e718e9b45a40f1502aff09751170a12e481c9ec5
[hashcat.git] / src / oclHashcat.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 = "oclHashcat";
19 const uint VERSION_BIN = 210;
20 const uint RESTORE_MIN = 210;
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 BENCHMARK_REPEATS 100
37 #define RESTORE 0
38 #define RESTORE_TIMER 60
39 #define RESTORE_DISABLE 0
40 #define STATUS 0
41 #define STATUS_TIMER 10
42 #define STATUS_AUTOMAT 0
43 #define LOOPBACK 0
44 #define WEAK_HASH_THRESHOLD 100
45 #define SHOW 0
46 #define LEFT 0
47 #define USERNAME 0
48 #define REMOVE 0
49 #define REMOVE_TIMER 60
50 #define SKIP 0
51 #define LIMIT 0
52 #define KEYSPACE 0
53 #define POTFILE_DISABLE 0
54 #define DEBUG_MODE 0
55 #define RP_GEN 0
56 #define RP_GEN_FUNC_MIN 1
57 #define RP_GEN_FUNC_MAX 4
58 #define RP_GEN_SEED 0
59 #define RULE_BUF_L ":"
60 #define RULE_BUF_R ":"
61 #define FORCE 0
62 #define RUNTIME 0
63 #define HEX_CHARSET 0
64 #define HEX_SALT 0
65 #define HEX_WORDLIST 0
66 #define OUTFILE_FORMAT 3
67 #define OUTFILE_AUTOHEX 1
68 #define OUTFILE_CHECK_TIMER 5
69 #define ATTACK_MODE 0
70 #define HASH_MODE 0
71 #define SEGMENT_SIZE 32
72 #define INCREMENT 0
73 #define INCREMENT_MIN 1
74 #define INCREMENT_MAX PW_MAX
75 #define SEPARATOR ':'
76 #define BITMAP_MIN 16
77 #define BITMAP_MAX 24
78 #define GPU_TEMP_DISABLE 0
79 #define GPU_TEMP_ABORT 90
80 #define GPU_TEMP_RETAIN 80
81 #define WORKLOAD_PROFILE 2
82 #define KERNEL_ACCEL 0
83 #define KERNEL_LOOPS 0
84 #define KERNEL_RULES 1024
85 #define KERNEL_COMBS 1024
86 #define KERNEL_BFS 1024
87 #define KERNEL_THREADS 64
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 136
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 12500,
274 13000,
275 13200,
276 13300,
277 6211,
278 6221,
279 6231,
280 6241,
281 8800,
282 12900,
283 12200,
284 9700,
285 9710,
286 9800,
287 9810,
288 9400,
289 9500,
290 9600,
291 10400,
292 10410,
293 10500,
294 10600,
295 10700,
296 9000,
297 5200,
298 6800,
299 6600,
300 8200,
301 11300,
302 12700,
303 13400,
304 125
305 };
306
307 /**
308 * types
309 */
310
311 static void (*get_next_word_func) (char *, u32, u32 *, u32 *);
312
313 /**
314 * globals
315 */
316
317 static unsigned int full01 = 0x01010101;
318 static unsigned int full80 = 0x80808080;
319
320 int SUPPRESS_OUTPUT = 0;
321
322 hc_thread_mutex_t mux_adl;
323 hc_thread_mutex_t mux_counter;
324 hc_thread_mutex_t mux_dispatcher;
325 hc_thread_mutex_t mux_display;
326
327 hc_global_data_t data;
328
329 const char *PROMPT = "[s]tatus [p]ause [r]esume [b]ypass [c]heckpoint [q]uit => ";
330
331 const char *USAGE_MINI[] =
332 {
333 "Usage: %s [options]... hash|hashfile|hccapfile [dictionary|mask|directory]...",
334 "",
335 "Try --help for more help.",
336 NULL
337 };
338
339 const char *USAGE_BIG[] =
340 {
341 "%s, advanced password recovery",
342 "",
343 "Usage: %s [options]... hash|hashfile|hccapfile [dictionary|mask|directory]...",
344 "",
345 "=======",
346 "Options",
347 "=======",
348 "",
349 "* General:",
350 "",
351 " -m, --hash-type=NUM Hash-type, see references below",
352 " -a, --attack-mode=NUM Attack-mode, see references below",
353 " -V, --version Print version",
354 " -h, --help Print help",
355 " --quiet Suppress output",
356 "",
357 "* Misc:",
358 "",
359 " --hex-charset Assume charset is given in hex",
360 " --hex-salt Assume salt is given in hex",
361 " --hex-wordlist Assume words in wordlist is given in hex",
362 " --force Ignore warnings",
363 " --status Enable automatic update of the status-screen",
364 " --status-timer=NUM Seconds between status-screen update",
365 " --status-automat Display the status view in a machine readable format",
366 " --loopback Add new plains to induct directory",
367 " --weak-hash-threshold=NUM Threshold when to stop checking for weak hashes, default is 100 salts",
368 "",
369 "* Markov:",
370 "",
371 " --markov-hcstat=FILE Specify hcstat file to use, default is hashcat.hcstat",
372 " --markov-disable Disables markov-chains, emulates classic brute-force",
373 " --markov-classic Enables classic markov-chains, no per-position enhancement",
374 " -t, --markov-threshold=NUM Threshold when to stop accepting new markov-chains",
375 "",
376 "* Session:",
377 "",
378 " --runtime=NUM Abort session after NUM seconds of runtime",
379 " --session=STR Define specific session name",
380 " --restore Restore session from --session",
381 " --restore-disable Do not write restore file",
382 "",
383 "* Files:",
384 "",
385 " -o, --outfile=FILE Define outfile for recovered hash",
386 " --outfile-format=NUM Define outfile-format for recovered hash, see references below",
387 " --outfile-autohex-disable Disable the use of $HEX[] in output plains",
388 " --outfile-check-timer=NUM Seconds between outfile checks",
389 " -p, --separator=CHAR Separator char for hashlists and outfile",
390 " --show Show cracked passwords only",
391 " --left Show un-cracked passwords only",
392 " --username Enable ignoring of usernames in hashfile (recommended: also use --show)",
393 " --remove Enable remove of hash once it is cracked",
394 " --remove-timer=NUM Update input hash file each NUM seconds",
395 " --potfile-disable Do not write potfile",
396 " --potfile-path Specific path to potfile",
397 " --debug-mode=NUM Defines the debug mode (hybrid only by using rules), see references below",
398 " --debug-file=FILE Output file for debugging rules (see also --debug-mode)",
399 " --induction-dir=FOLDER Specify induction directory to use, default is $session.induct",
400 " --outfile-check-dir=FOLDER Specify the outfile directory which should be monitored, default is $session.outfiles",
401 " --logfile-disable Disable the logfile",
402 " --truecrypt-keyfiles=FILE Keyfiles used, separate with comma",
403 "",
404 "* Resources:",
405 "",
406 " -b, --benchmark Run benchmark",
407 " --benchmark-repeats=NUM Repeat the kernel on the device NUM times to increase benchmark accuracy",
408 " -c, --segment-size=NUM Size in MB to cache from the wordfile",
409 " --bitmap-min=NUM Minimum number of bits allowed for bitmaps",
410 " --bitmap-max=NUM Maximum number of bits allowed for bitmaps",
411 " --cpu-affinity=STR Locks to CPU devices, separate with comma",
412 " --opencl-platforms=STR OpenCL platforms to use, separate with comma",
413 " -d, --opencl-devices=STR OpenCL devices to use, separate with comma",
414 " --opencl-device-types=STR OpenCL device-types to use, separate with comma, see references below",
415 " --opencl-vector-width=NUM OpenCL vector-width (either 1, 2, 4, 8 or 16), overrides value from device query",
416 " -w, --workload-profile=NUM Enable a specific workload profile, see references below",
417 " -n, --kernel-accel=NUM Workload tuning, increase the outer-loop step size",
418 " -u, --kernel-loops=NUM Workload tuning, increase the inner-loop step size",
419 " --gpu-temp-disable Disable temperature and fanspeed readings and triggers",
420 #ifdef HAVE_HWMON
421 " --gpu-temp-abort=NUM Abort session if GPU temperature reaches NUM degrees celsius",
422 " --gpu-temp-retain=NUM Try to retain GPU temperature at NUM degrees celsius (AMD only)",
423 #ifdef HAVE_ADL
424 " --powertune-enable Enable automatic power tuning option (AMD OverDrive 6 only)",
425 #endif
426 #endif
427 " --scrypt-tmto=NUM Manually override automatically calculated TMTO value for scrypt",
428 "",
429 "* Distributed:",
430 "",
431 " -s, --skip=NUM Skip number of words",
432 " -l, --limit=NUM Limit number of words",
433 " --keyspace Show keyspace base:mod values and quit",
434 "",
435 "* Rules:",
436 "",
437 " -j, --rule-left=RULE Single rule applied to each word from left dict",
438 " -k, --rule-right=RULE Single rule applied to each word from right dict",
439 " -r, --rules-file=FILE Rules-file, multi use: -r 1.rule -r 2.rule",
440 " -g, --generate-rules=NUM Generate NUM random rules",
441 " --generate-rules-func-min=NUM Force NUM functions per random rule min",
442 " --generate-rules-func-max=NUM Force NUM functions per random rule max",
443 " --generate-rules-seed=NUM Force RNG seed to NUM",
444 "",
445 "* Custom charsets:",
446 "",
447 " -1, --custom-charset1=CS User-defined charsets",
448 " -2, --custom-charset2=CS Example:",
449 " -3, --custom-charset3=CS --custom-charset1=?dabcdef : sets charset ?1 to 0123456789abcdef",
450 " -4, --custom-charset4=CS -2 mycharset.hcchr : sets charset ?2 to chars contained in file",
451 "",
452 "* Increment:",
453 "",
454 " -i, --increment Enable increment mode",
455 " --increment-min=NUM Start incrementing at NUM",
456 " --increment-max=NUM Stop incrementing at NUM",
457 "",
458 "==========",
459 "References",
460 "==========",
461 "",
462 "* Workload Profile:",
463 "",
464 " 1 = Interactive performance profile, kernel execution runtime to 8ms, lower latency desktop, lower speed",
465 " 2 = Default performance profile, kernel execution runtime to 16ms, economic setting",
466 " 3 = Headless performance profile, kernel execution runtime to 96ms, higher latency desktop, higher speed",
467 "",
468 "* OpenCL device-types:",
469 "",
470 " 1 = CPU devices",
471 " 2 = GPU devices",
472 " 3 = Accelerator devices (FPGA, CELL Blade, etc.)",
473 "",
474 "* Outfile Formats:",
475 "",
476 " 1 = hash[:salt]",
477 " 2 = plain",
478 " 3 = hash[:salt]:plain",
479 " 4 = hex_plain",
480 " 5 = hash[:salt]:hex_plain",
481 " 6 = plain:hex_plain",
482 " 7 = hash[:salt]:plain:hex_plain",
483 " 8 = crackpos",
484 " 9 = hash[:salt]:crackpos",
485 " 10 = plain:crackpos",
486 " 11 = hash[:salt]:plain:crackpos",
487 " 12 = hex_plain:crackpos",
488 " 13 = hash[:salt]:hex_plain:crackpos",
489 " 14 = plain:hex_plain:crackpos",
490 " 15 = hash[:salt]:plain:hex_plain:crackpos",
491 "",
492 "* Debug mode output formats (for hybrid mode only, by using rules):",
493 "",
494 " 1 = save finding rule",
495 " 2 = save original word",
496 " 3 = save original word and finding rule",
497 " 4 = save original word, finding rule and modified plain",
498 "",
499 "* Built-in charsets:",
500 "",
501 " ?l = abcdefghijklmnopqrstuvwxyz",
502 " ?u = ABCDEFGHIJKLMNOPQRSTUVWXYZ",
503 " ?d = 0123456789",
504 " ?s = !\"#$%%&'()*+,-./:;<=>?@[\\]^_`{|}~",
505 " ?a = ?l?u?d?s",
506 " ?b = 0x00 - 0xff",
507 "",
508 "* Attack modes:",
509 "",
510 " 0 = Straight",
511 " 1 = Combination",
512 " 3 = Brute-force",
513 " 6 = Hybrid dict + mask",
514 " 7 = Hybrid mask + dict",
515 "",
516 "* Hash types:",
517 "",
518 "[[ Roll-your-own: Raw Hashes ]]",
519 "",
520 " 900 = MD4",
521 " 0 = MD5",
522 " 5100 = Half MD5",
523 " 100 = SHA1",
524 " 10800 = SHA-384",
525 " 1400 = SHA-256",
526 " 1700 = SHA-512",
527 " 5000 = SHA-3(Keccak)",
528 " 10100 = SipHash",
529 " 6000 = RipeMD160",
530 " 6100 = Whirlpool",
531 " 6900 = GOST R 34.11-94",
532 " 11700 = GOST R 34.11-2012 (Streebog) 256-bit",
533 " 11800 = GOST R 34.11-2012 (Streebog) 512-bit",
534 "",
535 "[[ Roll-your-own: Iterated and / or Salted Hashes ]]",
536 "",
537 " 10 = md5($pass.$salt)",
538 " 20 = md5($salt.$pass)",
539 " 30 = md5(unicode($pass).$salt)",
540 " 40 = md5($salt.unicode($pass))",
541 " 3800 = md5($salt.$pass.$salt)",
542 " 3710 = md5($salt.md5($pass))",
543 " 2600 = md5(md5($pass)",
544 " 4300 = md5(strtoupper(md5($pass)))",
545 " 4400 = md5(sha1($pass))",
546 " 110 = sha1($pass.$salt)",
547 " 120 = sha1($salt.$pass)",
548 " 130 = sha1(unicode($pass).$salt)",
549 " 140 = sha1($salt.unicode($pass))",
550 " 4500 = sha1(sha1($pass)",
551 " 4700 = sha1(md5($pass))",
552 " 4900 = sha1($salt.$pass.$salt)",
553 " 1410 = sha256($pass.$salt)",
554 " 1420 = sha256($salt.$pass)",
555 " 1430 = sha256(unicode($pass).$salt)",
556 " 1440 = sha256($salt.unicode($pass))",
557 " 1710 = sha512($pass.$salt)",
558 " 1720 = sha512($salt.$pass)",
559 " 1730 = sha512(unicode($pass).$salt)",
560 " 1740 = sha512($salt.unicode($pass))",
561 "",
562 "[[ Roll-your-own: Authenticated Hashes ]]",
563 "",
564 " 50 = HMAC-MD5 (key = $pass)",
565 " 60 = HMAC-MD5 (key = $salt)",
566 " 150 = HMAC-SHA1 (key = $pass)",
567 " 160 = HMAC-SHA1 (key = $salt)",
568 " 1450 = HMAC-SHA256 (key = $pass)",
569 " 1460 = HMAC-SHA256 (key = $salt)",
570 " 1750 = HMAC-SHA512 (key = $pass)",
571 " 1760 = HMAC-SHA512 (key = $salt)",
572 "",
573 "[[ Generic KDF ]]",
574 "",
575 " 400 = phpass",
576 " 8900 = scrypt",
577 " 11900 = PBKDF2-HMAC-MD5",
578 " 12000 = PBKDF2-HMAC-SHA1",
579 " 10900 = PBKDF2-HMAC-SHA256",
580 " 12100 = PBKDF2-HMAC-SHA512",
581 "",
582 "[[ Network protocols, Challenge-Response ]]",
583 "",
584 " 23 = Skype",
585 " 2500 = WPA/WPA2",
586 " 4800 = iSCSI CHAP authentication, MD5(Chap)",
587 " 5300 = IKE-PSK MD5",
588 " 5400 = IKE-PSK SHA1",
589 " 5500 = NetNTLMv1",
590 " 5500 = NetNTLMv1 + ESS",
591 " 5600 = NetNTLMv2",
592 " 7300 = IPMI2 RAKP HMAC-SHA1",
593 " 7500 = Kerberos 5 AS-REQ Pre-Auth etype 23",
594 " 8300 = DNSSEC (NSEC3)",
595 " 10200 = Cram MD5",
596 " 11100 = PostgreSQL Challenge-Response Authentication (MD5)",
597 " 11200 = MySQL Challenge-Response Authentication (SHA1)",
598 " 11400 = SIP digest authentication (MD5)",
599 " 13100 = Kerberos 5 TGS-REP etype 23",
600 "",
601 "[[ Forums, CMS, E-Commerce, Frameworks, Middleware, Wiki, Management ]]",
602 "",
603 " 121 = SMF (Simple Machines Forum)",
604 " 400 = phpBB3",
605 " 2611 = vBulletin < v3.8.5",
606 " 2711 = vBulletin > v3.8.5",
607 " 2811 = MyBB",
608 " 2811 = IPB (Invison Power Board)",
609 " 8400 = WBB3 (Woltlab Burning Board)",
610 " 11 = Joomla < 2.5.18",
611 " 400 = Joomla > 2.5.18",
612 " 400 = Wordpress",
613 " 2612 = PHPS",
614 " 7900 = Drupal7",
615 " 21 = osCommerce",
616 " 21 = xt:Commerce",
617 " 11000 = PrestaShop",
618 " 124 = Django (SHA-1)",
619 " 10000 = Django (PBKDF2-SHA256)",
620 " 3711 = Mediawiki B type",
621 " 7600 = Redmine",
622 "",
623 "[[ Database Server ]]",
624 "",
625 " 12 = PostgreSQL",
626 " 131 = MSSQL(2000)",
627 " 132 = MSSQL(2005)",
628 " 1731 = MSSQL(2012)",
629 " 1731 = MSSQL(2014)",
630 " 200 = MySQL323",
631 " 300 = MySQL4.1/MySQL5",
632 " 3100 = Oracle H: Type (Oracle 7+)",
633 " 112 = Oracle S: Type (Oracle 11+)",
634 " 12300 = Oracle T: Type (Oracle 12+)",
635 " 8000 = Sybase ASE",
636 "",
637 "[[ HTTP, SMTP, LDAP Server ]]",
638 "",
639 " 141 = EPiServer 6.x < v4",
640 " 1441 = EPiServer 6.x > v4",
641 " 1600 = Apache $apr1$",
642 " 12600 = ColdFusion 10+",
643 " 1421 = hMailServer",
644 " 101 = nsldap, SHA-1(Base64), Netscape LDAP SHA",
645 " 111 = nsldaps, SSHA-1(Base64), Netscape LDAP SSHA",
646 " 1711 = SSHA-512(Base64), LDAP {SSHA512}",
647 "",
648 "[[ Checksums ]]",
649 "",
650 " 11500 = CRC32",
651 "",
652 "[[ Operating-Systems ]]",
653 "",
654 " 3000 = LM",
655 " 1000 = NTLM",
656 " 1100 = Domain Cached Credentials (DCC), MS Cache",
657 " 2100 = Domain Cached Credentials 2 (DCC2), MS Cache 2",
658 " 12800 = MS-AzureSync PBKDF2-HMAC-SHA256",
659 " 1500 = descrypt, DES(Unix), Traditional DES",
660 " 12400 = BSDiCrypt, Extended DES",
661 " 500 = md5crypt $1$, MD5(Unix)",
662 " 3200 = bcrypt $2*$, Blowfish(Unix)",
663 " 7400 = sha256crypt $5$, SHA256(Unix)",
664 " 1800 = sha512crypt $6$, SHA512(Unix)",
665 " 122 = OSX v10.4",
666 " 122 = OSX v10.5",
667 " 122 = OSX v10.6",
668 " 1722 = OSX v10.7",
669 " 7100 = OSX v10.8",
670 " 7100 = OSX v10.9",
671 " 7100 = OSX v10.10",
672 " 6300 = AIX {smd5}",
673 " 6700 = AIX {ssha1}",
674 " 6400 = AIX {ssha256}",
675 " 6500 = AIX {ssha512}",
676 " 2400 = Cisco-PIX",
677 " 2410 = Cisco-ASA",
678 " 500 = Cisco-IOS $1$",
679 " 5700 = Cisco-IOS $4$",
680 " 9200 = Cisco-IOS $8$",
681 " 9300 = Cisco-IOS $9$",
682 " 22 = Juniper Netscreen/SSG (ScreenOS)",
683 " 501 = Juniper IVE",
684 " 5800 = Android PIN",
685 " 8100 = Citrix Netscaler",
686 " 8500 = RACF",
687 " 7200 = GRUB 2",
688 " 9900 = Radmin2",
689 " 125 = ArubaOS",
690 "",
691 "[[ Enterprise Application Software (EAS) ]]",
692 "",
693 " 7700 = SAP CODVN B (BCODE)",
694 " 7800 = SAP CODVN F/G (PASSCODE)",
695 " 10300 = SAP CODVN H (PWDSALTEDHASH) iSSHA-1",
696 " 8600 = Lotus Notes/Domino 5",
697 " 8700 = Lotus Notes/Domino 6",
698 " 9100 = Lotus Notes/Domino 8",
699 " 133 = PeopleSoft",
700 " 13500 = PeopleSoft Token",
701 "",
702 "[[ Archives ]]",
703 "",
704 " 11600 = 7-Zip",
705 " 12500 = RAR3-hp",
706 " 13000 = RAR5",
707 " 13200 = AxCrypt",
708 " 13300 = AxCrypt in memory SHA1",
709 "",
710 "[[ Full-Disk encryptions (FDE) ]]",
711 "",
712 " 62XY = TrueCrypt 5.0+",
713 " X = 1 = PBKDF2-HMAC-RipeMD160",
714 " X = 2 = PBKDF2-HMAC-SHA512",
715 " X = 3 = PBKDF2-HMAC-Whirlpool",
716 " X = 4 = PBKDF2-HMAC-RipeMD160 + boot-mode",
717 " Y = 1 = XTS 512 bit (Ciphers: AES or Serpent or Twofish)",
718 " Y = 2 = XTS 1024 bit (Ciphers: AES or Serpent or Twofish or AES-Twofish or Serpent-AES or Twofish-Serpent)",
719 " Y = 3 = XTS 1536 bit (Ciphers: All)",
720 " 8800 = Android FDE < v4.3",
721 " 12900 = Android FDE (Samsung DEK)",
722 " 12200 = eCryptfs",
723 "",
724 "[[ Documents ]]",
725 "",
726 " 9700 = MS Office <= 2003 MD5 + RC4, oldoffice$0, oldoffice$1",
727 " 9710 = MS Office <= 2003 MD5 + RC4, collider-mode #1",
728 " 9720 = MS Office <= 2003 MD5 + RC4, collider-mode #2",
729 " 9800 = MS Office <= 2003 SHA1 + RC4, oldoffice$3, oldoffice$4",
730 " 9810 = MS Office <= 2003 SHA1 + RC4, collider-mode #1",
731 " 9820 = MS Office <= 2003 SHA1 + RC4, collider-mode #2",
732 " 9400 = MS Office 2007",
733 " 9500 = MS Office 2010",
734 " 9600 = MS Office 2013",
735 " 10400 = PDF 1.1 - 1.3 (Acrobat 2 - 4)",
736 " 10410 = PDF 1.1 - 1.3 (Acrobat 2 - 4) + collider-mode #1",
737 " 10420 = PDF 1.1 - 1.3 (Acrobat 2 - 4) + collider-mode #2",
738 " 10500 = PDF 1.4 - 1.6 (Acrobat 5 - 8)",
739 " 10600 = PDF 1.7 Level 3 (Acrobat 9)",
740 " 10700 = PDF 1.7 Level 8 (Acrobat 10 - 11)",
741 "",
742 "[[ Password Managers ]]",
743 "",
744 " 9000 = Password Safe v2",
745 " 5200 = Password Safe v3",
746 " 6800 = Lastpass",
747 " 6600 = 1Password, agilekeychain",
748 " 8200 = 1Password, cloudkeychain",
749 " 11300 = Bitcoin/Litecoin wallet.dat",
750 " 12700 = Blockchain, My Wallet",
751 " 13400 = Keepass 1 (AES/Twofish) and Keepass 2 (AES)",
752 "",
753 NULL
754 };
755
756 /**
757 * oclHashcat specific functions
758 */
759
760 static double get_avg_exec_time (hc_device_param_t *device_param, const int last_num_entries)
761 {
762 int exec_pos = (int) device_param->exec_pos - last_num_entries;
763
764 if (exec_pos < 0) exec_pos += EXEC_CACHE;
765
766 double exec_ms_sum = 0;
767
768 int exec_ms_cnt = 0;
769
770 for (int i = 0; i < last_num_entries; i++)
771 {
772 double exec_ms = device_param->exec_ms[(exec_pos + i) % EXEC_CACHE];
773
774 if (exec_ms)
775 {
776 exec_ms_sum += exec_ms;
777
778 exec_ms_cnt++;
779 }
780 }
781
782 if (exec_ms_cnt == 0) return 0;
783
784 return exec_ms_sum / exec_ms_cnt;
785 }
786
787 void status_display_automat ()
788 {
789 FILE *out = stdout;
790
791 fprintf (out, "STATUS\t%u\t", data.devices_status);
792
793 /**
794 * speed new
795 */
796
797 fprintf (out, "SPEED\t");
798
799 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
800 {
801 hc_device_param_t *device_param = &data.devices_param[device_id];
802
803 if (device_param->skipped) continue;
804
805 u64 speed_cnt = 0;
806 double speed_ms = 0;
807
808 for (int i = 0; i < SPEED_CACHE; i++)
809 {
810 speed_cnt += device_param->speed_cnt[i];
811 speed_ms += device_param->speed_ms[i];
812 }
813
814 speed_cnt /= SPEED_CACHE;
815 speed_ms /= SPEED_CACHE;
816
817 fprintf (out, "%llu\t%f\t", (unsigned long long int) speed_cnt, speed_ms);
818 }
819
820 /**
821 * exec time
822 */
823
824 fprintf (out, "EXEC_RUNTIME\t");
825
826 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
827 {
828 hc_device_param_t *device_param = &data.devices_param[device_id];
829
830 if (device_param->skipped) continue;
831
832 double exec_ms_avg = get_avg_exec_time (device_param, EXEC_CACHE);
833
834 fprintf (out, "%f\t", exec_ms_avg);
835 }
836
837 /**
838 * words_cur
839 */
840
841 u64 words_cur = get_lowest_words_done ();
842
843 fprintf (out, "CURKU\t%llu\t", (unsigned long long int) words_cur);
844
845 /**
846 * counter
847 */
848
849 u64 progress_total = data.words_cnt * data.salts_cnt;
850
851 u64 all_done = 0;
852 u64 all_rejected = 0;
853 u64 all_restored = 0;
854
855 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
856 {
857 all_done += data.words_progress_done[salt_pos];
858 all_rejected += data.words_progress_rejected[salt_pos];
859 all_restored += data.words_progress_restored[salt_pos];
860 }
861
862 u64 progress_cur = all_restored + all_done + all_rejected;
863 u64 progress_end = progress_total;
864
865 u64 progress_skip = 0;
866
867 if (data.skip)
868 {
869 progress_skip = MIN (data.skip, data.words_base) * data.salts_cnt;
870
871 if (data.attack_kern == ATTACK_KERN_STRAIGHT) progress_skip *= data.kernel_rules_cnt;
872 else if (data.attack_kern == ATTACK_KERN_COMBI) progress_skip *= data.combs_cnt;
873 else if (data.attack_kern == ATTACK_KERN_BF) progress_skip *= data.bfs_cnt;
874 }
875
876 if (data.limit)
877 {
878 progress_end = MIN (data.limit, data.words_base) * data.salts_cnt;
879
880 if (data.attack_kern == ATTACK_KERN_STRAIGHT) progress_end *= data.kernel_rules_cnt;
881 else if (data.attack_kern == ATTACK_KERN_COMBI) progress_end *= data.combs_cnt;
882 else if (data.attack_kern == ATTACK_KERN_BF) progress_end *= data.bfs_cnt;
883 }
884
885 u64 progress_cur_relative_skip = progress_cur - progress_skip;
886 u64 progress_end_relative_skip = progress_end - progress_skip;
887
888 fprintf (out, "PROGRESS\t%llu\t%llu\t", (unsigned long long int) progress_cur_relative_skip, (unsigned long long int) progress_end_relative_skip);
889
890 /**
891 * cracks
892 */
893
894 fprintf (out, "RECHASH\t%u\t%u\t", data.digests_done, data.digests_cnt);
895 fprintf (out, "RECSALT\t%u\t%u\t", data.salts_done, data.salts_cnt);
896
897 /**
898 * temperature
899 */
900
901 #ifdef HAVE_HWMON
902 if (data.gpu_temp_disable == 0)
903 {
904 fprintf (out, "TEMP\t");
905
906 hc_thread_mutex_lock (mux_adl);
907
908 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
909 {
910 hc_device_param_t *device_param = &data.devices_param[device_id];
911
912 if (device_param->skipped) continue;
913
914 int temp = hm_get_temperature_with_device_id (device_id);
915
916 fprintf (out, "%d\t", temp);
917 }
918
919 hc_thread_mutex_unlock (mux_adl);
920 }
921 #endif // HAVE_HWMON
922
923 /**
924 * flush
925 */
926
927 #ifdef _WIN
928 fputc ('\r', out);
929 fputc ('\n', out);
930 #endif
931
932 #ifdef _POSIX
933 fputc ('\n', out);
934 #endif
935
936 fflush (out);
937 }
938
939 void status_display ()
940 {
941 if (data.devices_status == STATUS_INIT) return;
942 if (data.devices_status == STATUS_STARTING) return;
943 if (data.devices_status == STATUS_BYPASS) return;
944
945 if (data.status_automat == 1)
946 {
947 status_display_automat ();
948
949 return;
950 }
951
952 char tmp_buf[1000] = { 0 };
953
954 uint tmp_len = 0;
955
956 log_info ("Session.Name...: %s", data.session);
957
958 char *status_type = strstatus (data.devices_status);
959
960 uint hash_mode = data.hash_mode;
961
962 char *hash_type = strhashtype (hash_mode); // not a bug
963
964 log_info ("Status.........: %s", status_type);
965
966 /**
967 * show rules
968 */
969
970 if (data.rp_files_cnt)
971 {
972 uint i;
973
974 for (i = 0, tmp_len = 0; i < data.rp_files_cnt - 1 && tmp_len < sizeof (tmp_buf); i++)
975 {
976 tmp_len += snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, "File (%s), ", data.rp_files[i]);
977 }
978
979 snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, "File (%s)", data.rp_files[i]);
980
981 log_info ("Rules.Type.....: %s", tmp_buf);
982
983 tmp_len = 0;
984 }
985
986 if (data.rp_gen)
987 {
988 log_info ("Rules.Type.....: Generated (%u)", data.rp_gen);
989
990 if (data.rp_gen_seed)
991 {
992 log_info ("Rules.Seed.....: %u", data.rp_gen_seed);
993 }
994 }
995
996 /**
997 * show input
998 */
999
1000 if (data.attack_mode == ATTACK_MODE_STRAIGHT)
1001 {
1002 if (data.wordlist_mode == WL_MODE_FILE)
1003 {
1004 if (data.dictfile != NULL) log_info ("Input.Mode.....: File (%s)", data.dictfile);
1005 }
1006 else if (data.wordlist_mode == WL_MODE_STDIN)
1007 {
1008 log_info ("Input.Mode.....: Pipe");
1009 }
1010 }
1011 else if (data.attack_mode == ATTACK_MODE_COMBI)
1012 {
1013 if (data.dictfile != NULL) log_info ("Input.Left.....: File (%s)", data.dictfile);
1014 if (data.dictfile2 != NULL) log_info ("Input.Right....: File (%s)", data.dictfile2);
1015 }
1016 else if (data.attack_mode == ATTACK_MODE_BF)
1017 {
1018 char *mask = data.mask;
1019
1020 if (mask != NULL)
1021 {
1022 uint mask_len = data.css_cnt;
1023
1024 tmp_len += snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, "Mask (%s)", mask);
1025
1026 if (mask_len > 0)
1027 {
1028 if (data.opti_type & OPTI_TYPE_SINGLE_HASH)
1029 {
1030 if (data.opti_type & OPTI_TYPE_APPENDED_SALT)
1031 {
1032 mask_len -= data.salts_buf[0].salt_len;
1033 }
1034 }
1035
1036 if (data.opts_type & OPTS_TYPE_PT_UNICODE) mask_len /= 2;
1037
1038 tmp_len += snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, " [%i]", mask_len);
1039 }
1040
1041 if (data.maskcnt > 1)
1042 {
1043 float mask_percentage = (float) data.maskpos / (float) data.maskcnt;
1044
1045 tmp_len += snprintf (tmp_buf + tmp_len, sizeof (tmp_buf) - tmp_len, " (%.02f%%)", mask_percentage * 100);
1046 }
1047
1048 log_info ("Input.Mode.....: %s", tmp_buf);
1049 }
1050
1051 tmp_len = 0;
1052 }
1053 else if (data.attack_mode == ATTACK_MODE_HYBRID1)
1054 {
1055 if (data.dictfile != NULL) log_info ("Input.Left.....: File (%s)", data.dictfile);
1056 if (data.mask != NULL) log_info ("Input.Right....: Mask (%s) [%i]", data.mask, data.css_cnt);
1057 }
1058 else if (data.attack_mode == ATTACK_MODE_HYBRID2)
1059 {
1060 if (data.mask != NULL) log_info ("Input.Left.....: Mask (%s) [%i]", data.mask, data.css_cnt);
1061 if (data.dictfile != NULL) log_info ("Input.Right....: File (%s)", data.dictfile);
1062 }
1063
1064 if (data.digests_cnt == 1)
1065 {
1066 if (data.hash_mode == 2500)
1067 {
1068 wpa_t *wpa = (wpa_t *) data.esalts_buf;
1069
1070 log_info ("Hash.Target....: %s (%02x:%02x:%02x:%02x:%02x:%02x <-> %02x:%02x:%02x:%02x:%02x:%02x)",
1071 (char *) data.salts_buf[0].salt_buf,
1072 wpa->orig_mac1[0],
1073 wpa->orig_mac1[1],
1074 wpa->orig_mac1[2],
1075 wpa->orig_mac1[3],
1076 wpa->orig_mac1[4],
1077 wpa->orig_mac1[5],
1078 wpa->orig_mac2[0],
1079 wpa->orig_mac2[1],
1080 wpa->orig_mac2[2],
1081 wpa->orig_mac2[3],
1082 wpa->orig_mac2[4],
1083 wpa->orig_mac2[5]);
1084 }
1085 else if (data.hash_mode == 5200)
1086 {
1087 log_info ("Hash.Target....: File (%s)", data.hashfile);
1088 }
1089 else if (data.hash_mode == 9000)
1090 {
1091 log_info ("Hash.Target....: File (%s)", data.hashfile);
1092 }
1093 else if ((data.hash_mode >= 6200) && (data.hash_mode <= 6299))
1094 {
1095 log_info ("Hash.Target....: File (%s)", data.hashfile);
1096 }
1097 else
1098 {
1099 char out_buf[HCBUFSIZ] = { 0 };
1100
1101 ascii_digest (out_buf, 0, 0);
1102
1103 // limit length
1104 if (strlen (out_buf) > 40)
1105 {
1106 out_buf[41] = '.';
1107 out_buf[42] = '.';
1108 out_buf[43] = '.';
1109 out_buf[44] = 0;
1110 }
1111
1112 log_info ("Hash.Target....: %s", out_buf);
1113 }
1114 }
1115 else
1116 {
1117 if (data.hash_mode == 3000)
1118 {
1119 char out_buf1[32] = { 0 };
1120 char out_buf2[32] = { 0 };
1121
1122 ascii_digest (out_buf1, 0, 0);
1123 ascii_digest (out_buf2, 0, 1);
1124
1125 log_info ("Hash.Target....: %s, %s", out_buf1, out_buf2);
1126 }
1127 else
1128 {
1129 log_info ("Hash.Target....: File (%s)", data.hashfile);
1130 }
1131 }
1132
1133 log_info ("Hash.Type......: %s", hash_type);
1134
1135 /**
1136 * speed new
1137 */
1138
1139 u64 speed_cnt[DEVICES_MAX] = { 0 };
1140 double speed_ms[DEVICES_MAX] = { 0 };
1141
1142 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1143 {
1144 hc_device_param_t *device_param = &data.devices_param[device_id];
1145
1146 if (device_param->skipped) continue;
1147
1148 speed_cnt[device_id] = 0;
1149 speed_ms[device_id] = 0;
1150
1151 for (int i = 0; i < SPEED_CACHE; i++)
1152 {
1153 speed_cnt[device_id] += device_param->speed_cnt[i];
1154 speed_ms[device_id] += device_param->speed_ms[i];
1155 }
1156
1157 speed_cnt[device_id] /= SPEED_CACHE;
1158 speed_ms[device_id] /= SPEED_CACHE;
1159 }
1160
1161 float hashes_all_ms = 0;
1162
1163 float hashes_dev_ms[DEVICES_MAX] = { 0 };
1164
1165 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1166 {
1167 hc_device_param_t *device_param = &data.devices_param[device_id];
1168
1169 if (device_param->skipped) continue;
1170
1171 hashes_dev_ms[device_id] = 0;
1172
1173 if (speed_ms[device_id])
1174 {
1175 hashes_dev_ms[device_id] = speed_cnt[device_id] / speed_ms[device_id];
1176
1177 hashes_all_ms += hashes_dev_ms[device_id];
1178 }
1179 }
1180
1181 /**
1182 * exec time
1183 */
1184
1185 double exec_all_ms[DEVICES_MAX] = { 0 };
1186
1187 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1188 {
1189 hc_device_param_t *device_param = &data.devices_param[device_id];
1190
1191 if (device_param->skipped) continue;
1192
1193 double exec_ms_avg = get_avg_exec_time (device_param, EXEC_CACHE);
1194
1195 exec_all_ms[device_id] = exec_ms_avg;
1196 }
1197
1198 /**
1199 * timers
1200 */
1201
1202 double ms_running = 0;
1203
1204 hc_timer_get (data.timer_running, ms_running);
1205
1206 double ms_paused = data.ms_paused;
1207
1208 if (data.devices_status == STATUS_PAUSED)
1209 {
1210 double ms_paused_tmp = 0;
1211
1212 hc_timer_get (data.timer_paused, ms_paused_tmp);
1213
1214 ms_paused += ms_paused_tmp;
1215 }
1216
1217 #ifdef WIN
1218
1219 __time64_t sec_run = ms_running / 1000;
1220
1221 #else
1222
1223 time_t sec_run = ms_running / 1000;
1224
1225 #endif
1226
1227 if (sec_run)
1228 {
1229 char display_run[32] = { 0 };
1230
1231 struct tm tm_run;
1232
1233 struct tm *tmp = NULL;
1234
1235 #ifdef WIN
1236
1237 tmp = _gmtime64 (&sec_run);
1238
1239 #else
1240
1241 tmp = gmtime (&sec_run);
1242
1243 #endif
1244
1245 if (tmp != NULL)
1246 {
1247 memset (&tm_run, 0, sizeof (tm_run));
1248
1249 memcpy (&tm_run, tmp, sizeof (tm_run));
1250
1251 format_timer_display (&tm_run, display_run, sizeof (tm_run));
1252
1253 char *start = ctime (&data.proc_start);
1254
1255 size_t start_len = strlen (start);
1256
1257 if (start[start_len - 1] == '\n') start[start_len - 1] = 0;
1258 if (start[start_len - 2] == '\r') start[start_len - 2] = 0;
1259
1260 log_info ("Time.Started...: %s (%s)", start, display_run);
1261 }
1262 }
1263 else
1264 {
1265 log_info ("Time.Started...: 0 secs");
1266 }
1267
1268 /**
1269 * counters
1270 */
1271
1272 u64 progress_total = data.words_cnt * data.salts_cnt;
1273
1274 u64 all_done = 0;
1275 u64 all_rejected = 0;
1276 u64 all_restored = 0;
1277
1278 u64 progress_noneed = 0;
1279
1280 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
1281 {
1282 all_done += data.words_progress_done[salt_pos];
1283 all_rejected += data.words_progress_rejected[salt_pos];
1284 all_restored += data.words_progress_restored[salt_pos];
1285
1286 // Important for ETA only
1287
1288 if (data.salts_shown[salt_pos] == 1)
1289 {
1290 const u64 all = data.words_progress_done[salt_pos]
1291 + data.words_progress_rejected[salt_pos]
1292 + data.words_progress_restored[salt_pos];
1293
1294 const u64 left = data.words_cnt - all;
1295
1296 progress_noneed += left;
1297 }
1298 }
1299
1300 u64 progress_cur = all_restored + all_done + all_rejected;
1301 u64 progress_end = progress_total;
1302
1303 u64 progress_skip = 0;
1304
1305 if (data.skip)
1306 {
1307 progress_skip = MIN (data.skip, data.words_base) * data.salts_cnt;
1308
1309 if (data.attack_kern == ATTACK_KERN_STRAIGHT) progress_skip *= data.kernel_rules_cnt;
1310 else if (data.attack_kern == ATTACK_KERN_COMBI) progress_skip *= data.combs_cnt;
1311 else if (data.attack_kern == ATTACK_KERN_BF) progress_skip *= data.bfs_cnt;
1312 }
1313
1314 if (data.limit)
1315 {
1316 progress_end = MIN (data.limit, data.words_base) * data.salts_cnt;
1317
1318 if (data.attack_kern == ATTACK_KERN_STRAIGHT) progress_end *= data.kernel_rules_cnt;
1319 else if (data.attack_kern == ATTACK_KERN_COMBI) progress_end *= data.combs_cnt;
1320 else if (data.attack_kern == ATTACK_KERN_BF) progress_end *= data.bfs_cnt;
1321 }
1322
1323 u64 progress_cur_relative_skip = progress_cur - progress_skip;
1324 u64 progress_end_relative_skip = progress_end - progress_skip;
1325
1326 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
1327 {
1328 if (data.devices_status != STATUS_CRACKED)
1329 {
1330 #ifdef WIN
1331 __time64_t sec_etc = 0;
1332 #else
1333 time_t sec_etc = 0;
1334 #endif
1335
1336 if (hashes_all_ms)
1337 {
1338 u64 progress_left_relative_skip = progress_end_relative_skip - progress_cur_relative_skip;
1339
1340 u64 ms_left = (progress_left_relative_skip - progress_noneed) / hashes_all_ms;
1341
1342 sec_etc = ms_left / 1000;
1343 }
1344
1345 if (sec_etc == 0)
1346 {
1347 //log_info ("Time.Estimated.: 0 secs");
1348 }
1349 else if ((u64) sec_etc > ETC_MAX)
1350 {
1351 log_info ("Time.Estimated.: > 10 Years");
1352 }
1353 else
1354 {
1355 char display_etc[32] = { 0 };
1356
1357 struct tm tm_etc;
1358
1359 struct tm *tmp = NULL;
1360
1361 #ifdef WIN
1362
1363 tmp = _gmtime64 (&sec_etc);
1364
1365 #else
1366
1367 tmp = gmtime (&sec_etc);
1368
1369 #endif
1370
1371 if (tmp != NULL)
1372 {
1373 memset (&tm_etc, 0, sizeof (tm_etc));
1374
1375 memcpy (&tm_etc, tmp, sizeof (tm_etc));
1376
1377 format_timer_display (&tm_etc, display_etc, sizeof (display_etc));
1378
1379 time_t now;
1380
1381 time (&now);
1382
1383 now += sec_etc;
1384
1385 char *etc = ctime (&now);
1386
1387 size_t etc_len = strlen (etc);
1388
1389 if (etc[etc_len - 1] == '\n') etc[etc_len - 1] = 0;
1390 if (etc[etc_len - 2] == '\r') etc[etc_len - 2] = 0;
1391
1392 log_info ("Time.Estimated.: %s (%s)", etc, display_etc);
1393 }
1394 }
1395 }
1396 }
1397
1398 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1399 {
1400 hc_device_param_t *device_param = &data.devices_param[device_id];
1401
1402 if (device_param->skipped) continue;
1403
1404 char display_dev_cur[16] = { 0 };
1405
1406 strncpy (display_dev_cur, "0.00", 4);
1407
1408 format_speed_display (hashes_dev_ms[device_id] * 1000, display_dev_cur, sizeof (display_dev_cur));
1409
1410 log_info ("Speed.Dev.#%d...: %9sH/s (%0.2fms)", device_id + 1, display_dev_cur, exec_all_ms[device_id]);
1411 }
1412
1413 char display_all_cur[16] = { 0 };
1414
1415 strncpy (display_all_cur, "0.00", 4);
1416
1417 format_speed_display (hashes_all_ms * 1000, display_all_cur, sizeof (display_all_cur));
1418
1419 if (data.devices_active > 1) log_info ("Speed.Dev.#*...: %9sH/s", display_all_cur);
1420
1421 const float digests_percent = (float) data.digests_done / data.digests_cnt;
1422 const float salts_percent = (float) data.salts_done / data.salts_cnt;
1423
1424 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);
1425
1426 // crack-per-time
1427
1428 if (data.digests_cnt > 100)
1429 {
1430 time_t now = time (NULL);
1431
1432 int cpt_cur_min = 0;
1433 int cpt_cur_hour = 0;
1434 int cpt_cur_day = 0;
1435
1436 for (int i = 0; i < CPT_BUF; i++)
1437 {
1438 const uint cracked = data.cpt_buf[i].cracked;
1439 const time_t timestamp = data.cpt_buf[i].timestamp;
1440
1441 if ((timestamp + 60) > now)
1442 {
1443 cpt_cur_min += cracked;
1444 }
1445
1446 if ((timestamp + 3600) > now)
1447 {
1448 cpt_cur_hour += cracked;
1449 }
1450
1451 if ((timestamp + 86400) > now)
1452 {
1453 cpt_cur_day += cracked;
1454 }
1455 }
1456
1457 double ms_real = ms_running - ms_paused;
1458
1459 float cpt_avg_min = (float) data.cpt_total / ((ms_real / 1000) / 60);
1460 float cpt_avg_hour = (float) data.cpt_total / ((ms_real / 1000) / 3600);
1461 float cpt_avg_day = (float) data.cpt_total / ((ms_real / 1000) / 86400);
1462
1463 if ((data.cpt_start + 86400) < now)
1464 {
1465 log_info ("Recovered/Time.: CUR:%llu,%llu,%llu AVG:%0.2f,%0.2f,%0.2f (Min,Hour,Day)",
1466 cpt_cur_min,
1467 cpt_cur_hour,
1468 cpt_cur_day,
1469 cpt_avg_min,
1470 cpt_avg_hour,
1471 cpt_avg_day);
1472 }
1473 else if ((data.cpt_start + 3600) < now)
1474 {
1475 log_info ("Recovered/Time.: CUR:%llu,%llu,N/A AVG:%0.2f,%0.2f,%0.2f (Min,Hour,Day)",
1476 cpt_cur_min,
1477 cpt_cur_hour,
1478 cpt_avg_min,
1479 cpt_avg_hour,
1480 cpt_avg_day);
1481 }
1482 else if ((data.cpt_start + 60) < now)
1483 {
1484 log_info ("Recovered/Time.: CUR:%llu,N/A,N/A AVG:%0.2f,%0.2f,%0.2f (Min,Hour,Day)",
1485 cpt_cur_min,
1486 cpt_avg_min,
1487 cpt_avg_hour,
1488 cpt_avg_day);
1489 }
1490 else
1491 {
1492 log_info ("Recovered/Time.: CUR:N/A,N/A,N/A AVG:%0.2f,%0.2f,%0.2f (Min,Hour,Day)",
1493 cpt_avg_min,
1494 cpt_avg_hour,
1495 cpt_avg_day);
1496 }
1497 }
1498
1499 // Restore point
1500
1501 u64 restore_point = get_lowest_words_done ();
1502
1503 u64 restore_total = data.words_base;
1504
1505 float percent_restore = 0;
1506
1507 if (restore_total != 0) percent_restore = (float) restore_point / (float) restore_total;
1508
1509 if (progress_end_relative_skip)
1510 {
1511 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
1512 {
1513 float percent_finished = (float) progress_cur_relative_skip / (float) progress_end_relative_skip;
1514 float percent_rejected = 0.0;
1515
1516 if (progress_cur)
1517 {
1518 percent_rejected = (float) (all_rejected) / (float) progress_cur;
1519 }
1520
1521 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);
1522 log_info ("Rejected.......: %llu/%llu (%.02f%%)", (unsigned long long int) all_rejected, (unsigned long long int) progress_cur_relative_skip, percent_rejected * 100);
1523
1524 if (data.restore_disable == 0)
1525 {
1526 if (percent_finished != 1)
1527 {
1528 log_info ("Restore.Point..: %llu/%llu (%.02f%%)", (unsigned long long int) restore_point, (unsigned long long int) restore_total, percent_restore * 100);
1529 }
1530 }
1531 }
1532 }
1533 else
1534 {
1535 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
1536 {
1537 log_info ("Progress.......: %llu/%llu (%.02f%%)", (u64) 0, (u64) 0, (float) 100);
1538 log_info ("Rejected.......: %llu/%llu (%.02f%%)", (u64) 0, (u64) 0, (float) 100);
1539
1540 if (data.restore_disable == 0)
1541 {
1542 log_info ("Restore.Point..: %llu/%llu (%.02f%%)", (u64) 0, (u64) 0, (float) 100);
1543 }
1544 }
1545 else
1546 {
1547 log_info ("Progress.......: %llu", (unsigned long long int) progress_cur_relative_skip);
1548 log_info ("Rejected.......: %llu", (unsigned long long int) all_rejected);
1549
1550 // --restore not allowed if stdin is used -- really? why?
1551
1552 //if (data.restore_disable == 0)
1553 //{
1554 // log_info ("Restore.Point..: %llu", (unsigned long long int) restore_point);
1555 //}
1556 }
1557 }
1558
1559 #ifdef HAVE_HWMON
1560 if (data.gpu_temp_disable == 0)
1561 {
1562 hc_thread_mutex_lock (mux_adl);
1563
1564 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1565 {
1566 hc_device_param_t *device_param = &data.devices_param[device_id];
1567
1568 if (device_param->skipped) continue;
1569
1570 #define HM_STR_BUF_SIZE 255
1571
1572 if (data.hm_device[device_id].fan_supported == 1)
1573 {
1574 char utilization[HM_STR_BUF_SIZE] = { 0 };
1575 char temperature[HM_STR_BUF_SIZE] = { 0 };
1576 char fanspeed[HM_STR_BUF_SIZE] = { 0 };
1577
1578 hm_device_val_to_str ((char *) utilization, HM_STR_BUF_SIZE, "%", hm_get_utilization_with_device_id (device_id));
1579 hm_device_val_to_str ((char *) temperature, HM_STR_BUF_SIZE, "c", hm_get_temperature_with_device_id (device_id));
1580
1581 if (device_param->vendor_id == VENDOR_ID_AMD)
1582 {
1583 hm_device_val_to_str ((char *) fanspeed, HM_STR_BUF_SIZE, "%", hm_get_fanspeed_with_device_id (device_id));
1584 }
1585 else if (device_param->vendor_id == VENDOR_ID_NV)
1586 {
1587 hm_device_val_to_str ((char *) fanspeed, HM_STR_BUF_SIZE, "%", hm_get_fanspeed_with_device_id (device_id));
1588 }
1589
1590 log_info ("HWMon.GPU.#%d...: %s Util, %s Temp, %s Fan", device_id + 1, utilization, temperature, fanspeed);
1591 }
1592 else
1593 {
1594 char utilization[HM_STR_BUF_SIZE] = { 0 };
1595 char temperature[HM_STR_BUF_SIZE] = { 0 };
1596
1597 hm_device_val_to_str ((char *) utilization, HM_STR_BUF_SIZE, "%", hm_get_utilization_with_device_id (device_id));
1598 hm_device_val_to_str ((char *) temperature, HM_STR_BUF_SIZE, "c", hm_get_temperature_with_device_id (device_id));
1599
1600 log_info ("HWMon.GPU.#%d...: %s Util, %s Temp, N/A Fan", device_id + 1, utilization, temperature);
1601 }
1602 }
1603
1604 hc_thread_mutex_unlock (mux_adl);
1605 }
1606 #endif // HAVE_HWMON
1607 }
1608
1609 static void status_benchmark ()
1610 {
1611 if (data.devices_status == STATUS_INIT) return;
1612 if (data.devices_status == STATUS_STARTING) return;
1613
1614 if (data.words_cnt == 0) return;
1615
1616 u64 speed_cnt[DEVICES_MAX] = { 0 };
1617 double speed_ms[DEVICES_MAX] = { 0 };
1618
1619 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1620 {
1621 hc_device_param_t *device_param = &data.devices_param[device_id];
1622
1623 if (device_param->skipped) continue;
1624
1625 speed_cnt[device_id] = device_param->speed_cnt[0];
1626 speed_ms[device_id] = device_param->speed_ms[0];
1627 }
1628
1629 float hashes_all_ms = 0;
1630
1631 float hashes_dev_ms[DEVICES_MAX] = { 0 };
1632
1633 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1634 {
1635 hc_device_param_t *device_param = &data.devices_param[device_id];
1636
1637 if (device_param->skipped) continue;
1638
1639 hashes_dev_ms[device_id] = 0;
1640
1641 if (speed_ms[device_id])
1642 {
1643 hashes_dev_ms[device_id] = speed_cnt[device_id] / speed_ms[device_id];
1644
1645 hashes_all_ms += hashes_dev_ms[device_id];
1646 }
1647 }
1648
1649 /**
1650 * exec time
1651 */
1652
1653 double exec_all_ms[DEVICES_MAX] = { 0 };
1654
1655 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1656 {
1657 hc_device_param_t *device_param = &data.devices_param[device_id];
1658
1659 if (device_param->skipped) continue;
1660
1661 double exec_ms_avg = get_avg_exec_time (device_param, EXEC_CACHE);
1662
1663 exec_all_ms[device_id] = exec_ms_avg;
1664 }
1665
1666 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
1667 {
1668 hc_device_param_t *device_param = &data.devices_param[device_id];
1669
1670 if (device_param->skipped) continue;
1671
1672 char display_dev_cur[16] = { 0 };
1673
1674 strncpy (display_dev_cur, "0.00", 4);
1675
1676 format_speed_display (hashes_dev_ms[device_id] * 1000, display_dev_cur, sizeof (display_dev_cur));
1677
1678 log_info ("Speed.Dev.#%d.: %9sH/s (%0.2fms)", device_id + 1, display_dev_cur, exec_all_ms[device_id]);
1679 }
1680
1681 char display_all_cur[16] = { 0 };
1682
1683 strncpy (display_all_cur, "0.00", 4);
1684
1685 format_speed_display (hashes_all_ms * 1000, display_all_cur, sizeof (display_all_cur));
1686
1687 if (data.devices_active > 1) log_info ("Speed.Dev.#*.: %9sH/s", display_all_cur);
1688 }
1689
1690 /**
1691 * oclHashcat -only- functions
1692 */
1693
1694 static void generate_source_kernel_filename (const uint attack_exec, const uint attack_kern, const uint kern_type, char *shared_dir, char *source_file)
1695 {
1696 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
1697 {
1698 if (attack_kern == ATTACK_KERN_STRAIGHT)
1699 snprintf (source_file, 255, "%s/OpenCL/m%05d_a0.cl", shared_dir, (int) kern_type);
1700 else if (attack_kern == ATTACK_KERN_COMBI)
1701 snprintf (source_file, 255, "%s/OpenCL/m%05d_a1.cl", shared_dir, (int) kern_type);
1702 else if (attack_kern == ATTACK_KERN_BF)
1703 snprintf (source_file, 255, "%s/OpenCL/m%05d_a3.cl", shared_dir, (int) kern_type);
1704 }
1705 else
1706 snprintf (source_file, 255, "%s/OpenCL/m%05d.cl", shared_dir, (int) kern_type);
1707 }
1708
1709 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)
1710 {
1711 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
1712 {
1713 if (attack_kern == ATTACK_KERN_STRAIGHT)
1714 snprintf (cached_file, 255, "%s/kernels/m%05d_a0.%s.kernel", profile_dir, (int) kern_type, device_name_chksum);
1715 else if (attack_kern == ATTACK_KERN_COMBI)
1716 snprintf (cached_file, 255, "%s/kernels/m%05d_a1.%s.kernel", profile_dir, (int) kern_type, device_name_chksum);
1717 else if (attack_kern == ATTACK_KERN_BF)
1718 snprintf (cached_file, 255, "%s/kernels/m%05d_a3.%s.kernel", profile_dir, (int) kern_type, device_name_chksum);
1719 }
1720 else
1721 {
1722 snprintf (cached_file, 255, "%s/kernels/m%05d.%s.kernel", profile_dir, (int) kern_type, device_name_chksum);
1723 }
1724 }
1725
1726 static void generate_source_kernel_mp_filename (const uint opti_type, const uint opts_type, char *shared_dir, char *source_file)
1727 {
1728 if ((opti_type & OPTI_TYPE_BRUTE_FORCE) && (opts_type & OPTS_TYPE_PT_GENERATE_BE))
1729 {
1730 snprintf (source_file, 255, "%s/OpenCL/markov_be.cl", shared_dir);
1731 }
1732 else
1733 {
1734 snprintf (source_file, 255, "%s/OpenCL/markov_le.cl", shared_dir);
1735 }
1736 }
1737
1738 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)
1739 {
1740 if ((opti_type & OPTI_TYPE_BRUTE_FORCE) && (opts_type & OPTS_TYPE_PT_GENERATE_BE))
1741 {
1742 snprintf (cached_file, 255, "%s/kernels/markov_be.%s.kernel", profile_dir, device_name_chksum);
1743 }
1744 else
1745 {
1746 snprintf (cached_file, 255, "%s/kernels/markov_le.%s.kernel", profile_dir, device_name_chksum);
1747 }
1748 }
1749
1750 static void generate_source_kernel_amp_filename (const uint attack_kern, char *shared_dir, char *source_file)
1751 {
1752 snprintf (source_file, 255, "%s/OpenCL/amp_a%d.cl", shared_dir, attack_kern);
1753 }
1754
1755 static void generate_cached_kernel_amp_filename (const uint attack_kern, char *profile_dir, const char *device_name_chksum, char *cached_file)
1756 {
1757 snprintf (cached_file, 255, "%s/kernels/amp_a%d.%s.kernel", profile_dir, attack_kern, device_name_chksum);
1758 }
1759
1760 static uint convert_from_hex (char *line_buf, const uint line_len)
1761 {
1762 if (line_len & 1) return (line_len); // not in hex
1763
1764 if (data.hex_wordlist == 1)
1765 {
1766 uint i;
1767 uint j;
1768
1769 for (i = 0, j = 0; j < line_len; i += 1, j += 2)
1770 {
1771 line_buf[i] = hex_to_u8 ((const u8 *) &line_buf[j]);
1772 }
1773
1774 memset (line_buf + i, 0, line_len - i);
1775
1776 return (i);
1777 }
1778 else if (line_len >= 6) // $HEX[] = 6
1779 {
1780 if (line_buf[0] != '$') return (line_len);
1781 if (line_buf[1] != 'H') return (line_len);
1782 if (line_buf[2] != 'E') return (line_len);
1783 if (line_buf[3] != 'X') return (line_len);
1784 if (line_buf[4] != '[') return (line_len);
1785 if (line_buf[line_len - 1] != ']') return (line_len);
1786
1787 uint i;
1788 uint j;
1789
1790 for (i = 0, j = 5; j < line_len - 1; i += 1, j += 2)
1791 {
1792 line_buf[i] = hex_to_u8 ((const u8 *) &line_buf[j]);
1793 }
1794
1795 memset (line_buf + i, 0, line_len - i);
1796
1797 return (i);
1798 }
1799
1800 return (line_len);
1801 }
1802
1803 static void clear_prompt ()
1804 {
1805 fputc ('\r', stdout);
1806
1807 for (size_t i = 0; i < strlen (PROMPT); i++)
1808 {
1809 fputc (' ', stdout);
1810 }
1811
1812 fputc ('\r', stdout);
1813
1814 fflush (stdout);
1815 }
1816
1817 static void gidd_to_pw_t (hc_device_param_t *device_param, const u64 gidd, pw_t *pw)
1818 {
1819 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);
1820 }
1821
1822 static void check_hash (hc_device_param_t *device_param, const uint salt_pos, const uint digest_pos)
1823 {
1824 char *outfile = data.outfile;
1825 uint quiet = data.quiet;
1826 FILE *pot_fp = data.pot_fp;
1827 uint loopback = data.loopback;
1828 uint debug_mode = data.debug_mode;
1829 char *debug_file = data.debug_file;
1830
1831 char debug_rule_buf[BLOCK_SIZE] = { 0 };
1832 int debug_rule_len = 0; // -1 error
1833 uint debug_plain_len = 0;
1834
1835 u8 debug_plain_ptr[BLOCK_SIZE] = { 0 };
1836
1837 // hash
1838
1839 char out_buf[HCBUFSIZ] = { 0 };
1840
1841 ascii_digest (out_buf, salt_pos, digest_pos);
1842
1843 uint idx = data.salts_buf[salt_pos].digests_offset + digest_pos;
1844
1845 // plain
1846
1847 plain_t plain;
1848
1849 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);
1850
1851 uint gidvid = plain.gidvid;
1852 uint il_pos = plain.il_pos;
1853
1854 u64 crackpos = device_param->words_off;
1855
1856 uint plain_buf[16] = { 0 };
1857
1858 u8 *plain_ptr = (u8 *) plain_buf;
1859 unsigned int plain_len = 0;
1860
1861 if (data.attack_mode == ATTACK_MODE_STRAIGHT)
1862 {
1863 u64 gidd = gidvid;
1864 u64 gidm = 0;
1865
1866 pw_t pw;
1867
1868 gidd_to_pw_t (device_param, gidd, &pw);
1869
1870 for (int i = 0, j = gidm; i < 16; i++, j++)
1871 {
1872 plain_buf[i] = pw.i[j];
1873 }
1874
1875 plain_len = pw.pw_len;
1876
1877 const uint off = device_param->innerloop_pos + il_pos;
1878
1879 if (debug_mode > 0)
1880 {
1881 debug_rule_len = 0;
1882
1883 // save rule
1884 if ((debug_mode == 1) || (debug_mode == 3) || (debug_mode == 4))
1885 {
1886 memset (debug_rule_buf, 0, sizeof (debug_rule_buf));
1887
1888 debug_rule_len = kernel_rule_to_cpu_rule (debug_rule_buf, &data.kernel_rules_buf[off]);
1889 }
1890
1891 // save plain
1892 if ((debug_mode == 2) || (debug_mode == 3) || (debug_mode == 4))
1893 {
1894 memset (debug_plain_ptr, 0, sizeof (debug_plain_ptr));
1895
1896 memcpy (debug_plain_ptr, plain_ptr, plain_len);
1897
1898 debug_plain_len = plain_len;
1899 }
1900 }
1901
1902 plain_len = apply_rules (data.kernel_rules_buf[off].cmds, &plain_buf[0], &plain_buf[4], plain_len);
1903
1904 crackpos += gidvid;
1905 crackpos *= data.kernel_rules_cnt;
1906 crackpos += device_param->innerloop_pos + il_pos;
1907
1908 if (plain_len > data.pw_max) plain_len = data.pw_max;
1909 }
1910 else if (data.attack_mode == ATTACK_MODE_COMBI)
1911 {
1912 u64 gidd = gidvid;
1913 u64 gidm = 0;
1914
1915 pw_t pw;
1916
1917 gidd_to_pw_t (device_param, gidd, &pw);
1918
1919 for (int i = 0, j = gidm; i < 16; i++, j++)
1920 {
1921 plain_buf[i] = pw.i[j];
1922 }
1923
1924 plain_len = pw.pw_len;
1925
1926 char *comb_buf = (char *) device_param->combs_buf[il_pos].i;
1927 uint comb_len = device_param->combs_buf[il_pos].pw_len;
1928
1929 if (data.combs_mode == COMBINATOR_MODE_BASE_LEFT)
1930 {
1931 memcpy (plain_ptr + plain_len, comb_buf, comb_len);
1932 }
1933 else
1934 {
1935 memmove (plain_ptr + comb_len, plain_ptr, plain_len);
1936
1937 memcpy (plain_ptr, comb_buf, comb_len);
1938 }
1939
1940 plain_len += comb_len;
1941
1942 crackpos += gidvid;
1943 crackpos *= data.combs_cnt;
1944 crackpos += device_param->innerloop_pos + il_pos;
1945
1946 if (data.pw_max != PW_DICTMAX1)
1947 {
1948 if (plain_len > data.pw_max) plain_len = data.pw_max;
1949 }
1950 }
1951 else if (data.attack_mode == ATTACK_MODE_BF)
1952 {
1953 u64 l_off = device_param->kernel_params_mp_l_buf64[3] + gidvid;
1954 u64 r_off = device_param->kernel_params_mp_r_buf64[3] + il_pos;
1955
1956 uint l_start = device_param->kernel_params_mp_l_buf32[5];
1957 uint r_start = device_param->kernel_params_mp_r_buf32[5];
1958
1959 uint l_stop = device_param->kernel_params_mp_l_buf32[4];
1960 uint r_stop = device_param->kernel_params_mp_r_buf32[4];
1961
1962 sp_exec (l_off, (char *) plain_ptr + l_start, data.root_css_buf, data.markov_css_buf, l_start, l_start + l_stop);
1963 sp_exec (r_off, (char *) plain_ptr + r_start, data.root_css_buf, data.markov_css_buf, r_start, r_start + r_stop);
1964
1965 plain_len = data.css_cnt;
1966
1967 crackpos += gidvid;
1968 crackpos *= data.bfs_cnt;
1969 crackpos += device_param->innerloop_pos + il_pos;
1970 }
1971 else if (data.attack_mode == ATTACK_MODE_HYBRID1)
1972 {
1973 u64 gidd = gidvid;
1974 u64 gidm = 0;
1975
1976 pw_t pw;
1977
1978 gidd_to_pw_t (device_param, gidd, &pw);
1979
1980 for (int i = 0, j = gidm; i < 16; i++, j++)
1981 {
1982 plain_buf[i] = pw.i[j];
1983 }
1984
1985 plain_len = pw.pw_len;
1986
1987 u64 off = device_param->kernel_params_mp_buf64[3] + il_pos;
1988
1989 uint start = 0;
1990 uint stop = device_param->kernel_params_mp_buf32[4];
1991
1992 sp_exec (off, (char *) plain_ptr + plain_len, data.root_css_buf, data.markov_css_buf, start, start + stop);
1993
1994 plain_len += start + stop;
1995
1996 crackpos += gidvid;
1997 crackpos *= data.combs_cnt;
1998 crackpos += device_param->innerloop_pos + il_pos;
1999
2000 if (data.pw_max != PW_DICTMAX1)
2001 {
2002 if (plain_len > data.pw_max) plain_len = data.pw_max;
2003 }
2004 }
2005 else if (data.attack_mode == ATTACK_MODE_HYBRID2)
2006 {
2007 u64 gidd = gidvid;
2008 u64 gidm = 0;
2009
2010 pw_t pw;
2011
2012 gidd_to_pw_t (device_param, gidd, &pw);
2013
2014 for (int i = 0, j = gidm; i < 16; i++, j++)
2015 {
2016 plain_buf[i] = pw.i[j];
2017 }
2018
2019 plain_len = pw.pw_len;
2020
2021 u64 off = device_param->kernel_params_mp_buf64[3] + il_pos;
2022
2023 uint start = 0;
2024 uint stop = device_param->kernel_params_mp_buf32[4];
2025
2026 memmove (plain_ptr + stop, plain_ptr, plain_len);
2027
2028 sp_exec (off, (char *) plain_ptr, data.root_css_buf, data.markov_css_buf, start, start + stop);
2029
2030 plain_len += start + stop;
2031
2032 crackpos += gidvid;
2033 crackpos *= data.combs_cnt;
2034 crackpos += device_param->innerloop_pos + il_pos;
2035
2036 if (data.pw_max != PW_DICTMAX1)
2037 {
2038 if (plain_len > data.pw_max) plain_len = data.pw_max;
2039 }
2040 }
2041
2042 if (data.attack_mode == ATTACK_MODE_BF)
2043 {
2044 if (data.opti_type & OPTI_TYPE_BRUTE_FORCE) // lots of optimizations can happen here
2045 {
2046 if (data.opti_type & OPTI_TYPE_SINGLE_HASH)
2047 {
2048 if (data.opti_type & OPTI_TYPE_APPENDED_SALT)
2049 {
2050 plain_len = plain_len - data.salts_buf[0].salt_len;
2051 }
2052 }
2053
2054 if (data.opts_type & OPTS_TYPE_PT_UNICODE)
2055 {
2056 for (uint i = 0, j = 0; i < plain_len; i += 2, j += 1)
2057 {
2058 plain_ptr[j] = plain_ptr[i];
2059 }
2060
2061 plain_len = plain_len / 2;
2062 }
2063 }
2064 }
2065
2066 // if enabled, update also the potfile
2067
2068 if (pot_fp)
2069 {
2070 lock_file (pot_fp);
2071
2072 fprintf (pot_fp, "%s:", out_buf);
2073
2074 format_plain (pot_fp, plain_ptr, plain_len, 1);
2075
2076 fputc ('\n', pot_fp);
2077
2078 fflush (pot_fp);
2079
2080 unlock_file (pot_fp);
2081 }
2082
2083 // outfile
2084
2085 FILE *out_fp = NULL;
2086
2087 if (outfile != NULL)
2088 {
2089 if ((out_fp = fopen (outfile, "ab")) == NULL)
2090 {
2091 log_error ("ERROR: %s: %s", outfile, strerror (errno));
2092
2093 out_fp = stdout;
2094 }
2095 lock_file (out_fp);
2096 }
2097 else
2098 {
2099 out_fp = stdout;
2100
2101 if (quiet == 0) clear_prompt ();
2102 }
2103
2104 format_output (out_fp, out_buf, plain_ptr, plain_len, crackpos, NULL, 0);
2105
2106 if (outfile != NULL)
2107 {
2108 if (out_fp != stdout)
2109 {
2110 fclose (out_fp);
2111 }
2112 }
2113 else
2114 {
2115 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
2116 {
2117 if ((data.devices_status != STATUS_CRACKED) && (data.status != 1))
2118 {
2119 if (quiet == 0) fprintf (stdout, "%s", PROMPT);
2120 if (quiet == 0) fflush (stdout);
2121 }
2122 }
2123 }
2124
2125 // loopback
2126
2127 if (loopback)
2128 {
2129 char *loopback_file = data.loopback_file;
2130
2131 FILE *fb_fp = NULL;
2132
2133 if ((fb_fp = fopen (loopback_file, "ab")) != NULL)
2134 {
2135 lock_file (fb_fp);
2136
2137 format_plain (fb_fp, plain_ptr, plain_len, 1);
2138
2139 fputc ('\n', fb_fp);
2140
2141 fclose (fb_fp);
2142 }
2143 }
2144
2145 // (rule) debug mode
2146
2147 // the next check implies that:
2148 // - (data.attack_mode == ATTACK_MODE_STRAIGHT)
2149 // - debug_mode > 0
2150
2151 if ((debug_plain_len > 0) || (debug_rule_len > 0))
2152 {
2153 if (debug_rule_len < 0) debug_rule_len = 0;
2154
2155 if ((quiet == 0) && (debug_file == NULL)) clear_prompt ();
2156
2157 format_debug (debug_file, debug_mode, debug_plain_ptr, debug_plain_len, plain_ptr, plain_len, debug_rule_buf, debug_rule_len);
2158
2159 if ((quiet == 0) && (debug_file == NULL))
2160 {
2161 fprintf (stdout, "%s", PROMPT);
2162 fflush (stdout);
2163 }
2164 }
2165 }
2166
2167 static void check_cracked (hc_device_param_t *device_param, const uint salt_pos)
2168 {
2169 salt_t *salt_buf = &data.salts_buf[salt_pos];
2170
2171 int found = 0;
2172
2173 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);
2174
2175 for (uint i = 0; i < KERNEL_THREADS; i++) if (device_param->result[i] == 1) found = 1;
2176
2177 if (found == 1)
2178 {
2179 // display hack (for weak hashes etc, it could be that there is still something to clear on the current line)
2180
2181 log_info_nn ("");
2182
2183 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);
2184
2185 uint cpt_cracked = 0;
2186
2187 for (uint digest_pos = 0; digest_pos < salt_buf->digests_cnt; digest_pos++)
2188 {
2189 uint idx = salt_buf->digests_offset + digest_pos;
2190
2191 if (data.digests_shown_tmp[idx] == 0) continue;
2192
2193 if (data.digests_shown[idx] == 1) continue;
2194
2195 if ((data.opts_type & OPTS_TYPE_PT_NEVERCRACK) == 0)
2196 {
2197 data.digests_shown[idx] = 1;
2198
2199 data.digests_done++;
2200
2201 cpt_cracked++;
2202
2203 salt_buf->digests_done++;
2204
2205 if (salt_buf->digests_done == salt_buf->digests_cnt)
2206 {
2207 data.salts_shown[salt_pos] = 1;
2208
2209 data.salts_done++;
2210 }
2211 }
2212
2213 if (data.salts_done == data.salts_cnt) data.devices_status = STATUS_CRACKED;
2214
2215 check_hash (device_param, salt_pos, digest_pos);
2216 }
2217
2218 if (cpt_cracked > 0)
2219 {
2220 data.cpt_buf[data.cpt_pos].timestamp = time (NULL);
2221 data.cpt_buf[data.cpt_pos].cracked = cpt_cracked;
2222
2223 data.cpt_pos++;
2224
2225 data.cpt_total += cpt_cracked;
2226
2227 if (data.cpt_pos == CPT_BUF) data.cpt_pos = 0;
2228 }
2229
2230 if (data.opts_type & OPTS_TYPE_PT_NEVERCRACK)
2231 {
2232 // we need to reset cracked state on the device
2233 // otherwise host thinks again and again the hash was cracked
2234 // and returns invalid password each time
2235
2236 memset (data.digests_shown_tmp, 0, salt_buf->digests_cnt * sizeof (uint));
2237
2238 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);
2239 }
2240
2241 memset (device_param->result, 0, device_param->size_results);
2242
2243 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);
2244 }
2245 }
2246
2247 static void save_hash ()
2248 {
2249 char *hashfile = data.hashfile;
2250
2251 char new_hashfile[256] = { 0 };
2252 char old_hashfile[256] = { 0 };
2253
2254 snprintf (new_hashfile, 255, "%s.new", hashfile);
2255 snprintf (old_hashfile, 255, "%s.old", hashfile);
2256
2257 unlink (new_hashfile);
2258
2259 char separator = data.separator;
2260
2261 FILE *fp = fopen (new_hashfile, "wb");
2262
2263 if (fp == NULL)
2264 {
2265 log_error ("ERROR: %s: %s", new_hashfile, strerror (errno));
2266
2267 exit (-1);
2268 }
2269
2270 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
2271 {
2272 if (data.salts_shown[salt_pos] == 1) continue;
2273
2274 salt_t *salt_buf = &data.salts_buf[salt_pos];
2275
2276 for (uint digest_pos = 0; digest_pos < salt_buf->digests_cnt; digest_pos++)
2277 {
2278 uint idx = salt_buf->digests_offset + digest_pos;
2279
2280 if (data.digests_shown[idx] == 1) continue;
2281
2282 if (data.hash_mode != 2500)
2283 {
2284 char out_buf[HCBUFSIZ] = { 0 };
2285
2286 if (data.username == 1)
2287 {
2288 user_t *user = data.hash_info[idx]->user;
2289
2290 uint i;
2291
2292 for (i = 0; i < user->user_len; i++) fputc (user->user_name[i], fp);
2293
2294 fputc (separator, fp);
2295 }
2296
2297 ascii_digest (out_buf, salt_pos, digest_pos);
2298
2299 fputs (out_buf, fp);
2300
2301 log_out (fp, "");
2302 }
2303 else
2304 {
2305 hccap_t hccap;
2306
2307 to_hccap_t (&hccap, salt_pos, digest_pos);
2308
2309 fwrite (&hccap, sizeof (hccap_t), 1, fp);
2310 }
2311 }
2312 }
2313
2314 fflush (fp);
2315
2316 fclose (fp);
2317
2318 unlink (old_hashfile);
2319
2320 if (rename (hashfile, old_hashfile) != 0)
2321 {
2322 log_error ("ERROR: Rename file '%s' to '%s': %s", hashfile, old_hashfile, strerror (errno));
2323
2324 exit (-1);
2325 }
2326
2327 unlink (hashfile);
2328
2329 if (rename (new_hashfile, hashfile) != 0)
2330 {
2331 log_error ("ERROR: Rename file '%s' to '%s': %s", new_hashfile, hashfile, strerror (errno));
2332
2333 exit (-1);
2334 }
2335
2336 unlink (old_hashfile);
2337 }
2338
2339 static float find_kernel_power_div (const u64 total_left, const uint kernel_power_all)
2340 {
2341 // function called only in case kernel_power_all > words_left
2342
2343 float kernel_power_div = (float) (total_left) / kernel_power_all;
2344
2345 kernel_power_div += kernel_power_div / 100;
2346
2347 u32 kernel_power_new = (u32) (kernel_power_all * kernel_power_div);
2348
2349 while (kernel_power_new < total_left)
2350 {
2351 kernel_power_div += kernel_power_div / 100;
2352
2353 kernel_power_new = (u32) (kernel_power_all * kernel_power_div);
2354 }
2355
2356 if (data.quiet == 0)
2357 {
2358 clear_prompt ();
2359
2360 log_info ("");
2361
2362 log_info ("INFO: approaching final keyspace, workload adjusted");
2363
2364 log_info ("");
2365
2366 fprintf (stdout, "%s", PROMPT);
2367
2368 fflush (stdout);
2369 }
2370
2371 if ((kernel_power_all * kernel_power_div) < 8) return 1;
2372
2373 return kernel_power_div;
2374 }
2375
2376 static void run_kernel (const uint kern_run, hc_device_param_t *device_param, const uint num, const uint event_update)
2377 {
2378 uint num_elements = num;
2379
2380 device_param->kernel_params_buf32[30] = data.combs_mode;
2381 device_param->kernel_params_buf32[31] = num;
2382
2383 uint kernel_threads = device_param->kernel_threads;
2384
2385 while (num_elements % kernel_threads) num_elements++;
2386
2387 cl_kernel kernel = NULL;
2388
2389 switch (kern_run)
2390 {
2391 case KERN_RUN_1: kernel = device_param->kernel1; break;
2392 case KERN_RUN_12: kernel = device_param->kernel12; break;
2393 case KERN_RUN_2: kernel = device_param->kernel2; break;
2394 case KERN_RUN_23: kernel = device_param->kernel23; break;
2395 case KERN_RUN_3: kernel = device_param->kernel3; break;
2396 }
2397
2398 hc_clSetKernelArg (data.ocl, kernel, 21, sizeof (cl_uint), device_param->kernel_params[21]);
2399 hc_clSetKernelArg (data.ocl, kernel, 22, sizeof (cl_uint), device_param->kernel_params[22]);
2400 hc_clSetKernelArg (data.ocl, kernel, 23, sizeof (cl_uint), device_param->kernel_params[23]);
2401 hc_clSetKernelArg (data.ocl, kernel, 24, sizeof (cl_uint), device_param->kernel_params[24]);
2402 hc_clSetKernelArg (data.ocl, kernel, 25, sizeof (cl_uint), device_param->kernel_params[25]);
2403 hc_clSetKernelArg (data.ocl, kernel, 26, sizeof (cl_uint), device_param->kernel_params[26]);
2404 hc_clSetKernelArg (data.ocl, kernel, 27, sizeof (cl_uint), device_param->kernel_params[27]);
2405 hc_clSetKernelArg (data.ocl, kernel, 28, sizeof (cl_uint), device_param->kernel_params[28]);
2406 hc_clSetKernelArg (data.ocl, kernel, 29, sizeof (cl_uint), device_param->kernel_params[29]);
2407 hc_clSetKernelArg (data.ocl, kernel, 30, sizeof (cl_uint), device_param->kernel_params[30]);
2408 hc_clSetKernelArg (data.ocl, kernel, 31, sizeof (cl_uint), device_param->kernel_params[31]);
2409
2410 hc_timer_t timer;
2411
2412 hc_timer_set (&timer);
2413
2414 if ((data.opts_type & OPTS_TYPE_PT_BITSLICE) && (data.attack_mode == ATTACK_MODE_BF))
2415 {
2416 const size_t global_work_size[3] = { num_elements, 32, 1 };
2417 const size_t local_work_size[3] = { kernel_threads / 32, 32, 1 };
2418
2419 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 2, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2420 }
2421 else
2422 {
2423 size_t workgroup_size = 0;
2424
2425 hc_clGetKernelWorkGroupInfo (data.ocl, kernel, device_param->device, CL_KERNEL_WORK_GROUP_SIZE, sizeof (size_t), &workgroup_size, NULL);
2426
2427 if (kernel_threads > workgroup_size) kernel_threads = workgroup_size;
2428
2429 const size_t global_work_size[3] = { num_elements, 1, 1 };
2430 const size_t local_work_size[3] = { kernel_threads, 1, 1 };
2431
2432 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 1, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2433 }
2434
2435 hc_clFlush (data.ocl, device_param->command_queue);
2436
2437 hc_clFinish (data.ocl, device_param->command_queue);
2438
2439 if (event_update)
2440 {
2441 double exec_time;
2442
2443 hc_timer_get (timer, exec_time);
2444
2445 uint exec_pos = device_param->exec_pos;
2446
2447 device_param->exec_ms[exec_pos] = exec_time;
2448
2449 exec_pos++;
2450
2451 if (exec_pos == EXEC_CACHE)
2452 {
2453 exec_pos = 0;
2454 }
2455
2456 device_param->exec_pos = exec_pos;
2457 }
2458 }
2459
2460 static void run_kernel_mp (const uint kern_run, hc_device_param_t *device_param, const uint num)
2461 {
2462 uint num_elements = num;
2463
2464 switch (kern_run)
2465 {
2466 case KERN_RUN_MP: device_param->kernel_params_mp_buf32[8] = num; break;
2467 case KERN_RUN_MP_R: device_param->kernel_params_mp_r_buf32[8] = num; break;
2468 case KERN_RUN_MP_L: device_param->kernel_params_mp_l_buf32[9] = num; break;
2469 }
2470
2471 // causes problems with special threads like in bcrypt
2472 // const uint kernel_threads = device_param->kernel_threads;
2473
2474 uint kernel_threads = KERNEL_THREADS;
2475
2476 while (num_elements % kernel_threads) num_elements++;
2477
2478 cl_kernel kernel = NULL;
2479
2480 switch (kern_run)
2481 {
2482 case KERN_RUN_MP: kernel = device_param->kernel_mp; break;
2483 case KERN_RUN_MP_R: kernel = device_param->kernel_mp_r; break;
2484 case KERN_RUN_MP_L: kernel = device_param->kernel_mp_l; break;
2485 }
2486
2487 switch (kern_run)
2488 {
2489 case KERN_RUN_MP: hc_clSetKernelArg (data.ocl, kernel, 3, sizeof (cl_ulong), device_param->kernel_params_mp[3]);
2490 hc_clSetKernelArg (data.ocl, kernel, 4, sizeof (cl_uint), device_param->kernel_params_mp[4]);
2491 hc_clSetKernelArg (data.ocl, kernel, 5, sizeof (cl_uint), device_param->kernel_params_mp[5]);
2492 hc_clSetKernelArg (data.ocl, kernel, 6, sizeof (cl_uint), device_param->kernel_params_mp[6]);
2493 hc_clSetKernelArg (data.ocl, kernel, 7, sizeof (cl_uint), device_param->kernel_params_mp[7]);
2494 hc_clSetKernelArg (data.ocl, kernel, 8, sizeof (cl_uint), device_param->kernel_params_mp[8]);
2495 break;
2496 case KERN_RUN_MP_R: hc_clSetKernelArg (data.ocl, kernel, 3, sizeof (cl_ulong), device_param->kernel_params_mp_r[3]);
2497 hc_clSetKernelArg (data.ocl, kernel, 4, sizeof (cl_uint), device_param->kernel_params_mp_r[4]);
2498 hc_clSetKernelArg (data.ocl, kernel, 5, sizeof (cl_uint), device_param->kernel_params_mp_r[5]);
2499 hc_clSetKernelArg (data.ocl, kernel, 6, sizeof (cl_uint), device_param->kernel_params_mp_r[6]);
2500 hc_clSetKernelArg (data.ocl, kernel, 7, sizeof (cl_uint), device_param->kernel_params_mp_r[7]);
2501 hc_clSetKernelArg (data.ocl, kernel, 8, sizeof (cl_uint), device_param->kernel_params_mp_r[8]);
2502 break;
2503 case KERN_RUN_MP_L: hc_clSetKernelArg (data.ocl, kernel, 3, sizeof (cl_ulong), device_param->kernel_params_mp_l[3]);
2504 hc_clSetKernelArg (data.ocl, kernel, 4, sizeof (cl_uint), device_param->kernel_params_mp_l[4]);
2505 hc_clSetKernelArg (data.ocl, kernel, 5, sizeof (cl_uint), device_param->kernel_params_mp_l[5]);
2506 hc_clSetKernelArg (data.ocl, kernel, 6, sizeof (cl_uint), device_param->kernel_params_mp_l[6]);
2507 hc_clSetKernelArg (data.ocl, kernel, 7, sizeof (cl_uint), device_param->kernel_params_mp_l[7]);
2508 hc_clSetKernelArg (data.ocl, kernel, 8, sizeof (cl_uint), device_param->kernel_params_mp_l[8]);
2509 hc_clSetKernelArg (data.ocl, kernel, 9, sizeof (cl_uint), device_param->kernel_params_mp_l[9]);
2510 break;
2511 }
2512
2513 size_t workgroup_size = 0;
2514 hc_clGetKernelWorkGroupInfo (data.ocl, kernel, device_param->device, CL_KERNEL_WORK_GROUP_SIZE, sizeof(size_t), &workgroup_size, NULL);
2515 if (kernel_threads > workgroup_size) kernel_threads = workgroup_size;
2516
2517 const size_t global_work_size[3] = { num_elements, 1, 1 };
2518 const size_t local_work_size[3] = { kernel_threads, 1, 1 };
2519
2520 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 1, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2521
2522 hc_clFlush (data.ocl, device_param->command_queue);
2523
2524 hc_clFinish (data.ocl, device_param->command_queue);
2525 }
2526
2527 static void run_kernel_tm (hc_device_param_t *device_param)
2528 {
2529 const uint num_elements = 1024; // fixed
2530
2531 uint kernel_threads = 32;
2532
2533 cl_kernel kernel = device_param->kernel_tm;
2534
2535 size_t workgroup_size = 0;
2536 hc_clGetKernelWorkGroupInfo (data.ocl, kernel, device_param->device, CL_KERNEL_WORK_GROUP_SIZE, sizeof (size_t), &workgroup_size, NULL);
2537 if (kernel_threads > workgroup_size) kernel_threads = workgroup_size;
2538
2539 const size_t global_work_size[3] = { num_elements, 1, 1 };
2540 const size_t local_work_size[3] = { kernel_threads, 1, 1 };
2541
2542 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 1, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2543
2544 hc_clFlush (data.ocl, device_param->command_queue);
2545
2546 hc_clFinish (data.ocl, device_param->command_queue);
2547 }
2548
2549 static void run_kernel_amp (hc_device_param_t *device_param, const uint num)
2550 {
2551 uint num_elements = num;
2552
2553 device_param->kernel_params_amp_buf32[5] = data.combs_mode;
2554 device_param->kernel_params_amp_buf32[6] = num_elements;
2555
2556 // causes problems with special threads like in bcrypt
2557 // const uint kernel_threads = device_param->kernel_threads;
2558
2559 uint kernel_threads = KERNEL_THREADS;
2560
2561 while (num_elements % kernel_threads) num_elements++;
2562
2563 cl_kernel kernel = device_param->kernel_amp;
2564
2565 hc_clSetKernelArg (data.ocl, kernel, 5, sizeof (cl_uint), device_param->kernel_params_amp[5]);
2566 hc_clSetKernelArg (data.ocl, kernel, 6, sizeof (cl_uint), device_param->kernel_params_amp[6]);
2567
2568 size_t workgroup_size = 0;
2569 hc_clGetKernelWorkGroupInfo (data.ocl, kernel, device_param->device, CL_KERNEL_WORK_GROUP_SIZE, sizeof (size_t), &workgroup_size, NULL);
2570 if (kernel_threads > workgroup_size) kernel_threads = workgroup_size;
2571
2572 const size_t global_work_size[3] = { num_elements, 1, 1 };
2573 const size_t local_work_size[3] = { kernel_threads, 1, 1 };
2574
2575 hc_clEnqueueNDRangeKernel (data.ocl, device_param->command_queue, kernel, 1, NULL, global_work_size, local_work_size, 0, NULL, NULL);
2576
2577 hc_clFlush (data.ocl, device_param->command_queue);
2578
2579 hc_clFinish (data.ocl, device_param->command_queue);
2580 }
2581
2582 static void run_kernel_bzero (hc_device_param_t *device_param, cl_mem buf, const uint size)
2583 {
2584 int rc = -1;
2585
2586 if (device_param->opencl_v12 && device_param->vendor_id == VENDOR_ID_AMD)
2587 {
2588 // So far tested, amd is the only supporting this OpenCL 1.2 function without segfaulting
2589
2590 const cl_uchar zero = 0;
2591
2592 rc = hc_clEnqueueFillBuffer (data.ocl, device_param->command_queue, buf, &zero, sizeof (cl_uchar), 0, size, 0, NULL, NULL);
2593 }
2594
2595 if (rc != 0)
2596 {
2597 // NOTE: clEnqueueFillBuffer () always fails with -59
2598 // IOW, it's not supported by Nvidia ForceWare <= 352.21, also pocl segfaults, also on apple
2599 // How's that possible, OpenCL 1.2 support is advertised??
2600 // We need to workaround...
2601
2602 #define FILLSZ 0x100000
2603
2604 char *tmp = (char *) mymalloc (FILLSZ);
2605
2606 for (uint i = 0; i < size; i += FILLSZ)
2607 {
2608 const int left = size - i;
2609
2610 const int fillsz = MIN (FILLSZ, left);
2611
2612 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, buf, CL_TRUE, i, fillsz, tmp, 0, NULL, NULL);
2613 }
2614
2615 myfree (tmp);
2616 }
2617 }
2618
2619 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)
2620 {
2621 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
2622 {
2623 if (attack_mode == ATTACK_MODE_BF)
2624 {
2625 if (opts_type & OPTS_TYPE_PT_BITSLICE)
2626 {
2627 const uint size_tm = 32 * sizeof (bs_word_t);
2628
2629 run_kernel_bzero (device_param, device_param->d_tm_c, size_tm);
2630
2631 run_kernel_tm (device_param);
2632
2633 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);
2634 }
2635 }
2636
2637 if (highest_pw_len < 16)
2638 {
2639 run_kernel (KERN_RUN_1, device_param, pws_cnt, true);
2640 }
2641 else if (highest_pw_len < 32)
2642 {
2643 run_kernel (KERN_RUN_2, device_param, pws_cnt, true);
2644 }
2645 else
2646 {
2647 run_kernel (KERN_RUN_3, device_param, pws_cnt, true);
2648 }
2649 }
2650 else
2651 {
2652 run_kernel_amp (device_param, pws_cnt);
2653
2654 run_kernel (KERN_RUN_1, device_param, pws_cnt, false);
2655
2656 if (opts_type & OPTS_TYPE_HOOK12)
2657 {
2658 run_kernel (KERN_RUN_12, device_param, pws_cnt, false);
2659 }
2660
2661 uint iter = salt_buf->salt_iter;
2662
2663 uint loop_step = device_param->kernel_loops;
2664
2665 for (uint loop_pos = 0; loop_pos < iter; loop_pos += loop_step)
2666 {
2667 uint loop_left = iter - loop_pos;
2668
2669 loop_left = MIN (loop_left, loop_step);
2670
2671 device_param->kernel_params_buf32[25] = loop_pos;
2672 device_param->kernel_params_buf32[26] = loop_left;
2673
2674 run_kernel (KERN_RUN_2, device_param, pws_cnt, true);
2675
2676 if (data.devices_status == STATUS_CRACKED) break;
2677 if (data.devices_status == STATUS_ABORTED) break;
2678 if (data.devices_status == STATUS_QUIT) break;
2679
2680 /**
2681 * speed
2682 */
2683
2684 const float iter_part = (float) (loop_pos + loop_left) / iter;
2685
2686 const u64 perf_sum_all = pws_cnt * iter_part;
2687
2688 double speed_ms;
2689
2690 hc_timer_get (device_param->timer_speed, speed_ms);
2691
2692 const u32 speed_pos = device_param->speed_pos;
2693
2694 device_param->speed_cnt[speed_pos] = perf_sum_all;
2695
2696 device_param->speed_ms[speed_pos] = speed_ms;
2697 }
2698
2699 if (opts_type & OPTS_TYPE_HOOK23)
2700 {
2701 run_kernel (KERN_RUN_23, device_param, pws_cnt, false);
2702
2703 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);
2704
2705 // do something with data
2706
2707 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);
2708 }
2709
2710 run_kernel (KERN_RUN_3, device_param, pws_cnt, false);
2711 }
2712 }
2713
2714 static int run_rule_engine (const int rule_len, const char *rule_buf)
2715 {
2716 if (rule_len == 0)
2717 {
2718 return 0;
2719 }
2720 else if (rule_len == 1)
2721 {
2722 if (rule_buf[0] == RULE_OP_MANGLE_NOOP) return 0;
2723 }
2724
2725 return 1;
2726 }
2727
2728 static void run_copy (hc_device_param_t *device_param, const uint pws_cnt)
2729 {
2730 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
2731 {
2732 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);
2733 }
2734 else if (data.attack_kern == ATTACK_KERN_COMBI)
2735 {
2736 if (data.attack_mode == ATTACK_MODE_HYBRID2)
2737 {
2738 if (data.opts_type & OPTS_TYPE_PT_ADD01)
2739 {
2740 for (u32 i = 0; i < pws_cnt; i++)
2741 {
2742 const u32 pw_len = device_param->pws_buf[i].pw_len;
2743
2744 u8 *ptr = (u8 *) device_param->pws_buf[i].i;
2745
2746 ptr[pw_len] = 0x01;
2747 }
2748 }
2749 else if (data.opts_type & OPTS_TYPE_PT_ADD80)
2750 {
2751 for (u32 i = 0; i < pws_cnt; i++)
2752 {
2753 const u32 pw_len = device_param->pws_buf[i].pw_len;
2754
2755 u8 *ptr = (u8 *) device_param->pws_buf[i].i;
2756
2757 ptr[pw_len] = 0x80;
2758 }
2759 }
2760 }
2761
2762 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);
2763 }
2764 else if (data.attack_kern == ATTACK_KERN_BF)
2765 {
2766 const u64 off = device_param->words_off;
2767
2768 device_param->kernel_params_mp_l_buf64[3] = off;
2769
2770 run_kernel_mp (KERN_RUN_MP_L, device_param, pws_cnt);
2771 }
2772 }
2773
2774 static double try_run (hc_device_param_t *device_param, const u32 kernel_accel, const u32 kernel_loops, const int repeat)
2775 {
2776 const u32 kernel_power = device_param->device_processors * device_param->kernel_threads * kernel_accel;
2777
2778 device_param->kernel_params_buf32[26] = kernel_loops;
2779 device_param->kernel_params_buf32[27] = kernel_loops;
2780
2781 // init some fake words
2782
2783 for (u32 i = 0; i < kernel_power; i++)
2784 {
2785 device_param->pws_buf[i].i[0] = i;
2786 device_param->pws_buf[i].i[1] = 0x01234567;
2787 device_param->pws_buf[i].pw_len = 4 + (i & 3);
2788 }
2789
2790 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_pws_buf, CL_TRUE, 0, kernel_power * sizeof (pw_t), device_param->pws_buf, 0, NULL, NULL);
2791
2792 if (data.attack_exec == ATTACK_EXEC_OUTSIDE_KERNEL)
2793 {
2794 run_kernel_amp (device_param, kernel_power);
2795 }
2796
2797 // caching run
2798
2799 if (data.attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
2800 {
2801 run_kernel (KERN_RUN_1, device_param, kernel_power, false);
2802 }
2803 else
2804 {
2805 run_kernel (KERN_RUN_2, device_param, kernel_power, false);
2806 }
2807
2808 // now user repeats
2809
2810 for (int i = 0; i < repeat; i++)
2811 {
2812 if (data.attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
2813 {
2814 run_kernel (KERN_RUN_1, device_param, kernel_power, true);
2815 }
2816 else
2817 {
2818 run_kernel (KERN_RUN_2, device_param, kernel_power, true);
2819 }
2820 }
2821
2822 const double exec_ms_prev = get_avg_exec_time (device_param, repeat);
2823
2824 // reset fake words
2825
2826 memset (device_param->pws_buf, 0, kernel_power * sizeof (pw_t));
2827
2828 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_pws_buf, CL_TRUE, 0, kernel_power * sizeof (pw_t), device_param->pws_buf, 0, NULL, NULL);
2829 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_pws_amp_buf, CL_TRUE, 0, kernel_power * sizeof (pw_t), device_param->pws_buf, 0, NULL, NULL);
2830
2831 return exec_ms_prev;
2832 }
2833
2834 static void autotune (hc_device_param_t *device_param)
2835 {
2836 const double target_ms = TARGET_MS_PROFILE[data.workload_profile - 1];
2837
2838 const u32 kernel_accel_min = device_param->kernel_accel_min;
2839 const u32 kernel_accel_max = device_param->kernel_accel_max;
2840
2841 const u32 kernel_loops_min = device_param->kernel_loops_min;
2842 const u32 kernel_loops_max = device_param->kernel_loops_max;
2843
2844 u32 kernel_accel = kernel_accel_min;
2845 u32 kernel_loops = kernel_loops_min;
2846
2847 // steps
2848
2849 #define STEPS_CNT 10
2850
2851 #define STEPS_ACCEL_CNT (STEPS_CNT + 2)
2852 #define STEPS_LOOPS_CNT (STEPS_CNT + 2)
2853
2854 u32 steps_accel[STEPS_ACCEL_CNT];
2855 u32 steps_loops[STEPS_LOOPS_CNT];
2856
2857 for (int i = 0; i < STEPS_ACCEL_CNT; i++)
2858 {
2859 steps_accel[i] = 1 << i;
2860 }
2861
2862 for (int i = 0; i < STEPS_LOOPS_CNT; i++)
2863 {
2864 steps_loops[i] = 1 << i;
2865 }
2866
2867 steps_accel[STEPS_CNT + 0] = kernel_accel_min;
2868 steps_accel[STEPS_CNT + 1] = kernel_accel_max;
2869
2870 steps_loops[STEPS_CNT + 0] = kernel_loops_min;
2871 steps_loops[STEPS_CNT + 1] = kernel_loops_max;
2872
2873 qsort (steps_accel, STEPS_ACCEL_CNT, sizeof (u32), sort_by_u32);
2874 qsort (steps_loops, STEPS_LOOPS_CNT, sizeof (u32), sort_by_u32);
2875
2876 // find out highest kernel-loops that stays below target_ms, we can use it later for multiplication as this is a linear function
2877
2878 u32 kernel_loops_tmp;
2879
2880 for (kernel_loops_tmp = kernel_loops_max; kernel_loops_tmp > kernel_loops_min; kernel_loops_tmp >>= 1)
2881 {
2882 const double exec_ms = try_run (device_param, kernel_accel_min, kernel_loops_tmp, 1);
2883
2884 if (exec_ms < target_ms) break;
2885 }
2886
2887 // kernel-accel
2888
2889 if (kernel_accel_min < kernel_accel_max)
2890 {
2891 double e_best = 0;
2892
2893 for (int i = 0; i < STEPS_ACCEL_CNT; i++)
2894 {
2895 const u32 kernel_accel_try = steps_accel[i];
2896
2897 if (kernel_accel_try < kernel_accel_min) continue;
2898 if (kernel_accel_try > kernel_accel_max) break;
2899
2900 const double exec_ms = try_run (device_param, kernel_accel_try, kernel_loops_tmp, 1);
2901
2902 if (exec_ms > target_ms) break;
2903
2904 const double e = kernel_accel_try / exec_ms;
2905
2906 if (e > e_best)
2907 {
2908 kernel_accel = kernel_accel_try;
2909
2910 e_best = e;
2911 }
2912 }
2913 }
2914
2915 // kernel-loops final
2916
2917 if (kernel_loops_min < kernel_loops_max)
2918 {
2919 double e_best = 0;
2920
2921 for (int i = 0; i < STEPS_LOOPS_CNT; i++)
2922 {
2923 const u32 kernel_loops_try = steps_loops[i];
2924
2925 if (kernel_loops_try < kernel_loops_min) continue;
2926 if (kernel_loops_try > kernel_loops_max) break;
2927
2928 const double exec_ms = try_run (device_param, kernel_accel, kernel_loops_try, 1);
2929
2930 if (exec_ms > target_ms) break;
2931
2932 const double e = kernel_loops_try / exec_ms;
2933
2934 if (e > e_best)
2935 {
2936 kernel_loops = kernel_loops_try;
2937
2938 e_best = e;
2939 }
2940 }
2941 }
2942
2943 // final balance
2944
2945 u32 kernel_accel_best = kernel_accel;
2946 u32 kernel_loops_best = kernel_loops;
2947
2948 u32 exec_best = -1;
2949
2950 if ((kernel_accel_min < kernel_accel_max) || (kernel_loops_min < kernel_loops_max))
2951 {
2952 const double exec_ms = try_run (device_param, kernel_accel_best, kernel_loops_best, 1);
2953
2954 exec_best = exec_ms;
2955 }
2956
2957 // reset
2958
2959 if (kernel_accel_min < kernel_accel_max)
2960 {
2961 u32 kernel_accel_try = kernel_accel;
2962 u32 kernel_loops_try = kernel_loops;
2963
2964 for (int i = 0; i < 2; i++)
2965 {
2966 kernel_accel_try >>= 1;
2967 kernel_loops_try <<= 1;
2968
2969 if (kernel_accel_try < kernel_accel_min) break;
2970 if (kernel_loops_try > kernel_loops_max) break;
2971
2972 const double exec_ms = try_run (device_param, kernel_accel_try, kernel_loops_try, 1);
2973
2974 if (exec_ms < exec_best)
2975 {
2976 kernel_accel_best = kernel_accel_try;
2977 kernel_loops_best = kernel_loops_try;
2978
2979 exec_best = exec_ms;
2980 }
2981 }
2982 }
2983
2984 // reset
2985
2986 if (kernel_loops_min < kernel_loops_max)
2987 {
2988 u32 kernel_accel_try = kernel_accel;
2989 u32 kernel_loops_try = kernel_loops;
2990
2991 for (int i = 0; i < 2; i++)
2992 {
2993 kernel_accel_try <<= 1;
2994 kernel_loops_try >>= 1;
2995
2996 if (kernel_accel_try > kernel_accel_max) break;
2997 if (kernel_loops_try < kernel_loops_min) break;
2998
2999 const double exec_ms = try_run (device_param, kernel_accel_try, kernel_loops_try, 1);
3000
3001 if (exec_ms < exec_best)
3002 {
3003 kernel_accel_best = kernel_accel_try;
3004 kernel_loops_best = kernel_loops_try;
3005
3006 exec_best = exec_ms;
3007 }
3008 }
3009 }
3010
3011 // reset timer
3012
3013 device_param->exec_pos = 0;
3014
3015 memset (device_param->exec_ms, 0, EXEC_CACHE * sizeof (double));
3016
3017 // store
3018
3019 kernel_accel = kernel_accel_best;
3020 kernel_loops = kernel_loops_best;
3021
3022 device_param->kernel_accel = kernel_accel;
3023 device_param->kernel_loops = kernel_loops;
3024
3025 const u32 kernel_power = device_param->device_processors * device_param->kernel_threads * device_param->kernel_accel;
3026
3027 device_param->kernel_power = kernel_power;
3028
3029 #ifdef DEBUG
3030
3031 if (data.quiet == 0)
3032 {
3033 clear_prompt ();
3034
3035 log_info ("Device #%u: autotuned kernel-accel to %u\n"
3036 "Device #%u: autotuned kernel-loops to %u\n",
3037 device_param->device_id + 1,
3038 kernel_accel,
3039 device_param->device_id + 1,
3040 kernel_loops);
3041
3042 fprintf (stdout, "%s", PROMPT);
3043 fflush (stdout);
3044 }
3045
3046 #endif
3047 }
3048
3049 static void run_cracker (hc_device_param_t *device_param, const uint pws_cnt)
3050 {
3051 char *line_buf = (char *) mymalloc (HCBUFSIZ);
3052
3053 // init speed timer
3054
3055 uint speed_pos = device_param->speed_pos;
3056
3057 #ifdef _POSIX
3058 if (device_param->timer_speed.tv_sec == 0)
3059 {
3060 hc_timer_set (&device_param->timer_speed);
3061 }
3062 #endif
3063
3064 #ifdef _WIN
3065 if (device_param->timer_speed.QuadPart == 0)
3066 {
3067 hc_timer_set (&device_param->timer_speed);
3068 }
3069 #endif
3070
3071 // find higest password length, this is for optimization stuff
3072
3073 uint highest_pw_len = 0;
3074
3075 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
3076 {
3077 }
3078 else if (data.attack_kern == ATTACK_KERN_COMBI)
3079 {
3080 }
3081 else if (data.attack_kern == ATTACK_KERN_BF)
3082 {
3083 highest_pw_len = device_param->kernel_params_mp_l_buf32[4]
3084 + device_param->kernel_params_mp_l_buf32[5];
3085 }
3086
3087 // iteration type
3088
3089 uint innerloop_step = 0;
3090 uint innerloop_cnt = 0;
3091
3092 if (data.attack_exec == ATTACK_EXEC_INSIDE_KERNEL) innerloop_step = device_param->kernel_loops;
3093 else innerloop_step = 1;
3094
3095 if (data.attack_kern == ATTACK_KERN_STRAIGHT) innerloop_cnt = data.kernel_rules_cnt;
3096 else if (data.attack_kern == ATTACK_KERN_COMBI) innerloop_cnt = data.combs_cnt;
3097 else if (data.attack_kern == ATTACK_KERN_BF) innerloop_cnt = data.bfs_cnt;
3098
3099 // loop start: most outer loop = salt iteration, then innerloops (if multi)
3100
3101 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
3102 {
3103 while (data.devices_status == STATUS_PAUSED) hc_sleep (1);
3104
3105 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
3106
3107 if (data.devices_status == STATUS_CRACKED) break;
3108 if (data.devices_status == STATUS_ABORTED) break;
3109 if (data.devices_status == STATUS_QUIT) break;
3110 if (data.devices_status == STATUS_BYPASS) break;
3111
3112 salt_t *salt_buf = &data.salts_buf[salt_pos];
3113
3114 device_param->kernel_params_buf32[24] = salt_pos;
3115 device_param->kernel_params_buf32[28] = salt_buf->digests_cnt;
3116 device_param->kernel_params_buf32[29] = salt_buf->digests_offset;
3117
3118 FILE *combs_fp = device_param->combs_fp;
3119
3120 if (data.attack_mode == ATTACK_MODE_COMBI)
3121 {
3122 rewind (combs_fp);
3123 }
3124
3125 // innerloops
3126
3127 for (uint innerloop_pos = 0; innerloop_pos < innerloop_cnt; innerloop_pos += innerloop_step)
3128 {
3129 while (data.devices_status == STATUS_PAUSED) hc_sleep (1);
3130
3131 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
3132
3133 if (data.devices_status == STATUS_CRACKED) break;
3134 if (data.devices_status == STATUS_ABORTED) break;
3135 if (data.devices_status == STATUS_QUIT) break;
3136 if (data.devices_status == STATUS_BYPASS) break;
3137
3138 uint innerloop_left = innerloop_cnt - innerloop_pos;
3139
3140 if (innerloop_left > innerloop_step) innerloop_left = innerloop_step;
3141
3142 device_param->innerloop_pos = innerloop_pos;
3143 device_param->innerloop_left = innerloop_left;
3144
3145 device_param->kernel_params_buf32[27] = innerloop_left;
3146
3147 // i think we can get rid of this
3148 if (innerloop_left == 0)
3149 {
3150 puts ("bug, how should this happen????\n");
3151
3152 continue;
3153 }
3154
3155 if (data.salts_shown[salt_pos] == 1)
3156 {
3157 data.words_progress_done[salt_pos] += (u64) pws_cnt * (u64) innerloop_left;
3158
3159 continue;
3160 }
3161
3162 // initialize amplifiers
3163
3164 if (data.attack_mode == ATTACK_MODE_COMBI)
3165 {
3166 uint i = 0;
3167
3168 while (i < innerloop_left)
3169 {
3170 if (feof (combs_fp)) break;
3171
3172 int line_len = fgetl (combs_fp, line_buf);
3173
3174 if (line_len >= PW_MAX1) continue;
3175
3176 line_len = convert_from_hex (line_buf, line_len);
3177
3178 char *line_buf_new = line_buf;
3179
3180 if (run_rule_engine (data.rule_len_r, data.rule_buf_r))
3181 {
3182 char rule_buf_out[BLOCK_SIZE] = { 0 };
3183
3184 int rule_len_out = _old_apply_rule (data.rule_buf_r, data.rule_len_r, line_buf, line_len, rule_buf_out);
3185
3186 if (rule_len_out < 0)
3187 {
3188 data.words_progress_rejected[salt_pos] += pws_cnt;
3189
3190 continue;
3191 }
3192
3193 line_len = rule_len_out;
3194
3195 line_buf_new = rule_buf_out;
3196 }
3197
3198 line_len = MIN (line_len, PW_DICTMAX);
3199
3200 u8 *ptr = (u8 *) device_param->combs_buf[i].i;
3201
3202 memcpy (ptr, line_buf_new, line_len);
3203
3204 memset (ptr + line_len, 0, PW_DICTMAX1 - line_len);
3205
3206 if (data.opts_type & OPTS_TYPE_PT_UPPER)
3207 {
3208 uppercase (ptr, line_len);
3209 }
3210
3211 if (data.combs_mode == COMBINATOR_MODE_BASE_LEFT)
3212 {
3213 if (data.opts_type & OPTS_TYPE_PT_ADD80)
3214 {
3215 ptr[line_len] = 0x80;
3216 }
3217
3218 if (data.opts_type & OPTS_TYPE_PT_ADD01)
3219 {
3220 ptr[line_len] = 0x01;
3221 }
3222 }
3223
3224 device_param->combs_buf[i].pw_len = line_len;
3225
3226 i++;
3227 }
3228
3229 for (uint j = i; j < innerloop_left; j++)
3230 {
3231 device_param->combs_buf[j].i[0] = 0;
3232 device_param->combs_buf[j].i[1] = 0;
3233 device_param->combs_buf[j].i[2] = 0;
3234 device_param->combs_buf[j].i[3] = 0;
3235 device_param->combs_buf[j].i[4] = 0;
3236 device_param->combs_buf[j].i[5] = 0;
3237 device_param->combs_buf[j].i[6] = 0;
3238 device_param->combs_buf[j].i[7] = 0;
3239
3240 device_param->combs_buf[j].pw_len = 0;
3241 }
3242
3243 innerloop_left = i;
3244 }
3245 else if (data.attack_mode == ATTACK_MODE_BF)
3246 {
3247 u64 off = innerloop_pos;
3248
3249 device_param->kernel_params_mp_r_buf64[3] = off;
3250
3251 run_kernel_mp (KERN_RUN_MP_R, device_param, innerloop_left);
3252 }
3253 else if (data.attack_mode == ATTACK_MODE_HYBRID1)
3254 {
3255 u64 off = innerloop_pos;
3256
3257 device_param->kernel_params_mp_buf64[3] = off;
3258
3259 run_kernel_mp (KERN_RUN_MP, device_param, innerloop_left);
3260 }
3261 else if (data.attack_mode == ATTACK_MODE_HYBRID2)
3262 {
3263 u64 off = innerloop_pos;
3264
3265 device_param->kernel_params_mp_buf64[3] = off;
3266
3267 run_kernel_mp (KERN_RUN_MP, device_param, innerloop_left);
3268 }
3269
3270 // copy amplifiers
3271
3272 if (data.attack_mode == ATTACK_MODE_STRAIGHT)
3273 {
3274 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);
3275 }
3276 else if (data.attack_mode == ATTACK_MODE_COMBI)
3277 {
3278 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);
3279 }
3280 else if (data.attack_mode == ATTACK_MODE_BF)
3281 {
3282 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);
3283 }
3284 else if (data.attack_mode == ATTACK_MODE_HYBRID1)
3285 {
3286 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);
3287 }
3288 else if (data.attack_mode == ATTACK_MODE_HYBRID2)
3289 {
3290 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);
3291 }
3292
3293 choose_kernel (device_param, data.attack_exec, data.attack_mode, data.opts_type, salt_buf, highest_pw_len, pws_cnt);
3294
3295 if (data.benchmark == 1)
3296 {
3297 double exec_ms_avg_prev = get_avg_exec_time (device_param, EXEC_CACHE);
3298
3299 // a few caching rounds
3300
3301 for (u32 i = 0; i < 2; i++)
3302 {
3303 hc_timer_set (&device_param->timer_speed);
3304
3305 choose_kernel (device_param, data.attack_exec, data.attack_mode, data.opts_type, salt_buf, highest_pw_len, pws_cnt);
3306
3307 double exec_ms_avg = get_avg_exec_time (device_param, EXEC_CACHE);
3308
3309 exec_ms_avg_prev = exec_ms_avg;
3310 }
3311
3312 // benchmark_repeats became a maximum possible repeats
3313
3314 for (u32 i = 2; i < data.benchmark_repeats; i++)
3315 {
3316 hc_timer_set (&device_param->timer_speed);
3317
3318 choose_kernel (device_param, data.attack_exec, data.attack_mode, data.opts_type, salt_buf, highest_pw_len, pws_cnt);
3319
3320 double exec_ms_avg = get_avg_exec_time (device_param, EXEC_CACHE);
3321
3322 if ((exec_ms_avg_prev / exec_ms_avg) < 1.001) break;
3323
3324 exec_ms_avg_prev = exec_ms_avg;
3325 }
3326 }
3327
3328 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
3329
3330 if (data.devices_status == STATUS_CRACKED) break;
3331 if (data.devices_status == STATUS_ABORTED) break;
3332 if (data.devices_status == STATUS_QUIT) break;
3333
3334 /**
3335 * result
3336 */
3337
3338 hc_thread_mutex_lock (mux_display);
3339
3340 check_cracked (device_param, salt_pos);
3341
3342 hc_thread_mutex_unlock (mux_display);
3343
3344 /**
3345 * progress
3346 */
3347
3348 u64 perf_sum_all = (u64) pws_cnt * (u64) innerloop_left;
3349
3350 hc_thread_mutex_lock (mux_counter);
3351
3352 data.words_progress_done[salt_pos] += perf_sum_all;
3353
3354 hc_thread_mutex_unlock (mux_counter);
3355
3356 /**
3357 * speed
3358 */
3359
3360 double speed_ms;
3361
3362 hc_timer_get (device_param->timer_speed, speed_ms);
3363
3364 hc_timer_set (&device_param->timer_speed);
3365
3366 hc_thread_mutex_lock (mux_display);
3367
3368 // current speed
3369
3370 device_param->speed_cnt[speed_pos] = perf_sum_all;
3371
3372 device_param->speed_ms[speed_pos] = speed_ms;
3373
3374 hc_thread_mutex_unlock (mux_display);
3375
3376 speed_pos++;
3377
3378 if (speed_pos == SPEED_CACHE)
3379 {
3380 speed_pos = 0;
3381 }
3382
3383 /**
3384 * benchmark
3385 */
3386
3387 if (data.benchmark == 1) break;
3388 }
3389 }
3390
3391 device_param->speed_pos = speed_pos;
3392
3393 myfree (line_buf);
3394 }
3395
3396 static void load_segment (wl_data_t *wl_data, FILE *fd)
3397 {
3398 // NOTE: use (never changing) ->incr here instead of ->avail otherwise the buffer gets bigger and bigger
3399
3400 wl_data->pos = 0;
3401
3402 wl_data->cnt = fread (wl_data->buf, 1, wl_data->incr - 1000, fd);
3403
3404 wl_data->buf[wl_data->cnt] = 0;
3405
3406 if (wl_data->cnt == 0) return;
3407
3408 if (wl_data->buf[wl_data->cnt - 1] == '\n') return;
3409
3410 while (!feof (fd))
3411 {
3412 if (wl_data->cnt == wl_data->avail)
3413 {
3414 wl_data->buf = (char *) myrealloc (wl_data->buf, wl_data->avail, wl_data->incr);
3415
3416 wl_data->avail += wl_data->incr;
3417 }
3418
3419 const int c = fgetc (fd);
3420
3421 if (c == EOF) break;
3422
3423 wl_data->buf[wl_data->cnt] = (char) c;
3424
3425 wl_data->cnt++;
3426
3427 if (c == '\n') break;
3428 }
3429
3430 // ensure stream ends with a newline
3431
3432 if (wl_data->buf[wl_data->cnt - 1] != '\n')
3433 {
3434 wl_data->cnt++;
3435
3436 wl_data->buf[wl_data->cnt - 1] = '\n';
3437 }
3438
3439 return;
3440 }
3441
3442 static void get_next_word_lm (char *buf, u32 sz, u32 *len, u32 *off)
3443 {
3444 char *ptr = buf;
3445
3446 for (u32 i = 0; i < sz; i++, ptr++)
3447 {
3448 if (*ptr >= 'a' && *ptr <= 'z') *ptr -= 0x20;
3449
3450 if (i == 7)
3451 {
3452 *off = i;
3453 *len = i;
3454
3455 return;
3456 }
3457
3458 if (*ptr != '\n') continue;
3459
3460 *off = i + 1;
3461
3462 if ((i > 0) && (buf[i - 1] == '\r')) i--;
3463
3464 *len = i;
3465
3466 return;
3467 }
3468
3469 *off = sz;
3470 *len = sz;
3471 }
3472
3473 static void get_next_word_uc (char *buf, u32 sz, u32 *len, u32 *off)
3474 {
3475 char *ptr = buf;
3476
3477 for (u32 i = 0; i < sz; i++, ptr++)
3478 {
3479 if (*ptr >= 'a' && *ptr <= 'z') *ptr -= 0x20;
3480
3481 if (*ptr != '\n') continue;
3482
3483 *off = i + 1;
3484
3485 if ((i > 0) && (buf[i - 1] == '\r')) i--;
3486
3487 *len = i;
3488
3489 return;
3490 }
3491
3492 *off = sz;
3493 *len = sz;
3494 }
3495
3496 static void get_next_word_std (char *buf, u32 sz, u32 *len, u32 *off)
3497 {
3498 char *ptr = buf;
3499
3500 for (u32 i = 0; i < sz; i++, ptr++)
3501 {
3502 if (*ptr != '\n') continue;
3503
3504 *off = i + 1;
3505
3506 if ((i > 0) && (buf[i - 1] == '\r')) i--;
3507
3508 *len = i;
3509
3510 return;
3511 }
3512
3513 *off = sz;
3514 *len = sz;
3515 }
3516
3517 static void get_next_word (wl_data_t *wl_data, FILE *fd, char **out_buf, uint *out_len)
3518 {
3519 while (wl_data->pos < wl_data->cnt)
3520 {
3521 uint off;
3522 uint len;
3523
3524 char *ptr = wl_data->buf + wl_data->pos;
3525
3526 get_next_word_func (ptr, wl_data->cnt - wl_data->pos, &len, &off);
3527
3528 wl_data->pos += off;
3529
3530 if (run_rule_engine (data.rule_len_l, data.rule_buf_l))
3531 {
3532 char rule_buf_out[BLOCK_SIZE] = { 0 };
3533
3534 int rule_len_out = -1;
3535
3536 if (len < BLOCK_SIZE)
3537 {
3538 rule_len_out = _old_apply_rule (data.rule_buf_l, data.rule_len_l, ptr, len, rule_buf_out);
3539 }
3540
3541 if (rule_len_out < 0)
3542 {
3543 continue;
3544 }
3545
3546 if (rule_len_out > PW_MAX)
3547 {
3548 continue;
3549 }
3550 }
3551 else
3552 {
3553 if (len > PW_MAX)
3554 {
3555 continue;
3556 }
3557 }
3558
3559 *out_buf = ptr;
3560 *out_len = len;
3561
3562 return;
3563 }
3564
3565 if (feof (fd))
3566 {
3567 fprintf (stderr, "BUG feof()!!\n");
3568
3569 return;
3570 }
3571
3572 load_segment (wl_data, fd);
3573
3574 get_next_word (wl_data, fd, out_buf, out_len);
3575 }
3576
3577 #ifdef _POSIX
3578 static u64 count_words (wl_data_t *wl_data, FILE *fd, char *dictfile, dictstat_t *dictstat_base, size_t *dictstat_nmemb)
3579 #endif
3580
3581 #ifdef _WIN
3582 static u64 count_words (wl_data_t *wl_data, FILE *fd, char *dictfile, dictstat_t *dictstat_base, uint *dictstat_nmemb)
3583 #endif
3584 {
3585 hc_signal (NULL);
3586
3587 dictstat_t d;
3588
3589 d.cnt = 0;
3590
3591 #ifdef _POSIX
3592 fstat (fileno (fd), &d.stat);
3593 #endif
3594
3595 #ifdef _WIN
3596 _fstat64 (fileno (fd), &d.stat);
3597 #endif
3598
3599 d.stat.st_mode = 0;
3600 d.stat.st_nlink = 0;
3601 d.stat.st_uid = 0;
3602 d.stat.st_gid = 0;
3603 d.stat.st_rdev = 0;
3604 d.stat.st_atime = 0;
3605
3606 #ifdef _POSIX
3607 d.stat.st_blksize = 0;
3608 d.stat.st_blocks = 0;
3609 #endif
3610
3611 if (d.stat.st_size == 0) return 0;
3612
3613 dictstat_t *d_cache = (dictstat_t *) lfind (&d, dictstat_base, dictstat_nmemb, sizeof (dictstat_t), sort_by_dictstat);
3614
3615 if (run_rule_engine (data.rule_len_l, data.rule_buf_l) == 0)
3616 {
3617 if (d_cache)
3618 {
3619 u64 cnt = d_cache->cnt;
3620
3621 u64 keyspace = cnt;
3622
3623 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
3624 {
3625 keyspace *= data.kernel_rules_cnt;
3626 }
3627 else if (data.attack_kern == ATTACK_KERN_COMBI)
3628 {
3629 keyspace *= data.combs_cnt;
3630 }
3631
3632 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);
3633 if (data.quiet == 0) log_info ("");
3634
3635 hc_signal (sigHandler_default);
3636
3637 return (keyspace);
3638 }
3639 }
3640
3641 time_t now = 0;
3642 time_t prev = 0;
3643
3644 u64 comp = 0;
3645 u64 cnt = 0;
3646 u64 cnt2 = 0;
3647
3648 while (!feof (fd))
3649 {
3650 load_segment (wl_data, fd);
3651
3652 comp += wl_data->cnt;
3653
3654 u32 i = 0;
3655
3656 while (i < wl_data->cnt)
3657 {
3658 u32 len;
3659 u32 off;
3660
3661 get_next_word_func (wl_data->buf + i, wl_data->cnt - i, &len, &off);
3662
3663 if (run_rule_engine (data.rule_len_l, data.rule_buf_l))
3664 {
3665 char rule_buf_out[BLOCK_SIZE] = { 0 };
3666
3667 int rule_len_out = -1;
3668
3669 if (len < BLOCK_SIZE)
3670 {
3671 rule_len_out = _old_apply_rule (data.rule_buf_l, data.rule_len_l, wl_data->buf + i, len, rule_buf_out);
3672 }
3673
3674 if (rule_len_out < 0)
3675 {
3676 len = PW_MAX1;
3677 }
3678 else
3679 {
3680 len = rule_len_out;
3681 }
3682 }
3683
3684 if (len < PW_MAX1)
3685 {
3686 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
3687 {
3688 cnt += data.kernel_rules_cnt;
3689 }
3690 else if (data.attack_kern == ATTACK_KERN_COMBI)
3691 {
3692 cnt += data.combs_cnt;
3693 }
3694
3695 d.cnt++;
3696 }
3697
3698 i += off;
3699
3700 cnt2++;
3701 }
3702
3703 time (&now);
3704
3705 if ((now - prev) == 0) continue;
3706
3707 float percent = (float) comp / (float) d.stat.st_size;
3708
3709 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);
3710
3711 time (&prev);
3712 }
3713
3714 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);
3715 if (data.quiet == 0) log_info ("");
3716
3717 lsearch (&d, dictstat_base, dictstat_nmemb, sizeof (dictstat_t), sort_by_dictstat);
3718
3719 hc_signal (sigHandler_default);
3720
3721 return (cnt);
3722 }
3723
3724 static void *thread_monitor (void *p)
3725 {
3726 uint runtime_check = 0;
3727 uint remove_check = 0;
3728 uint status_check = 0;
3729 uint restore_check = 0;
3730
3731 uint restore_left = data.restore_timer;
3732 uint remove_left = data.remove_timer;
3733 uint status_left = data.status_timer;
3734
3735 #ifdef HAVE_HWMON
3736 uint hwmon_check = 0;
3737
3738 // these variables are mainly used for fan control (AMD only)
3739
3740 int *fan_speed_chgd = (int *) mycalloc (data.devices_cnt, sizeof (int));
3741
3742 // temperature controller "loopback" values
3743
3744 int *temp_diff_old = (int *) mycalloc (data.devices_cnt, sizeof (int));
3745 int *temp_diff_sum = (int *) mycalloc (data.devices_cnt, sizeof (int));
3746
3747 #ifdef HAVE_ADL
3748 int temp_threshold = 1; // degrees celcius
3749
3750 int fan_speed_min = 15; // in percentage
3751 int fan_speed_max = 100;
3752 #endif // HAVE_ADL
3753
3754 time_t last_temp_check_time;
3755 #endif // HAVE_HWMON
3756
3757 uint sleep_time = 1;
3758
3759 if (data.runtime)
3760 {
3761 runtime_check = 1;
3762 }
3763
3764 if (data.restore_timer)
3765 {
3766 restore_check = 1;
3767 }
3768
3769 if ((data.remove == 1) && (data.hashlist_mode == HL_MODE_FILE))
3770 {
3771 remove_check = 1;
3772 }
3773
3774 if (data.status == 1)
3775 {
3776 status_check = 1;
3777 }
3778
3779 #ifdef HAVE_HWMON
3780 if (data.gpu_temp_disable == 0)
3781 {
3782 time (&last_temp_check_time);
3783
3784 hwmon_check = 1;
3785 }
3786 #endif
3787
3788 if ((runtime_check == 0) && (remove_check == 0) && (status_check == 0) && (restore_check == 0))
3789 {
3790 #ifdef HAVE_HWMON
3791 if (hwmon_check == 0)
3792 #endif
3793 return (p);
3794 }
3795
3796 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
3797 {
3798 hc_sleep (sleep_time);
3799
3800 if (data.devices_status != STATUS_RUNNING) continue;
3801
3802 #ifdef HAVE_HWMON
3803 if (hwmon_check == 1)
3804 {
3805 hc_thread_mutex_lock (mux_adl);
3806
3807 time_t temp_check_time;
3808
3809 time (&temp_check_time);
3810
3811 uint Ta = temp_check_time - last_temp_check_time; // set Ta = sleep_time; is not good enough (see --remove etc)
3812
3813 if (Ta == 0) Ta = 1;
3814
3815 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
3816 {
3817 hc_device_param_t *device_param = &data.devices_param[device_id];
3818
3819 if (device_param->skipped) continue;
3820
3821 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) continue;
3822
3823 const int temperature = hm_get_temperature_with_device_id (device_id);
3824
3825 if (temperature > (int) data.gpu_temp_abort)
3826 {
3827 log_error ("ERROR: Temperature limit on GPU %d reached, aborting...", device_id + 1);
3828
3829 if (data.devices_status != STATUS_QUIT) myabort ();
3830
3831 break;
3832 }
3833
3834 #ifdef HAVE_ADL
3835 const int gpu_temp_retain = data.gpu_temp_retain;
3836
3837 if (gpu_temp_retain) // VENDOR_ID_AMD implied
3838 {
3839 if (data.hm_device[device_id].fan_supported == 1)
3840 {
3841 int temp_cur = temperature;
3842
3843 int temp_diff_new = gpu_temp_retain - temp_cur;
3844
3845 temp_diff_sum[device_id] = temp_diff_sum[device_id] + temp_diff_new;
3846
3847 // calculate Ta value (time difference in seconds between the last check and this check)
3848
3849 last_temp_check_time = temp_check_time;
3850
3851 float Kp = 1.8;
3852 float Ki = 0.005;
3853 float Kd = 6;
3854
3855 // PID controller (3-term controller: proportional - Kp, integral - Ki, derivative - Kd)
3856
3857 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);
3858
3859 if (abs (fan_diff_required) >= temp_threshold)
3860 {
3861 const int fan_speed_cur = hm_get_fanspeed_with_device_id (device_id);
3862
3863 int fan_speed_level = fan_speed_cur;
3864
3865 if (fan_speed_chgd[device_id] == 0) fan_speed_level = temp_cur;
3866
3867 int fan_speed_new = fan_speed_level - fan_diff_required;
3868
3869 if (fan_speed_new > fan_speed_max) fan_speed_new = fan_speed_max;
3870 if (fan_speed_new < fan_speed_min) fan_speed_new = fan_speed_min;
3871
3872 if (fan_speed_new != fan_speed_cur)
3873 {
3874 int freely_change_fan_speed = (fan_speed_chgd[device_id] == 1);
3875 int fan_speed_must_change = (fan_speed_new > fan_speed_cur);
3876
3877 if ((freely_change_fan_speed == 1) || (fan_speed_must_change == 1))
3878 {
3879 hm_set_fanspeed_with_device_id_amd (device_id, fan_speed_new);
3880
3881 fan_speed_chgd[device_id] = 1;
3882 }
3883
3884 temp_diff_old[device_id] = temp_diff_new;
3885 }
3886 }
3887 }
3888 }
3889 #endif // HAVE_ADL
3890 }
3891
3892 hc_thread_mutex_unlock (mux_adl);
3893 }
3894 #endif // HAVE_HWMON
3895
3896 if (restore_check == 1)
3897 {
3898 restore_left--;
3899
3900 if (restore_left == 0)
3901 {
3902 if (data.restore_disable == 0) cycle_restore ();
3903
3904 restore_left = data.restore_timer;
3905 }
3906 }
3907
3908 if ((runtime_check == 1) && (data.runtime_start > 0))
3909 {
3910 time_t runtime_cur;
3911
3912 time (&runtime_cur);
3913
3914 int runtime_left = data.runtime_start + data.runtime - runtime_cur;
3915
3916 if (runtime_left <= 0)
3917 {
3918 if (data.benchmark == 0)
3919 {
3920 if (data.quiet == 0) log_info ("\nNOTE: Runtime limit reached, aborting...\n");
3921 }
3922
3923 if (data.devices_status != STATUS_QUIT) myabort ();
3924 }
3925 }
3926
3927 if (remove_check == 1)
3928 {
3929 remove_left--;
3930
3931 if (remove_left == 0)
3932 {
3933 if (data.digests_saved != data.digests_done)
3934 {
3935 data.digests_saved = data.digests_done;
3936
3937 save_hash ();
3938 }
3939
3940 remove_left = data.remove_timer;
3941 }
3942 }
3943
3944 if (status_check == 1)
3945 {
3946 status_left--;
3947
3948 if (status_left == 0)
3949 {
3950 hc_thread_mutex_lock (mux_display);
3951
3952 if (data.quiet == 0) clear_prompt ();
3953
3954 if (data.quiet == 0) log_info ("");
3955
3956 status_display ();
3957
3958 if (data.quiet == 0) log_info ("");
3959
3960 hc_thread_mutex_unlock (mux_display);
3961
3962 status_left = data.status_timer;
3963 }
3964 }
3965 }
3966
3967 #ifdef HAVE_HWMON
3968 myfree (fan_speed_chgd);
3969
3970 myfree (temp_diff_old);
3971 myfree (temp_diff_sum);
3972 #endif
3973
3974 p = NULL;
3975
3976 return (p);
3977 }
3978
3979 static void *thread_outfile_remove (void *p)
3980 {
3981 // some hash-dependent constants
3982 char *outfile_dir = data.outfile_check_directory;
3983 uint dgst_size = data.dgst_size;
3984 uint isSalted = data.isSalted;
3985 uint esalt_size = data.esalt_size;
3986 uint hash_mode = data.hash_mode;
3987
3988 uint outfile_check_timer = data.outfile_check_timer;
3989
3990 char separator = data.separator;
3991
3992 // some hash-dependent functions
3993 int (*sort_by_digest) (const void *, const void *) = data.sort_by_digest;
3994 int (*parse_func) (char *, uint, hash_t *) = data.parse_func;
3995
3996 // buffers
3997 hash_t hash_buf = { 0, 0, 0, 0, 0 };
3998
3999 hash_buf.digest = mymalloc (dgst_size);
4000
4001 if (isSalted) hash_buf.salt = (salt_t *) mymalloc (sizeof (salt_t));
4002
4003 if (esalt_size) hash_buf.esalt = (void *) mymalloc (esalt_size);
4004
4005 uint digest_buf[64] = { 0 };
4006
4007 outfile_data_t *out_info = NULL;
4008
4009 char **out_files = NULL;
4010
4011 time_t folder_mtime = 0;
4012
4013 int out_cnt = 0;
4014
4015 uint check_left = outfile_check_timer; // or 1 if we want to check it at startup
4016
4017 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
4018 {
4019 hc_sleep (1);
4020
4021 if (data.devices_status != STATUS_RUNNING) continue;
4022
4023 check_left--;
4024
4025 if (check_left == 0)
4026 {
4027 struct stat outfile_check_stat;
4028
4029 if (stat (outfile_dir, &outfile_check_stat) == 0)
4030 {
4031 uint is_dir = S_ISDIR (outfile_check_stat.st_mode);
4032
4033 if (is_dir == 1)
4034 {
4035 if (outfile_check_stat.st_mtime > folder_mtime)
4036 {
4037 char **out_files_new = scan_directory (outfile_dir);
4038
4039 int out_cnt_new = count_dictionaries (out_files_new);
4040
4041 outfile_data_t *out_info_new = NULL;
4042
4043 if (out_cnt_new > 0)
4044 {
4045 out_info_new = (outfile_data_t *) mycalloc (out_cnt_new, sizeof (outfile_data_t));
4046
4047 for (int i = 0; i < out_cnt_new; i++)
4048 {
4049 out_info_new[i].file_name = out_files_new[i];
4050
4051 // check if there are files that we have seen/checked before (and not changed)
4052
4053 for (int j = 0; j < out_cnt; j++)
4054 {
4055 if (strcmp (out_info[j].file_name, out_info_new[i].file_name) == 0)
4056 {
4057 struct stat outfile_stat;
4058
4059 if (stat (out_info_new[i].file_name, &outfile_stat) == 0)
4060 {
4061 if (outfile_stat.st_ctime == out_info[j].ctime)
4062 {
4063 out_info_new[i].ctime = out_info[j].ctime;
4064 out_info_new[i].seek = out_info[j].seek;
4065 }
4066 }
4067 }
4068 }
4069 }
4070 }
4071
4072 local_free (out_info);
4073 local_free (out_files);
4074
4075 out_files = out_files_new;
4076 out_cnt = out_cnt_new;
4077 out_info = out_info_new;
4078
4079 folder_mtime = outfile_check_stat.st_mtime;
4080 }
4081
4082 for (int j = 0; j < out_cnt; j++)
4083 {
4084 FILE *fp = fopen (out_info[j].file_name, "rb");
4085
4086 if (fp != NULL)
4087 {
4088 //hc_thread_mutex_lock (mux_display);
4089
4090 #ifdef _POSIX
4091 struct stat outfile_stat;
4092
4093 fstat (fileno (fp), &outfile_stat);
4094 #endif
4095
4096 #ifdef _WIN
4097 struct stat64 outfile_stat;
4098
4099 _fstat64 (fileno (fp), &outfile_stat);
4100 #endif
4101
4102 if (outfile_stat.st_ctime > out_info[j].ctime)
4103 {
4104 out_info[j].ctime = outfile_stat.st_ctime;
4105 out_info[j].seek = 0;
4106 }
4107
4108 fseek (fp, out_info[j].seek, SEEK_SET);
4109
4110 char *line_buf = (char *) mymalloc (HCBUFSIZ);
4111
4112 while (!feof (fp))
4113 {
4114 char *ptr = fgets (line_buf, HCBUFSIZ - 1, fp);
4115
4116 if (ptr == NULL) break;
4117
4118 int line_len = strlen (line_buf);
4119
4120 if (line_len <= 0) continue;
4121
4122 int iter = MAX_CUT_TRIES;
4123
4124 for (uint i = line_len - 1; i && iter; i--, line_len--)
4125 {
4126 if (line_buf[i] != separator) continue;
4127
4128 int parser_status = PARSER_OK;
4129
4130 if ((hash_mode != 2500) && (hash_mode != 6800))
4131 {
4132 parser_status = parse_func (line_buf, line_len - 1, &hash_buf);
4133 }
4134
4135 uint found = 0;
4136
4137 if (parser_status == PARSER_OK)
4138 {
4139 for (uint salt_pos = 0; (found == 0) && (salt_pos < data.salts_cnt); salt_pos++)
4140 {
4141 if (data.salts_shown[salt_pos] == 1) continue;
4142
4143 salt_t *salt_buf = &data.salts_buf[salt_pos];
4144
4145 for (uint digest_pos = 0; (found == 0) && (digest_pos < salt_buf->digests_cnt); digest_pos++)
4146 {
4147 uint idx = salt_buf->digests_offset + digest_pos;
4148
4149 if (data.digests_shown[idx] == 1) continue;
4150
4151 uint cracked = 0;
4152
4153 if (hash_mode == 6800)
4154 {
4155 if (i == salt_buf->salt_len)
4156 {
4157 cracked = (memcmp (line_buf, salt_buf->salt_buf, salt_buf->salt_len) == 0);
4158 }
4159 }
4160 else if (hash_mode == 2500)
4161 {
4162 // BSSID : MAC1 : MAC2 (:plain)
4163 if (i == (salt_buf->salt_len + 1 + 12 + 1 + 12))
4164 {
4165 cracked = (memcmp (line_buf, salt_buf->salt_buf, salt_buf->salt_len) == 0);
4166
4167 if (!cracked) continue;
4168
4169 // now compare MAC1 and MAC2 too, since we have this additional info
4170 char *mac1_pos = line_buf + salt_buf->salt_len + 1;
4171 char *mac2_pos = mac1_pos + 12 + 1;
4172
4173 wpa_t *wpas = (wpa_t *) data.esalts_buf;
4174 wpa_t *wpa = &wpas[salt_pos];
4175
4176 // compare hex string(s) vs binary MAC address(es)
4177
4178 for (uint i = 0, j = 0; i < 6; i++, j += 2)
4179 {
4180 if (wpa->orig_mac1[i] != hex_to_u8 ((const u8 *) &mac1_pos[j]))
4181 {
4182 cracked = 0;
4183
4184 break;
4185 }
4186 }
4187
4188 // early skip ;)
4189 if (!cracked) continue;
4190
4191 for (uint i = 0, j = 0; i < 6; i++, j += 2)
4192 {
4193 if (wpa->orig_mac2[i] != hex_to_u8 ((const u8 *) &mac2_pos[j]))
4194 {
4195 cracked = 0;
4196
4197 break;
4198 }
4199 }
4200 }
4201 }
4202 else
4203 {
4204 char *digests_buf_ptr = (char *) data.digests_buf;
4205
4206 memcpy (digest_buf, digests_buf_ptr + (data.salts_buf[salt_pos].digests_offset * dgst_size) + (digest_pos * dgst_size), dgst_size);
4207
4208 cracked = (sort_by_digest (digest_buf, hash_buf.digest) == 0);
4209 }
4210
4211 if (cracked == 1)
4212 {
4213 found = 1;
4214
4215 data.digests_shown[idx] = 1;
4216
4217 data.digests_done++;
4218
4219 salt_buf->digests_done++;
4220
4221 if (salt_buf->digests_done == salt_buf->digests_cnt)
4222 {
4223 data.salts_shown[salt_pos] = 1;
4224
4225 data.salts_done++;
4226
4227 if (data.salts_done == data.salts_cnt) data.devices_status = STATUS_CRACKED;
4228 }
4229 }
4230 }
4231
4232 if (data.devices_status == STATUS_CRACKED) break;
4233 }
4234 }
4235
4236 if (found) break;
4237
4238 if (data.devices_status == STATUS_CRACKED) break;
4239
4240 iter--;
4241 }
4242
4243 if (data.devices_status == STATUS_CRACKED) break;
4244 }
4245
4246 myfree (line_buf);
4247
4248 out_info[j].seek = ftell (fp);
4249
4250 //hc_thread_mutex_unlock (mux_display);
4251
4252 fclose (fp);
4253 }
4254 }
4255 }
4256 }
4257
4258 check_left = outfile_check_timer;
4259 }
4260 }
4261
4262 if (esalt_size) local_free (hash_buf.esalt);
4263
4264 if (isSalted) local_free (hash_buf.salt);
4265
4266 local_free (hash_buf.digest);
4267
4268 local_free (out_info);
4269
4270 local_free (out_files);
4271
4272 p = NULL;
4273
4274 return (p);
4275 }
4276
4277 static void pw_add (hc_device_param_t *device_param, const u8 *pw_buf, const int pw_len)
4278 {
4279 if (device_param->pws_cnt < device_param->kernel_power)
4280 {
4281 pw_t *pw = (pw_t *) device_param->pws_buf + device_param->pws_cnt;
4282
4283 u8 *ptr = (u8 *) pw->i;
4284
4285 memcpy (ptr, pw_buf, pw_len);
4286
4287 memset (ptr + pw_len, 0, sizeof (pw->i) - pw_len);
4288
4289 pw->pw_len = pw_len;
4290
4291 device_param->pws_cnt++;
4292 }
4293 else
4294 {
4295 fprintf (stderr, "BUG pw_add()!!\n");
4296
4297 return;
4298 }
4299 }
4300
4301 static uint get_work (hc_device_param_t *device_param, const u64 max, const bool allow_div)
4302 {
4303 hc_thread_mutex_lock (mux_dispatcher);
4304
4305 const u64 words_cur = data.words_cur;
4306 const u64 words_base = (data.limit == 0) ? data.words_base : data.limit;
4307
4308 device_param->words_off = words_cur;
4309
4310 const u64 words_left = words_base - words_cur;
4311
4312 if (allow_div)
4313 {
4314 if (data.kernel_power_all > words_left)
4315 {
4316 if (data.kernel_power_div == 0)
4317 {
4318 data.kernel_power_div = find_kernel_power_div (words_left, data.kernel_power_all);
4319 }
4320 }
4321
4322 if (data.kernel_power_div)
4323 {
4324 if (device_param->kernel_power == device_param->kernel_power_user)
4325 {
4326 const u32 kernel_power_new = (float) device_param->kernel_power * data.kernel_power_div;
4327
4328 if (kernel_power_new < device_param->kernel_power)
4329 {
4330 device_param->kernel_power = kernel_power_new;
4331 }
4332 }
4333 }
4334 }
4335
4336 const uint kernel_power = device_param->kernel_power;
4337
4338 uint work = MIN (words_left, kernel_power);
4339
4340 work = MIN (work, max);
4341
4342 data.words_cur += work;
4343
4344 hc_thread_mutex_unlock (mux_dispatcher);
4345
4346 return work;
4347 }
4348
4349 static void *thread_calc_stdin (void *p)
4350 {
4351 hc_device_param_t *device_param = (hc_device_param_t *) p;
4352
4353 if (device_param->skipped) return NULL;
4354
4355 autotune (device_param);
4356
4357 char *buf = (char *) mymalloc (HCBUFSIZ);
4358
4359 const uint attack_kern = data.attack_kern;
4360
4361 const uint kernel_power = device_param->kernel_power;
4362
4363 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
4364 {
4365 hc_thread_mutex_lock (mux_dispatcher);
4366
4367 if (feof (stdin) != 0)
4368 {
4369 hc_thread_mutex_unlock (mux_dispatcher);
4370
4371 break;
4372 }
4373
4374 uint words_cur = 0;
4375
4376 while (words_cur < kernel_power)
4377 {
4378 char *line_buf = fgets (buf, HCBUFSIZ - 1, stdin);
4379
4380 if (line_buf == NULL) break;
4381
4382 uint line_len = in_superchop (line_buf);
4383
4384 line_len = convert_from_hex (line_buf, line_len);
4385
4386 // post-process rule engine
4387
4388 if (run_rule_engine (data.rule_len_l, data.rule_buf_l))
4389 {
4390 char rule_buf_out[BLOCK_SIZE] = { 0 };
4391
4392 int rule_len_out = -1;
4393
4394 if (line_len < BLOCK_SIZE)
4395 {
4396 rule_len_out = _old_apply_rule (data.rule_buf_l, data.rule_len_l, line_buf, line_len, rule_buf_out);
4397 }
4398
4399 if (rule_len_out < 0) continue;
4400
4401 line_buf = rule_buf_out;
4402 line_len = rule_len_out;
4403 }
4404
4405 if (line_len > PW_MAX)
4406 {
4407 continue;
4408 }
4409
4410 if (attack_kern == ATTACK_KERN_STRAIGHT)
4411 {
4412 if ((line_len < data.pw_min) || (line_len > data.pw_max))
4413 {
4414 hc_thread_mutex_lock (mux_counter);
4415
4416 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
4417 {
4418 data.words_progress_rejected[salt_pos] += data.kernel_rules_cnt;
4419 }
4420
4421 hc_thread_mutex_unlock (mux_counter);
4422
4423 continue;
4424 }
4425 }
4426 else if (attack_kern == ATTACK_KERN_COMBI)
4427 {
4428 // do not check if minimum restriction is satisfied (line_len >= data.pw_min) here
4429 // since we still need to combine the plains
4430
4431 if (line_len > data.pw_max)
4432 {
4433 hc_thread_mutex_lock (mux_counter);
4434
4435 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
4436 {
4437 data.words_progress_rejected[salt_pos] += data.combs_cnt;
4438 }
4439
4440 hc_thread_mutex_unlock (mux_counter);
4441
4442 continue;
4443 }
4444 }
4445
4446 pw_add (device_param, (u8 *) line_buf, line_len);
4447
4448 words_cur++;
4449
4450 if (data.devices_status == STATUS_CRACKED) break;
4451 if (data.devices_status == STATUS_ABORTED) break;
4452 if (data.devices_status == STATUS_QUIT) break;
4453 if (data.devices_status == STATUS_BYPASS) break;
4454 }
4455
4456 hc_thread_mutex_unlock (mux_dispatcher);
4457
4458 if (data.devices_status == STATUS_CRACKED) break;
4459 if (data.devices_status == STATUS_ABORTED) break;
4460 if (data.devices_status == STATUS_QUIT) break;
4461 if (data.devices_status == STATUS_BYPASS) break;
4462
4463 // flush
4464
4465 const uint pws_cnt = device_param->pws_cnt;
4466
4467 if (pws_cnt)
4468 {
4469 run_copy (device_param, pws_cnt);
4470
4471 run_cracker (device_param, pws_cnt);
4472
4473 device_param->pws_cnt = 0;
4474
4475 if (attack_kern == ATTACK_KERN_STRAIGHT)
4476 {
4477 run_kernel_bzero (device_param, device_param->d_rules_c, device_param->size_rules_c);
4478 }
4479 else if (attack_kern == ATTACK_KERN_COMBI)
4480 {
4481 run_kernel_bzero (device_param, device_param->d_combs_c, device_param->size_combs);
4482 }
4483 }
4484 }
4485
4486 device_param->kernel_accel = 0;
4487 device_param->kernel_loops = 0;
4488
4489 myfree (buf);
4490
4491 return NULL;
4492 }
4493
4494 static void *thread_calc (void *p)
4495 {
4496 hc_device_param_t *device_param = (hc_device_param_t *) p;
4497
4498 if (device_param->skipped) return NULL;
4499
4500 autotune (device_param);
4501
4502 const uint attack_mode = data.attack_mode;
4503 const uint attack_kern = data.attack_kern;
4504
4505 if (attack_mode == ATTACK_MODE_BF)
4506 {
4507 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
4508 {
4509 const uint work = get_work (device_param, -1, true);
4510
4511 if (work == 0) break;
4512
4513 const u64 words_off = device_param->words_off;
4514 const u64 words_fin = words_off + work;
4515
4516 const uint pws_cnt = work;
4517
4518 device_param->pws_cnt = pws_cnt;
4519
4520 if (pws_cnt)
4521 {
4522 run_copy (device_param, pws_cnt);
4523
4524 run_cracker (device_param, pws_cnt);
4525
4526 device_param->pws_cnt = 0;
4527
4528 run_kernel_bzero (device_param, device_param->d_bfs_c, device_param->size_bfs);
4529 }
4530
4531 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4532
4533 if (data.devices_status == STATUS_CRACKED) break;
4534 if (data.devices_status == STATUS_ABORTED) break;
4535 if (data.devices_status == STATUS_QUIT) break;
4536 if (data.devices_status == STATUS_BYPASS) break;
4537
4538 if (data.benchmark == 1) break;
4539
4540 device_param->words_done = words_fin;
4541 }
4542 }
4543 else
4544 {
4545 const uint segment_size = data.segment_size;
4546
4547 char *dictfile = data.dictfile;
4548
4549 if (attack_mode == ATTACK_MODE_COMBI)
4550 {
4551 if (data.combs_mode == COMBINATOR_MODE_BASE_RIGHT)
4552 {
4553 dictfile = data.dictfile2;
4554 }
4555 }
4556
4557 FILE *fd = fopen (dictfile, "rb");
4558
4559 if (fd == NULL)
4560 {
4561 log_error ("ERROR: %s: %s", dictfile, strerror (errno));
4562
4563 return NULL;
4564 }
4565
4566 if (attack_mode == ATTACK_MODE_COMBI)
4567 {
4568 const uint combs_mode = data.combs_mode;
4569
4570 if (combs_mode == COMBINATOR_MODE_BASE_LEFT)
4571 {
4572 const char *dictfilec = data.dictfile2;
4573
4574 FILE *combs_fp = fopen (dictfilec, "rb");
4575
4576 if (combs_fp == NULL)
4577 {
4578 log_error ("ERROR: %s: %s", dictfilec, strerror (errno));
4579
4580 fclose (fd);
4581
4582 return NULL;
4583 }
4584
4585 device_param->combs_fp = combs_fp;
4586 }
4587 else if (combs_mode == COMBINATOR_MODE_BASE_RIGHT)
4588 {
4589 const char *dictfilec = data.dictfile;
4590
4591 FILE *combs_fp = fopen (dictfilec, "rb");
4592
4593 if (combs_fp == NULL)
4594 {
4595 log_error ("ERROR: %s: %s", dictfilec, strerror (errno));
4596
4597 fclose (fd);
4598
4599 return NULL;
4600 }
4601
4602 device_param->combs_fp = combs_fp;
4603 }
4604 }
4605
4606 wl_data_t *wl_data = (wl_data_t *) mymalloc (sizeof (wl_data_t));
4607
4608 wl_data->buf = (char *) mymalloc (segment_size);
4609 wl_data->avail = segment_size;
4610 wl_data->incr = segment_size;
4611 wl_data->cnt = 0;
4612 wl_data->pos = 0;
4613
4614 u64 words_cur = 0;
4615
4616 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
4617 {
4618 u64 words_off = 0;
4619 u64 words_fin = 0;
4620
4621 bool allow_div = true;
4622
4623 u64 max = -1;
4624
4625 while (max)
4626 {
4627 const uint work = get_work (device_param, max, allow_div);
4628
4629 allow_div = false;
4630
4631 if (work == 0) break;
4632
4633 words_off = device_param->words_off;
4634 words_fin = words_off + work;
4635
4636 char *line_buf;
4637 uint line_len;
4638
4639 for ( ; words_cur < words_off; words_cur++) get_next_word (wl_data, fd, &line_buf, &line_len);
4640
4641 max = 0;
4642
4643 for ( ; words_cur < words_fin; words_cur++)
4644 {
4645 get_next_word (wl_data, fd, &line_buf, &line_len);
4646
4647 line_len = convert_from_hex (line_buf, line_len);
4648
4649 // post-process rule engine
4650
4651 if (run_rule_engine (data.rule_len_l, data.rule_buf_l))
4652 {
4653 char rule_buf_out[BLOCK_SIZE] = { 0 };
4654
4655 int rule_len_out = -1;
4656
4657 if (line_len < BLOCK_SIZE)
4658 {
4659 rule_len_out = _old_apply_rule (data.rule_buf_l, data.rule_len_l, line_buf, line_len, rule_buf_out);
4660 }
4661
4662 if (rule_len_out < 0) continue;
4663
4664 line_buf = rule_buf_out;
4665 line_len = rule_len_out;
4666 }
4667
4668 if (attack_kern == ATTACK_KERN_STRAIGHT)
4669 {
4670 if ((line_len < data.pw_min) || (line_len > data.pw_max))
4671 {
4672 max++;
4673
4674 hc_thread_mutex_lock (mux_counter);
4675
4676 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
4677 {
4678 data.words_progress_rejected[salt_pos] += data.kernel_rules_cnt;
4679 }
4680
4681 hc_thread_mutex_unlock (mux_counter);
4682
4683 continue;
4684 }
4685 }
4686 else if (attack_kern == ATTACK_KERN_COMBI)
4687 {
4688 // do not check if minimum restriction is satisfied (line_len >= data.pw_min) here
4689 // since we still need to combine the plains
4690
4691 if (line_len > data.pw_max)
4692 {
4693 max++;
4694
4695 hc_thread_mutex_lock (mux_counter);
4696
4697 for (uint salt_pos = 0; salt_pos < data.salts_cnt; salt_pos++)
4698 {
4699 data.words_progress_rejected[salt_pos] += data.combs_cnt;
4700 }
4701
4702 hc_thread_mutex_unlock (mux_counter);
4703
4704 continue;
4705 }
4706 }
4707
4708 pw_add (device_param, (u8 *) line_buf, line_len);
4709
4710 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4711
4712 if (data.devices_status == STATUS_CRACKED) break;
4713 if (data.devices_status == STATUS_ABORTED) break;
4714 if (data.devices_status == STATUS_QUIT) break;
4715 if (data.devices_status == STATUS_BYPASS) break;
4716 }
4717
4718 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4719
4720 if (data.devices_status == STATUS_CRACKED) break;
4721 if (data.devices_status == STATUS_ABORTED) break;
4722 if (data.devices_status == STATUS_QUIT) break;
4723 if (data.devices_status == STATUS_BYPASS) break;
4724 }
4725
4726 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4727
4728 if (data.devices_status == STATUS_CRACKED) break;
4729 if (data.devices_status == STATUS_ABORTED) break;
4730 if (data.devices_status == STATUS_QUIT) break;
4731 if (data.devices_status == STATUS_BYPASS) break;
4732
4733 //
4734 // flush
4735 //
4736
4737 const uint pws_cnt = device_param->pws_cnt;
4738
4739 if (pws_cnt)
4740 {
4741 run_copy (device_param, pws_cnt);
4742
4743 run_cracker (device_param, pws_cnt);
4744
4745 device_param->pws_cnt = 0;
4746
4747 if (attack_kern == ATTACK_KERN_STRAIGHT)
4748 {
4749 run_kernel_bzero (device_param, device_param->d_rules_c, device_param->size_rules_c);
4750 }
4751 else if (attack_kern == ATTACK_KERN_COMBI)
4752 {
4753 run_kernel_bzero (device_param, device_param->d_combs_c, device_param->size_combs);
4754 }
4755 }
4756
4757 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
4758
4759 if (data.devices_status == STATUS_CRACKED) break;
4760 if (data.devices_status == STATUS_ABORTED) break;
4761 if (data.devices_status == STATUS_QUIT) break;
4762 if (data.devices_status == STATUS_BYPASS) break;
4763
4764 if (words_fin == 0) break;
4765
4766 device_param->words_done = words_fin;
4767 }
4768
4769 if (attack_mode == ATTACK_MODE_COMBI)
4770 {
4771 fclose (device_param->combs_fp);
4772 }
4773
4774 free (wl_data->buf);
4775 free (wl_data);
4776
4777 fclose (fd);
4778 }
4779
4780 device_param->kernel_accel = 0;
4781 device_param->kernel_loops = 0;
4782
4783 return NULL;
4784 }
4785
4786 static void weak_hash_check (hc_device_param_t *device_param, const uint salt_pos)
4787 {
4788 if (!device_param)
4789 {
4790 log_error ("ERROR: %s : Invalid argument", __func__);
4791
4792 exit (-1);
4793 }
4794
4795 salt_t *salt_buf = &data.salts_buf[salt_pos];
4796
4797 device_param->kernel_params_buf32[24] = salt_pos;
4798 device_param->kernel_params_buf32[27] = 1;
4799 device_param->kernel_params_buf32[28] = salt_buf->digests_cnt;
4800 device_param->kernel_params_buf32[29] = salt_buf->digests_offset;
4801 device_param->kernel_params_buf32[30] = 0;
4802 device_param->kernel_params_buf32[31] = 1;
4803
4804 char *dictfile_old = data.dictfile;
4805
4806 const char *weak_hash_check = "weak-hash-check";
4807
4808 data.dictfile = (char *) weak_hash_check;
4809
4810 uint cmd0_rule_old = data.kernel_rules_buf[0].cmds[0];
4811
4812 data.kernel_rules_buf[0].cmds[0] = 0;
4813
4814 /**
4815 * run the kernel
4816 */
4817
4818 if (data.attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
4819 {
4820 run_kernel (KERN_RUN_1, device_param, 1, false);
4821 }
4822 else
4823 {
4824 run_kernel (KERN_RUN_1, device_param, 1, false);
4825
4826 uint loop_step = 16;
4827
4828 const uint iter = salt_buf->salt_iter;
4829
4830 for (uint loop_pos = 0; loop_pos < iter; loop_pos += loop_step)
4831 {
4832 uint loop_left = iter - loop_pos;
4833
4834 loop_left = MIN (loop_left, loop_step);
4835
4836 device_param->kernel_params_buf32[25] = loop_pos;
4837 device_param->kernel_params_buf32[26] = loop_left;
4838
4839 run_kernel (KERN_RUN_2, device_param, 1, false);
4840 }
4841
4842 run_kernel (KERN_RUN_3, device_param, 1, false);
4843 }
4844
4845 /**
4846 * result
4847 */
4848
4849 check_cracked (device_param, salt_pos);
4850
4851 /**
4852 * cleanup
4853 */
4854
4855 device_param->kernel_params_buf32[24] = 0;
4856 device_param->kernel_params_buf32[25] = 0;
4857 device_param->kernel_params_buf32[26] = 0;
4858 device_param->kernel_params_buf32[27] = 0;
4859 device_param->kernel_params_buf32[28] = 0;
4860 device_param->kernel_params_buf32[29] = 0;
4861 device_param->kernel_params_buf32[30] = 0;
4862 device_param->kernel_params_buf32[31] = 0;
4863
4864 data.dictfile = dictfile_old;
4865
4866 data.kernel_rules_buf[0].cmds[0] = cmd0_rule_old;
4867 }
4868
4869 // hlfmt hashcat
4870
4871 static void hlfmt_hash_hashcat (char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
4872 {
4873 if (data.username == 0)
4874 {
4875 *hashbuf_pos = line_buf;
4876 *hashbuf_len = line_len;
4877 }
4878 else
4879 {
4880 char *pos = line_buf;
4881 int len = line_len;
4882
4883 for (int i = 0; i < line_len; i++, pos++, len--)
4884 {
4885 if (line_buf[i] == data.separator)
4886 {
4887 pos++;
4888
4889 len--;
4890
4891 break;
4892 }
4893 }
4894
4895 *hashbuf_pos = pos;
4896 *hashbuf_len = len;
4897 }
4898 }
4899
4900 static void hlfmt_user_hashcat (char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
4901 {
4902 char *pos = NULL;
4903 int len = 0;
4904
4905 int sep_cnt = 0;
4906
4907 for (int i = 0; i < line_len; i++)
4908 {
4909 if (line_buf[i] == data.separator)
4910 {
4911 sep_cnt++;
4912
4913 continue;
4914 }
4915
4916 if (sep_cnt == 0)
4917 {
4918 if (pos == NULL) pos = line_buf + i;
4919
4920 len++;
4921 }
4922 }
4923
4924 *userbuf_pos = pos;
4925 *userbuf_len = len;
4926 }
4927
4928 // hlfmt pwdump
4929
4930 static int hlfmt_detect_pwdump (char *line_buf, int line_len)
4931 {
4932 int sep_cnt = 0;
4933
4934 int sep2_len = 0;
4935 int sep3_len = 0;
4936
4937 for (int i = 0; i < line_len; i++)
4938 {
4939 if (line_buf[i] == ':')
4940 {
4941 sep_cnt++;
4942
4943 continue;
4944 }
4945
4946 if (sep_cnt == 2) sep2_len++;
4947 if (sep_cnt == 3) sep3_len++;
4948 }
4949
4950 if ((sep_cnt == 6) && ((sep2_len == 32) || (sep3_len == 32))) return 1;
4951
4952 return 0;
4953 }
4954
4955 static void hlfmt_hash_pwdump (char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
4956 {
4957 char *pos = NULL;
4958 int len = 0;
4959
4960 int sep_cnt = 0;
4961
4962 for (int i = 0; i < line_len; i++)
4963 {
4964 if (line_buf[i] == ':')
4965 {
4966 sep_cnt++;
4967
4968 continue;
4969 }
4970
4971 if (data.hash_mode == 1000)
4972 {
4973 if (sep_cnt == 3)
4974 {
4975 if (pos == NULL) pos = line_buf + i;
4976
4977 len++;
4978 }
4979 }
4980 else if (data.hash_mode == 3000)
4981 {
4982 if (sep_cnt == 2)
4983 {
4984 if (pos == NULL) pos = line_buf + i;
4985
4986 len++;
4987 }
4988 }
4989 }
4990
4991 *hashbuf_pos = pos;
4992 *hashbuf_len = len;
4993 }
4994
4995 static void hlfmt_user_pwdump (char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
4996 {
4997 char *pos = NULL;
4998 int len = 0;
4999
5000 int sep_cnt = 0;
5001
5002 for (int i = 0; i < line_len; i++)
5003 {
5004 if (line_buf[i] == ':')
5005 {
5006 sep_cnt++;
5007
5008 continue;
5009 }
5010
5011 if (sep_cnt == 0)
5012 {
5013 if (pos == NULL) pos = line_buf + i;
5014
5015 len++;
5016 }
5017 }
5018
5019 *userbuf_pos = pos;
5020 *userbuf_len = len;
5021 }
5022
5023 // hlfmt passwd
5024
5025 static int hlfmt_detect_passwd (char *line_buf, int line_len)
5026 {
5027 int sep_cnt = 0;
5028
5029 char sep5_first = 0;
5030 char sep6_first = 0;
5031
5032 for (int i = 0; i < line_len; i++)
5033 {
5034 if (line_buf[i] == ':')
5035 {
5036 sep_cnt++;
5037
5038 continue;
5039 }
5040
5041 if (sep_cnt == 5) if (sep5_first == 0) sep5_first = line_buf[i];
5042 if (sep_cnt == 6) if (sep6_first == 0) sep6_first = line_buf[i];
5043 }
5044
5045 if ((sep_cnt == 6) && ((sep5_first == '/') || (sep6_first == '/'))) return 1;
5046
5047 return 0;
5048 }
5049
5050 static void hlfmt_hash_passwd (char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
5051 {
5052 char *pos = NULL;
5053 int len = 0;
5054
5055 int sep_cnt = 0;
5056
5057 for (int i = 0; i < line_len; i++)
5058 {
5059 if (line_buf[i] == ':')
5060 {
5061 sep_cnt++;
5062
5063 continue;
5064 }
5065
5066 if (sep_cnt == 1)
5067 {
5068 if (pos == NULL) pos = line_buf + i;
5069
5070 len++;
5071 }
5072 }
5073
5074 *hashbuf_pos = pos;
5075 *hashbuf_len = len;
5076 }
5077
5078 static void hlfmt_user_passwd (char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
5079 {
5080 char *pos = NULL;
5081 int len = 0;
5082
5083 int sep_cnt = 0;
5084
5085 for (int i = 0; i < line_len; i++)
5086 {
5087 if (line_buf[i] == ':')
5088 {
5089 sep_cnt++;
5090
5091 continue;
5092 }
5093
5094 if (sep_cnt == 0)
5095 {
5096 if (pos == NULL) pos = line_buf + i;
5097
5098 len++;
5099 }
5100 }
5101
5102 *userbuf_pos = pos;
5103 *userbuf_len = len;
5104 }
5105
5106 // hlfmt shadow
5107
5108 static int hlfmt_detect_shadow (char *line_buf, int line_len)
5109 {
5110 int sep_cnt = 0;
5111
5112 for (int i = 0; i < line_len; i++)
5113 {
5114 if (line_buf[i] == ':') sep_cnt++;
5115 }
5116
5117 if (sep_cnt == 8) return 1;
5118
5119 return 0;
5120 }
5121
5122 static void hlfmt_hash_shadow (char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
5123 {
5124 hlfmt_hash_passwd (line_buf, line_len, hashbuf_pos, hashbuf_len);
5125 }
5126
5127 static void hlfmt_user_shadow (char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
5128 {
5129 hlfmt_user_passwd (line_buf, line_len, userbuf_pos, userbuf_len);
5130 }
5131
5132 // hlfmt main
5133
5134 static void hlfmt_hash (uint hashfile_format, char *line_buf, int line_len, char **hashbuf_pos, int *hashbuf_len)
5135 {
5136 switch (hashfile_format)
5137 {
5138 case HLFMT_HASHCAT: hlfmt_hash_hashcat (line_buf, line_len, hashbuf_pos, hashbuf_len); break;
5139 case HLFMT_PWDUMP: hlfmt_hash_pwdump (line_buf, line_len, hashbuf_pos, hashbuf_len); break;
5140 case HLFMT_PASSWD: hlfmt_hash_passwd (line_buf, line_len, hashbuf_pos, hashbuf_len); break;
5141 case HLFMT_SHADOW: hlfmt_hash_shadow (line_buf, line_len, hashbuf_pos, hashbuf_len); break;
5142 }
5143 }
5144
5145 static void hlfmt_user (uint hashfile_format, char *line_buf, int line_len, char **userbuf_pos, int *userbuf_len)
5146 {
5147 switch (hashfile_format)
5148 {
5149 case HLFMT_HASHCAT: hlfmt_user_hashcat (line_buf, line_len, userbuf_pos, userbuf_len); break;
5150 case HLFMT_PWDUMP: hlfmt_user_pwdump (line_buf, line_len, userbuf_pos, userbuf_len); break;
5151 case HLFMT_PASSWD: hlfmt_user_passwd (line_buf, line_len, userbuf_pos, userbuf_len); break;
5152 case HLFMT_SHADOW: hlfmt_user_shadow (line_buf, line_len, userbuf_pos, userbuf_len); break;
5153 }
5154 }
5155
5156 char *strhlfmt (const uint hashfile_format)
5157 {
5158 switch (hashfile_format)
5159 {
5160 case HLFMT_HASHCAT: return ((char *) HLFMT_TEXT_HASHCAT); break;
5161 case HLFMT_PWDUMP: return ((char *) HLFMT_TEXT_PWDUMP); break;
5162 case HLFMT_PASSWD: return ((char *) HLFMT_TEXT_PASSWD); break;
5163 case HLFMT_SHADOW: return ((char *) HLFMT_TEXT_SHADOW); break;
5164 case HLFMT_DCC: return ((char *) HLFMT_TEXT_DCC); break;
5165 case HLFMT_DCC2: return ((char *) HLFMT_TEXT_DCC2); break;
5166 case HLFMT_NETNTLM1: return ((char *) HLFMT_TEXT_NETNTLM1); break;
5167 case HLFMT_NETNTLM2: return ((char *) HLFMT_TEXT_NETNTLM2); break;
5168 case HLFMT_NSLDAP: return ((char *) HLFMT_TEXT_NSLDAP); break;
5169 case HLFMT_NSLDAPS: return ((char *) HLFMT_TEXT_NSLDAPS); break;
5170 }
5171
5172 return ((char *) "Unknown");
5173 }
5174
5175 static uint hlfmt_detect (FILE *fp, uint max_check)
5176 {
5177 // Exception: those formats are wrongly detected as HLFMT_SHADOW, prevent it
5178
5179 if (data.hash_mode == 5300) return HLFMT_HASHCAT;
5180 if (data.hash_mode == 5400) return HLFMT_HASHCAT;
5181
5182 uint *formats_cnt = (uint *) mycalloc (HLFMTS_CNT, sizeof (uint));
5183
5184 uint num_check = 0;
5185
5186 char *line_buf = (char *) mymalloc (HCBUFSIZ);
5187
5188 while (!feof (fp))
5189 {
5190 int line_len = fgetl (fp, line_buf);
5191
5192 if (line_len == 0) continue;
5193
5194 if (hlfmt_detect_pwdump (line_buf, line_len)) formats_cnt[HLFMT_PWDUMP]++;
5195 if (hlfmt_detect_passwd (line_buf, line_len)) formats_cnt[HLFMT_PASSWD]++;
5196 if (hlfmt_detect_shadow (line_buf, line_len)) formats_cnt[HLFMT_SHADOW]++;
5197
5198 if (num_check == max_check) break;
5199
5200 num_check++;
5201 }
5202
5203 myfree (line_buf);
5204
5205 uint hashlist_format = HLFMT_HASHCAT;
5206
5207 for (int i = 1; i < HLFMTS_CNT; i++)
5208 {
5209 if (formats_cnt[i - 1] >= formats_cnt[i]) continue;
5210
5211 hashlist_format = i;
5212 }
5213
5214 free (formats_cnt);
5215
5216 return hashlist_format;
5217 }
5218
5219 /**
5220 * some further helper function
5221 */
5222
5223 // wrapper around mymalloc for ADL
5224
5225 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
5226 void *__stdcall ADL_Main_Memory_Alloc (const int iSize)
5227 {
5228 return mymalloc (iSize);
5229 }
5230 #endif
5231
5232 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)
5233 {
5234 u64 collisions = 0;
5235
5236 const uint dgst_pos0 = data.dgst_pos0;
5237 const uint dgst_pos1 = data.dgst_pos1;
5238 const uint dgst_pos2 = data.dgst_pos2;
5239 const uint dgst_pos3 = data.dgst_pos3;
5240
5241 memset (bitmap_a, 0, bitmap_size);
5242 memset (bitmap_b, 0, bitmap_size);
5243 memset (bitmap_c, 0, bitmap_size);
5244 memset (bitmap_d, 0, bitmap_size);
5245
5246 for (uint i = 0; i < digests_cnt; i++)
5247 {
5248 uint *digest_ptr = (uint *) digests_buf_ptr;
5249
5250 digests_buf_ptr += dgst_size;
5251
5252 const uint val0 = 1u << (digest_ptr[dgst_pos0] & 0x1f);
5253 const uint val1 = 1u << (digest_ptr[dgst_pos1] & 0x1f);
5254 const uint val2 = 1u << (digest_ptr[dgst_pos2] & 0x1f);
5255 const uint val3 = 1u << (digest_ptr[dgst_pos3] & 0x1f);
5256
5257 const uint idx0 = (digest_ptr[dgst_pos0] >> dgst_shifts) & bitmap_mask;
5258 const uint idx1 = (digest_ptr[dgst_pos1] >> dgst_shifts) & bitmap_mask;
5259 const uint idx2 = (digest_ptr[dgst_pos2] >> dgst_shifts) & bitmap_mask;
5260 const uint idx3 = (digest_ptr[dgst_pos3] >> dgst_shifts) & bitmap_mask;
5261
5262 if (bitmap_a[idx0] & val0) collisions++;
5263 if (bitmap_b[idx1] & val1) collisions++;
5264 if (bitmap_c[idx2] & val2) collisions++;
5265 if (bitmap_d[idx3] & val3) collisions++;
5266
5267 bitmap_a[idx0] |= val0;
5268 bitmap_b[idx1] |= val1;
5269 bitmap_c[idx2] |= val2;
5270 bitmap_d[idx3] |= val3;
5271
5272 if (collisions >= collisions_max) return 0x7fffffff;
5273 }
5274
5275 return collisions;
5276 }
5277
5278 /**
5279 * main
5280 */
5281
5282 int main (int argc, char **argv)
5283 {
5284 /**
5285 * To help users a bit
5286 */
5287
5288 char *compute = getenv ("COMPUTE");
5289
5290 if (compute)
5291 {
5292 static char display[100];
5293
5294 snprintf (display, sizeof (display) - 1, "DISPLAY=%s", compute);
5295
5296 putenv (display);
5297 }
5298 else
5299 {
5300 if (getenv ("DISPLAY") == NULL)
5301 putenv ((char *) "DISPLAY=:0");
5302 }
5303
5304 if (getenv ("GPU_MAX_ALLOC_PERCENT") == NULL)
5305 putenv ((char *) "GPU_MAX_ALLOC_PERCENT=100");
5306
5307 if (getenv ("CPU_MAX_ALLOC_PERCENT") == NULL)
5308 putenv ((char *) "CPU_MAX_ALLOC_PERCENT=100");
5309
5310 if (getenv ("GPU_USE_SYNC_OBJECTS") == NULL)
5311 putenv ((char *) "GPU_USE_SYNC_OBJECTS=1");
5312
5313 if (getenv ("CUDA_CACHE_DISABLE") == NULL)
5314 putenv ((char *) "CUDA_CACHE_DISABLE=1");
5315
5316 /**
5317 * Real init
5318 */
5319
5320 memset (&data, 0, sizeof (hc_global_data_t));
5321
5322 time_t proc_start;
5323
5324 time (&proc_start);
5325
5326 data.proc_start = proc_start;
5327
5328 int myargc = argc;
5329 char **myargv = argv;
5330
5331 hc_thread_mutex_init (mux_dispatcher);
5332 hc_thread_mutex_init (mux_counter);
5333 hc_thread_mutex_init (mux_display);
5334 hc_thread_mutex_init (mux_adl);
5335
5336 /**
5337 * commandline parameters
5338 */
5339
5340 uint usage = USAGE;
5341 uint version = VERSION;
5342 uint quiet = QUIET;
5343 uint benchmark = BENCHMARK;
5344 uint benchmark_repeats = BENCHMARK_REPEATS;
5345 uint show = SHOW;
5346 uint left = LEFT;
5347 uint username = USERNAME;
5348 uint remove = REMOVE;
5349 uint remove_timer = REMOVE_TIMER;
5350 u64 skip = SKIP;
5351 u64 limit = LIMIT;
5352 uint keyspace = KEYSPACE;
5353 uint potfile_disable = POTFILE_DISABLE;
5354 char *potfile_path = NULL;
5355 uint debug_mode = DEBUG_MODE;
5356 char *debug_file = NULL;
5357 char *induction_dir = NULL;
5358 char *outfile_check_dir = NULL;
5359 uint force = FORCE;
5360 uint runtime = RUNTIME;
5361 uint hash_mode = HASH_MODE;
5362 uint attack_mode = ATTACK_MODE;
5363 uint markov_disable = MARKOV_DISABLE;
5364 uint markov_classic = MARKOV_CLASSIC;
5365 uint markov_threshold = MARKOV_THRESHOLD;
5366 char *markov_hcstat = NULL;
5367 char *outfile = NULL;
5368 uint outfile_format = OUTFILE_FORMAT;
5369 uint outfile_autohex = OUTFILE_AUTOHEX;
5370 uint outfile_check_timer = OUTFILE_CHECK_TIMER;
5371 uint restore = RESTORE;
5372 uint restore_timer = RESTORE_TIMER;
5373 uint restore_disable = RESTORE_DISABLE;
5374 uint status = STATUS;
5375 uint status_timer = STATUS_TIMER;
5376 uint status_automat = STATUS_AUTOMAT;
5377 uint loopback = LOOPBACK;
5378 uint weak_hash_threshold = WEAK_HASH_THRESHOLD;
5379 char *session = NULL;
5380 uint hex_charset = HEX_CHARSET;
5381 uint hex_salt = HEX_SALT;
5382 uint hex_wordlist = HEX_WORDLIST;
5383 uint rp_gen = RP_GEN;
5384 uint rp_gen_func_min = RP_GEN_FUNC_MIN;
5385 uint rp_gen_func_max = RP_GEN_FUNC_MAX;
5386 uint rp_gen_seed = RP_GEN_SEED;
5387 char *rule_buf_l = (char *) RULE_BUF_L;
5388 char *rule_buf_r = (char *) RULE_BUF_R;
5389 uint increment = INCREMENT;
5390 uint increment_min = INCREMENT_MIN;
5391 uint increment_max = INCREMENT_MAX;
5392 char *cpu_affinity = NULL;
5393 OCL_PTR *ocl = NULL;
5394 char *opencl_devices = NULL;
5395 char *opencl_platforms = NULL;
5396 char *opencl_device_types = NULL;
5397 uint opencl_vector_width = OPENCL_VECTOR_WIDTH;
5398 char *truecrypt_keyfiles = NULL;
5399 uint workload_profile = WORKLOAD_PROFILE;
5400 uint kernel_accel = KERNEL_ACCEL;
5401 uint kernel_loops = KERNEL_LOOPS;
5402 uint gpu_temp_disable = GPU_TEMP_DISABLE;
5403 #ifdef HAVE_HWMON
5404 uint gpu_temp_abort = GPU_TEMP_ABORT;
5405 uint gpu_temp_retain = GPU_TEMP_RETAIN;
5406 #ifdef HAVE_ADL
5407 uint powertune_enable = POWERTUNE_ENABLE;
5408 #endif
5409 #endif
5410 uint logfile_disable = LOGFILE_DISABLE;
5411 uint segment_size = SEGMENT_SIZE;
5412 uint scrypt_tmto = SCRYPT_TMTO;
5413 char separator = SEPARATOR;
5414 uint bitmap_min = BITMAP_MIN;
5415 uint bitmap_max = BITMAP_MAX;
5416 char *custom_charset_1 = NULL;
5417 char *custom_charset_2 = NULL;
5418 char *custom_charset_3 = NULL;
5419 char *custom_charset_4 = NULL;
5420
5421 #define IDX_HELP 'h'
5422 #define IDX_VERSION 'V'
5423 #define IDX_VERSION_LOWER 'v'
5424 #define IDX_QUIET 0xff02
5425 #define IDX_SHOW 0xff03
5426 #define IDX_LEFT 0xff04
5427 #define IDX_REMOVE 0xff05
5428 #define IDX_REMOVE_TIMER 0xff37
5429 #define IDX_SKIP 's'
5430 #define IDX_LIMIT 'l'
5431 #define IDX_KEYSPACE 0xff35
5432 #define IDX_POTFILE_DISABLE 0xff06
5433 #define IDX_POTFILE_PATH 0xffe0
5434 #define IDX_DEBUG_MODE 0xff43
5435 #define IDX_DEBUG_FILE 0xff44
5436 #define IDX_INDUCTION_DIR 0xff46
5437 #define IDX_OUTFILE_CHECK_DIR 0xff47
5438 #define IDX_USERNAME 0xff07
5439 #define IDX_FORCE 0xff08
5440 #define IDX_RUNTIME 0xff09
5441 #define IDX_BENCHMARK 'b'
5442 #define IDX_BENCHMARK_REPEATS 0xff78
5443 #define IDX_HASH_MODE 'm'
5444 #define IDX_ATTACK_MODE 'a'
5445 #define IDX_RP_FILE 'r'
5446 #define IDX_RP_GEN 'g'
5447 #define IDX_RP_GEN_FUNC_MIN 0xff10
5448 #define IDX_RP_GEN_FUNC_MAX 0xff11
5449 #define IDX_RP_GEN_SEED 0xff34
5450 #define IDX_RULE_BUF_L 'j'
5451 #define IDX_RULE_BUF_R 'k'
5452 #define IDX_INCREMENT 'i'
5453 #define IDX_INCREMENT_MIN 0xff12
5454 #define IDX_INCREMENT_MAX 0xff13
5455 #define IDX_OUTFILE 'o'
5456 #define IDX_OUTFILE_FORMAT 0xff14
5457 #define IDX_OUTFILE_AUTOHEX_DISABLE 0xff39
5458 #define IDX_OUTFILE_CHECK_TIMER 0xff45
5459 #define IDX_RESTORE 0xff15
5460 #define IDX_RESTORE_DISABLE 0xff27
5461 #define IDX_STATUS 0xff17
5462 #define IDX_STATUS_TIMER 0xff18
5463 #define IDX_STATUS_AUTOMAT 0xff50
5464 #define IDX_LOOPBACK 0xff38
5465 #define IDX_WEAK_HASH_THRESHOLD 0xff42
5466 #define IDX_SESSION 0xff19
5467 #define IDX_HEX_CHARSET 0xff20
5468 #define IDX_HEX_SALT 0xff21
5469 #define IDX_HEX_WORDLIST 0xff40
5470 #define IDX_MARKOV_DISABLE 0xff22
5471 #define IDX_MARKOV_CLASSIC 0xff23
5472 #define IDX_MARKOV_THRESHOLD 't'
5473 #define IDX_MARKOV_HCSTAT 0xff24
5474 #define IDX_CPU_AFFINITY 0xff25
5475 #define IDX_OPENCL_DEVICES 'd'
5476 #define IDX_OPENCL_PLATFORMS 0xff72
5477 #define IDX_OPENCL_DEVICE_TYPES 0xff73
5478 #define IDX_OPENCL_VECTOR_WIDTH 0xff74
5479 #define IDX_WORKLOAD_PROFILE 'w'
5480 #define IDX_KERNEL_ACCEL 'n'
5481 #define IDX_KERNEL_LOOPS 'u'
5482 #define IDX_GPU_TEMP_DISABLE 0xff29
5483 #define IDX_GPU_TEMP_ABORT 0xff30
5484 #define IDX_GPU_TEMP_RETAIN 0xff31
5485 #define IDX_POWERTUNE_ENABLE 0xff41
5486 #define IDX_LOGFILE_DISABLE 0xff51
5487 #define IDX_TRUECRYPT_KEYFILES 0xff52
5488 #define IDX_SCRYPT_TMTO 0xff61
5489 #define IDX_SEGMENT_SIZE 'c'
5490 #define IDX_SEPARATOR 'p'
5491 #define IDX_BITMAP_MIN 0xff70
5492 #define IDX_BITMAP_MAX 0xff71
5493 #define IDX_CUSTOM_CHARSET_1 '1'
5494 #define IDX_CUSTOM_CHARSET_2 '2'
5495 #define IDX_CUSTOM_CHARSET_3 '3'
5496 #define IDX_CUSTOM_CHARSET_4 '4'
5497
5498 char short_options[] = "hVvm:a:r:j:k:g:o:t:d:n:u:c:p:s:l:1:2:3:4:ibw:";
5499
5500 struct option long_options[] =
5501 {
5502 {"help", no_argument, 0, IDX_HELP},
5503 {"version", no_argument, 0, IDX_VERSION},
5504 {"quiet", no_argument, 0, IDX_QUIET},
5505 {"show", no_argument, 0, IDX_SHOW},
5506 {"left", no_argument, 0, IDX_LEFT},
5507 {"username", no_argument, 0, IDX_USERNAME},
5508 {"remove", no_argument, 0, IDX_REMOVE},
5509 {"remove-timer", required_argument, 0, IDX_REMOVE_TIMER},
5510 {"skip", required_argument, 0, IDX_SKIP},
5511 {"limit", required_argument, 0, IDX_LIMIT},
5512 {"keyspace", no_argument, 0, IDX_KEYSPACE},
5513 {"potfile-disable", no_argument, 0, IDX_POTFILE_DISABLE},
5514 {"potfile-path", required_argument, 0, IDX_POTFILE_PATH},
5515 {"debug-mode", required_argument, 0, IDX_DEBUG_MODE},
5516 {"debug-file", required_argument, 0, IDX_DEBUG_FILE},
5517 {"induction-dir", required_argument, 0, IDX_INDUCTION_DIR},
5518 {"outfile-check-dir", required_argument, 0, IDX_OUTFILE_CHECK_DIR},
5519 {"force", no_argument, 0, IDX_FORCE},
5520 {"benchmark", no_argument, 0, IDX_BENCHMARK},
5521 {"benchmark-repeats", required_argument, 0, IDX_BENCHMARK_REPEATS},
5522 {"restore", no_argument, 0, IDX_RESTORE},
5523 {"restore-disable", no_argument, 0, IDX_RESTORE_DISABLE},
5524 {"status", no_argument, 0, IDX_STATUS},
5525 {"status-timer", required_argument, 0, IDX_STATUS_TIMER},
5526 {"status-automat", no_argument, 0, IDX_STATUS_AUTOMAT},
5527 {"loopback", no_argument, 0, IDX_LOOPBACK},
5528 {"weak-hash-threshold",
5529 required_argument, 0, IDX_WEAK_HASH_THRESHOLD},
5530 {"session", required_argument, 0, IDX_SESSION},
5531 {"runtime", required_argument, 0, IDX_RUNTIME},
5532 {"generate-rules", required_argument, 0, IDX_RP_GEN},
5533 {"generate-rules-func-min",
5534 required_argument, 0, IDX_RP_GEN_FUNC_MIN},
5535 {"generate-rules-func-max",
5536 required_argument, 0, IDX_RP_GEN_FUNC_MAX},
5537 {"generate-rules-seed",
5538 required_argument, 0, IDX_RP_GEN_SEED},
5539 {"rule-left", required_argument, 0, IDX_RULE_BUF_L},
5540 {"rule-right", required_argument, 0, IDX_RULE_BUF_R},
5541 {"hash-type", required_argument, 0, IDX_HASH_MODE},
5542 {"attack-mode", required_argument, 0, IDX_ATTACK_MODE},
5543 {"rules-file", required_argument, 0, IDX_RP_FILE},
5544 {"outfile", required_argument, 0, IDX_OUTFILE},
5545 {"outfile-format", required_argument, 0, IDX_OUTFILE_FORMAT},
5546 {"outfile-autohex-disable",
5547 no_argument, 0, IDX_OUTFILE_AUTOHEX_DISABLE},
5548 {"outfile-check-timer",
5549 required_argument, 0, IDX_OUTFILE_CHECK_TIMER},
5550 {"hex-charset", no_argument, 0, IDX_HEX_CHARSET},
5551 {"hex-salt", no_argument, 0, IDX_HEX_SALT},
5552 {"hex-wordlist", no_argument, 0, IDX_HEX_WORDLIST},
5553 {"markov-disable", no_argument, 0, IDX_MARKOV_DISABLE},
5554 {"markov-classic", no_argument, 0, IDX_MARKOV_CLASSIC},
5555 {"markov-threshold", required_argument, 0, IDX_MARKOV_THRESHOLD},
5556 {"markov-hcstat", required_argument, 0, IDX_MARKOV_HCSTAT},
5557 {"cpu-affinity", required_argument, 0, IDX_CPU_AFFINITY},
5558 {"opencl-devices", required_argument, 0, IDX_OPENCL_DEVICES},
5559 {"opencl-platforms", required_argument, 0, IDX_OPENCL_PLATFORMS},
5560 {"opencl-device-types", required_argument, 0, IDX_OPENCL_DEVICE_TYPES},
5561 {"opencl-vector-width", required_argument, 0, IDX_OPENCL_VECTOR_WIDTH},
5562 {"workload-profile", required_argument, 0, IDX_WORKLOAD_PROFILE},
5563 {"kernel-accel", required_argument, 0, IDX_KERNEL_ACCEL},
5564 {"kernel-loops", required_argument, 0, IDX_KERNEL_LOOPS},
5565 {"gpu-temp-disable", no_argument, 0, IDX_GPU_TEMP_DISABLE},
5566 #ifdef HAVE_HWMON
5567 {"gpu-temp-abort", required_argument, 0, IDX_GPU_TEMP_ABORT},
5568 {"gpu-temp-retain", required_argument, 0, IDX_GPU_TEMP_RETAIN},
5569 #ifdef HAVE_ADL
5570 {"powertune-enable", no_argument, 0, IDX_POWERTUNE_ENABLE},
5571 #endif
5572 #endif // HAVE_HWMON
5573 {"logfile-disable", no_argument, 0, IDX_LOGFILE_DISABLE},
5574 {"truecrypt-keyfiles", required_argument, 0, IDX_TRUECRYPT_KEYFILES},
5575 {"segment-size", required_argument, 0, IDX_SEGMENT_SIZE},
5576 {"scrypt-tmto", required_argument, 0, IDX_SCRYPT_TMTO},
5577 // deprecated
5578 {"seperator", required_argument, 0, IDX_SEPARATOR},
5579 {"separator", required_argument, 0, IDX_SEPARATOR},
5580 {"bitmap-min", required_argument, 0, IDX_BITMAP_MIN},
5581 {"bitmap-max", required_argument, 0, IDX_BITMAP_MAX},
5582 {"increment", no_argument, 0, IDX_INCREMENT},
5583 {"increment-min", required_argument, 0, IDX_INCREMENT_MIN},
5584 {"increment-max", required_argument, 0, IDX_INCREMENT_MAX},
5585 {"custom-charset1", required_argument, 0, IDX_CUSTOM_CHARSET_1},
5586 {"custom-charset2", required_argument, 0, IDX_CUSTOM_CHARSET_2},
5587 {"custom-charset3", required_argument, 0, IDX_CUSTOM_CHARSET_3},
5588 {"custom-charset4", required_argument, 0, IDX_CUSTOM_CHARSET_4},
5589
5590 {0, 0, 0, 0}
5591 };
5592
5593 uint rp_files_cnt = 0;
5594
5595 char **rp_files = (char **) mycalloc (argc, sizeof (char *));
5596
5597 int option_index = 0;
5598 int c = -1;
5599
5600 optind = 1;
5601 optopt = 0;
5602
5603 while (((c = getopt_long (argc, argv, short_options, long_options, &option_index)) != -1) && optopt == 0)
5604 {
5605 switch (c)
5606 {
5607 case IDX_HELP: usage = 1; break;
5608 case IDX_VERSION:
5609 case IDX_VERSION_LOWER: version = 1; break;
5610 case IDX_RESTORE: restore = 1; break;
5611 case IDX_SESSION: session = optarg; break;
5612 case IDX_SHOW: show = 1; break;
5613 case IDX_LEFT: left = 1; break;
5614 case '?': return (-1);
5615 }
5616 }
5617
5618 if (optopt != 0)
5619 {
5620 log_error ("ERROR: Invalid argument specified");
5621
5622 return (-1);
5623 }
5624
5625 /**
5626 * exit functions
5627 */
5628
5629 if (version)
5630 {
5631 log_info ("%s (%s)", VERSION_TAG, VERSION_SUM);
5632
5633 return (0);
5634 }
5635
5636 if (usage)
5637 {
5638 usage_big_print (PROGNAME);
5639
5640 return (0);
5641 }
5642
5643 /**
5644 * session needs to be set, always!
5645 */
5646
5647 if (session == NULL) session = (char *) PROGNAME;
5648
5649 /**
5650 * folders, as discussed on https://github.com/hashcat/oclHashcat/issues/20
5651 */
5652
5653 char *exec_path = get_exec_path ();
5654
5655 #ifdef LINUX
5656
5657 char *resolved_install_folder = realpath (INSTALL_FOLDER, NULL);
5658 char *resolved_exec_path = realpath (exec_path, NULL);
5659
5660 char *install_dir = get_install_dir (resolved_exec_path);
5661 char *profile_dir = NULL;
5662 char *session_dir = NULL;
5663 char *shared_dir = NULL;
5664
5665 if (strcmp (install_dir, resolved_install_folder) == 0)
5666 {
5667 struct passwd *pw = getpwuid (getuid ());
5668
5669 const char *homedir = pw->pw_dir;
5670
5671 profile_dir = get_profile_dir (homedir);
5672 session_dir = get_session_dir (profile_dir);
5673 shared_dir = strdup (SHARED_FOLDER);
5674
5675 mkdir (profile_dir, 0700);
5676 mkdir (session_dir, 0700);
5677 }
5678 else
5679 {
5680 profile_dir = install_dir;
5681 session_dir = install_dir;
5682 shared_dir = install_dir;
5683 }
5684
5685 myfree (resolved_install_folder);
5686 myfree (resolved_exec_path);
5687
5688 #else
5689
5690 char *install_dir = get_install_dir (exec_path);
5691 char *profile_dir = install_dir;
5692 char *session_dir = install_dir;
5693 char *shared_dir = install_dir;
5694
5695 #endif
5696
5697 data.install_dir = install_dir;
5698 data.profile_dir = profile_dir;
5699 data.session_dir = session_dir;
5700 data.shared_dir = shared_dir;
5701
5702 myfree (exec_path);
5703
5704 /**
5705 * kernel cache, we need to make sure folder exist
5706 */
5707
5708 int kernels_folder_size = strlen (profile_dir) + 1 + 7 + 1 + 1;
5709
5710 char *kernels_folder = (char *) mymalloc (kernels_folder_size);
5711
5712 snprintf (kernels_folder, kernels_folder_size - 1, "%s/kernels", profile_dir);
5713
5714 mkdir (kernels_folder, 0700);
5715
5716 myfree (kernels_folder);
5717
5718 /**
5719 * session
5720 */
5721
5722 size_t session_size = strlen (session_dir) + 1 + strlen (session) + 32;
5723
5724 data.session = session;
5725
5726 char *eff_restore_file = (char *) mymalloc (session_size);
5727 char *new_restore_file = (char *) mymalloc (session_size);
5728
5729 snprintf (eff_restore_file, session_size - 1, "%s/%s.restore", data.session_dir, session);
5730 snprintf (new_restore_file, session_size - 1, "%s/%s.restore.new", data.session_dir, session);
5731
5732 data.eff_restore_file = eff_restore_file;
5733 data.new_restore_file = new_restore_file;
5734
5735 if (((show == 1) || (left == 1)) && (restore == 1))
5736 {
5737 if (show == 1) log_error ("ERROR: Mixing --restore parameter and --show is not supported");
5738 else log_error ("ERROR: Mixing --restore parameter and --left is not supported");
5739
5740 return (-1);
5741 }
5742
5743 // this allows the user to use --show and --left while cracking (i.e. while another instance of oclHashcat is running)
5744 if ((show == 1) || (left == 1))
5745 {
5746 restore_disable = 1;
5747
5748 restore = 0;
5749 }
5750
5751 data.restore_disable = restore_disable;
5752
5753 restore_data_t *rd = init_restore (argc, argv);
5754
5755 data.rd = rd;
5756
5757 /**
5758 * restore file
5759 */
5760
5761 if (restore == 1)
5762 {
5763 read_restore (eff_restore_file, rd);
5764
5765 if (rd->version_bin < RESTORE_MIN)
5766 {
5767 log_error ("ERROR: Incompatible restore-file version");
5768
5769 return (-1);
5770 }
5771
5772 myargc = rd->argc;
5773 myargv = rd->argv;
5774
5775 #ifdef _POSIX
5776 rd->pid = getpid ();
5777 #elif _WIN
5778 rd->pid = GetCurrentProcessId ();
5779 #endif
5780 }
5781
5782 uint hash_mode_chgd = 0;
5783 uint runtime_chgd = 0;
5784 uint kernel_loops_chgd = 0;
5785 uint kernel_accel_chgd = 0;
5786 uint attack_mode_chgd = 0;
5787 uint outfile_format_chgd = 0;
5788 uint rp_gen_seed_chgd = 0;
5789 uint remove_timer_chgd = 0;
5790 uint increment_min_chgd = 0;
5791 uint increment_max_chgd = 0;
5792 uint workload_profile_chgd = 0;
5793 uint opencl_vector_width_chgd = 0;
5794
5795 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
5796 uint gpu_temp_retain_chgd = 0;
5797 uint gpu_temp_abort_chgd = 0;
5798 #endif
5799
5800 optind = 1;
5801 optopt = 0;
5802 option_index = 0;
5803
5804 while (((c = getopt_long (myargc, myargv, short_options, long_options, &option_index)) != -1) && optopt == 0)
5805 {
5806 switch (c)
5807 {
5808 //case IDX_HELP: usage = 1; break;
5809 //case IDX_VERSION: version = 1; break;
5810 //case IDX_RESTORE: restore = 1; break;
5811 case IDX_QUIET: quiet = 1; break;
5812 //case IDX_SHOW: show = 1; break;
5813 case IDX_SHOW: break;
5814 //case IDX_LEFT: left = 1; break;
5815 case IDX_LEFT: break;
5816 case IDX_USERNAME: username = 1; break;
5817 case IDX_REMOVE: remove = 1; break;
5818 case IDX_REMOVE_TIMER: remove_timer = atoi (optarg);
5819 remove_timer_chgd = 1; break;
5820 case IDX_POTFILE_DISABLE: potfile_disable = 1; break;
5821 case IDX_POTFILE_PATH: potfile_path = optarg; break;
5822 case IDX_DEBUG_MODE: debug_mode = atoi (optarg); break;
5823 case IDX_DEBUG_FILE: debug_file = optarg; break;
5824 case IDX_INDUCTION_DIR: induction_dir = optarg; break;
5825 case IDX_OUTFILE_CHECK_DIR: outfile_check_dir = optarg; break;
5826 case IDX_FORCE: force = 1; break;
5827 case IDX_SKIP: skip = atoll (optarg); break;
5828 case IDX_LIMIT: limit = atoll (optarg); break;
5829 case IDX_KEYSPACE: keyspace = 1; break;
5830 case IDX_BENCHMARK: benchmark = 1; break;
5831 case IDX_BENCHMARK_REPEATS: benchmark_repeats = atoi (optarg); break;
5832 case IDX_RESTORE: break;
5833 case IDX_RESTORE_DISABLE: restore_disable = 1; break;
5834 case IDX_STATUS: status = 1; break;
5835 case IDX_STATUS_TIMER: status_timer = atoi (optarg); break;
5836 case IDX_STATUS_AUTOMAT: status_automat = 1; break;
5837 case IDX_LOOPBACK: loopback = 1; break;
5838 case IDX_WEAK_HASH_THRESHOLD:
5839 weak_hash_threshold = atoi (optarg); break;
5840 //case IDX_SESSION: session = optarg; break;
5841 case IDX_SESSION: break;
5842 case IDX_HASH_MODE: hash_mode = atoi (optarg);
5843 hash_mode_chgd = 1; break;
5844 case IDX_RUNTIME: runtime = atoi (optarg);
5845 runtime_chgd = 1; break;
5846 case IDX_ATTACK_MODE: attack_mode = atoi (optarg);
5847 attack_mode_chgd = 1; break;
5848 case IDX_RP_FILE: rp_files[rp_files_cnt++] = optarg; break;
5849 case IDX_RP_GEN: rp_gen = atoi (optarg); break;
5850 case IDX_RP_GEN_FUNC_MIN: rp_gen_func_min = atoi (optarg); break;
5851 case IDX_RP_GEN_FUNC_MAX: rp_gen_func_max = atoi (optarg); break;
5852 case IDX_RP_GEN_SEED: rp_gen_seed = atoi (optarg);
5853 rp_gen_seed_chgd = 1; break;
5854 case IDX_RULE_BUF_L: rule_buf_l = optarg; break;
5855 case IDX_RULE_BUF_R: rule_buf_r = optarg; break;
5856 case IDX_MARKOV_DISABLE: markov_disable = 1; break;
5857 case IDX_MARKOV_CLASSIC: markov_classic = 1; break;
5858 case IDX_MARKOV_THRESHOLD: markov_threshold = atoi (optarg); break;
5859 case IDX_MARKOV_HCSTAT: markov_hcstat = optarg; break;
5860 case IDX_OUTFILE: outfile = optarg; break;
5861 case IDX_OUTFILE_FORMAT: outfile_format = atoi (optarg);
5862 outfile_format_chgd = 1; break;
5863 case IDX_OUTFILE_AUTOHEX_DISABLE:
5864 outfile_autohex = 0; break;
5865 case IDX_OUTFILE_CHECK_TIMER:
5866 outfile_check_timer = atoi (optarg); break;
5867 case IDX_HEX_CHARSET: hex_charset = 1; break;
5868 case IDX_HEX_SALT: hex_salt = 1; break;
5869 case IDX_HEX_WORDLIST: hex_wordlist = 1; break;
5870 case IDX_CPU_AFFINITY: cpu_affinity = optarg; break;
5871 case IDX_OPENCL_DEVICES: opencl_devices = optarg; break;
5872 case IDX_OPENCL_PLATFORMS: opencl_platforms = optarg; break;
5873 case IDX_OPENCL_DEVICE_TYPES:
5874 opencl_device_types = optarg; break;
5875 case IDX_OPENCL_VECTOR_WIDTH:
5876 opencl_vector_width = atoi (optarg);
5877 opencl_vector_width_chgd = 1; break;
5878 case IDX_WORKLOAD_PROFILE: workload_profile = atoi (optarg);
5879 workload_profile_chgd = 1; break;
5880 case IDX_KERNEL_ACCEL: kernel_accel = atoi (optarg);
5881 kernel_accel_chgd = 1; break;
5882 case IDX_KERNEL_LOOPS: kernel_loops = atoi (optarg);
5883 kernel_loops_chgd = 1; break;
5884 case IDX_GPU_TEMP_DISABLE: gpu_temp_disable = 1; break;
5885 #ifdef HAVE_HWMON
5886 case IDX_GPU_TEMP_ABORT: gpu_temp_abort = atoi (optarg);
5887 #ifdef HAVE_ADL
5888 gpu_temp_abort_chgd = 1;
5889 #endif
5890 break;
5891 case IDX_GPU_TEMP_RETAIN: gpu_temp_retain = atoi (optarg);
5892 #ifdef HAVE_ADL
5893 gpu_temp_retain_chgd = 1;
5894 #endif
5895 break;
5896 #ifdef HAVE_ADL
5897 case IDX_POWERTUNE_ENABLE: powertune_enable = 1; break;
5898 #endif
5899 #endif // HAVE_HWMON
5900 case IDX_LOGFILE_DISABLE: logfile_disable = 1; break;
5901 case IDX_TRUECRYPT_KEYFILES: truecrypt_keyfiles = optarg; break;
5902 case IDX_SEGMENT_SIZE: segment_size = atoi (optarg); break;
5903 case IDX_SCRYPT_TMTO: scrypt_tmto = atoi (optarg); break;
5904 case IDX_SEPARATOR: separator = optarg[0]; break;
5905 case IDX_BITMAP_MIN: bitmap_min = atoi (optarg); break;
5906 case IDX_BITMAP_MAX: bitmap_max = atoi (optarg); break;
5907 case IDX_INCREMENT: increment = 1; break;
5908 case IDX_INCREMENT_MIN: increment_min = atoi (optarg);
5909 increment_min_chgd = 1; break;
5910 case IDX_INCREMENT_MAX: increment_max = atoi (optarg);
5911 increment_max_chgd = 1; break;
5912 case IDX_CUSTOM_CHARSET_1: custom_charset_1 = optarg; break;
5913 case IDX_CUSTOM_CHARSET_2: custom_charset_2 = optarg; break;
5914 case IDX_CUSTOM_CHARSET_3: custom_charset_3 = optarg; break;
5915 case IDX_CUSTOM_CHARSET_4: custom_charset_4 = optarg; break;
5916
5917 default:
5918 log_error ("ERROR: Invalid argument specified");
5919 return (-1);
5920 }
5921 }
5922
5923 if (optopt != 0)
5924 {
5925 log_error ("ERROR: Invalid argument specified");
5926
5927 return (-1);
5928 }
5929
5930 /**
5931 * Inform user things getting started,
5932 * - this is giving us a visual header before preparations start, so we do not need to clear them afterwards
5933 * - we do not need to check algorithm_pos
5934 */
5935
5936 if (quiet == 0)
5937 {
5938 if (benchmark == 1)
5939 {
5940 log_info ("%s %s (%s) starting in benchmark-mode...", PROGNAME, VERSION_TAG, VERSION_SUM);
5941
5942 log_info ("");
5943 }
5944 else if (restore == 1)
5945 {
5946 log_info ("%s %s (%s) starting in restore-mode...", PROGNAME, VERSION_TAG, VERSION_SUM);
5947
5948 log_info ("");
5949 }
5950 else
5951 {
5952 log_info ("%s %s (%s) starting...", PROGNAME, VERSION_TAG, VERSION_SUM);
5953
5954 log_info ("");
5955 }
5956 }
5957
5958 /**
5959 * sanity check
5960 */
5961
5962 if (attack_mode > 7)
5963 {
5964 log_error ("ERROR: Invalid attack-mode specified");
5965
5966 return (-1);
5967 }
5968
5969 if (runtime_chgd && runtime == 0) // just added to remove compiler warnings for runtime_chgd
5970 {
5971 log_error ("ERROR: Invalid runtime specified");
5972
5973 return (-1);
5974 }
5975
5976 if (hash_mode_chgd && hash_mode > 13500) // just added to remove compiler warnings for hash_mode_chgd
5977 {
5978 log_error ("ERROR: Invalid hash-type specified");
5979
5980 return (-1);
5981 }
5982
5983 // renamed hash modes
5984
5985 if (hash_mode_chgd)
5986 {
5987 int n = -1;
5988
5989 switch (hash_mode)
5990 {
5991 case 123: n = 124;
5992 break;
5993 }
5994
5995 if (n >= 0)
5996 {
5997 log_error ("Old -m specified, use -m %d instead", n);
5998
5999 return (-1);
6000 }
6001 }
6002
6003 if (username == 1)
6004 {
6005 if ((hash_mode == 2500) || (hash_mode == 5200) || ((hash_mode >= 6200) && (hash_mode <= 6299)))
6006 {
6007 log_error ("ERROR: Mixing support for user names and hashes of type %s is not supported", strhashtype (hash_mode));
6008
6009 return (-1);
6010 }
6011 }
6012
6013 if (outfile_format > 16)
6014 {
6015 log_error ("ERROR: Invalid outfile-format specified");
6016
6017 return (-1);
6018 }
6019
6020 if (left == 1)
6021 {
6022 if (outfile_format_chgd == 1)
6023 {
6024 if (outfile_format > 1)
6025 {
6026 log_error ("ERROR: Mixing outfile-format > 1 is not allowed together with left parameter");
6027
6028 return (-1);
6029 }
6030 }
6031 else
6032 {
6033 outfile_format = OUTFILE_FMT_HASH;
6034 }
6035 }
6036
6037 if (show == 1)
6038 {
6039 if (outfile_format_chgd == 1)
6040 {
6041 if ((outfile_format > 7) && (outfile_format < 16))
6042 {
6043 log_error ("ERROR: Mixing outfile-format > 7 is not allowed together with show parameter");
6044
6045 return (-1);
6046 }
6047 }
6048 }
6049
6050 if (increment_min < INCREMENT_MIN)
6051 {
6052 log_error ("ERROR: Invalid increment-min specified");
6053
6054 return (-1);
6055 }
6056
6057 if (increment_max > INCREMENT_MAX)
6058 {
6059 log_error ("ERROR: Invalid increment-max specified");
6060
6061 return (-1);
6062 }
6063
6064 if (increment_min > increment_max)
6065 {
6066 log_error ("ERROR: Invalid increment-min specified");
6067
6068 return (-1);
6069 }
6070
6071 if ((increment == 1) && (attack_mode == ATTACK_MODE_STRAIGHT))
6072 {
6073 log_error ("ERROR: increment is not allowed in attack-mode 0");
6074
6075 return (-1);
6076 }
6077
6078 if ((increment == 0) && (increment_min_chgd == 1))
6079 {
6080 log_error ("ERROR: increment-min is only supported together with increment switch");
6081
6082 return (-1);
6083 }
6084
6085 if ((increment == 0) && (increment_max_chgd == 1))
6086 {
6087 log_error ("ERROR: increment-max is only supported together with increment switch");
6088
6089 return (-1);
6090 }
6091
6092 if (rp_files_cnt && rp_gen)
6093 {
6094 log_error ("ERROR: Use of both rules-file and rules-generate is not supported");
6095
6096 return (-1);
6097 }
6098
6099 if (rp_files_cnt || rp_gen)
6100 {
6101 if (attack_mode != ATTACK_MODE_STRAIGHT)
6102 {
6103 log_error ("ERROR: Use of rules-file or rules-generate only allowed in attack-mode 0");
6104
6105 return (-1);
6106 }
6107 }
6108
6109 if (rp_gen_func_min > rp_gen_func_max)
6110 {
6111 log_error ("ERROR: Invalid rp-gen-func-min specified");
6112
6113 return (-1);
6114 }
6115
6116 if (kernel_accel_chgd == 1)
6117 {
6118 if (kernel_accel < 1)
6119 {
6120 log_error ("ERROR: Invalid kernel-accel specified");
6121
6122 return (-1);
6123 }
6124
6125 if (kernel_accel > 1024)
6126 {
6127 log_error ("ERROR: Invalid kernel-accel specified");
6128
6129 return (-1);
6130 }
6131 }
6132
6133 if (kernel_loops_chgd == 1)
6134 {
6135 if (kernel_loops < 1)
6136 {
6137 log_error ("ERROR: Invalid kernel-loops specified");
6138
6139 return (-1);
6140 }
6141
6142 if (kernel_loops > 1024)
6143 {
6144 log_error ("ERROR: Invalid kernel-loops specified");
6145
6146 return (-1);
6147 }
6148 }
6149
6150 if ((workload_profile < 1) || (workload_profile > 3))
6151 {
6152 log_error ("ERROR: workload-profile %i not available", workload_profile);
6153
6154 return (-1);
6155 }
6156
6157 if (opencl_vector_width_chgd && (!is_power_of_2(opencl_vector_width) || opencl_vector_width > 16))
6158 {
6159 log_error ("ERROR: opencl-vector-width %i not allowed", opencl_vector_width);
6160
6161 return (-1);
6162 }
6163
6164 if (show == 1 || left == 1)
6165 {
6166 attack_mode = ATTACK_MODE_NONE;
6167
6168 if (remove == 1)
6169 {
6170 log_error ("ERROR: Mixing remove parameter not allowed with show parameter or left parameter");
6171
6172 return (-1);
6173 }
6174
6175 if (potfile_disable == 1)
6176 {
6177 log_error ("ERROR: Mixing potfile-disable parameter not allowed with show parameter or left parameter");
6178
6179 return (-1);
6180 }
6181 }
6182
6183 uint attack_kern = ATTACK_KERN_NONE;
6184
6185 switch (attack_mode)
6186 {
6187 case ATTACK_MODE_STRAIGHT: attack_kern = ATTACK_KERN_STRAIGHT; break;
6188 case ATTACK_MODE_COMBI: attack_kern = ATTACK_KERN_COMBI; break;
6189 case ATTACK_MODE_BF: attack_kern = ATTACK_KERN_BF; break;
6190 case ATTACK_MODE_HYBRID1: attack_kern = ATTACK_KERN_COMBI; break;
6191 case ATTACK_MODE_HYBRID2: attack_kern = ATTACK_KERN_COMBI; break;
6192 }
6193
6194 if (benchmark == 0)
6195 {
6196 if (keyspace == 1)
6197 {
6198 int num_additional_params = 1;
6199
6200 if (attack_kern == ATTACK_KERN_COMBI)
6201 {
6202 num_additional_params = 2;
6203 }
6204
6205 int keyspace_wordlist_specified = myargc - optind - num_additional_params;
6206
6207 if (keyspace_wordlist_specified == 0) optind--;
6208 }
6209
6210 if (attack_kern == ATTACK_KERN_NONE)
6211 {
6212 if ((optind + 1) != myargc)
6213 {
6214 usage_mini_print (myargv[0]);
6215
6216 return (-1);
6217 }
6218 }
6219 else if (attack_kern == ATTACK_KERN_STRAIGHT)
6220 {
6221 if ((optind + 1) > myargc)
6222 {
6223 usage_mini_print (myargv[0]);
6224
6225 return (-1);
6226 }
6227 }
6228 else if (attack_kern == ATTACK_KERN_COMBI)
6229 {
6230 if ((optind + 3) != myargc)
6231 {
6232 usage_mini_print (myargv[0]);
6233
6234 return (-1);
6235 }
6236 }
6237 else if (attack_kern == ATTACK_KERN_BF)
6238 {
6239 if ((optind + 1) > myargc)
6240 {
6241 usage_mini_print (myargv[0]);
6242
6243 return (-1);
6244 }
6245 }
6246 else
6247 {
6248 usage_mini_print (myargv[0]);
6249
6250 return (-1);
6251 }
6252 }
6253 else
6254 {
6255 if (myargv[optind] != 0)
6256 {
6257 log_error ("ERROR: Invalid argument for benchmark mode specified");
6258
6259 return (-1);
6260 }
6261
6262 if (attack_mode_chgd == 1)
6263 {
6264 if (attack_mode != ATTACK_MODE_BF)
6265 {
6266 log_error ("ERROR: Only attack-mode 3 allowed in benchmark mode");
6267
6268 return (-1);
6269 }
6270 }
6271 }
6272
6273 if (skip != 0 && limit != 0)
6274 {
6275 limit += skip;
6276 }
6277
6278 if (keyspace == 1)
6279 {
6280 if (show == 1)
6281 {
6282 log_error ("ERROR: Mixing show parameter not supported with keyspace parameter");
6283
6284 return (-1);
6285 }
6286 else if (left == 1)
6287 {
6288 log_error ("ERROR: Mixing left parameter not supported wiht keyspace parameter");
6289
6290 return (-1);
6291 }
6292
6293 potfile_disable = 1;
6294
6295 restore_disable = 1;
6296
6297 restore = 0;
6298
6299 weak_hash_threshold = 0;
6300
6301 quiet = 1;
6302 }
6303
6304 if (remove_timer_chgd == 1)
6305 {
6306 if (remove == 0)
6307 {
6308 log_error ("ERROR: Parameter remove-timer require parameter remove enabled");
6309
6310 return (-1);
6311 }
6312
6313 if (remove_timer < 1)
6314 {
6315 log_error ("ERROR: Parameter remove-timer must have a value greater than or equal to 1");
6316
6317 return (-1);
6318 }
6319 }
6320
6321 if (loopback == 1)
6322 {
6323 if (attack_mode == ATTACK_MODE_BF)
6324 {
6325 log_error ("ERROR: Parameter loopback not allowed in attack-mode 3");
6326
6327 return (-1);
6328 }
6329 else if (attack_mode == ATTACK_MODE_STRAIGHT)
6330 {
6331 if ((rp_files_cnt == 0) && (rp_gen == 0))
6332 {
6333 log_error ("ERROR: Parameter loopback not allowed without rules-file or rules-generate");
6334
6335 return (-1);
6336 }
6337 }
6338 }
6339
6340 if (debug_mode > 0)
6341 {
6342 if (attack_mode != ATTACK_MODE_STRAIGHT)
6343 {
6344 log_error ("ERROR: Parameter debug-mode option is only available with attack-mode 0");
6345
6346 return (-1);
6347 }
6348
6349 if ((rp_files_cnt == 0) && (rp_gen == 0))
6350 {
6351 log_error ("ERROR: Parameter debug-mode not allowed without rules-file or rules-generate");
6352
6353 return (-1);
6354 }
6355 }
6356
6357 if (debug_mode > 4)
6358 {
6359 log_error ("ERROR: Invalid debug-mode specified");
6360
6361 return (-1);
6362 }
6363
6364 if (debug_file != NULL)
6365 {
6366 if (debug_mode < 1)
6367 {
6368 log_error ("ERROR: Parameter debug-file requires parameter debug-mode to be set");
6369
6370 return (-1);
6371 }
6372 }
6373
6374 if (induction_dir != NULL)
6375 {
6376 if (attack_mode == ATTACK_MODE_BF)
6377 {
6378 log_error ("ERROR: Parameter induction-dir not allowed with brute-force attacks");
6379
6380 return (-1);
6381 }
6382 }
6383
6384 if (attack_mode != ATTACK_MODE_STRAIGHT)
6385 {
6386 if ((weak_hash_threshold != WEAK_HASH_THRESHOLD) && (weak_hash_threshold != 0))
6387 {
6388 log_error ("ERROR: setting --weak-hash-threshold allowed only in straight-attack mode");
6389
6390 return (-1);
6391 }
6392
6393 weak_hash_threshold = 0;
6394 }
6395
6396 /**
6397 * induction directory
6398 */
6399
6400 char *induction_directory = NULL;
6401
6402 if (attack_mode != ATTACK_MODE_BF)
6403 {
6404 if (induction_dir == NULL)
6405 {
6406 induction_directory = (char *) mymalloc (session_size);
6407
6408 snprintf (induction_directory, session_size - 1, "%s/%s.%s", session_dir, session, INDUCT_DIR);
6409
6410 // create induction folder if it does not already exist
6411
6412 if (keyspace == 0)
6413 {
6414 if (rmdir (induction_directory) == -1)
6415 {
6416 if (errno == ENOENT)
6417 {
6418 // good, we can ignore
6419 }
6420 else if (errno == ENOTEMPTY)
6421 {
6422 char *induction_directory_mv = (char *) mymalloc (session_size);
6423
6424 snprintf (induction_directory_mv, session_size - 1, "%s/%s.induct.%d", session_dir, session, (int) proc_start);
6425
6426 if (rename (induction_directory, induction_directory_mv) != 0)
6427 {
6428 log_error ("ERROR: Rename directory %s to %s: %s", induction_directory, induction_directory_mv, strerror (errno));
6429
6430 return (-1);
6431 }
6432 }
6433 else
6434 {
6435 log_error ("ERROR: %s: %s", induction_directory, strerror (errno));
6436
6437 return (-1);
6438 }
6439 }
6440
6441 if (mkdir (induction_directory, 0700) == -1)
6442 {
6443 log_error ("ERROR: %s: %s", induction_directory, strerror (errno));
6444
6445 return (-1);
6446 }
6447 }
6448 }
6449 else
6450 {
6451 induction_directory = induction_dir;
6452 }
6453 }
6454
6455 data.induction_directory = induction_directory;
6456
6457 /**
6458 * loopback
6459 */
6460
6461 size_t loopback_size = strlen (session_dir) + 1 + session_size + strlen (LOOPBACK_FILE) + 12;
6462
6463 char *loopback_file = (char *) mymalloc (loopback_size);
6464
6465 /**
6466 * tuning db
6467 */
6468
6469 char tuning_db_file[256] = { 0 };
6470
6471 snprintf (tuning_db_file, sizeof (tuning_db_file) - 1, "%s/%s", shared_dir, TUNING_DB_FILE);
6472
6473 tuning_db_t *tuning_db = tuning_db_init (tuning_db_file);
6474
6475 /**
6476 * outfile-check directory
6477 */
6478
6479 char *outfile_check_directory = NULL;
6480
6481 if (outfile_check_dir == NULL)
6482 {
6483 outfile_check_directory = (char *) mymalloc (session_size);
6484
6485 snprintf (outfile_check_directory, session_size - 1, "%s/%s.%s", session_dir, session, OUTFILES_DIR);
6486 }
6487 else
6488 {
6489 outfile_check_directory = outfile_check_dir;
6490 }
6491
6492 data.outfile_check_directory = outfile_check_directory;
6493
6494 if (keyspace == 0)
6495 {
6496 struct stat outfile_check_stat;
6497
6498 if (stat (outfile_check_directory, &outfile_check_stat) == 0)
6499 {
6500 uint is_dir = S_ISDIR (outfile_check_stat.st_mode);
6501
6502 if (is_dir == 0)
6503 {
6504 log_error ("ERROR: Directory specified in outfile-check '%s' is not a valid directory", outfile_check_directory);
6505
6506 return (-1);
6507 }
6508 }
6509 else if (outfile_check_dir == NULL)
6510 {
6511 if (mkdir (outfile_check_directory, 0700) == -1)
6512 {
6513 log_error ("ERROR: %s: %s", outfile_check_directory, strerror (errno));
6514
6515 return (-1);
6516 }
6517 }
6518 }
6519
6520 /**
6521 * special other stuff
6522 */
6523
6524 if (hash_mode == 9710)
6525 {
6526 outfile_format = 5;
6527 outfile_format_chgd = 1;
6528 }
6529
6530 if (hash_mode == 9810)
6531 {
6532 outfile_format = 5;
6533 outfile_format_chgd = 1;
6534 }
6535
6536 if (hash_mode == 10410)
6537 {
6538 outfile_format = 5;
6539 outfile_format_chgd = 1;
6540 }
6541
6542 /**
6543 * store stuff
6544 */
6545
6546 data.hash_mode = hash_mode;
6547 data.restore = restore;
6548 data.restore_timer = restore_timer;
6549 data.restore_disable = restore_disable;
6550 data.status = status;
6551 data.status_timer = status_timer;
6552 data.status_automat = status_automat;
6553 data.loopback = loopback;
6554 data.runtime = runtime;
6555 data.remove = remove;
6556 data.remove_timer = remove_timer;
6557 data.debug_mode = debug_mode;
6558 data.debug_file = debug_file;
6559 data.username = username;
6560 data.quiet = quiet;
6561 data.outfile = outfile;
6562 data.outfile_format = outfile_format;
6563 data.outfile_autohex = outfile_autohex;
6564 data.hex_charset = hex_charset;
6565 data.hex_salt = hex_salt;
6566 data.hex_wordlist = hex_wordlist;
6567 data.separator = separator;
6568 data.rp_files = rp_files;
6569 data.rp_files_cnt = rp_files_cnt;
6570 data.rp_gen = rp_gen;
6571 data.rp_gen_seed = rp_gen_seed;
6572 data.force = force;
6573 data.benchmark = benchmark;
6574 data.benchmark_repeats = benchmark_repeats;
6575 data.skip = skip;
6576 data.limit = limit;
6577 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
6578 data.powertune_enable = powertune_enable;
6579 #endif
6580 data.logfile_disable = logfile_disable;
6581 data.truecrypt_keyfiles = truecrypt_keyfiles;
6582 data.scrypt_tmto = scrypt_tmto;
6583 data.workload_profile = workload_profile;
6584
6585 /**
6586 * cpu affinity
6587 */
6588
6589 if (cpu_affinity)
6590 {
6591 set_cpu_affinity (cpu_affinity);
6592 }
6593
6594 if (rp_gen_seed_chgd == 0)
6595 {
6596 srand (proc_start);
6597 }
6598 else
6599 {
6600 srand (rp_gen_seed);
6601 }
6602
6603 /**
6604 * logfile init
6605 */
6606
6607 if (logfile_disable == 0)
6608 {
6609 size_t logfile_size = strlen (session_dir) + 1 + strlen (session) + 32;
6610
6611 char *logfile = (char *) mymalloc (logfile_size);
6612
6613 snprintf (logfile, logfile_size - 1, "%s/%s.log", session_dir, session);
6614
6615 data.logfile = logfile;
6616
6617 char *topid = logfile_generate_topid ();
6618
6619 data.topid = topid;
6620 }
6621
6622 // logfile_append() checks for logfile_disable internally to make it easier from here
6623
6624 #define logfile_top_msg(msg) logfile_append ("%s\t%s", data.topid, (msg));
6625 #define logfile_sub_msg(msg) logfile_append ("%s\t%s\t%s", data.topid, data.subid, (msg));
6626 #define logfile_top_var_uint64(var,val) logfile_append ("%s\t%s\t%llu", data.topid, (var), (val));
6627 #define logfile_sub_var_uint64(var,val) logfile_append ("%s\t%s\t%s\t%llu", data.topid, data.subid, (var), (val));
6628 #define logfile_top_var_uint(var,val) logfile_append ("%s\t%s\t%u", data.topid, (var), (val));
6629 #define logfile_sub_var_uint(var,val) logfile_append ("%s\t%s\t%s\t%u", data.topid, data.subid, (var), (val));
6630 #define logfile_top_var_char(var,val) logfile_append ("%s\t%s\t%c", data.topid, (var), (val));
6631 #define logfile_sub_var_char(var,val) logfile_append ("%s\t%s\t%s\t%c", data.topid, data.subid, (var), (val));
6632 #define logfile_top_var_string(var,val) if ((val) != NULL) logfile_append ("%s\t%s\t%s", data.topid, (var), (val));
6633 #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));
6634
6635 #define logfile_top_uint64(var) logfile_top_var_uint64 (#var, (var));
6636 #define logfile_sub_uint64(var) logfile_sub_var_uint64 (#var, (var));
6637 #define logfile_top_uint(var) logfile_top_var_uint (#var, (var));
6638 #define logfile_sub_uint(var) logfile_sub_var_uint (#var, (var));
6639 #define logfile_top_char(var) logfile_top_var_char (#var, (var));
6640 #define logfile_sub_char(var) logfile_sub_var_char (#var, (var));
6641 #define logfile_top_string(var) logfile_top_var_string (#var, (var));
6642 #define logfile_sub_string(var) logfile_sub_var_string (#var, (var));
6643
6644 logfile_top_msg ("START");
6645
6646 logfile_top_uint (attack_mode);
6647 logfile_top_uint (attack_kern);
6648 logfile_top_uint (benchmark);
6649 logfile_top_uint (benchmark_repeats);
6650 logfile_top_uint (bitmap_min);
6651 logfile_top_uint (bitmap_max);
6652 logfile_top_uint (debug_mode);
6653 logfile_top_uint (force);
6654 logfile_top_uint (kernel_accel);
6655 logfile_top_uint (kernel_loops);
6656 logfile_top_uint (gpu_temp_disable);
6657 #ifdef HAVE_HWMON
6658 logfile_top_uint (gpu_temp_abort);
6659 logfile_top_uint (gpu_temp_retain);
6660 #endif
6661 logfile_top_uint (hash_mode);
6662 logfile_top_uint (hex_charset);
6663 logfile_top_uint (hex_salt);
6664 logfile_top_uint (hex_wordlist);
6665 logfile_top_uint (increment);
6666 logfile_top_uint (increment_max);
6667 logfile_top_uint (increment_min);
6668 logfile_top_uint (keyspace);
6669 logfile_top_uint (left);
6670 logfile_top_uint (logfile_disable);
6671 logfile_top_uint (loopback);
6672 logfile_top_uint (markov_classic);
6673 logfile_top_uint (markov_disable);
6674 logfile_top_uint (markov_threshold);
6675 logfile_top_uint (outfile_autohex);
6676 logfile_top_uint (outfile_check_timer);
6677 logfile_top_uint (outfile_format);
6678 logfile_top_uint (potfile_disable);
6679 logfile_top_string (potfile_path);
6680 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
6681 logfile_top_uint (powertune_enable);
6682 #endif
6683 logfile_top_uint (scrypt_tmto);
6684 logfile_top_uint (quiet);
6685 logfile_top_uint (remove);
6686 logfile_top_uint (remove_timer);
6687 logfile_top_uint (restore);
6688 logfile_top_uint (restore_disable);
6689 logfile_top_uint (restore_timer);
6690 logfile_top_uint (rp_gen);
6691 logfile_top_uint (rp_gen_func_max);
6692 logfile_top_uint (rp_gen_func_min);
6693 logfile_top_uint (rp_gen_seed);
6694 logfile_top_uint (runtime);
6695 logfile_top_uint (segment_size);
6696 logfile_top_uint (show);
6697 logfile_top_uint (status);
6698 logfile_top_uint (status_automat);
6699 logfile_top_uint (status_timer);
6700 logfile_top_uint (usage);
6701 logfile_top_uint (username);
6702 logfile_top_uint (version);
6703 logfile_top_uint (weak_hash_threshold);
6704 logfile_top_uint (workload_profile);
6705 logfile_top_uint64 (limit);
6706 logfile_top_uint64 (skip);
6707 logfile_top_char (separator);
6708 logfile_top_string (cpu_affinity);
6709 logfile_top_string (custom_charset_1);
6710 logfile_top_string (custom_charset_2);
6711 logfile_top_string (custom_charset_3);
6712 logfile_top_string (custom_charset_4);
6713 logfile_top_string (debug_file);
6714 logfile_top_string (opencl_devices);
6715 logfile_top_string (opencl_platforms);
6716 logfile_top_string (opencl_device_types);
6717 logfile_top_uint (opencl_vector_width);
6718 logfile_top_string (induction_dir);
6719 logfile_top_string (markov_hcstat);
6720 logfile_top_string (outfile);
6721 logfile_top_string (outfile_check_dir);
6722 logfile_top_string (rule_buf_l);
6723 logfile_top_string (rule_buf_r);
6724 logfile_top_string (session);
6725 logfile_top_string (truecrypt_keyfiles);
6726
6727 /**
6728 * Init OpenCL library loader
6729 */
6730
6731 if (keyspace == 0)
6732 {
6733 ocl = (OCL_PTR *) mymalloc (sizeof (OCL_PTR));
6734
6735 ocl_init (ocl);
6736
6737 data.ocl = ocl;
6738 }
6739
6740 /**
6741 * OpenCL platform selection
6742 */
6743
6744 u32 opencl_platforms_filter = setup_opencl_platforms_filter (opencl_platforms);
6745
6746 /**
6747 * OpenCL device selection
6748 */
6749
6750 u32 devices_filter = setup_devices_filter (opencl_devices);
6751
6752 /**
6753 * OpenCL device type selection
6754 */
6755
6756 cl_device_type device_types_filter = setup_device_types_filter (opencl_device_types);
6757
6758 /**
6759 * benchmark
6760 */
6761
6762 if (benchmark == 1)
6763 {
6764 /**
6765 * disable useless stuff for benchmark
6766 */
6767
6768 status_timer = 0;
6769 restore_timer = 0;
6770 restore_disable = 1;
6771 potfile_disable = 1;
6772 weak_hash_threshold = 0;
6773 gpu_temp_disable = 1;
6774
6775 data.status_timer = status_timer;
6776 data.restore_timer = restore_timer;
6777 data.restore_disable = restore_disable;
6778
6779 /**
6780 * force attack mode to be bruteforce
6781 */
6782
6783 attack_mode = ATTACK_MODE_BF;
6784 attack_kern = ATTACK_KERN_BF;
6785
6786 if (workload_profile_chgd == 0)
6787 {
6788 workload_profile = 3;
6789
6790 data.workload_profile = workload_profile;
6791 }
6792 }
6793
6794 /**
6795 * config
6796 */
6797
6798 uint hash_type = 0;
6799 uint salt_type = 0;
6800 uint attack_exec = 0;
6801 uint opts_type = 0;
6802 uint kern_type = 0;
6803 uint dgst_size = 0;
6804 uint esalt_size = 0;
6805 uint opti_type = 0;
6806 uint dgst_pos0 = -1;
6807 uint dgst_pos1 = -1;
6808 uint dgst_pos2 = -1;
6809 uint dgst_pos3 = -1;
6810
6811 int (*parse_func) (char *, uint, hash_t *);
6812 int (*sort_by_digest) (const void *, const void *);
6813
6814 uint algorithm_pos = 0;
6815 uint algorithm_max = 1;
6816
6817 uint *algorithms = default_benchmark_algorithms;
6818
6819 if (benchmark == 1 && hash_mode_chgd == 0) algorithm_max = NUM_DEFAULT_BENCHMARK_ALGORITHMS;
6820
6821 for (algorithm_pos = 0; algorithm_pos < algorithm_max; algorithm_pos++)
6822 {
6823 /*
6824 * We need to reset 'rd' in benchmark mode otherwise when the user hits 'bypass'
6825 * the following algos are skipped entirely
6826 */
6827
6828 if (algorithm_pos > 0)
6829 {
6830 local_free (rd);
6831
6832 rd = init_restore (argc, argv);
6833
6834 data.rd = rd;
6835 }
6836
6837 /**
6838 * update hash_mode in case of multihash benchmark
6839 */
6840
6841 if (benchmark == 1)
6842 {
6843 if (hash_mode_chgd == 0)
6844 {
6845 hash_mode = algorithms[algorithm_pos];
6846
6847 data.hash_mode = hash_mode;
6848 }
6849
6850 quiet = 1;
6851
6852 data.quiet = quiet;
6853 }
6854
6855 switch (hash_mode)
6856 {
6857 case 0: hash_type = HASH_TYPE_MD5;
6858 salt_type = SALT_TYPE_NONE;
6859 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6860 opts_type = OPTS_TYPE_PT_GENERATE_LE
6861 | OPTS_TYPE_PT_ADD80
6862 | OPTS_TYPE_PT_ADDBITS14;
6863 kern_type = KERN_TYPE_MD5;
6864 dgst_size = DGST_SIZE_4_4;
6865 parse_func = md5_parse_hash;
6866 sort_by_digest = sort_by_digest_4_4;
6867 opti_type = OPTI_TYPE_ZERO_BYTE
6868 | OPTI_TYPE_PRECOMPUTE_INIT
6869 | OPTI_TYPE_PRECOMPUTE_MERKLE
6870 | OPTI_TYPE_MEET_IN_MIDDLE
6871 | OPTI_TYPE_EARLY_SKIP
6872 | OPTI_TYPE_NOT_ITERATED
6873 | OPTI_TYPE_NOT_SALTED
6874 | OPTI_TYPE_RAW_HASH;
6875 dgst_pos0 = 0;
6876 dgst_pos1 = 3;
6877 dgst_pos2 = 2;
6878 dgst_pos3 = 1;
6879 break;
6880
6881 case 10: hash_type = HASH_TYPE_MD5;
6882 salt_type = SALT_TYPE_INTERN;
6883 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6884 opts_type = OPTS_TYPE_PT_GENERATE_LE
6885 | OPTS_TYPE_ST_ADD80
6886 | OPTS_TYPE_ST_ADDBITS14;
6887 kern_type = KERN_TYPE_MD5_PWSLT;
6888 dgst_size = DGST_SIZE_4_4;
6889 parse_func = md5s_parse_hash;
6890 sort_by_digest = sort_by_digest_4_4;
6891 opti_type = OPTI_TYPE_ZERO_BYTE
6892 | OPTI_TYPE_PRECOMPUTE_INIT
6893 | OPTI_TYPE_PRECOMPUTE_MERKLE
6894 | OPTI_TYPE_MEET_IN_MIDDLE
6895 | OPTI_TYPE_EARLY_SKIP
6896 | OPTI_TYPE_NOT_ITERATED
6897 | OPTI_TYPE_APPENDED_SALT
6898 | OPTI_TYPE_RAW_HASH;
6899 dgst_pos0 = 0;
6900 dgst_pos1 = 3;
6901 dgst_pos2 = 2;
6902 dgst_pos3 = 1;
6903 break;
6904
6905 case 11: hash_type = HASH_TYPE_MD5;
6906 salt_type = SALT_TYPE_INTERN;
6907 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6908 opts_type = OPTS_TYPE_PT_GENERATE_LE
6909 | OPTS_TYPE_ST_ADD80
6910 | OPTS_TYPE_ST_ADDBITS14;
6911 kern_type = KERN_TYPE_MD5_PWSLT;
6912 dgst_size = DGST_SIZE_4_4;
6913 parse_func = joomla_parse_hash;
6914 sort_by_digest = sort_by_digest_4_4;
6915 opti_type = OPTI_TYPE_ZERO_BYTE
6916 | OPTI_TYPE_PRECOMPUTE_INIT
6917 | OPTI_TYPE_PRECOMPUTE_MERKLE
6918 | OPTI_TYPE_MEET_IN_MIDDLE
6919 | OPTI_TYPE_EARLY_SKIP
6920 | OPTI_TYPE_NOT_ITERATED
6921 | OPTI_TYPE_APPENDED_SALT
6922 | OPTI_TYPE_RAW_HASH;
6923 dgst_pos0 = 0;
6924 dgst_pos1 = 3;
6925 dgst_pos2 = 2;
6926 dgst_pos3 = 1;
6927 break;
6928
6929 case 12: hash_type = HASH_TYPE_MD5;
6930 salt_type = SALT_TYPE_INTERN;
6931 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6932 opts_type = OPTS_TYPE_PT_GENERATE_LE
6933 | OPTS_TYPE_ST_ADD80
6934 | OPTS_TYPE_ST_ADDBITS14;
6935 kern_type = KERN_TYPE_MD5_PWSLT;
6936 dgst_size = DGST_SIZE_4_4;
6937 parse_func = postgresql_parse_hash;
6938 sort_by_digest = sort_by_digest_4_4;
6939 opti_type = OPTI_TYPE_ZERO_BYTE
6940 | OPTI_TYPE_PRECOMPUTE_INIT
6941 | OPTI_TYPE_PRECOMPUTE_MERKLE
6942 | OPTI_TYPE_MEET_IN_MIDDLE
6943 | OPTI_TYPE_EARLY_SKIP
6944 | OPTI_TYPE_NOT_ITERATED
6945 | OPTI_TYPE_APPENDED_SALT
6946 | OPTI_TYPE_RAW_HASH;
6947 dgst_pos0 = 0;
6948 dgst_pos1 = 3;
6949 dgst_pos2 = 2;
6950 dgst_pos3 = 1;
6951 break;
6952
6953 case 20: hash_type = HASH_TYPE_MD5;
6954 salt_type = SALT_TYPE_INTERN;
6955 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6956 opts_type = OPTS_TYPE_PT_GENERATE_LE
6957 | OPTS_TYPE_PT_ADD80
6958 | OPTS_TYPE_PT_ADDBITS14;
6959 kern_type = KERN_TYPE_MD5_SLTPW;
6960 dgst_size = DGST_SIZE_4_4;
6961 parse_func = md5s_parse_hash;
6962 sort_by_digest = sort_by_digest_4_4;
6963 opti_type = OPTI_TYPE_ZERO_BYTE
6964 | OPTI_TYPE_PRECOMPUTE_INIT
6965 | OPTI_TYPE_PRECOMPUTE_MERKLE
6966 | OPTI_TYPE_EARLY_SKIP
6967 | OPTI_TYPE_NOT_ITERATED
6968 | OPTI_TYPE_PREPENDED_SALT
6969 | OPTI_TYPE_RAW_HASH;
6970 dgst_pos0 = 0;
6971 dgst_pos1 = 3;
6972 dgst_pos2 = 2;
6973 dgst_pos3 = 1;
6974 break;
6975
6976 case 21: hash_type = HASH_TYPE_MD5;
6977 salt_type = SALT_TYPE_INTERN;
6978 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
6979 opts_type = OPTS_TYPE_PT_GENERATE_LE
6980 | OPTS_TYPE_PT_ADD80
6981 | OPTS_TYPE_PT_ADDBITS14;
6982 kern_type = KERN_TYPE_MD5_SLTPW;
6983 dgst_size = DGST_SIZE_4_4;
6984 parse_func = osc_parse_hash;
6985 sort_by_digest = sort_by_digest_4_4;
6986 opti_type = OPTI_TYPE_ZERO_BYTE
6987 | OPTI_TYPE_PRECOMPUTE_INIT
6988 | OPTI_TYPE_PRECOMPUTE_MERKLE
6989 | OPTI_TYPE_EARLY_SKIP
6990 | OPTI_TYPE_NOT_ITERATED
6991 | OPTI_TYPE_PREPENDED_SALT
6992 | OPTI_TYPE_RAW_HASH;
6993 dgst_pos0 = 0;
6994 dgst_pos1 = 3;
6995 dgst_pos2 = 2;
6996 dgst_pos3 = 1;
6997 break;
6998
6999 case 22: hash_type = HASH_TYPE_MD5;
7000 salt_type = SALT_TYPE_EMBEDDED;
7001 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7002 opts_type = OPTS_TYPE_PT_GENERATE_LE
7003 | OPTS_TYPE_PT_ADD80
7004 | OPTS_TYPE_PT_ADDBITS14;
7005 kern_type = KERN_TYPE_MD5_SLTPW;
7006 dgst_size = DGST_SIZE_4_4;
7007 parse_func = netscreen_parse_hash;
7008 sort_by_digest = sort_by_digest_4_4;
7009 opti_type = OPTI_TYPE_ZERO_BYTE
7010 | OPTI_TYPE_PRECOMPUTE_INIT
7011 | OPTI_TYPE_PRECOMPUTE_MERKLE
7012 | OPTI_TYPE_EARLY_SKIP
7013 | OPTI_TYPE_NOT_ITERATED
7014 | OPTI_TYPE_PREPENDED_SALT
7015 | OPTI_TYPE_RAW_HASH;
7016 dgst_pos0 = 0;
7017 dgst_pos1 = 3;
7018 dgst_pos2 = 2;
7019 dgst_pos3 = 1;
7020 break;
7021
7022 case 23: hash_type = HASH_TYPE_MD5;
7023 salt_type = SALT_TYPE_EMBEDDED;
7024 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7025 opts_type = OPTS_TYPE_PT_GENERATE_LE
7026 | OPTS_TYPE_PT_ADD80
7027 | OPTS_TYPE_PT_ADDBITS14;
7028 kern_type = KERN_TYPE_MD5_SLTPW;
7029 dgst_size = DGST_SIZE_4_4;
7030 parse_func = skype_parse_hash;
7031 sort_by_digest = sort_by_digest_4_4;
7032 opti_type = OPTI_TYPE_ZERO_BYTE
7033 | OPTI_TYPE_PRECOMPUTE_INIT
7034 | OPTI_TYPE_PRECOMPUTE_MERKLE
7035 | OPTI_TYPE_EARLY_SKIP
7036 | OPTI_TYPE_NOT_ITERATED
7037 | OPTI_TYPE_PREPENDED_SALT
7038 | OPTI_TYPE_RAW_HASH;
7039 dgst_pos0 = 0;
7040 dgst_pos1 = 3;
7041 dgst_pos2 = 2;
7042 dgst_pos3 = 1;
7043 break;
7044
7045 case 30: hash_type = HASH_TYPE_MD5;
7046 salt_type = SALT_TYPE_INTERN;
7047 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7048 opts_type = OPTS_TYPE_PT_GENERATE_LE
7049 | OPTS_TYPE_PT_UNICODE
7050 | OPTS_TYPE_ST_ADD80
7051 | OPTS_TYPE_ST_ADDBITS14;
7052 kern_type = KERN_TYPE_MD5_PWUSLT;
7053 dgst_size = DGST_SIZE_4_4;
7054 parse_func = md5s_parse_hash;
7055 sort_by_digest = sort_by_digest_4_4;
7056 opti_type = OPTI_TYPE_ZERO_BYTE
7057 | OPTI_TYPE_PRECOMPUTE_INIT
7058 | OPTI_TYPE_PRECOMPUTE_MERKLE
7059 | OPTI_TYPE_MEET_IN_MIDDLE
7060 | OPTI_TYPE_EARLY_SKIP
7061 | OPTI_TYPE_NOT_ITERATED
7062 | OPTI_TYPE_APPENDED_SALT
7063 | OPTI_TYPE_RAW_HASH;
7064 dgst_pos0 = 0;
7065 dgst_pos1 = 3;
7066 dgst_pos2 = 2;
7067 dgst_pos3 = 1;
7068 break;
7069
7070 case 40: hash_type = HASH_TYPE_MD5;
7071 salt_type = SALT_TYPE_INTERN;
7072 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7073 opts_type = OPTS_TYPE_PT_GENERATE_LE
7074 | OPTS_TYPE_PT_ADD80
7075 | OPTS_TYPE_PT_ADDBITS14
7076 | OPTS_TYPE_PT_UNICODE;
7077 kern_type = KERN_TYPE_MD5_SLTPWU;
7078 dgst_size = DGST_SIZE_4_4;
7079 parse_func = md5s_parse_hash;
7080 sort_by_digest = sort_by_digest_4_4;
7081 opti_type = OPTI_TYPE_ZERO_BYTE
7082 | OPTI_TYPE_PRECOMPUTE_INIT
7083 | OPTI_TYPE_PRECOMPUTE_MERKLE
7084 | OPTI_TYPE_EARLY_SKIP
7085 | OPTI_TYPE_NOT_ITERATED
7086 | OPTI_TYPE_PREPENDED_SALT
7087 | OPTI_TYPE_RAW_HASH;
7088 dgst_pos0 = 0;
7089 dgst_pos1 = 3;
7090 dgst_pos2 = 2;
7091 dgst_pos3 = 1;
7092 break;
7093
7094 case 50: hash_type = HASH_TYPE_MD5;
7095 salt_type = SALT_TYPE_INTERN;
7096 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7097 opts_type = OPTS_TYPE_PT_GENERATE_LE
7098 | OPTS_TYPE_ST_ADD80
7099 | OPTS_TYPE_ST_ADDBITS14;
7100 kern_type = KERN_TYPE_HMACMD5_PW;
7101 dgst_size = DGST_SIZE_4_4;
7102 parse_func = hmacmd5_parse_hash;
7103 sort_by_digest = sort_by_digest_4_4;
7104 opti_type = OPTI_TYPE_ZERO_BYTE
7105 | OPTI_TYPE_NOT_ITERATED;
7106 dgst_pos0 = 0;
7107 dgst_pos1 = 3;
7108 dgst_pos2 = 2;
7109 dgst_pos3 = 1;
7110 break;
7111
7112 case 60: hash_type = HASH_TYPE_MD5;
7113 salt_type = SALT_TYPE_INTERN;
7114 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7115 opts_type = OPTS_TYPE_PT_GENERATE_LE
7116 | OPTS_TYPE_PT_ADD80
7117 | OPTS_TYPE_PT_ADDBITS14;
7118 kern_type = KERN_TYPE_HMACMD5_SLT;
7119 dgst_size = DGST_SIZE_4_4;
7120 parse_func = hmacmd5_parse_hash;
7121 sort_by_digest = sort_by_digest_4_4;
7122 opti_type = OPTI_TYPE_ZERO_BYTE
7123 | OPTI_TYPE_NOT_ITERATED;
7124 dgst_pos0 = 0;
7125 dgst_pos1 = 3;
7126 dgst_pos2 = 2;
7127 dgst_pos3 = 1;
7128 break;
7129
7130 case 100: hash_type = HASH_TYPE_SHA1;
7131 salt_type = SALT_TYPE_NONE;
7132 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7133 opts_type = OPTS_TYPE_PT_GENERATE_BE
7134 | OPTS_TYPE_PT_ADD80
7135 | OPTS_TYPE_PT_ADDBITS15;
7136 kern_type = KERN_TYPE_SHA1;
7137 dgst_size = DGST_SIZE_4_5;
7138 parse_func = sha1_parse_hash;
7139 sort_by_digest = sort_by_digest_4_5;
7140 opti_type = OPTI_TYPE_ZERO_BYTE
7141 | OPTI_TYPE_PRECOMPUTE_INIT
7142 | OPTI_TYPE_PRECOMPUTE_MERKLE
7143 | OPTI_TYPE_EARLY_SKIP
7144 | OPTI_TYPE_NOT_ITERATED
7145 | OPTI_TYPE_NOT_SALTED
7146 | OPTI_TYPE_RAW_HASH;
7147 dgst_pos0 = 3;
7148 dgst_pos1 = 4;
7149 dgst_pos2 = 2;
7150 dgst_pos3 = 1;
7151 break;
7152
7153 case 101: hash_type = HASH_TYPE_SHA1;
7154 salt_type = SALT_TYPE_NONE;
7155 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7156 opts_type = OPTS_TYPE_PT_GENERATE_BE
7157 | OPTS_TYPE_PT_ADD80
7158 | OPTS_TYPE_PT_ADDBITS15;
7159 kern_type = KERN_TYPE_SHA1;
7160 dgst_size = DGST_SIZE_4_5;
7161 parse_func = sha1b64_parse_hash;
7162 sort_by_digest = sort_by_digest_4_5;
7163 opti_type = OPTI_TYPE_ZERO_BYTE
7164 | OPTI_TYPE_PRECOMPUTE_INIT
7165 | OPTI_TYPE_PRECOMPUTE_MERKLE
7166 | OPTI_TYPE_EARLY_SKIP
7167 | OPTI_TYPE_NOT_ITERATED
7168 | OPTI_TYPE_NOT_SALTED
7169 | OPTI_TYPE_RAW_HASH;
7170 dgst_pos0 = 3;
7171 dgst_pos1 = 4;
7172 dgst_pos2 = 2;
7173 dgst_pos3 = 1;
7174 break;
7175
7176 case 110: hash_type = HASH_TYPE_SHA1;
7177 salt_type = SALT_TYPE_INTERN;
7178 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7179 opts_type = OPTS_TYPE_PT_GENERATE_BE
7180 | OPTS_TYPE_ST_ADD80
7181 | OPTS_TYPE_ST_ADDBITS15;
7182 kern_type = KERN_TYPE_SHA1_PWSLT;
7183 dgst_size = DGST_SIZE_4_5;
7184 parse_func = sha1s_parse_hash;
7185 sort_by_digest = sort_by_digest_4_5;
7186 opti_type = OPTI_TYPE_ZERO_BYTE
7187 | OPTI_TYPE_PRECOMPUTE_INIT
7188 | OPTI_TYPE_PRECOMPUTE_MERKLE
7189 | OPTI_TYPE_EARLY_SKIP
7190 | OPTI_TYPE_NOT_ITERATED
7191 | OPTI_TYPE_APPENDED_SALT
7192 | OPTI_TYPE_RAW_HASH;
7193 dgst_pos0 = 3;
7194 dgst_pos1 = 4;
7195 dgst_pos2 = 2;
7196 dgst_pos3 = 1;
7197 break;
7198
7199 case 111: hash_type = HASH_TYPE_SHA1;
7200 salt_type = SALT_TYPE_EMBEDDED;
7201 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7202 opts_type = OPTS_TYPE_PT_GENERATE_BE
7203 | OPTS_TYPE_ST_ADD80
7204 | OPTS_TYPE_ST_ADDBITS15;
7205 kern_type = KERN_TYPE_SHA1_PWSLT;
7206 dgst_size = DGST_SIZE_4_5;
7207 parse_func = sha1b64s_parse_hash;
7208 sort_by_digest = sort_by_digest_4_5;
7209 opti_type = OPTI_TYPE_ZERO_BYTE
7210 | OPTI_TYPE_PRECOMPUTE_INIT
7211 | OPTI_TYPE_PRECOMPUTE_MERKLE
7212 | OPTI_TYPE_EARLY_SKIP
7213 | OPTI_TYPE_NOT_ITERATED
7214 | OPTI_TYPE_APPENDED_SALT
7215 | OPTI_TYPE_RAW_HASH;
7216 dgst_pos0 = 3;
7217 dgst_pos1 = 4;
7218 dgst_pos2 = 2;
7219 dgst_pos3 = 1;
7220 break;
7221
7222 case 112: hash_type = HASH_TYPE_SHA1;
7223 salt_type = SALT_TYPE_INTERN;
7224 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7225 opts_type = OPTS_TYPE_PT_GENERATE_BE
7226 | OPTS_TYPE_ST_ADD80
7227 | OPTS_TYPE_ST_ADDBITS15
7228 | OPTS_TYPE_ST_HEX;
7229 kern_type = KERN_TYPE_SHA1_PWSLT;
7230 dgst_size = DGST_SIZE_4_5;
7231 parse_func = oracles_parse_hash;
7232 sort_by_digest = sort_by_digest_4_5;
7233 opti_type = OPTI_TYPE_ZERO_BYTE
7234 | OPTI_TYPE_PRECOMPUTE_INIT
7235 | OPTI_TYPE_PRECOMPUTE_MERKLE
7236 | OPTI_TYPE_EARLY_SKIP
7237 | OPTI_TYPE_NOT_ITERATED
7238 | OPTI_TYPE_APPENDED_SALT
7239 | OPTI_TYPE_RAW_HASH;
7240 dgst_pos0 = 3;
7241 dgst_pos1 = 4;
7242 dgst_pos2 = 2;
7243 dgst_pos3 = 1;
7244 break;
7245
7246 case 120: hash_type = HASH_TYPE_SHA1;
7247 salt_type = SALT_TYPE_INTERN;
7248 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7249 opts_type = OPTS_TYPE_PT_GENERATE_BE
7250 | OPTS_TYPE_PT_ADD80
7251 | OPTS_TYPE_PT_ADDBITS15;
7252 kern_type = KERN_TYPE_SHA1_SLTPW;
7253 dgst_size = DGST_SIZE_4_5;
7254 parse_func = sha1s_parse_hash;
7255 sort_by_digest = sort_by_digest_4_5;
7256 opti_type = OPTI_TYPE_ZERO_BYTE
7257 | OPTI_TYPE_PRECOMPUTE_INIT
7258 | OPTI_TYPE_PRECOMPUTE_MERKLE
7259 | OPTI_TYPE_EARLY_SKIP
7260 | OPTI_TYPE_NOT_ITERATED
7261 | OPTI_TYPE_PREPENDED_SALT
7262 | OPTI_TYPE_RAW_HASH;
7263 dgst_pos0 = 3;
7264 dgst_pos1 = 4;
7265 dgst_pos2 = 2;
7266 dgst_pos3 = 1;
7267 break;
7268
7269 case 121: hash_type = HASH_TYPE_SHA1;
7270 salt_type = SALT_TYPE_INTERN;
7271 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7272 opts_type = OPTS_TYPE_PT_GENERATE_BE
7273 | OPTS_TYPE_PT_ADD80
7274 | OPTS_TYPE_PT_ADDBITS15
7275 | OPTS_TYPE_ST_LOWER;
7276 kern_type = KERN_TYPE_SHA1_SLTPW;
7277 dgst_size = DGST_SIZE_4_5;
7278 parse_func = smf_parse_hash;
7279 sort_by_digest = sort_by_digest_4_5;
7280 opti_type = OPTI_TYPE_ZERO_BYTE
7281 | OPTI_TYPE_PRECOMPUTE_INIT
7282 | OPTI_TYPE_PRECOMPUTE_MERKLE
7283 | OPTI_TYPE_EARLY_SKIP
7284 | OPTI_TYPE_NOT_ITERATED
7285 | OPTI_TYPE_PREPENDED_SALT
7286 | OPTI_TYPE_RAW_HASH;
7287 dgst_pos0 = 3;
7288 dgst_pos1 = 4;
7289 dgst_pos2 = 2;
7290 dgst_pos3 = 1;
7291 break;
7292
7293 case 122: hash_type = HASH_TYPE_SHA1;
7294 salt_type = SALT_TYPE_EMBEDDED;
7295 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7296 opts_type = OPTS_TYPE_PT_GENERATE_BE
7297 | OPTS_TYPE_PT_ADD80
7298 | OPTS_TYPE_PT_ADDBITS15
7299 | OPTS_TYPE_ST_HEX;
7300 kern_type = KERN_TYPE_SHA1_SLTPW;
7301 dgst_size = DGST_SIZE_4_5;
7302 parse_func = osx1_parse_hash;
7303 sort_by_digest = sort_by_digest_4_5;
7304 opti_type = OPTI_TYPE_ZERO_BYTE
7305 | OPTI_TYPE_PRECOMPUTE_INIT
7306 | OPTI_TYPE_PRECOMPUTE_MERKLE
7307 | OPTI_TYPE_EARLY_SKIP
7308 | OPTI_TYPE_NOT_ITERATED
7309 | OPTI_TYPE_PREPENDED_SALT
7310 | OPTI_TYPE_RAW_HASH;
7311 dgst_pos0 = 3;
7312 dgst_pos1 = 4;
7313 dgst_pos2 = 2;
7314 dgst_pos3 = 1;
7315 break;
7316
7317 case 124: hash_type = HASH_TYPE_SHA1;
7318 salt_type = SALT_TYPE_EMBEDDED;
7319 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7320 opts_type = OPTS_TYPE_PT_GENERATE_BE
7321 | OPTS_TYPE_PT_ADD80
7322 | OPTS_TYPE_PT_ADDBITS15;
7323 kern_type = KERN_TYPE_SHA1_SLTPW;
7324 dgst_size = DGST_SIZE_4_5;
7325 parse_func = djangosha1_parse_hash;
7326 sort_by_digest = sort_by_digest_4_5;
7327 opti_type = OPTI_TYPE_ZERO_BYTE
7328 | OPTI_TYPE_PRECOMPUTE_INIT
7329 | OPTI_TYPE_PRECOMPUTE_MERKLE
7330 | OPTI_TYPE_EARLY_SKIP
7331 | OPTI_TYPE_NOT_ITERATED
7332 | OPTI_TYPE_PREPENDED_SALT
7333 | OPTI_TYPE_RAW_HASH;
7334 dgst_pos0 = 3;
7335 dgst_pos1 = 4;
7336 dgst_pos2 = 2;
7337 dgst_pos3 = 1;
7338 break;
7339
7340 case 125: hash_type = HASH_TYPE_SHA1;
7341 salt_type = SALT_TYPE_EMBEDDED;
7342 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7343 opts_type = OPTS_TYPE_PT_GENERATE_BE
7344 | OPTS_TYPE_PT_ADD80
7345 | OPTS_TYPE_PT_ADDBITS15
7346 | OPTS_TYPE_ST_HEX;
7347 kern_type = KERN_TYPE_SHA1_SLTPW;
7348 dgst_size = DGST_SIZE_4_5;
7349 parse_func = arubaos_parse_hash;
7350 sort_by_digest = sort_by_digest_4_5;
7351 opti_type = OPTI_TYPE_ZERO_BYTE
7352 | OPTI_TYPE_PRECOMPUTE_INIT
7353 | OPTI_TYPE_PRECOMPUTE_MERKLE
7354 | OPTI_TYPE_EARLY_SKIP
7355 | OPTI_TYPE_NOT_ITERATED
7356 | OPTI_TYPE_PREPENDED_SALT
7357 | OPTI_TYPE_RAW_HASH;
7358 dgst_pos0 = 3;
7359 dgst_pos1 = 4;
7360 dgst_pos2 = 2;
7361 dgst_pos3 = 1;
7362 break;
7363
7364 case 130: hash_type = HASH_TYPE_SHA1;
7365 salt_type = SALT_TYPE_INTERN;
7366 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7367 opts_type = OPTS_TYPE_PT_GENERATE_BE
7368 | OPTS_TYPE_PT_UNICODE
7369 | OPTS_TYPE_ST_ADD80
7370 | OPTS_TYPE_ST_ADDBITS15;
7371 kern_type = KERN_TYPE_SHA1_PWUSLT;
7372 dgst_size = DGST_SIZE_4_5;
7373 parse_func = sha1s_parse_hash;
7374 sort_by_digest = sort_by_digest_4_5;
7375 opti_type = OPTI_TYPE_ZERO_BYTE
7376 | OPTI_TYPE_PRECOMPUTE_INIT
7377 | OPTI_TYPE_PRECOMPUTE_MERKLE
7378 | OPTI_TYPE_EARLY_SKIP
7379 | OPTI_TYPE_NOT_ITERATED
7380 | OPTI_TYPE_APPENDED_SALT
7381 | OPTI_TYPE_RAW_HASH;
7382 dgst_pos0 = 3;
7383 dgst_pos1 = 4;
7384 dgst_pos2 = 2;
7385 dgst_pos3 = 1;
7386 break;
7387
7388 case 131: hash_type = HASH_TYPE_SHA1;
7389 salt_type = SALT_TYPE_EMBEDDED;
7390 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7391 opts_type = OPTS_TYPE_PT_GENERATE_BE
7392 | OPTS_TYPE_PT_UNICODE
7393 | OPTS_TYPE_PT_UPPER
7394 | OPTS_TYPE_ST_ADD80
7395 | OPTS_TYPE_ST_ADDBITS15
7396 | OPTS_TYPE_ST_HEX;
7397 kern_type = KERN_TYPE_SHA1_PWUSLT;
7398 dgst_size = DGST_SIZE_4_5;
7399 parse_func = mssql2000_parse_hash;
7400 sort_by_digest = sort_by_digest_4_5;
7401 opti_type = OPTI_TYPE_ZERO_BYTE
7402 | OPTI_TYPE_PRECOMPUTE_INIT
7403 | OPTI_TYPE_PRECOMPUTE_MERKLE
7404 | OPTI_TYPE_EARLY_SKIP
7405 | OPTI_TYPE_NOT_ITERATED
7406 | OPTI_TYPE_APPENDED_SALT
7407 | OPTI_TYPE_RAW_HASH;
7408 dgst_pos0 = 3;
7409 dgst_pos1 = 4;
7410 dgst_pos2 = 2;
7411 dgst_pos3 = 1;
7412 break;
7413
7414 case 132: hash_type = HASH_TYPE_SHA1;
7415 salt_type = SALT_TYPE_EMBEDDED;
7416 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7417 opts_type = OPTS_TYPE_PT_GENERATE_BE
7418 | OPTS_TYPE_PT_UNICODE
7419 | OPTS_TYPE_ST_ADD80
7420 | OPTS_TYPE_ST_ADDBITS15
7421 | OPTS_TYPE_ST_HEX;
7422 kern_type = KERN_TYPE_SHA1_PWUSLT;
7423 dgst_size = DGST_SIZE_4_5;
7424 parse_func = mssql2005_parse_hash;
7425 sort_by_digest = sort_by_digest_4_5;
7426 opti_type = OPTI_TYPE_ZERO_BYTE
7427 | OPTI_TYPE_PRECOMPUTE_INIT
7428 | OPTI_TYPE_PRECOMPUTE_MERKLE
7429 | OPTI_TYPE_EARLY_SKIP
7430 | OPTI_TYPE_NOT_ITERATED
7431 | OPTI_TYPE_APPENDED_SALT
7432 | OPTI_TYPE_RAW_HASH;
7433 dgst_pos0 = 3;
7434 dgst_pos1 = 4;
7435 dgst_pos2 = 2;
7436 dgst_pos3 = 1;
7437 break;
7438
7439 case 133: hash_type = HASH_TYPE_SHA1;
7440 salt_type = SALT_TYPE_EMBEDDED;
7441 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7442 opts_type = OPTS_TYPE_PT_GENERATE_BE
7443 | OPTS_TYPE_PT_UNICODE
7444 | OPTS_TYPE_ST_ADD80
7445 | OPTS_TYPE_ST_ADDBITS15;
7446 kern_type = KERN_TYPE_SHA1_PWUSLT;
7447 dgst_size = DGST_SIZE_4_5;
7448 parse_func = peoplesoft_parse_hash;
7449 sort_by_digest = sort_by_digest_4_5;
7450 opti_type = OPTI_TYPE_ZERO_BYTE
7451 | OPTI_TYPE_PRECOMPUTE_INIT
7452 | OPTI_TYPE_PRECOMPUTE_MERKLE
7453 | OPTI_TYPE_EARLY_SKIP
7454 | OPTI_TYPE_NOT_ITERATED
7455 | OPTI_TYPE_APPENDED_SALT
7456 | OPTI_TYPE_RAW_HASH;
7457 dgst_pos0 = 3;
7458 dgst_pos1 = 4;
7459 dgst_pos2 = 2;
7460 dgst_pos3 = 1;
7461 break;
7462
7463 case 140: hash_type = HASH_TYPE_SHA1;
7464 salt_type = SALT_TYPE_INTERN;
7465 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7466 opts_type = OPTS_TYPE_PT_GENERATE_BE
7467 | OPTS_TYPE_PT_ADD80
7468 | OPTS_TYPE_PT_ADDBITS15
7469 | OPTS_TYPE_PT_UNICODE;
7470 kern_type = KERN_TYPE_SHA1_SLTPWU;
7471 dgst_size = DGST_SIZE_4_5;
7472 parse_func = sha1s_parse_hash;
7473 sort_by_digest = sort_by_digest_4_5;
7474 opti_type = OPTI_TYPE_ZERO_BYTE
7475 | OPTI_TYPE_PRECOMPUTE_INIT
7476 | OPTI_TYPE_PRECOMPUTE_MERKLE
7477 | OPTI_TYPE_EARLY_SKIP
7478 | OPTI_TYPE_NOT_ITERATED
7479 | OPTI_TYPE_PREPENDED_SALT
7480 | OPTI_TYPE_RAW_HASH;
7481 dgst_pos0 = 3;
7482 dgst_pos1 = 4;
7483 dgst_pos2 = 2;
7484 dgst_pos3 = 1;
7485 break;
7486
7487 case 141: hash_type = HASH_TYPE_SHA1;
7488 salt_type = SALT_TYPE_EMBEDDED;
7489 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7490 opts_type = OPTS_TYPE_PT_GENERATE_BE
7491 | OPTS_TYPE_PT_ADD80
7492 | OPTS_TYPE_PT_ADDBITS15
7493 | OPTS_TYPE_PT_UNICODE
7494 | OPTS_TYPE_ST_BASE64;
7495 kern_type = KERN_TYPE_SHA1_SLTPWU;
7496 dgst_size = DGST_SIZE_4_5;
7497 parse_func = episerver_parse_hash;
7498 sort_by_digest = sort_by_digest_4_5;
7499 opti_type = OPTI_TYPE_ZERO_BYTE
7500 | OPTI_TYPE_PRECOMPUTE_INIT
7501 | OPTI_TYPE_PRECOMPUTE_MERKLE
7502 | OPTI_TYPE_EARLY_SKIP
7503 | OPTI_TYPE_NOT_ITERATED
7504 | OPTI_TYPE_PREPENDED_SALT
7505 | OPTI_TYPE_RAW_HASH;
7506 dgst_pos0 = 3;
7507 dgst_pos1 = 4;
7508 dgst_pos2 = 2;
7509 dgst_pos3 = 1;
7510 break;
7511
7512 case 150: hash_type = HASH_TYPE_SHA1;
7513 salt_type = SALT_TYPE_INTERN;
7514 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7515 opts_type = OPTS_TYPE_PT_GENERATE_BE
7516 | OPTS_TYPE_ST_ADD80
7517 | OPTS_TYPE_ST_ADDBITS15;
7518 kern_type = KERN_TYPE_HMACSHA1_PW;
7519 dgst_size = DGST_SIZE_4_5;
7520 parse_func = hmacsha1_parse_hash;
7521 sort_by_digest = sort_by_digest_4_5;
7522 opti_type = OPTI_TYPE_ZERO_BYTE
7523 | OPTI_TYPE_NOT_ITERATED;
7524 dgst_pos0 = 3;
7525 dgst_pos1 = 4;
7526 dgst_pos2 = 2;
7527 dgst_pos3 = 1;
7528 break;
7529
7530 case 160: hash_type = HASH_TYPE_SHA1;
7531 salt_type = SALT_TYPE_INTERN;
7532 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7533 opts_type = OPTS_TYPE_PT_GENERATE_BE
7534 | OPTS_TYPE_PT_ADD80
7535 | OPTS_TYPE_PT_ADDBITS15;
7536 kern_type = KERN_TYPE_HMACSHA1_SLT;
7537 dgst_size = DGST_SIZE_4_5;
7538 parse_func = hmacsha1_parse_hash;
7539 sort_by_digest = sort_by_digest_4_5;
7540 opti_type = OPTI_TYPE_ZERO_BYTE
7541 | OPTI_TYPE_NOT_ITERATED;
7542 dgst_pos0 = 3;
7543 dgst_pos1 = 4;
7544 dgst_pos2 = 2;
7545 dgst_pos3 = 1;
7546 break;
7547
7548 case 190: hash_type = HASH_TYPE_SHA1;
7549 salt_type = SALT_TYPE_NONE;
7550 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7551 opts_type = OPTS_TYPE_PT_GENERATE_BE
7552 | OPTS_TYPE_PT_ADD80
7553 | OPTS_TYPE_PT_ADDBITS15;
7554 kern_type = KERN_TYPE_SHA1_LINKEDIN;
7555 dgst_size = DGST_SIZE_4_5;
7556 parse_func = sha1linkedin_parse_hash;
7557 sort_by_digest = sort_by_digest_4_5;
7558 opti_type = OPTI_TYPE_ZERO_BYTE
7559 | OPTI_TYPE_PRECOMPUTE_INIT
7560 | OPTI_TYPE_EARLY_SKIP
7561 | OPTI_TYPE_NOT_ITERATED
7562 | OPTI_TYPE_NOT_SALTED;
7563 dgst_pos0 = 0;
7564 dgst_pos1 = 4;
7565 dgst_pos2 = 3;
7566 dgst_pos3 = 2;
7567 break;
7568
7569 case 200: hash_type = HASH_TYPE_MYSQL;
7570 salt_type = SALT_TYPE_NONE;
7571 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7572 opts_type = 0;
7573 kern_type = KERN_TYPE_MYSQL;
7574 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
7575 parse_func = mysql323_parse_hash;
7576 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
7577 opti_type = OPTI_TYPE_ZERO_BYTE;
7578 dgst_pos0 = 0;
7579 dgst_pos1 = 1;
7580 dgst_pos2 = 2;
7581 dgst_pos3 = 3;
7582 break;
7583
7584 case 300: hash_type = HASH_TYPE_SHA1;
7585 salt_type = SALT_TYPE_NONE;
7586 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7587 opts_type = OPTS_TYPE_PT_GENERATE_BE
7588 | OPTS_TYPE_PT_ADD80
7589 | OPTS_TYPE_PT_ADDBITS15;
7590 kern_type = KERN_TYPE_MYSQL41;
7591 dgst_size = DGST_SIZE_4_5;
7592 parse_func = sha1_parse_hash;
7593 sort_by_digest = sort_by_digest_4_5;
7594 opti_type = OPTI_TYPE_ZERO_BYTE
7595 | OPTI_TYPE_PRECOMPUTE_INIT
7596 | OPTI_TYPE_PRECOMPUTE_MERKLE
7597 | OPTI_TYPE_EARLY_SKIP
7598 | OPTI_TYPE_NOT_ITERATED
7599 | OPTI_TYPE_NOT_SALTED;
7600 dgst_pos0 = 3;
7601 dgst_pos1 = 4;
7602 dgst_pos2 = 2;
7603 dgst_pos3 = 1;
7604 break;
7605
7606 case 400: hash_type = HASH_TYPE_MD5;
7607 salt_type = SALT_TYPE_EMBEDDED;
7608 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
7609 opts_type = OPTS_TYPE_PT_GENERATE_LE;
7610 kern_type = KERN_TYPE_PHPASS;
7611 dgst_size = DGST_SIZE_4_4;
7612 parse_func = phpass_parse_hash;
7613 sort_by_digest = sort_by_digest_4_4;
7614 opti_type = OPTI_TYPE_ZERO_BYTE;
7615 dgst_pos0 = 0;
7616 dgst_pos1 = 1;
7617 dgst_pos2 = 2;
7618 dgst_pos3 = 3;
7619 break;
7620
7621 case 500: hash_type = HASH_TYPE_MD5;
7622 salt_type = SALT_TYPE_EMBEDDED;
7623 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
7624 opts_type = OPTS_TYPE_PT_GENERATE_LE;
7625 kern_type = KERN_TYPE_MD5CRYPT;
7626 dgst_size = DGST_SIZE_4_4;
7627 parse_func = md5crypt_parse_hash;
7628 sort_by_digest = sort_by_digest_4_4;
7629 opti_type = OPTI_TYPE_ZERO_BYTE;
7630 dgst_pos0 = 0;
7631 dgst_pos1 = 1;
7632 dgst_pos2 = 2;
7633 dgst_pos3 = 3;
7634 break;
7635
7636 case 501: hash_type = HASH_TYPE_MD5;
7637 salt_type = SALT_TYPE_EMBEDDED;
7638 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
7639 opts_type = OPTS_TYPE_PT_GENERATE_LE
7640 | OPTS_TYPE_HASH_COPY;
7641 kern_type = KERN_TYPE_MD5CRYPT;
7642 dgst_size = DGST_SIZE_4_4;
7643 parse_func = juniper_parse_hash;
7644 sort_by_digest = sort_by_digest_4_4;
7645 opti_type = OPTI_TYPE_ZERO_BYTE;
7646 dgst_pos0 = 0;
7647 dgst_pos1 = 1;
7648 dgst_pos2 = 2;
7649 dgst_pos3 = 3;
7650 break;
7651
7652 case 900: hash_type = HASH_TYPE_MD4;
7653 salt_type = SALT_TYPE_NONE;
7654 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7655 opts_type = OPTS_TYPE_PT_GENERATE_LE
7656 | OPTS_TYPE_PT_ADD80
7657 | OPTS_TYPE_PT_ADDBITS14;
7658 kern_type = KERN_TYPE_MD4;
7659 dgst_size = DGST_SIZE_4_4;
7660 parse_func = md4_parse_hash;
7661 sort_by_digest = sort_by_digest_4_4;
7662 opti_type = OPTI_TYPE_ZERO_BYTE
7663 | OPTI_TYPE_PRECOMPUTE_INIT
7664 | OPTI_TYPE_PRECOMPUTE_MERKLE
7665 | OPTI_TYPE_MEET_IN_MIDDLE
7666 | OPTI_TYPE_EARLY_SKIP
7667 | OPTI_TYPE_NOT_ITERATED
7668 | OPTI_TYPE_NOT_SALTED
7669 | OPTI_TYPE_RAW_HASH;
7670 dgst_pos0 = 0;
7671 dgst_pos1 = 3;
7672 dgst_pos2 = 2;
7673 dgst_pos3 = 1;
7674 break;
7675
7676 case 1000: hash_type = HASH_TYPE_MD4;
7677 salt_type = SALT_TYPE_NONE;
7678 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7679 opts_type = OPTS_TYPE_PT_GENERATE_LE
7680 | OPTS_TYPE_PT_ADD80
7681 | OPTS_TYPE_PT_ADDBITS14
7682 | OPTS_TYPE_PT_UNICODE;
7683 kern_type = KERN_TYPE_MD4_PWU;
7684 dgst_size = DGST_SIZE_4_4;
7685 parse_func = md4_parse_hash;
7686 sort_by_digest = sort_by_digest_4_4;
7687 opti_type = OPTI_TYPE_ZERO_BYTE
7688 | OPTI_TYPE_PRECOMPUTE_INIT
7689 | OPTI_TYPE_PRECOMPUTE_MERKLE
7690 | OPTI_TYPE_MEET_IN_MIDDLE
7691 | OPTI_TYPE_EARLY_SKIP
7692 | OPTI_TYPE_NOT_ITERATED
7693 | OPTI_TYPE_NOT_SALTED
7694 | OPTI_TYPE_RAW_HASH;
7695 dgst_pos0 = 0;
7696 dgst_pos1 = 3;
7697 dgst_pos2 = 2;
7698 dgst_pos3 = 1;
7699 break;
7700
7701 case 1100: hash_type = HASH_TYPE_MD4;
7702 salt_type = SALT_TYPE_INTERN;
7703 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7704 opts_type = OPTS_TYPE_PT_GENERATE_LE
7705 | OPTS_TYPE_PT_ADD80
7706 | OPTS_TYPE_PT_ADDBITS14
7707 | OPTS_TYPE_PT_UNICODE
7708 | OPTS_TYPE_ST_ADD80
7709 | OPTS_TYPE_ST_UNICODE
7710 | OPTS_TYPE_ST_LOWER;
7711 kern_type = KERN_TYPE_MD44_PWUSLT;
7712 dgst_size = DGST_SIZE_4_4;
7713 parse_func = dcc_parse_hash;
7714 sort_by_digest = sort_by_digest_4_4;
7715 opti_type = OPTI_TYPE_ZERO_BYTE
7716 | OPTI_TYPE_PRECOMPUTE_INIT
7717 | OPTI_TYPE_PRECOMPUTE_MERKLE
7718 | OPTI_TYPE_EARLY_SKIP
7719 | OPTI_TYPE_NOT_ITERATED;
7720 dgst_pos0 = 0;
7721 dgst_pos1 = 3;
7722 dgst_pos2 = 2;
7723 dgst_pos3 = 1;
7724 break;
7725
7726 case 1400: hash_type = HASH_TYPE_SHA256;
7727 salt_type = SALT_TYPE_NONE;
7728 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7729 opts_type = OPTS_TYPE_PT_GENERATE_BE
7730 | OPTS_TYPE_PT_ADD80
7731 | OPTS_TYPE_PT_ADDBITS15;
7732 kern_type = KERN_TYPE_SHA256;
7733 dgst_size = DGST_SIZE_4_8;
7734 parse_func = sha256_parse_hash;
7735 sort_by_digest = sort_by_digest_4_8;
7736 opti_type = OPTI_TYPE_ZERO_BYTE
7737 | OPTI_TYPE_PRECOMPUTE_INIT
7738 | OPTI_TYPE_PRECOMPUTE_MERKLE
7739 | OPTI_TYPE_EARLY_SKIP
7740 | OPTI_TYPE_NOT_ITERATED
7741 | OPTI_TYPE_NOT_SALTED
7742 | OPTI_TYPE_RAW_HASH;
7743 dgst_pos0 = 3;
7744 dgst_pos1 = 7;
7745 dgst_pos2 = 2;
7746 dgst_pos3 = 6;
7747 break;
7748
7749 case 1410: hash_type = HASH_TYPE_SHA256;
7750 salt_type = SALT_TYPE_INTERN;
7751 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7752 opts_type = OPTS_TYPE_PT_GENERATE_BE
7753 | OPTS_TYPE_ST_ADD80
7754 | OPTS_TYPE_ST_ADDBITS15;
7755 kern_type = KERN_TYPE_SHA256_PWSLT;
7756 dgst_size = DGST_SIZE_4_8;
7757 parse_func = sha256s_parse_hash;
7758 sort_by_digest = sort_by_digest_4_8;
7759 opti_type = OPTI_TYPE_ZERO_BYTE
7760 | OPTI_TYPE_PRECOMPUTE_INIT
7761 | OPTI_TYPE_PRECOMPUTE_MERKLE
7762 | OPTI_TYPE_EARLY_SKIP
7763 | OPTI_TYPE_NOT_ITERATED
7764 | OPTI_TYPE_APPENDED_SALT
7765 | OPTI_TYPE_RAW_HASH;
7766 dgst_pos0 = 3;
7767 dgst_pos1 = 7;
7768 dgst_pos2 = 2;
7769 dgst_pos3 = 6;
7770 break;
7771
7772 case 1420: hash_type = HASH_TYPE_SHA256;
7773 salt_type = SALT_TYPE_INTERN;
7774 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7775 opts_type = OPTS_TYPE_PT_GENERATE_BE
7776 | OPTS_TYPE_PT_ADD80
7777 | OPTS_TYPE_PT_ADDBITS15;
7778 kern_type = KERN_TYPE_SHA256_SLTPW;
7779 dgst_size = DGST_SIZE_4_8;
7780 parse_func = sha256s_parse_hash;
7781 sort_by_digest = sort_by_digest_4_8;
7782 opti_type = OPTI_TYPE_ZERO_BYTE
7783 | OPTI_TYPE_PRECOMPUTE_INIT
7784 | OPTI_TYPE_PRECOMPUTE_MERKLE
7785 | OPTI_TYPE_EARLY_SKIP
7786 | OPTI_TYPE_NOT_ITERATED
7787 | OPTI_TYPE_PREPENDED_SALT
7788 | OPTI_TYPE_RAW_HASH;
7789 dgst_pos0 = 3;
7790 dgst_pos1 = 7;
7791 dgst_pos2 = 2;
7792 dgst_pos3 = 6;
7793 break;
7794
7795 case 1421: hash_type = HASH_TYPE_SHA256;
7796 salt_type = SALT_TYPE_EMBEDDED;
7797 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7798 opts_type = OPTS_TYPE_PT_GENERATE_BE
7799 | OPTS_TYPE_PT_ADD80
7800 | OPTS_TYPE_PT_ADDBITS15;
7801 kern_type = KERN_TYPE_SHA256_SLTPW;
7802 dgst_size = DGST_SIZE_4_8;
7803 parse_func = hmailserver_parse_hash;
7804 sort_by_digest = sort_by_digest_4_8;
7805 opti_type = OPTI_TYPE_ZERO_BYTE
7806 | OPTI_TYPE_PRECOMPUTE_INIT
7807 | OPTI_TYPE_PRECOMPUTE_MERKLE
7808 | OPTI_TYPE_EARLY_SKIP
7809 | OPTI_TYPE_NOT_ITERATED
7810 | OPTI_TYPE_PREPENDED_SALT
7811 | OPTI_TYPE_RAW_HASH;
7812 dgst_pos0 = 3;
7813 dgst_pos1 = 7;
7814 dgst_pos2 = 2;
7815 dgst_pos3 = 6;
7816 break;
7817
7818 case 1430: hash_type = HASH_TYPE_SHA256;
7819 salt_type = SALT_TYPE_INTERN;
7820 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7821 opts_type = OPTS_TYPE_PT_GENERATE_BE
7822 | OPTS_TYPE_PT_UNICODE
7823 | OPTS_TYPE_ST_ADD80
7824 | OPTS_TYPE_ST_ADDBITS15;
7825 kern_type = KERN_TYPE_SHA256_PWUSLT;
7826 dgst_size = DGST_SIZE_4_8;
7827 parse_func = sha256s_parse_hash;
7828 sort_by_digest = sort_by_digest_4_8;
7829 opti_type = OPTI_TYPE_ZERO_BYTE
7830 | OPTI_TYPE_PRECOMPUTE_INIT
7831 | OPTI_TYPE_PRECOMPUTE_MERKLE
7832 | OPTI_TYPE_EARLY_SKIP
7833 | OPTI_TYPE_NOT_ITERATED
7834 | OPTI_TYPE_APPENDED_SALT
7835 | OPTI_TYPE_RAW_HASH;
7836 dgst_pos0 = 3;
7837 dgst_pos1 = 7;
7838 dgst_pos2 = 2;
7839 dgst_pos3 = 6;
7840 break;
7841
7842 case 1440: hash_type = HASH_TYPE_SHA256;
7843 salt_type = SALT_TYPE_INTERN;
7844 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7845 opts_type = OPTS_TYPE_PT_GENERATE_BE
7846 | OPTS_TYPE_PT_ADD80
7847 | OPTS_TYPE_PT_ADDBITS15
7848 | OPTS_TYPE_PT_UNICODE;
7849 kern_type = KERN_TYPE_SHA256_SLTPWU;
7850 dgst_size = DGST_SIZE_4_8;
7851 parse_func = sha256s_parse_hash;
7852 sort_by_digest = sort_by_digest_4_8;
7853 opti_type = OPTI_TYPE_ZERO_BYTE
7854 | OPTI_TYPE_PRECOMPUTE_INIT
7855 | OPTI_TYPE_PRECOMPUTE_MERKLE
7856 | OPTI_TYPE_EARLY_SKIP
7857 | OPTI_TYPE_NOT_ITERATED
7858 | OPTI_TYPE_PREPENDED_SALT
7859 | OPTI_TYPE_RAW_HASH;
7860 dgst_pos0 = 3;
7861 dgst_pos1 = 7;
7862 dgst_pos2 = 2;
7863 dgst_pos3 = 6;
7864 break;
7865
7866 case 1441: hash_type = HASH_TYPE_SHA256;
7867 salt_type = SALT_TYPE_EMBEDDED;
7868 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7869 opts_type = OPTS_TYPE_PT_GENERATE_BE
7870 | OPTS_TYPE_PT_ADD80
7871 | OPTS_TYPE_PT_ADDBITS15
7872 | OPTS_TYPE_PT_UNICODE
7873 | OPTS_TYPE_ST_BASE64;
7874 kern_type = KERN_TYPE_SHA256_SLTPWU;
7875 dgst_size = DGST_SIZE_4_8;
7876 parse_func = episerver4_parse_hash;
7877 sort_by_digest = sort_by_digest_4_8;
7878 opti_type = OPTI_TYPE_ZERO_BYTE
7879 | OPTI_TYPE_PRECOMPUTE_INIT
7880 | OPTI_TYPE_PRECOMPUTE_MERKLE
7881 | OPTI_TYPE_EARLY_SKIP
7882 | OPTI_TYPE_NOT_ITERATED
7883 | OPTI_TYPE_PREPENDED_SALT
7884 | OPTI_TYPE_RAW_HASH;
7885 dgst_pos0 = 3;
7886 dgst_pos1 = 7;
7887 dgst_pos2 = 2;
7888 dgst_pos3 = 6;
7889 break;
7890
7891 case 1450: hash_type = HASH_TYPE_SHA256;
7892 salt_type = SALT_TYPE_INTERN;
7893 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7894 opts_type = OPTS_TYPE_PT_GENERATE_BE
7895 | OPTS_TYPE_ST_ADD80;
7896 kern_type = KERN_TYPE_HMACSHA256_PW;
7897 dgst_size = DGST_SIZE_4_8;
7898 parse_func = hmacsha256_parse_hash;
7899 sort_by_digest = sort_by_digest_4_8;
7900 opti_type = OPTI_TYPE_ZERO_BYTE
7901 | OPTI_TYPE_NOT_ITERATED;
7902 dgst_pos0 = 3;
7903 dgst_pos1 = 7;
7904 dgst_pos2 = 2;
7905 dgst_pos3 = 6;
7906 break;
7907
7908 case 1460: hash_type = HASH_TYPE_SHA256;
7909 salt_type = SALT_TYPE_INTERN;
7910 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7911 opts_type = OPTS_TYPE_PT_GENERATE_BE
7912 | OPTS_TYPE_PT_ADD80
7913 | OPTS_TYPE_PT_ADDBITS15;
7914 kern_type = KERN_TYPE_HMACSHA256_SLT;
7915 dgst_size = DGST_SIZE_4_8;
7916 parse_func = hmacsha256_parse_hash;
7917 sort_by_digest = sort_by_digest_4_8;
7918 opti_type = OPTI_TYPE_ZERO_BYTE
7919 | OPTI_TYPE_NOT_ITERATED;
7920 dgst_pos0 = 3;
7921 dgst_pos1 = 7;
7922 dgst_pos2 = 2;
7923 dgst_pos3 = 6;
7924 break;
7925
7926 case 1500: hash_type = HASH_TYPE_DESCRYPT;
7927 salt_type = SALT_TYPE_EMBEDDED;
7928 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7929 opts_type = OPTS_TYPE_PT_GENERATE_LE
7930 | OPTS_TYPE_PT_BITSLICE;
7931 kern_type = KERN_TYPE_DESCRYPT;
7932 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
7933 parse_func = descrypt_parse_hash;
7934 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
7935 opti_type = OPTI_TYPE_ZERO_BYTE
7936 | OPTI_TYPE_PRECOMPUTE_PERMUT;
7937 dgst_pos0 = 0;
7938 dgst_pos1 = 1;
7939 dgst_pos2 = 2;
7940 dgst_pos3 = 3;
7941 break;
7942
7943 case 1600: hash_type = HASH_TYPE_MD5;
7944 salt_type = SALT_TYPE_EMBEDDED;
7945 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
7946 opts_type = OPTS_TYPE_PT_GENERATE_LE;
7947 kern_type = KERN_TYPE_APR1CRYPT;
7948 dgst_size = DGST_SIZE_4_4;
7949 parse_func = md5apr1_parse_hash;
7950 sort_by_digest = sort_by_digest_4_4;
7951 opti_type = OPTI_TYPE_ZERO_BYTE;
7952 dgst_pos0 = 0;
7953 dgst_pos1 = 1;
7954 dgst_pos2 = 2;
7955 dgst_pos3 = 3;
7956 break;
7957
7958 case 1700: hash_type = HASH_TYPE_SHA512;
7959 salt_type = SALT_TYPE_NONE;
7960 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7961 opts_type = OPTS_TYPE_PT_GENERATE_BE
7962 | OPTS_TYPE_PT_ADD80
7963 | OPTS_TYPE_PT_ADDBITS15;
7964 kern_type = KERN_TYPE_SHA512;
7965 dgst_size = DGST_SIZE_8_8;
7966 parse_func = sha512_parse_hash;
7967 sort_by_digest = sort_by_digest_8_8;
7968 opti_type = OPTI_TYPE_ZERO_BYTE
7969 | OPTI_TYPE_PRECOMPUTE_INIT
7970 | OPTI_TYPE_PRECOMPUTE_MERKLE
7971 | OPTI_TYPE_EARLY_SKIP
7972 | OPTI_TYPE_NOT_ITERATED
7973 | OPTI_TYPE_NOT_SALTED
7974 | OPTI_TYPE_USES_BITS_64
7975 | OPTI_TYPE_RAW_HASH;
7976 dgst_pos0 = 14;
7977 dgst_pos1 = 15;
7978 dgst_pos2 = 6;
7979 dgst_pos3 = 7;
7980 break;
7981
7982 case 1710: hash_type = HASH_TYPE_SHA512;
7983 salt_type = SALT_TYPE_INTERN;
7984 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
7985 opts_type = OPTS_TYPE_PT_GENERATE_BE
7986 | OPTS_TYPE_ST_ADD80
7987 | OPTS_TYPE_ST_ADDBITS15;
7988 kern_type = KERN_TYPE_SHA512_PWSLT;
7989 dgst_size = DGST_SIZE_8_8;
7990 parse_func = sha512s_parse_hash;
7991 sort_by_digest = sort_by_digest_8_8;
7992 opti_type = OPTI_TYPE_ZERO_BYTE
7993 | OPTI_TYPE_PRECOMPUTE_INIT
7994 | OPTI_TYPE_PRECOMPUTE_MERKLE
7995 | OPTI_TYPE_EARLY_SKIP
7996 | OPTI_TYPE_NOT_ITERATED
7997 | OPTI_TYPE_APPENDED_SALT
7998 | OPTI_TYPE_USES_BITS_64
7999 | OPTI_TYPE_RAW_HASH;
8000 dgst_pos0 = 14;
8001 dgst_pos1 = 15;
8002 dgst_pos2 = 6;
8003 dgst_pos3 = 7;
8004 break;
8005
8006 case 1711: hash_type = HASH_TYPE_SHA512;
8007 salt_type = SALT_TYPE_EMBEDDED;
8008 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8009 opts_type = OPTS_TYPE_PT_GENERATE_BE
8010 | OPTS_TYPE_ST_ADD80
8011 | OPTS_TYPE_ST_ADDBITS15;
8012 kern_type = KERN_TYPE_SHA512_PWSLT;
8013 dgst_size = DGST_SIZE_8_8;
8014 parse_func = sha512b64s_parse_hash;
8015 sort_by_digest = sort_by_digest_8_8;
8016 opti_type = OPTI_TYPE_ZERO_BYTE
8017 | OPTI_TYPE_PRECOMPUTE_INIT
8018 | OPTI_TYPE_PRECOMPUTE_MERKLE
8019 | OPTI_TYPE_EARLY_SKIP
8020 | OPTI_TYPE_NOT_ITERATED
8021 | OPTI_TYPE_APPENDED_SALT
8022 | OPTI_TYPE_USES_BITS_64
8023 | OPTI_TYPE_RAW_HASH;
8024 dgst_pos0 = 14;
8025 dgst_pos1 = 15;
8026 dgst_pos2 = 6;
8027 dgst_pos3 = 7;
8028 break;
8029
8030 case 1720: hash_type = HASH_TYPE_SHA512;
8031 salt_type = SALT_TYPE_INTERN;
8032 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8033 opts_type = OPTS_TYPE_PT_GENERATE_BE
8034 | OPTS_TYPE_PT_ADD80
8035 | OPTS_TYPE_PT_ADDBITS15;
8036 kern_type = KERN_TYPE_SHA512_SLTPW;
8037 dgst_size = DGST_SIZE_8_8;
8038 parse_func = sha512s_parse_hash;
8039 sort_by_digest = sort_by_digest_8_8;
8040 opti_type = OPTI_TYPE_ZERO_BYTE
8041 | OPTI_TYPE_PRECOMPUTE_INIT
8042 | OPTI_TYPE_PRECOMPUTE_MERKLE
8043 | OPTI_TYPE_EARLY_SKIP
8044 | OPTI_TYPE_NOT_ITERATED
8045 | OPTI_TYPE_PREPENDED_SALT
8046 | OPTI_TYPE_USES_BITS_64
8047 | OPTI_TYPE_RAW_HASH;
8048 dgst_pos0 = 14;
8049 dgst_pos1 = 15;
8050 dgst_pos2 = 6;
8051 dgst_pos3 = 7;
8052 break;
8053
8054 case 1722: hash_type = HASH_TYPE_SHA512;
8055 salt_type = SALT_TYPE_EMBEDDED;
8056 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8057 opts_type = OPTS_TYPE_PT_GENERATE_BE
8058 | OPTS_TYPE_PT_ADD80
8059 | OPTS_TYPE_PT_ADDBITS15
8060 | OPTS_TYPE_ST_HEX;
8061 kern_type = KERN_TYPE_SHA512_SLTPW;
8062 dgst_size = DGST_SIZE_8_8;
8063 parse_func = osx512_parse_hash;
8064 sort_by_digest = sort_by_digest_8_8;
8065 opti_type = OPTI_TYPE_ZERO_BYTE
8066 | OPTI_TYPE_PRECOMPUTE_INIT
8067 | OPTI_TYPE_PRECOMPUTE_MERKLE
8068 | OPTI_TYPE_EARLY_SKIP
8069 | OPTI_TYPE_NOT_ITERATED
8070 | OPTI_TYPE_PREPENDED_SALT
8071 | OPTI_TYPE_USES_BITS_64
8072 | OPTI_TYPE_RAW_HASH;
8073 dgst_pos0 = 14;
8074 dgst_pos1 = 15;
8075 dgst_pos2 = 6;
8076 dgst_pos3 = 7;
8077 break;
8078
8079 case 1730: hash_type = HASH_TYPE_SHA512;
8080 salt_type = SALT_TYPE_INTERN;
8081 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8082 opts_type = OPTS_TYPE_PT_GENERATE_BE
8083 | OPTS_TYPE_PT_UNICODE
8084 | OPTS_TYPE_ST_ADD80
8085 | OPTS_TYPE_ST_ADDBITS15;
8086 kern_type = KERN_TYPE_SHA512_PWSLTU;
8087 dgst_size = DGST_SIZE_8_8;
8088 parse_func = sha512s_parse_hash;
8089 sort_by_digest = sort_by_digest_8_8;
8090 opti_type = OPTI_TYPE_ZERO_BYTE
8091 | OPTI_TYPE_PRECOMPUTE_INIT
8092 | OPTI_TYPE_PRECOMPUTE_MERKLE
8093 | OPTI_TYPE_EARLY_SKIP
8094 | OPTI_TYPE_NOT_ITERATED
8095 | OPTI_TYPE_APPENDED_SALT
8096 | OPTI_TYPE_USES_BITS_64
8097 | OPTI_TYPE_RAW_HASH;
8098 dgst_pos0 = 14;
8099 dgst_pos1 = 15;
8100 dgst_pos2 = 6;
8101 dgst_pos3 = 7;
8102 break;
8103
8104 case 1731: hash_type = HASH_TYPE_SHA512;
8105 salt_type = SALT_TYPE_EMBEDDED;
8106 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8107 opts_type = OPTS_TYPE_PT_GENERATE_BE
8108 | OPTS_TYPE_PT_UNICODE
8109 | OPTS_TYPE_ST_ADD80
8110 | OPTS_TYPE_ST_ADDBITS15
8111 | OPTS_TYPE_ST_HEX;
8112 kern_type = KERN_TYPE_SHA512_PWSLTU;
8113 dgst_size = DGST_SIZE_8_8;
8114 parse_func = mssql2012_parse_hash;
8115 sort_by_digest = sort_by_digest_8_8;
8116 opti_type = OPTI_TYPE_ZERO_BYTE
8117 | OPTI_TYPE_PRECOMPUTE_INIT
8118 | OPTI_TYPE_PRECOMPUTE_MERKLE
8119 | OPTI_TYPE_EARLY_SKIP
8120 | OPTI_TYPE_NOT_ITERATED
8121 | OPTI_TYPE_APPENDED_SALT
8122 | OPTI_TYPE_USES_BITS_64
8123 | OPTI_TYPE_RAW_HASH;
8124 dgst_pos0 = 14;
8125 dgst_pos1 = 15;
8126 dgst_pos2 = 6;
8127 dgst_pos3 = 7;
8128 break;
8129
8130 case 1740: hash_type = HASH_TYPE_SHA512;
8131 salt_type = SALT_TYPE_INTERN;
8132 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8133 opts_type = OPTS_TYPE_PT_GENERATE_BE
8134 | OPTS_TYPE_PT_ADD80
8135 | OPTS_TYPE_PT_ADDBITS15
8136 | OPTS_TYPE_PT_UNICODE;
8137 kern_type = KERN_TYPE_SHA512_SLTPWU;
8138 dgst_size = DGST_SIZE_8_8;
8139 parse_func = sha512s_parse_hash;
8140 sort_by_digest = sort_by_digest_8_8;
8141 opti_type = OPTI_TYPE_ZERO_BYTE
8142 | OPTI_TYPE_PRECOMPUTE_INIT
8143 | OPTI_TYPE_PRECOMPUTE_MERKLE
8144 | OPTI_TYPE_EARLY_SKIP
8145 | OPTI_TYPE_NOT_ITERATED
8146 | OPTI_TYPE_PREPENDED_SALT
8147 | OPTI_TYPE_USES_BITS_64
8148 | OPTI_TYPE_RAW_HASH;
8149 dgst_pos0 = 14;
8150 dgst_pos1 = 15;
8151 dgst_pos2 = 6;
8152 dgst_pos3 = 7;
8153 break;
8154
8155 case 1750: hash_type = HASH_TYPE_SHA512;
8156 salt_type = SALT_TYPE_INTERN;
8157 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8158 opts_type = OPTS_TYPE_PT_GENERATE_BE
8159 | OPTS_TYPE_ST_ADD80;
8160 kern_type = KERN_TYPE_HMACSHA512_PW;
8161 dgst_size = DGST_SIZE_8_8;
8162 parse_func = hmacsha512_parse_hash;
8163 sort_by_digest = sort_by_digest_8_8;
8164 opti_type = OPTI_TYPE_ZERO_BYTE
8165 | OPTI_TYPE_USES_BITS_64
8166 | OPTI_TYPE_NOT_ITERATED;
8167 dgst_pos0 = 14;
8168 dgst_pos1 = 15;
8169 dgst_pos2 = 6;
8170 dgst_pos3 = 7;
8171 break;
8172
8173 case 1760: hash_type = HASH_TYPE_SHA512;
8174 salt_type = SALT_TYPE_INTERN;
8175 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8176 opts_type = OPTS_TYPE_PT_GENERATE_BE
8177 | OPTS_TYPE_PT_ADD80
8178 | OPTS_TYPE_PT_ADDBITS15;
8179 kern_type = KERN_TYPE_HMACSHA512_SLT;
8180 dgst_size = DGST_SIZE_8_8;
8181 parse_func = hmacsha512_parse_hash;
8182 sort_by_digest = sort_by_digest_8_8;
8183 opti_type = OPTI_TYPE_ZERO_BYTE
8184 | OPTI_TYPE_USES_BITS_64
8185 | OPTI_TYPE_NOT_ITERATED;
8186 dgst_pos0 = 14;
8187 dgst_pos1 = 15;
8188 dgst_pos2 = 6;
8189 dgst_pos3 = 7;
8190 break;
8191
8192 case 1800: hash_type = HASH_TYPE_SHA512;
8193 salt_type = SALT_TYPE_EMBEDDED;
8194 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8195 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8196 kern_type = KERN_TYPE_SHA512CRYPT;
8197 dgst_size = DGST_SIZE_8_8;
8198 parse_func = sha512crypt_parse_hash;
8199 sort_by_digest = sort_by_digest_8_8;
8200 opti_type = OPTI_TYPE_ZERO_BYTE
8201 | OPTI_TYPE_USES_BITS_64;
8202 dgst_pos0 = 0;
8203 dgst_pos1 = 1;
8204 dgst_pos2 = 2;
8205 dgst_pos3 = 3;
8206 break;
8207
8208 case 2100: hash_type = HASH_TYPE_DCC2;
8209 salt_type = SALT_TYPE_EMBEDDED;
8210 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8211 opts_type = OPTS_TYPE_PT_GENERATE_LE // should be OPTS_TYPE_PT_GENERATE_BE
8212 | OPTS_TYPE_ST_LOWER
8213 | OPTS_TYPE_ST_UNICODE;
8214 kern_type = KERN_TYPE_DCC2;
8215 dgst_size = DGST_SIZE_4_4;
8216 parse_func = dcc2_parse_hash;
8217 sort_by_digest = sort_by_digest_4_4;
8218 opti_type = OPTI_TYPE_ZERO_BYTE;
8219 dgst_pos0 = 0;
8220 dgst_pos1 = 1;
8221 dgst_pos2 = 2;
8222 dgst_pos3 = 3;
8223 break;
8224
8225 case 2400: hash_type = HASH_TYPE_MD5;
8226 salt_type = SALT_TYPE_NONE;
8227 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8228 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8229 kern_type = KERN_TYPE_MD5PIX;
8230 dgst_size = DGST_SIZE_4_4;
8231 parse_func = md5pix_parse_hash;
8232 sort_by_digest = sort_by_digest_4_4;
8233 opti_type = OPTI_TYPE_ZERO_BYTE
8234 | OPTI_TYPE_PRECOMPUTE_INIT
8235 | OPTI_TYPE_PRECOMPUTE_MERKLE
8236 | OPTI_TYPE_EARLY_SKIP
8237 | OPTI_TYPE_NOT_ITERATED
8238 | OPTI_TYPE_NOT_SALTED;
8239 dgst_pos0 = 0;
8240 dgst_pos1 = 3;
8241 dgst_pos2 = 2;
8242 dgst_pos3 = 1;
8243 break;
8244
8245 case 2410: hash_type = HASH_TYPE_MD5;
8246 salt_type = SALT_TYPE_INTERN;
8247 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8248 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8249 kern_type = KERN_TYPE_MD5ASA;
8250 dgst_size = DGST_SIZE_4_4;
8251 parse_func = md5asa_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_PRECOMPUTE_MERKLE
8256 | OPTI_TYPE_EARLY_SKIP
8257 | OPTI_TYPE_NOT_ITERATED;
8258 dgst_pos0 = 0;
8259 dgst_pos1 = 3;
8260 dgst_pos2 = 2;
8261 dgst_pos3 = 1;
8262 break;
8263
8264 case 2500: hash_type = HASH_TYPE_WPA;
8265 salt_type = SALT_TYPE_EMBEDDED;
8266 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8267 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8268 kern_type = KERN_TYPE_WPA;
8269 dgst_size = DGST_SIZE_4_4;
8270 parse_func = wpa_parse_hash;
8271 sort_by_digest = sort_by_digest_4_4;
8272 opti_type = OPTI_TYPE_ZERO_BYTE;
8273 dgst_pos0 = 0;
8274 dgst_pos1 = 1;
8275 dgst_pos2 = 2;
8276 dgst_pos3 = 3;
8277 break;
8278
8279 case 2600: hash_type = HASH_TYPE_MD5;
8280 salt_type = SALT_TYPE_VIRTUAL;
8281 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8282 opts_type = OPTS_TYPE_PT_GENERATE_LE
8283 | OPTS_TYPE_PT_ADD80
8284 | OPTS_TYPE_PT_ADDBITS14
8285 | OPTS_TYPE_ST_ADD80;
8286 kern_type = KERN_TYPE_MD55_PWSLT1;
8287 dgst_size = DGST_SIZE_4_4;
8288 parse_func = md5md5_parse_hash;
8289 sort_by_digest = sort_by_digest_4_4;
8290 opti_type = OPTI_TYPE_ZERO_BYTE
8291 | OPTI_TYPE_PRECOMPUTE_INIT
8292 | OPTI_TYPE_PRECOMPUTE_MERKLE
8293 | OPTI_TYPE_EARLY_SKIP;
8294 dgst_pos0 = 0;
8295 dgst_pos1 = 3;
8296 dgst_pos2 = 2;
8297 dgst_pos3 = 1;
8298 break;
8299
8300 case 2611: hash_type = HASH_TYPE_MD5;
8301 salt_type = SALT_TYPE_INTERN;
8302 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8303 opts_type = OPTS_TYPE_PT_GENERATE_LE
8304 | OPTS_TYPE_PT_ADD80
8305 | OPTS_TYPE_PT_ADDBITS14
8306 | OPTS_TYPE_ST_ADD80;
8307 kern_type = KERN_TYPE_MD55_PWSLT1;
8308 dgst_size = DGST_SIZE_4_4;
8309 parse_func = vb3_parse_hash;
8310 sort_by_digest = sort_by_digest_4_4;
8311 opti_type = OPTI_TYPE_ZERO_BYTE
8312 | OPTI_TYPE_PRECOMPUTE_INIT
8313 | OPTI_TYPE_PRECOMPUTE_MERKLE
8314 | OPTI_TYPE_EARLY_SKIP;
8315 dgst_pos0 = 0;
8316 dgst_pos1 = 3;
8317 dgst_pos2 = 2;
8318 dgst_pos3 = 1;
8319 break;
8320
8321 case 2612: hash_type = HASH_TYPE_MD5;
8322 salt_type = SALT_TYPE_EMBEDDED;
8323 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8324 opts_type = OPTS_TYPE_PT_GENERATE_LE
8325 | OPTS_TYPE_PT_ADD80
8326 | OPTS_TYPE_PT_ADDBITS14
8327 | OPTS_TYPE_ST_ADD80
8328 | OPTS_TYPE_ST_HEX;
8329 kern_type = KERN_TYPE_MD55_PWSLT1;
8330 dgst_size = DGST_SIZE_4_4;
8331 parse_func = phps_parse_hash;
8332 sort_by_digest = sort_by_digest_4_4;
8333 opti_type = OPTI_TYPE_ZERO_BYTE
8334 | OPTI_TYPE_PRECOMPUTE_INIT
8335 | OPTI_TYPE_PRECOMPUTE_MERKLE
8336 | OPTI_TYPE_EARLY_SKIP;
8337 dgst_pos0 = 0;
8338 dgst_pos1 = 3;
8339 dgst_pos2 = 2;
8340 dgst_pos3 = 1;
8341 break;
8342
8343 case 2711: hash_type = HASH_TYPE_MD5;
8344 salt_type = SALT_TYPE_INTERN;
8345 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8346 opts_type = OPTS_TYPE_PT_GENERATE_LE
8347 | OPTS_TYPE_PT_ADD80
8348 | OPTS_TYPE_PT_ADDBITS14
8349 | OPTS_TYPE_ST_ADD80;
8350 kern_type = KERN_TYPE_MD55_PWSLT2;
8351 dgst_size = DGST_SIZE_4_4;
8352 parse_func = vb30_parse_hash;
8353 sort_by_digest = sort_by_digest_4_4;
8354 opti_type = OPTI_TYPE_ZERO_BYTE
8355 | OPTI_TYPE_PRECOMPUTE_INIT
8356 | OPTI_TYPE_EARLY_SKIP;
8357 dgst_pos0 = 0;
8358 dgst_pos1 = 3;
8359 dgst_pos2 = 2;
8360 dgst_pos3 = 1;
8361 break;
8362
8363 case 2811: hash_type = HASH_TYPE_MD5;
8364 salt_type = SALT_TYPE_INTERN;
8365 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8366 opts_type = OPTS_TYPE_PT_GENERATE_LE
8367 | OPTS_TYPE_PT_ADD80
8368 | OPTS_TYPE_PT_ADDBITS14;
8369 kern_type = KERN_TYPE_MD55_SLTPW;
8370 dgst_size = DGST_SIZE_4_4;
8371 parse_func = ipb2_parse_hash;
8372 sort_by_digest = sort_by_digest_4_4;
8373 opti_type = OPTI_TYPE_ZERO_BYTE
8374 | OPTI_TYPE_PRECOMPUTE_INIT
8375 | OPTI_TYPE_EARLY_SKIP;
8376 dgst_pos0 = 0;
8377 dgst_pos1 = 3;
8378 dgst_pos2 = 2;
8379 dgst_pos3 = 1;
8380 break;
8381
8382 case 3000: hash_type = HASH_TYPE_LM;
8383 salt_type = SALT_TYPE_NONE;
8384 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8385 opts_type = OPTS_TYPE_PT_GENERATE_LE
8386 | OPTS_TYPE_PT_UPPER
8387 | OPTS_TYPE_PT_BITSLICE;
8388 kern_type = KERN_TYPE_LM;
8389 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
8390 parse_func = lm_parse_hash;
8391 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
8392 opti_type = OPTI_TYPE_ZERO_BYTE
8393 | OPTI_TYPE_PRECOMPUTE_PERMUT;
8394 dgst_pos0 = 0;
8395 dgst_pos1 = 1;
8396 dgst_pos2 = 2;
8397 dgst_pos3 = 3;
8398 break;
8399
8400 case 3100: hash_type = HASH_TYPE_ORACLEH;
8401 salt_type = SALT_TYPE_INTERN;
8402 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8403 opts_type = OPTS_TYPE_PT_GENERATE_LE
8404 | OPTS_TYPE_PT_UPPER
8405 | OPTS_TYPE_ST_UPPER;
8406 kern_type = KERN_TYPE_ORACLEH;
8407 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
8408 parse_func = oracleh_parse_hash;
8409 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
8410 opti_type = OPTI_TYPE_ZERO_BYTE;
8411 dgst_pos0 = 0;
8412 dgst_pos1 = 1;
8413 dgst_pos2 = 2;
8414 dgst_pos3 = 3;
8415 break;
8416
8417 case 3200: hash_type = HASH_TYPE_BCRYPT;
8418 salt_type = SALT_TYPE_EMBEDDED;
8419 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8420 opts_type = OPTS_TYPE_PT_GENERATE_LE
8421 | OPTS_TYPE_ST_GENERATE_LE;
8422 kern_type = KERN_TYPE_BCRYPT;
8423 dgst_size = DGST_SIZE_4_6;
8424 parse_func = bcrypt_parse_hash;
8425 sort_by_digest = sort_by_digest_4_6;
8426 opti_type = OPTI_TYPE_ZERO_BYTE;
8427 dgst_pos0 = 0;
8428 dgst_pos1 = 1;
8429 dgst_pos2 = 2;
8430 dgst_pos3 = 3;
8431 break;
8432
8433 case 3710: hash_type = HASH_TYPE_MD5;
8434 salt_type = SALT_TYPE_INTERN;
8435 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8436 opts_type = OPTS_TYPE_PT_GENERATE_LE
8437 | OPTS_TYPE_PT_ADD80
8438 | OPTS_TYPE_PT_ADDBITS14;
8439 kern_type = KERN_TYPE_MD5_SLT_MD5_PW;
8440 dgst_size = DGST_SIZE_4_4;
8441 parse_func = md5s_parse_hash;
8442 sort_by_digest = sort_by_digest_4_4;
8443 opti_type = OPTI_TYPE_ZERO_BYTE
8444 | OPTI_TYPE_PRECOMPUTE_INIT
8445 | OPTI_TYPE_PRECOMPUTE_MERKLE
8446 | OPTI_TYPE_EARLY_SKIP;
8447 dgst_pos0 = 0;
8448 dgst_pos1 = 3;
8449 dgst_pos2 = 2;
8450 dgst_pos3 = 1;
8451 break;
8452
8453 case 3711: hash_type = HASH_TYPE_MD5;
8454 salt_type = SALT_TYPE_EMBEDDED;
8455 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8456 opts_type = OPTS_TYPE_PT_GENERATE_LE
8457 | OPTS_TYPE_PT_ADD80
8458 | OPTS_TYPE_PT_ADDBITS14;
8459 kern_type = KERN_TYPE_MD5_SLT_MD5_PW;
8460 dgst_size = DGST_SIZE_4_4;
8461 parse_func = mediawiki_b_parse_hash;
8462 sort_by_digest = sort_by_digest_4_4;
8463 opti_type = OPTI_TYPE_ZERO_BYTE
8464 | OPTI_TYPE_PRECOMPUTE_INIT
8465 | OPTI_TYPE_PRECOMPUTE_MERKLE
8466 | OPTI_TYPE_EARLY_SKIP;
8467 dgst_pos0 = 0;
8468 dgst_pos1 = 3;
8469 dgst_pos2 = 2;
8470 dgst_pos3 = 1;
8471 break;
8472
8473 case 3800: hash_type = HASH_TYPE_MD5;
8474 salt_type = SALT_TYPE_INTERN;
8475 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8476 opts_type = OPTS_TYPE_PT_GENERATE_LE
8477 | OPTS_TYPE_ST_ADDBITS14;
8478 kern_type = KERN_TYPE_MD5_SLT_PW_SLT;
8479 dgst_size = DGST_SIZE_4_4;
8480 parse_func = md5s_parse_hash;
8481 sort_by_digest = sort_by_digest_4_4;
8482 opti_type = OPTI_TYPE_ZERO_BYTE
8483 | OPTI_TYPE_PRECOMPUTE_INIT
8484 | OPTI_TYPE_PRECOMPUTE_MERKLE
8485 | OPTI_TYPE_EARLY_SKIP
8486 | OPTI_TYPE_NOT_ITERATED
8487 | OPTI_TYPE_RAW_HASH;
8488 dgst_pos0 = 0;
8489 dgst_pos1 = 3;
8490 dgst_pos2 = 2;
8491 dgst_pos3 = 1;
8492 break;
8493
8494 case 4300: hash_type = HASH_TYPE_MD5;
8495 salt_type = SALT_TYPE_VIRTUAL;
8496 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8497 opts_type = OPTS_TYPE_PT_GENERATE_LE
8498 | OPTS_TYPE_PT_ADD80
8499 | OPTS_TYPE_PT_ADDBITS14
8500 | OPTS_TYPE_ST_ADD80;
8501 kern_type = KERN_TYPE_MD5U5_PWSLT1;
8502 dgst_size = DGST_SIZE_4_4;
8503 parse_func = md5md5_parse_hash;
8504 sort_by_digest = sort_by_digest_4_4;
8505 opti_type = OPTI_TYPE_ZERO_BYTE
8506 | OPTI_TYPE_PRECOMPUTE_INIT
8507 | OPTI_TYPE_PRECOMPUTE_MERKLE
8508 | OPTI_TYPE_EARLY_SKIP;
8509 dgst_pos0 = 0;
8510 dgst_pos1 = 3;
8511 dgst_pos2 = 2;
8512 dgst_pos3 = 1;
8513 break;
8514
8515
8516 case 4400: hash_type = HASH_TYPE_MD5;
8517 salt_type = SALT_TYPE_NONE;
8518 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8519 opts_type = OPTS_TYPE_PT_GENERATE_BE
8520 | OPTS_TYPE_PT_ADD80
8521 | OPTS_TYPE_PT_ADDBITS15;
8522 kern_type = KERN_TYPE_MD5_SHA1;
8523 dgst_size = DGST_SIZE_4_4;
8524 parse_func = md5_parse_hash;
8525 sort_by_digest = sort_by_digest_4_4;
8526 opti_type = OPTI_TYPE_ZERO_BYTE
8527 | OPTI_TYPE_PRECOMPUTE_INIT
8528 | OPTI_TYPE_PRECOMPUTE_MERKLE
8529 | OPTI_TYPE_EARLY_SKIP
8530 | OPTI_TYPE_NOT_ITERATED
8531 | OPTI_TYPE_NOT_SALTED
8532 | OPTI_TYPE_RAW_HASH;
8533 dgst_pos0 = 0;
8534 dgst_pos1 = 3;
8535 dgst_pos2 = 2;
8536 dgst_pos3 = 1;
8537 break;
8538
8539 case 4500: hash_type = HASH_TYPE_SHA1;
8540 salt_type = SALT_TYPE_NONE;
8541 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8542 opts_type = OPTS_TYPE_PT_GENERATE_BE
8543 | OPTS_TYPE_PT_ADD80
8544 | OPTS_TYPE_PT_ADDBITS15;
8545 kern_type = KERN_TYPE_SHA11;
8546 dgst_size = DGST_SIZE_4_5;
8547 parse_func = sha1_parse_hash;
8548 sort_by_digest = sort_by_digest_4_5;
8549 opti_type = OPTI_TYPE_ZERO_BYTE
8550 | OPTI_TYPE_PRECOMPUTE_INIT
8551 | OPTI_TYPE_PRECOMPUTE_MERKLE
8552 | OPTI_TYPE_EARLY_SKIP
8553 | OPTI_TYPE_NOT_SALTED;
8554 dgst_pos0 = 3;
8555 dgst_pos1 = 4;
8556 dgst_pos2 = 2;
8557 dgst_pos3 = 1;
8558 break;
8559
8560 case 4700: hash_type = HASH_TYPE_SHA1;
8561 salt_type = SALT_TYPE_NONE;
8562 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8563 opts_type = OPTS_TYPE_PT_GENERATE_LE
8564 | OPTS_TYPE_PT_ADD80
8565 | OPTS_TYPE_PT_ADDBITS14;
8566 kern_type = KERN_TYPE_SHA1_MD5;
8567 dgst_size = DGST_SIZE_4_5;
8568 parse_func = sha1_parse_hash;
8569 sort_by_digest = sort_by_digest_4_5;
8570 opti_type = OPTI_TYPE_ZERO_BYTE
8571 | OPTI_TYPE_PRECOMPUTE_INIT
8572 | OPTI_TYPE_PRECOMPUTE_MERKLE
8573 | OPTI_TYPE_EARLY_SKIP
8574 | OPTI_TYPE_NOT_ITERATED
8575 | OPTI_TYPE_NOT_SALTED
8576 | OPTI_TYPE_RAW_HASH;
8577 dgst_pos0 = 3;
8578 dgst_pos1 = 4;
8579 dgst_pos2 = 2;
8580 dgst_pos3 = 1;
8581 break;
8582
8583 case 4800: hash_type = HASH_TYPE_MD5;
8584 salt_type = SALT_TYPE_EMBEDDED;
8585 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8586 opts_type = OPTS_TYPE_PT_GENERATE_LE
8587 | OPTS_TYPE_PT_ADDBITS14;
8588 kern_type = KERN_TYPE_MD5_CHAP;
8589 dgst_size = DGST_SIZE_4_4;
8590 parse_func = chap_parse_hash;
8591 sort_by_digest = sort_by_digest_4_4;
8592 opti_type = OPTI_TYPE_ZERO_BYTE
8593 | OPTI_TYPE_PRECOMPUTE_INIT
8594 | OPTI_TYPE_PRECOMPUTE_MERKLE
8595 | OPTI_TYPE_MEET_IN_MIDDLE
8596 | OPTI_TYPE_EARLY_SKIP
8597 | OPTI_TYPE_NOT_ITERATED
8598 | OPTI_TYPE_RAW_HASH;
8599 dgst_pos0 = 0;
8600 dgst_pos1 = 3;
8601 dgst_pos2 = 2;
8602 dgst_pos3 = 1;
8603 break;
8604
8605 case 4900: hash_type = HASH_TYPE_SHA1;
8606 salt_type = SALT_TYPE_INTERN;
8607 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8608 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8609 kern_type = KERN_TYPE_SHA1_SLT_PW_SLT;
8610 dgst_size = DGST_SIZE_4_5;
8611 parse_func = sha1s_parse_hash;
8612 sort_by_digest = sort_by_digest_4_5;
8613 opti_type = OPTI_TYPE_ZERO_BYTE
8614 | OPTI_TYPE_PRECOMPUTE_INIT
8615 | OPTI_TYPE_PRECOMPUTE_MERKLE
8616 | OPTI_TYPE_EARLY_SKIP;
8617 dgst_pos0 = 3;
8618 dgst_pos1 = 4;
8619 dgst_pos2 = 2;
8620 dgst_pos3 = 1;
8621 break;
8622
8623 case 5000: hash_type = HASH_TYPE_KECCAK;
8624 salt_type = SALT_TYPE_EMBEDDED;
8625 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8626 opts_type = OPTS_TYPE_PT_GENERATE_LE
8627 | OPTS_TYPE_PT_ADD01;
8628 kern_type = KERN_TYPE_KECCAK;
8629 dgst_size = DGST_SIZE_8_25;
8630 parse_func = keccak_parse_hash;
8631 sort_by_digest = sort_by_digest_8_25;
8632 opti_type = OPTI_TYPE_ZERO_BYTE
8633 | OPTI_TYPE_USES_BITS_64
8634 | OPTI_TYPE_RAW_HASH;
8635 dgst_pos0 = 2;
8636 dgst_pos1 = 3;
8637 dgst_pos2 = 4;
8638 dgst_pos3 = 5;
8639 break;
8640
8641 case 5100: hash_type = HASH_TYPE_MD5H;
8642 salt_type = SALT_TYPE_NONE;
8643 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8644 opts_type = OPTS_TYPE_PT_GENERATE_LE
8645 | OPTS_TYPE_PT_ADD80
8646 | OPTS_TYPE_PT_ADDBITS14;
8647 kern_type = KERN_TYPE_MD5H;
8648 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
8649 parse_func = md5half_parse_hash;
8650 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
8651 opti_type = OPTI_TYPE_ZERO_BYTE
8652 | OPTI_TYPE_RAW_HASH;
8653 dgst_pos0 = 0;
8654 dgst_pos1 = 1;
8655 dgst_pos2 = 2;
8656 dgst_pos3 = 3;
8657 break;
8658
8659 case 5200: hash_type = HASH_TYPE_SHA256;
8660 salt_type = SALT_TYPE_EMBEDDED;
8661 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8662 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8663 kern_type = KERN_TYPE_PSAFE3;
8664 dgst_size = DGST_SIZE_4_8;
8665 parse_func = psafe3_parse_hash;
8666 sort_by_digest = sort_by_digest_4_8;
8667 opti_type = OPTI_TYPE_ZERO_BYTE;
8668 dgst_pos0 = 0;
8669 dgst_pos1 = 1;
8670 dgst_pos2 = 2;
8671 dgst_pos3 = 3;
8672 break;
8673
8674 case 5300: hash_type = HASH_TYPE_MD5;
8675 salt_type = SALT_TYPE_EMBEDDED;
8676 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8677 opts_type = OPTS_TYPE_PT_GENERATE_LE
8678 | OPTS_TYPE_ST_ADD80;
8679 kern_type = KERN_TYPE_IKEPSK_MD5;
8680 dgst_size = DGST_SIZE_4_4;
8681 parse_func = ikepsk_md5_parse_hash;
8682 sort_by_digest = sort_by_digest_4_4;
8683 opti_type = OPTI_TYPE_ZERO_BYTE;
8684 dgst_pos0 = 0;
8685 dgst_pos1 = 3;
8686 dgst_pos2 = 2;
8687 dgst_pos3 = 1;
8688 break;
8689
8690 case 5400: hash_type = HASH_TYPE_SHA1;
8691 salt_type = SALT_TYPE_EMBEDDED;
8692 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8693 opts_type = OPTS_TYPE_PT_GENERATE_BE
8694 | OPTS_TYPE_ST_ADD80;
8695 kern_type = KERN_TYPE_IKEPSK_SHA1;
8696 dgst_size = DGST_SIZE_4_5;
8697 parse_func = ikepsk_sha1_parse_hash;
8698 sort_by_digest = sort_by_digest_4_5;
8699 opti_type = OPTI_TYPE_ZERO_BYTE;
8700 dgst_pos0 = 3;
8701 dgst_pos1 = 4;
8702 dgst_pos2 = 2;
8703 dgst_pos3 = 1;
8704 break;
8705
8706 case 5500: hash_type = HASH_TYPE_NETNTLM;
8707 salt_type = SALT_TYPE_EMBEDDED;
8708 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8709 opts_type = OPTS_TYPE_PT_GENERATE_LE
8710 | OPTS_TYPE_PT_ADD80
8711 | OPTS_TYPE_PT_ADDBITS14
8712 | OPTS_TYPE_PT_UNICODE
8713 | OPTS_TYPE_ST_HEX;
8714 kern_type = KERN_TYPE_NETNTLMv1;
8715 dgst_size = DGST_SIZE_4_4;
8716 parse_func = netntlmv1_parse_hash;
8717 sort_by_digest = sort_by_digest_4_4;
8718 opti_type = OPTI_TYPE_ZERO_BYTE
8719 | OPTI_TYPE_PRECOMPUTE_PERMUT;
8720 dgst_pos0 = 0;
8721 dgst_pos1 = 1;
8722 dgst_pos2 = 2;
8723 dgst_pos3 = 3;
8724 break;
8725
8726 case 5600: hash_type = HASH_TYPE_MD5;
8727 salt_type = SALT_TYPE_EMBEDDED;
8728 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8729 opts_type = OPTS_TYPE_PT_GENERATE_LE
8730 | OPTS_TYPE_PT_ADD80
8731 | OPTS_TYPE_PT_ADDBITS14
8732 | OPTS_TYPE_PT_UNICODE;
8733 kern_type = KERN_TYPE_NETNTLMv2;
8734 dgst_size = DGST_SIZE_4_4;
8735 parse_func = netntlmv2_parse_hash;
8736 sort_by_digest = sort_by_digest_4_4;
8737 opti_type = OPTI_TYPE_ZERO_BYTE;
8738 dgst_pos0 = 0;
8739 dgst_pos1 = 3;
8740 dgst_pos2 = 2;
8741 dgst_pos3 = 1;
8742 break;
8743
8744 case 5700: hash_type = HASH_TYPE_SHA256;
8745 salt_type = SALT_TYPE_NONE;
8746 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8747 opts_type = OPTS_TYPE_PT_GENERATE_BE
8748 | OPTS_TYPE_PT_ADD80
8749 | OPTS_TYPE_PT_ADDBITS15;
8750 kern_type = KERN_TYPE_SHA256;
8751 dgst_size = DGST_SIZE_4_8;
8752 parse_func = cisco4_parse_hash;
8753 sort_by_digest = sort_by_digest_4_8;
8754 opti_type = OPTI_TYPE_ZERO_BYTE
8755 | OPTI_TYPE_PRECOMPUTE_INIT
8756 | OPTI_TYPE_PRECOMPUTE_MERKLE
8757 | OPTI_TYPE_EARLY_SKIP
8758 | OPTI_TYPE_NOT_ITERATED
8759 | OPTI_TYPE_NOT_SALTED
8760 | OPTI_TYPE_RAW_HASH;
8761 dgst_pos0 = 3;
8762 dgst_pos1 = 7;
8763 dgst_pos2 = 2;
8764 dgst_pos3 = 6;
8765 break;
8766
8767 case 5800: hash_type = HASH_TYPE_SHA1;
8768 salt_type = SALT_TYPE_INTERN;
8769 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8770 opts_type = OPTS_TYPE_PT_GENERATE_LE // should be OPTS_TYPE_PT_GENERATE_BE
8771 | OPTS_TYPE_ST_ADD80;
8772 kern_type = KERN_TYPE_ANDROIDPIN;
8773 dgst_size = DGST_SIZE_4_5;
8774 parse_func = androidpin_parse_hash;
8775 sort_by_digest = sort_by_digest_4_5;
8776 opti_type = OPTI_TYPE_ZERO_BYTE;
8777 dgst_pos0 = 0;
8778 dgst_pos1 = 1;
8779 dgst_pos2 = 2;
8780 dgst_pos3 = 3;
8781 break;
8782
8783 case 6000: hash_type = HASH_TYPE_RIPEMD160;
8784 salt_type = SALT_TYPE_NONE;
8785 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8786 opts_type = OPTS_TYPE_PT_GENERATE_LE
8787 | OPTS_TYPE_PT_ADD80;
8788 kern_type = KERN_TYPE_RIPEMD160;
8789 dgst_size = DGST_SIZE_4_5;
8790 parse_func = ripemd160_parse_hash;
8791 sort_by_digest = sort_by_digest_4_5;
8792 opti_type = OPTI_TYPE_ZERO_BYTE;
8793 dgst_pos0 = 0;
8794 dgst_pos1 = 1;
8795 dgst_pos2 = 2;
8796 dgst_pos3 = 3;
8797 break;
8798
8799 case 6100: hash_type = HASH_TYPE_WHIRLPOOL;
8800 salt_type = SALT_TYPE_NONE;
8801 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
8802 opts_type = OPTS_TYPE_PT_GENERATE_BE
8803 | OPTS_TYPE_PT_ADD80;
8804 kern_type = KERN_TYPE_WHIRLPOOL;
8805 dgst_size = DGST_SIZE_4_16;
8806 parse_func = whirlpool_parse_hash;
8807 sort_by_digest = sort_by_digest_4_16;
8808 opti_type = OPTI_TYPE_ZERO_BYTE;
8809 dgst_pos0 = 0;
8810 dgst_pos1 = 1;
8811 dgst_pos2 = 2;
8812 dgst_pos3 = 3;
8813 break;
8814
8815 case 6211: hash_type = HASH_TYPE_RIPEMD160;
8816 salt_type = SALT_TYPE_EMBEDDED;
8817 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8818 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8819 kern_type = KERN_TYPE_TCRIPEMD160_XTS512;
8820 dgst_size = DGST_SIZE_4_5;
8821 parse_func = truecrypt_parse_hash_2k;
8822 sort_by_digest = sort_by_digest_4_5;
8823 opti_type = OPTI_TYPE_ZERO_BYTE;
8824 dgst_pos0 = 0;
8825 dgst_pos1 = 1;
8826 dgst_pos2 = 2;
8827 dgst_pos3 = 3;
8828 break;
8829
8830 case 6212: hash_type = HASH_TYPE_RIPEMD160;
8831 salt_type = SALT_TYPE_EMBEDDED;
8832 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8833 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8834 kern_type = KERN_TYPE_TCRIPEMD160_XTS1024;
8835 dgst_size = DGST_SIZE_4_5;
8836 parse_func = truecrypt_parse_hash_2k;
8837 sort_by_digest = sort_by_digest_4_5;
8838 opti_type = OPTI_TYPE_ZERO_BYTE;
8839 dgst_pos0 = 0;
8840 dgst_pos1 = 1;
8841 dgst_pos2 = 2;
8842 dgst_pos3 = 3;
8843 break;
8844
8845 case 6213: hash_type = HASH_TYPE_RIPEMD160;
8846 salt_type = SALT_TYPE_EMBEDDED;
8847 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8848 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8849 kern_type = KERN_TYPE_TCRIPEMD160_XTS1536;
8850 dgst_size = DGST_SIZE_4_5;
8851 parse_func = truecrypt_parse_hash_2k;
8852 sort_by_digest = sort_by_digest_4_5;
8853 opti_type = OPTI_TYPE_ZERO_BYTE;
8854 dgst_pos0 = 0;
8855 dgst_pos1 = 1;
8856 dgst_pos2 = 2;
8857 dgst_pos3 = 3;
8858 break;
8859
8860 case 6221: hash_type = HASH_TYPE_SHA512;
8861 salt_type = SALT_TYPE_EMBEDDED;
8862 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8863 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8864 kern_type = KERN_TYPE_TCSHA512_XTS512;
8865 dgst_size = DGST_SIZE_8_8;
8866 parse_func = truecrypt_parse_hash_1k;
8867 sort_by_digest = sort_by_digest_8_8;
8868 opti_type = OPTI_TYPE_ZERO_BYTE
8869 | OPTI_TYPE_USES_BITS_64;
8870 dgst_pos0 = 0;
8871 dgst_pos1 = 1;
8872 dgst_pos2 = 2;
8873 dgst_pos3 = 3;
8874 break;
8875
8876 case 6222: hash_type = HASH_TYPE_SHA512;
8877 salt_type = SALT_TYPE_EMBEDDED;
8878 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8879 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8880 kern_type = KERN_TYPE_TCSHA512_XTS1024;
8881 dgst_size = DGST_SIZE_8_8;
8882 parse_func = truecrypt_parse_hash_1k;
8883 sort_by_digest = sort_by_digest_8_8;
8884 opti_type = OPTI_TYPE_ZERO_BYTE
8885 | OPTI_TYPE_USES_BITS_64;
8886 dgst_pos0 = 0;
8887 dgst_pos1 = 1;
8888 dgst_pos2 = 2;
8889 dgst_pos3 = 3;
8890 break;
8891
8892 case 6223: hash_type = HASH_TYPE_SHA512;
8893 salt_type = SALT_TYPE_EMBEDDED;
8894 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8895 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
8896 kern_type = KERN_TYPE_TCSHA512_XTS1536;
8897 dgst_size = DGST_SIZE_8_8;
8898 parse_func = truecrypt_parse_hash_1k;
8899 sort_by_digest = sort_by_digest_8_8;
8900 opti_type = OPTI_TYPE_ZERO_BYTE
8901 | OPTI_TYPE_USES_BITS_64;
8902 dgst_pos0 = 0;
8903 dgst_pos1 = 1;
8904 dgst_pos2 = 2;
8905 dgst_pos3 = 3;
8906 break;
8907
8908 case 6231: hash_type = HASH_TYPE_WHIRLPOOL;
8909 salt_type = SALT_TYPE_EMBEDDED;
8910 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8911 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8912 kern_type = KERN_TYPE_TCWHIRLPOOL_XTS512;
8913 dgst_size = DGST_SIZE_4_8;
8914 parse_func = truecrypt_parse_hash_1k;
8915 sort_by_digest = sort_by_digest_4_8;
8916 opti_type = OPTI_TYPE_ZERO_BYTE;
8917 dgst_pos0 = 0;
8918 dgst_pos1 = 1;
8919 dgst_pos2 = 2;
8920 dgst_pos3 = 3;
8921 break;
8922
8923 case 6232: hash_type = HASH_TYPE_WHIRLPOOL;
8924 salt_type = SALT_TYPE_EMBEDDED;
8925 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8926 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8927 kern_type = KERN_TYPE_TCWHIRLPOOL_XTS1024;
8928 dgst_size = DGST_SIZE_4_8;
8929 parse_func = truecrypt_parse_hash_1k;
8930 sort_by_digest = sort_by_digest_4_8;
8931 opti_type = OPTI_TYPE_ZERO_BYTE;
8932 dgst_pos0 = 0;
8933 dgst_pos1 = 1;
8934 dgst_pos2 = 2;
8935 dgst_pos3 = 3;
8936 break;
8937
8938 case 6233: hash_type = HASH_TYPE_WHIRLPOOL;
8939 salt_type = SALT_TYPE_EMBEDDED;
8940 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8941 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8942 kern_type = KERN_TYPE_TCWHIRLPOOL_XTS1536;
8943 dgst_size = DGST_SIZE_4_8;
8944 parse_func = truecrypt_parse_hash_1k;
8945 sort_by_digest = sort_by_digest_4_8;
8946 opti_type = OPTI_TYPE_ZERO_BYTE;
8947 dgst_pos0 = 0;
8948 dgst_pos1 = 1;
8949 dgst_pos2 = 2;
8950 dgst_pos3 = 3;
8951 break;
8952
8953 case 6241: hash_type = HASH_TYPE_RIPEMD160;
8954 salt_type = SALT_TYPE_EMBEDDED;
8955 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8956 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8957 kern_type = KERN_TYPE_TCRIPEMD160_XTS512;
8958 dgst_size = DGST_SIZE_4_5;
8959 parse_func = truecrypt_parse_hash_1k;
8960 sort_by_digest = sort_by_digest_4_5;
8961 opti_type = OPTI_TYPE_ZERO_BYTE;
8962 dgst_pos0 = 0;
8963 dgst_pos1 = 1;
8964 dgst_pos2 = 2;
8965 dgst_pos3 = 3;
8966 break;
8967
8968 case 6242: hash_type = HASH_TYPE_RIPEMD160;
8969 salt_type = SALT_TYPE_EMBEDDED;
8970 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8971 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8972 kern_type = KERN_TYPE_TCRIPEMD160_XTS1024;
8973 dgst_size = DGST_SIZE_4_5;
8974 parse_func = truecrypt_parse_hash_1k;
8975 sort_by_digest = sort_by_digest_4_5;
8976 opti_type = OPTI_TYPE_ZERO_BYTE;
8977 dgst_pos0 = 0;
8978 dgst_pos1 = 1;
8979 dgst_pos2 = 2;
8980 dgst_pos3 = 3;
8981 break;
8982
8983 case 6243: hash_type = HASH_TYPE_RIPEMD160;
8984 salt_type = SALT_TYPE_EMBEDDED;
8985 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
8986 opts_type = OPTS_TYPE_PT_GENERATE_LE;
8987 kern_type = KERN_TYPE_TCRIPEMD160_XTS1536;
8988 dgst_size = DGST_SIZE_4_5;
8989 parse_func = truecrypt_parse_hash_1k;
8990 sort_by_digest = sort_by_digest_4_5;
8991 opti_type = OPTI_TYPE_ZERO_BYTE;
8992 dgst_pos0 = 0;
8993 dgst_pos1 = 1;
8994 dgst_pos2 = 2;
8995 dgst_pos3 = 3;
8996 break;
8997
8998 case 6300: hash_type = HASH_TYPE_MD5;
8999 salt_type = SALT_TYPE_EMBEDDED;
9000 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9001 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9002 kern_type = KERN_TYPE_MD5AIX;
9003 dgst_size = DGST_SIZE_4_4;
9004 parse_func = md5aix_parse_hash;
9005 sort_by_digest = sort_by_digest_4_4;
9006 opti_type = OPTI_TYPE_ZERO_BYTE;
9007 dgst_pos0 = 0;
9008 dgst_pos1 = 1;
9009 dgst_pos2 = 2;
9010 dgst_pos3 = 3;
9011 break;
9012
9013 case 6400: hash_type = HASH_TYPE_SHA256;
9014 salt_type = SALT_TYPE_EMBEDDED;
9015 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9016 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9017 kern_type = KERN_TYPE_SHA256AIX;
9018 dgst_size = DGST_SIZE_4_8;
9019 parse_func = sha256aix_parse_hash;
9020 sort_by_digest = sort_by_digest_4_8;
9021 opti_type = OPTI_TYPE_ZERO_BYTE;
9022 dgst_pos0 = 0;
9023 dgst_pos1 = 1;
9024 dgst_pos2 = 2;
9025 dgst_pos3 = 3;
9026 break;
9027
9028 case 6500: hash_type = HASH_TYPE_SHA512;
9029 salt_type = SALT_TYPE_EMBEDDED;
9030 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9031 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9032 kern_type = KERN_TYPE_SHA512AIX;
9033 dgst_size = DGST_SIZE_8_8;
9034 parse_func = sha512aix_parse_hash;
9035 sort_by_digest = sort_by_digest_8_8;
9036 opti_type = OPTI_TYPE_ZERO_BYTE
9037 | OPTI_TYPE_USES_BITS_64;
9038 dgst_pos0 = 0;
9039 dgst_pos1 = 1;
9040 dgst_pos2 = 2;
9041 dgst_pos3 = 3;
9042 break;
9043
9044 case 6600: hash_type = HASH_TYPE_AES;
9045 salt_type = SALT_TYPE_EMBEDDED;
9046 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9047 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9048 kern_type = KERN_TYPE_AGILEKEY;
9049 dgst_size = DGST_SIZE_4_5; // because kernel uses _SHA1_
9050 parse_func = agilekey_parse_hash;
9051 sort_by_digest = sort_by_digest_4_5;
9052 opti_type = OPTI_TYPE_ZERO_BYTE;
9053 dgst_pos0 = 0;
9054 dgst_pos1 = 1;
9055 dgst_pos2 = 2;
9056 dgst_pos3 = 3;
9057 break;
9058
9059 case 6700: hash_type = HASH_TYPE_SHA1;
9060 salt_type = SALT_TYPE_EMBEDDED;
9061 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9062 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9063 kern_type = KERN_TYPE_SHA1AIX;
9064 dgst_size = DGST_SIZE_4_5;
9065 parse_func = sha1aix_parse_hash;
9066 sort_by_digest = sort_by_digest_4_5;
9067 opti_type = OPTI_TYPE_ZERO_BYTE;
9068 dgst_pos0 = 0;
9069 dgst_pos1 = 1;
9070 dgst_pos2 = 2;
9071 dgst_pos3 = 3;
9072 break;
9073
9074 case 6800: hash_type = HASH_TYPE_AES;
9075 salt_type = SALT_TYPE_EMBEDDED;
9076 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9077 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9078 kern_type = KERN_TYPE_LASTPASS;
9079 dgst_size = DGST_SIZE_4_8; // because kernel uses _SHA256_
9080 parse_func = lastpass_parse_hash;
9081 sort_by_digest = sort_by_digest_4_8;
9082 opti_type = OPTI_TYPE_ZERO_BYTE;
9083 dgst_pos0 = 0;
9084 dgst_pos1 = 1;
9085 dgst_pos2 = 2;
9086 dgst_pos3 = 3;
9087 break;
9088
9089 case 6900: hash_type = HASH_TYPE_GOST;
9090 salt_type = SALT_TYPE_NONE;
9091 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9092 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9093 kern_type = KERN_TYPE_GOST;
9094 dgst_size = DGST_SIZE_4_8;
9095 parse_func = gost_parse_hash;
9096 sort_by_digest = sort_by_digest_4_8;
9097 opti_type = OPTI_TYPE_ZERO_BYTE;
9098 dgst_pos0 = 0;
9099 dgst_pos1 = 1;
9100 dgst_pos2 = 2;
9101 dgst_pos3 = 3;
9102 break;
9103
9104 case 7100: hash_type = HASH_TYPE_SHA512;
9105 salt_type = SALT_TYPE_EMBEDDED;
9106 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9107 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9108 kern_type = KERN_TYPE_PBKDF2_SHA512;
9109 dgst_size = DGST_SIZE_8_16;
9110 parse_func = sha512osx_parse_hash;
9111 sort_by_digest = sort_by_digest_8_16;
9112 opti_type = OPTI_TYPE_ZERO_BYTE
9113 | OPTI_TYPE_USES_BITS_64;
9114 dgst_pos0 = 0;
9115 dgst_pos1 = 1;
9116 dgst_pos2 = 2;
9117 dgst_pos3 = 3;
9118 break;
9119
9120 case 7200: hash_type = HASH_TYPE_SHA512;
9121 salt_type = SALT_TYPE_EMBEDDED;
9122 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9123 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9124 kern_type = KERN_TYPE_PBKDF2_SHA512;
9125 dgst_size = DGST_SIZE_8_16;
9126 parse_func = sha512grub_parse_hash;
9127 sort_by_digest = sort_by_digest_8_16;
9128 opti_type = OPTI_TYPE_ZERO_BYTE
9129 | OPTI_TYPE_USES_BITS_64;
9130 dgst_pos0 = 0;
9131 dgst_pos1 = 1;
9132 dgst_pos2 = 2;
9133 dgst_pos3 = 3;
9134 break;
9135
9136 case 7300: hash_type = HASH_TYPE_SHA1;
9137 salt_type = SALT_TYPE_EMBEDDED;
9138 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9139 opts_type = OPTS_TYPE_PT_GENERATE_BE
9140 | OPTS_TYPE_ST_ADD80
9141 | OPTS_TYPE_ST_ADDBITS15;
9142 kern_type = KERN_TYPE_RAKP;
9143 dgst_size = DGST_SIZE_4_5;
9144 parse_func = rakp_parse_hash;
9145 sort_by_digest = sort_by_digest_4_5;
9146 opti_type = OPTI_TYPE_ZERO_BYTE
9147 | OPTI_TYPE_NOT_ITERATED;
9148 dgst_pos0 = 3;
9149 dgst_pos1 = 4;
9150 dgst_pos2 = 2;
9151 dgst_pos3 = 1;
9152 break;
9153
9154 case 7400: hash_type = HASH_TYPE_SHA256;
9155 salt_type = SALT_TYPE_EMBEDDED;
9156 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9157 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9158 kern_type = KERN_TYPE_SHA256CRYPT;
9159 dgst_size = DGST_SIZE_4_8;
9160 parse_func = sha256crypt_parse_hash;
9161 sort_by_digest = sort_by_digest_4_8;
9162 opti_type = OPTI_TYPE_ZERO_BYTE;
9163 dgst_pos0 = 0;
9164 dgst_pos1 = 1;
9165 dgst_pos2 = 2;
9166 dgst_pos3 = 3;
9167 break;
9168
9169 case 7500: hash_type = HASH_TYPE_KRB5PA;
9170 salt_type = SALT_TYPE_EMBEDDED;
9171 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9172 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9173 kern_type = KERN_TYPE_KRB5PA;
9174 dgst_size = DGST_SIZE_4_4;
9175 parse_func = krb5pa_parse_hash;
9176 sort_by_digest = sort_by_digest_4_4;
9177 opti_type = OPTI_TYPE_ZERO_BYTE
9178 | OPTI_TYPE_NOT_ITERATED;
9179 dgst_pos0 = 0;
9180 dgst_pos1 = 1;
9181 dgst_pos2 = 2;
9182 dgst_pos3 = 3;
9183 break;
9184
9185 case 7600: hash_type = HASH_TYPE_SHA1;
9186 salt_type = SALT_TYPE_INTERN;
9187 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9188 opts_type = OPTS_TYPE_PT_GENERATE_BE
9189 | OPTS_TYPE_PT_ADD80
9190 | OPTS_TYPE_PT_ADDBITS15;
9191 kern_type = KERN_TYPE_SHA1_SLT_SHA1_PW;
9192 dgst_size = DGST_SIZE_4_5;
9193 parse_func = redmine_parse_hash;
9194 sort_by_digest = sort_by_digest_4_5;
9195 opti_type = OPTI_TYPE_ZERO_BYTE
9196 | OPTI_TYPE_PRECOMPUTE_INIT
9197 | OPTI_TYPE_EARLY_SKIP
9198 | OPTI_TYPE_NOT_ITERATED
9199 | OPTI_TYPE_PREPENDED_SALT;
9200 dgst_pos0 = 3;
9201 dgst_pos1 = 4;
9202 dgst_pos2 = 2;
9203 dgst_pos3 = 1;
9204 break;
9205
9206 case 7700: hash_type = HASH_TYPE_SAPB;
9207 salt_type = SALT_TYPE_EMBEDDED;
9208 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9209 opts_type = OPTS_TYPE_PT_GENERATE_LE
9210 | OPTS_TYPE_PT_UPPER
9211 | OPTS_TYPE_ST_UPPER;
9212 kern_type = KERN_TYPE_SAPB;
9213 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9214 parse_func = sapb_parse_hash;
9215 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9216 opti_type = OPTI_TYPE_ZERO_BYTE
9217 | OPTI_TYPE_PRECOMPUTE_INIT
9218 | OPTI_TYPE_NOT_ITERATED;
9219 dgst_pos0 = 0;
9220 dgst_pos1 = 1;
9221 dgst_pos2 = 2;
9222 dgst_pos3 = 3;
9223 break;
9224
9225 case 7800: hash_type = HASH_TYPE_SAPG;
9226 salt_type = SALT_TYPE_EMBEDDED;
9227 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9228 opts_type = OPTS_TYPE_PT_GENERATE_BE
9229 | OPTS_TYPE_ST_ADD80
9230 | OPTS_TYPE_ST_UPPER;
9231 kern_type = KERN_TYPE_SAPG;
9232 dgst_size = DGST_SIZE_4_5;
9233 parse_func = sapg_parse_hash;
9234 sort_by_digest = sort_by_digest_4_5;
9235 opti_type = OPTI_TYPE_ZERO_BYTE
9236 | OPTI_TYPE_PRECOMPUTE_INIT
9237 | OPTI_TYPE_NOT_ITERATED;
9238 dgst_pos0 = 3;
9239 dgst_pos1 = 4;
9240 dgst_pos2 = 2;
9241 dgst_pos3 = 1;
9242 break;
9243
9244 case 7900: hash_type = HASH_TYPE_SHA512;
9245 salt_type = SALT_TYPE_EMBEDDED;
9246 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9247 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9248 kern_type = KERN_TYPE_DRUPAL7;
9249 dgst_size = DGST_SIZE_8_8;
9250 parse_func = drupal7_parse_hash;
9251 sort_by_digest = sort_by_digest_8_8;
9252 opti_type = OPTI_TYPE_ZERO_BYTE
9253 | OPTI_TYPE_USES_BITS_64;
9254 dgst_pos0 = 0;
9255 dgst_pos1 = 1;
9256 dgst_pos2 = 2;
9257 dgst_pos3 = 3;
9258 break;
9259
9260 case 8000: hash_type = HASH_TYPE_SHA256;
9261 salt_type = SALT_TYPE_EMBEDDED;
9262 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9263 opts_type = OPTS_TYPE_PT_GENERATE_BE
9264 | OPTS_TYPE_PT_UNICODE
9265 | OPTS_TYPE_ST_ADD80
9266 | OPTS_TYPE_ST_HEX;
9267 kern_type = KERN_TYPE_SYBASEASE;
9268 dgst_size = DGST_SIZE_4_8;
9269 parse_func = sybasease_parse_hash;
9270 sort_by_digest = sort_by_digest_4_8;
9271 opti_type = OPTI_TYPE_ZERO_BYTE
9272 | OPTI_TYPE_PRECOMPUTE_INIT
9273 | OPTI_TYPE_EARLY_SKIP
9274 | OPTI_TYPE_NOT_ITERATED
9275 | OPTI_TYPE_RAW_HASH;
9276 dgst_pos0 = 3;
9277 dgst_pos1 = 7;
9278 dgst_pos2 = 2;
9279 dgst_pos3 = 6;
9280 break;
9281
9282 case 8100: hash_type = HASH_TYPE_SHA1;
9283 salt_type = SALT_TYPE_EMBEDDED;
9284 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9285 opts_type = OPTS_TYPE_PT_GENERATE_BE;
9286 kern_type = KERN_TYPE_NETSCALER;
9287 dgst_size = DGST_SIZE_4_5;
9288 parse_func = netscaler_parse_hash;
9289 sort_by_digest = sort_by_digest_4_5;
9290 opti_type = OPTI_TYPE_ZERO_BYTE
9291 | OPTI_TYPE_PRECOMPUTE_INIT
9292 | OPTI_TYPE_PRECOMPUTE_MERKLE
9293 | OPTI_TYPE_EARLY_SKIP
9294 | OPTI_TYPE_NOT_ITERATED
9295 | OPTI_TYPE_PREPENDED_SALT
9296 | OPTI_TYPE_RAW_HASH;
9297 dgst_pos0 = 3;
9298 dgst_pos1 = 4;
9299 dgst_pos2 = 2;
9300 dgst_pos3 = 1;
9301 break;
9302
9303 case 8200: hash_type = HASH_TYPE_SHA256;
9304 salt_type = SALT_TYPE_EMBEDDED;
9305 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9306 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9307 kern_type = KERN_TYPE_CLOUDKEY;
9308 dgst_size = DGST_SIZE_4_8;
9309 parse_func = cloudkey_parse_hash;
9310 sort_by_digest = sort_by_digest_4_8;
9311 opti_type = OPTI_TYPE_ZERO_BYTE;
9312 dgst_pos0 = 0;
9313 dgst_pos1 = 1;
9314 dgst_pos2 = 2;
9315 dgst_pos3 = 3;
9316 break;
9317
9318 case 8300: hash_type = HASH_TYPE_SHA1;
9319 salt_type = SALT_TYPE_EMBEDDED;
9320 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9321 opts_type = OPTS_TYPE_PT_GENERATE_BE
9322 | OPTS_TYPE_ST_HEX
9323 | OPTS_TYPE_ST_ADD80;
9324 kern_type = KERN_TYPE_NSEC3;
9325 dgst_size = DGST_SIZE_4_5;
9326 parse_func = nsec3_parse_hash;
9327 sort_by_digest = sort_by_digest_4_5;
9328 opti_type = OPTI_TYPE_ZERO_BYTE;
9329 dgst_pos0 = 3;
9330 dgst_pos1 = 4;
9331 dgst_pos2 = 2;
9332 dgst_pos3 = 1;
9333 break;
9334
9335 case 8400: hash_type = HASH_TYPE_SHA1;
9336 salt_type = SALT_TYPE_INTERN;
9337 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9338 opts_type = OPTS_TYPE_PT_GENERATE_BE
9339 | OPTS_TYPE_PT_ADD80
9340 | OPTS_TYPE_PT_ADDBITS15;
9341 kern_type = KERN_TYPE_WBB3;
9342 dgst_size = DGST_SIZE_4_5;
9343 parse_func = wbb3_parse_hash;
9344 sort_by_digest = sort_by_digest_4_5;
9345 opti_type = OPTI_TYPE_ZERO_BYTE
9346 | OPTI_TYPE_PRECOMPUTE_INIT
9347 | OPTI_TYPE_NOT_ITERATED;
9348 dgst_pos0 = 3;
9349 dgst_pos1 = 4;
9350 dgst_pos2 = 2;
9351 dgst_pos3 = 1;
9352 break;
9353
9354 case 8500: hash_type = HASH_TYPE_DESRACF;
9355 salt_type = SALT_TYPE_EMBEDDED;
9356 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9357 opts_type = OPTS_TYPE_PT_GENERATE_LE
9358 | OPTS_TYPE_ST_UPPER;
9359 kern_type = KERN_TYPE_RACF;
9360 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9361 parse_func = racf_parse_hash;
9362 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9363 opti_type = OPTI_TYPE_ZERO_BYTE
9364 | OPTI_TYPE_PRECOMPUTE_PERMUT;
9365 dgst_pos0 = 0;
9366 dgst_pos1 = 1;
9367 dgst_pos2 = 2;
9368 dgst_pos3 = 3;
9369 break;
9370
9371 case 8600: hash_type = HASH_TYPE_LOTUS5;
9372 salt_type = SALT_TYPE_NONE;
9373 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9374 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9375 kern_type = KERN_TYPE_LOTUS5;
9376 dgst_size = DGST_SIZE_4_4;
9377 parse_func = lotus5_parse_hash;
9378 sort_by_digest = sort_by_digest_4_4;
9379 opti_type = OPTI_TYPE_EARLY_SKIP
9380 | OPTI_TYPE_NOT_ITERATED
9381 | OPTI_TYPE_NOT_SALTED
9382 | OPTI_TYPE_RAW_HASH;
9383 dgst_pos0 = 0;
9384 dgst_pos1 = 1;
9385 dgst_pos2 = 2;
9386 dgst_pos3 = 3;
9387 break;
9388
9389 case 8700: hash_type = HASH_TYPE_LOTUS6;
9390 salt_type = SALT_TYPE_EMBEDDED;
9391 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9392 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9393 kern_type = KERN_TYPE_LOTUS6;
9394 dgst_size = DGST_SIZE_4_4;
9395 parse_func = lotus6_parse_hash;
9396 sort_by_digest = sort_by_digest_4_4;
9397 opti_type = OPTI_TYPE_EARLY_SKIP
9398 | OPTI_TYPE_NOT_ITERATED
9399 | OPTI_TYPE_RAW_HASH;
9400 dgst_pos0 = 0;
9401 dgst_pos1 = 1;
9402 dgst_pos2 = 2;
9403 dgst_pos3 = 3;
9404 break;
9405
9406 case 8800: hash_type = HASH_TYPE_ANDROIDFDE;
9407 salt_type = SALT_TYPE_EMBEDDED;
9408 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9409 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9410 kern_type = KERN_TYPE_ANDROIDFDE;
9411 dgst_size = DGST_SIZE_4_4;
9412 parse_func = androidfde_parse_hash;
9413 sort_by_digest = sort_by_digest_4_4;
9414 opti_type = OPTI_TYPE_ZERO_BYTE;
9415 dgst_pos0 = 0;
9416 dgst_pos1 = 1;
9417 dgst_pos2 = 2;
9418 dgst_pos3 = 3;
9419 break;
9420
9421 case 8900: hash_type = HASH_TYPE_SCRYPT;
9422 salt_type = SALT_TYPE_EMBEDDED;
9423 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9424 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9425 kern_type = KERN_TYPE_SCRYPT;
9426 dgst_size = DGST_SIZE_4_8;
9427 parse_func = scrypt_parse_hash;
9428 sort_by_digest = sort_by_digest_4_8;
9429 opti_type = OPTI_TYPE_ZERO_BYTE;
9430 dgst_pos0 = 0;
9431 dgst_pos1 = 1;
9432 dgst_pos2 = 2;
9433 dgst_pos3 = 3;
9434 break;
9435
9436 case 9000: hash_type = HASH_TYPE_SHA1;
9437 salt_type = SALT_TYPE_EMBEDDED;
9438 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9439 opts_type = OPTS_TYPE_PT_GENERATE_LE
9440 | OPTS_TYPE_ST_GENERATE_LE;
9441 kern_type = KERN_TYPE_PSAFE2;
9442 dgst_size = DGST_SIZE_4_5;
9443 parse_func = psafe2_parse_hash;
9444 sort_by_digest = sort_by_digest_4_5;
9445 opti_type = OPTI_TYPE_ZERO_BYTE;
9446 dgst_pos0 = 0;
9447 dgst_pos1 = 1;
9448 dgst_pos2 = 2;
9449 dgst_pos3 = 3;
9450 break;
9451
9452 case 9100: hash_type = HASH_TYPE_LOTUS8;
9453 salt_type = SALT_TYPE_EMBEDDED;
9454 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9455 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9456 kern_type = KERN_TYPE_LOTUS8;
9457 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9458 parse_func = lotus8_parse_hash;
9459 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9460 opti_type = OPTI_TYPE_ZERO_BYTE;
9461 dgst_pos0 = 0;
9462 dgst_pos1 = 1;
9463 dgst_pos2 = 2;
9464 dgst_pos3 = 3;
9465 break;
9466
9467 case 9200: hash_type = HASH_TYPE_SHA256;
9468 salt_type = SALT_TYPE_EMBEDDED;
9469 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9470 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9471 kern_type = KERN_TYPE_PBKDF2_SHA256;
9472 dgst_size = DGST_SIZE_4_32;
9473 parse_func = cisco8_parse_hash;
9474 sort_by_digest = sort_by_digest_4_32;
9475 opti_type = OPTI_TYPE_ZERO_BYTE;
9476 dgst_pos0 = 0;
9477 dgst_pos1 = 1;
9478 dgst_pos2 = 2;
9479 dgst_pos3 = 3;
9480 break;
9481
9482 case 9300: hash_type = HASH_TYPE_SCRYPT;
9483 salt_type = SALT_TYPE_EMBEDDED;
9484 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9485 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9486 kern_type = KERN_TYPE_SCRYPT;
9487 dgst_size = DGST_SIZE_4_8;
9488 parse_func = cisco9_parse_hash;
9489 sort_by_digest = sort_by_digest_4_8;
9490 opti_type = OPTI_TYPE_ZERO_BYTE;
9491 dgst_pos0 = 0;
9492 dgst_pos1 = 1;
9493 dgst_pos2 = 2;
9494 dgst_pos3 = 3;
9495 break;
9496
9497 case 9400: hash_type = HASH_TYPE_OFFICE2007;
9498 salt_type = SALT_TYPE_EMBEDDED;
9499 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9500 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9501 kern_type = KERN_TYPE_OFFICE2007;
9502 dgst_size = DGST_SIZE_4_4;
9503 parse_func = office2007_parse_hash;
9504 sort_by_digest = sort_by_digest_4_4;
9505 opti_type = OPTI_TYPE_ZERO_BYTE;
9506 dgst_pos0 = 0;
9507 dgst_pos1 = 1;
9508 dgst_pos2 = 2;
9509 dgst_pos3 = 3;
9510 break;
9511
9512 case 9500: hash_type = HASH_TYPE_OFFICE2010;
9513 salt_type = SALT_TYPE_EMBEDDED;
9514 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9515 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9516 kern_type = KERN_TYPE_OFFICE2010;
9517 dgst_size = DGST_SIZE_4_4;
9518 parse_func = office2010_parse_hash;
9519 sort_by_digest = sort_by_digest_4_4;
9520 opti_type = OPTI_TYPE_ZERO_BYTE;
9521 dgst_pos0 = 0;
9522 dgst_pos1 = 1;
9523 dgst_pos2 = 2;
9524 dgst_pos3 = 3;
9525 break;
9526
9527 case 9600: hash_type = HASH_TYPE_OFFICE2013;
9528 salt_type = SALT_TYPE_EMBEDDED;
9529 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9530 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9531 kern_type = KERN_TYPE_OFFICE2013;
9532 dgst_size = DGST_SIZE_4_4;
9533 parse_func = office2013_parse_hash;
9534 sort_by_digest = sort_by_digest_4_4;
9535 opti_type = OPTI_TYPE_ZERO_BYTE;
9536 dgst_pos0 = 0;
9537 dgst_pos1 = 1;
9538 dgst_pos2 = 2;
9539 dgst_pos3 = 3;
9540 break;
9541
9542 case 9700: hash_type = HASH_TYPE_OLDOFFICE01;
9543 salt_type = SALT_TYPE_EMBEDDED;
9544 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9545 opts_type = OPTS_TYPE_PT_GENERATE_LE
9546 | OPTS_TYPE_PT_ADD80
9547 | OPTS_TYPE_PT_UNICODE;
9548 kern_type = KERN_TYPE_OLDOFFICE01;
9549 dgst_size = DGST_SIZE_4_4;
9550 parse_func = oldoffice01_parse_hash;
9551 sort_by_digest = sort_by_digest_4_4;
9552 opti_type = OPTI_TYPE_ZERO_BYTE
9553 | OPTI_TYPE_PRECOMPUTE_INIT
9554 | OPTI_TYPE_NOT_ITERATED;
9555 dgst_pos0 = 0;
9556 dgst_pos1 = 1;
9557 dgst_pos2 = 2;
9558 dgst_pos3 = 3;
9559 break;
9560
9561 case 9710: hash_type = HASH_TYPE_OLDOFFICE01;
9562 salt_type = SALT_TYPE_EMBEDDED;
9563 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9564 opts_type = OPTS_TYPE_PT_GENERATE_LE
9565 | OPTS_TYPE_PT_ADD80;
9566 kern_type = KERN_TYPE_OLDOFFICE01CM1;
9567 dgst_size = DGST_SIZE_4_4;
9568 parse_func = oldoffice01cm1_parse_hash;
9569 sort_by_digest = sort_by_digest_4_4;
9570 opti_type = OPTI_TYPE_ZERO_BYTE
9571 | OPTI_TYPE_PRECOMPUTE_INIT
9572 | OPTI_TYPE_NOT_ITERATED;
9573 dgst_pos0 = 0;
9574 dgst_pos1 = 1;
9575 dgst_pos2 = 2;
9576 dgst_pos3 = 3;
9577 break;
9578
9579 case 9720: hash_type = HASH_TYPE_OLDOFFICE01;
9580 salt_type = SALT_TYPE_EMBEDDED;
9581 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9582 opts_type = OPTS_TYPE_PT_GENERATE_LE
9583 | OPTS_TYPE_PT_ADD80
9584 | OPTS_TYPE_PT_UNICODE
9585 | OPTS_TYPE_PT_NEVERCRACK;
9586 kern_type = KERN_TYPE_OLDOFFICE01CM2;
9587 dgst_size = DGST_SIZE_4_4;
9588 parse_func = oldoffice01cm2_parse_hash;
9589 sort_by_digest = sort_by_digest_4_4;
9590 opti_type = OPTI_TYPE_ZERO_BYTE
9591 | OPTI_TYPE_PRECOMPUTE_INIT
9592 | OPTI_TYPE_NOT_ITERATED;
9593 dgst_pos0 = 0;
9594 dgst_pos1 = 1;
9595 dgst_pos2 = 2;
9596 dgst_pos3 = 3;
9597 break;
9598
9599 case 9800: hash_type = HASH_TYPE_OLDOFFICE34;
9600 salt_type = SALT_TYPE_EMBEDDED;
9601 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9602 opts_type = OPTS_TYPE_PT_GENERATE_BE
9603 | OPTS_TYPE_PT_ADD80
9604 | OPTS_TYPE_PT_UNICODE;
9605 kern_type = KERN_TYPE_OLDOFFICE34;
9606 dgst_size = DGST_SIZE_4_4;
9607 parse_func = oldoffice34_parse_hash;
9608 sort_by_digest = sort_by_digest_4_4;
9609 opti_type = OPTI_TYPE_ZERO_BYTE
9610 | OPTI_TYPE_PRECOMPUTE_INIT
9611 | OPTI_TYPE_NOT_ITERATED;
9612 dgst_pos0 = 0;
9613 dgst_pos1 = 1;
9614 dgst_pos2 = 2;
9615 dgst_pos3 = 3;
9616 break;
9617
9618 case 9810: hash_type = HASH_TYPE_OLDOFFICE34;
9619 salt_type = SALT_TYPE_EMBEDDED;
9620 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9621 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9622 kern_type = KERN_TYPE_OLDOFFICE34CM1;
9623 dgst_size = DGST_SIZE_4_4;
9624 parse_func = oldoffice34cm1_parse_hash;
9625 sort_by_digest = sort_by_digest_4_4;
9626 opti_type = OPTI_TYPE_ZERO_BYTE
9627 | OPTI_TYPE_PRECOMPUTE_INIT
9628 | OPTI_TYPE_NOT_ITERATED;
9629 dgst_pos0 = 0;
9630 dgst_pos1 = 1;
9631 dgst_pos2 = 2;
9632 dgst_pos3 = 3;
9633 break;
9634
9635 case 9820: hash_type = HASH_TYPE_OLDOFFICE34;
9636 salt_type = SALT_TYPE_EMBEDDED;
9637 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9638 opts_type = OPTS_TYPE_PT_GENERATE_BE
9639 | OPTS_TYPE_PT_ADD80
9640 | OPTS_TYPE_PT_UNICODE
9641 | OPTS_TYPE_PT_NEVERCRACK;
9642 kern_type = KERN_TYPE_OLDOFFICE34CM2;
9643 dgst_size = DGST_SIZE_4_4;
9644 parse_func = oldoffice34cm2_parse_hash;
9645 sort_by_digest = sort_by_digest_4_4;
9646 opti_type = OPTI_TYPE_ZERO_BYTE
9647 | OPTI_TYPE_PRECOMPUTE_INIT
9648 | OPTI_TYPE_NOT_ITERATED;
9649 dgst_pos0 = 0;
9650 dgst_pos1 = 1;
9651 dgst_pos2 = 2;
9652 dgst_pos3 = 3;
9653 break;
9654
9655 case 9900: hash_type = HASH_TYPE_MD5;
9656 salt_type = SALT_TYPE_NONE;
9657 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9658 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9659 kern_type = KERN_TYPE_RADMIN2;
9660 dgst_size = DGST_SIZE_4_4;
9661 parse_func = radmin2_parse_hash;
9662 sort_by_digest = sort_by_digest_4_4;
9663 opti_type = OPTI_TYPE_ZERO_BYTE
9664 | OPTI_TYPE_PRECOMPUTE_INIT
9665 | OPTI_TYPE_EARLY_SKIP
9666 | OPTI_TYPE_NOT_ITERATED
9667 | OPTI_TYPE_NOT_SALTED;
9668 dgst_pos0 = 0;
9669 dgst_pos1 = 3;
9670 dgst_pos2 = 2;
9671 dgst_pos3 = 1;
9672 break;
9673
9674 case 10000: hash_type = HASH_TYPE_SHA256;
9675 salt_type = SALT_TYPE_EMBEDDED;
9676 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9677 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9678 kern_type = KERN_TYPE_PBKDF2_SHA256;
9679 dgst_size = DGST_SIZE_4_32;
9680 parse_func = djangopbkdf2_parse_hash;
9681 sort_by_digest = sort_by_digest_4_32;
9682 opti_type = OPTI_TYPE_ZERO_BYTE;
9683 dgst_pos0 = 0;
9684 dgst_pos1 = 1;
9685 dgst_pos2 = 2;
9686 dgst_pos3 = 3;
9687 break;
9688
9689 case 10100: hash_type = HASH_TYPE_SIPHASH;
9690 salt_type = SALT_TYPE_EMBEDDED;
9691 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9692 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9693 kern_type = KERN_TYPE_SIPHASH;
9694 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9695 parse_func = siphash_parse_hash;
9696 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9697 opti_type = OPTI_TYPE_ZERO_BYTE
9698 | OPTI_TYPE_NOT_ITERATED
9699 | OPTI_TYPE_RAW_HASH;
9700 dgst_pos0 = 0;
9701 dgst_pos1 = 1;
9702 dgst_pos2 = 2;
9703 dgst_pos3 = 3;
9704 break;
9705
9706 case 10200: hash_type = HASH_TYPE_MD5;
9707 salt_type = SALT_TYPE_EMBEDDED;
9708 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9709 opts_type = OPTS_TYPE_PT_GENERATE_LE
9710 | OPTS_TYPE_ST_ADD80
9711 | OPTS_TYPE_ST_ADDBITS14;
9712 kern_type = KERN_TYPE_HMACMD5_PW;
9713 dgst_size = DGST_SIZE_4_4;
9714 parse_func = crammd5_parse_hash;
9715 sort_by_digest = sort_by_digest_4_4;
9716 opti_type = OPTI_TYPE_ZERO_BYTE
9717 | OPTI_TYPE_NOT_ITERATED;
9718 dgst_pos0 = 0;
9719 dgst_pos1 = 3;
9720 dgst_pos2 = 2;
9721 dgst_pos3 = 1;
9722 break;
9723
9724 case 10300: hash_type = HASH_TYPE_SHA1;
9725 salt_type = SALT_TYPE_EMBEDDED;
9726 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9727 opts_type = OPTS_TYPE_PT_GENERATE_LE; // should be OPTS_TYPE_PT_GENERATE_BE
9728 kern_type = KERN_TYPE_SAPH_SHA1;
9729 dgst_size = DGST_SIZE_4_5;
9730 parse_func = saph_sha1_parse_hash;
9731 sort_by_digest = sort_by_digest_4_5;
9732 opti_type = OPTI_TYPE_ZERO_BYTE;
9733 dgst_pos0 = 0;
9734 dgst_pos1 = 1;
9735 dgst_pos2 = 2;
9736 dgst_pos3 = 3;
9737 break;
9738
9739 case 10400: hash_type = HASH_TYPE_PDFU16;
9740 salt_type = SALT_TYPE_EMBEDDED;
9741 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9742 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9743 kern_type = KERN_TYPE_PDF11;
9744 dgst_size = DGST_SIZE_4_4;
9745 parse_func = pdf11_parse_hash;
9746 sort_by_digest = sort_by_digest_4_4;
9747 opti_type = OPTI_TYPE_ZERO_BYTE
9748 | OPTI_TYPE_NOT_ITERATED;
9749 dgst_pos0 = 0;
9750 dgst_pos1 = 1;
9751 dgst_pos2 = 2;
9752 dgst_pos3 = 3;
9753 break;
9754
9755 case 10410: hash_type = HASH_TYPE_PDFU16;
9756 salt_type = SALT_TYPE_EMBEDDED;
9757 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9758 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9759 kern_type = KERN_TYPE_PDF11CM1;
9760 dgst_size = DGST_SIZE_4_4;
9761 parse_func = pdf11cm1_parse_hash;
9762 sort_by_digest = sort_by_digest_4_4;
9763 opti_type = OPTI_TYPE_ZERO_BYTE
9764 | OPTI_TYPE_NOT_ITERATED;
9765 dgst_pos0 = 0;
9766 dgst_pos1 = 1;
9767 dgst_pos2 = 2;
9768 dgst_pos3 = 3;
9769 break;
9770
9771 case 10420: hash_type = HASH_TYPE_PDFU16;
9772 salt_type = SALT_TYPE_EMBEDDED;
9773 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9774 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9775 kern_type = KERN_TYPE_PDF11CM2;
9776 dgst_size = DGST_SIZE_4_4;
9777 parse_func = pdf11cm2_parse_hash;
9778 sort_by_digest = sort_by_digest_4_4;
9779 opti_type = OPTI_TYPE_ZERO_BYTE
9780 | OPTI_TYPE_NOT_ITERATED;
9781 dgst_pos0 = 0;
9782 dgst_pos1 = 1;
9783 dgst_pos2 = 2;
9784 dgst_pos3 = 3;
9785 break;
9786
9787 case 10500: hash_type = HASH_TYPE_PDFU16;
9788 salt_type = SALT_TYPE_EMBEDDED;
9789 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9790 opts_type = OPTS_TYPE_PT_GENERATE_LE;
9791 kern_type = KERN_TYPE_PDF14;
9792 dgst_size = DGST_SIZE_4_4;
9793 parse_func = pdf14_parse_hash;
9794 sort_by_digest = sort_by_digest_4_4;
9795 opti_type = OPTI_TYPE_ZERO_BYTE
9796 | OPTI_TYPE_NOT_ITERATED;
9797 dgst_pos0 = 0;
9798 dgst_pos1 = 1;
9799 dgst_pos2 = 2;
9800 dgst_pos3 = 3;
9801 break;
9802
9803 case 10600: hash_type = HASH_TYPE_SHA256;
9804 salt_type = SALT_TYPE_EMBEDDED;
9805 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9806 opts_type = OPTS_TYPE_PT_GENERATE_BE
9807 | OPTS_TYPE_ST_ADD80
9808 | OPTS_TYPE_ST_ADDBITS15
9809 | OPTS_TYPE_HASH_COPY;
9810 kern_type = KERN_TYPE_SHA256_PWSLT;
9811 dgst_size = DGST_SIZE_4_8;
9812 parse_func = pdf17l3_parse_hash;
9813 sort_by_digest = sort_by_digest_4_8;
9814 opti_type = OPTI_TYPE_ZERO_BYTE
9815 | OPTI_TYPE_PRECOMPUTE_INIT
9816 | OPTI_TYPE_PRECOMPUTE_MERKLE
9817 | OPTI_TYPE_EARLY_SKIP
9818 | OPTI_TYPE_NOT_ITERATED
9819 | OPTI_TYPE_APPENDED_SALT
9820 | OPTI_TYPE_RAW_HASH;
9821 dgst_pos0 = 3;
9822 dgst_pos1 = 7;
9823 dgst_pos2 = 2;
9824 dgst_pos3 = 6;
9825 break;
9826
9827 case 10700: hash_type = HASH_TYPE_PDFU32;
9828 salt_type = SALT_TYPE_EMBEDDED;
9829 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9830 opts_type = OPTS_TYPE_PT_GENERATE_LE
9831 | OPTS_TYPE_HASH_COPY;
9832 kern_type = KERN_TYPE_PDF17L8;
9833 dgst_size = DGST_SIZE_4_8;
9834 parse_func = pdf17l8_parse_hash;
9835 sort_by_digest = sort_by_digest_4_8;
9836 opti_type = OPTI_TYPE_ZERO_BYTE
9837 | OPTI_TYPE_NOT_ITERATED;
9838 dgst_pos0 = 0;
9839 dgst_pos1 = 1;
9840 dgst_pos2 = 2;
9841 dgst_pos3 = 3;
9842 break;
9843
9844 case 10800: hash_type = HASH_TYPE_SHA384;
9845 salt_type = SALT_TYPE_NONE;
9846 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9847 opts_type = OPTS_TYPE_PT_GENERATE_BE
9848 | OPTS_TYPE_PT_ADD80
9849 | OPTS_TYPE_PT_ADDBITS15;
9850 kern_type = KERN_TYPE_SHA384;
9851 dgst_size = DGST_SIZE_8_8;
9852 parse_func = sha384_parse_hash;
9853 sort_by_digest = sort_by_digest_8_8;
9854 opti_type = OPTI_TYPE_ZERO_BYTE
9855 | OPTI_TYPE_PRECOMPUTE_INIT
9856 | OPTI_TYPE_PRECOMPUTE_MERKLE
9857 | OPTI_TYPE_EARLY_SKIP
9858 | OPTI_TYPE_NOT_ITERATED
9859 | OPTI_TYPE_NOT_SALTED
9860 | OPTI_TYPE_USES_BITS_64
9861 | OPTI_TYPE_RAW_HASH;
9862 dgst_pos0 = 6;
9863 dgst_pos1 = 7;
9864 dgst_pos2 = 4;
9865 dgst_pos3 = 5;
9866 break;
9867
9868 case 10900: hash_type = HASH_TYPE_PBKDF2_SHA256;
9869 salt_type = SALT_TYPE_EMBEDDED;
9870 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9871 opts_type = OPTS_TYPE_PT_GENERATE_LE
9872 | OPTS_TYPE_ST_BASE64
9873 | OPTS_TYPE_HASH_COPY;
9874 kern_type = KERN_TYPE_PBKDF2_SHA256;
9875 dgst_size = DGST_SIZE_4_32;
9876 parse_func = pbkdf2_sha256_parse_hash;
9877 sort_by_digest = sort_by_digest_4_32;
9878 opti_type = OPTI_TYPE_ZERO_BYTE;
9879 dgst_pos0 = 0;
9880 dgst_pos1 = 1;
9881 dgst_pos2 = 2;
9882 dgst_pos3 = 3;
9883 break;
9884
9885 case 11000: hash_type = HASH_TYPE_MD5;
9886 salt_type = SALT_TYPE_INTERN;
9887 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9888 opts_type = OPTS_TYPE_PT_GENERATE_LE
9889 | OPTS_TYPE_PT_ADD80;
9890 kern_type = KERN_TYPE_PRESTASHOP;
9891 dgst_size = DGST_SIZE_4_4;
9892 parse_func = prestashop_parse_hash;
9893 sort_by_digest = sort_by_digest_4_4;
9894 opti_type = OPTI_TYPE_ZERO_BYTE
9895 | OPTI_TYPE_PRECOMPUTE_INIT
9896 | OPTI_TYPE_NOT_ITERATED
9897 | OPTI_TYPE_PREPENDED_SALT;
9898 dgst_pos0 = 0;
9899 dgst_pos1 = 3;
9900 dgst_pos2 = 2;
9901 dgst_pos3 = 1;
9902 break;
9903
9904 case 11100: hash_type = HASH_TYPE_MD5;
9905 salt_type = SALT_TYPE_EMBEDDED;
9906 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9907 opts_type = OPTS_TYPE_PT_GENERATE_LE
9908 | OPTS_TYPE_ST_ADD80;
9909 kern_type = KERN_TYPE_POSTGRESQL_AUTH;
9910 dgst_size = DGST_SIZE_4_4;
9911 parse_func = postgresql_auth_parse_hash;
9912 sort_by_digest = sort_by_digest_4_4;
9913 opti_type = OPTI_TYPE_ZERO_BYTE
9914 | OPTI_TYPE_PRECOMPUTE_INIT
9915 | OPTI_TYPE_PRECOMPUTE_MERKLE
9916 | OPTI_TYPE_EARLY_SKIP;
9917 dgst_pos0 = 0;
9918 dgst_pos1 = 3;
9919 dgst_pos2 = 2;
9920 dgst_pos3 = 1;
9921 break;
9922
9923 case 11200: hash_type = HASH_TYPE_SHA1;
9924 salt_type = SALT_TYPE_EMBEDDED;
9925 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9926 opts_type = OPTS_TYPE_PT_GENERATE_BE
9927 | OPTS_TYPE_PT_ADD80
9928 | OPTS_TYPE_ST_HEX;
9929 kern_type = KERN_TYPE_MYSQL_AUTH;
9930 dgst_size = DGST_SIZE_4_5;
9931 parse_func = mysql_auth_parse_hash;
9932 sort_by_digest = sort_by_digest_4_5;
9933 opti_type = OPTI_TYPE_ZERO_BYTE
9934 | OPTI_TYPE_EARLY_SKIP;
9935 dgst_pos0 = 3;
9936 dgst_pos1 = 4;
9937 dgst_pos2 = 2;
9938 dgst_pos3 = 1;
9939 break;
9940
9941 case 11300: hash_type = HASH_TYPE_BITCOIN_WALLET;
9942 salt_type = SALT_TYPE_EMBEDDED;
9943 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9944 opts_type = OPTS_TYPE_PT_GENERATE_LE
9945 | OPTS_TYPE_ST_HEX
9946 | OPTS_TYPE_ST_ADD80;
9947 kern_type = KERN_TYPE_BITCOIN_WALLET;
9948 dgst_size = DGST_SIZE_4_4;
9949 parse_func = bitcoin_wallet_parse_hash;
9950 sort_by_digest = sort_by_digest_4_4;
9951 opti_type = OPTI_TYPE_ZERO_BYTE;
9952 dgst_pos0 = 0;
9953 dgst_pos1 = 1;
9954 dgst_pos2 = 2;
9955 dgst_pos3 = 3;
9956 break;
9957
9958 case 11400: hash_type = HASH_TYPE_MD5;
9959 salt_type = SALT_TYPE_EMBEDDED;
9960 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9961 opts_type = OPTS_TYPE_PT_GENERATE_LE
9962 | OPTS_TYPE_PT_ADD80
9963 | OPTS_TYPE_HASH_COPY;
9964 kern_type = KERN_TYPE_SIP_AUTH;
9965 dgst_size = DGST_SIZE_4_4;
9966 parse_func = sip_auth_parse_hash;
9967 sort_by_digest = sort_by_digest_4_4;
9968 opti_type = OPTI_TYPE_ZERO_BYTE;
9969 dgst_pos0 = 0;
9970 dgst_pos1 = 3;
9971 dgst_pos2 = 2;
9972 dgst_pos3 = 1;
9973 break;
9974
9975 case 11500: hash_type = HASH_TYPE_CRC32;
9976 salt_type = SALT_TYPE_INTERN;
9977 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
9978 opts_type = OPTS_TYPE_PT_GENERATE_LE
9979 | OPTS_TYPE_ST_GENERATE_LE
9980 | OPTS_TYPE_ST_HEX;
9981 kern_type = KERN_TYPE_CRC32;
9982 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9983 parse_func = crc32_parse_hash;
9984 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
9985 opti_type = OPTI_TYPE_ZERO_BYTE;
9986 dgst_pos0 = 0;
9987 dgst_pos1 = 1;
9988 dgst_pos2 = 2;
9989 dgst_pos3 = 3;
9990 break;
9991
9992 case 11600: hash_type = HASH_TYPE_AES;
9993 salt_type = SALT_TYPE_EMBEDDED;
9994 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
9995 opts_type = OPTS_TYPE_PT_GENERATE_LE
9996 | OPTS_TYPE_PT_NEVERCRACK;
9997 kern_type = KERN_TYPE_SEVEN_ZIP;
9998 dgst_size = DGST_SIZE_4_4; // originally DGST_SIZE_4_2
9999 parse_func = seven_zip_parse_hash;
10000 sort_by_digest = sort_by_digest_4_4; // originally sort_by_digest_4_2
10001 opti_type = OPTI_TYPE_ZERO_BYTE;
10002 dgst_pos0 = 0;
10003 dgst_pos1 = 1;
10004 dgst_pos2 = 2;
10005 dgst_pos3 = 3;
10006 break;
10007
10008 case 11700: hash_type = HASH_TYPE_GOST_2012SBOG_256;
10009 salt_type = SALT_TYPE_NONE;
10010 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10011 opts_type = OPTS_TYPE_PT_GENERATE_LE
10012 | OPTS_TYPE_PT_ADD01;
10013 kern_type = KERN_TYPE_GOST_2012SBOG_256;
10014 dgst_size = DGST_SIZE_4_8;
10015 parse_func = gost2012sbog_256_parse_hash;
10016 sort_by_digest = sort_by_digest_4_8;
10017 opti_type = OPTI_TYPE_ZERO_BYTE;
10018 dgst_pos0 = 0;
10019 dgst_pos1 = 1;
10020 dgst_pos2 = 2;
10021 dgst_pos3 = 3;
10022 break;
10023
10024 case 11800: hash_type = HASH_TYPE_GOST_2012SBOG_512;
10025 salt_type = SALT_TYPE_NONE;
10026 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10027 opts_type = OPTS_TYPE_PT_GENERATE_LE
10028 | OPTS_TYPE_PT_ADD01;
10029 kern_type = KERN_TYPE_GOST_2012SBOG_512;
10030 dgst_size = DGST_SIZE_4_16;
10031 parse_func = gost2012sbog_512_parse_hash;
10032 sort_by_digest = sort_by_digest_4_16;
10033 opti_type = OPTI_TYPE_ZERO_BYTE;
10034 dgst_pos0 = 0;
10035 dgst_pos1 = 1;
10036 dgst_pos2 = 2;
10037 dgst_pos3 = 3;
10038 break;
10039
10040 case 11900: hash_type = HASH_TYPE_PBKDF2_MD5;
10041 salt_type = SALT_TYPE_EMBEDDED;
10042 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10043 opts_type = OPTS_TYPE_PT_GENERATE_LE
10044 | OPTS_TYPE_ST_BASE64
10045 | OPTS_TYPE_HASH_COPY;
10046 kern_type = KERN_TYPE_PBKDF2_MD5;
10047 dgst_size = DGST_SIZE_4_32;
10048 parse_func = pbkdf2_md5_parse_hash;
10049 sort_by_digest = sort_by_digest_4_32;
10050 opti_type = OPTI_TYPE_ZERO_BYTE;
10051 dgst_pos0 = 0;
10052 dgst_pos1 = 1;
10053 dgst_pos2 = 2;
10054 dgst_pos3 = 3;
10055 break;
10056
10057 case 12000: hash_type = HASH_TYPE_PBKDF2_SHA1;
10058 salt_type = SALT_TYPE_EMBEDDED;
10059 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10060 opts_type = OPTS_TYPE_PT_GENERATE_LE
10061 | OPTS_TYPE_ST_BASE64
10062 | OPTS_TYPE_HASH_COPY;
10063 kern_type = KERN_TYPE_PBKDF2_SHA1;
10064 dgst_size = DGST_SIZE_4_32;
10065 parse_func = pbkdf2_sha1_parse_hash;
10066 sort_by_digest = sort_by_digest_4_32;
10067 opti_type = OPTI_TYPE_ZERO_BYTE;
10068 dgst_pos0 = 0;
10069 dgst_pos1 = 1;
10070 dgst_pos2 = 2;
10071 dgst_pos3 = 3;
10072 break;
10073
10074 case 12100: hash_type = HASH_TYPE_PBKDF2_SHA512;
10075 salt_type = SALT_TYPE_EMBEDDED;
10076 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10077 opts_type = OPTS_TYPE_PT_GENERATE_LE
10078 | OPTS_TYPE_ST_BASE64
10079 | OPTS_TYPE_HASH_COPY;
10080 kern_type = KERN_TYPE_PBKDF2_SHA512;
10081 dgst_size = DGST_SIZE_8_16;
10082 parse_func = pbkdf2_sha512_parse_hash;
10083 sort_by_digest = sort_by_digest_8_16;
10084 opti_type = OPTI_TYPE_ZERO_BYTE
10085 | OPTI_TYPE_USES_BITS_64;
10086 dgst_pos0 = 0;
10087 dgst_pos1 = 1;
10088 dgst_pos2 = 2;
10089 dgst_pos3 = 3;
10090 break;
10091
10092 case 12200: hash_type = HASH_TYPE_ECRYPTFS;
10093 salt_type = SALT_TYPE_EMBEDDED;
10094 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10095 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10096 kern_type = KERN_TYPE_ECRYPTFS;
10097 dgst_size = DGST_SIZE_8_8;
10098 parse_func = ecryptfs_parse_hash;
10099 sort_by_digest = sort_by_digest_8_8;
10100 opti_type = OPTI_TYPE_ZERO_BYTE
10101 | OPTI_TYPE_USES_BITS_64;
10102 dgst_pos0 = 0;
10103 dgst_pos1 = 1;
10104 dgst_pos2 = 2;
10105 dgst_pos3 = 3;
10106 break;
10107
10108 case 12300: hash_type = HASH_TYPE_ORACLET;
10109 salt_type = SALT_TYPE_EMBEDDED;
10110 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10111 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10112 kern_type = KERN_TYPE_ORACLET;
10113 dgst_size = DGST_SIZE_8_16;
10114 parse_func = oraclet_parse_hash;
10115 sort_by_digest = sort_by_digest_8_16;
10116 opti_type = OPTI_TYPE_ZERO_BYTE
10117 | OPTI_TYPE_USES_BITS_64;
10118 dgst_pos0 = 0;
10119 dgst_pos1 = 1;
10120 dgst_pos2 = 2;
10121 dgst_pos3 = 3;
10122 break;
10123
10124 case 12400: hash_type = HASH_TYPE_BSDICRYPT;
10125 salt_type = SALT_TYPE_EMBEDDED;
10126 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10127 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10128 kern_type = KERN_TYPE_BSDICRYPT;
10129 dgst_size = DGST_SIZE_4_4;
10130 parse_func = bsdicrypt_parse_hash;
10131 sort_by_digest = sort_by_digest_4_4;
10132 opti_type = OPTI_TYPE_ZERO_BYTE
10133 | OPTI_TYPE_PRECOMPUTE_PERMUT;
10134 dgst_pos0 = 0;
10135 dgst_pos1 = 1;
10136 dgst_pos2 = 2;
10137 dgst_pos3 = 3;
10138 break;
10139
10140 case 12500: hash_type = HASH_TYPE_RAR3HP;
10141 salt_type = SALT_TYPE_EMBEDDED;
10142 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10143 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10144 kern_type = KERN_TYPE_RAR3;
10145 dgst_size = DGST_SIZE_4_4;
10146 parse_func = rar3hp_parse_hash;
10147 sort_by_digest = sort_by_digest_4_4;
10148 opti_type = OPTI_TYPE_ZERO_BYTE;
10149 dgst_pos0 = 0;
10150 dgst_pos1 = 1;
10151 dgst_pos2 = 2;
10152 dgst_pos3 = 3;
10153 break;
10154
10155 case 12600: hash_type = HASH_TYPE_SHA256;
10156 salt_type = SALT_TYPE_INTERN;
10157 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10158 opts_type = OPTS_TYPE_PT_GENERATE_BE
10159 | OPTS_TYPE_PT_ADD80;
10160 kern_type = KERN_TYPE_CF10;
10161 dgst_size = DGST_SIZE_4_8;
10162 parse_func = cf10_parse_hash;
10163 sort_by_digest = sort_by_digest_4_8;
10164 opti_type = OPTI_TYPE_ZERO_BYTE
10165 | OPTI_TYPE_PRECOMPUTE_INIT
10166 | OPTI_TYPE_EARLY_SKIP
10167 | OPTI_TYPE_NOT_ITERATED;
10168 dgst_pos0 = 3;
10169 dgst_pos1 = 7;
10170 dgst_pos2 = 2;
10171 dgst_pos3 = 6;
10172 break;
10173
10174 case 12700: hash_type = HASH_TYPE_AES;
10175 salt_type = SALT_TYPE_EMBEDDED;
10176 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10177 opts_type = OPTS_TYPE_PT_GENERATE_LE
10178 | OPTS_TYPE_HASH_COPY;
10179 kern_type = KERN_TYPE_MYWALLET;
10180 dgst_size = DGST_SIZE_4_5; // because kernel uses _SHA1_
10181 parse_func = mywallet_parse_hash;
10182 sort_by_digest = sort_by_digest_4_5;
10183 opti_type = OPTI_TYPE_ZERO_BYTE;
10184 dgst_pos0 = 0;
10185 dgst_pos1 = 1;
10186 dgst_pos2 = 2;
10187 dgst_pos3 = 3;
10188 break;
10189
10190 case 12800: hash_type = HASH_TYPE_PBKDF2_SHA256;
10191 salt_type = SALT_TYPE_EMBEDDED;
10192 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10193 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10194 kern_type = KERN_TYPE_MS_DRSR;
10195 dgst_size = DGST_SIZE_4_8;
10196 parse_func = ms_drsr_parse_hash;
10197 sort_by_digest = sort_by_digest_4_8;
10198 opti_type = OPTI_TYPE_ZERO_BYTE;
10199 dgst_pos0 = 0;
10200 dgst_pos1 = 1;
10201 dgst_pos2 = 2;
10202 dgst_pos3 = 3;
10203 break;
10204
10205 case 12900: hash_type = HASH_TYPE_PBKDF2_SHA256;
10206 salt_type = SALT_TYPE_EMBEDDED;
10207 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10208 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10209 kern_type = KERN_TYPE_ANDROIDFDE_SAMSUNG;
10210 dgst_size = DGST_SIZE_4_8;
10211 parse_func = androidfde_samsung_parse_hash;
10212 sort_by_digest = sort_by_digest_4_8;
10213 opti_type = OPTI_TYPE_ZERO_BYTE;
10214 dgst_pos0 = 0;
10215 dgst_pos1 = 1;
10216 dgst_pos2 = 2;
10217 dgst_pos3 = 3;
10218 break;
10219
10220 case 13000: hash_type = HASH_TYPE_PBKDF2_SHA256;
10221 salt_type = SALT_TYPE_EMBEDDED;
10222 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10223 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10224 kern_type = KERN_TYPE_RAR5;
10225 dgst_size = DGST_SIZE_4_4;
10226 parse_func = rar5_parse_hash;
10227 sort_by_digest = sort_by_digest_4_4;
10228 opti_type = OPTI_TYPE_ZERO_BYTE;
10229 dgst_pos0 = 0;
10230 dgst_pos1 = 1;
10231 dgst_pos2 = 2;
10232 dgst_pos3 = 3;
10233 break;
10234
10235 case 13100: hash_type = HASH_TYPE_KRB5TGS;
10236 salt_type = SALT_TYPE_EMBEDDED;
10237 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10238 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10239 kern_type = KERN_TYPE_KRB5TGS;
10240 dgst_size = DGST_SIZE_4_4;
10241 parse_func = krb5tgs_parse_hash;
10242 sort_by_digest = sort_by_digest_4_4;
10243 opti_type = OPTI_TYPE_ZERO_BYTE
10244 | OPTI_TYPE_NOT_ITERATED;
10245 dgst_pos0 = 0;
10246 dgst_pos1 = 1;
10247 dgst_pos2 = 2;
10248 dgst_pos3 = 3;
10249 break;
10250
10251 case 13200: hash_type = HASH_TYPE_AES;
10252 salt_type = SALT_TYPE_EMBEDDED;
10253 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10254 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10255 kern_type = KERN_TYPE_AXCRYPT;
10256 dgst_size = DGST_SIZE_4_4;
10257 parse_func = axcrypt_parse_hash;
10258 sort_by_digest = sort_by_digest_4_4;
10259 opti_type = OPTI_TYPE_ZERO_BYTE;
10260 dgst_pos0 = 0;
10261 dgst_pos1 = 1;
10262 dgst_pos2 = 2;
10263 dgst_pos3 = 3;
10264 break;
10265
10266 case 13300: hash_type = HASH_TYPE_SHA1;
10267 salt_type = SALT_TYPE_NONE;
10268 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10269 opts_type = OPTS_TYPE_PT_GENERATE_BE
10270 | OPTS_TYPE_PT_ADD80
10271 | OPTS_TYPE_PT_ADDBITS15;
10272 kern_type = KERN_TYPE_SHA1_AXCRYPT;
10273 dgst_size = DGST_SIZE_4_5;
10274 parse_func = sha1axcrypt_parse_hash;
10275 sort_by_digest = sort_by_digest_4_5;
10276 opti_type = OPTI_TYPE_ZERO_BYTE
10277 | OPTI_TYPE_PRECOMPUTE_INIT
10278 | OPTI_TYPE_EARLY_SKIP
10279 | OPTI_TYPE_NOT_ITERATED
10280 | OPTI_TYPE_NOT_SALTED;
10281 dgst_pos0 = 0;
10282 dgst_pos1 = 4;
10283 dgst_pos2 = 3;
10284 dgst_pos3 = 2;
10285 break;
10286
10287 case 13400: hash_type = HASH_TYPE_AES;
10288 salt_type = SALT_TYPE_EMBEDDED;
10289 attack_exec = ATTACK_EXEC_OUTSIDE_KERNEL;
10290 opts_type = OPTS_TYPE_PT_GENERATE_LE;
10291 kern_type = KERN_TYPE_KEEPASS;
10292 dgst_size = DGST_SIZE_4_4;
10293 parse_func = keepass_parse_hash;
10294 sort_by_digest = sort_by_digest_4_4;
10295 opti_type = OPTI_TYPE_ZERO_BYTE;
10296 dgst_pos0 = 0;
10297 dgst_pos1 = 1;
10298 dgst_pos2 = 2;
10299 dgst_pos3 = 3;
10300 break;
10301
10302 case 13500: hash_type = HASH_TYPE_SHA1;
10303 salt_type = SALT_TYPE_EMBEDDED;
10304 attack_exec = ATTACK_EXEC_INSIDE_KERNEL;
10305 opts_type = OPTS_TYPE_PT_GENERATE_BE
10306 | OPTS_TYPE_PT_UNICODE
10307 | OPTS_TYPE_PT_ADD80;
10308 kern_type = KERN_TYPE_SHA1_SLTPWU;
10309 dgst_size = DGST_SIZE_4_5;
10310 parse_func = pstoken_parse_hash;
10311 sort_by_digest = sort_by_digest_4_5;
10312 opti_type = OPTI_TYPE_ZERO_BYTE
10313 | OPTI_TYPE_PRECOMPUTE_INIT
10314 | OPTI_TYPE_EARLY_SKIP
10315 | OPTI_TYPE_NOT_ITERATED
10316 | OPTI_TYPE_PREPENDED_SALT
10317 | OPTI_TYPE_RAW_HASH;
10318 dgst_pos0 = 3;
10319 dgst_pos1 = 4;
10320 dgst_pos2 = 2;
10321 dgst_pos3 = 1;
10322 break;
10323
10324 default: usage_mini_print (PROGNAME); return (-1);
10325 }
10326
10327 /**
10328 * parser
10329 */
10330
10331 data.parse_func = parse_func;
10332
10333 /**
10334 * misc stuff
10335 */
10336
10337 if (hex_salt)
10338 {
10339 if (salt_type == SALT_TYPE_INTERN)
10340 {
10341 opts_type |= OPTS_TYPE_ST_HEX;
10342 }
10343 else
10344 {
10345 log_error ("ERROR: Parameter hex-salt not valid for hash-type %u", hash_mode);
10346
10347 return (-1);
10348 }
10349 }
10350
10351 uint isSalted = ((salt_type == SALT_TYPE_INTERN)
10352 | (salt_type == SALT_TYPE_EXTERN)
10353 | (salt_type == SALT_TYPE_EMBEDDED)
10354 | (salt_type == SALT_TYPE_VIRTUAL));
10355
10356 sort_by_digest = sort_by_digest_p0p1; // overruled by 64 bit digest
10357
10358 data.hash_type = hash_type;
10359 data.attack_mode = attack_mode;
10360 data.attack_kern = attack_kern;
10361 data.attack_exec = attack_exec;
10362 data.kern_type = kern_type;
10363 data.opts_type = opts_type;
10364 data.dgst_size = dgst_size;
10365 data.salt_type = salt_type;
10366 data.isSalted = isSalted;
10367 data.sort_by_digest = sort_by_digest;
10368 data.dgst_pos0 = dgst_pos0;
10369 data.dgst_pos1 = dgst_pos1;
10370 data.dgst_pos2 = dgst_pos2;
10371 data.dgst_pos3 = dgst_pos3;
10372
10373 esalt_size = 0;
10374
10375 switch (hash_mode)
10376 {
10377 case 2500: esalt_size = sizeof (wpa_t); break;
10378 case 5300: esalt_size = sizeof (ikepsk_t); break;
10379 case 5400: esalt_size = sizeof (ikepsk_t); break;
10380 case 5500: esalt_size = sizeof (netntlm_t); break;
10381 case 5600: esalt_size = sizeof (netntlm_t); break;
10382 case 6211: esalt_size = sizeof (tc_t); break;
10383 case 6212: esalt_size = sizeof (tc_t); break;
10384 case 6213: esalt_size = sizeof (tc_t); break;
10385 case 6221: esalt_size = sizeof (tc_t); break;
10386 case 6222: esalt_size = sizeof (tc_t); break;
10387 case 6223: esalt_size = sizeof (tc_t); break;
10388 case 6231: esalt_size = sizeof (tc_t); break;
10389 case 6232: esalt_size = sizeof (tc_t); break;
10390 case 6233: esalt_size = sizeof (tc_t); break;
10391 case 6241: esalt_size = sizeof (tc_t); break;
10392 case 6242: esalt_size = sizeof (tc_t); break;
10393 case 6243: esalt_size = sizeof (tc_t); break;
10394 case 6600: esalt_size = sizeof (agilekey_t); break;
10395 case 7100: esalt_size = sizeof (pbkdf2_sha512_t); break;
10396 case 7200: esalt_size = sizeof (pbkdf2_sha512_t); break;
10397 case 7300: esalt_size = sizeof (rakp_t); break;
10398 case 7500: esalt_size = sizeof (krb5pa_t); break;
10399 case 8200: esalt_size = sizeof (cloudkey_t); break;
10400 case 8800: esalt_size = sizeof (androidfde_t); break;
10401 case 9200: esalt_size = sizeof (pbkdf2_sha256_t); break;
10402 case 9400: esalt_size = sizeof (office2007_t); break;
10403 case 9500: esalt_size = sizeof (office2010_t); break;
10404 case 9600: esalt_size = sizeof (office2013_t); break;
10405 case 9700: esalt_size = sizeof (oldoffice01_t); break;
10406 case 9710: esalt_size = sizeof (oldoffice01_t); break;
10407 case 9720: esalt_size = sizeof (oldoffice01_t); break;
10408 case 9800: esalt_size = sizeof (oldoffice34_t); break;
10409 case 9810: esalt_size = sizeof (oldoffice34_t); break;
10410 case 9820: esalt_size = sizeof (oldoffice34_t); break;
10411 case 10000: esalt_size = sizeof (pbkdf2_sha256_t); break;
10412 case 10200: esalt_size = sizeof (cram_md5_t); break;
10413 case 10400: esalt_size = sizeof (pdf_t); break;
10414 case 10410: esalt_size = sizeof (pdf_t); break;
10415 case 10420: esalt_size = sizeof (pdf_t); break;
10416 case 10500: esalt_size = sizeof (pdf_t); break;
10417 case 10600: esalt_size = sizeof (pdf_t); break;
10418 case 10700: esalt_size = sizeof (pdf_t); break;
10419 case 10900: esalt_size = sizeof (pbkdf2_sha256_t); break;
10420 case 11300: esalt_size = sizeof (bitcoin_wallet_t); break;
10421 case 11400: esalt_size = sizeof (sip_t); break;
10422 case 11600: esalt_size = sizeof (seven_zip_t); break;
10423 case 11900: esalt_size = sizeof (pbkdf2_md5_t); break;
10424 case 12000: esalt_size = sizeof (pbkdf2_sha1_t); break;
10425 case 12100: esalt_size = sizeof (pbkdf2_sha512_t); break;
10426 case 13000: esalt_size = sizeof (rar5_t); break;
10427 case 13100: esalt_size = sizeof (krb5tgs_t); break;
10428 case 13400: esalt_size = sizeof (keepass_t); break;
10429 case 13500: esalt_size = sizeof (pstoken_t); break;
10430 }
10431
10432 data.esalt_size = esalt_size;
10433
10434 /**
10435 * choose dictionary parser
10436 */
10437
10438 if (hash_type == HASH_TYPE_LM)
10439 {
10440 get_next_word_func = get_next_word_lm;
10441 }
10442 else if (opts_type & OPTS_TYPE_PT_UPPER)
10443 {
10444 get_next_word_func = get_next_word_uc;
10445 }
10446 else
10447 {
10448 get_next_word_func = get_next_word_std;
10449 }
10450
10451 /**
10452 * dictstat
10453 */
10454
10455 dictstat_t *dictstat_base = (dictstat_t *) mycalloc (MAX_DICTSTAT, sizeof (dictstat_t));
10456
10457 #ifdef _POSIX
10458 size_t dictstat_nmemb = 0;
10459 #endif
10460
10461 #ifdef _WIN
10462 uint dictstat_nmemb = 0;
10463 #endif
10464
10465 char dictstat[256] = { 0 };
10466
10467 FILE *dictstat_fp = NULL;
10468
10469 if (keyspace == 0)
10470 {
10471 snprintf (dictstat, sizeof (dictstat) - 1, "%s/%s", profile_dir, DICTSTAT_FILENAME);
10472
10473 dictstat_fp = fopen (dictstat, "rb");
10474
10475 if (dictstat_fp)
10476 {
10477 #ifdef _POSIX
10478 struct stat tmpstat;
10479
10480 fstat (fileno (dictstat_fp), &tmpstat);
10481 #endif
10482
10483 #ifdef _WIN
10484 struct stat64 tmpstat;
10485
10486 _fstat64 (fileno (dictstat_fp), &tmpstat);
10487 #endif
10488
10489 if (tmpstat.st_mtime < COMPTIME)
10490 {
10491 /* with v0.15 the format changed so we have to ensure user is using a good version
10492 since there is no version-header in the dictstat file */
10493
10494 fclose (dictstat_fp);
10495
10496 unlink (dictstat);
10497 }
10498 else
10499 {
10500 while (!feof (dictstat_fp))
10501 {
10502 dictstat_t d;
10503
10504 if (fread (&d, sizeof (dictstat_t), 1, dictstat_fp) == 0) continue;
10505
10506 lsearch (&d, dictstat_base, &dictstat_nmemb, sizeof (dictstat_t), sort_by_dictstat);
10507
10508 if (dictstat_nmemb == (MAX_DICTSTAT - 1000))
10509 {
10510 log_error ("ERROR: There are too many entries in the %s database. You have to remove/rename it.", dictstat);
10511
10512 return -1;
10513 }
10514 }
10515
10516 fclose (dictstat_fp);
10517 }
10518 }
10519 }
10520
10521 /**
10522 * potfile
10523 */
10524
10525 char potfile[256] = { 0 };
10526
10527 if (potfile_path == NULL)
10528 {
10529 snprintf (potfile, sizeof (potfile) - 1, "%s/%s", profile_dir, POTFILE_FILENAME);
10530 }
10531 else
10532 {
10533 strncpy (potfile, potfile_path, sizeof (potfile) - 1);
10534 }
10535
10536 data.pot_fp = NULL;
10537
10538 FILE *out_fp = NULL;
10539 FILE *pot_fp = NULL;
10540
10541 if (show == 1 || left == 1)
10542 {
10543 pot_fp = fopen (potfile, "rb");
10544
10545 if (pot_fp == NULL)
10546 {
10547 log_error ("ERROR: %s: %s", potfile, strerror (errno));
10548
10549 return (-1);
10550 }
10551
10552 if (outfile != NULL)
10553 {
10554 if ((out_fp = fopen (outfile, "ab")) == NULL)
10555 {
10556 log_error ("ERROR: %s: %s", outfile, strerror (errno));
10557
10558 fclose (pot_fp);
10559
10560 return (-1);
10561 }
10562 }
10563 else
10564 {
10565 out_fp = stdout;
10566 }
10567 }
10568 else
10569 {
10570 if (potfile_disable == 0)
10571 {
10572 pot_fp = fopen (potfile, "ab");
10573
10574 if (pot_fp == NULL)
10575 {
10576 log_error ("ERROR: %s: %s", potfile, strerror (errno));
10577
10578 return (-1);
10579 }
10580
10581 data.pot_fp = pot_fp;
10582 }
10583 }
10584
10585 pot_t *pot = NULL;
10586
10587 uint pot_cnt = 0;
10588 uint pot_avail = 0;
10589
10590 if (show == 1 || left == 1)
10591 {
10592 SUPPRESS_OUTPUT = 1;
10593
10594 pot_avail = count_lines (pot_fp);
10595
10596 rewind (pot_fp);
10597
10598 pot = (pot_t *) mycalloc (pot_avail, sizeof (pot_t));
10599
10600 uint pot_hashes_avail = 0;
10601
10602 uint line_num = 0;
10603
10604 char *line_buf = (char *) mymalloc (HCBUFSIZ);
10605
10606 while (!feof (pot_fp))
10607 {
10608 line_num++;
10609
10610 int line_len = fgetl (pot_fp, line_buf);
10611
10612 if (line_len == 0) continue;
10613
10614 char *plain_buf = line_buf + line_len;
10615
10616 pot_t *pot_ptr = &pot[pot_cnt];
10617
10618 hash_t *hashes_buf = &pot_ptr->hash;
10619
10620 // we do not initialize all hashes_buf->digest etc at the beginning, since many lines may not be
10621 // valid lines of this specific hash type (otherwise it would be more waste of memory than gain)
10622
10623 if (pot_cnt == pot_hashes_avail)
10624 {
10625 uint pos = 0;
10626
10627 for (pos = 0; pos < INCR_POT; pos++)
10628 {
10629 if ((pot_cnt + pos) >= pot_avail) break;
10630
10631 pot_t *tmp_pot = &pot[pot_cnt + pos];
10632
10633 hash_t *tmp_hash = &tmp_pot->hash;
10634
10635 tmp_hash->digest = mymalloc (dgst_size);
10636
10637 if (isSalted)
10638 {
10639 tmp_hash->salt = (salt_t *) mymalloc (sizeof (salt_t));
10640 }
10641
10642 if (esalt_size)
10643 {
10644 tmp_hash->esalt = mymalloc (esalt_size);
10645 }
10646
10647 pot_hashes_avail++;
10648 }
10649 }
10650
10651 int plain_len = 0;
10652
10653 int parser_status;
10654
10655 int iter = MAX_CUT_TRIES;
10656
10657 do
10658 {
10659 for (int i = line_len - 1; i; i--, plain_len++, plain_buf--, line_len--)
10660 {
10661 if (line_buf[i] == ':')
10662 {
10663 line_len--;
10664
10665 break;
10666 }
10667 }
10668
10669 if (data.hash_mode != 2500)
10670 {
10671 parser_status = parse_func (line_buf, line_len, hashes_buf);
10672 }
10673 else
10674 {
10675 int max_salt_size = sizeof (hashes_buf->salt->salt_buf);
10676
10677 if (line_len > max_salt_size)
10678 {
10679 parser_status = PARSER_GLOBAL_LENGTH;
10680 }
10681 else
10682 {
10683 memset (&hashes_buf->salt->salt_buf, 0, max_salt_size);
10684
10685 memcpy (&hashes_buf->salt->salt_buf, line_buf, line_len);
10686
10687 hashes_buf->salt->salt_len = line_len;
10688
10689 parser_status = PARSER_OK;
10690 }
10691 }
10692
10693 // if NOT parsed without error, we add the ":" to the plain
10694
10695 if (parser_status == PARSER_GLOBAL_LENGTH || parser_status == PARSER_HASH_LENGTH || parser_status == PARSER_SALT_LENGTH)
10696 {
10697 plain_len++;
10698 plain_buf--;
10699 }
10700
10701 } while ((parser_status == PARSER_GLOBAL_LENGTH || parser_status == PARSER_HASH_LENGTH || parser_status == PARSER_SALT_LENGTH) && --iter);
10702
10703 if (parser_status < PARSER_GLOBAL_ZERO)
10704 {
10705 // log_info ("WARNING: Potfile '%s' in line %u (%s): %s", potfile, line_num, line_buf, strparser (parser_status));
10706
10707 continue;
10708 }
10709
10710 if (plain_len >= 255) continue;
10711
10712 memcpy (pot_ptr->plain_buf, plain_buf, plain_len);
10713
10714 pot_ptr->plain_len = plain_len;
10715
10716 pot_cnt++;
10717 }
10718
10719 myfree (line_buf);
10720
10721 fclose (pot_fp);
10722
10723 SUPPRESS_OUTPUT = 0;
10724
10725 qsort (pot, pot_cnt, sizeof (pot_t), sort_by_pot);
10726 }
10727
10728 /**
10729 * word len
10730 */
10731
10732 uint pw_min = PW_MIN;
10733 uint pw_max = PW_MAX;
10734
10735 switch (hash_mode)
10736 {
10737 case 125: if (pw_max > 32) pw_max = 32;
10738 break;
10739 case 400: if (pw_max > 40) pw_max = 40;
10740 break;
10741 case 500: if (pw_max > 16) pw_max = 16;
10742 break;
10743 case 1500: if (pw_max > 8) pw_max = 8;
10744 break;
10745 case 1600: if (pw_max > 16) pw_max = 16;
10746 break;
10747 case 1800: if (pw_max > 16) pw_max = 16;
10748 break;
10749 case 2100: if (pw_max > 16) pw_max = 16;
10750 break;
10751 case 2500: if (pw_min < 8) pw_min = 8;
10752 break;
10753 case 3000: if (pw_max > 7) pw_max = 7;
10754 break;
10755 case 5200: if (pw_max > 24) pw_max = 24;
10756 break;
10757 case 5800: if (pw_max > 16) pw_max = 16;
10758 break;
10759 case 6300: if (pw_max > 16) pw_max = 16;
10760 break;
10761 case 7400: if (pw_max > 16) pw_max = 16;
10762 break;
10763 case 7900: if (pw_max > 48) pw_max = 48;
10764 break;
10765 case 8500: if (pw_max > 8) pw_max = 8;
10766 break;
10767 case 8600: if (pw_max > 16) pw_max = 16;
10768 break;
10769 case 9710: pw_min = 5;
10770 pw_max = 5;
10771 break;
10772 case 9810: pw_min = 5;
10773 pw_max = 5;
10774 break;
10775 case 10410: pw_min = 5;
10776 pw_max = 5;
10777 break;
10778 case 10300: if (pw_max < 3) pw_min = 3;
10779 if (pw_max > 40) pw_max = 40;
10780 break;
10781 case 10500: if (pw_max < 3) pw_min = 3;
10782 if (pw_max > 40) pw_max = 40;
10783 break;
10784 case 10700: if (pw_max > 16) pw_max = 16;
10785 break;
10786 case 11300: if (pw_max > 40) pw_max = 40;
10787 break;
10788 case 12500: if (pw_max > 20) pw_max = 20;
10789 break;
10790 case 12800: if (pw_max > 24) pw_max = 24;
10791 break;
10792 }
10793
10794 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
10795 {
10796 switch (attack_kern)
10797 {
10798 case ATTACK_KERN_STRAIGHT: if (pw_max > PW_DICTMAX) pw_max = PW_DICTMAX1;
10799 break;
10800 case ATTACK_KERN_COMBI: if (pw_max > PW_DICTMAX) pw_max = PW_DICTMAX1;
10801 break;
10802 }
10803 }
10804
10805 /**
10806 * charsets : keep them together for more easy maintainnce
10807 */
10808
10809 cs_t mp_sys[6] = { { { 0 }, 0 } };
10810 cs_t mp_usr[4] = { { { 0 }, 0 } };
10811
10812 mp_setup_sys (mp_sys);
10813
10814 if (custom_charset_1) mp_setup_usr (mp_sys, mp_usr, custom_charset_1, 0);
10815 if (custom_charset_2) mp_setup_usr (mp_sys, mp_usr, custom_charset_2, 1);
10816 if (custom_charset_3) mp_setup_usr (mp_sys, mp_usr, custom_charset_3, 2);
10817 if (custom_charset_4) mp_setup_usr (mp_sys, mp_usr, custom_charset_4, 3);
10818
10819 /**
10820 * load hashes, part I: find input mode, count hashes
10821 */
10822
10823 uint hashlist_mode = 0;
10824 uint hashlist_format = HLFMT_HASHCAT;
10825
10826 uint hashes_avail = 0;
10827
10828 if (benchmark == 0)
10829 {
10830 struct stat f;
10831
10832 hashlist_mode = (stat (myargv[optind], &f) == 0) ? HL_MODE_FILE : HL_MODE_ARG;
10833
10834 if ((hash_mode == 2500) ||
10835 (hash_mode == 5200) ||
10836 ((hash_mode >= 6200) && (hash_mode <= 6299)) ||
10837 (hash_mode == 9000))
10838 {
10839 hashlist_mode = HL_MODE_ARG;
10840
10841 char *hashfile = myargv[optind];
10842
10843 data.hashfile = hashfile;
10844
10845 logfile_top_var_string ("target", hashfile);
10846 }
10847
10848 if (hashlist_mode == HL_MODE_ARG)
10849 {
10850 if (hash_mode == 2500)
10851 {
10852 struct stat st;
10853
10854 if (stat (data.hashfile, &st) == -1)
10855 {
10856 log_error ("ERROR: %s: %s", data.hashfile, strerror (errno));
10857
10858 return (-1);
10859 }
10860
10861 hashes_avail = st.st_size / sizeof (hccap_t);
10862 }
10863 else
10864 {
10865 hashes_avail = 1;
10866 }
10867 }
10868 else if (hashlist_mode == HL_MODE_FILE)
10869 {
10870 char *hashfile = myargv[optind];
10871
10872 data.hashfile = hashfile;
10873
10874 logfile_top_var_string ("target", hashfile);
10875
10876 FILE *fp = NULL;
10877
10878 if ((fp = fopen (hashfile, "rb")) == NULL)
10879 {
10880 log_error ("ERROR: %s: %s", hashfile, strerror (errno));
10881
10882 return (-1);
10883 }
10884
10885 if (data.quiet == 0) log_info_nn ("Counting lines in %s", hashfile);
10886
10887 hashes_avail = count_lines (fp);
10888
10889 rewind (fp);
10890
10891 if (hashes_avail == 0)
10892 {
10893 log_error ("ERROR: hashfile is empty or corrupt");
10894
10895 fclose (fp);
10896
10897 return (-1);
10898 }
10899
10900 hashlist_format = hlfmt_detect (fp, 100); // 100 = max numbers to "scan". could be hashes_avail, too
10901
10902 if ((remove == 1) && (hashlist_format != HLFMT_HASHCAT))
10903 {
10904 log_error ("ERROR: remove not supported in native hashfile-format mode");
10905
10906 fclose (fp);
10907
10908 return (-1);
10909 }
10910
10911 fclose (fp);
10912 }
10913 }
10914 else
10915 {
10916 hashlist_mode = HL_MODE_ARG;
10917
10918 hashes_avail = 1;
10919 }
10920
10921 if (hash_mode == 3000) hashes_avail *= 2;
10922
10923 data.hashlist_mode = hashlist_mode;
10924 data.hashlist_format = hashlist_format;
10925
10926 logfile_top_uint (hashlist_mode);
10927 logfile_top_uint (hashlist_format);
10928
10929 /**
10930 * load hashes, part II: allocate required memory, set pointers
10931 */
10932
10933 hash_t *hashes_buf = NULL;
10934 void *digests_buf = NULL;
10935 salt_t *salts_buf = NULL;
10936 void *esalts_buf = NULL;
10937
10938 hashes_buf = (hash_t *) mycalloc (hashes_avail, sizeof (hash_t));
10939
10940 digests_buf = (void *) mycalloc (hashes_avail, dgst_size);
10941
10942 if ((username && (remove || show)) || (opts_type & OPTS_TYPE_HASH_COPY))
10943 {
10944 u32 hash_pos;
10945
10946 for (hash_pos = 0; hash_pos < hashes_avail; hash_pos++)
10947 {
10948 hashinfo_t *hash_info = (hashinfo_t *) mymalloc (sizeof (hashinfo_t));
10949
10950 hashes_buf[hash_pos].hash_info = hash_info;
10951
10952 if (username && (remove || show || left))
10953 {
10954 hash_info->user = (user_t*) mymalloc (sizeof (user_t));
10955 }
10956
10957 if (benchmark)
10958 {
10959 hash_info->orighash = (char *) mymalloc (256);
10960 }
10961 }
10962 }
10963
10964 if (isSalted)
10965 {
10966 salts_buf = (salt_t *) mycalloc (hashes_avail, sizeof (salt_t));
10967
10968 if (esalt_size)
10969 {
10970 esalts_buf = (void *) mycalloc (hashes_avail, esalt_size);
10971 }
10972 }
10973 else
10974 {
10975 salts_buf = (salt_t *) mycalloc (1, sizeof (salt_t));
10976 }
10977
10978 for (uint hash_pos = 0; hash_pos < hashes_avail; hash_pos++)
10979 {
10980 hashes_buf[hash_pos].digest = ((char *) digests_buf) + (hash_pos * dgst_size);
10981
10982 if (isSalted)
10983 {
10984 hashes_buf[hash_pos].salt = &salts_buf[hash_pos];
10985
10986 if (esalt_size)
10987 {
10988 hashes_buf[hash_pos].esalt = ((char *) esalts_buf) + (hash_pos * esalt_size);
10989 }
10990 }
10991 else
10992 {
10993 hashes_buf[hash_pos].salt = &salts_buf[0];
10994 }
10995 }
10996
10997 /**
10998 * load hashes, part III: parse hashes or generate them if benchmark
10999 */
11000
11001 uint hashes_cnt = 0;
11002
11003 if (benchmark == 0)
11004 {
11005 if (keyspace == 1)
11006 {
11007 // useless to read hash file for keyspace, cheat a little bit w/ optind
11008 }
11009 else if (hashes_avail == 0)
11010 {
11011 }
11012 else if (hashlist_mode == HL_MODE_ARG)
11013 {
11014 char *input_buf = myargv[optind];
11015
11016 uint input_len = strlen (input_buf);
11017
11018 logfile_top_var_string ("target", input_buf);
11019
11020 char *hash_buf = NULL;
11021 int hash_len = 0;
11022
11023 hlfmt_hash (hashlist_format, input_buf, input_len, &hash_buf, &hash_len);
11024
11025 bool hash_fmt_error = 0;
11026
11027 if (hash_len < 1) hash_fmt_error = 1;
11028 if (hash_buf == NULL) hash_fmt_error = 1;
11029
11030 if (hash_fmt_error)
11031 {
11032 log_info ("WARNING: failed to parse hashes using the '%s' format", strhlfmt (hashlist_format));
11033 }
11034 else
11035 {
11036 if (opts_type & OPTS_TYPE_HASH_COPY)
11037 {
11038 hashinfo_t *hash_info_tmp = hashes_buf[hashes_cnt].hash_info;
11039
11040 hash_info_tmp->orighash = mystrdup (hash_buf);
11041 }
11042
11043 if (isSalted)
11044 {
11045 memset (hashes_buf[0].salt, 0, sizeof (salt_t));
11046 }
11047
11048 int parser_status = PARSER_OK;
11049
11050 if (hash_mode == 2500)
11051 {
11052 if (hash_len == 0)
11053 {
11054 log_error ("ERROR: hccap file not specified");
11055
11056 return (-1);
11057 }
11058
11059 hashlist_mode = HL_MODE_FILE;
11060
11061 data.hashlist_mode = hashlist_mode;
11062
11063 FILE *fp = fopen (hash_buf, "rb");
11064
11065 if (fp == NULL)
11066 {
11067 log_error ("ERROR: %s: %s", hash_buf, strerror (errno));
11068
11069 return (-1);
11070 }
11071
11072 if (hashes_avail < 1)
11073 {
11074 log_error ("ERROR: hccap file is empty or corrupt");
11075
11076 fclose (fp);
11077
11078 return (-1);
11079 }
11080
11081 uint hccap_size = sizeof (hccap_t);
11082
11083 char *in = (char *) mymalloc (hccap_size);
11084
11085 while (!feof (fp))
11086 {
11087 int n = fread (in, hccap_size, 1, fp);
11088
11089 if (n != 1)
11090 {
11091 if (hashes_cnt < 1) parser_status = PARSER_HCCAP_FILE_SIZE;
11092
11093 break;
11094 }
11095
11096 parser_status = parse_func (in, hccap_size, &hashes_buf[hashes_cnt]);
11097
11098 if (parser_status != PARSER_OK)
11099 {
11100 log_info ("WARNING: Hash '%s': %s", hash_buf, strparser (parser_status));
11101
11102 continue;
11103 }
11104
11105 // hack: append MAC1 and MAC2 s.t. in --show and --left the line matches with the .pot file format (i.e. ESSID:MAC1:MAC2)
11106
11107 if ((show == 1) || (left == 1))
11108 {
11109 salt_t *tmp_salt = hashes_buf[hashes_cnt].salt;
11110
11111 char *salt_ptr = (char *) tmp_salt->salt_buf;
11112
11113 int cur_pos = tmp_salt->salt_len;
11114 int rem_len = sizeof (hashes_buf[hashes_cnt].salt->salt_buf) - cur_pos;
11115
11116 wpa_t *wpa = (wpa_t *) hashes_buf[hashes_cnt].esalt;
11117
11118 // do the appending task
11119
11120 snprintf (salt_ptr + cur_pos,
11121 rem_len,
11122 ":%02x%02x%02x%02x%02x%02x:%02x%02x%02x%02x%02x%02x",
11123 wpa->orig_mac1[0],
11124 wpa->orig_mac1[1],
11125 wpa->orig_mac1[2],
11126 wpa->orig_mac1[3],
11127 wpa->orig_mac1[4],
11128 wpa->orig_mac1[5],
11129 wpa->orig_mac2[0],
11130 wpa->orig_mac2[1],
11131 wpa->orig_mac2[2],
11132 wpa->orig_mac2[3],
11133 wpa->orig_mac2[4],
11134 wpa->orig_mac2[5]);
11135
11136 // memset () the remaining part of the salt
11137
11138 cur_pos = tmp_salt->salt_len + 1 + 12 + 1 + 12;
11139 rem_len = sizeof (hashes_buf[hashes_cnt].salt->salt_buf) - cur_pos;
11140
11141 if (rem_len > 0) memset (salt_ptr + cur_pos, 0, rem_len);
11142
11143 tmp_salt->salt_len += 1 + 12 + 1 + 12;
11144 }
11145
11146 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);
11147 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);
11148
11149 hashes_cnt++;
11150 }
11151
11152 fclose (fp);
11153
11154 myfree (in);
11155 }
11156 else if (hash_mode == 3000)
11157 {
11158 if (hash_len == 32)
11159 {
11160 parser_status = parse_func (hash_buf, 16, &hashes_buf[hashes_cnt]);
11161
11162 hash_t *lm_hash_left = NULL;
11163
11164 if (parser_status == PARSER_OK)
11165 {
11166 lm_hash_left = &hashes_buf[hashes_cnt];
11167
11168 hashes_cnt++;
11169 }
11170 else
11171 {
11172 log_info ("WARNING: Hash '%s': %s", input_buf, strparser (parser_status));
11173 }
11174
11175 parser_status = parse_func (hash_buf + 16, 16, &hashes_buf[hashes_cnt]);
11176
11177 hash_t *lm_hash_right = NULL;
11178
11179 if (parser_status == PARSER_OK)
11180 {
11181 lm_hash_right = &hashes_buf[hashes_cnt];
11182
11183 hashes_cnt++;
11184 }
11185 else
11186 {
11187 log_info ("WARNING: Hash '%s': %s", input_buf, strparser (parser_status));
11188 }
11189
11190 // show / left
11191
11192 if ((lm_hash_left != NULL) && (lm_hash_right != NULL))
11193 {
11194 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);
11195 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);
11196 }
11197 }
11198 else
11199 {
11200 parser_status = parse_func (hash_buf, hash_len, &hashes_buf[hashes_cnt]);
11201
11202 if (parser_status == PARSER_OK)
11203 {
11204 if (show == 1) handle_show_request (pot, pot_cnt, input_buf, input_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11205 if (left == 1) handle_left_request (pot, pot_cnt, input_buf, input_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11206 }
11207
11208 if (parser_status == PARSER_OK)
11209 {
11210 hashes_cnt++;
11211 }
11212 else
11213 {
11214 log_info ("WARNING: Hash '%s': %s", input_buf, strparser (parser_status));
11215 }
11216 }
11217 }
11218 else
11219 {
11220 parser_status = parse_func (hash_buf, hash_len, &hashes_buf[hashes_cnt]);
11221
11222 if (parser_status == PARSER_OK)
11223 {
11224 if (show == 1) handle_show_request (pot, pot_cnt, input_buf, input_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11225 if (left == 1) handle_left_request (pot, pot_cnt, input_buf, input_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11226 }
11227
11228 if (parser_status == PARSER_OK)
11229 {
11230 hashes_cnt++;
11231 }
11232 else
11233 {
11234 log_info ("WARNING: Hash '%s': %s", input_buf, strparser (parser_status));
11235 }
11236 }
11237 }
11238 }
11239 else if (hashlist_mode == HL_MODE_FILE)
11240 {
11241 char *hashfile = data.hashfile;
11242
11243 FILE *fp;
11244
11245 if ((fp = fopen (hashfile, "rb")) == NULL)
11246 {
11247 log_error ("ERROR: %s: %s", hashfile, strerror (errno));
11248
11249 return (-1);
11250 }
11251
11252 uint line_num = 0;
11253
11254 char *line_buf = (char *) mymalloc (HCBUFSIZ);
11255
11256 while (!feof (fp))
11257 {
11258 line_num++;
11259
11260 int line_len = fgetl (fp, line_buf);
11261
11262 if (line_len == 0) continue;
11263
11264 char *hash_buf = NULL;
11265 int hash_len = 0;
11266
11267 hlfmt_hash (hashlist_format, line_buf, line_len, &hash_buf, &hash_len);
11268
11269 bool hash_fmt_error = 0;
11270
11271 if (hash_len < 1) hash_fmt_error = 1;
11272 if (hash_buf == NULL) hash_fmt_error = 1;
11273
11274 if (hash_fmt_error)
11275 {
11276 log_info ("WARNING: failed to parse hashes using the '%s' format", strhlfmt (hashlist_format));
11277
11278 continue;
11279 }
11280
11281 if (username)
11282 {
11283 char *user_buf = NULL;
11284 int user_len = 0;
11285
11286 hlfmt_user (hashlist_format, line_buf, line_len, &user_buf, &user_len);
11287
11288 if (remove || show)
11289 {
11290 user_t **user = &hashes_buf[hashes_cnt].hash_info->user;
11291
11292 *user = (user_t *) mymalloc (sizeof (user_t));
11293
11294 user_t *user_ptr = *user;
11295
11296 if (user_buf != NULL)
11297 {
11298 user_ptr->user_name = mystrdup (user_buf);
11299 }
11300 else
11301 {
11302 user_ptr->user_name = mystrdup ("");
11303 }
11304
11305 user_ptr->user_len = user_len;
11306 }
11307 }
11308
11309 if (opts_type & OPTS_TYPE_HASH_COPY)
11310 {
11311 hashinfo_t *hash_info_tmp = hashes_buf[hashes_cnt].hash_info;
11312
11313 hash_info_tmp->orighash = mystrdup (hash_buf);
11314 }
11315
11316 if (isSalted)
11317 {
11318 memset (hashes_buf[hashes_cnt].salt, 0, sizeof (salt_t));
11319 }
11320
11321 if (hash_mode == 3000)
11322 {
11323 if (hash_len == 32)
11324 {
11325 int parser_status = parse_func (hash_buf, 16, &hashes_buf[hashes_cnt]);
11326
11327 if (parser_status < PARSER_GLOBAL_ZERO)
11328 {
11329 log_info ("WARNING: Hashfile '%s' in line %u (%s): %s", data.hashfile, line_num, line_buf, strparser (parser_status));
11330
11331 continue;
11332 }
11333
11334 hash_t *lm_hash_left = &hashes_buf[hashes_cnt];
11335
11336 hashes_cnt++;
11337
11338 parser_status = parse_func (hash_buf + 16, 16, &hashes_buf[hashes_cnt]);
11339
11340 if (parser_status < PARSER_GLOBAL_ZERO)
11341 {
11342 log_info ("WARNING: Hashfile '%s' in line %u (%s): %s", data.hashfile, line_num, line_buf, strparser (parser_status));
11343
11344 continue;
11345 }
11346
11347 hash_t *lm_hash_right = &hashes_buf[hashes_cnt];
11348
11349 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);
11350
11351 hashes_cnt++;
11352
11353 // show / left
11354
11355 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);
11356 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);
11357 }
11358 else
11359 {
11360 int parser_status = parse_func (hash_buf, hash_len, &hashes_buf[hashes_cnt]);
11361
11362 if (parser_status < PARSER_GLOBAL_ZERO)
11363 {
11364 log_info ("WARNING: Hashfile '%s' in line %u (%s): %s", data.hashfile, line_num, line_buf, strparser (parser_status));
11365
11366 continue;
11367 }
11368
11369 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);
11370
11371 if (show == 1) handle_show_request (pot, pot_cnt, line_buf, line_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11372 if (left == 1) handle_left_request (pot, pot_cnt, line_buf, line_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11373
11374 hashes_cnt++;
11375 }
11376 }
11377 else
11378 {
11379 int parser_status = parse_func (hash_buf, hash_len, &hashes_buf[hashes_cnt]);
11380
11381 if (parser_status < PARSER_GLOBAL_ZERO)
11382 {
11383 log_info ("WARNING: Hashfile '%s' in line %u (%s): %s", data.hashfile, line_num, line_buf, strparser (parser_status));
11384
11385 continue;
11386 }
11387
11388 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);
11389
11390 if (show == 1) handle_show_request (pot, pot_cnt, line_buf, line_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11391 if (left == 1) handle_left_request (pot, pot_cnt, line_buf, line_len, &hashes_buf[hashes_cnt], sort_by_pot, out_fp);
11392
11393 hashes_cnt++;
11394 }
11395 }
11396
11397 myfree (line_buf);
11398
11399 fclose (fp);
11400
11401 if (data.quiet == 0) log_info_nn ("Parsed Hashes: %u/%u (%0.2f%%)", hashes_avail, hashes_avail, 100.00);
11402
11403 if ((out_fp != NULL) && (out_fp != stdout)) fclose (out_fp);
11404 }
11405 }
11406 else
11407 {
11408 if (isSalted)
11409 {
11410 hashes_buf[0].salt->salt_len = 8;
11411
11412 // special salt handling
11413
11414 switch (hash_mode)
11415 {
11416 case 1500: hashes_buf[0].salt->salt_len = 2;
11417 hashes_buf[0].salt->salt_buf[0] = 388; // pure magic
11418 break;
11419 case 1731: hashes_buf[0].salt->salt_len = 4;
11420 break;
11421 case 2410: hashes_buf[0].salt->salt_len = 4;
11422 break;
11423 case 2500: memcpy (hashes_buf[0].salt->salt_buf, "hashcat.net", 11);
11424 break;
11425 case 3100: hashes_buf[0].salt->salt_len = 1;
11426 break;
11427 case 5000: hashes_buf[0].salt->keccak_mdlen = 32;
11428 break;
11429 case 5800: hashes_buf[0].salt->salt_len = 16;
11430 break;
11431 case 6800: hashes_buf[0].salt->salt_len = 32;
11432 break;
11433 case 8400: hashes_buf[0].salt->salt_len = 40;
11434 break;
11435 case 8800: hashes_buf[0].salt->salt_len = 16;
11436 break;
11437 case 8900: hashes_buf[0].salt->salt_len = 16;
11438 hashes_buf[0].salt->scrypt_N = 1024;
11439 hashes_buf[0].salt->scrypt_r = 1;
11440 hashes_buf[0].salt->scrypt_p = 1;
11441 break;
11442 case 9100: hashes_buf[0].salt->salt_len = 16;
11443 break;
11444 case 9300: hashes_buf[0].salt->salt_len = 14;
11445 hashes_buf[0].salt->scrypt_N = 16384;
11446 hashes_buf[0].salt->scrypt_r = 1;
11447 hashes_buf[0].salt->scrypt_p = 1;
11448 break;
11449 case 9400: hashes_buf[0].salt->salt_len = 16;
11450 break;
11451 case 9500: hashes_buf[0].salt->salt_len = 16;
11452 break;
11453 case 9600: hashes_buf[0].salt->salt_len = 16;
11454 break;
11455 case 9700: hashes_buf[0].salt->salt_len = 16;
11456 break;
11457 case 9710: hashes_buf[0].salt->salt_len = 16;
11458 break;
11459 case 9720: hashes_buf[0].salt->salt_len = 16;
11460 break;
11461 case 9800: hashes_buf[0].salt->salt_len = 16;
11462 break;
11463 case 9810: hashes_buf[0].salt->salt_len = 16;
11464 break;
11465 case 9820: hashes_buf[0].salt->salt_len = 16;
11466 break;
11467 case 10300: hashes_buf[0].salt->salt_len = 12;
11468 break;
11469 case 11500: hashes_buf[0].salt->salt_len = 4;
11470 break;
11471 case 11600: hashes_buf[0].salt->salt_len = 4;
11472 break;
11473 case 12400: hashes_buf[0].salt->salt_len = 4;
11474 break;
11475 case 12500: hashes_buf[0].salt->salt_len = 8;
11476 break;
11477 case 12600: hashes_buf[0].salt->salt_len = 64;
11478 break;
11479 }
11480
11481 // special esalt handling
11482
11483 switch (hash_mode)
11484 {
11485 case 2500: ((wpa_t *) hashes_buf[0].esalt)->eapol_size = 128;
11486 break;
11487 case 5300: ((ikepsk_t *) hashes_buf[0].esalt)->nr_len = 1;
11488 ((ikepsk_t *) hashes_buf[0].esalt)->msg_len = 1;
11489 break;
11490 case 5400: ((ikepsk_t *) hashes_buf[0].esalt)->nr_len = 1;
11491 ((ikepsk_t *) hashes_buf[0].esalt)->msg_len = 1;
11492 break;
11493 case 5500: ((netntlm_t *) hashes_buf[0].esalt)->user_len = 1;
11494 ((netntlm_t *) hashes_buf[0].esalt)->domain_len = 1;
11495 ((netntlm_t *) hashes_buf[0].esalt)->srvchall_len = 1;
11496 ((netntlm_t *) hashes_buf[0].esalt)->clichall_len = 1;
11497 break;
11498 case 5600: ((netntlm_t *) hashes_buf[0].esalt)->user_len = 1;
11499 ((netntlm_t *) hashes_buf[0].esalt)->domain_len = 1;
11500 ((netntlm_t *) hashes_buf[0].esalt)->srvchall_len = 1;
11501 ((netntlm_t *) hashes_buf[0].esalt)->clichall_len = 1;
11502 break;
11503 case 7300: ((rakp_t *) hashes_buf[0].esalt)->salt_len = 32;
11504 break;
11505 case 10400: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11506 ((pdf_t *) hashes_buf[0].esalt)->o_len = 32;
11507 ((pdf_t *) hashes_buf[0].esalt)->u_len = 32;
11508 break;
11509 case 10410: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11510 ((pdf_t *) hashes_buf[0].esalt)->o_len = 32;
11511 ((pdf_t *) hashes_buf[0].esalt)->u_len = 32;
11512 break;
11513 case 10420: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11514 ((pdf_t *) hashes_buf[0].esalt)->o_len = 32;
11515 ((pdf_t *) hashes_buf[0].esalt)->u_len = 32;
11516 break;
11517 case 10500: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11518 ((pdf_t *) hashes_buf[0].esalt)->o_len = 32;
11519 ((pdf_t *) hashes_buf[0].esalt)->u_len = 32;
11520 break;
11521 case 10600: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11522 ((pdf_t *) hashes_buf[0].esalt)->o_len = 127;
11523 ((pdf_t *) hashes_buf[0].esalt)->u_len = 127;
11524 break;
11525 case 10700: ((pdf_t *) hashes_buf[0].esalt)->id_len = 16;
11526 ((pdf_t *) hashes_buf[0].esalt)->o_len = 127;
11527 ((pdf_t *) hashes_buf[0].esalt)->u_len = 127;
11528 break;
11529 case 11600: ((seven_zip_t *) hashes_buf[0].esalt)->iv_len = 16;
11530 ((seven_zip_t *) hashes_buf[0].esalt)->data_len = 112;
11531 ((seven_zip_t *) hashes_buf[0].esalt)->unpack_size = 112;
11532 break;
11533 case 13400: ((keepass_t *) hashes_buf[0].esalt)->version = 2;
11534 break;
11535 }
11536 }
11537
11538 // set hashfile
11539
11540 switch (hash_mode)
11541 {
11542 case 5200: data.hashfile = mystrdup ("hashcat.psafe3");
11543 break;
11544 case 5300: data.hashfile = mystrdup ("hashcat.ikemd5");
11545 break;
11546 case 5400: data.hashfile = mystrdup ("hashcat.ikesha1");
11547 break;
11548 case 6211: data.hashfile = mystrdup ("hashcat.tc");
11549 break;
11550 case 6212: data.hashfile = mystrdup ("hashcat.tc");
11551 break;
11552 case 6213: data.hashfile = mystrdup ("hashcat.tc");
11553 break;
11554 case 6221: data.hashfile = mystrdup ("hashcat.tc");
11555 break;
11556 case 6222: data.hashfile = mystrdup ("hashcat.tc");
11557 break;
11558 case 6223: data.hashfile = mystrdup ("hashcat.tc");
11559 break;
11560 case 6231: data.hashfile = mystrdup ("hashcat.tc");
11561 break;
11562 case 6232: data.hashfile = mystrdup ("hashcat.tc");
11563 break;
11564 case 6233: data.hashfile = mystrdup ("hashcat.tc");
11565 break;
11566 case 6241: data.hashfile = mystrdup ("hashcat.tc");
11567 break;
11568 case 6242: data.hashfile = mystrdup ("hashcat.tc");
11569 break;
11570 case 6243: data.hashfile = mystrdup ("hashcat.tc");
11571 break;
11572 case 6600: data.hashfile = mystrdup ("hashcat.agilekey");
11573 break;
11574 case 8200: data.hashfile = mystrdup ("hashcat.cloudkey");
11575 break;
11576 case 9000: data.hashfile = mystrdup ("hashcat.psafe2");
11577 break;
11578 }
11579
11580 // set default iterations
11581
11582 switch (hash_mode)
11583 {
11584 case 400: hashes_buf[0].salt->salt_iter = ROUNDS_PHPASS;
11585 break;
11586 case 500: hashes_buf[0].salt->salt_iter = ROUNDS_MD5CRYPT;
11587 break;
11588 case 501: hashes_buf[0].salt->salt_iter = ROUNDS_MD5CRYPT;
11589 break;
11590 case 1600: hashes_buf[0].salt->salt_iter = ROUNDS_MD5CRYPT;
11591 break;
11592 case 1800: hashes_buf[0].salt->salt_iter = ROUNDS_SHA512CRYPT;
11593 break;
11594 case 2100: hashes_buf[0].salt->salt_iter = ROUNDS_DCC2;
11595 break;
11596 case 2500: hashes_buf[0].salt->salt_iter = ROUNDS_WPA2;
11597 break;
11598 case 3200: hashes_buf[0].salt->salt_iter = ROUNDS_BCRYPT;
11599 break;
11600 case 5200: hashes_buf[0].salt->salt_iter = ROUNDS_PSAFE3;
11601 break;
11602 case 5800: hashes_buf[0].salt->salt_iter = ROUNDS_ANDROIDPIN - 1;
11603 break;
11604 case 6211: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_2K;
11605 break;
11606 case 6212: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_2K;
11607 break;
11608 case 6213: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_2K;
11609 break;
11610 case 6221: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11611 break;
11612 case 6222: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11613 break;
11614 case 6223: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11615 break;
11616 case 6231: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11617 break;
11618 case 6232: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11619 break;
11620 case 6233: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11621 break;
11622 case 6241: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11623 break;
11624 case 6242: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11625 break;
11626 case 6243: hashes_buf[0].salt->salt_iter = ROUNDS_TRUECRYPT_1K;
11627 break;
11628 case 6300: hashes_buf[0].salt->salt_iter = ROUNDS_MD5CRYPT;
11629 break;
11630 case 6400: hashes_buf[0].salt->salt_iter = ROUNDS_SHA256AIX;
11631 break;
11632 case 6500: hashes_buf[0].salt->salt_iter = ROUNDS_SHA512AIX;
11633 break;
11634 case 6700: hashes_buf[0].salt->salt_iter = ROUNDS_SHA1AIX;
11635 break;
11636 case 6600: hashes_buf[0].salt->salt_iter = ROUNDS_AGILEKEY;
11637 break;
11638 case 6800: hashes_buf[0].salt->salt_iter = ROUNDS_LASTPASS;
11639 break;
11640 case 7100: hashes_buf[0].salt->salt_iter = ROUNDS_SHA512OSX;
11641 break;
11642 case 7200: hashes_buf[0].salt->salt_iter = ROUNDS_GRUB;
11643 break;
11644 case 7400: hashes_buf[0].salt->salt_iter = ROUNDS_SHA256CRYPT;
11645 break;
11646 case 7900: hashes_buf[0].salt->salt_iter = ROUNDS_DRUPAL7;
11647 break;
11648 case 8200: hashes_buf[0].salt->salt_iter = ROUNDS_CLOUDKEY;
11649 break;
11650 case 8300: hashes_buf[0].salt->salt_iter = ROUNDS_NSEC3;
11651 break;
11652 case 8800: hashes_buf[0].salt->salt_iter = ROUNDS_ANDROIDFDE;
11653 break;
11654 case 8900: hashes_buf[0].salt->salt_iter = 1;
11655 break;
11656 case 9000: hashes_buf[0].salt->salt_iter = ROUNDS_PSAFE2;
11657 break;
11658 case 9100: hashes_buf[0].salt->salt_iter = ROUNDS_LOTUS8;
11659 break;
11660 case 9200: hashes_buf[0].salt->salt_iter = ROUNDS_CISCO8;
11661 break;
11662 case 9300: hashes_buf[0].salt->salt_iter = 1;
11663 break;
11664 case 9400: hashes_buf[0].salt->salt_iter = ROUNDS_OFFICE2007;
11665 break;
11666 case 9500: hashes_buf[0].salt->salt_iter = ROUNDS_OFFICE2010;
11667 break;
11668 case 9600: hashes_buf[0].salt->salt_iter = ROUNDS_OFFICE2013;
11669 break;
11670 case 10000: hashes_buf[0].salt->salt_iter = ROUNDS_DJANGOPBKDF2;
11671 break;
11672 case 10300: hashes_buf[0].salt->salt_iter = ROUNDS_SAPH_SHA1 - 1;
11673 break;
11674 case 10500: hashes_buf[0].salt->salt_iter = ROUNDS_PDF14;
11675 break;
11676 case 10700: hashes_buf[0].salt->salt_iter = ROUNDS_PDF17L8;
11677 break;
11678 case 10900: hashes_buf[0].salt->salt_iter = ROUNDS_PBKDF2_SHA256 - 1;
11679 break;
11680 case 11300: hashes_buf[0].salt->salt_iter = ROUNDS_BITCOIN_WALLET - 1;
11681 break;
11682 case 11600: hashes_buf[0].salt->salt_iter = ROUNDS_SEVEN_ZIP;
11683 break;
11684 case 11900: hashes_buf[0].salt->salt_iter = ROUNDS_PBKDF2_MD5 - 1;
11685 break;
11686 case 12000: hashes_buf[0].salt->salt_iter = ROUNDS_PBKDF2_SHA1 - 1;
11687 break;
11688 case 12100: hashes_buf[0].salt->salt_iter = ROUNDS_PBKDF2_SHA512 - 1;
11689 break;
11690 case 12200: hashes_buf[0].salt->salt_iter = ROUNDS_ECRYPTFS - 1;
11691 break;
11692 case 12300: hashes_buf[0].salt->salt_iter = ROUNDS_ORACLET - 1;
11693 break;
11694 case 12400: hashes_buf[0].salt->salt_iter = ROUNDS_BSDICRYPT - 1;
11695 break;
11696 case 12500: hashes_buf[0].salt->salt_iter = ROUNDS_RAR3;
11697 break;
11698 case 12700: hashes_buf[0].salt->salt_iter = ROUNDS_MYWALLET;
11699 break;
11700 case 12800: hashes_buf[0].salt->salt_iter = ROUNDS_MS_DRSR - 1;
11701 break;
11702 case 12900: hashes_buf[0].salt->salt_iter = ROUNDS_ANDROIDFDE_SAMSUNG - 1;
11703 break;
11704 case 13000: hashes_buf[0].salt->salt_iter = ROUNDS_RAR5 - 1;
11705 break;
11706 case 13200: hashes_buf[0].salt->salt_iter = ROUNDS_AXCRYPT;
11707 break;
11708 case 13400: hashes_buf[0].salt->salt_iter = ROUNDS_KEEPASS;
11709 break;
11710 }
11711
11712 hashes_cnt = 1;
11713 }
11714
11715 if (show == 1 || left == 1)
11716 {
11717 for (uint i = 0; i < pot_cnt; i++)
11718 {
11719 pot_t *pot_ptr = &pot[i];
11720
11721 hash_t *hashes_buf = &pot_ptr->hash;
11722
11723 local_free (hashes_buf->digest);
11724
11725 if (isSalted)
11726 {
11727 local_free (hashes_buf->salt);
11728 }
11729 }
11730
11731 local_free (pot);
11732
11733 if (data.quiet == 0) log_info_nn ("");
11734
11735 return (0);
11736 }
11737
11738 if (keyspace == 0)
11739 {
11740 if (hashes_cnt == 0)
11741 {
11742 log_error ("ERROR: No hashes loaded");
11743
11744 return (-1);
11745 }
11746 }
11747
11748 /**
11749 * Sanity check for hashfile vs outfile (should not point to the same physical file)
11750 */
11751
11752 if (data.outfile != NULL)
11753 {
11754 if (data.hashfile != NULL)
11755 {
11756 #ifdef _POSIX
11757 struct stat tmpstat_outfile;
11758 struct stat tmpstat_hashfile;
11759 #endif
11760
11761 #ifdef _WIN
11762 struct stat64 tmpstat_outfile;
11763 struct stat64 tmpstat_hashfile;
11764 #endif
11765
11766 FILE *tmp_outfile_fp = fopen (data.outfile, "r");
11767
11768 if (tmp_outfile_fp)
11769 {
11770 #ifdef _POSIX
11771 fstat (fileno (tmp_outfile_fp), &tmpstat_outfile);
11772 #endif
11773
11774 #ifdef _WIN
11775 _fstat64 (fileno (tmp_outfile_fp), &tmpstat_outfile);
11776 #endif
11777
11778 fclose (tmp_outfile_fp);
11779 }
11780
11781 FILE *tmp_hashfile_fp = fopen (data.hashfile, "r");
11782
11783 if (tmp_hashfile_fp)
11784 {
11785 #ifdef _POSIX
11786 fstat (fileno (tmp_hashfile_fp), &tmpstat_hashfile);
11787 #endif
11788
11789 #ifdef _WIN
11790 _fstat64 (fileno (tmp_hashfile_fp), &tmpstat_hashfile);
11791 #endif
11792
11793 fclose (tmp_hashfile_fp);
11794 }
11795
11796 if (tmp_outfile_fp && tmp_outfile_fp)
11797 {
11798 tmpstat_outfile.st_mode = 0;
11799 tmpstat_outfile.st_nlink = 0;
11800 tmpstat_outfile.st_uid = 0;
11801 tmpstat_outfile.st_gid = 0;
11802 tmpstat_outfile.st_rdev = 0;
11803 tmpstat_outfile.st_atime = 0;
11804
11805 tmpstat_hashfile.st_mode = 0;
11806 tmpstat_hashfile.st_nlink = 0;
11807 tmpstat_hashfile.st_uid = 0;
11808 tmpstat_hashfile.st_gid = 0;
11809 tmpstat_hashfile.st_rdev = 0;
11810 tmpstat_hashfile.st_atime = 0;
11811
11812 #ifdef _POSIX
11813 tmpstat_outfile.st_blksize = 0;
11814 tmpstat_outfile.st_blocks = 0;
11815
11816 tmpstat_hashfile.st_blksize = 0;
11817 tmpstat_hashfile.st_blocks = 0;
11818 #endif
11819
11820 #ifdef _POSIX
11821 if (memcmp (&tmpstat_outfile, &tmpstat_hashfile, sizeof (struct stat)) == 0)
11822 {
11823 log_error ("ERROR: Hashfile and Outfile are not allowed to point to the same file");
11824
11825 return (-1);
11826 }
11827 #endif
11828
11829 #ifdef _WIN
11830 if (memcmp (&tmpstat_outfile, &tmpstat_hashfile, sizeof (struct stat64)) == 0)
11831 {
11832 log_error ("ERROR: Hashfile and Outfile are not allowed to point to the same file");
11833
11834 return (-1);
11835 }
11836 #endif
11837 }
11838 }
11839 }
11840
11841 /**
11842 * Remove duplicates
11843 */
11844
11845 if (data.quiet == 0) log_info_nn ("Removing duplicate hashes...");
11846
11847 if (isSalted)
11848 {
11849 qsort (hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash);
11850 }
11851 else
11852 {
11853 qsort (hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash_no_salt);
11854 }
11855
11856 uint hashes_cnt_orig = hashes_cnt;
11857
11858 hashes_cnt = 1;
11859
11860 for (uint hashes_pos = 1; hashes_pos < hashes_cnt_orig; hashes_pos++)
11861 {
11862 if (isSalted)
11863 {
11864 if (sort_by_salt (hashes_buf[hashes_pos].salt, hashes_buf[hashes_pos - 1].salt) == 0)
11865 {
11866 if (sort_by_digest (hashes_buf[hashes_pos].digest, hashes_buf[hashes_pos - 1].digest) == 0) continue;
11867 }
11868 }
11869 else
11870 {
11871 if (sort_by_digest (hashes_buf[hashes_pos].digest, hashes_buf[hashes_pos - 1].digest) == 0) continue;
11872 }
11873
11874 if (hashes_pos > hashes_cnt)
11875 {
11876 memcpy (&hashes_buf[hashes_cnt], &hashes_buf[hashes_pos], sizeof (hash_t));
11877 }
11878
11879 hashes_cnt++;
11880 }
11881
11882 /**
11883 * Potfile removes
11884 */
11885
11886 uint potfile_remove_cracks = 0;
11887
11888 if (potfile_disable == 0)
11889 {
11890 hash_t hash_buf;
11891
11892 hash_buf.digest = mymalloc (dgst_size);
11893 hash_buf.salt = NULL;
11894 hash_buf.esalt = NULL;
11895 hash_buf.hash_info = NULL;
11896 hash_buf.cracked = 0;
11897
11898 if (isSalted)
11899 {
11900 hash_buf.salt = (salt_t *) mymalloc (sizeof (salt_t));
11901 }
11902
11903 if (esalt_size)
11904 {
11905 hash_buf.esalt = mymalloc (esalt_size);
11906 }
11907
11908 if (quiet == 0) log_info_nn ("Comparing hashes with potfile entries...");
11909
11910 // no solution for these special hash types (for instane because they use hashfile in output etc)
11911 if ((hash_mode != 5200) &&
11912 !((hash_mode >= 6200) && (hash_mode <= 6299)) &&
11913 (hash_mode != 9000))
11914 {
11915 FILE *fp = fopen (potfile, "rb");
11916
11917 if (fp != NULL)
11918 {
11919 char *line_buf = (char *) mymalloc (HCBUFSIZ);
11920
11921 // to be safe work with a copy (because of line_len loop, i etc)
11922 // moved up here because it's easier to handle continue case
11923 // it's just 64kb
11924
11925 char *line_buf_cpy = (char *) mymalloc (HCBUFSIZ);
11926
11927 while (!feof (fp))
11928 {
11929 char *ptr = fgets (line_buf, HCBUFSIZ - 1, fp);
11930
11931 if (ptr == NULL) break;
11932
11933 int line_len = strlen (line_buf);
11934
11935 if (line_len == 0) continue;
11936
11937 int iter = MAX_CUT_TRIES;
11938
11939 for (int i = line_len - 1; i && iter; i--, line_len--)
11940 {
11941 if (line_buf[i] != ':') continue;
11942
11943 if (isSalted)
11944 {
11945 memset (hash_buf.salt, 0, sizeof (salt_t));
11946 }
11947
11948 hash_t *found = NULL;
11949
11950 if (hash_mode == 6800)
11951 {
11952 if (i < 64) // 64 = 16 * uint in salt_buf[]
11953 {
11954 // manipulate salt_buf
11955 memcpy (hash_buf.salt->salt_buf, line_buf, i);
11956
11957 hash_buf.salt->salt_len = i;
11958
11959 found = (hash_t *) bsearch (&hash_buf, hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash_t_salt);
11960 }
11961 }
11962 else if (hash_mode == 2500)
11963 {
11964 if (i < 64) // 64 = 16 * uint in salt_buf[]
11965 {
11966 // here we have in line_buf: ESSID:MAC1:MAC2 (without the plain)
11967 // manipulate salt_buf
11968
11969 memcpy (line_buf_cpy, line_buf, i);
11970
11971 char *mac2_pos = strrchr (line_buf_cpy, ':');
11972
11973 if (mac2_pos == NULL) continue;
11974
11975 mac2_pos[0] = 0;
11976 mac2_pos++;
11977
11978 if (strlen (mac2_pos) != 12) continue;
11979
11980 char *mac1_pos = strrchr (line_buf_cpy, ':');
11981
11982 if (mac1_pos == NULL) continue;
11983
11984 mac1_pos[0] = 0;
11985 mac1_pos++;
11986
11987 if (strlen (mac1_pos) != 12) continue;
11988
11989 uint essid_length = mac1_pos - line_buf_cpy - 1;
11990
11991 // here we need the ESSID
11992 memcpy (hash_buf.salt->salt_buf, line_buf_cpy, essid_length);
11993
11994 hash_buf.salt->salt_len = essid_length;
11995
11996 found = (hash_t *) bsearch (&hash_buf, hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash_t_salt_hccap);
11997
11998 if (found)
11999 {
12000 wpa_t *wpa = (wpa_t *) found->esalt;
12001
12002 // compare hex string(s) vs binary MAC address(es)
12003
12004 for (uint i = 0, j = 0; i < 6; i++, j += 2)
12005 {
12006 if (wpa->orig_mac1[i] != hex_to_u8 ((const u8 *) &mac1_pos[j]))
12007 {
12008 found = NULL;
12009
12010 break;
12011 }
12012 }
12013
12014 // early skip ;)
12015 if (!found) continue;
12016
12017 for (uint i = 0, j = 0; i < 6; i++, j += 2)
12018 {
12019 if (wpa->orig_mac2[i] != hex_to_u8 ((const u8 *) &mac2_pos[j]))
12020 {
12021 found = NULL;
12022
12023 break;
12024 }
12025 }
12026 }
12027 }
12028 }
12029 else
12030 {
12031 int parser_status = parse_func (line_buf, line_len - 1, &hash_buf);
12032
12033 if (parser_status == PARSER_OK)
12034 {
12035 if (isSalted)
12036 {
12037 found = (hash_t *) bsearch (&hash_buf, hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash);
12038 }
12039 else
12040 {
12041 found = (hash_t *) bsearch (&hash_buf, hashes_buf, hashes_cnt, sizeof (hash_t), sort_by_hash_no_salt);
12042 }
12043 }
12044 }
12045
12046 if (found == NULL) continue;
12047
12048 if (!found->cracked) potfile_remove_cracks++;
12049
12050 found->cracked = 1;
12051
12052 if (found) break;
12053
12054 iter--;
12055 }
12056 }
12057
12058 myfree (line_buf_cpy);
12059
12060 myfree (line_buf);
12061
12062 fclose (fp);
12063 }
12064 }
12065
12066 if (esalt_size)
12067 {
12068 local_free (hash_buf.esalt);
12069 }
12070
12071 if (isSalted)
12072 {
12073 local_free (hash_buf.salt);
12074 }
12075
12076 local_free (hash_buf.digest);
12077 }
12078
12079 /**
12080 * Now generate all the buffers required for later
12081 */
12082
12083 void *digests_buf_new = (void *) mycalloc (hashes_avail, dgst_size);
12084
12085 salt_t *salts_buf_new = NULL;
12086 void *esalts_buf_new = NULL;
12087
12088 if (isSalted)
12089 {
12090 salts_buf_new = (salt_t *) mycalloc (hashes_avail, sizeof (salt_t));
12091
12092 if (esalt_size)
12093 {
12094 esalts_buf_new = (void *) mycalloc (hashes_avail, esalt_size);
12095 }
12096 }
12097 else
12098 {
12099 salts_buf_new = (salt_t *) mycalloc (1, sizeof (salt_t));
12100 }
12101
12102 if (data.quiet == 0) log_info_nn ("Structuring salts for cracking task...");
12103
12104 uint digests_cnt = hashes_cnt;
12105 uint digests_done = 0;
12106
12107 uint size_digests = digests_cnt * dgst_size;
12108 uint size_shown = digests_cnt * sizeof (uint);
12109
12110 uint *digests_shown = (uint *) mymalloc (size_shown);
12111 uint *digests_shown_tmp = (uint *) mymalloc (size_shown);
12112
12113 uint salts_cnt = 0;
12114 uint salts_done = 0;
12115
12116 hashinfo_t **hash_info = NULL;
12117
12118 if ((username && (remove || show)) || (opts_type & OPTS_TYPE_HASH_COPY))
12119 {
12120 hash_info = (hashinfo_t**) mymalloc (hashes_cnt * sizeof (hashinfo_t *));
12121
12122 if (username && (remove || show))
12123 {
12124 uint user_pos;
12125
12126 for (user_pos = 0; user_pos < hashes_cnt; user_pos++)
12127 {
12128 hash_info[user_pos] = (hashinfo_t*) mycalloc (hashes_cnt, sizeof (hashinfo_t));
12129
12130 hash_info[user_pos]->user = (user_t*) mymalloc (sizeof (user_t));
12131 }
12132 }
12133 }
12134
12135 uint *salts_shown = (uint *) mymalloc (size_shown);
12136
12137 salt_t *salt_buf;
12138
12139 {
12140 // copied from inner loop
12141
12142 salt_buf = &salts_buf_new[salts_cnt];
12143
12144 memcpy (salt_buf, hashes_buf[0].salt, sizeof (salt_t));
12145
12146 if (esalt_size)
12147 {
12148 memcpy (((char *) esalts_buf_new) + (salts_cnt * esalt_size), hashes_buf[0].esalt, esalt_size);
12149 }
12150
12151 salt_buf->digests_cnt = 0;
12152 salt_buf->digests_done = 0;
12153 salt_buf->digests_offset = 0;
12154
12155 salts_cnt++;
12156 }
12157
12158 if (hashes_buf[0].cracked == 1)
12159 {
12160 digests_shown[0] = 1;
12161
12162 digests_done++;
12163
12164 salt_buf->digests_done++;
12165 }
12166
12167 salt_buf->digests_cnt++;
12168
12169 memcpy (((char *) digests_buf_new) + (0 * dgst_size), hashes_buf[0].digest, dgst_size);
12170
12171 if ((username && (remove || show)) || (opts_type & OPTS_TYPE_HASH_COPY))
12172 {
12173 hash_info[0] = hashes_buf[0].hash_info;
12174 }
12175
12176 // copy from inner loop
12177
12178 for (uint hashes_pos = 1; hashes_pos < hashes_cnt; hashes_pos++)
12179 {
12180 if (isSalted)
12181 {
12182 if (sort_by_salt (hashes_buf[hashes_pos].salt, hashes_buf[hashes_pos - 1].salt) != 0)
12183 {
12184 salt_buf = &salts_buf_new[salts_cnt];
12185
12186 memcpy (salt_buf, hashes_buf[hashes_pos].salt, sizeof (salt_t));
12187
12188 if (esalt_size)
12189 {
12190 memcpy (((char *) esalts_buf_new) + (salts_cnt * esalt_size), hashes_buf[hashes_pos].esalt, esalt_size);
12191 }
12192
12193 salt_buf->digests_cnt = 0;
12194 salt_buf->digests_done = 0;
12195 salt_buf->digests_offset = hashes_pos;
12196
12197 salts_cnt++;
12198 }
12199 }
12200
12201 if (hashes_buf[hashes_pos].cracked == 1)
12202 {
12203 digests_shown[hashes_pos] = 1;
12204
12205 digests_done++;
12206
12207 salt_buf->digests_done++;
12208 }
12209
12210 salt_buf->digests_cnt++;
12211
12212 memcpy (((char *) digests_buf_new) + (hashes_pos * dgst_size), hashes_buf[hashes_pos].digest, dgst_size);
12213
12214 if ((username && (remove || show)) || (opts_type & OPTS_TYPE_HASH_COPY))
12215 {
12216 hash_info[hashes_pos] = hashes_buf[hashes_pos].hash_info;
12217 }
12218 }
12219
12220 for (uint salt_pos = 0; salt_pos < salts_cnt; salt_pos++)
12221 {
12222 salt_t *salt_buf = &salts_buf_new[salt_pos];
12223
12224 if (salt_buf->digests_done == salt_buf->digests_cnt)
12225 {
12226 salts_shown[salt_pos] = 1;
12227
12228 salts_done++;
12229 }
12230
12231 if (salts_done == salts_cnt) data.devices_status = STATUS_CRACKED;
12232 }
12233
12234 local_free (digests_buf);
12235 local_free (salts_buf);
12236 local_free (esalts_buf);
12237
12238 digests_buf = digests_buf_new;
12239 salts_buf = salts_buf_new;
12240 esalts_buf = esalts_buf_new;
12241
12242 local_free (hashes_buf);
12243
12244 /**
12245 * special modification not set from parser
12246 */
12247
12248 switch (hash_mode)
12249 {
12250 case 6211: salts_buf->truecrypt_mdlen = 1 * 512; break;
12251 case 6212: salts_buf->truecrypt_mdlen = 2 * 512; break;
12252 case 6213: salts_buf->truecrypt_mdlen = 3 * 512; break;
12253 case 6221: salts_buf->truecrypt_mdlen = 1 * 512; break;
12254 case 6222: salts_buf->truecrypt_mdlen = 2 * 512; break;
12255 case 6223: salts_buf->truecrypt_mdlen = 3 * 512; break;
12256 case 6231: salts_buf->truecrypt_mdlen = 1 * 512; break;
12257 case 6232: salts_buf->truecrypt_mdlen = 2 * 512; break;
12258 case 6233: salts_buf->truecrypt_mdlen = 3 * 512; break;
12259 case 6241: salts_buf->truecrypt_mdlen = 1 * 512; break;
12260 case 6242: salts_buf->truecrypt_mdlen = 2 * 512; break;
12261 case 6243: salts_buf->truecrypt_mdlen = 3 * 512; break;
12262 }
12263
12264 if (truecrypt_keyfiles)
12265 {
12266 uint *keyfile_buf = ((tc_t *) esalts_buf)->keyfile_buf;
12267
12268 char *keyfiles = strdup (truecrypt_keyfiles);
12269
12270 char *keyfile = strtok (keyfiles, ",");
12271
12272 do
12273 {
12274 truecrypt_crc32 (keyfile, (u8 *) keyfile_buf);
12275
12276 } while ((keyfile = strtok (NULL, ",")) != NULL);
12277
12278 free (keyfiles);
12279 }
12280
12281 data.digests_cnt = digests_cnt;
12282 data.digests_done = digests_done;
12283 data.digests_buf = digests_buf;
12284 data.digests_shown = digests_shown;
12285 data.digests_shown_tmp = digests_shown_tmp;
12286
12287 data.salts_cnt = salts_cnt;
12288 data.salts_done = salts_done;
12289 data.salts_buf = salts_buf;
12290 data.salts_shown = salts_shown;
12291
12292 data.esalts_buf = esalts_buf;
12293 data.hash_info = hash_info;
12294
12295 /**
12296 * Automatic Optimizers
12297 */
12298
12299 if (salts_cnt == 1)
12300 opti_type |= OPTI_TYPE_SINGLE_SALT;
12301
12302 if (digests_cnt == 1)
12303 opti_type |= OPTI_TYPE_SINGLE_HASH;
12304
12305 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
12306 opti_type |= OPTI_TYPE_NOT_ITERATED;
12307
12308 if (attack_mode == ATTACK_MODE_BF)
12309 opti_type |= OPTI_TYPE_BRUTE_FORCE;
12310
12311 data.opti_type = opti_type;
12312
12313 if (opti_type & OPTI_TYPE_BRUTE_FORCE)
12314 {
12315 if (opti_type & OPTI_TYPE_SINGLE_HASH)
12316 {
12317 if (opti_type & OPTI_TYPE_APPENDED_SALT)
12318 {
12319 if (opts_type & OPTS_TYPE_ST_ADD80)
12320 {
12321 opts_type &= ~OPTS_TYPE_ST_ADD80;
12322 opts_type |= OPTS_TYPE_PT_ADD80;
12323 }
12324
12325 if (opts_type & OPTS_TYPE_ST_ADDBITS14)
12326 {
12327 opts_type &= ~OPTS_TYPE_ST_ADDBITS14;
12328 opts_type |= OPTS_TYPE_PT_ADDBITS14;
12329 }
12330
12331 if (opts_type & OPTS_TYPE_ST_ADDBITS15)
12332 {
12333 opts_type &= ~OPTS_TYPE_ST_ADDBITS15;
12334 opts_type |= OPTS_TYPE_PT_ADDBITS15;
12335 }
12336 }
12337 }
12338 }
12339
12340 /**
12341 * Some algorithm, like descrypt, can benefit from JIT compilation
12342 */
12343
12344 int force_jit_compilation = -1;
12345
12346 if (hash_mode == 8900)
12347 {
12348 force_jit_compilation = 8900;
12349 }
12350 else if (hash_mode == 9300)
12351 {
12352 force_jit_compilation = 8900;
12353 }
12354 else if (hash_mode == 1500 && attack_mode == ATTACK_MODE_BF && data.salts_cnt == 1)
12355 {
12356 force_jit_compilation = 1500;
12357 }
12358
12359 /**
12360 * generate bitmap tables
12361 */
12362
12363 const uint bitmap_shift1 = 5;
12364 const uint bitmap_shift2 = 13;
12365
12366 if (bitmap_max < bitmap_min) bitmap_max = bitmap_min;
12367
12368 uint *bitmap_s1_a = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12369 uint *bitmap_s1_b = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12370 uint *bitmap_s1_c = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12371 uint *bitmap_s1_d = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12372 uint *bitmap_s2_a = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12373 uint *bitmap_s2_b = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12374 uint *bitmap_s2_c = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12375 uint *bitmap_s2_d = (uint *) mymalloc ((1 << bitmap_max) * sizeof (uint));
12376
12377 uint bitmap_bits;
12378 uint bitmap_nums;
12379 uint bitmap_mask;
12380 uint bitmap_size;
12381
12382 for (bitmap_bits = bitmap_min; bitmap_bits < bitmap_max; bitmap_bits++)
12383 {
12384 if (data.quiet == 0) log_info_nn ("Generating bitmap tables with %u bits...", bitmap_bits);
12385
12386 bitmap_nums = 1 << bitmap_bits;
12387
12388 bitmap_mask = bitmap_nums - 1;
12389
12390 bitmap_size = bitmap_nums * sizeof (uint);
12391
12392 if ((hashes_cnt & bitmap_mask) == hashes_cnt) break;
12393
12394 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;
12395 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;
12396
12397 break;
12398 }
12399
12400 bitmap_nums = 1 << bitmap_bits;
12401
12402 bitmap_mask = bitmap_nums - 1;
12403
12404 bitmap_size = bitmap_nums * sizeof (uint);
12405
12406 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);
12407 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);
12408
12409 /**
12410 * prepare quick rule
12411 */
12412
12413 data.rule_buf_l = rule_buf_l;
12414 data.rule_buf_r = rule_buf_r;
12415
12416 int rule_len_l = (int) strlen (rule_buf_l);
12417 int rule_len_r = (int) strlen (rule_buf_r);
12418
12419 data.rule_len_l = rule_len_l;
12420 data.rule_len_r = rule_len_r;
12421
12422 /**
12423 * load rules
12424 */
12425
12426 uint *all_kernel_rules_cnt = NULL;
12427
12428 kernel_rule_t **all_kernel_rules_buf = NULL;
12429
12430 if (rp_files_cnt)
12431 {
12432 all_kernel_rules_cnt = (uint *) mycalloc (rp_files_cnt, sizeof (uint));
12433
12434 all_kernel_rules_buf = (kernel_rule_t **) mycalloc (rp_files_cnt, sizeof (kernel_rule_t *));
12435 }
12436
12437 char *rule_buf = (char *) mymalloc (HCBUFSIZ);
12438
12439 int rule_len = 0;
12440
12441 for (uint i = 0; i < rp_files_cnt; i++)
12442 {
12443 uint kernel_rules_avail = 0;
12444
12445 uint kernel_rules_cnt = 0;
12446
12447 kernel_rule_t *kernel_rules_buf = NULL;
12448
12449 char *rp_file = rp_files[i];
12450
12451 char in[BLOCK_SIZE] = { 0 };
12452 char out[BLOCK_SIZE] = { 0 };
12453
12454 FILE *fp = NULL;
12455
12456 uint rule_line = 0;
12457
12458 if ((fp = fopen (rp_file, "rb")) == NULL)
12459 {
12460 log_error ("ERROR: %s: %s", rp_file, strerror (errno));
12461
12462 return (-1);
12463 }
12464
12465 while (!feof (fp))
12466 {
12467 memset (rule_buf, 0, HCBUFSIZ);
12468
12469 rule_len = fgetl (fp, rule_buf);
12470
12471 rule_line++;
12472
12473 if (rule_len == 0) continue;
12474
12475 if (rule_buf[0] == '#') continue;
12476
12477 if (kernel_rules_avail == kernel_rules_cnt)
12478 {
12479 kernel_rules_buf = (kernel_rule_t *) myrealloc (kernel_rules_buf, kernel_rules_avail * sizeof (kernel_rule_t), INCR_RULES * sizeof (kernel_rule_t));
12480
12481 kernel_rules_avail += INCR_RULES;
12482 }
12483
12484 memset (in, 0, BLOCK_SIZE);
12485 memset (out, 0, BLOCK_SIZE);
12486
12487 int result = _old_apply_rule (rule_buf, rule_len, in, 1, out);
12488
12489 if (result == -1)
12490 {
12491 log_info ("WARNING: Skipping invalid or unsupported rule in file %s in line %u: %s", rp_file, rule_line, rule_buf);
12492
12493 continue;
12494 }
12495
12496 if (cpu_rule_to_kernel_rule (rule_buf, rule_len, &kernel_rules_buf[kernel_rules_cnt]) == -1)
12497 {
12498 log_info ("WARNING: Cannot convert rule for use on device in file %s in line %u: %s", rp_file, rule_line, rule_buf);
12499
12500 memset (&kernel_rules_buf[kernel_rules_cnt], 0, sizeof (kernel_rule_t)); // needs to be cleared otherwise we could have some remaining data
12501
12502 continue;
12503 }
12504
12505 /* its so slow
12506 if (rulefind (&kernel_rules_buf[kernel_rules_cnt], kernel_rules_buf, kernel_rules_cnt, sizeof (kernel_rule_t), sort_by_kernel_rule))
12507 {
12508 log_info ("Duplicate rule for use on device in file %s in line %u: %s", rp_file, rule_line, rule_buf);
12509
12510 continue;
12511 }
12512 */
12513
12514 kernel_rules_cnt++;
12515 }
12516
12517 fclose (fp);
12518
12519 all_kernel_rules_cnt[i] = kernel_rules_cnt;
12520
12521 all_kernel_rules_buf[i] = kernel_rules_buf;
12522 }
12523
12524 /**
12525 * merge rules or automatic rule generator
12526 */
12527
12528 uint kernel_rules_cnt = 0;
12529
12530 kernel_rule_t *kernel_rules_buf = NULL;
12531
12532 if (attack_mode == ATTACK_MODE_STRAIGHT)
12533 {
12534 if (rp_files_cnt)
12535 {
12536 kernel_rules_cnt = 1;
12537
12538 uint *repeats = (uint *) mycalloc (rp_files_cnt + 1, sizeof (uint));
12539
12540 repeats[0] = kernel_rules_cnt;
12541
12542 for (uint i = 0; i < rp_files_cnt; i++)
12543 {
12544 kernel_rules_cnt *= all_kernel_rules_cnt[i];
12545
12546 repeats[i + 1] = kernel_rules_cnt;
12547 }
12548
12549 kernel_rules_buf = (kernel_rule_t *) mycalloc (kernel_rules_cnt, sizeof (kernel_rule_t));
12550
12551 memset (kernel_rules_buf, 0, kernel_rules_cnt * sizeof (kernel_rule_t));
12552
12553 for (uint i = 0; i < kernel_rules_cnt; i++)
12554 {
12555 uint out_pos = 0;
12556
12557 kernel_rule_t *out = &kernel_rules_buf[i];
12558
12559 for (uint j = 0; j < rp_files_cnt; j++)
12560 {
12561 uint in_off = (i / repeats[j]) % all_kernel_rules_cnt[j];
12562 uint in_pos;
12563
12564 kernel_rule_t *in = &all_kernel_rules_buf[j][in_off];
12565
12566 for (in_pos = 0; in->cmds[in_pos]; in_pos++, out_pos++)
12567 {
12568 if (out_pos == RULES_MAX - 1)
12569 {
12570 // log_info ("WARNING: Truncating chaining of rule %d and rule %d as maximum number of function calls per rule exceeded", i, in_off);
12571
12572 break;
12573 }
12574
12575 out->cmds[out_pos] = in->cmds[in_pos];
12576 }
12577 }
12578 }
12579
12580 local_free (repeats);
12581 }
12582 else if (rp_gen)
12583 {
12584 uint kernel_rules_avail = 0;
12585
12586 while (kernel_rules_cnt < rp_gen)
12587 {
12588 if (kernel_rules_avail == kernel_rules_cnt)
12589 {
12590 kernel_rules_buf = (kernel_rule_t *) myrealloc (kernel_rules_buf, kernel_rules_avail * sizeof (kernel_rule_t), INCR_RULES * sizeof (kernel_rule_t));
12591
12592 kernel_rules_avail += INCR_RULES;
12593 }
12594
12595 memset (rule_buf, 0, HCBUFSIZ);
12596
12597 rule_len = (int) generate_random_rule (rule_buf, rp_gen_func_min, rp_gen_func_max);
12598
12599 if (cpu_rule_to_kernel_rule (rule_buf, rule_len, &kernel_rules_buf[kernel_rules_cnt]) == -1) continue;
12600
12601 kernel_rules_cnt++;
12602 }
12603 }
12604 }
12605
12606 myfree (rule_buf);
12607
12608 /**
12609 * generate NOP rules
12610 */
12611
12612 if (kernel_rules_cnt == 0)
12613 {
12614 kernel_rules_buf = (kernel_rule_t *) mymalloc (sizeof (kernel_rule_t));
12615
12616 kernel_rules_buf[kernel_rules_cnt].cmds[0] = RULE_OP_MANGLE_NOOP;
12617
12618 kernel_rules_cnt++;
12619 }
12620
12621 data.kernel_rules_cnt = kernel_rules_cnt;
12622 data.kernel_rules_buf = kernel_rules_buf;
12623
12624 /**
12625 * OpenCL platforms: detect
12626 */
12627
12628 cl_platform_id platforms[CL_PLATFORMS_MAX] = { 0 };
12629 cl_device_id platform_devices[DEVICES_MAX] = { 0 };
12630
12631 cl_uint platforms_cnt = 0;
12632 cl_uint platform_devices_cnt = 0;
12633
12634 if (keyspace == 0)
12635 {
12636 hc_clGetPlatformIDs (data.ocl, CL_PLATFORMS_MAX, platforms, &platforms_cnt);
12637
12638 if (platforms_cnt == 0)
12639 {
12640 log_error ("ERROR: No OpenCL compatible platform found");
12641
12642 return (-1);
12643 }
12644
12645 if (opencl_platforms_filter != (uint) -1)
12646 {
12647 uint platform_cnt_mask = ~(((uint) -1 >> platforms_cnt) << platforms_cnt);
12648
12649 if (opencl_platforms_filter > platform_cnt_mask)
12650 {
12651 log_error ("ERROR: The platform selected by the --opencl-platforms parameter is larger than the number of available platforms (%d)", platforms_cnt);
12652
12653 return (-1);
12654 }
12655 }
12656 }
12657
12658 /**
12659 * OpenCL platforms: For each platform check if we need to unset features that we can not use, eg: temp_retain
12660 */
12661
12662 for (uint platform_id = 0; platform_id < platforms_cnt; platform_id++)
12663 {
12664 cl_platform_id platform = platforms[platform_id];
12665
12666 char platform_vendor[INFOSZ] = { 0 };
12667
12668 hc_clGetPlatformInfo (data.ocl, platform, CL_PLATFORM_VENDOR, sizeof (platform_vendor), platform_vendor, NULL);
12669
12670 #ifdef HAVE_HWMON
12671 #if defined(HAVE_NVML) || defined(HAVE_NVAPI)
12672 if (strcmp (platform_vendor, CL_VENDOR_NV) == 0)
12673 {
12674 // make sure that we do not directly control the fan for NVidia
12675
12676 gpu_temp_retain = 0;
12677
12678 data.gpu_temp_retain = gpu_temp_retain;
12679 }
12680 #endif // HAVE_NVML || HAVE_NVAPI
12681 #endif
12682 }
12683
12684 /**
12685 * OpenCL devices: simply push all devices from all platforms into the same device array
12686 */
12687
12688 hc_device_param_t *devices_param = (hc_device_param_t *) mycalloc (DEVICES_MAX, sizeof (hc_device_param_t));
12689
12690 data.devices_param = devices_param;
12691
12692 uint devices_cnt = 0;
12693
12694 uint devices_active = 0;
12695
12696 for (uint platform_id = 0; platform_id < platforms_cnt; platform_id++)
12697 {
12698 if ((opencl_platforms_filter & (1 << platform_id)) == 0) continue;
12699
12700 cl_platform_id platform = platforms[platform_id];
12701
12702 hc_clGetDeviceIDs (data.ocl, platform, CL_DEVICE_TYPE_ALL, DEVICES_MAX, platform_devices, &platform_devices_cnt);
12703
12704 char platform_vendor[INFOSZ] = { 0 };
12705
12706 hc_clGetPlatformInfo (data.ocl, platform, CL_PLATFORM_VENDOR, sizeof (platform_vendor), platform_vendor, NULL);
12707
12708 // find our own platform vendor because pocl and mesa are pushing original vendor_id through opencl
12709 // this causes trouble with vendor id based macros
12710 // we'll assign generic to those without special optimization available
12711
12712 cl_uint vendor_id = 0;
12713
12714 if (strcmp (platform_vendor, CL_VENDOR_AMD) == 0)
12715 {
12716 vendor_id = VENDOR_ID_AMD;
12717 }
12718 else if (strcmp (platform_vendor, CL_VENDOR_APPLE) == 0)
12719 {
12720 vendor_id = VENDOR_ID_GENERIC;
12721 }
12722 else if (strcmp (platform_vendor, CL_VENDOR_INTEL_BEIGNET) == 0)
12723 {
12724 vendor_id = VENDOR_ID_GENERIC;
12725 }
12726 else if (strcmp (platform_vendor, CL_VENDOR_INTEL_SDK) == 0)
12727 {
12728 vendor_id = VENDOR_ID_GENERIC;
12729 }
12730 else if (strcmp (platform_vendor, CL_VENDOR_MESA) == 0)
12731 {
12732 vendor_id = VENDOR_ID_GENERIC;
12733 }
12734 else if (strcmp (platform_vendor, CL_VENDOR_NV) == 0)
12735 {
12736 vendor_id = VENDOR_ID_NV;
12737 }
12738 else if (strcmp (platform_vendor, CL_VENDOR_POCL) == 0)
12739 {
12740 vendor_id = VENDOR_ID_GENERIC;
12741 }
12742 else
12743 {
12744 vendor_id = VENDOR_ID_GENERIC;
12745 }
12746
12747 for (uint platform_devices_id = 0; platform_devices_id < platform_devices_cnt; platform_devices_id++)
12748 {
12749 size_t param_value_size = 0;
12750
12751 const uint device_id = devices_cnt;
12752
12753 hc_device_param_t *device_param = &data.devices_param[device_id];
12754
12755 device_param->vendor_id = vendor_id;
12756
12757 device_param->device = platform_devices[platform_devices_id];
12758
12759 device_param->device_id = device_id;
12760
12761 device_param->platform_devices_id = platform_devices_id;
12762
12763 // device_type
12764
12765 cl_device_type device_type;
12766
12767 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_TYPE, sizeof (device_type), &device_type, NULL);
12768
12769 device_type &= ~CL_DEVICE_TYPE_DEFAULT;
12770
12771 device_param->device_type = device_type;
12772
12773 // device_name
12774
12775 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_NAME, 0, NULL, &param_value_size);
12776
12777 char *device_name = (char *) mymalloc (param_value_size);
12778
12779 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_NAME, param_value_size, device_name, NULL);
12780
12781 device_param->device_name = device_name;
12782
12783 // tuning db
12784
12785 tuning_db_entry_t *tuningdb_entry = tuning_db_search (tuning_db, device_param, attack_mode, hash_mode);
12786
12787 // device_version
12788
12789 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_VERSION, 0, NULL, &param_value_size);
12790
12791 char *device_version = (char *) mymalloc (param_value_size);
12792
12793 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_VERSION, param_value_size, device_version, NULL);
12794
12795 device_param->device_version = device_version;
12796
12797 // device_opencl_version
12798
12799 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_OPENCL_C_VERSION, 0, NULL, &param_value_size);
12800
12801 char *device_opencl_version = (char *) mymalloc (param_value_size);
12802
12803 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_OPENCL_C_VERSION, param_value_size, device_opencl_version, NULL);
12804
12805 device_param->opencl_v12 = device_opencl_version[9] > '1' || device_opencl_version[11] >= '2';
12806
12807 myfree (device_opencl_version);
12808
12809 // vector_width
12810
12811 cl_uint vector_width;
12812
12813 if (opencl_vector_width_chgd == 0)
12814 {
12815 if (tuningdb_entry == NULL || tuningdb_entry->vector_width == -1)
12816 {
12817 if (opti_type & OPTI_TYPE_USES_BITS_64)
12818 {
12819 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_NATIVE_VECTOR_WIDTH_LONG, sizeof (vector_width), &vector_width, NULL);
12820 }
12821 else
12822 {
12823 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_NATIVE_VECTOR_WIDTH_INT, sizeof (vector_width), &vector_width, NULL);
12824 }
12825 }
12826 else
12827 {
12828 vector_width = (cl_uint) tuningdb_entry->vector_width;
12829 }
12830 }
12831 else
12832 {
12833 vector_width = opencl_vector_width;
12834 }
12835
12836 if (vector_width > 16) vector_width = 16;
12837
12838 device_param->vector_width = vector_width;
12839
12840 // max_compute_units
12841
12842 cl_uint device_processors;
12843
12844 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_MAX_COMPUTE_UNITS, sizeof (device_processors), &device_processors, NULL);
12845
12846 device_param->device_processors = device_processors;
12847
12848 // max_mem_alloc_size
12849
12850 cl_ulong device_maxmem_alloc;
12851
12852 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_MAX_MEM_ALLOC_SIZE, sizeof (device_maxmem_alloc), &device_maxmem_alloc, NULL);
12853
12854 device_param->device_maxmem_alloc = device_maxmem_alloc;
12855
12856 // max_mem_alloc_size
12857
12858 cl_ulong device_global_mem;
12859
12860 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_GLOBAL_MEM_SIZE, sizeof (device_global_mem), &device_global_mem, NULL);
12861
12862 device_param->device_global_mem = device_global_mem;
12863
12864 // max_clock_frequency
12865
12866 cl_uint device_maxclock_frequency;
12867
12868 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_MAX_CLOCK_FREQUENCY, sizeof (device_maxclock_frequency), &device_maxclock_frequency, NULL);
12869
12870 device_param->device_maxclock_frequency = device_maxclock_frequency;
12871
12872 // skipped
12873
12874 const u32 skipped1 = ((devices_filter & (1 << device_id)) == 0);
12875 const u32 skipped2 = ((device_types_filter & (device_type)) == 0);
12876
12877 device_param->skipped = (skipped1 || skipped2);
12878
12879 // driver_version
12880 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DRIVER_VERSION, 0, NULL, &param_value_size);
12881
12882 char *driver_version = (char *) mymalloc (param_value_size);
12883
12884 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DRIVER_VERSION, param_value_size, driver_version, NULL);
12885
12886 device_param->driver_version = driver_version;
12887
12888 // device_name_chksum
12889
12890 char *device_name_chksum = (char *) mymalloc (INFOSZ);
12891
12892 #if __x86_64__
12893 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);
12894 #else
12895 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);
12896 #endif
12897
12898 uint device_name_digest[4] = { 0 };
12899
12900 md5_64 ((uint *) device_name_chksum, device_name_digest);
12901
12902 snprintf (device_name_chksum, INFOSZ - 1, "%08x", device_name_digest[0]);
12903
12904 device_param->device_name_chksum = device_name_chksum;
12905
12906 // device_processor_cores
12907
12908 if (device_type & CL_DEVICE_TYPE_CPU)
12909 {
12910 cl_uint device_processor_cores = 1;
12911
12912 device_param->device_processor_cores = device_processor_cores;
12913 }
12914
12915 if (device_type & CL_DEVICE_TYPE_GPU)
12916 {
12917 if (vendor_id == VENDOR_ID_AMD)
12918 {
12919 cl_uint device_processor_cores = 0;
12920
12921 #define CL_DEVICE_WAVEFRONT_WIDTH_AMD 0x4043
12922
12923 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_WAVEFRONT_WIDTH_AMD, sizeof (device_processor_cores), &device_processor_cores, NULL);
12924
12925 device_param->device_processor_cores = device_processor_cores;
12926 }
12927 else if (vendor_id == VENDOR_ID_NV)
12928 {
12929 cl_uint kernel_exec_timeout = 0;
12930
12931 #define CL_DEVICE_KERNEL_EXEC_TIMEOUT_NV 0x4005
12932
12933 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_KERNEL_EXEC_TIMEOUT_NV, sizeof (kernel_exec_timeout), &kernel_exec_timeout, NULL);
12934
12935 device_param->kernel_exec_timeout = kernel_exec_timeout;
12936
12937 cl_uint device_processor_cores = 0;
12938
12939 #define CL_DEVICE_WARP_SIZE_NV 0x4003
12940
12941 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_WARP_SIZE_NV, sizeof (device_processor_cores), &device_processor_cores, NULL);
12942
12943 device_param->device_processor_cores = device_processor_cores;
12944
12945 cl_uint sm_minor = 0;
12946 cl_uint sm_major = 0;
12947
12948 #define CL_DEVICE_COMPUTE_CAPABILITY_MAJOR_NV 0x4000
12949 #define CL_DEVICE_COMPUTE_CAPABILITY_MINOR_NV 0x4001
12950
12951 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_COMPUTE_CAPABILITY_MINOR_NV, sizeof (sm_minor), &sm_minor, NULL);
12952 hc_clGetDeviceInfo (data.ocl, device_param->device, CL_DEVICE_COMPUTE_CAPABILITY_MAJOR_NV, sizeof (sm_major), &sm_major, NULL);
12953
12954 device_param->sm_minor = sm_minor;
12955 device_param->sm_major = sm_major;
12956 }
12957 else
12958 {
12959 cl_uint device_processor_cores = 1;
12960
12961 device_param->device_processor_cores = device_processor_cores;
12962 }
12963 }
12964
12965 // display results
12966
12967 if ((benchmark == 1 || quiet == 0) && (algorithm_pos == 0))
12968 {
12969 if (device_param->skipped == 0)
12970 {
12971 log_info ("Device #%u: %s, %lu/%lu MB allocatable, %dMhz, %uMCU",
12972 device_id + 1,
12973 device_name,
12974 (unsigned int) (device_maxmem_alloc / 1024 / 1024),
12975 (unsigned int) (device_global_mem / 1024 / 1024),
12976 (unsigned int) (device_maxclock_frequency),
12977 (unsigned int) device_processors);
12978 }
12979 else
12980 {
12981 log_info ("Device #%u: %s, skipped",
12982 device_id + 1,
12983 device_name);
12984 }
12985 }
12986
12987 // common driver check
12988
12989 if (device_param->skipped == 0)
12990 {
12991 if (device_type & CL_DEVICE_TYPE_GPU)
12992 {
12993 if (vendor_id == VENDOR_ID_AMD)
12994 {
12995 int catalyst_check = (force == 1) ? 0 : 1;
12996
12997 int catalyst_warn = 0;
12998
12999 int catalyst_broken = 0;
13000
13001 if (catalyst_check == 1)
13002 {
13003 catalyst_warn = 1;
13004
13005 // v14.9 and higher
13006 if (atoi (device_param->driver_version) >= 1573)
13007 {
13008 catalyst_warn = 0;
13009 }
13010
13011 catalyst_check = 0;
13012 }
13013
13014 if (catalyst_broken == 1)
13015 {
13016 log_info ("");
13017 log_info ("ATTENTION! The installed catalyst driver in your system is known to be broken!");
13018 log_info ("It will pass over cracked hashes and does not report them as cracked");
13019 log_info ("You are STRONGLY encouraged not to use it");
13020 log_info ("You can use --force to override this but do not post error reports if you do so");
13021 log_info ("");
13022
13023 return (-1);
13024 }
13025
13026 if (catalyst_warn == 1)
13027 {
13028 log_info ("");
13029 log_info ("ATTENTION! Unsupported or incorrect installed catalyst driver detected!");
13030 log_info ("You are STRONGLY encouraged to use the official supported catalyst driver for good reasons");
13031 log_info ("See oclHashcat's homepage for official supported catalyst drivers");
13032 #ifdef _WIN
13033 log_info ("Also see: http://hashcat.net/wiki/doku.php?id=upgrading_amd_drivers_how_to");
13034 #endif
13035 log_info ("You can use --force to override this but do not post error reports if you do so");
13036 log_info ("");
13037
13038 return (-1);
13039 }
13040 }
13041 else if (vendor_id == VENDOR_ID_NV)
13042 {
13043 if (device_param->kernel_exec_timeout != 0)
13044 {
13045 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);
13046 if (data.quiet == 0) log_info (" See the wiki on how to disable it: https://hashcat.net/wiki/doku.php?id=timeout_patch");
13047 }
13048 }
13049 else if (vendor_id == VENDOR_ID_POCL)
13050 {
13051 if (force == 0)
13052 {
13053 log_info ("");
13054 log_info ("ATTENTION! All pocl drivers are known to be broken due to broken LLVM <= 3.7");
13055 log_info ("You are STRONGLY encouraged not to use it");
13056 log_info ("You can use --force to override this but do not post error reports if you do so");
13057 log_info ("");
13058
13059 return (-1);
13060 }
13061 }
13062 }
13063
13064 /**
13065 * kernel accel and loops tuning db adjustment
13066 */
13067
13068 device_param->kernel_accel_min = 1;
13069 device_param->kernel_accel_max = 1024;
13070
13071 device_param->kernel_loops_min = 1;
13072 device_param->kernel_loops_max = 1024;
13073
13074 tuning_db_entry_t *tuningdb_entry = tuning_db_search (tuning_db, device_param, attack_mode, hash_mode);
13075
13076 if (tuningdb_entry)
13077 {
13078 u32 _kernel_accel = tuningdb_entry->kernel_accel;
13079 u32 _kernel_loops = tuningdb_entry->kernel_loops;
13080
13081 if (_kernel_accel)
13082 {
13083 device_param->kernel_accel_min = _kernel_accel;
13084 device_param->kernel_accel_max = _kernel_accel;
13085 }
13086
13087 if (_kernel_loops)
13088 {
13089 if (workload_profile == 1)
13090 {
13091 _kernel_loops = (_kernel_loops > 8) ? _kernel_loops / 8 : 1;
13092 }
13093 else if (workload_profile == 2)
13094 {
13095 _kernel_loops = (_kernel_loops > 4) ? _kernel_loops / 4 : 1;
13096 }
13097
13098 device_param->kernel_loops_min = _kernel_loops;
13099 device_param->kernel_loops_max = _kernel_loops;
13100 }
13101 }
13102
13103 // commandline parameters overwrite tuningdb entries
13104
13105 if (kernel_accel)
13106 {
13107 device_param->kernel_accel_min = kernel_accel;
13108 device_param->kernel_accel_max = kernel_accel;
13109 }
13110
13111 if (kernel_loops)
13112 {
13113 device_param->kernel_loops_min = kernel_loops;
13114 device_param->kernel_loops_max = kernel_loops;
13115 }
13116
13117 /**
13118 * activate device
13119 */
13120
13121 devices_active++;
13122 }
13123
13124 // next please
13125
13126 devices_cnt++;
13127 }
13128 }
13129
13130 if (keyspace == 0 && devices_active == 0)
13131 {
13132 log_error ("ERROR: No devices found/left");
13133
13134 return (-1);
13135 }
13136
13137 // 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)
13138
13139 if (devices_filter != (uint) -1)
13140 {
13141 uint devices_cnt_mask = ~(((uint) -1 >> devices_cnt) << devices_cnt);
13142
13143 if (devices_filter > devices_cnt_mask)
13144 {
13145 log_error ("ERROR: The device specified by the --opencl-devices parameter is larger than the number of available devices (%d)", devices_cnt);
13146
13147 return (-1);
13148 }
13149 }
13150
13151 data.devices_cnt = devices_cnt;
13152
13153 data.devices_active = devices_active;
13154
13155 if ((benchmark == 1 || quiet == 0) && (algorithm_pos == 0))
13156 {
13157 log_info ("");
13158 }
13159
13160 /**
13161 * HM devices: init
13162 */
13163
13164 #ifdef HAVE_HWMON
13165 #if defined(HAVE_NVML) || defined(HAVE_NVAPI)
13166 hm_attrs_t hm_adapters_nv[DEVICES_MAX] = { { { 0 }, 0, 0 } };
13167 #endif
13168
13169 #ifdef HAVE_ADL
13170 hm_attrs_t hm_adapters_amd[DEVICES_MAX] = { { { 0 }, 0, 0 } };
13171 #endif
13172
13173 if (gpu_temp_disable == 0)
13174 {
13175 #if defined(WIN) && defined(HAVE_NVAPI)
13176 NVAPI_PTR *nvapi = (NVAPI_PTR *) mymalloc (sizeof (NVAPI_PTR));
13177
13178 if (nvapi_init (nvapi) == 0)
13179 data.hm_nv = nvapi;
13180
13181 if (data.hm_nv)
13182 {
13183 if (hm_NvAPI_Initialize (data.hm_nv) == NVAPI_OK)
13184 {
13185 HM_ADAPTER_NV nvGPUHandle[DEVICES_MAX] = { 0 };
13186
13187 int tmp_in = hm_get_adapter_index_nv (nvGPUHandle);
13188
13189 int tmp_out = 0;
13190
13191 for (int i = 0; i < tmp_in; i++)
13192 {
13193 hm_adapters_nv[tmp_out++].adapter_index.nv = nvGPUHandle[i];
13194 }
13195
13196 for (int i = 0; i < tmp_out; i++)
13197 {
13198 NV_GPU_COOLER_SETTINGS pCoolerSettings;
13199
13200 pCoolerSettings.Version = GPU_COOLER_SETTINGS_VER | sizeof (NV_GPU_COOLER_SETTINGS);
13201
13202 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;
13203 }
13204 }
13205 }
13206 #endif // WIN && HAVE_NVAPI
13207
13208 #if defined(LINUX) && defined(HAVE_NVML)
13209 NVML_PTR *nvml = (NVML_PTR *) mymalloc (sizeof (NVML_PTR));
13210
13211 if (nvml_init (nvml) == 0)
13212 data.hm_nv = nvml;
13213
13214 if (data.hm_nv)
13215 {
13216 if (hm_NVML_nvmlInit (data.hm_nv) == NVML_SUCCESS)
13217 {
13218 HM_ADAPTER_NV nvGPUHandle[DEVICES_MAX] = { 0 };
13219
13220 int tmp_in = hm_get_adapter_index_nv (nvGPUHandle);
13221
13222 int tmp_out = 0;
13223
13224 for (int i = 0; i < tmp_in; i++)
13225 {
13226 hm_adapters_nv[tmp_out++].adapter_index.nv = nvGPUHandle[i];
13227 }
13228
13229 for (int i = 0; i < tmp_out; i++)
13230 {
13231 unsigned int speed;
13232
13233 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;
13234 }
13235 }
13236 }
13237 #endif // LINUX && HAVE_NVML
13238
13239 data.hm_amd = NULL;
13240
13241 #ifdef HAVE_ADL
13242 ADL_PTR *adl = (ADL_PTR *) mymalloc (sizeof (ADL_PTR));
13243
13244 if (adl_init (adl) == 0)
13245 data.hm_amd = adl;
13246
13247 if (data.hm_amd)
13248 {
13249 if (hm_ADL_Main_Control_Create (data.hm_amd, ADL_Main_Memory_Alloc, 0) == ADL_OK)
13250 {
13251 // total number of adapters
13252
13253 int hm_adapters_num;
13254
13255 if (get_adapters_num_amd (data.hm_amd, &hm_adapters_num) != 0) return (-1);
13256
13257 // adapter info
13258
13259 LPAdapterInfo lpAdapterInfo = hm_get_adapter_info_amd (data.hm_amd, hm_adapters_num);
13260
13261 if (lpAdapterInfo == NULL) return (-1);
13262
13263 // get a list (of ids of) valid/usable adapters
13264
13265 int num_adl_adapters = 0;
13266
13267 u32 *valid_adl_device_list = hm_get_list_valid_adl_adapters (hm_adapters_num, &num_adl_adapters, lpAdapterInfo);
13268
13269 if (num_adl_adapters > 0)
13270 {
13271 hc_thread_mutex_lock (mux_adl);
13272
13273 // hm_get_opencl_busid_devid (hm_adapters_amd, devices_all_cnt, devices_all);
13274
13275 hm_get_adapter_index_amd (hm_adapters_amd, valid_adl_device_list, num_adl_adapters, lpAdapterInfo);
13276
13277 hm_get_overdrive_version (data.hm_amd, hm_adapters_amd, valid_adl_device_list, num_adl_adapters, lpAdapterInfo);
13278 hm_check_fanspeed_control (data.hm_amd, hm_adapters_amd, valid_adl_device_list, num_adl_adapters, lpAdapterInfo);
13279
13280 hc_thread_mutex_unlock (mux_adl);
13281 }
13282
13283 myfree (valid_adl_device_list);
13284 myfree (lpAdapterInfo);
13285 }
13286 }
13287 #endif // HAVE_ADL
13288
13289 if (data.hm_amd == NULL && data.hm_nv == NULL)
13290 {
13291 gpu_temp_disable = 1;
13292 }
13293 }
13294
13295 /**
13296 * OpenCL devices: allocate buffer for device specific information
13297 */
13298
13299 #ifdef HAVE_HWMON
13300 int *temp_retain_fanspeed_value = (int *) mycalloc (data.devices_cnt, sizeof (int));
13301
13302 #ifdef HAVE_ADL
13303 ADLOD6MemClockState *od_clock_mem_status = (ADLOD6MemClockState *) mycalloc (data.devices_cnt, sizeof (ADLOD6MemClockState));
13304
13305 int *od_power_control_status = (int *) mycalloc (data.devices_cnt, sizeof (int));
13306 #endif // ADL
13307 #endif
13308
13309 /**
13310 * enable custom signal handler(s)
13311 */
13312
13313 if (benchmark == 0)
13314 {
13315 hc_signal (sigHandler_default);
13316 }
13317 else
13318 {
13319 hc_signal (sigHandler_benchmark);
13320 }
13321
13322 /**
13323 * User-defined GPU temp handling
13324 */
13325
13326 #ifdef HAVE_HWMON
13327 if (gpu_temp_disable == 1)
13328 {
13329 gpu_temp_abort = 0;
13330 gpu_temp_retain = 0;
13331 }
13332
13333 if ((gpu_temp_abort != 0) && (gpu_temp_retain != 0))
13334 {
13335 if (gpu_temp_abort < gpu_temp_retain)
13336 {
13337 log_error ("ERROR: invalid values for gpu-temp-abort. Parameter gpu-temp-abort is less than gpu-temp-retain.");
13338
13339 return (-1);
13340 }
13341 }
13342
13343 data.gpu_temp_disable = gpu_temp_disable;
13344 data.gpu_temp_abort = gpu_temp_abort;
13345 data.gpu_temp_retain = gpu_temp_retain;
13346 #endif
13347
13348 /**
13349 * inform the user
13350 */
13351
13352 if (data.quiet == 0)
13353 {
13354 log_info ("Hashes: %u hashes; %u unique digests, %u unique salts", hashes_cnt_orig, digests_cnt, salts_cnt);
13355
13356 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);
13357
13358 if (attack_mode == ATTACK_MODE_STRAIGHT)
13359 {
13360 log_info ("Rules: %u", kernel_rules_cnt);
13361 }
13362
13363 if (opti_type)
13364 {
13365 log_info ("Applicable Optimizers:");
13366
13367 for (uint i = 0; i < 32; i++)
13368 {
13369 const uint opti_bit = 1u << i;
13370
13371 if (opti_type & opti_bit) log_info ("* %s", stroptitype (opti_bit));
13372 }
13373 }
13374
13375 /**
13376 * Watchdog and Temperature balance
13377 */
13378
13379 #ifdef HAVE_HWMON
13380 if (gpu_temp_disable == 0 && data.hm_amd == NULL && data.hm_nv == NULL)
13381 {
13382 log_info ("Watchdog: Hardware Monitoring Interface not found on your system");
13383 }
13384
13385 if (gpu_temp_abort == 0)
13386 {
13387 log_info ("Watchdog: Temperature abort trigger disabled");
13388 }
13389 else
13390 {
13391 log_info ("Watchdog: Temperature abort trigger set to %uc", gpu_temp_abort);
13392 }
13393
13394 if (gpu_temp_retain == 0)
13395 {
13396 log_info ("Watchdog: Temperature retain trigger disabled");
13397 }
13398 else
13399 {
13400 log_info ("Watchdog: Temperature retain trigger set to %uc", gpu_temp_retain);
13401 }
13402 #endif
13403 }
13404
13405 if (data.quiet == 0) log_info ("");
13406
13407 /**
13408 * HM devices: copy
13409 */
13410
13411 if (gpu_temp_disable == 0)
13412 {
13413 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
13414 {
13415 hc_device_param_t *device_param = &data.devices_param[device_id];
13416
13417 if ((device_param->device_type & CL_DEVICE_TYPE_GPU) == 0) continue;
13418
13419 if (device_param->skipped) continue;
13420
13421 const uint platform_devices_id = device_param->platform_devices_id;
13422
13423 #if defined(HAVE_NVML) || defined(HAVE_NVAPI)
13424 if (device_param->vendor_id == VENDOR_ID_NV)
13425 {
13426 memcpy (&data.hm_device[device_id], &hm_adapters_nv[platform_devices_id], sizeof (hm_attrs_t));
13427 }
13428 #endif
13429
13430 #ifdef HAVE_ADL
13431 if (device_param->vendor_id == VENDOR_ID_AMD)
13432 {
13433 memcpy (&data.hm_device[device_id], &hm_adapters_amd[platform_devices_id], sizeof (hm_attrs_t));
13434 }
13435 #endif
13436 }
13437 }
13438
13439 /*
13440 * Temporary fix:
13441 * with AMD r9 295x cards it seems that we need to set the powertune value just AFTER the ocl init stuff
13442 * otherwise after hc_clCreateContext () etc, powertune value was set back to "normal" and cards unfortunately
13443 * were not working @ full speed (setting hm_ADL_Overdrive_PowerControl_Set () here seems to fix the problem)
13444 * Driver / ADL bug?
13445 */
13446
13447 #ifdef HAVE_ADL
13448 if (powertune_enable == 1)
13449 {
13450 hc_thread_mutex_lock (mux_adl);
13451
13452 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
13453 {
13454 hc_device_param_t *device_param = &data.devices_param[device_id];
13455
13456 if (device_param->skipped) continue;
13457
13458 if (data.hm_device[device_id].od_version == 6)
13459 {
13460 // set powertune value only
13461
13462 int powertune_supported = 0;
13463
13464 int ADL_rc = 0;
13465
13466 if ((ADL_rc = hm_ADL_Overdrive6_PowerControl_Caps (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune_supported)) != ADL_OK)
13467 {
13468 log_error ("ERROR: Failed to get ADL PowerControl Capabilities");
13469
13470 return (-1);
13471 }
13472
13473 if (powertune_supported != 0)
13474 {
13475 // powertune set
13476 ADLOD6PowerControlInfo powertune = {0, 0, 0, 0, 0};
13477
13478 if ((ADL_rc = hm_ADL_Overdrive_PowerControlInfo_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune)) != ADL_OK)
13479 {
13480 log_error ("ERROR: Failed to get current ADL PowerControl settings");
13481
13482 return (-1);
13483 }
13484
13485 if ((ADL_rc = hm_ADL_Overdrive_PowerControl_Set (data.hm_amd, data.hm_device[device_id].adapter_index.amd, powertune.iMaxValue)) != ADL_OK)
13486 {
13487 log_error ("ERROR: Failed to set new ADL PowerControl values");
13488
13489 return (-1);
13490 }
13491 }
13492 }
13493 }
13494
13495 hc_thread_mutex_unlock (mux_adl);
13496 }
13497 #endif // HAVE_ADK
13498 #endif // HAVE_HWMON
13499
13500 #ifdef DEBUG
13501 if (benchmark == 1) log_info ("Hashmode: %d", data.hash_mode);
13502 #endif
13503
13504 uint kernel_power_all = 0;
13505
13506 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
13507 {
13508 /**
13509 * host buffer
13510 */
13511
13512 hc_device_param_t *device_param = &data.devices_param[device_id];
13513
13514 if (device_param->skipped) continue;
13515
13516 /**
13517 * device properties
13518 */
13519
13520 const char *device_name_chksum = device_param->device_name_chksum;
13521 const u32 device_processors = device_param->device_processors;
13522 const u32 device_processor_cores = device_param->device_processor_cores;
13523
13524 /**
13525 * create context for each device
13526 */
13527
13528 device_param->context = hc_clCreateContext (data.ocl, NULL, 1, &device_param->device, NULL, NULL);
13529
13530 /**
13531 * create command-queue
13532 */
13533
13534 // not supported with NV
13535 // device_param->command_queue = hc_clCreateCommandQueueWithProperties (device_param->context, device_param->device, NULL);
13536
13537 device_param->command_queue = hc_clCreateCommandQueue (data.ocl, device_param->context, device_param->device, CL_QUEUE_PROFILING_ENABLE);
13538
13539 /**
13540 * create input buffers on device : calculate size of fixed memory buffers
13541 */
13542
13543 uint size_root_css = SP_PW_MAX * sizeof (cs_t);
13544 uint size_markov_css = SP_PW_MAX * CHARSIZ * sizeof (cs_t);
13545
13546 device_param->size_root_css = size_root_css;
13547 device_param->size_markov_css = size_markov_css;
13548
13549 uint size_results = KERNEL_THREADS * sizeof (uint);
13550
13551 device_param->size_results = size_results;
13552
13553 uint size_rules = kernel_rules_cnt * sizeof (kernel_rule_t);
13554 uint size_rules_c = KERNEL_RULES * sizeof (kernel_rule_t);
13555
13556 uint size_plains = digests_cnt * sizeof (plain_t);
13557 uint size_salts = salts_cnt * sizeof (salt_t);
13558 uint size_esalts = salts_cnt * esalt_size;
13559
13560 device_param->size_plains = size_plains;
13561 device_param->size_digests = size_digests;
13562 device_param->size_shown = size_shown;
13563 device_param->size_salts = size_salts;
13564
13565 uint size_combs = KERNEL_COMBS * sizeof (comb_t);
13566 uint size_bfs = KERNEL_BFS * sizeof (bf_t);
13567 uint size_tm = 32 * sizeof (bs_word_t);
13568
13569 // scryptV stuff
13570
13571 u64 size_scryptV = 1;
13572
13573 if ((hash_mode == 8900) || (hash_mode == 9300))
13574 {
13575 uint tmto_start = 0;
13576 uint tmto_stop = 10;
13577
13578 if (scrypt_tmto)
13579 {
13580 tmto_start = scrypt_tmto;
13581 }
13582 else
13583 {
13584 // in case the user did not specify the tmto manually
13585 // use some values known to run best (tested on 290x for AMD and 980ti for NV)
13586 // but set the lower end only in case the user has a device with too less memory
13587
13588 if (hash_mode == 8900)
13589 {
13590 if (device_param->vendor_id == VENDOR_ID_AMD)
13591 {
13592 tmto_start = 1;
13593 }
13594 else if (device_param->vendor_id == VENDOR_ID_NV)
13595 {
13596 tmto_start = 3;
13597 }
13598 }
13599 else if (hash_mode == 9300)
13600 {
13601 if (device_param->vendor_id == VENDOR_ID_AMD)
13602 {
13603 tmto_start = 3;
13604 }
13605 else if (device_param->vendor_id == VENDOR_ID_NV)
13606 {
13607 tmto_start = 5;
13608 }
13609 }
13610 }
13611
13612 if (quiet == 0) log_info ("");
13613
13614 uint shader_per_mp = 1;
13615
13616 if (device_param->vendor_id == VENDOR_ID_AMD)
13617 {
13618 shader_per_mp = 8;
13619 }
13620 else if (device_param->vendor_id == VENDOR_ID_NV)
13621 {
13622 shader_per_mp = 32;
13623 }
13624
13625 for (uint tmto = tmto_start; tmto < tmto_stop; tmto++)
13626 {
13627 // TODO: in theory the following calculation needs to be done per salt, not global
13628 // we assume all hashes have the same scrypt settings
13629
13630 size_scryptV = (128 * data.salts_buf[0].scrypt_r) * data.salts_buf[0].scrypt_N;
13631
13632 size_scryptV /= 1 << tmto;
13633
13634 size_scryptV *= device_processors * device_processor_cores * shader_per_mp;
13635
13636 if (size_scryptV > device_param->device_maxmem_alloc)
13637 {
13638 if (quiet == 0) log_info ("WARNING: not enough device memory allocatable to use --scrypt-tmto %d, increasing...", tmto);
13639
13640 continue;
13641 }
13642
13643 for (uint salts_pos = 0; salts_pos < data.salts_cnt; salts_pos++)
13644 {
13645 data.salts_buf[salts_pos].scrypt_tmto = tmto;
13646 data.salts_buf[salts_pos].scrypt_phy = device_processors * device_processor_cores * shader_per_mp;
13647 }
13648
13649 break;
13650 }
13651
13652 if (data.salts_buf[0].scrypt_phy == 0)
13653 {
13654 log_error ("ERROR: can't allocate enough device memory");
13655
13656 return -1;
13657 }
13658
13659 if (quiet == 0) log_info ("");
13660 if (quiet == 0) log_info ("SCRYPT tmto optimizer value set to: %u, mem: %u\n", data.salts_buf[0].scrypt_tmto, size_scryptV);
13661 }
13662
13663 /**
13664 * create input buffers on device : calculate size of dynamic size memory buffers
13665 */
13666
13667 uint kernel_threads = KERNEL_THREADS;
13668
13669 // some algorithms need a fixed kernel-threads count (mostly because of shared memory usage)
13670
13671 if (hash_mode == 3200) kernel_threads = 8;
13672 if (hash_mode == 9000) kernel_threads = 8;
13673
13674 /**
13675 * some algorithms need a fixed kernel-loops count
13676 */
13677
13678 if (hash_mode == 1500)
13679 {
13680 const u32 kernel_loops_fixed = 1024;
13681
13682 device_param->kernel_loops_min = kernel_loops_fixed;
13683 device_param->kernel_loops_max = kernel_loops_fixed;
13684 }
13685
13686 if (hash_mode == 3000)
13687 {
13688 const u32 kernel_loops_fixed = 1024;
13689
13690 device_param->kernel_loops_min = kernel_loops_fixed;
13691 device_param->kernel_loops_max = kernel_loops_fixed;
13692 }
13693
13694 if (hash_mode == 8900)
13695 {
13696 const u32 kernel_loops_fixed = 1;
13697
13698 device_param->kernel_loops_min = kernel_loops_fixed;
13699 device_param->kernel_loops_max = kernel_loops_fixed;
13700 }
13701
13702 if (hash_mode == 9300)
13703 {
13704 const u32 kernel_loops_fixed = 1;
13705
13706 device_param->kernel_loops_min = kernel_loops_fixed;
13707 device_param->kernel_loops_max = kernel_loops_fixed;
13708 }
13709
13710 if (hash_mode == 12500)
13711 {
13712 const u32 kernel_loops_fixed = ROUNDS_RAR3 / 16;
13713
13714 device_param->kernel_loops_min = kernel_loops_fixed;
13715 device_param->kernel_loops_max = kernel_loops_fixed;
13716 }
13717
13718 /**
13719 * some algorithms have a maximum kernel-loops count
13720 */
13721
13722 if (attack_exec == ATTACK_EXEC_OUTSIDE_KERNEL)
13723 {
13724 if (data.salts_buf[0].salt_iter < device_param->kernel_loops_max)
13725 {
13726 device_param->kernel_loops_max = data.salts_buf[0].salt_iter;
13727 }
13728 }
13729
13730 /**
13731 * some algorithms need a special kernel-accel
13732 */
13733
13734 if (hash_mode == 8900)
13735 {
13736 device_param->kernel_accel_min = 1;
13737 device_param->kernel_accel_max = 64;
13738 }
13739
13740 if (hash_mode == 9300)
13741 {
13742 device_param->kernel_accel_min = 1;
13743 device_param->kernel_accel_max = 64;
13744 }
13745
13746 u32 kernel_accel_min = device_param->kernel_accel_min;
13747 u32 kernel_accel_max = device_param->kernel_accel_max;
13748
13749 // find out if we would request too much memory on memory blocks which are based on kernel_accel
13750
13751 uint size_pws = 4;
13752 uint size_tmps = 4;
13753 uint size_hooks = 4;
13754
13755 while (kernel_accel_max >= kernel_accel_min)
13756 {
13757 uint kernel_power_max = device_processors * kernel_threads * kernel_accel_max;
13758
13759 // size_pws
13760
13761 size_pws = kernel_power_max * sizeof (pw_t);
13762
13763 // size_tmps
13764
13765 switch (hash_mode)
13766 {
13767 case 400: size_tmps = kernel_power_max * sizeof (phpass_tmp_t); break;
13768 case 500: size_tmps = kernel_power_max * sizeof (md5crypt_tmp_t); break;
13769 case 501: size_tmps = kernel_power_max * sizeof (md5crypt_tmp_t); break;
13770 case 1600: size_tmps = kernel_power_max * sizeof (md5crypt_tmp_t); break;
13771 case 1800: size_tmps = kernel_power_max * sizeof (sha512crypt_tmp_t); break;
13772 case 2100: size_tmps = kernel_power_max * sizeof (dcc2_tmp_t); break;
13773 case 2500: size_tmps = kernel_power_max * sizeof (wpa_tmp_t); break;
13774 case 3200: size_tmps = kernel_power_max * sizeof (bcrypt_tmp_t); break;
13775 case 5200: size_tmps = kernel_power_max * sizeof (pwsafe3_tmp_t); break;
13776 case 5800: size_tmps = kernel_power_max * sizeof (androidpin_tmp_t); break;
13777 case 6211: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13778 case 6212: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13779 case 6213: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13780 case 6221: size_tmps = kernel_power_max * sizeof (tc64_tmp_t); break;
13781 case 6222: size_tmps = kernel_power_max * sizeof (tc64_tmp_t); break;
13782 case 6223: size_tmps = kernel_power_max * sizeof (tc64_tmp_t); break;
13783 case 6231: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13784 case 6232: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13785 case 6233: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13786 case 6241: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13787 case 6242: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13788 case 6243: size_tmps = kernel_power_max * sizeof (tc_tmp_t); break;
13789 case 6300: size_tmps = kernel_power_max * sizeof (md5crypt_tmp_t); break;
13790 case 6400: size_tmps = kernel_power_max * sizeof (sha256aix_tmp_t); break;
13791 case 6500: size_tmps = kernel_power_max * sizeof (sha512aix_tmp_t); break;
13792 case 6600: size_tmps = kernel_power_max * sizeof (agilekey_tmp_t); break;
13793 case 6700: size_tmps = kernel_power_max * sizeof (sha1aix_tmp_t); break;
13794 case 6800: size_tmps = kernel_power_max * sizeof (lastpass_tmp_t); break;
13795 case 7100: size_tmps = kernel_power_max * sizeof (pbkdf2_sha512_tmp_t); break;
13796 case 7200: size_tmps = kernel_power_max * sizeof (pbkdf2_sha512_tmp_t); break;
13797 case 7400: size_tmps = kernel_power_max * sizeof (sha256crypt_tmp_t); break;
13798 case 7900: size_tmps = kernel_power_max * sizeof (drupal7_tmp_t); break;
13799 case 8200: size_tmps = kernel_power_max * sizeof (pbkdf2_sha512_tmp_t); break;
13800 case 8800: size_tmps = kernel_power_max * sizeof (androidfde_tmp_t); break;
13801 case 8900: size_tmps = kernel_power_max * sizeof (scrypt_tmp_t); break;
13802 case 9000: size_tmps = kernel_power_max * sizeof (pwsafe2_tmp_t); break;
13803 case 9100: size_tmps = kernel_power_max * sizeof (lotus8_tmp_t); break;
13804 case 9200: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13805 case 9300: size_tmps = kernel_power_max * sizeof (scrypt_tmp_t); break;
13806 case 9400: size_tmps = kernel_power_max * sizeof (office2007_tmp_t); break;
13807 case 9500: size_tmps = kernel_power_max * sizeof (office2010_tmp_t); break;
13808 case 9600: size_tmps = kernel_power_max * sizeof (office2013_tmp_t); break;
13809 case 10000: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13810 case 10200: size_tmps = kernel_power_max * sizeof (cram_md5_t); break;
13811 case 10300: size_tmps = kernel_power_max * sizeof (saph_sha1_tmp_t); break;
13812 case 10500: size_tmps = kernel_power_max * sizeof (pdf14_tmp_t); break;
13813 case 10700: size_tmps = kernel_power_max * sizeof (pdf17l8_tmp_t); break;
13814 case 10900: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13815 case 11300: size_tmps = kernel_power_max * sizeof (bitcoin_wallet_tmp_t); break;
13816 case 11600: size_tmps = kernel_power_max * sizeof (seven_zip_tmp_t); break;
13817 case 11900: size_tmps = kernel_power_max * sizeof (pbkdf2_md5_tmp_t); break;
13818 case 12000: size_tmps = kernel_power_max * sizeof (pbkdf2_sha1_tmp_t); break;
13819 case 12100: size_tmps = kernel_power_max * sizeof (pbkdf2_sha512_tmp_t); break;
13820 case 12200: size_tmps = kernel_power_max * sizeof (ecryptfs_tmp_t); break;
13821 case 12300: size_tmps = kernel_power_max * sizeof (oraclet_tmp_t); break;
13822 case 12400: size_tmps = kernel_power_max * sizeof (bsdicrypt_tmp_t); break;
13823 case 12500: size_tmps = kernel_power_max * sizeof (rar3_tmp_t); break;
13824 case 12700: size_tmps = kernel_power_max * sizeof (mywallet_tmp_t); break;
13825 case 12800: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13826 case 12900: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13827 case 13000: size_tmps = kernel_power_max * sizeof (pbkdf2_sha256_tmp_t); break;
13828 case 13200: size_tmps = kernel_power_max * sizeof (axcrypt_tmp_t); break;
13829 case 13400: size_tmps = kernel_power_max * sizeof (keepass_tmp_t); break;
13830 };
13831
13832 // size_hooks
13833
13834 if ((opts_type & OPTS_TYPE_HOOK12) || (opts_type & OPTS_TYPE_HOOK23))
13835 {
13836 // none yet
13837 }
13838
13839 // now check if all device-memory sizes which depend on the kernel_accel_max amplifier are within its boundaries
13840 // if not, decrease amplifier and try again
13841
13842 int skip = 0;
13843
13844 if (size_pws > device_param->device_maxmem_alloc) skip = 1;
13845 if (size_tmps > device_param->device_maxmem_alloc) skip = 1;
13846 if (size_hooks > device_param->device_maxmem_alloc) skip = 1;
13847
13848 if (( bitmap_size
13849 + bitmap_size
13850 + bitmap_size
13851 + bitmap_size
13852 + bitmap_size
13853 + bitmap_size
13854 + bitmap_size
13855 + bitmap_size
13856 + size_bfs
13857 + size_combs
13858 + size_digests
13859 + size_esalts
13860 + size_hooks
13861 + size_markov_css
13862 + size_plains
13863 + size_pws
13864 + size_results
13865 + size_root_css
13866 + size_rules
13867 + size_rules_c
13868 + size_salts
13869 + size_scryptV
13870 + size_shown
13871 + size_tm
13872 + size_tmps) > device_param->device_global_mem) skip = 1;
13873
13874 if (skip == 1)
13875 {
13876 kernel_accel_max--;
13877
13878 continue;
13879 }
13880
13881 break;
13882 }
13883
13884 /*
13885 if (kernel_accel_max == 0)
13886 {
13887 log_error ("Device #%u: Device does not provide enough allocatable device-memory to handle hash-type %u", device_id + 1, data.hash_mode);
13888
13889 return -1;
13890 }
13891 */
13892
13893 device_param->kernel_accel_min = kernel_accel_min;
13894 device_param->kernel_accel_max = kernel_accel_max;
13895
13896 /*
13897 if (kernel_accel_max < kernel_accel)
13898 {
13899 if (quiet == 0) log_info ("Device #%u: Reduced maximum kernel-accel to %u", device_id + 1, kernel_accel_max);
13900
13901 device_param->kernel_accel = kernel_accel_max;
13902 }
13903 */
13904
13905 device_param->size_bfs = size_bfs;
13906 device_param->size_combs = size_combs;
13907 device_param->size_rules = size_rules;
13908 device_param->size_rules_c = size_rules_c;
13909 device_param->size_pws = size_pws;
13910 device_param->size_tmps = size_tmps;
13911 device_param->size_hooks = size_hooks;
13912
13913 // do not confuse kernel_accel_max with kernel_accel here
13914
13915 const u32 kernel_power = device_processors * kernel_threads * kernel_accel_max;
13916
13917 device_param->kernel_threads = kernel_threads;
13918 device_param->kernel_power_user = kernel_power;
13919
13920 kernel_power_all += kernel_power;
13921
13922 /**
13923 * default building options
13924 */
13925
13926 char build_opts[1024] = { 0 };
13927
13928 // we don't have sm_* on vendors not NV but it doesn't matter
13929
13930 snprintf (build_opts, sizeof (build_opts) - 1, "-I\"%s/\" -DVENDOR_ID=%u -DCUDA_ARCH=%d -DVECT_SIZE=%u -DDEVICE_TYPE=%u", shared_dir, device_param->vendor_id, (device_param->sm_major * 100) + device_param->sm_minor, device_param->vector_width, (u32) device_param->device_type);
13931
13932 /**
13933 * main kernel
13934 */
13935
13936 {
13937 /**
13938 * kernel source filename
13939 */
13940
13941 char source_file[256] = { 0 };
13942
13943 generate_source_kernel_filename (attack_exec, attack_kern, kern_type, shared_dir, source_file);
13944
13945 struct stat sst;
13946
13947 if (stat (source_file, &sst) == -1)
13948 {
13949 log_error ("ERROR: %s: %s", source_file, strerror (errno));
13950
13951 return -1;
13952 }
13953
13954 /**
13955 * kernel cached filename
13956 */
13957
13958 char cached_file[256] = { 0 };
13959
13960 generate_cached_kernel_filename (attack_exec, attack_kern, kern_type, profile_dir, device_name_chksum, cached_file);
13961
13962 int cached = 1;
13963
13964 struct stat cst;
13965
13966 if ((stat (cached_file, &cst) == -1) || cst.st_size == 0)
13967 {
13968 cached = 0;
13969 }
13970
13971 /**
13972 * kernel compile or load
13973 */
13974
13975 size_t *kernel_lengths = (size_t *) mymalloc (sizeof (size_t));
13976
13977 const u8 **kernel_sources = (const u8 **) mymalloc (sizeof (u8 *));
13978
13979 if (force_jit_compilation == -1)
13980 {
13981 if (cached == 0)
13982 {
13983 if (quiet == 0) log_info ("Device #%u: Kernel %s not found in cache! Building may take a while...", device_id + 1, cached_file);
13984
13985 load_kernel (source_file, 1, kernel_lengths, kernel_sources);
13986
13987 device_param->program = hc_clCreateProgramWithSource (data.ocl, device_param->context, 1, (const char **) kernel_sources, NULL);
13988
13989 int rc = hc_clBuildProgram (data.ocl, device_param->program, 1, &device_param->device, build_opts, NULL, NULL, false);
13990
13991 #ifdef DEBUG
13992 size_t build_log_size = 0;
13993
13994 hc_clGetProgramBuildInfo (data.ocl, device_param->program, device_param->device, CL_PROGRAM_BUILD_LOG, 0, NULL, &build_log_size);
13995
13996 if (build_log_size > 1)
13997 {
13998 char *build_log = (char *) malloc (build_log_size + 1);
13999
14000 memset (build_log, 0, build_log_size + 1);
14001
14002 hc_clGetProgramBuildInfo (data.ocl, device_param->program, device_param->device, CL_PROGRAM_BUILD_LOG, build_log_size, build_log, NULL);
14003
14004 puts (build_log);
14005
14006 free (build_log);
14007 }
14008 #endif
14009
14010 if (rc != 0)
14011 {
14012 device_param->skipped = true;
14013 log_info ("Device #%u: Kernel %s build failure. Proceed without this device.", device_id + 1, source_file);
14014 continue;
14015 }
14016
14017 size_t binary_size;
14018
14019 hc_clGetProgramInfo (data.ocl, device_param->program, CL_PROGRAM_BINARY_SIZES, sizeof (size_t), &binary_size, NULL);
14020
14021 u8 *binary = (u8 *) mymalloc (binary_size);
14022
14023 hc_clGetProgramInfo (data.ocl, device_param->program, CL_PROGRAM_BINARIES, sizeof (binary), &binary, NULL);
14024
14025 writeProgramBin (cached_file, binary, binary_size);
14026
14027 local_free (binary);
14028 }
14029 else
14030 {
14031 if (quiet == 0) log_info ("Device #%u: Kernel %s (%ld bytes)", device_id + 1, cached_file, cst.st_size);
14032
14033 load_kernel (cached_file, 1, kernel_lengths, kernel_sources);
14034
14035 device_param->program = hc_clCreateProgramWithBinary (data.ocl, device_param->context, 1, &device_param->device, kernel_lengths, (const u8 **) kernel_sources, NULL);
14036
14037 hc_clBuildProgram (data.ocl, device_param->program, 1, &device_param->device, build_opts, NULL, NULL, true);
14038 }
14039 }
14040 else
14041 {
14042 if (quiet == 0) log_info ("Device #%u: Kernel %s (%ld bytes)", device_id + 1, source_file, sst.st_size);
14043
14044 load_kernel (source_file, 1, kernel_lengths, kernel_sources);
14045
14046 device_param->program = hc_clCreateProgramWithSource (data.ocl, device_param->context, 1, (const char **) kernel_sources, NULL);
14047
14048 char build_opts_update[1024] = { 0 };
14049
14050 if (force_jit_compilation == 1500)
14051 {
14052 snprintf (build_opts_update, sizeof (build_opts_update) - 1, "%s -DDESCRYPT_SALT=%d", build_opts, data.salts_buf[0].salt_buf[0]);
14053 }
14054 else if (force_jit_compilation == 8900)
14055 {
14056 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);
14057 }
14058 else
14059 {
14060 snprintf (build_opts_update, sizeof (build_opts_update) - 1, "%s", build_opts);
14061 }
14062
14063 int rc = hc_clBuildProgram (data.ocl, device_param->program, 1, &device_param->device, build_opts_update, NULL, NULL, false);
14064
14065 #ifdef DEBUG
14066 size_t build_log_size = 0;
14067
14068 hc_clGetProgramBuildInfo (data.ocl, device_param->program, device_param->device, CL_PROGRAM_BUILD_LOG, 0, NULL, &build_log_size);
14069
14070 if (build_log_size > 1)
14071 {
14072 char *build_log = (char *) malloc (build_log_size + 1);
14073
14074 memset (build_log, 0, build_log_size + 1);
14075
14076 hc_clGetProgramBuildInfo (data.ocl, device_param->program, device_param->device, CL_PROGRAM_BUILD_LOG, build_log_size, build_log, NULL);
14077
14078 puts (build_log);
14079
14080 free (build_log);
14081 }
14082 #endif
14083
14084 if (rc != 0)
14085 {
14086 device_param->skipped = true;
14087
14088 log_info ("Device #%u: Kernel %s build failure. Proceed without this device.", device_id + 1, source_file);
14089 }
14090 }
14091
14092 local_free (kernel_lengths);
14093 local_free (kernel_sources[0]);
14094 local_free (kernel_sources);
14095 }
14096
14097 /**
14098 * word generator kernel
14099 */
14100
14101 if (attack_mode != ATTACK_MODE_STRAIGHT)
14102 {
14103 /**
14104 * kernel mp source filename
14105 */
14106
14107 char source_file[256] = { 0 };
14108
14109 generate_source_kernel_mp_filename (opti_type, opts_type, shared_dir, source_file);
14110
14111 struct stat sst;
14112
14113 if (stat (source_file, &sst) == -1)
14114 {
14115 log_error ("ERROR: %s: %s", source_file, strerror (errno));
14116
14117 return -1;
14118 }
14119
14120 /**
14121 * kernel mp cached filename
14122 */
14123
14124 char cached_file[256] = { 0 };
14125
14126 generate_cached_kernel_mp_filename (opti_type, opts_type, profile_dir, device_name_chksum, cached_file);
14127
14128 int cached = 1;
14129
14130 struct stat cst;
14131
14132 if (stat (cached_file, &cst) == -1)
14133 {
14134 cached = 0;
14135 }
14136
14137 /**
14138 * kernel compile or load
14139 */
14140
14141 size_t *kernel_lengths = (size_t *) mymalloc (sizeof (size_t));
14142
14143 const u8 **kernel_sources = (const u8 **) mymalloc (sizeof (u8 *));
14144
14145 if (cached == 0)
14146 {
14147 if (quiet == 0) log_info ("Device #%u: Kernel %s not found in cache! Building may take a while...", device_id + 1, cached_file);
14148
14149 load_kernel (source_file, 1, kernel_lengths, kernel_sources);
14150
14151 device_param->program_mp = hc_clCreateProgramWithSource (data.ocl, device_param->context, 1, (const char **) kernel_sources, NULL);
14152
14153 int rc = hc_clBuildProgram (data.ocl, device_param->program_mp, 1, &device_param->device, build_opts, NULL, NULL, false);
14154
14155 if (rc != 0)
14156 {
14157 device_param->skipped = true;
14158 log_info ("Device #%u: Kernel %s build failure. Proceed without this device.", device_id + 1, source_file);
14159 continue;
14160 }
14161
14162 size_t binary_size;
14163
14164 hc_clGetProgramInfo (data.ocl, device_param->program_mp, CL_PROGRAM_BINARY_SIZES, sizeof (size_t), &binary_size, NULL);
14165
14166 u8 *binary = (u8 *) mymalloc (binary_size);
14167
14168 hc_clGetProgramInfo (data.ocl, device_param->program_mp, CL_PROGRAM_BINARIES, sizeof (binary), &binary, NULL);
14169
14170 writeProgramBin (cached_file, binary, binary_size);
14171
14172 local_free (binary);
14173 }
14174 else
14175 {
14176 if (quiet == 0) log_info ("Device #%u: Kernel %s (%ld bytes)", device_id + 1, cached_file, cst.st_size);
14177
14178 load_kernel (cached_file, 1, kernel_lengths, kernel_sources);
14179
14180 device_param->program_mp = hc_clCreateProgramWithBinary (data.ocl, device_param->context, 1, &device_param->device, kernel_lengths, (const u8 **) kernel_sources, NULL);
14181
14182 hc_clBuildProgram (data.ocl, device_param->program_mp, 1, &device_param->device, build_opts, NULL, NULL, true);
14183 }
14184
14185 local_free (kernel_lengths);
14186 local_free (kernel_sources[0]);
14187 local_free (kernel_sources);
14188 }
14189
14190 /**
14191 * amplifier kernel
14192 */
14193
14194 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14195 {
14196
14197 }
14198 else
14199 {
14200 /**
14201 * kernel amp source filename
14202 */
14203
14204 char source_file[256] = { 0 };
14205
14206 generate_source_kernel_amp_filename (attack_kern, shared_dir, source_file);
14207
14208 struct stat sst;
14209
14210 if (stat (source_file, &sst) == -1)
14211 {
14212 log_error ("ERROR: %s: %s", source_file, strerror (errno));
14213
14214 return -1;
14215 }
14216
14217 /**
14218 * kernel amp cached filename
14219 */
14220
14221 char cached_file[256] = { 0 };
14222
14223 generate_cached_kernel_amp_filename (attack_kern, profile_dir, device_name_chksum, cached_file);
14224
14225 int cached = 1;
14226
14227 struct stat cst;
14228
14229 if (stat (cached_file, &cst) == -1)
14230 {
14231 cached = 0;
14232 }
14233
14234 /**
14235 * kernel compile or load
14236 */
14237
14238 size_t *kernel_lengths = (size_t *) mymalloc (sizeof (size_t));
14239
14240 const u8 **kernel_sources = (const u8 **) mymalloc (sizeof (u8 *));
14241
14242 if (cached == 0)
14243 {
14244 if (quiet == 0) log_info ("Device #%u: Kernel %s not found in cache! Building may take a while...", device_id + 1, cached_file);
14245
14246 load_kernel (source_file, 1, kernel_lengths, kernel_sources);
14247
14248 device_param->program_amp = hc_clCreateProgramWithSource (data.ocl, device_param->context, 1, (const char **) kernel_sources, NULL);
14249
14250 int rc = hc_clBuildProgram (data.ocl, device_param->program_amp, 1, &device_param->device, build_opts, NULL, NULL, false);
14251
14252 if (rc != 0)
14253 {
14254 device_param->skipped = true;
14255 log_info ("Device #%u: Kernel %s build failure. Proceed without this device.", device_id + 1, source_file);
14256 continue;
14257 }
14258
14259 size_t binary_size;
14260
14261 hc_clGetProgramInfo (data.ocl, device_param->program_amp, CL_PROGRAM_BINARY_SIZES, sizeof (size_t), &binary_size, NULL);
14262
14263 u8 *binary = (u8 *) mymalloc (binary_size);
14264
14265 hc_clGetProgramInfo (data.ocl, device_param->program_amp, CL_PROGRAM_BINARIES, sizeof (binary), &binary, NULL);
14266
14267 writeProgramBin (cached_file, binary, binary_size);
14268
14269 local_free (binary);
14270 }
14271 else
14272 {
14273 if (quiet == 0) log_info ("Device #%u: Kernel %s (%ld bytes)", device_id + 1, cached_file, cst.st_size);
14274
14275 load_kernel (cached_file, 1, kernel_lengths, kernel_sources);
14276
14277 device_param->program_amp = hc_clCreateProgramWithBinary (data.ocl, device_param->context, 1, &device_param->device, kernel_lengths, (const u8 **) kernel_sources, NULL);
14278
14279 hc_clBuildProgram (data.ocl, device_param->program_amp, 1, &device_param->device, build_opts, NULL, NULL, true);
14280 }
14281
14282 local_free (kernel_lengths);
14283 local_free (kernel_sources[0]);
14284 local_free (kernel_sources);
14285 }
14286
14287 // some algorithm collide too fast, make that impossible
14288
14289 if (benchmark == 1)
14290 {
14291 ((uint *) digests_buf)[0] = -1;
14292 ((uint *) digests_buf)[1] = -1;
14293 ((uint *) digests_buf)[2] = -1;
14294 ((uint *) digests_buf)[3] = -1;
14295 }
14296
14297 /**
14298 * global buffers
14299 */
14300
14301 device_param->d_pws_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_pws, NULL);
14302 device_param->d_pws_amp_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_pws, NULL);
14303 device_param->d_tmps = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_tmps, NULL);
14304 device_param->d_hooks = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_hooks, NULL);
14305 device_param->d_bitmap_s1_a = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14306 device_param->d_bitmap_s1_b = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14307 device_param->d_bitmap_s1_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14308 device_param->d_bitmap_s1_d = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14309 device_param->d_bitmap_s2_a = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14310 device_param->d_bitmap_s2_b = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14311 device_param->d_bitmap_s2_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14312 device_param->d_bitmap_s2_d = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, bitmap_size, NULL);
14313 device_param->d_plain_bufs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_plains, NULL);
14314 device_param->d_digests_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_digests, NULL);
14315 device_param->d_digests_shown = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_shown, NULL);
14316 device_param->d_salt_bufs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_salts, NULL);
14317 device_param->d_result = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_results, NULL);
14318 device_param->d_scryptV_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_WRITE, size_scryptV, NULL);
14319
14320 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);
14321 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);
14322 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);
14323 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);
14324 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);
14325 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);
14326 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);
14327 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);
14328 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_digests_buf, CL_TRUE, 0, size_digests, data.digests_buf, 0, NULL, NULL);
14329 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_digests_shown, CL_TRUE, 0, size_shown, data.digests_shown, 0, NULL, NULL);
14330 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_salt_bufs, CL_TRUE, 0, size_salts, data.salts_buf, 0, NULL, NULL);
14331
14332 run_kernel_bzero (device_param, device_param->d_pws_buf, size_pws);
14333 run_kernel_bzero (device_param, device_param->d_pws_amp_buf, size_pws);
14334 run_kernel_bzero (device_param, device_param->d_tmps, size_tmps);
14335 run_kernel_bzero (device_param, device_param->d_hooks, size_hooks);
14336 run_kernel_bzero (device_param, device_param->d_plain_bufs, size_plains);
14337 run_kernel_bzero (device_param, device_param->d_result, size_results);
14338
14339 /**
14340 * special buffers
14341 */
14342
14343 if (attack_kern == ATTACK_KERN_STRAIGHT)
14344 {
14345 device_param->d_rules = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_rules, NULL);
14346 device_param->d_rules_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_rules_c, NULL);
14347
14348 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_rules, CL_TRUE, 0, size_rules, kernel_rules_buf, 0, NULL, NULL);
14349
14350 run_kernel_bzero (device_param, device_param->d_rules_c, size_rules_c);
14351 }
14352 else if (attack_kern == ATTACK_KERN_COMBI)
14353 {
14354 device_param->d_combs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_combs, NULL);
14355 device_param->d_combs_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_combs, NULL);
14356 device_param->d_root_css_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_root_css, NULL);
14357 device_param->d_markov_css_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_markov_css, NULL);
14358
14359 run_kernel_bzero (device_param, device_param->d_combs, size_combs);
14360 run_kernel_bzero (device_param, device_param->d_combs_c, size_combs);
14361 run_kernel_bzero (device_param, device_param->d_root_css_buf, size_root_css);
14362 run_kernel_bzero (device_param, device_param->d_markov_css_buf, size_markov_css);
14363 }
14364 else if (attack_kern == ATTACK_KERN_BF)
14365 {
14366 device_param->d_bfs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_bfs, NULL);
14367 device_param->d_bfs_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_bfs, NULL);
14368 device_param->d_tm_c = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_tm, NULL);
14369 device_param->d_root_css_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_root_css, NULL);
14370 device_param->d_markov_css_buf = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_markov_css, NULL);
14371
14372 run_kernel_bzero (device_param, device_param->d_bfs, size_bfs);
14373 run_kernel_bzero (device_param, device_param->d_bfs_c, size_bfs);
14374 run_kernel_bzero (device_param, device_param->d_tm_c, size_tm);
14375 run_kernel_bzero (device_param, device_param->d_root_css_buf, size_root_css);
14376 run_kernel_bzero (device_param, device_param->d_markov_css_buf, size_markov_css);
14377 }
14378
14379 if (size_esalts)
14380 {
14381 device_param->d_esalt_bufs = hc_clCreateBuffer (data.ocl, device_param->context, CL_MEM_READ_ONLY, size_esalts, NULL);
14382
14383 hc_clEnqueueWriteBuffer (data.ocl, device_param->command_queue, device_param->d_esalt_bufs, CL_TRUE, 0, size_esalts, data.esalts_buf, 0, NULL, NULL);
14384 }
14385
14386 /**
14387 * main host data
14388 */
14389
14390 uint *result = (uint *) mymalloc (size_results);
14391
14392 device_param->result = result;
14393
14394 pw_t *pws_buf = (pw_t *) mymalloc (size_pws);
14395
14396 device_param->pws_buf = pws_buf;
14397
14398 comb_t *combs_buf = (comb_t *) mycalloc (KERNEL_COMBS, sizeof (comb_t));
14399
14400 device_param->combs_buf = combs_buf;
14401
14402 void *hooks_buf = mymalloc (size_hooks);
14403
14404 device_param->hooks_buf = hooks_buf;
14405
14406 /**
14407 * kernel args
14408 */
14409
14410 device_param->kernel_params_buf32[21] = bitmap_mask;
14411 device_param->kernel_params_buf32[22] = bitmap_shift1;
14412 device_param->kernel_params_buf32[23] = bitmap_shift2;
14413 device_param->kernel_params_buf32[24] = 0; // salt_pos
14414 device_param->kernel_params_buf32[25] = 0; // loop_pos
14415 device_param->kernel_params_buf32[26] = 0; // loop_cnt
14416 device_param->kernel_params_buf32[27] = 0; // kernel_rules_cnt
14417 device_param->kernel_params_buf32[28] = 0; // digests_cnt
14418 device_param->kernel_params_buf32[29] = 0; // digests_offset
14419 device_param->kernel_params_buf32[30] = 0; // combs_mode
14420 device_param->kernel_params_buf32[31] = 0; // gid_max
14421
14422 device_param->kernel_params[ 0] = (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14423 ? &device_param->d_pws_buf
14424 : &device_param->d_pws_amp_buf;
14425 device_param->kernel_params[ 1] = &device_param->d_rules_c;
14426 device_param->kernel_params[ 2] = &device_param->d_combs_c;
14427 device_param->kernel_params[ 3] = &device_param->d_bfs_c;
14428 device_param->kernel_params[ 4] = &device_param->d_tmps;
14429 device_param->kernel_params[ 5] = &device_param->d_hooks;
14430 device_param->kernel_params[ 6] = &device_param->d_bitmap_s1_a;
14431 device_param->kernel_params[ 7] = &device_param->d_bitmap_s1_b;
14432 device_param->kernel_params[ 8] = &device_param->d_bitmap_s1_c;
14433 device_param->kernel_params[ 9] = &device_param->d_bitmap_s1_d;
14434 device_param->kernel_params[10] = &device_param->d_bitmap_s2_a;
14435 device_param->kernel_params[11] = &device_param->d_bitmap_s2_b;
14436 device_param->kernel_params[12] = &device_param->d_bitmap_s2_c;
14437 device_param->kernel_params[13] = &device_param->d_bitmap_s2_d;
14438 device_param->kernel_params[14] = &device_param->d_plain_bufs;
14439 device_param->kernel_params[15] = &device_param->d_digests_buf;
14440 device_param->kernel_params[16] = &device_param->d_digests_shown;
14441 device_param->kernel_params[17] = &device_param->d_salt_bufs;
14442 device_param->kernel_params[18] = &device_param->d_esalt_bufs;
14443 device_param->kernel_params[19] = &device_param->d_result;
14444 device_param->kernel_params[20] = &device_param->d_scryptV_buf;
14445 device_param->kernel_params[21] = &device_param->kernel_params_buf32[21];
14446 device_param->kernel_params[22] = &device_param->kernel_params_buf32[22];
14447 device_param->kernel_params[23] = &device_param->kernel_params_buf32[23];
14448 device_param->kernel_params[24] = &device_param->kernel_params_buf32[24];
14449 device_param->kernel_params[25] = &device_param->kernel_params_buf32[25];
14450 device_param->kernel_params[26] = &device_param->kernel_params_buf32[26];
14451 device_param->kernel_params[27] = &device_param->kernel_params_buf32[27];
14452 device_param->kernel_params[28] = &device_param->kernel_params_buf32[28];
14453 device_param->kernel_params[29] = &device_param->kernel_params_buf32[29];
14454 device_param->kernel_params[30] = &device_param->kernel_params_buf32[30];
14455 device_param->kernel_params[31] = &device_param->kernel_params_buf32[31];
14456
14457 device_param->kernel_params_mp_buf64[3] = 0;
14458 device_param->kernel_params_mp_buf32[4] = 0;
14459 device_param->kernel_params_mp_buf32[5] = 0;
14460 device_param->kernel_params_mp_buf32[6] = 0;
14461 device_param->kernel_params_mp_buf32[7] = 0;
14462 device_param->kernel_params_mp_buf32[8] = 0;
14463
14464 device_param->kernel_params_mp[0] = NULL;
14465 device_param->kernel_params_mp[1] = NULL;
14466 device_param->kernel_params_mp[2] = NULL;
14467 device_param->kernel_params_mp[3] = &device_param->kernel_params_mp_buf64[3];
14468 device_param->kernel_params_mp[4] = &device_param->kernel_params_mp_buf32[4];
14469 device_param->kernel_params_mp[5] = &device_param->kernel_params_mp_buf32[5];
14470 device_param->kernel_params_mp[6] = &device_param->kernel_params_mp_buf32[6];
14471 device_param->kernel_params_mp[7] = &device_param->kernel_params_mp_buf32[7];
14472 device_param->kernel_params_mp[8] = &device_param->kernel_params_mp_buf32[8];
14473
14474 device_param->kernel_params_mp_l_buf64[3] = 0;
14475 device_param->kernel_params_mp_l_buf32[4] = 0;
14476 device_param->kernel_params_mp_l_buf32[5] = 0;
14477 device_param->kernel_params_mp_l_buf32[6] = 0;
14478 device_param->kernel_params_mp_l_buf32[7] = 0;
14479 device_param->kernel_params_mp_l_buf32[8] = 0;
14480 device_param->kernel_params_mp_l_buf32[9] = 0;
14481
14482 device_param->kernel_params_mp_l[0] = NULL;
14483 device_param->kernel_params_mp_l[1] = NULL;
14484 device_param->kernel_params_mp_l[2] = NULL;
14485 device_param->kernel_params_mp_l[3] = &device_param->kernel_params_mp_l_buf64[3];
14486 device_param->kernel_params_mp_l[4] = &device_param->kernel_params_mp_l_buf32[4];
14487 device_param->kernel_params_mp_l[5] = &device_param->kernel_params_mp_l_buf32[5];
14488 device_param->kernel_params_mp_l[6] = &device_param->kernel_params_mp_l_buf32[6];
14489 device_param->kernel_params_mp_l[7] = &device_param->kernel_params_mp_l_buf32[7];
14490 device_param->kernel_params_mp_l[8] = &device_param->kernel_params_mp_l_buf32[8];
14491 device_param->kernel_params_mp_l[9] = &device_param->kernel_params_mp_l_buf32[9];
14492
14493 device_param->kernel_params_mp_r_buf64[3] = 0;
14494 device_param->kernel_params_mp_r_buf32[4] = 0;
14495 device_param->kernel_params_mp_r_buf32[5] = 0;
14496 device_param->kernel_params_mp_r_buf32[6] = 0;
14497 device_param->kernel_params_mp_r_buf32[7] = 0;
14498 device_param->kernel_params_mp_r_buf32[8] = 0;
14499
14500 device_param->kernel_params_mp_r[0] = NULL;
14501 device_param->kernel_params_mp_r[1] = NULL;
14502 device_param->kernel_params_mp_r[2] = NULL;
14503 device_param->kernel_params_mp_r[3] = &device_param->kernel_params_mp_r_buf64[3];
14504 device_param->kernel_params_mp_r[4] = &device_param->kernel_params_mp_r_buf32[4];
14505 device_param->kernel_params_mp_r[5] = &device_param->kernel_params_mp_r_buf32[5];
14506 device_param->kernel_params_mp_r[6] = &device_param->kernel_params_mp_r_buf32[6];
14507 device_param->kernel_params_mp_r[7] = &device_param->kernel_params_mp_r_buf32[7];
14508 device_param->kernel_params_mp_r[8] = &device_param->kernel_params_mp_r_buf32[8];
14509
14510 device_param->kernel_params_amp_buf32[5] = 0; // combs_mode
14511 device_param->kernel_params_amp_buf32[6] = 0; // gid_max
14512
14513 device_param->kernel_params_amp[0] = &device_param->d_pws_buf;
14514 device_param->kernel_params_amp[1] = &device_param->d_pws_amp_buf;
14515 device_param->kernel_params_amp[2] = &device_param->d_rules_c;
14516 device_param->kernel_params_amp[3] = &device_param->d_combs_c;
14517 device_param->kernel_params_amp[4] = &device_param->d_bfs_c;
14518 device_param->kernel_params_amp[5] = &device_param->kernel_params_amp_buf32[5];
14519 device_param->kernel_params_amp[6] = &device_param->kernel_params_amp_buf32[6];
14520
14521 device_param->kernel_params_tm[0] = &device_param->d_bfs_c;
14522 device_param->kernel_params_tm[1] = &device_param->d_tm_c;
14523
14524 /**
14525 * kernel name
14526 */
14527
14528 char kernel_name[64] = { 0 };
14529
14530 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14531 {
14532 if (opti_type & OPTI_TYPE_SINGLE_HASH)
14533 {
14534 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_s%02d", kern_type, 4);
14535
14536 device_param->kernel1 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14537
14538 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_s%02d", kern_type, 8);
14539
14540 device_param->kernel2 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14541
14542 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_s%02d", kern_type, 16);
14543
14544 device_param->kernel3 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14545 }
14546 else
14547 {
14548 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_m%02d", kern_type, 4);
14549
14550 device_param->kernel1 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14551
14552 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_m%02d", kern_type, 8);
14553
14554 device_param->kernel2 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14555
14556 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_m%02d", kern_type, 16);
14557
14558 device_param->kernel3 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14559 }
14560
14561 if (data.attack_mode == ATTACK_MODE_BF)
14562 {
14563 if (opts_type & OPTS_TYPE_PT_BITSLICE)
14564 {
14565 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_tm", kern_type);
14566
14567 device_param->kernel_tm = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14568 }
14569 }
14570 }
14571 else
14572 {
14573 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_init", kern_type);
14574
14575 device_param->kernel1 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14576
14577 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_loop", kern_type);
14578
14579 device_param->kernel2 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14580
14581 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_comp", kern_type);
14582
14583 device_param->kernel3 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14584
14585 if (opts_type & OPTS_TYPE_HOOK12)
14586 {
14587 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_hook12", kern_type);
14588
14589 device_param->kernel12 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14590 }
14591
14592 if (opts_type & OPTS_TYPE_HOOK23)
14593 {
14594 snprintf (kernel_name, sizeof (kernel_name) - 1, "m%05d_hook23", kern_type);
14595
14596 device_param->kernel23 = hc_clCreateKernel (data.ocl, device_param->program, kernel_name);
14597 }
14598 }
14599
14600 for (uint i = 0; i <= 20; i++)
14601 {
14602 hc_clSetKernelArg (data.ocl, device_param->kernel1, i, sizeof (cl_mem), device_param->kernel_params[i]);
14603 hc_clSetKernelArg (data.ocl, device_param->kernel2, i, sizeof (cl_mem), device_param->kernel_params[i]);
14604 hc_clSetKernelArg (data.ocl, device_param->kernel3, i, sizeof (cl_mem), device_param->kernel_params[i]);
14605
14606 if (opts_type & OPTS_TYPE_HOOK12) hc_clSetKernelArg (data.ocl, device_param->kernel12, i, sizeof (cl_mem), device_param->kernel_params[i]);
14607 if (opts_type & OPTS_TYPE_HOOK23) hc_clSetKernelArg (data.ocl, device_param->kernel23, i, sizeof (cl_mem), device_param->kernel_params[i]);
14608 }
14609
14610 for (uint i = 21; i <= 31; i++)
14611 {
14612 hc_clSetKernelArg (data.ocl, device_param->kernel1, i, sizeof (cl_uint), device_param->kernel_params[i]);
14613 hc_clSetKernelArg (data.ocl, device_param->kernel2, i, sizeof (cl_uint), device_param->kernel_params[i]);
14614 hc_clSetKernelArg (data.ocl, device_param->kernel3, i, sizeof (cl_uint), device_param->kernel_params[i]);
14615
14616 if (opts_type & OPTS_TYPE_HOOK12) hc_clSetKernelArg (data.ocl, device_param->kernel12, i, sizeof (cl_uint), device_param->kernel_params[i]);
14617 if (opts_type & OPTS_TYPE_HOOK23) hc_clSetKernelArg (data.ocl, device_param->kernel23, i, sizeof (cl_uint), device_param->kernel_params[i]);
14618 }
14619
14620 if (attack_mode == ATTACK_MODE_BF)
14621 {
14622 device_param->kernel_mp_l = hc_clCreateKernel (data.ocl, device_param->program_mp, "l_markov");
14623 device_param->kernel_mp_r = hc_clCreateKernel (data.ocl, device_param->program_mp, "r_markov");
14624
14625 if (opts_type & OPTS_TYPE_PT_BITSLICE)
14626 {
14627 hc_clSetKernelArg (data.ocl, device_param->kernel_tm, 0, sizeof (cl_mem), device_param->kernel_params_tm[0]);
14628 hc_clSetKernelArg (data.ocl, device_param->kernel_tm, 1, sizeof (cl_mem), device_param->kernel_params_tm[1]);
14629 }
14630 }
14631 else if (attack_mode == ATTACK_MODE_HYBRID1)
14632 {
14633 device_param->kernel_mp = hc_clCreateKernel (data.ocl, device_param->program_mp, "C_markov");
14634 }
14635 else if (attack_mode == ATTACK_MODE_HYBRID2)
14636 {
14637 device_param->kernel_mp = hc_clCreateKernel (data.ocl, device_param->program_mp, "C_markov");
14638 }
14639
14640 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14641 {
14642 // nothing to do
14643 }
14644 else
14645 {
14646 device_param->kernel_amp = hc_clCreateKernel (data.ocl, device_param->program_amp, "amp");
14647 }
14648
14649 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
14650 {
14651 // nothing to do
14652 }
14653 else
14654 {
14655 for (uint i = 0; i < 5; i++)
14656 {
14657 hc_clSetKernelArg (data.ocl, device_param->kernel_amp, i, sizeof (cl_mem), device_param->kernel_params_amp[i]);
14658 }
14659
14660 for (uint i = 5; i < 7; i++)
14661 {
14662 hc_clSetKernelArg (data.ocl, device_param->kernel_amp, i, sizeof (cl_uint), device_param->kernel_params_amp[i]);
14663 }
14664 }
14665
14666 /**
14667 * Store initial fanspeed if gpu_temp_retain is enabled
14668 */
14669
14670 #if defined(HAVE_HWMON) && defined(HAVE_ADL)
14671 int gpu_temp_retain_set = 0;
14672
14673 if (gpu_temp_disable == 0)
14674 {
14675 if (gpu_temp_retain != 0) // VENDOR_ID_AMD implied
14676 {
14677 hc_thread_mutex_lock (mux_adl);
14678
14679 if (data.hm_device[device_id].fan_supported == 1)
14680 {
14681 if (gpu_temp_retain_chgd == 0)
14682 {
14683 uint cur_temp = 0;
14684 uint default_temp = 0;
14685
14686 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);
14687
14688 if (ADL_rc == ADL_OK)
14689 {
14690 #define GPU_TEMP_RETAIN_ABORT_DIFF 15
14691
14692 const uint gpu_temp_retain_target = default_temp - GPU_TEMP_RETAIN_ABORT_DIFF;
14693
14694 // special case with multi gpu setups: always use minimum retain
14695
14696 if (gpu_temp_retain_set == 0)
14697 {
14698 gpu_temp_retain = gpu_temp_retain_target;
14699 gpu_temp_retain_set = 1;
14700 }
14701 else
14702 {
14703 gpu_temp_retain = MIN (gpu_temp_retain, gpu_temp_retain_target);
14704 }
14705
14706 if (gpu_temp_abort_chgd == 0) gpu_temp_abort = gpu_temp_retain + GPU_TEMP_RETAIN_ABORT_DIFF;
14707 }
14708 }
14709
14710 const int fan_speed = hm_get_fanspeed_with_device_id (device_id);
14711
14712 temp_retain_fanspeed_value[device_id] = fan_speed;
14713
14714 if (fan_speed == -1)
14715 {
14716 log_info ("WARNING: Failed to get current fan speed settings for gpu number: %i:", device_id + 1);
14717
14718 temp_retain_fanspeed_value[device_id] = 0;
14719 }
14720 }
14721
14722 hc_thread_mutex_unlock (mux_adl);
14723 }
14724 }
14725
14726 /**
14727 * Store original powercontrol/clocks settings, set overdrive 6 performance tuning settings
14728 */
14729
14730 if (powertune_enable == 1) // VENDOR_ID_AMD implied
14731 {
14732 hc_thread_mutex_lock (mux_adl);
14733
14734 if (data.hm_device[device_id].od_version == 6)
14735 {
14736 int ADL_rc;
14737
14738 // check powertune capabilities first, if not available then skip device
14739
14740 int powertune_supported = 0;
14741
14742 if ((ADL_rc = hm_ADL_Overdrive6_PowerControl_Caps (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune_supported)) != ADL_OK)
14743 {
14744 log_error ("ERROR: Failed to get ADL PowerControl Capabilities");
14745
14746 return (-1);
14747 }
14748
14749 if (powertune_supported != 0)
14750 {
14751 // powercontrol settings
14752
14753 ADLOD6PowerControlInfo powertune = {0, 0, 0, 0, 0};
14754
14755 if ((ADL_rc = hm_ADL_Overdrive_PowerControlInfo_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune)) == ADL_OK)
14756 {
14757 ADL_rc = hm_ADL_Overdrive_PowerControl_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &od_power_control_status[device_id]);
14758 }
14759
14760 if (ADL_rc != ADL_OK)
14761 {
14762 log_error ("ERROR: Failed to get current ADL PowerControl settings");
14763
14764 return (-1);
14765 }
14766
14767 if ((ADL_rc = hm_ADL_Overdrive_PowerControl_Set (data.hm_amd, data.hm_device[device_id].adapter_index.amd, powertune.iMaxValue)) != ADL_OK)
14768 {
14769 log_error ("ERROR: Failed to set new ADL PowerControl values");
14770
14771 return (-1);
14772 }
14773
14774 // clocks
14775
14776 memset (&od_clock_mem_status[device_id], 0, sizeof (ADLOD6MemClockState));
14777
14778 od_clock_mem_status[device_id].state.iNumberOfPerformanceLevels = 2;
14779
14780 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)
14781 {
14782 log_error ("ERROR: Failed to get ADL memory and engine clock frequency");
14783
14784 return (-1);
14785 }
14786
14787 // Query capabilities only to see if profiles were not "damaged", if so output a warning but do accept the users profile settings
14788
14789 ADLOD6Capabilities caps = {0, 0, 0, {0, 0, 0}, {0, 0, 0}, 0, 0};
14790
14791 if ((ADL_rc = hm_ADL_Overdrive_Capabilities_Get (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &caps)) != ADL_OK)
14792 {
14793 log_error ("ERROR: Failed to get ADL device capabilities");
14794
14795 return (-1);
14796 }
14797
14798 int engine_clock_max = caps.sEngineClockRange.iMax * 0.6666;
14799 int memory_clock_max = caps.sMemoryClockRange.iMax * 0.6250;
14800
14801 int warning_trigger_engine = (int) (0.25 * (float) engine_clock_max);
14802 int warning_trigger_memory = (int) (0.25 * (float) memory_clock_max);
14803
14804 int engine_clock_profile_max = od_clock_mem_status[device_id].state.aLevels[1].iEngineClock;
14805 int memory_clock_profile_max = od_clock_mem_status[device_id].state.aLevels[1].iMemoryClock;
14806
14807 // warning if profile has too low max values
14808
14809 if ((engine_clock_max - engine_clock_profile_max) > warning_trigger_engine)
14810 {
14811 log_info ("WARN: the custom profile seems to have too low maximum engine clock values. You therefore may not reach full performance");
14812 }
14813
14814 if ((memory_clock_max - memory_clock_profile_max) > warning_trigger_memory)
14815 {
14816 log_info ("WARN: the custom profile seems to have too low maximum memory clock values. You therefore may not reach full performance");
14817 }
14818
14819 ADLOD6StateInfo *performance_state = (ADLOD6StateInfo*) mycalloc (1, sizeof (ADLOD6StateInfo) + sizeof (ADLOD6PerformanceLevel));
14820
14821 performance_state->iNumberOfPerformanceLevels = 2;
14822
14823 performance_state->aLevels[0].iEngineClock = engine_clock_profile_max;
14824 performance_state->aLevels[1].iEngineClock = engine_clock_profile_max;
14825 performance_state->aLevels[0].iMemoryClock = memory_clock_profile_max;
14826 performance_state->aLevels[1].iMemoryClock = memory_clock_profile_max;
14827
14828 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)
14829 {
14830 log_info ("ERROR: Failed to set ADL performance state");
14831
14832 return (-1);
14833 }
14834
14835 local_free (performance_state);
14836 }
14837 }
14838
14839 hc_thread_mutex_unlock (mux_adl);
14840 }
14841 #endif // HAVE_HWMON && HAVE_ADL
14842 }
14843
14844 data.kernel_power_all = kernel_power_all;
14845
14846 if (data.quiet == 0) log_info ("");
14847
14848 /**
14849 * In benchmark-mode, inform user which algorithm is checked
14850 */
14851
14852 if (benchmark == 1)
14853 {
14854 quiet = 0;
14855
14856 data.quiet = quiet;
14857
14858 char *hash_type = strhashtype (data.hash_mode); // not a bug
14859
14860 log_info ("Hashtype: %s", hash_type);
14861 log_info ("");
14862 }
14863
14864 /**
14865 * keep track of the progress
14866 */
14867
14868 data.words_progress_done = (u64 *) mycalloc (data.salts_cnt, sizeof (u64));
14869 data.words_progress_rejected = (u64 *) mycalloc (data.salts_cnt, sizeof (u64));
14870 data.words_progress_restored = (u64 *) mycalloc (data.salts_cnt, sizeof (u64));
14871
14872 /**
14873 * open filehandles
14874 */
14875
14876 #if _WIN
14877 if (_setmode (_fileno (stdin), _O_BINARY) == -1)
14878 {
14879 log_error ("ERROR: %s: %s", "stdin", strerror (errno));
14880
14881 return (-1);
14882 }
14883
14884 if (_setmode (_fileno (stdout), _O_BINARY) == -1)
14885 {
14886 log_error ("ERROR: %s: %s", "stdout", strerror (errno));
14887
14888 return (-1);
14889 }
14890
14891 if (_setmode (_fileno (stderr), _O_BINARY) == -1)
14892 {
14893 log_error ("ERROR: %s: %s", "stderr", strerror (errno));
14894
14895 return (-1);
14896 }
14897 #endif
14898
14899 /**
14900 * dictionary pad
14901 */
14902
14903 segment_size *= (1024 * 1024);
14904
14905 data.segment_size = segment_size;
14906
14907 wl_data_t *wl_data = (wl_data_t *) mymalloc (sizeof (wl_data_t));
14908
14909 wl_data->buf = (char *) mymalloc (segment_size);
14910 wl_data->avail = segment_size;
14911 wl_data->incr = segment_size;
14912 wl_data->cnt = 0;
14913 wl_data->pos = 0;
14914
14915 uint wordlist_mode = ((optind + 1) < myargc) ? WL_MODE_FILE : WL_MODE_STDIN;
14916
14917 data.wordlist_mode = wordlist_mode;
14918
14919 cs_t *css_buf = NULL;
14920 uint css_cnt = 0;
14921 uint dictcnt = 0;
14922 uint maskcnt = 1;
14923 char **masks = NULL;
14924 char **dictfiles = NULL;
14925
14926 uint mask_from_file = 0;
14927
14928 if (attack_mode == ATTACK_MODE_STRAIGHT)
14929 {
14930 if (wordlist_mode == WL_MODE_FILE)
14931 {
14932 int wls_left = myargc - (optind + 1);
14933
14934 for (int i = 0; i < wls_left; i++)
14935 {
14936 char *l0_filename = myargv[optind + 1 + i];
14937
14938 struct stat l0_stat;
14939
14940 if (stat (l0_filename, &l0_stat) == -1)
14941 {
14942 log_error ("ERROR: %s: %s", l0_filename, strerror (errno));
14943
14944 return (-1);
14945 }
14946
14947 uint is_dir = S_ISDIR (l0_stat.st_mode);
14948
14949 if (is_dir == 0)
14950 {
14951 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
14952
14953 dictcnt++;
14954
14955 dictfiles[dictcnt - 1] = l0_filename;
14956 }
14957 else
14958 {
14959 // do not allow --keyspace w/ a directory
14960
14961 if (keyspace == 1)
14962 {
14963 log_error ("ERROR: keyspace parameter is not allowed together with a directory");
14964
14965 return (-1);
14966 }
14967
14968 char **dictionary_files = NULL;
14969
14970 dictionary_files = scan_directory (l0_filename);
14971
14972 if (dictionary_files != NULL)
14973 {
14974 qsort (dictionary_files, count_dictionaries (dictionary_files), sizeof (char *), sort_by_stringptr);
14975
14976 for (int d = 0; dictionary_files[d] != NULL; d++)
14977 {
14978 char *l1_filename = dictionary_files[d];
14979
14980 struct stat l1_stat;
14981
14982 if (stat (l1_filename, &l1_stat) == -1)
14983 {
14984 log_error ("ERROR: %s: %s", l1_filename, strerror (errno));
14985
14986 return (-1);
14987 }
14988
14989 if (S_ISREG (l1_stat.st_mode))
14990 {
14991 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
14992
14993 dictcnt++;
14994
14995 dictfiles[dictcnt - 1] = strdup (l1_filename);
14996 }
14997 }
14998 }
14999
15000 local_free (dictionary_files);
15001 }
15002 }
15003
15004 if (dictcnt < 1)
15005 {
15006 log_error ("ERROR: No usable dictionary file found.");
15007
15008 return (-1);
15009 }
15010 }
15011 else if (wordlist_mode == WL_MODE_STDIN)
15012 {
15013 dictcnt = 1;
15014 }
15015 }
15016 else if (attack_mode == ATTACK_MODE_COMBI)
15017 {
15018 // display
15019
15020 char *dictfile1 = myargv[optind + 1 + 0];
15021 char *dictfile2 = myargv[optind + 1 + 1];
15022
15023 // find the bigger dictionary and use as base
15024
15025 FILE *fp1 = NULL;
15026 FILE *fp2 = NULL;
15027
15028 struct stat tmp_stat;
15029
15030 if ((fp1 = fopen (dictfile1, "rb")) == NULL)
15031 {
15032 log_error ("ERROR: %s: %s", dictfile1, strerror (errno));
15033
15034 return (-1);
15035 }
15036
15037 if (stat (dictfile1, &tmp_stat) == -1)
15038 {
15039 log_error ("ERROR: %s: %s", dictfile1, strerror (errno));
15040
15041 fclose (fp1);
15042
15043 return (-1);
15044 }
15045
15046 if (S_ISDIR (tmp_stat.st_mode))
15047 {
15048 log_error ("ERROR: %s must be a regular file", dictfile1, strerror (errno));
15049
15050 fclose (fp1);
15051
15052 return (-1);
15053 }
15054
15055 if ((fp2 = fopen (dictfile2, "rb")) == NULL)
15056 {
15057 log_error ("ERROR: %s: %s", dictfile2, strerror (errno));
15058
15059 fclose (fp1);
15060
15061 return (-1);
15062 }
15063
15064 if (stat (dictfile2, &tmp_stat) == -1)
15065 {
15066 log_error ("ERROR: %s: %s", dictfile2, strerror (errno));
15067
15068 fclose (fp1);
15069 fclose (fp2);
15070
15071 return (-1);
15072 }
15073
15074 if (S_ISDIR (tmp_stat.st_mode))
15075 {
15076 log_error ("ERROR: %s must be a regular file", dictfile2, strerror (errno));
15077
15078 fclose (fp1);
15079 fclose (fp2);
15080
15081 return (-1);
15082 }
15083
15084 data.combs_cnt = 1;
15085
15086 data.quiet = 1;
15087
15088 const u64 words1_cnt = count_words (wl_data, fp1, dictfile1, dictstat_base, &dictstat_nmemb);
15089
15090 data.quiet = quiet;
15091
15092 if (words1_cnt == 0)
15093 {
15094 log_error ("ERROR: %s: empty file", dictfile1);
15095
15096 fclose (fp1);
15097 fclose (fp2);
15098
15099 return (-1);
15100 }
15101
15102 data.combs_cnt = 1;
15103
15104 data.quiet = 1;
15105
15106 const u64 words2_cnt = count_words (wl_data, fp2, dictfile2, dictstat_base, &dictstat_nmemb);
15107
15108 data.quiet = quiet;
15109
15110 if (words2_cnt == 0)
15111 {
15112 log_error ("ERROR: %s: empty file", dictfile2);
15113
15114 fclose (fp1);
15115 fclose (fp2);
15116
15117 return (-1);
15118 }
15119
15120 fclose (fp1);
15121 fclose (fp2);
15122
15123 data.dictfile = dictfile1;
15124 data.dictfile2 = dictfile2;
15125
15126 if (words1_cnt >= words2_cnt)
15127 {
15128 data.combs_cnt = words2_cnt;
15129 data.combs_mode = COMBINATOR_MODE_BASE_LEFT;
15130
15131 dictfiles = &data.dictfile;
15132
15133 dictcnt = 1;
15134 }
15135 else
15136 {
15137 data.combs_cnt = words1_cnt;
15138 data.combs_mode = COMBINATOR_MODE_BASE_RIGHT;
15139
15140 dictfiles = &data.dictfile2;
15141
15142 dictcnt = 1;
15143
15144 // we also have to switch wordlist related rules!
15145
15146 char *tmpc = data.rule_buf_l;
15147
15148 data.rule_buf_l = data.rule_buf_r;
15149 data.rule_buf_r = tmpc;
15150
15151 int tmpi = data.rule_len_l;
15152
15153 data.rule_len_l = data.rule_len_r;
15154 data.rule_len_r = tmpi;
15155 }
15156 }
15157 else if (attack_mode == ATTACK_MODE_BF)
15158 {
15159 char *mask = NULL;
15160
15161 maskcnt = 0;
15162
15163 if (benchmark == 0)
15164 {
15165 mask = myargv[optind + 1];
15166
15167 masks = (char **) mymalloc (INCR_MASKS * sizeof (char *));
15168
15169 if ((optind + 2) <= myargc)
15170 {
15171 struct stat file_stat;
15172
15173 if (stat (mask, &file_stat) == -1)
15174 {
15175 maskcnt = 1;
15176
15177 masks[maskcnt - 1] = mystrdup (mask);
15178 }
15179 else
15180 {
15181 int wls_left = myargc - (optind + 1);
15182
15183 uint masks_avail = INCR_MASKS;
15184
15185 for (int i = 0; i < wls_left; i++)
15186 {
15187 if (i != 0)
15188 {
15189 mask = myargv[optind + 1 + i];
15190
15191 if (stat (mask, &file_stat) == -1)
15192 {
15193 log_error ("ERROR: %s: %s", mask, strerror (errno));
15194
15195 return (-1);
15196 }
15197 }
15198
15199 uint is_file = S_ISREG (file_stat.st_mode);
15200
15201 if (is_file == 1)
15202 {
15203 FILE *mask_fp;
15204
15205 if ((mask_fp = fopen (mask, "r")) == NULL)
15206 {
15207 log_error ("ERROR: %s: %s", mask, strerror (errno));
15208
15209 return (-1);
15210 }
15211
15212 char *line_buf = (char *) mymalloc (HCBUFSIZ);
15213
15214 while (!feof (mask_fp))
15215 {
15216 memset (line_buf, 0, HCBUFSIZ);
15217
15218 int line_len = fgetl (mask_fp, line_buf);
15219
15220 if (line_len == 0) continue;
15221
15222 if (line_buf[0] == '#') continue;
15223
15224 if (masks_avail == maskcnt)
15225 {
15226 masks = (char **) myrealloc (masks, masks_avail * sizeof (char *), INCR_MASKS * sizeof (char *));
15227
15228 masks_avail += INCR_MASKS;
15229 }
15230
15231 masks[maskcnt] = mystrdup (line_buf);
15232
15233 maskcnt++;
15234 }
15235
15236 myfree (line_buf);
15237
15238 fclose (mask_fp);
15239 }
15240 else
15241 {
15242 log_error ("ERROR: %s: unsupported file-type", mask);
15243
15244 return (-1);
15245 }
15246 }
15247
15248 mask_from_file = 1;
15249 }
15250 }
15251 else
15252 {
15253 custom_charset_1 = (char *) "?l?d?u";
15254 custom_charset_2 = (char *) "?l?d";
15255 custom_charset_3 = (char *) "?l?d*!$@_";
15256
15257 mp_setup_usr (mp_sys, mp_usr, custom_charset_1, 0);
15258 mp_setup_usr (mp_sys, mp_usr, custom_charset_2, 1);
15259 mp_setup_usr (mp_sys, mp_usr, custom_charset_3, 2);
15260
15261 masks[maskcnt] = mystrdup ("?1?2?2?2?2?2?2?3?3?3?3?d?d?d?d");
15262
15263 wordlist_mode = WL_MODE_MASK;
15264
15265 data.wordlist_mode = wordlist_mode;
15266
15267 increment = 1;
15268
15269 maskcnt = 1;
15270 }
15271 }
15272 else
15273 {
15274 /**
15275 * generate full masks and charsets
15276 */
15277
15278 masks = (char **) mymalloc (sizeof (char *));
15279
15280 switch (hash_mode)
15281 {
15282 case 1731: pw_min = 5;
15283 pw_max = 5;
15284 mask = mystrdup ("?b?b?b?b?b");
15285 break;
15286 case 12500: pw_min = 5;
15287 pw_max = 5;
15288 mask = mystrdup ("?b?b?b?b?b");
15289 break;
15290 default: pw_min = 7;
15291 pw_max = 7;
15292 mask = mystrdup ("?b?b?b?b?b?b?b");
15293 break;
15294 }
15295
15296 maskcnt = 1;
15297
15298 masks[maskcnt - 1] = mystrdup (mask);
15299
15300 wordlist_mode = WL_MODE_MASK;
15301
15302 data.wordlist_mode = wordlist_mode;
15303
15304 increment = 1;
15305 }
15306
15307 dictfiles = (char **) mycalloc (pw_max, sizeof (char *));
15308
15309 if (increment)
15310 {
15311 if (increment_min > pw_min) pw_min = increment_min;
15312
15313 if (increment_max < pw_max) pw_max = increment_max;
15314 }
15315 }
15316 else if (attack_mode == ATTACK_MODE_HYBRID1)
15317 {
15318 data.combs_mode = COMBINATOR_MODE_BASE_LEFT;
15319
15320 // display
15321
15322 char *mask = myargv[myargc - 1];
15323
15324 maskcnt = 0;
15325
15326 masks = (char **) mymalloc (1 * sizeof (char *));
15327
15328 // mod
15329
15330 struct stat file_stat;
15331
15332 if (stat (mask, &file_stat) == -1)
15333 {
15334 maskcnt = 1;
15335
15336 masks[maskcnt - 1] = mystrdup (mask);
15337 }
15338 else
15339 {
15340 uint is_file = S_ISREG (file_stat.st_mode);
15341
15342 if (is_file == 1)
15343 {
15344 FILE *mask_fp;
15345
15346 if ((mask_fp = fopen (mask, "r")) == NULL)
15347 {
15348 log_error ("ERROR: %s: %s", mask, strerror (errno));
15349
15350 return (-1);
15351 }
15352
15353 char *line_buf = (char *) mymalloc (HCBUFSIZ);
15354
15355 uint masks_avail = 1;
15356
15357 while (!feof (mask_fp))
15358 {
15359 memset (line_buf, 0, HCBUFSIZ);
15360
15361 int line_len = fgetl (mask_fp, line_buf);
15362
15363 if (line_len == 0) continue;
15364
15365 if (line_buf[0] == '#') continue;
15366
15367 if (masks_avail == maskcnt)
15368 {
15369 masks = (char **) myrealloc (masks, masks_avail * sizeof (char *), INCR_MASKS * sizeof (char *));
15370
15371 masks_avail += INCR_MASKS;
15372 }
15373
15374 masks[maskcnt] = mystrdup (line_buf);
15375
15376 maskcnt++;
15377 }
15378
15379 myfree (line_buf);
15380
15381 fclose (mask_fp);
15382
15383 mask_from_file = 1;
15384 }
15385 else
15386 {
15387 maskcnt = 1;
15388
15389 masks[maskcnt - 1] = mystrdup (mask);
15390 }
15391 }
15392
15393 // base
15394
15395 int wls_left = myargc - (optind + 2);
15396
15397 for (int i = 0; i < wls_left; i++)
15398 {
15399 char *filename = myargv[optind + 1 + i];
15400
15401 struct stat file_stat;
15402
15403 if (stat (filename, &file_stat) == -1)
15404 {
15405 log_error ("ERROR: %s: %s", filename, strerror (errno));
15406
15407 return (-1);
15408 }
15409
15410 uint is_dir = S_ISDIR (file_stat.st_mode);
15411
15412 if (is_dir == 0)
15413 {
15414 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15415
15416 dictcnt++;
15417
15418 dictfiles[dictcnt - 1] = filename;
15419 }
15420 else
15421 {
15422 // do not allow --keyspace w/ a directory
15423
15424 if (keyspace == 1)
15425 {
15426 log_error ("ERROR: keyspace parameter is not allowed together with a directory");
15427
15428 return (-1);
15429 }
15430
15431 char **dictionary_files = NULL;
15432
15433 dictionary_files = scan_directory (filename);
15434
15435 if (dictionary_files != NULL)
15436 {
15437 qsort (dictionary_files, count_dictionaries (dictionary_files), sizeof (char *), sort_by_stringptr);
15438
15439 for (int d = 0; dictionary_files[d] != NULL; d++)
15440 {
15441 char *l1_filename = dictionary_files[d];
15442
15443 struct stat l1_stat;
15444
15445 if (stat (l1_filename, &l1_stat) == -1)
15446 {
15447 log_error ("ERROR: %s: %s", l1_filename, strerror (errno));
15448
15449 return (-1);
15450 }
15451
15452 if (S_ISREG (l1_stat.st_mode))
15453 {
15454 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15455
15456 dictcnt++;
15457
15458 dictfiles[dictcnt - 1] = strdup (l1_filename);
15459 }
15460 }
15461 }
15462
15463 local_free (dictionary_files);
15464 }
15465 }
15466
15467 if (dictcnt < 1)
15468 {
15469 log_error ("ERROR: No usable dictionary file found.");
15470
15471 return (-1);
15472 }
15473
15474 if (increment)
15475 {
15476 maskcnt = 0;
15477
15478 uint mask_min = increment_min; // we can't reject smaller masks here
15479 uint mask_max = (increment_max < pw_max) ? increment_max : pw_max;
15480
15481 for (uint mask_cur = mask_min; mask_cur <= mask_max; mask_cur++)
15482 {
15483 char *cur_mask = mp_get_truncated_mask (mask, strlen (mask), mask_cur);
15484
15485 if (cur_mask == NULL) break;
15486
15487 masks[maskcnt] = cur_mask;
15488
15489 maskcnt++;
15490
15491 masks = (char **) myrealloc (masks, maskcnt * sizeof (char *), sizeof (char *));
15492 }
15493 }
15494 }
15495 else if (attack_mode == ATTACK_MODE_HYBRID2)
15496 {
15497 data.combs_mode = COMBINATOR_MODE_BASE_RIGHT;
15498
15499 // display
15500
15501 char *mask = myargv[optind + 1 + 0];
15502
15503 maskcnt = 0;
15504
15505 masks = (char **) mymalloc (1 * sizeof (char *));
15506
15507 // mod
15508
15509 struct stat file_stat;
15510
15511 if (stat (mask, &file_stat) == -1)
15512 {
15513 maskcnt = 1;
15514
15515 masks[maskcnt - 1] = mystrdup (mask);
15516 }
15517 else
15518 {
15519 uint is_file = S_ISREG (file_stat.st_mode);
15520
15521 if (is_file == 1)
15522 {
15523 FILE *mask_fp;
15524
15525 if ((mask_fp = fopen (mask, "r")) == NULL)
15526 {
15527 log_error ("ERROR: %s: %s", mask, strerror (errno));
15528
15529 return (-1);
15530 }
15531
15532 char *line_buf = (char *) mymalloc (HCBUFSIZ);
15533
15534 uint masks_avail = 1;
15535
15536 while (!feof (mask_fp))
15537 {
15538 memset (line_buf, 0, HCBUFSIZ);
15539
15540 int line_len = fgetl (mask_fp, line_buf);
15541
15542 if (line_len == 0) continue;
15543
15544 if (line_buf[0] == '#') continue;
15545
15546 if (masks_avail == maskcnt)
15547 {
15548 masks = (char **) myrealloc (masks, masks_avail * sizeof (char *), INCR_MASKS * sizeof (char *));
15549
15550 masks_avail += INCR_MASKS;
15551 }
15552
15553 masks[maskcnt] = mystrdup (line_buf);
15554
15555 maskcnt++;
15556 }
15557
15558 myfree (line_buf);
15559
15560 fclose (mask_fp);
15561
15562 mask_from_file = 1;
15563 }
15564 else
15565 {
15566 maskcnt = 1;
15567
15568 masks[maskcnt - 1] = mystrdup (mask);
15569 }
15570 }
15571
15572 // base
15573
15574 int wls_left = myargc - (optind + 2);
15575
15576 for (int i = 0; i < wls_left; i++)
15577 {
15578 char *filename = myargv[optind + 2 + i];
15579
15580 struct stat file_stat;
15581
15582 if (stat (filename, &file_stat) == -1)
15583 {
15584 log_error ("ERROR: %s: %s", filename, strerror (errno));
15585
15586 return (-1);
15587 }
15588
15589 uint is_dir = S_ISDIR (file_stat.st_mode);
15590
15591 if (is_dir == 0)
15592 {
15593 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15594
15595 dictcnt++;
15596
15597 dictfiles[dictcnt - 1] = filename;
15598 }
15599 else
15600 {
15601 // do not allow --keyspace w/ a directory
15602
15603 if (keyspace == 1)
15604 {
15605 log_error ("ERROR: keyspace parameter is not allowed together with a directory");
15606
15607 return (-1);
15608 }
15609
15610 char **dictionary_files = NULL;
15611
15612 dictionary_files = scan_directory (filename);
15613
15614 if (dictionary_files != NULL)
15615 {
15616 qsort (dictionary_files, count_dictionaries (dictionary_files), sizeof (char *), sort_by_stringptr);
15617
15618 for (int d = 0; dictionary_files[d] != NULL; d++)
15619 {
15620 char *l1_filename = dictionary_files[d];
15621
15622 struct stat l1_stat;
15623
15624 if (stat (l1_filename, &l1_stat) == -1)
15625 {
15626 log_error ("ERROR: %s: %s", l1_filename, strerror (errno));
15627
15628 return (-1);
15629 }
15630
15631 if (S_ISREG (l1_stat.st_mode))
15632 {
15633 dictfiles = (char **) myrealloc (dictfiles, dictcnt * sizeof (char *), sizeof (char *));
15634
15635 dictcnt++;
15636
15637 dictfiles[dictcnt - 1] = strdup (l1_filename);
15638 }
15639 }
15640 }
15641
15642 local_free (dictionary_files);
15643 }
15644 }
15645
15646 if (dictcnt < 1)
15647 {
15648 log_error ("ERROR: No usable dictionary file found.");
15649
15650 return (-1);
15651 }
15652
15653 if (increment)
15654 {
15655 maskcnt = 0;
15656
15657 uint mask_min = increment_min; // we can't reject smaller masks here
15658 uint mask_max = (increment_max < pw_max) ? increment_max : pw_max;
15659
15660 for (uint mask_cur = mask_min; mask_cur <= mask_max; mask_cur++)
15661 {
15662 char *cur_mask = mp_get_truncated_mask (mask, strlen (mask), mask_cur);
15663
15664 if (cur_mask == NULL) break;
15665
15666 masks[maskcnt] = cur_mask;
15667
15668 maskcnt++;
15669
15670 masks = (char **) myrealloc (masks, maskcnt * sizeof (char *), sizeof (char *));
15671 }
15672 }
15673 }
15674
15675 data.pw_min = pw_min;
15676 data.pw_max = pw_max;
15677
15678 /**
15679 * weak hash check
15680 */
15681
15682 if (weak_hash_threshold >= salts_cnt)
15683 {
15684 hc_device_param_t *device_param = NULL;
15685
15686 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
15687 {
15688 device_param = &data.devices_param[device_id];
15689
15690 if (device_param->skipped) continue;
15691
15692 break;
15693 }
15694
15695 if (data.quiet == 0) log_info_nn ("Checking for weak hashes...");
15696
15697 for (uint salt_pos = 0; salt_pos < salts_cnt; salt_pos++)
15698 {
15699 weak_hash_check (device_param, salt_pos);
15700 }
15701 }
15702
15703 // Display hack, guarantee that there is at least one \r before real start
15704
15705 if (data.quiet == 0) log_info_nn ("");
15706
15707 /**
15708 * status and monitor threads
15709 */
15710
15711 if (data.devices_status != STATUS_CRACKED) data.devices_status = STATUS_STARTING;
15712
15713 hc_thread_t i_thread = 0;
15714
15715 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
15716 {
15717 hc_thread_create (i_thread, thread_keypress, &benchmark);
15718 }
15719
15720 if (wordlist_mode == WL_MODE_STDIN) data.status = 1;
15721
15722 uint ni_threads_cnt = 0;
15723
15724 hc_thread_t *ni_threads = (hc_thread_t *) mycalloc (10, sizeof (hc_thread_t));
15725
15726 hc_thread_create (ni_threads[ni_threads_cnt], thread_monitor, NULL);
15727
15728 ni_threads_cnt++;
15729
15730 /**
15731 * Outfile remove
15732 */
15733
15734 if (keyspace == 0)
15735 {
15736 if (outfile_check_timer != 0)
15737 {
15738 if (data.outfile_check_directory != NULL)
15739 {
15740 if ((hash_mode != 5200) &&
15741 !((hash_mode >= 6200) && (hash_mode <= 6299)) &&
15742 (hash_mode != 9000))
15743 {
15744 hc_thread_create (ni_threads[ni_threads_cnt], thread_outfile_remove, NULL);
15745
15746 ni_threads_cnt++;
15747 }
15748 else
15749 {
15750 outfile_check_timer = 0;
15751 }
15752 }
15753 else
15754 {
15755 outfile_check_timer = 0;
15756 }
15757 }
15758 }
15759
15760 /**
15761 * Inform the user if we got some hashes remove because of the pot file remove feature
15762 */
15763
15764 if (data.quiet == 0)
15765 {
15766 if (potfile_remove_cracks > 0)
15767 {
15768 if (potfile_remove_cracks == 1) log_info ("INFO: removed 1 hash found in pot file\n");
15769 else log_info ("INFO: removed %u hashes found in pot file\n", potfile_remove_cracks);
15770 }
15771 }
15772
15773 data.outfile_check_timer = outfile_check_timer;
15774
15775 /**
15776 * main loop
15777 */
15778
15779 char **induction_dictionaries = NULL;
15780
15781 int induction_dictionaries_cnt = 0;
15782
15783 hcstat_table_t *root_table_buf = NULL;
15784 hcstat_table_t *markov_table_buf = NULL;
15785
15786 uint initial_restore_done = 0;
15787
15788 data.maskcnt = maskcnt;
15789
15790 for (uint maskpos = rd->maskpos; maskpos < maskcnt; maskpos++)
15791 {
15792 if (data.devices_status == STATUS_CRACKED) break;
15793
15794 data.devices_status = STATUS_INIT;
15795
15796 if (maskpos > rd->maskpos)
15797 {
15798 rd->dictpos = 0;
15799 }
15800
15801 rd->maskpos = maskpos;
15802 data.maskpos = maskpos;
15803
15804 if (attack_mode == ATTACK_MODE_HYBRID1 || attack_mode == ATTACK_MODE_HYBRID2 || attack_mode == ATTACK_MODE_BF)
15805 {
15806 char *mask = masks[maskpos];
15807
15808 if (mask_from_file == 1)
15809 {
15810 if (mask[0] == '\\' && mask[1] == '#') mask++; // escaped comment sign (sharp) "\#"
15811
15812 char *str_ptr;
15813 uint str_pos;
15814
15815 uint mask_offset = 0;
15816
15817 uint separator_cnt;
15818
15819 for (separator_cnt = 0; separator_cnt < 4; separator_cnt++)
15820 {
15821 str_ptr = strstr (mask + mask_offset, ",");
15822
15823 if (str_ptr == NULL) break;
15824
15825 str_pos = str_ptr - mask;
15826
15827 // escaped separator, i.e. "\,"
15828
15829 if (str_pos > 0)
15830 {
15831 if (mask[str_pos - 1] == '\\')
15832 {
15833 separator_cnt --;
15834
15835 mask_offset = str_pos + 1;
15836
15837 continue;
15838 }
15839 }
15840
15841 // reset the offset
15842
15843 mask_offset = 0;
15844
15845 mask[str_pos] = '\0';
15846
15847 switch (separator_cnt)
15848 {
15849 case 0:
15850 mp_reset_usr (mp_usr, 0);
15851
15852 custom_charset_1 = mask;
15853 mp_setup_usr (mp_sys, mp_usr, custom_charset_1, 0);
15854 break;
15855
15856 case 1:
15857 mp_reset_usr (mp_usr, 1);
15858
15859 custom_charset_2 = mask;
15860 mp_setup_usr (mp_sys, mp_usr, custom_charset_2, 1);
15861 break;
15862
15863 case 2:
15864 mp_reset_usr (mp_usr, 2);
15865
15866 custom_charset_3 = mask;
15867 mp_setup_usr (mp_sys, mp_usr, custom_charset_3, 2);
15868 break;
15869
15870 case 3:
15871 mp_reset_usr (mp_usr, 3);
15872
15873 custom_charset_4 = mask;
15874 mp_setup_usr (mp_sys, mp_usr, custom_charset_4, 3);
15875 break;
15876 }
15877
15878 mask = mask + str_pos + 1;
15879 }
15880 }
15881
15882 if ((attack_mode == ATTACK_MODE_HYBRID1) || (attack_mode == ATTACK_MODE_HYBRID2))
15883 {
15884 if (maskpos > 0)
15885 {
15886 local_free (css_buf);
15887 local_free (data.root_css_buf);
15888 local_free (data.markov_css_buf);
15889
15890 local_free (masks[maskpos - 1]);
15891 }
15892
15893 css_buf = mp_gen_css (mask, strlen (mask), mp_sys, mp_usr, &css_cnt);
15894
15895 data.mask = mask;
15896 data.css_cnt = css_cnt;
15897 data.css_buf = css_buf;
15898
15899 uint uniq_tbls[SP_PW_MAX][CHARSIZ] = { { 0 } };
15900
15901 mp_css_to_uniq_tbl (css_cnt, css_buf, uniq_tbls);
15902
15903 if (root_table_buf == NULL) root_table_buf = (hcstat_table_t *) mycalloc (SP_ROOT_CNT, sizeof (hcstat_table_t));
15904 if (markov_table_buf == NULL) markov_table_buf = (hcstat_table_t *) mycalloc (SP_MARKOV_CNT, sizeof (hcstat_table_t));
15905
15906 sp_setup_tbl (shared_dir, markov_hcstat, markov_disable, markov_classic, root_table_buf, markov_table_buf);
15907
15908 markov_threshold = (markov_threshold != 0) ? markov_threshold : CHARSIZ;
15909
15910 cs_t *root_css_buf = (cs_t *) mycalloc (SP_PW_MAX, sizeof (cs_t));
15911 cs_t *markov_css_buf = (cs_t *) mycalloc (SP_PW_MAX * CHARSIZ, sizeof (cs_t));
15912
15913 data.root_css_buf = root_css_buf;
15914 data.markov_css_buf = markov_css_buf;
15915
15916 sp_tbl_to_css (root_table_buf, markov_table_buf, root_css_buf, markov_css_buf, markov_threshold, uniq_tbls);
15917
15918 data.combs_cnt = sp_get_sum (0, css_cnt, root_css_buf);
15919
15920 local_free (root_table_buf);
15921 local_free (markov_table_buf);
15922
15923 // args
15924
15925 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
15926 {
15927 hc_device_param_t *device_param = &data.devices_param[device_id];
15928
15929 if (device_param->skipped) continue;
15930
15931 device_param->kernel_params_mp[0] = &device_param->d_combs;
15932 device_param->kernel_params_mp[1] = &device_param->d_root_css_buf;
15933 device_param->kernel_params_mp[2] = &device_param->d_markov_css_buf;
15934
15935 device_param->kernel_params_mp_buf64[3] = 0;
15936 device_param->kernel_params_mp_buf32[4] = css_cnt;
15937 device_param->kernel_params_mp_buf32[5] = 0;
15938 device_param->kernel_params_mp_buf32[6] = 0;
15939 device_param->kernel_params_mp_buf32[7] = 0;
15940
15941 if (attack_mode == ATTACK_MODE_HYBRID1)
15942 {
15943 if (opts_type & OPTS_TYPE_PT_ADD01) device_param->kernel_params_mp_buf32[5] = full01;
15944 if (opts_type & OPTS_TYPE_PT_ADD80) device_param->kernel_params_mp_buf32[5] = full80;
15945 if (opts_type & OPTS_TYPE_PT_ADDBITS14) device_param->kernel_params_mp_buf32[6] = 1;
15946 if (opts_type & OPTS_TYPE_PT_ADDBITS15) device_param->kernel_params_mp_buf32[7] = 1;
15947 }
15948 else if (attack_mode == ATTACK_MODE_HYBRID2)
15949 {
15950 device_param->kernel_params_mp_buf32[5] = 0;
15951 device_param->kernel_params_mp_buf32[6] = 0;
15952 device_param->kernel_params_mp_buf32[7] = 0;
15953 }
15954
15955 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]);
15956 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]);
15957 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]);
15958
15959 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);
15960 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);
15961 }
15962 }
15963 else if (attack_mode == ATTACK_MODE_BF)
15964 {
15965 dictcnt = 0; // number of "sub-masks", i.e. when using incremental mode
15966
15967 if (increment)
15968 {
15969 for (uint i = 0; i < dictcnt; i++)
15970 {
15971 local_free (dictfiles[i]);
15972 }
15973
15974 for (uint pw_len = MAX (1, pw_min); pw_len <= pw_max; pw_len++)
15975 {
15976 char *l1_filename = mp_get_truncated_mask (mask, strlen (mask), pw_len);
15977
15978 if (l1_filename == NULL) break;
15979
15980 dictcnt++;
15981
15982 dictfiles[dictcnt - 1] = l1_filename;
15983 }
15984 }
15985 else
15986 {
15987 dictcnt++;
15988
15989 dictfiles[dictcnt - 1] = mask;
15990 }
15991
15992 if (dictcnt == 0)
15993 {
15994 log_error ("ERROR: Mask is too small");
15995
15996 return (-1);
15997 }
15998 }
15999 }
16000
16001 free (induction_dictionaries);
16002
16003 // induction_dictionaries_cnt = 0; // implied
16004
16005 if (attack_mode != ATTACK_MODE_BF)
16006 {
16007 if (keyspace == 0)
16008 {
16009 induction_dictionaries = scan_directory (induction_directory);
16010
16011 induction_dictionaries_cnt = count_dictionaries (induction_dictionaries);
16012 }
16013 }
16014
16015 if (induction_dictionaries_cnt)
16016 {
16017 qsort (induction_dictionaries, induction_dictionaries_cnt, sizeof (char *), sort_by_mtime);
16018 }
16019
16020 /**
16021 * prevent the user from using --keyspace together w/ maskfile and or dictfile
16022 */
16023 if (keyspace == 1)
16024 {
16025 if ((maskcnt > 1) || (dictcnt > 1))
16026 {
16027 log_error ("ERROR: --keyspace is not supported with --increment or mask files");
16028
16029 return (-1);
16030 }
16031 }
16032
16033 for (uint dictpos = rd->dictpos; dictpos < dictcnt; )
16034 {
16035 char *subid = logfile_generate_subid ();
16036
16037 data.subid = subid;
16038
16039 logfile_sub_msg ("START");
16040
16041 data.devices_status = STATUS_INIT;
16042
16043 memset (data.words_progress_done, 0, data.salts_cnt * sizeof (u64));
16044 memset (data.words_progress_rejected, 0, data.salts_cnt * sizeof (u64));
16045 memset (data.words_progress_restored, 0, data.salts_cnt * sizeof (u64));
16046
16047 memset (data.cpt_buf, 0, CPT_BUF * sizeof (cpt_t));
16048
16049 data.cpt_pos = 0;
16050
16051 data.cpt_start = time (NULL);
16052
16053 data.cpt_total = 0;
16054
16055 if (data.restore == 0)
16056 {
16057 rd->words_cur = skip;
16058
16059 skip = 0;
16060
16061 data.skip = 0;
16062 }
16063
16064 data.ms_paused = 0;
16065
16066 data.words_cur = rd->words_cur;
16067
16068 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16069 {
16070 hc_device_param_t *device_param = &data.devices_param[device_id];
16071
16072 if (device_param->skipped) continue;
16073
16074 device_param->speed_pos = 0;
16075
16076 memset (device_param->speed_cnt, 0, SPEED_CACHE * sizeof (u64));
16077 memset (device_param->speed_ms, 0, SPEED_CACHE * sizeof (double));
16078
16079 device_param->exec_pos = 0;
16080
16081 memset (device_param->exec_ms, 0, EXEC_CACHE * sizeof (double));
16082
16083 device_param->kernel_power = device_param->kernel_power_user;
16084
16085 device_param->outerloop_pos = 0;
16086 device_param->outerloop_left = 0;
16087 device_param->innerloop_pos = 0;
16088 device_param->innerloop_left = 0;
16089
16090 // some more resets:
16091
16092 if (device_param->pws_buf) memset (device_param->pws_buf, 0, device_param->size_pws);
16093
16094 device_param->pws_cnt = 0;
16095
16096 device_param->words_off = 0;
16097 device_param->words_done = 0;
16098 }
16099
16100 data.kernel_power_div = 0;
16101
16102 // figure out some workload
16103
16104 if (attack_mode == ATTACK_MODE_STRAIGHT)
16105 {
16106 if (data.wordlist_mode == WL_MODE_FILE)
16107 {
16108 char *dictfile = NULL;
16109
16110 if (induction_dictionaries_cnt)
16111 {
16112 dictfile = induction_dictionaries[0];
16113 }
16114 else
16115 {
16116 dictfile = dictfiles[dictpos];
16117 }
16118
16119 data.dictfile = dictfile;
16120
16121 logfile_sub_string (dictfile);
16122
16123 for (uint i = 0; i < rp_files_cnt; i++)
16124 {
16125 logfile_sub_var_string ("rulefile", rp_files[i]);
16126 }
16127
16128 FILE *fd2 = fopen (dictfile, "rb");
16129
16130 if (fd2 == NULL)
16131 {
16132 log_error ("ERROR: %s: %s", dictfile, strerror (errno));
16133
16134 return (-1);
16135 }
16136
16137 data.words_cnt = count_words (wl_data, fd2, dictfile, dictstat_base, &dictstat_nmemb);
16138
16139 fclose (fd2);
16140
16141 if (data.words_cnt == 0)
16142 {
16143 if (data.devices_status == STATUS_CRACKED) break;
16144 if (data.devices_status == STATUS_ABORTED) break;
16145
16146 dictpos++;
16147
16148 continue;
16149 }
16150 }
16151 }
16152 else if (attack_mode == ATTACK_MODE_COMBI)
16153 {
16154 char *dictfile = data.dictfile;
16155 char *dictfile2 = data.dictfile2;
16156
16157 logfile_sub_string (dictfile);
16158 logfile_sub_string (dictfile2);
16159
16160 if (data.combs_mode == COMBINATOR_MODE_BASE_LEFT)
16161 {
16162 FILE *fd2 = fopen (dictfile, "rb");
16163
16164 if (fd2 == NULL)
16165 {
16166 log_error ("ERROR: %s: %s", dictfile, strerror (errno));
16167
16168 return (-1);
16169 }
16170
16171 data.words_cnt = count_words (wl_data, fd2, dictfile, dictstat_base, &dictstat_nmemb);
16172
16173 fclose (fd2);
16174 }
16175 else if (data.combs_mode == COMBINATOR_MODE_BASE_RIGHT)
16176 {
16177 FILE *fd2 = fopen (dictfile2, "rb");
16178
16179 if (fd2 == NULL)
16180 {
16181 log_error ("ERROR: %s: %s", dictfile2, strerror (errno));
16182
16183 return (-1);
16184 }
16185
16186 data.words_cnt = count_words (wl_data, fd2, dictfile2, dictstat_base, &dictstat_nmemb);
16187
16188 fclose (fd2);
16189 }
16190
16191 if (data.words_cnt == 0)
16192 {
16193 if (data.devices_status == STATUS_CRACKED) break;
16194 if (data.devices_status == STATUS_ABORTED) break;
16195
16196 dictpos++;
16197
16198 continue;
16199 }
16200 }
16201 else if ((attack_mode == ATTACK_MODE_HYBRID1) || (attack_mode == ATTACK_MODE_HYBRID2))
16202 {
16203 char *dictfile = NULL;
16204
16205 if (induction_dictionaries_cnt)
16206 {
16207 dictfile = induction_dictionaries[0];
16208 }
16209 else
16210 {
16211 dictfile = dictfiles[dictpos];
16212 }
16213
16214 data.dictfile = dictfile;
16215
16216 char *mask = data.mask;
16217
16218 logfile_sub_string (dictfile);
16219 logfile_sub_string (mask);
16220
16221 FILE *fd2 = fopen (dictfile, "rb");
16222
16223 if (fd2 == NULL)
16224 {
16225 log_error ("ERROR: %s: %s", dictfile, strerror (errno));
16226
16227 return (-1);
16228 }
16229
16230 data.words_cnt = count_words (wl_data, fd2, dictfile, dictstat_base, &dictstat_nmemb);
16231
16232 fclose (fd2);
16233
16234 if (data.words_cnt == 0)
16235 {
16236 if (data.devices_status == STATUS_CRACKED) break;
16237 if (data.devices_status == STATUS_ABORTED) break;
16238
16239 dictpos++;
16240
16241 continue;
16242 }
16243 }
16244 else if (attack_mode == ATTACK_MODE_BF)
16245 {
16246 local_free (css_buf);
16247 local_free (data.root_css_buf);
16248 local_free (data.markov_css_buf);
16249
16250 char *mask = dictfiles[dictpos];
16251
16252 logfile_sub_string (mask);
16253
16254 // base
16255
16256 css_buf = mp_gen_css (mask, strlen (mask), mp_sys, mp_usr, &css_cnt);
16257
16258 if (opts_type & OPTS_TYPE_PT_UNICODE)
16259 {
16260 uint css_cnt_unicode = css_cnt * 2;
16261
16262 cs_t *css_buf_unicode = (cs_t *) mycalloc (css_cnt_unicode, sizeof (cs_t));
16263
16264 for (uint i = 0, j = 0; i < css_cnt; i += 1, j += 2)
16265 {
16266 memcpy (&css_buf_unicode[j + 0], &css_buf[i], sizeof (cs_t));
16267
16268 css_buf_unicode[j + 1].cs_buf[0] = 0;
16269 css_buf_unicode[j + 1].cs_len = 1;
16270 }
16271
16272 free (css_buf);
16273
16274 css_buf = css_buf_unicode;
16275 css_cnt = css_cnt_unicode;
16276 }
16277
16278 // check if mask is not too large or too small for pw_min/pw_max (*2 if unicode)
16279
16280 uint mask_min = pw_min;
16281 uint mask_max = pw_max;
16282
16283 if (opts_type & OPTS_TYPE_PT_UNICODE)
16284 {
16285 mask_min *= 2;
16286 mask_max *= 2;
16287 }
16288
16289 if ((css_cnt < mask_min) || (css_cnt > mask_max))
16290 {
16291 if (css_cnt < mask_min)
16292 {
16293 log_info ("WARNING: skipping mask '%s' because it is smaller than the minimum password length", mask);
16294 }
16295
16296 if (css_cnt > mask_max)
16297 {
16298 log_info ("WARNING: skipping mask '%s' because it is larger than the maximum password length", mask);
16299 }
16300
16301 // skip to next mask
16302
16303 dictpos++;
16304
16305 rd->dictpos = dictpos;
16306
16307 logfile_sub_msg ("STOP");
16308
16309 continue;
16310 }
16311
16312 uint save_css_cnt = css_cnt;
16313
16314 if (opti_type & OPTI_TYPE_SINGLE_HASH)
16315 {
16316 if (opti_type & OPTI_TYPE_APPENDED_SALT)
16317 {
16318 uint salt_len = (uint) data.salts_buf[0].salt_len;
16319 char *salt_buf = (char *) data.salts_buf[0].salt_buf;
16320
16321 uint css_cnt_salt = css_cnt + salt_len;
16322
16323 cs_t *css_buf_salt = (cs_t *) mycalloc (css_cnt_salt, sizeof (cs_t));
16324
16325 memcpy (css_buf_salt, css_buf, css_cnt * sizeof (cs_t));
16326
16327 for (uint i = 0, j = css_cnt; i < salt_len; i++, j++)
16328 {
16329 css_buf_salt[j].cs_buf[0] = salt_buf[i];
16330 css_buf_salt[j].cs_len = 1;
16331 }
16332
16333 free (css_buf);
16334
16335 css_buf = css_buf_salt;
16336 css_cnt = css_cnt_salt;
16337 }
16338 }
16339
16340 data.mask = mask;
16341 data.css_cnt = css_cnt;
16342 data.css_buf = css_buf;
16343
16344 if (maskpos > 0 && dictpos == 0) free (masks[maskpos - 1]);
16345
16346 uint uniq_tbls[SP_PW_MAX][CHARSIZ] = { { 0 } };
16347
16348 mp_css_to_uniq_tbl (css_cnt, css_buf, uniq_tbls);
16349
16350 if (root_table_buf == NULL) root_table_buf = (hcstat_table_t *) mycalloc (SP_ROOT_CNT, sizeof (hcstat_table_t));
16351 if (markov_table_buf == NULL) markov_table_buf = (hcstat_table_t *) mycalloc (SP_MARKOV_CNT, sizeof (hcstat_table_t));
16352
16353 sp_setup_tbl (shared_dir, markov_hcstat, markov_disable, markov_classic, root_table_buf, markov_table_buf);
16354
16355 markov_threshold = (markov_threshold != 0) ? markov_threshold : CHARSIZ;
16356
16357 cs_t *root_css_buf = (cs_t *) mycalloc (SP_PW_MAX, sizeof (cs_t));
16358 cs_t *markov_css_buf = (cs_t *) mycalloc (SP_PW_MAX * CHARSIZ, sizeof (cs_t));
16359
16360 data.root_css_buf = root_css_buf;
16361 data.markov_css_buf = markov_css_buf;
16362
16363 sp_tbl_to_css (root_table_buf, markov_table_buf, root_css_buf, markov_css_buf, markov_threshold, uniq_tbls);
16364
16365 data.words_cnt = sp_get_sum (0, css_cnt, root_css_buf);
16366
16367 local_free (root_table_buf);
16368 local_free (markov_table_buf);
16369
16370 // copy + args
16371
16372 uint css_cnt_l = css_cnt;
16373 uint css_cnt_r;
16374
16375 if (attack_exec == ATTACK_EXEC_INSIDE_KERNEL)
16376 {
16377 if (save_css_cnt < 6)
16378 {
16379 css_cnt_r = 1;
16380 }
16381 else if (save_css_cnt == 6)
16382 {
16383 css_cnt_r = 2;
16384 }
16385 else
16386 {
16387 if (opts_type & OPTS_TYPE_PT_UNICODE)
16388 {
16389 if (save_css_cnt == 8 || save_css_cnt == 10)
16390 {
16391 css_cnt_r = 2;
16392 }
16393 else
16394 {
16395 css_cnt_r = 4;
16396 }
16397 }
16398 else
16399 {
16400 if ((css_buf[0].cs_len * css_buf[1].cs_len * css_buf[2].cs_len) > 256)
16401 {
16402 css_cnt_r = 3;
16403 }
16404 else
16405 {
16406 css_cnt_r = 4;
16407 }
16408 }
16409 }
16410 }
16411 else
16412 {
16413 css_cnt_r = 1;
16414
16415 /* unfinished code?
16416 int sum = css_buf[css_cnt_r - 1].cs_len;
16417
16418 for (uint i = 1; i < 4 && i < css_cnt; i++)
16419 {
16420 if (sum > 1) break; // we really don't need alot of amplifier them for slow hashes
16421
16422 css_cnt_r++;
16423
16424 sum *= css_buf[css_cnt_r - 1].cs_len;
16425 }
16426 */
16427 }
16428
16429 css_cnt_l -= css_cnt_r;
16430
16431 data.bfs_cnt = sp_get_sum (0, css_cnt_r, root_css_buf);
16432
16433 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16434 {
16435 hc_device_param_t *device_param = &data.devices_param[device_id];
16436
16437 if (device_param->skipped) continue;
16438
16439 device_param->kernel_params_mp_l[0] = &device_param->d_pws_buf;
16440 device_param->kernel_params_mp_l[1] = &device_param->d_root_css_buf;
16441 device_param->kernel_params_mp_l[2] = &device_param->d_markov_css_buf;
16442
16443 device_param->kernel_params_mp_l_buf64[3] = 0;
16444 device_param->kernel_params_mp_l_buf32[4] = css_cnt_l;
16445 device_param->kernel_params_mp_l_buf32[5] = css_cnt_r;
16446 device_param->kernel_params_mp_l_buf32[6] = 0;
16447 device_param->kernel_params_mp_l_buf32[7] = 0;
16448 device_param->kernel_params_mp_l_buf32[8] = 0;
16449
16450 if (opts_type & OPTS_TYPE_PT_ADD01) device_param->kernel_params_mp_l_buf32[6] = full01;
16451 if (opts_type & OPTS_TYPE_PT_ADD80) device_param->kernel_params_mp_l_buf32[6] = full80;
16452 if (opts_type & OPTS_TYPE_PT_ADDBITS14) device_param->kernel_params_mp_l_buf32[7] = 1;
16453 if (opts_type & OPTS_TYPE_PT_ADDBITS15) device_param->kernel_params_mp_l_buf32[8] = 1;
16454
16455 device_param->kernel_params_mp_r[0] = &device_param->d_bfs;
16456 device_param->kernel_params_mp_r[1] = &device_param->d_root_css_buf;
16457 device_param->kernel_params_mp_r[2] = &device_param->d_markov_css_buf;
16458
16459 device_param->kernel_params_mp_r_buf64[3] = 0;
16460 device_param->kernel_params_mp_r_buf32[4] = css_cnt_r;
16461 device_param->kernel_params_mp_r_buf32[5] = 0;
16462 device_param->kernel_params_mp_r_buf32[6] = 0;
16463 device_param->kernel_params_mp_r_buf32[7] = 0;
16464
16465 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]);
16466 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]);
16467 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]);
16468
16469 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]);
16470 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]);
16471 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]);
16472
16473 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);
16474 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);
16475 }
16476 }
16477
16478 u64 words_base = data.words_cnt;
16479
16480 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
16481 {
16482 if (data.kernel_rules_cnt)
16483 {
16484 words_base /= data.kernel_rules_cnt;
16485 }
16486 }
16487 else if (data.attack_kern == ATTACK_KERN_COMBI)
16488 {
16489 if (data.combs_cnt)
16490 {
16491 words_base /= data.combs_cnt;
16492 }
16493 }
16494 else if (data.attack_kern == ATTACK_KERN_BF)
16495 {
16496 if (data.bfs_cnt)
16497 {
16498 words_base /= data.bfs_cnt;
16499 }
16500 }
16501
16502 data.words_base = words_base;
16503
16504 if (keyspace == 1)
16505 {
16506 log_info ("%llu", (unsigned long long int) words_base);
16507
16508 return (0);
16509 }
16510
16511 if (data.words_cur > data.words_base)
16512 {
16513 log_error ("ERROR: restore value greater keyspace");
16514
16515 return (-1);
16516 }
16517
16518 if (data.words_cur)
16519 {
16520 if (data.attack_kern == ATTACK_KERN_STRAIGHT)
16521 {
16522 for (uint i = 0; i < data.salts_cnt; i++)
16523 {
16524 data.words_progress_restored[i] = data.words_cur * data.kernel_rules_cnt;
16525 }
16526 }
16527 else if (data.attack_kern == ATTACK_KERN_COMBI)
16528 {
16529 for (uint i = 0; i < data.salts_cnt; i++)
16530 {
16531 data.words_progress_restored[i] = data.words_cur * data.combs_cnt;
16532 }
16533 }
16534 else if (data.attack_kern == ATTACK_KERN_BF)
16535 {
16536 for (uint i = 0; i < data.salts_cnt; i++)
16537 {
16538 data.words_progress_restored[i] = data.words_cur * data.bfs_cnt;
16539 }
16540 }
16541 }
16542
16543 /*
16544 * Inform user about possible slow speeds
16545 */
16546
16547 if ((wordlist_mode == WL_MODE_FILE) || (wordlist_mode == WL_MODE_MASK))
16548 {
16549 if (data.words_base < kernel_power_all)
16550 {
16551 if (quiet == 0)
16552 {
16553 log_info ("");
16554 log_info ("ATTENTION!");
16555 log_info (" The wordlist or mask you are using is too small.");
16556 log_info (" Therefore, oclHashcat is unable to utilize the full parallelization power of your device(s).");
16557 log_info (" The cracking speed will drop.");
16558 log_info (" Workaround: https://hashcat.net/wiki/doku.php?id=frequently_asked_questions#how_to_create_more_work_for_full_speed");
16559 log_info ("");
16560 }
16561 }
16562 }
16563
16564 /*
16565 * Update loopback file
16566 */
16567
16568 if (loopback == 1)
16569 {
16570 time_t now;
16571
16572 time (&now);
16573
16574 uint random_num = get_random_num (0, 9999);
16575
16576 snprintf (loopback_file, loopback_size - 1, "%s/%s.%d_%i", induction_directory, LOOPBACK_FILE, (int) now, random_num);
16577
16578 data.loopback_file = loopback_file;
16579 }
16580
16581 /*
16582 * Update dictionary statistic
16583 */
16584
16585 if (keyspace == 0)
16586 {
16587 dictstat_fp = fopen (dictstat, "wb");
16588
16589 if (dictstat_fp)
16590 {
16591 lock_file (dictstat_fp);
16592
16593 fwrite (dictstat_base, sizeof (dictstat_t), dictstat_nmemb, dictstat_fp);
16594
16595 fclose (dictstat_fp);
16596 }
16597 }
16598
16599 data.devices_status = STATUS_RUNNING;
16600
16601 if (initial_restore_done == 0)
16602 {
16603 if (data.restore_disable == 0) cycle_restore ();
16604
16605 initial_restore_done = 1;
16606 }
16607
16608 hc_timer_set (&data.timer_running);
16609
16610 if ((wordlist_mode == WL_MODE_FILE) || (wordlist_mode == WL_MODE_MASK))
16611 {
16612 if ((quiet == 0) && (status == 0) && (benchmark == 0))
16613 {
16614 if (quiet == 0) fprintf (stdout, "%s", PROMPT);
16615 if (quiet == 0) fflush (stdout);
16616 }
16617 }
16618 else if (wordlist_mode == WL_MODE_STDIN)
16619 {
16620 if (data.quiet == 0) log_info ("Starting attack in stdin mode...");
16621 if (data.quiet == 0) log_info ("");
16622 }
16623
16624 time_t runtime_start;
16625
16626 time (&runtime_start);
16627
16628 data.runtime_start = runtime_start;
16629
16630 /**
16631 * create cracker threads
16632 */
16633
16634 hc_thread_t *c_threads = (hc_thread_t *) mycalloc (data.devices_cnt, sizeof (hc_thread_t));
16635
16636 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16637 {
16638 hc_device_param_t *device_param = &devices_param[device_id];
16639
16640 if (wordlist_mode == WL_MODE_STDIN)
16641 {
16642 hc_thread_create (c_threads[device_id], thread_calc_stdin, device_param);
16643 }
16644 else
16645 {
16646 hc_thread_create (c_threads[device_id], thread_calc, device_param);
16647 }
16648 }
16649
16650 // wait for crack threads to exit
16651
16652 hc_thread_wait (data.devices_cnt, c_threads);
16653
16654 local_free (c_threads);
16655
16656 data.restore = 0;
16657
16658 // finalize task
16659
16660 logfile_sub_var_uint ("status-after-work", data.devices_status);
16661
16662 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
16663
16664 if (data.devices_status == STATUS_CRACKED) break;
16665 if (data.devices_status == STATUS_ABORTED) break;
16666
16667 if (data.devices_status == STATUS_BYPASS)
16668 {
16669 data.devices_status = STATUS_RUNNING;
16670 }
16671
16672 if (induction_dictionaries_cnt)
16673 {
16674 unlink (induction_dictionaries[0]);
16675 }
16676
16677 free (induction_dictionaries);
16678
16679 if (attack_mode != ATTACK_MODE_BF)
16680 {
16681 induction_dictionaries = scan_directory (induction_directory);
16682
16683 induction_dictionaries_cnt = count_dictionaries (induction_dictionaries);
16684 }
16685
16686 if (benchmark == 0)
16687 {
16688 if (((dictpos + 1) < dictcnt) || ((maskpos + 1) < maskcnt) || induction_dictionaries_cnt)
16689 {
16690 if (quiet == 0) clear_prompt ();
16691
16692 if (quiet == 0) log_info ("");
16693
16694 if (status == 1)
16695 {
16696 status_display ();
16697 }
16698 else
16699 {
16700 if (quiet == 0) status_display ();
16701 }
16702
16703 if (quiet == 0) log_info ("");
16704 }
16705 }
16706
16707 if (attack_mode == ATTACK_MODE_BF)
16708 {
16709 dictpos++;
16710
16711 rd->dictpos = dictpos;
16712 }
16713 else
16714 {
16715 if (induction_dictionaries_cnt)
16716 {
16717 qsort (induction_dictionaries, induction_dictionaries_cnt, sizeof (char *), sort_by_mtime);
16718 }
16719 else
16720 {
16721 dictpos++;
16722
16723 rd->dictpos = dictpos;
16724 }
16725 }
16726
16727 time_t runtime_stop;
16728
16729 time (&runtime_stop);
16730
16731 data.runtime_stop = runtime_stop;
16732
16733 logfile_sub_uint (runtime_start);
16734 logfile_sub_uint (runtime_stop);
16735
16736 logfile_sub_msg ("STOP");
16737
16738 global_free (subid);
16739 }
16740
16741 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) check_checkpoint ();
16742
16743 if (data.devices_status == STATUS_CRACKED) break;
16744 if (data.devices_status == STATUS_ABORTED) break;
16745 if (data.devices_status == STATUS_QUIT) break;
16746
16747 if (data.devices_status == STATUS_BYPASS)
16748 {
16749 data.devices_status = STATUS_RUNNING;
16750 }
16751 }
16752
16753 // 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
16754
16755 if (attack_mode == ATTACK_MODE_STRAIGHT)
16756 {
16757 if (data.wordlist_mode == WL_MODE_FILE)
16758 {
16759 if (data.dictfile == NULL)
16760 {
16761 if (dictfiles != NULL)
16762 {
16763 data.dictfile = dictfiles[0];
16764
16765 hc_timer_set (&data.timer_running);
16766 }
16767 }
16768 }
16769 }
16770 // NOTE: combi is okay because it is already set beforehand
16771 else if (attack_mode == ATTACK_MODE_HYBRID1 || attack_mode == ATTACK_MODE_HYBRID2)
16772 {
16773 if (data.dictfile == NULL)
16774 {
16775 if (dictfiles != NULL)
16776 {
16777 hc_timer_set (&data.timer_running);
16778
16779 data.dictfile = dictfiles[0];
16780 }
16781 }
16782 }
16783 else if (attack_mode == ATTACK_MODE_BF)
16784 {
16785 if (data.mask == NULL)
16786 {
16787 hc_timer_set (&data.timer_running);
16788
16789 data.mask = masks[0];
16790 }
16791 }
16792
16793 if ((data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
16794 {
16795 data.devices_status = STATUS_EXHAUSTED;
16796 }
16797
16798 // if cracked / aborted remove last induction dictionary
16799
16800 for (int file_pos = 0; file_pos < induction_dictionaries_cnt; file_pos++)
16801 {
16802 struct stat induct_stat;
16803
16804 if (stat (induction_dictionaries[file_pos], &induct_stat) == 0)
16805 {
16806 unlink (induction_dictionaries[file_pos]);
16807 }
16808 }
16809
16810 // wait for non-interactive threads
16811
16812 for (uint thread_idx = 0; thread_idx < ni_threads_cnt; thread_idx++)
16813 {
16814 hc_thread_wait (1, &ni_threads[thread_idx]);
16815 }
16816
16817 local_free (ni_threads);
16818
16819 // wait for interactive threads
16820
16821 if ((data.wordlist_mode == WL_MODE_FILE) || (data.wordlist_mode == WL_MODE_MASK))
16822 {
16823 hc_thread_wait (1, &i_thread);
16824 }
16825
16826 // we dont need restore file anymore
16827 if (data.restore_disable == 0)
16828 {
16829 if ((data.devices_status == STATUS_EXHAUSTED) || (data.devices_status == STATUS_CRACKED))
16830 {
16831 unlink (eff_restore_file);
16832 unlink (new_restore_file);
16833 }
16834 else
16835 {
16836 cycle_restore ();
16837 }
16838 }
16839
16840 // finally save left hashes
16841
16842 if ((hashlist_mode == HL_MODE_FILE) && (remove == 1) && (data.digests_saved != data.digests_done))
16843 {
16844 save_hash ();
16845 }
16846
16847 /**
16848 * Clean up
16849 */
16850
16851 if (benchmark == 1)
16852 {
16853 status_benchmark ();
16854
16855 log_info ("");
16856 }
16857 else
16858 {
16859 if (quiet == 0) clear_prompt ();
16860
16861 if (quiet == 0) log_info ("");
16862
16863 if (status == 1)
16864 {
16865 status_display ();
16866 }
16867 else
16868 {
16869 if (quiet == 0) status_display ();
16870 }
16871
16872 if (quiet == 0) log_info ("");
16873 }
16874
16875 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16876 {
16877 hc_device_param_t *device_param = &data.devices_param[device_id];
16878
16879 if (device_param->skipped) continue;
16880
16881 local_free (device_param->result);
16882
16883 local_free (device_param->combs_buf);
16884
16885 local_free (device_param->hooks_buf);
16886
16887 local_free (device_param->device_name);
16888
16889 local_free (device_param->device_name_chksum);
16890
16891 local_free (device_param->device_version);
16892
16893 local_free (device_param->driver_version);
16894
16895 if (device_param->pws_buf) myfree (device_param->pws_buf);
16896 if (device_param->d_pws_buf) hc_clReleaseMemObject (data.ocl, device_param->d_pws_buf);
16897 if (device_param->d_pws_amp_buf) hc_clReleaseMemObject (data.ocl, device_param->d_pws_amp_buf);
16898 if (device_param->d_rules) hc_clReleaseMemObject (data.ocl, device_param->d_rules);
16899 if (device_param->d_rules_c) hc_clReleaseMemObject (data.ocl, device_param->d_rules_c);
16900 if (device_param->d_combs) hc_clReleaseMemObject (data.ocl, device_param->d_combs);
16901 if (device_param->d_combs_c) hc_clReleaseMemObject (data.ocl, device_param->d_combs_c);
16902 if (device_param->d_bfs) hc_clReleaseMemObject (data.ocl, device_param->d_bfs);
16903 if (device_param->d_bfs_c) hc_clReleaseMemObject (data.ocl, device_param->d_bfs_c);
16904 if (device_param->d_bitmap_s1_a) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s1_a);
16905 if (device_param->d_bitmap_s1_b) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s1_b);
16906 if (device_param->d_bitmap_s1_c) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s1_c);
16907 if (device_param->d_bitmap_s1_d) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s1_d);
16908 if (device_param->d_bitmap_s2_a) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s2_a);
16909 if (device_param->d_bitmap_s2_b) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s2_b);
16910 if (device_param->d_bitmap_s2_c) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s2_c);
16911 if (device_param->d_bitmap_s2_d) hc_clReleaseMemObject (data.ocl, device_param->d_bitmap_s2_d);
16912 if (device_param->d_plain_bufs) hc_clReleaseMemObject (data.ocl, device_param->d_plain_bufs);
16913 if (device_param->d_digests_buf) hc_clReleaseMemObject (data.ocl, device_param->d_digests_buf);
16914 if (device_param->d_digests_shown) hc_clReleaseMemObject (data.ocl, device_param->d_digests_shown);
16915 if (device_param->d_salt_bufs) hc_clReleaseMemObject (data.ocl, device_param->d_salt_bufs);
16916 if (device_param->d_esalt_bufs) hc_clReleaseMemObject (data.ocl, device_param->d_esalt_bufs);
16917 if (device_param->d_tmps) hc_clReleaseMemObject (data.ocl, device_param->d_tmps);
16918 if (device_param->d_hooks) hc_clReleaseMemObject (data.ocl, device_param->d_hooks);
16919 if (device_param->d_result) hc_clReleaseMemObject (data.ocl, device_param->d_result);
16920 if (device_param->d_scryptV_buf) hc_clReleaseMemObject (data.ocl, device_param->d_scryptV_buf);
16921 if (device_param->d_root_css_buf) hc_clReleaseMemObject (data.ocl, device_param->d_root_css_buf);
16922 if (device_param->d_markov_css_buf) hc_clReleaseMemObject (data.ocl, device_param->d_markov_css_buf);
16923 if (device_param->d_tm_c) hc_clReleaseMemObject (data.ocl, device_param->d_tm_c);
16924
16925 if (device_param->kernel1) hc_clReleaseKernel (data.ocl, device_param->kernel1);
16926 if (device_param->kernel12) hc_clReleaseKernel (data.ocl, device_param->kernel12);
16927 if (device_param->kernel2) hc_clReleaseKernel (data.ocl, device_param->kernel2);
16928 if (device_param->kernel23) hc_clReleaseKernel (data.ocl, device_param->kernel23);
16929 if (device_param->kernel3) hc_clReleaseKernel (data.ocl, device_param->kernel3);
16930 if (device_param->kernel_mp) hc_clReleaseKernel (data.ocl, device_param->kernel_mp);
16931 if (device_param->kernel_mp_l) hc_clReleaseKernel (data.ocl, device_param->kernel_mp_l);
16932 if (device_param->kernel_mp_r) hc_clReleaseKernel (data.ocl, device_param->kernel_mp_r);
16933 if (device_param->kernel_tm) hc_clReleaseKernel (data.ocl, device_param->kernel_tm);
16934 if (device_param->kernel_amp) hc_clReleaseKernel (data.ocl, device_param->kernel_amp);
16935
16936 if (device_param->program) hc_clReleaseProgram (data.ocl, device_param->program);
16937 if (device_param->program_mp) hc_clReleaseProgram (data.ocl, device_param->program_mp);
16938 if (device_param->program_amp) hc_clReleaseProgram (data.ocl, device_param->program_amp);
16939
16940 if (device_param->command_queue) hc_clReleaseCommandQueue (data.ocl, device_param->command_queue);
16941 if (device_param->context) hc_clReleaseContext (data.ocl, device_param->context);
16942 }
16943
16944 // reset default fan speed
16945
16946 #ifdef HAVE_HWMON
16947 if (gpu_temp_disable == 0)
16948 {
16949 #ifdef HAVE_ADL
16950 if (gpu_temp_retain != 0) // VENDOR_ID_AMD is implied here
16951 {
16952 hc_thread_mutex_lock (mux_adl);
16953
16954 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
16955 {
16956 hc_device_param_t *device_param = &data.devices_param[device_id];
16957
16958 if (device_param->skipped) continue;
16959
16960 if (data.hm_device[device_id].fan_supported == 1)
16961 {
16962 int fanspeed = temp_retain_fanspeed_value[device_id];
16963
16964 if (fanspeed == -1) continue;
16965
16966 int rc = hm_set_fanspeed_with_device_id_amd (device_id, fanspeed);
16967
16968 if (rc == -1) log_info ("WARNING: Failed to restore default fan speed for gpu number: %i:", device_id);
16969 }
16970 }
16971
16972 hc_thread_mutex_unlock (mux_adl);
16973 }
16974 #endif // HAVE_ADL
16975 }
16976
16977 #ifdef HAVE_ADL
16978 // reset power tuning
16979
16980 if (powertune_enable == 1) // VENDOR_ID_AMD is implied here
16981 {
16982 hc_thread_mutex_lock (mux_adl);
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 if (data.hm_device[device_id].od_version == 6)
16991 {
16992 // check powertune capabilities first, if not available then skip device
16993
16994 int powertune_supported = 0;
16995
16996 if ((hm_ADL_Overdrive6_PowerControl_Caps (data.hm_amd, data.hm_device[device_id].adapter_index.amd, &powertune_supported)) != ADL_OK)
16997 {
16998 log_error ("ERROR: Failed to get ADL PowerControl Capabilities");
16999
17000 return (-1);
17001 }
17002
17003 if (powertune_supported != 0)
17004 {
17005 // powercontrol settings
17006
17007 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)
17008 {
17009 log_info ("ERROR: Failed to restore the ADL PowerControl values");
17010
17011 return (-1);
17012 }
17013
17014 // clocks
17015
17016 ADLOD6StateInfo *performance_state = (ADLOD6StateInfo*) mycalloc (1, sizeof (ADLOD6StateInfo) + sizeof (ADLOD6PerformanceLevel));
17017
17018 performance_state->iNumberOfPerformanceLevels = 2;
17019
17020 performance_state->aLevels[0].iEngineClock = od_clock_mem_status[device_id].state.aLevels[0].iEngineClock;
17021 performance_state->aLevels[1].iEngineClock = od_clock_mem_status[device_id].state.aLevels[1].iEngineClock;
17022 performance_state->aLevels[0].iMemoryClock = od_clock_mem_status[device_id].state.aLevels[0].iMemoryClock;
17023 performance_state->aLevels[1].iMemoryClock = od_clock_mem_status[device_id].state.aLevels[1].iMemoryClock;
17024
17025 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)
17026 {
17027 log_info ("ERROR: Failed to restore ADL performance state");
17028
17029 return (-1);
17030 }
17031
17032 local_free (performance_state);
17033 }
17034 }
17035 }
17036
17037 hc_thread_mutex_unlock (mux_adl);
17038 }
17039 #endif // HAVE_ADL
17040
17041 if (gpu_temp_disable == 0)
17042 {
17043 #if defined(HAVE_NVML) || defined(HAVE_NVAPI)
17044 if (data.hm_nv)
17045 {
17046 #if defined(LINUX) && defined(HAVE_NVML)
17047
17048 hm_NVML_nvmlShutdown (data.hm_nv);
17049
17050 nvml_close (data.hm_nv);
17051
17052 #elif defined(WIN) && (HAVE_NVAPI)
17053
17054 hm_NvAPI_Unload (data.hm_nv);
17055
17056 nvapi_close (data.hm_nv);
17057
17058 #endif
17059
17060 data.hm_nv = NULL;
17061 }
17062 #endif
17063
17064 #ifdef HAVE_ADL
17065 if (data.hm_amd)
17066 {
17067 hm_ADL_Main_Control_Destroy (data.hm_amd);
17068
17069 adl_close (data.hm_amd);
17070 data.hm_amd = NULL;
17071 }
17072 #endif
17073 }
17074 #endif // HAVE_HWMON
17075
17076 // free memory
17077
17078 local_free (masks);
17079
17080 local_free (dictstat_base);
17081
17082 for (uint pot_pos = 0; pot_pos < pot_cnt; pot_pos++)
17083 {
17084 pot_t *pot_ptr = &pot[pot_pos];
17085
17086 hash_t *hash = &pot_ptr->hash;
17087
17088 local_free (hash->digest);
17089
17090 if (isSalted)
17091 {
17092 local_free (hash->salt);
17093 }
17094 }
17095
17096 local_free (pot);
17097
17098 local_free (all_kernel_rules_cnt);
17099 local_free (all_kernel_rules_buf);
17100
17101 local_free (wl_data->buf);
17102 local_free (wl_data);
17103
17104 local_free (bitmap_s1_a);
17105 local_free (bitmap_s1_b);
17106 local_free (bitmap_s1_c);
17107 local_free (bitmap_s1_d);
17108 local_free (bitmap_s2_a);
17109 local_free (bitmap_s2_b);
17110 local_free (bitmap_s2_c);
17111 local_free (bitmap_s2_d);
17112
17113 #ifdef HAVE_HWMON
17114 local_free (temp_retain_fanspeed_value);
17115 #ifdef HAVE_ADL
17116 local_free (od_clock_mem_status);
17117 local_free (od_power_control_status);
17118 #endif // ADL
17119 #endif
17120
17121 global_free (devices_param);
17122
17123 global_free (kernel_rules_buf);
17124
17125 global_free (root_css_buf);
17126 global_free (markov_css_buf);
17127
17128 global_free (digests_buf);
17129 global_free (digests_shown);
17130 global_free (digests_shown_tmp);
17131
17132 global_free (salts_buf);
17133 global_free (salts_shown);
17134
17135 global_free (esalts_buf);
17136
17137 global_free (words_progress_done);
17138 global_free (words_progress_rejected);
17139 global_free (words_progress_restored);
17140
17141 if (pot_fp) fclose (pot_fp);
17142
17143 if (data.devices_status == STATUS_QUIT) break;
17144 }
17145
17146 // destroy others mutex
17147
17148 hc_thread_mutex_delete (mux_dispatcher);
17149 hc_thread_mutex_delete (mux_counter);
17150 hc_thread_mutex_delete (mux_display);
17151 hc_thread_mutex_delete (mux_adl);
17152
17153 // free memory
17154
17155 local_free (eff_restore_file);
17156 local_free (new_restore_file);
17157
17158 local_free (rd);
17159
17160 // tuning db
17161
17162 tuning_db_destroy (tuning_db);
17163
17164 // loopback
17165
17166 local_free (loopback_file);
17167
17168 if (loopback == 1) unlink (loopback_file);
17169
17170 // induction directory
17171
17172 if (induction_dir == NULL)
17173 {
17174 if (attack_mode != ATTACK_MODE_BF)
17175 {
17176 if (rmdir (induction_directory) == -1)
17177 {
17178 if (errno == ENOENT)
17179 {
17180 // good, we can ignore
17181 }
17182 else if (errno == ENOTEMPTY)
17183 {
17184 // good, we can ignore
17185 }
17186 else
17187 {
17188 log_error ("ERROR: %s: %s", induction_directory, strerror (errno));
17189
17190 return (-1);
17191 }
17192 }
17193
17194 local_free (induction_directory);
17195 }
17196 }
17197
17198 // outfile-check directory
17199
17200 if (outfile_check_dir == NULL)
17201 {
17202 if (rmdir (outfile_check_directory) == -1)
17203 {
17204 if (errno == ENOENT)
17205 {
17206 // good, we can ignore
17207 }
17208 else if (errno == ENOTEMPTY)
17209 {
17210 // good, we can ignore
17211 }
17212 else
17213 {
17214 log_error ("ERROR: %s: %s", outfile_check_directory, strerror (errno));
17215
17216 return (-1);
17217 }
17218 }
17219
17220 local_free (outfile_check_directory);
17221 }
17222
17223 time_t proc_stop;
17224
17225 time (&proc_stop);
17226
17227 logfile_top_uint (proc_start);
17228 logfile_top_uint (proc_stop);
17229
17230 logfile_top_msg ("STOP");
17231
17232 if (quiet == 0) log_info_nn ("Started: %s", ctime (&proc_start));
17233 if (quiet == 0) log_info_nn ("Stopped: %s", ctime (&proc_stop));
17234
17235 if (data.ocl) ocl_close (data.ocl);
17236
17237 if (data.devices_status == STATUS_ABORTED) return 2;
17238 if (data.devices_status == STATUS_QUIT) return 2;
17239 if (data.devices_status == STATUS_STOP_AT_CHECKPOINT) return 2;
17240 if (data.devices_status == STATUS_EXHAUSTED) return 1;
17241 if (data.devices_status == STATUS_CRACKED) return 0;
17242
17243 return -1;
17244 }