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1 /*
2 * Copyright (c) 1990, 1991, 1993, 1994, 1995, 1996, 1997
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: (1) source code distributions
7 * retain the above copyright notice and this paragraph in its entirety, (2)
8 * distributions including binary code include the above copyright notice and
9 * this paragraph in its entirety in the documentation or other materials
10 * provided with the distribution, and (3) all advertising materials mentioning
11 * features or use of this software display the following acknowledgement:
12 * ``This product includes software developed by the University of California,
13 * Lawrence Berkeley Laboratory and its contributors.'' Neither the name of
14 * the University nor the names of its contributors may be used to endorse
15 * or promote products derived from this software without specific prior
16 * written permission.
17 * THIS SOFTWARE IS PROVIDED ``AS IS'' AND WITHOUT ANY EXPRESS OR IMPLIED
18 * WARRANTIES, INCLUDING, WITHOUT LIMITATION, THE IMPLIED WARRANTIES OF
19 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE.
20 */
21
22 /*
23 * txtproto_print() derived from original code by Hannes Gredler
24 * (hannes@gredler.at):
25 *
26 * Redistribution and use in source and binary forms, with or without
27 * modification, are permitted provided that: (1) source code
28 * distributions retain the above copyright notice and this paragraph
29 * in its entirety, and (2) distributions including binary code include
30 * the above copyright notice and this paragraph in its entirety in
31 * the documentation or other materials provided with the distribution.
32 * THIS SOFTWARE IS PROVIDED ``AS IS'' AND
33 * WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, WITHOUT
34 * LIMITATION, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS
35 * FOR A PARTICULAR PURPOSE.
36 */
37
38 #ifdef HAVE_CONFIG_H
39 #include "config.h"
40 #endif
41
42 #include <netdissect-stdinc.h>
43
44 #include <sys/stat.h>
45
46 #ifdef HAVE_FCNTL_H
47 #include <fcntl.h>
48 #endif
49 #include <ctype.h>
50 #include <stdio.h>
51 #include <stdarg.h>
52 #include <stdlib.h>
53 #include <string.h>
54
55 #include "netdissect.h"
56 #include "ascii_strcasecmp.h"
57 #include "timeval-operations.h"
58
59 int32_t thiszone; /* seconds offset from gmt to local time */
60 /* invalid string to print '(invalid)' for malformed or corrupted packets */
61 const char istr[] = " (invalid)";
62
63 /*
64 * timestamp display buffer size, the biggest size of both formats is needed
65 * sizeof("0000000000.000000000") > sizeof("00:00:00.000000000")
66 */
67 #define TS_BUF_SIZE sizeof("0000000000.000000000")
68
69 #define TOKBUFSIZE 128
70
71 /*
72 * Print out a character, filtering out the non-printable ones
73 */
74 void
75 fn_print_char(netdissect_options *ndo, u_char c)
76 {
77 if (!ND_ISASCII(c)) {
78 c = ND_TOASCII(c);
79 ND_PRINT((ndo, "M-"));
80 }
81 if (!ND_ISPRINT(c)) {
82 c ^= 0x40; /* DEL to ?, others to alpha */
83 ND_PRINT((ndo, "^"));
84 }
85 ND_PRINT((ndo, "%c", c));
86 }
87
88 /*
89 * Print out a null-terminated filename (or other ASCII string).
90 * If ep is NULL, assume no truncation check is needed.
91 * Return true if truncated.
92 * Stop at ep (if given) or before the null char, whichever is first.
93 */
94 int
95 fn_print(netdissect_options *ndo,
96 register const u_char *s, register const u_char *ep)
97 {
98 register int ret;
99 register u_char c;
100
101 ret = 1; /* assume truncated */
102 while (ep == NULL || s < ep) {
103 c = *s++;
104 if (c == '\0') {
105 ret = 0;
106 break;
107 }
108 if (!ND_ISASCII(c)) {
109 c = ND_TOASCII(c);
110 ND_PRINT((ndo, "M-"));
111 }
112 if (!ND_ISPRINT(c)) {
113 c ^= 0x40; /* DEL to ?, others to alpha */
114 ND_PRINT((ndo, "^"));
115 }
116 ND_PRINT((ndo, "%c", c));
117 }
118 return(ret);
119 }
120
121 /*
122 * Print out a null-terminated filename (or other ASCII string) from
123 * a fixed-length buffer.
124 * If ep is NULL, assume no truncation check is needed.
125 * Return the number of bytes of string processed, including the
126 * terminating null, if not truncated. Return 0 if truncated.
127 */
128 u_int
129 fn_printztn(netdissect_options *ndo,
130 register const u_char *s, register u_int n, register const u_char *ep)
131 {
132 register u_int bytes;
133 register u_char c;
134
135 bytes = 0;
136 for (;;) {
137 if (n == 0 || (ep != NULL && s >= ep)) {
138 /*
139 * Truncated. This includes "no null before we
140 * got to the end of the fixed-length buffer".
141 *
142 * XXX - BOOTP says "null-terminated", which
143 * means the maximum length of the string, in
144 * bytes, is 1 less than the size of the buffer,
145 * as there must always be a terminating null.
146 */
147 bytes = 0;
148 break;
149 }
150
151 c = *s++;
152 bytes++;
153 n--;
154 if (c == '\0') {
155 /* End of string */
156 break;
157 }
158 if (!ND_ISASCII(c)) {
159 c = ND_TOASCII(c);
160 ND_PRINT((ndo, "M-"));
161 }
162 if (!ND_ISPRINT(c)) {
163 c ^= 0x40; /* DEL to ?, others to alpha */
164 ND_PRINT((ndo, "^"));
165 }
166 ND_PRINT((ndo, "%c", c));
167 }
168 return(bytes);
169 }
170
171 /*
172 * Print out a counted filename (or other ASCII string).
173 * If ep is NULL, assume no truncation check is needed.
174 * Return true if truncated.
175 * Stop at ep (if given) or after n bytes, whichever is first.
176 */
177 int
178 fn_printn(netdissect_options *ndo,
179 register const u_char *s, register u_int n, register const u_char *ep)
180 {
181 register u_char c;
182
183 while (n > 0 && (ep == NULL || s < ep)) {
184 n--;
185 c = *s++;
186 if (!ND_ISASCII(c)) {
187 c = ND_TOASCII(c);
188 ND_PRINT((ndo, "M-"));
189 }
190 if (!ND_ISPRINT(c)) {
191 c ^= 0x40; /* DEL to ?, others to alpha */
192 ND_PRINT((ndo, "^"));
193 }
194 ND_PRINT((ndo, "%c", c));
195 }
196 return (n == 0) ? 0 : 1;
197 }
198
199 /*
200 * Print out a null-padded filename (or other ASCII string).
201 * If ep is NULL, assume no truncation check is needed.
202 * Return true if truncated.
203 * Stop at ep (if given) or after n bytes or before the null char,
204 * whichever is first.
205 */
206 int
207 fn_printzp(netdissect_options *ndo,
208 register const u_char *s, register u_int n,
209 register const u_char *ep)
210 {
211 register int ret;
212 register u_char c;
213
214 ret = 1; /* assume truncated */
215 while (n > 0 && (ep == NULL || s < ep)) {
216 n--;
217 c = *s++;
218 if (c == '\0') {
219 ret = 0;
220 break;
221 }
222 if (!ND_ISASCII(c)) {
223 c = ND_TOASCII(c);
224 ND_PRINT((ndo, "M-"));
225 }
226 if (!ND_ISPRINT(c)) {
227 c ^= 0x40; /* DEL to ?, others to alpha */
228 ND_PRINT((ndo, "^"));
229 }
230 ND_PRINT((ndo, "%c", c));
231 }
232 return (n == 0) ? 0 : ret;
233 }
234
235 /*
236 * Format the timestamp
237 */
238 static char *
239 ts_format(netdissect_options *ndo
240 #ifndef HAVE_PCAP_SET_TSTAMP_PRECISION
241 _U_
242 #endif
243 , int sec, int usec, char *buf)
244 {
245 const char *format;
246
247 #ifdef HAVE_PCAP_SET_TSTAMP_PRECISION
248 switch (ndo->ndo_tstamp_precision) {
249
250 case PCAP_TSTAMP_PRECISION_MICRO:
251 format = "%02d:%02d:%02d.%06u";
252 break;
253
254 case PCAP_TSTAMP_PRECISION_NANO:
255 format = "%02d:%02d:%02d.%09u";
256 break;
257
258 default:
259 format = "%02d:%02d:%02d.{unknown}";
260 break;
261 }
262 #else
263 format = "%02d:%02d:%02d.%06u";
264 #endif
265
266 snprintf(buf, TS_BUF_SIZE, format,
267 sec / 3600, (sec % 3600) / 60, sec % 60, usec);
268
269 return buf;
270 }
271
272 /*
273 * Format the timestamp - Unix timeval style
274 */
275 static char *
276 ts_unix_format(netdissect_options *ndo
277 #ifndef HAVE_PCAP_SET_TSTAMP_PRECISION
278 _U_
279 #endif
280 , int sec, int usec, char *buf)
281 {
282 const char *format;
283
284 #ifdef HAVE_PCAP_SET_TSTAMP_PRECISION
285 switch (ndo->ndo_tstamp_precision) {
286
287 case PCAP_TSTAMP_PRECISION_MICRO:
288 format = "%u.%06u";
289 break;
290
291 case PCAP_TSTAMP_PRECISION_NANO:
292 format = "%u.%09u";
293 break;
294
295 default:
296 format = "%u.{unknown}";
297 break;
298 }
299 #else
300 format = "%u.%06u";
301 #endif
302
303 snprintf(buf, TS_BUF_SIZE, format,
304 (unsigned)sec, (unsigned)usec);
305
306 return buf;
307 }
308
309 /*
310 * Print the timestamp
311 */
312 void
313 ts_print(netdissect_options *ndo,
314 register const struct timeval *tvp)
315 {
316 register int s;
317 struct tm *tm;
318 time_t Time;
319 char buf[TS_BUF_SIZE];
320 static struct timeval tv_ref;
321 struct timeval tv_result;
322 int negative_offset;
323 int nano_prec;
324
325 switch (ndo->ndo_tflag) {
326
327 case 0: /* Default */
328 s = (tvp->tv_sec + thiszone) % 86400;
329 ND_PRINT((ndo, "%s ", ts_format(ndo, s, tvp->tv_usec, buf)));
330 break;
331
332 case 1: /* No time stamp */
333 break;
334
335 case 2: /* Unix timeval style */
336 ND_PRINT((ndo, "%s ", ts_unix_format(ndo,
337 tvp->tv_sec, tvp->tv_usec, buf)));
338 break;
339
340 case 3: /* Microseconds/nanoseconds since previous packet */
341 case 5: /* Microseconds/nanoseconds since first packet */
342 #ifdef HAVE_PCAP_SET_TSTAMP_PRECISION
343 switch (ndo->ndo_tstamp_precision) {
344 case PCAP_TSTAMP_PRECISION_MICRO:
345 nano_prec = 0;
346 break;
347 case PCAP_TSTAMP_PRECISION_NANO:
348 nano_prec = 1;
349 break;
350 default:
351 nano_prec = 0;
352 break;
353 }
354 #else
355 nano_prec = 0;
356 #endif
357 if (!(netdissect_timevalisset(&tv_ref)))
358 tv_ref = *tvp; /* set timestamp for first packet */
359
360 negative_offset = netdissect_timevalcmp(tvp, &tv_ref, <);
361 if (negative_offset)
362 netdissect_timevalsub(&tv_ref, tvp, &tv_result, nano_prec);
363 else
364 netdissect_timevalsub(tvp, &tv_ref, &tv_result, nano_prec);
365
366 ND_PRINT((ndo, (negative_offset ? "-" : " ")));
367
368 ND_PRINT((ndo, "%s ", ts_format(ndo,
369 tv_result.tv_sec, tv_result.tv_usec, buf)));
370
371 if (ndo->ndo_tflag == 3)
372 tv_ref = *tvp; /* set timestamp for previous packet */
373 break;
374
375 case 4: /* Default + Date */
376 s = (tvp->tv_sec + thiszone) % 86400;
377 Time = (tvp->tv_sec + thiszone) - s;
378 tm = gmtime (&Time);
379 if (!tm)
380 ND_PRINT((ndo, "Date fail "));
381 else
382 ND_PRINT((ndo, "%04d-%02d-%02d %s ",
383 tm->tm_year+1900, tm->tm_mon+1, tm->tm_mday,
384 ts_format(ndo, s, tvp->tv_usec, buf)));
385 break;
386 }
387 }
388
389 /*
390 * Print an unsigned relative number of seconds (e.g. hold time, prune timer)
391 * in the form 5m1s. This does no truncation, so 32230861 seconds
392 * is represented as 1y1w1d1h1m1s.
393 */
394 void
395 unsigned_relts_print(netdissect_options *ndo,
396 uint32_t secs)
397 {
398 static const char *lengths[] = {"y", "w", "d", "h", "m", "s"};
399 static const u_int seconds[] = {31536000, 604800, 86400, 3600, 60, 1};
400 const char **l = lengths;
401 const u_int *s = seconds;
402
403 if (secs == 0) {
404 ND_PRINT((ndo, "0s"));
405 return;
406 }
407 while (secs > 0) {
408 if (secs >= *s) {
409 ND_PRINT((ndo, "%d%s", secs / *s, *l));
410 secs -= (secs / *s) * *s;
411 }
412 s++;
413 l++;
414 }
415 }
416
417 /*
418 * Print a signed relative number of seconds (e.g. hold time, prune timer)
419 * in the form 5m1s. This does no truncation, so 32230861 seconds
420 * is represented as 1y1w1d1h1m1s.
421 */
422 void
423 signed_relts_print(netdissect_options *ndo,
424 int32_t secs)
425 {
426 if (secs < 0) {
427 ND_PRINT((ndo, "-"));
428 if (secs == INT32_MIN) {
429 /*
430 * -2^31; you can't fit its absolute value into
431 * a 32-bit signed integer.
432 *
433 * Just directly pass said absolute value to
434 * unsigned_relts_print() directly.
435 *
436 * (XXX - does ISO C guarantee that -(-2^n),
437 * when calculated and cast to an n-bit unsigned
438 * integer type, will have the value 2^n?)
439 */
440 unsigned_relts_print(ndo, 2147483648U);
441 } else {
442 /*
443 * We now know -secs will fit into an int32_t;
444 * negate it and pass that to unsigned_relts_print().
445 */
446 unsigned_relts_print(ndo, -secs);
447 }
448 return;
449 }
450 unsigned_relts_print(ndo, secs);
451 }
452
453 /*
454 * this is a generic routine for printing unknown data;
455 * we pass on the linefeed plus indentation string to
456 * get a proper output - returns 0 on error
457 */
458
459 int
460 print_unknown_data(netdissect_options *ndo, const u_char *cp,const char *ident,int len)
461 {
462 if (len < 0) {
463 ND_PRINT((ndo,"%sDissector error: print_unknown_data called with negative length",
464 ident));
465 return(0);
466 }
467 if (ndo->ndo_snapend - cp < len)
468 len = ndo->ndo_snapend - cp;
469 if (len < 0) {
470 ND_PRINT((ndo,"%sDissector error: print_unknown_data called with pointer past end of packet",
471 ident));
472 return(0);
473 }
474 hex_print(ndo, ident,cp,len);
475 return(1); /* everything is ok */
476 }
477
478 /*
479 * Convert a token value to a string; use "fmt" if not found.
480 */
481 const char *
482 tok2strbuf(register const struct tok *lp, register const char *fmt,
483 register u_int v, char *buf, size_t bufsize)
484 {
485 if (lp != NULL) {
486 while (lp->s != NULL) {
487 if (lp->v == v)
488 return (lp->s);
489 ++lp;
490 }
491 }
492 if (fmt == NULL)
493 fmt = "#%d";
494
495 (void)snprintf(buf, bufsize, fmt, v);
496 return (const char *)buf;
497 }
498
499 /*
500 * Convert a token value to a string; use "fmt" if not found.
501 * Uses tok2strbuf() on one of four local static buffers of size TOKBUFSIZE
502 * in round-robin fashion.
503 */
504 const char *
505 tok2str(register const struct tok *lp, register const char *fmt,
506 register u_int v)
507 {
508 static char buf[4][TOKBUFSIZE];
509 static int idx = 0;
510 char *ret;
511
512 ret = buf[idx];
513 idx = (idx+1) & 3;
514 return tok2strbuf(lp, fmt, v, ret, sizeof(buf[0]));
515 }
516
517 /*
518 * Convert a bit token value to a string; use "fmt" if not found.
519 * this is useful for parsing bitfields, the output strings are seperated
520 * if the s field is positive.
521 */
522 static char *
523 bittok2str_internal(register const struct tok *lp, register const char *fmt,
524 register u_int v, const char *sep)
525 {
526 static char buf[1024+1]; /* our string buffer */
527 char *bufp = buf;
528 size_t space_left = sizeof(buf), string_size;
529 register u_int rotbit; /* this is the bit we rotate through all bitpositions */
530 register u_int tokval;
531 const char * sepstr = "";
532
533 while (lp != NULL && lp->s != NULL) {
534 tokval=lp->v; /* load our first value */
535 rotbit=1;
536 while (rotbit != 0) {
537 /*
538 * lets AND the rotating bit with our token value
539 * and see if we have got a match
540 */
541 if (tokval == (v&rotbit)) {
542 /* ok we have found something */
543 if (space_left <= 1)
544 return (buf); /* only enough room left for NUL, if that */
545 string_size = strlcpy(bufp, sepstr, space_left);
546 if (string_size >= space_left)
547 return (buf); /* we ran out of room */
548 bufp += string_size;
549 space_left -= string_size;
550 if (space_left <= 1)
551 return (buf); /* only enough room left for NUL, if that */
552 string_size = strlcpy(bufp, lp->s, space_left);
553 if (string_size >= space_left)
554 return (buf); /* we ran out of room */
555 bufp += string_size;
556 space_left -= string_size;
557 sepstr = sep;
558 break;
559 }
560 rotbit=rotbit<<1; /* no match - lets shift and try again */
561 }
562 lp++;
563 }
564
565 if (bufp == buf)
566 /* bummer - lets print the "unknown" message as advised in the fmt string if we got one */
567 (void)snprintf(buf, sizeof(buf), fmt == NULL ? "#%08x" : fmt, v);
568 return (buf);
569 }
570
571 /*
572 * Convert a bit token value to a string; use "fmt" if not found.
573 * this is useful for parsing bitfields, the output strings are not seperated.
574 */
575 char *
576 bittok2str_nosep(register const struct tok *lp, register const char *fmt,
577 register u_int v)
578 {
579 return (bittok2str_internal(lp, fmt, v, ""));
580 }
581
582 /*
583 * Convert a bit token value to a string; use "fmt" if not found.
584 * this is useful for parsing bitfields, the output strings are comma seperated.
585 */
586 char *
587 bittok2str(register const struct tok *lp, register const char *fmt,
588 register u_int v)
589 {
590 return (bittok2str_internal(lp, fmt, v, ", "));
591 }
592
593 /*
594 * Convert a value to a string using an array; the macro
595 * tok2strary() in <netdissect.h> is the public interface to
596 * this function and ensures that the second argument is
597 * correct for bounds-checking.
598 */
599 const char *
600 tok2strary_internal(register const char **lp, int n, register const char *fmt,
601 register int v)
602 {
603 static char buf[TOKBUFSIZE];
604
605 if (v >= 0 && v < n && lp[v] != NULL)
606 return lp[v];
607 if (fmt == NULL)
608 fmt = "#%d";
609 (void)snprintf(buf, sizeof(buf), fmt, v);
610 return (buf);
611 }
612
613 /*
614 * Convert a 32-bit netmask to prefixlen if possible
615 * the function returns the prefix-len; if plen == -1
616 * then conversion was not possible;
617 */
618
619 int
620 mask2plen(uint32_t mask)
621 {
622 uint32_t bitmasks[33] = {
623 0x00000000,
624 0x80000000, 0xc0000000, 0xe0000000, 0xf0000000,
625 0xf8000000, 0xfc000000, 0xfe000000, 0xff000000,
626 0xff800000, 0xffc00000, 0xffe00000, 0xfff00000,
627 0xfff80000, 0xfffc0000, 0xfffe0000, 0xffff0000,
628 0xffff8000, 0xffffc000, 0xffffe000, 0xfffff000,
629 0xfffff800, 0xfffffc00, 0xfffffe00, 0xffffff00,
630 0xffffff80, 0xffffffc0, 0xffffffe0, 0xfffffff0,
631 0xfffffff8, 0xfffffffc, 0xfffffffe, 0xffffffff
632 };
633 int prefix_len = 32;
634
635 /* let's see if we can transform the mask into a prefixlen */
636 while (prefix_len >= 0) {
637 if (bitmasks[prefix_len] == mask)
638 break;
639 prefix_len--;
640 }
641 return (prefix_len);
642 }
643
644 int
645 mask62plen(const u_char *mask)
646 {
647 u_char bitmasks[9] = {
648 0x00,
649 0x80, 0xc0, 0xe0, 0xf0,
650 0xf8, 0xfc, 0xfe, 0xff
651 };
652 int byte;
653 int cidr_len = 0;
654
655 for (byte = 0; byte < 16; byte++) {
656 u_int bits;
657
658 for (bits = 0; bits < (sizeof (bitmasks) / sizeof (bitmasks[0])); bits++) {
659 if (mask[byte] == bitmasks[bits]) {
660 cidr_len += bits;
661 break;
662 }
663 }
664
665 if (mask[byte] != 0xff)
666 break;
667 }
668 return (cidr_len);
669 }
670
671 /*
672 * Routine to print out information for text-based protocols such as FTP,
673 * HTTP, SMTP, RTSP, SIP, ....
674 */
675 #define MAX_TOKEN 128
676
677 /*
678 * Fetch a token from a packet, starting at the specified index,
679 * and return the length of the token.
680 *
681 * Returns 0 on error; yes, this is indistinguishable from an empty
682 * token, but an "empty token" isn't a valid token - it just means
683 * either a space character at the beginning of the line (this
684 * includes a blank line) or no more tokens remaining on the line.
685 */
686 static int
687 fetch_token(netdissect_options *ndo, const u_char *pptr, u_int idx, u_int len,
688 u_char *tbuf, size_t tbuflen)
689 {
690 size_t toklen = 0;
691
692 for (; idx < len; idx++) {
693 if (!ND_TTEST(*(pptr + idx))) {
694 /* ran past end of captured data */
695 return (0);
696 }
697 if (!isascii(*(pptr + idx))) {
698 /* not an ASCII character */
699 return (0);
700 }
701 if (isspace(*(pptr + idx))) {
702 /* end of token */
703 break;
704 }
705 if (!isprint(*(pptr + idx))) {
706 /* not part of a command token or response code */
707 return (0);
708 }
709 if (toklen + 2 > tbuflen) {
710 /* no room for this character and terminating '\0' */
711 return (0);
712 }
713 tbuf[toklen] = *(pptr + idx);
714 toklen++;
715 }
716 if (toklen == 0) {
717 /* no token */
718 return (0);
719 }
720 tbuf[toklen] = '\0';
721
722 /*
723 * Skip past any white space after the token, until we see
724 * an end-of-line (CR or LF).
725 */
726 for (; idx < len; idx++) {
727 if (!ND_TTEST(*(pptr + idx))) {
728 /* ran past end of captured data */
729 break;
730 }
731 if (*(pptr + idx) == '\r' || *(pptr + idx) == '\n') {
732 /* end of line */
733 break;
734 }
735 if (!isascii(*(pptr + idx)) || !isprint(*(pptr + idx))) {
736 /* not a printable ASCII character */
737 break;
738 }
739 if (!isspace(*(pptr + idx))) {
740 /* beginning of next token */
741 break;
742 }
743 }
744 return (idx);
745 }
746
747 /*
748 * Scan a buffer looking for a line ending - LF or CR-LF.
749 * Return the index of the character after the line ending or 0 if
750 * we encounter a non-ASCII or non-printable character or don't find
751 * the line ending.
752 */
753 static u_int
754 print_txt_line(netdissect_options *ndo, const char *protoname,
755 const char *prefix, const u_char *pptr, u_int idx, u_int len)
756 {
757 u_int startidx;
758 u_int linelen;
759
760 startidx = idx;
761 while (idx < len) {
762 ND_TCHECK(*(pptr+idx));
763 if (*(pptr+idx) == '\n') {
764 /*
765 * LF without CR; end of line.
766 * Skip the LF and print the line, with the
767 * exception of the LF.
768 */
769 linelen = idx - startidx;
770 idx++;
771 goto print;
772 } else if (*(pptr+idx) == '\r') {
773 /* CR - any LF? */
774 if ((idx+1) >= len) {
775 /* not in this packet */
776 return (0);
777 }
778 ND_TCHECK(*(pptr+idx+1));
779 if (*(pptr+idx+1) == '\n') {
780 /*
781 * CR-LF; end of line.
782 * Skip the CR-LF and print the line, with
783 * the exception of the CR-LF.
784 */
785 linelen = idx - startidx;
786 idx += 2;
787 goto print;
788 }
789
790 /*
791 * CR followed by something else; treat this
792 * as if it were binary data, and don't print
793 * it.
794 */
795 return (0);
796 } else if (!isascii(*(pptr+idx)) ||
797 (!isprint(*(pptr+idx)) && *(pptr+idx) != '\t')) {
798 /*
799 * Not a printable ASCII character and not a tab;
800 * treat this as if it were binary data, and
801 * don't print it.
802 */
803 return (0);
804 }
805 idx++;
806 }
807
808 /*
809 * All printable ASCII, but no line ending after that point
810 * in the buffer; treat this as if it were truncated.
811 */
812 trunc:
813 linelen = idx - startidx;
814 ND_PRINT((ndo, "%s%.*s[!%s]", prefix, (int)linelen, pptr + startidx,
815 protoname));
816 return (0);
817
818 print:
819 ND_PRINT((ndo, "%s%.*s", prefix, (int)linelen, pptr + startidx));
820 return (idx);
821 }
822
823 void
824 txtproto_print(netdissect_options *ndo, const u_char *pptr, u_int len,
825 const char *protoname, const char **cmds, u_int flags)
826 {
827 u_int idx, eol;
828 u_char token[MAX_TOKEN+1];
829 const char *cmd;
830 int print_this = 0;
831 const char *pnp;
832
833 if (cmds != NULL) {
834 /*
835 * This protocol has more than just request and
836 * response lines; see whether this looks like a
837 * request or response and, if so, print it and,
838 * in verbose mode, print everything after it.
839 *
840 * This is for HTTP-like protocols, where we
841 * want to print requests and responses, but
842 * don't want to print continuations of request
843 * or response bodies in packets that don't
844 * contain the request or response line.
845 */
846 idx = fetch_token(ndo, pptr, 0, len, token, sizeof(token));
847 if (idx != 0) {
848 /* Is this a valid request name? */
849 while ((cmd = *cmds++) != NULL) {
850 if (ascii_strcasecmp((const char *)token, cmd) == 0) {
851 /* Yes. */
852 print_this = 1;
853 break;
854 }
855 }
856
857 /*
858 * No - is this a valid response code (3 digits)?
859 *
860 * Is this token the response code, or is the next
861 * token the response code?
862 */
863 if (flags & RESP_CODE_SECOND_TOKEN) {
864 /*
865 * Next token - get it.
866 */
867 idx = fetch_token(ndo, pptr, idx, len, token,
868 sizeof(token));
869 }
870 if (idx != 0) {
871 if (isdigit(token[0]) && isdigit(token[1]) &&
872 isdigit(token[2]) && token[3] == '\0') {
873 /* Yes. */
874 print_this = 1;
875 }
876 }
877 }
878 } else {
879 /*
880 * Either:
881 *
882 * 1) This protocol has only request and response lines
883 * (e.g., FTP, where all the data goes over a different
884 * connection); assume the payload is a request or
885 * response.
886 *
887 * or
888 *
889 * 2) This protocol is just text, so that we should
890 * always, at minimum, print the first line and,
891 * in verbose mode, print all lines.
892 */
893 print_this = 1;
894 }
895
896 /* Capitalize the protocol name */
897 for (pnp = protoname; *pnp != '\0'; pnp++)
898 ND_PRINT((ndo, "%c", toupper((u_char)*pnp)));
899
900 if (print_this) {
901 /*
902 * In non-verbose mode, just print the protocol, followed
903 * by the first line.
904 *
905 * In verbose mode, print lines as text until we run out
906 * of characters or see something that's not a
907 * printable-ASCII line.
908 */
909 if (ndo->ndo_vflag) {
910 /*
911 * We're going to print all the text lines in the
912 * request or response; just print the length
913 * on the first line of the output.
914 */
915 ND_PRINT((ndo, ", length: %u", len));
916 for (idx = 0;
917 idx < len && (eol = print_txt_line(ndo, protoname, "\n\t", pptr, idx, len)) != 0;
918 idx = eol)
919 ;
920 } else {
921 /*
922 * Just print the first text line.
923 */
924 print_txt_line(ndo, protoname, ": ", pptr, 0, len);
925 }
926 }
927 }
928
929 void
930 safeputs(netdissect_options *ndo,
931 const u_char *s, const u_int maxlen)
932 {
933 u_int idx = 0;
934
935 while (idx < maxlen && *s) {
936 safeputchar(ndo, *s);
937 idx++;
938 s++;
939 }
940 }
941
942 void
943 safeputchar(netdissect_options *ndo,
944 const u_char c)
945 {
946 ND_PRINT((ndo, (c < 0x80 && ND_ISPRINT(c)) ? "%c" : "\\0x%02x", c));
947 }
948
949 #if (defined(__i386__) || defined(_M_IX86) || defined(__X86__) || defined(__x86_64__) || defined(_M_X64)) || \
950 (defined(__arm__) || defined(_M_ARM) || defined(__aarch64__)) || \
951 (defined(__m68k__) && (!defined(__mc68000__) && !defined(__mc68010__))) || \
952 (defined(__ppc__) || defined(__ppc64__) || defined(_M_PPC) || defined(_ARCH_PPC) || defined(_ARCH_PPC64)) || \
953 (defined(__s390__) || defined(__s390x__) || defined(__zarch__)) || \
954 defined(__vax__)
955 /*
956 * The procesor natively handles unaligned loads, so just use memcpy()
957 * and memcmp(), to enable those optimizations.
958 *
959 * XXX - are those all the x86 tests we need?
960 * XXX - do we need to worry about ARMv1 through ARMv5, which didn't
961 * support unaligned loads, and, if so, do we need to worry about all
962 * of them, or just some of them, e.g. ARMv5?
963 * XXX - are those the only 68k tests we need not to generated
964 * unaligned accesses if the target is the 68000 or 68010?
965 * XXX - are there any tests we don't need, because some definitions are for
966 * compilers that also predefine the GCC symbols?
967 * XXX - do we need to test for both 32-bit and 64-bit versions of those
968 * architectures in all cases?
969 */
970 #else
971 /*
972 * The processor doesn't natively handle unaligned loads,
973 * and the compiler might "helpfully" optimize memcpy()
974 * and memcmp(), when handed pointers that would normally
975 * be properly aligned, into sequences that assume proper
976 * alignment.
977 *
978 * Do copies and compares of possibly-unaligned data by
979 * calling routines that wrap memcpy() and memcmp(), to
980 * prevent that optimization.
981 */
982 void
983 unaligned_memcpy(void *p, const void *q, size_t l)
984 {
985 memcpy(p, q, l);
986 }
987
988 /* As with memcpy(), so with memcmp(). */
989 int
990 unaligned_memcmp(const void *p, const void *q, size_t l)
991 {
992 return (memcmp(p, q, l));
993 }
994 #endif
995