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[/] [openrisc/] [trunk/] [rtos/] [ecos-2.0/] [packages/] [net/] [bsd_tcpip/] [v2_0/] [src/] [sys/] [netinet/] [ip_input.c] - Blame information for rev 174

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//==========================================================================
2
//
3
//      src/sys/netinet/ip_input.c
4
//
5
//==========================================================================
6
//####BSDCOPYRIGHTBEGIN####
7
//
8
// -------------------------------------------
9
//
10
// Portions of this software may have been derived from OpenBSD, 
11
// FreeBSD or other sources, and are covered by the appropriate
12
// copyright disclaimers included herein.
13
//
14
// Portions created by Red Hat are
15
// Copyright (C) 2002 Red Hat, Inc. All Rights Reserved.
16
//
17
// -------------------------------------------
18
//
19
//####BSDCOPYRIGHTEND####
20
//==========================================================================
21
 
22
/*
23
 * Copyright (c) 1982, 1986, 1988, 1993
24
 *      The Regents of the University of California.  All rights reserved.
25
 *
26
 * Redistribution and use in source and binary forms, with or without
27
 * modification, are permitted provided that the following conditions
28
 * are met:
29
 * 1. Redistributions of source code must retain the above copyright
30
 *    notice, this list of conditions and the following disclaimer.
31
 * 2. Redistributions in binary form must reproduce the above copyright
32
 *    notice, this list of conditions and the following disclaimer in the
33
 *    documentation and/or other materials provided with the distribution.
34
 * 3. All advertising materials mentioning features or use of this software
35
 *    must display the following acknowledgement:
36
 *      This product includes software developed by the University of
37
 *      California, Berkeley and its contributors.
38
 * 4. Neither the name of the University nor the names of its contributors
39
 *    may be used to endorse or promote products derived from this software
40
 *    without specific prior written permission.
41
 *
42
 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
43
 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
44
 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
45
 * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
46
 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
47
 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
48
 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
49
 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
50
 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
51
 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
52
 * SUCH DAMAGE.
53
 *
54
 *      @(#)ip_input.c  8.2 (Berkeley) 1/4/94
55
 * $FreeBSD: src/sys/netinet/ip_input.c,v 1.130.2.25 2001/08/29 21:41:37 jesper Exp $
56
 */
57
 
58
#define _IP_VHL
59
 
60
#include <sys/param.h>
61
#include <sys/mbuf.h>
62
#include <sys/malloc.h>
63
#include <sys/domain.h>
64
#include <sys/protosw.h>
65
#include <sys/socket.h>
66
 
67
#include <net/if.h>
68
#include <net/if_var.h>
69
#include <net/if_dl.h>
70
#include <net/route.h>
71
#include <net/netisr.h>
72
#include <net/intrq.h>
73
 
74
#include <netinet/in.h>
75
#include <netinet/in_systm.h>
76
#include <netinet/in_var.h>
77
#include <netinet/ip.h>
78
#include <netinet/in_pcb.h>
79
#include <netinet/ip_var.h>
80
#include <netinet/ip_icmp.h>
81
 
82
#include <sys/socketvar.h>
83
 
84
#include <netinet/ip_fw.h>
85
 
86
#ifdef IPSEC
87
#include <netinet6/ipsec.h>
88
#include <netkey/key.h>
89
#endif
90
 
91
#ifdef DUMMYNET
92
#include <netinet/ip_dummynet.h>
93
#endif
94
 
95
int rsvp_on = 0;
96
static int ip_rsvp_on;
97
struct socket *ip_rsvpd;
98
 
99
int     ipforwarding = 0;
100
static int      ipsendredirects = 1; /* XXX */
101
int     ip_defttl = IPDEFTTL;
102
static int      ip_dosourceroute = 0;
103
static int      ip_acceptsourceroute = 0;
104
static int      ip_keepfaith = 0;
105
static int      ip_nfragpackets = 0;
106
static int      ip_maxfragpackets;      /* initialized in ip_init() */
107
 
108
/*
109
 * XXX - Setting ip_checkinterface mostly implements the receive side of
110
 * the Strong ES model described in RFC 1122, but since the routing table
111
 * and transmit implementation do not implement the Strong ES model,
112
 * setting this to 1 results in an odd hybrid.
113
 *
114
 * XXX - ip_checkinterface currently must be disabled if you use ipnat
115
 * to translate the destination address to another local interface.
116
 *
117
 * XXX - ip_checkinterface must be disabled if you add IP aliases
118
 * to the loopback interface instead of the interface where the
119
 * packets for those addresses are received.
120
 */
121
static int      ip_checkinterface = 0;
122
 
123
#ifdef DIAGNOSTIC
124
static int      ipprintfs = 0;
125
#endif
126
 
127
extern  struct domain inetdomain;
128
extern  struct protosw inetsw[];
129
u_char  ip_protox[IPPROTO_MAX];
130
static int      ipqmaxlen = IFQ_MAXLEN;
131
struct  in_ifaddrhead in_ifaddrhead; /* first inet address */
132
struct ipstat ipstat;
133
 
134
/* Packet reassembly stuff */
135
#define IPREASS_NHASH_LOG2      6
136
#define IPREASS_NHASH           (1 << IPREASS_NHASH_LOG2)
137
#define IPREASS_HMASK           (IPREASS_NHASH - 1)
138
#define IPREASS_HASH(x,y) \
139
        (((((x) & 0xF) | ((((x) >> 8) & 0xF) << 4)) ^ (y)) & IPREASS_HMASK)
140
 
141
static struct ipq ipq[IPREASS_NHASH];
142
static int    nipq = 0;         /* total # of reass queues */
143
static int    maxnipq;
144
const  int    ipintrq_present = 1;
145
 
146
#ifdef IPSTEALTH
147
static int      ipstealth = 0;
148
#endif
149
 
150
 
151
/* Firewall hooks */
152
ip_fw_chk_t *ip_fw_chk_ptr;
153
ip_fw_ctl_t *ip_fw_ctl_ptr;
154
int fw_enable = 1 ;
155
 
156
#ifdef DUMMYNET
157
ip_dn_ctl_t *ip_dn_ctl_ptr;
158
#endif
159
 
160
int (*fr_checkp) __P((struct ip *, int, struct ifnet *, int, struct mbuf **)) = NULL;
161
 
162
 
163
/*
164
 * We need to save the IP options in case a protocol wants to respond
165
 * to an incoming packet over the same route if the packet got here
166
 * using IP source routing.  This allows connection establishment and
167
 * maintenance when the remote end is on a network that is not known
168
 * to us.
169
 */
170
static int      ip_nhops = 0;
171
static  struct ip_srcrt {
172
        struct  in_addr dst;                    /* final destination */
173
        char    nop;                            /* one NOP to align */
174
        char    srcopt[IPOPT_OFFSET + 1];       /* OPTVAL, OLEN and OFFSET */
175
        struct  in_addr route[MAX_IPOPTLEN/sizeof(struct in_addr)];
176
} ip_srcrt;
177
 
178
struct sockaddr_in *ip_fw_fwd_addr;
179
 
180
static void     save_rte __P((u_char *, struct in_addr));
181
static int      ip_dooptions __P((struct mbuf *));
182
#ifdef NATPT
183
       void     ip_forward __P((struct mbuf *, int));
184
#else
185
static void     ip_forward __P((struct mbuf *, int));
186
#endif
187
static void     ip_freef __P((struct ipq *));
188
#ifdef IPDIVERT
189
static struct   mbuf *ip_reass __P((struct mbuf *,
190
                        struct ipq *, struct ipq *, u_int32_t *, u_int16_t *));
191
#else
192
static struct   mbuf *ip_reass __P((struct mbuf *, struct ipq *, struct ipq *));
193
#endif
194
static struct   in_ifaddr *ip_rtaddr __P((struct in_addr));
195
static void     ipintr __P((void));
196
 
197
#ifdef NATPT
198
extern  int                     ip6_protocol_tr;
199
int     natpt_in4               __P((struct mbuf *, struct mbuf **));
200
extern  void ip6_forward        __P((struct mbuf *, int));
201
#endif  /* NATPT */
202
 
203
/*
204
 * IP initialization: fill in IP protocol switch table.
205
 * All protocols not implemented in kernel go to raw IP protocol handler.
206
 */
207
void
208
ip_init()
209
{
210
        register struct protosw *pr;
211
        register int i;
212
 
213
        TAILQ_INIT(&in_ifaddrhead);
214
        pr = pffindproto(PF_INET, IPPROTO_RAW, SOCK_RAW);
215
        if (pr == 0)
216
                panic("ip_init");
217
        for (i = 0; i < IPPROTO_MAX; i++)
218
                ip_protox[i] = pr - inetsw;
219
        for (pr = inetdomain.dom_protosw;
220
            pr < inetdomain.dom_protoswNPROTOSW; pr++)
221
                if (pr->pr_domain->dom_family == PF_INET &&
222
                    pr->pr_protocol && pr->pr_protocol != IPPROTO_RAW)
223
                        ip_protox[pr->pr_protocol] = pr - inetsw;
224
 
225
        for (i = 0; i < IPREASS_NHASH; i++)
226
            ipq[i].next = ipq[i].prev = &ipq[i];
227
 
228
        maxnipq = nmbclusters / 4;
229
        ip_maxfragpackets = nmbclusters / 4;
230
 
231
#ifndef RANDOM_IP_ID
232
        ip_id = time_second & 0xffff;
233
#endif
234
        ipintrq.ifq_maxlen = ipqmaxlen;
235
 
236
        register_netisr(NETISR_IP, ipintr);
237
}
238
 
239
static struct   sockaddr_in ipaddr = { sizeof(ipaddr), AF_INET };
240
static struct   route ipforward_rt;
241
 
242
/*
243
 * Ip input routine.  Checksum and byte swap header.  If fragmented
244
 * try to reassemble.  Process options.  Pass to next level.
245
 */
246
void
247
ip_input(struct mbuf *m)
248
{
249
        struct ip *ip;
250
        struct ipq *fp;
251
        struct in_ifaddr *ia = NULL;
252
        int    i, hlen, mff, checkif;
253
        u_short sum;
254
        u_int16_t divert_cookie;                /* firewall cookie */
255
        struct in_addr pkt_dst;
256
#ifdef IPDIVERT
257
        u_int32_t divert_info = 0;               /* packet divert/tee info */
258
#endif
259
        struct ip_fw_chain *rule = NULL;
260
 
261
#ifdef IPDIVERT
262
        /* Get and reset firewall cookie */
263
        divert_cookie = ip_divert_cookie;
264
        ip_divert_cookie = 0;
265
#else
266
        divert_cookie = 0;
267
#endif
268
 
269
#if defined(IPFIREWALL) && defined(DUMMYNET)
270
        /*
271
         * dummynet packet are prepended a vestigial mbuf with
272
         * m_type = MT_DUMMYNET and m_data pointing to the matching
273
         * rule.
274
         */
275
        if (m->m_type == MT_DUMMYNET) {
276
            rule = (struct ip_fw_chain *)(m->m_data) ;
277
            m = m->m_next ;
278
            ip = mtod(m, struct ip *);
279
            hlen = IP_VHL_HL(ip->ip_vhl) << 2;
280
            goto iphack ;
281
        } else
282
            rule = NULL ;
283
#endif
284
 
285
#ifdef  DIAGNOSTIC
286
        if (m == NULL || (m->m_flags & M_PKTHDR) == 0)
287
                panic("ip_input no HDR");
288
#endif
289
        ipstat.ips_total++;
290
 
291
        if (m->m_pkthdr.len < sizeof(struct ip))
292
                goto tooshort;
293
 
294
        if (m->m_len < sizeof (struct ip) &&
295
            (m = m_pullup(m, sizeof (struct ip))) == 0) {
296
                ipstat.ips_toosmall++;
297
                return;
298
        }
299
        ip = mtod(m, struct ip *);
300
 
301
        if (IP_VHL_V(ip->ip_vhl) != IPVERSION) {
302
                ipstat.ips_badvers++;
303
                goto bad;
304
        }
305
 
306
        hlen = IP_VHL_HL(ip->ip_vhl) << 2;
307
        if (hlen < sizeof(struct ip)) { /* minimum header length */
308
                ipstat.ips_badhlen++;
309
                goto bad;
310
        }
311
        if (hlen > m->m_len) {
312
                if ((m = m_pullup(m, hlen)) == 0) {
313
                        ipstat.ips_badhlen++;
314
                        return;
315
                }
316
                ip = mtod(m, struct ip *);
317
        }
318
 
319
        /* 127/8 must not appear on wire - RFC1122 */
320
        if ((ntohl(ip->ip_dst.s_addr) >> IN_CLASSA_NSHIFT) == IN_LOOPBACKNET ||
321
            (ntohl(ip->ip_src.s_addr) >> IN_CLASSA_NSHIFT) == IN_LOOPBACKNET) {
322
                if ((m->m_pkthdr.rcvif->if_flags & IFF_LOOPBACK) == 0) {
323
                        ipstat.ips_badaddr++;
324
                        goto bad;
325
                }
326
        }
327
 
328
        if (m->m_pkthdr.csum_flags & CSUM_IP_CHECKED) {
329
                sum = !(m->m_pkthdr.csum_flags & CSUM_IP_VALID);
330
        } else {
331
                if (hlen == sizeof(struct ip)) {
332
                        sum = in_cksum_hdr(ip);
333
                } else {
334
                        sum = in_cksum(m, hlen);
335
                }
336
        }
337
        if (sum) {
338
                ipstat.ips_badsum++;
339
                goto bad;
340
        }
341
 
342
#ifdef ALTQ
343
        if (altq_input != NULL && (*altq_input)(m, AF_INET) == 0)
344
                /* packet is dropped by traffic conditioner */
345
                return;
346
#endif
347
        /*
348
         * Convert fields to host representation.
349
         */
350
        NTOHS(ip->ip_len);
351
        if (ip->ip_len < hlen) {
352
                ipstat.ips_badlen++;
353
                goto bad;
354
        }
355
        NTOHS(ip->ip_off);
356
 
357
        /*
358
         * Check that the amount of data in the buffers
359
         * is as at least much as the IP header would have us expect.
360
         * Trim mbufs if longer than we expect.
361
         * Drop packet if shorter than we expect.
362
         */
363
        if (m->m_pkthdr.len < ip->ip_len) {
364
tooshort:
365
                ipstat.ips_tooshort++;
366
                goto bad;
367
        }
368
        if (m->m_pkthdr.len > ip->ip_len) {
369
                if (m->m_len == m->m_pkthdr.len) {
370
                        m->m_len = ip->ip_len;
371
                        m->m_pkthdr.len = ip->ip_len;
372
                } else
373
                        m_adj(m, ip->ip_len - m->m_pkthdr.len);
374
        }
375
 
376
#ifdef IPSEC
377
        if (ipsec_getnhist(m))
378
                goto pass;
379
#endif
380
 
381
        /*
382
         * IpHack's section.
383
         * Right now when no processing on packet has done
384
         * and it is still fresh out of network we do our black
385
         * deals with it.
386
         * - Firewall: deny/allow/divert
387
         * - Xlate: translate packet's addr/port (NAT).
388
         * - Pipe: pass pkt through dummynet.
389
         * - Wrap: fake packet's addr/port <unimpl.>
390
         * - Encapsulate: put it in another IP and send out. <unimp.>
391
         */
392
 
393
#if defined(IPFIREWALL) && defined(DUMMYNET)
394
iphack:
395
#endif
396
        /*
397
         * Check if we want to allow this packet to be processed.
398
         * Consider it to be bad if not.
399
         */
400
        if (fr_checkp) {
401
                struct  mbuf    *m1 = m;
402
 
403
                if ((*fr_checkp)(ip, hlen, m->m_pkthdr.rcvif, 0, &m1) || !m1)
404
                        return;
405
                ip = mtod(m = m1, struct ip *);
406
        }
407
        if (fw_enable && ip_fw_chk_ptr) {
408
#ifdef IPFIREWALL_FORWARD
409
                /*
410
                 * If we've been forwarded from the output side, then
411
                 * skip the firewall a second time
412
                 */
413
                if (ip_fw_fwd_addr)
414
                        goto ours;
415
#endif  /* IPFIREWALL_FORWARD */
416
                /*
417
                 * See the comment in ip_output for the return values
418
                 * produced by the firewall.
419
                 */
420
                i = (*ip_fw_chk_ptr)(&ip,
421
                    hlen, NULL, &divert_cookie, &m, &rule, &ip_fw_fwd_addr);
422
                if ( (i & IP_FW_PORT_DENY_FLAG) || m == NULL) { /* drop */
423
                        if (m)
424
                                m_freem(m);
425
                        return ;
426
                }
427
                ip = mtod(m, struct ip *); /* just in case m changed */
428
                if (i == 0 && ip_fw_fwd_addr == NULL)    /* common case */
429
                        goto pass;
430
#ifdef DUMMYNET
431
                if ((i & IP_FW_PORT_DYNT_FLAG) != 0) {
432
                        /* Send packet to the appropriate pipe */
433
                        dummynet_io(i&0xffff,DN_TO_IP_IN,m,NULL,NULL,0, rule,
434
                                    0);
435
                        return;
436
                }
437
#endif
438
#ifdef IPDIVERT
439
                if (i != 0 && (i & IP_FW_PORT_DYNT_FLAG) == 0) {
440
                        /* Divert or tee packet */
441
                        divert_info = i;
442
                        goto ours;
443
                }
444
#endif
445
#ifdef IPFIREWALL_FORWARD
446
                if (i == 0 && ip_fw_fwd_addr != NULL)
447
                        goto pass;
448
#endif
449
                /*
450
                 * if we get here, the packet must be dropped
451
                 */
452
                m_freem(m);
453
                return;
454
        }
455
pass:
456
 
457
        /*
458
         * Process options and, if not destined for us,
459
         * ship it on.  ip_dooptions returns 1 when an
460
         * error was detected (causing an icmp message
461
         * to be sent and the original packet to be freed).
462
         */
463
        ip_nhops = 0;            /* for source routed packets */
464
        if (hlen > sizeof (struct ip) && ip_dooptions(m)) {
465
#ifdef IPFIREWALL_FORWARD
466
                ip_fw_fwd_addr = NULL;
467
#endif
468
                return;
469
        }
470
 
471
        /* greedy RSVP, snatches any PATH packet of the RSVP protocol and no
472
         * matter if it is destined to another node, or whether it is
473
         * a multicast one, RSVP wants it! and prevents it from being forwarded
474
         * anywhere else. Also checks if the rsvp daemon is running before
475
         * grabbing the packet.
476
         */
477
        if (rsvp_on && ip->ip_p==IPPROTO_RSVP)
478
                goto ours;
479
 
480
#ifdef NATPT
481
        /*
482
         * NATPT (Network Address Translation - Protocol Translation)
483
         */
484
        if (ip6_protocol_tr) {
485
                struct mbuf     *m1 = NULL;
486
 
487
                switch (natpt_in4(m, &m1)) {
488
                case IPPROTO_IP:        /* this packet is not changed   */
489
                        goto checkaddresses;
490
 
491
                case IPPROTO_IPV4:
492
                        ip_forward(m1, 0);
493
                        break;
494
 
495
                case IPPROTO_IPV6:
496
                        ip6_forward(m1, 1);
497
                        break;
498
 
499
                case IPPROTO_DONE:      /* discard without free */
500
                        return;
501
 
502
                case IPPROTO_MAX:       /* discard this packet  */
503
                default:
504
                        break;
505
                }
506
 
507
                if (m != m1)
508
                        m_freem(m);
509
 
510
                return;
511
        }
512
checkaddresses:;
513
#endif
514
 
515
        /*
516
         * Check our list of addresses, to see if the packet is for us.
517
         * If we don't have any addresses, assume any unicast packet
518
         * we receive might be for us (and let the upper layers deal
519
         * with it).
520
         */
521
        if (TAILQ_EMPTY(&in_ifaddrhead) &&
522
            (m->m_flags & (M_MCAST|M_BCAST)) == 0)
523
                goto ours;
524
 
525
        /*
526
         * Cache the destination address of the packet; this may be
527
         * changed by use of 'ipfw fwd'.
528
         */
529
        pkt_dst = ip_fw_fwd_addr == NULL ?
530
            ip->ip_dst : ip_fw_fwd_addr->sin_addr;
531
 
532
        /*
533
         * Enable a consistency check between the destination address
534
         * and the arrival interface for a unicast packet (the RFC 1122
535
         * strong ES model) if IP forwarding is disabled and the packet
536
         * is not locally generated and the packet is not subject to
537
         * 'ipfw fwd'.
538
         *
539
         * XXX - Checking also should be disabled if the destination
540
         * address is ipnat'ed to a different interface.
541
         *
542
         * XXX - Checking is incompatible with IP aliases added
543
         * to the loopback interface instead of the interface where
544
         * the packets are received.
545
         */
546
        checkif = ip_checkinterface && (ipforwarding == 0) &&
547
            ((m->m_pkthdr.rcvif->if_flags & IFF_LOOPBACK) == 0) &&
548
            (ip_fw_fwd_addr == NULL);
549
 
550
        TAILQ_FOREACH(ia, &in_ifaddrhead, ia_link) {
551
#define satosin(sa)     ((struct sockaddr_in *)(sa))
552
 
553
#ifdef BOOTP_COMPAT
554
                if (IA_SIN(ia)->sin_addr.s_addr == INADDR_ANY)
555
                        goto ours;
556
#endif
557
                /*
558
                 * If the address matches, verify that the packet
559
                 * arrived via the correct interface if checking is
560
                 * enabled.
561
                 */
562
                if (IA_SIN(ia)->sin_addr.s_addr == pkt_dst.s_addr &&
563
                    (!checkif || ia->ia_ifp == m->m_pkthdr.rcvif))
564
                        goto ours;
565
                /*
566
                 * Only accept broadcast packets that arrive via the
567
                 * matching interface.  Reception of forwarded directed
568
                 * broadcasts would be handled via ip_forward() and
569
                 * ether_output() with the loopback into the stack for
570
                 * SIMPLEX interfaces handled by ether_output().
571
                 */
572
                if (ia->ia_ifp == m->m_pkthdr.rcvif &&
573
                    ia->ia_ifp && ia->ia_ifp->if_flags & IFF_BROADCAST) {
574
                        if (satosin(&ia->ia_broadaddr)->sin_addr.s_addr ==
575
                            pkt_dst.s_addr)
576
                                goto ours;
577
                        if (ia->ia_netbroadcast.s_addr == pkt_dst.s_addr)
578
                                goto ours;
579
                }
580
        }
581
        if (IN_MULTICAST(ntohl(ip->ip_dst.s_addr))) {
582
                struct in_multi *inm;
583
                if (ip_mrouter) {
584
                        /*
585
                         * If we are acting as a multicast router, all
586
                         * incoming multicast packets are passed to the
587
                         * kernel-level multicast forwarding function.
588
                         * The packet is returned (relatively) intact; if
589
                         * ip_mforward() returns a non-zero value, the packet
590
                         * must be discarded, else it may be accepted below.
591
                         */
592
                        if (ip_mforward(ip, m->m_pkthdr.rcvif, m, 0) != 0) {
593
                                ipstat.ips_cantforward++;
594
                                m_freem(m);
595
                                return;
596
                        }
597
 
598
                        /*
599
                         * The process-level routing demon needs to receive
600
                         * all multicast IGMP packets, whether or not this
601
                         * host belongs to their destination groups.
602
                         */
603
                        if (ip->ip_p == IPPROTO_IGMP)
604
                                goto ours;
605
                        ipstat.ips_forward++;
606
                }
607
                /*
608
                 * See if we belong to the destination multicast group on the
609
                 * arrival interface.
610
                 */
611
                IN_LOOKUP_MULTI(ip->ip_dst, m->m_pkthdr.rcvif, inm);
612
                if (inm == NULL) {
613
                        ipstat.ips_notmember++;
614
                        m_freem(m);
615
                        return;
616
                }
617
                goto ours;
618
        }
619
        if (ip->ip_dst.s_addr == (u_long)INADDR_BROADCAST)
620
                goto ours;
621
        if (ip->ip_dst.s_addr == INADDR_ANY)
622
                goto ours;
623
 
624
#if defined(NFAITH) && 0 < NFAITH
625
        /*
626
         * FAITH(Firewall Aided Internet Translator)
627
         */
628
        if (m->m_pkthdr.rcvif && m->m_pkthdr.rcvif->if_type == IFT_FAITH) {
629
                if (ip_keepfaith) {
630
                        if (ip->ip_p == IPPROTO_TCP || ip->ip_p == IPPROTO_ICMP)
631
                                goto ours;
632
                }
633
                m_freem(m);
634
                return;
635
        }
636
#endif
637
        /*
638
         * Not for us; forward if possible and desirable.
639
         */
640
        if (ipforwarding == 0) {
641
                ipstat.ips_cantforward++;
642
                m_freem(m);
643
        } else
644
                ip_forward(m, 0);
645
#ifdef IPFIREWALL_FORWARD
646
        ip_fw_fwd_addr = NULL;
647
#endif
648
        return;
649
 
650
ours:
651
        /* Count the packet in the ip address stats */
652
        if (ia != NULL) {
653
                ia->ia_ifa.if_ipackets++;
654
                ia->ia_ifa.if_ibytes += m->m_pkthdr.len;
655
        }
656
 
657
        /*
658
         * If offset or IP_MF are set, must reassemble.
659
         * Otherwise, nothing need be done.
660
         * (We could look in the reassembly queue to see
661
         * if the packet was previously fragmented,
662
         * but it's not worth the time; just let them time out.)
663
         */
664
        if (ip->ip_off & (IP_MF | IP_OFFMASK | IP_RF)) {
665
 
666
#if 0   /*
667
         * Reassembly should be able to treat a mbuf cluster, for later
668
         * operation of contiguous protocol headers on the cluster. (KAME)
669
         */
670
                if (m->m_flags & M_EXT) {               /* XXX */
671
                        if ((m = m_pullup(m, hlen)) == 0) {
672
                                ipstat.ips_toosmall++;
673
#ifdef IPFIREWALL_FORWARD
674
                                ip_fw_fwd_addr = NULL;
675
#endif
676
                                return;
677
                        }
678
                        ip = mtod(m, struct ip *);
679
                }
680
#endif
681
                sum = IPREASS_HASH(ip->ip_src.s_addr, ip->ip_id);
682
                /*
683
                 * Look for queue of fragments
684
                 * of this datagram.
685
                 */
686
                for (fp = ipq[sum].next; fp != &ipq[sum]; fp = fp->next)
687
                        if (ip->ip_id == fp->ipq_id &&
688
                            ip->ip_src.s_addr == fp->ipq_src.s_addr &&
689
                            ip->ip_dst.s_addr == fp->ipq_dst.s_addr &&
690
                            ip->ip_p == fp->ipq_p)
691
                                goto found;
692
 
693
                fp = 0;
694
 
695
                /* check if there's a place for the new queue */
696
                if (nipq > maxnipq) {
697
                    /*
698
                     * drop something from the tail of the current queue
699
                     * before proceeding further
700
                     */
701
                    if (ipq[sum].prev == &ipq[sum]) {   /* gak */
702
                        for (i = 0; i < IPREASS_NHASH; i++) {
703
                            if (ipq[i].prev != &ipq[i]) {
704
                                ip_freef(ipq[i].prev);
705
                                break;
706
                            }
707
                        }
708
                    } else
709
                        ip_freef(ipq[sum].prev);
710
                }
711
found:
712
                /*
713
                 * Adjust ip_len to not reflect header,
714
                 * set ip_mff if more fragments are expected,
715
                 * convert offset of this to bytes.
716
                 */
717
                ip->ip_len -= hlen;
718
                mff = (ip->ip_off & IP_MF) != 0;
719
                if (mff) {
720
                        /*
721
                         * Make sure that fragments have a data length
722
                         * that's a non-zero multiple of 8 bytes.
723
                         */
724
                        if (ip->ip_len == 0 || (ip->ip_len & 0x7) != 0) {
725
                                ipstat.ips_toosmall++; /* XXX */
726
                                goto bad;
727
                        }
728
                        m->m_flags |= M_FRAG;
729
                }
730
                ip->ip_off <<= 3;
731
 
732
                /*
733
                 * If datagram marked as having more fragments
734
                 * or if this is not the first fragment,
735
                 * attempt reassembly; if it succeeds, proceed.
736
                 */
737
                if (mff || ip->ip_off) {
738
                        ipstat.ips_fragments++;
739
                        m->m_pkthdr.header = ip;
740
#ifdef IPDIVERT
741
                        m = ip_reass(m,
742
                            fp, &ipq[sum], &divert_info, &divert_cookie);
743
#else
744
                        m = ip_reass(m, fp, &ipq[sum]);
745
#endif
746
                        if (m == 0) {
747
#ifdef IPFIREWALL_FORWARD
748
                                ip_fw_fwd_addr = NULL;
749
#endif
750
                                return;
751
                        }
752
                        ipstat.ips_reassembled++;
753
                        ip = mtod(m, struct ip *);
754
                        /* Get the header length of the reassembled packet */
755
                        hlen = IP_VHL_HL(ip->ip_vhl) << 2;
756
#ifdef IPDIVERT
757
                        /* Restore original checksum before diverting packet */
758
                        if (divert_info != 0) {
759
                                ip->ip_len += hlen;
760
                                HTONS(ip->ip_len);
761
                                HTONS(ip->ip_off);
762
                                ip->ip_sum = 0;
763
                                if (hlen == sizeof(struct ip))
764
                                        ip->ip_sum = in_cksum_hdr(ip);
765
                                else
766
                                        ip->ip_sum = in_cksum(m, hlen);
767
                                NTOHS(ip->ip_off);
768
                                NTOHS(ip->ip_len);
769
                                ip->ip_len -= hlen;
770
                        }
771
#endif
772
                } else
773
                        if (fp)
774
                                ip_freef(fp);
775
        } else
776
                ip->ip_len -= hlen;
777
 
778
#ifdef IPDIVERT
779
        /*
780
         * Divert or tee packet to the divert protocol if required.
781
         *
782
         * If divert_info is zero then cookie should be too, so we shouldn't
783
         * need to clear them here.  Assume divert_packet() does so also.
784
         */
785
        if (divert_info != 0) {
786
                struct mbuf *clone = NULL;
787
 
788
                /* Clone packet if we're doing a 'tee' */
789
                if ((divert_info & IP_FW_PORT_TEE_FLAG) != 0)
790
                        clone = m_dup(m, M_DONTWAIT);
791
 
792
                /* Restore packet header fields to original values */
793
                ip->ip_len += hlen;
794
                HTONS(ip->ip_len);
795
                HTONS(ip->ip_off);
796
 
797
                /* Deliver packet to divert input routine */
798
                ip_divert_cookie = divert_cookie;
799
                divert_packet(m, 1, divert_info & 0xffff);
800
                ipstat.ips_delivered++;
801
 
802
                /* If 'tee', continue with original packet */
803
                if (clone == NULL)
804
                        return;
805
                m = clone;
806
                ip = mtod(m, struct ip *);
807
        }
808
#endif
809
 
810
#ifdef IPSEC
811
        /*
812
         * enforce IPsec policy checking if we are seeing last header.
813
         * note that we do not visit this with protocols with pcb layer
814
         * code - like udp/tcp/raw ip.
815
         */
816
        if ((inetsw[ip_protox[ip->ip_p]].pr_flags & PR_LASTHDR) != 0 &&
817
            ipsec4_in_reject(m, NULL)) {
818
                ipsecstat.in_polvio++;
819
                goto bad;
820
        }
821
#endif
822
 
823
        /*
824
         * Switch out to protocol's input routine.
825
         */
826
        ipstat.ips_delivered++;
827
    {
828
        int off = hlen;
829
 
830
        (*inetsw[ip_protox[ip->ip_p]].pr_input)(m, off);
831
#ifdef  IPFIREWALL_FORWARD
832
        ip_fw_fwd_addr = NULL;  /* tcp needed it */
833
#endif
834
        return;
835
    }
836
bad:
837
#ifdef  IPFIREWALL_FORWARD
838
        ip_fw_fwd_addr = NULL;
839
#endif
840
        m_freem(m);
841
}
842
 
843
/*
844
 * IP software interrupt routine - to go away sometime soon
845
 */
846
static void
847
ipintr(void)
848
{
849
        int s;
850
        struct mbuf *m;
851
 
852
        while(1) {
853
                s = splimp();
854
                IF_DEQUEUE(&ipintrq, m);
855
                splx(s);
856
                if (m == 0)
857
                        return;
858
                ip_input(m);
859
        }
860
}
861
 
862
/*
863
 * Take incoming datagram fragment and try to reassemble it into
864
 * whole datagram.  If a chain for reassembly of this datagram already
865
 * exists, then it is given as fp; otherwise have to make a chain.
866
 *
867
 * When IPDIVERT enabled, keep additional state with each packet that
868
 * tells us if we need to divert or tee the packet we're building.
869
 */
870
 
871
static struct mbuf *
872
#ifdef IPDIVERT
873
ip_reass(m, fp, where, divinfo, divcookie)
874
#else
875
ip_reass(m, fp, where)
876
#endif
877
        register struct mbuf *m;
878
        register struct ipq *fp;
879
        struct   ipq    *where;
880
#ifdef IPDIVERT
881
        u_int32_t *divinfo;
882
        u_int16_t *divcookie;
883
#endif
884
{
885
        struct ip *ip = mtod(m, struct ip *);
886
        register struct mbuf *p = 0, *q, *nq;
887
        struct mbuf *t;
888
        int hlen = IP_VHL_HL(ip->ip_vhl) << 2;
889
        int i, next;
890
 
891
        /*
892
         * Presence of header sizes in mbufs
893
         * would confuse code below.
894
         */
895
        m->m_data += hlen;
896
        m->m_len -= hlen;
897
 
898
        /*
899
         * If first fragment to arrive, create a reassembly queue.
900
         */
901
        if (fp == 0) {
902
                /*
903
                 * Enforce upper bound on number of fragmented packets
904
                 * for which we attempt reassembly;
905
                 * If maxfrag is 0, never accept fragments.
906
                 * If maxfrag is -1, accept all fragments without limitation.
907
                 */
908
                if ((ip_maxfragpackets >= 0) && (ip_nfragpackets >= ip_maxfragpackets))
909
                        goto dropfrag;
910
                ip_nfragpackets++;
911
                if ((t = m_get(M_DONTWAIT, MT_FTABLE)) == NULL)
912
                        goto dropfrag;
913
                fp = mtod(t, struct ipq *);
914
                insque(fp, where);
915
                nipq++;
916
                fp->ipq_ttl = IPFRAGTTL;
917
                fp->ipq_p = ip->ip_p;
918
                fp->ipq_id = ip->ip_id;
919
                fp->ipq_src = ip->ip_src;
920
                fp->ipq_dst = ip->ip_dst;
921
                fp->ipq_frags = m;
922
                m->m_nextpkt = NULL;
923
#ifdef IPDIVERT
924
                fp->ipq_div_info = 0;
925
                fp->ipq_div_cookie = 0;
926
#endif
927
                goto inserted;
928
        }
929
 
930
#define GETIP(m)        ((struct ip*)((m)->m_pkthdr.header))
931
 
932
        /*
933
         * Find a segment which begins after this one does.
934
         */
935
        for (p = NULL, q = fp->ipq_frags; q; p = q, q = q->m_nextpkt)
936
                if (GETIP(q)->ip_off > ip->ip_off)
937
                        break;
938
 
939
        /*
940
         * If there is a preceding segment, it may provide some of
941
         * our data already.  If so, drop the data from the incoming
942
         * segment.  If it provides all of our data, drop us, otherwise
943
         * stick new segment in the proper place.
944
         *
945
         * If some of the data is dropped from the the preceding
946
         * segment, then it's checksum is invalidated.
947
         */
948
        if (p) {
949
                i = GETIP(p)->ip_off + GETIP(p)->ip_len - ip->ip_off;
950
                if (i > 0) {
951
                        if (i >= ip->ip_len)
952
                                goto dropfrag;
953
                        m_adj(m, i);
954
                        m->m_pkthdr.csum_flags = 0;
955
                        ip->ip_off += i;
956
                        ip->ip_len -= i;
957
                }
958
                m->m_nextpkt = p->m_nextpkt;
959
                p->m_nextpkt = m;
960
        } else {
961
                m->m_nextpkt = fp->ipq_frags;
962
                fp->ipq_frags = m;
963
        }
964
 
965
        /*
966
         * While we overlap succeeding segments trim them or,
967
         * if they are completely covered, dequeue them.
968
         */
969
        for (; q != NULL && ip->ip_off + ip->ip_len > GETIP(q)->ip_off;
970
             q = nq) {
971
                i = (ip->ip_off + ip->ip_len) -
972
                    GETIP(q)->ip_off;
973
                if (i < GETIP(q)->ip_len) {
974
                        GETIP(q)->ip_len -= i;
975
                        GETIP(q)->ip_off += i;
976
                        m_adj(q, i);
977
                        q->m_pkthdr.csum_flags = 0;
978
                        break;
979
                }
980
                nq = q->m_nextpkt;
981
                m->m_nextpkt = nq;
982
                m_freem(q);
983
        }
984
 
985
inserted:
986
 
987
#ifdef IPDIVERT
988
        /*
989
         * Transfer firewall instructions to the fragment structure.
990
         * Any fragment diverting causes the whole packet to divert.
991
         */
992
        fp->ipq_div_info = *divinfo;
993
        fp->ipq_div_cookie = *divcookie;
994
        *divinfo = 0;
995
        *divcookie = 0;
996
#endif
997
 
998
        /*
999
         * Check for complete reassembly.
1000
         */
1001
        next = 0;
1002
        for (p = NULL, q = fp->ipq_frags; q; p = q, q = q->m_nextpkt) {
1003
                if (GETIP(q)->ip_off != next)
1004
                        return (0);
1005
                next += GETIP(q)->ip_len;
1006
        }
1007
        /* Make sure the last packet didn't have the IP_MF flag */
1008
        if (p->m_flags & M_FRAG)
1009
                return (0);
1010
 
1011
        /*
1012
         * Reassembly is complete.  Make sure the packet is a sane size.
1013
         */
1014
        q = fp->ipq_frags;
1015
        ip = GETIP(q);
1016
        if (next + (IP_VHL_HL(ip->ip_vhl) << 2) > IP_MAXPACKET) {
1017
                ipstat.ips_toolong++;
1018
                ip_freef(fp);
1019
                return (0);
1020
        }
1021
 
1022
        /*
1023
         * Concatenate fragments.
1024
         */
1025
        m = q;
1026
        t = m->m_next;
1027
        m->m_next = 0;
1028
        m_cat(m, t);
1029
        nq = q->m_nextpkt;
1030
        q->m_nextpkt = 0;
1031
        for (q = nq; q != NULL; q = nq) {
1032
                nq = q->m_nextpkt;
1033
                q->m_nextpkt = NULL;
1034
                m->m_pkthdr.csum_flags &= q->m_pkthdr.csum_flags;
1035
                m->m_pkthdr.csum_data += q->m_pkthdr.csum_data;
1036
                m_cat(m, q);
1037
        }
1038
 
1039
#ifdef IPDIVERT
1040
        /*
1041
         * Extract firewall instructions from the fragment structure.
1042
         */
1043
        *divinfo = fp->ipq_div_info;
1044
        *divcookie = fp->ipq_div_cookie;
1045
#endif
1046
 
1047
        /*
1048
         * Create header for new ip packet by
1049
         * modifying header of first packet;
1050
         * dequeue and discard fragment reassembly header.
1051
         * Make header visible.
1052
         */
1053
        ip->ip_len = next;
1054
        ip->ip_src = fp->ipq_src;
1055
        ip->ip_dst = fp->ipq_dst;
1056
        remque(fp);
1057
        nipq--;
1058
        (void) m_free(dtom(fp));
1059
        ip_nfragpackets--;
1060
        m->m_len += (IP_VHL_HL(ip->ip_vhl) << 2);
1061
        m->m_data -= (IP_VHL_HL(ip->ip_vhl) << 2);
1062
        /* some debugging cruft by sklower, below, will go away soon */
1063
        if (m->m_flags & M_PKTHDR) { /* XXX this should be done elsewhere */
1064
                register int plen = 0;
1065
                for (t = m; t; t = t->m_next)
1066
                        plen += t->m_len;
1067
                m->m_pkthdr.len = plen;
1068
        }
1069
        return (m);
1070
 
1071
dropfrag:
1072
#ifdef IPDIVERT
1073
        *divinfo = 0;
1074
        *divcookie = 0;
1075
#endif
1076
        ipstat.ips_fragdropped++;
1077
        m_freem(m);
1078
        return (0);
1079
 
1080
#undef GETIP
1081
}
1082
 
1083
/*
1084
 * Free a fragment reassembly header and all
1085
 * associated datagrams.
1086
 */
1087
static void
1088
ip_freef(fp)
1089
        struct ipq *fp;
1090
{
1091
        register struct mbuf *q;
1092
 
1093
        while (fp->ipq_frags) {
1094
                q = fp->ipq_frags;
1095
                fp->ipq_frags = q->m_nextpkt;
1096
                m_freem(q);
1097
        }
1098
        remque(fp);
1099
        (void) m_free(dtom(fp));
1100
        ip_nfragpackets--;
1101
        nipq--;
1102
}
1103
 
1104
/*
1105
 * IP timer processing;
1106
 * if a timer expires on a reassembly
1107
 * queue, discard it.
1108
 */
1109
void
1110
ip_slowtimo()
1111
{
1112
        register struct ipq *fp;
1113
        int s = splnet();
1114
        int i;
1115
 
1116
        for (i = 0; i < IPREASS_NHASH; i++) {
1117
                fp = ipq[i].next;
1118
                if (fp == 0)
1119
                        continue;
1120
                while (fp != &ipq[i]) {
1121
                        --fp->ipq_ttl;
1122
                        fp = fp->next;
1123
                        if (fp->prev->ipq_ttl == 0) {
1124
                                ipstat.ips_fragtimeout++;
1125
                                ip_freef(fp->prev);
1126
                        }
1127
                }
1128
        }
1129
        /*
1130
         * If we are over the maximum number of fragments
1131
         * (due to the limit being lowered), drain off
1132
         * enough to get down to the new limit.
1133
         */
1134
        for (i = 0; i < IPREASS_NHASH; i++) {
1135
                if (ip_maxfragpackets >= 0) {
1136
                        while ((ip_nfragpackets > ip_maxfragpackets) &&
1137
                                (ipq[i].next != &ipq[i])) {
1138
                                ipstat.ips_fragdropped++;
1139
                                ip_freef(ipq[i].next);
1140
                        }
1141
                }
1142
        }
1143
        ipflow_slowtimo();
1144
        splx(s);
1145
}
1146
 
1147
/*
1148
 * Drain off all datagram fragments.
1149
 */
1150
void
1151
ip_drain()
1152
{
1153
        int     i;
1154
 
1155
        for (i = 0; i < IPREASS_NHASH; i++) {
1156
                while (ipq[i].next != &ipq[i]) {
1157
                        ipstat.ips_fragdropped++;
1158
                        ip_freef(ipq[i].next);
1159
                }
1160
        }
1161
        in_rtqdrain();
1162
}
1163
 
1164
/*
1165
 * Do option processing on a datagram,
1166
 * possibly discarding it if bad options are encountered,
1167
 * or forwarding it if source-routed.
1168
 * Returns 1 if packet has been forwarded/freed,
1169
 * 0 if the packet should be processed further.
1170
 */
1171
static int
1172
ip_dooptions(m)
1173
        struct mbuf *m;
1174
{
1175
        register struct ip *ip = mtod(m, struct ip *);
1176
        register u_char *cp;
1177
        register struct ip_timestamp *ipt;
1178
        register struct in_ifaddr *ia;
1179
        int opt, optlen, cnt, off, code, type = ICMP_PARAMPROB, forward = 0;
1180
        struct in_addr *sin, dst;
1181
        n_time ntime;
1182
 
1183
        dst = ip->ip_dst;
1184
        cp = (u_char *)(ip + 1);
1185
        cnt = (IP_VHL_HL(ip->ip_vhl) << 2) - sizeof (struct ip);
1186
        for (; cnt > 0; cnt -= optlen, cp += optlen) {
1187
                opt = cp[IPOPT_OPTVAL];
1188
                if (opt == IPOPT_EOL)
1189
                        break;
1190
                if (opt == IPOPT_NOP)
1191
                        optlen = 1;
1192
                else {
1193
                        if (cnt < IPOPT_OLEN + sizeof(*cp)) {
1194
                                code = &cp[IPOPT_OLEN] - (u_char *)ip;
1195
                                goto bad;
1196
                        }
1197
                        optlen = cp[IPOPT_OLEN];
1198
                        if (optlen < IPOPT_OLEN + sizeof(*cp) || optlen > cnt) {
1199
                                code = &cp[IPOPT_OLEN] - (u_char *)ip;
1200
                                goto bad;
1201
                        }
1202
                }
1203
                switch (opt) {
1204
 
1205
                default:
1206
                        break;
1207
 
1208
                /*
1209
                 * Source routing with record.
1210
                 * Find interface with current destination address.
1211
                 * If none on this machine then drop if strictly routed,
1212
                 * or do nothing if loosely routed.
1213
                 * Record interface address and bring up next address
1214
                 * component.  If strictly routed make sure next
1215
                 * address is on directly accessible net.
1216
                 */
1217
                case IPOPT_LSRR:
1218
                case IPOPT_SSRR:
1219
                        if (optlen < IPOPT_OFFSET + sizeof(*cp)) {
1220
                                code = &cp[IPOPT_OLEN] - (u_char *)ip;
1221
                                goto bad;
1222
                        }
1223
                        if ((off = cp[IPOPT_OFFSET]) < IPOPT_MINOFF) {
1224
                                code = &cp[IPOPT_OFFSET] - (u_char *)ip;
1225
                                goto bad;
1226
                        }
1227
                        ipaddr.sin_addr = ip->ip_dst;
1228
                        ia = (struct in_ifaddr *)
1229
                                ifa_ifwithaddr((struct sockaddr *)&ipaddr);
1230
                        if (ia == 0) {
1231
                                if (opt == IPOPT_SSRR) {
1232
                                        type = ICMP_UNREACH;
1233
                                        code = ICMP_UNREACH_SRCFAIL;
1234
                                        goto bad;
1235
                                }
1236
                                if (!ip_dosourceroute)
1237
                                        goto nosourcerouting;
1238
                                /*
1239
                                 * Loose routing, and not at next destination
1240
                                 * yet; nothing to do except forward.
1241
                                 */
1242
                                break;
1243
                        }
1244
                        off--;                  /* 0 origin */
1245
                        if (off > optlen - (int)sizeof(struct in_addr)) {
1246
                                /*
1247
                                 * End of source route.  Should be for us.
1248
                                 */
1249
                                if (!ip_acceptsourceroute)
1250
                                        goto nosourcerouting;
1251
                                save_rte(cp, ip->ip_src);
1252
                                break;
1253
                        }
1254
 
1255
                        if (!ip_dosourceroute) {
1256
                                if (ipforwarding) {
1257
                                        char buf[16]; /* aaa.bbb.ccc.ddd\0 */
1258
                                        /*
1259
                                         * Acting as a router, so generate ICMP
1260
                                         */
1261
nosourcerouting:
1262
                                        strcpy(buf, inet_ntoa(ip->ip_dst));
1263
                                        log(LOG_WARNING,
1264
                                            "attempted source route from %s to %s\n",
1265
                                            inet_ntoa(ip->ip_src), buf);
1266
                                        type = ICMP_UNREACH;
1267
                                        code = ICMP_UNREACH_SRCFAIL;
1268
                                        goto bad;
1269
                                } else {
1270
                                        /*
1271
                                         * Not acting as a router, so silently drop.
1272
                                         */
1273
                                        ipstat.ips_cantforward++;
1274
                                        m_freem(m);
1275
                                        return (1);
1276
                                }
1277
                        }
1278
 
1279
                        /*
1280
                         * locate outgoing interface
1281
                         */
1282
                        (void)memcpy(&ipaddr.sin_addr, cp + off,
1283
                            sizeof(ipaddr.sin_addr));
1284
 
1285
                        if (opt == IPOPT_SSRR) {
1286
#define INA     struct in_ifaddr *
1287
#define SA      struct sockaddr *
1288
                            if ((ia = (INA)ifa_ifwithdstaddr((SA)&ipaddr)) == 0)
1289
                                ia = (INA)ifa_ifwithnet((SA)&ipaddr);
1290
                        } else
1291
                                ia = ip_rtaddr(ipaddr.sin_addr);
1292
                        if (ia == 0) {
1293
                                type = ICMP_UNREACH;
1294
                                code = ICMP_UNREACH_SRCFAIL;
1295
                                goto bad;
1296
                        }
1297
                        ip->ip_dst = ipaddr.sin_addr;
1298
                        (void)memcpy(cp + off, &(IA_SIN(ia)->sin_addr),
1299
                            sizeof(struct in_addr));
1300
                        cp[IPOPT_OFFSET] += sizeof(struct in_addr);
1301
                        /*
1302
                         * Let ip_intr's mcast routing check handle mcast pkts
1303
                         */
1304
                        forward = !IN_MULTICAST(ntohl(ip->ip_dst.s_addr));
1305
                        break;
1306
 
1307
                case IPOPT_RR:
1308
                        if (optlen < IPOPT_OFFSET + sizeof(*cp)) {
1309
                                code = &cp[IPOPT_OFFSET] - (u_char *)ip;
1310
                                goto bad;
1311
                        }
1312
                        if ((off = cp[IPOPT_OFFSET]) < IPOPT_MINOFF) {
1313
                                code = &cp[IPOPT_OFFSET] - (u_char *)ip;
1314
                                goto bad;
1315
                        }
1316
                        /*
1317
                         * If no space remains, ignore.
1318
                         */
1319
                        off--;                  /* 0 origin */
1320
                        if (off > optlen - (int)sizeof(struct in_addr))
1321
                                break;
1322
                        (void)memcpy(&ipaddr.sin_addr, &ip->ip_dst,
1323
                            sizeof(ipaddr.sin_addr));
1324
                        /*
1325
                         * locate outgoing interface; if we're the destination,
1326
                         * use the incoming interface (should be same).
1327
                         */
1328
                        if ((ia = (INA)ifa_ifwithaddr((SA)&ipaddr)) == 0 &&
1329
                            (ia = ip_rtaddr(ipaddr.sin_addr)) == 0) {
1330
                                type = ICMP_UNREACH;
1331
                                code = ICMP_UNREACH_HOST;
1332
                                goto bad;
1333
                        }
1334
                        (void)memcpy(cp + off, &(IA_SIN(ia)->sin_addr),
1335
                            sizeof(struct in_addr));
1336
                        cp[IPOPT_OFFSET] += sizeof(struct in_addr);
1337
                        break;
1338
 
1339
                case IPOPT_TS:
1340
                        code = cp - (u_char *)ip;
1341
                        ipt = (struct ip_timestamp *)cp;
1342
                        if (ipt->ipt_len < 4 || ipt->ipt_len > 40) {
1343
                                code = (u_char *)&ipt->ipt_len - (u_char *)ip;
1344
                                goto bad;
1345
                        }
1346
                        if (ipt->ipt_ptr < 5) {
1347
                                code = (u_char *)&ipt->ipt_ptr - (u_char *)ip;
1348
                                goto bad;
1349
                        }
1350
                        if (ipt->ipt_ptr >
1351
                            ipt->ipt_len - (int)sizeof(int32_t)) {
1352
                                if (++ipt->ipt_oflw == 0) {
1353
                                        code = (u_char *)&ipt->ipt_ptr -
1354
                                            (u_char *)ip;
1355
                                        goto bad;
1356
                                }
1357
                                break;
1358
                        }
1359
                        sin = (struct in_addr *)(cp + ipt->ipt_ptr - 1);
1360
                        switch (ipt->ipt_flg) {
1361
 
1362
                        case IPOPT_TS_TSONLY:
1363
                                break;
1364
 
1365
                        case IPOPT_TS_TSANDADDR:
1366
                                if (ipt->ipt_ptr - 1 + sizeof(n_time) +
1367
                                    sizeof(struct in_addr) > ipt->ipt_len) {
1368
                                        code = (u_char *)&ipt->ipt_ptr -
1369
                                            (u_char *)ip;
1370
                                        goto bad;
1371
                                }
1372
                                ipaddr.sin_addr = dst;
1373
                                ia = (INA)ifaof_ifpforaddr((SA)&ipaddr,
1374
                                                            m->m_pkthdr.rcvif);
1375
                                if (ia == 0)
1376
                                        continue;
1377
                                (void)memcpy(sin, &IA_SIN(ia)->sin_addr,
1378
                                    sizeof(struct in_addr));
1379
                                ipt->ipt_ptr += sizeof(struct in_addr);
1380
                                break;
1381
 
1382
                        case IPOPT_TS_PRESPEC:
1383
                                if (ipt->ipt_ptr - 1 + sizeof(n_time) +
1384
                                    sizeof(struct in_addr) > ipt->ipt_len) {
1385
                                        code = (u_char *)&ipt->ipt_ptr -
1386
                                            (u_char *)ip;
1387
                                        goto bad;
1388
                                }
1389
                                (void)memcpy(&ipaddr.sin_addr, sin,
1390
                                    sizeof(struct in_addr));
1391
                                if (ifa_ifwithaddr((SA)&ipaddr) == 0)
1392
                                        continue;
1393
                                ipt->ipt_ptr += sizeof(struct in_addr);
1394
                                break;
1395
 
1396
                        default:
1397
                                /* XXX can't take &ipt->ipt_flg */
1398
                                code = (u_char *)&ipt->ipt_ptr -
1399
                                    (u_char *)ip + 1;
1400
                                goto bad;
1401
                        }
1402
                        ntime = iptime();
1403
                        (void)memcpy(cp + ipt->ipt_ptr - 1, &ntime,
1404
                            sizeof(n_time));
1405
                        ipt->ipt_ptr += sizeof(n_time);
1406
                }
1407
        }
1408
        if (forward && ipforwarding) {
1409
                ip_forward(m, 1);
1410
                return (1);
1411
        }
1412
        return (0);
1413
bad:
1414
        icmp_error(m, type, code, 0, 0);
1415
        ipstat.ips_badoptions++;
1416
        return (1);
1417
}
1418
 
1419
/*
1420
 * Given address of next destination (final or next hop),
1421
 * return internet address info of interface to be used to get there.
1422
 */
1423
static struct in_ifaddr *
1424
ip_rtaddr(dst)
1425
         struct in_addr dst;
1426
{
1427
        register struct sockaddr_in *sin;
1428
 
1429
        sin = (struct sockaddr_in *) &ipforward_rt.ro_dst;
1430
 
1431
        if (ipforward_rt.ro_rt == 0 || dst.s_addr != sin->sin_addr.s_addr) {
1432
                if (ipforward_rt.ro_rt) {
1433
                        RTFREE(ipforward_rt.ro_rt);
1434
                        ipforward_rt.ro_rt = 0;
1435
                }
1436
                sin->sin_family = AF_INET;
1437
                sin->sin_len = sizeof(*sin);
1438
                sin->sin_addr = dst;
1439
 
1440
                rtalloc_ign(&ipforward_rt, RTF_PRCLONING);
1441
        }
1442
        if (ipforward_rt.ro_rt == 0)
1443
                return ((struct in_ifaddr *)0);
1444
        return ((struct in_ifaddr *) ipforward_rt.ro_rt->rt_ifa);
1445
}
1446
 
1447
/*
1448
 * Save incoming source route for use in replies,
1449
 * to be picked up later by ip_srcroute if the receiver is interested.
1450
 */
1451
void
1452
save_rte(option, dst)
1453
        u_char *option;
1454
        struct in_addr dst;
1455
{
1456
        unsigned olen;
1457
 
1458
        olen = option[IPOPT_OLEN];
1459
#ifdef DIAGNOSTIC
1460
        if (ipprintfs)
1461
                printf("save_rte: olen %d\n", olen);
1462
#endif
1463
        if (olen > sizeof(ip_srcrt) - (1 + sizeof(dst)))
1464
                return;
1465
        bcopy(option, ip_srcrt.srcopt, olen);
1466
        ip_nhops = (olen - IPOPT_OFFSET - 1) / sizeof(struct in_addr);
1467
        ip_srcrt.dst = dst;
1468
}
1469
 
1470
/*
1471
 * Retrieve incoming source route for use in replies,
1472
 * in the same form used by setsockopt.
1473
 * The first hop is placed before the options, will be removed later.
1474
 */
1475
struct mbuf *
1476
ip_srcroute()
1477
{
1478
        register struct in_addr *p, *q;
1479
        register struct mbuf *m;
1480
 
1481
        if (ip_nhops == 0)
1482
                return ((struct mbuf *)0);
1483
        m = m_get(M_DONTWAIT, MT_HEADER);
1484
        if (m == 0)
1485
                return ((struct mbuf *)0);
1486
 
1487
#define OPTSIZ  (sizeof(ip_srcrt.nop) + sizeof(ip_srcrt.srcopt))
1488
 
1489
        /* length is (nhops+1)*sizeof(addr) + sizeof(nop + srcrt header) */
1490
        m->m_len = ip_nhops * sizeof(struct in_addr) + sizeof(struct in_addr) +
1491
            OPTSIZ;
1492
#ifdef DIAGNOSTIC
1493
        if (ipprintfs)
1494
                printf("ip_srcroute: nhops %d mlen %d", ip_nhops, m->m_len);
1495
#endif
1496
 
1497
        /*
1498
         * First save first hop for return route
1499
         */
1500
        p = &ip_srcrt.route[ip_nhops - 1];
1501
        *(mtod(m, struct in_addr *)) = *p--;
1502
#ifdef DIAGNOSTIC
1503
        if (ipprintfs)
1504
                printf(" hops %lx", (u_long)ntohl(mtod(m, struct in_addr *)->s_addr));
1505
#endif
1506
 
1507
        /*
1508
         * Copy option fields and padding (nop) to mbuf.
1509
         */
1510
        ip_srcrt.nop = IPOPT_NOP;
1511
        ip_srcrt.srcopt[IPOPT_OFFSET] = IPOPT_MINOFF;
1512
        (void)memcpy(mtod(m, caddr_t) + sizeof(struct in_addr),
1513
            &ip_srcrt.nop, OPTSIZ);
1514
        q = (struct in_addr *)(mtod(m, caddr_t) +
1515
            sizeof(struct in_addr) + OPTSIZ);
1516
#undef OPTSIZ
1517
        /*
1518
         * Record return path as an IP source route,
1519
         * reversing the path (pointers are now aligned).
1520
         */
1521
        while (p >= ip_srcrt.route) {
1522
#ifdef DIAGNOSTIC
1523
                if (ipprintfs)
1524
                        printf(" %lx", (u_long)ntohl(q->s_addr));
1525
#endif
1526
                *q++ = *p--;
1527
        }
1528
        /*
1529
         * Last hop goes to final destination.
1530
         */
1531
        *q = ip_srcrt.dst;
1532
#ifdef DIAGNOSTIC
1533
        if (ipprintfs)
1534
                printf(" %lx\n", (u_long)ntohl(q->s_addr));
1535
#endif
1536
        return (m);
1537
}
1538
 
1539
/*
1540
 * Strip out IP options, at higher
1541
 * level protocol in the kernel.
1542
 * Second argument is buffer to which options
1543
 * will be moved, and return value is their length.
1544
 * XXX should be deleted; last arg currently ignored.
1545
 */
1546
void
1547
ip_stripoptions(m, mopt)
1548
        register struct mbuf *m;
1549
        struct mbuf *mopt;
1550
{
1551
        register int i;
1552
        struct ip *ip = mtod(m, struct ip *);
1553
        register caddr_t opts;
1554
        int olen;
1555
 
1556
        olen = (IP_VHL_HL(ip->ip_vhl) << 2) - sizeof (struct ip);
1557
        opts = (caddr_t)(ip + 1);
1558
        i = m->m_len - (sizeof (struct ip) + olen);
1559
        bcopy(opts + olen, opts, (unsigned)i);
1560
        m->m_len -= olen;
1561
        if (m->m_flags & M_PKTHDR)
1562
                m->m_pkthdr.len -= olen;
1563
        ip->ip_vhl = IP_MAKE_VHL(IPVERSION, sizeof(struct ip) >> 2);
1564
}
1565
 
1566
int inetctlerrmap[PRC_NCMDS] = {
1567
        0,               0,               0,               0,
1568
        0,               EMSGSIZE,       EHOSTDOWN,      EHOSTUNREACH,
1569
        EHOSTUNREACH,   EHOSTUNREACH,   ECONNREFUSED,   ECONNREFUSED,
1570
        EMSGSIZE,       EHOSTUNREACH,   0,               0,
1571
        0,               0,               0,               0,
1572
        ENOPROTOOPT,    ECONNREFUSED
1573
};
1574
 
1575
/*
1576
 * Forward a packet.  If some error occurs return the sender
1577
 * an icmp packet.  Note we can't always generate a meaningful
1578
 * icmp message because icmp doesn't have a large enough repertoire
1579
 * of codes and types.
1580
 *
1581
 * If not forwarding, just drop the packet.  This could be confusing
1582
 * if ipforwarding was zero but some routing protocol was advancing
1583
 * us as a gateway to somewhere.  However, we must let the routing
1584
 * protocol deal with that.
1585
 *
1586
 * The srcrt parameter indicates whether the packet is being forwarded
1587
 * via a source route.
1588
 */
1589
#ifdef NATPT
1590
void
1591
#else
1592
static void
1593
#endif
1594
ip_forward(m, srcrt)
1595
        struct mbuf *m;
1596
        int srcrt;
1597
{
1598
        register struct ip *ip = mtod(m, struct ip *);
1599
        register struct sockaddr_in *sin;
1600
        register struct rtentry *rt;
1601
        int error, type = 0, code = 0;
1602
        struct mbuf *mcopy;
1603
        n_long dest;
1604
        struct ifnet *destifp;
1605
#ifdef IPSEC
1606
        struct ifnet dummyifp;
1607
#endif
1608
 
1609
        dest = 0;
1610
#ifdef DIAGNOSTIC
1611
        if (ipprintfs)
1612
                printf("forward: src %lx dst %lx ttl %x\n",
1613
                    (u_long)ip->ip_src.s_addr, (u_long)ip->ip_dst.s_addr,
1614
                    ip->ip_ttl);
1615
#endif
1616
 
1617
 
1618
        if (m->m_flags & (M_BCAST|M_MCAST) || in_canforward(ip->ip_dst) == 0) {
1619
                ipstat.ips_cantforward++;
1620
                m_freem(m);
1621
                return;
1622
        }
1623
#ifdef IPSTEALTH
1624
        if (!ipstealth) {
1625
#endif
1626
                if (ip->ip_ttl <= IPTTLDEC) {
1627
                        icmp_error(m, ICMP_TIMXCEED, ICMP_TIMXCEED_INTRANS,
1628
                            dest, 0);
1629
                        return;
1630
                }
1631
#ifdef IPSTEALTH
1632
        }
1633
#endif
1634
 
1635
        sin = (struct sockaddr_in *)&ipforward_rt.ro_dst;
1636
        if ((rt = ipforward_rt.ro_rt) == 0 ||
1637
            ip->ip_dst.s_addr != sin->sin_addr.s_addr) {
1638
                if (ipforward_rt.ro_rt) {
1639
                        RTFREE(ipforward_rt.ro_rt);
1640
                        ipforward_rt.ro_rt = 0;
1641
                }
1642
                sin->sin_family = AF_INET;
1643
                sin->sin_len = sizeof(*sin);
1644
                sin->sin_addr = ip->ip_dst;
1645
 
1646
                rtalloc_ign(&ipforward_rt, RTF_PRCLONING);
1647
                if (ipforward_rt.ro_rt == 0) {
1648
                        icmp_error(m, ICMP_UNREACH, ICMP_UNREACH_HOST, dest, 0);
1649
                        return;
1650
                }
1651
                rt = ipforward_rt.ro_rt;
1652
        }
1653
 
1654
        /*
1655
         * Save the IP header and at most 8 bytes of the payload,
1656
         * in case we need to generate an ICMP message to the src.
1657
         *
1658
         * We don't use m_copy() because it might return a reference
1659
         * to a shared cluster. Both this function and ip_output()
1660
         * assume exclusive access to the IP header in `m', so any
1661
         * data in a cluster may change before we reach icmp_error().
1662
         */
1663
        MGET(mcopy, M_DONTWAIT, m->m_type);
1664
        if (mcopy != NULL) {
1665
                M_COPY_PKTHDR(mcopy, m);
1666
                mcopy->m_len = imin((IP_VHL_HL(ip->ip_vhl) << 2) + 8,
1667
                    (int)ip->ip_len);
1668
                m_copydata(m, 0, mcopy->m_len, mtod(mcopy, caddr_t));
1669
        }
1670
 
1671
#ifdef IPSTEALTH
1672
        if (!ipstealth) {
1673
#endif
1674
                ip->ip_ttl -= IPTTLDEC;
1675
#ifdef IPSTEALTH
1676
        }
1677
#endif
1678
 
1679
        /*
1680
         * If forwarding packet using same interface that it came in on,
1681
         * perhaps should send a redirect to sender to shortcut a hop.
1682
         * Only send redirect if source is sending directly to us,
1683
         * and if packet was not source routed (or has any options).
1684
         * Also, don't send redirect if forwarding using a default route
1685
         * or a route modified by a redirect.
1686
         */
1687
#define satosin(sa)     ((struct sockaddr_in *)(sa))
1688
        if (rt->rt_ifp == m->m_pkthdr.rcvif &&
1689
            (rt->rt_flags & (RTF_DYNAMIC|RTF_MODIFIED)) == 0 &&
1690
            satosin(rt_key(rt))->sin_addr.s_addr != 0 &&
1691
            ipsendredirects && !srcrt) {
1692
#define RTA(rt) ((struct in_ifaddr *)(rt->rt_ifa))
1693
                u_long src = ntohl(ip->ip_src.s_addr);
1694
 
1695
                if (RTA(rt) &&
1696
                    (src & RTA(rt)->ia_subnetmask) == RTA(rt)->ia_subnet) {
1697
                    if (rt->rt_flags & RTF_GATEWAY)
1698
                        dest = satosin(rt->rt_gateway)->sin_addr.s_addr;
1699
                    else
1700
                        dest = ip->ip_dst.s_addr;
1701
                    /* Router requirements says to only send host redirects */
1702
                    type = ICMP_REDIRECT;
1703
                    code = ICMP_REDIRECT_HOST;
1704
#ifdef DIAGNOSTIC
1705
                    if (ipprintfs)
1706
                        printf("redirect (%d) to %lx\n", code, (u_long)dest);
1707
#endif
1708
                }
1709
        }
1710
 
1711
        error = ip_output(m, (struct mbuf *)0, &ipforward_rt,
1712
                          IP_FORWARDING, 0);
1713
        if (error)
1714
                ipstat.ips_cantforward++;
1715
        else {
1716
                ipstat.ips_forward++;
1717
                if (type)
1718
                        ipstat.ips_redirectsent++;
1719
                else {
1720
                        if (mcopy) {
1721
                                ipflow_create(&ipforward_rt, mcopy);
1722
                                m_freem(mcopy);
1723
                        }
1724
                        return;
1725
                }
1726
        }
1727
        if (mcopy == NULL)
1728
                return;
1729
        destifp = NULL;
1730
 
1731
        switch (error) {
1732
 
1733
        case 0:                          /* forwarded, but need redirect */
1734
                /* type, code set above */
1735
                break;
1736
 
1737
        case ENETUNREACH:               /* shouldn't happen, checked above */
1738
        case EHOSTUNREACH:
1739
        case ENETDOWN:
1740
        case EHOSTDOWN:
1741
        default:
1742
                type = ICMP_UNREACH;
1743
                code = ICMP_UNREACH_HOST;
1744
                break;
1745
 
1746
        case EMSGSIZE:
1747
                type = ICMP_UNREACH;
1748
                code = ICMP_UNREACH_NEEDFRAG;
1749
#ifndef IPSEC
1750
                if (ipforward_rt.ro_rt)
1751
                        destifp = ipforward_rt.ro_rt->rt_ifp;
1752
#else
1753
                /*
1754
                 * If the packet is routed over IPsec tunnel, tell the
1755
                 * originator the tunnel MTU.
1756
                 *      tunnel MTU = if MTU - sizeof(IP) - ESP/AH hdrsiz
1757
                 * XXX quickhack!!!
1758
                 */
1759
                if (ipforward_rt.ro_rt) {
1760
                        struct secpolicy *sp = NULL;
1761
                        int ipsecerror;
1762
                        int ipsechdr;
1763
                        struct route *ro;
1764
 
1765
                        sp = ipsec4_getpolicybyaddr(mcopy,
1766
                                                    IPSEC_DIR_OUTBOUND,
1767
                                                    IP_FORWARDING,
1768
                                                    &ipsecerror);
1769
 
1770
                        if (sp == NULL)
1771
                                destifp = ipforward_rt.ro_rt->rt_ifp;
1772
                        else {
1773
                                /* count IPsec header size */
1774
                                ipsechdr = ipsec4_hdrsiz(mcopy,
1775
                                                         IPSEC_DIR_OUTBOUND,
1776
                                                         NULL);
1777
 
1778
                                /*
1779
                                 * find the correct route for outer IPv4
1780
                                 * header, compute tunnel MTU.
1781
                                 *
1782
                                 * XXX BUG ALERT
1783
                                 * The "dummyifp" code relies upon the fact
1784
                                 * that icmp_error() touches only ifp->if_mtu.
1785
                                 */
1786
                                /*XXX*/
1787
                                destifp = NULL;
1788
                                if (sp->req != NULL
1789
                                 && sp->req->sav != NULL
1790
                                 && sp->req->sav->sah != NULL) {
1791
                                        ro = &sp->req->sav->sah->sa_route;
1792
                                        if (ro->ro_rt && ro->ro_rt->rt_ifp) {
1793
                                                dummyifp.if_mtu =
1794
                                                    ro->ro_rt->rt_ifp->if_mtu;
1795
                                                dummyifp.if_mtu -= ipsechdr;
1796
                                                destifp = &dummyifp;
1797
                                        }
1798
                                }
1799
 
1800
                                key_freesp(sp);
1801
                        }
1802
                }
1803
#endif /*IPSEC*/
1804
                ipstat.ips_cantfrag++;
1805
                break;
1806
 
1807
        case ENOBUFS:
1808
#ifdef ALTQ
1809
                /*
1810
                 * don't generate ICMP_SOURCEQUENCH
1811
                 * (RFC1812 Requirements for IP Version 4 Routers)
1812
                 */
1813
                if (mcopy)
1814
                        m_freem(mcopy);
1815
                return;
1816
#else
1817
                type = ICMP_SOURCEQUENCH;
1818
                code = 0;
1819
                break;
1820
#endif
1821
 
1822
        case EACCES:                    /* ipfw denied packet */
1823
                m_freem(mcopy);
1824
                return;
1825
        }
1826
        icmp_error(mcopy, type, code, dest, destifp);
1827
}
1828
 
1829
void
1830
ip_savecontrol(inp, mp, ip, m)
1831
        register struct inpcb *inp;
1832
        register struct mbuf **mp;
1833
        register struct ip *ip;
1834
        register struct mbuf *m;
1835
{
1836
        if (inp->inp_socket->so_options & SO_TIMESTAMP) {
1837
                struct timeval tv;
1838
 
1839
                microtime(&tv);
1840
                *mp = sbcreatecontrol((caddr_t) &tv, sizeof(tv),
1841
                        SCM_TIMESTAMP, SOL_SOCKET);
1842
                if (*mp)
1843
                        mp = &(*mp)->m_next;
1844
        }
1845
        if (inp->inp_flags & INP_RECVDSTADDR) {
1846
                *mp = sbcreatecontrol((caddr_t) &ip->ip_dst,
1847
                    sizeof(struct in_addr), IP_RECVDSTADDR, IPPROTO_IP);
1848
                if (*mp)
1849
                        mp = &(*mp)->m_next;
1850
        }
1851
#ifdef notyet
1852
        /* XXX
1853
         * Moving these out of udp_input() made them even more broken
1854
         * than they already were.
1855
         */
1856
        /* options were tossed already */
1857
        if (inp->inp_flags & INP_RECVOPTS) {
1858
                *mp = sbcreatecontrol((caddr_t) opts_deleted_above,
1859
                    sizeof(struct in_addr), IP_RECVOPTS, IPPROTO_IP);
1860
                if (*mp)
1861
                        mp = &(*mp)->m_next;
1862
        }
1863
        /* ip_srcroute doesn't do what we want here, need to fix */
1864
        if (inp->inp_flags & INP_RECVRETOPTS) {
1865
                *mp = sbcreatecontrol((caddr_t) ip_srcroute(),
1866
                    sizeof(struct in_addr), IP_RECVRETOPTS, IPPROTO_IP);
1867
                if (*mp)
1868
                        mp = &(*mp)->m_next;
1869
        }
1870
#endif
1871
        if (inp->inp_flags & INP_RECVIF) {
1872
                struct ifnet *ifp;
1873
                struct sdlbuf {
1874
                        struct sockaddr_dl sdl;
1875
                        u_char  pad[32];
1876
                } sdlbuf;
1877
                struct sockaddr_dl *sdp;
1878
                struct sockaddr_dl *sdl2 = &sdlbuf.sdl;
1879
 
1880
                if (((ifp = m->m_pkthdr.rcvif))
1881
                && ( ifp->if_index && (ifp->if_index <= if_index))) {
1882
                        sdp = (struct sockaddr_dl *)(ifnet_addrs
1883
                                        [ifp->if_index - 1]->ifa_addr);
1884
                        /*
1885
                         * Change our mind and don't try copy.
1886
                         */
1887
                        if ((sdp->sdl_family != AF_LINK)
1888
                        || (sdp->sdl_len > sizeof(sdlbuf))) {
1889
                                goto makedummy;
1890
                        }
1891
                        bcopy(sdp, sdl2, sdp->sdl_len);
1892
                } else {
1893
makedummy:
1894
                        sdl2->sdl_len
1895
                                = offsetof(struct sockaddr_dl, sdl_data[0]);
1896
                        sdl2->sdl_family = AF_LINK;
1897
                        sdl2->sdl_index = 0;
1898
                        sdl2->sdl_nlen = sdl2->sdl_alen = sdl2->sdl_slen = 0;
1899
                }
1900
                *mp = sbcreatecontrol((caddr_t) sdl2, sdl2->sdl_len,
1901
                        IP_RECVIF, IPPROTO_IP);
1902
                if (*mp)
1903
                        mp = &(*mp)->m_next;
1904
        }
1905
}
1906
 
1907
int
1908
ip_rsvp_init(struct socket *so)
1909
{
1910
        if (so->so_type != SOCK_RAW ||
1911
            so->so_proto->pr_protocol != IPPROTO_RSVP)
1912
          return EOPNOTSUPP;
1913
 
1914
        if (ip_rsvpd != NULL)
1915
          return EADDRINUSE;
1916
 
1917
        ip_rsvpd = so;
1918
        /*
1919
         * This may seem silly, but we need to be sure we don't over-increment
1920
         * the RSVP counter, in case something slips up.
1921
         */
1922
        if (!ip_rsvp_on) {
1923
                ip_rsvp_on = 1;
1924
                rsvp_on++;
1925
        }
1926
 
1927
        return 0;
1928
}
1929
 
1930
int
1931
ip_rsvp_done(void)
1932
{
1933
        ip_rsvpd = NULL;
1934
        /*
1935
         * This may seem silly, but we need to be sure we don't over-decrement
1936
         * the RSVP counter, in case something slips up.
1937
         */
1938
        if (ip_rsvp_on) {
1939
                ip_rsvp_on = 0;
1940
                rsvp_on--;
1941
        }
1942
        return 0;
1943
}

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