xref: /freebsd/sys/net/if.c (revision 2f8f892ca344d884abbed0305886bb532f16368f)
1 /*-
2  * SPDX-License-Identifier: BSD-3-Clause
3  *
4  * Copyright (c) 2010 Bjoern A. Zeeb <bz@FreeBSD.org>
5  * Copyright (c) 1980, 1986, 1993
6  *	The Regents of the University of California.  All rights reserved.
7  *
8  * Redistribution and use in source and binary forms, with or without
9  * modification, are permitted provided that the following conditions
10  * are met:
11  * 1. Redistributions of source code must retain the above copyright
12  *    notice, this list of conditions and the following disclaimer.
13  * 2. Redistributions in binary form must reproduce the above copyright
14  *    notice, this list of conditions and the following disclaimer in the
15  *    documentation and/or other materials provided with the distribution.
16  * 3. Neither the name of the University nor the names of its contributors
17  *    may be used to endorse or promote products derived from this software
18  *    without specific prior written permission.
19  *
20  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
21  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
22  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
23  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
24  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
25  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
26  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
27  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
28  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
29  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
30  * SUCH DAMAGE.
31  */
32 
33 #include "opt_bpf.h"
34 #include "opt_inet6.h"
35 #include "opt_inet.h"
36 #include "opt_ddb.h"
37 
38 #include <sys/param.h>
39 #include <sys/capsicum.h>
40 #include <sys/conf.h>
41 #include <sys/eventhandler.h>
42 #include <sys/malloc.h>
43 #include <sys/domainset.h>
44 #include <sys/sbuf.h>
45 #include <sys/bus.h>
46 #include <sys/epoch.h>
47 #include <sys/mbuf.h>
48 #include <sys/systm.h>
49 #include <sys/priv.h>
50 #include <sys/proc.h>
51 #include <sys/socket.h>
52 #include <sys/socketvar.h>
53 #include <sys/protosw.h>
54 #include <sys/kernel.h>
55 #include <sys/lock.h>
56 #include <sys/refcount.h>
57 #include <sys/module.h>
58 #include <sys/nv.h>
59 #include <sys/rwlock.h>
60 #include <sys/sockio.h>
61 #include <sys/stdarg.h>
62 #include <sys/syslog.h>
63 #include <sys/sysctl.h>
64 #include <sys/sysent.h>
65 #include <sys/taskqueue.h>
66 #include <sys/domain.h>
67 #include <sys/jail.h>
68 #include <sys/priv.h>
69 
70 #ifdef DDB
71 #include <ddb/ddb.h>
72 #endif
73 
74 #include <vm/uma.h>
75 
76 #include <net/bpf.h>
77 #include <net/if.h>
78 #include <net/if_arp.h>
79 #include <net/if_clone.h>
80 #include <net/if_dl.h>
81 #include <net/if_strings.h>
82 #include <net/if_types.h>
83 #include <net/if_var.h>
84 #include <net/if_media.h>
85 #include <net/if_mib.h>
86 #include <net/if_private.h>
87 #include <net/if_vlan_var.h>
88 #include <net/radix.h>
89 #include <net/route.h>
90 #include <net/route/route_ctl.h>
91 #include <net/vnet.h>
92 
93 #if defined(INET) || defined(INET6)
94 #include <net/ethernet.h>
95 #include <netinet/in.h>
96 #include <netinet/in_var.h>
97 #include <netinet/ip.h>
98 #include <netinet/ip_carp.h>
99 #ifdef INET
100 #include <net/debugnet.h>
101 #include <netinet/if_ether.h>
102 #endif /* INET */
103 #ifdef INET6
104 #include <netinet6/in6_var.h>
105 #endif /* INET6 */
106 #endif /* INET || INET6 */
107 
108 #include <security/mac/mac_framework.h>
109 
110 /*
111  * Consumers of struct ifreq such as tcpdump assume no pad between ifr_name
112  * and ifr_ifru when it is used in SIOCGIFCONF.
113  */
114 _Static_assert(sizeof(((struct ifreq *)0)->ifr_name) ==
115     offsetof(struct ifreq, ifr_ifru), "gap between ifr_name and ifr_ifru");
116 
117 __read_mostly epoch_t net_epoch_preempt;
118 #ifdef COMPAT_FREEBSD32
119 #include <sys/mount.h>
120 #include <compat/freebsd32/freebsd32.h>
121 
122 struct ifreq_buffer32 {
123 	uint32_t	length;		/* (size_t) */
124 	uint32_t	buffer;		/* (void *) */
125 };
126 
127 /*
128  * Interface request structure used for socket
129  * ioctl's.  All interface ioctl's must have parameter
130  * definitions which begin with ifr_name.  The
131  * remainder may be interface specific.
132  */
133 struct ifreq32 {
134 	char	ifr_name[IFNAMSIZ];		/* if name, e.g. "en0" */
135 	union {
136 		struct sockaddr	ifru_addr;
137 		struct sockaddr	ifru_dstaddr;
138 		struct sockaddr	ifru_broadaddr;
139 		struct ifreq_buffer32 ifru_buffer;
140 		short		ifru_flags[2];
141 		short		ifru_index;
142 		int		ifru_jid;
143 		int		ifru_metric;
144 		int		ifru_mtu;
145 		int		ifru_phys;
146 		int		ifru_media;
147 		uint32_t	ifru_data;
148 		int		ifru_cap[2];
149 		u_int		ifru_fib;
150 		u_char		ifru_vlan_pcp;
151 	} ifr_ifru;
152 };
153 CTASSERT(sizeof(struct ifreq) == sizeof(struct ifreq32));
154 CTASSERT(__offsetof(struct ifreq, ifr_ifru) ==
155     __offsetof(struct ifreq32, ifr_ifru));
156 
157 struct ifconf32 {
158 	int32_t	ifc_len;
159 	union {
160 		uint32_t	ifcu_buf;
161 		uint32_t	ifcu_req;
162 	} ifc_ifcu;
163 };
164 #define	SIOCGIFCONF32	_IOWR('i', 36, struct ifconf32)
165 
166 struct ifdrv32 {
167 	char		ifd_name[IFNAMSIZ];
168 	uint32_t	ifd_cmd;
169 	uint32_t	ifd_len;
170 	uint32_t	ifd_data;
171 };
172 #define SIOCSDRVSPEC32	_IOC_NEWTYPE(SIOCSDRVSPEC, struct ifdrv32)
173 #define SIOCGDRVSPEC32	_IOC_NEWTYPE(SIOCGDRVSPEC, struct ifdrv32)
174 
175 struct ifgroupreq32 {
176 	char	ifgr_name[IFNAMSIZ];
177 	u_int	ifgr_len;
178 	union {
179 		char		ifgru_group[IFNAMSIZ];
180 		uint32_t	ifgru_groups;
181 	} ifgr_ifgru;
182 };
183 #define	SIOCAIFGROUP32	_IOC_NEWTYPE(SIOCAIFGROUP, struct ifgroupreq32)
184 #define	SIOCGIFGROUP32	_IOC_NEWTYPE(SIOCGIFGROUP, struct ifgroupreq32)
185 #define	SIOCDIFGROUP32	_IOC_NEWTYPE(SIOCDIFGROUP, struct ifgroupreq32)
186 #define	SIOCGIFGMEMB32	_IOC_NEWTYPE(SIOCGIFGMEMB, struct ifgroupreq32)
187 
188 struct ifmediareq32 {
189 	char		ifm_name[IFNAMSIZ];
190 	int		ifm_current;
191 	int		ifm_mask;
192 	int		ifm_status;
193 	int		ifm_active;
194 	int		ifm_count;
195 	uint32_t	ifm_ulist;	/* (int *) */
196 };
197 #define	SIOCGIFMEDIA32	_IOC_NEWTYPE(SIOCGIFMEDIA, struct ifmediareq32)
198 #define	SIOCGIFXMEDIA32	_IOC_NEWTYPE(SIOCGIFXMEDIA, struct ifmediareq32)
199 #endif /* COMPAT_FREEBSD32 */
200 
201 union ifreq_union {
202 	struct ifreq	ifr;
203 #ifdef COMPAT_FREEBSD32
204 	struct ifreq32	ifr32;
205 #endif
206 };
207 
208 SYSCTL_NODE(_net, PF_LINK, link, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
209     "Link layers");
210 SYSCTL_NODE(_net_link, 0, generic, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
211     "Generic link-management");
212 
213 SYSCTL_INT(_net_link, OID_AUTO, ifqmaxlen, CTLFLAG_RDTUN,
214     &ifqmaxlen, 0, "max send queue size");
215 
216 /* Log link state change events */
217 static int log_link_state_change = 1;
218 
219 SYSCTL_INT(_net_link, OID_AUTO, log_link_state_change, CTLFLAG_RW,
220 	&log_link_state_change, 0,
221 	"log interface link state change events");
222 
223 /* Log promiscuous mode change events */
224 static int log_promisc_mode_change = 1;
225 
226 SYSCTL_INT(_net_link, OID_AUTO, log_promisc_mode_change, CTLFLAG_RDTUN,
227 	&log_promisc_mode_change, 1,
228 	"log promiscuous mode change events");
229 
230 /* Interface description */
231 static unsigned int ifdescr_maxlen = 1024;
232 SYSCTL_UINT(_net, OID_AUTO, ifdescr_maxlen, CTLFLAG_RW,
233 	&ifdescr_maxlen, 0,
234 	"administrative maximum length for interface description");
235 
236 static MALLOC_DEFINE(M_IFDESCR, "ifdescr", "ifnet descriptions");
237 
238 /* global sx for non-critical path ifdescr */
239 static struct sx ifdescr_sx;
240 SX_SYSINIT(ifdescr_sx, &ifdescr_sx, "ifnet descr");
241 
242 void	(*lagg_linkstate_p)(struct ifnet *ifp, int state);
243 /* These are external hooks for CARP. */
244 void	(*carp_linkstate_p)(struct ifnet *ifp);
245 void	(*carp_demote_adj_p)(int, char *);
246 int	(*carp_master_p)(struct ifaddr *);
247 #if defined(INET) || defined(INET6)
248 int	(*carp_forus_p)(struct ifnet *ifp, u_char *dhost);
249 int	(*carp_output_p)(struct ifnet *ifp, struct mbuf *m,
250     const struct sockaddr *sa);
251 int	(*carp_attach_p)(struct ifaddr *, int);
252 void	(*carp_detach_p)(struct ifaddr *, bool);
253 #endif
254 #ifdef INET
255 int	(*carp_iamatch_p)(struct ifaddr *, uint8_t **);
256 #endif
257 #ifdef INET6
258 struct ifaddr *(*carp_iamatch6_p)(struct ifnet *ifp, struct in6_addr *taddr6);
259 caddr_t	(*carp_macmatch6_p)(struct ifnet *ifp, struct mbuf *m,
260     const struct in6_addr *taddr);
261 #endif
262 
263 struct mbuf *(*tbr_dequeue_ptr)(struct ifaltq *, int) = NULL;
264 
265 /*
266  * XXX: Style; these should be sorted alphabetically, and unprototyped
267  * static functions should be prototyped. Currently they are sorted by
268  * declaration order.
269  */
270 static int	ifconf(u_long, caddr_t);
271 static void	if_input_default(struct ifnet *, struct mbuf *);
272 static int	if_requestencap_default(struct ifnet *, struct if_encap_req *);
273 static int	if_setflag(struct ifnet *, int, int, int *, int);
274 static int	if_transmit_default(struct ifnet *ifp, struct mbuf *m);
275 static int	if_delmulti_locked(struct ifnet *, struct ifmultiaddr *, int);
276 static void	do_link_state_change(void *, int);
277 static int	if_getgroup(struct ifgroupreq *, struct ifnet *);
278 static int	if_getgroupmembers(struct ifgroupreq *);
279 static void	if_delgroups(struct ifnet *);
280 static void	if_attach_internal(struct ifnet *, bool);
281 static void	if_detach_internal(struct ifnet *, bool);
282 static void	if_siocaddmulti(void *, int);
283 static void	if_link_ifnet(struct ifnet *);
284 static bool	if_unlink_ifnet(struct ifnet *, bool);
285 #ifdef VIMAGE
286 static void	if_vmove(struct ifnet *, struct vnet *);
287 #endif
288 
289 #ifdef INET6
290 /*
291  * XXX: declare here to avoid to include many inet6 related files..
292  * should be more generalized?
293  */
294 extern void	nd6_setmtu(struct ifnet *);
295 #endif
296 
297 /* ipsec helper hooks */
298 VNET_DEFINE(struct hhook_head *, ipsec_hhh_in[HHOOK_IPSEC_COUNT]);
299 VNET_DEFINE(struct hhook_head *, ipsec_hhh_out[HHOOK_IPSEC_COUNT]);
300 
301 int	ifqmaxlen = IFQ_MAXLEN;
302 VNET_DEFINE(struct ifnethead, ifnet);	/* depend on static init XXX */
303 VNET_DEFINE(struct ifgrouphead, ifg_head);
304 
305 /* Table of ifnet by index. */
306 static int if_index;
307 static int if_indexlim = 8;
308 static struct ifindex_entry {
309 	struct ifnet	*ife_ifnet;
310 	uint16_t	ife_gencnt;
311 } *ifindex_table;
312 
313 SYSCTL_NODE(_net_link_generic, IFMIB_SYSTEM, system,
314     CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
315     "Variables global to all interfaces");
316 static int
sysctl_ifcount(SYSCTL_HANDLER_ARGS)317 sysctl_ifcount(SYSCTL_HANDLER_ARGS)
318 {
319 	int rv = 0;
320 
321 	IFNET_RLOCK();
322 	for (int i = 1; i <= if_index; i++)
323 		if (ifindex_table[i].ife_ifnet != NULL &&
324 		    ifindex_table[i].ife_ifnet->if_vnet == curvnet)
325 			rv = i;
326 	IFNET_RUNLOCK();
327 
328 	return (sysctl_handle_int(oidp, &rv, 0, req));
329 }
330 SYSCTL_PROC(_net_link_generic_system, IFMIB_IFCOUNT, ifcount,
331     CTLTYPE_INT | CTLFLAG_VNET | CTLFLAG_RD, NULL, 0, sysctl_ifcount, "I",
332     "Maximum known interface index");
333 
334 /*
335  * The global network interface list (V_ifnet) and related state (such as
336  * if_index, if_indexlim, and ifindex_table) are protected by an sxlock.
337  * This may be acquired to stabilise the list, or we may rely on NET_EPOCH.
338  */
339 struct sx ifnet_sxlock;
340 SX_SYSINIT_FLAGS(ifnet_sx, &ifnet_sxlock, "ifnet_sx", SX_RECURSE);
341 
342 struct sx ifnet_detach_sxlock;
343 SX_SYSINIT_FLAGS(ifnet_detach, &ifnet_detach_sxlock, "ifnet_detach_sx",
344     SX_RECURSE);
345 
346 static	if_com_alloc_t *if_com_alloc[256];
347 static	if_com_free_t *if_com_free[256];
348 
349 static MALLOC_DEFINE(M_IFNET, "ifnet", "interface internals");
350 MALLOC_DEFINE(M_IFADDR, "ifaddr", "interface address");
351 MALLOC_DEFINE(M_IFMADDR, "ether_multi", "link-level multicast address");
352 
353 struct ifnet *
ifnet_byindex(u_int idx)354 ifnet_byindex(u_int idx)
355 {
356 	struct ifnet *ifp;
357 
358 	NET_EPOCH_ASSERT();
359 
360 	if (__predict_false(idx > if_index))
361 		return (NULL);
362 
363 	ifp = ck_pr_load_ptr(&ifindex_table[idx].ife_ifnet);
364 
365 	if (curvnet != NULL && ifp != NULL && ifp->if_vnet != curvnet)
366 		ifp = NULL;
367 
368 	return (ifp);
369 }
370 
371 struct ifnet *
ifnet_byindex_ref(u_int idx)372 ifnet_byindex_ref(u_int idx)
373 {
374 	struct ifnet *ifp;
375 
376 	ifp = ifnet_byindex(idx);
377 	if (ifp == NULL || (ifp->if_flags & IFF_DYING))
378 		return (NULL);
379 	if (!if_try_ref(ifp))
380 		return (NULL);
381 	return (ifp);
382 }
383 
384 struct ifnet *
ifnet_byindexgen(uint16_t idx,uint16_t gen)385 ifnet_byindexgen(uint16_t idx, uint16_t gen)
386 {
387 	struct ifnet *ifp;
388 
389 	NET_EPOCH_ASSERT();
390 
391 	if (__predict_false(idx > if_index))
392 		return (NULL);
393 
394 	ifp = ck_pr_load_ptr(&ifindex_table[idx].ife_ifnet);
395 
396 	if (ifindex_table[idx].ife_gencnt == gen)
397 		return (ifp);
398 	else
399 		return (NULL);
400 }
401 
402 /*
403  * Network interface utility routines.
404  *
405  * Routines with ifa_ifwith* names take sockaddr *'s as
406  * parameters.
407  */
408 
409 static void
if_init_idxtable(void * arg __unused)410 if_init_idxtable(void *arg __unused)
411 {
412 
413 	ifindex_table = malloc(if_indexlim * sizeof(*ifindex_table),
414 	    M_IFNET, M_WAITOK | M_ZERO);
415 }
416 SYSINIT(if_init, SI_SUB_INIT_IF, SI_ORDER_SECOND, if_init_idxtable, NULL);
417 
418 static void
vnet_if_init(const void * unused __unused)419 vnet_if_init(const void *unused __unused)
420 {
421 
422 	CK_STAILQ_INIT(&V_ifnet);
423 	CK_STAILQ_INIT(&V_ifg_head);
424 }
425 VNET_SYSINIT(vnet_if_init, SI_SUB_INIT_IF, SI_ORDER_SECOND, vnet_if_init,
426     NULL);
427 
428 static void
if_link_ifnet(struct ifnet * ifp)429 if_link_ifnet(struct ifnet *ifp)
430 {
431 	IFNET_WLOCK();
432 
433 	MPASS(refcount_load(&ifp->if_refcount) > 0);
434 	MPASS(ifp->if_vnet == curvnet);
435 	MPASS(ifindex_table[ifp->if_index].ife_ifnet == ifp);
436 
437 	CK_STAILQ_INSERT_TAIL(&V_ifnet, ifp, if_link);
438 #ifdef VIMAGE
439 	curvnet->vnet_ifcnt++;
440 #endif
441 	IFNET_WUNLOCK();
442 }
443 
444 static bool
if_unlink_ifnet(struct ifnet * ifp,bool vmove)445 if_unlink_ifnet(struct ifnet *ifp, bool vmove)
446 {
447 	struct ifnet *iter;
448 	int found = 0;
449 
450 	sx_assert(&ifnet_detach_sxlock, SX_XLOCKED);
451 	IFNET_WLOCK();
452 	CK_STAILQ_FOREACH(iter, &V_ifnet, if_link)
453 		if (iter == ifp) {
454 			MPASS(refcount_load(&ifp->if_refcount) > 0);
455 			MPASS(ifp->if_vnet == curvnet);
456 			MPASS(ifindex_table[ifp->if_index].ife_ifnet == ifp);
457 
458 			CK_STAILQ_REMOVE(&V_ifnet, ifp, ifnet, if_link);
459 #ifdef VIMAGE
460 			curvnet->vnet_ifcnt--;
461 #endif
462 			if (!vmove)
463 				ifp->if_flags |= IFF_DYING;
464 			found = 1;
465 			break;
466 		}
467 	IFNET_WUNLOCK();
468 
469 	return (found);
470 }
471 
472 #ifdef VIMAGE
473 static void
vnet_if_return(const void * unused __unused)474 vnet_if_return(const void *unused __unused)
475 {
476 	struct ifnet *ifp, *nifp;
477 	struct ifnet **pending;
478 	int found __diagused;
479 	int i;
480 
481 	i = 0;
482 
483 	/* The lock has already been aquired in vnet_destroy() */
484 	sx_assert(&ifnet_detach_sxlock, SX_XLOCKED);
485 	/*
486 	 * We need to protect our access to the V_ifnet tailq. Ordinarily we'd
487 	 * enter NET_EPOCH, but that's not possible, because if_vmove() calls
488 	 * if_detach_internal(), which waits for NET_EPOCH callbacks to
489 	 * complete. We can't do that from within NET_EPOCH.
490 	 *
491 	 * However, we can also use the IFNET_xLOCK, which is the V_ifnet
492 	 * read/write lock. We cannot hold the lock as we call if_vmove()
493 	 * though, as that presents LOR w.r.t ifnet_sx, in_multi_sx and iflib
494 	 * ctx lock.
495 	 */
496 	IFNET_WLOCK();
497 
498 	pending = malloc(sizeof(struct ifnet *) * curvnet->vnet_ifcnt,
499 	    M_IFNET, M_WAITOK | M_ZERO);
500 
501 	/* Return all inherited interfaces to their parent vnets. */
502 	CK_STAILQ_FOREACH_SAFE(ifp, &V_ifnet, if_link, nifp) {
503 		if (ifp->if_home_vnet != ifp->if_vnet) {
504 			found = if_unlink_ifnet(ifp, true);
505 			MPASS(found);
506 
507 			pending[i++] = ifp;
508 		}
509 	}
510 	IFNET_WUNLOCK();
511 
512 	for (int j = 0; j < i; j++) {
513 		if_vmove(pending[j], pending[j]->if_home_vnet);
514 	}
515 
516 	free(pending, M_IFNET);
517 }
518 VNET_SYSUNINIT(vnet_if_return, SI_SUB_VNET_DONE, SI_ORDER_ANY,
519     vnet_if_return, NULL);
520 #endif
521 
522 /*
523  * Allocate a struct ifnet and an index for an interface.  A layer 2
524  * common structure will also be allocated if an allocation routine is
525  * registered for the passed type.
526  */
527 static struct ifnet *
if_alloc_domain(u_char type,int numa_domain)528 if_alloc_domain(u_char type, int numa_domain)
529 {
530 	struct ifnet *ifp;
531 	u_short idx;
532 
533 	KASSERT(numa_domain <= IF_NODOM, ("numa_domain too large"));
534 	if (numa_domain == IF_NODOM)
535 		ifp = malloc(sizeof(struct ifnet), M_IFNET,
536 		    M_WAITOK | M_ZERO);
537 	else
538 		ifp = malloc_domainset(sizeof(struct ifnet), M_IFNET,
539 		    DOMAINSET_PREF(numa_domain), M_WAITOK | M_ZERO);
540 	ifp->if_type = type;
541 	ifp->if_alloctype = type;
542 	ifp->if_numa_domain = numa_domain;
543 #ifdef VIMAGE
544 	ifp->if_vnet = curvnet;
545 #endif
546 	if (if_com_alloc[type] != NULL) {
547 		ifp->if_l2com = if_com_alloc[type](type, ifp);
548 		KASSERT(ifp->if_l2com, ("%s: if_com_alloc[%u] failed", __func__,
549 		    type));
550 	}
551 
552 	IF_ADDR_LOCK_INIT(ifp);
553 	TASK_INIT(&ifp->if_linktask, 0, do_link_state_change, ifp);
554 	TASK_INIT(&ifp->if_addmultitask, 0, if_siocaddmulti, ifp);
555 	CK_STAILQ_INIT(&ifp->if_addrhead);
556 	CK_STAILQ_INIT(&ifp->if_multiaddrs);
557 	CK_STAILQ_INIT(&ifp->if_groups);
558 #ifdef MAC
559 	mac_ifnet_init(ifp);
560 #endif
561 	ifq_init(&ifp->if_snd, ifp);
562 
563 	refcount_init(&ifp->if_refcount, 1);	/* Index reference. */
564 	for (int i = 0; i < IFCOUNTERS; i++)
565 		ifp->if_counters[i] = counter_u64_alloc(M_WAITOK);
566 	ifp->if_get_counter = if_get_counter_default;
567 	ifp->if_pcp = IFNET_PCP_NONE;
568 
569 	/* Allocate an ifindex array entry. */
570 	IFNET_WLOCK();
571 	/*
572 	 * Try to find an empty slot below if_index.  If we fail, take the
573 	 * next slot.
574 	 */
575 	for (idx = 1; idx <= if_index; idx++) {
576 		if (ifindex_table[idx].ife_ifnet == NULL)
577 			break;
578 	}
579 
580 	/* Catch if_index overflow. */
581 	if (idx >= if_indexlim) {
582 		struct ifindex_entry *new, *old;
583 		int newlim;
584 
585 		newlim = if_indexlim * 2;
586 		new = malloc(newlim * sizeof(*new), M_IFNET, M_WAITOK | M_ZERO);
587 		memcpy(new, ifindex_table, if_indexlim * sizeof(*new));
588 		old = ifindex_table;
589 		ck_pr_store_ptr(&ifindex_table, new);
590 		if_indexlim = newlim;
591 		NET_EPOCH_WAIT();
592 		free(old, M_IFNET);
593 	}
594 	if (idx > if_index)
595 		if_index = idx;
596 
597 	ifp->if_index = idx;
598 	ifp->if_idxgen = ifindex_table[idx].ife_gencnt;
599 	ck_pr_store_ptr(&ifindex_table[idx].ife_ifnet, ifp);
600 	IFNET_WUNLOCK();
601 
602 	return (ifp);
603 }
604 
605 struct ifnet *
if_alloc_dev(u_char type,device_t dev)606 if_alloc_dev(u_char type, device_t dev)
607 {
608 	int numa_domain;
609 
610 	if (dev == NULL || bus_get_domain(dev, &numa_domain) != 0)
611 		return (if_alloc_domain(type, IF_NODOM));
612 	return (if_alloc_domain(type, numa_domain));
613 }
614 
615 struct ifnet *
if_alloc(u_char type)616 if_alloc(u_char type)
617 {
618 
619 	return (if_alloc_domain(type, IF_NODOM));
620 }
621 /*
622  * Do the actual work of freeing a struct ifnet, and layer 2 common
623  * structure.  This call is made when the network epoch guarantees
624  * us that nobody holds a pointer to the interface.
625  */
626 static void
if_free_deferred(epoch_context_t ctx)627 if_free_deferred(epoch_context_t ctx)
628 {
629 	struct ifnet *ifp = __containerof(ctx, struct ifnet, if_epoch_ctx);
630 
631 	KASSERT((ifp->if_flags & IFF_DYING),
632 	    ("%s: interface not dying", __func__));
633 
634 	if (if_com_free[ifp->if_alloctype] != NULL)
635 		if_com_free[ifp->if_alloctype](ifp->if_l2com,
636 		    ifp->if_alloctype);
637 
638 #ifdef MAC
639 	mac_ifnet_destroy(ifp);
640 #endif /* MAC */
641 	IF_ADDR_LOCK_DESTROY(ifp);
642 	ifq_delete(&ifp->if_snd);
643 
644 	for (int i = 0; i < IFCOUNTERS; i++)
645 		counter_u64_free(ifp->if_counters[i]);
646 
647 	if_freedescr(ifp->if_description);
648 	free(ifp->if_hw_addr, M_IFADDR);
649 	free(ifp, M_IFNET);
650 }
651 
652 /*
653  * Deregister an interface and free the associated storage.
654  */
655 void
if_free(struct ifnet * ifp)656 if_free(struct ifnet *ifp)
657 {
658 
659 	ifp->if_flags |= IFF_DYING;			/* XXX: Locking */
660 
661 	/*
662 	 * XXXGL: An interface index is really an alias to ifp pointer.
663 	 * Why would we clear the alias now, and not in the deferred
664 	 * context?  Indeed there is nothing wrong with some network
665 	 * thread obtaining ifp via ifnet_byindex() inside the network
666 	 * epoch and then dereferencing ifp while we perform if_free(),
667 	 * and after if_free() finished, too.
668 	 *
669 	 * This early index freeing was important back when ifindex was
670 	 * virtualized and interface would outlive the vnet.
671 	 */
672 	IFNET_WLOCK();
673 	MPASS(ifindex_table[ifp->if_index].ife_ifnet == ifp);
674 	ck_pr_store_ptr(&ifindex_table[ifp->if_index].ife_ifnet, NULL);
675 	ifindex_table[ifp->if_index].ife_gencnt++;
676 	while (if_index > 0 && ifindex_table[if_index].ife_ifnet == NULL)
677 		if_index--;
678 	IFNET_WUNLOCK();
679 
680 	if (refcount_release(&ifp->if_refcount))
681 		NET_EPOCH_CALL(if_free_deferred, &ifp->if_epoch_ctx);
682 }
683 
684 /*
685  * Interfaces to keep an ifnet type-stable despite the possibility of the
686  * driver calling if_free().  If there are additional references, we defer
687  * freeing the underlying data structure.
688  */
689 void
if_ref(struct ifnet * ifp)690 if_ref(struct ifnet *ifp)
691 {
692 	u_int old __diagused;
693 
694 	/* We don't assert the ifnet list lock here, but arguably should. */
695 	old = refcount_acquire(&ifp->if_refcount);
696 	KASSERT(old > 0, ("%s: ifp %p has 0 refs", __func__, ifp));
697 }
698 
699 bool
if_try_ref(struct ifnet * ifp)700 if_try_ref(struct ifnet *ifp)
701 {
702 	NET_EPOCH_ASSERT();
703 	return (refcount_acquire_if_not_zero(&ifp->if_refcount));
704 }
705 
706 void
if_rele(struct ifnet * ifp)707 if_rele(struct ifnet *ifp)
708 {
709 
710 	if (!refcount_release(&ifp->if_refcount))
711 		return;
712 	NET_EPOCH_CALL(if_free_deferred, &ifp->if_epoch_ctx);
713 }
714 
715 void
ifq_init(struct ifaltq * ifq,struct ifnet * ifp)716 ifq_init(struct ifaltq *ifq, struct ifnet *ifp)
717 {
718 
719 	mtx_init(&ifq->ifq_mtx, ifp->if_xname, "if send queue", MTX_DEF);
720 
721 	if (ifq->ifq_maxlen == 0)
722 		ifq->ifq_maxlen = ifqmaxlen;
723 
724 	ifq->altq_type = 0;
725 	ifq->altq_disc = NULL;
726 	ifq->altq_flags &= ALTQF_CANTCHANGE;
727 	ifq->altq_tbr  = NULL;
728 	ifq->altq_ifp  = ifp;
729 }
730 
731 void
ifq_delete(struct ifaltq * ifq)732 ifq_delete(struct ifaltq *ifq)
733 {
734 	mtx_destroy(&ifq->ifq_mtx);
735 }
736 
737 /*
738  * Perform generic interface initialization tasks and attach the interface
739  * to the list of "active" interfaces.  If vmove flag is set on entry
740  * to if_attach_internal(), perform only a limited subset of initialization
741  * tasks, given that we are moving from one vnet to another an ifnet which
742  * has already been fully initialized.
743  *
744  * Note that if_detach_internal() removes group membership unconditionally
745  * even when vmove flag is set, and if_attach_internal() adds only IFG_ALL.
746  * Thus, when if_vmove() is applied to a cloned interface, group membership
747  * is lost while a cloned one always joins a group whose name is
748  * ifc->ifc_name.  To recover this after if_detach_internal() and
749  * if_attach_internal(), the cloner should be specified to
750  * if_attach_internal() via ifc.  If it is non-NULL, if_attach_internal()
751  * attempts to join a group whose name is ifc->ifc_name.
752  *
753  * XXX:
754  *  - The decision to return void and thus require this function to
755  *    succeed is questionable.
756  *  - We should probably do more sanity checking.  For instance we don't
757  *    do anything to insure if_xname is unique or non-empty.
758  */
759 void
if_attach(struct ifnet * ifp)760 if_attach(struct ifnet *ifp)
761 {
762 
763 	if_attach_internal(ifp, false);
764 }
765 
766 /*
767  * Compute the least common TSO limit.
768  */
769 void
if_hw_tsomax_common(if_t ifp,struct ifnet_hw_tsomax * pmax)770 if_hw_tsomax_common(if_t ifp, struct ifnet_hw_tsomax *pmax)
771 {
772 	/*
773 	 * 1) If there is no limit currently, take the limit from
774 	 * the network adapter.
775 	 *
776 	 * 2) If the network adapter has a limit below the current
777 	 * limit, apply it.
778 	 */
779 	if (pmax->tsomaxbytes == 0 || (ifp->if_hw_tsomax != 0 &&
780 	    ifp->if_hw_tsomax < pmax->tsomaxbytes)) {
781 		pmax->tsomaxbytes = ifp->if_hw_tsomax;
782 	}
783 	if (pmax->tsomaxsegcount == 0 || (ifp->if_hw_tsomaxsegcount != 0 &&
784 	    ifp->if_hw_tsomaxsegcount < pmax->tsomaxsegcount)) {
785 		pmax->tsomaxsegcount = ifp->if_hw_tsomaxsegcount;
786 	}
787 	if (pmax->tsomaxsegsize == 0 || (ifp->if_hw_tsomaxsegsize != 0 &&
788 	    ifp->if_hw_tsomaxsegsize < pmax->tsomaxsegsize)) {
789 		pmax->tsomaxsegsize = ifp->if_hw_tsomaxsegsize;
790 	}
791 }
792 
793 /*
794  * Update TSO limit of a network adapter.
795  *
796  * Returns zero if no change. Else non-zero.
797  */
798 int
if_hw_tsomax_update(if_t ifp,struct ifnet_hw_tsomax * pmax)799 if_hw_tsomax_update(if_t ifp, struct ifnet_hw_tsomax *pmax)
800 {
801 	int retval = 0;
802 	if (ifp->if_hw_tsomax != pmax->tsomaxbytes) {
803 		ifp->if_hw_tsomax = pmax->tsomaxbytes;
804 		retval++;
805 	}
806 	if (ifp->if_hw_tsomaxsegsize != pmax->tsomaxsegsize) {
807 		ifp->if_hw_tsomaxsegsize = pmax->tsomaxsegsize;
808 		retval++;
809 	}
810 	if (ifp->if_hw_tsomaxsegcount != pmax->tsomaxsegcount) {
811 		ifp->if_hw_tsomaxsegcount = pmax->tsomaxsegcount;
812 		retval++;
813 	}
814 	return (retval);
815 }
816 
817 static void
if_attach_internal(struct ifnet * ifp,bool vmove)818 if_attach_internal(struct ifnet *ifp, bool vmove)
819 {
820 	unsigned socksize, ifasize;
821 	int namelen, masklen;
822 	struct sockaddr_dl *sdl;
823 	struct ifaddr *ifa;
824 
825 	MPASS(ifindex_table[ifp->if_index].ife_ifnet == ifp);
826 
827 #ifdef VIMAGE
828 	CURVNET_ASSERT_SET();
829 	ifp->if_vnet = curvnet;
830 	if (ifp->if_home_vnet == NULL)
831 		ifp->if_home_vnet = curvnet;
832 #endif
833 
834 	if_addgroup(ifp, IFG_ALL);
835 
836 #ifdef VIMAGE
837 	/* Restore group membership for cloned interface. */
838 	if (vmove)
839 		if_clone_restoregroup(ifp);
840 #endif
841 
842 	getmicrotime(&ifp->if_lastchange);
843 	ifp->if_epoch = time_uptime;
844 
845 	KASSERT((ifp->if_transmit == NULL && ifp->if_qflush == NULL) ||
846 	    (ifp->if_transmit != NULL && ifp->if_qflush != NULL),
847 	    ("transmit and qflush must both either be set or both be NULL"));
848 	if (ifp->if_transmit == NULL) {
849 		ifp->if_transmit = if_transmit_default;
850 		ifp->if_qflush = if_qflush;
851 	}
852 	if (ifp->if_input == NULL)
853 		ifp->if_input = if_input_default;
854 
855 	if (ifp->if_requestencap == NULL)
856 		ifp->if_requestencap = if_requestencap_default;
857 
858 	if (!vmove) {
859 #ifdef MAC
860 		mac_ifnet_create(ifp);
861 #endif
862 
863 		/*
864 		 * Create a Link Level name for this device.
865 		 */
866 		namelen = strlen(ifp->if_xname);
867 		/*
868 		 * Always save enough space for any possible name so we
869 		 * can do a rename in place later.
870 		 */
871 		masklen = offsetof(struct sockaddr_dl, sdl_data[0]) + IFNAMSIZ;
872 		socksize = masklen + ifp->if_addrlen;
873 		if (socksize < sizeof(*sdl))
874 			socksize = sizeof(*sdl);
875 		socksize = roundup2(socksize, sizeof(long));
876 		ifasize = sizeof(*ifa) + 2 * socksize;
877 		ifa = ifa_alloc(ifasize, M_WAITOK);
878 		sdl = (struct sockaddr_dl *)(ifa + 1);
879 		sdl->sdl_len = socksize;
880 		sdl->sdl_family = AF_LINK;
881 		bcopy(ifp->if_xname, sdl->sdl_data, namelen);
882 		sdl->sdl_nlen = namelen;
883 		sdl->sdl_index = ifp->if_index;
884 		sdl->sdl_type = ifp->if_type;
885 		ifp->if_addr = ifa;
886 		ifa->ifa_ifp = ifp;
887 		ifa->ifa_addr = (struct sockaddr *)sdl;
888 		sdl = (struct sockaddr_dl *)(socksize + (caddr_t)sdl);
889 		ifa->ifa_netmask = (struct sockaddr *)sdl;
890 		sdl->sdl_len = masklen;
891 		while (namelen != 0)
892 			sdl->sdl_data[--namelen] = 0xff;
893 		CK_STAILQ_INSERT_HEAD(&ifp->if_addrhead, ifa, ifa_link);
894 		/* Reliably crash if used uninitialized. */
895 		ifp->if_broadcastaddr = NULL;
896 
897 		if (ifp->if_type == IFT_ETHER) {
898 			ifp->if_hw_addr = malloc(ifp->if_addrlen, M_IFADDR,
899 			    M_WAITOK | M_ZERO);
900 		}
901 
902 #if defined(INET) || defined(INET6)
903 		/* Use defaults for TSO, if nothing is set */
904 		if (ifp->if_hw_tsomax == 0 &&
905 		    ifp->if_hw_tsomaxsegcount == 0 &&
906 		    ifp->if_hw_tsomaxsegsize == 0) {
907 			/*
908 			 * The TSO defaults needs to be such that an
909 			 * NFS mbuf list of 35 mbufs totalling just
910 			 * below 64K works and that a chain of mbufs
911 			 * can be defragged into at most 32 segments:
912 			 */
913 			ifp->if_hw_tsomax = min(IP_MAXPACKET, (32 * MCLBYTES) -
914 			    (ETHER_HDR_LEN + ETHER_VLAN_ENCAP_LEN));
915 			ifp->if_hw_tsomaxsegcount = 35;
916 			ifp->if_hw_tsomaxsegsize = 2048;	/* 2K */
917 
918 			/* XXX some drivers set IFCAP_TSO after ethernet attach */
919 			if (ifp->if_capabilities & IFCAP_TSO) {
920 				if_printf(ifp, "Using defaults for TSO: %u/%u/%u\n",
921 				    ifp->if_hw_tsomax,
922 				    ifp->if_hw_tsomaxsegcount,
923 				    ifp->if_hw_tsomaxsegsize);
924 			}
925 		}
926 #endif
927 	}
928 
929 	EVENTHANDLER_INVOKE(ifnet_arrival_event, ifp);
930 	if_link_ifnet(ifp);
931 	EVENTHANDLER_INVOKE(ifnet_attached_event, ifp);
932 	if (IS_DEFAULT_VNET(curvnet))
933 		devctl_notify("IFNET", ifp->if_xname, "ATTACH", NULL);
934 }
935 
936 static void
if_epochalloc(void * dummy __unused)937 if_epochalloc(void *dummy __unused)
938 {
939 
940 	net_epoch_preempt = epoch_alloc("Net preemptible", EPOCH_PREEMPT);
941 }
942 SYSINIT(ifepochalloc, SI_SUB_EPOCH, SI_ORDER_ANY, if_epochalloc, NULL);
943 
944 /*
945  * Remove any unicast or broadcast network addresses from an interface.
946  */
947 void
if_purgeaddrs(struct ifnet * ifp)948 if_purgeaddrs(struct ifnet *ifp)
949 {
950 	struct ifaddr *ifa;
951 
952 #ifdef INET6
953 	/*
954 	 * Need to leave multicast addresses of proxy NDP llentries
955 	 * before in6_purgeifaddr() because the llentries are keys
956 	 * for in6_multi objects of proxy NDP entries.
957 	 * in6_purgeifaddr()s clean up llentries including proxy NDPs
958 	 * then we would lose the keys if they are called earlier.
959 	 */
960 	in6_purge_proxy_ndp(ifp);
961 #endif
962 	while (1) {
963 		struct epoch_tracker et;
964 
965 		NET_EPOCH_ENTER(et);
966 		CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
967 			if (ifa->ifa_addr->sa_family != AF_LINK)
968 				break;
969 		}
970 		NET_EPOCH_EXIT(et);
971 
972 		if (ifa == NULL)
973 			break;
974 #ifdef INET
975 		/* XXX: Ugly!! ad hoc just for INET */
976 		if (ifa->ifa_addr->sa_family == AF_INET) {
977 			struct ifreq ifr;
978 
979 			bzero(&ifr, sizeof(ifr));
980 			ifr.ifr_addr = *ifa->ifa_addr;
981 			if (in_control(NULL, SIOCDIFADDR, (caddr_t)&ifr, ifp,
982 			    NULL) == 0)
983 				continue;
984 		}
985 #endif /* INET */
986 #ifdef INET6
987 		if (ifa->ifa_addr->sa_family == AF_INET6) {
988 			in6_purgeifaddr((struct in6_ifaddr *)ifa);
989 			/* ifp_addrhead is already updated */
990 			continue;
991 		}
992 #endif /* INET6 */
993 		IF_ADDR_WLOCK(ifp);
994 		CK_STAILQ_REMOVE(&ifp->if_addrhead, ifa, ifaddr, ifa_link);
995 		IF_ADDR_WUNLOCK(ifp);
996 		ifa_free(ifa);
997 	}
998 }
999 
1000 /*
1001  * Remove any multicast network addresses from an interface when an ifnet
1002  * is going away.
1003  */
1004 static void
if_purgemaddrs(struct ifnet * ifp)1005 if_purgemaddrs(struct ifnet *ifp)
1006 {
1007 	struct ifmultiaddr *ifma;
1008 
1009 	IF_ADDR_WLOCK(ifp);
1010 	while (!CK_STAILQ_EMPTY(&ifp->if_multiaddrs)) {
1011 		ifma = CK_STAILQ_FIRST(&ifp->if_multiaddrs);
1012 		CK_STAILQ_REMOVE(&ifp->if_multiaddrs, ifma, ifmultiaddr, ifma_link);
1013 		if_delmulti_locked(ifp, ifma, 1);
1014 	}
1015 	IF_ADDR_WUNLOCK(ifp);
1016 }
1017 
1018 /*
1019  * Detach an interface, removing it from the list of "active" interfaces.
1020  * If vmove flag is set on entry to if_detach_internal(), perform only a
1021  * limited subset of cleanup tasks, given that we are moving an ifnet from
1022  * one vnet to another, where it must be fully operational.
1023  *
1024  * XXXRW: There are some significant questions about event ordering, and
1025  * how to prevent things from starting to use the interface during detach.
1026  */
1027 void
if_detach(struct ifnet * ifp)1028 if_detach(struct ifnet *ifp)
1029 {
1030 	bool found;
1031 
1032 	/*
1033 	 * The driver private data holds a strong reference to the ifnet, and
1034 	 * it is actually the "owner", hence this routine shall never fail.
1035 	 *
1036 	 * Ideally we can loop retrying when we lose race with other threads
1037 	 * those run if_unlink_ifnet(). For simplicity, use ifnet_detach_sxlock
1038 	 * to serialize all the detach / vmove operations.
1039 	 */
1040 	sx_xlock(&ifnet_detach_sxlock);
1041 	CURVNET_SET_QUIET(ifp->if_vnet);
1042 	found = if_unlink_ifnet(ifp, false);
1043 	if (! found)
1044 		panic("%s: interface is not on the active list",
1045 		    ifp->if_xname);
1046 	if_detach_internal(ifp, false);
1047 	CURVNET_RESTORE();
1048 	sx_xunlock(&ifnet_detach_sxlock);
1049 }
1050 
1051 /*
1052  * The vmove flag, if set, indicates that we are called from a callpath
1053  * that is moving an interface to a different vnet instance.
1054  *
1055  * The shutdown flag, if set, indicates that we are called in the
1056  * process of shutting down a vnet instance.  Currently only the
1057  * vnet_if_return SYSUNINIT function sets it.  Note: we can be called
1058  * on a vnet instance shutdown without this flag being set, e.g., when
1059  * the cloned interfaces are destoyed as first thing of teardown.
1060  */
1061 static void
if_detach_internal(struct ifnet * ifp,bool vmove)1062 if_detach_internal(struct ifnet *ifp, bool vmove)
1063 {
1064 	struct ifaddr *ifa;
1065 #ifdef VIMAGE
1066 	bool shutdown;
1067 
1068 	shutdown = VNET_IS_SHUTTING_DOWN(ifp->if_vnet);
1069 #endif
1070 
1071 	sx_assert(&ifnet_detach_sxlock, SX_XLOCKED);
1072 
1073 	/*
1074 	 * At this point we know the interface still was on the ifnet list
1075 	 * and we removed it so we are in a stable state.
1076 	 */
1077 	NET_EPOCH_WAIT();
1078 
1079 	/*
1080 	 * Ensure all pending EPOCH(9) callbacks have been executed. This
1081 	 * fixes issues about late destruction of multicast options
1082 	 * which lead to leave group calls, which in turn access the
1083 	 * belonging ifnet structure:
1084 	 */
1085 	NET_EPOCH_DRAIN_CALLBACKS();
1086 
1087 	/*
1088 	 * In any case (destroy or vmove) detach us from the groups
1089 	 * and remove/wait for pending events on the taskq.
1090 	 * XXX-BZ in theory an interface could still enqueue a taskq change?
1091 	 */
1092 	if_delgroups(ifp);
1093 
1094 	taskqueue_drain(taskqueue_swi, &ifp->if_linktask);
1095 	taskqueue_drain(taskqueue_swi, &ifp->if_addmultitask);
1096 
1097 	if_down(ifp);
1098 
1099 #ifdef VIMAGE
1100 	/*
1101 	 * On VNET shutdown abort here as the stack teardown will do all
1102 	 * the work top-down for us.
1103 	 */
1104 	if (shutdown) {
1105 		/* Give interface users the chance to clean up. */
1106 		EVENTHANDLER_INVOKE(ifnet_departure_event, ifp);
1107 
1108 		/*
1109 		 * In case of a vmove we are done here without error.
1110 		 * If we would signal an error it would lead to the same
1111 		 * abort as if we did not find the ifnet anymore.
1112 		 * if_detach() calls us in void context and does not care
1113 		 * about an early abort notification, so life is splendid :)
1114 		 */
1115 		return;
1116 	}
1117 #endif
1118 
1119 	/*
1120 	 * At this point we are not tearing down a VNET and are either
1121 	 * going to destroy or vmove the interface and have to cleanup
1122 	 * accordingly.
1123 	 */
1124 
1125 	/*
1126 	 * Remove routes and flush queues.
1127 	 */
1128 #ifdef ALTQ
1129 	if (ALTQ_IS_ENABLED(&ifp->if_snd))
1130 		altq_disable(&ifp->if_snd);
1131 	if (ALTQ_IS_ATTACHED(&ifp->if_snd))
1132 		altq_detach(&ifp->if_snd);
1133 #endif
1134 
1135 	rt_flushifroutes(ifp);
1136 
1137 	if_purgeaddrs(ifp);
1138 	EVENTHANDLER_INVOKE(ifnet_departure_event, ifp);
1139 	if_purgemaddrs(ifp);
1140 	if (IS_DEFAULT_VNET(curvnet))
1141 		devctl_notify("IFNET", ifp->if_xname, "DETACH", NULL);
1142 
1143 	if (!vmove) {
1144 		/*
1145 		 * Prevent further calls into the device driver via ifnet.
1146 		 */
1147 		if_dead(ifp);
1148 
1149 		/*
1150 		 * Clean up all addresses.
1151 		 */
1152 		IF_ADDR_WLOCK(ifp);
1153 		if (!CK_STAILQ_EMPTY(&ifp->if_addrhead)) {
1154 			ifa = CK_STAILQ_FIRST(&ifp->if_addrhead);
1155 			CK_STAILQ_REMOVE(&ifp->if_addrhead, ifa, ifaddr, ifa_link);
1156 			IF_ADDR_WUNLOCK(ifp);
1157 			ifa_free(ifa);
1158 		} else
1159 			IF_ADDR_WUNLOCK(ifp);
1160 	}
1161 }
1162 
1163 #ifdef VIMAGE
1164 /*
1165  * if_vmove() performs a limited version of if_detach() in current
1166  * vnet and if_attach()es the ifnet to the vnet specified as 2nd arg.
1167  */
1168 static void
if_vmove(struct ifnet * ifp,struct vnet * new_vnet)1169 if_vmove(struct ifnet *ifp, struct vnet *new_vnet)
1170 {
1171 #ifdef DEV_BPF
1172 	/*
1173 	 * Detach BPF file descriptors from its interface.
1174 	 */
1175 	bpf_ifdetach(ifp);
1176 #endif
1177 
1178 	/*
1179 	 * Detach from current vnet, but preserve LLADDR info, do not
1180 	 * mark as dead etc. so that the ifnet can be reattached later.
1181 	 */
1182 	if_detach_internal(ifp, true);
1183 
1184 	/*
1185 	 * Perform interface-specific reassignment tasks, if provided by
1186 	 * the driver.
1187 	 */
1188 	if (ifp->if_reassign != NULL)
1189 		ifp->if_reassign(ifp, new_vnet, NULL);
1190 
1191 	/*
1192 	 * Switch to the context of the target vnet.
1193 	 */
1194 	CURVNET_SET_QUIET(new_vnet);
1195 	if_attach_internal(ifp, true);
1196 	bpf_vmove(ifp->if_bpf);
1197 	CURVNET_RESTORE();
1198 }
1199 
1200 /*
1201  * Move an ifnet to or from another child prison/vnet, specified by the jail id.
1202  */
1203 static int
if_vmove_loan(struct thread * td,char * ifname,int jid)1204 if_vmove_loan(struct thread *td, char *ifname, int jid)
1205 {
1206 	struct prison *pr;
1207 	struct ifnet *ifp, *difp;
1208 	bool found;
1209 
1210 	MPASS(curthread == td);
1211 	MPASS(curvnet == TD_TO_VNET(td));
1212 
1213 	/*
1214 	 * We check the existence of the interface, and will later try to
1215 	 * unlink it from the "active" list, so it is sufficient to only
1216 	 * hold a weak reference to it.
1217 	 * Be aware that it is unsafe to access any member of it, until it
1218 	 * is proven to be safe to ( say it was on the "active" list ).
1219 	 */
1220 	ifp = ifunit(ifname);
1221 	if (ifp == NULL)
1222 		return (ENXIO);
1223 
1224 	/* Try to find the prison within our visibility. */
1225 	sx_slock(&allprison_lock);
1226 	pr = prison_find_child(td->td_ucred->cr_prison, jid);
1227 	sx_sunlock(&allprison_lock);
1228 	if (pr == NULL)
1229 		return (ENXIO);
1230 	/* Do not try to move the iface from and to the same vnet. */
1231 	if (pr->pr_vnet == TD_TO_VNET(td)) {
1232 		mtx_unlock(&pr->pr_mtx);
1233 		return (EEXIST);
1234 	}
1235 	prison_hold_locked(pr);
1236 	mtx_unlock(&pr->pr_mtx);
1237 
1238 	/* Make sure the named iface does not exists in the dst. prison/vnet. */
1239 	/* XXX Lock interfaces to avoid races. */
1240 	CURVNET_SET_QUIET(pr->pr_vnet);
1241 	difp = ifunit(ifname);
1242 	CURVNET_RESTORE();
1243 	if (difp != NULL) {
1244 		prison_free(pr);
1245 		return (EEXIST);
1246 	}
1247 	sx_xlock(&ifnet_detach_sxlock);
1248 
1249 	found = if_unlink_ifnet(ifp, true);
1250 	if (! found) {
1251 		sx_xunlock(&ifnet_detach_sxlock);
1252 		prison_free(pr);
1253 		return (ENODEV);
1254 	}
1255 
1256 	/* Move the interface into the child jail/vnet. */
1257 	if_vmove(ifp, pr->pr_vnet);
1258 
1259 	/* Report the new if_xname back to the userland. */
1260 	sprintf(ifname, "%s", ifp->if_xname);
1261 
1262 	sx_xunlock(&ifnet_detach_sxlock);
1263 
1264 	prison_free(pr);
1265 	return (0);
1266 }
1267 
1268 static int
if_vmove_reclaim(struct thread * td,char * ifname,int jid)1269 if_vmove_reclaim(struct thread *td, char *ifname, int jid)
1270 {
1271 	struct prison *pr;
1272 	struct vnet *vnet_dst;
1273 	struct ifnet *ifp;
1274 	int found;
1275 
1276 	/* Try to find the prison within our visibility. */
1277 	sx_slock(&allprison_lock);
1278 	pr = prison_find_child(td->td_ucred->cr_prison, jid);
1279 	sx_sunlock(&allprison_lock);
1280 	if (pr == NULL)
1281 		return (ENXIO);
1282 	prison_hold_locked(pr);
1283 	mtx_unlock(&pr->pr_mtx);
1284 
1285 	/* Make sure the named iface exists in the source prison/vnet. */
1286 	CURVNET_SET(pr->pr_vnet);
1287 	ifp = ifunit(ifname);
1288 	if (ifp == NULL) {
1289 		CURVNET_RESTORE();
1290 		prison_free(pr);
1291 		return (ENXIO);
1292 	}
1293 
1294 	/* Do not try to move the iface from and to the same vnet. */
1295 	vnet_dst = TD_TO_VNET(td);
1296 	if (vnet_dst == pr->pr_vnet) {
1297 		CURVNET_RESTORE();
1298 		prison_free(pr);
1299 		return (EEXIST);
1300 	}
1301 
1302 	/* Get interface back from child jail/vnet. */
1303 	sx_xlock(&ifnet_detach_sxlock);
1304 	found = if_unlink_ifnet(ifp, true);
1305 	if (! found) {
1306 		sx_xunlock(&ifnet_detach_sxlock);
1307 		CURVNET_RESTORE();
1308 		prison_free(pr);
1309 		return (ENODEV);
1310 	}
1311 	if_vmove(ifp, vnet_dst);
1312 	sx_xunlock(&ifnet_detach_sxlock);
1313 	CURVNET_RESTORE();
1314 
1315 	/* Report the new if_xname back to the userland. */
1316 	sprintf(ifname, "%s", ifp->if_xname);
1317 
1318 	prison_free(pr);
1319 	return (0);
1320 }
1321 #endif /* VIMAGE */
1322 
1323 /*
1324  * Add a group to an interface
1325  */
1326 int
if_addgroup(struct ifnet * ifp,const char * groupname)1327 if_addgroup(struct ifnet *ifp, const char *groupname)
1328 {
1329 	struct ifg_list		*ifgl;
1330 	struct ifg_group	*ifg = NULL;
1331 	struct ifg_member	*ifgm;
1332 	int 			 new = 0;
1333 
1334 	if (groupname[0] && groupname[strlen(groupname) - 1] >= '0' &&
1335 	    groupname[strlen(groupname) - 1] <= '9')
1336 		return (EINVAL);
1337 
1338 	IFNET_WLOCK();
1339 	CK_STAILQ_FOREACH(ifgl, &ifp->if_groups, ifgl_next)
1340 		if (!strcmp(ifgl->ifgl_group->ifg_group, groupname)) {
1341 			IFNET_WUNLOCK();
1342 			return (EEXIST);
1343 		}
1344 
1345 	if ((ifgl = malloc(sizeof(*ifgl), M_TEMP, M_NOWAIT)) == NULL) {
1346 	    	IFNET_WUNLOCK();
1347 		return (ENOMEM);
1348 	}
1349 
1350 	if ((ifgm = malloc(sizeof(*ifgm), M_TEMP, M_NOWAIT)) == NULL) {
1351 		free(ifgl, M_TEMP);
1352 		IFNET_WUNLOCK();
1353 		return (ENOMEM);
1354 	}
1355 
1356 	CK_STAILQ_FOREACH(ifg, &V_ifg_head, ifg_next)
1357 		if (!strcmp(ifg->ifg_group, groupname))
1358 			break;
1359 
1360 	if (ifg == NULL) {
1361 		if ((ifg = malloc(sizeof(*ifg), M_TEMP, M_NOWAIT)) == NULL) {
1362 			free(ifgl, M_TEMP);
1363 			free(ifgm, M_TEMP);
1364 			IFNET_WUNLOCK();
1365 			return (ENOMEM);
1366 		}
1367 		strlcpy(ifg->ifg_group, groupname, sizeof(ifg->ifg_group));
1368 		ifg->ifg_refcnt = 0;
1369 		CK_STAILQ_INIT(&ifg->ifg_members);
1370 		CK_STAILQ_INSERT_TAIL(&V_ifg_head, ifg, ifg_next);
1371 		new = 1;
1372 	}
1373 
1374 	ifg->ifg_refcnt++;
1375 	ifgl->ifgl_group = ifg;
1376 	ifgm->ifgm_ifp = ifp;
1377 
1378 	CK_STAILQ_INSERT_TAIL(&ifg->ifg_members, ifgm, ifgm_next);
1379 	CK_STAILQ_INSERT_TAIL(&ifp->if_groups, ifgl, ifgl_next);
1380 	IFNET_WUNLOCK();
1381 
1382 	if (new)
1383 		EVENTHANDLER_INVOKE(group_attach_event, ifg);
1384 	EVENTHANDLER_INVOKE(group_change_event, groupname);
1385 
1386 	return (0);
1387 }
1388 
1389 /*
1390  * Helper function to remove a group out of an interface.  Expects the global
1391  * ifnet lock to be write-locked, and drops it before returning.
1392  */
1393 static void
_if_delgroup_locked(struct ifnet * ifp,struct ifg_list * ifgl,const char * groupname)1394 _if_delgroup_locked(struct ifnet *ifp, struct ifg_list *ifgl,
1395     const char *groupname)
1396 {
1397 	struct ifg_member *ifgm;
1398 	bool freeifgl;
1399 
1400 	IFNET_WLOCK_ASSERT();
1401 
1402 	CK_STAILQ_REMOVE(&ifp->if_groups, ifgl, ifg_list, ifgl_next);
1403 
1404 	CK_STAILQ_FOREACH(ifgm, &ifgl->ifgl_group->ifg_members, ifgm_next) {
1405 		if (ifgm->ifgm_ifp == ifp) {
1406 			CK_STAILQ_REMOVE(&ifgl->ifgl_group->ifg_members, ifgm,
1407 			    ifg_member, ifgm_next);
1408 			break;
1409 		}
1410 	}
1411 
1412 	if (--ifgl->ifgl_group->ifg_refcnt == 0) {
1413 		CK_STAILQ_REMOVE(&V_ifg_head, ifgl->ifgl_group, ifg_group,
1414 		    ifg_next);
1415 		freeifgl = true;
1416 	} else {
1417 		freeifgl = false;
1418 	}
1419 	IFNET_WUNLOCK();
1420 
1421 	NET_EPOCH_WAIT();
1422 	EVENTHANDLER_INVOKE(group_change_event, groupname);
1423 	if (freeifgl) {
1424 		EVENTHANDLER_INVOKE(group_detach_event, ifgl->ifgl_group);
1425 		free(ifgl->ifgl_group, M_TEMP);
1426 	}
1427 	free(ifgm, M_TEMP);
1428 	free(ifgl, M_TEMP);
1429 }
1430 
1431 /*
1432  * Remove a group from an interface
1433  */
1434 int
if_delgroup(struct ifnet * ifp,const char * groupname)1435 if_delgroup(struct ifnet *ifp, const char *groupname)
1436 {
1437 	struct ifg_list *ifgl;
1438 
1439 	IFNET_WLOCK();
1440 	CK_STAILQ_FOREACH(ifgl, &ifp->if_groups, ifgl_next)
1441 		if (strcmp(ifgl->ifgl_group->ifg_group, groupname) == 0)
1442 			break;
1443 	if (ifgl == NULL) {
1444 		IFNET_WUNLOCK();
1445 		return (ENOENT);
1446 	}
1447 
1448 	_if_delgroup_locked(ifp, ifgl, groupname);
1449 
1450 	return (0);
1451 }
1452 
1453 /*
1454  * Remove an interface from all groups
1455  */
1456 static void
if_delgroups(struct ifnet * ifp)1457 if_delgroups(struct ifnet *ifp)
1458 {
1459 	struct ifg_list *ifgl;
1460 	char groupname[IFNAMSIZ];
1461 
1462 	IFNET_WLOCK();
1463 	while ((ifgl = CK_STAILQ_FIRST(&ifp->if_groups)) != NULL) {
1464 		strlcpy(groupname, ifgl->ifgl_group->ifg_group, IFNAMSIZ);
1465 		_if_delgroup_locked(ifp, ifgl, groupname);
1466 		IFNET_WLOCK();
1467 	}
1468 	IFNET_WUNLOCK();
1469 }
1470 
1471 /*
1472  * XXX: This KPI should not expose ifg_group. therefore the current
1473  * implementation is questionable and may change in the future.
1474  */
1475 int
if_foreach_group(struct ifnet * ifp,if_foreach_group_cb_t cb,void * cb_arg)1476 if_foreach_group(struct ifnet *ifp, if_foreach_group_cb_t cb, void *cb_arg)
1477 {
1478 	struct ifg_list *ifgl;
1479 	int error;
1480 
1481 	MPASS(cb);
1482 
1483 	error = 0;
1484 	IFNET_RLOCK();
1485 	CK_STAILQ_FOREACH(ifgl, &ifp->if_groups, ifgl_next) {
1486 		error = cb(ifgl->ifgl_group, cb_arg);
1487 		if (error != 0)
1488 			break;
1489 	}
1490 	IFNET_RUNLOCK();
1491 
1492 	return (error);
1493 }
1494 
1495 /*
1496  * Stores all groups from an interface in memory pointed to by ifgr.
1497  */
1498 static int
if_getgroup(struct ifgroupreq * ifgr,struct ifnet * ifp)1499 if_getgroup(struct ifgroupreq *ifgr, struct ifnet *ifp)
1500 {
1501 	struct ifg_list *ifgl;
1502 	struct ifg_req ifgrq, *ifgp;
1503 	int len, error;
1504 
1505 	IFNET_RLOCK();
1506 	if (ifgr->ifgr_len == 0) {
1507 		CK_STAILQ_FOREACH(ifgl, &ifp->if_groups, ifgl_next)
1508 			ifgr->ifgr_len += sizeof(struct ifg_req);
1509 		error = 0;
1510 	} else {
1511 		len = ifgr->ifgr_len;
1512 		ifgp = ifgr->ifgr_groups;
1513 		CK_STAILQ_FOREACH(ifgl, &ifp->if_groups, ifgl_next) {
1514 			if (len < sizeof(ifgrq)) {
1515 				error = EINVAL;
1516 				break;
1517 			}
1518 			bzero(&ifgrq, sizeof ifgrq);
1519 			strlcpy(ifgrq.ifgrq_group, ifgl->ifgl_group->ifg_group,
1520 			    sizeof(ifgrq.ifgrq_group));
1521 			if ((error = copyout(&ifgrq, ifgp, sizeof(struct ifg_req))))
1522 				break;
1523 			len -= sizeof(ifgrq);
1524 			ifgp++;
1525 		}
1526 	}
1527 	IFNET_RUNLOCK();
1528 
1529 	return (error);
1530 }
1531 
1532 /*
1533  * Stores all members of a group in memory pointed to by igfr
1534  */
1535 static int
if_getgroupmembers(struct ifgroupreq * ifgr)1536 if_getgroupmembers(struct ifgroupreq *ifgr)
1537 {
1538 	struct ifg_group	*ifg;
1539 	struct ifg_member	*ifgm;
1540 	struct ifg_req		 ifgrq, *ifgp;
1541 	int			 len, error;
1542 
1543 	IFNET_RLOCK();
1544 	CK_STAILQ_FOREACH(ifg, &V_ifg_head, ifg_next)
1545 		if (strcmp(ifg->ifg_group, ifgr->ifgr_name) == 0)
1546 			break;
1547 	if (ifg == NULL) {
1548 		IFNET_RUNLOCK();
1549 		return (ENOENT);
1550 	}
1551 
1552 	if (ifgr->ifgr_len == 0) {
1553 		CK_STAILQ_FOREACH(ifgm, &ifg->ifg_members, ifgm_next)
1554 			ifgr->ifgr_len += sizeof(ifgrq);
1555 		IFNET_RUNLOCK();
1556 		return (0);
1557 	}
1558 
1559 	len = ifgr->ifgr_len;
1560 	ifgp = ifgr->ifgr_groups;
1561 	CK_STAILQ_FOREACH(ifgm, &ifg->ifg_members, ifgm_next) {
1562 		if (len < sizeof(ifgrq)) {
1563 			IFNET_RUNLOCK();
1564 			return (EINVAL);
1565 		}
1566 		bzero(&ifgrq, sizeof ifgrq);
1567 		strlcpy(ifgrq.ifgrq_member, ifgm->ifgm_ifp->if_xname,
1568 		    sizeof(ifgrq.ifgrq_member));
1569 		if ((error = copyout(&ifgrq, ifgp, sizeof(struct ifg_req)))) {
1570 			IFNET_RUNLOCK();
1571 			return (error);
1572 		}
1573 		len -= sizeof(ifgrq);
1574 		ifgp++;
1575 	}
1576 	IFNET_RUNLOCK();
1577 
1578 	return (0);
1579 }
1580 
1581 /*
1582  * Return counter values from counter(9)s stored in ifnet.
1583  */
1584 uint64_t
if_get_counter_default(struct ifnet * ifp,ift_counter cnt)1585 if_get_counter_default(struct ifnet *ifp, ift_counter cnt)
1586 {
1587 
1588 	KASSERT(cnt < IFCOUNTERS, ("%s: invalid cnt %d", __func__, cnt));
1589 
1590 	return (counter_u64_fetch(ifp->if_counters[cnt]));
1591 }
1592 
1593 /*
1594  * Increase an ifnet counter. Usually used for counters shared
1595  * between the stack and a driver, but function supports them all.
1596  */
1597 void
if_inc_counter(struct ifnet * ifp,ift_counter cnt,int64_t inc)1598 if_inc_counter(struct ifnet *ifp, ift_counter cnt, int64_t inc)
1599 {
1600 
1601 	KASSERT(cnt < IFCOUNTERS, ("%s: invalid cnt %d", __func__, cnt));
1602 
1603 	counter_u64_add(ifp->if_counters[cnt], inc);
1604 }
1605 
1606 /*
1607  * Copy data from ifnet to userland API structure if_data.
1608  */
1609 void
if_data_copy(struct ifnet * ifp,struct if_data * ifd)1610 if_data_copy(struct ifnet *ifp, struct if_data *ifd)
1611 {
1612 
1613 	ifd->ifi_type = ifp->if_type;
1614 	ifd->ifi_physical = 0;
1615 	ifd->ifi_addrlen = ifp->if_addrlen;
1616 	ifd->ifi_hdrlen = ifp->if_hdrlen;
1617 	ifd->ifi_link_state = ifp->if_link_state;
1618 	ifd->ifi_vhid = 0;
1619 	ifd->ifi_datalen = sizeof(struct if_data);
1620 	ifd->ifi_mtu = ifp->if_mtu;
1621 	ifd->ifi_metric = ifp->if_metric;
1622 	ifd->ifi_baudrate = ifp->if_baudrate;
1623 	ifd->ifi_hwassist = ifp->if_hwassist;
1624 	ifd->ifi_epoch = ifp->if_epoch;
1625 	ifd->ifi_lastchange = ifp->if_lastchange;
1626 
1627 	ifd->ifi_ipackets = ifp->if_get_counter(ifp, IFCOUNTER_IPACKETS);
1628 	ifd->ifi_ierrors = ifp->if_get_counter(ifp, IFCOUNTER_IERRORS);
1629 	ifd->ifi_opackets = ifp->if_get_counter(ifp, IFCOUNTER_OPACKETS);
1630 	ifd->ifi_oerrors = ifp->if_get_counter(ifp, IFCOUNTER_OERRORS);
1631 	ifd->ifi_collisions = ifp->if_get_counter(ifp, IFCOUNTER_COLLISIONS);
1632 	ifd->ifi_ibytes = ifp->if_get_counter(ifp, IFCOUNTER_IBYTES);
1633 	ifd->ifi_obytes = ifp->if_get_counter(ifp, IFCOUNTER_OBYTES);
1634 	ifd->ifi_imcasts = ifp->if_get_counter(ifp, IFCOUNTER_IMCASTS);
1635 	ifd->ifi_omcasts = ifp->if_get_counter(ifp, IFCOUNTER_OMCASTS);
1636 	ifd->ifi_iqdrops = ifp->if_get_counter(ifp, IFCOUNTER_IQDROPS);
1637 	ifd->ifi_oqdrops = ifp->if_get_counter(ifp, IFCOUNTER_OQDROPS);
1638 	ifd->ifi_noproto = ifp->if_get_counter(ifp, IFCOUNTER_NOPROTO);
1639 }
1640 
1641 /*
1642  * Initialization, destruction and refcounting functions for ifaddrs.
1643  */
1644 struct ifaddr *
ifa_alloc(size_t size,int flags)1645 ifa_alloc(size_t size, int flags)
1646 {
1647 	struct ifaddr *ifa;
1648 
1649 	KASSERT(size >= sizeof(struct ifaddr),
1650 	    ("%s: invalid size %zu", __func__, size));
1651 
1652 	ifa = malloc(size, M_IFADDR, M_ZERO | flags);
1653 	if (ifa == NULL)
1654 		return (NULL);
1655 
1656 	if ((ifa->ifa_opackets = counter_u64_alloc(flags)) == NULL)
1657 		goto fail;
1658 	if ((ifa->ifa_ipackets = counter_u64_alloc(flags)) == NULL)
1659 		goto fail;
1660 	if ((ifa->ifa_obytes = counter_u64_alloc(flags)) == NULL)
1661 		goto fail;
1662 	if ((ifa->ifa_ibytes = counter_u64_alloc(flags)) == NULL)
1663 		goto fail;
1664 
1665 	refcount_init(&ifa->ifa_refcnt, 1);
1666 
1667 	return (ifa);
1668 
1669 fail:
1670 	/* free(NULL) is okay */
1671 	counter_u64_free(ifa->ifa_opackets);
1672 	counter_u64_free(ifa->ifa_ipackets);
1673 	counter_u64_free(ifa->ifa_obytes);
1674 	counter_u64_free(ifa->ifa_ibytes);
1675 	free(ifa, M_IFADDR);
1676 
1677 	return (NULL);
1678 }
1679 
1680 void
ifa_ref(struct ifaddr * ifa)1681 ifa_ref(struct ifaddr *ifa)
1682 {
1683 	u_int old __diagused;
1684 
1685 	old = refcount_acquire(&ifa->ifa_refcnt);
1686 	KASSERT(old > 0, ("%s: ifa %p has 0 refs", __func__, ifa));
1687 }
1688 
1689 int
ifa_try_ref(struct ifaddr * ifa)1690 ifa_try_ref(struct ifaddr *ifa)
1691 {
1692 
1693 	NET_EPOCH_ASSERT();
1694 	return (refcount_acquire_if_not_zero(&ifa->ifa_refcnt));
1695 }
1696 
1697 static void
ifa_destroy(epoch_context_t ctx)1698 ifa_destroy(epoch_context_t ctx)
1699 {
1700 	struct ifaddr *ifa;
1701 
1702 	ifa = __containerof(ctx, struct ifaddr, ifa_epoch_ctx);
1703 	counter_u64_free(ifa->ifa_opackets);
1704 	counter_u64_free(ifa->ifa_ipackets);
1705 	counter_u64_free(ifa->ifa_obytes);
1706 	counter_u64_free(ifa->ifa_ibytes);
1707 	free(ifa, M_IFADDR);
1708 }
1709 
1710 void
ifa_free(struct ifaddr * ifa)1711 ifa_free(struct ifaddr *ifa)
1712 {
1713 
1714 	if (refcount_release(&ifa->ifa_refcnt))
1715 		NET_EPOCH_CALL(ifa_destroy, &ifa->ifa_epoch_ctx);
1716 }
1717 
1718 /*
1719  * XXX: Because sockaddr_dl has deeper structure than the sockaddr
1720  * structs used to represent other address families, it is necessary
1721  * to perform a different comparison.
1722  */
1723 static bool
sa_dl_equal(const struct sockaddr * a,const struct sockaddr * b)1724 sa_dl_equal(const struct sockaddr *a, const struct sockaddr *b)
1725 {
1726 	const struct sockaddr_dl *sdl1 = (const struct sockaddr_dl *)a;
1727 	const struct sockaddr_dl *sdl2 = (const struct sockaddr_dl *)b;
1728 
1729 	return (sdl1->sdl_len == sdl2->sdl_len &&
1730 	    bcmp(sdl1->sdl_data + sdl1->sdl_nlen,
1731 	    sdl2->sdl_data + sdl2->sdl_nlen, sdl1->sdl_alen) == 0);
1732 }
1733 
1734 /*
1735  * Locate an interface on the specified fib based on a complete address.
1736  */
1737 struct ifaddr *
ifa_ifwithaddr_fib(const struct sockaddr * addr,int fibnum)1738 ifa_ifwithaddr_fib(const struct sockaddr *addr, int fibnum)
1739 {
1740 	struct ifnet *ifp;
1741 	struct ifaddr *ifa;
1742 
1743 	NET_EPOCH_ASSERT();
1744 	CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) {
1745 		if ((fibnum != RT_ALL_FIBS) && (ifp->if_fib != fibnum))
1746 			continue;
1747 		CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1748 			if (ifa->ifa_addr->sa_family != addr->sa_family)
1749 				continue;
1750 			if (sa_equal(addr, ifa->ifa_addr)) {
1751 				goto done;
1752 			}
1753 			/* IP6 doesn't have broadcast */
1754 			if ((ifp->if_flags & IFF_BROADCAST) &&
1755 			    ifa->ifa_broadaddr &&
1756 			    ifa->ifa_broadaddr->sa_len != 0 &&
1757 			    sa_equal(ifa->ifa_broadaddr, addr)) {
1758 				goto done;
1759 			}
1760 		}
1761 	}
1762 	ifa = NULL;
1763 done:
1764 	return (ifa);
1765 }
1766 
1767 /*
1768  * Locate an interface based on a complete address.
1769  */
1770 struct ifaddr *
ifa_ifwithaddr(const struct sockaddr * addr)1771 ifa_ifwithaddr(const struct sockaddr *addr)
1772 {
1773 
1774 	return (ifa_ifwithaddr_fib(addr, RT_ALL_FIBS));
1775 }
1776 
1777 int
ifa_ifwithaddr_fib_check(const struct sockaddr * addr,int fibnum)1778 ifa_ifwithaddr_fib_check(const struct sockaddr *addr, int fibnum)
1779 {
1780 	struct epoch_tracker et;
1781 	int rc;
1782 
1783 	NET_EPOCH_ENTER(et);
1784 	rc = (ifa_ifwithaddr_fib(addr, fibnum) != NULL);
1785 	NET_EPOCH_EXIT(et);
1786 	return (rc);
1787 }
1788 
1789 int
ifa_ifwithaddr_check(const struct sockaddr * addr)1790 ifa_ifwithaddr_check(const struct sockaddr *addr)
1791 {
1792 
1793 	return (ifa_ifwithaddr_fib_check(addr, RT_ALL_FIBS));
1794 }
1795 
1796 /*
1797  * Locate an interface based on the broadcast address.
1798  */
1799 /* ARGSUSED */
1800 struct ifaddr *
ifa_ifwithbroadaddr(const struct sockaddr * addr,int fibnum)1801 ifa_ifwithbroadaddr(const struct sockaddr *addr, int fibnum)
1802 {
1803 	struct ifnet *ifp;
1804 	struct ifaddr *ifa;
1805 
1806 	NET_EPOCH_ASSERT();
1807 	CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) {
1808 		if ((fibnum != RT_ALL_FIBS) && (ifp->if_fib != fibnum))
1809 			continue;
1810 		CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1811 			if (ifa->ifa_addr->sa_family != addr->sa_family)
1812 				continue;
1813 			if ((ifp->if_flags & IFF_BROADCAST) &&
1814 			    ifa->ifa_broadaddr &&
1815 			    ifa->ifa_broadaddr->sa_len != 0 &&
1816 			    sa_equal(ifa->ifa_broadaddr, addr)) {
1817 				goto done;
1818 			}
1819 		}
1820 	}
1821 	ifa = NULL;
1822 done:
1823 	return (ifa);
1824 }
1825 
1826 /*
1827  * Locate the point to point interface with a given destination address.
1828  */
1829 /*ARGSUSED*/
1830 struct ifaddr *
ifa_ifwithdstaddr(const struct sockaddr * addr,int fibnum)1831 ifa_ifwithdstaddr(const struct sockaddr *addr, int fibnum)
1832 {
1833 	struct ifnet *ifp;
1834 	struct ifaddr *ifa;
1835 
1836 	NET_EPOCH_ASSERT();
1837 	CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) {
1838 		if ((ifp->if_flags & IFF_POINTOPOINT) == 0)
1839 			continue;
1840 		if ((fibnum != RT_ALL_FIBS) && (ifp->if_fib != fibnum))
1841 			continue;
1842 		CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1843 			if (ifa->ifa_addr->sa_family != addr->sa_family)
1844 				continue;
1845 			if (ifa->ifa_dstaddr != NULL &&
1846 			    sa_equal(addr, ifa->ifa_dstaddr)) {
1847 				goto done;
1848 			}
1849 		}
1850 	}
1851 	ifa = NULL;
1852 done:
1853 	return (ifa);
1854 }
1855 
1856 /*
1857  * Find an interface on a specific network.  If many, choice
1858  * is most specific found.
1859  */
1860 struct ifaddr *
ifa_ifwithnet(const struct sockaddr * addr,int ignore_ptp,int fibnum)1861 ifa_ifwithnet(const struct sockaddr *addr, int ignore_ptp, int fibnum)
1862 {
1863 	struct ifnet *ifp;
1864 	struct ifaddr *ifa;
1865 	struct ifaddr *ifa_maybe = NULL;
1866 	u_int af = addr->sa_family;
1867 	const char *addr_data = addr->sa_data, *cplim;
1868 
1869 	NET_EPOCH_ASSERT();
1870 	/*
1871 	 * AF_LINK addresses can be looked up directly by their index number,
1872 	 * so do that if we can.
1873 	 */
1874 	if (af == AF_LINK) {
1875 		ifp = ifnet_byindex(
1876 		    ((const struct sockaddr_dl *)addr)->sdl_index);
1877 		return (ifp ? ifp->if_addr : NULL);
1878 	}
1879 
1880 	/*
1881 	 * Scan though each interface, looking for ones that have addresses
1882 	 * in this address family and the requested fib.
1883 	 */
1884 	CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) {
1885 		if ((fibnum != RT_ALL_FIBS) && (ifp->if_fib != fibnum))
1886 			continue;
1887 		CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1888 			const char *cp, *cp2, *cp3;
1889 
1890 			if (ifa->ifa_addr->sa_family != af)
1891 next:				continue;
1892 			if (af == AF_INET &&
1893 			    ifp->if_flags & IFF_POINTOPOINT && !ignore_ptp) {
1894 				/*
1895 				 * This is a bit broken as it doesn't
1896 				 * take into account that the remote end may
1897 				 * be a single node in the network we are
1898 				 * looking for.
1899 				 * The trouble is that we don't know the
1900 				 * netmask for the remote end.
1901 				 */
1902 				if (ifa->ifa_dstaddr != NULL &&
1903 				    sa_equal(addr, ifa->ifa_dstaddr)) {
1904 					goto done;
1905 				}
1906 			} else {
1907 				/*
1908 				 * Scan all the bits in the ifa's address.
1909 				 * If a bit dissagrees with what we are
1910 				 * looking for, mask it with the netmask
1911 				 * to see if it really matters.
1912 				 * (A byte at a time)
1913 				 */
1914 				if (ifa->ifa_netmask == 0)
1915 					continue;
1916 				cp = addr_data;
1917 				cp2 = ifa->ifa_addr->sa_data;
1918 				cp3 = ifa->ifa_netmask->sa_data;
1919 				cplim = ifa->ifa_netmask->sa_len
1920 					+ (char *)ifa->ifa_netmask;
1921 				while (cp3 < cplim)
1922 					if ((*cp++ ^ *cp2++) & *cp3++)
1923 						goto next; /* next address! */
1924 				/*
1925 				 * If the netmask of what we just found
1926 				 * is more specific than what we had before
1927 				 * (if we had one), or if the virtual status
1928 				 * of new prefix is better than of the old one,
1929 				 * then remember the new one before continuing
1930 				 * to search for an even better one.
1931 				 */
1932 				if (ifa_maybe == NULL ||
1933 				    ifa_preferred(ifa_maybe, ifa) ||
1934 				    rn_refines((caddr_t)ifa->ifa_netmask,
1935 				    (caddr_t)ifa_maybe->ifa_netmask)) {
1936 					ifa_maybe = ifa;
1937 				}
1938 			}
1939 		}
1940 	}
1941 	ifa = ifa_maybe;
1942 	ifa_maybe = NULL;
1943 done:
1944 	return (ifa);
1945 }
1946 
1947 /*
1948  * Find an interface address specific to an interface best matching
1949  * a given address.
1950  */
1951 struct ifaddr *
ifaof_ifpforaddr(const struct sockaddr * addr,struct ifnet * ifp)1952 ifaof_ifpforaddr(const struct sockaddr *addr, struct ifnet *ifp)
1953 {
1954 	struct ifaddr *ifa;
1955 	const char *cp, *cp2, *cp3;
1956 	char *cplim;
1957 	struct ifaddr *ifa_maybe = NULL;
1958 	u_int af = addr->sa_family;
1959 
1960 	if (af >= AF_MAX)
1961 		return (NULL);
1962 
1963 	NET_EPOCH_ASSERT();
1964 	CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1965 		if (ifa->ifa_addr->sa_family != af)
1966 			continue;
1967 		if (ifa_maybe == NULL)
1968 			ifa_maybe = ifa;
1969 		if (ifa->ifa_netmask == 0) {
1970 			if (sa_equal(addr, ifa->ifa_addr) ||
1971 			    (ifa->ifa_dstaddr &&
1972 			    sa_equal(addr, ifa->ifa_dstaddr)))
1973 				goto done;
1974 			continue;
1975 		}
1976 		if (ifp->if_flags & IFF_POINTOPOINT) {
1977 			if (ifa->ifa_dstaddr && sa_equal(addr, ifa->ifa_dstaddr))
1978 				goto done;
1979 		} else {
1980 			cp = addr->sa_data;
1981 			cp2 = ifa->ifa_addr->sa_data;
1982 			cp3 = ifa->ifa_netmask->sa_data;
1983 			cplim = ifa->ifa_netmask->sa_len + (char *)ifa->ifa_netmask;
1984 			for (; cp3 < cplim; cp3++)
1985 				if ((*cp++ ^ *cp2++) & *cp3)
1986 					break;
1987 			if (cp3 == cplim)
1988 				goto done;
1989 		}
1990 	}
1991 	ifa = ifa_maybe;
1992 done:
1993 	return (ifa);
1994 }
1995 
1996 /*
1997  * See whether new ifa is better than current one:
1998  * 1) A non-virtual one is preferred over virtual.
1999  * 2) A virtual in master state preferred over any other state.
2000  *
2001  * Used in several address selecting functions.
2002  */
2003 int
ifa_preferred(struct ifaddr * cur,struct ifaddr * next)2004 ifa_preferred(struct ifaddr *cur, struct ifaddr *next)
2005 {
2006 
2007 	return (cur->ifa_carp && (!next->ifa_carp ||
2008 	    ((*carp_master_p)(next) && !(*carp_master_p)(cur))));
2009 }
2010 
2011 struct sockaddr_dl *
link_alloc_sdl(size_t size,int flags)2012 link_alloc_sdl(size_t size, int flags)
2013 {
2014 
2015 	return (malloc(size, M_TEMP, flags));
2016 }
2017 
2018 void
link_free_sdl(struct sockaddr * sa)2019 link_free_sdl(struct sockaddr *sa)
2020 {
2021 	free(sa, M_TEMP);
2022 }
2023 
2024 /*
2025  * Fills in given sdl with interface basic info.
2026  * Returns pointer to filled sdl.
2027  */
2028 struct sockaddr_dl *
link_init_sdl(struct ifnet * ifp,struct sockaddr * paddr,u_char iftype)2029 link_init_sdl(struct ifnet *ifp, struct sockaddr *paddr, u_char iftype)
2030 {
2031 	struct sockaddr_dl *sdl;
2032 
2033 	sdl = (struct sockaddr_dl *)paddr;
2034 	memset(sdl, 0, sizeof(struct sockaddr_dl));
2035 	sdl->sdl_len = sizeof(struct sockaddr_dl);
2036 	sdl->sdl_family = AF_LINK;
2037 	sdl->sdl_index = ifp->if_index;
2038 	sdl->sdl_type = iftype;
2039 
2040 	return (sdl);
2041 }
2042 
2043 void	(*vlan_link_state_p)(struct ifnet *);	/* XXX: private from if_vlan */
2044 void	(*vlan_trunk_cap_p)(struct ifnet *);		/* XXX: private from if_vlan */
2045 struct ifnet *(*vlan_trunkdev_p)(struct ifnet *);
2046 struct	ifnet *(*vlan_devat_p)(struct ifnet *, uint16_t);
2047 int	(*vlan_tag_p)(struct ifnet *, uint16_t *);
2048 int	(*vlan_pcp_p)(struct ifnet *, uint16_t *);
2049 int	(*vlan_setcookie_p)(struct ifnet *, void *);
2050 void	*(*vlan_cookie_p)(struct ifnet *);
2051 void	(*vlan_input_p)(struct ifnet *, struct mbuf *);
2052 
2053 /*
2054  * Handle a change in the interface link state. To avoid LORs
2055  * between driver lock and upper layer locks, as well as possible
2056  * recursions, we post event to taskqueue, and all job
2057  * is done in static do_link_state_change().
2058  */
2059 void
if_link_state_change(struct ifnet * ifp,int link_state)2060 if_link_state_change(struct ifnet *ifp, int link_state)
2061 {
2062 	/* Return if state hasn't changed. */
2063 	if (ifp->if_link_state == link_state)
2064 		return;
2065 
2066 	ifp->if_link_state = link_state;
2067 
2068 	/* XXXGL: reference ifp? */
2069 	taskqueue_enqueue(taskqueue_swi, &ifp->if_linktask);
2070 }
2071 
2072 static void
do_link_state_change(void * arg,int pending)2073 do_link_state_change(void *arg, int pending)
2074 {
2075 	struct ifnet *ifp;
2076 	int link_state;
2077 
2078 	ifp = arg;
2079 	link_state = ifp->if_link_state;
2080 
2081 	CURVNET_SET(ifp->if_vnet);
2082 	rt_ifmsg(ifp, 0);
2083 	if (ifp->if_vlantrunk != NULL)
2084 		(*vlan_link_state_p)(ifp);
2085 	if (ifp->if_carp)
2086 		(*carp_linkstate_p)(ifp);
2087 	if (ifp->if_bridge)
2088 		ifp->if_bridge_linkstate(ifp);
2089 	if (ifp->if_lagg)
2090 		(*lagg_linkstate_p)(ifp, link_state);
2091 
2092 	if (IS_DEFAULT_VNET(curvnet))
2093 		devctl_notify("IFNET", ifp->if_xname,
2094 		    (link_state == LINK_STATE_UP) ? "LINK_UP" : "LINK_DOWN",
2095 		    NULL);
2096 	if (pending > 1)
2097 		if_printf(ifp, "%d link states coalesced\n", pending);
2098 	if (log_link_state_change)
2099 		if_printf(ifp, "link state changed to %s\n",
2100 		    (link_state == LINK_STATE_UP) ? "UP" : "DOWN" );
2101 	EVENTHANDLER_INVOKE(ifnet_link_event, ifp, link_state);
2102 	CURVNET_RESTORE();
2103 }
2104 
2105 /*
2106  * Mark an interface down and notify protocols of
2107  * the transition.
2108  */
2109 void
if_down(struct ifnet * ifp)2110 if_down(struct ifnet *ifp)
2111 {
2112 
2113 	EVENTHANDLER_INVOKE(ifnet_event, ifp, IFNET_EVENT_DOWN);
2114 
2115 	ifp->if_flags &= ~IFF_UP;
2116 	getmicrotime(&ifp->if_lastchange);
2117 	ifp->if_qflush(ifp);
2118 
2119 	if (ifp->if_carp)
2120 		(*carp_linkstate_p)(ifp);
2121 	rt_ifmsg(ifp, IFF_UP);
2122 }
2123 
2124 /*
2125  * Mark an interface up and notify protocols of
2126  * the transition.
2127  */
2128 void
if_up(struct ifnet * ifp)2129 if_up(struct ifnet *ifp)
2130 {
2131 
2132 	ifp->if_flags |= IFF_UP;
2133 	getmicrotime(&ifp->if_lastchange);
2134 	if (ifp->if_carp)
2135 		(*carp_linkstate_p)(ifp);
2136 	rt_ifmsg(ifp, IFF_UP);
2137 	EVENTHANDLER_INVOKE(ifnet_event, ifp, IFNET_EVENT_UP);
2138 }
2139 
2140 /*
2141  * Flush an interface queue.
2142  */
2143 void
if_qflush(struct ifnet * ifp)2144 if_qflush(struct ifnet *ifp)
2145 {
2146 	struct mbuf *m, *n;
2147 	struct ifaltq *ifq;
2148 
2149 	ifq = &ifp->if_snd;
2150 	IFQ_LOCK(ifq);
2151 #ifdef ALTQ
2152 	if (ALTQ_IS_ENABLED(ifq))
2153 		ALTQ_PURGE(ifq);
2154 #endif
2155 	n = ifq->ifq_head;
2156 	while ((m = n) != NULL) {
2157 		n = m->m_nextpkt;
2158 		m_freem(m);
2159 	}
2160 	ifq->ifq_head = 0;
2161 	ifq->ifq_tail = 0;
2162 	ifq->ifq_len = 0;
2163 	IFQ_UNLOCK(ifq);
2164 }
2165 
2166 /*
2167  * Map interface name to interface structure pointer, with or without
2168  * returning a reference.
2169  */
2170 struct ifnet *
ifunit_ref(const char * name)2171 ifunit_ref(const char *name)
2172 {
2173 	struct epoch_tracker et;
2174 	struct ifnet *ifp;
2175 
2176 	NET_EPOCH_ENTER(et);
2177 	CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) {
2178 		if (strncmp(name, ifp->if_xname, IFNAMSIZ) == 0 &&
2179 		    !(ifp->if_flags & IFF_DYING)) {
2180 			MPASS(ifp->if_vnet == curvnet);
2181 			MPASS(ifindex_table[ifp->if_index].ife_ifnet == ifp);
2182 			if_ref(ifp);
2183 			break;
2184 		}
2185 	}
2186 	NET_EPOCH_EXIT(et);
2187 	return (ifp);
2188 }
2189 
2190 struct ifnet *
ifunit(const char * name)2191 ifunit(const char *name)
2192 {
2193 	struct epoch_tracker et;
2194 	struct ifnet *ifp;
2195 
2196 	NET_EPOCH_ENTER(et);
2197 	CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) {
2198 		if (strncmp(name, ifp->if_xname, IFNAMSIZ) == 0) {
2199 			MPASS(refcount_load(&ifp->if_refcount) > 0);
2200 			MPASS(ifp->if_vnet == curvnet);
2201 			MPASS(ifindex_table[ifp->if_index].ife_ifnet == ifp);
2202 			break;
2203 		}
2204 	}
2205 	NET_EPOCH_EXIT(et);
2206 	return (ifp);
2207 }
2208 
2209 void *
ifr_buffer_get_buffer(void * data)2210 ifr_buffer_get_buffer(void *data)
2211 {
2212 	union ifreq_union *ifrup;
2213 
2214 	ifrup = data;
2215 #ifdef COMPAT_FREEBSD32
2216 	if (SV_CURPROC_FLAG(SV_ILP32))
2217 		return ((void *)(uintptr_t)
2218 		    ifrup->ifr32.ifr_ifru.ifru_buffer.buffer);
2219 #endif
2220 	return (ifrup->ifr.ifr_ifru.ifru_buffer.buffer);
2221 }
2222 
2223 static void
ifr_buffer_set_buffer_null(void * data)2224 ifr_buffer_set_buffer_null(void *data)
2225 {
2226 	union ifreq_union *ifrup;
2227 
2228 	ifrup = data;
2229 #ifdef COMPAT_FREEBSD32
2230 	if (SV_CURPROC_FLAG(SV_ILP32))
2231 		ifrup->ifr32.ifr_ifru.ifru_buffer.buffer = 0;
2232 	else
2233 #endif
2234 		ifrup->ifr.ifr_ifru.ifru_buffer.buffer = NULL;
2235 }
2236 
2237 size_t
ifr_buffer_get_length(void * data)2238 ifr_buffer_get_length(void *data)
2239 {
2240 	union ifreq_union *ifrup;
2241 
2242 	ifrup = data;
2243 #ifdef COMPAT_FREEBSD32
2244 	if (SV_CURPROC_FLAG(SV_ILP32))
2245 		return (ifrup->ifr32.ifr_ifru.ifru_buffer.length);
2246 #endif
2247 	return (ifrup->ifr.ifr_ifru.ifru_buffer.length);
2248 }
2249 
2250 static void
ifr_buffer_set_length(void * data,size_t len)2251 ifr_buffer_set_length(void *data, size_t len)
2252 {
2253 	union ifreq_union *ifrup;
2254 
2255 	ifrup = data;
2256 #ifdef COMPAT_FREEBSD32
2257 	if (SV_CURPROC_FLAG(SV_ILP32))
2258 		ifrup->ifr32.ifr_ifru.ifru_buffer.length = len;
2259 	else
2260 #endif
2261 		ifrup->ifr.ifr_ifru.ifru_buffer.length = len;
2262 }
2263 
2264 void *
ifr_data_get_ptr(void * ifrp)2265 ifr_data_get_ptr(void *ifrp)
2266 {
2267 	union ifreq_union *ifrup;
2268 
2269 	ifrup = ifrp;
2270 #ifdef COMPAT_FREEBSD32
2271 	if (SV_CURPROC_FLAG(SV_ILP32))
2272 		return ((void *)(uintptr_t)
2273 		    ifrup->ifr32.ifr_ifru.ifru_data);
2274 #endif
2275 		return (ifrup->ifr.ifr_ifru.ifru_data);
2276 }
2277 
2278 struct ifcap_nv_bit_name {
2279 	uint64_t cap_bit;
2280 	const char *cap_name;
2281 };
2282 #define CAPNV(x) {.cap_bit = IFCAP_##x, \
2283     .cap_name = __CONCAT(IFCAP_, __CONCAT(x, _NAME)) }
2284 const struct ifcap_nv_bit_name ifcap_nv_bit_names[] = {
2285 	CAPNV(RXCSUM),
2286 	CAPNV(TXCSUM),
2287 	CAPNV(NETCONS),
2288 	CAPNV(VLAN_MTU),
2289 	CAPNV(VLAN_HWTAGGING),
2290 	CAPNV(JUMBO_MTU),
2291 	CAPNV(POLLING),
2292 	CAPNV(VLAN_HWCSUM),
2293 	CAPNV(TSO4),
2294 	CAPNV(TSO6),
2295 	CAPNV(LRO),
2296 	CAPNV(WOL_UCAST),
2297 	CAPNV(WOL_MCAST),
2298 	CAPNV(WOL_MAGIC),
2299 	CAPNV(TOE4),
2300 	CAPNV(TOE6),
2301 	CAPNV(VLAN_HWFILTER),
2302 	CAPNV(VLAN_HWTSO),
2303 	CAPNV(LINKSTATE),
2304 	CAPNV(NETMAP),
2305 	CAPNV(RXCSUM_IPV6),
2306 	CAPNV(TXCSUM_IPV6),
2307 	CAPNV(HWSTATS),
2308 	CAPNV(TXRTLMT),
2309 	CAPNV(HWRXTSTMP),
2310 	CAPNV(MEXTPG),
2311 	CAPNV(TXTLS4),
2312 	CAPNV(TXTLS6),
2313 	CAPNV(VXLAN_HWCSUM),
2314 	CAPNV(VXLAN_HWTSO),
2315 	CAPNV(TXTLS_RTLMT),
2316 	{0, NULL}
2317 };
2318 #define CAP2NV(x) {.cap_bit = IFCAP2_BIT(IFCAP2_##x), \
2319     .cap_name = __CONCAT(IFCAP2_, __CONCAT(x, _NAME)) }
2320 const struct ifcap_nv_bit_name ifcap2_nv_bit_names[] = {
2321 	CAP2NV(RXTLS4),
2322 	CAP2NV(RXTLS6),
2323 	CAP2NV(IPSEC_OFFLOAD),
2324 	CAP2NV(GENEVE_HWCSUM),
2325 	CAP2NV(GENEVE_HWTSO),
2326 	{0, NULL}
2327 };
2328 #undef CAPNV
2329 #undef CAP2NV
2330 
2331 int
if_capnv_to_capint(const nvlist_t * nv,int * old_cap,const struct ifcap_nv_bit_name * nn,bool all)2332 if_capnv_to_capint(const nvlist_t *nv, int *old_cap,
2333     const struct ifcap_nv_bit_name *nn, bool all)
2334 {
2335 	int i, res;
2336 
2337 	res = 0;
2338 	for (i = 0; nn[i].cap_name != NULL; i++) {
2339 		if (nvlist_exists_bool(nv, nn[i].cap_name)) {
2340 			if (all || nvlist_get_bool(nv, nn[i].cap_name))
2341 				res |= nn[i].cap_bit;
2342 		} else {
2343 			res |= *old_cap & nn[i].cap_bit;
2344 		}
2345 	}
2346 	return (res);
2347 }
2348 
2349 void
if_capint_to_capnv(nvlist_t * nv,const struct ifcap_nv_bit_name * nn,int ifr_cap,int ifr_req)2350 if_capint_to_capnv(nvlist_t *nv, const struct ifcap_nv_bit_name *nn,
2351     int ifr_cap, int ifr_req)
2352 {
2353 	int i;
2354 
2355 	for (i = 0; nn[i].cap_name != NULL; i++) {
2356 		if ((nn[i].cap_bit & ifr_cap) != 0) {
2357 			nvlist_add_bool(nv, nn[i].cap_name,
2358 			    (nn[i].cap_bit & ifr_req) != 0);
2359 		}
2360 	}
2361 }
2362 
2363 /*
2364  * Hardware specific interface ioctls.
2365  */
2366 int
ifhwioctl(u_long cmd,struct ifnet * ifp,caddr_t data,struct thread * td)2367 ifhwioctl(u_long cmd, struct ifnet *ifp, caddr_t data, struct thread *td)
2368 {
2369 	struct ifreq *ifr;
2370 	int error = 0, do_ifup = 0;
2371 	int new_flags, temp_flags;
2372 	size_t descrlen, nvbuflen;
2373 	char *descrbuf;
2374 	char new_name[IFNAMSIZ];
2375 	void *buf;
2376 	nvlist_t *nvcap;
2377 	struct siocsifcapnv_driver_data drv_ioctl_data;
2378 
2379 	ifr = (struct ifreq *)data;
2380 	switch (cmd) {
2381 	case SIOCGIFINDEX:
2382 		ifr->ifr_index = ifp->if_index;
2383 		break;
2384 
2385 	case SIOCGIFFLAGS:
2386 		temp_flags = ifp->if_flags | ifp->if_drv_flags;
2387 		ifr->ifr_flags = temp_flags & 0xffff;
2388 		ifr->ifr_flagshigh = temp_flags >> 16;
2389 		break;
2390 
2391 	case SIOCGIFCAP:
2392 		ifr->ifr_reqcap = ifp->if_capabilities;
2393 		ifr->ifr_curcap = ifp->if_capenable;
2394 		break;
2395 
2396 	case SIOCGIFCAPNV:
2397 		if ((ifp->if_capabilities & IFCAP_NV) == 0) {
2398 			error = EINVAL;
2399 			break;
2400 		}
2401 		buf = NULL;
2402 		nvcap = nvlist_create(0);
2403 		for (;;) {
2404 			if_capint_to_capnv(nvcap, ifcap_nv_bit_names,
2405 			    ifp->if_capabilities, ifp->if_capenable);
2406 			if_capint_to_capnv(nvcap, ifcap2_nv_bit_names,
2407 			    ifp->if_capabilities2, ifp->if_capenable2);
2408 			error = (*ifp->if_ioctl)(ifp, SIOCGIFCAPNV,
2409 			    __DECONST(caddr_t, nvcap));
2410 			if (error != 0) {
2411 				if_printf(ifp,
2412 			    "SIOCGIFCAPNV driver mistake: nvlist error %d\n",
2413 				    error);
2414 				break;
2415 			}
2416 			buf = nvlist_pack(nvcap, &nvbuflen);
2417 			if (buf == NULL) {
2418 				error = nvlist_error(nvcap);
2419 				if (error == 0)
2420 					error = EDOOFUS;
2421 				break;
2422 			}
2423 			if (nvbuflen > ifr->ifr_cap_nv.buf_length) {
2424 				ifr->ifr_cap_nv.length = nvbuflen;
2425 				ifr->ifr_cap_nv.buffer = NULL;
2426 				error = EFBIG;
2427 				break;
2428 			}
2429 			ifr->ifr_cap_nv.length = nvbuflen;
2430 			error = copyout(buf, ifr->ifr_cap_nv.buffer, nvbuflen);
2431 			break;
2432 		}
2433 		free(buf, M_NVLIST);
2434 		nvlist_destroy(nvcap);
2435 		break;
2436 
2437 	case SIOCGIFDATA:
2438 	{
2439 		struct if_data ifd;
2440 
2441 		/* Ensure uninitialised padding is not leaked. */
2442 		memset(&ifd, 0, sizeof(ifd));
2443 
2444 		if_data_copy(ifp, &ifd);
2445 		error = copyout(&ifd, ifr_data_get_ptr(ifr), sizeof(ifd));
2446 		break;
2447 	}
2448 
2449 #ifdef MAC
2450 	case SIOCGIFMAC:
2451 		error = mac_ifnet_ioctl_get(td->td_ucred, ifr, ifp);
2452 		break;
2453 #endif
2454 
2455 	case SIOCGIFMETRIC:
2456 		ifr->ifr_metric = ifp->if_metric;
2457 		break;
2458 
2459 	case SIOCGIFMTU:
2460 		ifr->ifr_mtu = ifp->if_mtu;
2461 		break;
2462 
2463 	case SIOCGIFPHYS:
2464 		/* XXXGL: did this ever worked? */
2465 		ifr->ifr_phys = 0;
2466 		break;
2467 
2468 	case SIOCGIFDESCR:
2469 		error = 0;
2470 		sx_slock(&ifdescr_sx);
2471 		if (ifp->if_description == NULL)
2472 			error = ENOMSG;
2473 		else {
2474 			/* space for terminating nul */
2475 			descrlen = strlen(ifp->if_description) + 1;
2476 			if (ifr_buffer_get_length(ifr) < descrlen)
2477 				ifr_buffer_set_buffer_null(ifr);
2478 			else
2479 				error = copyout(ifp->if_description,
2480 				    ifr_buffer_get_buffer(ifr), descrlen);
2481 			ifr_buffer_set_length(ifr, descrlen);
2482 		}
2483 		sx_sunlock(&ifdescr_sx);
2484 		break;
2485 
2486 	case SIOCSIFDESCR:
2487 		error = priv_check(td, PRIV_NET_SETIFDESCR);
2488 		if (error)
2489 			return (error);
2490 
2491 		/*
2492 		 * Copy only (length-1) bytes to make sure that
2493 		 * if_description is always nul terminated.  The
2494 		 * length parameter is supposed to count the
2495 		 * terminating nul in.
2496 		 */
2497 		if (ifr_buffer_get_length(ifr) > ifdescr_maxlen)
2498 			return (ENAMETOOLONG);
2499 		else if (ifr_buffer_get_length(ifr) == 0)
2500 			descrbuf = NULL;
2501 		else {
2502 			descrbuf = if_allocdescr(ifr_buffer_get_length(ifr), M_WAITOK);
2503 			error = copyin(ifr_buffer_get_buffer(ifr), descrbuf,
2504 			    ifr_buffer_get_length(ifr) - 1);
2505 			if (error) {
2506 				if_freedescr(descrbuf);
2507 				break;
2508 			}
2509 		}
2510 
2511 		if_setdescr(ifp, descrbuf);
2512 		getmicrotime(&ifp->if_lastchange);
2513 		break;
2514 
2515 	case SIOCGIFFIB:
2516 		ifr->ifr_fib = ifp->if_fib;
2517 		break;
2518 
2519 	case SIOCSIFFIB:
2520 		error = priv_check(td, PRIV_NET_SETIFFIB);
2521 		if (error)
2522 			return (error);
2523 		if (ifr->ifr_fib >= rt_numfibs)
2524 			return (EINVAL);
2525 
2526 		ifp->if_fib = ifr->ifr_fib;
2527 		break;
2528 
2529 	case SIOCSIFFLAGS:
2530 		error = priv_check(td, PRIV_NET_SETIFFLAGS);
2531 		if (error)
2532 			return (error);
2533 		/*
2534 		 * Currently, no driver owned flags pass the IFF_CANTCHANGE
2535 		 * check, so we don't need special handling here yet.
2536 		 */
2537 		new_flags = (ifr->ifr_flags & 0xffff) |
2538 		    (ifr->ifr_flagshigh << 16);
2539 		if (ifp->if_flags & IFF_UP &&
2540 		    (new_flags & IFF_UP) == 0) {
2541 			if_down(ifp);
2542 		} else if (new_flags & IFF_UP &&
2543 		    (ifp->if_flags & IFF_UP) == 0) {
2544 			do_ifup = 1;
2545 		}
2546 
2547 		/*
2548 		 * See if the promiscuous mode or allmulti bits are about to
2549 		 * flip.  They require special handling because in-kernel
2550 		 * consumers may indepdently toggle them.
2551 		 */
2552 		if_setppromisc(ifp, new_flags & IFF_PPROMISC);
2553 		if ((ifp->if_flags ^ new_flags) & IFF_PALLMULTI) {
2554 			if (new_flags & IFF_PALLMULTI)
2555 				ifp->if_flags |= IFF_ALLMULTI;
2556 			else if (ifp->if_amcount == 0)
2557 				ifp->if_flags &= ~IFF_ALLMULTI;
2558 		}
2559 		ifp->if_flags = (ifp->if_flags & IFF_CANTCHANGE) |
2560 			(new_flags &~ IFF_CANTCHANGE);
2561 		if (ifp->if_ioctl) {
2562 			(void) (*ifp->if_ioctl)(ifp, cmd, data);
2563 		}
2564 		if (do_ifup)
2565 			if_up(ifp);
2566 		getmicrotime(&ifp->if_lastchange);
2567 		break;
2568 
2569 	case SIOCSIFCAP:
2570 		error = priv_check(td, PRIV_NET_SETIFCAP);
2571 		if (error != 0)
2572 			return (error);
2573 		if (ifp->if_ioctl == NULL)
2574 			return (EOPNOTSUPP);
2575 		if (ifr->ifr_reqcap & ~ifp->if_capabilities)
2576 			return (EINVAL);
2577 		error = (*ifp->if_ioctl)(ifp, cmd, data);
2578 		if (error == 0)
2579 			getmicrotime(&ifp->if_lastchange);
2580 		break;
2581 
2582 	case SIOCSIFCAPNV:
2583 		error = priv_check(td, PRIV_NET_SETIFCAP);
2584 		if (error != 0)
2585 			return (error);
2586 		if (ifp->if_ioctl == NULL)
2587 			return (EOPNOTSUPP);
2588 		if ((ifp->if_capabilities & IFCAP_NV) == 0)
2589 			return (EINVAL);
2590 		if (ifr->ifr_cap_nv.length > IFR_CAP_NV_MAXBUFSIZE)
2591 			return (EINVAL);
2592 		nvcap = NULL;
2593 		buf = malloc(ifr->ifr_cap_nv.length, M_TEMP, M_WAITOK);
2594 		for (;;) {
2595 			error = copyin(ifr->ifr_cap_nv.buffer, buf,
2596 			    ifr->ifr_cap_nv.length);
2597 			if (error != 0)
2598 				break;
2599 			nvcap = nvlist_unpack(buf, ifr->ifr_cap_nv.length, 0);
2600 			if (nvcap == NULL) {
2601 				error = EINVAL;
2602 				break;
2603 			}
2604 			drv_ioctl_data.reqcap = if_capnv_to_capint(nvcap,
2605 			    &ifp->if_capenable, ifcap_nv_bit_names, false);
2606 			if ((drv_ioctl_data.reqcap &
2607 			    ~ifp->if_capabilities) != 0) {
2608 				error = EINVAL;
2609 				break;
2610 			}
2611 			drv_ioctl_data.reqcap2 = if_capnv_to_capint(nvcap,
2612 			    &ifp->if_capenable2, ifcap2_nv_bit_names, false);
2613 			if ((drv_ioctl_data.reqcap2 &
2614 			    ~ifp->if_capabilities2) != 0) {
2615 				error = EINVAL;
2616 				break;
2617 			}
2618 			drv_ioctl_data.nvcap = nvcap;
2619 			error = (*ifp->if_ioctl)(ifp, SIOCSIFCAPNV,
2620 			    (caddr_t)&drv_ioctl_data);
2621 			break;
2622 		}
2623 		nvlist_destroy(nvcap);
2624 		free(buf, M_TEMP);
2625 		if (error == 0)
2626 			getmicrotime(&ifp->if_lastchange);
2627 		break;
2628 
2629 #ifdef MAC
2630 	case SIOCSIFMAC:
2631 		error = mac_ifnet_ioctl_set(td->td_ucred, ifr, ifp);
2632 		break;
2633 #endif
2634 
2635 	case SIOCSIFNAME:
2636 		error = priv_check(td, PRIV_NET_SETIFNAME);
2637 		if (error)
2638 			return (error);
2639 		error = copyinstr(ifr_data_get_ptr(ifr), new_name, IFNAMSIZ,
2640 		    NULL);
2641 		if (error != 0)
2642 			return (error);
2643 		error = if_rename(ifp, new_name);
2644 		break;
2645 
2646 	case SIOCSIFMETRIC:
2647 		error = priv_check(td, PRIV_NET_SETIFMETRIC);
2648 		if (error)
2649 			return (error);
2650 		ifp->if_metric = ifr->ifr_metric;
2651 		getmicrotime(&ifp->if_lastchange);
2652 		break;
2653 
2654 	case SIOCSIFPHYS:
2655 		error = priv_check(td, PRIV_NET_SETIFPHYS);
2656 		if (error)
2657 			return (error);
2658 		if (ifp->if_ioctl == NULL)
2659 			return (EOPNOTSUPP);
2660 		error = (*ifp->if_ioctl)(ifp, cmd, data);
2661 		if (error == 0)
2662 			getmicrotime(&ifp->if_lastchange);
2663 		break;
2664 
2665 	case SIOCSIFMTU:
2666 	{
2667 		u_long oldmtu = ifp->if_mtu;
2668 
2669 		error = priv_check(td, PRIV_NET_SETIFMTU);
2670 		if (error)
2671 			return (error);
2672 		if (ifr->ifr_mtu < IF_MINMTU || ifr->ifr_mtu > IF_MAXMTU)
2673 			return (EINVAL);
2674 		if (ifp->if_ioctl == NULL)
2675 			return (EOPNOTSUPP);
2676 		/* Disallow MTU changes on bridge member interfaces. */
2677 		if (ifp->if_bridge)
2678 			return (EOPNOTSUPP);
2679 		error = (*ifp->if_ioctl)(ifp, cmd, data);
2680 		if (error == 0) {
2681 			getmicrotime(&ifp->if_lastchange);
2682 			rt_ifmsg(ifp, 0);
2683 #ifdef INET
2684 			DEBUGNET_NOTIFY_MTU(ifp);
2685 #endif
2686 		}
2687 		/*
2688 		 * If the link MTU changed, do network layer specific procedure.
2689 		 */
2690 		if (ifp->if_mtu != oldmtu)
2691 			if_notifymtu(ifp);
2692 		break;
2693 	}
2694 
2695 	case SIOCADDMULTI:
2696 	case SIOCDELMULTI:
2697 		if (cmd == SIOCADDMULTI)
2698 			error = priv_check(td, PRIV_NET_ADDMULTI);
2699 		else
2700 			error = priv_check(td, PRIV_NET_DELMULTI);
2701 		if (error)
2702 			return (error);
2703 
2704 		/* Don't allow group membership on non-multicast interfaces. */
2705 		if ((ifp->if_flags & IFF_MULTICAST) == 0)
2706 			return (EOPNOTSUPP);
2707 
2708 		/* Don't let users screw up protocols' entries. */
2709 		if (ifr->ifr_addr.sa_family != AF_LINK)
2710 			return (EINVAL);
2711 
2712 		if (cmd == SIOCADDMULTI) {
2713 			struct epoch_tracker et;
2714 			struct ifmultiaddr *ifma;
2715 
2716 			/*
2717 			 * Userland is only permitted to join groups once
2718 			 * via the if_addmulti() KPI, because it cannot hold
2719 			 * struct ifmultiaddr * between calls. It may also
2720 			 * lose a race while we check if the membership
2721 			 * already exists.
2722 			 */
2723 			NET_EPOCH_ENTER(et);
2724 			ifma = if_findmulti(ifp, &ifr->ifr_addr);
2725 			NET_EPOCH_EXIT(et);
2726 			if (ifma != NULL)
2727 				error = EADDRINUSE;
2728 			else
2729 				error = if_addmulti(ifp, &ifr->ifr_addr, &ifma);
2730 		} else {
2731 			error = if_delmulti(ifp, &ifr->ifr_addr);
2732 		}
2733 		if (error == 0)
2734 			getmicrotime(&ifp->if_lastchange);
2735 		break;
2736 
2737 	case SIOCSIFPHYADDR:
2738 	case SIOCDIFPHYADDR:
2739 #ifdef INET6
2740 	case SIOCSIFPHYADDR_IN6:
2741 #endif
2742 	case SIOCSIFMEDIA:
2743 	case SIOCSIFGENERIC:
2744 		error = priv_check(td, PRIV_NET_HWIOCTL);
2745 		if (error)
2746 			return (error);
2747 		if (ifp->if_ioctl == NULL)
2748 			return (EOPNOTSUPP);
2749 		error = (*ifp->if_ioctl)(ifp, cmd, data);
2750 		if (error == 0)
2751 			getmicrotime(&ifp->if_lastchange);
2752 		break;
2753 
2754 	case SIOCGIFSTATUS:
2755 	case SIOCGIFPSRCADDR:
2756 	case SIOCGIFPDSTADDR:
2757 	case SIOCGIFMEDIA:
2758 	case SIOCGIFXMEDIA:
2759 	case SIOCGIFGENERIC:
2760 	case SIOCGIFRSSKEY:
2761 	case SIOCGIFRSSHASH:
2762 	case SIOCGIFDOWNREASON:
2763 		if (ifp->if_ioctl == NULL)
2764 			return (EOPNOTSUPP);
2765 		error = (*ifp->if_ioctl)(ifp, cmd, data);
2766 		break;
2767 
2768 	case SIOCSIFLLADDR:
2769 		error = priv_check(td, PRIV_NET_SETLLADDR);
2770 		if (error)
2771 			return (error);
2772 		error = if_setlladdr(ifp,
2773 		    ifr->ifr_addr.sa_data, ifr->ifr_addr.sa_len);
2774 		break;
2775 
2776 	case SIOCGHWADDR:
2777 		error = if_gethwaddr(ifp, ifr);
2778 		break;
2779 
2780 	case SIOCAIFGROUP:
2781 	{
2782 		const char *groupname;
2783 
2784 		error = priv_check(td, PRIV_NET_ADDIFGROUP);
2785 		if (error)
2786 			return (error);
2787 		groupname = ((struct ifgroupreq *)data)->ifgr_group;
2788 		if (strnlen(groupname, IFNAMSIZ) == IFNAMSIZ)
2789 			return (EINVAL);
2790 		error = if_addgroup(ifp, groupname);
2791 		if (error != 0)
2792 			return (error);
2793 		break;
2794 	}
2795 	case SIOCGIFGROUP:
2796 		error = if_getgroup((struct ifgroupreq *)data, ifp);
2797 		break;
2798 
2799 	case SIOCDIFGROUP:
2800 	{
2801 		const char *groupname;
2802 
2803 		error = priv_check(td, PRIV_NET_DELIFGROUP);
2804 		if (error)
2805 			return (error);
2806 		groupname = ((struct ifgroupreq *)data)->ifgr_group;
2807 		if (strnlen(groupname, IFNAMSIZ) == IFNAMSIZ)
2808 			return (EINVAL);
2809 		error = if_delgroup(ifp, groupname);
2810 		if (error != 0)
2811 			return (error);
2812 		break;
2813 	}
2814 	default:
2815 		error = ENOIOCTL;
2816 		break;
2817 	}
2818 	return (error);
2819 }
2820 
2821 /*
2822  * Interface ioctls.
2823  */
2824 int
ifioctl(struct socket * so,u_long cmd,caddr_t data,struct thread * td)2825 ifioctl(struct socket *so, u_long cmd, caddr_t data, struct thread *td)
2826 {
2827 #ifdef COMPAT_FREEBSD32
2828 	union {
2829 		struct ifconf ifc;
2830 		struct ifdrv ifd;
2831 		struct ifgroupreq ifgr;
2832 		struct ifmediareq ifmr;
2833 	} thunk;
2834 	u_long saved_cmd;
2835 	struct ifconf32 *ifc32;
2836 	struct ifdrv32 *ifd32;
2837 	struct ifgroupreq32 *ifgr32;
2838 	struct ifmediareq32 *ifmr32;
2839 #endif
2840 	struct ifnet *ifp;
2841 	struct ifreq *ifr;
2842 	int error;
2843 	int oif_flags;
2844 #ifdef VIMAGE
2845 	bool shutdown;
2846 #endif
2847 
2848 	CURVNET_SET(so->so_vnet);
2849 #ifdef VIMAGE
2850 	/* Make sure the VNET is stable. */
2851 	shutdown = VNET_IS_SHUTTING_DOWN(so->so_vnet);
2852 	if (shutdown) {
2853 		CURVNET_RESTORE();
2854 		return (EBUSY);
2855 	}
2856 #endif
2857 
2858 #ifdef COMPAT_FREEBSD32
2859 	saved_cmd = cmd;
2860 	switch (cmd) {
2861 	case SIOCGIFCONF32:
2862 		ifc32 = (struct ifconf32 *)data;
2863 		thunk.ifc.ifc_len = ifc32->ifc_len;
2864 		thunk.ifc.ifc_buf = PTRIN(ifc32->ifc_buf);
2865 		data = (caddr_t)&thunk.ifc;
2866 		cmd = SIOCGIFCONF;
2867 		break;
2868 	case SIOCGDRVSPEC32:
2869 	case SIOCSDRVSPEC32:
2870 		ifd32 = (struct ifdrv32 *)data;
2871 		memcpy(thunk.ifd.ifd_name, ifd32->ifd_name,
2872 		    sizeof(thunk.ifd.ifd_name));
2873 		thunk.ifd.ifd_cmd = ifd32->ifd_cmd;
2874 		thunk.ifd.ifd_len = ifd32->ifd_len;
2875 		thunk.ifd.ifd_data = PTRIN(ifd32->ifd_data);
2876 		data = (caddr_t)&thunk.ifd;
2877 		cmd = _IOC_NEWTYPE(cmd, struct ifdrv);
2878 		break;
2879 	case SIOCAIFGROUP32:
2880 	case SIOCGIFGROUP32:
2881 	case SIOCDIFGROUP32:
2882 	case SIOCGIFGMEMB32:
2883 		ifgr32 = (struct ifgroupreq32 *)data;
2884 		memcpy(thunk.ifgr.ifgr_name, ifgr32->ifgr_name,
2885 		    sizeof(thunk.ifgr.ifgr_name));
2886 		thunk.ifgr.ifgr_len = ifgr32->ifgr_len;
2887 		switch (cmd) {
2888 		case SIOCAIFGROUP32:
2889 		case SIOCDIFGROUP32:
2890 			memcpy(thunk.ifgr.ifgr_group, ifgr32->ifgr_group,
2891 			    sizeof(thunk.ifgr.ifgr_group));
2892 			break;
2893 		case SIOCGIFGROUP32:
2894 		case SIOCGIFGMEMB32:
2895 			thunk.ifgr.ifgr_groups = PTRIN(ifgr32->ifgr_groups);
2896 			break;
2897 		}
2898 		data = (caddr_t)&thunk.ifgr;
2899 		cmd = _IOC_NEWTYPE(cmd, struct ifgroupreq);
2900 		break;
2901 	case SIOCGIFMEDIA32:
2902 	case SIOCGIFXMEDIA32:
2903 		ifmr32 = (struct ifmediareq32 *)data;
2904 		memcpy(thunk.ifmr.ifm_name, ifmr32->ifm_name,
2905 		    sizeof(thunk.ifmr.ifm_name));
2906 		thunk.ifmr.ifm_current = ifmr32->ifm_current;
2907 		thunk.ifmr.ifm_mask = ifmr32->ifm_mask;
2908 		thunk.ifmr.ifm_status = ifmr32->ifm_status;
2909 		thunk.ifmr.ifm_active = ifmr32->ifm_active;
2910 		thunk.ifmr.ifm_count = ifmr32->ifm_count;
2911 		thunk.ifmr.ifm_ulist = PTRIN(ifmr32->ifm_ulist);
2912 		data = (caddr_t)&thunk.ifmr;
2913 		cmd = _IOC_NEWTYPE(cmd, struct ifmediareq);
2914 		break;
2915 	}
2916 #endif
2917 
2918 	switch (cmd) {
2919 	case SIOCGIFCONF:
2920 		error = ifconf(cmd, data);
2921 		goto out_noref;
2922 	}
2923 
2924 	ifr = (struct ifreq *)data;
2925 	switch (cmd) {
2926 #ifdef VIMAGE
2927 	case SIOCSIFVNET:
2928 		error = priv_check(td, PRIV_NET_SETIFVNET);
2929 		if (error == 0)
2930 			error = if_vmove_loan(td, ifr->ifr_name, ifr->ifr_jid);
2931 		goto out_noref;
2932 
2933 	case SIOCSIFRVNET:
2934 		error = priv_check(td, PRIV_NET_SETIFVNET);
2935 		if (error == 0)
2936 			error = if_vmove_reclaim(td, ifr->ifr_name,
2937 			    ifr->ifr_jid);
2938 		goto out_noref;
2939 #endif
2940 	case SIOCIFCREATE:
2941 	case SIOCIFCREATE2:
2942 		error = priv_check(td, PRIV_NET_IFCREATE);
2943 		if (error == 0)
2944 			error = if_clone_create(ifr->ifr_name,
2945 			    sizeof(ifr->ifr_name), cmd == SIOCIFCREATE2 ?
2946 			    ifr_data_get_ptr(ifr) : NULL);
2947 		goto out_noref;
2948 	case SIOCIFDESTROY:
2949 		error = priv_check(td, PRIV_NET_IFDESTROY);
2950 
2951 		if (error == 0)
2952 			error = if_clone_destroy(ifr->ifr_name);
2953 		goto out_noref;
2954 
2955 	case SIOCIFGCLONERS:
2956 		error = if_clone_list((struct if_clonereq *)data);
2957 		goto out_noref;
2958 
2959 	case SIOCGIFGMEMB:
2960 	{
2961 		struct ifgroupreq *req;
2962 
2963 		req = (struct ifgroupreq *)data;
2964 		if (strnlen(req->ifgr_name, IFNAMSIZ) == IFNAMSIZ) {
2965 			error = EINVAL;
2966 			goto out_noref;
2967 		}
2968 		error = if_getgroupmembers(req);
2969 		goto out_noref;
2970 	}
2971 	}
2972 
2973 	ifp = ifunit_ref(ifr->ifr_name);
2974 	if (ifp == NULL) {
2975 		error = ENXIO;
2976 		goto out_noref;
2977 	}
2978 
2979 	error = ifhwioctl(cmd, ifp, data, td);
2980 	if (error != ENOIOCTL)
2981 		goto out_ref;
2982 
2983 	oif_flags = ifp->if_flags;
2984 	if (so->so_proto == NULL) {
2985 		error = EOPNOTSUPP;
2986 		goto out_ref;
2987 	}
2988 
2989 	/*
2990 	 * Pass the request on to the socket control method, and if the
2991 	 * latter returns EOPNOTSUPP, directly to the interface.
2992 	 *
2993 	 * Make an exception for the legacy SIOCSIF* requests.  Drivers
2994 	 * trust SIOCSIFADDR et al to come from an already privileged
2995 	 * layer, and do not perform any credentials checks or input
2996 	 * validation.
2997 	 */
2998 	error = so->so_proto->pr_control(so, cmd, data, ifp, td);
2999 	if (error == EOPNOTSUPP && ifp != NULL && ifp->if_ioctl != NULL &&
3000 	    cmd != SIOCSIFADDR && cmd != SIOCSIFBRDADDR &&
3001 	    cmd != SIOCSIFDSTADDR && cmd != SIOCSIFNETMASK)
3002 		error = (*ifp->if_ioctl)(ifp, cmd, data);
3003 
3004 	if (!(oif_flags & IFF_UP) && (ifp->if_flags & IFF_UP))
3005 		if_up(ifp);
3006 out_ref:
3007 	if_rele(ifp);
3008 out_noref:
3009 	CURVNET_RESTORE();
3010 #ifdef COMPAT_FREEBSD32
3011 	if (error != 0)
3012 		return (error);
3013 	switch (saved_cmd) {
3014 	case SIOCGIFCONF32:
3015 		ifc32->ifc_len = thunk.ifc.ifc_len;
3016 		break;
3017 	case SIOCGDRVSPEC32:
3018 		/*
3019 		 * SIOCGDRVSPEC is IOWR, but nothing actually touches
3020 		 * the struct so just assert that ifd_len (the only
3021 		 * field it might make sense to update) hasn't
3022 		 * changed.
3023 		 */
3024 		KASSERT(thunk.ifd.ifd_len == ifd32->ifd_len,
3025 		    ("ifd_len was updated %u -> %zu", ifd32->ifd_len,
3026 			thunk.ifd.ifd_len));
3027 		break;
3028 	case SIOCGIFGROUP32:
3029 	case SIOCGIFGMEMB32:
3030 		ifgr32->ifgr_len = thunk.ifgr.ifgr_len;
3031 		break;
3032 	case SIOCGIFMEDIA32:
3033 	case SIOCGIFXMEDIA32:
3034 		ifmr32->ifm_current = thunk.ifmr.ifm_current;
3035 		ifmr32->ifm_mask = thunk.ifmr.ifm_mask;
3036 		ifmr32->ifm_status = thunk.ifmr.ifm_status;
3037 		ifmr32->ifm_active = thunk.ifmr.ifm_active;
3038 		ifmr32->ifm_count = thunk.ifmr.ifm_count;
3039 		break;
3040 	}
3041 #endif
3042 	return (error);
3043 }
3044 
3045 int
if_rename(struct ifnet * ifp,char * new_name)3046 if_rename(struct ifnet *ifp, char *new_name)
3047 {
3048 	struct ifaddr *ifa;
3049 	struct sockaddr_dl *sdl;
3050 	size_t namelen, onamelen;
3051 	char old_name[IFNAMSIZ];
3052 	char strbuf[IFNAMSIZ + 8];
3053 
3054 	if (new_name[0] == '\0')
3055 		return (EINVAL);
3056 	if (strcmp(new_name, ifp->if_xname) == 0)
3057 		return (0);
3058 	if (ifunit(new_name) != NULL)
3059 		return (EEXIST);
3060 
3061 	if_printf(ifp, "changing name to '%s'\n", new_name);
3062 
3063 	IF_ADDR_WLOCK(ifp);
3064 	strlcpy(old_name, ifp->if_xname, sizeof(old_name));
3065 	strlcpy(ifp->if_xname, new_name, sizeof(ifp->if_xname));
3066 	ifa = ifp->if_addr;
3067 	sdl = (struct sockaddr_dl *)ifa->ifa_addr;
3068 	namelen = strlen(new_name);
3069 	onamelen = sdl->sdl_nlen;
3070 	/*
3071 	 * Move the address if needed.  This is safe because we
3072 	 * allocate space for a name of length IFNAMSIZ when we
3073 	 * create this in if_attach().
3074 	 */
3075 	if (namelen != onamelen) {
3076 		bcopy(sdl->sdl_data + onamelen,
3077 		    sdl->sdl_data + namelen, sdl->sdl_alen);
3078 	}
3079 	bcopy(new_name, sdl->sdl_data, namelen);
3080 	sdl->sdl_nlen = namelen;
3081 	sdl = (struct sockaddr_dl *)ifa->ifa_netmask;
3082 	bzero(sdl->sdl_data, onamelen);
3083 	while (namelen != 0)
3084 		sdl->sdl_data[--namelen] = 0xff;
3085 	IF_ADDR_WUNLOCK(ifp);
3086 
3087 	EVENTHANDLER_INVOKE(ifnet_rename_event, ifp, old_name);
3088 
3089 	snprintf(strbuf, sizeof(strbuf), "name=%s", new_name);
3090 	devctl_notify("IFNET", old_name, "RENAME", strbuf);
3091 
3092 	return (0);
3093 }
3094 
3095 /*
3096  * The code common to handling reference counted flags,
3097  * e.g., in ifpromisc() and if_allmulti().
3098  * The "pflag" argument can specify a permanent mode flag to check,
3099  * such as IFF_PPROMISC for promiscuous mode; should be 0 if none.
3100  *
3101  * Only to be used on stack-owned flags, not driver-owned flags.
3102  */
3103 static int
if_setflag(struct ifnet * ifp,int flag,int pflag,int * refcount,int onswitch)3104 if_setflag(struct ifnet *ifp, int flag, int pflag, int *refcount, int onswitch)
3105 {
3106 	struct ifreq ifr;
3107 	int error;
3108 	int oldflags, oldcount;
3109 
3110 	/* Sanity checks to catch programming errors */
3111 	KASSERT((flag & (IFF_DRV_OACTIVE|IFF_DRV_RUNNING)) == 0,
3112 	    ("%s: setting driver-owned flag %d", __func__, flag));
3113 
3114 	if (onswitch)
3115 		KASSERT(*refcount >= 0,
3116 		    ("%s: increment negative refcount %d for flag %d",
3117 		    __func__, *refcount, flag));
3118 	else
3119 		KASSERT(*refcount > 0,
3120 		    ("%s: decrement non-positive refcount %d for flag %d",
3121 		    __func__, *refcount, flag));
3122 
3123 	/* In case this mode is permanent, just touch refcount */
3124 	if (ifp->if_flags & pflag) {
3125 		*refcount += onswitch ? 1 : -1;
3126 		return (0);
3127 	}
3128 
3129 	/* Save ifnet parameters for if_ioctl() may fail */
3130 	oldcount = *refcount;
3131 	oldflags = ifp->if_flags;
3132 
3133 	/*
3134 	 * See if we aren't the only and touching refcount is enough.
3135 	 * Actually toggle interface flag if we are the first or last.
3136 	 */
3137 	if (onswitch) {
3138 		if ((*refcount)++)
3139 			return (0);
3140 		ifp->if_flags |= flag;
3141 	} else {
3142 		if (--(*refcount))
3143 			return (0);
3144 		ifp->if_flags &= ~flag;
3145 	}
3146 
3147 	/* Call down the driver since we've changed interface flags */
3148 	if (ifp->if_ioctl == NULL) {
3149 		error = EOPNOTSUPP;
3150 		goto recover;
3151 	}
3152 	ifr.ifr_flags = ifp->if_flags & 0xffff;
3153 	ifr.ifr_flagshigh = ifp->if_flags >> 16;
3154 	error = (*ifp->if_ioctl)(ifp, SIOCSIFFLAGS, (caddr_t)&ifr);
3155 	if (error)
3156 		goto recover;
3157 	/* Notify userland that interface flags have changed */
3158 	rt_ifmsg(ifp, flag);
3159 	return (0);
3160 
3161 recover:
3162 	/* Recover after driver error */
3163 	*refcount = oldcount;
3164 	ifp->if_flags = oldflags;
3165 	return (error);
3166 }
3167 
3168 /*
3169  * Set/clear promiscuous mode on interface ifp based on the truth value
3170  * of pswitch.  The calls are reference counted so that only the first
3171  * "on" request actually has an effect, as does the final "off" request.
3172  * Results are undefined if the "off" and "on" requests are not matched.
3173  */
3174 int
ifpromisc(struct ifnet * ifp,int pswitch)3175 ifpromisc(struct ifnet *ifp, int pswitch)
3176 {
3177 	int error;
3178 	int oldflags = ifp->if_flags;
3179 
3180 	error = if_setflag(ifp, IFF_PROMISC, IFF_PPROMISC,
3181 			   &ifp->if_pcount, pswitch);
3182 	/* If promiscuous mode status has changed, log a message */
3183 	if (error == 0 && ((ifp->if_flags ^ oldflags) & IFF_PROMISC) &&
3184             log_promisc_mode_change)
3185 		if_printf(ifp, "promiscuous mode %s\n",
3186 		    (ifp->if_flags & IFF_PROMISC) ? "enabled" : "disabled");
3187 	return (error);
3188 }
3189 
3190 /*
3191  * Return interface configuration
3192  * of system.  List may be used
3193  * in later ioctl's (above) to get
3194  * other information.
3195  */
3196 /*ARGSUSED*/
3197 static int
ifconf(u_long cmd,caddr_t data)3198 ifconf(u_long cmd, caddr_t data)
3199 {
3200 	struct ifconf *ifc = (struct ifconf *)data;
3201 	struct ifnet *ifp;
3202 	struct ifaddr *ifa;
3203 	struct ifreq ifr;
3204 	struct sbuf *sb;
3205 	int error, full = 0, valid_len, max_len;
3206 
3207 	/* Limit initial buffer size to maxphys to avoid DoS from userspace. */
3208 	max_len = maxphys - 1;
3209 
3210 	/* Prevent hostile input from being able to crash the system */
3211 	if (ifc->ifc_len <= 0)
3212 		return (EINVAL);
3213 
3214 again:
3215 	if (ifc->ifc_len <= max_len) {
3216 		max_len = ifc->ifc_len;
3217 		full = 1;
3218 	}
3219 	sb = sbuf_new(NULL, NULL, max_len + 1, SBUF_FIXEDLEN);
3220 	max_len = 0;
3221 	valid_len = 0;
3222 
3223 	IFNET_RLOCK();
3224 	CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) {
3225 		struct epoch_tracker et;
3226 		int addrs;
3227 
3228 		/*
3229 		 * Zero the ifr to make sure we don't disclose the contents
3230 		 * of the stack.
3231 		 */
3232 		memset(&ifr, 0, sizeof(ifr));
3233 
3234 		if (strlcpy(ifr.ifr_name, ifp->if_xname, sizeof(ifr.ifr_name))
3235 		    >= sizeof(ifr.ifr_name)) {
3236 			sbuf_delete(sb);
3237 			IFNET_RUNLOCK();
3238 			return (ENAMETOOLONG);
3239 		}
3240 
3241 		addrs = 0;
3242 		NET_EPOCH_ENTER(et);
3243 		CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
3244 			struct sockaddr *sa = ifa->ifa_addr;
3245 
3246 			if (prison_if(curthread->td_ucred, sa) != 0)
3247 				continue;
3248 			addrs++;
3249 			if (sa->sa_len <= sizeof(*sa)) {
3250 				if (sa->sa_len < sizeof(*sa)) {
3251 					memset(&ifr.ifr_ifru.ifru_addr, 0,
3252 					    sizeof(ifr.ifr_ifru.ifru_addr));
3253 					memcpy(&ifr.ifr_ifru.ifru_addr, sa,
3254 					    sa->sa_len);
3255 				} else
3256 					ifr.ifr_ifru.ifru_addr = *sa;
3257 				sbuf_bcat(sb, &ifr, sizeof(ifr));
3258 				max_len += sizeof(ifr);
3259 			} else {
3260 				sbuf_bcat(sb, &ifr,
3261 				    offsetof(struct ifreq, ifr_addr));
3262 				max_len += offsetof(struct ifreq, ifr_addr);
3263 				sbuf_bcat(sb, sa, sa->sa_len);
3264 				max_len += sa->sa_len;
3265 			}
3266 
3267 			if (sbuf_error(sb) == 0)
3268 				valid_len = sbuf_len(sb);
3269 		}
3270 		NET_EPOCH_EXIT(et);
3271 		if (addrs == 0) {
3272 			sbuf_bcat(sb, &ifr, sizeof(ifr));
3273 			max_len += sizeof(ifr);
3274 
3275 			if (sbuf_error(sb) == 0)
3276 				valid_len = sbuf_len(sb);
3277 		}
3278 	}
3279 	IFNET_RUNLOCK();
3280 
3281 	/*
3282 	 * If we didn't allocate enough space (uncommon), try again.  If
3283 	 * we have already allocated as much space as we are allowed,
3284 	 * return what we've got.
3285 	 */
3286 	if (valid_len != max_len && !full) {
3287 		sbuf_delete(sb);
3288 		goto again;
3289 	}
3290 
3291 	ifc->ifc_len = valid_len;
3292 	sbuf_finish(sb);
3293 	error = copyout(sbuf_data(sb), ifc->ifc_req, ifc->ifc_len);
3294 	sbuf_delete(sb);
3295 	return (error);
3296 }
3297 
3298 /*
3299  * Just like ifpromisc(), but for all-multicast-reception mode.
3300  */
3301 int
if_allmulti(struct ifnet * ifp,int onswitch)3302 if_allmulti(struct ifnet *ifp, int onswitch)
3303 {
3304 
3305 	return (if_setflag(ifp, IFF_ALLMULTI, IFF_PALLMULTI, &ifp->if_amcount,
3306 	    onswitch));
3307 }
3308 
3309 struct ifmultiaddr *
if_findmulti(struct ifnet * ifp,const struct sockaddr * sa)3310 if_findmulti(struct ifnet *ifp, const struct sockaddr *sa)
3311 {
3312 	struct ifmultiaddr *ifma;
3313 
3314 	IF_ADDR_LOCK_ASSERT(ifp);
3315 
3316 	CK_STAILQ_FOREACH(ifma, &ifp->if_multiaddrs, ifma_link) {
3317 		if (sa->sa_family == AF_LINK) {
3318 			if (sa_dl_equal(ifma->ifma_addr, sa))
3319 				break;
3320 		} else {
3321 			if (sa_equal(ifma->ifma_addr, sa))
3322 				break;
3323 		}
3324 	}
3325 
3326 	return ifma;
3327 }
3328 
3329 /*
3330  * Allocate a new ifmultiaddr and initialize based on passed arguments.  We
3331  * make copies of passed sockaddrs.  The ifmultiaddr will not be added to
3332  * the ifnet multicast address list here, so the caller must do that and
3333  * other setup work (such as notifying the device driver).  The reference
3334  * count is initialized to 1.
3335  */
3336 static struct ifmultiaddr *
if_allocmulti(struct ifnet * ifp,struct sockaddr * sa,struct sockaddr * llsa,int mflags)3337 if_allocmulti(struct ifnet *ifp, struct sockaddr *sa, struct sockaddr *llsa,
3338     int mflags)
3339 {
3340 	struct ifmultiaddr *ifma;
3341 	struct sockaddr *dupsa;
3342 
3343 	ifma = malloc(sizeof *ifma, M_IFMADDR, mflags |
3344 	    M_ZERO);
3345 	if (ifma == NULL)
3346 		return (NULL);
3347 
3348 	dupsa = malloc(sa->sa_len, M_IFMADDR, mflags);
3349 	if (dupsa == NULL) {
3350 		free(ifma, M_IFMADDR);
3351 		return (NULL);
3352 	}
3353 	bcopy(sa, dupsa, sa->sa_len);
3354 	ifma->ifma_addr = dupsa;
3355 
3356 	ifma->ifma_ifp = ifp;
3357 	ifma->ifma_refcount = 1;
3358 	ifma->ifma_protospec = NULL;
3359 
3360 	if (llsa == NULL) {
3361 		ifma->ifma_lladdr = NULL;
3362 		return (ifma);
3363 	}
3364 
3365 	dupsa = malloc(llsa->sa_len, M_IFMADDR, mflags);
3366 	if (dupsa == NULL) {
3367 		free(ifma->ifma_addr, M_IFMADDR);
3368 		free(ifma, M_IFMADDR);
3369 		return (NULL);
3370 	}
3371 	bcopy(llsa, dupsa, llsa->sa_len);
3372 	ifma->ifma_lladdr = dupsa;
3373 
3374 	return (ifma);
3375 }
3376 
3377 /*
3378  * if_freemulti: free ifmultiaddr structure and possibly attached related
3379  * addresses.  The caller is responsible for implementing reference
3380  * counting, notifying the driver, handling routing messages, and releasing
3381  * any dependent link layer state.
3382  */
3383 #ifdef MCAST_VERBOSE
3384 extern void kdb_backtrace(void);
3385 #endif
3386 static void
if_freemulti_internal(struct ifmultiaddr * ifma)3387 if_freemulti_internal(struct ifmultiaddr *ifma)
3388 {
3389 
3390 	KASSERT(ifma->ifma_refcount == 0, ("if_freemulti: refcount %d",
3391 	    ifma->ifma_refcount));
3392 
3393 	if (ifma->ifma_lladdr != NULL)
3394 		free(ifma->ifma_lladdr, M_IFMADDR);
3395 #ifdef MCAST_VERBOSE
3396 	kdb_backtrace();
3397 	printf("%s freeing ifma: %p\n", __func__, ifma);
3398 #endif
3399 	free(ifma->ifma_addr, M_IFMADDR);
3400 	free(ifma, M_IFMADDR);
3401 }
3402 
3403 static void
if_destroymulti(epoch_context_t ctx)3404 if_destroymulti(epoch_context_t ctx)
3405 {
3406 	struct ifmultiaddr *ifma;
3407 
3408 	ifma = __containerof(ctx, struct ifmultiaddr, ifma_epoch_ctx);
3409 	if_freemulti_internal(ifma);
3410 }
3411 
3412 void
if_freemulti(struct ifmultiaddr * ifma)3413 if_freemulti(struct ifmultiaddr *ifma)
3414 {
3415 	KASSERT(ifma->ifma_refcount == 0, ("if_freemulti_epoch: refcount %d",
3416 	    ifma->ifma_refcount));
3417 
3418 	NET_EPOCH_CALL(if_destroymulti, &ifma->ifma_epoch_ctx);
3419 }
3420 
3421 /*
3422  * Register an additional multicast address with a network interface.
3423  *
3424  * - If the address is already present, bump the reference count on the
3425  *   address and return.
3426  * - If the address is not link-layer, look up a link layer address.
3427  * - Allocate address structures for one or both addresses, and attach to the
3428  *   multicast address list on the interface.  If automatically adding a link
3429  *   layer address, the protocol address will own a reference to the link
3430  *   layer address, to be freed when it is freed.
3431  * - Notify the network device driver of an addition to the multicast address
3432  *   list.
3433  *
3434  * 'sa' points to caller-owned memory with the desired multicast address.
3435  *
3436  * 'retifma' will be used to return a pointer to the resulting multicast
3437  * address reference, if desired.
3438  */
3439 int
if_addmulti(struct ifnet * ifp,struct sockaddr * sa,struct ifmultiaddr ** retifma)3440 if_addmulti(struct ifnet *ifp, struct sockaddr *sa,
3441     struct ifmultiaddr **retifma)
3442 {
3443 	struct ifmultiaddr *ifma, *ll_ifma;
3444 	struct sockaddr *llsa;
3445 	struct sockaddr_dl sdl;
3446 	int error;
3447 
3448 #ifdef INET
3449 	IN_MULTI_LIST_UNLOCK_ASSERT();
3450 #endif
3451 #ifdef INET6
3452 	IN6_MULTI_LIST_UNLOCK_ASSERT();
3453 #endif
3454 	/*
3455 	 * If the address is already present, return a new reference to it;
3456 	 * otherwise, allocate storage and set up a new address.
3457 	 */
3458 	IF_ADDR_WLOCK(ifp);
3459 	ifma = if_findmulti(ifp, sa);
3460 	if (ifma != NULL) {
3461 		ifma->ifma_refcount++;
3462 		if (retifma != NULL)
3463 			*retifma = ifma;
3464 		IF_ADDR_WUNLOCK(ifp);
3465 		return (0);
3466 	}
3467 
3468 	/*
3469 	 * The address isn't already present; resolve the protocol address
3470 	 * into a link layer address, and then look that up, bump its
3471 	 * refcount or allocate an ifma for that also.
3472 	 * Most link layer resolving functions returns address data which
3473 	 * fits inside default sockaddr_dl structure. However callback
3474 	 * can allocate another sockaddr structure, in that case we need to
3475 	 * free it later.
3476 	 */
3477 	llsa = NULL;
3478 	ll_ifma = NULL;
3479 	if (ifp->if_resolvemulti != NULL) {
3480 		/* Provide called function with buffer size information */
3481 		sdl.sdl_len = sizeof(sdl);
3482 		llsa = (struct sockaddr *)&sdl;
3483 		error = ifp->if_resolvemulti(ifp, &llsa, sa);
3484 		if (error)
3485 			goto unlock_out;
3486 	}
3487 
3488 	/*
3489 	 * Allocate the new address.  Don't hook it up yet, as we may also
3490 	 * need to allocate a link layer multicast address.
3491 	 */
3492 	ifma = if_allocmulti(ifp, sa, llsa, M_NOWAIT);
3493 	if (ifma == NULL) {
3494 		error = ENOMEM;
3495 		goto free_llsa_out;
3496 	}
3497 
3498 	/*
3499 	 * If a link layer address is found, we'll need to see if it's
3500 	 * already present in the address list, or allocate is as well.
3501 	 * When this block finishes, the link layer address will be on the
3502 	 * list.
3503 	 */
3504 	if (llsa != NULL) {
3505 		ll_ifma = if_findmulti(ifp, llsa);
3506 		if (ll_ifma == NULL) {
3507 			ll_ifma = if_allocmulti(ifp, llsa, NULL, M_NOWAIT);
3508 			if (ll_ifma == NULL) {
3509 				--ifma->ifma_refcount;
3510 				if_freemulti(ifma);
3511 				error = ENOMEM;
3512 				goto free_llsa_out;
3513 			}
3514 			ll_ifma->ifma_flags |= IFMA_F_ENQUEUED;
3515 			CK_STAILQ_INSERT_HEAD(&ifp->if_multiaddrs, ll_ifma,
3516 			    ifma_link);
3517 		} else
3518 			ll_ifma->ifma_refcount++;
3519 		ifma->ifma_llifma = ll_ifma;
3520 	}
3521 
3522 	/*
3523 	 * We now have a new multicast address, ifma, and possibly a new or
3524 	 * referenced link layer address.  Add the primary address to the
3525 	 * ifnet address list.
3526 	 */
3527 	ifma->ifma_flags |= IFMA_F_ENQUEUED;
3528 	CK_STAILQ_INSERT_HEAD(&ifp->if_multiaddrs, ifma, ifma_link);
3529 
3530 	if (retifma != NULL)
3531 		*retifma = ifma;
3532 
3533 	/*
3534 	 * Must generate the message while holding the lock so that 'ifma'
3535 	 * pointer is still valid.
3536 	 */
3537 	rt_newmaddrmsg(RTM_NEWMADDR, ifma);
3538 	IF_ADDR_WUNLOCK(ifp);
3539 
3540 	/*
3541 	 * We are certain we have added something, so call down to the
3542 	 * interface to let them know about it.
3543 	 */
3544 	if (ifp->if_ioctl != NULL) {
3545 		if (THREAD_CAN_SLEEP())
3546 			(void )(*ifp->if_ioctl)(ifp, SIOCADDMULTI, 0);
3547 		else
3548 			taskqueue_enqueue(taskqueue_swi, &ifp->if_addmultitask);
3549 	}
3550 
3551 	if ((llsa != NULL) && (llsa != (struct sockaddr *)&sdl))
3552 		link_free_sdl(llsa);
3553 
3554 	return (0);
3555 
3556 free_llsa_out:
3557 	if ((llsa != NULL) && (llsa != (struct sockaddr *)&sdl))
3558 		link_free_sdl(llsa);
3559 
3560 unlock_out:
3561 	IF_ADDR_WUNLOCK(ifp);
3562 	return (error);
3563 }
3564 
3565 static void
if_siocaddmulti(void * arg,int pending)3566 if_siocaddmulti(void *arg, int pending)
3567 {
3568 	struct ifnet *ifp;
3569 
3570 	ifp = arg;
3571 #ifdef DIAGNOSTIC
3572 	if (pending > 1)
3573 		if_printf(ifp, "%d SIOCADDMULTI coalesced\n", pending);
3574 #endif
3575 	CURVNET_SET(ifp->if_vnet);
3576 	(void )(*ifp->if_ioctl)(ifp, SIOCADDMULTI, 0);
3577 	CURVNET_RESTORE();
3578 }
3579 
3580 /*
3581  * Delete a multicast group membership by network-layer group address.
3582  *
3583  * Returns ENOENT if the entry could not be found. If ifp no longer
3584  * exists, results are undefined. This entry point should only be used
3585  * from subsystems which do appropriate locking to hold ifp for the
3586  * duration of the call.
3587  * Network-layer protocol domains must use if_delmulti_ifma().
3588  */
3589 int
if_delmulti(struct ifnet * ifp,struct sockaddr * sa)3590 if_delmulti(struct ifnet *ifp, struct sockaddr *sa)
3591 {
3592 	struct ifmultiaddr *ifma;
3593 	int lastref;
3594 
3595 	KASSERT(ifp, ("%s: NULL ifp", __func__));
3596 
3597 	IF_ADDR_WLOCK(ifp);
3598 	lastref = 0;
3599 	ifma = if_findmulti(ifp, sa);
3600 	if (ifma != NULL)
3601 		lastref = if_delmulti_locked(ifp, ifma, 0);
3602 	IF_ADDR_WUNLOCK(ifp);
3603 
3604 	if (ifma == NULL)
3605 		return (ENOENT);
3606 
3607 	if (lastref && ifp->if_ioctl != NULL) {
3608 		(void)(*ifp->if_ioctl)(ifp, SIOCDELMULTI, 0);
3609 	}
3610 
3611 	return (0);
3612 }
3613 
3614 /*
3615  * Delete all multicast group membership for an interface.
3616  * Should be used to quickly flush all multicast filters.
3617  */
3618 void
if_delallmulti(struct ifnet * ifp)3619 if_delallmulti(struct ifnet *ifp)
3620 {
3621 	struct ifmultiaddr *ifma;
3622 	struct ifmultiaddr *next;
3623 
3624 	IF_ADDR_WLOCK(ifp);
3625 	CK_STAILQ_FOREACH_SAFE(ifma, &ifp->if_multiaddrs, ifma_link, next)
3626 		if_delmulti_locked(ifp, ifma, 0);
3627 	IF_ADDR_WUNLOCK(ifp);
3628 }
3629 
3630 void
if_delmulti_ifma(struct ifmultiaddr * ifma)3631 if_delmulti_ifma(struct ifmultiaddr *ifma)
3632 {
3633 	if_delmulti_ifma_flags(ifma, 0);
3634 }
3635 
3636 /*
3637  * Delete a multicast group membership by group membership pointer.
3638  * Network-layer protocol domains must use this routine.
3639  *
3640  * It is safe to call this routine if the ifp disappeared.
3641  */
3642 void
if_delmulti_ifma_flags(struct ifmultiaddr * ifma,int flags)3643 if_delmulti_ifma_flags(struct ifmultiaddr *ifma, int flags)
3644 {
3645 	struct ifnet *ifp;
3646 	int lastref;
3647 	MCDPRINTF("%s freeing ifma: %p\n", __func__, ifma);
3648 #ifdef INET
3649 	IN_MULTI_LIST_UNLOCK_ASSERT();
3650 #endif
3651 	ifp = ifma->ifma_ifp;
3652 #ifdef DIAGNOSTIC
3653 	if (ifp == NULL) {
3654 		printf("%s: ifma_ifp seems to be detached\n", __func__);
3655 	} else {
3656 		struct epoch_tracker et;
3657 		struct ifnet *oifp;
3658 
3659 		NET_EPOCH_ENTER(et);
3660 		CK_STAILQ_FOREACH(oifp, &V_ifnet, if_link)
3661 			if (ifp == oifp)
3662 				break;
3663 		NET_EPOCH_EXIT(et);
3664 		if (ifp != oifp)
3665 			ifp = NULL;
3666 	}
3667 #endif
3668 	/*
3669 	 * If and only if the ifnet instance exists: Acquire the address lock.
3670 	 */
3671 	if (ifp != NULL)
3672 		IF_ADDR_WLOCK(ifp);
3673 
3674 	lastref = if_delmulti_locked(ifp, ifma, flags);
3675 
3676 	if (ifp != NULL) {
3677 		/*
3678 		 * If and only if the ifnet instance exists:
3679 		 *  Release the address lock.
3680 		 *  If the group was left: update the hardware hash filter.
3681 		 */
3682 		IF_ADDR_WUNLOCK(ifp);
3683 		if (lastref && ifp->if_ioctl != NULL) {
3684 			(void)(*ifp->if_ioctl)(ifp, SIOCDELMULTI, 0);
3685 		}
3686 	}
3687 }
3688 
3689 /*
3690  * Perform deletion of network-layer and/or link-layer multicast address.
3691  *
3692  * Return 0 if the reference count was decremented.
3693  * Return 1 if the final reference was released, indicating that the
3694  * hardware hash filter should be reprogrammed.
3695  */
3696 static int
if_delmulti_locked(struct ifnet * ifp,struct ifmultiaddr * ifma,int detaching)3697 if_delmulti_locked(struct ifnet *ifp, struct ifmultiaddr *ifma, int detaching)
3698 {
3699 	struct ifmultiaddr *ll_ifma;
3700 
3701 	if (ifp != NULL && ifma->ifma_ifp != NULL) {
3702 		KASSERT(ifma->ifma_ifp == ifp,
3703 		    ("%s: inconsistent ifp %p", __func__, ifp));
3704 		IF_ADDR_WLOCK_ASSERT(ifp);
3705 	}
3706 
3707 	ifp = ifma->ifma_ifp;
3708 	MCDPRINTF("%s freeing %p from %s \n", __func__, ifma, ifp ? ifp->if_xname : "");
3709 
3710 	/*
3711 	 * If the ifnet is detaching, null out references to ifnet,
3712 	 * so that upper protocol layers will notice, and not attempt
3713 	 * to obtain locks for an ifnet which no longer exists. The
3714 	 * routing socket announcement must happen before the ifnet
3715 	 * instance is detached from the system.
3716 	 */
3717 	if (detaching) {
3718 #ifdef DIAGNOSTIC
3719 		printf("%s: detaching ifnet instance %p\n", __func__, ifp);
3720 #endif
3721 		/*
3722 		 * ifp may already be nulled out if we are being reentered
3723 		 * to delete the ll_ifma.
3724 		 */
3725 		if (ifp != NULL) {
3726 			rt_newmaddrmsg(RTM_DELMADDR, ifma);
3727 			ifma->ifma_ifp = NULL;
3728 		}
3729 	}
3730 
3731 	if (--ifma->ifma_refcount > 0)
3732 		return 0;
3733 
3734 	if (ifp != NULL && detaching == 0 && (ifma->ifma_flags & IFMA_F_ENQUEUED)) {
3735 		CK_STAILQ_REMOVE(&ifp->if_multiaddrs, ifma, ifmultiaddr, ifma_link);
3736 		ifma->ifma_flags &= ~IFMA_F_ENQUEUED;
3737 	}
3738 	/*
3739 	 * If this ifma is a network-layer ifma, a link-layer ifma may
3740 	 * have been associated with it. Release it first if so.
3741 	 */
3742 	ll_ifma = ifma->ifma_llifma;
3743 	if (ll_ifma != NULL) {
3744 		KASSERT(ifma->ifma_lladdr != NULL,
3745 		    ("%s: llifma w/o lladdr", __func__));
3746 		if (detaching)
3747 			ll_ifma->ifma_ifp = NULL;	/* XXX */
3748 		if (--ll_ifma->ifma_refcount == 0) {
3749 			if (ifp != NULL) {
3750 				if (ll_ifma->ifma_flags & IFMA_F_ENQUEUED) {
3751 					CK_STAILQ_REMOVE(&ifp->if_multiaddrs, ll_ifma, ifmultiaddr,
3752 						ifma_link);
3753 					ll_ifma->ifma_flags &= ~IFMA_F_ENQUEUED;
3754 				}
3755 			}
3756 			if_freemulti(ll_ifma);
3757 		}
3758 	}
3759 #ifdef INVARIANTS
3760 	if (ifp) {
3761 		struct ifmultiaddr *ifmatmp;
3762 
3763 		CK_STAILQ_FOREACH(ifmatmp, &ifp->if_multiaddrs, ifma_link)
3764 			MPASS(ifma != ifmatmp);
3765 	}
3766 #endif
3767 	if_freemulti(ifma);
3768 	/*
3769 	 * The last reference to this instance of struct ifmultiaddr
3770 	 * was released; the hardware should be notified of this change.
3771 	 */
3772 	return 1;
3773 }
3774 
3775 /*
3776  * Set the link layer address on an interface.
3777  *
3778  * At this time we only support certain types of interfaces,
3779  * and we don't allow the length of the address to change.
3780  *
3781  * Set noinline to be dtrace-friendly
3782  */
3783 __noinline int
if_setlladdr(struct ifnet * ifp,const u_char * lladdr,int len)3784 if_setlladdr(struct ifnet *ifp, const u_char *lladdr, int len)
3785 {
3786 	struct sockaddr_dl *sdl;
3787 	struct ifaddr *ifa;
3788 	struct ifreq ifr;
3789 
3790 	ifa = ifp->if_addr;
3791 	if (ifa == NULL)
3792 		return (EINVAL);
3793 
3794 	sdl = (struct sockaddr_dl *)ifa->ifa_addr;
3795 	if (sdl == NULL)
3796 		return (EINVAL);
3797 
3798 	if (len != sdl->sdl_alen)	/* don't allow length to change */
3799 		return (EINVAL);
3800 
3801 	switch (ifp->if_type) {
3802 	case IFT_ETHER:
3803 	case IFT_XETHER:
3804 	case IFT_L2VLAN:
3805 	case IFT_BRIDGE:
3806 	case IFT_IEEE8023ADLAG:
3807 		bcopy(lladdr, LLADDR(sdl), len);
3808 		break;
3809 	default:
3810 		return (ENODEV);
3811 	}
3812 
3813 	/*
3814 	 * If the interface is already up, we need
3815 	 * to re-init it in order to reprogram its
3816 	 * address filter.
3817 	 */
3818 	if ((ifp->if_flags & IFF_UP) != 0) {
3819 		if (ifp->if_ioctl) {
3820 			ifp->if_flags &= ~IFF_UP;
3821 			ifr.ifr_flags = ifp->if_flags & 0xffff;
3822 			ifr.ifr_flagshigh = ifp->if_flags >> 16;
3823 			(*ifp->if_ioctl)(ifp, SIOCSIFFLAGS, (caddr_t)&ifr);
3824 			ifp->if_flags |= IFF_UP;
3825 			ifr.ifr_flags = ifp->if_flags & 0xffff;
3826 			ifr.ifr_flagshigh = ifp->if_flags >> 16;
3827 			(*ifp->if_ioctl)(ifp, SIOCSIFFLAGS, (caddr_t)&ifr);
3828 		}
3829 	}
3830 	EVENTHANDLER_INVOKE(iflladdr_event, ifp);
3831 
3832 	return (0);
3833 }
3834 
3835 /*
3836  * Compat function for handling basic encapsulation requests.
3837  * Not converted stacks (FDDI, IB, ..) supports traditional
3838  * output model: ARP (and other similar L2 protocols) are handled
3839  * inside output routine, arpresolve/nd6_resolve() returns MAC
3840  * address instead of full prepend.
3841  *
3842  * This function creates calculated header==MAC for IPv4/IPv6 and
3843  * returns EAFNOSUPPORT (which is then handled in ARP code) for other
3844  * address families.
3845  */
3846 static int
if_requestencap_default(struct ifnet * ifp,struct if_encap_req * req)3847 if_requestencap_default(struct ifnet *ifp, struct if_encap_req *req)
3848 {
3849 	if (req->rtype != IFENCAP_LL)
3850 		return (EOPNOTSUPP);
3851 
3852 	if (req->bufsize < req->lladdr_len)
3853 		return (ENOMEM);
3854 
3855 	switch (req->family) {
3856 	case AF_INET:
3857 	case AF_INET6:
3858 		break;
3859 	default:
3860 		return (EAFNOSUPPORT);
3861 	}
3862 
3863 	/* Copy lladdr to storage as is */
3864 	memmove(req->buf, req->lladdr, req->lladdr_len);
3865 	req->bufsize = req->lladdr_len;
3866 	req->lladdr_off = 0;
3867 
3868 	return (0);
3869 }
3870 
3871 /*
3872  * Tunnel interfaces can nest, also they may cause infinite recursion
3873  * calls when misconfigured. We'll prevent this by detecting loops.
3874  * High nesting level may cause stack exhaustion. We'll prevent this
3875  * by introducing upper limit.
3876  *
3877  * Return 0, if tunnel nesting count is equal or less than limit.
3878  */
3879 int
if_tunnel_check_nesting(struct ifnet * ifp,struct mbuf * m,uint32_t cookie,int limit)3880 if_tunnel_check_nesting(struct ifnet *ifp, struct mbuf *m, uint32_t cookie,
3881     int limit)
3882 {
3883 	struct m_tag *mtag;
3884 	int count;
3885 
3886 	count = 1;
3887 	mtag = NULL;
3888 	while ((mtag = m_tag_locate(m, cookie, 0, mtag)) != NULL) {
3889 		if (*(struct ifnet **)(mtag + 1) == ifp) {
3890 			log(LOG_NOTICE, "%s: loop detected\n", if_name(ifp));
3891 			return (EIO);
3892 		}
3893 		count++;
3894 	}
3895 	if (count > limit) {
3896 		log(LOG_NOTICE,
3897 		    "%s: if_output recursively called too many times(%d)\n",
3898 		    if_name(ifp), count);
3899 		return (EIO);
3900 	}
3901 	mtag = m_tag_alloc(cookie, 0, sizeof(struct ifnet *), M_NOWAIT);
3902 	if (mtag == NULL)
3903 		return (ENOMEM);
3904 	*(struct ifnet **)(mtag + 1) = ifp;
3905 	m_tag_prepend(m, mtag);
3906 	return (0);
3907 }
3908 
3909 /*
3910  * Get the link layer address that was read from the hardware at attach.
3911  *
3912  * This is only set by Ethernet NICs (IFT_ETHER), but laggX interfaces re-type
3913  * their component interfaces as IFT_IEEE8023ADLAG.
3914  */
3915 int
if_gethwaddr(struct ifnet * ifp,struct ifreq * ifr)3916 if_gethwaddr(struct ifnet *ifp, struct ifreq *ifr)
3917 {
3918 	if (ifp->if_hw_addr == NULL)
3919 		return (ENODEV);
3920 
3921 	switch (ifp->if_type) {
3922 	case IFT_ETHER:
3923 	case IFT_IEEE8023ADLAG:
3924 		bcopy(ifp->if_hw_addr, ifr->ifr_addr.sa_data, ifp->if_addrlen);
3925 		return (0);
3926 	default:
3927 		return (ENODEV);
3928 	}
3929 }
3930 
3931 /*
3932  * The name argument must be a pointer to storage which will last as
3933  * long as the interface does.  For physical devices, the result of
3934  * device_get_name(dev) is a good choice and for pseudo-devices a
3935  * static string works well.
3936  */
3937 void
if_initname(struct ifnet * ifp,const char * name,int unit)3938 if_initname(struct ifnet *ifp, const char *name, int unit)
3939 {
3940 	ifp->if_dname = name;
3941 	ifp->if_dunit = unit;
3942 	if (unit != IF_DUNIT_NONE)
3943 		snprintf(ifp->if_xname, IFNAMSIZ, "%s%d", name, unit);
3944 	else
3945 		strlcpy(ifp->if_xname, name, IFNAMSIZ);
3946 }
3947 
3948 static int
if_vlog(struct ifnet * ifp,int pri,const char * fmt,va_list ap)3949 if_vlog(struct ifnet *ifp, int pri, const char *fmt, va_list ap)
3950 {
3951 	char if_fmt[256];
3952 
3953 	snprintf(if_fmt, sizeof(if_fmt), "%s: %s", ifp->if_xname, fmt);
3954 	vlog(pri, if_fmt, ap);
3955 	return (0);
3956 }
3957 
3958 
3959 int
if_printf(struct ifnet * ifp,const char * fmt,...)3960 if_printf(struct ifnet *ifp, const char *fmt, ...)
3961 {
3962 	va_list ap;
3963 
3964 	va_start(ap, fmt);
3965 	if_vlog(ifp, LOG_INFO, fmt, ap);
3966 	va_end(ap);
3967 	return (0);
3968 }
3969 
3970 int
if_log(struct ifnet * ifp,int pri,const char * fmt,...)3971 if_log(struct ifnet *ifp, int pri, const char *fmt, ...)
3972 {
3973 	va_list ap;
3974 
3975 	va_start(ap, fmt);
3976 	if_vlog(ifp, pri, fmt, ap);
3977 	va_end(ap);
3978 	return (0);
3979 }
3980 
3981 void
if_start(struct ifnet * ifp)3982 if_start(struct ifnet *ifp)
3983 {
3984 
3985 	(*(ifp)->if_start)(ifp);
3986 }
3987 
3988 /*
3989  * Backwards compatibility interface for drivers
3990  * that have not implemented it
3991  */
3992 static int
if_transmit_default(struct ifnet * ifp,struct mbuf * m)3993 if_transmit_default(struct ifnet *ifp, struct mbuf *m)
3994 {
3995 	int error;
3996 
3997 	IFQ_HANDOFF(ifp, m, error);
3998 	return (error);
3999 }
4000 
4001 static void
if_input_default(struct ifnet * ifp __unused,struct mbuf * m)4002 if_input_default(struct ifnet *ifp __unused, struct mbuf *m)
4003 {
4004 	m_freem(m);
4005 }
4006 
4007 int
if_handoff(struct ifqueue * ifq,struct mbuf * m,struct ifnet * ifp,int adjust)4008 if_handoff(struct ifqueue *ifq, struct mbuf *m, struct ifnet *ifp, int adjust)
4009 {
4010 	int active = 0;
4011 
4012 	IF_LOCK(ifq);
4013 	if (_IF_QFULL(ifq)) {
4014 		IF_UNLOCK(ifq);
4015 		if_inc_counter(ifp, IFCOUNTER_OQDROPS, 1);
4016 		m_freem(m);
4017 		return (0);
4018 	}
4019 	if (ifp != NULL) {
4020 		if_inc_counter(ifp, IFCOUNTER_OBYTES, m->m_pkthdr.len + adjust);
4021 		if (m->m_flags & (M_BCAST|M_MCAST))
4022 			if_inc_counter(ifp, IFCOUNTER_OMCASTS, 1);
4023 		active = ifp->if_drv_flags & IFF_DRV_OACTIVE;
4024 	}
4025 	_IF_ENQUEUE(ifq, m);
4026 	IF_UNLOCK(ifq);
4027 	if (ifp != NULL && !active)
4028 		(*(ifp)->if_start)(ifp);
4029 	return (1);
4030 }
4031 
4032 void
if_register_com_alloc(u_char type,if_com_alloc_t * a,if_com_free_t * f)4033 if_register_com_alloc(u_char type,
4034     if_com_alloc_t *a, if_com_free_t *f)
4035 {
4036 
4037 	KASSERT(if_com_alloc[type] == NULL,
4038 	    ("if_register_com_alloc: %d already registered", type));
4039 	KASSERT(if_com_free[type] == NULL,
4040 	    ("if_register_com_alloc: %d free already registered", type));
4041 
4042 	if_com_alloc[type] = a;
4043 	if_com_free[type] = f;
4044 }
4045 
4046 void
if_deregister_com_alloc(u_char type)4047 if_deregister_com_alloc(u_char type)
4048 {
4049 
4050 	KASSERT(if_com_alloc[type] != NULL,
4051 	    ("if_deregister_com_alloc: %d not registered", type));
4052 	KASSERT(if_com_free[type] != NULL,
4053 	    ("if_deregister_com_alloc: %d free not registered", type));
4054 
4055 	/*
4056 	 * Ensure all pending EPOCH(9) callbacks have been executed. This
4057 	 * fixes issues about late invocation of if_destroy(), which leads
4058 	 * to memory leak from if_com_alloc[type] allocated if_l2com.
4059 	 */
4060 	NET_EPOCH_DRAIN_CALLBACKS();
4061 
4062 	if_com_alloc[type] = NULL;
4063 	if_com_free[type] = NULL;
4064 }
4065 
4066 /* API for driver access to network stack owned ifnet.*/
4067 uint64_t
if_setbaudrate(struct ifnet * ifp,uint64_t baudrate)4068 if_setbaudrate(struct ifnet *ifp, uint64_t baudrate)
4069 {
4070 	uint64_t oldbrate;
4071 
4072 	oldbrate = ifp->if_baudrate;
4073 	ifp->if_baudrate = baudrate;
4074 	return (oldbrate);
4075 }
4076 
4077 uint64_t
if_getbaudrate(const if_t ifp)4078 if_getbaudrate(const if_t ifp)
4079 {
4080 	return (ifp->if_baudrate);
4081 }
4082 
4083 int
if_setcapabilities(if_t ifp,int capabilities)4084 if_setcapabilities(if_t ifp, int capabilities)
4085 {
4086 	ifp->if_capabilities = capabilities;
4087 	return (0);
4088 }
4089 
4090 int
if_setcapabilitiesbit(if_t ifp,int setbit,int clearbit)4091 if_setcapabilitiesbit(if_t ifp, int setbit, int clearbit)
4092 {
4093 	ifp->if_capabilities &= ~clearbit;
4094 	ifp->if_capabilities |= setbit;
4095 	return (0);
4096 }
4097 
4098 int
if_getcapabilities(const if_t ifp)4099 if_getcapabilities(const if_t ifp)
4100 {
4101 	return (ifp->if_capabilities);
4102 }
4103 
4104 int
if_setcapenable(if_t ifp,int capabilities)4105 if_setcapenable(if_t ifp, int capabilities)
4106 {
4107 	ifp->if_capenable = capabilities;
4108 	return (0);
4109 }
4110 
4111 int
if_setcapenablebit(if_t ifp,int setcap,int clearcap)4112 if_setcapenablebit(if_t ifp, int setcap, int clearcap)
4113 {
4114 	ifp->if_capenable &= ~clearcap;
4115 	ifp->if_capenable |= setcap;
4116 	return (0);
4117 }
4118 
4119 int
if_setcapabilities2(if_t ifp,int capabilities)4120 if_setcapabilities2(if_t ifp, int capabilities)
4121 {
4122 	ifp->if_capabilities2 = capabilities;
4123 	return (0);
4124 }
4125 
4126 int
if_setcapabilities2bit(if_t ifp,int setbit,int clearbit)4127 if_setcapabilities2bit(if_t ifp, int setbit, int clearbit)
4128 {
4129 	ifp->if_capabilities2 &= ~clearbit;
4130 	ifp->if_capabilities2 |= setbit;
4131 	return (0);
4132 }
4133 
4134 int
if_getcapabilities2(const if_t ifp)4135 if_getcapabilities2(const if_t ifp)
4136 {
4137 	return (ifp->if_capabilities2);
4138 }
4139 
4140 int
if_setcapenable2(if_t ifp,int capabilities2)4141 if_setcapenable2(if_t ifp, int capabilities2)
4142 {
4143 	ifp->if_capenable2 = capabilities2;
4144 	return (0);
4145 }
4146 
4147 int
if_setcapenable2bit(if_t ifp,int setcap,int clearcap)4148 if_setcapenable2bit(if_t ifp, int setcap, int clearcap)
4149 {
4150 	ifp->if_capenable2 &= ~clearcap;
4151 	ifp->if_capenable2 |= setcap;
4152 	return (0);
4153 }
4154 
4155 const char *
if_getdname(const if_t ifp)4156 if_getdname(const if_t ifp)
4157 {
4158 	return (ifp->if_dname);
4159 }
4160 
4161 void
if_setdname(if_t ifp,const char * dname)4162 if_setdname(if_t ifp, const char *dname)
4163 {
4164 	ifp->if_dname = dname;
4165 }
4166 
4167 const char *
if_name(if_t ifp)4168 if_name(if_t ifp)
4169 {
4170 	return (ifp->if_xname);
4171 }
4172 
4173 int
if_setname(if_t ifp,const char * name)4174 if_setname(if_t ifp, const char *name)
4175 {
4176 	if (strlen(name) > sizeof(ifp->if_xname) - 1)
4177 		return (ENAMETOOLONG);
4178 	strcpy(ifp->if_xname, name);
4179 
4180 	return (0);
4181 }
4182 
4183 int
if_togglecapenable(if_t ifp,int togglecap)4184 if_togglecapenable(if_t ifp, int togglecap)
4185 {
4186 	ifp->if_capenable ^= togglecap;
4187 	return (0);
4188 }
4189 
4190 int
if_getcapenable(const if_t ifp)4191 if_getcapenable(const if_t ifp)
4192 {
4193 	return (ifp->if_capenable);
4194 }
4195 
4196 int
if_togglecapenable2(if_t ifp,int togglecap)4197 if_togglecapenable2(if_t ifp, int togglecap)
4198 {
4199 	ifp->if_capenable2 ^= togglecap;
4200 	return (0);
4201 }
4202 
4203 int
if_getcapenable2(const if_t ifp)4204 if_getcapenable2(const if_t ifp)
4205 {
4206 	return (ifp->if_capenable2);
4207 }
4208 
4209 int
if_getdunit(const if_t ifp)4210 if_getdunit(const if_t ifp)
4211 {
4212 	return (ifp->if_dunit);
4213 }
4214 
4215 int
if_getindex(const if_t ifp)4216 if_getindex(const if_t ifp)
4217 {
4218 	return (ifp->if_index);
4219 }
4220 
4221 int
if_getidxgen(const if_t ifp)4222 if_getidxgen(const if_t ifp)
4223 {
4224 	return (ifp->if_idxgen);
4225 }
4226 
4227 const char *
if_getdescr(if_t ifp)4228 if_getdescr(if_t ifp)
4229 {
4230 	return (ifp->if_description);
4231 }
4232 
4233 void
if_setdescr(if_t ifp,char * descrbuf)4234 if_setdescr(if_t ifp, char *descrbuf)
4235 {
4236 	sx_xlock(&ifdescr_sx);
4237 	char *odescrbuf = ifp->if_description;
4238 	ifp->if_description = descrbuf;
4239 	sx_xunlock(&ifdescr_sx);
4240 
4241 	if_freedescr(odescrbuf);
4242 }
4243 
4244 char *
if_allocdescr(size_t sz,int malloc_flag)4245 if_allocdescr(size_t sz, int malloc_flag)
4246 {
4247 	malloc_flag &= (M_WAITOK | M_NOWAIT);
4248 	return (malloc(sz, M_IFDESCR, M_ZERO | malloc_flag));
4249 }
4250 
4251 void
if_freedescr(char * descrbuf)4252 if_freedescr(char *descrbuf)
4253 {
4254 	free(descrbuf, M_IFDESCR);
4255 }
4256 
4257 int
if_getalloctype(const if_t ifp)4258 if_getalloctype(const if_t ifp)
4259 {
4260 	return (ifp->if_alloctype);
4261 }
4262 
4263 void
if_setlastchange(if_t ifp)4264 if_setlastchange(if_t ifp)
4265 {
4266 	getmicrotime(&ifp->if_lastchange);
4267 }
4268 
4269 /*
4270  * This is largely undesirable because it ties ifnet to a device, but does
4271  * provide flexiblity for an embedded product vendor. Should be used with
4272  * the understanding that it violates the interface boundaries, and should be
4273  * a last resort only.
4274  */
4275 int
if_setdev(if_t ifp,void * dev)4276 if_setdev(if_t ifp, void *dev)
4277 {
4278 	return (0);
4279 }
4280 
4281 int
if_setdrvflagbits(if_t ifp,int set_flags,int clear_flags)4282 if_setdrvflagbits(if_t ifp, int set_flags, int clear_flags)
4283 {
4284 	ifp->if_drv_flags &= ~clear_flags;
4285 	ifp->if_drv_flags |= set_flags;
4286 
4287 	return (0);
4288 }
4289 
4290 int
if_getdrvflags(const if_t ifp)4291 if_getdrvflags(const if_t ifp)
4292 {
4293 	return (ifp->if_drv_flags);
4294 }
4295 
4296 int
if_setdrvflags(if_t ifp,int flags)4297 if_setdrvflags(if_t ifp, int flags)
4298 {
4299 	ifp->if_drv_flags = flags;
4300 	return (0);
4301 }
4302 
4303 int
if_setflags(if_t ifp,int flags)4304 if_setflags(if_t ifp, int flags)
4305 {
4306 	ifp->if_flags = flags;
4307 	return (0);
4308 }
4309 
4310 int
if_setflagbits(if_t ifp,int set,int clear)4311 if_setflagbits(if_t ifp, int set, int clear)
4312 {
4313 	ifp->if_flags &= ~clear;
4314 	ifp->if_flags |= set;
4315 	return (0);
4316 }
4317 
4318 int
if_getflags(const if_t ifp)4319 if_getflags(const if_t ifp)
4320 {
4321 	return (ifp->if_flags);
4322 }
4323 
4324 int
if_clearhwassist(if_t ifp)4325 if_clearhwassist(if_t ifp)
4326 {
4327 	ifp->if_hwassist = 0;
4328 	return (0);
4329 }
4330 
4331 int
if_sethwassistbits(if_t ifp,int toset,int toclear)4332 if_sethwassistbits(if_t ifp, int toset, int toclear)
4333 {
4334 	ifp->if_hwassist &= ~toclear;
4335 	ifp->if_hwassist |= toset;
4336 
4337 	return (0);
4338 }
4339 
4340 int
if_sethwassist(if_t ifp,int hwassist_bit)4341 if_sethwassist(if_t ifp, int hwassist_bit)
4342 {
4343 	ifp->if_hwassist = hwassist_bit;
4344 	return (0);
4345 }
4346 
4347 int
if_gethwassist(const if_t ifp)4348 if_gethwassist(const if_t ifp)
4349 {
4350 	return (ifp->if_hwassist);
4351 }
4352 
4353 int
if_togglehwassist(if_t ifp,int toggle_bits)4354 if_togglehwassist(if_t ifp, int toggle_bits)
4355 {
4356 	ifp->if_hwassist ^= toggle_bits;
4357 	return (0);
4358 }
4359 
4360 int
if_setmtu(if_t ifp,int mtu)4361 if_setmtu(if_t ifp, int mtu)
4362 {
4363 	ifp->if_mtu = mtu;
4364 	return (0);
4365 }
4366 
4367 void
if_notifymtu(if_t ifp)4368 if_notifymtu(if_t ifp)
4369 {
4370 #ifdef INET6
4371 	nd6_setmtu(ifp);
4372 #endif
4373 	rt_updatemtu(ifp);
4374 }
4375 
4376 int
if_getmtu(const if_t ifp)4377 if_getmtu(const if_t ifp)
4378 {
4379 	return (ifp->if_mtu);
4380 }
4381 
4382 void
if_setppromisc(if_t ifp,bool ppromisc)4383 if_setppromisc(if_t ifp, bool ppromisc)
4384 {
4385 	int new_flags;
4386 
4387 	if (ppromisc)
4388 		new_flags = ifp->if_flags | IFF_PPROMISC;
4389 	else
4390 		new_flags = ifp->if_flags & ~IFF_PPROMISC;
4391 	if ((ifp->if_flags ^ new_flags) & IFF_PPROMISC) {
4392 		if (new_flags & IFF_PPROMISC)
4393 			new_flags |= IFF_PROMISC;
4394 		/*
4395 		 * Only unset IFF_PROMISC if there are no more consumers of
4396 		 * promiscuity, i.e. the ifp->if_pcount refcount is 0.
4397 		 */
4398 		else if (ifp->if_pcount == 0)
4399 			new_flags &= ~IFF_PROMISC;
4400 		if (log_promisc_mode_change)
4401                         if_printf(ifp, "permanently promiscuous mode %s\n",
4402                             ((new_flags & IFF_PPROMISC) ?
4403                              "enabled" : "disabled"));
4404 	}
4405 	ifp->if_flags = new_flags;
4406 }
4407 
4408 /*
4409  * Methods for drivers to access interface unicast and multicast
4410  * link level addresses.  Driver shall not know 'struct ifaddr' neither
4411  * 'struct ifmultiaddr'.
4412  */
4413 u_int
if_lladdr_count(if_t ifp)4414 if_lladdr_count(if_t ifp)
4415 {
4416 	struct epoch_tracker et;
4417 	struct ifaddr *ifa;
4418 	u_int count;
4419 
4420 	count = 0;
4421 	NET_EPOCH_ENTER(et);
4422 	CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link)
4423 		if (ifa->ifa_addr->sa_family == AF_LINK)
4424 			count++;
4425 	NET_EPOCH_EXIT(et);
4426 
4427 	return (count);
4428 }
4429 
4430 int
if_foreach(if_foreach_cb_t cb,void * cb_arg)4431 if_foreach(if_foreach_cb_t cb, void *cb_arg)
4432 {
4433 	if_t ifp;
4434 	int error;
4435 
4436 	NET_EPOCH_ASSERT();
4437 	MPASS(cb);
4438 
4439 	error = 0;
4440 	CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) {
4441 		error = cb(ifp, cb_arg);
4442 		if (error != 0)
4443 			break;
4444 	}
4445 
4446 	return (error);
4447 }
4448 
4449 /*
4450  * Iterates over the list of interfaces, permitting callback function @cb to sleep.
4451  * Stops iteration if @cb returns non-zero error code.
4452  * Returns the last error code from @cb.
4453  * @match_cb: optional match callback limiting the iteration to only matched interfaces
4454  * @match_arg: argument to pass to @match_cb
4455  * @cb: iteration callback
4456  * @cb_arg: argument to pass to @cb
4457  */
4458 int
if_foreach_sleep(if_foreach_match_t match_cb,void * match_arg,if_foreach_cb_t cb,void * cb_arg)4459 if_foreach_sleep(if_foreach_match_t match_cb, void *match_arg, if_foreach_cb_t cb,
4460     void *cb_arg)
4461 {
4462 	int match_count = 0, array_size = 16; /* 128 bytes for malloc */
4463 	struct ifnet **match_array = NULL;
4464 	int error = 0;
4465 
4466 	MPASS(cb);
4467 
4468 	while (true) {
4469 		struct ifnet **new_array;
4470 		int new_size = array_size;
4471 		struct epoch_tracker et;
4472 		struct ifnet *ifp;
4473 
4474 		while (new_size < match_count)
4475 			new_size *= 2;
4476 		new_array = malloc(new_size * sizeof(void *), M_TEMP, M_WAITOK);
4477 		if (match_array != NULL)
4478 			memcpy(new_array, match_array, array_size * sizeof(void *));
4479 		free(match_array, M_TEMP);
4480 		match_array = new_array;
4481 		array_size = new_size;
4482 
4483 		match_count = 0;
4484 		NET_EPOCH_ENTER(et);
4485 		CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) {
4486 			if (match_cb != NULL && !match_cb(ifp, match_arg))
4487 				continue;
4488 			if (match_count < array_size) {
4489 				if (if_try_ref(ifp))
4490 					match_array[match_count++] = ifp;
4491 			} else
4492 				match_count++;
4493 		}
4494 		NET_EPOCH_EXIT(et);
4495 
4496 		if (match_count > array_size) {
4497 			for (int i = 0; i < array_size; i++)
4498 				if_rele(match_array[i]);
4499 			continue;
4500 		} else {
4501 			for (int i = 0; i < match_count; i++) {
4502 				if (error == 0)
4503 					error = cb(match_array[i], cb_arg);
4504 				if_rele(match_array[i]);
4505 			}
4506 			free(match_array, M_TEMP);
4507 			break;
4508 		}
4509 	}
4510 
4511 	return (error);
4512 }
4513 
4514 
4515 /*
4516  * Uses just 1 pointer of the 4 available in the public struct.
4517  */
4518 if_t
if_iter_start(struct if_iter * iter)4519 if_iter_start(struct if_iter *iter)
4520 {
4521 	if_t ifp;
4522 
4523 	NET_EPOCH_ASSERT();
4524 
4525 	bzero(iter, sizeof(*iter));
4526 	ifp = CK_STAILQ_FIRST(&V_ifnet);
4527 	if (ifp != NULL)
4528 		iter->context[0] = CK_STAILQ_NEXT(ifp, if_link);
4529 	else
4530 		iter->context[0] = NULL;
4531 	return (ifp);
4532 }
4533 
4534 if_t
if_iter_next(struct if_iter * iter)4535 if_iter_next(struct if_iter *iter)
4536 {
4537 	if_t cur_ifp = iter->context[0];
4538 
4539 	if (cur_ifp != NULL)
4540 		iter->context[0] = CK_STAILQ_NEXT(cur_ifp, if_link);
4541 	return (cur_ifp);
4542 }
4543 
4544 void
if_iter_finish(struct if_iter * iter)4545 if_iter_finish(struct if_iter *iter)
4546 {
4547 	/* Nothing to do here for now. */
4548 }
4549 
4550 u_int
if_foreach_lladdr(if_t ifp,iflladdr_cb_t cb,void * cb_arg)4551 if_foreach_lladdr(if_t ifp, iflladdr_cb_t cb, void *cb_arg)
4552 {
4553 	struct epoch_tracker et;
4554 	struct ifaddr *ifa;
4555 	u_int count;
4556 
4557 	MPASS(cb);
4558 
4559 	count = 0;
4560 	NET_EPOCH_ENTER(et);
4561 	CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
4562 		if (ifa->ifa_addr->sa_family != AF_LINK)
4563 			continue;
4564 		count += (*cb)(cb_arg, (struct sockaddr_dl *)ifa->ifa_addr,
4565 		    count);
4566 	}
4567 	NET_EPOCH_EXIT(et);
4568 
4569 	return (count);
4570 }
4571 
4572 u_int
if_llmaddr_count(if_t ifp)4573 if_llmaddr_count(if_t ifp)
4574 {
4575 	struct epoch_tracker et;
4576 	struct ifmultiaddr *ifma;
4577 	int count;
4578 
4579 	count = 0;
4580 	NET_EPOCH_ENTER(et);
4581 	CK_STAILQ_FOREACH(ifma, &ifp->if_multiaddrs, ifma_link)
4582 		if (ifma->ifma_addr->sa_family == AF_LINK)
4583 			count++;
4584 	NET_EPOCH_EXIT(et);
4585 
4586 	return (count);
4587 }
4588 
4589 bool
if_maddr_empty(if_t ifp)4590 if_maddr_empty(if_t ifp)
4591 {
4592 
4593 	return (CK_STAILQ_EMPTY(&ifp->if_multiaddrs));
4594 }
4595 
4596 u_int
if_foreach_llmaddr(if_t ifp,iflladdr_cb_t cb,void * cb_arg)4597 if_foreach_llmaddr(if_t ifp, iflladdr_cb_t cb, void *cb_arg)
4598 {
4599 	struct epoch_tracker et;
4600 	struct ifmultiaddr *ifma;
4601 	u_int count;
4602 
4603 	MPASS(cb);
4604 
4605 	count = 0;
4606 	NET_EPOCH_ENTER(et);
4607 	CK_STAILQ_FOREACH(ifma, &ifp->if_multiaddrs, ifma_link) {
4608 		if (ifma->ifma_addr->sa_family != AF_LINK)
4609 			continue;
4610 		count += (*cb)(cb_arg, (struct sockaddr_dl *)ifma->ifma_addr,
4611 		    count);
4612 	}
4613 	NET_EPOCH_EXIT(et);
4614 
4615 	return (count);
4616 }
4617 
4618 u_int
if_foreach_addr_type(if_t ifp,int type,if_addr_cb_t cb,void * cb_arg)4619 if_foreach_addr_type(if_t ifp, int type, if_addr_cb_t cb, void *cb_arg)
4620 {
4621 	struct epoch_tracker et;
4622 	struct ifaddr *ifa;
4623 	u_int count;
4624 
4625 	MPASS(cb);
4626 
4627 	count = 0;
4628 	NET_EPOCH_ENTER(et);
4629 	CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
4630 		if (ifa->ifa_addr->sa_family != type)
4631 			continue;
4632 		count += (*cb)(cb_arg, ifa, count);
4633 	}
4634 	NET_EPOCH_EXIT(et);
4635 
4636 	return (count);
4637 }
4638 
4639 struct ifaddr *
ifa_iter_start(if_t ifp,struct ifa_iter * iter)4640 ifa_iter_start(if_t ifp, struct ifa_iter *iter)
4641 {
4642 	struct ifaddr *ifa;
4643 
4644 	NET_EPOCH_ASSERT();
4645 
4646 	bzero(iter, sizeof(*iter));
4647 	ifa = CK_STAILQ_FIRST(&ifp->if_addrhead);
4648 	if (ifa != NULL)
4649 		iter->context[0] = CK_STAILQ_NEXT(ifa, ifa_link);
4650 	else
4651 		iter->context[0] = NULL;
4652 	return (ifa);
4653 }
4654 
4655 struct ifaddr *
ifa_iter_next(struct ifa_iter * iter)4656 ifa_iter_next(struct ifa_iter *iter)
4657 {
4658 	struct ifaddr *ifa = iter->context[0];
4659 
4660 	if (ifa != NULL)
4661 		iter->context[0] = CK_STAILQ_NEXT(ifa, ifa_link);
4662 	return (ifa);
4663 }
4664 
4665 void
ifa_iter_finish(struct ifa_iter * iter)4666 ifa_iter_finish(struct ifa_iter *iter)
4667 {
4668 	/* Nothing to do here for now. */
4669 }
4670 
4671 int
if_setsoftc(if_t ifp,void * softc)4672 if_setsoftc(if_t ifp, void *softc)
4673 {
4674 	ifp->if_softc = softc;
4675 	return (0);
4676 }
4677 
4678 void *
if_getsoftc(const if_t ifp)4679 if_getsoftc(const if_t ifp)
4680 {
4681 	return (ifp->if_softc);
4682 }
4683 
4684 void
if_setrcvif(struct mbuf * m,if_t ifp)4685 if_setrcvif(struct mbuf *m, if_t ifp)
4686 {
4687 
4688 	MPASS((m->m_pkthdr.csum_flags & CSUM_SND_TAG) == 0);
4689 	m->m_pkthdr.rcvif = (struct ifnet *)ifp;
4690 }
4691 
4692 void
if_setvtag(struct mbuf * m,uint16_t tag)4693 if_setvtag(struct mbuf *m, uint16_t tag)
4694 {
4695 	m->m_pkthdr.ether_vtag = tag;
4696 }
4697 
4698 uint16_t
if_getvtag(struct mbuf * m)4699 if_getvtag(struct mbuf *m)
4700 {
4701 	return (m->m_pkthdr.ether_vtag);
4702 }
4703 
4704 int
if_sendq_empty(if_t ifp)4705 if_sendq_empty(if_t ifp)
4706 {
4707 	return (IFQ_DRV_IS_EMPTY(&ifp->if_snd));
4708 }
4709 
4710 struct ifaddr *
if_getifaddr(const if_t ifp)4711 if_getifaddr(const if_t ifp)
4712 {
4713 	return (ifp->if_addr);
4714 }
4715 
4716 int
if_setsendqready(if_t ifp)4717 if_setsendqready(if_t ifp)
4718 {
4719 	IFQ_SET_READY(&ifp->if_snd);
4720 	return (0);
4721 }
4722 
4723 int
if_setsendqlen(if_t ifp,int tx_desc_count)4724 if_setsendqlen(if_t ifp, int tx_desc_count)
4725 {
4726 	IFQ_SET_MAXLEN(&ifp->if_snd, tx_desc_count);
4727 	ifp->if_snd.ifq_drv_maxlen = tx_desc_count;
4728 	return (0);
4729 }
4730 
4731 void
if_setnetmapadapter(if_t ifp,struct netmap_adapter * na)4732 if_setnetmapadapter(if_t ifp, struct netmap_adapter *na)
4733 {
4734 	ifp->if_netmap = na;
4735 }
4736 
4737 struct netmap_adapter *
if_getnetmapadapter(if_t ifp)4738 if_getnetmapadapter(if_t ifp)
4739 {
4740 	return (ifp->if_netmap);
4741 }
4742 
4743 int
if_vlantrunkinuse(if_t ifp)4744 if_vlantrunkinuse(if_t ifp)
4745 {
4746 	return (ifp->if_vlantrunk != NULL);
4747 }
4748 
4749 void
if_init(if_t ifp,void * ctx)4750 if_init(if_t ifp, void *ctx)
4751 {
4752 	(*ifp->if_init)(ctx);
4753 }
4754 
4755 void
if_input(if_t ifp,struct mbuf * sendmp)4756 if_input(if_t ifp, struct mbuf* sendmp)
4757 {
4758 	(*ifp->if_input)(ifp, sendmp);
4759 }
4760 
4761 int
if_transmit(if_t ifp,struct mbuf * m)4762 if_transmit(if_t ifp, struct mbuf *m)
4763 {
4764 	return ((*ifp->if_transmit)(ifp, m));
4765 }
4766 
4767 int
if_resolvemulti(if_t ifp,struct sockaddr ** srcs,struct sockaddr * dst)4768 if_resolvemulti(if_t ifp, struct sockaddr **srcs, struct sockaddr *dst)
4769 {
4770 	if (ifp->if_resolvemulti == NULL)
4771 		return (EOPNOTSUPP);
4772 
4773 	return (ifp->if_resolvemulti(ifp, srcs, dst));
4774 }
4775 
4776 int
if_ioctl(if_t ifp,u_long cmd,void * data)4777 if_ioctl(if_t ifp, u_long cmd, void *data)
4778 {
4779 	if (ifp->if_ioctl == NULL)
4780 		return (EOPNOTSUPP);
4781 
4782 	return (ifp->if_ioctl(ifp, cmd, data));
4783 }
4784 
4785 struct mbuf *
if_dequeue(if_t ifp)4786 if_dequeue(if_t ifp)
4787 {
4788 	struct mbuf *m;
4789 
4790 	IFQ_DRV_DEQUEUE(&ifp->if_snd, m);
4791 	return (m);
4792 }
4793 
4794 int
if_sendq_prepend(if_t ifp,struct mbuf * m)4795 if_sendq_prepend(if_t ifp, struct mbuf *m)
4796 {
4797 	IFQ_DRV_PREPEND(&ifp->if_snd, m);
4798 	return (0);
4799 }
4800 
4801 int
if_setifheaderlen(if_t ifp,int len)4802 if_setifheaderlen(if_t ifp, int len)
4803 {
4804 	ifp->if_hdrlen = len;
4805 	return (0);
4806 }
4807 
4808 char *
if_getlladdr(const if_t ifp)4809 if_getlladdr(const if_t ifp)
4810 {
4811 	return (IF_LLADDR(ifp));
4812 }
4813 
4814 void *
if_gethandle(u_char type)4815 if_gethandle(u_char type)
4816 {
4817 	return (if_alloc(type));
4818 }
4819 
4820 void
if_vlancap(if_t ifp)4821 if_vlancap(if_t ifp)
4822 {
4823 	VLAN_CAPABILITIES(ifp);
4824 }
4825 
4826 int
if_sethwtsomax(if_t ifp,u_int if_hw_tsomax)4827 if_sethwtsomax(if_t ifp, u_int if_hw_tsomax)
4828 {
4829 	ifp->if_hw_tsomax = if_hw_tsomax;
4830         return (0);
4831 }
4832 
4833 int
if_sethwtsomaxsegcount(if_t ifp,u_int if_hw_tsomaxsegcount)4834 if_sethwtsomaxsegcount(if_t ifp, u_int if_hw_tsomaxsegcount)
4835 {
4836 	ifp->if_hw_tsomaxsegcount = if_hw_tsomaxsegcount;
4837         return (0);
4838 }
4839 
4840 int
if_sethwtsomaxsegsize(if_t ifp,u_int if_hw_tsomaxsegsize)4841 if_sethwtsomaxsegsize(if_t ifp, u_int if_hw_tsomaxsegsize)
4842 {
4843 	ifp->if_hw_tsomaxsegsize = if_hw_tsomaxsegsize;
4844         return (0);
4845 }
4846 
4847 u_int
if_gethwtsomax(const if_t ifp)4848 if_gethwtsomax(const if_t ifp)
4849 {
4850 	return (ifp->if_hw_tsomax);
4851 }
4852 
4853 u_int
if_gethwtsomaxsegcount(const if_t ifp)4854 if_gethwtsomaxsegcount(const if_t ifp)
4855 {
4856 	return (ifp->if_hw_tsomaxsegcount);
4857 }
4858 
4859 u_int
if_gethwtsomaxsegsize(const if_t ifp)4860 if_gethwtsomaxsegsize(const if_t ifp)
4861 {
4862 	return (ifp->if_hw_tsomaxsegsize);
4863 }
4864 
4865 void
if_setinitfn(if_t ifp,if_init_fn_t init_fn)4866 if_setinitfn(if_t ifp, if_init_fn_t init_fn)
4867 {
4868 	ifp->if_init = init_fn;
4869 }
4870 
4871 void
if_setinputfn(if_t ifp,if_input_fn_t input_fn)4872 if_setinputfn(if_t ifp, if_input_fn_t input_fn)
4873 {
4874 	ifp->if_input = input_fn;
4875 }
4876 
4877 if_input_fn_t
if_getinputfn(if_t ifp)4878 if_getinputfn(if_t ifp)
4879 {
4880 	return (ifp->if_input);
4881 }
4882 
4883 void
if_setioctlfn(if_t ifp,if_ioctl_fn_t ioctl_fn)4884 if_setioctlfn(if_t ifp, if_ioctl_fn_t ioctl_fn)
4885 {
4886 	ifp->if_ioctl = ioctl_fn;
4887 }
4888 
4889 void
if_setoutputfn(if_t ifp,if_output_fn_t output_fn)4890 if_setoutputfn(if_t ifp, if_output_fn_t output_fn)
4891 {
4892 	ifp->if_output = output_fn;
4893 }
4894 
4895 void
if_setstartfn(if_t ifp,if_start_fn_t start_fn)4896 if_setstartfn(if_t ifp, if_start_fn_t start_fn)
4897 {
4898 	ifp->if_start = start_fn;
4899 }
4900 
4901 if_start_fn_t
if_getstartfn(if_t ifp)4902 if_getstartfn(if_t ifp)
4903 {
4904 	return (ifp->if_start);
4905 }
4906 
4907 void
if_settransmitfn(if_t ifp,if_transmit_fn_t start_fn)4908 if_settransmitfn(if_t ifp, if_transmit_fn_t start_fn)
4909 {
4910 	ifp->if_transmit = start_fn;
4911 }
4912 
4913 if_transmit_fn_t
if_gettransmitfn(if_t ifp)4914 if_gettransmitfn(if_t ifp)
4915 {
4916 	return (ifp->if_transmit);
4917 }
4918 
4919 void
if_setqflushfn(if_t ifp,if_qflush_fn_t flush_fn)4920 if_setqflushfn(if_t ifp, if_qflush_fn_t flush_fn)
4921 {
4922 	ifp->if_qflush = flush_fn;
4923 }
4924 
4925 void
if_setsndtagallocfn(if_t ifp,if_snd_tag_alloc_t alloc_fn)4926 if_setsndtagallocfn(if_t ifp, if_snd_tag_alloc_t alloc_fn)
4927 {
4928 	ifp->if_snd_tag_alloc = alloc_fn;
4929 }
4930 
4931 int
if_snd_tag_alloc(if_t ifp,union if_snd_tag_alloc_params * params,struct m_snd_tag ** mstp)4932 if_snd_tag_alloc(if_t ifp, union if_snd_tag_alloc_params *params,
4933     struct m_snd_tag **mstp)
4934 {
4935 	if (ifp->if_snd_tag_alloc == NULL)
4936 		return (EOPNOTSUPP);
4937 	return (ifp->if_snd_tag_alloc(ifp, params, mstp));
4938 }
4939 
4940 void
if_setgetcounterfn(if_t ifp,if_get_counter_t fn)4941 if_setgetcounterfn(if_t ifp, if_get_counter_t fn)
4942 {
4943 	ifp->if_get_counter = fn;
4944 }
4945 
4946 void
if_setreassignfn(if_t ifp,if_reassign_fn_t fn)4947 if_setreassignfn(if_t ifp, if_reassign_fn_t fn)
4948 {
4949 	ifp->if_reassign = fn;
4950 }
4951 
4952 void
if_setratelimitqueryfn(if_t ifp,if_ratelimit_query_t fn)4953 if_setratelimitqueryfn(if_t ifp, if_ratelimit_query_t fn)
4954 {
4955 	ifp->if_ratelimit_query = fn;
4956 }
4957 
4958 void
if_setdebugnet_methods(if_t ifp,struct debugnet_methods * m)4959 if_setdebugnet_methods(if_t ifp, struct debugnet_methods *m)
4960 {
4961 	ifp->if_debugnet_methods = m;
4962 }
4963 
4964 struct label *
if_getmaclabel(if_t ifp)4965 if_getmaclabel(if_t ifp)
4966 {
4967 	return (ifp->if_label);
4968 }
4969 
4970 void
if_setmaclabel(if_t ifp,struct label * label)4971 if_setmaclabel(if_t ifp, struct label *label)
4972 {
4973 	ifp->if_label = label;
4974 }
4975 
4976 int
if_gettype(if_t ifp)4977 if_gettype(if_t ifp)
4978 {
4979 	return (ifp->if_type);
4980 }
4981 
4982 void *
if_getllsoftc(if_t ifp)4983 if_getllsoftc(if_t ifp)
4984 {
4985 	return (ifp->if_llsoftc);
4986 }
4987 
4988 void
if_setllsoftc(if_t ifp,void * llsoftc)4989 if_setllsoftc(if_t ifp, void *llsoftc)
4990 {
4991 	ifp->if_llsoftc = llsoftc;
4992 };
4993 
4994 int
if_getlinkstate(if_t ifp)4995 if_getlinkstate(if_t ifp)
4996 {
4997 	return (ifp->if_link_state);
4998 }
4999 
5000 const uint8_t *
if_getbroadcastaddr(if_t ifp)5001 if_getbroadcastaddr(if_t ifp)
5002 {
5003 	return (ifp->if_broadcastaddr);
5004 }
5005 
5006 void
if_setbroadcastaddr(if_t ifp,const uint8_t * addr)5007 if_setbroadcastaddr(if_t ifp, const uint8_t *addr)
5008 {
5009 	ifp->if_broadcastaddr = addr;
5010 }
5011 
5012 int
if_getnumadomain(if_t ifp)5013 if_getnumadomain(if_t ifp)
5014 {
5015 	return (ifp->if_numa_domain);
5016 }
5017 
5018 uint64_t
if_getcounter(if_t ifp,ift_counter counter)5019 if_getcounter(if_t ifp, ift_counter counter)
5020 {
5021 	return (ifp->if_get_counter(ifp, counter));
5022 }
5023 
5024 bool
if_altq_is_enabled(if_t ifp)5025 if_altq_is_enabled(if_t ifp)
5026 {
5027 	return (ALTQ_IS_ENABLED(&ifp->if_snd));
5028 }
5029 
5030 struct vnet *
if_getvnet(if_t ifp)5031 if_getvnet(if_t ifp)
5032 {
5033 	return (ifp->if_vnet);
5034 }
5035 
5036 struct in_ifinfo *
if_getinet(if_t ifp)5037 if_getinet(if_t ifp)
5038 {
5039 	return (ifp->if_inet);
5040 }
5041 
5042 struct in6_ifextra *
if_getinet6(if_t ifp)5043 if_getinet6(if_t ifp)
5044 {
5045 	return (ifp->if_inet6);
5046 }
5047 
5048 u_int
if_getfib(if_t ifp)5049 if_getfib(if_t ifp)
5050 {
5051 	return (ifp->if_fib);
5052 }
5053 
5054 uint8_t
if_getaddrlen(if_t ifp)5055 if_getaddrlen(if_t ifp)
5056 {
5057 	return (ifp->if_addrlen);
5058 }
5059 
5060 struct bpf_if *
if_getbpf(if_t ifp)5061 if_getbpf(if_t ifp)
5062 {
5063 	return (ifp->if_bpf);
5064 }
5065 
5066 struct ifvlantrunk *
if_getvlantrunk(if_t ifp)5067 if_getvlantrunk(if_t ifp)
5068 {
5069 	return (ifp->if_vlantrunk);
5070 }
5071 
5072 uint8_t
if_getpcp(if_t ifp)5073 if_getpcp(if_t ifp)
5074 {
5075 	return (ifp->if_pcp);
5076 }
5077 
5078 void *
if_getl2com(if_t ifp)5079 if_getl2com(if_t ifp)
5080 {
5081 	return (ifp->if_l2com);
5082 }
5083 
5084 void
if_setipsec_accel_methods(if_t ifp,const struct if_ipsec_accel_methods * m)5085 if_setipsec_accel_methods(if_t ifp, const struct if_ipsec_accel_methods *m)
5086 {
5087 	ifp->if_ipsec_accel_m = m;
5088 }
5089 
5090 #ifdef DDB
5091 static void
if_show_ifnet(struct ifnet * ifp)5092 if_show_ifnet(struct ifnet *ifp)
5093 {
5094 	if (ifp == NULL)
5095 		return;
5096 	db_printf("%s:\n", ifp->if_xname);
5097 #define	IF_DB_PRINTF(f, e)	db_printf("   %s = " f "\n", #e, ifp->e);
5098 	IF_DB_PRINTF("%s", if_dname);
5099 	IF_DB_PRINTF("%d", if_dunit);
5100 	IF_DB_PRINTF("%s", if_description);
5101 	IF_DB_PRINTF("%u", if_index);
5102 	IF_DB_PRINTF("%d", if_idxgen);
5103 	IF_DB_PRINTF("%u", if_refcount);
5104 	IF_DB_PRINTF("%p", if_softc);
5105 	IF_DB_PRINTF("%p", if_l2com);
5106 	IF_DB_PRINTF("%p", if_llsoftc);
5107 	IF_DB_PRINTF("%d", if_amcount);
5108 	IF_DB_PRINTF("%p", if_addr);
5109 	IF_DB_PRINTF("%p", if_broadcastaddr);
5110 	IF_DB_PRINTF("%u", if_fib);
5111 	IF_DB_PRINTF("%p", if_vnet);
5112 	IF_DB_PRINTF("%p", if_home_vnet);
5113 	IF_DB_PRINTF("%p", if_vlantrunk);
5114 	IF_DB_PRINTF("%p", if_bpf);
5115 	IF_DB_PRINTF("%u", if_pcount);
5116 	IF_DB_PRINTF("%p", if_bridge);
5117 	IF_DB_PRINTF("%p", if_lagg);
5118 	IF_DB_PRINTF("%p", if_pf_kif);
5119 	IF_DB_PRINTF("%p", if_carp);
5120 	IF_DB_PRINTF("%p", if_label);
5121 	IF_DB_PRINTF("%p", if_netmap);
5122 	IF_DB_PRINTF("0x%08x", if_flags);
5123 	IF_DB_PRINTF("0x%08x", if_drv_flags);
5124 	IF_DB_PRINTF("0x%08x", if_capabilities);
5125 	IF_DB_PRINTF("0x%08x", if_capenable);
5126 	IF_DB_PRINTF("%p", if_snd.ifq_head);
5127 	IF_DB_PRINTF("%p", if_snd.ifq_tail);
5128 	IF_DB_PRINTF("%d", if_snd.ifq_len);
5129 	IF_DB_PRINTF("%d", if_snd.ifq_maxlen);
5130 	IF_DB_PRINTF("%p", if_snd.ifq_drv_head);
5131 	IF_DB_PRINTF("%p", if_snd.ifq_drv_tail);
5132 	IF_DB_PRINTF("%d", if_snd.ifq_drv_len);
5133 	IF_DB_PRINTF("%d", if_snd.ifq_drv_maxlen);
5134 	IF_DB_PRINTF("%d", if_snd.altq_type);
5135 	IF_DB_PRINTF("%x", if_snd.altq_flags);
5136 #undef IF_DB_PRINTF
5137 }
5138 
DB_SHOW_COMMAND(ifnet,db_show_ifnet)5139 DB_SHOW_COMMAND(ifnet, db_show_ifnet)
5140 {
5141 	if (!have_addr) {
5142 		db_printf("usage: show ifnet <struct ifnet *>\n");
5143 		return;
5144 	}
5145 
5146 	if_show_ifnet((struct ifnet *)addr);
5147 }
5148 
DB_SHOW_ALL_COMMAND(ifnets,db_show_all_ifnets)5149 DB_SHOW_ALL_COMMAND(ifnets, db_show_all_ifnets)
5150 {
5151 	struct ifnet *ifp;
5152 	u_short idx;
5153 
5154 	for (idx = 1; idx <= if_index; idx++) {
5155 		ifp = ifindex_table[idx].ife_ifnet;
5156 		if (ifp == NULL)
5157 			continue;
5158 		db_printf( "%20s ifp=%p\n", ifp->if_xname, ifp);
5159 		if (db_pager_quit)
5160 			break;
5161 	}
5162 }
5163 #endif	/* DDB */
5164