ip_output.c revision 135160
1/*
2 * Copyright (c) 1982, 1986, 1988, 1990, 1993
3 *	The Regents of the University of California.  All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 * 1. Redistributions of source code must retain the above copyright
9 *    notice, this list of conditions and the following disclaimer.
10 * 2. Redistributions in binary form must reproduce the above copyright
11 *    notice, this list of conditions and the following disclaimer in the
12 *    documentation and/or other materials provided with the distribution.
13 * 4. Neither the name of the University nor the names of its contributors
14 *    may be used to endorse or promote products derived from this software
15 *    without specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
18 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
19 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
20 * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
21 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
22 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
23 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
24 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
25 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
26 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
27 * SUCH DAMAGE.
28 *
29 *	@(#)ip_output.c	8.3 (Berkeley) 1/21/94
30 * $FreeBSD: head/sys/netinet/ip_output.c 135160 2004-09-13 17:09:06Z andre $
31 */
32
33#include "opt_ipfw.h"
34#include "opt_ipsec.h"
35#include "opt_mac.h"
36#include "opt_mbuf_stress_test.h"
37
38#include <sys/param.h>
39#include <sys/systm.h>
40#include <sys/kernel.h>
41#include <sys/mac.h>
42#include <sys/malloc.h>
43#include <sys/mbuf.h>
44#include <sys/protosw.h>
45#include <sys/socket.h>
46#include <sys/socketvar.h>
47#include <sys/sysctl.h>
48
49#include <net/if.h>
50#include <net/netisr.h>
51#include <net/pfil.h>
52#include <net/route.h>
53
54#include <netinet/in.h>
55#include <netinet/in_systm.h>
56#include <netinet/ip.h>
57#include <netinet/in_pcb.h>
58#include <netinet/in_var.h>
59#include <netinet/ip_var.h>
60
61
62#include <machine/in_cksum.h>
63
64static MALLOC_DEFINE(M_IPMOPTS, "ip_moptions", "internet multicast options");
65
66#ifdef IPSEC
67#include <netinet6/ipsec.h>
68#include <netkey/key.h>
69#ifdef IPSEC_DEBUG
70#include <netkey/key_debug.h>
71#else
72#define	KEYDEBUG(lev,arg)
73#endif
74#endif /*IPSEC*/
75
76#ifdef FAST_IPSEC
77#include <netipsec/ipsec.h>
78#include <netipsec/xform.h>
79#include <netipsec/key.h>
80#endif /*FAST_IPSEC*/
81
82#define print_ip(x, a, y)	 printf("%s %d.%d.%d.%d%s",\
83				x, (ntohl(a.s_addr)>>24)&0xFF,\
84				  (ntohl(a.s_addr)>>16)&0xFF,\
85				  (ntohl(a.s_addr)>>8)&0xFF,\
86				  (ntohl(a.s_addr))&0xFF, y);
87
88u_short ip_id;
89
90#ifdef MBUF_STRESS_TEST
91int mbuf_frag_size = 0;
92SYSCTL_INT(_net_inet_ip, OID_AUTO, mbuf_frag_size, CTLFLAG_RW,
93	&mbuf_frag_size, 0, "Fragment outgoing mbufs to this size");
94#endif
95
96static struct mbuf *ip_insertoptions(struct mbuf *, struct mbuf *, int *);
97static struct ifnet *ip_multicast_if(struct in_addr *, int *);
98static void	ip_mloopback
99	(struct ifnet *, struct mbuf *, struct sockaddr_in *, int);
100static int	ip_getmoptions
101	(struct sockopt *, struct ip_moptions *);
102static int	ip_pcbopts(int, struct mbuf **, struct mbuf *);
103static int	ip_setmoptions
104	(struct sockopt *, struct ip_moptions **);
105
106int	ip_optcopy(struct ip *, struct ip *);
107
108
109extern	struct protosw inetsw[];
110
111/*
112 * IP output.  The packet in mbuf chain m contains a skeletal IP
113 * header (with len, off, ttl, proto, tos, src, dst).
114 * The mbuf chain containing the packet will be freed.
115 * The mbuf opt, if present, will not be freed.
116 * In the IP forwarding case, the packet will arrive with options already
117 * inserted, so must have a NULL opt pointer.
118 */
119int
120ip_output(struct mbuf *m, struct mbuf *opt, struct route *ro,
121	int flags, struct ip_moptions *imo, struct inpcb *inp)
122{
123	struct ip *ip;
124	struct ifnet *ifp = NULL;	/* keep compiler happy */
125	struct mbuf *m0;
126	int hlen = sizeof (struct ip);
127	int len, error = 0;
128	struct sockaddr_in *dst = NULL;	/* keep compiler happy */
129	struct in_ifaddr *ia = NULL;
130	int isbroadcast, sw_csum;
131	struct route iproute;
132	struct in_addr odst;
133#ifdef IPFIREWALL_FORWARD
134	struct m_tag *fwd_tag = NULL;
135#endif
136#ifdef IPSEC
137	struct secpolicy *sp = NULL;
138#endif
139#ifdef FAST_IPSEC
140	struct secpolicy *sp = NULL;
141	struct tdb_ident *tdbi;
142	struct m_tag *mtag;
143	int s;
144#endif /* FAST_IPSEC */
145
146	M_ASSERTPKTHDR(m);
147
148	if (ro == NULL) {
149		ro = &iproute;
150		bzero(ro, sizeof (*ro));
151	}
152
153	if (inp != NULL)
154		INP_LOCK_ASSERT(inp);
155
156	if (opt) {
157		len = 0;
158		m = ip_insertoptions(m, opt, &len);
159		if (len != 0)
160			hlen = len;
161	}
162	ip = mtod(m, struct ip *);
163
164	/*
165	 * Fill in IP header.  If we are not allowing fragmentation,
166	 * then the ip_id field is meaningless, but we don't set it
167	 * to zero.  Doing so causes various problems when devices along
168	 * the path (routers, load balancers, firewalls, etc.) illegally
169	 * disable DF on our packet.  Note that a 16-bit counter
170	 * will wrap around in less than 10 seconds at 100 Mbit/s on a
171	 * medium with MTU 1500.  See Steven M. Bellovin, "A Technique
172	 * for Counting NATted Hosts", Proc. IMW'02, available at
173	 * <http://www.research.att.com/~smb/papers/fnat.pdf>.
174	 */
175	if ((flags & (IP_FORWARDING|IP_RAWOUTPUT)) == 0) {
176		ip->ip_v = IPVERSION;
177		ip->ip_hl = hlen >> 2;
178		ip->ip_id = ip_newid();
179		ipstat.ips_localout++;
180	} else {
181		hlen = ip->ip_hl << 2;
182	}
183
184	dst = (struct sockaddr_in *)&ro->ro_dst;
185again:
186	/*
187	 * If there is a cached route,
188	 * check that it is to the same destination
189	 * and is still up.  If not, free it and try again.
190	 * The address family should also be checked in case of sharing the
191	 * cache with IPv6.
192	 */
193	if (ro->ro_rt && ((ro->ro_rt->rt_flags & RTF_UP) == 0 ||
194			  dst->sin_family != AF_INET ||
195			  dst->sin_addr.s_addr != ip->ip_dst.s_addr)) {
196		RTFREE(ro->ro_rt);
197		ro->ro_rt = (struct rtentry *)0;
198	}
199#ifdef IPFIREWALL_FORWARD
200	if (ro->ro_rt == NULL && fwd_tag == NULL) {
201#else
202	if (ro->ro_rt == NULL) {
203#endif
204		bzero(dst, sizeof(*dst));
205		dst->sin_family = AF_INET;
206		dst->sin_len = sizeof(*dst);
207		dst->sin_addr = ip->ip_dst;
208	}
209	/*
210	 * If routing to interface only,
211	 * short circuit routing lookup.
212	 */
213	if (flags & IP_ROUTETOIF) {
214		if ((ia = ifatoia(ifa_ifwithdstaddr(sintosa(dst)))) == NULL &&
215		    (ia = ifatoia(ifa_ifwithnet(sintosa(dst)))) == NULL) {
216			ipstat.ips_noroute++;
217			error = ENETUNREACH;
218			goto bad;
219		}
220		ifp = ia->ia_ifp;
221		ip->ip_ttl = 1;
222		isbroadcast = in_broadcast(dst->sin_addr, ifp);
223	} else if (IN_MULTICAST(ntohl(ip->ip_dst.s_addr)) &&
224	    imo != NULL && imo->imo_multicast_ifp != NULL) {
225		/*
226		 * Bypass the normal routing lookup for multicast
227		 * packets if the interface is specified.
228		 */
229		ifp = imo->imo_multicast_ifp;
230		IFP_TO_IA(ifp, ia);
231		isbroadcast = 0;	/* fool gcc */
232	} else {
233		/*
234		 * We want to do any cloning requested by the link layer,
235		 * as this is probably required in all cases for correct
236		 * operation (as it is for ARP).
237		 */
238		if (ro->ro_rt == NULL)
239			rtalloc_ign(ro, 0);
240		if (ro->ro_rt == NULL) {
241			ipstat.ips_noroute++;
242			error = EHOSTUNREACH;
243			goto bad;
244		}
245		ia = ifatoia(ro->ro_rt->rt_ifa);
246		ifp = ro->ro_rt->rt_ifp;
247		ro->ro_rt->rt_rmx.rmx_pksent++;
248		if (ro->ro_rt->rt_flags & RTF_GATEWAY)
249			dst = (struct sockaddr_in *)ro->ro_rt->rt_gateway;
250		if (ro->ro_rt->rt_flags & RTF_HOST)
251			isbroadcast = (ro->ro_rt->rt_flags & RTF_BROADCAST);
252		else
253			isbroadcast = in_broadcast(dst->sin_addr, ifp);
254	}
255	if (IN_MULTICAST(ntohl(ip->ip_dst.s_addr))) {
256		struct in_multi *inm;
257
258		m->m_flags |= M_MCAST;
259		/*
260		 * IP destination address is multicast.  Make sure "dst"
261		 * still points to the address in "ro".  (It may have been
262		 * changed to point to a gateway address, above.)
263		 */
264		dst = (struct sockaddr_in *)&ro->ro_dst;
265		/*
266		 * See if the caller provided any multicast options
267		 */
268		if (imo != NULL) {
269			ip->ip_ttl = imo->imo_multicast_ttl;
270			if (imo->imo_multicast_vif != -1)
271				ip->ip_src.s_addr =
272				    ip_mcast_src ?
273				    ip_mcast_src(imo->imo_multicast_vif) :
274				    INADDR_ANY;
275		} else
276			ip->ip_ttl = IP_DEFAULT_MULTICAST_TTL;
277		/*
278		 * Confirm that the outgoing interface supports multicast.
279		 */
280		if ((imo == NULL) || (imo->imo_multicast_vif == -1)) {
281			if ((ifp->if_flags & IFF_MULTICAST) == 0) {
282				ipstat.ips_noroute++;
283				error = ENETUNREACH;
284				goto bad;
285			}
286		}
287		/*
288		 * If source address not specified yet, use address
289		 * of outgoing interface.
290		 */
291		if (ip->ip_src.s_addr == INADDR_ANY) {
292			/* Interface may have no addresses. */
293			if (ia != NULL)
294				ip->ip_src = IA_SIN(ia)->sin_addr;
295		}
296
297		IN_LOOKUP_MULTI(ip->ip_dst, ifp, inm);
298		if (inm != NULL &&
299		   (imo == NULL || imo->imo_multicast_loop)) {
300			/*
301			 * If we belong to the destination multicast group
302			 * on the outgoing interface, and the caller did not
303			 * forbid loopback, loop back a copy.
304			 */
305			ip_mloopback(ifp, m, dst, hlen);
306		}
307		else {
308			/*
309			 * If we are acting as a multicast router, perform
310			 * multicast forwarding as if the packet had just
311			 * arrived on the interface to which we are about
312			 * to send.  The multicast forwarding function
313			 * recursively calls this function, using the
314			 * IP_FORWARDING flag to prevent infinite recursion.
315			 *
316			 * Multicasts that are looped back by ip_mloopback(),
317			 * above, will be forwarded by the ip_input() routine,
318			 * if necessary.
319			 */
320			if (ip_mrouter && (flags & IP_FORWARDING) == 0) {
321				/*
322				 * If rsvp daemon is not running, do not
323				 * set ip_moptions. This ensures that the packet
324				 * is multicast and not just sent down one link
325				 * as prescribed by rsvpd.
326				 */
327				if (!rsvp_on)
328					imo = NULL;
329				if (ip_mforward &&
330				    ip_mforward(ip, ifp, m, imo) != 0) {
331					m_freem(m);
332					goto done;
333				}
334			}
335		}
336
337		/*
338		 * Multicasts with a time-to-live of zero may be looped-
339		 * back, above, but must not be transmitted on a network.
340		 * Also, multicasts addressed to the loopback interface
341		 * are not sent -- the above call to ip_mloopback() will
342		 * loop back a copy if this host actually belongs to the
343		 * destination group on the loopback interface.
344		 */
345		if (ip->ip_ttl == 0 || ifp->if_flags & IFF_LOOPBACK) {
346			m_freem(m);
347			goto done;
348		}
349
350		goto sendit;
351	}
352#ifndef notdef
353	/*
354	 * If the source address is not specified yet, use the address
355	 * of the outoing interface.
356	 */
357	if (ip->ip_src.s_addr == INADDR_ANY) {
358		/* Interface may have no addresses. */
359		if (ia != NULL) {
360			ip->ip_src = IA_SIN(ia)->sin_addr;
361		}
362	}
363#endif /* notdef */
364	/*
365	 * Verify that we have any chance at all of being able to queue the
366	 * packet or packet fragments, unless ALTQ is enabled on the given
367	 * interface in which case packetdrop should be done by queueing.
368	 */
369#ifdef ALTQ
370	if ((!ALTQ_IS_ENABLED(&ifp->if_snd)) &&
371	    ((ifp->if_snd.ifq_len + ip->ip_len / ifp->if_mtu + 1) >=
372	    ifp->if_snd.ifq_maxlen))
373#else
374	if ((ifp->if_snd.ifq_len + ip->ip_len / ifp->if_mtu + 1) >=
375	    ifp->if_snd.ifq_maxlen)
376#endif /* ALTQ */
377	{
378		error = ENOBUFS;
379		ipstat.ips_odropped++;
380		goto bad;
381	}
382
383	/*
384	 * Look for broadcast address and
385	 * verify user is allowed to send
386	 * such a packet.
387	 */
388	if (isbroadcast) {
389		if ((ifp->if_flags & IFF_BROADCAST) == 0) {
390			error = EADDRNOTAVAIL;
391			goto bad;
392		}
393		if ((flags & IP_ALLOWBROADCAST) == 0) {
394			error = EACCES;
395			goto bad;
396		}
397		/* don't allow broadcast messages to be fragmented */
398		if (ip->ip_len > ifp->if_mtu) {
399			error = EMSGSIZE;
400			goto bad;
401		}
402		if (flags & IP_SENDONES)
403			ip->ip_dst.s_addr = INADDR_BROADCAST;
404		m->m_flags |= M_BCAST;
405	} else {
406		m->m_flags &= ~M_BCAST;
407	}
408
409sendit:
410#ifdef IPSEC
411	/* get SP for this packet */
412	if (inp == NULL)
413		sp = ipsec4_getpolicybyaddr(m, IPSEC_DIR_OUTBOUND,
414		    flags, &error);
415	else
416		sp = ipsec4_getpolicybypcb(m, IPSEC_DIR_OUTBOUND, inp, &error);
417
418	if (sp == NULL) {
419		ipsecstat.out_inval++;
420		goto bad;
421	}
422
423	error = 0;
424
425	/* check policy */
426	switch (sp->policy) {
427	case IPSEC_POLICY_DISCARD:
428		/*
429		 * This packet is just discarded.
430		 */
431		ipsecstat.out_polvio++;
432		goto bad;
433
434	case IPSEC_POLICY_BYPASS:
435	case IPSEC_POLICY_NONE:
436	case IPSEC_POLICY_TCP:
437		/* no need to do IPsec. */
438		goto skip_ipsec;
439
440	case IPSEC_POLICY_IPSEC:
441		if (sp->req == NULL) {
442			/* acquire a policy */
443			error = key_spdacquire(sp);
444			goto bad;
445		}
446		break;
447
448	case IPSEC_POLICY_ENTRUST:
449	default:
450		printf("ip_output: Invalid policy found. %d\n", sp->policy);
451	}
452    {
453	struct ipsec_output_state state;
454	bzero(&state, sizeof(state));
455	state.m = m;
456	if (flags & IP_ROUTETOIF) {
457		state.ro = &iproute;
458		bzero(&iproute, sizeof(iproute));
459	} else
460		state.ro = ro;
461	state.dst = (struct sockaddr *)dst;
462
463	ip->ip_sum = 0;
464
465	/*
466	 * XXX
467	 * delayed checksums are not currently compatible with IPsec
468	 */
469	if (m->m_pkthdr.csum_flags & CSUM_DELAY_DATA) {
470		in_delayed_cksum(m);
471		m->m_pkthdr.csum_flags &= ~CSUM_DELAY_DATA;
472	}
473
474	ip->ip_len = htons(ip->ip_len);
475	ip->ip_off = htons(ip->ip_off);
476
477	error = ipsec4_output(&state, sp, flags);
478
479	m = state.m;
480	if (flags & IP_ROUTETOIF) {
481		/*
482		 * if we have tunnel mode SA, we may need to ignore
483		 * IP_ROUTETOIF.
484		 */
485		if (state.ro != &iproute || state.ro->ro_rt != NULL) {
486			flags &= ~IP_ROUTETOIF;
487			ro = state.ro;
488		}
489	} else
490		ro = state.ro;
491	dst = (struct sockaddr_in *)state.dst;
492	if (error) {
493		/* mbuf is already reclaimed in ipsec4_output. */
494		m = NULL;
495		switch (error) {
496		case EHOSTUNREACH:
497		case ENETUNREACH:
498		case EMSGSIZE:
499		case ENOBUFS:
500		case ENOMEM:
501			break;
502		default:
503			printf("ip4_output (ipsec): error code %d\n", error);
504			/*fall through*/
505		case ENOENT:
506			/* don't show these error codes to the user */
507			error = 0;
508			break;
509		}
510		goto bad;
511	}
512
513	/* be sure to update variables that are affected by ipsec4_output() */
514	ip = mtod(m, struct ip *);
515	hlen = ip->ip_hl << 2;
516	if (ro->ro_rt == NULL) {
517		if ((flags & IP_ROUTETOIF) == 0) {
518			printf("ip_output: "
519				"can't update route after IPsec processing\n");
520			error = EHOSTUNREACH;	/*XXX*/
521			goto bad;
522		}
523	} else {
524		if (state.encap) {
525			ia = ifatoia(ro->ro_rt->rt_ifa);
526			ifp = ro->ro_rt->rt_ifp;
527		}
528	}
529    }
530
531	/* make it flipped, again. */
532	ip->ip_len = ntohs(ip->ip_len);
533	ip->ip_off = ntohs(ip->ip_off);
534skip_ipsec:
535#endif /*IPSEC*/
536#ifdef FAST_IPSEC
537	/*
538	 * Check the security policy (SP) for the packet and, if
539	 * required, do IPsec-related processing.  There are two
540	 * cases here; the first time a packet is sent through
541	 * it will be untagged and handled by ipsec4_checkpolicy.
542	 * If the packet is resubmitted to ip_output (e.g. after
543	 * AH, ESP, etc. processing), there will be a tag to bypass
544	 * the lookup and related policy checking.
545	 */
546	mtag = m_tag_find(m, PACKET_TAG_IPSEC_PENDING_TDB, NULL);
547	s = splnet();
548	if (mtag != NULL) {
549		tdbi = (struct tdb_ident *)(mtag + 1);
550		sp = ipsec_getpolicy(tdbi, IPSEC_DIR_OUTBOUND);
551		if (sp == NULL)
552			error = -EINVAL;	/* force silent drop */
553		m_tag_delete(m, mtag);
554	} else {
555		sp = ipsec4_checkpolicy(m, IPSEC_DIR_OUTBOUND, flags,
556					&error, inp);
557	}
558	/*
559	 * There are four return cases:
560	 *    sp != NULL	 	    apply IPsec policy
561	 *    sp == NULL, error == 0	    no IPsec handling needed
562	 *    sp == NULL, error == -EINVAL  discard packet w/o error
563	 *    sp == NULL, error != 0	    discard packet, report error
564	 */
565	if (sp != NULL) {
566		/* Loop detection, check if ipsec processing already done */
567		KASSERT(sp->req != NULL, ("ip_output: no ipsec request"));
568		for (mtag = m_tag_first(m); mtag != NULL;
569		     mtag = m_tag_next(m, mtag)) {
570			if (mtag->m_tag_cookie != MTAG_ABI_COMPAT)
571				continue;
572			if (mtag->m_tag_id != PACKET_TAG_IPSEC_OUT_DONE &&
573			    mtag->m_tag_id != PACKET_TAG_IPSEC_OUT_CRYPTO_NEEDED)
574				continue;
575			/*
576			 * Check if policy has an SA associated with it.
577			 * This can happen when an SP has yet to acquire
578			 * an SA; e.g. on first reference.  If it occurs,
579			 * then we let ipsec4_process_packet do its thing.
580			 */
581			if (sp->req->sav == NULL)
582				break;
583			tdbi = (struct tdb_ident *)(mtag + 1);
584			if (tdbi->spi == sp->req->sav->spi &&
585			    tdbi->proto == sp->req->sav->sah->saidx.proto &&
586			    bcmp(&tdbi->dst, &sp->req->sav->sah->saidx.dst,
587				 sizeof (union sockaddr_union)) == 0) {
588				/*
589				 * No IPsec processing is needed, free
590				 * reference to SP.
591				 *
592				 * NB: null pointer to avoid free at
593				 *     done: below.
594				 */
595				KEY_FREESP(&sp), sp = NULL;
596				splx(s);
597				goto spd_done;
598			}
599		}
600
601		/*
602		 * Do delayed checksums now because we send before
603		 * this is done in the normal processing path.
604		 */
605		if (m->m_pkthdr.csum_flags & CSUM_DELAY_DATA) {
606			in_delayed_cksum(m);
607			m->m_pkthdr.csum_flags &= ~CSUM_DELAY_DATA;
608		}
609
610		ip->ip_len = htons(ip->ip_len);
611		ip->ip_off = htons(ip->ip_off);
612
613		/* NB: callee frees mbuf */
614		error = ipsec4_process_packet(m, sp->req, flags, 0);
615		/*
616		 * Preserve KAME behaviour: ENOENT can be returned
617		 * when an SA acquire is in progress.  Don't propagate
618		 * this to user-level; it confuses applications.
619		 *
620		 * XXX this will go away when the SADB is redone.
621		 */
622		if (error == ENOENT)
623			error = 0;
624		splx(s);
625		goto done;
626	} else {
627		splx(s);
628
629		if (error != 0) {
630			/*
631			 * Hack: -EINVAL is used to signal that a packet
632			 * should be silently discarded.  This is typically
633			 * because we asked key management for an SA and
634			 * it was delayed (e.g. kicked up to IKE).
635			 */
636			if (error == -EINVAL)
637				error = 0;
638			goto bad;
639		} else {
640			/* No IPsec processing for this packet. */
641		}
642#ifdef notyet
643		/*
644		 * If deferred crypto processing is needed, check that
645		 * the interface supports it.
646		 */
647		mtag = m_tag_find(m, PACKET_TAG_IPSEC_OUT_CRYPTO_NEEDED, NULL);
648		if (mtag != NULL && (ifp->if_capenable & IFCAP_IPSEC) == 0) {
649			/* notify IPsec to do its own crypto */
650			ipsp_skipcrypto_unmark((struct tdb_ident *)(mtag + 1));
651			error = EHOSTUNREACH;
652			goto bad;
653		}
654#endif
655	}
656spd_done:
657#endif /* FAST_IPSEC */
658
659	/* Jump over all PFIL processing if hooks are not active. */
660	if (inet_pfil_hook.ph_busy_count == -1)
661		goto passout;
662
663	/* Run through list of hooks for output packets. */
664	odst.s_addr = ip->ip_dst.s_addr;
665	error = pfil_run_hooks(&inet_pfil_hook, &m, ifp, PFIL_OUT);
666	if (error != 0 || m == NULL)
667		goto done;
668
669	ip = mtod(m, struct ip *);
670
671	/* See if destination IP address was changed by packet filter. */
672	if (odst.s_addr != ip->ip_dst.s_addr) {
673		m->m_flags |= M_SKIP_FIREWALL;
674		/* If destination is now ourself drop to ip_input(). */
675		if (in_localip(ip->ip_dst)) {
676			m->m_flags |= M_FASTFWD_OURS;
677			if (m->m_pkthdr.rcvif == NULL)
678				m->m_pkthdr.rcvif = loif;
679			if (m->m_pkthdr.csum_flags & CSUM_DELAY_DATA) {
680				m->m_pkthdr.csum_flags |=
681				    CSUM_DATA_VALID | CSUM_PSEUDO_HDR;
682				m->m_pkthdr.csum_data = 0xffff;
683			}
684			m->m_pkthdr.csum_flags |=
685			    CSUM_IP_CHECKED | CSUM_IP_VALID;
686
687			error = netisr_queue(NETISR_IP, m);
688			goto done;
689		} else
690			goto again;	/* Redo the routing table lookup. */
691	}
692
693#ifdef IPFIREWALL_FORWARD
694	/* See if local, if yes, send it to netisr with IP_FASTFWD_OURS. */
695	if (m->m_flags & M_FASTFWD_OURS) {
696		if (m->m_pkthdr.rcvif == NULL)
697			m->m_pkthdr.rcvif = loif;
698		if (m->m_pkthdr.csum_flags & CSUM_DELAY_DATA) {
699			m->m_pkthdr.csum_flags |=
700			    CSUM_DATA_VALID | CSUM_PSEUDO_HDR;
701			m->m_pkthdr.csum_data = 0xffff;
702		}
703		m->m_pkthdr.csum_flags |=
704			    CSUM_IP_CHECKED | CSUM_IP_VALID;
705
706		error = netisr_queue(NETISR_IP, m);
707		goto done;
708	}
709	/* Or forward to some other address? */
710	fwd_tag = m_tag_find(m, PACKET_TAG_IPFORWARD, NULL);
711	if (fwd_tag) {
712		if (!in_localip(ip->ip_src) && !in_localaddr(ip->ip_dst)) {
713			dst = (struct sockaddr_in *)&ro->ro_dst;
714			bcopy((fwd_tag+1), dst, sizeof(struct sockaddr_in));
715			m->m_flags |= M_SKIP_FIREWALL;
716			m_tag_delete(m, fwd_tag);
717			goto again;
718		} else {
719			m_tag_delete(m, fwd_tag);
720			/* Continue. */
721		}
722	}
723#endif
724
725passout:
726	/* 127/8 must not appear on wire - RFC1122. */
727	if ((ntohl(ip->ip_dst.s_addr) >> IN_CLASSA_NSHIFT) == IN_LOOPBACKNET ||
728	    (ntohl(ip->ip_src.s_addr) >> IN_CLASSA_NSHIFT) == IN_LOOPBACKNET) {
729		if ((ifp->if_flags & IFF_LOOPBACK) == 0) {
730			ipstat.ips_badaddr++;
731			error = EADDRNOTAVAIL;
732			goto bad;
733		}
734	}
735
736	m->m_pkthdr.csum_flags |= CSUM_IP;
737	sw_csum = m->m_pkthdr.csum_flags & ~ifp->if_hwassist;
738	if (sw_csum & CSUM_DELAY_DATA) {
739		in_delayed_cksum(m);
740		sw_csum &= ~CSUM_DELAY_DATA;
741	}
742	m->m_pkthdr.csum_flags &= ifp->if_hwassist;
743
744	/*
745	 * If small enough for interface, or the interface will take
746	 * care of the fragmentation for us, can just send directly.
747	 */
748	if (ip->ip_len <= ifp->if_mtu || (ifp->if_hwassist & CSUM_FRAGMENT &&
749	    ((ip->ip_off & IP_DF) == 0))) {
750		ip->ip_len = htons(ip->ip_len);
751		ip->ip_off = htons(ip->ip_off);
752		ip->ip_sum = 0;
753		if (sw_csum & CSUM_DELAY_IP)
754			ip->ip_sum = in_cksum(m, hlen);
755
756		/* Record statistics for this interface address. */
757		if (!(flags & IP_FORWARDING) && ia) {
758			ia->ia_ifa.if_opackets++;
759			ia->ia_ifa.if_obytes += m->m_pkthdr.len;
760		}
761
762#ifdef IPSEC
763		/* clean ipsec history once it goes out of the node */
764		ipsec_delaux(m);
765#endif
766
767#ifdef MBUF_STRESS_TEST
768		if (mbuf_frag_size && m->m_pkthdr.len > mbuf_frag_size)
769			m = m_fragment(m, M_DONTWAIT, mbuf_frag_size);
770#endif
771		error = (*ifp->if_output)(ifp, m,
772				(struct sockaddr *)dst, ro->ro_rt);
773		goto done;
774	}
775
776	if (ip->ip_off & IP_DF) {
777		error = EMSGSIZE;
778		/*
779		 * This case can happen if the user changed the MTU
780		 * of an interface after enabling IP on it.  Because
781		 * most netifs don't keep track of routes pointing to
782		 * them, there is no way for one to update all its
783		 * routes when the MTU is changed.
784		 */
785		if ((ro->ro_rt->rt_flags & (RTF_UP | RTF_HOST)) &&
786		    (ro->ro_rt->rt_rmx.rmx_mtu > ifp->if_mtu)) {
787			ro->ro_rt->rt_rmx.rmx_mtu = ifp->if_mtu;
788		}
789		ipstat.ips_cantfrag++;
790		goto bad;
791	}
792
793	/*
794	 * Too large for interface; fragment if possible. If successful,
795	 * on return, m will point to a list of packets to be sent.
796	 */
797	error = ip_fragment(ip, &m, ifp->if_mtu, ifp->if_hwassist, sw_csum);
798	if (error)
799		goto bad;
800	for (; m; m = m0) {
801		m0 = m->m_nextpkt;
802		m->m_nextpkt = 0;
803#ifdef IPSEC
804		/* clean ipsec history once it goes out of the node */
805		ipsec_delaux(m);
806#endif
807		if (error == 0) {
808			/* Record statistics for this interface address. */
809			if (ia != NULL) {
810				ia->ia_ifa.if_opackets++;
811				ia->ia_ifa.if_obytes += m->m_pkthdr.len;
812			}
813
814			error = (*ifp->if_output)(ifp, m,
815			    (struct sockaddr *)dst, ro->ro_rt);
816		} else
817			m_freem(m);
818	}
819
820	if (error == 0)
821		ipstat.ips_fragmented++;
822
823done:
824	if (ro == &iproute && ro->ro_rt) {
825		RTFREE(ro->ro_rt);
826	}
827#ifdef IPSEC
828	if (sp != NULL) {
829		KEYDEBUG(KEYDEBUG_IPSEC_STAMP,
830			printf("DP ip_output call free SP:%p\n", sp));
831		key_freesp(sp);
832	}
833#endif
834#ifdef FAST_IPSEC
835	if (sp != NULL)
836		KEY_FREESP(&sp);
837#endif
838	return (error);
839bad:
840	m_freem(m);
841	goto done;
842}
843
844/*
845 * Create a chain of fragments which fit the given mtu. m_frag points to the
846 * mbuf to be fragmented; on return it points to the chain with the fragments.
847 * Return 0 if no error. If error, m_frag may contain a partially built
848 * chain of fragments that should be freed by the caller.
849 *
850 * if_hwassist_flags is the hw offload capabilities (see if_data.ifi_hwassist)
851 * sw_csum contains the delayed checksums flags (e.g., CSUM_DELAY_IP).
852 */
853int
854ip_fragment(struct ip *ip, struct mbuf **m_frag, int mtu,
855	    u_long if_hwassist_flags, int sw_csum)
856{
857	int error = 0;
858	int hlen = ip->ip_hl << 2;
859	int len = (mtu - hlen) & ~7;	/* size of payload in each fragment */
860	int off;
861	struct mbuf *m0 = *m_frag;	/* the original packet		*/
862	int firstlen;
863	struct mbuf **mnext;
864	int nfrags;
865
866	if (ip->ip_off & IP_DF) {	/* Fragmentation not allowed */
867		ipstat.ips_cantfrag++;
868		return EMSGSIZE;
869	}
870
871	/*
872	 * Must be able to put at least 8 bytes per fragment.
873	 */
874	if (len < 8)
875		return EMSGSIZE;
876
877	/*
878	 * If the interface will not calculate checksums on
879	 * fragmented packets, then do it here.
880	 */
881	if (m0->m_pkthdr.csum_flags & CSUM_DELAY_DATA &&
882	    (if_hwassist_flags & CSUM_IP_FRAGS) == 0) {
883		in_delayed_cksum(m0);
884		m0->m_pkthdr.csum_flags &= ~CSUM_DELAY_DATA;
885	}
886
887	if (len > PAGE_SIZE) {
888		/*
889		 * Fragment large datagrams such that each segment
890		 * contains a multiple of PAGE_SIZE amount of data,
891		 * plus headers. This enables a receiver to perform
892		 * page-flipping zero-copy optimizations.
893		 *
894		 * XXX When does this help given that sender and receiver
895		 * could have different page sizes, and also mtu could
896		 * be less than the receiver's page size ?
897		 */
898		int newlen;
899		struct mbuf *m;
900
901		for (m = m0, off = 0; m && (off+m->m_len) <= mtu; m = m->m_next)
902			off += m->m_len;
903
904		/*
905		 * firstlen (off - hlen) must be aligned on an
906		 * 8-byte boundary
907		 */
908		if (off < hlen)
909			goto smart_frag_failure;
910		off = ((off - hlen) & ~7) + hlen;
911		newlen = (~PAGE_MASK) & mtu;
912		if ((newlen + sizeof (struct ip)) > mtu) {
913			/* we failed, go back the default */
914smart_frag_failure:
915			newlen = len;
916			off = hlen + len;
917		}
918		len = newlen;
919
920	} else {
921		off = hlen + len;
922	}
923
924	firstlen = off - hlen;
925	mnext = &m0->m_nextpkt;		/* pointer to next packet */
926
927	/*
928	 * Loop through length of segment after first fragment,
929	 * make new header and copy data of each part and link onto chain.
930	 * Here, m0 is the original packet, m is the fragment being created.
931	 * The fragments are linked off the m_nextpkt of the original
932	 * packet, which after processing serves as the first fragment.
933	 */
934	for (nfrags = 1; off < ip->ip_len; off += len, nfrags++) {
935		struct ip *mhip;	/* ip header on the fragment */
936		struct mbuf *m;
937		int mhlen = sizeof (struct ip);
938
939		MGETHDR(m, M_DONTWAIT, MT_HEADER);
940		if (m == NULL) {
941			error = ENOBUFS;
942			ipstat.ips_odropped++;
943			goto done;
944		}
945		m->m_flags |= (m0->m_flags & M_MCAST) | M_FRAG;
946		/*
947		 * In the first mbuf, leave room for the link header, then
948		 * copy the original IP header including options. The payload
949		 * goes into an additional mbuf chain returned by m_copy().
950		 */
951		m->m_data += max_linkhdr;
952		mhip = mtod(m, struct ip *);
953		*mhip = *ip;
954		if (hlen > sizeof (struct ip)) {
955			mhlen = ip_optcopy(ip, mhip) + sizeof (struct ip);
956			mhip->ip_v = IPVERSION;
957			mhip->ip_hl = mhlen >> 2;
958		}
959		m->m_len = mhlen;
960		/* XXX do we need to add ip->ip_off below ? */
961		mhip->ip_off = ((off - hlen) >> 3) + ip->ip_off;
962		if (off + len >= ip->ip_len) {	/* last fragment */
963			len = ip->ip_len - off;
964			m->m_flags |= M_LASTFRAG;
965		} else
966			mhip->ip_off |= IP_MF;
967		mhip->ip_len = htons((u_short)(len + mhlen));
968		m->m_next = m_copy(m0, off, len);
969		if (m->m_next == NULL) {	/* copy failed */
970			m_free(m);
971			error = ENOBUFS;	/* ??? */
972			ipstat.ips_odropped++;
973			goto done;
974		}
975		m->m_pkthdr.len = mhlen + len;
976		m->m_pkthdr.rcvif = (struct ifnet *)0;
977#ifdef MAC
978		mac_create_fragment(m0, m);
979#endif
980		m->m_pkthdr.csum_flags = m0->m_pkthdr.csum_flags;
981		mhip->ip_off = htons(mhip->ip_off);
982		mhip->ip_sum = 0;
983		if (sw_csum & CSUM_DELAY_IP)
984			mhip->ip_sum = in_cksum(m, mhlen);
985		*mnext = m;
986		mnext = &m->m_nextpkt;
987	}
988	ipstat.ips_ofragments += nfrags;
989
990	/* set first marker for fragment chain */
991	m0->m_flags |= M_FIRSTFRAG | M_FRAG;
992	m0->m_pkthdr.csum_data = nfrags;
993
994	/*
995	 * Update first fragment by trimming what's been copied out
996	 * and updating header.
997	 */
998	m_adj(m0, hlen + firstlen - ip->ip_len);
999	m0->m_pkthdr.len = hlen + firstlen;
1000	ip->ip_len = htons((u_short)m0->m_pkthdr.len);
1001	ip->ip_off |= IP_MF;
1002	ip->ip_off = htons(ip->ip_off);
1003	ip->ip_sum = 0;
1004	if (sw_csum & CSUM_DELAY_IP)
1005		ip->ip_sum = in_cksum(m0, hlen);
1006
1007done:
1008	*m_frag = m0;
1009	return error;
1010}
1011
1012void
1013in_delayed_cksum(struct mbuf *m)
1014{
1015	struct ip *ip;
1016	u_short csum, offset;
1017
1018	ip = mtod(m, struct ip *);
1019	offset = ip->ip_hl << 2 ;
1020	csum = in_cksum_skip(m, ip->ip_len, offset);
1021	if (m->m_pkthdr.csum_flags & CSUM_UDP && csum == 0)
1022		csum = 0xffff;
1023	offset += m->m_pkthdr.csum_data;	/* checksum offset */
1024
1025	if (offset + sizeof(u_short) > m->m_len) {
1026		printf("delayed m_pullup, m->len: %d  off: %d  p: %d\n",
1027		    m->m_len, offset, ip->ip_p);
1028		/*
1029		 * XXX
1030		 * this shouldn't happen, but if it does, the
1031		 * correct behavior may be to insert the checksum
1032		 * in the existing chain instead of rearranging it.
1033		 */
1034		m = m_pullup(m, offset + sizeof(u_short));
1035	}
1036	*(u_short *)(m->m_data + offset) = csum;
1037}
1038
1039/*
1040 * Insert IP options into preformed packet.
1041 * Adjust IP destination as required for IP source routing,
1042 * as indicated by a non-zero in_addr at the start of the options.
1043 *
1044 * XXX This routine assumes that the packet has no options in place.
1045 */
1046static struct mbuf *
1047ip_insertoptions(m, opt, phlen)
1048	register struct mbuf *m;
1049	struct mbuf *opt;
1050	int *phlen;
1051{
1052	register struct ipoption *p = mtod(opt, struct ipoption *);
1053	struct mbuf *n;
1054	register struct ip *ip = mtod(m, struct ip *);
1055	unsigned optlen;
1056
1057	optlen = opt->m_len - sizeof(p->ipopt_dst);
1058	if (optlen + ip->ip_len > IP_MAXPACKET) {
1059		*phlen = 0;
1060		return (m);		/* XXX should fail */
1061	}
1062	if (p->ipopt_dst.s_addr)
1063		ip->ip_dst = p->ipopt_dst;
1064	if (m->m_flags & M_EXT || m->m_data - optlen < m->m_pktdat) {
1065		MGETHDR(n, M_DONTWAIT, MT_HEADER);
1066		if (n == NULL) {
1067			*phlen = 0;
1068			return (m);
1069		}
1070		n->m_pkthdr.rcvif = (struct ifnet *)0;
1071#ifdef MAC
1072		mac_create_mbuf_from_mbuf(m, n);
1073#endif
1074		n->m_pkthdr.len = m->m_pkthdr.len + optlen;
1075		m->m_len -= sizeof(struct ip);
1076		m->m_data += sizeof(struct ip);
1077		n->m_next = m;
1078		m = n;
1079		m->m_len = optlen + sizeof(struct ip);
1080		m->m_data += max_linkhdr;
1081		bcopy(ip, mtod(m, void *), sizeof(struct ip));
1082	} else {
1083		m->m_data -= optlen;
1084		m->m_len += optlen;
1085		m->m_pkthdr.len += optlen;
1086		bcopy(ip, mtod(m, void *), sizeof(struct ip));
1087	}
1088	ip = mtod(m, struct ip *);
1089	bcopy(p->ipopt_list, ip + 1, optlen);
1090	*phlen = sizeof(struct ip) + optlen;
1091	ip->ip_v = IPVERSION;
1092	ip->ip_hl = *phlen >> 2;
1093	ip->ip_len += optlen;
1094	return (m);
1095}
1096
1097/*
1098 * Copy options from ip to jp,
1099 * omitting those not copied during fragmentation.
1100 */
1101int
1102ip_optcopy(ip, jp)
1103	struct ip *ip, *jp;
1104{
1105	register u_char *cp, *dp;
1106	int opt, optlen, cnt;
1107
1108	cp = (u_char *)(ip + 1);
1109	dp = (u_char *)(jp + 1);
1110	cnt = (ip->ip_hl << 2) - sizeof (struct ip);
1111	for (; cnt > 0; cnt -= optlen, cp += optlen) {
1112		opt = cp[0];
1113		if (opt == IPOPT_EOL)
1114			break;
1115		if (opt == IPOPT_NOP) {
1116			/* Preserve for IP mcast tunnel's LSRR alignment. */
1117			*dp++ = IPOPT_NOP;
1118			optlen = 1;
1119			continue;
1120		}
1121
1122		KASSERT(cnt >= IPOPT_OLEN + sizeof(*cp),
1123		    ("ip_optcopy: malformed ipv4 option"));
1124		optlen = cp[IPOPT_OLEN];
1125		KASSERT(optlen >= IPOPT_OLEN + sizeof(*cp) && optlen <= cnt,
1126		    ("ip_optcopy: malformed ipv4 option"));
1127
1128		/* bogus lengths should have been caught by ip_dooptions */
1129		if (optlen > cnt)
1130			optlen = cnt;
1131		if (IPOPT_COPIED(opt)) {
1132			bcopy(cp, dp, optlen);
1133			dp += optlen;
1134		}
1135	}
1136	for (optlen = dp - (u_char *)(jp+1); optlen & 0x3; optlen++)
1137		*dp++ = IPOPT_EOL;
1138	return (optlen);
1139}
1140
1141/*
1142 * IP socket option processing.
1143 */
1144int
1145ip_ctloutput(so, sopt)
1146	struct socket *so;
1147	struct sockopt *sopt;
1148{
1149	struct	inpcb *inp = sotoinpcb(so);
1150	int	error, optval;
1151
1152	error = optval = 0;
1153	if (sopt->sopt_level != IPPROTO_IP) {
1154		return (EINVAL);
1155	}
1156
1157	switch (sopt->sopt_dir) {
1158	case SOPT_SET:
1159		switch (sopt->sopt_name) {
1160		case IP_OPTIONS:
1161#ifdef notyet
1162		case IP_RETOPTS:
1163#endif
1164		{
1165			struct mbuf *m;
1166			if (sopt->sopt_valsize > MLEN) {
1167				error = EMSGSIZE;
1168				break;
1169			}
1170			MGET(m, sopt->sopt_td ? M_TRYWAIT : M_DONTWAIT, MT_HEADER);
1171			if (m == NULL) {
1172				error = ENOBUFS;
1173				break;
1174			}
1175			m->m_len = sopt->sopt_valsize;
1176			error = sooptcopyin(sopt, mtod(m, char *), m->m_len,
1177					    m->m_len);
1178
1179			return (ip_pcbopts(sopt->sopt_name, &inp->inp_options,
1180					   m));
1181		}
1182
1183		case IP_TOS:
1184		case IP_TTL:
1185		case IP_RECVOPTS:
1186		case IP_RECVRETOPTS:
1187		case IP_RECVDSTADDR:
1188		case IP_RECVTTL:
1189		case IP_RECVIF:
1190		case IP_FAITH:
1191		case IP_ONESBCAST:
1192			error = sooptcopyin(sopt, &optval, sizeof optval,
1193					    sizeof optval);
1194			if (error)
1195				break;
1196
1197			switch (sopt->sopt_name) {
1198			case IP_TOS:
1199				inp->inp_ip_tos = optval;
1200				break;
1201
1202			case IP_TTL:
1203				inp->inp_ip_ttl = optval;
1204				break;
1205#define	OPTSET(bit) do {						\
1206	INP_LOCK(inp);							\
1207	if (optval)							\
1208		inp->inp_flags |= bit;					\
1209	else								\
1210		inp->inp_flags &= ~bit;					\
1211	INP_UNLOCK(inp);						\
1212} while (0)
1213
1214			case IP_RECVOPTS:
1215				OPTSET(INP_RECVOPTS);
1216				break;
1217
1218			case IP_RECVRETOPTS:
1219				OPTSET(INP_RECVRETOPTS);
1220				break;
1221
1222			case IP_RECVDSTADDR:
1223				OPTSET(INP_RECVDSTADDR);
1224				break;
1225
1226			case IP_RECVTTL:
1227				OPTSET(INP_RECVTTL);
1228				break;
1229
1230			case IP_RECVIF:
1231				OPTSET(INP_RECVIF);
1232				break;
1233
1234			case IP_FAITH:
1235				OPTSET(INP_FAITH);
1236				break;
1237
1238			case IP_ONESBCAST:
1239				OPTSET(INP_ONESBCAST);
1240				break;
1241			}
1242			break;
1243#undef OPTSET
1244
1245		case IP_MULTICAST_IF:
1246		case IP_MULTICAST_VIF:
1247		case IP_MULTICAST_TTL:
1248		case IP_MULTICAST_LOOP:
1249		case IP_ADD_MEMBERSHIP:
1250		case IP_DROP_MEMBERSHIP:
1251			error = ip_setmoptions(sopt, &inp->inp_moptions);
1252			break;
1253
1254		case IP_PORTRANGE:
1255			error = sooptcopyin(sopt, &optval, sizeof optval,
1256					    sizeof optval);
1257			if (error)
1258				break;
1259
1260			INP_LOCK(inp);
1261			switch (optval) {
1262			case IP_PORTRANGE_DEFAULT:
1263				inp->inp_flags &= ~(INP_LOWPORT);
1264				inp->inp_flags &= ~(INP_HIGHPORT);
1265				break;
1266
1267			case IP_PORTRANGE_HIGH:
1268				inp->inp_flags &= ~(INP_LOWPORT);
1269				inp->inp_flags |= INP_HIGHPORT;
1270				break;
1271
1272			case IP_PORTRANGE_LOW:
1273				inp->inp_flags &= ~(INP_HIGHPORT);
1274				inp->inp_flags |= INP_LOWPORT;
1275				break;
1276
1277			default:
1278				error = EINVAL;
1279				break;
1280			}
1281			INP_UNLOCK(inp);
1282			break;
1283
1284#if defined(IPSEC) || defined(FAST_IPSEC)
1285		case IP_IPSEC_POLICY:
1286		{
1287			caddr_t req;
1288			size_t len = 0;
1289			int priv;
1290			struct mbuf *m;
1291			int optname;
1292
1293			if ((error = soopt_getm(sopt, &m)) != 0) /* XXX */
1294				break;
1295			if ((error = soopt_mcopyin(sopt, m)) != 0) /* XXX */
1296				break;
1297			priv = (sopt->sopt_td != NULL &&
1298				suser(sopt->sopt_td) != 0) ? 0 : 1;
1299			req = mtod(m, caddr_t);
1300			len = m->m_len;
1301			optname = sopt->sopt_name;
1302			error = ipsec4_set_policy(inp, optname, req, len, priv);
1303			m_freem(m);
1304			break;
1305		}
1306#endif /*IPSEC*/
1307
1308		default:
1309			error = ENOPROTOOPT;
1310			break;
1311		}
1312		break;
1313
1314	case SOPT_GET:
1315		switch (sopt->sopt_name) {
1316		case IP_OPTIONS:
1317		case IP_RETOPTS:
1318			if (inp->inp_options)
1319				error = sooptcopyout(sopt,
1320						     mtod(inp->inp_options,
1321							  char *),
1322						     inp->inp_options->m_len);
1323			else
1324				sopt->sopt_valsize = 0;
1325			break;
1326
1327		case IP_TOS:
1328		case IP_TTL:
1329		case IP_RECVOPTS:
1330		case IP_RECVRETOPTS:
1331		case IP_RECVDSTADDR:
1332		case IP_RECVTTL:
1333		case IP_RECVIF:
1334		case IP_PORTRANGE:
1335		case IP_FAITH:
1336		case IP_ONESBCAST:
1337			switch (sopt->sopt_name) {
1338
1339			case IP_TOS:
1340				optval = inp->inp_ip_tos;
1341				break;
1342
1343			case IP_TTL:
1344				optval = inp->inp_ip_ttl;
1345				break;
1346
1347#define	OPTBIT(bit)	(inp->inp_flags & bit ? 1 : 0)
1348
1349			case IP_RECVOPTS:
1350				optval = OPTBIT(INP_RECVOPTS);
1351				break;
1352
1353			case IP_RECVRETOPTS:
1354				optval = OPTBIT(INP_RECVRETOPTS);
1355				break;
1356
1357			case IP_RECVDSTADDR:
1358				optval = OPTBIT(INP_RECVDSTADDR);
1359				break;
1360
1361			case IP_RECVTTL:
1362				optval = OPTBIT(INP_RECVTTL);
1363				break;
1364
1365			case IP_RECVIF:
1366				optval = OPTBIT(INP_RECVIF);
1367				break;
1368
1369			case IP_PORTRANGE:
1370				if (inp->inp_flags & INP_HIGHPORT)
1371					optval = IP_PORTRANGE_HIGH;
1372				else if (inp->inp_flags & INP_LOWPORT)
1373					optval = IP_PORTRANGE_LOW;
1374				else
1375					optval = 0;
1376				break;
1377
1378			case IP_FAITH:
1379				optval = OPTBIT(INP_FAITH);
1380				break;
1381
1382			case IP_ONESBCAST:
1383				optval = OPTBIT(INP_ONESBCAST);
1384				break;
1385			}
1386			error = sooptcopyout(sopt, &optval, sizeof optval);
1387			break;
1388
1389		case IP_MULTICAST_IF:
1390		case IP_MULTICAST_VIF:
1391		case IP_MULTICAST_TTL:
1392		case IP_MULTICAST_LOOP:
1393		case IP_ADD_MEMBERSHIP:
1394		case IP_DROP_MEMBERSHIP:
1395			error = ip_getmoptions(sopt, inp->inp_moptions);
1396			break;
1397
1398#if defined(IPSEC) || defined(FAST_IPSEC)
1399		case IP_IPSEC_POLICY:
1400		{
1401			struct mbuf *m = NULL;
1402			caddr_t req = NULL;
1403			size_t len = 0;
1404
1405			if (m != 0) {
1406				req = mtod(m, caddr_t);
1407				len = m->m_len;
1408			}
1409			error = ipsec4_get_policy(sotoinpcb(so), req, len, &m);
1410			if (error == 0)
1411				error = soopt_mcopyout(sopt, m); /* XXX */
1412			if (error == 0)
1413				m_freem(m);
1414			break;
1415		}
1416#endif /*IPSEC*/
1417
1418		default:
1419			error = ENOPROTOOPT;
1420			break;
1421		}
1422		break;
1423	}
1424	return (error);
1425}
1426
1427/*
1428 * Set up IP options in pcb for insertion in output packets.
1429 * Store in mbuf with pointer in pcbopt, adding pseudo-option
1430 * with destination address if source routed.
1431 */
1432static int
1433ip_pcbopts(optname, pcbopt, m)
1434	int optname;
1435	struct mbuf **pcbopt;
1436	register struct mbuf *m;
1437{
1438	register int cnt, optlen;
1439	register u_char *cp;
1440	u_char opt;
1441
1442	/* turn off any old options */
1443	if (*pcbopt)
1444		(void)m_free(*pcbopt);
1445	*pcbopt = 0;
1446	if (m == (struct mbuf *)0 || m->m_len == 0) {
1447		/*
1448		 * Only turning off any previous options.
1449		 */
1450		if (m)
1451			(void)m_free(m);
1452		return (0);
1453	}
1454
1455	if (m->m_len % sizeof(int32_t))
1456		goto bad;
1457	/*
1458	 * IP first-hop destination address will be stored before
1459	 * actual options; move other options back
1460	 * and clear it when none present.
1461	 */
1462	if (m->m_data + m->m_len + sizeof(struct in_addr) >= &m->m_dat[MLEN])
1463		goto bad;
1464	cnt = m->m_len;
1465	m->m_len += sizeof(struct in_addr);
1466	cp = mtod(m, u_char *) + sizeof(struct in_addr);
1467	bcopy(mtod(m, void *), cp, (unsigned)cnt);
1468	bzero(mtod(m, void *), sizeof(struct in_addr));
1469
1470	for (; cnt > 0; cnt -= optlen, cp += optlen) {
1471		opt = cp[IPOPT_OPTVAL];
1472		if (opt == IPOPT_EOL)
1473			break;
1474		if (opt == IPOPT_NOP)
1475			optlen = 1;
1476		else {
1477			if (cnt < IPOPT_OLEN + sizeof(*cp))
1478				goto bad;
1479			optlen = cp[IPOPT_OLEN];
1480			if (optlen < IPOPT_OLEN + sizeof(*cp) || optlen > cnt)
1481				goto bad;
1482		}
1483		switch (opt) {
1484
1485		default:
1486			break;
1487
1488		case IPOPT_LSRR:
1489		case IPOPT_SSRR:
1490			/*
1491			 * user process specifies route as:
1492			 *	->A->B->C->D
1493			 * D must be our final destination (but we can't
1494			 * check that since we may not have connected yet).
1495			 * A is first hop destination, which doesn't appear in
1496			 * actual IP option, but is stored before the options.
1497			 */
1498			if (optlen < IPOPT_MINOFF - 1 + sizeof(struct in_addr))
1499				goto bad;
1500			m->m_len -= sizeof(struct in_addr);
1501			cnt -= sizeof(struct in_addr);
1502			optlen -= sizeof(struct in_addr);
1503			cp[IPOPT_OLEN] = optlen;
1504			/*
1505			 * Move first hop before start of options.
1506			 */
1507			bcopy((caddr_t)&cp[IPOPT_OFFSET+1], mtod(m, caddr_t),
1508			    sizeof(struct in_addr));
1509			/*
1510			 * Then copy rest of options back
1511			 * to close up the deleted entry.
1512			 */
1513			bcopy((&cp[IPOPT_OFFSET+1] + sizeof(struct in_addr)),
1514			    &cp[IPOPT_OFFSET+1],
1515			    (unsigned)cnt - (IPOPT_MINOFF - 1));
1516			break;
1517		}
1518	}
1519	if (m->m_len > MAX_IPOPTLEN + sizeof(struct in_addr))
1520		goto bad;
1521	*pcbopt = m;
1522	return (0);
1523
1524bad:
1525	(void)m_free(m);
1526	return (EINVAL);
1527}
1528
1529/*
1530 * XXX
1531 * The whole multicast option thing needs to be re-thought.
1532 * Several of these options are equally applicable to non-multicast
1533 * transmission, and one (IP_MULTICAST_TTL) totally duplicates a
1534 * standard option (IP_TTL).
1535 */
1536
1537/*
1538 * following RFC1724 section 3.3, 0.0.0.0/8 is interpreted as interface index.
1539 */
1540static struct ifnet *
1541ip_multicast_if(a, ifindexp)
1542	struct in_addr *a;
1543	int *ifindexp;
1544{
1545	int ifindex;
1546	struct ifnet *ifp;
1547
1548	if (ifindexp)
1549		*ifindexp = 0;
1550	if (ntohl(a->s_addr) >> 24 == 0) {
1551		ifindex = ntohl(a->s_addr) & 0xffffff;
1552		if (ifindex < 0 || if_index < ifindex)
1553			return NULL;
1554		ifp = ifnet_byindex(ifindex);
1555		if (ifindexp)
1556			*ifindexp = ifindex;
1557	} else {
1558		INADDR_TO_IFP(*a, ifp);
1559	}
1560	return ifp;
1561}
1562
1563/*
1564 * Set the IP multicast options in response to user setsockopt().
1565 */
1566static int
1567ip_setmoptions(sopt, imop)
1568	struct sockopt *sopt;
1569	struct ip_moptions **imop;
1570{
1571	int error = 0;
1572	int i;
1573	struct in_addr addr;
1574	struct ip_mreq mreq;
1575	struct ifnet *ifp;
1576	struct ip_moptions *imo = *imop;
1577	struct route ro;
1578	struct sockaddr_in *dst;
1579	int ifindex;
1580	int s;
1581
1582	if (imo == NULL) {
1583		/*
1584		 * No multicast option buffer attached to the pcb;
1585		 * allocate one and initialize to default values.
1586		 */
1587		imo = (struct ip_moptions*)malloc(sizeof(*imo), M_IPMOPTS,
1588		    M_WAITOK);
1589
1590		if (imo == NULL)
1591			return (ENOBUFS);
1592		*imop = imo;
1593		imo->imo_multicast_ifp = NULL;
1594		imo->imo_multicast_addr.s_addr = INADDR_ANY;
1595		imo->imo_multicast_vif = -1;
1596		imo->imo_multicast_ttl = IP_DEFAULT_MULTICAST_TTL;
1597		imo->imo_multicast_loop = IP_DEFAULT_MULTICAST_LOOP;
1598		imo->imo_num_memberships = 0;
1599	}
1600
1601	switch (sopt->sopt_name) {
1602	/* store an index number for the vif you wanna use in the send */
1603	case IP_MULTICAST_VIF:
1604		if (legal_vif_num == 0) {
1605			error = EOPNOTSUPP;
1606			break;
1607		}
1608		error = sooptcopyin(sopt, &i, sizeof i, sizeof i);
1609		if (error)
1610			break;
1611		if (!legal_vif_num(i) && (i != -1)) {
1612			error = EINVAL;
1613			break;
1614		}
1615		imo->imo_multicast_vif = i;
1616		break;
1617
1618	case IP_MULTICAST_IF:
1619		/*
1620		 * Select the interface for outgoing multicast packets.
1621		 */
1622		error = sooptcopyin(sopt, &addr, sizeof addr, sizeof addr);
1623		if (error)
1624			break;
1625		/*
1626		 * INADDR_ANY is used to remove a previous selection.
1627		 * When no interface is selected, a default one is
1628		 * chosen every time a multicast packet is sent.
1629		 */
1630		if (addr.s_addr == INADDR_ANY) {
1631			imo->imo_multicast_ifp = NULL;
1632			break;
1633		}
1634		/*
1635		 * The selected interface is identified by its local
1636		 * IP address.  Find the interface and confirm that
1637		 * it supports multicasting.
1638		 */
1639		s = splimp();
1640		ifp = ip_multicast_if(&addr, &ifindex);
1641		if (ifp == NULL || (ifp->if_flags & IFF_MULTICAST) == 0) {
1642			splx(s);
1643			error = EADDRNOTAVAIL;
1644			break;
1645		}
1646		imo->imo_multicast_ifp = ifp;
1647		if (ifindex)
1648			imo->imo_multicast_addr = addr;
1649		else
1650			imo->imo_multicast_addr.s_addr = INADDR_ANY;
1651		splx(s);
1652		break;
1653
1654	case IP_MULTICAST_TTL:
1655		/*
1656		 * Set the IP time-to-live for outgoing multicast packets.
1657		 * The original multicast API required a char argument,
1658		 * which is inconsistent with the rest of the socket API.
1659		 * We allow either a char or an int.
1660		 */
1661		if (sopt->sopt_valsize == 1) {
1662			u_char ttl;
1663			error = sooptcopyin(sopt, &ttl, 1, 1);
1664			if (error)
1665				break;
1666			imo->imo_multicast_ttl = ttl;
1667		} else {
1668			u_int ttl;
1669			error = sooptcopyin(sopt, &ttl, sizeof ttl,
1670					    sizeof ttl);
1671			if (error)
1672				break;
1673			if (ttl > 255)
1674				error = EINVAL;
1675			else
1676				imo->imo_multicast_ttl = ttl;
1677		}
1678		break;
1679
1680	case IP_MULTICAST_LOOP:
1681		/*
1682		 * Set the loopback flag for outgoing multicast packets.
1683		 * Must be zero or one.  The original multicast API required a
1684		 * char argument, which is inconsistent with the rest
1685		 * of the socket API.  We allow either a char or an int.
1686		 */
1687		if (sopt->sopt_valsize == 1) {
1688			u_char loop;
1689			error = sooptcopyin(sopt, &loop, 1, 1);
1690			if (error)
1691				break;
1692			imo->imo_multicast_loop = !!loop;
1693		} else {
1694			u_int loop;
1695			error = sooptcopyin(sopt, &loop, sizeof loop,
1696					    sizeof loop);
1697			if (error)
1698				break;
1699			imo->imo_multicast_loop = !!loop;
1700		}
1701		break;
1702
1703	case IP_ADD_MEMBERSHIP:
1704		/*
1705		 * Add a multicast group membership.
1706		 * Group must be a valid IP multicast address.
1707		 */
1708		error = sooptcopyin(sopt, &mreq, sizeof mreq, sizeof mreq);
1709		if (error)
1710			break;
1711
1712		if (!IN_MULTICAST(ntohl(mreq.imr_multiaddr.s_addr))) {
1713			error = EINVAL;
1714			break;
1715		}
1716		s = splimp();
1717		/*
1718		 * If no interface address was provided, use the interface of
1719		 * the route to the given multicast address.
1720		 */
1721		if (mreq.imr_interface.s_addr == INADDR_ANY) {
1722			bzero((caddr_t)&ro, sizeof(ro));
1723			dst = (struct sockaddr_in *)&ro.ro_dst;
1724			dst->sin_len = sizeof(*dst);
1725			dst->sin_family = AF_INET;
1726			dst->sin_addr = mreq.imr_multiaddr;
1727			rtalloc_ign(&ro, RTF_CLONING);
1728			if (ro.ro_rt == NULL) {
1729				error = EADDRNOTAVAIL;
1730				splx(s);
1731				break;
1732			}
1733			ifp = ro.ro_rt->rt_ifp;
1734			RTFREE(ro.ro_rt);
1735		}
1736		else {
1737			ifp = ip_multicast_if(&mreq.imr_interface, NULL);
1738		}
1739
1740		/*
1741		 * See if we found an interface, and confirm that it
1742		 * supports multicast.
1743		 */
1744		if (ifp == NULL || (ifp->if_flags & IFF_MULTICAST) == 0) {
1745			error = EADDRNOTAVAIL;
1746			splx(s);
1747			break;
1748		}
1749		/*
1750		 * See if the membership already exists or if all the
1751		 * membership slots are full.
1752		 */
1753		for (i = 0; i < imo->imo_num_memberships; ++i) {
1754			if (imo->imo_membership[i]->inm_ifp == ifp &&
1755			    imo->imo_membership[i]->inm_addr.s_addr
1756						== mreq.imr_multiaddr.s_addr)
1757				break;
1758		}
1759		if (i < imo->imo_num_memberships) {
1760			error = EADDRINUSE;
1761			splx(s);
1762			break;
1763		}
1764		if (i == IP_MAX_MEMBERSHIPS) {
1765			error = ETOOMANYREFS;
1766			splx(s);
1767			break;
1768		}
1769		/*
1770		 * Everything looks good; add a new record to the multicast
1771		 * address list for the given interface.
1772		 */
1773		if ((imo->imo_membership[i] =
1774		    in_addmulti(&mreq.imr_multiaddr, ifp)) == NULL) {
1775			error = ENOBUFS;
1776			splx(s);
1777			break;
1778		}
1779		++imo->imo_num_memberships;
1780		splx(s);
1781		break;
1782
1783	case IP_DROP_MEMBERSHIP:
1784		/*
1785		 * Drop a multicast group membership.
1786		 * Group must be a valid IP multicast address.
1787		 */
1788		error = sooptcopyin(sopt, &mreq, sizeof mreq, sizeof mreq);
1789		if (error)
1790			break;
1791
1792		if (!IN_MULTICAST(ntohl(mreq.imr_multiaddr.s_addr))) {
1793			error = EINVAL;
1794			break;
1795		}
1796
1797		s = splimp();
1798		/*
1799		 * If an interface address was specified, get a pointer
1800		 * to its ifnet structure.
1801		 */
1802		if (mreq.imr_interface.s_addr == INADDR_ANY)
1803			ifp = NULL;
1804		else {
1805			ifp = ip_multicast_if(&mreq.imr_interface, NULL);
1806			if (ifp == NULL) {
1807				error = EADDRNOTAVAIL;
1808				splx(s);
1809				break;
1810			}
1811		}
1812		/*
1813		 * Find the membership in the membership array.
1814		 */
1815		for (i = 0; i < imo->imo_num_memberships; ++i) {
1816			if ((ifp == NULL ||
1817			     imo->imo_membership[i]->inm_ifp == ifp) &&
1818			     imo->imo_membership[i]->inm_addr.s_addr ==
1819			     mreq.imr_multiaddr.s_addr)
1820				break;
1821		}
1822		if (i == imo->imo_num_memberships) {
1823			error = EADDRNOTAVAIL;
1824			splx(s);
1825			break;
1826		}
1827		/*
1828		 * Give up the multicast address record to which the
1829		 * membership points.
1830		 */
1831		in_delmulti(imo->imo_membership[i]);
1832		/*
1833		 * Remove the gap in the membership array.
1834		 */
1835		for (++i; i < imo->imo_num_memberships; ++i)
1836			imo->imo_membership[i-1] = imo->imo_membership[i];
1837		--imo->imo_num_memberships;
1838		splx(s);
1839		break;
1840
1841	default:
1842		error = EOPNOTSUPP;
1843		break;
1844	}
1845
1846	/*
1847	 * If all options have default values, no need to keep the mbuf.
1848	 */
1849	if (imo->imo_multicast_ifp == NULL &&
1850	    imo->imo_multicast_vif == -1 &&
1851	    imo->imo_multicast_ttl == IP_DEFAULT_MULTICAST_TTL &&
1852	    imo->imo_multicast_loop == IP_DEFAULT_MULTICAST_LOOP &&
1853	    imo->imo_num_memberships == 0) {
1854		free(*imop, M_IPMOPTS);
1855		*imop = NULL;
1856	}
1857
1858	return (error);
1859}
1860
1861/*
1862 * Return the IP multicast options in response to user getsockopt().
1863 */
1864static int
1865ip_getmoptions(sopt, imo)
1866	struct sockopt *sopt;
1867	register struct ip_moptions *imo;
1868{
1869	struct in_addr addr;
1870	struct in_ifaddr *ia;
1871	int error, optval;
1872	u_char coptval;
1873
1874	error = 0;
1875	switch (sopt->sopt_name) {
1876	case IP_MULTICAST_VIF:
1877		if (imo != NULL)
1878			optval = imo->imo_multicast_vif;
1879		else
1880			optval = -1;
1881		error = sooptcopyout(sopt, &optval, sizeof optval);
1882		break;
1883
1884	case IP_MULTICAST_IF:
1885		if (imo == NULL || imo->imo_multicast_ifp == NULL)
1886			addr.s_addr = INADDR_ANY;
1887		else if (imo->imo_multicast_addr.s_addr) {
1888			/* return the value user has set */
1889			addr = imo->imo_multicast_addr;
1890		} else {
1891			IFP_TO_IA(imo->imo_multicast_ifp, ia);
1892			addr.s_addr = (ia == NULL) ? INADDR_ANY
1893				: IA_SIN(ia)->sin_addr.s_addr;
1894		}
1895		error = sooptcopyout(sopt, &addr, sizeof addr);
1896		break;
1897
1898	case IP_MULTICAST_TTL:
1899		if (imo == 0)
1900			optval = coptval = IP_DEFAULT_MULTICAST_TTL;
1901		else
1902			optval = coptval = imo->imo_multicast_ttl;
1903		if (sopt->sopt_valsize == 1)
1904			error = sooptcopyout(sopt, &coptval, 1);
1905		else
1906			error = sooptcopyout(sopt, &optval, sizeof optval);
1907		break;
1908
1909	case IP_MULTICAST_LOOP:
1910		if (imo == 0)
1911			optval = coptval = IP_DEFAULT_MULTICAST_LOOP;
1912		else
1913			optval = coptval = imo->imo_multicast_loop;
1914		if (sopt->sopt_valsize == 1)
1915			error = sooptcopyout(sopt, &coptval, 1);
1916		else
1917			error = sooptcopyout(sopt, &optval, sizeof optval);
1918		break;
1919
1920	default:
1921		error = ENOPROTOOPT;
1922		break;
1923	}
1924	return (error);
1925}
1926
1927/*
1928 * Discard the IP multicast options.
1929 */
1930void
1931ip_freemoptions(imo)
1932	register struct ip_moptions *imo;
1933{
1934	register int i;
1935
1936	if (imo != NULL) {
1937		for (i = 0; i < imo->imo_num_memberships; ++i)
1938			in_delmulti(imo->imo_membership[i]);
1939		free(imo, M_IPMOPTS);
1940	}
1941}
1942
1943/*
1944 * Routine called from ip_output() to loop back a copy of an IP multicast
1945 * packet to the input queue of a specified interface.  Note that this
1946 * calls the output routine of the loopback "driver", but with an interface
1947 * pointer that might NOT be a loopback interface -- evil, but easier than
1948 * replicating that code here.
1949 */
1950static void
1951ip_mloopback(ifp, m, dst, hlen)
1952	struct ifnet *ifp;
1953	register struct mbuf *m;
1954	register struct sockaddr_in *dst;
1955	int hlen;
1956{
1957	register struct ip *ip;
1958	struct mbuf *copym;
1959
1960	copym = m_copy(m, 0, M_COPYALL);
1961	if (copym != NULL && (copym->m_flags & M_EXT || copym->m_len < hlen))
1962		copym = m_pullup(copym, hlen);
1963	if (copym != NULL) {
1964		/* If needed, compute the checksum and mark it as valid. */
1965		if (copym->m_pkthdr.csum_flags & CSUM_DELAY_DATA) {
1966			in_delayed_cksum(copym);
1967			copym->m_pkthdr.csum_flags &= ~CSUM_DELAY_DATA;
1968			copym->m_pkthdr.csum_flags |=
1969			    CSUM_DATA_VALID | CSUM_PSEUDO_HDR;
1970			copym->m_pkthdr.csum_data = 0xffff;
1971		}
1972		/*
1973		 * We don't bother to fragment if the IP length is greater
1974		 * than the interface's MTU.  Can this possibly matter?
1975		 */
1976		ip = mtod(copym, struct ip *);
1977		ip->ip_len = htons(ip->ip_len);
1978		ip->ip_off = htons(ip->ip_off);
1979		ip->ip_sum = 0;
1980		ip->ip_sum = in_cksum(copym, hlen);
1981		/*
1982		 * NB:
1983		 * It's not clear whether there are any lingering
1984		 * reentrancy problems in other areas which might
1985		 * be exposed by using ip_input directly (in
1986		 * particular, everything which modifies the packet
1987		 * in-place).  Yet another option is using the
1988		 * protosw directly to deliver the looped back
1989		 * packet.  For the moment, we'll err on the side
1990		 * of safety by using if_simloop().
1991		 */
1992#if 1 /* XXX */
1993		if (dst->sin_family != AF_INET) {
1994			printf("ip_mloopback: bad address family %d\n",
1995						dst->sin_family);
1996			dst->sin_family = AF_INET;
1997		}
1998#endif
1999
2000#ifdef notdef
2001		copym->m_pkthdr.rcvif = ifp;
2002		ip_input(copym);
2003#else
2004		if_simloop(ifp, copym, dst->sin_family, 0);
2005#endif
2006	}
2007}
2008