ip_output.c revision 1.166 1 1.166 dyoung /* $NetBSD: ip_output.c,v 1.166 2006/11/13 05:13:42 dyoung Exp $ */
2 1.61 itojun
3 1.61 itojun /*
4 1.61 itojun * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
5 1.61 itojun * All rights reserved.
6 1.97 itojun *
7 1.61 itojun * Redistribution and use in source and binary forms, with or without
8 1.61 itojun * modification, are permitted provided that the following conditions
9 1.61 itojun * are met:
10 1.61 itojun * 1. Redistributions of source code must retain the above copyright
11 1.61 itojun * notice, this list of conditions and the following disclaimer.
12 1.61 itojun * 2. Redistributions in binary form must reproduce the above copyright
13 1.61 itojun * notice, this list of conditions and the following disclaimer in the
14 1.61 itojun * documentation and/or other materials provided with the distribution.
15 1.61 itojun * 3. Neither the name of the project nor the names of its contributors
16 1.61 itojun * may be used to endorse or promote products derived from this software
17 1.61 itojun * without specific prior written permission.
18 1.97 itojun *
19 1.61 itojun * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
20 1.61 itojun * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 1.61 itojun * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 1.61 itojun * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
23 1.61 itojun * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 1.61 itojun * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 1.61 itojun * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 1.61 itojun * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 1.61 itojun * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 1.61 itojun * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 1.61 itojun * SUCH DAMAGE.
30 1.61 itojun */
31 1.54 thorpej
32 1.54 thorpej /*-
33 1.54 thorpej * Copyright (c) 1998 The NetBSD Foundation, Inc.
34 1.54 thorpej * All rights reserved.
35 1.54 thorpej *
36 1.54 thorpej * This code is derived from software contributed to The NetBSD Foundation
37 1.54 thorpej * by Public Access Networks Corporation ("Panix"). It was developed under
38 1.54 thorpej * contract to Panix by Eric Haszlakiewicz and Thor Lancelot Simon.
39 1.54 thorpej *
40 1.54 thorpej * Redistribution and use in source and binary forms, with or without
41 1.54 thorpej * modification, are permitted provided that the following conditions
42 1.54 thorpej * are met:
43 1.54 thorpej * 1. Redistributions of source code must retain the above copyright
44 1.54 thorpej * notice, this list of conditions and the following disclaimer.
45 1.54 thorpej * 2. Redistributions in binary form must reproduce the above copyright
46 1.54 thorpej * notice, this list of conditions and the following disclaimer in the
47 1.54 thorpej * documentation and/or other materials provided with the distribution.
48 1.54 thorpej * 3. All advertising materials mentioning features or use of this software
49 1.54 thorpej * must display the following acknowledgement:
50 1.54 thorpej * This product includes software developed by the NetBSD
51 1.54 thorpej * Foundation, Inc. and its contributors.
52 1.54 thorpej * 4. Neither the name of The NetBSD Foundation nor the names of its
53 1.54 thorpej * contributors may be used to endorse or promote products derived
54 1.54 thorpej * from this software without specific prior written permission.
55 1.54 thorpej *
56 1.54 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
57 1.54 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
58 1.54 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
59 1.54 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
60 1.54 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
61 1.54 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
62 1.54 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
63 1.54 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
64 1.54 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
65 1.54 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
66 1.54 thorpej * POSSIBILITY OF SUCH DAMAGE.
67 1.54 thorpej */
68 1.19 cgd
69 1.1 cgd /*
70 1.18 mycroft * Copyright (c) 1982, 1986, 1988, 1990, 1993
71 1.18 mycroft * The Regents of the University of California. All rights reserved.
72 1.1 cgd *
73 1.1 cgd * Redistribution and use in source and binary forms, with or without
74 1.1 cgd * modification, are permitted provided that the following conditions
75 1.1 cgd * are met:
76 1.1 cgd * 1. Redistributions of source code must retain the above copyright
77 1.1 cgd * notice, this list of conditions and the following disclaimer.
78 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
79 1.1 cgd * notice, this list of conditions and the following disclaimer in the
80 1.1 cgd * documentation and/or other materials provided with the distribution.
81 1.108 agc * 3. Neither the name of the University nor the names of its contributors
82 1.1 cgd * may be used to endorse or promote products derived from this software
83 1.1 cgd * without specific prior written permission.
84 1.1 cgd *
85 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
86 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
87 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
88 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
89 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
90 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
91 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
92 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
93 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
94 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
95 1.1 cgd * SUCH DAMAGE.
96 1.1 cgd *
97 1.19 cgd * @(#)ip_output.c 8.3 (Berkeley) 1/21/94
98 1.1 cgd */
99 1.89 lukem
100 1.89 lukem #include <sys/cdefs.h>
101 1.166 dyoung __KERNEL_RCSID(0, "$NetBSD: ip_output.c,v 1.166 2006/11/13 05:13:42 dyoung Exp $");
102 1.42 scottr
103 1.50 mrg #include "opt_pfil_hooks.h"
104 1.128 jonathan #include "opt_inet.h"
105 1.62 thorpej #include "opt_ipsec.h"
106 1.42 scottr #include "opt_mrouting.h"
107 1.1 cgd
108 1.8 mycroft #include <sys/param.h>
109 1.8 mycroft #include <sys/malloc.h>
110 1.8 mycroft #include <sys/mbuf.h>
111 1.8 mycroft #include <sys/errno.h>
112 1.8 mycroft #include <sys/protosw.h>
113 1.8 mycroft #include <sys/socket.h>
114 1.8 mycroft #include <sys/socketvar.h>
115 1.162 christos #include <sys/kauth.h>
116 1.118 itojun #ifdef FAST_IPSEC
117 1.118 itojun #include <sys/domain.h>
118 1.118 itojun #endif
119 1.28 christos #include <sys/systm.h>
120 1.61 itojun #include <sys/proc.h>
121 1.61 itojun
122 1.8 mycroft #include <net/if.h>
123 1.8 mycroft #include <net/route.h>
124 1.38 mrg #include <net/pfil.h>
125 1.1 cgd
126 1.8 mycroft #include <netinet/in.h>
127 1.8 mycroft #include <netinet/in_systm.h>
128 1.8 mycroft #include <netinet/ip.h>
129 1.8 mycroft #include <netinet/in_pcb.h>
130 1.8 mycroft #include <netinet/in_var.h>
131 1.8 mycroft #include <netinet/ip_var.h>
132 1.152 yamt #include <netinet/in_offload.h>
133 1.72 jdolecek
134 1.72 jdolecek #ifdef MROUTING
135 1.72 jdolecek #include <netinet/ip_mroute.h>
136 1.72 jdolecek #endif
137 1.32 mrg
138 1.28 christos #include <machine/stdarg.h>
139 1.28 christos
140 1.61 itojun #ifdef IPSEC
141 1.61 itojun #include <netinet6/ipsec.h>
142 1.61 itojun #include <netkey/key.h>
143 1.61 itojun #include <netkey/key_debug.h>
144 1.61 itojun #endif /*IPSEC*/
145 1.61 itojun
146 1.109 jonathan #ifdef FAST_IPSEC
147 1.109 jonathan #include <netipsec/ipsec.h>
148 1.109 jonathan #include <netipsec/key.h>
149 1.109 jonathan #include <netipsec/xform.h>
150 1.109 jonathan #endif /* FAST_IPSEC*/
151 1.109 jonathan
152 1.160 christos #ifdef IPSEC_NAT_T
153 1.160 christos #include <netinet/udp.h>
154 1.160 christos #endif
155 1.160 christos
156 1.139 perry static struct mbuf *ip_insertoptions(struct mbuf *, struct mbuf *, int *);
157 1.139 perry static struct ifnet *ip_multicast_if(struct in_addr *, int *);
158 1.139 perry static void ip_mloopback(struct ifnet *, struct mbuf *, struct sockaddr_in *);
159 1.156 christos static int ip_getoptval(struct mbuf *, u_int8_t *, u_int);
160 1.1 cgd
161 1.78 thorpej #ifdef PFIL_HOOKS
162 1.78 thorpej extern struct pfil_head inet_pfil_hook; /* XXX */
163 1.78 thorpej #endif
164 1.78 thorpej
165 1.151 yamt int ip_do_loopback_cksum = 0;
166 1.151 yamt
167 1.151 yamt #define IN_NEED_CHECKSUM(ifp, csum_flags) \
168 1.151 yamt (__predict_true(((ifp)->if_flags & IFF_LOOPBACK) == 0 || \
169 1.151 yamt (((csum_flags) & M_CSUM_UDPv4) != 0 && udp_do_loopback_cksum) || \
170 1.151 yamt (((csum_flags) & M_CSUM_TCPv4) != 0 && tcp_do_loopback_cksum) || \
171 1.151 yamt (((csum_flags) & M_CSUM_IPv4) != 0 && ip_do_loopback_cksum)))
172 1.151 yamt
173 1.152 yamt struct ip_tso_output_args {
174 1.152 yamt struct ifnet *ifp;
175 1.152 yamt struct sockaddr *sa;
176 1.152 yamt struct rtentry *rt;
177 1.152 yamt };
178 1.152 yamt
179 1.152 yamt static int ip_tso_output_callback(void *, struct mbuf *);
180 1.152 yamt static int ip_tso_output(struct ifnet *, struct mbuf *, struct sockaddr *,
181 1.152 yamt struct rtentry *);
182 1.152 yamt
183 1.152 yamt static int
184 1.152 yamt ip_tso_output_callback(void *vp, struct mbuf *m)
185 1.152 yamt {
186 1.152 yamt struct ip_tso_output_args *args = vp;
187 1.152 yamt struct ifnet *ifp = args->ifp;
188 1.152 yamt
189 1.152 yamt return (*ifp->if_output)(ifp, m, args->sa, args->rt);
190 1.152 yamt }
191 1.152 yamt
192 1.152 yamt static int
193 1.152 yamt ip_tso_output(struct ifnet *ifp, struct mbuf *m, struct sockaddr *sa,
194 1.152 yamt struct rtentry *rt)
195 1.152 yamt {
196 1.152 yamt struct ip_tso_output_args args;
197 1.152 yamt
198 1.152 yamt args.ifp = ifp;
199 1.152 yamt args.sa = sa;
200 1.152 yamt args.rt = rt;
201 1.152 yamt
202 1.152 yamt return tcp4_segment(m, ip_tso_output_callback, &args);
203 1.152 yamt }
204 1.152 yamt
205 1.1 cgd /*
206 1.1 cgd * IP output. The packet in mbuf chain m contains a skeletal IP
207 1.1 cgd * header (with len, off, ttl, proto, tos, src, dst).
208 1.1 cgd * The mbuf chain containing the packet will be freed.
209 1.1 cgd * The mbuf opt, if present, will not be freed.
210 1.1 cgd */
211 1.12 mycroft int
212 1.28 christos ip_output(struct mbuf *m0, ...)
213 1.1 cgd {
214 1.110 itojun struct ip *ip;
215 1.71 augustss struct ifnet *ifp;
216 1.71 augustss struct mbuf *m = m0;
217 1.71 augustss int hlen = sizeof (struct ip);
218 1.110 itojun int len, error = 0;
219 1.1 cgd struct route iproute;
220 1.1 cgd struct sockaddr_in *dst;
221 1.1 cgd struct in_ifaddr *ia;
222 1.166 dyoung struct ifaddr *xifa;
223 1.28 christos struct mbuf *opt;
224 1.28 christos struct route *ro;
225 1.86 thorpej int flags, sw_csum;
226 1.40 matt int *mtu_p;
227 1.96 itojun u_long mtu;
228 1.28 christos struct ip_moptions *imo;
229 1.116 itojun struct socket *so;
230 1.28 christos va_list ap;
231 1.141 manu #ifdef IPSEC_NAT_T
232 1.141 manu int natt_frag = 0;
233 1.141 manu #endif
234 1.160 christos #ifdef IPSEC
235 1.160 christos struct secpolicy *sp = NULL;
236 1.61 itojun #endif /*IPSEC*/
237 1.109 jonathan #ifdef FAST_IPSEC
238 1.116 itojun struct inpcb *inp;
239 1.109 jonathan struct m_tag *mtag;
240 1.109 jonathan struct secpolicy *sp = NULL;
241 1.109 jonathan struct tdb_ident *tdbi;
242 1.109 jonathan int s;
243 1.109 jonathan #endif
244 1.79 thorpej u_int16_t ip_len;
245 1.28 christos
246 1.102 darrenr len = 0;
247 1.28 christos va_start(ap, m0);
248 1.28 christos opt = va_arg(ap, struct mbuf *);
249 1.28 christos ro = va_arg(ap, struct route *);
250 1.28 christos flags = va_arg(ap, int);
251 1.28 christos imo = va_arg(ap, struct ip_moptions *);
252 1.116 itojun so = va_arg(ap, struct socket *);
253 1.40 matt if (flags & IP_RETURNMTU)
254 1.40 matt mtu_p = va_arg(ap, int *);
255 1.40 matt else
256 1.40 matt mtu_p = NULL;
257 1.28 christos va_end(ap);
258 1.28 christos
259 1.103 matt MCLAIM(m, &ip_tx_mowner);
260 1.116 itojun #ifdef FAST_IPSEC
261 1.121 jonathan if (so != NULL && so->so_proto->pr_domain->dom_family == AF_INET)
262 1.116 itojun inp = (struct inpcb *)so->so_pcb;
263 1.116 itojun else
264 1.116 itojun inp = NULL;
265 1.130 thorpej #endif /* FAST_IPSEC */
266 1.61 itojun
267 1.1 cgd #ifdef DIAGNOSTIC
268 1.1 cgd if ((m->m_flags & M_PKTHDR) == 0)
269 1.163 tron panic("ip_output: no HDR");
270 1.163 tron
271 1.164 tron if ((m->m_pkthdr.csum_flags & (M_CSUM_TCPv6|M_CSUM_UDPv6)) != 0) {
272 1.163 tron panic("ip_output: IPv6 checksum offload flags: %d",
273 1.163 tron m->m_pkthdr.csum_flags);
274 1.163 tron }
275 1.163 tron
276 1.163 tron if ((m->m_pkthdr.csum_flags & (M_CSUM_TCPv4|M_CSUM_UDPv4)) ==
277 1.163 tron (M_CSUM_TCPv4|M_CSUM_UDPv4)) {
278 1.163 tron panic("ip_output: conflicting checksum offload flags: %d",
279 1.163 tron m->m_pkthdr.csum_flags);
280 1.163 tron }
281 1.1 cgd #endif
282 1.1 cgd if (opt) {
283 1.1 cgd m = ip_insertoptions(m, opt, &len);
284 1.102 darrenr if (len >= sizeof(struct ip))
285 1.102 darrenr hlen = len;
286 1.1 cgd }
287 1.1 cgd ip = mtod(m, struct ip *);
288 1.1 cgd /*
289 1.1 cgd * Fill in IP header.
290 1.1 cgd */
291 1.18 mycroft if ((flags & (IP_FORWARDING|IP_RAWOUTPUT)) == 0) {
292 1.1 cgd ip->ip_v = IPVERSION;
293 1.100 itojun ip->ip_off = htons(0);
294 1.150 yamt if ((m->m_pkthdr.csum_flags & M_CSUM_TSOv4) == 0) {
295 1.150 yamt ip->ip_id = ip_newid();
296 1.150 yamt } else {
297 1.150 yamt
298 1.150 yamt /*
299 1.150 yamt * TSO capable interfaces (typically?) increment
300 1.150 yamt * ip_id for each segment.
301 1.150 yamt * "allocate" enough ids here to increase the chance
302 1.150 yamt * for them to be unique.
303 1.150 yamt *
304 1.150 yamt * note that the following calculation is not
305 1.150 yamt * needed to be precise. wasting some ip_id is fine.
306 1.150 yamt */
307 1.150 yamt
308 1.150 yamt unsigned int segsz = m->m_pkthdr.segsz;
309 1.150 yamt unsigned int datasz = ntohs(ip->ip_len) - hlen;
310 1.150 yamt unsigned int num = howmany(datasz, segsz);
311 1.150 yamt
312 1.150 yamt ip->ip_id = ip_newid_range(num);
313 1.150 yamt }
314 1.1 cgd ip->ip_hl = hlen >> 2;
315 1.18 mycroft ipstat.ips_localout++;
316 1.1 cgd } else {
317 1.1 cgd hlen = ip->ip_hl << 2;
318 1.1 cgd }
319 1.1 cgd /*
320 1.1 cgd * Route packet.
321 1.1 cgd */
322 1.1 cgd if (ro == 0) {
323 1.1 cgd ro = &iproute;
324 1.1 cgd bzero((caddr_t)ro, sizeof (*ro));
325 1.1 cgd }
326 1.24 mycroft dst = satosin(&ro->ro_dst);
327 1.1 cgd /*
328 1.1 cgd * If there is a cached route,
329 1.1 cgd * check that it is to the same destination
330 1.1 cgd * and is still up. If not, free it and try again.
331 1.92 itojun * The address family should also be checked in case of sharing the
332 1.92 itojun * cache with IPv6.
333 1.1 cgd */
334 1.1 cgd if (ro->ro_rt && ((ro->ro_rt->rt_flags & RTF_UP) == 0 ||
335 1.92 itojun dst->sin_family != AF_INET ||
336 1.31 mycroft !in_hosteq(dst->sin_addr, ip->ip_dst))) {
337 1.1 cgd RTFREE(ro->ro_rt);
338 1.1 cgd ro->ro_rt = (struct rtentry *)0;
339 1.1 cgd }
340 1.1 cgd if (ro->ro_rt == 0) {
341 1.92 itojun bzero(dst, sizeof(*dst));
342 1.1 cgd dst->sin_family = AF_INET;
343 1.1 cgd dst->sin_len = sizeof(*dst);
344 1.1 cgd dst->sin_addr = ip->ip_dst;
345 1.1 cgd }
346 1.1 cgd /*
347 1.1 cgd * If routing to interface only,
348 1.1 cgd * short circuit routing lookup.
349 1.1 cgd */
350 1.1 cgd if (flags & IP_ROUTETOIF) {
351 1.29 mrg if ((ia = ifatoia(ifa_ifwithladdr(sintosa(dst)))) == 0) {
352 1.18 mycroft ipstat.ips_noroute++;
353 1.1 cgd error = ENETUNREACH;
354 1.1 cgd goto bad;
355 1.1 cgd }
356 1.1 cgd ifp = ia->ia_ifp;
357 1.48 matt mtu = ifp->if_mtu;
358 1.18 mycroft ip->ip_ttl = 1;
359 1.98 itojun } else if ((IN_MULTICAST(ip->ip_dst.s_addr) ||
360 1.98 itojun ip->ip_dst.s_addr == INADDR_BROADCAST) &&
361 1.98 itojun imo != NULL && imo->imo_multicast_ifp != NULL) {
362 1.98 itojun ifp = imo->imo_multicast_ifp;
363 1.98 itojun mtu = ifp->if_mtu;
364 1.99 itojun IFP_TO_IA(ifp, ia);
365 1.1 cgd } else {
366 1.1 cgd if (ro->ro_rt == 0)
367 1.1 cgd rtalloc(ro);
368 1.1 cgd if (ro->ro_rt == 0) {
369 1.18 mycroft ipstat.ips_noroute++;
370 1.1 cgd error = EHOSTUNREACH;
371 1.1 cgd goto bad;
372 1.1 cgd }
373 1.18 mycroft ia = ifatoia(ro->ro_rt->rt_ifa);
374 1.1 cgd ifp = ro->ro_rt->rt_ifp;
375 1.48 matt if ((mtu = ro->ro_rt->rt_rmx.rmx_mtu) == 0)
376 1.48 matt mtu = ifp->if_mtu;
377 1.1 cgd ro->ro_rt->rt_use++;
378 1.1 cgd if (ro->ro_rt->rt_flags & RTF_GATEWAY)
379 1.24 mycroft dst = satosin(ro->ro_rt->rt_gateway);
380 1.1 cgd }
381 1.64 is if (IN_MULTICAST(ip->ip_dst.s_addr) ||
382 1.64 is (ip->ip_dst.s_addr == INADDR_BROADCAST)) {
383 1.5 hpeyerl struct in_multi *inm;
384 1.5 hpeyerl
385 1.64 is m->m_flags |= (ip->ip_dst.s_addr == INADDR_BROADCAST) ?
386 1.64 is M_BCAST : M_MCAST;
387 1.5 hpeyerl /*
388 1.5 hpeyerl * IP destination address is multicast. Make sure "dst"
389 1.5 hpeyerl * still points to the address in "ro". (It may have been
390 1.5 hpeyerl * changed to point to a gateway address, above.)
391 1.5 hpeyerl */
392 1.24 mycroft dst = satosin(&ro->ro_dst);
393 1.5 hpeyerl /*
394 1.5 hpeyerl * See if the caller provided any multicast options
395 1.5 hpeyerl */
396 1.98 itojun if (imo != NULL)
397 1.5 hpeyerl ip->ip_ttl = imo->imo_multicast_ttl;
398 1.98 itojun else
399 1.5 hpeyerl ip->ip_ttl = IP_DEFAULT_MULTICAST_TTL;
400 1.98 itojun
401 1.98 itojun /*
402 1.98 itojun * if we don't know the outgoing ifp yet, we can't generate
403 1.98 itojun * output
404 1.98 itojun */
405 1.98 itojun if (!ifp) {
406 1.98 itojun ipstat.ips_noroute++;
407 1.98 itojun error = ENETUNREACH;
408 1.98 itojun goto bad;
409 1.98 itojun }
410 1.98 itojun
411 1.5 hpeyerl /*
412 1.95 thorpej * If the packet is multicast or broadcast, confirm that
413 1.95 thorpej * the outgoing interface can transmit it.
414 1.5 hpeyerl */
415 1.64 is if (((m->m_flags & M_MCAST) &&
416 1.64 is (ifp->if_flags & IFF_MULTICAST) == 0) ||
417 1.97 itojun ((m->m_flags & M_BCAST) &&
418 1.95 thorpej (ifp->if_flags & (IFF_BROADCAST|IFF_POINTOPOINT)) == 0)) {
419 1.18 mycroft ipstat.ips_noroute++;
420 1.5 hpeyerl error = ENETUNREACH;
421 1.5 hpeyerl goto bad;
422 1.5 hpeyerl }
423 1.5 hpeyerl /*
424 1.44 tls * If source address not specified yet, use an address
425 1.5 hpeyerl * of outgoing interface.
426 1.5 hpeyerl */
427 1.31 mycroft if (in_nullhost(ip->ip_src)) {
428 1.153 christos struct in_ifaddr *xia;
429 1.5 hpeyerl
430 1.153 christos IFP_TO_IA(ifp, xia);
431 1.153 christos if (!xia) {
432 1.91 itojun error = EADDRNOTAVAIL;
433 1.91 itojun goto bad;
434 1.91 itojun }
435 1.166 dyoung xifa = &xia->ia_ifa;
436 1.166 dyoung if (xifa->ifa_getifa != NULL) {
437 1.166 dyoung xia = ifatoia((*xifa->ifa_getifa)(xifa,
438 1.166 dyoung &ro->ro_dst));
439 1.166 dyoung }
440 1.153 christos ip->ip_src = xia->ia_addr.sin_addr;
441 1.5 hpeyerl }
442 1.5 hpeyerl
443 1.5 hpeyerl IN_LOOKUP_MULTI(ip->ip_dst, ifp, inm);
444 1.5 hpeyerl if (inm != NULL &&
445 1.5 hpeyerl (imo == NULL || imo->imo_multicast_loop)) {
446 1.5 hpeyerl /*
447 1.11 mycroft * If we belong to the destination multicast group
448 1.5 hpeyerl * on the outgoing interface, and the caller did not
449 1.5 hpeyerl * forbid loopback, loop back a copy.
450 1.5 hpeyerl */
451 1.5 hpeyerl ip_mloopback(ifp, m, dst);
452 1.5 hpeyerl }
453 1.5 hpeyerl #ifdef MROUTING
454 1.18 mycroft else {
455 1.5 hpeyerl /*
456 1.5 hpeyerl * If we are acting as a multicast router, perform
457 1.5 hpeyerl * multicast forwarding as if the packet had just
458 1.5 hpeyerl * arrived on the interface to which we are about
459 1.5 hpeyerl * to send. The multicast forwarding function
460 1.5 hpeyerl * recursively calls this function, using the
461 1.5 hpeyerl * IP_FORWARDING flag to prevent infinite recursion.
462 1.5 hpeyerl *
463 1.5 hpeyerl * Multicasts that are looped back by ip_mloopback(),
464 1.5 hpeyerl * above, will be forwarded by the ip_input() routine,
465 1.5 hpeyerl * if necessary.
466 1.5 hpeyerl */
467 1.18 mycroft extern struct socket *ip_mrouter;
468 1.22 cgd
469 1.18 mycroft if (ip_mrouter && (flags & IP_FORWARDING) == 0) {
470 1.18 mycroft if (ip_mforward(m, ifp) != 0) {
471 1.18 mycroft m_freem(m);
472 1.18 mycroft goto done;
473 1.18 mycroft }
474 1.5 hpeyerl }
475 1.5 hpeyerl }
476 1.5 hpeyerl #endif
477 1.5 hpeyerl /*
478 1.5 hpeyerl * Multicasts with a time-to-live of zero may be looped-
479 1.5 hpeyerl * back, above, but must not be transmitted on a network.
480 1.5 hpeyerl * Also, multicasts addressed to the loopback interface
481 1.5 hpeyerl * are not sent -- the above call to ip_mloopback() will
482 1.5 hpeyerl * loop back a copy if this host actually belongs to the
483 1.5 hpeyerl * destination group on the loopback interface.
484 1.5 hpeyerl */
485 1.20 mycroft if (ip->ip_ttl == 0 || (ifp->if_flags & IFF_LOOPBACK) != 0) {
486 1.5 hpeyerl m_freem(m);
487 1.5 hpeyerl goto done;
488 1.5 hpeyerl }
489 1.5 hpeyerl
490 1.5 hpeyerl goto sendit;
491 1.5 hpeyerl }
492 1.1 cgd /*
493 1.1 cgd * If source address not specified yet, use address
494 1.1 cgd * of outgoing interface.
495 1.1 cgd */
496 1.166 dyoung if (in_nullhost(ip->ip_src)) {
497 1.166 dyoung xifa = &ia->ia_ifa;
498 1.166 dyoung if (xifa->ifa_getifa != NULL)
499 1.166 dyoung ia = ifatoia((*xifa->ifa_getifa)(xifa, &ro->ro_dst));
500 1.25 mycroft ip->ip_src = ia->ia_addr.sin_addr;
501 1.166 dyoung }
502 1.59 hwr
503 1.59 hwr /*
504 1.97 itojun * packets with Class-D address as source are not valid per
505 1.59 hwr * RFC 1112
506 1.59 hwr */
507 1.59 hwr if (IN_MULTICAST(ip->ip_src.s_addr)) {
508 1.59 hwr ipstat.ips_odropped++;
509 1.59 hwr error = EADDRNOTAVAIL;
510 1.59 hwr goto bad;
511 1.59 hwr }
512 1.59 hwr
513 1.1 cgd /*
514 1.1 cgd * Look for broadcast address and
515 1.1 cgd * and verify user is allowed to send
516 1.1 cgd * such a packet.
517 1.1 cgd */
518 1.18 mycroft if (in_broadcast(dst->sin_addr, ifp)) {
519 1.1 cgd if ((ifp->if_flags & IFF_BROADCAST) == 0) {
520 1.1 cgd error = EADDRNOTAVAIL;
521 1.1 cgd goto bad;
522 1.1 cgd }
523 1.1 cgd if ((flags & IP_ALLOWBROADCAST) == 0) {
524 1.1 cgd error = EACCES;
525 1.1 cgd goto bad;
526 1.1 cgd }
527 1.1 cgd /* don't allow broadcast messages to be fragmented */
528 1.100 itojun if (ntohs(ip->ip_len) > ifp->if_mtu) {
529 1.1 cgd error = EMSGSIZE;
530 1.1 cgd goto bad;
531 1.1 cgd }
532 1.1 cgd m->m_flags |= M_BCAST;
533 1.18 mycroft } else
534 1.18 mycroft m->m_flags &= ~M_BCAST;
535 1.18 mycroft
536 1.60 mrg sendit:
537 1.76 thorpej /*
538 1.76 thorpej * If we're doing Path MTU Discovery, we need to set DF unless
539 1.76 thorpej * the route's MTU is locked.
540 1.76 thorpej */
541 1.76 thorpej if ((flags & IP_MTUDISC) != 0 && ro->ro_rt != NULL &&
542 1.76 thorpej (ro->ro_rt->rt_rmx.rmx_locks & RTV_MTU) == 0)
543 1.100 itojun ip->ip_off |= htons(IP_DF);
544 1.76 thorpej
545 1.100 itojun /* Remember the current ip_len */
546 1.100 itojun ip_len = ntohs(ip->ip_len);
547 1.78 thorpej
548 1.61 itojun #ifdef IPSEC
549 1.61 itojun /* get SP for this packet */
550 1.61 itojun if (so == NULL)
551 1.110 itojun sp = ipsec4_getpolicybyaddr(m, IPSEC_DIR_OUTBOUND,
552 1.110 itojun flags, &error);
553 1.130 thorpej else {
554 1.130 thorpej if (IPSEC_PCB_SKIP_IPSEC(sotoinpcb_hdr(so)->inph_sp,
555 1.130 thorpej IPSEC_DIR_OUTBOUND))
556 1.130 thorpej goto skip_ipsec;
557 1.66 itojun sp = ipsec4_getpolicybysock(m, IPSEC_DIR_OUTBOUND, so, &error);
558 1.130 thorpej }
559 1.61 itojun
560 1.61 itojun if (sp == NULL) {
561 1.61 itojun ipsecstat.out_inval++;
562 1.61 itojun goto bad;
563 1.61 itojun }
564 1.61 itojun
565 1.61 itojun error = 0;
566 1.61 itojun
567 1.61 itojun /* check policy */
568 1.61 itojun switch (sp->policy) {
569 1.61 itojun case IPSEC_POLICY_DISCARD:
570 1.61 itojun /*
571 1.61 itojun * This packet is just discarded.
572 1.61 itojun */
573 1.61 itojun ipsecstat.out_polvio++;
574 1.61 itojun goto bad;
575 1.61 itojun
576 1.61 itojun case IPSEC_POLICY_BYPASS:
577 1.61 itojun case IPSEC_POLICY_NONE:
578 1.61 itojun /* no need to do IPsec. */
579 1.61 itojun goto skip_ipsec;
580 1.97 itojun
581 1.61 itojun case IPSEC_POLICY_IPSEC:
582 1.61 itojun if (sp->req == NULL) {
583 1.61 itojun /* XXX should be panic ? */
584 1.61 itojun printf("ip_output: No IPsec request specified.\n");
585 1.61 itojun error = EINVAL;
586 1.61 itojun goto bad;
587 1.61 itojun }
588 1.61 itojun break;
589 1.61 itojun
590 1.61 itojun case IPSEC_POLICY_ENTRUST:
591 1.61 itojun default:
592 1.61 itojun printf("ip_output: Invalid policy found. %d\n", sp->policy);
593 1.61 itojun }
594 1.61 itojun
595 1.141 manu #ifdef IPSEC_NAT_T
596 1.141 manu /*
597 1.144 perry * NAT-T ESP fragmentation: don't do IPSec processing now,
598 1.144 perry * we'll do it on each fragmented packet.
599 1.141 manu */
600 1.141 manu if (sp->req->sav &&
601 1.141 manu ((sp->req->sav->natt_type & UDP_ENCAP_ESPINUDP) ||
602 1.141 manu (sp->req->sav->natt_type & UDP_ENCAP_ESPINUDP_NON_IKE))) {
603 1.141 manu if (ntohs(ip->ip_len) > sp->req->sav->esp_frag) {
604 1.141 manu natt_frag = 1;
605 1.141 manu mtu = sp->req->sav->esp_frag;
606 1.141 manu goto skip_ipsec;
607 1.141 manu }
608 1.141 manu }
609 1.141 manu #endif /* IPSEC_NAT_T */
610 1.141 manu
611 1.78 thorpej /*
612 1.78 thorpej * ipsec4_output() expects ip_len and ip_off in network
613 1.78 thorpej * order. They have been set to network order above.
614 1.78 thorpej */
615 1.61 itojun
616 1.61 itojun {
617 1.61 itojun struct ipsec_output_state state;
618 1.61 itojun bzero(&state, sizeof(state));
619 1.61 itojun state.m = m;
620 1.61 itojun if (flags & IP_ROUTETOIF) {
621 1.61 itojun state.ro = &iproute;
622 1.61 itojun bzero(&iproute, sizeof(iproute));
623 1.61 itojun } else
624 1.61 itojun state.ro = ro;
625 1.61 itojun state.dst = (struct sockaddr *)dst;
626 1.61 itojun
627 1.86 thorpej /*
628 1.86 thorpej * We can't defer the checksum of payload data if
629 1.86 thorpej * we're about to encrypt/authenticate it.
630 1.86 thorpej *
631 1.86 thorpej * XXX When we support crypto offloading functions of
632 1.86 thorpej * XXX network interfaces, we need to reconsider this,
633 1.86 thorpej * XXX since it's likely that they'll support checksumming,
634 1.86 thorpej * XXX as well.
635 1.86 thorpej */
636 1.86 thorpej if (m->m_pkthdr.csum_flags & (M_CSUM_TCPv4|M_CSUM_UDPv4)) {
637 1.86 thorpej in_delayed_cksum(m);
638 1.86 thorpej m->m_pkthdr.csum_flags &= ~(M_CSUM_TCPv4|M_CSUM_UDPv4);
639 1.86 thorpej }
640 1.86 thorpej
641 1.61 itojun error = ipsec4_output(&state, sp, flags);
642 1.61 itojun
643 1.61 itojun m = state.m;
644 1.61 itojun if (flags & IP_ROUTETOIF) {
645 1.61 itojun /*
646 1.61 itojun * if we have tunnel mode SA, we may need to ignore
647 1.61 itojun * IP_ROUTETOIF.
648 1.61 itojun */
649 1.61 itojun if (state.ro != &iproute || state.ro->ro_rt != NULL) {
650 1.61 itojun flags &= ~IP_ROUTETOIF;
651 1.61 itojun ro = state.ro;
652 1.61 itojun }
653 1.61 itojun } else
654 1.61 itojun ro = state.ro;
655 1.61 itojun dst = (struct sockaddr_in *)state.dst;
656 1.61 itojun if (error) {
657 1.61 itojun /* mbuf is already reclaimed in ipsec4_output. */
658 1.61 itojun m0 = NULL;
659 1.61 itojun switch (error) {
660 1.61 itojun case EHOSTUNREACH:
661 1.61 itojun case ENETUNREACH:
662 1.61 itojun case EMSGSIZE:
663 1.61 itojun case ENOBUFS:
664 1.61 itojun case ENOMEM:
665 1.61 itojun break;
666 1.61 itojun default:
667 1.61 itojun printf("ip4_output (ipsec): error code %d\n", error);
668 1.61 itojun /*fall through*/
669 1.61 itojun case ENOENT:
670 1.61 itojun /* don't show these error codes to the user */
671 1.61 itojun error = 0;
672 1.61 itojun break;
673 1.61 itojun }
674 1.61 itojun goto bad;
675 1.61 itojun }
676 1.61 itojun
677 1.61 itojun /* be sure to update variables that are affected by ipsec4_output() */
678 1.61 itojun ip = mtod(m, struct ip *);
679 1.61 itojun hlen = ip->ip_hl << 2;
680 1.78 thorpej ip_len = ntohs(ip->ip_len);
681 1.78 thorpej
682 1.61 itojun if (ro->ro_rt == NULL) {
683 1.61 itojun if ((flags & IP_ROUTETOIF) == 0) {
684 1.61 itojun printf("ip_output: "
685 1.61 itojun "can't update route after IPsec processing\n");
686 1.61 itojun error = EHOSTUNREACH; /*XXX*/
687 1.61 itojun goto bad;
688 1.61 itojun }
689 1.61 itojun } else {
690 1.61 itojun /* nobody uses ia beyond here */
691 1.133 itojun if (state.encap) {
692 1.90 itojun ifp = ro->ro_rt->rt_ifp;
693 1.133 itojun if ((mtu = ro->ro_rt->rt_rmx.rmx_mtu) == 0)
694 1.133 itojun mtu = ifp->if_mtu;
695 1.133 itojun }
696 1.61 itojun }
697 1.90 itojun }
698 1.61 itojun skip_ipsec:
699 1.61 itojun #endif /*IPSEC*/
700 1.109 jonathan #ifdef FAST_IPSEC
701 1.109 jonathan /*
702 1.109 jonathan * Check the security policy (SP) for the packet and, if
703 1.109 jonathan * required, do IPsec-related processing. There are two
704 1.109 jonathan * cases here; the first time a packet is sent through
705 1.109 jonathan * it will be untagged and handled by ipsec4_checkpolicy.
706 1.109 jonathan * If the packet is resubmitted to ip_output (e.g. after
707 1.109 jonathan * AH, ESP, etc. processing), there will be a tag to bypass
708 1.109 jonathan * the lookup and related policy checking.
709 1.109 jonathan */
710 1.109 jonathan mtag = m_tag_find(m, PACKET_TAG_IPSEC_PENDING_TDB, NULL);
711 1.109 jonathan s = splsoftnet();
712 1.109 jonathan if (mtag != NULL) {
713 1.109 jonathan tdbi = (struct tdb_ident *)(mtag + 1);
714 1.109 jonathan sp = ipsec_getpolicy(tdbi, IPSEC_DIR_OUTBOUND);
715 1.109 jonathan if (sp == NULL)
716 1.109 jonathan error = -EINVAL; /* force silent drop */
717 1.109 jonathan m_tag_delete(m, mtag);
718 1.109 jonathan } else {
719 1.130 thorpej if (inp != NULL &&
720 1.130 thorpej IPSEC_PCB_SKIP_IPSEC(inp->inp_sp, IPSEC_DIR_OUTBOUND))
721 1.130 thorpej goto spd_done;
722 1.109 jonathan sp = ipsec4_checkpolicy(m, IPSEC_DIR_OUTBOUND, flags,
723 1.109 jonathan &error, inp);
724 1.109 jonathan }
725 1.109 jonathan /*
726 1.109 jonathan * There are four return cases:
727 1.109 jonathan * sp != NULL apply IPsec policy
728 1.109 jonathan * sp == NULL, error == 0 no IPsec handling needed
729 1.109 jonathan * sp == NULL, error == -EINVAL discard packet w/o error
730 1.109 jonathan * sp == NULL, error != 0 discard packet, report error
731 1.109 jonathan */
732 1.109 jonathan if (sp != NULL) {
733 1.160 christos #ifdef IPSEC_NAT_T
734 1.160 christos /*
735 1.160 christos * NAT-T ESP fragmentation: don't do IPSec processing now,
736 1.160 christos * we'll do it on each fragmented packet.
737 1.160 christos */
738 1.160 christos if (sp->req->sav &&
739 1.160 christos ((sp->req->sav->natt_type & UDP_ENCAP_ESPINUDP) ||
740 1.160 christos (sp->req->sav->natt_type & UDP_ENCAP_ESPINUDP_NON_IKE))) {
741 1.160 christos if (ntohs(ip->ip_len) > sp->req->sav->esp_frag) {
742 1.160 christos natt_frag = 1;
743 1.160 christos mtu = sp->req->sav->esp_frag;
744 1.160 christos goto spd_done;
745 1.160 christos }
746 1.160 christos }
747 1.160 christos #endif /* IPSEC_NAT_T */
748 1.109 jonathan /* Loop detection, check if ipsec processing already done */
749 1.109 jonathan IPSEC_ASSERT(sp->req != NULL, ("ip_output: no ipsec request"));
750 1.109 jonathan for (mtag = m_tag_first(m); mtag != NULL;
751 1.109 jonathan mtag = m_tag_next(m, mtag)) {
752 1.109 jonathan #ifdef MTAG_ABI_COMPAT
753 1.109 jonathan if (mtag->m_tag_cookie != MTAG_ABI_COMPAT)
754 1.109 jonathan continue;
755 1.109 jonathan #endif
756 1.109 jonathan if (mtag->m_tag_id != PACKET_TAG_IPSEC_OUT_DONE &&
757 1.109 jonathan mtag->m_tag_id != PACKET_TAG_IPSEC_OUT_CRYPTO_NEEDED)
758 1.109 jonathan continue;
759 1.109 jonathan /*
760 1.109 jonathan * Check if policy has an SA associated with it.
761 1.109 jonathan * This can happen when an SP has yet to acquire
762 1.109 jonathan * an SA; e.g. on first reference. If it occurs,
763 1.109 jonathan * then we let ipsec4_process_packet do its thing.
764 1.109 jonathan */
765 1.109 jonathan if (sp->req->sav == NULL)
766 1.109 jonathan break;
767 1.109 jonathan tdbi = (struct tdb_ident *)(mtag + 1);
768 1.109 jonathan if (tdbi->spi == sp->req->sav->spi &&
769 1.109 jonathan tdbi->proto == sp->req->sav->sah->saidx.proto &&
770 1.109 jonathan bcmp(&tdbi->dst, &sp->req->sav->sah->saidx.dst,
771 1.109 jonathan sizeof (union sockaddr_union)) == 0) {
772 1.109 jonathan /*
773 1.109 jonathan * No IPsec processing is needed, free
774 1.109 jonathan * reference to SP.
775 1.109 jonathan *
776 1.109 jonathan * NB: null pointer to avoid free at
777 1.109 jonathan * done: below.
778 1.109 jonathan */
779 1.109 jonathan KEY_FREESP(&sp), sp = NULL;
780 1.109 jonathan splx(s);
781 1.109 jonathan goto spd_done;
782 1.109 jonathan }
783 1.109 jonathan }
784 1.109 jonathan
785 1.109 jonathan /*
786 1.109 jonathan * Do delayed checksums now because we send before
787 1.109 jonathan * this is done in the normal processing path.
788 1.109 jonathan */
789 1.109 jonathan if (m->m_pkthdr.csum_flags & (M_CSUM_TCPv4|M_CSUM_UDPv4)) {
790 1.109 jonathan in_delayed_cksum(m);
791 1.109 jonathan m->m_pkthdr.csum_flags &= ~(M_CSUM_TCPv4|M_CSUM_UDPv4);
792 1.109 jonathan }
793 1.109 jonathan
794 1.109 jonathan #ifdef __FreeBSD__
795 1.109 jonathan ip->ip_len = htons(ip->ip_len);
796 1.109 jonathan ip->ip_off = htons(ip->ip_off);
797 1.109 jonathan #endif
798 1.109 jonathan
799 1.109 jonathan /* NB: callee frees mbuf */
800 1.109 jonathan error = ipsec4_process_packet(m, sp->req, flags, 0);
801 1.109 jonathan /*
802 1.109 jonathan * Preserve KAME behaviour: ENOENT can be returned
803 1.109 jonathan * when an SA acquire is in progress. Don't propagate
804 1.109 jonathan * this to user-level; it confuses applications.
805 1.109 jonathan *
806 1.109 jonathan * XXX this will go away when the SADB is redone.
807 1.109 jonathan */
808 1.109 jonathan if (error == ENOENT)
809 1.109 jonathan error = 0;
810 1.109 jonathan splx(s);
811 1.109 jonathan goto done;
812 1.109 jonathan } else {
813 1.109 jonathan splx(s);
814 1.109 jonathan
815 1.109 jonathan if (error != 0) {
816 1.109 jonathan /*
817 1.109 jonathan * Hack: -EINVAL is used to signal that a packet
818 1.109 jonathan * should be silently discarded. This is typically
819 1.109 jonathan * because we asked key management for an SA and
820 1.109 jonathan * it was delayed (e.g. kicked up to IKE).
821 1.109 jonathan */
822 1.109 jonathan if (error == -EINVAL)
823 1.109 jonathan error = 0;
824 1.109 jonathan goto bad;
825 1.109 jonathan } else {
826 1.109 jonathan /* No IPsec processing for this packet. */
827 1.109 jonathan }
828 1.109 jonathan #ifdef notyet
829 1.109 jonathan /*
830 1.109 jonathan * If deferred crypto processing is needed, check that
831 1.109 jonathan * the interface supports it.
832 1.144 perry */
833 1.109 jonathan mtag = m_tag_find(m, PACKET_TAG_IPSEC_OUT_CRYPTO_NEEDED, NULL);
834 1.109 jonathan if (mtag != NULL && (ifp->if_capenable & IFCAP_IPSEC) == 0) {
835 1.109 jonathan /* notify IPsec to do its own crypto */
836 1.109 jonathan ipsp_skipcrypto_unmark((struct tdb_ident *)(mtag + 1));
837 1.109 jonathan error = EHOSTUNREACH;
838 1.109 jonathan goto bad;
839 1.109 jonathan }
840 1.109 jonathan #endif
841 1.109 jonathan }
842 1.109 jonathan spd_done:
843 1.109 jonathan #endif /* FAST_IPSEC */
844 1.61 itojun
845 1.82 itojun #ifdef PFIL_HOOKS
846 1.82 itojun /*
847 1.82 itojun * Run through list of hooks for output packets.
848 1.82 itojun */
849 1.106 itojun if ((error = pfil_run_hooks(&inet_pfil_hook, &m, ifp, PFIL_OUT)) != 0)
850 1.82 itojun goto done;
851 1.82 itojun if (m == NULL)
852 1.82 itojun goto done;
853 1.82 itojun
854 1.82 itojun ip = mtod(m, struct ip *);
855 1.106 itojun hlen = ip->ip_hl << 2;
856 1.82 itojun #endif /* PFIL_HOOKS */
857 1.82 itojun
858 1.146 matt m->m_pkthdr.csum_data |= hlen << 16;
859 1.146 matt
860 1.136 thorpej #if IFA_STATS
861 1.136 thorpej /*
862 1.136 thorpej * search for the source address structure to
863 1.136 thorpej * maintain output statistics.
864 1.136 thorpej */
865 1.136 thorpej INADDR_TO_IA(ip->ip_src, ia);
866 1.136 thorpej #endif
867 1.136 thorpej
868 1.138 thorpej /* Maybe skip checksums on loopback interfaces. */
869 1.151 yamt if (IN_NEED_CHECKSUM(ifp, M_CSUM_IPv4)) {
870 1.138 thorpej m->m_pkthdr.csum_flags |= M_CSUM_IPv4;
871 1.151 yamt }
872 1.104 yamt sw_csum = m->m_pkthdr.csum_flags & ~ifp->if_csum_flags_tx;
873 1.1 cgd /*
874 1.147 matt * If small enough for mtu of path, or if using TCP segmentation
875 1.147 matt * offload, can just send directly.
876 1.1 cgd */
877 1.147 matt if (ip_len <= mtu ||
878 1.147 matt (m->m_pkthdr.csum_flags & M_CSUM_TSOv4) != 0) {
879 1.63 itojun #if IFA_STATS
880 1.63 itojun if (ia)
881 1.78 thorpej ia->ia_ifa.ifa_data.ifad_outbytes += ip_len;
882 1.63 itojun #endif
883 1.86 thorpej /*
884 1.86 thorpej * Always initialize the sum to 0! Some HW assisted
885 1.86 thorpej * checksumming requires this.
886 1.86 thorpej */
887 1.1 cgd ip->ip_sum = 0;
888 1.86 thorpej
889 1.149 matt if ((m->m_pkthdr.csum_flags & M_CSUM_TSOv4) == 0) {
890 1.147 matt /*
891 1.147 matt * Perform any checksums that the hardware can't do
892 1.147 matt * for us.
893 1.147 matt *
894 1.147 matt * XXX Does any hardware require the {th,uh}_sum
895 1.147 matt * XXX fields to be 0?
896 1.147 matt */
897 1.147 matt if (sw_csum & M_CSUM_IPv4) {
898 1.151 yamt KASSERT(IN_NEED_CHECKSUM(ifp, M_CSUM_IPv4));
899 1.147 matt ip->ip_sum = in_cksum(m, hlen);
900 1.147 matt m->m_pkthdr.csum_flags &= ~M_CSUM_IPv4;
901 1.147 matt }
902 1.147 matt if (sw_csum & (M_CSUM_TCPv4|M_CSUM_UDPv4)) {
903 1.151 yamt if (IN_NEED_CHECKSUM(ifp,
904 1.151 yamt sw_csum & (M_CSUM_TCPv4|M_CSUM_UDPv4))) {
905 1.151 yamt in_delayed_cksum(m);
906 1.151 yamt }
907 1.147 matt m->m_pkthdr.csum_flags &=
908 1.147 matt ~(M_CSUM_TCPv4|M_CSUM_UDPv4);
909 1.147 matt }
910 1.146 matt }
911 1.86 thorpej
912 1.82 itojun #ifdef IPSEC
913 1.82 itojun /* clean ipsec history once it goes out of the node */
914 1.82 itojun ipsec_delaux(m);
915 1.82 itojun #endif
916 1.152 yamt
917 1.152 yamt if (__predict_true(
918 1.152 yamt (m->m_pkthdr.csum_flags & M_CSUM_TSOv4) == 0 ||
919 1.152 yamt (ifp->if_capenable & IFCAP_TSOv4) != 0)) {
920 1.152 yamt error =
921 1.152 yamt (*ifp->if_output)(ifp, m, sintosa(dst), ro->ro_rt);
922 1.152 yamt } else {
923 1.152 yamt error =
924 1.152 yamt ip_tso_output(ifp, m, sintosa(dst), ro->ro_rt);
925 1.152 yamt }
926 1.1 cgd goto done;
927 1.1 cgd }
928 1.61 itojun
929 1.1 cgd /*
930 1.86 thorpej * We can't use HW checksumming if we're about to
931 1.86 thorpej * to fragment the packet.
932 1.86 thorpej *
933 1.86 thorpej * XXX Some hardware can do this.
934 1.86 thorpej */
935 1.86 thorpej if (m->m_pkthdr.csum_flags & (M_CSUM_TCPv4|M_CSUM_UDPv4)) {
936 1.151 yamt if (IN_NEED_CHECKSUM(ifp,
937 1.151 yamt m->m_pkthdr.csum_flags & (M_CSUM_TCPv4|M_CSUM_UDPv4))) {
938 1.151 yamt in_delayed_cksum(m);
939 1.151 yamt }
940 1.86 thorpej m->m_pkthdr.csum_flags &= ~(M_CSUM_TCPv4|M_CSUM_UDPv4);
941 1.86 thorpej }
942 1.86 thorpej
943 1.86 thorpej /*
944 1.1 cgd * Too large for interface; fragment if possible.
945 1.1 cgd * Must be able to put at least 8 bytes per fragment.
946 1.1 cgd */
947 1.100 itojun if (ntohs(ip->ip_off) & IP_DF) {
948 1.40 matt if (flags & IP_RETURNMTU)
949 1.48 matt *mtu_p = mtu;
950 1.1 cgd error = EMSGSIZE;
951 1.18 mycroft ipstat.ips_cantfrag++;
952 1.1 cgd goto bad;
953 1.1 cgd }
954 1.110 itojun
955 1.110 itojun error = ip_fragment(m, ifp, mtu);
956 1.124 itojun if (error) {
957 1.124 itojun m = NULL;
958 1.1 cgd goto bad;
959 1.124 itojun }
960 1.110 itojun
961 1.119 itojun for (; m; m = m0) {
962 1.110 itojun m0 = m->m_nextpkt;
963 1.110 itojun m->m_nextpkt = 0;
964 1.110 itojun if (error == 0) {
965 1.110 itojun #if IFA_STATS
966 1.136 thorpej if (ia)
967 1.110 itojun ia->ia_ifa.ifa_data.ifad_outbytes +=
968 1.110 itojun ntohs(ip->ip_len);
969 1.110 itojun #endif
970 1.110 itojun #ifdef IPSEC
971 1.110 itojun /* clean ipsec history once it goes out of the node */
972 1.110 itojun ipsec_delaux(m);
973 1.160 christos #endif /* IPSEC */
974 1.141 manu
975 1.141 manu #ifdef IPSEC_NAT_T
976 1.144 perry /*
977 1.141 manu * If we get there, the packet has not been handeld by
978 1.144 perry * IPSec whereas it should have. Now that it has been
979 1.141 manu * fragmented, re-inject it in ip_output so that IPsec
980 1.141 manu * processing can occur.
981 1.141 manu */
982 1.141 manu if (natt_frag) {
983 1.144 perry error = ip_output(m, opt,
984 1.141 manu ro, flags, imo, so, mtu_p);
985 1.144 perry } else
986 1.141 manu #endif /* IPSEC_NAT_T */
987 1.141 manu {
988 1.141 manu KASSERT((m->m_pkthdr.csum_flags &
989 1.141 manu (M_CSUM_UDPv4 | M_CSUM_TCPv4)) == 0);
990 1.141 manu error = (*ifp->if_output)(ifp, m, sintosa(dst),
991 1.141 manu ro->ro_rt);
992 1.141 manu }
993 1.110 itojun } else
994 1.110 itojun m_freem(m);
995 1.1 cgd }
996 1.1 cgd
997 1.110 itojun if (error == 0)
998 1.110 itojun ipstat.ips_fragmented++;
999 1.110 itojun done:
1000 1.110 itojun if (ro == &iproute && (flags & IP_ROUTETOIF) == 0 && ro->ro_rt) {
1001 1.110 itojun RTFREE(ro->ro_rt);
1002 1.110 itojun ro->ro_rt = 0;
1003 1.110 itojun }
1004 1.110 itojun
1005 1.110 itojun #ifdef IPSEC
1006 1.110 itojun if (sp != NULL) {
1007 1.110 itojun KEYDEBUG(KEYDEBUG_IPSEC_STAMP,
1008 1.110 itojun printf("DP ip_output call free SP:%p\n", sp));
1009 1.110 itojun key_freesp(sp);
1010 1.110 itojun }
1011 1.110 itojun #endif /* IPSEC */
1012 1.110 itojun #ifdef FAST_IPSEC
1013 1.110 itojun if (sp != NULL)
1014 1.110 itojun KEY_FREESP(&sp);
1015 1.110 itojun #endif /* FAST_IPSEC */
1016 1.110 itojun
1017 1.110 itojun return (error);
1018 1.110 itojun bad:
1019 1.110 itojun m_freem(m);
1020 1.110 itojun goto done;
1021 1.110 itojun }
1022 1.110 itojun
1023 1.113 itojun int
1024 1.110 itojun ip_fragment(struct mbuf *m, struct ifnet *ifp, u_long mtu)
1025 1.110 itojun {
1026 1.110 itojun struct ip *ip, *mhip;
1027 1.110 itojun struct mbuf *m0;
1028 1.110 itojun int len, hlen, off;
1029 1.110 itojun int mhlen, firstlen;
1030 1.110 itojun struct mbuf **mnext;
1031 1.135 manu int sw_csum = m->m_pkthdr.csum_flags;
1032 1.48 matt int fragments = 0;
1033 1.48 matt int s;
1034 1.110 itojun int error = 0;
1035 1.110 itojun
1036 1.110 itojun ip = mtod(m, struct ip *);
1037 1.110 itojun hlen = ip->ip_hl << 2;
1038 1.135 manu if (ifp != NULL)
1039 1.135 manu sw_csum &= ~ifp->if_csum_flags_tx;
1040 1.110 itojun
1041 1.110 itojun len = (mtu - hlen) &~ 7;
1042 1.124 itojun if (len < 8) {
1043 1.124 itojun m_freem(m);
1044 1.110 itojun return (EMSGSIZE);
1045 1.124 itojun }
1046 1.110 itojun
1047 1.110 itojun firstlen = len;
1048 1.110 itojun mnext = &m->m_nextpkt;
1049 1.1 cgd
1050 1.1 cgd /*
1051 1.1 cgd * Loop through length of segment after first fragment,
1052 1.1 cgd * make new header and copy data of each part and link onto chain.
1053 1.1 cgd */
1054 1.1 cgd m0 = m;
1055 1.1 cgd mhlen = sizeof (struct ip);
1056 1.100 itojun for (off = hlen + len; off < ntohs(ip->ip_len); off += len) {
1057 1.1 cgd MGETHDR(m, M_DONTWAIT, MT_HEADER);
1058 1.1 cgd if (m == 0) {
1059 1.1 cgd error = ENOBUFS;
1060 1.18 mycroft ipstat.ips_odropped++;
1061 1.1 cgd goto sendorfree;
1062 1.1 cgd }
1063 1.103 matt MCLAIM(m, m0->m_owner);
1064 1.22 cgd *mnext = m;
1065 1.22 cgd mnext = &m->m_nextpkt;
1066 1.1 cgd m->m_data += max_linkhdr;
1067 1.1 cgd mhip = mtod(m, struct ip *);
1068 1.1 cgd *mhip = *ip;
1069 1.73 is /* we must inherit MCAST and BCAST flags */
1070 1.73 is m->m_flags |= m0->m_flags & (M_MCAST|M_BCAST);
1071 1.1 cgd if (hlen > sizeof (struct ip)) {
1072 1.1 cgd mhlen = ip_optcopy(ip, mhip) + sizeof (struct ip);
1073 1.1 cgd mhip->ip_hl = mhlen >> 2;
1074 1.1 cgd }
1075 1.1 cgd m->m_len = mhlen;
1076 1.122 itojun mhip->ip_off = ((off - hlen) >> 3) +
1077 1.122 itojun (ntohs(ip->ip_off) & ~IP_MF);
1078 1.122 itojun if (ip->ip_off & htons(IP_MF))
1079 1.1 cgd mhip->ip_off |= IP_MF;
1080 1.100 itojun if (off + len >= ntohs(ip->ip_len))
1081 1.100 itojun len = ntohs(ip->ip_len) - off;
1082 1.1 cgd else
1083 1.1 cgd mhip->ip_off |= IP_MF;
1084 1.100 itojun HTONS(mhip->ip_off);
1085 1.21 cgd mhip->ip_len = htons((u_int16_t)(len + mhlen));
1086 1.1 cgd m->m_next = m_copy(m0, off, len);
1087 1.1 cgd if (m->m_next == 0) {
1088 1.1 cgd error = ENOBUFS; /* ??? */
1089 1.18 mycroft ipstat.ips_odropped++;
1090 1.1 cgd goto sendorfree;
1091 1.1 cgd }
1092 1.1 cgd m->m_pkthdr.len = mhlen + len;
1093 1.1 cgd m->m_pkthdr.rcvif = (struct ifnet *)0;
1094 1.1 cgd mhip->ip_sum = 0;
1095 1.104 yamt if (sw_csum & M_CSUM_IPv4) {
1096 1.104 yamt mhip->ip_sum = in_cksum(m, mhlen);
1097 1.104 yamt KASSERT((m->m_pkthdr.csum_flags & M_CSUM_IPv4) == 0);
1098 1.104 yamt } else {
1099 1.104 yamt m->m_pkthdr.csum_flags |= M_CSUM_IPv4;
1100 1.148 thorpej m->m_pkthdr.csum_data |= mhlen << 16;
1101 1.104 yamt }
1102 1.1 cgd ipstat.ips_ofragments++;
1103 1.48 matt fragments++;
1104 1.1 cgd }
1105 1.1 cgd /*
1106 1.1 cgd * Update first fragment by trimming what's been copied out
1107 1.1 cgd * and updating header, then send each fragment (in order).
1108 1.1 cgd */
1109 1.1 cgd m = m0;
1110 1.100 itojun m_adj(m, hlen + firstlen - ntohs(ip->ip_len));
1111 1.1 cgd m->m_pkthdr.len = hlen + firstlen;
1112 1.21 cgd ip->ip_len = htons((u_int16_t)m->m_pkthdr.len);
1113 1.100 itojun ip->ip_off |= htons(IP_MF);
1114 1.1 cgd ip->ip_sum = 0;
1115 1.104 yamt if (sw_csum & M_CSUM_IPv4) {
1116 1.104 yamt ip->ip_sum = in_cksum(m, hlen);
1117 1.104 yamt m->m_pkthdr.csum_flags &= ~M_CSUM_IPv4;
1118 1.104 yamt } else {
1119 1.104 yamt KASSERT(m->m_pkthdr.csum_flags & M_CSUM_IPv4);
1120 1.148 thorpej KASSERT(M_CSUM_DATA_IPv4_IPHL(m->m_pkthdr.csum_data) >=
1121 1.148 thorpej sizeof(struct ip));
1122 1.104 yamt }
1123 1.1 cgd sendorfree:
1124 1.48 matt /*
1125 1.48 matt * If there is no room for all the fragments, don't queue
1126 1.48 matt * any of them.
1127 1.48 matt */
1128 1.135 manu if (ifp != NULL) {
1129 1.135 manu s = splnet();
1130 1.135 manu if (ifp->if_snd.ifq_maxlen - ifp->if_snd.ifq_len < fragments &&
1131 1.135 manu error == 0) {
1132 1.135 manu error = ENOBUFS;
1133 1.135 manu ipstat.ips_odropped++;
1134 1.135 manu IFQ_INC_DROPS(&ifp->if_snd);
1135 1.135 manu }
1136 1.135 manu splx(s);
1137 1.126 enami }
1138 1.124 itojun if (error) {
1139 1.125 itojun for (m = m0; m; m = m0) {
1140 1.124 itojun m0 = m->m_nextpkt;
1141 1.124 itojun m->m_nextpkt = NULL;
1142 1.124 itojun m_freem(m);
1143 1.124 itojun }
1144 1.124 itojun }
1145 1.1 cgd return (error);
1146 1.86 thorpej }
1147 1.86 thorpej
1148 1.86 thorpej /*
1149 1.86 thorpej * Process a delayed payload checksum calculation.
1150 1.86 thorpej */
1151 1.86 thorpej void
1152 1.86 thorpej in_delayed_cksum(struct mbuf *m)
1153 1.86 thorpej {
1154 1.86 thorpej struct ip *ip;
1155 1.86 thorpej u_int16_t csum, offset;
1156 1.86 thorpej
1157 1.86 thorpej ip = mtod(m, struct ip *);
1158 1.86 thorpej offset = ip->ip_hl << 2;
1159 1.86 thorpej csum = in4_cksum(m, 0, offset, ntohs(ip->ip_len) - offset);
1160 1.86 thorpej if (csum == 0 && (m->m_pkthdr.csum_flags & M_CSUM_UDPv4) != 0)
1161 1.86 thorpej csum = 0xffff;
1162 1.86 thorpej
1163 1.145 briggs offset += M_CSUM_DATA_IPv4_OFFSET(m->m_pkthdr.csum_data);
1164 1.86 thorpej
1165 1.86 thorpej if ((offset + sizeof(u_int16_t)) > m->m_len) {
1166 1.87 yamt /* This happen when ip options were inserted
1167 1.86 thorpej printf("in_delayed_cksum: pullup len %d off %d proto %d\n",
1168 1.86 thorpej m->m_len, offset, ip->ip_p);
1169 1.87 yamt */
1170 1.86 thorpej m_copyback(m, offset, sizeof(csum), (caddr_t) &csum);
1171 1.86 thorpej } else
1172 1.86 thorpej *(u_int16_t *)(mtod(m, caddr_t) + offset) = csum;
1173 1.1 cgd }
1174 1.47 kml
1175 1.47 kml /*
1176 1.47 kml * Determine the maximum length of the options to be inserted;
1177 1.47 kml * we would far rather allocate too much space rather than too little.
1178 1.47 kml */
1179 1.47 kml
1180 1.47 kml u_int
1181 1.140 perry ip_optlen(struct inpcb *inp)
1182 1.47 kml {
1183 1.47 kml struct mbuf *m = inp->inp_options;
1184 1.47 kml
1185 1.47 kml if (m && m->m_len > offsetof(struct ipoption, ipopt_dst))
1186 1.101 itojun return (m->m_len - offsetof(struct ipoption, ipopt_dst));
1187 1.47 kml else
1188 1.47 kml return 0;
1189 1.47 kml }
1190 1.47 kml
1191 1.1 cgd
1192 1.1 cgd /*
1193 1.1 cgd * Insert IP options into preformed packet.
1194 1.1 cgd * Adjust IP destination as required for IP source routing,
1195 1.1 cgd * as indicated by a non-zero in_addr at the start of the options.
1196 1.1 cgd */
1197 1.12 mycroft static struct mbuf *
1198 1.140 perry ip_insertoptions(struct mbuf *m, struct mbuf *opt, int *phlen)
1199 1.1 cgd {
1200 1.71 augustss struct ipoption *p = mtod(opt, struct ipoption *);
1201 1.1 cgd struct mbuf *n;
1202 1.71 augustss struct ip *ip = mtod(m, struct ip *);
1203 1.1 cgd unsigned optlen;
1204 1.1 cgd
1205 1.1 cgd optlen = opt->m_len - sizeof(p->ipopt_dst);
1206 1.100 itojun if (optlen + ntohs(ip->ip_len) > IP_MAXPACKET)
1207 1.1 cgd return (m); /* XXX should fail */
1208 1.31 mycroft if (!in_nullhost(p->ipopt_dst))
1209 1.1 cgd ip->ip_dst = p->ipopt_dst;
1210 1.123 itojun if (M_READONLY(m) || M_LEADINGSPACE(m) < optlen) {
1211 1.1 cgd MGETHDR(n, M_DONTWAIT, MT_HEADER);
1212 1.1 cgd if (n == 0)
1213 1.1 cgd return (m);
1214 1.103 matt MCLAIM(n, m->m_owner);
1215 1.155 yamt M_MOVE_PKTHDR(n, m);
1216 1.1 cgd m->m_len -= sizeof(struct ip);
1217 1.1 cgd m->m_data += sizeof(struct ip);
1218 1.1 cgd n->m_next = m;
1219 1.1 cgd m = n;
1220 1.1 cgd m->m_len = optlen + sizeof(struct ip);
1221 1.1 cgd m->m_data += max_linkhdr;
1222 1.1 cgd bcopy((caddr_t)ip, mtod(m, caddr_t), sizeof(struct ip));
1223 1.1 cgd } else {
1224 1.1 cgd m->m_data -= optlen;
1225 1.1 cgd m->m_len += optlen;
1226 1.57 perry memmove(mtod(m, caddr_t), ip, sizeof(struct ip));
1227 1.1 cgd }
1228 1.87 yamt m->m_pkthdr.len += optlen;
1229 1.1 cgd ip = mtod(m, struct ip *);
1230 1.1 cgd bcopy((caddr_t)p->ipopt_list, (caddr_t)(ip + 1), (unsigned)optlen);
1231 1.1 cgd *phlen = sizeof(struct ip) + optlen;
1232 1.100 itojun ip->ip_len = htons(ntohs(ip->ip_len) + optlen);
1233 1.1 cgd return (m);
1234 1.1 cgd }
1235 1.1 cgd
1236 1.1 cgd /*
1237 1.1 cgd * Copy options from ip to jp,
1238 1.1 cgd * omitting those not copied during fragmentation.
1239 1.1 cgd */
1240 1.12 mycroft int
1241 1.140 perry ip_optcopy(struct ip *ip, struct ip *jp)
1242 1.1 cgd {
1243 1.71 augustss u_char *cp, *dp;
1244 1.1 cgd int opt, optlen, cnt;
1245 1.1 cgd
1246 1.1 cgd cp = (u_char *)(ip + 1);
1247 1.1 cgd dp = (u_char *)(jp + 1);
1248 1.1 cgd cnt = (ip->ip_hl << 2) - sizeof (struct ip);
1249 1.1 cgd for (; cnt > 0; cnt -= optlen, cp += optlen) {
1250 1.1 cgd opt = cp[0];
1251 1.1 cgd if (opt == IPOPT_EOL)
1252 1.1 cgd break;
1253 1.18 mycroft if (opt == IPOPT_NOP) {
1254 1.18 mycroft /* Preserve for IP mcast tunnel's LSRR alignment. */
1255 1.18 mycroft *dp++ = IPOPT_NOP;
1256 1.1 cgd optlen = 1;
1257 1.18 mycroft continue;
1258 1.74 itojun }
1259 1.74 itojun #ifdef DIAGNOSTIC
1260 1.74 itojun if (cnt < IPOPT_OLEN + sizeof(*cp))
1261 1.74 itojun panic("malformed IPv4 option passed to ip_optcopy");
1262 1.74 itojun #endif
1263 1.74 itojun optlen = cp[IPOPT_OLEN];
1264 1.74 itojun #ifdef DIAGNOSTIC
1265 1.74 itojun if (optlen < IPOPT_OLEN + sizeof(*cp) || optlen > cnt)
1266 1.74 itojun panic("malformed IPv4 option passed to ip_optcopy");
1267 1.74 itojun #endif
1268 1.1 cgd /* bogus lengths should have been caught by ip_dooptions */
1269 1.1 cgd if (optlen > cnt)
1270 1.1 cgd optlen = cnt;
1271 1.1 cgd if (IPOPT_COPIED(opt)) {
1272 1.1 cgd bcopy((caddr_t)cp, (caddr_t)dp, (unsigned)optlen);
1273 1.1 cgd dp += optlen;
1274 1.1 cgd }
1275 1.1 cgd }
1276 1.1 cgd for (optlen = dp - (u_char *)(jp+1); optlen & 0x3; optlen++)
1277 1.1 cgd *dp++ = IPOPT_EOL;
1278 1.1 cgd return (optlen);
1279 1.1 cgd }
1280 1.1 cgd
1281 1.1 cgd /*
1282 1.1 cgd * IP socket option processing.
1283 1.1 cgd */
1284 1.12 mycroft int
1285 1.140 perry ip_ctloutput(int op, struct socket *so, int level, int optname,
1286 1.140 perry struct mbuf **mp)
1287 1.1 cgd {
1288 1.71 augustss struct inpcb *inp = sotoinpcb(so);
1289 1.71 augustss struct mbuf *m = *mp;
1290 1.71 augustss int optval = 0;
1291 1.1 cgd int error = 0;
1292 1.109 jonathan #if defined(IPSEC) || defined(FAST_IPSEC)
1293 1.165 ad struct lwp *l = curlwp; /*XXX*/
1294 1.61 itojun #endif
1295 1.1 cgd
1296 1.18 mycroft if (level != IPPROTO_IP) {
1297 1.1 cgd error = EINVAL;
1298 1.18 mycroft if (op == PRCO_SETOPT && *mp)
1299 1.18 mycroft (void) m_free(*mp);
1300 1.18 mycroft } else switch (op) {
1301 1.1 cgd
1302 1.1 cgd case PRCO_SETOPT:
1303 1.1 cgd switch (optname) {
1304 1.1 cgd case IP_OPTIONS:
1305 1.1 cgd #ifdef notyet
1306 1.1 cgd case IP_RETOPTS:
1307 1.1 cgd return (ip_pcbopts(optname, &inp->inp_options, m));
1308 1.1 cgd #else
1309 1.1 cgd return (ip_pcbopts(&inp->inp_options, m));
1310 1.1 cgd #endif
1311 1.1 cgd
1312 1.1 cgd case IP_TOS:
1313 1.1 cgd case IP_TTL:
1314 1.1 cgd case IP_RECVOPTS:
1315 1.1 cgd case IP_RECVRETOPTS:
1316 1.1 cgd case IP_RECVDSTADDR:
1317 1.37 thorpej case IP_RECVIF:
1318 1.27 cgd if (m == NULL || m->m_len != sizeof(int))
1319 1.1 cgd error = EINVAL;
1320 1.1 cgd else {
1321 1.1 cgd optval = *mtod(m, int *);
1322 1.1 cgd switch (optname) {
1323 1.1 cgd
1324 1.1 cgd case IP_TOS:
1325 1.1 cgd inp->inp_ip.ip_tos = optval;
1326 1.1 cgd break;
1327 1.1 cgd
1328 1.1 cgd case IP_TTL:
1329 1.1 cgd inp->inp_ip.ip_ttl = optval;
1330 1.1 cgd break;
1331 1.1 cgd #define OPTSET(bit) \
1332 1.1 cgd if (optval) \
1333 1.1 cgd inp->inp_flags |= bit; \
1334 1.1 cgd else \
1335 1.1 cgd inp->inp_flags &= ~bit;
1336 1.1 cgd
1337 1.1 cgd case IP_RECVOPTS:
1338 1.1 cgd OPTSET(INP_RECVOPTS);
1339 1.1 cgd break;
1340 1.1 cgd
1341 1.1 cgd case IP_RECVRETOPTS:
1342 1.1 cgd OPTSET(INP_RECVRETOPTS);
1343 1.1 cgd break;
1344 1.1 cgd
1345 1.1 cgd case IP_RECVDSTADDR:
1346 1.1 cgd OPTSET(INP_RECVDSTADDR);
1347 1.1 cgd break;
1348 1.37 thorpej
1349 1.37 thorpej case IP_RECVIF:
1350 1.37 thorpej OPTSET(INP_RECVIF);
1351 1.37 thorpej break;
1352 1.1 cgd }
1353 1.1 cgd }
1354 1.1 cgd break;
1355 1.1 cgd #undef OPTSET
1356 1.18 mycroft
1357 1.18 mycroft case IP_MULTICAST_IF:
1358 1.18 mycroft case IP_MULTICAST_TTL:
1359 1.18 mycroft case IP_MULTICAST_LOOP:
1360 1.18 mycroft case IP_ADD_MEMBERSHIP:
1361 1.18 mycroft case IP_DROP_MEMBERSHIP:
1362 1.18 mycroft error = ip_setmoptions(optname, &inp->inp_moptions, m);
1363 1.18 mycroft break;
1364 1.1 cgd
1365 1.41 lukem case IP_PORTRANGE:
1366 1.41 lukem if (m == 0 || m->m_len != sizeof(int))
1367 1.41 lukem error = EINVAL;
1368 1.41 lukem else {
1369 1.41 lukem optval = *mtod(m, int *);
1370 1.41 lukem
1371 1.41 lukem switch (optval) {
1372 1.41 lukem
1373 1.41 lukem case IP_PORTRANGE_DEFAULT:
1374 1.41 lukem case IP_PORTRANGE_HIGH:
1375 1.41 lukem inp->inp_flags &= ~(INP_LOWPORT);
1376 1.41 lukem break;
1377 1.41 lukem
1378 1.41 lukem case IP_PORTRANGE_LOW:
1379 1.41 lukem inp->inp_flags |= INP_LOWPORT;
1380 1.41 lukem break;
1381 1.41 lukem
1382 1.41 lukem default:
1383 1.41 lukem error = EINVAL;
1384 1.41 lukem break;
1385 1.41 lukem }
1386 1.41 lukem }
1387 1.41 lukem break;
1388 1.41 lukem
1389 1.109 jonathan #if defined(IPSEC) || defined(FAST_IPSEC)
1390 1.61 itojun case IP_IPSEC_POLICY:
1391 1.66 itojun {
1392 1.61 itojun caddr_t req = NULL;
1393 1.66 itojun size_t len = 0;
1394 1.61 itojun int priv = 0;
1395 1.66 itojun
1396 1.61 itojun #ifdef __NetBSD__
1397 1.165 ad if (l == 0 || kauth_authorize_generic(l->l_cred,
1398 1.165 ad KAUTH_GENERIC_ISSUSER, &l->l_acflag))
1399 1.61 itojun priv = 0;
1400 1.61 itojun else
1401 1.61 itojun priv = 1;
1402 1.61 itojun #else
1403 1.61 itojun priv = (in6p->in6p_socket->so_state & SS_PRIV);
1404 1.61 itojun #endif
1405 1.66 itojun if (m) {
1406 1.61 itojun req = mtod(m, caddr_t);
1407 1.61 itojun len = m->m_len;
1408 1.61 itojun }
1409 1.66 itojun error = ipsec4_set_policy(inp, optname, req, len, priv);
1410 1.61 itojun break;
1411 1.61 itojun }
1412 1.61 itojun #endif /*IPSEC*/
1413 1.61 itojun
1414 1.1 cgd default:
1415 1.18 mycroft error = ENOPROTOOPT;
1416 1.1 cgd break;
1417 1.1 cgd }
1418 1.1 cgd if (m)
1419 1.1 cgd (void)m_free(m);
1420 1.1 cgd break;
1421 1.1 cgd
1422 1.1 cgd case PRCO_GETOPT:
1423 1.1 cgd switch (optname) {
1424 1.1 cgd case IP_OPTIONS:
1425 1.1 cgd case IP_RETOPTS:
1426 1.1 cgd *mp = m = m_get(M_WAIT, MT_SOOPTS);
1427 1.103 matt MCLAIM(m, so->so_mowner);
1428 1.1 cgd if (inp->inp_options) {
1429 1.1 cgd m->m_len = inp->inp_options->m_len;
1430 1.1 cgd bcopy(mtod(inp->inp_options, caddr_t),
1431 1.1 cgd mtod(m, caddr_t), (unsigned)m->m_len);
1432 1.1 cgd } else
1433 1.1 cgd m->m_len = 0;
1434 1.1 cgd break;
1435 1.1 cgd
1436 1.1 cgd case IP_TOS:
1437 1.1 cgd case IP_TTL:
1438 1.1 cgd case IP_RECVOPTS:
1439 1.1 cgd case IP_RECVRETOPTS:
1440 1.1 cgd case IP_RECVDSTADDR:
1441 1.37 thorpej case IP_RECVIF:
1442 1.40 matt case IP_ERRORMTU:
1443 1.1 cgd *mp = m = m_get(M_WAIT, MT_SOOPTS);
1444 1.103 matt MCLAIM(m, so->so_mowner);
1445 1.1 cgd m->m_len = sizeof(int);
1446 1.1 cgd switch (optname) {
1447 1.1 cgd
1448 1.1 cgd case IP_TOS:
1449 1.1 cgd optval = inp->inp_ip.ip_tos;
1450 1.1 cgd break;
1451 1.1 cgd
1452 1.1 cgd case IP_TTL:
1453 1.1 cgd optval = inp->inp_ip.ip_ttl;
1454 1.40 matt break;
1455 1.40 matt
1456 1.40 matt case IP_ERRORMTU:
1457 1.40 matt optval = inp->inp_errormtu;
1458 1.1 cgd break;
1459 1.1 cgd
1460 1.1 cgd #define OPTBIT(bit) (inp->inp_flags & bit ? 1 : 0)
1461 1.1 cgd
1462 1.1 cgd case IP_RECVOPTS:
1463 1.1 cgd optval = OPTBIT(INP_RECVOPTS);
1464 1.1 cgd break;
1465 1.1 cgd
1466 1.1 cgd case IP_RECVRETOPTS:
1467 1.1 cgd optval = OPTBIT(INP_RECVRETOPTS);
1468 1.1 cgd break;
1469 1.1 cgd
1470 1.1 cgd case IP_RECVDSTADDR:
1471 1.1 cgd optval = OPTBIT(INP_RECVDSTADDR);
1472 1.37 thorpej break;
1473 1.37 thorpej
1474 1.37 thorpej case IP_RECVIF:
1475 1.37 thorpej optval = OPTBIT(INP_RECVIF);
1476 1.1 cgd break;
1477 1.1 cgd }
1478 1.1 cgd *mtod(m, int *) = optval;
1479 1.1 cgd break;
1480 1.61 itojun
1481 1.134 minoura #if 0 /* defined(IPSEC) || defined(FAST_IPSEC) */
1482 1.134 minoura /* XXX: code broken */
1483 1.61 itojun case IP_IPSEC_POLICY:
1484 1.66 itojun {
1485 1.66 itojun caddr_t req = NULL;
1486 1.80 itojun size_t len = 0;
1487 1.66 itojun
1488 1.66 itojun if (m) {
1489 1.66 itojun req = mtod(m, caddr_t);
1490 1.66 itojun len = m->m_len;
1491 1.66 itojun }
1492 1.66 itojun error = ipsec4_get_policy(inp, req, len, mp);
1493 1.61 itojun break;
1494 1.66 itojun }
1495 1.61 itojun #endif /*IPSEC*/
1496 1.18 mycroft
1497 1.18 mycroft case IP_MULTICAST_IF:
1498 1.18 mycroft case IP_MULTICAST_TTL:
1499 1.18 mycroft case IP_MULTICAST_LOOP:
1500 1.18 mycroft case IP_ADD_MEMBERSHIP:
1501 1.18 mycroft case IP_DROP_MEMBERSHIP:
1502 1.18 mycroft error = ip_getmoptions(optname, inp->inp_moptions, mp);
1503 1.103 matt if (*mp)
1504 1.103 matt MCLAIM(*mp, so->so_mowner);
1505 1.41 lukem break;
1506 1.41 lukem
1507 1.41 lukem case IP_PORTRANGE:
1508 1.41 lukem *mp = m = m_get(M_WAIT, MT_SOOPTS);
1509 1.103 matt MCLAIM(m, so->so_mowner);
1510 1.41 lukem m->m_len = sizeof(int);
1511 1.41 lukem
1512 1.41 lukem if (inp->inp_flags & INP_LOWPORT)
1513 1.41 lukem optval = IP_PORTRANGE_LOW;
1514 1.41 lukem else
1515 1.41 lukem optval = IP_PORTRANGE_DEFAULT;
1516 1.41 lukem
1517 1.41 lukem *mtod(m, int *) = optval;
1518 1.18 mycroft break;
1519 1.1 cgd
1520 1.1 cgd default:
1521 1.18 mycroft error = ENOPROTOOPT;
1522 1.1 cgd break;
1523 1.1 cgd }
1524 1.1 cgd break;
1525 1.1 cgd }
1526 1.1 cgd return (error);
1527 1.1 cgd }
1528 1.1 cgd
1529 1.1 cgd /*
1530 1.1 cgd * Set up IP options in pcb for insertion in output packets.
1531 1.1 cgd * Store in mbuf with pointer in pcbopt, adding pseudo-option
1532 1.1 cgd * with destination address if source routed.
1533 1.1 cgd */
1534 1.12 mycroft int
1535 1.1 cgd #ifdef notyet
1536 1.140 perry ip_pcbopts(int optname, struct mbuf **pcbopt, struct mbuf *m)
1537 1.1 cgd #else
1538 1.140 perry ip_pcbopts(struct mbuf **pcbopt, struct mbuf *m)
1539 1.1 cgd #endif
1540 1.1 cgd {
1541 1.71 augustss int cnt, optlen;
1542 1.71 augustss u_char *cp;
1543 1.1 cgd u_char opt;
1544 1.1 cgd
1545 1.1 cgd /* turn off any old options */
1546 1.1 cgd if (*pcbopt)
1547 1.1 cgd (void)m_free(*pcbopt);
1548 1.1 cgd *pcbopt = 0;
1549 1.1 cgd if (m == (struct mbuf *)0 || m->m_len == 0) {
1550 1.1 cgd /*
1551 1.1 cgd * Only turning off any previous options.
1552 1.1 cgd */
1553 1.1 cgd if (m)
1554 1.1 cgd (void)m_free(m);
1555 1.1 cgd return (0);
1556 1.1 cgd }
1557 1.1 cgd
1558 1.85 ragge #ifndef __vax__
1559 1.21 cgd if (m->m_len % sizeof(int32_t))
1560 1.1 cgd goto bad;
1561 1.1 cgd #endif
1562 1.1 cgd /*
1563 1.1 cgd * IP first-hop destination address will be stored before
1564 1.1 cgd * actual options; move other options back
1565 1.1 cgd * and clear it when none present.
1566 1.1 cgd */
1567 1.1 cgd if (m->m_data + m->m_len + sizeof(struct in_addr) >= &m->m_dat[MLEN])
1568 1.1 cgd goto bad;
1569 1.1 cgd cnt = m->m_len;
1570 1.1 cgd m->m_len += sizeof(struct in_addr);
1571 1.1 cgd cp = mtod(m, u_char *) + sizeof(struct in_addr);
1572 1.57 perry memmove(cp, mtod(m, caddr_t), (unsigned)cnt);
1573 1.1 cgd bzero(mtod(m, caddr_t), sizeof(struct in_addr));
1574 1.1 cgd
1575 1.1 cgd for (; cnt > 0; cnt -= optlen, cp += optlen) {
1576 1.1 cgd opt = cp[IPOPT_OPTVAL];
1577 1.1 cgd if (opt == IPOPT_EOL)
1578 1.1 cgd break;
1579 1.1 cgd if (opt == IPOPT_NOP)
1580 1.1 cgd optlen = 1;
1581 1.1 cgd else {
1582 1.74 itojun if (cnt < IPOPT_OLEN + sizeof(*cp))
1583 1.74 itojun goto bad;
1584 1.1 cgd optlen = cp[IPOPT_OLEN];
1585 1.74 itojun if (optlen < IPOPT_OLEN + sizeof(*cp) || optlen > cnt)
1586 1.1 cgd goto bad;
1587 1.1 cgd }
1588 1.1 cgd switch (opt) {
1589 1.1 cgd
1590 1.1 cgd default:
1591 1.1 cgd break;
1592 1.1 cgd
1593 1.1 cgd case IPOPT_LSRR:
1594 1.1 cgd case IPOPT_SSRR:
1595 1.1 cgd /*
1596 1.1 cgd * user process specifies route as:
1597 1.1 cgd * ->A->B->C->D
1598 1.1 cgd * D must be our final destination (but we can't
1599 1.1 cgd * check that since we may not have connected yet).
1600 1.1 cgd * A is first hop destination, which doesn't appear in
1601 1.1 cgd * actual IP option, but is stored before the options.
1602 1.1 cgd */
1603 1.1 cgd if (optlen < IPOPT_MINOFF - 1 + sizeof(struct in_addr))
1604 1.1 cgd goto bad;
1605 1.1 cgd m->m_len -= sizeof(struct in_addr);
1606 1.1 cgd cnt -= sizeof(struct in_addr);
1607 1.1 cgd optlen -= sizeof(struct in_addr);
1608 1.1 cgd cp[IPOPT_OLEN] = optlen;
1609 1.1 cgd /*
1610 1.1 cgd * Move first hop before start of options.
1611 1.1 cgd */
1612 1.1 cgd bcopy((caddr_t)&cp[IPOPT_OFFSET+1], mtod(m, caddr_t),
1613 1.1 cgd sizeof(struct in_addr));
1614 1.1 cgd /*
1615 1.1 cgd * Then copy rest of options back
1616 1.1 cgd * to close up the deleted entry.
1617 1.1 cgd */
1618 1.132 christos (void)memmove(&cp[IPOPT_OFFSET+1],
1619 1.132 christos &cp[IPOPT_OFFSET+1] + sizeof(struct in_addr),
1620 1.132 christos (unsigned)cnt - (IPOPT_MINOFF - 1));
1621 1.1 cgd break;
1622 1.1 cgd }
1623 1.1 cgd }
1624 1.1 cgd if (m->m_len > MAX_IPOPTLEN + sizeof(struct in_addr))
1625 1.1 cgd goto bad;
1626 1.1 cgd *pcbopt = m;
1627 1.1 cgd return (0);
1628 1.1 cgd
1629 1.1 cgd bad:
1630 1.1 cgd (void)m_free(m);
1631 1.1 cgd return (EINVAL);
1632 1.1 cgd }
1633 1.5 hpeyerl
1634 1.5 hpeyerl /*
1635 1.81 itojun * following RFC1724 section 3.3, 0.0.0.0/8 is interpreted as interface index.
1636 1.81 itojun */
1637 1.81 itojun static struct ifnet *
1638 1.140 perry ip_multicast_if(struct in_addr *a, int *ifindexp)
1639 1.81 itojun {
1640 1.81 itojun int ifindex;
1641 1.111 itojun struct ifnet *ifp = NULL;
1642 1.110 itojun struct in_ifaddr *ia;
1643 1.81 itojun
1644 1.81 itojun if (ifindexp)
1645 1.81 itojun *ifindexp = 0;
1646 1.81 itojun if (ntohl(a->s_addr) >> 24 == 0) {
1647 1.81 itojun ifindex = ntohl(a->s_addr) & 0xffffff;
1648 1.129 itojun if (ifindex < 0 || if_indexlim <= ifindex)
1649 1.81 itojun return NULL;
1650 1.81 itojun ifp = ifindex2ifnet[ifindex];
1651 1.129 itojun if (!ifp)
1652 1.129 itojun return NULL;
1653 1.81 itojun if (ifindexp)
1654 1.81 itojun *ifindexp = ifindex;
1655 1.81 itojun } else {
1656 1.110 itojun LIST_FOREACH(ia, &IN_IFADDR_HASH(a->s_addr), ia_hash) {
1657 1.110 itojun if (in_hosteq(ia->ia_addr.sin_addr, *a) &&
1658 1.111 itojun (ia->ia_ifp->if_flags & IFF_MULTICAST) != 0) {
1659 1.111 itojun ifp = ia->ia_ifp;
1660 1.110 itojun break;
1661 1.111 itojun }
1662 1.110 itojun }
1663 1.81 itojun }
1664 1.81 itojun return ifp;
1665 1.81 itojun }
1666 1.81 itojun
1667 1.156 christos static int
1668 1.156 christos ip_getoptval(struct mbuf *m, u_int8_t *val, u_int maxval)
1669 1.156 christos {
1670 1.156 christos u_int tval;
1671 1.156 christos
1672 1.156 christos if (m == NULL)
1673 1.156 christos return EINVAL;
1674 1.156 christos
1675 1.156 christos switch (m->m_len) {
1676 1.156 christos case sizeof(u_char):
1677 1.156 christos tval = *(mtod(m, u_char *));
1678 1.156 christos break;
1679 1.156 christos case sizeof(u_int):
1680 1.156 christos tval = *(mtod(m, u_int *));
1681 1.156 christos break;
1682 1.156 christos default:
1683 1.156 christos return EINVAL;
1684 1.156 christos }
1685 1.156 christos
1686 1.156 christos if (tval > maxval)
1687 1.156 christos return EINVAL;
1688 1.156 christos
1689 1.156 christos *val = tval;
1690 1.156 christos return 0;
1691 1.156 christos }
1692 1.156 christos
1693 1.81 itojun /*
1694 1.5 hpeyerl * Set the IP multicast options in response to user setsockopt().
1695 1.5 hpeyerl */
1696 1.5 hpeyerl int
1697 1.140 perry ip_setmoptions(int optname, struct ip_moptions **imop, struct mbuf *m)
1698 1.5 hpeyerl {
1699 1.71 augustss int error = 0;
1700 1.71 augustss int i;
1701 1.5 hpeyerl struct in_addr addr;
1702 1.71 augustss struct ip_mreq *mreq;
1703 1.71 augustss struct ifnet *ifp;
1704 1.71 augustss struct ip_moptions *imo = *imop;
1705 1.5 hpeyerl struct route ro;
1706 1.71 augustss struct sockaddr_in *dst;
1707 1.81 itojun int ifindex;
1708 1.5 hpeyerl
1709 1.5 hpeyerl if (imo == NULL) {
1710 1.5 hpeyerl /*
1711 1.5 hpeyerl * No multicast option buffer attached to the pcb;
1712 1.5 hpeyerl * allocate one and initialize to default values.
1713 1.5 hpeyerl */
1714 1.22 cgd imo = (struct ip_moptions *)malloc(sizeof(*imo), M_IPMOPTS,
1715 1.5 hpeyerl M_WAITOK);
1716 1.5 hpeyerl
1717 1.5 hpeyerl if (imo == NULL)
1718 1.5 hpeyerl return (ENOBUFS);
1719 1.5 hpeyerl *imop = imo;
1720 1.5 hpeyerl imo->imo_multicast_ifp = NULL;
1721 1.81 itojun imo->imo_multicast_addr.s_addr = INADDR_ANY;
1722 1.5 hpeyerl imo->imo_multicast_ttl = IP_DEFAULT_MULTICAST_TTL;
1723 1.5 hpeyerl imo->imo_multicast_loop = IP_DEFAULT_MULTICAST_LOOP;
1724 1.5 hpeyerl imo->imo_num_memberships = 0;
1725 1.5 hpeyerl }
1726 1.5 hpeyerl
1727 1.5 hpeyerl switch (optname) {
1728 1.5 hpeyerl
1729 1.5 hpeyerl case IP_MULTICAST_IF:
1730 1.5 hpeyerl /*
1731 1.5 hpeyerl * Select the interface for outgoing multicast packets.
1732 1.5 hpeyerl */
1733 1.5 hpeyerl if (m == NULL || m->m_len != sizeof(struct in_addr)) {
1734 1.5 hpeyerl error = EINVAL;
1735 1.5 hpeyerl break;
1736 1.5 hpeyerl }
1737 1.5 hpeyerl addr = *(mtod(m, struct in_addr *));
1738 1.5 hpeyerl /*
1739 1.5 hpeyerl * INADDR_ANY is used to remove a previous selection.
1740 1.11 mycroft * When no interface is selected, a default one is
1741 1.5 hpeyerl * chosen every time a multicast packet is sent.
1742 1.5 hpeyerl */
1743 1.31 mycroft if (in_nullhost(addr)) {
1744 1.5 hpeyerl imo->imo_multicast_ifp = NULL;
1745 1.5 hpeyerl break;
1746 1.5 hpeyerl }
1747 1.5 hpeyerl /*
1748 1.5 hpeyerl * The selected interface is identified by its local
1749 1.5 hpeyerl * IP address. Find the interface and confirm that
1750 1.11 mycroft * it supports multicasting.
1751 1.5 hpeyerl */
1752 1.81 itojun ifp = ip_multicast_if(&addr, &ifindex);
1753 1.5 hpeyerl if (ifp == NULL || (ifp->if_flags & IFF_MULTICAST) == 0) {
1754 1.5 hpeyerl error = EADDRNOTAVAIL;
1755 1.5 hpeyerl break;
1756 1.5 hpeyerl }
1757 1.5 hpeyerl imo->imo_multicast_ifp = ifp;
1758 1.81 itojun if (ifindex)
1759 1.81 itojun imo->imo_multicast_addr = addr;
1760 1.81 itojun else
1761 1.81 itojun imo->imo_multicast_addr.s_addr = INADDR_ANY;
1762 1.5 hpeyerl break;
1763 1.5 hpeyerl
1764 1.5 hpeyerl case IP_MULTICAST_TTL:
1765 1.5 hpeyerl /*
1766 1.5 hpeyerl * Set the IP time-to-live for outgoing multicast packets.
1767 1.5 hpeyerl */
1768 1.157 seb error = ip_getoptval(m, &imo->imo_multicast_ttl, MAXTTL);
1769 1.5 hpeyerl break;
1770 1.11 mycroft
1771 1.5 hpeyerl case IP_MULTICAST_LOOP:
1772 1.5 hpeyerl /*
1773 1.5 hpeyerl * Set the loopback flag for outgoing multicast packets.
1774 1.5 hpeyerl * Must be zero or one.
1775 1.5 hpeyerl */
1776 1.156 christos error = ip_getoptval(m, &imo->imo_multicast_loop, 1);
1777 1.5 hpeyerl break;
1778 1.5 hpeyerl
1779 1.5 hpeyerl case IP_ADD_MEMBERSHIP:
1780 1.5 hpeyerl /*
1781 1.5 hpeyerl * Add a multicast group membership.
1782 1.5 hpeyerl * Group must be a valid IP multicast address.
1783 1.5 hpeyerl */
1784 1.5 hpeyerl if (m == NULL || m->m_len != sizeof(struct ip_mreq)) {
1785 1.5 hpeyerl error = EINVAL;
1786 1.5 hpeyerl break;
1787 1.5 hpeyerl }
1788 1.5 hpeyerl mreq = mtod(m, struct ip_mreq *);
1789 1.23 mycroft if (!IN_MULTICAST(mreq->imr_multiaddr.s_addr)) {
1790 1.5 hpeyerl error = EINVAL;
1791 1.5 hpeyerl break;
1792 1.5 hpeyerl }
1793 1.5 hpeyerl /*
1794 1.5 hpeyerl * If no interface address was provided, use the interface of
1795 1.5 hpeyerl * the route to the given multicast address.
1796 1.5 hpeyerl */
1797 1.31 mycroft if (in_nullhost(mreq->imr_interface)) {
1798 1.53 ws bzero((caddr_t)&ro, sizeof(ro));
1799 1.5 hpeyerl ro.ro_rt = NULL;
1800 1.24 mycroft dst = satosin(&ro.ro_dst);
1801 1.5 hpeyerl dst->sin_len = sizeof(*dst);
1802 1.5 hpeyerl dst->sin_family = AF_INET;
1803 1.5 hpeyerl dst->sin_addr = mreq->imr_multiaddr;
1804 1.5 hpeyerl rtalloc(&ro);
1805 1.5 hpeyerl if (ro.ro_rt == NULL) {
1806 1.5 hpeyerl error = EADDRNOTAVAIL;
1807 1.5 hpeyerl break;
1808 1.5 hpeyerl }
1809 1.5 hpeyerl ifp = ro.ro_rt->rt_ifp;
1810 1.5 hpeyerl rtfree(ro.ro_rt);
1811 1.23 mycroft } else {
1812 1.81 itojun ifp = ip_multicast_if(&mreq->imr_interface, NULL);
1813 1.5 hpeyerl }
1814 1.5 hpeyerl /*
1815 1.5 hpeyerl * See if we found an interface, and confirm that it
1816 1.5 hpeyerl * supports multicast.
1817 1.5 hpeyerl */
1818 1.11 mycroft if (ifp == NULL || (ifp->if_flags & IFF_MULTICAST) == 0) {
1819 1.5 hpeyerl error = EADDRNOTAVAIL;
1820 1.5 hpeyerl break;
1821 1.5 hpeyerl }
1822 1.5 hpeyerl /*
1823 1.5 hpeyerl * See if the membership already exists or if all the
1824 1.5 hpeyerl * membership slots are full.
1825 1.11 mycroft */
1826 1.5 hpeyerl for (i = 0; i < imo->imo_num_memberships; ++i) {
1827 1.5 hpeyerl if (imo->imo_membership[i]->inm_ifp == ifp &&
1828 1.31 mycroft in_hosteq(imo->imo_membership[i]->inm_addr,
1829 1.31 mycroft mreq->imr_multiaddr))
1830 1.5 hpeyerl break;
1831 1.11 mycroft }
1832 1.5 hpeyerl if (i < imo->imo_num_memberships) {
1833 1.5 hpeyerl error = EADDRINUSE;
1834 1.5 hpeyerl break;
1835 1.5 hpeyerl }
1836 1.5 hpeyerl if (i == IP_MAX_MEMBERSHIPS) {
1837 1.11 mycroft error = ETOOMANYREFS;
1838 1.5 hpeyerl break;
1839 1.5 hpeyerl }
1840 1.5 hpeyerl /*
1841 1.5 hpeyerl * Everything looks good; add a new record to the multicast
1842 1.5 hpeyerl * address list for the given interface.
1843 1.5 hpeyerl */
1844 1.5 hpeyerl if ((imo->imo_membership[i] =
1845 1.5 hpeyerl in_addmulti(&mreq->imr_multiaddr, ifp)) == NULL) {
1846 1.5 hpeyerl error = ENOBUFS;
1847 1.5 hpeyerl break;
1848 1.5 hpeyerl }
1849 1.5 hpeyerl ++imo->imo_num_memberships;
1850 1.5 hpeyerl break;
1851 1.5 hpeyerl
1852 1.5 hpeyerl case IP_DROP_MEMBERSHIP:
1853 1.5 hpeyerl /*
1854 1.5 hpeyerl * Drop a multicast group membership.
1855 1.5 hpeyerl * Group must be a valid IP multicast address.
1856 1.5 hpeyerl */
1857 1.5 hpeyerl if (m == NULL || m->m_len != sizeof(struct ip_mreq)) {
1858 1.5 hpeyerl error = EINVAL;
1859 1.5 hpeyerl break;
1860 1.5 hpeyerl }
1861 1.5 hpeyerl mreq = mtod(m, struct ip_mreq *);
1862 1.23 mycroft if (!IN_MULTICAST(mreq->imr_multiaddr.s_addr)) {
1863 1.5 hpeyerl error = EINVAL;
1864 1.5 hpeyerl break;
1865 1.5 hpeyerl }
1866 1.5 hpeyerl /*
1867 1.5 hpeyerl * If an interface address was specified, get a pointer
1868 1.5 hpeyerl * to its ifnet structure.
1869 1.5 hpeyerl */
1870 1.31 mycroft if (in_nullhost(mreq->imr_interface))
1871 1.5 hpeyerl ifp = NULL;
1872 1.5 hpeyerl else {
1873 1.81 itojun ifp = ip_multicast_if(&mreq->imr_interface, NULL);
1874 1.5 hpeyerl if (ifp == NULL) {
1875 1.5 hpeyerl error = EADDRNOTAVAIL;
1876 1.5 hpeyerl break;
1877 1.5 hpeyerl }
1878 1.5 hpeyerl }
1879 1.5 hpeyerl /*
1880 1.5 hpeyerl * Find the membership in the membership array.
1881 1.5 hpeyerl */
1882 1.5 hpeyerl for (i = 0; i < imo->imo_num_memberships; ++i) {
1883 1.5 hpeyerl if ((ifp == NULL ||
1884 1.5 hpeyerl imo->imo_membership[i]->inm_ifp == ifp) &&
1885 1.31 mycroft in_hosteq(imo->imo_membership[i]->inm_addr,
1886 1.31 mycroft mreq->imr_multiaddr))
1887 1.5 hpeyerl break;
1888 1.5 hpeyerl }
1889 1.5 hpeyerl if (i == imo->imo_num_memberships) {
1890 1.5 hpeyerl error = EADDRNOTAVAIL;
1891 1.5 hpeyerl break;
1892 1.5 hpeyerl }
1893 1.5 hpeyerl /*
1894 1.5 hpeyerl * Give up the multicast address record to which the
1895 1.5 hpeyerl * membership points.
1896 1.5 hpeyerl */
1897 1.11 mycroft in_delmulti(imo->imo_membership[i]);
1898 1.5 hpeyerl /*
1899 1.5 hpeyerl * Remove the gap in the membership array.
1900 1.5 hpeyerl */
1901 1.5 hpeyerl for (++i; i < imo->imo_num_memberships; ++i)
1902 1.5 hpeyerl imo->imo_membership[i-1] = imo->imo_membership[i];
1903 1.5 hpeyerl --imo->imo_num_memberships;
1904 1.5 hpeyerl break;
1905 1.5 hpeyerl
1906 1.5 hpeyerl default:
1907 1.5 hpeyerl error = EOPNOTSUPP;
1908 1.5 hpeyerl break;
1909 1.5 hpeyerl }
1910 1.5 hpeyerl
1911 1.5 hpeyerl /*
1912 1.5 hpeyerl * If all options have default values, no need to keep the mbuf.
1913 1.5 hpeyerl */
1914 1.5 hpeyerl if (imo->imo_multicast_ifp == NULL &&
1915 1.5 hpeyerl imo->imo_multicast_ttl == IP_DEFAULT_MULTICAST_TTL &&
1916 1.5 hpeyerl imo->imo_multicast_loop == IP_DEFAULT_MULTICAST_LOOP &&
1917 1.5 hpeyerl imo->imo_num_memberships == 0) {
1918 1.5 hpeyerl free(*imop, M_IPMOPTS);
1919 1.5 hpeyerl *imop = NULL;
1920 1.5 hpeyerl }
1921 1.5 hpeyerl
1922 1.5 hpeyerl return (error);
1923 1.5 hpeyerl }
1924 1.5 hpeyerl
1925 1.5 hpeyerl /*
1926 1.5 hpeyerl * Return the IP multicast options in response to user getsockopt().
1927 1.5 hpeyerl */
1928 1.5 hpeyerl int
1929 1.140 perry ip_getmoptions(int optname, struct ip_moptions *imo, struct mbuf **mp)
1930 1.5 hpeyerl {
1931 1.5 hpeyerl u_char *ttl;
1932 1.5 hpeyerl u_char *loop;
1933 1.5 hpeyerl struct in_addr *addr;
1934 1.5 hpeyerl struct in_ifaddr *ia;
1935 1.5 hpeyerl
1936 1.5 hpeyerl *mp = m_get(M_WAIT, MT_SOOPTS);
1937 1.5 hpeyerl
1938 1.5 hpeyerl switch (optname) {
1939 1.5 hpeyerl
1940 1.5 hpeyerl case IP_MULTICAST_IF:
1941 1.5 hpeyerl addr = mtod(*mp, struct in_addr *);
1942 1.5 hpeyerl (*mp)->m_len = sizeof(struct in_addr);
1943 1.5 hpeyerl if (imo == NULL || imo->imo_multicast_ifp == NULL)
1944 1.31 mycroft *addr = zeroin_addr;
1945 1.81 itojun else if (imo->imo_multicast_addr.s_addr) {
1946 1.81 itojun /* return the value user has set */
1947 1.81 itojun *addr = imo->imo_multicast_addr;
1948 1.81 itojun } else {
1949 1.5 hpeyerl IFP_TO_IA(imo->imo_multicast_ifp, ia);
1950 1.31 mycroft *addr = ia ? ia->ia_addr.sin_addr : zeroin_addr;
1951 1.5 hpeyerl }
1952 1.5 hpeyerl return (0);
1953 1.5 hpeyerl
1954 1.5 hpeyerl case IP_MULTICAST_TTL:
1955 1.5 hpeyerl ttl = mtod(*mp, u_char *);
1956 1.5 hpeyerl (*mp)->m_len = 1;
1957 1.31 mycroft *ttl = imo ? imo->imo_multicast_ttl
1958 1.31 mycroft : IP_DEFAULT_MULTICAST_TTL;
1959 1.5 hpeyerl return (0);
1960 1.5 hpeyerl
1961 1.5 hpeyerl case IP_MULTICAST_LOOP:
1962 1.5 hpeyerl loop = mtod(*mp, u_char *);
1963 1.5 hpeyerl (*mp)->m_len = 1;
1964 1.31 mycroft *loop = imo ? imo->imo_multicast_loop
1965 1.31 mycroft : IP_DEFAULT_MULTICAST_LOOP;
1966 1.5 hpeyerl return (0);
1967 1.5 hpeyerl
1968 1.5 hpeyerl default:
1969 1.5 hpeyerl return (EOPNOTSUPP);
1970 1.5 hpeyerl }
1971 1.5 hpeyerl }
1972 1.5 hpeyerl
1973 1.5 hpeyerl /*
1974 1.5 hpeyerl * Discard the IP multicast options.
1975 1.5 hpeyerl */
1976 1.5 hpeyerl void
1977 1.140 perry ip_freemoptions(struct ip_moptions *imo)
1978 1.5 hpeyerl {
1979 1.71 augustss int i;
1980 1.5 hpeyerl
1981 1.5 hpeyerl if (imo != NULL) {
1982 1.5 hpeyerl for (i = 0; i < imo->imo_num_memberships; ++i)
1983 1.5 hpeyerl in_delmulti(imo->imo_membership[i]);
1984 1.5 hpeyerl free(imo, M_IPMOPTS);
1985 1.5 hpeyerl }
1986 1.5 hpeyerl }
1987 1.5 hpeyerl
1988 1.5 hpeyerl /*
1989 1.5 hpeyerl * Routine called from ip_output() to loop back a copy of an IP multicast
1990 1.5 hpeyerl * packet to the input queue of a specified interface. Note that this
1991 1.5 hpeyerl * calls the output routine of the loopback "driver", but with an interface
1992 1.137 peter * pointer that might NOT be lo0ifp -- easier than replicating that code here.
1993 1.5 hpeyerl */
1994 1.12 mycroft static void
1995 1.140 perry ip_mloopback(struct ifnet *ifp, struct mbuf *m, struct sockaddr_in *dst)
1996 1.5 hpeyerl {
1997 1.71 augustss struct ip *ip;
1998 1.5 hpeyerl struct mbuf *copym;
1999 1.5 hpeyerl
2000 1.5 hpeyerl copym = m_copy(m, 0, M_COPYALL);
2001 1.70 itojun if (copym != NULL
2002 1.65 itojun && (copym->m_flags & M_EXT || copym->m_len < sizeof(struct ip)))
2003 1.65 itojun copym = m_pullup(copym, sizeof(struct ip));
2004 1.5 hpeyerl if (copym != NULL) {
2005 1.5 hpeyerl /*
2006 1.5 hpeyerl * We don't bother to fragment if the IP length is greater
2007 1.5 hpeyerl * than the interface's MTU. Can this possibly matter?
2008 1.5 hpeyerl */
2009 1.5 hpeyerl ip = mtod(copym, struct ip *);
2010 1.93 itojun
2011 1.93 itojun if (copym->m_pkthdr.csum_flags & (M_CSUM_TCPv4|M_CSUM_UDPv4)) {
2012 1.94 thorpej in_delayed_cksum(copym);
2013 1.93 itojun copym->m_pkthdr.csum_flags &=
2014 1.93 itojun ~(M_CSUM_TCPv4|M_CSUM_UDPv4);
2015 1.93 itojun }
2016 1.93 itojun
2017 1.5 hpeyerl ip->ip_sum = 0;
2018 1.5 hpeyerl ip->ip_sum = in_cksum(copym, ip->ip_hl << 2);
2019 1.24 mycroft (void) looutput(ifp, copym, sintosa(dst), NULL);
2020 1.5 hpeyerl }
2021 1.5 hpeyerl }
2022