1 /*- 2 * Copyright 1998 Massachusetts Institute of Technology 3 * Copyright 2012 ADARA Networks, Inc. 4 * Copyright 2017 Dell EMC Isilon 5 * 6 * Portions of this software were developed by Robert N. M. Watson under 7 * contract to ADARA Networks, Inc. 8 * 9 * Permission to use, copy, modify, and distribute this software and 10 * its documentation for any purpose and without fee is hereby 11 * granted, provided that both the above copyright notice and this 12 * permission notice appear in all copies, that both the above 13 * copyright notice and this permission notice appear in all 14 * supporting documentation, and that the name of M.I.T. not be used 15 * in advertising or publicity pertaining to distribution of the 16 * software without specific, written prior permission. M.I.T. makes 17 * no representations about the suitability of this software for any 18 * purpose. It is provided "as is" without express or implied 19 * warranty. 20 * 21 * THIS SOFTWARE IS PROVIDED BY M.I.T. ``AS IS''. M.I.T. DISCLAIMS 22 * ALL EXPRESS OR IMPLIED WARRANTIES WITH REGARD TO THIS SOFTWARE, 23 * INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF 24 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE. IN NO EVENT 25 * SHALL M.I.T. BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, 26 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT 27 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF 28 * USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND 29 * ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, 30 * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT 31 * OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 32 * SUCH DAMAGE. 33 */ 34 35 /* 36 * if_vlan.c - pseudo-device driver for IEEE 802.1Q virtual LANs. 37 * This is sort of sneaky in the implementation, since 38 * we need to pretend to be enough of an Ethernet implementation 39 * to make arp work. The way we do this is by telling everyone 40 * that we are an Ethernet, and then catch the packets that 41 * ether_output() sends to us via if_transmit(), rewrite them for 42 * use by the real outgoing interface, and ask it to send them. 43 */ 44 45 #include "opt_inet.h" 46 #include "opt_inet6.h" 47 #include "opt_ipsec.h" 48 #include "opt_kern_tls.h" 49 #include "opt_vlan.h" 50 #include "opt_ratelimit.h" 51 52 #include <sys/param.h> 53 #include <sys/eventhandler.h> 54 #include <sys/kernel.h> 55 #include <sys/lock.h> 56 #include <sys/malloc.h> 57 #include <sys/mbuf.h> 58 #include <sys/module.h> 59 #include <sys/rmlock.h> 60 #include <sys/priv.h> 61 #include <sys/queue.h> 62 #include <sys/socket.h> 63 #include <sys/sockio.h> 64 #include <sys/sysctl.h> 65 #include <sys/systm.h> 66 #include <sys/sx.h> 67 #include <sys/taskqueue.h> 68 69 #include <net/bpf.h> 70 #include <net/ethernet.h> 71 #include <net/if.h> 72 #include <net/if_var.h> 73 #include <net/if_private.h> 74 #include <net/if_clone.h> 75 #include <net/if_dl.h> 76 #include <net/if_types.h> 77 #include <net/if_vlan_var.h> 78 #include <net/route.h> 79 #include <net/vnet.h> 80 81 #ifdef INET 82 #include <netinet/in.h> 83 #include <netinet/if_ether.h> 84 #endif 85 86 #include <netlink/netlink.h> 87 #include <netlink/netlink_ctl.h> 88 #include <netlink/netlink_route.h> 89 #include <netlink/route/route_var.h> 90 91 #define VLAN_DEF_HWIDTH 4 92 #define VLAN_IFFLAGS (IFF_BROADCAST | IFF_MULTICAST) 93 94 #define UP_AND_RUNNING(ifp) \ 95 ((ifp)->if_flags & IFF_UP && (ifp)->if_drv_flags & IFF_DRV_RUNNING) 96 97 CK_SLIST_HEAD(ifvlanhead, ifvlan); 98 99 struct ifvlantrunk { 100 struct ifnet *parent; /* parent interface of this trunk */ 101 struct mtx lock; 102 #ifdef VLAN_ARRAY 103 #define VLAN_ARRAY_SIZE (EVL_VLID_MASK + 1) 104 struct ifvlan *vlans[VLAN_ARRAY_SIZE]; /* static table */ 105 #else 106 struct ifvlanhead *hash; /* dynamic hash-list table */ 107 uint16_t hmask; 108 uint16_t hwidth; 109 #endif 110 int refcnt; 111 }; 112 113 #if defined(KERN_TLS) || defined(RATELIMIT) 114 struct vlan_snd_tag { 115 struct m_snd_tag com; 116 struct m_snd_tag *tag; 117 }; 118 119 static inline struct vlan_snd_tag * 120 mst_to_vst(struct m_snd_tag *mst) 121 { 122 123 return (__containerof(mst, struct vlan_snd_tag, com)); 124 } 125 #endif 126 127 /* 128 * This macro provides a facility to iterate over every vlan on a trunk with 129 * the assumption that none will be added/removed during iteration. 130 */ 131 #ifdef VLAN_ARRAY 132 #define VLAN_FOREACH(_ifv, _trunk) \ 133 size_t _i; \ 134 for (_i = 0; _i < VLAN_ARRAY_SIZE; _i++) \ 135 if (((_ifv) = (_trunk)->vlans[_i]) != NULL) 136 #else /* VLAN_ARRAY */ 137 #define VLAN_FOREACH(_ifv, _trunk) \ 138 struct ifvlan *_next; \ 139 size_t _i; \ 140 for (_i = 0; _i < (1 << (_trunk)->hwidth); _i++) \ 141 CK_SLIST_FOREACH_SAFE((_ifv), &(_trunk)->hash[_i], ifv_list, _next) 142 #endif /* VLAN_ARRAY */ 143 144 /* 145 * This macro provides a facility to iterate over every vlan on a trunk while 146 * also modifying the number of vlans on the trunk. The iteration continues 147 * until some condition is met or there are no more vlans on the trunk. 148 */ 149 #ifdef VLAN_ARRAY 150 /* The VLAN_ARRAY case is simple -- just a for loop using the condition. */ 151 #define VLAN_FOREACH_UNTIL_SAFE(_ifv, _trunk, _cond) \ 152 size_t _i; \ 153 for (_i = 0; !(_cond) && _i < VLAN_ARRAY_SIZE; _i++) \ 154 if (((_ifv) = (_trunk)->vlans[_i])) 155 #else /* VLAN_ARRAY */ 156 /* 157 * The hash table case is more complicated. We allow for the hash table to be 158 * modified (i.e. vlans removed) while we are iterating over it. To allow for 159 * this we must restart the iteration every time we "touch" something during 160 * the iteration, since removal will resize the hash table and invalidate our 161 * current position. If acting on the touched element causes the trunk to be 162 * emptied, then iteration also stops. 163 */ 164 #define VLAN_FOREACH_UNTIL_SAFE(_ifv, _trunk, _cond) \ 165 size_t _i; \ 166 bool _touch = false; \ 167 for (_i = 0; \ 168 !(_cond) && _i < (1 << (_trunk)->hwidth); \ 169 _i = (_touch && ((_trunk) != NULL) ? 0 : _i + 1), _touch = false) \ 170 if (((_ifv) = CK_SLIST_FIRST(&(_trunk)->hash[_i])) != NULL && \ 171 (_touch = true)) 172 #endif /* VLAN_ARRAY */ 173 174 struct vlan_mc_entry { 175 struct sockaddr_dl mc_addr; 176 CK_SLIST_ENTRY(vlan_mc_entry) mc_entries; 177 struct epoch_context mc_epoch_ctx; 178 }; 179 180 struct ifvlan { 181 struct ifvlantrunk *ifv_trunk; 182 struct ifnet *ifv_ifp; 183 #define TRUNK(ifv) ((ifv)->ifv_trunk) 184 #define PARENT(ifv) (TRUNK(ifv)->parent) 185 void *ifv_cookie; 186 int ifv_pflags; /* special flags we have set on parent */ 187 int ifv_capenable; 188 int ifv_capenable2; 189 int ifv_encaplen; /* encapsulation length */ 190 int ifv_mtufudge; /* MTU fudged by this much */ 191 int ifv_mintu; /* min transmission unit */ 192 struct ether_8021q_tag ifv_qtag; 193 #define ifv_proto ifv_qtag.proto 194 #define ifv_vid ifv_qtag.vid 195 #define ifv_pcp ifv_qtag.pcp 196 struct task lladdr_task; 197 CK_SLIST_HEAD(, vlan_mc_entry) vlan_mc_listhead; 198 #ifndef VLAN_ARRAY 199 CK_SLIST_ENTRY(ifvlan) ifv_list; 200 #endif 201 }; 202 203 /* Special flags we should propagate to parent. */ 204 static struct { 205 int flag; 206 int (*func)(struct ifnet *, int); 207 } vlan_pflags[] = { 208 {IFF_PROMISC, ifpromisc}, 209 {IFF_ALLMULTI, if_allmulti}, 210 {0, NULL} 211 }; 212 213 VNET_DECLARE(int, vlan_mtag_pcp); 214 #define V_vlan_mtag_pcp VNET(vlan_mtag_pcp) 215 216 static const char vlanname[] = "vlan"; 217 static MALLOC_DEFINE(M_VLAN, vlanname, "802.1Q Virtual LAN Interface"); 218 219 static eventhandler_tag ifdetach_tag; 220 static eventhandler_tag iflladdr_tag; 221 static eventhandler_tag ifevent_tag; 222 223 /* 224 * if_vlan uses two module-level synchronizations primitives to allow concurrent 225 * modification of vlan interfaces and (mostly) allow for vlans to be destroyed 226 * while they are being used for tx/rx. To accomplish this in a way that has 227 * acceptable performance and cooperation with other parts of the network stack 228 * there is a non-sleepable epoch(9) and an sx(9). 229 * 230 * The performance-sensitive paths that warrant using the epoch(9) are 231 * vlan_transmit and vlan_input. Both have to check for the vlan interface's 232 * existence using if_vlantrunk, and being in the network tx/rx paths the use 233 * of an epoch(9) gives a measureable improvement in performance. 234 * 235 * The reason for having an sx(9) is mostly because there are still areas that 236 * must be sleepable and also have safe concurrent access to a vlan interface. 237 * Since the sx(9) exists, it is used by default in most paths unless sleeping 238 * is not permitted, or if it is not clear whether sleeping is permitted. 239 * 240 */ 241 #define _VLAN_SX_ID ifv_sx 242 243 static struct sx _VLAN_SX_ID; 244 245 #define VLAN_LOCKING_INIT() \ 246 sx_init_flags(&_VLAN_SX_ID, "vlan_sx", SX_RECURSE) 247 248 #define VLAN_LOCKING_DESTROY() \ 249 sx_destroy(&_VLAN_SX_ID) 250 251 #define VLAN_SLOCK() sx_slock(&_VLAN_SX_ID) 252 #define VLAN_SUNLOCK() sx_sunlock(&_VLAN_SX_ID) 253 #define VLAN_XLOCK() sx_xlock(&_VLAN_SX_ID) 254 #define VLAN_XUNLOCK() sx_xunlock(&_VLAN_SX_ID) 255 #define VLAN_SLOCK_ASSERT() sx_assert(&_VLAN_SX_ID, SA_SLOCKED) 256 #define VLAN_XLOCK_ASSERT() sx_assert(&_VLAN_SX_ID, SA_XLOCKED) 257 #define VLAN_SXLOCK_ASSERT() sx_assert(&_VLAN_SX_ID, SA_LOCKED) 258 259 /* 260 * We also have a per-trunk mutex that should be acquired when changing 261 * its state. 262 */ 263 #define TRUNK_LOCK_INIT(trunk) mtx_init(&(trunk)->lock, vlanname, NULL, MTX_DEF) 264 #define TRUNK_LOCK_DESTROY(trunk) mtx_destroy(&(trunk)->lock) 265 #define TRUNK_WLOCK(trunk) mtx_lock(&(trunk)->lock) 266 #define TRUNK_WUNLOCK(trunk) mtx_unlock(&(trunk)->lock) 267 #define TRUNK_WLOCK_ASSERT(trunk) mtx_assert(&(trunk)->lock, MA_OWNED); 268 269 /* 270 * The VLAN_ARRAY substitutes the dynamic hash with a static array 271 * with 4096 entries. In theory this can give a boost in processing, 272 * however in practice it does not. Probably this is because the array 273 * is too big to fit into CPU cache. 274 */ 275 #ifndef VLAN_ARRAY 276 static void vlan_inithash(struct ifvlantrunk *trunk); 277 static void vlan_freehash(struct ifvlantrunk *trunk); 278 static int vlan_inshash(struct ifvlantrunk *trunk, struct ifvlan *ifv); 279 static int vlan_remhash(struct ifvlantrunk *trunk, struct ifvlan *ifv); 280 static void vlan_growhash(struct ifvlantrunk *trunk, int howmuch); 281 static __inline struct ifvlan * vlan_gethash(struct ifvlantrunk *trunk, 282 uint16_t vid); 283 #endif 284 static void trunk_destroy(struct ifvlantrunk *trunk); 285 286 static void vlan_init(void *foo); 287 static void vlan_input(struct ifnet *ifp, struct mbuf *m); 288 static int vlan_ioctl(struct ifnet *ifp, u_long cmd, caddr_t addr); 289 #if defined(KERN_TLS) || defined(RATELIMIT) 290 static int vlan_snd_tag_alloc(struct ifnet *, 291 union if_snd_tag_alloc_params *, struct m_snd_tag **); 292 static int vlan_snd_tag_modify(struct m_snd_tag *, 293 union if_snd_tag_modify_params *); 294 static int vlan_snd_tag_query(struct m_snd_tag *, 295 union if_snd_tag_query_params *); 296 static void vlan_snd_tag_free(struct m_snd_tag *); 297 static struct m_snd_tag *vlan_next_snd_tag(struct m_snd_tag *); 298 static void vlan_ratelimit_query(struct ifnet *, 299 struct if_ratelimit_query_results *); 300 #endif 301 static void vlan_qflush(struct ifnet *ifp); 302 static int vlan_setflag(struct ifnet *ifp, int flag, int status, 303 int (*func)(struct ifnet *, int)); 304 static int vlan_setflags(struct ifnet *ifp, int status); 305 static int vlan_setmulti(struct ifnet *ifp); 306 static int vlan_transmit(struct ifnet *ifp, struct mbuf *m); 307 #ifdef ALTQ 308 static void vlan_altq_start(struct ifnet *ifp); 309 static int vlan_altq_transmit(struct ifnet *ifp, struct mbuf *m); 310 #endif 311 static int vlan_output(struct ifnet *ifp, struct mbuf *m, 312 const struct sockaddr *dst, struct route *ro); 313 static void vlan_unconfig(struct ifnet *ifp); 314 static void vlan_unconfig_locked(struct ifnet *ifp, int departing); 315 static int vlan_config(struct ifvlan *ifv, struct ifnet *p, uint16_t tag, 316 uint16_t proto); 317 static void vlan_link_state(struct ifnet *ifp); 318 static void vlan_capabilities(struct ifvlan *ifv); 319 static void vlan_trunk_capabilities(struct ifnet *ifp); 320 321 static struct ifnet *vlan_clone_match_ethervid(const char *, int *); 322 static int vlan_clone_match(struct if_clone *, const char *); 323 static int vlan_clone_create(struct if_clone *, char *, size_t, 324 struct ifc_data *, struct ifnet **); 325 static int vlan_clone_destroy(struct if_clone *, struct ifnet *, uint32_t); 326 327 static int vlan_clone_create_nl(struct if_clone *ifc, char *name, size_t len, 328 struct ifc_data_nl *ifd); 329 static int vlan_clone_modify_nl(struct ifnet *ifp, struct ifc_data_nl *ifd); 330 static void vlan_clone_dump_nl(struct ifnet *ifp, struct nl_writer *nw); 331 332 static void vlan_ifdetach(void *arg, struct ifnet *ifp); 333 static void vlan_iflladdr(void *arg, struct ifnet *ifp); 334 static void vlan_ifevent(void *arg, struct ifnet *ifp, int event); 335 336 static void vlan_lladdr_fn(void *arg, int pending); 337 338 static struct if_clone *vlan_cloner; 339 340 #ifdef VIMAGE 341 VNET_DEFINE_STATIC(struct if_clone *, vlan_cloner); 342 #define V_vlan_cloner VNET(vlan_cloner) 343 #endif 344 345 #ifdef RATELIMIT 346 static const struct if_snd_tag_sw vlan_snd_tag_ul_sw = { 347 .snd_tag_modify = vlan_snd_tag_modify, 348 .snd_tag_query = vlan_snd_tag_query, 349 .snd_tag_free = vlan_snd_tag_free, 350 .next_snd_tag = vlan_next_snd_tag, 351 .type = IF_SND_TAG_TYPE_UNLIMITED 352 }; 353 354 static const struct if_snd_tag_sw vlan_snd_tag_rl_sw = { 355 .snd_tag_modify = vlan_snd_tag_modify, 356 .snd_tag_query = vlan_snd_tag_query, 357 .snd_tag_free = vlan_snd_tag_free, 358 .next_snd_tag = vlan_next_snd_tag, 359 .type = IF_SND_TAG_TYPE_RATE_LIMIT 360 }; 361 #endif 362 363 #ifdef KERN_TLS 364 static const struct if_snd_tag_sw vlan_snd_tag_tls_sw = { 365 .snd_tag_modify = vlan_snd_tag_modify, 366 .snd_tag_query = vlan_snd_tag_query, 367 .snd_tag_free = vlan_snd_tag_free, 368 .next_snd_tag = vlan_next_snd_tag, 369 .type = IF_SND_TAG_TYPE_TLS 370 }; 371 372 #ifdef RATELIMIT 373 static const struct if_snd_tag_sw vlan_snd_tag_tls_rl_sw = { 374 .snd_tag_modify = vlan_snd_tag_modify, 375 .snd_tag_query = vlan_snd_tag_query, 376 .snd_tag_free = vlan_snd_tag_free, 377 .next_snd_tag = vlan_next_snd_tag, 378 .type = IF_SND_TAG_TYPE_TLS_RATE_LIMIT 379 }; 380 #endif 381 #endif 382 383 static void 384 vlan_mc_free(struct epoch_context *ctx) 385 { 386 struct vlan_mc_entry *mc = __containerof(ctx, struct vlan_mc_entry, mc_epoch_ctx); 387 free(mc, M_VLAN); 388 } 389 390 #ifndef VLAN_ARRAY 391 #define HASH(n, m) ((((n) >> 8) ^ ((n) >> 4) ^ (n)) & (m)) 392 393 static void 394 vlan_inithash(struct ifvlantrunk *trunk) 395 { 396 int i, n; 397 398 /* 399 * The trunk must not be locked here since we call malloc(M_WAITOK). 400 * It is OK in case this function is called before the trunk struct 401 * gets hooked up and becomes visible from other threads. 402 */ 403 404 KASSERT(trunk->hwidth == 0 && trunk->hash == NULL, 405 ("%s: hash already initialized", __func__)); 406 407 trunk->hwidth = VLAN_DEF_HWIDTH; 408 n = 1 << trunk->hwidth; 409 trunk->hmask = n - 1; 410 trunk->hash = malloc(sizeof(struct ifvlanhead) * n, M_VLAN, M_WAITOK); 411 for (i = 0; i < n; i++) 412 CK_SLIST_INIT(&trunk->hash[i]); 413 } 414 415 static void 416 vlan_freehash(struct ifvlantrunk *trunk) 417 { 418 #ifdef INVARIANTS 419 int i; 420 421 KASSERT(trunk->hwidth > 0, ("%s: hwidth not positive", __func__)); 422 for (i = 0; i < (1 << trunk->hwidth); i++) 423 KASSERT(CK_SLIST_EMPTY(&trunk->hash[i]), 424 ("%s: hash table not empty", __func__)); 425 #endif 426 free(trunk->hash, M_VLAN); 427 trunk->hash = NULL; 428 trunk->hwidth = trunk->hmask = 0; 429 } 430 431 static int 432 vlan_inshash(struct ifvlantrunk *trunk, struct ifvlan *ifv) 433 { 434 int i, b; 435 struct ifvlan *ifv2; 436 437 VLAN_XLOCK_ASSERT(); 438 KASSERT(trunk->hwidth > 0, ("%s: hwidth not positive", __func__)); 439 440 b = 1 << trunk->hwidth; 441 i = HASH(ifv->ifv_vid, trunk->hmask); 442 CK_SLIST_FOREACH(ifv2, &trunk->hash[i], ifv_list) 443 if (ifv->ifv_vid == ifv2->ifv_vid) 444 return (EEXIST); 445 446 /* 447 * Grow the hash when the number of vlans exceeds half of the number of 448 * hash buckets squared. This will make the average linked-list length 449 * buckets/2. 450 */ 451 if (trunk->refcnt > (b * b) / 2) { 452 vlan_growhash(trunk, 1); 453 i = HASH(ifv->ifv_vid, trunk->hmask); 454 } 455 CK_SLIST_INSERT_HEAD(&trunk->hash[i], ifv, ifv_list); 456 trunk->refcnt++; 457 458 return (0); 459 } 460 461 static int 462 vlan_remhash(struct ifvlantrunk *trunk, struct ifvlan *ifv) 463 { 464 int i, b; 465 struct ifvlan *ifv2; 466 467 VLAN_XLOCK_ASSERT(); 468 KASSERT(trunk->hwidth > 0, ("%s: hwidth not positive", __func__)); 469 470 b = 1 << (trunk->hwidth - 1); 471 i = HASH(ifv->ifv_vid, trunk->hmask); 472 CK_SLIST_FOREACH(ifv2, &trunk->hash[i], ifv_list) 473 if (ifv2 == ifv) { 474 trunk->refcnt--; 475 CK_SLIST_REMOVE(&trunk->hash[i], ifv2, ifvlan, ifv_list); 476 if (trunk->refcnt < (b * b) / 2) 477 vlan_growhash(trunk, -1); 478 return (0); 479 } 480 481 panic("%s: vlan not found\n", __func__); 482 return (ENOENT); /*NOTREACHED*/ 483 } 484 485 /* 486 * Grow the hash larger or smaller if memory permits. 487 */ 488 static void 489 vlan_growhash(struct ifvlantrunk *trunk, int howmuch) 490 { 491 struct ifvlan *ifv; 492 struct ifvlanhead *hash2; 493 int hwidth2, i, j, n, n2; 494 495 VLAN_XLOCK_ASSERT(); 496 KASSERT(trunk->hwidth > 0, ("%s: hwidth not positive", __func__)); 497 498 if (howmuch == 0) { 499 /* Harmless yet obvious coding error */ 500 printf("%s: howmuch is 0\n", __func__); 501 return; 502 } 503 504 hwidth2 = trunk->hwidth + howmuch; 505 n = 1 << trunk->hwidth; 506 n2 = 1 << hwidth2; 507 /* Do not shrink the table below the default */ 508 if (hwidth2 < VLAN_DEF_HWIDTH) 509 return; 510 511 hash2 = malloc(sizeof(struct ifvlanhead) * n2, M_VLAN, M_WAITOK); 512 for (j = 0; j < n2; j++) 513 CK_SLIST_INIT(&hash2[j]); 514 for (i = 0; i < n; i++) 515 while ((ifv = CK_SLIST_FIRST(&trunk->hash[i])) != NULL) { 516 CK_SLIST_REMOVE(&trunk->hash[i], ifv, ifvlan, ifv_list); 517 j = HASH(ifv->ifv_vid, n2 - 1); 518 CK_SLIST_INSERT_HEAD(&hash2[j], ifv, ifv_list); 519 } 520 NET_EPOCH_WAIT(); 521 free(trunk->hash, M_VLAN); 522 trunk->hash = hash2; 523 trunk->hwidth = hwidth2; 524 trunk->hmask = n2 - 1; 525 526 if (bootverbose) 527 if_printf(trunk->parent, 528 "VLAN hash table resized from %d to %d buckets\n", n, n2); 529 } 530 531 static __inline struct ifvlan * 532 vlan_gethash(struct ifvlantrunk *trunk, uint16_t vid) 533 { 534 struct ifvlan *ifv; 535 536 NET_EPOCH_ASSERT(); 537 538 CK_SLIST_FOREACH(ifv, &trunk->hash[HASH(vid, trunk->hmask)], ifv_list) 539 if (ifv->ifv_vid == vid) 540 return (ifv); 541 return (NULL); 542 } 543 544 #if 0 545 /* Debugging code to view the hashtables. */ 546 static void 547 vlan_dumphash(struct ifvlantrunk *trunk) 548 { 549 int i; 550 struct ifvlan *ifv; 551 552 for (i = 0; i < (1 << trunk->hwidth); i++) { 553 printf("%d: ", i); 554 CK_SLIST_FOREACH(ifv, &trunk->hash[i], ifv_list) 555 printf("%s ", ifv->ifv_ifp->if_xname); 556 printf("\n"); 557 } 558 } 559 #endif /* 0 */ 560 #else 561 562 static __inline struct ifvlan * 563 vlan_gethash(struct ifvlantrunk *trunk, uint16_t vid) 564 { 565 566 return trunk->vlans[vid]; 567 } 568 569 static __inline int 570 vlan_inshash(struct ifvlantrunk *trunk, struct ifvlan *ifv) 571 { 572 573 if (trunk->vlans[ifv->ifv_vid] != NULL) 574 return EEXIST; 575 trunk->vlans[ifv->ifv_vid] = ifv; 576 trunk->refcnt++; 577 578 return (0); 579 } 580 581 static __inline int 582 vlan_remhash(struct ifvlantrunk *trunk, struct ifvlan *ifv) 583 { 584 585 trunk->vlans[ifv->ifv_vid] = NULL; 586 trunk->refcnt--; 587 588 return (0); 589 } 590 591 static __inline void 592 vlan_freehash(struct ifvlantrunk *trunk) 593 { 594 } 595 596 static __inline void 597 vlan_inithash(struct ifvlantrunk *trunk) 598 { 599 } 600 601 #endif /* !VLAN_ARRAY */ 602 603 static void 604 trunk_destroy(struct ifvlantrunk *trunk) 605 { 606 VLAN_XLOCK_ASSERT(); 607 608 vlan_freehash(trunk); 609 trunk->parent->if_vlantrunk = NULL; 610 TRUNK_LOCK_DESTROY(trunk); 611 if_rele(trunk->parent); 612 free(trunk, M_VLAN); 613 } 614 615 /* 616 * Program our multicast filter. What we're actually doing is 617 * programming the multicast filter of the parent. This has the 618 * side effect of causing the parent interface to receive multicast 619 * traffic that it doesn't really want, which ends up being discarded 620 * later by the upper protocol layers. Unfortunately, there's no way 621 * to avoid this: there really is only one physical interface. 622 */ 623 static int 624 vlan_setmulti(struct ifnet *ifp) 625 { 626 struct ifnet *ifp_p; 627 struct ifmultiaddr *ifma; 628 struct ifvlan *sc; 629 struct vlan_mc_entry *mc; 630 int error; 631 632 VLAN_XLOCK_ASSERT(); 633 634 /* Find the parent. */ 635 sc = ifp->if_softc; 636 ifp_p = PARENT(sc); 637 638 CURVNET_SET_QUIET(ifp_p->if_vnet); 639 640 /* First, remove any existing filter entries. */ 641 while ((mc = CK_SLIST_FIRST(&sc->vlan_mc_listhead)) != NULL) { 642 CK_SLIST_REMOVE_HEAD(&sc->vlan_mc_listhead, mc_entries); 643 (void)if_delmulti(ifp_p, (struct sockaddr *)&mc->mc_addr); 644 NET_EPOCH_CALL(vlan_mc_free, &mc->mc_epoch_ctx); 645 } 646 647 /* Now program new ones. */ 648 IF_ADDR_WLOCK(ifp); 649 CK_STAILQ_FOREACH(ifma, &ifp->if_multiaddrs, ifma_link) { 650 if (ifma->ifma_addr->sa_family != AF_LINK) 651 continue; 652 mc = malloc(sizeof(struct vlan_mc_entry), M_VLAN, M_NOWAIT); 653 if (mc == NULL) { 654 IF_ADDR_WUNLOCK(ifp); 655 CURVNET_RESTORE(); 656 return (ENOMEM); 657 } 658 bcopy(ifma->ifma_addr, &mc->mc_addr, ifma->ifma_addr->sa_len); 659 mc->mc_addr.sdl_index = ifp_p->if_index; 660 CK_SLIST_INSERT_HEAD(&sc->vlan_mc_listhead, mc, mc_entries); 661 } 662 IF_ADDR_WUNLOCK(ifp); 663 CK_SLIST_FOREACH (mc, &sc->vlan_mc_listhead, mc_entries) { 664 error = if_addmulti(ifp_p, (struct sockaddr *)&mc->mc_addr, 665 NULL); 666 if (error) { 667 CURVNET_RESTORE(); 668 return (error); 669 } 670 } 671 672 CURVNET_RESTORE(); 673 return (0); 674 } 675 676 /* 677 * A handler for interface ifnet events. 678 */ 679 static void 680 vlan_ifevent(void *arg __unused, struct ifnet *ifp, int event) 681 { 682 struct epoch_tracker et; 683 struct ifvlan *ifv; 684 struct ifvlantrunk *trunk; 685 686 if (event != IFNET_EVENT_UPDATE_BAUDRATE) 687 return; 688 689 NET_EPOCH_ENTER(et); 690 trunk = ifp->if_vlantrunk; 691 if (trunk == NULL) { 692 NET_EPOCH_EXIT(et); 693 return; 694 } 695 696 TRUNK_WLOCK(trunk); 697 VLAN_FOREACH(ifv, trunk) { 698 ifv->ifv_ifp->if_baudrate = ifp->if_baudrate; 699 } 700 TRUNK_WUNLOCK(trunk); 701 NET_EPOCH_EXIT(et); 702 } 703 704 /* 705 * A handler for parent interface link layer address changes. 706 * If the parent interface link layer address is changed we 707 * should also change it on all children vlans. 708 */ 709 static void 710 vlan_iflladdr(void *arg __unused, struct ifnet *ifp) 711 { 712 struct epoch_tracker et; 713 struct ifvlan *ifv; 714 struct ifnet *ifv_ifp; 715 struct ifvlantrunk *trunk; 716 struct sockaddr_dl *sdl; 717 718 /* Need the epoch since this is run on taskqueue_swi. */ 719 NET_EPOCH_ENTER(et); 720 trunk = ifp->if_vlantrunk; 721 if (trunk == NULL) { 722 NET_EPOCH_EXIT(et); 723 return; 724 } 725 726 /* 727 * OK, it's a trunk. Loop over and change all vlan's lladdrs on it. 728 * We need an exclusive lock here to prevent concurrent SIOCSIFLLADDR 729 * ioctl calls on the parent garbling the lladdr of the child vlan. 730 */ 731 TRUNK_WLOCK(trunk); 732 VLAN_FOREACH(ifv, trunk) { 733 /* 734 * Copy new new lladdr into the ifv_ifp, enqueue a task 735 * to actually call if_setlladdr. if_setlladdr needs to 736 * be deferred to a taskqueue because it will call into 737 * the if_vlan ioctl path and try to acquire the global 738 * lock. 739 */ 740 ifv_ifp = ifv->ifv_ifp; 741 bcopy(IF_LLADDR(ifp), IF_LLADDR(ifv_ifp), 742 ifp->if_addrlen); 743 sdl = (struct sockaddr_dl *)ifv_ifp->if_addr->ifa_addr; 744 sdl->sdl_alen = ifp->if_addrlen; 745 taskqueue_enqueue(taskqueue_thread, &ifv->lladdr_task); 746 } 747 TRUNK_WUNLOCK(trunk); 748 NET_EPOCH_EXIT(et); 749 } 750 751 /* 752 * A handler for network interface departure events. 753 * Track departure of trunks here so that we don't access invalid 754 * pointers or whatever if a trunk is ripped from under us, e.g., 755 * by ejecting its hot-plug card. However, if an ifnet is simply 756 * being renamed, then there's no need to tear down the state. 757 */ 758 static void 759 vlan_ifdetach(void *arg __unused, struct ifnet *ifp) 760 { 761 struct ifvlan *ifv; 762 struct ifvlantrunk *trunk; 763 764 VLAN_XLOCK(); 765 trunk = ifp->if_vlantrunk; 766 if (trunk == NULL) { 767 VLAN_XUNLOCK(); 768 return; 769 } 770 771 /* 772 * OK, it's a trunk. Loop over and detach all vlan's on it. 773 * Check trunk pointer after each vlan_unconfig() as it will 774 * free it and set to NULL after the last vlan was detached. 775 */ 776 VLAN_FOREACH_UNTIL_SAFE(ifv, ifp->if_vlantrunk, 777 ifp->if_vlantrunk == NULL) 778 vlan_unconfig_locked(ifv->ifv_ifp, 1); 779 780 /* Trunk should have been destroyed in vlan_unconfig(). */ 781 KASSERT(ifp->if_vlantrunk == NULL, ("%s: purge failed", __func__)); 782 VLAN_XUNLOCK(); 783 } 784 785 /* 786 * Return the trunk device for a virtual interface. 787 */ 788 static struct ifnet * 789 vlan_trunkdev(struct ifnet *ifp) 790 { 791 struct ifvlan *ifv; 792 793 NET_EPOCH_ASSERT(); 794 795 if (ifp->if_type != IFT_L2VLAN) 796 return (NULL); 797 798 ifv = ifp->if_softc; 799 ifp = NULL; 800 if (ifv->ifv_trunk) 801 ifp = PARENT(ifv); 802 return (ifp); 803 } 804 805 /* 806 * Return the 12-bit VLAN VID for this interface, for use by external 807 * components such as Infiniband. 808 * 809 * XXXRW: Note that the function name here is historical; it should be named 810 * vlan_vid(). 811 */ 812 static int 813 vlan_tag(struct ifnet *ifp, uint16_t *vidp) 814 { 815 struct ifvlan *ifv; 816 817 if (ifp->if_type != IFT_L2VLAN) 818 return (EINVAL); 819 ifv = ifp->if_softc; 820 *vidp = ifv->ifv_vid; 821 return (0); 822 } 823 824 static int 825 vlan_pcp(struct ifnet *ifp, uint16_t *pcpp) 826 { 827 struct ifvlan *ifv; 828 829 if (ifp->if_type != IFT_L2VLAN) 830 return (EINVAL); 831 ifv = ifp->if_softc; 832 *pcpp = ifv->ifv_pcp; 833 return (0); 834 } 835 836 /* 837 * Return a driver specific cookie for this interface. Synchronization 838 * with setcookie must be provided by the driver. 839 */ 840 static void * 841 vlan_cookie(struct ifnet *ifp) 842 { 843 struct ifvlan *ifv; 844 845 if (ifp->if_type != IFT_L2VLAN) 846 return (NULL); 847 ifv = ifp->if_softc; 848 return (ifv->ifv_cookie); 849 } 850 851 /* 852 * Store a cookie in our softc that drivers can use to store driver 853 * private per-instance data in. 854 */ 855 static int 856 vlan_setcookie(struct ifnet *ifp, void *cookie) 857 { 858 struct ifvlan *ifv; 859 860 if (ifp->if_type != IFT_L2VLAN) 861 return (EINVAL); 862 ifv = ifp->if_softc; 863 ifv->ifv_cookie = cookie; 864 return (0); 865 } 866 867 /* 868 * Return the vlan device present at the specific VID. 869 */ 870 static struct ifnet * 871 vlan_devat(struct ifnet *ifp, uint16_t vid) 872 { 873 struct ifvlantrunk *trunk; 874 struct ifvlan *ifv; 875 876 NET_EPOCH_ASSERT(); 877 878 trunk = ifp->if_vlantrunk; 879 if (trunk == NULL) 880 return (NULL); 881 ifp = NULL; 882 ifv = vlan_gethash(trunk, vid); 883 if (ifv) 884 ifp = ifv->ifv_ifp; 885 return (ifp); 886 } 887 888 /* For if_link_state_change() eyes only... */ 889 extern void (*vlan_link_state_p)(struct ifnet *); 890 891 static struct if_clone_addreq_v2 vlan_addreq = { 892 .version = 2, 893 .match_f = vlan_clone_match, 894 .create_f = vlan_clone_create, 895 .destroy_f = vlan_clone_destroy, 896 .create_nl_f = vlan_clone_create_nl, 897 .modify_nl_f = vlan_clone_modify_nl, 898 .dump_nl_f = vlan_clone_dump_nl, 899 }; 900 901 static int 902 vlan_modevent(module_t mod, int type, void *data) 903 { 904 905 switch (type) { 906 case MOD_LOAD: 907 ifdetach_tag = EVENTHANDLER_REGISTER(ifnet_departure_event, 908 vlan_ifdetach, NULL, EVENTHANDLER_PRI_ANY); 909 if (ifdetach_tag == NULL) 910 return (ENOMEM); 911 iflladdr_tag = EVENTHANDLER_REGISTER(iflladdr_event, 912 vlan_iflladdr, NULL, EVENTHANDLER_PRI_ANY); 913 if (iflladdr_tag == NULL) 914 return (ENOMEM); 915 ifevent_tag = EVENTHANDLER_REGISTER(ifnet_event, 916 vlan_ifevent, NULL, EVENTHANDLER_PRI_ANY); 917 if (ifevent_tag == NULL) 918 return (ENOMEM); 919 VLAN_LOCKING_INIT(); 920 vlan_input_p = vlan_input; 921 vlan_link_state_p = vlan_link_state; 922 vlan_trunk_cap_p = vlan_trunk_capabilities; 923 vlan_trunkdev_p = vlan_trunkdev; 924 vlan_cookie_p = vlan_cookie; 925 vlan_setcookie_p = vlan_setcookie; 926 vlan_tag_p = vlan_tag; 927 vlan_pcp_p = vlan_pcp; 928 vlan_devat_p = vlan_devat; 929 #ifndef VIMAGE 930 vlan_cloner = ifc_attach_cloner(vlanname, (struct if_clone_addreq *)&vlan_addreq); 931 #endif 932 if (bootverbose) 933 printf("vlan: initialized, using " 934 #ifdef VLAN_ARRAY 935 "full-size arrays" 936 #else 937 "hash tables with chaining" 938 #endif 939 940 "\n"); 941 break; 942 case MOD_UNLOAD: 943 #ifndef VIMAGE 944 ifc_detach_cloner(vlan_cloner); 945 #endif 946 EVENTHANDLER_DEREGISTER(ifnet_departure_event, ifdetach_tag); 947 EVENTHANDLER_DEREGISTER(iflladdr_event, iflladdr_tag); 948 EVENTHANDLER_DEREGISTER(ifnet_event, ifevent_tag); 949 vlan_input_p = NULL; 950 vlan_link_state_p = NULL; 951 vlan_trunk_cap_p = NULL; 952 vlan_trunkdev_p = NULL; 953 vlan_tag_p = NULL; 954 vlan_cookie_p = NULL; 955 vlan_setcookie_p = NULL; 956 vlan_devat_p = NULL; 957 VLAN_LOCKING_DESTROY(); 958 if (bootverbose) 959 printf("vlan: unloaded\n"); 960 break; 961 default: 962 return (EOPNOTSUPP); 963 } 964 return (0); 965 } 966 967 static moduledata_t vlan_mod = { 968 "if_vlan", 969 vlan_modevent, 970 0 971 }; 972 973 DECLARE_MODULE(if_vlan, vlan_mod, SI_SUB_PSEUDO, SI_ORDER_ANY); 974 MODULE_VERSION(if_vlan, 3); 975 976 #ifdef VIMAGE 977 static void 978 vnet_vlan_init(const void *unused __unused) 979 { 980 vlan_cloner = ifc_attach_cloner(vlanname, (struct if_clone_addreq *)&vlan_addreq); 981 V_vlan_cloner = vlan_cloner; 982 } 983 VNET_SYSINIT(vnet_vlan_init, SI_SUB_PROTO_IFATTACHDOMAIN, SI_ORDER_ANY, 984 vnet_vlan_init, NULL); 985 986 static void 987 vnet_vlan_uninit(const void *unused __unused) 988 { 989 990 ifc_detach_cloner(V_vlan_cloner); 991 } 992 VNET_SYSUNINIT(vnet_vlan_uninit, SI_SUB_INIT_IF, SI_ORDER_ANY, 993 vnet_vlan_uninit, NULL); 994 #endif 995 996 /* 997 * Check for <etherif>.<vlan>[.<vlan> ...] style interface names. 998 */ 999 static struct ifnet * 1000 vlan_clone_match_ethervid(const char *name, int *vidp) 1001 { 1002 char ifname[IFNAMSIZ]; 1003 char *cp; 1004 struct ifnet *ifp; 1005 int vid; 1006 1007 strlcpy(ifname, name, IFNAMSIZ); 1008 if ((cp = strrchr(ifname, '.')) == NULL) 1009 return (NULL); 1010 *cp = '\0'; 1011 if ((ifp = ifunit_ref(ifname)) == NULL) 1012 return (NULL); 1013 /* Parse VID. */ 1014 if (*++cp == '\0') { 1015 if_rele(ifp); 1016 return (NULL); 1017 } 1018 vid = 0; 1019 for(; *cp >= '0' && *cp <= '9'; cp++) 1020 vid = (vid * 10) + (*cp - '0'); 1021 if (*cp != '\0') { 1022 if_rele(ifp); 1023 return (NULL); 1024 } 1025 if (vidp != NULL) 1026 *vidp = vid; 1027 1028 return (ifp); 1029 } 1030 1031 static int 1032 vlan_clone_match(struct if_clone *ifc, const char *name) 1033 { 1034 struct ifnet *ifp; 1035 const char *cp; 1036 1037 ifp = vlan_clone_match_ethervid(name, NULL); 1038 if (ifp != NULL) { 1039 if_rele(ifp); 1040 return (1); 1041 } 1042 1043 if (strncmp(vlanname, name, strlen(vlanname)) != 0) 1044 return (0); 1045 for (cp = name + 4; *cp != '\0'; cp++) { 1046 if (*cp < '0' || *cp > '9') 1047 return (0); 1048 } 1049 1050 return (1); 1051 } 1052 1053 static int 1054 vlan_clone_create(struct if_clone *ifc, char *name, size_t len, 1055 struct ifc_data *ifd, struct ifnet **ifpp) 1056 { 1057 char *dp; 1058 bool wildcard = false; 1059 bool subinterface = false; 1060 int unit; 1061 int error; 1062 int vid = 0; 1063 uint16_t proto = ETHERTYPE_VLAN; 1064 struct ifvlan *ifv; 1065 struct ifnet *ifp; 1066 struct ifnet *p = NULL; 1067 struct ifaddr *ifa; 1068 struct sockaddr_dl *sdl; 1069 struct vlanreq vlr; 1070 static const u_char eaddr[ETHER_ADDR_LEN]; /* 00:00:00:00:00:00 */ 1071 1072 1073 /* 1074 * There are three ways to specify the cloned device: 1075 * o pass a parameter block with the clone request. 1076 * o specify parameters in the text of the clone device name 1077 * o specify no parameters and get an unattached device that 1078 * must be configured separately. 1079 * The first technique is preferred; the latter two are supported 1080 * for backwards compatibility. 1081 * 1082 * XXXRW: Note historic use of the word "tag" here. New ioctls may be 1083 * called for. 1084 */ 1085 1086 if (ifd->params != NULL) { 1087 error = ifc_copyin(ifd, &vlr, sizeof(vlr)); 1088 if (error) 1089 return error; 1090 vid = vlr.vlr_tag; 1091 proto = vlr.vlr_proto; 1092 if (proto == 0) 1093 proto = ETHERTYPE_VLAN; 1094 p = ifunit_ref(vlr.vlr_parent); 1095 if (p == NULL) 1096 return (ENXIO); 1097 } 1098 1099 if ((error = ifc_name2unit(name, &unit)) == 0) { 1100 1101 /* 1102 * vlanX interface. Set wildcard to true if the unit number 1103 * is not fixed (-1) 1104 */ 1105 wildcard = (unit < 0); 1106 } else { 1107 struct ifnet *p_tmp = vlan_clone_match_ethervid(name, &vid); 1108 if (p_tmp != NULL) { 1109 error = 0; 1110 subinterface = true; 1111 unit = IF_DUNIT_NONE; 1112 wildcard = false; 1113 if (p != NULL) { 1114 if_rele(p_tmp); 1115 if (p != p_tmp) 1116 error = EINVAL; 1117 } else 1118 p = p_tmp; 1119 } else 1120 error = ENXIO; 1121 } 1122 1123 if (error != 0) { 1124 if (p != NULL) 1125 if_rele(p); 1126 return (error); 1127 } 1128 1129 if (!subinterface) { 1130 /* vlanX interface, mark X as busy or allocate new unit # */ 1131 error = ifc_alloc_unit(ifc, &unit); 1132 if (error != 0) { 1133 if (p != NULL) 1134 if_rele(p); 1135 return (error); 1136 } 1137 } 1138 1139 /* In the wildcard case, we need to update the name. */ 1140 if (wildcard) { 1141 for (dp = name; *dp != '\0'; dp++); 1142 if (snprintf(dp, len - (dp-name), "%d", unit) > 1143 len - (dp-name) - 1) { 1144 panic("%s: interface name too long", __func__); 1145 } 1146 } 1147 1148 ifv = malloc(sizeof(struct ifvlan), M_VLAN, M_WAITOK | M_ZERO); 1149 ifp = ifv->ifv_ifp = if_alloc(IFT_ETHER); 1150 CK_SLIST_INIT(&ifv->vlan_mc_listhead); 1151 ifp->if_softc = ifv; 1152 /* 1153 * Set the name manually rather than using if_initname because 1154 * we don't conform to the default naming convention for interfaces. 1155 */ 1156 strlcpy(ifp->if_xname, name, IFNAMSIZ); 1157 ifp->if_dname = vlanname; 1158 ifp->if_dunit = unit; 1159 1160 ifp->if_init = vlan_init; 1161 #ifdef ALTQ 1162 ifp->if_start = vlan_altq_start; 1163 ifp->if_transmit = vlan_altq_transmit; 1164 IFQ_SET_MAXLEN(&ifp->if_snd, ifqmaxlen); 1165 ifp->if_snd.ifq_drv_maxlen = 0; 1166 IFQ_SET_READY(&ifp->if_snd); 1167 #else 1168 ifp->if_transmit = vlan_transmit; 1169 #endif 1170 ifp->if_qflush = vlan_qflush; 1171 ifp->if_ioctl = vlan_ioctl; 1172 #if defined(KERN_TLS) || defined(RATELIMIT) 1173 ifp->if_snd_tag_alloc = vlan_snd_tag_alloc; 1174 ifp->if_ratelimit_query = vlan_ratelimit_query; 1175 #endif 1176 ifp->if_flags = VLAN_IFFLAGS; 1177 ifp->if_type = IFT_L2VLAN; 1178 ether_ifattach(ifp, eaddr); 1179 /* Now undo some of the damage... */ 1180 ifp->if_baudrate = 0; 1181 ifp->if_hdrlen = ETHER_VLAN_ENCAP_LEN; 1182 ifa = ifp->if_addr; 1183 sdl = (struct sockaddr_dl *)ifa->ifa_addr; 1184 sdl->sdl_type = IFT_L2VLAN; 1185 1186 if (p != NULL) { 1187 error = vlan_config(ifv, p, vid, proto); 1188 if_rele(p); 1189 if (error != 0) { 1190 /* 1191 * Since we've partially failed, we need to back 1192 * out all the way, otherwise userland could get 1193 * confused. Thus, we destroy the interface. 1194 */ 1195 ether_ifdetach(ifp); 1196 vlan_unconfig(ifp); 1197 if_free(ifp); 1198 if (!subinterface) 1199 ifc_free_unit(ifc, unit); 1200 free(ifv, M_VLAN); 1201 1202 return (error); 1203 } 1204 } 1205 *ifpp = ifp; 1206 1207 return (0); 1208 } 1209 1210 /* 1211 * 1212 * Parsers of IFLA_INFO_DATA inside IFLA_LINKINFO of RTM_NEWLINK 1213 * {{nla_len=8, nla_type=IFLA_LINK}, 2}, 1214 * {{nla_len=12, nla_type=IFLA_IFNAME}, "xvlan22"}, 1215 * {{nla_len=24, nla_type=IFLA_LINKINFO}, 1216 * [ 1217 * {{nla_len=8, nla_type=IFLA_INFO_KIND}, "vlan"...}, 1218 * {{nla_len=12, nla_type=IFLA_INFO_DATA}, "\x06\x00\x01\x00\x16\x00\x00\x00"}]} 1219 */ 1220 1221 struct nl_parsed_vlan { 1222 uint16_t vlan_id; 1223 uint16_t vlan_proto; 1224 struct ifla_vlan_flags vlan_flags; 1225 }; 1226 1227 #define _OUT(_field) offsetof(struct nl_parsed_vlan, _field) 1228 static const struct nlattr_parser nla_p_vlan[] = { 1229 { .type = IFLA_VLAN_ID, .off = _OUT(vlan_id), .cb = nlattr_get_uint16 }, 1230 { .type = IFLA_VLAN_FLAGS, .off = _OUT(vlan_flags), .cb = nlattr_get_nla }, 1231 { .type = IFLA_VLAN_PROTOCOL, .off = _OUT(vlan_proto), .cb = nlattr_get_uint16 }, 1232 }; 1233 #undef _OUT 1234 NL_DECLARE_ATTR_PARSER(vlan_parser, nla_p_vlan); 1235 1236 static int 1237 vlan_clone_create_nl(struct if_clone *ifc, char *name, size_t len, 1238 struct ifc_data_nl *ifd) 1239 { 1240 struct epoch_tracker et; 1241 struct ifnet *ifp_parent; 1242 struct nl_pstate *npt = ifd->npt; 1243 struct nl_parsed_link *lattrs = ifd->lattrs; 1244 int error; 1245 1246 /* 1247 * lattrs.ifla_ifname is the new interface name 1248 * lattrs.ifi_index contains parent interface index 1249 * lattrs.ifla_idata contains un-parsed vlan data 1250 */ 1251 struct nl_parsed_vlan attrs = { 1252 .vlan_id = 0xFEFE, 1253 .vlan_proto = ETHERTYPE_VLAN 1254 }; 1255 1256 if (lattrs->ifla_idata == NULL) { 1257 nlmsg_report_err_msg(npt, "vlan id is required, guessing not supported"); 1258 return (ENOTSUP); 1259 } 1260 1261 error = nl_parse_nested(lattrs->ifla_idata, &vlan_parser, npt, &attrs); 1262 if (error != 0) 1263 return (error); 1264 if (attrs.vlan_id > DOT1Q_VID_MAX) { 1265 nlmsg_report_err_msg(npt, "Invalid VID: %d", attrs.vlan_id); 1266 return (EINVAL); 1267 } 1268 if (attrs.vlan_proto != ETHERTYPE_VLAN && attrs.vlan_proto != ETHERTYPE_QINQ) { 1269 nlmsg_report_err_msg(npt, "Unsupported ethertype: 0x%04X", attrs.vlan_proto); 1270 return (ENOTSUP); 1271 } 1272 1273 struct vlanreq params = { 1274 .vlr_tag = attrs.vlan_id, 1275 .vlr_proto = attrs.vlan_proto, 1276 }; 1277 struct ifc_data ifd_new = { .flags = IFC_F_SYSSPACE, .unit = ifd->unit, .params = ¶ms }; 1278 1279 NET_EPOCH_ENTER(et); 1280 ifp_parent = ifnet_byindex(lattrs->ifi_index); 1281 if (ifp_parent != NULL) 1282 strlcpy(params.vlr_parent, if_name(ifp_parent), sizeof(params.vlr_parent)); 1283 NET_EPOCH_EXIT(et); 1284 1285 if (ifp_parent == NULL) { 1286 nlmsg_report_err_msg(npt, "unable to find parent interface %u", lattrs->ifi_index); 1287 return (ENOENT); 1288 } 1289 1290 error = vlan_clone_create(ifc, name, len, &ifd_new, &ifd->ifp); 1291 1292 return (error); 1293 } 1294 1295 static int 1296 vlan_clone_modify_nl(struct ifnet *ifp, struct ifc_data_nl *ifd) 1297 { 1298 struct nl_parsed_link *lattrs = ifd->lattrs; 1299 1300 if ((lattrs->ifla_idata != NULL) && ((ifd->flags & IFC_F_CREATE) == 0)) { 1301 struct epoch_tracker et; 1302 struct nl_parsed_vlan attrs = { 1303 .vlan_proto = ETHERTYPE_VLAN, 1304 }; 1305 int error; 1306 1307 error = nl_parse_nested(lattrs->ifla_idata, &vlan_parser, ifd->npt, &attrs); 1308 if (error != 0) 1309 return (error); 1310 1311 NET_EPOCH_ENTER(et); 1312 struct ifnet *ifp_parent = ifnet_byindex_ref(lattrs->ifla_link); 1313 NET_EPOCH_EXIT(et); 1314 1315 if (ifp_parent == NULL) { 1316 nlmsg_report_err_msg(ifd->npt, "unable to find parent interface %u", 1317 lattrs->ifla_link); 1318 return (ENOENT); 1319 } 1320 1321 struct ifvlan *ifv = ifp->if_softc; 1322 error = vlan_config(ifv, ifp_parent, attrs.vlan_id, attrs.vlan_proto); 1323 1324 if_rele(ifp_parent); 1325 if (error != 0) 1326 return (error); 1327 } 1328 1329 return (nl_modify_ifp_generic(ifp, ifd->lattrs, ifd->bm, ifd->npt)); 1330 } 1331 1332 /* 1333 * {{nla_len=24, nla_type=IFLA_LINKINFO}, 1334 * [ 1335 * {{nla_len=8, nla_type=IFLA_INFO_KIND}, "vlan"...}, 1336 * {{nla_len=12, nla_type=IFLA_INFO_DATA}, "\x06\x00\x01\x00\x16\x00\x00\x00"}]} 1337 */ 1338 static void 1339 vlan_clone_dump_nl(struct ifnet *ifp, struct nl_writer *nw) 1340 { 1341 struct ifvlan *ifv; 1342 uint32_t parent_index = 0; 1343 uint16_t vlan_id = 0; 1344 uint16_t vlan_proto = 0; 1345 1346 VLAN_SLOCK(); 1347 if (__predict_false((ifv = ifp->if_softc) == NULL)) { 1348 VLAN_SUNLOCK(); 1349 /* 1350 * XXXGL: the interface already went through if_dead(). This 1351 * check to be removed when we got better interface removal. 1352 */ 1353 return; 1354 } 1355 if (TRUNK(ifv) != NULL) 1356 parent_index = PARENT(ifv)->if_index; 1357 vlan_id = ifv->ifv_vid; 1358 vlan_proto = ifv->ifv_proto; 1359 VLAN_SUNLOCK(); 1360 1361 if (parent_index != 0) 1362 nlattr_add_u32(nw, IFLA_LINK, parent_index); 1363 1364 int off = nlattr_add_nested(nw, IFLA_LINKINFO); 1365 if (off != 0) { 1366 nlattr_add_string(nw, IFLA_INFO_KIND, "vlan"); 1367 int off2 = nlattr_add_nested(nw, IFLA_INFO_DATA); 1368 if (off2 != 0) { 1369 nlattr_add_u16(nw, IFLA_VLAN_ID, vlan_id); 1370 nlattr_add_u16(nw, IFLA_VLAN_PROTOCOL, vlan_proto); 1371 nlattr_set_len(nw, off2); 1372 } 1373 nlattr_set_len(nw, off); 1374 } 1375 } 1376 1377 static int 1378 vlan_clone_destroy(struct if_clone *ifc, struct ifnet *ifp, uint32_t flags) 1379 { 1380 struct ifvlan *ifv = ifp->if_softc; 1381 int unit = ifp->if_dunit; 1382 1383 if (ifp->if_vlantrunk) 1384 return (EBUSY); 1385 1386 #ifdef ALTQ 1387 IFQ_PURGE(&ifp->if_snd); 1388 #endif 1389 ether_ifdetach(ifp); /* first, remove it from system-wide lists */ 1390 vlan_unconfig(ifp); /* now it can be unconfigured and freed */ 1391 /* 1392 * We should have the only reference to the ifv now, so we can now 1393 * drain any remaining lladdr task before freeing the ifnet and the 1394 * ifvlan. 1395 */ 1396 taskqueue_drain(taskqueue_thread, &ifv->lladdr_task); 1397 NET_EPOCH_WAIT(); 1398 ifp->if_softc = NULL; 1399 if_free(ifp); 1400 free(ifv, M_VLAN); 1401 if (unit != IF_DUNIT_NONE) 1402 ifc_free_unit(ifc, unit); 1403 1404 return (0); 1405 } 1406 1407 /* 1408 * The ifp->if_init entry point for vlan(4) is a no-op. 1409 */ 1410 static void 1411 vlan_init(void *foo __unused) 1412 { 1413 } 1414 1415 /* 1416 * The if_transmit method for vlan(4) interface. 1417 */ 1418 static int 1419 vlan_transmit(struct ifnet *ifp, struct mbuf *m) 1420 { 1421 struct ifvlan *ifv; 1422 struct ifnet *p; 1423 int error, len, mcast; 1424 1425 NET_EPOCH_ASSERT(); 1426 1427 ifv = ifp->if_softc; 1428 if (TRUNK(ifv) == NULL) { 1429 if_inc_counter(ifp, IFCOUNTER_OERRORS, 1); 1430 m_freem(m); 1431 return (ENETDOWN); 1432 } 1433 p = PARENT(ifv); 1434 len = m->m_pkthdr.len; 1435 mcast = (m->m_flags & (M_MCAST | M_BCAST)) ? 1 : 0; 1436 1437 BPF_MTAP(ifp, m); 1438 1439 #if defined(KERN_TLS) || defined(RATELIMIT) 1440 if (m->m_pkthdr.csum_flags & CSUM_SND_TAG) { 1441 struct vlan_snd_tag *vst; 1442 struct m_snd_tag *mst; 1443 1444 MPASS(m->m_pkthdr.snd_tag->ifp == ifp); 1445 mst = m->m_pkthdr.snd_tag; 1446 vst = mst_to_vst(mst); 1447 if (vst->tag->ifp != p) { 1448 if_inc_counter(ifp, IFCOUNTER_OERRORS, 1); 1449 m_freem(m); 1450 return (EAGAIN); 1451 } 1452 1453 m->m_pkthdr.snd_tag = m_snd_tag_ref(vst->tag); 1454 m_snd_tag_rele(mst); 1455 } 1456 #endif 1457 1458 /* 1459 * Do not run parent's if_transmit() if the parent is not up, 1460 * or parent's driver will cause a system crash. 1461 */ 1462 if (!UP_AND_RUNNING(p)) { 1463 if_inc_counter(ifp, IFCOUNTER_OERRORS, 1); 1464 m_freem(m); 1465 return (ENETDOWN); 1466 } 1467 1468 if (!ether_8021q_frame(&m, ifp, p, &ifv->ifv_qtag)) { 1469 if_inc_counter(ifp, IFCOUNTER_OERRORS, 1); 1470 return (0); 1471 } 1472 1473 /* 1474 * Send it, precisely as ether_output() would have. 1475 */ 1476 error = (p->if_transmit)(p, m); 1477 if (error == 0) { 1478 if_inc_counter(ifp, IFCOUNTER_OPACKETS, 1); 1479 if_inc_counter(ifp, IFCOUNTER_OBYTES, len); 1480 if_inc_counter(ifp, IFCOUNTER_OMCASTS, mcast); 1481 } else 1482 if_inc_counter(ifp, IFCOUNTER_OERRORS, 1); 1483 return (error); 1484 } 1485 1486 static int 1487 vlan_output(struct ifnet *ifp, struct mbuf *m, const struct sockaddr *dst, 1488 struct route *ro) 1489 { 1490 struct ifvlan *ifv; 1491 struct ifnet *p; 1492 1493 NET_EPOCH_ASSERT(); 1494 1495 /* 1496 * Find the first non-VLAN parent interface. 1497 */ 1498 ifv = ifp->if_softc; 1499 do { 1500 if (TRUNK(ifv) == NULL) { 1501 m_freem(m); 1502 return (ENETDOWN); 1503 } 1504 p = PARENT(ifv); 1505 ifv = p->if_softc; 1506 } while (p->if_type == IFT_L2VLAN); 1507 1508 return p->if_output(ifp, m, dst, ro); 1509 } 1510 1511 #ifdef ALTQ 1512 static void 1513 vlan_altq_start(if_t ifp) 1514 { 1515 struct ifaltq *ifq = &ifp->if_snd; 1516 struct mbuf *m; 1517 1518 IFQ_LOCK(ifq); 1519 IFQ_DEQUEUE_NOLOCK(ifq, m); 1520 while (m != NULL) { 1521 vlan_transmit(ifp, m); 1522 IFQ_DEQUEUE_NOLOCK(ifq, m); 1523 } 1524 IFQ_UNLOCK(ifq); 1525 } 1526 1527 static int 1528 vlan_altq_transmit(if_t ifp, struct mbuf *m) 1529 { 1530 int err; 1531 1532 if (ALTQ_IS_ENABLED(&ifp->if_snd)) { 1533 IFQ_ENQUEUE(&ifp->if_snd, m, err); 1534 if (err == 0) 1535 vlan_altq_start(ifp); 1536 } else 1537 err = vlan_transmit(ifp, m); 1538 1539 return (err); 1540 } 1541 #endif /* ALTQ */ 1542 1543 /* 1544 * The ifp->if_qflush entry point for vlan(4) is a no-op. 1545 */ 1546 static void 1547 vlan_qflush(struct ifnet *ifp __unused) 1548 { 1549 } 1550 1551 static void 1552 vlan_input(struct ifnet *ifp, struct mbuf *m) 1553 { 1554 struct ifvlantrunk *trunk; 1555 struct ifvlan *ifv; 1556 struct m_tag *mtag; 1557 uint16_t vid, tag; 1558 1559 NET_EPOCH_ASSERT(); 1560 1561 trunk = ifp->if_vlantrunk; 1562 if (trunk == NULL) { 1563 m_freem(m); 1564 return; 1565 } 1566 1567 if (m->m_flags & M_VLANTAG) { 1568 /* 1569 * Packet is tagged, but m contains a normal 1570 * Ethernet frame; the tag is stored out-of-band. 1571 */ 1572 tag = m->m_pkthdr.ether_vtag; 1573 m->m_flags &= ~M_VLANTAG; 1574 } else { 1575 struct ether_vlan_header *evl; 1576 1577 /* 1578 * Packet is tagged in-band as specified by 802.1q. 1579 */ 1580 switch (ifp->if_type) { 1581 case IFT_ETHER: 1582 if (m->m_len < sizeof(*evl) && 1583 (m = m_pullup(m, sizeof(*evl))) == NULL) { 1584 if_printf(ifp, "cannot pullup VLAN header\n"); 1585 return; 1586 } 1587 evl = mtod(m, struct ether_vlan_header *); 1588 tag = ntohs(evl->evl_tag); 1589 1590 /* 1591 * Remove the 802.1q header by copying the Ethernet 1592 * addresses over it and adjusting the beginning of 1593 * the data in the mbuf. The encapsulated Ethernet 1594 * type field is already in place. 1595 */ 1596 bcopy((char *)evl, (char *)evl + ETHER_VLAN_ENCAP_LEN, 1597 ETHER_HDR_LEN - ETHER_TYPE_LEN); 1598 m_adj(m, ETHER_VLAN_ENCAP_LEN); 1599 break; 1600 1601 default: 1602 #ifdef INVARIANTS 1603 panic("%s: %s has unsupported if_type %u", 1604 __func__, ifp->if_xname, ifp->if_type); 1605 #endif 1606 if_inc_counter(ifp, IFCOUNTER_NOPROTO, 1); 1607 m_freem(m); 1608 return; 1609 } 1610 } 1611 1612 vid = EVL_VLANOFTAG(tag); 1613 1614 ifv = vlan_gethash(trunk, vid); 1615 if (ifv == NULL || !UP_AND_RUNNING(ifv->ifv_ifp)) { 1616 if_inc_counter(ifp, IFCOUNTER_NOPROTO, 1); 1617 m_freem(m); 1618 return; 1619 } 1620 1621 if (V_vlan_mtag_pcp) { 1622 /* 1623 * While uncommon, it is possible that we will find a 802.1q 1624 * packet encapsulated inside another packet that also had an 1625 * 802.1q header. For example, ethernet tunneled over IPSEC 1626 * arriving over ethernet. In that case, we replace the 1627 * existing 802.1q PCP m_tag value. 1628 */ 1629 mtag = m_tag_locate(m, MTAG_8021Q, MTAG_8021Q_PCP_IN, NULL); 1630 if (mtag == NULL) { 1631 mtag = m_tag_alloc(MTAG_8021Q, MTAG_8021Q_PCP_IN, 1632 sizeof(uint8_t), M_NOWAIT); 1633 if (mtag == NULL) { 1634 if_inc_counter(ifp, IFCOUNTER_IERRORS, 1); 1635 m_freem(m); 1636 return; 1637 } 1638 m_tag_prepend(m, mtag); 1639 } 1640 *(uint8_t *)(mtag + 1) = EVL_PRIOFTAG(tag); 1641 } 1642 1643 m->m_pkthdr.rcvif = ifv->ifv_ifp; 1644 if_inc_counter(ifv->ifv_ifp, IFCOUNTER_IPACKETS, 1); 1645 1646 /* Pass it back through the parent's input routine. */ 1647 (*ifv->ifv_ifp->if_input)(ifv->ifv_ifp, m); 1648 } 1649 1650 static void 1651 vlan_lladdr_fn(void *arg, int pending __unused) 1652 { 1653 struct ifvlan *ifv; 1654 struct ifnet *ifp; 1655 1656 ifv = (struct ifvlan *)arg; 1657 ifp = ifv->ifv_ifp; 1658 1659 CURVNET_SET(ifp->if_vnet); 1660 1661 /* The ifv_ifp already has the lladdr copied in. */ 1662 if_setlladdr(ifp, IF_LLADDR(ifp), ifp->if_addrlen); 1663 1664 CURVNET_RESTORE(); 1665 } 1666 1667 static int 1668 vlan_config(struct ifvlan *ifv, struct ifnet *p, uint16_t vid, 1669 uint16_t proto) 1670 { 1671 struct epoch_tracker et; 1672 struct ifvlantrunk *trunk; 1673 struct ifnet *ifp; 1674 int error = 0; 1675 1676 /* 1677 * We can handle non-ethernet hardware types as long as 1678 * they handle the tagging and headers themselves. 1679 */ 1680 if (p->if_type != IFT_ETHER && 1681 p->if_type != IFT_L2VLAN && 1682 p->if_type != IFT_BRIDGE && 1683 (p->if_capenable & IFCAP_VLAN_HWTAGGING) == 0) 1684 return (EPROTONOSUPPORT); 1685 if ((p->if_flags & VLAN_IFFLAGS) != VLAN_IFFLAGS) 1686 return (EPROTONOSUPPORT); 1687 /* 1688 * Don't let the caller set up a VLAN VID with 1689 * anything except VLID bits. 1690 * VID numbers 0x0 and 0xFFF are reserved. 1691 */ 1692 if (vid == 0 || vid == 0xFFF || (vid & ~EVL_VLID_MASK)) 1693 return (EINVAL); 1694 if (ifv->ifv_trunk) { 1695 trunk = ifv->ifv_trunk; 1696 if (trunk->parent != p) 1697 return (EBUSY); 1698 1699 VLAN_XLOCK(); 1700 1701 ifv->ifv_proto = proto; 1702 1703 if (ifv->ifv_vid != vid) { 1704 int oldvid = ifv->ifv_vid; 1705 1706 /* Re-hash */ 1707 vlan_remhash(trunk, ifv); 1708 ifv->ifv_vid = vid; 1709 error = vlan_inshash(trunk, ifv); 1710 if (error) { 1711 int ret __diagused; 1712 1713 ifv->ifv_vid = oldvid; 1714 /* Re-insert back where we found it. */ 1715 ret = vlan_inshash(trunk, ifv); 1716 MPASS(ret == 0); 1717 } 1718 } 1719 /* Will unlock */ 1720 goto done; 1721 } 1722 1723 VLAN_XLOCK(); 1724 if (p->if_vlantrunk == NULL) { 1725 trunk = malloc(sizeof(struct ifvlantrunk), 1726 M_VLAN, M_WAITOK | M_ZERO); 1727 vlan_inithash(trunk); 1728 TRUNK_LOCK_INIT(trunk); 1729 TRUNK_WLOCK(trunk); 1730 p->if_vlantrunk = trunk; 1731 trunk->parent = p; 1732 if_ref(trunk->parent); 1733 TRUNK_WUNLOCK(trunk); 1734 } else { 1735 trunk = p->if_vlantrunk; 1736 } 1737 1738 ifv->ifv_vid = vid; /* must set this before vlan_inshash() */ 1739 ifv->ifv_pcp = 0; /* Default: best effort delivery. */ 1740 error = vlan_inshash(trunk, ifv); 1741 if (error) 1742 goto done; 1743 ifv->ifv_proto = proto; 1744 ifv->ifv_encaplen = ETHER_VLAN_ENCAP_LEN; 1745 ifv->ifv_mintu = ETHERMIN; 1746 ifv->ifv_pflags = 0; 1747 ifv->ifv_capenable = -1; 1748 ifv->ifv_capenable2 = -1; 1749 1750 /* 1751 * If the parent supports the VLAN_MTU capability, 1752 * i.e. can Tx/Rx larger than ETHER_MAX_LEN frames, 1753 * use it. 1754 */ 1755 if (p->if_capenable & IFCAP_VLAN_MTU) { 1756 /* 1757 * No need to fudge the MTU since the parent can 1758 * handle extended frames. 1759 */ 1760 ifv->ifv_mtufudge = 0; 1761 } else { 1762 /* 1763 * Fudge the MTU by the encapsulation size. This 1764 * makes us incompatible with strictly compliant 1765 * 802.1Q implementations, but allows us to use 1766 * the feature with other NetBSD implementations, 1767 * which might still be useful. 1768 */ 1769 ifv->ifv_mtufudge = ifv->ifv_encaplen; 1770 } 1771 1772 ifv->ifv_trunk = trunk; 1773 ifp = ifv->ifv_ifp; 1774 /* 1775 * Initialize fields from our parent. This duplicates some 1776 * work with ether_ifattach() but allows for non-ethernet 1777 * interfaces to also work. 1778 */ 1779 ifp->if_mtu = p->if_mtu - ifv->ifv_mtufudge; 1780 ifp->if_baudrate = p->if_baudrate; 1781 ifp->if_input = p->if_input; 1782 ifp->if_resolvemulti = p->if_resolvemulti; 1783 ifp->if_addrlen = p->if_addrlen; 1784 ifp->if_broadcastaddr = p->if_broadcastaddr; 1785 ifp->if_pcp = ifv->ifv_pcp; 1786 1787 /* 1788 * We wrap the parent's if_output using vlan_output to ensure that it 1789 * can't become stale. 1790 */ 1791 ifp->if_output = vlan_output; 1792 1793 /* 1794 * Copy only a selected subset of flags from the parent. 1795 * Other flags are none of our business. 1796 */ 1797 #define VLAN_COPY_FLAGS (IFF_SIMPLEX) 1798 ifp->if_flags &= ~VLAN_COPY_FLAGS; 1799 ifp->if_flags |= p->if_flags & VLAN_COPY_FLAGS; 1800 #undef VLAN_COPY_FLAGS 1801 1802 ifp->if_link_state = p->if_link_state; 1803 1804 NET_EPOCH_ENTER(et); 1805 vlan_capabilities(ifv); 1806 NET_EPOCH_EXIT(et); 1807 1808 /* 1809 * Set up our interface address to reflect the underlying 1810 * physical interface's. 1811 */ 1812 TASK_INIT(&ifv->lladdr_task, 0, vlan_lladdr_fn, ifv); 1813 ((struct sockaddr_dl *)ifp->if_addr->ifa_addr)->sdl_alen = 1814 p->if_addrlen; 1815 1816 /* 1817 * Do not schedule link address update if it was the same 1818 * as previous parent's. This helps avoid updating for each 1819 * associated llentry. 1820 */ 1821 if (memcmp(IF_LLADDR(p), IF_LLADDR(ifp), p->if_addrlen) != 0) { 1822 bcopy(IF_LLADDR(p), IF_LLADDR(ifp), p->if_addrlen); 1823 taskqueue_enqueue(taskqueue_thread, &ifv->lladdr_task); 1824 } 1825 1826 /* We are ready for operation now. */ 1827 ifp->if_drv_flags |= IFF_DRV_RUNNING; 1828 1829 /* Update flags on the parent, if necessary. */ 1830 vlan_setflags(ifp, 1); 1831 1832 /* 1833 * Configure multicast addresses that may already be 1834 * joined on the vlan device. 1835 */ 1836 (void)vlan_setmulti(ifp); 1837 1838 done: 1839 if (error == 0) 1840 EVENTHANDLER_INVOKE(vlan_config, p, ifv->ifv_vid); 1841 VLAN_XUNLOCK(); 1842 1843 return (error); 1844 } 1845 1846 static void 1847 vlan_unconfig(struct ifnet *ifp) 1848 { 1849 1850 VLAN_XLOCK(); 1851 vlan_unconfig_locked(ifp, 0); 1852 VLAN_XUNLOCK(); 1853 } 1854 1855 static void 1856 vlan_unconfig_locked(struct ifnet *ifp, int departing) 1857 { 1858 struct ifvlantrunk *trunk; 1859 struct vlan_mc_entry *mc; 1860 struct ifvlan *ifv; 1861 struct ifnet *parent; 1862 int error; 1863 1864 VLAN_XLOCK_ASSERT(); 1865 1866 ifv = ifp->if_softc; 1867 trunk = ifv->ifv_trunk; 1868 parent = NULL; 1869 1870 if (trunk != NULL) { 1871 parent = trunk->parent; 1872 1873 /* 1874 * Since the interface is being unconfigured, we need to 1875 * empty the list of multicast groups that we may have joined 1876 * while we were alive from the parent's list. 1877 */ 1878 while ((mc = CK_SLIST_FIRST(&ifv->vlan_mc_listhead)) != NULL) { 1879 /* 1880 * If the parent interface is being detached, 1881 * all its multicast addresses have already 1882 * been removed. Warn about errors if 1883 * if_delmulti() does fail, but don't abort as 1884 * all callers expect vlan destruction to 1885 * succeed. 1886 */ 1887 if (!departing) { 1888 error = if_delmulti(parent, 1889 (struct sockaddr *)&mc->mc_addr); 1890 if (error) 1891 if_printf(ifp, 1892 "Failed to delete multicast address from parent: %d\n", 1893 error); 1894 } 1895 CK_SLIST_REMOVE_HEAD(&ifv->vlan_mc_listhead, mc_entries); 1896 NET_EPOCH_CALL(vlan_mc_free, &mc->mc_epoch_ctx); 1897 } 1898 1899 vlan_setflags(ifp, 0); /* clear special flags on parent */ 1900 1901 vlan_remhash(trunk, ifv); 1902 ifv->ifv_trunk = NULL; 1903 1904 /* 1905 * Check if we were the last. 1906 */ 1907 if (trunk->refcnt == 0) { 1908 parent->if_vlantrunk = NULL; 1909 NET_EPOCH_WAIT(); 1910 trunk_destroy(trunk); 1911 } 1912 } 1913 1914 /* Disconnect from parent. */ 1915 if (ifv->ifv_pflags) 1916 if_printf(ifp, "%s: ifv_pflags unclean\n", __func__); 1917 ifp->if_mtu = ETHERMTU; 1918 ifp->if_link_state = LINK_STATE_UNKNOWN; 1919 ifp->if_drv_flags &= ~IFF_DRV_RUNNING; 1920 1921 /* 1922 * Only dispatch an event if vlan was 1923 * attached, otherwise there is nothing 1924 * to cleanup anyway. 1925 */ 1926 if (parent != NULL) 1927 EVENTHANDLER_INVOKE(vlan_unconfig, parent, ifv->ifv_vid); 1928 } 1929 1930 /* Handle a reference counted flag that should be set on the parent as well */ 1931 static int 1932 vlan_setflag(struct ifnet *ifp, int flag, int status, 1933 int (*func)(struct ifnet *, int)) 1934 { 1935 struct ifvlan *ifv; 1936 int error; 1937 1938 VLAN_SXLOCK_ASSERT(); 1939 1940 ifv = ifp->if_softc; 1941 status = status ? (ifp->if_flags & flag) : 0; 1942 /* Now "status" contains the flag value or 0 */ 1943 1944 /* 1945 * See if recorded parent's status is different from what 1946 * we want it to be. If it is, flip it. We record parent's 1947 * status in ifv_pflags so that we won't clear parent's flag 1948 * we haven't set. In fact, we don't clear or set parent's 1949 * flags directly, but get or release references to them. 1950 * That's why we can be sure that recorded flags still are 1951 * in accord with actual parent's flags. 1952 */ 1953 if (status != (ifv->ifv_pflags & flag)) { 1954 error = (*func)(PARENT(ifv), status); 1955 if (error) 1956 return (error); 1957 ifv->ifv_pflags &= ~flag; 1958 ifv->ifv_pflags |= status; 1959 } 1960 return (0); 1961 } 1962 1963 /* 1964 * Handle IFF_* flags that require certain changes on the parent: 1965 * if "status" is true, update parent's flags respective to our if_flags; 1966 * if "status" is false, forcedly clear the flags set on parent. 1967 */ 1968 static int 1969 vlan_setflags(struct ifnet *ifp, int status) 1970 { 1971 int error, i; 1972 1973 for (i = 0; vlan_pflags[i].flag; i++) { 1974 error = vlan_setflag(ifp, vlan_pflags[i].flag, 1975 status, vlan_pflags[i].func); 1976 if (error) 1977 return (error); 1978 } 1979 return (0); 1980 } 1981 1982 /* Inform all vlans that their parent has changed link state */ 1983 static void 1984 vlan_link_state(struct ifnet *ifp) 1985 { 1986 struct epoch_tracker et; 1987 struct ifvlantrunk *trunk; 1988 struct ifvlan *ifv; 1989 1990 NET_EPOCH_ENTER(et); 1991 trunk = ifp->if_vlantrunk; 1992 if (trunk == NULL) { 1993 NET_EPOCH_EXIT(et); 1994 return; 1995 } 1996 1997 TRUNK_WLOCK(trunk); 1998 VLAN_FOREACH(ifv, trunk) { 1999 ifv->ifv_ifp->if_baudrate = trunk->parent->if_baudrate; 2000 if_link_state_change(ifv->ifv_ifp, 2001 trunk->parent->if_link_state); 2002 } 2003 TRUNK_WUNLOCK(trunk); 2004 NET_EPOCH_EXIT(et); 2005 } 2006 2007 #ifdef IPSEC_OFFLOAD 2008 #define VLAN_IPSEC_METHOD(exp) \ 2009 if_t p; \ 2010 struct ifvlan *ifv; \ 2011 int error; \ 2012 \ 2013 ifv = ifp->if_softc; \ 2014 VLAN_SLOCK(); \ 2015 if (TRUNK(ifv) != NULL) { \ 2016 p = PARENT(ifv); \ 2017 if_ref(p); \ 2018 error = p->if_ipsec_accel_m->exp; \ 2019 if_rele(p); \ 2020 } else { \ 2021 error = ENXIO; \ 2022 } \ 2023 VLAN_SUNLOCK(); \ 2024 return (error); 2025 2026 2027 static int 2028 vlan_if_spdadd(if_t ifp, void *sp, void *inp, void **priv) 2029 { 2030 VLAN_IPSEC_METHOD(if_spdadd(ifp, sp, inp, priv)); 2031 } 2032 2033 static int 2034 vlan_if_spddel(if_t ifp, void *sp, void *priv) 2035 { 2036 VLAN_IPSEC_METHOD(if_spddel(ifp, sp, priv)); 2037 } 2038 2039 static int 2040 vlan_if_sa_newkey(if_t ifp, void *sav, u_int drv_spi, void **privp) 2041 { 2042 VLAN_IPSEC_METHOD(if_sa_newkey(ifp, sav, drv_spi, privp)); 2043 } 2044 2045 static int 2046 vlan_if_sa_deinstall(if_t ifp, u_int drv_spi, void *priv) 2047 { 2048 VLAN_IPSEC_METHOD(if_sa_deinstall(ifp, drv_spi, priv)); 2049 } 2050 2051 static int 2052 vlan_if_sa_cnt(if_t ifp, void *sa, uint32_t drv_spi, void *priv, 2053 struct seclifetime *lt) 2054 { 2055 VLAN_IPSEC_METHOD(if_sa_cnt(ifp, sa, drv_spi, priv, lt)); 2056 } 2057 2058 static int 2059 vlan_if_ipsec_hwassist(if_t ifp, void *sav, u_int drv_spi,void *priv) 2060 { 2061 if_t trunk; 2062 2063 NET_EPOCH_ASSERT(); 2064 trunk = vlan_trunkdev(ifp); 2065 if (trunk == NULL) 2066 return (0); 2067 return (trunk->if_ipsec_accel_m->if_hwassist(trunk, sav, 2068 drv_spi, priv)); 2069 } 2070 2071 static const struct if_ipsec_accel_methods vlan_if_ipsec_accel_methods = { 2072 .if_spdadd = vlan_if_spdadd, 2073 .if_spddel = vlan_if_spddel, 2074 .if_sa_newkey = vlan_if_sa_newkey, 2075 .if_sa_deinstall = vlan_if_sa_deinstall, 2076 .if_sa_cnt = vlan_if_sa_cnt, 2077 .if_hwassist = vlan_if_ipsec_hwassist, 2078 }; 2079 2080 #undef VLAN_IPSEC_METHOD 2081 #endif /* IPSEC_OFFLOAD */ 2082 2083 static void 2084 vlan_capabilities(struct ifvlan *ifv) 2085 { 2086 struct ifnet *p; 2087 struct ifnet *ifp; 2088 struct ifnet_hw_tsomax hw_tsomax; 2089 int cap = 0, ena = 0, mena, cap2 = 0, ena2 = 0; 2090 int mena2 __unused; 2091 u_long hwa = 0; 2092 2093 NET_EPOCH_ASSERT(); 2094 VLAN_SXLOCK_ASSERT(); 2095 2096 p = PARENT(ifv); 2097 ifp = ifv->ifv_ifp; 2098 2099 /* Mask parent interface enabled capabilities disabled by user. */ 2100 mena = p->if_capenable & ifv->ifv_capenable; 2101 mena2 = p->if_capenable2 & ifv->ifv_capenable2; 2102 2103 /* 2104 * If the parent interface can do checksum offloading 2105 * on VLANs, then propagate its hardware-assisted 2106 * checksumming flags. Also assert that checksum 2107 * offloading requires hardware VLAN tagging. 2108 */ 2109 if (p->if_capabilities & IFCAP_VLAN_HWCSUM) 2110 cap |= p->if_capabilities & (IFCAP_HWCSUM | IFCAP_HWCSUM_IPV6); 2111 if (p->if_capenable & IFCAP_VLAN_HWCSUM && 2112 p->if_capenable & IFCAP_VLAN_HWTAGGING) { 2113 ena |= mena & (IFCAP_HWCSUM | IFCAP_HWCSUM_IPV6); 2114 if (ena & IFCAP_TXCSUM) 2115 hwa |= p->if_hwassist & (CSUM_IP | CSUM_TCP | 2116 CSUM_UDP | CSUM_SCTP); 2117 if (ena & IFCAP_TXCSUM_IPV6) 2118 hwa |= p->if_hwassist & (CSUM_TCP_IPV6 | 2119 CSUM_UDP_IPV6 | CSUM_SCTP_IPV6); 2120 } 2121 2122 /* 2123 * If the parent interface can do TSO on VLANs then 2124 * propagate the hardware-assisted flag. TSO on VLANs 2125 * does not necessarily require hardware VLAN tagging. 2126 */ 2127 memset(&hw_tsomax, 0, sizeof(hw_tsomax)); 2128 if_hw_tsomax_common(p, &hw_tsomax); 2129 if_hw_tsomax_update(ifp, &hw_tsomax); 2130 if (p->if_capabilities & IFCAP_VLAN_HWTSO) 2131 cap |= p->if_capabilities & IFCAP_TSO; 2132 if (p->if_capenable & IFCAP_VLAN_HWTSO) { 2133 ena |= mena & IFCAP_TSO; 2134 if (ena & IFCAP_TSO) 2135 hwa |= p->if_hwassist & CSUM_TSO; 2136 } 2137 2138 /* 2139 * If the parent interface can do LRO and checksum offloading on 2140 * VLANs, then guess it may do LRO on VLANs. False positive here 2141 * cost nothing, while false negative may lead to some confusions. 2142 */ 2143 if (p->if_capabilities & IFCAP_VLAN_HWCSUM) 2144 cap |= p->if_capabilities & IFCAP_LRO; 2145 if (p->if_capenable & IFCAP_VLAN_HWCSUM) 2146 ena |= mena & IFCAP_LRO; 2147 2148 /* 2149 * If the parent interface can offload TCP connections over VLANs then 2150 * propagate its TOE capability to the VLAN interface. 2151 * 2152 * All TOE drivers in the tree today can deal with VLANs. If this 2153 * changes then IFCAP_VLAN_TOE should be promoted to a full capability 2154 * with its own bit. 2155 */ 2156 #define IFCAP_VLAN_TOE IFCAP_TOE 2157 if (p->if_capabilities & IFCAP_VLAN_TOE) 2158 cap |= p->if_capabilities & IFCAP_TOE; 2159 if (p->if_capenable & IFCAP_VLAN_TOE) { 2160 SETTOEDEV(ifp, TOEDEV(p)); 2161 ena |= mena & IFCAP_TOE; 2162 } 2163 2164 /* 2165 * If the parent interface supports dynamic link state, so does the 2166 * VLAN interface. 2167 */ 2168 cap |= (p->if_capabilities & IFCAP_LINKSTATE); 2169 ena |= (mena & IFCAP_LINKSTATE); 2170 2171 #ifdef RATELIMIT 2172 /* 2173 * If the parent interface supports ratelimiting, so does the 2174 * VLAN interface. 2175 */ 2176 cap |= (p->if_capabilities & IFCAP_TXRTLMT); 2177 ena |= (mena & IFCAP_TXRTLMT); 2178 #endif 2179 2180 /* 2181 * If the parent interface supports unmapped mbufs, so does 2182 * the VLAN interface. Note that this should be fine even for 2183 * interfaces that don't support hardware tagging as headers 2184 * are prepended in normal mbufs to unmapped mbufs holding 2185 * payload data. 2186 */ 2187 cap |= (p->if_capabilities & IFCAP_MEXTPG); 2188 ena |= (mena & IFCAP_MEXTPG); 2189 2190 /* 2191 * If the parent interface can offload encryption and segmentation 2192 * of TLS records over TCP, propagate it's capability to the VLAN 2193 * interface. 2194 * 2195 * All TLS drivers in the tree today can deal with VLANs. If 2196 * this ever changes, then a new IFCAP_VLAN_TXTLS can be 2197 * defined. 2198 */ 2199 if (p->if_capabilities & (IFCAP_TXTLS | IFCAP_TXTLS_RTLMT)) 2200 cap |= p->if_capabilities & (IFCAP_TXTLS | IFCAP_TXTLS_RTLMT); 2201 if (p->if_capenable & (IFCAP_TXTLS | IFCAP_TXTLS_RTLMT)) 2202 ena |= mena & (IFCAP_TXTLS | IFCAP_TXTLS_RTLMT); 2203 2204 ifp->if_capabilities = cap; 2205 ifp->if_capenable = ena; 2206 ifp->if_hwassist = hwa; 2207 2208 #ifdef IPSEC_OFFLOAD 2209 cap2 |= p->if_capabilities2 & IFCAP2_BIT(IFCAP2_IPSEC_OFFLOAD); 2210 ena2 |= mena2 & IFCAP2_BIT(IFCAP2_IPSEC_OFFLOAD); 2211 ifp->if_ipsec_accel_m = &vlan_if_ipsec_accel_methods; 2212 #endif 2213 2214 ifp->if_capabilities2 = cap2; 2215 ifp->if_capenable2 = ena2; 2216 } 2217 2218 static void 2219 vlan_trunk_capabilities(struct ifnet *ifp) 2220 { 2221 struct epoch_tracker et; 2222 struct ifvlantrunk *trunk; 2223 struct ifvlan *ifv; 2224 2225 VLAN_SLOCK(); 2226 trunk = ifp->if_vlantrunk; 2227 if (trunk == NULL) { 2228 VLAN_SUNLOCK(); 2229 return; 2230 } 2231 NET_EPOCH_ENTER(et); 2232 VLAN_FOREACH(ifv, trunk) 2233 vlan_capabilities(ifv); 2234 NET_EPOCH_EXIT(et); 2235 VLAN_SUNLOCK(); 2236 } 2237 2238 static int 2239 vlan_ioctl(struct ifnet *ifp, u_long cmd, caddr_t data) 2240 { 2241 struct ifnet *p; 2242 struct ifreq *ifr; 2243 #ifdef INET 2244 struct ifaddr *ifa; 2245 #endif 2246 struct ifvlan *ifv; 2247 struct ifvlantrunk *trunk; 2248 struct vlanreq vlr; 2249 int error = 0, oldmtu; 2250 2251 ifr = (struct ifreq *)data; 2252 #ifdef INET 2253 ifa = (struct ifaddr *) data; 2254 #endif 2255 ifv = ifp->if_softc; 2256 2257 switch (cmd) { 2258 case SIOCSIFADDR: 2259 ifp->if_flags |= IFF_UP; 2260 #ifdef INET 2261 if (ifa->ifa_addr->sa_family == AF_INET) 2262 arp_ifinit(ifp, ifa); 2263 #endif 2264 break; 2265 case SIOCGIFADDR: 2266 bcopy(IF_LLADDR(ifp), &ifr->ifr_addr.sa_data[0], 2267 ifp->if_addrlen); 2268 break; 2269 case SIOCGIFMEDIA: 2270 VLAN_SLOCK(); 2271 if (TRUNK(ifv) != NULL) { 2272 p = PARENT(ifv); 2273 if_ref(p); 2274 error = (*p->if_ioctl)(p, SIOCGIFMEDIA, data); 2275 if_rele(p); 2276 /* Limit the result to the parent's current config. */ 2277 if (error == 0) { 2278 struct ifmediareq *ifmr; 2279 2280 ifmr = (struct ifmediareq *)data; 2281 if (ifmr->ifm_count >= 1 && ifmr->ifm_ulist) { 2282 ifmr->ifm_count = 1; 2283 error = copyout(&ifmr->ifm_current, 2284 ifmr->ifm_ulist, 2285 sizeof(int)); 2286 } 2287 } 2288 } else { 2289 error = EINVAL; 2290 } 2291 VLAN_SUNLOCK(); 2292 break; 2293 2294 case SIOCSIFMEDIA: 2295 error = EINVAL; 2296 break; 2297 2298 case SIOCSIFMTU: 2299 /* 2300 * Set the interface MTU. 2301 */ 2302 VLAN_SLOCK(); 2303 trunk = TRUNK(ifv); 2304 if (trunk != NULL) { 2305 TRUNK_WLOCK(trunk); 2306 if (ifr->ifr_mtu > 2307 (PARENT(ifv)->if_mtu - ifv->ifv_mtufudge) || 2308 ifr->ifr_mtu < 2309 (ifv->ifv_mintu - ifv->ifv_mtufudge)) 2310 error = EINVAL; 2311 else 2312 ifp->if_mtu = ifr->ifr_mtu; 2313 TRUNK_WUNLOCK(trunk); 2314 } else 2315 error = EINVAL; 2316 VLAN_SUNLOCK(); 2317 break; 2318 2319 case SIOCSETVLAN: 2320 #ifdef VIMAGE 2321 /* 2322 * XXXRW/XXXBZ: The goal in these checks is to allow a VLAN 2323 * interface to be delegated to a jail without allowing the 2324 * jail to change what underlying interface/VID it is 2325 * associated with. We are not entirely convinced that this 2326 * is the right way to accomplish that policy goal. 2327 */ 2328 if (ifp->if_vnet != ifp->if_home_vnet) { 2329 error = EPERM; 2330 break; 2331 } 2332 #endif 2333 error = copyin(ifr_data_get_ptr(ifr), &vlr, sizeof(vlr)); 2334 if (error) 2335 break; 2336 if (vlr.vlr_parent[0] == '\0') { 2337 vlan_unconfig(ifp); 2338 break; 2339 } 2340 p = ifunit_ref(vlr.vlr_parent); 2341 if (p == NULL) { 2342 error = ENOENT; 2343 break; 2344 } 2345 2346 /* 2347 * If the ifp is in a bridge, do not allow setting the device 2348 * to a bridge; this prevents having a bridge SVI as a bridge 2349 * member (which is not permitted). 2350 */ 2351 if (ifp->if_bridge != NULL && p->if_type == IFT_BRIDGE) { 2352 if_rele(p); 2353 error = EINVAL; 2354 break; 2355 } 2356 2357 if (vlr.vlr_proto == 0) 2358 vlr.vlr_proto = ETHERTYPE_VLAN; 2359 oldmtu = ifp->if_mtu; 2360 error = vlan_config(ifv, p, vlr.vlr_tag, vlr.vlr_proto); 2361 if_rele(p); 2362 2363 /* 2364 * VLAN MTU may change during addition of the vlandev. 2365 * If it did, do network layer specific procedure. 2366 */ 2367 if (ifp->if_mtu != oldmtu) 2368 if_notifymtu(ifp); 2369 break; 2370 2371 case SIOCGETVLAN: 2372 #ifdef VIMAGE 2373 if (ifp->if_vnet != ifp->if_home_vnet) { 2374 error = EPERM; 2375 break; 2376 } 2377 #endif 2378 bzero(&vlr, sizeof(vlr)); 2379 VLAN_SLOCK(); 2380 if (TRUNK(ifv) != NULL) { 2381 strlcpy(vlr.vlr_parent, PARENT(ifv)->if_xname, 2382 sizeof(vlr.vlr_parent)); 2383 vlr.vlr_tag = ifv->ifv_vid; 2384 vlr.vlr_proto = ifv->ifv_proto; 2385 } 2386 VLAN_SUNLOCK(); 2387 error = copyout(&vlr, ifr_data_get_ptr(ifr), sizeof(vlr)); 2388 break; 2389 2390 case SIOCSIFFLAGS: 2391 /* 2392 * We should propagate selected flags to the parent, 2393 * e.g., promiscuous mode. 2394 */ 2395 VLAN_SLOCK(); 2396 if (TRUNK(ifv) != NULL) 2397 error = vlan_setflags(ifp, 1); 2398 VLAN_SUNLOCK(); 2399 break; 2400 2401 case SIOCADDMULTI: 2402 case SIOCDELMULTI: 2403 /* 2404 * If we don't have a parent, just remember the membership for 2405 * when we do. 2406 * 2407 * XXX We need the rmlock here to avoid sleeping while 2408 * holding in6_multi_mtx. 2409 */ 2410 VLAN_XLOCK(); 2411 trunk = TRUNK(ifv); 2412 if (trunk != NULL) 2413 error = vlan_setmulti(ifp); 2414 VLAN_XUNLOCK(); 2415 2416 break; 2417 case SIOCGVLANPCP: 2418 #ifdef VIMAGE 2419 if (ifp->if_vnet != ifp->if_home_vnet) { 2420 error = EPERM; 2421 break; 2422 } 2423 #endif 2424 ifr->ifr_vlan_pcp = ifv->ifv_pcp; 2425 break; 2426 2427 case SIOCSVLANPCP: 2428 #ifdef VIMAGE 2429 if (ifp->if_vnet != ifp->if_home_vnet) { 2430 error = EPERM; 2431 break; 2432 } 2433 #endif 2434 error = priv_check(curthread, PRIV_NET_SETVLANPCP); 2435 if (error) 2436 break; 2437 if (ifr->ifr_vlan_pcp > VLAN_PCP_MAX) { 2438 error = EINVAL; 2439 break; 2440 } 2441 ifv->ifv_pcp = ifr->ifr_vlan_pcp; 2442 ifp->if_pcp = ifv->ifv_pcp; 2443 /* broadcast event about PCP change */ 2444 EVENTHANDLER_INVOKE(ifnet_event, ifp, IFNET_EVENT_PCP); 2445 break; 2446 2447 case SIOCSIFCAP: 2448 VLAN_SLOCK(); 2449 ifv->ifv_capenable = ifr->ifr_reqcap; 2450 trunk = TRUNK(ifv); 2451 if (trunk != NULL) { 2452 struct epoch_tracker et; 2453 2454 NET_EPOCH_ENTER(et); 2455 vlan_capabilities(ifv); 2456 NET_EPOCH_EXIT(et); 2457 } 2458 VLAN_SUNLOCK(); 2459 break; 2460 2461 default: 2462 error = EINVAL; 2463 break; 2464 } 2465 2466 return (error); 2467 } 2468 2469 #if defined(KERN_TLS) || defined(RATELIMIT) 2470 static int 2471 vlan_snd_tag_alloc(struct ifnet *ifp, 2472 union if_snd_tag_alloc_params *params, 2473 struct m_snd_tag **ppmt) 2474 { 2475 struct epoch_tracker et; 2476 const struct if_snd_tag_sw *sw; 2477 struct vlan_snd_tag *vst; 2478 struct ifvlan *ifv; 2479 struct ifnet *parent; 2480 struct m_snd_tag *mst; 2481 int error; 2482 2483 NET_EPOCH_ENTER(et); 2484 ifv = ifp->if_softc; 2485 2486 switch (params->hdr.type) { 2487 #ifdef RATELIMIT 2488 case IF_SND_TAG_TYPE_UNLIMITED: 2489 sw = &vlan_snd_tag_ul_sw; 2490 break; 2491 case IF_SND_TAG_TYPE_RATE_LIMIT: 2492 sw = &vlan_snd_tag_rl_sw; 2493 break; 2494 #endif 2495 #ifdef KERN_TLS 2496 case IF_SND_TAG_TYPE_TLS: 2497 sw = &vlan_snd_tag_tls_sw; 2498 break; 2499 case IF_SND_TAG_TYPE_TLS_RX: 2500 sw = NULL; 2501 if (params->tls_rx.vlan_id != 0) 2502 goto failure; 2503 params->tls_rx.vlan_id = ifv->ifv_vid; 2504 break; 2505 #ifdef RATELIMIT 2506 case IF_SND_TAG_TYPE_TLS_RATE_LIMIT: 2507 sw = &vlan_snd_tag_tls_rl_sw; 2508 break; 2509 #endif 2510 #endif 2511 default: 2512 goto failure; 2513 } 2514 2515 if (ifv->ifv_trunk != NULL) 2516 parent = PARENT(ifv); 2517 else 2518 parent = NULL; 2519 if (parent == NULL) 2520 goto failure; 2521 if_ref(parent); 2522 NET_EPOCH_EXIT(et); 2523 2524 if (sw != NULL) { 2525 vst = malloc(sizeof(*vst), M_VLAN, M_NOWAIT); 2526 if (vst == NULL) { 2527 if_rele(parent); 2528 return (ENOMEM); 2529 } 2530 } else 2531 vst = NULL; 2532 2533 error = m_snd_tag_alloc(parent, params, &mst); 2534 if_rele(parent); 2535 if (error) { 2536 free(vst, M_VLAN); 2537 return (error); 2538 } 2539 2540 if (sw != NULL) { 2541 m_snd_tag_init(&vst->com, ifp, sw); 2542 vst->tag = mst; 2543 2544 *ppmt = &vst->com; 2545 } else 2546 *ppmt = mst; 2547 2548 return (0); 2549 failure: 2550 NET_EPOCH_EXIT(et); 2551 return (EOPNOTSUPP); 2552 } 2553 2554 static struct m_snd_tag * 2555 vlan_next_snd_tag(struct m_snd_tag *mst) 2556 { 2557 struct vlan_snd_tag *vst; 2558 2559 vst = mst_to_vst(mst); 2560 return (vst->tag); 2561 } 2562 2563 static int 2564 vlan_snd_tag_modify(struct m_snd_tag *mst, 2565 union if_snd_tag_modify_params *params) 2566 { 2567 struct vlan_snd_tag *vst; 2568 2569 vst = mst_to_vst(mst); 2570 return (vst->tag->sw->snd_tag_modify(vst->tag, params)); 2571 } 2572 2573 static int 2574 vlan_snd_tag_query(struct m_snd_tag *mst, 2575 union if_snd_tag_query_params *params) 2576 { 2577 struct vlan_snd_tag *vst; 2578 2579 vst = mst_to_vst(mst); 2580 return (vst->tag->sw->snd_tag_query(vst->tag, params)); 2581 } 2582 2583 static void 2584 vlan_snd_tag_free(struct m_snd_tag *mst) 2585 { 2586 struct vlan_snd_tag *vst; 2587 2588 vst = mst_to_vst(mst); 2589 m_snd_tag_rele(vst->tag); 2590 free(vst, M_VLAN); 2591 } 2592 2593 static void 2594 vlan_ratelimit_query(struct ifnet *ifp __unused, struct if_ratelimit_query_results *q) 2595 { 2596 /* 2597 * For vlan, we have an indirect 2598 * interface. The caller needs to 2599 * get a ratelimit tag on the actual 2600 * interface the flow will go on. 2601 */ 2602 q->rate_table = NULL; 2603 q->flags = RT_IS_INDIRECT; 2604 q->max_flows = 0; 2605 q->number_of_rates = 0; 2606 } 2607 2608 #endif 2609