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[libpcap] / pcap.c
1 /*
2 * Copyright (c) 1993, 1994, 1995, 1996, 1997, 1998
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 * 3. All advertising materials mentioning features or use of this software
14 * must display the following acknowledgement:
15 * This product includes software developed by the Computer Systems
16 * Engineering Group at Lawrence Berkeley Laboratory.
17 * 4. Neither the name of the University nor of the Laboratory may be used
18 * to endorse or promote products derived from this software without
19 * specific prior written permission.
20 *
21 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
22 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
25 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
26 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
27 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
28 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31 * SUCH DAMAGE.
32 */
33
34 #ifdef HAVE_CONFIG_H
35 #include "config.h"
36 #endif
37
38 #ifdef _WIN32
39 #include <pcap-stdinc.h>
40 #else /* _WIN32 */
41 #if HAVE_INTTYPES_H
42 #include <inttypes.h>
43 #elif HAVE_STDINT_H
44 #include <stdint.h>
45 #endif
46 #ifdef HAVE_SYS_BITYPES_H
47 #include <sys/bitypes.h>
48 #endif
49 #include <sys/types.h>
50 #endif /* _WIN32 */
51
52 #include <stdio.h>
53 #include <stdlib.h>
54 #include <string.h>
55 #if !defined(_MSC_VER) && !defined(__BORLANDC__) && !defined(__MINGW32__)
56 #include <unistd.h>
57 #endif
58 #include <fcntl.h>
59 #include <errno.h>
60
61 #ifdef HAVE_OS_PROTO_H
62 #include "os-proto.h"
63 #endif
64
65 #ifdef MSDOS
66 #include "pcap-dos.h"
67 #endif
68
69 #include "pcap-int.h"
70
71 #ifdef HAVE_DAG_API
72 #include "pcap-dag.h"
73 #endif /* HAVE_DAG_API */
74
75 #ifdef HAVE_SEPTEL_API
76 #include "pcap-septel.h"
77 #endif /* HAVE_SEPTEL_API */
78
79 #ifdef HAVE_SNF_API
80 #include "pcap-snf.h"
81 #endif /* HAVE_SNF_API */
82
83 #ifdef HAVE_TC_API
84 #include "pcap-tc.h"
85 #endif /* HAVE_TC_API */
86
87 #ifdef PCAP_SUPPORT_USB
88 #include "pcap-usb-linux.h"
89 #endif
90
91 #ifdef PCAP_SUPPORT_BT
92 #include "pcap-bt-linux.h"
93 #endif
94
95 #ifdef PCAP_SUPPORT_BT_MONITOR
96 #include "pcap-bt-monitor-linux.h"
97 #endif
98
99 #ifdef PCAP_SUPPORT_CAN
100 #include "pcap-can-linux.h"
101 #endif
102
103 #ifdef PCAP_SUPPORT_CANUSB
104 #include "pcap-canusb-linux.h"
105 #endif
106
107 #ifdef PCAP_SUPPORT_NETFILTER
108 #include "pcap-netfilter-linux.h"
109 #endif
110
111 #ifdef PCAP_SUPPORT_DBUS
112 #include "pcap-dbus.h"
113 #endif
114
115 static int
116 pcap_not_initialized(pcap_t *pcap)
117 {
118 /* in case the caller doesn't check for PCAP_ERROR_NOT_ACTIVATED */
119 (void)pcap_snprintf(pcap->errbuf, sizeof(pcap->errbuf),
120 "This handle hasn't been activated yet");
121 /* this means 'not initialized' */
122 return (PCAP_ERROR_NOT_ACTIVATED);
123 }
124
125 #ifdef _WIN32
126 static void *
127 pcap_not_initialized_ptr(pcap_t *pcap)
128 {
129 (void)pcap_snprintf(pcap->errbuf, sizeof(pcap->errbuf),
130 "This handle hasn't been activated yet");
131 return (NULL);
132 }
133
134 static HANDLE
135 pcap_getevent_not_initialized(pcap_t *pcap)
136 {
137 (void)pcap_snprintf(pcap->errbuf, sizeof(pcap->errbuf),
138 "This handle hasn't been activated yet");
139 return (INVALID_HANDLE_VALUE);
140 }
141
142 static u_int
143 pcap_sendqueue_transmit_not_initialized(pcap_t *pcap, pcap_send_queue* queue, int sync)
144 {
145 (void)pcap_snprintf(pcap->errbuf, sizeof(pcap->errbuf),
146 "This handle hasn't been activated yet");
147 return (0);
148 }
149
150 static PAirpcapHandle
151 pcap_get_airpcap_handle_not_initialized(pcap_t *pcap)
152 {
153 (void)pcap_snprintf(pcap->errbuf, sizeof(pcap->errbuf),
154 "This handle hasn't been activated yet");
155 return (NULL);
156 }
157 #endif
158
159 /*
160 * Returns 1 if rfmon mode can be set on the pcap_t, 0 if it can't,
161 * a PCAP_ERROR value on an error.
162 */
163 int
164 pcap_can_set_rfmon(pcap_t *p)
165 {
166 return (p->can_set_rfmon_op(p));
167 }
168
169 /*
170 * For systems where rfmon mode is never supported.
171 */
172 static int
173 pcap_cant_set_rfmon(pcap_t *p _U_)
174 {
175 return (0);
176 }
177
178 /*
179 * Sets *tstamp_typesp to point to an array 1 or more supported time stamp
180 * types; the return value is the number of supported time stamp types.
181 * The list should be freed by a call to pcap_free_tstamp_types() when
182 * you're done with it.
183 *
184 * A return value of 0 means "you don't get a choice of time stamp type",
185 * in which case *tstamp_typesp is set to null.
186 *
187 * PCAP_ERROR is returned on error.
188 */
189 int
190 pcap_list_tstamp_types(pcap_t *p, int **tstamp_typesp)
191 {
192 if (p->tstamp_type_count == 0) {
193 /*
194 * We don't support multiple time stamp types.
195 */
196 *tstamp_typesp = NULL;
197 } else {
198 *tstamp_typesp = (int*)calloc(sizeof(**tstamp_typesp),
199 p->tstamp_type_count);
200 if (*tstamp_typesp == NULL) {
201 (void)pcap_snprintf(p->errbuf, sizeof(p->errbuf),
202 "malloc: %s", pcap_strerror(errno));
203 return (PCAP_ERROR);
204 }
205 (void)memcpy(*tstamp_typesp, p->tstamp_type_list,
206 sizeof(**tstamp_typesp) * p->tstamp_type_count);
207 }
208 return (p->tstamp_type_count);
209 }
210
211 /*
212 * In Windows, you might have a library built with one version of the
213 * C runtime library and an application built with another version of
214 * the C runtime library, which means that the library might use one
215 * version of malloc() and free() and the application might use another
216 * version of malloc() and free(). If so, that means something
217 * allocated by the library cannot be freed by the application, so we
218 * need to have a pcap_free_tstamp_types() routine to free up the list
219 * allocated by pcap_list_tstamp_types(), even though it's just a wrapper
220 * around free().
221 */
222 void
223 pcap_free_tstamp_types(int *tstamp_type_list)
224 {
225 free(tstamp_type_list);
226 }
227
228 /*
229 * Default one-shot callback; overridden for capture types where the
230 * packet data cannot be guaranteed to be available after the callback
231 * returns, so that a copy must be made.
232 */
233 void
234 pcap_oneshot(u_char *user, const struct pcap_pkthdr *h, const u_char *pkt)
235 {
236 struct oneshot_userdata *sp = (struct oneshot_userdata *)user;
237
238 *sp->hdr = *h;
239 *sp->pkt = pkt;
240 }
241
242 const u_char *
243 pcap_next(pcap_t *p, struct pcap_pkthdr *h)
244 {
245 struct oneshot_userdata s;
246 const u_char *pkt;
247
248 s.hdr = h;
249 s.pkt = &pkt;
250 s.pd = p;
251 if (pcap_dispatch(p, 1, p->oneshot_callback, (u_char *)&s) <= 0)
252 return (0);
253 return (pkt);
254 }
255
256 int
257 pcap_next_ex(pcap_t *p, struct pcap_pkthdr **pkt_header,
258 const u_char **pkt_data)
259 {
260 struct oneshot_userdata s;
261
262 s.hdr = &p->pcap_header;
263 s.pkt = pkt_data;
264 s.pd = p;
265
266 /* Saves a pointer to the packet headers */
267 *pkt_header= &p->pcap_header;
268
269 if (p->rfile != NULL) {
270 int status;
271
272 /* We are on an offline capture */
273 status = pcap_offline_read(p, 1, p->oneshot_callback,
274 (u_char *)&s);
275
276 /*
277 * Return codes for pcap_offline_read() are:
278 * - 0: EOF
279 * - -1: error
280 * - >1: OK
281 * The first one ('0') conflicts with the return code of
282 * 0 from pcap_read() meaning "no packets arrived before
283 * the timeout expired", so we map it to -2 so you can
284 * distinguish between an EOF from a savefile and a
285 * "no packets arrived before the timeout expired, try
286 * again" from a live capture.
287 */
288 if (status == 0)
289 return (-2);
290 else
291 return (status);
292 }
293
294 /*
295 * Return codes for pcap_read() are:
296 * - 0: timeout
297 * - -1: error
298 * - -2: loop was broken out of with pcap_breakloop()
299 * - >1: OK
300 * The first one ('0') conflicts with the return code of 0 from
301 * pcap_offline_read() meaning "end of file".
302 */
303 return (p->read_op(p, 1, p->oneshot_callback, (u_char *)&s));
304 }
305
306 #if defined(DAG_ONLY)
307 int
308 pcap_findalldevs(pcap_if_t **alldevsp, char *errbuf)
309 {
310 return (dag_findalldevs(alldevsp, errbuf));
311 }
312
313 pcap_t *
314 pcap_create(const char *source, char *errbuf)
315 {
316 int is_ours;
317 return (dag_create(source, errbuf, &is_ours));
318 }
319 #elif defined(SEPTEL_ONLY)
320 int
321 pcap_findalldevs(pcap_if_t **alldevsp, char *errbuf)
322 {
323 return (septel_findalldevs(alldevsp, errbuf));
324 }
325
326 pcap_t *
327 pcap_create(const char *source, char *errbuf)
328 {
329 int is_ours;
330 return (septel_create(source, errbuf, &is_ours));
331 }
332 #elif defined(SNF_ONLY)
333 int
334 pcap_findalldevs(pcap_if_t **alldevsp, char *errbuf)
335 {
336 return (snf_findalldevs(alldevsp, errbuf));
337 }
338
339 pcap_t *
340 pcap_create(const char *source, char *errbuf)
341 {
342 int is_ours;
343 return (snf_create(source, errbuf, &is_ours));
344 }
345 #else /* regular pcap */
346 struct capture_source_type {
347 int (*findalldevs_op)(pcap_if_t **, char *);
348 pcap_t *(*create_op)(const char *, char *, int *);
349 } capture_source_types[] = {
350 #ifdef HAVE_DAG_API
351 { dag_findalldevs, dag_create },
352 #endif
353 #ifdef HAVE_SEPTEL_API
354 { septel_findalldevs, septel_create },
355 #endif
356 #ifdef HAVE_SNF_API
357 { snf_findalldevs, snf_create },
358 #endif
359 #ifdef HAVE_TC_API
360 { TcFindAllDevs, TcCreate },
361 #endif
362 #ifdef PCAP_SUPPORT_BT
363 { bt_findalldevs, bt_create },
364 #endif
365 #ifdef PCAP_SUPPORT_BT_MONITOR
366 { bt_monitor_findalldevs, bt_monitor_create },
367 #endif
368 #if PCAP_SUPPORT_CANUSB
369 { canusb_findalldevs, canusb_create },
370 #endif
371 #ifdef PCAP_SUPPORT_CAN
372 { can_findalldevs, can_create },
373 #endif
374 #ifdef PCAP_SUPPORT_USB
375 { usb_findalldevs, usb_create },
376 #endif
377 #ifdef PCAP_SUPPORT_NETFILTER
378 { netfilter_findalldevs, netfilter_create },
379 #endif
380 #ifdef PCAP_SUPPORT_DBUS
381 { dbus_findalldevs, dbus_create },
382 #endif
383 { NULL, NULL }
384 };
385
386 /*
387 * Get a list of all capture sources that are up and that we can open.
388 * Returns -1 on error, 0 otherwise.
389 * The list, as returned through "alldevsp", may be null if no interfaces
390 * were up and could be opened.
391 */
392 int
393 pcap_findalldevs(pcap_if_t **alldevsp, char *errbuf)
394 {
395 size_t i;
396
397 /*
398 * Get the list of regular interfaces first.
399 */
400 if (pcap_findalldevs_interfaces(alldevsp, errbuf) == -1)
401 return (-1); /* failure */
402
403 /*
404 * Add any interfaces that need a platform-specific mechanism
405 * to find.
406 */
407 if (pcap_platform_finddevs(alldevsp, errbuf) == -1) {
408 /*
409 * We had an error; free the list we've been
410 * constructing.
411 */
412 if (*alldevsp != NULL) {
413 pcap_freealldevs(*alldevsp);
414 *alldevsp = NULL;
415 }
416 return (-1);
417 }
418
419 /*
420 * Ask each of the non-local-network-interface capture
421 * source types what interfaces they have.
422 */
423 for (i = 0; capture_source_types[i].findalldevs_op != NULL; i++) {
424 if (capture_source_types[i].findalldevs_op(alldevsp, errbuf) == -1) {
425 /*
426 * We had an error; free the list we've been
427 * constructing.
428 */
429 if (*alldevsp != NULL) {
430 pcap_freealldevs(*alldevsp);
431 *alldevsp = NULL;
432 }
433 return (-1);
434 }
435 }
436
437 return (0);
438 }
439
440 pcap_t *
441 pcap_create(const char *source, char *errbuf)
442 {
443 size_t i;
444 int is_theirs;
445 pcap_t *p;
446
447 /*
448 * A null source name is equivalent to the "any" device -
449 * which might not be supported on this platform, but
450 * this means that you'll get a "not supported" error
451 * rather than, say, a crash when we try to dereference
452 * the null pointer.
453 */
454 if (source == NULL)
455 source = "any";
456
457 /*
458 * Try each of the non-local-network-interface capture
459 * source types until we find one that works for this
460 * device or run out of types.
461 */
462 for (i = 0; capture_source_types[i].create_op != NULL; i++) {
463 is_theirs = 0;
464 p = capture_source_types[i].create_op(source, errbuf, &is_theirs);
465 if (is_theirs) {
466 /*
467 * The device name refers to a device of the
468 * type in question; either it succeeded,
469 * in which case p refers to a pcap_t to
470 * later activate for the device, or it
471 * failed, in which case p is null and we
472 * should return that to report the failure
473 * to create.
474 */
475 return (p);
476 }
477 }
478
479 /*
480 * OK, try it as a regular network interface.
481 */
482 return (pcap_create_interface(source, errbuf));
483 }
484 #endif
485
486 static void
487 initialize_ops(pcap_t *p)
488 {
489 /*
490 * Set operation pointers for operations that only work on
491 * an activated pcap_t to point to a routine that returns
492 * a "this isn't activated" error.
493 */
494 p->read_op = (read_op_t)pcap_not_initialized;
495 p->inject_op = (inject_op_t)pcap_not_initialized;
496 p->setfilter_op = (setfilter_op_t)pcap_not_initialized;
497 p->setdirection_op = (setdirection_op_t)pcap_not_initialized;
498 p->set_datalink_op = (set_datalink_op_t)pcap_not_initialized;
499 p->getnonblock_op = (getnonblock_op_t)pcap_not_initialized;
500 p->setnonblock_op = (setnonblock_op_t)pcap_not_initialized;
501 p->stats_op = (stats_op_t)pcap_not_initialized;
502 #ifdef _WIN32
503 p->stats_ex_op = (stats_ex_op_t)pcap_not_initialized_ptr;
504 p->setbuff_op = (setbuff_op_t)pcap_not_initialized;
505 p->setmode_op = (setmode_op_t)pcap_not_initialized;
506 p->setmintocopy_op = (setmintocopy_op_t)pcap_not_initialized;
507 p->getevent_op = pcap_getevent_not_initialized;
508 p->oid_get_request_op = (oid_get_request_op_t)pcap_not_initialized;
509 p->oid_set_request_op = (oid_set_request_op_t)pcap_not_initialized;
510 p->sendqueue_transmit_op = pcap_sendqueue_transmit_not_initialized;
511 p->setuserbuffer_op = (setuserbuffer_op_t)pcap_not_initialized;
512 p->live_dump_op = (live_dump_op_t)pcap_not_initialized;
513 p->live_dump_ended_op = (live_dump_ended_op_t)pcap_not_initialized;
514 p->get_airpcap_handle_op = pcap_get_airpcap_handle_not_initialized;
515 #endif
516
517 /*
518 * Default cleanup operation - implementations can override
519 * this, but should call pcap_cleanup_live_common() after
520 * doing their own additional cleanup.
521 */
522 p->cleanup_op = pcap_cleanup_live_common;
523
524 /*
525 * In most cases, the standard one-shot callback can
526 * be used for pcap_next()/pcap_next_ex().
527 */
528 p->oneshot_callback = pcap_oneshot;
529 }
530
531 static pcap_t *
532 pcap_alloc_pcap_t(char *ebuf, size_t size)
533 {
534 char *chunk;
535 pcap_t *p;
536
537 /*
538 * Allocate a chunk of memory big enough for a pcap_t
539 * plus a structure following it of size "size". The
540 * structure following it is a private data structure
541 * for the routines that handle this pcap_t.
542 */
543 chunk = malloc(sizeof (pcap_t) + size);
544 if (chunk == NULL) {
545 pcap_snprintf(ebuf, PCAP_ERRBUF_SIZE, "malloc: %s",
546 pcap_strerror(errno));
547 return (NULL);
548 }
549 memset(chunk, 0, sizeof (pcap_t) + size);
550
551 /*
552 * Get a pointer to the pcap_t at the beginning.
553 */
554 p = (pcap_t *)chunk;
555
556 #ifndef _WIN32
557 p->fd = -1; /* not opened yet */
558 p->selectable_fd = -1;
559 #endif
560
561 if (size == 0) {
562 /* No private data was requested. */
563 p->priv = NULL;
564 } else {
565 /*
566 * Set the pointer to the private data; that's the structure
567 * of size "size" following the pcap_t.
568 */
569 p->priv = (void *)(chunk + sizeof (pcap_t));
570 }
571
572 return (p);
573 }
574
575 pcap_t *
576 pcap_create_common(const char *source, char *ebuf, size_t size)
577 {
578 pcap_t *p;
579
580 p = pcap_alloc_pcap_t(ebuf, size);
581 if (p == NULL)
582 return (NULL);
583
584 p->opt.source = strdup(source);
585 if (p->opt.source == NULL) {
586 pcap_snprintf(ebuf, PCAP_ERRBUF_SIZE, "malloc: %s",
587 pcap_strerror(errno));
588 free(p);
589 return (NULL);
590 }
591
592 /*
593 * Default to "can't set rfmon mode"; if it's supported by
594 * a platform, the create routine that called us can set
595 * the op to its routine to check whether a particular
596 * device supports it.
597 */
598 p->can_set_rfmon_op = pcap_cant_set_rfmon;
599
600 initialize_ops(p);
601
602 /* put in some defaults*/
603 pcap_set_snaplen(p, MAXIMUM_SNAPLEN); /* max packet size */
604 p->opt.timeout = 0; /* no timeout specified */
605 p->opt.buffer_size = 0; /* use the platform's default */
606 p->opt.promisc = 0;
607 p->opt.rfmon = 0;
608 p->opt.immediate = 0;
609 p->opt.tstamp_type = -1; /* default to not setting time stamp type */
610 p->opt.tstamp_precision = PCAP_TSTAMP_PRECISION_MICRO;
611
612 /*
613 * Start out with no BPF code generation flags set.
614 */
615 p->bpf_codegen_flags = 0;
616
617 return (p);
618 }
619
620 int
621 pcap_check_activated(pcap_t *p)
622 {
623 if (p->activated) {
624 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE, "can't perform "
625 " operation on activated capture");
626 return (-1);
627 }
628 return (0);
629 }
630
631 int
632 pcap_set_snaplen(pcap_t *p, int snaplen)
633 {
634 if (pcap_check_activated(p))
635 return (PCAP_ERROR_ACTIVATED);
636 p->snapshot = snaplen;
637 return (0);
638 }
639
640 int
641 pcap_set_promisc(pcap_t *p, int promisc)
642 {
643 if (pcap_check_activated(p))
644 return (PCAP_ERROR_ACTIVATED);
645 p->opt.promisc = promisc;
646 return (0);
647 }
648
649 int
650 pcap_set_rfmon(pcap_t *p, int rfmon)
651 {
652 if (pcap_check_activated(p))
653 return (PCAP_ERROR_ACTIVATED);
654 p->opt.rfmon = rfmon;
655 return (0);
656 }
657
658 int
659 pcap_set_timeout(pcap_t *p, int timeout_ms)
660 {
661 if (pcap_check_activated(p))
662 return (PCAP_ERROR_ACTIVATED);
663 p->opt.timeout = timeout_ms;
664 return (0);
665 }
666
667 int
668 pcap_set_tstamp_type(pcap_t *p, int tstamp_type)
669 {
670 int i;
671
672 if (pcap_check_activated(p))
673 return (PCAP_ERROR_ACTIVATED);
674
675 /*
676 * If p->tstamp_type_count is 0, we only support PCAP_TSTAMP_HOST;
677 * the default time stamp type is PCAP_TSTAMP_HOST.
678 */
679 if (p->tstamp_type_count == 0) {
680 if (tstamp_type == PCAP_TSTAMP_HOST) {
681 p->opt.tstamp_type = tstamp_type;
682 return (0);
683 }
684 } else {
685 /*
686 * Check whether we claim to support this type of time stamp.
687 */
688 for (i = 0; i < p->tstamp_type_count; i++) {
689 if (p->tstamp_type_list[i] == tstamp_type) {
690 /*
691 * Yes.
692 */
693 p->opt.tstamp_type = tstamp_type;
694 return (0);
695 }
696 }
697 }
698
699 /*
700 * We don't support this type of time stamp.
701 */
702 return (PCAP_WARNING_TSTAMP_TYPE_NOTSUP);
703 }
704
705 int
706 pcap_set_immediate_mode(pcap_t *p, int immediate)
707 {
708 if (pcap_check_activated(p))
709 return (PCAP_ERROR_ACTIVATED);
710 p->opt.immediate = immediate;
711 return (0);
712 }
713
714 int
715 pcap_set_buffer_size(pcap_t *p, int buffer_size)
716 {
717 if (pcap_check_activated(p))
718 return (PCAP_ERROR_ACTIVATED);
719 p->opt.buffer_size = buffer_size;
720 return (0);
721 }
722
723 int
724 pcap_set_tstamp_precision(pcap_t *p, int tstamp_precision)
725 {
726 int i;
727
728 if (pcap_check_activated(p))
729 return (PCAP_ERROR_ACTIVATED);
730
731 /*
732 * If p->tstamp_precision_count is 0, we only support setting
733 * the time stamp precision to microsecond precision; every
734 * pcap module *MUST* support microsecond precision, even if
735 * it does so by converting the native precision to
736 * microseconds.
737 */
738 if (p->tstamp_precision_count == 0) {
739 if (tstamp_precision == PCAP_TSTAMP_PRECISION_MICRO) {
740 p->opt.tstamp_precision = tstamp_precision;
741 return (0);
742 }
743 } else {
744 /*
745 * Check whether we claim to support this precision of
746 * time stamp.
747 */
748 for (i = 0; i < p->tstamp_precision_count; i++) {
749 if (p->tstamp_precision_list[i] == tstamp_precision) {
750 /*
751 * Yes.
752 */
753 p->opt.tstamp_precision = tstamp_precision;
754 return (0);
755 }
756 }
757 }
758
759 /*
760 * We don't support this time stamp precision.
761 */
762 return (PCAP_ERROR_TSTAMP_PRECISION_NOTSUP);
763 }
764
765 int
766 pcap_get_tstamp_precision(pcap_t *p)
767 {
768 return (p->opt.tstamp_precision);
769 }
770
771 int
772 pcap_activate(pcap_t *p)
773 {
774 int status;
775
776 /*
777 * Catch attempts to re-activate an already-activated
778 * pcap_t; this should, for example, catch code that
779 * calls pcap_open_live() followed by pcap_activate(),
780 * as some code that showed up in a Stack Exchange
781 * question did.
782 */
783 if (pcap_check_activated(p))
784 return (PCAP_ERROR_ACTIVATED);
785 status = p->activate_op(p);
786 if (status >= 0)
787 p->activated = 1;
788 else {
789 if (p->errbuf[0] == '\0') {
790 /*
791 * No error message supplied by the activate routine;
792 * for the benefit of programs that don't specially
793 * handle errors other than PCAP_ERROR, return the
794 * error message corresponding to the status.
795 */
796 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE, "%s",
797 pcap_statustostr(status));
798 }
799
800 /*
801 * Undo any operation pointer setting, etc. done by
802 * the activate operation.
803 */
804 initialize_ops(p);
805 }
806 return (status);
807 }
808
809 pcap_t *
810 pcap_open_live(const char *source, int snaplen, int promisc, int to_ms, char *errbuf)
811 {
812 pcap_t *p;
813 int status;
814
815 p = pcap_create(source, errbuf);
816 if (p == NULL)
817 return (NULL);
818 status = pcap_set_snaplen(p, snaplen);
819 if (status < 0)
820 goto fail;
821 status = pcap_set_promisc(p, promisc);
822 if (status < 0)
823 goto fail;
824 status = pcap_set_timeout(p, to_ms);
825 if (status < 0)
826 goto fail;
827 /*
828 * Mark this as opened with pcap_open_live(), so that, for
829 * example, we show the full list of DLT_ values, rather
830 * than just the ones that are compatible with capturing
831 * when not in monitor mode. That allows existing applications
832 * to work the way they used to work, but allows new applications
833 * that know about the new open API to, for example, find out the
834 * DLT_ values that they can select without changing whether
835 * the adapter is in monitor mode or not.
836 */
837 p->oldstyle = 1;
838 status = pcap_activate(p);
839 if (status < 0)
840 goto fail;
841 return (p);
842 fail:
843 if (status == PCAP_ERROR)
844 pcap_snprintf(errbuf, PCAP_ERRBUF_SIZE, "%s: %s", source,
845 p->errbuf);
846 else if (status == PCAP_ERROR_NO_SUCH_DEVICE ||
847 status == PCAP_ERROR_PERM_DENIED ||
848 status == PCAP_ERROR_PROMISC_PERM_DENIED)
849 pcap_snprintf(errbuf, PCAP_ERRBUF_SIZE, "%s: %s (%s)", source,
850 pcap_statustostr(status), p->errbuf);
851 else
852 pcap_snprintf(errbuf, PCAP_ERRBUF_SIZE, "%s: %s", source,
853 pcap_statustostr(status));
854 pcap_close(p);
855 return (NULL);
856 }
857
858 pcap_t *
859 pcap_open_offline_common(char *ebuf, size_t size)
860 {
861 pcap_t *p;
862
863 p = pcap_alloc_pcap_t(ebuf, size);
864 if (p == NULL)
865 return (NULL);
866
867 p->opt.tstamp_precision = PCAP_TSTAMP_PRECISION_MICRO;
868 p->opt.source = strdup("(savefile)");
869 if (p->opt.source == NULL) {
870 pcap_snprintf(ebuf, PCAP_ERRBUF_SIZE, "malloc: %s",
871 pcap_strerror(errno));
872 free(p);
873 return (NULL);
874 }
875
876 return (p);
877 }
878
879 int
880 pcap_dispatch(pcap_t *p, int cnt, pcap_handler callback, u_char *user)
881 {
882 return (p->read_op(p, cnt, callback, user));
883 }
884
885 /*
886 * XXX - is this necessary?
887 */
888 int
889 pcap_read(pcap_t *p, int cnt, pcap_handler callback, u_char *user)
890 {
891
892 return (p->read_op(p, cnt, callback, user));
893 }
894
895 int
896 pcap_loop(pcap_t *p, int cnt, pcap_handler callback, u_char *user)
897 {
898 register int n;
899
900 for (;;) {
901 if (p->rfile != NULL) {
902 /*
903 * 0 means EOF, so don't loop if we get 0.
904 */
905 n = pcap_offline_read(p, cnt, callback, user);
906 } else {
907 /*
908 * XXX keep reading until we get something
909 * (or an error occurs)
910 */
911 do {
912 n = p->read_op(p, cnt, callback, user);
913 } while (n == 0);
914 }
915 if (n <= 0)
916 return (n);
917 if (!PACKET_COUNT_IS_UNLIMITED(cnt)) {
918 cnt -= n;
919 if (cnt <= 0)
920 return (0);
921 }
922 }
923 }
924
925 /*
926 * Force the loop in "pcap_read()" or "pcap_read_offline()" to terminate.
927 */
928 void
929 pcap_breakloop(pcap_t *p)
930 {
931 p->break_loop = 1;
932 }
933
934 int
935 pcap_datalink(pcap_t *p)
936 {
937 if (!p->activated)
938 return (PCAP_ERROR_NOT_ACTIVATED);
939 return (p->linktype);
940 }
941
942 int
943 pcap_datalink_ext(pcap_t *p)
944 {
945 if (!p->activated)
946 return (PCAP_ERROR_NOT_ACTIVATED);
947 return (p->linktype_ext);
948 }
949
950 int
951 pcap_list_datalinks(pcap_t *p, int **dlt_buffer)
952 {
953 if (!p->activated)
954 return (PCAP_ERROR_NOT_ACTIVATED);
955 if (p->dlt_count == 0) {
956 /*
957 * We couldn't fetch the list of DLTs, which means
958 * this platform doesn't support changing the
959 * DLT for an interface. Return a list of DLTs
960 * containing only the DLT this device supports.
961 */
962 *dlt_buffer = (int*)malloc(sizeof(**dlt_buffer));
963 if (*dlt_buffer == NULL) {
964 (void)pcap_snprintf(p->errbuf, sizeof(p->errbuf),
965 "malloc: %s", pcap_strerror(errno));
966 return (PCAP_ERROR);
967 }
968 **dlt_buffer = p->linktype;
969 return (1);
970 } else {
971 *dlt_buffer = (int*)calloc(sizeof(**dlt_buffer), p->dlt_count);
972 if (*dlt_buffer == NULL) {
973 (void)pcap_snprintf(p->errbuf, sizeof(p->errbuf),
974 "malloc: %s", pcap_strerror(errno));
975 return (PCAP_ERROR);
976 }
977 (void)memcpy(*dlt_buffer, p->dlt_list,
978 sizeof(**dlt_buffer) * p->dlt_count);
979 return (p->dlt_count);
980 }
981 }
982
983 /*
984 * In Windows, you might have a library built with one version of the
985 * C runtime library and an application built with another version of
986 * the C runtime library, which means that the library might use one
987 * version of malloc() and free() and the application might use another
988 * version of malloc() and free(). If so, that means something
989 * allocated by the library cannot be freed by the application, so we
990 * need to have a pcap_free_datalinks() routine to free up the list
991 * allocated by pcap_list_datalinks(), even though it's just a wrapper
992 * around free().
993 */
994 void
995 pcap_free_datalinks(int *dlt_list)
996 {
997 free(dlt_list);
998 }
999
1000 int
1001 pcap_set_datalink(pcap_t *p, int dlt)
1002 {
1003 int i;
1004 const char *dlt_name;
1005
1006 if (p->dlt_count == 0 || p->set_datalink_op == NULL) {
1007 /*
1008 * We couldn't fetch the list of DLTs, or we don't
1009 * have a "set datalink" operation, which means
1010 * this platform doesn't support changing the
1011 * DLT for an interface. Check whether the new
1012 * DLT is the one this interface supports.
1013 */
1014 if (p->linktype != dlt)
1015 goto unsupported;
1016
1017 /*
1018 * It is, so there's nothing we need to do here.
1019 */
1020 return (0);
1021 }
1022 for (i = 0; i < p->dlt_count; i++)
1023 if (p->dlt_list[i] == dlt)
1024 break;
1025 if (i >= p->dlt_count)
1026 goto unsupported;
1027 if (p->dlt_count == 2 && p->dlt_list[0] == DLT_EN10MB &&
1028 dlt == DLT_DOCSIS) {
1029 /*
1030 * This is presumably an Ethernet device, as the first
1031 * link-layer type it offers is DLT_EN10MB, and the only
1032 * other type it offers is DLT_DOCSIS. That means that
1033 * we can't tell the driver to supply DOCSIS link-layer
1034 * headers - we're just pretending that's what we're
1035 * getting, as, presumably, we're capturing on a dedicated
1036 * link to a Cisco Cable Modem Termination System, and
1037 * it's putting raw DOCSIS frames on the wire inside low-level
1038 * Ethernet framing.
1039 */
1040 p->linktype = dlt;
1041 return (0);
1042 }
1043 if (p->set_datalink_op(p, dlt) == -1)
1044 return (-1);
1045 p->linktype = dlt;
1046 return (0);
1047
1048 unsupported:
1049 dlt_name = pcap_datalink_val_to_name(dlt);
1050 if (dlt_name != NULL) {
1051 (void) pcap_snprintf(p->errbuf, sizeof(p->errbuf),
1052 "%s is not one of the DLTs supported by this device",
1053 dlt_name);
1054 } else {
1055 (void) pcap_snprintf(p->errbuf, sizeof(p->errbuf),
1056 "DLT %d is not one of the DLTs supported by this device",
1057 dlt);
1058 }
1059 return (-1);
1060 }
1061
1062 /*
1063 * This array is designed for mapping upper and lower case letter
1064 * together for a case independent comparison. The mappings are
1065 * based upon ascii character sequences.
1066 */
1067 static const u_char charmap[] = {
1068 (u_char)'\000', (u_char)'\001', (u_char)'\002', (u_char)'\003',
1069 (u_char)'\004', (u_char)'\005', (u_char)'\006', (u_char)'\007',
1070 (u_char)'\010', (u_char)'\011', (u_char)'\012', (u_char)'\013',
1071 (u_char)'\014', (u_char)'\015', (u_char)'\016', (u_char)'\017',
1072 (u_char)'\020', (u_char)'\021', (u_char)'\022', (u_char)'\023',
1073 (u_char)'\024', (u_char)'\025', (u_char)'\026', (u_char)'\027',
1074 (u_char)'\030', (u_char)'\031', (u_char)'\032', (u_char)'\033',
1075 (u_char)'\034', (u_char)'\035', (u_char)'\036', (u_char)'\037',
1076 (u_char)'\040', (u_char)'\041', (u_char)'\042', (u_char)'\043',
1077 (u_char)'\044', (u_char)'\045', (u_char)'\046', (u_char)'\047',
1078 (u_char)'\050', (u_char)'\051', (u_char)'\052', (u_char)'\053',
1079 (u_char)'\054', (u_char)'\055', (u_char)'\056', (u_char)'\057',
1080 (u_char)'\060', (u_char)'\061', (u_char)'\062', (u_char)'\063',
1081 (u_char)'\064', (u_char)'\065', (u_char)'\066', (u_char)'\067',
1082 (u_char)'\070', (u_char)'\071', (u_char)'\072', (u_char)'\073',
1083 (u_char)'\074', (u_char)'\075', (u_char)'\076', (u_char)'\077',
1084 (u_char)'\100', (u_char)'\141', (u_char)'\142', (u_char)'\143',
1085 (u_char)'\144', (u_char)'\145', (u_char)'\146', (u_char)'\147',
1086 (u_char)'\150', (u_char)'\151', (u_char)'\152', (u_char)'\153',
1087 (u_char)'\154', (u_char)'\155', (u_char)'\156', (u_char)'\157',
1088 (u_char)'\160', (u_char)'\161', (u_char)'\162', (u_char)'\163',
1089 (u_char)'\164', (u_char)'\165', (u_char)'\166', (u_char)'\167',
1090 (u_char)'\170', (u_char)'\171', (u_char)'\172', (u_char)'\133',
1091 (u_char)'\134', (u_char)'\135', (u_char)'\136', (u_char)'\137',
1092 (u_char)'\140', (u_char)'\141', (u_char)'\142', (u_char)'\143',
1093 (u_char)'\144', (u_char)'\145', (u_char)'\146', (u_char)'\147',
1094 (u_char)'\150', (u_char)'\151', (u_char)'\152', (u_char)'\153',
1095 (u_char)'\154', (u_char)'\155', (u_char)'\156', (u_char)'\157',
1096 (u_char)'\160', (u_char)'\161', (u_char)'\162', (u_char)'\163',
1097 (u_char)'\164', (u_char)'\165', (u_char)'\166', (u_char)'\167',
1098 (u_char)'\170', (u_char)'\171', (u_char)'\172', (u_char)'\173',
1099 (u_char)'\174', (u_char)'\175', (u_char)'\176', (u_char)'\177',
1100 (u_char)'\200', (u_char)'\201', (u_char)'\202', (u_char)'\203',
1101 (u_char)'\204', (u_char)'\205', (u_char)'\206', (u_char)'\207',
1102 (u_char)'\210', (u_char)'\211', (u_char)'\212', (u_char)'\213',
1103 (u_char)'\214', (u_char)'\215', (u_char)'\216', (u_char)'\217',
1104 (u_char)'\220', (u_char)'\221', (u_char)'\222', (u_char)'\223',
1105 (u_char)'\224', (u_char)'\225', (u_char)'\226', (u_char)'\227',
1106 (u_char)'\230', (u_char)'\231', (u_char)'\232', (u_char)'\233',
1107 (u_char)'\234', (u_char)'\235', (u_char)'\236', (u_char)'\237',
1108 (u_char)'\240', (u_char)'\241', (u_char)'\242', (u_char)'\243',
1109 (u_char)'\244', (u_char)'\245', (u_char)'\246', (u_char)'\247',
1110 (u_char)'\250', (u_char)'\251', (u_char)'\252', (u_char)'\253',
1111 (u_char)'\254', (u_char)'\255', (u_char)'\256', (u_char)'\257',
1112 (u_char)'\260', (u_char)'\261', (u_char)'\262', (u_char)'\263',
1113 (u_char)'\264', (u_char)'\265', (u_char)'\266', (u_char)'\267',
1114 (u_char)'\270', (u_char)'\271', (u_char)'\272', (u_char)'\273',
1115 (u_char)'\274', (u_char)'\275', (u_char)'\276', (u_char)'\277',
1116 (u_char)'\300', (u_char)'\341', (u_char)'\342', (u_char)'\343',
1117 (u_char)'\344', (u_char)'\345', (u_char)'\346', (u_char)'\347',
1118 (u_char)'\350', (u_char)'\351', (u_char)'\352', (u_char)'\353',
1119 (u_char)'\354', (u_char)'\355', (u_char)'\356', (u_char)'\357',
1120 (u_char)'\360', (u_char)'\361', (u_char)'\362', (u_char)'\363',
1121 (u_char)'\364', (u_char)'\365', (u_char)'\366', (u_char)'\367',
1122 (u_char)'\370', (u_char)'\371', (u_char)'\372', (u_char)'\333',
1123 (u_char)'\334', (u_char)'\335', (u_char)'\336', (u_char)'\337',
1124 (u_char)'\340', (u_char)'\341', (u_char)'\342', (u_char)'\343',
1125 (u_char)'\344', (u_char)'\345', (u_char)'\346', (u_char)'\347',
1126 (u_char)'\350', (u_char)'\351', (u_char)'\352', (u_char)'\353',
1127 (u_char)'\354', (u_char)'\355', (u_char)'\356', (u_char)'\357',
1128 (u_char)'\360', (u_char)'\361', (u_char)'\362', (u_char)'\363',
1129 (u_char)'\364', (u_char)'\365', (u_char)'\366', (u_char)'\367',
1130 (u_char)'\370', (u_char)'\371', (u_char)'\372', (u_char)'\373',
1131 (u_char)'\374', (u_char)'\375', (u_char)'\376', (u_char)'\377',
1132 };
1133
1134 int
1135 pcap_strcasecmp(const char *s1, const char *s2)
1136 {
1137 register const u_char *cm = charmap,
1138 *us1 = (const u_char *)s1,
1139 *us2 = (const u_char *)s2;
1140
1141 while (cm[*us1] == cm[*us2++])
1142 if (*us1++ == '\0')
1143 return(0);
1144 return (cm[*us1] - cm[*--us2]);
1145 }
1146
1147 struct dlt_choice {
1148 const char *name;
1149 const char *description;
1150 int dlt;
1151 };
1152
1153 #define DLT_CHOICE(code, description) { #code, description, code }
1154 #define DLT_CHOICE_SENTINEL { NULL, NULL, 0 }
1155
1156 static struct dlt_choice dlt_choices[] = {
1157 DLT_CHOICE(DLT_NULL, "BSD loopback"),
1158 DLT_CHOICE(DLT_EN10MB, "Ethernet"),
1159 DLT_CHOICE(DLT_IEEE802, "Token ring"),
1160 DLT_CHOICE(DLT_ARCNET, "BSD ARCNET"),
1161 DLT_CHOICE(DLT_SLIP, "SLIP"),
1162 DLT_CHOICE(DLT_PPP, "PPP"),
1163 DLT_CHOICE(DLT_FDDI, "FDDI"),
1164 DLT_CHOICE(DLT_ATM_RFC1483, "RFC 1483 LLC-encapsulated ATM"),
1165 DLT_CHOICE(DLT_RAW, "Raw IP"),
1166 DLT_CHOICE(DLT_SLIP_BSDOS, "BSD/OS SLIP"),
1167 DLT_CHOICE(DLT_PPP_BSDOS, "BSD/OS PPP"),
1168 DLT_CHOICE(DLT_ATM_CLIP, "Linux Classical IP-over-ATM"),
1169 DLT_CHOICE(DLT_PPP_SERIAL, "PPP over serial"),
1170 DLT_CHOICE(DLT_PPP_ETHER, "PPPoE"),
1171 DLT_CHOICE(DLT_SYMANTEC_FIREWALL, "Symantec Firewall"),
1172 DLT_CHOICE(DLT_C_HDLC, "Cisco HDLC"),
1173 DLT_CHOICE(DLT_IEEE802_11, "802.11"),
1174 DLT_CHOICE(DLT_FRELAY, "Frame Relay"),
1175 DLT_CHOICE(DLT_LOOP, "OpenBSD loopback"),
1176 DLT_CHOICE(DLT_ENC, "OpenBSD encapsulated IP"),
1177 DLT_CHOICE(DLT_LINUX_SLL, "Linux cooked"),
1178 DLT_CHOICE(DLT_LTALK, "Localtalk"),
1179 DLT_CHOICE(DLT_PFLOG, "OpenBSD pflog file"),
1180 DLT_CHOICE(DLT_PFSYNC, "Packet filter state syncing"),
1181 DLT_CHOICE(DLT_PRISM_HEADER, "802.11 plus Prism header"),
1182 DLT_CHOICE(DLT_IP_OVER_FC, "RFC 2625 IP-over-Fibre Channel"),
1183 DLT_CHOICE(DLT_SUNATM, "Sun raw ATM"),
1184 DLT_CHOICE(DLT_IEEE802_11_RADIO, "802.11 plus radiotap header"),
1185 DLT_CHOICE(DLT_ARCNET_LINUX, "Linux ARCNET"),
1186 DLT_CHOICE(DLT_JUNIPER_MLPPP, "Juniper Multi-Link PPP"),
1187 DLT_CHOICE(DLT_JUNIPER_MLFR, "Juniper Multi-Link Frame Relay"),
1188 DLT_CHOICE(DLT_JUNIPER_ES, "Juniper Encryption Services PIC"),
1189 DLT_CHOICE(DLT_JUNIPER_GGSN, "Juniper GGSN PIC"),
1190 DLT_CHOICE(DLT_JUNIPER_MFR, "Juniper FRF.16 Frame Relay"),
1191 DLT_CHOICE(DLT_JUNIPER_ATM2, "Juniper ATM2 PIC"),
1192 DLT_CHOICE(DLT_JUNIPER_SERVICES, "Juniper Advanced Services PIC"),
1193 DLT_CHOICE(DLT_JUNIPER_ATM1, "Juniper ATM1 PIC"),
1194 DLT_CHOICE(DLT_APPLE_IP_OVER_IEEE1394, "Apple IP-over-IEEE 1394"),
1195 DLT_CHOICE(DLT_MTP2_WITH_PHDR, "SS7 MTP2 with Pseudo-header"),
1196 DLT_CHOICE(DLT_MTP2, "SS7 MTP2"),
1197 DLT_CHOICE(DLT_MTP3, "SS7 MTP3"),
1198 DLT_CHOICE(DLT_SCCP, "SS7 SCCP"),
1199 DLT_CHOICE(DLT_DOCSIS, "DOCSIS"),
1200 DLT_CHOICE(DLT_LINUX_IRDA, "Linux IrDA"),
1201 DLT_CHOICE(DLT_IEEE802_11_RADIO_AVS, "802.11 plus AVS radio information header"),
1202 DLT_CHOICE(DLT_JUNIPER_MONITOR, "Juniper Passive Monitor PIC"),
1203 DLT_CHOICE(DLT_BACNET_MS_TP, "BACnet MS/TP"),
1204 DLT_CHOICE(DLT_PPP_PPPD, "PPP for pppd, with direction flag"),
1205 DLT_CHOICE(DLT_JUNIPER_PPPOE, "Juniper PPPoE"),
1206 DLT_CHOICE(DLT_JUNIPER_PPPOE_ATM, "Juniper PPPoE/ATM"),
1207 DLT_CHOICE(DLT_GPRS_LLC, "GPRS LLC"),
1208 DLT_CHOICE(DLT_GPF_T, "GPF-T"),
1209 DLT_CHOICE(DLT_GPF_F, "GPF-F"),
1210 DLT_CHOICE(DLT_JUNIPER_PIC_PEER, "Juniper PIC Peer"),
1211 DLT_CHOICE(DLT_ERF_ETH, "Ethernet with Endace ERF header"),
1212 DLT_CHOICE(DLT_ERF_POS, "Packet-over-SONET with Endace ERF header"),
1213 DLT_CHOICE(DLT_LINUX_LAPD, "Linux vISDN LAPD"),
1214 DLT_CHOICE(DLT_JUNIPER_ETHER, "Juniper Ethernet"),
1215 DLT_CHOICE(DLT_JUNIPER_PPP, "Juniper PPP"),
1216 DLT_CHOICE(DLT_JUNIPER_FRELAY, "Juniper Frame Relay"),
1217 DLT_CHOICE(DLT_JUNIPER_CHDLC, "Juniper C-HDLC"),
1218 DLT_CHOICE(DLT_MFR, "FRF.16 Frame Relay"),
1219 DLT_CHOICE(DLT_JUNIPER_VP, "Juniper Voice PIC"),
1220 DLT_CHOICE(DLT_A429, "Arinc 429"),
1221 DLT_CHOICE(DLT_A653_ICM, "Arinc 653 Interpartition Communication"),
1222 DLT_CHOICE(DLT_USB, "USB"),
1223 DLT_CHOICE(DLT_BLUETOOTH_HCI_H4, "Bluetooth HCI UART transport layer"),
1224 DLT_CHOICE(DLT_IEEE802_16_MAC_CPS, "IEEE 802.16 MAC Common Part Sublayer"),
1225 DLT_CHOICE(DLT_USB_LINUX, "USB with Linux header"),
1226 DLT_CHOICE(DLT_CAN20B, "Controller Area Network (CAN) v. 2.0B"),
1227 DLT_CHOICE(DLT_IEEE802_15_4_LINUX, "IEEE 802.15.4 with Linux padding"),
1228 DLT_CHOICE(DLT_PPI, "Per-Packet Information"),
1229 DLT_CHOICE(DLT_IEEE802_16_MAC_CPS_RADIO, "IEEE 802.16 MAC Common Part Sublayer plus radiotap header"),
1230 DLT_CHOICE(DLT_JUNIPER_ISM, "Juniper Integrated Service Module"),
1231 DLT_CHOICE(DLT_IEEE802_15_4, "IEEE 802.15.4 with FCS"),
1232 DLT_CHOICE(DLT_SITA, "SITA pseudo-header"),
1233 DLT_CHOICE(DLT_ERF, "Endace ERF header"),
1234 DLT_CHOICE(DLT_RAIF1, "Ethernet with u10 Networks pseudo-header"),
1235 DLT_CHOICE(DLT_IPMB, "IPMB"),
1236 DLT_CHOICE(DLT_JUNIPER_ST, "Juniper Secure Tunnel"),
1237 DLT_CHOICE(DLT_BLUETOOTH_HCI_H4_WITH_PHDR, "Bluetooth HCI UART transport layer plus pseudo-header"),
1238 DLT_CHOICE(DLT_AX25_KISS, "AX.25 with KISS header"),
1239 DLT_CHOICE(DLT_IEEE802_15_4_NONASK_PHY, "IEEE 802.15.4 with non-ASK PHY data"),
1240 DLT_CHOICE(DLT_MPLS, "MPLS with label as link-layer header"),
1241 DLT_CHOICE(DLT_LINUX_EVDEV, "Linux evdev events"),
1242 DLT_CHOICE(DLT_USB_LINUX_MMAPPED, "USB with padded Linux header"),
1243 DLT_CHOICE(DLT_DECT, "DECT"),
1244 DLT_CHOICE(DLT_AOS, "AOS Space Data Link protocol"),
1245 DLT_CHOICE(DLT_WIHART, "Wireless HART"),
1246 DLT_CHOICE(DLT_FC_2, "Fibre Channel FC-2"),
1247 DLT_CHOICE(DLT_FC_2_WITH_FRAME_DELIMS, "Fibre Channel FC-2 with frame delimiters"),
1248 DLT_CHOICE(DLT_IPNET, "Solaris ipnet"),
1249 DLT_CHOICE(DLT_CAN_SOCKETCAN, "CAN-bus with SocketCAN headers"),
1250 DLT_CHOICE(DLT_IPV4, "Raw IPv4"),
1251 DLT_CHOICE(DLT_IPV6, "Raw IPv6"),
1252 DLT_CHOICE(DLT_IEEE802_15_4_NOFCS, "IEEE 802.15.4 without FCS"),
1253 DLT_CHOICE(DLT_DBUS, "D-Bus"),
1254 DLT_CHOICE(DLT_JUNIPER_VS, "Juniper Virtual Server"),
1255 DLT_CHOICE(DLT_JUNIPER_SRX_E2E, "Juniper SRX E2E"),
1256 DLT_CHOICE(DLT_JUNIPER_FIBRECHANNEL, "Juniper Fibre Channel"),
1257 DLT_CHOICE(DLT_DVB_CI, "DVB-CI"),
1258 DLT_CHOICE(DLT_MUX27010, "MUX27010"),
1259 DLT_CHOICE(DLT_STANAG_5066_D_PDU, "STANAG 5066 D_PDUs"),
1260 DLT_CHOICE(DLT_JUNIPER_ATM_CEMIC, "Juniper ATM CEMIC"),
1261 DLT_CHOICE(DLT_NFLOG, "Linux netfilter log messages"),
1262 DLT_CHOICE(DLT_NETANALYZER, "Ethernet with Hilscher netANALYZER pseudo-header"),
1263 DLT_CHOICE(DLT_NETANALYZER_TRANSPARENT, "Ethernet with Hilscher netANALYZER pseudo-header and with preamble and SFD"),
1264 DLT_CHOICE(DLT_IPOIB, "RFC 4391 IP-over-Infiniband"),
1265 DLT_CHOICE(DLT_MPEG_2_TS, "MPEG-2 transport stream"),
1266 DLT_CHOICE(DLT_NG40, "ng40 protocol tester Iub/Iur"),
1267 DLT_CHOICE(DLT_NFC_LLCP, "NFC LLCP PDUs with pseudo-header"),
1268 DLT_CHOICE(DLT_INFINIBAND, "InfiniBand"),
1269 DLT_CHOICE(DLT_SCTP, "SCTP"),
1270 DLT_CHOICE(DLT_USBPCAP, "USB with USBPcap header"),
1271 DLT_CHOICE(DLT_RTAC_SERIAL, "Schweitzer Engineering Laboratories RTAC packets"),
1272 DLT_CHOICE(DLT_BLUETOOTH_LE_LL, "Bluetooth Low Energy air interface"),
1273 DLT_CHOICE(DLT_NETLINK, "Linux netlink"),
1274 DLT_CHOICE(DLT_BLUETOOTH_LINUX_MONITOR, "Bluetooth Linux Monitor"),
1275 DLT_CHOICE(DLT_BLUETOOTH_BREDR_BB, "Bluetooth Basic Rate/Enhanced Data Rate baseband packets"),
1276 DLT_CHOICE(DLT_BLUETOOTH_LE_LL_WITH_PHDR, "Bluetooth Low Energy air interface with pseudo-header"),
1277 DLT_CHOICE(DLT_PROFIBUS_DL, "PROFIBUS data link layer"),
1278 DLT_CHOICE(DLT_PKTAP, "Apple DLT_PKTAP"),
1279 DLT_CHOICE(DLT_EPON, "Ethernet with 802.3 Clause 65 EPON preamble"),
1280 DLT_CHOICE_SENTINEL
1281 };
1282
1283 int
1284 pcap_datalink_name_to_val(const char *name)
1285 {
1286 int i;
1287
1288 for (i = 0; dlt_choices[i].name != NULL; i++) {
1289 if (pcap_strcasecmp(dlt_choices[i].name + sizeof("DLT_") - 1,
1290 name) == 0)
1291 return (dlt_choices[i].dlt);
1292 }
1293 return (-1);
1294 }
1295
1296 const char *
1297 pcap_datalink_val_to_name(int dlt)
1298 {
1299 int i;
1300
1301 for (i = 0; dlt_choices[i].name != NULL; i++) {
1302 if (dlt_choices[i].dlt == dlt)
1303 return (dlt_choices[i].name + sizeof("DLT_") - 1);
1304 }
1305 return (NULL);
1306 }
1307
1308 const char *
1309 pcap_datalink_val_to_description(int dlt)
1310 {
1311 int i;
1312
1313 for (i = 0; dlt_choices[i].name != NULL; i++) {
1314 if (dlt_choices[i].dlt == dlt)
1315 return (dlt_choices[i].description);
1316 }
1317 return (NULL);
1318 }
1319
1320 struct tstamp_type_choice {
1321 const char *name;
1322 const char *description;
1323 int type;
1324 };
1325
1326 static struct tstamp_type_choice tstamp_type_choices[] = {
1327 { "host", "Host", PCAP_TSTAMP_HOST },
1328 { "host_lowprec", "Host, low precision", PCAP_TSTAMP_HOST_LOWPREC },
1329 { "host_hiprec", "Host, high precision", PCAP_TSTAMP_HOST_HIPREC },
1330 { "adapter", "Adapter", PCAP_TSTAMP_ADAPTER },
1331 { "adapter_unsynced", "Adapter, not synced with system time", PCAP_TSTAMP_ADAPTER_UNSYNCED },
1332 { NULL, NULL, 0 }
1333 };
1334
1335 int
1336 pcap_tstamp_type_name_to_val(const char *name)
1337 {
1338 int i;
1339
1340 for (i = 0; tstamp_type_choices[i].name != NULL; i++) {
1341 if (pcap_strcasecmp(tstamp_type_choices[i].name, name) == 0)
1342 return (tstamp_type_choices[i].type);
1343 }
1344 return (PCAP_ERROR);
1345 }
1346
1347 const char *
1348 pcap_tstamp_type_val_to_name(int tstamp_type)
1349 {
1350 int i;
1351
1352 for (i = 0; tstamp_type_choices[i].name != NULL; i++) {
1353 if (tstamp_type_choices[i].type == tstamp_type)
1354 return (tstamp_type_choices[i].name);
1355 }
1356 return (NULL);
1357 }
1358
1359 const char *
1360 pcap_tstamp_type_val_to_description(int tstamp_type)
1361 {
1362 int i;
1363
1364 for (i = 0; tstamp_type_choices[i].name != NULL; i++) {
1365 if (tstamp_type_choices[i].type == tstamp_type)
1366 return (tstamp_type_choices[i].description);
1367 }
1368 return (NULL);
1369 }
1370
1371 int
1372 pcap_snapshot(pcap_t *p)
1373 {
1374 if (!p->activated)
1375 return (PCAP_ERROR_NOT_ACTIVATED);
1376 return (p->snapshot);
1377 }
1378
1379 int
1380 pcap_is_swapped(pcap_t *p)
1381 {
1382 if (!p->activated)
1383 return (PCAP_ERROR_NOT_ACTIVATED);
1384 return (p->swapped);
1385 }
1386
1387 int
1388 pcap_major_version(pcap_t *p)
1389 {
1390 if (!p->activated)
1391 return (PCAP_ERROR_NOT_ACTIVATED);
1392 return (p->version_major);
1393 }
1394
1395 int
1396 pcap_minor_version(pcap_t *p)
1397 {
1398 if (!p->activated)
1399 return (PCAP_ERROR_NOT_ACTIVATED);
1400 return (p->version_minor);
1401 }
1402
1403 FILE *
1404 pcap_file(pcap_t *p)
1405 {
1406 return (p->rfile);
1407 }
1408
1409 int
1410 pcap_fileno(pcap_t *p)
1411 {
1412 #ifndef _WIN32
1413 return (p->fd);
1414 #else
1415 if (p->adapter != NULL)
1416 return ((int)(DWORD)p->adapter->hFile);
1417 else
1418 return (PCAP_ERROR);
1419 #endif
1420 }
1421
1422 #if !defined(_WIN32) && !defined(MSDOS)
1423 int
1424 pcap_get_selectable_fd(pcap_t *p)
1425 {
1426 return (p->selectable_fd);
1427 }
1428 #endif
1429
1430 void
1431 pcap_perror(pcap_t *p, char *prefix)
1432 {
1433 fprintf(stderr, "%s: %s\n", prefix, p->errbuf);
1434 }
1435
1436 char *
1437 pcap_geterr(pcap_t *p)
1438 {
1439 return (p->errbuf);
1440 }
1441
1442 int
1443 pcap_getnonblock(pcap_t *p, char *errbuf)
1444 {
1445 int ret;
1446
1447 ret = p->getnonblock_op(p, errbuf);
1448 if (ret == -1) {
1449 /*
1450 * In case somebody depended on the bug wherein
1451 * the error message was put into p->errbuf
1452 * by pcap_getnonblock_fd().
1453 */
1454 strlcpy(p->errbuf, errbuf, PCAP_ERRBUF_SIZE);
1455 }
1456 return (ret);
1457 }
1458
1459 /*
1460 * Get the current non-blocking mode setting, under the assumption that
1461 * it's just the standard POSIX non-blocking flag.
1462 */
1463 #if !defined(_WIN32) && !defined(MSDOS)
1464 int
1465 pcap_getnonblock_fd(pcap_t *p, char *errbuf)
1466 {
1467 int fdflags;
1468
1469 fdflags = fcntl(p->fd, F_GETFL, 0);
1470 if (fdflags == -1) {
1471 pcap_snprintf(errbuf, PCAP_ERRBUF_SIZE, "F_GETFL: %s",
1472 pcap_strerror(errno));
1473 return (-1);
1474 }
1475 if (fdflags & O_NONBLOCK)
1476 return (1);
1477 else
1478 return (0);
1479 }
1480 #endif
1481
1482 int
1483 pcap_setnonblock(pcap_t *p, int nonblock, char *errbuf)
1484 {
1485 int ret;
1486
1487 ret = p->setnonblock_op(p, nonblock, errbuf);
1488 if (ret == -1) {
1489 /*
1490 * In case somebody depended on the bug wherein
1491 * the error message was put into p->errbuf
1492 * by pcap_setnonblock_fd().
1493 */
1494 strlcpy(p->errbuf, errbuf, PCAP_ERRBUF_SIZE);
1495 }
1496 return (ret);
1497 }
1498
1499 #if !defined(_WIN32) && !defined(MSDOS)
1500 /*
1501 * Set non-blocking mode, under the assumption that it's just the
1502 * standard POSIX non-blocking flag. (This can be called by the
1503 * per-platform non-blocking-mode routine if that routine also
1504 * needs to do some additional work.)
1505 */
1506 int
1507 pcap_setnonblock_fd(pcap_t *p, int nonblock, char *errbuf)
1508 {
1509 int fdflags;
1510
1511 fdflags = fcntl(p->fd, F_GETFL, 0);
1512 if (fdflags == -1) {
1513 pcap_snprintf(errbuf, PCAP_ERRBUF_SIZE, "F_GETFL: %s",
1514 pcap_strerror(errno));
1515 return (-1);
1516 }
1517 if (nonblock)
1518 fdflags |= O_NONBLOCK;
1519 else
1520 fdflags &= ~O_NONBLOCK;
1521 if (fcntl(p->fd, F_SETFL, fdflags) == -1) {
1522 pcap_snprintf(errbuf, PCAP_ERRBUF_SIZE, "F_SETFL: %s",
1523 pcap_strerror(errno));
1524 return (-1);
1525 }
1526 return (0);
1527 }
1528 #endif
1529
1530 #ifdef _WIN32
1531 /*
1532 * Generate a string for a Win32-specific error (i.e. an error generated when
1533 * calling a Win32 API).
1534 * For errors occurred during standard C calls, we still use pcap_strerror()
1535 */
1536 void
1537 pcap_win32_err_to_str(DWORD error, char *errbuf)
1538 {
1539 size_t errlen;
1540 char *p;
1541
1542 FormatMessage(FORMAT_MESSAGE_FROM_SYSTEM, NULL, error, 0, errbuf,
1543 PCAP_ERRBUF_SIZE, NULL);
1544
1545 /*
1546 * "FormatMessage()" "helpfully" sticks CR/LF at the end of the
1547 * message. Get rid of it.
1548 */
1549 errlen = strlen(errbuf);
1550 if (errlen >= 2) {
1551 errbuf[errlen - 1] = '\0';
1552 errbuf[errlen - 2] = '\0';
1553 }
1554 p = strchr(errbuf, '\0');
1555 pcap_snprintf (p, PCAP_ERRBUF_SIZE+1-(p-errbuf), " (%lu)", error);
1556 }
1557 #endif
1558
1559 /*
1560 * Generate error strings for PCAP_ERROR_ and PCAP_WARNING_ values.
1561 */
1562 const char *
1563 pcap_statustostr(int errnum)
1564 {
1565 static char ebuf[15+10+1];
1566
1567 switch (errnum) {
1568
1569 case PCAP_WARNING:
1570 return("Generic warning");
1571
1572 case PCAP_WARNING_TSTAMP_TYPE_NOTSUP:
1573 return ("That type of time stamp is not supported by that device");
1574
1575 case PCAP_WARNING_PROMISC_NOTSUP:
1576 return ("That device doesn't support promiscuous mode");
1577
1578 case PCAP_ERROR:
1579 return("Generic error");
1580
1581 case PCAP_ERROR_BREAK:
1582 return("Loop terminated by pcap_breakloop");
1583
1584 case PCAP_ERROR_NOT_ACTIVATED:
1585 return("The pcap_t has not been activated");
1586
1587 case PCAP_ERROR_ACTIVATED:
1588 return ("The setting can't be changed after the pcap_t is activated");
1589
1590 case PCAP_ERROR_NO_SUCH_DEVICE:
1591 return ("No such device exists");
1592
1593 case PCAP_ERROR_RFMON_NOTSUP:
1594 return ("That device doesn't support monitor mode");
1595
1596 case PCAP_ERROR_NOT_RFMON:
1597 return ("That operation is supported only in monitor mode");
1598
1599 case PCAP_ERROR_PERM_DENIED:
1600 return ("You don't have permission to capture on that device");
1601
1602 case PCAP_ERROR_IFACE_NOT_UP:
1603 return ("That device is not up");
1604
1605 case PCAP_ERROR_CANTSET_TSTAMP_TYPE:
1606 return ("That device doesn't support setting the time stamp type");
1607
1608 case PCAP_ERROR_PROMISC_PERM_DENIED:
1609 return ("You don't have permission to capture in promiscuous mode on that device");
1610
1611 case PCAP_ERROR_TSTAMP_PRECISION_NOTSUP:
1612 return ("That device doesn't support that time stamp precision");
1613 }
1614 (void)pcap_snprintf(ebuf, sizeof ebuf, "Unknown error: %d", errnum);
1615 return(ebuf);
1616 }
1617
1618 /*
1619 * Not all systems have strerror().
1620 */
1621 const char *
1622 pcap_strerror(int errnum)
1623 {
1624 #ifdef HAVE_STRERROR
1625 return (strerror(errnum));
1626 #else
1627 extern int sys_nerr;
1628 extern const char *const sys_errlist[];
1629 static char ebuf[15+10+1];
1630
1631 if ((unsigned int)errnum < sys_nerr)
1632 return ((char *)sys_errlist[errnum]);
1633 (void)pcap_snprintf(ebuf, sizeof ebuf, "Unknown error: %d", errnum);
1634 return(ebuf);
1635 #endif
1636 }
1637
1638 int
1639 pcap_setfilter(pcap_t *p, struct bpf_program *fp)
1640 {
1641 return (p->setfilter_op(p, fp));
1642 }
1643
1644 /*
1645 * Set direction flag, which controls whether we accept only incoming
1646 * packets, only outgoing packets, or both.
1647 * Note that, depending on the platform, some or all direction arguments
1648 * might not be supported.
1649 */
1650 int
1651 pcap_setdirection(pcap_t *p, pcap_direction_t d)
1652 {
1653 if (p->setdirection_op == NULL) {
1654 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1655 "Setting direction is not implemented on this platform");
1656 return (-1);
1657 } else
1658 return (p->setdirection_op(p, d));
1659 }
1660
1661 int
1662 pcap_stats(pcap_t *p, struct pcap_stat *ps)
1663 {
1664 return (p->stats_op(p, ps));
1665 }
1666
1667 static int
1668 pcap_stats_dead(pcap_t *p, struct pcap_stat *ps _U_)
1669 {
1670 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1671 "Statistics aren't available from a pcap_open_dead pcap_t");
1672 return (-1);
1673 }
1674
1675 #ifdef _WIN32
1676 struct pcap_stat *
1677 pcap_stats_ex(pcap_t *p, int *pcap_stat_size)
1678 {
1679 return (p->stats_ex_op(p, pcap_stat_size));
1680 }
1681
1682 int
1683 pcap_setbuff(pcap_t *p, int dim)
1684 {
1685 return (p->setbuff_op(p, dim));
1686 }
1687
1688 static int
1689 pcap_setbuff_dead(pcap_t *p, int dim)
1690 {
1691 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1692 "The kernel buffer size cannot be set on a pcap_open_dead pcap_t");
1693 return (-1);
1694 }
1695
1696 int
1697 pcap_setmode(pcap_t *p, int mode)
1698 {
1699 return (p->setmode_op(p, mode));
1700 }
1701
1702 static int
1703 pcap_setmode_dead(pcap_t *p, int mode)
1704 {
1705 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1706 "impossible to set mode on a pcap_open_dead pcap_t");
1707 return (-1);
1708 }
1709
1710 int
1711 pcap_setmintocopy(pcap_t *p, int size)
1712 {
1713 return (p->setmintocopy_op(p, size));
1714 }
1715
1716 static int
1717 pcap_setmintocopy_dead(pcap_t *p, int size)
1718 {
1719 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1720 "The mintocopy parameter cannot be set on a pcap_open_dead pcap_t");
1721 return (-1);
1722 }
1723
1724 HANDLE
1725 pcap_getevent(pcap_t *p)
1726 {
1727 return (p->getevent_op(p));
1728 }
1729
1730 static HANDLE
1731 pcap_getevent_dead(pcap_t *p)
1732 {
1733 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1734 "A pcap_open_dead pcap_t has no event handle");
1735 return (INVALID_HANDLE_VALUE);
1736 }
1737
1738 int
1739 pcap_oid_get_request(pcap_t *p, bpf_u_int32 oid, void *data, size_t len)
1740 {
1741 return (p->oid_get_request_op(p, oid, data, len));
1742 }
1743
1744 static int
1745 pcap_oid_get_request_dead(pcap_t *p, bpf_u_int32 oid _U_, void *data _U_,
1746 size_t len _U_)
1747 {
1748 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1749 "An OID get request cannot be performed on a pcap_open_dead pcap_t");
1750 return (PCAP_ERROR);
1751 }
1752
1753 int
1754 pcap_oid_set_request(pcap_t *p, bpf_u_int32 oid, const void *data, size_t len)
1755 {
1756 return (p->oid_set_request_op(p, oid, data, len));
1757 }
1758
1759 static int
1760 pcap_oid_set_request_dead(pcap_t *p, bpf_u_int32 oid _U_, const void *data _U_,
1761 size_t len _U_)
1762 {
1763 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1764 "An OID set request cannot be performed on a pcap_open_dead pcap_t");
1765 return (PCAP_ERROR);
1766 }
1767
1768 pcap_send_queue *
1769 pcap_sendqueue_alloc(u_int memsize)
1770 {
1771 pcap_send_queue *tqueue;
1772
1773 /* Allocate the queue */
1774 tqueue = (pcap_send_queue *)malloc(sizeof(pcap_send_queue));
1775 if (tqueue == NULL){
1776 return (NULL);
1777 }
1778
1779 /* Allocate the buffer */
1780 tqueue->buffer = (char *)malloc(memsize);
1781 if (tqueue->buffer == NULL) {
1782 free(tqueue);
1783 return (NULL);
1784 }
1785
1786 tqueue->maxlen = memsize;
1787 tqueue->len = 0;
1788
1789 return (tqueue);
1790 }
1791
1792 void
1793 pcap_sendqueue_destroy(pcap_send_queue *queue)
1794 {
1795 free(queue->buffer);
1796 free(queue);
1797 }
1798
1799 int
1800 pcap_sendqueue_queue(pcap_send_queue *queue, const struct pcap_pkthdr *pkt_header, const u_char *pkt_data)
1801 {
1802 if (queue->len + sizeof(struct pcap_pkthdr) + pkt_header->caplen > queue->maxlen){
1803 return (-1);
1804 }
1805
1806 /* Copy the pcap_pkthdr header*/
1807 memcpy(queue->buffer + queue->len, pkt_header, sizeof(struct pcap_pkthdr));
1808 queue->len += sizeof(struct pcap_pkthdr);
1809
1810 /* copy the packet */
1811 memcpy(queue->buffer + queue->len, pkt_data, pkt_header->caplen);
1812 queue->len += pkt_header->caplen;
1813
1814 return (0);
1815 }
1816
1817 u_int
1818 pcap_sendqueue_transmit(pcap_t *p, pcap_send_queue *queue, int sync)
1819 {
1820 return (p->sendqueue_transmit_op(p, queue, sync));
1821 }
1822
1823 static u_int
1824 pcap_sendqueue_transmit_dead(pcap_t *p, pcap_send_queue *queue, int sync)
1825 {
1826 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1827 "Packets cannot be transmitted on a pcap_open_dead pcap_t");
1828 return (0);
1829 }
1830
1831 int
1832 pcap_setuserbuffer(pcap_t *p, int size)
1833 {
1834 return (p->setuserbuffer_op(p, size));
1835 }
1836
1837 static int
1838 pcap_setuserbuffer_dead(pcap_t *p, int size)
1839 {
1840 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1841 "The user buffer cannot be set on a pcap_open_dead pcap_t");
1842 return (-1);
1843 }
1844
1845 int
1846 pcap_live_dump(pcap_t *p, char *filename, int maxsize, int maxpacks)
1847 {
1848 return (p->live_dump_op(p, filename, maxsize, maxpacks));
1849 }
1850
1851 static int
1852 pcap_live_dump_dead(pcap_t *p, char *filename, int maxsize, int maxpacks)
1853 {
1854 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1855 "Live packet dumping cannot be performed on a pcap_open_dead pcap_t");
1856 return (-1);
1857 }
1858
1859 int
1860 pcap_live_dump_ended(pcap_t *p, int sync)
1861 {
1862 return (p->live_dump_ended_op(p, sync));
1863 }
1864
1865 static int
1866 pcap_live_dump_ended_dead(pcap_t *p, int sync)
1867 {
1868 pcap_snprintf(p->errbuf, PCAP_ERRBUF_SIZE,
1869 "Live packet dumping cannot be performed on a pcap_open_dead pcap_t");
1870 return (-1);
1871 }
1872
1873 PAirpcapHandle
1874 pcap_get_airpcap_handle(pcap_t *p)
1875 {
1876 PAirpcapHandle handle;
1877
1878 handle = p->get_airpcap_handle_op(p);
1879 if (handle == NULL) {
1880 (void)pcap_snprintf(p->errbuf, sizeof(p->errbuf),
1881 "This isn't an AirPcap device");
1882 }
1883 return (handle);
1884 }
1885
1886 static PAirpcapHandle
1887 pcap_get_airpcap_handle_dead(pcap_t *p)
1888 {
1889 return (NULL);
1890 }
1891 #endif
1892
1893 /*
1894 * On some platforms, we need to clean up promiscuous or monitor mode
1895 * when we close a device - and we want that to happen even if the
1896 * application just exits without explicitl closing devices.
1897 * On those platforms, we need to register a "close all the pcaps"
1898 * routine to be called when we exit, and need to maintain a list of
1899 * pcaps that need to be closed to clean up modes.
1900 *
1901 * XXX - not thread-safe.
1902 */
1903
1904 /*
1905 * List of pcaps on which we've done something that needs to be
1906 * cleaned up.
1907 * If there are any such pcaps, we arrange to call "pcap_close_all()"
1908 * when we exit, and have it close all of them.
1909 */
1910 static struct pcap *pcaps_to_close;
1911
1912 /*
1913 * TRUE if we've already called "atexit()" to cause "pcap_close_all()" to
1914 * be called on exit.
1915 */
1916 static int did_atexit;
1917
1918 static void
1919 pcap_close_all(void)
1920 {
1921 struct pcap *handle;
1922
1923 while ((handle = pcaps_to_close) != NULL)
1924 pcap_close(handle);
1925 }
1926
1927 int
1928 pcap_do_addexit(pcap_t *p)
1929 {
1930 /*
1931 * If we haven't already done so, arrange to have
1932 * "pcap_close_all()" called when we exit.
1933 */
1934 if (!did_atexit) {
1935 if (atexit(pcap_close_all) == -1) {
1936 /*
1937 * "atexit()" failed; let our caller know.
1938 */
1939 strncpy(p->errbuf, "atexit failed",
1940 PCAP_ERRBUF_SIZE);
1941 return (0);
1942 }
1943 did_atexit = 1;
1944 }
1945 return (1);
1946 }
1947
1948 void
1949 pcap_add_to_pcaps_to_close(pcap_t *p)
1950 {
1951 p->next = pcaps_to_close;
1952 pcaps_to_close = p;
1953 }
1954
1955 void
1956 pcap_remove_from_pcaps_to_close(pcap_t *p)
1957 {
1958 pcap_t *pc, *prevpc;
1959
1960 for (pc = pcaps_to_close, prevpc = NULL; pc != NULL;
1961 prevpc = pc, pc = pc->next) {
1962 if (pc == p) {
1963 /*
1964 * Found it. Remove it from the list.
1965 */
1966 if (prevpc == NULL) {
1967 /*
1968 * It was at the head of the list.
1969 */
1970 pcaps_to_close = pc->next;
1971 } else {
1972 /*
1973 * It was in the middle of the list.
1974 */
1975 prevpc->next = pc->next;
1976 }
1977 break;
1978 }
1979 }
1980 }
1981
1982 void
1983 pcap_cleanup_live_common(pcap_t *p)
1984 {
1985 if (p->buffer != NULL) {
1986 free(p->buffer);
1987 p->buffer = NULL;
1988 }
1989 if (p->dlt_list != NULL) {
1990 free(p->dlt_list);
1991 p->dlt_list = NULL;
1992 p->dlt_count = 0;
1993 }
1994 if (p->tstamp_type_list != NULL) {
1995 free(p->tstamp_type_list);
1996 p->tstamp_type_list = NULL;
1997 p->tstamp_type_count = 0;
1998 }
1999 if (p->tstamp_precision_list != NULL) {
2000 free(p->tstamp_precision_list);
2001 p->tstamp_precision_list = NULL;
2002 p->tstamp_precision_count = 0;
2003 }
2004 pcap_freecode(&p->fcode);
2005 #if !defined(_WIN32) && !defined(MSDOS)
2006 if (p->fd >= 0) {
2007 close(p->fd);
2008 p->fd = -1;
2009 }
2010 p->selectable_fd = -1;
2011 #endif
2012 }
2013
2014 static void
2015 pcap_cleanup_dead(pcap_t *p _U_)
2016 {
2017 /* Nothing to do. */
2018 }
2019
2020 pcap_t *
2021 pcap_open_dead_with_tstamp_precision(int linktype, int snaplen, u_int precision)
2022 {
2023 pcap_t *p;
2024
2025 switch (precision) {
2026
2027 case PCAP_TSTAMP_PRECISION_MICRO:
2028 case PCAP_TSTAMP_PRECISION_NANO:
2029 break;
2030
2031 default:
2032 return NULL;
2033 }
2034 p = malloc(sizeof(*p));
2035 if (p == NULL)
2036 return NULL;
2037 memset (p, 0, sizeof(*p));
2038 p->snapshot = snaplen;
2039 p->linktype = linktype;
2040 p->opt.tstamp_precision = precision;
2041 p->stats_op = pcap_stats_dead;
2042 #ifdef _WIN32
2043 p->stats_ex_op = (stats_ex_op_t)pcap_not_initialized_ptr;
2044 p->setbuff_op = pcap_setbuff_dead;
2045 p->setmode_op = pcap_setmode_dead;
2046 p->setmintocopy_op = pcap_setmintocopy_dead;
2047 p->getevent_op = pcap_getevent_dead;
2048 p->oid_get_request_op = pcap_oid_get_request_dead;
2049 p->oid_set_request_op = pcap_oid_set_request_dead;
2050 p->sendqueue_transmit_op = pcap_sendqueue_transmit_dead;
2051 p->setuserbuffer_op = pcap_setuserbuffer_dead;
2052 p->live_dump_op = pcap_live_dump_dead;
2053 p->live_dump_ended_op = pcap_live_dump_ended_dead;
2054 p->get_airpcap_handle_op = pcap_get_airpcap_handle_dead;
2055 #endif
2056 p->cleanup_op = pcap_cleanup_dead;
2057
2058 /*
2059 * A "dead" pcap_t never requires special BPF code generation.
2060 */
2061 p->bpf_codegen_flags = 0;
2062
2063 p->activated = 1;
2064 return (p);
2065 }
2066
2067 pcap_t *
2068 pcap_open_dead(int linktype, int snaplen)
2069 {
2070 return (pcap_open_dead_with_tstamp_precision(linktype, snaplen,
2071 PCAP_TSTAMP_PRECISION_MICRO));
2072 }
2073
2074 /*
2075 * API compatible with WinPcap's "send a packet" routine - returns -1
2076 * on error, 0 otherwise.
2077 *
2078 * XXX - what if we get a short write?
2079 */
2080 int
2081 pcap_sendpacket(pcap_t *p, const u_char *buf, int size)
2082 {
2083 if (p->inject_op(p, buf, size) == -1)
2084 return (-1);
2085 return (0);
2086 }
2087
2088 /*
2089 * API compatible with OpenBSD's "send a packet" routine - returns -1 on
2090 * error, number of bytes written otherwise.
2091 */
2092 int
2093 pcap_inject(pcap_t *p, const void *buf, size_t size)
2094 {
2095 return (p->inject_op(p, buf, size));
2096 }
2097
2098 void
2099 pcap_close(pcap_t *p)
2100 {
2101 if (p->opt.source != NULL)
2102 free(p->opt.source);
2103 p->cleanup_op(p);
2104 free(p);
2105 }
2106
2107 /*
2108 * Given a BPF program, a pcap_pkthdr structure for a packet, and the raw
2109 * data for the packet, check whether the packet passes the filter.
2110 * Returns the return value of the filter program, which will be zero if
2111 * the packet doesn't pass and non-zero if the packet does pass.
2112 */
2113 int
2114 pcap_offline_filter(const struct bpf_program *fp, const struct pcap_pkthdr *h,
2115 const u_char *pkt)
2116 {
2117 const struct bpf_insn *fcode = fp->bf_insns;
2118
2119 if (fcode != NULL)
2120 return (bpf_filter(fcode, pkt, h->len, h->caplen));
2121 else
2122 return (0);
2123 }
2124
2125 /*
2126 * We make the version string static, and return a pointer to it, rather
2127 * than exporting the version string directly. On at least some UNIXes,
2128 * if you import data from a shared library into an program, the data is
2129 * bound into the program binary, so if the string in the version of the
2130 * library with which the program was linked isn't the same as the
2131 * string in the version of the library with which the program is being
2132 * run, various undesirable things may happen (warnings, the string
2133 * being the one from the version of the library with which the program
2134 * was linked, or even weirder things, such as the string being the one
2135 * from the library but being truncated).
2136 */
2137 #ifdef HAVE_VERSION_H
2138 #include "version.h"
2139 #else
2140 static const char pcap_version_string[] = "libpcap version 1.x.y";
2141 #endif
2142
2143 #ifdef _WIN32
2144 /*
2145 * XXX - it'd be nice if we could somehow generate the WinPcap and libpcap
2146 * version numbers when building WinPcap. (It'd be nice to do so for
2147 * the packet.dll version number as well.)
2148 */
2149 static const char wpcap_version_string[] = "4.0";
2150 static const char pcap_version_string_fmt[] =
2151 "WinPcap version %s, based on %s";
2152 static const char pcap_version_string_packet_dll_fmt[] =
2153 "WinPcap version %s (packet.dll version %s), based on %s";
2154 static char *full_pcap_version_string;
2155
2156 const char *
2157 pcap_lib_version(void)
2158 {
2159 char *packet_version_string;
2160 size_t full_pcap_version_string_len;
2161
2162 if (full_pcap_version_string == NULL) {
2163 /*
2164 * Generate the version string.
2165 */
2166 packet_version_string = PacketGetVersion();
2167 if (strcmp(wpcap_version_string, packet_version_string) == 0) {
2168 /*
2169 * WinPcap version string and packet.dll version
2170 * string are the same; just report the WinPcap
2171 * version.
2172 */
2173 full_pcap_version_string_len =
2174 (sizeof pcap_version_string_fmt - 4) +
2175 strlen(wpcap_version_string) +
2176 strlen(pcap_version_string);
2177 full_pcap_version_string =
2178 malloc(full_pcap_version_string_len);
2179 if (full_pcap_version_string == NULL)
2180 return (NULL);
2181 sprintf(full_pcap_version_string,
2182 pcap_version_string_fmt, wpcap_version_string,
2183 pcap_version_string);
2184 } else {
2185 /*
2186 * WinPcap version string and packet.dll version
2187 * string are different; that shouldn't be the
2188 * case (the two libraries should come from the
2189 * same version of WinPcap), so we report both
2190 * versions.
2191 */
2192 full_pcap_version_string_len =
2193 (sizeof pcap_version_string_packet_dll_fmt - 6) +
2194 strlen(wpcap_version_string) +
2195 strlen(packet_version_string) +
2196 strlen(pcap_version_string);
2197 full_pcap_version_string = malloc(full_pcap_version_string_len);
2198 if (full_pcap_version_string == NULL)
2199 return (NULL);
2200 sprintf(full_pcap_version_string,
2201 pcap_version_string_packet_dll_fmt,
2202 wpcap_version_string, packet_version_string,
2203 pcap_version_string);
2204 }
2205 }
2206 return (full_pcap_version_string);
2207 }
2208
2209 #elif defined(MSDOS)
2210
2211 static char *full_pcap_version_string;
2212
2213 const char *
2214 pcap_lib_version (void)
2215 {
2216 char *packet_version_string;
2217 size_t full_pcap_version_string_len;
2218 static char dospfx[] = "DOS-";
2219
2220 if (full_pcap_version_string == NULL) {
2221 /*
2222 * Generate the version string.
2223 */
2224 full_pcap_version_string_len =
2225 sizeof dospfx + strlen(pcap_version_string);
2226 full_pcap_version_string =
2227 malloc(full_pcap_version_string_len);
2228 if (full_pcap_version_string == NULL)
2229 return (NULL);
2230 strcpy(full_pcap_version_string, dospfx);
2231 strcat(full_pcap_version_string, pcap_version_string);
2232 }
2233 return (full_pcap_version_string);
2234 }
2235
2236 #else /* UN*X */
2237
2238 const char *
2239 pcap_lib_version(void)
2240 {
2241 return (pcap_version_string);
2242 }
2243 #endif