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ip6_output.c revision 1.23.2.3
      1  1.23.2.3  he /*	$NetBSD: ip6_output.c,v 1.23.2.3 2001/02/26 17:01:56 he Exp $	*/
      2  1.23.2.2  he /*	$KAME: ip6_output.c,v 1.109 2000/05/31 05:03:09 jinmei Exp $	*/
      3  1.23.2.2  he 
      4  1.23.2.2  he /*
      5  1.23.2.2  he  * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
      6  1.23.2.2  he  * All rights reserved.
      7  1.23.2.2  he  *
      8  1.23.2.2  he  * Redistribution and use in source and binary forms, with or without
      9  1.23.2.2  he  * modification, are permitted provided that the following conditions
     10  1.23.2.2  he  * are met:
     11  1.23.2.2  he  * 1. Redistributions of source code must retain the above copyright
     12  1.23.2.2  he  *    notice, this list of conditions and the following disclaimer.
     13  1.23.2.2  he  * 2. Redistributions in binary form must reproduce the above copyright
     14  1.23.2.2  he  *    notice, this list of conditions and the following disclaimer in the
     15  1.23.2.2  he  *    documentation and/or other materials provided with the distribution.
     16  1.23.2.2  he  * 3. Neither the name of the project nor the names of its contributors
     17  1.23.2.2  he  *    may be used to endorse or promote products derived from this software
     18  1.23.2.2  he  *    without specific prior written permission.
     19  1.23.2.2  he  *
     20  1.23.2.2  he  * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
     21  1.23.2.2  he  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     22  1.23.2.2  he  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     23  1.23.2.2  he  * ARE DISCLAIMED.  IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
     24  1.23.2.2  he  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     25  1.23.2.2  he  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     26  1.23.2.2  he  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     27  1.23.2.2  he  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     28  1.23.2.2  he  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     29  1.23.2.2  he  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     30  1.23.2.2  he  * SUCH DAMAGE.
     31  1.23.2.2  he  */
     32  1.23.2.2  he 
     33  1.23.2.2  he /*
     34  1.23.2.2  he  * Copyright (c) 1982, 1986, 1988, 1990, 1993
     35  1.23.2.2  he  *	The Regents of the University of California.  All rights reserved.
     36  1.23.2.2  he  *
     37  1.23.2.2  he  * Redistribution and use in source and binary forms, with or without
     38  1.23.2.2  he  * modification, are permitted provided that the following conditions
     39  1.23.2.2  he  * are met:
     40  1.23.2.2  he  * 1. Redistributions of source code must retain the above copyright
     41  1.23.2.2  he  *    notice, this list of conditions and the following disclaimer.
     42  1.23.2.2  he  * 2. Redistributions in binary form must reproduce the above copyright
     43  1.23.2.2  he  *    notice, this list of conditions and the following disclaimer in the
     44  1.23.2.2  he  *    documentation and/or other materials provided with the distribution.
     45  1.23.2.2  he  * 3. All advertising materials mentioning features or use of this software
     46  1.23.2.2  he  *    must display the following acknowledgement:
     47  1.23.2.2  he  *	This product includes software developed by the University of
     48  1.23.2.2  he  *	California, Berkeley and its contributors.
     49  1.23.2.2  he  * 4. Neither the name of the University nor the names of its contributors
     50  1.23.2.2  he  *    may be used to endorse or promote products derived from this software
     51  1.23.2.2  he  *    without specific prior written permission.
     52  1.23.2.2  he  *
     53  1.23.2.2  he  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     54  1.23.2.2  he  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     55  1.23.2.2  he  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     56  1.23.2.2  he  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     57  1.23.2.2  he  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     58  1.23.2.2  he  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     59  1.23.2.2  he  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     60  1.23.2.2  he  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     61  1.23.2.2  he  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     62  1.23.2.2  he  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     63  1.23.2.2  he  * SUCH DAMAGE.
     64  1.23.2.2  he  *
     65  1.23.2.2  he  *	@(#)ip_output.c	8.3 (Berkeley) 1/21/94
     66  1.23.2.2  he  */
     67  1.23.2.2  he 
     68  1.23.2.2  he #include "opt_inet.h"
     69  1.23.2.2  he #include "opt_ipsec.h"
     70  1.23.2.2  he #include "opt_pfil_hooks.h"
     71  1.23.2.2  he 
     72  1.23.2.2  he #include <sys/param.h>
     73  1.23.2.2  he #include <sys/malloc.h>
     74  1.23.2.2  he #include <sys/mbuf.h>
     75  1.23.2.2  he #include <sys/errno.h>
     76  1.23.2.2  he #include <sys/protosw.h>
     77  1.23.2.2  he #include <sys/socket.h>
     78  1.23.2.2  he #include <sys/socketvar.h>
     79  1.23.2.2  he #include <sys/systm.h>
     80  1.23.2.2  he #include <sys/proc.h>
     81  1.23.2.2  he 
     82  1.23.2.2  he #include <net/if.h>
     83  1.23.2.2  he #include <net/route.h>
     84  1.23.2.2  he #ifdef PFIL_HOOKS
     85  1.23.2.2  he #include <net/pfil.h>
     86  1.23.2.2  he #endif
     87  1.23.2.2  he 
     88  1.23.2.2  he #include <netinet/in.h>
     89  1.23.2.2  he #include <netinet/in_var.h>
     90  1.23.2.2  he #include <netinet/ip6.h>
     91  1.23.2.2  he #include <netinet/icmp6.h>
     92  1.23.2.2  he #include <netinet6/ip6_var.h>
     93  1.23.2.2  he #include <netinet6/in6_pcb.h>
     94  1.23.2.2  he #include <netinet6/nd6.h>
     95  1.23.2.2  he 
     96  1.23.2.2  he #ifdef IPSEC
     97  1.23.2.2  he #include <netinet6/ipsec.h>
     98  1.23.2.2  he #include <netkey/key.h>
     99  1.23.2.2  he #include <netkey/key_debug.h>
    100  1.23.2.2  he #endif /* IPSEC */
    101  1.23.2.2  he 
    102  1.23.2.2  he #include "loop.h"
    103  1.23.2.2  he 
    104  1.23.2.2  he #include <net/net_osdep.h>
    105  1.23.2.2  he 
    106  1.23.2.2  he #ifdef IPV6FIREWALL
    107  1.23.2.2  he #include <netinet6/ip6_fw.h>
    108  1.23.2.2  he #endif
    109  1.23.2.2  he 
    110  1.23.2.2  he struct ip6_exthdrs {
    111  1.23.2.2  he 	struct mbuf *ip6e_ip6;
    112  1.23.2.2  he 	struct mbuf *ip6e_hbh;
    113  1.23.2.2  he 	struct mbuf *ip6e_dest1;
    114  1.23.2.2  he 	struct mbuf *ip6e_rthdr;
    115  1.23.2.2  he 	struct mbuf *ip6e_dest2;
    116  1.23.2.2  he };
    117  1.23.2.2  he 
    118  1.23.2.2  he static int ip6_pcbopts __P((struct ip6_pktopts **, struct mbuf *,
    119  1.23.2.2  he 			    struct socket *));
    120  1.23.2.2  he static int ip6_setmoptions __P((int, struct ip6_moptions **, struct mbuf *));
    121  1.23.2.2  he static int ip6_getmoptions __P((int, struct ip6_moptions *, struct mbuf **));
    122  1.23.2.2  he static int ip6_copyexthdr __P((struct mbuf **, caddr_t, int));
    123  1.23.2.2  he static int ip6_insertfraghdr __P((struct mbuf *, struct mbuf *, int,
    124  1.23.2.2  he 				  struct ip6_frag **));
    125  1.23.2.2  he static int ip6_insert_jumboopt __P((struct ip6_exthdrs *, u_int32_t));
    126  1.23.2.2  he static int ip6_splithdr __P((struct mbuf *, struct ip6_exthdrs *));
    127  1.23.2.2  he 
    128  1.23.2.2  he extern struct ifnet loif[NLOOP];
    129  1.23.2.2  he 
    130  1.23.2.2  he /*
    131  1.23.2.2  he  * IP6 output. The packet in mbuf chain m contains a skeletal IP6
    132  1.23.2.2  he  * header (with pri, len, nxt, hlim, src, dst).
    133  1.23.2.2  he  * This function may modify ver and hlim only.
    134  1.23.2.2  he  * The mbuf chain containing the packet will be freed.
    135  1.23.2.2  he  * The mbuf opt, if present, will not be freed.
    136  1.23.2.2  he  */
    137  1.23.2.2  he int
    138  1.23.2.2  he ip6_output(m0, opt, ro, flags, im6o, ifpp)
    139  1.23.2.2  he 	struct mbuf *m0;
    140  1.23.2.2  he 	struct ip6_pktopts *opt;
    141  1.23.2.2  he 	struct route_in6 *ro;
    142  1.23.2.2  he 	int flags;
    143  1.23.2.2  he 	struct ip6_moptions *im6o;
    144  1.23.2.2  he 	struct ifnet **ifpp;		/* XXX: just for statistics */
    145  1.23.2.2  he {
    146  1.23.2.2  he 	struct ip6_hdr *ip6, *mhip6;
    147  1.23.2.2  he 	struct ifnet *ifp, *origifp;
    148  1.23.2.2  he 	struct mbuf *m = m0;
    149  1.23.2.2  he 	int hlen, tlen, len, off;
    150  1.23.2.2  he 	struct route_in6 ip6route;
    151  1.23.2.2  he 	struct sockaddr_in6 *dst;
    152  1.23.2.2  he 	int error = 0;
    153  1.23.2.2  he 	struct in6_ifaddr *ia;
    154  1.23.2.2  he 	u_long mtu;
    155  1.23.2.2  he 	u_int32_t optlen = 0, plen = 0, unfragpartlen = 0;
    156  1.23.2.2  he 	struct ip6_exthdrs exthdrs;
    157  1.23.2.2  he 	struct in6_addr finaldst;
    158  1.23.2.2  he 	struct route_in6 *ro_pmtu = NULL;
    159  1.23.2.2  he 	int hdrsplit = 0;
    160  1.23.2.2  he 	int needipsec = 0;
    161  1.23.2.2  he #ifdef PFIL_HOOKS
    162  1.23.2.2  he 	struct packet_filter_hook *pfh;
    163  1.23.2.2  he 	struct mbuf *m1;
    164  1.23.2.2  he 	int rv;
    165  1.23.2.2  he #endif /* PFIL_HOOKS */
    166  1.23.2.2  he #ifdef IPSEC
    167  1.23.2.2  he 	int needipsectun = 0;
    168  1.23.2.2  he 	struct socket *so;
    169  1.23.2.2  he 	struct secpolicy *sp = NULL;
    170  1.23.2.2  he 
    171  1.23.2.2  he 	/* for AH processing. stupid to have "socket" variable in IP layer... */
    172  1.23.2.2  he 	so = ipsec_getsocket(m);
    173  1.23.2.2  he 	ipsec_setsocket(m, NULL);
    174  1.23.2.2  he 	ip6 = mtod(m, struct ip6_hdr *);
    175  1.23.2.2  he #endif /* IPSEC */
    176  1.23.2.2  he 
    177  1.23.2.2  he #define MAKE_EXTHDR(hp, mp)						\
    178  1.23.2.2  he     do {								\
    179  1.23.2.2  he 	if (hp) {							\
    180  1.23.2.2  he 		struct ip6_ext *eh = (struct ip6_ext *)(hp);		\
    181  1.23.2.2  he 		error = ip6_copyexthdr((mp), (caddr_t)(hp), 		\
    182  1.23.2.2  he 				       ((eh)->ip6e_len + 1) << 3);	\
    183  1.23.2.2  he 		if (error)						\
    184  1.23.2.2  he 			goto freehdrs;					\
    185  1.23.2.2  he 	}								\
    186  1.23.2.2  he     } while (0)
    187  1.23.2.2  he 
    188  1.23.2.2  he 	bzero(&exthdrs, sizeof(exthdrs));
    189  1.23.2.2  he 	if (opt) {
    190  1.23.2.2  he 		/* Hop-by-Hop options header */
    191  1.23.2.2  he 		MAKE_EXTHDR(opt->ip6po_hbh, &exthdrs.ip6e_hbh);
    192  1.23.2.2  he 		/* Destination options header(1st part) */
    193  1.23.2.2  he 		MAKE_EXTHDR(opt->ip6po_dest1, &exthdrs.ip6e_dest1);
    194  1.23.2.2  he 		/* Routing header */
    195  1.23.2.2  he 		MAKE_EXTHDR(opt->ip6po_rthdr, &exthdrs.ip6e_rthdr);
    196  1.23.2.2  he 		/* Destination options header(2nd part) */
    197  1.23.2.2  he 		MAKE_EXTHDR(opt->ip6po_dest2, &exthdrs.ip6e_dest2);
    198  1.23.2.2  he 	}
    199  1.23.2.2  he 
    200  1.23.2.2  he #ifdef IPSEC
    201  1.23.2.2  he 	/* get a security policy for this packet */
    202  1.23.2.2  he 	if (so == NULL)
    203  1.23.2.2  he 		sp = ipsec6_getpolicybyaddr(m, IPSEC_DIR_OUTBOUND, 0, &error);
    204  1.23.2.2  he 	else
    205  1.23.2.2  he 		sp = ipsec6_getpolicybysock(m, IPSEC_DIR_OUTBOUND, so, &error);
    206  1.23.2.2  he 
    207  1.23.2.2  he 	if (sp == NULL) {
    208  1.23.2.2  he 		ipsec6stat.out_inval++;
    209  1.23.2.2  he 		goto freehdrs;
    210  1.23.2.2  he 	}
    211  1.23.2.2  he 
    212  1.23.2.2  he 	error = 0;
    213  1.23.2.2  he 
    214  1.23.2.2  he 	/* check policy */
    215  1.23.2.2  he 	switch (sp->policy) {
    216  1.23.2.2  he 	case IPSEC_POLICY_DISCARD:
    217  1.23.2.2  he 		/*
    218  1.23.2.2  he 		 * This packet is just discarded.
    219  1.23.2.2  he 		 */
    220  1.23.2.2  he 		ipsec6stat.out_polvio++;
    221  1.23.2.2  he 		goto freehdrs;
    222  1.23.2.2  he 
    223  1.23.2.2  he 	case IPSEC_POLICY_BYPASS:
    224  1.23.2.2  he 	case IPSEC_POLICY_NONE:
    225  1.23.2.2  he 		/* no need to do IPsec. */
    226  1.23.2.2  he 		needipsec = 0;
    227  1.23.2.2  he 		break;
    228  1.23.2.2  he 
    229  1.23.2.2  he 	case IPSEC_POLICY_IPSEC:
    230  1.23.2.2  he 		if (sp->req == NULL) {
    231  1.23.2.2  he 			/* XXX should be panic ? */
    232  1.23.2.2  he 			printf("ip6_output: No IPsec request specified.\n");
    233  1.23.2.2  he 			error = EINVAL;
    234  1.23.2.2  he 			goto freehdrs;
    235  1.23.2.2  he 		}
    236  1.23.2.2  he 		needipsec = 1;
    237  1.23.2.2  he 		break;
    238  1.23.2.2  he 
    239  1.23.2.2  he 	case IPSEC_POLICY_ENTRUST:
    240  1.23.2.2  he 	default:
    241  1.23.2.2  he 		printf("ip6_output: Invalid policy found. %d\n", sp->policy);
    242  1.23.2.2  he 	}
    243  1.23.2.2  he #endif /* IPSEC */
    244  1.23.2.2  he 
    245  1.23.2.2  he 	/*
    246  1.23.2.2  he 	 * Calculate the total length of the extension header chain.
    247  1.23.2.2  he 	 * Keep the length of the unfragmentable part for fragmentation.
    248  1.23.2.2  he 	 */
    249  1.23.2.2  he 	optlen = 0;
    250  1.23.2.2  he 	if (exthdrs.ip6e_hbh) optlen += exthdrs.ip6e_hbh->m_len;
    251  1.23.2.2  he 	if (exthdrs.ip6e_dest1) optlen += exthdrs.ip6e_dest1->m_len;
    252  1.23.2.2  he 	if (exthdrs.ip6e_rthdr) optlen += exthdrs.ip6e_rthdr->m_len;
    253  1.23.2.2  he 	unfragpartlen = optlen + sizeof(struct ip6_hdr);
    254  1.23.2.2  he 	/* NOTE: we don't add AH/ESP length here. do that later. */
    255  1.23.2.2  he 	if (exthdrs.ip6e_dest2) optlen += exthdrs.ip6e_dest2->m_len;
    256  1.23.2.2  he 
    257  1.23.2.2  he 	/*
    258  1.23.2.2  he 	 * If we need IPsec, or there is at least one extension header,
    259  1.23.2.2  he 	 * separate IP6 header from the payload.
    260  1.23.2.2  he 	 */
    261  1.23.2.2  he 	if ((needipsec || optlen) && !hdrsplit) {
    262  1.23.2.2  he 		if ((error = ip6_splithdr(m, &exthdrs)) != 0) {
    263  1.23.2.2  he 			m = NULL;
    264  1.23.2.2  he 			goto freehdrs;
    265  1.23.2.2  he 		}
    266  1.23.2.2  he 		m = exthdrs.ip6e_ip6;
    267  1.23.2.2  he 		hdrsplit++;
    268  1.23.2.2  he 	}
    269  1.23.2.2  he 
    270  1.23.2.2  he 	/* adjust pointer */
    271  1.23.2.2  he 	ip6 = mtod(m, struct ip6_hdr *);
    272  1.23.2.2  he 
    273  1.23.2.2  he 	/* adjust mbuf packet header length */
    274  1.23.2.2  he 	m->m_pkthdr.len += optlen;
    275  1.23.2.2  he 	plen = m->m_pkthdr.len - sizeof(*ip6);
    276  1.23.2.2  he 
    277  1.23.2.2  he 	/* If this is a jumbo payload, insert a jumbo payload option. */
    278  1.23.2.2  he 	if (plen > IPV6_MAXPACKET) {
    279  1.23.2.2  he 		if (!hdrsplit) {
    280  1.23.2.2  he 			if ((error = ip6_splithdr(m, &exthdrs)) != 0) {
    281  1.23.2.2  he 				m = NULL;
    282  1.23.2.2  he 				goto freehdrs;
    283  1.23.2.2  he 			}
    284  1.23.2.2  he 			m = exthdrs.ip6e_ip6;
    285  1.23.2.2  he 			hdrsplit++;
    286  1.23.2.2  he 		}
    287  1.23.2.2  he 		/* adjust pointer */
    288  1.23.2.2  he 		ip6 = mtod(m, struct ip6_hdr *);
    289  1.23.2.2  he 		if ((error = ip6_insert_jumboopt(&exthdrs, plen)) != 0)
    290  1.23.2.2  he 			goto freehdrs;
    291  1.23.2.2  he 		ip6->ip6_plen = 0;
    292  1.23.2.2  he 	} else
    293  1.23.2.2  he 		ip6->ip6_plen = htons(plen);
    294  1.23.2.2  he 
    295  1.23.2.2  he 	/*
    296  1.23.2.2  he 	 * Concatenate headers and fill in next header fields.
    297  1.23.2.2  he 	 * Here we have, on "m"
    298  1.23.2.2  he 	 *	IPv6 payload
    299  1.23.2.2  he 	 * and we insert headers accordingly.  Finally, we should be getting:
    300  1.23.2.2  he 	 *	IPv6 hbh dest1 rthdr ah* [esp* dest2 payload]
    301  1.23.2.2  he 	 *
    302  1.23.2.2  he 	 * during the header composing process, "m" points to IPv6 header.
    303  1.23.2.2  he 	 * "mprev" points to an extension header prior to esp.
    304  1.23.2.2  he 	 */
    305  1.23.2.2  he 	{
    306  1.23.2.2  he 		u_char *nexthdrp = &ip6->ip6_nxt;
    307  1.23.2.2  he 		struct mbuf *mprev = m;
    308  1.23.2.2  he 
    309  1.23.2.2  he 		/*
    310  1.23.2.2  he 		 * we treat dest2 specially.  this makes IPsec processing
    311  1.23.2.2  he 		 * much easier.
    312  1.23.2.2  he 		 *
    313  1.23.2.2  he 		 * result: IPv6 dest2 payload
    314  1.23.2.2  he 		 * m and mprev will point to IPv6 header.
    315  1.23.2.2  he 		 */
    316  1.23.2.2  he 		if (exthdrs.ip6e_dest2) {
    317  1.23.2.2  he 			if (!hdrsplit)
    318  1.23.2.2  he 				panic("assumption failed: hdr not split");
    319  1.23.2.2  he 			exthdrs.ip6e_dest2->m_next = m->m_next;
    320  1.23.2.2  he 			m->m_next = exthdrs.ip6e_dest2;
    321  1.23.2.2  he 			*mtod(exthdrs.ip6e_dest2, u_char *) = ip6->ip6_nxt;
    322  1.23.2.2  he 			ip6->ip6_nxt = IPPROTO_DSTOPTS;
    323  1.23.2.2  he 		}
    324  1.23.2.2  he 
    325  1.23.2.2  he #define MAKE_CHAIN(m, mp, p, i)\
    326  1.23.2.2  he     do {\
    327  1.23.2.2  he 	if (m) {\
    328  1.23.2.2  he 		if (!hdrsplit) \
    329  1.23.2.2  he 			panic("assumption failed: hdr not split"); \
    330  1.23.2.2  he 		*mtod((m), u_char *) = *(p);\
    331  1.23.2.2  he 		*(p) = (i);\
    332  1.23.2.2  he 		p = mtod((m), u_char *);\
    333  1.23.2.2  he 		(m)->m_next = (mp)->m_next;\
    334  1.23.2.2  he 		(mp)->m_next = (m);\
    335  1.23.2.2  he 		(mp) = (m);\
    336  1.23.2.2  he 	}\
    337  1.23.2.2  he     } while (0)
    338  1.23.2.2  he 		/*
    339  1.23.2.2  he 		 * result: IPv6 hbh dest1 rthdr dest2 payload
    340  1.23.2.2  he 		 * m will point to IPv6 header.  mprev will point to the
    341  1.23.2.2  he 		 * extension header prior to dest2 (rthdr in the above case).
    342  1.23.2.2  he 		 */
    343  1.23.2.2  he 		MAKE_CHAIN(exthdrs.ip6e_hbh, mprev,
    344  1.23.2.2  he 			   nexthdrp, IPPROTO_HOPOPTS);
    345  1.23.2.2  he 		MAKE_CHAIN(exthdrs.ip6e_dest1, mprev,
    346  1.23.2.2  he 			   nexthdrp, IPPROTO_DSTOPTS);
    347  1.23.2.2  he 		MAKE_CHAIN(exthdrs.ip6e_rthdr, mprev,
    348  1.23.2.2  he 			   nexthdrp, IPPROTO_ROUTING);
    349  1.23.2.2  he 
    350  1.23.2.2  he #ifdef IPSEC
    351  1.23.2.2  he 		if (!needipsec)
    352  1.23.2.2  he 			goto skip_ipsec2;
    353  1.23.2.2  he 
    354  1.23.2.2  he 		/*
    355  1.23.2.2  he 		 * pointers after IPsec headers are not valid any more.
    356  1.23.2.2  he 		 * other pointers need a great care too.
    357  1.23.2.2  he 		 * (IPsec routines should not mangle mbufs prior to AH/ESP)
    358  1.23.2.2  he 		 */
    359  1.23.2.2  he 		exthdrs.ip6e_dest2 = NULL;
    360  1.23.2.2  he 
    361  1.23.2.2  he 	    {
    362  1.23.2.2  he 		struct ip6_rthdr *rh = NULL;
    363  1.23.2.2  he 		int segleft_org = 0;
    364  1.23.2.2  he 		struct ipsec_output_state state;
    365  1.23.2.2  he 
    366  1.23.2.2  he 		if (exthdrs.ip6e_rthdr) {
    367  1.23.2.2  he 			rh = mtod(exthdrs.ip6e_rthdr, struct ip6_rthdr *);
    368  1.23.2.2  he 			segleft_org = rh->ip6r_segleft;
    369  1.23.2.2  he 			rh->ip6r_segleft = 0;
    370  1.23.2.2  he 		}
    371  1.23.2.2  he 
    372  1.23.2.2  he 		bzero(&state, sizeof(state));
    373  1.23.2.2  he 		state.m = m;
    374  1.23.2.2  he 		error = ipsec6_output_trans(&state, nexthdrp, mprev, sp, flags,
    375  1.23.2.2  he 			&needipsectun);
    376  1.23.2.2  he 		m = state.m;
    377  1.23.2.2  he 		if (error) {
    378  1.23.2.2  he 			/* mbuf is already reclaimed in ipsec6_output_trans. */
    379  1.23.2.2  he 			m = NULL;
    380  1.23.2.2  he 			switch (error) {
    381  1.23.2.2  he 			case EHOSTUNREACH:
    382  1.23.2.2  he 			case ENETUNREACH:
    383  1.23.2.2  he 			case EMSGSIZE:
    384  1.23.2.2  he 			case ENOBUFS:
    385  1.23.2.2  he 			case ENOMEM:
    386  1.23.2.2  he 				break;
    387  1.23.2.2  he 			default:
    388  1.23.2.2  he 				printf("ip6_output (ipsec): error code %d\n", error);
    389  1.23.2.2  he 				/*fall through*/
    390  1.23.2.2  he 			case ENOENT:
    391  1.23.2.2  he 				/* don't show these error codes to the user */
    392  1.23.2.2  he 				error = 0;
    393  1.23.2.2  he 				break;
    394  1.23.2.2  he 			}
    395  1.23.2.2  he 			goto bad;
    396  1.23.2.2  he 		}
    397  1.23.2.2  he 		if (exthdrs.ip6e_rthdr) {
    398  1.23.2.2  he 			/* ah6_output doesn't modify mbuf chain */
    399  1.23.2.2  he 			rh->ip6r_segleft = segleft_org;
    400  1.23.2.2  he 		}
    401  1.23.2.2  he 	    }
    402  1.23.2.2  he skip_ipsec2:;
    403  1.23.2.2  he #endif
    404  1.23.2.2  he 	}
    405  1.23.2.2  he 
    406  1.23.2.2  he 	/*
    407  1.23.2.2  he 	 * If there is a routing header, replace destination address field
    408  1.23.2.2  he 	 * with the first hop of the routing header.
    409  1.23.2.2  he 	 */
    410  1.23.2.2  he 	if (exthdrs.ip6e_rthdr) {
    411  1.23.2.2  he 		struct ip6_rthdr *rh =
    412  1.23.2.2  he 			(struct ip6_rthdr *)(mtod(exthdrs.ip6e_rthdr,
    413  1.23.2.2  he 						  struct ip6_rthdr *));
    414  1.23.2.2  he 		struct ip6_rthdr0 *rh0;
    415  1.23.2.2  he 
    416  1.23.2.2  he 		finaldst = ip6->ip6_dst;
    417  1.23.2.2  he 		switch(rh->ip6r_type) {
    418  1.23.2.2  he 		case IPV6_RTHDR_TYPE_0:
    419  1.23.2.2  he 			 rh0 = (struct ip6_rthdr0 *)rh;
    420  1.23.2.2  he 			 ip6->ip6_dst = rh0->ip6r0_addr[0];
    421  1.23.2.2  he 			 bcopy((caddr_t)&rh0->ip6r0_addr[1],
    422  1.23.2.2  he 				 (caddr_t)&rh0->ip6r0_addr[0],
    423  1.23.2.2  he 				 sizeof(struct in6_addr)*(rh0->ip6r0_segleft - 1)
    424  1.23.2.2  he 				 );
    425  1.23.2.2  he 			 rh0->ip6r0_addr[rh0->ip6r0_segleft - 1] = finaldst;
    426  1.23.2.2  he 			 break;
    427  1.23.2.2  he 		default:	/* is it possible? */
    428  1.23.2.2  he 			 error = EINVAL;
    429  1.23.2.2  he 			 goto bad;
    430  1.23.2.2  he 		}
    431  1.23.2.2  he 	}
    432  1.23.2.2  he 
    433  1.23.2.2  he 	/* Source address validation */
    434  1.23.2.2  he 	if (IN6_IS_ADDR_UNSPECIFIED(&ip6->ip6_src) &&
    435  1.23.2.2  he 	    (flags & IPV6_DADOUTPUT) == 0) {
    436  1.23.2.2  he 		error = EOPNOTSUPP;
    437  1.23.2.2  he 		ip6stat.ip6s_badscope++;
    438  1.23.2.2  he 		goto bad;
    439  1.23.2.2  he 	}
    440  1.23.2.2  he 	if (IN6_IS_ADDR_MULTICAST(&ip6->ip6_src)) {
    441  1.23.2.2  he 		error = EOPNOTSUPP;
    442  1.23.2.2  he 		ip6stat.ip6s_badscope++;
    443  1.23.2.2  he 		goto bad;
    444  1.23.2.2  he 	}
    445  1.23.2.2  he 
    446  1.23.2.2  he 	ip6stat.ip6s_localout++;
    447  1.23.2.2  he 
    448  1.23.2.2  he 	/*
    449  1.23.2.2  he 	 * Route packet.
    450  1.23.2.2  he 	 */
    451  1.23.2.2  he 	if (ro == 0) {
    452  1.23.2.2  he 		ro = &ip6route;
    453  1.23.2.2  he 		bzero((caddr_t)ro, sizeof(*ro));
    454  1.23.2.2  he 	}
    455  1.23.2.2  he 	ro_pmtu = ro;
    456  1.23.2.2  he 	if (opt && opt->ip6po_rthdr)
    457  1.23.2.2  he 		ro = &opt->ip6po_route;
    458  1.23.2.2  he 	dst = (struct sockaddr_in6 *)&ro->ro_dst;
    459  1.23.2.2  he 	/*
    460  1.23.2.2  he 	 * If there is a cached route,
    461  1.23.2.2  he 	 * check that it is to the same destination
    462  1.23.2.2  he 	 * and is still up. If not, free it and try again.
    463  1.23.2.2  he 	 */
    464  1.23.2.2  he 	if (ro->ro_rt && ((ro->ro_rt->rt_flags & RTF_UP) == 0 ||
    465  1.23.2.2  he 			 !IN6_ARE_ADDR_EQUAL(&dst->sin6_addr, &ip6->ip6_dst))) {
    466  1.23.2.2  he 		RTFREE(ro->ro_rt);
    467  1.23.2.2  he 		ro->ro_rt = (struct rtentry *)0;
    468  1.23.2.2  he 	}
    469  1.23.2.2  he 	if (ro->ro_rt == 0) {
    470  1.23.2.2  he 		bzero(dst, sizeof(*dst));
    471  1.23.2.2  he 		dst->sin6_family = AF_INET6;
    472  1.23.2.2  he 		dst->sin6_len = sizeof(struct sockaddr_in6);
    473  1.23.2.2  he 		dst->sin6_addr = ip6->ip6_dst;
    474  1.23.2.2  he 	}
    475  1.23.2.2  he #ifdef IPSEC
    476  1.23.2.2  he 	if (needipsec && needipsectun) {
    477  1.23.2.2  he 		struct ipsec_output_state state;
    478  1.23.2.2  he 
    479  1.23.2.2  he 		/*
    480  1.23.2.2  he 		 * All the extension headers will become inaccessible
    481  1.23.2.2  he 		 * (since they can be encrypted).
    482  1.23.2.2  he 		 * Don't panic, we need no more updates to extension headers
    483  1.23.2.2  he 		 * on inner IPv6 packet (since they are now encapsulated).
    484  1.23.2.2  he 		 *
    485  1.23.2.2  he 		 * IPv6 [ESP|AH] IPv6 [extension headers] payload
    486  1.23.2.2  he 		 */
    487  1.23.2.2  he 		bzero(&exthdrs, sizeof(exthdrs));
    488  1.23.2.2  he 		exthdrs.ip6e_ip6 = m;
    489  1.23.2.2  he 
    490  1.23.2.2  he 		bzero(&state, sizeof(state));
    491  1.23.2.2  he 		state.m = m;
    492  1.23.2.2  he 		state.ro = (struct route *)ro;
    493  1.23.2.2  he 		state.dst = (struct sockaddr *)dst;
    494  1.23.2.2  he 
    495  1.23.2.2  he 		error = ipsec6_output_tunnel(&state, sp, flags);
    496  1.23.2.2  he 
    497  1.23.2.2  he 		m = state.m;
    498  1.23.2.2  he 		ro = (struct route_in6 *)state.ro;
    499  1.23.2.2  he 		dst = (struct sockaddr_in6 *)state.dst;
    500  1.23.2.2  he 		if (error) {
    501  1.23.2.2  he 			/* mbuf is already reclaimed in ipsec6_output_tunnel. */
    502  1.23.2.2  he 			m0 = m = NULL;
    503  1.23.2.2  he 			m = NULL;
    504  1.23.2.2  he 			switch (error) {
    505  1.23.2.2  he 			case EHOSTUNREACH:
    506  1.23.2.2  he 			case ENETUNREACH:
    507  1.23.2.2  he 			case EMSGSIZE:
    508  1.23.2.2  he 			case ENOBUFS:
    509  1.23.2.2  he 			case ENOMEM:
    510  1.23.2.2  he 				break;
    511  1.23.2.2  he 			default:
    512  1.23.2.2  he 				printf("ip6_output (ipsec): error code %d\n", error);
    513  1.23.2.2  he 				/*fall through*/
    514  1.23.2.2  he 			case ENOENT:
    515  1.23.2.2  he 				/* don't show these error codes to the user */
    516  1.23.2.2  he 				error = 0;
    517  1.23.2.2  he 				break;
    518  1.23.2.2  he 			}
    519  1.23.2.2  he 			goto bad;
    520  1.23.2.2  he 		}
    521  1.23.2.2  he 
    522  1.23.2.2  he 		exthdrs.ip6e_ip6 = m;
    523  1.23.2.2  he 	}
    524  1.23.2.2  he #endif /*IPSEC*/
    525  1.23.2.2  he 
    526  1.23.2.2  he 	if (!IN6_IS_ADDR_MULTICAST(&ip6->ip6_dst)) {
    527  1.23.2.2  he 		/* Unicast */
    528  1.23.2.2  he 
    529  1.23.2.2  he #define ifatoia6(ifa)	((struct in6_ifaddr *)(ifa))
    530  1.23.2.2  he #define sin6tosa(sin6)	((struct sockaddr *)(sin6))
    531  1.23.2.2  he 		/* xxx
    532  1.23.2.2  he 		 * interface selection comes here
    533  1.23.2.2  he 		 * if an interface is specified from an upper layer,
    534  1.23.2.2  he 		 * ifp must point it.
    535  1.23.2.2  he 		 */
    536  1.23.2.2  he 		if (ro->ro_rt == 0) {
    537  1.23.2.2  he 			/*
    538  1.23.2.2  he 			 * non-bsdi always clone routes, if parent is
    539  1.23.2.2  he 			 * PRF_CLONING.
    540  1.23.2.2  he 			 */
    541  1.23.2.2  he 			rtalloc((struct route *)ro);
    542  1.23.2.2  he 		}
    543  1.23.2.2  he 		if (ro->ro_rt == 0) {
    544  1.23.2.2  he 			ip6stat.ip6s_noroute++;
    545  1.23.2.2  he 			error = EHOSTUNREACH;
    546  1.23.2.2  he 			/* XXX in6_ifstat_inc(ifp, ifs6_out_discard); */
    547  1.23.2.2  he 			goto bad;
    548  1.23.2.2  he 		}
    549  1.23.2.2  he 		ia = ifatoia6(ro->ro_rt->rt_ifa);
    550  1.23.2.2  he 		ifp = ro->ro_rt->rt_ifp;
    551  1.23.2.2  he 		ro->ro_rt->rt_use++;
    552  1.23.2.2  he 		if (ro->ro_rt->rt_flags & RTF_GATEWAY)
    553  1.23.2.2  he 			dst = (struct sockaddr_in6 *)ro->ro_rt->rt_gateway;
    554  1.23.2.2  he 		m->m_flags &= ~(M_BCAST | M_MCAST);	/* just in case */
    555  1.23.2.2  he 
    556  1.23.2.2  he 		in6_ifstat_inc(ifp, ifs6_out_request);
    557  1.23.2.2  he 
    558  1.23.2.2  he 		/*
    559  1.23.2.2  he 		 * Check if the outgoing interface conflicts with
    560  1.23.2.2  he 		 * the interface specified by ifi6_ifindex (if specified).
    561  1.23.2.2  he 		 * Note that loopback interface is always okay.
    562  1.23.2.2  he 		 * (this may happen when we are sending a packet to one of
    563  1.23.2.2  he 		 *  our own addresses.)
    564  1.23.2.2  he 		 */
    565  1.23.2.2  he 		if (opt && opt->ip6po_pktinfo
    566  1.23.2.2  he 		 && opt->ip6po_pktinfo->ipi6_ifindex) {
    567  1.23.2.2  he 			if (!(ifp->if_flags & IFF_LOOPBACK)
    568  1.23.2.2  he 			 && ifp->if_index != opt->ip6po_pktinfo->ipi6_ifindex) {
    569  1.23.2.2  he 				ip6stat.ip6s_noroute++;
    570  1.23.2.2  he 				in6_ifstat_inc(ifp, ifs6_out_discard);
    571  1.23.2.2  he 				error = EHOSTUNREACH;
    572  1.23.2.2  he 				goto bad;
    573  1.23.2.2  he 			}
    574  1.23.2.2  he 		}
    575  1.23.2.2  he 
    576  1.23.2.2  he 		if (opt && opt->ip6po_hlim != -1)
    577  1.23.2.2  he 			ip6->ip6_hlim = opt->ip6po_hlim & 0xff;
    578  1.23.2.2  he 	} else {
    579  1.23.2.2  he 		/* Multicast */
    580  1.23.2.2  he 		struct	in6_multi *in6m;
    581  1.23.2.2  he 
    582  1.23.2.2  he 		m->m_flags = (m->m_flags & ~M_BCAST) | M_MCAST;
    583  1.23.2.2  he 
    584  1.23.2.2  he 		/*
    585  1.23.2.2  he 		 * See if the caller provided any multicast options
    586  1.23.2.2  he 		 */
    587  1.23.2.2  he 		ifp = NULL;
    588  1.23.2.2  he 		if (im6o != NULL) {
    589  1.23.2.2  he 			ip6->ip6_hlim = im6o->im6o_multicast_hlim;
    590  1.23.2.2  he 			if (im6o->im6o_multicast_ifp != NULL)
    591  1.23.2.2  he 				ifp = im6o->im6o_multicast_ifp;
    592  1.23.2.2  he 		} else
    593  1.23.2.2  he 			ip6->ip6_hlim = ip6_defmcasthlim;
    594  1.23.2.2  he 
    595  1.23.2.2  he 		/*
    596  1.23.2.2  he 		 * See if the caller provided the outgoing interface
    597  1.23.2.2  he 		 * as an ancillary data.
    598  1.23.2.2  he 		 * Boundary check for ifindex is assumed to be already done.
    599  1.23.2.2  he 		 */
    600  1.23.2.2  he 		if (opt && opt->ip6po_pktinfo && opt->ip6po_pktinfo->ipi6_ifindex)
    601  1.23.2.2  he 			ifp = ifindex2ifnet[opt->ip6po_pktinfo->ipi6_ifindex];
    602  1.23.2.2  he 
    603  1.23.2.2  he 		/*
    604  1.23.2.2  he 		 * If the destination is a node-local scope multicast,
    605  1.23.2.2  he 		 * the packet should be loop-backed only.
    606  1.23.2.2  he 		 */
    607  1.23.2.2  he 		if (IN6_IS_ADDR_MC_NODELOCAL(&ip6->ip6_dst)) {
    608  1.23.2.2  he 			/*
    609  1.23.2.2  he 			 * If the outgoing interface is already specified,
    610  1.23.2.2  he 			 * it should be a loopback interface.
    611  1.23.2.2  he 			 */
    612  1.23.2.2  he 			if (ifp && (ifp->if_flags & IFF_LOOPBACK) == 0) {
    613  1.23.2.2  he 				ip6stat.ip6s_badscope++;
    614  1.23.2.2  he 				error = ENETUNREACH; /* XXX: better error? */
    615  1.23.2.2  he 				/* XXX correct ifp? */
    616  1.23.2.2  he 				in6_ifstat_inc(ifp, ifs6_out_discard);
    617  1.23.2.2  he 				goto bad;
    618  1.23.2.2  he 			} else {
    619  1.23.2.2  he 				ifp = &loif[0];
    620  1.23.2.2  he 			}
    621  1.23.2.2  he 		}
    622  1.23.2.2  he 
    623  1.23.2.2  he 		if (opt && opt->ip6po_hlim != -1)
    624  1.23.2.2  he 			ip6->ip6_hlim = opt->ip6po_hlim & 0xff;
    625  1.23.2.2  he 
    626  1.23.2.2  he 		/*
    627  1.23.2.2  he 		 * If caller did not provide an interface lookup a
    628  1.23.2.2  he 		 * default in the routing table.  This is either a
    629  1.23.2.2  he 		 * default for the speicfied group (i.e. a host
    630  1.23.2.2  he 		 * route), or a multicast default (a route for the
    631  1.23.2.2  he 		 * ``net'' ff00::/8).
    632  1.23.2.2  he 		 */
    633  1.23.2.2  he 		if (ifp == NULL) {
    634  1.23.2.2  he 			if (ro->ro_rt == 0) {
    635  1.23.2.2  he 				ro->ro_rt = rtalloc1((struct sockaddr *)
    636  1.23.2.2  he 						&ro->ro_dst, 0
    637  1.23.2.2  he 						);
    638  1.23.2.2  he 			}
    639  1.23.2.2  he 			if (ro->ro_rt == 0) {
    640  1.23.2.2  he 				ip6stat.ip6s_noroute++;
    641  1.23.2.2  he 				error = EHOSTUNREACH;
    642  1.23.2.2  he 				/* XXX in6_ifstat_inc(ifp, ifs6_out_discard) */
    643  1.23.2.2  he 				goto bad;
    644  1.23.2.2  he 			}
    645  1.23.2.2  he 			ia = ifatoia6(ro->ro_rt->rt_ifa);
    646  1.23.2.2  he 			ifp = ro->ro_rt->rt_ifp;
    647  1.23.2.2  he 			ro->ro_rt->rt_use++;
    648  1.23.2.2  he 		}
    649  1.23.2.2  he 
    650  1.23.2.2  he 		if ((flags & IPV6_FORWARDING) == 0)
    651  1.23.2.2  he 			in6_ifstat_inc(ifp, ifs6_out_request);
    652  1.23.2.2  he 		in6_ifstat_inc(ifp, ifs6_out_mcast);
    653  1.23.2.2  he 
    654  1.23.2.2  he 		/*
    655  1.23.2.2  he 		 * Confirm that the outgoing interface supports multicast.
    656  1.23.2.2  he 		 */
    657  1.23.2.2  he 		if ((ifp->if_flags & IFF_MULTICAST) == 0) {
    658  1.23.2.2  he 			ip6stat.ip6s_noroute++;
    659  1.23.2.2  he 			in6_ifstat_inc(ifp, ifs6_out_discard);
    660  1.23.2.2  he 			error = ENETUNREACH;
    661  1.23.2.2  he 			goto bad;
    662  1.23.2.2  he 		}
    663  1.23.2.2  he 		IN6_LOOKUP_MULTI(ip6->ip6_dst, ifp, in6m);
    664  1.23.2.2  he 		if (in6m != NULL &&
    665  1.23.2.2  he 		   (im6o == NULL || im6o->im6o_multicast_loop)) {
    666  1.23.2.2  he 			/*
    667  1.23.2.2  he 			 * If we belong to the destination multicast group
    668  1.23.2.2  he 			 * on the outgoing interface, and the caller did not
    669  1.23.2.2  he 			 * forbid loopback, loop back a copy.
    670  1.23.2.2  he 			 */
    671  1.23.2.2  he 			ip6_mloopback(ifp, m, dst);
    672  1.23.2.2  he 		} else {
    673  1.23.2.2  he 			/*
    674  1.23.2.2  he 			 * If we are acting as a multicast router, perform
    675  1.23.2.2  he 			 * multicast forwarding as if the packet had just
    676  1.23.2.2  he 			 * arrived on the interface to which we are about
    677  1.23.2.2  he 			 * to send.  The multicast forwarding function
    678  1.23.2.2  he 			 * recursively calls this function, using the
    679  1.23.2.2  he 			 * IPV6_FORWARDING flag to prevent infinite recursion.
    680  1.23.2.2  he 			 *
    681  1.23.2.2  he 			 * Multicasts that are looped back by ip6_mloopback(),
    682  1.23.2.2  he 			 * above, will be forwarded by the ip6_input() routine,
    683  1.23.2.2  he 			 * if necessary.
    684  1.23.2.2  he 			 */
    685  1.23.2.2  he 			if (ip6_mrouter && (flags & IPV6_FORWARDING) == 0) {
    686  1.23.2.2  he 				if (ip6_mforward(ip6, ifp, m) != 0) {
    687  1.23.2.2  he 					m_freem(m);
    688  1.23.2.2  he 					goto done;
    689  1.23.2.2  he 				}
    690  1.23.2.2  he 			}
    691  1.23.2.2  he 		}
    692  1.23.2.2  he 		/*
    693  1.23.2.2  he 		 * Multicasts with a hoplimit of zero may be looped back,
    694  1.23.2.2  he 		 * above, but must not be transmitted on a network.
    695  1.23.2.2  he 		 * Also, multicasts addressed to the loopback interface
    696  1.23.2.2  he 		 * are not sent -- the above call to ip6_mloopback() will
    697  1.23.2.2  he 		 * loop back a copy if this host actually belongs to the
    698  1.23.2.2  he 		 * destination group on the loopback interface.
    699  1.23.2.2  he 		 */
    700  1.23.2.2  he 		if (ip6->ip6_hlim == 0 || (ifp->if_flags & IFF_LOOPBACK)) {
    701  1.23.2.2  he 			m_freem(m);
    702  1.23.2.2  he 			goto done;
    703  1.23.2.2  he 		}
    704  1.23.2.2  he 	}
    705  1.23.2.2  he 
    706  1.23.2.2  he 	/*
    707  1.23.2.2  he 	 * Fill the outgoing inteface to tell the upper layer
    708  1.23.2.2  he 	 * to increment per-interface statistics.
    709  1.23.2.2  he 	 */
    710  1.23.2.2  he 	if (ifpp)
    711  1.23.2.2  he 		*ifpp = ifp;
    712  1.23.2.2  he 
    713  1.23.2.2  he 	/*
    714  1.23.2.2  he 	 * Determine path MTU.
    715  1.23.2.2  he 	 */
    716  1.23.2.2  he 	if (ro_pmtu != ro) {
    717  1.23.2.2  he 		/* The first hop and the final destination may differ. */
    718  1.23.2.2  he 		struct sockaddr_in6 *sin6_fin =
    719  1.23.2.2  he 			(struct sockaddr_in6 *)&ro_pmtu->ro_dst;
    720  1.23.2.2  he 		if (ro_pmtu->ro_rt && ((ro->ro_rt->rt_flags & RTF_UP) == 0 ||
    721  1.23.2.2  he 				       !IN6_ARE_ADDR_EQUAL(&sin6_fin->sin6_addr,
    722  1.23.2.2  he 							   &finaldst))) {
    723  1.23.2.2  he 			RTFREE(ro_pmtu->ro_rt);
    724  1.23.2.2  he 			ro_pmtu->ro_rt = (struct rtentry *)0;
    725  1.23.2.2  he 		}
    726  1.23.2.2  he 		if (ro_pmtu->ro_rt == 0) {
    727  1.23.2.2  he 			bzero(sin6_fin, sizeof(*sin6_fin));
    728  1.23.2.2  he 			sin6_fin->sin6_family = AF_INET6;
    729  1.23.2.2  he 			sin6_fin->sin6_len = sizeof(struct sockaddr_in6);
    730  1.23.2.2  he 			sin6_fin->sin6_addr = finaldst;
    731  1.23.2.2  he 
    732  1.23.2.2  he 			rtalloc((struct route *)ro_pmtu);
    733  1.23.2.2  he 		}
    734  1.23.2.2  he 	}
    735  1.23.2.2  he 	if (ro_pmtu->ro_rt != NULL) {
    736  1.23.2.2  he 		u_int32_t ifmtu = nd_ifinfo[ifp->if_index].linkmtu;
    737  1.23.2.2  he 
    738  1.23.2.2  he 		mtu = ro_pmtu->ro_rt->rt_rmx.rmx_mtu;
    739  1.23.2.2  he 		if (mtu > ifmtu) {
    740  1.23.2.2  he 			/*
    741  1.23.2.2  he 			 * The MTU on the route is larger than the MTU on
    742  1.23.2.2  he 			 * the interface!  This shouldn't happen, unless the
    743  1.23.2.2  he 			 * MTU of the interface has been changed after the
    744  1.23.2.2  he 			 * interface was brought up.  Change the MTU in the
    745  1.23.2.2  he 			 * route to match the interface MTU (as long as the
    746  1.23.2.2  he 			 * field isn't locked).
    747  1.23.2.2  he 			 */
    748  1.23.2.2  he 			 mtu = ifmtu;
    749  1.23.2.2  he 			 if ((ro_pmtu->ro_rt->rt_rmx.rmx_locks & RTV_MTU) == 0)
    750  1.23.2.2  he 				 ro_pmtu->ro_rt->rt_rmx.rmx_mtu = mtu; /* XXX */
    751  1.23.2.2  he 		}
    752  1.23.2.2  he 	} else {
    753  1.23.2.2  he 		mtu = nd_ifinfo[ifp->if_index].linkmtu;
    754  1.23.2.2  he 	}
    755  1.23.2.2  he 
    756  1.23.2.2  he 	/* Fake scoped addresses */
    757  1.23.2.2  he 	if ((ifp->if_flags & IFF_LOOPBACK) != 0) {
    758  1.23.2.2  he 		/*
    759  1.23.2.2  he 		 * If source or destination address is a scoped address, and
    760  1.23.2.2  he 		 * the packet is going to be sent to a loopback interface,
    761  1.23.2.2  he 		 * we should keep the original interface.
    762  1.23.2.2  he 		 */
    763  1.23.2.2  he 
    764  1.23.2.2  he 		/*
    765  1.23.2.2  he 		 * XXX: this is a very experimental and temporary solution.
    766  1.23.2.2  he 		 * We eventually have sockaddr_in6 and use the sin6_scope_id
    767  1.23.2.2  he 		 * field of the structure here.
    768  1.23.2.2  he 		 * We rely on the consistency between two scope zone ids
    769  1.23.2.2  he 		 * of source add destination, which should already be assured
    770  1.23.2.2  he 		 * Larger scopes than link will be supported in the near
    771  1.23.2.2  he 		 * future.
    772  1.23.2.2  he 		 */
    773  1.23.2.2  he 		origifp = NULL;
    774  1.23.2.2  he 		if (IN6_IS_SCOPE_LINKLOCAL(&ip6->ip6_src))
    775  1.23.2.2  he 			origifp = ifindex2ifnet[ntohs(ip6->ip6_src.s6_addr16[1])];
    776  1.23.2.2  he 		else if (IN6_IS_SCOPE_LINKLOCAL(&ip6->ip6_dst))
    777  1.23.2.2  he 			origifp = ifindex2ifnet[ntohs(ip6->ip6_dst.s6_addr16[1])];
    778  1.23.2.2  he 		/*
    779  1.23.2.2  he 		 * XXX: origifp can be NULL even in those two cases above.
    780  1.23.2.2  he 		 * For example, if we remove the (only) link-local address
    781  1.23.2.2  he 		 * from the loopback interface, and try to send a link-local
    782  1.23.2.2  he 		 * address without link-id information.  Then the source
    783  1.23.2.2  he 		 * address is ::1, and the destination address is the
    784  1.23.2.2  he 		 * link-local address with its s6_addr16[1] being zero.
    785  1.23.2.2  he 		 * What is worse, if the packet goes to the loopback interface
    786  1.23.2.2  he 		 * by a default rejected route, the null pointer would be
    787  1.23.2.2  he 		 * passed to looutput, and the kernel would hang.
    788  1.23.2.2  he 		 * The following last resort would prevent such disaster.
    789  1.23.2.2  he 		 */
    790  1.23.2.3  he 		if (origifp == NULL)
    791  1.23.2.2  he 			origifp = ifp;
    792  1.23.2.2  he 	}
    793  1.23.2.2  he 	else
    794  1.23.2.2  he 		origifp = ifp;
    795  1.23.2.2  he #ifndef FAKE_LOOPBACK_IF
    796  1.23.2.2  he 	if ((ifp->if_flags & IFF_LOOPBACK) == 0)
    797  1.23.2.2  he #else
    798  1.23.2.2  he 	if (1)
    799  1.23.2.2  he #endif
    800  1.23.2.2  he 	{
    801  1.23.2.2  he 		if (IN6_IS_SCOPE_LINKLOCAL(&ip6->ip6_src))
    802  1.23.2.2  he 			ip6->ip6_src.s6_addr16[1] = 0;
    803  1.23.2.2  he 		if (IN6_IS_SCOPE_LINKLOCAL(&ip6->ip6_dst))
    804  1.23.2.2  he 			ip6->ip6_dst.s6_addr16[1] = 0;
    805  1.23.2.2  he 	}
    806  1.23.2.2  he 
    807  1.23.2.2  he 	/*
    808  1.23.2.2  he 	 * If the outgoing packet contains a hop-by-hop options header,
    809  1.23.2.2  he 	 * it must be examined and processed even by the source node.
    810  1.23.2.2  he 	 * (RFC 2460, section 4.)
    811  1.23.2.2  he 	 */
    812  1.23.2.2  he 	if (exthdrs.ip6e_hbh) {
    813  1.23.2.2  he 		struct ip6_hbh *hbh = mtod(exthdrs.ip6e_hbh,
    814  1.23.2.2  he 					   struct ip6_hbh *);
    815  1.23.2.2  he 		u_int32_t dummy1; /* XXX unused */
    816  1.23.2.2  he 		u_int32_t dummy2; /* XXX unused */
    817  1.23.2.2  he 
    818  1.23.2.2  he 		/*
    819  1.23.2.2  he 		 *  XXX: if we have to send an ICMPv6 error to the sender,
    820  1.23.2.2  he 		 *       we need the M_LOOP flag since icmp6_error() expects
    821  1.23.2.2  he 		 *       the IPv6 and the hop-by-hop options header are
    822  1.23.2.2  he 		 *       continuous unless the flag is set.
    823  1.23.2.2  he 		 */
    824  1.23.2.2  he 		m->m_flags |= M_LOOP;
    825  1.23.2.2  he 		m->m_pkthdr.rcvif = ifp;
    826  1.23.2.2  he 		if (ip6_process_hopopts(m,
    827  1.23.2.2  he 					(u_int8_t *)(hbh + 1),
    828  1.23.2.2  he 					((hbh->ip6h_len + 1) << 3) -
    829  1.23.2.2  he 					sizeof(struct ip6_hbh),
    830  1.23.2.2  he 					&dummy1, &dummy2) < 0) {
    831  1.23.2.2  he 			/* m was already freed at this point */
    832  1.23.2.2  he 			error = EINVAL;/* better error? */
    833  1.23.2.2  he 			goto done;
    834  1.23.2.2  he 		}
    835  1.23.2.2  he 		m->m_flags &= ~M_LOOP; /* XXX */
    836  1.23.2.2  he 		m->m_pkthdr.rcvif = NULL;
    837  1.23.2.2  he 	}
    838  1.23.2.2  he 
    839  1.23.2.2  he #ifdef PFIL_HOOKS
    840  1.23.2.2  he 	/*
    841  1.23.2.2  he 	 * Run through list of hooks for output packets.
    842  1.23.2.2  he 	 */
    843  1.23.2.2  he 	m1 = m;
    844  1.23.2.2  he 	pfh = pfil_hook_get(PFIL_OUT, &inetsw[ip_protox[IPPROTO_IPV6]].pr_pfh);
    845  1.23.2.2  he 	for (; pfh; pfh = pfh->pfil_link.tqe_next)
    846  1.23.2.2  he 		if (pfh->pfil_func) {
    847  1.23.2.2  he 		    	rv = pfh->pfil_func(ip6, sizeof(*ip6), ifp, 1, &m1);
    848  1.23.2.2  he 			if (rv) {
    849  1.23.2.2  he 				error = EHOSTUNREACH;
    850  1.23.2.2  he 				goto done;
    851  1.23.2.2  he 			}
    852  1.23.2.2  he 			m = m1;
    853  1.23.2.2  he 			if (m == NULL)
    854  1.23.2.2  he 				goto done;
    855  1.23.2.2  he 			ip6 = mtod(m, struct ip6_hdr *);
    856  1.23.2.2  he 		}
    857  1.23.2.2  he #endif /* PFIL_HOOKS */
    858  1.23.2.2  he 	/*
    859  1.23.2.2  he 	 * Send the packet to the outgoing interface.
    860  1.23.2.2  he 	 * If necessary, do IPv6 fragmentation before sending.
    861  1.23.2.2  he 	 */
    862  1.23.2.2  he 	tlen = m->m_pkthdr.len;
    863  1.23.2.2  he 	if (tlen <= mtu
    864  1.23.2.2  he #ifdef notyet
    865  1.23.2.2  he 	    /*
    866  1.23.2.2  he 	     * On any link that cannot convey a 1280-octet packet in one piece,
    867  1.23.2.2  he 	     * link-specific fragmentation and reassembly must be provided at
    868  1.23.2.2  he 	     * a layer below IPv6. [RFC 2460, sec.5]
    869  1.23.2.2  he 	     * Thus if the interface has ability of link-level fragmentation,
    870  1.23.2.2  he 	     * we can just send the packet even if the packet size is
    871  1.23.2.2  he 	     * larger than the link's MTU.
    872  1.23.2.2  he 	     * XXX: IFF_FRAGMENTABLE (or such) flag has not been defined yet...
    873  1.23.2.2  he 	     */
    874  1.23.2.2  he 
    875  1.23.2.2  he 	    || ifp->if_flags & IFF_FRAGMENTABLE
    876  1.23.2.2  he #endif
    877  1.23.2.2  he 	    )
    878  1.23.2.2  he 	{
    879  1.23.2.2  he #ifdef IFA_STATS
    880  1.23.2.2  he 		if (IFA_STATS) {
    881  1.23.2.2  he 			struct in6_ifaddr *ia6;
    882  1.23.2.2  he 			ip6 = mtod(m, struct ip6_hdr *);
    883  1.23.2.2  he 			ia6 = in6_ifawithifp(ifp, &ip6->ip6_src);
    884  1.23.2.2  he 			if (ia6) {
    885  1.23.2.2  he 				ia->ia_ifa.ifa_data.ifad_outbytes +=
    886  1.23.2.2  he 					m->m_pkthdr.len;
    887  1.23.2.2  he 			}
    888  1.23.2.2  he 		}
    889  1.23.2.2  he #endif
    890  1.23.2.2  he #ifdef OLDIP6OUTPUT
    891  1.23.2.2  he 		error = (*ifp->if_output)(ifp, m, (struct sockaddr *)dst,
    892  1.23.2.2  he 					  ro->ro_rt);
    893  1.23.2.2  he #else
    894  1.23.2.2  he 		error = nd6_output(ifp, origifp, m, dst, ro->ro_rt);
    895  1.23.2.2  he #endif
    896  1.23.2.2  he 		goto done;
    897  1.23.2.2  he 	} else if (mtu < IPV6_MMTU) {
    898  1.23.2.2  he 		/*
    899  1.23.2.2  he 		 * note that path MTU is never less than IPV6_MMTU
    900  1.23.2.2  he 		 * (see icmp6_input).
    901  1.23.2.2  he 		 */
    902  1.23.2.2  he 		error = EMSGSIZE;
    903  1.23.2.2  he 		in6_ifstat_inc(ifp, ifs6_out_fragfail);
    904  1.23.2.2  he 		goto bad;
    905  1.23.2.2  he 	} else if (ip6->ip6_plen == 0) { /* jumbo payload cannot be fragmented */
    906  1.23.2.2  he 		error = EMSGSIZE;
    907  1.23.2.2  he 		in6_ifstat_inc(ifp, ifs6_out_fragfail);
    908  1.23.2.2  he 		goto bad;
    909  1.23.2.2  he 	} else {
    910  1.23.2.2  he 		struct mbuf **mnext, *m_frgpart;
    911  1.23.2.2  he 		struct ip6_frag *ip6f;
    912  1.23.2.2  he 		u_int32_t id = htonl(ip6_id++);
    913  1.23.2.2  he 		u_char nextproto;
    914  1.23.2.2  he 
    915  1.23.2.2  he 		/*
    916  1.23.2.2  he 		 * Too large for the destination or interface;
    917  1.23.2.2  he 		 * fragment if possible.
    918  1.23.2.2  he 		 * Must be able to put at least 8 bytes per fragment.
    919  1.23.2.2  he 		 */
    920  1.23.2.2  he 		hlen = unfragpartlen;
    921  1.23.2.2  he 		if (mtu > IPV6_MAXPACKET)
    922  1.23.2.2  he 			mtu = IPV6_MAXPACKET;
    923  1.23.2.2  he 		len = (mtu - hlen - sizeof(struct ip6_frag)) & ~7;
    924  1.23.2.2  he 		if (len < 8) {
    925  1.23.2.2  he 			error = EMSGSIZE;
    926  1.23.2.2  he 			in6_ifstat_inc(ifp, ifs6_out_fragfail);
    927  1.23.2.2  he 			goto bad;
    928  1.23.2.2  he 		}
    929  1.23.2.2  he 
    930  1.23.2.2  he 		mnext = &m->m_nextpkt;
    931  1.23.2.2  he 
    932  1.23.2.2  he 		/*
    933  1.23.2.2  he 		 * Change the next header field of the last header in the
    934  1.23.2.2  he 		 * unfragmentable part.
    935  1.23.2.2  he 		 */
    936  1.23.2.2  he 		if (exthdrs.ip6e_rthdr) {
    937  1.23.2.2  he 			nextproto = *mtod(exthdrs.ip6e_rthdr, u_char *);
    938  1.23.2.2  he 			*mtod(exthdrs.ip6e_rthdr, u_char *) = IPPROTO_FRAGMENT;
    939  1.23.2.2  he 		} else if (exthdrs.ip6e_dest1) {
    940  1.23.2.2  he 			nextproto = *mtod(exthdrs.ip6e_dest1, u_char *);
    941  1.23.2.2  he 			*mtod(exthdrs.ip6e_dest1, u_char *) = IPPROTO_FRAGMENT;
    942  1.23.2.2  he 		} else if (exthdrs.ip6e_hbh) {
    943  1.23.2.2  he 			nextproto = *mtod(exthdrs.ip6e_hbh, u_char *);
    944  1.23.2.2  he 			*mtod(exthdrs.ip6e_hbh, u_char *) = IPPROTO_FRAGMENT;
    945  1.23.2.2  he 		} else {
    946  1.23.2.2  he 			nextproto = ip6->ip6_nxt;
    947  1.23.2.2  he 			ip6->ip6_nxt = IPPROTO_FRAGMENT;
    948  1.23.2.2  he 		}
    949  1.23.2.2  he 
    950  1.23.2.2  he 		/*
    951  1.23.2.2  he 		 * Loop through length of segment after first fragment,
    952  1.23.2.2  he 		 * make new header and copy data of each part and link onto chain.
    953  1.23.2.2  he 		 */
    954  1.23.2.2  he 		m0 = m;
    955  1.23.2.2  he 		for (off = hlen; off < tlen; off += len) {
    956  1.23.2.2  he 			MGETHDR(m, M_DONTWAIT, MT_HEADER);
    957  1.23.2.2  he 			if (!m) {
    958  1.23.2.2  he 				error = ENOBUFS;
    959  1.23.2.2  he 				ip6stat.ip6s_odropped++;
    960  1.23.2.2  he 				goto sendorfree;
    961  1.23.2.2  he 			}
    962  1.23.2.2  he 			m->m_flags = m0->m_flags & M_COPYFLAGS;
    963  1.23.2.2  he 			*mnext = m;
    964  1.23.2.2  he 			mnext = &m->m_nextpkt;
    965  1.23.2.2  he 			m->m_data += max_linkhdr;
    966  1.23.2.2  he 			mhip6 = mtod(m, struct ip6_hdr *);
    967  1.23.2.2  he 			*mhip6 = *ip6;
    968  1.23.2.2  he 			m->m_len = sizeof(*mhip6);
    969  1.23.2.2  he  			error = ip6_insertfraghdr(m0, m, hlen, &ip6f);
    970  1.23.2.2  he  			if (error) {
    971  1.23.2.2  he 				ip6stat.ip6s_odropped++;
    972  1.23.2.2  he 				goto sendorfree;
    973  1.23.2.2  he 			}
    974  1.23.2.2  he 			ip6f->ip6f_offlg = htons((u_short)((off - hlen) & ~7));
    975  1.23.2.2  he 			if (off + len >= tlen)
    976  1.23.2.2  he 				len = tlen - off;
    977  1.23.2.2  he 			else
    978  1.23.2.2  he 				ip6f->ip6f_offlg |= IP6F_MORE_FRAG;
    979  1.23.2.2  he 			mhip6->ip6_plen = htons((u_short)(len + hlen +
    980  1.23.2.2  he 							  sizeof(*ip6f) -
    981  1.23.2.2  he 							  sizeof(struct ip6_hdr)));
    982  1.23.2.2  he 			if ((m_frgpart = m_copy(m0, off, len)) == 0) {
    983  1.23.2.2  he 				error = ENOBUFS;
    984  1.23.2.2  he 				ip6stat.ip6s_odropped++;
    985  1.23.2.2  he 				goto sendorfree;
    986  1.23.2.2  he 			}
    987  1.23.2.2  he 			m_cat(m, m_frgpart);
    988  1.23.2.2  he 			m->m_pkthdr.len = len + hlen + sizeof(*ip6f);
    989  1.23.2.2  he 			m->m_pkthdr.rcvif = (struct ifnet *)0;
    990  1.23.2.2  he 			ip6f->ip6f_reserved = 0;
    991  1.23.2.2  he 			ip6f->ip6f_ident = id;
    992  1.23.2.2  he 			ip6f->ip6f_nxt = nextproto;
    993  1.23.2.2  he 			ip6stat.ip6s_ofragments++;
    994  1.23.2.2  he 			in6_ifstat_inc(ifp, ifs6_out_fragcreat);
    995  1.23.2.2  he 		}
    996  1.23.2.2  he 
    997  1.23.2.2  he 		in6_ifstat_inc(ifp, ifs6_out_fragok);
    998  1.23.2.2  he 	}
    999  1.23.2.2  he 
   1000  1.23.2.2  he 	/*
   1001  1.23.2.2  he 	 * Remove leading garbages.
   1002  1.23.2.2  he 	 */
   1003  1.23.2.2  he sendorfree:
   1004  1.23.2.2  he 	m = m0->m_nextpkt;
   1005  1.23.2.2  he 	m0->m_nextpkt = 0;
   1006  1.23.2.2  he 	m_freem(m0);
   1007  1.23.2.2  he 	for (m0 = m; m; m = m0) {
   1008  1.23.2.2  he 		m0 = m->m_nextpkt;
   1009  1.23.2.2  he 		m->m_nextpkt = 0;
   1010  1.23.2.2  he 		if (error == 0) {
   1011  1.23.2.2  he #ifdef IFA_STATS
   1012  1.23.2.2  he 			if (IFA_STATS) {
   1013  1.23.2.2  he 				struct in6_ifaddr *ia6;
   1014  1.23.2.2  he 				ip6 = mtod(m, struct ip6_hdr *);
   1015  1.23.2.2  he 				ia6 = in6_ifawithifp(ifp, &ip6->ip6_src);
   1016  1.23.2.2  he 				if (ia6) {
   1017  1.23.2.2  he 					ia->ia_ifa.ifa_data.ifad_outbytes +=
   1018  1.23.2.2  he 						m->m_pkthdr.len;
   1019  1.23.2.2  he 				}
   1020  1.23.2.2  he 			}
   1021  1.23.2.2  he #endif
   1022  1.23.2.2  he #ifdef OLDIP6OUTPUT
   1023  1.23.2.2  he 			error = (*ifp->if_output)(ifp, m,
   1024  1.23.2.2  he 						  (struct sockaddr *)dst,
   1025  1.23.2.2  he 						  ro->ro_rt);
   1026  1.23.2.2  he #else
   1027  1.23.2.2  he 			error = nd6_output(ifp, origifp, m, dst, ro->ro_rt);
   1028  1.23.2.2  he #endif
   1029  1.23.2.2  he 		} else
   1030  1.23.2.2  he 			m_freem(m);
   1031  1.23.2.2  he 	}
   1032  1.23.2.2  he 
   1033  1.23.2.2  he 	if (error == 0)
   1034  1.23.2.2  he 		ip6stat.ip6s_fragmented++;
   1035  1.23.2.2  he 
   1036  1.23.2.2  he done:
   1037  1.23.2.2  he 	if (ro == &ip6route && ro->ro_rt) { /* brace necessary for RTFREE */
   1038  1.23.2.2  he 		RTFREE(ro->ro_rt);
   1039  1.23.2.2  he 	} else if (ro_pmtu == &ip6route && ro_pmtu->ro_rt) {
   1040  1.23.2.2  he 		RTFREE(ro_pmtu->ro_rt);
   1041  1.23.2.2  he 	}
   1042  1.23.2.2  he 
   1043  1.23.2.2  he #ifdef IPSEC
   1044  1.23.2.2  he 	if (sp != NULL)
   1045  1.23.2.2  he 		key_freesp(sp);
   1046  1.23.2.2  he #endif /* IPSEC */
   1047  1.23.2.2  he 
   1048  1.23.2.2  he 	return(error);
   1049  1.23.2.2  he 
   1050  1.23.2.2  he freehdrs:
   1051  1.23.2.2  he 	m_freem(exthdrs.ip6e_hbh);	/* m_freem will check if mbuf is 0 */
   1052  1.23.2.2  he 	m_freem(exthdrs.ip6e_dest1);
   1053  1.23.2.2  he 	m_freem(exthdrs.ip6e_rthdr);
   1054  1.23.2.2  he 	m_freem(exthdrs.ip6e_dest2);
   1055  1.23.2.2  he 	/* fall through */
   1056  1.23.2.2  he bad:
   1057  1.23.2.2  he 	m_freem(m);
   1058  1.23.2.2  he 	goto done;
   1059  1.23.2.2  he }
   1060  1.23.2.2  he 
   1061  1.23.2.2  he static int
   1062  1.23.2.2  he ip6_copyexthdr(mp, hdr, hlen)
   1063  1.23.2.2  he 	struct mbuf **mp;
   1064  1.23.2.2  he 	caddr_t hdr;
   1065  1.23.2.2  he 	int hlen;
   1066  1.23.2.2  he {
   1067  1.23.2.2  he 	struct mbuf *m;
   1068  1.23.2.2  he 
   1069  1.23.2.2  he 	if (hlen > MCLBYTES)
   1070  1.23.2.2  he 		return(ENOBUFS); /* XXX */
   1071  1.23.2.2  he 
   1072  1.23.2.2  he 	MGET(m, M_DONTWAIT, MT_DATA);
   1073  1.23.2.2  he 	if (!m)
   1074  1.23.2.2  he 		return(ENOBUFS);
   1075  1.23.2.2  he 
   1076  1.23.2.2  he 	if (hlen > MLEN) {
   1077  1.23.2.2  he 		MCLGET(m, M_DONTWAIT);
   1078  1.23.2.2  he 		if ((m->m_flags & M_EXT) == 0) {
   1079  1.23.2.2  he 			m_free(m);
   1080  1.23.2.2  he 			return(ENOBUFS);
   1081  1.23.2.2  he 		}
   1082  1.23.2.2  he 	}
   1083  1.23.2.2  he 	m->m_len = hlen;
   1084  1.23.2.2  he 	if (hdr)
   1085  1.23.2.2  he 		bcopy(hdr, mtod(m, caddr_t), hlen);
   1086  1.23.2.2  he 
   1087  1.23.2.2  he 	*mp = m;
   1088  1.23.2.2  he 	return(0);
   1089  1.23.2.2  he }
   1090  1.23.2.2  he 
   1091  1.23.2.2  he /*
   1092  1.23.2.2  he  * Insert jumbo payload option.
   1093  1.23.2.2  he  */
   1094  1.23.2.2  he static int
   1095  1.23.2.2  he ip6_insert_jumboopt(exthdrs, plen)
   1096  1.23.2.2  he 	struct ip6_exthdrs *exthdrs;
   1097  1.23.2.2  he 	u_int32_t plen;
   1098  1.23.2.2  he {
   1099  1.23.2.2  he 	struct mbuf *mopt;
   1100  1.23.2.2  he 	u_char *optbuf;
   1101  1.23.2.2  he 
   1102  1.23.2.2  he #define JUMBOOPTLEN	8	/* length of jumbo payload option and padding */
   1103  1.23.2.2  he 
   1104  1.23.2.2  he 	/*
   1105  1.23.2.2  he 	 * If there is no hop-by-hop options header, allocate new one.
   1106  1.23.2.2  he 	 * If there is one but it doesn't have enough space to store the
   1107  1.23.2.2  he 	 * jumbo payload option, allocate a cluster to store the whole options.
   1108  1.23.2.2  he 	 * Otherwise, use it to store the options.
   1109  1.23.2.2  he 	 */
   1110  1.23.2.2  he 	if (exthdrs->ip6e_hbh == 0) {
   1111  1.23.2.2  he 		MGET(mopt, M_DONTWAIT, MT_DATA);
   1112  1.23.2.2  he 		if (mopt == 0)
   1113  1.23.2.2  he 			return(ENOBUFS);
   1114  1.23.2.2  he 		mopt->m_len = JUMBOOPTLEN;
   1115  1.23.2.2  he 		optbuf = mtod(mopt, u_char *);
   1116  1.23.2.2  he 		optbuf[1] = 0;	/* = ((JUMBOOPTLEN) >> 3) - 1 */
   1117  1.23.2.2  he 		exthdrs->ip6e_hbh = mopt;
   1118  1.23.2.2  he 	} else {
   1119  1.23.2.2  he 		struct ip6_hbh *hbh;
   1120  1.23.2.2  he 
   1121  1.23.2.2  he 		mopt = exthdrs->ip6e_hbh;
   1122  1.23.2.2  he 		if (M_TRAILINGSPACE(mopt) < JUMBOOPTLEN) {
   1123  1.23.2.2  he 			caddr_t oldoptp = mtod(mopt, caddr_t);
   1124  1.23.2.2  he 			int oldoptlen = mopt->m_len;
   1125  1.23.2.2  he 
   1126  1.23.2.2  he 			if (mopt->m_flags & M_EXT)
   1127  1.23.2.2  he 				return(ENOBUFS); /* XXX */
   1128  1.23.2.2  he 			MCLGET(mopt, M_DONTWAIT);
   1129  1.23.2.2  he 			if ((mopt->m_flags & M_EXT) == 0)
   1130  1.23.2.2  he 				return(ENOBUFS);
   1131  1.23.2.2  he 
   1132  1.23.2.2  he 			bcopy(oldoptp, mtod(mopt, caddr_t), oldoptlen);
   1133  1.23.2.2  he 			optbuf = mtod(mopt, caddr_t) + oldoptlen;
   1134  1.23.2.2  he 			mopt->m_len = oldoptlen + JUMBOOPTLEN;
   1135  1.23.2.2  he 		} else {
   1136  1.23.2.2  he 			optbuf = mtod(mopt, u_char *) + mopt->m_len;
   1137  1.23.2.2  he 			mopt->m_len += JUMBOOPTLEN;
   1138  1.23.2.2  he 		}
   1139  1.23.2.2  he 		optbuf[0] = IP6OPT_PADN;
   1140  1.23.2.2  he 		optbuf[1] = 1;
   1141  1.23.2.2  he 
   1142  1.23.2.2  he 		/*
   1143  1.23.2.2  he 		 * Adjust the header length according to the pad and
   1144  1.23.2.2  he 		 * the jumbo payload option.
   1145  1.23.2.2  he 		 */
   1146  1.23.2.2  he 		hbh = mtod(mopt, struct ip6_hbh *);
   1147  1.23.2.2  he 		hbh->ip6h_len += (JUMBOOPTLEN >> 3);
   1148  1.23.2.2  he 	}
   1149  1.23.2.2  he 
   1150  1.23.2.2  he 	/* fill in the option. */
   1151  1.23.2.2  he 	optbuf[2] = IP6OPT_JUMBO;
   1152  1.23.2.2  he 	optbuf[3] = 4;
   1153  1.23.2.2  he 	*(u_int32_t *)&optbuf[4] = htonl(plen + JUMBOOPTLEN);
   1154  1.23.2.2  he 
   1155  1.23.2.2  he 	/* finally, adjust the packet header length */
   1156  1.23.2.2  he 	exthdrs->ip6e_ip6->m_pkthdr.len += JUMBOOPTLEN;
   1157  1.23.2.2  he 
   1158  1.23.2.2  he 	return(0);
   1159  1.23.2.2  he #undef JUMBOOPTLEN
   1160  1.23.2.2  he }
   1161  1.23.2.2  he 
   1162  1.23.2.2  he /*
   1163  1.23.2.2  he  * Insert fragment header and copy unfragmentable header portions.
   1164  1.23.2.2  he  */
   1165  1.23.2.2  he static int
   1166  1.23.2.2  he ip6_insertfraghdr(m0, m, hlen, frghdrp)
   1167  1.23.2.2  he 	struct mbuf *m0, *m;
   1168  1.23.2.2  he 	int hlen;
   1169  1.23.2.2  he 	struct ip6_frag **frghdrp;
   1170  1.23.2.2  he {
   1171  1.23.2.2  he 	struct mbuf *n, *mlast;
   1172  1.23.2.2  he 
   1173  1.23.2.2  he 	if (hlen > sizeof(struct ip6_hdr)) {
   1174  1.23.2.2  he 		n = m_copym(m0, sizeof(struct ip6_hdr),
   1175  1.23.2.2  he 			    hlen - sizeof(struct ip6_hdr), M_DONTWAIT);
   1176  1.23.2.2  he 		if (n == 0)
   1177  1.23.2.2  he 			return(ENOBUFS);
   1178  1.23.2.2  he 		m->m_next = n;
   1179  1.23.2.2  he 	} else
   1180  1.23.2.2  he 		n = m;
   1181  1.23.2.2  he 
   1182  1.23.2.2  he 	/* Search for the last mbuf of unfragmentable part. */
   1183  1.23.2.2  he 	for (mlast = n; mlast->m_next; mlast = mlast->m_next)
   1184  1.23.2.2  he 		;
   1185  1.23.2.2  he 
   1186  1.23.2.2  he 	if ((mlast->m_flags & M_EXT) == 0 &&
   1187  1.23.2.2  he 	    M_TRAILINGSPACE(mlast) >= sizeof(struct ip6_frag)) {
   1188  1.23.2.2  he 		/* use the trailing space of the last mbuf for the fragment hdr */
   1189  1.23.2.2  he 		*frghdrp =
   1190  1.23.2.2  he 			(struct ip6_frag *)(mtod(mlast, caddr_t) + mlast->m_len);
   1191  1.23.2.2  he 		mlast->m_len += sizeof(struct ip6_frag);
   1192  1.23.2.2  he 		m->m_pkthdr.len += sizeof(struct ip6_frag);
   1193  1.23.2.2  he 	} else {
   1194  1.23.2.2  he 		/* allocate a new mbuf for the fragment header */
   1195  1.23.2.2  he 		struct mbuf *mfrg;
   1196  1.23.2.2  he 
   1197  1.23.2.2  he 		MGET(mfrg, M_DONTWAIT, MT_DATA);
   1198  1.23.2.2  he 		if (mfrg == 0)
   1199  1.23.2.2  he 			return(ENOBUFS);
   1200  1.23.2.2  he 		mfrg->m_len = sizeof(struct ip6_frag);
   1201  1.23.2.2  he 		*frghdrp = mtod(mfrg, struct ip6_frag *);
   1202  1.23.2.2  he 		mlast->m_next = mfrg;
   1203  1.23.2.2  he 	}
   1204  1.23.2.2  he 
   1205  1.23.2.2  he 	return(0);
   1206  1.23.2.2  he }
   1207  1.23.2.2  he 
   1208  1.23.2.2  he /*
   1209  1.23.2.2  he  * IP6 socket option processing.
   1210  1.23.2.2  he  */
   1211  1.23.2.2  he int
   1212  1.23.2.2  he ip6_ctloutput(op, so, level, optname, mp)
   1213  1.23.2.2  he 	int op;
   1214  1.23.2.2  he 	struct socket *so;
   1215  1.23.2.2  he 	int level, optname;
   1216  1.23.2.2  he 	struct mbuf **mp;
   1217  1.23.2.2  he {
   1218  1.23.2.2  he 	register struct in6pcb *in6p = sotoin6pcb(so);
   1219  1.23.2.2  he 	register struct mbuf *m = *mp;
   1220  1.23.2.2  he 	register int optval = 0;
   1221  1.23.2.2  he 	int error = 0;
   1222  1.23.2.2  he 	struct proc *p = curproc;	/* XXX */
   1223  1.23.2.2  he 
   1224  1.23.2.2  he 	if (level == IPPROTO_IPV6) {
   1225  1.23.2.2  he 		switch (op) {
   1226  1.23.2.2  he 
   1227  1.23.2.2  he 		case PRCO_SETOPT:
   1228  1.23.2.2  he 			switch (optname) {
   1229  1.23.2.2  he 			case IPV6_PKTOPTIONS:
   1230  1.23.2.2  he 				/* m is freed in ip6_pcbopts */
   1231  1.23.2.2  he 				return(ip6_pcbopts(&in6p->in6p_outputopts,
   1232  1.23.2.2  he 						   m, so));
   1233  1.23.2.2  he 			case IPV6_HOPOPTS:
   1234  1.23.2.2  he 			case IPV6_DSTOPTS:
   1235  1.23.2.2  he 				if (p == 0 || suser(p->p_ucred, &p->p_acflag)) {
   1236  1.23.2.2  he 					error = EPERM;
   1237  1.23.2.2  he 					break;
   1238  1.23.2.2  he 				}
   1239  1.23.2.2  he 				/* fall through */
   1240  1.23.2.2  he 			case IPV6_UNICAST_HOPS:
   1241  1.23.2.2  he 			case IPV6_RECVOPTS:
   1242  1.23.2.2  he 			case IPV6_RECVRETOPTS:
   1243  1.23.2.2  he 			case IPV6_RECVDSTADDR:
   1244  1.23.2.2  he 			case IPV6_PKTINFO:
   1245  1.23.2.2  he 			case IPV6_HOPLIMIT:
   1246  1.23.2.2  he 			case IPV6_RTHDR:
   1247  1.23.2.2  he 			case IPV6_CHECKSUM:
   1248  1.23.2.2  he 			case IPV6_FAITH:
   1249  1.23.2.2  he #ifndef INET6_BINDV6ONLY
   1250  1.23.2.2  he 			case IPV6_BINDV6ONLY:
   1251  1.23.2.2  he #endif
   1252  1.23.2.2  he 				if (!m || m->m_len != sizeof(int))
   1253  1.23.2.2  he 					error = EINVAL;
   1254  1.23.2.2  he 				else {
   1255  1.23.2.2  he 					optval = *mtod(m, int *);
   1256  1.23.2.2  he 					switch (optname) {
   1257  1.23.2.2  he 
   1258  1.23.2.2  he 					case IPV6_UNICAST_HOPS:
   1259  1.23.2.2  he 						if (optval < -1 || optval >= 256)
   1260  1.23.2.2  he 							error = EINVAL;
   1261  1.23.2.2  he 						else {
   1262  1.23.2.2  he 							/* -1 = kernel default */
   1263  1.23.2.2  he 							in6p->in6p_hops = optval;
   1264  1.23.2.2  he 						}
   1265  1.23.2.2  he 						break;
   1266  1.23.2.2  he #define OPTSET(bit) \
   1267  1.23.2.2  he 	if (optval) \
   1268  1.23.2.2  he 		in6p->in6p_flags |= bit; \
   1269  1.23.2.2  he 	else \
   1270  1.23.2.2  he 		in6p->in6p_flags &= ~bit;
   1271  1.23.2.2  he 
   1272  1.23.2.2  he 					case IPV6_RECVOPTS:
   1273  1.23.2.2  he 						OPTSET(IN6P_RECVOPTS);
   1274  1.23.2.2  he 						break;
   1275  1.23.2.2  he 
   1276  1.23.2.2  he 					case IPV6_RECVRETOPTS:
   1277  1.23.2.2  he 						OPTSET(IN6P_RECVRETOPTS);
   1278  1.23.2.2  he 						break;
   1279  1.23.2.2  he 
   1280  1.23.2.2  he 					case IPV6_RECVDSTADDR:
   1281  1.23.2.2  he 						OPTSET(IN6P_RECVDSTADDR);
   1282  1.23.2.2  he 						break;
   1283  1.23.2.2  he 
   1284  1.23.2.2  he 					case IPV6_PKTINFO:
   1285  1.23.2.2  he 						OPTSET(IN6P_PKTINFO);
   1286  1.23.2.2  he 						break;
   1287  1.23.2.2  he 
   1288  1.23.2.2  he 					case IPV6_HOPLIMIT:
   1289  1.23.2.2  he 						OPTSET(IN6P_HOPLIMIT);
   1290  1.23.2.2  he 						break;
   1291  1.23.2.2  he 
   1292  1.23.2.2  he 					case IPV6_HOPOPTS:
   1293  1.23.2.2  he 						OPTSET(IN6P_HOPOPTS);
   1294  1.23.2.2  he 						break;
   1295  1.23.2.2  he 
   1296  1.23.2.2  he 					case IPV6_DSTOPTS:
   1297  1.23.2.2  he 						OPTSET(IN6P_DSTOPTS);
   1298  1.23.2.2  he 						break;
   1299  1.23.2.2  he 
   1300  1.23.2.2  he 					case IPV6_RTHDR:
   1301  1.23.2.2  he 						OPTSET(IN6P_RTHDR);
   1302  1.23.2.2  he 						break;
   1303  1.23.2.2  he 
   1304  1.23.2.2  he 					case IPV6_CHECKSUM:
   1305  1.23.2.2  he 						in6p->in6p_cksum = optval;
   1306  1.23.2.2  he 						break;
   1307  1.23.2.2  he 
   1308  1.23.2.2  he 					case IPV6_FAITH:
   1309  1.23.2.2  he 						OPTSET(IN6P_FAITH);
   1310  1.23.2.2  he 						break;
   1311  1.23.2.2  he 
   1312  1.23.2.2  he #ifndef INET6_BINDV6ONLY
   1313  1.23.2.2  he 					case IPV6_BINDV6ONLY:
   1314  1.23.2.2  he 						OPTSET(IN6P_BINDV6ONLY);
   1315  1.23.2.2  he 						break;
   1316  1.23.2.2  he #endif
   1317  1.23.2.2  he 					}
   1318  1.23.2.2  he 				}
   1319  1.23.2.2  he 				break;
   1320  1.23.2.2  he #undef OPTSET
   1321  1.23.2.2  he 
   1322  1.23.2.2  he 			case IPV6_MULTICAST_IF:
   1323  1.23.2.2  he 			case IPV6_MULTICAST_HOPS:
   1324  1.23.2.2  he 			case IPV6_MULTICAST_LOOP:
   1325  1.23.2.2  he 			case IPV6_JOIN_GROUP:
   1326  1.23.2.2  he 			case IPV6_LEAVE_GROUP:
   1327  1.23.2.2  he 				error =	ip6_setmoptions(optname, &in6p->in6p_moptions, m);
   1328  1.23.2.2  he 				break;
   1329  1.23.2.2  he 
   1330  1.23.2.2  he 			case IPV6_PORTRANGE:
   1331  1.23.2.2  he 				optval = *mtod(m, int *);
   1332  1.23.2.2  he 
   1333  1.23.2.2  he 				switch (optval) {
   1334  1.23.2.2  he 				case IPV6_PORTRANGE_DEFAULT:
   1335  1.23.2.2  he 					in6p->in6p_flags &= ~(IN6P_LOWPORT);
   1336  1.23.2.2  he 					in6p->in6p_flags &= ~(IN6P_HIGHPORT);
   1337  1.23.2.2  he 					break;
   1338  1.23.2.2  he 
   1339  1.23.2.2  he 				case IPV6_PORTRANGE_HIGH:
   1340  1.23.2.2  he 					in6p->in6p_flags &= ~(IN6P_LOWPORT);
   1341  1.23.2.2  he 					in6p->in6p_flags |= IN6P_HIGHPORT;
   1342  1.23.2.2  he 					break;
   1343  1.23.2.2  he 
   1344  1.23.2.2  he 				case IPV6_PORTRANGE_LOW:
   1345  1.23.2.2  he 					in6p->in6p_flags &= ~(IN6P_HIGHPORT);
   1346  1.23.2.2  he 					in6p->in6p_flags |= IN6P_LOWPORT;
   1347  1.23.2.2  he 					break;
   1348  1.23.2.2  he 
   1349  1.23.2.2  he 				default:
   1350  1.23.2.2  he 					error = EINVAL;
   1351  1.23.2.2  he 					break;
   1352  1.23.2.2  he 				}
   1353  1.23.2.2  he 				break;
   1354  1.23.2.2  he 
   1355  1.23.2.2  he #ifdef IPSEC
   1356  1.23.2.2  he 			case IPV6_IPSEC_POLICY:
   1357  1.23.2.2  he 			    {
   1358  1.23.2.2  he 				caddr_t req = NULL;
   1359  1.23.2.2  he 				size_t len = 0;
   1360  1.23.2.2  he 
   1361  1.23.2.2  he 				int priv = 0;
   1362  1.23.2.2  he 				if (p == 0 || suser(p->p_ucred, &p->p_acflag))
   1363  1.23.2.2  he 					priv = 0;
   1364  1.23.2.2  he 				else
   1365  1.23.2.2  he 					priv = 1;
   1366  1.23.2.2  he 				if (m) {
   1367  1.23.2.2  he 					req = mtod(m, caddr_t);
   1368  1.23.2.2  he 					len = m->m_len;
   1369  1.23.2.2  he 				}
   1370  1.23.2.2  he 				error = ipsec6_set_policy(in6p,
   1371  1.23.2.2  he 				                   optname, req, len, priv);
   1372  1.23.2.2  he 			    }
   1373  1.23.2.2  he 				break;
   1374  1.23.2.2  he #endif /* IPSEC */
   1375  1.23.2.2  he 
   1376  1.23.2.2  he 			default:
   1377  1.23.2.2  he 				error = ENOPROTOOPT;
   1378  1.23.2.2  he 				break;
   1379  1.23.2.2  he 			}
   1380  1.23.2.2  he 			if (m)
   1381  1.23.2.2  he 				(void)m_free(m);
   1382  1.23.2.2  he 			break;
   1383  1.23.2.2  he 
   1384  1.23.2.2  he 		case PRCO_GETOPT:
   1385  1.23.2.2  he 			switch (optname) {
   1386  1.23.2.2  he 
   1387  1.23.2.2  he 			case IPV6_OPTIONS:
   1388  1.23.2.2  he 			case IPV6_RETOPTS:
   1389  1.23.2.2  he #if 0
   1390  1.23.2.2  he 				*mp = m = m_get(M_WAIT, MT_SOOPTS);
   1391  1.23.2.2  he 				if (in6p->in6p_options) {
   1392  1.23.2.2  he 					m->m_len = in6p->in6p_options->m_len;
   1393  1.23.2.2  he 					bcopy(mtod(in6p->in6p_options, caddr_t),
   1394  1.23.2.2  he 					      mtod(m, caddr_t),
   1395  1.23.2.2  he 					      (unsigned)m->m_len);
   1396  1.23.2.2  he 				} else
   1397  1.23.2.2  he 					m->m_len = 0;
   1398  1.23.2.2  he 				break;
   1399  1.23.2.2  he #else
   1400  1.23.2.2  he 				error = ENOPROTOOPT;
   1401  1.23.2.2  he 				break;
   1402  1.23.2.2  he #endif
   1403  1.23.2.2  he 
   1404  1.23.2.2  he 			case IPV6_PKTOPTIONS:
   1405  1.23.2.2  he 				if (in6p->in6p_options) {
   1406  1.23.2.2  he 					*mp = m_copym(in6p->in6p_options, 0,
   1407  1.23.2.2  he 						      M_COPYALL, M_WAIT);
   1408  1.23.2.2  he 				} else {
   1409  1.23.2.2  he 					*mp = m_get(M_WAIT, MT_SOOPTS);
   1410  1.23.2.2  he 					(*mp)->m_len = 0;
   1411  1.23.2.2  he 				}
   1412  1.23.2.2  he 				break;
   1413  1.23.2.2  he 
   1414  1.23.2.2  he 			case IPV6_HOPOPTS:
   1415  1.23.2.2  he 			case IPV6_DSTOPTS:
   1416  1.23.2.2  he 				if (p == 0 || suser(p->p_ucred, &p->p_acflag)) {
   1417  1.23.2.2  he 					error = EPERM;
   1418  1.23.2.2  he 					break;
   1419  1.23.2.2  he 				}
   1420  1.23.2.2  he 				/* fall through */
   1421  1.23.2.2  he 			case IPV6_UNICAST_HOPS:
   1422  1.23.2.2  he 			case IPV6_RECVOPTS:
   1423  1.23.2.2  he 			case IPV6_RECVRETOPTS:
   1424  1.23.2.2  he 			case IPV6_RECVDSTADDR:
   1425  1.23.2.2  he 			case IPV6_PORTRANGE:
   1426  1.23.2.2  he 			case IPV6_PKTINFO:
   1427  1.23.2.2  he 			case IPV6_HOPLIMIT:
   1428  1.23.2.2  he 			case IPV6_RTHDR:
   1429  1.23.2.2  he 			case IPV6_CHECKSUM:
   1430  1.23.2.2  he 			case IPV6_FAITH:
   1431  1.23.2.2  he #ifndef INET6_BINDV6ONLY
   1432  1.23.2.2  he 			case IPV6_BINDV6ONLY:
   1433  1.23.2.2  he #endif
   1434  1.23.2.2  he 				*mp = m = m_get(M_WAIT, MT_SOOPTS);
   1435  1.23.2.2  he 				m->m_len = sizeof(int);
   1436  1.23.2.2  he 				switch (optname) {
   1437  1.23.2.2  he 
   1438  1.23.2.2  he 				case IPV6_UNICAST_HOPS:
   1439  1.23.2.2  he 					optval = in6p->in6p_hops;
   1440  1.23.2.2  he 					break;
   1441  1.23.2.2  he 
   1442  1.23.2.2  he #define OPTBIT(bit) (in6p->in6p_flags & bit ? 1 : 0)
   1443  1.23.2.2  he 
   1444  1.23.2.2  he 				case IPV6_RECVOPTS:
   1445  1.23.2.2  he 					optval = OPTBIT(IN6P_RECVOPTS);
   1446  1.23.2.2  he 					break;
   1447  1.23.2.2  he 
   1448  1.23.2.2  he 				case IPV6_RECVRETOPTS:
   1449  1.23.2.2  he 					optval = OPTBIT(IN6P_RECVRETOPTS);
   1450  1.23.2.2  he 					break;
   1451  1.23.2.2  he 
   1452  1.23.2.2  he 				case IPV6_RECVDSTADDR:
   1453  1.23.2.2  he 					optval = OPTBIT(IN6P_RECVDSTADDR);
   1454  1.23.2.2  he 					break;
   1455  1.23.2.2  he 
   1456  1.23.2.2  he 				case IPV6_PORTRANGE:
   1457  1.23.2.2  he 				    {
   1458  1.23.2.2  he 					int flags;
   1459  1.23.2.2  he 					flags = in6p->in6p_flags;
   1460  1.23.2.2  he 					if (flags & IN6P_HIGHPORT)
   1461  1.23.2.2  he 						optval = IPV6_PORTRANGE_HIGH;
   1462  1.23.2.2  he 					else if (flags & IN6P_LOWPORT)
   1463  1.23.2.2  he 						optval = IPV6_PORTRANGE_LOW;
   1464  1.23.2.2  he 					else
   1465  1.23.2.2  he 						optval = 0;
   1466  1.23.2.2  he 					break;
   1467  1.23.2.2  he 				    }
   1468  1.23.2.2  he 
   1469  1.23.2.2  he 				case IPV6_PKTINFO:
   1470  1.23.2.2  he 					optval = OPTBIT(IN6P_PKTINFO);
   1471  1.23.2.2  he 					break;
   1472  1.23.2.2  he 
   1473  1.23.2.2  he 				case IPV6_HOPLIMIT:
   1474  1.23.2.2  he 					optval = OPTBIT(IN6P_HOPLIMIT);
   1475  1.23.2.2  he 					break;
   1476  1.23.2.2  he 
   1477  1.23.2.2  he 				case IPV6_HOPOPTS:
   1478  1.23.2.2  he 					optval = OPTBIT(IN6P_HOPOPTS);
   1479  1.23.2.2  he 					break;
   1480  1.23.2.2  he 
   1481  1.23.2.2  he 				case IPV6_DSTOPTS:
   1482  1.23.2.2  he 					optval = OPTBIT(IN6P_DSTOPTS);
   1483  1.23.2.2  he 					break;
   1484  1.23.2.2  he 
   1485  1.23.2.2  he 				case IPV6_RTHDR:
   1486  1.23.2.2  he 					optval = OPTBIT(IN6P_RTHDR);
   1487  1.23.2.2  he 					break;
   1488  1.23.2.2  he 
   1489  1.23.2.2  he 				case IPV6_CHECKSUM:
   1490  1.23.2.2  he 					optval = in6p->in6p_cksum;
   1491  1.23.2.2  he 					break;
   1492  1.23.2.2  he 
   1493  1.23.2.2  he 				case IPV6_FAITH:
   1494  1.23.2.2  he 					optval = OPTBIT(IN6P_FAITH);
   1495  1.23.2.2  he 					break;
   1496  1.23.2.2  he 
   1497  1.23.2.2  he #ifndef INET6_BINDV6ONLY
   1498  1.23.2.2  he 				case IPV6_BINDV6ONLY:
   1499  1.23.2.2  he 					optval = OPTBIT(IN6P_BINDV6ONLY);
   1500  1.23.2.2  he 					break;
   1501  1.23.2.2  he #endif
   1502  1.23.2.2  he 				}
   1503  1.23.2.2  he 				*mtod(m, int *) = optval;
   1504  1.23.2.2  he 				break;
   1505  1.23.2.2  he 
   1506  1.23.2.2  he 			case IPV6_MULTICAST_IF:
   1507  1.23.2.2  he 			case IPV6_MULTICAST_HOPS:
   1508  1.23.2.2  he 			case IPV6_MULTICAST_LOOP:
   1509  1.23.2.2  he 			case IPV6_JOIN_GROUP:
   1510  1.23.2.2  he 			case IPV6_LEAVE_GROUP:
   1511  1.23.2.2  he 				error = ip6_getmoptions(optname, in6p->in6p_moptions, mp);
   1512  1.23.2.2  he 				break;
   1513  1.23.2.2  he 
   1514  1.23.2.2  he #ifdef IPSEC
   1515  1.23.2.2  he 			case IPV6_IPSEC_POLICY:
   1516  1.23.2.2  he 			{
   1517  1.23.2.2  he 				caddr_t req = NULL;
   1518  1.23.2.2  he 				size_t len = 0;
   1519  1.23.2.2  he 
   1520  1.23.2.2  he 				if (m) {
   1521  1.23.2.2  he 					req = mtod(m, caddr_t);
   1522  1.23.2.2  he 					len = m->m_len;
   1523  1.23.2.2  he 				}
   1524  1.23.2.2  he 				error = ipsec6_get_policy(in6p, req, len, mp);
   1525  1.23.2.2  he 				break;
   1526  1.23.2.2  he 			}
   1527  1.23.2.2  he #endif /* IPSEC */
   1528  1.23.2.2  he 
   1529  1.23.2.2  he 			default:
   1530  1.23.2.2  he 				error = ENOPROTOOPT;
   1531  1.23.2.2  he 				break;
   1532  1.23.2.2  he 			}
   1533  1.23.2.2  he 			break;
   1534  1.23.2.2  he 		}
   1535  1.23.2.2  he 	} else {
   1536  1.23.2.2  he 		error = EINVAL;
   1537  1.23.2.2  he 		if (op == PRCO_SETOPT && *mp)
   1538  1.23.2.2  he 			(void)m_free(*mp);
   1539  1.23.2.2  he 	}
   1540  1.23.2.2  he 	return(error);
   1541  1.23.2.2  he }
   1542  1.23.2.2  he 
   1543  1.23.2.2  he /*
   1544  1.23.2.2  he  * Set up IP6 options in pcb for insertion in output packets.
   1545  1.23.2.2  he  * Store in mbuf with pointer in pcbopt, adding pseudo-option
   1546  1.23.2.2  he  * with destination address if source routed.
   1547  1.23.2.2  he  */
   1548  1.23.2.2  he static int
   1549  1.23.2.2  he ip6_pcbopts(pktopt, m, so)
   1550  1.23.2.2  he 	struct ip6_pktopts **pktopt;
   1551  1.23.2.2  he 	register struct mbuf *m;
   1552  1.23.2.2  he 	struct socket *so;
   1553  1.23.2.2  he {
   1554  1.23.2.2  he 	register struct ip6_pktopts *opt = *pktopt;
   1555  1.23.2.2  he 	int error = 0;
   1556  1.23.2.2  he 	struct proc *p = curproc;	/* XXX */
   1557  1.23.2.2  he 	int priv = 0;
   1558  1.23.2.2  he 
   1559  1.23.2.2  he 	/* turn off any old options. */
   1560  1.23.2.2  he 	if (opt) {
   1561  1.23.2.2  he 		if (opt->ip6po_m)
   1562  1.23.2.2  he 			(void)m_free(opt->ip6po_m);
   1563  1.23.2.2  he 	} else
   1564  1.23.2.2  he 		opt = malloc(sizeof(*opt), M_IP6OPT, M_WAITOK);
   1565  1.23.2.2  he 	*pktopt = 0;
   1566  1.23.2.2  he 
   1567  1.23.2.2  he 	if (!m || m->m_len == 0) {
   1568  1.23.2.2  he 		/*
   1569  1.23.2.2  he 		 * Only turning off any previous options.
   1570  1.23.2.2  he 		 */
   1571  1.23.2.2  he 		if (opt)
   1572  1.23.2.2  he 			free(opt, M_IP6OPT);
   1573  1.23.2.2  he 		if (m)
   1574  1.23.2.2  he 			(void)m_free(m);
   1575  1.23.2.2  he 		return(0);
   1576  1.23.2.2  he 	}
   1577  1.23.2.2  he 
   1578  1.23.2.2  he 	/*  set options specified by user. */
   1579  1.23.2.2  he 	if (p && !suser(p->p_ucred, &p->p_acflag))
   1580  1.23.2.2  he 		priv = 1;
   1581  1.23.2.2  he 	if ((error = ip6_setpktoptions(m, opt, priv)) != 0) {
   1582  1.23.2.2  he 		(void)m_free(m);
   1583  1.23.2.2  he 		return(error);
   1584  1.23.2.2  he 	}
   1585  1.23.2.2  he 	*pktopt = opt;
   1586  1.23.2.2  he 	return(0);
   1587  1.23.2.2  he }
   1588  1.23.2.2  he 
   1589  1.23.2.2  he /*
   1590  1.23.2.2  he  * Set the IP6 multicast options in response to user setsockopt().
   1591  1.23.2.2  he  */
   1592  1.23.2.2  he static int
   1593  1.23.2.2  he ip6_setmoptions(optname, im6op, m)
   1594  1.23.2.2  he 	int optname;
   1595  1.23.2.2  he 	struct ip6_moptions **im6op;
   1596  1.23.2.2  he 	struct mbuf *m;
   1597  1.23.2.2  he {
   1598  1.23.2.2  he 	int error = 0;
   1599  1.23.2.2  he 	u_int loop, ifindex;
   1600  1.23.2.2  he 	struct ipv6_mreq *mreq;
   1601  1.23.2.2  he 	struct ifnet *ifp;
   1602  1.23.2.2  he 	struct ip6_moptions *im6o = *im6op;
   1603  1.23.2.2  he 	struct route_in6 ro;
   1604  1.23.2.2  he 	struct sockaddr_in6 *dst;
   1605  1.23.2.2  he 	struct in6_multi_mship *imm;
   1606  1.23.2.2  he 	struct proc *p = curproc;	/* XXX */
   1607  1.23.2.2  he 
   1608  1.23.2.2  he 	if (im6o == NULL) {
   1609  1.23.2.2  he 		/*
   1610  1.23.2.2  he 		 * No multicast option buffer attached to the pcb;
   1611  1.23.2.2  he 		 * allocate one and initialize to default values.
   1612  1.23.2.2  he 		 */
   1613  1.23.2.2  he 		im6o = (struct ip6_moptions *)
   1614  1.23.2.2  he 			malloc(sizeof(*im6o), M_IPMOPTS, M_WAITOK);
   1615  1.23.2.2  he 
   1616  1.23.2.2  he 		if (im6o == NULL)
   1617  1.23.2.2  he 			return(ENOBUFS);
   1618  1.23.2.2  he 		*im6op = im6o;
   1619  1.23.2.2  he 		im6o->im6o_multicast_ifp = NULL;
   1620  1.23.2.2  he 		im6o->im6o_multicast_hlim = ip6_defmcasthlim;
   1621  1.23.2.2  he 		im6o->im6o_multicast_loop = IPV6_DEFAULT_MULTICAST_LOOP;
   1622  1.23.2.2  he 		LIST_INIT(&im6o->im6o_memberships);
   1623  1.23.2.2  he 	}
   1624  1.23.2.2  he 
   1625  1.23.2.2  he 	switch (optname) {
   1626  1.23.2.2  he 
   1627  1.23.2.2  he 	case IPV6_MULTICAST_IF:
   1628  1.23.2.2  he 		/*
   1629  1.23.2.2  he 		 * Select the interface for outgoing multicast packets.
   1630  1.23.2.2  he 		 */
   1631  1.23.2.2  he 		if (m == NULL || m->m_len != sizeof(u_int)) {
   1632  1.23.2.2  he 			error = EINVAL;
   1633  1.23.2.2  he 			break;
   1634  1.23.2.2  he 		}
   1635  1.23.2.2  he 		ifindex = *(mtod(m, u_int *));
   1636  1.23.2.2  he 		if (ifindex < 0 || if_index < ifindex) {
   1637  1.23.2.2  he 			error = ENXIO;	/* XXX EINVAL? */
   1638  1.23.2.2  he 			break;
   1639  1.23.2.2  he 		}
   1640  1.23.2.2  he 		ifp = ifindex2ifnet[ifindex];
   1641  1.23.2.2  he 		if (ifp == NULL || (ifp->if_flags & IFF_MULTICAST) == 0) {
   1642  1.23.2.2  he 			error = EADDRNOTAVAIL;
   1643  1.23.2.2  he 			break;
   1644  1.23.2.2  he 		}
   1645  1.23.2.2  he 		im6o->im6o_multicast_ifp = ifp;
   1646  1.23.2.2  he 		break;
   1647  1.23.2.2  he 
   1648  1.23.2.2  he 	case IPV6_MULTICAST_HOPS:
   1649  1.23.2.2  he 	    {
   1650  1.23.2.2  he 		/*
   1651  1.23.2.2  he 		 * Set the IP6 hoplimit for outgoing multicast packets.
   1652  1.23.2.2  he 		 */
   1653  1.23.2.2  he 		int optval;
   1654  1.23.2.2  he 		if (m == NULL || m->m_len != sizeof(int)) {
   1655  1.23.2.2  he 			error = EINVAL;
   1656  1.23.2.2  he 			break;
   1657  1.23.2.2  he 		}
   1658  1.23.2.2  he 		optval = *(mtod(m, u_int *));
   1659  1.23.2.2  he 		if (optval < -1 || optval >= 256)
   1660  1.23.2.2  he 			error = EINVAL;
   1661  1.23.2.2  he 		else if (optval == -1)
   1662  1.23.2.2  he 			im6o->im6o_multicast_hlim = ip6_defmcasthlim;
   1663  1.23.2.2  he 		else
   1664  1.23.2.2  he 			im6o->im6o_multicast_hlim = optval;
   1665  1.23.2.2  he 		break;
   1666  1.23.2.2  he 	    }
   1667  1.23.2.2  he 
   1668  1.23.2.2  he 	case IPV6_MULTICAST_LOOP:
   1669  1.23.2.2  he 		/*
   1670  1.23.2.2  he 		 * Set the loopback flag for outgoing multicast packets.
   1671  1.23.2.2  he 		 * Must be zero or one.
   1672  1.23.2.2  he 		 */
   1673  1.23.2.2  he 		if (m == NULL || m->m_len != sizeof(u_int) ||
   1674  1.23.2.2  he 		   (loop = *(mtod(m, u_int *))) > 1) {
   1675  1.23.2.2  he 			error = EINVAL;
   1676  1.23.2.2  he 			break;
   1677  1.23.2.2  he 		}
   1678  1.23.2.2  he 		im6o->im6o_multicast_loop = loop;
   1679  1.23.2.2  he 		break;
   1680  1.23.2.2  he 
   1681  1.23.2.2  he 	case IPV6_JOIN_GROUP:
   1682  1.23.2.2  he 		/*
   1683  1.23.2.2  he 		 * Add a multicast group membership.
   1684  1.23.2.2  he 		 * Group must be a valid IP6 multicast address.
   1685  1.23.2.2  he 		 */
   1686  1.23.2.2  he 		if (m == NULL || m->m_len != sizeof(struct ipv6_mreq)) {
   1687  1.23.2.2  he 			error = EINVAL;
   1688  1.23.2.2  he 			break;
   1689  1.23.2.2  he 		}
   1690  1.23.2.2  he 		mreq = mtod(m, struct ipv6_mreq *);
   1691  1.23.2.2  he 		if (IN6_IS_ADDR_UNSPECIFIED(&mreq->ipv6mr_multiaddr)) {
   1692  1.23.2.2  he 			/*
   1693  1.23.2.2  he 			 * We use the unspecified address to specify to accept
   1694  1.23.2.2  he 			 * all multicast addresses. Only super user is allowed
   1695  1.23.2.2  he 			 * to do this.
   1696  1.23.2.2  he 			 */
   1697  1.23.2.2  he 			if (suser(p->p_ucred, &p->p_acflag)) {
   1698  1.23.2.2  he 				error = EACCES;
   1699  1.23.2.2  he 				break;
   1700  1.23.2.2  he 			}
   1701  1.23.2.2  he 		} else if (!IN6_IS_ADDR_MULTICAST(&mreq->ipv6mr_multiaddr)) {
   1702  1.23.2.2  he 			error = EINVAL;
   1703  1.23.2.2  he 			break;
   1704  1.23.2.2  he 		}
   1705  1.23.2.2  he 
   1706  1.23.2.2  he 		/*
   1707  1.23.2.2  he 		 * If the interface is specified, validate it.
   1708  1.23.2.2  he 		 */
   1709  1.23.2.2  he 		if (mreq->ipv6mr_interface < 0
   1710  1.23.2.2  he 		 || if_index < mreq->ipv6mr_interface) {
   1711  1.23.2.2  he 			error = ENXIO;	/* XXX EINVAL? */
   1712  1.23.2.2  he 			break;
   1713  1.23.2.2  he 		}
   1714  1.23.2.2  he 		/*
   1715  1.23.2.2  he 		 * If no interface was explicitly specified, choose an
   1716  1.23.2.2  he 		 * appropriate one according to the given multicast address.
   1717  1.23.2.2  he 		 */
   1718  1.23.2.2  he 		if (mreq->ipv6mr_interface == 0) {
   1719  1.23.2.2  he 			/*
   1720  1.23.2.2  he 			 * If the multicast address is in node-local scope,
   1721  1.23.2.2  he 			 * the interface should be a loopback interface.
   1722  1.23.2.2  he 			 * Otherwise, look up the routing table for the
   1723  1.23.2.2  he 			 * address, and choose the outgoing interface.
   1724  1.23.2.2  he 			 *   XXX: is it a good approach?
   1725  1.23.2.2  he 			 */
   1726  1.23.2.2  he 			if (IN6_IS_ADDR_MC_NODELOCAL(&mreq->ipv6mr_multiaddr)) {
   1727  1.23.2.2  he 				ifp = &loif[0];
   1728  1.23.2.2  he 			} else {
   1729  1.23.2.2  he 				ro.ro_rt = NULL;
   1730  1.23.2.2  he 				dst = (struct sockaddr_in6 *)&ro.ro_dst;
   1731  1.23.2.2  he 				bzero(dst, sizeof(*dst));
   1732  1.23.2.2  he 				dst->sin6_len = sizeof(struct sockaddr_in6);
   1733  1.23.2.2  he 				dst->sin6_family = AF_INET6;
   1734  1.23.2.2  he 				dst->sin6_addr = mreq->ipv6mr_multiaddr;
   1735  1.23.2.2  he 				rtalloc((struct route *)&ro);
   1736  1.23.2.2  he 				if (ro.ro_rt == NULL) {
   1737  1.23.2.2  he 					error = EADDRNOTAVAIL;
   1738  1.23.2.2  he 					break;
   1739  1.23.2.2  he 				}
   1740  1.23.2.2  he 				ifp = ro.ro_rt->rt_ifp;
   1741  1.23.2.2  he 				rtfree(ro.ro_rt);
   1742  1.23.2.2  he 			}
   1743  1.23.2.2  he 		} else
   1744  1.23.2.2  he 			ifp = ifindex2ifnet[mreq->ipv6mr_interface];
   1745  1.23.2.2  he 
   1746  1.23.2.2  he 		/*
   1747  1.23.2.2  he 		 * See if we found an interface, and confirm that it
   1748  1.23.2.2  he 		 * supports multicast
   1749  1.23.2.2  he 		 */
   1750  1.23.2.2  he 		if (ifp == NULL || (ifp->if_flags & IFF_MULTICAST) == 0) {
   1751  1.23.2.2  he 			error = EADDRNOTAVAIL;
   1752  1.23.2.2  he 			break;
   1753  1.23.2.2  he 		}
   1754  1.23.2.2  he 		/*
   1755  1.23.2.2  he 		 * Put interface index into the multicast address,
   1756  1.23.2.2  he 		 * if the address has link-local scope.
   1757  1.23.2.2  he 		 */
   1758  1.23.2.2  he 		if (IN6_IS_ADDR_MC_LINKLOCAL(&mreq->ipv6mr_multiaddr)) {
   1759  1.23.2.2  he 			mreq->ipv6mr_multiaddr.s6_addr16[1]
   1760  1.23.2.2  he 				= htons(mreq->ipv6mr_interface);
   1761  1.23.2.2  he 		}
   1762  1.23.2.2  he 		/*
   1763  1.23.2.2  he 		 * See if the membership already exists.
   1764  1.23.2.2  he 		 */
   1765  1.23.2.2  he 		for (imm = im6o->im6o_memberships.lh_first;
   1766  1.23.2.2  he 		     imm != NULL; imm = imm->i6mm_chain.le_next)
   1767  1.23.2.2  he 			if (imm->i6mm_maddr->in6m_ifp == ifp &&
   1768  1.23.2.2  he 			    IN6_ARE_ADDR_EQUAL(&imm->i6mm_maddr->in6m_addr,
   1769  1.23.2.2  he 					       &mreq->ipv6mr_multiaddr))
   1770  1.23.2.2  he 				break;
   1771  1.23.2.2  he 		if (imm != NULL) {
   1772  1.23.2.2  he 			error = EADDRINUSE;
   1773  1.23.2.2  he 			break;
   1774  1.23.2.2  he 		}
   1775  1.23.2.2  he 		/*
   1776  1.23.2.2  he 		 * Everything looks good; add a new record to the multicast
   1777  1.23.2.2  he 		 * address list for the given interface.
   1778  1.23.2.2  he 		 */
   1779  1.23.2.2  he 		imm = malloc(sizeof(*imm), M_IPMADDR, M_WAITOK);
   1780  1.23.2.2  he 		if (imm == NULL) {
   1781  1.23.2.2  he 			error = ENOBUFS;
   1782  1.23.2.2  he 			break;
   1783  1.23.2.2  he 		}
   1784  1.23.2.2  he 		if ((imm->i6mm_maddr =
   1785  1.23.2.2  he 		     in6_addmulti(&mreq->ipv6mr_multiaddr, ifp, &error)) == NULL) {
   1786  1.23.2.2  he 			free(imm, M_IPMADDR);
   1787  1.23.2.2  he 			break;
   1788  1.23.2.2  he 		}
   1789  1.23.2.2  he 		LIST_INSERT_HEAD(&im6o->im6o_memberships, imm, i6mm_chain);
   1790  1.23.2.2  he 		break;
   1791  1.23.2.2  he 
   1792  1.23.2.2  he 	case IPV6_LEAVE_GROUP:
   1793  1.23.2.2  he 		/*
   1794  1.23.2.2  he 		 * Drop a multicast group membership.
   1795  1.23.2.2  he 		 * Group must be a valid IP6 multicast address.
   1796  1.23.2.2  he 		 */
   1797  1.23.2.2  he 		if (m == NULL || m->m_len != sizeof(struct ipv6_mreq)) {
   1798  1.23.2.2  he 			error = EINVAL;
   1799  1.23.2.2  he 			break;
   1800  1.23.2.2  he 		}
   1801  1.23.2.2  he 		mreq = mtod(m, struct ipv6_mreq *);
   1802  1.23.2.2  he 		if (IN6_IS_ADDR_UNSPECIFIED(&mreq->ipv6mr_multiaddr)) {
   1803  1.23.2.2  he 			if (suser(p->p_ucred, &p->p_acflag)) {
   1804  1.23.2.2  he 				error = EACCES;
   1805  1.23.2.2  he 				break;
   1806  1.23.2.2  he 			}
   1807  1.23.2.2  he 		} else if (!IN6_IS_ADDR_MULTICAST(&mreq->ipv6mr_multiaddr)) {
   1808  1.23.2.2  he 			error = EINVAL;
   1809  1.23.2.2  he 			break;
   1810  1.23.2.2  he 		}
   1811  1.23.2.2  he 		/*
   1812  1.23.2.2  he 		 * If an interface address was specified, get a pointer
   1813  1.23.2.2  he 		 * to its ifnet structure.
   1814  1.23.2.2  he 		 */
   1815  1.23.2.2  he 		if (mreq->ipv6mr_interface < 0
   1816  1.23.2.2  he 		 || if_index < mreq->ipv6mr_interface) {
   1817  1.23.2.2  he 			error = ENXIO;	/* XXX EINVAL? */
   1818  1.23.2.2  he 			break;
   1819  1.23.2.2  he 		}
   1820  1.23.2.2  he 		ifp = ifindex2ifnet[mreq->ipv6mr_interface];
   1821  1.23.2.2  he 		/*
   1822  1.23.2.2  he 		 * Put interface index into the multicast address,
   1823  1.23.2.2  he 		 * if the address has link-local scope.
   1824  1.23.2.2  he 		 */
   1825  1.23.2.2  he 		if (IN6_IS_ADDR_MC_LINKLOCAL(&mreq->ipv6mr_multiaddr)) {
   1826  1.23.2.2  he 			mreq->ipv6mr_multiaddr.s6_addr16[1]
   1827  1.23.2.2  he 				= htons(mreq->ipv6mr_interface);
   1828  1.23.2.2  he 		}
   1829  1.23.2.2  he 		/*
   1830  1.23.2.2  he 		 * Find the membership in the membership list.
   1831  1.23.2.2  he 		 */
   1832  1.23.2.2  he 		for (imm = im6o->im6o_memberships.lh_first;
   1833  1.23.2.2  he 		     imm != NULL; imm = imm->i6mm_chain.le_next) {
   1834  1.23.2.2  he 			if ((ifp == NULL ||
   1835  1.23.2.2  he 			     imm->i6mm_maddr->in6m_ifp == ifp) &&
   1836  1.23.2.2  he 			    IN6_ARE_ADDR_EQUAL(&imm->i6mm_maddr->in6m_addr,
   1837  1.23.2.2  he 					       &mreq->ipv6mr_multiaddr))
   1838  1.23.2.2  he 				break;
   1839  1.23.2.2  he 		}
   1840  1.23.2.2  he 		if (imm == NULL) {
   1841  1.23.2.2  he 			/* Unable to resolve interface */
   1842  1.23.2.2  he 			error = EADDRNOTAVAIL;
   1843  1.23.2.2  he 			break;
   1844  1.23.2.2  he 		}
   1845  1.23.2.2  he 		/*
   1846  1.23.2.2  he 		 * Give up the multicast address record to which the
   1847  1.23.2.2  he 		 * membership points.
   1848  1.23.2.2  he 		 */
   1849  1.23.2.2  he 		LIST_REMOVE(imm, i6mm_chain);
   1850  1.23.2.2  he 		in6_delmulti(imm->i6mm_maddr);
   1851  1.23.2.2  he 		free(imm, M_IPMADDR);
   1852  1.23.2.2  he 		break;
   1853  1.23.2.2  he 
   1854  1.23.2.2  he 	default:
   1855  1.23.2.2  he 		error = EOPNOTSUPP;
   1856  1.23.2.2  he 		break;
   1857  1.23.2.2  he 	}
   1858  1.23.2.2  he 
   1859  1.23.2.2  he 	/*
   1860  1.23.2.2  he 	 * If all options have default values, no need to keep the mbuf.
   1861  1.23.2.2  he 	 */
   1862  1.23.2.2  he 	if (im6o->im6o_multicast_ifp == NULL &&
   1863  1.23.2.2  he 	    im6o->im6o_multicast_hlim == ip6_defmcasthlim &&
   1864  1.23.2.2  he 	    im6o->im6o_multicast_loop == IPV6_DEFAULT_MULTICAST_LOOP &&
   1865  1.23.2.2  he 	    im6o->im6o_memberships.lh_first == NULL) {
   1866  1.23.2.2  he 		free(*im6op, M_IPMOPTS);
   1867  1.23.2.2  he 		*im6op = NULL;
   1868  1.23.2.2  he 	}
   1869  1.23.2.2  he 
   1870  1.23.2.2  he 	return(error);
   1871  1.23.2.2  he }
   1872  1.23.2.2  he 
   1873  1.23.2.2  he /*
   1874  1.23.2.2  he  * Return the IP6 multicast options in response to user getsockopt().
   1875  1.23.2.2  he  */
   1876  1.23.2.2  he static int
   1877  1.23.2.2  he ip6_getmoptions(optname, im6o, mp)
   1878  1.23.2.2  he 	int optname;
   1879  1.23.2.2  he 	register struct ip6_moptions *im6o;
   1880  1.23.2.2  he 	register struct mbuf **mp;
   1881  1.23.2.2  he {
   1882  1.23.2.2  he 	u_int *hlim, *loop, *ifindex;
   1883  1.23.2.2  he 
   1884  1.23.2.2  he 	*mp = m_get(M_WAIT, MT_SOOPTS);
   1885  1.23.2.2  he 
   1886  1.23.2.2  he 	switch (optname) {
   1887  1.23.2.2  he 
   1888  1.23.2.2  he 	case IPV6_MULTICAST_IF:
   1889  1.23.2.2  he 		ifindex = mtod(*mp, u_int *);
   1890  1.23.2.2  he 		(*mp)->m_len = sizeof(u_int);
   1891  1.23.2.2  he 		if (im6o == NULL || im6o->im6o_multicast_ifp == NULL)
   1892  1.23.2.2  he 			*ifindex = 0;
   1893  1.23.2.2  he 		else
   1894  1.23.2.2  he 			*ifindex = im6o->im6o_multicast_ifp->if_index;
   1895  1.23.2.2  he 		return(0);
   1896  1.23.2.2  he 
   1897  1.23.2.2  he 	case IPV6_MULTICAST_HOPS:
   1898  1.23.2.2  he 		hlim = mtod(*mp, u_int *);
   1899  1.23.2.2  he 		(*mp)->m_len = sizeof(u_int);
   1900  1.23.2.2  he 		if (im6o == NULL)
   1901  1.23.2.2  he 			*hlim = ip6_defmcasthlim;
   1902  1.23.2.2  he 		else
   1903  1.23.2.2  he 			*hlim = im6o->im6o_multicast_hlim;
   1904  1.23.2.2  he 		return(0);
   1905  1.23.2.2  he 
   1906  1.23.2.2  he 	case IPV6_MULTICAST_LOOP:
   1907  1.23.2.2  he 		loop = mtod(*mp, u_int *);
   1908  1.23.2.2  he 		(*mp)->m_len = sizeof(u_int);
   1909  1.23.2.2  he 		if (im6o == NULL)
   1910  1.23.2.2  he 			*loop = ip6_defmcasthlim;
   1911  1.23.2.2  he 		else
   1912  1.23.2.2  he 			*loop = im6o->im6o_multicast_loop;
   1913  1.23.2.2  he 		return(0);
   1914  1.23.2.2  he 
   1915  1.23.2.2  he 	default:
   1916  1.23.2.2  he 		return(EOPNOTSUPP);
   1917  1.23.2.2  he 	}
   1918  1.23.2.2  he }
   1919  1.23.2.2  he 
   1920  1.23.2.2  he /*
   1921  1.23.2.2  he  * Discard the IP6 multicast options.
   1922  1.23.2.2  he  */
   1923  1.23.2.2  he void
   1924  1.23.2.2  he ip6_freemoptions(im6o)
   1925  1.23.2.2  he 	register struct ip6_moptions *im6o;
   1926  1.23.2.2  he {
   1927  1.23.2.2  he 	struct in6_multi_mship *imm;
   1928  1.23.2.2  he 
   1929  1.23.2.2  he 	if (im6o == NULL)
   1930  1.23.2.2  he 		return;
   1931  1.23.2.2  he 
   1932  1.23.2.2  he 	while ((imm = im6o->im6o_memberships.lh_first) != NULL) {
   1933  1.23.2.2  he 		LIST_REMOVE(imm, i6mm_chain);
   1934  1.23.2.2  he 		if (imm->i6mm_maddr)
   1935  1.23.2.2  he 			in6_delmulti(imm->i6mm_maddr);
   1936  1.23.2.2  he 		free(imm, M_IPMADDR);
   1937  1.23.2.2  he 	}
   1938  1.23.2.2  he 	free(im6o, M_IPMOPTS);
   1939  1.23.2.2  he }
   1940  1.23.2.2  he 
   1941  1.23.2.2  he /*
   1942  1.23.2.2  he  * Set IPv6 outgoing packet options based on advanced API.
   1943  1.23.2.2  he  */
   1944  1.23.2.2  he int
   1945  1.23.2.2  he ip6_setpktoptions(control, opt, priv)
   1946  1.23.2.2  he 	struct mbuf *control;
   1947  1.23.2.2  he 	struct ip6_pktopts *opt;
   1948  1.23.2.2  he 	int priv;
   1949  1.23.2.2  he {
   1950  1.23.2.2  he 	register struct cmsghdr *cm = 0;
   1951  1.23.2.2  he 
   1952  1.23.2.2  he 	if (control == 0 || opt == 0)
   1953  1.23.2.2  he 		return(EINVAL);
   1954  1.23.2.2  he 
   1955  1.23.2.2  he 	bzero(opt, sizeof(*opt));
   1956  1.23.2.2  he 	opt->ip6po_hlim = -1; /* -1 means to use default hop limit */
   1957  1.23.2.2  he 
   1958  1.23.2.2  he 	/*
   1959  1.23.2.2  he 	 * XXX: Currently, we assume all the optional information is stored
   1960  1.23.2.2  he 	 * in a single mbuf.
   1961  1.23.2.2  he 	 */
   1962  1.23.2.2  he 	if (control->m_next)
   1963  1.23.2.2  he 		return(EINVAL);
   1964  1.23.2.2  he 
   1965  1.23.2.2  he 	opt->ip6po_m = control;
   1966  1.23.2.2  he 
   1967  1.23.2.2  he 	for (; control->m_len; control->m_data += CMSG_ALIGN(cm->cmsg_len),
   1968  1.23.2.2  he 		     control->m_len -= CMSG_ALIGN(cm->cmsg_len)) {
   1969  1.23.2.2  he 		cm = mtod(control, struct cmsghdr *);
   1970  1.23.2.2  he 		if (cm->cmsg_len == 0 || cm->cmsg_len > control->m_len)
   1971  1.23.2.2  he 			return(EINVAL);
   1972  1.23.2.2  he 		if (cm->cmsg_level != IPPROTO_IPV6)
   1973  1.23.2.2  he 			continue;
   1974  1.23.2.2  he 
   1975  1.23.2.2  he 		switch(cm->cmsg_type) {
   1976  1.23.2.2  he 		case IPV6_PKTINFO:
   1977  1.23.2.2  he 			if (cm->cmsg_len != CMSG_LEN(sizeof(struct in6_pktinfo)))
   1978  1.23.2.2  he 				return(EINVAL);
   1979  1.23.2.2  he 			opt->ip6po_pktinfo = (struct in6_pktinfo *)CMSG_DATA(cm);
   1980  1.23.2.2  he 			if (opt->ip6po_pktinfo->ipi6_ifindex &&
   1981  1.23.2.2  he 			    IN6_IS_ADDR_LINKLOCAL(&opt->ip6po_pktinfo->ipi6_addr))
   1982  1.23.2.2  he 				opt->ip6po_pktinfo->ipi6_addr.s6_addr16[1] =
   1983  1.23.2.2  he 					htons(opt->ip6po_pktinfo->ipi6_ifindex);
   1984  1.23.2.2  he 
   1985  1.23.2.2  he 			if (opt->ip6po_pktinfo->ipi6_ifindex > if_index
   1986  1.23.2.2  he 			 || opt->ip6po_pktinfo->ipi6_ifindex < 0) {
   1987  1.23.2.2  he 				return(ENXIO);
   1988  1.23.2.2  he 			}
   1989  1.23.2.2  he 
   1990  1.23.2.2  he 			/*
   1991  1.23.2.2  he 			 * Check if the requested source address is indeed a
   1992  1.23.2.2  he 			 * unicast address assigned to the node.
   1993  1.23.2.2  he 			 */
   1994  1.23.2.2  he 			if (!IN6_IS_ADDR_UNSPECIFIED(&opt->ip6po_pktinfo->ipi6_addr)) {
   1995  1.23.2.2  he 				struct ifaddr *ia;
   1996  1.23.2.2  he 				struct sockaddr_in6 sin6;
   1997  1.23.2.2  he 
   1998  1.23.2.2  he 				bzero(&sin6, sizeof(sin6));
   1999  1.23.2.2  he 				sin6.sin6_len = sizeof(sin6);
   2000  1.23.2.2  he 				sin6.sin6_family = AF_INET6;
   2001  1.23.2.2  he 				sin6.sin6_addr =
   2002  1.23.2.2  he 					opt->ip6po_pktinfo->ipi6_addr;
   2003  1.23.2.2  he 				ia = ifa_ifwithaddr(sin6tosa(&sin6));
   2004  1.23.2.2  he 				if (ia == NULL ||
   2005  1.23.2.2  he 				    (opt->ip6po_pktinfo->ipi6_ifindex &&
   2006  1.23.2.2  he 				     (ia->ifa_ifp->if_index !=
   2007  1.23.2.2  he 				      opt->ip6po_pktinfo->ipi6_ifindex))) {
   2008  1.23.2.2  he 					return(EADDRNOTAVAIL);
   2009  1.23.2.2  he 				}
   2010  1.23.2.2  he 				/*
   2011  1.23.2.2  he 				 * Check if the requested source address is
   2012  1.23.2.2  he 				 * indeed a unicast address assigned to the
   2013  1.23.2.2  he 				 * node.
   2014  1.23.2.2  he 				 */
   2015  1.23.2.2  he 				if (IN6_IS_ADDR_MULTICAST(&opt->ip6po_pktinfo->ipi6_addr))
   2016  1.23.2.2  he 					return(EADDRNOTAVAIL);
   2017  1.23.2.2  he 			}
   2018  1.23.2.2  he 			break;
   2019  1.23.2.2  he 
   2020  1.23.2.2  he 		case IPV6_HOPLIMIT:
   2021  1.23.2.2  he 			if (cm->cmsg_len != CMSG_LEN(sizeof(int)))
   2022  1.23.2.2  he 				return(EINVAL);
   2023  1.23.2.2  he 
   2024  1.23.2.2  he 			opt->ip6po_hlim = *(int *)CMSG_DATA(cm);
   2025  1.23.2.2  he 			if (opt->ip6po_hlim < -1 || opt->ip6po_hlim > 255)
   2026  1.23.2.2  he 				return(EINVAL);
   2027  1.23.2.2  he 			break;
   2028  1.23.2.2  he 
   2029  1.23.2.2  he 		case IPV6_NEXTHOP:
   2030  1.23.2.2  he 			if (!priv)
   2031  1.23.2.2  he 				return(EPERM);
   2032  1.23.2.2  he 
   2033  1.23.2.2  he 			if (cm->cmsg_len < sizeof(u_char) ||
   2034  1.23.2.2  he 			    /* check if cmsg_len is large enough for sa_len */
   2035  1.23.2.2  he 			    cm->cmsg_len < CMSG_LEN(*CMSG_DATA(cm)))
   2036  1.23.2.2  he 				return(EINVAL);
   2037  1.23.2.2  he 
   2038  1.23.2.2  he 			opt->ip6po_nexthop = (struct sockaddr *)CMSG_DATA(cm);
   2039  1.23.2.2  he 
   2040  1.23.2.2  he 			break;
   2041  1.23.2.2  he 
   2042  1.23.2.2  he 		case IPV6_HOPOPTS:
   2043  1.23.2.2  he 			if (cm->cmsg_len < CMSG_LEN(sizeof(struct ip6_hbh)))
   2044  1.23.2.2  he 				return(EINVAL);
   2045  1.23.2.2  he 			opt->ip6po_hbh = (struct ip6_hbh *)CMSG_DATA(cm);
   2046  1.23.2.2  he 			if (cm->cmsg_len !=
   2047  1.23.2.2  he 			    CMSG_LEN((opt->ip6po_hbh->ip6h_len + 1) << 3))
   2048  1.23.2.2  he 				return(EINVAL);
   2049  1.23.2.2  he 			break;
   2050  1.23.2.2  he 
   2051  1.23.2.2  he 		case IPV6_DSTOPTS:
   2052  1.23.2.2  he 			if (cm->cmsg_len < CMSG_LEN(sizeof(struct ip6_dest)))
   2053  1.23.2.2  he 				return(EINVAL);
   2054  1.23.2.2  he 
   2055  1.23.2.2  he 			/*
   2056  1.23.2.2  he 			 * If there is no routing header yet, the destination
   2057  1.23.2.2  he 			 * options header should be put on the 1st part.
   2058  1.23.2.2  he 			 * Otherwise, the header should be on the 2nd part.
   2059  1.23.2.2  he 			 * (See RFC 2460, section 4.1)
   2060  1.23.2.2  he 			 */
   2061  1.23.2.2  he 			if (opt->ip6po_rthdr == NULL) {
   2062  1.23.2.2  he 				opt->ip6po_dest1 =
   2063  1.23.2.2  he 					(struct ip6_dest *)CMSG_DATA(cm);
   2064  1.23.2.2  he 				if (cm->cmsg_len !=
   2065  1.23.2.2  he 				    CMSG_LEN((opt->ip6po_dest1->ip6d_len + 1)
   2066  1.23.2.2  he 					     << 3))
   2067  1.23.2.2  he 					return(EINVAL);
   2068  1.23.2.2  he 			}
   2069  1.23.2.2  he 			else {
   2070  1.23.2.2  he 				opt->ip6po_dest2 =
   2071  1.23.2.2  he 					(struct ip6_dest *)CMSG_DATA(cm);
   2072  1.23.2.2  he 				if (cm->cmsg_len !=
   2073  1.23.2.2  he 				    CMSG_LEN((opt->ip6po_dest2->ip6d_len + 1)
   2074  1.23.2.2  he 					     << 3))
   2075  1.23.2.2  he 					return(EINVAL);
   2076  1.23.2.2  he 			}
   2077  1.23.2.2  he 			break;
   2078  1.23.2.2  he 
   2079  1.23.2.2  he 		case IPV6_RTHDR:
   2080  1.23.2.2  he 			if (cm->cmsg_len < CMSG_LEN(sizeof(struct ip6_rthdr)))
   2081  1.23.2.2  he 				return(EINVAL);
   2082  1.23.2.2  he 			opt->ip6po_rthdr = (struct ip6_rthdr *)CMSG_DATA(cm);
   2083  1.23.2.2  he 			if (cm->cmsg_len !=
   2084  1.23.2.2  he 			    CMSG_LEN((opt->ip6po_rthdr->ip6r_len + 1) << 3))
   2085  1.23.2.2  he 				return(EINVAL);
   2086  1.23.2.2  he 			switch(opt->ip6po_rthdr->ip6r_type) {
   2087  1.23.2.2  he 			case IPV6_RTHDR_TYPE_0:
   2088  1.23.2.2  he 				if (opt->ip6po_rthdr->ip6r_segleft == 0)
   2089  1.23.2.2  he 					return(EINVAL);
   2090  1.23.2.2  he 				break;
   2091  1.23.2.2  he 			default:
   2092  1.23.2.2  he 				return(EINVAL);
   2093  1.23.2.2  he 			}
   2094  1.23.2.2  he 			break;
   2095  1.23.2.2  he 
   2096  1.23.2.2  he 		default:
   2097  1.23.2.2  he 			return(ENOPROTOOPT);
   2098  1.23.2.2  he 		}
   2099  1.23.2.2  he 	}
   2100  1.23.2.2  he 
   2101  1.23.2.2  he 	return(0);
   2102  1.23.2.2  he }
   2103  1.23.2.2  he 
   2104  1.23.2.2  he /*
   2105  1.23.2.2  he  * Routine called from ip6_output() to loop back a copy of an IP6 multicast
   2106  1.23.2.2  he  * packet to the input queue of a specified interface.  Note that this
   2107  1.23.2.2  he  * calls the output routine of the loopback "driver", but with an interface
   2108  1.23.2.2  he  * pointer that might NOT be &loif -- easier than replicating that code here.
   2109  1.23.2.2  he  */
   2110  1.23.2.2  he void
   2111  1.23.2.2  he ip6_mloopback(ifp, m, dst)
   2112  1.23.2.2  he 	struct ifnet *ifp;
   2113  1.23.2.2  he 	register struct mbuf *m;
   2114  1.23.2.2  he 	register struct sockaddr_in6 *dst;
   2115  1.23.2.2  he {
   2116  1.23.2.2  he 	struct mbuf *copym;
   2117  1.23.2.2  he 	struct ip6_hdr *ip6;
   2118  1.23.2.2  he 
   2119  1.23.2.2  he 	copym = m_copy(m, 0, M_COPYALL);
   2120  1.23.2.2  he 	if (copym == NULL)
   2121  1.23.2.2  he 		return;
   2122  1.23.2.2  he 
   2123  1.23.2.2  he 	/*
   2124  1.23.2.2  he 	 * Make sure to deep-copy IPv6 header portion in case the data
   2125  1.23.2.2  he 	 * is in an mbuf cluster, so that we can safely override the IPv6
   2126  1.23.2.2  he 	 * header portion later.
   2127  1.23.2.2  he 	 */
   2128  1.23.2.2  he 	if ((copym->m_flags & M_EXT) != 0 ||
   2129  1.23.2.2  he 	    copym->m_len < sizeof(struct ip6_hdr)) {
   2130  1.23.2.2  he 		copym = m_pullup(copym, sizeof(struct ip6_hdr));
   2131  1.23.2.2  he 		if (copym == NULL)
   2132  1.23.2.2  he 			return;
   2133  1.23.2.2  he 	}
   2134  1.23.2.2  he 
   2135  1.23.2.2  he #ifdef DIAGNOSTIC
   2136  1.23.2.2  he 	if (copym->m_len < sizeof(*ip6)) {
   2137  1.23.2.2  he 		m_freem(copym);
   2138  1.23.2.2  he 		return;
   2139  1.23.2.2  he 	}
   2140  1.23.2.2  he #endif
   2141  1.23.2.2  he 
   2142  1.23.2.2  he #ifndef FAKE_LOOPBACK_IF
   2143  1.23.2.2  he 	if ((ifp->if_flags & IFF_LOOPBACK) == 0)
   2144  1.23.2.2  he #else
   2145  1.23.2.2  he 	if (1)
   2146  1.23.2.2  he #endif
   2147  1.23.2.2  he 	{
   2148  1.23.2.2  he 		ip6 = mtod(copym, struct ip6_hdr *);
   2149  1.23.2.2  he 		if (IN6_IS_SCOPE_LINKLOCAL(&ip6->ip6_src))
   2150  1.23.2.2  he 			ip6->ip6_src.s6_addr16[1] = 0;
   2151  1.23.2.2  he 		if (IN6_IS_SCOPE_LINKLOCAL(&ip6->ip6_dst))
   2152  1.23.2.2  he 			ip6->ip6_dst.s6_addr16[1] = 0;
   2153  1.23.2.2  he 	}
   2154  1.23.2.2  he 
   2155  1.23.2.2  he 	(void)looutput(ifp, copym, (struct sockaddr *)dst, NULL);
   2156  1.23.2.2  he }
   2157  1.23.2.2  he 
   2158  1.23.2.2  he /*
   2159  1.23.2.2  he  * Chop IPv6 header off from the payload.
   2160  1.23.2.2  he  */
   2161  1.23.2.2  he static int
   2162  1.23.2.2  he ip6_splithdr(m, exthdrs)
   2163  1.23.2.2  he 	struct mbuf *m;
   2164  1.23.2.2  he 	struct ip6_exthdrs *exthdrs;
   2165  1.23.2.2  he {
   2166  1.23.2.2  he 	struct mbuf *mh;
   2167  1.23.2.2  he 	struct ip6_hdr *ip6;
   2168  1.23.2.2  he 
   2169  1.23.2.2  he 	ip6 = mtod(m, struct ip6_hdr *);
   2170  1.23.2.2  he 	if (m->m_len > sizeof(*ip6)) {
   2171  1.23.2.2  he 		MGETHDR(mh, M_DONTWAIT, MT_HEADER);
   2172  1.23.2.2  he 		if (mh == 0) {
   2173  1.23.2.2  he 			m_freem(m);
   2174  1.23.2.2  he 			return ENOBUFS;
   2175  1.23.2.2  he 		}
   2176  1.23.2.2  he 		M_COPY_PKTHDR(mh, m);
   2177  1.23.2.2  he 		MH_ALIGN(mh, sizeof(*ip6));
   2178  1.23.2.2  he 		m->m_flags &= ~M_PKTHDR;
   2179  1.23.2.2  he 		m->m_len -= sizeof(*ip6);
   2180  1.23.2.2  he 		m->m_data += sizeof(*ip6);
   2181  1.23.2.2  he 		mh->m_next = m;
   2182  1.23.2.2  he 		m = mh;
   2183  1.23.2.2  he 		m->m_len = sizeof(*ip6);
   2184  1.23.2.2  he 		bcopy((caddr_t)ip6, mtod(m, caddr_t), sizeof(*ip6));
   2185  1.23.2.2  he 	}
   2186  1.23.2.2  he 	exthdrs->ip6e_ip6 = m;
   2187  1.23.2.2  he 	return 0;
   2188  1.23.2.2  he }
   2189  1.23.2.2  he 
   2190  1.23.2.2  he /*
   2191  1.23.2.2  he  * Compute IPv6 extension header length.
   2192  1.23.2.2  he  */
   2193  1.23.2.2  he int
   2194  1.23.2.2  he ip6_optlen(in6p)
   2195  1.23.2.2  he 	struct in6pcb *in6p;
   2196  1.23.2.2  he {
   2197  1.23.2.2  he 	int len;
   2198  1.23.2.2  he 
   2199  1.23.2.2  he 	if (!in6p->in6p_outputopts)
   2200  1.23.2.2  he 		return 0;
   2201  1.23.2.2  he 
   2202  1.23.2.2  he 	len = 0;
   2203  1.23.2.2  he #define elen(x) \
   2204  1.23.2.2  he     (((struct ip6_ext *)(x)) ? (((struct ip6_ext *)(x))->ip6e_len + 1) << 3 : 0)
   2205  1.23.2.2  he 
   2206  1.23.2.2  he 	len += elen(in6p->in6p_outputopts->ip6po_hbh);
   2207  1.23.2.2  he 	len += elen(in6p->in6p_outputopts->ip6po_dest1);
   2208  1.23.2.2  he 	len += elen(in6p->in6p_outputopts->ip6po_rthdr);
   2209  1.23.2.2  he 	len += elen(in6p->in6p_outputopts->ip6po_dest2);
   2210  1.23.2.2  he 	return len;
   2211  1.23.2.2  he #undef elen
   2212  1.23.2.2  he }
   2213