH(pr, &nd_prefix, ndpr_entry) {
    943 		if (pr->ndpr_ifp != ifp)
    944 			continue;
    945 
    946 		if (!(pr->ndpr_stateflags & NDPRF_ONLINK))
    947 			continue;
    948 
    949 		if (IN6_ARE_MASKED_ADDR_EQUAL(&pr->ndpr_prefix.sin6_addr,
    950 		    &addr->sin6_addr, &pr->ndpr_mask))
    951 			return 1;
    952 	}
    953 
    954 	/*
    955 	 * If the default router list is empty, all addresses are regarded
    956 	 * as on-link, and thus, as a neighbor.
    957 	 * XXX: we restrict the condition to hosts, because routers usually do
    958 	 * not have the "default router list".
    959 	 */
    960 	if (!ip6_forwarding && TAILQ_FIRST(&nd_defrouter) == NULL &&
    961 	    nd6_defifindex == ifp->if_index) {
    962 		return 1;
    963 	}
    964 
    965 	/*
    966 	 * Even if the address matches none of our addresses, it might be
    967 	 * in the neighbor cache.
    968 	 */
    969 	if (nd6_lookup(&addr->sin6_addr, 0, ifp) != NULL)
    970 		return 1;
    971 
    972 	return 0;
    973 }
    974 
    975 /*
    976  * Free an nd6 llinfo entry.
    977  * Since the function would cause significant changes in the kernel, DO NOT
    978  * make it global, unless you have a strong reason for the change, and are sure
    979  * that the change is safe.
    980  */
    981 static struct llinfo_nd6 *
    982 nd6_free(struct rtentry *rt, int gc)
    983 {
    984 	struct llinfo_nd6 *ln = (struct llinfo_nd6 *)rt->rt_llinfo, *next;
    985 	struct in6_addr in6 = satocsin6(rt_getkey(rt))->sin6_addr;
    986 	struct nd_defrouter *dr;
    987 
    988 	/*
    989 	 * we used to have pfctlinput(PRC_HOSTDEAD) here.
    990 	 * even though it is not harmful, it was not really necessary.
    991 	 */
    992 
    993 	/* cancel timer */
    994 	nd6_llinfo_settimer(ln, -1);
    995 
    996 	if (!ip6_forwarding) {
    997 		int s;
    998 		s = splsoftnet();
    999 		dr = defrouter_lookup(&satocsin6(rt_getkey(rt))->sin6_addr,
   1000 		    rt->rt_ifp);
   1001 
   1002 		if (dr != NULL && dr->expire &&
   1003 		    ln->ln_state == ND6_LLINFO_STALE && gc) {
   1004 			/*
   1005 			 * If the reason for the deletion is just garbage
   1006 			 * collection, and the neighbor is an active default
   1007 			 * router, do not delete it.  Instead, reset the GC
   1008 			 * timer using the router's lifetime.
   1009 			 * Simply deleting the entry would affect default
   1010 			 * router selection, which is not necessarily a good
   1011 			 * thing, especially when we're using router preference
   1012 			 * values.
   1013 			 * XXX: the check for ln_state would be redundant,
   1014 			 *      but we intentionally keep it just in case.
   1015 			 */
   1016 			if (dr->expire > time_second)
   1017 				nd6_llinfo_settimer(ln,
   1018 				    (dr->expire - time_second) * hz);
   1019 			else
   1020 				nd6_llinfo_settimer(ln, (long)nd6_gctimer * hz);
   1021 			splx(s);
   1022 			return ln->ln_next;
   1023 		}
   1024 
   1025 		if (ln->ln_router || dr) {
   1026 			/*
   1027 			 * rt6_flush must be called whether or not the neighbor
   1028 			 * is in the Default Router List.
   1029 			 * See a corresponding comment in nd6_na_input().
   1030 			 */
   1031 			rt6_flush(&in6, rt->rt_ifp);
   1032 		}
   1033 
   1034 		if (dr) {
   1035 			/*
   1036 			 * Unreachablity of a router might affect the default
   1037 			 * router selection and on-link detection of advertised
   1038 			 * prefixes.
   1039 			 */
   1040 
   1041 			/*
   1042 			 * Temporarily fake the state to choose a new default
   1043 			 * router and to perform on-link determination of
   1044 			 * prefixes correctly.
   1045 			 * Below the state will be set correctly,
   1046 			 * or the entry itself will be deleted.
   1047 			 */
   1048 			ln->ln_state = ND6_LLINFO_INCOMPLETE;
   1049 
   1050 			/*
   1051 			 * Since defrouter_select() does not affect the
   1052 			 * on-link determination and MIP6 needs the check
   1053 			 * before the default router selection, we perform
   1054 			 * the check now.
   1055 			 */
   1056 			pfxlist_onlink_check();
   1057 
   1058 			/*
   1059 			 * refresh default router list
   1060 			 */
   1061 			defrouter_select();
   1062 		}
   1063 		splx(s);
   1064 	}
   1065 
   1066 	/*
   1067 	 * Before deleting the entry, remember the next entry as the
   1068 	 * return value.  We need this because pfxlist_onlink_check() above
   1069 	 * might have freed other entries (particularly the old next entry) as
   1070 	 * a side effect (XXX).
   1071 	 */
   1072 	next = ln->ln_next;
   1073 
   1074 	/*
   1075 	 * Detach the route from the routing tree and the list of neighbor
   1076 	 * caches, and disable the route entry not to be used in already
   1077 	 * cached routes.
   1078 	 */
   1079 	rtrequest(RTM_DELETE, rt_getkey(rt), NULL, rt_mask(rt), 0, NULL);
   1080 
   1081 	return next;
   1082 }
   1083 
   1084 /*
   1085  * Upper-layer reachability hint for Neighbor Unreachability Detection.
   1086  *
   1087  * XXX cost-effective methods?
   1088  */
   1089 void
   1090 nd6_nud_hint(struct rtentry *rt, struct in6_addr *dst6, int force)
   1091 {
   1092 	struct llinfo_nd6 *ln;
   1093 
   1094 	/*
   1095 	 * If the caller specified "rt", use that.  Otherwise, resolve the
   1096 	 * routing table by supplied "dst6".
   1097 	 */
   1098 	if (rt == NULL) {
   1099 		if (dst6 == NULL)
   1100 			return;
   1101 		if ((rt = nd6_lookup(dst6, 0, NULL)) == NULL)
   1102 			return;
   1103 	}
   1104 
   1105 	if ((rt->rt_flags & RTF_GATEWAY) != 0 ||
   1106 	    (rt->rt_flags & RTF_LLINFO) == 0 ||
   1107 	    !rt->rt_llinfo || !rt->rt_gateway ||
   1108 	    rt->rt_gateway->sa_family != AF_LINK) {
   1109 		/* This is not a host route. */
   1110 		return;
   1111 	}
   1112 
   1113 	ln = (struct llinfo_nd6 *)rt->rt_llinfo;
   1114 	if (ln->ln_state < ND6_LLINFO_REACHABLE)
   1115 		return;
   1116 
   1117 	/*
   1118 	 * if we get upper-layer reachability confirmation many times,
   1119 	 * it is possible we have false information.
   1120 	 */
   1121 	if (!force) {
   1122 		ln->ln_byhint++;
   1123 		if (ln->ln_byhint > nd6_maxnudhint)
   1124 			return;
   1125 	}
   1126 
   1127 	ln->ln_state = ND6_LLINFO_REACHABLE;
   1128 	if (!ND6_LLINFO_PERMANENT(ln)) {
   1129 		nd6_llinfo_settimer(ln,
   1130 		    (long)ND_IFINFO(rt->rt_ifp)->reachable * hz);
   1131 	}
   1132 }
   1133 
   1134 void
   1135 nd6_rtrequest(int req, struct rtentry *rt, const struct rt_addrinfo *info)
   1136 {
   1137 	struct sockaddr *gate = rt->rt_gateway;
   1138 	struct llinfo_nd6 *ln = (struct llinfo_nd6 *)rt->rt_llinfo;
   1139 	struct ifnet *ifp = rt->rt_ifp;
   1140 	uint8_t namelen = strlen(ifp->if_xname), addrlen = ifp->if_addrlen;
   1141 	struct ifaddr *ifa;
   1142 
   1143 	RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1144 
   1145 	if (req == RTM_LLINFO_UPD) {
   1146 		int rc;
   1147 		struct in6_addr *in6;
   1148 		struct in6_addr in6_all;
   1149 		int anycast;
   1150 
   1151 		if ((ifa = info->rti_ifa) == NULL)
   1152 			return;
   1153 
   1154 		in6 = &ifatoia6(ifa)->ia_addr.sin6_addr;
   1155 		anycast = ifatoia6(ifa)->ia6_flags & IN6_IFF_ANYCAST;
   1156 
   1157 		in6_all = in6addr_linklocal_allnodes;
   1158 		if ((rc = in6_setscope(&in6_all, ifa->ifa_ifp, NULL)) != 0) {
   1159 			log(LOG_ERR, "%s: failed to set scope %s "
   1160 			    "(errno=%d)\n", __func__, if_name(ifp), rc);
   1161 			return;
   1162 		}
   1163 
   1164 		/* XXX don't set Override for proxy addresses */
   1165 		nd6_na_output(ifa->ifa_ifp, &in6_all, in6,
   1166 		    (anycast ? 0 : ND_NA_FLAG_OVERRIDE)
   1167 #if 0
   1168 		    | (ip6_forwarding ? ND_NA_FLAG_ROUTER : 0)
   1169 #endif
   1170 		    , 1, NULL);
   1171 		return;
   1172 	}
   1173 
   1174 	if ((rt->rt_flags & RTF_GATEWAY) != 0)
   1175 		return;
   1176 
   1177 	if (nd6_need_cache(ifp) == 0 && (rt->rt_flags & RTF_HOST) == 0) {
   1178 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1179 		/*
   1180 		 * This is probably an interface direct route for a link
   1181 		 * which does not need neighbor caches (e.g. fe80::%lo0/64).
   1182 		 * We do not need special treatment below for such a route.
   1183 		 * Moreover, the RTF_LLINFO flag which would be set below
   1184 		 * would annoy the ndp(8) command.
   1185 		 */
   1186 		return;
   1187 	}
   1188 
   1189 	if (req == RTM_RESOLVE &&
   1190 	    (nd6_need_cache(ifp) == 0 || /* stf case */
   1191 	     !nd6_is_addr_neighbor(satocsin6(rt_getkey(rt)), ifp))) {
   1192 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1193 		/*
   1194 		 * FreeBSD and BSD/OS often make a cloned host route based
   1195 		 * on a less-specific route (e.g. the default route).
   1196 		 * If the less specific route does not have a "gateway"
   1197 		 * (this is the case when the route just goes to a p2p or an
   1198 		 * stf interface), we'll mistakenly make a neighbor cache for
   1199 		 * the host route, and will see strange neighbor solicitation
   1200 		 * for the corresponding destination.  In order to avoid the
   1201 		 * confusion, we check if the destination of the route is
   1202 		 * a neighbor in terms of neighbor discovery, and stop the
   1203 		 * process if not.  Additionally, we remove the LLINFO flag
   1204 		 * so that ndp(8) will not try to get the neighbor information
   1205 		 * of the destination.
   1206 		 */
   1207 		rt->rt_flags &= ~RTF_LLINFO;
   1208 		return;
   1209 	}
   1210 
   1211 	switch (req) {
   1212 	case RTM_ADD:
   1213 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1214 		/*
   1215 		 * There is no backward compatibility :)
   1216 		 *
   1217 		 * if ((rt->rt_flags & RTF_HOST) == 0 &&
   1218 		 *     SIN(rt_mask(rt))->sin_addr.s_addr != 0xffffffff)
   1219 		 *	   rt->rt_flags |= RTF_CLONING;
   1220 		 */
   1221 		if ((rt->rt_flags & RTF_CLONING) ||
   1222 		    ((rt->rt_flags & RTF_LLINFO) && ln == NULL)) {
   1223 			union {
   1224 				struct sockaddr sa;
   1225 				struct sockaddr_dl sdl;
   1226 				struct sockaddr_storage ss;
   1227 			} u;
   1228 			/*
   1229 			 * Case 1: This route should come from a route to
   1230 			 * interface (RTF_CLONING case) or the route should be
   1231 			 * treated as on-link but is currently not
   1232 			 * (RTF_LLINFO && ln == NULL case).
   1233 			 */
   1234 			if (sockaddr_dl_init(&u.sdl, sizeof(u.ss),
   1235 			    ifp->if_index, ifp->if_type,
   1236 			    NULL, namelen, NULL, addrlen) == NULL) {
   1237 				printf("%s.%d: sockaddr_dl_init(, %zu, ) "
   1238 				    "failed on %s\n", __func__, __LINE__,
   1239 				    sizeof(u.ss), if_name(ifp));
   1240 			}
   1241 			rt_setgate(rt, &u.sa);
   1242 			gate = rt->rt_gateway;
   1243 			RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1244 			if (ln != NULL)
   1245 				nd6_llinfo_settimer(ln, 0);
   1246 			RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1247 			if ((rt->rt_flags & RTF_CLONING) != 0)
   1248 				break;
   1249 		}
   1250 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1251 		/*
   1252 		 * In IPv4 code, we try to annonuce new RTF_ANNOUNCE entry here.
   1253 		 * We don't do that here since llinfo is not ready yet.
   1254 		 *
   1255 		 * There are also couple of other things to be discussed:
   1256 		 * - unsolicited NA code needs improvement beforehand
   1257 		 * - RFC2461 says we MAY send multicast unsolicited NA
   1258 		 *   (7.2.6 paragraph 4), however, it also says that we
   1259 		 *   SHOULD provide a mechanism to prevent multicast NA storm.
   1260 		 *   we don't have anything like it right now.
   1261 		 *   note that the mechanism needs a mutual agreement
   1262 		 *   between proxies, which means that we need to implement
   1263 		 *   a new protocol, or a new kludge.
   1264 		 * - from RFC2461 6.2.4, host MUST NOT send an unsolicited NA.
   1265 		 *   we need to check ip6forwarding before sending it.
   1266 		 *   (or should we allow proxy ND configuration only for
   1267 		 *   routers?  there's no mention about proxy ND from hosts)
   1268 		 */
   1269 #if 0
   1270 		/* XXX it does not work */
   1271 		if (rt->rt_flags & RTF_ANNOUNCE)
   1272 			nd6_na_output(ifp,
   1273 			      &satocsin6(rt_getkey(rt))->sin6_addr,
   1274 			      &satocsin6(rt_getkey(rt))->sin6_addr,
   1275 			      ip6_forwarding ? ND_NA_FLAG_ROUTER : 0,
   1276 			      1, NULL);
   1277 #endif
   1278 		/* FALLTHROUGH */
   1279 	case RTM_RESOLVE:
   1280 		if ((ifp->if_flags & (IFF_POINTOPOINT | IFF_LOOPBACK)) == 0) {
   1281 			RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1282 			/*
   1283 			 * Address resolution isn't necessary for a point to
   1284 			 * point link, so we can skip this test for a p2p link.
   1285 			 */
   1286 			if (gate->sa_family != AF_LINK ||
   1287 			    gate->sa_len <
   1288 			    sockaddr_dl_measure(namelen, addrlen)) {
   1289 				log(LOG_DEBUG,
   1290 				    "nd6_rtrequest: bad gateway value: %s\n",
   1291 				    if_name(ifp));
   1292 				break;
   1293 			}
   1294 			satosdl(gate)->sdl_type = ifp->if_type;
   1295 			satosdl(gate)->sdl_index = ifp->if_index;
   1296 			RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1297 		}
   1298 		if (ln != NULL)
   1299 			break;	/* This happens on a route change */
   1300 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1301 		/*
   1302 		 * Case 2: This route may come from cloning, or a manual route
   1303 		 * add with a LL address.
   1304 		 */
   1305 		R_Malloc(ln, struct llinfo_nd6 *, sizeof(*ln));
   1306 		rt->rt_llinfo = ln;
   1307 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1308 		if (ln == NULL) {
   1309 			log(LOG_DEBUG, "nd6_rtrequest: malloc failed\n");
   1310 			break;
   1311 		}
   1312 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1313 		nd6_inuse++;
   1314 		nd6_allocated++;
   1315 		memset(ln, 0, sizeof(*ln));
   1316 		ln->ln_rt = rt;
   1317 		callout_init(&ln->ln_timer_ch, CALLOUT_MPSAFE);
   1318 		/* this is required for "ndp" command. - shin */
   1319 		if (req == RTM_ADD) {
   1320 		        /*
   1321 			 * gate should have some valid AF_LINK entry,
   1322 			 * and ln->ln_expire should have some lifetime
   1323 			 * which is specified by ndp command.
   1324 			 */
   1325 			ln->ln_state = ND6_LLINFO_REACHABLE;
   1326 			ln->ln_byhint = 0;
   1327 		} else {
   1328 		        /*
   1329 			 * When req == RTM_RESOLVE, rt is created and
   1330 			 * initialized in rtrequest(), so rt_expire is 0.
   1331 			 */
   1332 			ln->ln_state = ND6_LLINFO_NOSTATE;
   1333 			nd6_llinfo_settimer(ln, 0);
   1334 		}
   1335 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1336 		rt->rt_flags |= RTF_LLINFO;
   1337 		ln->ln_next = llinfo_nd6.ln_next;
   1338 		llinfo_nd6.ln_next = ln;
   1339 		ln->ln_prev = &llinfo_nd6;
   1340 		ln->ln_next->ln_prev = ln;
   1341 
   1342 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1343 		/*
   1344 		 * check if rt_getkey(rt) is an address assigned
   1345 		 * to the interface.
   1346 		 */
   1347 		ifa = (struct ifaddr *)in6ifa_ifpwithaddr(ifp,
   1348 		    &satocsin6(rt_getkey(rt))->sin6_addr);
   1349 		RT_DPRINTF("rt->_rt_key = %p\n", (void *)rt->_rt_key);
   1350 		if (ifa != NULL) {
   1351 			const void *mac;
   1352 			nd6_llinfo_settimer(ln, -1);
   1353 			ln->ln_state = ND6_LLINFO_REACHABLE;
   1354 			ln->ln_byhint = 0;
   1355 			if ((mac = nd6_ifptomac(ifp)) != NULL) {
   1356 				/* XXX check for error */
   1357 				if (sockaddr_dl_setaddr(satosdl(gate),
   1358 				    gate->sa_len, mac,
   1359 				    ifp->if_addrlen) == NULL) {
   1360 					printf("%s.%d: "
   1361 					    "sockaddr_dl_setaddr(, %d, ) "
   1362 					    "failed on %s\n", __func__,
   1363 					    __LINE__, gate->sa_len,
   1364 					    if_name(ifp));
   1365 				}
   1366 			}
   1367 			if (nd6_useloopback) {
   1368 				ifp = rt->rt_ifp = lo0ifp;	/* XXX */
   1369 				/*
   1370 				 * Make sure rt_ifa be equal to the ifaddr
   1371 				 * corresponding to the address.
   1372 				 * We need this because when we refer
   1373 				 * rt_ifa->ia6_flags in ip6_input, we assume
   1374 				 * that the rt_ifa points to the address instead
   1375 				 * of the loopback address.
   1376 				 */
   1377 				if (ifa != rt->rt_ifa)
   1378 					rt_replace_ifa(rt, ifa);
   1379 				rt->rt_flags &= ~RTF_CLONED;
   1380 			}
   1381 		} else if (rt->rt_flags & RTF_ANNOUNCE) {
   1382 			nd6_llinfo_settimer(ln, -1);
   1383 			ln->ln_state = ND6_LLINFO_REACHABLE;
   1384 			ln->ln_byhint = 0;
   1385 
   1386 			/* join solicited node multicast for proxy ND */
   1387 			if (ifp->if_flags & IFF_MULTICAST) {
   1388 				struct in6_addr llsol;
   1389 				int error;
   1390 
   1391 				llsol = satocsin6(rt_getkey(rt))->sin6_addr;
   1392 				llsol.s6_addr32[0] = htonl(0xff020000);
   1393 				llsol.s6_addr32[1] = 0;
   1394 				llsol.s6_addr32[2] = htonl(1);
   1395 				llsol.s6_addr8[12] = 0xff;
   1396 				if (in6_setscope(&llsol, ifp, NULL))
   1397 					break;
   1398 				if (!in6_addmulti(&llsol, ifp, &error, 0)) {
   1399 					nd6log((LOG_ERR, "%s: failed to join "
   1400 					    "%s (errno=%d)\n", if_name(ifp),
   1401 					    ip6_sprintf(&llsol), error));
   1402 				}
   1403 			}
   1404 		}
   1405 		break;
   1406 
   1407 	case RTM_DELETE:
   1408 		if (ln == NULL)
   1409 			break;
   1410 		/* leave from solicited node multicast for proxy ND */
   1411 		if ((rt->rt_flags & RTF_ANNOUNCE) != 0 &&
   1412 		    (ifp->if_flags & IFF_MULTICAST) != 0) {
   1413 			struct in6_addr llsol;
   1414 			struct in6_multi *in6m;
   1415 
   1416 			llsol = satocsin6(rt_getkey(rt))->sin6_addr;
   1417 			llsol.s6_addr32[0] = htonl(0xff020000);
   1418 			llsol.s6_addr32[1] = 0;
   1419 			llsol.s6_addr32[2] = htonl(1);
   1420 			llsol.s6_addr8[12] = 0xff;
   1421 			if (in6_setscope(&llsol, ifp, NULL) == 0) {
   1422 				IN6_LOOKUP_MULTI(llsol, ifp, in6m);
   1423 				if (in6m)
   1424 					in6_delmulti(in6m);
   1425 			}
   1426 		}
   1427 		nd6_inuse--;
   1428 		ln->ln_next->ln_prev = ln->ln_prev;
   1429 		ln->ln_prev->ln_next = ln->ln_next;
   1430 		ln->ln_prev = NULL;
   1431 		nd6_llinfo_settimer(ln, -1);
   1432 		rt->rt_llinfo = 0;
   1433 		rt->rt_flags &= ~RTF_LLINFO;
   1434 		clear_llinfo_pqueue(ln);
   1435 		Free(ln);
   1436 	}
   1437 }
   1438 
   1439 int
   1440 nd6_ioctl(u_long cmd, void *data, struct ifnet *ifp)
   1441 {
   1442 	struct in6_drlist *drl = (struct in6_drlist *)data;
   1443 	struct in6_oprlist *oprl = (struct in6_oprlist *)data;
   1444 	struct in6_ndireq *ndi = (struct in6_ndireq *)data;
   1445 	struct in6_nbrinfo *nbi = (struct in6_nbrinfo *)data;
   1446 	struct in6_ndifreq *ndif = (struct in6_ndifreq *)data;
   1447 	struct nd_defrouter *dr;
   1448 	struct nd_prefix *pr;
   1449 	struct rtentry *rt;
   1450 	int i = 0, error = 0;
   1451 	int s;
   1452 
   1453 	switch (cmd) {
   1454 	case SIOCGDRLST_IN6:
   1455 		/*
   1456 		 * obsolete API, use sysctl under net.inet6.icmp6
   1457 		 */
   1458 		memset(drl, 0, sizeof(*drl));
   1459 		s = splsoftnet();
   1460 		TAILQ_FOREACH(dr, &nd_defrouter, dr_entry) {
   1461 			if (i >= DRLSTSIZ)
   1462 				break;
   1463 			drl->defrouter[i].rtaddr = dr->rtaddr;
   1464 			in6_clearscope(&drl->defrouter[i].rtaddr);
   1465 
   1466 			drl->defrouter[i].flags = dr->flags;
   1467 			drl->defrouter[i].rtlifetime = dr->rtlifetime;
   1468 			drl->defrouter[i].expire = dr->expire;
   1469 			drl->defrouter[i].if_index = dr->ifp->if_index;
   1470 			i++;
   1471 		}
   1472 		splx(s);
   1473 		break;
   1474 	case SIOCGPRLST_IN6:
   1475 		/*
   1476 		 * obsolete API, use sysctl under net.inet6.icmp6
   1477 		 *
   1478 		 * XXX the structure in6_prlist was changed in backward-
   1479 		 * incompatible manner.  in6_oprlist is used for SIOCGPRLST_IN6,
   1480 		 * in6_prlist is used for nd6_sysctl() - fill_prlist().
   1481 		 */
   1482 		/*
   1483 		 * XXX meaning of fields, especialy "raflags", is very
   1484 		 * differnet between RA prefix list and RR/static prefix list.
   1485 		 * how about separating ioctls into two?
   1486 		 */
   1487 		memset(oprl, 0, sizeof(*oprl));
   1488 		s = splsoftnet();
   1489 		LIST_FOREACH(pr, &nd_prefix, ndpr_entry) {
   1490 			struct nd_pfxrouter *pfr;
   1491 			int j;
   1492 
   1493 			if (i >= PRLSTSIZ)
   1494 				break;
   1495 			oprl->prefix[i].prefix = pr->ndpr_prefix.sin6_addr;
   1496 			oprl->prefix[i].raflags = pr->ndpr_raf;
   1497 			oprl->prefix[i].prefixlen = pr->ndpr_plen;
   1498 			oprl->prefix[i].vltime = pr->ndpr_vltime;
   1499 			oprl->prefix[i].pltime = pr->ndpr_pltime;
   1500 			oprl->prefix[i].if_index = pr->ndpr_ifp->if_index;
   1501 			if (pr->ndpr_vltime == ND6_INFINITE_LIFETIME)
   1502 				oprl->prefix[i].expire = 0;
   1503 			else {
   1504 				time_t maxexpire;
   1505 
   1506 				/* XXX: we assume time_t is signed. */
   1507 				maxexpire = (-1) &
   1508 				    ~((time_t)1 <<
   1509 				    ((sizeof(maxexpire) * 8) - 1));
   1510 				if (pr->ndpr_vltime <
   1511 				    maxexpire - pr->ndpr_lastupdate) {
   1512 					oprl->prefix[i].expire =
   1513 						 pr->ndpr_lastupdate +
   1514 						pr->ndpr_vltime;
   1515 				} else
   1516 					oprl->prefix[i].expire = maxexpire;
   1517 			}
   1518 
   1519 			j = 0;
   1520 			LIST_FOREACH(pfr, &pr->ndpr_advrtrs, pfr_entry) {
   1521 				if (j < DRLSTSIZ) {
   1522 #define RTRADDR oprl->prefix[i].advrtr[j]
   1523 					RTRADDR = pfr->router->rtaddr;
   1524 					in6_clearscope(&RTRADDR);
   1525 #undef RTRADDR
   1526 				}
   1527 				j++;
   1528 			}
   1529 			oprl->prefix[i].advrtrs = j;
   1530 			oprl->prefix[i].origin = PR_ORIG_RA;
   1531 
   1532 			i++;
   1533 		}
   1534 		splx(s);
   1535 
   1536 		break;
   1537 	case OSIOCGIFINFO_IN6:
   1538 #define ND	ndi->ndi
   1539 		/* XXX: old ndp(8) assumes a positive value for linkmtu. */
   1540 		memset(&ND, 0, sizeof(ND));
   1541 		ND.linkmtu = IN6_LINKMTU(ifp);
   1542 		ND.maxmtu = ND_IFINFO(ifp)->maxmtu;
   1543 		ND.basereachable = ND_IFINFO(ifp)->basereachable;
   1544 		ND.reachable = ND_IFINFO(ifp)->reachable;
   1545 		ND.retrans = ND_IFINFO(ifp)->retrans;
   1546 		ND.flags = ND_IFINFO(ifp)->flags;
   1547 		ND.recalctm = ND_IFINFO(ifp)->recalctm;
   1548 		ND.chlim = ND_IFINFO(ifp)->chlim;
   1549 		break;
   1550 	case SIOCGIFINFO_IN6:
   1551 		ND = *ND_IFINFO(ifp);
   1552 		break;
   1553 	case SIOCSIFINFO_IN6:
   1554 		/*
   1555 		 * used to change host variables from userland.
   1556 		 * intented for a use on router to reflect RA configurations.
   1557 		 */
   1558 		/* 0 means 'unspecified' */
   1559 		if (ND.linkmtu != 0) {
   1560 			if (ND.linkmtu < IPV6_MMTU ||
   1561 			    ND.linkmtu > IN6_LINKMTU(ifp)) {
   1562 				error = EINVAL;
   1563 				break;
   1564 			}
   1565 			ND_IFINFO(ifp)->linkmtu = ND.linkmtu;
   1566 		}
   1567 
   1568 		if (ND.basereachable != 0) {
   1569 			int obasereachable = ND_IFINFO(ifp)->basereachable;
   1570 
   1571 			ND_IFINFO(ifp)->basereachable = ND.basereachable;
   1572 			if (ND.basereachable != obasereachable)
   1573 				ND_IFINFO(ifp)->reachable =
   1574 				    ND_COMPUTE_RTIME(ND.basereachable);
   1575 		}
   1576 		if (ND.retrans != 0)
   1577 			ND_IFINFO(ifp)->retrans = ND.retrans;
   1578 		if (ND.chlim != 0)
   1579 			ND_IFINFO(ifp)->chlim = ND.chlim;
   1580 		/* FALLTHROUGH */
   1581 	case SIOCSIFINFO_FLAGS:
   1582 		ND_IFINFO(ifp)->flags = ND.flags;
   1583 		break;
   1584 #undef ND
   1585 	case SIOCSNDFLUSH_IN6:	/* XXX: the ioctl name is confusing... */
   1586 		/* sync kernel routing table with the default router list */
   1587 		defrouter_reset();
   1588 		defrouter_select();
   1589 		break;
   1590 	case SIOCSPFXFLUSH_IN6:
   1591 	{
   1592 		/* flush all the prefix advertised by routers */
   1593 		struct nd_prefix *pfx, *next;
   1594 
   1595 		s = splsoftnet();
   1596 		for (pfx = LIST_FIRST(&nd_prefix); pfx; pfx = next) {
   1597 			struct in6_ifaddr *ia, *ia_next;
   1598 
   1599 			next = LIST_NEXT(pfx, ndpr_entry);
   1600 
   1601 			if (IN6_IS_ADDR_LINKLOCAL(&pfx->ndpr_prefix.sin6_addr))
   1602 				continue; /* XXX */
   1603 
   1604 			/* do we really have to remove addresses as well? */
   1605 			for (ia = in6_ifaddr; ia; ia = ia_next) {
   1606 				/* ia might be removed.  keep the next ptr. */
   1607 				ia_next = ia->ia_next;
   1608 
   1609 				if ((ia->ia6_flags & IN6_IFF_AUTOCONF) == 0)
   1610 					continue;
   1611 
   1612 				if (ia->ia6_ndpr == pfx)
   1613 					in6_purgeaddr(&ia->ia_ifa);
   1614 			}
   1615 			prelist_remove(pfx);
   1616 		}
   1617 		splx(s);
   1618 		break;
   1619 	}
   1620 	case SIOCSRTRFLUSH_IN6:
   1621 	{
   1622 		/* flush all the default routers */
   1623 		struct nd_defrouter *drtr, *next;
   1624 
   1625 		s = splsoftnet();
   1626 		defrouter_reset();
   1627 		for (drtr = TAILQ_FIRST(&nd_defrouter); drtr; drtr = next) {
   1628 			next = TAILQ_NEXT(drtr, dr_entry);
   1629 			defrtrlist_del(drtr);
   1630 		}
   1631 		defrouter_select();
   1632 		splx(s);
   1633 		break;
   1634 	}
   1635 	case SIOCGNBRINFO_IN6:
   1636 	{
   1637 		struct llinfo_nd6 *ln;
   1638 		struct in6_addr nb_addr = nbi->addr; /* make local for safety */
   1639 
   1640 		if ((error = in6_setscope(&nb_addr, ifp, NULL)) != 0)
   1641 			return error;
   1642 
   1643 		s = splsoftnet();
   1644 		if ((rt = nd6_lookup(&nb_addr, 0, ifp)) == NULL ||
   1645 		    (ln = (struct llinfo_nd6 *)rt->rt_llinfo) == NULL) {
   1646 			error = EINVAL;
   1647 			splx(s);
   1648 			break;
   1649 		}
   1650 		nbi->state = ln->ln_state;
   1651 		nbi->asked = ln->ln_asked;
   1652 		nbi->isrouter = ln->ln_router;
   1653 		nbi->expire = ln->ln_expire;
   1654 		splx(s);
   1655 
   1656 		break;
   1657 	}
   1658 	case SIOCGDEFIFACE_IN6:	/* XXX: should be implemented as a sysctl? */
   1659 		ndif->ifindex = nd6_defifindex;
   1660 		break;
   1661 	case SIOCSDEFIFACE_IN6:	/* XXX: should be implemented as a sysctl? */
   1662 		return nd6_setdefaultiface(ndif->ifindex);
   1663 	}
   1664 	return error;
   1665 }
   1666 
   1667 void
   1668 nd6_llinfo_release_pkts(struct llinfo_nd6 *ln, struct ifnet *ifp,
   1669     struct rtentry *rt)
   1670 {
   1671 	struct mbuf *m_hold, *m_hold_next;
   1672 
   1673 	for (m_hold = ln->ln_hold, ln->ln_hold = NULL;
   1674 	     m_hold != NULL;
   1675 	     m_hold = m_hold_next) {
   1676 		m_hold_next = m_hold->m_nextpkt;
   1677 		m_hold->m_nextpkt = NULL;
   1678 
   1679 		/*
   1680 		 * we assume ifp is not a p2p here, so
   1681 		 * just set the 2nd argument as the
   1682 		 * 1st one.
   1683 		 */
   1684 		nd6_output(ifp, ifp, m_hold, satocsin6(rt_getkey(rt)), rt);
   1685 	}
   1686 }
   1687 
   1688 /*
   1689  * Create neighbor cache entry and cache link-layer address,
   1690  * on reception of inbound ND6 packets.  (RS/RA/NS/redirect)
   1691  */
   1692 struct rtentry *
   1693 nd6_cache_lladdr(
   1694     struct ifnet *ifp,
   1695     struct in6_addr *from,
   1696     char *lladdr,
   1697     int lladdrlen,
   1698     int type,	/* ICMP6 type */
   1699     int code	/* type dependent information */
   1700 )
   1701 {
   1702 	struct nd_ifinfo *ndi = ND_IFINFO(ifp);
   1703 	struct rtentry *rt = NULL;
   1704 	struct llinfo_nd6 *ln = NULL;
   1705 	int is_newentry;
   1706 	struct sockaddr_dl *sdl = NULL;
   1707 	int do_update;
   1708 	int olladdr;
   1709 	int llchange;
   1710 	int newstate = 0;
   1711 
   1712 	if (ifp == NULL)
   1713 		panic("ifp == NULL in nd6_cache_lladdr");
   1714 	if (from == NULL)
   1715 		panic("from == NULL in nd6_cache_lladdr");
   1716 
   1717 	/* nothing must be updated for unspecified address */
   1718 	if (IN6_IS_ADDR_UNSPECIFIED(from))
   1719 		return NULL;
   1720 
   1721 	/*
   1722 	 * Validation about ifp->if_addrlen and lladdrlen must be done in
   1723 	 * the caller.
   1724 	 *
   1725 	 * XXX If the link does not have link-layer adderss, what should
   1726 	 * we do? (ifp->if_addrlen == 0)
   1727 	 * Spec says nothing in sections for RA, RS and NA.  There's small
   1728 	 * description on it in NS section (RFC 2461 7.2.3).
   1729 	 */
   1730 
   1731 	rt = nd6_lookup(from, 0, ifp);
   1732 	if (rt == NULL) {
   1733 #if 0
   1734 		/* nothing must be done if there's no lladdr */
   1735 		if (!lladdr || !lladdrlen)
   1736 			return NULL;
   1737 #endif
   1738 
   1739 		rt = nd6_lookup(from, 1, ifp);
   1740 		is_newentry = 1;
   1741 	} else {
   1742 		/* do nothing if static ndp is set */
   1743 		if (rt->rt_flags & RTF_STATIC)
   1744 			return NULL;
   1745 		is_newentry = 0;
   1746 	}
   1747 
   1748 	if (rt == NULL)
   1749 		return NULL;
   1750 	if ((rt->rt_flags & (RTF_GATEWAY | RTF_LLINFO)) != RTF_LLINFO) {
   1751 fail:
   1752 		(void)nd6_free(rt, 0);
   1753 		return NULL;
   1754 	}
   1755 	ln = (struct llinfo_nd6 *)rt->rt_llinfo;
   1756 	if (ln == NULL)
   1757 		goto fail;
   1758 	if (rt->rt_gateway == NULL)
   1759 		goto fail;
   1760 	if (rt->rt_gateway->sa_family != AF_LINK)
   1761 		goto fail;
   1762 	sdl = satosdl(rt->rt_gateway);
   1763 
   1764 	olladdr = (sdl->sdl_alen) ? 1 : 0;
   1765 	if (olladdr && lladdr) {
   1766 		if (memcmp(lladdr, CLLADDR(sdl), ifp->if_addrlen))
   1767 			llchange = 1;
   1768 		else
   1769 			llchange = 0;
   1770 	} else
   1771 		llchange = 0;
   1772 
   1773 	/*
   1774 	 * newentry olladdr  lladdr  llchange	(*=record)
   1775 	 *	0	n	n	--	(1)
   1776 	 *	0	y	n	--	(2)
   1777 	 *	0	n	y	--	(3) * STALE
   1778 	 *	0	y	y	n	(4) *
   1779 	 *	0	y	y	y	(5) * STALE
   1780 	 *	1	--	n	--	(6)   NOSTATE(= PASSIVE)
   1781 	 *	1	--	y	--	(7) * STALE
   1782 	 */
   1783 
   1784 	if (lladdr) {		/* (3-5) and (7) */
   1785 		/*
   1786 		 * Record source link-layer address
   1787 		 * XXX is it dependent to ifp->if_type?
   1788 		 */
   1789 		/* XXX check for error */
   1790 		if (sockaddr_dl_setaddr(sdl, sdl->sdl_len, lladdr,
   1791 		    ifp->if_addrlen) == NULL) {
   1792 			printf("%s.%d: sockaddr_dl_setaddr(, %d, ) "
   1793 			    "failed on %s\n", __func__, __LINE__,
   1794 			    sdl->sdl_len, if_name(ifp));
   1795 		}
   1796 	}
   1797 
   1798 	if (!is_newentry) {
   1799 		if ((!olladdr && lladdr) ||		/* (3) */
   1800 		    (olladdr && lladdr && llchange)) {	/* (5) */
   1801 			do_update = 1;
   1802 			newstate = ND6_LLINFO_STALE;
   1803 		} else					/* (1-2,4) */
   1804 			do_update = 0;
   1805 	} else {
   1806 		do_update = 1;
   1807 		if (lladdr == NULL)			/* (6) */
   1808 			newstate = ND6_LLINFO_NOSTATE;
   1809 		else					/* (7) */
   1810 			newstate = ND6_LLINFO_STALE;
   1811 	}
   1812 
   1813 	if (do_update) {
   1814 		/*
   1815 		 * Update the state of the neighbor cache.
   1816 		 */
   1817 		ln->ln_state = newstate;
   1818 
   1819 		if (ln->ln_state == ND6_LLINFO_STALE) {
   1820 			/*
   1821 			 * XXX: since nd6_output() below will cause
   1822 			 * state tansition to DELAY and reset the timer,
   1823 			 * we must set the timer now, although it is actually
   1824 			 * meaningless.
   1825 			 */
   1826 			nd6_llinfo_settimer(ln, (long)nd6_gctimer * hz);
   1827 
   1828 			nd6_llinfo_release_pkts(ln, ifp, rt);
   1829 		} else if (ln->ln_state == ND6_LLINFO_INCOMPLETE) {
   1830 			/* probe right away */
   1831 			nd6_llinfo_settimer((void *)ln, 0);
   1832 		}
   1833 	}
   1834 
   1835 	/*
   1836 	 * ICMP6 type dependent behavior.
   1837 	 *
   1838 	 * NS: clear IsRouter if new entry
   1839 	 * RS: clear IsRouter
   1840 	 * RA: set IsRouter if there's lladdr
   1841 	 * redir: clear IsRouter if new entry
   1842 	 *
   1843 	 * RA case, (1):
   1844 	 * The spec says that we must set IsRouter in the following cases:
   1845 	 * - If lladdr exist, set IsRouter.  This means (1-5).
   1846 	 * - If it is old entry (!newentry), set IsRouter.  This means (7).
   1847 	 * So, based on the spec, in (1-5) and (7) cases we must set IsRouter.
   1848 	 * A quetion arises for (1) case.  (1) case has no lladdr in the
   1849 	 * neighbor cache, this is similar to (6).
   1850 	 * This case is rare but we figured that we MUST NOT set IsRouter.
   1851 	 *
   1852 	 * newentry olladdr  lladdr  llchange	    NS  RS  RA	redir
   1853 	 *							D R
   1854 	 *	0	n	n	--	(1)	c   ?     s
   1855 	 *	0	y	n	--	(2)	c   s     s
   1856 	 *	0	n	y	--	(3)	c   s     s
   1857 	 *	0	y	y	n	(4)	c   s     s
   1858 	 *	0	y	y	y	(5)	c   s     s
   1859 	 *	1	--	n	--	(6) c	c 	c s
   1860 	 *	1	--	y	--	(7) c	c   s	c s
   1861 	 *
   1862 	 *					(c=clear s=set)
   1863 	 */
   1864 	switch (type & 0xff) {
   1865 	case ND_NEIGHBOR_SOLICIT:
   1866 		/*
   1867 		 * New entry must have is_router flag cleared.
   1868 		 */
   1869 		if (is_newentry)	/* (6-7) */
   1870 			ln->ln_router = 0;
   1871 		break;
   1872 	case ND_REDIRECT:
   1873 		/*
   1874 		 * If the icmp is a redirect to a better router, always set the
   1875 		 * is_router flag.  Otherwise, if the entry is newly created,
   1876 		 * clear the flag.  [RFC 2461, sec 8.3]
   1877 		 */
   1878 		if (code == ND_REDIRECT_ROUTER)
   1879 			ln->ln_router = 1;
   1880 		else if (is_newentry) /* (6-7) */
   1881 			ln->ln_router = 0;
   1882 		break;
   1883 	case ND_ROUTER_SOLICIT:
   1884 		/*
   1885 		 * is_router flag must always be cleared.
   1886 		 */
   1887 		ln->ln_router = 0;
   1888 		break;
   1889 	case ND_ROUTER_ADVERT:
   1890 		/*
   1891 		 * Mark an entry with lladdr as a router.
   1892 		 */
   1893 		if ((!is_newentry && (olladdr || lladdr)) ||	/* (2-5) */
   1894 		    (is_newentry && lladdr)) {			/* (7) */
   1895 			ln->ln_router = 1;
   1896 		}
   1897 		break;
   1898 	}
   1899 
   1900 	/*
   1901 	 * When the link-layer address of a router changes, select the
   1902 	 * best router again.  In particular, when the neighbor entry is newly
   1903 	 * created, it might affect the selection policy.
   1904 	 * Question: can we restrict the first condition to the "is_newentry"
   1905 	 * case?
   1906 	 * XXX: when we hear an RA from a new router with the link-layer
   1907 	 * address option, defrouter_select() is called twice, since
   1908 	 * defrtrlist_update called the function as well.  However, I believe
   1909 	 * we can compromise the overhead, since it only happens the first
   1910 	 * time.
   1911 	 * XXX: although defrouter_select() should not have a bad effect
   1912 	 * for those are not autoconfigured hosts, we explicitly avoid such
   1913 	 * cases for safety.
   1914 	 */
   1915 	if (do_update && ln->ln_router && !ip6_forwarding &&
   1916 	    nd6_accepts_rtadv(ndi))
   1917 		defrouter_select();
   1918 
   1919 	return rt;
   1920 }
   1921 
   1922 static void
   1923 nd6_slowtimo(void *ignored_arg)
   1924 {
   1925 	struct nd_ifinfo *nd6if;
   1926 	struct ifnet *ifp;
   1927 
   1928 	mutex_enter(softnet_lock);
   1929 	KERNEL_LOCK(1, NULL);
   1930       	callout_reset(&nd6_slowtimo_ch, ND6_SLOWTIMER_INTERVAL * hz,
   1931 	    nd6_slowtimo, NULL);
   1932 	TAILQ_FOREACH(ifp, &ifnet, if_list) {
   1933 		nd6if = ND_IFINFO(ifp);
   1934 		if (nd6if->basereachable && /* already initialized */
   1935 		    (nd6if->recalctm -= ND6_SLOWTIMER_INTERVAL) <= 0) {
   1936 			/*
   1937 			 * Since reachable time rarely changes by router
   1938 			 * advertisements, we SHOULD insure that a new random
   1939 			 * value gets recomputed at least once every few hours.
   1940 			 * (RFC 2461, 6.3.4)
   1941 			 */
   1942 			nd6if->recalctm = nd6_recalc_reachtm_interval;
   1943 			nd6if->reachable = ND_COMPUTE_RTIME(nd6if->basereachable);
   1944 		}
   1945 	}
   1946 	KERNEL_UNLOCK_ONE(NULL);
   1947 	mutex_exit(softnet_lock);
   1948 }
   1949 
   1950 #define senderr(e) { error = (e); goto bad;}
   1951 int
   1952 nd6_output(struct ifnet *ifp, struct ifnet *origifp, struct mbuf *m0,
   1953     const struct sockaddr_in6 *dst, struct rtentry *rt0)
   1954 {
   1955 	struct mbuf *m = m0;
   1956 	struct rtentry *rt = rt0;
   1957 	struct sockaddr_in6 *gw6 = NULL;
   1958 	struct llinfo_nd6 *ln = NULL;
   1959 	int error = 0;
   1960 
   1961 	if (IN6_IS_ADDR_MULTICAST(&dst->sin6_addr))
   1962 		goto sendpkt;
   1963 
   1964 	if (nd6_need_cache(ifp) == 0)
   1965 		goto sendpkt;
   1966 
   1967 	/*
   1968 	 * next hop determination.  This routine is derived from ether_output.
   1969 	 */
   1970 	if (rt) {
   1971 		if ((rt->rt_flags & RTF_UP) == 0) {
   1972 			if ((rt0 = rt = rtalloc1(sin6tocsa(dst), 1)) != NULL) {
   1973 				rt->rt_refcnt--;
   1974 				if (rt->rt_ifp != ifp)
   1975 					senderr(EHOSTUNREACH);
   1976 			} else
   1977 				senderr(EHOSTUNREACH);
   1978 		}
   1979 
   1980 		if (rt->rt_flags & RTF_GATEWAY) {
   1981 			gw6 = (struct sockaddr_in6 *)rt->rt_gateway;
   1982 
   1983 			/*
   1984 			 * We skip link-layer address resolution and NUD
   1985 			 * if the gateway is not a neighbor from ND point
   1986 			 * of view, regardless of the value of nd_ifinfo.flags.
   1987 			 * The second condition is a bit tricky; we skip
   1988 			 * if the gateway is our own address, which is
   1989 			 * sometimes used to install a route to a p2p link.
   1990 			 */
   1991 			if (!nd6_is_addr_neighbor(gw6, ifp) ||
   1992 			    in6ifa_ifpwithaddr(ifp, &gw6->sin6_addr)) {
   1993 				/*
   1994 				 * We allow this kind of tricky route only
   1995 				 * when the outgoing interface is p2p.
   1996 				 * XXX: we may need a more generic rule here.
   1997 				 */
   1998 				if ((ifp->if_flags & IFF_POINTOPOINT) == 0)
   1999 					senderr(EHOSTUNREACH);
   2000 
   2001 				goto sendpkt;
   2002 			}
   2003 
   2004 			if (rt->rt_gwroute == NULL)
   2005 				goto lookup;
   2006 			if (((rt = rt->rt_gwroute)->rt_flags & RTF_UP) == 0) {
   2007 				rtfree(rt); rt = rt0;
   2008 			lookup:
   2009 				rt->rt_gwroute = rtalloc1(rt->rt_gateway, 1);
   2010 				if ((rt = rt->rt_gwroute) == NULL)
   2011 					senderr(EHOSTUNREACH);
   2012 				/* the "G" test below also prevents rt == rt0 */
   2013 				if ((rt->rt_flags & RTF_GATEWAY) ||
   2014 				    (rt->rt_ifp != ifp)) {
   2015 					rt->rt_refcnt--;
   2016 					rt0->rt_gwroute = NULL;
   2017 					senderr(EHOSTUNREACH);
   2018 				}
   2019 			}
   2020 		}
   2021 	}
   2022 
   2023 	/*
   2024 	 * Address resolution or Neighbor Unreachability Detection
   2025 	 * for the next hop.
   2026 	 * At this point, the destination of the packet must be a unicast
   2027 	 * or an anycast address(i.e. not a multicast).
   2028 	 */
   2029 
   2030 	/* Look up the neighbor cache for the nexthop */
   2031 	if (rt != NULL && (rt->rt_flags & RTF_LLINFO) != 0)
   2032 		ln = (struct llinfo_nd6 *)rt->rt_llinfo;
   2033 	else {
   2034 		/*
   2035 		 * Since nd6_is_addr_neighbor() internally calls nd6_lookup(),
   2036 		 * the condition below is not very efficient.  But we believe
   2037 		 * it is tolerable, because this should be a rare case.
   2038 		 */
   2039 		if (nd6_is_addr_neighbor(dst, ifp) &&
   2040 		    (rt = nd6_lookup(&dst->sin6_addr, 1, ifp)) != NULL)
   2041 			ln = (struct llinfo_nd6 *)rt->rt_llinfo;
   2042 	}
   2043 	if (ln == NULL || rt == NULL) {
   2044 		if ((ifp->if_flags & IFF_POINTOPOINT) == 0 &&
   2045 		    !(ND_IFINFO(ifp)->flags & ND6_IFF_PERFORMNUD)) {
   2046 			log(LOG_DEBUG,
   2047 			    "nd6_output: can't allocate llinfo for %s "
   2048 			    "(ln=%p, rt=%p)\n",
   2049 			    ip6_sprintf(&dst->sin6_addr), ln, rt);
   2050 			senderr(EIO);	/* XXX: good error? */
   2051 		}
   2052 
   2053 		goto sendpkt;	/* send anyway */
   2054 	}
   2055 
   2056 	/* We don't have to do link-layer address resolution on a p2p link. */
   2057 	if ((ifp->if_flags & IFF_POINTOPOINT) != 0 &&
   2058 	    ln->ln_state < ND6_LLINFO_REACHABLE) {
   2059 		ln->ln_state = ND6_LLINFO_STALE;
   2060 		nd6_llinfo_settimer(ln, (long)nd6_gctimer * hz);
   2061 	}
   2062 
   2063 	/*
   2064 	 * The first time we send a packet to a neighbor whose entry is
   2065 	 * STALE, we have to change the state to DELAY and a sets a timer to
   2066 	 * expire in DELAY_FIRST_PROBE_TIME seconds to ensure do
   2067 	 * neighbor unreachability detection on expiration.
   2068 	 * (RFC 2461 7.3.3)
   2069 	 */
   2070 	if (ln->ln_state == ND6_LLINFO_STALE) {
   2071 		ln->ln_asked = 0;
   2072 		ln->ln_state = ND6_LLINFO_DELAY;
   2073 		nd6_llinfo_settimer(ln, (long)nd6_delay * hz);
   2074 	}
   2075 
   2076 	/*
   2077 	 * If the neighbor cache entry has a state other than INCOMPLETE
   2078 	 * (i.e. its link-layer address is already resolved), just
   2079 	 * send the packet.
   2080 	 */
   2081 	if (ln->ln_state > ND6_LLINFO_INCOMPLETE)
   2082 		goto sendpkt;
   2083 
   2084 	/*
   2085 	 * There is a neighbor cache entry, but no ethernet address
   2086 	 * response yet.  Append this latest packet to the end of the
   2087 	 * packet queue in the mbuf, unless the number of the packet
   2088 	 * does not exceed nd6_maxqueuelen.  When it exceeds nd6_maxqueuelen,
   2089 	 * the oldest packet in the queue will be removed.
   2090 	 */
   2091 	if (ln->ln_state == ND6_LLINFO_NOSTATE)
   2092 		ln->ln_state = ND6_LLINFO_INCOMPLETE;
   2093 	if (ln->ln_hold) {
   2094 		struct mbuf *m_hold;
   2095 		int i;
   2096 
   2097 		i = 0;
   2098 		for (m_hold = ln->ln_hold; m_hold; m_hold = m_hold->m_nextpkt) {
   2099 			i++;
   2100 			if (m_hold->m_nextpkt == NULL) {
   2101 				m_hold->m_nextpkt = m;
   2102 				break;
   2103 			}
   2104 		}
   2105 		while (i >= nd6_maxqueuelen) {
   2106 			m_hold = ln->ln_hold;
   2107 			ln->ln_hold = ln->ln_hold->m_nextpkt;
   2108 			m_freem(m_hold);
   2109 			i--;
   2110 		}
   2111 	} else {
   2112 		ln->ln_hold = m;
   2113 	}
   2114 
   2115 	/*
   2116 	 * If there has been no NS for the neighbor after entering the
   2117 	 * INCOMPLETE state, send the first solicitation.
   2118 	 */
   2119 	if (!ND6_LLINFO_PERMANENT(ln) && ln->ln_asked == 0) {
   2120 		ln->ln_asked++;
   2121 		nd6_llinfo_settimer(ln,
   2122 		    (long)ND_IFINFO(ifp)->retrans * hz / 1000);
   2123 		nd6_ns_output(ifp, NULL, &dst->sin6_addr, ln, 0);
   2124 	}
   2125 	return 0;
   2126 
   2127   sendpkt:
   2128 	/* discard the packet if IPv6 operation is disabled on the interface */
   2129 	if ((ND_IFINFO(ifp)->flags & ND6_IFF_IFDISABLED)) {
   2130 		error = ENETDOWN; /* better error? */
   2131 		goto bad;
   2132 	}
   2133 
   2134 #ifdef IPSEC
   2135 	/* clean ipsec history once it goes out of the node */
   2136 	ipsec_delaux(m);
   2137 #endif
   2138 	if ((ifp->if_flags & IFF_LOOPBACK) != 0)
   2139 		return (*ifp->if_output)(origifp, m, sin6tocsa(dst), rt);
   2140 	return (*ifp->if_output)(ifp, m, sin6tocsa(dst), rt);
   2141 
   2142   bad:
   2143 	if (m != NULL)
   2144 		m_freem(m);
   2145 	return error;
   2146 }
   2147 #undef senderr
   2148 
   2149 int
   2150 nd6_need_cache(struct ifnet *ifp)
   2151 {
   2152 	/*
   2153 	 * XXX: we currently do not make neighbor cache on any interface
   2154 	 * other than ARCnet, Ethernet, FDDI and GIF.
   2155 	 *
   2156 	 * RFC2893 says:
   2157 	 * - unidirectional tunnels needs no ND
   2158 	 */
   2159 	switch (ifp->if_type) {
   2160 	case IFT_ARCNET:
   2161 	case IFT_ETHER:
   2162 	case IFT_FDDI:
   2163 	case IFT_IEEE1394:
   2164 	case IFT_CARP:
   2165 	case IFT_GIF:		/* XXX need more cases? */
   2166 	case IFT_PPP:
   2167 	case IFT_TUNNEL:
   2168 		return 1;
   2169 	default:
   2170 		return 0;
   2171 	}
   2172 }
   2173 
   2174 int
   2175 nd6_storelladdr(const struct ifnet *ifp, const struct rtentry *rt,
   2176     struct mbuf *m, const struct sockaddr *dst, uint8_t *lldst,
   2177     size_t dstsize)
   2178 {
   2179 	const struct sockaddr_dl *sdl;
   2180 
   2181 	if (m->m_flags & M_MCAST) {
   2182 		switch (ifp->if_type) {
   2183 		case IFT_ETHER:
   2184 		case IFT_FDDI:
   2185 			ETHER_MAP_IPV6_MULTICAST(&satocsin6(dst)->sin6_addr,
   2186 			    lldst);
   2187 			return 1;
   2188 		case IFT_IEEE1394:
   2189 			memcpy(lldst, ifp->if_broadcastaddr,
   2190 			    MIN(dstsize, ifp->if_addrlen));
   2191 			return 1;
   2192 		case IFT_ARCNET:
   2193 			*lldst = 0;
   2194 			return 1;
   2195 		default:
   2196 			m_freem(m);
   2197 			return 0;
   2198 		}
   2199 	}
   2200 
   2201 	if (rt == NULL) {
   2202 		/* this could happen, if we could not allocate memory */
   2203 		m_freem(m);
   2204 		return 0;
   2205 	}
   2206 	if (rt->rt_gateway->sa_family != AF_LINK) {
   2207 		printf("%s: something odd happens\n", __func__);
   2208 		m_freem(m);
   2209 		return 0;
   2210 	}
   2211 	sdl = satocsdl(rt->rt_gateway);
   2212 	if (sdl->sdl_alen == 0 || sdl->sdl_alen > dstsize) {
   2213 		/* this should be impossible, but we bark here for debugging */
   2214 		printf("%s: sdl_alen == %" PRIu8 ", dst=%s, if=%s\n", __func__,
   2215 		    sdl->sdl_alen, ip6_sprintf(&satocsin6(dst)->sin6_addr),
   2216 		    if_name(ifp));
   2217 		m_freem(m);
   2218 		return 0;
   2219 	}
   2220 
   2221 	memcpy(lldst, CLLADDR(sdl), MIN(dstsize, sdl->sdl_alen));
   2222 	return 1;
   2223 }
   2224 
   2225 static void
   2226 clear_llinfo_pqueue(struct llinfo_nd6 *ln)
   2227 {
   2228 	struct mbuf *m_hold, *m_hold_next;
   2229 
   2230 	for (m_hold = ln->ln_hold; m_hold; m_hold = m_hold_next) {
   2231 		m_hold_next = m_hold->m_nextpkt;
   2232 		m_hold->m_nextpkt = NULL;
   2233 		m_freem(m_hold);
   2234 	}
   2235 
   2236 	ln->ln_hold = NULL;
   2237 	return;
   2238 }
   2239 
   2240 int
   2241 nd6_sysctl(
   2242     int name,
   2243     void *oldp,	/* syscall arg, need copyout */
   2244     size_t *oldlenp,
   2245     void *newp,	/* syscall arg, need copyin */
   2246     size_t newlen
   2247 )
   2248 {
   2249 	void *p;
   2250 	size_t ol;
   2251 	int error;
   2252 
   2253 	error = 0;
   2254 
   2255 	if (newp)
   2256 		return EPERM;
   2257 	if (oldp && !oldlenp)
   2258 		return EINVAL;
   2259 	ol = oldlenp ? *oldlenp : 0;
   2260 
   2261 	if (oldp) {
   2262 		p = malloc(*oldlenp, M_TEMP, M_WAITOK);
   2263 		if (p == NULL)
   2264 			return ENOMEM;
   2265 	} else
   2266 		p = NULL;
   2267 	switch (name) {
   2268 	case ICMPV6CTL_ND6_DRLIST:
   2269 		error = fill_drlist(p, oldlenp, ol);
   2270 		if (!error && p != NULL && oldp != NULL)
   2271 			error = copyout(p, oldp, *oldlenp);
   2272 		break;
   2273 
   2274 	case ICMPV6CTL_ND6_PRLIST:
   2275 		error = fill_prlist(p, oldlenp, ol);
   2276 		if (!error && p != NULL && oldp != NULL)
   2277 			error = copyout(p, oldp, *oldlenp);
   2278 		break;
   2279 
   2280 	case ICMPV6CTL_ND6_MAXQLEN:
   2281 		break;
   2282 
   2283 	default:
   2284 		error = ENOPROTOOPT;
   2285 		break;
   2286 	}
   2287 	if (p)
   2288 		free(p, M_TEMP);
   2289 
   2290 	return error;
   2291 }
   2292 
   2293 static int
   2294 fill_drlist(void *oldp, size_t *oldlenp, size_t ol)
   2295 {
   2296 	int error = 0, s;
   2297 	struct in6_defrouter *d = NULL, *de = NULL;
   2298 	struct nd_defrouter *dr;
   2299 	size_t l;
   2300 
   2301 	s = splsoftnet();
   2302 
   2303 	if (oldp) {
   2304 		d = (struct in6_defrouter *)oldp;
   2305 		de = (struct in6_defrouter *)((char *)oldp + *oldlenp);
   2306 	}
   2307 	l = 0;
   2308 
   2309 	TAILQ_FOREACH(dr, &nd_defrouter, dr_entry) {
   2310 
   2311 		if (oldp && d + 1 <= de) {
   2312 			memset(d, 0, sizeof(*d));
   2313 			sockaddr_in6_init(&d->rtaddr, &dr->rtaddr, 0, 0, 0);
   2314 			if (sa6_recoverscope(&d->rtaddr)) {
   2315 				log(LOG_ERR,
   2316 				    "scope error in router list (%s)\n",
   2317 				    ip6_sprintf(&d->rtaddr.sin6_addr));
   2318 				/* XXX: press on... */
   2319 			}
   2320 			d->flags = dr->flags;
   2321 			d->rtlifetime = dr->rtlifetime;
   2322 			d->expire = dr->expire;
   2323 			d->if_index = dr->ifp->if_index;
   2324 		}
   2325 
   2326 		l += sizeof(*d);
   2327 		if (d)
   2328 			d++;
   2329 	}
   2330 
   2331 	if (oldp) {
   2332 		if (l > ol)
   2333 			error = ENOMEM;
   2334 	}
   2335 	if (oldlenp)
   2336 		*oldlenp = l;	/* (void *)d - (void *)oldp */
   2337 
   2338 	splx(s);
   2339 
   2340 	return error;
   2341 }
   2342 
   2343 static int
   2344 fill_prlist(void *oldp, size_t *oldlenp, size_t ol)
   2345 {
   2346 	int error = 0, s;
   2347 	struct nd_prefix *pr;
   2348 	struct in6_prefix *p = NULL;
   2349 	struct in6_prefix *pe = NULL;
   2350 	size_t l;
   2351 
   2352 	s = splsoftnet();
   2353 
   2354 	if (oldp) {
   2355 		p = (struct in6_prefix *)oldp;
   2356 		pe = (struct in6_prefix *)((char *)oldp + *oldlenp);
   2357 	}
   2358 	l = 0;
   2359 
   2360 	LIST_FOREACH(pr, &nd_prefix, ndpr_entry) {
   2361 		u_short advrtrs;
   2362 		size_t advance;
   2363 		struct sockaddr_in6 *sin6;
   2364 		struct sockaddr_in6 *s6;
   2365 		struct nd_pfxrouter *pfr;
   2366 
   2367 		if (oldp && p + 1 <= pe)
   2368 		{
   2369 			memset(p, 0, sizeof(*p));
   2370 			sin6 = (struct sockaddr_in6 *)(p + 1);
   2371 
   2372 			p->prefix = pr->ndpr_prefix;
   2373 			if (sa6_recoverscope(&p->prefix)) {
   2374 				log(LOG_ERR,
   2375 				    "scope error in prefix list (%s)\n",
   2376 				    ip6_sprintf(&p->prefix.sin6_addr));
   2377 				/* XXX: press on... */
   2378 			}
   2379 			p->raflags = pr->ndpr_raf;
   2380 			p->prefixlen = pr->ndpr_plen;
   2381 			p->vltime = pr->ndpr_vltime;
   2382 			p->pltime = pr->ndpr_pltime;
   2383 			p->if_index = pr->ndpr_ifp->if_index;
   2384 			if (pr->ndpr_vltime == ND6_INFINITE_LIFETIME)
   2385 				p->expire = 0;
   2386 			else {
   2387 				time_t maxexpire;
   2388 
   2389 				/* XXX: we assume time_t is signed. */
   2390 				maxexpire = (-1) &
   2391 				    ~((time_t)1 <<
   2392 				    ((sizeof(maxexpire) * 8) - 1));
   2393 				if (pr->ndpr_vltime <
   2394 				    maxexpire - pr->ndpr_lastupdate) {
   2395 					p->expire = pr->ndpr_lastupdate +
   2396 						pr->ndpr_vltime;
   2397 				} else
   2398 					p->expire = maxexpire;
   2399 			}
   2400 			p->refcnt = pr->ndpr_refcnt;
   2401 			p->flags = pr->ndpr_stateflags;
   2402 			p->origin = PR_ORIG_RA;
   2403 			advrtrs = 0;
   2404 			LIST_FOREACH(pfr, &pr->ndpr_advrtrs, pfr_entry) {
   2405 				if ((void *)&sin6[advrtrs + 1] > (void *)pe) {
   2406 					advrtrs++;
   2407 					continue;
   2408 				}
   2409 				s6 = &sin6[advrtrs];
   2410 				sockaddr_in6_init(s6, &pfr->router->rtaddr,
   2411 				    0, 0, 0);
   2412 				if (sa6_recoverscope(s6)) {
   2413 					log(LOG_ERR,
   2414 					    "scope error in "
   2415 					    "prefix list (%s)\n",
   2416 					    ip6_sprintf(&pfr->router->rtaddr));
   2417 				}
   2418 				advrtrs++;
   2419 			}
   2420 			p->advrtrs = advrtrs;
   2421 		}
   2422 		else {
   2423 			advrtrs = 0;
   2424 			LIST_FOREACH(pfr, &pr->ndpr_advrtrs, pfr_entry)
   2425 				advrtrs++;
   2426 		}
   2427 
   2428 		advance = sizeof(*p) + sizeof(*sin6) * advrtrs;
   2429 		l += advance;
   2430 		if (p)
   2431 			p = (struct in6_prefix *)((char *)p + advance);
   2432 	}
   2433 
   2434 	if (oldp) {
   2435 		*oldlenp = l;	/* (void *)d - (void *)oldp */
   2436 		if (l > ol)
   2437 			error = ENOMEM;
   2438 	} else
   2439 		*oldlenp = l;
   2440 
   2441 	splx(s);
   2442 
   2443 	return error;
   2444 }
   2445