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rtsock.c revision 1.238.2.1
      1 /*	$NetBSD: rtsock.c,v 1.238.2.1 2018/03/15 05:10:06 pgoyette Exp $	*/
      2 
      3 /*
      4  * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
      5  * All rights reserved.
      6  *
      7  * Redistribution and use in source and binary forms, with or without
      8  * modification, are permitted provided that the following conditions
      9  * are met:
     10  * 1. Redistributions of source code must retain the above copyright
     11  *    notice, this list of conditions and the following disclaimer.
     12  * 2. Redistributions in binary form must reproduce the above copyright
     13  *    notice, this list of conditions and the following disclaimer in the
     14  *    documentation and/or other materials provided with the distribution.
     15  * 3. Neither the name of the project nor the names of its contributors
     16  *    may be used to endorse or promote products derived from this software
     17  *    without specific prior written permission.
     18  *
     19  * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
     20  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     21  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     22  * ARE DISCLAIMED.  IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
     23  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     24  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     25  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     26  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     27  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     28  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     29  * SUCH DAMAGE.
     30  */
     31 
     32 /*
     33  * Copyright (c) 1988, 1991, 1993
     34  *	The Regents of the University of California.  All rights reserved.
     35  *
     36  * Redistribution and use in source and binary forms, with or without
     37  * modification, are permitted provided that the following conditions
     38  * are met:
     39  * 1. Redistributions of source code must retain the above copyright
     40  *    notice, this list of conditions and the following disclaimer.
     41  * 2. Redistributions in binary form must reproduce the above copyright
     42  *    notice, this list of conditions and the following disclaimer in the
     43  *    documentation and/or other materials provided with the distribution.
     44  * 3. Neither the name of the University nor the names of its contributors
     45  *    may be used to endorse or promote products derived from this software
     46  *    without specific prior written permission.
     47  *
     48  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     49  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     50  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     51  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     52  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     53  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     54  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     55  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     56  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     57  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     58  * SUCH DAMAGE.
     59  *
     60  *	@(#)rtsock.c	8.7 (Berkeley) 10/12/95
     61  */
     62 
     63 #include <sys/cdefs.h>
     64 __KERNEL_RCSID(0, "$NetBSD: rtsock.c,v 1.238.2.1 2018/03/15 05:10:06 pgoyette Exp $");
     65 
     66 #ifdef _KERNEL_OPT
     67 #include "opt_inet.h"
     68 #include "opt_mpls.h"
     69 #include "opt_compat_netbsd.h"
     70 #include "opt_sctp.h"
     71 #include "opt_net_mpsafe.h"
     72 #endif
     73 
     74 #include <sys/param.h>
     75 #include <sys/systm.h>
     76 #include <sys/proc.h>
     77 #include <sys/socket.h>
     78 #include <sys/socketvar.h>
     79 #include <sys/domain.h>
     80 #include <sys/protosw.h>
     81 #include <sys/sysctl.h>
     82 #include <sys/kauth.h>
     83 #include <sys/kmem.h>
     84 #include <sys/intr.h>
     85 #include <sys/condvar.h>
     86 
     87 #include <net/if.h>
     88 #include <net/if_llatbl.h>
     89 #include <net/if_types.h>
     90 #include <net/route.h>
     91 #include <net/raw_cb.h>
     92 
     93 #include <netinet/in_var.h>
     94 #include <netinet/if_inarp.h>
     95 
     96 #include <netmpls/mpls.h>
     97 
     98 #ifdef SCTP
     99 extern void sctp_add_ip_address(struct ifaddr *);
    100 extern void sctp_delete_ip_address(struct ifaddr *);
    101 #endif
    102 
    103 #include <compat/net/if.h>
    104 #include <compat/net/route.h>
    105 #include <compat/net/route_70.h>
    106 
    107 #ifdef COMPAT_RTSOCK
    108 #define	RTM_XVERSION	RTM_OVERSION
    109 #define	RTM_XNEWADDR	RTM_ONEWADDR
    110 #define	RTM_XDELADDR	RTM_ODELADDR
    111 #define	RTM_XCHGADDR	RTM_OCHGADDR
    112 #define	RT_XADVANCE(a,b) RT_OADVANCE(a,b)
    113 #define	RT_XROUNDUP(n)	RT_OROUNDUP(n)
    114 #define	PF_XROUTE	PF_OROUTE
    115 #define	rt_xmsghdr	rt_msghdr50
    116 #define	if_xmsghdr	if_msghdr	/* if_msghdr50 is for RTM_OIFINFO */
    117 #define	ifa_xmsghdr	ifa_msghdr50
    118 #define	if_xannouncemsghdr	if_announcemsghdr50
    119 #define	COMPATNAME(x)	compat_50_ ## x
    120 #define	DOMAINNAME	"oroute"
    121 CTASSERT(sizeof(struct ifa_xmsghdr) == 20);
    122 DOMAIN_DEFINE(compat_50_routedomain); /* forward declare and add to link set */
    123 #undef COMPAT_70
    124 #else /* COMPAT_RTSOCK */
    125 #define	RTM_XVERSION	RTM_VERSION
    126 #define	RTM_XNEWADDR	RTM_NEWADDR
    127 #define	RTM_XDELADDR	RTM_DELADDR
    128 #define	RTM_XCHGADDR	RTM_CHGADDR
    129 #define	RT_XADVANCE(a,b) RT_ADVANCE(a,b)
    130 #define	RT_XROUNDUP(n)	RT_ROUNDUP(n)
    131 #define	PF_XROUTE	PF_ROUTE
    132 #define	rt_xmsghdr	rt_msghdr
    133 #define	if_xmsghdr	if_msghdr
    134 #define	ifa_xmsghdr	ifa_msghdr
    135 #define	if_xannouncemsghdr	if_announcemsghdr
    136 #define	COMPATNAME(x)	x
    137 #define	DOMAINNAME	"route"
    138 CTASSERT(sizeof(struct ifa_xmsghdr) == 32);
    139 #ifdef COMPAT_50
    140 #define	COMPATCALL(name, args)	compat_50_ ## name args
    141 #endif
    142 DOMAIN_DEFINE(routedomain); /* forward declare and add to link set */
    143 #undef COMPAT_50
    144 #undef COMPAT_14
    145 #endif /* COMPAT_RTSOCK */
    146 
    147 #ifndef COMPATCALL
    148 #define	COMPATCALL(name, args)	do { } while (/*CONSTCOND*/ 0)
    149 #endif
    150 
    151 #ifdef RTSOCK_DEBUG
    152 #define RT_IN_PRINT(info, b, a) (in_print((b), sizeof(b), \
    153     &((const struct sockaddr_in *)(info)->rti_info[(a)])->sin_addr), (b))
    154 #endif /* RTSOCK_DEBUG */
    155 
    156 struct route_info COMPATNAME(route_info) = {
    157 	.ri_dst = { .sa_len = 2, .sa_family = PF_XROUTE, },
    158 	.ri_src = { .sa_len = 2, .sa_family = PF_XROUTE, },
    159 	.ri_maxqlen = IFQ_MAXLEN,
    160 };
    161 
    162 #define	PRESERVED_RTF	(RTF_UP | RTF_GATEWAY | RTF_HOST | RTF_DONE | RTF_MASK)
    163 
    164 static void COMPATNAME(route_init)(void);
    165 static int COMPATNAME(route_output)(struct mbuf *, struct socket *);
    166 
    167 static int rt_xaddrs(u_char, const char *, const char *, struct rt_addrinfo *);
    168 static struct mbuf *rt_makeifannouncemsg(struct ifnet *, int, int,
    169     struct rt_addrinfo *);
    170 static int rt_msg2(int, struct rt_addrinfo *, void *, struct rt_walkarg *, int *);
    171 static void rt_setmetrics(int, const struct rt_xmsghdr *, struct rtentry *);
    172 static void rtm_setmetrics(const struct rtentry *, struct rt_xmsghdr *);
    173 static void sysctl_net_route_setup(struct sysctllog **);
    174 static int sysctl_dumpentry(struct rtentry *, void *);
    175 static int sysctl_iflist(int, struct rt_walkarg *, int);
    176 static int sysctl_rtable(SYSCTLFN_PROTO);
    177 static void rt_adjustcount(int, int);
    178 
    179 static const struct protosw COMPATNAME(route_protosw)[];
    180 
    181 struct routecb {
    182 	struct rawcb	rocb_rcb;
    183 	unsigned int	rocb_msgfilter;
    184 #define	RTMSGFILTER(m)	(1U << (m))
    185 };
    186 #define sotoroutecb(so)	((struct routecb *)(so)->so_pcb)
    187 
    188 static struct rawcbhead rt_rawcb;
    189 #ifdef NET_MPSAFE
    190 static kmutex_t *rt_so_mtx;
    191 
    192 static bool rt_updating = false;
    193 static kcondvar_t rt_update_cv;
    194 #endif
    195 
    196 #ifndef COMPAT_RTSOCK
    197 static int
    198 sysctl_iflist_addr(struct rt_walkarg *, struct ifaddr *, struct rt_addrinfo *);
    199 
    200 /*
    201  * Compat linkage
    202  */
    203 static void stub_70_rt_newaddrmsg1(int cmd, struct ifaddr*ifa)
    204 {
    205 
    206 	/* nothing */
    207 }
    208 
    209 void (*vec_70_rt_newaddrmsg1)(int, struct ifaddr *) = stub_70_rt_newaddrmsg1;
    210 int (*vec_70_iflist_addr)(struct rt_walkarg *, struct ifaddr *,
    211 		       struct rt_addrinfo *)= sysctl_iflist_addr;
    212 #endif
    213 
    214 static void
    215 rt_adjustcount(int af, int cnt)
    216 {
    217 	struct route_cb * const cb = &COMPATNAME(route_info).ri_cb;
    218 
    219 	cb->any_count += cnt;
    220 
    221 	switch (af) {
    222 	case AF_INET:
    223 		cb->ip_count += cnt;
    224 		return;
    225 #ifdef INET6
    226 	case AF_INET6:
    227 		cb->ip6_count += cnt;
    228 		return;
    229 #endif
    230 	case AF_MPLS:
    231 		cb->mpls_count += cnt;
    232 		return;
    233 	}
    234 }
    235 
    236 static int
    237 COMPATNAME(route_filter)(struct mbuf *m, struct sockproto *proto,
    238     struct rawcb *rp)
    239 {
    240 	struct routecb *rop = (struct routecb *)rp;
    241 	struct rt_xmsghdr *rtm;
    242 
    243 	KASSERT(m != NULL);
    244 	KASSERT(proto != NULL);
    245 	KASSERT(rp != NULL);
    246 
    247 	/* Wrong family for this socket. */
    248 	if (proto->sp_family != PF_ROUTE)
    249 		return ENOPROTOOPT;
    250 
    251 	/* If no filter set, just return. */
    252 	if (rop->rocb_msgfilter == 0)
    253 		return 0;
    254 
    255 	/* Ensure we can access rtm_type */
    256 	if (m->m_len <
    257 	    offsetof(struct rt_xmsghdr, rtm_type) + sizeof(rtm->rtm_type))
    258 		return EINVAL;
    259 
    260 	rtm = mtod(m, struct rt_xmsghdr *);
    261 	/* If the rtm type is filtered out, return a positive. */
    262 	if (!(rop->rocb_msgfilter & RTMSGFILTER(rtm->rtm_type)))
    263 		return EEXIST;
    264 
    265 	/* Passed the filter. */
    266 	return 0;
    267 }
    268 
    269 static void
    270 rt_pr_init(void)
    271 {
    272 
    273 	LIST_INIT(&rt_rawcb);
    274 }
    275 
    276 static int
    277 COMPATNAME(route_attach)(struct socket *so, int proto)
    278 {
    279 	struct rawcb *rp;
    280 	struct routecb *rop;
    281 	int s, error;
    282 
    283 	KASSERT(sotorawcb(so) == NULL);
    284 	rop = kmem_zalloc(sizeof(*rop), KM_SLEEP);
    285 	rp = &rop->rocb_rcb;
    286 	rp->rcb_len = sizeof(*rop);
    287 	so->so_pcb = rp;
    288 
    289 	s = splsoftnet();
    290 
    291 #ifdef NET_MPSAFE
    292 	KASSERT(so->so_lock == NULL);
    293 	mutex_obj_hold(rt_so_mtx);
    294 	so->so_lock = rt_so_mtx;
    295 	solock(so);
    296 #endif
    297 
    298 	if ((error = raw_attach(so, proto, &rt_rawcb)) == 0) {
    299 		rt_adjustcount(rp->rcb_proto.sp_protocol, 1);
    300 		rp->rcb_laddr = &COMPATNAME(route_info).ri_src;
    301 		rp->rcb_faddr = &COMPATNAME(route_info).ri_dst;
    302 		rp->rcb_filter = COMPATNAME(route_filter);
    303 	}
    304 	splx(s);
    305 
    306 	if (error) {
    307 		kmem_free(rop, sizeof(*rop));
    308 		so->so_pcb = NULL;
    309 		return error;
    310 	}
    311 
    312 	soisconnected(so);
    313 	so->so_options |= SO_USELOOPBACK;
    314 	KASSERT(solocked(so));
    315 
    316 	return error;
    317 }
    318 
    319 static void
    320 COMPATNAME(route_detach)(struct socket *so)
    321 {
    322 	struct rawcb *rp = sotorawcb(so);
    323 	int s;
    324 
    325 	KASSERT(rp != NULL);
    326 	KASSERT(solocked(so));
    327 
    328 	s = splsoftnet();
    329 	rt_adjustcount(rp->rcb_proto.sp_protocol, -1);
    330 	raw_detach(so);
    331 	splx(s);
    332 }
    333 
    334 static int
    335 COMPATNAME(route_accept)(struct socket *so, struct sockaddr *nam)
    336 {
    337 	KASSERT(solocked(so));
    338 
    339 	panic("route_accept");
    340 
    341 	return EOPNOTSUPP;
    342 }
    343 
    344 static int
    345 COMPATNAME(route_bind)(struct socket *so, struct sockaddr *nam, struct lwp *l)
    346 {
    347 	KASSERT(solocked(so));
    348 
    349 	return EOPNOTSUPP;
    350 }
    351 
    352 static int
    353 COMPATNAME(route_listen)(struct socket *so, struct lwp *l)
    354 {
    355 	KASSERT(solocked(so));
    356 
    357 	return EOPNOTSUPP;
    358 }
    359 
    360 static int
    361 COMPATNAME(route_connect)(struct socket *so, struct sockaddr *nam, struct lwp *l)
    362 {
    363 	KASSERT(solocked(so));
    364 
    365 	return EOPNOTSUPP;
    366 }
    367 
    368 static int
    369 COMPATNAME(route_connect2)(struct socket *so, struct socket *so2)
    370 {
    371 	KASSERT(solocked(so));
    372 
    373 	return EOPNOTSUPP;
    374 }
    375 
    376 static int
    377 COMPATNAME(route_disconnect)(struct socket *so)
    378 {
    379 	struct rawcb *rp = sotorawcb(so);
    380 	int s;
    381 
    382 	KASSERT(solocked(so));
    383 	KASSERT(rp != NULL);
    384 
    385 	s = splsoftnet();
    386 	soisdisconnected(so);
    387 	raw_disconnect(rp);
    388 	splx(s);
    389 
    390 	return 0;
    391 }
    392 
    393 static int
    394 COMPATNAME(route_shutdown)(struct socket *so)
    395 {
    396 	int s;
    397 
    398 	KASSERT(solocked(so));
    399 
    400 	/*
    401 	 * Mark the connection as being incapable of further input.
    402 	 */
    403 	s = splsoftnet();
    404 	socantsendmore(so);
    405 	splx(s);
    406 	return 0;
    407 }
    408 
    409 static int
    410 COMPATNAME(route_abort)(struct socket *so)
    411 {
    412 	KASSERT(solocked(so));
    413 
    414 	panic("route_abort");
    415 
    416 	return EOPNOTSUPP;
    417 }
    418 
    419 static int
    420 COMPATNAME(route_ioctl)(struct socket *so, u_long cmd, void *nam,
    421     struct ifnet * ifp)
    422 {
    423 	return EOPNOTSUPP;
    424 }
    425 
    426 static int
    427 COMPATNAME(route_stat)(struct socket *so, struct stat *ub)
    428 {
    429 	KASSERT(solocked(so));
    430 
    431 	return 0;
    432 }
    433 
    434 static int
    435 COMPATNAME(route_peeraddr)(struct socket *so, struct sockaddr *nam)
    436 {
    437 	struct rawcb *rp = sotorawcb(so);
    438 
    439 	KASSERT(solocked(so));
    440 	KASSERT(rp != NULL);
    441 	KASSERT(nam != NULL);
    442 
    443 	if (rp->rcb_faddr == NULL)
    444 		return ENOTCONN;
    445 
    446 	raw_setpeeraddr(rp, nam);
    447 	return 0;
    448 }
    449 
    450 static int
    451 COMPATNAME(route_sockaddr)(struct socket *so, struct sockaddr *nam)
    452 {
    453 	struct rawcb *rp = sotorawcb(so);
    454 
    455 	KASSERT(solocked(so));
    456 	KASSERT(rp != NULL);
    457 	KASSERT(nam != NULL);
    458 
    459 	if (rp->rcb_faddr == NULL)
    460 		return ENOTCONN;
    461 
    462 	raw_setsockaddr(rp, nam);
    463 	return 0;
    464 }
    465 
    466 static int
    467 COMPATNAME(route_rcvd)(struct socket *so, int flags, struct lwp *l)
    468 {
    469 	KASSERT(solocked(so));
    470 
    471 	return EOPNOTSUPP;
    472 }
    473 
    474 static int
    475 COMPATNAME(route_recvoob)(struct socket *so, struct mbuf *m, int flags)
    476 {
    477 	KASSERT(solocked(so));
    478 
    479 	return EOPNOTSUPP;
    480 }
    481 
    482 static int
    483 COMPATNAME(route_send)(struct socket *so, struct mbuf *m,
    484     struct sockaddr *nam, struct mbuf *control, struct lwp *l)
    485 {
    486 	int error = 0;
    487 	int s;
    488 
    489 	KASSERT(solocked(so));
    490 	KASSERT(so->so_proto == &COMPATNAME(route_protosw)[0]);
    491 
    492 	s = splsoftnet();
    493 	error = raw_send(so, m, nam, control, l, &COMPATNAME(route_output));
    494 	splx(s);
    495 
    496 	return error;
    497 }
    498 
    499 static int
    500 COMPATNAME(route_sendoob)(struct socket *so, struct mbuf *m,
    501     struct mbuf *control)
    502 {
    503 	KASSERT(solocked(so));
    504 
    505 	m_freem(m);
    506 	m_freem(control);
    507 
    508 	return EOPNOTSUPP;
    509 }
    510 static int
    511 COMPATNAME(route_purgeif)(struct socket *so, struct ifnet *ifp)
    512 {
    513 
    514 	panic("route_purgeif");
    515 
    516 	return EOPNOTSUPP;
    517 }
    518 
    519 #if defined(INET) || defined(INET6)
    520 static int
    521 route_get_sdl_index(struct rt_addrinfo *info, int *sdl_index)
    522 {
    523 	struct rtentry *nrt;
    524 	int error;
    525 
    526 	error = rtrequest1(RTM_GET, info, &nrt);
    527 	if (error != 0)
    528 		return error;
    529 	/*
    530 	 * nrt->rt_ifp->if_index may not be correct
    531 	 * due to changing to ifplo0.
    532 	 */
    533 	*sdl_index = satosdl(nrt->rt_gateway)->sdl_index;
    534 	rt_unref(nrt);
    535 
    536 	return 0;
    537 }
    538 #endif
    539 
    540 static void
    541 route_get_sdl(const struct ifnet *ifp, const struct sockaddr *dst,
    542     struct sockaddr_dl *sdl, int *flags)
    543 {
    544 	struct llentry *la;
    545 
    546 	KASSERT(ifp != NULL);
    547 
    548 	IF_AFDATA_RLOCK(ifp);
    549 	switch (dst->sa_family) {
    550 	case AF_INET:
    551 		la = lla_lookup(LLTABLE(ifp), 0, dst);
    552 		break;
    553 	case AF_INET6:
    554 		la = lla_lookup(LLTABLE6(ifp), 0, dst);
    555 		break;
    556 	default:
    557 		la = NULL;
    558 		KASSERTMSG(0, "Invalid AF=%d\n", dst->sa_family);
    559 		break;
    560 	}
    561 	IF_AFDATA_RUNLOCK(ifp);
    562 
    563 	void *a = (LLE_IS_VALID(la) && (la->la_flags & LLE_VALID) == LLE_VALID)
    564 	    ? &la->ll_addr : NULL;
    565 
    566 	a = sockaddr_dl_init(sdl, sizeof(*sdl), ifp->if_index, ifp->if_type,
    567 	    NULL, 0, a, ifp->if_addrlen);
    568 	KASSERT(a != NULL);
    569 
    570 	if (la != NULL) {
    571 		*flags = la->la_flags;
    572 		LLE_RUNLOCK(la);
    573 	}
    574 }
    575 
    576 static int
    577 route_output_report(struct rtentry *rt, struct rt_addrinfo *info,
    578     struct rt_xmsghdr *rtm, struct rt_xmsghdr **new_rtm)
    579 {
    580 	int len;
    581 
    582 	if (rtm->rtm_addrs & (RTA_IFP | RTA_IFA)) {
    583 		const struct ifaddr *rtifa;
    584 		const struct ifnet *ifp = rt->rt_ifp;
    585 
    586 		info->rti_info[RTAX_IFP] = ifp->if_dl->ifa_addr;
    587 		/* rtifa used to be simply rt->rt_ifa.
    588 		 * If rt->rt_ifa != NULL, then
    589 		 * rt_get_ifa() != NULL.  So this
    590 		 * ought to still be safe. --dyoung
    591 		 */
    592 		rtifa = rt_get_ifa(rt);
    593 		info->rti_info[RTAX_IFA] = rtifa->ifa_addr;
    594 #ifdef RTSOCK_DEBUG
    595 		if (info->rti_info[RTAX_IFA]->sa_family == AF_INET) {
    596 			char ibuf[INET_ADDRSTRLEN];
    597 			char abuf[INET_ADDRSTRLEN];
    598 			printf("%s: copying out RTAX_IFA %s "
    599 			    "for info->rti_info[RTAX_DST] %s "
    600 			    "ifa_getifa %p ifa_seqno %p\n",
    601 			    __func__,
    602 			    RT_IN_PRINT(info, ibuf, RTAX_IFA),
    603 			    RT_IN_PRINT(info, abuf, RTAX_DST),
    604 			    (void *)rtifa->ifa_getifa,
    605 			    rtifa->ifa_seqno);
    606 		}
    607 #endif /* RTSOCK_DEBUG */
    608 		if (ifp->if_flags & IFF_POINTOPOINT)
    609 			info->rti_info[RTAX_BRD] = rtifa->ifa_dstaddr;
    610 		else
    611 			info->rti_info[RTAX_BRD] = NULL;
    612 		rtm->rtm_index = ifp->if_index;
    613 	}
    614 	(void)rt_msg2(rtm->rtm_type, info, NULL, NULL, &len);
    615 	if (len > rtm->rtm_msglen) {
    616 		struct rt_xmsghdr *old_rtm = rtm;
    617 		R_Malloc(*new_rtm, struct rt_xmsghdr *, len);
    618 		if (*new_rtm == NULL)
    619 			return ENOBUFS;
    620 		(void)memcpy(*new_rtm, old_rtm, old_rtm->rtm_msglen);
    621 		rtm = *new_rtm;
    622 	}
    623 	(void)rt_msg2(rtm->rtm_type, info, rtm, NULL, 0);
    624 	rtm->rtm_flags = rt->rt_flags;
    625 	rtm_setmetrics(rt, rtm);
    626 	rtm->rtm_addrs = info->rti_addrs;
    627 
    628 	return 0;
    629 }
    630 
    631 static struct ifaddr *
    632 route_output_get_ifa(const struct rt_addrinfo info, const struct rtentry *rt,
    633     struct ifnet **ifp, struct psref *psref_ifp, struct psref *psref)
    634 {
    635 	struct ifaddr *ifa = NULL;
    636 
    637 	*ifp = NULL;
    638 	if (info.rti_info[RTAX_IFP] != NULL) {
    639 		ifa = ifa_ifwithnet_psref(info.rti_info[RTAX_IFP], psref);
    640 		if (ifa == NULL)
    641 			goto next;
    642 		*ifp = ifa->ifa_ifp;
    643 		if_acquire(*ifp, psref_ifp);
    644 		if (info.rti_info[RTAX_IFA] == NULL &&
    645 		    info.rti_info[RTAX_GATEWAY] == NULL)
    646 			goto next;
    647 		ifa_release(ifa, psref);
    648 		if (info.rti_info[RTAX_IFA] == NULL) {
    649 			/* route change <dst> <gw> -ifp <if> */
    650 			ifa = ifaof_ifpforaddr_psref(info.rti_info[RTAX_GATEWAY],
    651 			    *ifp, psref);
    652 		} else {
    653 			/* route change <dst> -ifp <if> -ifa <addr> */
    654 			ifa = ifa_ifwithaddr_psref(info.rti_info[RTAX_IFA], psref);
    655 			if (ifa != NULL)
    656 				goto out;
    657 			ifa = ifaof_ifpforaddr_psref(info.rti_info[RTAX_IFA],
    658 			    *ifp, psref);
    659 		}
    660 		goto out;
    661 	}
    662 next:
    663 	if (info.rti_info[RTAX_IFA] != NULL) {
    664 		/* route change <dst> <gw> -ifa <addr> */
    665 		ifa = ifa_ifwithaddr_psref(info.rti_info[RTAX_IFA], psref);
    666 		if (ifa != NULL)
    667 			goto out;
    668 	}
    669 	if (info.rti_info[RTAX_GATEWAY] != NULL) {
    670 		/* route change <dst> <gw> */
    671 		ifa = ifa_ifwithroute_psref(rt->rt_flags, rt_getkey(rt),
    672 		    info.rti_info[RTAX_GATEWAY], psref);
    673 	}
    674 out:
    675 	if (ifa != NULL && *ifp == NULL) {
    676 		*ifp = ifa->ifa_ifp;
    677 		if_acquire(*ifp, psref_ifp);
    678 	}
    679 	if (ifa == NULL && *ifp != NULL) {
    680 		if_put(*ifp, psref_ifp);
    681 		*ifp = NULL;
    682 	}
    683 	return ifa;
    684 }
    685 
    686 static int
    687 route_output_change(struct rtentry *rt, struct rt_addrinfo *info,
    688     struct rt_xmsghdr *rtm)
    689 {
    690 	int error = 0;
    691 	struct ifnet *ifp = NULL, *new_ifp = NULL;
    692 	struct ifaddr *ifa = NULL, *new_ifa;
    693 	struct psref psref_ifa, psref_new_ifa, psref_ifp, psref_new_ifp;
    694 	bool newgw, ifp_changed = false;
    695 
    696 	/*
    697 	 * New gateway could require new ifaddr, ifp;
    698 	 * flags may also be different; ifp may be specified
    699 	 * by ll sockaddr when protocol address is ambiguous
    700 	 */
    701 	newgw = info->rti_info[RTAX_GATEWAY] != NULL &&
    702 	    sockaddr_cmp(info->rti_info[RTAX_GATEWAY], rt->rt_gateway) != 0;
    703 
    704 	if (newgw || info->rti_info[RTAX_IFP] != NULL ||
    705 	    info->rti_info[RTAX_IFA] != NULL) {
    706 		ifp = rt_getifp(info, &psref_ifp);
    707 		/* info refers ifp so we need to keep a reference */
    708 		ifa = rt_getifa(info, &psref_ifa);
    709 		if (ifa == NULL) {
    710 			error = ENETUNREACH;
    711 			goto out;
    712 		}
    713 	}
    714 	if (newgw) {
    715 		error = rt_setgate(rt, info->rti_info[RTAX_GATEWAY]);
    716 		if (error != 0)
    717 			goto out;
    718 	}
    719 	if (info->rti_info[RTAX_TAG]) {
    720 		const struct sockaddr *tag;
    721 		tag = rt_settag(rt, info->rti_info[RTAX_TAG]);
    722 		if (tag == NULL) {
    723 			error = ENOBUFS;
    724 			goto out;
    725 		}
    726 	}
    727 	/*
    728 	 * New gateway could require new ifaddr, ifp;
    729 	 * flags may also be different; ifp may be specified
    730 	 * by ll sockaddr when protocol address is ambiguous
    731 	 */
    732 	new_ifa = route_output_get_ifa(*info, rt, &new_ifp, &psref_new_ifp,
    733 	    &psref_new_ifa);
    734 	if (new_ifa != NULL) {
    735 		ifa_release(ifa, &psref_ifa);
    736 		ifa = new_ifa;
    737 	}
    738 	if (ifa) {
    739 		struct ifaddr *oifa = rt->rt_ifa;
    740 		if (oifa != ifa && !ifa_is_destroying(ifa) &&
    741 		    new_ifp != NULL && !if_is_deactivated(new_ifp)) {
    742 			if (oifa && oifa->ifa_rtrequest)
    743 				oifa->ifa_rtrequest(RTM_DELETE, rt, info);
    744 			rt_replace_ifa(rt, ifa);
    745 			rt->rt_ifp = new_ifp;
    746 			ifp_changed = true;
    747 		}
    748 		if (new_ifa == NULL)
    749 			ifa_release(ifa, &psref_ifa);
    750 	}
    751 	ifa_release(new_ifa, &psref_new_ifa);
    752 	if (new_ifp && rt->rt_ifp != new_ifp && !if_is_deactivated(new_ifp)) {
    753 		rt->rt_ifp = new_ifp;
    754 		ifp_changed = true;
    755 	}
    756 	rt_setmetrics(rtm->rtm_inits, rtm, rt);
    757 	if (rt->rt_flags != info->rti_flags) {
    758 		rt->rt_flags = (info->rti_flags & ~PRESERVED_RTF) |
    759 		    (rt->rt_flags & PRESERVED_RTF);
    760 	}
    761 	if (rt->rt_ifa && rt->rt_ifa->ifa_rtrequest)
    762 		rt->rt_ifa->ifa_rtrequest(RTM_ADD, rt, info);
    763 #if defined(INET) || defined(INET6)
    764 	if (ifp_changed && rt_mask(rt) != NULL)
    765 		lltable_prefix_free(rt_getkey(rt)->sa_family, rt_getkey(rt),
    766 		    rt_mask(rt), 0);
    767 #else
    768 	(void)ifp_changed; /* XXX gcc */
    769 #endif
    770 out:
    771 	if_put(new_ifp, &psref_new_ifp);
    772 	if_put(ifp, &psref_ifp);
    773 
    774 	return error;
    775 }
    776 
    777 /*ARGSUSED*/
    778 int
    779 COMPATNAME(route_output)(struct mbuf *m, struct socket *so)
    780 {
    781 	struct sockproto proto = { .sp_family = PF_XROUTE, };
    782 	struct rt_xmsghdr *rtm = NULL;
    783 	struct rt_xmsghdr *old_rtm = NULL, *new_rtm = NULL;
    784 	struct rtentry *rt = NULL;
    785 	struct rtentry *saved_nrt = NULL;
    786 	struct rt_addrinfo info;
    787 	int len, error = 0;
    788 	sa_family_t family;
    789 	struct sockaddr_dl sdl;
    790 	int bound = curlwp_bind();
    791 	bool do_rt_free = false;
    792 	struct sockaddr_storage netmask;
    793 
    794 #define senderr(e) do { error = e; goto flush;} while (/*CONSTCOND*/ 0)
    795 	if (m == NULL || ((m->m_len < sizeof(int32_t)) &&
    796 	   (m = m_pullup(m, sizeof(int32_t))) == NULL)) {
    797 		error = ENOBUFS;
    798 		goto out;
    799 	}
    800 	if ((m->m_flags & M_PKTHDR) == 0)
    801 		panic("%s", __func__);
    802 	len = m->m_pkthdr.len;
    803 	if (len < sizeof(*rtm) ||
    804 	    len != mtod(m, struct rt_xmsghdr *)->rtm_msglen) {
    805 		info.rti_info[RTAX_DST] = NULL;
    806 		senderr(EINVAL);
    807 	}
    808 	R_Malloc(rtm, struct rt_xmsghdr *, len);
    809 	if (rtm == NULL) {
    810 		info.rti_info[RTAX_DST] = NULL;
    811 		senderr(ENOBUFS);
    812 	}
    813 	m_copydata(m, 0, len, rtm);
    814 	if (rtm->rtm_version != RTM_XVERSION) {
    815 		info.rti_info[RTAX_DST] = NULL;
    816 		senderr(EPROTONOSUPPORT);
    817 	}
    818 	rtm->rtm_pid = curproc->p_pid;
    819 	memset(&info, 0, sizeof(info));
    820 	info.rti_addrs = rtm->rtm_addrs;
    821 	if (rt_xaddrs(rtm->rtm_type, (const char *)(rtm + 1), len + (char *)rtm,
    822 	    &info)) {
    823 		senderr(EINVAL);
    824 	}
    825 	info.rti_flags = rtm->rtm_flags;
    826 #ifdef RTSOCK_DEBUG
    827 	if (info.rti_info[RTAX_DST]->sa_family == AF_INET) {
    828 		char abuf[INET_ADDRSTRLEN];
    829 		printf("%s: extracted info.rti_info[RTAX_DST] %s\n", __func__,
    830 		    RT_IN_PRINT(&info, abuf, RTAX_DST));
    831 	}
    832 #endif /* RTSOCK_DEBUG */
    833 	if (info.rti_info[RTAX_DST] == NULL ||
    834 	    (info.rti_info[RTAX_DST]->sa_family >= AF_MAX)) {
    835 		senderr(EINVAL);
    836 	}
    837 	if (info.rti_info[RTAX_GATEWAY] != NULL &&
    838 	    (info.rti_info[RTAX_GATEWAY]->sa_family >= AF_MAX)) {
    839 		senderr(EINVAL);
    840 	}
    841 
    842 	/*
    843 	 * Verify that the caller has the appropriate privilege; RTM_GET
    844 	 * is the only operation the non-superuser is allowed.
    845 	 */
    846 	if (kauth_authorize_network(curlwp->l_cred, KAUTH_NETWORK_ROUTE,
    847 	    0, rtm, NULL, NULL) != 0)
    848 		senderr(EACCES);
    849 
    850 	/*
    851 	 * route(8) passes a sockaddr truncated with prefixlen.
    852 	 * The kernel doesn't expect such sockaddr and need to
    853 	 * use a buffer that is big enough for the sockaddr expected
    854 	 * (padded with 0's). We keep the original length of the sockaddr.
    855 	 */
    856 	if (info.rti_info[RTAX_NETMASK]) {
    857 		/*
    858 		 * Use the family of RTAX_DST, because RTAX_NETMASK
    859 		 * can have a zero family if it comes from the radix
    860 		 * tree via rt_mask().
    861 		 */
    862 		socklen_t sa_len = sockaddr_getsize_by_family(
    863 		    info.rti_info[RTAX_DST]->sa_family);
    864 		socklen_t masklen = sockaddr_getlen(
    865 		    info.rti_info[RTAX_NETMASK]);
    866 		if (sa_len != 0 && sa_len > masklen) {
    867 			KASSERT(sa_len <= sizeof(netmask));
    868 			memcpy(&netmask, info.rti_info[RTAX_NETMASK], masklen);
    869 			memset((char *)&netmask + masklen, 0, sa_len - masklen);
    870 			info.rti_info[RTAX_NETMASK] = sstocsa(&netmask);
    871 		}
    872 	}
    873 
    874 	switch (rtm->rtm_type) {
    875 
    876 	case RTM_ADD:
    877 		if (info.rti_info[RTAX_GATEWAY] == NULL) {
    878 			senderr(EINVAL);
    879 		}
    880 #if defined(INET) || defined(INET6)
    881 		/* support for new ARP/NDP code with keeping backcompat */
    882 		if (info.rti_info[RTAX_GATEWAY]->sa_family == AF_LINK) {
    883 			const struct sockaddr_dl *sdlp =
    884 			    satocsdl(info.rti_info[RTAX_GATEWAY]);
    885 
    886 			/* Allow routing requests by interface index */
    887 			if (sdlp->sdl_nlen == 0 && sdlp->sdl_alen == 0
    888 			    && sdlp->sdl_slen == 0)
    889 				goto fallback;
    890 			/*
    891 			 * Old arp binaries don't set the sdl_index
    892 			 * so we have to complement it.
    893 			 */
    894 			int sdl_index = sdlp->sdl_index;
    895 			if (sdl_index == 0) {
    896 				error = route_get_sdl_index(&info, &sdl_index);
    897 				if (error != 0)
    898 					goto fallback;
    899 			} else if (
    900 			    info.rti_info[RTAX_DST]->sa_family == AF_INET) {
    901 				/*
    902 				 * XXX workaround for SIN_PROXY case; proxy arp
    903 				 * entry should be in an interface that has
    904 				 * a network route including the destination,
    905 				 * not a local (link) route that may not be a
    906 				 * desired place, for example a tap.
    907 				 */
    908 				const struct sockaddr_inarp *sina =
    909 				    (const struct sockaddr_inarp *)
    910 				    info.rti_info[RTAX_DST];
    911 				if (sina->sin_other & SIN_PROXY) {
    912 					error = route_get_sdl_index(&info,
    913 					    &sdl_index);
    914 					if (error != 0)
    915 						goto fallback;
    916 				}
    917 			}
    918 			error = lla_rt_output(rtm->rtm_type, rtm->rtm_flags,
    919 			    rtm->rtm_rmx.rmx_expire, &info, sdl_index);
    920 			break;
    921 		}
    922 	fallback:
    923 #endif /* defined(INET) || defined(INET6) */
    924 		error = rtrequest1(rtm->rtm_type, &info, &saved_nrt);
    925 		if (error == 0) {
    926 			rt_setmetrics(rtm->rtm_inits, rtm, saved_nrt);
    927 			rt_unref(saved_nrt);
    928 		}
    929 		break;
    930 
    931 	case RTM_DELETE:
    932 #if defined(INET) || defined(INET6)
    933 		/* support for new ARP/NDP code */
    934 		if (info.rti_info[RTAX_GATEWAY] &&
    935 		    (info.rti_info[RTAX_GATEWAY]->sa_family == AF_LINK) &&
    936 		    (rtm->rtm_flags & RTF_LLDATA) != 0) {
    937 			const struct sockaddr_dl *sdlp =
    938 			    satocsdl(info.rti_info[RTAX_GATEWAY]);
    939 			error = lla_rt_output(rtm->rtm_type, rtm->rtm_flags,
    940 			    rtm->rtm_rmx.rmx_expire, &info, sdlp->sdl_index);
    941 			rtm->rtm_flags &= ~RTF_UP;
    942 			break;
    943 		}
    944 #endif
    945 		error = rtrequest1(rtm->rtm_type, &info, &saved_nrt);
    946 		if (error != 0)
    947 			break;
    948 
    949 		rt = saved_nrt;
    950 		do_rt_free = true;
    951 		info.rti_info[RTAX_DST] = rt_getkey(rt);
    952 		info.rti_info[RTAX_GATEWAY] = rt->rt_gateway;
    953 		info.rti_info[RTAX_NETMASK] = rt_mask(rt);
    954 		info.rti_info[RTAX_TAG] = rt_gettag(rt);
    955 		error = route_output_report(rt, &info, rtm, &new_rtm);
    956 		if (error)
    957 			senderr(error);
    958 		if (new_rtm != NULL) {
    959 			old_rtm = rtm;
    960 			rtm = new_rtm;
    961 		}
    962 		break;
    963 
    964 	case RTM_GET:
    965 	case RTM_CHANGE:
    966 	case RTM_LOCK:
    967                 /* XXX This will mask info.rti_info[RTAX_DST] with
    968 		 * info.rti_info[RTAX_NETMASK] before
    969                  * searching.  It did not used to do that.  --dyoung
    970 		 */
    971 		rt = NULL;
    972 		error = rtrequest1(RTM_GET, &info, &rt);
    973 		if (error != 0)
    974 			senderr(error);
    975 		if (rtm->rtm_type != RTM_GET) {/* XXX: too grotty */
    976 			if (memcmp(info.rti_info[RTAX_DST], rt_getkey(rt),
    977 			    info.rti_info[RTAX_DST]->sa_len) != 0)
    978 				senderr(ESRCH);
    979 			if (info.rti_info[RTAX_NETMASK] == NULL &&
    980 			    rt_mask(rt) != NULL)
    981 				senderr(ETOOMANYREFS);
    982 		}
    983 
    984 		/*
    985 		 * XXX if arp/ndp requests an L2 entry, we have to obtain
    986 		 * it from lltable while for the route command we have to
    987 		 * return a route as it is. How to distinguish them?
    988 		 * For newer arp/ndp, RTF_LLDATA flag set by arp/ndp
    989 		 * indicates an L2 entry is requested. For old arp/ndp
    990 		 * binaries, we check RTF_UP flag is NOT set; it works
    991 		 * by the fact that arp/ndp don't set it while the route
    992 		 * command sets it.
    993 		 */
    994 		if (((rtm->rtm_flags & RTF_LLDATA) != 0 ||
    995 		     (rtm->rtm_flags & RTF_UP) == 0) &&
    996 		    rtm->rtm_type == RTM_GET &&
    997 		    sockaddr_cmp(rt_getkey(rt), info.rti_info[RTAX_DST]) != 0) {
    998 			int ll_flags = 0;
    999 			route_get_sdl(rt->rt_ifp, info.rti_info[RTAX_DST], &sdl,
   1000 			    &ll_flags);
   1001 			info.rti_info[RTAX_GATEWAY] = sstocsa(&sdl);
   1002 			error = route_output_report(rt, &info, rtm, &new_rtm);
   1003 			if (error)
   1004 				senderr(error);
   1005 			if (new_rtm != NULL) {
   1006 				old_rtm = rtm;
   1007 				rtm = new_rtm;
   1008 			}
   1009 			rtm->rtm_flags |= RTF_LLDATA;
   1010 			rtm->rtm_flags &= ~RTF_CONNECTED;
   1011 			rtm->rtm_flags |= (ll_flags & LLE_STATIC) ? RTF_STATIC : 0;
   1012 			break;
   1013 		}
   1014 
   1015 		switch (rtm->rtm_type) {
   1016 		case RTM_GET:
   1017 			info.rti_info[RTAX_DST] = rt_getkey(rt);
   1018 			info.rti_info[RTAX_GATEWAY] = rt->rt_gateway;
   1019 			info.rti_info[RTAX_NETMASK] = rt_mask(rt);
   1020 			info.rti_info[RTAX_TAG] = rt_gettag(rt);
   1021 			error = route_output_report(rt, &info, rtm, &new_rtm);
   1022 			if (error)
   1023 				senderr(error);
   1024 			if (new_rtm != NULL) {
   1025 				old_rtm = rtm;
   1026 				rtm = new_rtm;
   1027 			}
   1028 			break;
   1029 
   1030 		case RTM_CHANGE:
   1031 #ifdef NET_MPSAFE
   1032 			/*
   1033 			 * Release rt_so_mtx to avoid a deadlock with route_intr
   1034 			 * and also serialize updating routes to avoid another.
   1035 			 */
   1036 			if (rt_updating) {
   1037 				/* Release to allow the updater to proceed */
   1038 				rt_unref(rt);
   1039 				rt = NULL;
   1040 			}
   1041 			while (rt_updating) {
   1042 				error = cv_wait_sig(&rt_update_cv, rt_so_mtx);
   1043 				if (error != 0)
   1044 					goto flush;
   1045 			}
   1046 			if (rt == NULL) {
   1047 				error = rtrequest1(RTM_GET, &info, &rt);
   1048 				if (error != 0)
   1049 					goto flush;
   1050 			}
   1051 			rt_updating = true;
   1052 			mutex_exit(rt_so_mtx);
   1053 
   1054 			error = rt_update_prepare(rt);
   1055 			if (error == 0) {
   1056 				error = route_output_change(rt, &info, rtm);
   1057 				rt_update_finish(rt);
   1058 			}
   1059 
   1060 			mutex_enter(rt_so_mtx);
   1061 			rt_updating = false;
   1062 			cv_broadcast(&rt_update_cv);
   1063 #else
   1064 			error = route_output_change(rt, &info, rtm);
   1065 #endif
   1066 			if (error != 0)
   1067 				goto flush;
   1068 			/*FALLTHROUGH*/
   1069 		case RTM_LOCK:
   1070 			rt->rt_rmx.rmx_locks &= ~(rtm->rtm_inits);
   1071 			rt->rt_rmx.rmx_locks |=
   1072 			    (rtm->rtm_inits & rtm->rtm_rmx.rmx_locks);
   1073 			break;
   1074 		}
   1075 		break;
   1076 
   1077 	default:
   1078 		senderr(EOPNOTSUPP);
   1079 	}
   1080 
   1081 flush:
   1082 	if (rtm) {
   1083 		if (error)
   1084 			rtm->rtm_errno = error;
   1085 		else
   1086 			rtm->rtm_flags |= RTF_DONE;
   1087 	}
   1088 	family = info.rti_info[RTAX_DST] ? info.rti_info[RTAX_DST]->sa_family :
   1089 	    0;
   1090 	/* We cannot free old_rtm until we have stopped using the
   1091 	 * pointers in info, some of which may point to sockaddrs
   1092 	 * in old_rtm.
   1093 	 */
   1094 	if (old_rtm != NULL)
   1095 		Free(old_rtm);
   1096 	if (rt) {
   1097 		if (do_rt_free)
   1098 			rt_free(rt);
   1099 		else
   1100 			rt_unref(rt);
   1101 	}
   1102     {
   1103 	struct rawcb *rp = NULL;
   1104 	/*
   1105 	 * Check to see if we don't want our own messages.
   1106 	 */
   1107 	if ((so->so_options & SO_USELOOPBACK) == 0) {
   1108 		if (COMPATNAME(route_info).ri_cb.any_count <= 1) {
   1109 			if (rtm)
   1110 				Free(rtm);
   1111 			m_freem(m);
   1112 			goto out;
   1113 		}
   1114 		/* There is another listener, so construct message */
   1115 		rp = sotorawcb(so);
   1116 	}
   1117 	if (rtm) {
   1118 		m_copyback(m, 0, rtm->rtm_msglen, rtm);
   1119 		if (m->m_pkthdr.len < rtm->rtm_msglen) {
   1120 			m_freem(m);
   1121 			m = NULL;
   1122 		} else if (m->m_pkthdr.len > rtm->rtm_msglen)
   1123 			m_adj(m, rtm->rtm_msglen - m->m_pkthdr.len);
   1124 		Free(rtm);
   1125 	}
   1126 	if (rp)
   1127 		rp->rcb_proto.sp_family = 0; /* Avoid us */
   1128 	if (family)
   1129 		proto.sp_protocol = family;
   1130 	if (m)
   1131 		raw_input(m, &proto, &COMPATNAME(route_info).ri_src,
   1132 		    &COMPATNAME(route_info).ri_dst, &rt_rawcb);
   1133 	if (rp)
   1134 		rp->rcb_proto.sp_family = PF_XROUTE;
   1135     }
   1136 out:
   1137 	curlwp_bindx(bound);
   1138 	return error;
   1139 }
   1140 
   1141 static int
   1142 route_ctloutput(int op, struct socket *so, struct sockopt *sopt)
   1143 {
   1144 	struct routecb *rop = sotoroutecb(so);
   1145 	int error = 0;
   1146 	unsigned char *rtm_type;
   1147 	size_t len;
   1148 	unsigned int msgfilter;
   1149 
   1150 	KASSERT(solocked(so));
   1151 
   1152 	if (sopt->sopt_level != AF_ROUTE) {
   1153 		error = ENOPROTOOPT;
   1154 	} else switch (op) {
   1155 	case PRCO_SETOPT:
   1156 		switch (sopt->sopt_name) {
   1157 		case RO_MSGFILTER:
   1158 			msgfilter = 0;
   1159 			for (rtm_type = sopt->sopt_data, len = sopt->sopt_size;
   1160 			     len != 0;
   1161 			     rtm_type++, len -= sizeof(*rtm_type))
   1162 			{
   1163 				/* Guard against overflowing our storage. */
   1164 				if (*rtm_type >= sizeof(msgfilter) * CHAR_BIT) {
   1165 					error = EOVERFLOW;
   1166 					break;
   1167 				}
   1168 				msgfilter |= RTMSGFILTER(*rtm_type);
   1169 			}
   1170 			if (error == 0)
   1171 				rop->rocb_msgfilter = msgfilter;
   1172 			break;
   1173 		default:
   1174 			error = ENOPROTOOPT;
   1175 			break;
   1176 		}
   1177 		break;
   1178 	case PRCO_GETOPT:
   1179 		switch (sopt->sopt_name) {
   1180 		case RO_MSGFILTER:
   1181 			error = ENOTSUP;
   1182 			break;
   1183 		default:
   1184 			error = ENOPROTOOPT;
   1185 			break;
   1186 		}
   1187 	}
   1188 	return error;
   1189 }
   1190 
   1191 static void
   1192 rt_setmetrics(int which, const struct rt_xmsghdr *in, struct rtentry *out)
   1193 {
   1194 #define metric(f, e) if (which & (f)) out->rt_rmx.e = in->rtm_rmx.e;
   1195 	metric(RTV_RPIPE, rmx_recvpipe);
   1196 	metric(RTV_SPIPE, rmx_sendpipe);
   1197 	metric(RTV_SSTHRESH, rmx_ssthresh);
   1198 	metric(RTV_RTT, rmx_rtt);
   1199 	metric(RTV_RTTVAR, rmx_rttvar);
   1200 	metric(RTV_HOPCOUNT, rmx_hopcount);
   1201 	metric(RTV_MTU, rmx_mtu);
   1202 #undef metric
   1203 	if (which & RTV_EXPIRE) {
   1204 		out->rt_rmx.rmx_expire = in->rtm_rmx.rmx_expire ?
   1205 		    time_wall_to_mono(in->rtm_rmx.rmx_expire) : 0;
   1206 	}
   1207 }
   1208 
   1209 static void
   1210 rtm_setmetrics(const struct rtentry *in, struct rt_xmsghdr *out)
   1211 {
   1212 #define metric(e) out->rtm_rmx.e = in->rt_rmx.e;
   1213 	metric(rmx_recvpipe);
   1214 	metric(rmx_sendpipe);
   1215 	metric(rmx_ssthresh);
   1216 	metric(rmx_rtt);
   1217 	metric(rmx_rttvar);
   1218 	metric(rmx_hopcount);
   1219 	metric(rmx_mtu);
   1220 	metric(rmx_locks);
   1221 #undef metric
   1222 	out->rtm_rmx.rmx_expire = in->rt_rmx.rmx_expire ?
   1223 	    time_mono_to_wall(in->rt_rmx.rmx_expire) : 0;
   1224 }
   1225 
   1226 static int
   1227 rt_xaddrs(u_char rtmtype, const char *cp, const char *cplim,
   1228     struct rt_addrinfo *rtinfo)
   1229 {
   1230 	const struct sockaddr *sa = NULL;	/* Quell compiler warning */
   1231 	int i;
   1232 
   1233 	for (i = 0; i < RTAX_MAX && cp < cplim; i++) {
   1234 		if ((rtinfo->rti_addrs & (1 << i)) == 0)
   1235 			continue;
   1236 		rtinfo->rti_info[i] = sa = (const struct sockaddr *)cp;
   1237 		RT_XADVANCE(cp, sa);
   1238 	}
   1239 
   1240 	/*
   1241 	 * Check for extra addresses specified, except RTM_GET asking
   1242 	 * for interface info.
   1243 	 */
   1244 	if (rtmtype == RTM_GET) {
   1245 		if (((rtinfo->rti_addrs &
   1246 		    (~((1 << RTAX_IFP) | (1 << RTAX_IFA)))) & (~0U << i)) != 0)
   1247 			return 1;
   1248 	} else if ((rtinfo->rti_addrs & (~0U << i)) != 0)
   1249 		return 1;
   1250 	/* Check for bad data length.  */
   1251 	if (cp != cplim) {
   1252 		if (i == RTAX_NETMASK + 1 && sa != NULL &&
   1253 		    cp - RT_XROUNDUP(sa->sa_len) + sa->sa_len == cplim)
   1254 			/*
   1255 			 * The last sockaddr was info.rti_info[RTAX_NETMASK].
   1256 			 * We accept this for now for the sake of old
   1257 			 * binaries or third party softwares.
   1258 			 */
   1259 			;
   1260 		else
   1261 			return 1;
   1262 	}
   1263 	return 0;
   1264 }
   1265 
   1266 static int
   1267 rt_getlen(int type)
   1268 {
   1269 #ifndef COMPAT_RTSOCK
   1270 	CTASSERT(__alignof(struct ifa_msghdr) >= sizeof(uint64_t));
   1271 	CTASSERT(__alignof(struct if_msghdr) >= sizeof(uint64_t));
   1272 	CTASSERT(__alignof(struct if_announcemsghdr) >= sizeof(uint64_t));
   1273 	CTASSERT(__alignof(struct rt_msghdr) >= sizeof(uint64_t));
   1274 #endif
   1275 
   1276 	switch (type) {
   1277 	case RTM_ODELADDR:
   1278 	case RTM_ONEWADDR:
   1279 	case RTM_OCHGADDR:
   1280 #ifdef COMPAT_70
   1281 		return sizeof(struct ifa_msghdr70);
   1282 #else
   1283 #ifdef RTSOCK_DEBUG
   1284 		printf("%s: unsupported RTM type %d\n", __func__, type);
   1285 #endif
   1286 		return -1;
   1287 #endif
   1288 	case RTM_DELADDR:
   1289 	case RTM_NEWADDR:
   1290 	case RTM_CHGADDR:
   1291 		return sizeof(struct ifa_xmsghdr);
   1292 
   1293 	case RTM_OOIFINFO:
   1294 #ifdef COMPAT_14
   1295 		return sizeof(struct if_msghdr14);
   1296 #else
   1297 #ifdef RTSOCK_DEBUG
   1298 		printf("%s: unsupported RTM type RTM_OOIFINFO\n", __func__);
   1299 #endif
   1300 		return -1;
   1301 #endif
   1302 	case RTM_OIFINFO:
   1303 #ifdef COMPAT_50
   1304 		return sizeof(struct if_msghdr50);
   1305 #else
   1306 #ifdef RTSOCK_DEBUG
   1307 		printf("%s: unsupported RTM type RTM_OIFINFO\n", __func__);
   1308 #endif
   1309 		return -1;
   1310 #endif
   1311 
   1312 	case RTM_IFINFO:
   1313 		return sizeof(struct if_xmsghdr);
   1314 
   1315 	case RTM_IFANNOUNCE:
   1316 	case RTM_IEEE80211:
   1317 		return sizeof(struct if_xannouncemsghdr);
   1318 
   1319 	default:
   1320 		return sizeof(struct rt_xmsghdr);
   1321 	}
   1322 }
   1323 
   1324 
   1325 struct mbuf *
   1326 COMPATNAME(rt_msg1)(int type, struct rt_addrinfo *rtinfo, void *data, int datalen)
   1327 {
   1328 	struct rt_xmsghdr *rtm;
   1329 	struct mbuf *m;
   1330 	int i;
   1331 	const struct sockaddr *sa;
   1332 	int len, dlen;
   1333 
   1334 	m = m_gethdr(M_DONTWAIT, MT_DATA);
   1335 	if (m == NULL)
   1336 		return m;
   1337 	MCLAIM(m, &COMPATNAME(routedomain).dom_mowner);
   1338 
   1339 	if ((len = rt_getlen(type)) == -1)
   1340 		goto out;
   1341 	if (len > MHLEN + MLEN)
   1342 		panic("%s: message too long", __func__);
   1343 	else if (len > MHLEN) {
   1344 		m->m_next = m_get(M_DONTWAIT, MT_DATA);
   1345 		if (m->m_next == NULL)
   1346 			goto out;
   1347 		MCLAIM(m->m_next, m->m_owner);
   1348 		m->m_pkthdr.len = len;
   1349 		m->m_len = MHLEN;
   1350 		m->m_next->m_len = len - MHLEN;
   1351 	} else {
   1352 		m->m_pkthdr.len = m->m_len = len;
   1353 	}
   1354 	m_reset_rcvif(m);
   1355 	m_copyback(m, 0, datalen, data);
   1356 	if (len > datalen)
   1357 		(void)memset(mtod(m, char *) + datalen, 0, len - datalen);
   1358 	rtm = mtod(m, struct rt_xmsghdr *);
   1359 	for (i = 0; i < RTAX_MAX; i++) {
   1360 		if ((sa = rtinfo->rti_info[i]) == NULL)
   1361 			continue;
   1362 		rtinfo->rti_addrs |= (1 << i);
   1363 		dlen = RT_XROUNDUP(sa->sa_len);
   1364 		m_copyback(m, len, sa->sa_len, sa);
   1365 		if (dlen != sa->sa_len) {
   1366 			/*
   1367 			 * Up to 6 + 1 nul's since roundup is to
   1368 			 * sizeof(uint64_t) (8 bytes)
   1369 			 */
   1370 			m_copyback(m, len + sa->sa_len,
   1371 			    dlen - sa->sa_len, "\0\0\0\0\0\0");
   1372 		}
   1373 		len += dlen;
   1374 	}
   1375 	if (m->m_pkthdr.len != len)
   1376 		goto out;
   1377 	rtm->rtm_msglen = len;
   1378 	rtm->rtm_version = RTM_XVERSION;
   1379 	rtm->rtm_type = type;
   1380 	return m;
   1381 out:
   1382 	m_freem(m);
   1383 	return NULL;
   1384 }
   1385 
   1386 /*
   1387  * rt_msg2
   1388  *
   1389  *	 fills 'cp' or 'w'.w_tmem with the routing socket message and
   1390  *		returns the length of the message in 'lenp'.
   1391  *
   1392  * if walkarg is 0, cp is expected to be 0 or a buffer large enough to hold
   1393  *	the message
   1394  * otherwise walkarg's w_needed is updated and if the user buffer is
   1395  *	specified and w_needed indicates space exists the information is copied
   1396  *	into the temp space (w_tmem). w_tmem is [re]allocated if necessary,
   1397  *	if the allocation fails ENOBUFS is returned.
   1398  */
   1399 static int
   1400 rt_msg2(int type, struct rt_addrinfo *rtinfo, void *cpv, struct rt_walkarg *w,
   1401 	int *lenp)
   1402 {
   1403 	int i;
   1404 	int len, dlen, second_time = 0;
   1405 	char *cp0, *cp = cpv;
   1406 
   1407 	rtinfo->rti_addrs = 0;
   1408 again:
   1409 	if ((len = rt_getlen(type)) == -1)
   1410 		return EINVAL;
   1411 
   1412 	if ((cp0 = cp) != NULL)
   1413 		cp += len;
   1414 	for (i = 0; i < RTAX_MAX; i++) {
   1415 		const struct sockaddr *sa;
   1416 
   1417 		if ((sa = rtinfo->rti_info[i]) == NULL)
   1418 			continue;
   1419 		rtinfo->rti_addrs |= (1 << i);
   1420 		dlen = RT_XROUNDUP(sa->sa_len);
   1421 		if (cp) {
   1422 			int diff = dlen - sa->sa_len;
   1423 			(void)memcpy(cp, sa, (size_t)sa->sa_len);
   1424 			cp += sa->sa_len;
   1425 			if (diff > 0) {
   1426 				(void)memset(cp, 0, (size_t)diff);
   1427 				cp += diff;
   1428 			}
   1429 		}
   1430 		len += dlen;
   1431 	}
   1432 	if (cp == NULL && w != NULL && !second_time) {
   1433 		struct rt_walkarg *rw = w;
   1434 
   1435 		rw->w_needed += len;
   1436 		if (rw->w_needed <= 0 && rw->w_where) {
   1437 			if (rw->w_tmemsize < len) {
   1438 				if (rw->w_tmem)
   1439 					kmem_free(rw->w_tmem, rw->w_tmemsize);
   1440 				rw->w_tmem = kmem_alloc(len, KM_SLEEP);
   1441 				rw->w_tmemsize = len;
   1442 			}
   1443 			if (rw->w_tmem) {
   1444 				cp = rw->w_tmem;
   1445 				second_time = 1;
   1446 				goto again;
   1447 			} else {
   1448 				rw->w_tmemneeded = len;
   1449 				return ENOBUFS;
   1450 			}
   1451 		}
   1452 	}
   1453 	if (cp) {
   1454 		struct rt_xmsghdr *rtm = (struct rt_xmsghdr *)cp0;
   1455 
   1456 		rtm->rtm_version = RTM_XVERSION;
   1457 		rtm->rtm_type = type;
   1458 		rtm->rtm_msglen = len;
   1459 	}
   1460 	if (lenp)
   1461 		*lenp = len;
   1462 	return 0;
   1463 }
   1464 
   1465 #ifndef COMPAT_RTSOCK
   1466 int
   1467 rt_msg3(int type, struct rt_addrinfo *rtinfo, void *cpv, struct rt_walkarg *w,
   1468 	int *lenp)
   1469 {
   1470 	return rt_msg2(type, rtinfo, cpv, w, lenp);
   1471 }
   1472 #endif
   1473 
   1474 /*
   1475  * This routine is called to generate a message from the routing
   1476  * socket indicating that a redirect has occurred, a routing lookup
   1477  * has failed, or that a protocol has detected timeouts to a particular
   1478  * destination.
   1479  */
   1480 void
   1481 COMPATNAME(rt_missmsg)(int type, const struct rt_addrinfo *rtinfo, int flags,
   1482     int error)
   1483 {
   1484 	struct rt_xmsghdr rtm;
   1485 	struct mbuf *m;
   1486 	const struct sockaddr *sa = rtinfo->rti_info[RTAX_DST];
   1487 	struct rt_addrinfo info = *rtinfo;
   1488 
   1489 	COMPATCALL(rt_missmsg, (type, rtinfo, flags, error));
   1490 	if (COMPATNAME(route_info).ri_cb.any_count == 0)
   1491 		return;
   1492 	memset(&rtm, 0, sizeof(rtm));
   1493 	rtm.rtm_pid = curproc->p_pid;
   1494 	rtm.rtm_flags = RTF_DONE | flags;
   1495 	rtm.rtm_errno = error;
   1496 	m = COMPATNAME(rt_msg1)(type, &info, &rtm, sizeof(rtm));
   1497 	if (m == NULL)
   1498 		return;
   1499 	mtod(m, struct rt_xmsghdr *)->rtm_addrs = info.rti_addrs;
   1500 	COMPATNAME(route_enqueue)(m, sa ? sa->sa_family : 0);
   1501 }
   1502 
   1503 /*
   1504  * This routine is called to generate a message from the routing
   1505  * socket indicating that the status of a network interface has changed.
   1506  */
   1507 void
   1508 COMPATNAME(rt_ifmsg)(struct ifnet *ifp)
   1509 {
   1510 	struct if_xmsghdr ifm;
   1511 	struct mbuf *m;
   1512 	struct rt_addrinfo info;
   1513 
   1514 	COMPATCALL(rt_ifmsg, (ifp));
   1515 	if (COMPATNAME(route_info).ri_cb.any_count == 0)
   1516 		return;
   1517 	(void)memset(&info, 0, sizeof(info));
   1518 	(void)memset(&ifm, 0, sizeof(ifm));
   1519 	ifm.ifm_index = ifp->if_index;
   1520 	ifm.ifm_flags = ifp->if_flags;
   1521 	ifm.ifm_data = ifp->if_data;
   1522 	ifm.ifm_addrs = 0;
   1523 	m = COMPATNAME(rt_msg1)(RTM_IFINFO, &info, &ifm, sizeof(ifm));
   1524 	if (m == NULL)
   1525 		return;
   1526 	COMPATNAME(route_enqueue)(m, 0);
   1527 #ifdef COMPAT_14
   1528 	compat_14_rt_oifmsg(ifp);
   1529 #endif
   1530 #ifdef COMPAT_50
   1531 	compat_50_rt_oifmsg(ifp);
   1532 #endif
   1533 }
   1534 
   1535 #ifndef COMPAT_RTSOCK
   1536 static int
   1537 if_addrflags(struct ifaddr *ifa)
   1538 {
   1539 
   1540 	switch (ifa->ifa_addr->sa_family) {
   1541 #ifdef INET
   1542 	case AF_INET:
   1543 		return ((struct in_ifaddr *)ifa)->ia4_flags;
   1544 #endif
   1545 #ifdef INET6
   1546 	case AF_INET6:
   1547 		return ((struct in6_ifaddr *)ifa)->ia6_flags;
   1548 #endif
   1549 	default:
   1550 		return 0;
   1551 	}
   1552 }
   1553 #endif
   1554 
   1555 /*
   1556  * This is called to generate messages from the routing socket
   1557  * indicating a network interface has had addresses associated with it.
   1558  * if we ever reverse the logic and replace messages TO the routing
   1559  * socket indicate a request to configure interfaces, then it will
   1560  * be unnecessary as the routing socket will automatically generate
   1561  * copies of it.
   1562  */
   1563 void
   1564 COMPATNAME(rt_newaddrmsg)(int cmd, struct ifaddr *ifa, int error,
   1565     struct rtentry *rt)
   1566 {
   1567 #define	cmdpass(__cmd, __pass)	(((__cmd) << 2) | (__pass))
   1568 	struct rt_addrinfo info;
   1569 	const struct sockaddr *sa;
   1570 	int pass;
   1571 	struct mbuf *m;
   1572 	struct ifnet *ifp;
   1573 	struct rt_xmsghdr rtm;
   1574 	struct ifa_xmsghdr ifam;
   1575 	int ncmd;
   1576 
   1577 	KASSERT(ifa != NULL);
   1578 	KASSERT(ifa->ifa_addr != NULL);
   1579 	ifp = ifa->ifa_ifp;
   1580 #ifdef SCTP
   1581 	if (cmd == RTM_ADD) {
   1582 		sctp_add_ip_address(ifa);
   1583 	} else if (cmd == RTM_DELETE) {
   1584 		sctp_delete_ip_address(ifa);
   1585 	}
   1586 #endif
   1587 
   1588 	COMPATCALL(rt_newaddrmsg, (cmd, ifa, error, rt));
   1589 	if (COMPATNAME(route_info).ri_cb.any_count == 0)
   1590 		return;
   1591 	for (pass = 1; pass < 3; pass++) {
   1592 		memset(&info, 0, sizeof(info));
   1593 		switch (cmdpass(cmd, pass)) {
   1594 		case cmdpass(RTM_ADD, 1):
   1595 		case cmdpass(RTM_CHANGE, 1):
   1596 		case cmdpass(RTM_DELETE, 2):
   1597 		case cmdpass(RTM_NEWADDR, 1):
   1598 		case cmdpass(RTM_DELADDR, 1):
   1599 		case cmdpass(RTM_CHGADDR, 1):
   1600 			switch (cmd) {
   1601 			case RTM_ADD:
   1602 				ncmd = RTM_XNEWADDR;
   1603 				break;
   1604 			case RTM_DELETE:
   1605 				ncmd = RTM_XDELADDR;
   1606 				break;
   1607 			case RTM_CHANGE:
   1608 				ncmd = RTM_XCHGADDR;
   1609 				break;
   1610 			case RTM_NEWADDR:
   1611 				ncmd = RTM_XNEWADDR;
   1612 				break;
   1613 			case RTM_DELADDR:
   1614 				ncmd = RTM_XDELADDR;
   1615 				break;
   1616 			case RTM_CHGADDR:
   1617 				ncmd = RTM_XCHGADDR;
   1618 				break;
   1619 			default:
   1620 				panic("%s: unknown command %d", __func__, cmd);
   1621 			}
   1622 			(*vec_70_rt_newaddrmsg1)(ncmd, ifa);
   1623 			info.rti_info[RTAX_IFA] = sa = ifa->ifa_addr;
   1624 			KASSERT(ifp->if_dl != NULL);
   1625 			info.rti_info[RTAX_IFP] = ifp->if_dl->ifa_addr;
   1626 			info.rti_info[RTAX_NETMASK] = ifa->ifa_netmask;
   1627 			info.rti_info[RTAX_BRD] = ifa->ifa_dstaddr;
   1628 			memset(&ifam, 0, sizeof(ifam));
   1629 			ifam.ifam_index = ifp->if_index;
   1630 			ifam.ifam_metric = ifa->ifa_metric;
   1631 			ifam.ifam_flags = ifa->ifa_flags;
   1632 #ifndef COMPAT_RTSOCK
   1633 			ifam.ifam_pid = curproc->p_pid;
   1634 			ifam.ifam_addrflags = if_addrflags(ifa);
   1635 #endif
   1636 			m = COMPATNAME(rt_msg1)(ncmd, &info, &ifam, sizeof(ifam));
   1637 			if (m == NULL)
   1638 				continue;
   1639 			mtod(m, struct ifa_xmsghdr *)->ifam_addrs =
   1640 			    info.rti_addrs;
   1641 			break;
   1642 		case cmdpass(RTM_ADD, 2):
   1643 		case cmdpass(RTM_CHANGE, 2):
   1644 		case cmdpass(RTM_DELETE, 1):
   1645 			if (rt == NULL)
   1646 				continue;
   1647 			info.rti_info[RTAX_NETMASK] = rt_mask(rt);
   1648 			info.rti_info[RTAX_DST] = sa = rt_getkey(rt);
   1649 			info.rti_info[RTAX_GATEWAY] = rt->rt_gateway;
   1650 			memset(&rtm, 0, sizeof(rtm));
   1651 			rtm.rtm_pid = curproc->p_pid;
   1652 			rtm.rtm_index = ifp->if_index;
   1653 			rtm.rtm_flags |= rt->rt_flags;
   1654 			rtm.rtm_errno = error;
   1655 			m = COMPATNAME(rt_msg1)(cmd, &info, &rtm, sizeof(rtm));
   1656 			if (m == NULL)
   1657 				continue;
   1658 			mtod(m, struct rt_xmsghdr *)->rtm_addrs = info.rti_addrs;
   1659 			break;
   1660 		default:
   1661 			continue;
   1662 		}
   1663 		KASSERTMSG(m != NULL, "called with wrong command");
   1664 		COMPATNAME(route_enqueue)(m, sa ? sa->sa_family : 0);
   1665 	}
   1666 #undef cmdpass
   1667 
   1668 }
   1669 
   1670 static struct mbuf *
   1671 rt_makeifannouncemsg(struct ifnet *ifp, int type, int what,
   1672     struct rt_addrinfo *info)
   1673 {
   1674 	struct if_xannouncemsghdr ifan;
   1675 
   1676 	memset(info, 0, sizeof(*info));
   1677 	memset(&ifan, 0, sizeof(ifan));
   1678 	ifan.ifan_index = ifp->if_index;
   1679 	strlcpy(ifan.ifan_name, ifp->if_xname, sizeof(ifan.ifan_name));
   1680 	ifan.ifan_what = what;
   1681 	return COMPATNAME(rt_msg1)(type, info, &ifan, sizeof(ifan));
   1682 }
   1683 
   1684 /*
   1685  * This is called to generate routing socket messages indicating
   1686  * network interface arrival and departure.
   1687  */
   1688 void
   1689 COMPATNAME(rt_ifannouncemsg)(struct ifnet *ifp, int what)
   1690 {
   1691 	struct mbuf *m;
   1692 	struct rt_addrinfo info;
   1693 
   1694 	COMPATCALL(rt_ifannouncemsg, (ifp, what));
   1695 	if (COMPATNAME(route_info).ri_cb.any_count == 0)
   1696 		return;
   1697 	m = rt_makeifannouncemsg(ifp, RTM_IFANNOUNCE, what, &info);
   1698 	if (m == NULL)
   1699 		return;
   1700 	COMPATNAME(route_enqueue)(m, 0);
   1701 }
   1702 
   1703 /*
   1704  * This is called to generate routing socket messages indicating
   1705  * IEEE80211 wireless events.
   1706  * XXX we piggyback on the RTM_IFANNOUNCE msg format in a clumsy way.
   1707  */
   1708 void
   1709 COMPATNAME(rt_ieee80211msg)(struct ifnet *ifp, int what, void *data,
   1710 	size_t data_len)
   1711 {
   1712 	struct mbuf *m;
   1713 	struct rt_addrinfo info;
   1714 
   1715 	COMPATCALL(rt_ieee80211msg, (ifp, what, data, data_len));
   1716 	if (COMPATNAME(route_info).ri_cb.any_count == 0)
   1717 		return;
   1718 	m = rt_makeifannouncemsg(ifp, RTM_IEEE80211, what, &info);
   1719 	if (m == NULL)
   1720 		return;
   1721 	/*
   1722 	 * Append the ieee80211 data.  Try to stick it in the
   1723 	 * mbuf containing the ifannounce msg; otherwise allocate
   1724 	 * a new mbuf and append.
   1725 	 *
   1726 	 * NB: we assume m is a single mbuf.
   1727 	 */
   1728 	if (data_len > M_TRAILINGSPACE(m)) {
   1729 		struct mbuf *n = m_get(M_NOWAIT, MT_DATA);
   1730 		if (n == NULL) {
   1731 			m_freem(m);
   1732 			return;
   1733 		}
   1734 		(void)memcpy(mtod(n, void *), data, data_len);
   1735 		n->m_len = data_len;
   1736 		m->m_next = n;
   1737 	} else if (data_len > 0) {
   1738 		(void)memcpy(mtod(m, uint8_t *) + m->m_len, data, data_len);
   1739 		m->m_len += data_len;
   1740 	}
   1741 	if (m->m_flags & M_PKTHDR)
   1742 		m->m_pkthdr.len += data_len;
   1743 	mtod(m, struct if_xannouncemsghdr *)->ifan_msglen += data_len;
   1744 	COMPATNAME(route_enqueue)(m, 0);
   1745 }
   1746 
   1747 #ifndef COMPAT_RTSOCK
   1748 /*
   1749  * Send a routing message as mimicing that a cloned route is added.
   1750  */
   1751 void
   1752 rt_clonedmsg(const struct sockaddr *dst, const struct ifnet *ifp,
   1753     const struct rtentry *rt)
   1754 {
   1755 	struct rt_addrinfo info;
   1756 	/* Mimic flags exactly */
   1757 #define RTF_LLINFO	0x400
   1758 #define RTF_CLONED	0x2000
   1759 	int flags = RTF_UP | RTF_HOST | RTF_DONE | RTF_LLINFO | RTF_CLONED;
   1760 	union {
   1761 		struct sockaddr sa;
   1762 		struct sockaddr_storage ss;
   1763 		struct sockaddr_dl sdl;
   1764 	} u;
   1765 	uint8_t namelen = strlen(ifp->if_xname);
   1766 	uint8_t addrlen = ifp->if_addrlen;
   1767 
   1768 	if (rt == NULL)
   1769 		return; /* XXX */
   1770 
   1771 	memset(&info, 0, sizeof(info));
   1772 	info.rti_info[RTAX_DST] = dst;
   1773 	sockaddr_dl_init(&u.sdl, sizeof(u.ss), ifp->if_index, ifp->if_type,
   1774 	    NULL, namelen, NULL, addrlen);
   1775 	info.rti_info[RTAX_GATEWAY] = &u.sa;
   1776 
   1777 	rt_missmsg(RTM_ADD, &info, flags, 0);
   1778 #undef RTF_LLINFO
   1779 #undef RTF_CLONED
   1780 }
   1781 #endif /* COMPAT_RTSOCK */
   1782 
   1783 /*
   1784  * This is used in dumping the kernel table via sysctl().
   1785  */
   1786 static int
   1787 sysctl_dumpentry(struct rtentry *rt, void *v)
   1788 {
   1789 	struct rt_walkarg *w = v;
   1790 	int error = 0, size;
   1791 	struct rt_addrinfo info;
   1792 
   1793 	if (w->w_op == NET_RT_FLAGS && !(rt->rt_flags & w->w_arg))
   1794 		return 0;
   1795 	memset(&info, 0, sizeof(info));
   1796 	info.rti_info[RTAX_DST] = rt_getkey(rt);
   1797 	info.rti_info[RTAX_GATEWAY] = rt->rt_gateway;
   1798 	info.rti_info[RTAX_NETMASK] = rt_mask(rt);
   1799 	info.rti_info[RTAX_TAG] = rt_gettag(rt);
   1800 	if (rt->rt_ifp) {
   1801 		const struct ifaddr *rtifa;
   1802 		info.rti_info[RTAX_IFP] = rt->rt_ifp->if_dl->ifa_addr;
   1803 		/* rtifa used to be simply rt->rt_ifa.  If rt->rt_ifa != NULL,
   1804 		 * then rt_get_ifa() != NULL.  So this ought to still be safe.
   1805 		 * --dyoung
   1806 		 */
   1807 		rtifa = rt_get_ifa(rt);
   1808 		info.rti_info[RTAX_IFA] = rtifa->ifa_addr;
   1809 		if (rt->rt_ifp->if_flags & IFF_POINTOPOINT)
   1810 			info.rti_info[RTAX_BRD] = rtifa->ifa_dstaddr;
   1811 	}
   1812 	if ((error = rt_msg2(RTM_GET, &info, 0, w, &size)))
   1813 		return error;
   1814 	if (w->w_where && w->w_tmem && w->w_needed <= 0) {
   1815 		struct rt_xmsghdr *rtm = (struct rt_xmsghdr *)w->w_tmem;
   1816 
   1817 		rtm->rtm_flags = rt->rt_flags;
   1818 		rtm->rtm_use = rt->rt_use;
   1819 		rtm_setmetrics(rt, rtm);
   1820 		KASSERT(rt->rt_ifp != NULL);
   1821 		rtm->rtm_index = rt->rt_ifp->if_index;
   1822 		rtm->rtm_errno = rtm->rtm_pid = rtm->rtm_seq = 0;
   1823 		rtm->rtm_addrs = info.rti_addrs;
   1824 		if ((error = copyout(rtm, w->w_where, size)) != 0)
   1825 			w->w_where = NULL;
   1826 		else
   1827 			w->w_where = (char *)w->w_where + size;
   1828 	}
   1829 	return error;
   1830 }
   1831 
   1832 static int
   1833 sysctl_iflist_if(struct ifnet *ifp, struct rt_walkarg *w,
   1834     struct rt_addrinfo *info, size_t len)
   1835 {
   1836 	struct if_xmsghdr *ifm;
   1837 	int error;
   1838 
   1839 	ifm = (struct if_xmsghdr *)w->w_tmem;
   1840 	ifm->ifm_index = ifp->if_index;
   1841 	ifm->ifm_flags = ifp->if_flags;
   1842 	ifm->ifm_data = ifp->if_data;
   1843 	ifm->ifm_addrs = info->rti_addrs;
   1844 	if ((error = copyout(ifm, w->w_where, len)) == 0)
   1845 		w->w_where = (char *)w->w_where + len;
   1846 	return error;
   1847 }
   1848 
   1849 #ifndef COMPAT_RTSOCK	/* XXX need to include the stuff in COMPAT_50 */
   1850 static int
   1851 sysctl_iflist_addr(struct rt_walkarg *w, struct ifaddr *ifa,
   1852      struct rt_addrinfo *info)
   1853 {
   1854 	int len, error;
   1855 
   1856 	if ((error = rt_msg2(RTM_XNEWADDR, info, 0, w, &len)))
   1857 		return error;
   1858 	if (w->w_where && w->w_tmem && w->w_needed <= 0) {
   1859 		struct ifa_xmsghdr *ifam;
   1860 
   1861 		ifam = (struct ifa_xmsghdr *)w->w_tmem;
   1862 		ifam->ifam_index = ifa->ifa_ifp->if_index;
   1863 		ifam->ifam_flags = ifa->ifa_flags;
   1864 		ifam->ifam_metric = ifa->ifa_metric;
   1865 		ifam->ifam_addrs = info->rti_addrs;
   1866 #ifndef COMPAT_RTSOCK
   1867 		ifam->ifam_pid = 0;
   1868 		ifam->ifam_addrflags = if_addrflags(ifa);
   1869 #endif
   1870 		if ((error = copyout(w->w_tmem, w->w_where, len)) == 0)
   1871 			w->w_where = (char *)w->w_where + len;
   1872 	}
   1873 	return error;
   1874 }
   1875 #endif /* XXX */
   1876 
   1877 static int
   1878 sysctl_iflist(int af, struct rt_walkarg *w, int type)
   1879 {
   1880 	struct ifnet *ifp;
   1881 	struct ifaddr *ifa;
   1882 	struct	rt_addrinfo info;
   1883 	int	cmd, len, error = 0;
   1884 	int	(*iflist_if)(struct ifnet *, struct rt_walkarg *,
   1885 			     struct rt_addrinfo *, size_t);
   1886 	int s;
   1887 	struct psref psref;
   1888 	int bound;
   1889 
   1890 	switch (type) {
   1891 	case NET_RT_IFLIST:
   1892 		cmd = RTM_IFINFO;
   1893 		iflist_if = sysctl_iflist_if;
   1894 		break;
   1895 #ifdef COMPAT_14
   1896 	case NET_RT_OOOIFLIST:
   1897 		cmd = RTM_OOIFINFO;
   1898 		iflist_if = compat_14_iflist;
   1899 		break;
   1900 #endif
   1901 #ifdef COMPAT_50
   1902 	case NET_RT_OOIFLIST:
   1903 		cmd = RTM_OIFINFO;
   1904 		iflist_if = compat_50_iflist;
   1905 		break;
   1906 #endif
   1907 #ifdef COMPAT_70
   1908 	case NET_RT_OIFLIST:
   1909 		cmd = RTM_IFINFO;
   1910 		iflist_if = sysctl_iflist_if;
   1911 		break;
   1912 #endif
   1913 	default:
   1914 #ifdef RTSOCK_DEBUG
   1915 		printf("%s: unsupported IFLIST type %d\n", __func__, type);
   1916 #endif
   1917 		return EINVAL;
   1918 	}
   1919 
   1920 	memset(&info, 0, sizeof(info));
   1921 
   1922 	bound = curlwp_bind();
   1923 	s = pserialize_read_enter();
   1924 	IFNET_READER_FOREACH(ifp) {
   1925 		int _s;
   1926 		if (w->w_arg && w->w_arg != ifp->if_index)
   1927 			continue;
   1928 		if (IFADDR_READER_EMPTY(ifp))
   1929 			continue;
   1930 
   1931 		if_acquire(ifp, &psref);
   1932 		pserialize_read_exit(s);
   1933 
   1934 		info.rti_info[RTAX_IFP] = ifp->if_dl->ifa_addr;
   1935 		if ((error = rt_msg2(cmd, &info, NULL, w, &len)) != 0)
   1936 			goto release_exit;
   1937 		info.rti_info[RTAX_IFP] = NULL;
   1938 		if (w->w_where && w->w_tmem && w->w_needed <= 0) {
   1939 			if ((error = iflist_if(ifp, w, &info, len)) != 0)
   1940 				goto release_exit;
   1941 		}
   1942 		_s = pserialize_read_enter();
   1943 		IFADDR_READER_FOREACH(ifa, ifp) {
   1944 			struct psref _psref;
   1945 			if (af && af != ifa->ifa_addr->sa_family)
   1946 				continue;
   1947 			ifa_acquire(ifa, &_psref);
   1948 			pserialize_read_exit(_s);
   1949 
   1950 			info.rti_info[RTAX_IFA] = ifa->ifa_addr;
   1951 			info.rti_info[RTAX_NETMASK] = ifa->ifa_netmask;
   1952 			info.rti_info[RTAX_BRD] = ifa->ifa_dstaddr;
   1953 			error = (*vec_70_iflist_addr)(w, ifa, &info);
   1954 
   1955 			_s = pserialize_read_enter();
   1956 			ifa_release(ifa, &_psref);
   1957 			if (error != 0) {
   1958 				pserialize_read_exit(_s);
   1959 				goto release_exit;
   1960 			}
   1961 		}
   1962 		pserialize_read_exit(_s);
   1963 		info.rti_info[RTAX_IFA] = info.rti_info[RTAX_NETMASK] =
   1964 		    info.rti_info[RTAX_BRD] = NULL;
   1965 
   1966 		s = pserialize_read_enter();
   1967 		if_release(ifp, &psref);
   1968 	}
   1969 	pserialize_read_exit(s);
   1970 	curlwp_bindx(bound);
   1971 
   1972 	return 0;
   1973 
   1974 release_exit:
   1975 	if_release(ifp, &psref);
   1976 	curlwp_bindx(bound);
   1977 	return error;
   1978 }
   1979 
   1980 static int
   1981 sysctl_rtable(SYSCTLFN_ARGS)
   1982 {
   1983 	void 	*where = oldp;
   1984 	size_t	*given = oldlenp;
   1985 	int	i, s, error = EINVAL;
   1986 	u_char  af;
   1987 	struct	rt_walkarg w;
   1988 
   1989 	if (namelen == 1 && name[0] == CTL_QUERY)
   1990 		return sysctl_query(SYSCTLFN_CALL(rnode));
   1991 
   1992 	if (newp)
   1993 		return EPERM;
   1994 	if (namelen != 3)
   1995 		return EINVAL;
   1996 	af = name[0];
   1997 	w.w_tmemneeded = 0;
   1998 	w.w_tmemsize = 0;
   1999 	w.w_tmem = NULL;
   2000 again:
   2001 	/* we may return here if a later [re]alloc of the t_mem buffer fails */
   2002 	if (w.w_tmemneeded) {
   2003 		w.w_tmem = kmem_alloc(w.w_tmemneeded, KM_SLEEP);
   2004 		w.w_tmemsize = w.w_tmemneeded;
   2005 		w.w_tmemneeded = 0;
   2006 	}
   2007 	w.w_op = name[1];
   2008 	w.w_arg = name[2];
   2009 	w.w_given = *given;
   2010 	w.w_needed = 0 - w.w_given;
   2011 	w.w_where = where;
   2012 
   2013 	s = splsoftnet();
   2014 	switch (w.w_op) {
   2015 
   2016 	case NET_RT_DUMP:
   2017 	case NET_RT_FLAGS:
   2018 #if defined(INET) || defined(INET6)
   2019 		/*
   2020 		 * take care of llinfo entries, the caller must
   2021 		 * specify an AF
   2022 		 */
   2023 		if (w.w_op == NET_RT_FLAGS &&
   2024 		    (w.w_arg == 0 || w.w_arg & RTF_LLDATA)) {
   2025 			if (af != 0)
   2026 				error = lltable_sysctl_dump(af, &w);
   2027 			else
   2028 				error = EINVAL;
   2029 			break;
   2030 		}
   2031 #endif
   2032 
   2033 		for (i = 1; i <= AF_MAX; i++) {
   2034 			if (af == 0 || af == i) {
   2035 				error = rt_walktree(i, sysctl_dumpentry, &w);
   2036 				if (error != 0)
   2037 					break;
   2038 #if defined(INET) || defined(INET6)
   2039 				/*
   2040 				 * Return ARP/NDP entries too for
   2041 				 * backward compatibility.
   2042 				 */
   2043 				error = lltable_sysctl_dump(i, &w);
   2044 				if (error != 0)
   2045 					break;
   2046 #endif
   2047 			}
   2048 		}
   2049 		break;
   2050 
   2051 #ifdef COMPAT_14
   2052 	case NET_RT_OOOIFLIST:
   2053 		error = sysctl_iflist(af, &w, w.w_op);
   2054 		break;
   2055 #endif
   2056 #ifdef COMPAT_50
   2057 	case NET_RT_OOIFLIST:
   2058 		error = sysctl_iflist(af, &w, w.w_op);
   2059 		break;
   2060 #endif
   2061 #ifdef COMPAT_70
   2062 	case NET_RT_OIFLIST:
   2063 		error = sysctl_iflist(af, &w, w.w_op);
   2064 		break;
   2065 #endif
   2066 	case NET_RT_IFLIST:
   2067 		error = sysctl_iflist(af, &w, w.w_op);
   2068 		break;
   2069 	}
   2070 	splx(s);
   2071 
   2072 	/* check to see if we couldn't allocate memory with NOWAIT */
   2073 	if (error == ENOBUFS && w.w_tmem == 0 && w.w_tmemneeded)
   2074 		goto again;
   2075 
   2076 	if (w.w_tmem)
   2077 		kmem_free(w.w_tmem, w.w_tmemsize);
   2078 	w.w_needed += w.w_given;
   2079 	if (where) {
   2080 		*given = (char *)w.w_where - (char *)where;
   2081 		if (*given < w.w_needed)
   2082 			return ENOMEM;
   2083 	} else {
   2084 		*given = (11 * w.w_needed) / 10;
   2085 	}
   2086 	return error;
   2087 }
   2088 
   2089 /*
   2090  * Routing message software interrupt routine
   2091  */
   2092 static void
   2093 COMPATNAME(route_intr)(void *cookie)
   2094 {
   2095 	struct sockproto proto = { .sp_family = PF_XROUTE, };
   2096 	struct route_info * const ri = &COMPATNAME(route_info);
   2097 	struct mbuf *m;
   2098 
   2099 	SOFTNET_KERNEL_LOCK_UNLESS_NET_MPSAFE();
   2100 	for (;;) {
   2101 		IFQ_LOCK(&ri->ri_intrq);
   2102 		IF_DEQUEUE(&ri->ri_intrq, m);
   2103 		IFQ_UNLOCK(&ri->ri_intrq);
   2104 		if (m == NULL)
   2105 			break;
   2106 		proto.sp_protocol = M_GETCTX(m, uintptr_t);
   2107 #ifdef NET_MPSAFE
   2108 		mutex_enter(rt_so_mtx);
   2109 #endif
   2110 		raw_input(m, &proto, &ri->ri_src, &ri->ri_dst, &rt_rawcb);
   2111 #ifdef NET_MPSAFE
   2112 		mutex_exit(rt_so_mtx);
   2113 #endif
   2114 	}
   2115 	SOFTNET_KERNEL_UNLOCK_UNLESS_NET_MPSAFE();
   2116 }
   2117 
   2118 /*
   2119  * Enqueue a message to the software interrupt routine.
   2120  */
   2121 void
   2122 COMPATNAME(route_enqueue)(struct mbuf *m, int family)
   2123 {
   2124 	struct route_info * const ri = &COMPATNAME(route_info);
   2125 	int wasempty;
   2126 
   2127 	IFQ_LOCK(&ri->ri_intrq);
   2128 	if (IF_QFULL(&ri->ri_intrq)) {
   2129 		IF_DROP(&ri->ri_intrq);
   2130 		IFQ_UNLOCK(&ri->ri_intrq);
   2131 		m_freem(m);
   2132 	} else {
   2133 		wasempty = IF_IS_EMPTY(&ri->ri_intrq);
   2134 		M_SETCTX(m, (uintptr_t)family);
   2135 		IF_ENQUEUE(&ri->ri_intrq, m);
   2136 		IFQ_UNLOCK(&ri->ri_intrq);
   2137 		if (wasempty) {
   2138 			kpreempt_disable();
   2139 			softint_schedule(ri->ri_sih);
   2140 			kpreempt_enable();
   2141 		}
   2142 	}
   2143 }
   2144 
   2145 static void
   2146 COMPATNAME(route_init)(void)
   2147 {
   2148 	struct route_info * const ri = &COMPATNAME(route_info);
   2149 
   2150 #ifndef COMPAT_RTSOCK
   2151 	rt_init();
   2152 #endif
   2153 #ifdef NET_MPSAFE
   2154 	rt_so_mtx = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
   2155 
   2156 	cv_init(&rt_update_cv, "rtsock_cv");
   2157 #endif
   2158 
   2159 	sysctl_net_route_setup(NULL);
   2160 	ri->ri_intrq.ifq_maxlen = ri->ri_maxqlen;
   2161 	ri->ri_sih = softint_establish(SOFTINT_NET | SOFTINT_MPSAFE,
   2162 	    COMPATNAME(route_intr), NULL);
   2163 	IFQ_LOCK_INIT(&ri->ri_intrq);
   2164 }
   2165 
   2166 /*
   2167  * Definitions of protocols supported in the ROUTE domain.
   2168  */
   2169 #ifndef COMPAT_RTSOCK
   2170 PR_WRAP_USRREQS(route);
   2171 #else
   2172 PR_WRAP_USRREQS(compat_50_route);
   2173 #endif
   2174 
   2175 static const struct pr_usrreqs route_usrreqs = {
   2176 	.pr_attach	= COMPATNAME(route_attach_wrapper),
   2177 	.pr_detach	= COMPATNAME(route_detach_wrapper),
   2178 	.pr_accept	= COMPATNAME(route_accept_wrapper),
   2179 	.pr_bind	= COMPATNAME(route_bind_wrapper),
   2180 	.pr_listen	= COMPATNAME(route_listen_wrapper),
   2181 	.pr_connect	= COMPATNAME(route_connect_wrapper),
   2182 	.pr_connect2	= COMPATNAME(route_connect2_wrapper),
   2183 	.pr_disconnect	= COMPATNAME(route_disconnect_wrapper),
   2184 	.pr_shutdown	= COMPATNAME(route_shutdown_wrapper),
   2185 	.pr_abort	= COMPATNAME(route_abort_wrapper),
   2186 	.pr_ioctl	= COMPATNAME(route_ioctl_wrapper),
   2187 	.pr_stat	= COMPATNAME(route_stat_wrapper),
   2188 	.pr_peeraddr	= COMPATNAME(route_peeraddr_wrapper),
   2189 	.pr_sockaddr	= COMPATNAME(route_sockaddr_wrapper),
   2190 	.pr_rcvd	= COMPATNAME(route_rcvd_wrapper),
   2191 	.pr_recvoob	= COMPATNAME(route_recvoob_wrapper),
   2192 	.pr_send	= COMPATNAME(route_send_wrapper),
   2193 	.pr_sendoob	= COMPATNAME(route_sendoob_wrapper),
   2194 	.pr_purgeif	= COMPATNAME(route_purgeif_wrapper),
   2195 };
   2196 
   2197 static const struct protosw COMPATNAME(route_protosw)[] = {
   2198 	{
   2199 		.pr_type = SOCK_RAW,
   2200 		.pr_domain = &COMPATNAME(routedomain),
   2201 		.pr_flags = PR_ATOMIC|PR_ADDR,
   2202 		.pr_input = raw_input,
   2203 		.pr_ctlinput = raw_ctlinput,
   2204 		.pr_ctloutput = route_ctloutput,
   2205 		.pr_usrreqs = &route_usrreqs,
   2206 		.pr_init = rt_pr_init,
   2207 	},
   2208 };
   2209 
   2210 struct domain COMPATNAME(routedomain) = {
   2211 	.dom_family = PF_XROUTE,
   2212 	.dom_name = DOMAINNAME,
   2213 	.dom_init = COMPATNAME(route_init),
   2214 	.dom_protosw = COMPATNAME(route_protosw),
   2215 	.dom_protoswNPROTOSW =
   2216 	    &COMPATNAME(route_protosw)[__arraycount(COMPATNAME(route_protosw))],
   2217 };
   2218 
   2219 static void
   2220 sysctl_net_route_setup(struct sysctllog **clog)
   2221 {
   2222 	const struct sysctlnode *rnode = NULL;
   2223 
   2224 	sysctl_createv(clog, 0, NULL, &rnode,
   2225 		       CTLFLAG_PERMANENT,
   2226 		       CTLTYPE_NODE, DOMAINNAME,
   2227 		       SYSCTL_DESCR("PF_ROUTE information"),
   2228 		       NULL, 0, NULL, 0,
   2229 		       CTL_NET, PF_XROUTE, CTL_EOL);
   2230 
   2231 	sysctl_createv(clog, 0, NULL, NULL,
   2232 		       CTLFLAG_PERMANENT,
   2233 		       CTLTYPE_NODE, "rtable",
   2234 		       SYSCTL_DESCR("Routing table information"),
   2235 		       sysctl_rtable, 0, NULL, 0,
   2236 		       CTL_NET, PF_XROUTE, 0 /* any protocol */, CTL_EOL);
   2237 
   2238 	sysctl_createv(clog, 0, &rnode, NULL,
   2239 		       CTLFLAG_PERMANENT,
   2240 		       CTLTYPE_STRUCT, "stats",
   2241 		       SYSCTL_DESCR("Routing statistics"),
   2242 		       NULL, 0, &rtstat, sizeof(rtstat),
   2243 		       CTL_CREATE, CTL_EOL);
   2244 }
   2245