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if_vlan.c revision 1.70.2.1
      1 /*	$NetBSD: if_vlan.c,v 1.70.2.1 2014/09/22 10:44:37 martin Exp $	*/
      2 
      3 /*-
      4  * Copyright (c) 2000, 2001 The NetBSD Foundation, Inc.
      5  * All rights reserved.
      6  *
      7  * This code is derived from software contributed to The NetBSD Foundation
      8  * by Andrew Doran, and by Jason R. Thorpe of Zembu Labs, Inc.
      9  *
     10  * Redistribution and use in source and binary forms, with or without
     11  * modification, are permitted provided that the following conditions
     12  * are met:
     13  * 1. Redistributions of source code must retain the above copyright
     14  *    notice, this list of conditions and the following disclaimer.
     15  * 2. Redistributions in binary form must reproduce the above copyright
     16  *    notice, this list of conditions and the following disclaimer in the
     17  *    documentation and/or other materials provided with the distribution.
     18  *
     19  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29  * POSSIBILITY OF SUCH DAMAGE.
     30  */
     31 
     32 /*
     33  * Copyright 1998 Massachusetts Institute of Technology
     34  *
     35  * Permission to use, copy, modify, and distribute this software and
     36  * its documentation for any purpose and without fee is hereby
     37  * granted, provided that both the above copyright notice and this
     38  * permission notice appear in all copies, that both the above
     39  * copyright notice and this permission notice appear in all
     40  * supporting documentation, and that the name of M.I.T. not be used
     41  * in advertising or publicity pertaining to distribution of the
     42  * software without specific, written prior permission.  M.I.T. makes
     43  * no representations about the suitability of this software for any
     44  * purpose.  It is provided "as is" without express or implied
     45  * warranty.
     46  *
     47  * THIS SOFTWARE IS PROVIDED BY M.I.T. ``AS IS''.  M.I.T. DISCLAIMS
     48  * ALL EXPRESS OR IMPLIED WARRANTIES WITH REGARD TO THIS SOFTWARE,
     49  * INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
     50  * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE. IN NO EVENT
     51  * SHALL M.I.T. BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
     52  * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
     53  * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF
     54  * USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND
     55  * ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
     56  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT
     57  * OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     58  * SUCH DAMAGE.
     59  *
     60  * from FreeBSD: if_vlan.c,v 1.16 2000/03/26 15:21:40 charnier Exp
     61  * via OpenBSD: if_vlan.c,v 1.4 2000/05/15 19:15:00 chris Exp
     62  */
     63 
     64 /*
     65  * if_vlan.c - pseudo-device driver for IEEE 802.1Q virtual LANs.  Might be
     66  * extended some day to also handle IEEE 802.1P priority tagging.  This is
     67  * sort of sneaky in the implementation, since we need to pretend to be
     68  * enough of an Ethernet implementation to make ARP work.  The way we do
     69  * this is by telling everyone that we are an Ethernet interface, and then
     70  * catch the packets that ether_output() left on our output queue when it
     71  * calls if_start(), rewrite them for use by the real outgoing interface,
     72  * and ask it to send them.
     73  *
     74  * TODO:
     75  *
     76  *	- Need some way to notify vlan interfaces when the parent
     77  *	  interface changes MTU.
     78  */
     79 
     80 #include <sys/cdefs.h>
     81 __KERNEL_RCSID(0, "$NetBSD: if_vlan.c,v 1.70.2.1 2014/09/22 10:44:37 martin Exp $");
     82 
     83 #include "opt_inet.h"
     84 
     85 #include <sys/param.h>
     86 #include <sys/kernel.h>
     87 #include <sys/mbuf.h>
     88 #include <sys/queue.h>
     89 #include <sys/socket.h>
     90 #include <sys/sockio.h>
     91 #include <sys/systm.h>
     92 #include <sys/proc.h>
     93 #include <sys/kauth.h>
     94 
     95 #include <net/bpf.h>
     96 #include <net/if.h>
     97 #include <net/if_dl.h>
     98 #include <net/if_types.h>
     99 #include <net/if_ether.h>
    100 #include <net/if_vlanvar.h>
    101 
    102 #ifdef INET
    103 #include <netinet/in.h>
    104 #include <netinet/if_inarp.h>
    105 #endif
    106 #ifdef INET6
    107 #include <netinet6/in6_ifattach.h>
    108 #endif
    109 
    110 struct vlan_mc_entry {
    111 	LIST_ENTRY(vlan_mc_entry)	mc_entries;
    112 	/*
    113 	 * A key to identify this entry.  The mc_addr below can't be
    114 	 * used since multiple sockaddr may mapped into the same
    115 	 * ether_multi (e.g., AF_UNSPEC).
    116 	 */
    117 	union {
    118 		struct ether_multi	*mcu_enm;
    119 	} mc_u;
    120 	struct sockaddr_storage		mc_addr;
    121 };
    122 
    123 #define	mc_enm		mc_u.mcu_enm
    124 
    125 struct ifvlan {
    126 	union {
    127 		struct ethercom ifvu_ec;
    128 	} ifv_u;
    129 	struct ifnet *ifv_p;	/* parent interface of this vlan */
    130 	struct ifv_linkmib {
    131 		const struct vlan_multisw *ifvm_msw;
    132 		int	ifvm_encaplen;	/* encapsulation length */
    133 		int	ifvm_mtufudge;	/* MTU fudged by this much */
    134 		int	ifvm_mintu;	/* min transmission unit */
    135 		uint16_t ifvm_proto;	/* encapsulation ethertype */
    136 		uint16_t ifvm_tag;	/* tag to apply on packets */
    137 	} ifv_mib;
    138 	LIST_HEAD(__vlan_mchead, vlan_mc_entry) ifv_mc_listhead;
    139 	LIST_ENTRY(ifvlan) ifv_list;
    140 	int ifv_flags;
    141 };
    142 
    143 #define	IFVF_PROMISC	0x01		/* promiscuous mode enabled */
    144 
    145 #define	ifv_ec		ifv_u.ifvu_ec
    146 
    147 #define	ifv_if		ifv_ec.ec_if
    148 
    149 #define	ifv_msw		ifv_mib.ifvm_msw
    150 #define	ifv_encaplen	ifv_mib.ifvm_encaplen
    151 #define	ifv_mtufudge	ifv_mib.ifvm_mtufudge
    152 #define	ifv_mintu	ifv_mib.ifvm_mintu
    153 #define	ifv_tag		ifv_mib.ifvm_tag
    154 
    155 struct vlan_multisw {
    156 	int	(*vmsw_addmulti)(struct ifvlan *, struct ifreq *);
    157 	int	(*vmsw_delmulti)(struct ifvlan *, struct ifreq *);
    158 	void	(*vmsw_purgemulti)(struct ifvlan *);
    159 };
    160 
    161 static int	vlan_ether_addmulti(struct ifvlan *, struct ifreq *);
    162 static int	vlan_ether_delmulti(struct ifvlan *, struct ifreq *);
    163 static void	vlan_ether_purgemulti(struct ifvlan *);
    164 
    165 const struct vlan_multisw vlan_ether_multisw = {
    166 	vlan_ether_addmulti,
    167 	vlan_ether_delmulti,
    168 	vlan_ether_purgemulti,
    169 };
    170 
    171 static int	vlan_clone_create(struct if_clone *, int);
    172 static int	vlan_clone_destroy(struct ifnet *);
    173 static int	vlan_config(struct ifvlan *, struct ifnet *);
    174 static int	vlan_ioctl(struct ifnet *, u_long, void *);
    175 static void	vlan_start(struct ifnet *);
    176 static void	vlan_unconfig(struct ifnet *);
    177 
    178 void		vlanattach(int);
    179 
    180 /* XXX This should be a hash table with the tag as the basis of the key. */
    181 static LIST_HEAD(, ifvlan) ifv_list;
    182 
    183 struct if_clone vlan_cloner =
    184     IF_CLONE_INITIALIZER("vlan", vlan_clone_create, vlan_clone_destroy);
    185 
    186 /* Used to pad ethernet frames with < ETHER_MIN_LEN bytes */
    187 static char vlan_zero_pad_buff[ETHER_MIN_LEN];
    188 
    189 void
    190 vlanattach(int n)
    191 {
    192 
    193 	LIST_INIT(&ifv_list);
    194 	if_clone_attach(&vlan_cloner);
    195 }
    196 
    197 static void
    198 vlan_reset_linkname(struct ifnet *ifp)
    199 {
    200 
    201 	/*
    202 	 * We start out with a "802.1Q VLAN" type and zero-length
    203 	 * addresses.  When we attach to a parent interface, we
    204 	 * inherit its type, address length, address, and data link
    205 	 * type.
    206 	 */
    207 
    208 	ifp->if_type = IFT_L2VLAN;
    209 	ifp->if_addrlen = 0;
    210 	ifp->if_dlt = DLT_NULL;
    211 	if_alloc_sadl(ifp);
    212 }
    213 
    214 static int
    215 vlan_clone_create(struct if_clone *ifc, int unit)
    216 {
    217 	struct ifvlan *ifv;
    218 	struct ifnet *ifp;
    219 	int s;
    220 
    221 	ifv = malloc(sizeof(struct ifvlan), M_DEVBUF, M_WAITOK|M_ZERO);
    222 	ifp = &ifv->ifv_if;
    223 	LIST_INIT(&ifv->ifv_mc_listhead);
    224 
    225 	s = splnet();
    226 	LIST_INSERT_HEAD(&ifv_list, ifv, ifv_list);
    227 	splx(s);
    228 
    229 	if_initname(ifp, ifc->ifc_name, unit);
    230 	ifp->if_softc = ifv;
    231 	ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
    232 	ifp->if_start = vlan_start;
    233 	ifp->if_ioctl = vlan_ioctl;
    234 	IFQ_SET_READY(&ifp->if_snd);
    235 
    236 	if_attach(ifp);
    237 	vlan_reset_linkname(ifp);
    238 
    239 	return (0);
    240 }
    241 
    242 static int
    243 vlan_clone_destroy(struct ifnet *ifp)
    244 {
    245 	struct ifvlan *ifv = ifp->if_softc;
    246 	int s;
    247 
    248 	s = splnet();
    249 	LIST_REMOVE(ifv, ifv_list);
    250 	vlan_unconfig(ifp);
    251 	splx(s);
    252 
    253 	if_detach(ifp);
    254 	free(ifv, M_DEVBUF);
    255 
    256 	return (0);
    257 }
    258 
    259 /*
    260  * Configure a VLAN interface.  Must be called at splnet().
    261  */
    262 static int
    263 vlan_config(struct ifvlan *ifv, struct ifnet *p)
    264 {
    265 	struct ifnet *ifp = &ifv->ifv_if;
    266 	int error;
    267 
    268 	if (ifv->ifv_p != NULL)
    269 		return (EBUSY);
    270 
    271 	switch (p->if_type) {
    272 	case IFT_ETHER:
    273 	    {
    274 		struct ethercom *ec = (void *) p;
    275 
    276 		ifv->ifv_msw = &vlan_ether_multisw;
    277 		ifv->ifv_encaplen = ETHER_VLAN_ENCAP_LEN;
    278 		ifv->ifv_mintu = ETHERMIN;
    279 
    280 		/*
    281 		 * If the parent supports the VLAN_MTU capability,
    282 		 * i.e. can Tx/Rx larger than ETHER_MAX_LEN frames,
    283 		 * enable it.
    284 		 */
    285 		if (ec->ec_nvlans++ == 0 &&
    286 		    (ec->ec_capabilities & ETHERCAP_VLAN_MTU) != 0) {
    287 			/*
    288 			 * Enable Tx/Rx of VLAN-sized frames.
    289 			 */
    290 			ec->ec_capenable |= ETHERCAP_VLAN_MTU;
    291 			if (p->if_flags & IFF_UP) {
    292 				error = if_flags_set(p, p->if_flags);
    293 				if (error) {
    294 					if (ec->ec_nvlans-- == 1)
    295 						ec->ec_capenable &=
    296 						    ~ETHERCAP_VLAN_MTU;
    297 					return (error);
    298 				}
    299 			}
    300 			ifv->ifv_mtufudge = 0;
    301 		} else if ((ec->ec_capabilities & ETHERCAP_VLAN_MTU) == 0) {
    302 			/*
    303 			 * Fudge the MTU by the encapsulation size.  This
    304 			 * makes us incompatible with strictly compliant
    305 			 * 802.1Q implementations, but allows us to use
    306 			 * the feature with other NetBSD implementations,
    307 			 * which might still be useful.
    308 			 */
    309 			ifv->ifv_mtufudge = ifv->ifv_encaplen;
    310 		}
    311 
    312 		/*
    313 		 * If the parent interface can do hardware-assisted
    314 		 * VLAN encapsulation, then propagate its hardware-
    315 		 * assisted checksumming flags and tcp segmentation
    316 		 * offload.
    317 		 */
    318 		if (ec->ec_capabilities & ETHERCAP_VLAN_HWTAGGING) {
    319 		        ec->ec_capenable |= ETHERCAP_VLAN_HWTAGGING;
    320 			ifp->if_capabilities = p->if_capabilities &
    321 			    (IFCAP_TSOv4 | IFCAP_TSOv6 |
    322 			     IFCAP_CSUM_IPv4_Tx|IFCAP_CSUM_IPv4_Rx|
    323 			     IFCAP_CSUM_TCPv4_Tx|IFCAP_CSUM_TCPv4_Rx|
    324 			     IFCAP_CSUM_UDPv4_Tx|IFCAP_CSUM_UDPv4_Rx|
    325 			     IFCAP_CSUM_TCPv6_Tx|IFCAP_CSUM_TCPv6_Rx|
    326 			     IFCAP_CSUM_UDPv6_Tx|IFCAP_CSUM_UDPv6_Rx);
    327                 }
    328 		/*
    329 		 * We inherit the parent's Ethernet address.
    330 		 */
    331 		ether_ifattach(ifp, CLLADDR(p->if_sadl));
    332 		ifp->if_hdrlen = sizeof(struct ether_vlan_header); /* XXX? */
    333 		break;
    334 	    }
    335 
    336 	default:
    337 		return (EPROTONOSUPPORT);
    338 	}
    339 
    340 	ifv->ifv_p = p;
    341 	ifv->ifv_if.if_mtu = p->if_mtu - ifv->ifv_mtufudge;
    342 	ifv->ifv_if.if_flags = p->if_flags &
    343 	    (IFF_UP | IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST);
    344 
    345 	/*
    346 	 * Inherit the if_type from the parent.  This allows us
    347 	 * to participate in bridges of that type.
    348 	 */
    349 	ifv->ifv_if.if_type = p->if_type;
    350 
    351 	return (0);
    352 }
    353 
    354 /*
    355  * Unconfigure a VLAN interface.  Must be called at splnet().
    356  */
    357 static void
    358 vlan_unconfig(struct ifnet *ifp)
    359 {
    360 	struct ifvlan *ifv = ifp->if_softc;
    361 
    362 	if (ifv->ifv_p == NULL)
    363 		return;
    364 
    365 	/*
    366  	 * Since the interface is being unconfigured, we need to empty the
    367 	 * list of multicast groups that we may have joined while we were
    368 	 * alive and remove them from the parent's list also.
    369 	 */
    370 	(*ifv->ifv_msw->vmsw_purgemulti)(ifv);
    371 
    372 	/* Disconnect from parent. */
    373 	switch (ifv->ifv_p->if_type) {
    374 	case IFT_ETHER:
    375 	    {
    376 		struct ethercom *ec = (void *) ifv->ifv_p;
    377 
    378 		if (ec->ec_nvlans-- == 1) {
    379 			/*
    380 			 * Disable Tx/Rx of VLAN-sized frames.
    381 			 */
    382 			ec->ec_capenable &= ~ETHERCAP_VLAN_MTU;
    383 			if (ifv->ifv_p->if_flags & IFF_UP) {
    384 				(void)if_flags_set(ifv->ifv_p,
    385 				    ifv->ifv_p->if_flags);
    386 			}
    387 		}
    388 
    389 		ether_ifdetach(ifp);
    390 		/* Restore vlan_ioctl overwritten by ether_ifdetach */
    391 		ifp->if_ioctl = vlan_ioctl;
    392 		vlan_reset_linkname(ifp);
    393 		break;
    394 	    }
    395 
    396 #ifdef DIAGNOSTIC
    397 	default:
    398 		panic("vlan_unconfig: impossible");
    399 #endif
    400 	}
    401 
    402 	ifv->ifv_p = NULL;
    403 	ifv->ifv_if.if_mtu = 0;
    404 	ifv->ifv_flags = 0;
    405 
    406 #ifdef INET6
    407 	/* To delete v6 link local addresses */
    408 	in6_ifdetach(ifp);
    409 #endif
    410 	if ((ifp->if_flags & IFF_PROMISC) != 0)
    411 		ifpromisc(ifp, 0);
    412 	if_down(ifp);
    413 	ifp->if_flags &= ~(IFF_UP|IFF_RUNNING);
    414 	ifp->if_capabilities = 0;
    415 }
    416 
    417 /*
    418  * Called when a parent interface is detaching; destroy any VLAN
    419  * configuration for the parent interface.
    420  */
    421 void
    422 vlan_ifdetach(struct ifnet *p)
    423 {
    424 	struct ifvlan *ifv;
    425 	int s;
    426 
    427 	s = splnet();
    428 
    429 	for (ifv = LIST_FIRST(&ifv_list); ifv != NULL;
    430 	     ifv = LIST_NEXT(ifv, ifv_list)) {
    431 		if (ifv->ifv_p == p)
    432 			vlan_unconfig(&ifv->ifv_if);
    433 	}
    434 
    435 	splx(s);
    436 }
    437 
    438 static int
    439 vlan_set_promisc(struct ifnet *ifp)
    440 {
    441 	struct ifvlan *ifv = ifp->if_softc;
    442 	int error = 0;
    443 
    444 	if ((ifp->if_flags & IFF_PROMISC) != 0) {
    445 		if ((ifv->ifv_flags & IFVF_PROMISC) == 0) {
    446 			error = ifpromisc(ifv->ifv_p, 1);
    447 			if (error == 0)
    448 				ifv->ifv_flags |= IFVF_PROMISC;
    449 		}
    450 	} else {
    451 		if ((ifv->ifv_flags & IFVF_PROMISC) != 0) {
    452 			error = ifpromisc(ifv->ifv_p, 0);
    453 			if (error == 0)
    454 				ifv->ifv_flags &= ~IFVF_PROMISC;
    455 		}
    456 	}
    457 
    458 	return (error);
    459 }
    460 
    461 static int
    462 vlan_ioctl(struct ifnet *ifp, u_long cmd, void *data)
    463 {
    464 	struct lwp *l = curlwp;	/* XXX */
    465 	struct ifvlan *ifv = ifp->if_softc;
    466 	struct ifaddr *ifa = (struct ifaddr *) data;
    467 	struct ifreq *ifr = (struct ifreq *) data;
    468 	struct ifnet *pr;
    469 	struct ifcapreq *ifcr;
    470 	struct vlanreq vlr;
    471 	int s, error = 0;
    472 
    473 	s = splnet();
    474 
    475 	switch (cmd) {
    476 	case SIOCSIFMTU:
    477 		if (ifv->ifv_p == NULL)
    478 			error = EINVAL;
    479 		else if (
    480 		    ifr->ifr_mtu > (ifv->ifv_p->if_mtu - ifv->ifv_mtufudge) ||
    481 		    ifr->ifr_mtu < (ifv->ifv_mintu - ifv->ifv_mtufudge))
    482 			error = EINVAL;
    483 		else if ((error = ifioctl_common(ifp, cmd, data)) == ENETRESET)
    484 			error = 0;
    485 		break;
    486 
    487 	case SIOCSETVLAN:
    488 		if ((error = kauth_authorize_network(l->l_cred,
    489 		    KAUTH_NETWORK_INTERFACE,
    490 		    KAUTH_REQ_NETWORK_INTERFACE_SETPRIV, ifp, (void *)cmd,
    491 		    NULL)) != 0)
    492 			break;
    493 		if ((error = copyin(ifr->ifr_data, &vlr, sizeof(vlr))) != 0)
    494 			break;
    495 		if (vlr.vlr_parent[0] == '\0') {
    496 			if (ifv->ifv_p != NULL &&
    497 			    (ifp->if_flags & IFF_PROMISC) != 0)
    498 				error = ifpromisc(ifv->ifv_p, 0);
    499 			vlan_unconfig(ifp);
    500 			break;
    501 		}
    502 		if (vlr.vlr_tag != EVL_VLANOFTAG(vlr.vlr_tag)) {
    503 			error = EINVAL;		 /* check for valid tag */
    504 			break;
    505 		}
    506 		if ((pr = ifunit(vlr.vlr_parent)) == 0) {
    507 			error = ENOENT;
    508 			break;
    509 		}
    510 		if ((error = vlan_config(ifv, pr)) != 0)
    511 			break;
    512 		ifv->ifv_tag = vlr.vlr_tag;
    513 		ifp->if_flags |= IFF_RUNNING;
    514 
    515 		/* Update promiscuous mode, if necessary. */
    516 		vlan_set_promisc(ifp);
    517 		break;
    518 
    519 	case SIOCGETVLAN:
    520 		memset(&vlr, 0, sizeof(vlr));
    521 		if (ifv->ifv_p != NULL) {
    522 			snprintf(vlr.vlr_parent, sizeof(vlr.vlr_parent), "%s",
    523 			    ifv->ifv_p->if_xname);
    524 			vlr.vlr_tag = ifv->ifv_tag;
    525 		}
    526 		error = copyout(&vlr, ifr->ifr_data, sizeof(vlr));
    527 		break;
    528 
    529 	case SIOCSIFFLAGS:
    530 		if ((error = ifioctl_common(ifp, cmd, data)) != 0)
    531 			break;
    532 		/*
    533 		 * For promiscuous mode, we enable promiscuous mode on
    534 		 * the parent if we need promiscuous on the VLAN interface.
    535 		 */
    536 		if (ifv->ifv_p != NULL)
    537 			error = vlan_set_promisc(ifp);
    538 		break;
    539 
    540 	case SIOCADDMULTI:
    541 		error = (ifv->ifv_p != NULL) ?
    542 		    (*ifv->ifv_msw->vmsw_addmulti)(ifv, ifr) : EINVAL;
    543 		break;
    544 
    545 	case SIOCDELMULTI:
    546 		error = (ifv->ifv_p != NULL) ?
    547 		    (*ifv->ifv_msw->vmsw_delmulti)(ifv, ifr) : EINVAL;
    548 		break;
    549 
    550 	case SIOCSIFCAP:
    551 		ifcr = data;
    552 		/* make sure caps are enabled on parent */
    553 		if ((ifv->ifv_p->if_capenable & ifcr->ifcr_capenable) !=
    554 		    ifcr->ifcr_capenable) {
    555 			error = EINVAL;
    556 			break;
    557 		}
    558 		if ((error = ifioctl_common(ifp, cmd, data)) == ENETRESET)
    559 			error = 0;
    560 		break;
    561 	case SIOCINITIFADDR:
    562 		if (ifv->ifv_p == NULL) {
    563 			error = EINVAL;
    564 			break;
    565 		}
    566 
    567 		ifp->if_flags |= IFF_UP;
    568 #ifdef INET
    569 		if (ifa->ifa_addr->sa_family == AF_INET)
    570 			arp_ifinit(ifp, ifa);
    571 #endif
    572 		break;
    573 
    574 	default:
    575 		error = ether_ioctl(ifp, cmd, data);
    576 	}
    577 
    578 	splx(s);
    579 
    580 	return (error);
    581 }
    582 
    583 static int
    584 vlan_ether_addmulti(struct ifvlan *ifv, struct ifreq *ifr)
    585 {
    586 	const struct sockaddr *sa = ifreq_getaddr(SIOCADDMULTI, ifr);
    587 	struct vlan_mc_entry *mc;
    588 	uint8_t addrlo[ETHER_ADDR_LEN], addrhi[ETHER_ADDR_LEN];
    589 	int error;
    590 
    591 	if (sa->sa_len > sizeof(struct sockaddr_storage))
    592 		return (EINVAL);
    593 
    594 	error = ether_addmulti(sa, &ifv->ifv_ec);
    595 	if (error != ENETRESET)
    596 		return (error);
    597 
    598 	/*
    599 	 * This is new multicast address.  We have to tell parent
    600 	 * about it.  Also, remember this multicast address so that
    601 	 * we can delete them on unconfigure.
    602 	 */
    603 	mc = malloc(sizeof(struct vlan_mc_entry), M_DEVBUF, M_NOWAIT);
    604 	if (mc == NULL) {
    605 		error = ENOMEM;
    606 		goto alloc_failed;
    607 	}
    608 
    609 	/*
    610 	 * As ether_addmulti() returns ENETRESET, following two
    611 	 * statement shouldn't fail.
    612 	 */
    613 	(void)ether_multiaddr(sa, addrlo, addrhi);
    614 	ETHER_LOOKUP_MULTI(addrlo, addrhi, &ifv->ifv_ec, mc->mc_enm);
    615 	memcpy(&mc->mc_addr, sa, sa->sa_len);
    616 	LIST_INSERT_HEAD(&ifv->ifv_mc_listhead, mc, mc_entries);
    617 
    618 	error = if_mcast_op(ifv->ifv_p, SIOCADDMULTI, sa);
    619 	if (error != 0)
    620 		goto ioctl_failed;
    621 	return (error);
    622 
    623  ioctl_failed:
    624 	LIST_REMOVE(mc, mc_entries);
    625 	free(mc, M_DEVBUF);
    626  alloc_failed:
    627 	(void)ether_delmulti(sa, &ifv->ifv_ec);
    628 	return (error);
    629 }
    630 
    631 static int
    632 vlan_ether_delmulti(struct ifvlan *ifv, struct ifreq *ifr)
    633 {
    634 	const struct sockaddr *sa = ifreq_getaddr(SIOCDELMULTI, ifr);
    635 	struct ether_multi *enm;
    636 	struct vlan_mc_entry *mc;
    637 	uint8_t addrlo[ETHER_ADDR_LEN], addrhi[ETHER_ADDR_LEN];
    638 	int error;
    639 
    640 	/*
    641 	 * Find a key to lookup vlan_mc_entry.  We have to do this
    642 	 * before calling ether_delmulti for obvious reason.
    643 	 */
    644 	if ((error = ether_multiaddr(sa, addrlo, addrhi)) != 0)
    645 		return (error);
    646 	ETHER_LOOKUP_MULTI(addrlo, addrhi, &ifv->ifv_ec, enm);
    647 
    648 	error = ether_delmulti(sa, &ifv->ifv_ec);
    649 	if (error != ENETRESET)
    650 		return (error);
    651 
    652 	/* We no longer use this multicast address.  Tell parent so. */
    653 	error = if_mcast_op(ifv->ifv_p, SIOCDELMULTI, sa);
    654 	if (error == 0) {
    655 		/* And forget about this address. */
    656 		for (mc = LIST_FIRST(&ifv->ifv_mc_listhead); mc != NULL;
    657 		    mc = LIST_NEXT(mc, mc_entries)) {
    658 			if (mc->mc_enm == enm) {
    659 				LIST_REMOVE(mc, mc_entries);
    660 				free(mc, M_DEVBUF);
    661 				break;
    662 			}
    663 		}
    664 		KASSERT(mc != NULL);
    665 	} else
    666 		(void)ether_addmulti(sa, &ifv->ifv_ec);
    667 	return (error);
    668 }
    669 
    670 /*
    671  * Delete any multicast address we have asked to add from parent
    672  * interface.  Called when the vlan is being unconfigured.
    673  */
    674 static void
    675 vlan_ether_purgemulti(struct ifvlan *ifv)
    676 {
    677 	struct ifnet *ifp = ifv->ifv_p;		/* Parent. */
    678 	struct vlan_mc_entry *mc;
    679 
    680 	while ((mc = LIST_FIRST(&ifv->ifv_mc_listhead)) != NULL) {
    681 		(void)if_mcast_op(ifp, SIOCDELMULTI,
    682 		    (const struct sockaddr *)&mc->mc_addr);
    683 		LIST_REMOVE(mc, mc_entries);
    684 		free(mc, M_DEVBUF);
    685 	}
    686 }
    687 
    688 static void
    689 vlan_start(struct ifnet *ifp)
    690 {
    691 	struct ifvlan *ifv = ifp->if_softc;
    692 	struct ifnet *p = ifv->ifv_p;
    693 	struct ethercom *ec = (void *) ifv->ifv_p;
    694 	struct mbuf *m;
    695 	int error;
    696 	ALTQ_DECL(struct altq_pktattr pktattr;)
    697 
    698 	KASSERT(KERNEL_LOCKED_P());
    699 
    700 	ifp->if_flags |= IFF_OACTIVE;
    701 
    702 	for (;;) {
    703 		IFQ_DEQUEUE(&ifp->if_snd, m);
    704 		if (m == NULL)
    705 			break;
    706 
    707 #ifdef ALTQ
    708 		/*
    709 		 * If ALTQ is enabled on the parent interface, do
    710 		 * classification; the queueing discipline might
    711 		 * not require classification, but might require
    712 		 * the address family/header pointer in the pktattr.
    713 		 */
    714 		if (ALTQ_IS_ENABLED(&p->if_snd)) {
    715 			switch (p->if_type) {
    716 			case IFT_ETHER:
    717 				altq_etherclassify(&p->if_snd, m, &pktattr);
    718 				break;
    719 #ifdef DIAGNOSTIC
    720 			default:
    721 				panic("vlan_start: impossible (altq)");
    722 #endif
    723 			}
    724 		}
    725 #endif /* ALTQ */
    726 
    727 		bpf_mtap(ifp, m);
    728 		/*
    729 		 * If the parent can insert the tag itself, just mark
    730 		 * the tag in the mbuf header.
    731 		 */
    732 		if (ec->ec_capabilities & ETHERCAP_VLAN_HWTAGGING) {
    733 			struct m_tag *mtag;
    734 
    735 			mtag = m_tag_get(PACKET_TAG_VLAN, sizeof(u_int),
    736 			    M_NOWAIT);
    737 			if (mtag == NULL) {
    738 				ifp->if_oerrors++;
    739 				m_freem(m);
    740 				continue;
    741 			}
    742 			*(u_int *)(mtag + 1) = ifv->ifv_tag;
    743 			m_tag_prepend(m, mtag);
    744 		} else {
    745 			/*
    746 			 * insert the tag ourselves
    747 			 */
    748 			M_PREPEND(m, ifv->ifv_encaplen, M_DONTWAIT);
    749 			if (m == NULL) {
    750 				printf("%s: unable to prepend encap header",
    751 				    ifv->ifv_p->if_xname);
    752 				ifp->if_oerrors++;
    753 				continue;
    754 			}
    755 
    756 			switch (p->if_type) {
    757 			case IFT_ETHER:
    758 			    {
    759 				struct ether_vlan_header *evl;
    760 
    761 				if (m->m_len < sizeof(struct ether_vlan_header))
    762 					m = m_pullup(m,
    763 					    sizeof(struct ether_vlan_header));
    764 				if (m == NULL) {
    765 					printf("%s: unable to pullup encap "
    766 					    "header", ifv->ifv_p->if_xname);
    767 					ifp->if_oerrors++;
    768 					continue;
    769 				}
    770 
    771 				/*
    772 				 * Transform the Ethernet header into an
    773 				 * Ethernet header with 802.1Q encapsulation.
    774 				 */
    775 				memmove(mtod(m, void *),
    776 				    mtod(m, char *) + ifv->ifv_encaplen,
    777 				    sizeof(struct ether_header));
    778 				evl = mtod(m, struct ether_vlan_header *);
    779 				evl->evl_proto = evl->evl_encap_proto;
    780 				evl->evl_encap_proto = htons(ETHERTYPE_VLAN);
    781 				evl->evl_tag = htons(ifv->ifv_tag);
    782 
    783 				/*
    784 				 * To cater for VLAN-aware layer 2 ethernet
    785 				 * switches which may need to strip the tag
    786 				 * before forwarding the packet, make sure
    787 				 * the packet+tag is at least 68 bytes long.
    788 				 * This is necessary because our parent will
    789 				 * only pad to 64 bytes (ETHER_MIN_LEN) and
    790 				 * some switches will not pad by themselves
    791 				 * after deleting a tag.
    792 				 */
    793 				if (m->m_pkthdr.len <
    794 				    (ETHER_MIN_LEN + ETHER_VLAN_ENCAP_LEN)) {
    795 					m_copyback(m, m->m_pkthdr.len,
    796 					    (ETHER_MIN_LEN +
    797 					     ETHER_VLAN_ENCAP_LEN) -
    798 					     m->m_pkthdr.len,
    799 					    vlan_zero_pad_buff);
    800 				}
    801 				break;
    802 			    }
    803 
    804 #ifdef DIAGNOSTIC
    805 			default:
    806 				panic("vlan_start: impossible");
    807 #endif
    808 			}
    809 		}
    810 
    811 		/*
    812 		 * Send it, precisely as the parent's output routine
    813 		 * would have.  We are already running at splnet.
    814 		 */
    815 		IFQ_ENQUEUE(&p->if_snd, m, &pktattr, error);
    816 		if (error) {
    817 			/* mbuf is already freed */
    818 			ifp->if_oerrors++;
    819 			continue;
    820 		}
    821 
    822 		ifp->if_opackets++;
    823 		if ((p->if_flags & (IFF_RUNNING|IFF_OACTIVE)) == IFF_RUNNING)
    824 			(*p->if_start)(p);
    825 	}
    826 
    827 	ifp->if_flags &= ~IFF_OACTIVE;
    828 }
    829 
    830 /*
    831  * Given an Ethernet frame, find a valid vlan interface corresponding to the
    832  * given source interface and tag, then run the real packet through the
    833  * parent's input routine.
    834  */
    835 void
    836 vlan_input(struct ifnet *ifp, struct mbuf *m)
    837 {
    838 	struct ifvlan *ifv;
    839 	u_int tag;
    840 	struct m_tag *mtag;
    841 
    842 	mtag = m_tag_find(m, PACKET_TAG_VLAN, NULL);
    843 	if (mtag != NULL) {
    844 		/* m contains a normal ethernet frame, the tag is in mtag */
    845 		tag = EVL_VLANOFTAG(*(u_int *)(mtag + 1));
    846 		m_tag_delete(m, mtag);
    847 	} else {
    848 		switch (ifp->if_type) {
    849 		case IFT_ETHER:
    850 		    {
    851 			struct ether_vlan_header *evl;
    852 
    853 			if (m->m_len < sizeof(struct ether_vlan_header) &&
    854 			    (m = m_pullup(m,
    855 			     sizeof(struct ether_vlan_header))) == NULL) {
    856 				printf("%s: no memory for VLAN header, "
    857 				    "dropping packet.\n", ifp->if_xname);
    858 				return;
    859 			}
    860 			evl = mtod(m, struct ether_vlan_header *);
    861 			KASSERT(ntohs(evl->evl_encap_proto) == ETHERTYPE_VLAN);
    862 
    863 			tag = EVL_VLANOFTAG(ntohs(evl->evl_tag));
    864 
    865 			/*
    866 			 * Restore the original ethertype.  We'll remove
    867 			 * the encapsulation after we've found the vlan
    868 			 * interface corresponding to the tag.
    869 			 */
    870 			evl->evl_encap_proto = evl->evl_proto;
    871 			break;
    872 		    }
    873 
    874 		default:
    875 			tag = (u_int) -1;	/* XXX GCC */
    876 #ifdef DIAGNOSTIC
    877 			panic("vlan_input: impossible");
    878 #endif
    879 		}
    880 	}
    881 
    882 	for (ifv = LIST_FIRST(&ifv_list); ifv != NULL;
    883 	    ifv = LIST_NEXT(ifv, ifv_list))
    884 		if (ifp == ifv->ifv_p && tag == ifv->ifv_tag)
    885 			break;
    886 
    887 	if (ifv == NULL ||
    888 	    (ifv->ifv_if.if_flags & (IFF_UP|IFF_RUNNING)) !=
    889 	     (IFF_UP|IFF_RUNNING)) {
    890 		m_freem(m);
    891 		ifp->if_noproto++;
    892 		return;
    893 	}
    894 
    895 	/*
    896 	 * Now, remove the encapsulation header.  The original
    897 	 * header has already been fixed up above.
    898 	 */
    899 	if (mtag == NULL) {
    900 		memmove(mtod(m, char *) + ifv->ifv_encaplen,
    901 		    mtod(m, void *), sizeof(struct ether_header));
    902 		m_adj(m, ifv->ifv_encaplen);
    903 	}
    904 
    905 	m->m_pkthdr.rcvif = &ifv->ifv_if;
    906 	ifv->ifv_if.if_ipackets++;
    907 
    908 	bpf_mtap(&ifv->ifv_if, m);
    909 
    910 	m->m_flags &= ~M_PROMISC;
    911 	ifv->ifv_if.if_input(&ifv->ifv_if, m);
    912 }
    913