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1 /* $NetBSD: print-ah.c,v 1.4 1996/05/20 00:41:16 fvdl Exp $ */
2
3 /*
4 * Copyright (c) 1988, 1989, 1990, 1991, 1992, 1993, 1994
5 * The Regents of the University of California. All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that: (1) source code distributions
9 * retain the above copyright notice and this paragraph in its entirety, (2)
10 * distributions including binary code include the above copyright notice and
11 * this paragraph in its entirety in the documentation or other materials
12 * provided with the distribution, and (3) all advertising materials mentioning
13 * features or use of this software display the following acknowledgement:
14 * ``This product includes software developed by the University of California,
15 * Lawrence Berkeley Laboratory and its contributors.'' Neither the name of
16 * the University nor the names of its contributors may be used to endorse
17 * or promote products derived from this software without specific prior
18 * written permission.
19 * THIS SOFTWARE IS PROVIDED ``AS IS'' AND WITHOUT ANY EXPRESS OR IMPLIED
20 * WARRANTIES, INCLUDING, WITHOUT LIMITATION, THE IMPLIED WARRANTIES OF
21 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE.
22 */
23
24 /* \summary: IPSEC Encapsulating Security Payload (ESP) printer */
25
26 #ifdef HAVE_CONFIG_H
27 #include <config.h>
28 #endif
29
30 #include "netdissect-stdinc.h"
31
32 #include <string.h>
33 #include <stdlib.h>
34
35 /* Any code in this file that depends on HAVE_LIBCRYPTO depends on
36 * HAVE_OPENSSL_EVP_H too. Undefining the former when the latter isn't defined
37 * is the simplest way of handling the dependency.
38 */
39 #ifdef HAVE_LIBCRYPTO
40 #ifdef HAVE_OPENSSL_EVP_H
41 #include <openssl/evp.h>
42 #else
43 #undef HAVE_LIBCRYPTO
44 #endif
45 #endif
46
47 #include "netdissect.h"
48 #include "strtoaddr.h"
49 #include "extract.h"
50
51 #include "ascii_strcasecmp.h"
52
53 #include "ip.h"
54 #include "ip6.h"
55
56 /*
57 * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
58 * All rights reserved.
59 *
60 * Redistribution and use in source and binary forms, with or without
61 * modification, are permitted provided that the following conditions
62 * are met:
63 * 1. Redistributions of source code must retain the above copyright
64 * notice, this list of conditions and the following disclaimer.
65 * 2. Redistributions in binary form must reproduce the above copyright
66 * notice, this list of conditions and the following disclaimer in the
67 * documentation and/or other materials provided with the distribution.
68 * 3. Neither the name of the project nor the names of its contributors
69 * may be used to endorse or promote products derived from this software
70 * without specific prior written permission.
71 *
72 * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
73 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
74 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
75 * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
76 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
77 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
78 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
79 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
80 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
81 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
82 * SUCH DAMAGE.
83 */
84
85 /*
86 * RFC1827/2406 Encapsulated Security Payload.
87 */
88
89 struct newesp {
90 nd_uint32_t esp_spi; /* ESP */
91 nd_uint32_t esp_seq; /* Sequence number */
92 /*variable size*/ /* (IV and) Payload data */
93 /*variable size*/ /* padding */
94 /*8bit*/ /* pad size */
95 /*8bit*/ /* next header */
96 /*8bit*/ /* next header */
97 /*variable size, 32bit bound*/ /* Authentication data */
98 };
99
100 #ifdef HAVE_LIBCRYPTO
101 union inaddr_u {
102 struct in_addr in4;
103 struct in6_addr in6;
104 };
105 struct sa_list {
106 struct sa_list *next;
107 u_int daddr_version;
108 union inaddr_u daddr;
109 uint32_t spi; /* if == 0, then IKEv2 */
110 int initiator;
111 u_char spii[8]; /* for IKEv2 */
112 u_char spir[8];
113 const EVP_CIPHER *evp;
114 int ivlen;
115 int authlen;
116 u_char authsecret[256];
117 int authsecret_len;
118 u_char secret[256]; /* is that big enough for all secrets? */
119 int secretlen;
120 };
121
122 #ifndef HAVE_EVP_CIPHER_CTX_NEW
123 /*
124 * Allocate an EVP_CIPHER_CTX.
125 * Used if we have an older version of OpenSSL that doesn't provide
126 * routines to allocate and free them.
127 */
128 static EVP_CIPHER_CTX *
129 EVP_CIPHER_CTX_new(void)
130 {
131 EVP_CIPHER_CTX *ctx;
132
133 ctx = malloc(sizeof(*ctx));
134 if (ctx == NULL)
135 return (NULL);
136 memset(ctx, 0, sizeof(*ctx));
137 return (ctx);
138 }
139
140 static void
141 EVP_CIPHER_CTX_free(EVP_CIPHER_CTX *ctx)
142 {
143 EVP_CIPHER_CTX_cleanup(ctx);
144 free(ctx);
145 }
146 #endif
147
148 #ifdef HAVE_EVP_CIPHERINIT_EX
149 /*
150 * Initialize the cipher by calling EVP_CipherInit_ex(), because
151 * calling EVP_CipherInit() will reset the cipher context, clearing
152 * the cipher, so calling it twice, with the second call having a
153 * null cipher, will clear the already-set cipher. EVP_CipherInit_ex(),
154 * however, won't reset the cipher context, so you can use it to specify
155 * the IV oin a second call after a first call to EVP_CipherInit_ex()
156 * to set the cipher and the key.
157 *
158 * XXX - is there some reason why we need to make two calls?
159 */
160 static int
161 set_cipher_parameters(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *cipher,
162 const unsigned char *key,
163 const unsigned char *iv, int enc)
164 {
165 return EVP_CipherInit_ex(ctx, cipher, NULL, key, iv, enc);
166 }
167 #else
168 /*
169 * Initialize the cipher by calling EVP_CipherInit(), because we don't
170 * have EVP_CipherInit_ex(); we rely on it not trashing the context.
171 */
172 static int
173 set_cipher_parameters(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *cipher,
174 const unsigned char *key,
175 const unsigned char *iv, int enc)
176 {
177 return EVP_CipherInit(ctx, cipher, key, iv, enc);
178 }
179 #endif
180
181 /*
182 * this will adjust ndo_packetp and ndo_snapend to new buffer!
183 */
184 USES_APPLE_DEPRECATED_API
185 int esp_print_decrypt_buffer_by_ikev2(netdissect_options *ndo,
186 int initiator,
187 const u_char spii[8],
188 const u_char spir[8],
189 const u_char *buf, const u_char *end)
190 {
191 struct sa_list *sa;
192 const u_char *iv;
193 unsigned int len;
194 EVP_CIPHER_CTX *ctx;
195 unsigned int block_size, buffer_size;
196 u_char *input_buffer, *output_buffer;
197
198 /* initiator arg is any non-zero value */
199 if(initiator) initiator=1;
200
201 /* see if we can find the SA, and if so, decode it */
202 for (sa = ndo->ndo_sa_list_head; sa != NULL; sa = sa->next) {
203 if (sa->spi == 0
204 && initiator == sa->initiator
205 && memcmp(spii, sa->spii, 8) == 0
206 && memcmp(spir, sa->spir, 8) == 0)
207 break;
208 }
209
210 if(sa == NULL) return 0;
211 if(sa->evp == NULL) return 0;
212
213 /*
214 * remove authenticator, and see if we still have something to
215 * work with
216 */
217 end = end - sa->authlen;
218 iv = buf;
219 buf = buf + sa->ivlen;
220 len = end-buf;
221
222 if(end <= buf) return 0;
223
224 ctx = EVP_CIPHER_CTX_new();
225 if (ctx == NULL)
226 return 0;
227 if (set_cipher_parameters(ctx, sa->evp, sa->secret, NULL, 0) < 0)
228 (*ndo->ndo_warning)(ndo, "espkey init failed");
229 set_cipher_parameters(ctx, NULL, NULL, iv, 0);
230 /*
231 * Allocate buffers for the encrypted and decrypted data.
232 * Both buffers' sizes must be a multiple of the cipher block
233 * size, and the output buffer must be separate from the input
234 * buffer.
235 */
236 block_size = (unsigned int)EVP_CIPHER_CTX_block_size(ctx);
237 buffer_size = len + (block_size - len % block_size);
238
239 /*
240 * Attempt to allocate the input buffer.
241 */
242 input_buffer = (u_char *)malloc(buffer_size);
243 if (input_buffer == NULL) {
244 EVP_CIPHER_CTX_free(ctx);
245 (*ndo->ndo_error)(ndo, S_ERR_ND_MEM_ALLOC,
246 "can't allocate memory for encrypted data buffer");
247 }
248 /*
249 * Copy the input data to the encrypted data buffer, and pad it
250 * with zeroes.
251 */
252 memcpy(input_buffer, buf, len);
253 memset(input_buffer + len, 0, buffer_size - len);
254
255 /*
256 * Attempt to allocate the output buffer.
257 */
258 output_buffer = (u_char *)malloc(buffer_size);
259 if (output_buffer == NULL) {
260 free(input_buffer);
261 EVP_CIPHER_CTX_free(ctx);
262 (*ndo->ndo_error)(ndo, S_ERR_ND_MEM_ALLOC,
263 "can't allocate memory for decryption buffer");
264 }
265 EVP_Cipher(ctx, output_buffer, input_buffer, len);
266 EVP_CIPHER_CTX_free(ctx);
267
268 /*
269 * XXX - of course this is wrong, because buf is a const buffer,
270 * but changing this would require a more complicated fix.
271 */
272 memcpy(buf, output_buffer, len);
273 free(input_buffer);
274 free(output_buffer);
275
276 ndo->ndo_packetp = buf;
277 ndo->ndo_snapend = end;
278
279 return 1;
280 }
281 USES_APPLE_RST
282
283 static void esp_print_addsa(netdissect_options *ndo,
284 struct sa_list *sa, int sa_def)
285 {
286 /* copy the "sa" */
287
288 struct sa_list *nsa;
289
290 /* malloc() return used in a 'struct sa_list': do not free() */
291 nsa = (struct sa_list *)malloc(sizeof(struct sa_list));
292 if (nsa == NULL)
293 (*ndo->ndo_error)(ndo, S_ERR_ND_MEM_ALLOC,
294 "esp_print_addsa: malloc");
295
296 *nsa = *sa;
297
298 if (sa_def)
299 ndo->ndo_sa_default = nsa;
300
301 nsa->next = ndo->ndo_sa_list_head;
302 ndo->ndo_sa_list_head = nsa;
303 }
304
305
306 static u_int hexdigit(netdissect_options *ndo, char hex)
307 {
308 if (hex >= '0' && hex <= '9')
309 return (hex - '0');
310 else if (hex >= 'A' && hex <= 'F')
311 return (hex - 'A' + 10);
312 else if (hex >= 'a' && hex <= 'f')
313 return (hex - 'a' + 10);
314 else {
315 (*ndo->ndo_error)(ndo, S_ERR_ND_ESP_SECRET,
316 "invalid hex digit %c in espsecret\n", hex);
317 return 0;
318 }
319 }
320
321 static u_int hex2byte(netdissect_options *ndo, char *hexstring)
322 {
323 u_int byte;
324
325 byte = (hexdigit(ndo, hexstring[0]) << 4) + hexdigit(ndo, hexstring[1]);
326 return byte;
327 }
328
329 /*
330 * returns size of binary, 0 on failure.
331 */
332 static
333 int espprint_decode_hex(netdissect_options *ndo,
334 u_char *binbuf, unsigned int binbuf_len,
335 char *hex)
336 {
337 unsigned int len;
338 int i;
339
340 len = strlen(hex) / 2;
341
342 if (len > binbuf_len) {
343 (*ndo->ndo_warning)(ndo, "secret is too big: %u\n", len);
344 return 0;
345 }
346
347 i = 0;
348 while (hex[0] != '\0' && hex[1]!='\0') {
349 binbuf[i] = hex2byte(ndo, hex);
350 hex += 2;
351 i++;
352 }
353
354 return i;
355 }
356
357 /*
358 * decode the form: SPINUM@IP <tab> ALGONAME:0xsecret
359 */
360
361 USES_APPLE_DEPRECATED_API
362 static int
363 espprint_decode_encalgo(netdissect_options *ndo,
364 char *decode, struct sa_list *sa)
365 {
366 size_t i;
367 const EVP_CIPHER *evp;
368 int authlen = 0;
369 char *colon, *p;
370
371 colon = strchr(decode, ':');
372 if (colon == NULL) {
373 (*ndo->ndo_warning)(ndo, "failed to decode espsecret: %s\n", decode);
374 return 0;
375 }
376 *colon = '\0';
377
378 if (strlen(decode) > strlen("-hmac96") &&
379 !strcmp(decode + strlen(decode) - strlen("-hmac96"),
380 "-hmac96")) {
381 p = strstr(decode, "-hmac96");
382 *p = '\0';
383 authlen = 12;
384 }
385 if (strlen(decode) > strlen("-cbc") &&
386 !strcmp(decode + strlen(decode) - strlen("-cbc"), "-cbc")) {
387 p = strstr(decode, "-cbc");
388 *p = '\0';
389 }
390 evp = EVP_get_cipherbyname(decode);
391
392 if (!evp) {
393 (*ndo->ndo_warning)(ndo, "failed to find cipher algo %s\n", decode);
394 sa->evp = NULL;
395 sa->authlen = 0;
396 sa->ivlen = 0;
397 return 0;
398 }
399
400 sa->evp = evp;
401 sa->authlen = authlen;
402 sa->ivlen = EVP_CIPHER_iv_length(evp);
403
404 colon++;
405 if (colon[0] == '0' && colon[1] == 'x') {
406 /* decode some hex! */
407
408 colon += 2;
409 sa->secretlen = espprint_decode_hex(ndo, sa->secret, sizeof(sa->secret), colon);
410 if(sa->secretlen == 0) return 0;
411 } else {
412 i = strlen(colon);
413
414 if (i < sizeof(sa->secret)) {
415 memcpy(sa->secret, colon, i);
416 sa->secretlen = i;
417 } else {
418 memcpy(sa->secret, colon, sizeof(sa->secret));
419 sa->secretlen = sizeof(sa->secret);
420 }
421 }
422
423 return 1;
424 }
425 USES_APPLE_RST
426
427 /*
428 * for the moment, ignore the auth algorith, just hard code the authenticator
429 * length. Need to research how openssl looks up HMAC stuff.
430 */
431 static int
432 espprint_decode_authalgo(netdissect_options *ndo,
433 char *decode, struct sa_list *sa)
434 {
435 char *colon;
436
437 colon = strchr(decode, ':');
438 if (colon == NULL) {
439 (*ndo->ndo_warning)(ndo, "failed to decode espsecret: %s\n", decode);
440 return 0;
441 }
442 *colon = '\0';
443
444 if(ascii_strcasecmp(colon,"sha1") == 0 ||
445 ascii_strcasecmp(colon,"md5") == 0) {
446 sa->authlen = 12;
447 }
448 return 1;
449 }
450
451 static void esp_print_decode_ikeline(netdissect_options *ndo, char *line,
452 const char *file, int lineno)
453 {
454 /* it's an IKEv2 secret, store it instead */
455 struct sa_list sa1;
456
457 char *init;
458 char *icookie, *rcookie;
459 int ilen, rlen;
460 char *authkey;
461 char *enckey;
462
463 init = strsep(&line, " \t");
464 icookie = strsep(&line, " \t");
465 rcookie = strsep(&line, " \t");
466 authkey = strsep(&line, " \t");
467 enckey = strsep(&line, " \t");
468
469 /* if any fields are missing */
470 if(!init || !icookie || !rcookie || !authkey || !enckey) {
471 (*ndo->ndo_warning)(ndo, "print_esp: failed to find all fields for ikev2 at %s:%u",
472 file, lineno);
473
474 return;
475 }
476
477 ilen = strlen(icookie);
478 rlen = strlen(rcookie);
479
480 if((init[0]!='I' && init[0]!='R')
481 || icookie[0]!='0' || icookie[1]!='x'
482 || rcookie[0]!='0' || rcookie[1]!='x'
483 || ilen!=18
484 || rlen!=18) {
485 (*ndo->ndo_warning)(ndo, "print_esp: line %s:%u improperly formatted.",
486 file, lineno);
487
488 (*ndo->ndo_warning)(ndo, "init=%s icookie=%s(%u) rcookie=%s(%u)",
489 init, icookie, ilen, rcookie, rlen);
490
491 return;
492 }
493
494 sa1.spi = 0;
495 sa1.initiator = (init[0] == 'I');
496 if(espprint_decode_hex(ndo, sa1.spii, sizeof(sa1.spii), icookie+2)!=8)
497 return;
498
499 if(espprint_decode_hex(ndo, sa1.spir, sizeof(sa1.spir), rcookie+2)!=8)
500 return;
501
502 if(!espprint_decode_encalgo(ndo, enckey, &sa1)) return;
503
504 if(!espprint_decode_authalgo(ndo, authkey, &sa1)) return;
505
506 esp_print_addsa(ndo, &sa1, FALSE);
507 }
508
509 /*
510 *
511 * special form: file /name
512 * causes us to go read from this file instead.
513 *
514 */
515 static void esp_print_decode_onesecret(netdissect_options *ndo, char *line,
516 const char *file, int lineno)
517 {
518 struct sa_list sa1;
519 int sa_def;
520
521 char *spikey;
522 char *decode;
523
524 spikey = strsep(&line, " \t");
525 sa_def = 0;
526 memset(&sa1, 0, sizeof(struct sa_list));
527
528 /* if there is only one token, then it is an algo:key token */
529 if (line == NULL) {
530 decode = spikey;
531 spikey = NULL;
532 /* sa1.daddr.version = 0; */
533 /* memset(&sa1.daddr, 0, sizeof(sa1.daddr)); */
534 /* sa1.spi = 0; */
535 sa_def = 1;
536 } else
537 decode = line;
538
539 if (spikey && ascii_strcasecmp(spikey, "file") == 0) {
540 /* open file and read it */
541 FILE *secretfile;
542 char fileline[1024];
543 int subfile_lineno=0;
544 char *nl;
545 char *filename = line;
546
547 secretfile = fopen(filename, FOPEN_READ_TXT);
548 if (secretfile == NULL) {
549 (*ndo->ndo_error)(ndo, S_ERR_ND_OPEN_FILE,
550 "print_esp: can't open %s: %s\n",
551 filename, strerror(errno));
552 return;
553 }
554
555 while (fgets(fileline, sizeof(fileline)-1, secretfile) != NULL) {
556 subfile_lineno++;
557 /* remove newline from the line */
558 nl = strchr(fileline, '\n');
559 if (nl)
560 *nl = '\0';
561 if (fileline[0] == '#') continue;
562 if (fileline[0] == '\0') continue;
563
564 esp_print_decode_onesecret(ndo, fileline, filename, subfile_lineno);
565 }
566 fclose(secretfile);
567
568 return;
569 }
570
571 if (spikey && ascii_strcasecmp(spikey, "ikev2") == 0) {
572 esp_print_decode_ikeline(ndo, line, file, lineno);
573 return;
574 }
575
576 if (spikey) {
577
578 char *spistr, *foo;
579 uint32_t spino;
580
581 spistr = strsep(&spikey, "@");
582
583 spino = strtoul(spistr, &foo, 0);
584 if (spistr == foo || !spikey) {
585 (*ndo->ndo_warning)(ndo, "print_esp: failed to decode spi# %s\n", foo);
586 return;
587 }
588
589 sa1.spi = spino;
590
591 if (strtoaddr6(spikey, &sa1.daddr.in6) == 1) {
592 sa1.daddr_version = 6;
593 } else if (strtoaddr(spikey, &sa1.daddr.in4) == 1) {
594 sa1.daddr_version = 4;
595 } else {
596 (*ndo->ndo_warning)(ndo, "print_esp: can not decode IP# %s\n", spikey);
597 return;
598 }
599 }
600
601 if (decode) {
602 /* skip any blank spaces */
603 while (isspace((unsigned char)*decode))
604 decode++;
605
606 if(!espprint_decode_encalgo(ndo, decode, &sa1)) {
607 return;
608 }
609 }
610
611 esp_print_addsa(ndo, &sa1, sa_def);
612 }
613
614 USES_APPLE_DEPRECATED_API
615 static void esp_init(netdissect_options *ndo _U_)
616 {
617 /*
618 * 0.9.6 doesn't appear to define OPENSSL_API_COMPAT, so
619 * we check whether it's undefined or it's less than the
620 * value for 1.1.0.
621 */
622 #if !defined(OPENSSL_API_COMPAT) || OPENSSL_API_COMPAT < 0x10100000L
623 OpenSSL_add_all_algorithms();
624 #endif
625 EVP_add_cipher_alias(SN_des_ede3_cbc, "3des");
626 }
627 USES_APPLE_RST
628
629 void esp_print_decodesecret(netdissect_options *ndo)
630 {
631 char *line;
632 char *p;
633 static int initialized = 0;
634
635 if (!initialized) {
636 esp_init(ndo);
637 initialized = 1;
638 }
639
640 p = ndo->ndo_espsecret;
641
642 while (p && p[0] != '\0') {
643 /* pick out the first line or first thing until a comma */
644 if ((line = strsep(&p, "\n,")) == NULL) {
645 line = p;
646 p = NULL;
647 }
648
649 esp_print_decode_onesecret(ndo, line, "cmdline", 0);
650 }
651
652 ndo->ndo_espsecret = NULL;
653 }
654
655 #endif
656
657 #ifdef HAVE_LIBCRYPTO
658 USES_APPLE_DEPRECATED_API
659 #endif
660 int
661 esp_print(netdissect_options *ndo,
662 const u_char *bp, const int length, const u_char *bp2
663 #ifndef HAVE_LIBCRYPTO
664 _U_
665 #endif
666 ,
667 u_int *nhdr
668 #ifndef HAVE_LIBCRYPTO
669 _U_
670 #endif
671 ,
672 u_int *padlen
673 #ifndef HAVE_LIBCRYPTO
674 _U_
675 #endif
676 )
677 {
678 const struct newesp *esp;
679 const u_char *ep;
680 #ifdef HAVE_LIBCRYPTO
681 const struct ip *ip;
682 struct sa_list *sa = NULL;
683 const struct ip6_hdr *ip6 = NULL;
684 int advance;
685 int len;
686 u_char *secret;
687 int ivlen = 0;
688 const u_char *ivoff;
689 const u_char *p;
690 EVP_CIPHER_CTX *ctx;
691 unsigned int block_size, buffer_size;
692 u_char *input_buffer, *output_buffer;
693 #endif
694
695 ndo->ndo_protocol = "esp";
696 esp = (const struct newesp *)bp;
697
698 #ifdef HAVE_LIBCRYPTO
699 secret = NULL;
700 advance = 0;
701 #endif
702
703 #if 0
704 /* keep secret out of a register */
705 p = (u_char *)&secret;
706 #endif
707
708 /* 'ep' points to the end of available data. */
709 ep = ndo->ndo_snapend;
710
711 if ((const u_char *)(esp + 1) >= ep) {
712 nd_print_trunc(ndo);
713 goto fail;
714 }
715 ND_PRINT("ESP(spi=0x%08x", EXTRACT_BE_U_4(esp->esp_spi));
716 ND_PRINT(",seq=0x%x)", EXTRACT_BE_U_4(esp->esp_seq));
717 ND_PRINT(", length %u", length);
718
719 #ifndef HAVE_LIBCRYPTO
720 goto fail;
721 #else
722 /* initiailize SAs */
723 if (ndo->ndo_sa_list_head == NULL) {
724 if (!ndo->ndo_espsecret)
725 goto fail;
726
727 esp_print_decodesecret(ndo);
728 }
729
730 if (ndo->ndo_sa_list_head == NULL)
731 goto fail;
732
733 ip = (const struct ip *)bp2;
734 switch (IP_V(ip)) {
735 case 6:
736 ip6 = (const struct ip6_hdr *)bp2;
737 /* we do not attempt to decrypt jumbograms */
738 if (!EXTRACT_BE_U_2(ip6->ip6_plen))
739 goto fail;
740 /* if we can't get nexthdr, we do not need to decrypt it */
741 len = sizeof(struct ip6_hdr) + EXTRACT_BE_U_2(ip6->ip6_plen);
742
743 /* see if we can find the SA, and if so, decode it */
744 for (sa = ndo->ndo_sa_list_head; sa != NULL; sa = sa->next) {
745 if (sa->spi == EXTRACT_BE_U_4(esp->esp_spi) &&
746 sa->daddr_version == 6 &&
747 UNALIGNED_MEMCMP(&sa->daddr.in6, &ip6->ip6_dst,
748 sizeof(nd_ipv6)) == 0) {
749 break;
750 }
751 }
752 break;
753 case 4:
754 /* nexthdr & padding are in the last fragment */
755 if (EXTRACT_BE_U_2(ip->ip_off) & IP_MF)
756 goto fail;
757 len = EXTRACT_BE_U_2(ip->ip_len);
758
759 /* see if we can find the SA, and if so, decode it */
760 for (sa = ndo->ndo_sa_list_head; sa != NULL; sa = sa->next) {
761 if (sa->spi == EXTRACT_BE_U_4(esp->esp_spi) &&
762 sa->daddr_version == 4 &&
763 UNALIGNED_MEMCMP(&sa->daddr.in4, &ip->ip_dst,
764 sizeof(nd_ipv4)) == 0) {
765 break;
766 }
767 }
768 break;
769 default:
770 goto fail;
771 }
772
773 /* if we didn't find the specific one, then look for
774 * an unspecified one.
775 */
776 if (sa == NULL)
777 sa = ndo->ndo_sa_default;
778
779 /* if not found fail */
780 if (sa == NULL)
781 goto fail;
782
783 /* if we can't get nexthdr, we do not need to decrypt it */
784 if (ep - bp2 < len)
785 goto fail;
786 if (ep - bp2 > len) {
787 /* FCS included at end of frame (NetBSD 1.6 or later) */
788 ep = bp2 + len;
789 }
790
791 /* pointer to the IV, if there is one */
792 ivoff = (const u_char *)(esp + 1) + 0;
793 /* length of the IV, if there is one; 0, if there isn't */
794 ivlen = sa->ivlen;
795 secret = sa->secret;
796 ep = ep - sa->authlen;
797
798 if (sa->evp) {
799 ctx = EVP_CIPHER_CTX_new();
800 if (ctx != NULL) {
801 if (set_cipher_parameters(ctx, sa->evp, secret, NULL, 0) < 0)
802 (*ndo->ndo_warning)(ndo, "espkey init failed");
803
804 p = ivoff;
805 set_cipher_parameters(ctx, NULL, NULL, p, 0);
806 len = ep - (p + ivlen);
807
808 /*
809 * Allocate buffers for the encrypted and decrypted
810 * data. Both buffers' sizes must be a multiple of
811 * the cipher block size, and the output buffer must
812 * be separate from the input buffer.
813 */
814 block_size = (unsigned int)EVP_CIPHER_CTX_block_size(ctx);
815 buffer_size = len + (block_size - len % block_size);
816
817 /*
818 * Attempt to allocate the input buffer.
819 */
820 input_buffer = (u_char *)malloc(buffer_size);
821 if (input_buffer == NULL) {
822 EVP_CIPHER_CTX_free(ctx);
823 (*ndo->ndo_error)(ndo, S_ERR_ND_MEM_ALLOC,
824 "esp_print: can't allocate memory for encrypted data buffer");
825 }
826 /*
827 * Copy the input data to the encrypted data buffer,
828 * and pad it with zeroes.
829 */
830 memcpy(input_buffer, p + ivlen, len);
831 memset(input_buffer + len, 0, buffer_size - len);
832
833 /*
834 * Attempt to allocate the output buffer.
835 */
836 output_buffer = (u_char *)malloc(buffer_size);
837 if (output_buffer == NULL) {
838 free(input_buffer);
839 EVP_CIPHER_CTX_free(ctx);
840 (*ndo->ndo_error)(ndo, S_ERR_ND_MEM_ALLOC,
841 "esp_print: can't allocate memory for decryption buffer");
842 }
843
844 EVP_Cipher(ctx, output_buffer, input_buffer, len);
845 free(input_buffer);
846 EVP_CIPHER_CTX_free(ctx);
847 /*
848 * XXX - of course this is wrong, because buf is a
849 * const buffer, but changing this would require a
850 * more complicated fix.
851 */
852 memcpy(p + ivlen, output_buffer, len);
853 free(output_buffer);
854 advance = ivoff - (const u_char *)esp + ivlen;
855 } else
856 advance = sizeof(struct newesp);
857 } else
858 advance = sizeof(struct newesp);
859
860 /* sanity check for pad length */
861 if (ep - bp < EXTRACT_U_1(ep - 2))
862 goto fail;
863
864 if (padlen)
865 *padlen = EXTRACT_U_1(ep - 2) + 2;
866
867 if (nhdr)
868 *nhdr = EXTRACT_U_1(ep - 1);
869
870 ND_PRINT(": ");
871 return advance;
872 #endif
873
874 fail:
875 return -1;
876 }
877 #ifdef HAVE_LIBCRYPTO
878 USES_APPLE_RST
879 #endif