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if.c revision 1.489
      1 /*	$NetBSD: if.c,v 1.489 2021/09/21 14:56:42 christos Exp $	*/
      2 
      3 /*-
      4  * Copyright (c) 1999, 2000, 2001, 2008 The NetBSD Foundation, Inc.
      5  * All rights reserved.
      6  *
      7  * This code is derived from software contributed to The NetBSD Foundation
      8  * by William Studenmund and Jason R. Thorpe.
      9  *
     10  * Redistribution and use in source and binary forms, with or without
     11  * modification, are permitted provided that the following conditions
     12  * are met:
     13  * 1. Redistributions of source code must retain the above copyright
     14  *    notice, this list of conditions and the following disclaimer.
     15  * 2. Redistributions in binary form must reproduce the above copyright
     16  *    notice, this list of conditions and the following disclaimer in the
     17  *    documentation and/or other materials provided with the distribution.
     18  *
     19  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29  * POSSIBILITY OF SUCH DAMAGE.
     30  */
     31 
     32 /*
     33  * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
     34  * 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 project 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 PROJECT 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 PROJECT 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 
     61 /*
     62  * Copyright (c) 1980, 1986, 1993
     63  *	The Regents of the University of California.  All rights reserved.
     64  *
     65  * Redistribution and use in source and binary forms, with or without
     66  * modification, are permitted provided that the following conditions
     67  * are met:
     68  * 1. Redistributions of source code must retain the above copyright
     69  *    notice, this list of conditions and the following disclaimer.
     70  * 2. Redistributions in binary form must reproduce the above copyright
     71  *    notice, this list of conditions and the following disclaimer in the
     72  *    documentation and/or other materials provided with the distribution.
     73  * 3. Neither the name of the University nor the names of its contributors
     74  *    may be used to endorse or promote products derived from this software
     75  *    without specific prior written permission.
     76  *
     77  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     78  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     79  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     80  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     81  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     82  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     83  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     84  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     85  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     86  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     87  * SUCH DAMAGE.
     88  *
     89  *	@(#)if.c	8.5 (Berkeley) 1/9/95
     90  */
     91 
     92 #include <sys/cdefs.h>
     93 __KERNEL_RCSID(0, "$NetBSD: if.c,v 1.489 2021/09/21 14:56:42 christos Exp $");
     94 
     95 #if defined(_KERNEL_OPT)
     96 #include "opt_inet.h"
     97 #include "opt_ipsec.h"
     98 #include "opt_atalk.h"
     99 #include "opt_wlan.h"
    100 #include "opt_net_mpsafe.h"
    101 #include "opt_mrouting.h"
    102 #endif
    103 
    104 #include <sys/param.h>
    105 #include <sys/mbuf.h>
    106 #include <sys/systm.h>
    107 #include <sys/callout.h>
    108 #include <sys/proc.h>
    109 #include <sys/socket.h>
    110 #include <sys/socketvar.h>
    111 #include <sys/domain.h>
    112 #include <sys/protosw.h>
    113 #include <sys/kernel.h>
    114 #include <sys/ioctl.h>
    115 #include <sys/sysctl.h>
    116 #include <sys/syslog.h>
    117 #include <sys/kauth.h>
    118 #include <sys/kmem.h>
    119 #include <sys/xcall.h>
    120 #include <sys/cpu.h>
    121 #include <sys/intr.h>
    122 #include <sys/module_hook.h>
    123 #include <sys/compat_stub.h>
    124 #include <sys/msan.h>
    125 
    126 #include <net/if.h>
    127 #include <net/if_dl.h>
    128 #include <net/if_ether.h>
    129 #include <net/if_media.h>
    130 #include <net80211/ieee80211.h>
    131 #include <net80211/ieee80211_ioctl.h>
    132 #include <net/if_types.h>
    133 #include <net/route.h>
    134 #include <net/netisr.h>
    135 #include <sys/module.h>
    136 #ifdef NETATALK
    137 #include <netatalk/at_extern.h>
    138 #include <netatalk/at.h>
    139 #endif
    140 #include <net/pfil.h>
    141 #include <netinet/in.h>
    142 #include <netinet/in_var.h>
    143 #include <netinet/ip_encap.h>
    144 #include <net/bpf.h>
    145 
    146 #ifdef INET6
    147 #include <netinet6/in6_var.h>
    148 #include <netinet6/nd6.h>
    149 #endif
    150 
    151 #include "ether.h"
    152 
    153 #include "bridge.h"
    154 #if NBRIDGE > 0
    155 #include <net/if_bridgevar.h>
    156 #endif
    157 
    158 #include "carp.h"
    159 #if NCARP > 0
    160 #include <netinet/ip_carp.h>
    161 #endif
    162 
    163 #include "lagg.h"
    164 #if NLAGG > 0
    165 #include <net/lagg/if_laggvar.h>
    166 #endif
    167 
    168 #include <compat/sys/sockio.h>
    169 
    170 MALLOC_DEFINE(M_IFADDR, "ifaddr", "interface address");
    171 MALLOC_DEFINE(M_IFMADDR, "ether_multi", "link-level multicast address");
    172 
    173 /*
    174  * XXX reusing (ifp)->if_snd->ifq_lock rather than having another spin mutex
    175  * for each ifnet.  It doesn't matter because:
    176  * - if IFEF_MPSAFE is enabled, if_snd isn't used and lock contentions on
    177  *   ifq_lock don't happen
    178  * - if IFEF_MPSAFE is disabled, there is no lock contention on ifq_lock
    179  *   because if_snd, if_link_state_change and if_link_state_change_process
    180  *   are all called with KERNEL_LOCK
    181  */
    182 #define IF_LINK_STATE_CHANGE_LOCK(ifp)		\
    183 	mutex_enter((ifp)->if_snd.ifq_lock)
    184 #define IF_LINK_STATE_CHANGE_UNLOCK(ifp)	\
    185 	mutex_exit((ifp)->if_snd.ifq_lock)
    186 
    187 /*
    188  * Global list of interfaces.
    189  */
    190 /* DEPRECATED. Remove it once kvm(3) users disappeared */
    191 struct ifnet_head		ifnet_list;
    192 
    193 struct pslist_head		ifnet_pslist;
    194 static ifnet_t **		ifindex2ifnet = NULL;
    195 static u_int			if_index = 1;
    196 static size_t			if_indexlim = 0;
    197 static uint64_t			index_gen;
    198 /* Mutex to protect the above objects. */
    199 kmutex_t			ifnet_mtx __cacheline_aligned;
    200 static struct psref_class	*ifnet_psref_class __read_mostly;
    201 static pserialize_t		ifnet_psz;
    202 static struct workqueue		*ifnet_link_state_wq __read_mostly;
    203 
    204 static kmutex_t			if_clone_mtx;
    205 
    206 struct ifnet *lo0ifp;
    207 int	ifqmaxlen = IFQ_MAXLEN;
    208 
    209 struct psref_class		*ifa_psref_class __read_mostly;
    210 
    211 static int	if_delroute_matcher(struct rtentry *, void *);
    212 
    213 static bool if_is_unit(const char *);
    214 static struct if_clone *if_clone_lookup(const char *, int *);
    215 
    216 static LIST_HEAD(, if_clone) if_cloners = LIST_HEAD_INITIALIZER(if_cloners);
    217 static int if_cloners_count;
    218 
    219 /* Packet filtering hook for interfaces. */
    220 pfil_head_t *			if_pfil __read_mostly;
    221 
    222 static kauth_listener_t if_listener;
    223 
    224 static int doifioctl(struct socket *, u_long, void *, struct lwp *);
    225 static void if_detach_queues(struct ifnet *, struct ifqueue *);
    226 static void sysctl_sndq_setup(struct sysctllog **, const char *,
    227     struct ifaltq *);
    228 static void if_slowtimo(void *);
    229 static void if_attachdomain1(struct ifnet *);
    230 static int ifconf(u_long, void *);
    231 static int if_transmit(struct ifnet *, struct mbuf *);
    232 static int if_clone_create(const char *);
    233 static int if_clone_destroy(const char *);
    234 static void if_link_state_change_work(struct work *, void *);
    235 static void if_up_locked(struct ifnet *);
    236 static void _if_down(struct ifnet *);
    237 static void if_down_deactivated(struct ifnet *);
    238 
    239 struct if_percpuq {
    240 	struct ifnet	*ipq_ifp;
    241 	void		*ipq_si;
    242 	struct percpu	*ipq_ifqs;	/* struct ifqueue */
    243 };
    244 
    245 static struct mbuf *if_percpuq_dequeue(struct if_percpuq *);
    246 
    247 static void if_percpuq_drops(void *, void *, struct cpu_info *);
    248 static int sysctl_percpuq_drops_handler(SYSCTLFN_PROTO);
    249 static void sysctl_percpuq_setup(struct sysctllog **, const char *,
    250     struct if_percpuq *);
    251 
    252 struct if_deferred_start {
    253 	struct ifnet	*ids_ifp;
    254 	void		(*ids_if_start)(struct ifnet *);
    255 	void		*ids_si;
    256 };
    257 
    258 static void if_deferred_start_softint(void *);
    259 static void if_deferred_start_common(struct ifnet *);
    260 static void if_deferred_start_destroy(struct ifnet *);
    261 
    262 #if defined(INET) || defined(INET6)
    263 static void sysctl_net_pktq_setup(struct sysctllog **, int);
    264 #endif
    265 
    266 /*
    267  * Hook for if_vlan - needed by if_agr
    268  */
    269 struct if_vlan_vlan_input_hook_t if_vlan_vlan_input_hook;
    270 
    271 static void if_sysctl_setup(struct sysctllog **);
    272 
    273 static int
    274 if_listener_cb(kauth_cred_t cred, kauth_action_t action, void *cookie,
    275     void *arg0, void *arg1, void *arg2, void *arg3)
    276 {
    277 	int result;
    278 	enum kauth_network_req req;
    279 
    280 	result = KAUTH_RESULT_DEFER;
    281 	req = (enum kauth_network_req)(uintptr_t)arg1;
    282 
    283 	if (action != KAUTH_NETWORK_INTERFACE)
    284 		return result;
    285 
    286 	if ((req == KAUTH_REQ_NETWORK_INTERFACE_GET) ||
    287 	    (req == KAUTH_REQ_NETWORK_INTERFACE_SET))
    288 		result = KAUTH_RESULT_ALLOW;
    289 
    290 	return result;
    291 }
    292 
    293 /*
    294  * Network interface utility routines.
    295  *
    296  * Routines with ifa_ifwith* names take sockaddr *'s as
    297  * parameters.
    298  */
    299 void
    300 ifinit(void)
    301 {
    302 
    303 #if (defined(INET) || defined(INET6))
    304 	encapinit();
    305 #endif
    306 
    307 	if_listener = kauth_listen_scope(KAUTH_SCOPE_NETWORK,
    308 	    if_listener_cb, NULL);
    309 
    310 	/* interfaces are available, inform socket code */
    311 	ifioctl = doifioctl;
    312 }
    313 
    314 /*
    315  * XXX Initialization before configure().
    316  * XXX hack to get pfil_add_hook working in autoconf.
    317  */
    318 void
    319 ifinit1(void)
    320 {
    321 	int error __diagused;
    322 
    323 #ifdef NET_MPSAFE
    324 	printf("NET_MPSAFE enabled\n");
    325 #endif
    326 
    327 	mutex_init(&if_clone_mtx, MUTEX_DEFAULT, IPL_NONE);
    328 
    329 	TAILQ_INIT(&ifnet_list);
    330 	mutex_init(&ifnet_mtx, MUTEX_DEFAULT, IPL_NONE);
    331 	ifnet_psz = pserialize_create();
    332 	ifnet_psref_class = psref_class_create("ifnet", IPL_SOFTNET);
    333 	ifa_psref_class = psref_class_create("ifa", IPL_SOFTNET);
    334 	error = workqueue_create(&ifnet_link_state_wq, "iflnkst",
    335 	    if_link_state_change_work, NULL, PRI_SOFTNET, IPL_NET,
    336 	    WQ_MPSAFE);
    337 	KASSERT(error == 0);
    338 	PSLIST_INIT(&ifnet_pslist);
    339 
    340 	if_indexlim = 8;
    341 
    342 	if_pfil = pfil_head_create(PFIL_TYPE_IFNET, NULL);
    343 	KASSERT(if_pfil != NULL);
    344 
    345 #if NETHER > 0 || defined(NETATALK) || defined(WLAN)
    346 	etherinit();
    347 #endif
    348 }
    349 
    350 /* XXX must be after domaininit() */
    351 void
    352 ifinit_post(void)
    353 {
    354 
    355 	if_sysctl_setup(NULL);
    356 }
    357 
    358 ifnet_t *
    359 if_alloc(u_char type)
    360 {
    361 	return kmem_zalloc(sizeof(ifnet_t), KM_SLEEP);
    362 }
    363 
    364 void
    365 if_free(ifnet_t *ifp)
    366 {
    367 	kmem_free(ifp, sizeof(ifnet_t));
    368 }
    369 
    370 void
    371 if_initname(struct ifnet *ifp, const char *name, int unit)
    372 {
    373 	(void)snprintf(ifp->if_xname, sizeof(ifp->if_xname),
    374 	    "%s%d", name, unit);
    375 }
    376 
    377 /*
    378  * Null routines used while an interface is going away.  These routines
    379  * just return an error.
    380  */
    381 
    382 int
    383 if_nulloutput(struct ifnet *ifp, struct mbuf *m,
    384     const struct sockaddr *so, const struct rtentry *rt)
    385 {
    386 
    387 	return ENXIO;
    388 }
    389 
    390 void
    391 if_nullinput(struct ifnet *ifp, struct mbuf *m)
    392 {
    393 
    394 	/* Nothing. */
    395 }
    396 
    397 void
    398 if_nullstart(struct ifnet *ifp)
    399 {
    400 
    401 	/* Nothing. */
    402 }
    403 
    404 int
    405 if_nulltransmit(struct ifnet *ifp, struct mbuf *m)
    406 {
    407 
    408 	m_freem(m);
    409 	return ENXIO;
    410 }
    411 
    412 int
    413 if_nullioctl(struct ifnet *ifp, u_long cmd, void *data)
    414 {
    415 
    416 	return ENXIO;
    417 }
    418 
    419 int
    420 if_nullinit(struct ifnet *ifp)
    421 {
    422 
    423 	return ENXIO;
    424 }
    425 
    426 void
    427 if_nullstop(struct ifnet *ifp, int disable)
    428 {
    429 
    430 	/* Nothing. */
    431 }
    432 
    433 void
    434 if_nullslowtimo(struct ifnet *ifp)
    435 {
    436 
    437 	/* Nothing. */
    438 }
    439 
    440 void
    441 if_nulldrain(struct ifnet *ifp)
    442 {
    443 
    444 	/* Nothing. */
    445 }
    446 
    447 void
    448 if_set_sadl(struct ifnet *ifp, const void *lla, u_char addrlen, bool factory)
    449 {
    450 	struct ifaddr *ifa;
    451 	struct sockaddr_dl *sdl;
    452 
    453 	ifp->if_addrlen = addrlen;
    454 	if_alloc_sadl(ifp);
    455 	ifa = ifp->if_dl;
    456 	sdl = satosdl(ifa->ifa_addr);
    457 
    458 	(void)sockaddr_dl_setaddr(sdl, sdl->sdl_len, lla, ifp->if_addrlen);
    459 	if (factory) {
    460 		KASSERT(ifp->if_hwdl == NULL);
    461 		ifp->if_hwdl = ifp->if_dl;
    462 		ifaref(ifp->if_hwdl);
    463 	}
    464 	/* TBD routing socket */
    465 }
    466 
    467 struct ifaddr *
    468 if_dl_create(const struct ifnet *ifp, const struct sockaddr_dl **sdlp)
    469 {
    470 	unsigned socksize, ifasize;
    471 	int addrlen, namelen;
    472 	struct sockaddr_dl *mask, *sdl;
    473 	struct ifaddr *ifa;
    474 
    475 	namelen = strlen(ifp->if_xname);
    476 	addrlen = ifp->if_addrlen;
    477 	socksize = roundup(sockaddr_dl_measure(namelen, addrlen), sizeof(long));
    478 	ifasize = sizeof(*ifa) + 2 * socksize;
    479 	ifa = malloc(ifasize, M_IFADDR, M_WAITOK | M_ZERO);
    480 
    481 	sdl = (struct sockaddr_dl *)(ifa + 1);
    482 	mask = (struct sockaddr_dl *)(socksize + (char *)sdl);
    483 
    484 	sockaddr_dl_init(sdl, socksize, ifp->if_index, ifp->if_type,
    485 	    ifp->if_xname, namelen, NULL, addrlen);
    486 	mask->sdl_family = AF_LINK;
    487 	mask->sdl_len = sockaddr_dl_measure(namelen, 0);
    488 	memset(&mask->sdl_data[0], 0xff, namelen);
    489 	ifa->ifa_rtrequest = link_rtrequest;
    490 	ifa->ifa_addr = (struct sockaddr *)sdl;
    491 	ifa->ifa_netmask = (struct sockaddr *)mask;
    492 	ifa_psref_init(ifa);
    493 
    494 	*sdlp = sdl;
    495 
    496 	return ifa;
    497 }
    498 
    499 static void
    500 if_sadl_setrefs(struct ifnet *ifp, struct ifaddr *ifa)
    501 {
    502 	const struct sockaddr_dl *sdl;
    503 
    504 	ifp->if_dl = ifa;
    505 	ifaref(ifa);
    506 	sdl = satosdl(ifa->ifa_addr);
    507 	ifp->if_sadl = sdl;
    508 }
    509 
    510 /*
    511  * Allocate the link level name for the specified interface.  This
    512  * is an attachment helper.  It must be called after ifp->if_addrlen
    513  * is initialized, which may not be the case when if_attach() is
    514  * called.
    515  */
    516 void
    517 if_alloc_sadl(struct ifnet *ifp)
    518 {
    519 	struct ifaddr *ifa;
    520 	const struct sockaddr_dl *sdl;
    521 
    522 	/*
    523 	 * If the interface already has a link name, release it
    524 	 * now.  This is useful for interfaces that can change
    525 	 * link types, and thus switch link names often.
    526 	 */
    527 	if (ifp->if_sadl != NULL)
    528 		if_free_sadl(ifp, 0);
    529 
    530 	ifa = if_dl_create(ifp, &sdl);
    531 
    532 	ifa_insert(ifp, ifa);
    533 	if_sadl_setrefs(ifp, ifa);
    534 }
    535 
    536 static void
    537 if_deactivate_sadl(struct ifnet *ifp)
    538 {
    539 	struct ifaddr *ifa;
    540 
    541 	KASSERT(ifp->if_dl != NULL);
    542 
    543 	ifa = ifp->if_dl;
    544 
    545 	ifp->if_sadl = NULL;
    546 
    547 	ifp->if_dl = NULL;
    548 	ifafree(ifa);
    549 }
    550 
    551 static void
    552 if_replace_sadl(struct ifnet *ifp, struct ifaddr *ifa)
    553 {
    554 	struct ifaddr *old;
    555 
    556 	KASSERT(ifp->if_dl != NULL);
    557 
    558 	old = ifp->if_dl;
    559 
    560 	ifaref(ifa);
    561 	/* XXX Update if_dl and if_sadl atomically */
    562 	ifp->if_dl = ifa;
    563 	ifp->if_sadl = satosdl(ifa->ifa_addr);
    564 
    565 	ifafree(old);
    566 }
    567 
    568 void
    569 if_activate_sadl(struct ifnet *ifp, struct ifaddr *ifa0,
    570     const struct sockaddr_dl *sdl)
    571 {
    572 	int s, ss;
    573 	struct ifaddr *ifa;
    574 	int bound = curlwp_bind();
    575 
    576 	KASSERT(ifa_held(ifa0));
    577 
    578 	s = splsoftnet();
    579 
    580 	if_replace_sadl(ifp, ifa0);
    581 
    582 	ss = pserialize_read_enter();
    583 	IFADDR_READER_FOREACH(ifa, ifp) {
    584 		struct psref psref;
    585 		ifa_acquire(ifa, &psref);
    586 		pserialize_read_exit(ss);
    587 
    588 		rtinit(ifa, RTM_LLINFO_UPD, 0);
    589 
    590 		ss = pserialize_read_enter();
    591 		ifa_release(ifa, &psref);
    592 	}
    593 	pserialize_read_exit(ss);
    594 
    595 	splx(s);
    596 	curlwp_bindx(bound);
    597 }
    598 
    599 /*
    600  * Free the link level name for the specified interface.  This is
    601  * a detach helper.  This is called from if_detach().
    602  */
    603 void
    604 if_free_sadl(struct ifnet *ifp, int factory)
    605 {
    606 	struct ifaddr *ifa;
    607 	int s;
    608 
    609 	if (factory && ifp->if_hwdl != NULL) {
    610 		ifa = ifp->if_hwdl;
    611 		ifp->if_hwdl = NULL;
    612 		ifafree(ifa);
    613 	}
    614 
    615 	ifa = ifp->if_dl;
    616 	if (ifa == NULL) {
    617 		KASSERT(ifp->if_sadl == NULL);
    618 		return;
    619 	}
    620 
    621 	KASSERT(ifp->if_sadl != NULL);
    622 
    623 	s = splsoftnet();
    624 	KASSERT(ifa->ifa_addr->sa_family == AF_LINK);
    625 	ifa_remove(ifp, ifa);
    626 	if_deactivate_sadl(ifp);
    627 	splx(s);
    628 }
    629 
    630 static void
    631 if_getindex(ifnet_t *ifp)
    632 {
    633 	bool hitlimit = false;
    634 
    635 	ifp->if_index_gen = index_gen++;
    636 
    637 	ifp->if_index = if_index;
    638 	if (ifindex2ifnet == NULL) {
    639 		if_index++;
    640 		goto skip;
    641 	}
    642 	while (if_byindex(ifp->if_index)) {
    643 		/*
    644 		 * If we hit USHRT_MAX, we skip back to 0 since
    645 		 * there are a number of places where the value
    646 		 * of if_index or if_index itself is compared
    647 		 * to or stored in an unsigned short.  By
    648 		 * jumping back, we won't botch those assignments
    649 		 * or comparisons.
    650 		 */
    651 		if (++if_index == 0) {
    652 			if_index = 1;
    653 		} else if (if_index == USHRT_MAX) {
    654 			/*
    655 			 * However, if we have to jump back to
    656 			 * zero *twice* without finding an empty
    657 			 * slot in ifindex2ifnet[], then there
    658 			 * there are too many (>65535) interfaces.
    659 			 */
    660 			if (hitlimit) {
    661 				panic("too many interfaces");
    662 			}
    663 			hitlimit = true;
    664 			if_index = 1;
    665 		}
    666 		ifp->if_index = if_index;
    667 	}
    668 skip:
    669 	/*
    670 	 * ifindex2ifnet is indexed by if_index. Since if_index will
    671 	 * grow dynamically, it should grow too.
    672 	 */
    673 	if (ifindex2ifnet == NULL || ifp->if_index >= if_indexlim) {
    674 		size_t m, n, oldlim;
    675 		void *q;
    676 
    677 		oldlim = if_indexlim;
    678 		while (ifp->if_index >= if_indexlim)
    679 			if_indexlim <<= 1;
    680 
    681 		/* grow ifindex2ifnet */
    682 		m = oldlim * sizeof(struct ifnet *);
    683 		n = if_indexlim * sizeof(struct ifnet *);
    684 		q = malloc(n, M_IFADDR, M_WAITOK | M_ZERO);
    685 		if (ifindex2ifnet != NULL) {
    686 			memcpy(q, ifindex2ifnet, m);
    687 			free(ifindex2ifnet, M_IFADDR);
    688 		}
    689 		ifindex2ifnet = (struct ifnet **)q;
    690 	}
    691 	ifindex2ifnet[ifp->if_index] = ifp;
    692 }
    693 
    694 /*
    695  * Initialize an interface and assign an index for it.
    696  *
    697  * It must be called prior to a device specific attach routine
    698  * (e.g., ether_ifattach and ieee80211_ifattach) or if_alloc_sadl,
    699  * and be followed by if_register:
    700  *
    701  *     if_initialize(ifp);
    702  *     ether_ifattach(ifp, enaddr);
    703  *     if_register(ifp);
    704  */
    705 void
    706 if_initialize(ifnet_t *ifp)
    707 {
    708 
    709 	KASSERT(if_indexlim > 0);
    710 	TAILQ_INIT(&ifp->if_addrlist);
    711 
    712 	/*
    713 	 * Link level name is allocated later by a separate call to
    714 	 * if_alloc_sadl().
    715 	 */
    716 
    717 	if (ifp->if_snd.ifq_maxlen == 0)
    718 		ifp->if_snd.ifq_maxlen = ifqmaxlen;
    719 
    720 	ifp->if_broadcastaddr = 0; /* reliably crash if used uninitialized */
    721 
    722 	ifp->if_link_state = LINK_STATE_UNKNOWN;
    723 	ifp->if_link_queue = -1; /* all bits set, see link_state_change() */
    724 	ifp->if_link_scheduled = false;
    725 
    726 	ifp->if_capenable = 0;
    727 	ifp->if_csum_flags_tx = 0;
    728 	ifp->if_csum_flags_rx = 0;
    729 
    730 #ifdef ALTQ
    731 	ifp->if_snd.altq_type = 0;
    732 	ifp->if_snd.altq_disc = NULL;
    733 	ifp->if_snd.altq_flags &= ALTQF_CANTCHANGE;
    734 	ifp->if_snd.altq_tbr  = NULL;
    735 	ifp->if_snd.altq_ifp  = ifp;
    736 #endif
    737 
    738 	IFQ_LOCK_INIT(&ifp->if_snd);
    739 
    740 	ifp->if_pfil = pfil_head_create(PFIL_TYPE_IFNET, ifp);
    741 	pfil_run_ifhooks(if_pfil, PFIL_IFNET_ATTACH, ifp);
    742 
    743 	IF_AFDATA_LOCK_INIT(ifp);
    744 
    745 	PSLIST_ENTRY_INIT(ifp, if_pslist_entry);
    746 	PSLIST_INIT(&ifp->if_addr_pslist);
    747 	psref_target_init(&ifp->if_psref, ifnet_psref_class);
    748 	ifp->if_ioctl_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
    749 	LIST_INIT(&ifp->if_multiaddrs);
    750 	if_stats_init(ifp);
    751 
    752 	IFNET_GLOBAL_LOCK();
    753 	if_getindex(ifp);
    754 	IFNET_GLOBAL_UNLOCK();
    755 }
    756 
    757 /*
    758  * Register an interface to the list of "active" interfaces.
    759  */
    760 void
    761 if_register(ifnet_t *ifp)
    762 {
    763 	/*
    764 	 * If the driver has not supplied its own if_ioctl or if_stop,
    765 	 * then supply the default.
    766 	 */
    767 	if (ifp->if_ioctl == NULL)
    768 		ifp->if_ioctl = ifioctl_common;
    769 	if (ifp->if_stop == NULL)
    770 		ifp->if_stop = if_nullstop;
    771 
    772 	sysctl_sndq_setup(&ifp->if_sysctl_log, ifp->if_xname, &ifp->if_snd);
    773 
    774 	if (!STAILQ_EMPTY(&domains))
    775 		if_attachdomain1(ifp);
    776 
    777 	/* Announce the interface. */
    778 	rt_ifannouncemsg(ifp, IFAN_ARRIVAL);
    779 
    780 	if (ifp->if_slowtimo != NULL) {
    781 		ifp->if_slowtimo_ch =
    782 		    kmem_zalloc(sizeof(*ifp->if_slowtimo_ch), KM_SLEEP);
    783 		callout_init(ifp->if_slowtimo_ch, 0);
    784 		callout_setfunc(ifp->if_slowtimo_ch, if_slowtimo, ifp);
    785 		if_slowtimo(ifp);
    786 	}
    787 
    788 	if (ifp->if_transmit == NULL || ifp->if_transmit == if_nulltransmit)
    789 		ifp->if_transmit = if_transmit;
    790 
    791 	IFNET_GLOBAL_LOCK();
    792 	TAILQ_INSERT_TAIL(&ifnet_list, ifp, if_list);
    793 	IFNET_WRITER_INSERT_TAIL(ifp);
    794 	IFNET_GLOBAL_UNLOCK();
    795 }
    796 
    797 /*
    798  * The if_percpuq framework
    799  *
    800  * It allows network device drivers to execute the network stack
    801  * in softint (so called softint-based if_input). It utilizes
    802  * softint and percpu ifqueue. It doesn't distribute any packets
    803  * between CPUs, unlike pktqueue(9).
    804  *
    805  * Currently we support two options for device drivers to apply the framework:
    806  * - Use it implicitly with less changes
    807  *   - If you use if_attach in driver's _attach function and if_input in
    808  *     driver's Rx interrupt handler, a packet is queued and a softint handles
    809  *     the packet implicitly
    810  * - Use it explicitly in each driver (recommended)
    811  *   - You can use if_percpuq_* directly in your driver
    812  *   - In this case, you need to allocate struct if_percpuq in driver's softc
    813  *   - See wm(4) as a reference implementation
    814  */
    815 
    816 static void
    817 if_percpuq_softint(void *arg)
    818 {
    819 	struct if_percpuq *ipq = arg;
    820 	struct ifnet *ifp = ipq->ipq_ifp;
    821 	struct mbuf *m;
    822 
    823 	while ((m = if_percpuq_dequeue(ipq)) != NULL) {
    824 		if_statinc(ifp, if_ipackets);
    825 		bpf_mtap(ifp, m, BPF_D_IN);
    826 
    827 		ifp->_if_input(ifp, m);
    828 	}
    829 }
    830 
    831 static void
    832 if_percpuq_init_ifq(void *p, void *arg __unused, struct cpu_info *ci __unused)
    833 {
    834 	struct ifqueue *const ifq = p;
    835 
    836 	memset(ifq, 0, sizeof(*ifq));
    837 	ifq->ifq_maxlen = IFQ_MAXLEN;
    838 }
    839 
    840 struct if_percpuq *
    841 if_percpuq_create(struct ifnet *ifp)
    842 {
    843 	struct if_percpuq *ipq;
    844 	u_int flags = SOFTINT_NET;
    845 
    846 	flags |= if_is_mpsafe(ifp) ? SOFTINT_MPSAFE : 0;
    847 
    848 	ipq = kmem_zalloc(sizeof(*ipq), KM_SLEEP);
    849 	ipq->ipq_ifp = ifp;
    850 	ipq->ipq_si = softint_establish(flags, if_percpuq_softint, ipq);
    851 	ipq->ipq_ifqs = percpu_alloc(sizeof(struct ifqueue));
    852 	percpu_foreach(ipq->ipq_ifqs, &if_percpuq_init_ifq, NULL);
    853 
    854 	sysctl_percpuq_setup(&ifp->if_sysctl_log, ifp->if_xname, ipq);
    855 
    856 	return ipq;
    857 }
    858 
    859 static struct mbuf *
    860 if_percpuq_dequeue(struct if_percpuq *ipq)
    861 {
    862 	struct mbuf *m;
    863 	struct ifqueue *ifq;
    864 	int s;
    865 
    866 	s = splnet();
    867 	ifq = percpu_getref(ipq->ipq_ifqs);
    868 	IF_DEQUEUE(ifq, m);
    869 	percpu_putref(ipq->ipq_ifqs);
    870 	splx(s);
    871 
    872 	return m;
    873 }
    874 
    875 static void
    876 if_percpuq_purge_ifq(void *p, void *arg __unused, struct cpu_info *ci __unused)
    877 {
    878 	struct ifqueue *const ifq = p;
    879 
    880 	IF_PURGE(ifq);
    881 }
    882 
    883 void
    884 if_percpuq_destroy(struct if_percpuq *ipq)
    885 {
    886 
    887 	/* if_detach may already destroy it */
    888 	if (ipq == NULL)
    889 		return;
    890 
    891 	softint_disestablish(ipq->ipq_si);
    892 	percpu_foreach(ipq->ipq_ifqs, &if_percpuq_purge_ifq, NULL);
    893 	percpu_free(ipq->ipq_ifqs, sizeof(struct ifqueue));
    894 	kmem_free(ipq, sizeof(*ipq));
    895 }
    896 
    897 void
    898 if_percpuq_enqueue(struct if_percpuq *ipq, struct mbuf *m)
    899 {
    900 	struct ifqueue *ifq;
    901 	int s;
    902 
    903 	KASSERT(ipq != NULL);
    904 
    905 	s = splnet();
    906 	ifq = percpu_getref(ipq->ipq_ifqs);
    907 	if (IF_QFULL(ifq)) {
    908 		IF_DROP(ifq);
    909 		percpu_putref(ipq->ipq_ifqs);
    910 		m_freem(m);
    911 		goto out;
    912 	}
    913 	IF_ENQUEUE(ifq, m);
    914 	percpu_putref(ipq->ipq_ifqs);
    915 
    916 	softint_schedule(ipq->ipq_si);
    917 out:
    918 	splx(s);
    919 }
    920 
    921 static void
    922 if_percpuq_drops(void *p, void *arg, struct cpu_info *ci __unused)
    923 {
    924 	struct ifqueue *const ifq = p;
    925 	int *sum = arg;
    926 
    927 	*sum += ifq->ifq_drops;
    928 }
    929 
    930 static int
    931 sysctl_percpuq_drops_handler(SYSCTLFN_ARGS)
    932 {
    933 	struct sysctlnode node;
    934 	struct if_percpuq *ipq;
    935 	int sum = 0;
    936 	int error;
    937 
    938 	node = *rnode;
    939 	ipq = node.sysctl_data;
    940 
    941 	percpu_foreach(ipq->ipq_ifqs, if_percpuq_drops, &sum);
    942 
    943 	node.sysctl_data = &sum;
    944 	error = sysctl_lookup(SYSCTLFN_CALL(&node));
    945 	if (error != 0 || newp == NULL)
    946 		return error;
    947 
    948 	return 0;
    949 }
    950 
    951 static void
    952 sysctl_percpuq_setup(struct sysctllog **clog, const char* ifname,
    953     struct if_percpuq *ipq)
    954 {
    955 	const struct sysctlnode *cnode, *rnode;
    956 
    957 	if (sysctl_createv(clog, 0, NULL, &rnode,
    958 		       CTLFLAG_PERMANENT,
    959 		       CTLTYPE_NODE, "interfaces",
    960 		       SYSCTL_DESCR("Per-interface controls"),
    961 		       NULL, 0, NULL, 0,
    962 		       CTL_NET, CTL_CREATE, CTL_EOL) != 0)
    963 		goto bad;
    964 
    965 	if (sysctl_createv(clog, 0, &rnode, &rnode,
    966 		       CTLFLAG_PERMANENT,
    967 		       CTLTYPE_NODE, ifname,
    968 		       SYSCTL_DESCR("Interface controls"),
    969 		       NULL, 0, NULL, 0,
    970 		       CTL_CREATE, CTL_EOL) != 0)
    971 		goto bad;
    972 
    973 	if (sysctl_createv(clog, 0, &rnode, &rnode,
    974 		       CTLFLAG_PERMANENT,
    975 		       CTLTYPE_NODE, "rcvq",
    976 		       SYSCTL_DESCR("Interface input queue controls"),
    977 		       NULL, 0, NULL, 0,
    978 		       CTL_CREATE, CTL_EOL) != 0)
    979 		goto bad;
    980 
    981 #ifdef NOTYET
    982 	/* XXX Should show each per-CPU queue length? */
    983 	if (sysctl_createv(clog, 0, &rnode, &rnode,
    984 		       CTLFLAG_PERMANENT,
    985 		       CTLTYPE_INT, "len",
    986 		       SYSCTL_DESCR("Current input queue length"),
    987 		       sysctl_percpuq_len, 0, NULL, 0,
    988 		       CTL_CREATE, CTL_EOL) != 0)
    989 		goto bad;
    990 
    991 	if (sysctl_createv(clog, 0, &rnode, &cnode,
    992 		       CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
    993 		       CTLTYPE_INT, "maxlen",
    994 		       SYSCTL_DESCR("Maximum allowed input queue length"),
    995 		       sysctl_percpuq_maxlen_handler, 0, (void *)ipq, 0,
    996 		       CTL_CREATE, CTL_EOL) != 0)
    997 		goto bad;
    998 #endif
    999 
   1000 	if (sysctl_createv(clog, 0, &rnode, &cnode,
   1001 		       CTLFLAG_PERMANENT,
   1002 		       CTLTYPE_INT, "drops",
   1003 		       SYSCTL_DESCR("Total packets dropped due to full input queue"),
   1004 		       sysctl_percpuq_drops_handler, 0, (void *)ipq, 0,
   1005 		       CTL_CREATE, CTL_EOL) != 0)
   1006 		goto bad;
   1007 
   1008 	return;
   1009 bad:
   1010 	printf("%s: could not attach sysctl nodes\n", ifname);
   1011 	return;
   1012 }
   1013 
   1014 /*
   1015  * The deferred if_start framework
   1016  *
   1017  * The common APIs to defer if_start to softint when if_start is requested
   1018  * from a device driver running in hardware interrupt context.
   1019  */
   1020 /*
   1021  * Call ifp->if_start (or equivalent) in a dedicated softint for
   1022  * deferred if_start.
   1023  */
   1024 static void
   1025 if_deferred_start_softint(void *arg)
   1026 {
   1027 	struct if_deferred_start *ids = arg;
   1028 	struct ifnet *ifp = ids->ids_ifp;
   1029 
   1030 	ids->ids_if_start(ifp);
   1031 }
   1032 
   1033 /*
   1034  * The default callback function for deferred if_start.
   1035  */
   1036 static void
   1037 if_deferred_start_common(struct ifnet *ifp)
   1038 {
   1039 	int s;
   1040 
   1041 	s = splnet();
   1042 	if_start_lock(ifp);
   1043 	splx(s);
   1044 }
   1045 
   1046 static inline bool
   1047 if_snd_is_used(struct ifnet *ifp)
   1048 {
   1049 
   1050 	return ALTQ_IS_ENABLED(&ifp->if_snd) ||
   1051 		ifp->if_transmit == if_transmit ||
   1052 		ifp->if_transmit == NULL || ifp->if_transmit == if_nulltransmit;
   1053 }
   1054 
   1055 /*
   1056  * Schedule deferred if_start.
   1057  */
   1058 void
   1059 if_schedule_deferred_start(struct ifnet *ifp)
   1060 {
   1061 
   1062 	KASSERT(ifp->if_deferred_start != NULL);
   1063 
   1064 	if (if_snd_is_used(ifp) && IFQ_IS_EMPTY(&ifp->if_snd))
   1065 		return;
   1066 
   1067 	softint_schedule(ifp->if_deferred_start->ids_si);
   1068 }
   1069 
   1070 /*
   1071  * Create an instance of deferred if_start. A driver should call the function
   1072  * only if the driver needs deferred if_start. Drivers can setup their own
   1073  * deferred if_start function via 2nd argument.
   1074  */
   1075 void
   1076 if_deferred_start_init(struct ifnet *ifp, void (*func)(struct ifnet *))
   1077 {
   1078 	struct if_deferred_start *ids;
   1079 	u_int flags = SOFTINT_NET;
   1080 
   1081 	flags |= if_is_mpsafe(ifp) ? SOFTINT_MPSAFE : 0;
   1082 
   1083 	ids = kmem_zalloc(sizeof(*ids), KM_SLEEP);
   1084 	ids->ids_ifp = ifp;
   1085 	ids->ids_si = softint_establish(flags, if_deferred_start_softint, ids);
   1086 	if (func != NULL)
   1087 		ids->ids_if_start = func;
   1088 	else
   1089 		ids->ids_if_start = if_deferred_start_common;
   1090 
   1091 	ifp->if_deferred_start = ids;
   1092 }
   1093 
   1094 static void
   1095 if_deferred_start_destroy(struct ifnet *ifp)
   1096 {
   1097 
   1098 	if (ifp->if_deferred_start == NULL)
   1099 		return;
   1100 
   1101 	softint_disestablish(ifp->if_deferred_start->ids_si);
   1102 	kmem_free(ifp->if_deferred_start, sizeof(*ifp->if_deferred_start));
   1103 	ifp->if_deferred_start = NULL;
   1104 }
   1105 
   1106 /*
   1107  * The common interface input routine that is called by device drivers,
   1108  * which should be used only when the driver's rx handler already runs
   1109  * in softint.
   1110  */
   1111 void
   1112 if_input(struct ifnet *ifp, struct mbuf *m)
   1113 {
   1114 
   1115 	KASSERT(ifp->if_percpuq == NULL);
   1116 	KASSERT(!cpu_intr_p());
   1117 
   1118 	if_statinc(ifp, if_ipackets);
   1119 	bpf_mtap(ifp, m, BPF_D_IN);
   1120 
   1121 	ifp->_if_input(ifp, m);
   1122 }
   1123 
   1124 /*
   1125  * DEPRECATED. Use if_initialize and if_register instead.
   1126  * See the above comment of if_initialize.
   1127  *
   1128  * Note that it implicitly enables if_percpuq to make drivers easy to
   1129  * migrate softint-based if_input without much changes. If you don't
   1130  * want to enable it, use if_initialize instead.
   1131  */
   1132 void
   1133 if_attach(ifnet_t *ifp)
   1134 {
   1135 
   1136 	if_initialize(ifp);
   1137 	ifp->if_percpuq = if_percpuq_create(ifp);
   1138 	if_register(ifp);
   1139 }
   1140 
   1141 void
   1142 if_attachdomain(void)
   1143 {
   1144 	struct ifnet *ifp;
   1145 	int s;
   1146 	int bound = curlwp_bind();
   1147 
   1148 	s = pserialize_read_enter();
   1149 	IFNET_READER_FOREACH(ifp) {
   1150 		struct psref psref;
   1151 		psref_acquire(&psref, &ifp->if_psref, ifnet_psref_class);
   1152 		pserialize_read_exit(s);
   1153 		if_attachdomain1(ifp);
   1154 		s = pserialize_read_enter();
   1155 		psref_release(&psref, &ifp->if_psref, ifnet_psref_class);
   1156 	}
   1157 	pserialize_read_exit(s);
   1158 	curlwp_bindx(bound);
   1159 }
   1160 
   1161 static void
   1162 if_attachdomain1(struct ifnet *ifp)
   1163 {
   1164 	struct domain *dp;
   1165 	int s;
   1166 
   1167 	s = splsoftnet();
   1168 
   1169 	/* address family dependent data region */
   1170 	memset(ifp->if_afdata, 0, sizeof(ifp->if_afdata));
   1171 	DOMAIN_FOREACH(dp) {
   1172 		if (dp->dom_ifattach != NULL)
   1173 			ifp->if_afdata[dp->dom_family] =
   1174 			    (*dp->dom_ifattach)(ifp);
   1175 	}
   1176 
   1177 	splx(s);
   1178 }
   1179 
   1180 /*
   1181  * Deactivate an interface.  This points all of the procedure
   1182  * handles at error stubs.  May be called from interrupt context.
   1183  */
   1184 void
   1185 if_deactivate(struct ifnet *ifp)
   1186 {
   1187 	int s;
   1188 
   1189 	s = splsoftnet();
   1190 
   1191 	ifp->if_output	 = if_nulloutput;
   1192 	ifp->_if_input	 = if_nullinput;
   1193 	ifp->if_start	 = if_nullstart;
   1194 	ifp->if_transmit = if_nulltransmit;
   1195 	ifp->if_ioctl	 = if_nullioctl;
   1196 	ifp->if_init	 = if_nullinit;
   1197 	ifp->if_stop	 = if_nullstop;
   1198 	ifp->if_slowtimo = if_nullslowtimo;
   1199 	ifp->if_drain	 = if_nulldrain;
   1200 
   1201 	ifp->if_link_state_changed = NULL;
   1202 
   1203 	/* No more packets may be enqueued. */
   1204 	ifp->if_snd.ifq_maxlen = 0;
   1205 
   1206 	splx(s);
   1207 }
   1208 
   1209 bool
   1210 if_is_deactivated(const struct ifnet *ifp)
   1211 {
   1212 
   1213 	return ifp->if_output == if_nulloutput;
   1214 }
   1215 
   1216 void
   1217 if_purgeaddrs(struct ifnet *ifp, int family, void (*purgeaddr)(struct ifaddr *))
   1218 {
   1219 	struct ifaddr *ifa, *nifa;
   1220 	int s;
   1221 
   1222 	s = pserialize_read_enter();
   1223 	for (ifa = IFADDR_READER_FIRST(ifp); ifa; ifa = nifa) {
   1224 		nifa = IFADDR_READER_NEXT(ifa);
   1225 		if (ifa->ifa_addr->sa_family != family)
   1226 			continue;
   1227 		pserialize_read_exit(s);
   1228 
   1229 		(*purgeaddr)(ifa);
   1230 
   1231 		s = pserialize_read_enter();
   1232 	}
   1233 	pserialize_read_exit(s);
   1234 }
   1235 
   1236 #ifdef IFAREF_DEBUG
   1237 static struct ifaddr **ifa_list;
   1238 static int ifa_list_size;
   1239 
   1240 /* Depends on only one if_attach runs at once */
   1241 static void
   1242 if_build_ifa_list(struct ifnet *ifp)
   1243 {
   1244 	struct ifaddr *ifa;
   1245 	int i;
   1246 
   1247 	KASSERT(ifa_list == NULL);
   1248 	KASSERT(ifa_list_size == 0);
   1249 
   1250 	IFADDR_READER_FOREACH(ifa, ifp)
   1251 		ifa_list_size++;
   1252 
   1253 	ifa_list = kmem_alloc(sizeof(*ifa) * ifa_list_size, KM_SLEEP);
   1254 	i = 0;
   1255 	IFADDR_READER_FOREACH(ifa, ifp) {
   1256 		ifa_list[i++] = ifa;
   1257 		ifaref(ifa);
   1258 	}
   1259 }
   1260 
   1261 static void
   1262 if_check_and_free_ifa_list(struct ifnet *ifp)
   1263 {
   1264 	int i;
   1265 	struct ifaddr *ifa;
   1266 
   1267 	if (ifa_list == NULL)
   1268 		return;
   1269 
   1270 	for (i = 0; i < ifa_list_size; i++) {
   1271 		char buf[64];
   1272 
   1273 		ifa = ifa_list[i];
   1274 		sockaddr_format(ifa->ifa_addr, buf, sizeof(buf));
   1275 		if (ifa->ifa_refcnt > 1) {
   1276 			log(LOG_WARNING,
   1277 			    "ifa(%s) still referenced (refcnt=%d)\n",
   1278 			    buf, ifa->ifa_refcnt - 1);
   1279 		} else
   1280 			log(LOG_DEBUG,
   1281 			    "ifa(%s) not referenced (refcnt=%d)\n",
   1282 			    buf, ifa->ifa_refcnt - 1);
   1283 		ifafree(ifa);
   1284 	}
   1285 
   1286 	kmem_free(ifa_list, sizeof(*ifa) * ifa_list_size);
   1287 	ifa_list = NULL;
   1288 	ifa_list_size = 0;
   1289 }
   1290 #endif
   1291 
   1292 /*
   1293  * Detach an interface from the list of "active" interfaces,
   1294  * freeing any resources as we go along.
   1295  *
   1296  * NOTE: This routine must be called with a valid thread context,
   1297  * as it may block.
   1298  */
   1299 void
   1300 if_detach(struct ifnet *ifp)
   1301 {
   1302 	struct socket so;
   1303 	struct ifaddr *ifa;
   1304 #ifdef IFAREF_DEBUG
   1305 	struct ifaddr *last_ifa = NULL;
   1306 #endif
   1307 	struct domain *dp;
   1308 	const struct protosw *pr;
   1309 	int s, i, family, purged;
   1310 
   1311 #ifdef IFAREF_DEBUG
   1312 	if_build_ifa_list(ifp);
   1313 #endif
   1314 	/*
   1315 	 * XXX It's kind of lame that we have to have the
   1316 	 * XXX socket structure...
   1317 	 */
   1318 	memset(&so, 0, sizeof(so));
   1319 
   1320 	s = splnet();
   1321 
   1322 	sysctl_teardown(&ifp->if_sysctl_log);
   1323 
   1324 	IFNET_LOCK(ifp);
   1325 
   1326 	/*
   1327 	 * Unset all queued link states and pretend a
   1328 	 * link state change is scheduled.
   1329 	 * This stops any more link state changes occurring for this
   1330 	 * interface while it's being detached so it's safe
   1331 	 * to drain the workqueue.
   1332 	 */
   1333 	IF_LINK_STATE_CHANGE_LOCK(ifp);
   1334 	ifp->if_link_queue = -1; /* all bits set, see link_state_change() */
   1335 	ifp->if_link_scheduled = true;
   1336 	IF_LINK_STATE_CHANGE_UNLOCK(ifp);
   1337 	workqueue_wait(ifnet_link_state_wq, &ifp->if_link_work);
   1338 
   1339 	if_deactivate(ifp);
   1340 	IFNET_UNLOCK(ifp);
   1341 
   1342 	/*
   1343 	 * Unlink from the list and wait for all readers to leave
   1344 	 * from pserialize read sections.  Note that we can't do
   1345 	 * psref_target_destroy here.  See below.
   1346 	 */
   1347 	IFNET_GLOBAL_LOCK();
   1348 	ifindex2ifnet[ifp->if_index] = NULL;
   1349 	TAILQ_REMOVE(&ifnet_list, ifp, if_list);
   1350 	IFNET_WRITER_REMOVE(ifp);
   1351 	pserialize_perform(ifnet_psz);
   1352 	IFNET_GLOBAL_UNLOCK();
   1353 
   1354 	if (ifp->if_slowtimo != NULL && ifp->if_slowtimo_ch != NULL) {
   1355 		ifp->if_slowtimo = NULL;
   1356 		callout_halt(ifp->if_slowtimo_ch, NULL);
   1357 		callout_destroy(ifp->if_slowtimo_ch);
   1358 		kmem_free(ifp->if_slowtimo_ch, sizeof(*ifp->if_slowtimo_ch));
   1359 	}
   1360 	if_deferred_start_destroy(ifp);
   1361 
   1362 	/*
   1363 	 * Do an if_down() to give protocols a chance to do something.
   1364 	 */
   1365 	if_down_deactivated(ifp);
   1366 
   1367 #ifdef ALTQ
   1368 	if (ALTQ_IS_ENABLED(&ifp->if_snd))
   1369 		altq_disable(&ifp->if_snd);
   1370 	if (ALTQ_IS_ATTACHED(&ifp->if_snd))
   1371 		altq_detach(&ifp->if_snd);
   1372 #endif
   1373 
   1374 #if NCARP > 0
   1375 	/* Remove the interface from any carp group it is a part of.  */
   1376 	if (ifp->if_carp != NULL && ifp->if_type != IFT_CARP)
   1377 		carp_ifdetach(ifp);
   1378 #endif
   1379 
   1380 	/*
   1381 	 * Rip all the addresses off the interface.  This should make
   1382 	 * all of the routes go away.
   1383 	 *
   1384 	 * pr_usrreq calls can remove an arbitrary number of ifaddrs
   1385 	 * from the list, including our "cursor", ifa.  For safety,
   1386 	 * and to honor the TAILQ abstraction, I just restart the
   1387 	 * loop after each removal.  Note that the loop will exit
   1388 	 * when all of the remaining ifaddrs belong to the AF_LINK
   1389 	 * family.  I am counting on the historical fact that at
   1390 	 * least one pr_usrreq in each address domain removes at
   1391 	 * least one ifaddr.
   1392 	 */
   1393 again:
   1394 	/*
   1395 	 * At this point, no other one tries to remove ifa in the list,
   1396 	 * so we don't need to take a lock or psref.  Avoid using
   1397 	 * IFADDR_READER_FOREACH to pass over an inspection of contract
   1398 	 * violations of pserialize.
   1399 	 */
   1400 	IFADDR_WRITER_FOREACH(ifa, ifp) {
   1401 		family = ifa->ifa_addr->sa_family;
   1402 #ifdef IFAREF_DEBUG
   1403 		printf("if_detach: ifaddr %p, family %d, refcnt %d\n",
   1404 		    ifa, family, ifa->ifa_refcnt);
   1405 		if (last_ifa != NULL && ifa == last_ifa)
   1406 			panic("if_detach: loop detected");
   1407 		last_ifa = ifa;
   1408 #endif
   1409 		if (family == AF_LINK)
   1410 			continue;
   1411 		dp = pffinddomain(family);
   1412 		KASSERTMSG(dp != NULL, "no domain for AF %d", family);
   1413 		/*
   1414 		 * XXX These PURGEIF calls are redundant with the
   1415 		 * purge-all-families calls below, but are left in for
   1416 		 * now both to make a smaller change, and to avoid
   1417 		 * unplanned interactions with clearing of
   1418 		 * ifp->if_addrlist.
   1419 		 */
   1420 		purged = 0;
   1421 		for (pr = dp->dom_protosw;
   1422 		     pr < dp->dom_protoswNPROTOSW; pr++) {
   1423 			so.so_proto = pr;
   1424 			if (pr->pr_usrreqs) {
   1425 				(void) (*pr->pr_usrreqs->pr_purgeif)(&so, ifp);
   1426 				purged = 1;
   1427 			}
   1428 		}
   1429 		if (purged == 0) {
   1430 			/*
   1431 			 * XXX What's really the best thing to do
   1432 			 * XXX here?  --thorpej (at) NetBSD.org
   1433 			 */
   1434 			printf("if_detach: WARNING: AF %d not purged\n",
   1435 			    family);
   1436 			ifa_remove(ifp, ifa);
   1437 		}
   1438 		goto again;
   1439 	}
   1440 
   1441 	if_free_sadl(ifp, 1);
   1442 
   1443 restart:
   1444 	IFADDR_WRITER_FOREACH(ifa, ifp) {
   1445 		family = ifa->ifa_addr->sa_family;
   1446 		KASSERT(family == AF_LINK);
   1447 		ifa_remove(ifp, ifa);
   1448 		goto restart;
   1449 	}
   1450 
   1451 	/* Delete stray routes from the routing table. */
   1452 	for (i = 0; i <= AF_MAX; i++)
   1453 		rt_delete_matched_entries(i, if_delroute_matcher, ifp);
   1454 
   1455 	DOMAIN_FOREACH(dp) {
   1456 		if (dp->dom_ifdetach != NULL && ifp->if_afdata[dp->dom_family])
   1457 		{
   1458 			void *p = ifp->if_afdata[dp->dom_family];
   1459 			if (p) {
   1460 				ifp->if_afdata[dp->dom_family] = NULL;
   1461 				(*dp->dom_ifdetach)(ifp, p);
   1462 			}
   1463 		}
   1464 
   1465 		/*
   1466 		 * One would expect multicast memberships (INET and
   1467 		 * INET6) on UDP sockets to be purged by the PURGEIF
   1468 		 * calls above, but if all addresses were removed from
   1469 		 * the interface prior to destruction, the calls will
   1470 		 * not be made (e.g. ppp, for which pppd(8) generally
   1471 		 * removes addresses before destroying the interface).
   1472 		 * Because there is no invariant that multicast
   1473 		 * memberships only exist for interfaces with IPv4
   1474 		 * addresses, we must call PURGEIF regardless of
   1475 		 * addresses.  (Protocols which might store ifnet
   1476 		 * pointers are marked with PR_PURGEIF.)
   1477 		 */
   1478 		for (pr = dp->dom_protosw; pr < dp->dom_protoswNPROTOSW; pr++) {
   1479 			so.so_proto = pr;
   1480 			if (pr->pr_usrreqs && pr->pr_flags & PR_PURGEIF)
   1481 				(void)(*pr->pr_usrreqs->pr_purgeif)(&so, ifp);
   1482 		}
   1483 	}
   1484 
   1485 	/*
   1486 	 * Must be done after the above pr_purgeif because if_psref may be
   1487 	 * still used in pr_purgeif.
   1488 	 */
   1489 	psref_target_destroy(&ifp->if_psref, ifnet_psref_class);
   1490 	PSLIST_ENTRY_DESTROY(ifp, if_pslist_entry);
   1491 
   1492 	pfil_run_ifhooks(if_pfil, PFIL_IFNET_DETACH, ifp);
   1493 	(void)pfil_head_destroy(ifp->if_pfil);
   1494 
   1495 	/* Announce that the interface is gone. */
   1496 	rt_ifannouncemsg(ifp, IFAN_DEPARTURE);
   1497 
   1498 	IF_AFDATA_LOCK_DESTROY(ifp);
   1499 
   1500 	/*
   1501 	 * remove packets that came from ifp, from software interrupt queues.
   1502 	 */
   1503 	DOMAIN_FOREACH(dp) {
   1504 		for (i = 0; i < __arraycount(dp->dom_ifqueues); i++) {
   1505 			struct ifqueue *iq = dp->dom_ifqueues[i];
   1506 			if (iq == NULL)
   1507 				break;
   1508 			dp->dom_ifqueues[i] = NULL;
   1509 			if_detach_queues(ifp, iq);
   1510 		}
   1511 	}
   1512 
   1513 	/*
   1514 	 * IP queues have to be processed separately: net-queue barrier
   1515 	 * ensures that the packets are dequeued while a cross-call will
   1516 	 * ensure that the interrupts have completed. FIXME: not quite..
   1517 	 */
   1518 #ifdef INET
   1519 	pktq_barrier(ip_pktq);
   1520 #endif
   1521 #ifdef INET6
   1522 	if (in6_present)
   1523 		pktq_barrier(ip6_pktq);
   1524 #endif
   1525 	xc_barrier(0);
   1526 
   1527 	if (ifp->if_percpuq != NULL) {
   1528 		if_percpuq_destroy(ifp->if_percpuq);
   1529 		ifp->if_percpuq = NULL;
   1530 	}
   1531 
   1532 	mutex_obj_free(ifp->if_ioctl_lock);
   1533 	ifp->if_ioctl_lock = NULL;
   1534 	mutex_obj_free(ifp->if_snd.ifq_lock);
   1535 	if_stats_fini(ifp);
   1536 
   1537 	splx(s);
   1538 
   1539 #ifdef IFAREF_DEBUG
   1540 	if_check_and_free_ifa_list(ifp);
   1541 #endif
   1542 }
   1543 
   1544 static void
   1545 if_detach_queues(struct ifnet *ifp, struct ifqueue *q)
   1546 {
   1547 	struct mbuf *m, *prev, *next;
   1548 
   1549 	prev = NULL;
   1550 	for (m = q->ifq_head; m != NULL; m = next) {
   1551 		KASSERT((m->m_flags & M_PKTHDR) != 0);
   1552 
   1553 		next = m->m_nextpkt;
   1554 		if (m->m_pkthdr.rcvif_index != ifp->if_index) {
   1555 			prev = m;
   1556 			continue;
   1557 		}
   1558 
   1559 		if (prev != NULL)
   1560 			prev->m_nextpkt = m->m_nextpkt;
   1561 		else
   1562 			q->ifq_head = m->m_nextpkt;
   1563 		if (q->ifq_tail == m)
   1564 			q->ifq_tail = prev;
   1565 		q->ifq_len--;
   1566 
   1567 		m->m_nextpkt = NULL;
   1568 		m_freem(m);
   1569 		IF_DROP(q);
   1570 	}
   1571 }
   1572 
   1573 /*
   1574  * Callback for a radix tree walk to delete all references to an
   1575  * ifnet.
   1576  */
   1577 static int
   1578 if_delroute_matcher(struct rtentry *rt, void *v)
   1579 {
   1580 	struct ifnet *ifp = (struct ifnet *)v;
   1581 
   1582 	if (rt->rt_ifp == ifp)
   1583 		return 1;
   1584 	else
   1585 		return 0;
   1586 }
   1587 
   1588 /*
   1589  * Create a clone network interface.
   1590  */
   1591 static int
   1592 if_clone_create(const char *name)
   1593 {
   1594 	struct if_clone *ifc;
   1595 	int unit;
   1596 	struct ifnet *ifp;
   1597 	struct psref psref;
   1598 
   1599 	KASSERT(mutex_owned(&if_clone_mtx));
   1600 
   1601 	ifc = if_clone_lookup(name, &unit);
   1602 	if (ifc == NULL)
   1603 		return EINVAL;
   1604 
   1605 	ifp = if_get(name, &psref);
   1606 	if (ifp != NULL) {
   1607 		if_put(ifp, &psref);
   1608 		return EEXIST;
   1609 	}
   1610 
   1611 	return (*ifc->ifc_create)(ifc, unit);
   1612 }
   1613 
   1614 /*
   1615  * Destroy a clone network interface.
   1616  */
   1617 static int
   1618 if_clone_destroy(const char *name)
   1619 {
   1620 	struct if_clone *ifc;
   1621 	struct ifnet *ifp;
   1622 	struct psref psref;
   1623 	int error;
   1624 	int (*if_ioctl)(struct ifnet *, u_long, void *);
   1625 
   1626 	KASSERT(mutex_owned(&if_clone_mtx));
   1627 
   1628 	ifc = if_clone_lookup(name, NULL);
   1629 	if (ifc == NULL)
   1630 		return EINVAL;
   1631 
   1632 	if (ifc->ifc_destroy == NULL)
   1633 		return EOPNOTSUPP;
   1634 
   1635 	ifp = if_get(name, &psref);
   1636 	if (ifp == NULL)
   1637 		return ENXIO;
   1638 
   1639 	/* We have to disable ioctls here */
   1640 	IFNET_LOCK(ifp);
   1641 	if_ioctl = ifp->if_ioctl;
   1642 	ifp->if_ioctl = if_nullioctl;
   1643 	IFNET_UNLOCK(ifp);
   1644 
   1645 	/*
   1646 	 * We cannot call ifc_destroy with holding ifp.
   1647 	 * Releasing ifp here is safe thanks to if_clone_mtx.
   1648 	 */
   1649 	if_put(ifp, &psref);
   1650 
   1651 	error = (*ifc->ifc_destroy)(ifp);
   1652 
   1653 	if (error != 0) {
   1654 		/* We have to restore if_ioctl on error */
   1655 		IFNET_LOCK(ifp);
   1656 		ifp->if_ioctl = if_ioctl;
   1657 		IFNET_UNLOCK(ifp);
   1658 	}
   1659 
   1660 	return error;
   1661 }
   1662 
   1663 static bool
   1664 if_is_unit(const char *name)
   1665 {
   1666 
   1667 	while (*name != '\0') {
   1668 		if (*name < '0' || *name > '9')
   1669 			return false;
   1670 		name++;
   1671 	}
   1672 
   1673 	return true;
   1674 }
   1675 
   1676 /*
   1677  * Look up a network interface cloner.
   1678  */
   1679 static struct if_clone *
   1680 if_clone_lookup(const char *name, int *unitp)
   1681 {
   1682 	struct if_clone *ifc;
   1683 	const char *cp;
   1684 	char *dp, ifname[IFNAMSIZ + 3];
   1685 	int unit;
   1686 
   1687 	KASSERT(mutex_owned(&if_clone_mtx));
   1688 
   1689 	strcpy(ifname, "if_");
   1690 	/* separate interface name from unit */
   1691 	/* TODO: search unit number from backward */
   1692 	for (dp = ifname + 3, cp = name; cp - name < IFNAMSIZ &&
   1693 	    *cp && !if_is_unit(cp);)
   1694 		*dp++ = *cp++;
   1695 
   1696 	if (cp == name || cp - name == IFNAMSIZ || !*cp)
   1697 		return NULL;	/* No name or unit number */
   1698 	*dp++ = '\0';
   1699 
   1700 again:
   1701 	LIST_FOREACH(ifc, &if_cloners, ifc_list) {
   1702 		if (strcmp(ifname + 3, ifc->ifc_name) == 0)
   1703 			break;
   1704 	}
   1705 
   1706 	if (ifc == NULL) {
   1707 		int error;
   1708 		if (*ifname == '\0')
   1709 			return NULL;
   1710 		mutex_exit(&if_clone_mtx);
   1711 		error = module_autoload(ifname, MODULE_CLASS_DRIVER);
   1712 		mutex_enter(&if_clone_mtx);
   1713 		if (error)
   1714 			return NULL;
   1715 		*ifname = '\0';
   1716 		goto again;
   1717 	}
   1718 
   1719 	unit = 0;
   1720 	while (cp - name < IFNAMSIZ && *cp) {
   1721 		if (*cp < '0' || *cp > '9' || unit >= INT_MAX / 10) {
   1722 			/* Bogus unit number. */
   1723 			return NULL;
   1724 		}
   1725 		unit = (unit * 10) + (*cp++ - '0');
   1726 	}
   1727 
   1728 	if (unitp != NULL)
   1729 		*unitp = unit;
   1730 	return ifc;
   1731 }
   1732 
   1733 /*
   1734  * Register a network interface cloner.
   1735  */
   1736 void
   1737 if_clone_attach(struct if_clone *ifc)
   1738 {
   1739 
   1740 	mutex_enter(&if_clone_mtx);
   1741 	LIST_INSERT_HEAD(&if_cloners, ifc, ifc_list);
   1742 	if_cloners_count++;
   1743 	mutex_exit(&if_clone_mtx);
   1744 }
   1745 
   1746 /*
   1747  * Unregister a network interface cloner.
   1748  */
   1749 void
   1750 if_clone_detach(struct if_clone *ifc)
   1751 {
   1752 
   1753 	mutex_enter(&if_clone_mtx);
   1754 	LIST_REMOVE(ifc, ifc_list);
   1755 	if_cloners_count--;
   1756 	mutex_exit(&if_clone_mtx);
   1757 }
   1758 
   1759 /*
   1760  * Provide list of interface cloners to userspace.
   1761  */
   1762 int
   1763 if_clone_list(int buf_count, char *buffer, int *total)
   1764 {
   1765 	char outbuf[IFNAMSIZ], *dst;
   1766 	struct if_clone *ifc;
   1767 	int count, error = 0;
   1768 
   1769 	mutex_enter(&if_clone_mtx);
   1770 	*total = if_cloners_count;
   1771 	if ((dst = buffer) == NULL) {
   1772 		/* Just asking how many there are. */
   1773 		goto out;
   1774 	}
   1775 
   1776 	if (buf_count < 0) {
   1777 		error = EINVAL;
   1778 		goto out;
   1779 	}
   1780 
   1781 	count = (if_cloners_count < buf_count) ?
   1782 	    if_cloners_count : buf_count;
   1783 
   1784 	for (ifc = LIST_FIRST(&if_cloners); ifc != NULL && count != 0;
   1785 	     ifc = LIST_NEXT(ifc, ifc_list), count--, dst += IFNAMSIZ) {
   1786 		(void)strncpy(outbuf, ifc->ifc_name, sizeof(outbuf));
   1787 		if (outbuf[sizeof(outbuf) - 1] != '\0') {
   1788 			error = ENAMETOOLONG;
   1789 			goto out;
   1790 		}
   1791 		error = copyout(outbuf, dst, sizeof(outbuf));
   1792 		if (error != 0)
   1793 			break;
   1794 	}
   1795 
   1796 out:
   1797 	mutex_exit(&if_clone_mtx);
   1798 	return error;
   1799 }
   1800 
   1801 void
   1802 ifa_psref_init(struct ifaddr *ifa)
   1803 {
   1804 
   1805 	psref_target_init(&ifa->ifa_psref, ifa_psref_class);
   1806 }
   1807 
   1808 void
   1809 ifaref(struct ifaddr *ifa)
   1810 {
   1811 
   1812 	atomic_inc_uint(&ifa->ifa_refcnt);
   1813 }
   1814 
   1815 void
   1816 ifafree(struct ifaddr *ifa)
   1817 {
   1818 	KASSERT(ifa != NULL);
   1819 	KASSERTMSG(ifa->ifa_refcnt > 0, "ifa_refcnt=%d", ifa->ifa_refcnt);
   1820 
   1821 	if (atomic_dec_uint_nv(&ifa->ifa_refcnt) == 0) {
   1822 		free(ifa, M_IFADDR);
   1823 	}
   1824 }
   1825 
   1826 bool
   1827 ifa_is_destroying(struct ifaddr *ifa)
   1828 {
   1829 
   1830 	return ISSET(ifa->ifa_flags, IFA_DESTROYING);
   1831 }
   1832 
   1833 void
   1834 ifa_insert(struct ifnet *ifp, struct ifaddr *ifa)
   1835 {
   1836 
   1837 	ifa->ifa_ifp = ifp;
   1838 
   1839 	/*
   1840 	 * Check MP-safety for IFEF_MPSAFE drivers.
   1841 	 * Check !IFF_RUNNING for initialization routines that normally don't
   1842 	 * take IFNET_LOCK but it's safe because there is no competitor.
   1843 	 * XXX there are false positive cases because IFF_RUNNING can be off on
   1844 	 * if_stop.
   1845 	 */
   1846 	KASSERT(!if_is_mpsafe(ifp) || !ISSET(ifp->if_flags, IFF_RUNNING) ||
   1847 	    IFNET_LOCKED(ifp));
   1848 
   1849 	TAILQ_INSERT_TAIL(&ifp->if_addrlist, ifa, ifa_list);
   1850 	IFADDR_ENTRY_INIT(ifa);
   1851 	IFADDR_WRITER_INSERT_TAIL(ifp, ifa);
   1852 
   1853 	ifaref(ifa);
   1854 }
   1855 
   1856 void
   1857 ifa_remove(struct ifnet *ifp, struct ifaddr *ifa)
   1858 {
   1859 
   1860 	KASSERT(ifa->ifa_ifp == ifp);
   1861 	/*
   1862 	 * Check MP-safety for IFEF_MPSAFE drivers.
   1863 	 * if_is_deactivated indicates ifa_remove is called form if_detach
   1864 	 * where is safe even if IFNET_LOCK isn't held.
   1865 	 */
   1866 	KASSERT(!if_is_mpsafe(ifp) || if_is_deactivated(ifp) || IFNET_LOCKED(ifp));
   1867 
   1868 	TAILQ_REMOVE(&ifp->if_addrlist, ifa, ifa_list);
   1869 	IFADDR_WRITER_REMOVE(ifa);
   1870 #ifdef NET_MPSAFE
   1871 	IFNET_GLOBAL_LOCK();
   1872 	pserialize_perform(ifnet_psz);
   1873 	IFNET_GLOBAL_UNLOCK();
   1874 #endif
   1875 
   1876 #ifdef NET_MPSAFE
   1877 	psref_target_destroy(&ifa->ifa_psref, ifa_psref_class);
   1878 #endif
   1879 	IFADDR_ENTRY_DESTROY(ifa);
   1880 	ifafree(ifa);
   1881 }
   1882 
   1883 void
   1884 ifa_acquire(struct ifaddr *ifa, struct psref *psref)
   1885 {
   1886 
   1887 	PSREF_DEBUG_FILL_RETURN_ADDRESS(psref);
   1888 	psref_acquire(psref, &ifa->ifa_psref, ifa_psref_class);
   1889 }
   1890 
   1891 void
   1892 ifa_release(struct ifaddr *ifa, struct psref *psref)
   1893 {
   1894 
   1895 	if (ifa == NULL)
   1896 		return;
   1897 
   1898 	psref_release(psref, &ifa->ifa_psref, ifa_psref_class);
   1899 }
   1900 
   1901 bool
   1902 ifa_held(struct ifaddr *ifa)
   1903 {
   1904 
   1905 	return psref_held(&ifa->ifa_psref, ifa_psref_class);
   1906 }
   1907 
   1908 static inline int
   1909 equal(const struct sockaddr *sa1, const struct sockaddr *sa2)
   1910 {
   1911 	return sockaddr_cmp(sa1, sa2) == 0;
   1912 }
   1913 
   1914 /*
   1915  * Locate an interface based on a complete address.
   1916  */
   1917 /*ARGSUSED*/
   1918 struct ifaddr *
   1919 ifa_ifwithaddr(const struct sockaddr *addr)
   1920 {
   1921 	struct ifnet *ifp;
   1922 	struct ifaddr *ifa;
   1923 
   1924 	IFNET_READER_FOREACH(ifp) {
   1925 		if (if_is_deactivated(ifp))
   1926 			continue;
   1927 		IFADDR_READER_FOREACH(ifa, ifp) {
   1928 			if (ifa->ifa_addr->sa_family != addr->sa_family)
   1929 				continue;
   1930 			if (equal(addr, ifa->ifa_addr))
   1931 				return ifa;
   1932 			if ((ifp->if_flags & IFF_BROADCAST) &&
   1933 			    ifa->ifa_broadaddr &&
   1934 			    /* IP6 doesn't have broadcast */
   1935 			    ifa->ifa_broadaddr->sa_len != 0 &&
   1936 			    equal(ifa->ifa_broadaddr, addr))
   1937 				return ifa;
   1938 		}
   1939 	}
   1940 	return NULL;
   1941 }
   1942 
   1943 struct ifaddr *
   1944 ifa_ifwithaddr_psref(const struct sockaddr *addr, struct psref *psref)
   1945 {
   1946 	struct ifaddr *ifa;
   1947 	int s = pserialize_read_enter();
   1948 
   1949 	ifa = ifa_ifwithaddr(addr);
   1950 	if (ifa != NULL)
   1951 		ifa_acquire(ifa, psref);
   1952 	pserialize_read_exit(s);
   1953 
   1954 	return ifa;
   1955 }
   1956 
   1957 /*
   1958  * Locate the point to point interface with a given destination address.
   1959  */
   1960 /*ARGSUSED*/
   1961 struct ifaddr *
   1962 ifa_ifwithdstaddr(const struct sockaddr *addr)
   1963 {
   1964 	struct ifnet *ifp;
   1965 	struct ifaddr *ifa;
   1966 
   1967 	IFNET_READER_FOREACH(ifp) {
   1968 		if (if_is_deactivated(ifp))
   1969 			continue;
   1970 		if ((ifp->if_flags & IFF_POINTOPOINT) == 0)
   1971 			continue;
   1972 		IFADDR_READER_FOREACH(ifa, ifp) {
   1973 			if (ifa->ifa_addr->sa_family != addr->sa_family ||
   1974 			    ifa->ifa_dstaddr == NULL)
   1975 				continue;
   1976 			if (equal(addr, ifa->ifa_dstaddr))
   1977 				return ifa;
   1978 		}
   1979 	}
   1980 
   1981 	return NULL;
   1982 }
   1983 
   1984 struct ifaddr *
   1985 ifa_ifwithdstaddr_psref(const struct sockaddr *addr, struct psref *psref)
   1986 {
   1987 	struct ifaddr *ifa;
   1988 	int s;
   1989 
   1990 	s = pserialize_read_enter();
   1991 	ifa = ifa_ifwithdstaddr(addr);
   1992 	if (ifa != NULL)
   1993 		ifa_acquire(ifa, psref);
   1994 	pserialize_read_exit(s);
   1995 
   1996 	return ifa;
   1997 }
   1998 
   1999 /*
   2000  * Find an interface on a specific network.  If many, choice
   2001  * is most specific found.
   2002  */
   2003 struct ifaddr *
   2004 ifa_ifwithnet(const struct sockaddr *addr)
   2005 {
   2006 	struct ifnet *ifp;
   2007 	struct ifaddr *ifa, *ifa_maybe = NULL;
   2008 	const struct sockaddr_dl *sdl;
   2009 	u_int af = addr->sa_family;
   2010 	const char *addr_data = addr->sa_data, *cplim;
   2011 
   2012 	if (af == AF_LINK) {
   2013 		sdl = satocsdl(addr);
   2014 		if (sdl->sdl_index && sdl->sdl_index < if_indexlim &&
   2015 		    ifindex2ifnet[sdl->sdl_index] &&
   2016 		    !if_is_deactivated(ifindex2ifnet[sdl->sdl_index])) {
   2017 			return ifindex2ifnet[sdl->sdl_index]->if_dl;
   2018 		}
   2019 	}
   2020 #ifdef NETATALK
   2021 	if (af == AF_APPLETALK) {
   2022 		const struct sockaddr_at *sat, *sat2;
   2023 		sat = (const struct sockaddr_at *)addr;
   2024 		IFNET_READER_FOREACH(ifp) {
   2025 			if (if_is_deactivated(ifp))
   2026 				continue;
   2027 			ifa = at_ifawithnet((const struct sockaddr_at *)addr, ifp);
   2028 			if (ifa == NULL)
   2029 				continue;
   2030 			sat2 = (struct sockaddr_at *)ifa->ifa_addr;
   2031 			if (sat2->sat_addr.s_net == sat->sat_addr.s_net)
   2032 				return ifa; /* exact match */
   2033 			if (ifa_maybe == NULL) {
   2034 				/* else keep the if with the right range */
   2035 				ifa_maybe = ifa;
   2036 			}
   2037 		}
   2038 		return ifa_maybe;
   2039 	}
   2040 #endif
   2041 	IFNET_READER_FOREACH(ifp) {
   2042 		if (if_is_deactivated(ifp))
   2043 			continue;
   2044 		IFADDR_READER_FOREACH(ifa, ifp) {
   2045 			const char *cp, *cp2, *cp3;
   2046 
   2047 			if (ifa->ifa_addr->sa_family != af ||
   2048 			    ifa->ifa_netmask == NULL)
   2049  next:				continue;
   2050 			cp = addr_data;
   2051 			cp2 = ifa->ifa_addr->sa_data;
   2052 			cp3 = ifa->ifa_netmask->sa_data;
   2053 			cplim = (const char *)ifa->ifa_netmask +
   2054 			    ifa->ifa_netmask->sa_len;
   2055 			while (cp3 < cplim) {
   2056 				if ((*cp++ ^ *cp2++) & *cp3++) {
   2057 					/* want to continue for() loop */
   2058 					goto next;
   2059 				}
   2060 			}
   2061 			if (ifa_maybe == NULL ||
   2062 			    rt_refines(ifa->ifa_netmask,
   2063 			               ifa_maybe->ifa_netmask))
   2064 				ifa_maybe = ifa;
   2065 		}
   2066 	}
   2067 	return ifa_maybe;
   2068 }
   2069 
   2070 struct ifaddr *
   2071 ifa_ifwithnet_psref(const struct sockaddr *addr, struct psref *psref)
   2072 {
   2073 	struct ifaddr *ifa;
   2074 	int s;
   2075 
   2076 	s = pserialize_read_enter();
   2077 	ifa = ifa_ifwithnet(addr);
   2078 	if (ifa != NULL)
   2079 		ifa_acquire(ifa, psref);
   2080 	pserialize_read_exit(s);
   2081 
   2082 	return ifa;
   2083 }
   2084 
   2085 /*
   2086  * Find the interface of the addresss.
   2087  */
   2088 struct ifaddr *
   2089 ifa_ifwithladdr(const struct sockaddr *addr)
   2090 {
   2091 	struct ifaddr *ia;
   2092 
   2093 	if ((ia = ifa_ifwithaddr(addr)) || (ia = ifa_ifwithdstaddr(addr)) ||
   2094 	    (ia = ifa_ifwithnet(addr)))
   2095 		return ia;
   2096 	return NULL;
   2097 }
   2098 
   2099 struct ifaddr *
   2100 ifa_ifwithladdr_psref(const struct sockaddr *addr, struct psref *psref)
   2101 {
   2102 	struct ifaddr *ifa;
   2103 	int s;
   2104 
   2105 	s = pserialize_read_enter();
   2106 	ifa = ifa_ifwithladdr(addr);
   2107 	if (ifa != NULL)
   2108 		ifa_acquire(ifa, psref);
   2109 	pserialize_read_exit(s);
   2110 
   2111 	return ifa;
   2112 }
   2113 
   2114 /*
   2115  * Find an interface using a specific address family
   2116  */
   2117 struct ifaddr *
   2118 ifa_ifwithaf(int af)
   2119 {
   2120 	struct ifnet *ifp;
   2121 	struct ifaddr *ifa = NULL;
   2122 	int s;
   2123 
   2124 	s = pserialize_read_enter();
   2125 	IFNET_READER_FOREACH(ifp) {
   2126 		if (if_is_deactivated(ifp))
   2127 			continue;
   2128 		IFADDR_READER_FOREACH(ifa, ifp) {
   2129 			if (ifa->ifa_addr->sa_family == af)
   2130 				goto out;
   2131 		}
   2132 	}
   2133 out:
   2134 	pserialize_read_exit(s);
   2135 	return ifa;
   2136 }
   2137 
   2138 /*
   2139  * Find an interface address specific to an interface best matching
   2140  * a given address.
   2141  */
   2142 struct ifaddr *
   2143 ifaof_ifpforaddr(const struct sockaddr *addr, struct ifnet *ifp)
   2144 {
   2145 	struct ifaddr *ifa;
   2146 	const char *cp, *cp2, *cp3;
   2147 	const char *cplim;
   2148 	struct ifaddr *ifa_maybe = 0;
   2149 	u_int af = addr->sa_family;
   2150 
   2151 	if (if_is_deactivated(ifp))
   2152 		return NULL;
   2153 
   2154 	if (af >= AF_MAX)
   2155 		return NULL;
   2156 
   2157 	IFADDR_READER_FOREACH(ifa, ifp) {
   2158 		if (ifa->ifa_addr->sa_family != af)
   2159 			continue;
   2160 		ifa_maybe = ifa;
   2161 		if (ifa->ifa_netmask == NULL) {
   2162 			if (equal(addr, ifa->ifa_addr) ||
   2163 			    (ifa->ifa_dstaddr &&
   2164 			     equal(addr, ifa->ifa_dstaddr)))
   2165 				return ifa;
   2166 			continue;
   2167 		}
   2168 		cp = addr->sa_data;
   2169 		cp2 = ifa->ifa_addr->sa_data;
   2170 		cp3 = ifa->ifa_netmask->sa_data;
   2171 		cplim = ifa->ifa_netmask->sa_len + (char *)ifa->ifa_netmask;
   2172 		for (; cp3 < cplim; cp3++) {
   2173 			if ((*cp++ ^ *cp2++) & *cp3)
   2174 				break;
   2175 		}
   2176 		if (cp3 == cplim)
   2177 			return ifa;
   2178 	}
   2179 	return ifa_maybe;
   2180 }
   2181 
   2182 struct ifaddr *
   2183 ifaof_ifpforaddr_psref(const struct sockaddr *addr, struct ifnet *ifp,
   2184     struct psref *psref)
   2185 {
   2186 	struct ifaddr *ifa;
   2187 	int s;
   2188 
   2189 	s = pserialize_read_enter();
   2190 	ifa = ifaof_ifpforaddr(addr, ifp);
   2191 	if (ifa != NULL)
   2192 		ifa_acquire(ifa, psref);
   2193 	pserialize_read_exit(s);
   2194 
   2195 	return ifa;
   2196 }
   2197 
   2198 /*
   2199  * Default action when installing a route with a Link Level gateway.
   2200  * Lookup an appropriate real ifa to point to.
   2201  * This should be moved to /sys/net/link.c eventually.
   2202  */
   2203 void
   2204 link_rtrequest(int cmd, struct rtentry *rt, const struct rt_addrinfo *info)
   2205 {
   2206 	struct ifaddr *ifa;
   2207 	const struct sockaddr *dst;
   2208 	struct ifnet *ifp;
   2209 	struct psref psref;
   2210 
   2211 	if (cmd != RTM_ADD || ISSET(info->rti_flags, RTF_DONTCHANGEIFA))
   2212 		return;
   2213 	ifp = rt->rt_ifa->ifa_ifp;
   2214 	dst = rt_getkey(rt);
   2215 	if ((ifa = ifaof_ifpforaddr_psref(dst, ifp, &psref)) != NULL) {
   2216 		rt_replace_ifa(rt, ifa);
   2217 		if (ifa->ifa_rtrequest && ifa->ifa_rtrequest != link_rtrequest)
   2218 			ifa->ifa_rtrequest(cmd, rt, info);
   2219 		ifa_release(ifa, &psref);
   2220 	}
   2221 }
   2222 
   2223 /*
   2224  * bitmask macros to manage a densely packed link_state change queue.
   2225  * Because we need to store LINK_STATE_UNKNOWN(0), LINK_STATE_DOWN(1) and
   2226  * LINK_STATE_UP(2) we need 2 bits for each state change.
   2227  * As a state change to store is 0, treat all bits set as an unset item.
   2228  */
   2229 #define LQ_ITEM_BITS		2
   2230 #define LQ_ITEM_MASK		((1 << LQ_ITEM_BITS) - 1)
   2231 #define LQ_MASK(i)		(LQ_ITEM_MASK << (i) * LQ_ITEM_BITS)
   2232 #define LINK_STATE_UNSET	LQ_ITEM_MASK
   2233 #define LQ_ITEM(q, i)		(((q) & LQ_MASK((i))) >> (i) * LQ_ITEM_BITS)
   2234 #define LQ_STORE(q, i, v)						      \
   2235 	do {								      \
   2236 		(q) &= ~LQ_MASK((i));					      \
   2237 		(q) |= (v) << (i) * LQ_ITEM_BITS;			      \
   2238 	} while (0 /* CONSTCOND */)
   2239 #define LQ_MAX(q)		((sizeof((q)) * NBBY) / LQ_ITEM_BITS)
   2240 #define LQ_POP(q, v)							      \
   2241 	do {								      \
   2242 		(v) = LQ_ITEM((q), 0);					      \
   2243 		(q) >>= LQ_ITEM_BITS;					      \
   2244 		(q) |= LINK_STATE_UNSET << (LQ_MAX((q)) - 1) * LQ_ITEM_BITS;  \
   2245 	} while (0 /* CONSTCOND */)
   2246 #define LQ_PUSH(q, v)							      \
   2247 	do {								      \
   2248 		(q) >>= LQ_ITEM_BITS;					      \
   2249 		(q) |= (v) << (LQ_MAX((q)) - 1) * LQ_ITEM_BITS;		      \
   2250 	} while (0 /* CONSTCOND */)
   2251 #define LQ_FIND_UNSET(q, i)						      \
   2252 	for ((i) = 0; i < LQ_MAX((q)); (i)++) {				      \
   2253 		if (LQ_ITEM((q), (i)) == LINK_STATE_UNSET)		      \
   2254 			break;						      \
   2255 	}
   2256 
   2257 /*
   2258  * Handle a change in the interface link state and
   2259  * queue notifications.
   2260  */
   2261 void
   2262 if_link_state_change(struct ifnet *ifp, int link_state)
   2263 {
   2264 	int idx;
   2265 
   2266 	/* Ensure change is to a valid state */
   2267 	switch (link_state) {
   2268 	case LINK_STATE_UNKNOWN:	/* FALLTHROUGH */
   2269 	case LINK_STATE_DOWN:		/* FALLTHROUGH */
   2270 	case LINK_STATE_UP:
   2271 		break;
   2272 	default:
   2273 #ifdef DEBUG
   2274 		printf("%s: invalid link state %d\n",
   2275 		    ifp->if_xname, link_state);
   2276 #endif
   2277 		return;
   2278 	}
   2279 
   2280 	IF_LINK_STATE_CHANGE_LOCK(ifp);
   2281 
   2282 	/* Find the last unset event in the queue. */
   2283 	LQ_FIND_UNSET(ifp->if_link_queue, idx);
   2284 
   2285 	if (idx == 0) {
   2286 		/*
   2287 		 * There is no queue of link state changes.
   2288 		 * As we have the lock we can safely compare against the
   2289 		 * current link state and return if the same.
   2290 		 * Otherwise, if scheduled is true then the interface is being
   2291 		 * detached and the queue is being drained so we need
   2292 		 * to avoid queuing more work.
   2293 		 */
   2294 		 if (ifp->if_link_state == link_state || ifp->if_link_scheduled)
   2295 			goto out;
   2296 	} else {
   2297 		/* Ensure link_state doesn't match the last queued state. */
   2298 		if (LQ_ITEM(ifp->if_link_queue, idx - 1) == (uint8_t)link_state)
   2299 			goto out;
   2300 	}
   2301 
   2302 	/* Handle queue overflow. */
   2303 	if (idx == LQ_MAX(ifp->if_link_queue)) {
   2304 		uint8_t lost;
   2305 
   2306 		/*
   2307 		 * The DOWN state must be protected from being pushed off
   2308 		 * the queue to ensure that userland will always be
   2309 		 * in a sane state.
   2310 		 * Because DOWN is protected, there is no need to protect
   2311 		 * UNKNOWN.
   2312 		 * It should be invalid to change from any other state to
   2313 		 * UNKNOWN anyway ...
   2314 		 */
   2315 		lost = LQ_ITEM(ifp->if_link_queue, 0);
   2316 		LQ_PUSH(ifp->if_link_queue, (uint8_t)link_state);
   2317 		if (lost == LINK_STATE_DOWN) {
   2318 			lost = LQ_ITEM(ifp->if_link_queue, 0);
   2319 			LQ_STORE(ifp->if_link_queue, 0, LINK_STATE_DOWN);
   2320 		}
   2321 		printf("%s: lost link state change %s\n",
   2322 		    ifp->if_xname,
   2323 		    lost == LINK_STATE_UP ? "UP" :
   2324 		    lost == LINK_STATE_DOWN ? "DOWN" :
   2325 		    "UNKNOWN");
   2326 	} else
   2327 		LQ_STORE(ifp->if_link_queue, idx, (uint8_t)link_state);
   2328 
   2329 	if (ifp->if_link_scheduled)
   2330 		goto out;
   2331 
   2332 	ifp->if_link_scheduled = true;
   2333 	workqueue_enqueue(ifnet_link_state_wq, &ifp->if_link_work, NULL);
   2334 
   2335 out:
   2336 	IF_LINK_STATE_CHANGE_UNLOCK(ifp);
   2337 }
   2338 
   2339 /*
   2340  * Handle interface link state change notifications.
   2341  */
   2342 static void
   2343 if_link_state_change_process(struct ifnet *ifp, int link_state)
   2344 {
   2345 	struct domain *dp;
   2346 	int s = splnet();
   2347 	bool notify;
   2348 
   2349 	KASSERT(!cpu_intr_p());
   2350 
   2351 	IF_LINK_STATE_CHANGE_LOCK(ifp);
   2352 
   2353 	/* Ensure the change is still valid. */
   2354 	if (ifp->if_link_state == link_state) {
   2355 		IF_LINK_STATE_CHANGE_UNLOCK(ifp);
   2356 		splx(s);
   2357 		return;
   2358 	}
   2359 
   2360 #ifdef DEBUG
   2361 	log(LOG_DEBUG, "%s: link state %s (was %s)\n", ifp->if_xname,
   2362 		link_state == LINK_STATE_UP ? "UP" :
   2363 		link_state == LINK_STATE_DOWN ? "DOWN" :
   2364 		"UNKNOWN",
   2365 		ifp->if_link_state == LINK_STATE_UP ? "UP" :
   2366 		ifp->if_link_state == LINK_STATE_DOWN ? "DOWN" :
   2367 		"UNKNOWN");
   2368 #endif
   2369 
   2370 	/*
   2371 	 * When going from UNKNOWN to UP, we need to mark existing
   2372 	 * addresses as tentative and restart DAD as we may have
   2373 	 * erroneously not found a duplicate.
   2374 	 *
   2375 	 * This needs to happen before rt_ifmsg to avoid a race where
   2376 	 * listeners would have an address and expect it to work right
   2377 	 * away.
   2378 	 */
   2379 	notify = (link_state == LINK_STATE_UP &&
   2380 	    ifp->if_link_state == LINK_STATE_UNKNOWN);
   2381 	ifp->if_link_state = link_state;
   2382 	/* The following routines may sleep so release the spin mutex */
   2383 	IF_LINK_STATE_CHANGE_UNLOCK(ifp);
   2384 
   2385 	KERNEL_LOCK_UNLESS_NET_MPSAFE();
   2386 	if (notify) {
   2387 		DOMAIN_FOREACH(dp) {
   2388 			if (dp->dom_if_link_state_change != NULL)
   2389 				dp->dom_if_link_state_change(ifp,
   2390 				    LINK_STATE_DOWN);
   2391 		}
   2392 	}
   2393 
   2394 	/* Notify that the link state has changed. */
   2395 	rt_ifmsg(ifp);
   2396 
   2397 #if NCARP > 0
   2398 	if (ifp->if_carp)
   2399 		carp_carpdev_state(ifp);
   2400 #endif
   2401 
   2402 	if (ifp->if_link_state_changed != NULL)
   2403 		ifp->if_link_state_changed(ifp, link_state);
   2404 
   2405 #if NBRIDGE > 0
   2406 	if (ifp->if_bridge != NULL)
   2407 		bridge_calc_link_state(ifp->if_bridge);
   2408 #endif
   2409 
   2410 #if NLAGG > 0
   2411 	if (ifp->if_lagg != NULL)
   2412 		lagg_linkstate_changed(ifp);
   2413 #endif
   2414 
   2415 	DOMAIN_FOREACH(dp) {
   2416 		if (dp->dom_if_link_state_change != NULL)
   2417 			dp->dom_if_link_state_change(ifp, link_state);
   2418 	}
   2419 	KERNEL_UNLOCK_UNLESS_NET_MPSAFE();
   2420 	splx(s);
   2421 }
   2422 
   2423 /*
   2424  * Process the interface link state change queue.
   2425  */
   2426 static void
   2427 if_link_state_change_work(struct work *work, void *arg)
   2428 {
   2429 	struct ifnet *ifp = container_of(work, struct ifnet, if_link_work);
   2430 	int s;
   2431 	uint8_t state;
   2432 
   2433 	KERNEL_LOCK_UNLESS_NET_MPSAFE();
   2434 	s = splnet();
   2435 
   2436 	/* Pop a link state change from the queue and process it.
   2437 	 * If there is nothing to process then if_detach() has been called.
   2438 	 * We keep if_link_scheduled = true so the queue can safely drain
   2439 	 * without more work being queued. */
   2440 	IF_LINK_STATE_CHANGE_LOCK(ifp);
   2441 	LQ_POP(ifp->if_link_queue, state);
   2442 	IF_LINK_STATE_CHANGE_UNLOCK(ifp);
   2443 	if (state == LINK_STATE_UNSET)
   2444 		goto out;
   2445 
   2446 	if_link_state_change_process(ifp, state);
   2447 
   2448 	/* If there is a link state change to come, schedule it. */
   2449 	IF_LINK_STATE_CHANGE_LOCK(ifp);
   2450 	if (LQ_ITEM(ifp->if_link_queue, 0) != LINK_STATE_UNSET) {
   2451 		ifp->if_link_scheduled = true;
   2452 		workqueue_enqueue(ifnet_link_state_wq, &ifp->if_link_work, NULL);
   2453 	} else
   2454 		ifp->if_link_scheduled = false;
   2455 	IF_LINK_STATE_CHANGE_UNLOCK(ifp);
   2456 
   2457 out:
   2458 	splx(s);
   2459 	KERNEL_UNLOCK_UNLESS_NET_MPSAFE();
   2460 }
   2461 
   2462 /*
   2463  * Used to mark addresses on an interface as DETATCHED or TENTATIVE
   2464  * and thus start Duplicate Address Detection without changing the
   2465  * real link state.
   2466  */
   2467 void
   2468 if_domain_link_state_change(struct ifnet *ifp, int link_state)
   2469 {
   2470 	struct domain *dp;
   2471 	int s = splnet();
   2472 
   2473 	KERNEL_LOCK_UNLESS_NET_MPSAFE();
   2474 
   2475 	DOMAIN_FOREACH(dp) {
   2476 		if (dp->dom_if_link_state_change != NULL)
   2477 			dp->dom_if_link_state_change(ifp, link_state);
   2478 	}
   2479 
   2480 	splx(s);
   2481 	KERNEL_UNLOCK_UNLESS_NET_MPSAFE();
   2482 }
   2483 
   2484 /*
   2485  * Default action when installing a local route on a point-to-point
   2486  * interface.
   2487  */
   2488 void
   2489 p2p_rtrequest(int req, struct rtentry *rt,
   2490     __unused const struct rt_addrinfo *info)
   2491 {
   2492 	struct ifnet *ifp = rt->rt_ifp;
   2493 	struct ifaddr *ifa, *lo0ifa;
   2494 	int s = pserialize_read_enter();
   2495 
   2496 	switch (req) {
   2497 	case RTM_ADD:
   2498 		if ((rt->rt_flags & RTF_LOCAL) == 0)
   2499 			break;
   2500 
   2501 		rt->rt_ifp = lo0ifp;
   2502 
   2503 		if (ISSET(info->rti_flags, RTF_DONTCHANGEIFA))
   2504 			break;
   2505 
   2506 		IFADDR_READER_FOREACH(ifa, ifp) {
   2507 			if (equal(rt_getkey(rt), ifa->ifa_addr))
   2508 				break;
   2509 		}
   2510 		if (ifa == NULL)
   2511 			break;
   2512 
   2513 		/*
   2514 		 * Ensure lo0 has an address of the same family.
   2515 		 */
   2516 		IFADDR_READER_FOREACH(lo0ifa, lo0ifp) {
   2517 			if (lo0ifa->ifa_addr->sa_family ==
   2518 			    ifa->ifa_addr->sa_family)
   2519 				break;
   2520 		}
   2521 		if (lo0ifa == NULL)
   2522 			break;
   2523 
   2524 		/*
   2525 		 * Make sure to set rt->rt_ifa to the interface
   2526 		 * address we are using, otherwise we will have trouble
   2527 		 * with source address selection.
   2528 		 */
   2529 		if (ifa != rt->rt_ifa)
   2530 			rt_replace_ifa(rt, ifa);
   2531 		break;
   2532 	case RTM_DELETE:
   2533 	default:
   2534 		break;
   2535 	}
   2536 	pserialize_read_exit(s);
   2537 }
   2538 
   2539 static void
   2540 _if_down(struct ifnet *ifp)
   2541 {
   2542 	struct ifaddr *ifa;
   2543 	struct domain *dp;
   2544 	int s, bound;
   2545 	struct psref psref;
   2546 
   2547 	ifp->if_flags &= ~IFF_UP;
   2548 	nanotime(&ifp->if_lastchange);
   2549 
   2550 	bound = curlwp_bind();
   2551 	s = pserialize_read_enter();
   2552 	IFADDR_READER_FOREACH(ifa, ifp) {
   2553 		ifa_acquire(ifa, &psref);
   2554 		pserialize_read_exit(s);
   2555 
   2556 		pfctlinput(PRC_IFDOWN, ifa->ifa_addr);
   2557 
   2558 		s = pserialize_read_enter();
   2559 		ifa_release(ifa, &psref);
   2560 	}
   2561 	pserialize_read_exit(s);
   2562 	curlwp_bindx(bound);
   2563 
   2564 	IFQ_PURGE(&ifp->if_snd);
   2565 #if NCARP > 0
   2566 	if (ifp->if_carp)
   2567 		carp_carpdev_state(ifp);
   2568 #endif
   2569 	rt_ifmsg(ifp);
   2570 	DOMAIN_FOREACH(dp) {
   2571 		if (dp->dom_if_down)
   2572 			dp->dom_if_down(ifp);
   2573 	}
   2574 }
   2575 
   2576 static void
   2577 if_down_deactivated(struct ifnet *ifp)
   2578 {
   2579 
   2580 	KASSERT(if_is_deactivated(ifp));
   2581 	_if_down(ifp);
   2582 }
   2583 
   2584 void
   2585 if_down_locked(struct ifnet *ifp)
   2586 {
   2587 
   2588 	KASSERT(IFNET_LOCKED(ifp));
   2589 	_if_down(ifp);
   2590 }
   2591 
   2592 /*
   2593  * Mark an interface down and notify protocols of
   2594  * the transition.
   2595  * NOTE: must be called at splsoftnet or equivalent.
   2596  */
   2597 void
   2598 if_down(struct ifnet *ifp)
   2599 {
   2600 
   2601 	IFNET_LOCK(ifp);
   2602 	if_down_locked(ifp);
   2603 	IFNET_UNLOCK(ifp);
   2604 }
   2605 
   2606 /*
   2607  * Must be called with holding if_ioctl_lock.
   2608  */
   2609 static void
   2610 if_up_locked(struct ifnet *ifp)
   2611 {
   2612 #ifdef notyet
   2613 	struct ifaddr *ifa;
   2614 #endif
   2615 	struct domain *dp;
   2616 
   2617 	KASSERT(IFNET_LOCKED(ifp));
   2618 
   2619 	KASSERT(!if_is_deactivated(ifp));
   2620 	ifp->if_flags |= IFF_UP;
   2621 	nanotime(&ifp->if_lastchange);
   2622 #ifdef notyet
   2623 	/* this has no effect on IP, and will kill all ISO connections XXX */
   2624 	IFADDR_READER_FOREACH(ifa, ifp)
   2625 		pfctlinput(PRC_IFUP, ifa->ifa_addr);
   2626 #endif
   2627 #if NCARP > 0
   2628 	if (ifp->if_carp)
   2629 		carp_carpdev_state(ifp);
   2630 #endif
   2631 	rt_ifmsg(ifp);
   2632 	DOMAIN_FOREACH(dp) {
   2633 		if (dp->dom_if_up)
   2634 			dp->dom_if_up(ifp);
   2635 	}
   2636 }
   2637 
   2638 /*
   2639  * Handle interface slowtimo timer routine.  Called
   2640  * from softclock, we decrement timer (if set) and
   2641  * call the appropriate interface routine on expiration.
   2642  */
   2643 static void
   2644 if_slowtimo(void *arg)
   2645 {
   2646 	void (*slowtimo)(struct ifnet *);
   2647 	struct ifnet *ifp = arg;
   2648 	int s;
   2649 
   2650 	slowtimo = ifp->if_slowtimo;
   2651 	if (__predict_false(slowtimo == NULL))
   2652 		return;
   2653 
   2654 	s = splnet();
   2655 	if (ifp->if_timer != 0 && --ifp->if_timer == 0)
   2656 		(*slowtimo)(ifp);
   2657 
   2658 	splx(s);
   2659 
   2660 	if (__predict_true(ifp->if_slowtimo != NULL))
   2661 		callout_schedule(ifp->if_slowtimo_ch, hz / IFNET_SLOWHZ);
   2662 }
   2663 
   2664 /*
   2665  * Mark an interface up and notify protocols of
   2666  * the transition.
   2667  * NOTE: must be called at splsoftnet or equivalent.
   2668  */
   2669 void
   2670 if_up(struct ifnet *ifp)
   2671 {
   2672 
   2673 	IFNET_LOCK(ifp);
   2674 	if_up_locked(ifp);
   2675 	IFNET_UNLOCK(ifp);
   2676 }
   2677 
   2678 /*
   2679  * Set/clear promiscuous mode on interface ifp based on the truth value
   2680  * of pswitch.  The calls are reference counted so that only the first
   2681  * "on" request actually has an effect, as does the final "off" request.
   2682  * Results are undefined if the "off" and "on" requests are not matched.
   2683  */
   2684 int
   2685 ifpromisc_locked(struct ifnet *ifp, int pswitch)
   2686 {
   2687 	int pcount, ret = 0;
   2688 	u_short nflags;
   2689 
   2690 	KASSERT(IFNET_LOCKED(ifp));
   2691 
   2692 	pcount = ifp->if_pcount;
   2693 	if (pswitch) {
   2694 		/*
   2695 		 * Allow the device to be "placed" into promiscuous
   2696 		 * mode even if it is not configured up.  It will
   2697 		 * consult IFF_PROMISC when it is brought up.
   2698 		 */
   2699 		if (ifp->if_pcount++ != 0)
   2700 			goto out;
   2701 		nflags = ifp->if_flags | IFF_PROMISC;
   2702 	} else {
   2703 		if (--ifp->if_pcount > 0)
   2704 			goto out;
   2705 		nflags = ifp->if_flags & ~IFF_PROMISC;
   2706 	}
   2707 	ret = if_flags_set(ifp, nflags);
   2708 	/* Restore interface state if not successful. */
   2709 	if (ret != 0) {
   2710 		ifp->if_pcount = pcount;
   2711 	}
   2712 out:
   2713 	return ret;
   2714 }
   2715 
   2716 int
   2717 ifpromisc(struct ifnet *ifp, int pswitch)
   2718 {
   2719 	int e;
   2720 
   2721 	IFNET_LOCK(ifp);
   2722 	e = ifpromisc_locked(ifp, pswitch);
   2723 	IFNET_UNLOCK(ifp);
   2724 
   2725 	return e;
   2726 }
   2727 
   2728 /*
   2729  * Map interface name to
   2730  * interface structure pointer.
   2731  */
   2732 struct ifnet *
   2733 ifunit(const char *name)
   2734 {
   2735 	struct ifnet *ifp;
   2736 	const char *cp = name;
   2737 	u_int unit = 0;
   2738 	u_int i;
   2739 	int s;
   2740 
   2741 	/*
   2742 	 * If the entire name is a number, treat it as an ifindex.
   2743 	 */
   2744 	for (i = 0; i < IFNAMSIZ && *cp >= '0' && *cp <= '9'; i++, cp++) {
   2745 		unit = unit * 10 + (*cp - '0');
   2746 	}
   2747 
   2748 	/*
   2749 	 * If the number took all of the name, then it's a valid ifindex.
   2750 	 */
   2751 	if (i == IFNAMSIZ || (cp != name && *cp == '\0'))
   2752 		return if_byindex(unit);
   2753 
   2754 	ifp = NULL;
   2755 	s = pserialize_read_enter();
   2756 	IFNET_READER_FOREACH(ifp) {
   2757 		if (if_is_deactivated(ifp))
   2758 			continue;
   2759 	 	if (strcmp(ifp->if_xname, name) == 0)
   2760 			goto out;
   2761 	}
   2762 out:
   2763 	pserialize_read_exit(s);
   2764 	return ifp;
   2765 }
   2766 
   2767 /*
   2768  * Get a reference of an ifnet object by an interface name.
   2769  * The returned reference is protected by psref(9). The caller
   2770  * must release a returned reference by if_put after use.
   2771  */
   2772 struct ifnet *
   2773 if_get(const char *name, struct psref *psref)
   2774 {
   2775 	struct ifnet *ifp;
   2776 	const char *cp = name;
   2777 	u_int unit = 0;
   2778 	u_int i;
   2779 	int s;
   2780 
   2781 	/*
   2782 	 * If the entire name is a number, treat it as an ifindex.
   2783 	 */
   2784 	for (i = 0; i < IFNAMSIZ && *cp >= '0' && *cp <= '9'; i++, cp++) {
   2785 		unit = unit * 10 + (*cp - '0');
   2786 	}
   2787 
   2788 	/*
   2789 	 * If the number took all of the name, then it's a valid ifindex.
   2790 	 */
   2791 	if (i == IFNAMSIZ || (cp != name && *cp == '\0'))
   2792 		return if_get_byindex(unit, psref);
   2793 
   2794 	ifp = NULL;
   2795 	s = pserialize_read_enter();
   2796 	IFNET_READER_FOREACH(ifp) {
   2797 		if (if_is_deactivated(ifp))
   2798 			continue;
   2799 		if (strcmp(ifp->if_xname, name) == 0) {
   2800 			PSREF_DEBUG_FILL_RETURN_ADDRESS(psref);
   2801 			psref_acquire(psref, &ifp->if_psref,
   2802 			    ifnet_psref_class);
   2803 			goto out;
   2804 		}
   2805 	}
   2806 out:
   2807 	pserialize_read_exit(s);
   2808 	return ifp;
   2809 }
   2810 
   2811 /*
   2812  * Release a reference of an ifnet object given by if_get, if_get_byindex
   2813  * or if_get_bylla.
   2814  */
   2815 void
   2816 if_put(const struct ifnet *ifp, struct psref *psref)
   2817 {
   2818 
   2819 	if (ifp == NULL)
   2820 		return;
   2821 
   2822 	psref_release(psref, &ifp->if_psref, ifnet_psref_class);
   2823 }
   2824 
   2825 /*
   2826  * Return ifp having idx. Return NULL if not found.  Normally if_byindex
   2827  * should be used.
   2828  */
   2829 ifnet_t *
   2830 _if_byindex(u_int idx)
   2831 {
   2832 
   2833 	return (__predict_true(idx < if_indexlim)) ? ifindex2ifnet[idx] : NULL;
   2834 }
   2835 
   2836 /*
   2837  * Return ifp having idx. Return NULL if not found or the found ifp is
   2838  * already deactivated.
   2839  */
   2840 ifnet_t *
   2841 if_byindex(u_int idx)
   2842 {
   2843 	ifnet_t *ifp;
   2844 
   2845 	ifp = _if_byindex(idx);
   2846 	if (ifp != NULL && if_is_deactivated(ifp))
   2847 		ifp = NULL;
   2848 	return ifp;
   2849 }
   2850 
   2851 /*
   2852  * Get a reference of an ifnet object by an interface index.
   2853  * The returned reference is protected by psref(9). The caller
   2854  * must release a returned reference by if_put after use.
   2855  */
   2856 ifnet_t *
   2857 if_get_byindex(u_int idx, struct psref *psref)
   2858 {
   2859 	ifnet_t *ifp;
   2860 	int s;
   2861 
   2862 	s = pserialize_read_enter();
   2863 	ifp = if_byindex(idx);
   2864 	if (__predict_true(ifp != NULL)) {
   2865 		PSREF_DEBUG_FILL_RETURN_ADDRESS(psref);
   2866 		psref_acquire(psref, &ifp->if_psref, ifnet_psref_class);
   2867 	}
   2868 	pserialize_read_exit(s);
   2869 
   2870 	return ifp;
   2871 }
   2872 
   2873 ifnet_t *
   2874 if_get_bylla(const void *lla, unsigned char lla_len, struct psref *psref)
   2875 {
   2876 	ifnet_t *ifp;
   2877 	int s;
   2878 
   2879 	s = pserialize_read_enter();
   2880 	IFNET_READER_FOREACH(ifp) {
   2881 		if (if_is_deactivated(ifp))
   2882 			continue;
   2883 		if (ifp->if_addrlen != lla_len)
   2884 			continue;
   2885 		if (memcmp(lla, CLLADDR(ifp->if_sadl), lla_len) == 0) {
   2886 			psref_acquire(psref, &ifp->if_psref,
   2887 			    ifnet_psref_class);
   2888 			break;
   2889 		}
   2890 	}
   2891 	pserialize_read_exit(s);
   2892 
   2893 	return ifp;
   2894 }
   2895 
   2896 /*
   2897  * Note that it's safe only if the passed ifp is guaranteed to not be freed,
   2898  * for example using pserialize or the ifp is already held or some other
   2899  * object is held which guarantes the ifp to not be freed indirectly.
   2900  */
   2901 void
   2902 if_acquire(struct ifnet *ifp, struct psref *psref)
   2903 {
   2904 
   2905 	KASSERT(ifp->if_index != 0);
   2906 	psref_acquire(psref, &ifp->if_psref, ifnet_psref_class);
   2907 }
   2908 
   2909 bool
   2910 if_held(struct ifnet *ifp)
   2911 {
   2912 
   2913 	return psref_held(&ifp->if_psref, ifnet_psref_class);
   2914 }
   2915 
   2916 /*
   2917  * Some tunnel interfaces can nest, e.g. IPv4 over IPv4 gif(4) tunnel over IPv4.
   2918  * Check the tunnel nesting count.
   2919  * Return > 0, if tunnel nesting count is more than limit.
   2920  * Return 0, if tunnel nesting count is equal or less than limit.
   2921  */
   2922 int
   2923 if_tunnel_check_nesting(struct ifnet *ifp, struct mbuf *m, int limit)
   2924 {
   2925 	struct m_tag *mtag;
   2926 	int *count;
   2927 
   2928 	mtag = m_tag_find(m, PACKET_TAG_TUNNEL_INFO);
   2929 	if (mtag != NULL) {
   2930 		count = (int *)(mtag + 1);
   2931 		if (++(*count) > limit) {
   2932 			log(LOG_NOTICE,
   2933 			    "%s: recursively called too many times(%d)\n",
   2934 			    ifp->if_xname, *count);
   2935 			return EIO;
   2936 		}
   2937 	} else {
   2938 		mtag = m_tag_get(PACKET_TAG_TUNNEL_INFO, sizeof(*count),
   2939 		    M_NOWAIT);
   2940 		if (mtag != NULL) {
   2941 			m_tag_prepend(m, mtag);
   2942 			count = (int *)(mtag + 1);
   2943 			*count = 0;
   2944 		} else {
   2945 			log(LOG_DEBUG,
   2946 			    "%s: m_tag_get() failed, recursion calls are not prevented.\n",
   2947 			    ifp->if_xname);
   2948 		}
   2949 	}
   2950 
   2951 	return 0;
   2952 }
   2953 
   2954 static void
   2955 if_tunnel_ro_init_pc(void *p, void *arg __unused, struct cpu_info *ci __unused)
   2956 {
   2957 	struct tunnel_ro *tro = p;
   2958 
   2959 	tro->tr_ro = kmem_zalloc(sizeof(*tro->tr_ro), KM_SLEEP);
   2960 	tro->tr_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
   2961 }
   2962 
   2963 static void
   2964 if_tunnel_ro_fini_pc(void *p, void *arg __unused, struct cpu_info *ci __unused)
   2965 {
   2966 	struct tunnel_ro *tro = p;
   2967 
   2968 	rtcache_free(tro->tr_ro);
   2969 	kmem_free(tro->tr_ro, sizeof(*tro->tr_ro));
   2970 
   2971 	mutex_obj_free(tro->tr_lock);
   2972 }
   2973 
   2974 percpu_t *
   2975 if_tunnel_alloc_ro_percpu(void)
   2976 {
   2977 
   2978 	return percpu_create(sizeof(struct tunnel_ro),
   2979 	    if_tunnel_ro_init_pc, if_tunnel_ro_fini_pc, NULL);
   2980 }
   2981 
   2982 void
   2983 if_tunnel_free_ro_percpu(percpu_t *ro_percpu)
   2984 {
   2985 
   2986 	percpu_free(ro_percpu, sizeof(struct tunnel_ro));
   2987 }
   2988 
   2989 
   2990 static void
   2991 if_tunnel_rtcache_free_pc(void *p, void *arg __unused, struct cpu_info *ci __unused)
   2992 {
   2993 	struct tunnel_ro *tro = p;
   2994 
   2995 	mutex_enter(tro->tr_lock);
   2996 	rtcache_free(tro->tr_ro);
   2997 	mutex_exit(tro->tr_lock);
   2998 }
   2999 
   3000 void if_tunnel_ro_percpu_rtcache_free(percpu_t *ro_percpu)
   3001 {
   3002 
   3003 	percpu_foreach(ro_percpu, if_tunnel_rtcache_free_pc, NULL);
   3004 }
   3005 
   3006 void
   3007 if_export_if_data(ifnet_t * const ifp, struct if_data *ifi, bool zero_stats)
   3008 {
   3009 
   3010 	/* Collet the volatile stats first; this zeros *ifi. */
   3011 	if_stats_to_if_data(ifp, ifi, zero_stats);
   3012 
   3013 	ifi->ifi_type = ifp->if_type;
   3014 	ifi->ifi_addrlen = ifp->if_addrlen;
   3015 	ifi->ifi_hdrlen = ifp->if_hdrlen;
   3016 	ifi->ifi_link_state = ifp->if_link_state;
   3017 	ifi->ifi_mtu = ifp->if_mtu;
   3018 	ifi->ifi_metric = ifp->if_metric;
   3019 	ifi->ifi_baudrate = ifp->if_baudrate;
   3020 	ifi->ifi_lastchange = ifp->if_lastchange;
   3021 }
   3022 
   3023 /* common */
   3024 int
   3025 ifioctl_common(struct ifnet *ifp, u_long cmd, void *data)
   3026 {
   3027 	int s;
   3028 	struct ifreq *ifr;
   3029 	struct ifcapreq *ifcr;
   3030 	struct ifdatareq *ifdr;
   3031 	unsigned short flags;
   3032 	char *descr;
   3033 	int error;
   3034 
   3035 	switch (cmd) {
   3036 	case SIOCSIFCAP:
   3037 		ifcr = data;
   3038 		if ((ifcr->ifcr_capenable & ~ifp->if_capabilities) != 0)
   3039 			return EINVAL;
   3040 
   3041 		if (ifcr->ifcr_capenable == ifp->if_capenable)
   3042 			return 0;
   3043 
   3044 		ifp->if_capenable = ifcr->ifcr_capenable;
   3045 
   3046 		/* Pre-compute the checksum flags mask. */
   3047 		ifp->if_csum_flags_tx = 0;
   3048 		ifp->if_csum_flags_rx = 0;
   3049 		if (ifp->if_capenable & IFCAP_CSUM_IPv4_Tx)
   3050 			ifp->if_csum_flags_tx |= M_CSUM_IPv4;
   3051 		if (ifp->if_capenable & IFCAP_CSUM_IPv4_Rx)
   3052 			ifp->if_csum_flags_rx |= M_CSUM_IPv4;
   3053 
   3054 		if (ifp->if_capenable & IFCAP_CSUM_TCPv4_Tx)
   3055 			ifp->if_csum_flags_tx |= M_CSUM_TCPv4;
   3056 		if (ifp->if_capenable & IFCAP_CSUM_TCPv4_Rx)
   3057 			ifp->if_csum_flags_rx |= M_CSUM_TCPv4;
   3058 
   3059 		if (ifp->if_capenable & IFCAP_CSUM_UDPv4_Tx)
   3060 			ifp->if_csum_flags_tx |= M_CSUM_UDPv4;
   3061 		if (ifp->if_capenable & IFCAP_CSUM_UDPv4_Rx)
   3062 			ifp->if_csum_flags_rx |= M_CSUM_UDPv4;
   3063 
   3064 		if (ifp->if_capenable & IFCAP_CSUM_TCPv6_Tx)
   3065 			ifp->if_csum_flags_tx |= M_CSUM_TCPv6;
   3066 		if (ifp->if_capenable & IFCAP_CSUM_TCPv6_Rx)
   3067 			ifp->if_csum_flags_rx |= M_CSUM_TCPv6;
   3068 
   3069 		if (ifp->if_capenable & IFCAP_CSUM_UDPv6_Tx)
   3070 			ifp->if_csum_flags_tx |= M_CSUM_UDPv6;
   3071 		if (ifp->if_capenable & IFCAP_CSUM_UDPv6_Rx)
   3072 			ifp->if_csum_flags_rx |= M_CSUM_UDPv6;
   3073 
   3074 		if (ifp->if_capenable & IFCAP_TSOv4)
   3075 			ifp->if_csum_flags_tx |= M_CSUM_TSOv4;
   3076 		if (ifp->if_capenable & IFCAP_TSOv6)
   3077 			ifp->if_csum_flags_tx |= M_CSUM_TSOv6;
   3078 
   3079 #if NBRIDGE > 0
   3080 		if (ifp->if_bridge != NULL)
   3081 			bridge_calc_csum_flags(ifp->if_bridge);
   3082 #endif
   3083 
   3084 		if (ifp->if_flags & IFF_UP)
   3085 			return ENETRESET;
   3086 		return 0;
   3087 	case SIOCSIFFLAGS:
   3088 		ifr = data;
   3089 		/*
   3090 		 * If if_is_mpsafe(ifp), KERNEL_LOCK isn't held here, but if_up
   3091 		 * and if_down aren't MP-safe yet, so we must hold the lock.
   3092 		 */
   3093 		KERNEL_LOCK_IF_IFP_MPSAFE(ifp);
   3094 		if (ifp->if_flags & IFF_UP && (ifr->ifr_flags & IFF_UP) == 0) {
   3095 			s = splsoftnet();
   3096 			if_down_locked(ifp);
   3097 			splx(s);
   3098 		}
   3099 		if (ifr->ifr_flags & IFF_UP && (ifp->if_flags & IFF_UP) == 0) {
   3100 			s = splsoftnet();
   3101 			if_up_locked(ifp);
   3102 			splx(s);
   3103 		}
   3104 		KERNEL_UNLOCK_IF_IFP_MPSAFE(ifp);
   3105 		flags = (ifp->if_flags & IFF_CANTCHANGE) |
   3106 		    (ifr->ifr_flags &~ IFF_CANTCHANGE);
   3107 		if (ifp->if_flags != flags) {
   3108 			ifp->if_flags = flags;
   3109 			/* Notify that the flags have changed. */
   3110 			rt_ifmsg(ifp);
   3111 		}
   3112 		break;
   3113 	case SIOCGIFFLAGS:
   3114 		ifr = data;
   3115 		ifr->ifr_flags = ifp->if_flags;
   3116 		break;
   3117 
   3118 	case SIOCGIFMETRIC:
   3119 		ifr = data;
   3120 		ifr->ifr_metric = ifp->if_metric;
   3121 		break;
   3122 
   3123 	case SIOCGIFMTU:
   3124 		ifr = data;
   3125 		ifr->ifr_mtu = ifp->if_mtu;
   3126 		break;
   3127 
   3128 	case SIOCGIFDLT:
   3129 		ifr = data;
   3130 		ifr->ifr_dlt = ifp->if_dlt;
   3131 		break;
   3132 
   3133 	case SIOCGIFCAP:
   3134 		ifcr = data;
   3135 		ifcr->ifcr_capabilities = ifp->if_capabilities;
   3136 		ifcr->ifcr_capenable = ifp->if_capenable;
   3137 		break;
   3138 
   3139 	case SIOCSIFMETRIC:
   3140 		ifr = data;
   3141 		ifp->if_metric = ifr->ifr_metric;
   3142 		break;
   3143 
   3144 	case SIOCGIFDATA:
   3145 		ifdr = data;
   3146 		if_export_if_data(ifp, &ifdr->ifdr_data, false);
   3147 		break;
   3148 
   3149 	case SIOCGIFINDEX:
   3150 		ifr = data;
   3151 		ifr->ifr_index = ifp->if_index;
   3152 		break;
   3153 
   3154 	case SIOCZIFDATA:
   3155 		ifdr = data;
   3156 		if_export_if_data(ifp, &ifdr->ifdr_data, true);
   3157 		getnanotime(&ifp->if_lastchange);
   3158 		break;
   3159 	case SIOCSIFMTU:
   3160 		ifr = data;
   3161 		if (ifp->if_mtu == ifr->ifr_mtu)
   3162 			break;
   3163 		ifp->if_mtu = ifr->ifr_mtu;
   3164 		return ENETRESET;
   3165 	case SIOCSIFDESCR:
   3166 		error = kauth_authorize_network(kauth_cred_get(),
   3167 		    KAUTH_NETWORK_INTERFACE,
   3168 		    KAUTH_REQ_NETWORK_INTERFACE_SETPRIV, ifp, KAUTH_ARG(cmd),
   3169 		    NULL);
   3170 		if (error)
   3171 			return error;
   3172 
   3173 		ifr = data;
   3174 
   3175 		if (ifr->ifr_buflen > IFDESCRSIZE)
   3176 			return ENAMETOOLONG;
   3177 
   3178 		if (ifr->ifr_buf == NULL || ifr->ifr_buflen == 0) {
   3179 			/* unset description */
   3180 			descr = NULL;
   3181 		} else {
   3182 			descr = kmem_zalloc(IFDESCRSIZE, KM_SLEEP);
   3183 			/*
   3184 			 * copy (IFDESCRSIZE - 1) bytes to ensure
   3185 			 * terminating nul
   3186 			 */
   3187 			error = copyin(ifr->ifr_buf, descr, IFDESCRSIZE - 1);
   3188 			if (error) {
   3189 				kmem_free(descr, IFDESCRSIZE);
   3190 				return error;
   3191 			}
   3192 		}
   3193 
   3194 		if (ifp->if_description != NULL)
   3195 			kmem_free(ifp->if_description, IFDESCRSIZE);
   3196 
   3197 		ifp->if_description = descr;
   3198 		break;
   3199 
   3200  	case SIOCGIFDESCR:
   3201 		ifr = data;
   3202 		descr = ifp->if_description;
   3203 
   3204 		if (descr == NULL)
   3205 			return ENOMSG;
   3206 
   3207 		if (ifr->ifr_buflen < IFDESCRSIZE)
   3208 			return EINVAL;
   3209 
   3210 		error = copyout(descr, ifr->ifr_buf, IFDESCRSIZE);
   3211 		if (error)
   3212 			return error;
   3213  		break;
   3214 
   3215 	default:
   3216 		return ENOTTY;
   3217 	}
   3218 	return 0;
   3219 }
   3220 
   3221 int
   3222 ifaddrpref_ioctl(struct socket *so, u_long cmd, void *data, struct ifnet *ifp)
   3223 {
   3224 	struct if_addrprefreq *ifap = (struct if_addrprefreq *)data;
   3225 	struct ifaddr *ifa;
   3226 	const struct sockaddr *any, *sa;
   3227 	union {
   3228 		struct sockaddr sa;
   3229 		struct sockaddr_storage ss;
   3230 	} u, v;
   3231 	int s, error = 0;
   3232 
   3233 	switch (cmd) {
   3234 	case SIOCSIFADDRPREF:
   3235 		error = kauth_authorize_network(kauth_cred_get(),
   3236 		    KAUTH_NETWORK_INTERFACE,
   3237 		    KAUTH_REQ_NETWORK_INTERFACE_SETPRIV, ifp, KAUTH_ARG(cmd),
   3238 		    NULL);
   3239 		if (error)
   3240 			return error;
   3241 		break;
   3242 	case SIOCGIFADDRPREF:
   3243 		break;
   3244 	default:
   3245 		return EOPNOTSUPP;
   3246 	}
   3247 
   3248 	/* sanity checks */
   3249 	if (data == NULL || ifp == NULL) {
   3250 		panic("invalid argument to %s", __func__);
   3251 		/*NOTREACHED*/
   3252 	}
   3253 
   3254 	/* address must be specified on ADD and DELETE */
   3255 	sa = sstocsa(&ifap->ifap_addr);
   3256 	if (sa->sa_family != sofamily(so))
   3257 		return EINVAL;
   3258 	if ((any = sockaddr_any(sa)) == NULL || sa->sa_len != any->sa_len)
   3259 		return EINVAL;
   3260 
   3261 	sockaddr_externalize(&v.sa, sizeof(v.ss), sa);
   3262 
   3263 	s = pserialize_read_enter();
   3264 	IFADDR_READER_FOREACH(ifa, ifp) {
   3265 		if (ifa->ifa_addr->sa_family != sa->sa_family)
   3266 			continue;
   3267 		sockaddr_externalize(&u.sa, sizeof(u.ss), ifa->ifa_addr);
   3268 		if (sockaddr_cmp(&u.sa, &v.sa) == 0)
   3269 			break;
   3270 	}
   3271 	if (ifa == NULL) {
   3272 		error = EADDRNOTAVAIL;
   3273 		goto out;
   3274 	}
   3275 
   3276 	switch (cmd) {
   3277 	case SIOCSIFADDRPREF:
   3278 		ifa->ifa_preference = ifap->ifap_preference;
   3279 		goto out;
   3280 	case SIOCGIFADDRPREF:
   3281 		/* fill in the if_laddrreq structure */
   3282 		(void)sockaddr_copy(sstosa(&ifap->ifap_addr),
   3283 		    sizeof(ifap->ifap_addr), ifa->ifa_addr);
   3284 		ifap->ifap_preference = ifa->ifa_preference;
   3285 		goto out;
   3286 	default:
   3287 		error = EOPNOTSUPP;
   3288 	}
   3289 out:
   3290 	pserialize_read_exit(s);
   3291 	return error;
   3292 }
   3293 
   3294 /*
   3295  * Interface ioctls.
   3296  */
   3297 static int
   3298 doifioctl(struct socket *so, u_long cmd, void *data, struct lwp *l)
   3299 {
   3300 	struct ifnet *ifp;
   3301 	struct ifreq *ifr;
   3302 	int error = 0;
   3303 	u_long ocmd = cmd;
   3304 	u_short oif_flags;
   3305 	struct ifreq ifrb;
   3306 	struct oifreq *oifr = NULL;
   3307 	int r;
   3308 	struct psref psref;
   3309 	int bound;
   3310 	bool do_if43_post = false;
   3311 	bool do_ifm80_post = false;
   3312 
   3313 	switch (cmd) {
   3314 	case SIOCGIFCONF:
   3315 		return ifconf(cmd, data);
   3316 	case SIOCINITIFADDR:
   3317 		return EPERM;
   3318 	default:
   3319 		MODULE_HOOK_CALL(uipc_syscalls_40_hook, (cmd, data), enosys(),
   3320 		    error);
   3321 		if (error != ENOSYS)
   3322 			return error;
   3323 		MODULE_HOOK_CALL(uipc_syscalls_50_hook, (l, cmd, data),
   3324 		    enosys(), error);
   3325 		if (error != ENOSYS)
   3326 			return error;
   3327 		error = 0;
   3328 		break;
   3329 	}
   3330 
   3331 	ifr = data;
   3332 	/* Pre-conversion */
   3333 	MODULE_HOOK_CALL(if_cvtcmd_43_hook, (&cmd, ocmd), enosys(), error);
   3334 	if (cmd != ocmd) {
   3335 		oifr = data;
   3336 		data = ifr = &ifrb;
   3337 		IFREQO2N_43(oifr, ifr);
   3338 		do_if43_post = true;
   3339 	}
   3340 	MODULE_HOOK_CALL(ifmedia_80_pre_hook, (ifr, &cmd, &do_ifm80_post),
   3341 	    enosys(), error);
   3342 
   3343 	switch (cmd) {
   3344 	case SIOCIFCREATE:
   3345 	case SIOCIFDESTROY:
   3346 		bound = curlwp_bind();
   3347 		if (l != NULL) {
   3348 			ifp = if_get(ifr->ifr_name, &psref);
   3349 			error = kauth_authorize_network(l->l_proc, l->l_cred,
   3350 			    KAUTH_NETWORK_INTERFACE,
   3351 			    KAUTH_REQ_NETWORK_INTERFACE_SETPRIV, ifp,
   3352 			    KAUTH_ARG(cmd), NULL);
   3353 			if (ifp != NULL)
   3354 				if_put(ifp, &psref);
   3355 			if (error != 0) {
   3356 				curlwp_bindx(bound);
   3357 				return error;
   3358 			}
   3359 		}
   3360 		KERNEL_LOCK_UNLESS_NET_MPSAFE();
   3361 		mutex_enter(&if_clone_mtx);
   3362 		r = (cmd == SIOCIFCREATE) ?
   3363 			if_clone_create(ifr->ifr_name) :
   3364 			if_clone_destroy(ifr->ifr_name);
   3365 		mutex_exit(&if_clone_mtx);
   3366 		KERNEL_UNLOCK_UNLESS_NET_MPSAFE();
   3367 		curlwp_bindx(bound);
   3368 		return r;
   3369 
   3370 	case SIOCIFGCLONERS:
   3371 		{
   3372 			struct if_clonereq *req = (struct if_clonereq *)data;
   3373 			return if_clone_list(req->ifcr_count, req->ifcr_buffer,
   3374 			    &req->ifcr_total);
   3375 		}
   3376 	}
   3377 
   3378 	bound = curlwp_bind();
   3379 	ifp = if_get(ifr->ifr_name, &psref);
   3380 	if (ifp == NULL) {
   3381 		curlwp_bindx(bound);
   3382 		return ENXIO;
   3383 	}
   3384 
   3385 	switch (cmd) {
   3386 	case SIOCALIFADDR:
   3387 	case SIOCDLIFADDR:
   3388 	case SIOCSIFADDRPREF:
   3389 	case SIOCSIFFLAGS:
   3390 	case SIOCSIFCAP:
   3391 	case SIOCSIFMETRIC:
   3392 	case SIOCZIFDATA:
   3393 	case SIOCSIFMTU:
   3394 	case SIOCSIFPHYADDR:
   3395 	case SIOCDIFPHYADDR:
   3396 #ifdef INET6
   3397 	case SIOCSIFPHYADDR_IN6:
   3398 #endif
   3399 	case SIOCSLIFPHYADDR:
   3400 	case SIOCADDMULTI:
   3401 	case SIOCDELMULTI:
   3402 	case SIOCSETHERCAP:
   3403 	case SIOCSIFMEDIA:
   3404 	case SIOCSDRVSPEC:
   3405 	case SIOCG80211:
   3406 	case SIOCS80211:
   3407 	case SIOCS80211NWID:
   3408 	case SIOCS80211NWKEY:
   3409 	case SIOCS80211POWER:
   3410 	case SIOCS80211BSSID:
   3411 	case SIOCS80211CHANNEL:
   3412 	case SIOCSLINKSTR:
   3413 		if (l != NULL) {
   3414 			error = kauth_authorize_network(l->l_proc, l->l_cred,
   3415 			    KAUTH_NETWORK_INTERFACE,
   3416 			    KAUTH_REQ_NETWORK_INTERFACE_SETPRIV, ifp,
   3417 			    KAUTH_ARG(cmd), NULL);
   3418 			if (error != 0)
   3419 				goto out;
   3420 		}
   3421 	}
   3422 
   3423 	oif_flags = ifp->if_flags;
   3424 
   3425 	KERNEL_LOCK_UNLESS_IFP_MPSAFE(ifp);
   3426 	IFNET_LOCK(ifp);
   3427 
   3428 	error = (*ifp->if_ioctl)(ifp, cmd, data);
   3429 	if (error != ENOTTY)
   3430 		;
   3431 	else if (so->so_proto == NULL)
   3432 		error = EOPNOTSUPP;
   3433 	else {
   3434 		KERNEL_LOCK_IF_IFP_MPSAFE(ifp);
   3435 		MODULE_HOOK_CALL(if_ifioctl_43_hook,
   3436 			     (so, ocmd, cmd, data, l), enosys(), error);
   3437 		if (error == ENOSYS)
   3438 			error = (*so->so_proto->pr_usrreqs->pr_ioctl)(so,
   3439 			    cmd, data, ifp);
   3440 		KERNEL_UNLOCK_IF_IFP_MPSAFE(ifp);
   3441 	}
   3442 
   3443 	if (((oif_flags ^ ifp->if_flags) & IFF_UP) != 0) {
   3444 		if ((ifp->if_flags & IFF_UP) != 0) {
   3445 			int s = splsoftnet();
   3446 			if_up_locked(ifp);
   3447 			splx(s);
   3448 		}
   3449 	}
   3450 
   3451 	/* Post-conversion */
   3452 	if (do_ifm80_post && (error == 0))
   3453 		MODULE_HOOK_CALL(ifmedia_80_post_hook, (ifr, cmd),
   3454 		    enosys(), error);
   3455 	if (do_if43_post)
   3456 		IFREQN2O_43(oifr, ifr);
   3457 
   3458 	IFNET_UNLOCK(ifp);
   3459 	KERNEL_UNLOCK_UNLESS_IFP_MPSAFE(ifp);
   3460 out:
   3461 	if_put(ifp, &psref);
   3462 	curlwp_bindx(bound);
   3463 	return error;
   3464 }
   3465 
   3466 /*
   3467  * Return interface configuration
   3468  * of system.  List may be used
   3469  * in later ioctl's (above) to get
   3470  * other information.
   3471  *
   3472  * Each record is a struct ifreq.  Before the addition of
   3473  * sockaddr_storage, the API rule was that sockaddr flavors that did
   3474  * not fit would extend beyond the struct ifreq, with the next struct
   3475  * ifreq starting sa_len beyond the struct sockaddr.  Because the
   3476  * union in struct ifreq includes struct sockaddr_storage, every kind
   3477  * of sockaddr must fit.  Thus, there are no longer any overlength
   3478  * records.
   3479  *
   3480  * Records are added to the user buffer if they fit, and ifc_len is
   3481  * adjusted to the length that was written.  Thus, the user is only
   3482  * assured of getting the complete list if ifc_len on return is at
   3483  * least sizeof(struct ifreq) less than it was on entry.
   3484  *
   3485  * If the user buffer pointer is NULL, this routine copies no data and
   3486  * returns the amount of space that would be needed.
   3487  *
   3488  * Invariants:
   3489  * ifrp points to the next part of the user's buffer to be used.  If
   3490  * ifrp != NULL, space holds the number of bytes remaining that we may
   3491  * write at ifrp.  Otherwise, space holds the number of bytes that
   3492  * would have been written had there been adequate space.
   3493  */
   3494 /*ARGSUSED*/
   3495 static int
   3496 ifconf(u_long cmd, void *data)
   3497 {
   3498 	struct ifconf *ifc = (struct ifconf *)data;
   3499 	struct ifnet *ifp;
   3500 	struct ifaddr *ifa;
   3501 	struct ifreq ifr, *ifrp = NULL;
   3502 	int space = 0, error = 0;
   3503 	const int sz = (int)sizeof(struct ifreq);
   3504 	const bool docopy = ifc->ifc_req != NULL;
   3505 	int s;
   3506 	int bound;
   3507 	struct psref psref;
   3508 
   3509 	if (docopy) {
   3510 		if (ifc->ifc_len < 0)
   3511 			return EINVAL;
   3512 
   3513 		space = ifc->ifc_len;
   3514 		ifrp = ifc->ifc_req;
   3515 	}
   3516 	memset(&ifr, 0, sizeof(ifr));
   3517 
   3518 	bound = curlwp_bind();
   3519 	s = pserialize_read_enter();
   3520 	IFNET_READER_FOREACH(ifp) {
   3521 		psref_acquire(&psref, &ifp->if_psref, ifnet_psref_class);
   3522 		pserialize_read_exit(s);
   3523 
   3524 		(void)strncpy(ifr.ifr_name, ifp->if_xname,
   3525 		    sizeof(ifr.ifr_name));
   3526 		if (ifr.ifr_name[sizeof(ifr.ifr_name) - 1] != '\0') {
   3527 			error = ENAMETOOLONG;
   3528 			goto release_exit;
   3529 		}
   3530 		if (IFADDR_READER_EMPTY(ifp)) {
   3531 			/* Interface with no addresses - send zero sockaddr. */
   3532 			memset(&ifr.ifr_addr, 0, sizeof(ifr.ifr_addr));
   3533 			if (!docopy) {
   3534 				space += sz;
   3535 				goto next;
   3536 			}
   3537 			if (space >= sz) {
   3538 				error = copyout(&ifr, ifrp, sz);
   3539 				if (error != 0)
   3540 					goto release_exit;
   3541 				ifrp++;
   3542 				space -= sz;
   3543 			}
   3544 		}
   3545 
   3546 		s = pserialize_read_enter();
   3547 		IFADDR_READER_FOREACH(ifa, ifp) {
   3548 			struct sockaddr *sa = ifa->ifa_addr;
   3549 			/* all sockaddrs must fit in sockaddr_storage */
   3550 			KASSERT(sa->sa_len <= sizeof(ifr.ifr_ifru));
   3551 
   3552 			if (!docopy) {
   3553 				space += sz;
   3554 				continue;
   3555 			}
   3556 			memcpy(&ifr.ifr_space, sa, sa->sa_len);
   3557 			pserialize_read_exit(s);
   3558 
   3559 			if (space >= sz) {
   3560 				error = copyout(&ifr, ifrp, sz);
   3561 				if (error != 0)
   3562 					goto release_exit;
   3563 				ifrp++; space -= sz;
   3564 			}
   3565 			s = pserialize_read_enter();
   3566 		}
   3567 		pserialize_read_exit(s);
   3568 
   3569         next:
   3570 		s = pserialize_read_enter();
   3571 		psref_release(&psref, &ifp->if_psref, ifnet_psref_class);
   3572 	}
   3573 	pserialize_read_exit(s);
   3574 	curlwp_bindx(bound);
   3575 
   3576 	if (docopy) {
   3577 		KASSERT(0 <= space && space <= ifc->ifc_len);
   3578 		ifc->ifc_len -= space;
   3579 	} else {
   3580 		KASSERT(space >= 0);
   3581 		ifc->ifc_len = space;
   3582 	}
   3583 	return (0);
   3584 
   3585 release_exit:
   3586 	psref_release(&psref, &ifp->if_psref, ifnet_psref_class);
   3587 	curlwp_bindx(bound);
   3588 	return error;
   3589 }
   3590 
   3591 int
   3592 ifreq_setaddr(u_long cmd, struct ifreq *ifr, const struct sockaddr *sa)
   3593 {
   3594 	uint8_t len = sizeof(ifr->ifr_ifru.ifru_space);
   3595 	struct ifreq ifrb;
   3596 	struct oifreq *oifr = NULL;
   3597 	u_long ocmd = cmd;
   3598 	int hook;
   3599 
   3600 	MODULE_HOOK_CALL(if_cvtcmd_43_hook, (&cmd, ocmd), enosys(), hook);
   3601 	if (hook != ENOSYS) {
   3602 		if (cmd != ocmd) {
   3603 			oifr = (struct oifreq *)(void *)ifr;
   3604 			ifr = &ifrb;
   3605 			IFREQO2N_43(oifr, ifr);
   3606 				len = sizeof(oifr->ifr_addr);
   3607 		}
   3608 	}
   3609 
   3610 	if (len < sa->sa_len)
   3611 		return EFBIG;
   3612 
   3613 	memset(&ifr->ifr_addr, 0, len);
   3614 	sockaddr_copy(&ifr->ifr_addr, len, sa);
   3615 
   3616 	if (cmd != ocmd)
   3617 		IFREQN2O_43(oifr, ifr);
   3618 	return 0;
   3619 }
   3620 
   3621 /*
   3622  * wrapper function for the drivers which doesn't have if_transmit().
   3623  */
   3624 static int
   3625 if_transmit(struct ifnet *ifp, struct mbuf *m)
   3626 {
   3627 	int s, error;
   3628 	size_t pktlen = m->m_pkthdr.len;
   3629 	bool mcast = (m->m_flags & M_MCAST) != 0;
   3630 
   3631 	s = splnet();
   3632 
   3633 	IFQ_ENQUEUE(&ifp->if_snd, m, error);
   3634 	if (error != 0) {
   3635 		/* mbuf is already freed */
   3636 		goto out;
   3637 	}
   3638 
   3639 	net_stat_ref_t nsr = IF_STAT_GETREF(ifp);
   3640 	if_statadd_ref(nsr, if_obytes, pktlen);
   3641 	if (mcast)
   3642 		if_statinc_ref(nsr, if_omcasts);
   3643 	IF_STAT_PUTREF(ifp);
   3644 
   3645 	if ((ifp->if_flags & IFF_OACTIVE) == 0)
   3646 		if_start_lock(ifp);
   3647 out:
   3648 	splx(s);
   3649 
   3650 	return error;
   3651 }
   3652 
   3653 int
   3654 if_transmit_lock(struct ifnet *ifp, struct mbuf *m)
   3655 {
   3656 	int error;
   3657 
   3658 	kmsan_check_mbuf(m);
   3659 
   3660 #ifdef ALTQ
   3661 	KERNEL_LOCK(1, NULL);
   3662 	if (ALTQ_IS_ENABLED(&ifp->if_snd)) {
   3663 		error = if_transmit(ifp, m);
   3664 		KERNEL_UNLOCK_ONE(NULL);
   3665 	} else {
   3666 		KERNEL_UNLOCK_ONE(NULL);
   3667 		error = (*ifp->if_transmit)(ifp, m);
   3668 		/* mbuf is alredy freed */
   3669 	}
   3670 #else /* !ALTQ */
   3671 	error = (*ifp->if_transmit)(ifp, m);
   3672 	/* mbuf is alredy freed */
   3673 #endif /* !ALTQ */
   3674 
   3675 	return error;
   3676 }
   3677 
   3678 /*
   3679  * Queue message on interface, and start output if interface
   3680  * not yet active.
   3681  */
   3682 int
   3683 ifq_enqueue(struct ifnet *ifp, struct mbuf *m)
   3684 {
   3685 
   3686 	return if_transmit_lock(ifp, m);
   3687 }
   3688 
   3689 /*
   3690  * Queue message on interface, possibly using a second fast queue
   3691  */
   3692 int
   3693 ifq_enqueue2(struct ifnet *ifp, struct ifqueue *ifq, struct mbuf *m)
   3694 {
   3695 	int error = 0;
   3696 
   3697 	if (ifq != NULL
   3698 #ifdef ALTQ
   3699 	    && ALTQ_IS_ENABLED(&ifp->if_snd) == 0
   3700 #endif
   3701 	    ) {
   3702 		if (IF_QFULL(ifq)) {
   3703 			IF_DROP(&ifp->if_snd);
   3704 			m_freem(m);
   3705 			if (error == 0)
   3706 				error = ENOBUFS;
   3707 		} else
   3708 			IF_ENQUEUE(ifq, m);
   3709 	} else
   3710 		IFQ_ENQUEUE(&ifp->if_snd, m, error);
   3711 	if (error != 0) {
   3712 		if_statinc(ifp, if_oerrors);
   3713 		return error;
   3714 	}
   3715 	return 0;
   3716 }
   3717 
   3718 int
   3719 if_addr_init(ifnet_t *ifp, struct ifaddr *ifa, const bool src)
   3720 {
   3721 	int rc;
   3722 
   3723 	KASSERT(IFNET_LOCKED(ifp));
   3724 	if (ifp->if_initaddr != NULL)
   3725 		rc = (*ifp->if_initaddr)(ifp, ifa, src);
   3726 	else if (src ||
   3727 	         (rc = (*ifp->if_ioctl)(ifp, SIOCSIFDSTADDR, ifa)) == ENOTTY)
   3728 		rc = (*ifp->if_ioctl)(ifp, SIOCINITIFADDR, ifa);
   3729 
   3730 	return rc;
   3731 }
   3732 
   3733 int
   3734 if_do_dad(struct ifnet *ifp)
   3735 {
   3736 	if ((ifp->if_flags & IFF_LOOPBACK) != 0)
   3737 		return 0;
   3738 
   3739 	switch (ifp->if_type) {
   3740 	case IFT_FAITH:
   3741 		/*
   3742 		 * These interfaces do not have the IFF_LOOPBACK flag,
   3743 		 * but loop packets back.  We do not have to do DAD on such
   3744 		 * interfaces.  We should even omit it, because loop-backed
   3745 		 * responses would confuse the DAD procedure.
   3746 		 */
   3747 		return 0;
   3748 	default:
   3749 		/*
   3750 		 * Our DAD routine requires the interface up and running.
   3751 		 * However, some interfaces can be up before the RUNNING
   3752 		 * status.  Additionaly, users may try to assign addresses
   3753 		 * before the interface becomes up (or running).
   3754 		 * We simply skip DAD in such a case as a work around.
   3755 		 * XXX: we should rather mark "tentative" on such addresses,
   3756 		 * and do DAD after the interface becomes ready.
   3757 		 */
   3758 		if ((ifp->if_flags & (IFF_UP | IFF_RUNNING)) !=
   3759 		    (IFF_UP | IFF_RUNNING))
   3760 			return 0;
   3761 
   3762 		return 1;
   3763 	}
   3764 }
   3765 
   3766 int
   3767 if_flags_set(ifnet_t *ifp, const u_short flags)
   3768 {
   3769 	int rc;
   3770 
   3771 	KASSERT(IFNET_LOCKED(ifp));
   3772 
   3773 	if (ifp->if_setflags != NULL)
   3774 		rc = (*ifp->if_setflags)(ifp, flags);
   3775 	else {
   3776 		u_short cantflags, chgdflags;
   3777 		struct ifreq ifr;
   3778 
   3779 		chgdflags = ifp->if_flags ^ flags;
   3780 		cantflags = chgdflags & IFF_CANTCHANGE;
   3781 
   3782 		if (cantflags != 0)
   3783 			ifp->if_flags ^= cantflags;
   3784 
   3785                 /* Traditionally, we do not call if_ioctl after
   3786                  * setting/clearing only IFF_PROMISC if the interface
   3787                  * isn't IFF_UP.  Uphold that tradition.
   3788 		 */
   3789 		if (chgdflags == IFF_PROMISC && (ifp->if_flags & IFF_UP) == 0)
   3790 			return 0;
   3791 
   3792 		memset(&ifr, 0, sizeof(ifr));
   3793 
   3794 		ifr.ifr_flags = flags & ~IFF_CANTCHANGE;
   3795 		rc = (*ifp->if_ioctl)(ifp, SIOCSIFFLAGS, &ifr);
   3796 
   3797 		if (rc != 0 && cantflags != 0)
   3798 			ifp->if_flags ^= cantflags;
   3799 	}
   3800 
   3801 	return rc;
   3802 }
   3803 
   3804 int
   3805 if_mcast_op(ifnet_t *ifp, const unsigned long cmd, const struct sockaddr *sa)
   3806 {
   3807 	int rc;
   3808 	struct ifreq ifr;
   3809 
   3810 	/*
   3811 	 * XXX NOMPSAFE - this calls if_ioctl without holding IFNET_LOCK()
   3812 	 * in some cases - e.g. when called from vlan/netinet/netinet6 code
   3813 	 * directly rather than via doifoictl()
   3814 	 */
   3815 	ifreq_setaddr(cmd, &ifr, sa);
   3816 	rc = (*ifp->if_ioctl)(ifp, cmd, &ifr);
   3817 
   3818 	return rc;
   3819 }
   3820 
   3821 static void
   3822 sysctl_sndq_setup(struct sysctllog **clog, const char *ifname,
   3823     struct ifaltq *ifq)
   3824 {
   3825 	const struct sysctlnode *cnode, *rnode;
   3826 
   3827 	if (sysctl_createv(clog, 0, NULL, &rnode,
   3828 		       CTLFLAG_PERMANENT,
   3829 		       CTLTYPE_NODE, "interfaces",
   3830 		       SYSCTL_DESCR("Per-interface controls"),
   3831 		       NULL, 0, NULL, 0,
   3832 		       CTL_NET, CTL_CREATE, CTL_EOL) != 0)
   3833 		goto bad;
   3834 
   3835 	if (sysctl_createv(clog, 0, &rnode, &rnode,
   3836 		       CTLFLAG_PERMANENT,
   3837 		       CTLTYPE_NODE, ifname,
   3838 		       SYSCTL_DESCR("Interface controls"),
   3839 		       NULL, 0, NULL, 0,
   3840 		       CTL_CREATE, CTL_EOL) != 0)
   3841 		goto bad;
   3842 
   3843 	if (sysctl_createv(clog, 0, &rnode, &rnode,
   3844 		       CTLFLAG_PERMANENT,
   3845 		       CTLTYPE_NODE, "sndq",
   3846 		       SYSCTL_DESCR("Interface output queue controls"),
   3847 		       NULL, 0, NULL, 0,
   3848 		       CTL_CREATE, CTL_EOL) != 0)
   3849 		goto bad;
   3850 
   3851 	if (sysctl_createv(clog, 0, &rnode, &cnode,
   3852 		       CTLFLAG_PERMANENT,
   3853 		       CTLTYPE_INT, "len",
   3854 		       SYSCTL_DESCR("Current output queue length"),
   3855 		       NULL, 0, &ifq->ifq_len, 0,
   3856 		       CTL_CREATE, CTL_EOL) != 0)
   3857 		goto bad;
   3858 
   3859 	if (sysctl_createv(clog, 0, &rnode, &cnode,
   3860 		       CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
   3861 		       CTLTYPE_INT, "maxlen",
   3862 		       SYSCTL_DESCR("Maximum allowed output queue length"),
   3863 		       NULL, 0, &ifq->ifq_maxlen, 0,
   3864 		       CTL_CREATE, CTL_EOL) != 0)
   3865 		goto bad;
   3866 
   3867 	if (sysctl_createv(clog, 0, &rnode, &cnode,
   3868 		       CTLFLAG_PERMANENT,
   3869 		       CTLTYPE_INT, "drops",
   3870 		       SYSCTL_DESCR("Packets dropped due to full output queue"),
   3871 		       NULL, 0, &ifq->ifq_drops, 0,
   3872 		       CTL_CREATE, CTL_EOL) != 0)
   3873 		goto bad;
   3874 
   3875 	return;
   3876 bad:
   3877 	printf("%s: could not attach sysctl nodes\n", ifname);
   3878 	return;
   3879 }
   3880 
   3881 #if defined(INET) || defined(INET6)
   3882 
   3883 #define	SYSCTL_NET_PKTQ(q, cn, c)					\
   3884 	static int							\
   3885 	sysctl_net_##q##_##cn(SYSCTLFN_ARGS)				\
   3886 	{								\
   3887 		return sysctl_pktq_count(SYSCTLFN_CALL(rnode), q, c);	\
   3888 	}
   3889 
   3890 #if defined(INET)
   3891 static int
   3892 sysctl_net_ip_pktq_maxlen(SYSCTLFN_ARGS)
   3893 {
   3894 	return sysctl_pktq_maxlen(SYSCTLFN_CALL(rnode), ip_pktq);
   3895 }
   3896 SYSCTL_NET_PKTQ(ip_pktq, items, PKTQ_NITEMS)
   3897 SYSCTL_NET_PKTQ(ip_pktq, drops, PKTQ_DROPS)
   3898 #endif
   3899 
   3900 #if defined(INET6)
   3901 static int
   3902 sysctl_net_ip6_pktq_maxlen(SYSCTLFN_ARGS)
   3903 {
   3904 	return sysctl_pktq_maxlen(SYSCTLFN_CALL(rnode), ip6_pktq);
   3905 }
   3906 SYSCTL_NET_PKTQ(ip6_pktq, items, PKTQ_NITEMS)
   3907 SYSCTL_NET_PKTQ(ip6_pktq, drops, PKTQ_DROPS)
   3908 #endif
   3909 
   3910 static void
   3911 sysctl_net_pktq_setup(struct sysctllog **clog, int pf)
   3912 {
   3913 	sysctlfn len_func = NULL, maxlen_func = NULL, drops_func = NULL;
   3914 	const char *pfname = NULL, *ipname = NULL;
   3915 	int ipn = 0, qid = 0;
   3916 
   3917 	switch (pf) {
   3918 #if defined(INET)
   3919 	case PF_INET:
   3920 		len_func = sysctl_net_ip_pktq_items;
   3921 		maxlen_func = sysctl_net_ip_pktq_maxlen;
   3922 		drops_func = sysctl_net_ip_pktq_drops;
   3923 		pfname = "inet", ipn = IPPROTO_IP;
   3924 		ipname = "ip", qid = IPCTL_IFQ;
   3925 		break;
   3926 #endif
   3927 #if defined(INET6)
   3928 	case PF_INET6:
   3929 		len_func = sysctl_net_ip6_pktq_items;
   3930 		maxlen_func = sysctl_net_ip6_pktq_maxlen;
   3931 		drops_func = sysctl_net_ip6_pktq_drops;
   3932 		pfname = "inet6", ipn = IPPROTO_IPV6;
   3933 		ipname = "ip6", qid = IPV6CTL_IFQ;
   3934 		break;
   3935 #endif
   3936 	default:
   3937 		KASSERT(false);
   3938 	}
   3939 
   3940 	sysctl_createv(clog, 0, NULL, NULL,
   3941 		       CTLFLAG_PERMANENT,
   3942 		       CTLTYPE_NODE, pfname, NULL,
   3943 		       NULL, 0, NULL, 0,
   3944 		       CTL_NET, pf, CTL_EOL);
   3945 	sysctl_createv(clog, 0, NULL, NULL,
   3946 		       CTLFLAG_PERMANENT,
   3947 		       CTLTYPE_NODE, ipname, NULL,
   3948 		       NULL, 0, NULL, 0,
   3949 		       CTL_NET, pf, ipn, CTL_EOL);
   3950 	sysctl_createv(clog, 0, NULL, NULL,
   3951 		       CTLFLAG_PERMANENT,
   3952 		       CTLTYPE_NODE, "ifq",
   3953 		       SYSCTL_DESCR("Protocol input queue controls"),
   3954 		       NULL, 0, NULL, 0,
   3955 		       CTL_NET, pf, ipn, qid, CTL_EOL);
   3956 
   3957 	sysctl_createv(clog, 0, NULL, NULL,
   3958 		       CTLFLAG_PERMANENT,
   3959 		       CTLTYPE_QUAD, "len",
   3960 		       SYSCTL_DESCR("Current input queue length"),
   3961 		       len_func, 0, NULL, 0,
   3962 		       CTL_NET, pf, ipn, qid, IFQCTL_LEN, CTL_EOL);
   3963 	sysctl_createv(clog, 0, NULL, NULL,
   3964 		       CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
   3965 		       CTLTYPE_INT, "maxlen",
   3966 		       SYSCTL_DESCR("Maximum allowed input queue length"),
   3967 		       maxlen_func, 0, NULL, 0,
   3968 		       CTL_NET, pf, ipn, qid, IFQCTL_MAXLEN, CTL_EOL);
   3969 	sysctl_createv(clog, 0, NULL, NULL,
   3970 		       CTLFLAG_PERMANENT,
   3971 		       CTLTYPE_QUAD, "drops",
   3972 		       SYSCTL_DESCR("Packets dropped due to full input queue"),
   3973 		       drops_func, 0, NULL, 0,
   3974 		       CTL_NET, pf, ipn, qid, IFQCTL_DROPS, CTL_EOL);
   3975 }
   3976 #endif /* INET || INET6 */
   3977 
   3978 static int
   3979 if_sdl_sysctl(SYSCTLFN_ARGS)
   3980 {
   3981 	struct ifnet *ifp;
   3982 	const struct sockaddr_dl *sdl;
   3983 	struct psref psref;
   3984 	int error = 0;
   3985 	int bound;
   3986 
   3987 	if (namelen != 1)
   3988 		return EINVAL;
   3989 
   3990 	bound = curlwp_bind();
   3991 	ifp = if_get_byindex(name[0], &psref);
   3992 	if (ifp == NULL) {
   3993 		error = ENODEV;
   3994 		goto out0;
   3995 	}
   3996 
   3997 	sdl = ifp->if_sadl;
   3998 	if (sdl == NULL) {
   3999 		*oldlenp = 0;
   4000 		goto out1;
   4001 	}
   4002 
   4003 	if (oldp == NULL) {
   4004 		*oldlenp = sdl->sdl_alen;
   4005 		goto out1;
   4006 	}
   4007 
   4008 	if (*oldlenp >= sdl->sdl_alen)
   4009 		*oldlenp = sdl->sdl_alen;
   4010 	error = sysctl_copyout(l, &sdl->sdl_data[sdl->sdl_nlen], oldp, *oldlenp);
   4011 out1:
   4012 	if_put(ifp, &psref);
   4013 out0:
   4014 	curlwp_bindx(bound);
   4015 	return error;
   4016 }
   4017 
   4018 static void
   4019 if_sysctl_setup(struct sysctllog **clog)
   4020 {
   4021 	const struct sysctlnode *rnode = NULL;
   4022 
   4023 	sysctl_createv(clog, 0, NULL, &rnode,
   4024 		       CTLFLAG_PERMANENT,
   4025 		       CTLTYPE_NODE, "sdl",
   4026 		       SYSCTL_DESCR("Get active link-layer address"),
   4027 		       if_sdl_sysctl, 0, NULL, 0,
   4028 		       CTL_NET, CTL_CREATE, CTL_EOL);
   4029 
   4030 #if defined(INET)
   4031 	sysctl_net_pktq_setup(NULL, PF_INET);
   4032 #endif
   4033 #ifdef INET6
   4034 	if (in6_present)
   4035 		sysctl_net_pktq_setup(NULL, PF_INET6);
   4036 #endif
   4037 }
   4038