Added SIMD code for WPA/WPA2
[hashcat.git] / src / hashcat.c
1 /**
2 * Authors.....: Jens Steube <jens.steube@gmail.com>
3 * Gabriele Gristina <matrix@hashcat.net>
4 * magnum <john.magnum@hushmail.com>
5 *
6 * License.....: MIT
7 */
8
9 #ifdef OSX
10 #include <stdio.h>
11 #endif
12
13 #include <common.h>
14 #include <shared.h>
15 #include <rp_kernel_on_cpu.h>
16 #include <getopt.h>
17
18 const char *PROGNAME = "hashcat";
19 const uint VERSION_BIN = 300;
20 const uint RESTORE_MIN = 300;
21
22 double TARGET_MS_PROFILE[3] = { 8, 16, 96 };
23
24 #define INCR_RULES 10000
25 #define INCR_SALTS 100000
26 #define INCR_MASKS 1000
27 #define INCR_POT 1000
28
29 #define USAGE 0
30 #define VERSION 0
31 #define QUIET 0
32 #define MARKOV_THRESHOLD 0
33 #define MARKOV_DISABLE 0
34 #define MARKOV_CLASSIC 0
35 #define BENCHMARK 0
36 #define RESTORE 0
37 #define RESTORE_TIMER 60
38 #define RESTORE_DISABLE 0
39 #define STATUS 0
40 #define STATUS_TIMER 10
41 #define STATUS_AUTOMAT 0
42 #define LOOPBACK 0
43 #define WEAK_HASH_THRESHOLD 100
44 #define SHOW 0
45 #define LEFT 0
46 #define USERNAME 0
47 #define REMOVE 0
48 #define REMOVE_TIMER 60
49 #define SKIP 0
50 #define LIMIT 0
51 #define KEYSPACE 0
52 #define POTFILE_DISABLE 0
53 #define DEBUG_MODE 0
54 #define RP_GEN 0
55 #define RP_GEN_FUNC_MIN 1
56 #define RP_GEN_FUNC_MAX 4
57 #define RP_GEN_SEED 0
58 #define RULE_BUF_L ":"
59 #define RULE_BUF_R ":"
60 #define FORCE 0
61 #define RUNTIME 0
62 #define HEX_CHARSET 0
63 #define HEX_SALT 0
64 #define HEX_WORDLIST 0
65 #define OUTFILE_FORMAT 3
66 #define OUTFILE_AUTOHEX 1
67 #define OUTFILE_CHECK_TIMER 5
68 #define ATTACK_MODE 0
69 #define HASH_MODE 0
70 #define SEGMENT_SIZE 32
71 #define INCREMENT 0
72 #define INCREMENT_MIN 1
73 #define INCREMENT_MAX PW_MAX
74 #define SEPARATOR ':'
75 #define BITMAP_MIN 16
76 #define BITMAP_MAX 24
77 #define GPU_TEMP_DISABLE 0
78 #define GPU_TEMP_ABORT 90
79 #define GPU_TEMP_RETAIN 80
80 #define WORKLOAD_PROFILE 2
81 #define KERNEL_ACCEL 0
82 #define KERNEL_LOOPS 0
83 #define KERNEL_RULES 1024
84 #define KERNEL_COMBS 1024
85 #define KERNEL_BFS 1024
86 #define KERNEL_THREADS_MAX 256
87 #define KERNEL_THREADS_MAX_CPU 16
88 #define POWERTUNE_ENABLE 0
89 #define LOGFILE_DISABLE 0
90 #define SCRYPT_TMTO 0
91 #define OPENCL_VECTOR_WIDTH 0
92
93 #define WL_MODE_STDIN 1
94 #define WL_MODE_FILE 2
95 #define WL_MODE_MASK 3
96
97 #define HL_MODE_FILE 4
98 #define HL_MODE_ARG 5
99
100 #define HLFMTS_CNT 11
101 #define HLFMT_HASHCAT 0
102 #define HLFMT_PWDUMP 1
103 #define HLFMT_PASSWD 2
104 #define HLFMT_SHADOW 3
105 #define HLFMT_DCC 4
106 #define HLFMT_DCC2 5
107 #define HLFMT_NETNTLM1 7
108 #define HLFMT_NETNTLM2 8
109 #define HLFMT_NSLDAP 9
110 #define HLFMT_NSLDAPS 10
111
112 #define HLFMT_TEXT_HASHCAT "native hashcat"
113 #define HLFMT_TEXT_PWDUMP "pwdump"
114 #define HLFMT_TEXT_PASSWD "passwd"
115 #define HLFMT_TEXT_SHADOW "shadow"
116 #define HLFMT_TEXT_DCC "DCC"
117 #define HLFMT_TEXT_DCC2 "DCC 2"
118 #define HLFMT_TEXT_NETNTLM1 "NetNTLMv1"
119 #define HLFMT_TEXT_NETNTLM2 "NetNTLMv2"
120 #define HLFMT_TEXT_NSLDAP "nsldap"
121 #define HLFMT_TEXT_NSLDAPS "nsldaps"
122
123 #define ATTACK_MODE_STRAIGHT 0
124 #define ATTACK_MODE_COMBI 1
125 #define ATTACK_MODE_TOGGLE 2
126 #define ATTACK_MODE_BF 3
127 #define ATTACK_MODE_PERM 4
128 #define ATTACK_MODE_TABLE 5
129 #define ATTACK_MODE_HYBRID1 6
130 #define ATTACK_MODE_HYBRID2 7
131 #define ATTACK_MODE_NONE 100
132
133 #define ATTACK_KERN_STRAIGHT 0
134 #define ATTACK_KERN_COMBI 1
135 #define ATTACK_KERN_BF 3
136 #define ATTACK_KERN_NONE 100
137
138 #define ATTACK_EXEC_OUTSIDE_KERNEL 10
139 #define ATTACK_EXEC_INSIDE_KERNEL 11
140
141 #define COMBINATOR_MODE_BASE_LEFT 10001
142 #define COMBINATOR_MODE_BASE_RIGHT 10002
143
144 #define MIN(a,b) (((a) < (b)) ? (a) : (b))
145 #define MAX(a,b) (((a) > (b)) ? (a) : (b))
146
147 #define MAX_CUT_TRIES 4
148
149 #define MAX_DICTSTAT 10000
150
151 #define NUM_DEFAULT_BENCHMARK_ALGORITHMS 137
152
153 #define global_free(attr) \
154 { \
155 myfree ((void *) data.attr); \
156 \
157 data.attr = NULL; \
158 }
159
160 #define local_free(attr) \
161 { \
162 myfree ((void *) attr); \
163 \
164 attr = NULL; \
165 }
166
167 static uint default_benchmark_algorithms[NUM_DEFAULT_BENCHMARK_ALGORITHMS] =
168 {
169 900,
170 0,
171 5100,
172 100,
173 1400,
174 10800,
175 1700,
176 5000,
177 10100,
178 6000,
179 6100,
180 6900,
181 11700,
182 11800,
183 400,
184 8900,
185 11900,
186 12000,
187 10900,
188 12100,
189 23,
190 2500,
191 5300,
192 5400,
193 5500,
194 5600,
195 7300,
196 7500,
197 13100,
198 8300,
199 11100,
200 11200,
201 11400,
202 121,
203 2611,
204 2711,
205 2811,
206 8400,
207 11,
208 2612,
209 7900,
210 21,
211 11000,
212 124,
213 10000,
214 3711,
215 7600,
216 12,
217 131,
218 132,
219 1731,
220 200,
221 300,
222 3100,
223 112,
224 12300,
225 8000,
226 141,
227 1441,
228 1600,
229 12600,
230 1421,
231 101,
232 111,
233 1711,
234 3000,
235 1000,
236 1100,
237 2100,
238 12800,
239 1500,
240 12400,
241 500,
242 3200,
243 7400,
244 1800,
245 122,
246 1722,
247 7100,
248 6300,
249 6700,
250 6400,
251 6500,
252 2400,
253 2410,
254 5700,
255 9200,
256 9300,
257 22,
258 501,
259 5800,
260 8100,
261 8500,
262 7200,
263 9900,
264 7700,
265 7800,
266 10300,
267 8600,
268 8700,
269 9100,
270 133,
271 13500,
272 11600,
273 13600,
274 12500,
275 13000,
276 13200,
277 13300,
278 6211,
279 6221,
280 6231,
281 6241,
282 8800,
283 12900,
284 12200,
285 9700,
286 9710,
287 9800,
288 9810,
289 9400,
290 9500,
291 9600,
292 10400,
293 10410,
294 10500,
295 10600,
296 10700,
297 9000,
298 5200,
299 6800,
300 6600,
301 8200,
302 11300,
303 12700,
304 13400,
305 125
306 };
307
308 /**
309 * types
310 */
311
312 static void (*get_next_word_func) (char *, u32, u32 *, u32 *);
313
314 /**
315 * globals
316 */
317
318 static unsigned int full01 = 0x01010101;
319 static unsigned int full80 = 0x80808080;
320
321 int SUPPRESS_OUTPUT = 0;
322
323 hc_thread_mutex_t mux_adl;
324 hc_thread_mutex_t mux_counter;
325 hc_thread_mutex_t mux_dispatcher;
326 hc_thread_mutex_t mux_display;
327
328 hc_global_data_t data;
329
330 const char *PROMPT = "[s]tatus [p]ause [r]esume [b]ypass [c]heckpoint [q]uit => ";
331
332 const char *USAGE_MINI[] =
333 {
334 "Usage: %s [options]... hash|hashfile|hccapfile [dictionary|mask|directory]...",
335 "",
336 "Try --help for more help.",
337 NULL
338 };
339
340 const char *USAGE_BIG[] =
341 {
342 "%s, advanced password recovery",
343 "",
344 "Usage: %s [options]... hash|hashfile|hccapfile [dictionary|mask|directory]...",
345 "",
346 "=======",
347 "Options",
348 "=======",
349 "",
350 "* General:",
351 "",
352 " -m, --hash-type=NUM Hash-type, see references below",
353 " -a, --attack-mode=NUM Attack-mode, see references below",
354 " -V, --version Print version",
355 " -h, --help Print help",
356 " --quiet Suppress output",
357 "",
358 "* Misc:",
359 "",
360 " --hex-charset Assume charset is given in hex",
361 " --hex-salt Assume salt is given in hex",
362 " --hex-wordlist Assume words in wordlist is given in hex",
363 " --force Ignore warnings",
364 " --status Enable automatic update of the status-screen",
365 " --status-timer=NUM Seconds between status-screen update",
366 " --status-automat Display the status view in a machine readable format",
367 " --loopback Add new plains to induct directory",
368 " --weak-hash-threshold=NUM Threshold when to stop checking for weak hashes, default is 100 salts",
369 "",
370 "* Markov:",
371 "",
372 " --markov-hcstat=FILE Specify hcstat file to use, default is hashcat.hcstat",
373 " --markov-disable Disables markov-chains, emulates classic brute-force",
374 " --markov-classic Enables classic markov-chains, no per-position enhancement",
375 " -t, --markov-threshold=NUM Threshold when to stop accepting new markov-chains",
376 "",
377 "* Session:",
378 "",
379 " --runtime=NUM Abort session after NUM seconds of runtime",
380 " --session=STR Define specific session name",
381 " --restore Restore session from --session",
382 " --restore-disable Do not write restore file",
383 "",
384 "* Files:",
385 "",
386 " -o, --outfile=FILE Define outfile for recovered hash",
387 " --outfile-format=NUM Define outfile-format for recovered hash, see references below",
388 " --outfile-autohex-disable Disable the use of $HEX[] in output plains",
389 " --outfile-check-timer=NUM Seconds between outfile checks",
390 " -p, --separator=CHAR Separator char for hashlists and outfile",
391 " --show Show cracked passwords only",
392 " --left Show un-cracked passwords only",
393 " --username Enable ignoring of usernames in hashfile (recommended: also use --show)",
394 " --remove Enable remove of hash once it is cracked",
395 " --remove-timer=NUM Update input hash file each NUM seconds",
396 " --potfile-disable Do not write potfile",
397 " --potfile-path Specific path to potfile",
398 " --debug-mode=NUM Defines the debug mode (hybrid only by using rules), see references below",
399 " --debug-file=FILE Output file for debugging rules (see also --debug-mode)",
400 " --induction-dir=FOLDER Specify induction directory to use, default is $session.induct",
401 " --outfile-check-dir=FOLDER Specify the outfile directory which should be monitored, default is $session.outfiles",
402 " --logfile-disable Disable the logfile",
403 " --truecrypt-keyfiles=FILE Keyfiles used, separate with comma",
404 "",
405 "* Resources:",
406 "",
407 " -b, --benchmark Run benchmark",
408 " --benchmark-repeats=NUM Repeat the kernel on the device NUM times to increase benchmark accuracy",
409 " -c, --segment-size=NUM Size in MB to cache from the wordfile",
410 " --bitmap-min=NUM Minimum number of bits allowed for bitmaps",
411 " --bitmap-max=NUM Maximum number of bits allowed for bitmaps",
412 " --cpu-affinity=STR Locks to CPU devices, separate with comma",
413 " --opencl-platforms=STR OpenCL platforms to use, separate with comma",
414 " -d, --opencl-devices=STR OpenCL devices to use, separate with comma",
415 " --opencl-device-types=STR OpenCL device-types to use, separate with comma, see references below",
416 " --opencl-vector-width=NUM OpenCL vector-width (either 1, 2, 4, 8 or 16), overrides value from device query",
417 " -w, --workload-profile=NUM Enable a specific workload profile, see references below",
418 " -n, --kernel-accel=NUM Workload tuning, increase the outer-loop step size",
419 " -u, --kernel-loops=NUM Workload tuning, increase the inner-loop step size",
420 " --gpu-temp-disable Disable temperature and fanspeed readings and triggers",
421 #ifdef HAVE_HWMON
422 " --gpu-temp-abort=NUM Abort session if GPU temperature reaches NUM degrees celsius",
423 " --gpu-temp-retain=NUM Try to retain GPU temperature at NUM degrees celsius (AMD only)",
424 #ifdef HAVE_ADL
425 " --powertune-enable Enable automatic power tuning option (AMD OverDrive 6 only)",
426 #endif
427 #endif
428 " --scrypt-tmto=NUM Manually override automatically calculated TMTO value for scrypt",
429 "",
430 "* Distributed:",
431 "",
432 " -s, --skip=NUM Skip number of words",
433 " -l, --limit=NUM Limit number of words",
434 " --keyspace Show keyspace base:mod values and quit",
435 "",
436 "* Rules:",
437 "",
438 " -j, --rule-left=RULE Single rule applied to each word from left dict",
439 " -k, --rule-right=RULE Single rule applied to each word from right dict",
440 " -r, --rules-file=FILE Rules-file, multi use: -r 1.rule -r 2.rule",
441 " -g, --generate-rules=NUM Generate NUM random rules",
442 " --generate-rules-func-min=NUM Force NUM functions per random rule min",
443 " --generate-rules-func-max=NUM Force NUM functions per random rule max",
444 " --generate-rules-seed=NUM Force RNG seed to NUM",
445 "",
446 "* Custom charsets:",
447 "",
448 " -1, --custom-charset1=CS User-defined charsets",
449 " -2, --custom-charset2=CS Example:",
450 " -3, --custom-charset3=CS --custom-charset1=?dabcdef : sets charset ?1 to 0123456789abcdef",
451 " -4, --custom-charset4=CS -2 mycharset.hcchr : sets charset ?2 to chars contained in file",
452 "",
453 "* Increment:",
454 "",
455 " -i, --increment Enable increment mode",
456 " --increment-min=NUM Start incrementing at NUM",
457 " --increment-max=NUM Stop incrementing at NUM",
458 "",
459 "==========",
460 "References",
461 "==========",
462 "",
463 "* Workload Profile:",
464 "",
465 " 1 = Interactive performance profile, kernel execution runtime to 8ms, lower latency desktop, lower speed",
466 " 2 = Default performance profile, kernel execution runtime to 16ms, economic setting",
467 " 3 = Headless performance profile, kernel execution runtime to 96ms, higher latency desktop, higher speed",
468 "",
469 "* OpenCL device-types:",
470 "",
471 " 1 = CPU devices",
472 " 2 = GPU devices",
473 " 3 = Accelerator devices (FPGA, CELL Blade, etc.)",
474 "",
475 "* Outfile Formats:",
476 "",
477 " 1 = hash[:salt]",
478 " 2 = plain",
479 " 3 = hash[:salt]:plain",
480 " 4 = hex_plain",
481 " 5 = hash[:salt]:hex_plain",
482 " 6 = plain:hex_plain",
483 " 7 = hash[:salt]:plain:hex_plain",
484 " 8 = crackpos",
485 " 9 = hash[:salt]:crackpos",
486 " 10 = plain:crackpos",
487 " 11 = hash[:salt]:plain:crackpos",
488 " 12 = hex_plain:crackpos",
489 " 13 = hash[:salt]:hex_plain:crackpos",
490 " 14 = plain:hex_plain:crackpos",
491 " 15 = hash[:salt]:plain:hex_plain:crackpos",
492 "",
493 "* Debug mode output formats (for hybrid mode only, by using rules):",
494 "",
495 " 1 = save finding rule",
496 " 2 = save original word",
497 " 3 = save original word and finding rule",
498 " 4 = save original word, finding rule and modified plain",
499 "",
500 "* Built-in charsets:",
501 "",
502 " ?l = abcdefghijklmnopqrstuvwxyz",
503 " ?u = ABCDEFGHIJKLMNOPQRSTUVWXYZ",
504 " ?d = 0123456789",
505 " ?s = !\"#$%%&'()*+,-./:;<=>?@[\\]^_`{|}~",
506 " ?a = ?l?u?d?s",
507 " ?b = 0x00 - 0xff",
508 "",
509 "* Attack modes:",
510 "",
511 " 0 = Straight",
512 " 1 = Combination",
513 " 3 = Brute-force",
514 " 6 = Hybrid dict + mask",
515 " 7 = Hybrid mask + dict",
516 "",
517 "* Hash types:",
518 "",
519 "[[ Roll-your-own: Raw Hashes ]]",
520 "",
521 " 900 = MD4",
522 " 0 = MD5",
523 " 5100 = Half MD5",
524 " 100 = SHA1",
525 " 10800 = SHA-384",
526 " 1400 = SHA-256",
527 " 1700 = SHA-512",
528 " 5000 = SHA-3(Keccak)",
529 " 10100 = SipHash",
530 " 6000 = RipeMD160",
531 " 6100 = Whirlpool",
532 " 6900 = GOST R 34.11-94",
533 " 11700 = GOST R 34.11-2012 (Streebog) 256-bit",
534 " 11800 = GOST R 34.11-2012 (Streebog) 512-bit",
535 "",
536 "[[ Roll-your-own: Iterated and / or Salted Hashes ]]",
537 "",
538 " 10 = md5($pass.$salt)",
539 " 20 = md5($salt.$pass)",
540 " 30 = md5(unicode($pass).$salt)",
541 " 40 = md5($salt.unicode($pass))",
542 " 3800 = md5($salt.$pass.$salt)",
543 " 3710 = md5($salt.md5($pass))",
544 " 2600 = md5(md5($pass)",
545 " 4300 = md5(strtoupper(md5($pass)))",
546 " 4400 = md5(sha1($pass))",
547 " 110 = sha1($pass.$salt)",
548 " 120 = sha1($salt.$pass)",
549 " 130 = sha1(unicode($pass).$salt)",
550 " 140 = sha1($salt.unicode($pass))",
551 " 4500 = sha1(sha1($pass)",
552 " 4700 = sha1(md5($pass))",
553 " 4900 = sha1($salt.$pass.$salt)",
554 " 1410 = sha256($pass.$salt)",
555 " 1420 = sha256($salt.$pass)",
556 " 1430 = sha256(unicode($pass).$salt)",
557 " 1440 = sha256($salt.unicode($pass))",
558 " 1710 = sha512($pass.$salt)",
559 " 1720 = sha512($salt.$pass)",
560 " 1730 = sha512(unicode($pass).$salt)",
561 " 1740 = sha512($salt.unicode($pass))",
562 "",
563 "[[ Roll-your-own: Authenticated Hashes ]]",
564 "",
565 " 50 = HMAC-MD5 (key = $pass)",
566 " 60 = HMAC-MD5 (key = $salt)",
567 " 150 = HMAC-SHA1 (key = $pass)",
568 " 160 = HMAC-SHA1 (key = $salt)",
569 " 1450 = HMAC-SHA256 (key = $pass)",
570 " 1460 = HMAC-SHA256 (key = $salt)",
571 " 1750 = HMAC-SHA512 (key = $pass)",
572 " 1760 = HMAC-SHA512 (key = $salt)",
573 "",
574 "[[ Generic KDF ]]",
575 "",
576 " 400 = phpass",
577 " 8900 = scrypt",
578 " 11900 = PBKDF2-HMAC-MD5",
579 " 12000 = PBKDF2-HMAC-SHA1",
580 " 10900 = PBKDF2-HMAC-SHA256",
581 " 12100 = PBKDF2-HMAC-SHA512",
582 "",
583 "[[ Network protocols, Challenge-Response ]]",
584 "",
585 " 23 = Skype",
586 " 2500 = WPA/WPA2",
587 " 4800 = iSCSI CHAP authentication, MD5(Chap)",
588 " 5300 = IKE-PSK MD5",
589 " 5400 = IKE-PSK SHA1",
590 " 5500 = NetNTLMv1",
591 " 5500 = NetNTLMv1 + ESS",
592 " 5600 = NetNTLMv2",
593 " 7300 = IPMI2 RAKP HMAC-SHA1",
594 " 7500 = Kerberos 5 AS-REQ Pre-Auth etype 23",
595 " 8300 = DNSSEC (NSEC3)",
596 " 10200 = Cram MD5",
597 " 11100 = PostgreSQL Challenge-Response Authentication (MD5)",
598 " 11200 = MySQL Challenge-Response Authentication (SHA1)",
599 " 11400 = SIP digest authentication (MD5)",
600 " 13100 = Kerberos 5 TGS-REP etype 23",
601 "",
602 "[[ Forums, CMS, E-Commerce, Frameworks, Middleware, Wiki, Management ]]",
603 "",
604 " 121 = SMF (Simple Machines Forum)",
605 " 400 = phpBB3",
606 " 2611 = vBulletin < v3.8.5",
607 " 2711 = vBulletin > v3.8.5",
608 " 2811 = MyBB",
609 " 2811 = IPB (Invison Power Board)",
610 " 8400 = WBB3 (Woltlab Burning Board)",
611 " 11 = Joomla < 2.5.18",
612 " 400 = Joomla > 2.5.18",
613 " 400 = Wordpress",
614 " 2612 = PHPS",
615 " 7900 = Drupal7",
616 " 21 = osCommerce",
617 " 21 = xt:Commerce",
618 " 11000 = PrestaShop",
619 " 124 = Django (SHA-1)",
620 " 10000 = Django (PBKDF2-SHA256)",
621 " 3711 = Mediawiki B type",
622 " 7600 = Redmine",
623 "",
624 "[[ Database Server ]]",
625 "",
626 " 12 = PostgreSQL",
627 " 131 = MSSQL(2000)",
628 " 132 = MSSQL(2005)",
629 " 1731 = MSSQL(2012)",
630 " 1731 = MSSQL(2014)",
631 " 200 = MySQL323",
632 " 300 = MySQL4.1/MySQL5",
633 " 3100 = Oracle H: Type (Oracle 7+)",
634 " 112 = Oracle S: Type (Oracle 11+)",
635 " 12300 = Oracle T: Type (Oracle 12+)",
636 " 8000 = Sybase ASE",
637 "",
638 "[[ HTTP, SMTP, LDAP Server ]]",
639 "",
640 " 141 = EPiServer 6.x < v4",
641 " 1441 = EPiServer 6.x > v4",
642 " 1600 = Apache $apr1$",
643 " 12600 = ColdFusion 10+",
644 " 1421 = hMailServer",
645 " 101 = nsldap, SHA-1(Base64), Netscape LDAP SHA",
646 " 111 = nsldaps, SSHA-1(Base64), Netscape LDAP SSHA",
647 " 1711 = SSHA-512(Base64), LDAP {SSHA512}",
648 "",
649 "[[ Checksums ]]",
650 "",
651 " 11500 = CRC32",
652 "",
653 "[[ Operating-Systems ]]",
654 "",
655 " 3000 = LM",
656 " 1000 = NTLM",
657 " 1100 = Domain Cached Credentials (DCC), MS Cache",
658 " 2100 = Domain Cached Credentials 2 (DCC2), MS Cache 2",
659 " 12800 = MS-AzureSync PBKDF2-HMAC-SHA256",
660 " 1500 = descrypt, DES(Unix), Traditional DES",
661 " 12400 = BSDiCrypt, Extended DES",
662 " 500 = md5crypt $1$, MD5(Unix)",
663 " 3200 = bcrypt $2*$, Blowfish(Unix)",
664 " 7400 = sha256crypt $5$, SHA256(Unix)",
665 " 1800 = sha512crypt $6$, SHA512(Unix)",
666 " 122 = OSX v10.4",
667 " 122 = OSX v10.5",
668 " 122 = OSX v10.6",
669 " 1722 = OSX v10.7",
670 " 7100 = OSX v10.8",
671 " 7100 = OSX v10.9",
672 " 7100 = OSX v10.10",
673 " 6300 = AIX {smd5}",
674 " 6700 = AIX {ssha1}",
675 " 6400 = AIX {ssha256}",
676 " 6500 = AIX {ssha512}",
677 " 2400 = Cisco-PIX",
678 " 2410 = Cisco-ASA",
679 " 500 = Cisco-IOS $1$",
680 " 5700 = Cisco-IOS $4$",
681 " 9200 = Cisco-IOS $8$",
682 " 9300 = Cisco-IOS $9$",
683 " 22 = Juniper Netscreen/SSG (ScreenOS)",
684 " 501 = Juniper IVE",
685 " 5800 = Android PIN",
686 " 8100 = Citrix Netscaler",
687 " 8500 = RACF",
688 " 7200 = GRUB 2",
689 " 9900 = Radmin2",
690 " 125 = ArubaOS",
691 "",
692 "[[ Enterprise Application Software (EAS) ]]",
693 "",
694 " 7700 = SAP CODVN B (BCODE)",
695 " 7800 = SAP CODVN F/G (PASSCODE)",
696 " 10300 = SAP CODVN H (PWDSALTEDHASH) iSSHA-1",
697 " 8600 = Lotus Notes/Domino 5",
698 " 8700 = Lotus Notes/Domino 6",
699 " 9100 = Lotus Notes/Domino 8",
700 " 133 = PeopleSoft",
701 " 13500 = PeopleSoft Token",
702 "",
703 "[[ Archives ]]",
704 "",
705 " 11600 = 7-Zip",
706 " 12500 = RAR3-hp",
707 " 13000 = RAR5",
708 " 13200 = AxCrypt",
709 " 13300 = AxCrypt in memory SHA1",
710 " 13600 = WinZip",
711 "",
712 "[[ Full-Disk encryptions (FDE) ]]",
713 "",
714 " 62XY = TrueCrypt 5.0+",
715 " X = 1 = PBKDF2-HMAC-RipeMD160",
716 " X = 2 = PBKDF2-HMAC-SHA512",
717 " X = 3 = PBKDF2-HMAC-Whirlpool",
718 " X = 4 = PBKDF2-HMAC-RipeMD160 + boot-mode",
719 " Y = 1 = XTS 512 bit (Ciphers: AES or Serpent or Twofish)",
720 " Y = 2 = XTS 1024 bit (Ciphers: AES or Serpent or Twofish or AES-Twofish or Serpent-AES or Twofish-Serpent)",
721 " Y = 3 = XTS 1536 bit (Ciphers: All)",
722 " 8800 = Android FDE < v4.3",
723 " 12900 = Android FDE (Samsung DEK)",
724 " 12200 = eCryptfs",
725 "",
726 "[[ Documents ]]",
727 "",
728 " 9700 = MS Office <= 2003 MD5 + RC4, oldoffice$0, oldoffice$1",
729 " 9710 = MS Office <= 2003 MD5 + RC4, collider-mode #1",
730 " 9720 = MS Office <= 2003 MD5 + RC4, collider-mode #2",
731 " 9800 = MS Office <= 2003 SHA1 + RC4, oldoffice$3, oldoffice$4",
732 " 9810 = MS Office <= 2003 SHA1 + RC4, collider-mode #1",
733 " 9820 = MS Office <= 2003 SHA1 + RC4, collider-mode #2",
734 " 9400 = MS Office 2007",
735 " 9500 = MS Office 2010",
736 " 9600 = MS Office 2013",
737 " 10400 = PDF 1.1 - 1.3 (Acrobat 2 - 4)",
738 " 10410 = PDF 1.1 - 1.3 (Acrobat 2 - 4) + collider-mode #1",
739 " 10420 = PDF 1.1 - 1.3 (Acrobat 2 - 4) + collider-mode #2",
740 " 10500 = PDF 1.4 - 1.6 (Acrobat 5 - 8)",
741 " 10600 = PDF 1.7 Level 3 (Acrobat 9)",
742 " 10700 = PDF 1.7 Level 8 (Acrobat 10 - 11)",
743 "",
744 "[[ Password Managers ]]",
745 "",
746 " 9000 = Password Safe v2",
747 " 5200 = Password Safe v3",
748 " 6800 = Lastpass",
749 " 6600 = 1Password, agilekeychain",
750 " 8200 = 1Password, cloudkeychain",
751 " 11300 = Bitcoin/Litecoin wallet.dat",
752 " 12700 = Blockchain, My Wallet",
753 " 13400 = Keepass 1 (AES/Twofish) and Keepass 2 (AES)",
754 "",
755 NULL
756 };
757
758 /**
759 * hashcat specific functions
760 */
761
762 static double get_avg_exec_time (hc_device_param_t *device_param, const int last_num_entries)
763 {
764 int exec_pos = (int) device_param->exec_pos - last_num_entries;
765
766 if (exec_pos < 0) exec_pos += EXEC_CACHE;
767
768 double exec_ms_sum = 0;
769
770 int exec_ms_cnt = 0;
771
772 for (int i = 0; i < last_num_entries; i++)
773 {
774 double exec_ms = device_param->exec_ms[(exec_pos + i) % EXEC_CACHE];
775
776 if (exec_ms)
777 {
778 exec_ms_sum += exec_ms;
779
780 exec_ms_cnt++;
781 }
782 }
783
784 if (exec_ms_cnt == 0) return 0;
785
786 return exec_ms_sum / exec_ms_cnt;
787 }
788
789 void status_display_automat ()
790 {
791 FILE *out = stdout;
792
793 fprintf (out, "STATUS\t%u\t", data.devices_status);
794
795 /**
796 * speed new
797 */
798
799 fprintf (out, "SPEED\t");
800
801 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
802 {
803 hc_device_param_t *device_param = &data.devices_param[device_id];
804
805 if (device_param->skipped) continue;
806
807 u64 speed_cnt = 0;
808 double speed_ms = 0;
809
810 for (int i = 0; i < SPEED_CACHE; i++)
811 {
812 speed_cnt += device_param->speed_cnt[i];
813 speed_ms += device_param->speed_ms[i];
814 }
815
816 speed_cnt /= SPEED_CACHE;
817 speed_ms /= SPEED_CACHE;
818
819 fprintf (out, "%llu\t%f\t", (unsigned long long int) speed_cnt, speed_ms);
820 }
821
822 /**
823 * exec time
824 */
825
826 fprintf (out, "EXEC_RUNTIME\t");
827
828 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
829 {
830 hc_device_param_t *device_param = &data.devices_param[device_id];
831
832 if (device_param->skipped) continue;
833
834 double exec_ms_avg = get_avg_exec_time (device_param, EXEC_CACHE);
835
836 fprintf (out, "%f\t", exec_ms_avg);
837 }
838
839 /**
840 * words_cur
841 */
842
843 u64 words_cur = get_lowest_words_done ();
844
845 fprintf (out, "CURKU\t%llu\t", (unsigned long long int) words_cur);
846
847 /**
848 * counter
849 */
850
851 u64 progress_total = data.words_cnt * data.salts_cnt;
852
853 u64 all_done = 0;
854 u64 all_rejected = 0;
855 u64 all_restored = 0;
856
857 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
858 {
859 all_done += data.words_progress_done[salt_pos];
860 all_rejected += data.words_progress_rejected[salt_pos];
861 all_restored += data.words_progress_restored[salt_pos];
862 }
863
864 u64 progress_cur = all_restored + all_done + all_rejected;
865 u64 progress_end = progress_total;
866
867 u64 progress_skip = 0;
868
869 if (data.skip)
870 {
871 progress_skip = MIN (data.skip, data.words_base) * data.salts_cnt;
872
873 if (data.attack_kern == ATTACK_KERN_STRAIGHT) progress_skip *= data.kernel_rules_cnt;
874 else if (data.attack_kern == ATTACK_KERN_COMBI) progress_skip *= data.combs_cnt;
875 else if (data.attack_kern == ATTACK_KERN_BF) progress_skip *= data.bfs_cnt;
876 }
877
878 if (data.limit)
879 {
880 progress_end = MIN (data.limit, data.words_base) * data.salts_cnt;
881
882 if (data.attack_kern == ATTACK_KERN_STRAIGHT) progress_end *= data.kernel_rules_cnt;
883 else if (data.attack_kern == ATTACK_KERN_COMBI) progress_end *= data.combs_cnt;
884 else if (data.attack_kern == ATTACK_KERN_BF) progress_end *= data.bfs_cnt;
885 }
886
887 u64 progress_cur_relative_skip = progress_cur - progress_skip;
888 u64 progress_end_relative_skip = progress_end - progress_skip;
889
890 fprintf (out, "PROGRESS\t%llu\t%llu\t", (unsigned long long int) progress_cur_relative_skip, (unsigned long long int) progress_end_relative_skip);
891
892 /**
893 * cracks
894 */
895
896 fprintf (out, "RECHASH\t%u\t%u\t", data.digests_done, data.digests_cnt);
897 fprintf (out, "RECSALT\t%u\t%u\t", data.salts_done, data.salts_cnt);
898
899 /**
900 * temperature
901 */
902
903 #ifdef HAVE_HWMON
904 if (data.gpu_temp_disable == 0)
905 {
906 fprintf (out, "TEMP\t");
907
908 hc_thread_mutex_lock (mux_adl);
909
910 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
911 {
912 hc_device_param_t *device_param = &data.devices_param[device_id];
913
914 if (device_param->skipped) continue;
915
916 int temp = hm_get_temperature_with_device_id (device_id);
917
918 fprintf (out, "%d\t", temp);
919 }
920
921 hc_thread_mutex_unlock (mux_adl);
922 }
923 #endif // HAVE_HWMON
924
925 /**
926 * flush
927 */
928
929 #ifdef _WIN
930 fputc ('\r', out);
931 fputc ('\n', out);
932 #endif
933
934 #ifdef _POSIX
935 fputc ('\n', out);
936 #endif
937
938 fflush (out);
939 }
940
941 void status_display ()
942 {
943 if (data.devices_status == STATUS_INIT) return;
944 if (data.devices_status == STATUS_STARTING) return;
945 if (data.devices_status == STATUS_BYPASS) return;
946
947 if (data.status_automat == 1)
948 {
949 status_display_automat ();
950
951 return;
952 }
953
954 char tmp_buf[1000] = { 0 };
955
956 uint tmp_len = 0;
957
958 log_info ("Session.Name...: %s", data.session);
959
960 char *status_type = strstatus (data.devices_status);
961
962 uint hash_mode = data.hash_mode;
963
964 char *hash_type = strhashtype (hash_mode); // not a bug
965
966 log_info ("Status.........: %s", status_type);
967
968 /**
969 * show rules
970 */
971
972 if (data.rp_files_cnt)
973 {
974 uint i;
975
976 for (i = 0, tmp_len = 0; i < data.rp_files_cnt - 1 && tmp_len < sizeof (tmp_buf); i++)
977 {
978 tmp_len += snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, "File (%s), ", data.rp_files[i]);
979 }
980
981 snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, "File (%s)", data.rp_files[i]);
982
983 log_info ("Rules.Type.....: %s", tmp_buf);
984
985 tmp_len = 0;
986 }
987
988 if (data.rp_gen)
989 {
990 log_info ("Rules.Type.....: Generated (%u)", data.rp_gen);
991
992 if (data.rp_gen_seed)
993 {
994 log_info ("Rules.Seed.....: %u", data.rp_gen_seed);
995 }
996 }
997
998 /**
999 * show input
1000 */
1001
1002 if (data.attack_mode == ATTACK_MODE_STRAIGHT)
1003 {
1004 if (data.wordlist_mode == WL_MODE_FILE)
1005 {
1006 if (data.dictfile != NULL) log_info ("Input.Mode.....: File (%s)", data.dictfile);
1007 }
1008 else if (data.wordlist_mode == WL_MODE_STDIN)
1009 {
1010 log_info ("Input.Mode.....: Pipe");
1011 }
1012 }
1013 else if (data.attack_mode == ATTACK_MODE_COMBI)
1014 {
1015 if (data.dictfile != NULL) log_info ("Input.Left.....: File (%s)", data.dictfile);
1016 if (data.dictfile2 != NULL) log_info ("Input.Right....: File (%s)", data.dictfile2);
1017 }
1018 else if (data.attack_mode == ATTACK_MODE_BF)
1019 {
1020 char *mask = data.mask;
1021
1022 if (mask != NULL)
1023 {
1024 uint mask_len = data.css_cnt;
1025
1026 tmp_len += snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, "Mask (%s)", mask);
1027
1028 if (mask_len > 0)
1029 {
1030 if (data.opti_type & OPTI_TYPE_SINGLE_HASH)
1031 {
1032 if (data.opti_type & OPTI_TYPE_APPENDED_SALT)
1033 {
1034 mask_len -= data.salts_buf[0].salt_len;
1035 }
1036 }
1037
1038 if (data.opts_type & OPTS_TYPE_PT_UNICODE) mask_len /= 2;
1039
1040 tmp_len += snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, " [%i]", mask_len);
1041 }
1042
1043 if (data.maskcnt > 1)
1044 {
1045 float mask_percentage = (float) data.maskpos / (float) data.maskcnt;
1046
1047 tmp_len += snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, " (%.02f%%)", mask_percentage * 100);
1048 }
1049
1050 log_info ("Input.Mode.....: %s", tmp_buf);
1051 }
1052
1053 tmp_len = 0;
1054 }
1055 else if (data.attack_mode == ATTACK_MODE_HYBRID1)
1056 {
1057 if (data.dictfile != NULL) log_info ("Input.Left.....: File (%s)", data.dictfile);
1058 if (data.mask != NULL) log_info ("Input.Right....: Mask (%s) [%i]", data.mask, data.css_cnt);
1059 }
1060 else if (data.attack_mode == ATTACK_MODE_HYBRID2)
1061 {
1062 if (data.mask != NULL) log_info ("Input.Left.....: Mask (%s) [%i]", data.mask, data.css_cnt);
1063 if (data.dictfile != NULL) log_info ("Input.Right....: File (%s)", data.dictfile);
1064 }
1065
1066 if (data.digests_cnt == 1)
1067 {
1068 if (data.hash_mode == 2500)
1069 {
1070 wpa_t *wpa = (wpa_t *) data.esalts_buf;
1071
1072 log_info ("Hash.Target....: %s (%02x:%02x:%02x:%02x:%02x:%02x <-> %02x:%02x:%02x:%02x:%02x:%02x)",
1073 (char *) data.salts_buf[0].salt_buf,
1074 wpa->orig_mac1[0],
1075 wpa->orig_mac1[1],
1076 wpa->orig_mac1[2],
1077 wpa->orig_mac1[3],
1078 wpa->orig_mac1[4],
1079 wpa->orig_mac1[5],
1080 wpa->orig_mac2[0],
1081 wpa->orig_mac2[1],
1082 wpa->orig_mac2[2],
1083 wpa->orig_mac2[3],
1084 wpa->orig_mac2[4],
1085 wpa->orig_mac2[5]);
1086 }
1087 else if (data.hash_mode == 5200)
1088 {
1089 log_info ("Hash.Target....: File (%s)", data.hashfile);
1090 }
1091 else if (data.hash_mode == 9000)
1092 {
1093 log_info ("Hash.Target....: File (%s)", data.hashfile);
1094 }
1095 else if ((data.hash_mode >= 6200) && (data.hash_mode <= 6299))
1096 {
1097 log_info ("Hash.Target....: File (%s)", data.hashfile);
1098 }
1099 else
1100 {
1101 char out_buf[HCBUFSIZ] = { 0 };
1102
1103 ascii_digest (out_buf, 0, 0);
1104
1105 // limit length
1106 if (strlen (out_buf) > 40)
1107 {
1108 out_buf[41] = '.';
1109 out_buf[42] = '.';
1110 out_buf[43] = '.';
1111 out_buf[44] = 0;
1112 }
1113
1114 log_info ("Hash.Target....: %s", out_buf);
1115 }
1116 }
1117 else
1118 {
1119 if (data.hash_mode == 3000)
1120 {
1121 char out_buf1[32] = { 0 };
1122 char out_buf2[32] = { 0 };
1123
1124 ascii_digest (out_buf1, 0, 0);
1125 ascii_digest (out_buf2, 0, 1);
1126
1127 log_info ("Hash.Target....: %s, %s", out_buf1, out_buf2);
1128 }
1129 else
1130 {
1131 log_info ("Hash.Target....: File (%s)", data.hashfile);
1132 }
1133 }
1134
1135 log_info ("Hash.Type......: %s", hash_type);
1136
1137 /**
1138 * speed new
1139 */
1140
1141 u64 speed_cnt[DEVICES_MAX] = { 0 };
1142 double speed_ms[DEVICES_MAX] = { 0 };
1143
1144 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1145 {
1146 hc_device_param_t *device_param = &data.devices_param[device_id];
1147
1148 if (device_param->skipped) continue;
1149
1150 speed_cnt[device_id] = 0;
1151 speed_ms[device_id] = 0;
1152
1153 for (int i = 0; i < SPEED_CACHE; i++)
1154 {
1155 speed_cnt[device_id] += device_param->speed_cnt[i];
1156 speed_ms[device_id] += device_param->speed_ms[i];
1157 }
1158
1159 speed_cnt[device_id] /= SPEED_CACHE;
1160 speed_ms[device_id] /= SPEED_CACHE;
1161 }
1162
1163 float hashes_all_ms = 0;
1164
1165 float hashes_dev_ms[DEVICES_MAX] = { 0 };
1166
1167 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1168 {
1169 hc_device_param_t *device_param = &data.devices_param[device_id];
1170
1171 if (device_param->skipped) continue;
1172
1173 hashes_dev_ms[device_id] = 0;
1174
1175 if (speed_ms[device_id])
1176 {
1177 hashes_dev_ms[device_id] = speed_cnt[device_id] / speed_ms[device_id];
1178
1179 hashes_all_ms += hashes_dev_ms[device_id];
1180 }
1181 }
1182
1183 /**
1184 * exec time
1185 */
1186
1187 double exec_all_ms[DEVICES_MAX] = { 0 };
1188
1189 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1190 {
1191 hc_device_param_t *device_param = &data.devices_param[device_id];
1192
1193 if (device_param->skipped) continue;
1194
1195 double exec_ms_avg = get_avg_exec_time (device_param, EXEC_CACHE);
1196
1197 exec_all_ms[device_id] = exec_ms_avg;
1198 }
1199
1200 /**
1201 * timers
1202 */
1203
1204 double ms_running = 0;
1205
1206 hc_timer_get (data.timer_running, ms_running);
1207
1208 double ms_paused = data.ms_paused;
1209
1210 if (data.devices_status == STATUS_PAUSED)
1211 {
1212 double ms_paused_tmp = 0;
1213
1214 hc_timer_get (data.timer_paused, ms_paused_tmp);
1215
1216 ms_paused += ms_paused_tmp;
1217 }
1218
1219 #ifdef WIN
1220
1221 __time64_t sec_run = ms_running / 1000;
1222
1223 #else
1224
1225 time_t sec_run = ms_running / 1000;
1226
1227 #endif
1228
1229 if (sec_run)
1230 {
1231 char display_run[32] = { 0 };
1232
1233 struct tm tm_run;
1234
1235 struct tm *tmp = NULL;
1236
1237 #ifdef WIN
1238
1239 tmp = _gmtime64 (&sec_run);
1240
1241 #else
1242
1243 tmp = gmtime (&sec_run);
1244
1245 #endif
1246
1247 if (tmp != NULL)
1248 {
1249 memset (&tm_run, 0, sizeof (tm_run));
1250
1251 memcpy (&tm_run, tmp, sizeof (tm_run));
1252
1253 format_timer_display (&tm_run, display_run, sizeof (tm_run));
1254
1255 char *start = ctime (&data.proc_start);
1256
1257 size_t start_len = strlen (start);
1258
1259 if (start[start_len - 1] == '\n') start[start_len - 1] = 0;
1260 if (start[start_len - 2] == '\r') start[start_len - 2] = 0;
1261
1262 log_info ("Time.Started...: %s (%s)", start, display_run);
1263 }
1264 }
1265 else
1266 {
1267 log_info ("Time.Started...: 0 secs");
1268 }
1269
1270 /**
1271 * counters
1272 */
1273
1274 u64 progress_total = data.words_cnt * data.salts_cnt;
1275
1276 u64 all_done = 0;
1277 u64 all_rejected = 0;
1278 u64 all_restored = 0;
1279
1280 u64 progress_noneed = 0;
1281
1282 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
1283 {
1284 all_done += data.words_progress_done[salt_pos];
1285 all_rejected += data.words_progress_rejected[salt_pos];
1286 all_restored += data.words_progress_restored[salt_pos];
1287
1288 // Important for ETA only
1289
1290 if (data.salts_shown[salt_pos] == 1)
1291 {
1292 const u64 all = data.words_progress_done[salt_pos]
1293 + data.words_progress_rejected[salt_pos]
1294 + data.words_progress_restored[salt_pos];
1295
1296 const u64 left = data.words_cnt - all;
1297
1298 progress_noneed += left;
1299 }
1300 }
1301
1302 u64 progress_cur = all_restored + all_done + all_rejected;
1303 u64 progress_end = progress_total;
1304
1305 u64 progress_skip = 0;
1306
1307 if (data.skip)
1308 {
1309 progress_skip = MIN (data.skip, data.words_base) * data.salts_cnt;
1310
1311 if (data.attack_kern == ATTACK_KERN_STRAIGHT) progress_skip *= data.kernel_rules_cnt;
1312 else if (data.attack_kern == ATTACK_KERN_COMBI) progress_skip *= data.combs_cnt;
1313 else if (data.attack_kern == ATTACK_KERN_BF) progress_skip *= data.bfs_cnt;
1314 }
1315
1316 if (data.limit)
1317 {
1318 progress_end = MIN (data.limit, data.words_base) * data.salts_cnt;
1319
1320 if (data.attack_kern == ATTACK_KERN_STRAIGHT) progress_end *= data.kernel_rules_cnt;
1321 else if (data.attack_kern == ATTACK_KERN_COMBI) progress_end *= data.combs_cnt;
1322 else if (data.attack_kern == ATTACK_KERN_BF) progress_end *= data.bfs_cnt;
1323 }
1324
1325 u64 progress_cur_relative_skip = progress_cur - progress_skip;
1326 u64 progress_end_relative_skip = progress_end - progress_skip;
1327
1328 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
1329 {
1330 if (data.devices_status != STATUS_CRACKED)
1331 {
1332 #ifdef WIN
1333 __time64_t sec_etc = 0;
1334 #else
1335 time_t sec_etc = 0;
1336 #endif
1337
1338 if (hashes_all_ms)
1339 {
1340 u64 progress_left_relative_skip = progress_end_relative_skip - progress_cur_relative_skip;
1341
1342 u64 ms_left = (progress_left_relative_skip - progress_noneed) / hashes_all_ms;
1343
1344 sec_etc = ms_left / 1000;
1345 }
1346
1347 if (sec_etc == 0)
1348 {
1349 //log_info ("Time.Estimated.: 0 secs");
1350 }
1351 else if ((u64) sec_etc > ETC_MAX)
1352 {
1353 log_info ("Time.Estimated.: > 10 Years");
1354 }
1355 else
1356 {
1357 char display_etc[32] = { 0 };
1358
1359 struct tm tm_etc;
1360
1361 struct tm *tmp = NULL;
1362
1363 #ifdef WIN
1364
1365 tmp = _gmtime64 (&sec_etc);
1366
1367 #else
1368
1369 tmp = gmtime (&sec_etc);
1370
1371 #endif
1372
1373 if (tmp != NULL)
1374 {
1375 memset (&tm_etc, 0, sizeof (tm_etc));
1376
1377 memcpy (&tm_etc, tmp, sizeof (tm_etc));
1378
1379 format_timer_display (&tm_etc, display_etc, sizeof (display_etc));
1380
1381 time_t now;
1382
1383 time (&now);
1384
1385 now += sec_etc;
1386
1387 char *etc = ctime (&now);
1388
1389 size_t etc_len = strlen (etc);
1390
1391 if (etc[etc_len - 1] == '\n') etc[etc_len - 1] = 0;
1392 if (etc[etc_len - 2] == '\r') etc[etc_len - 2] = 0;
1393
1394 log_info ("Time.Estimated.: %s (%s)", etc, display_etc);
1395 }
1396 }
1397 }
1398 }
1399
1400 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1401 {
1402 hc_device_param_t *device_param = &data.devices_param[device_id];
1403
1404 if (device_param->skipped) continue;
1405
1406 char display_dev_cur[16] = { 0 };
1407
1408 strncpy (display_dev_cur, "0.00", 4);
1409
1410 format_speed_display (hashes_dev_ms[device_id] * 1000, display_dev_cur, sizeof (display_dev_cur));
1411
1412 log_info ("Speed.Dev.#%d...: %9sH/s (%0.2fms)", device_id + 1, display_dev_cur, exec_all_ms[device_id]);
1413 }
1414
1415 char display_all_cur[16] = { 0 };
1416
1417 strncpy (display_all_cur, "0.00", 4);
1418
1419 format_speed_display (hashes_all_ms * 1000, display_all_cur, sizeof (display_all_cur));
1420
1421 if (data.devices_active > 1) log_info ("Speed.Dev.#*...: %9sH/s", display_all_cur);
1422
1423 const float digests_percent = (float) data.digests_done / data.digests_cnt;
1424 const float salts_percent = (float) data.salts_done / data.salts_cnt;
1425
1426 log_info ("Recovered......: %u/%u (%.2f%%) Digests, %u/%u (%.2f%%) Salts", data.digests_done, data.digests_cnt, digests_percent * 100, data.salts_done, data.salts_cnt, salts_percent * 100);
1427
1428 // crack-per-time
1429
1430 if (data.digests_cnt > 100)
1431 {
1432 time_t now = time (NULL);
1433
1434 int cpt_cur_min = 0;
1435 int cpt_cur_hour = 0;
1436 int cpt_cur_day = 0;
1437
1438 for (int i = 0; i < CPT_BUF; i++)
1439 {
1440 const uint cracked = data.cpt_buf[i].cracked;
1441 const time_t timestamp = data.cpt_buf[i].timestamp;
1442
1443 if ((timestamp + 60) > now)
1444 {
1445 cpt_cur_min += cracked;
1446 }
1447
1448 if ((timestamp + 3600) > now)
1449 {
1450 cpt_cur_hour += cracked;
1451 }
1452
1453 if ((timestamp + 86400) > now)
1454 {
1455 cpt_cur_day += cracked;
1456 }
1457 }
1458
1459 double ms_real = ms_running - ms_paused;
1460
1461 float cpt_avg_min = (float) data.cpt_total / ((ms_real / 1000) / 60);
1462 float cpt_avg_hour = (float) data.cpt_total / ((ms_real / 1000) / 3600);
1463 float cpt_avg_day = (float) data.cpt_total / ((ms_real / 1000) / 86400);
1464
1465 if ((data.cpt_start + 86400) < now)
1466 {
1467 log_info ("Recovered/Time.: CUR:%llu,%llu,%llu AVG:%0.2f,%0.2f,%0.2f (Min,Hour,Day)",
1468 cpt_cur_min,
1469 cpt_cur_hour,
1470 cpt_cur_day,
1471 cpt_avg_min,
1472 cpt_avg_hour,
1473 cpt_avg_day);
1474 }
1475 else if ((data.cpt_start + 3600) < now)
1476 {
1477 log_info ("Recovered/Time.: CUR:%llu,%llu,N/A AVG:%0.2f,%0.2f,%0.2f (Min,Hour,Day)",
1478 cpt_cur_min,
1479 cpt_cur_hour,
1480 cpt_avg_min,
1481 cpt_avg_hour,
1482 cpt_avg_day);
1483 }
1484 else if ((data.cpt_start + 60) < now)
1485 {
1486 log_info ("Recovered/Time.: CUR:%llu,N/A,N/A AVG:%0.2f,%0.2f,%0.2f (Min,Hour,Day)",
1487 cpt_cur_min,
1488 cpt_avg_min,
1489 cpt_avg_hour,
1490 cpt_avg_day);
1491 }
1492 else
1493 {
1494 log_info ("Recovered/Time.: CUR:N/A,N/A,N/A AVG:%0.2f,%0.2f,%0.2f (Min,Hour,Day)",
1495 cpt_avg_min,
1496 cpt_avg_hour,
1497 cpt_avg_day);
1498 }
1499 }
1500
1501 // Restore point
1502
1503 u64 restore_point = get_lowest_words_done ();
1504
1505 u64 restore_total = data.words_base;
1506
1507 float percent_restore = 0;
1508
1509 if (restore_total != 0) percent_restore = (float) restore_point / (float) restore_total;
1510
1511 if (progress_end_relative_skip)
1512 {
1513 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
1514 {
1515 float percent_finished = (float) progress_cur_relative_skip / (float) progress_end_relative_skip;
1516 float percent_rejected = 0.0;
1517
1518 if (progress_cur)
1519 {
1520 percent_rejected = (float) (all_rejected) / (float) progress_cur;
1521 }
1522
1523 log_info ("Progress.......: %llu/%llu (%.02f%%)", (unsigned long long int) progress_cur_relative_skip, (unsigned long long int) progress_end_relative_skip, percent_finished * 100);
1524 log_info ("Rejected.......: %llu/%llu (%.02f%%)", (unsigned long long int) all_rejected, (unsigned long long int) progress_cur_relative_skip, percent_rejected * 100);
1525
1526 if (data.restore_disable == 0)
1527 {
1528 if (percent_finished != 1)
1529 {
1530 log_info ("Restore.Point..: %llu/%llu (%.02f%%)", (unsigned long long int) restore_point, (unsigned long long int) restore_total, percent_restore * 100);
1531 }
1532 }
1533 }
1534 }
1535 else
1536 {
1537 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
1538 {
1539 log_info ("Progress.......: %llu/%llu (%.02f%%)", (u64) 0, (u64) 0, (float) 100);
1540 log_info ("Rejected.......: %llu/%llu (%.02f%%)", (u64) 0, (u64) 0, (float) 100);
1541
1542 if (data.restore_disable == 0)
1543 {
1544 log_info ("Restore.Point..: %llu/%llu (%.02f%%)", (u64) 0, (u64) 0, (float) 100);
1545 }
1546 }
1547 else
1548 {
1549 log_info ("Progress.......: %llu", (unsigned long long int) progress_cur_relative_skip);
1550 log_info ("Rejected.......: %llu", (unsigned long long int) all_rejected);
1551
1552 // --restore not allowed if stdin is used -- really? why?
1553
1554 //if (data.restore_disable == 0)
1555 //{
1556 // log_info ("Restore.Point..: %llu", (unsigned long long int) restore_point);
1557 //}
1558 }
1559 }
1560
1561 #ifdef HAVE_HWMON
1562 if (data.gpu_temp_disable == 0)
1563 {
1564 hc_thread_mutex_lock (mux_adl);
1565
1566 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1567 {
1568 hc_device_param_t *device_param = &data.devices_param[device_id];
1569
1570 if (device_param->skipped) continue;
1571
1572 #define HM_STR_BUF_SIZE 255
1573
1574 if (data.hm_device[device_id].fan_supported == 1)
1575 {
1576 char utilization[HM_STR_BUF_SIZE] = { 0 };
1577 char temperature[HM_STR_BUF_SIZE] = { 0 };
1578 char fanspeed[HM_STR_BUF_SIZE] = { 0 };
1579
1580 hm_device_val_to_str ((char *) utilization, HM_STR_BUF_SIZE, "%", hm_get_utilization_with_device_id (device_id));
1581 hm_device_val_to_str ((char *) temperature, HM_STR_BUF_SIZE, "c", hm_get_temperature_with_device_id (device_id));
1582
1583 if (device_param->vendor_id == VENDOR_ID_AMD)
1584 {
1585 hm_device_val_to_str ((char *) fanspeed, HM_STR_BUF_SIZE, "%", hm_get_fanspeed_with_device_id (device_id));
1586 }
1587 else if (device_param->vendor_id == VENDOR_ID_NV)
1588 {
1589 hm_device_val_to_str ((char *) fanspeed, HM_STR_BUF_SIZE, "%", hm_get_fanspeed_with_device_id (device_id));
1590 }
1591
1592 log_info ("HWMon.GPU.#%d...: %s Util, %s Temp, %s Fan", device_id + 1, utilization, temperature, fanspeed);
1593 }
1594 else
1595 {
1596 char utilization[HM_STR_BUF_SIZE] = { 0 };
1597 char temperature[HM_STR_BUF_SIZE] = { 0 };
1598
1599 hm_device_val_to_str ((char *) utilization, HM_STR_BUF_SIZE, "%", hm_get_utilization_with_device_id (device_id));
1600 hm_device_val_to_str ((char *) temperature, HM_STR_BUF_SIZE, "c", hm_get_temperature_with_device_id (device_id));
1601
1602 log_info ("HWMon.GPU.#%d...: %s Util, %s Temp, N/A Fan", device_id + 1, utilization, temperature);
1603 }
1604 }
1605
1606 hc_thread_mutex_unlock (mux_adl);
1607 }
1608 #endif // HAVE_HWMON
1609 }
1610
1611 static void status_benchmark ()
1612 {
1613 if (data.devices_status == STATUS_INIT) return;
1614 if (data.devices_status == STATUS_STARTING) return;
1615
1616 if (data.words_cnt == 0) return;
1617
1618 u64 speed_cnt[DEVICES_MAX] = { 0 };
1619 double speed_ms[DEVICES_MAX] = { 0 };
1620
1621 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1622 {
1623 hc_device_param_t *device_param = &data.devices_param[device_id];
1624
1625 if (device_param->skipped) continue;
1626
1627 speed_cnt[device_id] = device_param->speed_cnt[0];
1628 speed_ms[device_id] = device_param->speed_ms[0];
1629 }
1630
1631 float hashes_all_ms = 0;
1632
1633 float hashes_dev_ms[DEVICES_MAX] = { 0 };
1634
1635 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1636 {
1637 hc_device_param_t *device_param = &data.devices_param[device_id];
1638
1639 if (device_param->skipped) continue;
1640
1641 hashes_dev_ms[device_id] = 0;
1642
1643 if (speed_ms[device_id])
1644 {
1645 hashes_dev_ms[device_id] = speed_cnt[device_id] / speed_ms[device_id];
1646
1647 hashes_all_ms += hashes_dev_ms[device_id];
1648 }
1649 }
1650
1651 /**
1652 * exec time
1653 */
1654
1655 double exec_all_ms[DEVICES_MAX] = { 0 };
1656
1657 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1658 {
1659 hc_device_param_t *device_param = &data.devices_param[device_id];
1660
1661 if (device_param->skipped) continue;
1662
1663 double exec_ms_avg = get_avg_exec_time (device_param, EXEC_CACHE);
1664
1665 exec_all_ms[device_id] = exec_ms_avg;
1666 }
1667
1668 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1669 {
1670 hc_device_param_t *device_param = &data.devices_param[device_id];
1671
1672 if (device_param->skipped) continue;
1673
1674 char display_dev_cur[16] = { 0 };
1675
1676 strncpy (display_dev_cur, "0.00", 4);
1677
1678 format_speed_display (hashes_dev_ms[device_id] * 1000, display_dev_cur, sizeof (display_dev_cur));
1679
1680 log_info ("Speed.Dev.#%d.: %9sH/s (%0.2fms)", device_id + 1, display_dev_cur, exec_all_ms[device_id]);
1681 }
1682
1683 char display_all_cur[16] = { 0 };
1684
1685 strncpy (display_all_cur, "0.00", 4);
1686
1687 format_speed_display (hashes_all_ms * 1000, display_all_cur, sizeof (display_all_cur));
1688
1689 if (data.devices_active > 1) log_info ("Speed.Dev.#*.: %9sH/s", display_all_cur);
1690 }
1691
1692 /**
1693 * hashcat -only- functions
1694 */
1695
1696 static void generate_source_kernel_filename (const uint attack_exec, const uint attack_kern, const uint kern_type, char *shared_dir, char *source_file)
1697 {
1698 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
1699 {
1700 if (attack_kern == ATTACK_KERN_STRAIGHT)
1701 snprintf (source_file, 255, "%s/OpenCL/m%05d_a0.cl", shared_dir, (int) kern_type);
1702 else if (attack_kern == ATTACK_KERN_COMBI)
1703 snprintf (source_file, 255, "%s/OpenCL/m%05d_a1.cl", shared_dir, (int) kern_type);
1704 else if (attack_kern == ATTACK_KERN_BF)
1705 snprintf (source_file, 255, "%s/OpenCL/m%05d_a3.cl", shared_dir, (int) kern_type);
1706 }
1707 else
1708 snprintf (source_file, 255, "%s/OpenCL/m%05d.cl", shared_dir, (int) kern_type);
1709 }
1710
1711 static void generate_cached_kernel_filename (const uint attack_exec, const uint attack_kern, const uint kern_type, char *profile_dir, const char *device_name_chksum, char *cached_file)
1712 {
1713 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
1714 {
1715 if (attack_kern == ATTACK_KERN_STRAIGHT)
1716 snprintf (cached_file, 255, "%s/kernels/m%05d_a0.%s.kernel", profile_dir, (int) kern_type, device_name_chksum);
1717 else if (attack_kern == ATTACK_KERN_COMBI)
1718 snprintf (cached_file, 255, "%s/kernels/m%05d_a1.%s.kernel", profile_dir, (int) kern_type, device_name_chksum);
1719 else if (attack_kern == ATTACK_KERN_BF)
1720 snprintf (cached_file, 255, "%s/kernels/m%05d_a3.%s.kernel", profile_dir, (int) kern_type, device_name_chksum);
1721 }
1722 else
1723 {
1724 snprintf (cached_file, 255, "%s/kernels/m%05d.%s.kernel", profile_dir, (int) kern_type, device_name_chksum);
1725 }
1726 }
1727
1728 static void generate_source_kernel_mp_filename (const uint opti_type, const uint opts_type, char *shared_dir, char *source_file)
1729 {
1730 if ((opti_type & OPTI_TYPE_BRUTE_FORCE) && (opts_type & OPTS_TYPE_PT_GENERATE_BE))
1731 {
1732 snprintf (source_file, 255, "%s/OpenCL/markov_be.cl", shared_dir);
1733 }
1734 else
1735 {
1736 snprintf (source_file, 255, "%s/OpenCL/markov_le.cl", shared_dir);
1737 }
1738 }
1739
1740 static void generate_cached_kernel_mp_filename (const uint opti_type, const uint opts_type, char *profile_dir, const char *device_name_chksum, char *cached_file)
1741 {
1742 if ((opti_type & OPTI_TYPE_BRUTE_FORCE) && (opts_type & OPTS_TYPE_PT_GENERATE_BE))
1743 {
1744 snprintf (cached_file, 255, "%s/kernels/markov_be.%s.kernel", profile_dir, device_name_chksum);
1745 }
1746 else
1747 {
1748 snprintf (cached_file, 255, "%s/kernels/markov_le.%s.kernel", profile_dir, device_name_chksum);
1749 }
1750 }
1751
1752 static void generate_source_kernel_amp_filename (const uint attack_kern, char *shared_dir, char *source_file)
1753 {
1754 snprintf (source_file, 255, "%s/OpenCL/amp_a%d.cl", shared_dir, attack_kern);
1755 }
1756
1757 static void generate_cached_kernel_amp_filename (const uint attack_kern, char *profile_dir, const char *device_name_chksum, char *cached_file)
1758 {
1759 snprintf (cached_file, 255, "%s/kernels/amp_a%d.%s.kernel", profile_dir, attack_kern, device_name_chksum);
1760 }
1761
1762 static uint convert_from_hex (char *line_buf, const uint line_len)
1763 {
1764 if (line_len & 1) return (line_len); // not in hex
1765
1766 if (data.hex_wordlist == 1)
1767 {
1768 uint i;
1769 uint j;
1770
1771 for (i = 0, j = 0; j < line_len; i += 1, j += 2)
1772 {
1773 line_buf[i] = hex_to_u8 ((const u8 *) &line_buf[j]);
1774 }
1775
1776 memset (line_buf + i, 0, line_len - i);
1777
1778 return (i);
1779 }
1780 else if (line_len >= 6) // $HEX[] = 6
1781 {
1782 if (line_buf[0] != '$') return (line_len);
1783 if (line_buf[1] != 'H') return (line_len);
1784 if (line_buf[2] != 'E') return (line_len);
1785 if (line_buf[3] != 'X') return (line_len);
1786 if (line_buf[4] != '[') return (line_len);
1787 if (line_buf[line_len - 1] != ']') return (line_len);
1788
1789 uint i;
1790 uint j;
1791
1792 for (i = 0, j = 5; j < line_len - 1; i += 1, j += 2)
1793 {
1794 line_buf[i] = hex_to_u8 ((const u8 *) &line_buf[j]);
1795 }
1796
1797 memset (line_buf + i, 0, line_len - i);
1798
1799 return (i);
1800 }
1801
1802 return (line_len);
1803 }
1804
1805 static void clear_prompt ()
1806 {
1807 fputc ('\r', stdout);
1808
1809 for (size_t i = 0; i < strlen (PROMPT); i++)
1810 {
1811 fputc (' ', stdout);
1812 }
1813
1814 fputc ('\r', stdout);
1815
1816 fflush (stdout);
1817 }
1818
1819 static void gidd_to_pw_t (hc_device_param_t *device_param, const u64 gidd, pw_t *pw)
1820 {
1821 hc_clEnqueueReadBuffer (data.ocl, device_param->command_queue, device_param->d_pws_buf, CL_TRUE, gidd * sizeof (pw_t), sizeof (pw_t), pw, 0, NULL, NULL);
1822 }
1823
1824 static void check_hash (hc_device_param_t *device_param, const uint salt_pos, const uint digest_pos)
1825 {
1826 char *outfile = data.outfile;
1827 uint quiet = data.quiet;
1828 FILE *pot_fp = data.pot_fp;
1829 uint loopback = data.loopback;
1830 uint debug_mode = data.debug_mode;
1831 char *debug_file = data.debug_file;
1832
1833 char debug_rule_buf[BLOCK_SIZE] = { 0 };
1834 int debug_rule_len = 0; // -1 error
1835 uint debug_plain_len = 0;
1836
1837 u8 debug_plain_ptr[BLOCK_SIZE] = { 0 };
1838
1839 // hash
1840
1841 char out_buf[HCBUFSIZ] = { 0 };
1842
1843 ascii_digest (out_buf, salt_pos, digest_pos);
1844
1845 uint idx = data.salts_buf[salt_pos].digests_offset + digest_pos;
1846
1847 // plain
1848
1849 plain_t plain;
1850
1851 hc_clEnqueueReadBuffer (data.ocl, device_param->command_queue, device_param->d_plain_bufs, CL_TRUE, idx * sizeof (plain_t), sizeof (plain_t), &plain, 0, NULL, NULL);
1852
1853 uint gidvid = plain.gidvid;
1854 uint il_pos = plain.il_pos;
1855
1856 u64 crackpos = device_param->words_off;
1857
1858 uint plain_buf[16] = { 0 };
1859
1860 u8 *plain_ptr = (u8 *) plain_buf;
1861 unsigned int plain_len = 0;
1862
1863 if (data.attack_mode == ATTACK_MODE_STRAIGHT)
1864 {
1865 u64 gidd = gidvid;
1866 u64 gidm = 0;
1867
1868 pw_t pw;
1869
1870 gidd_to_pw_t (device_param, gidd, &pw);
1871
1872 for (int i = 0, j = gidm; i < 16; i++, j++)
1873 {
1874 plain_buf[i] = pw.i[j];
1875 }
1876
1877 plain_len = pw.pw_len;
1878
1879 const uint off = device_param->innerloop_pos + il_pos;
1880
1881 if (debug_mode > 0)
1882 {
1883 debug_rule_len = 0;
1884
1885 // save rule
1886 if ((debug_mode == 1) || (debug_mode == 3) || (debug_mode == 4))
1887 {
1888 memset (debug_rule_buf, 0, sizeof (debug_rule_buf));
1889
1890 debug_rule_len = kernel_rule_to_cpu_rule (debug_rule_buf, &data.kernel_rules_buf[off]);
1891 }
1892
1893 // save plain
1894 if ((debug_mode == 2) || (debug_mode == 3) || (debug_mode == 4))
1895 {
1896 memset (debug_plain_ptr, 0, sizeof (debug_plain_ptr));
1897
1898 memcpy (debug_plain_ptr, plain_ptr, plain_len);
1899
1900 debug_plain_len = plain_len;
1901 }
1902 }
1903
1904 plain_len = apply_rules (data.kernel_rules_buf[off].cmds, &plain_buf[0], &plain_buf[4], plain_len);
1905
1906 crackpos += gidvid;
1907 crackpos *= data.kernel_rules_cnt;
1908 crackpos += device_param->innerloop_pos + il_pos;
1909
1910 if (plain_len > data.pw_max) plain_len = data.pw_max;
1911 }
1912 else if (data.attack_mode == ATTACK_MODE_COMBI)
1913 {
1914 u64 gidd = gidvid;
1915 u64 gidm = 0;
1916
1917 pw_t pw;
1918
1919 gidd_to_pw_t (device_param, gidd, &pw);
1920
1921 for (int i = 0, j = gidm; i < 16; i++, j++)
1922 {
1923 plain_buf[i] = pw.i[j];
1924 }
1925
1926 plain_len = pw.pw_len;
1927
1928 char *comb_buf = (char *) device_param->combs_buf[il_pos].i;
1929 uint comb_len = device_param->combs_buf[il_pos].pw_len;
1930
1931 if (data.combs_mode == COMBINATOR_MODE_BASE_LEFT)
1932 {
1933 memcpy (plain_ptr + plain_len, comb_buf, comb_len);
1934 }
1935 else
1936 {
1937 memmove (plain_ptr + comb_len, plain_ptr, plain_len);
1938
1939 memcpy (plain_ptr, comb_buf, comb_len);
1940 }
1941
1942 plain_len += comb_len;
1943
1944 crackpos += gidvid;
1945 crackpos *= data.combs_cnt;
1946 crackpos += device_param->innerloop_pos + il_pos;
1947
1948 if (data.pw_max != PW_DICTMAX1)
1949 {
1950 if (plain_len > data.pw_max) plain_len = data.pw_max;
1951 }
1952 }
1953 else if (data.attack_mode == ATTACK_MODE_BF)
1954 {
1955 u64 l_off = device_param->kernel_params_mp_l_buf64[3] + gidvid;
1956 u64 r_off = device_param->kernel_params_mp_r_buf64[3] + il_pos;
1957
1958 uint l_start = device_param->kernel_params_mp_l_buf32[5];
1959 uint r_start = device_param->kernel_params_mp_r_buf32[5];
1960
1961 uint l_stop = device_param->kernel_params_mp_l_buf32[4];
1962 uint r_stop = device_param->kernel_params_mp_r_buf32[4];
1963
1964 sp_exec (l_off, (char *) plain_ptr + l_start, data.root_css_buf, data.markov_css_buf, l_start, l_start + l_stop);
1965 sp_exec (r_off, (char *) plain_ptr + r_start, data.root_css_buf, data.markov_css_buf, r_start, r_start + r_stop);
1966
1967 plain_len = data.css_cnt;
1968
1969 crackpos += gidvid;
1970 crackpos *= data.bfs_cnt;
1971 crackpos += device_param->innerloop_pos + il_pos;
1972 }
1973 else if (data.attack_mode == ATTACK_MODE_HYBRID1)
1974 {
1975 u64 gidd = gidvid;
1976 u64 gidm = 0;
1977
1978 pw_t pw;
1979
1980 gidd_to_pw_t (device_param, gidd, &pw);
1981
1982 for (int i = 0, j = gidm; i < 16; i++, j++)
1983 {
1984 plain_buf[i] = pw.i[j];
1985 }
1986
1987 plain_len = pw.pw_len;
1988
1989 u64 off = device_param->kernel_params_mp_buf64[3] + il_pos;
1990
1991 uint start = 0;
1992 uint stop = device_param->kernel_params_mp_buf32[4];
1993
1994 sp_exec (off, (char *) plain_ptr + plain_len, data.root_css_buf, data.markov_css_buf, start, start + stop);
1995
1996 plain_len += start + stop;
1997
1998 crackpos += gidvid;
1999 crackpos *= data.combs_cnt;
2000 crackpos += device_param->innerloop_pos + il_pos;
2001
2002 if (data.pw_max != PW_DICTMAX1)
2003 {
2004 if (plain_len > data.pw_max) plain_len = data.pw_max;
2005 }
2006 }
2007 else if (data.attack_mode == ATTACK_MODE_HYBRID2)
2008 {
2009 u64 gidd = gidvid;
2010 u64 gidm = 0;
2011
2012 pw_t pw;
2013
2014 gidd_to_pw_t (device_param, gidd, &pw);
2015
2016 for (int i = 0, j = gidm; i < 16; i++, j++)
2017 {
2018 plain_buf[i] = pw.i[j];
2019 }
2020
2021 plain_len = pw.pw_len;
2022
2023 u64 off = device_param->kernel_params_mp_buf64[3] + il_pos;
2024
2025 uint start = 0;
2026 uint stop = device_param->kernel_params_mp_buf32[4];
2027
2028 memmove (plain_ptr + stop, plain_ptr, plain_len);
2029
2030 sp_exec (off, (char *) plain_ptr, data.root_css_buf, data.markov_css_buf, start, start + stop);
2031
2032 plain_len += start + stop;
2033
2034 crackpos += gidvid;
2035 crackpos *= data.combs_cnt;
2036 crackpos += device_param->innerloop_pos + il_pos;
2037
2038 if (data.pw_max != PW_DICTMAX1)
2039 {
2040 if (plain_len > data.pw_max) plain_len = data.pw_max;
2041 }
2042 }
2043
2044 if (data.attack_mode == ATTACK_MODE_BF)
2045 {
2046 if (data.opti_type & OPTI_TYPE_BRUTE_FORCE) // lots of optimizations can happen here
2047 {
2048 if (data.opti_type & OPTI_TYPE_SINGLE_HASH)
2049 {
2050 if (data.opti_type & OPTI_TYPE_APPENDED_SALT)
2051 {
2052 plain_len = plain_len - data.salts_buf[0].salt_len;
2053 }
2054 }
2055
2056 if (data.opts_type & OPTS_TYPE_PT_UNICODE)
2057 {
2058 for (uint i = 0, j = 0; i < plain_len; i += 2, j += 1)
2059 {
2060 plain_ptr[j] = plain_ptr[i];
2061 }
2062
2063 plain_len = plain_len / 2;
2064 }
2065 }
2066 }
2067
2068 // if enabled, update also the potfile
2069
2070 if (pot_fp)
2071 {
2072 lock_file (pot_fp);
2073
2074 fprintf (pot_fp, "%s:", out_buf);
2075
2076 format_plain (pot_fp, plain_ptr, plain_len, 1);
2077
2078 fputc ('\n', pot_fp);
2079
2080 fflush (pot_fp);
2081
2082 unlock_file (pot_fp);
2083 }
2084
2085 // outfile
2086
2087 FILE *out_fp = NULL;
2088
2089 if (outfile != NULL)
2090 {
2091 if ((out_fp = fopen (outfile, "ab")) == NULL)
2092 {
2093 log_error ("ERROR: %s: %s", outfile, strerror (errno));
2094
2095 out_fp = stdout;
2096 }
2097 lock_file (out_fp);
2098 }
2099 else
2100 {
2101 out_fp = stdout;
2102
2103 if (quiet == 0) clear_prompt ();
2104 }
2105
2106 format_output (out_fp, out_buf, plain_ptr, plain_len, crackpos, NULL, 0);
2107
2108 if (outfile != NULL)
2109 {
2110 if (out_fp != stdout)
2111 {
2112 fclose (out_fp);
2113 }
2114 }
2115 else
2116 {
2117 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
2118 {
2119 if ((data.devices_status != STATUS_CRACKED) && (data.status != 1))
2120 {
2121 if (quiet == 0) fprintf (stdout, "%s", PROMPT);
2122 if (quiet == 0) fflush (stdout);
2123 }
2124 }
2125 }
2126
2127 // loopback
2128
2129 if (loopback)
2130 {
2131 char *loopback_file = data.loopback_file;
2132
2133 FILE *fb_fp = NULL;
2134
2135 if ((fb_fp = fopen (loopback_file, "ab")) != NULL)
2136 {
2137 lock_file (fb_fp);
2138
2139 format_plain (fb_fp, plain_ptr, plain_len, 1);
2140
2141 fputc ('\n', fb_fp);
2142
2143 fclose (fb_fp);
2144 }
2145 }
2146
2147 // (rule) debug mode
2148
2149 // the next check implies that:
2150 // - (data.attack_mode == ATTACK_MODE_STRAIGHT)
2151 // - debug_mode > 0
2152
2153 if ((debug_plain_len > 0) || (debug_rule_len > 0))
2154 {
2155 if (debug_rule_len < 0) debug_rule_len = 0;
2156
2157 if ((quiet == 0) && (debug_file == NULL)) clear_prompt ();
2158
2159 format_debug (debug_file, debug_mode, debug_plain_ptr, debug_plain_len, plain_ptr, plain_len, debug_rule_buf, debug_rule_len);
2160
2161 if ((quiet == 0) && (debug_file == NULL))
2162 {
2163 fprintf (stdout, "%s", PROMPT);
2164
2165 fflush (stdout);
2166 }
2167 }
2168 }
2169
2170 static void check_cracked (hc_device_param_t *device_param, const uint salt_pos)
2171 {
2172 salt_t *salt_buf = &data.salts_buf[salt_pos];
2173
2174 int found = 0;
2175
2176 hc_clEnqueueReadBuffer (data.ocl, device_param->command_queue, device_param->d_result, CL_TRUE, 0, device_param->size_results, device_param->result, 0, NULL, NULL);
2177
2178 for (uint i = 0; i < device_param->kernel_threads; i++) if (device_param->result[i] == 1) found = 1;
2179
2180 if (found == 1)
2181 {
2182 // display hack (for weak hashes etc, it could be that there is still something to clear on the current line)
2183
2184 log_info_nn ("");
2185
2186 hc_clEnqueueReadBuffer (data.ocl, device_param->command_queue, device_param->d_digests_shown, CL_TRUE, salt_buf->digests_offset * sizeof (uint), salt_buf->digests_cnt * sizeof (uint), &data.digests_shown_tmp[salt_buf->digests_offset], 0, NULL, NULL);
2187
2188 uint cpt_cracked = 0;
2189
2190 for (uint digest_pos = 0; digest_pos < salt_buf->digests_cnt; digest_pos++)
2191 {
2192 uint idx = salt_buf->digests_offset + digest_pos;
2193
2194 if (data.digests_shown_tmp[idx] == 0) continue;
2195
2196 if (data.digests_shown[idx] == 1) continue;
2197
2198 if ((data.opts_type & OPTS_TYPE_PT_NEVERCRACK) == 0)
2199 {
2200 data.digests_shown[idx] = 1;
2201
2202 data.digests_done++;
2203
2204 cpt_cracked++;
2205
2206 salt_buf->digests_done++;
2207
2208 if (salt_buf->digests_done == salt_buf->digests_cnt)
2209 {
2210 data.salts_shown[salt_pos] = 1;
2211
2212 data.salts_done++;
2213 }
2214 }
2215
2216 if (data.salts_done == data.salts_cnt) data.devices_status = STATUS_CRACKED;
2217
2218 check_hash (device_param, salt_pos, digest_pos);
2219 }
2220
2221 if (cpt_cracked > 0)
2222 {
2223 data.cpt_buf[data.cpt_pos].timestamp = time (NULL);
2224 data.cpt_buf[data.cpt_pos].cracked = cpt_cracked;
2225
2226 data.cpt_pos++;
2227
2228 data.cpt_total += cpt_cracked;
2229
2230 if (data.cpt_pos == CPT_BUF) data.cpt_pos = 0;
2231 }
2232
2233 if (data.opts_type & OPTS_TYPE_PT_NEVERCRACK)
2234 {
2235 // we need to reset cracked state on the device
2236 // otherwise host thinks again and again the hash was cracked
2237 // and returns invalid password each time
2238
2239 memset (data.digests_shown_tmp, 0, salt_buf->digests_cnt * sizeof (uint));
2240
2241 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_digests_shown, CL_TRUE, salt_buf->digests_offset * sizeof (uint), salt_buf->digests_cnt * sizeof (uint), &data.digests_shown_tmp[salt_buf->digests_offset], 0, NULL, NULL);
2242 }
2243
2244 memset (device_param->result, 0, device_param->size_results);
2245
2246 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_result, CL_TRUE, 0, device_param->size_results, device_param->result, 0, NULL, NULL);
2247 }
2248 }
2249
2250 static void save_hash ()
2251 {
2252 char *hashfile = data.hashfile;
2253
2254 char new_hashfile[256] = { 0 };
2255 char old_hashfile[256] = { 0 };
2256
2257 snprintf (new_hashfile, 255, "%s.new", hashfile);
2258 snprintf (old_hashfile, 255, "%s.old", hashfile);
2259
2260 unlink (new_hashfile);
2261
2262 char separator = data.separator;
2263
2264 FILE *fp = fopen (new_hashfile, "wb");
2265
2266 if (fp == NULL)
2267 {
2268 log_error ("ERROR: %s: %s", new_hashfile, strerror (errno));
2269
2270 exit (-1);
2271 }
2272
2273 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
2274 {
2275 if (data.salts_shown[salt_pos] == 1) continue;
2276
2277 salt_t *salt_buf = &data.salts_buf[salt_pos];
2278
2279 for (uint digest_pos = 0; digest_pos < salt_buf->digests_cnt; digest_pos++)
2280 {
2281 uint idx = salt_buf->digests_offset + digest_pos;
2282
2283 if (data.digests_shown[idx] == 1) continue;
2284
2285 if (data.hash_mode != 2500)
2286 {
2287 char out_buf[HCBUFSIZ] = { 0 };
2288
2289 if (data.username == 1)
2290 {
2291 user_t *user = data.hash_info[idx]->user;
2292
2293 uint i;
2294
2295 for (i = 0; i < user->user_len; i++) fputc (user->user_name[i], fp);
2296
2297 fputc (separator, fp);
2298 }
2299
2300 ascii_digest (out_buf, salt_pos, digest_pos);
2301
2302 fputs (out_buf, fp);
2303
2304 log_out (fp, "");
2305 }
2306 else
2307 {
2308 hccap_t hccap;
2309
2310 to_hccap_t (&hccap, salt_pos, digest_pos);
2311
2312 fwrite (&hccap, sizeof (hccap_t), 1, fp);
2313 }
2314 }
2315 }
2316
2317 fflush (fp);
2318
2319 fclose (fp);
2320
2321 unlink (old_hashfile);
2322
2323 if (rename (hashfile, old_hashfile) != 0)
2324 {
2325 log_error ("ERROR: Rename file '%s' to '%s': %s", hashfile, old_hashfile, strerror (errno));
2326
2327 exit (-1);
2328 }
2329
2330 unlink (hashfile);
2331
2332 if (rename (new_hashfile, hashfile) != 0)
2333 {
2334 log_error ("ERROR: Rename file '%s' to '%s': %s", new_hashfile, hashfile, strerror (errno));
2335
2336 exit (-1);
2337 }
2338
2339 unlink (old_hashfile);
2340 }
2341
2342 static float find_kernel_power_div (const u64 total_left, const uint kernel_power_all)
2343 {
2344 // function called only in case kernel_power_all > words_left
2345
2346 float kernel_power_div = (float) (total_left) / kernel_power_all;
2347
2348 kernel_power_div += kernel_power_div / 100;
2349
2350 u32 kernel_power_new = (u32) (kernel_power_all * kernel_power_div);
2351
2352 while (kernel_power_new < total_left)
2353 {
2354 kernel_power_div += kernel_power_div / 100;
2355
2356 kernel_power_new = (u32) (kernel_power_all * kernel_power_div);
2357 }
2358
2359 if (data.quiet == 0)
2360 {
2361 clear_prompt ();
2362
2363 //log_info ("");
2364
2365 log_info ("INFO: approaching final keyspace, workload adjusted");
2366 log_info ("");
2367
2368 fprintf (stdout, "%s", PROMPT);
2369
2370 fflush (stdout);
2371 }
2372
2373 if ((kernel_power_all * kernel_power_div) < 8) return 1;
2374
2375 return kernel_power_div;
2376 }
2377
2378 static void run_kernel (const uint kern_run, hc_device_param_t *device_param, const uint num, const uint event_update)
2379 {
2380 uint num_elements = num;
2381
2382 device_param->kernel_params_buf32[30] = data.combs_mode;
2383 device_param->kernel_params_buf32[31] = num;
2384
2385 uint kernel_threads = device_param->kernel_threads;
2386
2387 while (num_elements % kernel_threads) num_elements++;
2388
2389 cl_kernel kernel = NULL;
2390
2391 switch (kern_run)
2392 {
2393 case KERN_RUN_1: kernel = device_param->kernel1; break;
2394 case KERN_RUN_12: kernel = device_param->kernel12; break;
2395 case KERN_RUN_2: kernel = device_param->kernel2; break;
2396 case KERN_RUN_23: kernel = device_param->kernel23; break;
2397 case KERN_RUN_3: kernel = device_param->kernel3; break;
2398 }
2399
2400 hc_clSetKernelArg (data.ocl, kernel, 21, sizeof (cl_uint), device_param->kernel_params[21]);
2401 hc_clSetKernelArg (data.ocl, kernel, 22, sizeof (cl_uint), device_param->kernel_params[22]);
2402 hc_clSetKernelArg (data.ocl, kernel, 23, sizeof (cl_uint), device_param->kernel_params[23]);
2403 hc_clSetKernelArg (data.ocl, kernel, 24, sizeof (cl_uint), device_param->kernel_params[24]);
2404 hc_clSetKernelArg (data.ocl, kernel, 25, sizeof (cl_uint), device_param->kernel_params[25]);
2405 hc_clSetKernelArg (data.ocl, kernel, 26, sizeof (cl_uint), device_param->kernel_params[26]);
2406 hc_clSetKernelArg (data.ocl, kernel, 27, sizeof (cl_uint), device_param->kernel_params[27]);
2407 hc_clSetKernelArg (data.ocl, kernel, 28, sizeof (cl_uint), device_param->kernel_params[28]);
2408 hc_clSetKernelArg (data.ocl, kernel, 29, sizeof (cl_uint), device_param->kernel_params[29]);
2409 hc_clSetKernelArg (data.ocl, kernel, 30, sizeof (cl_uint), device_param->kernel_params[30]);
2410 hc_clSetKernelArg (data.ocl, kernel, 31, sizeof (cl_uint), device_param->kernel_params[31]);
2411
2412 hc_timer_t timer;
2413
2414 hc_timer_set (&timer);
2415
2416 if ((data.opts_type & OPTS_TYPE_PT_BITSLICE) && (data.attack_mode == ATTACK_MODE_BF))
2417 {
2418 const size_t global_work_size[3] = { num_elements, 32, 1 };
2419 const size_t local_work_size[3] = { kernel_threads / 32, 32, 1 };
2420
2421 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 2, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2422 }
2423 else
2424 {
2425 size_t workgroup_size = 0;
2426
2427 hc_clGetKernelWorkGroupInfo (data.ocl, kernel, device_param->device, CL_KERNEL_WORK_GROUP_SIZE, sizeof (size_t), &workgroup_size, NULL);
2428
2429 if (kern_run == KERN_RUN_2)
2430 {
2431 if (data.opti_type & OPTI_TYPE_SLOW_HASH_SIMD)
2432 {
2433 num_elements = CEIL ((float) num_elements / device_param->vector_width);
2434 }
2435 }
2436
2437 if (kernel_threads > workgroup_size) kernel_threads = workgroup_size;
2438
2439 while (num_elements % kernel_threads) num_elements++;
2440
2441 const size_t global_work_size[3] = { num_elements, 1, 1 };
2442 const size_t local_work_size[3] = { kernel_threads, 1, 1 };
2443
2444 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 1, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2445 }
2446
2447 hc_clFlush (data.ocl, device_param->command_queue);
2448
2449 hc_clFinish (data.ocl, device_param->command_queue);
2450
2451 if (event_update)
2452 {
2453 double exec_time;
2454
2455 hc_timer_get (timer, exec_time);
2456
2457 uint exec_pos = device_param->exec_pos;
2458
2459 device_param->exec_ms[exec_pos] = exec_time;
2460
2461 exec_pos++;
2462
2463 if (exec_pos == EXEC_CACHE)
2464 {
2465 exec_pos = 0;
2466 }
2467
2468 device_param->exec_pos = exec_pos;
2469 }
2470 }
2471
2472 static void run_kernel_mp (const uint kern_run, hc_device_param_t *device_param, const uint num)
2473 {
2474 uint num_elements = num;
2475
2476 switch (kern_run)
2477 {
2478 case KERN_RUN_MP: device_param->kernel_params_mp_buf32[8] = num; break;
2479 case KERN_RUN_MP_R: device_param->kernel_params_mp_r_buf32[8] = num; break;
2480 case KERN_RUN_MP_L: device_param->kernel_params_mp_l_buf32[9] = num; break;
2481 }
2482
2483 // causes problems with special threads like in bcrypt
2484 // const uint kernel_threads = device_param->kernel_threads;
2485
2486 uint kernel_threads = device_param->kernel_threads;
2487
2488 while (num_elements % kernel_threads) num_elements++;
2489
2490 cl_kernel kernel = NULL;
2491
2492 switch (kern_run)
2493 {
2494 case KERN_RUN_MP: kernel = device_param->kernel_mp; break;
2495 case KERN_RUN_MP_R: kernel = device_param->kernel_mp_r; break;
2496 case KERN_RUN_MP_L: kernel = device_param->kernel_mp_l; break;
2497 }
2498
2499 switch (kern_run)
2500 {
2501 case KERN_RUN_MP: hc_clSetKernelArg (data.ocl, kernel, 3, sizeof (cl_ulong), device_param->kernel_params_mp[3]);
2502 hc_clSetKernelArg (data.ocl, kernel, 4, sizeof (cl_uint), device_param->kernel_params_mp[4]);
2503 hc_clSetKernelArg (data.ocl, kernel, 5, sizeof (cl_uint), device_param->kernel_params_mp[5]);
2504 hc_clSetKernelArg (data.ocl, kernel, 6, sizeof (cl_uint), device_param->kernel_params_mp[6]);
2505 hc_clSetKernelArg (data.ocl, kernel, 7, sizeof (cl_uint), device_param->kernel_params_mp[7]);
2506 hc_clSetKernelArg (data.ocl, kernel, 8, sizeof (cl_uint), device_param->kernel_params_mp[8]);
2507 break;
2508 case KERN_RUN_MP_R: hc_clSetKernelArg (data.ocl, kernel, 3, sizeof (cl_ulong), device_param->kernel_params_mp_r[3]);
2509 hc_clSetKernelArg (data.ocl, kernel, 4, sizeof (cl_uint), device_param->kernel_params_mp_r[4]);
2510 hc_clSetKernelArg (data.ocl, kernel, 5, sizeof (cl_uint), device_param->kernel_params_mp_r[5]);
2511 hc_clSetKernelArg (data.ocl, kernel, 6, sizeof (cl_uint), device_param->kernel_params_mp_r[6]);
2512 hc_clSetKernelArg (data.ocl, kernel, 7, sizeof (cl_uint), device_param->kernel_params_mp_r[7]);
2513 hc_clSetKernelArg (data.ocl, kernel, 8, sizeof (cl_uint), device_param->kernel_params_mp_r[8]);
2514 break;
2515 case KERN_RUN_MP_L: hc_clSetKernelArg (data.ocl, kernel, 3, sizeof (cl_ulong), device_param->kernel_params_mp_l[3]);
2516 hc_clSetKernelArg (data.ocl, kernel, 4, sizeof (cl_uint), device_param->kernel_params_mp_l[4]);
2517 hc_clSetKernelArg (data.ocl, kernel, 5, sizeof (cl_uint), device_param->kernel_params_mp_l[5]);
2518 hc_clSetKernelArg (data.ocl, kernel, 6, sizeof (cl_uint), device_param->kernel_params_mp_l[6]);
2519 hc_clSetKernelArg (data.ocl, kernel, 7, sizeof (cl_uint), device_param->kernel_params_mp_l[7]);
2520 hc_clSetKernelArg (data.ocl, kernel, 8, sizeof (cl_uint), device_param->kernel_params_mp_l[8]);
2521 hc_clSetKernelArg (data.ocl, kernel, 9, sizeof (cl_uint), device_param->kernel_params_mp_l[9]);
2522 break;
2523 }
2524
2525 size_t workgroup_size = 0;
2526
2527 hc_clGetKernelWorkGroupInfo (data.ocl, kernel, device_param->device, CL_KERNEL_WORK_GROUP_SIZE, sizeof(size_t), &workgroup_size, NULL);
2528
2529 if (kernel_threads > workgroup_size) kernel_threads = workgroup_size;
2530
2531 const size_t global_work_size[3] = { num_elements, 1, 1 };
2532 const size_t local_work_size[3] = { kernel_threads, 1, 1 };
2533
2534 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 1, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2535
2536 hc_clFlush (data.ocl, device_param->command_queue);
2537
2538 hc_clFinish (data.ocl, device_param->command_queue);
2539 }
2540
2541 static void run_kernel_tm (hc_device_param_t *device_param)
2542 {
2543 const uint num_elements = 1024; // fixed
2544
2545 uint kernel_threads = 32;
2546
2547 cl_kernel kernel = device_param->kernel_tm;
2548
2549 size_t workgroup_size = 0;
2550
2551 hc_clGetKernelWorkGroupInfo (data.ocl, kernel, device_param->device, CL_KERNEL_WORK_GROUP_SIZE, sizeof (size_t), &workgroup_size, NULL);
2552
2553 if (kernel_threads > workgroup_size) kernel_threads = workgroup_size;
2554
2555 const size_t global_work_size[3] = { num_elements, 1, 1 };
2556 const size_t local_work_size[3] = { kernel_threads, 1, 1 };
2557
2558 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 1, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2559
2560 hc_clFlush (data.ocl, device_param->command_queue);
2561
2562 hc_clFinish (data.ocl, device_param->command_queue);
2563 }
2564
2565 static void run_kernel_amp (hc_device_param_t *device_param, const uint num)
2566 {
2567 uint num_elements = num;
2568
2569 device_param->kernel_params_amp_buf32[5] = data.combs_mode;
2570 device_param->kernel_params_amp_buf32[6] = num_elements;
2571
2572 // causes problems with special threads like in bcrypt
2573 // const uint kernel_threads = device_param->kernel_threads;
2574
2575 uint kernel_threads = device_param->kernel_threads;
2576
2577 while (num_elements % kernel_threads) num_elements++;
2578
2579 cl_kernel kernel = device_param->kernel_amp;
2580
2581 hc_clSetKernelArg (data.ocl, kernel, 5, sizeof (cl_uint), device_param->kernel_params_amp[5]);
2582 hc_clSetKernelArg (data.ocl, kernel, 6, sizeof (cl_uint), device_param->kernel_params_amp[6]);
2583
2584 size_t workgroup_size = 0;
2585
2586 hc_clGetKernelWorkGroupInfo (data.ocl, kernel, device_param->device, CL_KERNEL_WORK_GROUP_SIZE, sizeof (size_t), &workgroup_size, NULL);
2587
2588 if (kernel_threads > workgroup_size) kernel_threads = workgroup_size;
2589
2590 const size_t global_work_size[3] = { num_elements, 1, 1 };
2591 const size_t local_work_size[3] = { kernel_threads, 1, 1 };
2592
2593 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 1, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2594
2595 hc_clFlush (data.ocl, device_param->command_queue);
2596
2597 hc_clFinish (data.ocl, device_param->command_queue);
2598 }
2599
2600 static void run_kernel_bzero (hc_device_param_t *device_param, cl_mem buf, const size_t size)
2601 {
2602 int rc = -1;
2603
2604 if (device_param->opencl_v12 && device_param->vendor_id == VENDOR_ID_AMD)
2605 {
2606 // So far tested, amd is the only supporting this OpenCL 1.2 function without segfaulting
2607
2608 const cl_uchar zero = 0;
2609
2610 rc = hc_clEnqueueFillBuffer (data.ocl, device_param->command_queue, buf, &zero, sizeof (cl_uchar), 0, size, 0, NULL, NULL);
2611 }
2612
2613 if (rc != 0)
2614 {
2615 // NOTE: clEnqueueFillBuffer () always fails with -59
2616 // IOW, it's not supported by Nvidia drivers <= 352.21, also pocl segfaults, also on apple
2617 // How's that possible, OpenCL 1.2 support is advertised??
2618 // We need to workaround...
2619
2620 #define FILLSZ 0x100000
2621
2622 char *tmp = (char *) mymalloc (FILLSZ);
2623
2624 for (size_t i = 0; i < size; i += FILLSZ)
2625 {
2626 const size_t left = size - i;
2627
2628 const size_t fillsz = MIN (FILLSZ, left);
2629
2630 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, buf, CL_TRUE, i, fillsz, tmp, 0, NULL, NULL);
2631 }
2632
2633 myfree (tmp);
2634 }
2635 }
2636
2637 static void choose_kernel (hc_device_param_t *device_param, const uint attack_exec, const uint attack_mode, const uint opts_type, const salt_t *salt_buf, const uint highest_pw_len, const uint pws_cnt)
2638 {
2639 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
2640 {
2641 if (attack_mode == ATTACK_MODE_BF)
2642 {
2643 if (opts_type & OPTS_TYPE_PT_BITSLICE)
2644 {
2645 const uint size_tm = 32 * sizeof (bs_word_t);
2646
2647 run_kernel_bzero (device_param, device_param->d_tm_c, size_tm);
2648
2649 run_kernel_tm (device_param);
2650
2651 hc_clEnqueueCopyBuffer (data.ocl, device_param->command_queue, device_param->d_tm_c, device_param->d_bfs_c, 0, 0, size_tm, 0, NULL, NULL);
2652 }
2653 }
2654
2655 if (highest_pw_len < 16)
2656 {
2657 run_kernel (KERN_RUN_1, device_param, pws_cnt, true);
2658 }
2659 else if (highest_pw_len < 32)
2660 {
2661 run_kernel (KERN_RUN_2, device_param, pws_cnt, true);
2662 }
2663 else
2664 {
2665 run_kernel (KERN_RUN_3, device_param, pws_cnt, true);
2666 }
2667 }
2668 else
2669 {
2670 run_kernel_amp (device_param, pws_cnt);
2671
2672 run_kernel (KERN_RUN_1, device_param, pws_cnt, false);
2673
2674 if (opts_type & OPTS_TYPE_HOOK12)
2675 {
2676 run_kernel (KERN_RUN_12, device_param, pws_cnt, false);
2677 }
2678
2679 uint iter = salt_buf->salt_iter;
2680
2681 uint loop_step = device_param->kernel_loops;
2682
2683 for (uint loop_pos = 0; loop_pos < iter; loop_pos += loop_step)
2684 {
2685 uint loop_left = iter - loop_pos;
2686
2687 loop_left = MIN (loop_left, loop_step);
2688
2689 device_param->kernel_params_buf32[25] = loop_pos;
2690 device_param->kernel_params_buf32[26] = loop_left;
2691
2692 run_kernel (KERN_RUN_2, device_param, pws_cnt, true);
2693
2694 if (data.devices_status == STATUS_CRACKED) break;
2695 if (data.devices_status == STATUS_ABORTED) break;
2696 if (data.devices_status == STATUS_QUIT) break;
2697
2698 /**
2699 * speed
2700 */
2701
2702 const float iter_part = (float) (loop_pos + loop_left) / iter;
2703
2704 const u64 perf_sum_all = pws_cnt * iter_part;
2705
2706 double speed_ms;
2707
2708 hc_timer_get (device_param->timer_speed, speed_ms);
2709
2710 const u32 speed_pos = device_param->speed_pos;
2711
2712 device_param->speed_cnt[speed_pos] = perf_sum_all;
2713
2714 device_param->speed_ms[speed_pos] = speed_ms;
2715
2716 if (data.benchmark == 1)
2717 {
2718 if (speed_ms > 4096) data.devices_status = STATUS_ABORTED;
2719 }
2720 }
2721
2722 if (opts_type & OPTS_TYPE_HOOK23)
2723 {
2724 run_kernel (KERN_RUN_23, device_param, pws_cnt, false);
2725
2726 hc_clEnqueueReadBuffer (data.ocl, device_param->command_queue, device_param->d_hooks, CL_TRUE, 0, device_param->size_hooks, device_param->hooks_buf, 0, NULL, NULL);
2727
2728 // do something with data
2729
2730 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_hooks, CL_TRUE, 0, device_param->size_hooks, device_param->hooks_buf, 0, NULL, NULL);
2731 }
2732
2733 run_kernel (KERN_RUN_3, device_param, pws_cnt, false);
2734 }
2735 }
2736
2737 static int run_rule_engine (const int rule_len, const char *rule_buf)
2738 {
2739 if (rule_len == 0)
2740 {
2741 return 0;
2742 }
2743 else if (rule_len == 1)
2744 {
2745 if (rule_buf[0] == RULE_OP_MANGLE_NOOP) return 0;
2746 }
2747
2748 return 1;
2749 }
2750
2751 static void run_copy (hc_device_param_t *device_param, const uint pws_cnt)
2752 {
2753 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
2754 {
2755 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_pws_buf, CL_TRUE, 0, pws_cnt * sizeof (pw_t), device_param->pws_buf, 0, NULL, NULL);
2756 }
2757 else if (data.attack_kern == ATTACK_KERN_COMBI)
2758 {
2759 if (data.attack_mode == ATTACK_MODE_HYBRID2)
2760 {
2761 if (data.opts_type & OPTS_TYPE_PT_ADD01)
2762 {
2763 for (u32 i = 0; i < pws_cnt; i++)
2764 {
2765 const u32 pw_len = device_param->pws_buf[i].pw_len;
2766
2767 u8 *ptr = (u8 *) device_param->pws_buf[i].i;
2768
2769 ptr[pw_len] = 0x01;
2770 }
2771 }
2772 else if (data.opts_type & OPTS_TYPE_PT_ADD80)
2773 {
2774 for (u32 i = 0; i < pws_cnt; i++)
2775 {
2776 const u32 pw_len = device_param->pws_buf[i].pw_len;
2777
2778 u8 *ptr = (u8 *) device_param->pws_buf[i].i;
2779
2780 ptr[pw_len] = 0x80;
2781 }
2782 }
2783 }
2784
2785 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_pws_buf, CL_TRUE, 0, pws_cnt * sizeof (pw_t), device_param->pws_buf, 0, NULL, NULL);
2786 }
2787 else if (data.attack_kern == ATTACK_KERN_BF)
2788 {
2789 const u64 off = device_param->words_off;
2790
2791 device_param->kernel_params_mp_l_buf64[3] = off;
2792
2793 run_kernel_mp (KERN_RUN_MP_L, device_param, pws_cnt);
2794 }
2795 }
2796
2797 static double try_run (hc_device_param_t *device_param, const u32 kernel_accel, const u32 kernel_loops)
2798 {
2799 const u32 kernel_power = device_param->device_processors * device_param->kernel_threads * kernel_accel;
2800
2801 device_param->kernel_params_buf32[25] = 0;
2802 device_param->kernel_params_buf32[26] = kernel_loops; // not a bug, both need to be set
2803 device_param->kernel_params_buf32[27] = kernel_loops; // because there's two variables for inner iters for slow and fast hashes
2804
2805 if (data.attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
2806 {
2807 run_kernel (KERN_RUN_1, device_param, kernel_power, true);
2808 }
2809 else
2810 {
2811 run_kernel (KERN_RUN_2, device_param, kernel_power, true);
2812 }
2813
2814 const double exec_ms_prev = get_avg_exec_time (device_param, 1);
2815
2816 return exec_ms_prev;
2817 }
2818
2819 static void autotune (hc_device_param_t *device_param)
2820 {
2821 const double target_ms = TARGET_MS_PROFILE[data.workload_profile - 1];
2822
2823 const u32 kernel_accel_min = device_param->kernel_accel_min;
2824 const u32 kernel_accel_max = device_param->kernel_accel_max;
2825
2826 const u32 kernel_loops_min = device_param->kernel_loops_min;
2827 const u32 kernel_loops_max = device_param->kernel_loops_max;
2828
2829 u32 kernel_accel = kernel_accel_min;
2830 u32 kernel_loops = kernel_loops_min;
2831
2832 // init some fake words
2833
2834 const u32 kernel_power_max = device_param->device_processors * device_param->kernel_threads * kernel_accel_max;
2835
2836 for (u32 i = 0; i < kernel_power_max; i++)
2837 {
2838 device_param->pws_buf[i].i[0] = i;
2839 device_param->pws_buf[i].i[1] = 0x01234567;
2840 device_param->pws_buf[i].pw_len = 7;
2841 }
2842
2843 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_pws_buf, CL_TRUE, 0, kernel_power_max * sizeof (pw_t), device_param->pws_buf, 0, NULL, NULL);
2844
2845 if (data.attack_exec == ATTACK_EXEC_OUTSIDE_KERNEL)
2846 {
2847 run_kernel_amp (device_param, kernel_power_max);
2848 }
2849
2850 // begin actual testing
2851
2852 double exec_ms_final = try_run (device_param, kernel_accel, kernel_loops);
2853
2854 if ((kernel_loops_min == kernel_loops_max) || (kernel_accel_min == kernel_accel_max))
2855 {
2856 // we do this in case the user specified a fixed -u and -n on the commandline
2857 // so we have a cached kernel for benchmark
2858
2859 try_run (device_param, kernel_accel, kernel_loops);
2860 try_run (device_param, kernel_accel, kernel_loops);
2861 try_run (device_param, kernel_accel, kernel_loops);
2862 try_run (device_param, kernel_accel, kernel_loops);
2863 try_run (device_param, kernel_accel, kernel_loops);
2864 }
2865
2866 // first find out highest kernel-loops that stays below target_ms
2867
2868 #define STEPS_CNT 10
2869
2870 for (kernel_loops = kernel_loops_max; kernel_loops > kernel_loops_min; kernel_loops >>= 1)
2871 {
2872 double exec_ms = try_run (device_param, kernel_accel_min, kernel_loops);
2873
2874 if (exec_ms < target_ms) break;
2875 }
2876
2877 // now the same for kernel-accel but with the new kernel-loops from previous loop set
2878
2879 if (kernel_accel_min < kernel_accel_max)
2880 {
2881 for (int i = 0; i < STEPS_CNT; i++)
2882 {
2883 const u32 kernel_accel_try = 1 << i;
2884
2885 if (kernel_accel_try < kernel_accel_min) continue;
2886 if (kernel_accel_try > kernel_accel_max) break;
2887
2888 double exec_ms = try_run (device_param, kernel_accel_try, kernel_loops);
2889
2890 if (exec_ms > target_ms) break;
2891
2892 exec_ms_final = exec_ms;
2893
2894 kernel_accel = kernel_accel_try;
2895 }
2896 }
2897
2898 // there's a chance that we have a fixed kernel_loops but not a fixed kernel_accel
2899 // in such a case the above function would not create any change
2900 // we'll use the runtime to find out if we're allow to do last improvement
2901
2902 if (exec_ms_final > 0)
2903 {
2904 if ((exec_ms_final * 2) <= target_ms)
2905 {
2906 const double exec_left = target_ms / exec_ms_final;
2907
2908 const double accel_left = kernel_accel_max / kernel_accel;
2909
2910 const int exec_accel_min = MIN (exec_left, accel_left); // we want that to be int
2911
2912 if (exec_accel_min >= 2)
2913 {
2914 kernel_accel *= exec_accel_min;
2915 }
2916 }
2917 }
2918
2919 // balancing the workload turns out to be very efficient
2920
2921 const u32 kernel_power_balance = kernel_accel * kernel_loops;
2922
2923 u32 sqrtv;
2924
2925 for (sqrtv = 1; sqrtv < 0x100000; sqrtv++)
2926 {
2927 if ((sqrtv * sqrtv) >= kernel_power_balance) break;
2928 }
2929
2930 const u32 kernel_accel_try = sqrtv;
2931 const u32 kernel_loops_try = sqrtv;
2932
2933 if ((kernel_accel_try <= kernel_accel_max) && (kernel_loops_try >= kernel_loops_min))
2934 {
2935 kernel_accel = kernel_accel_try;
2936 kernel_loops = kernel_loops_try;
2937 }
2938
2939 // reset fake words
2940
2941 memset (device_param->pws_buf, 0, kernel_power_max * sizeof (pw_t));
2942
2943 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_pws_buf, CL_TRUE, 0, kernel_power_max * sizeof (pw_t), device_param->pws_buf, 0, NULL, NULL);
2944 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_pws_amp_buf, CL_TRUE, 0, kernel_power_max * sizeof (pw_t), device_param->pws_buf, 0, NULL, NULL);
2945
2946 // reset timer
2947
2948 device_param->exec_pos = 0;
2949
2950 memset (device_param->exec_ms, 0, EXEC_CACHE * sizeof (double));
2951
2952 // store
2953
2954 device_param->kernel_accel = kernel_accel;
2955 device_param->kernel_loops = kernel_loops;
2956
2957 const u32 kernel_power = device_param->device_processors * device_param->kernel_threads * device_param->kernel_accel;
2958
2959 device_param->kernel_power = kernel_power;
2960
2961 #ifdef DEBUG
2962
2963 if (data.quiet == 0)
2964 {
2965 clear_prompt ();
2966
2967 log_info ("Device #%u: autotuned kernel-accel to %u\n"
2968 "Device #%u: autotuned kernel-loops to %u\n",
2969 device_param->device_id + 1, kernel_accel,
2970 device_param->device_id + 1, kernel_loops);
2971
2972 fprintf (stdout, "%s", PROMPT);
2973
2974 fflush (stdout);
2975 }
2976
2977 #endif
2978 }
2979
2980 static void run_cracker (hc_device_param_t *device_param, const uint pws_cnt)
2981 {
2982 char *line_buf = (char *) mymalloc (HCBUFSIZ);
2983
2984 // init speed timer
2985
2986 uint speed_pos = device_param->speed_pos;
2987
2988 #ifdef _POSIX
2989 if (device_param->timer_speed.tv_sec == 0)
2990 {
2991 hc_timer_set (&device_param->timer_speed);
2992 }
2993 #endif
2994
2995 #ifdef _WIN
2996 if (device_param->timer_speed.QuadPart == 0)
2997 {
2998 hc_timer_set (&device_param->timer_speed);
2999 }
3000 #endif
3001
3002 // find higest password length, this is for optimization stuff
3003
3004 uint highest_pw_len = 0;
3005
3006 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
3007 {
3008 }
3009 else if (data.attack_kern == ATTACK_KERN_COMBI)
3010 {
3011 }
3012 else if (data.attack_kern == ATTACK_KERN_BF)
3013 {
3014 highest_pw_len = device_param->kernel_params_mp_l_buf32[4]
3015 + device_param->kernel_params_mp_l_buf32[5];
3016 }
3017
3018 // iteration type
3019
3020 uint innerloop_step = 0;
3021 uint innerloop_cnt = 0;
3022
3023 if (data.attack_exec == ATTACK_EXEC_INSIDE_KERNEL) innerloop_step = device_param->kernel_loops;
3024 else innerloop_step = 1;
3025
3026 if (data.attack_kern == ATTACK_KERN_STRAIGHT) innerloop_cnt = data.kernel_rules_cnt;
3027 else if (data.attack_kern == ATTACK_KERN_COMBI) innerloop_cnt = data.combs_cnt;
3028 else if (data.attack_kern == ATTACK_KERN_BF) innerloop_cnt = data.bfs_cnt;
3029
3030 // loop start: most outer loop = salt iteration, then innerloops (if multi)
3031
3032 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
3033 {
3034 while (data.devices_status == STATUS_PAUSED) hc_sleep (1);
3035
3036 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
3037
3038 if (data.devices_status == STATUS_CRACKED) break;
3039 if (data.devices_status == STATUS_ABORTED) break;
3040 if (data.devices_status == STATUS_QUIT) break;
3041 if (data.devices_status == STATUS_BYPASS) break;
3042
3043 salt_t *salt_buf = &data.salts_buf[salt_pos];
3044
3045 device_param->kernel_params_buf32[24] = salt_pos;
3046 device_param->kernel_params_buf32[28] = salt_buf->digests_cnt;
3047 device_param->kernel_params_buf32[29] = salt_buf->digests_offset;
3048
3049 FILE *combs_fp = device_param->combs_fp;
3050
3051 if (data.attack_mode == ATTACK_MODE_COMBI)
3052 {
3053 rewind (combs_fp);
3054 }
3055
3056 // innerloops
3057
3058 for (uint innerloop_pos = 0; innerloop_pos < innerloop_cnt; innerloop_pos += innerloop_step)
3059 {
3060 while (data.devices_status == STATUS_PAUSED) hc_sleep (1);
3061
3062 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
3063
3064 if (data.devices_status == STATUS_CRACKED) break;
3065 if (data.devices_status == STATUS_ABORTED) break;
3066 if (data.devices_status == STATUS_QUIT) break;
3067 if (data.devices_status == STATUS_BYPASS) break;
3068
3069 uint innerloop_left = innerloop_cnt - innerloop_pos;
3070
3071 if (innerloop_left > innerloop_step) innerloop_left = innerloop_step;
3072
3073 device_param->innerloop_pos = innerloop_pos;
3074 device_param->innerloop_left = innerloop_left;
3075
3076 device_param->kernel_params_buf32[27] = innerloop_left;
3077
3078 // i think we can get rid of this
3079 if (innerloop_left == 0)
3080 {
3081 puts ("bug, how should this happen????\n");
3082
3083 continue;
3084 }
3085
3086 if (data.salts_shown[salt_pos] == 1)
3087 {
3088 data.words_progress_done[salt_pos] += (u64) pws_cnt * (u64) innerloop_left;
3089
3090 continue;
3091 }
3092
3093 // initialize amplifiers
3094
3095 if (data.attack_mode == ATTACK_MODE_COMBI)
3096 {
3097 uint i = 0;
3098
3099 while (i < innerloop_left)
3100 {
3101 if (feof (combs_fp)) break;
3102
3103 int line_len = fgetl (combs_fp, line_buf);
3104
3105 if (line_len >= PW_MAX1) continue;
3106
3107 line_len = convert_from_hex (line_buf, line_len);
3108
3109 char *line_buf_new = line_buf;
3110
3111 if (run_rule_engine (data.rule_len_r, data.rule_buf_r))
3112 {
3113 char rule_buf_out[BLOCK_SIZE] = { 0 };
3114
3115 int rule_len_out = _old_apply_rule (data.rule_buf_r, data.rule_len_r, line_buf, line_len, rule_buf_out);
3116
3117 if (rule_len_out < 0)
3118 {
3119 data.words_progress_rejected[salt_pos] += pws_cnt;
3120
3121 continue;
3122 }
3123
3124 line_len = rule_len_out;
3125
3126 line_buf_new = rule_buf_out;
3127 }
3128
3129 line_len = MIN (line_len, PW_DICTMAX);
3130
3131 u8 *ptr = (u8 *) device_param->combs_buf[i].i;
3132
3133 memcpy (ptr, line_buf_new, line_len);
3134
3135 memset (ptr + line_len, 0, PW_DICTMAX1 - line_len);
3136
3137 if (data.opts_type & OPTS_TYPE_PT_UPPER)
3138 {
3139 uppercase (ptr, line_len);
3140 }
3141
3142 if (data.combs_mode == COMBINATOR_MODE_BASE_LEFT)
3143 {
3144 if (data.opts_type & OPTS_TYPE_PT_ADD80)
3145 {
3146 ptr[line_len] = 0x80;
3147 }
3148
3149 if (data.opts_type & OPTS_TYPE_PT_ADD01)
3150 {
3151 ptr[line_len] = 0x01;
3152 }
3153 }
3154
3155 device_param->combs_buf[i].pw_len = line_len;
3156
3157 i++;
3158 }
3159
3160 for (uint j = i; j < innerloop_left; j++)
3161 {
3162 device_param->combs_buf[j].i[0] = 0;
3163 device_param->combs_buf[j].i[1] = 0;
3164 device_param->combs_buf[j].i[2] = 0;
3165 device_param->combs_buf[j].i[3] = 0;
3166 device_param->combs_buf[j].i[4] = 0;
3167 device_param->combs_buf[j].i[5] = 0;
3168 device_param->combs_buf[j].i[6] = 0;
3169 device_param->combs_buf[j].i[7] = 0;
3170
3171 device_param->combs_buf[j].pw_len = 0;
3172 }
3173
3174 innerloop_left = i;
3175 }
3176 else if (data.attack_mode == ATTACK_MODE_BF)
3177 {
3178 u64 off = innerloop_pos;
3179
3180 device_param->kernel_params_mp_r_buf64[3] = off;
3181
3182 run_kernel_mp (KERN_RUN_MP_R, device_param, innerloop_left);
3183 }
3184 else if (data.attack_mode == ATTACK_MODE_HYBRID1)
3185 {
3186 u64 off = innerloop_pos;
3187
3188 device_param->kernel_params_mp_buf64[3] = off;
3189
3190 run_kernel_mp (KERN_RUN_MP, device_param, innerloop_left);
3191 }
3192 else if (data.attack_mode == ATTACK_MODE_HYBRID2)
3193 {
3194 u64 off = innerloop_pos;
3195
3196 device_param->kernel_params_mp_buf64[3] = off;
3197
3198 run_kernel_mp (KERN_RUN_MP, device_param, innerloop_left);
3199 }
3200
3201 // copy amplifiers
3202
3203 if (data.attack_mode == ATTACK_MODE_STRAIGHT)
3204 {
3205 hc_clEnqueueCopyBuffer (data.ocl, device_param->command_queue, device_param->d_rules, device_param->d_rules_c, innerloop_pos * sizeof (kernel_rule_t), 0, innerloop_left * sizeof (kernel_rule_t), 0, NULL, NULL);
3206 }
3207 else if (data.attack_mode == ATTACK_MODE_COMBI)
3208 {
3209 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_combs_c, CL_TRUE, 0, innerloop_left * sizeof (comb_t), device_param->combs_buf, 0, NULL, NULL);
3210 }
3211 else if (data.attack_mode == ATTACK_MODE_BF)
3212 {
3213 hc_clEnqueueCopyBuffer (data.ocl, device_param->command_queue, device_param->d_bfs, device_param->d_bfs_c, 0, 0, innerloop_left * sizeof (bf_t), 0, NULL, NULL);
3214 }
3215 else if (data.attack_mode == ATTACK_MODE_HYBRID1)
3216 {
3217 hc_clEnqueueCopyBuffer (data.ocl, device_param->command_queue, device_param->d_combs, device_param->d_combs_c, 0, 0, innerloop_left * sizeof (comb_t), 0, NULL, NULL);
3218 }
3219 else if (data.attack_mode == ATTACK_MODE_HYBRID2)
3220 {
3221 hc_clEnqueueCopyBuffer (data.ocl, device_param->command_queue, device_param->d_combs, device_param->d_combs_c, 0, 0, innerloop_left * sizeof (comb_t), 0, NULL, NULL);
3222 }
3223
3224 if (data.benchmark == 1)
3225 {
3226 hc_timer_set (&device_param->timer_speed);
3227 }
3228
3229 choose_kernel (device_param, data.attack_exec, data.attack_mode, data.opts_type, salt_buf, highest_pw_len, pws_cnt);
3230
3231 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
3232
3233 if (data.devices_status == STATUS_CRACKED) break;
3234 if (data.devices_status == STATUS_ABORTED) break;
3235 if (data.devices_status == STATUS_QUIT) break;
3236
3237 /**
3238 * result
3239 */
3240
3241 hc_thread_mutex_lock (mux_display);
3242
3243 check_cracked (device_param, salt_pos);
3244
3245 hc_thread_mutex_unlock (mux_display);
3246
3247 /**
3248 * progress
3249 */
3250
3251 u64 perf_sum_all = (u64) pws_cnt * (u64) innerloop_left;
3252
3253 hc_thread_mutex_lock (mux_counter);
3254
3255 data.words_progress_done[salt_pos] += perf_sum_all;
3256
3257 hc_thread_mutex_unlock (mux_counter);
3258
3259 /**
3260 * speed
3261 */
3262
3263 double speed_ms;
3264
3265 hc_timer_get (device_param->timer_speed, speed_ms);
3266
3267 hc_timer_set (&device_param->timer_speed);
3268
3269 hc_thread_mutex_lock (mux_display);
3270
3271 // current speed
3272
3273 device_param->speed_cnt[speed_pos] = perf_sum_all;
3274
3275 device_param->speed_ms[speed_pos] = speed_ms;
3276
3277 hc_thread_mutex_unlock (mux_display);
3278
3279 speed_pos++;
3280
3281 if (speed_pos == SPEED_CACHE)
3282 {
3283 speed_pos = 0;
3284 }
3285
3286 /**
3287 * benchmark
3288 */
3289
3290 if (data.benchmark == 1) break;
3291 }
3292 }
3293
3294 device_param->speed_pos = speed_pos;
3295
3296 myfree (line_buf);
3297 }
3298
3299 static void load_segment (wl_data_t *wl_data, FILE *fd)
3300 {
3301 // NOTE: use (never changing) ->incr here instead of ->avail otherwise the buffer gets bigger and bigger
3302
3303 wl_data->pos = 0;
3304
3305 wl_data->cnt = fread (wl_data->buf, 1, wl_data->incr - 1000, fd);
3306
3307 wl_data->buf[wl_data->cnt] = 0;
3308
3309 if (wl_data->cnt == 0) return;
3310
3311 if (wl_data->buf[wl_data->cnt - 1] == '\n') return;
3312
3313 while (!feof (fd))
3314 {
3315 if (wl_data->cnt == wl_data->avail)
3316 {
3317 wl_data->buf = (char *) myrealloc (wl_data->buf, wl_data->avail, wl_data->incr);
3318
3319 wl_data->avail += wl_data->incr;
3320 }
3321
3322 const int c = fgetc (fd);
3323
3324 if (c == EOF) break;
3325
3326 wl_data->buf[wl_data->cnt] = (char) c;
3327
3328 wl_data->cnt++;
3329
3330 if (c == '\n') break;
3331 }
3332
3333 // ensure stream ends with a newline
3334
3335 if (wl_data->buf[wl_data->cnt - 1] != '\n')
3336 {
3337 wl_data->cnt++;
3338
3339 wl_data->buf[wl_data->cnt - 1] = '\n';
3340 }
3341
3342 return;
3343 }
3344
3345 static void get_next_word_lm (char *buf, u32 sz, u32 *len, u32 *off)
3346 {
3347 char *ptr = buf;
3348
3349 for (u32 i = 0; i < sz; i++, ptr++)
3350 {
3351 if (*ptr >= 'a' && *ptr <= 'z') *ptr -= 0x20;
3352
3353 if (i == 7)
3354 {
3355 *off = i;
3356 *len = i;
3357
3358 return;
3359 }
3360
3361 if (*ptr != '\n') continue;
3362
3363 *off = i + 1;
3364
3365 if ((i > 0) && (buf[i - 1] == '\r')) i--;
3366
3367 *len = i;
3368
3369 return;
3370 }
3371
3372 *off = sz;
3373 *len = sz;
3374 }
3375
3376 static void get_next_word_uc (char *buf, u32 sz, u32 *len, u32 *off)
3377 {
3378 char *ptr = buf;
3379
3380 for (u32 i = 0; i < sz; i++, ptr++)
3381 {
3382 if (*ptr >= 'a' && *ptr <= 'z') *ptr -= 0x20;
3383
3384 if (*ptr != '\n') continue;
3385
3386 *off = i + 1;
3387
3388 if ((i > 0) && (buf[i - 1] == '\r')) i--;
3389
3390 *len = i;
3391
3392 return;
3393 }
3394
3395 *off = sz;
3396 *len = sz;
3397 }
3398
3399 static void get_next_word_std (char *buf, u32 sz, u32 *len, u32 *off)
3400 {
3401 char *ptr = buf;
3402
3403 for (u32 i = 0; i < sz; i++, ptr++)
3404 {
3405 if (*ptr != '\n') continue;
3406
3407 *off = i + 1;
3408
3409 if ((i > 0) && (buf[i - 1] == '\r')) i--;
3410
3411 *len = i;
3412
3413 return;
3414 }
3415
3416 *off = sz;
3417 *len = sz;
3418 }
3419
3420 static void get_next_word (wl_data_t *wl_data, FILE *fd, char **out_buf, uint *out_len)
3421 {
3422 while (wl_data->pos < wl_data->cnt)
3423 {
3424 uint off;
3425 uint len;
3426
3427 char *ptr = wl_data->buf + wl_data->pos;
3428
3429 get_next_word_func (ptr, wl_data->cnt - wl_data->pos, &len, &off);
3430
3431 wl_data->pos += off;
3432
3433 if (run_rule_engine (data.rule_len_l, data.rule_buf_l))
3434 {
3435 char rule_buf_out[BLOCK_SIZE] = { 0 };
3436
3437 int rule_len_out = -1;
3438
3439 if (len < BLOCK_SIZE)
3440 {
3441 rule_len_out = _old_apply_rule (data.rule_buf_l, data.rule_len_l, ptr, len, rule_buf_out);
3442 }
3443
3444 if (rule_len_out < 0)
3445 {
3446 continue;
3447 }
3448
3449 if (rule_len_out > PW_MAX)
3450 {
3451 continue;
3452 }
3453 }
3454 else
3455 {
3456 if (len > PW_MAX)
3457 {
3458 continue;
3459 }
3460 }
3461
3462 *out_buf = ptr;
3463 *out_len = len;
3464
3465 return;
3466 }
3467
3468 if (feof (fd))
3469 {
3470 fprintf (stderr, "BUG feof()!!\n");
3471
3472 return;
3473 }
3474
3475 load_segment (wl_data, fd);
3476
3477 get_next_word (wl_data, fd, out_buf, out_len);
3478 }
3479
3480 #ifdef _POSIX
3481 static u64 count_words (wl_data_t *wl_data, FILE *fd, char *dictfile, dictstat_t *dictstat_base, size_t *dictstat_nmemb)
3482 #endif
3483
3484 #ifdef _WIN
3485 static u64 count_words (wl_data_t *wl_data, FILE *fd, char *dictfile, dictstat_t *dictstat_base, uint *dictstat_nmemb)
3486 #endif
3487 {
3488 hc_signal (NULL);
3489
3490 dictstat_t d;
3491
3492 d.cnt = 0;
3493
3494 #ifdef _POSIX
3495 fstat (fileno (fd), &d.stat);
3496 #endif
3497
3498 #ifdef _WIN
3499 _fstat64 (fileno (fd), &d.stat);
3500 #endif
3501
3502 d.stat.st_mode = 0;
3503 d.stat.st_nlink = 0;
3504 d.stat.st_uid = 0;
3505 d.stat.st_gid = 0;
3506 d.stat.st_rdev = 0;
3507 d.stat.st_atime = 0;
3508
3509 #ifdef _POSIX
3510 d.stat.st_blksize = 0;
3511 d.stat.st_blocks = 0;
3512 #endif
3513
3514 if (d.stat.st_size == 0) return 0;
3515
3516 dictstat_t *d_cache = (dictstat_t *) lfind (&d, dictstat_base, dictstat_nmemb, sizeof (dictstat_t), sort_by_dictstat);
3517
3518 if (run_rule_engine (data.rule_len_l, data.rule_buf_l) == 0)
3519 {
3520 if (d_cache)
3521 {
3522 u64 cnt = d_cache->cnt;
3523
3524 u64 keyspace = cnt;
3525
3526 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
3527 {
3528 keyspace *= data.kernel_rules_cnt;
3529 }
3530 else if (data.attack_kern == ATTACK_KERN_COMBI)
3531 {
3532 keyspace *= data.combs_cnt;
3533 }
3534
3535 if (data.quiet == 0) log_info ("Cache-hit dictionary stats %s: %llu bytes, %llu words, %llu keyspace", dictfile, (unsigned long long int) d.stat.st_size, (unsigned long long int) cnt, (unsigned long long int) keyspace);
3536 if (data.quiet == 0) log_info ("");
3537
3538 hc_signal (sigHandler_default);
3539
3540 return (keyspace);
3541 }
3542 }
3543
3544 time_t now = 0;
3545 time_t prev = 0;
3546
3547 u64 comp = 0;
3548 u64 cnt = 0;
3549 u64 cnt2 = 0;
3550
3551 while (!feof (fd))
3552 {
3553 load_segment (wl_data, fd);
3554
3555 comp += wl_data->cnt;
3556
3557 u32 i = 0;
3558
3559 while (i < wl_data->cnt)
3560 {
3561 u32 len;
3562 u32 off;
3563
3564 get_next_word_func (wl_data->buf + i, wl_data->cnt - i, &len, &off);
3565
3566 if (run_rule_engine (data.rule_len_l, data.rule_buf_l))
3567 {
3568 char rule_buf_out[BLOCK_SIZE] = { 0 };
3569
3570 int rule_len_out = -1;
3571
3572 if (len < BLOCK_SIZE)
3573 {
3574 rule_len_out = _old_apply_rule (data.rule_buf_l, data.rule_len_l, wl_data->buf + i, len, rule_buf_out);
3575 }
3576
3577 if (rule_len_out < 0)
3578 {
3579 len = PW_MAX1;
3580 }
3581 else
3582 {
3583 len = rule_len_out;
3584 }
3585 }
3586
3587 if (len < PW_MAX1)
3588 {
3589 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
3590 {
3591 cnt += data.kernel_rules_cnt;
3592 }
3593 else if (data.attack_kern == ATTACK_KERN_COMBI)
3594 {
3595 cnt += data.combs_cnt;
3596 }
3597
3598 d.cnt++;
3599 }
3600
3601 i += off;
3602
3603 cnt2++;
3604 }
3605
3606 time (&now);
3607
3608 if ((now - prev) == 0) continue;
3609
3610 float percent = (float) comp / (float) d.stat.st_size;
3611
3612 if (data.quiet == 0) log_info_nn ("Generating dictionary stats for %s: %llu bytes (%.2f%%), %llu words, %llu keyspace", dictfile, (unsigned long long int) comp, percent * 100, (unsigned long long int) cnt2, (unsigned long long int) cnt);
3613
3614 time (&prev);
3615 }
3616
3617 if (data.quiet == 0) log_info ("Generated dictionary stats for %s: %llu bytes, %llu words, %llu keyspace", dictfile, (unsigned long long int) comp, (unsigned long long int) cnt2, (unsigned long long int) cnt);
3618 if (data.quiet == 0) log_info ("");
3619
3620 lsearch (&d, dictstat_base, dictstat_nmemb, sizeof (dictstat_t), sort_by_dictstat);
3621
3622 hc_signal (sigHandler_default);
3623
3624 return (cnt);
3625 }
3626
3627 static void *thread_monitor (void *p)
3628 {
3629 uint runtime_check = 0;
3630 uint remove_check = 0;
3631 uint status_check = 0;
3632 uint restore_check = 0;
3633
3634 uint restore_left = data.restore_timer;
3635 uint remove_left = data.remove_timer;
3636 uint status_left = data.status_timer;
3637
3638 #ifdef HAVE_HWMON
3639 uint hwmon_check = 0;
3640
3641 // these variables are mainly used for fan control (AMD only)
3642
3643 int *fan_speed_chgd = (int *) mycalloc (data.devices_cnt, sizeof (int));
3644
3645 // temperature controller "loopback" values
3646
3647 int *temp_diff_old = (int *) mycalloc (data.devices_cnt, sizeof (int));
3648 int *temp_diff_sum = (int *) mycalloc (data.devices_cnt, sizeof (int));
3649
3650 #ifdef HAVE_ADL
3651 int temp_threshold = 1; // degrees celcius
3652
3653 int fan_speed_min = 15; // in percentage
3654 int fan_speed_max = 100;
3655 #endif // HAVE_ADL
3656
3657 time_t last_temp_check_time;
3658 #endif // HAVE_HWMON
3659
3660 uint sleep_time = 1;
3661
3662 if (data.runtime)
3663 {
3664 runtime_check = 1;
3665 }
3666
3667 if (data.restore_timer)
3668 {
3669 restore_check = 1;
3670 }
3671
3672 if ((data.remove == 1) && (data.hashlist_mode == HL_MODE_FILE))
3673 {
3674 remove_check = 1;
3675 }
3676
3677 if (data.status == 1)
3678 {
3679 status_check = 1;
3680 }
3681
3682 #ifdef HAVE_HWMON
3683 if (data.gpu_temp_disable == 0)
3684 {
3685 time (&last_temp_check_time);
3686
3687 hwmon_check = 1;
3688 }
3689 #endif
3690
3691 if ((runtime_check == 0) && (remove_check == 0) && (status_check == 0) && (restore_check == 0))
3692 {
3693 #ifdef HAVE_HWMON
3694 if (hwmon_check == 0)
3695 #endif
3696 return (p);
3697 }
3698
3699 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
3700 {
3701 hc_sleep (sleep_time);
3702
3703 if (data.devices_status != STATUS_RUNNING) continue;
3704
3705 #ifdef HAVE_HWMON
3706 if (hwmon_check == 1)
3707 {
3708 hc_thread_mutex_lock (mux_adl);
3709
3710 time_t temp_check_time;
3711
3712 time (&temp_check_time);
3713
3714 uint Ta = temp_check_time - last_temp_check_time; // set Ta = sleep_time; is not good enough (see --remove etc)
3715
3716 if (Ta == 0) Ta = 1;
3717
3718 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
3719 {
3720 hc_device_param_t *device_param = &data.devices_param[device_id];
3721
3722 if (device_param->skipped) continue;
3723
3724 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) continue;
3725
3726 const int temperature = hm_get_temperature_with_device_id (device_id);
3727
3728 if (temperature > (int) data.gpu_temp_abort)
3729 {
3730 log_error ("ERROR: Temperature limit on GPU %d reached, aborting...", device_id + 1);
3731
3732 if (data.devices_status != STATUS_QUIT) myabort ();
3733
3734 break;
3735 }
3736
3737 #ifdef HAVE_ADL
3738 const int gpu_temp_retain = data.gpu_temp_retain;
3739
3740 if (gpu_temp_retain) // VENDOR_ID_AMD implied
3741 {
3742 if (data.hm_device[device_id].fan_supported == 1)
3743 {
3744 int temp_cur = temperature;
3745
3746 int temp_diff_new = gpu_temp_retain - temp_cur;
3747
3748 temp_diff_sum[device_id] = temp_diff_sum[device_id] + temp_diff_new;
3749
3750 // calculate Ta value (time difference in seconds between the last check and this check)
3751
3752 last_temp_check_time = temp_check_time;
3753
3754 float Kp = 1.8;
3755 float Ki = 0.005;
3756 float Kd = 6;
3757
3758 // PID controller (3-term controller: proportional - Kp, integral - Ki, derivative - Kd)
3759
3760 int fan_diff_required = (int) (Kp * (float)temp_diff_new + Ki * Ta * (float)temp_diff_sum[device_id] + Kd * ((float)(temp_diff_new - temp_diff_old[device_id])) / Ta);
3761
3762 if (abs (fan_diff_required) >= temp_threshold)
3763 {
3764 const int fan_speed_cur = hm_get_fanspeed_with_device_id (device_id);
3765
3766 int fan_speed_level = fan_speed_cur;
3767
3768 if (fan_speed_chgd[device_id] == 0) fan_speed_level = temp_cur;
3769
3770 int fan_speed_new = fan_speed_level - fan_diff_required;
3771
3772 if (fan_speed_new > fan_speed_max) fan_speed_new = fan_speed_max;
3773 if (fan_speed_new < fan_speed_min) fan_speed_new = fan_speed_min;
3774
3775 if (fan_speed_new != fan_speed_cur)
3776 {
3777 int freely_change_fan_speed = (fan_speed_chgd[device_id] == 1);
3778 int fan_speed_must_change = (fan_speed_new > fan_speed_cur);
3779
3780 if ((freely_change_fan_speed == 1) || (fan_speed_must_change == 1))
3781 {
3782 hm_set_fanspeed_with_device_id_amd (device_id, fan_speed_new);
3783
3784 fan_speed_chgd[device_id] = 1;
3785 }
3786
3787 temp_diff_old[device_id] = temp_diff_new;
3788 }
3789 }
3790 }
3791 }
3792 #endif // HAVE_ADL
3793 }
3794
3795 hc_thread_mutex_unlock (mux_adl);
3796 }
3797 #endif // HAVE_HWMON
3798
3799 if (restore_check == 1)
3800 {
3801 restore_left--;
3802
3803 if (restore_left == 0)
3804 {
3805 if (data.restore_disable == 0) cycle_restore ();
3806
3807 restore_left = data.restore_timer;
3808 }
3809 }
3810
3811 if ((runtime_check == 1) && (data.runtime_start > 0))
3812 {
3813 time_t runtime_cur;
3814
3815 time (&runtime_cur);
3816
3817 int runtime_left = data.runtime_start + data.runtime - runtime_cur;
3818
3819 if (runtime_left <= 0)
3820 {
3821 if (data.benchmark == 0)
3822 {
3823 if (data.quiet == 0) log_info ("\nNOTE: Runtime limit reached, aborting...\n");
3824 }
3825
3826 if (data.devices_status != STATUS_QUIT) myabort ();
3827 }
3828 }
3829
3830 if (remove_check == 1)
3831 {
3832 remove_left--;
3833
3834 if (remove_left == 0)
3835 {
3836 if (data.digests_saved != data.digests_done)
3837 {
3838 data.digests_saved = data.digests_done;
3839
3840 save_hash ();
3841 }
3842
3843 remove_left = data.remove_timer;
3844 }
3845 }
3846
3847 if (status_check == 1)
3848 {
3849 status_left--;
3850
3851 if (status_left == 0)
3852 {
3853 hc_thread_mutex_lock (mux_display);
3854
3855 if (data.quiet == 0) clear_prompt ();
3856
3857 if (data.quiet == 0) log_info ("");
3858
3859 status_display ();
3860
3861 if (data.quiet == 0) log_info ("");
3862
3863 hc_thread_mutex_unlock (mux_display);
3864
3865 status_left = data.status_timer;
3866 }
3867 }
3868 }
3869
3870 #ifdef HAVE_HWMON
3871 myfree (fan_speed_chgd);
3872
3873 myfree (temp_diff_old);
3874 myfree (temp_diff_sum);
3875 #endif
3876
3877 p = NULL;
3878
3879 return (p);
3880 }
3881
3882 static void *thread_outfile_remove (void *p)
3883 {
3884 // some hash-dependent constants
3885 char *outfile_dir = data.outfile_check_directory;
3886 uint dgst_size = data.dgst_size;
3887 uint isSalted = data.isSalted;
3888 uint esalt_size = data.esalt_size;
3889 uint hash_mode = data.hash_mode;
3890
3891 uint outfile_check_timer = data.outfile_check_timer;
3892
3893 char separator = data.separator;
3894
3895 // some hash-dependent functions
3896 int (*sort_by_digest) (const void *, const void *) = data.sort_by_digest;
3897 int (*parse_func) (char *, uint, hash_t *) = data.parse_func;
3898
3899 // buffers
3900 hash_t hash_buf = { 0, 0, 0, 0, 0 };
3901
3902 hash_buf.digest = mymalloc (dgst_size);
3903
3904 if (isSalted) hash_buf.salt = (salt_t *) mymalloc (sizeof (salt_t));
3905
3906 if (esalt_size) hash_buf.esalt = (void *) mymalloc (esalt_size);
3907
3908 uint digest_buf[64] = { 0 };
3909
3910 outfile_data_t *out_info = NULL;
3911
3912 char **out_files = NULL;
3913
3914 time_t folder_mtime = 0;
3915
3916 int out_cnt = 0;
3917
3918 uint check_left = outfile_check_timer; // or 1 if we want to check it at startup
3919
3920 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
3921 {
3922 hc_sleep (1);
3923
3924 if (data.devices_status != STATUS_RUNNING) continue;
3925
3926 check_left--;
3927
3928 if (check_left == 0)
3929 {
3930 struct stat outfile_check_stat;
3931
3932 if (stat (outfile_dir, &outfile_check_stat) == 0)
3933 {
3934 uint is_dir = S_ISDIR (outfile_check_stat.st_mode);
3935
3936 if (is_dir == 1)
3937 {
3938 if (outfile_check_stat.st_mtime > folder_mtime)
3939 {
3940 char **out_files_new = scan_directory (outfile_dir);
3941
3942 int out_cnt_new = count_dictionaries (out_files_new);
3943
3944 outfile_data_t *out_info_new = NULL;
3945
3946 if (out_cnt_new > 0)
3947 {
3948 out_info_new = (outfile_data_t *) mycalloc (out_cnt_new, sizeof (outfile_data_t));
3949
3950 for (int i = 0; i < out_cnt_new; i++)
3951 {
3952 out_info_new[i].file_name = out_files_new[i];
3953
3954 // check if there are files that we have seen/checked before (and not changed)
3955
3956 for (int j = 0; j < out_cnt; j++)
3957 {
3958 if (strcmp (out_info[j].file_name, out_info_new[i].file_name) == 0)
3959 {
3960 struct stat outfile_stat;
3961
3962 if (stat (out_info_new[i].file_name, &outfile_stat) == 0)
3963 {
3964 if (outfile_stat.st_ctime == out_info[j].ctime)
3965 {
3966 out_info_new[i].ctime = out_info[j].ctime;
3967 out_info_new[i].seek = out_info[j].seek;
3968 }
3969 }
3970 }
3971 }
3972 }
3973 }
3974
3975 local_free (out_info);
3976 local_free (out_files);
3977
3978 out_files = out_files_new;
3979 out_cnt = out_cnt_new;
3980 out_info = out_info_new;
3981
3982 folder_mtime = outfile_check_stat.st_mtime;
3983 }
3984
3985 for (int j = 0; j < out_cnt; j++)
3986 {
3987 FILE *fp = fopen (out_info[j].file_name, "rb");
3988
3989 if (fp != NULL)
3990 {
3991 //hc_thread_mutex_lock (mux_display);
3992
3993 #ifdef _POSIX
3994 struct stat outfile_stat;
3995
3996 fstat (fileno (fp), &outfile_stat);
3997 #endif
3998
3999 #ifdef _WIN
4000 struct stat64 outfile_stat;
4001
4002 _fstat64 (fileno (fp), &outfile_stat);
4003 #endif
4004
4005 if (outfile_stat.st_ctime > out_info[j].ctime)
4006 {
4007 out_info[j].ctime = outfile_stat.st_ctime;
4008 out_info[j].seek = 0;
4009 }
4010
4011 fseek (fp, out_info[j].seek, SEEK_SET);
4012
4013 char *line_buf = (char *) mymalloc (HCBUFSIZ);
4014
4015 while (!feof (fp))
4016 {
4017 char *ptr = fgets (line_buf, HCBUFSIZ - 1, fp);
4018
4019 if (ptr == NULL) break;
4020
4021 int line_len = strlen (line_buf);
4022
4023 if (line_len <= 0) continue;
4024
4025 int iter = MAX_CUT_TRIES;
4026
4027 for (uint i = line_len - 1; i && iter; i--, line_len--)
4028 {
4029 if (line_buf[i] != separator) continue;
4030
4031 int parser_status = PARSER_OK;
4032
4033 if ((hash_mode != 2500) && (hash_mode != 6800))
4034 {
4035 parser_status = parse_func (line_buf, line_len - 1, &hash_buf);
4036 }
4037
4038 uint found = 0;
4039
4040 if (parser_status == PARSER_OK)
4041 {
4042 for (uint salt_pos = 0; (found == 0) && (salt_pos < data.salts_cnt); salt_pos++)
4043 {
4044 if (data.salts_shown[salt_pos] == 1) continue;
4045
4046 salt_t *salt_buf = &data.salts_buf[salt_pos];
4047
4048 for (uint digest_pos = 0; (found == 0) && (digest_pos < salt_buf->digests_cnt); digest_pos++)
4049 {
4050 uint idx = salt_buf->digests_offset + digest_pos;
4051
4052 if (data.digests_shown[idx] == 1) continue;
4053
4054 uint cracked = 0;
4055
4056 if (hash_mode == 6800)
4057 {
4058 if (i == salt_buf->salt_len)
4059 {
4060 cracked = (memcmp (line_buf, salt_buf->salt_buf, salt_buf->salt_len) == 0);
4061 }
4062 }
4063 else if (hash_mode == 2500)
4064 {
4065 // BSSID : MAC1 : MAC2 (:plain)
4066 if (i == (salt_buf->salt_len + 1 + 12 + 1 + 12))
4067 {
4068 cracked = (memcmp (line_buf, salt_buf->salt_buf, salt_buf->salt_len) == 0);
4069
4070 if (!cracked) continue;
4071
4072 // now compare MAC1 and MAC2 too, since we have this additional info
4073 char *mac1_pos = line_buf + salt_buf->salt_len + 1;
4074 char *mac2_pos = mac1_pos + 12 + 1;
4075
4076 wpa_t *wpas = (wpa_t *) data.esalts_buf;
4077 wpa_t *wpa = &wpas[salt_pos];
4078
4079 // compare hex string(s) vs binary MAC address(es)
4080
4081 for (uint i = 0, j = 0; i < 6; i++, j += 2)
4082 {
4083 if (wpa->orig_mac1[i] != hex_to_u8 ((const u8 *) &mac1_pos[j]))
4084 {
4085 cracked = 0;
4086
4087 break;
4088 }
4089 }
4090
4091 // early skip ;)
4092 if (!cracked) continue;
4093
4094 for (uint i = 0, j = 0; i < 6; i++, j += 2)
4095 {
4096 if (wpa->orig_mac2[i] != hex_to_u8 ((const u8 *) &mac2_pos[j]))
4097 {
4098 cracked = 0;
4099
4100 break;
4101 }
4102 }
4103 }
4104 }
4105 else
4106 {
4107 char *digests_buf_ptr = (char *) data.digests_buf;
4108
4109 memcpy (digest_buf, digests_buf_ptr + (data.salts_buf[salt_pos].digests_offset * dgst_size) + (digest_pos * dgst_size), dgst_size);
4110
4111 cracked = (sort_by_digest (digest_buf, hash_buf.digest) == 0);
4112 }
4113
4114 if (cracked == 1)
4115 {
4116 found = 1;
4117
4118 data.digests_shown[idx] = 1;
4119
4120 data.digests_done++;
4121
4122 salt_buf->digests_done++;
4123
4124 if (salt_buf->digests_done == salt_buf->digests_cnt)
4125 {
4126 data.salts_shown[salt_pos] = 1;
4127
4128 data.salts_done++;
4129
4130 if (data.salts_done == data.salts_cnt) data.devices_status = STATUS_CRACKED;
4131 }
4132 }
4133 }
4134
4135 if (data.devices_status == STATUS_CRACKED) break;
4136 }
4137 }
4138
4139 if (found) break;
4140
4141 if (data.devices_status == STATUS_CRACKED) break;
4142
4143 iter--;
4144 }
4145
4146 if (data.devices_status == STATUS_CRACKED) break;
4147 }
4148
4149 myfree (line_buf);
4150
4151 out_info[j].seek = ftell (fp);
4152
4153 //hc_thread_mutex_unlock (mux_display);
4154
4155 fclose (fp);
4156 }
4157 }
4158 }
4159 }
4160
4161 check_left = outfile_check_timer;
4162 }
4163 }
4164
4165 if (esalt_size) local_free (hash_buf.esalt);
4166
4167 if (isSalted) local_free (hash_buf.salt);
4168
4169 local_free (hash_buf.digest);
4170
4171 local_free (out_info);
4172
4173 local_free (out_files);
4174
4175 p = NULL;
4176
4177 return (p);
4178 }
4179
4180 static void pw_add (hc_device_param_t *device_param, const u8 *pw_buf, const int pw_len)
4181 {
4182 if (device_param->pws_cnt < device_param->kernel_power)
4183 {
4184 pw_t *pw = (pw_t *) device_param->pws_buf + device_param->pws_cnt;
4185
4186 u8 *ptr = (u8 *) pw->i;
4187
4188 memcpy (ptr, pw_buf, pw_len);
4189
4190 memset (ptr + pw_len, 0, sizeof (pw->i) - pw_len);
4191
4192 pw->pw_len = pw_len;
4193
4194 device_param->pws_cnt++;
4195 }
4196 else
4197 {
4198 fprintf (stderr, "BUG pw_add()!!\n");
4199
4200 return;
4201 }
4202 }
4203
4204 static uint get_work (hc_device_param_t *device_param, const u64 max, const bool allow_div)
4205 {
4206 hc_thread_mutex_lock (mux_dispatcher);
4207
4208 const u64 words_cur = data.words_cur;
4209 const u64 words_base = (data.limit == 0) ? data.words_base : data.limit;
4210
4211 device_param->words_off = words_cur;
4212
4213 const u64 words_left = words_base - words_cur;
4214
4215 if (allow_div)
4216 {
4217 if (data.kernel_power_all > words_left)
4218 {
4219 if (data.kernel_power_div == 0)
4220 {
4221 data.kernel_power_div = find_kernel_power_div (words_left, data.kernel_power_all);
4222 }
4223 }
4224
4225 if (data.kernel_power_div)
4226 {
4227 if (device_param->kernel_power == device_param->kernel_power_user)
4228 {
4229 const u32 kernel_power_new = (float) device_param->kernel_power * data.kernel_power_div;
4230
4231 if (kernel_power_new < device_param->kernel_power)
4232 {
4233 device_param->kernel_power = kernel_power_new;
4234 }
4235 }
4236 }
4237 }
4238
4239 const uint kernel_power = device_param->kernel_power;
4240
4241 uint work = MIN (words_left, kernel_power);
4242
4243 work = MIN (work, max);
4244
4245 data.words_cur += work;
4246
4247 hc_thread_mutex_unlock (mux_dispatcher);
4248
4249 return work;
4250 }
4251
4252 static void *thread_calc_stdin (void *p)
4253 {
4254 hc_device_param_t *device_param = (hc_device_param_t *) p;
4255
4256 if (device_param->skipped) return NULL;
4257
4258 autotune (device_param);
4259
4260 char *buf = (char *) mymalloc (HCBUFSIZ);
4261
4262 const uint attack_kern = data.attack_kern;
4263
4264 const uint kernel_power = device_param->kernel_power;
4265
4266 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
4267 {
4268 hc_thread_mutex_lock (mux_dispatcher);
4269
4270 if (feof (stdin) != 0)
4271 {
4272 hc_thread_mutex_unlock (mux_dispatcher);
4273
4274 break;
4275 }
4276
4277 uint words_cur = 0;
4278
4279 while (words_cur < kernel_power)
4280 {
4281 char *line_buf = fgets (buf, HCBUFSIZ - 1, stdin);
4282
4283 if (line_buf == NULL) break;
4284
4285 uint line_len = in_superchop (line_buf);
4286
4287 line_len = convert_from_hex (line_buf, line_len);
4288
4289 // post-process rule engine
4290
4291 if (run_rule_engine (data.rule_len_l, data.rule_buf_l))
4292 {
4293 char rule_buf_out[BLOCK_SIZE] = { 0 };
4294
4295 int rule_len_out = -1;
4296
4297 if (line_len < BLOCK_SIZE)
4298 {
4299 rule_len_out = _old_apply_rule (data.rule_buf_l, data.rule_len_l, line_buf, line_len, rule_buf_out);
4300 }
4301
4302 if (rule_len_out < 0) continue;
4303
4304 line_buf = rule_buf_out;
4305 line_len = rule_len_out;
4306 }
4307
4308 if (line_len > PW_MAX)
4309 {
4310 continue;
4311 }
4312
4313 if (attack_kern == ATTACK_KERN_STRAIGHT)
4314 {
4315 if ((line_len < data.pw_min) || (line_len > data.pw_max))
4316 {
4317 hc_thread_mutex_lock (mux_counter);
4318
4319 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
4320 {
4321 data.words_progress_rejected[salt_pos] += data.kernel_rules_cnt;
4322 }
4323
4324 hc_thread_mutex_unlock (mux_counter);
4325
4326 continue;
4327 }
4328 }
4329 else if (attack_kern == ATTACK_KERN_COMBI)
4330 {
4331 // do not check if minimum restriction is satisfied (line_len >= data.pw_min) here
4332 // since we still need to combine the plains
4333
4334 if (line_len > data.pw_max)
4335 {
4336 hc_thread_mutex_lock (mux_counter);
4337
4338 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
4339 {
4340 data.words_progress_rejected[salt_pos] += data.combs_cnt;
4341 }
4342
4343 hc_thread_mutex_unlock (mux_counter);
4344
4345 continue;
4346 }
4347 }
4348
4349 pw_add (device_param, (u8 *) line_buf, line_len);
4350
4351 words_cur++;
4352
4353 if (data.devices_status == STATUS_CRACKED) break;
4354 if (data.devices_status == STATUS_ABORTED) break;
4355 if (data.devices_status == STATUS_QUIT) break;
4356 if (data.devices_status == STATUS_BYPASS) break;
4357 }
4358
4359 hc_thread_mutex_unlock (mux_dispatcher);
4360
4361 if (data.devices_status == STATUS_CRACKED) break;
4362 if (data.devices_status == STATUS_ABORTED) break;
4363 if (data.devices_status == STATUS_QUIT) break;
4364 if (data.devices_status == STATUS_BYPASS) break;
4365
4366 // flush
4367
4368 const uint pws_cnt = device_param->pws_cnt;
4369
4370 if (pws_cnt)
4371 {
4372 run_copy (device_param, pws_cnt);
4373
4374 run_cracker (device_param, pws_cnt);
4375
4376 device_param->pws_cnt = 0;
4377
4378 if (attack_kern == ATTACK_KERN_STRAIGHT)
4379 {
4380 run_kernel_bzero (device_param, device_param->d_rules_c, device_param->size_rules_c);
4381 }
4382 else if (attack_kern == ATTACK_KERN_COMBI)
4383 {
4384 run_kernel_bzero (device_param, device_param->d_combs_c, device_param->size_combs);
4385 }
4386 }
4387 }
4388
4389 device_param->kernel_accel = 0;
4390 device_param->kernel_loops = 0;
4391
4392 myfree (buf);
4393
4394 return NULL;
4395 }
4396
4397 static void *thread_calc (void *p)
4398 {
4399 hc_device_param_t *device_param = (hc_device_param_t *) p;
4400
4401 if (device_param->skipped) return NULL;
4402
4403 autotune (device_param);
4404
4405 const uint attack_mode = data.attack_mode;
4406 const uint attack_kern = data.attack_kern;
4407
4408 if (attack_mode == ATTACK_MODE_BF)
4409 {
4410 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
4411 {
4412 const uint work = get_work (device_param, -1, true);
4413
4414 if (work == 0) break;
4415
4416 const u64 words_off = device_param->words_off;
4417 const u64 words_fin = words_off + work;
4418
4419 const uint pws_cnt = work;
4420
4421 device_param->pws_cnt = pws_cnt;
4422
4423 if (pws_cnt)
4424 {
4425 run_copy (device_param, pws_cnt);
4426
4427 run_cracker (device_param, pws_cnt);
4428
4429 device_param->pws_cnt = 0;
4430
4431 run_kernel_bzero (device_param, device_param->d_bfs_c, device_param->size_bfs);
4432 }
4433
4434 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4435
4436 if (data.devices_status == STATUS_CRACKED) break;
4437 if (data.devices_status == STATUS_ABORTED) break;
4438 if (data.devices_status == STATUS_QUIT) break;
4439 if (data.devices_status == STATUS_BYPASS) break;
4440
4441 if (data.benchmark == 1) break;
4442
4443 device_param->words_done = words_fin;
4444 }
4445 }
4446 else
4447 {
4448 const uint segment_size = data.segment_size;
4449
4450 char *dictfile = data.dictfile;
4451
4452 if (attack_mode == ATTACK_MODE_COMBI)
4453 {
4454 if (data.combs_mode == COMBINATOR_MODE_BASE_RIGHT)
4455 {
4456 dictfile = data.dictfile2;
4457 }
4458 }
4459
4460 FILE *fd = fopen (dictfile, "rb");
4461
4462 if (fd == NULL)
4463 {
4464 log_error ("ERROR: %s: %s", dictfile, strerror (errno));
4465
4466 return NULL;
4467 }
4468
4469 if (attack_mode == ATTACK_MODE_COMBI)
4470 {
4471 const uint combs_mode = data.combs_mode;
4472
4473 if (combs_mode == COMBINATOR_MODE_BASE_LEFT)
4474 {
4475 const char *dictfilec = data.dictfile2;
4476
4477 FILE *combs_fp = fopen (dictfilec, "rb");
4478
4479 if (combs_fp == NULL)
4480 {
4481 log_error ("ERROR: %s: %s", dictfilec, strerror (errno));
4482
4483 fclose (fd);
4484
4485 return NULL;
4486 }
4487
4488 device_param->combs_fp = combs_fp;
4489 }
4490 else if (combs_mode == COMBINATOR_MODE_BASE_RIGHT)
4491 {
4492 const char *dictfilec = data.dictfile;
4493
4494 FILE *combs_fp = fopen (dictfilec, "rb");
4495
4496 if (combs_fp == NULL)
4497 {
4498 log_error ("ERROR: %s: %s", dictfilec, strerror (errno));
4499
4500 fclose (fd);
4501
4502 return NULL;
4503 }
4504
4505 device_param->combs_fp = combs_fp;
4506 }
4507 }
4508
4509 wl_data_t *wl_data = (wl_data_t *) mymalloc (sizeof (wl_data_t));
4510
4511 wl_data->buf = (char *) mymalloc (segment_size);
4512 wl_data->avail = segment_size;
4513 wl_data->incr = segment_size;
4514 wl_data->cnt = 0;
4515 wl_data->pos = 0;
4516
4517 u64 words_cur = 0;
4518
4519 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
4520 {
4521 u64 words_off = 0;
4522 u64 words_fin = 0;
4523
4524 bool allow_div = true;
4525
4526 u64 max = -1;
4527
4528 while (max)
4529 {
4530 const uint work = get_work (device_param, max, allow_div);
4531
4532 allow_div = false;
4533
4534 if (work == 0) break;
4535
4536 words_off = device_param->words_off;
4537 words_fin = words_off + work;
4538
4539 char *line_buf;
4540 uint line_len;
4541
4542 for ( ; words_cur < words_off; words_cur++) get_next_word (wl_data, fd, &line_buf, &line_len);
4543
4544 max = 0;
4545
4546 for ( ; words_cur < words_fin; words_cur++)
4547 {
4548 get_next_word (wl_data, fd, &line_buf, &line_len);
4549
4550 line_len = convert_from_hex (line_buf, line_len);
4551
4552 // post-process rule engine
4553
4554 if (run_rule_engine (data.rule_len_l, data.rule_buf_l))
4555 {
4556 char rule_buf_out[BLOCK_SIZE] = { 0 };
4557
4558 int rule_len_out = -1;
4559
4560 if (line_len < BLOCK_SIZE)
4561 {
4562 rule_len_out = _old_apply_rule (data.rule_buf_l, data.rule_len_l, line_buf, line_len, rule_buf_out);
4563 }
4564
4565 if (rule_len_out < 0) continue;
4566
4567 line_buf = rule_buf_out;
4568 line_len = rule_len_out;
4569 }
4570
4571 if (attack_kern == ATTACK_KERN_STRAIGHT)
4572 {
4573 if ((line_len < data.pw_min) || (line_len > data.pw_max))
4574 {
4575 max++;
4576
4577 hc_thread_mutex_lock (mux_counter);
4578
4579 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
4580 {
4581 data.words_progress_rejected[salt_pos] += data.kernel_rules_cnt;
4582 }
4583
4584 hc_thread_mutex_unlock (mux_counter);
4585
4586 continue;
4587 }
4588 }
4589 else if (attack_kern == ATTACK_KERN_COMBI)
4590 {
4591 // do not check if minimum restriction is satisfied (line_len >= data.pw_min) here
4592 // since we still need to combine the plains
4593
4594 if (line_len > data.pw_max)
4595 {
4596 max++;
4597
4598 hc_thread_mutex_lock (mux_counter);
4599
4600 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
4601 {
4602 data.words_progress_rejected[salt_pos] += data.combs_cnt;
4603 }
4604
4605 hc_thread_mutex_unlock (mux_counter);
4606
4607 continue;
4608 }
4609 }
4610
4611 pw_add (device_param, (u8 *) line_buf, line_len);
4612
4613 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4614
4615 if (data.devices_status == STATUS_CRACKED) break;
4616 if (data.devices_status == STATUS_ABORTED) break;
4617 if (data.devices_status == STATUS_QUIT) break;
4618 if (data.devices_status == STATUS_BYPASS) break;
4619 }
4620
4621 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4622
4623 if (data.devices_status == STATUS_CRACKED) break;
4624 if (data.devices_status == STATUS_ABORTED) break;
4625 if (data.devices_status == STATUS_QUIT) break;
4626 if (data.devices_status == STATUS_BYPASS) break;
4627 }
4628
4629 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4630
4631 if (data.devices_status == STATUS_CRACKED) break;
4632 if (data.devices_status == STATUS_ABORTED) break;
4633 if (data.devices_status == STATUS_QUIT) break;
4634 if (data.devices_status == STATUS_BYPASS) break;
4635
4636 //
4637 // flush
4638 //
4639
4640 const uint pws_cnt = device_param->pws_cnt;
4641
4642 if (pws_cnt)
4643 {
4644 run_copy (device_param, pws_cnt);
4645
4646 run_cracker (device_param, pws_cnt);
4647
4648 device_param->pws_cnt = 0;
4649
4650 if (attack_kern == ATTACK_KERN_STRAIGHT)
4651 {
4652 run_kernel_bzero (device_param, device_param->d_rules_c, device_param->size_rules_c);
4653 }
4654 else if (attack_kern == ATTACK_KERN_COMBI)
4655 {
4656 run_kernel_bzero (device_param, device_param->d_combs_c, device_param->size_combs);
4657 }
4658 }
4659
4660 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4661
4662 if (data.devices_status == STATUS_CRACKED) break;
4663 if (data.devices_status == STATUS_ABORTED) break;
4664 if (data.devices_status == STATUS_QUIT) break;
4665 if (data.devices_status == STATUS_BYPASS) break;
4666
4667 if (words_fin == 0) break;
4668
4669 device_param->words_done = words_fin;
4670 }
4671
4672 if (attack_mode == ATTACK_MODE_COMBI)
4673 {
4674 fclose (device_param->combs_fp);
4675 }
4676
4677 free (wl_data->buf);
4678 free (wl_data);
4679
4680 fclose (fd);
4681 }
4682
4683 device_param->kernel_accel = 0;
4684 device_param->kernel_loops = 0;
4685
4686 return NULL;
4687 }
4688
4689 static void weak_hash_check (hc_device_param_t *device_param, const uint salt_pos)
4690 {
4691 if (!device_param)
4692 {
4693 log_error ("ERROR: %s : Invalid argument", __func__);
4694
4695 exit (-1);
4696 }
4697
4698 salt_t *salt_buf = &data.salts_buf[salt_pos];
4699
4700 device_param->kernel_params_buf32[24] = salt_pos;
4701 device_param->kernel_params_buf32[27] = 1;
4702 device_param->kernel_params_buf32[28] = salt_buf->digests_cnt;
4703 device_param->kernel_params_buf32[29] = salt_buf->digests_offset;
4704 device_param->kernel_params_buf32[30] = 0;
4705 device_param->kernel_params_buf32[31] = 1;
4706
4707 char *dictfile_old = data.dictfile;
4708
4709 const char *weak_hash_check = "weak-hash-check";
4710
4711 data.dictfile = (char *) weak_hash_check;
4712
4713 uint cmd0_rule_old = data.kernel_rules_buf[0].cmds[0];
4714
4715 data.kernel_rules_buf[0].cmds[0] = 0;
4716
4717 /**
4718 * run the kernel
4719 */
4720
4721 if (data.attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
4722 {
4723 run_kernel (KERN_RUN_1, device_param, 1, false);
4724 }
4725 else
4726 {
4727 run_kernel (KERN_RUN_1, device_param, 1, false);
4728
4729 uint loop_step = 16;
4730
4731 const uint iter = salt_buf->salt_iter;
4732
4733 for (uint loop_pos = 0; loop_pos < iter; loop_pos += loop_step)
4734 {
4735 uint loop_left = iter - loop_pos;
4736
4737 loop_left = MIN (loop_left, loop_step);
4738
4739 device_param->kernel_params_buf32[25] = loop_pos;
4740 device_param->kernel_params_buf32[26] = loop_left;
4741
4742 run_kernel (KERN_RUN_2, device_param, 1, false);
4743 }
4744
4745 run_kernel (KERN_RUN_3, device_param, 1, false);
4746 }
4747
4748 /**
4749 * result
4750 */
4751
4752 check_cracked (device_param, salt_pos);
4753
4754 /**
4755 * cleanup
4756 */
4757
4758 device_param->kernel_params_buf32[24] = 0;
4759 device_param->kernel_params_buf32[25] = 0;
4760 device_param->kernel_params_buf32[26] = 0;
4761 device_param->kernel_params_buf32[27] = 0;
4762 device_param->kernel_params_buf32[28] = 0;
4763 device_param->kernel_params_buf32[29] = 0;
4764 device_param->kernel_params_buf32[30] = 0;
4765 device_param->kernel_params_buf32[31] = 0;
4766
4767 data.dictfile = dictfile_old;
4768
4769 data.kernel_rules_buf[0].cmds[0] = cmd0_rule_old;
4770 }
4771
4772 // hlfmt hashcat
4773
4774 static void hlfmt_hash_hashcat (char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
4775 {
4776 if (data.username == 0)
4777 {
4778 *hashbuf_pos = line_buf;
4779 *hashbuf_len = line_len;
4780 }
4781 else
4782 {
4783 char *pos = line_buf;
4784 int len = line_len;
4785
4786 for (int i = 0; i < line_len; i++, pos++, len--)
4787 {
4788 if (line_buf[i] == data.separator)
4789 {
4790 pos++;
4791
4792 len--;
4793
4794 break;
4795 }
4796 }
4797
4798 *hashbuf_pos = pos;
4799 *hashbuf_len = len;
4800 }
4801 }
4802
4803 static void hlfmt_user_hashcat (char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
4804 {
4805 char *pos = NULL;
4806 int len = 0;
4807
4808 int sep_cnt = 0;
4809
4810 for (int i = 0; i < line_len; i++)
4811 {
4812 if (line_buf[i] == data.separator)
4813 {
4814 sep_cnt++;
4815
4816 continue;
4817 }
4818
4819 if (sep_cnt == 0)
4820 {
4821 if (pos == NULL) pos = line_buf + i;
4822
4823 len++;
4824 }
4825 }
4826
4827 *userbuf_pos = pos;
4828 *userbuf_len = len;
4829 }
4830
4831 // hlfmt pwdump
4832
4833 static int hlfmt_detect_pwdump (char *line_buf, int line_len)
4834 {
4835 int sep_cnt = 0;
4836
4837 int sep2_len = 0;
4838 int sep3_len = 0;
4839
4840 for (int i = 0; i < line_len; i++)
4841 {
4842 if (line_buf[i] == ':')
4843 {
4844 sep_cnt++;
4845
4846 continue;
4847 }
4848
4849 if (sep_cnt == 2) sep2_len++;
4850 if (sep_cnt == 3) sep3_len++;
4851 }
4852
4853 if ((sep_cnt == 6) && ((sep2_len == 32) || (sep3_len == 32))) return 1;
4854
4855 return 0;
4856 }
4857
4858 static void hlfmt_hash_pwdump (char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
4859 {
4860 char *pos = NULL;
4861 int len = 0;
4862
4863 int sep_cnt = 0;
4864
4865 for (int i = 0; i < line_len; i++)
4866 {
4867 if (line_buf[i] == ':')
4868 {
4869 sep_cnt++;
4870
4871 continue;
4872 }
4873
4874 if (data.hash_mode == 1000)
4875 {
4876 if (sep_cnt == 3)
4877 {
4878 if (pos == NULL) pos = line_buf + i;
4879
4880 len++;
4881 }
4882 }
4883 else if (data.hash_mode == 3000)
4884 {
4885 if (sep_cnt == 2)
4886 {
4887 if (pos == NULL) pos = line_buf + i;
4888
4889 len++;
4890 }
4891 }
4892 }
4893
4894 *hashbuf_pos = pos;
4895 *hashbuf_len = len;
4896 }
4897
4898 static void hlfmt_user_pwdump (char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
4899 {
4900 char *pos = NULL;
4901 int len = 0;
4902
4903 int sep_cnt = 0;
4904
4905 for (int i = 0; i < line_len; i++)
4906 {
4907 if (line_buf[i] == ':')
4908 {
4909 sep_cnt++;
4910
4911 continue;
4912 }
4913
4914 if (sep_cnt == 0)
4915 {
4916 if (pos == NULL) pos = line_buf + i;
4917
4918 len++;
4919 }
4920 }
4921
4922 *userbuf_pos = pos;
4923 *userbuf_len = len;
4924 }
4925
4926 // hlfmt passwd
4927
4928 static int hlfmt_detect_passwd (char *line_buf, int line_len)
4929 {
4930 int sep_cnt = 0;
4931
4932 char sep5_first = 0;
4933 char sep6_first = 0;
4934
4935 for (int i = 0; i < line_len; i++)
4936 {
4937 if (line_buf[i] == ':')
4938 {
4939 sep_cnt++;
4940
4941 continue;
4942 }
4943
4944 if (sep_cnt == 5) if (sep5_first == 0) sep5_first = line_buf[i];
4945 if (sep_cnt == 6) if (sep6_first == 0) sep6_first = line_buf[i];
4946 }
4947
4948 if ((sep_cnt == 6) && ((sep5_first == '/') || (sep6_first == '/'))) return 1;
4949
4950 return 0;
4951 }
4952
4953 static void hlfmt_hash_passwd (char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
4954 {
4955 char *pos = NULL;
4956 int len = 0;
4957
4958 int sep_cnt = 0;
4959
4960 for (int i = 0; i < line_len; i++)
4961 {
4962 if (line_buf[i] == ':')
4963 {
4964 sep_cnt++;
4965
4966 continue;
4967 }
4968
4969 if (sep_cnt == 1)
4970 {
4971 if (pos == NULL) pos = line_buf + i;
4972
4973 len++;
4974 }
4975 }
4976
4977 *hashbuf_pos = pos;
4978 *hashbuf_len = len;
4979 }
4980
4981 static void hlfmt_user_passwd (char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
4982 {
4983 char *pos = NULL;
4984 int len = 0;
4985
4986 int sep_cnt = 0;
4987
4988 for (int i = 0; i < line_len; i++)
4989 {
4990 if (line_buf[i] == ':')
4991 {
4992 sep_cnt++;
4993
4994 continue;
4995 }
4996
4997 if (sep_cnt == 0)
4998 {
4999 if (pos == NULL) pos = line_buf + i;
5000
5001 len++;
5002 }
5003 }
5004
5005 *userbuf_pos = pos;
5006 *userbuf_len = len;
5007 }
5008
5009 // hlfmt shadow
5010
5011 static int hlfmt_detect_shadow (char *line_buf, int line_len)
5012 {
5013 int sep_cnt = 0;
5014
5015 for (int i = 0; i < line_len; i++)
5016 {
5017 if (line_buf[i] == ':') sep_cnt++;
5018 }
5019
5020 if (sep_cnt == 8) return 1;
5021
5022 return 0;
5023 }
5024
5025 static void hlfmt_hash_shadow (char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
5026 {
5027 hlfmt_hash_passwd (line_buf, line_len, hashbuf_pos, hashbuf_len);
5028 }
5029
5030 static void hlfmt_user_shadow (char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
5031 {
5032 hlfmt_user_passwd (line_buf, line_len, userbuf_pos, userbuf_len);
5033 }
5034
5035 // hlfmt main
5036
5037 static void hlfmt_hash (uint hashfile_format, char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
5038 {
5039 switch (hashfile_format)
5040 {
5041 case HLFMT_HASHCAT: hlfmt_hash_hashcat (line_buf, line_len, hashbuf_pos, hashbuf_len); break;
5042 case HLFMT_PWDUMP: hlfmt_hash_pwdump (line_buf, line_len, hashbuf_pos, hashbuf_len); break;
5043 case HLFMT_PASSWD: hlfmt_hash_passwd (line_buf, line_len, hashbuf_pos, hashbuf_len); break;
5044 case HLFMT_SHADOW: hlfmt_hash_shadow (line_buf, line_len, hashbuf_pos, hashbuf_len); break;
5045 }
5046 }
5047
5048 static void hlfmt_user (uint hashfile_format, char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
5049 {
5050 switch (hashfile_format)
5051 {
5052 case HLFMT_HASHCAT: hlfmt_user_hashcat (line_buf, line_len, userbuf_pos, userbuf_len); break;
5053 case HLFMT_PWDUMP: hlfmt_user_pwdump (line_buf, line_len, userbuf_pos, userbuf_len); break;
5054 case HLFMT_PASSWD: hlfmt_user_passwd (line_buf, line_len, userbuf_pos, userbuf_len); break;
5055 case HLFMT_SHADOW: hlfmt_user_shadow (line_buf, line_len, userbuf_pos, userbuf_len); break;
5056 }
5057 }
5058
5059 char *strhlfmt (const uint hashfile_format)
5060 {
5061 switch (hashfile_format)
5062 {
5063 case HLFMT_HASHCAT: return ((char *) HLFMT_TEXT_HASHCAT); break;
5064 case HLFMT_PWDUMP: return ((char *) HLFMT_TEXT_PWDUMP); break;
5065 case HLFMT_PASSWD: return ((char *) HLFMT_TEXT_PASSWD); break;
5066 case HLFMT_SHADOW: return ((char *) HLFMT_TEXT_SHADOW); break;
5067 case HLFMT_DCC: return ((char *) HLFMT_TEXT_DCC); break;
5068 case HLFMT_DCC2: return ((char *) HLFMT_TEXT_DCC2); break;
5069 case HLFMT_NETNTLM1: return ((char *) HLFMT_TEXT_NETNTLM1); break;
5070 case HLFMT_NETNTLM2: return ((char *) HLFMT_TEXT_NETNTLM2); break;
5071 case HLFMT_NSLDAP: return ((char *) HLFMT_TEXT_NSLDAP); break;
5072 case HLFMT_NSLDAPS: return ((char *) HLFMT_TEXT_NSLDAPS); break;
5073 }
5074
5075 return ((char *) "Unknown");
5076 }
5077
5078 static uint hlfmt_detect (FILE *fp, uint max_check)
5079 {
5080 // Exception: those formats are wrongly detected as HLFMT_SHADOW, prevent it
5081
5082 if (data.hash_mode == 5300) return HLFMT_HASHCAT;
5083 if (data.hash_mode == 5400) return HLFMT_HASHCAT;
5084
5085 uint *formats_cnt = (uint *) mycalloc (HLFMTS_CNT, sizeof (uint));
5086
5087 uint num_check = 0;
5088
5089 char *line_buf = (char *) mymalloc (HCBUFSIZ);
5090
5091 while (!feof (fp))
5092 {
5093 int line_len = fgetl (fp, line_buf);
5094
5095 if (line_len == 0) continue;
5096
5097 if (hlfmt_detect_pwdump (line_buf, line_len)) formats_cnt[HLFMT_PWDUMP]++;
5098 if (hlfmt_detect_passwd (line_buf, line_len)) formats_cnt[HLFMT_PASSWD]++;
5099 if (hlfmt_detect_shadow (line_buf, line_len)) formats_cnt[HLFMT_SHADOW]++;
5100
5101 if (num_check == max_check) break;
5102
5103 num_check++;
5104 }
5105
5106 myfree (line_buf);
5107
5108 uint hashlist_format = HLFMT_HASHCAT;
5109
5110 for (int i = 1; i < HLFMTS_CNT; i++)
5111 {
5112 if (formats_cnt[i - 1] >= formats_cnt[i]) continue;
5113
5114 hashlist_format = i;
5115 }
5116
5117 free (formats_cnt);
5118
5119 return hashlist_format;
5120 }
5121
5122 /**
5123 * some further helper function
5124 */
5125
5126 // wrapper around mymalloc for ADL
5127
5128 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
5129 void *__stdcall ADL_Main_Memory_Alloc (const int iSize)
5130 {
5131 return mymalloc (iSize);
5132 }
5133 #endif
5134
5135 static uint generate_bitmaps (const uint digests_cnt, const uint dgst_size, const uint dgst_shifts, char *digests_buf_ptr, const uint bitmap_mask, const uint bitmap_size, uint *bitmap_a, uint *bitmap_b, uint *bitmap_c, uint *bitmap_d, const u64 collisions_max)
5136 {
5137 u64 collisions = 0;
5138
5139 const uint dgst_pos0 = data.dgst_pos0;
5140 const uint dgst_pos1 = data.dgst_pos1;
5141 const uint dgst_pos2 = data.dgst_pos2;
5142 const uint dgst_pos3 = data.dgst_pos3;
5143
5144 memset (bitmap_a, 0, bitmap_size);
5145 memset (bitmap_b, 0, bitmap_size);
5146 memset (bitmap_c, 0, bitmap_size);
5147 memset (bitmap_d, 0, bitmap_size);
5148
5149 for (uint i = 0; i < digests_cnt; i++)
5150 {
5151 uint *digest_ptr = (uint *) digests_buf_ptr;
5152
5153 digests_buf_ptr += dgst_size;
5154
5155 const uint val0 = 1u << (digest_ptr[dgst_pos0] & 0x1f);
5156 const uint val1 = 1u << (digest_ptr[dgst_pos1] & 0x1f);
5157 const uint val2 = 1u << (digest_ptr[dgst_pos2] & 0x1f);
5158 const uint val3 = 1u << (digest_ptr[dgst_pos3] & 0x1f);
5159
5160 const uint idx0 = (digest_ptr[dgst_pos0] >> dgst_shifts) & bitmap_mask;
5161 const uint idx1 = (digest_ptr[dgst_pos1] >> dgst_shifts) & bitmap_mask;
5162 const uint idx2 = (digest_ptr[dgst_pos2] >> dgst_shifts) & bitmap_mask;
5163 const uint idx3 = (digest_ptr[dgst_pos3] >> dgst_shifts) & bitmap_mask;
5164
5165 if (bitmap_a[idx0] & val0) collisions++;
5166 if (bitmap_b[idx1] & val1) collisions++;
5167 if (bitmap_c[idx2] & val2) collisions++;
5168 if (bitmap_d[idx3] & val3) collisions++;
5169
5170 bitmap_a[idx0] |= val0;
5171 bitmap_b[idx1] |= val1;
5172 bitmap_c[idx2] |= val2;
5173 bitmap_d[idx3] |= val3;
5174
5175 if (collisions >= collisions_max) return 0x7fffffff;
5176 }
5177
5178 return collisions;
5179 }
5180
5181 /**
5182 * main
5183 */
5184
5185 int main (int argc, char **argv)
5186 {
5187 /**
5188 * To help users a bit
5189 */
5190
5191 char *compute = getenv ("COMPUTE");
5192
5193 if (compute)
5194 {
5195 static char display[100];
5196
5197 snprintf (display, sizeof (display) - 1, "DISPLAY=%s", compute);
5198
5199 putenv (display);
5200 }
5201 else
5202 {
5203 if (getenv ("DISPLAY") == NULL)
5204 putenv ((char *) "DISPLAY=:0");
5205 }
5206
5207 if (getenv ("GPU_MAX_ALLOC_PERCENT") == NULL)
5208 putenv ((char *) "GPU_MAX_ALLOC_PERCENT=100");
5209
5210 if (getenv ("CPU_MAX_ALLOC_PERCENT") == NULL)
5211 putenv ((char *) "CPU_MAX_ALLOC_PERCENT=100");
5212
5213 if (getenv ("GPU_USE_SYNC_OBJECTS") == NULL)
5214 putenv ((char *) "GPU_USE_SYNC_OBJECTS=1");
5215
5216 if (getenv ("CUDA_CACHE_DISABLE") == NULL)
5217 putenv ((char *) "CUDA_CACHE_DISABLE=1");
5218
5219 if (getenv ("POCL_KERNEL_CACHE") == NULL)
5220 putenv ((char *) "POCL_KERNEL_CACHE=0");
5221
5222 /**
5223 * Real init
5224 */
5225
5226 memset (&data, 0, sizeof (hc_global_data_t));
5227
5228 time_t proc_start;
5229
5230 time (&proc_start);
5231
5232 data.proc_start = proc_start;
5233
5234 int myargc = argc;
5235 char **myargv = argv;
5236
5237 hc_thread_mutex_init (mux_dispatcher);
5238 hc_thread_mutex_init (mux_counter);
5239 hc_thread_mutex_init (mux_display);
5240 hc_thread_mutex_init (mux_adl);
5241
5242 /**
5243 * commandline parameters
5244 */
5245
5246 uint usage = USAGE;
5247 uint version = VERSION;
5248 uint quiet = QUIET;
5249 uint benchmark = BENCHMARK;
5250 uint show = SHOW;
5251 uint left = LEFT;
5252 uint username = USERNAME;
5253 uint remove = REMOVE;
5254 uint remove_timer = REMOVE_TIMER;
5255 u64 skip = SKIP;
5256 u64 limit = LIMIT;
5257 uint keyspace = KEYSPACE;
5258 uint potfile_disable = POTFILE_DISABLE;
5259 char *potfile_path = NULL;
5260 uint debug_mode = DEBUG_MODE;
5261 char *debug_file = NULL;
5262 char *induction_dir = NULL;
5263 char *outfile_check_dir = NULL;
5264 uint force = FORCE;
5265 uint runtime = RUNTIME;
5266 uint hash_mode = HASH_MODE;
5267 uint attack_mode = ATTACK_MODE;
5268 uint markov_disable = MARKOV_DISABLE;
5269 uint markov_classic = MARKOV_CLASSIC;
5270 uint markov_threshold = MARKOV_THRESHOLD;
5271 char *markov_hcstat = NULL;
5272 char *outfile = NULL;
5273 uint outfile_format = OUTFILE_FORMAT;
5274 uint outfile_autohex = OUTFILE_AUTOHEX;
5275 uint outfile_check_timer = OUTFILE_CHECK_TIMER;
5276 uint restore = RESTORE;
5277 uint restore_timer = RESTORE_TIMER;
5278 uint restore_disable = RESTORE_DISABLE;
5279 uint status = STATUS;
5280 uint status_timer = STATUS_TIMER;
5281 uint status_automat = STATUS_AUTOMAT;
5282 uint loopback = LOOPBACK;
5283 uint weak_hash_threshold = WEAK_HASH_THRESHOLD;
5284 char *session = NULL;
5285 uint hex_charset = HEX_CHARSET;
5286 uint hex_salt = HEX_SALT;
5287 uint hex_wordlist = HEX_WORDLIST;
5288 uint rp_gen = RP_GEN;
5289 uint rp_gen_func_min = RP_GEN_FUNC_MIN;
5290 uint rp_gen_func_max = RP_GEN_FUNC_MAX;
5291 uint rp_gen_seed = RP_GEN_SEED;
5292 char *rule_buf_l = (char *) RULE_BUF_L;
5293 char *rule_buf_r = (char *) RULE_BUF_R;
5294 uint increment = INCREMENT;
5295 uint increment_min = INCREMENT_MIN;
5296 uint increment_max = INCREMENT_MAX;
5297 char *cpu_affinity = NULL;
5298 OCL_PTR *ocl = NULL;
5299 char *opencl_devices = NULL;
5300 char *opencl_platforms = NULL;
5301 char *opencl_device_types = NULL;
5302 uint opencl_vector_width = OPENCL_VECTOR_WIDTH;
5303 char *truecrypt_keyfiles = NULL;
5304 uint workload_profile = WORKLOAD_PROFILE;
5305 uint kernel_accel = KERNEL_ACCEL;
5306 uint kernel_loops = KERNEL_LOOPS;
5307 uint gpu_temp_disable = GPU_TEMP_DISABLE;
5308 #ifdef HAVE_HWMON
5309 uint gpu_temp_abort = GPU_TEMP_ABORT;
5310 uint gpu_temp_retain = GPU_TEMP_RETAIN;
5311 #ifdef HAVE_ADL
5312 uint powertune_enable = POWERTUNE_ENABLE;
5313 #endif
5314 #endif
5315 uint logfile_disable = LOGFILE_DISABLE;
5316 uint segment_size = SEGMENT_SIZE;
5317 uint scrypt_tmto = SCRYPT_TMTO;
5318 char separator = SEPARATOR;
5319 uint bitmap_min = BITMAP_MIN;
5320 uint bitmap_max = BITMAP_MAX;
5321 char *custom_charset_1 = NULL;
5322 char *custom_charset_2 = NULL;
5323 char *custom_charset_3 = NULL;
5324 char *custom_charset_4 = NULL;
5325
5326 #define IDX_HELP 'h'
5327 #define IDX_VERSION 'V'
5328 #define IDX_VERSION_LOWER 'v'
5329 #define IDX_QUIET 0xff02
5330 #define IDX_SHOW 0xff03
5331 #define IDX_LEFT 0xff04
5332 #define IDX_REMOVE 0xff05
5333 #define IDX_REMOVE_TIMER 0xff37
5334 #define IDX_SKIP 's'
5335 #define IDX_LIMIT 'l'
5336 #define IDX_KEYSPACE 0xff35
5337 #define IDX_POTFILE_DISABLE 0xff06
5338 #define IDX_POTFILE_PATH 0xffe0
5339 #define IDX_DEBUG_MODE 0xff43
5340 #define IDX_DEBUG_FILE 0xff44
5341 #define IDX_INDUCTION_DIR 0xff46
5342 #define IDX_OUTFILE_CHECK_DIR 0xff47
5343 #define IDX_USERNAME 0xff07
5344 #define IDX_FORCE 0xff08
5345 #define IDX_RUNTIME 0xff09
5346 #define IDX_BENCHMARK 'b'
5347 #define IDX_HASH_MODE 'm'
5348 #define IDX_ATTACK_MODE 'a'
5349 #define IDX_RP_FILE 'r'
5350 #define IDX_RP_GEN 'g'
5351 #define IDX_RP_GEN_FUNC_MIN 0xff10
5352 #define IDX_RP_GEN_FUNC_MAX 0xff11
5353 #define IDX_RP_GEN_SEED 0xff34
5354 #define IDX_RULE_BUF_L 'j'
5355 #define IDX_RULE_BUF_R 'k'
5356 #define IDX_INCREMENT 'i'
5357 #define IDX_INCREMENT_MIN 0xff12
5358 #define IDX_INCREMENT_MAX 0xff13
5359 #define IDX_OUTFILE 'o'
5360 #define IDX_OUTFILE_FORMAT 0xff14
5361 #define IDX_OUTFILE_AUTOHEX_DISABLE 0xff39
5362 #define IDX_OUTFILE_CHECK_TIMER 0xff45
5363 #define IDX_RESTORE 0xff15
5364 #define IDX_RESTORE_DISABLE 0xff27
5365 #define IDX_STATUS 0xff17
5366 #define IDX_STATUS_TIMER 0xff18
5367 #define IDX_STATUS_AUTOMAT 0xff50
5368 #define IDX_LOOPBACK 0xff38
5369 #define IDX_WEAK_HASH_THRESHOLD 0xff42
5370 #define IDX_SESSION 0xff19
5371 #define IDX_HEX_CHARSET 0xff20
5372 #define IDX_HEX_SALT 0xff21
5373 #define IDX_HEX_WORDLIST 0xff40
5374 #define IDX_MARKOV_DISABLE 0xff22
5375 #define IDX_MARKOV_CLASSIC 0xff23
5376 #define IDX_MARKOV_THRESHOLD 't'
5377 #define IDX_MARKOV_HCSTAT 0xff24
5378 #define IDX_CPU_AFFINITY 0xff25
5379 #define IDX_OPENCL_DEVICES 'd'
5380 #define IDX_OPENCL_PLATFORMS 0xff72
5381 #define IDX_OPENCL_DEVICE_TYPES 0xff73
5382 #define IDX_OPENCL_VECTOR_WIDTH 0xff74
5383 #define IDX_WORKLOAD_PROFILE 'w'
5384 #define IDX_KERNEL_ACCEL 'n'
5385 #define IDX_KERNEL_LOOPS 'u'
5386 #define IDX_GPU_TEMP_DISABLE 0xff29
5387 #define IDX_GPU_TEMP_ABORT 0xff30
5388 #define IDX_GPU_TEMP_RETAIN 0xff31
5389 #define IDX_POWERTUNE_ENABLE 0xff41
5390 #define IDX_LOGFILE_DISABLE 0xff51
5391 #define IDX_TRUECRYPT_KEYFILES 0xff52
5392 #define IDX_SCRYPT_TMTO 0xff61
5393 #define IDX_SEGMENT_SIZE 'c'
5394 #define IDX_SEPARATOR 'p'
5395 #define IDX_BITMAP_MIN 0xff70
5396 #define IDX_BITMAP_MAX 0xff71
5397 #define IDX_CUSTOM_CHARSET_1 '1'
5398 #define IDX_CUSTOM_CHARSET_2 '2'
5399 #define IDX_CUSTOM_CHARSET_3 '3'
5400 #define IDX_CUSTOM_CHARSET_4 '4'
5401
5402 char short_options[] = "hVvm:a:r:j:k:g:o:t:d:n:u:c:p:s:l:1:2:3:4:ibw:";
5403
5404 struct option long_options[] =
5405 {
5406 {"help", no_argument, 0, IDX_HELP},
5407 {"version", no_argument, 0, IDX_VERSION},
5408 {"quiet", no_argument, 0, IDX_QUIET},
5409 {"show", no_argument, 0, IDX_SHOW},
5410 {"left", no_argument, 0, IDX_LEFT},
5411 {"username", no_argument, 0, IDX_USERNAME},
5412 {"remove", no_argument, 0, IDX_REMOVE},
5413 {"remove-timer", required_argument, 0, IDX_REMOVE_TIMER},
5414 {"skip", required_argument, 0, IDX_SKIP},
5415 {"limit", required_argument, 0, IDX_LIMIT},
5416 {"keyspace", no_argument, 0, IDX_KEYSPACE},
5417 {"potfile-disable", no_argument, 0, IDX_POTFILE_DISABLE},
5418 {"potfile-path", required_argument, 0, IDX_POTFILE_PATH},
5419 {"debug-mode", required_argument, 0, IDX_DEBUG_MODE},
5420 {"debug-file", required_argument, 0, IDX_DEBUG_FILE},
5421 {"induction-dir", required_argument, 0, IDX_INDUCTION_DIR},
5422 {"outfile-check-dir", required_argument, 0, IDX_OUTFILE_CHECK_DIR},
5423 {"force", no_argument, 0, IDX_FORCE},
5424 {"benchmark", no_argument, 0, IDX_BENCHMARK},
5425 {"restore", no_argument, 0, IDX_RESTORE},
5426 {"restore-disable", no_argument, 0, IDX_RESTORE_DISABLE},
5427 {"status", no_argument, 0, IDX_STATUS},
5428 {"status-timer", required_argument, 0, IDX_STATUS_TIMER},
5429 {"status-automat", no_argument, 0, IDX_STATUS_AUTOMAT},
5430 {"loopback", no_argument, 0, IDX_LOOPBACK},
5431 {"weak-hash-threshold",
5432 required_argument, 0, IDX_WEAK_HASH_THRESHOLD},
5433 {"session", required_argument, 0, IDX_SESSION},
5434 {"runtime", required_argument, 0, IDX_RUNTIME},
5435 {"generate-rules", required_argument, 0, IDX_RP_GEN},
5436 {"generate-rules-func-min",
5437 required_argument, 0, IDX_RP_GEN_FUNC_MIN},
5438 {"generate-rules-func-max",
5439 required_argument, 0, IDX_RP_GEN_FUNC_MAX},
5440 {"generate-rules-seed",
5441 required_argument, 0, IDX_RP_GEN_SEED},
5442 {"rule-left", required_argument, 0, IDX_RULE_BUF_L},
5443 {"rule-right", required_argument, 0, IDX_RULE_BUF_R},
5444 {"hash-type", required_argument, 0, IDX_HASH_MODE},
5445 {"attack-mode", required_argument, 0, IDX_ATTACK_MODE},
5446 {"rules-file", required_argument, 0, IDX_RP_FILE},
5447 {"outfile", required_argument, 0, IDX_OUTFILE},
5448 {"outfile-format", required_argument, 0, IDX_OUTFILE_FORMAT},
5449 {"outfile-autohex-disable",
5450 no_argument, 0, IDX_OUTFILE_AUTOHEX_DISABLE},
5451 {"outfile-check-timer",
5452 required_argument, 0, IDX_OUTFILE_CHECK_TIMER},
5453 {"hex-charset", no_argument, 0, IDX_HEX_CHARSET},
5454 {"hex-salt", no_argument, 0, IDX_HEX_SALT},
5455 {"hex-wordlist", no_argument, 0, IDX_HEX_WORDLIST},
5456 {"markov-disable", no_argument, 0, IDX_MARKOV_DISABLE},
5457 {"markov-classic", no_argument, 0, IDX_MARKOV_CLASSIC},
5458 {"markov-threshold", required_argument, 0, IDX_MARKOV_THRESHOLD},
5459 {"markov-hcstat", required_argument, 0, IDX_MARKOV_HCSTAT},
5460 {"cpu-affinity", required_argument, 0, IDX_CPU_AFFINITY},
5461 {"opencl-devices", required_argument, 0, IDX_OPENCL_DEVICES},
5462 {"opencl-platforms", required_argument, 0, IDX_OPENCL_PLATFORMS},
5463 {"opencl-device-types", required_argument, 0, IDX_OPENCL_DEVICE_TYPES},
5464 {"opencl-vector-width", required_argument, 0, IDX_OPENCL_VECTOR_WIDTH},
5465 {"workload-profile", required_argument, 0, IDX_WORKLOAD_PROFILE},
5466 {"kernel-accel", required_argument, 0, IDX_KERNEL_ACCEL},
5467 {"kernel-loops", required_argument, 0, IDX_KERNEL_LOOPS},
5468 {"gpu-temp-disable", no_argument, 0, IDX_GPU_TEMP_DISABLE},
5469 #ifdef HAVE_HWMON
5470 {"gpu-temp-abort", required_argument, 0, IDX_GPU_TEMP_ABORT},
5471 {"gpu-temp-retain", required_argument, 0, IDX_GPU_TEMP_RETAIN},
5472 #ifdef HAVE_ADL
5473 {"powertune-enable", no_argument, 0, IDX_POWERTUNE_ENABLE},
5474 #endif
5475 #endif // HAVE_HWMON
5476 {"logfile-disable", no_argument, 0, IDX_LOGFILE_DISABLE},
5477 {"truecrypt-keyfiles", required_argument, 0, IDX_TRUECRYPT_KEYFILES},
5478 {"segment-size", required_argument, 0, IDX_SEGMENT_SIZE},
5479 {"scrypt-tmto", required_argument, 0, IDX_SCRYPT_TMTO},
5480 // deprecated
5481 {"seperator", required_argument, 0, IDX_SEPARATOR},
5482 {"separator", required_argument, 0, IDX_SEPARATOR},
5483 {"bitmap-min", required_argument, 0, IDX_BITMAP_MIN},
5484 {"bitmap-max", required_argument, 0, IDX_BITMAP_MAX},
5485 {"increment", no_argument, 0, IDX_INCREMENT},
5486 {"increment-min", required_argument, 0, IDX_INCREMENT_MIN},
5487 {"increment-max", required_argument, 0, IDX_INCREMENT_MAX},
5488 {"custom-charset1", required_argument, 0, IDX_CUSTOM_CHARSET_1},
5489 {"custom-charset2", required_argument, 0, IDX_CUSTOM_CHARSET_2},
5490 {"custom-charset3", required_argument, 0, IDX_CUSTOM_CHARSET_3},
5491 {"custom-charset4", required_argument, 0, IDX_CUSTOM_CHARSET_4},
5492
5493 {0, 0, 0, 0}
5494 };
5495
5496 uint rp_files_cnt = 0;
5497
5498 char **rp_files = (char **) mycalloc (argc, sizeof (char *));
5499
5500 int option_index = 0;
5501 int c = -1;
5502
5503 optind = 1;
5504 optopt = 0;
5505
5506 while (((c = getopt_long (argc, argv, short_options, long_options, &option_index)) != -1) && optopt == 0)
5507 {
5508 switch (c)
5509 {
5510 case IDX_HELP: usage = 1; break;
5511 case IDX_VERSION:
5512 case IDX_VERSION_LOWER: version = 1; break;
5513 case IDX_RESTORE: restore = 1; break;
5514 case IDX_SESSION: session = optarg; break;
5515 case IDX_SHOW: show = 1; break;
5516 case IDX_LEFT: left = 1; break;
5517 case '?': return (-1);
5518 }
5519 }
5520
5521 if (optopt != 0)
5522 {
5523 log_error ("ERROR: Invalid argument specified");
5524
5525 return (-1);
5526 }
5527
5528 /**
5529 * exit functions
5530 */
5531
5532 if (version)
5533 {
5534 log_info ("%s", VERSION_TAG);
5535
5536 return (0);
5537 }
5538
5539 if (usage)
5540 {
5541 usage_big_print (PROGNAME);
5542
5543 return (0);
5544 }
5545
5546 /**
5547 * session needs to be set, always!
5548 */
5549
5550 if (session == NULL) session = (char *) PROGNAME;
5551
5552 /**
5553 * folders, as discussed on https://github.com/hashcat/hashcat/issues/20
5554 */
5555
5556 char *exec_path = get_exec_path ();
5557
5558 #ifdef LINUX
5559
5560 char *resolved_install_folder = realpath (INSTALL_FOLDER, NULL);
5561 char *resolved_exec_path = realpath (exec_path, NULL);
5562
5563 char *install_dir = get_install_dir (resolved_exec_path);
5564 char *profile_dir = NULL;
5565 char *session_dir = NULL;
5566 char *shared_dir = NULL;
5567
5568 if (strcmp (install_dir, resolved_install_folder) == 0)
5569 {
5570 struct passwd *pw = getpwuid (getuid ());
5571
5572 const char *homedir = pw->pw_dir;
5573
5574 profile_dir = get_profile_dir (homedir);
5575 session_dir = get_session_dir (profile_dir);
5576 shared_dir = strdup (SHARED_FOLDER);
5577
5578 mkdir (profile_dir, 0700);
5579 mkdir (session_dir, 0700);
5580 }
5581 else
5582 {
5583 profile_dir = install_dir;
5584 session_dir = install_dir;
5585 shared_dir = install_dir;
5586 }
5587
5588 myfree (resolved_install_folder);
5589 myfree (resolved_exec_path);
5590
5591 #else
5592
5593 char *install_dir = get_install_dir (exec_path);
5594 char *profile_dir = install_dir;
5595 char *session_dir = install_dir;
5596 char *shared_dir = install_dir;
5597
5598 #endif
5599
5600 data.install_dir = install_dir;
5601 data.profile_dir = profile_dir;
5602 data.session_dir = session_dir;
5603 data.shared_dir = shared_dir;
5604
5605 myfree (exec_path);
5606
5607 /**
5608 * kernel cache, we need to make sure folder exist
5609 */
5610
5611 int kernels_folder_size = strlen (profile_dir) + 1 + 7 + 1 + 1;
5612
5613 char *kernels_folder = (char *) mymalloc (kernels_folder_size);
5614
5615 snprintf (kernels_folder, kernels_folder_size - 1, "%s/kernels", profile_dir);
5616
5617 mkdir (kernels_folder, 0700);
5618
5619 myfree (kernels_folder);
5620
5621 /**
5622 * session
5623 */
5624
5625 size_t session_size = strlen (session_dir) + 1 + strlen (session) + 32;
5626
5627 data.session = session;
5628
5629 char *eff_restore_file = (char *) mymalloc (session_size);
5630 char *new_restore_file = (char *) mymalloc (session_size);
5631
5632 snprintf (eff_restore_file, session_size - 1, "%s/%s.restore", data.session_dir, session);
5633 snprintf (new_restore_file, session_size - 1, "%s/%s.restore.new", data.session_dir, session);
5634
5635 data.eff_restore_file = eff_restore_file;
5636 data.new_restore_file = new_restore_file;
5637
5638 if (((show == 1) || (left == 1)) && (restore == 1))
5639 {
5640 if (show == 1) log_error ("ERROR: Mixing --restore parameter and --show is not supported");
5641 else log_error ("ERROR: Mixing --restore parameter and --left is not supported");
5642
5643 return (-1);
5644 }
5645
5646 // this allows the user to use --show and --left while cracking (i.e. while another instance of hashcat is running)
5647 if ((show == 1) || (left == 1))
5648 {
5649 restore_disable = 1;
5650
5651 restore = 0;
5652 }
5653
5654 data.restore_disable = restore_disable;
5655
5656 restore_data_t *rd = init_restore (argc, argv);
5657
5658 data.rd = rd;
5659
5660 /**
5661 * restore file
5662 */
5663
5664 if (restore == 1)
5665 {
5666 read_restore (eff_restore_file, rd);
5667
5668 if (rd->version_bin < RESTORE_MIN)
5669 {
5670 log_error ("ERROR: Incompatible restore-file version");
5671
5672 return (-1);
5673 }
5674
5675 myargc = rd->argc;
5676 myargv = rd->argv;
5677
5678 #ifdef _POSIX
5679 rd->pid = getpid ();
5680 #elif _WIN
5681 rd->pid = GetCurrentProcessId ();
5682 #endif
5683 }
5684
5685 uint hash_mode_chgd = 0;
5686 uint runtime_chgd = 0;
5687 uint kernel_loops_chgd = 0;
5688 uint kernel_accel_chgd = 0;
5689 uint attack_mode_chgd = 0;
5690 uint outfile_format_chgd = 0;
5691 uint rp_gen_seed_chgd = 0;
5692 uint remove_timer_chgd = 0;
5693 uint increment_min_chgd = 0;
5694 uint increment_max_chgd = 0;
5695 uint workload_profile_chgd = 0;
5696 uint opencl_vector_width_chgd = 0;
5697
5698 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
5699 uint gpu_temp_retain_chgd = 0;
5700 uint gpu_temp_abort_chgd = 0;
5701 #endif
5702
5703 optind = 1;
5704 optopt = 0;
5705 option_index = 0;
5706
5707 while (((c = getopt_long (myargc, myargv, short_options, long_options, &option_index)) != -1) && optopt == 0)
5708 {
5709 switch (c)
5710 {
5711 //case IDX_HELP: usage = 1; break;
5712 //case IDX_VERSION: version = 1; break;
5713 //case IDX_RESTORE: restore = 1; break;
5714 case IDX_QUIET: quiet = 1; break;
5715 //case IDX_SHOW: show = 1; break;
5716 case IDX_SHOW: break;
5717 //case IDX_LEFT: left = 1; break;
5718 case IDX_LEFT: break;
5719 case IDX_USERNAME: username = 1; break;
5720 case IDX_REMOVE: remove = 1; break;
5721 case IDX_REMOVE_TIMER: remove_timer = atoi (optarg);
5722 remove_timer_chgd = 1; break;
5723 case IDX_POTFILE_DISABLE: potfile_disable = 1; break;
5724 case IDX_POTFILE_PATH: potfile_path = optarg; break;
5725 case IDX_DEBUG_MODE: debug_mode = atoi (optarg); break;
5726 case IDX_DEBUG_FILE: debug_file = optarg; break;
5727 case IDX_INDUCTION_DIR: induction_dir = optarg; break;
5728 case IDX_OUTFILE_CHECK_DIR: outfile_check_dir = optarg; break;
5729 case IDX_FORCE: force = 1; break;
5730 case IDX_SKIP: skip = atoll (optarg); break;
5731 case IDX_LIMIT: limit = atoll (optarg); break;
5732 case IDX_KEYSPACE: keyspace = 1; break;
5733 case IDX_BENCHMARK: benchmark = 1; break;
5734 case IDX_RESTORE: break;
5735 case IDX_RESTORE_DISABLE: restore_disable = 1; break;
5736 case IDX_STATUS: status = 1; break;
5737 case IDX_STATUS_TIMER: status_timer = atoi (optarg); break;
5738 case IDX_STATUS_AUTOMAT: status_automat = 1; break;
5739 case IDX_LOOPBACK: loopback = 1; break;
5740 case IDX_WEAK_HASH_THRESHOLD:
5741 weak_hash_threshold = atoi (optarg); break;
5742 //case IDX_SESSION: session = optarg; break;
5743 case IDX_SESSION: break;
5744 case IDX_HASH_MODE: hash_mode = atoi (optarg);
5745 hash_mode_chgd = 1; break;
5746 case IDX_RUNTIME: runtime = atoi (optarg);
5747 runtime_chgd = 1; break;
5748 case IDX_ATTACK_MODE: attack_mode = atoi (optarg);
5749 attack_mode_chgd = 1; break;
5750 case IDX_RP_FILE: rp_files[rp_files_cnt++] = optarg; break;
5751 case IDX_RP_GEN: rp_gen = atoi (optarg); break;
5752 case IDX_RP_GEN_FUNC_MIN: rp_gen_func_min = atoi (optarg); break;
5753 case IDX_RP_GEN_FUNC_MAX: rp_gen_func_max = atoi (optarg); break;
5754 case IDX_RP_GEN_SEED: rp_gen_seed = atoi (optarg);
5755 rp_gen_seed_chgd = 1; break;
5756 case IDX_RULE_BUF_L: rule_buf_l = optarg; break;
5757 case IDX_RULE_BUF_R: rule_buf_r = optarg; break;
5758 case IDX_MARKOV_DISABLE: markov_disable = 1; break;
5759 case IDX_MARKOV_CLASSIC: markov_classic = 1; break;
5760 case IDX_MARKOV_THRESHOLD: markov_threshold = atoi (optarg); break;
5761 case IDX_MARKOV_HCSTAT: markov_hcstat = optarg; break;
5762 case IDX_OUTFILE: outfile = optarg; break;
5763 case IDX_OUTFILE_FORMAT: outfile_format = atoi (optarg);
5764 outfile_format_chgd = 1; break;
5765 case IDX_OUTFILE_AUTOHEX_DISABLE:
5766 outfile_autohex = 0; break;
5767 case IDX_OUTFILE_CHECK_TIMER:
5768 outfile_check_timer = atoi (optarg); break;
5769 case IDX_HEX_CHARSET: hex_charset = 1; break;
5770 case IDX_HEX_SALT: hex_salt = 1; break;
5771 case IDX_HEX_WORDLIST: hex_wordlist = 1; break;
5772 case IDX_CPU_AFFINITY: cpu_affinity = optarg; break;
5773 case IDX_OPENCL_DEVICES: opencl_devices = optarg; break;
5774 case IDX_OPENCL_PLATFORMS: opencl_platforms = optarg; break;
5775 case IDX_OPENCL_DEVICE_TYPES:
5776 opencl_device_types = optarg; break;
5777 case IDX_OPENCL_VECTOR_WIDTH:
5778 opencl_vector_width = atoi (optarg);
5779 opencl_vector_width_chgd = 1; break;
5780 case IDX_WORKLOAD_PROFILE: workload_profile = atoi (optarg);
5781 workload_profile_chgd = 1; break;
5782 case IDX_KERNEL_ACCEL: kernel_accel = atoi (optarg);
5783 kernel_accel_chgd = 1; break;
5784 case IDX_KERNEL_LOOPS: kernel_loops = atoi (optarg);
5785 kernel_loops_chgd = 1; break;
5786 case IDX_GPU_TEMP_DISABLE: gpu_temp_disable = 1; break;
5787 #ifdef HAVE_HWMON
5788 case IDX_GPU_TEMP_ABORT: gpu_temp_abort = atoi (optarg);
5789 #ifdef HAVE_ADL
5790 gpu_temp_abort_chgd = 1;
5791 #endif
5792 break;
5793 case IDX_GPU_TEMP_RETAIN: gpu_temp_retain = atoi (optarg);
5794 #ifdef HAVE_ADL
5795 gpu_temp_retain_chgd = 1;
5796 #endif
5797 break;
5798 #ifdef HAVE_ADL
5799 case IDX_POWERTUNE_ENABLE: powertune_enable = 1; break;
5800 #endif
5801 #endif // HAVE_HWMON
5802 case IDX_LOGFILE_DISABLE: logfile_disable = 1; break;
5803 case IDX_TRUECRYPT_KEYFILES: truecrypt_keyfiles = optarg; break;
5804 case IDX_SEGMENT_SIZE: segment_size = atoi (optarg); break;
5805 case IDX_SCRYPT_TMTO: scrypt_tmto = atoi (optarg); break;
5806 case IDX_SEPARATOR: separator = optarg[0]; break;
5807 case IDX_BITMAP_MIN: bitmap_min = atoi (optarg); break;
5808 case IDX_BITMAP_MAX: bitmap_max = atoi (optarg); break;
5809 case IDX_INCREMENT: increment = 1; break;
5810 case IDX_INCREMENT_MIN: increment_min = atoi (optarg);
5811 increment_min_chgd = 1; break;
5812 case IDX_INCREMENT_MAX: increment_max = atoi (optarg);
5813 increment_max_chgd = 1; break;
5814 case IDX_CUSTOM_CHARSET_1: custom_charset_1 = optarg; break;
5815 case IDX_CUSTOM_CHARSET_2: custom_charset_2 = optarg; break;
5816 case IDX_CUSTOM_CHARSET_3: custom_charset_3 = optarg; break;
5817 case IDX_CUSTOM_CHARSET_4: custom_charset_4 = optarg; break;
5818
5819 default:
5820 log_error ("ERROR: Invalid argument specified");
5821 return (-1);
5822 }
5823 }
5824
5825 if (optopt != 0)
5826 {
5827 log_error ("ERROR: Invalid argument specified");
5828
5829 return (-1);
5830 }
5831
5832 /**
5833 * Inform user things getting started,
5834 * - this is giving us a visual header before preparations start, so we do not need to clear them afterwards
5835 * - we do not need to check algorithm_pos
5836 */
5837
5838 if (quiet == 0)
5839 {
5840 if (benchmark == 1)
5841 {
5842 log_info ("%s (%s) starting in benchmark-mode...", PROGNAME, VERSION_TAG);
5843 log_info ("");
5844 }
5845 else if (restore == 1)
5846 {
5847 log_info ("%s (%s) starting in restore-mode...", PROGNAME, VERSION_TAG);
5848 log_info ("");
5849 }
5850 else
5851 {
5852 log_info ("%s (%s) starting...", PROGNAME, VERSION_TAG);
5853 log_info ("");
5854 }
5855 }
5856
5857 /**
5858 * sanity check
5859 */
5860
5861 if (attack_mode > 7)
5862 {
5863 log_error ("ERROR: Invalid attack-mode specified");
5864
5865 return (-1);
5866 }
5867
5868 if (runtime_chgd && runtime == 0) // just added to remove compiler warnings for runtime_chgd
5869 {
5870 log_error ("ERROR: Invalid runtime specified");
5871
5872 return (-1);
5873 }
5874
5875 if (hash_mode_chgd && hash_mode > 13600) // just added to remove compiler warnings for hash_mode_chgd
5876 {
5877 log_error ("ERROR: Invalid hash-type specified");
5878
5879 return (-1);
5880 }
5881
5882 // renamed hash modes
5883
5884 if (hash_mode_chgd)
5885 {
5886 int n = -1;
5887
5888 switch (hash_mode)
5889 {
5890 case 123: n = 124;
5891 break;
5892 }
5893
5894 if (n >= 0)
5895 {
5896 log_error ("Old -m specified, use -m %d instead", n);
5897
5898 return (-1);
5899 }
5900 }
5901
5902 if (username == 1)
5903 {
5904 if ((hash_mode == 2500) || (hash_mode == 5200) || ((hash_mode >= 6200) && (hash_mode <= 6299)))
5905 {
5906 log_error ("ERROR: Mixing support for user names and hashes of type %s is not supported", strhashtype (hash_mode));
5907
5908 return (-1);
5909 }
5910 }
5911
5912 if (outfile_format > 16)
5913 {
5914 log_error ("ERROR: Invalid outfile-format specified");
5915
5916 return (-1);
5917 }
5918
5919 if (left == 1)
5920 {
5921 if (outfile_format_chgd == 1)
5922 {
5923 if (outfile_format > 1)
5924 {
5925 log_error ("ERROR: Mixing outfile-format > 1 is not allowed together with left parameter");
5926
5927 return (-1);
5928 }
5929 }
5930 else
5931 {
5932 outfile_format = OUTFILE_FMT_HASH;
5933 }
5934 }
5935
5936 if (show == 1)
5937 {
5938 if (outfile_format_chgd == 1)
5939 {
5940 if ((outfile_format > 7) && (outfile_format < 16))
5941 {
5942 log_error ("ERROR: Mixing outfile-format > 7 is not allowed together with show parameter");
5943
5944 return (-1);
5945 }
5946 }
5947 }
5948
5949 if (increment_min < INCREMENT_MIN)
5950 {
5951 log_error ("ERROR: Invalid increment-min specified");
5952
5953 return (-1);
5954 }
5955
5956 if (increment_max > INCREMENT_MAX)
5957 {
5958 log_error ("ERROR: Invalid increment-max specified");
5959
5960 return (-1);
5961 }
5962
5963 if (increment_min > increment_max)
5964 {
5965 log_error ("ERROR: Invalid increment-min specified");
5966
5967 return (-1);
5968 }
5969
5970 if ((increment == 1) && (attack_mode == ATTACK_MODE_STRAIGHT))
5971 {
5972 log_error ("ERROR: increment is not allowed in attack-mode 0");
5973
5974 return (-1);
5975 }
5976
5977 if ((increment == 0) && (increment_min_chgd == 1))
5978 {
5979 log_error ("ERROR: increment-min is only supported together with increment switch");
5980
5981 return (-1);
5982 }
5983
5984 if ((increment == 0) && (increment_max_chgd == 1))
5985 {
5986 log_error ("ERROR: increment-max is only supported together with increment switch");
5987
5988 return (-1);
5989 }
5990
5991 if (rp_files_cnt && rp_gen)
5992 {
5993 log_error ("ERROR: Use of both rules-file and rules-generate is not supported");
5994
5995 return (-1);
5996 }
5997
5998 if (rp_files_cnt || rp_gen)
5999 {
6000 if (attack_mode != ATTACK_MODE_STRAIGHT)
6001 {
6002 log_error ("ERROR: Use of rules-file or rules-generate only allowed in attack-mode 0");
6003
6004 return (-1);
6005 }
6006 }
6007
6008 if (rp_gen_func_min > rp_gen_func_max)
6009 {
6010 log_error ("ERROR: Invalid rp-gen-func-min specified");
6011
6012 return (-1);
6013 }
6014
6015 if (kernel_accel_chgd == 1)
6016 {
6017 if (kernel_accel < 1)
6018 {
6019 log_error ("ERROR: Invalid kernel-accel specified");
6020
6021 return (-1);
6022 }
6023
6024 if (kernel_accel > 1024)
6025 {
6026 log_error ("ERROR: Invalid kernel-accel specified");
6027
6028 return (-1);
6029 }
6030 }
6031
6032 if (kernel_loops_chgd == 1)
6033 {
6034 if (kernel_loops < 1)
6035 {
6036 log_error ("ERROR: Invalid kernel-loops specified");
6037
6038 return (-1);
6039 }
6040
6041 if (kernel_loops > 1024)
6042 {
6043 log_error ("ERROR: Invalid kernel-loops specified");
6044
6045 return (-1);
6046 }
6047 }
6048
6049 if ((workload_profile < 1) || (workload_profile > 3))
6050 {
6051 log_error ("ERROR: workload-profile %i not available", workload_profile);
6052
6053 return (-1);
6054 }
6055
6056 if (opencl_vector_width_chgd && (!is_power_of_2(opencl_vector_width) || opencl_vector_width > 16))
6057 {
6058 log_error ("ERROR: opencl-vector-width %i not allowed", opencl_vector_width);
6059
6060 return (-1);
6061 }
6062
6063 if (show == 1 || left == 1)
6064 {
6065 attack_mode = ATTACK_MODE_NONE;
6066
6067 if (remove == 1)
6068 {
6069 log_error ("ERROR: Mixing remove parameter not allowed with show parameter or left parameter");
6070
6071 return (-1);
6072 }
6073
6074 if (potfile_disable == 1)
6075 {
6076 log_error ("ERROR: Mixing potfile-disable parameter not allowed with show parameter or left parameter");
6077
6078 return (-1);
6079 }
6080 }
6081
6082 uint attack_kern = ATTACK_KERN_NONE;
6083
6084 switch (attack_mode)
6085 {
6086 case ATTACK_MODE_STRAIGHT: attack_kern = ATTACK_KERN_STRAIGHT; break;
6087 case ATTACK_MODE_COMBI: attack_kern = ATTACK_KERN_COMBI; break;
6088 case ATTACK_MODE_BF: attack_kern = ATTACK_KERN_BF; break;
6089 case ATTACK_MODE_HYBRID1: attack_kern = ATTACK_KERN_COMBI; break;
6090 case ATTACK_MODE_HYBRID2: attack_kern = ATTACK_KERN_COMBI; break;
6091 }
6092
6093 if (benchmark == 0)
6094 {
6095 if (keyspace == 1)
6096 {
6097 int num_additional_params = 1;
6098
6099 if (attack_kern == ATTACK_KERN_COMBI)
6100 {
6101 num_additional_params = 2;
6102 }
6103
6104 int keyspace_wordlist_specified = myargc - optind - num_additional_params;
6105
6106 if (keyspace_wordlist_specified == 0) optind--;
6107 }
6108
6109 if (attack_kern == ATTACK_KERN_NONE)
6110 {
6111 if ((optind + 1) != myargc)
6112 {
6113 usage_mini_print (myargv[0]);
6114
6115 return (-1);
6116 }
6117 }
6118 else if (attack_kern == ATTACK_KERN_STRAIGHT)
6119 {
6120 if ((optind + 1) > myargc)
6121 {
6122 usage_mini_print (myargv[0]);
6123
6124 return (-1);
6125 }
6126 }
6127 else if (attack_kern == ATTACK_KERN_COMBI)
6128 {
6129 if ((optind + 3) != myargc)
6130 {
6131 usage_mini_print (myargv[0]);
6132
6133 return (-1);
6134 }
6135 }
6136 else if (attack_kern == ATTACK_KERN_BF)
6137 {
6138 if ((optind + 1) > myargc)
6139 {
6140 usage_mini_print (myargv[0]);
6141
6142 return (-1);
6143 }
6144 }
6145 else
6146 {
6147 usage_mini_print (myargv[0]);
6148
6149 return (-1);
6150 }
6151 }
6152 else
6153 {
6154 if (myargv[optind] != 0)
6155 {
6156 log_error ("ERROR: Invalid argument for benchmark mode specified");
6157
6158 return (-1);
6159 }
6160
6161 if (attack_mode_chgd == 1)
6162 {
6163 if (attack_mode != ATTACK_MODE_BF)
6164 {
6165 log_error ("ERROR: Only attack-mode 3 allowed in benchmark mode");
6166
6167 return (-1);
6168 }
6169 }
6170 }
6171
6172 if (skip != 0 && limit != 0)
6173 {
6174 limit += skip;
6175 }
6176
6177 if (keyspace == 1)
6178 {
6179 if (show == 1)
6180 {
6181 log_error ("ERROR: Mixing show parameter not supported with keyspace parameter");
6182
6183 return (-1);
6184 }
6185 else if (left == 1)
6186 {
6187 log_error ("ERROR: Mixing left parameter not supported wiht keyspace parameter");
6188
6189 return (-1);
6190 }
6191
6192 potfile_disable = 1;
6193
6194 restore_disable = 1;
6195
6196 restore = 0;
6197
6198 weak_hash_threshold = 0;
6199
6200 quiet = 1;
6201 }
6202
6203 if (remove_timer_chgd == 1)
6204 {
6205 if (remove == 0)
6206 {
6207 log_error ("ERROR: Parameter remove-timer require parameter remove enabled");
6208
6209 return (-1);
6210 }
6211
6212 if (remove_timer < 1)
6213 {
6214 log_error ("ERROR: Parameter remove-timer must have a value greater than or equal to 1");
6215
6216 return (-1);
6217 }
6218 }
6219
6220 if (loopback == 1)
6221 {
6222 if (attack_mode == ATTACK_MODE_STRAIGHT)
6223 {
6224 if ((rp_files_cnt == 0) && (rp_gen == 0))
6225 {
6226 log_error ("ERROR: Parameter loopback not allowed without rules-file or rules-generate");
6227
6228 return (-1);
6229 }
6230 }
6231 else
6232 {
6233 log_error ("ERROR: Parameter loopback allowed in attack-mode 0 only");
6234
6235 return (-1);
6236 }
6237 }
6238
6239 if (debug_mode > 0)
6240 {
6241 if (attack_mode != ATTACK_MODE_STRAIGHT)
6242 {
6243 log_error ("ERROR: Parameter debug-mode option is only available with attack-mode 0");
6244
6245 return (-1);
6246 }
6247
6248 if ((rp_files_cnt == 0) && (rp_gen == 0))
6249 {
6250 log_error ("ERROR: Parameter debug-mode not allowed without rules-file or rules-generate");
6251
6252 return (-1);
6253 }
6254 }
6255
6256 if (debug_mode > 4)
6257 {
6258 log_error ("ERROR: Invalid debug-mode specified");
6259
6260 return (-1);
6261 }
6262
6263 if (debug_file != NULL)
6264 {
6265 if (debug_mode < 1)
6266 {
6267 log_error ("ERROR: Parameter debug-file requires parameter debug-mode to be set");
6268
6269 return (-1);
6270 }
6271 }
6272
6273 if (induction_dir != NULL)
6274 {
6275 if (attack_mode == ATTACK_MODE_BF)
6276 {
6277 log_error ("ERROR: Parameter induction-dir not allowed with brute-force attacks");
6278
6279 return (-1);
6280 }
6281 }
6282
6283 if (attack_mode != ATTACK_MODE_STRAIGHT)
6284 {
6285 if ((weak_hash_threshold != WEAK_HASH_THRESHOLD) && (weak_hash_threshold != 0))
6286 {
6287 log_error ("ERROR: setting --weak-hash-threshold allowed only in straight-attack mode");
6288
6289 return (-1);
6290 }
6291
6292 weak_hash_threshold = 0;
6293 }
6294
6295 /**
6296 * induction directory
6297 */
6298
6299 char *induction_directory = NULL;
6300
6301 if (attack_mode != ATTACK_MODE_BF)
6302 {
6303 if (induction_dir == NULL)
6304 {
6305 induction_directory = (char *) mymalloc (session_size);
6306
6307 snprintf (induction_directory, session_size - 1, "%s/%s.%s", session_dir, session, INDUCT_DIR);
6308
6309 // create induction folder if it does not already exist
6310
6311 if (keyspace == 0)
6312 {
6313 if (rmdir (induction_directory) == -1)
6314 {
6315 if (errno == ENOENT)
6316 {
6317 // good, we can ignore
6318 }
6319 else if (errno == ENOTEMPTY)
6320 {
6321 char *induction_directory_mv = (char *) mymalloc (session_size);
6322
6323 snprintf (induction_directory_mv, session_size - 1, "%s/%s.induct.%d", session_dir, session, (int) proc_start);
6324
6325 if (rename (induction_directory, induction_directory_mv) != 0)
6326 {
6327 log_error ("ERROR: Rename directory %s to %s: %s", induction_directory, induction_directory_mv, strerror (errno));
6328
6329 return (-1);
6330 }
6331 }
6332 else
6333 {
6334 log_error ("ERROR: %s: %s", induction_directory, strerror (errno));
6335
6336 return (-1);
6337 }
6338 }
6339
6340 if (mkdir (induction_directory, 0700) == -1)
6341 {
6342 log_error ("ERROR: %s: %s", induction_directory, strerror (errno));
6343
6344 return (-1);
6345 }
6346 }
6347 }
6348 else
6349 {
6350 induction_directory = induction_dir;
6351 }
6352 }
6353
6354 data.induction_directory = induction_directory;
6355
6356 /**
6357 * loopback
6358 */
6359
6360 size_t loopback_size = strlen (session_dir) + 1 + session_size + strlen (LOOPBACK_FILE) + 12;
6361
6362 char *loopback_file = (char *) mymalloc (loopback_size);
6363
6364 /**
6365 * tuning db
6366 */
6367
6368 char tuning_db_file[256] = { 0 };
6369
6370 snprintf (tuning_db_file, sizeof (tuning_db_file) - 1, "%s/%s", shared_dir, TUNING_DB_FILE);
6371
6372 tuning_db_t *tuning_db = tuning_db_init (tuning_db_file);
6373
6374 /**
6375 * outfile-check directory
6376 */
6377
6378 char *outfile_check_directory = NULL;
6379
6380 if (outfile_check_dir == NULL)
6381 {
6382 outfile_check_directory = (char *) mymalloc (session_size);
6383
6384 snprintf (outfile_check_directory, session_size - 1, "%s/%s.%s", session_dir, session, OUTFILES_DIR);
6385 }
6386 else
6387 {
6388 outfile_check_directory = outfile_check_dir;
6389 }
6390
6391 data.outfile_check_directory = outfile_check_directory;
6392
6393 if (keyspace == 0)
6394 {
6395 struct stat outfile_check_stat;
6396
6397 if (stat (outfile_check_directory, &outfile_check_stat) == 0)
6398 {
6399 uint is_dir = S_ISDIR (outfile_check_stat.st_mode);
6400
6401 if (is_dir == 0)
6402 {
6403 log_error ("ERROR: Directory specified in outfile-check '%s' is not a valid directory", outfile_check_directory);
6404
6405 return (-1);
6406 }
6407 }
6408 else if (outfile_check_dir == NULL)
6409 {
6410 if (mkdir (outfile_check_directory, 0700) == -1)
6411 {
6412 log_error ("ERROR: %s: %s", outfile_check_directory, strerror (errno));
6413
6414 return (-1);
6415 }
6416 }
6417 }
6418
6419 /**
6420 * special other stuff
6421 */
6422
6423 if (hash_mode == 9710)
6424 {
6425 outfile_format = 5;
6426 outfile_format_chgd = 1;
6427 }
6428
6429 if (hash_mode == 9810)
6430 {
6431 outfile_format = 5;
6432 outfile_format_chgd = 1;
6433 }
6434
6435 if (hash_mode == 10410)
6436 {
6437 outfile_format = 5;
6438 outfile_format_chgd = 1;
6439 }
6440
6441 /**
6442 * store stuff
6443 */
6444
6445 data.hash_mode = hash_mode;
6446 data.restore = restore;
6447 data.restore_timer = restore_timer;
6448 data.restore_disable = restore_disable;
6449 data.status = status;
6450 data.status_timer = status_timer;
6451 data.status_automat = status_automat;
6452 data.loopback = loopback;
6453 data.runtime = runtime;
6454 data.remove = remove;
6455 data.remove_timer = remove_timer;
6456 data.debug_mode = debug_mode;
6457 data.debug_file = debug_file;
6458 data.username = username;
6459 data.quiet = quiet;
6460 data.outfile = outfile;
6461 data.outfile_format = outfile_format;
6462 data.outfile_autohex = outfile_autohex;
6463 data.hex_charset = hex_charset;
6464 data.hex_salt = hex_salt;
6465 data.hex_wordlist = hex_wordlist;
6466 data.separator = separator;
6467 data.rp_files = rp_files;
6468 data.rp_files_cnt = rp_files_cnt;
6469 data.rp_gen = rp_gen;
6470 data.rp_gen_seed = rp_gen_seed;
6471 data.force = force;
6472 data.benchmark = benchmark;
6473 data.skip = skip;
6474 data.limit = limit;
6475 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
6476 data.powertune_enable = powertune_enable;
6477 #endif
6478 data.logfile_disable = logfile_disable;
6479 data.truecrypt_keyfiles = truecrypt_keyfiles;
6480 data.scrypt_tmto = scrypt_tmto;
6481 data.workload_profile = workload_profile;
6482
6483 /**
6484 * cpu affinity
6485 */
6486
6487 if (cpu_affinity)
6488 {
6489 set_cpu_affinity (cpu_affinity);
6490 }
6491
6492 if (rp_gen_seed_chgd == 0)
6493 {
6494 srand (proc_start);
6495 }
6496 else
6497 {
6498 srand (rp_gen_seed);
6499 }
6500
6501 /**
6502 * logfile init
6503 */
6504
6505 if (logfile_disable == 0)
6506 {
6507 size_t logfile_size = strlen (session_dir) + 1 + strlen (session) + 32;
6508
6509 char *logfile = (char *) mymalloc (logfile_size);
6510
6511 snprintf (logfile, logfile_size - 1, "%s/%s.log", session_dir, session);
6512
6513 data.logfile = logfile;
6514
6515 char *topid = logfile_generate_topid ();
6516
6517 data.topid = topid;
6518 }
6519
6520 // logfile_append() checks for logfile_disable internally to make it easier from here
6521
6522 #define logfile_top_msg(msg) logfile_append ("%s\t%s", data.topid, (msg));
6523 #define logfile_sub_msg(msg) logfile_append ("%s\t%s\t%s", data.topid, data.subid, (msg));
6524 #define logfile_top_var_uint64(var,val) logfile_append ("%s\t%s\t%llu", data.topid, (var), (val));
6525 #define logfile_sub_var_uint64(var,val) logfile_append ("%s\t%s\t%s\t%llu", data.topid, data.subid, (var), (val));
6526 #define logfile_top_var_uint(var,val) logfile_append ("%s\t%s\t%u", data.topid, (var), (val));
6527 #define logfile_sub_var_uint(var,val) logfile_append ("%s\t%s\t%s\t%u", data.topid, data.subid, (var), (val));
6528 #define logfile_top_var_char(var,val) logfile_append ("%s\t%s\t%c", data.topid, (var), (val));
6529 #define logfile_sub_var_char(var,val) logfile_append ("%s\t%s\t%s\t%c", data.topid, data.subid, (var), (val));
6530 #define logfile_top_var_string(var,val) if ((val) != NULL) logfile_append ("%s\t%s\t%s", data.topid, (var), (val));
6531 #define logfile_sub_var_string(var,val) if ((val) != NULL) logfile_append ("%s\t%s\t%s\t%s", data.topid, data.subid, (var), (val));
6532
6533 #define logfile_top_uint64(var) logfile_top_var_uint64 (#var, (var));
6534 #define logfile_sub_uint64(var) logfile_sub_var_uint64 (#var, (var));
6535 #define logfile_top_uint(var) logfile_top_var_uint (#var, (var));
6536 #define logfile_sub_uint(var) logfile_sub_var_uint (#var, (var));
6537 #define logfile_top_char(var) logfile_top_var_char (#var, (var));
6538 #define logfile_sub_char(var) logfile_sub_var_char (#var, (var));
6539 #define logfile_top_string(var) logfile_top_var_string (#var, (var));
6540 #define logfile_sub_string(var) logfile_sub_var_string (#var, (var));
6541
6542 logfile_top_msg ("START");
6543
6544 logfile_top_uint (attack_mode);
6545 logfile_top_uint (attack_kern);
6546 logfile_top_uint (benchmark);
6547 logfile_top_uint (bitmap_min);
6548 logfile_top_uint (bitmap_max);
6549 logfile_top_uint (debug_mode);
6550 logfile_top_uint (force);
6551 logfile_top_uint (kernel_accel);
6552 logfile_top_uint (kernel_loops);
6553 logfile_top_uint (gpu_temp_disable);
6554 #ifdef HAVE_HWMON
6555 logfile_top_uint (gpu_temp_abort);
6556 logfile_top_uint (gpu_temp_retain);
6557 #endif
6558 logfile_top_uint (hash_mode);
6559 logfile_top_uint (hex_charset);
6560 logfile_top_uint (hex_salt);
6561 logfile_top_uint (hex_wordlist);
6562 logfile_top_uint (increment);
6563 logfile_top_uint (increment_max);
6564 logfile_top_uint (increment_min);
6565 logfile_top_uint (keyspace);
6566 logfile_top_uint (left);
6567 logfile_top_uint (logfile_disable);
6568 logfile_top_uint (loopback);
6569 logfile_top_uint (markov_classic);
6570 logfile_top_uint (markov_disable);
6571 logfile_top_uint (markov_threshold);
6572 logfile_top_uint (outfile_autohex);
6573 logfile_top_uint (outfile_check_timer);
6574 logfile_top_uint (outfile_format);
6575 logfile_top_uint (potfile_disable);
6576 logfile_top_string (potfile_path);
6577 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
6578 logfile_top_uint (powertune_enable);
6579 #endif
6580 logfile_top_uint (scrypt_tmto);
6581 logfile_top_uint (quiet);
6582 logfile_top_uint (remove);
6583 logfile_top_uint (remove_timer);
6584 logfile_top_uint (restore);
6585 logfile_top_uint (restore_disable);
6586 logfile_top_uint (restore_timer);
6587 logfile_top_uint (rp_gen);
6588 logfile_top_uint (rp_gen_func_max);
6589 logfile_top_uint (rp_gen_func_min);
6590 logfile_top_uint (rp_gen_seed);
6591 logfile_top_uint (runtime);
6592 logfile_top_uint (segment_size);
6593 logfile_top_uint (show);
6594 logfile_top_uint (status);
6595 logfile_top_uint (status_automat);
6596 logfile_top_uint (status_timer);
6597 logfile_top_uint (usage);
6598 logfile_top_uint (username);
6599 logfile_top_uint (version);
6600 logfile_top_uint (weak_hash_threshold);
6601 logfile_top_uint (workload_profile);
6602 logfile_top_uint64 (limit);
6603 logfile_top_uint64 (skip);
6604 logfile_top_char (separator);
6605 logfile_top_string (cpu_affinity);
6606 logfile_top_string (custom_charset_1);
6607 logfile_top_string (custom_charset_2);
6608 logfile_top_string (custom_charset_3);
6609 logfile_top_string (custom_charset_4);
6610 logfile_top_string (debug_file);
6611 logfile_top_string (opencl_devices);
6612 logfile_top_string (opencl_platforms);
6613 logfile_top_string (opencl_device_types);
6614 logfile_top_uint (opencl_vector_width);
6615 logfile_top_string (induction_dir);
6616 logfile_top_string (markov_hcstat);
6617 logfile_top_string (outfile);
6618 logfile_top_string (outfile_check_dir);
6619 logfile_top_string (rule_buf_l);
6620 logfile_top_string (rule_buf_r);
6621 logfile_top_string (session);
6622 logfile_top_string (truecrypt_keyfiles);
6623
6624 /**
6625 * Init OpenCL library loader
6626 */
6627
6628 if (keyspace == 0)
6629 {
6630 ocl = (OCL_PTR *) mymalloc (sizeof (OCL_PTR));
6631
6632 ocl_init (ocl);
6633
6634 data.ocl = ocl;
6635 }
6636
6637 /**
6638 * OpenCL platform selection
6639 */
6640
6641 u32 opencl_platforms_filter = setup_opencl_platforms_filter (opencl_platforms);
6642
6643 /**
6644 * OpenCL device selection
6645 */
6646
6647 u32 devices_filter = setup_devices_filter (opencl_devices);
6648
6649 /**
6650 * OpenCL device type selection
6651 */
6652
6653 cl_device_type device_types_filter = setup_device_types_filter (opencl_device_types);
6654
6655 /**
6656 * benchmark
6657 */
6658
6659 if (benchmark == 1)
6660 {
6661 /**
6662 * disable useless stuff for benchmark
6663 */
6664
6665 status_timer = 0;
6666 restore_timer = 0;
6667 restore_disable = 1;
6668 potfile_disable = 1;
6669 weak_hash_threshold = 0;
6670 gpu_temp_disable = 1;
6671
6672 data.status_timer = status_timer;
6673 data.restore_timer = restore_timer;
6674 data.restore_disable = restore_disable;
6675
6676 /**
6677 * force attack mode to be bruteforce
6678 */
6679
6680 attack_mode = ATTACK_MODE_BF;
6681 attack_kern = ATTACK_KERN_BF;
6682
6683 if (workload_profile_chgd == 0)
6684 {
6685 workload_profile = 3;
6686
6687 data.workload_profile = workload_profile;
6688 }
6689 }
6690
6691 /**
6692 * config
6693 */
6694
6695 uint hash_type = 0;
6696 uint salt_type = 0;
6697 uint attack_exec = 0;
6698 uint opts_type = 0;
6699 uint kern_type = 0;
6700 uint dgst_size = 0;
6701 uint esalt_size = 0;
6702 uint opti_type = 0;
6703 uint dgst_pos0 = -1;
6704 uint dgst_pos1 = -1;
6705 uint dgst_pos2 = -1;
6706 uint dgst_pos3 = -1;
6707
6708 int (*parse_func) (char *, uint, hash_t *);
6709 int (*sort_by_digest) (const void *, const void *);
6710
6711 uint algorithm_pos = 0;
6712 uint algorithm_max = 1;
6713
6714 uint *algorithms = default_benchmark_algorithms;
6715
6716 if (benchmark == 1 && hash_mode_chgd == 0) algorithm_max = NUM_DEFAULT_BENCHMARK_ALGORITHMS;
6717
6718 for (algorithm_pos = 0; algorithm_pos < algorithm_max; algorithm_pos++)
6719 {
6720 /*
6721 * We need to reset 'rd' in benchmark mode otherwise when the user hits 'bypass'
6722 * the following algos are skipped entirely
6723 */
6724
6725 if (algorithm_pos > 0)
6726 {
6727 local_free (rd);
6728
6729 rd = init_restore (argc, argv);
6730
6731 data.rd = rd;
6732 }
6733
6734 /**
6735 * update hash_mode in case of multihash benchmark
6736 */
6737
6738 if (benchmark == 1)
6739 {
6740 if (hash_mode_chgd == 0)
6741 {
6742 hash_mode = algorithms[algorithm_pos];
6743
6744 data.hash_mode = hash_mode;
6745 }
6746
6747 quiet = 1;
6748
6749 data.quiet = quiet;
6750 }
6751
6752 switch (hash_mode)
6753 {
6754 case 0: hash_type = HASH_TYPE_MD5;
6755 salt_type = SALT_TYPE_NONE;
6756 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6757 opts_type = OPTS_TYPE_PT_GENERATE_LE
6758 | OPTS_TYPE_PT_ADD80
6759 | OPTS_TYPE_PT_ADDBITS14;
6760 kern_type = KERN_TYPE_MD5;
6761 dgst_size = DGST_SIZE_4_4;
6762 parse_func = md5_parse_hash;
6763 sort_by_digest = sort_by_digest_4_4;
6764 opti_type = OPTI_TYPE_ZERO_BYTE
6765 | OPTI_TYPE_PRECOMPUTE_INIT
6766 | OPTI_TYPE_PRECOMPUTE_MERKLE
6767 | OPTI_TYPE_MEET_IN_MIDDLE
6768 | OPTI_TYPE_EARLY_SKIP
6769 | OPTI_TYPE_NOT_ITERATED
6770 | OPTI_TYPE_NOT_SALTED
6771 | OPTI_TYPE_RAW_HASH;
6772 dgst_pos0 = 0;
6773 dgst_pos1 = 3;
6774 dgst_pos2 = 2;
6775 dgst_pos3 = 1;
6776 break;
6777
6778 case 10: hash_type = HASH_TYPE_MD5;
6779 salt_type = SALT_TYPE_INTERN;
6780 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6781 opts_type = OPTS_TYPE_PT_GENERATE_LE
6782 | OPTS_TYPE_ST_ADD80
6783 | OPTS_TYPE_ST_ADDBITS14;
6784 kern_type = KERN_TYPE_MD5_PWSLT;
6785 dgst_size = DGST_SIZE_4_4;
6786 parse_func = md5s_parse_hash;
6787 sort_by_digest = sort_by_digest_4_4;
6788 opti_type = OPTI_TYPE_ZERO_BYTE
6789 | OPTI_TYPE_PRECOMPUTE_INIT
6790 | OPTI_TYPE_PRECOMPUTE_MERKLE
6791 | OPTI_TYPE_MEET_IN_MIDDLE
6792 | OPTI_TYPE_EARLY_SKIP
6793 | OPTI_TYPE_NOT_ITERATED
6794 | OPTI_TYPE_APPENDED_SALT
6795 | OPTI_TYPE_RAW_HASH;
6796 dgst_pos0 = 0;
6797 dgst_pos1 = 3;
6798 dgst_pos2 = 2;
6799 dgst_pos3 = 1;
6800 break;
6801
6802 case 11: hash_type = HASH_TYPE_MD5;
6803 salt_type = SALT_TYPE_INTERN;
6804 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6805 opts_type = OPTS_TYPE_PT_GENERATE_LE
6806 | OPTS_TYPE_ST_ADD80
6807 | OPTS_TYPE_ST_ADDBITS14;
6808 kern_type = KERN_TYPE_MD5_PWSLT;
6809 dgst_size = DGST_SIZE_4_4;
6810 parse_func = joomla_parse_hash;
6811 sort_by_digest = sort_by_digest_4_4;
6812 opti_type = OPTI_TYPE_ZERO_BYTE
6813 | OPTI_TYPE_PRECOMPUTE_INIT
6814 | OPTI_TYPE_PRECOMPUTE_MERKLE
6815 | OPTI_TYPE_MEET_IN_MIDDLE
6816 | OPTI_TYPE_EARLY_SKIP
6817 | OPTI_TYPE_NOT_ITERATED
6818 | OPTI_TYPE_APPENDED_SALT
6819 | OPTI_TYPE_RAW_HASH;
6820 dgst_pos0 = 0;
6821 dgst_pos1 = 3;
6822 dgst_pos2 = 2;
6823 dgst_pos3 = 1;
6824 break;
6825
6826 case 12: hash_type = HASH_TYPE_MD5;
6827 salt_type = SALT_TYPE_INTERN;
6828 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6829 opts_type = OPTS_TYPE_PT_GENERATE_LE
6830 | OPTS_TYPE_ST_ADD80
6831 | OPTS_TYPE_ST_ADDBITS14;
6832 kern_type = KERN_TYPE_MD5_PWSLT;
6833 dgst_size = DGST_SIZE_4_4;
6834 parse_func = postgresql_parse_hash;
6835 sort_by_digest = sort_by_digest_4_4;
6836 opti_type = OPTI_TYPE_ZERO_BYTE
6837 | OPTI_TYPE_PRECOMPUTE_INIT
6838 | OPTI_TYPE_PRECOMPUTE_MERKLE
6839 | OPTI_TYPE_MEET_IN_MIDDLE
6840 | OPTI_TYPE_EARLY_SKIP
6841 | OPTI_TYPE_NOT_ITERATED
6842 | OPTI_TYPE_APPENDED_SALT
6843 | OPTI_TYPE_RAW_HASH;
6844 dgst_pos0 = 0;
6845 dgst_pos1 = 3;
6846 dgst_pos2 = 2;
6847 dgst_pos3 = 1;
6848 break;
6849
6850 case 20: hash_type = HASH_TYPE_MD5;
6851 salt_type = SALT_TYPE_INTERN;
6852 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6853 opts_type = OPTS_TYPE_PT_GENERATE_LE
6854 | OPTS_TYPE_PT_ADD80
6855 | OPTS_TYPE_PT_ADDBITS14;
6856 kern_type = KERN_TYPE_MD5_SLTPW;
6857 dgst_size = DGST_SIZE_4_4;
6858 parse_func = md5s_parse_hash;
6859 sort_by_digest = sort_by_digest_4_4;
6860 opti_type = OPTI_TYPE_ZERO_BYTE
6861 | OPTI_TYPE_PRECOMPUTE_INIT
6862 | OPTI_TYPE_PRECOMPUTE_MERKLE
6863 | OPTI_TYPE_EARLY_SKIP
6864 | OPTI_TYPE_NOT_ITERATED
6865 | OPTI_TYPE_PREPENDED_SALT
6866 | OPTI_TYPE_RAW_HASH;
6867 dgst_pos0 = 0;
6868 dgst_pos1 = 3;
6869 dgst_pos2 = 2;
6870 dgst_pos3 = 1;
6871 break;
6872
6873 case 21: hash_type = HASH_TYPE_MD5;
6874 salt_type = SALT_TYPE_INTERN;
6875 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6876 opts_type = OPTS_TYPE_PT_GENERATE_LE
6877 | OPTS_TYPE_PT_ADD80
6878 | OPTS_TYPE_PT_ADDBITS14;
6879 kern_type = KERN_TYPE_MD5_SLTPW;
6880 dgst_size = DGST_SIZE_4_4;
6881 parse_func = osc_parse_hash;
6882 sort_by_digest = sort_by_digest_4_4;
6883 opti_type = OPTI_TYPE_ZERO_BYTE
6884 | OPTI_TYPE_PRECOMPUTE_INIT
6885 | OPTI_TYPE_PRECOMPUTE_MERKLE
6886 | OPTI_TYPE_EARLY_SKIP
6887 | OPTI_TYPE_NOT_ITERATED
6888 | OPTI_TYPE_PREPENDED_SALT
6889 | OPTI_TYPE_RAW_HASH;
6890 dgst_pos0 = 0;
6891 dgst_pos1 = 3;
6892 dgst_pos2 = 2;
6893 dgst_pos3 = 1;
6894 break;
6895
6896 case 22: hash_type = HASH_TYPE_MD5;
6897 salt_type = SALT_TYPE_EMBEDDED;
6898 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6899 opts_type = OPTS_TYPE_PT_GENERATE_LE
6900 | OPTS_TYPE_PT_ADD80
6901 | OPTS_TYPE_PT_ADDBITS14;
6902 kern_type = KERN_TYPE_MD5_SLTPW;
6903 dgst_size = DGST_SIZE_4_4;
6904 parse_func = netscreen_parse_hash;
6905 sort_by_digest = sort_by_digest_4_4;
6906 opti_type = OPTI_TYPE_ZERO_BYTE
6907 | OPTI_TYPE_PRECOMPUTE_INIT
6908 | OPTI_TYPE_PRECOMPUTE_MERKLE
6909 | OPTI_TYPE_EARLY_SKIP
6910 | OPTI_TYPE_NOT_ITERATED
6911 | OPTI_TYPE_PREPENDED_SALT
6912 | OPTI_TYPE_RAW_HASH;
6913 dgst_pos0 = 0;
6914 dgst_pos1 = 3;
6915 dgst_pos2 = 2;
6916 dgst_pos3 = 1;
6917 break;
6918
6919 case 23: hash_type = HASH_TYPE_MD5;
6920 salt_type = SALT_TYPE_EMBEDDED;
6921 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6922 opts_type = OPTS_TYPE_PT_GENERATE_LE
6923 | OPTS_TYPE_PT_ADD80
6924 | OPTS_TYPE_PT_ADDBITS14;
6925 kern_type = KERN_TYPE_MD5_SLTPW;
6926 dgst_size = DGST_SIZE_4_4;
6927 parse_func = skype_parse_hash;
6928 sort_by_digest = sort_by_digest_4_4;
6929 opti_type = OPTI_TYPE_ZERO_BYTE
6930 | OPTI_TYPE_PRECOMPUTE_INIT
6931 | OPTI_TYPE_PRECOMPUTE_MERKLE
6932 | OPTI_TYPE_EARLY_SKIP
6933 | OPTI_TYPE_NOT_ITERATED
6934 | OPTI_TYPE_PREPENDED_SALT
6935 | OPTI_TYPE_RAW_HASH;
6936 dgst_pos0 = 0;
6937 dgst_pos1 = 3;
6938 dgst_pos2 = 2;
6939 dgst_pos3 = 1;
6940 break;
6941
6942 case 30: hash_type = HASH_TYPE_MD5;
6943 salt_type = SALT_TYPE_INTERN;
6944 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6945 opts_type = OPTS_TYPE_PT_GENERATE_LE
6946 | OPTS_TYPE_PT_UNICODE
6947 | OPTS_TYPE_ST_ADD80
6948 | OPTS_TYPE_ST_ADDBITS14;
6949 kern_type = KERN_TYPE_MD5_PWUSLT;
6950 dgst_size = DGST_SIZE_4_4;
6951 parse_func = md5s_parse_hash;
6952 sort_by_digest = sort_by_digest_4_4;
6953 opti_type = OPTI_TYPE_ZERO_BYTE
6954 | OPTI_TYPE_PRECOMPUTE_INIT
6955 | OPTI_TYPE_PRECOMPUTE_MERKLE
6956 | OPTI_TYPE_MEET_IN_MIDDLE
6957 | OPTI_TYPE_EARLY_SKIP
6958 | OPTI_TYPE_NOT_ITERATED
6959 | OPTI_TYPE_APPENDED_SALT
6960 | OPTI_TYPE_RAW_HASH;
6961 dgst_pos0 = 0;
6962 dgst_pos1 = 3;
6963 dgst_pos2 = 2;
6964 dgst_pos3 = 1;
6965 break;
6966
6967 case 40: hash_type = HASH_TYPE_MD5;
6968 salt_type = SALT_TYPE_INTERN;
6969 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6970 opts_type = OPTS_TYPE_PT_GENERATE_LE
6971 | OPTS_TYPE_PT_ADD80
6972 | OPTS_TYPE_PT_ADDBITS14
6973 | OPTS_TYPE_PT_UNICODE;
6974 kern_type = KERN_TYPE_MD5_SLTPWU;
6975 dgst_size = DGST_SIZE_4_4;
6976 parse_func = md5s_parse_hash;
6977 sort_by_digest = sort_by_digest_4_4;
6978 opti_type = OPTI_TYPE_ZERO_BYTE
6979 | OPTI_TYPE_PRECOMPUTE_INIT
6980 | OPTI_TYPE_PRECOMPUTE_MERKLE
6981 | OPTI_TYPE_EARLY_SKIP
6982 | OPTI_TYPE_NOT_ITERATED
6983 | OPTI_TYPE_PREPENDED_SALT
6984 | OPTI_TYPE_RAW_HASH;
6985 dgst_pos0 = 0;
6986 dgst_pos1 = 3;
6987 dgst_pos2 = 2;
6988 dgst_pos3 = 1;
6989 break;
6990
6991 case 50: hash_type = HASH_TYPE_MD5;
6992 salt_type = SALT_TYPE_INTERN;
6993 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6994 opts_type = OPTS_TYPE_PT_GENERATE_LE
6995 | OPTS_TYPE_ST_ADD80
6996 | OPTS_TYPE_ST_ADDBITS14;
6997 kern_type = KERN_TYPE_HMACMD5_PW;
6998 dgst_size = DGST_SIZE_4_4;
6999 parse_func = hmacmd5_parse_hash;
7000 sort_by_digest = sort_by_digest_4_4;
7001 opti_type = OPTI_TYPE_ZERO_BYTE
7002 | OPTI_TYPE_NOT_ITERATED;
7003 dgst_pos0 = 0;
7004 dgst_pos1 = 3;
7005 dgst_pos2 = 2;
7006 dgst_pos3 = 1;
7007 break;
7008
7009 case 60: hash_type = HASH_TYPE_MD5;
7010 salt_type = SALT_TYPE_INTERN;
7011 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7012 opts_type = OPTS_TYPE_PT_GENERATE_LE
7013 | OPTS_TYPE_PT_ADD80
7014 | OPTS_TYPE_PT_ADDBITS14;
7015 kern_type = KERN_TYPE_HMACMD5_SLT;
7016 dgst_size = DGST_SIZE_4_4;
7017 parse_func = hmacmd5_parse_hash;
7018 sort_by_digest = sort_by_digest_4_4;
7019 opti_type = OPTI_TYPE_ZERO_BYTE
7020 | OPTI_TYPE_NOT_ITERATED;
7021 dgst_pos0 = 0;
7022 dgst_pos1 = 3;
7023 dgst_pos2 = 2;
7024 dgst_pos3 = 1;
7025 break;
7026
7027 case 100: hash_type = HASH_TYPE_SHA1;
7028 salt_type = SALT_TYPE_NONE;
7029 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7030 opts_type = OPTS_TYPE_PT_GENERATE_BE
7031 | OPTS_TYPE_PT_ADD80
7032 | OPTS_TYPE_PT_ADDBITS15;
7033 kern_type = KERN_TYPE_SHA1;
7034 dgst_size = DGST_SIZE_4_5;
7035 parse_func = sha1_parse_hash;
7036 sort_by_digest = sort_by_digest_4_5;
7037 opti_type = OPTI_TYPE_ZERO_BYTE
7038 | OPTI_TYPE_PRECOMPUTE_INIT
7039 | OPTI_TYPE_PRECOMPUTE_MERKLE
7040 | OPTI_TYPE_EARLY_SKIP
7041 | OPTI_TYPE_NOT_ITERATED
7042 | OPTI_TYPE_NOT_SALTED
7043 | OPTI_TYPE_RAW_HASH;
7044 dgst_pos0 = 3;
7045 dgst_pos1 = 4;
7046 dgst_pos2 = 2;
7047 dgst_pos3 = 1;
7048 break;
7049
7050 case 101: hash_type = HASH_TYPE_SHA1;
7051 salt_type = SALT_TYPE_NONE;
7052 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7053 opts_type = OPTS_TYPE_PT_GENERATE_BE
7054 | OPTS_TYPE_PT_ADD80
7055 | OPTS_TYPE_PT_ADDBITS15;
7056 kern_type = KERN_TYPE_SHA1;
7057 dgst_size = DGST_SIZE_4_5;
7058 parse_func = sha1b64_parse_hash;
7059 sort_by_digest = sort_by_digest_4_5;
7060 opti_type = OPTI_TYPE_ZERO_BYTE
7061 | OPTI_TYPE_PRECOMPUTE_INIT
7062 | OPTI_TYPE_PRECOMPUTE_MERKLE
7063 | OPTI_TYPE_EARLY_SKIP
7064 | OPTI_TYPE_NOT_ITERATED
7065 | OPTI_TYPE_NOT_SALTED
7066 | OPTI_TYPE_RAW_HASH;
7067 dgst_pos0 = 3;
7068 dgst_pos1 = 4;
7069 dgst_pos2 = 2;
7070 dgst_pos3 = 1;
7071 break;
7072
7073 case 110: hash_type = HASH_TYPE_SHA1;
7074 salt_type = SALT_TYPE_INTERN;
7075 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7076 opts_type = OPTS_TYPE_PT_GENERATE_BE
7077 | OPTS_TYPE_ST_ADD80
7078 | OPTS_TYPE_ST_ADDBITS15;
7079 kern_type = KERN_TYPE_SHA1_PWSLT;
7080 dgst_size = DGST_SIZE_4_5;
7081 parse_func = sha1s_parse_hash;
7082 sort_by_digest = sort_by_digest_4_5;
7083 opti_type = OPTI_TYPE_ZERO_BYTE
7084 | OPTI_TYPE_PRECOMPUTE_INIT
7085 | OPTI_TYPE_PRECOMPUTE_MERKLE
7086 | OPTI_TYPE_EARLY_SKIP
7087 | OPTI_TYPE_NOT_ITERATED
7088 | OPTI_TYPE_APPENDED_SALT
7089 | OPTI_TYPE_RAW_HASH;
7090 dgst_pos0 = 3;
7091 dgst_pos1 = 4;
7092 dgst_pos2 = 2;
7093 dgst_pos3 = 1;
7094 break;
7095
7096 case 111: hash_type = HASH_TYPE_SHA1;
7097 salt_type = SALT_TYPE_EMBEDDED;
7098 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7099 opts_type = OPTS_TYPE_PT_GENERATE_BE
7100 | OPTS_TYPE_ST_ADD80
7101 | OPTS_TYPE_ST_ADDBITS15;
7102 kern_type = KERN_TYPE_SHA1_PWSLT;
7103 dgst_size = DGST_SIZE_4_5;
7104 parse_func = sha1b64s_parse_hash;
7105 sort_by_digest = sort_by_digest_4_5;
7106 opti_type = OPTI_TYPE_ZERO_BYTE
7107 | OPTI_TYPE_PRECOMPUTE_INIT
7108 | OPTI_TYPE_PRECOMPUTE_MERKLE
7109 | OPTI_TYPE_EARLY_SKIP
7110 | OPTI_TYPE_NOT_ITERATED
7111 | OPTI_TYPE_APPENDED_SALT
7112 | OPTI_TYPE_RAW_HASH;
7113 dgst_pos0 = 3;
7114 dgst_pos1 = 4;
7115 dgst_pos2 = 2;
7116 dgst_pos3 = 1;
7117 break;
7118
7119 case 112: hash_type = HASH_TYPE_SHA1;
7120 salt_type = SALT_TYPE_INTERN;
7121 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7122 opts_type = OPTS_TYPE_PT_GENERATE_BE
7123 | OPTS_TYPE_ST_ADD80
7124 | OPTS_TYPE_ST_ADDBITS15
7125 | OPTS_TYPE_ST_HEX;
7126 kern_type = KERN_TYPE_SHA1_PWSLT;
7127 dgst_size = DGST_SIZE_4_5;
7128 parse_func = oracles_parse_hash;
7129 sort_by_digest = sort_by_digest_4_5;
7130 opti_type = OPTI_TYPE_ZERO_BYTE
7131 | OPTI_TYPE_PRECOMPUTE_INIT
7132 | OPTI_TYPE_PRECOMPUTE_MERKLE
7133 | OPTI_TYPE_EARLY_SKIP
7134 | OPTI_TYPE_NOT_ITERATED
7135 | OPTI_TYPE_APPENDED_SALT
7136 | OPTI_TYPE_RAW_HASH;
7137 dgst_pos0 = 3;
7138 dgst_pos1 = 4;
7139 dgst_pos2 = 2;
7140 dgst_pos3 = 1;
7141 break;
7142
7143 case 120: hash_type = HASH_TYPE_SHA1;
7144 salt_type = SALT_TYPE_INTERN;
7145 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7146 opts_type = OPTS_TYPE_PT_GENERATE_BE
7147 | OPTS_TYPE_PT_ADD80
7148 | OPTS_TYPE_PT_ADDBITS15;
7149 kern_type = KERN_TYPE_SHA1_SLTPW;
7150 dgst_size = DGST_SIZE_4_5;
7151 parse_func = sha1s_parse_hash;
7152 sort_by_digest = sort_by_digest_4_5;
7153 opti_type = OPTI_TYPE_ZERO_BYTE
7154 | OPTI_TYPE_PRECOMPUTE_INIT
7155 | OPTI_TYPE_PRECOMPUTE_MERKLE
7156 | OPTI_TYPE_EARLY_SKIP
7157 | OPTI_TYPE_NOT_ITERATED
7158 | OPTI_TYPE_PREPENDED_SALT
7159 | OPTI_TYPE_RAW_HASH;
7160 dgst_pos0 = 3;
7161 dgst_pos1 = 4;
7162 dgst_pos2 = 2;
7163 dgst_pos3 = 1;
7164 break;
7165
7166 case 121: hash_type = HASH_TYPE_SHA1;
7167 salt_type = SALT_TYPE_INTERN;
7168 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7169 opts_type = OPTS_TYPE_PT_GENERATE_BE
7170 | OPTS_TYPE_PT_ADD80
7171 | OPTS_TYPE_PT_ADDBITS15
7172 | OPTS_TYPE_ST_LOWER;
7173 kern_type = KERN_TYPE_SHA1_SLTPW;
7174 dgst_size = DGST_SIZE_4_5;
7175 parse_func = smf_parse_hash;
7176 sort_by_digest = sort_by_digest_4_5;
7177 opti_type = OPTI_TYPE_ZERO_BYTE
7178 | OPTI_TYPE_PRECOMPUTE_INIT
7179 | OPTI_TYPE_PRECOMPUTE_MERKLE
7180 | OPTI_TYPE_EARLY_SKIP
7181 | OPTI_TYPE_NOT_ITERATED
7182 | OPTI_TYPE_PREPENDED_SALT
7183 | OPTI_TYPE_RAW_HASH;
7184 dgst_pos0 = 3;
7185 dgst_pos1 = 4;
7186 dgst_pos2 = 2;
7187 dgst_pos3 = 1;
7188 break;
7189
7190 case 122: hash_type = HASH_TYPE_SHA1;
7191 salt_type = SALT_TYPE_EMBEDDED;
7192 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7193 opts_type = OPTS_TYPE_PT_GENERATE_BE
7194 | OPTS_TYPE_PT_ADD80
7195 | OPTS_TYPE_PT_ADDBITS15
7196 | OPTS_TYPE_ST_HEX;
7197 kern_type = KERN_TYPE_SHA1_SLTPW;
7198 dgst_size = DGST_SIZE_4_5;
7199 parse_func = osx1_parse_hash;
7200 sort_by_digest = sort_by_digest_4_5;
7201 opti_type = OPTI_TYPE_ZERO_BYTE
7202 | OPTI_TYPE_PRECOMPUTE_INIT
7203 | OPTI_TYPE_PRECOMPUTE_MERKLE
7204 | OPTI_TYPE_EARLY_SKIP
7205 | OPTI_TYPE_NOT_ITERATED
7206 | OPTI_TYPE_PREPENDED_SALT
7207 | OPTI_TYPE_RAW_HASH;
7208 dgst_pos0 = 3;
7209 dgst_pos1 = 4;
7210 dgst_pos2 = 2;
7211 dgst_pos3 = 1;
7212 break;
7213
7214 case 124: hash_type = HASH_TYPE_SHA1;
7215 salt_type = SALT_TYPE_EMBEDDED;
7216 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7217 opts_type = OPTS_TYPE_PT_GENERATE_BE
7218 | OPTS_TYPE_PT_ADD80
7219 | OPTS_TYPE_PT_ADDBITS15;
7220 kern_type = KERN_TYPE_SHA1_SLTPW;
7221 dgst_size = DGST_SIZE_4_5;
7222 parse_func = djangosha1_parse_hash;
7223 sort_by_digest = sort_by_digest_4_5;
7224 opti_type = OPTI_TYPE_ZERO_BYTE
7225 | OPTI_TYPE_PRECOMPUTE_INIT
7226 | OPTI_TYPE_PRECOMPUTE_MERKLE
7227 | OPTI_TYPE_EARLY_SKIP
7228 | OPTI_TYPE_NOT_ITERATED
7229 | OPTI_TYPE_PREPENDED_SALT
7230 | OPTI_TYPE_RAW_HASH;
7231 dgst_pos0 = 3;
7232 dgst_pos1 = 4;
7233 dgst_pos2 = 2;
7234 dgst_pos3 = 1;
7235 break;
7236
7237 case 125: hash_type = HASH_TYPE_SHA1;
7238 salt_type = SALT_TYPE_EMBEDDED;
7239 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7240 opts_type = OPTS_TYPE_PT_GENERATE_BE
7241 | OPTS_TYPE_PT_ADD80
7242 | OPTS_TYPE_PT_ADDBITS15
7243 | OPTS_TYPE_ST_HEX;
7244 kern_type = KERN_TYPE_SHA1_SLTPW;
7245 dgst_size = DGST_SIZE_4_5;
7246 parse_func = arubaos_parse_hash;
7247 sort_by_digest = sort_by_digest_4_5;
7248 opti_type = OPTI_TYPE_ZERO_BYTE
7249 | OPTI_TYPE_PRECOMPUTE_INIT
7250 | OPTI_TYPE_PRECOMPUTE_MERKLE
7251 | OPTI_TYPE_EARLY_SKIP
7252 | OPTI_TYPE_NOT_ITERATED
7253 | OPTI_TYPE_PREPENDED_SALT
7254 | OPTI_TYPE_RAW_HASH;
7255 dgst_pos0 = 3;
7256 dgst_pos1 = 4;
7257 dgst_pos2 = 2;
7258 dgst_pos3 = 1;
7259 break;
7260
7261 case 130: hash_type = HASH_TYPE_SHA1;
7262 salt_type = SALT_TYPE_INTERN;
7263 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7264 opts_type = OPTS_TYPE_PT_GENERATE_BE
7265 | OPTS_TYPE_PT_UNICODE
7266 | OPTS_TYPE_ST_ADD80
7267 | OPTS_TYPE_ST_ADDBITS15;
7268 kern_type = KERN_TYPE_SHA1_PWUSLT;
7269 dgst_size = DGST_SIZE_4_5;
7270 parse_func = sha1s_parse_hash;
7271 sort_by_digest = sort_by_digest_4_5;
7272 opti_type = OPTI_TYPE_ZERO_BYTE
7273 | OPTI_TYPE_PRECOMPUTE_INIT
7274 | OPTI_TYPE_PRECOMPUTE_MERKLE
7275 | OPTI_TYPE_EARLY_SKIP
7276 | OPTI_TYPE_NOT_ITERATED
7277 | OPTI_TYPE_APPENDED_SALT
7278 | OPTI_TYPE_RAW_HASH;
7279 dgst_pos0 = 3;
7280 dgst_pos1 = 4;
7281 dgst_pos2 = 2;
7282 dgst_pos3 = 1;
7283 break;
7284
7285 case 131: hash_type = HASH_TYPE_SHA1;
7286 salt_type = SALT_TYPE_EMBEDDED;
7287 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7288 opts_type = OPTS_TYPE_PT_GENERATE_BE
7289 | OPTS_TYPE_PT_UNICODE
7290 | OPTS_TYPE_PT_UPPER
7291 | OPTS_TYPE_ST_ADD80
7292 | OPTS_TYPE_ST_ADDBITS15
7293 | OPTS_TYPE_ST_HEX;
7294 kern_type = KERN_TYPE_SHA1_PWUSLT;
7295 dgst_size = DGST_SIZE_4_5;
7296 parse_func = mssql2000_parse_hash;
7297 sort_by_digest = sort_by_digest_4_5;
7298 opti_type = OPTI_TYPE_ZERO_BYTE
7299 | OPTI_TYPE_PRECOMPUTE_INIT
7300 | OPTI_TYPE_PRECOMPUTE_MERKLE
7301 | OPTI_TYPE_EARLY_SKIP
7302 | OPTI_TYPE_NOT_ITERATED
7303 | OPTI_TYPE_APPENDED_SALT
7304 | OPTI_TYPE_RAW_HASH;
7305 dgst_pos0 = 3;
7306 dgst_pos1 = 4;
7307 dgst_pos2 = 2;
7308 dgst_pos3 = 1;
7309 break;
7310
7311 case 132: hash_type = HASH_TYPE_SHA1;
7312 salt_type = SALT_TYPE_EMBEDDED;
7313 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7314 opts_type = OPTS_TYPE_PT_GENERATE_BE
7315 | OPTS_TYPE_PT_UNICODE
7316 | OPTS_TYPE_ST_ADD80
7317 | OPTS_TYPE_ST_ADDBITS15
7318 | OPTS_TYPE_ST_HEX;
7319 kern_type = KERN_TYPE_SHA1_PWUSLT;
7320 dgst_size = DGST_SIZE_4_5;
7321 parse_func = mssql2005_parse_hash;
7322 sort_by_digest = sort_by_digest_4_5;
7323 opti_type = OPTI_TYPE_ZERO_BYTE
7324 | OPTI_TYPE_PRECOMPUTE_INIT
7325 | OPTI_TYPE_PRECOMPUTE_MERKLE
7326 | OPTI_TYPE_EARLY_SKIP
7327 | OPTI_TYPE_NOT_ITERATED
7328 | OPTI_TYPE_APPENDED_SALT
7329 | OPTI_TYPE_RAW_HASH;
7330 dgst_pos0 = 3;
7331 dgst_pos1 = 4;
7332 dgst_pos2 = 2;
7333 dgst_pos3 = 1;
7334 break;
7335
7336 case 133: hash_type = HASH_TYPE_SHA1;
7337 salt_type = SALT_TYPE_EMBEDDED;
7338 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7339 opts_type = OPTS_TYPE_PT_GENERATE_BE
7340 | OPTS_TYPE_PT_UNICODE
7341 | OPTS_TYPE_ST_ADD80
7342 | OPTS_TYPE_ST_ADDBITS15;
7343 kern_type = KERN_TYPE_SHA1_PWUSLT;
7344 dgst_size = DGST_SIZE_4_5;
7345 parse_func = peoplesoft_parse_hash;
7346 sort_by_digest = sort_by_digest_4_5;
7347 opti_type = OPTI_TYPE_ZERO_BYTE
7348 | OPTI_TYPE_PRECOMPUTE_INIT
7349 | OPTI_TYPE_PRECOMPUTE_MERKLE
7350 | OPTI_TYPE_EARLY_SKIP
7351 | OPTI_TYPE_NOT_ITERATED
7352 | OPTI_TYPE_APPENDED_SALT
7353 | OPTI_TYPE_RAW_HASH;
7354 dgst_pos0 = 3;
7355 dgst_pos1 = 4;
7356 dgst_pos2 = 2;
7357 dgst_pos3 = 1;
7358 break;
7359
7360 case 140: hash_type = HASH_TYPE_SHA1;
7361 salt_type = SALT_TYPE_INTERN;
7362 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7363 opts_type = OPTS_TYPE_PT_GENERATE_BE
7364 | OPTS_TYPE_PT_ADD80
7365 | OPTS_TYPE_PT_ADDBITS15
7366 | OPTS_TYPE_PT_UNICODE;
7367 kern_type = KERN_TYPE_SHA1_SLTPWU;
7368 dgst_size = DGST_SIZE_4_5;
7369 parse_func = sha1s_parse_hash;
7370 sort_by_digest = sort_by_digest_4_5;
7371 opti_type = OPTI_TYPE_ZERO_BYTE
7372 | OPTI_TYPE_PRECOMPUTE_INIT
7373 | OPTI_TYPE_PRECOMPUTE_MERKLE
7374 | OPTI_TYPE_EARLY_SKIP
7375 | OPTI_TYPE_NOT_ITERATED
7376 | OPTI_TYPE_PREPENDED_SALT
7377 | OPTI_TYPE_RAW_HASH;
7378 dgst_pos0 = 3;
7379 dgst_pos1 = 4;
7380 dgst_pos2 = 2;
7381 dgst_pos3 = 1;
7382 break;
7383
7384 case 141: hash_type = HASH_TYPE_SHA1;
7385 salt_type = SALT_TYPE_EMBEDDED;
7386 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7387 opts_type = OPTS_TYPE_PT_GENERATE_BE
7388 | OPTS_TYPE_PT_ADD80
7389 | OPTS_TYPE_PT_ADDBITS15
7390 | OPTS_TYPE_PT_UNICODE
7391 | OPTS_TYPE_ST_BASE64;
7392 kern_type = KERN_TYPE_SHA1_SLTPWU;
7393 dgst_size = DGST_SIZE_4_5;
7394 parse_func = episerver_parse_hash;
7395 sort_by_digest = sort_by_digest_4_5;
7396 opti_type = OPTI_TYPE_ZERO_BYTE
7397 | OPTI_TYPE_PRECOMPUTE_INIT
7398 | OPTI_TYPE_PRECOMPUTE_MERKLE
7399 | OPTI_TYPE_EARLY_SKIP
7400 | OPTI_TYPE_NOT_ITERATED
7401 | OPTI_TYPE_PREPENDED_SALT
7402 | OPTI_TYPE_RAW_HASH;
7403 dgst_pos0 = 3;
7404 dgst_pos1 = 4;
7405 dgst_pos2 = 2;
7406 dgst_pos3 = 1;
7407 break;
7408
7409 case 150: hash_type = HASH_TYPE_SHA1;
7410 salt_type = SALT_TYPE_INTERN;
7411 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7412 opts_type = OPTS_TYPE_PT_GENERATE_BE
7413 | OPTS_TYPE_ST_ADD80
7414 | OPTS_TYPE_ST_ADDBITS15;
7415 kern_type = KERN_TYPE_HMACSHA1_PW;
7416 dgst_size = DGST_SIZE_4_5;
7417 parse_func = hmacsha1_parse_hash;
7418 sort_by_digest = sort_by_digest_4_5;
7419 opti_type = OPTI_TYPE_ZERO_BYTE
7420 | OPTI_TYPE_NOT_ITERATED;
7421 dgst_pos0 = 3;
7422 dgst_pos1 = 4;
7423 dgst_pos2 = 2;
7424 dgst_pos3 = 1;
7425 break;
7426
7427 case 160: hash_type = HASH_TYPE_SHA1;
7428 salt_type = SALT_TYPE_INTERN;
7429 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7430 opts_type = OPTS_TYPE_PT_GENERATE_BE
7431 | OPTS_TYPE_PT_ADD80
7432 | OPTS_TYPE_PT_ADDBITS15;
7433 kern_type = KERN_TYPE_HMACSHA1_SLT;
7434 dgst_size = DGST_SIZE_4_5;
7435 parse_func = hmacsha1_parse_hash;
7436 sort_by_digest = sort_by_digest_4_5;
7437 opti_type = OPTI_TYPE_ZERO_BYTE
7438 | OPTI_TYPE_NOT_ITERATED;
7439 dgst_pos0 = 3;
7440 dgst_pos1 = 4;
7441 dgst_pos2 = 2;
7442 dgst_pos3 = 1;
7443 break;
7444
7445 case 190: hash_type = HASH_TYPE_SHA1;
7446 salt_type = SALT_TYPE_NONE;
7447 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7448 opts_type = OPTS_TYPE_PT_GENERATE_BE
7449 | OPTS_TYPE_PT_ADD80
7450 | OPTS_TYPE_PT_ADDBITS15;
7451 kern_type = KERN_TYPE_SHA1_LINKEDIN;
7452 dgst_size = DGST_SIZE_4_5;
7453 parse_func = sha1linkedin_parse_hash;
7454 sort_by_digest = sort_by_digest_4_5;
7455 opti_type = OPTI_TYPE_ZERO_BYTE
7456 | OPTI_TYPE_PRECOMPUTE_INIT
7457 | OPTI_TYPE_EARLY_SKIP
7458 | OPTI_TYPE_NOT_ITERATED
7459 | OPTI_TYPE_NOT_SALTED;
7460 dgst_pos0 = 0;
7461 dgst_pos1 = 4;
7462 dgst_pos2 = 3;
7463 dgst_pos3 = 2;
7464 break;
7465
7466 case 200: hash_type = HASH_TYPE_MYSQL;
7467 salt_type = SALT_TYPE_NONE;
7468 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7469 opts_type = 0;
7470 kern_type = KERN_TYPE_MYSQL;
7471 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
7472 parse_func = mysql323_parse_hash;
7473 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
7474 opti_type = OPTI_TYPE_ZERO_BYTE;
7475 dgst_pos0 = 0;
7476 dgst_pos1 = 1;
7477 dgst_pos2 = 2;
7478 dgst_pos3 = 3;
7479 break;
7480
7481 case 300: hash_type = HASH_TYPE_SHA1;
7482 salt_type = SALT_TYPE_NONE;
7483 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7484 opts_type = OPTS_TYPE_PT_GENERATE_BE
7485 | OPTS_TYPE_PT_ADD80
7486 | OPTS_TYPE_PT_ADDBITS15;
7487 kern_type = KERN_TYPE_MYSQL41;
7488 dgst_size = DGST_SIZE_4_5;
7489 parse_func = sha1_parse_hash;
7490 sort_by_digest = sort_by_digest_4_5;
7491 opti_type = OPTI_TYPE_ZERO_BYTE
7492 | OPTI_TYPE_PRECOMPUTE_INIT
7493 | OPTI_TYPE_PRECOMPUTE_MERKLE
7494 | OPTI_TYPE_EARLY_SKIP
7495 | OPTI_TYPE_NOT_ITERATED
7496 | OPTI_TYPE_NOT_SALTED;
7497 dgst_pos0 = 3;
7498 dgst_pos1 = 4;
7499 dgst_pos2 = 2;
7500 dgst_pos3 = 1;
7501 break;
7502
7503 case 400: hash_type = HASH_TYPE_MD5;
7504 salt_type = SALT_TYPE_EMBEDDED;
7505 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
7506 opts_type = OPTS_TYPE_PT_GENERATE_LE;
7507 kern_type = KERN_TYPE_PHPASS;
7508 dgst_size = DGST_SIZE_4_4;
7509 parse_func = phpass_parse_hash;
7510 sort_by_digest = sort_by_digest_4_4;
7511 opti_type = OPTI_TYPE_ZERO_BYTE
7512 | OPTI_TYPE_SLOW_HASH_SIMD;
7513 dgst_pos0 = 0;
7514 dgst_pos1 = 1;
7515 dgst_pos2 = 2;
7516 dgst_pos3 = 3;
7517 break;
7518
7519 case 500: hash_type = HASH_TYPE_MD5;
7520 salt_type = SALT_TYPE_EMBEDDED;
7521 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
7522 opts_type = OPTS_TYPE_PT_GENERATE_LE;
7523 kern_type = KERN_TYPE_MD5CRYPT;
7524 dgst_size = DGST_SIZE_4_4;
7525 parse_func = md5crypt_parse_hash;
7526 sort_by_digest = sort_by_digest_4_4;
7527 opti_type = OPTI_TYPE_ZERO_BYTE;
7528 dgst_pos0 = 0;
7529 dgst_pos1 = 1;
7530 dgst_pos2 = 2;
7531 dgst_pos3 = 3;
7532 break;
7533
7534 case 501: hash_type = HASH_TYPE_MD5;
7535 salt_type = SALT_TYPE_EMBEDDED;
7536 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
7537 opts_type = OPTS_TYPE_PT_GENERATE_LE
7538 | OPTS_TYPE_HASH_COPY;
7539 kern_type = KERN_TYPE_MD5CRYPT;
7540 dgst_size = DGST_SIZE_4_4;
7541 parse_func = juniper_parse_hash;
7542 sort_by_digest = sort_by_digest_4_4;
7543 opti_type = OPTI_TYPE_ZERO_BYTE;
7544 dgst_pos0 = 0;
7545 dgst_pos1 = 1;
7546 dgst_pos2 = 2;
7547 dgst_pos3 = 3;
7548 break;
7549
7550 case 900: hash_type = HASH_TYPE_MD4;
7551 salt_type = SALT_TYPE_NONE;
7552 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7553 opts_type = OPTS_TYPE_PT_GENERATE_LE
7554 | OPTS_TYPE_PT_ADD80
7555 | OPTS_TYPE_PT_ADDBITS14;
7556 kern_type = KERN_TYPE_MD4;
7557 dgst_size = DGST_SIZE_4_4;
7558 parse_func = md4_parse_hash;
7559 sort_by_digest = sort_by_digest_4_4;
7560 opti_type = OPTI_TYPE_ZERO_BYTE
7561 | OPTI_TYPE_PRECOMPUTE_INIT
7562 | OPTI_TYPE_PRECOMPUTE_MERKLE
7563 | OPTI_TYPE_MEET_IN_MIDDLE
7564 | OPTI_TYPE_EARLY_SKIP
7565 | OPTI_TYPE_NOT_ITERATED
7566 | OPTI_TYPE_NOT_SALTED
7567 | OPTI_TYPE_RAW_HASH;
7568 dgst_pos0 = 0;
7569 dgst_pos1 = 3;
7570 dgst_pos2 = 2;
7571 dgst_pos3 = 1;
7572 break;
7573
7574 case 1000: hash_type = HASH_TYPE_MD4;
7575 salt_type = SALT_TYPE_NONE;
7576 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7577 opts_type = OPTS_TYPE_PT_GENERATE_LE
7578 | OPTS_TYPE_PT_ADD80
7579 | OPTS_TYPE_PT_ADDBITS14
7580 | OPTS_TYPE_PT_UNICODE;
7581 kern_type = KERN_TYPE_MD4_PWU;
7582 dgst_size = DGST_SIZE_4_4;
7583 parse_func = md4_parse_hash;
7584 sort_by_digest = sort_by_digest_4_4;
7585 opti_type = OPTI_TYPE_ZERO_BYTE
7586 | OPTI_TYPE_PRECOMPUTE_INIT
7587 | OPTI_TYPE_PRECOMPUTE_MERKLE
7588 | OPTI_TYPE_MEET_IN_MIDDLE
7589 | OPTI_TYPE_EARLY_SKIP
7590 | OPTI_TYPE_NOT_ITERATED
7591 | OPTI_TYPE_NOT_SALTED
7592 | OPTI_TYPE_RAW_HASH;
7593 dgst_pos0 = 0;
7594 dgst_pos1 = 3;
7595 dgst_pos2 = 2;
7596 dgst_pos3 = 1;
7597 break;
7598
7599 case 1100: hash_type = HASH_TYPE_MD4;
7600 salt_type = SALT_TYPE_INTERN;
7601 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7602 opts_type = OPTS_TYPE_PT_GENERATE_LE
7603 | OPTS_TYPE_PT_ADD80
7604 | OPTS_TYPE_PT_ADDBITS14
7605 | OPTS_TYPE_PT_UNICODE
7606 | OPTS_TYPE_ST_ADD80
7607 | OPTS_TYPE_ST_UNICODE
7608 | OPTS_TYPE_ST_LOWER;
7609 kern_type = KERN_TYPE_MD44_PWUSLT;
7610 dgst_size = DGST_SIZE_4_4;
7611 parse_func = dcc_parse_hash;
7612 sort_by_digest = sort_by_digest_4_4;
7613 opti_type = OPTI_TYPE_ZERO_BYTE
7614 | OPTI_TYPE_PRECOMPUTE_INIT
7615 | OPTI_TYPE_PRECOMPUTE_MERKLE
7616 | OPTI_TYPE_EARLY_SKIP
7617 | OPTI_TYPE_NOT_ITERATED;
7618 dgst_pos0 = 0;
7619 dgst_pos1 = 3;
7620 dgst_pos2 = 2;
7621 dgst_pos3 = 1;
7622 break;
7623
7624 case 1400: hash_type = HASH_TYPE_SHA256;
7625 salt_type = SALT_TYPE_NONE;
7626 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7627 opts_type = OPTS_TYPE_PT_GENERATE_BE
7628 | OPTS_TYPE_PT_ADD80
7629 | OPTS_TYPE_PT_ADDBITS15;
7630 kern_type = KERN_TYPE_SHA256;
7631 dgst_size = DGST_SIZE_4_8;
7632 parse_func = sha256_parse_hash;
7633 sort_by_digest = sort_by_digest_4_8;
7634 opti_type = OPTI_TYPE_ZERO_BYTE
7635 | OPTI_TYPE_PRECOMPUTE_INIT
7636 | OPTI_TYPE_PRECOMPUTE_MERKLE
7637 | OPTI_TYPE_EARLY_SKIP
7638 | OPTI_TYPE_NOT_ITERATED
7639 | OPTI_TYPE_NOT_SALTED
7640 | OPTI_TYPE_RAW_HASH;
7641 dgst_pos0 = 3;
7642 dgst_pos1 = 7;
7643 dgst_pos2 = 2;
7644 dgst_pos3 = 6;
7645 break;
7646
7647 case 1410: hash_type = HASH_TYPE_SHA256;
7648 salt_type = SALT_TYPE_INTERN;
7649 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7650 opts_type = OPTS_TYPE_PT_GENERATE_BE
7651 | OPTS_TYPE_ST_ADD80
7652 | OPTS_TYPE_ST_ADDBITS15;
7653 kern_type = KERN_TYPE_SHA256_PWSLT;
7654 dgst_size = DGST_SIZE_4_8;
7655 parse_func = sha256s_parse_hash;
7656 sort_by_digest = sort_by_digest_4_8;
7657 opti_type = OPTI_TYPE_ZERO_BYTE
7658 | OPTI_TYPE_PRECOMPUTE_INIT
7659 | OPTI_TYPE_PRECOMPUTE_MERKLE
7660 | OPTI_TYPE_EARLY_SKIP
7661 | OPTI_TYPE_NOT_ITERATED
7662 | OPTI_TYPE_APPENDED_SALT
7663 | OPTI_TYPE_RAW_HASH;
7664 dgst_pos0 = 3;
7665 dgst_pos1 = 7;
7666 dgst_pos2 = 2;
7667 dgst_pos3 = 6;
7668 break;
7669
7670 case 1420: hash_type = HASH_TYPE_SHA256;
7671 salt_type = SALT_TYPE_INTERN;
7672 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7673 opts_type = OPTS_TYPE_PT_GENERATE_BE
7674 | OPTS_TYPE_PT_ADD80
7675 | OPTS_TYPE_PT_ADDBITS15;
7676 kern_type = KERN_TYPE_SHA256_SLTPW;
7677 dgst_size = DGST_SIZE_4_8;
7678 parse_func = sha256s_parse_hash;
7679 sort_by_digest = sort_by_digest_4_8;
7680 opti_type = OPTI_TYPE_ZERO_BYTE
7681 | OPTI_TYPE_PRECOMPUTE_INIT
7682 | OPTI_TYPE_PRECOMPUTE_MERKLE
7683 | OPTI_TYPE_EARLY_SKIP
7684 | OPTI_TYPE_NOT_ITERATED
7685 | OPTI_TYPE_PREPENDED_SALT
7686 | OPTI_TYPE_RAW_HASH;
7687 dgst_pos0 = 3;
7688 dgst_pos1 = 7;
7689 dgst_pos2 = 2;
7690 dgst_pos3 = 6;
7691 break;
7692
7693 case 1421: hash_type = HASH_TYPE_SHA256;
7694 salt_type = SALT_TYPE_EMBEDDED;
7695 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7696 opts_type = OPTS_TYPE_PT_GENERATE_BE
7697 | OPTS_TYPE_PT_ADD80
7698 | OPTS_TYPE_PT_ADDBITS15;
7699 kern_type = KERN_TYPE_SHA256_SLTPW;
7700 dgst_size = DGST_SIZE_4_8;
7701 parse_func = hmailserver_parse_hash;
7702 sort_by_digest = sort_by_digest_4_8;
7703 opti_type = OPTI_TYPE_ZERO_BYTE
7704 | OPTI_TYPE_PRECOMPUTE_INIT
7705 | OPTI_TYPE_PRECOMPUTE_MERKLE
7706 | OPTI_TYPE_EARLY_SKIP
7707 | OPTI_TYPE_NOT_ITERATED
7708 | OPTI_TYPE_PREPENDED_SALT
7709 | OPTI_TYPE_RAW_HASH;
7710 dgst_pos0 = 3;
7711 dgst_pos1 = 7;
7712 dgst_pos2 = 2;
7713 dgst_pos3 = 6;
7714 break;
7715
7716 case 1430: hash_type = HASH_TYPE_SHA256;
7717 salt_type = SALT_TYPE_INTERN;
7718 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7719 opts_type = OPTS_TYPE_PT_GENERATE_BE
7720 | OPTS_TYPE_PT_UNICODE
7721 | OPTS_TYPE_ST_ADD80
7722 | OPTS_TYPE_ST_ADDBITS15;
7723 kern_type = KERN_TYPE_SHA256_PWUSLT;
7724 dgst_size = DGST_SIZE_4_8;
7725 parse_func = sha256s_parse_hash;
7726 sort_by_digest = sort_by_digest_4_8;
7727 opti_type = OPTI_TYPE_ZERO_BYTE
7728 | OPTI_TYPE_PRECOMPUTE_INIT
7729 | OPTI_TYPE_PRECOMPUTE_MERKLE
7730 | OPTI_TYPE_EARLY_SKIP
7731 | OPTI_TYPE_NOT_ITERATED
7732 | OPTI_TYPE_APPENDED_SALT
7733 | OPTI_TYPE_RAW_HASH;
7734 dgst_pos0 = 3;
7735 dgst_pos1 = 7;
7736 dgst_pos2 = 2;
7737 dgst_pos3 = 6;
7738 break;
7739
7740 case 1440: hash_type = HASH_TYPE_SHA256;
7741 salt_type = SALT_TYPE_INTERN;
7742 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7743 opts_type = OPTS_TYPE_PT_GENERATE_BE
7744 | OPTS_TYPE_PT_ADD80
7745 | OPTS_TYPE_PT_ADDBITS15
7746 | OPTS_TYPE_PT_UNICODE;
7747 kern_type = KERN_TYPE_SHA256_SLTPWU;
7748 dgst_size = DGST_SIZE_4_8;
7749 parse_func = sha256s_parse_hash;
7750 sort_by_digest = sort_by_digest_4_8;
7751 opti_type = OPTI_TYPE_ZERO_BYTE
7752 | OPTI_TYPE_PRECOMPUTE_INIT
7753 | OPTI_TYPE_PRECOMPUTE_MERKLE
7754 | OPTI_TYPE_EARLY_SKIP
7755 | OPTI_TYPE_NOT_ITERATED
7756 | OPTI_TYPE_PREPENDED_SALT
7757 | OPTI_TYPE_RAW_HASH;
7758 dgst_pos0 = 3;
7759 dgst_pos1 = 7;
7760 dgst_pos2 = 2;
7761 dgst_pos3 = 6;
7762 break;
7763
7764 case 1441: hash_type = HASH_TYPE_SHA256;
7765 salt_type = SALT_TYPE_EMBEDDED;
7766 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7767 opts_type = OPTS_TYPE_PT_GENERATE_BE
7768 | OPTS_TYPE_PT_ADD80
7769 | OPTS_TYPE_PT_ADDBITS15
7770 | OPTS_TYPE_PT_UNICODE
7771 | OPTS_TYPE_ST_BASE64;
7772 kern_type = KERN_TYPE_SHA256_SLTPWU;
7773 dgst_size = DGST_SIZE_4_8;
7774 parse_func = episerver4_parse_hash;
7775 sort_by_digest = sort_by_digest_4_8;
7776 opti_type = OPTI_TYPE_ZERO_BYTE
7777 | OPTI_TYPE_PRECOMPUTE_INIT
7778 | OPTI_TYPE_PRECOMPUTE_MERKLE
7779 | OPTI_TYPE_EARLY_SKIP
7780 | OPTI_TYPE_NOT_ITERATED
7781 | OPTI_TYPE_PREPENDED_SALT
7782 | OPTI_TYPE_RAW_HASH;
7783 dgst_pos0 = 3;
7784 dgst_pos1 = 7;
7785 dgst_pos2 = 2;
7786 dgst_pos3 = 6;
7787 break;
7788
7789 case 1450: hash_type = HASH_TYPE_SHA256;
7790 salt_type = SALT_TYPE_INTERN;
7791 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7792 opts_type = OPTS_TYPE_PT_GENERATE_BE
7793 | OPTS_TYPE_ST_ADD80;
7794 kern_type = KERN_TYPE_HMACSHA256_PW;
7795 dgst_size = DGST_SIZE_4_8;
7796 parse_func = hmacsha256_parse_hash;
7797 sort_by_digest = sort_by_digest_4_8;
7798 opti_type = OPTI_TYPE_ZERO_BYTE
7799 | OPTI_TYPE_NOT_ITERATED;
7800 dgst_pos0 = 3;
7801 dgst_pos1 = 7;
7802 dgst_pos2 = 2;
7803 dgst_pos3 = 6;
7804 break;
7805
7806 case 1460: hash_type = HASH_TYPE_SHA256;
7807 salt_type = SALT_TYPE_INTERN;
7808 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7809 opts_type = OPTS_TYPE_PT_GENERATE_BE
7810 | OPTS_TYPE_PT_ADD80
7811 | OPTS_TYPE_PT_ADDBITS15;
7812 kern_type = KERN_TYPE_HMACSHA256_SLT;
7813 dgst_size = DGST_SIZE_4_8;
7814 parse_func = hmacsha256_parse_hash;
7815 sort_by_digest = sort_by_digest_4_8;
7816 opti_type = OPTI_TYPE_ZERO_BYTE
7817 | OPTI_TYPE_NOT_ITERATED;
7818 dgst_pos0 = 3;
7819 dgst_pos1 = 7;
7820 dgst_pos2 = 2;
7821 dgst_pos3 = 6;
7822 break;
7823
7824 case 1500: hash_type = HASH_TYPE_DESCRYPT;
7825 salt_type = SALT_TYPE_EMBEDDED;
7826 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7827 opts_type = OPTS_TYPE_PT_GENERATE_LE
7828 | OPTS_TYPE_PT_BITSLICE;
7829 kern_type = KERN_TYPE_DESCRYPT;
7830 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
7831 parse_func = descrypt_parse_hash;
7832 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
7833 opti_type = OPTI_TYPE_ZERO_BYTE
7834 | OPTI_TYPE_PRECOMPUTE_PERMUT;
7835 dgst_pos0 = 0;
7836 dgst_pos1 = 1;
7837 dgst_pos2 = 2;
7838 dgst_pos3 = 3;
7839 break;
7840
7841 case 1600: hash_type = HASH_TYPE_MD5;
7842 salt_type = SALT_TYPE_EMBEDDED;
7843 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
7844 opts_type = OPTS_TYPE_PT_GENERATE_LE;
7845 kern_type = KERN_TYPE_APR1CRYPT;
7846 dgst_size = DGST_SIZE_4_4;
7847 parse_func = md5apr1_parse_hash;
7848 sort_by_digest = sort_by_digest_4_4;
7849 opti_type = OPTI_TYPE_ZERO_BYTE;
7850 dgst_pos0 = 0;
7851 dgst_pos1 = 1;
7852 dgst_pos2 = 2;
7853 dgst_pos3 = 3;
7854 break;
7855
7856 case 1700: hash_type = HASH_TYPE_SHA512;
7857 salt_type = SALT_TYPE_NONE;
7858 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7859 opts_type = OPTS_TYPE_PT_GENERATE_BE
7860 | OPTS_TYPE_PT_ADD80
7861 | OPTS_TYPE_PT_ADDBITS15;
7862 kern_type = KERN_TYPE_SHA512;
7863 dgst_size = DGST_SIZE_8_8;
7864 parse_func = sha512_parse_hash;
7865 sort_by_digest = sort_by_digest_8_8;
7866 opti_type = OPTI_TYPE_ZERO_BYTE
7867 | OPTI_TYPE_PRECOMPUTE_INIT
7868 | OPTI_TYPE_PRECOMPUTE_MERKLE
7869 | OPTI_TYPE_EARLY_SKIP
7870 | OPTI_TYPE_NOT_ITERATED
7871 | OPTI_TYPE_NOT_SALTED
7872 | OPTI_TYPE_USES_BITS_64
7873 | OPTI_TYPE_RAW_HASH;
7874 dgst_pos0 = 14;
7875 dgst_pos1 = 15;
7876 dgst_pos2 = 6;
7877 dgst_pos3 = 7;
7878 break;
7879
7880 case 1710: hash_type = HASH_TYPE_SHA512;
7881 salt_type = SALT_TYPE_INTERN;
7882 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7883 opts_type = OPTS_TYPE_PT_GENERATE_BE
7884 | OPTS_TYPE_ST_ADD80
7885 | OPTS_TYPE_ST_ADDBITS15;
7886 kern_type = KERN_TYPE_SHA512_PWSLT;
7887 dgst_size = DGST_SIZE_8_8;
7888 parse_func = sha512s_parse_hash;
7889 sort_by_digest = sort_by_digest_8_8;
7890 opti_type = OPTI_TYPE_ZERO_BYTE
7891 | OPTI_TYPE_PRECOMPUTE_INIT
7892 | OPTI_TYPE_PRECOMPUTE_MERKLE
7893 | OPTI_TYPE_EARLY_SKIP
7894 | OPTI_TYPE_NOT_ITERATED
7895 | OPTI_TYPE_APPENDED_SALT
7896 | OPTI_TYPE_USES_BITS_64
7897 | OPTI_TYPE_RAW_HASH;
7898 dgst_pos0 = 14;
7899 dgst_pos1 = 15;
7900 dgst_pos2 = 6;
7901 dgst_pos3 = 7;
7902 break;
7903
7904 case 1711: hash_type = HASH_TYPE_SHA512;
7905 salt_type = SALT_TYPE_EMBEDDED;
7906 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7907 opts_type = OPTS_TYPE_PT_GENERATE_BE
7908 | OPTS_TYPE_ST_ADD80
7909 | OPTS_TYPE_ST_ADDBITS15;
7910 kern_type = KERN_TYPE_SHA512_PWSLT;
7911 dgst_size = DGST_SIZE_8_8;
7912 parse_func = sha512b64s_parse_hash;
7913 sort_by_digest = sort_by_digest_8_8;
7914 opti_type = OPTI_TYPE_ZERO_BYTE
7915 | OPTI_TYPE_PRECOMPUTE_INIT
7916 | OPTI_TYPE_PRECOMPUTE_MERKLE
7917 | OPTI_TYPE_EARLY_SKIP
7918 | OPTI_TYPE_NOT_ITERATED
7919 | OPTI_TYPE_APPENDED_SALT
7920 | OPTI_TYPE_USES_BITS_64
7921 | OPTI_TYPE_RAW_HASH;
7922 dgst_pos0 = 14;
7923 dgst_pos1 = 15;
7924 dgst_pos2 = 6;
7925 dgst_pos3 = 7;
7926 break;
7927
7928 case 1720: hash_type = HASH_TYPE_SHA512;
7929 salt_type = SALT_TYPE_INTERN;
7930 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7931 opts_type = OPTS_TYPE_PT_GENERATE_BE
7932 | OPTS_TYPE_PT_ADD80
7933 | OPTS_TYPE_PT_ADDBITS15;
7934 kern_type = KERN_TYPE_SHA512_SLTPW;
7935 dgst_size = DGST_SIZE_8_8;
7936 parse_func = sha512s_parse_hash;
7937 sort_by_digest = sort_by_digest_8_8;
7938 opti_type = OPTI_TYPE_ZERO_BYTE
7939 | OPTI_TYPE_PRECOMPUTE_INIT
7940 | OPTI_TYPE_PRECOMPUTE_MERKLE
7941 | OPTI_TYPE_EARLY_SKIP
7942 | OPTI_TYPE_NOT_ITERATED
7943 | OPTI_TYPE_PREPENDED_SALT
7944 | OPTI_TYPE_USES_BITS_64
7945 | OPTI_TYPE_RAW_HASH;
7946 dgst_pos0 = 14;
7947 dgst_pos1 = 15;
7948 dgst_pos2 = 6;
7949 dgst_pos3 = 7;
7950 break;
7951
7952 case 1722: hash_type = HASH_TYPE_SHA512;
7953 salt_type = SALT_TYPE_EMBEDDED;
7954 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7955 opts_type = OPTS_TYPE_PT_GENERATE_BE
7956 | OPTS_TYPE_PT_ADD80
7957 | OPTS_TYPE_PT_ADDBITS15
7958 | OPTS_TYPE_ST_HEX;
7959 kern_type = KERN_TYPE_SHA512_SLTPW;
7960 dgst_size = DGST_SIZE_8_8;
7961 parse_func = osx512_parse_hash;
7962 sort_by_digest = sort_by_digest_8_8;
7963 opti_type = OPTI_TYPE_ZERO_BYTE
7964 | OPTI_TYPE_PRECOMPUTE_INIT
7965 | OPTI_TYPE_PRECOMPUTE_MERKLE
7966 | OPTI_TYPE_EARLY_SKIP
7967 | OPTI_TYPE_NOT_ITERATED
7968 | OPTI_TYPE_PREPENDED_SALT
7969 | OPTI_TYPE_USES_BITS_64
7970 | OPTI_TYPE_RAW_HASH;
7971 dgst_pos0 = 14;
7972 dgst_pos1 = 15;
7973 dgst_pos2 = 6;
7974 dgst_pos3 = 7;
7975 break;
7976
7977 case 1730: hash_type = HASH_TYPE_SHA512;
7978 salt_type = SALT_TYPE_INTERN;
7979 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7980 opts_type = OPTS_TYPE_PT_GENERATE_BE
7981 | OPTS_TYPE_PT_UNICODE
7982 | OPTS_TYPE_ST_ADD80
7983 | OPTS_TYPE_ST_ADDBITS15;
7984 kern_type = KERN_TYPE_SHA512_PWSLTU;
7985 dgst_size = DGST_SIZE_8_8;
7986 parse_func = sha512s_parse_hash;
7987 sort_by_digest = sort_by_digest_8_8;
7988 opti_type = OPTI_TYPE_ZERO_BYTE
7989 | OPTI_TYPE_PRECOMPUTE_INIT
7990 | OPTI_TYPE_PRECOMPUTE_MERKLE
7991 | OPTI_TYPE_EARLY_SKIP
7992 | OPTI_TYPE_NOT_ITERATED
7993 | OPTI_TYPE_APPENDED_SALT
7994 | OPTI_TYPE_USES_BITS_64
7995 | OPTI_TYPE_RAW_HASH;
7996 dgst_pos0 = 14;
7997 dgst_pos1 = 15;
7998 dgst_pos2 = 6;
7999 dgst_pos3 = 7;
8000 break;
8001
8002 case 1731: hash_type = HASH_TYPE_SHA512;
8003 salt_type = SALT_TYPE_EMBEDDED;
8004 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8005 opts_type = OPTS_TYPE_PT_GENERATE_BE
8006 | OPTS_TYPE_PT_UNICODE
8007 | OPTS_TYPE_ST_ADD80
8008 | OPTS_TYPE_ST_ADDBITS15
8009 | OPTS_TYPE_ST_HEX;
8010 kern_type = KERN_TYPE_SHA512_PWSLTU;
8011 dgst_size = DGST_SIZE_8_8;
8012 parse_func = mssql2012_parse_hash;
8013 sort_by_digest = sort_by_digest_8_8;
8014 opti_type = OPTI_TYPE_ZERO_BYTE
8015 | OPTI_TYPE_PRECOMPUTE_INIT
8016 | OPTI_TYPE_PRECOMPUTE_MERKLE
8017 | OPTI_TYPE_EARLY_SKIP
8018 | OPTI_TYPE_NOT_ITERATED
8019 | OPTI_TYPE_APPENDED_SALT
8020 | OPTI_TYPE_USES_BITS_64
8021 | OPTI_TYPE_RAW_HASH;
8022 dgst_pos0 = 14;
8023 dgst_pos1 = 15;
8024 dgst_pos2 = 6;
8025 dgst_pos3 = 7;
8026 break;
8027
8028 case 1740: hash_type = HASH_TYPE_SHA512;
8029 salt_type = SALT_TYPE_INTERN;
8030 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8031 opts_type = OPTS_TYPE_PT_GENERATE_BE
8032 | OPTS_TYPE_PT_ADD80
8033 | OPTS_TYPE_PT_ADDBITS15
8034 | OPTS_TYPE_PT_UNICODE;
8035 kern_type = KERN_TYPE_SHA512_SLTPWU;
8036 dgst_size = DGST_SIZE_8_8;
8037 parse_func = sha512s_parse_hash;
8038 sort_by_digest = sort_by_digest_8_8;
8039 opti_type = OPTI_TYPE_ZERO_BYTE
8040 | OPTI_TYPE_PRECOMPUTE_INIT
8041 | OPTI_TYPE_PRECOMPUTE_MERKLE
8042 | OPTI_TYPE_EARLY_SKIP
8043 | OPTI_TYPE_NOT_ITERATED
8044 | OPTI_TYPE_PREPENDED_SALT
8045 | OPTI_TYPE_USES_BITS_64
8046 | OPTI_TYPE_RAW_HASH;
8047 dgst_pos0 = 14;
8048 dgst_pos1 = 15;
8049 dgst_pos2 = 6;
8050 dgst_pos3 = 7;
8051 break;
8052
8053 case 1750: hash_type = HASH_TYPE_SHA512;
8054 salt_type = SALT_TYPE_INTERN;
8055 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8056 opts_type = OPTS_TYPE_PT_GENERATE_BE
8057 | OPTS_TYPE_ST_ADD80;
8058 kern_type = KERN_TYPE_HMACSHA512_PW;
8059 dgst_size = DGST_SIZE_8_8;
8060 parse_func = hmacsha512_parse_hash;
8061 sort_by_digest = sort_by_digest_8_8;
8062 opti_type = OPTI_TYPE_ZERO_BYTE
8063 | OPTI_TYPE_USES_BITS_64
8064 | OPTI_TYPE_NOT_ITERATED;
8065 dgst_pos0 = 14;
8066 dgst_pos1 = 15;
8067 dgst_pos2 = 6;
8068 dgst_pos3 = 7;
8069 break;
8070
8071 case 1760: hash_type = HASH_TYPE_SHA512;
8072 salt_type = SALT_TYPE_INTERN;
8073 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8074 opts_type = OPTS_TYPE_PT_GENERATE_BE
8075 | OPTS_TYPE_PT_ADD80
8076 | OPTS_TYPE_PT_ADDBITS15;
8077 kern_type = KERN_TYPE_HMACSHA512_SLT;
8078 dgst_size = DGST_SIZE_8_8;
8079 parse_func = hmacsha512_parse_hash;
8080 sort_by_digest = sort_by_digest_8_8;
8081 opti_type = OPTI_TYPE_ZERO_BYTE
8082 | OPTI_TYPE_USES_BITS_64
8083 | OPTI_TYPE_NOT_ITERATED;
8084 dgst_pos0 = 14;
8085 dgst_pos1 = 15;
8086 dgst_pos2 = 6;
8087 dgst_pos3 = 7;
8088 break;
8089
8090 case 1800: hash_type = HASH_TYPE_SHA512;
8091 salt_type = SALT_TYPE_EMBEDDED;
8092 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8093 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8094 kern_type = KERN_TYPE_SHA512CRYPT;
8095 dgst_size = DGST_SIZE_8_8;
8096 parse_func = sha512crypt_parse_hash;
8097 sort_by_digest = sort_by_digest_8_8;
8098 opti_type = OPTI_TYPE_ZERO_BYTE
8099 | OPTI_TYPE_USES_BITS_64;
8100 dgst_pos0 = 0;
8101 dgst_pos1 = 1;
8102 dgst_pos2 = 2;
8103 dgst_pos3 = 3;
8104 break;
8105
8106 case 2100: hash_type = HASH_TYPE_DCC2;
8107 salt_type = SALT_TYPE_EMBEDDED;
8108 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8109 opts_type = OPTS_TYPE_PT_GENERATE_LE // should be OPTS_TYPE_PT_GENERATE_BE
8110 | OPTS_TYPE_ST_LOWER
8111 | OPTS_TYPE_ST_UNICODE;
8112 kern_type = KERN_TYPE_DCC2;
8113 dgst_size = DGST_SIZE_4_4;
8114 parse_func = dcc2_parse_hash;
8115 sort_by_digest = sort_by_digest_4_4;
8116 opti_type = OPTI_TYPE_ZERO_BYTE;
8117 dgst_pos0 = 0;
8118 dgst_pos1 = 1;
8119 dgst_pos2 = 2;
8120 dgst_pos3 = 3;
8121 break;
8122
8123 case 2400: hash_type = HASH_TYPE_MD5;
8124 salt_type = SALT_TYPE_NONE;
8125 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8126 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8127 kern_type = KERN_TYPE_MD5PIX;
8128 dgst_size = DGST_SIZE_4_4;
8129 parse_func = md5pix_parse_hash;
8130 sort_by_digest = sort_by_digest_4_4;
8131 opti_type = OPTI_TYPE_ZERO_BYTE
8132 | OPTI_TYPE_PRECOMPUTE_INIT
8133 | OPTI_TYPE_PRECOMPUTE_MERKLE
8134 | OPTI_TYPE_EARLY_SKIP
8135 | OPTI_TYPE_NOT_ITERATED
8136 | OPTI_TYPE_NOT_SALTED;
8137 dgst_pos0 = 0;
8138 dgst_pos1 = 3;
8139 dgst_pos2 = 2;
8140 dgst_pos3 = 1;
8141 break;
8142
8143 case 2410: hash_type = HASH_TYPE_MD5;
8144 salt_type = SALT_TYPE_INTERN;
8145 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8146 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8147 kern_type = KERN_TYPE_MD5ASA;
8148 dgst_size = DGST_SIZE_4_4;
8149 parse_func = md5asa_parse_hash;
8150 sort_by_digest = sort_by_digest_4_4;
8151 opti_type = OPTI_TYPE_ZERO_BYTE
8152 | OPTI_TYPE_PRECOMPUTE_INIT
8153 | OPTI_TYPE_PRECOMPUTE_MERKLE
8154 | OPTI_TYPE_EARLY_SKIP
8155 | OPTI_TYPE_NOT_ITERATED;
8156 dgst_pos0 = 0;
8157 dgst_pos1 = 3;
8158 dgst_pos2 = 2;
8159 dgst_pos3 = 1;
8160 break;
8161
8162 case 2500: hash_type = HASH_TYPE_WPA;
8163 salt_type = SALT_TYPE_EMBEDDED;
8164 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8165 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8166 kern_type = KERN_TYPE_WPA;
8167 dgst_size = DGST_SIZE_4_4;
8168 parse_func = wpa_parse_hash;
8169 sort_by_digest = sort_by_digest_4_4;
8170 opti_type = OPTI_TYPE_ZERO_BYTE
8171 | OPTI_TYPE_SLOW_HASH_SIMD;
8172 dgst_pos0 = 0;
8173 dgst_pos1 = 1;
8174 dgst_pos2 = 2;
8175 dgst_pos3 = 3;
8176 break;
8177
8178 case 2600: hash_type = HASH_TYPE_MD5;
8179 salt_type = SALT_TYPE_VIRTUAL;
8180 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8181 opts_type = OPTS_TYPE_PT_GENERATE_LE
8182 | OPTS_TYPE_PT_ADD80
8183 | OPTS_TYPE_PT_ADDBITS14
8184 | OPTS_TYPE_ST_ADD80;
8185 kern_type = KERN_TYPE_MD55_PWSLT1;
8186 dgst_size = DGST_SIZE_4_4;
8187 parse_func = md5md5_parse_hash;
8188 sort_by_digest = sort_by_digest_4_4;
8189 opti_type = OPTI_TYPE_ZERO_BYTE
8190 | OPTI_TYPE_PRECOMPUTE_INIT
8191 | OPTI_TYPE_PRECOMPUTE_MERKLE
8192 | OPTI_TYPE_EARLY_SKIP;
8193 dgst_pos0 = 0;
8194 dgst_pos1 = 3;
8195 dgst_pos2 = 2;
8196 dgst_pos3 = 1;
8197 break;
8198
8199 case 2611: hash_type = HASH_TYPE_MD5;
8200 salt_type = SALT_TYPE_INTERN;
8201 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8202 opts_type = OPTS_TYPE_PT_GENERATE_LE
8203 | OPTS_TYPE_PT_ADD80
8204 | OPTS_TYPE_PT_ADDBITS14
8205 | OPTS_TYPE_ST_ADD80;
8206 kern_type = KERN_TYPE_MD55_PWSLT1;
8207 dgst_size = DGST_SIZE_4_4;
8208 parse_func = vb3_parse_hash;
8209 sort_by_digest = sort_by_digest_4_4;
8210 opti_type = OPTI_TYPE_ZERO_BYTE
8211 | OPTI_TYPE_PRECOMPUTE_INIT
8212 | OPTI_TYPE_PRECOMPUTE_MERKLE
8213 | OPTI_TYPE_EARLY_SKIP;
8214 dgst_pos0 = 0;
8215 dgst_pos1 = 3;
8216 dgst_pos2 = 2;
8217 dgst_pos3 = 1;
8218 break;
8219
8220 case 2612: hash_type = HASH_TYPE_MD5;
8221 salt_type = SALT_TYPE_EMBEDDED;
8222 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8223 opts_type = OPTS_TYPE_PT_GENERATE_LE
8224 | OPTS_TYPE_PT_ADD80
8225 | OPTS_TYPE_PT_ADDBITS14
8226 | OPTS_TYPE_ST_ADD80
8227 | OPTS_TYPE_ST_HEX;
8228 kern_type = KERN_TYPE_MD55_PWSLT1;
8229 dgst_size = DGST_SIZE_4_4;
8230 parse_func = phps_parse_hash;
8231 sort_by_digest = sort_by_digest_4_4;
8232 opti_type = OPTI_TYPE_ZERO_BYTE
8233 | OPTI_TYPE_PRECOMPUTE_INIT
8234 | OPTI_TYPE_PRECOMPUTE_MERKLE
8235 | OPTI_TYPE_EARLY_SKIP;
8236 dgst_pos0 = 0;
8237 dgst_pos1 = 3;
8238 dgst_pos2 = 2;
8239 dgst_pos3 = 1;
8240 break;
8241
8242 case 2711: hash_type = HASH_TYPE_MD5;
8243 salt_type = SALT_TYPE_INTERN;
8244 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8245 opts_type = OPTS_TYPE_PT_GENERATE_LE
8246 | OPTS_TYPE_PT_ADD80
8247 | OPTS_TYPE_PT_ADDBITS14
8248 | OPTS_TYPE_ST_ADD80;
8249 kern_type = KERN_TYPE_MD55_PWSLT2;
8250 dgst_size = DGST_SIZE_4_4;
8251 parse_func = vb30_parse_hash;
8252 sort_by_digest = sort_by_digest_4_4;
8253 opti_type = OPTI_TYPE_ZERO_BYTE
8254 | OPTI_TYPE_PRECOMPUTE_INIT
8255 | OPTI_TYPE_EARLY_SKIP;
8256 dgst_pos0 = 0;
8257 dgst_pos1 = 3;
8258 dgst_pos2 = 2;
8259 dgst_pos3 = 1;
8260 break;
8261
8262 case 2811: hash_type = HASH_TYPE_MD5;
8263 salt_type = SALT_TYPE_INTERN;
8264 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8265 opts_type = OPTS_TYPE_PT_GENERATE_LE
8266 | OPTS_TYPE_PT_ADD80
8267 | OPTS_TYPE_PT_ADDBITS14;
8268 kern_type = KERN_TYPE_MD55_SLTPW;
8269 dgst_size = DGST_SIZE_4_4;
8270 parse_func = ipb2_parse_hash;
8271 sort_by_digest = sort_by_digest_4_4;
8272 opti_type = OPTI_TYPE_ZERO_BYTE
8273 | OPTI_TYPE_PRECOMPUTE_INIT
8274 | OPTI_TYPE_EARLY_SKIP;
8275 dgst_pos0 = 0;
8276 dgst_pos1 = 3;
8277 dgst_pos2 = 2;
8278 dgst_pos3 = 1;
8279 break;
8280
8281 case 3000: hash_type = HASH_TYPE_LM;
8282 salt_type = SALT_TYPE_NONE;
8283 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8284 opts_type = OPTS_TYPE_PT_GENERATE_LE
8285 | OPTS_TYPE_PT_UPPER
8286 | OPTS_TYPE_PT_BITSLICE;
8287 kern_type = KERN_TYPE_LM;
8288 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
8289 parse_func = lm_parse_hash;
8290 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
8291 opti_type = OPTI_TYPE_ZERO_BYTE
8292 | OPTI_TYPE_PRECOMPUTE_PERMUT;
8293 dgst_pos0 = 0;
8294 dgst_pos1 = 1;
8295 dgst_pos2 = 2;
8296 dgst_pos3 = 3;
8297 break;
8298
8299 case 3100: hash_type = HASH_TYPE_ORACLEH;
8300 salt_type = SALT_TYPE_INTERN;
8301 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8302 opts_type = OPTS_TYPE_PT_GENERATE_LE
8303 | OPTS_TYPE_PT_UPPER
8304 | OPTS_TYPE_ST_UPPER;
8305 kern_type = KERN_TYPE_ORACLEH;
8306 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
8307 parse_func = oracleh_parse_hash;
8308 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
8309 opti_type = OPTI_TYPE_ZERO_BYTE;
8310 dgst_pos0 = 0;
8311 dgst_pos1 = 1;
8312 dgst_pos2 = 2;
8313 dgst_pos3 = 3;
8314 break;
8315
8316 case 3200: hash_type = HASH_TYPE_BCRYPT;
8317 salt_type = SALT_TYPE_EMBEDDED;
8318 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8319 opts_type = OPTS_TYPE_PT_GENERATE_LE
8320 | OPTS_TYPE_ST_GENERATE_LE;
8321 kern_type = KERN_TYPE_BCRYPT;
8322 dgst_size = DGST_SIZE_4_6;
8323 parse_func = bcrypt_parse_hash;
8324 sort_by_digest = sort_by_digest_4_6;
8325 opti_type = OPTI_TYPE_ZERO_BYTE;
8326 dgst_pos0 = 0;
8327 dgst_pos1 = 1;
8328 dgst_pos2 = 2;
8329 dgst_pos3 = 3;
8330 break;
8331
8332 case 3710: hash_type = HASH_TYPE_MD5;
8333 salt_type = SALT_TYPE_INTERN;
8334 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8335 opts_type = OPTS_TYPE_PT_GENERATE_LE
8336 | OPTS_TYPE_PT_ADD80
8337 | OPTS_TYPE_PT_ADDBITS14;
8338 kern_type = KERN_TYPE_MD5_SLT_MD5_PW;
8339 dgst_size = DGST_SIZE_4_4;
8340 parse_func = md5s_parse_hash;
8341 sort_by_digest = sort_by_digest_4_4;
8342 opti_type = OPTI_TYPE_ZERO_BYTE
8343 | OPTI_TYPE_PRECOMPUTE_INIT
8344 | OPTI_TYPE_PRECOMPUTE_MERKLE
8345 | OPTI_TYPE_EARLY_SKIP;
8346 dgst_pos0 = 0;
8347 dgst_pos1 = 3;
8348 dgst_pos2 = 2;
8349 dgst_pos3 = 1;
8350 break;
8351
8352 case 3711: hash_type = HASH_TYPE_MD5;
8353 salt_type = SALT_TYPE_EMBEDDED;
8354 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8355 opts_type = OPTS_TYPE_PT_GENERATE_LE
8356 | OPTS_TYPE_PT_ADD80
8357 | OPTS_TYPE_PT_ADDBITS14;
8358 kern_type = KERN_TYPE_MD5_SLT_MD5_PW;
8359 dgst_size = DGST_SIZE_4_4;
8360 parse_func = mediawiki_b_parse_hash;
8361 sort_by_digest = sort_by_digest_4_4;
8362 opti_type = OPTI_TYPE_ZERO_BYTE
8363 | OPTI_TYPE_PRECOMPUTE_INIT
8364 | OPTI_TYPE_PRECOMPUTE_MERKLE
8365 | OPTI_TYPE_EARLY_SKIP;
8366 dgst_pos0 = 0;
8367 dgst_pos1 = 3;
8368 dgst_pos2 = 2;
8369 dgst_pos3 = 1;
8370 break;
8371
8372 case 3800: hash_type = HASH_TYPE_MD5;
8373 salt_type = SALT_TYPE_INTERN;
8374 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8375 opts_type = OPTS_TYPE_PT_GENERATE_LE
8376 | OPTS_TYPE_ST_ADDBITS14;
8377 kern_type = KERN_TYPE_MD5_SLT_PW_SLT;
8378 dgst_size = DGST_SIZE_4_4;
8379 parse_func = md5s_parse_hash;
8380 sort_by_digest = sort_by_digest_4_4;
8381 opti_type = OPTI_TYPE_ZERO_BYTE
8382 | OPTI_TYPE_PRECOMPUTE_INIT
8383 | OPTI_TYPE_PRECOMPUTE_MERKLE
8384 | OPTI_TYPE_EARLY_SKIP
8385 | OPTI_TYPE_NOT_ITERATED
8386 | OPTI_TYPE_RAW_HASH;
8387 dgst_pos0 = 0;
8388 dgst_pos1 = 3;
8389 dgst_pos2 = 2;
8390 dgst_pos3 = 1;
8391 break;
8392
8393 case 4300: hash_type = HASH_TYPE_MD5;
8394 salt_type = SALT_TYPE_VIRTUAL;
8395 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8396 opts_type = OPTS_TYPE_PT_GENERATE_LE
8397 | OPTS_TYPE_PT_ADD80
8398 | OPTS_TYPE_PT_ADDBITS14
8399 | OPTS_TYPE_ST_ADD80;
8400 kern_type = KERN_TYPE_MD5U5_PWSLT1;
8401 dgst_size = DGST_SIZE_4_4;
8402 parse_func = md5md5_parse_hash;
8403 sort_by_digest = sort_by_digest_4_4;
8404 opti_type = OPTI_TYPE_ZERO_BYTE
8405 | OPTI_TYPE_PRECOMPUTE_INIT
8406 | OPTI_TYPE_PRECOMPUTE_MERKLE
8407 | OPTI_TYPE_EARLY_SKIP;
8408 dgst_pos0 = 0;
8409 dgst_pos1 = 3;
8410 dgst_pos2 = 2;
8411 dgst_pos3 = 1;
8412 break;
8413
8414
8415 case 4400: hash_type = HASH_TYPE_MD5;
8416 salt_type = SALT_TYPE_NONE;
8417 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8418 opts_type = OPTS_TYPE_PT_GENERATE_BE
8419 | OPTS_TYPE_PT_ADD80
8420 | OPTS_TYPE_PT_ADDBITS15;
8421 kern_type = KERN_TYPE_MD5_SHA1;
8422 dgst_size = DGST_SIZE_4_4;
8423 parse_func = md5_parse_hash;
8424 sort_by_digest = sort_by_digest_4_4;
8425 opti_type = OPTI_TYPE_ZERO_BYTE
8426 | OPTI_TYPE_PRECOMPUTE_INIT
8427 | OPTI_TYPE_PRECOMPUTE_MERKLE
8428 | OPTI_TYPE_EARLY_SKIP
8429 | OPTI_TYPE_NOT_ITERATED
8430 | OPTI_TYPE_NOT_SALTED
8431 | OPTI_TYPE_RAW_HASH;
8432 dgst_pos0 = 0;
8433 dgst_pos1 = 3;
8434 dgst_pos2 = 2;
8435 dgst_pos3 = 1;
8436 break;
8437
8438 case 4500: hash_type = HASH_TYPE_SHA1;
8439 salt_type = SALT_TYPE_NONE;
8440 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8441 opts_type = OPTS_TYPE_PT_GENERATE_BE
8442 | OPTS_TYPE_PT_ADD80
8443 | OPTS_TYPE_PT_ADDBITS15;
8444 kern_type = KERN_TYPE_SHA11;
8445 dgst_size = DGST_SIZE_4_5;
8446 parse_func = sha1_parse_hash;
8447 sort_by_digest = sort_by_digest_4_5;
8448 opti_type = OPTI_TYPE_ZERO_BYTE
8449 | OPTI_TYPE_PRECOMPUTE_INIT
8450 | OPTI_TYPE_PRECOMPUTE_MERKLE
8451 | OPTI_TYPE_EARLY_SKIP
8452 | OPTI_TYPE_NOT_SALTED;
8453 dgst_pos0 = 3;
8454 dgst_pos1 = 4;
8455 dgst_pos2 = 2;
8456 dgst_pos3 = 1;
8457 break;
8458
8459 case 4700: hash_type = HASH_TYPE_SHA1;
8460 salt_type = SALT_TYPE_NONE;
8461 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8462 opts_type = OPTS_TYPE_PT_GENERATE_LE
8463 | OPTS_TYPE_PT_ADD80
8464 | OPTS_TYPE_PT_ADDBITS14;
8465 kern_type = KERN_TYPE_SHA1_MD5;
8466 dgst_size = DGST_SIZE_4_5;
8467 parse_func = sha1_parse_hash;
8468 sort_by_digest = sort_by_digest_4_5;
8469 opti_type = OPTI_TYPE_ZERO_BYTE
8470 | OPTI_TYPE_PRECOMPUTE_INIT
8471 | OPTI_TYPE_PRECOMPUTE_MERKLE
8472 | OPTI_TYPE_EARLY_SKIP
8473 | OPTI_TYPE_NOT_ITERATED
8474 | OPTI_TYPE_NOT_SALTED
8475 | OPTI_TYPE_RAW_HASH;
8476 dgst_pos0 = 3;
8477 dgst_pos1 = 4;
8478 dgst_pos2 = 2;
8479 dgst_pos3 = 1;
8480 break;
8481
8482 case 4800: hash_type = HASH_TYPE_MD5;
8483 salt_type = SALT_TYPE_EMBEDDED;
8484 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8485 opts_type = OPTS_TYPE_PT_GENERATE_LE
8486 | OPTS_TYPE_PT_ADDBITS14;
8487 kern_type = KERN_TYPE_MD5_CHAP;
8488 dgst_size = DGST_SIZE_4_4;
8489 parse_func = chap_parse_hash;
8490 sort_by_digest = sort_by_digest_4_4;
8491 opti_type = OPTI_TYPE_ZERO_BYTE
8492 | OPTI_TYPE_PRECOMPUTE_INIT
8493 | OPTI_TYPE_PRECOMPUTE_MERKLE
8494 | OPTI_TYPE_MEET_IN_MIDDLE
8495 | OPTI_TYPE_EARLY_SKIP
8496 | OPTI_TYPE_NOT_ITERATED
8497 | OPTI_TYPE_RAW_HASH;
8498 dgst_pos0 = 0;
8499 dgst_pos1 = 3;
8500 dgst_pos2 = 2;
8501 dgst_pos3 = 1;
8502 break;
8503
8504 case 4900: hash_type = HASH_TYPE_SHA1;
8505 salt_type = SALT_TYPE_INTERN;
8506 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8507 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8508 kern_type = KERN_TYPE_SHA1_SLT_PW_SLT;
8509 dgst_size = DGST_SIZE_4_5;
8510 parse_func = sha1s_parse_hash;
8511 sort_by_digest = sort_by_digest_4_5;
8512 opti_type = OPTI_TYPE_ZERO_BYTE
8513 | OPTI_TYPE_PRECOMPUTE_INIT
8514 | OPTI_TYPE_PRECOMPUTE_MERKLE
8515 | OPTI_TYPE_EARLY_SKIP;
8516 dgst_pos0 = 3;
8517 dgst_pos1 = 4;
8518 dgst_pos2 = 2;
8519 dgst_pos3 = 1;
8520 break;
8521
8522 case 5000: hash_type = HASH_TYPE_KECCAK;
8523 salt_type = SALT_TYPE_EMBEDDED;
8524 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8525 opts_type = OPTS_TYPE_PT_GENERATE_LE
8526 | OPTS_TYPE_PT_ADD01;
8527 kern_type = KERN_TYPE_KECCAK;
8528 dgst_size = DGST_SIZE_8_25;
8529 parse_func = keccak_parse_hash;
8530 sort_by_digest = sort_by_digest_8_25;
8531 opti_type = OPTI_TYPE_ZERO_BYTE
8532 | OPTI_TYPE_USES_BITS_64
8533 | OPTI_TYPE_RAW_HASH;
8534 dgst_pos0 = 2;
8535 dgst_pos1 = 3;
8536 dgst_pos2 = 4;
8537 dgst_pos3 = 5;
8538 break;
8539
8540 case 5100: hash_type = HASH_TYPE_MD5H;
8541 salt_type = SALT_TYPE_NONE;
8542 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8543 opts_type = OPTS_TYPE_PT_GENERATE_LE
8544 | OPTS_TYPE_PT_ADD80
8545 | OPTS_TYPE_PT_ADDBITS14;
8546 kern_type = KERN_TYPE_MD5H;
8547 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
8548 parse_func = md5half_parse_hash;
8549 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
8550 opti_type = OPTI_TYPE_ZERO_BYTE
8551 | OPTI_TYPE_RAW_HASH;
8552 dgst_pos0 = 0;
8553 dgst_pos1 = 1;
8554 dgst_pos2 = 2;
8555 dgst_pos3 = 3;
8556 break;
8557
8558 case 5200: hash_type = HASH_TYPE_SHA256;
8559 salt_type = SALT_TYPE_EMBEDDED;
8560 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8561 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8562 kern_type = KERN_TYPE_PSAFE3;
8563 dgst_size = DGST_SIZE_4_8;
8564 parse_func = psafe3_parse_hash;
8565 sort_by_digest = sort_by_digest_4_8;
8566 opti_type = OPTI_TYPE_ZERO_BYTE;
8567 dgst_pos0 = 0;
8568 dgst_pos1 = 1;
8569 dgst_pos2 = 2;
8570 dgst_pos3 = 3;
8571 break;
8572
8573 case 5300: hash_type = HASH_TYPE_MD5;
8574 salt_type = SALT_TYPE_EMBEDDED;
8575 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8576 opts_type = OPTS_TYPE_PT_GENERATE_LE
8577 | OPTS_TYPE_ST_ADD80;
8578 kern_type = KERN_TYPE_IKEPSK_MD5;
8579 dgst_size = DGST_SIZE_4_4;
8580 parse_func = ikepsk_md5_parse_hash;
8581 sort_by_digest = sort_by_digest_4_4;
8582 opti_type = OPTI_TYPE_ZERO_BYTE;
8583 dgst_pos0 = 0;
8584 dgst_pos1 = 3;
8585 dgst_pos2 = 2;
8586 dgst_pos3 = 1;
8587 break;
8588
8589 case 5400: hash_type = HASH_TYPE_SHA1;
8590 salt_type = SALT_TYPE_EMBEDDED;
8591 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8592 opts_type = OPTS_TYPE_PT_GENERATE_BE
8593 | OPTS_TYPE_ST_ADD80;
8594 kern_type = KERN_TYPE_IKEPSK_SHA1;
8595 dgst_size = DGST_SIZE_4_5;
8596 parse_func = ikepsk_sha1_parse_hash;
8597 sort_by_digest = sort_by_digest_4_5;
8598 opti_type = OPTI_TYPE_ZERO_BYTE;
8599 dgst_pos0 = 3;
8600 dgst_pos1 = 4;
8601 dgst_pos2 = 2;
8602 dgst_pos3 = 1;
8603 break;
8604
8605 case 5500: hash_type = HASH_TYPE_NETNTLM;
8606 salt_type = SALT_TYPE_EMBEDDED;
8607 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8608 opts_type = OPTS_TYPE_PT_GENERATE_LE
8609 | OPTS_TYPE_PT_ADD80
8610 | OPTS_TYPE_PT_ADDBITS14
8611 | OPTS_TYPE_PT_UNICODE
8612 | OPTS_TYPE_ST_HEX;
8613 kern_type = KERN_TYPE_NETNTLMv1;
8614 dgst_size = DGST_SIZE_4_4;
8615 parse_func = netntlmv1_parse_hash;
8616 sort_by_digest = sort_by_digest_4_4;
8617 opti_type = OPTI_TYPE_ZERO_BYTE
8618 | OPTI_TYPE_PRECOMPUTE_PERMUT;
8619 dgst_pos0 = 0;
8620 dgst_pos1 = 1;
8621 dgst_pos2 = 2;
8622 dgst_pos3 = 3;
8623 break;
8624
8625 case 5600: hash_type = HASH_TYPE_MD5;
8626 salt_type = SALT_TYPE_EMBEDDED;
8627 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8628 opts_type = OPTS_TYPE_PT_GENERATE_LE
8629 | OPTS_TYPE_PT_ADD80
8630 | OPTS_TYPE_PT_ADDBITS14
8631 | OPTS_TYPE_PT_UNICODE;
8632 kern_type = KERN_TYPE_NETNTLMv2;
8633 dgst_size = DGST_SIZE_4_4;
8634 parse_func = netntlmv2_parse_hash;
8635 sort_by_digest = sort_by_digest_4_4;
8636 opti_type = OPTI_TYPE_ZERO_BYTE;
8637 dgst_pos0 = 0;
8638 dgst_pos1 = 3;
8639 dgst_pos2 = 2;
8640 dgst_pos3 = 1;
8641 break;
8642
8643 case 5700: hash_type = HASH_TYPE_SHA256;
8644 salt_type = SALT_TYPE_NONE;
8645 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8646 opts_type = OPTS_TYPE_PT_GENERATE_BE
8647 | OPTS_TYPE_PT_ADD80
8648 | OPTS_TYPE_PT_ADDBITS15;
8649 kern_type = KERN_TYPE_SHA256;
8650 dgst_size = DGST_SIZE_4_8;
8651 parse_func = cisco4_parse_hash;
8652 sort_by_digest = sort_by_digest_4_8;
8653 opti_type = OPTI_TYPE_ZERO_BYTE
8654 | OPTI_TYPE_PRECOMPUTE_INIT
8655 | OPTI_TYPE_PRECOMPUTE_MERKLE
8656 | OPTI_TYPE_EARLY_SKIP
8657 | OPTI_TYPE_NOT_ITERATED
8658 | OPTI_TYPE_NOT_SALTED
8659 | OPTI_TYPE_RAW_HASH;
8660 dgst_pos0 = 3;
8661 dgst_pos1 = 7;
8662 dgst_pos2 = 2;
8663 dgst_pos3 = 6;
8664 break;
8665
8666 case 5800: hash_type = HASH_TYPE_SHA1;
8667 salt_type = SALT_TYPE_INTERN;
8668 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8669 opts_type = OPTS_TYPE_PT_GENERATE_LE // should be OPTS_TYPE_PT_GENERATE_BE
8670 | OPTS_TYPE_ST_ADD80;
8671 kern_type = KERN_TYPE_ANDROIDPIN;
8672 dgst_size = DGST_SIZE_4_5;
8673 parse_func = androidpin_parse_hash;
8674 sort_by_digest = sort_by_digest_4_5;
8675 opti_type = OPTI_TYPE_ZERO_BYTE;
8676 dgst_pos0 = 0;
8677 dgst_pos1 = 1;
8678 dgst_pos2 = 2;
8679 dgst_pos3 = 3;
8680 break;
8681
8682 case 6000: hash_type = HASH_TYPE_RIPEMD160;
8683 salt_type = SALT_TYPE_NONE;
8684 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8685 opts_type = OPTS_TYPE_PT_GENERATE_LE
8686 | OPTS_TYPE_PT_ADD80;
8687 kern_type = KERN_TYPE_RIPEMD160;
8688 dgst_size = DGST_SIZE_4_5;
8689 parse_func = ripemd160_parse_hash;
8690 sort_by_digest = sort_by_digest_4_5;
8691 opti_type = OPTI_TYPE_ZERO_BYTE;
8692 dgst_pos0 = 0;
8693 dgst_pos1 = 1;
8694 dgst_pos2 = 2;
8695 dgst_pos3 = 3;
8696 break;
8697
8698 case 6100: hash_type = HASH_TYPE_WHIRLPOOL;
8699 salt_type = SALT_TYPE_NONE;
8700 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8701 opts_type = OPTS_TYPE_PT_GENERATE_BE
8702 | OPTS_TYPE_PT_ADD80;
8703 kern_type = KERN_TYPE_WHIRLPOOL;
8704 dgst_size = DGST_SIZE_4_16;
8705 parse_func = whirlpool_parse_hash;
8706 sort_by_digest = sort_by_digest_4_16;
8707 opti_type = OPTI_TYPE_ZERO_BYTE;
8708 dgst_pos0 = 0;
8709 dgst_pos1 = 1;
8710 dgst_pos2 = 2;
8711 dgst_pos3 = 3;
8712 break;
8713
8714 case 6211: hash_type = HASH_TYPE_RIPEMD160;
8715 salt_type = SALT_TYPE_EMBEDDED;
8716 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8717 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8718 kern_type = KERN_TYPE_TCRIPEMD160_XTS512;
8719 dgst_size = DGST_SIZE_4_5;
8720 parse_func = truecrypt_parse_hash_2k;
8721 sort_by_digest = sort_by_digest_4_5;
8722 opti_type = OPTI_TYPE_ZERO_BYTE;
8723 dgst_pos0 = 0;
8724 dgst_pos1 = 1;
8725 dgst_pos2 = 2;
8726 dgst_pos3 = 3;
8727 break;
8728
8729 case 6212: hash_type = HASH_TYPE_RIPEMD160;
8730 salt_type = SALT_TYPE_EMBEDDED;
8731 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8732 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8733 kern_type = KERN_TYPE_TCRIPEMD160_XTS1024;
8734 dgst_size = DGST_SIZE_4_5;
8735 parse_func = truecrypt_parse_hash_2k;
8736 sort_by_digest = sort_by_digest_4_5;
8737 opti_type = OPTI_TYPE_ZERO_BYTE;
8738 dgst_pos0 = 0;
8739 dgst_pos1 = 1;
8740 dgst_pos2 = 2;
8741 dgst_pos3 = 3;
8742 break;
8743
8744 case 6213: hash_type = HASH_TYPE_RIPEMD160;
8745 salt_type = SALT_TYPE_EMBEDDED;
8746 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8747 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8748 kern_type = KERN_TYPE_TCRIPEMD160_XTS1536;
8749 dgst_size = DGST_SIZE_4_5;
8750 parse_func = truecrypt_parse_hash_2k;
8751 sort_by_digest = sort_by_digest_4_5;
8752 opti_type = OPTI_TYPE_ZERO_BYTE;
8753 dgst_pos0 = 0;
8754 dgst_pos1 = 1;
8755 dgst_pos2 = 2;
8756 dgst_pos3 = 3;
8757 break;
8758
8759 case 6221: hash_type = HASH_TYPE_SHA512;
8760 salt_type = SALT_TYPE_EMBEDDED;
8761 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8762 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8763 kern_type = KERN_TYPE_TCSHA512_XTS512;
8764 dgst_size = DGST_SIZE_8_8;
8765 parse_func = truecrypt_parse_hash_1k;
8766 sort_by_digest = sort_by_digest_8_8;
8767 opti_type = OPTI_TYPE_ZERO_BYTE
8768 | OPTI_TYPE_USES_BITS_64;
8769 dgst_pos0 = 0;
8770 dgst_pos1 = 1;
8771 dgst_pos2 = 2;
8772 dgst_pos3 = 3;
8773 break;
8774
8775 case 6222: hash_type = HASH_TYPE_SHA512;
8776 salt_type = SALT_TYPE_EMBEDDED;
8777 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8778 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8779 kern_type = KERN_TYPE_TCSHA512_XTS1024;
8780 dgst_size = DGST_SIZE_8_8;
8781 parse_func = truecrypt_parse_hash_1k;
8782 sort_by_digest = sort_by_digest_8_8;
8783 opti_type = OPTI_TYPE_ZERO_BYTE
8784 | OPTI_TYPE_USES_BITS_64;
8785 dgst_pos0 = 0;
8786 dgst_pos1 = 1;
8787 dgst_pos2 = 2;
8788 dgst_pos3 = 3;
8789 break;
8790
8791 case 6223: hash_type = HASH_TYPE_SHA512;
8792 salt_type = SALT_TYPE_EMBEDDED;
8793 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8794 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8795 kern_type = KERN_TYPE_TCSHA512_XTS1536;
8796 dgst_size = DGST_SIZE_8_8;
8797 parse_func = truecrypt_parse_hash_1k;
8798 sort_by_digest = sort_by_digest_8_8;
8799 opti_type = OPTI_TYPE_ZERO_BYTE
8800 | OPTI_TYPE_USES_BITS_64;
8801 dgst_pos0 = 0;
8802 dgst_pos1 = 1;
8803 dgst_pos2 = 2;
8804 dgst_pos3 = 3;
8805 break;
8806
8807 case 6231: hash_type = HASH_TYPE_WHIRLPOOL;
8808 salt_type = SALT_TYPE_EMBEDDED;
8809 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8810 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8811 kern_type = KERN_TYPE_TCWHIRLPOOL_XTS512;
8812 dgst_size = DGST_SIZE_4_8;
8813 parse_func = truecrypt_parse_hash_1k;
8814 sort_by_digest = sort_by_digest_4_8;
8815 opti_type = OPTI_TYPE_ZERO_BYTE;
8816 dgst_pos0 = 0;
8817 dgst_pos1 = 1;
8818 dgst_pos2 = 2;
8819 dgst_pos3 = 3;
8820 break;
8821
8822 case 6232: hash_type = HASH_TYPE_WHIRLPOOL;
8823 salt_type = SALT_TYPE_EMBEDDED;
8824 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8825 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8826 kern_type = KERN_TYPE_TCWHIRLPOOL_XTS1024;
8827 dgst_size = DGST_SIZE_4_8;
8828 parse_func = truecrypt_parse_hash_1k;
8829 sort_by_digest = sort_by_digest_4_8;
8830 opti_type = OPTI_TYPE_ZERO_BYTE;
8831 dgst_pos0 = 0;
8832 dgst_pos1 = 1;
8833 dgst_pos2 = 2;
8834 dgst_pos3 = 3;
8835 break;
8836
8837 case 6233: hash_type = HASH_TYPE_WHIRLPOOL;
8838 salt_type = SALT_TYPE_EMBEDDED;
8839 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8840 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8841 kern_type = KERN_TYPE_TCWHIRLPOOL_XTS1536;
8842 dgst_size = DGST_SIZE_4_8;
8843 parse_func = truecrypt_parse_hash_1k;
8844 sort_by_digest = sort_by_digest_4_8;
8845 opti_type = OPTI_TYPE_ZERO_BYTE;
8846 dgst_pos0 = 0;
8847 dgst_pos1 = 1;
8848 dgst_pos2 = 2;
8849 dgst_pos3 = 3;
8850 break;
8851
8852 case 6241: hash_type = HASH_TYPE_RIPEMD160;
8853 salt_type = SALT_TYPE_EMBEDDED;
8854 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8855 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8856 kern_type = KERN_TYPE_TCRIPEMD160_XTS512;
8857 dgst_size = DGST_SIZE_4_5;
8858 parse_func = truecrypt_parse_hash_1k;
8859 sort_by_digest = sort_by_digest_4_5;
8860 opti_type = OPTI_TYPE_ZERO_BYTE;
8861 dgst_pos0 = 0;
8862 dgst_pos1 = 1;
8863 dgst_pos2 = 2;
8864 dgst_pos3 = 3;
8865 break;
8866
8867 case 6242: hash_type = HASH_TYPE_RIPEMD160;
8868 salt_type = SALT_TYPE_EMBEDDED;
8869 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8870 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8871 kern_type = KERN_TYPE_TCRIPEMD160_XTS1024;
8872 dgst_size = DGST_SIZE_4_5;
8873 parse_func = truecrypt_parse_hash_1k;
8874 sort_by_digest = sort_by_digest_4_5;
8875 opti_type = OPTI_TYPE_ZERO_BYTE;
8876 dgst_pos0 = 0;
8877 dgst_pos1 = 1;
8878 dgst_pos2 = 2;
8879 dgst_pos3 = 3;
8880 break;
8881
8882 case 6243: hash_type = HASH_TYPE_RIPEMD160;
8883 salt_type = SALT_TYPE_EMBEDDED;
8884 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8885 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8886 kern_type = KERN_TYPE_TCRIPEMD160_XTS1536;
8887 dgst_size = DGST_SIZE_4_5;
8888 parse_func = truecrypt_parse_hash_1k;
8889 sort_by_digest = sort_by_digest_4_5;
8890 opti_type = OPTI_TYPE_ZERO_BYTE;
8891 dgst_pos0 = 0;
8892 dgst_pos1 = 1;
8893 dgst_pos2 = 2;
8894 dgst_pos3 = 3;
8895 break;
8896
8897 case 6300: hash_type = HASH_TYPE_MD5;
8898 salt_type = SALT_TYPE_EMBEDDED;
8899 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8900 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8901 kern_type = KERN_TYPE_MD5AIX;
8902 dgst_size = DGST_SIZE_4_4;
8903 parse_func = md5aix_parse_hash;
8904 sort_by_digest = sort_by_digest_4_4;
8905 opti_type = OPTI_TYPE_ZERO_BYTE;
8906 dgst_pos0 = 0;
8907 dgst_pos1 = 1;
8908 dgst_pos2 = 2;
8909 dgst_pos3 = 3;
8910 break;
8911
8912 case 6400: hash_type = HASH_TYPE_SHA256;
8913 salt_type = SALT_TYPE_EMBEDDED;
8914 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8915 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8916 kern_type = KERN_TYPE_SHA256AIX;
8917 dgst_size = DGST_SIZE_4_8;
8918 parse_func = sha256aix_parse_hash;
8919 sort_by_digest = sort_by_digest_4_8;
8920 opti_type = OPTI_TYPE_ZERO_BYTE;
8921 dgst_pos0 = 0;
8922 dgst_pos1 = 1;
8923 dgst_pos2 = 2;
8924 dgst_pos3 = 3;
8925 break;
8926
8927 case 6500: hash_type = HASH_TYPE_SHA512;
8928 salt_type = SALT_TYPE_EMBEDDED;
8929 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8930 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8931 kern_type = KERN_TYPE_SHA512AIX;
8932 dgst_size = DGST_SIZE_8_8;
8933 parse_func = sha512aix_parse_hash;
8934 sort_by_digest = sort_by_digest_8_8;
8935 opti_type = OPTI_TYPE_ZERO_BYTE
8936 | OPTI_TYPE_USES_BITS_64;
8937 dgst_pos0 = 0;
8938 dgst_pos1 = 1;
8939 dgst_pos2 = 2;
8940 dgst_pos3 = 3;
8941 break;
8942
8943 case 6600: hash_type = HASH_TYPE_AES;
8944 salt_type = SALT_TYPE_EMBEDDED;
8945 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8946 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8947 kern_type = KERN_TYPE_AGILEKEY;
8948 dgst_size = DGST_SIZE_4_5; // because kernel uses _SHA1_
8949 parse_func = agilekey_parse_hash;
8950 sort_by_digest = sort_by_digest_4_5;
8951 opti_type = OPTI_TYPE_ZERO_BYTE;
8952 dgst_pos0 = 0;
8953 dgst_pos1 = 1;
8954 dgst_pos2 = 2;
8955 dgst_pos3 = 3;
8956 break;
8957
8958 case 6700: hash_type = HASH_TYPE_SHA1;
8959 salt_type = SALT_TYPE_EMBEDDED;
8960 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8961 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8962 kern_type = KERN_TYPE_SHA1AIX;
8963 dgst_size = DGST_SIZE_4_5;
8964 parse_func = sha1aix_parse_hash;
8965 sort_by_digest = sort_by_digest_4_5;
8966 opti_type = OPTI_TYPE_ZERO_BYTE;
8967 dgst_pos0 = 0;
8968 dgst_pos1 = 1;
8969 dgst_pos2 = 2;
8970 dgst_pos3 = 3;
8971 break;
8972
8973 case 6800: hash_type = HASH_TYPE_AES;
8974 salt_type = SALT_TYPE_EMBEDDED;
8975 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8976 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8977 kern_type = KERN_TYPE_LASTPASS;
8978 dgst_size = DGST_SIZE_4_8; // because kernel uses _SHA256_
8979 parse_func = lastpass_parse_hash;
8980 sort_by_digest = sort_by_digest_4_8;
8981 opti_type = OPTI_TYPE_ZERO_BYTE;
8982 dgst_pos0 = 0;
8983 dgst_pos1 = 1;
8984 dgst_pos2 = 2;
8985 dgst_pos3 = 3;
8986 break;
8987
8988 case 6900: hash_type = HASH_TYPE_GOST;
8989 salt_type = SALT_TYPE_NONE;
8990 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8991 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8992 kern_type = KERN_TYPE_GOST;
8993 dgst_size = DGST_SIZE_4_8;
8994 parse_func = gost_parse_hash;
8995 sort_by_digest = sort_by_digest_4_8;
8996 opti_type = OPTI_TYPE_ZERO_BYTE;
8997 dgst_pos0 = 0;
8998 dgst_pos1 = 1;
8999 dgst_pos2 = 2;
9000 dgst_pos3 = 3;
9001 break;
9002
9003 case 7100: hash_type = HASH_TYPE_SHA512;
9004 salt_type = SALT_TYPE_EMBEDDED;
9005 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9006 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9007 kern_type = KERN_TYPE_PBKDF2_SHA512;
9008 dgst_size = DGST_SIZE_8_16;
9009 parse_func = sha512osx_parse_hash;
9010 sort_by_digest = sort_by_digest_8_16;
9011 opti_type = OPTI_TYPE_ZERO_BYTE
9012 | OPTI_TYPE_USES_BITS_64;
9013 dgst_pos0 = 0;
9014 dgst_pos1 = 1;
9015 dgst_pos2 = 2;
9016 dgst_pos3 = 3;
9017 break;
9018
9019 case 7200: hash_type = HASH_TYPE_SHA512;
9020 salt_type = SALT_TYPE_EMBEDDED;
9021 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9022 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9023 kern_type = KERN_TYPE_PBKDF2_SHA512;
9024 dgst_size = DGST_SIZE_8_16;
9025 parse_func = sha512grub_parse_hash;
9026 sort_by_digest = sort_by_digest_8_16;
9027 opti_type = OPTI_TYPE_ZERO_BYTE
9028 | OPTI_TYPE_USES_BITS_64;
9029 dgst_pos0 = 0;
9030 dgst_pos1 = 1;
9031 dgst_pos2 = 2;
9032 dgst_pos3 = 3;
9033 break;
9034
9035 case 7300: hash_type = HASH_TYPE_SHA1;
9036 salt_type = SALT_TYPE_EMBEDDED;
9037 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9038 opts_type = OPTS_TYPE_PT_GENERATE_BE
9039 | OPTS_TYPE_ST_ADD80
9040 | OPTS_TYPE_ST_ADDBITS15;
9041 kern_type = KERN_TYPE_RAKP;
9042 dgst_size = DGST_SIZE_4_5;
9043 parse_func = rakp_parse_hash;
9044 sort_by_digest = sort_by_digest_4_5;
9045 opti_type = OPTI_TYPE_ZERO_BYTE
9046 | OPTI_TYPE_NOT_ITERATED;
9047 dgst_pos0 = 3;
9048 dgst_pos1 = 4;
9049 dgst_pos2 = 2;
9050 dgst_pos3 = 1;
9051 break;
9052
9053 case 7400: hash_type = HASH_TYPE_SHA256;
9054 salt_type = SALT_TYPE_EMBEDDED;
9055 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9056 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9057 kern_type = KERN_TYPE_SHA256CRYPT;
9058 dgst_size = DGST_SIZE_4_8;
9059 parse_func = sha256crypt_parse_hash;
9060 sort_by_digest = sort_by_digest_4_8;
9061 opti_type = OPTI_TYPE_ZERO_BYTE;
9062 dgst_pos0 = 0;
9063 dgst_pos1 = 1;
9064 dgst_pos2 = 2;
9065 dgst_pos3 = 3;
9066 break;
9067
9068 case 7500: hash_type = HASH_TYPE_KRB5PA;
9069 salt_type = SALT_TYPE_EMBEDDED;
9070 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9071 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9072 kern_type = KERN_TYPE_KRB5PA;
9073 dgst_size = DGST_SIZE_4_4;
9074 parse_func = krb5pa_parse_hash;
9075 sort_by_digest = sort_by_digest_4_4;
9076 opti_type = OPTI_TYPE_ZERO_BYTE
9077 | OPTI_TYPE_NOT_ITERATED;
9078 dgst_pos0 = 0;
9079 dgst_pos1 = 1;
9080 dgst_pos2 = 2;
9081 dgst_pos3 = 3;
9082 break;
9083
9084 case 7600: hash_type = HASH_TYPE_SHA1;
9085 salt_type = SALT_TYPE_INTERN;
9086 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9087 opts_type = OPTS_TYPE_PT_GENERATE_BE
9088 | OPTS_TYPE_PT_ADD80
9089 | OPTS_TYPE_PT_ADDBITS15;
9090 kern_type = KERN_TYPE_SHA1_SLT_SHA1_PW;
9091 dgst_size = DGST_SIZE_4_5;
9092 parse_func = redmine_parse_hash;
9093 sort_by_digest = sort_by_digest_4_5;
9094 opti_type = OPTI_TYPE_ZERO_BYTE
9095 | OPTI_TYPE_PRECOMPUTE_INIT
9096 | OPTI_TYPE_EARLY_SKIP
9097 | OPTI_TYPE_NOT_ITERATED
9098 | OPTI_TYPE_PREPENDED_SALT;
9099 dgst_pos0 = 3;
9100 dgst_pos1 = 4;
9101 dgst_pos2 = 2;
9102 dgst_pos3 = 1;
9103 break;
9104
9105 case 7700: hash_type = HASH_TYPE_SAPB;
9106 salt_type = SALT_TYPE_EMBEDDED;
9107 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9108 opts_type = OPTS_TYPE_PT_GENERATE_LE
9109 | OPTS_TYPE_PT_UPPER
9110 | OPTS_TYPE_ST_UPPER;
9111 kern_type = KERN_TYPE_SAPB;
9112 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9113 parse_func = sapb_parse_hash;
9114 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9115 opti_type = OPTI_TYPE_ZERO_BYTE
9116 | OPTI_TYPE_PRECOMPUTE_INIT
9117 | OPTI_TYPE_NOT_ITERATED;
9118 dgst_pos0 = 0;
9119 dgst_pos1 = 1;
9120 dgst_pos2 = 2;
9121 dgst_pos3 = 3;
9122 break;
9123
9124 case 7800: hash_type = HASH_TYPE_SAPG;
9125 salt_type = SALT_TYPE_EMBEDDED;
9126 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9127 opts_type = OPTS_TYPE_PT_GENERATE_BE
9128 | OPTS_TYPE_ST_ADD80
9129 | OPTS_TYPE_ST_UPPER;
9130 kern_type = KERN_TYPE_SAPG;
9131 dgst_size = DGST_SIZE_4_5;
9132 parse_func = sapg_parse_hash;
9133 sort_by_digest = sort_by_digest_4_5;
9134 opti_type = OPTI_TYPE_ZERO_BYTE
9135 | OPTI_TYPE_PRECOMPUTE_INIT
9136 | OPTI_TYPE_NOT_ITERATED;
9137 dgst_pos0 = 3;
9138 dgst_pos1 = 4;
9139 dgst_pos2 = 2;
9140 dgst_pos3 = 1;
9141 break;
9142
9143 case 7900: hash_type = HASH_TYPE_SHA512;
9144 salt_type = SALT_TYPE_EMBEDDED;
9145 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9146 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9147 kern_type = KERN_TYPE_DRUPAL7;
9148 dgst_size = DGST_SIZE_8_8;
9149 parse_func = drupal7_parse_hash;
9150 sort_by_digest = sort_by_digest_8_8;
9151 opti_type = OPTI_TYPE_ZERO_BYTE
9152 | OPTI_TYPE_USES_BITS_64;
9153 dgst_pos0 = 0;
9154 dgst_pos1 = 1;
9155 dgst_pos2 = 2;
9156 dgst_pos3 = 3;
9157 break;
9158
9159 case 8000: hash_type = HASH_TYPE_SHA256;
9160 salt_type = SALT_TYPE_EMBEDDED;
9161 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9162 opts_type = OPTS_TYPE_PT_GENERATE_BE
9163 | OPTS_TYPE_PT_UNICODE
9164 | OPTS_TYPE_ST_ADD80
9165 | OPTS_TYPE_ST_HEX;
9166 kern_type = KERN_TYPE_SYBASEASE;
9167 dgst_size = DGST_SIZE_4_8;
9168 parse_func = sybasease_parse_hash;
9169 sort_by_digest = sort_by_digest_4_8;
9170 opti_type = OPTI_TYPE_ZERO_BYTE
9171 | OPTI_TYPE_PRECOMPUTE_INIT
9172 | OPTI_TYPE_EARLY_SKIP
9173 | OPTI_TYPE_NOT_ITERATED
9174 | OPTI_TYPE_RAW_HASH;
9175 dgst_pos0 = 3;
9176 dgst_pos1 = 7;
9177 dgst_pos2 = 2;
9178 dgst_pos3 = 6;
9179 break;
9180
9181 case 8100: hash_type = HASH_TYPE_SHA1;
9182 salt_type = SALT_TYPE_EMBEDDED;
9183 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9184 opts_type = OPTS_TYPE_PT_GENERATE_BE;
9185 kern_type = KERN_TYPE_NETSCALER;
9186 dgst_size = DGST_SIZE_4_5;
9187 parse_func = netscaler_parse_hash;
9188 sort_by_digest = sort_by_digest_4_5;
9189 opti_type = OPTI_TYPE_ZERO_BYTE
9190 | OPTI_TYPE_PRECOMPUTE_INIT
9191 | OPTI_TYPE_PRECOMPUTE_MERKLE
9192 | OPTI_TYPE_EARLY_SKIP
9193 | OPTI_TYPE_NOT_ITERATED
9194 | OPTI_TYPE_PREPENDED_SALT
9195 | OPTI_TYPE_RAW_HASH;
9196 dgst_pos0 = 3;
9197 dgst_pos1 = 4;
9198 dgst_pos2 = 2;
9199 dgst_pos3 = 1;
9200 break;
9201
9202 case 8200: hash_type = HASH_TYPE_SHA256;
9203 salt_type = SALT_TYPE_EMBEDDED;
9204 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9205 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9206 kern_type = KERN_TYPE_CLOUDKEY;
9207 dgst_size = DGST_SIZE_4_8;
9208 parse_func = cloudkey_parse_hash;
9209 sort_by_digest = sort_by_digest_4_8;
9210 opti_type = OPTI_TYPE_ZERO_BYTE;
9211 dgst_pos0 = 0;
9212 dgst_pos1 = 1;
9213 dgst_pos2 = 2;
9214 dgst_pos3 = 3;
9215 break;
9216
9217 case 8300: hash_type = HASH_TYPE_SHA1;
9218 salt_type = SALT_TYPE_EMBEDDED;
9219 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9220 opts_type = OPTS_TYPE_PT_GENERATE_BE
9221 | OPTS_TYPE_ST_HEX
9222 | OPTS_TYPE_ST_ADD80;
9223 kern_type = KERN_TYPE_NSEC3;
9224 dgst_size = DGST_SIZE_4_5;
9225 parse_func = nsec3_parse_hash;
9226 sort_by_digest = sort_by_digest_4_5;
9227 opti_type = OPTI_TYPE_ZERO_BYTE;
9228 dgst_pos0 = 3;
9229 dgst_pos1 = 4;
9230 dgst_pos2 = 2;
9231 dgst_pos3 = 1;
9232 break;
9233
9234 case 8400: hash_type = HASH_TYPE_SHA1;
9235 salt_type = SALT_TYPE_INTERN;
9236 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9237 opts_type = OPTS_TYPE_PT_GENERATE_BE
9238 | OPTS_TYPE_PT_ADD80
9239 | OPTS_TYPE_PT_ADDBITS15;
9240 kern_type = KERN_TYPE_WBB3;
9241 dgst_size = DGST_SIZE_4_5;
9242 parse_func = wbb3_parse_hash;
9243 sort_by_digest = sort_by_digest_4_5;
9244 opti_type = OPTI_TYPE_ZERO_BYTE
9245 | OPTI_TYPE_PRECOMPUTE_INIT
9246 | OPTI_TYPE_NOT_ITERATED;
9247 dgst_pos0 = 3;
9248 dgst_pos1 = 4;
9249 dgst_pos2 = 2;
9250 dgst_pos3 = 1;
9251 break;
9252
9253 case 8500: hash_type = HASH_TYPE_DESRACF;
9254 salt_type = SALT_TYPE_EMBEDDED;
9255 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9256 opts_type = OPTS_TYPE_PT_GENERATE_LE
9257 | OPTS_TYPE_ST_UPPER;
9258 kern_type = KERN_TYPE_RACF;
9259 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9260 parse_func = racf_parse_hash;
9261 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9262 opti_type = OPTI_TYPE_ZERO_BYTE
9263 | OPTI_TYPE_PRECOMPUTE_PERMUT;
9264 dgst_pos0 = 0;
9265 dgst_pos1 = 1;
9266 dgst_pos2 = 2;
9267 dgst_pos3 = 3;
9268 break;
9269
9270 case 8600: hash_type = HASH_TYPE_LOTUS5;
9271 salt_type = SALT_TYPE_NONE;
9272 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9273 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9274 kern_type = KERN_TYPE_LOTUS5;
9275 dgst_size = DGST_SIZE_4_4;
9276 parse_func = lotus5_parse_hash;
9277 sort_by_digest = sort_by_digest_4_4;
9278 opti_type = OPTI_TYPE_EARLY_SKIP
9279 | OPTI_TYPE_NOT_ITERATED
9280 | OPTI_TYPE_NOT_SALTED
9281 | OPTI_TYPE_RAW_HASH;
9282 dgst_pos0 = 0;
9283 dgst_pos1 = 1;
9284 dgst_pos2 = 2;
9285 dgst_pos3 = 3;
9286 break;
9287
9288 case 8700: hash_type = HASH_TYPE_LOTUS6;
9289 salt_type = SALT_TYPE_EMBEDDED;
9290 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9291 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9292 kern_type = KERN_TYPE_LOTUS6;
9293 dgst_size = DGST_SIZE_4_4;
9294 parse_func = lotus6_parse_hash;
9295 sort_by_digest = sort_by_digest_4_4;
9296 opti_type = OPTI_TYPE_EARLY_SKIP
9297 | OPTI_TYPE_NOT_ITERATED
9298 | OPTI_TYPE_RAW_HASH;
9299 dgst_pos0 = 0;
9300 dgst_pos1 = 1;
9301 dgst_pos2 = 2;
9302 dgst_pos3 = 3;
9303 break;
9304
9305 case 8800: hash_type = HASH_TYPE_ANDROIDFDE;
9306 salt_type = SALT_TYPE_EMBEDDED;
9307 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9308 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9309 kern_type = KERN_TYPE_ANDROIDFDE;
9310 dgst_size = DGST_SIZE_4_4;
9311 parse_func = androidfde_parse_hash;
9312 sort_by_digest = sort_by_digest_4_4;
9313 opti_type = OPTI_TYPE_ZERO_BYTE;
9314 dgst_pos0 = 0;
9315 dgst_pos1 = 1;
9316 dgst_pos2 = 2;
9317 dgst_pos3 = 3;
9318 break;
9319
9320 case 8900: hash_type = HASH_TYPE_SCRYPT;
9321 salt_type = SALT_TYPE_EMBEDDED;
9322 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9323 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9324 kern_type = KERN_TYPE_SCRYPT;
9325 dgst_size = DGST_SIZE_4_8;
9326 parse_func = scrypt_parse_hash;
9327 sort_by_digest = sort_by_digest_4_8;
9328 opti_type = OPTI_TYPE_ZERO_BYTE;
9329 dgst_pos0 = 0;
9330 dgst_pos1 = 1;
9331 dgst_pos2 = 2;
9332 dgst_pos3 = 3;
9333 break;
9334
9335 case 9000: hash_type = HASH_TYPE_SHA1;
9336 salt_type = SALT_TYPE_EMBEDDED;
9337 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9338 opts_type = OPTS_TYPE_PT_GENERATE_LE
9339 | OPTS_TYPE_ST_GENERATE_LE;
9340 kern_type = KERN_TYPE_PSAFE2;
9341 dgst_size = DGST_SIZE_4_5;
9342 parse_func = psafe2_parse_hash;
9343 sort_by_digest = sort_by_digest_4_5;
9344 opti_type = OPTI_TYPE_ZERO_BYTE;
9345 dgst_pos0 = 0;
9346 dgst_pos1 = 1;
9347 dgst_pos2 = 2;
9348 dgst_pos3 = 3;
9349 break;
9350
9351 case 9100: hash_type = HASH_TYPE_LOTUS8;
9352 salt_type = SALT_TYPE_EMBEDDED;
9353 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9354 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9355 kern_type = KERN_TYPE_LOTUS8;
9356 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9357 parse_func = lotus8_parse_hash;
9358 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9359 opti_type = OPTI_TYPE_ZERO_BYTE;
9360 dgst_pos0 = 0;
9361 dgst_pos1 = 1;
9362 dgst_pos2 = 2;
9363 dgst_pos3 = 3;
9364 break;
9365
9366 case 9200: hash_type = HASH_TYPE_SHA256;
9367 salt_type = SALT_TYPE_EMBEDDED;
9368 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9369 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9370 kern_type = KERN_TYPE_PBKDF2_SHA256;
9371 dgst_size = DGST_SIZE_4_32;
9372 parse_func = cisco8_parse_hash;
9373 sort_by_digest = sort_by_digest_4_32;
9374 opti_type = OPTI_TYPE_ZERO_BYTE;
9375 dgst_pos0 = 0;
9376 dgst_pos1 = 1;
9377 dgst_pos2 = 2;
9378 dgst_pos3 = 3;
9379 break;
9380
9381 case 9300: hash_type = HASH_TYPE_SCRYPT;
9382 salt_type = SALT_TYPE_EMBEDDED;
9383 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9384 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9385 kern_type = KERN_TYPE_SCRYPT;
9386 dgst_size = DGST_SIZE_4_8;
9387 parse_func = cisco9_parse_hash;
9388 sort_by_digest = sort_by_digest_4_8;
9389 opti_type = OPTI_TYPE_ZERO_BYTE;
9390 dgst_pos0 = 0;
9391 dgst_pos1 = 1;
9392 dgst_pos2 = 2;
9393 dgst_pos3 = 3;
9394 break;
9395
9396 case 9400: hash_type = HASH_TYPE_OFFICE2007;
9397 salt_type = SALT_TYPE_EMBEDDED;
9398 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9399 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9400 kern_type = KERN_TYPE_OFFICE2007;
9401 dgst_size = DGST_SIZE_4_4;
9402 parse_func = office2007_parse_hash;
9403 sort_by_digest = sort_by_digest_4_4;
9404 opti_type = OPTI_TYPE_ZERO_BYTE;
9405 dgst_pos0 = 0;
9406 dgst_pos1 = 1;
9407 dgst_pos2 = 2;
9408 dgst_pos3 = 3;
9409 break;
9410
9411 case 9500: hash_type = HASH_TYPE_OFFICE2010;
9412 salt_type = SALT_TYPE_EMBEDDED;
9413 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9414 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9415 kern_type = KERN_TYPE_OFFICE2010;
9416 dgst_size = DGST_SIZE_4_4;
9417 parse_func = office2010_parse_hash;
9418 sort_by_digest = sort_by_digest_4_4;
9419 opti_type = OPTI_TYPE_ZERO_BYTE;
9420 dgst_pos0 = 0;
9421 dgst_pos1 = 1;
9422 dgst_pos2 = 2;
9423 dgst_pos3 = 3;
9424 break;
9425
9426 case 9600: hash_type = HASH_TYPE_OFFICE2013;
9427 salt_type = SALT_TYPE_EMBEDDED;
9428 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9429 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9430 kern_type = KERN_TYPE_OFFICE2013;
9431 dgst_size = DGST_SIZE_4_4;
9432 parse_func = office2013_parse_hash;
9433 sort_by_digest = sort_by_digest_4_4;
9434 opti_type = OPTI_TYPE_ZERO_BYTE;
9435 dgst_pos0 = 0;
9436 dgst_pos1 = 1;
9437 dgst_pos2 = 2;
9438 dgst_pos3 = 3;
9439 break;
9440
9441 case 9700: hash_type = HASH_TYPE_OLDOFFICE01;
9442 salt_type = SALT_TYPE_EMBEDDED;
9443 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9444 opts_type = OPTS_TYPE_PT_GENERATE_LE
9445 | OPTS_TYPE_PT_ADD80
9446 | OPTS_TYPE_PT_UNICODE;
9447 kern_type = KERN_TYPE_OLDOFFICE01;
9448 dgst_size = DGST_SIZE_4_4;
9449 parse_func = oldoffice01_parse_hash;
9450 sort_by_digest = sort_by_digest_4_4;
9451 opti_type = OPTI_TYPE_ZERO_BYTE
9452 | OPTI_TYPE_PRECOMPUTE_INIT
9453 | OPTI_TYPE_NOT_ITERATED;
9454 dgst_pos0 = 0;
9455 dgst_pos1 = 1;
9456 dgst_pos2 = 2;
9457 dgst_pos3 = 3;
9458 break;
9459
9460 case 9710: hash_type = HASH_TYPE_OLDOFFICE01;
9461 salt_type = SALT_TYPE_EMBEDDED;
9462 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9463 opts_type = OPTS_TYPE_PT_GENERATE_LE
9464 | OPTS_TYPE_PT_ADD80;
9465 kern_type = KERN_TYPE_OLDOFFICE01CM1;
9466 dgst_size = DGST_SIZE_4_4;
9467 parse_func = oldoffice01cm1_parse_hash;
9468 sort_by_digest = sort_by_digest_4_4;
9469 opti_type = OPTI_TYPE_ZERO_BYTE
9470 | OPTI_TYPE_PRECOMPUTE_INIT
9471 | OPTI_TYPE_NOT_ITERATED;
9472 dgst_pos0 = 0;
9473 dgst_pos1 = 1;
9474 dgst_pos2 = 2;
9475 dgst_pos3 = 3;
9476 break;
9477
9478 case 9720: hash_type = HASH_TYPE_OLDOFFICE01;
9479 salt_type = SALT_TYPE_EMBEDDED;
9480 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9481 opts_type = OPTS_TYPE_PT_GENERATE_LE
9482 | OPTS_TYPE_PT_ADD80
9483 | OPTS_TYPE_PT_UNICODE
9484 | OPTS_TYPE_PT_NEVERCRACK;
9485 kern_type = KERN_TYPE_OLDOFFICE01CM2;
9486 dgst_size = DGST_SIZE_4_4;
9487 parse_func = oldoffice01cm2_parse_hash;
9488 sort_by_digest = sort_by_digest_4_4;
9489 opti_type = OPTI_TYPE_ZERO_BYTE
9490 | OPTI_TYPE_PRECOMPUTE_INIT
9491 | OPTI_TYPE_NOT_ITERATED;
9492 dgst_pos0 = 0;
9493 dgst_pos1 = 1;
9494 dgst_pos2 = 2;
9495 dgst_pos3 = 3;
9496 break;
9497
9498 case 9800: hash_type = HASH_TYPE_OLDOFFICE34;
9499 salt_type = SALT_TYPE_EMBEDDED;
9500 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9501 opts_type = OPTS_TYPE_PT_GENERATE_BE
9502 | OPTS_TYPE_PT_ADD80
9503 | OPTS_TYPE_PT_UNICODE;
9504 kern_type = KERN_TYPE_OLDOFFICE34;
9505 dgst_size = DGST_SIZE_4_4;
9506 parse_func = oldoffice34_parse_hash;
9507 sort_by_digest = sort_by_digest_4_4;
9508 opti_type = OPTI_TYPE_ZERO_BYTE
9509 | OPTI_TYPE_PRECOMPUTE_INIT
9510 | OPTI_TYPE_NOT_ITERATED;
9511 dgst_pos0 = 0;
9512 dgst_pos1 = 1;
9513 dgst_pos2 = 2;
9514 dgst_pos3 = 3;
9515 break;
9516
9517 case 9810: hash_type = HASH_TYPE_OLDOFFICE34;
9518 salt_type = SALT_TYPE_EMBEDDED;
9519 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9520 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9521 kern_type = KERN_TYPE_OLDOFFICE34CM1;
9522 dgst_size = DGST_SIZE_4_4;
9523 parse_func = oldoffice34cm1_parse_hash;
9524 sort_by_digest = sort_by_digest_4_4;
9525 opti_type = OPTI_TYPE_ZERO_BYTE
9526 | OPTI_TYPE_PRECOMPUTE_INIT
9527 | OPTI_TYPE_NOT_ITERATED;
9528 dgst_pos0 = 0;
9529 dgst_pos1 = 1;
9530 dgst_pos2 = 2;
9531 dgst_pos3 = 3;
9532 break;
9533
9534 case 9820: hash_type = HASH_TYPE_OLDOFFICE34;
9535 salt_type = SALT_TYPE_EMBEDDED;
9536 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9537 opts_type = OPTS_TYPE_PT_GENERATE_BE
9538 | OPTS_TYPE_PT_ADD80
9539 | OPTS_TYPE_PT_UNICODE
9540 | OPTS_TYPE_PT_NEVERCRACK;
9541 kern_type = KERN_TYPE_OLDOFFICE34CM2;
9542 dgst_size = DGST_SIZE_4_4;
9543 parse_func = oldoffice34cm2_parse_hash;
9544 sort_by_digest = sort_by_digest_4_4;
9545 opti_type = OPTI_TYPE_ZERO_BYTE
9546 | OPTI_TYPE_PRECOMPUTE_INIT
9547 | OPTI_TYPE_NOT_ITERATED;
9548 dgst_pos0 = 0;
9549 dgst_pos1 = 1;
9550 dgst_pos2 = 2;
9551 dgst_pos3 = 3;
9552 break;
9553
9554 case 9900: hash_type = HASH_TYPE_MD5;
9555 salt_type = SALT_TYPE_NONE;
9556 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9557 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9558 kern_type = KERN_TYPE_RADMIN2;
9559 dgst_size = DGST_SIZE_4_4;
9560 parse_func = radmin2_parse_hash;
9561 sort_by_digest = sort_by_digest_4_4;
9562 opti_type = OPTI_TYPE_ZERO_BYTE
9563 | OPTI_TYPE_PRECOMPUTE_INIT
9564 | OPTI_TYPE_EARLY_SKIP
9565 | OPTI_TYPE_NOT_ITERATED
9566 | OPTI_TYPE_NOT_SALTED;
9567 dgst_pos0 = 0;
9568 dgst_pos1 = 3;
9569 dgst_pos2 = 2;
9570 dgst_pos3 = 1;
9571 break;
9572
9573 case 10000: hash_type = HASH_TYPE_SHA256;
9574 salt_type = SALT_TYPE_EMBEDDED;
9575 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9576 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9577 kern_type = KERN_TYPE_PBKDF2_SHA256;
9578 dgst_size = DGST_SIZE_4_32;
9579 parse_func = djangopbkdf2_parse_hash;
9580 sort_by_digest = sort_by_digest_4_32;
9581 opti_type = OPTI_TYPE_ZERO_BYTE;
9582 dgst_pos0 = 0;
9583 dgst_pos1 = 1;
9584 dgst_pos2 = 2;
9585 dgst_pos3 = 3;
9586 break;
9587
9588 case 10100: hash_type = HASH_TYPE_SIPHASH;
9589 salt_type = SALT_TYPE_EMBEDDED;
9590 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9591 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9592 kern_type = KERN_TYPE_SIPHASH;
9593 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9594 parse_func = siphash_parse_hash;
9595 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9596 opti_type = OPTI_TYPE_ZERO_BYTE
9597 | OPTI_TYPE_NOT_ITERATED
9598 | OPTI_TYPE_RAW_HASH;
9599 dgst_pos0 = 0;
9600 dgst_pos1 = 1;
9601 dgst_pos2 = 2;
9602 dgst_pos3 = 3;
9603 break;
9604
9605 case 10200: hash_type = HASH_TYPE_MD5;
9606 salt_type = SALT_TYPE_EMBEDDED;
9607 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9608 opts_type = OPTS_TYPE_PT_GENERATE_LE
9609 | OPTS_TYPE_ST_ADD80
9610 | OPTS_TYPE_ST_ADDBITS14;
9611 kern_type = KERN_TYPE_HMACMD5_PW;
9612 dgst_size = DGST_SIZE_4_4;
9613 parse_func = crammd5_parse_hash;
9614 sort_by_digest = sort_by_digest_4_4;
9615 opti_type = OPTI_TYPE_ZERO_BYTE
9616 | OPTI_TYPE_NOT_ITERATED;
9617 dgst_pos0 = 0;
9618 dgst_pos1 = 3;
9619 dgst_pos2 = 2;
9620 dgst_pos3 = 1;
9621 break;
9622
9623 case 10300: hash_type = HASH_TYPE_SHA1;
9624 salt_type = SALT_TYPE_EMBEDDED;
9625 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9626 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9627 kern_type = KERN_TYPE_SAPH_SHA1;
9628 dgst_size = DGST_SIZE_4_5;
9629 parse_func = saph_sha1_parse_hash;
9630 sort_by_digest = sort_by_digest_4_5;
9631 opti_type = OPTI_TYPE_ZERO_BYTE;
9632 dgst_pos0 = 0;
9633 dgst_pos1 = 1;
9634 dgst_pos2 = 2;
9635 dgst_pos3 = 3;
9636 break;
9637
9638 case 10400: hash_type = HASH_TYPE_PDFU16;
9639 salt_type = SALT_TYPE_EMBEDDED;
9640 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9641 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9642 kern_type = KERN_TYPE_PDF11;
9643 dgst_size = DGST_SIZE_4_4;
9644 parse_func = pdf11_parse_hash;
9645 sort_by_digest = sort_by_digest_4_4;
9646 opti_type = OPTI_TYPE_ZERO_BYTE
9647 | OPTI_TYPE_NOT_ITERATED;
9648 dgst_pos0 = 0;
9649 dgst_pos1 = 1;
9650 dgst_pos2 = 2;
9651 dgst_pos3 = 3;
9652 break;
9653
9654 case 10410: hash_type = HASH_TYPE_PDFU16;
9655 salt_type = SALT_TYPE_EMBEDDED;
9656 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9657 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9658 kern_type = KERN_TYPE_PDF11CM1;
9659 dgst_size = DGST_SIZE_4_4;
9660 parse_func = pdf11cm1_parse_hash;
9661 sort_by_digest = sort_by_digest_4_4;
9662 opti_type = OPTI_TYPE_ZERO_BYTE
9663 | OPTI_TYPE_NOT_ITERATED;
9664 dgst_pos0 = 0;
9665 dgst_pos1 = 1;
9666 dgst_pos2 = 2;
9667 dgst_pos3 = 3;
9668 break;
9669
9670 case 10420: hash_type = HASH_TYPE_PDFU16;
9671 salt_type = SALT_TYPE_EMBEDDED;
9672 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9673 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9674 kern_type = KERN_TYPE_PDF11CM2;
9675 dgst_size = DGST_SIZE_4_4;
9676 parse_func = pdf11cm2_parse_hash;
9677 sort_by_digest = sort_by_digest_4_4;
9678 opti_type = OPTI_TYPE_ZERO_BYTE
9679 | OPTI_TYPE_NOT_ITERATED;
9680 dgst_pos0 = 0;
9681 dgst_pos1 = 1;
9682 dgst_pos2 = 2;
9683 dgst_pos3 = 3;
9684 break;
9685
9686 case 10500: hash_type = HASH_TYPE_PDFU16;
9687 salt_type = SALT_TYPE_EMBEDDED;
9688 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9689 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9690 kern_type = KERN_TYPE_PDF14;
9691 dgst_size = DGST_SIZE_4_4;
9692 parse_func = pdf14_parse_hash;
9693 sort_by_digest = sort_by_digest_4_4;
9694 opti_type = OPTI_TYPE_ZERO_BYTE
9695 | OPTI_TYPE_NOT_ITERATED;
9696 dgst_pos0 = 0;
9697 dgst_pos1 = 1;
9698 dgst_pos2 = 2;
9699 dgst_pos3 = 3;
9700 break;
9701
9702 case 10600: hash_type = HASH_TYPE_SHA256;
9703 salt_type = SALT_TYPE_EMBEDDED;
9704 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9705 opts_type = OPTS_TYPE_PT_GENERATE_BE
9706 | OPTS_TYPE_ST_ADD80
9707 | OPTS_TYPE_ST_ADDBITS15
9708 | OPTS_TYPE_HASH_COPY;
9709 kern_type = KERN_TYPE_SHA256_PWSLT;
9710 dgst_size = DGST_SIZE_4_8;
9711 parse_func = pdf17l3_parse_hash;
9712 sort_by_digest = sort_by_digest_4_8;
9713 opti_type = OPTI_TYPE_ZERO_BYTE
9714 | OPTI_TYPE_PRECOMPUTE_INIT
9715 | OPTI_TYPE_PRECOMPUTE_MERKLE
9716 | OPTI_TYPE_EARLY_SKIP
9717 | OPTI_TYPE_NOT_ITERATED
9718 | OPTI_TYPE_APPENDED_SALT
9719 | OPTI_TYPE_RAW_HASH;
9720 dgst_pos0 = 3;
9721 dgst_pos1 = 7;
9722 dgst_pos2 = 2;
9723 dgst_pos3 = 6;
9724 break;
9725
9726 case 10700: hash_type = HASH_TYPE_PDFU32;
9727 salt_type = SALT_TYPE_EMBEDDED;
9728 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9729 opts_type = OPTS_TYPE_PT_GENERATE_LE
9730 | OPTS_TYPE_HASH_COPY;
9731 kern_type = KERN_TYPE_PDF17L8;
9732 dgst_size = DGST_SIZE_4_8;
9733 parse_func = pdf17l8_parse_hash;
9734 sort_by_digest = sort_by_digest_4_8;
9735 opti_type = OPTI_TYPE_ZERO_BYTE
9736 | OPTI_TYPE_NOT_ITERATED;
9737 dgst_pos0 = 0;
9738 dgst_pos1 = 1;
9739 dgst_pos2 = 2;
9740 dgst_pos3 = 3;
9741 break;
9742
9743 case 10800: hash_type = HASH_TYPE_SHA384;
9744 salt_type = SALT_TYPE_NONE;
9745 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9746 opts_type = OPTS_TYPE_PT_GENERATE_BE
9747 | OPTS_TYPE_PT_ADD80
9748 | OPTS_TYPE_PT_ADDBITS15;
9749 kern_type = KERN_TYPE_SHA384;
9750 dgst_size = DGST_SIZE_8_8;
9751 parse_func = sha384_parse_hash;
9752 sort_by_digest = sort_by_digest_8_8;
9753 opti_type = OPTI_TYPE_ZERO_BYTE
9754 | OPTI_TYPE_PRECOMPUTE_INIT
9755 | OPTI_TYPE_PRECOMPUTE_MERKLE
9756 | OPTI_TYPE_EARLY_SKIP
9757 | OPTI_TYPE_NOT_ITERATED
9758 | OPTI_TYPE_NOT_SALTED
9759 | OPTI_TYPE_USES_BITS_64
9760 | OPTI_TYPE_RAW_HASH;
9761 dgst_pos0 = 6;
9762 dgst_pos1 = 7;
9763 dgst_pos2 = 4;
9764 dgst_pos3 = 5;
9765 break;
9766
9767 case 10900: hash_type = HASH_TYPE_PBKDF2_SHA256;
9768 salt_type = SALT_TYPE_EMBEDDED;
9769 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9770 opts_type = OPTS_TYPE_PT_GENERATE_LE
9771 | OPTS_TYPE_ST_BASE64
9772 | OPTS_TYPE_HASH_COPY;
9773 kern_type = KERN_TYPE_PBKDF2_SHA256;
9774 dgst_size = DGST_SIZE_4_32;
9775 parse_func = pbkdf2_sha256_parse_hash;
9776 sort_by_digest = sort_by_digest_4_32;
9777 opti_type = OPTI_TYPE_ZERO_BYTE;
9778 dgst_pos0 = 0;
9779 dgst_pos1 = 1;
9780 dgst_pos2 = 2;
9781 dgst_pos3 = 3;
9782 break;
9783
9784 case 11000: hash_type = HASH_TYPE_MD5;
9785 salt_type = SALT_TYPE_INTERN;
9786 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9787 opts_type = OPTS_TYPE_PT_GENERATE_LE
9788 | OPTS_TYPE_PT_ADD80;
9789 kern_type = KERN_TYPE_PRESTASHOP;
9790 dgst_size = DGST_SIZE_4_4;
9791 parse_func = prestashop_parse_hash;
9792 sort_by_digest = sort_by_digest_4_4;
9793 opti_type = OPTI_TYPE_ZERO_BYTE
9794 | OPTI_TYPE_PRECOMPUTE_INIT
9795 | OPTI_TYPE_NOT_ITERATED
9796 | OPTI_TYPE_PREPENDED_SALT;
9797 dgst_pos0 = 0;
9798 dgst_pos1 = 3;
9799 dgst_pos2 = 2;
9800 dgst_pos3 = 1;
9801 break;
9802
9803 case 11100: hash_type = HASH_TYPE_MD5;
9804 salt_type = SALT_TYPE_EMBEDDED;
9805 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9806 opts_type = OPTS_TYPE_PT_GENERATE_LE
9807 | OPTS_TYPE_ST_ADD80;
9808 kern_type = KERN_TYPE_POSTGRESQL_AUTH;
9809 dgst_size = DGST_SIZE_4_4;
9810 parse_func = postgresql_auth_parse_hash;
9811 sort_by_digest = sort_by_digest_4_4;
9812 opti_type = OPTI_TYPE_ZERO_BYTE
9813 | OPTI_TYPE_PRECOMPUTE_INIT
9814 | OPTI_TYPE_PRECOMPUTE_MERKLE
9815 | OPTI_TYPE_EARLY_SKIP;
9816 dgst_pos0 = 0;
9817 dgst_pos1 = 3;
9818 dgst_pos2 = 2;
9819 dgst_pos3 = 1;
9820 break;
9821
9822 case 11200: hash_type = HASH_TYPE_SHA1;
9823 salt_type = SALT_TYPE_EMBEDDED;
9824 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9825 opts_type = OPTS_TYPE_PT_GENERATE_BE
9826 | OPTS_TYPE_PT_ADD80
9827 | OPTS_TYPE_ST_HEX;
9828 kern_type = KERN_TYPE_MYSQL_AUTH;
9829 dgst_size = DGST_SIZE_4_5;
9830 parse_func = mysql_auth_parse_hash;
9831 sort_by_digest = sort_by_digest_4_5;
9832 opti_type = OPTI_TYPE_ZERO_BYTE
9833 | OPTI_TYPE_EARLY_SKIP;
9834 dgst_pos0 = 3;
9835 dgst_pos1 = 4;
9836 dgst_pos2 = 2;
9837 dgst_pos3 = 1;
9838 break;
9839
9840 case 11300: hash_type = HASH_TYPE_BITCOIN_WALLET;
9841 salt_type = SALT_TYPE_EMBEDDED;
9842 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9843 opts_type = OPTS_TYPE_PT_GENERATE_LE
9844 | OPTS_TYPE_ST_HEX
9845 | OPTS_TYPE_ST_ADD80;
9846 kern_type = KERN_TYPE_BITCOIN_WALLET;
9847 dgst_size = DGST_SIZE_4_4;
9848 parse_func = bitcoin_wallet_parse_hash;
9849 sort_by_digest = sort_by_digest_4_4;
9850 opti_type = OPTI_TYPE_ZERO_BYTE;
9851 dgst_pos0 = 0;
9852 dgst_pos1 = 1;
9853 dgst_pos2 = 2;
9854 dgst_pos3 = 3;
9855 break;
9856
9857 case 11400: hash_type = HASH_TYPE_MD5;
9858 salt_type = SALT_TYPE_EMBEDDED;
9859 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9860 opts_type = OPTS_TYPE_PT_GENERATE_LE
9861 | OPTS_TYPE_PT_ADD80
9862 | OPTS_TYPE_HASH_COPY;
9863 kern_type = KERN_TYPE_SIP_AUTH;
9864 dgst_size = DGST_SIZE_4_4;
9865 parse_func = sip_auth_parse_hash;
9866 sort_by_digest = sort_by_digest_4_4;
9867 opti_type = OPTI_TYPE_ZERO_BYTE;
9868 dgst_pos0 = 0;
9869 dgst_pos1 = 3;
9870 dgst_pos2 = 2;
9871 dgst_pos3 = 1;
9872 break;
9873
9874 case 11500: hash_type = HASH_TYPE_CRC32;
9875 salt_type = SALT_TYPE_INTERN;
9876 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9877 opts_type = OPTS_TYPE_PT_GENERATE_LE
9878 | OPTS_TYPE_ST_GENERATE_LE
9879 | OPTS_TYPE_ST_HEX;
9880 kern_type = KERN_TYPE_CRC32;
9881 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9882 parse_func = crc32_parse_hash;
9883 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9884 opti_type = OPTI_TYPE_ZERO_BYTE;
9885 dgst_pos0 = 0;
9886 dgst_pos1 = 1;
9887 dgst_pos2 = 2;
9888 dgst_pos3 = 3;
9889 break;
9890
9891 case 11600: hash_type = HASH_TYPE_AES;
9892 salt_type = SALT_TYPE_EMBEDDED;
9893 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9894 opts_type = OPTS_TYPE_PT_GENERATE_LE
9895 | OPTS_TYPE_PT_NEVERCRACK;
9896 kern_type = KERN_TYPE_SEVEN_ZIP;
9897 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9898 parse_func = seven_zip_parse_hash;
9899 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9900 opti_type = OPTI_TYPE_ZERO_BYTE;
9901 dgst_pos0 = 0;
9902 dgst_pos1 = 1;
9903 dgst_pos2 = 2;
9904 dgst_pos3 = 3;
9905 break;
9906
9907 case 11700: hash_type = HASH_TYPE_GOST_2012SBOG_256;
9908 salt_type = SALT_TYPE_NONE;
9909 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9910 opts_type = OPTS_TYPE_PT_GENERATE_LE
9911 | OPTS_TYPE_PT_ADD01;
9912 kern_type = KERN_TYPE_GOST_2012SBOG_256;
9913 dgst_size = DGST_SIZE_4_8;
9914 parse_func = gost2012sbog_256_parse_hash;
9915 sort_by_digest = sort_by_digest_4_8;
9916 opti_type = OPTI_TYPE_ZERO_BYTE;
9917 dgst_pos0 = 0;
9918 dgst_pos1 = 1;
9919 dgst_pos2 = 2;
9920 dgst_pos3 = 3;
9921 break;
9922
9923 case 11800: hash_type = HASH_TYPE_GOST_2012SBOG_512;
9924 salt_type = SALT_TYPE_NONE;
9925 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9926 opts_type = OPTS_TYPE_PT_GENERATE_LE
9927 | OPTS_TYPE_PT_ADD01;
9928 kern_type = KERN_TYPE_GOST_2012SBOG_512;
9929 dgst_size = DGST_SIZE_4_16;
9930 parse_func = gost2012sbog_512_parse_hash;
9931 sort_by_digest = sort_by_digest_4_16;
9932 opti_type = OPTI_TYPE_ZERO_BYTE;
9933 dgst_pos0 = 0;
9934 dgst_pos1 = 1;
9935 dgst_pos2 = 2;
9936 dgst_pos3 = 3;
9937 break;
9938
9939 case 11900: hash_type = HASH_TYPE_PBKDF2_MD5;
9940 salt_type = SALT_TYPE_EMBEDDED;
9941 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9942 opts_type = OPTS_TYPE_PT_GENERATE_LE
9943 | OPTS_TYPE_ST_BASE64
9944 | OPTS_TYPE_HASH_COPY;
9945 kern_type = KERN_TYPE_PBKDF2_MD5;
9946 dgst_size = DGST_SIZE_4_32;
9947 parse_func = pbkdf2_md5_parse_hash;
9948 sort_by_digest = sort_by_digest_4_32;
9949 opti_type = OPTI_TYPE_ZERO_BYTE;
9950 dgst_pos0 = 0;
9951 dgst_pos1 = 1;
9952 dgst_pos2 = 2;
9953 dgst_pos3 = 3;
9954 break;
9955
9956 case 12000: hash_type = HASH_TYPE_PBKDF2_SHA1;
9957 salt_type = SALT_TYPE_EMBEDDED;
9958 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9959 opts_type = OPTS_TYPE_PT_GENERATE_LE
9960 | OPTS_TYPE_ST_BASE64
9961 | OPTS_TYPE_HASH_COPY;
9962 kern_type = KERN_TYPE_PBKDF2_SHA1;
9963 dgst_size = DGST_SIZE_4_32;
9964 parse_func = pbkdf2_sha1_parse_hash;
9965 sort_by_digest = sort_by_digest_4_32;
9966 opti_type = OPTI_TYPE_ZERO_BYTE;
9967 dgst_pos0 = 0;
9968 dgst_pos1 = 1;
9969 dgst_pos2 = 2;
9970 dgst_pos3 = 3;
9971 break;
9972
9973 case 12100: hash_type = HASH_TYPE_PBKDF2_SHA512;
9974 salt_type = SALT_TYPE_EMBEDDED;
9975 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9976 opts_type = OPTS_TYPE_PT_GENERATE_LE
9977 | OPTS_TYPE_ST_BASE64
9978 | OPTS_TYPE_HASH_COPY;
9979 kern_type = KERN_TYPE_PBKDF2_SHA512;
9980 dgst_size = DGST_SIZE_8_16;
9981 parse_func = pbkdf2_sha512_parse_hash;
9982 sort_by_digest = sort_by_digest_8_16;
9983 opti_type = OPTI_TYPE_ZERO_BYTE
9984 | OPTI_TYPE_USES_BITS_64;
9985 dgst_pos0 = 0;
9986 dgst_pos1 = 1;
9987 dgst_pos2 = 2;
9988 dgst_pos3 = 3;
9989 break;
9990
9991 case 12200: hash_type = HASH_TYPE_ECRYPTFS;
9992 salt_type = SALT_TYPE_EMBEDDED;
9993 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9994 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9995 kern_type = KERN_TYPE_ECRYPTFS;
9996 dgst_size = DGST_SIZE_8_8;
9997 parse_func = ecryptfs_parse_hash;
9998 sort_by_digest = sort_by_digest_8_8;
9999 opti_type = OPTI_TYPE_ZERO_BYTE
10000 | OPTI_TYPE_USES_BITS_64;
10001 dgst_pos0 = 0;
10002 dgst_pos1 = 1;
10003 dgst_pos2 = 2;
10004 dgst_pos3 = 3;
10005 break;
10006
10007 case 12300: hash_type = HASH_TYPE_ORACLET;
10008 salt_type = SALT_TYPE_EMBEDDED;
10009 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10010 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10011 kern_type = KERN_TYPE_ORACLET;
10012 dgst_size = DGST_SIZE_8_16;
10013 parse_func = oraclet_parse_hash;
10014 sort_by_digest = sort_by_digest_8_16;
10015 opti_type = OPTI_TYPE_ZERO_BYTE
10016 | OPTI_TYPE_USES_BITS_64;
10017 dgst_pos0 = 0;
10018 dgst_pos1 = 1;
10019 dgst_pos2 = 2;
10020 dgst_pos3 = 3;
10021 break;
10022
10023 case 12400: hash_type = HASH_TYPE_BSDICRYPT;
10024 salt_type = SALT_TYPE_EMBEDDED;
10025 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10026 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10027 kern_type = KERN_TYPE_BSDICRYPT;
10028 dgst_size = DGST_SIZE_4_4;
10029 parse_func = bsdicrypt_parse_hash;
10030 sort_by_digest = sort_by_digest_4_4;
10031 opti_type = OPTI_TYPE_ZERO_BYTE
10032 | OPTI_TYPE_PRECOMPUTE_PERMUT;
10033 dgst_pos0 = 0;
10034 dgst_pos1 = 1;
10035 dgst_pos2 = 2;
10036 dgst_pos3 = 3;
10037 break;
10038
10039 case 12500: hash_type = HASH_TYPE_RAR3HP;
10040 salt_type = SALT_TYPE_EMBEDDED;
10041 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10042 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10043 kern_type = KERN_TYPE_RAR3;
10044 dgst_size = DGST_SIZE_4_4;
10045 parse_func = rar3hp_parse_hash;
10046 sort_by_digest = sort_by_digest_4_4;
10047 opti_type = OPTI_TYPE_ZERO_BYTE;
10048 dgst_pos0 = 0;
10049 dgst_pos1 = 1;
10050 dgst_pos2 = 2;
10051 dgst_pos3 = 3;
10052 break;
10053
10054 case 12600: hash_type = HASH_TYPE_SHA256;
10055 salt_type = SALT_TYPE_INTERN;
10056 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10057 opts_type = OPTS_TYPE_PT_GENERATE_BE
10058 | OPTS_TYPE_PT_ADD80;
10059 kern_type = KERN_TYPE_CF10;
10060 dgst_size = DGST_SIZE_4_8;
10061 parse_func = cf10_parse_hash;
10062 sort_by_digest = sort_by_digest_4_8;
10063 opti_type = OPTI_TYPE_ZERO_BYTE
10064 | OPTI_TYPE_PRECOMPUTE_INIT
10065 | OPTI_TYPE_EARLY_SKIP
10066 | OPTI_TYPE_NOT_ITERATED;
10067 dgst_pos0 = 3;
10068 dgst_pos1 = 7;
10069 dgst_pos2 = 2;
10070 dgst_pos3 = 6;
10071 break;
10072
10073 case 12700: hash_type = HASH_TYPE_AES;
10074 salt_type = SALT_TYPE_EMBEDDED;
10075 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10076 opts_type = OPTS_TYPE_PT_GENERATE_LE
10077 | OPTS_TYPE_HASH_COPY;
10078 kern_type = KERN_TYPE_MYWALLET;
10079 dgst_size = DGST_SIZE_4_5; // because kernel uses _SHA1_
10080 parse_func = mywallet_parse_hash;
10081 sort_by_digest = sort_by_digest_4_5;
10082 opti_type = OPTI_TYPE_ZERO_BYTE;
10083 dgst_pos0 = 0;
10084 dgst_pos1 = 1;
10085 dgst_pos2 = 2;
10086 dgst_pos3 = 3;
10087 break;
10088
10089 case 12800: hash_type = HASH_TYPE_PBKDF2_SHA256;
10090 salt_type = SALT_TYPE_EMBEDDED;
10091 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10092 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10093 kern_type = KERN_TYPE_MS_DRSR;
10094 dgst_size = DGST_SIZE_4_8;
10095 parse_func = ms_drsr_parse_hash;
10096 sort_by_digest = sort_by_digest_4_8;
10097 opti_type = OPTI_TYPE_ZERO_BYTE;
10098 dgst_pos0 = 0;
10099 dgst_pos1 = 1;
10100 dgst_pos2 = 2;
10101 dgst_pos3 = 3;
10102 break;
10103
10104 case 12900: hash_type = HASH_TYPE_PBKDF2_SHA256;
10105 salt_type = SALT_TYPE_EMBEDDED;
10106 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10107 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10108 kern_type = KERN_TYPE_ANDROIDFDE_SAMSUNG;
10109 dgst_size = DGST_SIZE_4_8;
10110 parse_func = androidfde_samsung_parse_hash;
10111 sort_by_digest = sort_by_digest_4_8;
10112 opti_type = OPTI_TYPE_ZERO_BYTE;
10113 dgst_pos0 = 0;
10114 dgst_pos1 = 1;
10115 dgst_pos2 = 2;
10116 dgst_pos3 = 3;
10117 break;
10118
10119 case 13000: hash_type = HASH_TYPE_PBKDF2_SHA256;
10120 salt_type = SALT_TYPE_EMBEDDED;
10121 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10122 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10123 kern_type = KERN_TYPE_RAR5;
10124 dgst_size = DGST_SIZE_4_4;
10125 parse_func = rar5_parse_hash;
10126 sort_by_digest = sort_by_digest_4_4;
10127 opti_type = OPTI_TYPE_ZERO_BYTE;
10128 dgst_pos0 = 0;
10129 dgst_pos1 = 1;
10130 dgst_pos2 = 2;
10131 dgst_pos3 = 3;
10132 break;
10133
10134 case 13100: hash_type = HASH_TYPE_KRB5TGS;
10135 salt_type = SALT_TYPE_EMBEDDED;
10136 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10137 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10138 kern_type = KERN_TYPE_KRB5TGS;
10139 dgst_size = DGST_SIZE_4_4;
10140 parse_func = krb5tgs_parse_hash;
10141 sort_by_digest = sort_by_digest_4_4;
10142 opti_type = OPTI_TYPE_ZERO_BYTE
10143 | OPTI_TYPE_NOT_ITERATED;
10144 dgst_pos0 = 0;
10145 dgst_pos1 = 1;
10146 dgst_pos2 = 2;
10147 dgst_pos3 = 3;
10148 break;
10149
10150 case 13200: hash_type = HASH_TYPE_AES;
10151 salt_type = SALT_TYPE_EMBEDDED;
10152 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10153 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10154 kern_type = KERN_TYPE_AXCRYPT;
10155 dgst_size = DGST_SIZE_4_4;
10156 parse_func = axcrypt_parse_hash;
10157 sort_by_digest = sort_by_digest_4_4;
10158 opti_type = OPTI_TYPE_ZERO_BYTE;
10159 dgst_pos0 = 0;
10160 dgst_pos1 = 1;
10161 dgst_pos2 = 2;
10162 dgst_pos3 = 3;
10163 break;
10164
10165 case 13300: hash_type = HASH_TYPE_SHA1;
10166 salt_type = SALT_TYPE_NONE;
10167 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10168 opts_type = OPTS_TYPE_PT_GENERATE_BE
10169 | OPTS_TYPE_PT_ADD80
10170 | OPTS_TYPE_PT_ADDBITS15;
10171 kern_type = KERN_TYPE_SHA1_AXCRYPT;
10172 dgst_size = DGST_SIZE_4_5;
10173 parse_func = sha1axcrypt_parse_hash;
10174 sort_by_digest = sort_by_digest_4_5;
10175 opti_type = OPTI_TYPE_ZERO_BYTE
10176 | OPTI_TYPE_PRECOMPUTE_INIT
10177 | OPTI_TYPE_EARLY_SKIP
10178 | OPTI_TYPE_NOT_ITERATED
10179 | OPTI_TYPE_NOT_SALTED;
10180 dgst_pos0 = 0;
10181 dgst_pos1 = 4;
10182 dgst_pos2 = 3;
10183 dgst_pos3 = 2;
10184 break;
10185
10186 case 13400: hash_type = HASH_TYPE_AES;
10187 salt_type = SALT_TYPE_EMBEDDED;
10188 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10189 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10190 kern_type = KERN_TYPE_KEEPASS;
10191 dgst_size = DGST_SIZE_4_4;
10192 parse_func = keepass_parse_hash;
10193 sort_by_digest = sort_by_digest_4_4;
10194 opti_type = OPTI_TYPE_ZERO_BYTE;
10195 dgst_pos0 = 0;
10196 dgst_pos1 = 1;
10197 dgst_pos2 = 2;
10198 dgst_pos3 = 3;
10199 break;
10200
10201 case 13500: hash_type = HASH_TYPE_SHA1;
10202 salt_type = SALT_TYPE_EMBEDDED;
10203 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10204 opts_type = OPTS_TYPE_PT_GENERATE_BE
10205 | OPTS_TYPE_PT_UNICODE
10206 | OPTS_TYPE_PT_ADD80;
10207 kern_type = KERN_TYPE_PSTOKEN;
10208 dgst_size = DGST_SIZE_4_5;
10209 parse_func = pstoken_parse_hash;
10210 sort_by_digest = sort_by_digest_4_5;
10211 opti_type = OPTI_TYPE_ZERO_BYTE
10212 | OPTI_TYPE_PRECOMPUTE_INIT
10213 | OPTI_TYPE_EARLY_SKIP
10214 | OPTI_TYPE_NOT_ITERATED
10215 | OPTI_TYPE_PREPENDED_SALT
10216 | OPTI_TYPE_RAW_HASH;
10217 dgst_pos0 = 3;
10218 dgst_pos1 = 4;
10219 dgst_pos2 = 2;
10220 dgst_pos3 = 1;
10221 break;
10222
10223 case 13600: hash_type = HASH_TYPE_PBKDF2_SHA1;
10224 salt_type = SALT_TYPE_EMBEDDED;
10225 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10226 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10227 kern_type = KERN_TYPE_ZIP2;
10228 dgst_size = DGST_SIZE_4_4;
10229 parse_func = zip2_parse_hash;
10230 sort_by_digest = sort_by_digest_4_4;
10231 opti_type = OPTI_TYPE_ZERO_BYTE;
10232 dgst_pos0 = 0;
10233 dgst_pos1 = 1;
10234 dgst_pos2 = 2;
10235 dgst_pos3 = 3;
10236 break;
10237
10238 default: usage_mini_print (PROGNAME); return (-1);
10239 }
10240
10241 /**
10242 * parser
10243 */
10244
10245 data.parse_func = parse_func;
10246
10247 /**
10248 * misc stuff
10249 */
10250
10251 if (hex_salt)
10252 {
10253 if (salt_type == SALT_TYPE_INTERN)
10254 {
10255 opts_type |= OPTS_TYPE_ST_HEX;
10256 }
10257 else
10258 {
10259 log_error ("ERROR: Parameter hex-salt not valid for hash-type %u", hash_mode);
10260
10261 return (-1);
10262 }
10263 }
10264
10265 uint isSalted = ((salt_type == SALT_TYPE_INTERN)
10266 | (salt_type == SALT_TYPE_EXTERN)
10267 | (salt_type == SALT_TYPE_EMBEDDED)
10268 | (salt_type == SALT_TYPE_VIRTUAL));
10269
10270 sort_by_digest = sort_by_digest_p0p1; // overruled by 64 bit digest
10271
10272 data.hash_type = hash_type;
10273 data.attack_mode = attack_mode;
10274 data.attack_kern = attack_kern;
10275 data.attack_exec = attack_exec;
10276 data.kern_type = kern_type;
10277 data.opts_type = opts_type;
10278 data.dgst_size = dgst_size;
10279 data.salt_type = salt_type;
10280 data.isSalted = isSalted;
10281 data.sort_by_digest = sort_by_digest;
10282 data.dgst_pos0 = dgst_pos0;
10283 data.dgst_pos1 = dgst_pos1;
10284 data.dgst_pos2 = dgst_pos2;
10285 data.dgst_pos3 = dgst_pos3;
10286
10287 esalt_size = 0;
10288
10289 switch (hash_mode)
10290 {
10291 case 2500: esalt_size = sizeof (wpa_t); break;
10292 case 5300: esalt_size = sizeof (ikepsk_t); break;
10293 case 5400: esalt_size = sizeof (ikepsk_t); break;
10294 case 5500: esalt_size = sizeof (netntlm_t); break;
10295 case 5600: esalt_size = sizeof (netntlm_t); break;
10296 case 6211: esalt_size = sizeof (tc_t); break;
10297 case 6212: esalt_size = sizeof (tc_t); break;
10298 case 6213: esalt_size = sizeof (tc_t); break;
10299 case 6221: esalt_size = sizeof (tc_t); break;
10300 case 6222: esalt_size = sizeof (tc_t); break;
10301 case 6223: esalt_size = sizeof (tc_t); break;
10302 case 6231: esalt_size = sizeof (tc_t); break;
10303 case 6232: esalt_size = sizeof (tc_t); break;
10304 case 6233: esalt_size = sizeof (tc_t); break;
10305 case 6241: esalt_size = sizeof (tc_t); break;
10306 case 6242: esalt_size = sizeof (tc_t); break;
10307 case 6243: esalt_size = sizeof (tc_t); break;
10308 case 6600: esalt_size = sizeof (agilekey_t); break;
10309 case 7100: esalt_size = sizeof (pbkdf2_sha512_t); break;
10310 case 7200: esalt_size = sizeof (pbkdf2_sha512_t); break;
10311 case 7300: esalt_size = sizeof (rakp_t); break;
10312 case 7500: esalt_size = sizeof (krb5pa_t); break;
10313 case 8200: esalt_size = sizeof (cloudkey_t); break;
10314 case 8800: esalt_size = sizeof (androidfde_t); break;
10315 case 9200: esalt_size = sizeof (pbkdf2_sha256_t); break;
10316 case 9400: esalt_size = sizeof (office2007_t); break;
10317 case 9500: esalt_size = sizeof (office2010_t); break;
10318 case 9600: esalt_size = sizeof (office2013_t); break;
10319 case 9700: esalt_size = sizeof (oldoffice01_t); break;
10320 case 9710: esalt_size = sizeof (oldoffice01_t); break;
10321 case 9720: esalt_size = sizeof (oldoffice01_t); break;
10322 case 9800: esalt_size = sizeof (oldoffice34_t); break;
10323 case 9810: esalt_size = sizeof (oldoffice34_t); break;
10324 case 9820: esalt_size = sizeof (oldoffice34_t); break;
10325 case 10000: esalt_size = sizeof (pbkdf2_sha256_t); break;
10326 case 10200: esalt_size = sizeof (cram_md5_t); break;
10327 case 10400: esalt_size = sizeof (pdf_t); break;
10328 case 10410: esalt_size = sizeof (pdf_t); break;
10329 case 10420: esalt_size = sizeof (pdf_t); break;
10330 case 10500: esalt_size = sizeof (pdf_t); break;
10331 case 10600: esalt_size = sizeof (pdf_t); break;
10332 case 10700: esalt_size = sizeof (pdf_t); break;
10333 case 10900: esalt_size = sizeof (pbkdf2_sha256_t); break;
10334 case 11300: esalt_size = sizeof (bitcoin_wallet_t); break;
10335 case 11400: esalt_size = sizeof (sip_t); break;
10336 case 11600: esalt_size = sizeof (seven_zip_t); break;
10337 case 11900: esalt_size = sizeof (pbkdf2_md5_t); break;
10338 case 12000: esalt_size = sizeof (pbkdf2_sha1_t); break;
10339 case 12100: esalt_size = sizeof (pbkdf2_sha512_t); break;
10340 case 13000: esalt_size = sizeof (rar5_t); break;
10341 case 13100: esalt_size = sizeof (krb5tgs_t); break;
10342 case 13400: esalt_size = sizeof (keepass_t); break;
10343 case 13500: esalt_size = sizeof (pstoken_t); break;
10344 case 13600: esalt_size = sizeof (zip2_t); break;
10345 }
10346
10347 data.esalt_size = esalt_size;
10348
10349 /**
10350 * choose dictionary parser
10351 */
10352
10353 if (hash_type == HASH_TYPE_LM)
10354 {
10355 get_next_word_func = get_next_word_lm;
10356 }
10357 else if (opts_type & OPTS_TYPE_PT_UPPER)
10358 {
10359 get_next_word_func = get_next_word_uc;
10360 }
10361 else
10362 {
10363 get_next_word_func = get_next_word_std;
10364 }
10365
10366 /**
10367 * dictstat
10368 */
10369
10370 dictstat_t *dictstat_base = (dictstat_t *) mycalloc (MAX_DICTSTAT, sizeof (dictstat_t));
10371
10372 #ifdef _POSIX
10373 size_t dictstat_nmemb = 0;
10374 #endif
10375
10376 #ifdef _WIN
10377 uint dictstat_nmemb = 0;
10378 #endif
10379
10380 char dictstat[256] = { 0 };
10381
10382 FILE *dictstat_fp = NULL;
10383
10384 if (keyspace == 0)
10385 {
10386 snprintf (dictstat, sizeof (dictstat) - 1, "%s/%s", profile_dir, DICTSTAT_FILENAME);
10387
10388 dictstat_fp = fopen (dictstat, "rb");
10389
10390 if (dictstat_fp)
10391 {
10392 #ifdef _POSIX
10393 struct stat tmpstat;
10394
10395 fstat (fileno (dictstat_fp), &tmpstat);
10396 #endif
10397
10398 #ifdef _WIN
10399 struct stat64 tmpstat;
10400
10401 _fstat64 (fileno (dictstat_fp), &tmpstat);
10402 #endif
10403
10404 if (tmpstat.st_mtime < COMPTIME)
10405 {
10406 /* with v0.15 the format changed so we have to ensure user is using a good version
10407 since there is no version-header in the dictstat file */
10408
10409 fclose (dictstat_fp);
10410
10411 unlink (dictstat);
10412 }
10413 else
10414 {
10415 while (!feof (dictstat_fp))
10416 {
10417 dictstat_t d;
10418
10419 if (fread (&d, sizeof (dictstat_t), 1, dictstat_fp) == 0) continue;
10420
10421 lsearch (&d, dictstat_base, &dictstat_nmemb, sizeof (dictstat_t), sort_by_dictstat);
10422
10423 if (dictstat_nmemb == (MAX_DICTSTAT - 1000))
10424 {
10425 log_error ("ERROR: There are too many entries in the %s database. You have to remove/rename it.", dictstat);
10426
10427 return -1;
10428 }
10429 }
10430
10431 fclose (dictstat_fp);
10432 }
10433 }
10434 }
10435
10436 /**
10437 * potfile
10438 */
10439
10440 char potfile[256] = { 0 };
10441
10442 if (potfile_path == NULL)
10443 {
10444 snprintf (potfile, sizeof (potfile) - 1, "%s/%s", profile_dir, POTFILE_FILENAME);
10445 }
10446 else
10447 {
10448 strncpy (potfile, potfile_path, sizeof (potfile) - 1);
10449 }
10450
10451 data.pot_fp = NULL;
10452
10453 FILE *out_fp = NULL;
10454 FILE *pot_fp = NULL;
10455
10456 if (show == 1 || left == 1)
10457 {
10458 pot_fp = fopen (potfile, "rb");
10459
10460 if (pot_fp == NULL)
10461 {
10462 log_error ("ERROR: %s: %s", potfile, strerror (errno));
10463
10464 return (-1);
10465 }
10466
10467 if (outfile != NULL)
10468 {
10469 if ((out_fp = fopen (outfile, "ab")) == NULL)
10470 {
10471 log_error ("ERROR: %s: %s", outfile, strerror (errno));
10472
10473 fclose (pot_fp);
10474
10475 return (-1);
10476 }
10477 }
10478 else
10479 {
10480 out_fp = stdout;
10481 }
10482 }
10483 else
10484 {
10485 if (potfile_disable == 0)
10486 {
10487 pot_fp = fopen (potfile, "ab");
10488
10489 if (pot_fp == NULL)
10490 {
10491 log_error ("ERROR: %s: %s", potfile, strerror (errno));
10492
10493 return (-1);
10494 }
10495
10496 data.pot_fp = pot_fp;
10497 }
10498 }
10499
10500 pot_t *pot = NULL;
10501
10502 uint pot_cnt = 0;
10503 uint pot_avail = 0;
10504
10505 if (show == 1 || left == 1)
10506 {
10507 SUPPRESS_OUTPUT = 1;
10508
10509 pot_avail = count_lines (pot_fp);
10510
10511 rewind (pot_fp);
10512
10513 pot = (pot_t *) mycalloc (pot_avail, sizeof (pot_t));
10514
10515 uint pot_hashes_avail = 0;
10516
10517 uint line_num = 0;
10518
10519 char *line_buf = (char *) mymalloc (HCBUFSIZ);
10520
10521 while (!feof (pot_fp))
10522 {
10523 line_num++;
10524
10525 int line_len = fgetl (pot_fp, line_buf);
10526
10527 if (line_len == 0) continue;
10528
10529 char *plain_buf = line_buf + line_len;
10530
10531 pot_t *pot_ptr = &pot[pot_cnt];
10532
10533 hash_t *hashes_buf = &pot_ptr->hash;
10534
10535 // we do not initialize all hashes_buf->digest etc at the beginning, since many lines may not be
10536 // valid lines of this specific hash type (otherwise it would be more waste of memory than gain)
10537
10538 if (pot_cnt == pot_hashes_avail)
10539 {
10540 uint pos = 0;
10541
10542 for (pos = 0; pos < INCR_POT; pos++)
10543 {
10544 if ((pot_cnt + pos) >= pot_avail) break;
10545
10546 pot_t *tmp_pot = &pot[pot_cnt + pos];
10547
10548 hash_t *tmp_hash = &tmp_pot->hash;
10549
10550 tmp_hash->digest = mymalloc (dgst_size);
10551
10552 if (isSalted)
10553 {
10554 tmp_hash->salt = (salt_t *) mymalloc (sizeof (salt_t));
10555 }
10556
10557 if (esalt_size)
10558 {
10559 tmp_hash->esalt = mymalloc (esalt_size);
10560 }
10561
10562 pot_hashes_avail++;
10563 }
10564 }
10565
10566 int plain_len = 0;
10567
10568 int parser_status;
10569
10570 int iter = MAX_CUT_TRIES;
10571
10572 do
10573 {
10574 for (int i = line_len - 1; i; i--, plain_len++, plain_buf--, line_len--)
10575 {
10576 if (line_buf[i] == ':')
10577 {
10578 line_len--;
10579
10580 break;
10581 }
10582 }
10583
10584 if (data.hash_mode != 2500)
10585 {
10586 parser_status = parse_func (line_buf, line_len, hashes_buf);
10587 }
10588 else
10589 {
10590 int max_salt_size = sizeof (hashes_buf->salt->salt_buf);
10591
10592 if (line_len > max_salt_size)
10593 {
10594 parser_status = PARSER_GLOBAL_LENGTH;
10595 }
10596 else
10597 {
10598 memset (&hashes_buf->salt->salt_buf, 0, max_salt_size);
10599
10600 memcpy (&hashes_buf->salt->salt_buf, line_buf, line_len);
10601
10602 hashes_buf->salt->salt_len = line_len;
10603
10604 parser_status = PARSER_OK;
10605 }
10606 }
10607
10608 // if NOT parsed without error, we add the ":" to the plain
10609
10610 if (parser_status == PARSER_GLOBAL_LENGTH || parser_status == PARSER_HASH_LENGTH || parser_status == PARSER_SALT_LENGTH)
10611 {
10612 plain_len++;
10613 plain_buf--;
10614 }
10615
10616 } while ((parser_status == PARSER_GLOBAL_LENGTH || parser_status == PARSER_HASH_LENGTH || parser_status == PARSER_SALT_LENGTH) && --iter);
10617
10618 if (parser_status < PARSER_GLOBAL_ZERO)
10619 {
10620 // log_info ("WARNING: Potfile '%s' in line %u (%s): %s", potfile, line_num, line_buf, strparser (parser_status));
10621
10622 continue;
10623 }
10624
10625 if (plain_len >= 255) continue;
10626
10627 memcpy (pot_ptr->plain_buf, plain_buf, plain_len);
10628
10629 pot_ptr->plain_len = plain_len;
10630
10631 pot_cnt++;
10632 }
10633
10634 myfree (line_buf);
10635
10636 fclose (pot_fp);
10637
10638 SUPPRESS_OUTPUT = 0;
10639
10640 qsort (pot, pot_cnt, sizeof (pot_t), sort_by_pot);
10641 }
10642
10643 /**
10644 * word len
10645 */
10646
10647 uint pw_min = PW_MIN;
10648 uint pw_max = PW_MAX;
10649
10650 switch (hash_mode)
10651 {
10652 case 125: if (pw_max > 32) pw_max = 32;
10653 break;
10654 case 400: if (pw_max > 40) pw_max = 40;
10655 break;
10656 case 500: if (pw_max > 16) pw_max = 16;
10657 break;
10658 case 1500: if (pw_max > 8) pw_max = 8;
10659 break;
10660 case 1600: if (pw_max > 16) pw_max = 16;
10661 break;
10662 case 1800: if (pw_max > 16) pw_max = 16;
10663 break;
10664 case 2100: if (pw_max > 16) pw_max = 16;
10665 break;
10666 case 2500: if (pw_min < 8) pw_min = 8;
10667 break;
10668 case 3000: if (pw_max > 7) pw_max = 7;
10669 break;
10670 case 5200: if (pw_max > 24) pw_max = 24;
10671 break;
10672 case 5800: if (pw_max > 16) pw_max = 16;
10673 break;
10674 case 6300: if (pw_max > 16) pw_max = 16;
10675 break;
10676 case 7400: if (pw_max > 16) pw_max = 16;
10677 break;
10678 case 7900: if (pw_max > 48) pw_max = 48;
10679 break;
10680 case 8500: if (pw_max > 8) pw_max = 8;
10681 break;
10682 case 8600: if (pw_max > 16) pw_max = 16;
10683 break;
10684 case 9710: pw_min = 5;
10685 pw_max = 5;
10686 break;
10687 case 9810: pw_min = 5;
10688 pw_max = 5;
10689 break;
10690 case 10410: pw_min = 5;
10691 pw_max = 5;
10692 break;
10693 case 10300: if (pw_max < 3) pw_min = 3;
10694 if (pw_max > 40) pw_max = 40;
10695 break;
10696 case 10500: if (pw_max < 3) pw_min = 3;
10697 if (pw_max > 40) pw_max = 40;
10698 break;
10699 case 10700: if (pw_max > 16) pw_max = 16;
10700 break;
10701 case 11300: if (pw_max > 40) pw_max = 40;
10702 break;
10703 case 11600: if (pw_max > 32) pw_max = 32;
10704 break;
10705 case 12500: if (pw_max > 20) pw_max = 20;
10706 break;
10707 case 12800: if (pw_max > 24) pw_max = 24;
10708 break;
10709 }
10710
10711 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
10712 {
10713 switch (attack_kern)
10714 {
10715 case ATTACK_KERN_STRAIGHT: if (pw_max > PW_DICTMAX) pw_max = PW_DICTMAX1;
10716 break;
10717 case ATTACK_KERN_COMBI: if (pw_max > PW_DICTMAX) pw_max = PW_DICTMAX1;
10718 break;
10719 }
10720 }
10721
10722 /**
10723 * charsets : keep them together for more easy maintainnce
10724 */
10725
10726 cs_t mp_sys[6] = { { { 0 }, 0 } };
10727 cs_t mp_usr[4] = { { { 0 }, 0 } };
10728
10729 mp_setup_sys (mp_sys);
10730
10731 if (custom_charset_1) mp_setup_usr (mp_sys, mp_usr, custom_charset_1, 0);
10732 if (custom_charset_2) mp_setup_usr (mp_sys, mp_usr, custom_charset_2, 1);
10733 if (custom_charset_3) mp_setup_usr (mp_sys, mp_usr, custom_charset_3, 2);
10734 if (custom_charset_4) mp_setup_usr (mp_sys, mp_usr, custom_charset_4, 3);
10735
10736 /**
10737 * load hashes, part I: find input mode, count hashes
10738 */
10739
10740 uint hashlist_mode = 0;
10741 uint hashlist_format = HLFMT_HASHCAT;
10742
10743 uint hashes_avail = 0;
10744
10745 if (benchmark == 0)
10746 {
10747 struct stat f;
10748
10749 hashlist_mode = (stat (myargv[optind], &f) == 0) ? HL_MODE_FILE : HL_MODE_ARG;
10750
10751 if ((hash_mode == 2500) ||
10752 (hash_mode == 5200) ||
10753 ((hash_mode >= 6200) && (hash_mode <= 6299)) ||
10754 (hash_mode == 9000))
10755 {
10756 hashlist_mode = HL_MODE_ARG;
10757
10758 char *hashfile = myargv[optind];
10759
10760 data.hashfile = hashfile;
10761
10762 logfile_top_var_string ("target", hashfile);
10763 }
10764
10765 if (hashlist_mode == HL_MODE_ARG)
10766 {
10767 if (hash_mode == 2500)
10768 {
10769 struct stat st;
10770
10771 if (stat (data.hashfile, &st) == -1)
10772 {
10773 log_error ("ERROR: %s: %s", data.hashfile, strerror (errno));
10774
10775 return (-1);
10776 }
10777
10778 hashes_avail = st.st_size / sizeof (hccap_t);
10779 }
10780 else
10781 {
10782 hashes_avail = 1;
10783 }
10784 }
10785 else if (hashlist_mode == HL_MODE_FILE)
10786 {
10787 char *hashfile = myargv[optind];
10788
10789 data.hashfile = hashfile;
10790
10791 logfile_top_var_string ("target", hashfile);
10792
10793 FILE *fp = NULL;
10794
10795 if ((fp = fopen (hashfile, "rb")) == NULL)
10796 {
10797 log_error ("ERROR: %s: %s", hashfile, strerror (errno));
10798
10799 return (-1);
10800 }
10801
10802 if (data.quiet == 0) log_info_nn ("Counting lines in %s", hashfile);
10803
10804 hashes_avail = count_lines (fp);
10805
10806 rewind (fp);
10807
10808 if (hashes_avail == 0)
10809 {
10810 log_error ("ERROR: hashfile is empty or corrupt");
10811
10812 fclose (fp);
10813
10814 return (-1);
10815 }
10816
10817 hashlist_format = hlfmt_detect (fp, 100); // 100 = max numbers to "scan". could be hashes_avail, too
10818
10819 if ((remove == 1) && (hashlist_format != HLFMT_HASHCAT))
10820 {
10821 log_error ("ERROR: remove not supported in native hashfile-format mode");
10822
10823 fclose (fp);
10824
10825 return (-1);
10826 }
10827
10828 fclose (fp);
10829 }
10830 }
10831 else
10832 {
10833 hashlist_mode = HL_MODE_ARG;
10834
10835 hashes_avail = 1;
10836 }
10837
10838 if (hash_mode == 3000) hashes_avail *= 2;
10839
10840 data.hashlist_mode = hashlist_mode;
10841 data.hashlist_format = hashlist_format;
10842
10843 logfile_top_uint (hashlist_mode);
10844 logfile_top_uint (hashlist_format);
10845
10846 /**
10847 * load hashes, part II: allocate required memory, set pointers
10848 */
10849
10850 hash_t *hashes_buf = NULL;
10851 void *digests_buf = NULL;
10852 salt_t *salts_buf = NULL;
10853 void *esalts_buf = NULL;
10854
10855 hashes_buf = (hash_t *) mycalloc (hashes_avail, sizeof (hash_t));
10856
10857 digests_buf = (void *) mycalloc (hashes_avail, dgst_size);
10858
10859 if ((username && (remove || show)) || (opts_type & OPTS_TYPE_HASH_COPY))
10860 {
10861 u32 hash_pos;
10862
10863 for (hash_pos = 0; hash_pos < hashes_avail; hash_pos++)
10864 {
10865 hashinfo_t *hash_info = (hashinfo_t *) mymalloc (sizeof (hashinfo_t));
10866
10867 hashes_buf[hash_pos].hash_info = hash_info;
10868
10869 if (username && (remove || show || left))
10870 {
10871 hash_info->user = (user_t*) mymalloc (sizeof (user_t));
10872 }
10873
10874 if (benchmark)
10875 {
10876 hash_info->orighash = (char *) mymalloc (256);
10877 }
10878 }
10879 }
10880
10881 if (isSalted)
10882 {
10883 salts_buf = (salt_t *) mycalloc (hashes_avail, sizeof (salt_t));
10884
10885 if (esalt_size)
10886 {
10887 esalts_buf = (void *) mycalloc (hashes_avail, esalt_size);
10888 }
10889 }
10890 else
10891 {
10892 salts_buf = (salt_t *) mycalloc (1, sizeof (salt_t));
10893 }
10894
10895 for (uint hash_pos = 0; hash_pos < hashes_avail; hash_pos++)
10896 {
10897 hashes_buf[hash_pos].digest = ((char *) digests_buf) + (hash_pos * dgst_size);
10898
10899 if (isSalted)
10900 {
10901 hashes_buf[hash_pos].salt = &salts_buf[hash_pos];
10902
10903 if (esalt_size)
10904 {
10905 hashes_buf[hash_pos].esalt = ((char *) esalts_buf) + (hash_pos * esalt_size);
10906 }
10907 }
10908 else
10909 {
10910 hashes_buf[hash_pos].salt = &salts_buf[0];
10911 }
10912 }
10913
10914 /**
10915 * load hashes, part III: parse hashes or generate them if benchmark
10916 */
10917
10918 uint hashes_cnt = 0;
10919
10920 if (benchmark == 0)
10921 {
10922 if (keyspace == 1)
10923 {
10924 // useless to read hash file for keyspace, cheat a little bit w/ optind
10925 }
10926 else if (hashes_avail == 0)
10927 {
10928 }
10929 else if (hashlist_mode == HL_MODE_ARG)
10930 {
10931 char *input_buf = myargv[optind];
10932
10933 uint input_len = strlen (input_buf);
10934
10935 logfile_top_var_string ("target", input_buf);
10936
10937 char *hash_buf = NULL;
10938 int hash_len = 0;
10939
10940 hlfmt_hash (hashlist_format, input_buf, input_len, &hash_buf, &hash_len);
10941
10942 bool hash_fmt_error = 0;
10943
10944 if (hash_len < 1) hash_fmt_error = 1;
10945 if (hash_buf == NULL) hash_fmt_error = 1;
10946
10947 if (hash_fmt_error)
10948 {
10949 log_info ("WARNING: failed to parse hashes using the '%s' format", strhlfmt (hashlist_format));
10950 }
10951 else
10952 {
10953 if (opts_type & OPTS_TYPE_HASH_COPY)
10954 {
10955 hashinfo_t *hash_info_tmp = hashes_buf[hashes_cnt].hash_info;
10956
10957 hash_info_tmp->orighash = mystrdup (hash_buf);
10958 }
10959
10960 if (isSalted)
10961 {
10962 memset (hashes_buf[0].salt, 0, sizeof (salt_t));
10963 }
10964
10965 int parser_status = PARSER_OK;
10966
10967 if (hash_mode == 2500)
10968 {
10969 if (hash_len == 0)
10970 {
10971 log_error ("ERROR: hccap file not specified");
10972
10973 return (-1);
10974 }
10975
10976 hashlist_mode = HL_MODE_FILE;
10977
10978 data.hashlist_mode = hashlist_mode;
10979
10980 FILE *fp = fopen (hash_buf, "rb");
10981
10982 if (fp == NULL)
10983 {
10984 log_error ("ERROR: %s: %s", hash_buf, strerror (errno));
10985
10986 return (-1);
10987 }
10988
10989 if (hashes_avail < 1)
10990 {
10991 log_error ("ERROR: hccap file is empty or corrupt");
10992
10993 fclose (fp);
10994
10995 return (-1);
10996 }
10997
10998 uint hccap_size = sizeof (hccap_t);
10999
11000 char *in = (char *) mymalloc (hccap_size);
11001
11002 while (!feof (fp))
11003 {
11004 int n = fread (in, hccap_size, 1, fp);
11005
11006 if (n != 1)
11007 {
11008 if (hashes_cnt < 1) parser_status = PARSER_HCCAP_FILE_SIZE;
11009
11010 break;
11011 }
11012
11013 parser_status = parse_func (in, hccap_size, &hashes_buf[hashes_cnt]);
11014
11015 if (parser_status != PARSER_OK)
11016 {
11017 log_info ("WARNING: Hash '%s': %s", hash_buf, strparser (parser_status));
11018
11019 continue;
11020 }
11021
11022 // hack: append MAC1 and MAC2 s.t. in --show and --left the line matches with the .pot file format (i.e. ESSID:MAC1:MAC2)
11023
11024 if ((show == 1) || (left == 1))
11025 {
11026 salt_t *tmp_salt = hashes_buf[hashes_cnt].salt;
11027
11028 char *salt_ptr = (char *) tmp_salt->salt_buf;
11029
11030 int cur_pos = tmp_salt->salt_len;
11031 int rem_len = sizeof (hashes_buf[hashes_cnt].salt->salt_buf) - cur_pos;
11032
11033 wpa_t *wpa = (wpa_t *) hashes_buf[hashes_cnt].esalt;
11034
11035 // do the appending task
11036
11037 snprintf (salt_ptr + cur_pos,
11038 rem_len,
11039 ":%02x%02x%02x%02x%02x%02x:%02x%02x%02x%02x%02x%02x",
11040 wpa->orig_mac1[0],
11041 wpa->orig_mac1[1],
11042 wpa->orig_mac1[2],
11043 wpa->orig_mac1[3],
11044 wpa->orig_mac1[4],
11045 wpa->orig_mac1[5],
11046 wpa->orig_mac2[0],
11047 wpa->orig_mac2[1],
11048 wpa->orig_mac2[2],
11049 wpa->orig_mac2[3],
11050 wpa->orig_mac2[4],
11051 wpa->orig_mac2[5]);
11052
11053 // memset () the remaining part of the salt
11054
11055 cur_pos = tmp_salt->salt_len + 1 + 12 + 1 + 12;
11056 rem_len = sizeof (hashes_buf[hashes_cnt].salt->salt_buf) - cur_pos;
11057
11058 if (rem_len > 0) memset (salt_ptr + cur_pos, 0, rem_len);
11059
11060 tmp_salt->salt_len += 1 + 12 + 1 + 12;
11061 }
11062
11063 if (show == 1) handle_show_request (pot, pot_cnt, (char *) hashes_buf[hashes_cnt].salt->salt_buf, hashes_buf[hashes_cnt].salt->salt_len, &hashes_buf[hashes_cnt], sort_by_salt_buf, out_fp);
11064 if (left == 1) handle_left_request (pot, pot_cnt, (char *) hashes_buf[hashes_cnt].salt->salt_buf, hashes_buf[hashes_cnt].salt->salt_len, &hashes_buf[hashes_cnt], sort_by_salt_buf, out_fp);
11065
11066 hashes_cnt++;
11067 }
11068
11069 fclose (fp);
11070
11071 myfree (in);
11072 }
11073 else if (hash_mode == 3000)
11074 {
11075 if (hash_len == 32)
11076 {
11077 parser_status = parse_func (hash_buf, 16, &hashes_buf[hashes_cnt]);
11078
11079 hash_t *lm_hash_left = NULL;
11080
11081 if (parser_status == PARSER_OK)
11082 {
11083 lm_hash_left = &hashes_buf[hashes_cnt];
11084
11085 hashes_cnt++;
11086 }
11087 else
11088 {
11089 log_info ("WARNING: Hash '%s': %s", input_buf, strparser (parser_status));
11090 }
11091
11092 parser_status = parse_func (hash_buf + 16, 16, &hashes_buf[hashes_cnt]);
11093
11094 hash_t *lm_hash_right = NULL;
11095
11096 if (parser_status == PARSER_OK)
11097 {
11098 lm_hash_right = &hashes_buf[hashes_cnt];
11099
11100 hashes_cnt++;
11101 }
11102 else
11103 {
11104 log_info ("WARNING: Hash '%s': %s", input_buf, strparser (parser_status));
11105 }
11106
11107 // show / left
11108
11109 if ((lm_hash_left != NULL) && (lm_hash_right != NULL))
11110 {
11111 if (show == 1) handle_show_request_lm (pot, pot_cnt, input_buf, input_len, lm_hash_left, lm_hash_right, sort_by_pot, out_fp);
11112 if (left == 1) handle_left_request_lm (pot, pot_cnt, input_buf, input_len, lm_hash_left, lm_hash_right, sort_by_pot, out_fp);
11113 }
11114 }
11115 else
11116 {
11117 parser_status = parse_func (hash_buf, hash_len, &hashes_buf[hashes_cnt]);
11118
11119 if (parser_status == PARSER_OK)
11120 {
11121 if (show == 1) handle_show_request (pot, pot_cnt, input_buf, input_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11122 if (left == 1) handle_left_request (pot, pot_cnt, input_buf, input_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11123 }
11124
11125 if (parser_status == PARSER_OK)
11126 {
11127 hashes_cnt++;
11128 }
11129 else
11130 {
11131 log_info ("WARNING: Hash '%s': %s", input_buf, strparser (parser_status));
11132 }
11133 }
11134 }
11135 else
11136 {
11137 parser_status = parse_func (hash_buf, hash_len, &hashes_buf[hashes_cnt]);
11138
11139 if (parser_status == PARSER_OK)
11140 {
11141 if (show == 1) handle_show_request (pot, pot_cnt, input_buf, input_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11142 if (left == 1) handle_left_request (pot, pot_cnt, input_buf, input_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11143 }
11144
11145 if (parser_status == PARSER_OK)
11146 {
11147 hashes_cnt++;
11148 }
11149 else
11150 {
11151 log_info ("WARNING: Hash '%s': %s", input_buf, strparser (parser_status));
11152 }
11153 }
11154 }
11155 }
11156 else if (hashlist_mode == HL_MODE_FILE)
11157 {
11158 char *hashfile = data.hashfile;
11159
11160 FILE *fp;
11161
11162 if ((fp = fopen (hashfile, "rb")) == NULL)
11163 {
11164 log_error ("ERROR: %s: %s", hashfile, strerror (errno));
11165
11166 return (-1);
11167 }
11168
11169 uint line_num = 0;
11170
11171 char *line_buf = (char *) mymalloc (HCBUFSIZ);
11172
11173 while (!feof (fp))
11174 {
11175 line_num++;
11176
11177 int line_len = fgetl (fp, line_buf);
11178
11179 if (line_len == 0) continue;
11180
11181 char *hash_buf = NULL;
11182 int hash_len = 0;
11183
11184 hlfmt_hash (hashlist_format, line_buf, line_len, &hash_buf, &hash_len);
11185
11186 bool hash_fmt_error = 0;
11187
11188 if (hash_len < 1) hash_fmt_error = 1;
11189 if (hash_buf == NULL) hash_fmt_error = 1;
11190
11191 if (hash_fmt_error)
11192 {
11193 log_info ("WARNING: failed to parse hashes using the '%s' format", strhlfmt (hashlist_format));
11194
11195 continue;
11196 }
11197
11198 if (username)
11199 {
11200 char *user_buf = NULL;
11201 int user_len = 0;
11202
11203 hlfmt_user (hashlist_format, line_buf, line_len, &user_buf, &user_len);
11204
11205 if (remove || show)
11206 {
11207 user_t **user = &hashes_buf[hashes_cnt].hash_info->user;
11208
11209 *user = (user_t *) mymalloc (sizeof (user_t));
11210
11211 user_t *user_ptr = *user;
11212
11213 if (user_buf != NULL)
11214 {
11215 user_ptr->user_name = mystrdup (user_buf);
11216 }
11217 else
11218 {
11219 user_ptr->user_name = mystrdup ("");
11220 }
11221
11222 user_ptr->user_len = user_len;
11223 }
11224 }
11225
11226 if (opts_type & OPTS_TYPE_HASH_COPY)
11227 {
11228 hashinfo_t *hash_info_tmp = hashes_buf[hashes_cnt].hash_info;
11229
11230 hash_info_tmp->orighash = mystrdup (hash_buf);
11231 }
11232
11233 if (isSalted)
11234 {
11235 memset (hashes_buf[hashes_cnt].salt, 0, sizeof (salt_t));
11236 }
11237
11238 if (hash_mode == 3000)
11239 {
11240 if (hash_len == 32)
11241 {
11242 int parser_status = parse_func (hash_buf, 16, &hashes_buf[hashes_cnt]);
11243
11244 if (parser_status < PARSER_GLOBAL_ZERO)
11245 {
11246 log_info ("WARNING: Hashfile '%s' in line %u (%s): %s", data.hashfile, line_num, line_buf, strparser (parser_status));
11247
11248 continue;
11249 }
11250
11251 hash_t *lm_hash_left = &hashes_buf[hashes_cnt];
11252
11253 hashes_cnt++;
11254
11255 parser_status = parse_func (hash_buf + 16, 16, &hashes_buf[hashes_cnt]);
11256
11257 if (parser_status < PARSER_GLOBAL_ZERO)
11258 {
11259 log_info ("WARNING: Hashfile '%s' in line %u (%s): %s", data.hashfile, line_num, line_buf, strparser (parser_status));
11260
11261 continue;
11262 }
11263
11264 hash_t *lm_hash_right = &hashes_buf[hashes_cnt];
11265
11266 if (data.quiet == 0) if ((hashes_cnt % 0x20000) == 0) log_info_nn ("Parsed Hashes: %u/%u (%0.2f%%)", hashes_cnt, hashes_avail, ((float) hashes_cnt / hashes_avail) * 100);
11267
11268 hashes_cnt++;
11269
11270 // show / left
11271
11272 if (show == 1) handle_show_request_lm (pot, pot_cnt, line_buf, line_len, lm_hash_left, lm_hash_right, sort_by_pot, out_fp);
11273 if (left == 1) handle_left_request_lm (pot, pot_cnt, line_buf, line_len, lm_hash_left, lm_hash_right, sort_by_pot, out_fp);
11274 }
11275 else
11276 {
11277 int parser_status = parse_func (hash_buf, hash_len, &hashes_buf[hashes_cnt]);
11278
11279 if (parser_status < PARSER_GLOBAL_ZERO)
11280 {
11281 log_info ("WARNING: Hashfile '%s' in line %u (%s): %s", data.hashfile, line_num, line_buf, strparser (parser_status));
11282
11283 continue;
11284 }
11285
11286 if (data.quiet == 0) if ((hashes_cnt % 0x20000) == 0) log_info_nn ("Parsed Hashes: %u/%u (%0.2f%%)", hashes_cnt, hashes_avail, ((float) hashes_cnt / hashes_avail) * 100);
11287
11288 if (show == 1) handle_show_request (pot, pot_cnt, line_buf, line_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11289 if (left == 1) handle_left_request (pot, pot_cnt, line_buf, line_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11290
11291 hashes_cnt++;
11292 }
11293 }
11294 else
11295 {
11296 int parser_status = parse_func (hash_buf, hash_len, &hashes_buf[hashes_cnt]);
11297
11298 if (parser_status < PARSER_GLOBAL_ZERO)
11299 {
11300 log_info ("WARNING: Hashfile '%s' in line %u (%s): %s", data.hashfile, line_num, line_buf, strparser (parser_status));
11301
11302 continue;
11303 }
11304
11305 if (data.quiet == 0) if ((hashes_cnt % 0x20000) == 0) log_info_nn ("Parsed Hashes: %u/%u (%0.2f%%)", hashes_cnt, hashes_avail, ((float) hashes_cnt / hashes_avail) * 100);
11306
11307 if (show == 1) handle_show_request (pot, pot_cnt, line_buf, line_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11308 if (left == 1) handle_left_request (pot, pot_cnt, line_buf, line_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11309
11310 hashes_cnt++;
11311 }
11312 }
11313
11314 myfree (line_buf);
11315
11316 fclose (fp);
11317
11318 if (data.quiet == 0) log_info_nn ("Parsed Hashes: %u/%u (%0.2f%%)", hashes_avail, hashes_avail, 100.00);
11319
11320 if ((out_fp != NULL) && (out_fp != stdout)) fclose (out_fp);
11321 }
11322 }
11323 else
11324 {
11325 if (isSalted)
11326 {
11327 hashes_buf[0].salt->salt_len = 8;
11328
11329 // special salt handling
11330
11331 switch (hash_mode)
11332 {
11333 case 1500: hashes_buf[0].salt->salt_len = 2;
11334 hashes_buf[0].salt->salt_buf[0] = 388; // pure magic
11335 break;
11336 case 1731: hashes_buf[0].salt->salt_len = 4;
11337 break;
11338 case 2410: hashes_buf[0].salt->salt_len = 4;
11339 break;
11340 case 2500: memcpy (hashes_buf[0].salt->salt_buf, "hashcat.net", 11);
11341 break;
11342 case 3100: hashes_buf[0].salt->salt_len = 1;
11343 break;
11344 case 5000: hashes_buf[0].salt->keccak_mdlen = 32;
11345 break;
11346 case 5800: hashes_buf[0].salt->salt_len = 16;
11347 break;
11348 case 6800: hashes_buf[0].salt->salt_len = 32;
11349 break;
11350 case 8400: hashes_buf[0].salt->salt_len = 40;
11351 break;
11352 case 8800: hashes_buf[0].salt->salt_len = 16;
11353 break;
11354 case 8900: hashes_buf[0].salt->salt_len = 16;
11355 hashes_buf[0].salt->scrypt_N = 1024;
11356 hashes_buf[0].salt->scrypt_r = 1;
11357 hashes_buf[0].salt->scrypt_p = 1;
11358 break;
11359 case 9100: hashes_buf[0].salt->salt_len = 16;
11360 break;
11361 case 9300: hashes_buf[0].salt->salt_len = 14;
11362 hashes_buf[0].salt->scrypt_N = 16384;
11363 hashes_buf[0].salt->scrypt_r = 1;
11364 hashes_buf[0].salt->scrypt_p = 1;
11365 break;
11366 case 9400: hashes_buf[0].salt->salt_len = 16;
11367 break;
11368 case 9500: hashes_buf[0].salt->salt_len = 16;
11369 break;
11370 case 9600: hashes_buf[0].salt->salt_len = 16;
11371 break;
11372 case 9700: hashes_buf[0].salt->salt_len = 16;
11373 break;
11374 case 9710: hashes_buf[0].salt->salt_len = 16;
11375 break;
11376 case 9720: hashes_buf[0].salt->salt_len = 16;
11377 break;
11378 case 9800: hashes_buf[0].salt->salt_len = 16;
11379 break;
11380 case 9810: hashes_buf[0].salt->salt_len = 16;
11381 break;
11382 case 9820: hashes_buf[0].salt->salt_len = 16;
11383 break;
11384 case 10300: hashes_buf[0].salt->salt_len = 12;
11385 break;
11386 case 11500: hashes_buf[0].salt->salt_len = 4;
11387 break;
11388 case 11600: hashes_buf[0].salt->salt_len = 4;
11389 break;
11390 case 12400: hashes_buf[0].salt->salt_len = 4;
11391 break;
11392 case 12500: hashes_buf[0].salt->salt_len = 8;
11393 break;
11394 case 12600: hashes_buf[0].salt->salt_len = 64;
11395 break;
11396 }
11397
11398 // special esalt handling
11399
11400 switch (hash_mode)
11401 {
11402 case 2500: ((wpa_t *) hashes_buf[0].esalt)->eapol_size = 128;
11403 break;
11404 case 5300: ((ikepsk_t *) hashes_buf[0].esalt)->nr_len = 1;
11405 ((ikepsk_t *) hashes_buf[0].esalt)->msg_len = 1;
11406 break;
11407 case 5400: ((ikepsk_t *) hashes_buf[0].esalt)->nr_len = 1;
11408 ((ikepsk_t *) hashes_buf[0].esalt)->msg_len = 1;
11409 break;
11410 case 5500: ((netntlm_t *) hashes_buf[0].esalt)->user_len = 1;
11411 ((netntlm_t *) hashes_buf[0].esalt)->domain_len = 1;
11412 ((netntlm_t *) hashes_buf[0].esalt)->srvchall_len = 1;
11413 ((netntlm_t *) hashes_buf[0].esalt)->clichall_len = 1;
11414 break;
11415 case 5600: ((netntlm_t *) hashes_buf[0].esalt)->user_len = 1;
11416 ((netntlm_t *) hashes_buf[0].esalt)->domain_len = 1;
11417 ((netntlm_t *) hashes_buf[0].esalt)->srvchall_len = 1;
11418 ((netntlm_t *) hashes_buf[0].esalt)->clichall_len = 1;
11419 break;
11420 case 7300: ((rakp_t *) hashes_buf[0].esalt)->salt_len = 32;
11421 break;
11422 case 10400: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11423 ((pdf_t *) hashes_buf[0].esalt)->o_len = 32;
11424 ((pdf_t *) hashes_buf[0].esalt)->u_len = 32;
11425 break;
11426 case 10410: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11427 ((pdf_t *) hashes_buf[0].esalt)->o_len = 32;
11428 ((pdf_t *) hashes_buf[0].esalt)->u_len = 32;
11429 break;
11430 case 10420: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11431 ((pdf_t *) hashes_buf[0].esalt)->o_len = 32;
11432 ((pdf_t *) hashes_buf[0].esalt)->u_len = 32;
11433 break;
11434 case 10500: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11435 ((pdf_t *) hashes_buf[0].esalt)->o_len = 32;
11436 ((pdf_t *) hashes_buf[0].esalt)->u_len = 32;
11437 break;
11438 case 10600: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11439 ((pdf_t *) hashes_buf[0].esalt)->o_len = 127;
11440 ((pdf_t *) hashes_buf[0].esalt)->u_len = 127;
11441 break;
11442 case 10700: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11443 ((pdf_t *) hashes_buf[0].esalt)->o_len = 127;
11444 ((pdf_t *) hashes_buf[0].esalt)->u_len = 127;
11445 break;
11446 case 11600: ((seven_zip_t *) hashes_buf[0].esalt)->iv_len = 16;
11447 ((seven_zip_t *) hashes_buf[0].esalt)->data_len = 112;
11448 ((seven_zip_t *) hashes_buf[0].esalt)->unpack_size = 112;
11449 break;
11450 case 13400: ((keepass_t *) hashes_buf[0].esalt)->version = 2;
11451 break;
11452 case 13500: ((pstoken_t *) hashes_buf[0].esalt)->salt_len = 113;
11453 break;
11454 case 13600: ((zip2_t *) hashes_buf[0].esalt)->salt_len = 16;
11455 ((zip2_t *) hashes_buf[0].esalt)->data_len = 32;
11456 ((zip2_t *) hashes_buf[0].esalt)->mode = 3;
11457 break;
11458 }
11459 }
11460
11461 // set hashfile
11462
11463 switch (hash_mode)
11464 {
11465 case 5200: data.hashfile = mystrdup ("hashcat.psafe3");
11466 break;
11467 case 5300: data.hashfile = mystrdup ("hashcat.ikemd5");
11468 break;
11469 case 5400: data.hashfile = mystrdup ("hashcat.ikesha1");
11470 break;
11471 case 6211: data.hashfile = mystrdup ("hashcat.tc");
11472 break;
11473 case 6212: data.hashfile = mystrdup ("hashcat.tc");
11474 break;
11475 case 6213: data.hashfile = mystrdup ("hashcat.tc");
11476 break;
11477 case 6221: data.hashfile = mystrdup ("hashcat.tc");
11478 break;
11479 case 6222: data.hashfile = mystrdup ("hashcat.tc");
11480 break;
11481 case 6223: data.hashfile = mystrdup ("hashcat.tc");
11482 break;
11483 case 6231: data.hashfile = mystrdup ("hashcat.tc");
11484 break;
11485 case 6232: data.hashfile = mystrdup ("hashcat.tc");
11486 break;
11487 case 6233: data.hashfile = mystrdup ("hashcat.tc");
11488 break;
11489 case 6241: data.hashfile = mystrdup ("hashcat.tc");
11490 break;
11491 case 6242: data.hashfile = mystrdup ("hashcat.tc");
11492 break;
11493 case 6243: data.hashfile = mystrdup ("hashcat.tc");
11494 break;
11495 case 6600: data.hashfile = mystrdup ("hashcat.agilekey");
11496 break;
11497 case 8200: data.hashfile = mystrdup ("hashcat.cloudkey");
11498 break;
11499 case 9000: data.hashfile = mystrdup ("hashcat.psafe2");
11500 break;
11501 }
11502
11503 // set default iterations
11504
11505 switch (hash_mode)
11506 {
11507 case 400: hashes_buf[0].salt->salt_iter = ROUNDS_PHPASS;
11508 break;
11509 case 500: hashes_buf[0].salt->salt_iter = ROUNDS_MD5CRYPT;
11510 break;
11511 case 501: hashes_buf[0].salt->salt_iter = ROUNDS_MD5CRYPT;
11512 break;
11513 case 1600: hashes_buf[0].salt->salt_iter = ROUNDS_MD5CRYPT;
11514 break;
11515 case 1800: hashes_buf[0].salt->salt_iter = ROUNDS_SHA512CRYPT;
11516 break;
11517 case 2100: hashes_buf[0].salt->salt_iter = ROUNDS_DCC2;
11518 break;
11519 case 2500: hashes_buf[0].salt->salt_iter = ROUNDS_WPA2;
11520 break;
11521 case 3200: hashes_buf[0].salt->salt_iter = ROUNDS_BCRYPT;
11522 break;
11523 case 5200: hashes_buf[0].salt->salt_iter = ROUNDS_PSAFE3;
11524 break;
11525 case 5800: hashes_buf[0].salt->salt_iter = ROUNDS_ANDROIDPIN - 1;
11526 break;
11527 case 6211: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_2K;
11528 break;
11529 case 6212: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_2K;
11530 break;
11531 case 6213: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_2K;
11532 break;
11533 case 6221: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11534 break;
11535 case 6222: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11536 break;
11537 case 6223: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11538 break;
11539 case 6231: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11540 break;
11541 case 6232: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11542 break;
11543 case 6233: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11544 break;
11545 case 6241: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11546 break;
11547 case 6242: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11548 break;
11549 case 6243: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11550 break;
11551 case 6300: hashes_buf[0].salt->salt_iter = ROUNDS_MD5CRYPT;
11552 break;
11553 case 6400: hashes_buf[0].salt->salt_iter = ROUNDS_SHA256AIX;
11554 break;
11555 case 6500: hashes_buf[0].salt->salt_iter = ROUNDS_SHA512AIX;
11556 break;
11557 case 6700: hashes_buf[0].salt->salt_iter = ROUNDS_SHA1AIX;
11558 break;
11559 case 6600: hashes_buf[0].salt->salt_iter = ROUNDS_AGILEKEY;
11560 break;
11561 case 6800: hashes_buf[0].salt->salt_iter = ROUNDS_LASTPASS;
11562 break;
11563 case 7100: hashes_buf[0].salt->salt_iter = ROUNDS_SHA512OSX;
11564 break;
11565 case 7200: hashes_buf[0].salt->salt_iter = ROUNDS_GRUB;
11566 break;
11567 case 7400: hashes_buf[0].salt->salt_iter = ROUNDS_SHA256CRYPT;
11568 break;
11569 case 7900: hashes_buf[0].salt->salt_iter = ROUNDS_DRUPAL7;
11570 break;
11571 case 8200: hashes_buf[0].salt->salt_iter = ROUNDS_CLOUDKEY;
11572 break;
11573 case 8300: hashes_buf[0].salt->salt_iter = ROUNDS_NSEC3;
11574 break;
11575 case 8800: hashes_buf[0].salt->salt_iter = ROUNDS_ANDROIDFDE;
11576 break;
11577 case 8900: hashes_buf[0].salt->salt_iter = 1;
11578 break;
11579 case 9000: hashes_buf[0].salt->salt_iter = ROUNDS_PSAFE2;
11580 break;
11581 case 9100: hashes_buf[0].salt->salt_iter = ROUNDS_LOTUS8;
11582 break;
11583 case 9200: hashes_buf[0].salt->salt_iter = ROUNDS_CISCO8;
11584 break;
11585 case 9300: hashes_buf[0].salt->salt_iter = 1;
11586 break;
11587 case 9400: hashes_buf[0].salt->salt_iter = ROUNDS_OFFICE2007;
11588 break;
11589 case 9500: hashes_buf[0].salt->salt_iter = ROUNDS_OFFICE2010;
11590 break;
11591 case 9600: hashes_buf[0].salt->salt_iter = ROUNDS_OFFICE2013;
11592 break;
11593 case 10000: hashes_buf[0].salt->salt_iter = ROUNDS_DJANGOPBKDF2;
11594 break;
11595 case 10300: hashes_buf[0].salt->salt_iter = ROUNDS_SAPH_SHA1 - 1;
11596 break;
11597 case 10500: hashes_buf[0].salt->salt_iter = ROUNDS_PDF14;
11598 break;
11599 case 10700: hashes_buf[0].salt->salt_iter = ROUNDS_PDF17L8;
11600 break;
11601 case 10900: hashes_buf[0].salt->salt_iter = ROUNDS_PBKDF2_SHA256 - 1;
11602 break;
11603 case 11300: hashes_buf[0].salt->salt_iter = ROUNDS_BITCOIN_WALLET - 1;
11604 break;
11605 case 11600: hashes_buf[0].salt->salt_iter = ROUNDS_SEVEN_ZIP;
11606 break;
11607 case 11900: hashes_buf[0].salt->salt_iter = ROUNDS_PBKDF2_MD5 - 1;
11608 break;
11609 case 12000: hashes_buf[0].salt->salt_iter = ROUNDS_PBKDF2_SHA1 - 1;
11610 break;
11611 case 12100: hashes_buf[0].salt->salt_iter = ROUNDS_PBKDF2_SHA512 - 1;
11612 break;
11613 case 12200: hashes_buf[0].salt->salt_iter = ROUNDS_ECRYPTFS - 1;
11614 break;
11615 case 12300: hashes_buf[0].salt->salt_iter = ROUNDS_ORACLET - 1;
11616 break;
11617 case 12400: hashes_buf[0].salt->salt_iter = ROUNDS_BSDICRYPT - 1;
11618 break;
11619 case 12500: hashes_buf[0].salt->salt_iter = ROUNDS_RAR3;
11620 break;
11621 case 12700: hashes_buf[0].salt->salt_iter = ROUNDS_MYWALLET;
11622 break;
11623 case 12800: hashes_buf[0].salt->salt_iter = ROUNDS_MS_DRSR - 1;
11624 break;
11625 case 12900: hashes_buf[0].salt->salt_iter = ROUNDS_ANDROIDFDE_SAMSUNG - 1;
11626 break;
11627 case 13000: hashes_buf[0].salt->salt_iter = ROUNDS_RAR5 - 1;
11628 break;
11629 case 13200: hashes_buf[0].salt->salt_iter = ROUNDS_AXCRYPT;
11630 break;
11631 case 13400: hashes_buf[0].salt->salt_iter = ROUNDS_KEEPASS;
11632 break;
11633 case 13600: hashes_buf[0].salt->salt_iter = ROUNDS_ZIP2;
11634 break;
11635 }
11636
11637 hashes_cnt = 1;
11638 }
11639
11640 if (show == 1 || left == 1)
11641 {
11642 for (uint i = 0; i < pot_cnt; i++)
11643 {
11644 pot_t *pot_ptr = &pot[i];
11645
11646 hash_t *hashes_buf = &pot_ptr->hash;
11647
11648 local_free (hashes_buf->digest);
11649
11650 if (isSalted)
11651 {
11652 local_free (hashes_buf->salt);
11653 }
11654 }
11655
11656 local_free (pot);
11657
11658 if (data.quiet == 0) log_info_nn ("");
11659
11660 return (0);
11661 }
11662
11663 if (keyspace == 0)
11664 {
11665 if (hashes_cnt == 0)
11666 {
11667 log_error ("ERROR: No hashes loaded");
11668
11669 return (-1);
11670 }
11671 }
11672
11673 /**
11674 * Sanity check for hashfile vs outfile (should not point to the same physical file)
11675 */
11676
11677 if (data.outfile != NULL)
11678 {
11679 if (data.hashfile != NULL)
11680 {
11681 #ifdef _POSIX
11682 struct stat tmpstat_outfile;
11683 struct stat tmpstat_hashfile;
11684 #endif
11685
11686 #ifdef _WIN
11687 struct stat64 tmpstat_outfile;
11688 struct stat64 tmpstat_hashfile;
11689 #endif
11690
11691 FILE *tmp_outfile_fp = fopen (data.outfile, "r");
11692
11693 if (tmp_outfile_fp)
11694 {
11695 #ifdef _POSIX
11696 fstat (fileno (tmp_outfile_fp), &tmpstat_outfile);
11697 #endif
11698
11699 #ifdef _WIN
11700 _fstat64 (fileno (tmp_outfile_fp), &tmpstat_outfile);
11701 #endif
11702
11703 fclose (tmp_outfile_fp);
11704 }
11705
11706 FILE *tmp_hashfile_fp = fopen (data.hashfile, "r");
11707
11708 if (tmp_hashfile_fp)
11709 {
11710 #ifdef _POSIX
11711 fstat (fileno (tmp_hashfile_fp), &tmpstat_hashfile);
11712 #endif
11713
11714 #ifdef _WIN
11715 _fstat64 (fileno (tmp_hashfile_fp), &tmpstat_hashfile);
11716 #endif
11717
11718 fclose (tmp_hashfile_fp);
11719 }
11720
11721 if (tmp_outfile_fp && tmp_outfile_fp)
11722 {
11723 tmpstat_outfile.st_mode = 0;
11724 tmpstat_outfile.st_nlink = 0;
11725 tmpstat_outfile.st_uid = 0;
11726 tmpstat_outfile.st_gid = 0;
11727 tmpstat_outfile.st_rdev = 0;
11728 tmpstat_outfile.st_atime = 0;
11729
11730 tmpstat_hashfile.st_mode = 0;
11731 tmpstat_hashfile.st_nlink = 0;
11732 tmpstat_hashfile.st_uid = 0;
11733 tmpstat_hashfile.st_gid = 0;
11734 tmpstat_hashfile.st_rdev = 0;
11735 tmpstat_hashfile.st_atime = 0;
11736
11737 #ifdef _POSIX
11738 tmpstat_outfile.st_blksize = 0;
11739 tmpstat_outfile.st_blocks = 0;
11740
11741 tmpstat_hashfile.st_blksize = 0;
11742 tmpstat_hashfile.st_blocks = 0;
11743 #endif
11744
11745 #ifdef _POSIX
11746 if (memcmp (&tmpstat_outfile, &tmpstat_hashfile, sizeof (struct stat)) == 0)
11747 {
11748 log_error ("ERROR: Hashfile and Outfile are not allowed to point to the same file");
11749
11750 return (-1);
11751 }
11752 #endif
11753
11754 #ifdef _WIN
11755 if (memcmp (&tmpstat_outfile, &tmpstat_hashfile, sizeof (struct stat64)) == 0)
11756 {
11757 log_error ("ERROR: Hashfile and Outfile are not allowed to point to the same file");
11758
11759 return (-1);
11760 }
11761 #endif
11762 }
11763 }
11764 }
11765
11766 /**
11767 * Remove duplicates
11768 */
11769
11770 if (data.quiet == 0) log_info_nn ("Removing duplicate hashes...");
11771
11772 if (isSalted)
11773 {
11774 qsort (hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash);
11775 }
11776 else
11777 {
11778 qsort (hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash_no_salt);
11779 }
11780
11781 uint hashes_cnt_orig = hashes_cnt;
11782
11783 hashes_cnt = 1;
11784
11785 for (uint hashes_pos = 1; hashes_pos < hashes_cnt_orig; hashes_pos++)
11786 {
11787 if (isSalted)
11788 {
11789 if (sort_by_salt (hashes_buf[hashes_pos].salt, hashes_buf[hashes_pos - 1].salt) == 0)
11790 {
11791 if (sort_by_digest (hashes_buf[hashes_pos].digest, hashes_buf[hashes_pos - 1].digest) == 0) continue;
11792 }
11793 }
11794 else
11795 {
11796 if (sort_by_digest (hashes_buf[hashes_pos].digest, hashes_buf[hashes_pos - 1].digest) == 0) continue;
11797 }
11798
11799 if (hashes_pos > hashes_cnt)
11800 {
11801 memcpy (&hashes_buf[hashes_cnt], &hashes_buf[hashes_pos], sizeof (hash_t));
11802 }
11803
11804 hashes_cnt++;
11805 }
11806
11807 /**
11808 * Potfile removes
11809 */
11810
11811 uint potfile_remove_cracks = 0;
11812
11813 if (potfile_disable == 0)
11814 {
11815 hash_t hash_buf;
11816
11817 hash_buf.digest = mymalloc (dgst_size);
11818 hash_buf.salt = NULL;
11819 hash_buf.esalt = NULL;
11820 hash_buf.hash_info = NULL;
11821 hash_buf.cracked = 0;
11822
11823 if (isSalted)
11824 {
11825 hash_buf.salt = (salt_t *) mymalloc (sizeof (salt_t));
11826 }
11827
11828 if (esalt_size)
11829 {
11830 hash_buf.esalt = mymalloc (esalt_size);
11831 }
11832
11833 if (quiet == 0) log_info_nn ("Comparing hashes with potfile entries...");
11834
11835 // no solution for these special hash types (for instane because they use hashfile in output etc)
11836 if ((hash_mode != 5200) &&
11837 !((hash_mode >= 6200) && (hash_mode <= 6299)) &&
11838 (hash_mode != 9000))
11839 {
11840 FILE *fp = fopen (potfile, "rb");
11841
11842 if (fp != NULL)
11843 {
11844 char *line_buf = (char *) mymalloc (HCBUFSIZ);
11845
11846 // to be safe work with a copy (because of line_len loop, i etc)
11847 // moved up here because it's easier to handle continue case
11848 // it's just 64kb
11849
11850 char *line_buf_cpy = (char *) mymalloc (HCBUFSIZ);
11851
11852 while (!feof (fp))
11853 {
11854 char *ptr = fgets (line_buf, HCBUFSIZ - 1, fp);
11855
11856 if (ptr == NULL) break;
11857
11858 int line_len = strlen (line_buf);
11859
11860 if (line_len == 0) continue;
11861
11862 int iter = MAX_CUT_TRIES;
11863
11864 for (int i = line_len - 1; i && iter; i--, line_len--)
11865 {
11866 if (line_buf[i] != ':') continue;
11867
11868 if (isSalted)
11869 {
11870 memset (hash_buf.salt, 0, sizeof (salt_t));
11871 }
11872
11873 hash_t *found = NULL;
11874
11875 if (hash_mode == 6800)
11876 {
11877 if (i < 64) // 64 = 16 * uint in salt_buf[]
11878 {
11879 // manipulate salt_buf
11880 memcpy (hash_buf.salt->salt_buf, line_buf, i);
11881
11882 hash_buf.salt->salt_len = i;
11883
11884 found = (hash_t *) bsearch (&hash_buf, hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash_t_salt);
11885 }
11886 }
11887 else if (hash_mode == 2500)
11888 {
11889 if (i < 64) // 64 = 16 * uint in salt_buf[]
11890 {
11891 // here we have in line_buf: ESSID:MAC1:MAC2 (without the plain)
11892 // manipulate salt_buf
11893
11894 memcpy (line_buf_cpy, line_buf, i);
11895
11896 char *mac2_pos = strrchr (line_buf_cpy, ':');
11897
11898 if (mac2_pos == NULL) continue;
11899
11900 mac2_pos[0] = 0;
11901 mac2_pos++;
11902
11903 if (strlen (mac2_pos) != 12) continue;
11904
11905 char *mac1_pos = strrchr (line_buf_cpy, ':');
11906
11907 if (mac1_pos == NULL) continue;
11908
11909 mac1_pos[0] = 0;
11910 mac1_pos++;
11911
11912 if (strlen (mac1_pos) != 12) continue;
11913
11914 uint essid_length = mac1_pos - line_buf_cpy - 1;
11915
11916 // here we need the ESSID
11917 memcpy (hash_buf.salt->salt_buf, line_buf_cpy, essid_length);
11918
11919 hash_buf.salt->salt_len = essid_length;
11920
11921 found = (hash_t *) bsearch (&hash_buf, hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash_t_salt_hccap);
11922
11923 if (found)
11924 {
11925 wpa_t *wpa = (wpa_t *) found->esalt;
11926
11927 // compare hex string(s) vs binary MAC address(es)
11928
11929 for (uint i = 0, j = 0; i < 6; i++, j += 2)
11930 {
11931 if (wpa->orig_mac1[i] != hex_to_u8 ((const u8 *) &mac1_pos[j]))
11932 {
11933 found = NULL;
11934
11935 break;
11936 }
11937 }
11938
11939 // early skip ;)
11940 if (!found) continue;
11941
11942 for (uint i = 0, j = 0; i < 6; i++, j += 2)
11943 {
11944 if (wpa->orig_mac2[i] != hex_to_u8 ((const u8 *) &mac2_pos[j]))
11945 {
11946 found = NULL;
11947
11948 break;
11949 }
11950 }
11951 }
11952 }
11953 }
11954 else
11955 {
11956 int parser_status = parse_func (line_buf, line_len - 1, &hash_buf);
11957
11958 if (parser_status == PARSER_OK)
11959 {
11960 if (isSalted)
11961 {
11962 found = (hash_t *) bsearch (&hash_buf, hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash);
11963 }
11964 else
11965 {
11966 found = (hash_t *) bsearch (&hash_buf, hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash_no_salt);
11967 }
11968 }
11969 }
11970
11971 if (found == NULL) continue;
11972
11973 if (!found->cracked) potfile_remove_cracks++;
11974
11975 found->cracked = 1;
11976
11977 if (found) break;
11978
11979 iter--;
11980 }
11981 }
11982
11983 myfree (line_buf_cpy);
11984
11985 myfree (line_buf);
11986
11987 fclose (fp);
11988 }
11989 }
11990
11991 if (esalt_size)
11992 {
11993 local_free (hash_buf.esalt);
11994 }
11995
11996 if (isSalted)
11997 {
11998 local_free (hash_buf.salt);
11999 }
12000
12001 local_free (hash_buf.digest);
12002 }
12003
12004 /**
12005 * Now generate all the buffers required for later
12006 */
12007
12008 void *digests_buf_new = (void *) mycalloc (hashes_avail, dgst_size);
12009
12010 salt_t *salts_buf_new = NULL;
12011 void *esalts_buf_new = NULL;
12012
12013 if (isSalted)
12014 {
12015 salts_buf_new = (salt_t *) mycalloc (hashes_avail, sizeof (salt_t));
12016
12017 if (esalt_size)
12018 {
12019 esalts_buf_new = (void *) mycalloc (hashes_avail, esalt_size);
12020 }
12021 }
12022 else
12023 {
12024 salts_buf_new = (salt_t *) mycalloc (1, sizeof (salt_t));
12025 }
12026
12027 if (data.quiet == 0) log_info_nn ("Structuring salts for cracking task...");
12028
12029 uint digests_cnt = hashes_cnt;
12030 uint digests_done = 0;
12031
12032 size_t size_digests = digests_cnt * dgst_size;
12033 size_t size_shown = digests_cnt * sizeof (uint);
12034
12035 uint *digests_shown = (uint *) mymalloc (size_shown);
12036 uint *digests_shown_tmp = (uint *) mymalloc (size_shown);
12037
12038 uint salts_cnt = 0;
12039 uint salts_done = 0;
12040
12041 hashinfo_t **hash_info = NULL;
12042
12043 if ((username && (remove || show)) || (opts_type & OPTS_TYPE_HASH_COPY))
12044 {
12045 hash_info = (hashinfo_t**) mymalloc (hashes_cnt * sizeof (hashinfo_t *));
12046
12047 if (username && (remove || show))
12048 {
12049 uint user_pos;
12050
12051 for (user_pos = 0; user_pos < hashes_cnt; user_pos++)
12052 {
12053 hash_info[user_pos] = (hashinfo_t*) mycalloc (hashes_cnt, sizeof (hashinfo_t));
12054
12055 hash_info[user_pos]->user = (user_t*) mymalloc (sizeof (user_t));
12056 }
12057 }
12058 }
12059
12060 uint *salts_shown = (uint *) mymalloc (size_shown);
12061
12062 salt_t *salt_buf;
12063
12064 {
12065 // copied from inner loop
12066
12067 salt_buf = &salts_buf_new[salts_cnt];
12068
12069 memcpy (salt_buf, hashes_buf[0].salt, sizeof (salt_t));
12070
12071 if (esalt_size)
12072 {
12073 memcpy (((char *) esalts_buf_new) + (salts_cnt * esalt_size), hashes_buf[0].esalt, esalt_size);
12074 }
12075
12076 salt_buf->digests_cnt = 0;
12077 salt_buf->digests_done = 0;
12078 salt_buf->digests_offset = 0;
12079
12080 salts_cnt++;
12081 }
12082
12083 if (hashes_buf[0].cracked == 1)
12084 {
12085 digests_shown[0] = 1;
12086
12087 digests_done++;
12088
12089 salt_buf->digests_done++;
12090 }
12091
12092 salt_buf->digests_cnt++;
12093
12094 memcpy (((char *) digests_buf_new) + (0 * dgst_size), hashes_buf[0].digest, dgst_size);
12095
12096 if ((username && (remove || show)) || (opts_type & OPTS_TYPE_HASH_COPY))
12097 {
12098 hash_info[0] = hashes_buf[0].hash_info;
12099 }
12100
12101 // copy from inner loop
12102
12103 for (uint hashes_pos = 1; hashes_pos < hashes_cnt; hashes_pos++)
12104 {
12105 if (isSalted)
12106 {
12107 if (sort_by_salt (hashes_buf[hashes_pos].salt, hashes_buf[hashes_pos - 1].salt) != 0)
12108 {
12109 salt_buf = &salts_buf_new[salts_cnt];
12110
12111 memcpy (salt_buf, hashes_buf[hashes_pos].salt, sizeof (salt_t));
12112
12113 if (esalt_size)
12114 {
12115 memcpy (((char *) esalts_buf_new) + (salts_cnt * esalt_size), hashes_buf[hashes_pos].esalt, esalt_size);
12116 }
12117
12118 salt_buf->digests_cnt = 0;
12119 salt_buf->digests_done = 0;
12120 salt_buf->digests_offset = hashes_pos;
12121
12122 salts_cnt++;
12123 }
12124 }
12125
12126 if (hashes_buf[hashes_pos].cracked == 1)
12127 {
12128 digests_shown[hashes_pos] = 1;
12129
12130 digests_done++;
12131
12132 salt_buf->digests_done++;
12133 }
12134
12135 salt_buf->digests_cnt++;
12136
12137 memcpy (((char *) digests_buf_new) + (hashes_pos * dgst_size), hashes_buf[hashes_pos].digest, dgst_size);
12138
12139 if ((username && (remove || show)) || (opts_type & OPTS_TYPE_HASH_COPY))
12140 {
12141 hash_info[hashes_pos] = hashes_buf[hashes_pos].hash_info;
12142 }
12143 }
12144
12145 for (uint salt_pos = 0; salt_pos < salts_cnt; salt_pos++)
12146 {
12147 salt_t *salt_buf = &salts_buf_new[salt_pos];
12148
12149 if (salt_buf->digests_done == salt_buf->digests_cnt)
12150 {
12151 salts_shown[salt_pos] = 1;
12152
12153 salts_done++;
12154 }
12155
12156 if (salts_done == salts_cnt) data.devices_status = STATUS_CRACKED;
12157 }
12158
12159 local_free (digests_buf);
12160 local_free (salts_buf);
12161 local_free (esalts_buf);
12162
12163 digests_buf = digests_buf_new;
12164 salts_buf = salts_buf_new;
12165 esalts_buf = esalts_buf_new;
12166
12167 local_free (hashes_buf);
12168
12169 /**
12170 * special modification not set from parser
12171 */
12172
12173 switch (hash_mode)
12174 {
12175 case 6211: salts_buf->truecrypt_mdlen = 1 * 512; break;
12176 case 6212: salts_buf->truecrypt_mdlen = 2 * 512; break;
12177 case 6213: salts_buf->truecrypt_mdlen = 3 * 512; break;
12178 case 6221: salts_buf->truecrypt_mdlen = 1 * 512; break;
12179 case 6222: salts_buf->truecrypt_mdlen = 2 * 512; break;
12180 case 6223: salts_buf->truecrypt_mdlen = 3 * 512; break;
12181 case 6231: salts_buf->truecrypt_mdlen = 1 * 512; break;
12182 case 6232: salts_buf->truecrypt_mdlen = 2 * 512; break;
12183 case 6233: salts_buf->truecrypt_mdlen = 3 * 512; break;
12184 case 6241: salts_buf->truecrypt_mdlen = 1 * 512; break;
12185 case 6242: salts_buf->truecrypt_mdlen = 2 * 512; break;
12186 case 6243: salts_buf->truecrypt_mdlen = 3 * 512; break;
12187 }
12188
12189 if (truecrypt_keyfiles)
12190 {
12191 uint *keyfile_buf = ((tc_t *) esalts_buf)->keyfile_buf;
12192
12193 char *keyfiles = strdup (truecrypt_keyfiles);
12194
12195 char *keyfile = strtok (keyfiles, ",");
12196
12197 do
12198 {
12199 truecrypt_crc32 (keyfile, (u8 *) keyfile_buf);
12200
12201 } while ((keyfile = strtok (NULL, ",")) != NULL);
12202
12203 free (keyfiles);
12204 }
12205
12206 data.digests_cnt = digests_cnt;
12207 data.digests_done = digests_done;
12208 data.digests_buf = digests_buf;
12209 data.digests_shown = digests_shown;
12210 data.digests_shown_tmp = digests_shown_tmp;
12211
12212 data.salts_cnt = salts_cnt;
12213 data.salts_done = salts_done;
12214 data.salts_buf = salts_buf;
12215 data.salts_shown = salts_shown;
12216
12217 data.esalts_buf = esalts_buf;
12218 data.hash_info = hash_info;
12219
12220 /**
12221 * Automatic Optimizers
12222 */
12223
12224 if (salts_cnt == 1)
12225 opti_type |= OPTI_TYPE_SINGLE_SALT;
12226
12227 if (digests_cnt == 1)
12228 opti_type |= OPTI_TYPE_SINGLE_HASH;
12229
12230 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
12231 opti_type |= OPTI_TYPE_NOT_ITERATED;
12232
12233 if (attack_mode == ATTACK_MODE_BF)
12234 opti_type |= OPTI_TYPE_BRUTE_FORCE;
12235
12236 data.opti_type = opti_type;
12237
12238 if (opti_type & OPTI_TYPE_BRUTE_FORCE)
12239 {
12240 if (opti_type & OPTI_TYPE_SINGLE_HASH)
12241 {
12242 if (opti_type & OPTI_TYPE_APPENDED_SALT)
12243 {
12244 if (opts_type & OPTS_TYPE_ST_ADD80)
12245 {
12246 opts_type &= ~OPTS_TYPE_ST_ADD80;
12247 opts_type |= OPTS_TYPE_PT_ADD80;
12248 }
12249
12250 if (opts_type & OPTS_TYPE_ST_ADDBITS14)
12251 {
12252 opts_type &= ~OPTS_TYPE_ST_ADDBITS14;
12253 opts_type |= OPTS_TYPE_PT_ADDBITS14;
12254 }
12255
12256 if (opts_type & OPTS_TYPE_ST_ADDBITS15)
12257 {
12258 opts_type &= ~OPTS_TYPE_ST_ADDBITS15;
12259 opts_type |= OPTS_TYPE_PT_ADDBITS15;
12260 }
12261 }
12262 }
12263 }
12264
12265 /**
12266 * Some algorithm, like descrypt, can benefit from JIT compilation
12267 */
12268
12269 int force_jit_compilation = -1;
12270
12271 if (hash_mode == 8900)
12272 {
12273 force_jit_compilation = 8900;
12274 }
12275 else if (hash_mode == 9300)
12276 {
12277 force_jit_compilation = 8900;
12278 }
12279 else if (hash_mode == 1500 && attack_mode == ATTACK_MODE_BF && data.salts_cnt == 1)
12280 {
12281 force_jit_compilation = 1500;
12282 }
12283
12284 /**
12285 * generate bitmap tables
12286 */
12287
12288 const uint bitmap_shift1 = 5;
12289 const uint bitmap_shift2 = 13;
12290
12291 if (bitmap_max < bitmap_min) bitmap_max = bitmap_min;
12292
12293 uint *bitmap_s1_a = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12294 uint *bitmap_s1_b = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12295 uint *bitmap_s1_c = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12296 uint *bitmap_s1_d = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12297 uint *bitmap_s2_a = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12298 uint *bitmap_s2_b = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12299 uint *bitmap_s2_c = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12300 uint *bitmap_s2_d = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12301
12302 uint bitmap_bits;
12303 uint bitmap_nums;
12304 uint bitmap_mask;
12305 uint bitmap_size;
12306
12307 for (bitmap_bits = bitmap_min; bitmap_bits < bitmap_max; bitmap_bits++)
12308 {
12309 if (data.quiet == 0) log_info_nn ("Generating bitmap tables with %u bits...", bitmap_bits);
12310
12311 bitmap_nums = 1 << bitmap_bits;
12312
12313 bitmap_mask = bitmap_nums - 1;
12314
12315 bitmap_size = bitmap_nums * sizeof (uint);
12316
12317 if ((hashes_cnt & bitmap_mask) == hashes_cnt) break;
12318
12319 if (generate_bitmaps (digests_cnt, dgst_size, bitmap_shift1, (char *) data.digests_buf, bitmap_mask, bitmap_size, bitmap_s1_a, bitmap_s1_b, bitmap_s1_c, bitmap_s1_d, digests_cnt / 2) == 0x7fffffff) continue;
12320 if (generate_bitmaps (digests_cnt, dgst_size, bitmap_shift2, (char *) data.digests_buf, bitmap_mask, bitmap_size, bitmap_s1_a, bitmap_s1_b, bitmap_s1_c, bitmap_s1_d, digests_cnt / 2) == 0x7fffffff) continue;
12321
12322 break;
12323 }
12324
12325 bitmap_nums = 1 << bitmap_bits;
12326
12327 bitmap_mask = bitmap_nums - 1;
12328
12329 bitmap_size = bitmap_nums * sizeof (uint);
12330
12331 generate_bitmaps (digests_cnt, dgst_size, bitmap_shift1, (char *) data.digests_buf, bitmap_mask, bitmap_size, bitmap_s1_a, bitmap_s1_b, bitmap_s1_c, bitmap_s1_d, -1);
12332 generate_bitmaps (digests_cnt, dgst_size, bitmap_shift2, (char *) data.digests_buf, bitmap_mask, bitmap_size, bitmap_s2_a, bitmap_s2_b, bitmap_s2_c, bitmap_s2_d, -1);
12333
12334 /**
12335 * prepare quick rule
12336 */
12337
12338 data.rule_buf_l = rule_buf_l;
12339 data.rule_buf_r = rule_buf_r;
12340
12341 int rule_len_l = (int) strlen (rule_buf_l);
12342 int rule_len_r = (int) strlen (rule_buf_r);
12343
12344 data.rule_len_l = rule_len_l;
12345 data.rule_len_r = rule_len_r;
12346
12347 /**
12348 * load rules
12349 */
12350
12351 uint *all_kernel_rules_cnt = NULL;
12352
12353 kernel_rule_t **all_kernel_rules_buf = NULL;
12354
12355 if (rp_files_cnt)
12356 {
12357 all_kernel_rules_cnt = (uint *) mycalloc (rp_files_cnt, sizeof (uint));
12358
12359 all_kernel_rules_buf = (kernel_rule_t **) mycalloc (rp_files_cnt, sizeof (kernel_rule_t *));
12360 }
12361
12362 char *rule_buf = (char *) mymalloc (HCBUFSIZ);
12363
12364 int rule_len = 0;
12365
12366 for (uint i = 0; i < rp_files_cnt; i++)
12367 {
12368 uint kernel_rules_avail = 0;
12369
12370 uint kernel_rules_cnt = 0;
12371
12372 kernel_rule_t *kernel_rules_buf = NULL;
12373
12374 char *rp_file = rp_files[i];
12375
12376 char in[BLOCK_SIZE] = { 0 };
12377 char out[BLOCK_SIZE] = { 0 };
12378
12379 FILE *fp = NULL;
12380
12381 uint rule_line = 0;
12382
12383 if ((fp = fopen (rp_file, "rb")) == NULL)
12384 {
12385 log_error ("ERROR: %s: %s", rp_file, strerror (errno));
12386
12387 return (-1);
12388 }
12389
12390 while (!feof (fp))
12391 {
12392 memset (rule_buf, 0, HCBUFSIZ);
12393
12394 rule_len = fgetl (fp, rule_buf);
12395
12396 rule_line++;
12397
12398 if (rule_len == 0) continue;
12399
12400 if (rule_buf[0] == '#') continue;
12401
12402 if (kernel_rules_avail == kernel_rules_cnt)
12403 {
12404 kernel_rules_buf = (kernel_rule_t *) myrealloc (kernel_rules_buf, kernel_rules_avail * sizeof (kernel_rule_t), INCR_RULES * sizeof (kernel_rule_t));
12405
12406 kernel_rules_avail += INCR_RULES;
12407 }
12408
12409 memset (in, 0, BLOCK_SIZE);
12410 memset (out, 0, BLOCK_SIZE);
12411
12412 int result = _old_apply_rule (rule_buf, rule_len, in, 1, out);
12413
12414 if (result == -1)
12415 {
12416 log_info ("WARNING: Skipping invalid or unsupported rule in file %s in line %u: %s", rp_file, rule_line, rule_buf);
12417
12418 continue;
12419 }
12420
12421 if (cpu_rule_to_kernel_rule (rule_buf, rule_len, &kernel_rules_buf[kernel_rules_cnt]) == -1)
12422 {
12423 log_info ("WARNING: Cannot convert rule for use on device in file %s in line %u: %s", rp_file, rule_line, rule_buf);
12424
12425 memset (&kernel_rules_buf[kernel_rules_cnt], 0, sizeof (kernel_rule_t)); // needs to be cleared otherwise we could have some remaining data
12426
12427 continue;
12428 }
12429
12430 /* its so slow
12431 if (rulefind (&kernel_rules_buf[kernel_rules_cnt], kernel_rules_buf, kernel_rules_cnt, sizeof (kernel_rule_t), sort_by_kernel_rule))
12432 {
12433 log_info ("Duplicate rule for use on device in file %s in line %u: %s", rp_file, rule_line, rule_buf);
12434
12435 continue;
12436 }
12437 */
12438
12439 kernel_rules_cnt++;
12440 }
12441
12442 fclose (fp);
12443
12444 all_kernel_rules_cnt[i] = kernel_rules_cnt;
12445
12446 all_kernel_rules_buf[i] = kernel_rules_buf;
12447 }
12448
12449 /**
12450 * merge rules or automatic rule generator
12451 */
12452
12453 uint kernel_rules_cnt = 0;
12454
12455 kernel_rule_t *kernel_rules_buf = NULL;
12456
12457 if (attack_mode == ATTACK_MODE_STRAIGHT)
12458 {
12459 if (rp_files_cnt)
12460 {
12461 kernel_rules_cnt = 1;
12462
12463 uint *repeats = (uint *) mycalloc (rp_files_cnt + 1, sizeof (uint));
12464
12465 repeats[0] = kernel_rules_cnt;
12466
12467 for (uint i = 0; i < rp_files_cnt; i++)
12468 {
12469 kernel_rules_cnt *= all_kernel_rules_cnt[i];
12470
12471 repeats[i + 1] = kernel_rules_cnt;
12472 }
12473
12474 kernel_rules_buf = (kernel_rule_t *) mycalloc (kernel_rules_cnt, sizeof (kernel_rule_t));
12475
12476 memset (kernel_rules_buf, 0, kernel_rules_cnt * sizeof (kernel_rule_t));
12477
12478 for (uint i = 0; i < kernel_rules_cnt; i++)
12479 {
12480 uint out_pos = 0;
12481
12482 kernel_rule_t *out = &kernel_rules_buf[i];
12483
12484 for (uint j = 0; j < rp_files_cnt; j++)
12485 {
12486 uint in_off = (i / repeats[j]) % all_kernel_rules_cnt[j];
12487 uint in_pos;
12488
12489 kernel_rule_t *in = &all_kernel_rules_buf[j][in_off];
12490
12491 for (in_pos = 0; in->cmds[in_pos]; in_pos++, out_pos++)
12492 {
12493 if (out_pos == RULES_MAX - 1)
12494 {
12495 // log_info ("WARNING: Truncating chaining of rule %d and rule %d as maximum number of function calls per rule exceeded", i, in_off);
12496
12497 break;
12498 }
12499
12500 out->cmds[out_pos] = in->cmds[in_pos];
12501 }
12502 }
12503 }
12504
12505 local_free (repeats);
12506 }
12507 else if (rp_gen)
12508 {
12509 uint kernel_rules_avail = 0;
12510
12511 while (kernel_rules_cnt < rp_gen)
12512 {
12513 if (kernel_rules_avail == kernel_rules_cnt)
12514 {
12515 kernel_rules_buf = (kernel_rule_t *) myrealloc (kernel_rules_buf, kernel_rules_avail * sizeof (kernel_rule_t), INCR_RULES * sizeof (kernel_rule_t));
12516
12517 kernel_rules_avail += INCR_RULES;
12518 }
12519
12520 memset (rule_buf, 0, HCBUFSIZ);
12521
12522 rule_len = (int) generate_random_rule (rule_buf, rp_gen_func_min, rp_gen_func_max);
12523
12524 if (cpu_rule_to_kernel_rule (rule_buf, rule_len, &kernel_rules_buf[kernel_rules_cnt]) == -1) continue;
12525
12526 kernel_rules_cnt++;
12527 }
12528 }
12529 }
12530
12531 myfree (rule_buf);
12532
12533 /**
12534 * generate NOP rules
12535 */
12536
12537 if (kernel_rules_cnt == 0)
12538 {
12539 kernel_rules_buf = (kernel_rule_t *) mymalloc (sizeof (kernel_rule_t));
12540
12541 kernel_rules_buf[kernel_rules_cnt].cmds[0] = RULE_OP_MANGLE_NOOP;
12542
12543 kernel_rules_cnt++;
12544 }
12545
12546 data.kernel_rules_cnt = kernel_rules_cnt;
12547 data.kernel_rules_buf = kernel_rules_buf;
12548
12549 /**
12550 * OpenCL platforms: detect
12551 */
12552
12553 cl_platform_id platforms[CL_PLATFORMS_MAX] = { 0 };
12554 cl_device_id platform_devices[DEVICES_MAX] = { 0 };
12555
12556 cl_uint platforms_cnt = 0;
12557 cl_uint platform_devices_cnt = 0;
12558
12559 if (keyspace == 0)
12560 {
12561 hc_clGetPlatformIDs (data.ocl, CL_PLATFORMS_MAX, platforms, &platforms_cnt);
12562
12563 if (platforms_cnt == 0)
12564 {
12565 log_info ("");
12566 log_info ("ATTENTION! No OpenCL compatible platform found");
12567 log_info ("");
12568 log_info ("You're probably missing the OpenCL runtime installation");
12569 log_info (" AMD users require AMD drivers 14.9 or later (recommended 15.12 or later)");
12570 log_info (" Intel users require Intel OpenCL Runtime 14.2 or later (recommended 15.1 or later)");
12571 log_info (" NVidia users require NVidia drivers 346.59 or later (recommended 361.x or later)");
12572 log_info ("");
12573
12574 return (-1);
12575 }
12576
12577 if (opencl_platforms_filter != (uint) -1)
12578 {
12579 uint platform_cnt_mask = ~(((uint) -1 >> platforms_cnt) << platforms_cnt);
12580
12581 if (opencl_platforms_filter > platform_cnt_mask)
12582 {
12583 log_error ("ERROR: The platform selected by the --opencl-platforms parameter is larger than the number of available platforms (%d)", platforms_cnt);
12584
12585 return (-1);
12586 }
12587 }
12588 }
12589
12590 /**
12591 * OpenCL platforms: For each platform check if we need to unset features that we can not use, eg: temp_retain
12592 */
12593
12594 for (uint platform_id = 0; platform_id < platforms_cnt; platform_id++)
12595 {
12596 cl_platform_id platform = platforms[platform_id];
12597
12598 char platform_vendor[INFOSZ] = { 0 };
12599
12600 hc_clGetPlatformInfo (data.ocl, platform, CL_PLATFORM_VENDOR, sizeof (platform_vendor), platform_vendor, NULL);
12601
12602 #ifdef HAVE_HWMON
12603 #if defined(HAVE_NVML) || defined(HAVE_NVAPI)
12604 if (strcmp (platform_vendor, CL_VENDOR_NV) == 0)
12605 {
12606 // make sure that we do not directly control the fan for NVidia
12607
12608 gpu_temp_retain = 0;
12609
12610 data.gpu_temp_retain = gpu_temp_retain;
12611 }
12612 #endif // HAVE_NVML || HAVE_NVAPI
12613 #endif
12614 }
12615
12616 /**
12617 * OpenCL device types:
12618 * In case the user did not specify --opencl-device-types and the user runs hashcat in a system with only a CPU only he probably want to use that CPU.
12619 * In such a case, automatically enable CPU device type support, since it's disabled by default.
12620 */
12621
12622 if (opencl_device_types == NULL)
12623 {
12624 cl_device_type device_types_all = 0;
12625
12626 for (uint platform_id = 0; platform_id < platforms_cnt; platform_id++)
12627 {
12628 if ((opencl_platforms_filter & (1 << platform_id)) == 0) continue;
12629
12630 cl_platform_id platform = platforms[platform_id];
12631
12632 hc_clGetDeviceIDs (data.ocl, platform, CL_DEVICE_TYPE_ALL, DEVICES_MAX, platform_devices, &platform_devices_cnt);
12633
12634 for (uint platform_devices_id = 0; platform_devices_id < platform_devices_cnt; platform_devices_id++)
12635 {
12636 cl_device_id device = platform_devices[platform_devices_id];
12637
12638 cl_device_type device_type;
12639
12640 hc_clGetDeviceInfo (data.ocl, device, CL_DEVICE_TYPE, sizeof (device_type), &device_type, NULL);
12641
12642 device_types_all |= device_type;
12643 }
12644 }
12645
12646 if ((device_types_all & (CL_DEVICE_TYPE_GPU | CL_DEVICE_TYPE_ACCELERATOR)) == 0)
12647 {
12648 device_types_filter |= CL_DEVICE_TYPE_CPU;
12649 }
12650 }
12651
12652 /**
12653 * OpenCL devices: simply push all devices from all platforms into the same device array
12654 */
12655
12656 hc_device_param_t *devices_param = (hc_device_param_t *) mycalloc (DEVICES_MAX, sizeof (hc_device_param_t));
12657
12658 data.devices_param = devices_param;
12659
12660 uint devices_cnt = 0;
12661
12662 uint devices_active = 0;
12663
12664 for (uint platform_id = 0; platform_id < platforms_cnt; platform_id++)
12665 {
12666 if ((opencl_platforms_filter & (1 << platform_id)) == 0) continue;
12667
12668 cl_platform_id platform = platforms[platform_id];
12669
12670 hc_clGetDeviceIDs (data.ocl, platform, CL_DEVICE_TYPE_ALL, DEVICES_MAX, platform_devices, &platform_devices_cnt);
12671
12672 char platform_vendor[INFOSZ] = { 0 };
12673
12674 hc_clGetPlatformInfo (data.ocl, platform, CL_PLATFORM_VENDOR, sizeof (platform_vendor), platform_vendor, NULL);
12675
12676 // find our own platform vendor because pocl and mesa are pushing original vendor_id through opencl
12677 // this causes trouble with vendor id based macros
12678 // we'll assign generic to those without special optimization available
12679
12680 cl_uint vendor_id = 0;
12681
12682 if (strcmp (platform_vendor, CL_VENDOR_AMD) == 0)
12683 {
12684 vendor_id = VENDOR_ID_AMD;
12685 }
12686 else if (strcmp (platform_vendor, CL_VENDOR_APPLE) == 0)
12687 {
12688 vendor_id = VENDOR_ID_APPLE;
12689 }
12690 else if (strcmp (platform_vendor, CL_VENDOR_INTEL_BEIGNET) == 0)
12691 {
12692 vendor_id = VENDOR_ID_INTEL_BEIGNET;
12693 }
12694 else if (strcmp (platform_vendor, CL_VENDOR_INTEL_SDK) == 0)
12695 {
12696 vendor_id = VENDOR_ID_INTEL_SDK;
12697 }
12698 else if (strcmp (platform_vendor, CL_VENDOR_MESA) == 0)
12699 {
12700 vendor_id = VENDOR_ID_MESA;
12701 }
12702 else if (strcmp (platform_vendor, CL_VENDOR_NV) == 0)
12703 {
12704 vendor_id = VENDOR_ID_NV;
12705 }
12706 else if (strcmp (platform_vendor, CL_VENDOR_POCL) == 0)
12707 {
12708 vendor_id = VENDOR_ID_POCL;
12709 }
12710 else
12711 {
12712 vendor_id = VENDOR_ID_GENERIC;
12713 }
12714
12715 for (uint platform_devices_id = 0; platform_devices_id < platform_devices_cnt; platform_devices_id++)
12716 {
12717 size_t param_value_size = 0;
12718
12719 const uint device_id = devices_cnt;
12720
12721 hc_device_param_t *device_param = &data.devices_param[device_id];
12722
12723 device_param->vendor_id = vendor_id;
12724
12725 device_param->device = platform_devices[platform_devices_id];
12726
12727 device_param->device_id = device_id;
12728
12729 device_param->platform_devices_id = platform_devices_id;
12730
12731 // device_type
12732
12733 cl_device_type device_type;
12734
12735 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_TYPE, sizeof (device_type), &device_type, NULL);
12736
12737 device_type &= ~CL_DEVICE_TYPE_DEFAULT;
12738
12739 device_param->device_type = device_type;
12740
12741 // device_name
12742
12743 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_NAME, 0, NULL, &param_value_size);
12744
12745 char *device_name = (char *) mymalloc (param_value_size);
12746
12747 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_NAME, param_value_size, device_name, NULL);
12748
12749 device_param->device_name = device_name;
12750
12751 // tuning db
12752
12753 tuning_db_entry_t *tuningdb_entry = tuning_db_search (tuning_db, device_param, attack_mode, hash_mode);
12754
12755 // device_version
12756
12757 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_VERSION, 0, NULL, &param_value_size);
12758
12759 char *device_version = (char *) mymalloc (param_value_size);
12760
12761 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_VERSION, param_value_size, device_version, NULL);
12762
12763 device_param->device_version = device_version;
12764
12765 // device_opencl_version
12766
12767 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_OPENCL_C_VERSION, 0, NULL, &param_value_size);
12768
12769 char *device_opencl_version = (char *) mymalloc (param_value_size);
12770
12771 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_OPENCL_C_VERSION, param_value_size, device_opencl_version, NULL);
12772
12773 device_param->opencl_v12 = device_opencl_version[9] > '1' || device_opencl_version[11] >= '2';
12774
12775 myfree (device_opencl_version);
12776
12777 // vector_width
12778
12779 cl_uint vector_width;
12780
12781 if (opencl_vector_width_chgd == 0)
12782 {
12783 if (tuningdb_entry == NULL || tuningdb_entry->vector_width == -1)
12784 {
12785 if (opti_type & OPTI_TYPE_USES_BITS_64)
12786 {
12787 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_NATIVE_VECTOR_WIDTH_LONG, sizeof (vector_width), &vector_width, NULL);
12788 }
12789 else
12790 {
12791 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_NATIVE_VECTOR_WIDTH_INT, sizeof (vector_width), &vector_width, NULL);
12792 }
12793 }
12794 else
12795 {
12796 vector_width = (cl_uint) tuningdb_entry->vector_width;
12797 }
12798 }
12799 else
12800 {
12801 vector_width = opencl_vector_width;
12802 }
12803
12804 if (vector_width > 16) vector_width = 16;
12805
12806 device_param->vector_width = vector_width;
12807
12808 // max_compute_units
12809
12810 cl_uint device_processors;
12811
12812 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_MAX_COMPUTE_UNITS, sizeof (device_processors), &device_processors, NULL);
12813
12814 device_param->device_processors = device_processors;
12815
12816 // device_maxmem_alloc
12817 // note we'll limit to 2gb, otherwise this causes all kinds of weird errors because of possible integer overflows in opencl runtimes
12818
12819 cl_ulong device_maxmem_alloc;
12820
12821 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_MAX_MEM_ALLOC_SIZE, sizeof (device_maxmem_alloc), &device_maxmem_alloc, NULL);
12822
12823 device_param->device_maxmem_alloc = MIN (device_maxmem_alloc, 0x7fffffff);
12824
12825 // device_global_mem
12826
12827 cl_ulong device_global_mem;
12828
12829 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_GLOBAL_MEM_SIZE, sizeof (device_global_mem), &device_global_mem, NULL);
12830
12831 device_param->device_global_mem = device_global_mem;
12832
12833 // max_work_group_size
12834
12835 size_t device_maxworkgroup_size;
12836
12837 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_MAX_WORK_GROUP_SIZE, sizeof (device_maxworkgroup_size), &device_maxworkgroup_size, NULL);
12838
12839 device_param->device_maxworkgroup_size = device_maxworkgroup_size;
12840
12841 // max_clock_frequency
12842
12843 cl_uint device_maxclock_frequency;
12844
12845 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_MAX_CLOCK_FREQUENCY, sizeof (device_maxclock_frequency), &device_maxclock_frequency, NULL);
12846
12847 device_param->device_maxclock_frequency = device_maxclock_frequency;
12848
12849 // device_endian_little
12850
12851 cl_bool device_endian_little;
12852
12853 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_ENDIAN_LITTLE, sizeof (device_endian_little), &device_endian_little, NULL);
12854
12855 if (device_endian_little == CL_FALSE)
12856 {
12857 log_info ("Device #%u: WARNING: not little endian device", device_id + 1);
12858
12859 device_param->skipped = 1;
12860 }
12861
12862 // device_available
12863
12864 cl_bool device_available;
12865
12866 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_AVAILABLE, sizeof (device_available), &device_available, NULL);
12867
12868 if (device_available == CL_FALSE)
12869 {
12870 log_info ("Device #%u: WARNING: device not available", device_id + 1);
12871
12872 device_param->skipped = 1;
12873 }
12874
12875 // device_compiler_available
12876
12877 cl_bool device_compiler_available;
12878
12879 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_COMPILER_AVAILABLE, sizeof (device_compiler_available), &device_compiler_available, NULL);
12880
12881 if (device_compiler_available == CL_FALSE)
12882 {
12883 log_info ("Device #%u: WARNING: device no compiler available", device_id + 1);
12884
12885 device_param->skipped = 1;
12886 }
12887
12888 // device_execution_capabilities
12889
12890 cl_device_exec_capabilities device_execution_capabilities;
12891
12892 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_EXECUTION_CAPABILITIES, sizeof (device_execution_capabilities), &device_execution_capabilities, NULL);
12893
12894 if ((device_execution_capabilities & CL_EXEC_KERNEL) == 0)
12895 {
12896 log_info ("Device #%u: WARNING: device does not support executing kernels", device_id + 1);
12897
12898 device_param->skipped = 1;
12899 }
12900
12901 // device_extensions
12902
12903 size_t device_extensions_size;
12904
12905 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_EXTENSIONS, 0, NULL, &device_extensions_size);
12906
12907 char *device_extensions = mymalloc (device_extensions_size + 1);
12908
12909 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_EXTENSIONS, device_extensions_size, device_extensions, NULL);
12910
12911 if (strstr (device_extensions, "base_atomics") == 0)
12912 {
12913 log_info ("Device #%u: WARNING: device does not support base atomics", device_id + 1);
12914
12915 device_param->skipped = 1;
12916 }
12917
12918 if (strstr (device_extensions, "byte_addressable_store") == 0)
12919 {
12920 log_info ("Device #%u: WARNING: device does not support byte addressable store", device_id + 1);
12921
12922 device_param->skipped = 1;
12923 }
12924
12925 myfree (device_extensions);
12926
12927 // device_local_mem_size
12928
12929 cl_ulong device_local_mem_size;
12930
12931 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_LOCAL_MEM_SIZE, sizeof (device_local_mem_size), &device_local_mem_size, NULL);
12932
12933 if (device_local_mem_size < 32768)
12934 {
12935 log_info ("Device #%u: WARNING: device local mem size is too small", device_id + 1);
12936
12937 device_param->skipped = 1;
12938 }
12939
12940
12941 // skipped
12942
12943 device_param->skipped |= ((devices_filter & (1 << device_id)) == 0);
12944 device_param->skipped |= ((device_types_filter & (device_type)) == 0);
12945
12946 // driver_version
12947
12948 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DRIVER_VERSION, 0, NULL, &param_value_size);
12949
12950 char *driver_version = (char *) mymalloc (param_value_size);
12951
12952 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DRIVER_VERSION, param_value_size, driver_version, NULL);
12953
12954 device_param->driver_version = driver_version;
12955
12956 // device_name_chksum
12957
12958 char *device_name_chksum = (char *) mymalloc (INFOSZ);
12959
12960 #if __x86_64__
12961 snprintf (device_name_chksum, INFOSZ - 1, "%u-%u-%u-%s-%s-%s-%u", 64, device_param->vendor_id, device_param->vector_width, device_param->device_name, device_param->device_version, device_param->driver_version, COMPTIME);
12962 #else
12963 snprintf (device_name_chksum, INFOSZ - 1, "%u-%u-%u-%s-%s-%s-%u", 32, device_param->vendor_id, device_param->vector_width, device_param->device_name, device_param->device_version, device_param->driver_version, COMPTIME);
12964 #endif
12965
12966 uint device_name_digest[4] = { 0 };
12967
12968 md5_64 ((uint *) device_name_chksum, device_name_digest);
12969
12970 snprintf (device_name_chksum, INFOSZ - 1, "%08x", device_name_digest[0]);
12971
12972 device_param->device_name_chksum = device_name_chksum;
12973
12974 // device_processor_cores
12975
12976 if (device_type & CL_DEVICE_TYPE_CPU)
12977 {
12978 cl_uint device_processor_cores = 1;
12979
12980 device_param->device_processor_cores = device_processor_cores;
12981 }
12982
12983 if (device_type & CL_DEVICE_TYPE_GPU)
12984 {
12985 if (vendor_id == VENDOR_ID_AMD)
12986 {
12987 cl_uint device_processor_cores = 0;
12988
12989 #define CL_DEVICE_WAVEFRONT_WIDTH_AMD 0x4043
12990
12991 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_WAVEFRONT_WIDTH_AMD, sizeof (device_processor_cores), &device_processor_cores, NULL);
12992
12993 device_param->device_processor_cores = device_processor_cores;
12994 }
12995 else if (vendor_id == VENDOR_ID_NV)
12996 {
12997 cl_uint kernel_exec_timeout = 0;
12998
12999 #define CL_DEVICE_KERNEL_EXEC_TIMEOUT_NV 0x4005
13000
13001 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_KERNEL_EXEC_TIMEOUT_NV, sizeof (kernel_exec_timeout), &kernel_exec_timeout, NULL);
13002
13003 device_param->kernel_exec_timeout = kernel_exec_timeout;
13004
13005 cl_uint device_processor_cores = 0;
13006
13007 #define CL_DEVICE_WARP_SIZE_NV 0x4003
13008
13009 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_WARP_SIZE_NV, sizeof (device_processor_cores), &device_processor_cores, NULL);
13010
13011 device_param->device_processor_cores = device_processor_cores;
13012
13013 cl_uint sm_minor = 0;
13014 cl_uint sm_major = 0;
13015
13016 #define CL_DEVICE_COMPUTE_CAPABILITY_MAJOR_NV 0x4000
13017 #define CL_DEVICE_COMPUTE_CAPABILITY_MINOR_NV 0x4001
13018
13019 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_COMPUTE_CAPABILITY_MINOR_NV, sizeof (sm_minor), &sm_minor, NULL);
13020 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_COMPUTE_CAPABILITY_MAJOR_NV, sizeof (sm_major), &sm_major, NULL);
13021
13022 device_param->sm_minor = sm_minor;
13023 device_param->sm_major = sm_major;
13024 }
13025 else
13026 {
13027 cl_uint device_processor_cores = 1;
13028
13029 device_param->device_processor_cores = device_processor_cores;
13030 }
13031 }
13032
13033 // display results
13034
13035 if ((benchmark == 1 || quiet == 0) && (algorithm_pos == 0))
13036 {
13037 if (device_param->skipped == 0)
13038 {
13039 log_info ("Device #%u: %s, %lu/%lu MB allocatable, %dMhz, %uMCU",
13040 device_id + 1,
13041 device_name,
13042 (unsigned int) (device_maxmem_alloc / 1024 / 1024),
13043 (unsigned int) (device_global_mem / 1024 / 1024),
13044 (unsigned int) (device_maxclock_frequency),
13045 (unsigned int) device_processors);
13046 }
13047 else
13048 {
13049 log_info ("Device #%u: %s, skipped",
13050 device_id + 1,
13051 device_name);
13052 }
13053 }
13054
13055 // common driver check
13056
13057 if (device_param->skipped == 0)
13058 {
13059 if (device_type & CL_DEVICE_TYPE_GPU)
13060 {
13061 if (vendor_id == VENDOR_ID_AMD)
13062 {
13063 int catalyst_check = (force == 1) ? 0 : 1;
13064
13065 int catalyst_warn = 0;
13066
13067 int catalyst_broken = 0;
13068
13069 if (catalyst_check == 1)
13070 {
13071 catalyst_warn = 1;
13072
13073 // v14.9 and higher
13074 if (atoi (device_param->driver_version) >= 1573)
13075 {
13076 catalyst_warn = 0;
13077 }
13078
13079 catalyst_check = 0;
13080 }
13081
13082 if (catalyst_broken == 1)
13083 {
13084 log_info ("");
13085 log_info ("ATTENTION! The installed catalyst driver in your system is known to be broken!");
13086 log_info ("It will pass over cracked hashes and does not report them as cracked");
13087 log_info ("You are STRONGLY encouraged not to use it");
13088 log_info ("You can use --force to override this but do not post error reports if you do so");
13089 log_info ("");
13090
13091 return (-1);
13092 }
13093
13094 if (catalyst_warn == 1)
13095 {
13096 log_info ("");
13097 log_info ("ATTENTION! Unsupported or incorrect installed catalyst driver detected!");
13098 log_info ("You are STRONGLY encouraged to use the official supported catalyst driver for good reasons");
13099 log_info ("See hashcat's homepage for official supported catalyst drivers");
13100 #ifdef _WIN
13101 log_info ("Also see: http://hashcat.net/wiki/doku.php?id=upgrading_amd_drivers_how_to");
13102 #endif
13103 log_info ("You can use --force to override this but do not post error reports if you do so");
13104 log_info ("");
13105
13106 return (-1);
13107 }
13108 }
13109 else if (vendor_id == VENDOR_ID_NV)
13110 {
13111 if (device_param->kernel_exec_timeout != 0)
13112 {
13113 if (data.quiet == 0) log_info ("Device #%u: WARNING! Kernel exec timeout is not disabled, it might cause you errors of code 702", device_id + 1);
13114 if (data.quiet == 0) log_info (" See the wiki on how to disable it: https://hashcat.net/wiki/doku.php?id=timeout_patch");
13115 }
13116 }
13117 }
13118
13119 if (device_type & CL_DEVICE_TYPE_CPU)
13120 {
13121 if (vendor_id == VENDOR_ID_AMD)
13122 {
13123 if (force == 0)
13124 {
13125 log_info ("");
13126 log_info ("ATTENTION! OpenCL support for CPU of catalyst driver is not reliable.");
13127 log_info ("You are STRONGLY encouraged not to use it");
13128 log_info ("You can use --force to override this but do not post error reports if you do so");
13129 log_info ("A good alternative is the free pocl >= v0.13, but make sure to use a LLVM >= v3.8");
13130 log_info ("");
13131
13132 return (-1);
13133 }
13134 }
13135 }
13136
13137 /**
13138 * kernel accel and loops tuning db adjustment
13139 */
13140
13141 device_param->kernel_accel_min = 1;
13142 device_param->kernel_accel_max = 1024;
13143
13144 device_param->kernel_loops_min = 1;
13145 device_param->kernel_loops_max = 1024;
13146
13147 tuning_db_entry_t *tuningdb_entry = tuning_db_search (tuning_db, device_param, attack_mode, hash_mode);
13148
13149 if (tuningdb_entry)
13150 {
13151 u32 _kernel_accel = tuningdb_entry->kernel_accel;
13152 u32 _kernel_loops = tuningdb_entry->kernel_loops;
13153
13154 if (_kernel_accel)
13155 {
13156 device_param->kernel_accel_min = _kernel_accel;
13157 device_param->kernel_accel_max = _kernel_accel;
13158 }
13159
13160 if (_kernel_loops)
13161 {
13162 if (workload_profile == 1)
13163 {
13164 _kernel_loops = (_kernel_loops > 8) ? _kernel_loops / 8 : 1;
13165 }
13166 else if (workload_profile == 2)
13167 {
13168 _kernel_loops = (_kernel_loops > 4) ? _kernel_loops / 4 : 1;
13169 }
13170
13171 device_param->kernel_loops_min = _kernel_loops;
13172 device_param->kernel_loops_max = _kernel_loops;
13173 }
13174 }
13175
13176 // commandline parameters overwrite tuningdb entries
13177
13178 if (kernel_accel)
13179 {
13180 device_param->kernel_accel_min = kernel_accel;
13181 device_param->kernel_accel_max = kernel_accel;
13182 }
13183
13184 if (kernel_loops)
13185 {
13186 device_param->kernel_loops_min = kernel_loops;
13187 device_param->kernel_loops_max = kernel_loops;
13188 }
13189
13190 /**
13191 * activate device
13192 */
13193
13194 devices_active++;
13195 }
13196
13197 // next please
13198
13199 devices_cnt++;
13200 }
13201 }
13202
13203 if (keyspace == 0 && devices_active == 0)
13204 {
13205 log_error ("ERROR: No devices found/left");
13206
13207 return (-1);
13208 }
13209
13210 // additional check to see if the user has chosen a device that is not within the range of available devices (i.e. larger than devices_cnt)
13211
13212 if (devices_filter != (uint) -1)
13213 {
13214 uint devices_cnt_mask = ~(((uint) -1 >> devices_cnt) << devices_cnt);
13215
13216 if (devices_filter > devices_cnt_mask)
13217 {
13218 log_error ("ERROR: The device specified by the --opencl-devices parameter is larger than the number of available devices (%d)", devices_cnt);
13219
13220 return (-1);
13221 }
13222 }
13223
13224 data.devices_cnt = devices_cnt;
13225
13226 data.devices_active = devices_active;
13227
13228 if ((benchmark == 1 || quiet == 0) && (algorithm_pos == 0))
13229 {
13230 log_info ("");
13231 }
13232
13233 /**
13234 * HM devices: init
13235 */
13236
13237 #ifdef HAVE_HWMON
13238 #if defined(HAVE_NVML) || defined(HAVE_NVAPI)
13239 hm_attrs_t hm_adapters_nv[DEVICES_MAX] = { { { 0 }, 0, 0 } };
13240 #endif
13241
13242 #ifdef HAVE_ADL
13243 hm_attrs_t hm_adapters_amd[DEVICES_MAX] = { { { 0 }, 0, 0 } };
13244 #endif
13245
13246 if (gpu_temp_disable == 0)
13247 {
13248 #if defined(WIN) && defined(HAVE_NVAPI)
13249 NVAPI_PTR *nvapi = (NVAPI_PTR *) mymalloc (sizeof (NVAPI_PTR));
13250
13251 if (nvapi_init (nvapi) == 0)
13252 data.hm_nv = nvapi;
13253
13254 if (data.hm_nv)
13255 {
13256 if (hm_NvAPI_Initialize (data.hm_nv) == NVAPI_OK)
13257 {
13258 HM_ADAPTER_NV nvGPUHandle[DEVICES_MAX] = { 0 };
13259
13260 int tmp_in = hm_get_adapter_index_nv (nvGPUHandle);
13261
13262 int tmp_out = 0;
13263
13264 for (int i = 0; i < tmp_in; i++)
13265 {
13266 hm_adapters_nv[tmp_out++].adapter_index.nv = nvGPUHandle[i];
13267 }
13268
13269 for (int i = 0; i < tmp_out; i++)
13270 {
13271 NV_GPU_COOLER_SETTINGS pCoolerSettings;
13272
13273 pCoolerSettings.Version = GPU_COOLER_SETTINGS_VER | sizeof (NV_GPU_COOLER_SETTINGS);
13274
13275 if (hm_NvAPI_GPU_GetCoolerSettings (data.hm_nv, hm_adapters_nv[i].adapter_index.nv, 0, &pCoolerSettings) != NVAPI_NOT_SUPPORTED) hm_adapters_nv[i].fan_supported = 1;
13276 }
13277 }
13278 }
13279 #endif // WIN && HAVE_NVAPI
13280
13281 #if defined(LINUX) && defined(HAVE_NVML)
13282 NVML_PTR *nvml = (NVML_PTR *) mymalloc (sizeof (NVML_PTR));
13283
13284 if (nvml_init (nvml) == 0)
13285 data.hm_nv = nvml;
13286
13287 if (data.hm_nv)
13288 {
13289 if (hm_NVML_nvmlInit (data.hm_nv) == NVML_SUCCESS)
13290 {
13291 HM_ADAPTER_NV nvGPUHandle[DEVICES_MAX] = { 0 };
13292
13293 int tmp_in = hm_get_adapter_index_nv (nvGPUHandle);
13294
13295 int tmp_out = 0;
13296
13297 for (int i = 0; i < tmp_in; i++)
13298 {
13299 hm_adapters_nv[tmp_out++].adapter_index.nv = nvGPUHandle[i];
13300 }
13301
13302 for (int i = 0; i < tmp_out; i++)
13303 {
13304 unsigned int speed;
13305
13306 if (hm_NVML_nvmlDeviceGetFanSpeed (data.hm_nv, 1, hm_adapters_nv[i].adapter_index.nv, &speed) != NVML_ERROR_NOT_SUPPORTED) hm_adapters_nv[i].fan_supported = 1;
13307 }
13308 }
13309 }
13310 #endif // LINUX && HAVE_NVML
13311
13312 data.hm_amd = NULL;
13313
13314 #ifdef HAVE_ADL
13315 ADL_PTR *adl = (ADL_PTR *) mymalloc (sizeof (ADL_PTR));
13316
13317 if (adl_init (adl) == 0)
13318 data.hm_amd = adl;
13319
13320 if (data.hm_amd)
13321 {
13322 if (hm_ADL_Main_Control_Create (data.hm_amd, ADL_Main_Memory_Alloc, 0) == ADL_OK)
13323 {
13324 // total number of adapters
13325
13326 int hm_adapters_num;
13327
13328 if (get_adapters_num_amd (data.hm_amd, &hm_adapters_num) != 0) return (-1);
13329
13330 // adapter info
13331
13332 LPAdapterInfo lpAdapterInfo = hm_get_adapter_info_amd (data.hm_amd, hm_adapters_num);
13333
13334 if (lpAdapterInfo == NULL) return (-1);
13335
13336 // get a list (of ids of) valid/usable adapters
13337
13338 int num_adl_adapters = 0;
13339
13340 u32 *valid_adl_device_list = hm_get_list_valid_adl_adapters (hm_adapters_num, &num_adl_adapters, lpAdapterInfo);
13341
13342 if (num_adl_adapters > 0)
13343 {
13344 hc_thread_mutex_lock (mux_adl);
13345
13346 // hm_get_opencl_busid_devid (hm_adapters_amd, devices_all_cnt, devices_all);
13347
13348 hm_get_adapter_index_amd (hm_adapters_amd, valid_adl_device_list, num_adl_adapters, lpAdapterInfo);
13349
13350 hm_get_overdrive_version (data.hm_amd, hm_adapters_amd, valid_adl_device_list, num_adl_adapters, lpAdapterInfo);
13351 hm_check_fanspeed_control (data.hm_amd, hm_adapters_amd, valid_adl_device_list, num_adl_adapters, lpAdapterInfo);
13352
13353 hc_thread_mutex_unlock (mux_adl);
13354 }
13355
13356 myfree (valid_adl_device_list);
13357 myfree (lpAdapterInfo);
13358 }
13359 }
13360 #endif // HAVE_ADL
13361
13362 if (data.hm_amd == NULL && data.hm_nv == NULL)
13363 {
13364 gpu_temp_disable = 1;
13365 }
13366 }
13367
13368 /**
13369 * OpenCL devices: allocate buffer for device specific information
13370 */
13371
13372 #ifdef HAVE_HWMON
13373 int *temp_retain_fanspeed_value = (int *) mycalloc (data.devices_cnt, sizeof (int));
13374
13375 #ifdef HAVE_ADL
13376 ADLOD6MemClockState *od_clock_mem_status = (ADLOD6MemClockState *) mycalloc (data.devices_cnt, sizeof (ADLOD6MemClockState));
13377
13378 int *od_power_control_status = (int *) mycalloc (data.devices_cnt, sizeof (int));
13379 #endif // ADL
13380 #endif
13381
13382 /**
13383 * enable custom signal handler(s)
13384 */
13385
13386 if (benchmark == 0)
13387 {
13388 hc_signal (sigHandler_default);
13389 }
13390 else
13391 {
13392 hc_signal (sigHandler_benchmark);
13393 }
13394
13395 /**
13396 * User-defined GPU temp handling
13397 */
13398
13399 #ifdef HAVE_HWMON
13400 if (gpu_temp_disable == 1)
13401 {
13402 gpu_temp_abort = 0;
13403 gpu_temp_retain = 0;
13404 }
13405
13406 if ((gpu_temp_abort != 0) && (gpu_temp_retain != 0))
13407 {
13408 if (gpu_temp_abort < gpu_temp_retain)
13409 {
13410 log_error ("ERROR: invalid values for gpu-temp-abort. Parameter gpu-temp-abort is less than gpu-temp-retain.");
13411
13412 return (-1);
13413 }
13414 }
13415
13416 data.gpu_temp_disable = gpu_temp_disable;
13417 data.gpu_temp_abort = gpu_temp_abort;
13418 data.gpu_temp_retain = gpu_temp_retain;
13419 #endif
13420
13421 /**
13422 * inform the user
13423 */
13424
13425 if (data.quiet == 0)
13426 {
13427 log_info ("Hashes: %u hashes; %u unique digests, %u unique salts", hashes_cnt_orig, digests_cnt, salts_cnt);
13428
13429 log_info ("Bitmaps: %u bits, %u entries, 0x%08x mask, %u bytes, %u/%u rotates", bitmap_bits, bitmap_nums, bitmap_mask, bitmap_size, bitmap_shift1, bitmap_shift2);
13430
13431 if (attack_mode == ATTACK_MODE_STRAIGHT)
13432 {
13433 log_info ("Rules: %u", kernel_rules_cnt);
13434 }
13435
13436 if (opti_type)
13437 {
13438 log_info ("Applicable Optimizers:");
13439
13440 for (uint i = 0; i < 32; i++)
13441 {
13442 const uint opti_bit = 1u << i;
13443
13444 if (opti_type & opti_bit) log_info ("* %s", stroptitype (opti_bit));
13445 }
13446 }
13447
13448 /**
13449 * Watchdog and Temperature balance
13450 */
13451
13452 #ifdef HAVE_HWMON
13453 if (gpu_temp_disable == 0 && data.hm_amd == NULL && data.hm_nv == NULL)
13454 {
13455 log_info ("Watchdog: Hardware Monitoring Interface not found on your system");
13456 }
13457
13458 if (gpu_temp_abort == 0)
13459 {
13460 log_info ("Watchdog: Temperature abort trigger disabled");
13461 }
13462 else
13463 {
13464 log_info ("Watchdog: Temperature abort trigger set to %uc", gpu_temp_abort);
13465 }
13466
13467 if (gpu_temp_retain == 0)
13468 {
13469 log_info ("Watchdog: Temperature retain trigger disabled");
13470 }
13471 else
13472 {
13473 log_info ("Watchdog: Temperature retain trigger set to %uc", gpu_temp_retain);
13474 }
13475
13476 if (data.quiet == 0) log_info ("");
13477 #endif
13478 }
13479
13480 /**
13481 * HM devices: copy
13482 */
13483
13484 if (gpu_temp_disable == 0)
13485 {
13486 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
13487 {
13488 hc_device_param_t *device_param = &data.devices_param[device_id];
13489
13490 if ((device_param->device_type & CL_DEVICE_TYPE_GPU) == 0) continue;
13491
13492 if (device_param->skipped) continue;
13493
13494 const uint platform_devices_id = device_param->platform_devices_id;
13495
13496 #if defined(HAVE_NVML) || defined(HAVE_NVAPI)
13497 if (device_param->vendor_id == VENDOR_ID_NV)
13498 {
13499 memcpy (&data.hm_device[device_id], &hm_adapters_nv[platform_devices_id], sizeof (hm_attrs_t));
13500 }
13501 #endif
13502
13503 #ifdef HAVE_ADL
13504 if (device_param->vendor_id == VENDOR_ID_AMD)
13505 {
13506 memcpy (&data.hm_device[device_id], &hm_adapters_amd[platform_devices_id], sizeof (hm_attrs_t));
13507 }
13508 #endif
13509 }
13510 }
13511
13512 /*
13513 * Temporary fix:
13514 * with AMD r9 295x cards it seems that we need to set the powertune value just AFTER the ocl init stuff
13515 * otherwise after hc_clCreateContext () etc, powertune value was set back to "normal" and cards unfortunately
13516 * were not working @ full speed (setting hm_ADL_Overdrive_PowerControl_Set () here seems to fix the problem)
13517 * Driver / ADL bug?
13518 */
13519
13520 #ifdef HAVE_ADL
13521 if (powertune_enable == 1)
13522 {
13523 hc_thread_mutex_lock (mux_adl);
13524
13525 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
13526 {
13527 hc_device_param_t *device_param = &data.devices_param[device_id];
13528
13529 if (device_param->skipped) continue;
13530
13531 if (data.hm_device[device_id].od_version == 6)
13532 {
13533 // set powertune value only
13534
13535 int powertune_supported = 0;
13536
13537 int ADL_rc = 0;
13538
13539 if ((ADL_rc = hm_ADL_Overdrive6_PowerControl_Caps (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune_supported)) != ADL_OK)
13540 {
13541 log_error ("ERROR: Failed to get ADL PowerControl Capabilities");
13542
13543 return (-1);
13544 }
13545
13546 if (powertune_supported != 0)
13547 {
13548 // powertune set
13549 ADLOD6PowerControlInfo powertune = {0, 0, 0, 0, 0};
13550
13551 if ((ADL_rc = hm_ADL_Overdrive_PowerControlInfo_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune)) != ADL_OK)
13552 {
13553 log_error ("ERROR: Failed to get current ADL PowerControl settings");
13554
13555 return (-1);
13556 }
13557
13558 if ((ADL_rc = hm_ADL_Overdrive_PowerControl_Set (data.hm_amd, data.hm_device[device_id].adapter_index.amd, powertune.iMaxValue)) != ADL_OK)
13559 {
13560 log_error ("ERROR: Failed to set new ADL PowerControl values");
13561
13562 return (-1);
13563 }
13564 }
13565 }
13566 }
13567
13568 hc_thread_mutex_unlock (mux_adl);
13569 }
13570 #endif // HAVE_ADK
13571 #endif // HAVE_HWMON
13572
13573 #ifdef DEBUG
13574 if (benchmark == 1) log_info ("Hashmode: %d", data.hash_mode);
13575 #endif
13576
13577 if (data.quiet == 0) log_info_nn ("Initializing device kernels and memory...");
13578
13579 uint kernel_power_all = 0;
13580
13581 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
13582 {
13583 /**
13584 * host buffer
13585 */
13586
13587 hc_device_param_t *device_param = &data.devices_param[device_id];
13588
13589 if (device_param->skipped) continue;
13590
13591 /**
13592 * device properties
13593 */
13594
13595 const char *device_name_chksum = device_param->device_name_chksum;
13596 const u32 device_processors = device_param->device_processors;
13597 const u32 device_processor_cores = device_param->device_processor_cores;
13598
13599 /**
13600 * create context for each device
13601 */
13602
13603 device_param->context = hc_clCreateContext (data.ocl, NULL, 1, &device_param->device, NULL, NULL);
13604
13605 /**
13606 * create command-queue
13607 */
13608
13609 // not supported with NV
13610 // device_param->command_queue = hc_clCreateCommandQueueWithProperties (device_param->context, device_param->device, NULL);
13611
13612 device_param->command_queue = hc_clCreateCommandQueue (data.ocl, device_param->context, device_param->device, CL_QUEUE_PROFILING_ENABLE);
13613
13614 /**
13615 * kernel threads: some algorithms need a fixed kernel-threads count
13616 * because of shared memory usage or bitslice
13617 * there needs to be some upper limit, otherwise there's too much overhead
13618 */
13619
13620 uint kernel_threads = MIN (KERNEL_THREADS_MAX, device_param->device_maxworkgroup_size);
13621
13622 if (device_param->device_type & CL_DEVICE_TYPE_CPU)
13623 {
13624 kernel_threads = KERNEL_THREADS_MAX_CPU;
13625 }
13626
13627 if (hash_mode == 1500) kernel_threads = 64; // DES
13628 if (hash_mode == 3000) kernel_threads = 64; // DES
13629 if (hash_mode == 3200) kernel_threads = 8; // Blowfish
13630 if (hash_mode == 7500) kernel_threads = 64; // RC4
13631 if (hash_mode == 9000) kernel_threads = 8; // Blowfish
13632 if (hash_mode == 9700) kernel_threads = 64; // RC4
13633 if (hash_mode == 9710) kernel_threads = 64; // RC4
13634 if (hash_mode == 9800) kernel_threads = 64; // RC4
13635 if (hash_mode == 9810) kernel_threads = 64; // RC4
13636 if (hash_mode == 10400) kernel_threads = 64; // RC4
13637 if (hash_mode == 10410) kernel_threads = 64; // RC4
13638 if (hash_mode == 10500) kernel_threads = 64; // RC4
13639 if (hash_mode == 13100) kernel_threads = 64; // RC4
13640
13641 /**
13642 * create input buffers on device : calculate size of fixed memory buffers
13643 */
13644
13645 size_t size_root_css = SP_PW_MAX * sizeof (cs_t);
13646 size_t size_markov_css = SP_PW_MAX * CHARSIZ * sizeof (cs_t);
13647
13648 device_param->size_root_css = size_root_css;
13649 device_param->size_markov_css = size_markov_css;
13650
13651 size_t size_results = kernel_threads * sizeof (uint);
13652
13653 device_param->size_results = size_results;
13654
13655 size_t size_rules = kernel_rules_cnt * sizeof (kernel_rule_t);
13656 size_t size_rules_c = KERNEL_RULES * sizeof (kernel_rule_t);
13657
13658 size_t size_plains = digests_cnt * sizeof (plain_t);
13659 size_t size_salts = salts_cnt * sizeof (salt_t);
13660 size_t size_esalts = salts_cnt * esalt_size;
13661
13662 device_param->size_plains = size_plains;
13663 device_param->size_digests = size_digests;
13664 device_param->size_shown = size_shown;
13665 device_param->size_salts = size_salts;
13666
13667 size_t size_combs = KERNEL_COMBS * sizeof (comb_t);
13668 size_t size_bfs = KERNEL_BFS * sizeof (bf_t);
13669 size_t size_tm = 32 * sizeof (bs_word_t);
13670
13671 // scryptV stuff
13672
13673 size_t size_scryptV = 1;
13674
13675 if ((hash_mode == 8900) || (hash_mode == 9300))
13676 {
13677 uint tmto_start = 0;
13678 uint tmto_stop = 10;
13679
13680 if (scrypt_tmto)
13681 {
13682 tmto_start = scrypt_tmto;
13683 }
13684 else
13685 {
13686 // in case the user did not specify the tmto manually
13687 // use some values known to run best (tested on 290x for AMD and 980ti for NV)
13688 // but set the lower end only in case the user has a device with too less memory
13689
13690 if (hash_mode == 8900)
13691 {
13692 if (device_param->vendor_id == VENDOR_ID_AMD)
13693 {
13694 tmto_start = 1;
13695 }
13696 else if (device_param->vendor_id == VENDOR_ID_NV)
13697 {
13698 tmto_start = 2;
13699 }
13700 }
13701 else if (hash_mode == 9300)
13702 {
13703 if (device_param->vendor_id == VENDOR_ID_AMD)
13704 {
13705 tmto_start = 2;
13706 }
13707 else if (device_param->vendor_id == VENDOR_ID_NV)
13708 {
13709 tmto_start = 2;
13710 }
13711 }
13712 }
13713
13714 for (uint tmto = tmto_start; tmto < tmto_stop; tmto++)
13715 {
13716 // TODO: in theory the following calculation needs to be done per salt, not global
13717 // we assume all hashes have the same scrypt settings
13718
13719 size_scryptV = (128 * data.salts_buf[0].scrypt_r) * data.salts_buf[0].scrypt_N;
13720
13721 size_scryptV /= 1 << tmto;
13722
13723 size_scryptV *= device_processors * device_processor_cores;
13724
13725 if (size_scryptV > device_param->device_maxmem_alloc)
13726 {
13727 if (quiet == 0) log_info ("WARNING: not enough device memory allocatable to use --scrypt-tmto %d, increasing...", tmto);
13728
13729 continue;
13730 }
13731
13732 for (uint salts_pos = 0; salts_pos < data.salts_cnt; salts_pos++)
13733 {
13734 data.salts_buf[salts_pos].scrypt_tmto = tmto;
13735 data.salts_buf[salts_pos].scrypt_phy = device_processors * device_processor_cores;
13736 }
13737
13738 break;
13739 }
13740
13741 if (data.salts_buf[0].scrypt_phy == 0)
13742 {
13743 log_error ("ERROR: can't allocate enough device memory");
13744
13745 return -1;
13746 }
13747
13748 if (quiet == 0) log_info ("SCRYPT tmto optimizer value set to: %u, mem: %u\n", data.salts_buf[0].scrypt_tmto, size_scryptV);
13749 }
13750
13751 /**
13752 * some algorithms need a fixed kernel-loops count
13753 */
13754
13755 if (hash_mode == 1500)
13756 {
13757 const u32 kernel_loops_fixed = 1024;
13758
13759 device_param->kernel_loops_min = kernel_loops_fixed;
13760 device_param->kernel_loops_max = kernel_loops_fixed;
13761 }
13762
13763 if (hash_mode == 3000)
13764 {
13765 const u32 kernel_loops_fixed = 1024;
13766
13767 device_param->kernel_loops_min = kernel_loops_fixed;
13768 device_param->kernel_loops_max = kernel_loops_fixed;
13769 }
13770
13771 if (hash_mode == 8900)
13772 {
13773 const u32 kernel_loops_fixed = 1;
13774
13775 device_param->kernel_loops_min = kernel_loops_fixed;
13776 device_param->kernel_loops_max = kernel_loops_fixed;
13777 }
13778
13779 if (hash_mode == 9300)
13780 {
13781 const u32 kernel_loops_fixed = 1;
13782
13783 device_param->kernel_loops_min = kernel_loops_fixed;
13784 device_param->kernel_loops_max = kernel_loops_fixed;
13785 }
13786
13787 if (hash_mode == 12500)
13788 {
13789 const u32 kernel_loops_fixed = ROUNDS_RAR3 / 16;
13790
13791 device_param->kernel_loops_min = kernel_loops_fixed;
13792 device_param->kernel_loops_max = kernel_loops_fixed;
13793 }
13794
13795 /**
13796 * some algorithms have a maximum kernel-loops count
13797 */
13798
13799 if (attack_exec == ATTACK_EXEC_OUTSIDE_KERNEL)
13800 {
13801 if (data.salts_buf[0].salt_iter < device_param->kernel_loops_max)
13802 {
13803 device_param->kernel_loops_max = data.salts_buf[0].salt_iter;
13804 }
13805 }
13806
13807 /**
13808 * some algorithms need a special kernel-accel
13809 */
13810
13811 if (hash_mode == 8900)
13812 {
13813 device_param->kernel_accel_min = 1;
13814 device_param->kernel_accel_max = 64;
13815 }
13816
13817 if (hash_mode == 9300)
13818 {
13819 device_param->kernel_accel_min = 1;
13820 device_param->kernel_accel_max = 64;
13821 }
13822
13823 u32 kernel_accel_min = device_param->kernel_accel_min;
13824 u32 kernel_accel_max = device_param->kernel_accel_max;
13825
13826 // find out if we would request too much memory on memory blocks which are based on kernel_accel
13827
13828 size_t size_pws = 4;
13829 size_t size_tmps = 4;
13830 size_t size_hooks = 4;
13831
13832 while (kernel_accel_max >= kernel_accel_min)
13833 {
13834 const u32 kernel_power_max = device_processors * kernel_threads * kernel_accel_max;
13835
13836 // size_pws
13837
13838 size_pws = kernel_power_max * sizeof (pw_t);
13839
13840 // size_tmps
13841
13842 switch (hash_mode)
13843 {
13844 case 400: size_tmps = kernel_power_max * sizeof (phpass_tmp_t); break;
13845 case 500: size_tmps = kernel_power_max * sizeof (md5crypt_tmp_t); break;
13846 case 501: size_tmps = kernel_power_max * sizeof (md5crypt_tmp_t); break;
13847 case 1600: size_tmps = kernel_power_max * sizeof (md5crypt_tmp_t); break;
13848 case 1800: size_tmps = kernel_power_max * sizeof (sha512crypt_tmp_t); break;
13849 case 2100: size_tmps = kernel_power_max * sizeof (dcc2_tmp_t); break;
13850 case 2500: size_tmps = kernel_power_max * sizeof (wpa_tmp_t); break;
13851 case 3200: size_tmps = kernel_power_max * sizeof (bcrypt_tmp_t); break;
13852 case 5200: size_tmps = kernel_power_max * sizeof (pwsafe3_tmp_t); break;
13853 case 5800: size_tmps = kernel_power_max * sizeof (androidpin_tmp_t); break;
13854 case 6211: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13855 case 6212: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13856 case 6213: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13857 case 6221: size_tmps = kernel_power_max * sizeof (tc64_tmp_t); break;
13858 case 6222: size_tmps = kernel_power_max * sizeof (tc64_tmp_t); break;
13859 case 6223: size_tmps = kernel_power_max * sizeof (tc64_tmp_t); break;
13860 case 6231: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13861 case 6232: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13862 case 6233: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13863 case 6241: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13864 case 6242: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13865 case 6243: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13866 case 6300: size_tmps = kernel_power_max * sizeof (md5crypt_tmp_t); break;
13867 case 6400: size_tmps = kernel_power_max * sizeof (sha256aix_tmp_t); break;
13868 case 6500: size_tmps = kernel_power_max * sizeof (sha512aix_tmp_t); break;
13869 case 6600: size_tmps = kernel_power_max * sizeof (agilekey_tmp_t); break;
13870 case 6700: size_tmps = kernel_power_max * sizeof (sha1aix_tmp_t); break;
13871 case 6800: size_tmps = kernel_power_max * sizeof (lastpass_tmp_t); break;
13872 case 7100: size_tmps = kernel_power_max * sizeof (pbkdf2_sha512_tmp_t); break;
13873 case 7200: size_tmps = kernel_power_max * sizeof (pbkdf2_sha512_tmp_t); break;
13874 case 7400: size_tmps = kernel_power_max * sizeof (sha256crypt_tmp_t); break;
13875 case 7900: size_tmps = kernel_power_max * sizeof (drupal7_tmp_t); break;
13876 case 8200: size_tmps = kernel_power_max * sizeof (pbkdf2_sha512_tmp_t); break;
13877 case 8800: size_tmps = kernel_power_max * sizeof (androidfde_tmp_t); break;
13878 case 8900: size_tmps = kernel_power_max * sizeof (scrypt_tmp_t); break;
13879 case 9000: size_tmps = kernel_power_max * sizeof (pwsafe2_tmp_t); break;
13880 case 9100: size_tmps = kernel_power_max * sizeof (lotus8_tmp_t); break;
13881 case 9200: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13882 case 9300: size_tmps = kernel_power_max * sizeof (scrypt_tmp_t); break;
13883 case 9400: size_tmps = kernel_power_max * sizeof (office2007_tmp_t); break;
13884 case 9500: size_tmps = kernel_power_max * sizeof (office2010_tmp_t); break;
13885 case 9600: size_tmps = kernel_power_max * sizeof (office2013_tmp_t); break;
13886 case 10000: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13887 case 10200: size_tmps = kernel_power_max * sizeof (cram_md5_t); break;
13888 case 10300: size_tmps = kernel_power_max * sizeof (saph_sha1_tmp_t); break;
13889 case 10500: size_tmps = kernel_power_max * sizeof (pdf14_tmp_t); break;
13890 case 10700: size_tmps = kernel_power_max * sizeof (pdf17l8_tmp_t); break;
13891 case 10900: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13892 case 11300: size_tmps = kernel_power_max * sizeof (bitcoin_wallet_tmp_t); break;
13893 case 11600: size_tmps = kernel_power_max * sizeof (seven_zip_tmp_t); break;
13894 case 11900: size_tmps = kernel_power_max * sizeof (pbkdf2_md5_tmp_t); break;
13895 case 12000: size_tmps = kernel_power_max * sizeof (pbkdf2_sha1_tmp_t); break;
13896 case 12100: size_tmps = kernel_power_max * sizeof (pbkdf2_sha512_tmp_t); break;
13897 case 12200: size_tmps = kernel_power_max * sizeof (ecryptfs_tmp_t); break;
13898 case 12300: size_tmps = kernel_power_max * sizeof (oraclet_tmp_t); break;
13899 case 12400: size_tmps = kernel_power_max * sizeof (bsdicrypt_tmp_t); break;
13900 case 12500: size_tmps = kernel_power_max * sizeof (rar3_tmp_t); break;
13901 case 12700: size_tmps = kernel_power_max * sizeof (mywallet_tmp_t); break;
13902 case 12800: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13903 case 12900: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13904 case 13000: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13905 case 13200: size_tmps = kernel_power_max * sizeof (axcrypt_tmp_t); break;
13906 case 13400: size_tmps = kernel_power_max * sizeof (keepass_tmp_t); break;
13907 case 13600: size_tmps = kernel_power_max * sizeof (pbkdf2_sha1_tmp_t); break;
13908 };
13909
13910 // size_hooks
13911
13912 if ((opts_type & OPTS_TYPE_HOOK12) || (opts_type & OPTS_TYPE_HOOK23))
13913 {
13914 // none yet
13915 }
13916
13917 // now check if all device-memory sizes which depend on the kernel_accel_max amplifier are within its boundaries
13918 // if not, decrease amplifier and try again
13919
13920 int skip = 0;
13921
13922 if (size_pws > device_param->device_maxmem_alloc) skip = 1;
13923 if (size_tmps > device_param->device_maxmem_alloc) skip = 1;
13924 if (size_hooks > device_param->device_maxmem_alloc) skip = 1;
13925
13926 if (( bitmap_size
13927 + bitmap_size
13928 + bitmap_size
13929 + bitmap_size
13930 + bitmap_size
13931 + bitmap_size
13932 + bitmap_size
13933 + bitmap_size
13934 + size_bfs
13935 + size_combs
13936 + size_digests
13937 + size_esalts
13938 + size_hooks
13939 + size_markov_css
13940 + size_plains
13941 + size_pws
13942 + size_pws // not a bug
13943 + size_results
13944 + size_root_css
13945 + size_rules
13946 + size_rules_c
13947 + size_salts
13948 + size_scryptV
13949 + size_shown
13950 + size_tm
13951 + size_tmps) > device_param->device_global_mem) skip = 1;
13952
13953 if (skip == 1)
13954 {
13955 kernel_accel_max--;
13956
13957 continue;
13958 }
13959
13960 break;
13961 }
13962
13963 /*
13964 if (kernel_accel_max == 0)
13965 {
13966 log_error ("Device #%u: Device does not provide enough allocatable device-memory to handle hash-type %u", device_id + 1, data.hash_mode);
13967
13968 return -1;
13969 }
13970 */
13971
13972 device_param->kernel_accel_min = kernel_accel_min;
13973 device_param->kernel_accel_max = kernel_accel_max;
13974
13975 /*
13976 if (kernel_accel_max < kernel_accel)
13977 {
13978 if (quiet == 0) log_info ("Device #%u: Reduced maximum kernel-accel to %u", device_id + 1, kernel_accel_max);
13979
13980 device_param->kernel_accel = kernel_accel_max;
13981 }
13982 */
13983
13984 device_param->size_bfs = size_bfs;
13985 device_param->size_combs = size_combs;
13986 device_param->size_rules = size_rules;
13987 device_param->size_rules_c = size_rules_c;
13988 device_param->size_pws = size_pws;
13989 device_param->size_tmps = size_tmps;
13990 device_param->size_hooks = size_hooks;
13991
13992 // do not confuse kernel_accel_max with kernel_accel here
13993
13994 const u32 kernel_power = device_processors * kernel_threads * kernel_accel_max;
13995
13996 device_param->kernel_threads = kernel_threads;
13997 device_param->kernel_power_user = kernel_power;
13998
13999 kernel_power_all += kernel_power;
14000
14001 /**
14002 * default building options
14003 */
14004
14005 char build_opts[1024] = { 0 };
14006
14007 // we don't have sm_* on vendors not NV but it doesn't matter
14008
14009 snprintf (build_opts, sizeof (build_opts) - 1, "-cl-std=CL1.1 -I\"%s/\" -DVENDOR_ID=%u -DCUDA_ARCH=%d -DVECT_SIZE=%u -DDEVICE_TYPE=%u -DKERN_TYPE=%u -D_unroll", shared_dir, device_param->vendor_id, (device_param->sm_major * 100) + device_param->sm_minor, device_param->vector_width, (u32) device_param->device_type, kern_type);
14010
14011 if (device_param->vendor_id == VENDOR_ID_INTEL_SDK)
14012 {
14013 // we do vectorizing much better than the auto-vectorizer
14014
14015 char build_opts_new[1024] = { 0 };
14016
14017 snprintf (build_opts_new, sizeof (build_opts_new) - 1, "%s -cl-opt-disable", build_opts);
14018
14019 strncpy (build_opts, build_opts_new, sizeof (build_opts) - 1);
14020 }
14021
14022 #ifdef DEBUG
14023 log_info ("Device #%u: build_opts '%s'\n", device_id + 1, build_opts);
14024 #endif
14025
14026 /**
14027 * main kernel
14028 */
14029
14030 {
14031 /**
14032 * kernel source filename
14033 */
14034
14035 char source_file[256] = { 0 };
14036
14037 generate_source_kernel_filename (attack_exec, attack_kern, kern_type, shared_dir, source_file);
14038
14039 struct stat sst;
14040
14041 if (stat (source_file, &sst) == -1)
14042 {
14043 log_error ("ERROR: %s: %s", source_file, strerror (errno));
14044
14045 return -1;
14046 }
14047
14048 /**
14049 * kernel cached filename
14050 */
14051
14052 char cached_file[256] = { 0 };
14053
14054 generate_cached_kernel_filename (attack_exec, attack_kern, kern_type, profile_dir, device_name_chksum, cached_file);
14055
14056 int cached = 1;
14057
14058 struct stat cst;
14059
14060 if ((stat (cached_file, &cst) == -1) || cst.st_size == 0)
14061 {
14062 cached = 0;
14063 }
14064
14065 /**
14066 * kernel compile or load
14067 */
14068
14069 size_t *kernel_lengths = (size_t *) mymalloc (sizeof (size_t));
14070
14071 const u8 **kernel_sources = (const u8 **) mymalloc (sizeof (u8 *));
14072
14073 if (force_jit_compilation == -1)
14074 {
14075 if (cached == 0)
14076 {
14077 if (quiet == 0) log_info ("Device #%u: Kernel %s not found in cache! Building may take a while...", device_id + 1, cached_file);
14078
14079 load_kernel (source_file, 1, kernel_lengths, kernel_sources);
14080
14081 device_param->program = hc_clCreateProgramWithSource (data.ocl, device_param->context, 1, (const char **) kernel_sources, NULL);
14082
14083 int rc = hc_clBuildProgram (data.ocl, device_param->program, 1, &device_param->device, build_opts, NULL, NULL, false);
14084
14085 #ifdef DEBUG
14086 size_t build_log_size = 0;
14087
14088 hc_clGetProgramBuildInfo (data.ocl, device_param->program, device_param->device, CL_PROGRAM_BUILD_LOG, 0, NULL, &build_log_size);
14089
14090 if (build_log_size > 1)
14091 {
14092 char *build_log = (char *) malloc (build_log_size + 1);
14093
14094 memset (build_log, 0, build_log_size + 1);
14095
14096 hc_clGetProgramBuildInfo (data.ocl, device_param->program, device_param->device, CL_PROGRAM_BUILD_LOG, build_log_size, build_log, NULL);
14097
14098 puts (build_log);
14099
14100 free (build_log);
14101 }
14102 #endif
14103
14104 if (rc != 0)
14105 {
14106 device_param->skipped = true;
14107
14108 log_info ("Device #%u: Kernel %s build failure. Proceed without this device.", device_id + 1, source_file);
14109
14110 continue;
14111 }
14112
14113 size_t binary_size;
14114
14115 hc_clGetProgramInfo (data.ocl, device_param->program, CL_PROGRAM_BINARY_SIZES, sizeof (size_t), &binary_size, NULL);
14116
14117 u8 *binary = (u8 *) mymalloc (binary_size);
14118
14119 hc_clGetProgramInfo (data.ocl, device_param->program, CL_PROGRAM_BINARIES, sizeof (binary), &binary, NULL);
14120
14121 writeProgramBin (cached_file, binary, binary_size);
14122
14123 local_free (binary);
14124 }
14125 else
14126 {
14127 #ifdef DEBUG
14128 log_info ("Device #%u: Kernel %s (%ld bytes)", device_id + 1, cached_file, cst.st_size);
14129 #endif
14130
14131 load_kernel (cached_file, 1, kernel_lengths, kernel_sources);
14132
14133 device_param->program = hc_clCreateProgramWithBinary (data.ocl, device_param->context, 1, &device_param->device, kernel_lengths, (const u8 **) kernel_sources, NULL);
14134
14135 hc_clBuildProgram (data.ocl, device_param->program, 1, &device_param->device, build_opts, NULL, NULL, true);
14136 }
14137 }
14138 else
14139 {
14140 #ifdef DEBUG
14141 log_info ("Device #%u: Kernel %s (%ld bytes)", device_id + 1, source_file, sst.st_size);
14142 #endif
14143
14144 load_kernel (source_file, 1, kernel_lengths, kernel_sources);
14145
14146 device_param->program = hc_clCreateProgramWithSource (data.ocl, device_param->context, 1, (const char **) kernel_sources, NULL);
14147
14148 char build_opts_update[1024] = { 0 };
14149
14150 if (force_jit_compilation == 1500)
14151 {
14152 snprintf (build_opts_update, sizeof (build_opts_update) - 1, "%s -DDESCRYPT_SALT=%d", build_opts, data.salts_buf[0].salt_buf[0]);
14153 }
14154 else if (force_jit_compilation == 8900)
14155 {
14156 snprintf (build_opts_update, sizeof (build_opts_update) - 1, "%s -DSCRYPT_N=%d -DSCRYPT_R=%d -DSCRYPT_P=%d -DSCRYPT_TMTO=%d", build_opts, data.salts_buf[0].scrypt_N, data.salts_buf[0].scrypt_r, data.salts_buf[0].scrypt_p, 1 << data.salts_buf[0].scrypt_tmto);
14157 }
14158 else
14159 {
14160 snprintf (build_opts_update, sizeof (build_opts_update) - 1, "%s", build_opts);
14161 }
14162
14163 int rc = hc_clBuildProgram (data.ocl, device_param->program, 1, &device_param->device, build_opts_update, NULL, NULL, false);
14164
14165 #ifdef DEBUG
14166 size_t build_log_size = 0;
14167
14168 hc_clGetProgramBuildInfo (data.ocl, device_param->program, device_param->device, CL_PROGRAM_BUILD_LOG, 0, NULL, &build_log_size);
14169
14170 if (build_log_size > 1)
14171 {
14172 char *build_log = (char *) malloc (build_log_size + 1);
14173
14174 memset (build_log, 0, build_log_size + 1);
14175
14176 hc_clGetProgramBuildInfo (data.ocl, device_param->program, device_param->device, CL_PROGRAM_BUILD_LOG, build_log_size, build_log, NULL);
14177
14178 puts (build_log);
14179
14180 free (build_log);
14181 }
14182 #endif
14183
14184 if (rc != 0)
14185 {
14186 device_param->skipped = true;
14187
14188 log_info ("Device #%u: Kernel %s build failure. Proceed without this device.", device_id + 1, source_file);
14189 }
14190 }
14191
14192 local_free (kernel_lengths);
14193 local_free (kernel_sources[0]);
14194 local_free (kernel_sources);
14195 }
14196
14197 /**
14198 * word generator kernel
14199 */
14200
14201 if (attack_mode != ATTACK_MODE_STRAIGHT)
14202 {
14203 /**
14204 * kernel mp source filename
14205 */
14206
14207 char source_file[256] = { 0 };
14208
14209 generate_source_kernel_mp_filename (opti_type, opts_type, shared_dir, source_file);
14210
14211 struct stat sst;
14212
14213 if (stat (source_file, &sst) == -1)
14214 {
14215 log_error ("ERROR: %s: %s", source_file, strerror (errno));
14216
14217 return -1;
14218 }
14219
14220 /**
14221 * kernel mp cached filename
14222 */
14223
14224 char cached_file[256] = { 0 };
14225
14226 generate_cached_kernel_mp_filename (opti_type, opts_type, profile_dir, device_name_chksum, cached_file);
14227
14228 int cached = 1;
14229
14230 struct stat cst;
14231
14232 if (stat (cached_file, &cst) == -1)
14233 {
14234 cached = 0;
14235 }
14236
14237 /**
14238 * kernel compile or load
14239 */
14240
14241 size_t *kernel_lengths = (size_t *) mymalloc (sizeof (size_t));
14242
14243 const u8 **kernel_sources = (const u8 **) mymalloc (sizeof (u8 *));
14244
14245 if (cached == 0)
14246 {
14247 if (quiet == 0) log_info ("Device #%u: Kernel %s not found in cache! Building may take a while...", device_id + 1, cached_file);
14248 if (quiet == 0) log_info ("");
14249
14250 load_kernel (source_file, 1, kernel_lengths, kernel_sources);
14251
14252 device_param->program_mp = hc_clCreateProgramWithSource (data.ocl, device_param->context, 1, (const char **) kernel_sources, NULL);
14253
14254 int rc = hc_clBuildProgram (data.ocl, device_param->program_mp, 1, &device_param->device, build_opts, NULL, NULL, false);
14255
14256 if (rc != 0)
14257 {
14258 device_param->skipped = true;
14259
14260 log_info ("Device #%u: Kernel %s build failure. Proceed without this device.", device_id + 1, source_file);
14261
14262 continue;
14263 }
14264
14265 size_t binary_size;
14266
14267 hc_clGetProgramInfo (data.ocl, device_param->program_mp, CL_PROGRAM_BINARY_SIZES, sizeof (size_t), &binary_size, NULL);
14268
14269 u8 *binary = (u8 *) mymalloc (binary_size);
14270
14271 hc_clGetProgramInfo (data.ocl, device_param->program_mp, CL_PROGRAM_BINARIES, sizeof (binary), &binary, NULL);
14272
14273 writeProgramBin (cached_file, binary, binary_size);
14274
14275 local_free (binary);
14276 }
14277 else
14278 {
14279 #ifdef DEBUG
14280 log_info ("Device #%u: Kernel %s (%ld bytes)", device_id + 1, cached_file, cst.st_size);
14281 #endif
14282
14283 load_kernel (cached_file, 1, kernel_lengths, kernel_sources);
14284
14285 device_param->program_mp = hc_clCreateProgramWithBinary (data.ocl, device_param->context, 1, &device_param->device, kernel_lengths, (const u8 **) kernel_sources, NULL);
14286
14287 hc_clBuildProgram (data.ocl, device_param->program_mp, 1, &device_param->device, build_opts, NULL, NULL, true);
14288 }
14289
14290 local_free (kernel_lengths);
14291 local_free (kernel_sources[0]);
14292 local_free (kernel_sources);
14293 }
14294
14295 /**
14296 * amplifier kernel
14297 */
14298
14299 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14300 {
14301
14302 }
14303 else
14304 {
14305 /**
14306 * kernel amp source filename
14307 */
14308
14309 char source_file[256] = { 0 };
14310
14311 generate_source_kernel_amp_filename (attack_kern, shared_dir, source_file);
14312
14313 struct stat sst;
14314
14315 if (stat (source_file, &sst) == -1)
14316 {
14317 log_error ("ERROR: %s: %s", source_file, strerror (errno));
14318
14319 return -1;
14320 }
14321
14322 /**
14323 * kernel amp cached filename
14324 */
14325
14326 char cached_file[256] = { 0 };
14327
14328 generate_cached_kernel_amp_filename (attack_kern, profile_dir, device_name_chksum, cached_file);
14329
14330 int cached = 1;
14331
14332 struct stat cst;
14333
14334 if (stat (cached_file, &cst) == -1)
14335 {
14336 cached = 0;
14337 }
14338
14339 /**
14340 * kernel compile or load
14341 */
14342
14343 size_t *kernel_lengths = (size_t *) mymalloc (sizeof (size_t));
14344
14345 const u8 **kernel_sources = (const u8 **) mymalloc (sizeof (u8 *));
14346
14347 if (cached == 0)
14348 {
14349 if (quiet == 0) log_info ("Device #%u: Kernel %s not found in cache! Building may take a while...", device_id + 1, cached_file);
14350 if (quiet == 0) log_info ("");
14351
14352 load_kernel (source_file, 1, kernel_lengths, kernel_sources);
14353
14354 device_param->program_amp = hc_clCreateProgramWithSource (data.ocl, device_param->context, 1, (const char **) kernel_sources, NULL);
14355
14356 int rc = hc_clBuildProgram (data.ocl, device_param->program_amp, 1, &device_param->device, build_opts, NULL, NULL, false);
14357
14358 if (rc != 0)
14359 {
14360 device_param->skipped = true;
14361
14362 log_info ("Device #%u: Kernel %s build failure. Proceed without this device.", device_id + 1, source_file);
14363
14364 continue;
14365 }
14366
14367 size_t binary_size;
14368
14369 hc_clGetProgramInfo (data.ocl, device_param->program_amp, CL_PROGRAM_BINARY_SIZES, sizeof (size_t), &binary_size, NULL);
14370
14371 u8 *binary = (u8 *) mymalloc (binary_size);
14372
14373 hc_clGetProgramInfo (data.ocl, device_param->program_amp, CL_PROGRAM_BINARIES, sizeof (binary), &binary, NULL);
14374
14375 writeProgramBin (cached_file, binary, binary_size);
14376
14377 local_free (binary);
14378 }
14379 else
14380 {
14381 #ifdef DEBUG
14382 if (quiet == 0) log_info ("Device #%u: Kernel %s (%ld bytes)", device_id + 1, cached_file, cst.st_size);
14383 #endif
14384
14385 load_kernel (cached_file, 1, kernel_lengths, kernel_sources);
14386
14387 device_param->program_amp = hc_clCreateProgramWithBinary (data.ocl, device_param->context, 1, &device_param->device, kernel_lengths, (const u8 **) kernel_sources, NULL);
14388
14389 hc_clBuildProgram (data.ocl, device_param->program_amp, 1, &device_param->device, build_opts, NULL, NULL, true);
14390 }
14391
14392 local_free (kernel_lengths);
14393 local_free (kernel_sources[0]);
14394 local_free (kernel_sources);
14395 }
14396
14397 // some algorithm collide too fast, make that impossible
14398
14399 if (benchmark == 1)
14400 {
14401 ((uint *) digests_buf)[0] = -1;
14402 ((uint *) digests_buf)[1] = -1;
14403 ((uint *) digests_buf)[2] = -1;
14404 ((uint *) digests_buf)[3] = -1;
14405 }
14406
14407 /**
14408 * global buffers
14409 */
14410
14411 device_param->d_pws_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_pws, NULL);
14412 device_param->d_pws_amp_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_pws, NULL);
14413 device_param->d_tmps = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_tmps, NULL);
14414 device_param->d_hooks = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_hooks, NULL);
14415 device_param->d_bitmap_s1_a = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14416 device_param->d_bitmap_s1_b = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14417 device_param->d_bitmap_s1_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14418 device_param->d_bitmap_s1_d = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14419 device_param->d_bitmap_s2_a = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14420 device_param->d_bitmap_s2_b = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14421 device_param->d_bitmap_s2_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14422 device_param->d_bitmap_s2_d = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14423 device_param->d_plain_bufs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_plains, NULL);
14424 device_param->d_digests_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_digests, NULL);
14425 device_param->d_digests_shown = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_shown, NULL);
14426 device_param->d_salt_bufs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_salts, NULL);
14427 device_param->d_result = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_results, NULL);
14428 device_param->d_scryptV_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_scryptV, NULL);
14429
14430 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_bitmap_s1_a, CL_TRUE, 0, bitmap_size, bitmap_s1_a, 0, NULL, NULL);
14431 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_bitmap_s1_b, CL_TRUE, 0, bitmap_size, bitmap_s1_b, 0, NULL, NULL);
14432 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_bitmap_s1_c, CL_TRUE, 0, bitmap_size, bitmap_s1_c, 0, NULL, NULL);
14433 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_bitmap_s1_d, CL_TRUE, 0, bitmap_size, bitmap_s1_d, 0, NULL, NULL);
14434 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_bitmap_s2_a, CL_TRUE, 0, bitmap_size, bitmap_s2_a, 0, NULL, NULL);
14435 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_bitmap_s2_b, CL_TRUE, 0, bitmap_size, bitmap_s2_b, 0, NULL, NULL);
14436 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_bitmap_s2_c, CL_TRUE, 0, bitmap_size, bitmap_s2_c, 0, NULL, NULL);
14437 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_bitmap_s2_d, CL_TRUE, 0, bitmap_size, bitmap_s2_d, 0, NULL, NULL);
14438 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_digests_buf, CL_TRUE, 0, size_digests, data.digests_buf, 0, NULL, NULL);
14439 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_digests_shown, CL_TRUE, 0, size_shown, data.digests_shown, 0, NULL, NULL);
14440 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_salt_bufs, CL_TRUE, 0, size_salts, data.salts_buf, 0, NULL, NULL);
14441
14442 run_kernel_bzero (device_param, device_param->d_pws_buf, size_pws);
14443 run_kernel_bzero (device_param, device_param->d_pws_amp_buf, size_pws);
14444 run_kernel_bzero (device_param, device_param->d_tmps, size_tmps);
14445 run_kernel_bzero (device_param, device_param->d_hooks, size_hooks);
14446 run_kernel_bzero (device_param, device_param->d_plain_bufs, size_plains);
14447 run_kernel_bzero (device_param, device_param->d_result, size_results);
14448
14449 /**
14450 * special buffers
14451 */
14452
14453 if (attack_kern == ATTACK_KERN_STRAIGHT)
14454 {
14455 device_param->d_rules = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_rules, NULL);
14456 device_param->d_rules_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_rules_c, NULL);
14457
14458 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_rules, CL_TRUE, 0, size_rules, kernel_rules_buf, 0, NULL, NULL);
14459
14460 run_kernel_bzero (device_param, device_param->d_rules_c, size_rules_c);
14461 }
14462 else if (attack_kern == ATTACK_KERN_COMBI)
14463 {
14464 device_param->d_combs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_combs, NULL);
14465 device_param->d_combs_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_combs, NULL);
14466 device_param->d_root_css_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_root_css, NULL);
14467 device_param->d_markov_css_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_markov_css, NULL);
14468
14469 run_kernel_bzero (device_param, device_param->d_combs, size_combs);
14470 run_kernel_bzero (device_param, device_param->d_combs_c, size_combs);
14471 run_kernel_bzero (device_param, device_param->d_root_css_buf, size_root_css);
14472 run_kernel_bzero (device_param, device_param->d_markov_css_buf, size_markov_css);
14473 }
14474 else if (attack_kern == ATTACK_KERN_BF)
14475 {
14476 device_param->d_bfs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_bfs, NULL);
14477 device_param->d_bfs_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_bfs, NULL);
14478 device_param->d_tm_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_tm, NULL);
14479 device_param->d_root_css_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_root_css, NULL);
14480 device_param->d_markov_css_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_markov_css, NULL);
14481
14482 run_kernel_bzero (device_param, device_param->d_bfs, size_bfs);
14483 run_kernel_bzero (device_param, device_param->d_bfs_c, size_bfs);
14484 run_kernel_bzero (device_param, device_param->d_tm_c, size_tm);
14485 run_kernel_bzero (device_param, device_param->d_root_css_buf, size_root_css);
14486 run_kernel_bzero (device_param, device_param->d_markov_css_buf, size_markov_css);
14487 }
14488
14489 if (size_esalts)
14490 {
14491 device_param->d_esalt_bufs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_esalts, NULL);
14492
14493 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_esalt_bufs, CL_TRUE, 0, size_esalts, data.esalts_buf, 0, NULL, NULL);
14494 }
14495
14496 /**
14497 * main host data
14498 */
14499
14500 uint *result = (uint *) mymalloc (size_results);
14501
14502 device_param->result = result;
14503
14504 pw_t *pws_buf = (pw_t *) mymalloc (size_pws);
14505
14506 device_param->pws_buf = pws_buf;
14507
14508 comb_t *combs_buf = (comb_t *) mycalloc (KERNEL_COMBS, sizeof (comb_t));
14509
14510 device_param->combs_buf = combs_buf;
14511
14512 void *hooks_buf = mymalloc (size_hooks);
14513
14514 device_param->hooks_buf = hooks_buf;
14515
14516 /**
14517 * kernel args
14518 */
14519
14520 device_param->kernel_params_buf32[21] = bitmap_mask;
14521 device_param->kernel_params_buf32[22] = bitmap_shift1;
14522 device_param->kernel_params_buf32[23] = bitmap_shift2;
14523 device_param->kernel_params_buf32[24] = 0; // salt_pos
14524 device_param->kernel_params_buf32[25] = 0; // loop_pos
14525 device_param->kernel_params_buf32[26] = 0; // loop_cnt
14526 device_param->kernel_params_buf32[27] = 0; // kernel_rules_cnt
14527 device_param->kernel_params_buf32[28] = 0; // digests_cnt
14528 device_param->kernel_params_buf32[29] = 0; // digests_offset
14529 device_param->kernel_params_buf32[30] = 0; // combs_mode
14530 device_param->kernel_params_buf32[31] = 0; // gid_max
14531
14532 device_param->kernel_params[ 0] = (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14533 ? &device_param->d_pws_buf
14534 : &device_param->d_pws_amp_buf;
14535 device_param->kernel_params[ 1] = &device_param->d_rules_c;
14536 device_param->kernel_params[ 2] = &device_param->d_combs_c;
14537 device_param->kernel_params[ 3] = &device_param->d_bfs_c;
14538 device_param->kernel_params[ 4] = &device_param->d_tmps;
14539 device_param->kernel_params[ 5] = &device_param->d_hooks;
14540 device_param->kernel_params[ 6] = &device_param->d_bitmap_s1_a;
14541 device_param->kernel_params[ 7] = &device_param->d_bitmap_s1_b;
14542 device_param->kernel_params[ 8] = &device_param->d_bitmap_s1_c;
14543 device_param->kernel_params[ 9] = &device_param->d_bitmap_s1_d;
14544 device_param->kernel_params[10] = &device_param->d_bitmap_s2_a;
14545 device_param->kernel_params[11] = &device_param->d_bitmap_s2_b;
14546 device_param->kernel_params[12] = &device_param->d_bitmap_s2_c;
14547 device_param->kernel_params[13] = &device_param->d_bitmap_s2_d;
14548 device_param->kernel_params[14] = &device_param->d_plain_bufs;
14549 device_param->kernel_params[15] = &device_param->d_digests_buf;
14550 device_param->kernel_params[16] = &device_param->d_digests_shown;
14551 device_param->kernel_params[17] = &device_param->d_salt_bufs;
14552 device_param->kernel_params[18] = &device_param->d_esalt_bufs;
14553 device_param->kernel_params[19] = &device_param->d_result;
14554 device_param->kernel_params[20] = &device_param->d_scryptV_buf;
14555 device_param->kernel_params[21] = &device_param->kernel_params_buf32[21];
14556 device_param->kernel_params[22] = &device_param->kernel_params_buf32[22];
14557 device_param->kernel_params[23] = &device_param->kernel_params_buf32[23];
14558 device_param->kernel_params[24] = &device_param->kernel_params_buf32[24];
14559 device_param->kernel_params[25] = &device_param->kernel_params_buf32[25];
14560 device_param->kernel_params[26] = &device_param->kernel_params_buf32[26];
14561 device_param->kernel_params[27] = &device_param->kernel_params_buf32[27];
14562 device_param->kernel_params[28] = &device_param->kernel_params_buf32[28];
14563 device_param->kernel_params[29] = &device_param->kernel_params_buf32[29];
14564 device_param->kernel_params[30] = &device_param->kernel_params_buf32[30];
14565 device_param->kernel_params[31] = &device_param->kernel_params_buf32[31];
14566
14567 device_param->kernel_params_mp_buf64[3] = 0;
14568 device_param->kernel_params_mp_buf32[4] = 0;
14569 device_param->kernel_params_mp_buf32[5] = 0;
14570 device_param->kernel_params_mp_buf32[6] = 0;
14571 device_param->kernel_params_mp_buf32[7] = 0;
14572 device_param->kernel_params_mp_buf32[8] = 0;
14573
14574 device_param->kernel_params_mp[0] = NULL;
14575 device_param->kernel_params_mp[1] = NULL;
14576 device_param->kernel_params_mp[2] = NULL;
14577 device_param->kernel_params_mp[3] = &device_param->kernel_params_mp_buf64[3];
14578 device_param->kernel_params_mp[4] = &device_param->kernel_params_mp_buf32[4];
14579 device_param->kernel_params_mp[5] = &device_param->kernel_params_mp_buf32[5];
14580 device_param->kernel_params_mp[6] = &device_param->kernel_params_mp_buf32[6];
14581 device_param->kernel_params_mp[7] = &device_param->kernel_params_mp_buf32[7];
14582 device_param->kernel_params_mp[8] = &device_param->kernel_params_mp_buf32[8];
14583
14584 device_param->kernel_params_mp_l_buf64[3] = 0;
14585 device_param->kernel_params_mp_l_buf32[4] = 0;
14586 device_param->kernel_params_mp_l_buf32[5] = 0;
14587 device_param->kernel_params_mp_l_buf32[6] = 0;
14588 device_param->kernel_params_mp_l_buf32[7] = 0;
14589 device_param->kernel_params_mp_l_buf32[8] = 0;
14590 device_param->kernel_params_mp_l_buf32[9] = 0;
14591
14592 device_param->kernel_params_mp_l[0] = NULL;
14593 device_param->kernel_params_mp_l[1] = NULL;
14594 device_param->kernel_params_mp_l[2] = NULL;
14595 device_param->kernel_params_mp_l[3] = &device_param->kernel_params_mp_l_buf64[3];
14596 device_param->kernel_params_mp_l[4] = &device_param->kernel_params_mp_l_buf32[4];
14597 device_param->kernel_params_mp_l[5] = &device_param->kernel_params_mp_l_buf32[5];
14598 device_param->kernel_params_mp_l[6] = &device_param->kernel_params_mp_l_buf32[6];
14599 device_param->kernel_params_mp_l[7] = &device_param->kernel_params_mp_l_buf32[7];
14600 device_param->kernel_params_mp_l[8] = &device_param->kernel_params_mp_l_buf32[8];
14601 device_param->kernel_params_mp_l[9] = &device_param->kernel_params_mp_l_buf32[9];
14602
14603 device_param->kernel_params_mp_r_buf64[3] = 0;
14604 device_param->kernel_params_mp_r_buf32[4] = 0;
14605 device_param->kernel_params_mp_r_buf32[5] = 0;
14606 device_param->kernel_params_mp_r_buf32[6] = 0;
14607 device_param->kernel_params_mp_r_buf32[7] = 0;
14608 device_param->kernel_params_mp_r_buf32[8] = 0;
14609
14610 device_param->kernel_params_mp_r[0] = NULL;
14611 device_param->kernel_params_mp_r[1] = NULL;
14612 device_param->kernel_params_mp_r[2] = NULL;
14613 device_param->kernel_params_mp_r[3] = &device_param->kernel_params_mp_r_buf64[3];
14614 device_param->kernel_params_mp_r[4] = &device_param->kernel_params_mp_r_buf32[4];
14615 device_param->kernel_params_mp_r[5] = &device_param->kernel_params_mp_r_buf32[5];
14616 device_param->kernel_params_mp_r[6] = &device_param->kernel_params_mp_r_buf32[6];
14617 device_param->kernel_params_mp_r[7] = &device_param->kernel_params_mp_r_buf32[7];
14618 device_param->kernel_params_mp_r[8] = &device_param->kernel_params_mp_r_buf32[8];
14619
14620 device_param->kernel_params_amp_buf32[5] = 0; // combs_mode
14621 device_param->kernel_params_amp_buf32[6] = 0; // gid_max
14622
14623 device_param->kernel_params_amp[0] = &device_param->d_pws_buf;
14624 device_param->kernel_params_amp[1] = &device_param->d_pws_amp_buf;
14625 device_param->kernel_params_amp[2] = &device_param->d_rules_c;
14626 device_param->kernel_params_amp[3] = &device_param->d_combs_c;
14627 device_param->kernel_params_amp[4] = &device_param->d_bfs_c;
14628 device_param->kernel_params_amp[5] = &device_param->kernel_params_amp_buf32[5];
14629 device_param->kernel_params_amp[6] = &device_param->kernel_params_amp_buf32[6];
14630
14631 device_param->kernel_params_tm[0] = &device_param->d_bfs_c;
14632 device_param->kernel_params_tm[1] = &device_param->d_tm_c;
14633
14634 /**
14635 * kernel name
14636 */
14637
14638 char kernel_name[64] = { 0 };
14639
14640 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14641 {
14642 if (opti_type & OPTI_TYPE_SINGLE_HASH)
14643 {
14644 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_s%02d", kern_type, 4);
14645
14646 device_param->kernel1 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14647
14648 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_s%02d", kern_type, 8);
14649
14650 device_param->kernel2 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14651
14652 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_s%02d", kern_type, 16);
14653
14654 device_param->kernel3 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14655 }
14656 else
14657 {
14658 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_m%02d", kern_type, 4);
14659
14660 device_param->kernel1 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14661
14662 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_m%02d", kern_type, 8);
14663
14664 device_param->kernel2 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14665
14666 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_m%02d", kern_type, 16);
14667
14668 device_param->kernel3 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14669 }
14670
14671 if (data.attack_mode == ATTACK_MODE_BF)
14672 {
14673 if (opts_type & OPTS_TYPE_PT_BITSLICE)
14674 {
14675 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_tm", kern_type);
14676
14677 device_param->kernel_tm = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14678 }
14679 }
14680 }
14681 else
14682 {
14683 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_init", kern_type);
14684
14685 device_param->kernel1 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14686
14687 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_loop", kern_type);
14688
14689 device_param->kernel2 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14690
14691 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_comp", kern_type);
14692
14693 device_param->kernel3 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14694
14695 if (opts_type & OPTS_TYPE_HOOK12)
14696 {
14697 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_hook12", kern_type);
14698
14699 device_param->kernel12 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14700 }
14701
14702 if (opts_type & OPTS_TYPE_HOOK23)
14703 {
14704 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_hook23", kern_type);
14705
14706 device_param->kernel23 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14707 }
14708 }
14709
14710 for (uint i = 0; i <= 20; i++)
14711 {
14712 hc_clSetKernelArg (data.ocl, device_param->kernel1, i, sizeof (cl_mem), device_param->kernel_params[i]);
14713 hc_clSetKernelArg (data.ocl, device_param->kernel2, i, sizeof (cl_mem), device_param->kernel_params[i]);
14714 hc_clSetKernelArg (data.ocl, device_param->kernel3, i, sizeof (cl_mem), device_param->kernel_params[i]);
14715
14716 if (opts_type & OPTS_TYPE_HOOK12) hc_clSetKernelArg (data.ocl, device_param->kernel12, i, sizeof (cl_mem), device_param->kernel_params[i]);
14717 if (opts_type & OPTS_TYPE_HOOK23) hc_clSetKernelArg (data.ocl, device_param->kernel23, i, sizeof (cl_mem), device_param->kernel_params[i]);
14718 }
14719
14720 for (uint i = 21; i <= 31; i++)
14721 {
14722 hc_clSetKernelArg (data.ocl, device_param->kernel1, i, sizeof (cl_uint), device_param->kernel_params[i]);
14723 hc_clSetKernelArg (data.ocl, device_param->kernel2, i, sizeof (cl_uint), device_param->kernel_params[i]);
14724 hc_clSetKernelArg (data.ocl, device_param->kernel3, i, sizeof (cl_uint), device_param->kernel_params[i]);
14725
14726 if (opts_type & OPTS_TYPE_HOOK12) hc_clSetKernelArg (data.ocl, device_param->kernel12, i, sizeof (cl_uint), device_param->kernel_params[i]);
14727 if (opts_type & OPTS_TYPE_HOOK23) hc_clSetKernelArg (data.ocl, device_param->kernel23, i, sizeof (cl_uint), device_param->kernel_params[i]);
14728 }
14729
14730 if (attack_mode == ATTACK_MODE_BF)
14731 {
14732 device_param->kernel_mp_l = hc_clCreateKernel (data.ocl, device_param->program_mp, "l_markov");
14733 device_param->kernel_mp_r = hc_clCreateKernel (data.ocl, device_param->program_mp, "r_markov");
14734
14735 if (opts_type & OPTS_TYPE_PT_BITSLICE)
14736 {
14737 hc_clSetKernelArg (data.ocl, device_param->kernel_tm, 0, sizeof (cl_mem), device_param->kernel_params_tm[0]);
14738 hc_clSetKernelArg (data.ocl, device_param->kernel_tm, 1, sizeof (cl_mem), device_param->kernel_params_tm[1]);
14739 }
14740 }
14741 else if (attack_mode == ATTACK_MODE_HYBRID1)
14742 {
14743 device_param->kernel_mp = hc_clCreateKernel (data.ocl, device_param->program_mp, "C_markov");
14744 }
14745 else if (attack_mode == ATTACK_MODE_HYBRID2)
14746 {
14747 device_param->kernel_mp = hc_clCreateKernel (data.ocl, device_param->program_mp, "C_markov");
14748 }
14749
14750 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14751 {
14752 // nothing to do
14753 }
14754 else
14755 {
14756 device_param->kernel_amp = hc_clCreateKernel (data.ocl, device_param->program_amp, "amp");
14757 }
14758
14759 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14760 {
14761 // nothing to do
14762 }
14763 else
14764 {
14765 for (uint i = 0; i < 5; i++)
14766 {
14767 hc_clSetKernelArg (data.ocl, device_param->kernel_amp, i, sizeof (cl_mem), device_param->kernel_params_amp[i]);
14768 }
14769
14770 for (uint i = 5; i < 7; i++)
14771 {
14772 hc_clSetKernelArg (data.ocl, device_param->kernel_amp, i, sizeof (cl_uint), device_param->kernel_params_amp[i]);
14773 }
14774 }
14775
14776 /**
14777 * Store initial fanspeed if gpu_temp_retain is enabled
14778 */
14779
14780 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
14781 int gpu_temp_retain_set = 0;
14782
14783 if (gpu_temp_disable == 0)
14784 {
14785 if (gpu_temp_retain != 0) // VENDOR_ID_AMD implied
14786 {
14787 hc_thread_mutex_lock (mux_adl);
14788
14789 if (data.hm_device[device_id].fan_supported == 1)
14790 {
14791 if (gpu_temp_retain_chgd == 0)
14792 {
14793 uint cur_temp = 0;
14794 uint default_temp = 0;
14795
14796 int ADL_rc = hm_ADL_Overdrive6_TargetTemperatureData_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, (int *) &cur_temp, (int *) &default_temp);
14797
14798 if (ADL_rc == ADL_OK)
14799 {
14800 #define GPU_TEMP_RETAIN_ABORT_DIFF 15
14801
14802 const uint gpu_temp_retain_target = default_temp - GPU_TEMP_RETAIN_ABORT_DIFF;
14803
14804 // special case with multi gpu setups: always use minimum retain
14805
14806 if (gpu_temp_retain_set == 0)
14807 {
14808 gpu_temp_retain = gpu_temp_retain_target;
14809 gpu_temp_retain_set = 1;
14810 }
14811 else
14812 {
14813 gpu_temp_retain = MIN (gpu_temp_retain, gpu_temp_retain_target);
14814 }
14815
14816 if (gpu_temp_abort_chgd == 0) gpu_temp_abort = gpu_temp_retain + GPU_TEMP_RETAIN_ABORT_DIFF;
14817 }
14818 }
14819
14820 const int fan_speed = hm_get_fanspeed_with_device_id (device_id);
14821
14822 temp_retain_fanspeed_value[device_id] = fan_speed;
14823
14824 if (fan_speed == -1)
14825 {
14826 log_info ("WARNING: Failed to get current fan speed settings for gpu number: %i:", device_id + 1);
14827
14828 temp_retain_fanspeed_value[device_id] = 0;
14829 }
14830 }
14831
14832 hc_thread_mutex_unlock (mux_adl);
14833 }
14834 }
14835
14836 /**
14837 * Store original powercontrol/clocks settings, set overdrive 6 performance tuning settings
14838 */
14839
14840 if (powertune_enable == 1) // VENDOR_ID_AMD implied
14841 {
14842 hc_thread_mutex_lock (mux_adl);
14843
14844 if (data.hm_device[device_id].od_version == 6)
14845 {
14846 int ADL_rc;
14847
14848 // check powertune capabilities first, if not available then skip device
14849
14850 int powertune_supported = 0;
14851
14852 if ((ADL_rc = hm_ADL_Overdrive6_PowerControl_Caps (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune_supported)) != ADL_OK)
14853 {
14854 log_error ("ERROR: Failed to get ADL PowerControl Capabilities");
14855
14856 return (-1);
14857 }
14858
14859 if (powertune_supported != 0)
14860 {
14861 // powercontrol settings
14862
14863 ADLOD6PowerControlInfo powertune = {0, 0, 0, 0, 0};
14864
14865 if ((ADL_rc = hm_ADL_Overdrive_PowerControlInfo_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune)) == ADL_OK)
14866 {
14867 ADL_rc = hm_ADL_Overdrive_PowerControl_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &od_power_control_status[device_id]);
14868 }
14869
14870 if (ADL_rc != ADL_OK)
14871 {
14872 log_error ("ERROR: Failed to get current ADL PowerControl settings");
14873
14874 return (-1);
14875 }
14876
14877 if ((ADL_rc = hm_ADL_Overdrive_PowerControl_Set (data.hm_amd, data.hm_device[device_id].adapter_index.amd, powertune.iMaxValue)) != ADL_OK)
14878 {
14879 log_error ("ERROR: Failed to set new ADL PowerControl values");
14880
14881 return (-1);
14882 }
14883
14884 // clocks
14885
14886 memset (&od_clock_mem_status[device_id], 0, sizeof (ADLOD6MemClockState));
14887
14888 od_clock_mem_status[device_id].state.iNumberOfPerformanceLevels = 2;
14889
14890 if ((ADL_rc = hm_ADL_Overdrive_StateInfo_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, ADL_OD6_GETSTATEINFO_CUSTOM_PERFORMANCE, &od_clock_mem_status[device_id])) != ADL_OK)
14891 {
14892 log_error ("ERROR: Failed to get ADL memory and engine clock frequency");
14893
14894 return (-1);
14895 }
14896
14897 // Query capabilities only to see if profiles were not "damaged", if so output a warning but do accept the users profile settings
14898
14899 ADLOD6Capabilities caps = {0, 0, 0, {0, 0, 0}, {0, 0, 0}, 0, 0};
14900
14901 if ((ADL_rc = hm_ADL_Overdrive_Capabilities_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &caps)) != ADL_OK)
14902 {
14903 log_error ("ERROR: Failed to get ADL device capabilities");
14904
14905 return (-1);
14906 }
14907
14908 int engine_clock_max = caps.sEngineClockRange.iMax * 0.6666;
14909 int memory_clock_max = caps.sMemoryClockRange.iMax * 0.6250;
14910
14911 int warning_trigger_engine = (int) (0.25 * (float) engine_clock_max);
14912 int warning_trigger_memory = (int) (0.25 * (float) memory_clock_max);
14913
14914 int engine_clock_profile_max = od_clock_mem_status[device_id].state.aLevels[1].iEngineClock;
14915 int memory_clock_profile_max = od_clock_mem_status[device_id].state.aLevels[1].iMemoryClock;
14916
14917 // warning if profile has too low max values
14918
14919 if ((engine_clock_max - engine_clock_profile_max) > warning_trigger_engine)
14920 {
14921 log_info ("WARN: the custom profile seems to have too low maximum engine clock values. You therefore may not reach full performance");
14922 }
14923
14924 if ((memory_clock_max - memory_clock_profile_max) > warning_trigger_memory)
14925 {
14926 log_info ("WARN: the custom profile seems to have too low maximum memory clock values. You therefore may not reach full performance");
14927 }
14928
14929 ADLOD6StateInfo *performance_state = (ADLOD6StateInfo*) mycalloc (1, sizeof (ADLOD6StateInfo) + sizeof (ADLOD6PerformanceLevel));
14930
14931 performance_state->iNumberOfPerformanceLevels = 2;
14932
14933 performance_state->aLevels[0].iEngineClock = engine_clock_profile_max;
14934 performance_state->aLevels[1].iEngineClock = engine_clock_profile_max;
14935 performance_state->aLevels[0].iMemoryClock = memory_clock_profile_max;
14936 performance_state->aLevels[1].iMemoryClock = memory_clock_profile_max;
14937
14938 if ((ADL_rc = hm_ADL_Overdrive_State_Set (data.hm_amd, data.hm_device[device_id].adapter_index.amd, ADL_OD6_SETSTATE_PERFORMANCE, performance_state)) != ADL_OK)
14939 {
14940 log_info ("ERROR: Failed to set ADL performance state");
14941
14942 return (-1);
14943 }
14944
14945 local_free (performance_state);
14946 }
14947 }
14948
14949 hc_thread_mutex_unlock (mux_adl);
14950 }
14951 #endif // HAVE_HWMON && HAVE_ADL
14952 }
14953
14954 data.kernel_power_all = kernel_power_all;
14955
14956 if (data.quiet == 0) log_info_nn ("");
14957
14958 /**
14959 * In benchmark-mode, inform user which algorithm is checked
14960 */
14961
14962 if (benchmark == 1)
14963 {
14964 quiet = 0;
14965
14966 data.quiet = quiet;
14967
14968 char *hash_type = strhashtype (data.hash_mode); // not a bug
14969
14970 log_info ("Hashtype: %s", hash_type);
14971 log_info ("");
14972 }
14973
14974 /**
14975 * keep track of the progress
14976 */
14977
14978 data.words_progress_done = (u64 *) mycalloc (data.salts_cnt, sizeof (u64));
14979 data.words_progress_rejected = (u64 *) mycalloc (data.salts_cnt, sizeof (u64));
14980 data.words_progress_restored = (u64 *) mycalloc (data.salts_cnt, sizeof (u64));
14981
14982 /**
14983 * open filehandles
14984 */
14985
14986 #if _WIN
14987 if (_setmode (_fileno (stdin), _O_BINARY) == -1)
14988 {
14989 log_error ("ERROR: %s: %s", "stdin", strerror (errno));
14990
14991 return (-1);
14992 }
14993
14994 if (_setmode (_fileno (stdout), _O_BINARY) == -1)
14995 {
14996 log_error ("ERROR: %s: %s", "stdout", strerror (errno));
14997
14998 return (-1);
14999 }
15000
15001 if (_setmode (_fileno (stderr), _O_BINARY) == -1)
15002 {
15003 log_error ("ERROR: %s: %s", "stderr", strerror (errno));
15004
15005 return (-1);
15006 }
15007 #endif
15008
15009 /**
15010 * dictionary pad
15011 */
15012
15013 segment_size *= (1024 * 1024);
15014
15015 data.segment_size = segment_size;
15016
15017 wl_data_t *wl_data = (wl_data_t *) mymalloc (sizeof (wl_data_t));
15018
15019 wl_data->buf = (char *) mymalloc (segment_size);
15020 wl_data->avail = segment_size;
15021 wl_data->incr = segment_size;
15022 wl_data->cnt = 0;
15023 wl_data->pos = 0;
15024
15025 uint wordlist_mode = ((optind + 1) < myargc) ? WL_MODE_FILE : WL_MODE_STDIN;
15026
15027 data.wordlist_mode = wordlist_mode;
15028
15029 cs_t *css_buf = NULL;
15030 uint css_cnt = 0;
15031 uint dictcnt = 0;
15032 uint maskcnt = 1;
15033 char **masks = NULL;
15034 char **dictfiles = NULL;
15035
15036 uint mask_from_file = 0;
15037
15038 if (attack_mode == ATTACK_MODE_STRAIGHT)
15039 {
15040 if (wordlist_mode == WL_MODE_FILE)
15041 {
15042 int wls_left = myargc - (optind + 1);
15043
15044 for (int i = 0; i < wls_left; i++)
15045 {
15046 char *l0_filename = myargv[optind + 1 + i];
15047
15048 struct stat l0_stat;
15049
15050 if (stat (l0_filename, &l0_stat) == -1)
15051 {
15052 log_error ("ERROR: %s: %s", l0_filename, strerror (errno));
15053
15054 return (-1);
15055 }
15056
15057 uint is_dir = S_ISDIR (l0_stat.st_mode);
15058
15059 if (is_dir == 0)
15060 {
15061 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15062
15063 dictcnt++;
15064
15065 dictfiles[dictcnt - 1] = l0_filename;
15066 }
15067 else
15068 {
15069 // do not allow --keyspace w/ a directory
15070
15071 if (keyspace == 1)
15072 {
15073 log_error ("ERROR: keyspace parameter is not allowed together with a directory");
15074
15075 return (-1);
15076 }
15077
15078 char **dictionary_files = NULL;
15079
15080 dictionary_files = scan_directory (l0_filename);
15081
15082 if (dictionary_files != NULL)
15083 {
15084 qsort (dictionary_files, count_dictionaries (dictionary_files), sizeof (char *), sort_by_stringptr);
15085
15086 for (int d = 0; dictionary_files[d] != NULL; d++)
15087 {
15088 char *l1_filename = dictionary_files[d];
15089
15090 struct stat l1_stat;
15091
15092 if (stat (l1_filename, &l1_stat) == -1)
15093 {
15094 log_error ("ERROR: %s: %s", l1_filename, strerror (errno));
15095
15096 return (-1);
15097 }
15098
15099 if (S_ISREG (l1_stat.st_mode))
15100 {
15101 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15102
15103 dictcnt++;
15104
15105 dictfiles[dictcnt - 1] = strdup (l1_filename);
15106 }
15107 }
15108 }
15109
15110 local_free (dictionary_files);
15111 }
15112 }
15113
15114 if (dictcnt < 1)
15115 {
15116 log_error ("ERROR: No usable dictionary file found.");
15117
15118 return (-1);
15119 }
15120 }
15121 else if (wordlist_mode == WL_MODE_STDIN)
15122 {
15123 dictcnt = 1;
15124 }
15125 }
15126 else if (attack_mode == ATTACK_MODE_COMBI)
15127 {
15128 // display
15129
15130 char *dictfile1 = myargv[optind + 1 + 0];
15131 char *dictfile2 = myargv[optind + 1 + 1];
15132
15133 // find the bigger dictionary and use as base
15134
15135 FILE *fp1 = NULL;
15136 FILE *fp2 = NULL;
15137
15138 struct stat tmp_stat;
15139
15140 if ((fp1 = fopen (dictfile1, "rb")) == NULL)
15141 {
15142 log_error ("ERROR: %s: %s", dictfile1, strerror (errno));
15143
15144 return (-1);
15145 }
15146
15147 if (stat (dictfile1, &tmp_stat) == -1)
15148 {
15149 log_error ("ERROR: %s: %s", dictfile1, strerror (errno));
15150
15151 fclose (fp1);
15152
15153 return (-1);
15154 }
15155
15156 if (S_ISDIR (tmp_stat.st_mode))
15157 {
15158 log_error ("ERROR: %s must be a regular file", dictfile1, strerror (errno));
15159
15160 fclose (fp1);
15161
15162 return (-1);
15163 }
15164
15165 if ((fp2 = fopen (dictfile2, "rb")) == NULL)
15166 {
15167 log_error ("ERROR: %s: %s", dictfile2, strerror (errno));
15168
15169 fclose (fp1);
15170
15171 return (-1);
15172 }
15173
15174 if (stat (dictfile2, &tmp_stat) == -1)
15175 {
15176 log_error ("ERROR: %s: %s", dictfile2, strerror (errno));
15177
15178 fclose (fp1);
15179 fclose (fp2);
15180
15181 return (-1);
15182 }
15183
15184 if (S_ISDIR (tmp_stat.st_mode))
15185 {
15186 log_error ("ERROR: %s must be a regular file", dictfile2, strerror (errno));
15187
15188 fclose (fp1);
15189 fclose (fp2);
15190
15191 return (-1);
15192 }
15193
15194 data.combs_cnt = 1;
15195
15196 data.quiet = 1;
15197
15198 const u64 words1_cnt = count_words (wl_data, fp1, dictfile1, dictstat_base, &dictstat_nmemb);
15199
15200 data.quiet = quiet;
15201
15202 if (words1_cnt == 0)
15203 {
15204 log_error ("ERROR: %s: empty file", dictfile1);
15205
15206 fclose (fp1);
15207 fclose (fp2);
15208
15209 return (-1);
15210 }
15211
15212 data.combs_cnt = 1;
15213
15214 data.quiet = 1;
15215
15216 const u64 words2_cnt = count_words (wl_data, fp2, dictfile2, dictstat_base, &dictstat_nmemb);
15217
15218 data.quiet = quiet;
15219
15220 if (words2_cnt == 0)
15221 {
15222 log_error ("ERROR: %s: empty file", dictfile2);
15223
15224 fclose (fp1);
15225 fclose (fp2);
15226
15227 return (-1);
15228 }
15229
15230 fclose (fp1);
15231 fclose (fp2);
15232
15233 data.dictfile = dictfile1;
15234 data.dictfile2 = dictfile2;
15235
15236 if (words1_cnt >= words2_cnt)
15237 {
15238 data.combs_cnt = words2_cnt;
15239 data.combs_mode = COMBINATOR_MODE_BASE_LEFT;
15240
15241 dictfiles = &data.dictfile;
15242
15243 dictcnt = 1;
15244 }
15245 else
15246 {
15247 data.combs_cnt = words1_cnt;
15248 data.combs_mode = COMBINATOR_MODE_BASE_RIGHT;
15249
15250 dictfiles = &data.dictfile2;
15251
15252 dictcnt = 1;
15253
15254 // we also have to switch wordlist related rules!
15255
15256 char *tmpc = data.rule_buf_l;
15257
15258 data.rule_buf_l = data.rule_buf_r;
15259 data.rule_buf_r = tmpc;
15260
15261 int tmpi = data.rule_len_l;
15262
15263 data.rule_len_l = data.rule_len_r;
15264 data.rule_len_r = tmpi;
15265 }
15266 }
15267 else if (attack_mode == ATTACK_MODE_BF)
15268 {
15269 char *mask = NULL;
15270
15271 maskcnt = 0;
15272
15273 if (benchmark == 0)
15274 {
15275 mask = myargv[optind + 1];
15276
15277 masks = (char **) mymalloc (INCR_MASKS * sizeof (char *));
15278
15279 if ((optind + 2) <= myargc)
15280 {
15281 struct stat file_stat;
15282
15283 if (stat (mask, &file_stat) == -1)
15284 {
15285 maskcnt = 1;
15286
15287 masks[maskcnt - 1] = mystrdup (mask);
15288 }
15289 else
15290 {
15291 int wls_left = myargc - (optind + 1);
15292
15293 uint masks_avail = INCR_MASKS;
15294
15295 for (int i = 0; i < wls_left; i++)
15296 {
15297 if (i != 0)
15298 {
15299 mask = myargv[optind + 1 + i];
15300
15301 if (stat (mask, &file_stat) == -1)
15302 {
15303 log_error ("ERROR: %s: %s", mask, strerror (errno));
15304
15305 return (-1);
15306 }
15307 }
15308
15309 uint is_file = S_ISREG (file_stat.st_mode);
15310
15311 if (is_file == 1)
15312 {
15313 FILE *mask_fp;
15314
15315 if ((mask_fp = fopen (mask, "r")) == NULL)
15316 {
15317 log_error ("ERROR: %s: %s", mask, strerror (errno));
15318
15319 return (-1);
15320 }
15321
15322 char *line_buf = (char *) mymalloc (HCBUFSIZ);
15323
15324 while (!feof (mask_fp))
15325 {
15326 memset (line_buf, 0, HCBUFSIZ);
15327
15328 int line_len = fgetl (mask_fp, line_buf);
15329
15330 if (line_len == 0) continue;
15331
15332 if (line_buf[0] == '#') continue;
15333
15334 if (masks_avail == maskcnt)
15335 {
15336 masks = (char **) myrealloc (masks, masks_avail * sizeof (char *), INCR_MASKS * sizeof (char *));
15337
15338 masks_avail += INCR_MASKS;
15339 }
15340
15341 masks[maskcnt] = mystrdup (line_buf);
15342
15343 maskcnt++;
15344 }
15345
15346 myfree (line_buf);
15347
15348 fclose (mask_fp);
15349 }
15350 else
15351 {
15352 log_error ("ERROR: %s: unsupported file-type", mask);
15353
15354 return (-1);
15355 }
15356 }
15357
15358 mask_from_file = 1;
15359 }
15360 }
15361 else
15362 {
15363 custom_charset_1 = (char *) "?l?d?u";
15364 custom_charset_2 = (char *) "?l?d";
15365 custom_charset_3 = (char *) "?l?d*!$@_";
15366
15367 mp_setup_usr (mp_sys, mp_usr, custom_charset_1, 0);
15368 mp_setup_usr (mp_sys, mp_usr, custom_charset_2, 1);
15369 mp_setup_usr (mp_sys, mp_usr, custom_charset_3, 2);
15370
15371 masks[maskcnt] = mystrdup ("?1?2?2?2?2?2?2?3?3?3?3?d?d?d?d");
15372
15373 wordlist_mode = WL_MODE_MASK;
15374
15375 data.wordlist_mode = wordlist_mode;
15376
15377 increment = 1;
15378
15379 maskcnt = 1;
15380 }
15381 }
15382 else
15383 {
15384 /**
15385 * generate full masks and charsets
15386 */
15387
15388 masks = (char **) mymalloc (sizeof (char *));
15389
15390 switch (hash_mode)
15391 {
15392 case 1731: pw_min = 5;
15393 pw_max = 5;
15394 mask = mystrdup ("?b?b?b?b?b");
15395 break;
15396 case 12500: pw_min = 5;
15397 pw_max = 5;
15398 mask = mystrdup ("?b?b?b?b?b");
15399 break;
15400 default: pw_min = 7;
15401 pw_max = 7;
15402 mask = mystrdup ("?b?b?b?b?b?b?b");
15403 break;
15404 }
15405
15406 maskcnt = 1;
15407
15408 masks[maskcnt - 1] = mystrdup (mask);
15409
15410 wordlist_mode = WL_MODE_MASK;
15411
15412 data.wordlist_mode = wordlist_mode;
15413
15414 increment = 1;
15415 }
15416
15417 dictfiles = (char **) mycalloc (pw_max, sizeof (char *));
15418
15419 if (increment)
15420 {
15421 if (increment_min > pw_min) pw_min = increment_min;
15422
15423 if (increment_max < pw_max) pw_max = increment_max;
15424 }
15425 }
15426 else if (attack_mode == ATTACK_MODE_HYBRID1)
15427 {
15428 data.combs_mode = COMBINATOR_MODE_BASE_LEFT;
15429
15430 // display
15431
15432 char *mask = myargv[myargc - 1];
15433
15434 maskcnt = 0;
15435
15436 masks = (char **) mymalloc (1 * sizeof (char *));
15437
15438 // mod
15439
15440 struct stat file_stat;
15441
15442 if (stat (mask, &file_stat) == -1)
15443 {
15444 maskcnt = 1;
15445
15446 masks[maskcnt - 1] = mystrdup (mask);
15447 }
15448 else
15449 {
15450 uint is_file = S_ISREG (file_stat.st_mode);
15451
15452 if (is_file == 1)
15453 {
15454 FILE *mask_fp;
15455
15456 if ((mask_fp = fopen (mask, "r")) == NULL)
15457 {
15458 log_error ("ERROR: %s: %s", mask, strerror (errno));
15459
15460 return (-1);
15461 }
15462
15463 char *line_buf = (char *) mymalloc (HCBUFSIZ);
15464
15465 uint masks_avail = 1;
15466
15467 while (!feof (mask_fp))
15468 {
15469 memset (line_buf, 0, HCBUFSIZ);
15470
15471 int line_len = fgetl (mask_fp, line_buf);
15472
15473 if (line_len == 0) continue;
15474
15475 if (line_buf[0] == '#') continue;
15476
15477 if (masks_avail == maskcnt)
15478 {
15479 masks = (char **) myrealloc (masks, masks_avail * sizeof (char *), INCR_MASKS * sizeof (char *));
15480
15481 masks_avail += INCR_MASKS;
15482 }
15483
15484 masks[maskcnt] = mystrdup (line_buf);
15485
15486 maskcnt++;
15487 }
15488
15489 myfree (line_buf);
15490
15491 fclose (mask_fp);
15492
15493 mask_from_file = 1;
15494 }
15495 else
15496 {
15497 maskcnt = 1;
15498
15499 masks[maskcnt - 1] = mystrdup (mask);
15500 }
15501 }
15502
15503 // base
15504
15505 int wls_left = myargc - (optind + 2);
15506
15507 for (int i = 0; i < wls_left; i++)
15508 {
15509 char *filename = myargv[optind + 1 + i];
15510
15511 struct stat file_stat;
15512
15513 if (stat (filename, &file_stat) == -1)
15514 {
15515 log_error ("ERROR: %s: %s", filename, strerror (errno));
15516
15517 return (-1);
15518 }
15519
15520 uint is_dir = S_ISDIR (file_stat.st_mode);
15521
15522 if (is_dir == 0)
15523 {
15524 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15525
15526 dictcnt++;
15527
15528 dictfiles[dictcnt - 1] = filename;
15529 }
15530 else
15531 {
15532 // do not allow --keyspace w/ a directory
15533
15534 if (keyspace == 1)
15535 {
15536 log_error ("ERROR: keyspace parameter is not allowed together with a directory");
15537
15538 return (-1);
15539 }
15540
15541 char **dictionary_files = NULL;
15542
15543 dictionary_files = scan_directory (filename);
15544
15545 if (dictionary_files != NULL)
15546 {
15547 qsort (dictionary_files, count_dictionaries (dictionary_files), sizeof (char *), sort_by_stringptr);
15548
15549 for (int d = 0; dictionary_files[d] != NULL; d++)
15550 {
15551 char *l1_filename = dictionary_files[d];
15552
15553 struct stat l1_stat;
15554
15555 if (stat (l1_filename, &l1_stat) == -1)
15556 {
15557 log_error ("ERROR: %s: %s", l1_filename, strerror (errno));
15558
15559 return (-1);
15560 }
15561
15562 if (S_ISREG (l1_stat.st_mode))
15563 {
15564 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15565
15566 dictcnt++;
15567
15568 dictfiles[dictcnt - 1] = strdup (l1_filename);
15569 }
15570 }
15571 }
15572
15573 local_free (dictionary_files);
15574 }
15575 }
15576
15577 if (dictcnt < 1)
15578 {
15579 log_error ("ERROR: No usable dictionary file found.");
15580
15581 return (-1);
15582 }
15583
15584 if (increment)
15585 {
15586 maskcnt = 0;
15587
15588 uint mask_min = increment_min; // we can't reject smaller masks here
15589 uint mask_max = (increment_max < pw_max) ? increment_max : pw_max;
15590
15591 for (uint mask_cur = mask_min; mask_cur <= mask_max; mask_cur++)
15592 {
15593 char *cur_mask = mp_get_truncated_mask (mask, strlen (mask), mask_cur);
15594
15595 if (cur_mask == NULL) break;
15596
15597 masks[maskcnt] = cur_mask;
15598
15599 maskcnt++;
15600
15601 masks = (char **) myrealloc (masks, maskcnt * sizeof (char *), sizeof (char *));
15602 }
15603 }
15604 }
15605 else if (attack_mode == ATTACK_MODE_HYBRID2)
15606 {
15607 data.combs_mode = COMBINATOR_MODE_BASE_RIGHT;
15608
15609 // display
15610
15611 char *mask = myargv[optind + 1 + 0];
15612
15613 maskcnt = 0;
15614
15615 masks = (char **) mymalloc (1 * sizeof (char *));
15616
15617 // mod
15618
15619 struct stat file_stat;
15620
15621 if (stat (mask, &file_stat) == -1)
15622 {
15623 maskcnt = 1;
15624
15625 masks[maskcnt - 1] = mystrdup (mask);
15626 }
15627 else
15628 {
15629 uint is_file = S_ISREG (file_stat.st_mode);
15630
15631 if (is_file == 1)
15632 {
15633 FILE *mask_fp;
15634
15635 if ((mask_fp = fopen (mask, "r")) == NULL)
15636 {
15637 log_error ("ERROR: %s: %s", mask, strerror (errno));
15638
15639 return (-1);
15640 }
15641
15642 char *line_buf = (char *) mymalloc (HCBUFSIZ);
15643
15644 uint masks_avail = 1;
15645
15646 while (!feof (mask_fp))
15647 {
15648 memset (line_buf, 0, HCBUFSIZ);
15649
15650 int line_len = fgetl (mask_fp, line_buf);
15651
15652 if (line_len == 0) continue;
15653
15654 if (line_buf[0] == '#') continue;
15655
15656 if (masks_avail == maskcnt)
15657 {
15658 masks = (char **) myrealloc (masks, masks_avail * sizeof (char *), INCR_MASKS * sizeof (char *));
15659
15660 masks_avail += INCR_MASKS;
15661 }
15662
15663 masks[maskcnt] = mystrdup (line_buf);
15664
15665 maskcnt++;
15666 }
15667
15668 myfree (line_buf);
15669
15670 fclose (mask_fp);
15671
15672 mask_from_file = 1;
15673 }
15674 else
15675 {
15676 maskcnt = 1;
15677
15678 masks[maskcnt - 1] = mystrdup (mask);
15679 }
15680 }
15681
15682 // base
15683
15684 int wls_left = myargc - (optind + 2);
15685
15686 for (int i = 0; i < wls_left; i++)
15687 {
15688 char *filename = myargv[optind + 2 + i];
15689
15690 struct stat file_stat;
15691
15692 if (stat (filename, &file_stat) == -1)
15693 {
15694 log_error ("ERROR: %s: %s", filename, strerror (errno));
15695
15696 return (-1);
15697 }
15698
15699 uint is_dir = S_ISDIR (file_stat.st_mode);
15700
15701 if (is_dir == 0)
15702 {
15703 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15704
15705 dictcnt++;
15706
15707 dictfiles[dictcnt - 1] = filename;
15708 }
15709 else
15710 {
15711 // do not allow --keyspace w/ a directory
15712
15713 if (keyspace == 1)
15714 {
15715 log_error ("ERROR: keyspace parameter is not allowed together with a directory");
15716
15717 return (-1);
15718 }
15719
15720 char **dictionary_files = NULL;
15721
15722 dictionary_files = scan_directory (filename);
15723
15724 if (dictionary_files != NULL)
15725 {
15726 qsort (dictionary_files, count_dictionaries (dictionary_files), sizeof (char *), sort_by_stringptr);
15727
15728 for (int d = 0; dictionary_files[d] != NULL; d++)
15729 {
15730 char *l1_filename = dictionary_files[d];
15731
15732 struct stat l1_stat;
15733
15734 if (stat (l1_filename, &l1_stat) == -1)
15735 {
15736 log_error ("ERROR: %s: %s", l1_filename, strerror (errno));
15737
15738 return (-1);
15739 }
15740
15741 if (S_ISREG (l1_stat.st_mode))
15742 {
15743 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15744
15745 dictcnt++;
15746
15747 dictfiles[dictcnt - 1] = strdup (l1_filename);
15748 }
15749 }
15750 }
15751
15752 local_free (dictionary_files);
15753 }
15754 }
15755
15756 if (dictcnt < 1)
15757 {
15758 log_error ("ERROR: No usable dictionary file found.");
15759
15760 return (-1);
15761 }
15762
15763 if (increment)
15764 {
15765 maskcnt = 0;
15766
15767 uint mask_min = increment_min; // we can't reject smaller masks here
15768 uint mask_max = (increment_max < pw_max) ? increment_max : pw_max;
15769
15770 for (uint mask_cur = mask_min; mask_cur <= mask_max; mask_cur++)
15771 {
15772 char *cur_mask = mp_get_truncated_mask (mask, strlen (mask), mask_cur);
15773
15774 if (cur_mask == NULL) break;
15775
15776 masks[maskcnt] = cur_mask;
15777
15778 maskcnt++;
15779
15780 masks = (char **) myrealloc (masks, maskcnt * sizeof (char *), sizeof (char *));
15781 }
15782 }
15783 }
15784
15785 data.pw_min = pw_min;
15786 data.pw_max = pw_max;
15787
15788 /**
15789 * weak hash check
15790 */
15791
15792 if (weak_hash_threshold >= salts_cnt)
15793 {
15794 hc_device_param_t *device_param = NULL;
15795
15796 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
15797 {
15798 device_param = &data.devices_param[device_id];
15799
15800 if (device_param->skipped) continue;
15801
15802 break;
15803 }
15804
15805 if (data.quiet == 0) log_info_nn ("Checking for weak hashes...");
15806
15807 for (uint salt_pos = 0; salt_pos < salts_cnt; salt_pos++)
15808 {
15809 weak_hash_check (device_param, salt_pos);
15810 }
15811
15812 // Display hack, guarantee that there is at least one \r before real start
15813
15814 //if (data.quiet == 0) log_info ("");
15815 }
15816
15817 /**
15818 * status and monitor threads
15819 */
15820
15821 if (data.devices_status != STATUS_CRACKED) data.devices_status = STATUS_STARTING;
15822
15823 hc_thread_t i_thread = 0;
15824
15825 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
15826 {
15827 hc_thread_create (i_thread, thread_keypress, &benchmark);
15828 }
15829
15830 if (wordlist_mode == WL_MODE_STDIN) data.status = 1;
15831
15832 uint ni_threads_cnt = 0;
15833
15834 hc_thread_t *ni_threads = (hc_thread_t *) mycalloc (10, sizeof (hc_thread_t));
15835
15836 hc_thread_create (ni_threads[ni_threads_cnt], thread_monitor, NULL);
15837
15838 ni_threads_cnt++;
15839
15840 /**
15841 * Outfile remove
15842 */
15843
15844 if (keyspace == 0)
15845 {
15846 if (outfile_check_timer != 0)
15847 {
15848 if (data.outfile_check_directory != NULL)
15849 {
15850 if ((hash_mode != 5200) &&
15851 !((hash_mode >= 6200) && (hash_mode <= 6299)) &&
15852 (hash_mode != 9000))
15853 {
15854 hc_thread_create (ni_threads[ni_threads_cnt], thread_outfile_remove, NULL);
15855
15856 ni_threads_cnt++;
15857 }
15858 else
15859 {
15860 outfile_check_timer = 0;
15861 }
15862 }
15863 else
15864 {
15865 outfile_check_timer = 0;
15866 }
15867 }
15868 }
15869
15870 /**
15871 * Inform the user if we got some hashes remove because of the pot file remove feature
15872 */
15873
15874 if (data.quiet == 0)
15875 {
15876 if (potfile_remove_cracks > 0)
15877 {
15878 if (potfile_remove_cracks == 1) log_info ("INFO: removed 1 hash found in pot file\n");
15879 else log_info ("INFO: removed %u hashes found in pot file\n", potfile_remove_cracks);
15880 }
15881 }
15882
15883 data.outfile_check_timer = outfile_check_timer;
15884
15885 /**
15886 * main loop
15887 */
15888
15889 char **induction_dictionaries = NULL;
15890
15891 int induction_dictionaries_cnt = 0;
15892
15893 hcstat_table_t *root_table_buf = NULL;
15894 hcstat_table_t *markov_table_buf = NULL;
15895
15896 uint initial_restore_done = 0;
15897
15898 data.maskcnt = maskcnt;
15899
15900 for (uint maskpos = rd->maskpos; maskpos < maskcnt; maskpos++)
15901 {
15902 if (data.devices_status == STATUS_CRACKED) break;
15903
15904 data.devices_status = STATUS_INIT;
15905
15906 if (maskpos > rd->maskpos)
15907 {
15908 rd->dictpos = 0;
15909 }
15910
15911 rd->maskpos = maskpos;
15912 data.maskpos = maskpos;
15913
15914 if (attack_mode == ATTACK_MODE_HYBRID1 || attack_mode == ATTACK_MODE_HYBRID2 || attack_mode == ATTACK_MODE_BF)
15915 {
15916 char *mask = masks[maskpos];
15917
15918 if (mask_from_file == 1)
15919 {
15920 if (mask[0] == '\\' && mask[1] == '#') mask++; // escaped comment sign (sharp) "\#"
15921
15922 char *str_ptr;
15923 uint str_pos;
15924
15925 uint mask_offset = 0;
15926
15927 uint separator_cnt;
15928
15929 for (separator_cnt = 0; separator_cnt < 4; separator_cnt++)
15930 {
15931 str_ptr = strstr (mask + mask_offset, ",");
15932
15933 if (str_ptr == NULL) break;
15934
15935 str_pos = str_ptr - mask;
15936
15937 // escaped separator, i.e. "\,"
15938
15939 if (str_pos > 0)
15940 {
15941 if (mask[str_pos - 1] == '\\')
15942 {
15943 separator_cnt --;
15944
15945 mask_offset = str_pos + 1;
15946
15947 continue;
15948 }
15949 }
15950
15951 // reset the offset
15952
15953 mask_offset = 0;
15954
15955 mask[str_pos] = '\0';
15956
15957 switch (separator_cnt)
15958 {
15959 case 0:
15960 mp_reset_usr (mp_usr, 0);
15961
15962 custom_charset_1 = mask;
15963 mp_setup_usr (mp_sys, mp_usr, custom_charset_1, 0);
15964 break;
15965
15966 case 1:
15967 mp_reset_usr (mp_usr, 1);
15968
15969 custom_charset_2 = mask;
15970 mp_setup_usr (mp_sys, mp_usr, custom_charset_2, 1);
15971 break;
15972
15973 case 2:
15974 mp_reset_usr (mp_usr, 2);
15975
15976 custom_charset_3 = mask;
15977 mp_setup_usr (mp_sys, mp_usr, custom_charset_3, 2);
15978 break;
15979
15980 case 3:
15981 mp_reset_usr (mp_usr, 3);
15982
15983 custom_charset_4 = mask;
15984 mp_setup_usr (mp_sys, mp_usr, custom_charset_4, 3);
15985 break;
15986 }
15987
15988 mask = mask + str_pos + 1;
15989 }
15990 }
15991
15992 if ((attack_mode == ATTACK_MODE_HYBRID1) || (attack_mode == ATTACK_MODE_HYBRID2))
15993 {
15994 if (maskpos > 0)
15995 {
15996 local_free (css_buf);
15997 local_free (data.root_css_buf);
15998 local_free (data.markov_css_buf);
15999
16000 local_free (masks[maskpos - 1]);
16001 }
16002
16003 css_buf = mp_gen_css (mask, strlen (mask), mp_sys, mp_usr, &css_cnt);
16004
16005 data.mask = mask;
16006 data.css_cnt = css_cnt;
16007 data.css_buf = css_buf;
16008
16009 uint uniq_tbls[SP_PW_MAX][CHARSIZ] = { { 0 } };
16010
16011 mp_css_to_uniq_tbl (css_cnt, css_buf, uniq_tbls);
16012
16013 if (root_table_buf == NULL) root_table_buf = (hcstat_table_t *) mycalloc (SP_ROOT_CNT, sizeof (hcstat_table_t));
16014 if (markov_table_buf == NULL) markov_table_buf = (hcstat_table_t *) mycalloc (SP_MARKOV_CNT, sizeof (hcstat_table_t));
16015
16016 sp_setup_tbl (shared_dir, markov_hcstat, markov_disable, markov_classic, root_table_buf, markov_table_buf);
16017
16018 markov_threshold = (markov_threshold != 0) ? markov_threshold : CHARSIZ;
16019
16020 cs_t *root_css_buf = (cs_t *) mycalloc (SP_PW_MAX, sizeof (cs_t));
16021 cs_t *markov_css_buf = (cs_t *) mycalloc (SP_PW_MAX * CHARSIZ, sizeof (cs_t));
16022
16023 data.root_css_buf = root_css_buf;
16024 data.markov_css_buf = markov_css_buf;
16025
16026 sp_tbl_to_css (root_table_buf, markov_table_buf, root_css_buf, markov_css_buf, markov_threshold, uniq_tbls);
16027
16028 data.combs_cnt = sp_get_sum (0, css_cnt, root_css_buf);
16029
16030 local_free (root_table_buf);
16031 local_free (markov_table_buf);
16032
16033 // args
16034
16035 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16036 {
16037 hc_device_param_t *device_param = &data.devices_param[device_id];
16038
16039 if (device_param->skipped) continue;
16040
16041 device_param->kernel_params_mp[0] = &device_param->d_combs;
16042 device_param->kernel_params_mp[1] = &device_param->d_root_css_buf;
16043 device_param->kernel_params_mp[2] = &device_param->d_markov_css_buf;
16044
16045 device_param->kernel_params_mp_buf64[3] = 0;
16046 device_param->kernel_params_mp_buf32[4] = css_cnt;
16047 device_param->kernel_params_mp_buf32[5] = 0;
16048 device_param->kernel_params_mp_buf32[6] = 0;
16049 device_param->kernel_params_mp_buf32[7] = 0;
16050
16051 if (attack_mode == ATTACK_MODE_HYBRID1)
16052 {
16053 if (opts_type & OPTS_TYPE_PT_ADD01) device_param->kernel_params_mp_buf32[5] = full01;
16054 if (opts_type & OPTS_TYPE_PT_ADD80) device_param->kernel_params_mp_buf32[5] = full80;
16055 if (opts_type & OPTS_TYPE_PT_ADDBITS14) device_param->kernel_params_mp_buf32[6] = 1;
16056 if (opts_type & OPTS_TYPE_PT_ADDBITS15) device_param->kernel_params_mp_buf32[7] = 1;
16057 }
16058 else if (attack_mode == ATTACK_MODE_HYBRID2)
16059 {
16060 device_param->kernel_params_mp_buf32[5] = 0;
16061 device_param->kernel_params_mp_buf32[6] = 0;
16062 device_param->kernel_params_mp_buf32[7] = 0;
16063 }
16064
16065 for (uint i = 0; i < 3; i++) hc_clSetKernelArg (data.ocl, device_param->kernel_mp, i, sizeof (cl_mem), (void *) device_param->kernel_params_mp[i]);
16066 for (uint i = 3; i < 4; i++) hc_clSetKernelArg (data.ocl, device_param->kernel_mp, i, sizeof (cl_ulong), (void *) device_param->kernel_params_mp[i]);
16067 for (uint i = 4; i < 8; i++) hc_clSetKernelArg (data.ocl, device_param->kernel_mp, i, sizeof (cl_uint), (void *) device_param->kernel_params_mp[i]);
16068
16069 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_root_css_buf, CL_TRUE, 0, device_param->size_root_css, root_css_buf, 0, NULL, NULL);
16070 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_markov_css_buf, CL_TRUE, 0, device_param->size_markov_css, markov_css_buf, 0, NULL, NULL);
16071 }
16072 }
16073 else if (attack_mode == ATTACK_MODE_BF)
16074 {
16075 dictcnt = 0; // number of "sub-masks", i.e. when using incremental mode
16076
16077 if (increment)
16078 {
16079 for (uint i = 0; i < dictcnt; i++)
16080 {
16081 local_free (dictfiles[i]);
16082 }
16083
16084 for (uint pw_len = MAX (1, pw_min); pw_len <= pw_max; pw_len++)
16085 {
16086 char *l1_filename = mp_get_truncated_mask (mask, strlen (mask), pw_len);
16087
16088 if (l1_filename == NULL) break;
16089
16090 dictcnt++;
16091
16092 dictfiles[dictcnt - 1] = l1_filename;
16093 }
16094 }
16095 else
16096 {
16097 dictcnt++;
16098
16099 dictfiles[dictcnt - 1] = mask;
16100 }
16101
16102 if (dictcnt == 0)
16103 {
16104 log_error ("ERROR: Mask is too small");
16105
16106 return (-1);
16107 }
16108 }
16109 }
16110
16111 free (induction_dictionaries);
16112
16113 // induction_dictionaries_cnt = 0; // implied
16114
16115 if (attack_mode != ATTACK_MODE_BF)
16116 {
16117 if (keyspace == 0)
16118 {
16119 induction_dictionaries = scan_directory (induction_directory);
16120
16121 induction_dictionaries_cnt = count_dictionaries (induction_dictionaries);
16122 }
16123 }
16124
16125 if (induction_dictionaries_cnt)
16126 {
16127 qsort (induction_dictionaries, induction_dictionaries_cnt, sizeof (char *), sort_by_mtime);
16128 }
16129
16130 /**
16131 * prevent the user from using --keyspace together w/ maskfile and or dictfile
16132 */
16133 if (keyspace == 1)
16134 {
16135 if ((maskcnt > 1) || (dictcnt > 1))
16136 {
16137 log_error ("ERROR: --keyspace is not supported with --increment or mask files");
16138
16139 return (-1);
16140 }
16141 }
16142
16143 for (uint dictpos = rd->dictpos; dictpos < dictcnt; )
16144 {
16145 char *subid = logfile_generate_subid ();
16146
16147 data.subid = subid;
16148
16149 logfile_sub_msg ("START");
16150
16151 data.devices_status = STATUS_INIT;
16152
16153 memset (data.words_progress_done, 0, data.salts_cnt * sizeof (u64));
16154 memset (data.words_progress_rejected, 0, data.salts_cnt * sizeof (u64));
16155 memset (data.words_progress_restored, 0, data.salts_cnt * sizeof (u64));
16156
16157 memset (data.cpt_buf, 0, CPT_BUF * sizeof (cpt_t));
16158
16159 data.cpt_pos = 0;
16160
16161 data.cpt_start = time (NULL);
16162
16163 data.cpt_total = 0;
16164
16165 if (data.restore == 0)
16166 {
16167 rd->words_cur = skip;
16168
16169 skip = 0;
16170
16171 data.skip = 0;
16172 }
16173
16174 data.ms_paused = 0;
16175
16176 data.words_cur = rd->words_cur;
16177
16178 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16179 {
16180 hc_device_param_t *device_param = &data.devices_param[device_id];
16181
16182 if (device_param->skipped) continue;
16183
16184 device_param->speed_pos = 0;
16185
16186 memset (device_param->speed_cnt, 0, SPEED_CACHE * sizeof (u64));
16187 memset (device_param->speed_ms, 0, SPEED_CACHE * sizeof (double));
16188
16189 device_param->exec_pos = 0;
16190
16191 memset (device_param->exec_ms, 0, EXEC_CACHE * sizeof (double));
16192
16193 device_param->kernel_power = device_param->kernel_power_user;
16194
16195 device_param->outerloop_pos = 0;
16196 device_param->outerloop_left = 0;
16197 device_param->innerloop_pos = 0;
16198 device_param->innerloop_left = 0;
16199
16200 // some more resets:
16201
16202 if (device_param->pws_buf) memset (device_param->pws_buf, 0, device_param->size_pws);
16203
16204 device_param->pws_cnt = 0;
16205
16206 device_param->words_off = 0;
16207 device_param->words_done = 0;
16208 }
16209
16210 data.kernel_power_div = 0;
16211
16212 // figure out some workload
16213
16214 if (attack_mode == ATTACK_MODE_STRAIGHT)
16215 {
16216 if (data.wordlist_mode == WL_MODE_FILE)
16217 {
16218 char *dictfile = NULL;
16219
16220 if (induction_dictionaries_cnt)
16221 {
16222 dictfile = induction_dictionaries[0];
16223 }
16224 else
16225 {
16226 dictfile = dictfiles[dictpos];
16227 }
16228
16229 data.dictfile = dictfile;
16230
16231 logfile_sub_string (dictfile);
16232
16233 for (uint i = 0; i < rp_files_cnt; i++)
16234 {
16235 logfile_sub_var_string ("rulefile", rp_files[i]);
16236 }
16237
16238 FILE *fd2 = fopen (dictfile, "rb");
16239
16240 if (fd2 == NULL)
16241 {
16242 log_error ("ERROR: %s: %s", dictfile, strerror (errno));
16243
16244 return (-1);
16245 }
16246
16247 data.words_cnt = count_words (wl_data, fd2, dictfile, dictstat_base, &dictstat_nmemb);
16248
16249 fclose (fd2);
16250
16251 if (data.words_cnt == 0)
16252 {
16253 if (data.devices_status == STATUS_CRACKED) break;
16254 if (data.devices_status == STATUS_ABORTED) break;
16255
16256 dictpos++;
16257
16258 continue;
16259 }
16260 }
16261 }
16262 else if (attack_mode == ATTACK_MODE_COMBI)
16263 {
16264 char *dictfile = data.dictfile;
16265 char *dictfile2 = data.dictfile2;
16266
16267 logfile_sub_string (dictfile);
16268 logfile_sub_string (dictfile2);
16269
16270 if (data.combs_mode == COMBINATOR_MODE_BASE_LEFT)
16271 {
16272 FILE *fd2 = fopen (dictfile, "rb");
16273
16274 if (fd2 == NULL)
16275 {
16276 log_error ("ERROR: %s: %s", dictfile, strerror (errno));
16277
16278 return (-1);
16279 }
16280
16281 data.words_cnt = count_words (wl_data, fd2, dictfile, dictstat_base, &dictstat_nmemb);
16282
16283 fclose (fd2);
16284 }
16285 else if (data.combs_mode == COMBINATOR_MODE_BASE_RIGHT)
16286 {
16287 FILE *fd2 = fopen (dictfile2, "rb");
16288
16289 if (fd2 == NULL)
16290 {
16291 log_error ("ERROR: %s: %s", dictfile2, strerror (errno));
16292
16293 return (-1);
16294 }
16295
16296 data.words_cnt = count_words (wl_data, fd2, dictfile2, dictstat_base, &dictstat_nmemb);
16297
16298 fclose (fd2);
16299 }
16300
16301 if (data.words_cnt == 0)
16302 {
16303 if (data.devices_status == STATUS_CRACKED) break;
16304 if (data.devices_status == STATUS_ABORTED) break;
16305
16306 dictpos++;
16307
16308 continue;
16309 }
16310 }
16311 else if ((attack_mode == ATTACK_MODE_HYBRID1) || (attack_mode == ATTACK_MODE_HYBRID2))
16312 {
16313 char *dictfile = NULL;
16314
16315 if (induction_dictionaries_cnt)
16316 {
16317 dictfile = induction_dictionaries[0];
16318 }
16319 else
16320 {
16321 dictfile = dictfiles[dictpos];
16322 }
16323
16324 data.dictfile = dictfile;
16325
16326 char *mask = data.mask;
16327
16328 logfile_sub_string (dictfile);
16329 logfile_sub_string (mask);
16330
16331 FILE *fd2 = fopen (dictfile, "rb");
16332
16333 if (fd2 == NULL)
16334 {
16335 log_error ("ERROR: %s: %s", dictfile, strerror (errno));
16336
16337 return (-1);
16338 }
16339
16340 data.words_cnt = count_words (wl_data, fd2, dictfile, dictstat_base, &dictstat_nmemb);
16341
16342 fclose (fd2);
16343
16344 if (data.words_cnt == 0)
16345 {
16346 if (data.devices_status == STATUS_CRACKED) break;
16347 if (data.devices_status == STATUS_ABORTED) break;
16348
16349 dictpos++;
16350
16351 continue;
16352 }
16353 }
16354 else if (attack_mode == ATTACK_MODE_BF)
16355 {
16356 local_free (css_buf);
16357 local_free (data.root_css_buf);
16358 local_free (data.markov_css_buf);
16359
16360 char *mask = dictfiles[dictpos];
16361
16362 logfile_sub_string (mask);
16363
16364 // base
16365
16366 css_buf = mp_gen_css (mask, strlen (mask), mp_sys, mp_usr, &css_cnt);
16367
16368 if (opts_type & OPTS_TYPE_PT_UNICODE)
16369 {
16370 uint css_cnt_unicode = css_cnt * 2;
16371
16372 cs_t *css_buf_unicode = (cs_t *) mycalloc (css_cnt_unicode, sizeof (cs_t));
16373
16374 for (uint i = 0, j = 0; i < css_cnt; i += 1, j += 2)
16375 {
16376 memcpy (&css_buf_unicode[j + 0], &css_buf[i], sizeof (cs_t));
16377
16378 css_buf_unicode[j + 1].cs_buf[0] = 0;
16379 css_buf_unicode[j + 1].cs_len = 1;
16380 }
16381
16382 free (css_buf);
16383
16384 css_buf = css_buf_unicode;
16385 css_cnt = css_cnt_unicode;
16386 }
16387
16388 // check if mask is not too large or too small for pw_min/pw_max (*2 if unicode)
16389
16390 uint mask_min = pw_min;
16391 uint mask_max = pw_max;
16392
16393 if (opts_type & OPTS_TYPE_PT_UNICODE)
16394 {
16395 mask_min *= 2;
16396 mask_max *= 2;
16397 }
16398
16399 if ((css_cnt < mask_min) || (css_cnt > mask_max))
16400 {
16401 if (css_cnt < mask_min)
16402 {
16403 log_info ("WARNING: skipping mask '%s' because it is smaller than the minimum password length", mask);
16404 }
16405
16406 if (css_cnt > mask_max)
16407 {
16408 log_info ("WARNING: skipping mask '%s' because it is larger than the maximum password length", mask);
16409 }
16410
16411 // skip to next mask
16412
16413 dictpos++;
16414
16415 rd->dictpos = dictpos;
16416
16417 logfile_sub_msg ("STOP");
16418
16419 continue;
16420 }
16421
16422 uint save_css_cnt = css_cnt;
16423
16424 if (opti_type & OPTI_TYPE_SINGLE_HASH)
16425 {
16426 if (opti_type & OPTI_TYPE_APPENDED_SALT)
16427 {
16428 uint salt_len = (uint) data.salts_buf[0].salt_len;
16429 char *salt_buf = (char *) data.salts_buf[0].salt_buf;
16430
16431 uint css_cnt_salt = css_cnt + salt_len;
16432
16433 cs_t *css_buf_salt = (cs_t *) mycalloc (css_cnt_salt, sizeof (cs_t));
16434
16435 memcpy (css_buf_salt, css_buf, css_cnt * sizeof (cs_t));
16436
16437 for (uint i = 0, j = css_cnt; i < salt_len; i++, j++)
16438 {
16439 css_buf_salt[j].cs_buf[0] = salt_buf[i];
16440 css_buf_salt[j].cs_len = 1;
16441 }
16442
16443 free (css_buf);
16444
16445 css_buf = css_buf_salt;
16446 css_cnt = css_cnt_salt;
16447 }
16448 }
16449
16450 data.mask = mask;
16451 data.css_cnt = css_cnt;
16452 data.css_buf = css_buf;
16453
16454 if (maskpos > 0 && dictpos == 0) free (masks[maskpos - 1]);
16455
16456 uint uniq_tbls[SP_PW_MAX][CHARSIZ] = { { 0 } };
16457
16458 mp_css_to_uniq_tbl (css_cnt, css_buf, uniq_tbls);
16459
16460 if (root_table_buf == NULL) root_table_buf = (hcstat_table_t *) mycalloc (SP_ROOT_CNT, sizeof (hcstat_table_t));
16461 if (markov_table_buf == NULL) markov_table_buf = (hcstat_table_t *) mycalloc (SP_MARKOV_CNT, sizeof (hcstat_table_t));
16462
16463 sp_setup_tbl (shared_dir, markov_hcstat, markov_disable, markov_classic, root_table_buf, markov_table_buf);
16464
16465 markov_threshold = (markov_threshold != 0) ? markov_threshold : CHARSIZ;
16466
16467 cs_t *root_css_buf = (cs_t *) mycalloc (SP_PW_MAX, sizeof (cs_t));
16468 cs_t *markov_css_buf = (cs_t *) mycalloc (SP_PW_MAX * CHARSIZ, sizeof (cs_t));
16469
16470 data.root_css_buf = root_css_buf;
16471 data.markov_css_buf = markov_css_buf;
16472
16473 sp_tbl_to_css (root_table_buf, markov_table_buf, root_css_buf, markov_css_buf, markov_threshold, uniq_tbls);
16474
16475 data.words_cnt = sp_get_sum (0, css_cnt, root_css_buf);
16476
16477 local_free (root_table_buf);
16478 local_free (markov_table_buf);
16479
16480 // copy + args
16481
16482 uint css_cnt_l = css_cnt;
16483 uint css_cnt_r;
16484
16485 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
16486 {
16487 if (save_css_cnt < 6)
16488 {
16489 css_cnt_r = 1;
16490 }
16491 else if (save_css_cnt == 6)
16492 {
16493 css_cnt_r = 2;
16494 }
16495 else
16496 {
16497 if (opts_type & OPTS_TYPE_PT_UNICODE)
16498 {
16499 if (save_css_cnt == 8 || save_css_cnt == 10)
16500 {
16501 css_cnt_r = 2;
16502 }
16503 else
16504 {
16505 css_cnt_r = 4;
16506 }
16507 }
16508 else
16509 {
16510 if ((css_buf[0].cs_len * css_buf[1].cs_len * css_buf[2].cs_len) > 256)
16511 {
16512 css_cnt_r = 3;
16513 }
16514 else
16515 {
16516 css_cnt_r = 4;
16517 }
16518 }
16519 }
16520 }
16521 else
16522 {
16523 css_cnt_r = 1;
16524
16525 /* unfinished code?
16526 int sum = css_buf[css_cnt_r - 1].cs_len;
16527
16528 for (uint i = 1; i < 4 && i < css_cnt; i++)
16529 {
16530 if (sum > 1) break; // we really don't need alot of amplifier them for slow hashes
16531
16532 css_cnt_r++;
16533
16534 sum *= css_buf[css_cnt_r - 1].cs_len;
16535 }
16536 */
16537 }
16538
16539 css_cnt_l -= css_cnt_r;
16540
16541 data.bfs_cnt = sp_get_sum (0, css_cnt_r, root_css_buf);
16542
16543 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16544 {
16545 hc_device_param_t *device_param = &data.devices_param[device_id];
16546
16547 if (device_param->skipped) continue;
16548
16549 device_param->kernel_params_mp_l[0] = &device_param->d_pws_buf;
16550 device_param->kernel_params_mp_l[1] = &device_param->d_root_css_buf;
16551 device_param->kernel_params_mp_l[2] = &device_param->d_markov_css_buf;
16552
16553 device_param->kernel_params_mp_l_buf64[3] = 0;
16554 device_param->kernel_params_mp_l_buf32[4] = css_cnt_l;
16555 device_param->kernel_params_mp_l_buf32[5] = css_cnt_r;
16556 device_param->kernel_params_mp_l_buf32[6] = 0;
16557 device_param->kernel_params_mp_l_buf32[7] = 0;
16558 device_param->kernel_params_mp_l_buf32[8] = 0;
16559
16560 if (opts_type & OPTS_TYPE_PT_ADD01) device_param->kernel_params_mp_l_buf32[6] = full01;
16561 if (opts_type & OPTS_TYPE_PT_ADD80) device_param->kernel_params_mp_l_buf32[6] = full80;
16562 if (opts_type & OPTS_TYPE_PT_ADDBITS14) device_param->kernel_params_mp_l_buf32[7] = 1;
16563 if (opts_type & OPTS_TYPE_PT_ADDBITS15) device_param->kernel_params_mp_l_buf32[8] = 1;
16564
16565 device_param->kernel_params_mp_r[0] = &device_param->d_bfs;
16566 device_param->kernel_params_mp_r[1] = &device_param->d_root_css_buf;
16567 device_param->kernel_params_mp_r[2] = &device_param->d_markov_css_buf;
16568
16569 device_param->kernel_params_mp_r_buf64[3] = 0;
16570 device_param->kernel_params_mp_r_buf32[4] = css_cnt_r;
16571 device_param->kernel_params_mp_r_buf32[5] = 0;
16572 device_param->kernel_params_mp_r_buf32[6] = 0;
16573 device_param->kernel_params_mp_r_buf32[7] = 0;
16574
16575 for (uint i = 0; i < 3; i++) hc_clSetKernelArg (data.ocl, device_param->kernel_mp_l, i, sizeof (cl_mem), (void *) device_param->kernel_params_mp_l[i]);
16576 for (uint i = 3; i < 4; i++) hc_clSetKernelArg (data.ocl, device_param->kernel_mp_l, i, sizeof (cl_ulong), (void *) device_param->kernel_params_mp_l[i]);
16577 for (uint i = 4; i < 9; i++) hc_clSetKernelArg (data.ocl, device_param->kernel_mp_l, i, sizeof (cl_uint), (void *) device_param->kernel_params_mp_l[i]);
16578
16579 for (uint i = 0; i < 3; i++) hc_clSetKernelArg (data.ocl, device_param->kernel_mp_r, i, sizeof (cl_mem), (void *) device_param->kernel_params_mp_r[i]);
16580 for (uint i = 3; i < 4; i++) hc_clSetKernelArg (data.ocl, device_param->kernel_mp_r, i, sizeof (cl_ulong), (void *) device_param->kernel_params_mp_r[i]);
16581 for (uint i = 4; i < 8; i++) hc_clSetKernelArg (data.ocl, device_param->kernel_mp_r, i, sizeof (cl_uint), (void *) device_param->kernel_params_mp_r[i]);
16582
16583 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_root_css_buf, CL_TRUE, 0, device_param->size_root_css, root_css_buf, 0, NULL, NULL);
16584 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_markov_css_buf, CL_TRUE, 0, device_param->size_markov_css, markov_css_buf, 0, NULL, NULL);
16585 }
16586 }
16587
16588 u64 words_base = data.words_cnt;
16589
16590 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
16591 {
16592 if (data.kernel_rules_cnt)
16593 {
16594 words_base /= data.kernel_rules_cnt;
16595 }
16596 }
16597 else if (data.attack_kern == ATTACK_KERN_COMBI)
16598 {
16599 if (data.combs_cnt)
16600 {
16601 words_base /= data.combs_cnt;
16602 }
16603 }
16604 else if (data.attack_kern == ATTACK_KERN_BF)
16605 {
16606 if (data.bfs_cnt)
16607 {
16608 words_base /= data.bfs_cnt;
16609 }
16610 }
16611
16612 data.words_base = words_base;
16613
16614 if (keyspace == 1)
16615 {
16616 log_info ("%llu", (unsigned long long int) words_base);
16617
16618 return (0);
16619 }
16620
16621 if (data.words_cur > data.words_base)
16622 {
16623 log_error ("ERROR: restore value greater keyspace");
16624
16625 return (-1);
16626 }
16627
16628 if (data.words_cur)
16629 {
16630 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
16631 {
16632 for (uint i = 0; i < data.salts_cnt; i++)
16633 {
16634 data.words_progress_restored[i] = data.words_cur * data.kernel_rules_cnt;
16635 }
16636 }
16637 else if (data.attack_kern == ATTACK_KERN_COMBI)
16638 {
16639 for (uint i = 0; i < data.salts_cnt; i++)
16640 {
16641 data.words_progress_restored[i] = data.words_cur * data.combs_cnt;
16642 }
16643 }
16644 else if (data.attack_kern == ATTACK_KERN_BF)
16645 {
16646 for (uint i = 0; i < data.salts_cnt; i++)
16647 {
16648 data.words_progress_restored[i] = data.words_cur * data.bfs_cnt;
16649 }
16650 }
16651 }
16652
16653 /*
16654 * Inform user about possible slow speeds
16655 */
16656
16657 if ((wordlist_mode == WL_MODE_FILE) || (wordlist_mode == WL_MODE_MASK))
16658 {
16659 if (data.words_base < kernel_power_all)
16660 {
16661 if (quiet == 0)
16662 {
16663 log_info ("ATTENTION!");
16664 log_info (" The wordlist or mask you are using is too small.");
16665 log_info (" Therefore, hashcat is unable to utilize the full parallelization power of your device(s).");
16666 log_info (" The cracking speed will drop.");
16667 log_info (" Workaround: https://hashcat.net/wiki/doku.php?id=frequently_asked_questions#how_to_create_more_work_for_full_speed");
16668 log_info ("");
16669 }
16670 }
16671 }
16672
16673 /*
16674 * Update loopback file
16675 */
16676
16677 if (loopback == 1)
16678 {
16679 time_t now;
16680
16681 time (&now);
16682
16683 uint random_num = get_random_num (0, 9999);
16684
16685 snprintf (loopback_file, loopback_size - 1, "%s/%s.%d_%i", induction_directory, LOOPBACK_FILE, (int) now, random_num);
16686
16687 data.loopback_file = loopback_file;
16688 }
16689
16690 /*
16691 * Update dictionary statistic
16692 */
16693
16694 if (keyspace == 0)
16695 {
16696 dictstat_fp = fopen (dictstat, "wb");
16697
16698 if (dictstat_fp)
16699 {
16700 lock_file (dictstat_fp);
16701
16702 fwrite (dictstat_base, sizeof (dictstat_t), dictstat_nmemb, dictstat_fp);
16703
16704 fclose (dictstat_fp);
16705 }
16706 }
16707
16708 data.devices_status = STATUS_RUNNING;
16709
16710 if (initial_restore_done == 0)
16711 {
16712 if (data.restore_disable == 0) cycle_restore ();
16713
16714 initial_restore_done = 1;
16715 }
16716
16717 hc_timer_set (&data.timer_running);
16718
16719 if ((wordlist_mode == WL_MODE_FILE) || (wordlist_mode == WL_MODE_MASK))
16720 {
16721 if ((quiet == 0) && (status == 0) && (benchmark == 0))
16722 {
16723 if (quiet == 0) fprintf (stdout, "%s", PROMPT);
16724 if (quiet == 0) fflush (stdout);
16725 }
16726 }
16727 else if (wordlist_mode == WL_MODE_STDIN)
16728 {
16729 if (data.quiet == 0) log_info ("Starting attack in stdin mode...");
16730 if (data.quiet == 0) log_info ("");
16731 }
16732
16733 time_t runtime_start;
16734
16735 time (&runtime_start);
16736
16737 data.runtime_start = runtime_start;
16738
16739 /**
16740 * create cracker threads
16741 */
16742
16743 hc_thread_t *c_threads = (hc_thread_t *) mycalloc (data.devices_cnt, sizeof (hc_thread_t));
16744
16745 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16746 {
16747 hc_device_param_t *device_param = &devices_param[device_id];
16748
16749 if (wordlist_mode == WL_MODE_STDIN)
16750 {
16751 hc_thread_create (c_threads[device_id], thread_calc_stdin, device_param);
16752 }
16753 else
16754 {
16755 hc_thread_create (c_threads[device_id], thread_calc, device_param);
16756 }
16757 }
16758
16759 // wait for crack threads to exit
16760
16761 hc_thread_wait (data.devices_cnt, c_threads);
16762
16763 local_free (c_threads);
16764
16765 data.restore = 0;
16766
16767 // finalize task
16768
16769 logfile_sub_var_uint ("status-after-work", data.devices_status);
16770
16771 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
16772
16773 if (data.devices_status == STATUS_CRACKED) break;
16774 if (data.devices_status == STATUS_ABORTED) break;
16775
16776 if (data.devices_status == STATUS_BYPASS)
16777 {
16778 data.devices_status = STATUS_RUNNING;
16779 }
16780
16781 if (induction_dictionaries_cnt)
16782 {
16783 unlink (induction_dictionaries[0]);
16784 }
16785
16786 free (induction_dictionaries);
16787
16788 if (attack_mode != ATTACK_MODE_BF)
16789 {
16790 induction_dictionaries = scan_directory (induction_directory);
16791
16792 induction_dictionaries_cnt = count_dictionaries (induction_dictionaries);
16793 }
16794
16795 if (benchmark == 0)
16796 {
16797 if (((dictpos + 1) < dictcnt) || ((maskpos + 1) < maskcnt) || induction_dictionaries_cnt)
16798 {
16799 if (quiet == 0) clear_prompt ();
16800
16801 if (quiet == 0) log_info ("");
16802
16803 if (status == 1)
16804 {
16805 status_display ();
16806 }
16807 else
16808 {
16809 if (quiet == 0) status_display ();
16810 }
16811
16812 if (quiet == 0) log_info ("");
16813 }
16814 }
16815
16816 if (attack_mode == ATTACK_MODE_BF)
16817 {
16818 dictpos++;
16819
16820 rd->dictpos = dictpos;
16821 }
16822 else
16823 {
16824 if (induction_dictionaries_cnt)
16825 {
16826 qsort (induction_dictionaries, induction_dictionaries_cnt, sizeof (char *), sort_by_mtime);
16827 }
16828 else
16829 {
16830 dictpos++;
16831
16832 rd->dictpos = dictpos;
16833 }
16834 }
16835
16836 time_t runtime_stop;
16837
16838 time (&runtime_stop);
16839
16840 data.runtime_stop = runtime_stop;
16841
16842 logfile_sub_uint (runtime_start);
16843 logfile_sub_uint (runtime_stop);
16844
16845 logfile_sub_msg ("STOP");
16846
16847 global_free (subid);
16848 }
16849
16850 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
16851
16852 if (data.devices_status == STATUS_CRACKED) break;
16853 if (data.devices_status == STATUS_ABORTED) break;
16854 if (data.devices_status == STATUS_QUIT) break;
16855
16856 if (data.devices_status == STATUS_BYPASS)
16857 {
16858 data.devices_status = STATUS_RUNNING;
16859 }
16860 }
16861
16862 // problems could occur if already at startup everything was cracked (because of .pot file reading etc), we must set some variables here to avoid NULL pointers
16863
16864 if (attack_mode == ATTACK_MODE_STRAIGHT)
16865 {
16866 if (data.wordlist_mode == WL_MODE_FILE)
16867 {
16868 if (data.dictfile == NULL)
16869 {
16870 if (dictfiles != NULL)
16871 {
16872 data.dictfile = dictfiles[0];
16873
16874 hc_timer_set (&data.timer_running);
16875 }
16876 }
16877 }
16878 }
16879 // NOTE: combi is okay because it is already set beforehand
16880 else if (attack_mode == ATTACK_MODE_HYBRID1 || attack_mode == ATTACK_MODE_HYBRID2)
16881 {
16882 if (data.dictfile == NULL)
16883 {
16884 if (dictfiles != NULL)
16885 {
16886 hc_timer_set (&data.timer_running);
16887
16888 data.dictfile = dictfiles[0];
16889 }
16890 }
16891 }
16892 else if (attack_mode == ATTACK_MODE_BF)
16893 {
16894 if (data.mask == NULL)
16895 {
16896 hc_timer_set (&data.timer_running);
16897
16898 data.mask = masks[0];
16899 }
16900 }
16901
16902 if ((data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
16903 {
16904 data.devices_status = STATUS_EXHAUSTED;
16905 }
16906
16907 // if cracked / aborted remove last induction dictionary
16908
16909 for (int file_pos = 0; file_pos < induction_dictionaries_cnt; file_pos++)
16910 {
16911 struct stat induct_stat;
16912
16913 if (stat (induction_dictionaries[file_pos], &induct_stat) == 0)
16914 {
16915 unlink (induction_dictionaries[file_pos]);
16916 }
16917 }
16918
16919 // wait for non-interactive threads
16920
16921 for (uint thread_idx = 0; thread_idx < ni_threads_cnt; thread_idx++)
16922 {
16923 hc_thread_wait (1, &ni_threads[thread_idx]);
16924 }
16925
16926 local_free (ni_threads);
16927
16928 // wait for interactive threads
16929
16930 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
16931 {
16932 hc_thread_wait (1, &i_thread);
16933 }
16934
16935 // we dont need restore file anymore
16936 if (data.restore_disable == 0)
16937 {
16938 if ((data.devices_status == STATUS_EXHAUSTED) || (data.devices_status == STATUS_CRACKED))
16939 {
16940 unlink (eff_restore_file);
16941 unlink (new_restore_file);
16942 }
16943 else
16944 {
16945 cycle_restore ();
16946 }
16947 }
16948
16949 // finally save left hashes
16950
16951 if ((hashlist_mode == HL_MODE_FILE) && (remove == 1) && (data.digests_saved != data.digests_done))
16952 {
16953 save_hash ();
16954 }
16955
16956 /**
16957 * Clean up
16958 */
16959
16960 if (benchmark == 1)
16961 {
16962 status_benchmark ();
16963
16964 log_info ("");
16965 }
16966 else
16967 {
16968 if (quiet == 0) clear_prompt ();
16969
16970 if (quiet == 0) log_info ("");
16971
16972 if (status == 1)
16973 {
16974 status_display ();
16975 }
16976 else
16977 {
16978 if (quiet == 0) status_display ();
16979 }
16980
16981 if (quiet == 0) log_info ("");
16982 }
16983
16984 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16985 {
16986 hc_device_param_t *device_param = &data.devices_param[device_id];
16987
16988 if (device_param->skipped) continue;
16989
16990 local_free (device_param->result);
16991
16992 local_free (device_param->combs_buf);
16993
16994 local_free (device_param->hooks_buf);
16995
16996 local_free (device_param->device_name);
16997
16998 local_free (device_param->device_name_chksum);
16999
17000 local_free (device_param->device_version);
17001
17002 local_free (device_param->driver_version);
17003
17004 if (device_param->pws_buf) myfree (device_param->pws_buf);
17005 if (device_param->d_pws_buf) hc_clReleaseMemObject (data.ocl, device_param->d_pws_buf);
17006 if (device_param->d_pws_amp_buf) hc_clReleaseMemObject (data.ocl, device_param->d_pws_amp_buf);
17007 if (device_param->d_rules) hc_clReleaseMemObject (data.ocl, device_param->d_rules);
17008 if (device_param->d_rules_c) hc_clReleaseMemObject (data.ocl, device_param->d_rules_c);
17009 if (device_param->d_combs) hc_clReleaseMemObject (data.ocl, device_param->d_combs);
17010 if (device_param->d_combs_c) hc_clReleaseMemObject (data.ocl, device_param->d_combs_c);
17011 if (device_param->d_bfs) hc_clReleaseMemObject (data.ocl, device_param->d_bfs);
17012 if (device_param->d_bfs_c) hc_clReleaseMemObject (data.ocl, device_param->d_bfs_c);
17013 if (device_param->d_bitmap_s1_a) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s1_a);
17014 if (device_param->d_bitmap_s1_b) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s1_b);
17015 if (device_param->d_bitmap_s1_c) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s1_c);
17016 if (device_param->d_bitmap_s1_d) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s1_d);
17017 if (device_param->d_bitmap_s2_a) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s2_a);
17018 if (device_param->d_bitmap_s2_b) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s2_b);
17019 if (device_param->d_bitmap_s2_c) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s2_c);
17020 if (device_param->d_bitmap_s2_d) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s2_d);
17021 if (device_param->d_plain_bufs) hc_clReleaseMemObject (data.ocl, device_param->d_plain_bufs);
17022 if (device_param->d_digests_buf) hc_clReleaseMemObject (data.ocl, device_param->d_digests_buf);
17023 if (device_param->d_digests_shown) hc_clReleaseMemObject (data.ocl, device_param->d_digests_shown);
17024 if (device_param->d_salt_bufs) hc_clReleaseMemObject (data.ocl, device_param->d_salt_bufs);
17025 if (device_param->d_esalt_bufs) hc_clReleaseMemObject (data.ocl, device_param->d_esalt_bufs);
17026 if (device_param->d_tmps) hc_clReleaseMemObject (data.ocl, device_param->d_tmps);
17027 if (device_param->d_hooks) hc_clReleaseMemObject (data.ocl, device_param->d_hooks);
17028 if (device_param->d_result) hc_clReleaseMemObject (data.ocl, device_param->d_result);
17029 if (device_param->d_scryptV_buf) hc_clReleaseMemObject (data.ocl, device_param->d_scryptV_buf);
17030 if (device_param->d_root_css_buf) hc_clReleaseMemObject (data.ocl, device_param->d_root_css_buf);
17031 if (device_param->d_markov_css_buf) hc_clReleaseMemObject (data.ocl, device_param->d_markov_css_buf);
17032 if (device_param->d_tm_c) hc_clReleaseMemObject (data.ocl, device_param->d_tm_c);
17033
17034 if (device_param->kernel1) hc_clReleaseKernel (data.ocl, device_param->kernel1);
17035 if (device_param->kernel12) hc_clReleaseKernel (data.ocl, device_param->kernel12);
17036 if (device_param->kernel2) hc_clReleaseKernel (data.ocl, device_param->kernel2);
17037 if (device_param->kernel23) hc_clReleaseKernel (data.ocl, device_param->kernel23);
17038 if (device_param->kernel3) hc_clReleaseKernel (data.ocl, device_param->kernel3);
17039 if (device_param->kernel_mp) hc_clReleaseKernel (data.ocl, device_param->kernel_mp);
17040 if (device_param->kernel_mp_l) hc_clReleaseKernel (data.ocl, device_param->kernel_mp_l);
17041 if (device_param->kernel_mp_r) hc_clReleaseKernel (data.ocl, device_param->kernel_mp_r);
17042 if (device_param->kernel_tm) hc_clReleaseKernel (data.ocl, device_param->kernel_tm);
17043 if (device_param->kernel_amp) hc_clReleaseKernel (data.ocl, device_param->kernel_amp);
17044
17045 if (device_param->program) hc_clReleaseProgram (data.ocl, device_param->program);
17046 if (device_param->program_mp) hc_clReleaseProgram (data.ocl, device_param->program_mp);
17047 if (device_param->program_amp) hc_clReleaseProgram (data.ocl, device_param->program_amp);
17048
17049 if (device_param->command_queue) hc_clReleaseCommandQueue (data.ocl, device_param->command_queue);
17050 if (device_param->context) hc_clReleaseContext (data.ocl, device_param->context);
17051 }
17052
17053 // reset default fan speed
17054
17055 #ifdef HAVE_HWMON
17056 if (gpu_temp_disable == 0)
17057 {
17058 #ifdef HAVE_ADL
17059 if (gpu_temp_retain != 0) // VENDOR_ID_AMD is implied here
17060 {
17061 hc_thread_mutex_lock (mux_adl);
17062
17063 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
17064 {
17065 hc_device_param_t *device_param = &data.devices_param[device_id];
17066
17067 if (device_param->skipped) continue;
17068
17069 if (data.hm_device[device_id].fan_supported == 1)
17070 {
17071 int fanspeed = temp_retain_fanspeed_value[device_id];
17072
17073 if (fanspeed == -1) continue;
17074
17075 int rc = hm_set_fanspeed_with_device_id_amd (device_id, fanspeed);
17076
17077 if (rc == -1) log_info ("WARNING: Failed to restore default fan speed for gpu number: %i:", device_id);
17078 }
17079 }
17080
17081 hc_thread_mutex_unlock (mux_adl);
17082 }
17083 #endif // HAVE_ADL
17084 }
17085
17086 #ifdef HAVE_ADL
17087 // reset power tuning
17088
17089 if (powertune_enable == 1) // VENDOR_ID_AMD is implied here
17090 {
17091 hc_thread_mutex_lock (mux_adl);
17092
17093 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
17094 {
17095 hc_device_param_t *device_param = &data.devices_param[device_id];
17096
17097 if (device_param->skipped) continue;
17098
17099 if (data.hm_device[device_id].od_version == 6)
17100 {
17101 // check powertune capabilities first, if not available then skip device
17102
17103 int powertune_supported = 0;
17104
17105 if ((hm_ADL_Overdrive6_PowerControl_Caps (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune_supported)) != ADL_OK)
17106 {
17107 log_error ("ERROR: Failed to get ADL PowerControl Capabilities");
17108
17109 return (-1);
17110 }
17111
17112 if (powertune_supported != 0)
17113 {
17114 // powercontrol settings
17115
17116 if ((hm_ADL_Overdrive_PowerControl_Set (data.hm_amd, data.hm_device[device_id].adapter_index.amd, od_power_control_status[device_id])) != ADL_OK)
17117 {
17118 log_info ("ERROR: Failed to restore the ADL PowerControl values");
17119
17120 return (-1);
17121 }
17122
17123 // clocks
17124
17125 ADLOD6StateInfo *performance_state = (ADLOD6StateInfo*) mycalloc (1, sizeof (ADLOD6StateInfo) + sizeof (ADLOD6PerformanceLevel));
17126
17127 performance_state->iNumberOfPerformanceLevels = 2;
17128
17129 performance_state->aLevels[0].iEngineClock = od_clock_mem_status[device_id].state.aLevels[0].iEngineClock;
17130 performance_state->aLevels[1].iEngineClock = od_clock_mem_status[device_id].state.aLevels[1].iEngineClock;
17131 performance_state->aLevels[0].iMemoryClock = od_clock_mem_status[device_id].state.aLevels[0].iMemoryClock;
17132 performance_state->aLevels[1].iMemoryClock = od_clock_mem_status[device_id].state.aLevels[1].iMemoryClock;
17133
17134 if ((hm_ADL_Overdrive_State_Set (data.hm_amd, data.hm_device[device_id].adapter_index.amd, ADL_OD6_SETSTATE_PERFORMANCE, performance_state)) != ADL_OK)
17135 {
17136 log_info ("ERROR: Failed to restore ADL performance state");
17137
17138 return (-1);
17139 }
17140
17141 local_free (performance_state);
17142 }
17143 }
17144 }
17145
17146 hc_thread_mutex_unlock (mux_adl);
17147 }
17148 #endif // HAVE_ADL
17149
17150 if (gpu_temp_disable == 0)
17151 {
17152 #if defined(HAVE_NVML) || defined(HAVE_NVAPI)
17153 if (data.hm_nv)
17154 {
17155 #if defined(LINUX) && defined(HAVE_NVML)
17156
17157 hm_NVML_nvmlShutdown (data.hm_nv);
17158
17159 nvml_close (data.hm_nv);
17160
17161 #elif defined(WIN) && (HAVE_NVAPI)
17162
17163 hm_NvAPI_Unload (data.hm_nv);
17164
17165 nvapi_close (data.hm_nv);
17166
17167 #endif
17168
17169 data.hm_nv = NULL;
17170 }
17171 #endif
17172
17173 #ifdef HAVE_ADL
17174 if (data.hm_amd)
17175 {
17176 hm_ADL_Main_Control_Destroy (data.hm_amd);
17177
17178 adl_close (data.hm_amd);
17179 data.hm_amd = NULL;
17180 }
17181 #endif
17182 }
17183 #endif // HAVE_HWMON
17184
17185 // free memory
17186
17187 local_free (masks);
17188
17189 local_free (dictstat_base);
17190
17191 for (uint pot_pos = 0; pot_pos < pot_cnt; pot_pos++)
17192 {
17193 pot_t *pot_ptr = &pot[pot_pos];
17194
17195 hash_t *hash = &pot_ptr->hash;
17196
17197 local_free (hash->digest);
17198
17199 if (isSalted)
17200 {
17201 local_free (hash->salt);
17202 }
17203 }
17204
17205 local_free (pot);
17206
17207 local_free (all_kernel_rules_cnt);
17208 local_free (all_kernel_rules_buf);
17209
17210 local_free (wl_data->buf);
17211 local_free (wl_data);
17212
17213 local_free (bitmap_s1_a);
17214 local_free (bitmap_s1_b);
17215 local_free (bitmap_s1_c);
17216 local_free (bitmap_s1_d);
17217 local_free (bitmap_s2_a);
17218 local_free (bitmap_s2_b);
17219 local_free (bitmap_s2_c);
17220 local_free (bitmap_s2_d);
17221
17222 #ifdef HAVE_HWMON
17223 local_free (temp_retain_fanspeed_value);
17224 #ifdef HAVE_ADL
17225 local_free (od_clock_mem_status);
17226 local_free (od_power_control_status);
17227 #endif // ADL
17228 #endif
17229
17230 global_free (devices_param);
17231
17232 global_free (kernel_rules_buf);
17233
17234 global_free (root_css_buf);
17235 global_free (markov_css_buf);
17236
17237 global_free (digests_buf);
17238 global_free (digests_shown);
17239 global_free (digests_shown_tmp);
17240
17241 global_free (salts_buf);
17242 global_free (salts_shown);
17243
17244 global_free (esalts_buf);
17245
17246 global_free (words_progress_done);
17247 global_free (words_progress_rejected);
17248 global_free (words_progress_restored);
17249
17250 if (pot_fp) fclose (pot_fp);
17251
17252 if (data.devices_status == STATUS_QUIT) break;
17253 }
17254
17255 // destroy others mutex
17256
17257 hc_thread_mutex_delete (mux_dispatcher);
17258 hc_thread_mutex_delete (mux_counter);
17259 hc_thread_mutex_delete (mux_display);
17260 hc_thread_mutex_delete (mux_adl);
17261
17262 // free memory
17263
17264 local_free (eff_restore_file);
17265 local_free (new_restore_file);
17266
17267 local_free (rd);
17268
17269 // tuning db
17270
17271 tuning_db_destroy (tuning_db);
17272
17273 // loopback
17274
17275 local_free (loopback_file);
17276
17277 if (loopback == 1) unlink (loopback_file);
17278
17279 // induction directory
17280
17281 if (induction_dir == NULL)
17282 {
17283 if (attack_mode != ATTACK_MODE_BF)
17284 {
17285 if (rmdir (induction_directory) == -1)
17286 {
17287 if (errno == ENOENT)
17288 {
17289 // good, we can ignore
17290 }
17291 else if (errno == ENOTEMPTY)
17292 {
17293 // good, we can ignore
17294 }
17295 else
17296 {
17297 log_error ("ERROR: %s: %s", induction_directory, strerror (errno));
17298
17299 return (-1);
17300 }
17301 }
17302
17303 local_free (induction_directory);
17304 }
17305 }
17306
17307 // outfile-check directory
17308
17309 if (outfile_check_dir == NULL)
17310 {
17311 if (rmdir (outfile_check_directory) == -1)
17312 {
17313 if (errno == ENOENT)
17314 {
17315 // good, we can ignore
17316 }
17317 else if (errno == ENOTEMPTY)
17318 {
17319 // good, we can ignore
17320 }
17321 else
17322 {
17323 log_error ("ERROR: %s: %s", outfile_check_directory, strerror (errno));
17324
17325 return (-1);
17326 }
17327 }
17328
17329 local_free (outfile_check_directory);
17330 }
17331
17332 time_t proc_stop;
17333
17334 time (&proc_stop);
17335
17336 logfile_top_uint (proc_start);
17337 logfile_top_uint (proc_stop);
17338
17339 logfile_top_msg ("STOP");
17340
17341 if (quiet == 0) log_info_nn ("Started: %s", ctime (&proc_start));
17342 if (quiet == 0) log_info_nn ("Stopped: %s", ctime (&proc_stop));
17343
17344 if (data.ocl) ocl_close (data.ocl);
17345
17346 if (data.devices_status == STATUS_ABORTED) return 2;
17347 if (data.devices_status == STATUS_QUIT) return 2;
17348 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) return 2;
17349 if (data.devices_status == STATUS_EXHAUSTED) return 1;
17350 if (data.devices_status == STATUS_CRACKED) return 0;
17351
17352 return -1;
17353 }