Drop -m 190, no reason to keep it
[hashcat.git] / src / shared.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 <shared.h>
14 #include <limits.h>
15
16 /**
17 * basic bit handling
18 */
19
20 u32 is_power_of_2(u32 v)
21 {
22 return (v && !(v & (v - 1)));
23 }
24
25 u32 rotl32 (const u32 a, const u32 n)
26 {
27 return ((a << n) | (a >> (32 - n)));
28 }
29
30 u32 rotr32 (const u32 a, const u32 n)
31 {
32 return ((a >> n) | (a << (32 - n)));
33 }
34
35 u64 rotl64 (const u64 a, const u64 n)
36 {
37 return ((a << n) | (a >> (64 - n)));
38 }
39
40 u64 rotr64 (const u64 a, const u64 n)
41 {
42 return ((a >> n) | (a << (64 - n)));
43 }
44
45 u32 byte_swap_32 (const u32 n)
46 {
47 return (n & 0xff000000) >> 24
48 | (n & 0x00ff0000) >> 8
49 | (n & 0x0000ff00) << 8
50 | (n & 0x000000ff) << 24;
51 }
52
53 u64 byte_swap_64 (const u64 n)
54 {
55 return (n & 0xff00000000000000ULL) >> 56
56 | (n & 0x00ff000000000000ULL) >> 40
57 | (n & 0x0000ff0000000000ULL) >> 24
58 | (n & 0x000000ff00000000ULL) >> 8
59 | (n & 0x00000000ff000000ULL) << 8
60 | (n & 0x0000000000ff0000ULL) << 24
61 | (n & 0x000000000000ff00ULL) << 40
62 | (n & 0x00000000000000ffULL) << 56;
63 }
64
65 /**
66 * ciphers for use on cpu
67 */
68
69 #include "cpu-des.c"
70 #include "cpu-aes.c"
71
72 /**
73 * hashes for use on cpu
74 */
75
76 #include "cpu-md5.c"
77 #include "cpu-sha1.c"
78 #include "cpu-sha256.c"
79
80 /**
81 * logging
82 */
83
84 int last_len = 0;
85
86 int log_final (FILE *fp, const char *fmt, va_list ap)
87 {
88 if (last_len)
89 {
90 fputc ('\r', fp);
91
92 for (int i = 0; i < last_len; i++)
93 {
94 fputc (' ', fp);
95 }
96
97 fputc ('\r', fp);
98 }
99
100 char s[4096] = { 0 };
101
102 int max_len = (int) sizeof (s);
103
104 int len = vsnprintf (s, max_len, fmt, ap);
105
106 if (len > max_len) len = max_len;
107
108 fwrite (s, len, 1, fp);
109
110 fflush (fp);
111
112 last_len = len;
113
114 return len;
115 }
116
117 int log_out_nn (FILE *fp, const char *fmt, ...)
118 {
119 if (SUPPRESS_OUTPUT) return 0;
120
121 va_list ap;
122
123 va_start (ap, fmt);
124
125 const int len = log_final (fp, fmt, ap);
126
127 va_end (ap);
128
129 return len;
130 }
131
132 int log_info_nn (const char *fmt, ...)
133 {
134 if (SUPPRESS_OUTPUT) return 0;
135
136 va_list ap;
137
138 va_start (ap, fmt);
139
140 const int len = log_final (stdout, fmt, ap);
141
142 va_end (ap);
143
144 return len;
145 }
146
147 int log_error_nn (const char *fmt, ...)
148 {
149 if (SUPPRESS_OUTPUT) return 0;
150
151 va_list ap;
152
153 va_start (ap, fmt);
154
155 const int len = log_final (stderr, fmt, ap);
156
157 va_end (ap);
158
159 return len;
160 }
161
162 int log_out (FILE *fp, const char *fmt, ...)
163 {
164 if (SUPPRESS_OUTPUT) return 0;
165
166 va_list ap;
167
168 va_start (ap, fmt);
169
170 const int len = log_final (fp, fmt, ap);
171
172 va_end (ap);
173
174 fputc ('\n', fp);
175
176 last_len = 0;
177
178 return len;
179 }
180
181 int log_info (const char *fmt, ...)
182 {
183 if (SUPPRESS_OUTPUT) return 0;
184
185 va_list ap;
186
187 va_start (ap, fmt);
188
189 const int len = log_final (stdout, fmt, ap);
190
191 va_end (ap);
192
193 fputc ('\n', stdout);
194
195 last_len = 0;
196
197 return len;
198 }
199
200 int log_error (const char *fmt, ...)
201 {
202 if (SUPPRESS_OUTPUT) return 0;
203
204 fputc ('\n', stderr);
205 fputc ('\n', stderr);
206
207 va_list ap;
208
209 va_start (ap, fmt);
210
211 const int len = log_final (stderr, fmt, ap);
212
213 va_end (ap);
214
215 fputc ('\n', stderr);
216 fputc ('\n', stderr);
217
218 last_len = 0;
219
220 return len;
221 }
222
223 /**
224 * converter
225 */
226
227 u8 int_to_base32 (const u8 c)
228 {
229 static const u8 tbl[0x20] =
230 {
231 0x41, 0x42, 0x43, 0x44, 0x45, 0x46, 0x47, 0x48, 0x49, 0x4a, 0x4b, 0x4c, 0x4d, 0x4e, 0x4f, 0x50,
232 0x51, 0x52, 0x53, 0x54, 0x55, 0x56, 0x57, 0x58, 0x59, 0x5a, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37,
233 };
234
235 return tbl[c];
236 }
237
238 u8 base32_to_int (const u8 c)
239 {
240 if ((c >= 'A') && (c <= 'Z')) return c - 'A';
241 else if ((c >= '2') && (c <= '7')) return c - '2' + 26;
242
243 return 0;
244 }
245
246 u8 int_to_itoa32 (const u8 c)
247 {
248 static const u8 tbl[0x20] =
249 {
250 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39, 0x61, 0x62, 0x63, 0x64, 0x65, 0x66,
251 0x67, 0x68, 0x69, 0x6a, 0x6b, 0x6c, 0x6d, 0x6e, 0x6f, 0x70, 0x71, 0x72, 0x73, 0x74, 0x75, 0x76,
252 };
253
254 return tbl[c];
255 }
256
257 u8 itoa32_to_int (const u8 c)
258 {
259 if ((c >= '0') && (c <= '9')) return c - '0';
260 else if ((c >= 'a') && (c <= 'v')) return c - 'a' + 10;
261
262 return 0;
263 }
264
265 u8 int_to_itoa64 (const u8 c)
266 {
267 static const u8 tbl[0x40] =
268 {
269 0x2e, 0x2f, 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39, 0x41, 0x42, 0x43, 0x44,
270 0x45, 0x46, 0x47, 0x48, 0x49, 0x4a, 0x4b, 0x4c, 0x4d, 0x4e, 0x4f, 0x50, 0x51, 0x52, 0x53, 0x54,
271 0x55, 0x56, 0x57, 0x58, 0x59, 0x5a, 0x61, 0x62, 0x63, 0x64, 0x65, 0x66, 0x67, 0x68, 0x69, 0x6a,
272 0x6b, 0x6c, 0x6d, 0x6e, 0x6f, 0x70, 0x71, 0x72, 0x73, 0x74, 0x75, 0x76, 0x77, 0x78, 0x79, 0x7a,
273 };
274
275 return tbl[c];
276 }
277
278 u8 itoa64_to_int (const u8 c)
279 {
280 static const u8 tbl[0x100] =
281 {
282 0x12, 0x13, 0x14, 0x15, 0x16, 0x17, 0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f, 0x20, 0x21,
283 0x22, 0x23, 0x24, 0x25, 0x26, 0x27, 0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f, 0x30, 0x31,
284 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x3e, 0x3f, 0x00, 0x01,
285 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a,
286 0x0b, 0x0c, 0x0d, 0x0e, 0x0f, 0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17, 0x18, 0x19, 0x1a,
287 0x1b, 0x1c, 0x1d, 0x1e, 0x1f, 0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x20, 0x21, 0x22, 0x23, 0x24,
288 0x25, 0x26, 0x27, 0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f, 0x30, 0x31, 0x32, 0x33, 0x34,
289 0x35, 0x36, 0x37, 0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x3e, 0x3f, 0x00, 0x01, 0x02, 0x03, 0x04,
290 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f, 0x10, 0x11, 0x12, 0x13, 0x14,
291 0x15, 0x16, 0x17, 0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f, 0x20, 0x21, 0x22, 0x23, 0x24,
292 0x25, 0x26, 0x27, 0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f, 0x30, 0x31, 0x32, 0x33, 0x34,
293 0x35, 0x36, 0x37, 0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x3e, 0x3f, 0x00, 0x01, 0x02, 0x03, 0x04,
294 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f, 0x10, 0x11, 0x12, 0x13, 0x14,
295 0x15, 0x16, 0x17, 0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f, 0x20, 0x21, 0x22, 0x23, 0x24,
296 0x25, 0x26, 0x27, 0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f, 0x30, 0x31, 0x32, 0x33, 0x34,
297 0x35, 0x36, 0x37, 0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x3e, 0x3f, 0x00, 0x01, 0x02, 0x03, 0x04,
298 };
299
300 return tbl[c];
301 }
302
303 u8 int_to_base64 (const u8 c)
304 {
305 static const u8 tbl[0x40] =
306 {
307 0x41, 0x42, 0x43, 0x44, 0x45, 0x46, 0x47, 0x48, 0x49, 0x4a, 0x4b, 0x4c, 0x4d, 0x4e, 0x4f, 0x50,
308 0x51, 0x52, 0x53, 0x54, 0x55, 0x56, 0x57, 0x58, 0x59, 0x5a, 0x61, 0x62, 0x63, 0x64, 0x65, 0x66,
309 0x67, 0x68, 0x69, 0x6a, 0x6b, 0x6c, 0x6d, 0x6e, 0x6f, 0x70, 0x71, 0x72, 0x73, 0x74, 0x75, 0x76,
310 0x77, 0x78, 0x79, 0x7a, 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39, 0x2b, 0x2f,
311 };
312
313 return tbl[c];
314 }
315
316 u8 base64_to_int (const u8 c)
317 {
318 static const u8 tbl[0x100] =
319 {
320 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
321 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
322 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x3e, 0x00, 0x00, 0x00, 0x3f,
323 0x34, 0x35, 0x36, 0x37, 0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
324 0x00, 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e,
325 0x0f, 0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17, 0x18, 0x19, 0x00, 0x00, 0x00, 0x00, 0x00,
326 0x00, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f, 0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27, 0x28,
327 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f, 0x30, 0x31, 0x32, 0x33, 0x00, 0x00, 0x00, 0x00, 0x00,
328 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
329 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
330 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
331 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
332 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
333 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
334 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
335 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
336 };
337
338 return tbl[c];
339 }
340
341 u8 int_to_bf64 (const u8 c)
342 {
343 static const u8 tbl[0x40] =
344 {
345 0x2e, 0x2f, 0x41, 0x42, 0x43, 0x44, 0x45, 0x46, 0x47, 0x48, 0x49, 0x4a, 0x4b, 0x4c, 0x4d, 0x4e,
346 0x4f, 0x50, 0x51, 0x52, 0x53, 0x54, 0x55, 0x56, 0x57, 0x58, 0x59, 0x5a, 0x61, 0x62, 0x63, 0x64,
347 0x65, 0x66, 0x67, 0x68, 0x69, 0x6a, 0x6b, 0x6c, 0x6d, 0x6e, 0x6f, 0x70, 0x71, 0x72, 0x73, 0x74,
348 0x75, 0x76, 0x77, 0x78, 0x79, 0x7a, 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39,
349 };
350
351 return tbl[c];
352 }
353
354 u8 bf64_to_int (const u8 c)
355 {
356 static const u8 tbl[0x100] =
357 {
358 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
359 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
360 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x01,
361 0x36, 0x37, 0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x3e, 0x3f, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
362 0x00, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f, 0x10,
363 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17, 0x18, 0x19, 0x1a, 0x1b, 0x00, 0x00, 0x00, 0x00, 0x00,
364 0x00, 0x1c, 0x1d, 0x1e, 0x1f, 0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27, 0x28, 0x29, 0x2a,
365 0x2b, 0x2c, 0x2d, 0x2e, 0x2f, 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x00, 0x00, 0x00, 0x00, 0x00,
366 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
367 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
368 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
369 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
370 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
371 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
372 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
373 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
374 };
375
376 return tbl[c];
377 }
378
379 u8 int_to_lotus64 (const u8 c)
380 {
381 if (c < 10) return '0' + c;
382 else if (c < 36) return 'A' + c - 10;
383 else if (c < 62) return 'a' + c - 36;
384 else if (c == 62) return '+';
385 else if (c == 63) return '/';
386
387 return 0;
388 }
389
390 u8 lotus64_to_int (const u8 c)
391 {
392 if ((c >= '0') && (c <= '9')) return c - '0';
393 else if ((c >= 'A') && (c <= 'Z')) return c - 'A' + 10;
394 else if ((c >= 'a') && (c <= 'z')) return c - 'a' + 36;
395 else if (c == '+') return 62;
396 else if (c == '/') return 63;
397 else
398
399 return 0;
400 }
401
402 int base32_decode (u8 (*f) (const u8), const u8 *in_buf, int in_len, u8 *out_buf)
403 {
404 const u8 *in_ptr = in_buf;
405
406 u8 *out_ptr = out_buf;
407
408 for (int i = 0; i < in_len; i += 8)
409 {
410 const u8 out_val0 = f (in_ptr[0] & 0x7f);
411 const u8 out_val1 = f (in_ptr[1] & 0x7f);
412 const u8 out_val2 = f (in_ptr[2] & 0x7f);
413 const u8 out_val3 = f (in_ptr[3] & 0x7f);
414 const u8 out_val4 = f (in_ptr[4] & 0x7f);
415 const u8 out_val5 = f (in_ptr[5] & 0x7f);
416 const u8 out_val6 = f (in_ptr[6] & 0x7f);
417 const u8 out_val7 = f (in_ptr[7] & 0x7f);
418
419 out_ptr[0] = ((out_val0 << 3) & 0xf8) | ((out_val1 >> 2) & 0x07);
420 out_ptr[1] = ((out_val1 << 6) & 0xc0) | ((out_val2 << 1) & 0x3e) | ((out_val3 >> 4) & 0x01);
421 out_ptr[2] = ((out_val3 << 4) & 0xf0) | ((out_val4 >> 1) & 0x0f);
422 out_ptr[3] = ((out_val4 << 7) & 0x80) | ((out_val5 << 2) & 0x7c) | ((out_val6 >> 3) & 0x03);
423 out_ptr[4] = ((out_val6 << 5) & 0xe0) | ((out_val7 >> 0) & 0x1f);
424
425 in_ptr += 8;
426 out_ptr += 5;
427 }
428
429 for (int i = 0; i < in_len; i++)
430 {
431 if (in_buf[i] != '=') continue;
432
433 in_len = i;
434 }
435
436 int out_len = (in_len * 5) / 8;
437
438 return out_len;
439 }
440
441 int base32_encode (u8 (*f) (const u8), const u8 *in_buf, int in_len, u8 *out_buf)
442 {
443 const u8 *in_ptr = in_buf;
444
445 u8 *out_ptr = out_buf;
446
447 for (int i = 0; i < in_len; i += 5)
448 {
449 const u8 out_val0 = f ( ((in_ptr[0] >> 3) & 0x1f));
450 const u8 out_val1 = f (((in_ptr[0] << 2) & 0x1c) | ((in_ptr[1] >> 6) & 0x03));
451 const u8 out_val2 = f ( ((in_ptr[1] >> 1) & 0x1f));
452 const u8 out_val3 = f (((in_ptr[1] << 4) & 0x10) | ((in_ptr[2] >> 4) & 0x0f));
453 const u8 out_val4 = f (((in_ptr[2] << 1) & 0x1e) | ((in_ptr[3] >> 7) & 0x01));
454 const u8 out_val5 = f ( ((in_ptr[3] >> 2) & 0x1f));
455 const u8 out_val6 = f (((in_ptr[3] << 3) & 0x18) | ((in_ptr[4] >> 5) & 0x07));
456 const u8 out_val7 = f ( ((in_ptr[4] >> 0) & 0x1f));
457
458 out_ptr[0] = out_val0 & 0x7f;
459 out_ptr[1] = out_val1 & 0x7f;
460 out_ptr[2] = out_val2 & 0x7f;
461 out_ptr[3] = out_val3 & 0x7f;
462 out_ptr[4] = out_val4 & 0x7f;
463 out_ptr[5] = out_val5 & 0x7f;
464 out_ptr[6] = out_val6 & 0x7f;
465 out_ptr[7] = out_val7 & 0x7f;
466
467 in_ptr += 5;
468 out_ptr += 8;
469 }
470
471 int out_len = (int) (((0.5 + (float) in_len) * 8) / 5); // ceil (in_len * 8 / 5)
472
473 while (out_len % 8)
474 {
475 out_buf[out_len] = '=';
476
477 out_len++;
478 }
479
480 return out_len;
481 }
482
483 int base64_decode (u8 (*f) (const u8), const u8 *in_buf, int in_len, u8 *out_buf)
484 {
485 const u8 *in_ptr = in_buf;
486
487 u8 *out_ptr = out_buf;
488
489 for (int i = 0; i < in_len; i += 4)
490 {
491 const u8 out_val0 = f (in_ptr[0] & 0x7f);
492 const u8 out_val1 = f (in_ptr[1] & 0x7f);
493 const u8 out_val2 = f (in_ptr[2] & 0x7f);
494 const u8 out_val3 = f (in_ptr[3] & 0x7f);
495
496 out_ptr[0] = ((out_val0 << 2) & 0xfc) | ((out_val1 >> 4) & 0x03);
497 out_ptr[1] = ((out_val1 << 4) & 0xf0) | ((out_val2 >> 2) & 0x0f);
498 out_ptr[2] = ((out_val2 << 6) & 0xc0) | ((out_val3 >> 0) & 0x3f);
499
500 in_ptr += 4;
501 out_ptr += 3;
502 }
503
504 for (int i = 0; i < in_len; i++)
505 {
506 if (in_buf[i] != '=') continue;
507
508 in_len = i;
509 }
510
511 int out_len = (in_len * 6) / 8;
512
513 return out_len;
514 }
515
516 int base64_encode (u8 (*f) (const u8), const u8 *in_buf, int in_len, u8 *out_buf)
517 {
518 const u8 *in_ptr = in_buf;
519
520 u8 *out_ptr = out_buf;
521
522 for (int i = 0; i < in_len; i += 3)
523 {
524 const u8 out_val0 = f ( ((in_ptr[0] >> 2) & 0x3f));
525 const u8 out_val1 = f (((in_ptr[0] << 4) & 0x30) | ((in_ptr[1] >> 4) & 0x0f));
526 const u8 out_val2 = f (((in_ptr[1] << 2) & 0x3c) | ((in_ptr[2] >> 6) & 0x03));
527 const u8 out_val3 = f ( ((in_ptr[2] >> 0) & 0x3f));
528
529 out_ptr[0] = out_val0 & 0x7f;
530 out_ptr[1] = out_val1 & 0x7f;
531 out_ptr[2] = out_val2 & 0x7f;
532 out_ptr[3] = out_val3 & 0x7f;
533
534 in_ptr += 3;
535 out_ptr += 4;
536 }
537
538 int out_len = (int) (((0.5 + (float) in_len) * 8) / 6); // ceil (in_len * 8 / 6)
539
540 while (out_len % 4)
541 {
542 out_buf[out_len] = '=';
543
544 out_len++;
545 }
546
547 return out_len;
548 }
549
550 int is_valid_hex_char (const u8 c)
551 {
552 if ((c >= '0') && (c <= '9')) return 1;
553 if ((c >= 'A') && (c <= 'F')) return 1;
554 if ((c >= 'a') && (c <= 'f')) return 1;
555
556 return 0;
557 }
558
559 u8 hex_convert (const u8 c)
560 {
561 return (c & 15) + (c >> 6) * 9;
562 }
563
564 u8 hex_to_u8 (const u8 hex[2])
565 {
566 u8 v = 0;
567
568 v |= (hex_convert (hex[1]) << 0);
569 v |= (hex_convert (hex[0]) << 4);
570
571 return (v);
572 }
573
574 u32 hex_to_u32 (const u8 hex[8])
575 {
576 u32 v = 0;
577
578 v |= ((u32) hex_convert (hex[7])) << 0;
579 v |= ((u32) hex_convert (hex[6])) << 4;
580 v |= ((u32) hex_convert (hex[5])) << 8;
581 v |= ((u32) hex_convert (hex[4])) << 12;
582 v |= ((u32) hex_convert (hex[3])) << 16;
583 v |= ((u32) hex_convert (hex[2])) << 20;
584 v |= ((u32) hex_convert (hex[1])) << 24;
585 v |= ((u32) hex_convert (hex[0])) << 28;
586
587 return (v);
588 }
589
590 u64 hex_to_u64 (const u8 hex[16])
591 {
592 u64 v = 0;
593
594 v |= ((u64) hex_convert (hex[15]) << 0);
595 v |= ((u64) hex_convert (hex[14]) << 4);
596 v |= ((u64) hex_convert (hex[13]) << 8);
597 v |= ((u64) hex_convert (hex[12]) << 12);
598 v |= ((u64) hex_convert (hex[11]) << 16);
599 v |= ((u64) hex_convert (hex[10]) << 20);
600 v |= ((u64) hex_convert (hex[ 9]) << 24);
601 v |= ((u64) hex_convert (hex[ 8]) << 28);
602 v |= ((u64) hex_convert (hex[ 7]) << 32);
603 v |= ((u64) hex_convert (hex[ 6]) << 36);
604 v |= ((u64) hex_convert (hex[ 5]) << 40);
605 v |= ((u64) hex_convert (hex[ 4]) << 44);
606 v |= ((u64) hex_convert (hex[ 3]) << 48);
607 v |= ((u64) hex_convert (hex[ 2]) << 52);
608 v |= ((u64) hex_convert (hex[ 1]) << 56);
609 v |= ((u64) hex_convert (hex[ 0]) << 60);
610
611 return (v);
612 }
613
614 void bin_to_hex_lower (const u32 v, u8 hex[8])
615 {
616 hex[0] = v >> 28 & 15;
617 hex[1] = v >> 24 & 15;
618 hex[2] = v >> 20 & 15;
619 hex[3] = v >> 16 & 15;
620 hex[4] = v >> 12 & 15;
621 hex[5] = v >> 8 & 15;
622 hex[6] = v >> 4 & 15;
623 hex[7] = v >> 0 & 15;
624
625 u32 add;
626
627 hex[0] += 6; add = ((hex[0] & 0x10) >> 4) * 39; hex[0] += 42 + add;
628 hex[1] += 6; add = ((hex[1] & 0x10) >> 4) * 39; hex[1] += 42 + add;
629 hex[2] += 6; add = ((hex[2] & 0x10) >> 4) * 39; hex[2] += 42 + add;
630 hex[3] += 6; add = ((hex[3] & 0x10) >> 4) * 39; hex[3] += 42 + add;
631 hex[4] += 6; add = ((hex[4] & 0x10) >> 4) * 39; hex[4] += 42 + add;
632 hex[5] += 6; add = ((hex[5] & 0x10) >> 4) * 39; hex[5] += 42 + add;
633 hex[6] += 6; add = ((hex[6] & 0x10) >> 4) * 39; hex[6] += 42 + add;
634 hex[7] += 6; add = ((hex[7] & 0x10) >> 4) * 39; hex[7] += 42 + add;
635 }
636
637 /**
638 * decoder
639 */
640
641 static void AES128_decrypt_cbc (const u32 key[4], const u32 iv[4], const u32 in[16], u32 out[16])
642 {
643 AES_KEY skey;
644
645 AES_set_decrypt_key ((const u8 *) key, 128, &skey);
646
647 u32 _iv[4] = { 0 };
648
649 _iv[0] = iv[0];
650 _iv[1] = iv[1];
651 _iv[2] = iv[2];
652 _iv[3] = iv[3];
653
654 for (int i = 0; i < 16; i += 4)
655 {
656 u32 _in[4] = { 0 };
657 u32 _out[4] = { 0 };
658
659 _in[0] = in[i + 0];
660 _in[1] = in[i + 1];
661 _in[2] = in[i + 2];
662 _in[3] = in[i + 3];
663
664 AES_decrypt (&skey, (const u8 *) _in, (u8 *) _out);
665
666 _out[0] ^= _iv[0];
667 _out[1] ^= _iv[1];
668 _out[2] ^= _iv[2];
669 _out[3] ^= _iv[3];
670
671 out[i + 0] = _out[0];
672 out[i + 1] = _out[1];
673 out[i + 2] = _out[2];
674 out[i + 3] = _out[3];
675
676 _iv[0] = _in[0];
677 _iv[1] = _in[1];
678 _iv[2] = _in[2];
679 _iv[3] = _in[3];
680 }
681 }
682
683 static void juniper_decrypt_hash (char *in, char *out)
684 {
685 // base64 decode
686
687 u8 base64_buf[100] = { 0 };
688
689 base64_decode (base64_to_int, (const u8 *) in, DISPLAY_LEN_MIN_501, base64_buf);
690
691 // iv stuff
692
693 u32 juniper_iv[4] = { 0 };
694
695 memcpy (juniper_iv, base64_buf, 12);
696
697 memcpy (out, juniper_iv, 12);
698
699 // reversed key
700
701 u32 juniper_key[4] = { 0 };
702
703 juniper_key[0] = byte_swap_32 (0xa6707a7e);
704 juniper_key[1] = byte_swap_32 (0x8df91059);
705 juniper_key[2] = byte_swap_32 (0xdea70ae5);
706 juniper_key[3] = byte_swap_32 (0x2f9c2442);
707
708 // AES decrypt
709
710 u32 *in_ptr = (u32 *) (base64_buf + 12);
711 u32 *out_ptr = (u32 *) (out + 12);
712
713 AES128_decrypt_cbc (juniper_key, juniper_iv, in_ptr, out_ptr);
714 }
715
716 void phpass_decode (u8 digest[16], u8 buf[22])
717 {
718 int l;
719
720 l = itoa64_to_int (buf[ 0]) << 0;
721 l |= itoa64_to_int (buf[ 1]) << 6;
722 l |= itoa64_to_int (buf[ 2]) << 12;
723 l |= itoa64_to_int (buf[ 3]) << 18;
724
725 digest[ 0] = (l >> 0) & 0xff;
726 digest[ 1] = (l >> 8) & 0xff;
727 digest[ 2] = (l >> 16) & 0xff;
728
729 l = itoa64_to_int (buf[ 4]) << 0;
730 l |= itoa64_to_int (buf[ 5]) << 6;
731 l |= itoa64_to_int (buf[ 6]) << 12;
732 l |= itoa64_to_int (buf[ 7]) << 18;
733
734 digest[ 3] = (l >> 0) & 0xff;
735 digest[ 4] = (l >> 8) & 0xff;
736 digest[ 5] = (l >> 16) & 0xff;
737
738 l = itoa64_to_int (buf[ 8]) << 0;
739 l |= itoa64_to_int (buf[ 9]) << 6;
740 l |= itoa64_to_int (buf[10]) << 12;
741 l |= itoa64_to_int (buf[11]) << 18;
742
743 digest[ 6] = (l >> 0) & 0xff;
744 digest[ 7] = (l >> 8) & 0xff;
745 digest[ 8] = (l >> 16) & 0xff;
746
747 l = itoa64_to_int (buf[12]) << 0;
748 l |= itoa64_to_int (buf[13]) << 6;
749 l |= itoa64_to_int (buf[14]) << 12;
750 l |= itoa64_to_int (buf[15]) << 18;
751
752 digest[ 9] = (l >> 0) & 0xff;
753 digest[10] = (l >> 8) & 0xff;
754 digest[11] = (l >> 16) & 0xff;
755
756 l = itoa64_to_int (buf[16]) << 0;
757 l |= itoa64_to_int (buf[17]) << 6;
758 l |= itoa64_to_int (buf[18]) << 12;
759 l |= itoa64_to_int (buf[19]) << 18;
760
761 digest[12] = (l >> 0) & 0xff;
762 digest[13] = (l >> 8) & 0xff;
763 digest[14] = (l >> 16) & 0xff;
764
765 l = itoa64_to_int (buf[20]) << 0;
766 l |= itoa64_to_int (buf[21]) << 6;
767
768 digest[15] = (l >> 0) & 0xff;
769 }
770
771 void phpass_encode (u8 digest[16], u8 buf[22])
772 {
773 int l;
774
775 l = (digest[ 0] << 0) | (digest[ 1] << 8) | (digest[ 2] << 16);
776
777 buf[ 0] = int_to_itoa64 (l & 0x3f); l >>= 6;
778 buf[ 1] = int_to_itoa64 (l & 0x3f); l >>= 6;
779 buf[ 2] = int_to_itoa64 (l & 0x3f); l >>= 6;
780 buf[ 3] = int_to_itoa64 (l & 0x3f);
781
782 l = (digest[ 3] << 0) | (digest[ 4] << 8) | (digest[ 5] << 16);
783
784 buf[ 4] = int_to_itoa64 (l & 0x3f); l >>= 6;
785 buf[ 5] = int_to_itoa64 (l & 0x3f); l >>= 6;
786 buf[ 6] = int_to_itoa64 (l & 0x3f); l >>= 6;
787 buf[ 7] = int_to_itoa64 (l & 0x3f);
788
789 l = (digest[ 6] << 0) | (digest[ 7] << 8) | (digest[ 8] << 16);
790
791 buf[ 8] = int_to_itoa64 (l & 0x3f); l >>= 6;
792 buf[ 9] = int_to_itoa64 (l & 0x3f); l >>= 6;
793 buf[10] = int_to_itoa64 (l & 0x3f); l >>= 6;
794 buf[11] = int_to_itoa64 (l & 0x3f);
795
796 l = (digest[ 9] << 0) | (digest[10] << 8) | (digest[11] << 16);
797
798 buf[12] = int_to_itoa64 (l & 0x3f); l >>= 6;
799 buf[13] = int_to_itoa64 (l & 0x3f); l >>= 6;
800 buf[14] = int_to_itoa64 (l & 0x3f); l >>= 6;
801 buf[15] = int_to_itoa64 (l & 0x3f);
802
803 l = (digest[12] << 0) | (digest[13] << 8) | (digest[14] << 16);
804
805 buf[16] = int_to_itoa64 (l & 0x3f); l >>= 6;
806 buf[17] = int_to_itoa64 (l & 0x3f); l >>= 6;
807 buf[18] = int_to_itoa64 (l & 0x3f); l >>= 6;
808 buf[19] = int_to_itoa64 (l & 0x3f);
809
810 l = (digest[15] << 0);
811
812 buf[20] = int_to_itoa64 (l & 0x3f); l >>= 6;
813 buf[21] = int_to_itoa64 (l & 0x3f);
814 }
815
816 void md5crypt_decode (u8 digest[16], u8 buf[22])
817 {
818 int l;
819
820 l = itoa64_to_int (buf[ 0]) << 0;
821 l |= itoa64_to_int (buf[ 1]) << 6;
822 l |= itoa64_to_int (buf[ 2]) << 12;
823 l |= itoa64_to_int (buf[ 3]) << 18;
824
825 digest[ 0] = (l >> 16) & 0xff;
826 digest[ 6] = (l >> 8) & 0xff;
827 digest[12] = (l >> 0) & 0xff;
828
829 l = itoa64_to_int (buf[ 4]) << 0;
830 l |= itoa64_to_int (buf[ 5]) << 6;
831 l |= itoa64_to_int (buf[ 6]) << 12;
832 l |= itoa64_to_int (buf[ 7]) << 18;
833
834 digest[ 1] = (l >> 16) & 0xff;
835 digest[ 7] = (l >> 8) & 0xff;
836 digest[13] = (l >> 0) & 0xff;
837
838 l = itoa64_to_int (buf[ 8]) << 0;
839 l |= itoa64_to_int (buf[ 9]) << 6;
840 l |= itoa64_to_int (buf[10]) << 12;
841 l |= itoa64_to_int (buf[11]) << 18;
842
843 digest[ 2] = (l >> 16) & 0xff;
844 digest[ 8] = (l >> 8) & 0xff;
845 digest[14] = (l >> 0) & 0xff;
846
847 l = itoa64_to_int (buf[12]) << 0;
848 l |= itoa64_to_int (buf[13]) << 6;
849 l |= itoa64_to_int (buf[14]) << 12;
850 l |= itoa64_to_int (buf[15]) << 18;
851
852 digest[ 3] = (l >> 16) & 0xff;
853 digest[ 9] = (l >> 8) & 0xff;
854 digest[15] = (l >> 0) & 0xff;
855
856 l = itoa64_to_int (buf[16]) << 0;
857 l |= itoa64_to_int (buf[17]) << 6;
858 l |= itoa64_to_int (buf[18]) << 12;
859 l |= itoa64_to_int (buf[19]) << 18;
860
861 digest[ 4] = (l >> 16) & 0xff;
862 digest[10] = (l >> 8) & 0xff;
863 digest[ 5] = (l >> 0) & 0xff;
864
865 l = itoa64_to_int (buf[20]) << 0;
866 l |= itoa64_to_int (buf[21]) << 6;
867
868 digest[11] = (l >> 0) & 0xff;
869 }
870
871 void md5crypt_encode (u8 digest[16], u8 buf[22])
872 {
873 int l;
874
875 l = (digest[ 0] << 16) | (digest[ 6] << 8) | (digest[12] << 0);
876
877 buf[ 0] = int_to_itoa64 (l & 0x3f); l >>= 6;
878 buf[ 1] = int_to_itoa64 (l & 0x3f); l >>= 6;
879 buf[ 2] = int_to_itoa64 (l & 0x3f); l >>= 6;
880 buf[ 3] = int_to_itoa64 (l & 0x3f); l >>= 6;
881
882 l = (digest[ 1] << 16) | (digest[ 7] << 8) | (digest[13] << 0);
883
884 buf[ 4] = int_to_itoa64 (l & 0x3f); l >>= 6;
885 buf[ 5] = int_to_itoa64 (l & 0x3f); l >>= 6;
886 buf[ 6] = int_to_itoa64 (l & 0x3f); l >>= 6;
887 buf[ 7] = int_to_itoa64 (l & 0x3f); l >>= 6;
888
889 l = (digest[ 2] << 16) | (digest[ 8] << 8) | (digest[14] << 0);
890
891 buf[ 8] = int_to_itoa64 (l & 0x3f); l >>= 6;
892 buf[ 9] = int_to_itoa64 (l & 0x3f); l >>= 6;
893 buf[10] = int_to_itoa64 (l & 0x3f); l >>= 6;
894 buf[11] = int_to_itoa64 (l & 0x3f); l >>= 6;
895
896 l = (digest[ 3] << 16) | (digest[ 9] << 8) | (digest[15] << 0);
897
898 buf[12] = int_to_itoa64 (l & 0x3f); l >>= 6;
899 buf[13] = int_to_itoa64 (l & 0x3f); l >>= 6;
900 buf[14] = int_to_itoa64 (l & 0x3f); l >>= 6;
901 buf[15] = int_to_itoa64 (l & 0x3f); l >>= 6;
902
903 l = (digest[ 4] << 16) | (digest[10] << 8) | (digest[ 5] << 0);
904
905 buf[16] = int_to_itoa64 (l & 0x3f); l >>= 6;
906 buf[17] = int_to_itoa64 (l & 0x3f); l >>= 6;
907 buf[18] = int_to_itoa64 (l & 0x3f); l >>= 6;
908 buf[19] = int_to_itoa64 (l & 0x3f); l >>= 6;
909
910 l = (digest[11] << 0);
911
912 buf[20] = int_to_itoa64 (l & 0x3f); l >>= 6;
913 buf[21] = int_to_itoa64 (l & 0x3f); l >>= 6;
914 }
915
916 void sha512crypt_decode (u8 digest[64], u8 buf[86])
917 {
918 int l;
919
920 l = itoa64_to_int (buf[ 0]) << 0;
921 l |= itoa64_to_int (buf[ 1]) << 6;
922 l |= itoa64_to_int (buf[ 2]) << 12;
923 l |= itoa64_to_int (buf[ 3]) << 18;
924
925 digest[ 0] = (l >> 16) & 0xff;
926 digest[21] = (l >> 8) & 0xff;
927 digest[42] = (l >> 0) & 0xff;
928
929 l = itoa64_to_int (buf[ 4]) << 0;
930 l |= itoa64_to_int (buf[ 5]) << 6;
931 l |= itoa64_to_int (buf[ 6]) << 12;
932 l |= itoa64_to_int (buf[ 7]) << 18;
933
934 digest[22] = (l >> 16) & 0xff;
935 digest[43] = (l >> 8) & 0xff;
936 digest[ 1] = (l >> 0) & 0xff;
937
938 l = itoa64_to_int (buf[ 8]) << 0;
939 l |= itoa64_to_int (buf[ 9]) << 6;
940 l |= itoa64_to_int (buf[10]) << 12;
941 l |= itoa64_to_int (buf[11]) << 18;
942
943 digest[44] = (l >> 16) & 0xff;
944 digest[ 2] = (l >> 8) & 0xff;
945 digest[23] = (l >> 0) & 0xff;
946
947 l = itoa64_to_int (buf[12]) << 0;
948 l |= itoa64_to_int (buf[13]) << 6;
949 l |= itoa64_to_int (buf[14]) << 12;
950 l |= itoa64_to_int (buf[15]) << 18;
951
952 digest[ 3] = (l >> 16) & 0xff;
953 digest[24] = (l >> 8) & 0xff;
954 digest[45] = (l >> 0) & 0xff;
955
956 l = itoa64_to_int (buf[16]) << 0;
957 l |= itoa64_to_int (buf[17]) << 6;
958 l |= itoa64_to_int (buf[18]) << 12;
959 l |= itoa64_to_int (buf[19]) << 18;
960
961 digest[25] = (l >> 16) & 0xff;
962 digest[46] = (l >> 8) & 0xff;
963 digest[ 4] = (l >> 0) & 0xff;
964
965 l = itoa64_to_int (buf[20]) << 0;
966 l |= itoa64_to_int (buf[21]) << 6;
967 l |= itoa64_to_int (buf[22]) << 12;
968 l |= itoa64_to_int (buf[23]) << 18;
969
970 digest[47] = (l >> 16) & 0xff;
971 digest[ 5] = (l >> 8) & 0xff;
972 digest[26] = (l >> 0) & 0xff;
973
974 l = itoa64_to_int (buf[24]) << 0;
975 l |= itoa64_to_int (buf[25]) << 6;
976 l |= itoa64_to_int (buf[26]) << 12;
977 l |= itoa64_to_int (buf[27]) << 18;
978
979 digest[ 6] = (l >> 16) & 0xff;
980 digest[27] = (l >> 8) & 0xff;
981 digest[48] = (l >> 0) & 0xff;
982
983 l = itoa64_to_int (buf[28]) << 0;
984 l |= itoa64_to_int (buf[29]) << 6;
985 l |= itoa64_to_int (buf[30]) << 12;
986 l |= itoa64_to_int (buf[31]) << 18;
987
988 digest[28] = (l >> 16) & 0xff;
989 digest[49] = (l >> 8) & 0xff;
990 digest[ 7] = (l >> 0) & 0xff;
991
992 l = itoa64_to_int (buf[32]) << 0;
993 l |= itoa64_to_int (buf[33]) << 6;
994 l |= itoa64_to_int (buf[34]) << 12;
995 l |= itoa64_to_int (buf[35]) << 18;
996
997 digest[50] = (l >> 16) & 0xff;
998 digest[ 8] = (l >> 8) & 0xff;
999 digest[29] = (l >> 0) & 0xff;
1000
1001 l = itoa64_to_int (buf[36]) << 0;
1002 l |= itoa64_to_int (buf[37]) << 6;
1003 l |= itoa64_to_int (buf[38]) << 12;
1004 l |= itoa64_to_int (buf[39]) << 18;
1005
1006 digest[ 9] = (l >> 16) & 0xff;
1007 digest[30] = (l >> 8) & 0xff;
1008 digest[51] = (l >> 0) & 0xff;
1009
1010 l = itoa64_to_int (buf[40]) << 0;
1011 l |= itoa64_to_int (buf[41]) << 6;
1012 l |= itoa64_to_int (buf[42]) << 12;
1013 l |= itoa64_to_int (buf[43]) << 18;
1014
1015 digest[31] = (l >> 16) & 0xff;
1016 digest[52] = (l >> 8) & 0xff;
1017 digest[10] = (l >> 0) & 0xff;
1018
1019 l = itoa64_to_int (buf[44]) << 0;
1020 l |= itoa64_to_int (buf[45]) << 6;
1021 l |= itoa64_to_int (buf[46]) << 12;
1022 l |= itoa64_to_int (buf[47]) << 18;
1023
1024 digest[53] = (l >> 16) & 0xff;
1025 digest[11] = (l >> 8) & 0xff;
1026 digest[32] = (l >> 0) & 0xff;
1027
1028 l = itoa64_to_int (buf[48]) << 0;
1029 l |= itoa64_to_int (buf[49]) << 6;
1030 l |= itoa64_to_int (buf[50]) << 12;
1031 l |= itoa64_to_int (buf[51]) << 18;
1032
1033 digest[12] = (l >> 16) & 0xff;
1034 digest[33] = (l >> 8) & 0xff;
1035 digest[54] = (l >> 0) & 0xff;
1036
1037 l = itoa64_to_int (buf[52]) << 0;
1038 l |= itoa64_to_int (buf[53]) << 6;
1039 l |= itoa64_to_int (buf[54]) << 12;
1040 l |= itoa64_to_int (buf[55]) << 18;
1041
1042 digest[34] = (l >> 16) & 0xff;
1043 digest[55] = (l >> 8) & 0xff;
1044 digest[13] = (l >> 0) & 0xff;
1045
1046 l = itoa64_to_int (buf[56]) << 0;
1047 l |= itoa64_to_int (buf[57]) << 6;
1048 l |= itoa64_to_int (buf[58]) << 12;
1049 l |= itoa64_to_int (buf[59]) << 18;
1050
1051 digest[56] = (l >> 16) & 0xff;
1052 digest[14] = (l >> 8) & 0xff;
1053 digest[35] = (l >> 0) & 0xff;
1054
1055 l = itoa64_to_int (buf[60]) << 0;
1056 l |= itoa64_to_int (buf[61]) << 6;
1057 l |= itoa64_to_int (buf[62]) << 12;
1058 l |= itoa64_to_int (buf[63]) << 18;
1059
1060 digest[15] = (l >> 16) & 0xff;
1061 digest[36] = (l >> 8) & 0xff;
1062 digest[57] = (l >> 0) & 0xff;
1063
1064 l = itoa64_to_int (buf[64]) << 0;
1065 l |= itoa64_to_int (buf[65]) << 6;
1066 l |= itoa64_to_int (buf[66]) << 12;
1067 l |= itoa64_to_int (buf[67]) << 18;
1068
1069 digest[37] = (l >> 16) & 0xff;
1070 digest[58] = (l >> 8) & 0xff;
1071 digest[16] = (l >> 0) & 0xff;
1072
1073 l = itoa64_to_int (buf[68]) << 0;
1074 l |= itoa64_to_int (buf[69]) << 6;
1075 l |= itoa64_to_int (buf[70]) << 12;
1076 l |= itoa64_to_int (buf[71]) << 18;
1077
1078 digest[59] = (l >> 16) & 0xff;
1079 digest[17] = (l >> 8) & 0xff;
1080 digest[38] = (l >> 0) & 0xff;
1081
1082 l = itoa64_to_int (buf[72]) << 0;
1083 l |= itoa64_to_int (buf[73]) << 6;
1084 l |= itoa64_to_int (buf[74]) << 12;
1085 l |= itoa64_to_int (buf[75]) << 18;
1086
1087 digest[18] = (l >> 16) & 0xff;
1088 digest[39] = (l >> 8) & 0xff;
1089 digest[60] = (l >> 0) & 0xff;
1090
1091 l = itoa64_to_int (buf[76]) << 0;
1092 l |= itoa64_to_int (buf[77]) << 6;
1093 l |= itoa64_to_int (buf[78]) << 12;
1094 l |= itoa64_to_int (buf[79]) << 18;
1095
1096 digest[40] = (l >> 16) & 0xff;
1097 digest[61] = (l >> 8) & 0xff;
1098 digest[19] = (l >> 0) & 0xff;
1099
1100 l = itoa64_to_int (buf[80]) << 0;
1101 l |= itoa64_to_int (buf[81]) << 6;
1102 l |= itoa64_to_int (buf[82]) << 12;
1103 l |= itoa64_to_int (buf[83]) << 18;
1104
1105 digest[62] = (l >> 16) & 0xff;
1106 digest[20] = (l >> 8) & 0xff;
1107 digest[41] = (l >> 0) & 0xff;
1108
1109 l = itoa64_to_int (buf[84]) << 0;
1110 l |= itoa64_to_int (buf[85]) << 6;
1111
1112 digest[63] = (l >> 0) & 0xff;
1113 }
1114
1115 void sha512crypt_encode (u8 digest[64], u8 buf[86])
1116 {
1117 int l;
1118
1119 l = (digest[ 0] << 16) | (digest[21] << 8) | (digest[42] << 0);
1120
1121 buf[ 0] = int_to_itoa64 (l & 0x3f); l >>= 6;
1122 buf[ 1] = int_to_itoa64 (l & 0x3f); l >>= 6;
1123 buf[ 2] = int_to_itoa64 (l & 0x3f); l >>= 6;
1124 buf[ 3] = int_to_itoa64 (l & 0x3f); l >>= 6;
1125
1126 l = (digest[22] << 16) | (digest[43] << 8) | (digest[ 1] << 0);
1127
1128 buf[ 4] = int_to_itoa64 (l & 0x3f); l >>= 6;
1129 buf[ 5] = int_to_itoa64 (l & 0x3f); l >>= 6;
1130 buf[ 6] = int_to_itoa64 (l & 0x3f); l >>= 6;
1131 buf[ 7] = int_to_itoa64 (l & 0x3f); l >>= 6;
1132
1133 l = (digest[44] << 16) | (digest[ 2] << 8) | (digest[23] << 0);
1134
1135 buf[ 8] = int_to_itoa64 (l & 0x3f); l >>= 6;
1136 buf[ 9] = int_to_itoa64 (l & 0x3f); l >>= 6;
1137 buf[10] = int_to_itoa64 (l & 0x3f); l >>= 6;
1138 buf[11] = int_to_itoa64 (l & 0x3f); l >>= 6;
1139
1140 l = (digest[ 3] << 16) | (digest[24] << 8) | (digest[45] << 0);
1141
1142 buf[12] = int_to_itoa64 (l & 0x3f); l >>= 6;
1143 buf[13] = int_to_itoa64 (l & 0x3f); l >>= 6;
1144 buf[14] = int_to_itoa64 (l & 0x3f); l >>= 6;
1145 buf[15] = int_to_itoa64 (l & 0x3f); l >>= 6;
1146
1147 l = (digest[25] << 16) | (digest[46] << 8) | (digest[ 4] << 0);
1148
1149 buf[16] = int_to_itoa64 (l & 0x3f); l >>= 6;
1150 buf[17] = int_to_itoa64 (l & 0x3f); l >>= 6;
1151 buf[18] = int_to_itoa64 (l & 0x3f); l >>= 6;
1152 buf[19] = int_to_itoa64 (l & 0x3f); l >>= 6;
1153
1154 l = (digest[47] << 16) | (digest[ 5] << 8) | (digest[26] << 0);
1155
1156 buf[20] = int_to_itoa64 (l & 0x3f); l >>= 6;
1157 buf[21] = int_to_itoa64 (l & 0x3f); l >>= 6;
1158 buf[22] = int_to_itoa64 (l & 0x3f); l >>= 6;
1159 buf[23] = int_to_itoa64 (l & 0x3f); l >>= 6;
1160
1161 l = (digest[ 6] << 16) | (digest[27] << 8) | (digest[48] << 0);
1162
1163 buf[24] = int_to_itoa64 (l & 0x3f); l >>= 6;
1164 buf[25] = int_to_itoa64 (l & 0x3f); l >>= 6;
1165 buf[26] = int_to_itoa64 (l & 0x3f); l >>= 6;
1166 buf[27] = int_to_itoa64 (l & 0x3f); l >>= 6;
1167
1168 l = (digest[28] << 16) | (digest[49] << 8) | (digest[ 7] << 0);
1169
1170 buf[28] = int_to_itoa64 (l & 0x3f); l >>= 6;
1171 buf[29] = int_to_itoa64 (l & 0x3f); l >>= 6;
1172 buf[30] = int_to_itoa64 (l & 0x3f); l >>= 6;
1173 buf[31] = int_to_itoa64 (l & 0x3f); l >>= 6;
1174
1175 l = (digest[50] << 16) | (digest[ 8] << 8) | (digest[29] << 0);
1176
1177 buf[32] = int_to_itoa64 (l & 0x3f); l >>= 6;
1178 buf[33] = int_to_itoa64 (l & 0x3f); l >>= 6;
1179 buf[34] = int_to_itoa64 (l & 0x3f); l >>= 6;
1180 buf[35] = int_to_itoa64 (l & 0x3f); l >>= 6;
1181
1182 l = (digest[ 9] << 16) | (digest[30] << 8) | (digest[51] << 0);
1183
1184 buf[36] = int_to_itoa64 (l & 0x3f); l >>= 6;
1185 buf[37] = int_to_itoa64 (l & 0x3f); l >>= 6;
1186 buf[38] = int_to_itoa64 (l & 0x3f); l >>= 6;
1187 buf[39] = int_to_itoa64 (l & 0x3f); l >>= 6;
1188
1189 l = (digest[31] << 16) | (digest[52] << 8) | (digest[10] << 0);
1190
1191 buf[40] = int_to_itoa64 (l & 0x3f); l >>= 6;
1192 buf[41] = int_to_itoa64 (l & 0x3f); l >>= 6;
1193 buf[42] = int_to_itoa64 (l & 0x3f); l >>= 6;
1194 buf[43] = int_to_itoa64 (l & 0x3f); l >>= 6;
1195
1196 l = (digest[53] << 16) | (digest[11] << 8) | (digest[32] << 0);
1197
1198 buf[44] = int_to_itoa64 (l & 0x3f); l >>= 6;
1199 buf[45] = int_to_itoa64 (l & 0x3f); l >>= 6;
1200 buf[46] = int_to_itoa64 (l & 0x3f); l >>= 6;
1201 buf[47] = int_to_itoa64 (l & 0x3f); l >>= 6;
1202
1203 l = (digest[12] << 16) | (digest[33] << 8) | (digest[54] << 0);
1204
1205 buf[48] = int_to_itoa64 (l & 0x3f); l >>= 6;
1206 buf[49] = int_to_itoa64 (l & 0x3f); l >>= 6;
1207 buf[50] = int_to_itoa64 (l & 0x3f); l >>= 6;
1208 buf[51] = int_to_itoa64 (l & 0x3f); l >>= 6;
1209
1210 l = (digest[34] << 16) | (digest[55] << 8) | (digest[13] << 0);
1211
1212 buf[52] = int_to_itoa64 (l & 0x3f); l >>= 6;
1213 buf[53] = int_to_itoa64 (l & 0x3f); l >>= 6;
1214 buf[54] = int_to_itoa64 (l & 0x3f); l >>= 6;
1215 buf[55] = int_to_itoa64 (l & 0x3f); l >>= 6;
1216
1217 l = (digest[56] << 16) | (digest[14] << 8) | (digest[35] << 0);
1218
1219 buf[56] = int_to_itoa64 (l & 0x3f); l >>= 6;
1220 buf[57] = int_to_itoa64 (l & 0x3f); l >>= 6;
1221 buf[58] = int_to_itoa64 (l & 0x3f); l >>= 6;
1222 buf[59] = int_to_itoa64 (l & 0x3f); l >>= 6;
1223
1224 l = (digest[15] << 16) | (digest[36] << 8) | (digest[57] << 0);
1225
1226 buf[60] = int_to_itoa64 (l & 0x3f); l >>= 6;
1227 buf[61] = int_to_itoa64 (l & 0x3f); l >>= 6;
1228 buf[62] = int_to_itoa64 (l & 0x3f); l >>= 6;
1229 buf[63] = int_to_itoa64 (l & 0x3f); l >>= 6;
1230
1231 l = (digest[37] << 16) | (digest[58] << 8) | (digest[16] << 0);
1232
1233 buf[64] = int_to_itoa64 (l & 0x3f); l >>= 6;
1234 buf[65] = int_to_itoa64 (l & 0x3f); l >>= 6;
1235 buf[66] = int_to_itoa64 (l & 0x3f); l >>= 6;
1236 buf[67] = int_to_itoa64 (l & 0x3f); l >>= 6;
1237
1238 l = (digest[59] << 16) | (digest[17] << 8) | (digest[38] << 0);
1239
1240 buf[68] = int_to_itoa64 (l & 0x3f); l >>= 6;
1241 buf[69] = int_to_itoa64 (l & 0x3f); l >>= 6;
1242 buf[70] = int_to_itoa64 (l & 0x3f); l >>= 6;
1243 buf[71] = int_to_itoa64 (l & 0x3f); l >>= 6;
1244
1245 l = (digest[18] << 16) | (digest[39] << 8) | (digest[60] << 0);
1246
1247 buf[72] = int_to_itoa64 (l & 0x3f); l >>= 6;
1248 buf[73] = int_to_itoa64 (l & 0x3f); l >>= 6;
1249 buf[74] = int_to_itoa64 (l & 0x3f); l >>= 6;
1250 buf[75] = int_to_itoa64 (l & 0x3f); l >>= 6;
1251
1252 l = (digest[40] << 16) | (digest[61] << 8) | (digest[19] << 0);
1253
1254 buf[76] = int_to_itoa64 (l & 0x3f); l >>= 6;
1255 buf[77] = int_to_itoa64 (l & 0x3f); l >>= 6;
1256 buf[78] = int_to_itoa64 (l & 0x3f); l >>= 6;
1257 buf[79] = int_to_itoa64 (l & 0x3f); l >>= 6;
1258
1259 l = (digest[62] << 16) | (digest[20] << 8) | (digest[41] << 0);
1260
1261 buf[80] = int_to_itoa64 (l & 0x3f); l >>= 6;
1262 buf[81] = int_to_itoa64 (l & 0x3f); l >>= 6;
1263 buf[82] = int_to_itoa64 (l & 0x3f); l >>= 6;
1264 buf[83] = int_to_itoa64 (l & 0x3f); l >>= 6;
1265
1266 l = 0 | 0 | (digest[63] << 0);
1267
1268 buf[84] = int_to_itoa64 (l & 0x3f); l >>= 6;
1269 buf[85] = int_to_itoa64 (l & 0x3f); l >>= 6;
1270 }
1271
1272 void sha1aix_decode (u8 digest[20], u8 buf[27])
1273 {
1274 int l;
1275
1276 l = itoa64_to_int (buf[ 0]) << 0;
1277 l |= itoa64_to_int (buf[ 1]) << 6;
1278 l |= itoa64_to_int (buf[ 2]) << 12;
1279 l |= itoa64_to_int (buf[ 3]) << 18;
1280
1281 digest[ 2] = (l >> 0) & 0xff;
1282 digest[ 1] = (l >> 8) & 0xff;
1283 digest[ 0] = (l >> 16) & 0xff;
1284
1285 l = itoa64_to_int (buf[ 4]) << 0;
1286 l |= itoa64_to_int (buf[ 5]) << 6;
1287 l |= itoa64_to_int (buf[ 6]) << 12;
1288 l |= itoa64_to_int (buf[ 7]) << 18;
1289
1290 digest[ 5] = (l >> 0) & 0xff;
1291 digest[ 4] = (l >> 8) & 0xff;
1292 digest[ 3] = (l >> 16) & 0xff;
1293
1294 l = itoa64_to_int (buf[ 8]) << 0;
1295 l |= itoa64_to_int (buf[ 9]) << 6;
1296 l |= itoa64_to_int (buf[10]) << 12;
1297 l |= itoa64_to_int (buf[11]) << 18;
1298
1299 digest[ 8] = (l >> 0) & 0xff;
1300 digest[ 7] = (l >> 8) & 0xff;
1301 digest[ 6] = (l >> 16) & 0xff;
1302
1303 l = itoa64_to_int (buf[12]) << 0;
1304 l |= itoa64_to_int (buf[13]) << 6;
1305 l |= itoa64_to_int (buf[14]) << 12;
1306 l |= itoa64_to_int (buf[15]) << 18;
1307
1308 digest[11] = (l >> 0) & 0xff;
1309 digest[10] = (l >> 8) & 0xff;
1310 digest[ 9] = (l >> 16) & 0xff;
1311
1312 l = itoa64_to_int (buf[16]) << 0;
1313 l |= itoa64_to_int (buf[17]) << 6;
1314 l |= itoa64_to_int (buf[18]) << 12;
1315 l |= itoa64_to_int (buf[19]) << 18;
1316
1317 digest[14] = (l >> 0) & 0xff;
1318 digest[13] = (l >> 8) & 0xff;
1319 digest[12] = (l >> 16) & 0xff;
1320
1321 l = itoa64_to_int (buf[20]) << 0;
1322 l |= itoa64_to_int (buf[21]) << 6;
1323 l |= itoa64_to_int (buf[22]) << 12;
1324 l |= itoa64_to_int (buf[23]) << 18;
1325
1326 digest[17] = (l >> 0) & 0xff;
1327 digest[16] = (l >> 8) & 0xff;
1328 digest[15] = (l >> 16) & 0xff;
1329
1330 l = itoa64_to_int (buf[24]) << 0;
1331 l |= itoa64_to_int (buf[25]) << 6;
1332 l |= itoa64_to_int (buf[26]) << 12;
1333
1334 digest[19] = (l >> 8) & 0xff;
1335 digest[18] = (l >> 16) & 0xff;
1336 }
1337
1338 void sha1aix_encode (u8 digest[20], u8 buf[27])
1339 {
1340 int l;
1341
1342 l = (digest[ 2] << 0) | (digest[ 1] << 8) | (digest[ 0] << 16);
1343
1344 buf[ 0] = int_to_itoa64 (l & 0x3f); l >>= 6;
1345 buf[ 1] = int_to_itoa64 (l & 0x3f); l >>= 6;
1346 buf[ 2] = int_to_itoa64 (l & 0x3f); l >>= 6;
1347 buf[ 3] = int_to_itoa64 (l & 0x3f);
1348
1349 l = (digest[ 5] << 0) | (digest[ 4] << 8) | (digest[ 3] << 16);
1350
1351 buf[ 4] = int_to_itoa64 (l & 0x3f); l >>= 6;
1352 buf[ 5] = int_to_itoa64 (l & 0x3f); l >>= 6;
1353 buf[ 6] = int_to_itoa64 (l & 0x3f); l >>= 6;
1354 buf[ 7] = int_to_itoa64 (l & 0x3f);
1355
1356 l = (digest[ 8] << 0) | (digest[ 7] << 8) | (digest[ 6] << 16);
1357
1358 buf[ 8] = int_to_itoa64 (l & 0x3f); l >>= 6;
1359 buf[ 9] = int_to_itoa64 (l & 0x3f); l >>= 6;
1360 buf[10] = int_to_itoa64 (l & 0x3f); l >>= 6;
1361 buf[11] = int_to_itoa64 (l & 0x3f);
1362
1363 l = (digest[11] << 0) | (digest[10] << 8) | (digest[ 9] << 16);
1364
1365 buf[12] = int_to_itoa64 (l & 0x3f); l >>= 6;
1366 buf[13] = int_to_itoa64 (l & 0x3f); l >>= 6;
1367 buf[14] = int_to_itoa64 (l & 0x3f); l >>= 6;
1368 buf[15] = int_to_itoa64 (l & 0x3f);
1369
1370 l = (digest[14] << 0) | (digest[13] << 8) | (digest[12] << 16);
1371
1372 buf[16] = int_to_itoa64 (l & 0x3f); l >>= 6;
1373 buf[17] = int_to_itoa64 (l & 0x3f); l >>= 6;
1374 buf[18] = int_to_itoa64 (l & 0x3f); l >>= 6;
1375 buf[19] = int_to_itoa64 (l & 0x3f);
1376
1377 l = (digest[17] << 0) | (digest[16] << 8) | (digest[15] << 16);
1378
1379 buf[20] = int_to_itoa64 (l & 0x3f); l >>= 6;
1380 buf[21] = int_to_itoa64 (l & 0x3f); l >>= 6;
1381 buf[22] = int_to_itoa64 (l & 0x3f); l >>= 6;
1382 buf[23] = int_to_itoa64 (l & 0x3f);
1383
1384 l = 0 | (digest[19] << 8) | (digest[18] << 16);
1385
1386 buf[24] = int_to_itoa64 (l & 0x3f); l >>= 6;
1387 buf[25] = int_to_itoa64 (l & 0x3f); l >>= 6;
1388 buf[26] = int_to_itoa64 (l & 0x3f);
1389 }
1390
1391 void sha256aix_decode (u8 digest[32], u8 buf[43])
1392 {
1393 int l;
1394
1395 l = itoa64_to_int (buf[ 0]) << 0;
1396 l |= itoa64_to_int (buf[ 1]) << 6;
1397 l |= itoa64_to_int (buf[ 2]) << 12;
1398 l |= itoa64_to_int (buf[ 3]) << 18;
1399
1400 digest[ 2] = (l >> 0) & 0xff;
1401 digest[ 1] = (l >> 8) & 0xff;
1402 digest[ 0] = (l >> 16) & 0xff;
1403
1404 l = itoa64_to_int (buf[ 4]) << 0;
1405 l |= itoa64_to_int (buf[ 5]) << 6;
1406 l |= itoa64_to_int (buf[ 6]) << 12;
1407 l |= itoa64_to_int (buf[ 7]) << 18;
1408
1409 digest[ 5] = (l >> 0) & 0xff;
1410 digest[ 4] = (l >> 8) & 0xff;
1411 digest[ 3] = (l >> 16) & 0xff;
1412
1413 l = itoa64_to_int (buf[ 8]) << 0;
1414 l |= itoa64_to_int (buf[ 9]) << 6;
1415 l |= itoa64_to_int (buf[10]) << 12;
1416 l |= itoa64_to_int (buf[11]) << 18;
1417
1418 digest[ 8] = (l >> 0) & 0xff;
1419 digest[ 7] = (l >> 8) & 0xff;
1420 digest[ 6] = (l >> 16) & 0xff;
1421
1422 l = itoa64_to_int (buf[12]) << 0;
1423 l |= itoa64_to_int (buf[13]) << 6;
1424 l |= itoa64_to_int (buf[14]) << 12;
1425 l |= itoa64_to_int (buf[15]) << 18;
1426
1427 digest[11] = (l >> 0) & 0xff;
1428 digest[10] = (l >> 8) & 0xff;
1429 digest[ 9] = (l >> 16) & 0xff;
1430
1431 l = itoa64_to_int (buf[16]) << 0;
1432 l |= itoa64_to_int (buf[17]) << 6;
1433 l |= itoa64_to_int (buf[18]) << 12;
1434 l |= itoa64_to_int (buf[19]) << 18;
1435
1436 digest[14] = (l >> 0) & 0xff;
1437 digest[13] = (l >> 8) & 0xff;
1438 digest[12] = (l >> 16) & 0xff;
1439
1440 l = itoa64_to_int (buf[20]) << 0;
1441 l |= itoa64_to_int (buf[21]) << 6;
1442 l |= itoa64_to_int (buf[22]) << 12;
1443 l |= itoa64_to_int (buf[23]) << 18;
1444
1445 digest[17] = (l >> 0) & 0xff;
1446 digest[16] = (l >> 8) & 0xff;
1447 digest[15] = (l >> 16) & 0xff;
1448
1449 l = itoa64_to_int (buf[24]) << 0;
1450 l |= itoa64_to_int (buf[25]) << 6;
1451 l |= itoa64_to_int (buf[26]) << 12;
1452 l |= itoa64_to_int (buf[27]) << 18;
1453
1454 digest[20] = (l >> 0) & 0xff;
1455 digest[19] = (l >> 8) & 0xff;
1456 digest[18] = (l >> 16) & 0xff;
1457
1458 l = itoa64_to_int (buf[28]) << 0;
1459 l |= itoa64_to_int (buf[29]) << 6;
1460 l |= itoa64_to_int (buf[30]) << 12;
1461 l |= itoa64_to_int (buf[31]) << 18;
1462
1463 digest[23] = (l >> 0) & 0xff;
1464 digest[22] = (l >> 8) & 0xff;
1465 digest[21] = (l >> 16) & 0xff;
1466
1467 l = itoa64_to_int (buf[32]) << 0;
1468 l |= itoa64_to_int (buf[33]) << 6;
1469 l |= itoa64_to_int (buf[34]) << 12;
1470 l |= itoa64_to_int (buf[35]) << 18;
1471
1472 digest[26] = (l >> 0) & 0xff;
1473 digest[25] = (l >> 8) & 0xff;
1474 digest[24] = (l >> 16) & 0xff;
1475
1476 l = itoa64_to_int (buf[36]) << 0;
1477 l |= itoa64_to_int (buf[37]) << 6;
1478 l |= itoa64_to_int (buf[38]) << 12;
1479 l |= itoa64_to_int (buf[39]) << 18;
1480
1481 digest[29] = (l >> 0) & 0xff;
1482 digest[28] = (l >> 8) & 0xff;
1483 digest[27] = (l >> 16) & 0xff;
1484
1485 l = itoa64_to_int (buf[40]) << 0;
1486 l |= itoa64_to_int (buf[41]) << 6;
1487 l |= itoa64_to_int (buf[42]) << 12;
1488
1489 //digest[32] = (l >> 0) & 0xff;
1490 digest[31] = (l >> 8) & 0xff;
1491 digest[30] = (l >> 16) & 0xff;
1492 }
1493
1494 void sha256aix_encode (u8 digest[32], u8 buf[43])
1495 {
1496 int l;
1497
1498 l = (digest[ 2] << 0) | (digest[ 1] << 8) | (digest[ 0] << 16);
1499
1500 buf[ 0] = int_to_itoa64 (l & 0x3f); l >>= 6;
1501 buf[ 1] = int_to_itoa64 (l & 0x3f); l >>= 6;
1502 buf[ 2] = int_to_itoa64 (l & 0x3f); l >>= 6;
1503 buf[ 3] = int_to_itoa64 (l & 0x3f);
1504
1505 l = (digest[ 5] << 0) | (digest[ 4] << 8) | (digest[ 3] << 16);
1506
1507 buf[ 4] = int_to_itoa64 (l & 0x3f); l >>= 6;
1508 buf[ 5] = int_to_itoa64 (l & 0x3f); l >>= 6;
1509 buf[ 6] = int_to_itoa64 (l & 0x3f); l >>= 6;
1510 buf[ 7] = int_to_itoa64 (l & 0x3f);
1511
1512 l = (digest[ 8] << 0) | (digest[ 7] << 8) | (digest[ 6] << 16);
1513
1514 buf[ 8] = int_to_itoa64 (l & 0x3f); l >>= 6;
1515 buf[ 9] = int_to_itoa64 (l & 0x3f); l >>= 6;
1516 buf[10] = int_to_itoa64 (l & 0x3f); l >>= 6;
1517 buf[11] = int_to_itoa64 (l & 0x3f);
1518
1519 l = (digest[11] << 0) | (digest[10] << 8) | (digest[ 9] << 16);
1520
1521 buf[12] = int_to_itoa64 (l & 0x3f); l >>= 6;
1522 buf[13] = int_to_itoa64 (l & 0x3f); l >>= 6;
1523 buf[14] = int_to_itoa64 (l & 0x3f); l >>= 6;
1524 buf[15] = int_to_itoa64 (l & 0x3f);
1525
1526 l = (digest[14] << 0) | (digest[13] << 8) | (digest[12] << 16);
1527
1528 buf[16] = int_to_itoa64 (l & 0x3f); l >>= 6;
1529 buf[17] = int_to_itoa64 (l & 0x3f); l >>= 6;
1530 buf[18] = int_to_itoa64 (l & 0x3f); l >>= 6;
1531 buf[19] = int_to_itoa64 (l & 0x3f);
1532
1533 l = (digest[17] << 0) | (digest[16] << 8) | (digest[15] << 16);
1534
1535 buf[20] = int_to_itoa64 (l & 0x3f); l >>= 6;
1536 buf[21] = int_to_itoa64 (l & 0x3f); l >>= 6;
1537 buf[22] = int_to_itoa64 (l & 0x3f); l >>= 6;
1538 buf[23] = int_to_itoa64 (l & 0x3f);
1539
1540 l = (digest[20] << 0) | (digest[19] << 8) | (digest[18] << 16);
1541
1542 buf[24] = int_to_itoa64 (l & 0x3f); l >>= 6;
1543 buf[25] = int_to_itoa64 (l & 0x3f); l >>= 6;
1544 buf[26] = int_to_itoa64 (l & 0x3f); l >>= 6;
1545 buf[27] = int_to_itoa64 (l & 0x3f);
1546
1547 l = (digest[23] << 0) | (digest[22] << 8) | (digest[21] << 16);
1548
1549 buf[28] = int_to_itoa64 (l & 0x3f); l >>= 6;
1550 buf[29] = int_to_itoa64 (l & 0x3f); l >>= 6;
1551 buf[30] = int_to_itoa64 (l & 0x3f); l >>= 6;
1552 buf[31] = int_to_itoa64 (l & 0x3f);
1553
1554 l = (digest[26] << 0) | (digest[25] << 8) | (digest[24] << 16);
1555
1556 buf[32] = int_to_itoa64 (l & 0x3f); l >>= 6;
1557 buf[33] = int_to_itoa64 (l & 0x3f); l >>= 6;
1558 buf[34] = int_to_itoa64 (l & 0x3f); l >>= 6;
1559 buf[35] = int_to_itoa64 (l & 0x3f);
1560
1561 l = (digest[29] << 0) | (digest[28] << 8) | (digest[27] << 16);
1562
1563 buf[36] = int_to_itoa64 (l & 0x3f); l >>= 6;
1564 buf[37] = int_to_itoa64 (l & 0x3f); l >>= 6;
1565 buf[38] = int_to_itoa64 (l & 0x3f); l >>= 6;
1566 buf[39] = int_to_itoa64 (l & 0x3f);
1567
1568 l = 0 | (digest[31] << 8) | (digest[30] << 16);
1569
1570 buf[40] = int_to_itoa64 (l & 0x3f); l >>= 6;
1571 buf[41] = int_to_itoa64 (l & 0x3f); l >>= 6;
1572 buf[42] = int_to_itoa64 (l & 0x3f);
1573 }
1574
1575 void sha512aix_decode (u8 digest[64], u8 buf[86])
1576 {
1577 int l;
1578
1579 l = itoa64_to_int (buf[ 0]) << 0;
1580 l |= itoa64_to_int (buf[ 1]) << 6;
1581 l |= itoa64_to_int (buf[ 2]) << 12;
1582 l |= itoa64_to_int (buf[ 3]) << 18;
1583
1584 digest[ 2] = (l >> 0) & 0xff;
1585 digest[ 1] = (l >> 8) & 0xff;
1586 digest[ 0] = (l >> 16) & 0xff;
1587
1588 l = itoa64_to_int (buf[ 4]) << 0;
1589 l |= itoa64_to_int (buf[ 5]) << 6;
1590 l |= itoa64_to_int (buf[ 6]) << 12;
1591 l |= itoa64_to_int (buf[ 7]) << 18;
1592
1593 digest[ 5] = (l >> 0) & 0xff;
1594 digest[ 4] = (l >> 8) & 0xff;
1595 digest[ 3] = (l >> 16) & 0xff;
1596
1597 l = itoa64_to_int (buf[ 8]) << 0;
1598 l |= itoa64_to_int (buf[ 9]) << 6;
1599 l |= itoa64_to_int (buf[10]) << 12;
1600 l |= itoa64_to_int (buf[11]) << 18;
1601
1602 digest[ 8] = (l >> 0) & 0xff;
1603 digest[ 7] = (l >> 8) & 0xff;
1604 digest[ 6] = (l >> 16) & 0xff;
1605
1606 l = itoa64_to_int (buf[12]) << 0;
1607 l |= itoa64_to_int (buf[13]) << 6;
1608 l |= itoa64_to_int (buf[14]) << 12;
1609 l |= itoa64_to_int (buf[15]) << 18;
1610
1611 digest[11] = (l >> 0) & 0xff;
1612 digest[10] = (l >> 8) & 0xff;
1613 digest[ 9] = (l >> 16) & 0xff;
1614
1615 l = itoa64_to_int (buf[16]) << 0;
1616 l |= itoa64_to_int (buf[17]) << 6;
1617 l |= itoa64_to_int (buf[18]) << 12;
1618 l |= itoa64_to_int (buf[19]) << 18;
1619
1620 digest[14] = (l >> 0) & 0xff;
1621 digest[13] = (l >> 8) & 0xff;
1622 digest[12] = (l >> 16) & 0xff;
1623
1624 l = itoa64_to_int (buf[20]) << 0;
1625 l |= itoa64_to_int (buf[21]) << 6;
1626 l |= itoa64_to_int (buf[22]) << 12;
1627 l |= itoa64_to_int (buf[23]) << 18;
1628
1629 digest[17] = (l >> 0) & 0xff;
1630 digest[16] = (l >> 8) & 0xff;
1631 digest[15] = (l >> 16) & 0xff;
1632
1633 l = itoa64_to_int (buf[24]) << 0;
1634 l |= itoa64_to_int (buf[25]) << 6;
1635 l |= itoa64_to_int (buf[26]) << 12;
1636 l |= itoa64_to_int (buf[27]) << 18;
1637
1638 digest[20] = (l >> 0) & 0xff;
1639 digest[19] = (l >> 8) & 0xff;
1640 digest[18] = (l >> 16) & 0xff;
1641
1642 l = itoa64_to_int (buf[28]) << 0;
1643 l |= itoa64_to_int (buf[29]) << 6;
1644 l |= itoa64_to_int (buf[30]) << 12;
1645 l |= itoa64_to_int (buf[31]) << 18;
1646
1647 digest[23] = (l >> 0) & 0xff;
1648 digest[22] = (l >> 8) & 0xff;
1649 digest[21] = (l >> 16) & 0xff;
1650
1651 l = itoa64_to_int (buf[32]) << 0;
1652 l |= itoa64_to_int (buf[33]) << 6;
1653 l |= itoa64_to_int (buf[34]) << 12;
1654 l |= itoa64_to_int (buf[35]) << 18;
1655
1656 digest[26] = (l >> 0) & 0xff;
1657 digest[25] = (l >> 8) & 0xff;
1658 digest[24] = (l >> 16) & 0xff;
1659
1660 l = itoa64_to_int (buf[36]) << 0;
1661 l |= itoa64_to_int (buf[37]) << 6;
1662 l |= itoa64_to_int (buf[38]) << 12;
1663 l |= itoa64_to_int (buf[39]) << 18;
1664
1665 digest[29] = (l >> 0) & 0xff;
1666 digest[28] = (l >> 8) & 0xff;
1667 digest[27] = (l >> 16) & 0xff;
1668
1669 l = itoa64_to_int (buf[40]) << 0;
1670 l |= itoa64_to_int (buf[41]) << 6;
1671 l |= itoa64_to_int (buf[42]) << 12;
1672 l |= itoa64_to_int (buf[43]) << 18;
1673
1674 digest[32] = (l >> 0) & 0xff;
1675 digest[31] = (l >> 8) & 0xff;
1676 digest[30] = (l >> 16) & 0xff;
1677
1678 l = itoa64_to_int (buf[44]) << 0;
1679 l |= itoa64_to_int (buf[45]) << 6;
1680 l |= itoa64_to_int (buf[46]) << 12;
1681 l |= itoa64_to_int (buf[47]) << 18;
1682
1683 digest[35] = (l >> 0) & 0xff;
1684 digest[34] = (l >> 8) & 0xff;
1685 digest[33] = (l >> 16) & 0xff;
1686
1687 l = itoa64_to_int (buf[48]) << 0;
1688 l |= itoa64_to_int (buf[49]) << 6;
1689 l |= itoa64_to_int (buf[50]) << 12;
1690 l |= itoa64_to_int (buf[51]) << 18;
1691
1692 digest[38] = (l >> 0) & 0xff;
1693 digest[37] = (l >> 8) & 0xff;
1694 digest[36] = (l >> 16) & 0xff;
1695
1696 l = itoa64_to_int (buf[52]) << 0;
1697 l |= itoa64_to_int (buf[53]) << 6;
1698 l |= itoa64_to_int (buf[54]) << 12;
1699 l |= itoa64_to_int (buf[55]) << 18;
1700
1701 digest[41] = (l >> 0) & 0xff;
1702 digest[40] = (l >> 8) & 0xff;
1703 digest[39] = (l >> 16) & 0xff;
1704
1705 l = itoa64_to_int (buf[56]) << 0;
1706 l |= itoa64_to_int (buf[57]) << 6;
1707 l |= itoa64_to_int (buf[58]) << 12;
1708 l |= itoa64_to_int (buf[59]) << 18;
1709
1710 digest[44] = (l >> 0) & 0xff;
1711 digest[43] = (l >> 8) & 0xff;
1712 digest[42] = (l >> 16) & 0xff;
1713
1714 l = itoa64_to_int (buf[60]) << 0;
1715 l |= itoa64_to_int (buf[61]) << 6;
1716 l |= itoa64_to_int (buf[62]) << 12;
1717 l |= itoa64_to_int (buf[63]) << 18;
1718
1719 digest[47] = (l >> 0) & 0xff;
1720 digest[46] = (l >> 8) & 0xff;
1721 digest[45] = (l >> 16) & 0xff;
1722
1723 l = itoa64_to_int (buf[64]) << 0;
1724 l |= itoa64_to_int (buf[65]) << 6;
1725 l |= itoa64_to_int (buf[66]) << 12;
1726 l |= itoa64_to_int (buf[67]) << 18;
1727
1728 digest[50] = (l >> 0) & 0xff;
1729 digest[49] = (l >> 8) & 0xff;
1730 digest[48] = (l >> 16) & 0xff;
1731
1732 l = itoa64_to_int (buf[68]) << 0;
1733 l |= itoa64_to_int (buf[69]) << 6;
1734 l |= itoa64_to_int (buf[70]) << 12;
1735 l |= itoa64_to_int (buf[71]) << 18;
1736
1737 digest[53] = (l >> 0) & 0xff;
1738 digest[52] = (l >> 8) & 0xff;
1739 digest[51] = (l >> 16) & 0xff;
1740
1741 l = itoa64_to_int (buf[72]) << 0;
1742 l |= itoa64_to_int (buf[73]) << 6;
1743 l |= itoa64_to_int (buf[74]) << 12;
1744 l |= itoa64_to_int (buf[75]) << 18;
1745
1746 digest[56] = (l >> 0) & 0xff;
1747 digest[55] = (l >> 8) & 0xff;
1748 digest[54] = (l >> 16) & 0xff;
1749
1750 l = itoa64_to_int (buf[76]) << 0;
1751 l |= itoa64_to_int (buf[77]) << 6;
1752 l |= itoa64_to_int (buf[78]) << 12;
1753 l |= itoa64_to_int (buf[79]) << 18;
1754
1755 digest[59] = (l >> 0) & 0xff;
1756 digest[58] = (l >> 8) & 0xff;
1757 digest[57] = (l >> 16) & 0xff;
1758
1759 l = itoa64_to_int (buf[80]) << 0;
1760 l |= itoa64_to_int (buf[81]) << 6;
1761 l |= itoa64_to_int (buf[82]) << 12;
1762 l |= itoa64_to_int (buf[83]) << 18;
1763
1764 digest[62] = (l >> 0) & 0xff;
1765 digest[61] = (l >> 8) & 0xff;
1766 digest[60] = (l >> 16) & 0xff;
1767
1768 l = itoa64_to_int (buf[84]) << 0;
1769 l |= itoa64_to_int (buf[85]) << 6;
1770
1771 digest[63] = (l >> 16) & 0xff;
1772 }
1773
1774 void sha512aix_encode (u8 digest[64], u8 buf[86])
1775 {
1776 int l;
1777
1778 l = (digest[ 2] << 0) | (digest[ 1] << 8) | (digest[ 0] << 16);
1779
1780 buf[ 0] = int_to_itoa64 (l & 0x3f); l >>= 6;
1781 buf[ 1] = int_to_itoa64 (l & 0x3f); l >>= 6;
1782 buf[ 2] = int_to_itoa64 (l & 0x3f); l >>= 6;
1783 buf[ 3] = int_to_itoa64 (l & 0x3f);
1784
1785 l = (digest[ 5] << 0) | (digest[ 4] << 8) | (digest[ 3] << 16);
1786
1787 buf[ 4] = int_to_itoa64 (l & 0x3f); l >>= 6;
1788 buf[ 5] = int_to_itoa64 (l & 0x3f); l >>= 6;
1789 buf[ 6] = int_to_itoa64 (l & 0x3f); l >>= 6;
1790 buf[ 7] = int_to_itoa64 (l & 0x3f);
1791
1792 l = (digest[ 8] << 0) | (digest[ 7] << 8) | (digest[ 6] << 16);
1793
1794 buf[ 8] = int_to_itoa64 (l & 0x3f); l >>= 6;
1795 buf[ 9] = int_to_itoa64 (l & 0x3f); l >>= 6;
1796 buf[10] = int_to_itoa64 (l & 0x3f); l >>= 6;
1797 buf[11] = int_to_itoa64 (l & 0x3f);
1798
1799 l = (digest[11] << 0) | (digest[10] << 8) | (digest[ 9] << 16);
1800
1801 buf[12] = int_to_itoa64 (l & 0x3f); l >>= 6;
1802 buf[13] = int_to_itoa64 (l & 0x3f); l >>= 6;
1803 buf[14] = int_to_itoa64 (l & 0x3f); l >>= 6;
1804 buf[15] = int_to_itoa64 (l & 0x3f);
1805
1806 l = (digest[14] << 0) | (digest[13] << 8) | (digest[12] << 16);
1807
1808 buf[16] = int_to_itoa64 (l & 0x3f); l >>= 6;
1809 buf[17] = int_to_itoa64 (l & 0x3f); l >>= 6;
1810 buf[18] = int_to_itoa64 (l & 0x3f); l >>= 6;
1811 buf[19] = int_to_itoa64 (l & 0x3f);
1812
1813 l = (digest[17] << 0) | (digest[16] << 8) | (digest[15] << 16);
1814
1815 buf[20] = int_to_itoa64 (l & 0x3f); l >>= 6;
1816 buf[21] = int_to_itoa64 (l & 0x3f); l >>= 6;
1817 buf[22] = int_to_itoa64 (l & 0x3f); l >>= 6;
1818 buf[23] = int_to_itoa64 (l & 0x3f);
1819
1820 l = (digest[20] << 0) | (digest[19] << 8) | (digest[18] << 16);
1821
1822 buf[24] = int_to_itoa64 (l & 0x3f); l >>= 6;
1823 buf[25] = int_to_itoa64 (l & 0x3f); l >>= 6;
1824 buf[26] = int_to_itoa64 (l & 0x3f); l >>= 6;
1825 buf[27] = int_to_itoa64 (l & 0x3f);
1826
1827 l = (digest[23] << 0) | (digest[22] << 8) | (digest[21] << 16);
1828
1829 buf[28] = int_to_itoa64 (l & 0x3f); l >>= 6;
1830 buf[29] = int_to_itoa64 (l & 0x3f); l >>= 6;
1831 buf[30] = int_to_itoa64 (l & 0x3f); l >>= 6;
1832 buf[31] = int_to_itoa64 (l & 0x3f);
1833
1834 l = (digest[26] << 0) | (digest[25] << 8) | (digest[24] << 16);
1835
1836 buf[32] = int_to_itoa64 (l & 0x3f); l >>= 6;
1837 buf[33] = int_to_itoa64 (l & 0x3f); l >>= 6;
1838 buf[34] = int_to_itoa64 (l & 0x3f); l >>= 6;
1839 buf[35] = int_to_itoa64 (l & 0x3f);
1840
1841 l = (digest[29] << 0) | (digest[28] << 8) | (digest[27] << 16);
1842
1843 buf[36] = int_to_itoa64 (l & 0x3f); l >>= 6;
1844 buf[37] = int_to_itoa64 (l & 0x3f); l >>= 6;
1845 buf[38] = int_to_itoa64 (l & 0x3f); l >>= 6;
1846 buf[39] = int_to_itoa64 (l & 0x3f);
1847
1848 l = (digest[32] << 0) | (digest[31] << 8) | (digest[30] << 16);
1849
1850 buf[40] = int_to_itoa64 (l & 0x3f); l >>= 6;
1851 buf[41] = int_to_itoa64 (l & 0x3f); l >>= 6;
1852 buf[42] = int_to_itoa64 (l & 0x3f); l >>= 6;
1853 buf[43] = int_to_itoa64 (l & 0x3f);
1854
1855 l = (digest[35] << 0) | (digest[34] << 8) | (digest[33] << 16);
1856
1857 buf[44] = int_to_itoa64 (l & 0x3f); l >>= 6;
1858 buf[45] = int_to_itoa64 (l & 0x3f); l >>= 6;
1859 buf[46] = int_to_itoa64 (l & 0x3f); l >>= 6;
1860 buf[47] = int_to_itoa64 (l & 0x3f);
1861
1862 l = (digest[38] << 0) | (digest[37] << 8) | (digest[36] << 16);
1863
1864 buf[48] = int_to_itoa64 (l & 0x3f); l >>= 6;
1865 buf[49] = int_to_itoa64 (l & 0x3f); l >>= 6;
1866 buf[50] = int_to_itoa64 (l & 0x3f); l >>= 6;
1867 buf[51] = int_to_itoa64 (l & 0x3f);
1868
1869 l = (digest[41] << 0) | (digest[40] << 8) | (digest[39] << 16);
1870
1871 buf[52] = int_to_itoa64 (l & 0x3f); l >>= 6;
1872 buf[53] = int_to_itoa64 (l & 0x3f); l >>= 6;
1873 buf[54] = int_to_itoa64 (l & 0x3f); l >>= 6;
1874 buf[55] = int_to_itoa64 (l & 0x3f);
1875
1876 l = (digest[44] << 0) | (digest[43] << 8) | (digest[42] << 16);
1877
1878 buf[56] = int_to_itoa64 (l & 0x3f); l >>= 6;
1879 buf[57] = int_to_itoa64 (l & 0x3f); l >>= 6;
1880 buf[58] = int_to_itoa64 (l & 0x3f); l >>= 6;
1881 buf[59] = int_to_itoa64 (l & 0x3f);
1882
1883 l = (digest[47] << 0) | (digest[46] << 8) | (digest[45] << 16);
1884
1885 buf[60] = int_to_itoa64 (l & 0x3f); l >>= 6;
1886 buf[61] = int_to_itoa64 (l & 0x3f); l >>= 6;
1887 buf[62] = int_to_itoa64 (l & 0x3f); l >>= 6;
1888 buf[63] = int_to_itoa64 (l & 0x3f);
1889
1890 l = (digest[50] << 0) | (digest[49] << 8) | (digest[48] << 16);
1891
1892 buf[64] = int_to_itoa64 (l & 0x3f); l >>= 6;
1893 buf[65] = int_to_itoa64 (l & 0x3f); l >>= 6;
1894 buf[66] = int_to_itoa64 (l & 0x3f); l >>= 6;
1895 buf[67] = int_to_itoa64 (l & 0x3f);
1896
1897 l = (digest[53] << 0) | (digest[52] << 8) | (digest[51] << 16);
1898
1899 buf[68] = int_to_itoa64 (l & 0x3f); l >>= 6;
1900 buf[69] = int_to_itoa64 (l & 0x3f); l >>= 6;
1901 buf[70] = int_to_itoa64 (l & 0x3f); l >>= 6;
1902 buf[71] = int_to_itoa64 (l & 0x3f);
1903
1904 l = (digest[56] << 0) | (digest[55] << 8) | (digest[54] << 16);
1905
1906 buf[72] = int_to_itoa64 (l & 0x3f); l >>= 6;
1907 buf[73] = int_to_itoa64 (l & 0x3f); l >>= 6;
1908 buf[74] = int_to_itoa64 (l & 0x3f); l >>= 6;
1909 buf[75] = int_to_itoa64 (l & 0x3f);
1910
1911 l = (digest[59] << 0) | (digest[58] << 8) | (digest[57] << 16);
1912
1913 buf[76] = int_to_itoa64 (l & 0x3f); l >>= 6;
1914 buf[77] = int_to_itoa64 (l & 0x3f); l >>= 6;
1915 buf[78] = int_to_itoa64 (l & 0x3f); l >>= 6;
1916 buf[79] = int_to_itoa64 (l & 0x3f);
1917
1918 l = (digest[62] << 0) | (digest[61] << 8) | (digest[60] << 16);
1919
1920 buf[80] = int_to_itoa64 (l & 0x3f); l >>= 6;
1921 buf[81] = int_to_itoa64 (l & 0x3f); l >>= 6;
1922 buf[82] = int_to_itoa64 (l & 0x3f); l >>= 6;
1923 buf[83] = int_to_itoa64 (l & 0x3f);
1924
1925 l = 0 | 0 | (digest[63] << 16);
1926
1927 buf[84] = int_to_itoa64 (l & 0x3f); l >>= 6;
1928 buf[85] = int_to_itoa64 (l & 0x3f); l >>= 6;
1929 }
1930
1931 void sha256crypt_decode (u8 digest[32], u8 buf[43])
1932 {
1933 int l;
1934
1935 l = itoa64_to_int (buf[ 0]) << 0;
1936 l |= itoa64_to_int (buf[ 1]) << 6;
1937 l |= itoa64_to_int (buf[ 2]) << 12;
1938 l |= itoa64_to_int (buf[ 3]) << 18;
1939
1940 digest[ 0] = (l >> 16) & 0xff;
1941 digest[10] = (l >> 8) & 0xff;
1942 digest[20] = (l >> 0) & 0xff;
1943
1944 l = itoa64_to_int (buf[ 4]) << 0;
1945 l |= itoa64_to_int (buf[ 5]) << 6;
1946 l |= itoa64_to_int (buf[ 6]) << 12;
1947 l |= itoa64_to_int (buf[ 7]) << 18;
1948
1949 digest[21] = (l >> 16) & 0xff;
1950 digest[ 1] = (l >> 8) & 0xff;
1951 digest[11] = (l >> 0) & 0xff;
1952
1953 l = itoa64_to_int (buf[ 8]) << 0;
1954 l |= itoa64_to_int (buf[ 9]) << 6;
1955 l |= itoa64_to_int (buf[10]) << 12;
1956 l |= itoa64_to_int (buf[11]) << 18;
1957
1958 digest[12] = (l >> 16) & 0xff;
1959 digest[22] = (l >> 8) & 0xff;
1960 digest[ 2] = (l >> 0) & 0xff;
1961
1962 l = itoa64_to_int (buf[12]) << 0;
1963 l |= itoa64_to_int (buf[13]) << 6;
1964 l |= itoa64_to_int (buf[14]) << 12;
1965 l |= itoa64_to_int (buf[15]) << 18;
1966
1967 digest[ 3] = (l >> 16) & 0xff;
1968 digest[13] = (l >> 8) & 0xff;
1969 digest[23] = (l >> 0) & 0xff;
1970
1971 l = itoa64_to_int (buf[16]) << 0;
1972 l |= itoa64_to_int (buf[17]) << 6;
1973 l |= itoa64_to_int (buf[18]) << 12;
1974 l |= itoa64_to_int (buf[19]) << 18;
1975
1976 digest[24] = (l >> 16) & 0xff;
1977 digest[ 4] = (l >> 8) & 0xff;
1978 digest[14] = (l >> 0) & 0xff;
1979
1980 l = itoa64_to_int (buf[20]) << 0;
1981 l |= itoa64_to_int (buf[21]) << 6;
1982 l |= itoa64_to_int (buf[22]) << 12;
1983 l |= itoa64_to_int (buf[23]) << 18;
1984
1985 digest[15] = (l >> 16) & 0xff;
1986 digest[25] = (l >> 8) & 0xff;
1987 digest[ 5] = (l >> 0) & 0xff;
1988
1989 l = itoa64_to_int (buf[24]) << 0;
1990 l |= itoa64_to_int (buf[25]) << 6;
1991 l |= itoa64_to_int (buf[26]) << 12;
1992 l |= itoa64_to_int (buf[27]) << 18;
1993
1994 digest[ 6] = (l >> 16) & 0xff;
1995 digest[16] = (l >> 8) & 0xff;
1996 digest[26] = (l >> 0) & 0xff;
1997
1998 l = itoa64_to_int (buf[28]) << 0;
1999 l |= itoa64_to_int (buf[29]) << 6;
2000 l |= itoa64_to_int (buf[30]) << 12;
2001 l |= itoa64_to_int (buf[31]) << 18;
2002
2003 digest[27] = (l >> 16) & 0xff;
2004 digest[ 7] = (l >> 8) & 0xff;
2005 digest[17] = (l >> 0) & 0xff;
2006
2007 l = itoa64_to_int (buf[32]) << 0;
2008 l |= itoa64_to_int (buf[33]) << 6;
2009 l |= itoa64_to_int (buf[34]) << 12;
2010 l |= itoa64_to_int (buf[35]) << 18;
2011
2012 digest[18] = (l >> 16) & 0xff;
2013 digest[28] = (l >> 8) & 0xff;
2014 digest[ 8] = (l >> 0) & 0xff;
2015
2016 l = itoa64_to_int (buf[36]) << 0;
2017 l |= itoa64_to_int (buf[37]) << 6;
2018 l |= itoa64_to_int (buf[38]) << 12;
2019 l |= itoa64_to_int (buf[39]) << 18;
2020
2021 digest[ 9] = (l >> 16) & 0xff;
2022 digest[19] = (l >> 8) & 0xff;
2023 digest[29] = (l >> 0) & 0xff;
2024
2025 l = itoa64_to_int (buf[40]) << 0;
2026 l |= itoa64_to_int (buf[41]) << 6;
2027 l |= itoa64_to_int (buf[42]) << 12;
2028
2029 digest[31] = (l >> 8) & 0xff;
2030 digest[30] = (l >> 0) & 0xff;
2031 }
2032
2033 void sha256crypt_encode (u8 digest[32], u8 buf[43])
2034 {
2035 int l;
2036
2037 l = (digest[ 0] << 16) | (digest[10] << 8) | (digest[20] << 0);
2038
2039 buf[ 0] = int_to_itoa64 (l & 0x3f); l >>= 6;
2040 buf[ 1] = int_to_itoa64 (l & 0x3f); l >>= 6;
2041 buf[ 2] = int_to_itoa64 (l & 0x3f); l >>= 6;
2042 buf[ 3] = int_to_itoa64 (l & 0x3f); l >>= 6;
2043
2044 l = (digest[21] << 16) | (digest[ 1] << 8) | (digest[11] << 0);
2045
2046 buf[ 4] = int_to_itoa64 (l & 0x3f); l >>= 6;
2047 buf[ 5] = int_to_itoa64 (l & 0x3f); l >>= 6;
2048 buf[ 6] = int_to_itoa64 (l & 0x3f); l >>= 6;
2049 buf[ 7] = int_to_itoa64 (l & 0x3f); l >>= 6;
2050
2051 l = (digest[12] << 16) | (digest[22] << 8) | (digest[ 2] << 0);
2052
2053 buf[ 8] = int_to_itoa64 (l & 0x3f); l >>= 6;
2054 buf[ 9] = int_to_itoa64 (l & 0x3f); l >>= 6;
2055 buf[10] = int_to_itoa64 (l & 0x3f); l >>= 6;
2056 buf[11] = int_to_itoa64 (l & 0x3f); l >>= 6;
2057
2058 l = (digest[ 3] << 16) | (digest[13] << 8) | (digest[23] << 0);
2059
2060 buf[12] = int_to_itoa64 (l & 0x3f); l >>= 6;
2061 buf[13] = int_to_itoa64 (l & 0x3f); l >>= 6;
2062 buf[14] = int_to_itoa64 (l & 0x3f); l >>= 6;
2063 buf[15] = int_to_itoa64 (l & 0x3f); l >>= 6;
2064
2065 l = (digest[24] << 16) | (digest[ 4] << 8) | (digest[14] << 0);
2066
2067 buf[16] = int_to_itoa64 (l & 0x3f); l >>= 6;
2068 buf[17] = int_to_itoa64 (l & 0x3f); l >>= 6;
2069 buf[18] = int_to_itoa64 (l & 0x3f); l >>= 6;
2070 buf[19] = int_to_itoa64 (l & 0x3f); l >>= 6;
2071
2072 l = (digest[15] << 16) | (digest[25] << 8) | (digest[ 5] << 0);
2073
2074 buf[20] = int_to_itoa64 (l & 0x3f); l >>= 6;
2075 buf[21] = int_to_itoa64 (l & 0x3f); l >>= 6;
2076 buf[22] = int_to_itoa64 (l & 0x3f); l >>= 6;
2077 buf[23] = int_to_itoa64 (l & 0x3f); l >>= 6;
2078
2079 l = (digest[ 6] << 16) | (digest[16] << 8) | (digest[26] << 0);
2080
2081 buf[24] = int_to_itoa64 (l & 0x3f); l >>= 6;
2082 buf[25] = int_to_itoa64 (l & 0x3f); l >>= 6;
2083 buf[26] = int_to_itoa64 (l & 0x3f); l >>= 6;
2084 buf[27] = int_to_itoa64 (l & 0x3f); l >>= 6;
2085
2086 l = (digest[27] << 16) | (digest[ 7] << 8) | (digest[17] << 0);
2087
2088 buf[28] = int_to_itoa64 (l & 0x3f); l >>= 6;
2089 buf[29] = int_to_itoa64 (l & 0x3f); l >>= 6;
2090 buf[30] = int_to_itoa64 (l & 0x3f); l >>= 6;
2091 buf[31] = int_to_itoa64 (l & 0x3f); l >>= 6;
2092
2093 l = (digest[18] << 16) | (digest[28] << 8) | (digest[ 8] << 0);
2094
2095 buf[32] = int_to_itoa64 (l & 0x3f); l >>= 6;
2096 buf[33] = int_to_itoa64 (l & 0x3f); l >>= 6;
2097 buf[34] = int_to_itoa64 (l & 0x3f); l >>= 6;
2098 buf[35] = int_to_itoa64 (l & 0x3f); l >>= 6;
2099
2100 l = (digest[ 9] << 16) | (digest[19] << 8) | (digest[29] << 0);
2101
2102 buf[36] = int_to_itoa64 (l & 0x3f); l >>= 6;
2103 buf[37] = int_to_itoa64 (l & 0x3f); l >>= 6;
2104 buf[38] = int_to_itoa64 (l & 0x3f); l >>= 6;
2105 buf[39] = int_to_itoa64 (l & 0x3f); l >>= 6;
2106
2107 l = 0 | (digest[31] << 8) | (digest[30] << 0);
2108
2109 buf[40] = int_to_itoa64 (l & 0x3f); l >>= 6;
2110 buf[41] = int_to_itoa64 (l & 0x3f); l >>= 6;
2111 buf[42] = int_to_itoa64 (l & 0x3f);
2112 }
2113
2114 void drupal7_decode (u8 digest[64], u8 buf[44])
2115 {
2116 int l;
2117
2118 l = itoa64_to_int (buf[ 0]) << 0;
2119 l |= itoa64_to_int (buf[ 1]) << 6;
2120 l |= itoa64_to_int (buf[ 2]) << 12;
2121 l |= itoa64_to_int (buf[ 3]) << 18;
2122
2123 digest[ 0] = (l >> 0) & 0xff;
2124 digest[ 1] = (l >> 8) & 0xff;
2125 digest[ 2] = (l >> 16) & 0xff;
2126
2127 l = itoa64_to_int (buf[ 4]) << 0;
2128 l |= itoa64_to_int (buf[ 5]) << 6;
2129 l |= itoa64_to_int (buf[ 6]) << 12;
2130 l |= itoa64_to_int (buf[ 7]) << 18;
2131
2132 digest[ 3] = (l >> 0) & 0xff;
2133 digest[ 4] = (l >> 8) & 0xff;
2134 digest[ 5] = (l >> 16) & 0xff;
2135
2136 l = itoa64_to_int (buf[ 8]) << 0;
2137 l |= itoa64_to_int (buf[ 9]) << 6;
2138 l |= itoa64_to_int (buf[10]) << 12;
2139 l |= itoa64_to_int (buf[11]) << 18;
2140
2141 digest[ 6] = (l >> 0) & 0xff;
2142 digest[ 7] = (l >> 8) & 0xff;
2143 digest[ 8] = (l >> 16) & 0xff;
2144
2145 l = itoa64_to_int (buf[12]) << 0;
2146 l |= itoa64_to_int (buf[13]) << 6;
2147 l |= itoa64_to_int (buf[14]) << 12;
2148 l |= itoa64_to_int (buf[15]) << 18;
2149
2150 digest[ 9] = (l >> 0) & 0xff;
2151 digest[10] = (l >> 8) & 0xff;
2152 digest[11] = (l >> 16) & 0xff;
2153
2154 l = itoa64_to_int (buf[16]) << 0;
2155 l |= itoa64_to_int (buf[17]) << 6;
2156 l |= itoa64_to_int (buf[18]) << 12;
2157 l |= itoa64_to_int (buf[19]) << 18;
2158
2159 digest[12] = (l >> 0) & 0xff;
2160 digest[13] = (l >> 8) & 0xff;
2161 digest[14] = (l >> 16) & 0xff;
2162
2163 l = itoa64_to_int (buf[20]) << 0;
2164 l |= itoa64_to_int (buf[21]) << 6;
2165 l |= itoa64_to_int (buf[22]) << 12;
2166 l |= itoa64_to_int (buf[23]) << 18;
2167
2168 digest[15] = (l >> 0) & 0xff;
2169 digest[16] = (l >> 8) & 0xff;
2170 digest[17] = (l >> 16) & 0xff;
2171
2172 l = itoa64_to_int (buf[24]) << 0;
2173 l |= itoa64_to_int (buf[25]) << 6;
2174 l |= itoa64_to_int (buf[26]) << 12;
2175 l |= itoa64_to_int (buf[27]) << 18;
2176
2177 digest[18] = (l >> 0) & 0xff;
2178 digest[19] = (l >> 8) & 0xff;
2179 digest[20] = (l >> 16) & 0xff;
2180
2181 l = itoa64_to_int (buf[28]) << 0;
2182 l |= itoa64_to_int (buf[29]) << 6;
2183 l |= itoa64_to_int (buf[30]) << 12;
2184 l |= itoa64_to_int (buf[31]) << 18;
2185
2186 digest[21] = (l >> 0) & 0xff;
2187 digest[22] = (l >> 8) & 0xff;
2188 digest[23] = (l >> 16) & 0xff;
2189
2190 l = itoa64_to_int (buf[32]) << 0;
2191 l |= itoa64_to_int (buf[33]) << 6;
2192 l |= itoa64_to_int (buf[34]) << 12;
2193 l |= itoa64_to_int (buf[35]) << 18;
2194
2195 digest[24] = (l >> 0) & 0xff;
2196 digest[25] = (l >> 8) & 0xff;
2197 digest[26] = (l >> 16) & 0xff;
2198
2199 l = itoa64_to_int (buf[36]) << 0;
2200 l |= itoa64_to_int (buf[37]) << 6;
2201 l |= itoa64_to_int (buf[38]) << 12;
2202 l |= itoa64_to_int (buf[39]) << 18;
2203
2204 digest[27] = (l >> 0) & 0xff;
2205 digest[28] = (l >> 8) & 0xff;
2206 digest[29] = (l >> 16) & 0xff;
2207
2208 l = itoa64_to_int (buf[40]) << 0;
2209 l |= itoa64_to_int (buf[41]) << 6;
2210 l |= itoa64_to_int (buf[42]) << 12;
2211 l |= itoa64_to_int (buf[43]) << 18;
2212
2213 digest[30] = (l >> 0) & 0xff;
2214 digest[31] = (l >> 8) & 0xff;
2215 digest[32] = (l >> 16) & 0xff;
2216
2217 digest[33] = 0;
2218 digest[34] = 0;
2219 digest[35] = 0;
2220 digest[36] = 0;
2221 digest[37] = 0;
2222 digest[38] = 0;
2223 digest[39] = 0;
2224 digest[40] = 0;
2225 digest[41] = 0;
2226 digest[42] = 0;
2227 digest[43] = 0;
2228 digest[44] = 0;
2229 digest[45] = 0;
2230 digest[46] = 0;
2231 digest[47] = 0;
2232 digest[48] = 0;
2233 digest[49] = 0;
2234 digest[50] = 0;
2235 digest[51] = 0;
2236 digest[52] = 0;
2237 digest[53] = 0;
2238 digest[54] = 0;
2239 digest[55] = 0;
2240 digest[56] = 0;
2241 digest[57] = 0;
2242 digest[58] = 0;
2243 digest[59] = 0;
2244 digest[60] = 0;
2245 digest[61] = 0;
2246 digest[62] = 0;
2247 digest[63] = 0;
2248 }
2249
2250 void drupal7_encode (u8 digest[64], u8 buf[43])
2251 {
2252 int l;
2253
2254 l = (digest[ 0] << 0) | (digest[ 1] << 8) | (digest[ 2] << 16);
2255
2256 buf[ 0] = int_to_itoa64 (l & 0x3f); l >>= 6;
2257 buf[ 1] = int_to_itoa64 (l & 0x3f); l >>= 6;
2258 buf[ 2] = int_to_itoa64 (l & 0x3f); l >>= 6;
2259 buf[ 3] = int_to_itoa64 (l & 0x3f);
2260
2261 l = (digest[ 3] << 0) | (digest[ 4] << 8) | (digest[ 5] << 16);
2262
2263 buf[ 4] = int_to_itoa64 (l & 0x3f); l >>= 6;
2264 buf[ 5] = int_to_itoa64 (l & 0x3f); l >>= 6;
2265 buf[ 6] = int_to_itoa64 (l & 0x3f); l >>= 6;
2266 buf[ 7] = int_to_itoa64 (l & 0x3f);
2267
2268 l = (digest[ 6] << 0) | (digest[ 7] << 8) | (digest[ 8] << 16);
2269
2270 buf[ 8] = int_to_itoa64 (l & 0x3f); l >>= 6;
2271 buf[ 9] = int_to_itoa64 (l & 0x3f); l >>= 6;
2272 buf[10] = int_to_itoa64 (l & 0x3f); l >>= 6;
2273 buf[11] = int_to_itoa64 (l & 0x3f);
2274
2275 l = (digest[ 9] << 0) | (digest[10] << 8) | (digest[11] << 16);
2276
2277 buf[12] = int_to_itoa64 (l & 0x3f); l >>= 6;
2278 buf[13] = int_to_itoa64 (l & 0x3f); l >>= 6;
2279 buf[14] = int_to_itoa64 (l & 0x3f); l >>= 6;
2280 buf[15] = int_to_itoa64 (l & 0x3f);
2281
2282 l = (digest[12] << 0) | (digest[13] << 8) | (digest[14] << 16);
2283
2284 buf[16] = int_to_itoa64 (l & 0x3f); l >>= 6;
2285 buf[17] = int_to_itoa64 (l & 0x3f); l >>= 6;
2286 buf[18] = int_to_itoa64 (l & 0x3f); l >>= 6;
2287 buf[19] = int_to_itoa64 (l & 0x3f);
2288
2289 l = (digest[15] << 0) | (digest[16] << 8) | (digest[17] << 16);
2290
2291 buf[20] = int_to_itoa64 (l & 0x3f); l >>= 6;
2292 buf[21] = int_to_itoa64 (l & 0x3f); l >>= 6;
2293 buf[22] = int_to_itoa64 (l & 0x3f); l >>= 6;
2294 buf[23] = int_to_itoa64 (l & 0x3f);
2295
2296 l = (digest[18] << 0) | (digest[19] << 8) | (digest[20] << 16);
2297
2298 buf[24] = int_to_itoa64 (l & 0x3f); l >>= 6;
2299 buf[25] = int_to_itoa64 (l & 0x3f); l >>= 6;
2300 buf[26] = int_to_itoa64 (l & 0x3f); l >>= 6;
2301 buf[27] = int_to_itoa64 (l & 0x3f);
2302
2303 l = (digest[21] << 0) | (digest[22] << 8) | (digest[23] << 16);
2304
2305 buf[28] = int_to_itoa64 (l & 0x3f); l >>= 6;
2306 buf[29] = int_to_itoa64 (l & 0x3f); l >>= 6;
2307 buf[30] = int_to_itoa64 (l & 0x3f); l >>= 6;
2308 buf[31] = int_to_itoa64 (l & 0x3f);
2309
2310 l = (digest[24] << 0) | (digest[25] << 8) | (digest[26] << 16);
2311
2312 buf[32] = int_to_itoa64 (l & 0x3f); l >>= 6;
2313 buf[33] = int_to_itoa64 (l & 0x3f); l >>= 6;
2314 buf[34] = int_to_itoa64 (l & 0x3f); l >>= 6;
2315 buf[35] = int_to_itoa64 (l & 0x3f);
2316
2317 l = (digest[27] << 0) | (digest[28] << 8) | (digest[29] << 16);
2318
2319 buf[36] = int_to_itoa64 (l & 0x3f); l >>= 6;
2320 buf[37] = int_to_itoa64 (l & 0x3f); l >>= 6;
2321 buf[38] = int_to_itoa64 (l & 0x3f); l >>= 6;
2322 buf[39] = int_to_itoa64 (l & 0x3f);
2323
2324 l = (digest[30] << 0) | (digest[31] << 8) | (digest[32] << 16);
2325
2326 buf[40] = int_to_itoa64 (l & 0x3f); l >>= 6;
2327 buf[41] = int_to_itoa64 (l & 0x3f); l >>= 6;
2328 buf[42] = int_to_itoa64 (l & 0x3f); l >>= 6;
2329 //buf[43] = int_to_itoa64 (l & 0x3f);
2330 }
2331
2332 /**
2333 * tty
2334 */
2335
2336 #ifdef LINUX
2337 static struct termio savemodes;
2338 static int havemodes = 0;
2339
2340 int tty_break()
2341 {
2342 struct termio modmodes;
2343
2344 if (ioctl (fileno (stdin), TCGETA, &savemodes) < 0) return -1;
2345
2346 havemodes = 1;
2347
2348 modmodes = savemodes;
2349 modmodes.c_lflag &= ~ICANON;
2350 modmodes.c_cc[VMIN] = 1;
2351 modmodes.c_cc[VTIME] = 0;
2352
2353 return ioctl (fileno (stdin), TCSETAW, &modmodes);
2354 }
2355
2356 int tty_getchar()
2357 {
2358 fd_set rfds;
2359
2360 FD_ZERO (&rfds);
2361
2362 FD_SET (fileno (stdin), &rfds);
2363
2364 struct timeval tv;
2365
2366 tv.tv_sec = 1;
2367 tv.tv_usec = 0;
2368
2369 int retval = select (1, &rfds, NULL, NULL, &tv);
2370
2371 if (retval == 0) return 0;
2372 if (retval == -1) return -1;
2373
2374 return getchar();
2375 }
2376
2377 int tty_fix()
2378 {
2379 if (!havemodes) return 0;
2380
2381 return ioctl (fileno (stdin), TCSETAW, &savemodes);
2382 }
2383 #endif
2384
2385 #ifdef OSX
2386 static struct termios savemodes;
2387 static int havemodes = 0;
2388
2389 int tty_break()
2390 {
2391 struct termios modmodes;
2392
2393 if (ioctl (fileno (stdin), TIOCGETA, &savemodes) < 0) return -1;
2394
2395 havemodes = 1;
2396
2397 modmodes = savemodes;
2398 modmodes.c_lflag &= ~ICANON;
2399 modmodes.c_cc[VMIN] = 1;
2400 modmodes.c_cc[VTIME] = 0;
2401
2402 return ioctl (fileno (stdin), TIOCSETAW, &modmodes);
2403 }
2404
2405 int tty_getchar()
2406 {
2407 fd_set rfds;
2408
2409 FD_ZERO (&rfds);
2410
2411 FD_SET (fileno (stdin), &rfds);
2412
2413 struct timeval tv;
2414
2415 tv.tv_sec = 1;
2416 tv.tv_usec = 0;
2417
2418 int retval = select (1, &rfds, NULL, NULL, &tv);
2419
2420 if (retval == 0) return 0;
2421 if (retval == -1) return -1;
2422
2423 return getchar();
2424 }
2425
2426 int tty_fix()
2427 {
2428 if (!havemodes) return 0;
2429
2430 return ioctl (fileno (stdin), TIOCSETAW, &savemodes);
2431 }
2432 #endif
2433
2434 #ifdef WIN
2435 static DWORD saveMode = 0;
2436
2437 int tty_break()
2438 {
2439 HANDLE stdinHandle = GetStdHandle (STD_INPUT_HANDLE);
2440
2441 GetConsoleMode (stdinHandle, &saveMode);
2442 SetConsoleMode (stdinHandle, ENABLE_PROCESSED_INPUT);
2443
2444 return 0;
2445 }
2446
2447 int tty_getchar()
2448 {
2449 HANDLE stdinHandle = GetStdHandle (STD_INPUT_HANDLE);
2450
2451 DWORD rc = WaitForSingleObject (stdinHandle, 1000);
2452
2453 if (rc == WAIT_TIMEOUT) return 0;
2454 if (rc == WAIT_ABANDONED) return -1;
2455 if (rc == WAIT_FAILED) return -1;
2456
2457 // The whole ReadConsoleInput () part is a workaround.
2458 // For some unknown reason, maybe a mingw bug, a random signal
2459 // is sent to stdin which unblocks WaitForSingleObject () and sets rc 0.
2460 // Then it wants to read with getche () a keyboard input
2461 // which has never been made.
2462
2463 INPUT_RECORD buf[100];
2464
2465 DWORD num = 0;
2466
2467 memset (buf, 0, sizeof (buf));
2468
2469 ReadConsoleInput (stdinHandle, buf, 100, &num);
2470
2471 FlushConsoleInputBuffer (stdinHandle);
2472
2473 for (uint i = 0; i < num; i++)
2474 {
2475 if (buf[i].EventType != KEY_EVENT) continue;
2476
2477 KEY_EVENT_RECORD KeyEvent = buf[i].Event.KeyEvent;
2478
2479 if (KeyEvent.bKeyDown != TRUE) continue;
2480
2481 return KeyEvent.uChar.AsciiChar;
2482 }
2483
2484 return 0;
2485 }
2486
2487 int tty_fix()
2488 {
2489 HANDLE stdinHandle = GetStdHandle (STD_INPUT_HANDLE);
2490
2491 SetConsoleMode (stdinHandle, saveMode);
2492
2493 return 0;
2494 }
2495 #endif
2496
2497 /**
2498 * mem alloc
2499 */
2500
2501 #define MSG_ENOMEM "Insufficient memory available"
2502
2503 void *mycalloc (size_t nmemb, size_t size)
2504 {
2505 void *p = calloc (nmemb, size);
2506
2507 if (p == NULL)
2508 {
2509 log_error ("ERROR: %s", MSG_ENOMEM);
2510
2511 exit (-1);
2512 }
2513
2514 return (p);
2515 }
2516
2517 void *mymalloc (size_t size)
2518 {
2519 void *p = malloc (size);
2520
2521 if (p == NULL)
2522 {
2523 log_error ("ERROR: %s", MSG_ENOMEM);
2524
2525 exit (-1);
2526 }
2527
2528 memset (p, 0, size);
2529
2530 return (p);
2531 }
2532
2533 void myfree (void *ptr)
2534 {
2535 if (ptr == NULL) return;
2536
2537 free (ptr);
2538 }
2539
2540 void *myrealloc (void *ptr, size_t oldsz, size_t add)
2541 {
2542 void *p = realloc (ptr, oldsz + add);
2543
2544 if (p == NULL)
2545 {
2546 log_error ("ERROR: %s", MSG_ENOMEM);
2547
2548 exit (-1);
2549 }
2550
2551 memset ((char *) p + oldsz, 0, add);
2552
2553 return (p);
2554 }
2555
2556 char *mystrdup (const char *s)
2557 {
2558 const size_t len = strlen (s);
2559
2560 char *b = (char *) mymalloc (len + 1);
2561
2562 memcpy (b, s, len);
2563
2564 return (b);
2565 }
2566
2567 FILE *logfile_open (char *logfile)
2568 {
2569 FILE *fp = fopen (logfile, "ab");
2570
2571 if (fp == NULL)
2572 {
2573 fp = stdout;
2574 }
2575
2576 return fp;
2577 }
2578
2579 void logfile_close (FILE *fp)
2580 {
2581 if (fp == stdout) return;
2582
2583 fclose (fp);
2584 }
2585
2586 void logfile_append (const char *fmt, ...)
2587 {
2588 if (data.logfile_disable == 1) return;
2589
2590 FILE *fp = logfile_open (data.logfile);
2591
2592 va_list ap;
2593
2594 va_start (ap, fmt);
2595
2596 vfprintf (fp, fmt, ap);
2597
2598 va_end (ap);
2599
2600 fputc ('\n', fp);
2601
2602 fflush (fp);
2603
2604 logfile_close (fp);
2605 }
2606
2607 int logfile_generate_id ()
2608 {
2609 const int n = rand ();
2610
2611 time_t t;
2612
2613 time (&t);
2614
2615 return t + n;
2616 }
2617
2618 char *logfile_generate_topid ()
2619 {
2620 const int id = logfile_generate_id ();
2621
2622 char *topid = (char *) mymalloc (1 + 16 + 1);
2623
2624 snprintf (topid, 1 + 16, "TOP%08x", id);
2625
2626 return topid;
2627 }
2628
2629 char *logfile_generate_subid ()
2630 {
2631 const int id = logfile_generate_id ();
2632
2633 char *subid = (char *) mymalloc (1 + 16 + 1);
2634
2635 snprintf (subid, 1 + 16, "SUB%08x", id);
2636
2637 return subid;
2638 }
2639
2640 /**
2641 * system
2642 */
2643
2644 #if F_SETLKW
2645 void lock_file (FILE *fp)
2646 {
2647 struct flock lock;
2648
2649 memset (&lock, 0, sizeof (struct flock));
2650
2651 lock.l_type = F_WRLCK;
2652 while (fcntl(fileno(fp), F_SETLKW, &lock))
2653 {
2654 if (errno != EINTR)
2655 {
2656 log_error ("ERROR: Failed acquiring write lock: %s", strerror (errno));
2657
2658 exit (-1);
2659 }
2660 }
2661 }
2662
2663 void unlock_file (FILE *fp)
2664 {
2665 struct flock lock;
2666
2667 memset (&lock, 0, sizeof (struct flock));
2668
2669 lock.l_type = F_UNLCK;
2670 fcntl(fileno(fp), F_SETLK, &lock);
2671 }
2672 #endif // F_SETLKW
2673
2674 #ifdef WIN
2675 void fsync (int fd)
2676 {
2677 HANDLE h = (HANDLE) _get_osfhandle (fd);
2678
2679 FlushFileBuffers (h);
2680 }
2681 #endif
2682
2683 /**
2684 * thermal
2685 */
2686
2687 #ifdef HAVE_HWMON
2688
2689 int get_adapters_num_adl (void *adl, int *iNumberAdapters)
2690 {
2691 if (hm_ADL_Adapter_NumberOfAdapters_Get ((ADL_PTR *) adl, iNumberAdapters) != ADL_OK) return -1;
2692
2693 if (iNumberAdapters == 0)
2694 {
2695 log_info ("WARN: No ADL adapters found.");
2696
2697 return -1;
2698 }
2699
2700 return 0;
2701 }
2702
2703 /*
2704 int hm_show_performance_level (HM_LIB hm_dll, int iAdapterIndex)
2705 {
2706 ADLODPerformanceLevels *lpOdPerformanceLevels = NULL;
2707 ADLODParameters lpOdParameters;
2708
2709 lpOdParameters.iSize = sizeof (ADLODParameters);
2710 size_t plevels_size = 0;
2711
2712 if (hm_ADL_Overdrive_ODParameters_Get (hm_dll, iAdapterIndex, &lpOdParameters) != ADL_OK) return -1;
2713
2714 log_info ("[DEBUG] %s, adapter %d performance level (%d) : %s %s",
2715 __func__, iAdapterIndex,
2716 lpOdParameters.iNumberOfPerformanceLevels,
2717 (lpOdParameters.iActivityReportingSupported) ? "activity reporting" : "",
2718 (lpOdParameters.iDiscretePerformanceLevels) ? "discrete performance levels" : "performance ranges");
2719
2720 plevels_size = sizeof (ADLODPerformanceLevels) + sizeof (ADLODPerformanceLevel) * (lpOdParameters.iNumberOfPerformanceLevels - 1);
2721
2722 lpOdPerformanceLevels = (ADLODPerformanceLevels *) mymalloc (plevels_size);
2723
2724 lpOdPerformanceLevels->iSize = sizeof (ADLODPerformanceLevels) + sizeof (ADLODPerformanceLevel) * (lpOdParameters.iNumberOfPerformanceLevels - 1);
2725
2726 if (hm_ADL_Overdrive_ODPerformanceLevels_Get (hm_dll, iAdapterIndex, 0, lpOdPerformanceLevels) != ADL_OK) return -1;
2727
2728 for (int j = 0; j < lpOdParameters.iNumberOfPerformanceLevels; j++)
2729 log_info ("[DEBUG] %s, adapter %d, level %d : engine %d, memory %d, voltage: %d",
2730 __func__, iAdapterIndex, j,
2731 lpOdPerformanceLevels->aLevels[j].iEngineClock / 100, lpOdPerformanceLevels->aLevels[j].iMemoryClock / 100, lpOdPerformanceLevels->aLevels[j].iVddc);
2732
2733 myfree (lpOdPerformanceLevels);
2734
2735 return 0;
2736 }
2737 */
2738
2739 LPAdapterInfo hm_get_adapter_info_adl (void *adl, int iNumberAdapters)
2740 {
2741 size_t AdapterInfoSize = iNumberAdapters * sizeof (AdapterInfo);
2742
2743 LPAdapterInfo lpAdapterInfo = (LPAdapterInfo) mymalloc (AdapterInfoSize);
2744
2745 if (hm_ADL_Adapter_AdapterInfo_Get ((ADL_PTR *) adl, lpAdapterInfo, AdapterInfoSize) != ADL_OK) return NULL;
2746
2747 return lpAdapterInfo;
2748 }
2749
2750 int hm_get_adapter_index_nvapi (HM_ADAPTER_NVAPI nvapiGPUHandle[DEVICES_MAX])
2751 {
2752 NvU32 pGpuCount;
2753
2754 if (hm_NvAPI_EnumPhysicalGPUs (data.hm_nvapi, nvapiGPUHandle, &pGpuCount) != NVAPI_OK) return (0);
2755
2756 if (pGpuCount == 0)
2757 {
2758 log_info ("WARN: No NvAPI adapters found");
2759
2760 return (0);
2761 }
2762
2763 return (pGpuCount);
2764 }
2765
2766 int hm_get_adapter_index_nvml (HM_ADAPTER_NVML nvmlGPUHandle[DEVICES_MAX])
2767 {
2768 int pGpuCount = 0;
2769
2770 for (uint i = 0; i < DEVICES_MAX; i++)
2771 {
2772 if (hm_NVML_nvmlDeviceGetHandleByIndex (data.hm_nvml, 1, i, &nvmlGPUHandle[i]) != NVML_SUCCESS) break;
2773
2774 // can be used to determine if the device by index matches the cuda device by index
2775 // char name[100]; memset (name, 0, sizeof (name));
2776 // hm_NVML_nvmlDeviceGetName (data.hm_nvml, nvGPUHandle[i], name, sizeof (name) - 1);
2777
2778 pGpuCount++;
2779 }
2780
2781 if (pGpuCount == 0)
2782 {
2783 log_info ("WARN: No NVML adapters found");
2784
2785 return (0);
2786 }
2787
2788 return (pGpuCount);
2789 }
2790
2791 /*
2792 //
2793 // does not help at all, since ADL does not assign different bus id, device id when we have multi GPU setups
2794 //
2795
2796 int hm_get_opencl_device_index (hm_attrs_t *hm_device, uint num_adl_adapters, int bus_num, int dev_num)
2797 {
2798 u32 idx = -1;
2799
2800 for (uint i = 0; i < num_adl_adapters; i++)
2801 {
2802 int opencl_bus_num = hm_device[i].busid;
2803 int opencl_dev_num = hm_device[i].devid;
2804
2805 if ((opencl_bus_num == bus_num) && (opencl_dev_num == dev_num))
2806 {
2807 idx = i;
2808
2809 break;
2810 }
2811 }
2812
2813 if (idx >= DEVICES_MAX) return -1;
2814
2815 return idx;
2816 }
2817
2818 void hm_get_opencl_busid_devid (hm_attrs_t *hm_device, uint opencl_num_devices, cl_device_id *devices)
2819 {
2820 for (uint i = 0; i < opencl_num_devices; i++)
2821 {
2822 cl_device_topology_amd device_topology;
2823
2824 hc_clGetDeviceInfo (devices[i], CL_DEVICE_TOPOLOGY_AMD, sizeof (device_topology), &device_topology, NULL);
2825
2826 hm_device[i].busid = device_topology.pcie.bus;
2827 hm_device[i].devid = device_topology.pcie.device;
2828 }
2829 }
2830 */
2831
2832 void hm_sort_adl_adapters_by_busid_devid (u32 *valid_adl_device_list, int num_adl_adapters, LPAdapterInfo lpAdapterInfo)
2833 {
2834 // basically bubble sort
2835
2836 for (int i = 0; i < num_adl_adapters; i++)
2837 {
2838 for (int j = 0; j < num_adl_adapters - 1; j++)
2839 {
2840 // get info of adapter [x]
2841
2842 u32 adapter_index_x = valid_adl_device_list[j];
2843 AdapterInfo info_x = lpAdapterInfo[adapter_index_x];
2844
2845 u32 bus_num_x = info_x.iBusNumber;
2846 u32 dev_num_x = info_x.iDeviceNumber;
2847
2848 // get info of adapter [y]
2849
2850 u32 adapter_index_y = valid_adl_device_list[j + 1];
2851 AdapterInfo info_y = lpAdapterInfo[adapter_index_y];
2852
2853 u32 bus_num_y = info_y.iBusNumber;
2854 u32 dev_num_y = info_y.iDeviceNumber;
2855
2856 uint need_swap = 0;
2857
2858 if (bus_num_y < bus_num_x)
2859 {
2860 need_swap = 1;
2861 }
2862 else if (bus_num_y == bus_num_x)
2863 {
2864 if (dev_num_y < dev_num_x)
2865 {
2866 need_swap = 1;
2867 }
2868 }
2869
2870 if (need_swap == 1)
2871 {
2872 u32 temp = valid_adl_device_list[j + 1];
2873
2874 valid_adl_device_list[j + 1] = valid_adl_device_list[j];
2875 valid_adl_device_list[j + 0] = temp;
2876 }
2877 }
2878 }
2879 }
2880
2881 u32 *hm_get_list_valid_adl_adapters (int iNumberAdapters, int *num_adl_adapters, LPAdapterInfo lpAdapterInfo)
2882 {
2883 *num_adl_adapters = 0;
2884
2885 u32 *adl_adapters = NULL;
2886
2887 int *bus_numbers = NULL;
2888 int *device_numbers = NULL;
2889
2890 for (int i = 0; i < iNumberAdapters; i++)
2891 {
2892 AdapterInfo info = lpAdapterInfo[i];
2893
2894 if (strlen (info.strUDID) < 1) continue;
2895
2896 #ifdef WIN
2897 if (info.iVendorID != 1002) continue;
2898 #else
2899 if (info.iVendorID != 0x1002) continue;
2900 #endif
2901
2902 if (info.iBusNumber < 0) continue;
2903 if (info.iDeviceNumber < 0) continue;
2904
2905 int found = 0;
2906
2907 for (int pos = 0; pos < *num_adl_adapters; pos++)
2908 {
2909 if ((bus_numbers[pos] == info.iBusNumber) && (device_numbers[pos] == info.iDeviceNumber))
2910 {
2911 found = 1;
2912 break;
2913 }
2914 }
2915
2916 if (found) continue;
2917
2918 // add it to the list
2919
2920 adl_adapters = (u32 *) myrealloc (adl_adapters, (*num_adl_adapters) * sizeof (int), sizeof (int));
2921
2922 adl_adapters[*num_adl_adapters] = i;
2923
2924 // rest is just bookkeeping
2925
2926 bus_numbers = (int*) myrealloc (bus_numbers, (*num_adl_adapters) * sizeof (int), sizeof (int));
2927 device_numbers = (int*) myrealloc (device_numbers, (*num_adl_adapters) * sizeof (int), sizeof (int));
2928
2929 bus_numbers[*num_adl_adapters] = info.iBusNumber;
2930 device_numbers[*num_adl_adapters] = info.iDeviceNumber;
2931
2932 (*num_adl_adapters)++;
2933 }
2934
2935 myfree (bus_numbers);
2936 myfree (device_numbers);
2937
2938 // sort the list by increasing bus id, device id number
2939
2940 hm_sort_adl_adapters_by_busid_devid (adl_adapters, *num_adl_adapters, lpAdapterInfo);
2941
2942 return adl_adapters;
2943 }
2944
2945 int hm_check_fanspeed_control (void *adl, hm_attrs_t *hm_device, u32 *valid_adl_device_list, int num_adl_adapters, LPAdapterInfo lpAdapterInfo)
2946 {
2947 // loop through all valid devices
2948
2949 for (int i = 0; i < num_adl_adapters; i++)
2950 {
2951 u32 adapter_index = valid_adl_device_list[i];
2952
2953 // get AdapterInfo
2954
2955 AdapterInfo info = lpAdapterInfo[adapter_index];
2956
2957 // unfortunately this doesn't work since bus id and dev id are not unique
2958 // int opencl_device_index = hm_get_opencl_device_index (hm_device, num_adl_adapters, info.iBusNumber, info.iDeviceNumber);
2959 // if (opencl_device_index == -1) continue;
2960
2961 int opencl_device_index = i;
2962
2963 // if (hm_show_performance_level (adl, info.iAdapterIndex) != 0) return -1;
2964
2965 // get fanspeed info
2966
2967 if (hm_device[opencl_device_index].od_version == 5)
2968 {
2969 ADLFanSpeedInfo FanSpeedInfo;
2970
2971 memset (&FanSpeedInfo, 0, sizeof (ADLFanSpeedInfo));
2972
2973 FanSpeedInfo.iSize = sizeof (ADLFanSpeedInfo);
2974
2975 if (hm_ADL_Overdrive5_FanSpeedInfo_Get (adl, info.iAdapterIndex, 0, &FanSpeedInfo) != ADL_OK) return -1;
2976
2977 // check read and write capability in fanspeedinfo
2978
2979 if ((FanSpeedInfo.iFlags & ADL_DL_FANCTRL_SUPPORTS_PERCENT_READ) &&
2980 (FanSpeedInfo.iFlags & ADL_DL_FANCTRL_SUPPORTS_PERCENT_WRITE))
2981 {
2982 hm_device[opencl_device_index].fan_get_supported = 1;
2983 }
2984 else
2985 {
2986 hm_device[opencl_device_index].fan_get_supported = 0;
2987 }
2988 }
2989 else // od_version == 6
2990 {
2991 ADLOD6FanSpeedInfo faninfo;
2992
2993 memset (&faninfo, 0, sizeof (faninfo));
2994
2995 if (hm_ADL_Overdrive6_FanSpeed_Get (adl, info.iAdapterIndex, &faninfo) != ADL_OK) return -1;
2996
2997 // check read capability in fanspeedinfo
2998
2999 if (faninfo.iSpeedType & ADL_OD6_FANSPEED_TYPE_PERCENT)
3000 {
3001 hm_device[opencl_device_index].fan_get_supported = 1;
3002 }
3003 else
3004 {
3005 hm_device[opencl_device_index].fan_get_supported = 0;
3006 }
3007 }
3008 }
3009
3010 return 0;
3011 }
3012
3013 int hm_get_overdrive_version (void *adl, hm_attrs_t *hm_device, u32 *valid_adl_device_list, int num_adl_adapters, LPAdapterInfo lpAdapterInfo)
3014 {
3015 for (int i = 0; i < num_adl_adapters; i++)
3016 {
3017 u32 adapter_index = valid_adl_device_list[i];
3018
3019 // get AdapterInfo
3020
3021 AdapterInfo info = lpAdapterInfo[adapter_index];
3022
3023 // get overdrive version
3024
3025 int od_supported = 0;
3026 int od_enabled = 0;
3027 int od_version = 0;
3028
3029 if (hm_ADL_Overdrive_Caps (adl, info.iAdapterIndex, &od_supported, &od_enabled, &od_version) != ADL_OK) return -1;
3030
3031 // store the overdrive version in hm_device
3032
3033 // unfortunately this doesn't work since bus id and dev id are not unique
3034 // int opencl_device_index = hm_get_opencl_device_index (hm_device, num_adl_adapters, info.iBusNumber, info.iDeviceNumber);
3035 // if (opencl_device_index == -1) continue;
3036
3037 int opencl_device_index = i;
3038
3039 hm_device[opencl_device_index].od_version = od_version;
3040 }
3041
3042 return 0;
3043 }
3044
3045 int hm_get_adapter_index_adl (hm_attrs_t *hm_device, u32 *valid_adl_device_list, int num_adl_adapters, LPAdapterInfo lpAdapterInfo)
3046 {
3047 for (int i = 0; i < num_adl_adapters; i++)
3048 {
3049 u32 adapter_index = valid_adl_device_list[i];
3050
3051 // get AdapterInfo
3052
3053 AdapterInfo info = lpAdapterInfo[adapter_index];
3054
3055 // store the iAdapterIndex in hm_device
3056
3057 // unfortunately this doesn't work since bus id and dev id are not unique
3058 // int opencl_device_index = hm_get_opencl_device_index (hm_device, num_adl_adapters, info.iBusNumber, info.iDeviceNumber);
3059 // if (opencl_device_index == -1) continue;
3060
3061 int opencl_device_index = i;
3062
3063 hm_device[opencl_device_index].adl = info.iAdapterIndex;
3064 }
3065
3066 return num_adl_adapters;
3067 }
3068
3069 int hm_get_threshold_slowdown_with_device_id (const uint device_id)
3070 {
3071 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3072
3073 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3074 {
3075 if (data.hm_adl)
3076 {
3077 if (data.hm_device[device_id].od_version == 5)
3078 {
3079
3080 }
3081 else if (data.hm_device[device_id].od_version == 6)
3082 {
3083 int CurrentValue = 0;
3084 int DefaultValue = 0;
3085
3086 if (hm_ADL_Overdrive6_TargetTemperatureData_Get (data.hm_adl, data.hm_device[device_id].adl, &CurrentValue, &DefaultValue) != ADL_OK) return -1;
3087
3088 // the return value has never been tested since hm_ADL_Overdrive6_TargetTemperatureData_Get() never worked on any system. expect problems.
3089
3090 return DefaultValue;
3091 }
3092 }
3093 }
3094
3095 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3096 {
3097 int target = 0;
3098
3099 if (hm_NVML_nvmlDeviceGetTemperatureThreshold (data.hm_nvml, 1, data.hm_device[device_id].nvml, NVML_TEMPERATURE_THRESHOLD_SLOWDOWN, (unsigned int *) &target) != NVML_SUCCESS) return -1;
3100
3101 return target;
3102 }
3103
3104 return -1;
3105 }
3106
3107 int hm_get_threshold_shutdown_with_device_id (const uint device_id)
3108 {
3109 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3110
3111 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3112 {
3113 if (data.hm_adl)
3114 {
3115 if (data.hm_device[device_id].od_version == 5)
3116 {
3117
3118 }
3119 else if (data.hm_device[device_id].od_version == 6)
3120 {
3121
3122 }
3123 }
3124 }
3125
3126 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3127 {
3128 int target = 0;
3129
3130 if (hm_NVML_nvmlDeviceGetTemperatureThreshold (data.hm_nvml, 1, data.hm_device[device_id].nvml, NVML_TEMPERATURE_THRESHOLD_SHUTDOWN, (unsigned int *) &target) != NVML_SUCCESS) return -1;
3131
3132 return target;
3133 }
3134
3135 return -1;
3136 }
3137
3138 int hm_get_temperature_with_device_id (const uint device_id)
3139 {
3140 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3141
3142 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3143 {
3144 if (data.hm_adl)
3145 {
3146 if (data.hm_device[device_id].od_version == 5)
3147 {
3148 ADLTemperature Temperature;
3149
3150 Temperature.iSize = sizeof (ADLTemperature);
3151
3152 if (hm_ADL_Overdrive5_Temperature_Get (data.hm_adl, data.hm_device[device_id].adl, 0, &Temperature) != ADL_OK) return -1;
3153
3154 return Temperature.iTemperature / 1000;
3155 }
3156 else if (data.hm_device[device_id].od_version == 6)
3157 {
3158 int Temperature = 0;
3159
3160 if (hm_ADL_Overdrive6_Temperature_Get (data.hm_adl, data.hm_device[device_id].adl, &Temperature) != ADL_OK) return -1;
3161
3162 return Temperature / 1000;
3163 }
3164 }
3165 }
3166
3167 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3168 {
3169 int temperature = 0;
3170
3171 if (hm_NVML_nvmlDeviceGetTemperature (data.hm_nvml, 1, data.hm_device[device_id].nvml, NVML_TEMPERATURE_GPU, (uint *) &temperature) != NVML_SUCCESS) return -1;
3172
3173 return temperature;
3174 }
3175
3176 return -1;
3177 }
3178
3179 int hm_get_fanpolicy_with_device_id (const uint device_id)
3180 {
3181 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3182
3183 if (data.hm_device[device_id].fan_get_supported == 1)
3184 {
3185 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3186 {
3187 if (data.hm_adl)
3188 {
3189 if (data.hm_device[device_id].od_version == 5)
3190 {
3191 ADLFanSpeedValue lpFanSpeedValue;
3192
3193 memset (&lpFanSpeedValue, 0, sizeof (lpFanSpeedValue));
3194
3195 lpFanSpeedValue.iSize = sizeof (lpFanSpeedValue);
3196 lpFanSpeedValue.iSpeedType = ADL_DL_FANCTRL_SPEED_TYPE_PERCENT;
3197
3198 if (hm_ADL_Overdrive5_FanSpeed_Get (data.hm_adl, data.hm_device[device_id].adl, 0, &lpFanSpeedValue) != ADL_OK) return -1;
3199
3200 return (lpFanSpeedValue.iFanSpeed & ADL_DL_FANCTRL_FLAG_USER_DEFINED_SPEED) ? 0 : 1;
3201 }
3202 else // od_version == 6
3203 {
3204 return 1;
3205 }
3206 }
3207 }
3208
3209 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3210 {
3211 return 1;
3212 }
3213 }
3214
3215 return -1;
3216 }
3217
3218 int hm_get_fanspeed_with_device_id (const uint device_id)
3219 {
3220 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3221
3222 if (data.hm_device[device_id].fan_get_supported == 1)
3223 {
3224 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3225 {
3226 if (data.hm_adl)
3227 {
3228 if (data.hm_device[device_id].od_version == 5)
3229 {
3230 ADLFanSpeedValue lpFanSpeedValue;
3231
3232 memset (&lpFanSpeedValue, 0, sizeof (lpFanSpeedValue));
3233
3234 lpFanSpeedValue.iSize = sizeof (lpFanSpeedValue);
3235 lpFanSpeedValue.iSpeedType = ADL_DL_FANCTRL_SPEED_TYPE_PERCENT;
3236 lpFanSpeedValue.iFlags = ADL_DL_FANCTRL_FLAG_USER_DEFINED_SPEED;
3237
3238 if (hm_ADL_Overdrive5_FanSpeed_Get (data.hm_adl, data.hm_device[device_id].adl, 0, &lpFanSpeedValue) != ADL_OK) return -1;
3239
3240 return lpFanSpeedValue.iFanSpeed;
3241 }
3242 else // od_version == 6
3243 {
3244 ADLOD6FanSpeedInfo faninfo;
3245
3246 memset (&faninfo, 0, sizeof (faninfo));
3247
3248 if (hm_ADL_Overdrive6_FanSpeed_Get (data.hm_adl, data.hm_device[device_id].adl, &faninfo) != ADL_OK) return -1;
3249
3250 return faninfo.iFanSpeedPercent;
3251 }
3252 }
3253 }
3254
3255 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3256 {
3257 int speed = 0;
3258
3259 if (hm_NVML_nvmlDeviceGetFanSpeed (data.hm_nvml, 0, data.hm_device[device_id].nvml, (uint *) &speed) != NVML_SUCCESS) return -1;
3260
3261 return speed;
3262 }
3263 }
3264
3265 return -1;
3266 }
3267
3268 int hm_get_buslanes_with_device_id (const uint device_id)
3269 {
3270 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3271
3272 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3273 {
3274 if (data.hm_adl)
3275 {
3276 ADLPMActivity PMActivity;
3277
3278 PMActivity.iSize = sizeof (ADLPMActivity);
3279
3280 if (hm_ADL_Overdrive_CurrentActivity_Get (data.hm_adl, data.hm_device[device_id].adl, &PMActivity) != ADL_OK) return -1;
3281
3282 return PMActivity.iCurrentBusLanes;
3283 }
3284 }
3285
3286 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3287 {
3288 unsigned int currLinkWidth;
3289
3290 if (hm_NVML_nvmlDeviceGetCurrPcieLinkWidth (data.hm_nvml, 1, data.hm_device[device_id].nvml, &currLinkWidth) != NVML_SUCCESS) return -1;
3291
3292 return currLinkWidth;
3293 }
3294
3295 return -1;
3296 }
3297
3298 int hm_get_utilization_with_device_id (const uint device_id)
3299 {
3300 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3301
3302 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3303 {
3304 if (data.hm_adl)
3305 {
3306 ADLPMActivity PMActivity;
3307
3308 PMActivity.iSize = sizeof (ADLPMActivity);
3309
3310 if (hm_ADL_Overdrive_CurrentActivity_Get (data.hm_adl, data.hm_device[device_id].adl, &PMActivity) != ADL_OK) return -1;
3311
3312 return PMActivity.iActivityPercent;
3313 }
3314 }
3315
3316 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3317 {
3318 nvmlUtilization_t utilization;
3319
3320 if (hm_NVML_nvmlDeviceGetUtilizationRates (data.hm_nvml, 1, data.hm_device[device_id].nvml, &utilization) != NVML_SUCCESS) return -1;
3321
3322 return utilization.gpu;
3323 }
3324
3325 return -1;
3326 }
3327
3328 int hm_get_memoryspeed_with_device_id (const uint device_id)
3329 {
3330 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3331
3332 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3333 {
3334 if (data.hm_adl)
3335 {
3336 ADLPMActivity PMActivity;
3337
3338 PMActivity.iSize = sizeof (ADLPMActivity);
3339
3340 if (hm_ADL_Overdrive_CurrentActivity_Get (data.hm_adl, data.hm_device[device_id].adl, &PMActivity) != ADL_OK) return -1;
3341
3342 return PMActivity.iMemoryClock / 100;
3343 }
3344 }
3345
3346 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3347 {
3348 unsigned int clock;
3349
3350 if (hm_NVML_nvmlDeviceGetClockInfo (data.hm_nvml, 1, data.hm_device[device_id].nvml, NVML_CLOCK_MEM, &clock) != NVML_SUCCESS) return -1;
3351
3352 return clock;
3353 }
3354
3355 return -1;
3356 }
3357
3358 int hm_get_corespeed_with_device_id (const uint device_id)
3359 {
3360 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3361
3362 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3363 {
3364 if (data.hm_adl)
3365 {
3366 ADLPMActivity PMActivity;
3367
3368 PMActivity.iSize = sizeof (ADLPMActivity);
3369
3370 if (hm_ADL_Overdrive_CurrentActivity_Get (data.hm_adl, data.hm_device[device_id].adl, &PMActivity) != ADL_OK) return -1;
3371
3372 return PMActivity.iEngineClock / 100;
3373 }
3374 }
3375
3376 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3377 {
3378 unsigned int clock;
3379
3380 if (hm_NVML_nvmlDeviceGetClockInfo (data.hm_nvml, 1, data.hm_device[device_id].nvml, NVML_CLOCK_SM, &clock) != NVML_SUCCESS) return -1;
3381
3382 return clock;
3383 }
3384
3385 return -1;
3386 }
3387
3388 int hm_get_throttle_with_device_id (const uint device_id)
3389 {
3390 if ((data.devices_param[device_id].device_type & CL_DEVICE_TYPE_GPU) == 0) return -1;
3391
3392 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_AMD)
3393 {
3394
3395 }
3396
3397 if (data.devices_param[device_id].device_vendor_id == VENDOR_ID_NV)
3398 {
3399 unsigned long long clocksThrottleReasons = 0;
3400 unsigned long long supportedThrottleReasons = 0;
3401
3402 if (hm_NVML_nvmlDeviceGetCurrentClocksThrottleReasons (data.hm_nvml, 1, data.hm_device[device_id].nvml, &clocksThrottleReasons) != NVML_SUCCESS) return -1;
3403 if (hm_NVML_nvmlDeviceGetSupportedClocksThrottleReasons (data.hm_nvml, 1, data.hm_device[device_id].nvml, &supportedThrottleReasons) != NVML_SUCCESS) return -1;
3404
3405 clocksThrottleReasons &= supportedThrottleReasons;
3406
3407 clocksThrottleReasons &= ~nvmlClocksThrottleReasonUnknown;
3408
3409 return (clocksThrottleReasons > 0);
3410 }
3411
3412 return -1;
3413 }
3414
3415 int hm_set_fanspeed_with_device_id_adl (const uint device_id, const int fanspeed, const int fanpolicy)
3416 {
3417 if (data.hm_device[device_id].fan_set_supported == 1)
3418 {
3419 if (data.hm_adl)
3420 {
3421 if (data.hm_device[device_id].od_version == 5)
3422 {
3423 ADLFanSpeedValue lpFanSpeedValue;
3424
3425 memset (&lpFanSpeedValue, 0, sizeof (lpFanSpeedValue));
3426
3427 lpFanSpeedValue.iSize = sizeof (lpFanSpeedValue);
3428 lpFanSpeedValue.iSpeedType = ADL_DL_FANCTRL_SPEED_TYPE_PERCENT;
3429 lpFanSpeedValue.iFlags = (fanpolicy == 1) ? ADL_DL_FANCTRL_FLAG_USER_DEFINED_SPEED : 0;
3430 lpFanSpeedValue.iFanSpeed = fanspeed;
3431
3432 if (hm_ADL_Overdrive5_FanSpeed_Set (data.hm_adl, data.hm_device[device_id].adl, 0, &lpFanSpeedValue) != ADL_OK) return -1;
3433
3434 return 0;
3435 }
3436 else // od_version == 6
3437 {
3438 ADLOD6FanSpeedValue fan_speed_value;
3439
3440 memset (&fan_speed_value, 0, sizeof (fan_speed_value));
3441
3442 fan_speed_value.iSpeedType = ADL_OD6_FANSPEED_TYPE_PERCENT;
3443 fan_speed_value.iFanSpeed = fanspeed;
3444
3445 if (hm_ADL_Overdrive6_FanSpeed_Set (data.hm_adl, data.hm_device[device_id].adl, &fan_speed_value) != ADL_OK) return -1;
3446
3447 return 0;
3448 }
3449 }
3450 }
3451
3452 return -1;
3453 }
3454
3455 int hm_set_fanspeed_with_device_id_nvapi (const uint device_id, const int fanspeed, const int fanpolicy)
3456 {
3457 if (data.hm_device[device_id].fan_set_supported == 1)
3458 {
3459 if (data.hm_nvapi)
3460 {
3461 NV_GPU_COOLER_LEVELS CoolerLevels = { 0 };
3462
3463 CoolerLevels.Version = GPU_COOLER_LEVELS_VER | sizeof (NV_GPU_COOLER_LEVELS);
3464
3465 CoolerLevels.Levels[0].Level = fanspeed;
3466 CoolerLevels.Levels[0].Policy = fanpolicy;
3467
3468 if (hm_NvAPI_GPU_SetCoolerLevels (data.hm_nvapi, data.hm_device[device_id].nvapi, 0, &CoolerLevels) != NVAPI_OK) return -1;
3469
3470 return 0;
3471 }
3472 }
3473
3474 return -1;
3475 }
3476
3477 int hm_set_fanspeed_with_device_id_xnvctrl (const uint device_id, const int fanspeed)
3478 {
3479 if (data.hm_device[device_id].fan_set_supported == 1)
3480 {
3481 if (data.hm_xnvctrl)
3482 {
3483 if (set_fan_speed_target (data.hm_xnvctrl, data.hm_device[device_id].xnvctrl, fanspeed) != 0) return -1;
3484
3485 return 0;
3486 }
3487 }
3488
3489 return -1;
3490 }
3491
3492 #endif // HAVE_HWMON
3493
3494 /**
3495 * maskprocessor
3496 */
3497
3498 void mp_css_to_uniq_tbl (uint css_cnt, cs_t *css, uint uniq_tbls[SP_PW_MAX][CHARSIZ])
3499 {
3500 /* generates a lookup table where key is the char itself for fastest possible lookup performance */
3501
3502 if (css_cnt > SP_PW_MAX)
3503 {
3504 log_error ("ERROR: Mask length is too long");
3505
3506 exit (-1);
3507 }
3508
3509 for (uint css_pos = 0; css_pos < css_cnt; css_pos++)
3510 {
3511 uint *uniq_tbl = uniq_tbls[css_pos];
3512
3513 uint *cs_buf = css[css_pos].cs_buf;
3514 uint cs_len = css[css_pos].cs_len;
3515
3516 for (uint cs_pos = 0; cs_pos < cs_len; cs_pos++)
3517 {
3518 uint c = cs_buf[cs_pos] & 0xff;
3519
3520 uniq_tbl[c] = 1;
3521 }
3522 }
3523 }
3524
3525 void mp_add_cs_buf (uint *in_buf, size_t in_len, cs_t *css, int css_cnt)
3526 {
3527 cs_t *cs = &css[css_cnt];
3528
3529 size_t css_uniq_sz = CHARSIZ * sizeof (uint);
3530
3531 uint *css_uniq = (uint *) mymalloc (css_uniq_sz);
3532
3533 size_t i;
3534
3535 for (i = 0; i < cs->cs_len; i++)
3536 {
3537 const uint u = cs->cs_buf[i];
3538
3539 css_uniq[u] = 1;
3540 }
3541
3542 for (i = 0; i < in_len; i++)
3543 {
3544 uint u = in_buf[i] & 0xff;
3545
3546 if (data.opts_type & OPTS_TYPE_PT_UPPER) u = toupper (u);
3547
3548 if (css_uniq[u] == 1) continue;
3549
3550 css_uniq[u] = 1;
3551
3552 cs->cs_buf[cs->cs_len] = u;
3553
3554 cs->cs_len++;
3555 }
3556
3557 myfree (css_uniq);
3558 }
3559
3560 void mp_expand (char *in_buf, size_t in_len, cs_t *mp_sys, cs_t *mp_usr, int mp_usr_offset, int interpret)
3561 {
3562 size_t in_pos;
3563
3564 for (in_pos = 0; in_pos < in_len; in_pos++)
3565 {
3566 uint p0 = in_buf[in_pos] & 0xff;
3567
3568 if (interpret == 1 && p0 == '?')
3569 {
3570 in_pos++;
3571
3572 if (in_pos == in_len) break;
3573
3574 uint p1 = in_buf[in_pos] & 0xff;
3575
3576 switch (p1)
3577 {
3578 case 'l': mp_add_cs_buf (mp_sys[0].cs_buf, mp_sys[0].cs_len, mp_usr, mp_usr_offset);
3579 break;
3580 case 'u': mp_add_cs_buf (mp_sys[1].cs_buf, mp_sys[1].cs_len, mp_usr, mp_usr_offset);
3581 break;
3582 case 'd': mp_add_cs_buf (mp_sys[2].cs_buf, mp_sys[2].cs_len, mp_usr, mp_usr_offset);
3583 break;
3584 case 's': mp_add_cs_buf (mp_sys[3].cs_buf, mp_sys[3].cs_len, mp_usr, mp_usr_offset);
3585 break;
3586 case 'a': mp_add_cs_buf (mp_sys[4].cs_buf, mp_sys[4].cs_len, mp_usr, mp_usr_offset);
3587 break;
3588 case 'b': mp_add_cs_buf (mp_sys[5].cs_buf, mp_sys[5].cs_len, mp_usr, mp_usr_offset);
3589 break;
3590 case '1': if (mp_usr[0].cs_len == 0) { log_error ("ERROR: Custom-charset 1 is undefined\n"); exit (-1); }
3591 mp_add_cs_buf (mp_usr[0].cs_buf, mp_usr[0].cs_len, mp_usr, mp_usr_offset);
3592 break;
3593 case '2': if (mp_usr[1].cs_len == 0) { log_error ("ERROR: Custom-charset 2 is undefined\n"); exit (-1); }
3594 mp_add_cs_buf (mp_usr[1].cs_buf, mp_usr[1].cs_len, mp_usr, mp_usr_offset);
3595 break;
3596 case '3': if (mp_usr[2].cs_len == 0) { log_error ("ERROR: Custom-charset 3 is undefined\n"); exit (-1); }
3597 mp_add_cs_buf (mp_usr[2].cs_buf, mp_usr[2].cs_len, mp_usr, mp_usr_offset);
3598 break;
3599 case '4': if (mp_usr[3].cs_len == 0) { log_error ("ERROR: Custom-charset 4 is undefined\n"); exit (-1); }
3600 mp_add_cs_buf (mp_usr[3].cs_buf, mp_usr[3].cs_len, mp_usr, mp_usr_offset);
3601 break;
3602 case '?': mp_add_cs_buf (&p0, 1, mp_usr, mp_usr_offset);
3603 break;
3604 default: log_error ("Syntax error: %s", in_buf);
3605 exit (-1);
3606 }
3607 }
3608 else
3609 {
3610 if (data.hex_charset)
3611 {
3612 in_pos++;
3613
3614 if (in_pos == in_len)
3615 {
3616 log_error ("ERROR: The hex-charset option always expects couples of exactly 2 hexadecimal chars, failed mask: %s", in_buf);
3617
3618 exit (-1);
3619 }
3620
3621 uint p1 = in_buf[in_pos] & 0xff;
3622
3623 if ((is_valid_hex_char (p0) == 0) || (is_valid_hex_char (p1) == 0))
3624 {
3625 log_error ("ERROR: Invalid hex character detected in mask %s", in_buf);
3626
3627 exit (-1);
3628 }
3629
3630 uint chr = 0;
3631
3632 chr = hex_convert (p1) << 0;
3633 chr |= hex_convert (p0) << 4;
3634
3635 mp_add_cs_buf (&chr, 1, mp_usr, mp_usr_offset);
3636 }
3637 else
3638 {
3639 uint chr = p0;
3640
3641 mp_add_cs_buf (&chr, 1, mp_usr, mp_usr_offset);
3642 }
3643 }
3644 }
3645 }
3646
3647 u64 mp_get_sum (uint css_cnt, cs_t *css)
3648 {
3649 u64 sum = 1;
3650
3651 for (uint css_pos = 0; css_pos < css_cnt; css_pos++)
3652 {
3653 sum *= css[css_pos].cs_len;
3654 }
3655
3656 return (sum);
3657 }
3658
3659 cs_t *mp_gen_css (char *mask_buf, size_t mask_len, cs_t *mp_sys, cs_t *mp_usr, uint *css_cnt)
3660 {
3661 cs_t *css = (cs_t *) mycalloc (256, sizeof (cs_t));
3662
3663 uint mask_pos;
3664 uint css_pos;
3665
3666 for (mask_pos = 0, css_pos = 0; mask_pos < mask_len; mask_pos++, css_pos++)
3667 {
3668 char p0 = mask_buf[mask_pos];
3669
3670 if (p0 == '?')
3671 {
3672 mask_pos++;
3673
3674 if (mask_pos == mask_len) break;
3675
3676 char p1 = mask_buf[mask_pos];
3677
3678 uint chr = p1;
3679
3680 switch (p1)
3681 {
3682 case 'l': mp_add_cs_buf (mp_sys[0].cs_buf, mp_sys[0].cs_len, css, css_pos);
3683 break;
3684 case 'u': mp_add_cs_buf (mp_sys[1].cs_buf, mp_sys[1].cs_len, css, css_pos);
3685 break;
3686 case 'd': mp_add_cs_buf (mp_sys[2].cs_buf, mp_sys[2].cs_len, css, css_pos);
3687 break;
3688 case 's': mp_add_cs_buf (mp_sys[3].cs_buf, mp_sys[3].cs_len, css, css_pos);
3689 break;
3690 case 'a': mp_add_cs_buf (mp_sys[4].cs_buf, mp_sys[4].cs_len, css, css_pos);
3691 break;
3692 case 'b': mp_add_cs_buf (mp_sys[5].cs_buf, mp_sys[5].cs_len, css, css_pos);
3693 break;
3694 case '1': if (mp_usr[0].cs_len == 0) { log_error ("ERROR: Custom-charset 1 is undefined\n"); exit (-1); }
3695 mp_add_cs_buf (mp_usr[0].cs_buf, mp_usr[0].cs_len, css, css_pos);
3696 break;
3697 case '2': if (mp_usr[1].cs_len == 0) { log_error ("ERROR: Custom-charset 2 is undefined\n"); exit (-1); }
3698 mp_add_cs_buf (mp_usr[1].cs_buf, mp_usr[1].cs_len, css, css_pos);
3699 break;
3700 case '3': if (mp_usr[2].cs_len == 0) { log_error ("ERROR: Custom-charset 3 is undefined\n"); exit (-1); }
3701 mp_add_cs_buf (mp_usr[2].cs_buf, mp_usr[2].cs_len, css, css_pos);
3702 break;
3703 case '4': if (mp_usr[3].cs_len == 0) { log_error ("ERROR: Custom-charset 4 is undefined\n"); exit (-1); }
3704 mp_add_cs_buf (mp_usr[3].cs_buf, mp_usr[3].cs_len, css, css_pos);
3705 break;
3706 case '?': mp_add_cs_buf (&chr, 1, css, css_pos);
3707 break;
3708 default: log_error ("ERROR: Syntax error: %s", mask_buf);
3709 exit (-1);
3710 }
3711 }
3712 else
3713 {
3714 if (data.hex_charset)
3715 {
3716 mask_pos++;
3717
3718 // if there is no 2nd hex character, show an error:
3719
3720 if (mask_pos == mask_len)
3721 {
3722 log_error ("ERROR: The hex-charset option always expects couples of exactly 2 hexadecimal chars, failed mask: %s", mask_buf);
3723
3724 exit (-1);
3725 }
3726
3727 char p1 = mask_buf[mask_pos];
3728
3729 // if they are not valid hex character, show an error:
3730
3731 if ((is_valid_hex_char (p0) == 0) || (is_valid_hex_char (p1) == 0))
3732 {
3733 log_error ("ERROR: Invalid hex character detected in mask %s", mask_buf);
3734
3735 exit (-1);
3736 }
3737
3738 uint chr = 0;
3739
3740 chr |= hex_convert (p1) << 0;
3741 chr |= hex_convert (p0) << 4;
3742
3743 mp_add_cs_buf (&chr, 1, css, css_pos);
3744 }
3745 else
3746 {
3747 uint chr = p0;
3748
3749 mp_add_cs_buf (&chr, 1, css, css_pos);
3750 }
3751 }
3752 }
3753
3754 if (css_pos == 0)
3755 {
3756 log_error ("ERROR: Invalid mask length (0)");
3757
3758 exit (-1);
3759 }
3760
3761 *css_cnt = css_pos;
3762
3763 return (css);
3764 }
3765
3766 void mp_exec (u64 val, char *buf, cs_t *css, int css_cnt)
3767 {
3768 for (int i = 0; i < css_cnt; i++)
3769 {
3770 uint len = css[i].cs_len;
3771 u64 next = val / len;
3772 uint pos = val % len;
3773 buf[i] = (char) css[i].cs_buf[pos] & 0xff;
3774 val = next;
3775 }
3776 }
3777
3778 void mp_cut_at (char *mask, uint max)
3779 {
3780 uint i;
3781 uint j;
3782 uint mask_len = strlen (mask);
3783
3784 for (i = 0, j = 0; i < mask_len && j < max; i++, j++)
3785 {
3786 if (mask[i] == '?') i++;
3787 }
3788
3789 mask[i] = 0;
3790 }
3791
3792 void mp_setup_sys (cs_t *mp_sys)
3793 {
3794 uint pos;
3795 uint chr;
3796 uint donec[CHARSIZ] = { 0 };
3797
3798 for (pos = 0, chr = 'a'; chr <= 'z'; chr++) { donec[chr] = 1;
3799 mp_sys[0].cs_buf[pos++] = chr;
3800 mp_sys[0].cs_len = pos; }
3801
3802 for (pos = 0, chr = 'A'; chr <= 'Z'; chr++) { donec[chr] = 1;
3803 mp_sys[1].cs_buf[pos++] = chr;
3804 mp_sys[1].cs_len = pos; }
3805
3806 for (pos = 0, chr = '0'; chr <= '9'; chr++) { donec[chr] = 1;
3807 mp_sys[2].cs_buf[pos++] = chr;
3808 mp_sys[2].cs_len = pos; }
3809
3810 for (pos = 0, chr = 0x20; chr <= 0x7e; chr++) { if (donec[chr]) continue;
3811 mp_sys[3].cs_buf[pos++] = chr;
3812 mp_sys[3].cs_len = pos; }
3813
3814 for (pos = 0, chr = 0x20; chr <= 0x7e; chr++) { mp_sys[4].cs_buf[pos++] = chr;
3815 mp_sys[4].cs_len = pos; }
3816
3817 for (pos = 0, chr = 0x00; chr <= 0xff; chr++) { mp_sys[5].cs_buf[pos++] = chr;
3818 mp_sys[5].cs_len = pos; }
3819 }
3820
3821 void mp_setup_usr (cs_t *mp_sys, cs_t *mp_usr, char *buf, uint index)
3822 {
3823 FILE *fp = fopen (buf, "rb");
3824
3825 if (fp == NULL || feof (fp)) // feof() in case if file is empty
3826 {
3827 mp_expand (buf, strlen (buf), mp_sys, mp_usr, index, 1);
3828 }
3829 else
3830 {
3831 char mp_file[1024] = { 0 };
3832
3833 size_t len = fread (mp_file, 1, sizeof (mp_file) - 1, fp);
3834
3835 fclose (fp);
3836
3837 len = in_superchop (mp_file);
3838
3839 if (len == 0)
3840 {
3841 log_info ("WARNING: Charset file corrupted");
3842
3843 mp_expand (buf, strlen (buf), mp_sys, mp_usr, index, 1);
3844 }
3845 else
3846 {
3847 mp_expand (mp_file, len, mp_sys, mp_usr, index, 0);
3848 }
3849 }
3850 }
3851
3852 void mp_reset_usr (cs_t *mp_usr, uint index)
3853 {
3854 mp_usr[index].cs_len = 0;
3855
3856 memset (mp_usr[index].cs_buf, 0, sizeof (mp_usr[index].cs_buf));
3857 }
3858
3859 char *mp_get_truncated_mask (char *mask_buf, size_t mask_len, uint len)
3860 {
3861 char *new_mask_buf = (char *) mymalloc (256);
3862
3863 uint mask_pos;
3864
3865 uint css_pos;
3866
3867 for (mask_pos = 0, css_pos = 0; mask_pos < mask_len; mask_pos++, css_pos++)
3868 {
3869 if (css_pos == len) break;
3870
3871 char p0 = mask_buf[mask_pos];
3872
3873 new_mask_buf[mask_pos] = p0;
3874
3875 if (p0 == '?')
3876 {
3877 mask_pos++;
3878
3879 if (mask_pos == mask_len) break;
3880
3881 new_mask_buf[mask_pos] = mask_buf[mask_pos];
3882 }
3883 else
3884 {
3885 if (data.hex_charset)
3886 {
3887 mask_pos++;
3888
3889 if (mask_pos == mask_len)
3890 {
3891 log_error ("ERROR: The hex-charset option always expects couples of exactly 2 hexadecimal chars, failed mask: %s", mask_buf);
3892
3893 exit (-1);
3894 }
3895
3896 char p1 = mask_buf[mask_pos];
3897
3898 // if they are not valid hex character, show an error:
3899
3900 if ((is_valid_hex_char (p0) == 0) || (is_valid_hex_char (p1) == 0))
3901 {
3902 log_error ("ERROR: Invalid hex character detected in mask: %s", mask_buf);
3903
3904 exit (-1);
3905 }
3906
3907 new_mask_buf[mask_pos] = p1;
3908 }
3909 }
3910 }
3911
3912 if (css_pos == len) return (new_mask_buf);
3913
3914 myfree (new_mask_buf);
3915
3916 return (NULL);
3917 }
3918
3919 /**
3920 * statprocessor
3921 */
3922
3923 u64 sp_get_sum (uint start, uint stop, cs_t *root_css_buf)
3924 {
3925 u64 sum = 1;
3926
3927 uint i;
3928
3929 for (i = start; i < stop; i++)
3930 {
3931 sum *= root_css_buf[i].cs_len;
3932 }
3933
3934 return (sum);
3935 }
3936
3937 void sp_exec (u64 ctx, char *pw_buf, cs_t *root_css_buf, cs_t *markov_css_buf, uint start, uint stop)
3938 {
3939 u64 v = ctx;
3940
3941 cs_t *cs = &root_css_buf[start];
3942
3943 uint i;
3944
3945 for (i = start; i < stop; i++)
3946 {
3947 const u64 m = v % cs->cs_len;
3948 const u64 d = v / cs->cs_len;
3949
3950 v = d;
3951
3952 const uint k = cs->cs_buf[m];
3953
3954 pw_buf[i - start] = (char) k;
3955
3956 cs = &markov_css_buf[(i * CHARSIZ) + k];
3957 }
3958 }
3959
3960 int sp_comp_val (const void *p1, const void *p2)
3961 {
3962 hcstat_table_t *b1 = (hcstat_table_t *) p1;
3963 hcstat_table_t *b2 = (hcstat_table_t *) p2;
3964
3965 return b2->val - b1->val;
3966 }
3967
3968 void sp_setup_tbl (const char *shared_dir, char *hcstat, uint disable, uint classic, hcstat_table_t *root_table_buf, hcstat_table_t *markov_table_buf)
3969 {
3970 uint i;
3971 uint j;
3972 uint k;
3973
3974 /**
3975 * Initialize hcstats
3976 */
3977
3978 u64 *root_stats_buf = (u64 *) mycalloc (SP_ROOT_CNT, sizeof (u64));
3979
3980 u64 *root_stats_ptr = root_stats_buf;
3981
3982 u64 *root_stats_buf_by_pos[SP_PW_MAX];
3983
3984 for (i = 0; i < SP_PW_MAX; i++)
3985 {
3986 root_stats_buf_by_pos[i] = root_stats_ptr;
3987
3988 root_stats_ptr += CHARSIZ;
3989 }
3990
3991 u64 *markov_stats_buf = (u64 *) mycalloc (SP_MARKOV_CNT, sizeof (u64));
3992
3993 u64 *markov_stats_ptr = markov_stats_buf;
3994
3995 u64 *markov_stats_buf_by_key[SP_PW_MAX][CHARSIZ];
3996
3997 for (i = 0; i < SP_PW_MAX; i++)
3998 {
3999 for (j = 0; j < CHARSIZ; j++)
4000 {
4001 markov_stats_buf_by_key[i][j] = markov_stats_ptr;
4002
4003 markov_stats_ptr += CHARSIZ;
4004 }
4005 }
4006
4007 /**
4008 * Load hcstats File
4009 */
4010
4011 if (hcstat == NULL)
4012 {
4013 char hcstat_tmp[256] = { 0 };
4014
4015 snprintf (hcstat_tmp, sizeof (hcstat_tmp) - 1, "%s/%s", shared_dir, SP_HCSTAT);
4016
4017 hcstat = hcstat_tmp;
4018 }
4019
4020 FILE *fd = fopen (hcstat, "rb");
4021
4022 if (fd == NULL)
4023 {
4024 log_error ("%s: %s", hcstat, strerror (errno));
4025
4026 exit (-1);
4027 }
4028
4029 if (fread (root_stats_buf, sizeof (u64), SP_ROOT_CNT, fd) != SP_ROOT_CNT)
4030 {
4031 log_error ("%s: Could not load data", hcstat);
4032
4033 fclose (fd);
4034
4035 exit (-1);
4036 }
4037
4038 if (fread (markov_stats_buf, sizeof (u64), SP_MARKOV_CNT, fd) != SP_MARKOV_CNT)
4039 {
4040 log_error ("%s: Could not load data", hcstat);
4041
4042 fclose (fd);
4043
4044 exit (-1);
4045 }
4046
4047 fclose (fd);
4048
4049 /**
4050 * Markov modifier of hcstat_table on user request
4051 */
4052
4053 if (disable)
4054 {
4055 memset (root_stats_buf, 0, SP_ROOT_CNT * sizeof (u64));
4056 memset (markov_stats_buf, 0, SP_MARKOV_CNT * sizeof (u64));
4057 }
4058
4059 if (classic)
4060 {
4061 /* Add all stats to first position */
4062
4063 for (i = 1; i < SP_PW_MAX; i++)
4064 {
4065 u64 *out = root_stats_buf_by_pos[0];
4066 u64 *in = root_stats_buf_by_pos[i];
4067
4068 for (j = 0; j < CHARSIZ; j++)
4069 {
4070 *out++ += *in++;
4071 }
4072 }
4073
4074 for (i = 1; i < SP_PW_MAX; i++)
4075 {
4076 u64 *out = markov_stats_buf_by_key[0][0];
4077 u64 *in = markov_stats_buf_by_key[i][0];
4078
4079 for (j = 0; j < CHARSIZ; j++)
4080 {
4081 for (k = 0; k < CHARSIZ; k++)
4082 {
4083 *out++ += *in++;
4084 }
4085 }
4086 }
4087
4088 /* copy them to all pw_positions */
4089
4090 for (i = 1; i < SP_PW_MAX; i++)
4091 {
4092 memcpy (root_stats_buf_by_pos[i], root_stats_buf_by_pos[0], CHARSIZ * sizeof (u64));
4093 }
4094
4095 for (i = 1; i < SP_PW_MAX; i++)
4096 {
4097 memcpy (markov_stats_buf_by_key[i][0], markov_stats_buf_by_key[0][0], CHARSIZ * CHARSIZ * sizeof (u64));
4098 }
4099 }
4100
4101 /**
4102 * Initialize tables
4103 */
4104
4105 hcstat_table_t *root_table_ptr = root_table_buf;
4106
4107 hcstat_table_t *root_table_buf_by_pos[SP_PW_MAX];
4108
4109 for (i = 0; i < SP_PW_MAX; i++)
4110 {
4111 root_table_buf_by_pos[i] = root_table_ptr;
4112
4113 root_table_ptr += CHARSIZ;
4114 }
4115
4116 hcstat_table_t *markov_table_ptr = markov_table_buf;
4117
4118 hcstat_table_t *markov_table_buf_by_key[SP_PW_MAX][CHARSIZ];
4119
4120 for (i = 0; i < SP_PW_MAX; i++)
4121 {
4122 for (j = 0; j < CHARSIZ; j++)
4123 {
4124 markov_table_buf_by_key[i][j] = markov_table_ptr;
4125
4126 markov_table_ptr += CHARSIZ;
4127 }
4128 }
4129
4130 /**
4131 * Convert hcstat to tables
4132 */
4133
4134 for (i = 0; i < SP_ROOT_CNT; i++)
4135 {
4136 uint key = i % CHARSIZ;
4137
4138 root_table_buf[i].key = key;
4139 root_table_buf[i].val = root_stats_buf[i];
4140 }
4141
4142 for (i = 0; i < SP_MARKOV_CNT; i++)
4143 {
4144 uint key = i % CHARSIZ;
4145
4146 markov_table_buf[i].key = key;
4147 markov_table_buf[i].val = markov_stats_buf[i];
4148 }
4149
4150 myfree (root_stats_buf);
4151 myfree (markov_stats_buf);
4152
4153 /**
4154 * Finally sort them
4155 */
4156
4157 for (i = 0; i < SP_PW_MAX; i++)
4158 {
4159 qsort (root_table_buf_by_pos[i], CHARSIZ, sizeof (hcstat_table_t), sp_comp_val);
4160 }
4161
4162 for (i = 0; i < SP_PW_MAX; i++)
4163 {
4164 for (j = 0; j < CHARSIZ; j++)
4165 {
4166 qsort (markov_table_buf_by_key[i][j], CHARSIZ, sizeof (hcstat_table_t), sp_comp_val);
4167 }
4168 }
4169 }
4170
4171 void sp_tbl_to_css (hcstat_table_t *root_table_buf, hcstat_table_t *markov_table_buf, cs_t *root_css_buf, cs_t *markov_css_buf, uint threshold, uint uniq_tbls[SP_PW_MAX][CHARSIZ])
4172 {
4173 /**
4174 * Convert tables to css
4175 */
4176
4177 for (uint i = 0; i < SP_ROOT_CNT; i++)
4178 {
4179 uint pw_pos = i / CHARSIZ;
4180
4181 cs_t *cs = &root_css_buf[pw_pos];
4182
4183 if (cs->cs_len == threshold) continue;
4184
4185 uint key = root_table_buf[i].key;
4186
4187 if (uniq_tbls[pw_pos][key] == 0) continue;
4188
4189 cs->cs_buf[cs->cs_len] = key;
4190
4191 cs->cs_len++;
4192 }
4193
4194 /**
4195 * Convert table to css
4196 */
4197
4198 for (uint i = 0; i < SP_MARKOV_CNT; i++)
4199 {
4200 uint c = i / CHARSIZ;
4201
4202 cs_t *cs = &markov_css_buf[c];
4203
4204 if (cs->cs_len == threshold) continue;
4205
4206 uint pw_pos = c / CHARSIZ;
4207
4208 uint key = markov_table_buf[i].key;
4209
4210 if ((pw_pos + 1) < SP_PW_MAX) if (uniq_tbls[pw_pos + 1][key] == 0) continue;
4211
4212 cs->cs_buf[cs->cs_len] = key;
4213
4214 cs->cs_len++;
4215 }
4216
4217 /*
4218 for (uint i = 0; i < 8; i++)
4219 {
4220 for (uint j = 0x20; j < 0x80; j++)
4221 {
4222 cs_t *ptr = &markov_css_buf[(i * CHARSIZ) + j];
4223
4224 printf ("pos:%u key:%u len:%u\n", i, j, ptr->cs_len);
4225
4226 for (uint k = 0; k < 10; k++)
4227 {
4228 printf (" %u\n", ptr->cs_buf[k]);
4229 }
4230 }
4231 }
4232 */
4233 }
4234
4235 void sp_stretch_root (hcstat_table_t *in, hcstat_table_t *out)
4236 {
4237 for (uint i = 0; i < SP_PW_MAX; i += 2)
4238 {
4239 memcpy (out, in, CHARSIZ * sizeof (hcstat_table_t));
4240
4241 out += CHARSIZ;
4242 in += CHARSIZ;
4243
4244 out->key = 0;
4245 out->val = 1;
4246
4247 out++;
4248
4249 for (uint j = 1; j < CHARSIZ; j++)
4250 {
4251 out->key = j;
4252 out->val = 0;
4253
4254 out++;
4255 }
4256 }
4257 }
4258
4259 void sp_stretch_markov (hcstat_table_t *in, hcstat_table_t *out)
4260 {
4261 for (uint i = 0; i < SP_PW_MAX; i += 2)
4262 {
4263 memcpy (out, in, CHARSIZ * CHARSIZ * sizeof (hcstat_table_t));
4264
4265 out += CHARSIZ * CHARSIZ;
4266 in += CHARSIZ * CHARSIZ;
4267
4268 for (uint j = 0; j < CHARSIZ; j++)
4269 {
4270 out->key = 0;
4271 out->val = 1;
4272
4273 out++;
4274
4275 for (uint k = 1; k < CHARSIZ; k++)
4276 {
4277 out->key = k;
4278 out->val = 0;
4279
4280 out++;
4281 }
4282 }
4283 }
4284 }
4285
4286 /**
4287 * mixed shared functions
4288 */
4289
4290 void dump_hex (const u8 *s, const int sz)
4291 {
4292 for (int i = 0; i < sz; i++)
4293 {
4294 log_info_nn ("%02x ", s[i]);
4295 }
4296
4297 log_info ("");
4298 }
4299
4300 void usage_mini_print (const char *progname)
4301 {
4302 for (uint i = 0; USAGE_MINI[i] != NULL; i++) log_info (USAGE_MINI[i], progname);
4303 }
4304
4305 void usage_big_print (const char *progname)
4306 {
4307 for (uint i = 0; USAGE_BIG[i] != NULL; i++) log_info (USAGE_BIG[i], progname);
4308 }
4309
4310 char *get_exec_path ()
4311 {
4312 int exec_path_len = 1024;
4313
4314 char *exec_path = (char *) mymalloc (exec_path_len);
4315
4316 #ifdef LINUX
4317
4318 char tmp[32] = { 0 };
4319
4320 snprintf (tmp, sizeof (tmp) - 1, "/proc/%d/exe", getpid ());
4321
4322 const int len = readlink (tmp, exec_path, exec_path_len - 1);
4323
4324 #elif WIN
4325
4326 const int len = GetModuleFileName (NULL, exec_path, exec_path_len - 1);
4327
4328 #elif OSX
4329
4330 uint size = exec_path_len;
4331
4332 if (_NSGetExecutablePath (exec_path, &size) != 0)
4333 {
4334 log_error("! executable path buffer too small\n");
4335
4336 exit (-1);
4337 }
4338
4339 const int len = strlen (exec_path);
4340
4341 #else
4342 #error Your Operating System is not supported or detected
4343 #endif
4344
4345 exec_path[len] = 0;
4346
4347 return exec_path;
4348 }
4349
4350 char *get_install_dir (const char *progname)
4351 {
4352 char *install_dir = mystrdup (progname);
4353 char *last_slash = NULL;
4354
4355 if ((last_slash = strrchr (install_dir, '/')) != NULL)
4356 {
4357 *last_slash = 0;
4358 }
4359 else if ((last_slash = strrchr (install_dir, '\\')) != NULL)
4360 {
4361 *last_slash = 0;
4362 }
4363 else
4364 {
4365 install_dir[0] = '.';
4366 install_dir[1] = 0;
4367 }
4368
4369 return (install_dir);
4370 }
4371
4372 char *get_profile_dir (const char *homedir)
4373 {
4374 #define DOT_HASHCAT ".hashcat"
4375
4376 size_t len = strlen (homedir) + 1 + strlen (DOT_HASHCAT) + 1;
4377
4378 char *profile_dir = (char *) mymalloc (len + 1);
4379
4380 snprintf (profile_dir, len, "%s/%s", homedir, DOT_HASHCAT);
4381
4382 return profile_dir;
4383 }
4384
4385 char *get_session_dir (const char *profile_dir)
4386 {
4387 #define SESSIONS_FOLDER "sessions"
4388
4389 size_t len = strlen (profile_dir) + 1 + strlen (SESSIONS_FOLDER) + 1;
4390
4391 char *session_dir = (char *) mymalloc (len + 1);
4392
4393 snprintf (session_dir, len, "%s/%s", profile_dir, SESSIONS_FOLDER);
4394
4395 return session_dir;
4396 }
4397
4398 uint count_lines (FILE *fd)
4399 {
4400 uint cnt = 0;
4401
4402 char *buf = (char *) mymalloc (HCBUFSIZ + 1);
4403
4404 char prev = '\n';
4405
4406 while (!feof (fd))
4407 {
4408 size_t nread = fread (buf, sizeof (char), HCBUFSIZ, fd);
4409
4410 if (nread < 1) continue;
4411
4412 size_t i;
4413
4414 for (i = 0; i < nread; i++)
4415 {
4416 if (prev == '\n') cnt++;
4417
4418 prev = buf[i];
4419 }
4420 }
4421
4422 myfree (buf);
4423
4424 return cnt;
4425 }
4426
4427 void truecrypt_crc32 (const char *filename, u8 keytab[64])
4428 {
4429 uint crc = ~0;
4430
4431 FILE *fd = fopen (filename, "rb");
4432
4433 if (fd == NULL)
4434 {
4435 log_error ("%s: %s", filename, strerror (errno));
4436
4437 exit (-1);
4438 }
4439
4440 #define MAX_KEY_SIZE (1024 * 1024)
4441
4442 u8 *buf = (u8 *) mymalloc (MAX_KEY_SIZE + 1);
4443
4444 int nread = fread (buf, sizeof (u8), MAX_KEY_SIZE, fd);
4445
4446 fclose (fd);
4447
4448 int kpos = 0;
4449
4450 for (int fpos = 0; fpos < nread; fpos++)
4451 {
4452 crc = crc32tab[(crc ^ buf[fpos]) & 0xff] ^ (crc >> 8);
4453
4454 keytab[kpos++] += (crc >> 24) & 0xff;
4455 keytab[kpos++] += (crc >> 16) & 0xff;
4456 keytab[kpos++] += (crc >> 8) & 0xff;
4457 keytab[kpos++] += (crc >> 0) & 0xff;
4458
4459 if (kpos >= 64) kpos = 0;
4460 }
4461
4462 myfree (buf);
4463 }
4464
4465 #ifdef OSX
4466 int pthread_setaffinity_np (pthread_t thread, size_t cpu_size, cpu_set_t *cpu_set)
4467 {
4468 int core;
4469
4470 for (core = 0; core < (8 * (int)cpu_size); core++)
4471 if (CPU_ISSET(core, cpu_set)) break;
4472
4473 thread_affinity_policy_data_t policy = { core };
4474
4475 const int rc = thread_policy_set (pthread_mach_thread_np (thread), THREAD_AFFINITY_POLICY, (thread_policy_t) &policy, 1);
4476
4477 if (data.quiet == 0)
4478 {
4479 if (rc != KERN_SUCCESS)
4480 {
4481 log_error ("ERROR: %s : %d", "thread_policy_set()", rc);
4482 }
4483 }
4484
4485 return rc;
4486 }
4487 #endif
4488
4489 void set_cpu_affinity (char *cpu_affinity)
4490 {
4491 #ifdef _WIN
4492 DWORD_PTR aff_mask = 0;
4493 #elif _POSIX
4494 cpu_set_t cpuset;
4495 CPU_ZERO (&cpuset);
4496 #endif
4497
4498 if (cpu_affinity)
4499 {
4500 char *devices = strdup (cpu_affinity);
4501
4502 char *next = strtok (devices, ",");
4503
4504 do
4505 {
4506 uint cpu_id = atoi (next);
4507
4508 if (cpu_id == 0)
4509 {
4510 #ifdef _WIN
4511 aff_mask = 0;
4512 #elif _POSIX
4513 CPU_ZERO (&cpuset);
4514 #endif
4515
4516 break;
4517 }
4518
4519 if (cpu_id > 32)
4520 {
4521 log_error ("ERROR: Invalid cpu_id %u specified", cpu_id);
4522
4523 exit (-1);
4524 }
4525
4526 #ifdef _WIN
4527 aff_mask |= 1 << (cpu_id - 1);
4528 #elif _POSIX
4529 CPU_SET ((cpu_id - 1), &cpuset);
4530 #endif
4531
4532 } while ((next = strtok (NULL, ",")) != NULL);
4533
4534 free (devices);
4535 }
4536
4537 #ifdef _WIN
4538 SetProcessAffinityMask (GetCurrentProcess (), aff_mask);
4539 SetThreadAffinityMask (GetCurrentThread (), aff_mask);
4540 #elif _POSIX
4541 pthread_t thread = pthread_self ();
4542 pthread_setaffinity_np (thread, sizeof (cpu_set_t), &cpuset);
4543 #endif
4544 }
4545
4546 void *rulefind (const void *key, void *base, int nmemb, size_t size, int (*compar) (const void *, const void *))
4547 {
4548 char *element, *end;
4549
4550 end = (char *) base + nmemb * size;
4551
4552 for (element = (char *) base; element < end; element += size)
4553 if (!compar (element, key))
4554 return element;
4555
4556 return NULL;
4557 }
4558
4559 int sort_by_u32 (const void *v1, const void *v2)
4560 {
4561 const u32 *s1 = (const u32 *) v1;
4562 const u32 *s2 = (const u32 *) v2;
4563
4564 return *s1 - *s2;
4565 }
4566
4567 int sort_by_salt (const void *v1, const void *v2)
4568 {
4569 const salt_t *s1 = (const salt_t *) v1;
4570 const salt_t *s2 = (const salt_t *) v2;
4571
4572 const int res1 = s1->salt_len - s2->salt_len;
4573
4574 if (res1 != 0) return (res1);
4575
4576 const int res2 = s1->salt_iter - s2->salt_iter;
4577
4578 if (res2 != 0) return (res2);
4579
4580 uint n;
4581
4582 n = 16;
4583
4584 while (n--)
4585 {
4586 if (s1->salt_buf[n] > s2->salt_buf[n]) return ( 1);
4587 if (s1->salt_buf[n] < s2->salt_buf[n]) return (-1);
4588 }
4589
4590 n = 8;
4591
4592 while (n--)
4593 {
4594 if (s1->salt_buf_pc[n] > s2->salt_buf_pc[n]) return ( 1);
4595 if (s1->salt_buf_pc[n] < s2->salt_buf_pc[n]) return (-1);
4596 }
4597
4598 return (0);
4599 }
4600
4601 int sort_by_salt_buf (const void *v1, const void *v2)
4602 {
4603 const pot_t *p1 = (const pot_t *) v1;
4604 const pot_t *p2 = (const pot_t *) v2;
4605
4606 const hash_t *h1 = &p1->hash;
4607 const hash_t *h2 = &p2->hash;
4608
4609 const salt_t *s1 = h1->salt;
4610 const salt_t *s2 = h2->salt;
4611
4612 uint n = 16;
4613
4614 while (n--)
4615 {
4616 if (s1->salt_buf[n] > s2->salt_buf[n]) return ( 1);
4617 if (s1->salt_buf[n] < s2->salt_buf[n]) return (-1);
4618 }
4619
4620 return 0;
4621 }
4622
4623 int sort_by_hash_t_salt (const void *v1, const void *v2)
4624 {
4625 const hash_t *h1 = (const hash_t *) v1;
4626 const hash_t *h2 = (const hash_t *) v2;
4627
4628 const salt_t *s1 = h1->salt;
4629 const salt_t *s2 = h2->salt;
4630
4631 // testphase: this should work
4632 uint n = 16;
4633
4634 while (n--)
4635 {
4636 if (s1->salt_buf[n] > s2->salt_buf[n]) return ( 1);
4637 if (s1->salt_buf[n] < s2->salt_buf[n]) return (-1);
4638 }
4639
4640 /* original code, seems buggy since salt_len can be very big (had a case with 131 len)
4641 also it thinks salt_buf[x] is a char but its a uint so salt_len should be / 4
4642 if (s1->salt_len > s2->salt_len) return ( 1);
4643 if (s1->salt_len < s2->salt_len) return (-1);
4644
4645 uint n = s1->salt_len;
4646
4647 while (n--)
4648 {
4649 if (s1->salt_buf[n] > s2->salt_buf[n]) return ( 1);
4650 if (s1->salt_buf[n] < s2->salt_buf[n]) return (-1);
4651 }
4652 */
4653
4654 return 0;
4655 }
4656
4657 int sort_by_hash_t_salt_hccap (const void *v1, const void *v2)
4658 {
4659 const hash_t *h1 = (const hash_t *) v1;
4660 const hash_t *h2 = (const hash_t *) v2;
4661
4662 const salt_t *s1 = h1->salt;
4663 const salt_t *s2 = h2->salt;
4664
4665 // 16 - 2 (since last 2 uints contain the digest)
4666 uint n = 14;
4667
4668 while (n--)
4669 {
4670 if (s1->salt_buf[n] > s2->salt_buf[n]) return ( 1);
4671 if (s1->salt_buf[n] < s2->salt_buf[n]) return (-1);
4672 }
4673
4674 return 0;
4675 }
4676
4677 int sort_by_hash_no_salt (const void *v1, const void *v2)
4678 {
4679 const hash_t *h1 = (const hash_t *) v1;
4680 const hash_t *h2 = (const hash_t *) v2;
4681
4682 const void *d1 = h1->digest;
4683 const void *d2 = h2->digest;
4684
4685 return data.sort_by_digest (d1, d2);
4686 }
4687
4688 int sort_by_hash (const void *v1, const void *v2)
4689 {
4690 const hash_t *h1 = (const hash_t *) v1;
4691 const hash_t *h2 = (const hash_t *) v2;
4692
4693 if (data.isSalted)
4694 {
4695 const salt_t *s1 = h1->salt;
4696 const salt_t *s2 = h2->salt;
4697
4698 int res = sort_by_salt (s1, s2);
4699
4700 if (res != 0) return (res);
4701 }
4702
4703 const void *d1 = h1->digest;
4704 const void *d2 = h2->digest;
4705
4706 return data.sort_by_digest (d1, d2);
4707 }
4708
4709 int sort_by_pot (const void *v1, const void *v2)
4710 {
4711 const pot_t *p1 = (const pot_t *) v1;
4712 const pot_t *p2 = (const pot_t *) v2;
4713
4714 const hash_t *h1 = &p1->hash;
4715 const hash_t *h2 = &p2->hash;
4716
4717 return sort_by_hash (h1, h2);
4718 }
4719
4720 int sort_by_mtime (const void *p1, const void *p2)
4721 {
4722 const char **f1 = (const char **) p1;
4723 const char **f2 = (const char **) p2;
4724
4725 struct stat s1; stat (*f1, &s1);
4726 struct stat s2; stat (*f2, &s2);
4727
4728 return s2.st_mtime - s1.st_mtime;
4729 }
4730
4731 int sort_by_cpu_rule (const void *p1, const void *p2)
4732 {
4733 const cpu_rule_t *r1 = (const cpu_rule_t *) p1;
4734 const cpu_rule_t *r2 = (const cpu_rule_t *) p2;
4735
4736 return memcmp (r1, r2, sizeof (cpu_rule_t));
4737 }
4738
4739 int sort_by_kernel_rule (const void *p1, const void *p2)
4740 {
4741 const kernel_rule_t *r1 = (const kernel_rule_t *) p1;
4742 const kernel_rule_t *r2 = (const kernel_rule_t *) p2;
4743
4744 return memcmp (r1, r2, sizeof (kernel_rule_t));
4745 }
4746
4747 int sort_by_stringptr (const void *p1, const void *p2)
4748 {
4749 const char **s1 = (const char **) p1;
4750 const char **s2 = (const char **) p2;
4751
4752 return strcmp (*s1, *s2);
4753 }
4754
4755 int sort_by_dictstat (const void *s1, const void *s2)
4756 {
4757 dictstat_t *d1 = (dictstat_t *) s1;
4758 dictstat_t *d2 = (dictstat_t *) s2;
4759
4760 #ifdef _LINUX
4761 d2->stat.st_atim = d1->stat.st_atim;
4762 #else
4763 d2->stat.st_atime = d1->stat.st_atime;
4764 #endif
4765
4766 return memcmp (&d1->stat, &d2->stat, sizeof (struct stat));
4767 }
4768
4769 int sort_by_bitmap (const void *p1, const void *p2)
4770 {
4771 const bitmap_result_t *b1 = (const bitmap_result_t *) p1;
4772 const bitmap_result_t *b2 = (const bitmap_result_t *) p2;
4773
4774 return b1->collisions - b2->collisions;
4775 }
4776
4777 int sort_by_digest_4_2 (const void *v1, const void *v2)
4778 {
4779 const u32 *d1 = (const u32 *) v1;
4780 const u32 *d2 = (const u32 *) v2;
4781
4782 uint n = 2;
4783
4784 while (n--)
4785 {
4786 if (d1[n] > d2[n]) return ( 1);
4787 if (d1[n] < d2[n]) return (-1);
4788 }
4789
4790 return (0);
4791 }
4792
4793 int sort_by_digest_4_4 (const void *v1, const void *v2)
4794 {
4795 const u32 *d1 = (const u32 *) v1;
4796 const u32 *d2 = (const u32 *) v2;
4797
4798 uint n = 4;
4799
4800 while (n--)
4801 {
4802 if (d1[n] > d2[n]) return ( 1);
4803 if (d1[n] < d2[n]) return (-1);
4804 }
4805
4806 return (0);
4807 }
4808
4809 int sort_by_digest_4_5 (const void *v1, const void *v2)
4810 {
4811 const u32 *d1 = (const u32 *) v1;
4812 const u32 *d2 = (const u32 *) v2;
4813
4814 uint n = 5;
4815
4816 while (n--)
4817 {
4818 if (d1[n] > d2[n]) return ( 1);
4819 if (d1[n] < d2[n]) return (-1);
4820 }
4821
4822 return (0);
4823 }
4824
4825 int sort_by_digest_4_6 (const void *v1, const void *v2)
4826 {
4827 const u32 *d1 = (const u32 *) v1;
4828 const u32 *d2 = (const u32 *) v2;
4829
4830 uint n = 6;
4831
4832 while (n--)
4833 {
4834 if (d1[n] > d2[n]) return ( 1);
4835 if (d1[n] < d2[n]) return (-1);
4836 }
4837
4838 return (0);
4839 }
4840
4841 int sort_by_digest_4_8 (const void *v1, const void *v2)
4842 {
4843 const u32 *d1 = (const u32 *) v1;
4844 const u32 *d2 = (const u32 *) v2;
4845
4846 uint n = 8;
4847
4848 while (n--)
4849 {
4850 if (d1[n] > d2[n]) return ( 1);
4851 if (d1[n] < d2[n]) return (-1);
4852 }
4853
4854 return (0);
4855 }
4856
4857 int sort_by_digest_4_16 (const void *v1, const void *v2)
4858 {
4859 const u32 *d1 = (const u32 *) v1;
4860 const u32 *d2 = (const u32 *) v2;
4861
4862 uint n = 16;
4863
4864 while (n--)
4865 {
4866 if (d1[n] > d2[n]) return ( 1);
4867 if (d1[n] < d2[n]) return (-1);
4868 }
4869
4870 return (0);
4871 }
4872
4873 int sort_by_digest_4_32 (const void *v1, const void *v2)
4874 {
4875 const u32 *d1 = (const u32 *) v1;
4876 const u32 *d2 = (const u32 *) v2;
4877
4878 uint n = 32;
4879
4880 while (n--)
4881 {
4882 if (d1[n] > d2[n]) return ( 1);
4883 if (d1[n] < d2[n]) return (-1);
4884 }
4885
4886 return (0);
4887 }
4888
4889 int sort_by_digest_4_64 (const void *v1, const void *v2)
4890 {
4891 const u32 *d1 = (const u32 *) v1;
4892 const u32 *d2 = (const u32 *) v2;
4893
4894 uint n = 64;
4895
4896 while (n--)
4897 {
4898 if (d1[n] > d2[n]) return ( 1);
4899 if (d1[n] < d2[n]) return (-1);
4900 }
4901
4902 return (0);
4903 }
4904
4905 int sort_by_digest_8_8 (const void *v1, const void *v2)
4906 {
4907 const u64 *d1 = (const u64 *) v1;
4908 const u64 *d2 = (const u64 *) v2;
4909
4910 uint n = 8;
4911
4912 while (n--)
4913 {
4914 if (d1[n] > d2[n]) return ( 1);
4915 if (d1[n] < d2[n]) return (-1);
4916 }
4917
4918 return (0);
4919 }
4920
4921 int sort_by_digest_8_16 (const void *v1, const void *v2)
4922 {
4923 const u64 *d1 = (const u64 *) v1;
4924 const u64 *d2 = (const u64 *) v2;
4925
4926 uint n = 16;
4927
4928 while (n--)
4929 {
4930 if (d1[n] > d2[n]) return ( 1);
4931 if (d1[n] < d2[n]) return (-1);
4932 }
4933
4934 return (0);
4935 }
4936
4937 int sort_by_digest_8_25 (const void *v1, const void *v2)
4938 {
4939 const u64 *d1 = (const u64 *) v1;
4940 const u64 *d2 = (const u64 *) v2;
4941
4942 uint n = 25;
4943
4944 while (n--)
4945 {
4946 if (d1[n] > d2[n]) return ( 1);
4947 if (d1[n] < d2[n]) return (-1);
4948 }
4949
4950 return (0);
4951 }
4952
4953 int sort_by_digest_p0p1 (const void *v1, const void *v2)
4954 {
4955 const u32 *d1 = (const u32 *) v1;
4956 const u32 *d2 = (const u32 *) v2;
4957
4958 const uint dgst_pos0 = data.dgst_pos0;
4959 const uint dgst_pos1 = data.dgst_pos1;
4960 const uint dgst_pos2 = data.dgst_pos2;
4961 const uint dgst_pos3 = data.dgst_pos3;
4962
4963 if (d1[dgst_pos3] > d2[dgst_pos3]) return ( 1);
4964 if (d1[dgst_pos3] < d2[dgst_pos3]) return (-1);
4965 if (d1[dgst_pos2] > d2[dgst_pos2]) return ( 1);
4966 if (d1[dgst_pos2] < d2[dgst_pos2]) return (-1);
4967 if (d1[dgst_pos1] > d2[dgst_pos1]) return ( 1);
4968 if (d1[dgst_pos1] < d2[dgst_pos1]) return (-1);
4969 if (d1[dgst_pos0] > d2[dgst_pos0]) return ( 1);
4970 if (d1[dgst_pos0] < d2[dgst_pos0]) return (-1);
4971
4972 return (0);
4973 }
4974
4975 int sort_by_tuning_db_alias (const void *v1, const void *v2)
4976 {
4977 const tuning_db_alias_t *t1 = (const tuning_db_alias_t *) v1;
4978 const tuning_db_alias_t *t2 = (const tuning_db_alias_t *) v2;
4979
4980 const int res1 = strcmp (t1->device_name, t2->device_name);
4981
4982 if (res1 != 0) return (res1);
4983
4984 return 0;
4985 }
4986
4987 int sort_by_tuning_db_entry (const void *v1, const void *v2)
4988 {
4989 const tuning_db_entry_t *t1 = (const tuning_db_entry_t *) v1;
4990 const tuning_db_entry_t *t2 = (const tuning_db_entry_t *) v2;
4991
4992 const int res1 = strcmp (t1->device_name, t2->device_name);
4993
4994 if (res1 != 0) return (res1);
4995
4996 const int res2 = t1->attack_mode
4997 - t2->attack_mode;
4998
4999 if (res2 != 0) return (res2);
5000
5001 const int res3 = t1->hash_type
5002 - t2->hash_type;
5003
5004 if (res3 != 0) return (res3);
5005
5006 return 0;
5007 }
5008
5009 void format_debug (char *debug_file, uint debug_mode, unsigned char *orig_plain_ptr, uint orig_plain_len, unsigned char *mod_plain_ptr, uint mod_plain_len, char *rule_buf, int rule_len)
5010 {
5011 uint outfile_autohex = data.outfile_autohex;
5012
5013 unsigned char *rule_ptr = (unsigned char *) rule_buf;
5014
5015 FILE *debug_fp = NULL;
5016
5017 if (debug_file != NULL)
5018 {
5019 debug_fp = fopen (debug_file, "ab");
5020
5021 lock_file (debug_fp);
5022 }
5023 else
5024 {
5025 debug_fp = stderr;
5026 }
5027
5028 if (debug_fp == NULL)
5029 {
5030 log_info ("WARNING: Could not open debug-file for writing");
5031 }
5032 else
5033 {
5034 if ((debug_mode == 2) || (debug_mode == 3) || (debug_mode == 4))
5035 {
5036 format_plain (debug_fp, orig_plain_ptr, orig_plain_len, outfile_autohex);
5037
5038 if ((debug_mode == 3) || (debug_mode == 4)) fputc (':', debug_fp);
5039 }
5040
5041 fwrite (rule_ptr, rule_len, 1, debug_fp);
5042
5043 if (debug_mode == 4)
5044 {
5045 fputc (':', debug_fp);
5046
5047 format_plain (debug_fp, mod_plain_ptr, mod_plain_len, outfile_autohex);
5048 }
5049
5050 fputc ('\n', debug_fp);
5051
5052 if (debug_file != NULL) fclose (debug_fp);
5053 }
5054 }
5055
5056 void format_plain (FILE *fp, unsigned char *plain_ptr, uint plain_len, uint outfile_autohex)
5057 {
5058 int needs_hexify = 0;
5059
5060 if (outfile_autohex == 1)
5061 {
5062 for (uint i = 0; i < plain_len; i++)
5063 {
5064 if (plain_ptr[i] < 0x20)
5065 {
5066 needs_hexify = 1;
5067
5068 break;
5069 }
5070
5071 if (plain_ptr[i] > 0x7f)
5072 {
5073 needs_hexify = 1;
5074
5075 break;
5076 }
5077 }
5078 }
5079
5080 if (needs_hexify == 1)
5081 {
5082 fprintf (fp, "$HEX[");
5083
5084 for (uint i = 0; i < plain_len; i++)
5085 {
5086 fprintf (fp, "%02x", plain_ptr[i]);
5087 }
5088
5089 fprintf (fp, "]");
5090 }
5091 else
5092 {
5093 fwrite (plain_ptr, plain_len, 1, fp);
5094 }
5095 }
5096
5097 void format_output (FILE *out_fp, char *out_buf, unsigned char *plain_ptr, const uint plain_len, const u64 crackpos, unsigned char *username, const uint user_len)
5098 {
5099 uint outfile_format = data.outfile_format;
5100
5101 char separator = data.separator;
5102
5103 if (outfile_format & OUTFILE_FMT_HASH)
5104 {
5105 fprintf (out_fp, "%s", out_buf);
5106
5107 if (outfile_format & (OUTFILE_FMT_PLAIN | OUTFILE_FMT_HEXPLAIN | OUTFILE_FMT_CRACKPOS))
5108 {
5109 fputc (separator, out_fp);
5110 }
5111 }
5112 else if (data.username)
5113 {
5114 if (username != NULL)
5115 {
5116 for (uint i = 0; i < user_len; i++)
5117 {
5118 fprintf (out_fp, "%c", username[i]);
5119 }
5120
5121 if (outfile_format & (OUTFILE_FMT_PLAIN | OUTFILE_FMT_HEXPLAIN | OUTFILE_FMT_CRACKPOS))
5122 {
5123 fputc (separator, out_fp);
5124 }
5125 }
5126 }
5127
5128 if (outfile_format & OUTFILE_FMT_PLAIN)
5129 {
5130 format_plain (out_fp, plain_ptr, plain_len, data.outfile_autohex);
5131
5132 if (outfile_format & (OUTFILE_FMT_HEXPLAIN | OUTFILE_FMT_CRACKPOS))
5133 {
5134 fputc (separator, out_fp);
5135 }
5136 }
5137
5138 if (outfile_format & OUTFILE_FMT_HEXPLAIN)
5139 {
5140 for (uint i = 0; i < plain_len; i++)
5141 {
5142 fprintf (out_fp, "%02x", plain_ptr[i]);
5143 }
5144
5145 if (outfile_format & (OUTFILE_FMT_CRACKPOS))
5146 {
5147 fputc (separator, out_fp);
5148 }
5149 }
5150
5151 if (outfile_format & OUTFILE_FMT_CRACKPOS)
5152 {
5153 #ifdef _WIN
5154 __mingw_fprintf (out_fp, "%llu", crackpos);
5155 #endif
5156
5157 #ifdef _POSIX
5158 #ifdef __x86_64__
5159 fprintf (out_fp, "%lu", (unsigned long) crackpos);
5160 #else
5161 fprintf (out_fp, "%llu", crackpos);
5162 #endif
5163 #endif
5164 }
5165
5166 fputc ('\n', out_fp);
5167 }
5168
5169 void handle_show_request (pot_t *pot, uint pot_cnt, char *input_buf, int input_len, hash_t *hashes_buf, int (*sort_by_pot) (const void *, const void *), FILE *out_fp)
5170 {
5171 pot_t pot_key;
5172
5173 pot_key.hash.salt = hashes_buf->salt;
5174 pot_key.hash.digest = hashes_buf->digest;
5175
5176 pot_t *pot_ptr = (pot_t *) bsearch (&pot_key, pot, pot_cnt, sizeof (pot_t), sort_by_pot);
5177
5178 if (pot_ptr)
5179 {
5180 log_info_nn ("");
5181
5182 input_buf[input_len] = 0;
5183
5184 // user
5185 unsigned char *username = NULL;
5186 uint user_len = 0;
5187
5188 if (data.username)
5189 {
5190 user_t *user = hashes_buf->hash_info->user;
5191
5192 if (user)
5193 {
5194 username = (unsigned char *) (user->user_name);
5195
5196 user_len = user->user_len;
5197 }
5198 }
5199
5200 // do output the line
5201 format_output (out_fp, input_buf, (unsigned char *) pot_ptr->plain_buf, pot_ptr->plain_len, 0, username, user_len);
5202 }
5203 }
5204
5205 #define LM_WEAK_HASH "\x4e\xcf\x0d\x0c\x0a\xe2\xfb\xc1"
5206 #define LM_MASKED_PLAIN "[notfound]"
5207
5208 void handle_show_request_lm (pot_t *pot, uint pot_cnt, char *input_buf, int input_len, hash_t *hash_left, hash_t *hash_right, int (*sort_by_pot) (const void *, const void *), FILE *out_fp)
5209 {
5210 // left
5211
5212 pot_t pot_left_key;
5213
5214 pot_left_key.hash.salt = hash_left->salt;
5215 pot_left_key.hash.digest = hash_left->digest;
5216
5217 pot_t *pot_left_ptr = (pot_t *) bsearch (&pot_left_key, pot, pot_cnt, sizeof (pot_t), sort_by_pot);
5218
5219 // right
5220
5221 uint weak_hash_found = 0;
5222
5223 pot_t pot_right_key;
5224
5225 pot_right_key.hash.salt = hash_right->salt;
5226 pot_right_key.hash.digest = hash_right->digest;
5227
5228 pot_t *pot_right_ptr = (pot_t *) bsearch (&pot_right_key, pot, pot_cnt, sizeof (pot_t), sort_by_pot);
5229
5230 if (pot_right_ptr == NULL)
5231 {
5232 // special case, if "weak hash"
5233
5234 if (memcmp (hash_right->digest, LM_WEAK_HASH, 8) == 0)
5235 {
5236 weak_hash_found = 1;
5237
5238 pot_right_ptr = (pot_t *) mycalloc (1, sizeof (pot_t));
5239
5240 // in theory this is not needed, but we are paranoia:
5241
5242 memset (pot_right_ptr->plain_buf, 0, sizeof (pot_right_ptr->plain_buf));
5243 pot_right_ptr->plain_len = 0;
5244 }
5245 }
5246
5247 if ((pot_left_ptr == NULL) && (pot_right_ptr == NULL))
5248 {
5249 if (weak_hash_found == 1) myfree (pot_right_ptr); // this shouldn't happen at all: if weak_hash_found == 1, than pot_right_ptr is not NULL for sure
5250
5251 return;
5252 }
5253
5254 // at least one half was found:
5255
5256 log_info_nn ("");
5257
5258 input_buf[input_len] = 0;
5259
5260 // user
5261
5262 unsigned char *username = NULL;
5263 uint user_len = 0;
5264
5265 if (data.username)
5266 {
5267 user_t *user = hash_left->hash_info->user;
5268
5269 if (user)
5270 {
5271 username = (unsigned char *) (user->user_name);
5272
5273 user_len = user->user_len;
5274 }
5275 }
5276
5277 // mask the part which was not found
5278
5279 uint left_part_masked = 0;
5280 uint right_part_masked = 0;
5281
5282 uint mask_plain_len = strlen (LM_MASKED_PLAIN);
5283
5284 if (pot_left_ptr == NULL)
5285 {
5286 left_part_masked = 1;
5287
5288 pot_left_ptr = (pot_t *) mycalloc (1, sizeof (pot_t));
5289
5290 memset (pot_left_ptr->plain_buf, 0, sizeof (pot_left_ptr->plain_buf));
5291
5292 memcpy (pot_left_ptr->plain_buf, LM_MASKED_PLAIN, mask_plain_len);
5293 pot_left_ptr->plain_len = mask_plain_len;
5294 }
5295
5296 if (pot_right_ptr == NULL)
5297 {
5298 right_part_masked = 1;
5299
5300 pot_right_ptr = (pot_t *) mycalloc (1, sizeof (pot_t));
5301
5302 memset (pot_right_ptr->plain_buf, 0, sizeof (pot_right_ptr->plain_buf));
5303
5304 memcpy (pot_right_ptr->plain_buf, LM_MASKED_PLAIN, mask_plain_len);
5305 pot_right_ptr->plain_len = mask_plain_len;
5306 }
5307
5308 // create the pot_ptr out of pot_left_ptr and pot_right_ptr
5309
5310 pot_t pot_ptr;
5311
5312 pot_ptr.plain_len = pot_left_ptr->plain_len + pot_right_ptr->plain_len;
5313
5314 memcpy (pot_ptr.plain_buf, pot_left_ptr->plain_buf, pot_left_ptr->plain_len);
5315
5316 memcpy (pot_ptr.plain_buf + pot_left_ptr->plain_len, pot_right_ptr->plain_buf, pot_right_ptr->plain_len);
5317
5318 // do output the line
5319
5320 format_output (out_fp, input_buf, (unsigned char *) pot_ptr.plain_buf, pot_ptr.plain_len, 0, username, user_len);
5321
5322 if (weak_hash_found == 1) myfree (pot_right_ptr);
5323
5324 if (left_part_masked == 1) myfree (pot_left_ptr);
5325 if (right_part_masked == 1) myfree (pot_right_ptr);
5326 }
5327
5328 void handle_left_request (pot_t *pot, uint pot_cnt, char *input_buf, int input_len, hash_t *hashes_buf, int (*sort_by_pot) (const void *, const void *), FILE *out_fp)
5329 {
5330 pot_t pot_key;
5331
5332 memcpy (&pot_key.hash, hashes_buf, sizeof (hash_t));
5333
5334 pot_t *pot_ptr = (pot_t *) bsearch (&pot_key, pot, pot_cnt, sizeof (pot_t), sort_by_pot);
5335
5336 if (pot_ptr == NULL)
5337 {
5338 log_info_nn ("");
5339
5340 input_buf[input_len] = 0;
5341
5342 format_output (out_fp, input_buf, NULL, 0, 0, NULL, 0);
5343 }
5344 }
5345
5346 void handle_left_request_lm (pot_t *pot, uint pot_cnt, char *input_buf, int input_len, hash_t *hash_left, hash_t *hash_right, int (*sort_by_pot) (const void *, const void *), FILE *out_fp)
5347 {
5348 // left
5349
5350 pot_t pot_left_key;
5351
5352 memcpy (&pot_left_key.hash, hash_left, sizeof (hash_t));
5353
5354 pot_t *pot_left_ptr = (pot_t *) bsearch (&pot_left_key, pot, pot_cnt, sizeof (pot_t), sort_by_pot);
5355
5356 // right
5357
5358 pot_t pot_right_key;
5359
5360 memcpy (&pot_right_key.hash, hash_right, sizeof (hash_t));
5361
5362 pot_t *pot_right_ptr = (pot_t *) bsearch (&pot_right_key, pot, pot_cnt, sizeof (pot_t), sort_by_pot);
5363
5364 uint weak_hash_found = 0;
5365
5366 if (pot_right_ptr == NULL)
5367 {
5368 // special case, if "weak hash"
5369
5370 if (memcmp (hash_right->digest, LM_WEAK_HASH, 8) == 0)
5371 {
5372 weak_hash_found = 1;
5373
5374 // we just need that pot_right_ptr is not a NULL pointer
5375
5376 pot_right_ptr = (pot_t *) mycalloc (1, sizeof (pot_t));
5377 }
5378 }
5379
5380 if ((pot_left_ptr != NULL) && (pot_right_ptr != NULL))
5381 {
5382 if (weak_hash_found == 1) myfree (pot_right_ptr);
5383
5384 return;
5385 }
5386
5387 // ... at least one part was not cracked
5388
5389 log_info_nn ("");
5390
5391 input_buf[input_len] = 0;
5392
5393 // only show the hash part which is still not cracked
5394
5395 uint user_len = input_len - 32;
5396
5397 char *hash_output = (char *) mymalloc (33);
5398
5399 memcpy (hash_output, input_buf, input_len);
5400
5401 if (pot_left_ptr != NULL)
5402 {
5403 // only show right part (because left part was already found)
5404
5405 memcpy (hash_output + user_len, input_buf + user_len + 16, 16);
5406
5407 hash_output[user_len + 16] = 0;
5408 }
5409
5410 if (pot_right_ptr != NULL)
5411 {
5412 // only show left part (because right part was already found)
5413
5414 memcpy (hash_output + user_len, input_buf + user_len, 16);
5415
5416 hash_output[user_len + 16] = 0;
5417 }
5418
5419 format_output (out_fp, hash_output, NULL, 0, 0, NULL, 0);
5420
5421 myfree (hash_output);
5422
5423 if (weak_hash_found == 1) myfree (pot_right_ptr);
5424 }
5425
5426 uint setup_opencl_platforms_filter (char *opencl_platforms)
5427 {
5428 uint opencl_platforms_filter = 0;
5429
5430 if (opencl_platforms)
5431 {
5432 char *platforms = strdup (opencl_platforms);
5433
5434 char *next = strtok (platforms, ",");
5435
5436 do
5437 {
5438 int platform = atoi (next);
5439
5440 if (platform < 1 || platform > 32)
5441 {
5442 log_error ("ERROR: Invalid OpenCL platform %u specified", platform);
5443
5444 exit (-1);
5445 }
5446
5447 opencl_platforms_filter |= 1 << (platform - 1);
5448
5449 } while ((next = strtok (NULL, ",")) != NULL);
5450
5451 free (platforms);
5452 }
5453 else
5454 {
5455 opencl_platforms_filter = -1;
5456 }
5457
5458 return opencl_platforms_filter;
5459 }
5460
5461 u32 setup_devices_filter (char *opencl_devices)
5462 {
5463 u32 devices_filter = 0;
5464
5465 if (opencl_devices)
5466 {
5467 char *devices = strdup (opencl_devices);
5468
5469 char *next = strtok (devices, ",");
5470
5471 do
5472 {
5473 int device_id = atoi (next);
5474
5475 if (device_id < 1 || device_id > 32)
5476 {
5477 log_error ("ERROR: Invalid device_id %u specified", device_id);
5478
5479 exit (-1);
5480 }
5481
5482 devices_filter |= 1 << (device_id - 1);
5483
5484 } while ((next = strtok (NULL, ",")) != NULL);
5485
5486 free (devices);
5487 }
5488 else
5489 {
5490 devices_filter = -1;
5491 }
5492
5493 return devices_filter;
5494 }
5495
5496 cl_device_type setup_device_types_filter (char *opencl_device_types)
5497 {
5498 cl_device_type device_types_filter = 0;
5499
5500 if (opencl_device_types)
5501 {
5502 char *device_types = strdup (opencl_device_types);
5503
5504 char *next = strtok (device_types, ",");
5505
5506 do
5507 {
5508 int device_type = atoi (next);
5509
5510 if (device_type < 1 || device_type > 3)
5511 {
5512 log_error ("ERROR: Invalid device_type %u specified", device_type);
5513
5514 exit (-1);
5515 }
5516
5517 device_types_filter |= 1 << device_type;
5518
5519 } while ((next = strtok (NULL, ",")) != NULL);
5520
5521 free (device_types);
5522 }
5523 else
5524 {
5525 // Do not use CPU by default, this often reduces GPU performance because
5526 // the CPU is too busy to handle GPU synchronization
5527
5528 device_types_filter = CL_DEVICE_TYPE_ALL & ~CL_DEVICE_TYPE_CPU;
5529 }
5530
5531 return device_types_filter;
5532 }
5533
5534 u32 get_random_num (const u32 min, const u32 max)
5535 {
5536 if (min == max) return (min);
5537
5538 return ((rand () % (max - min)) + min);
5539 }
5540
5541 u32 mydivc32 (const u32 dividend, const u32 divisor)
5542 {
5543 u32 quotient = dividend / divisor;
5544
5545 if (dividend % divisor) quotient++;
5546
5547 return quotient;
5548 }
5549
5550 u64 mydivc64 (const u64 dividend, const u64 divisor)
5551 {
5552 u64 quotient = dividend / divisor;
5553
5554 if (dividend % divisor) quotient++;
5555
5556 return quotient;
5557 }
5558
5559 void format_timer_display (struct tm *tm, char *buf, size_t len)
5560 {
5561 const char *time_entities_s[] = { "year", "day", "hour", "min", "sec" };
5562 const char *time_entities_m[] = { "years", "days", "hours", "mins", "secs" };
5563
5564 if (tm->tm_year - 70)
5565 {
5566 char *time_entity1 = ((tm->tm_year - 70) == 1) ? (char *) time_entities_s[0] : (char *) time_entities_m[0];
5567 char *time_entity2 = ( tm->tm_yday == 1) ? (char *) time_entities_s[1] : (char *) time_entities_m[1];
5568
5569 snprintf (buf, len - 1, "%d %s, %d %s", tm->tm_year - 70, time_entity1, tm->tm_yday, time_entity2);
5570 }
5571 else if (tm->tm_yday)
5572 {
5573 char *time_entity1 = (tm->tm_yday == 1) ? (char *) time_entities_s[1] : (char *) time_entities_m[1];
5574 char *time_entity2 = (tm->tm_hour == 1) ? (char *) time_entities_s[2] : (char *) time_entities_m[2];
5575
5576 snprintf (buf, len - 1, "%d %s, %d %s", tm->tm_yday, time_entity1, tm->tm_hour, time_entity2);
5577 }
5578 else if (tm->tm_hour)
5579 {
5580 char *time_entity1 = (tm->tm_hour == 1) ? (char *) time_entities_s[2] : (char *) time_entities_m[2];
5581 char *time_entity2 = (tm->tm_min == 1) ? (char *) time_entities_s[3] : (char *) time_entities_m[3];
5582
5583 snprintf (buf, len - 1, "%d %s, %d %s", tm->tm_hour, time_entity1, tm->tm_min, time_entity2);
5584 }
5585 else if (tm->tm_min)
5586 {
5587 char *time_entity1 = (tm->tm_min == 1) ? (char *) time_entities_s[3] : (char *) time_entities_m[3];
5588 char *time_entity2 = (tm->tm_sec == 1) ? (char *) time_entities_s[4] : (char *) time_entities_m[4];
5589
5590 snprintf (buf, len - 1, "%d %s, %d %s", tm->tm_min, time_entity1, tm->tm_sec, time_entity2);
5591 }
5592 else
5593 {
5594 char *time_entity1 = (tm->tm_sec == 1) ? (char *) time_entities_s[4] : (char *) time_entities_m[4];
5595
5596 snprintf (buf, len - 1, "%d %s", tm->tm_sec, time_entity1);
5597 }
5598 }
5599
5600 void format_speed_display (float val, char *buf, size_t len)
5601 {
5602 if (val <= 0)
5603 {
5604 buf[0] = '0';
5605 buf[1] = ' ';
5606 buf[2] = 0;
5607
5608 return;
5609 }
5610
5611 char units[7] = { ' ', 'k', 'M', 'G', 'T', 'P', 'E' };
5612
5613 uint level = 0;
5614
5615 while (val > 99999)
5616 {
5617 val /= 1000;
5618
5619 level++;
5620 }
5621
5622 /* generate output */
5623
5624 if (level == 0)
5625 {
5626 snprintf (buf, len - 1, "%.0f ", val);
5627 }
5628 else
5629 {
5630 snprintf (buf, len - 1, "%.1f %c", val, units[level]);
5631 }
5632 }
5633
5634 void lowercase (u8 *buf, int len)
5635 {
5636 for (int i = 0; i < len; i++) buf[i] = tolower (buf[i]);
5637 }
5638
5639 void uppercase (u8 *buf, int len)
5640 {
5641 for (int i = 0; i < len; i++) buf[i] = toupper (buf[i]);
5642 }
5643
5644 int fgetl (FILE *fp, char *line_buf)
5645 {
5646 int line_len = 0;
5647
5648 while (!feof (fp))
5649 {
5650 const int c = fgetc (fp);
5651
5652 if (c == EOF) break;
5653
5654 line_buf[line_len] = (char) c;
5655
5656 line_len++;
5657
5658 if (line_len == HCBUFSIZ) line_len--;
5659
5660 if (c == '\n') break;
5661 }
5662
5663 if (line_len == 0) return 0;
5664
5665 if (line_buf[line_len - 1] == '\n')
5666 {
5667 line_len--;
5668
5669 line_buf[line_len] = 0;
5670 }
5671
5672 if (line_len == 0) return 0;
5673
5674 if (line_buf[line_len - 1] == '\r')
5675 {
5676 line_len--;
5677
5678 line_buf[line_len] = 0;
5679 }
5680
5681 return (line_len);
5682 }
5683
5684 int in_superchop (char *buf)
5685 {
5686 int len = strlen (buf);
5687
5688 while (len)
5689 {
5690 if (buf[len - 1] == '\n')
5691 {
5692 len--;
5693
5694 continue;
5695 }
5696
5697 if (buf[len - 1] == '\r')
5698 {
5699 len--;
5700
5701 continue;
5702 }
5703
5704 break;
5705 }
5706
5707 buf[len] = 0;
5708
5709 return len;
5710 }
5711
5712 char **scan_directory (const char *path)
5713 {
5714 char *tmp_path = mystrdup (path);
5715
5716 size_t tmp_path_len = strlen (tmp_path);
5717
5718 while (tmp_path[tmp_path_len - 1] == '/' || tmp_path[tmp_path_len - 1] == '\\')
5719 {
5720 tmp_path[tmp_path_len - 1] = 0;
5721
5722 tmp_path_len = strlen (tmp_path);
5723 }
5724
5725 char **files = NULL;
5726
5727 int num_files = 0;
5728
5729 DIR *d = NULL;
5730
5731 if ((d = opendir (tmp_path)) != NULL)
5732 {
5733 #ifdef OSX
5734 struct dirent e;
5735
5736 for (;;) {
5737 memset (&e, 0, sizeof (e));
5738 struct dirent *de = NULL;
5739
5740 if (readdir_r (d, &e, &de) != 0)
5741 {
5742 log_error ("ERROR: readdir_r() failed");
5743
5744 break;
5745 }
5746
5747 if (de == NULL) break;
5748 #else
5749 struct dirent *de;
5750
5751 while ((de = readdir (d)) != NULL)
5752 {
5753 #endif
5754 if ((strcmp (de->d_name, ".") == 0) || (strcmp (de->d_name, "..") == 0)) continue;
5755
5756 int path_size = strlen (tmp_path) + 1 + strlen (de->d_name);
5757
5758 char *path_file = (char *) mymalloc (path_size + 1);
5759
5760 snprintf (path_file, path_size + 1, "%s/%s", tmp_path, de->d_name);
5761
5762 path_file[path_size] = 0;
5763
5764 DIR *d_test;
5765
5766 if ((d_test = opendir (path_file)) != NULL)
5767 {
5768 closedir (d_test);
5769
5770 myfree (path_file);
5771 }
5772 else
5773 {
5774 files = (char **) myrealloc (files, num_files * sizeof (char *), sizeof (char *));
5775
5776 num_files++;
5777
5778 files[num_files - 1] = path_file;
5779 }
5780 }
5781
5782 closedir (d);
5783 }
5784 else if (errno == ENOTDIR)
5785 {
5786 files = (char **) myrealloc (files, num_files * sizeof (char *), sizeof (char *));
5787
5788 num_files++;
5789
5790 files[num_files - 1] = mystrdup (path);
5791 }
5792
5793 files = (char **) myrealloc (files, num_files * sizeof (char *), sizeof (char *));
5794
5795 num_files++;
5796
5797 files[num_files - 1] = NULL;
5798
5799 myfree (tmp_path);
5800
5801 return (files);
5802 }
5803
5804 int count_dictionaries (char **dictionary_files)
5805 {
5806 if (dictionary_files == NULL) return 0;
5807
5808 int cnt = 0;
5809
5810 for (int d = 0; dictionary_files[d] != NULL; d++)
5811 {
5812 cnt++;
5813 }
5814
5815 return (cnt);
5816 }
5817
5818 char *stroptitype (const uint opti_type)
5819 {
5820 switch (opti_type)
5821 {
5822 case OPTI_TYPE_ZERO_BYTE: return ((char *) OPTI_STR_ZERO_BYTE); break;
5823 case OPTI_TYPE_PRECOMPUTE_INIT: return ((char *) OPTI_STR_PRECOMPUTE_INIT); break;
5824 case OPTI_TYPE_PRECOMPUTE_MERKLE: return ((char *) OPTI_STR_PRECOMPUTE_MERKLE); break;
5825 case OPTI_TYPE_PRECOMPUTE_PERMUT: return ((char *) OPTI_STR_PRECOMPUTE_PERMUT); break;
5826 case OPTI_TYPE_MEET_IN_MIDDLE: return ((char *) OPTI_STR_MEET_IN_MIDDLE); break;
5827 case OPTI_TYPE_EARLY_SKIP: return ((char *) OPTI_STR_EARLY_SKIP); break;
5828 case OPTI_TYPE_NOT_SALTED: return ((char *) OPTI_STR_NOT_SALTED); break;
5829 case OPTI_TYPE_NOT_ITERATED: return ((char *) OPTI_STR_NOT_ITERATED); break;
5830 case OPTI_TYPE_PREPENDED_SALT: return ((char *) OPTI_STR_PREPENDED_SALT); break;
5831 case OPTI_TYPE_APPENDED_SALT: return ((char *) OPTI_STR_APPENDED_SALT); break;
5832 case OPTI_TYPE_SINGLE_HASH: return ((char *) OPTI_STR_SINGLE_HASH); break;
5833 case OPTI_TYPE_SINGLE_SALT: return ((char *) OPTI_STR_SINGLE_SALT); break;
5834 case OPTI_TYPE_BRUTE_FORCE: return ((char *) OPTI_STR_BRUTE_FORCE); break;
5835 case OPTI_TYPE_RAW_HASH: return ((char *) OPTI_STR_RAW_HASH); break;
5836 case OPTI_TYPE_SLOW_HASH_SIMD: return ((char *) OPTI_STR_SLOW_HASH_SIMD); break;
5837 case OPTI_TYPE_USES_BITS_8: return ((char *) OPTI_STR_USES_BITS_8); break;
5838 case OPTI_TYPE_USES_BITS_16: return ((char *) OPTI_STR_USES_BITS_16); break;
5839 case OPTI_TYPE_USES_BITS_32: return ((char *) OPTI_STR_USES_BITS_32); break;
5840 case OPTI_TYPE_USES_BITS_64: return ((char *) OPTI_STR_USES_BITS_64); break;
5841 }
5842
5843 return (NULL);
5844 }
5845
5846 char *strparser (const uint parser_status)
5847 {
5848 switch (parser_status)
5849 {
5850 case PARSER_OK: return ((char *) PA_000); break;
5851 case PARSER_COMMENT: return ((char *) PA_001); break;
5852 case PARSER_GLOBAL_ZERO: return ((char *) PA_002); break;
5853 case PARSER_GLOBAL_LENGTH: return ((char *) PA_003); break;
5854 case PARSER_HASH_LENGTH: return ((char *) PA_004); break;
5855 case PARSER_HASH_VALUE: return ((char *) PA_005); break;
5856 case PARSER_SALT_LENGTH: return ((char *) PA_006); break;
5857 case PARSER_SALT_VALUE: return ((char *) PA_007); break;
5858 case PARSER_SALT_ITERATION: return ((char *) PA_008); break;
5859 case PARSER_SEPARATOR_UNMATCHED: return ((char *) PA_009); break;
5860 case PARSER_SIGNATURE_UNMATCHED: return ((char *) PA_010); break;
5861 case PARSER_HCCAP_FILE_SIZE: return ((char *) PA_011); break;
5862 case PARSER_HCCAP_EAPOL_SIZE: return ((char *) PA_012); break;
5863 case PARSER_PSAFE2_FILE_SIZE: return ((char *) PA_013); break;
5864 case PARSER_PSAFE3_FILE_SIZE: return ((char *) PA_014); break;
5865 case PARSER_TC_FILE_SIZE: return ((char *) PA_015); break;
5866 case PARSER_SIP_AUTH_DIRECTIVE: return ((char *) PA_016); break;
5867 }
5868
5869 return ((char *) PA_255);
5870 }
5871
5872 char *strhashtype (const uint hash_mode)
5873 {
5874 switch (hash_mode)
5875 {
5876 case 0: return ((char *) HT_00000); break;
5877 case 10: return ((char *) HT_00010); break;
5878 case 11: return ((char *) HT_00011); break;
5879 case 12: return ((char *) HT_00012); break;
5880 case 20: return ((char *) HT_00020); break;
5881 case 21: return ((char *) HT_00021); break;
5882 case 22: return ((char *) HT_00022); break;
5883 case 23: return ((char *) HT_00023); break;
5884 case 30: return ((char *) HT_00030); break;
5885 case 40: return ((char *) HT_00040); break;
5886 case 50: return ((char *) HT_00050); break;
5887 case 60: return ((char *) HT_00060); break;
5888 case 100: return ((char *) HT_00100); break;
5889 case 101: return ((char *) HT_00101); break;
5890 case 110: return ((char *) HT_00110); break;
5891 case 111: return ((char *) HT_00111); break;
5892 case 112: return ((char *) HT_00112); break;
5893 case 120: return ((char *) HT_00120); break;
5894 case 121: return ((char *) HT_00121); break;
5895 case 122: return ((char *) HT_00122); break;
5896 case 124: return ((char *) HT_00124); break;
5897 case 125: return ((char *) HT_00125); break;
5898 case 130: return ((char *) HT_00130); break;
5899 case 131: return ((char *) HT_00131); break;
5900 case 132: return ((char *) HT_00132); break;
5901 case 133: return ((char *) HT_00133); break;
5902 case 140: return ((char *) HT_00140); break;
5903 case 141: return ((char *) HT_00141); break;
5904 case 150: return ((char *) HT_00150); break;
5905 case 160: return ((char *) HT_00160); break;
5906 case 200: return ((char *) HT_00200); break;
5907 case 300: return ((char *) HT_00300); break;
5908 case 400: return ((char *) HT_00400); break;
5909 case 500: return ((char *) HT_00500); break;
5910 case 501: return ((char *) HT_00501); break;
5911 case 900: return ((char *) HT_00900); break;
5912 case 910: return ((char *) HT_00910); break;
5913 case 1000: return ((char *) HT_01000); break;
5914 case 1100: return ((char *) HT_01100); break;
5915 case 1400: return ((char *) HT_01400); break;
5916 case 1410: return ((char *) HT_01410); break;
5917 case 1420: return ((char *) HT_01420); break;
5918 case 1421: return ((char *) HT_01421); break;
5919 case 1430: return ((char *) HT_01430); break;
5920 case 1440: return ((char *) HT_01440); break;
5921 case 1441: return ((char *) HT_01441); break;
5922 case 1450: return ((char *) HT_01450); break;
5923 case 1460: return ((char *) HT_01460); break;
5924 case 1500: return ((char *) HT_01500); break;
5925 case 1600: return ((char *) HT_01600); break;
5926 case 1700: return ((char *) HT_01700); break;
5927 case 1710: return ((char *) HT_01710); break;
5928 case 1711: return ((char *) HT_01711); break;
5929 case 1720: return ((char *) HT_01720); break;
5930 case 1722: return ((char *) HT_01722); break;
5931 case 1730: return ((char *) HT_01730); break;
5932 case 1731: return ((char *) HT_01731); break;
5933 case 1740: return ((char *) HT_01740); break;
5934 case 1750: return ((char *) HT_01750); break;
5935 case 1760: return ((char *) HT_01760); break;
5936 case 1800: return ((char *) HT_01800); break;
5937 case 2100: return ((char *) HT_02100); break;
5938 case 2400: return ((char *) HT_02400); break;
5939 case 2410: return ((char *) HT_02410); break;
5940 case 2500: return ((char *) HT_02500); break;
5941 case 2600: return ((char *) HT_02600); break;
5942 case 2611: return ((char *) HT_02611); break;
5943 case 2612: return ((char *) HT_02612); break;
5944 case 2711: return ((char *) HT_02711); break;
5945 case 2811: return ((char *) HT_02811); break;
5946 case 3000: return ((char *) HT_03000); break;
5947 case 3100: return ((char *) HT_03100); break;
5948 case 3200: return ((char *) HT_03200); break;
5949 case 3710: return ((char *) HT_03710); break;
5950 case 3711: return ((char *) HT_03711); break;
5951 case 3800: return ((char *) HT_03800); break;
5952 case 4300: return ((char *) HT_04300); break;
5953 case 4400: return ((char *) HT_04400); break;
5954 case 4500: return ((char *) HT_04500); break;
5955 case 4700: return ((char *) HT_04700); break;
5956 case 4800: return ((char *) HT_04800); break;
5957 case 4900: return ((char *) HT_04900); break;
5958 case 5000: return ((char *) HT_05000); break;
5959 case 5100: return ((char *) HT_05100); break;
5960 case 5200: return ((char *) HT_05200); break;
5961 case 5300: return ((char *) HT_05300); break;
5962 case 5400: return ((char *) HT_05400); break;
5963 case 5500: return ((char *) HT_05500); break;
5964 case 5600: return ((char *) HT_05600); break;
5965 case 5700: return ((char *) HT_05700); break;
5966 case 5800: return ((char *) HT_05800); break;
5967 case 6000: return ((char *) HT_06000); break;
5968 case 6100: return ((char *) HT_06100); break;
5969 case 6211: return ((char *) HT_06211); break;
5970 case 6212: return ((char *) HT_06212); break;
5971 case 6213: return ((char *) HT_06213); break;
5972 case 6221: return ((char *) HT_06221); break;
5973 case 6222: return ((char *) HT_06222); break;
5974 case 6223: return ((char *) HT_06223); break;
5975 case 6231: return ((char *) HT_06231); break;
5976 case 6232: return ((char *) HT_06232); break;
5977 case 6233: return ((char *) HT_06233); break;
5978 case 6241: return ((char *) HT_06241); break;
5979 case 6242: return ((char *) HT_06242); break;
5980 case 6243: return ((char *) HT_06243); break;
5981 case 6300: return ((char *) HT_06300); break;
5982 case 6400: return ((char *) HT_06400); break;
5983 case 6500: return ((char *) HT_06500); break;
5984 case 6600: return ((char *) HT_06600); break;
5985 case 6700: return ((char *) HT_06700); break;
5986 case 6800: return ((char *) HT_06800); break;
5987 case 6900: return ((char *) HT_06900); break;
5988 case 7100: return ((char *) HT_07100); break;
5989 case 7200: return ((char *) HT_07200); break;
5990 case 7300: return ((char *) HT_07300); break;
5991 case 7400: return ((char *) HT_07400); break;
5992 case 7500: return ((char *) HT_07500); break;
5993 case 7600: return ((char *) HT_07600); break;
5994 case 7700: return ((char *) HT_07700); break;
5995 case 7800: return ((char *) HT_07800); break;
5996 case 7900: return ((char *) HT_07900); break;
5997 case 8000: return ((char *) HT_08000); break;
5998 case 8100: return ((char *) HT_08100); break;
5999 case 8200: return ((char *) HT_08200); break;
6000 case 8300: return ((char *) HT_08300); break;
6001 case 8400: return ((char *) HT_08400); break;
6002 case 8500: return ((char *) HT_08500); break;
6003 case 8600: return ((char *) HT_08600); break;
6004 case 8700: return ((char *) HT_08700); break;
6005 case 8800: return ((char *) HT_08800); break;
6006 case 8900: return ((char *) HT_08900); break;
6007 case 9000: return ((char *) HT_09000); break;
6008 case 9100: return ((char *) HT_09100); break;
6009 case 9200: return ((char *) HT_09200); break;
6010 case 9300: return ((char *) HT_09300); break;
6011 case 9400: return ((char *) HT_09400); break;
6012 case 9500: return ((char *) HT_09500); break;
6013 case 9600: return ((char *) HT_09600); break;
6014 case 9700: return ((char *) HT_09700); break;
6015 case 9710: return ((char *) HT_09710); break;
6016 case 9720: return ((char *) HT_09720); break;
6017 case 9800: return ((char *) HT_09800); break;
6018 case 9810: return ((char *) HT_09810); break;
6019 case 9820: return ((char *) HT_09820); break;
6020 case 9900: return ((char *) HT_09900); break;
6021 case 10000: return ((char *) HT_10000); break;
6022 case 10100: return ((char *) HT_10100); break;
6023 case 10200: return ((char *) HT_10200); break;
6024 case 10300: return ((char *) HT_10300); break;
6025 case 10400: return ((char *) HT_10400); break;
6026 case 10410: return ((char *) HT_10410); break;
6027 case 10420: return ((char *) HT_10420); break;
6028 case 10500: return ((char *) HT_10500); break;
6029 case 10600: return ((char *) HT_10600); break;
6030 case 10700: return ((char *) HT_10700); break;
6031 case 10800: return ((char *) HT_10800); break;
6032 case 10900: return ((char *) HT_10900); break;
6033 case 11000: return ((char *) HT_11000); break;
6034 case 11100: return ((char *) HT_11100); break;
6035 case 11200: return ((char *) HT_11200); break;
6036 case 11300: return ((char *) HT_11300); break;
6037 case 11400: return ((char *) HT_11400); break;
6038 case 11500: return ((char *) HT_11500); break;
6039 case 11600: return ((char *) HT_11600); break;
6040 case 11700: return ((char *) HT_11700); break;
6041 case 11800: return ((char *) HT_11800); break;
6042 case 11900: return ((char *) HT_11900); break;
6043 case 12000: return ((char *) HT_12000); break;
6044 case 12100: return ((char *) HT_12100); break;
6045 case 12200: return ((char *) HT_12200); break;
6046 case 12300: return ((char *) HT_12300); break;
6047 case 12400: return ((char *) HT_12400); break;
6048 case 12500: return ((char *) HT_12500); break;
6049 case 12600: return ((char *) HT_12600); break;
6050 case 12700: return ((char *) HT_12700); break;
6051 case 12800: return ((char *) HT_12800); break;
6052 case 12900: return ((char *) HT_12900); break;
6053 case 13000: return ((char *) HT_13000); break;
6054 case 13100: return ((char *) HT_13100); break;
6055 case 13200: return ((char *) HT_13200); break;
6056 case 13300: return ((char *) HT_13300); break;
6057 case 13400: return ((char *) HT_13400); break;
6058 case 13500: return ((char *) HT_13500); break;
6059 case 13600: return ((char *) HT_13600); break;
6060 case 13711: return ((char *) HT_13711); break;
6061 case 13712: return ((char *) HT_13712); break;
6062 case 13713: return ((char *) HT_13713); break;
6063 case 13721: return ((char *) HT_13721); break;
6064 case 13722: return ((char *) HT_13722); break;
6065 case 13723: return ((char *) HT_13723); break;
6066 case 13731: return ((char *) HT_13731); break;
6067 case 13732: return ((char *) HT_13732); break;
6068 case 13733: return ((char *) HT_13733); break;
6069 case 13741: return ((char *) HT_13741); break;
6070 case 13742: return ((char *) HT_13742); break;
6071 case 13743: return ((char *) HT_13743); break;
6072 case 13751: return ((char *) HT_13751); break;
6073 case 13752: return ((char *) HT_13752); break;
6074 case 13753: return ((char *) HT_13753); break;
6075 case 13761: return ((char *) HT_13761); break;
6076 case 13762: return ((char *) HT_13762); break;
6077 case 13763: return ((char *) HT_13763); break;
6078 case 13800: return ((char *) HT_13800); break;
6079 }
6080
6081 return ((char *) "Unknown");
6082 }
6083
6084 char *strstatus (const uint devices_status)
6085 {
6086 switch (devices_status)
6087 {
6088 case STATUS_INIT: return ((char *) ST_0000); break;
6089 case STATUS_STARTING: return ((char *) ST_0001); break;
6090 case STATUS_RUNNING: return ((char *) ST_0002); break;
6091 case STATUS_PAUSED: return ((char *) ST_0003); break;
6092 case STATUS_EXHAUSTED: return ((char *) ST_0004); break;
6093 case STATUS_CRACKED: return ((char *) ST_0005); break;
6094 case STATUS_ABORTED: return ((char *) ST_0006); break;
6095 case STATUS_QUIT: return ((char *) ST_0007); break;
6096 case STATUS_BYPASS: return ((char *) ST_0008); break;
6097 case STATUS_STOP_AT_CHECKPOINT: return ((char *) ST_0009); break;
6098 case STATUS_AUTOTUNE: return ((char *) ST_0010); break;
6099 }
6100
6101 return ((char *) "Unknown");
6102 }
6103
6104 void ascii_digest (char *out_buf, uint salt_pos, uint digest_pos)
6105 {
6106 uint hash_type = data.hash_type;
6107 uint hash_mode = data.hash_mode;
6108 uint salt_type = data.salt_type;
6109 uint opts_type = data.opts_type;
6110 uint opti_type = data.opti_type;
6111 uint dgst_size = data.dgst_size;
6112
6113 char *hashfile = data.hashfile;
6114
6115 uint len = 4096;
6116
6117 uint digest_buf[64] = { 0 };
6118
6119 u64 *digest_buf64 = (u64 *) digest_buf;
6120
6121 char *digests_buf_ptr = (char *) data.digests_buf;
6122
6123 memcpy (digest_buf, digests_buf_ptr + (data.salts_buf[salt_pos].digests_offset * dgst_size) + (digest_pos * dgst_size), dgst_size);
6124
6125 if (opti_type & OPTI_TYPE_PRECOMPUTE_PERMUT)
6126 {
6127 uint tt;
6128
6129 switch (hash_type)
6130 {
6131 case HASH_TYPE_DESCRYPT:
6132 FP (digest_buf[1], digest_buf[0], tt);
6133 break;
6134
6135 case HASH_TYPE_DESRACF:
6136 digest_buf[0] = rotl32 (digest_buf[0], 29);
6137 digest_buf[1] = rotl32 (digest_buf[1], 29);
6138
6139 FP (digest_buf[1], digest_buf[0], tt);
6140 break;
6141
6142 case HASH_TYPE_LM:
6143 FP (digest_buf[1], digest_buf[0], tt);
6144 break;
6145
6146 case HASH_TYPE_NETNTLM:
6147 digest_buf[0] = rotl32 (digest_buf[0], 29);
6148 digest_buf[1] = rotl32 (digest_buf[1], 29);
6149 digest_buf[2] = rotl32 (digest_buf[2], 29);
6150 digest_buf[3] = rotl32 (digest_buf[3], 29);
6151
6152 FP (digest_buf[1], digest_buf[0], tt);
6153 FP (digest_buf[3], digest_buf[2], tt);
6154 break;
6155
6156 case HASH_TYPE_BSDICRYPT:
6157 digest_buf[0] = rotl32 (digest_buf[0], 31);
6158 digest_buf[1] = rotl32 (digest_buf[1], 31);
6159
6160 FP (digest_buf[1], digest_buf[0], tt);
6161 break;
6162 }
6163 }
6164
6165 if (opti_type & OPTI_TYPE_PRECOMPUTE_MERKLE)
6166 {
6167 switch (hash_type)
6168 {
6169 case HASH_TYPE_MD4:
6170 digest_buf[0] += MD4M_A;
6171 digest_buf[1] += MD4M_B;
6172 digest_buf[2] += MD4M_C;
6173 digest_buf[3] += MD4M_D;
6174 break;
6175
6176 case HASH_TYPE_MD5:
6177 digest_buf[0] += MD5M_A;
6178 digest_buf[1] += MD5M_B;
6179 digest_buf[2] += MD5M_C;
6180 digest_buf[3] += MD5M_D;
6181 break;
6182
6183 case HASH_TYPE_SHA1:
6184 digest_buf[0] += SHA1M_A;
6185 digest_buf[1] += SHA1M_B;
6186 digest_buf[2] += SHA1M_C;
6187 digest_buf[3] += SHA1M_D;
6188 digest_buf[4] += SHA1M_E;
6189 break;
6190
6191 case HASH_TYPE_SHA256:
6192 digest_buf[0] += SHA256M_A;
6193 digest_buf[1] += SHA256M_B;
6194 digest_buf[2] += SHA256M_C;
6195 digest_buf[3] += SHA256M_D;
6196 digest_buf[4] += SHA256M_E;
6197 digest_buf[5] += SHA256M_F;
6198 digest_buf[6] += SHA256M_G;
6199 digest_buf[7] += SHA256M_H;
6200 break;
6201
6202 case HASH_TYPE_SHA384:
6203 digest_buf64[0] += SHA384M_A;
6204 digest_buf64[1] += SHA384M_B;
6205 digest_buf64[2] += SHA384M_C;
6206 digest_buf64[3] += SHA384M_D;
6207 digest_buf64[4] += SHA384M_E;
6208 digest_buf64[5] += SHA384M_F;
6209 digest_buf64[6] += 0;
6210 digest_buf64[7] += 0;
6211 break;
6212
6213 case HASH_TYPE_SHA512:
6214 digest_buf64[0] += SHA512M_A;
6215 digest_buf64[1] += SHA512M_B;
6216 digest_buf64[2] += SHA512M_C;
6217 digest_buf64[3] += SHA512M_D;
6218 digest_buf64[4] += SHA512M_E;
6219 digest_buf64[5] += SHA512M_F;
6220 digest_buf64[6] += SHA512M_G;
6221 digest_buf64[7] += SHA512M_H;
6222 break;
6223 }
6224 }
6225
6226 if (opts_type & OPTS_TYPE_PT_GENERATE_LE)
6227 {
6228 if (dgst_size == DGST_SIZE_4_2)
6229 {
6230 for (int i = 0; i < 2; i++) digest_buf[i] = byte_swap_32 (digest_buf[i]);
6231 }
6232 else if (dgst_size == DGST_SIZE_4_4)
6233 {
6234 for (int i = 0; i < 4; i++) digest_buf[i] = byte_swap_32 (digest_buf[i]);
6235 }
6236 else if (dgst_size == DGST_SIZE_4_5)
6237 {
6238 for (int i = 0; i < 5; i++) digest_buf[i] = byte_swap_32 (digest_buf[i]);
6239 }
6240 else if (dgst_size == DGST_SIZE_4_6)
6241 {
6242 for (int i = 0; i < 6; i++) digest_buf[i] = byte_swap_32 (digest_buf[i]);
6243 }
6244 else if (dgst_size == DGST_SIZE_4_8)
6245 {
6246 for (int i = 0; i < 8; i++) digest_buf[i] = byte_swap_32 (digest_buf[i]);
6247 }
6248 else if ((dgst_size == DGST_SIZE_4_16) || (dgst_size == DGST_SIZE_8_8)) // same size, same result :)
6249 {
6250 if (hash_type == HASH_TYPE_WHIRLPOOL)
6251 {
6252 for (int i = 0; i < 16; i++) digest_buf[i] = byte_swap_32 (digest_buf[i]);
6253 }
6254 else if (hash_type == HASH_TYPE_SHA384)
6255 {
6256 for (int i = 0; i < 8; i++) digest_buf64[i] = byte_swap_64 (digest_buf64[i]);
6257 }
6258 else if (hash_type == HASH_TYPE_SHA512)
6259 {
6260 for (int i = 0; i < 8; i++) digest_buf64[i] = byte_swap_64 (digest_buf64[i]);
6261 }
6262 else if (hash_type == HASH_TYPE_GOST)
6263 {
6264 for (int i = 0; i < 16; i++) digest_buf[i] = byte_swap_32 (digest_buf[i]);
6265 }
6266 }
6267 else if (dgst_size == DGST_SIZE_4_64)
6268 {
6269 for (int i = 0; i < 64; i++) digest_buf[i] = byte_swap_32 (digest_buf[i]);
6270 }
6271 else if (dgst_size == DGST_SIZE_8_25)
6272 {
6273 for (int i = 0; i < 25; i++) digest_buf64[i] = byte_swap_64 (digest_buf64[i]);
6274 }
6275 }
6276
6277 uint isSalted = ((data.salt_type == SALT_TYPE_INTERN)
6278 | (data.salt_type == SALT_TYPE_EXTERN)
6279 | (data.salt_type == SALT_TYPE_EMBEDDED));
6280
6281 salt_t salt;
6282
6283 if (isSalted)
6284 {
6285 memset (&salt, 0, sizeof (salt_t));
6286
6287 memcpy (&salt, &data.salts_buf[salt_pos], sizeof (salt_t));
6288
6289 char *ptr = (char *) salt.salt_buf;
6290
6291 uint len = salt.salt_len;
6292
6293 if (opti_type & OPTI_TYPE_PRECOMPUTE_PERMUT)
6294 {
6295 uint tt;
6296
6297 switch (hash_type)
6298 {
6299 case HASH_TYPE_NETNTLM:
6300
6301 salt.salt_buf[0] = rotr32 (salt.salt_buf[0], 3);
6302 salt.salt_buf[1] = rotr32 (salt.salt_buf[1], 3);
6303
6304 FP (salt.salt_buf[1], salt.salt_buf[0], tt);
6305
6306 break;
6307 }
6308 }
6309
6310 if (opts_type & OPTS_TYPE_ST_UNICODE)
6311 {
6312 for (uint i = 0, j = 0; i < len; i += 1, j += 2)
6313 {
6314 ptr[i] = ptr[j];
6315 }
6316
6317 len = len / 2;
6318 }
6319
6320 if (opts_type & OPTS_TYPE_ST_GENERATE_LE)
6321 {
6322 uint max = salt.salt_len / 4;
6323
6324 if (len % 4) max++;
6325
6326 for (uint i = 0; i < max; i++)
6327 {
6328 salt.salt_buf[i] = byte_swap_32 (salt.salt_buf[i]);
6329 }
6330 }
6331
6332 if (opts_type & OPTS_TYPE_ST_HEX)
6333 {
6334 char tmp[64] = { 0 };
6335
6336 for (uint i = 0, j = 0; i < len; i += 1, j += 2)
6337 {
6338 sprintf (tmp + j, "%02x", (unsigned char) ptr[i]);
6339 }
6340
6341 len = len * 2;
6342
6343 memcpy (ptr, tmp, len);
6344 }
6345
6346 uint memset_size = ((48 - (int) len) > 0) ? (48 - len) : 0;
6347
6348 memset (ptr + len, 0, memset_size);
6349
6350 salt.salt_len = len;
6351 }
6352
6353 //
6354 // some modes require special encoding
6355 //
6356
6357 uint out_buf_plain[256] = { 0 };
6358 uint out_buf_salt[256] = { 0 };
6359
6360 char tmp_buf[1024] = { 0 };
6361
6362 char *ptr_plain = (char *) out_buf_plain;
6363 char *ptr_salt = (char *) out_buf_salt;
6364
6365 if (hash_mode == 22)
6366 {
6367 char username[30] = { 0 };
6368
6369 memcpy (username, salt.salt_buf, salt.salt_len - 22);
6370
6371 char sig[6] = { 'n', 'r', 'c', 's', 't', 'n' };
6372
6373 u16 *ptr = (u16 *) digest_buf;
6374
6375 tmp_buf[ 0] = sig[0];
6376 tmp_buf[ 1] = int_to_base64 (((ptr[1]) >> 12) & 0x3f);
6377 tmp_buf[ 2] = int_to_base64 (((ptr[1]) >> 6) & 0x3f);
6378 tmp_buf[ 3] = int_to_base64 (((ptr[1]) >> 0) & 0x3f);
6379 tmp_buf[ 4] = int_to_base64 (((ptr[0]) >> 12) & 0x3f);
6380 tmp_buf[ 5] = int_to_base64 (((ptr[0]) >> 6) & 0x3f);
6381 tmp_buf[ 6] = sig[1];
6382 tmp_buf[ 7] = int_to_base64 (((ptr[0]) >> 0) & 0x3f);
6383 tmp_buf[ 8] = int_to_base64 (((ptr[3]) >> 12) & 0x3f);
6384 tmp_buf[ 9] = int_to_base64 (((ptr[3]) >> 6) & 0x3f);
6385 tmp_buf[10] = int_to_base64 (((ptr[3]) >> 0) & 0x3f);
6386 tmp_buf[11] = int_to_base64 (((ptr[2]) >> 12) & 0x3f);
6387 tmp_buf[12] = sig[2];
6388 tmp_buf[13] = int_to_base64 (((ptr[2]) >> 6) & 0x3f);
6389 tmp_buf[14] = int_to_base64 (((ptr[2]) >> 0) & 0x3f);
6390 tmp_buf[15] = int_to_base64 (((ptr[5]) >> 12) & 0x3f);
6391 tmp_buf[16] = int_to_base64 (((ptr[5]) >> 6) & 0x3f);
6392 tmp_buf[17] = sig[3];
6393 tmp_buf[18] = int_to_base64 (((ptr[5]) >> 0) & 0x3f);
6394 tmp_buf[19] = int_to_base64 (((ptr[4]) >> 12) & 0x3f);
6395 tmp_buf[20] = int_to_base64 (((ptr[4]) >> 6) & 0x3f);
6396 tmp_buf[21] = int_to_base64 (((ptr[4]) >> 0) & 0x3f);
6397 tmp_buf[22] = int_to_base64 (((ptr[7]) >> 12) & 0x3f);
6398 tmp_buf[23] = sig[4];
6399 tmp_buf[24] = int_to_base64 (((ptr[7]) >> 6) & 0x3f);
6400 tmp_buf[25] = int_to_base64 (((ptr[7]) >> 0) & 0x3f);
6401 tmp_buf[26] = int_to_base64 (((ptr[6]) >> 12) & 0x3f);
6402 tmp_buf[27] = int_to_base64 (((ptr[6]) >> 6) & 0x3f);
6403 tmp_buf[28] = int_to_base64 (((ptr[6]) >> 0) & 0x3f);
6404 tmp_buf[29] = sig[5];
6405
6406 snprintf (out_buf, len-1, "%s:%s",
6407 tmp_buf,
6408 username);
6409 }
6410 else if (hash_mode == 23)
6411 {
6412 // do not show the skyper part in output
6413
6414 char *salt_buf_ptr = (char *) salt.salt_buf;
6415
6416 salt_buf_ptr[salt.salt_len - 8] = 0;
6417
6418 snprintf (out_buf, len-1, "%08x%08x%08x%08x:%s",
6419 digest_buf[0],
6420 digest_buf[1],
6421 digest_buf[2],
6422 digest_buf[3],
6423 salt_buf_ptr);
6424 }
6425 else if (hash_mode == 101)
6426 {
6427 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6428
6429 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6430 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6431 digest_buf[2] = byte_swap_32 (digest_buf[2]);
6432 digest_buf[3] = byte_swap_32 (digest_buf[3]);
6433 digest_buf[4] = byte_swap_32 (digest_buf[4]);
6434
6435 memcpy (tmp_buf, digest_buf, 20);
6436
6437 base64_encode (int_to_base64, (const u8 *) tmp_buf, 20, (u8 *) ptr_plain);
6438
6439 snprintf (out_buf, len-1, "{SHA}%s", ptr_plain);
6440 }
6441 else if (hash_mode == 111)
6442 {
6443 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6444
6445 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6446 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6447 digest_buf[2] = byte_swap_32 (digest_buf[2]);
6448 digest_buf[3] = byte_swap_32 (digest_buf[3]);
6449 digest_buf[4] = byte_swap_32 (digest_buf[4]);
6450
6451 memcpy (tmp_buf, digest_buf, 20);
6452 memcpy (tmp_buf + 20, salt.salt_buf, salt.salt_len);
6453
6454 base64_encode (int_to_base64, (const u8 *) tmp_buf, 20 + salt.salt_len, (u8 *) ptr_plain);
6455
6456 snprintf (out_buf, len-1, "{SSHA}%s", ptr_plain);
6457 }
6458 else if ((hash_mode == 122) || (hash_mode == 125))
6459 {
6460 snprintf (out_buf, len-1, "%s%08x%08x%08x%08x%08x",
6461 (char *) salt.salt_buf,
6462 digest_buf[0],
6463 digest_buf[1],
6464 digest_buf[2],
6465 digest_buf[3],
6466 digest_buf[4]);
6467 }
6468 else if (hash_mode == 124)
6469 {
6470 snprintf (out_buf, len-1, "sha1$%s$%08x%08x%08x%08x%08x",
6471 (char *) salt.salt_buf,
6472 digest_buf[0],
6473 digest_buf[1],
6474 digest_buf[2],
6475 digest_buf[3],
6476 digest_buf[4]);
6477 }
6478 else if (hash_mode == 131)
6479 {
6480 snprintf (out_buf, len-1, "0x0100%s%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
6481 (char *) salt.salt_buf,
6482 0, 0, 0, 0, 0,
6483 digest_buf[0],
6484 digest_buf[1],
6485 digest_buf[2],
6486 digest_buf[3],
6487 digest_buf[4]);
6488 }
6489 else if (hash_mode == 132)
6490 {
6491 snprintf (out_buf, len-1, "0x0100%s%08x%08x%08x%08x%08x",
6492 (char *) salt.salt_buf,
6493 digest_buf[0],
6494 digest_buf[1],
6495 digest_buf[2],
6496 digest_buf[3],
6497 digest_buf[4]);
6498 }
6499 else if (hash_mode == 133)
6500 {
6501 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6502
6503 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6504 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6505 digest_buf[2] = byte_swap_32 (digest_buf[2]);
6506 digest_buf[3] = byte_swap_32 (digest_buf[3]);
6507 digest_buf[4] = byte_swap_32 (digest_buf[4]);
6508
6509 memcpy (tmp_buf, digest_buf, 20);
6510
6511 base64_encode (int_to_base64, (const u8 *) tmp_buf, 20, (u8 *) ptr_plain);
6512
6513 snprintf (out_buf, len-1, "%s", ptr_plain);
6514 }
6515 else if (hash_mode == 141)
6516 {
6517 memcpy (tmp_buf, salt.salt_buf, salt.salt_len);
6518
6519 base64_encode (int_to_base64, (const u8 *) tmp_buf, salt.salt_len, (u8 *) ptr_salt);
6520
6521 memset (tmp_buf, 0, sizeof (tmp_buf));
6522
6523 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6524
6525 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6526 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6527 digest_buf[2] = byte_swap_32 (digest_buf[2]);
6528 digest_buf[3] = byte_swap_32 (digest_buf[3]);
6529 digest_buf[4] = byte_swap_32 (digest_buf[4]);
6530
6531 memcpy (tmp_buf, digest_buf, 20);
6532
6533 base64_encode (int_to_base64, (const u8 *) tmp_buf, 20, (u8 *) ptr_plain);
6534
6535 ptr_plain[27] = 0;
6536
6537 snprintf (out_buf, len-1, "%s%s*%s", SIGNATURE_EPISERVER, ptr_salt, ptr_plain);
6538 }
6539 else if (hash_mode == 400)
6540 {
6541 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6542
6543 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6544 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6545 digest_buf[2] = byte_swap_32 (digest_buf[2]);
6546 digest_buf[3] = byte_swap_32 (digest_buf[3]);
6547
6548 phpass_encode ((unsigned char *) digest_buf, (unsigned char *) ptr_plain);
6549
6550 snprintf (out_buf, len-1, "%s%s%s", (char *) salt.salt_sign, (char *) salt.salt_buf, (char *) ptr_plain);
6551 }
6552 else if (hash_mode == 500)
6553 {
6554 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6555
6556 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6557 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6558 digest_buf[2] = byte_swap_32 (digest_buf[2]);
6559 digest_buf[3] = byte_swap_32 (digest_buf[3]);
6560
6561 md5crypt_encode ((unsigned char *) digest_buf, (unsigned char *) ptr_plain);
6562
6563 if (salt.salt_iter == ROUNDS_MD5CRYPT)
6564 {
6565 snprintf (out_buf, len-1, "$1$%s$%s", (char *) salt.salt_buf, (char *) ptr_plain);
6566 }
6567 else
6568 {
6569 snprintf (out_buf, len-1, "$1$rounds=%i$%s$%s", salt.salt_iter, (char *) salt.salt_buf, (char *) ptr_plain);
6570 }
6571 }
6572 else if (hash_mode == 501)
6573 {
6574 uint digest_idx = salt.digests_offset + digest_pos;
6575
6576 hashinfo_t **hashinfo_ptr = data.hash_info;
6577 char *hash_buf = hashinfo_ptr[digest_idx]->orighash;
6578
6579 snprintf (out_buf, len-1, "%s", hash_buf);
6580 }
6581 else if (hash_mode == 1421)
6582 {
6583 u8 *salt_ptr = (u8 *) salt.salt_buf;
6584
6585 snprintf (out_buf, len-1, "%c%c%c%c%c%c%08x%08x%08x%08x%08x%08x%08x%08x",
6586 salt_ptr[0],
6587 salt_ptr[1],
6588 salt_ptr[2],
6589 salt_ptr[3],
6590 salt_ptr[4],
6591 salt_ptr[5],
6592 digest_buf[0],
6593 digest_buf[1],
6594 digest_buf[2],
6595 digest_buf[3],
6596 digest_buf[4],
6597 digest_buf[5],
6598 digest_buf[6],
6599 digest_buf[7]);
6600 }
6601 else if (hash_mode == 1441)
6602 {
6603 memcpy (tmp_buf, salt.salt_buf, salt.salt_len);
6604
6605 base64_encode (int_to_base64, (const u8 *) tmp_buf, salt.salt_len, (u8 *) ptr_salt);
6606
6607 memset (tmp_buf, 0, sizeof (tmp_buf));
6608
6609 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6610
6611 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6612 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6613 digest_buf[2] = byte_swap_32 (digest_buf[2]);
6614 digest_buf[3] = byte_swap_32 (digest_buf[3]);
6615 digest_buf[4] = byte_swap_32 (digest_buf[4]);
6616 digest_buf[5] = byte_swap_32 (digest_buf[5]);
6617 digest_buf[6] = byte_swap_32 (digest_buf[6]);
6618 digest_buf[7] = byte_swap_32 (digest_buf[7]);
6619
6620 memcpy (tmp_buf, digest_buf, 32);
6621
6622 base64_encode (int_to_base64, (const u8 *) tmp_buf, 32, (u8 *) ptr_plain);
6623
6624 ptr_plain[43] = 0;
6625
6626 snprintf (out_buf, len-1, "%s%s*%s", SIGNATURE_EPISERVER4, ptr_salt, ptr_plain);
6627 }
6628 else if (hash_mode == 1500)
6629 {
6630 out_buf[0] = salt.salt_sign[0] & 0xff;
6631 out_buf[1] = salt.salt_sign[1] & 0xff;
6632 //original method, but changed because of this ticket: https://hashcat.net/trac/ticket/269
6633 //out_buf[0] = int_to_itoa64 ((salt.salt_buf[0] >> 0) & 0x3f);
6634 //out_buf[1] = int_to_itoa64 ((salt.salt_buf[0] >> 6) & 0x3f);
6635
6636 memset (tmp_buf, 0, sizeof (tmp_buf));
6637
6638 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6639
6640 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6641 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6642
6643 memcpy (tmp_buf, digest_buf, 8);
6644
6645 base64_encode (int_to_itoa64, (const u8 *) tmp_buf, 8, (u8 *) ptr_plain);
6646
6647 snprintf (out_buf + 2, len-1-2, "%s", ptr_plain);
6648
6649 out_buf[13] = 0;
6650 }
6651 else if (hash_mode == 1600)
6652 {
6653 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6654
6655 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6656 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6657 digest_buf[2] = byte_swap_32 (digest_buf[2]);
6658 digest_buf[3] = byte_swap_32 (digest_buf[3]);
6659
6660 md5crypt_encode ((unsigned char *) digest_buf, (unsigned char *) ptr_plain);
6661
6662 if (salt.salt_iter == ROUNDS_MD5CRYPT)
6663 {
6664 snprintf (out_buf, len-1, "$apr1$%s$%s", (char *) salt.salt_buf, (char *) ptr_plain);
6665 }
6666 else
6667 {
6668 snprintf (out_buf, len-1, "$apr1$rounds=%i$%s$%s", salt.salt_iter, (char *) salt.salt_buf, (char *) ptr_plain);
6669 }
6670 }
6671 else if (hash_mode == 1711)
6672 {
6673 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6674
6675 digest_buf64[0] = byte_swap_64 (digest_buf64[0]);
6676 digest_buf64[1] = byte_swap_64 (digest_buf64[1]);
6677 digest_buf64[2] = byte_swap_64 (digest_buf64[2]);
6678 digest_buf64[3] = byte_swap_64 (digest_buf64[3]);
6679 digest_buf64[4] = byte_swap_64 (digest_buf64[4]);
6680 digest_buf64[5] = byte_swap_64 (digest_buf64[5]);
6681 digest_buf64[6] = byte_swap_64 (digest_buf64[6]);
6682 digest_buf64[7] = byte_swap_64 (digest_buf64[7]);
6683
6684 memcpy (tmp_buf, digest_buf, 64);
6685 memcpy (tmp_buf + 64, salt.salt_buf, salt.salt_len);
6686
6687 base64_encode (int_to_base64, (const u8 *) tmp_buf, 64 + salt.salt_len, (u8 *) ptr_plain);
6688
6689 snprintf (out_buf, len-1, "%s%s", SIGNATURE_SHA512B64S, ptr_plain);
6690 }
6691 else if (hash_mode == 1722)
6692 {
6693 uint *ptr = digest_buf;
6694
6695 snprintf (out_buf, len-1, "%s%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
6696 (unsigned char *) salt.salt_buf,
6697 ptr[ 1], ptr[ 0],
6698 ptr[ 3], ptr[ 2],
6699 ptr[ 5], ptr[ 4],
6700 ptr[ 7], ptr[ 6],
6701 ptr[ 9], ptr[ 8],
6702 ptr[11], ptr[10],
6703 ptr[13], ptr[12],
6704 ptr[15], ptr[14]);
6705 }
6706 else if (hash_mode == 1731)
6707 {
6708 uint *ptr = digest_buf;
6709
6710 snprintf (out_buf, len-1, "0x0200%s%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
6711 (unsigned char *) salt.salt_buf,
6712 ptr[ 1], ptr[ 0],
6713 ptr[ 3], ptr[ 2],
6714 ptr[ 5], ptr[ 4],
6715 ptr[ 7], ptr[ 6],
6716 ptr[ 9], ptr[ 8],
6717 ptr[11], ptr[10],
6718 ptr[13], ptr[12],
6719 ptr[15], ptr[14]);
6720 }
6721 else if (hash_mode == 1800)
6722 {
6723 // temp workaround
6724
6725 digest_buf64[0] = byte_swap_64 (digest_buf64[0]);
6726 digest_buf64[1] = byte_swap_64 (digest_buf64[1]);
6727 digest_buf64[2] = byte_swap_64 (digest_buf64[2]);
6728 digest_buf64[3] = byte_swap_64 (digest_buf64[3]);
6729 digest_buf64[4] = byte_swap_64 (digest_buf64[4]);
6730 digest_buf64[5] = byte_swap_64 (digest_buf64[5]);
6731 digest_buf64[6] = byte_swap_64 (digest_buf64[6]);
6732 digest_buf64[7] = byte_swap_64 (digest_buf64[7]);
6733
6734 sha512crypt_encode ((unsigned char *) digest_buf64, (unsigned char *) ptr_plain);
6735
6736 if (salt.salt_iter == ROUNDS_SHA512CRYPT)
6737 {
6738 snprintf (out_buf, len-1, "$6$%s$%s", (char *) salt.salt_buf, (char *) ptr_plain);
6739 }
6740 else
6741 {
6742 snprintf (out_buf, len-1, "$6$rounds=%i$%s$%s", salt.salt_iter, (char *) salt.salt_buf, (char *) ptr_plain);
6743 }
6744 }
6745 else if (hash_mode == 2100)
6746 {
6747 uint pos = 0;
6748
6749 snprintf (out_buf + pos, len-1, "%s%i#",
6750 SIGNATURE_DCC2,
6751 salt.salt_iter + 1);
6752
6753 uint signature_len = strlen (out_buf);
6754
6755 pos += signature_len;
6756 len -= signature_len;
6757
6758 char *salt_ptr = (char *) salt.salt_buf;
6759
6760 for (uint i = 0; i < salt.salt_len; i++, pos++, len--) snprintf (out_buf + pos, len-1, "%c", salt_ptr[i]);
6761
6762 snprintf (out_buf + pos, len-1, "#%08x%08x%08x%08x",
6763 byte_swap_32 (digest_buf[0]),
6764 byte_swap_32 (digest_buf[1]),
6765 byte_swap_32 (digest_buf[2]),
6766 byte_swap_32 (digest_buf[3]));
6767 }
6768 else if ((hash_mode == 2400) || (hash_mode == 2410))
6769 {
6770 memcpy (tmp_buf, digest_buf, 16);
6771
6772 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
6773
6774 digest_buf[0] = byte_swap_32 (digest_buf[0]);
6775 digest_buf[1] = byte_swap_32 (digest_buf[1]);
6776 digest_buf[2] = byte_swap_32 (digest_buf[2]);
6777 digest_buf[3] = byte_swap_32 (digest_buf[3]);
6778
6779 out_buf[ 0] = int_to_itoa64 ((digest_buf[0] >> 0) & 0x3f);
6780 out_buf[ 1] = int_to_itoa64 ((digest_buf[0] >> 6) & 0x3f);
6781 out_buf[ 2] = int_to_itoa64 ((digest_buf[0] >> 12) & 0x3f);
6782 out_buf[ 3] = int_to_itoa64 ((digest_buf[0] >> 18) & 0x3f);
6783
6784 out_buf[ 4] = int_to_itoa64 ((digest_buf[1] >> 0) & 0x3f);
6785 out_buf[ 5] = int_to_itoa64 ((digest_buf[1] >> 6) & 0x3f);
6786 out_buf[ 6] = int_to_itoa64 ((digest_buf[1] >> 12) & 0x3f);
6787 out_buf[ 7] = int_to_itoa64 ((digest_buf[1] >> 18) & 0x3f);
6788
6789 out_buf[ 8] = int_to_itoa64 ((digest_buf[2] >> 0) & 0x3f);
6790 out_buf[ 9] = int_to_itoa64 ((digest_buf[2] >> 6) & 0x3f);
6791 out_buf[10] = int_to_itoa64 ((digest_buf[2] >> 12) & 0x3f);
6792 out_buf[11] = int_to_itoa64 ((digest_buf[2] >> 18) & 0x3f);
6793
6794 out_buf[12] = int_to_itoa64 ((digest_buf[3] >> 0) & 0x3f);
6795 out_buf[13] = int_to_itoa64 ((digest_buf[3] >> 6) & 0x3f);
6796 out_buf[14] = int_to_itoa64 ((digest_buf[3] >> 12) & 0x3f);
6797 out_buf[15] = int_to_itoa64 ((digest_buf[3] >> 18) & 0x3f);
6798
6799 out_buf[16] = 0;
6800 }
6801 else if (hash_mode == 2500)
6802 {
6803 wpa_t *wpas = (wpa_t *) data.esalts_buf;
6804
6805 wpa_t *wpa = &wpas[salt_pos];
6806
6807 snprintf (out_buf, len-1, "%s:%02x%02x%02x%02x%02x%02x:%02x%02x%02x%02x%02x%02x",
6808 (char *) salt.salt_buf,
6809 wpa->orig_mac1[0],
6810 wpa->orig_mac1[1],
6811 wpa->orig_mac1[2],
6812 wpa->orig_mac1[3],
6813 wpa->orig_mac1[4],
6814 wpa->orig_mac1[5],
6815 wpa->orig_mac2[0],
6816 wpa->orig_mac2[1],
6817 wpa->orig_mac2[2],
6818 wpa->orig_mac2[3],
6819 wpa->orig_mac2[4],
6820 wpa->orig_mac2[5]);
6821 }
6822 else if (hash_mode == 4400)
6823 {
6824 snprintf (out_buf, len-1, "%08x%08x%08x%08x",
6825 byte_swap_32 (digest_buf[0]),
6826 byte_swap_32 (digest_buf[1]),
6827 byte_swap_32 (digest_buf[2]),
6828 byte_swap_32 (digest_buf[3]));
6829 }
6830 else if (hash_mode == 4700)
6831 {
6832 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x",
6833 byte_swap_32 (digest_buf[0]),
6834 byte_swap_32 (digest_buf[1]),
6835 byte_swap_32 (digest_buf[2]),
6836 byte_swap_32 (digest_buf[3]),
6837 byte_swap_32 (digest_buf[4]));
6838 }
6839 else if (hash_mode == 4800)
6840 {
6841 u8 chap_id_byte = (u8) salt.salt_buf[4];
6842
6843 snprintf (out_buf, len-1, "%08x%08x%08x%08x:%08x%08x%08x%08x:%02x",
6844 digest_buf[0],
6845 digest_buf[1],
6846 digest_buf[2],
6847 digest_buf[3],
6848 byte_swap_32 (salt.salt_buf[0]),
6849 byte_swap_32 (salt.salt_buf[1]),
6850 byte_swap_32 (salt.salt_buf[2]),
6851 byte_swap_32 (salt.salt_buf[3]),
6852 chap_id_byte);
6853 }
6854 else if (hash_mode == 4900)
6855 {
6856 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x",
6857 byte_swap_32 (digest_buf[0]),
6858 byte_swap_32 (digest_buf[1]),
6859 byte_swap_32 (digest_buf[2]),
6860 byte_swap_32 (digest_buf[3]),
6861 byte_swap_32 (digest_buf[4]));
6862 }
6863 else if (hash_mode == 5100)
6864 {
6865 snprintf (out_buf, len-1, "%08x%08x",
6866 digest_buf[0],
6867 digest_buf[1]);
6868 }
6869 else if (hash_mode == 5200)
6870 {
6871 snprintf (out_buf, len-1, "%s", hashfile);
6872 }
6873 else if (hash_mode == 5300)
6874 {
6875 ikepsk_t *ikepsks = (ikepsk_t *) data.esalts_buf;
6876
6877 ikepsk_t *ikepsk = &ikepsks[salt_pos];
6878
6879 int buf_len = len -1;
6880
6881 // msg_buf
6882
6883 uint ikepsk_msg_len = ikepsk->msg_len / 4;
6884
6885 for (uint i = 0; i < ikepsk_msg_len; i++)
6886 {
6887 if ((i == 32) || (i == 64) || (i == 66) || (i == 68) || (i == 108))
6888 {
6889 snprintf (out_buf, buf_len, ":");
6890
6891 buf_len--;
6892 out_buf++;
6893 }
6894
6895 snprintf (out_buf, buf_len, "%08x", byte_swap_32 (ikepsk->msg_buf[i]));
6896
6897 buf_len -= 8;
6898 out_buf += 8;
6899 }
6900
6901 // nr_buf
6902
6903 uint ikepsk_nr_len = ikepsk->nr_len / 4;
6904
6905 for (uint i = 0; i < ikepsk_nr_len; i++)
6906 {
6907 if ((i == 0) || (i == 5))
6908 {
6909 snprintf (out_buf, buf_len, ":");
6910
6911 buf_len--;
6912 out_buf++;
6913 }
6914
6915 snprintf (out_buf, buf_len, "%08x", byte_swap_32 (ikepsk->nr_buf[i]));
6916
6917 buf_len -= 8;
6918 out_buf += 8;
6919 }
6920
6921 // digest_buf
6922
6923 for (uint i = 0; i < 4; i++)
6924 {
6925 if (i == 0)
6926 {
6927 snprintf (out_buf, buf_len, ":");
6928
6929 buf_len--;
6930 out_buf++;
6931 }
6932
6933 snprintf (out_buf, buf_len, "%08x", digest_buf[i]);
6934
6935 buf_len -= 8;
6936 out_buf += 8;
6937 }
6938 }
6939 else if (hash_mode == 5400)
6940 {
6941 ikepsk_t *ikepsks = (ikepsk_t *) data.esalts_buf;
6942
6943 ikepsk_t *ikepsk = &ikepsks[salt_pos];
6944
6945 int buf_len = len -1;
6946
6947 // msg_buf
6948
6949 uint ikepsk_msg_len = ikepsk->msg_len / 4;
6950
6951 for (uint i = 0; i < ikepsk_msg_len; i++)
6952 {
6953 if ((i == 32) || (i == 64) || (i == 66) || (i == 68) || (i == 108))
6954 {
6955 snprintf (out_buf, buf_len, ":");
6956
6957 buf_len--;
6958 out_buf++;
6959 }
6960
6961 snprintf (out_buf, buf_len, "%08x", byte_swap_32 (ikepsk->msg_buf[i]));
6962
6963 buf_len -= 8;
6964 out_buf += 8;
6965 }
6966
6967 // nr_buf
6968
6969 uint ikepsk_nr_len = ikepsk->nr_len / 4;
6970
6971 for (uint i = 0; i < ikepsk_nr_len; i++)
6972 {
6973 if ((i == 0) || (i == 5))
6974 {
6975 snprintf (out_buf, buf_len, ":");
6976
6977 buf_len--;
6978 out_buf++;
6979 }
6980
6981 snprintf (out_buf, buf_len, "%08x", byte_swap_32 (ikepsk->nr_buf[i]));
6982
6983 buf_len -= 8;
6984 out_buf += 8;
6985 }
6986
6987 // digest_buf
6988
6989 for (uint i = 0; i < 5; i++)
6990 {
6991 if (i == 0)
6992 {
6993 snprintf (out_buf, buf_len, ":");
6994
6995 buf_len--;
6996 out_buf++;
6997 }
6998
6999 snprintf (out_buf, buf_len, "%08x", digest_buf[i]);
7000
7001 buf_len -= 8;
7002 out_buf += 8;
7003 }
7004 }
7005 else if (hash_mode == 5500)
7006 {
7007 netntlm_t *netntlms = (netntlm_t *) data.esalts_buf;
7008
7009 netntlm_t *netntlm = &netntlms[salt_pos];
7010
7011 char user_buf[64] = { 0 };
7012 char domain_buf[64] = { 0 };
7013 char srvchall_buf[1024] = { 0 };
7014 char clichall_buf[1024] = { 0 };
7015
7016 for (uint i = 0, j = 0; j < netntlm->user_len; i += 1, j += 2)
7017 {
7018 char *ptr = (char *) netntlm->userdomain_buf;
7019
7020 user_buf[i] = ptr[j];
7021 }
7022
7023 for (uint i = 0, j = 0; j < netntlm->domain_len; i += 1, j += 2)
7024 {
7025 char *ptr = (char *) netntlm->userdomain_buf;
7026
7027 domain_buf[i] = ptr[netntlm->user_len + j];
7028 }
7029
7030 for (uint i = 0, j = 0; i < netntlm->srvchall_len; i += 1, j += 2)
7031 {
7032 u8 *ptr = (u8 *) netntlm->chall_buf;
7033
7034 sprintf (srvchall_buf + j, "%02x", ptr[i]);
7035 }
7036
7037 for (uint i = 0, j = 0; i < netntlm->clichall_len; i += 1, j += 2)
7038 {
7039 u8 *ptr = (u8 *) netntlm->chall_buf;
7040
7041 sprintf (clichall_buf + j, "%02x", ptr[netntlm->srvchall_len + i]);
7042 }
7043
7044 snprintf (out_buf, len-1, "%s::%s:%s:%08x%08x%08x%08x%08x%08x:%s",
7045 user_buf,
7046 domain_buf,
7047 srvchall_buf,
7048 digest_buf[0],
7049 digest_buf[1],
7050 digest_buf[2],
7051 digest_buf[3],
7052 byte_swap_32 (salt.salt_buf_pc[0]),
7053 byte_swap_32 (salt.salt_buf_pc[1]),
7054 clichall_buf);
7055 }
7056 else if (hash_mode == 5600)
7057 {
7058 netntlm_t *netntlms = (netntlm_t *) data.esalts_buf;
7059
7060 netntlm_t *netntlm = &netntlms[salt_pos];
7061
7062 char user_buf[64] = { 0 };
7063 char domain_buf[64] = { 0 };
7064 char srvchall_buf[1024] = { 0 };
7065 char clichall_buf[1024] = { 0 };
7066
7067 for (uint i = 0, j = 0; j < netntlm->user_len; i += 1, j += 2)
7068 {
7069 char *ptr = (char *) netntlm->userdomain_buf;
7070
7071 user_buf[i] = ptr[j];
7072 }
7073
7074 for (uint i = 0, j = 0; j < netntlm->domain_len; i += 1, j += 2)
7075 {
7076 char *ptr = (char *) netntlm->userdomain_buf;
7077
7078 domain_buf[i] = ptr[netntlm->user_len + j];
7079 }
7080
7081 for (uint i = 0, j = 0; i < netntlm->srvchall_len; i += 1, j += 2)
7082 {
7083 u8 *ptr = (u8 *) netntlm->chall_buf;
7084
7085 sprintf (srvchall_buf + j, "%02x", ptr[i]);
7086 }
7087
7088 for (uint i = 0, j = 0; i < netntlm->clichall_len; i += 1, j += 2)
7089 {
7090 u8 *ptr = (u8 *) netntlm->chall_buf;
7091
7092 sprintf (clichall_buf + j, "%02x", ptr[netntlm->srvchall_len + i]);
7093 }
7094
7095 snprintf (out_buf, len-1, "%s::%s:%s:%08x%08x%08x%08x:%s",
7096 user_buf,
7097 domain_buf,
7098 srvchall_buf,
7099 digest_buf[0],
7100 digest_buf[1],
7101 digest_buf[2],
7102 digest_buf[3],
7103 clichall_buf);
7104 }
7105 else if (hash_mode == 5700)
7106 {
7107 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
7108
7109 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7110 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7111 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7112 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7113 digest_buf[4] = byte_swap_32 (digest_buf[4]);
7114 digest_buf[5] = byte_swap_32 (digest_buf[5]);
7115 digest_buf[6] = byte_swap_32 (digest_buf[6]);
7116 digest_buf[7] = byte_swap_32 (digest_buf[7]);
7117
7118 memcpy (tmp_buf, digest_buf, 32);
7119
7120 base64_encode (int_to_itoa64, (const u8 *) tmp_buf, 32, (u8 *) ptr_plain);
7121
7122 ptr_plain[43] = 0;
7123
7124 snprintf (out_buf, len-1, "%s", ptr_plain);
7125 }
7126 else if (hash_mode == 5800)
7127 {
7128 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7129 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7130 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7131 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7132 digest_buf[4] = byte_swap_32 (digest_buf[4]);
7133
7134 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x",
7135 digest_buf[0],
7136 digest_buf[1],
7137 digest_buf[2],
7138 digest_buf[3],
7139 digest_buf[4]);
7140 }
7141 else if ((hash_mode >= 6200) && (hash_mode <= 6299))
7142 {
7143 snprintf (out_buf, len-1, "%s", hashfile);
7144 }
7145 else if (hash_mode == 6300)
7146 {
7147 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
7148
7149 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7150 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7151 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7152 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7153
7154 md5crypt_encode ((unsigned char *) digest_buf, (unsigned char *) ptr_plain);
7155
7156 snprintf (out_buf, len-1, "{smd5}%s$%s", (char *) salt.salt_buf, (char *) ptr_plain);
7157 }
7158 else if (hash_mode == 6400)
7159 {
7160 sha256aix_encode ((unsigned char *) digest_buf, (unsigned char *) ptr_plain);
7161
7162 snprintf (out_buf, len-1, "{ssha256}%02d$%s$%s", salt.salt_sign[0], (char *) salt.salt_buf, (char *) ptr_plain);
7163 }
7164 else if (hash_mode == 6500)
7165 {
7166 sha512aix_encode ((unsigned char *) digest_buf64, (unsigned char *) ptr_plain);
7167
7168 snprintf (out_buf, len-1, "{ssha512}%02d$%s$%s", salt.salt_sign[0], (char *) salt.salt_buf, (char *) ptr_plain);
7169 }
7170 else if (hash_mode == 6600)
7171 {
7172 agilekey_t *agilekeys = (agilekey_t *) data.esalts_buf;
7173
7174 agilekey_t *agilekey = &agilekeys[salt_pos];
7175
7176 salt.salt_buf[0] = byte_swap_32 (salt.salt_buf[0]);
7177 salt.salt_buf[1] = byte_swap_32 (salt.salt_buf[1]);
7178
7179 uint buf_len = len - 1;
7180
7181 uint off = snprintf (out_buf, buf_len, "%d:%08x%08x:", salt.salt_iter + 1, salt.salt_buf[0], salt.salt_buf[1]);
7182 buf_len -= 22;
7183
7184 for (uint i = 0, j = off; i < 1040; i++, j += 2)
7185 {
7186 snprintf (out_buf + j, buf_len, "%02x", agilekey->cipher[i]);
7187
7188 buf_len -= 2;
7189 }
7190 }
7191 else if (hash_mode == 6700)
7192 {
7193 sha1aix_encode ((unsigned char *) digest_buf, (unsigned char *) ptr_plain);
7194
7195 snprintf (out_buf, len-1, "{ssha1}%02d$%s$%s", salt.salt_sign[0], (char *) salt.salt_buf, (char *) ptr_plain);
7196 }
7197 else if (hash_mode == 6800)
7198 {
7199 snprintf (out_buf, len-1, "%s", (char *) salt.salt_buf);
7200 }
7201 else if (hash_mode == 7100)
7202 {
7203 uint *ptr = digest_buf;
7204
7205 pbkdf2_sha512_t *pbkdf2_sha512s = (pbkdf2_sha512_t *) data.esalts_buf;
7206
7207 pbkdf2_sha512_t *pbkdf2_sha512 = &pbkdf2_sha512s[salt_pos];
7208
7209 uint esalt[8] = { 0 };
7210
7211 esalt[0] = byte_swap_32 (pbkdf2_sha512->salt_buf[0]);
7212 esalt[1] = byte_swap_32 (pbkdf2_sha512->salt_buf[1]);
7213 esalt[2] = byte_swap_32 (pbkdf2_sha512->salt_buf[2]);
7214 esalt[3] = byte_swap_32 (pbkdf2_sha512->salt_buf[3]);
7215 esalt[4] = byte_swap_32 (pbkdf2_sha512->salt_buf[4]);
7216 esalt[5] = byte_swap_32 (pbkdf2_sha512->salt_buf[5]);
7217 esalt[6] = byte_swap_32 (pbkdf2_sha512->salt_buf[6]);
7218 esalt[7] = byte_swap_32 (pbkdf2_sha512->salt_buf[7]);
7219
7220 snprintf (out_buf, len-1, "%s%i$%08x%08x%08x%08x%08x%08x%08x%08x$%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
7221 SIGNATURE_SHA512OSX,
7222 salt.salt_iter + 1,
7223 esalt[ 0], esalt[ 1],
7224 esalt[ 2], esalt[ 3],
7225 esalt[ 4], esalt[ 5],
7226 esalt[ 6], esalt[ 7],
7227 ptr [ 1], ptr [ 0],
7228 ptr [ 3], ptr [ 2],
7229 ptr [ 5], ptr [ 4],
7230 ptr [ 7], ptr [ 6],
7231 ptr [ 9], ptr [ 8],
7232 ptr [11], ptr [10],
7233 ptr [13], ptr [12],
7234 ptr [15], ptr [14]);
7235 }
7236 else if (hash_mode == 7200)
7237 {
7238 uint *ptr = digest_buf;
7239
7240 pbkdf2_sha512_t *pbkdf2_sha512s = (pbkdf2_sha512_t *) data.esalts_buf;
7241
7242 pbkdf2_sha512_t *pbkdf2_sha512 = &pbkdf2_sha512s[salt_pos];
7243
7244 uint len_used = 0;
7245
7246 snprintf (out_buf + len_used, len - len_used - 1, "%s%i.", SIGNATURE_SHA512GRUB, salt.salt_iter + 1);
7247
7248 len_used = strlen (out_buf);
7249
7250 unsigned char *salt_buf_ptr = (unsigned char *) pbkdf2_sha512->salt_buf;
7251
7252 for (uint i = 0; i < salt.salt_len; i++, len_used += 2)
7253 {
7254 snprintf (out_buf + len_used, len - len_used - 1, "%02x", salt_buf_ptr[i]);
7255 }
7256
7257 snprintf (out_buf + len_used, len - len_used - 1, ".%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
7258 ptr [ 1], ptr [ 0],
7259 ptr [ 3], ptr [ 2],
7260 ptr [ 5], ptr [ 4],
7261 ptr [ 7], ptr [ 6],
7262 ptr [ 9], ptr [ 8],
7263 ptr [11], ptr [10],
7264 ptr [13], ptr [12],
7265 ptr [15], ptr [14]);
7266 }
7267 else if (hash_mode == 7300)
7268 {
7269 rakp_t *rakps = (rakp_t *) data.esalts_buf;
7270
7271 rakp_t *rakp = &rakps[salt_pos];
7272
7273 for (uint i = 0, j = 0; (i * 4) < rakp->salt_len; i += 1, j += 8)
7274 {
7275 sprintf (out_buf + j, "%08x", rakp->salt_buf[i]);
7276 }
7277
7278 snprintf (out_buf + rakp->salt_len * 2, len - 1, ":%08x%08x%08x%08x%08x",
7279 digest_buf[0],
7280 digest_buf[1],
7281 digest_buf[2],
7282 digest_buf[3],
7283 digest_buf[4]);
7284 }
7285 else if (hash_mode == 7400)
7286 {
7287 // the encoder is a bit too intelligent, it expects the input data in the wrong BOM
7288
7289 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7290 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7291 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7292 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7293 digest_buf[4] = byte_swap_32 (digest_buf[4]);
7294 digest_buf[5] = byte_swap_32 (digest_buf[5]);
7295 digest_buf[6] = byte_swap_32 (digest_buf[6]);
7296 digest_buf[7] = byte_swap_32 (digest_buf[7]);
7297
7298 sha256crypt_encode ((unsigned char *) digest_buf, (unsigned char *) ptr_plain);
7299
7300 if (salt.salt_iter == ROUNDS_SHA256CRYPT)
7301 {
7302 snprintf (out_buf, len-1, "$5$%s$%s", (char *) salt.salt_buf, (char *) ptr_plain);
7303 }
7304 else
7305 {
7306 snprintf (out_buf, len-1, "$5$rounds=%i$%s$%s", salt.salt_iter, (char *) salt.salt_buf, (char *) ptr_plain);
7307 }
7308 }
7309 else if (hash_mode == 7500)
7310 {
7311 krb5pa_t *krb5pas = (krb5pa_t *) data.esalts_buf;
7312
7313 krb5pa_t *krb5pa = &krb5pas[salt_pos];
7314
7315 u8 *ptr_timestamp = (u8 *) krb5pa->timestamp;
7316 u8 *ptr_checksum = (u8 *) krb5pa->checksum;
7317
7318 char data[128] = { 0 };
7319
7320 char *ptr_data = data;
7321
7322 for (uint i = 0; i < 36; i++, ptr_data += 2)
7323 {
7324 sprintf (ptr_data, "%02x", ptr_timestamp[i]);
7325 }
7326
7327 for (uint i = 0; i < 16; i++, ptr_data += 2)
7328 {
7329 sprintf (ptr_data, "%02x", ptr_checksum[i]);
7330 }
7331
7332 *ptr_data = 0;
7333
7334 snprintf (out_buf, len-1, "%s$%s$%s$%s$%s",
7335 SIGNATURE_KRB5PA,
7336 (char *) krb5pa->user,
7337 (char *) krb5pa->realm,
7338 (char *) krb5pa->salt,
7339 data);
7340 }
7341 else if (hash_mode == 7700)
7342 {
7343 snprintf (out_buf, len-1, "%s$%08X%08X",
7344 (char *) salt.salt_buf,
7345 digest_buf[0],
7346 digest_buf[1]);
7347 }
7348 else if (hash_mode == 7800)
7349 {
7350 snprintf (out_buf, len-1, "%s$%08X%08X%08X%08X%08X",
7351 (char *) salt.salt_buf,
7352 digest_buf[0],
7353 digest_buf[1],
7354 digest_buf[2],
7355 digest_buf[3],
7356 digest_buf[4]);
7357 }
7358 else if (hash_mode == 7900)
7359 {
7360 drupal7_encode ((unsigned char *) digest_buf64, (unsigned char *) ptr_plain);
7361
7362 // ugly hack start
7363
7364 char *tmp = (char *) salt.salt_buf_pc;
7365
7366 ptr_plain[42] = tmp[0];
7367
7368 // ugly hack end
7369
7370 ptr_plain[43] = 0;
7371
7372 snprintf (out_buf, len-1, "%s%s%s", (char *) salt.salt_sign, (char *) salt.salt_buf, (char *) ptr_plain);
7373 }
7374 else if (hash_mode == 8000)
7375 {
7376 snprintf (out_buf, len-1, "0xc007%s%08x%08x%08x%08x%08x%08x%08x%08x",
7377 (unsigned char *) salt.salt_buf,
7378 digest_buf[0],
7379 digest_buf[1],
7380 digest_buf[2],
7381 digest_buf[3],
7382 digest_buf[4],
7383 digest_buf[5],
7384 digest_buf[6],
7385 digest_buf[7]);
7386 }
7387 else if (hash_mode == 8100)
7388 {
7389 salt.salt_buf[0] = byte_swap_32 (salt.salt_buf[0]);
7390 salt.salt_buf[1] = byte_swap_32 (salt.salt_buf[1]);
7391
7392 snprintf (out_buf, len-1, "1%s%08x%08x%08x%08x%08x",
7393 (unsigned char *) salt.salt_buf,
7394 digest_buf[0],
7395 digest_buf[1],
7396 digest_buf[2],
7397 digest_buf[3],
7398 digest_buf[4]);
7399 }
7400 else if (hash_mode == 8200)
7401 {
7402 cloudkey_t *cloudkeys = (cloudkey_t *) data.esalts_buf;
7403
7404 cloudkey_t *cloudkey = &cloudkeys[salt_pos];
7405
7406 char data_buf[4096] = { 0 };
7407
7408 for (int i = 0, j = 0; i < 512; i += 1, j += 8)
7409 {
7410 sprintf (data_buf + j, "%08x", cloudkey->data_buf[i]);
7411 }
7412
7413 data_buf[cloudkey->data_len * 2] = 0;
7414
7415 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7416 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7417 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7418 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7419 digest_buf[4] = byte_swap_32 (digest_buf[4]);
7420 digest_buf[5] = byte_swap_32 (digest_buf[5]);
7421 digest_buf[6] = byte_swap_32 (digest_buf[6]);
7422 digest_buf[7] = byte_swap_32 (digest_buf[7]);
7423
7424 salt.salt_buf[0] = byte_swap_32 (salt.salt_buf[0]);
7425 salt.salt_buf[1] = byte_swap_32 (salt.salt_buf[1]);
7426 salt.salt_buf[2] = byte_swap_32 (salt.salt_buf[2]);
7427 salt.salt_buf[3] = byte_swap_32 (salt.salt_buf[3]);
7428
7429 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x:%08x%08x%08x%08x:%u:%s",
7430 digest_buf[0],
7431 digest_buf[1],
7432 digest_buf[2],
7433 digest_buf[3],
7434 digest_buf[4],
7435 digest_buf[5],
7436 digest_buf[6],
7437 digest_buf[7],
7438 salt.salt_buf[0],
7439 salt.salt_buf[1],
7440 salt.salt_buf[2],
7441 salt.salt_buf[3],
7442 salt.salt_iter + 1,
7443 data_buf);
7444 }
7445 else if (hash_mode == 8300)
7446 {
7447 char digest_buf_c[34] = { 0 };
7448
7449 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7450 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7451 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7452 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7453 digest_buf[4] = byte_swap_32 (digest_buf[4]);
7454
7455 base32_encode (int_to_itoa32, (const u8 *) digest_buf, 20, (u8 *) digest_buf_c);
7456
7457 digest_buf_c[32] = 0;
7458
7459 // domain
7460
7461 const uint salt_pc_len = salt.salt_buf_pc[7]; // what a hack
7462
7463 char domain_buf_c[33] = { 0 };
7464
7465 memcpy (domain_buf_c, (char *) salt.salt_buf_pc, salt_pc_len);
7466
7467 for (uint i = 0; i < salt_pc_len; i++)
7468 {
7469 const char next = domain_buf_c[i];
7470
7471 domain_buf_c[i] = '.';
7472
7473 i += next;
7474 }
7475
7476 domain_buf_c[salt_pc_len] = 0;
7477
7478 // final
7479
7480 snprintf (out_buf, len-1, "%s:%s:%s:%u", digest_buf_c, domain_buf_c, (char *) salt.salt_buf, salt.salt_iter);
7481 }
7482 else if (hash_mode == 8500)
7483 {
7484 snprintf (out_buf, len-1, "%s*%s*%08X%08X", SIGNATURE_RACF, (char *) salt.salt_buf, digest_buf[0], digest_buf[1]);
7485 }
7486 else if (hash_mode == 2612)
7487 {
7488 snprintf (out_buf, len-1, "%s%s$%08x%08x%08x%08x",
7489 SIGNATURE_PHPS,
7490 (char *) salt.salt_buf,
7491 digest_buf[0],
7492 digest_buf[1],
7493 digest_buf[2],
7494 digest_buf[3]);
7495 }
7496 else if (hash_mode == 3711)
7497 {
7498 char *salt_ptr = (char *) salt.salt_buf;
7499
7500 salt_ptr[salt.salt_len - 1] = 0;
7501
7502 snprintf (out_buf, len-1, "%s%s$%08x%08x%08x%08x",
7503 SIGNATURE_MEDIAWIKI_B,
7504 salt_ptr,
7505 digest_buf[0],
7506 digest_buf[1],
7507 digest_buf[2],
7508 digest_buf[3]);
7509 }
7510 else if (hash_mode == 8800)
7511 {
7512 androidfde_t *androidfdes = (androidfde_t *) data.esalts_buf;
7513
7514 androidfde_t *androidfde = &androidfdes[salt_pos];
7515
7516 char tmp[3073] = { 0 };
7517
7518 for (uint i = 0, j = 0; i < 384; i += 1, j += 8)
7519 {
7520 sprintf (tmp + j, "%08x", androidfde->data[i]);
7521 }
7522
7523 tmp[3072] = 0;
7524
7525 snprintf (out_buf, len-1, "%s16$%08x%08x%08x%08x$16$%08x%08x%08x%08x$%s",
7526 SIGNATURE_ANDROIDFDE,
7527 byte_swap_32 (salt.salt_buf[0]),
7528 byte_swap_32 (salt.salt_buf[1]),
7529 byte_swap_32 (salt.salt_buf[2]),
7530 byte_swap_32 (salt.salt_buf[3]),
7531 byte_swap_32 (digest_buf[0]),
7532 byte_swap_32 (digest_buf[1]),
7533 byte_swap_32 (digest_buf[2]),
7534 byte_swap_32 (digest_buf[3]),
7535 tmp);
7536 }
7537 else if (hash_mode == 8900)
7538 {
7539 uint N = salt.scrypt_N;
7540 uint r = salt.scrypt_r;
7541 uint p = salt.scrypt_p;
7542
7543 char base64_salt[32] = { 0 };
7544
7545 base64_encode (int_to_base64, (const u8 *) salt.salt_buf, salt.salt_len, (u8 *) base64_salt);
7546
7547 memset (tmp_buf, 0, 46);
7548
7549 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7550 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7551 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7552 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7553 digest_buf[4] = byte_swap_32 (digest_buf[4]);
7554 digest_buf[5] = byte_swap_32 (digest_buf[5]);
7555 digest_buf[6] = byte_swap_32 (digest_buf[6]);
7556 digest_buf[7] = byte_swap_32 (digest_buf[7]);
7557 digest_buf[8] = 0; // needed for base64_encode ()
7558
7559 base64_encode (int_to_base64, (const u8 *) digest_buf, 32, (u8 *) tmp_buf);
7560
7561 snprintf (out_buf, len-1, "%s:%i:%i:%i:%s:%s",
7562 SIGNATURE_SCRYPT,
7563 N,
7564 r,
7565 p,
7566 base64_salt,
7567 tmp_buf);
7568 }
7569 else if (hash_mode == 9000)
7570 {
7571 snprintf (out_buf, len-1, "%s", hashfile);
7572 }
7573 else if (hash_mode == 9200)
7574 {
7575 // salt
7576
7577 pbkdf2_sha256_t *pbkdf2_sha256s = (pbkdf2_sha256_t *) data.esalts_buf;
7578
7579 pbkdf2_sha256_t *pbkdf2_sha256 = &pbkdf2_sha256s[salt_pos];
7580
7581 unsigned char *salt_buf_ptr = (unsigned char *) pbkdf2_sha256->salt_buf;
7582
7583 // hash
7584
7585 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7586 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7587 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7588 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7589 digest_buf[4] = byte_swap_32 (digest_buf[4]);
7590 digest_buf[5] = byte_swap_32 (digest_buf[5]);
7591 digest_buf[6] = byte_swap_32 (digest_buf[6]);
7592 digest_buf[7] = byte_swap_32 (digest_buf[7]);
7593 digest_buf[8] = 0; // needed for base64_encode ()
7594
7595 char tmp_buf[64] = { 0 };
7596
7597 base64_encode (int_to_itoa64, (const u8 *) digest_buf, 32, (u8 *) tmp_buf);
7598 tmp_buf[43] = 0; // cut it here
7599
7600 // output
7601
7602 snprintf (out_buf, len-1, "%s%s$%s", SIGNATURE_CISCO8, salt_buf_ptr, tmp_buf);
7603 }
7604 else if (hash_mode == 9300)
7605 {
7606 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7607 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7608 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7609 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7610 digest_buf[4] = byte_swap_32 (digest_buf[4]);
7611 digest_buf[5] = byte_swap_32 (digest_buf[5]);
7612 digest_buf[6] = byte_swap_32 (digest_buf[6]);
7613 digest_buf[7] = byte_swap_32 (digest_buf[7]);
7614 digest_buf[8] = 0; // needed for base64_encode ()
7615
7616 char tmp_buf[64] = { 0 };
7617
7618 base64_encode (int_to_itoa64, (const u8 *) digest_buf, 32, (u8 *) tmp_buf);
7619 tmp_buf[43] = 0; // cut it here
7620
7621 unsigned char *salt_buf_ptr = (unsigned char *) salt.salt_buf;
7622
7623 snprintf (out_buf, len-1, "%s%s$%s", SIGNATURE_CISCO9, salt_buf_ptr, tmp_buf);
7624 }
7625 else if (hash_mode == 9400)
7626 {
7627 office2007_t *office2007s = (office2007_t *) data.esalts_buf;
7628
7629 office2007_t *office2007 = &office2007s[salt_pos];
7630
7631 snprintf (out_buf, len-1, "%s*%u*%u*%u*%u*%08x%08x%08x%08x*%08x%08x%08x%08x*%08x%08x%08x%08x%08x",
7632 SIGNATURE_OFFICE2007,
7633 2007,
7634 20,
7635 office2007->keySize,
7636 16,
7637 salt.salt_buf[0],
7638 salt.salt_buf[1],
7639 salt.salt_buf[2],
7640 salt.salt_buf[3],
7641 office2007->encryptedVerifier[0],
7642 office2007->encryptedVerifier[1],
7643 office2007->encryptedVerifier[2],
7644 office2007->encryptedVerifier[3],
7645 office2007->encryptedVerifierHash[0],
7646 office2007->encryptedVerifierHash[1],
7647 office2007->encryptedVerifierHash[2],
7648 office2007->encryptedVerifierHash[3],
7649 office2007->encryptedVerifierHash[4]);
7650 }
7651 else if (hash_mode == 9500)
7652 {
7653 office2010_t *office2010s = (office2010_t *) data.esalts_buf;
7654
7655 office2010_t *office2010 = &office2010s[salt_pos];
7656
7657 snprintf (out_buf, len-1, "%s*%u*%u*%u*%u*%08x%08x%08x%08x*%08x%08x%08x%08x*%08x%08x%08x%08x%08x%08x%08x%08x", SIGNATURE_OFFICE2010, 2010, 100000, 128, 16,
7658
7659 salt.salt_buf[0],
7660 salt.salt_buf[1],
7661 salt.salt_buf[2],
7662 salt.salt_buf[3],
7663 office2010->encryptedVerifier[0],
7664 office2010->encryptedVerifier[1],
7665 office2010->encryptedVerifier[2],
7666 office2010->encryptedVerifier[3],
7667 office2010->encryptedVerifierHash[0],
7668 office2010->encryptedVerifierHash[1],
7669 office2010->encryptedVerifierHash[2],
7670 office2010->encryptedVerifierHash[3],
7671 office2010->encryptedVerifierHash[4],
7672 office2010->encryptedVerifierHash[5],
7673 office2010->encryptedVerifierHash[6],
7674 office2010->encryptedVerifierHash[7]);
7675 }
7676 else if (hash_mode == 9600)
7677 {
7678 office2013_t *office2013s = (office2013_t *) data.esalts_buf;
7679
7680 office2013_t *office2013 = &office2013s[salt_pos];
7681
7682 snprintf (out_buf, len-1, "%s*%u*%u*%u*%u*%08x%08x%08x%08x*%08x%08x%08x%08x*%08x%08x%08x%08x%08x%08x%08x%08x", SIGNATURE_OFFICE2013, 2013, 100000, 256, 16,
7683
7684 salt.salt_buf[0],
7685 salt.salt_buf[1],
7686 salt.salt_buf[2],
7687 salt.salt_buf[3],
7688 office2013->encryptedVerifier[0],
7689 office2013->encryptedVerifier[1],
7690 office2013->encryptedVerifier[2],
7691 office2013->encryptedVerifier[3],
7692 office2013->encryptedVerifierHash[0],
7693 office2013->encryptedVerifierHash[1],
7694 office2013->encryptedVerifierHash[2],
7695 office2013->encryptedVerifierHash[3],
7696 office2013->encryptedVerifierHash[4],
7697 office2013->encryptedVerifierHash[5],
7698 office2013->encryptedVerifierHash[6],
7699 office2013->encryptedVerifierHash[7]);
7700 }
7701 else if (hash_mode == 9700)
7702 {
7703 oldoffice01_t *oldoffice01s = (oldoffice01_t *) data.esalts_buf;
7704
7705 oldoffice01_t *oldoffice01 = &oldoffice01s[salt_pos];
7706
7707 snprintf (out_buf, len-1, "%s*%08x%08x%08x%08x*%08x%08x%08x%08x*%08x%08x%08x%08x",
7708 (oldoffice01->version == 0) ? SIGNATURE_OLDOFFICE0 : SIGNATURE_OLDOFFICE1,
7709 byte_swap_32 (salt.salt_buf[0]),
7710 byte_swap_32 (salt.salt_buf[1]),
7711 byte_swap_32 (salt.salt_buf[2]),
7712 byte_swap_32 (salt.salt_buf[3]),
7713 byte_swap_32 (oldoffice01->encryptedVerifier[0]),
7714 byte_swap_32 (oldoffice01->encryptedVerifier[1]),
7715 byte_swap_32 (oldoffice01->encryptedVerifier[2]),
7716 byte_swap_32 (oldoffice01->encryptedVerifier[3]),
7717 byte_swap_32 (oldoffice01->encryptedVerifierHash[0]),
7718 byte_swap_32 (oldoffice01->encryptedVerifierHash[1]),
7719 byte_swap_32 (oldoffice01->encryptedVerifierHash[2]),
7720 byte_swap_32 (oldoffice01->encryptedVerifierHash[3]));
7721 }
7722 else if (hash_mode == 9710)
7723 {
7724 oldoffice01_t *oldoffice01s = (oldoffice01_t *) data.esalts_buf;
7725
7726 oldoffice01_t *oldoffice01 = &oldoffice01s[salt_pos];
7727
7728 snprintf (out_buf, len-1, "%s*%08x%08x%08x%08x*%08x%08x%08x%08x*%08x%08x%08x%08x",
7729 (oldoffice01->version == 0) ? SIGNATURE_OLDOFFICE0 : SIGNATURE_OLDOFFICE1,
7730 byte_swap_32 (salt.salt_buf[0]),
7731 byte_swap_32 (salt.salt_buf[1]),
7732 byte_swap_32 (salt.salt_buf[2]),
7733 byte_swap_32 (salt.salt_buf[3]),
7734 byte_swap_32 (oldoffice01->encryptedVerifier[0]),
7735 byte_swap_32 (oldoffice01->encryptedVerifier[1]),
7736 byte_swap_32 (oldoffice01->encryptedVerifier[2]),
7737 byte_swap_32 (oldoffice01->encryptedVerifier[3]),
7738 byte_swap_32 (oldoffice01->encryptedVerifierHash[0]),
7739 byte_swap_32 (oldoffice01->encryptedVerifierHash[1]),
7740 byte_swap_32 (oldoffice01->encryptedVerifierHash[2]),
7741 byte_swap_32 (oldoffice01->encryptedVerifierHash[3]));
7742 }
7743 else if (hash_mode == 9720)
7744 {
7745 oldoffice01_t *oldoffice01s = (oldoffice01_t *) data.esalts_buf;
7746
7747 oldoffice01_t *oldoffice01 = &oldoffice01s[salt_pos];
7748
7749 u8 *rc4key = (u8 *) oldoffice01->rc4key;
7750
7751 snprintf (out_buf, len-1, "%s*%08x%08x%08x%08x*%08x%08x%08x%08x*%08x%08x%08x%08x:%02x%02x%02x%02x%02x",
7752 (oldoffice01->version == 0) ? SIGNATURE_OLDOFFICE0 : SIGNATURE_OLDOFFICE1,
7753 byte_swap_32 (salt.salt_buf[0]),
7754 byte_swap_32 (salt.salt_buf[1]),
7755 byte_swap_32 (salt.salt_buf[2]),
7756 byte_swap_32 (salt.salt_buf[3]),
7757 byte_swap_32 (oldoffice01->encryptedVerifier[0]),
7758 byte_swap_32 (oldoffice01->encryptedVerifier[1]),
7759 byte_swap_32 (oldoffice01->encryptedVerifier[2]),
7760 byte_swap_32 (oldoffice01->encryptedVerifier[3]),
7761 byte_swap_32 (oldoffice01->encryptedVerifierHash[0]),
7762 byte_swap_32 (oldoffice01->encryptedVerifierHash[1]),
7763 byte_swap_32 (oldoffice01->encryptedVerifierHash[2]),
7764 byte_swap_32 (oldoffice01->encryptedVerifierHash[3]),
7765 rc4key[0],
7766 rc4key[1],
7767 rc4key[2],
7768 rc4key[3],
7769 rc4key[4]);
7770 }
7771 else if (hash_mode == 9800)
7772 {
7773 oldoffice34_t *oldoffice34s = (oldoffice34_t *) data.esalts_buf;
7774
7775 oldoffice34_t *oldoffice34 = &oldoffice34s[salt_pos];
7776
7777 snprintf (out_buf, len-1, "%s*%08x%08x%08x%08x*%08x%08x%08x%08x*%08x%08x%08x%08x%08x",
7778 (oldoffice34->version == 3) ? SIGNATURE_OLDOFFICE3 : SIGNATURE_OLDOFFICE4,
7779 salt.salt_buf[0],
7780 salt.salt_buf[1],
7781 salt.salt_buf[2],
7782 salt.salt_buf[3],
7783 byte_swap_32 (oldoffice34->encryptedVerifier[0]),
7784 byte_swap_32 (oldoffice34->encryptedVerifier[1]),
7785 byte_swap_32 (oldoffice34->encryptedVerifier[2]),
7786 byte_swap_32 (oldoffice34->encryptedVerifier[3]),
7787 byte_swap_32 (oldoffice34->encryptedVerifierHash[0]),
7788 byte_swap_32 (oldoffice34->encryptedVerifierHash[1]),
7789 byte_swap_32 (oldoffice34->encryptedVerifierHash[2]),
7790 byte_swap_32 (oldoffice34->encryptedVerifierHash[3]),
7791 byte_swap_32 (oldoffice34->encryptedVerifierHash[4]));
7792 }
7793 else if (hash_mode == 9810)
7794 {
7795 oldoffice34_t *oldoffice34s = (oldoffice34_t *) data.esalts_buf;
7796
7797 oldoffice34_t *oldoffice34 = &oldoffice34s[salt_pos];
7798
7799 snprintf (out_buf, len-1, "%s*%08x%08x%08x%08x*%08x%08x%08x%08x*%08x%08x%08x%08x%08x",
7800 (oldoffice34->version == 3) ? SIGNATURE_OLDOFFICE3 : SIGNATURE_OLDOFFICE4,
7801 salt.salt_buf[0],
7802 salt.salt_buf[1],
7803 salt.salt_buf[2],
7804 salt.salt_buf[3],
7805 byte_swap_32 (oldoffice34->encryptedVerifier[0]),
7806 byte_swap_32 (oldoffice34->encryptedVerifier[1]),
7807 byte_swap_32 (oldoffice34->encryptedVerifier[2]),
7808 byte_swap_32 (oldoffice34->encryptedVerifier[3]),
7809 byte_swap_32 (oldoffice34->encryptedVerifierHash[0]),
7810 byte_swap_32 (oldoffice34->encryptedVerifierHash[1]),
7811 byte_swap_32 (oldoffice34->encryptedVerifierHash[2]),
7812 byte_swap_32 (oldoffice34->encryptedVerifierHash[3]),
7813 byte_swap_32 (oldoffice34->encryptedVerifierHash[4]));
7814 }
7815 else if (hash_mode == 9820)
7816 {
7817 oldoffice34_t *oldoffice34s = (oldoffice34_t *) data.esalts_buf;
7818
7819 oldoffice34_t *oldoffice34 = &oldoffice34s[salt_pos];
7820
7821 u8 *rc4key = (u8 *) oldoffice34->rc4key;
7822
7823 snprintf (out_buf, len-1, "%s*%08x%08x%08x%08x*%08x%08x%08x%08x*%08x%08x%08x%08x%08x:%02x%02x%02x%02x%02x",
7824 (oldoffice34->version == 3) ? SIGNATURE_OLDOFFICE3 : SIGNATURE_OLDOFFICE4,
7825 salt.salt_buf[0],
7826 salt.salt_buf[1],
7827 salt.salt_buf[2],
7828 salt.salt_buf[3],
7829 byte_swap_32 (oldoffice34->encryptedVerifier[0]),
7830 byte_swap_32 (oldoffice34->encryptedVerifier[1]),
7831 byte_swap_32 (oldoffice34->encryptedVerifier[2]),
7832 byte_swap_32 (oldoffice34->encryptedVerifier[3]),
7833 byte_swap_32 (oldoffice34->encryptedVerifierHash[0]),
7834 byte_swap_32 (oldoffice34->encryptedVerifierHash[1]),
7835 byte_swap_32 (oldoffice34->encryptedVerifierHash[2]),
7836 byte_swap_32 (oldoffice34->encryptedVerifierHash[3]),
7837 byte_swap_32 (oldoffice34->encryptedVerifierHash[4]),
7838 rc4key[0],
7839 rc4key[1],
7840 rc4key[2],
7841 rc4key[3],
7842 rc4key[4]);
7843 }
7844 else if (hash_mode == 10000)
7845 {
7846 // salt
7847
7848 pbkdf2_sha256_t *pbkdf2_sha256s = (pbkdf2_sha256_t *) data.esalts_buf;
7849
7850 pbkdf2_sha256_t *pbkdf2_sha256 = &pbkdf2_sha256s[salt_pos];
7851
7852 unsigned char *salt_buf_ptr = (unsigned char *) pbkdf2_sha256->salt_buf;
7853
7854 // hash
7855
7856 digest_buf[0] = byte_swap_32 (digest_buf[0]);
7857 digest_buf[1] = byte_swap_32 (digest_buf[1]);
7858 digest_buf[2] = byte_swap_32 (digest_buf[2]);
7859 digest_buf[3] = byte_swap_32 (digest_buf[3]);
7860 digest_buf[4] = byte_swap_32 (digest_buf[4]);
7861 digest_buf[5] = byte_swap_32 (digest_buf[5]);
7862 digest_buf[6] = byte_swap_32 (digest_buf[6]);
7863 digest_buf[7] = byte_swap_32 (digest_buf[7]);
7864 digest_buf[8] = 0; // needed for base64_encode ()
7865
7866 char tmp_buf[64] = { 0 };
7867
7868 base64_encode (int_to_base64, (const u8 *) digest_buf, 32, (u8 *) tmp_buf);
7869
7870 // output
7871
7872 snprintf (out_buf, len-1, "%s%i$%s$%s", SIGNATURE_DJANGOPBKDF2, salt.salt_iter + 1, salt_buf_ptr, tmp_buf);
7873 }
7874 else if (hash_mode == 10100)
7875 {
7876 snprintf (out_buf, len-1, "%08x%08x:%u:%u:%08x%08x%08x%08x",
7877 digest_buf[0],
7878 digest_buf[1],
7879 2,
7880 4,
7881 byte_swap_32 (salt.salt_buf[0]),
7882 byte_swap_32 (salt.salt_buf[1]),
7883 byte_swap_32 (salt.salt_buf[2]),
7884 byte_swap_32 (salt.salt_buf[3]));
7885 }
7886 else if (hash_mode == 10200)
7887 {
7888 cram_md5_t *cram_md5s = (cram_md5_t *) data.esalts_buf;
7889
7890 cram_md5_t *cram_md5 = &cram_md5s[salt_pos];
7891
7892 // challenge
7893
7894 char challenge[100] = { 0 };
7895
7896 base64_encode (int_to_base64, (const u8 *) salt.salt_buf, salt.salt_len, (u8 *) challenge);
7897
7898 // response
7899
7900 char tmp_buf[100] = { 0 };
7901
7902 uint tmp_len = snprintf (tmp_buf, 100, "%s %08x%08x%08x%08x",
7903 (char *) cram_md5->user,
7904 digest_buf[0],
7905 digest_buf[1],
7906 digest_buf[2],
7907 digest_buf[3]);
7908
7909 char response[100] = { 0 };
7910
7911 base64_encode (int_to_base64, (const u8 *) tmp_buf, tmp_len, (u8 *) response);
7912
7913 snprintf (out_buf, len-1, "%s%s$%s", SIGNATURE_CRAM_MD5, challenge, response);
7914 }
7915 else if (hash_mode == 10300)
7916 {
7917 char tmp_buf[100] = { 0 };
7918
7919 memcpy (tmp_buf + 0, digest_buf, 20);
7920 memcpy (tmp_buf + 20, salt.salt_buf, salt.salt_len);
7921
7922 uint tmp_len = 20 + salt.salt_len;
7923
7924 // base64 encode it
7925
7926 char base64_encoded[100] = { 0 };
7927
7928 base64_encode (int_to_base64, (const u8 *) tmp_buf, tmp_len, (u8 *) base64_encoded);
7929
7930 snprintf (out_buf, len-1, "%s%i}%s", SIGNATURE_SAPH_SHA1, salt.salt_iter + 1, base64_encoded);
7931 }
7932 else if (hash_mode == 10400)
7933 {
7934 pdf_t *pdfs = (pdf_t *) data.esalts_buf;
7935
7936 pdf_t *pdf = &pdfs[salt_pos];
7937
7938 snprintf (out_buf, len-1, "$pdf$%d*%d*%d*%d*%d*%d*%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x",
7939
7940 pdf->V,
7941 pdf->R,
7942 40,
7943 pdf->P,
7944 pdf->enc_md,
7945 pdf->id_len,
7946 byte_swap_32 (pdf->id_buf[0]),
7947 byte_swap_32 (pdf->id_buf[1]),
7948 byte_swap_32 (pdf->id_buf[2]),
7949 byte_swap_32 (pdf->id_buf[3]),
7950 pdf->u_len,
7951 byte_swap_32 (pdf->u_buf[0]),
7952 byte_swap_32 (pdf->u_buf[1]),
7953 byte_swap_32 (pdf->u_buf[2]),
7954 byte_swap_32 (pdf->u_buf[3]),
7955 byte_swap_32 (pdf->u_buf[4]),
7956 byte_swap_32 (pdf->u_buf[5]),
7957 byte_swap_32 (pdf->u_buf[6]),
7958 byte_swap_32 (pdf->u_buf[7]),
7959 pdf->o_len,
7960 byte_swap_32 (pdf->o_buf[0]),
7961 byte_swap_32 (pdf->o_buf[1]),
7962 byte_swap_32 (pdf->o_buf[2]),
7963 byte_swap_32 (pdf->o_buf[3]),
7964 byte_swap_32 (pdf->o_buf[4]),
7965 byte_swap_32 (pdf->o_buf[5]),
7966 byte_swap_32 (pdf->o_buf[6]),
7967 byte_swap_32 (pdf->o_buf[7])
7968 );
7969 }
7970 else if (hash_mode == 10410)
7971 {
7972 pdf_t *pdfs = (pdf_t *) data.esalts_buf;
7973
7974 pdf_t *pdf = &pdfs[salt_pos];
7975
7976 snprintf (out_buf, len-1, "$pdf$%d*%d*%d*%d*%d*%d*%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x",
7977
7978 pdf->V,
7979 pdf->R,
7980 40,
7981 pdf->P,
7982 pdf->enc_md,
7983 pdf->id_len,
7984 byte_swap_32 (pdf->id_buf[0]),
7985 byte_swap_32 (pdf->id_buf[1]),
7986 byte_swap_32 (pdf->id_buf[2]),
7987 byte_swap_32 (pdf->id_buf[3]),
7988 pdf->u_len,
7989 byte_swap_32 (pdf->u_buf[0]),
7990 byte_swap_32 (pdf->u_buf[1]),
7991 byte_swap_32 (pdf->u_buf[2]),
7992 byte_swap_32 (pdf->u_buf[3]),
7993 byte_swap_32 (pdf->u_buf[4]),
7994 byte_swap_32 (pdf->u_buf[5]),
7995 byte_swap_32 (pdf->u_buf[6]),
7996 byte_swap_32 (pdf->u_buf[7]),
7997 pdf->o_len,
7998 byte_swap_32 (pdf->o_buf[0]),
7999 byte_swap_32 (pdf->o_buf[1]),
8000 byte_swap_32 (pdf->o_buf[2]),
8001 byte_swap_32 (pdf->o_buf[3]),
8002 byte_swap_32 (pdf->o_buf[4]),
8003 byte_swap_32 (pdf->o_buf[5]),
8004 byte_swap_32 (pdf->o_buf[6]),
8005 byte_swap_32 (pdf->o_buf[7])
8006 );
8007 }
8008 else if (hash_mode == 10420)
8009 {
8010 pdf_t *pdfs = (pdf_t *) data.esalts_buf;
8011
8012 pdf_t *pdf = &pdfs[salt_pos];
8013
8014 u8 *rc4key = (u8 *) pdf->rc4key;
8015
8016 snprintf (out_buf, len-1, "$pdf$%d*%d*%d*%d*%d*%d*%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x:%02x%02x%02x%02x%02x",
8017
8018 pdf->V,
8019 pdf->R,
8020 40,
8021 pdf->P,
8022 pdf->enc_md,
8023 pdf->id_len,
8024 byte_swap_32 (pdf->id_buf[0]),
8025 byte_swap_32 (pdf->id_buf[1]),
8026 byte_swap_32 (pdf->id_buf[2]),
8027 byte_swap_32 (pdf->id_buf[3]),
8028 pdf->u_len,
8029 byte_swap_32 (pdf->u_buf[0]),
8030 byte_swap_32 (pdf->u_buf[1]),
8031 byte_swap_32 (pdf->u_buf[2]),
8032 byte_swap_32 (pdf->u_buf[3]),
8033 byte_swap_32 (pdf->u_buf[4]),
8034 byte_swap_32 (pdf->u_buf[5]),
8035 byte_swap_32 (pdf->u_buf[6]),
8036 byte_swap_32 (pdf->u_buf[7]),
8037 pdf->o_len,
8038 byte_swap_32 (pdf->o_buf[0]),
8039 byte_swap_32 (pdf->o_buf[1]),
8040 byte_swap_32 (pdf->o_buf[2]),
8041 byte_swap_32 (pdf->o_buf[3]),
8042 byte_swap_32 (pdf->o_buf[4]),
8043 byte_swap_32 (pdf->o_buf[5]),
8044 byte_swap_32 (pdf->o_buf[6]),
8045 byte_swap_32 (pdf->o_buf[7]),
8046 rc4key[0],
8047 rc4key[1],
8048 rc4key[2],
8049 rc4key[3],
8050 rc4key[4]
8051 );
8052 }
8053 else if (hash_mode == 10500)
8054 {
8055 pdf_t *pdfs = (pdf_t *) data.esalts_buf;
8056
8057 pdf_t *pdf = &pdfs[salt_pos];
8058
8059 if (pdf->id_len == 32)
8060 {
8061 snprintf (out_buf, len-1, "$pdf$%d*%d*%d*%d*%d*%d*%08x%08x%08x%08x%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x",
8062
8063 pdf->V,
8064 pdf->R,
8065 128,
8066 pdf->P,
8067 pdf->enc_md,
8068 pdf->id_len,
8069 byte_swap_32 (pdf->id_buf[0]),
8070 byte_swap_32 (pdf->id_buf[1]),
8071 byte_swap_32 (pdf->id_buf[2]),
8072 byte_swap_32 (pdf->id_buf[3]),
8073 byte_swap_32 (pdf->id_buf[4]),
8074 byte_swap_32 (pdf->id_buf[5]),
8075 byte_swap_32 (pdf->id_buf[6]),
8076 byte_swap_32 (pdf->id_buf[7]),
8077 pdf->u_len,
8078 byte_swap_32 (pdf->u_buf[0]),
8079 byte_swap_32 (pdf->u_buf[1]),
8080 byte_swap_32 (pdf->u_buf[2]),
8081 byte_swap_32 (pdf->u_buf[3]),
8082 byte_swap_32 (pdf->u_buf[4]),
8083 byte_swap_32 (pdf->u_buf[5]),
8084 byte_swap_32 (pdf->u_buf[6]),
8085 byte_swap_32 (pdf->u_buf[7]),
8086 pdf->o_len,
8087 byte_swap_32 (pdf->o_buf[0]),
8088 byte_swap_32 (pdf->o_buf[1]),
8089 byte_swap_32 (pdf->o_buf[2]),
8090 byte_swap_32 (pdf->o_buf[3]),
8091 byte_swap_32 (pdf->o_buf[4]),
8092 byte_swap_32 (pdf->o_buf[5]),
8093 byte_swap_32 (pdf->o_buf[6]),
8094 byte_swap_32 (pdf->o_buf[7])
8095 );
8096 }
8097 else
8098 {
8099 snprintf (out_buf, len-1, "$pdf$%d*%d*%d*%d*%d*%d*%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x*%d*%08x%08x%08x%08x%08x%08x%08x%08x",
8100
8101 pdf->V,
8102 pdf->R,
8103 128,
8104 pdf->P,
8105 pdf->enc_md,
8106 pdf->id_len,
8107 byte_swap_32 (pdf->id_buf[0]),
8108 byte_swap_32 (pdf->id_buf[1]),
8109 byte_swap_32 (pdf->id_buf[2]),
8110 byte_swap_32 (pdf->id_buf[3]),
8111 pdf->u_len,
8112 byte_swap_32 (pdf->u_buf[0]),
8113 byte_swap_32 (pdf->u_buf[1]),
8114 byte_swap_32 (pdf->u_buf[2]),
8115 byte_swap_32 (pdf->u_buf[3]),
8116 byte_swap_32 (pdf->u_buf[4]),
8117 byte_swap_32 (pdf->u_buf[5]),
8118 byte_swap_32 (pdf->u_buf[6]),
8119 byte_swap_32 (pdf->u_buf[7]),
8120 pdf->o_len,
8121 byte_swap_32 (pdf->o_buf[0]),
8122 byte_swap_32 (pdf->o_buf[1]),
8123 byte_swap_32 (pdf->o_buf[2]),
8124 byte_swap_32 (pdf->o_buf[3]),
8125 byte_swap_32 (pdf->o_buf[4]),
8126 byte_swap_32 (pdf->o_buf[5]),
8127 byte_swap_32 (pdf->o_buf[6]),
8128 byte_swap_32 (pdf->o_buf[7])
8129 );
8130 }
8131 }
8132 else if (hash_mode == 10600)
8133 {
8134 uint digest_idx = salt.digests_offset + digest_pos;
8135
8136 hashinfo_t **hashinfo_ptr = data.hash_info;
8137 char *hash_buf = hashinfo_ptr[digest_idx]->orighash;
8138
8139 snprintf (out_buf, len-1, "%s", hash_buf);
8140 }
8141 else if (hash_mode == 10700)
8142 {
8143 uint digest_idx = salt.digests_offset + digest_pos;
8144
8145 hashinfo_t **hashinfo_ptr = data.hash_info;
8146 char *hash_buf = hashinfo_ptr[digest_idx]->orighash;
8147
8148 snprintf (out_buf, len-1, "%s", hash_buf);
8149 }
8150 else if (hash_mode == 10900)
8151 {
8152 uint digest_idx = salt.digests_offset + digest_pos;
8153
8154 hashinfo_t **hashinfo_ptr = data.hash_info;
8155 char *hash_buf = hashinfo_ptr[digest_idx]->orighash;
8156
8157 snprintf (out_buf, len-1, "%s", hash_buf);
8158 }
8159 else if (hash_mode == 11100)
8160 {
8161 u32 salt_challenge = salt.salt_buf[0];
8162
8163 salt_challenge = byte_swap_32 (salt_challenge);
8164
8165 unsigned char *user_name = (unsigned char *) (salt.salt_buf + 1);
8166
8167 snprintf (out_buf, len-1, "%s%s*%08x*%08x%08x%08x%08x",
8168 SIGNATURE_POSTGRESQL_AUTH,
8169 user_name,
8170 salt_challenge,
8171 digest_buf[0],
8172 digest_buf[1],
8173 digest_buf[2],
8174 digest_buf[3]);
8175 }
8176 else if (hash_mode == 11200)
8177 {
8178 snprintf (out_buf, len-1, "%s%s*%08x%08x%08x%08x%08x",
8179 SIGNATURE_MYSQL_AUTH,
8180 (unsigned char *) salt.salt_buf,
8181 digest_buf[0],
8182 digest_buf[1],
8183 digest_buf[2],
8184 digest_buf[3],
8185 digest_buf[4]);
8186 }
8187 else if (hash_mode == 11300)
8188 {
8189 bitcoin_wallet_t *bitcoin_wallets = (bitcoin_wallet_t *) data.esalts_buf;
8190
8191 bitcoin_wallet_t *bitcoin_wallet = &bitcoin_wallets[salt_pos];
8192
8193 const uint cry_master_len = bitcoin_wallet->cry_master_len;
8194 const uint ckey_len = bitcoin_wallet->ckey_len;
8195 const uint public_key_len = bitcoin_wallet->public_key_len;
8196
8197 char *cry_master_buf = (char *) mymalloc ((cry_master_len * 2) + 1);
8198 char *ckey_buf = (char *) mymalloc ((ckey_len * 2) + 1);
8199 char *public_key_buf = (char *) mymalloc ((public_key_len * 2) + 1);
8200
8201 for (uint i = 0, j = 0; i < cry_master_len; i += 1, j += 2)
8202 {
8203 const u8 *ptr = (const u8 *) bitcoin_wallet->cry_master_buf;
8204
8205 sprintf (cry_master_buf + j, "%02x", ptr[i]);
8206 }
8207
8208 for (uint i = 0, j = 0; i < ckey_len; i += 1, j += 2)
8209 {
8210 const u8 *ptr = (const u8 *) bitcoin_wallet->ckey_buf;
8211
8212 sprintf (ckey_buf + j, "%02x", ptr[i]);
8213 }
8214
8215 for (uint i = 0, j = 0; i < public_key_len; i += 1, j += 2)
8216 {
8217 const u8 *ptr = (const u8 *) bitcoin_wallet->public_key_buf;
8218
8219 sprintf (public_key_buf + j, "%02x", ptr[i]);
8220 }
8221
8222 snprintf (out_buf, len-1, "%s%d$%s$%d$%s$%d$%d$%s$%d$%s",
8223 SIGNATURE_BITCOIN_WALLET,
8224 cry_master_len * 2,
8225 cry_master_buf,
8226 salt.salt_len,
8227 (unsigned char *) salt.salt_buf,
8228 salt.salt_iter + 1,
8229 ckey_len * 2,
8230 ckey_buf,
8231 public_key_len * 2,
8232 public_key_buf
8233 );
8234
8235 free (cry_master_buf);
8236 free (ckey_buf);
8237 free (public_key_buf);
8238 }
8239 else if (hash_mode == 11400)
8240 {
8241 uint digest_idx = salt.digests_offset + digest_pos;
8242
8243 hashinfo_t **hashinfo_ptr = data.hash_info;
8244 char *hash_buf = hashinfo_ptr[digest_idx]->orighash;
8245
8246 snprintf (out_buf, len-1, "%s", hash_buf);
8247 }
8248 else if (hash_mode == 11600)
8249 {
8250 seven_zip_t *seven_zips = (seven_zip_t *) data.esalts_buf;
8251
8252 seven_zip_t *seven_zip = &seven_zips[salt_pos];
8253
8254 const uint data_len = seven_zip->data_len;
8255
8256 char *data_buf = (char *) mymalloc ((data_len * 2) + 1);
8257
8258 for (uint i = 0, j = 0; i < data_len; i += 1, j += 2)
8259 {
8260 const u8 *ptr = (const u8 *) seven_zip->data_buf;
8261
8262 sprintf (data_buf + j, "%02x", ptr[i]);
8263 }
8264
8265 snprintf (out_buf, len-1, "%s%u$%u$%u$%s$%u$%08x%08x%08x%08x$%u$%u$%u$%s",
8266 SIGNATURE_SEVEN_ZIP,
8267 0,
8268 salt.salt_sign[0],
8269 0,
8270 (char *) seven_zip->salt_buf,
8271 seven_zip->iv_len,
8272 seven_zip->iv_buf[0],
8273 seven_zip->iv_buf[1],
8274 seven_zip->iv_buf[2],
8275 seven_zip->iv_buf[3],
8276 seven_zip->crc,
8277 seven_zip->data_len,
8278 seven_zip->unpack_size,
8279 data_buf);
8280
8281 free (data_buf);
8282 }
8283 else if (hash_mode == 11700)
8284 {
8285 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x",
8286 digest_buf[0],
8287 digest_buf[1],
8288 digest_buf[2],
8289 digest_buf[3],
8290 digest_buf[4],
8291 digest_buf[5],
8292 digest_buf[6],
8293 digest_buf[7]);
8294 }
8295 else if (hash_mode == 11800)
8296 {
8297 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
8298 digest_buf[ 0],
8299 digest_buf[ 1],
8300 digest_buf[ 2],
8301 digest_buf[ 3],
8302 digest_buf[ 4],
8303 digest_buf[ 5],
8304 digest_buf[ 6],
8305 digest_buf[ 7],
8306 digest_buf[ 8],
8307 digest_buf[ 9],
8308 digest_buf[10],
8309 digest_buf[11],
8310 digest_buf[12],
8311 digest_buf[13],
8312 digest_buf[14],
8313 digest_buf[15]);
8314 }
8315 else if (hash_mode == 11900)
8316 {
8317 uint digest_idx = salt.digests_offset + digest_pos;
8318
8319 hashinfo_t **hashinfo_ptr = data.hash_info;
8320 char *hash_buf = hashinfo_ptr[digest_idx]->orighash;
8321
8322 snprintf (out_buf, len-1, "%s", hash_buf);
8323 }
8324 else if (hash_mode == 12000)
8325 {
8326 uint digest_idx = salt.digests_offset + digest_pos;
8327
8328 hashinfo_t **hashinfo_ptr = data.hash_info;
8329 char *hash_buf = hashinfo_ptr[digest_idx]->orighash;
8330
8331 snprintf (out_buf, len-1, "%s", hash_buf);
8332 }
8333 else if (hash_mode == 12100)
8334 {
8335 uint digest_idx = salt.digests_offset + digest_pos;
8336
8337 hashinfo_t **hashinfo_ptr = data.hash_info;
8338 char *hash_buf = hashinfo_ptr[digest_idx]->orighash;
8339
8340 snprintf (out_buf, len-1, "%s", hash_buf);
8341 }
8342 else if (hash_mode == 12200)
8343 {
8344 uint *ptr_digest = digest_buf;
8345 uint *ptr_salt = salt.salt_buf;
8346
8347 snprintf (out_buf, len-1, "%s0$1$%08x%08x$%08x%08x",
8348 SIGNATURE_ECRYPTFS,
8349 ptr_salt[0],
8350 ptr_salt[1],
8351 ptr_digest[0],
8352 ptr_digest[1]);
8353 }
8354 else if (hash_mode == 12300)
8355 {
8356 uint *ptr_digest = digest_buf;
8357 uint *ptr_salt = salt.salt_buf;
8358
8359 snprintf (out_buf, len-1, "%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X%08X",
8360 ptr_digest[ 0], ptr_digest[ 1],
8361 ptr_digest[ 2], ptr_digest[ 3],
8362 ptr_digest[ 4], ptr_digest[ 5],
8363 ptr_digest[ 6], ptr_digest[ 7],
8364 ptr_digest[ 8], ptr_digest[ 9],
8365 ptr_digest[10], ptr_digest[11],
8366 ptr_digest[12], ptr_digest[13],
8367 ptr_digest[14], ptr_digest[15],
8368 ptr_salt[0],
8369 ptr_salt[1],
8370 ptr_salt[2],
8371 ptr_salt[3]);
8372 }
8373 else if (hash_mode == 12400)
8374 {
8375 // encode iteration count
8376
8377 char salt_iter[5] = { 0 };
8378
8379 salt_iter[0] = int_to_itoa64 ((salt.salt_iter ) & 0x3f);
8380 salt_iter[1] = int_to_itoa64 ((salt.salt_iter >> 6) & 0x3f);
8381 salt_iter[2] = int_to_itoa64 ((salt.salt_iter >> 12) & 0x3f);
8382 salt_iter[3] = int_to_itoa64 ((salt.salt_iter >> 18) & 0x3f);
8383 salt_iter[4] = 0;
8384
8385 // encode salt
8386
8387 ptr_salt[0] = int_to_itoa64 ((salt.salt_buf[0] ) & 0x3f);
8388 ptr_salt[1] = int_to_itoa64 ((salt.salt_buf[0] >> 6) & 0x3f);
8389 ptr_salt[2] = int_to_itoa64 ((salt.salt_buf[0] >> 12) & 0x3f);
8390 ptr_salt[3] = int_to_itoa64 ((salt.salt_buf[0] >> 18) & 0x3f);
8391 ptr_salt[4] = 0;
8392
8393 // encode digest
8394
8395 memset (tmp_buf, 0, sizeof (tmp_buf));
8396
8397 digest_buf[0] = byte_swap_32 (digest_buf[0]);
8398 digest_buf[1] = byte_swap_32 (digest_buf[1]);
8399
8400 memcpy (tmp_buf, digest_buf, 8);
8401
8402 base64_encode (int_to_itoa64, (const u8 *) tmp_buf, 8, (u8 *) ptr_plain);
8403
8404 ptr_plain[11] = 0;
8405
8406 // fill the resulting buffer
8407
8408 snprintf (out_buf, len - 1, "_%s%s%s", salt_iter, ptr_salt, ptr_plain);
8409 }
8410 else if (hash_mode == 12500)
8411 {
8412 snprintf (out_buf, len - 1, "%s*0*%08x%08x*%08x%08x%08x%08x",
8413 SIGNATURE_RAR3,
8414 byte_swap_32 (salt.salt_buf[0]),
8415 byte_swap_32 (salt.salt_buf[1]),
8416 salt.salt_buf[2],
8417 salt.salt_buf[3],
8418 salt.salt_buf[4],
8419 salt.salt_buf[5]);
8420 }
8421 else if (hash_mode == 12600)
8422 {
8423 snprintf (out_buf, len - 1, "%08x%08x%08x%08x%08x%08x%08x%08x",
8424 digest_buf[0] + salt.salt_buf_pc[0],
8425 digest_buf[1] + salt.salt_buf_pc[1],
8426 digest_buf[2] + salt.salt_buf_pc[2],
8427 digest_buf[3] + salt.salt_buf_pc[3],
8428 digest_buf[4] + salt.salt_buf_pc[4],
8429 digest_buf[5] + salt.salt_buf_pc[5],
8430 digest_buf[6] + salt.salt_buf_pc[6],
8431 digest_buf[7] + salt.salt_buf_pc[7]);
8432 }
8433 else if (hash_mode == 12700)
8434 {
8435 uint digest_idx = salt.digests_offset + digest_pos;
8436
8437 hashinfo_t **hashinfo_ptr = data.hash_info;
8438 char *hash_buf = hashinfo_ptr[digest_idx]->orighash;
8439
8440 snprintf (out_buf, len-1, "%s", hash_buf);
8441 }
8442 else if (hash_mode == 12800)
8443 {
8444 const u8 *ptr = (const u8 *) salt.salt_buf;
8445
8446 snprintf (out_buf, len-1, "%s,%02x%02x%02x%02x%02x%02x%02x%02x%02x%02x,%d,%08x%08x%08x%08x%08x%08x%08x%08x",
8447 SIGNATURE_MS_DRSR,
8448 ptr[0],
8449 ptr[1],
8450 ptr[2],
8451 ptr[3],
8452 ptr[4],
8453 ptr[5],
8454 ptr[6],
8455 ptr[7],
8456 ptr[8],
8457 ptr[9],
8458 salt.salt_iter + 1,
8459 byte_swap_32 (digest_buf[0]),
8460 byte_swap_32 (digest_buf[1]),
8461 byte_swap_32 (digest_buf[2]),
8462 byte_swap_32 (digest_buf[3]),
8463 byte_swap_32 (digest_buf[4]),
8464 byte_swap_32 (digest_buf[5]),
8465 byte_swap_32 (digest_buf[6]),
8466 byte_swap_32 (digest_buf[7])
8467 );
8468 }
8469 else if (hash_mode == 12900)
8470 {
8471 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
8472 salt.salt_buf[ 4],
8473 salt.salt_buf[ 5],
8474 salt.salt_buf[ 6],
8475 salt.salt_buf[ 7],
8476 salt.salt_buf[ 8],
8477 salt.salt_buf[ 9],
8478 salt.salt_buf[10],
8479 salt.salt_buf[11],
8480 byte_swap_32 (digest_buf[0]),
8481 byte_swap_32 (digest_buf[1]),
8482 byte_swap_32 (digest_buf[2]),
8483 byte_swap_32 (digest_buf[3]),
8484 byte_swap_32 (digest_buf[4]),
8485 byte_swap_32 (digest_buf[5]),
8486 byte_swap_32 (digest_buf[6]),
8487 byte_swap_32 (digest_buf[7]),
8488 salt.salt_buf[ 0],
8489 salt.salt_buf[ 1],
8490 salt.salt_buf[ 2],
8491 salt.salt_buf[ 3]
8492 );
8493 }
8494 else if (hash_mode == 13000)
8495 {
8496 rar5_t *rar5s = (rar5_t *) data.esalts_buf;
8497
8498 rar5_t *rar5 = &rar5s[salt_pos];
8499
8500 snprintf (out_buf, len-1, "$rar5$16$%08x%08x%08x%08x$%u$%08x%08x%08x%08x$8$%08x%08x",
8501 salt.salt_buf[0],
8502 salt.salt_buf[1],
8503 salt.salt_buf[2],
8504 salt.salt_buf[3],
8505 salt.salt_sign[0],
8506 rar5->iv[0],
8507 rar5->iv[1],
8508 rar5->iv[2],
8509 rar5->iv[3],
8510 byte_swap_32 (digest_buf[0]),
8511 byte_swap_32 (digest_buf[1])
8512 );
8513 }
8514 else if (hash_mode == 13100)
8515 {
8516 krb5tgs_t *krb5tgss = (krb5tgs_t *) data.esalts_buf;
8517
8518 krb5tgs_t *krb5tgs = &krb5tgss[salt_pos];
8519
8520 u8 *ptr_checksum = (u8 *) krb5tgs->checksum;
8521 u8 *ptr_edata2 = (u8 *) krb5tgs->edata2;
8522
8523 char data[2560 * 4 * 2] = { 0 };
8524
8525 char *ptr_data = data;
8526
8527 for (uint i = 0; i < 16; i++, ptr_data += 2)
8528 sprintf (ptr_data, "%02x", ptr_checksum[i]);
8529
8530 /* skip '$' */
8531 ptr_data++;
8532
8533 for (uint i = 0; i < krb5tgs->edata2_len; i++, ptr_data += 2)
8534 sprintf (ptr_data, "%02x", ptr_edata2[i]);
8535
8536 snprintf (out_buf, len-1, "%s$%s$%s$%s",
8537 SIGNATURE_KRB5TGS,
8538 (char *) krb5tgs->account_info,
8539 data,
8540 data + 33);
8541 }
8542 else if (hash_mode == 13200)
8543 {
8544 snprintf (out_buf, len-1, "%s*%d*%08x%08x%08x%08x*%08x%08x%08x%08x%08x%08x",
8545 SIGNATURE_AXCRYPT,
8546 salt.salt_iter,
8547 salt.salt_buf[0],
8548 salt.salt_buf[1],
8549 salt.salt_buf[2],
8550 salt.salt_buf[3],
8551 salt.salt_buf[4],
8552 salt.salt_buf[5],
8553 salt.salt_buf[6],
8554 salt.salt_buf[7],
8555 salt.salt_buf[8],
8556 salt.salt_buf[9]);
8557 }
8558 else if (hash_mode == 13300)
8559 {
8560 snprintf (out_buf, len-1, "%s$%08x%08x%08x%08x",
8561 SIGNATURE_AXCRYPT_SHA1,
8562 digest_buf[0],
8563 digest_buf[1],
8564 digest_buf[2],
8565 digest_buf[3]);
8566 }
8567 else if (hash_mode == 13400)
8568 {
8569 keepass_t *keepasss = (keepass_t *) data.esalts_buf;
8570
8571 keepass_t *keepass = &keepasss[salt_pos];
8572
8573 u32 version = (u32) keepass->version;
8574 u32 rounds = salt.salt_iter;
8575 u32 algorithm = (u32) keepass->algorithm;
8576 u32 keyfile_len = (u32) keepass->keyfile_len;
8577
8578 u32 *ptr_final_random_seed = (u32 *) keepass->final_random_seed ;
8579 u32 *ptr_transf_random_seed = (u32 *) keepass->transf_random_seed ;
8580 u32 *ptr_enc_iv = (u32 *) keepass->enc_iv ;
8581 u32 *ptr_contents_hash = (u32 *) keepass->contents_hash ;
8582 u32 *ptr_keyfile = (u32 *) keepass->keyfile ;
8583
8584 /* specific to version 1 */
8585 u32 contents_len;
8586 u32 *ptr_contents;
8587
8588 /* specific to version 2 */
8589 u32 expected_bytes_len;
8590 u32 *ptr_expected_bytes;
8591
8592 u32 final_random_seed_len;
8593 u32 transf_random_seed_len;
8594 u32 enc_iv_len;
8595 u32 contents_hash_len;
8596
8597 transf_random_seed_len = 8;
8598 enc_iv_len = 4;
8599 contents_hash_len = 8;
8600 final_random_seed_len = 8;
8601
8602 if (version == 1)
8603 final_random_seed_len = 4;
8604
8605 snprintf (out_buf, len-1, "%s*%d*%d*%d",
8606 SIGNATURE_KEEPASS,
8607 version,
8608 rounds,
8609 algorithm);
8610
8611 char *ptr_data = out_buf;
8612
8613 ptr_data += strlen(out_buf);
8614
8615 *ptr_data = '*';
8616 ptr_data++;
8617
8618 for (uint i = 0; i < final_random_seed_len; i++, ptr_data += 8)
8619 sprintf (ptr_data, "%08x", ptr_final_random_seed[i]);
8620
8621 *ptr_data = '*';
8622 ptr_data++;
8623
8624 for (uint i = 0; i < transf_random_seed_len; i++, ptr_data += 8)
8625 sprintf (ptr_data, "%08x", ptr_transf_random_seed[i]);
8626
8627 *ptr_data = '*';
8628 ptr_data++;
8629
8630 for (uint i = 0; i < enc_iv_len; i++, ptr_data += 8)
8631 sprintf (ptr_data, "%08x", ptr_enc_iv[i]);
8632
8633 *ptr_data = '*';
8634 ptr_data++;
8635
8636 if (version == 1)
8637 {
8638 contents_len = (u32) keepass->contents_len;
8639 ptr_contents = (u32 *) keepass->contents;
8640
8641 for (uint i = 0; i < contents_hash_len; i++, ptr_data += 8)
8642 sprintf (ptr_data, "%08x", ptr_contents_hash[i]);
8643
8644 *ptr_data = '*';
8645 ptr_data++;
8646
8647 /* inline flag */
8648 *ptr_data = '1';
8649 ptr_data++;
8650
8651 *ptr_data = '*';
8652 ptr_data++;
8653
8654 char ptr_contents_len[10] = { 0 };
8655
8656 sprintf ((char*) ptr_contents_len, "%d", contents_len);
8657
8658 sprintf (ptr_data, "%d", contents_len);
8659
8660 ptr_data += strlen(ptr_contents_len);
8661
8662 *ptr_data = '*';
8663 ptr_data++;
8664
8665 for (uint i = 0; i < contents_len / 4; i++, ptr_data += 8)
8666 sprintf (ptr_data, "%08x", ptr_contents[i]);
8667 }
8668 else if (version == 2)
8669 {
8670 expected_bytes_len = 8;
8671 ptr_expected_bytes = (u32 *) keepass->expected_bytes ;
8672
8673 for (uint i = 0; i < expected_bytes_len; i++, ptr_data += 8)
8674 sprintf (ptr_data, "%08x", ptr_expected_bytes[i]);
8675
8676 *ptr_data = '*';
8677 ptr_data++;
8678
8679 for (uint i = 0; i < contents_hash_len; i++, ptr_data += 8)
8680 sprintf (ptr_data, "%08x", ptr_contents_hash[i]);
8681 }
8682 if (keyfile_len)
8683 {
8684 *ptr_data = '*';
8685 ptr_data++;
8686
8687 /* inline flag */
8688 *ptr_data = '1';
8689 ptr_data++;
8690
8691 *ptr_data = '*';
8692 ptr_data++;
8693
8694 sprintf (ptr_data, "%d", keyfile_len);
8695
8696 ptr_data += 2;
8697
8698 *ptr_data = '*';
8699 ptr_data++;
8700
8701 for (uint i = 0; i < 8; i++, ptr_data += 8)
8702 sprintf (ptr_data, "%08x", ptr_keyfile[i]);
8703 }
8704 }
8705 else if (hash_mode == 13500)
8706 {
8707 pstoken_t *pstokens = (pstoken_t *) data.esalts_buf;
8708
8709 pstoken_t *pstoken = &pstokens[salt_pos];
8710
8711 const u32 salt_len = (pstoken->salt_len > 512) ? 512 : pstoken->salt_len;
8712
8713 char pstoken_tmp[1024 + 1] = { 0 };
8714
8715 for (uint i = 0, j = 0; i < salt_len; i += 1, j += 2)
8716 {
8717 const u8 *ptr = (const u8 *) pstoken->salt_buf;
8718
8719 sprintf (pstoken_tmp + j, "%02x", ptr[i]);
8720 }
8721
8722 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x:%s",
8723 digest_buf[0],
8724 digest_buf[1],
8725 digest_buf[2],
8726 digest_buf[3],
8727 digest_buf[4],
8728 pstoken_tmp);
8729 }
8730 else if (hash_mode == 13600)
8731 {
8732 zip2_t *zip2s = (zip2_t *) data.esalts_buf;
8733
8734 zip2_t *zip2 = &zip2s[salt_pos];
8735
8736 const u32 salt_len = zip2->salt_len;
8737
8738 char salt_tmp[32 + 1] = { 0 };
8739
8740 for (uint i = 0, j = 0; i < salt_len; i += 1, j += 2)
8741 {
8742 const u8 *ptr = (const u8 *) zip2->salt_buf;
8743
8744 sprintf (salt_tmp + j, "%02x", ptr[i]);
8745 }
8746
8747 const u32 data_len = zip2->data_len;
8748
8749 char data_tmp[8192 + 1] = { 0 };
8750
8751 for (uint i = 0, j = 0; i < data_len; i += 1, j += 2)
8752 {
8753 const u8 *ptr = (const u8 *) zip2->data_buf;
8754
8755 sprintf (data_tmp + j, "%02x", ptr[i]);
8756 }
8757
8758 const u32 auth_len = zip2->auth_len;
8759
8760 char auth_tmp[20 + 1] = { 0 };
8761
8762 for (uint i = 0, j = 0; i < auth_len; i += 1, j += 2)
8763 {
8764 const u8 *ptr = (const u8 *) zip2->auth_buf;
8765
8766 sprintf (auth_tmp + j, "%02x", ptr[i]);
8767 }
8768
8769 snprintf (out_buf, 255, "%s*%u*%u*%u*%s*%x*%u*%s*%s*%s",
8770 SIGNATURE_ZIP2_START,
8771 zip2->type,
8772 zip2->mode,
8773 zip2->magic,
8774 salt_tmp,
8775 zip2->verify_bytes,
8776 zip2->compress_length,
8777 data_tmp,
8778 auth_tmp,
8779 SIGNATURE_ZIP2_STOP);
8780 }
8781 else if ((hash_mode >= 13700) && (hash_mode <= 13799))
8782 {
8783 snprintf (out_buf, len-1, "%s", hashfile);
8784 }
8785 else if (hash_mode == 13800)
8786 {
8787 win8phone_t *esalts = (win8phone_t *) data.esalts_buf;
8788
8789 win8phone_t *esalt = &esalts[salt_pos];
8790
8791 char buf[256 + 1] = { 0 };
8792
8793 for (int i = 0, j = 0; i < 32; i += 1, j += 8)
8794 {
8795 sprintf (buf + j, "%08x", esalt->salt_buf[i]);
8796 }
8797
8798 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x:%s",
8799 digest_buf[0],
8800 digest_buf[1],
8801 digest_buf[2],
8802 digest_buf[3],
8803 digest_buf[4],
8804 digest_buf[5],
8805 digest_buf[6],
8806 digest_buf[7],
8807 buf);
8808 }
8809 else
8810 {
8811 if (hash_type == HASH_TYPE_MD4)
8812 {
8813 snprintf (out_buf, 255, "%08x%08x%08x%08x",
8814 digest_buf[0],
8815 digest_buf[1],
8816 digest_buf[2],
8817 digest_buf[3]);
8818 }
8819 else if (hash_type == HASH_TYPE_MD5)
8820 {
8821 snprintf (out_buf, len-1, "%08x%08x%08x%08x",
8822 digest_buf[0],
8823 digest_buf[1],
8824 digest_buf[2],
8825 digest_buf[3]);
8826 }
8827 else if (hash_type == HASH_TYPE_SHA1)
8828 {
8829 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x",
8830 digest_buf[0],
8831 digest_buf[1],
8832 digest_buf[2],
8833 digest_buf[3],
8834 digest_buf[4]);
8835 }
8836 else if (hash_type == HASH_TYPE_SHA256)
8837 {
8838 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x",
8839 digest_buf[0],
8840 digest_buf[1],
8841 digest_buf[2],
8842 digest_buf[3],
8843 digest_buf[4],
8844 digest_buf[5],
8845 digest_buf[6],
8846 digest_buf[7]);
8847 }
8848 else if (hash_type == HASH_TYPE_SHA384)
8849 {
8850 uint *ptr = digest_buf;
8851
8852 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
8853 ptr[ 1], ptr[ 0],
8854 ptr[ 3], ptr[ 2],
8855 ptr[ 5], ptr[ 4],
8856 ptr[ 7], ptr[ 6],
8857 ptr[ 9], ptr[ 8],
8858 ptr[11], ptr[10]);
8859 }
8860 else if (hash_type == HASH_TYPE_SHA512)
8861 {
8862 uint *ptr = digest_buf;
8863
8864 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
8865 ptr[ 1], ptr[ 0],
8866 ptr[ 3], ptr[ 2],
8867 ptr[ 5], ptr[ 4],
8868 ptr[ 7], ptr[ 6],
8869 ptr[ 9], ptr[ 8],
8870 ptr[11], ptr[10],
8871 ptr[13], ptr[12],
8872 ptr[15], ptr[14]);
8873 }
8874 else if (hash_type == HASH_TYPE_LM)
8875 {
8876 snprintf (out_buf, len-1, "%08x%08x",
8877 digest_buf[0],
8878 digest_buf[1]);
8879 }
8880 else if (hash_type == HASH_TYPE_ORACLEH)
8881 {
8882 snprintf (out_buf, len-1, "%08X%08X",
8883 digest_buf[0],
8884 digest_buf[1]);
8885 }
8886 else if (hash_type == HASH_TYPE_BCRYPT)
8887 {
8888 base64_encode (int_to_bf64, (const u8 *) salt.salt_buf, 16, (u8 *) tmp_buf + 0);
8889 base64_encode (int_to_bf64, (const u8 *) digest_buf, 23, (u8 *) tmp_buf + 22);
8890
8891 tmp_buf[22 + 31] = 0; // base64_encode wants to pad
8892
8893 snprintf (out_buf, len-1, "%s$%s", (char *) salt.salt_sign, tmp_buf);
8894 }
8895 else if (hash_type == HASH_TYPE_KECCAK)
8896 {
8897 uint *ptr = digest_buf;
8898
8899 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
8900 ptr[ 1], ptr[ 0],
8901 ptr[ 3], ptr[ 2],
8902 ptr[ 5], ptr[ 4],
8903 ptr[ 7], ptr[ 6],
8904 ptr[ 9], ptr[ 8],
8905 ptr[11], ptr[10],
8906 ptr[13], ptr[12],
8907 ptr[15], ptr[14],
8908 ptr[17], ptr[16],
8909 ptr[19], ptr[18],
8910 ptr[21], ptr[20],
8911 ptr[23], ptr[22],
8912 ptr[25], ptr[24],
8913 ptr[27], ptr[26],
8914 ptr[29], ptr[28],
8915 ptr[31], ptr[30],
8916 ptr[33], ptr[32],
8917 ptr[35], ptr[34],
8918 ptr[37], ptr[36],
8919 ptr[39], ptr[38],
8920 ptr[41], ptr[30],
8921 ptr[43], ptr[42],
8922 ptr[45], ptr[44],
8923 ptr[47], ptr[46],
8924 ptr[49], ptr[48]
8925 );
8926
8927 out_buf[salt.keccak_mdlen * 2] = 0;
8928 }
8929 else if (hash_type == HASH_TYPE_RIPEMD160)
8930 {
8931 snprintf (out_buf, 255, "%08x%08x%08x%08x%08x",
8932 digest_buf[0],
8933 digest_buf[1],
8934 digest_buf[2],
8935 digest_buf[3],
8936 digest_buf[4]);
8937 }
8938 else if (hash_type == HASH_TYPE_WHIRLPOOL)
8939 {
8940 digest_buf[ 0] = digest_buf[ 0];
8941 digest_buf[ 1] = digest_buf[ 1];
8942 digest_buf[ 2] = digest_buf[ 2];
8943 digest_buf[ 3] = digest_buf[ 3];
8944 digest_buf[ 4] = digest_buf[ 4];
8945 digest_buf[ 5] = digest_buf[ 5];
8946 digest_buf[ 6] = digest_buf[ 6];
8947 digest_buf[ 7] = digest_buf[ 7];
8948 digest_buf[ 8] = digest_buf[ 8];
8949 digest_buf[ 9] = digest_buf[ 9];
8950 digest_buf[10] = digest_buf[10];
8951 digest_buf[11] = digest_buf[11];
8952 digest_buf[12] = digest_buf[12];
8953 digest_buf[13] = digest_buf[13];
8954 digest_buf[14] = digest_buf[14];
8955 digest_buf[15] = digest_buf[15];
8956
8957 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x%08x",
8958 digest_buf[ 0],
8959 digest_buf[ 1],
8960 digest_buf[ 2],
8961 digest_buf[ 3],
8962 digest_buf[ 4],
8963 digest_buf[ 5],
8964 digest_buf[ 6],
8965 digest_buf[ 7],
8966 digest_buf[ 8],
8967 digest_buf[ 9],
8968 digest_buf[10],
8969 digest_buf[11],
8970 digest_buf[12],
8971 digest_buf[13],
8972 digest_buf[14],
8973 digest_buf[15]);
8974 }
8975 else if (hash_type == HASH_TYPE_GOST)
8976 {
8977 snprintf (out_buf, len-1, "%08x%08x%08x%08x%08x%08x%08x%08x",
8978 digest_buf[0],
8979 digest_buf[1],
8980 digest_buf[2],
8981 digest_buf[3],
8982 digest_buf[4],
8983 digest_buf[5],
8984 digest_buf[6],
8985 digest_buf[7]);
8986 }
8987 else if (hash_type == HASH_TYPE_MYSQL)
8988 {
8989 snprintf (out_buf, len-1, "%08x%08x",
8990 digest_buf[0],
8991 digest_buf[1]);
8992 }
8993 else if (hash_type == HASH_TYPE_LOTUS5)
8994 {
8995 snprintf (out_buf, len-1, "%08x%08x%08x%08x",
8996 digest_buf[0],
8997 digest_buf[1],
8998 digest_buf[2],
8999 digest_buf[3]);
9000 }
9001 else if (hash_type == HASH_TYPE_LOTUS6)
9002 {
9003 digest_buf[ 0] = byte_swap_32 (digest_buf[ 0]);
9004 digest_buf[ 1] = byte_swap_32 (digest_buf[ 1]);
9005 digest_buf[ 2] = byte_swap_32 (digest_buf[ 2]);
9006 digest_buf[ 3] = byte_swap_32 (digest_buf[ 3]);
9007
9008 char buf[16] = { 0 };
9009
9010 memcpy (buf + 0, salt.salt_buf, 5);
9011 memcpy (buf + 5, digest_buf, 9);
9012
9013 buf[3] -= -4;
9014
9015 base64_encode (int_to_lotus64, (const u8 *) buf, 14, (u8 *) tmp_buf);
9016
9017 tmp_buf[18] = salt.salt_buf_pc[7];
9018 tmp_buf[19] = 0;
9019
9020 snprintf (out_buf, len-1, "(G%s)", tmp_buf);
9021 }
9022 else if (hash_type == HASH_TYPE_LOTUS8)
9023 {
9024 char buf[52] = { 0 };
9025
9026 // salt
9027
9028 memcpy (buf + 0, salt.salt_buf, 16);
9029
9030 buf[3] -= -4;
9031
9032 // iteration
9033
9034 snprintf (buf + 16, 11, "%010i", salt.salt_iter + 1);
9035
9036 // chars
9037
9038 buf[26] = salt.salt_buf_pc[0];
9039 buf[27] = salt.salt_buf_pc[1];
9040
9041 // digest
9042
9043 memcpy (buf + 28, digest_buf, 8);
9044
9045 base64_encode (int_to_lotus64, (const u8 *) buf, 36, (u8 *) tmp_buf);
9046
9047 tmp_buf[49] = 0;
9048
9049 snprintf (out_buf, len-1, "(H%s)", tmp_buf);
9050 }
9051 else if (hash_type == HASH_TYPE_CRC32)
9052 {
9053 snprintf (out_buf, len-1, "%08x", byte_swap_32 (digest_buf[0]));
9054 }
9055 }
9056
9057 if (salt_type == SALT_TYPE_INTERN)
9058 {
9059 size_t pos = strlen (out_buf);
9060
9061 out_buf[pos] = data.separator;
9062
9063 char *ptr = (char *) salt.salt_buf;
9064
9065 memcpy (out_buf + pos + 1, ptr, salt.salt_len);
9066
9067 out_buf[pos + 1 + salt.salt_len] = 0;
9068 }
9069 }
9070
9071 void to_hccap_t (hccap_t *hccap, uint salt_pos, uint digest_pos)
9072 {
9073 memset (hccap, 0, sizeof (hccap_t));
9074
9075 salt_t *salt = &data.salts_buf[salt_pos];
9076
9077 memcpy (hccap->essid, salt->salt_buf, salt->salt_len);
9078
9079 wpa_t *wpas = (wpa_t *) data.esalts_buf;
9080 wpa_t *wpa = &wpas[salt_pos];
9081
9082 hccap->keyver = wpa->keyver;
9083
9084 hccap->eapol_size = wpa->eapol_size;
9085
9086 if (wpa->keyver != 1)
9087 {
9088 uint eapol_tmp[64] = { 0 };
9089
9090 for (uint i = 0; i < 64; i++)
9091 {
9092 eapol_tmp[i] = byte_swap_32 (wpa->eapol[i]);
9093 }
9094
9095 memcpy (hccap->eapol, eapol_tmp, wpa->eapol_size);
9096 }
9097 else
9098 {
9099 memcpy (hccap->eapol, wpa->eapol, wpa->eapol_size);
9100 }
9101
9102 memcpy (hccap->mac1, wpa->orig_mac1, 6);
9103 memcpy (hccap->mac2, wpa->orig_mac2, 6);
9104 memcpy (hccap->nonce1, wpa->orig_nonce1, 32);
9105 memcpy (hccap->nonce2, wpa->orig_nonce2, 32);
9106
9107 char *digests_buf_ptr = (char *) data.digests_buf;
9108
9109 uint dgst_size = data.dgst_size;
9110
9111 uint *digest_ptr = (uint *) (digests_buf_ptr + (data.salts_buf[salt_pos].digests_offset * dgst_size) + (digest_pos * dgst_size));
9112
9113 if (wpa->keyver != 1)
9114 {
9115 uint digest_tmp[4] = { 0 };
9116
9117 digest_tmp[0] = byte_swap_32 (digest_ptr[0]);
9118 digest_tmp[1] = byte_swap_32 (digest_ptr[1]);
9119 digest_tmp[2] = byte_swap_32 (digest_ptr[2]);
9120 digest_tmp[3] = byte_swap_32 (digest_ptr[3]);
9121
9122 memcpy (hccap->keymic, digest_tmp, 16);
9123 }
9124 else
9125 {
9126 memcpy (hccap->keymic, digest_ptr, 16);
9127 }
9128 }
9129
9130 void SuspendThreads ()
9131 {
9132 if (data.devices_status == STATUS_RUNNING)
9133 {
9134 hc_timer_set (&data.timer_paused);
9135
9136 data.devices_status = STATUS_PAUSED;
9137
9138 log_info ("Paused");
9139 }
9140 }
9141
9142 void ResumeThreads ()
9143 {
9144 if (data.devices_status == STATUS_PAUSED)
9145 {
9146 double ms_paused;
9147
9148 hc_timer_get (data.timer_paused, ms_paused);
9149
9150 data.ms_paused += ms_paused;
9151
9152 data.devices_status = STATUS_RUNNING;
9153
9154 log_info ("Resumed");
9155 }
9156 }
9157
9158 void bypass ()
9159 {
9160 if (data.devices_status != STATUS_RUNNING) return;
9161
9162 data.devices_status = STATUS_BYPASS;
9163
9164 log_info ("Next dictionary / mask in queue selected, bypassing current one");
9165 }
9166
9167 void stop_at_checkpoint ()
9168 {
9169 if (data.devices_status != STATUS_STOP_AT_CHECKPOINT)
9170 {
9171 if (data.devices_status != STATUS_RUNNING) return;
9172 }
9173
9174 // this feature only makes sense if --restore-disable was not specified
9175
9176 if (data.restore_disable == 1)
9177 {
9178 log_info ("WARNING: This feature is disabled when --restore-disable is specified");
9179
9180 return;
9181 }
9182
9183 // check if monitoring of Restore Point updates should be enabled or disabled
9184
9185 if (data.devices_status != STATUS_STOP_AT_CHECKPOINT)
9186 {
9187 data.devices_status = STATUS_STOP_AT_CHECKPOINT;
9188
9189 // save the current restore point value
9190
9191 data.checkpoint_cur_words = get_lowest_words_done ();
9192
9193 log_info ("Checkpoint enabled: Will quit at next Restore Point update");
9194 }
9195 else
9196 {
9197 data.devices_status = STATUS_RUNNING;
9198
9199 // reset the global value for checkpoint checks
9200
9201 data.checkpoint_cur_words = 0;
9202
9203 log_info ("Checkpoint disabled: Restore Point updates will no longer be monitored");
9204 }
9205 }
9206
9207 void myabort ()
9208 {
9209 if (data.devices_status == STATUS_INIT) return;
9210 if (data.devices_status == STATUS_STARTING) return;
9211
9212 data.devices_status = STATUS_ABORTED;
9213 }
9214
9215 void myquit ()
9216 {
9217 if (data.devices_status == STATUS_INIT) return;
9218 if (data.devices_status == STATUS_STARTING) return;
9219
9220 data.devices_status = STATUS_QUIT;
9221 }
9222
9223 void load_kernel (const char *kernel_file, int num_devices, size_t *kernel_lengths, const u8 **kernel_sources)
9224 {
9225 FILE *fp = fopen (kernel_file, "rb");
9226
9227 if (fp != NULL)
9228 {
9229 struct stat st;
9230
9231 memset (&st, 0, sizeof (st));
9232
9233 stat (kernel_file, &st);
9234
9235 u8 *buf = (u8 *) mymalloc (st.st_size + 1);
9236
9237 size_t num_read = fread (buf, sizeof (u8), st.st_size, fp);
9238
9239 if (num_read != (size_t) st.st_size)
9240 {
9241 log_error ("ERROR: %s: %s", kernel_file, strerror (errno));
9242
9243 exit (-1);
9244 }
9245
9246 fclose (fp);
9247
9248 buf[st.st_size] = 0;
9249
9250 for (int i = 0; i < num_devices; i++)
9251 {
9252 kernel_lengths[i] = (size_t) st.st_size;
9253
9254 kernel_sources[i] = buf;
9255 }
9256 }
9257 else
9258 {
9259 log_error ("ERROR: %s: %s", kernel_file, strerror (errno));
9260
9261 exit (-1);
9262 }
9263
9264 return;
9265 }
9266
9267 void writeProgramBin (char *dst, u8 *binary, size_t binary_size)
9268 {
9269 if (binary_size > 0)
9270 {
9271 FILE *fp = fopen (dst, "wb");
9272
9273 lock_file (fp);
9274 fwrite (binary, sizeof (u8), binary_size, fp);
9275
9276 fflush (fp);
9277 fclose (fp);
9278 }
9279 }
9280
9281 /**
9282 * restore
9283 */
9284
9285 restore_data_t *init_restore (int argc, char **argv)
9286 {
9287 restore_data_t *rd = (restore_data_t *) mymalloc (sizeof (restore_data_t));
9288
9289 if (data.restore_disable == 0)
9290 {
9291 FILE *fp = fopen (data.eff_restore_file, "rb");
9292
9293 if (fp)
9294 {
9295 size_t nread = fread (rd, sizeof (restore_data_t), 1, fp);
9296
9297 if (nread != 1)
9298 {
9299 log_error ("ERROR: Cannot read %s", data.eff_restore_file);
9300
9301 exit (-1);
9302 }
9303
9304 fclose (fp);
9305
9306 if (rd->pid)
9307 {
9308 char *pidbin = (char *) mymalloc (HCBUFSIZ);
9309
9310 int pidbin_len = -1;
9311
9312 #ifdef _POSIX
9313 snprintf (pidbin, HCBUFSIZ - 1, "/proc/%d/cmdline", rd->pid);
9314
9315 FILE *fd = fopen (pidbin, "rb");
9316
9317 if (fd)
9318 {
9319 pidbin_len = fread (pidbin, 1, HCBUFSIZ, fd);
9320
9321 pidbin[pidbin_len] = 0;
9322
9323 fclose (fd);
9324
9325 char *argv0_r = strrchr (argv[0], '/');
9326
9327 char *pidbin_r = strrchr (pidbin, '/');
9328
9329 if (argv0_r == NULL) argv0_r = argv[0];
9330
9331 if (pidbin_r == NULL) pidbin_r = pidbin;
9332
9333 if (strcmp (argv0_r, pidbin_r) == 0)
9334 {
9335 log_error ("ERROR: Already an instance %s running on pid %d", pidbin, rd->pid);
9336
9337 exit (-1);
9338 }
9339 }
9340
9341 #elif _WIN
9342 HANDLE hProcess = OpenProcess (PROCESS_ALL_ACCESS, FALSE, rd->pid);
9343
9344 char *pidbin2 = (char *) mymalloc (HCBUFSIZ);
9345
9346 int pidbin2_len = -1;
9347
9348 pidbin_len = GetModuleFileName (NULL, pidbin, HCBUFSIZ);
9349 pidbin2_len = GetModuleFileNameEx (hProcess, NULL, pidbin2, HCBUFSIZ);
9350
9351 pidbin[pidbin_len] = 0;
9352 pidbin2[pidbin2_len] = 0;
9353
9354 if (pidbin2_len)
9355 {
9356 if (strcmp (pidbin, pidbin2) == 0)
9357 {
9358 log_error ("ERROR: Already an instance %s running on pid %d", pidbin2, rd->pid);
9359
9360 exit (-1);
9361 }
9362 }
9363
9364 myfree (pidbin2);
9365
9366 #endif
9367
9368 myfree (pidbin);
9369 }
9370
9371 if (rd->version_bin < RESTORE_MIN)
9372 {
9373 log_error ("ERROR: Cannot use outdated %s. Please remove it.", data.eff_restore_file);
9374
9375 exit (-1);
9376 }
9377 }
9378 }
9379
9380 memset (rd, 0, sizeof (restore_data_t));
9381
9382 rd->version_bin = VERSION_BIN;
9383
9384 #ifdef _POSIX
9385 rd->pid = getpid ();
9386 #elif _WIN
9387 rd->pid = GetCurrentProcessId ();
9388 #endif
9389
9390 if (getcwd (rd->cwd, 255) == NULL)
9391 {
9392 myfree (rd);
9393
9394 return (NULL);
9395 }
9396
9397 rd->argc = argc;
9398 rd->argv = argv;
9399
9400 return (rd);
9401 }
9402
9403 void read_restore (const char *eff_restore_file, restore_data_t *rd)
9404 {
9405 FILE *fp = fopen (eff_restore_file, "rb");
9406
9407 if (fp == NULL)
9408 {
9409 log_error ("ERROR: Restore file '%s': %s", eff_restore_file, strerror (errno));
9410
9411 exit (-1);
9412 }
9413
9414 if (fread (rd, sizeof (restore_data_t), 1, fp) != 1)
9415 {
9416 log_error ("ERROR: Can't read %s", eff_restore_file);
9417
9418 exit (-1);
9419 }
9420
9421 rd->argv = (char **) mycalloc (rd->argc, sizeof (char *));
9422
9423 char *buf = (char *) mymalloc (HCBUFSIZ);
9424
9425 for (uint i = 0; i < rd->argc; i++)
9426 {
9427 if (fgets (buf, HCBUFSIZ - 1, fp) == NULL)
9428 {
9429 log_error ("ERROR: Can't read %s", eff_restore_file);
9430
9431 exit (-1);
9432 }
9433
9434 size_t len = strlen (buf);
9435
9436 if (len) buf[len - 1] = 0;
9437
9438 rd->argv[i] = mystrdup (buf);
9439 }
9440
9441 myfree (buf);
9442
9443 fclose (fp);
9444
9445 log_info ("INFO: Changing current working directory to the path found within the .restore file: '%s'", rd->cwd);
9446
9447 if (chdir (rd->cwd))
9448 {
9449 log_error ("ERROR: The directory '%s' does not exist. It is needed to restore (--restore) the session.\n"
9450 " You could either create this directory (or link it) or update the .restore file using e.g. the analyze_hc_restore.pl tool:\n"
9451 " https://github.com/philsmd/analyze_hc_restore\n"
9452 " The directory must be relative to (or contain) all files/folders mentioned within the command line.", rd->cwd);
9453
9454 exit (-1);
9455 }
9456 }
9457
9458 u64 get_lowest_words_done ()
9459 {
9460 u64 words_cur = -1;
9461
9462 for (uint device_id = 0; device_id < data.devices_cnt; device_id++)
9463 {
9464 hc_device_param_t *device_param = &data.devices_param[device_id];
9465
9466 if (device_param->skipped) continue;
9467
9468 const u64 words_done = device_param->words_done;
9469
9470 if (words_done < words_cur) words_cur = words_done;
9471 }
9472
9473 // It's possible that a device's workload isn't finished right after a restore-case.
9474 // In that case, this function would return 0 and overwrite the real restore point
9475 // There's also data.words_cur which is set to rd->words_cur but it changes while
9476 // the attack is running therefore we should stick to rd->words_cur.
9477 // Note that -s influences rd->words_cur we should keep a close look on that.
9478
9479 if (words_cur < data.rd->words_cur) words_cur = data.rd->words_cur;
9480
9481 return words_cur;
9482 }
9483
9484 void write_restore (const char *new_restore_file, restore_data_t *rd)
9485 {
9486 u64 words_cur = get_lowest_words_done ();
9487
9488 rd->words_cur = words_cur;
9489
9490 FILE *fp = fopen (new_restore_file, "wb");
9491
9492 if (fp == NULL)
9493 {
9494 log_error ("ERROR: %s: %s", new_restore_file, strerror (errno));
9495
9496 exit (-1);
9497 }
9498
9499 if (setvbuf (fp, NULL, _IONBF, 0))
9500 {
9501 log_error ("ERROR: setvbuf file '%s': %s", new_restore_file, strerror (errno));
9502
9503 exit (-1);
9504 }
9505
9506 fwrite (rd, sizeof (restore_data_t), 1, fp);
9507
9508 for (uint i = 0; i < rd->argc; i++)
9509 {
9510 fprintf (fp, "%s", rd->argv[i]);
9511 fputc ('\n', fp);
9512 }
9513
9514 fflush (fp);
9515
9516 fsync (fileno (fp));
9517
9518 fclose (fp);
9519 }
9520
9521 void cycle_restore ()
9522 {
9523 const char *eff_restore_file = data.eff_restore_file;
9524 const char *new_restore_file = data.new_restore_file;
9525
9526 restore_data_t *rd = data.rd;
9527
9528 write_restore (new_restore_file, rd);
9529
9530 struct stat st;
9531
9532 memset (&st, 0, sizeof(st));
9533
9534 if (stat (eff_restore_file, &st) == 0)
9535 {
9536 if (unlink (eff_restore_file))
9537 {
9538 log_info ("WARN: Unlink file '%s': %s", eff_restore_file, strerror (errno));
9539 }
9540 }
9541
9542 if (rename (new_restore_file, eff_restore_file))
9543 {
9544 log_info ("WARN: Rename file '%s' to '%s': %s", new_restore_file, eff_restore_file, strerror (errno));
9545 }
9546 }
9547
9548 void check_checkpoint ()
9549 {
9550 // if (data.restore_disable == 1) break; (this is already implied by previous checks)
9551
9552 u64 words_cur = get_lowest_words_done ();
9553
9554 if (words_cur != data.checkpoint_cur_words)
9555 {
9556 myabort ();
9557 }
9558 }
9559
9560 /**
9561 * tuning db
9562 */
9563
9564 void tuning_db_destroy (tuning_db_t *tuning_db)
9565 {
9566 int i;
9567
9568 for (i = 0; i < tuning_db->alias_cnt; i++)
9569 {
9570 tuning_db_alias_t *alias = &tuning_db->alias_buf[i];
9571
9572 myfree (alias->device_name);
9573 myfree (alias->alias_name);
9574 }
9575
9576 for (i = 0; i < tuning_db->entry_cnt; i++)
9577 {
9578 tuning_db_entry_t *entry = &tuning_db->entry_buf[i];
9579
9580 myfree (entry->device_name);
9581 }
9582
9583 myfree (tuning_db->alias_buf);
9584 myfree (tuning_db->entry_buf);
9585
9586 myfree (tuning_db);
9587 }
9588
9589 tuning_db_t *tuning_db_alloc (FILE *fp)
9590 {
9591 tuning_db_t *tuning_db = (tuning_db_t *) mymalloc (sizeof (tuning_db_t));
9592
9593 int num_lines = count_lines (fp);
9594
9595 // a bit over-allocated
9596
9597 tuning_db->alias_buf = (tuning_db_alias_t *) mycalloc (num_lines + 1, sizeof (tuning_db_alias_t));
9598 tuning_db->alias_cnt = 0;
9599
9600 tuning_db->entry_buf = (tuning_db_entry_t *) mycalloc (num_lines + 1, sizeof (tuning_db_entry_t));
9601 tuning_db->entry_cnt = 0;
9602
9603 return tuning_db;
9604 }
9605
9606 tuning_db_t *tuning_db_init (const char *tuning_db_file)
9607 {
9608 FILE *fp = fopen (tuning_db_file, "rb");
9609
9610 if (fp == NULL)
9611 {
9612 log_error ("%s: %s", tuning_db_file, strerror (errno));
9613
9614 exit (-1);
9615 }
9616
9617 tuning_db_t *tuning_db = tuning_db_alloc (fp);
9618
9619 rewind (fp);
9620
9621 int line_num = 0;
9622
9623 char *buf = (char *) mymalloc (HCBUFSIZ);
9624
9625 while (!feof (fp))
9626 {
9627 char *line_buf = fgets (buf, HCBUFSIZ - 1, fp);
9628
9629 if (line_buf == NULL) break;
9630
9631 line_num++;
9632
9633 const int line_len = in_superchop (line_buf);
9634
9635 if (line_len == 0) continue;
9636
9637 if (line_buf[0] == '#') continue;
9638
9639 // start processing
9640
9641 char *token_ptr[7] = { NULL };
9642
9643 int token_cnt = 0;
9644
9645 char *next = strtok (line_buf, "\t ");
9646
9647 token_ptr[token_cnt] = next;
9648
9649 token_cnt++;
9650
9651 while ((next = strtok (NULL, "\t ")) != NULL)
9652 {
9653 token_ptr[token_cnt] = next;
9654
9655 token_cnt++;
9656 }
9657
9658 if (token_cnt == 2)
9659 {
9660 char *device_name = token_ptr[0];
9661 char *alias_name = token_ptr[1];
9662
9663 tuning_db_alias_t *alias = &tuning_db->alias_buf[tuning_db->alias_cnt];
9664
9665 alias->device_name = mystrdup (device_name);
9666 alias->alias_name = mystrdup (alias_name);
9667
9668 tuning_db->alias_cnt++;
9669 }
9670 else if (token_cnt == 6)
9671 {
9672 if ((token_ptr[1][0] != '0') &&
9673 (token_ptr[1][0] != '1') &&
9674 (token_ptr[1][0] != '3') &&
9675 (token_ptr[1][0] != '*'))
9676 {
9677 log_info ("WARNING: Tuning-db: Invalid attack_mode '%c' in Line '%u'", token_ptr[1][0], line_num);
9678
9679 continue;
9680 }
9681
9682 if ((token_ptr[3][0] != '1') &&
9683 (token_ptr[3][0] != '2') &&
9684 (token_ptr[3][0] != '4') &&
9685 (token_ptr[3][0] != '8') &&
9686 (token_ptr[3][0] != 'N'))
9687 {
9688 log_info ("WARNING: Tuning-db: Invalid vector_width '%c' in Line '%u'", token_ptr[3][0], line_num);
9689
9690 continue;
9691 }
9692
9693 char *device_name = token_ptr[0];
9694
9695 int attack_mode = -1;
9696 int hash_type = -1;
9697 int vector_width = -1;
9698 int kernel_accel = -1;
9699 int kernel_loops = -1;
9700
9701 if (token_ptr[1][0] != '*') attack_mode = atoi (token_ptr[1]);
9702 if (token_ptr[2][0] != '*') hash_type = atoi (token_ptr[2]);
9703 if (token_ptr[3][0] != 'N') vector_width = atoi (token_ptr[3]);
9704
9705 if (token_ptr[4][0] != 'A')
9706 {
9707 kernel_accel = atoi (token_ptr[4]);
9708
9709 if ((kernel_accel < 1) || (kernel_accel > 1024))
9710 {
9711 log_info ("WARNING: Tuning-db: Invalid kernel_accel '%d' in Line '%u'", kernel_accel, line_num);
9712
9713 continue;
9714 }
9715 }
9716 else
9717 {
9718 kernel_accel = 0;
9719 }
9720
9721 if (token_ptr[5][0] != 'A')
9722 {
9723 kernel_loops = atoi (token_ptr[5]);
9724
9725 if ((kernel_loops < 1) || (kernel_loops > 1024))
9726 {
9727 log_info ("WARNING: Tuning-db: Invalid kernel_loops '%d' in Line '%u'", kernel_loops, line_num);
9728
9729 continue;
9730 }
9731 }
9732 else
9733 {
9734 kernel_loops = 0;
9735 }
9736
9737 tuning_db_entry_t *entry = &tuning_db->entry_buf[tuning_db->entry_cnt];
9738
9739 entry->device_name = mystrdup (device_name);
9740 entry->attack_mode = attack_mode;
9741 entry->hash_type = hash_type;
9742 entry->vector_width = vector_width;
9743 entry->kernel_accel = kernel_accel;
9744 entry->kernel_loops = kernel_loops;
9745
9746 tuning_db->entry_cnt++;
9747 }
9748 else
9749 {
9750 log_info ("WARNING: Tuning-db: Invalid number of token in Line '%u'", line_num);
9751
9752 continue;
9753 }
9754 }
9755
9756 myfree (buf);
9757
9758 fclose (fp);
9759
9760 // todo: print loaded 'cnt' message
9761
9762 // sort the database
9763
9764 qsort (tuning_db->alias_buf, tuning_db->alias_cnt, sizeof (tuning_db_alias_t), sort_by_tuning_db_alias);
9765 qsort (tuning_db->entry_buf, tuning_db->entry_cnt, sizeof (tuning_db_entry_t), sort_by_tuning_db_entry);
9766
9767 return tuning_db;
9768 }
9769
9770 tuning_db_entry_t *tuning_db_search (tuning_db_t *tuning_db, hc_device_param_t *device_param, int attack_mode, int hash_type)
9771 {
9772 static tuning_db_entry_t s;
9773
9774 // first we need to convert all spaces in the device_name to underscore
9775
9776 char *device_name_nospace = strdup (device_param->device_name);
9777
9778 int device_name_length = strlen (device_name_nospace);
9779
9780 int i;
9781
9782 for (i = 0; i < device_name_length; i++)
9783 {
9784 if (device_name_nospace[i] == ' ') device_name_nospace[i] = '_';
9785 }
9786
9787 // find out if there's an alias configured
9788
9789 tuning_db_alias_t a;
9790
9791 a.device_name = device_name_nospace;
9792
9793 tuning_db_alias_t *alias = bsearch (&a, tuning_db->alias_buf, tuning_db->alias_cnt, sizeof (tuning_db_alias_t), sort_by_tuning_db_alias);
9794
9795 char *alias_name = (alias == NULL) ? NULL : alias->alias_name;
9796
9797 // attack-mode 6 and 7 are attack-mode 1 basically
9798
9799 if (attack_mode == 6) attack_mode = 1;
9800 if (attack_mode == 7) attack_mode = 1;
9801
9802 // bsearch is not ideal but fast enough
9803
9804 s.device_name = device_name_nospace;
9805 s.attack_mode = attack_mode;
9806 s.hash_type = hash_type;
9807
9808 tuning_db_entry_t *entry = NULL;
9809
9810 // this will produce all 2^3 combinations required
9811
9812 for (i = 0; i < 8; i++)
9813 {
9814 s.device_name = (i & 1) ? "*" : device_name_nospace;
9815 s.attack_mode = (i & 2) ? -1 : attack_mode;
9816 s.hash_type = (i & 4) ? -1 : hash_type;
9817
9818 entry = bsearch (&s, tuning_db->entry_buf, tuning_db->entry_cnt, sizeof (tuning_db_entry_t), sort_by_tuning_db_entry);
9819
9820 if (entry != NULL) break;
9821
9822 // in non-wildcard mode do some additional checks:
9823
9824 if ((i & 1) == 0)
9825 {
9826 // in case we have an alias-name
9827
9828 if (alias_name != NULL)
9829 {
9830 s.device_name = alias_name;
9831
9832 entry = bsearch (&s, tuning_db->entry_buf, tuning_db->entry_cnt, sizeof (tuning_db_entry_t), sort_by_tuning_db_entry);
9833
9834 if (entry != NULL) break;
9835 }
9836
9837 // or by device type
9838
9839 if (device_param->device_type & CL_DEVICE_TYPE_CPU)
9840 {
9841 s.device_name = "DEVICE_TYPE_CPU";
9842 }
9843 else if (device_param->device_type & CL_DEVICE_TYPE_GPU)
9844 {
9845 s.device_name = "DEVICE_TYPE_GPU";
9846 }
9847 else if (device_param->device_type & CL_DEVICE_TYPE_ACCELERATOR)
9848 {
9849 s.device_name = "DEVICE_TYPE_ACCELERATOR";
9850 }
9851
9852 entry = bsearch (&s, tuning_db->entry_buf, tuning_db->entry_cnt, sizeof (tuning_db_entry_t), sort_by_tuning_db_entry);
9853
9854 if (entry != NULL) break;
9855 }
9856 }
9857
9858 // free converted device_name
9859
9860 myfree (device_name_nospace);
9861
9862 return entry;
9863 }
9864
9865 /**
9866 * parser
9867 */
9868
9869 uint parse_and_store_salt (char *out, char *in, uint salt_len)
9870 {
9871 u8 tmp[256] = { 0 };
9872
9873 if (salt_len > sizeof (tmp))
9874 {
9875 return UINT_MAX;
9876 }
9877
9878 memcpy (tmp, in, salt_len);
9879
9880 if (data.opts_type & OPTS_TYPE_ST_HEX)
9881 {
9882 if ((salt_len % 2) == 0)
9883 {
9884 u32 new_salt_len = salt_len / 2;
9885
9886 for (uint i = 0, j = 0; i < new_salt_len; i += 1, j += 2)
9887 {
9888 u8 p0 = tmp[j + 0];
9889 u8 p1 = tmp[j + 1];
9890
9891 tmp[i] = hex_convert (p1) << 0;
9892 tmp[i] |= hex_convert (p0) << 4;
9893 }
9894
9895 salt_len = new_salt_len;
9896 }
9897 else
9898 {
9899 return UINT_MAX;
9900 }
9901 }
9902 else if (data.opts_type & OPTS_TYPE_ST_BASE64)
9903 {
9904 salt_len = base64_decode (base64_to_int, (const u8 *) in, salt_len, (u8 *) tmp);
9905 }
9906
9907 memset (tmp + salt_len, 0, sizeof (tmp) - salt_len);
9908
9909 if (data.opts_type & OPTS_TYPE_ST_UNICODE)
9910 {
9911 if (salt_len < 20)
9912 {
9913 u32 *tmp_uint = (u32 *) tmp;
9914
9915 tmp_uint[9] = ((tmp_uint[4] >> 8) & 0x00FF0000) | ((tmp_uint[4] >> 16) & 0x000000FF);
9916 tmp_uint[8] = ((tmp_uint[4] << 8) & 0x00FF0000) | ((tmp_uint[4] >> 0) & 0x000000FF);
9917 tmp_uint[7] = ((tmp_uint[3] >> 8) & 0x00FF0000) | ((tmp_uint[3] >> 16) & 0x000000FF);
9918 tmp_uint[6] = ((tmp_uint[3] << 8) & 0x00FF0000) | ((tmp_uint[3] >> 0) & 0x000000FF);
9919 tmp_uint[5] = ((tmp_uint[2] >> 8) & 0x00FF0000) | ((tmp_uint[2] >> 16) & 0x000000FF);
9920 tmp_uint[4] = ((tmp_uint[2] << 8) & 0x00FF0000) | ((tmp_uint[2] >> 0) & 0x000000FF);
9921 tmp_uint[3] = ((tmp_uint[1] >> 8) & 0x00FF0000) | ((tmp_uint[1] >> 16) & 0x000000FF);
9922 tmp_uint[2] = ((tmp_uint[1] << 8) & 0x00FF0000) | ((tmp_uint[1] >> 0) & 0x000000FF);
9923 tmp_uint[1] = ((tmp_uint[0] >> 8) & 0x00FF0000) | ((tmp_uint[0] >> 16) & 0x000000FF);
9924 tmp_uint[0] = ((tmp_uint[0] << 8) & 0x00FF0000) | ((tmp_uint[0] >> 0) & 0x000000FF);
9925
9926 salt_len = salt_len * 2;
9927 }
9928 else
9929 {
9930 return UINT_MAX;
9931 }
9932 }
9933
9934 if (data.opts_type & OPTS_TYPE_ST_LOWER)
9935 {
9936 lowercase (tmp, salt_len);
9937 }
9938
9939 if (data.opts_type & OPTS_TYPE_ST_UPPER)
9940 {
9941 uppercase (tmp, salt_len);
9942 }
9943
9944 u32 len = salt_len;
9945
9946 if (data.opts_type & OPTS_TYPE_ST_ADD80)
9947 {
9948 tmp[len++] = 0x80;
9949 }
9950
9951 if (data.opts_type & OPTS_TYPE_ST_ADD01)
9952 {
9953 tmp[len++] = 0x01;
9954 }
9955
9956 if (data.opts_type & OPTS_TYPE_ST_GENERATE_LE)
9957 {
9958 u32 *tmp_uint = (uint *) tmp;
9959
9960 u32 max = len / 4;
9961
9962 if (len % 4) max++;
9963
9964 for (u32 i = 0; i < max; i++)
9965 {
9966 tmp_uint[i] = byte_swap_32 (tmp_uint[i]);
9967 }
9968
9969 // Important: we may need to increase the length of memcpy since
9970 // we don't want to "loose" some swapped bytes (could happen if
9971 // they do not perfectly fit in the 4-byte blocks)
9972 // Memcpy does always copy the bytes in the BE order, but since
9973 // we swapped them, some important bytes could be in positions
9974 // we normally skip with the original len
9975
9976 if (len % 4) len += 4 - (len % 4);
9977 }
9978
9979 memcpy (out, tmp, len);
9980
9981 return (salt_len);
9982 }
9983
9984 int bcrypt_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
9985 {
9986 if ((input_len < DISPLAY_LEN_MIN_3200) || (input_len > DISPLAY_LEN_MAX_3200)) return (PARSER_GLOBAL_LENGTH);
9987
9988 if ((memcmp (SIGNATURE_BCRYPT1, input_buf, 4)) && (memcmp (SIGNATURE_BCRYPT2, input_buf, 4)) && (memcmp (SIGNATURE_BCRYPT3, input_buf, 4))) return (PARSER_SIGNATURE_UNMATCHED);
9989
9990 u32 *digest = (u32 *) hash_buf->digest;
9991
9992 salt_t *salt = hash_buf->salt;
9993
9994 memcpy ((char *) salt->salt_sign, input_buf, 6);
9995
9996 char *iter_pos = input_buf + 4;
9997
9998 salt->salt_iter = 1 << atoi (iter_pos);
9999
10000 char *salt_pos = strchr (iter_pos, '$');
10001
10002 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
10003
10004 salt_pos++;
10005
10006 uint salt_len = 16;
10007
10008 salt->salt_len = salt_len;
10009
10010 u8 tmp_buf[100] = { 0 };
10011
10012 base64_decode (bf64_to_int, (const u8 *) salt_pos, 22, tmp_buf);
10013
10014 char *salt_buf_ptr = (char *) salt->salt_buf;
10015
10016 memcpy (salt_buf_ptr, tmp_buf, 16);
10017
10018 salt->salt_buf[0] = byte_swap_32 (salt->salt_buf[0]);
10019 salt->salt_buf[1] = byte_swap_32 (salt->salt_buf[1]);
10020 salt->salt_buf[2] = byte_swap_32 (salt->salt_buf[2]);
10021 salt->salt_buf[3] = byte_swap_32 (salt->salt_buf[3]);
10022
10023 char *hash_pos = salt_pos + 22;
10024
10025 memset (tmp_buf, 0, sizeof (tmp_buf));
10026
10027 base64_decode (bf64_to_int, (const u8 *) hash_pos, 31, tmp_buf);
10028
10029 memcpy (digest, tmp_buf, 24);
10030
10031 digest[0] = byte_swap_32 (digest[0]);
10032 digest[1] = byte_swap_32 (digest[1]);
10033 digest[2] = byte_swap_32 (digest[2]);
10034 digest[3] = byte_swap_32 (digest[3]);
10035 digest[4] = byte_swap_32 (digest[4]);
10036 digest[5] = byte_swap_32 (digest[5]);
10037
10038 digest[5] &= ~0xff; // its just 23 not 24 !
10039
10040 return (PARSER_OK);
10041 }
10042
10043 int cisco4_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10044 {
10045 if ((input_len < DISPLAY_LEN_MIN_5700) || (input_len > DISPLAY_LEN_MAX_5700)) return (PARSER_GLOBAL_LENGTH);
10046
10047 u32 *digest = (u32 *) hash_buf->digest;
10048
10049 u8 tmp_buf[100] = { 0 };
10050
10051 base64_decode (itoa64_to_int, (const u8 *) input_buf, 43, tmp_buf);
10052
10053 memcpy (digest, tmp_buf, 32);
10054
10055 digest[0] = byte_swap_32 (digest[0]);
10056 digest[1] = byte_swap_32 (digest[1]);
10057 digest[2] = byte_swap_32 (digest[2]);
10058 digest[3] = byte_swap_32 (digest[3]);
10059 digest[4] = byte_swap_32 (digest[4]);
10060 digest[5] = byte_swap_32 (digest[5]);
10061 digest[6] = byte_swap_32 (digest[6]);
10062 digest[7] = byte_swap_32 (digest[7]);
10063
10064 digest[0] -= SHA256M_A;
10065 digest[1] -= SHA256M_B;
10066 digest[2] -= SHA256M_C;
10067 digest[3] -= SHA256M_D;
10068 digest[4] -= SHA256M_E;
10069 digest[5] -= SHA256M_F;
10070 digest[6] -= SHA256M_G;
10071 digest[7] -= SHA256M_H;
10072
10073 return (PARSER_OK);
10074 }
10075
10076 int lm_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10077 {
10078 if ((input_len < DISPLAY_LEN_MIN_3000) || (input_len > DISPLAY_LEN_MAX_3000)) return (PARSER_GLOBAL_LENGTH);
10079
10080 u32 *digest = (u32 *) hash_buf->digest;
10081
10082 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
10083 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
10084
10085 digest[0] = byte_swap_32 (digest[0]);
10086 digest[1] = byte_swap_32 (digest[1]);
10087
10088 uint tt;
10089
10090 IP (digest[0], digest[1], tt);
10091
10092 digest[0] = digest[0];
10093 digest[1] = digest[1];
10094 digest[2] = 0;
10095 digest[3] = 0;
10096
10097 return (PARSER_OK);
10098 }
10099
10100 int arubaos_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10101 {
10102 if ((input_len < DISPLAY_LEN_MIN_125) || (input_len > DISPLAY_LEN_MAX_125)) return (PARSER_GLOBAL_LENGTH);
10103
10104 if ((input_buf[8] != '0') || (input_buf[9] != '1')) return (PARSER_SIGNATURE_UNMATCHED);
10105
10106 u32 *digest = (u32 *) hash_buf->digest;
10107
10108 salt_t *salt = hash_buf->salt;
10109
10110 char *hash_pos = input_buf + 10;
10111
10112 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
10113 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
10114 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
10115 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
10116 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
10117
10118 digest[0] -= SHA1M_A;
10119 digest[1] -= SHA1M_B;
10120 digest[2] -= SHA1M_C;
10121 digest[3] -= SHA1M_D;
10122 digest[4] -= SHA1M_E;
10123
10124 uint salt_len = 10;
10125
10126 char *salt_buf_ptr = (char *) salt->salt_buf;
10127
10128 salt_len = parse_and_store_salt (salt_buf_ptr, input_buf, salt_len);
10129
10130 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
10131
10132 salt->salt_len = salt_len;
10133
10134 return (PARSER_OK);
10135 }
10136
10137 int osx1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10138 {
10139 if ((input_len < DISPLAY_LEN_MIN_122) || (input_len > DISPLAY_LEN_MAX_122)) return (PARSER_GLOBAL_LENGTH);
10140
10141 u32 *digest = (u32 *) hash_buf->digest;
10142
10143 salt_t *salt = hash_buf->salt;
10144
10145 char *hash_pos = input_buf + 8;
10146
10147 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
10148 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
10149 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
10150 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
10151 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
10152
10153 digest[0] -= SHA1M_A;
10154 digest[1] -= SHA1M_B;
10155 digest[2] -= SHA1M_C;
10156 digest[3] -= SHA1M_D;
10157 digest[4] -= SHA1M_E;
10158
10159 uint salt_len = 8;
10160
10161 char *salt_buf_ptr = (char *) salt->salt_buf;
10162
10163 salt_len = parse_and_store_salt (salt_buf_ptr, input_buf, salt_len);
10164
10165 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
10166
10167 salt->salt_len = salt_len;
10168
10169 return (PARSER_OK);
10170 }
10171
10172 int osx512_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10173 {
10174 if ((input_len < DISPLAY_LEN_MIN_1722) || (input_len > DISPLAY_LEN_MAX_1722)) return (PARSER_GLOBAL_LENGTH);
10175
10176 u64 *digest = (u64 *) hash_buf->digest;
10177
10178 salt_t *salt = hash_buf->salt;
10179
10180 char *hash_pos = input_buf + 8;
10181
10182 digest[0] = hex_to_u64 ((const u8 *) &hash_pos[ 0]);
10183 digest[1] = hex_to_u64 ((const u8 *) &hash_pos[ 16]);
10184 digest[2] = hex_to_u64 ((const u8 *) &hash_pos[ 32]);
10185 digest[3] = hex_to_u64 ((const u8 *) &hash_pos[ 48]);
10186 digest[4] = hex_to_u64 ((const u8 *) &hash_pos[ 64]);
10187 digest[5] = hex_to_u64 ((const u8 *) &hash_pos[ 80]);
10188 digest[6] = hex_to_u64 ((const u8 *) &hash_pos[ 96]);
10189 digest[7] = hex_to_u64 ((const u8 *) &hash_pos[112]);
10190
10191 digest[0] -= SHA512M_A;
10192 digest[1] -= SHA512M_B;
10193 digest[2] -= SHA512M_C;
10194 digest[3] -= SHA512M_D;
10195 digest[4] -= SHA512M_E;
10196 digest[5] -= SHA512M_F;
10197 digest[6] -= SHA512M_G;
10198 digest[7] -= SHA512M_H;
10199
10200 uint salt_len = 8;
10201
10202 char *salt_buf_ptr = (char *) salt->salt_buf;
10203
10204 salt_len = parse_and_store_salt (salt_buf_ptr, input_buf, salt_len);
10205
10206 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
10207
10208 salt->salt_len = salt_len;
10209
10210 return (PARSER_OK);
10211 }
10212
10213 int osc_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10214 {
10215 if (data.opts_type & OPTS_TYPE_ST_HEX)
10216 {
10217 if ((input_len < DISPLAY_LEN_MIN_21H) || (input_len > DISPLAY_LEN_MAX_21H)) return (PARSER_GLOBAL_LENGTH);
10218 }
10219 else
10220 {
10221 if ((input_len < DISPLAY_LEN_MIN_21) || (input_len > DISPLAY_LEN_MAX_21)) return (PARSER_GLOBAL_LENGTH);
10222 }
10223
10224 u32 *digest = (u32 *) hash_buf->digest;
10225
10226 salt_t *salt = hash_buf->salt;
10227
10228 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
10229 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
10230 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
10231 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
10232
10233 digest[0] = byte_swap_32 (digest[0]);
10234 digest[1] = byte_swap_32 (digest[1]);
10235 digest[2] = byte_swap_32 (digest[2]);
10236 digest[3] = byte_swap_32 (digest[3]);
10237
10238 digest[0] -= MD5M_A;
10239 digest[1] -= MD5M_B;
10240 digest[2] -= MD5M_C;
10241 digest[3] -= MD5M_D;
10242
10243 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
10244
10245 uint salt_len = input_len - 32 - 1;
10246
10247 char *salt_buf = input_buf + 32 + 1;
10248
10249 char *salt_buf_ptr = (char *) salt->salt_buf;
10250
10251 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
10252
10253 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
10254
10255 salt->salt_len = salt_len;
10256
10257 return (PARSER_OK);
10258 }
10259
10260 int netscreen_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10261 {
10262 if (data.opts_type & OPTS_TYPE_ST_HEX)
10263 {
10264 if ((input_len < DISPLAY_LEN_MIN_22H) || (input_len > DISPLAY_LEN_MAX_22H)) return (PARSER_GLOBAL_LENGTH);
10265 }
10266 else
10267 {
10268 if ((input_len < DISPLAY_LEN_MIN_22) || (input_len > DISPLAY_LEN_MAX_22)) return (PARSER_GLOBAL_LENGTH);
10269 }
10270
10271 // unscramble
10272
10273 char clean_input_buf[32] = { 0 };
10274
10275 char sig[6] = { 'n', 'r', 'c', 's', 't', 'n' };
10276 int pos[6] = { 0, 6, 12, 17, 23, 29 };
10277
10278 for (int i = 0, j = 0, k = 0; i < 30; i++)
10279 {
10280 if (i == pos[j])
10281 {
10282 if (sig[j] != input_buf[i]) return (PARSER_SIGNATURE_UNMATCHED);
10283
10284 j++;
10285 }
10286 else
10287 {
10288 clean_input_buf[k] = input_buf[i];
10289
10290 k++;
10291 }
10292 }
10293
10294 // base64 decode
10295
10296 u32 *digest = (u32 *) hash_buf->digest;
10297
10298 salt_t *salt = hash_buf->salt;
10299
10300 u32 a, b, c, d, e, f;
10301
10302 a = base64_to_int (clean_input_buf[ 0] & 0x7f);
10303 b = base64_to_int (clean_input_buf[ 1] & 0x7f);
10304 c = base64_to_int (clean_input_buf[ 2] & 0x7f);
10305 d = base64_to_int (clean_input_buf[ 3] & 0x7f);
10306 e = base64_to_int (clean_input_buf[ 4] & 0x7f);
10307 f = base64_to_int (clean_input_buf[ 5] & 0x7f);
10308
10309 digest[0] = (((a << 12) | (b << 6) | (c)) << 16)
10310 | (((d << 12) | (e << 6) | (f)) << 0);
10311
10312 a = base64_to_int (clean_input_buf[ 6] & 0x7f);
10313 b = base64_to_int (clean_input_buf[ 7] & 0x7f);
10314 c = base64_to_int (clean_input_buf[ 8] & 0x7f);
10315 d = base64_to_int (clean_input_buf[ 9] & 0x7f);
10316 e = base64_to_int (clean_input_buf[10] & 0x7f);
10317 f = base64_to_int (clean_input_buf[11] & 0x7f);
10318
10319 digest[1] = (((a << 12) | (b << 6) | (c)) << 16)
10320 | (((d << 12) | (e << 6) | (f)) << 0);
10321
10322 a = base64_to_int (clean_input_buf[12] & 0x7f);
10323 b = base64_to_int (clean_input_buf[13] & 0x7f);
10324 c = base64_to_int (clean_input_buf[14] & 0x7f);
10325 d = base64_to_int (clean_input_buf[15] & 0x7f);
10326 e = base64_to_int (clean_input_buf[16] & 0x7f);
10327 f = base64_to_int (clean_input_buf[17] & 0x7f);
10328
10329 digest[2] = (((a << 12) | (b << 6) | (c)) << 16)
10330 | (((d << 12) | (e << 6) | (f)) << 0);
10331
10332 a = base64_to_int (clean_input_buf[18] & 0x7f);
10333 b = base64_to_int (clean_input_buf[19] & 0x7f);
10334 c = base64_to_int (clean_input_buf[20] & 0x7f);
10335 d = base64_to_int (clean_input_buf[21] & 0x7f);
10336 e = base64_to_int (clean_input_buf[22] & 0x7f);
10337 f = base64_to_int (clean_input_buf[23] & 0x7f);
10338
10339 digest[3] = (((a << 12) | (b << 6) | (c)) << 16)
10340 | (((d << 12) | (e << 6) | (f)) << 0);
10341
10342 digest[0] = byte_swap_32 (digest[0]);
10343 digest[1] = byte_swap_32 (digest[1]);
10344 digest[2] = byte_swap_32 (digest[2]);
10345 digest[3] = byte_swap_32 (digest[3]);
10346
10347 digest[0] -= MD5M_A;
10348 digest[1] -= MD5M_B;
10349 digest[2] -= MD5M_C;
10350 digest[3] -= MD5M_D;
10351
10352 if (input_buf[30] != ':') return (PARSER_SEPARATOR_UNMATCHED);
10353
10354 uint salt_len = input_len - 30 - 1;
10355
10356 char *salt_buf = input_buf + 30 + 1;
10357
10358 char *salt_buf_ptr = (char *) salt->salt_buf;
10359
10360 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
10361
10362 // max. salt length: 55 (max for MD5) - 22 (":Administration Tools:") - 1 (0x80) = 32
10363 // 32 - 4 bytes (to fit w0lr for all attack modes) = 28
10364
10365 if (salt_len > 28) return (PARSER_SALT_LENGTH);
10366
10367 salt->salt_len = salt_len;
10368
10369 memcpy (salt_buf_ptr + salt_len, ":Administration Tools:", 22);
10370
10371 salt->salt_len += 22;
10372
10373 return (PARSER_OK);
10374 }
10375
10376 int smf_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10377 {
10378 if (data.opts_type & OPTS_TYPE_ST_HEX)
10379 {
10380 if ((input_len < DISPLAY_LEN_MIN_121H) || (input_len > DISPLAY_LEN_MAX_121H)) return (PARSER_GLOBAL_LENGTH);
10381 }
10382 else
10383 {
10384 if ((input_len < DISPLAY_LEN_MIN_121) || (input_len > DISPLAY_LEN_MAX_121)) return (PARSER_GLOBAL_LENGTH);
10385 }
10386
10387 u32 *digest = (u32 *) hash_buf->digest;
10388
10389 salt_t *salt = hash_buf->salt;
10390
10391 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
10392 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
10393 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
10394 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
10395 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
10396
10397 digest[0] -= SHA1M_A;
10398 digest[1] -= SHA1M_B;
10399 digest[2] -= SHA1M_C;
10400 digest[3] -= SHA1M_D;
10401 digest[4] -= SHA1M_E;
10402
10403 if (input_buf[40] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
10404
10405 uint salt_len = input_len - 40 - 1;
10406
10407 char *salt_buf = input_buf + 40 + 1;
10408
10409 char *salt_buf_ptr = (char *) salt->salt_buf;
10410
10411 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
10412
10413 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
10414
10415 salt->salt_len = salt_len;
10416
10417 return (PARSER_OK);
10418 }
10419
10420 int dcc2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10421 {
10422 if (data.opts_type & OPTS_TYPE_ST_HEX)
10423 {
10424 if ((input_len < DISPLAY_LEN_MIN_2100H) || (input_len > DISPLAY_LEN_MAX_2100H)) return (PARSER_GLOBAL_LENGTH);
10425 }
10426 else
10427 {
10428 if ((input_len < DISPLAY_LEN_MIN_2100) || (input_len > DISPLAY_LEN_MAX_2100)) return (PARSER_GLOBAL_LENGTH);
10429 }
10430
10431 if (memcmp (SIGNATURE_DCC2, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
10432
10433 char *iter_pos = input_buf + 6;
10434
10435 salt_t *salt = hash_buf->salt;
10436
10437 uint iter = atoi (iter_pos);
10438
10439 if (iter < 1)
10440 {
10441 iter = ROUNDS_DCC2;
10442 }
10443
10444 salt->salt_iter = iter - 1;
10445
10446 char *salt_pos = strchr (iter_pos, '#');
10447
10448 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
10449
10450 salt_pos++;
10451
10452 char *digest_pos = strchr (salt_pos, '#');
10453
10454 if (digest_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
10455
10456 digest_pos++;
10457
10458 uint salt_len = digest_pos - salt_pos - 1;
10459
10460 u32 *digest = (u32 *) hash_buf->digest;
10461
10462 digest[0] = hex_to_u32 ((const u8 *) &digest_pos[ 0]);
10463 digest[1] = hex_to_u32 ((const u8 *) &digest_pos[ 8]);
10464 digest[2] = hex_to_u32 ((const u8 *) &digest_pos[16]);
10465 digest[3] = hex_to_u32 ((const u8 *) &digest_pos[24]);
10466
10467 char *salt_buf_ptr = (char *) salt->salt_buf;
10468
10469 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
10470
10471 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
10472
10473 salt->salt_len = salt_len;
10474
10475 return (PARSER_OK);
10476 }
10477
10478 int wpa_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10479 {
10480 u32 *digest = (u32 *) hash_buf->digest;
10481
10482 salt_t *salt = hash_buf->salt;
10483
10484 wpa_t *wpa = (wpa_t *) hash_buf->esalt;
10485
10486 hccap_t in;
10487
10488 memcpy (&in, input_buf, input_len);
10489
10490 if (in.eapol_size < 1 || in.eapol_size > 255) return (PARSER_HCCAP_EAPOL_SIZE);
10491
10492 memcpy (digest, in.keymic, 16);
10493
10494 /*
10495 http://www.one-net.eu/jsw/j_sec/m_ptype.html
10496 The phrase "Pairwise key expansion"
10497 Access Point Address (referred to as Authenticator Address AA)
10498 Supplicant Address (referred to as Supplicant Address SA)
10499 Access Point Nonce (referred to as Authenticator Anonce)
10500 Wireless Device Nonce (referred to as Supplicant Nonce Snonce)
10501 */
10502
10503 uint salt_len = strlen (in.essid);
10504
10505 if (salt_len > 36)
10506 {
10507 log_info ("WARNING: The ESSID length is too long, the hccap file may be invalid or corrupted");
10508
10509 return (PARSER_SALT_LENGTH);
10510 }
10511
10512 memcpy (salt->salt_buf, in.essid, salt_len);
10513
10514 salt->salt_len = salt_len;
10515
10516 salt->salt_iter = ROUNDS_WPA2 - 1;
10517
10518 unsigned char *pke_ptr = (unsigned char *) wpa->pke;
10519
10520 memcpy (pke_ptr, "Pairwise key expansion", 23);
10521
10522 if (memcmp (in.mac1, in.mac2, 6) < 0)
10523 {
10524 memcpy (pke_ptr + 23, in.mac1, 6);
10525 memcpy (pke_ptr + 29, in.mac2, 6);
10526 }
10527 else
10528 {
10529 memcpy (pke_ptr + 23, in.mac2, 6);
10530 memcpy (pke_ptr + 29, in.mac1, 6);
10531 }
10532
10533 if (memcmp (in.nonce1, in.nonce2, 32) < 0)
10534 {
10535 memcpy (pke_ptr + 35, in.nonce1, 32);
10536 memcpy (pke_ptr + 67, in.nonce2, 32);
10537 }
10538 else
10539 {
10540 memcpy (pke_ptr + 35, in.nonce2, 32);
10541 memcpy (pke_ptr + 67, in.nonce1, 32);
10542 }
10543
10544 for (int i = 0; i < 25; i++)
10545 {
10546 wpa->pke[i] = byte_swap_32 (wpa->pke[i]);
10547 }
10548
10549 memcpy (wpa->orig_mac1, in.mac1, 6);
10550 memcpy (wpa->orig_mac2, in.mac2, 6);
10551 memcpy (wpa->orig_nonce1, in.nonce1, 32);
10552 memcpy (wpa->orig_nonce2, in.nonce2, 32);
10553
10554 wpa->keyver = in.keyver;
10555
10556 if (wpa->keyver > 255)
10557 {
10558 log_info ("ATTENTION!");
10559 log_info (" The WPA/WPA2 key version in your .hccap file is invalid!");
10560 log_info (" This could be due to a recent aircrack-ng bug.");
10561 log_info (" The key version was automatically reset to a reasonable value.");
10562 log_info ("");
10563
10564 wpa->keyver &= 0xff;
10565 }
10566
10567 wpa->eapol_size = in.eapol_size;
10568
10569 unsigned char *eapol_ptr = (unsigned char *) wpa->eapol;
10570
10571 memcpy (eapol_ptr, in.eapol, wpa->eapol_size);
10572
10573 memset (eapol_ptr + wpa->eapol_size, 0, 256 - wpa->eapol_size);
10574
10575 eapol_ptr[wpa->eapol_size] = (unsigned char) 0x80;
10576
10577 if (wpa->keyver == 1)
10578 {
10579 // nothing to do
10580 }
10581 else
10582 {
10583 digest[0] = byte_swap_32 (digest[0]);
10584 digest[1] = byte_swap_32 (digest[1]);
10585 digest[2] = byte_swap_32 (digest[2]);
10586 digest[3] = byte_swap_32 (digest[3]);
10587
10588 for (int i = 0; i < 64; i++)
10589 {
10590 wpa->eapol[i] = byte_swap_32 (wpa->eapol[i]);
10591 }
10592 }
10593
10594 uint32_t *p0 = (uint32_t *) in.essid;
10595 uint32_t c0 = 0;
10596 uint32_t c1 = 0;
10597
10598 for (uint i = 0; i < sizeof (in.essid) / sizeof (uint32_t); i++) c0 ^= *p0++;
10599 for (uint i = 0; i < sizeof (wpa->pke) / sizeof (wpa->pke[0]); i++) c1 ^= wpa->pke[i];
10600
10601 salt->salt_buf[10] = c0;
10602 salt->salt_buf[11] = c1;
10603
10604 return (PARSER_OK);
10605 }
10606
10607 int psafe2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10608 {
10609 u32 *digest = (u32 *) hash_buf->digest;
10610
10611 salt_t *salt = hash_buf->salt;
10612
10613 if (input_len == 0)
10614 {
10615 log_error ("Password Safe v2 container not specified");
10616
10617 exit (-1);
10618 }
10619
10620 FILE *fp = fopen (input_buf, "rb");
10621
10622 if (fp == NULL)
10623 {
10624 log_error ("%s: %s", input_buf, strerror (errno));
10625
10626 exit (-1);
10627 }
10628
10629 psafe2_hdr buf;
10630
10631 memset (&buf, 0, sizeof (psafe2_hdr));
10632
10633 int n = fread (&buf, sizeof (psafe2_hdr), 1, fp);
10634
10635 fclose (fp);
10636
10637 if (n != 1) return (PARSER_PSAFE2_FILE_SIZE);
10638
10639 salt->salt_buf[0] = buf.random[0];
10640 salt->salt_buf[1] = buf.random[1];
10641
10642 salt->salt_len = 8;
10643 salt->salt_iter = 1000;
10644
10645 digest[0] = byte_swap_32 (buf.hash[0]);
10646 digest[1] = byte_swap_32 (buf.hash[1]);
10647 digest[2] = byte_swap_32 (buf.hash[2]);
10648 digest[3] = byte_swap_32 (buf.hash[3]);
10649 digest[4] = byte_swap_32 (buf.hash[4]);
10650
10651 return (PARSER_OK);
10652 }
10653
10654 int psafe3_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10655 {
10656 u32 *digest = (u32 *) hash_buf->digest;
10657
10658 salt_t *salt = hash_buf->salt;
10659
10660 if (input_len == 0)
10661 {
10662 log_error (".psafe3 not specified");
10663
10664 exit (-1);
10665 }
10666
10667 FILE *fp = fopen (input_buf, "rb");
10668
10669 if (fp == NULL)
10670 {
10671 log_error ("%s: %s", input_buf, strerror (errno));
10672
10673 exit (-1);
10674 }
10675
10676 psafe3_t in;
10677
10678 int n = fread (&in, sizeof (psafe3_t), 1, fp);
10679
10680 fclose (fp);
10681
10682 data.hashfile = input_buf; // we will need this in case it gets cracked
10683
10684 if (memcmp (SIGNATURE_PSAFE3, in.signature, 4)) return (PARSER_SIGNATURE_UNMATCHED);
10685
10686 if (n != 1) return (PARSER_PSAFE3_FILE_SIZE);
10687
10688 salt->salt_iter = in.iterations + 1;
10689
10690 salt->salt_buf[0] = in.salt_buf[0];
10691 salt->salt_buf[1] = in.salt_buf[1];
10692 salt->salt_buf[2] = in.salt_buf[2];
10693 salt->salt_buf[3] = in.salt_buf[3];
10694 salt->salt_buf[4] = in.salt_buf[4];
10695 salt->salt_buf[5] = in.salt_buf[5];
10696 salt->salt_buf[6] = in.salt_buf[6];
10697 salt->salt_buf[7] = in.salt_buf[7];
10698
10699 salt->salt_len = 32;
10700
10701 digest[0] = in.hash_buf[0];
10702 digest[1] = in.hash_buf[1];
10703 digest[2] = in.hash_buf[2];
10704 digest[3] = in.hash_buf[3];
10705 digest[4] = in.hash_buf[4];
10706 digest[5] = in.hash_buf[5];
10707 digest[6] = in.hash_buf[6];
10708 digest[7] = in.hash_buf[7];
10709
10710 digest[0] = byte_swap_32 (digest[0]);
10711 digest[1] = byte_swap_32 (digest[1]);
10712 digest[2] = byte_swap_32 (digest[2]);
10713 digest[3] = byte_swap_32 (digest[3]);
10714 digest[4] = byte_swap_32 (digest[4]);
10715 digest[5] = byte_swap_32 (digest[5]);
10716 digest[6] = byte_swap_32 (digest[6]);
10717 digest[7] = byte_swap_32 (digest[7]);
10718
10719 return (PARSER_OK);
10720 }
10721
10722 int phpass_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10723 {
10724 if ((input_len < DISPLAY_LEN_MIN_400) || (input_len > DISPLAY_LEN_MAX_400)) return (PARSER_GLOBAL_LENGTH);
10725
10726 if ((memcmp (SIGNATURE_PHPASS1, input_buf, 3)) && (memcmp (SIGNATURE_PHPASS2, input_buf, 3))) return (PARSER_SIGNATURE_UNMATCHED);
10727
10728 u32 *digest = (u32 *) hash_buf->digest;
10729
10730 salt_t *salt = hash_buf->salt;
10731
10732 char *iter_pos = input_buf + 3;
10733
10734 uint salt_iter = 1 << itoa64_to_int (iter_pos[0]);
10735
10736 if (salt_iter > 0x80000000) return (PARSER_SALT_ITERATION);
10737
10738 memcpy ((char *) salt->salt_sign, input_buf, 4);
10739
10740 salt->salt_iter = salt_iter;
10741
10742 char *salt_pos = iter_pos + 1;
10743
10744 uint salt_len = 8;
10745
10746 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
10747
10748 salt->salt_len = salt_len;
10749
10750 char *hash_pos = salt_pos + salt_len;
10751
10752 phpass_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
10753
10754 return (PARSER_OK);
10755 }
10756
10757 int md5crypt_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10758 {
10759 if (input_len < DISPLAY_LEN_MIN_500) return (PARSER_GLOBAL_LENGTH);
10760
10761 if (memcmp (SIGNATURE_MD5CRYPT, input_buf, 3)) return (PARSER_SIGNATURE_UNMATCHED);
10762
10763 u32 *digest = (u32 *) hash_buf->digest;
10764
10765 salt_t *salt = hash_buf->salt;
10766
10767 char *salt_pos = input_buf + 3;
10768
10769 uint iterations_len = 0;
10770
10771 if (memcmp (salt_pos, "rounds=", 7) == 0)
10772 {
10773 salt_pos += 7;
10774
10775 for (iterations_len = 0; salt_pos[0] >= '0' && salt_pos[0] <= '9' && iterations_len < 7; iterations_len++, salt_pos += 1) continue;
10776
10777 if (iterations_len == 0 ) return (PARSER_SALT_ITERATION);
10778 if (salt_pos[0] != '$') return (PARSER_SIGNATURE_UNMATCHED);
10779
10780 salt_pos[0] = 0x0;
10781
10782 salt->salt_iter = atoi (salt_pos - iterations_len);
10783
10784 salt_pos += 1;
10785
10786 iterations_len += 8;
10787 }
10788 else
10789 {
10790 salt->salt_iter = ROUNDS_MD5CRYPT;
10791 }
10792
10793 if (input_len > (DISPLAY_LEN_MAX_500 + iterations_len)) return (PARSER_GLOBAL_LENGTH);
10794
10795 char *hash_pos = strchr (salt_pos, '$');
10796
10797 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
10798
10799 uint salt_len = hash_pos - salt_pos;
10800
10801 if (salt_len > 8) return (PARSER_SALT_LENGTH);
10802
10803 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
10804
10805 salt->salt_len = salt_len;
10806
10807 hash_pos++;
10808
10809 uint hash_len = input_len - 3 - iterations_len - salt_len - 1;
10810
10811 if (hash_len != 22) return (PARSER_HASH_LENGTH);
10812
10813 md5crypt_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
10814
10815 return (PARSER_OK);
10816 }
10817
10818 int md5apr1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10819 {
10820 if (memcmp (SIGNATURE_MD5APR1, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
10821
10822 u32 *digest = (u32 *) hash_buf->digest;
10823
10824 salt_t *salt = hash_buf->salt;
10825
10826 char *salt_pos = input_buf + 6;
10827
10828 uint iterations_len = 0;
10829
10830 if (memcmp (salt_pos, "rounds=", 7) == 0)
10831 {
10832 salt_pos += 7;
10833
10834 for (iterations_len = 0; salt_pos[0] >= '0' && salt_pos[0] <= '9' && iterations_len < 7; iterations_len++, salt_pos += 1) continue;
10835
10836 if (iterations_len == 0 ) return (PARSER_SALT_ITERATION);
10837 if (salt_pos[0] != '$') return (PARSER_SIGNATURE_UNMATCHED);
10838
10839 salt_pos[0] = 0x0;
10840
10841 salt->salt_iter = atoi (salt_pos - iterations_len);
10842
10843 salt_pos += 1;
10844
10845 iterations_len += 8;
10846 }
10847 else
10848 {
10849 salt->salt_iter = ROUNDS_MD5CRYPT;
10850 }
10851
10852 if ((input_len < DISPLAY_LEN_MIN_1600) || (input_len > DISPLAY_LEN_MAX_1600 + iterations_len)) return (PARSER_GLOBAL_LENGTH);
10853
10854 char *hash_pos = strchr (salt_pos, '$');
10855
10856 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
10857
10858 uint salt_len = hash_pos - salt_pos;
10859
10860 if (salt_len > 8) return (PARSER_SALT_LENGTH);
10861
10862 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
10863
10864 salt->salt_len = salt_len;
10865
10866 hash_pos++;
10867
10868 md5crypt_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
10869
10870 return (PARSER_OK);
10871 }
10872
10873 int episerver_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10874 {
10875 if ((input_len < DISPLAY_LEN_MIN_141) || (input_len > DISPLAY_LEN_MAX_141)) return (PARSER_GLOBAL_LENGTH);
10876
10877 if (memcmp (SIGNATURE_EPISERVER, input_buf, 14)) return (PARSER_SIGNATURE_UNMATCHED);
10878
10879 u32 *digest = (u32 *) hash_buf->digest;
10880
10881 salt_t *salt = hash_buf->salt;
10882
10883 char *salt_pos = input_buf + 14;
10884
10885 char *hash_pos = strchr (salt_pos, '*');
10886
10887 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
10888
10889 hash_pos++;
10890
10891 uint salt_len = hash_pos - salt_pos - 1;
10892
10893 char *salt_buf_ptr = (char *) salt->salt_buf;
10894
10895 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
10896
10897 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
10898
10899 salt->salt_len = salt_len;
10900
10901 u8 tmp_buf[100] = { 0 };
10902
10903 base64_decode (base64_to_int, (const u8 *) hash_pos, 27, tmp_buf);
10904
10905 memcpy (digest, tmp_buf, 20);
10906
10907 digest[0] = byte_swap_32 (digest[0]);
10908 digest[1] = byte_swap_32 (digest[1]);
10909 digest[2] = byte_swap_32 (digest[2]);
10910 digest[3] = byte_swap_32 (digest[3]);
10911 digest[4] = byte_swap_32 (digest[4]);
10912
10913 digest[0] -= SHA1M_A;
10914 digest[1] -= SHA1M_B;
10915 digest[2] -= SHA1M_C;
10916 digest[3] -= SHA1M_D;
10917 digest[4] -= SHA1M_E;
10918
10919 return (PARSER_OK);
10920 }
10921
10922 int descrypt_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10923 {
10924 if ((input_len < DISPLAY_LEN_MIN_1500) || (input_len > DISPLAY_LEN_MAX_1500)) return (PARSER_GLOBAL_LENGTH);
10925
10926 unsigned char c12 = itoa64_to_int (input_buf[12]);
10927
10928 if (c12 & 3) return (PARSER_HASH_VALUE);
10929
10930 u32 *digest = (u32 *) hash_buf->digest;
10931
10932 salt_t *salt = hash_buf->salt;
10933
10934 // for ascii_digest
10935 salt->salt_sign[0] = input_buf[0];
10936 salt->salt_sign[1] = input_buf[1];
10937
10938 salt->salt_buf[0] = itoa64_to_int (input_buf[0])
10939 | itoa64_to_int (input_buf[1]) << 6;
10940
10941 salt->salt_len = 2;
10942
10943 u8 tmp_buf[100] = { 0 };
10944
10945 base64_decode (itoa64_to_int, (const u8 *) input_buf + 2, 11, tmp_buf);
10946
10947 memcpy (digest, tmp_buf, 8);
10948
10949 uint tt;
10950
10951 IP (digest[0], digest[1], tt);
10952
10953 digest[2] = 0;
10954 digest[3] = 0;
10955
10956 return (PARSER_OK);
10957 }
10958
10959 int md4_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10960 {
10961 if ((input_len < DISPLAY_LEN_MIN_900) || (input_len > DISPLAY_LEN_MAX_900)) return (PARSER_GLOBAL_LENGTH);
10962
10963 u32 *digest = (u32 *) hash_buf->digest;
10964
10965 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
10966 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
10967 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
10968 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
10969
10970 digest[0] = byte_swap_32 (digest[0]);
10971 digest[1] = byte_swap_32 (digest[1]);
10972 digest[2] = byte_swap_32 (digest[2]);
10973 digest[3] = byte_swap_32 (digest[3]);
10974
10975 digest[0] -= MD4M_A;
10976 digest[1] -= MD4M_B;
10977 digest[2] -= MD4M_C;
10978 digest[3] -= MD4M_D;
10979
10980 return (PARSER_OK);
10981 }
10982
10983 int md4s_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
10984 {
10985 if (data.opts_type & OPTS_TYPE_ST_HEX)
10986 {
10987 if ((input_len < DISPLAY_LEN_MIN_910H) || (input_len > DISPLAY_LEN_MAX_910H)) return (PARSER_GLOBAL_LENGTH);
10988 }
10989 else
10990 {
10991 if ((input_len < DISPLAY_LEN_MIN_910) || (input_len > DISPLAY_LEN_MAX_910)) return (PARSER_GLOBAL_LENGTH);
10992 }
10993
10994 u32 *digest = (u32 *) hash_buf->digest;
10995
10996 salt_t *salt = hash_buf->salt;
10997
10998 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
10999 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11000 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11001 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11002
11003 digest[0] = byte_swap_32 (digest[0]);
11004 digest[1] = byte_swap_32 (digest[1]);
11005 digest[2] = byte_swap_32 (digest[2]);
11006 digest[3] = byte_swap_32 (digest[3]);
11007
11008 digest[0] -= MD4M_A;
11009 digest[1] -= MD4M_B;
11010 digest[2] -= MD4M_C;
11011 digest[3] -= MD4M_D;
11012
11013 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
11014
11015 uint salt_len = input_len - 32 - 1;
11016
11017 char *salt_buf = input_buf + 32 + 1;
11018
11019 char *salt_buf_ptr = (char *) salt->salt_buf;
11020
11021 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
11022
11023 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11024
11025 salt->salt_len = salt_len;
11026
11027 return (PARSER_OK);
11028 }
11029
11030 int md5_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11031 {
11032 if ((input_len < DISPLAY_LEN_MIN_0) || (input_len > DISPLAY_LEN_MAX_0)) return (PARSER_GLOBAL_LENGTH);
11033
11034 u32 *digest = (u32 *) hash_buf->digest;
11035
11036 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11037 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11038 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11039 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11040
11041 digest[0] = byte_swap_32 (digest[0]);
11042 digest[1] = byte_swap_32 (digest[1]);
11043 digest[2] = byte_swap_32 (digest[2]);
11044 digest[3] = byte_swap_32 (digest[3]);
11045
11046 digest[0] -= MD5M_A;
11047 digest[1] -= MD5M_B;
11048 digest[2] -= MD5M_C;
11049 digest[3] -= MD5M_D;
11050
11051 return (PARSER_OK);
11052 }
11053
11054 int md5half_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11055 {
11056 if ((input_len < DISPLAY_LEN_MIN_5100) || (input_len > DISPLAY_LEN_MAX_5100)) return (PARSER_GLOBAL_LENGTH);
11057
11058 u32 *digest = (u32 *) hash_buf->digest;
11059
11060 digest[0] = hex_to_u32 ((const u8 *) &input_buf[0]);
11061 digest[1] = hex_to_u32 ((const u8 *) &input_buf[8]);
11062 digest[2] = 0;
11063 digest[3] = 0;
11064
11065 digest[0] = byte_swap_32 (digest[0]);
11066 digest[1] = byte_swap_32 (digest[1]);
11067
11068 return (PARSER_OK);
11069 }
11070
11071 int md5s_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11072 {
11073 if (data.opts_type & OPTS_TYPE_ST_HEX)
11074 {
11075 if ((input_len < DISPLAY_LEN_MIN_10H) || (input_len > DISPLAY_LEN_MAX_10H)) return (PARSER_GLOBAL_LENGTH);
11076 }
11077 else
11078 {
11079 if ((input_len < DISPLAY_LEN_MIN_10) || (input_len > DISPLAY_LEN_MAX_10)) return (PARSER_GLOBAL_LENGTH);
11080 }
11081
11082 u32 *digest = (u32 *) hash_buf->digest;
11083
11084 salt_t *salt = hash_buf->salt;
11085
11086 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11087 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11088 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11089 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11090
11091 digest[0] = byte_swap_32 (digest[0]);
11092 digest[1] = byte_swap_32 (digest[1]);
11093 digest[2] = byte_swap_32 (digest[2]);
11094 digest[3] = byte_swap_32 (digest[3]);
11095
11096 digest[0] -= MD5M_A;
11097 digest[1] -= MD5M_B;
11098 digest[2] -= MD5M_C;
11099 digest[3] -= MD5M_D;
11100
11101 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
11102
11103 uint salt_len = input_len - 32 - 1;
11104
11105 char *salt_buf = input_buf + 32 + 1;
11106
11107 char *salt_buf_ptr = (char *) salt->salt_buf;
11108
11109 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
11110
11111 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11112
11113 salt->salt_len = salt_len;
11114
11115 return (PARSER_OK);
11116 }
11117
11118 int md5pix_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11119 {
11120 if ((input_len < DISPLAY_LEN_MIN_2400) || (input_len > DISPLAY_LEN_MAX_2400)) return (PARSER_GLOBAL_LENGTH);
11121
11122 u32 *digest = (u32 *) hash_buf->digest;
11123
11124 digest[0] = itoa64_to_int (input_buf[ 0]) << 0
11125 | itoa64_to_int (input_buf[ 1]) << 6
11126 | itoa64_to_int (input_buf[ 2]) << 12
11127 | itoa64_to_int (input_buf[ 3]) << 18;
11128 digest[1] = itoa64_to_int (input_buf[ 4]) << 0
11129 | itoa64_to_int (input_buf[ 5]) << 6
11130 | itoa64_to_int (input_buf[ 6]) << 12
11131 | itoa64_to_int (input_buf[ 7]) << 18;
11132 digest[2] = itoa64_to_int (input_buf[ 8]) << 0
11133 | itoa64_to_int (input_buf[ 9]) << 6
11134 | itoa64_to_int (input_buf[10]) << 12
11135 | itoa64_to_int (input_buf[11]) << 18;
11136 digest[3] = itoa64_to_int (input_buf[12]) << 0
11137 | itoa64_to_int (input_buf[13]) << 6
11138 | itoa64_to_int (input_buf[14]) << 12
11139 | itoa64_to_int (input_buf[15]) << 18;
11140
11141 digest[0] -= MD5M_A;
11142 digest[1] -= MD5M_B;
11143 digest[2] -= MD5M_C;
11144 digest[3] -= MD5M_D;
11145
11146 digest[0] &= 0x00ffffff;
11147 digest[1] &= 0x00ffffff;
11148 digest[2] &= 0x00ffffff;
11149 digest[3] &= 0x00ffffff;
11150
11151 return (PARSER_OK);
11152 }
11153
11154 int md5asa_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11155 {
11156 if (data.opts_type & OPTS_TYPE_ST_HEX)
11157 {
11158 if ((input_len < DISPLAY_LEN_MIN_2410H) || (input_len > DISPLAY_LEN_MAX_2410H)) return (PARSER_GLOBAL_LENGTH);
11159 }
11160 else
11161 {
11162 if ((input_len < DISPLAY_LEN_MIN_2410) || (input_len > DISPLAY_LEN_MAX_2410)) return (PARSER_GLOBAL_LENGTH);
11163 }
11164
11165 u32 *digest = (u32 *) hash_buf->digest;
11166
11167 salt_t *salt = hash_buf->salt;
11168
11169 digest[0] = itoa64_to_int (input_buf[ 0]) << 0
11170 | itoa64_to_int (input_buf[ 1]) << 6
11171 | itoa64_to_int (input_buf[ 2]) << 12
11172 | itoa64_to_int (input_buf[ 3]) << 18;
11173 digest[1] = itoa64_to_int (input_buf[ 4]) << 0
11174 | itoa64_to_int (input_buf[ 5]) << 6
11175 | itoa64_to_int (input_buf[ 6]) << 12
11176 | itoa64_to_int (input_buf[ 7]) << 18;
11177 digest[2] = itoa64_to_int (input_buf[ 8]) << 0
11178 | itoa64_to_int (input_buf[ 9]) << 6
11179 | itoa64_to_int (input_buf[10]) << 12
11180 | itoa64_to_int (input_buf[11]) << 18;
11181 digest[3] = itoa64_to_int (input_buf[12]) << 0
11182 | itoa64_to_int (input_buf[13]) << 6
11183 | itoa64_to_int (input_buf[14]) << 12
11184 | itoa64_to_int (input_buf[15]) << 18;
11185
11186 digest[0] -= MD5M_A;
11187 digest[1] -= MD5M_B;
11188 digest[2] -= MD5M_C;
11189 digest[3] -= MD5M_D;
11190
11191 digest[0] &= 0x00ffffff;
11192 digest[1] &= 0x00ffffff;
11193 digest[2] &= 0x00ffffff;
11194 digest[3] &= 0x00ffffff;
11195
11196 if (input_buf[16] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
11197
11198 uint salt_len = input_len - 16 - 1;
11199
11200 char *salt_buf = input_buf + 16 + 1;
11201
11202 char *salt_buf_ptr = (char *) salt->salt_buf;
11203
11204 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
11205
11206 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11207
11208 salt->salt_len = salt_len;
11209
11210 return (PARSER_OK);
11211 }
11212
11213 void transform_netntlmv1_key (const u8 *nthash, u8 *key)
11214 {
11215 key[0] = (nthash[0] >> 0);
11216 key[1] = (nthash[0] << 7) | (nthash[1] >> 1);
11217 key[2] = (nthash[1] << 6) | (nthash[2] >> 2);
11218 key[3] = (nthash[2] << 5) | (nthash[3] >> 3);
11219 key[4] = (nthash[3] << 4) | (nthash[4] >> 4);
11220 key[5] = (nthash[4] << 3) | (nthash[5] >> 5);
11221 key[6] = (nthash[5] << 2) | (nthash[6] >> 6);
11222 key[7] = (nthash[6] << 1);
11223
11224 key[0] |= 0x01;
11225 key[1] |= 0x01;
11226 key[2] |= 0x01;
11227 key[3] |= 0x01;
11228 key[4] |= 0x01;
11229 key[5] |= 0x01;
11230 key[6] |= 0x01;
11231 key[7] |= 0x01;
11232 }
11233
11234 int netntlmv1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11235 {
11236 if ((input_len < DISPLAY_LEN_MIN_5500) || (input_len > DISPLAY_LEN_MAX_5500)) return (PARSER_GLOBAL_LENGTH);
11237
11238 u32 *digest = (u32 *) hash_buf->digest;
11239
11240 salt_t *salt = hash_buf->salt;
11241
11242 netntlm_t *netntlm = (netntlm_t *) hash_buf->esalt;
11243
11244 /**
11245 * parse line
11246 */
11247
11248 char *user_pos = input_buf;
11249
11250 char *unused_pos = strchr (user_pos, ':');
11251
11252 if (unused_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11253
11254 uint user_len = unused_pos - user_pos;
11255
11256 if (user_len > 60) return (PARSER_SALT_LENGTH);
11257
11258 unused_pos++;
11259
11260 char *domain_pos = strchr (unused_pos, ':');
11261
11262 if (domain_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11263
11264 uint unused_len = domain_pos - unused_pos;
11265
11266 if (unused_len != 0) return (PARSER_SALT_LENGTH);
11267
11268 domain_pos++;
11269
11270 char *srvchall_pos = strchr (domain_pos, ':');
11271
11272 if (srvchall_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11273
11274 uint domain_len = srvchall_pos - domain_pos;
11275
11276 if (domain_len > 45) return (PARSER_SALT_LENGTH);
11277
11278 srvchall_pos++;
11279
11280 char *hash_pos = strchr (srvchall_pos, ':');
11281
11282 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11283
11284 uint srvchall_len = hash_pos - srvchall_pos;
11285
11286 // if (srvchall_len != 0) return (PARSER_SALT_LENGTH);
11287
11288 hash_pos++;
11289
11290 char *clichall_pos = strchr (hash_pos, ':');
11291
11292 if (clichall_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11293
11294 uint hash_len = clichall_pos - hash_pos;
11295
11296 if (hash_len != 48) return (PARSER_HASH_LENGTH);
11297
11298 clichall_pos++;
11299
11300 uint clichall_len = input_len - user_len - 1 - unused_len - 1 - domain_len - 1 - srvchall_len - 1 - hash_len - 1;
11301
11302 if (clichall_len != 16) return (PARSER_SALT_LENGTH);
11303
11304 /**
11305 * store some data for later use
11306 */
11307
11308 netntlm->user_len = user_len * 2;
11309 netntlm->domain_len = domain_len * 2;
11310 netntlm->srvchall_len = srvchall_len / 2;
11311 netntlm->clichall_len = clichall_len / 2;
11312
11313 char *userdomain_ptr = (char *) netntlm->userdomain_buf;
11314 char *chall_ptr = (char *) netntlm->chall_buf;
11315
11316 /**
11317 * handle username and domainname
11318 */
11319
11320 for (uint i = 0; i < user_len; i++)
11321 {
11322 *userdomain_ptr++ = user_pos[i];
11323 *userdomain_ptr++ = 0;
11324 }
11325
11326 for (uint i = 0; i < domain_len; i++)
11327 {
11328 *userdomain_ptr++ = domain_pos[i];
11329 *userdomain_ptr++ = 0;
11330 }
11331
11332 /**
11333 * handle server challenge encoding
11334 */
11335
11336 for (uint i = 0; i < srvchall_len; i += 2)
11337 {
11338 const char p0 = srvchall_pos[i + 0];
11339 const char p1 = srvchall_pos[i + 1];
11340
11341 *chall_ptr++ = hex_convert (p1) << 0
11342 | hex_convert (p0) << 4;
11343 }
11344
11345 /**
11346 * handle client challenge encoding
11347 */
11348
11349 for (uint i = 0; i < clichall_len; i += 2)
11350 {
11351 const char p0 = clichall_pos[i + 0];
11352 const char p1 = clichall_pos[i + 1];
11353
11354 *chall_ptr++ = hex_convert (p1) << 0
11355 | hex_convert (p0) << 4;
11356 }
11357
11358 /**
11359 * store data
11360 */
11361
11362 char *salt_buf_ptr = (char *) salt->salt_buf;
11363
11364 uint salt_len = parse_and_store_salt (salt_buf_ptr, clichall_pos, clichall_len);
11365
11366 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11367
11368 salt->salt_len = salt_len;
11369
11370 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
11371 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
11372 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
11373 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
11374
11375 digest[0] = byte_swap_32 (digest[0]);
11376 digest[1] = byte_swap_32 (digest[1]);
11377 digest[2] = byte_swap_32 (digest[2]);
11378 digest[3] = byte_swap_32 (digest[3]);
11379
11380 /* special case, last 8 byte do not need to be checked since they are brute-forced next */
11381
11382 uint digest_tmp[2] = { 0 };
11383
11384 digest_tmp[0] = hex_to_u32 ((const u8 *) &hash_pos[32]);
11385 digest_tmp[1] = hex_to_u32 ((const u8 *) &hash_pos[40]);
11386
11387 digest_tmp[0] = byte_swap_32 (digest_tmp[0]);
11388 digest_tmp[1] = byte_swap_32 (digest_tmp[1]);
11389
11390 /* special case 2: ESS */
11391
11392 if (srvchall_len == 48)
11393 {
11394 if ((netntlm->chall_buf[2] == 0) && (netntlm->chall_buf[3] == 0) && (netntlm->chall_buf[4] == 0) && (netntlm->chall_buf[5] == 0))
11395 {
11396 uint w[16] = { 0 };
11397
11398 w[ 0] = netntlm->chall_buf[6];
11399 w[ 1] = netntlm->chall_buf[7];
11400 w[ 2] = netntlm->chall_buf[0];
11401 w[ 3] = netntlm->chall_buf[1];
11402 w[ 4] = 0x80;
11403 w[14] = 16 * 8;
11404
11405 uint dgst[4] = { 0 };
11406
11407 dgst[0] = MAGIC_A;
11408 dgst[1] = MAGIC_B;
11409 dgst[2] = MAGIC_C;
11410 dgst[3] = MAGIC_D;
11411
11412 md5_64 (w, dgst);
11413
11414 salt->salt_buf[0] = dgst[0];
11415 salt->salt_buf[1] = dgst[1];
11416 }
11417 }
11418
11419 /* precompute netntlmv1 exploit start */
11420
11421 for (uint i = 0; i < 0x10000; i++)
11422 {
11423 uint key_md4[2] = { i, 0 };
11424 uint key_des[2] = { 0, 0 };
11425
11426 transform_netntlmv1_key ((u8 *) key_md4, (u8 *) key_des);
11427
11428 uint Kc[16] = { 0 };
11429 uint Kd[16] = { 0 };
11430
11431 _des_keysetup (key_des, Kc, Kd, c_skb);
11432
11433 uint data3[2] = { salt->salt_buf[0], salt->salt_buf[1] };
11434
11435 _des_encrypt (data3, Kc, Kd, c_SPtrans);
11436
11437 if (data3[0] != digest_tmp[0]) continue;
11438 if (data3[1] != digest_tmp[1]) continue;
11439
11440 salt->salt_buf[2] = i;
11441
11442 salt->salt_len = 24;
11443
11444 break;
11445 }
11446
11447 salt->salt_buf_pc[0] = digest_tmp[0];
11448 salt->salt_buf_pc[1] = digest_tmp[1];
11449
11450 /* precompute netntlmv1 exploit stop */
11451
11452 u32 tt;
11453
11454 IP (digest[0], digest[1], tt);
11455 IP (digest[2], digest[3], tt);
11456
11457 digest[0] = rotr32 (digest[0], 29);
11458 digest[1] = rotr32 (digest[1], 29);
11459 digest[2] = rotr32 (digest[2], 29);
11460 digest[3] = rotr32 (digest[3], 29);
11461
11462 IP (salt->salt_buf[0], salt->salt_buf[1], tt);
11463
11464 salt->salt_buf[0] = rotl32 (salt->salt_buf[0], 3);
11465 salt->salt_buf[1] = rotl32 (salt->salt_buf[1], 3);
11466
11467 return (PARSER_OK);
11468 }
11469
11470 int netntlmv2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11471 {
11472 if ((input_len < DISPLAY_LEN_MIN_5600) || (input_len > DISPLAY_LEN_MAX_5600)) return (PARSER_GLOBAL_LENGTH);
11473
11474 u32 *digest = (u32 *) hash_buf->digest;
11475
11476 salt_t *salt = hash_buf->salt;
11477
11478 netntlm_t *netntlm = (netntlm_t *) hash_buf->esalt;
11479
11480 /**
11481 * parse line
11482 */
11483
11484 char *user_pos = input_buf;
11485
11486 char *unused_pos = strchr (user_pos, ':');
11487
11488 if (unused_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11489
11490 uint user_len = unused_pos - user_pos;
11491
11492 if (user_len > 60) return (PARSER_SALT_LENGTH);
11493
11494 unused_pos++;
11495
11496 char *domain_pos = strchr (unused_pos, ':');
11497
11498 if (domain_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11499
11500 uint unused_len = domain_pos - unused_pos;
11501
11502 if (unused_len != 0) return (PARSER_SALT_LENGTH);
11503
11504 domain_pos++;
11505
11506 char *srvchall_pos = strchr (domain_pos, ':');
11507
11508 if (srvchall_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11509
11510 uint domain_len = srvchall_pos - domain_pos;
11511
11512 if (domain_len > 45) return (PARSER_SALT_LENGTH);
11513
11514 srvchall_pos++;
11515
11516 char *hash_pos = strchr (srvchall_pos, ':');
11517
11518 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11519
11520 uint srvchall_len = hash_pos - srvchall_pos;
11521
11522 if (srvchall_len != 16) return (PARSER_SALT_LENGTH);
11523
11524 hash_pos++;
11525
11526 char *clichall_pos = strchr (hash_pos, ':');
11527
11528 if (clichall_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
11529
11530 uint hash_len = clichall_pos - hash_pos;
11531
11532 if (hash_len != 32) return (PARSER_HASH_LENGTH);
11533
11534 clichall_pos++;
11535
11536 uint clichall_len = input_len - user_len - 1 - unused_len - 1 - domain_len - 1 - srvchall_len - 1 - hash_len - 1;
11537
11538 if (clichall_len > 1024) return (PARSER_SALT_LENGTH);
11539
11540 if (clichall_len % 2) return (PARSER_SALT_VALUE);
11541
11542 /**
11543 * store some data for later use
11544 */
11545
11546 netntlm->user_len = user_len * 2;
11547 netntlm->domain_len = domain_len * 2;
11548 netntlm->srvchall_len = srvchall_len / 2;
11549 netntlm->clichall_len = clichall_len / 2;
11550
11551 char *userdomain_ptr = (char *) netntlm->userdomain_buf;
11552 char *chall_ptr = (char *) netntlm->chall_buf;
11553
11554 /**
11555 * handle username and domainname
11556 */
11557
11558 for (uint i = 0; i < user_len; i++)
11559 {
11560 *userdomain_ptr++ = toupper (user_pos[i]);
11561 *userdomain_ptr++ = 0;
11562 }
11563
11564 for (uint i = 0; i < domain_len; i++)
11565 {
11566 *userdomain_ptr++ = domain_pos[i];
11567 *userdomain_ptr++ = 0;
11568 }
11569
11570 *userdomain_ptr++ = 0x80;
11571
11572 /**
11573 * handle server challenge encoding
11574 */
11575
11576 for (uint i = 0; i < srvchall_len; i += 2)
11577 {
11578 const char p0 = srvchall_pos[i + 0];
11579 const char p1 = srvchall_pos[i + 1];
11580
11581 *chall_ptr++ = hex_convert (p1) << 0
11582 | hex_convert (p0) << 4;
11583 }
11584
11585 /**
11586 * handle client challenge encoding
11587 */
11588
11589 for (uint i = 0; i < clichall_len; i += 2)
11590 {
11591 const char p0 = clichall_pos[i + 0];
11592 const char p1 = clichall_pos[i + 1];
11593
11594 *chall_ptr++ = hex_convert (p1) << 0
11595 | hex_convert (p0) << 4;
11596 }
11597
11598 *chall_ptr++ = 0x80;
11599
11600 /**
11601 * handle hash itself
11602 */
11603
11604 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
11605 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
11606 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
11607 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
11608
11609 digest[0] = byte_swap_32 (digest[0]);
11610 digest[1] = byte_swap_32 (digest[1]);
11611 digest[2] = byte_swap_32 (digest[2]);
11612 digest[3] = byte_swap_32 (digest[3]);
11613
11614 /**
11615 * reuse challange data as salt_buf, its the buffer that is most likely unique
11616 */
11617
11618 salt->salt_buf[0] = 0;
11619 salt->salt_buf[1] = 0;
11620 salt->salt_buf[2] = 0;
11621 salt->salt_buf[3] = 0;
11622 salt->salt_buf[4] = 0;
11623 salt->salt_buf[5] = 0;
11624 salt->salt_buf[6] = 0;
11625 salt->salt_buf[7] = 0;
11626
11627 uint *uptr;
11628
11629 uptr = (uint *) netntlm->userdomain_buf;
11630
11631 for (uint i = 0; i < 16; i += 16)
11632 {
11633 md5_64 (uptr, salt->salt_buf);
11634 }
11635
11636 uptr = (uint *) netntlm->chall_buf;
11637
11638 for (uint i = 0; i < 256; i += 16)
11639 {
11640 md5_64 (uptr, salt->salt_buf);
11641 }
11642
11643 salt->salt_len = 16;
11644
11645 return (PARSER_OK);
11646 }
11647
11648 int joomla_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11649 {
11650 if (data.opts_type & OPTS_TYPE_ST_HEX)
11651 {
11652 if ((input_len < DISPLAY_LEN_MIN_11H) || (input_len > DISPLAY_LEN_MAX_11H)) return (PARSER_GLOBAL_LENGTH);
11653 }
11654 else
11655 {
11656 if ((input_len < DISPLAY_LEN_MIN_11) || (input_len > DISPLAY_LEN_MAX_11)) return (PARSER_GLOBAL_LENGTH);
11657 }
11658
11659 u32 *digest = (u32 *) hash_buf->digest;
11660
11661 salt_t *salt = hash_buf->salt;
11662
11663 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11664 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11665 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11666 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11667
11668 digest[0] = byte_swap_32 (digest[0]);
11669 digest[1] = byte_swap_32 (digest[1]);
11670 digest[2] = byte_swap_32 (digest[2]);
11671 digest[3] = byte_swap_32 (digest[3]);
11672
11673 digest[0] -= MD5M_A;
11674 digest[1] -= MD5M_B;
11675 digest[2] -= MD5M_C;
11676 digest[3] -= MD5M_D;
11677
11678 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
11679
11680 uint salt_len = input_len - 32 - 1;
11681
11682 char *salt_buf = input_buf + 32 + 1;
11683
11684 char *salt_buf_ptr = (char *) salt->salt_buf;
11685
11686 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
11687
11688 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11689
11690 salt->salt_len = salt_len;
11691
11692 return (PARSER_OK);
11693 }
11694
11695 int postgresql_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11696 {
11697 if (data.opts_type & OPTS_TYPE_ST_HEX)
11698 {
11699 if ((input_len < DISPLAY_LEN_MIN_12H) || (input_len > DISPLAY_LEN_MAX_12H)) return (PARSER_GLOBAL_LENGTH);
11700 }
11701 else
11702 {
11703 if ((input_len < DISPLAY_LEN_MIN_12) || (input_len > DISPLAY_LEN_MAX_12)) return (PARSER_GLOBAL_LENGTH);
11704 }
11705
11706 u32 *digest = (u32 *) hash_buf->digest;
11707
11708 salt_t *salt = hash_buf->salt;
11709
11710 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11711 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11712 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11713 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11714
11715 digest[0] = byte_swap_32 (digest[0]);
11716 digest[1] = byte_swap_32 (digest[1]);
11717 digest[2] = byte_swap_32 (digest[2]);
11718 digest[3] = byte_swap_32 (digest[3]);
11719
11720 digest[0] -= MD5M_A;
11721 digest[1] -= MD5M_B;
11722 digest[2] -= MD5M_C;
11723 digest[3] -= MD5M_D;
11724
11725 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
11726
11727 uint salt_len = input_len - 32 - 1;
11728
11729 char *salt_buf = input_buf + 32 + 1;
11730
11731 char *salt_buf_ptr = (char *) salt->salt_buf;
11732
11733 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
11734
11735 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11736
11737 salt->salt_len = salt_len;
11738
11739 return (PARSER_OK);
11740 }
11741
11742 int md5md5_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11743 {
11744 if ((input_len < DISPLAY_LEN_MIN_2600) || (input_len > DISPLAY_LEN_MAX_2600)) return (PARSER_GLOBAL_LENGTH);
11745
11746 u32 *digest = (u32 *) hash_buf->digest;
11747
11748 salt_t *salt = hash_buf->salt;
11749
11750 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11751 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11752 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11753 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11754
11755 digest[0] = byte_swap_32 (digest[0]);
11756 digest[1] = byte_swap_32 (digest[1]);
11757 digest[2] = byte_swap_32 (digest[2]);
11758 digest[3] = byte_swap_32 (digest[3]);
11759
11760 digest[0] -= MD5M_A;
11761 digest[1] -= MD5M_B;
11762 digest[2] -= MD5M_C;
11763 digest[3] -= MD5M_D;
11764
11765 /**
11766 * This is a virtual salt. While the algorithm is basically not salted
11767 * we can exploit the salt buffer to set the 0x80 and the w[14] value.
11768 * This way we can save a special md5md5 kernel and reuse the one from vbull.
11769 */
11770
11771 char *salt_buf_ptr = (char *) salt->salt_buf;
11772
11773 uint salt_len = parse_and_store_salt (salt_buf_ptr, (char *) "", 0);
11774
11775 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11776
11777 salt->salt_len = salt_len;
11778
11779 return (PARSER_OK);
11780 }
11781
11782 int vb3_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11783 {
11784 if (data.opts_type & OPTS_TYPE_ST_HEX)
11785 {
11786 if ((input_len < DISPLAY_LEN_MIN_2611H) || (input_len > DISPLAY_LEN_MAX_2611H)) return (PARSER_GLOBAL_LENGTH);
11787 }
11788 else
11789 {
11790 if ((input_len < DISPLAY_LEN_MIN_2611) || (input_len > DISPLAY_LEN_MAX_2611)) return (PARSER_GLOBAL_LENGTH);
11791 }
11792
11793 u32 *digest = (u32 *) hash_buf->digest;
11794
11795 salt_t *salt = hash_buf->salt;
11796
11797 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11798 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11799 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11800 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11801
11802 digest[0] = byte_swap_32 (digest[0]);
11803 digest[1] = byte_swap_32 (digest[1]);
11804 digest[2] = byte_swap_32 (digest[2]);
11805 digest[3] = byte_swap_32 (digest[3]);
11806
11807 digest[0] -= MD5M_A;
11808 digest[1] -= MD5M_B;
11809 digest[2] -= MD5M_C;
11810 digest[3] -= MD5M_D;
11811
11812 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
11813
11814 uint salt_len = input_len - 32 - 1;
11815
11816 char *salt_buf = input_buf + 32 + 1;
11817
11818 char *salt_buf_ptr = (char *) salt->salt_buf;
11819
11820 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
11821
11822 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11823
11824 salt->salt_len = salt_len;
11825
11826 return (PARSER_OK);
11827 }
11828
11829 int vb30_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11830 {
11831 if (data.opts_type & OPTS_TYPE_ST_HEX)
11832 {
11833 if ((input_len < DISPLAY_LEN_MIN_2711H) || (input_len > DISPLAY_LEN_MAX_2711H)) return (PARSER_GLOBAL_LENGTH);
11834 }
11835 else
11836 {
11837 if ((input_len < DISPLAY_LEN_MIN_2711) || (input_len > DISPLAY_LEN_MAX_2711)) return (PARSER_GLOBAL_LENGTH);
11838 }
11839
11840 u32 *digest = (u32 *) hash_buf->digest;
11841
11842 salt_t *salt = hash_buf->salt;
11843
11844 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11845 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11846 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11847 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11848
11849 digest[0] = byte_swap_32 (digest[0]);
11850 digest[1] = byte_swap_32 (digest[1]);
11851 digest[2] = byte_swap_32 (digest[2]);
11852 digest[3] = byte_swap_32 (digest[3]);
11853
11854 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
11855
11856 uint salt_len = input_len - 32 - 1;
11857
11858 char *salt_buf = input_buf + 32 + 1;
11859
11860 char *salt_buf_ptr = (char *) salt->salt_buf;
11861
11862 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
11863
11864 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11865
11866 salt->salt_len = salt_len;
11867
11868 return (PARSER_OK);
11869 }
11870
11871 int dcc_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11872 {
11873 if (data.opts_type & OPTS_TYPE_ST_HEX)
11874 {
11875 if ((input_len < DISPLAY_LEN_MIN_1100H) || (input_len > DISPLAY_LEN_MAX_1100H)) return (PARSER_GLOBAL_LENGTH);
11876 }
11877 else
11878 {
11879 if ((input_len < DISPLAY_LEN_MIN_1100) || (input_len > DISPLAY_LEN_MAX_1100)) return (PARSER_GLOBAL_LENGTH);
11880 }
11881
11882 u32 *digest = (u32 *) hash_buf->digest;
11883
11884 salt_t *salt = hash_buf->salt;
11885
11886 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11887 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11888 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11889 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11890
11891 digest[0] = byte_swap_32 (digest[0]);
11892 digest[1] = byte_swap_32 (digest[1]);
11893 digest[2] = byte_swap_32 (digest[2]);
11894 digest[3] = byte_swap_32 (digest[3]);
11895
11896 digest[0] -= MD4M_A;
11897 digest[1] -= MD4M_B;
11898 digest[2] -= MD4M_C;
11899 digest[3] -= MD4M_D;
11900
11901 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
11902
11903 uint salt_len = input_len - 32 - 1;
11904
11905 char *salt_buf = input_buf + 32 + 1;
11906
11907 char *salt_buf_ptr = (char *) salt->salt_buf;
11908
11909 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
11910
11911 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11912
11913 salt->salt_len = salt_len;
11914
11915 return (PARSER_OK);
11916 }
11917
11918 int ipb2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11919 {
11920 if (data.opts_type & OPTS_TYPE_ST_HEX)
11921 {
11922 if ((input_len < DISPLAY_LEN_MIN_2811H) || (input_len > DISPLAY_LEN_MAX_2811H)) return (PARSER_GLOBAL_LENGTH);
11923 }
11924 else
11925 {
11926 if ((input_len < DISPLAY_LEN_MIN_2811) || (input_len > DISPLAY_LEN_MAX_2811)) return (PARSER_GLOBAL_LENGTH);
11927 }
11928
11929 u32 *digest = (u32 *) hash_buf->digest;
11930
11931 salt_t *salt = hash_buf->salt;
11932
11933 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11934 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11935 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11936 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11937
11938 digest[0] = byte_swap_32 (digest[0]);
11939 digest[1] = byte_swap_32 (digest[1]);
11940 digest[2] = byte_swap_32 (digest[2]);
11941 digest[3] = byte_swap_32 (digest[3]);
11942
11943 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
11944
11945 uint salt_len = input_len - 32 - 1;
11946
11947 char *salt_buf = input_buf + 32 + 1;
11948
11949 uint salt_pc_block[16] = { 0 };
11950
11951 char *salt_pc_block_ptr = (char *) salt_pc_block;
11952
11953 salt_len = parse_and_store_salt (salt_pc_block_ptr, salt_buf, salt_len);
11954
11955 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
11956
11957 salt_pc_block_ptr[salt_len] = (unsigned char) 0x80;
11958
11959 salt_pc_block[14] = salt_len * 8;
11960
11961 uint salt_pc_digest[4] = { MAGIC_A, MAGIC_B, MAGIC_C, MAGIC_D };
11962
11963 md5_64 (salt_pc_block, salt_pc_digest);
11964
11965 salt_pc_digest[0] = byte_swap_32 (salt_pc_digest[0]);
11966 salt_pc_digest[1] = byte_swap_32 (salt_pc_digest[1]);
11967 salt_pc_digest[2] = byte_swap_32 (salt_pc_digest[2]);
11968 salt_pc_digest[3] = byte_swap_32 (salt_pc_digest[3]);
11969
11970 u8 *salt_buf_ptr = (u8 *) salt->salt_buf;
11971
11972 memcpy (salt_buf_ptr, salt_buf, salt_len);
11973
11974 u8 *salt_buf_pc_ptr = (u8 *) salt->salt_buf_pc;
11975
11976 bin_to_hex_lower (salt_pc_digest[0], salt_buf_pc_ptr + 0);
11977 bin_to_hex_lower (salt_pc_digest[1], salt_buf_pc_ptr + 8);
11978 bin_to_hex_lower (salt_pc_digest[2], salt_buf_pc_ptr + 16);
11979 bin_to_hex_lower (salt_pc_digest[3], salt_buf_pc_ptr + 24);
11980
11981 salt->salt_len = 32; // changed, was salt_len before -- was a bug? 32 should be correct
11982
11983 return (PARSER_OK);
11984 }
11985
11986 int sha1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
11987 {
11988 if ((input_len < DISPLAY_LEN_MIN_100) || (input_len > DISPLAY_LEN_MAX_100)) return (PARSER_GLOBAL_LENGTH);
11989
11990 u32 *digest = (u32 *) hash_buf->digest;
11991
11992 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
11993 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
11994 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
11995 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
11996 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
11997
11998 digest[0] -= SHA1M_A;
11999 digest[1] -= SHA1M_B;
12000 digest[2] -= SHA1M_C;
12001 digest[3] -= SHA1M_D;
12002 digest[4] -= SHA1M_E;
12003
12004 return (PARSER_OK);
12005 }
12006
12007 int sha1axcrypt_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12008 {
12009 if ((input_len < DISPLAY_LEN_MIN_13300) || (input_len > DISPLAY_LEN_MAX_13300)) return (PARSER_GLOBAL_LENGTH);
12010
12011 if (memcmp (SIGNATURE_AXCRYPT_SHA1, input_buf, 13)) return (PARSER_SIGNATURE_UNMATCHED);
12012
12013 u32 *digest = (u32 *) hash_buf->digest;
12014
12015 input_buf += 14;
12016
12017 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12018 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12019 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
12020 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
12021 digest[4] = 0;
12022
12023 return (PARSER_OK);
12024 }
12025
12026 int sha1s_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12027 {
12028 if (data.opts_type & OPTS_TYPE_ST_HEX)
12029 {
12030 if ((input_len < DISPLAY_LEN_MIN_110H) || (input_len > DISPLAY_LEN_MAX_110H)) return (PARSER_GLOBAL_LENGTH);
12031 }
12032 else
12033 {
12034 if ((input_len < DISPLAY_LEN_MIN_110) || (input_len > DISPLAY_LEN_MAX_110)) return (PARSER_GLOBAL_LENGTH);
12035 }
12036
12037 u32 *digest = (u32 *) hash_buf->digest;
12038
12039 salt_t *salt = hash_buf->salt;
12040
12041 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12042 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12043 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
12044 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
12045 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
12046
12047 digest[0] -= SHA1M_A;
12048 digest[1] -= SHA1M_B;
12049 digest[2] -= SHA1M_C;
12050 digest[3] -= SHA1M_D;
12051 digest[4] -= SHA1M_E;
12052
12053 if (input_buf[40] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
12054
12055 uint salt_len = input_len - 40 - 1;
12056
12057 char *salt_buf = input_buf + 40 + 1;
12058
12059 char *salt_buf_ptr = (char *) salt->salt_buf;
12060
12061 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
12062
12063 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
12064
12065 salt->salt_len = salt_len;
12066
12067 return (PARSER_OK);
12068 }
12069
12070 int pstoken_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12071 {
12072 if ((input_len < DISPLAY_LEN_MIN_13500) || (input_len > DISPLAY_LEN_MAX_13500)) return (PARSER_GLOBAL_LENGTH);
12073
12074 u32 *digest = (u32 *) hash_buf->digest;
12075
12076 salt_t *salt = hash_buf->salt;
12077
12078 pstoken_t *pstoken = (pstoken_t *) hash_buf->esalt;
12079
12080 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12081 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12082 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
12083 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
12084 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
12085
12086 if (input_buf[40] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
12087
12088 uint salt_len = input_len - 40 - 1;
12089
12090 char *salt_buf = input_buf + 40 + 1;
12091
12092 if (salt_len == UINT_MAX || salt_len % 2 != 0) return (PARSER_SALT_LENGTH);
12093
12094 u8 *pstoken_ptr = (u8 *) pstoken->salt_buf;
12095
12096 for (uint i = 0, j = 0; i < salt_len; i += 2, j += 1)
12097 {
12098 pstoken_ptr[j] = hex_to_u8 ((const u8 *) &salt_buf[i]);
12099 }
12100
12101 pstoken->salt_len = salt_len / 2;
12102
12103 /* some fake salt for the sorting mechanisms */
12104
12105 salt->salt_buf[0] = pstoken->salt_buf[0];
12106 salt->salt_buf[1] = pstoken->salt_buf[1];
12107 salt->salt_buf[2] = pstoken->salt_buf[2];
12108 salt->salt_buf[3] = pstoken->salt_buf[3];
12109 salt->salt_buf[4] = pstoken->salt_buf[4];
12110 salt->salt_buf[5] = pstoken->salt_buf[5];
12111 salt->salt_buf[6] = pstoken->salt_buf[6];
12112 salt->salt_buf[7] = pstoken->salt_buf[7];
12113
12114 salt->salt_len = 32;
12115
12116 /* we need to check if we can precompute some of the data --
12117 this is possible since the scheme is badly designed */
12118
12119 pstoken->pc_digest[0] = SHA1M_A;
12120 pstoken->pc_digest[1] = SHA1M_B;
12121 pstoken->pc_digest[2] = SHA1M_C;
12122 pstoken->pc_digest[3] = SHA1M_D;
12123 pstoken->pc_digest[4] = SHA1M_E;
12124
12125 pstoken->pc_offset = 0;
12126
12127 for (int i = 0; i < (int) pstoken->salt_len - 63; i += 64)
12128 {
12129 uint w[16];
12130
12131 w[ 0] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 0]);
12132 w[ 1] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 1]);
12133 w[ 2] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 2]);
12134 w[ 3] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 3]);
12135 w[ 4] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 4]);
12136 w[ 5] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 5]);
12137 w[ 6] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 6]);
12138 w[ 7] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 7]);
12139 w[ 8] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 8]);
12140 w[ 9] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 9]);
12141 w[10] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 10]);
12142 w[11] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 11]);
12143 w[12] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 12]);
12144 w[13] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 13]);
12145 w[14] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 14]);
12146 w[15] = byte_swap_32 (pstoken->salt_buf[pstoken->pc_offset + 15]);
12147
12148 sha1_64 (w, pstoken->pc_digest);
12149
12150 pstoken->pc_offset += 16;
12151 }
12152
12153 return (PARSER_OK);
12154 }
12155
12156 int sha1b64_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12157 {
12158 if ((input_len < DISPLAY_LEN_MIN_101) || (input_len > DISPLAY_LEN_MAX_101)) return (PARSER_GLOBAL_LENGTH);
12159
12160 if (memcmp (SIGNATURE_SHA1B64, input_buf, 5)) return (PARSER_SIGNATURE_UNMATCHED);
12161
12162 u32 *digest = (u32 *) hash_buf->digest;
12163
12164 u8 tmp_buf[100] = { 0 };
12165
12166 base64_decode (base64_to_int, (const u8 *) input_buf + 5, input_len - 5, tmp_buf);
12167
12168 memcpy (digest, tmp_buf, 20);
12169
12170 digest[0] = byte_swap_32 (digest[0]);
12171 digest[1] = byte_swap_32 (digest[1]);
12172 digest[2] = byte_swap_32 (digest[2]);
12173 digest[3] = byte_swap_32 (digest[3]);
12174 digest[4] = byte_swap_32 (digest[4]);
12175
12176 digest[0] -= SHA1M_A;
12177 digest[1] -= SHA1M_B;
12178 digest[2] -= SHA1M_C;
12179 digest[3] -= SHA1M_D;
12180 digest[4] -= SHA1M_E;
12181
12182 return (PARSER_OK);
12183 }
12184
12185 int sha1b64s_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12186 {
12187 if ((input_len < DISPLAY_LEN_MIN_111) || (input_len > DISPLAY_LEN_MAX_111)) return (PARSER_GLOBAL_LENGTH);
12188
12189 if (memcmp (SIGNATURE_SSHA1B64_lower, input_buf, 6) && memcmp (SIGNATURE_SSHA1B64_upper, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
12190
12191 u32 *digest = (u32 *) hash_buf->digest;
12192
12193 salt_t *salt = hash_buf->salt;
12194
12195 u8 tmp_buf[100] = { 0 };
12196
12197 int tmp_len = base64_decode (base64_to_int, (const u8 *) input_buf + 6, input_len - 6, tmp_buf);
12198
12199 if (tmp_len < 20) return (PARSER_HASH_LENGTH);
12200
12201 memcpy (digest, tmp_buf, 20);
12202
12203 int salt_len = tmp_len - 20;
12204
12205 if (salt_len < 0) return (PARSER_SALT_LENGTH);
12206
12207 salt->salt_len = salt_len;
12208
12209 memcpy (salt->salt_buf, tmp_buf + 20, salt->salt_len);
12210
12211 if (data.opts_type & OPTS_TYPE_ST_ADD80)
12212 {
12213 char *ptr = (char *) salt->salt_buf;
12214
12215 ptr[salt->salt_len] = 0x80;
12216 }
12217
12218 digest[0] = byte_swap_32 (digest[0]);
12219 digest[1] = byte_swap_32 (digest[1]);
12220 digest[2] = byte_swap_32 (digest[2]);
12221 digest[3] = byte_swap_32 (digest[3]);
12222 digest[4] = byte_swap_32 (digest[4]);
12223
12224 digest[0] -= SHA1M_A;
12225 digest[1] -= SHA1M_B;
12226 digest[2] -= SHA1M_C;
12227 digest[3] -= SHA1M_D;
12228 digest[4] -= SHA1M_E;
12229
12230 return (PARSER_OK);
12231 }
12232
12233 int mssql2000_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12234 {
12235 if ((input_len < DISPLAY_LEN_MIN_131) || (input_len > DISPLAY_LEN_MAX_131)) return (PARSER_GLOBAL_LENGTH);
12236
12237 if (memcmp (SIGNATURE_MSSQL, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
12238
12239 u32 *digest = (u32 *) hash_buf->digest;
12240
12241 salt_t *salt = hash_buf->salt;
12242
12243 char *salt_buf = input_buf + 6;
12244
12245 uint salt_len = 8;
12246
12247 char *salt_buf_ptr = (char *) salt->salt_buf;
12248
12249 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
12250
12251 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
12252
12253 salt->salt_len = salt_len;
12254
12255 char *hash_pos = input_buf + 6 + 8 + 40;
12256
12257 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
12258 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
12259 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
12260 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
12261 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
12262
12263 digest[0] -= SHA1M_A;
12264 digest[1] -= SHA1M_B;
12265 digest[2] -= SHA1M_C;
12266 digest[3] -= SHA1M_D;
12267 digest[4] -= SHA1M_E;
12268
12269 return (PARSER_OK);
12270 }
12271
12272 int mssql2005_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12273 {
12274 if ((input_len < DISPLAY_LEN_MIN_132) || (input_len > DISPLAY_LEN_MAX_132)) return (PARSER_GLOBAL_LENGTH);
12275
12276 if (memcmp (SIGNATURE_MSSQL, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
12277
12278 u32 *digest = (u32 *) hash_buf->digest;
12279
12280 salt_t *salt = hash_buf->salt;
12281
12282 char *salt_buf = input_buf + 6;
12283
12284 uint salt_len = 8;
12285
12286 char *salt_buf_ptr = (char *) salt->salt_buf;
12287
12288 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
12289
12290 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
12291
12292 salt->salt_len = salt_len;
12293
12294 char *hash_pos = input_buf + 6 + 8;
12295
12296 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
12297 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
12298 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
12299 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
12300 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
12301
12302 digest[0] -= SHA1M_A;
12303 digest[1] -= SHA1M_B;
12304 digest[2] -= SHA1M_C;
12305 digest[3] -= SHA1M_D;
12306 digest[4] -= SHA1M_E;
12307
12308 return (PARSER_OK);
12309 }
12310
12311 int mssql2012_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12312 {
12313 if ((input_len < DISPLAY_LEN_MIN_1731) || (input_len > DISPLAY_LEN_MAX_1731)) return (PARSER_GLOBAL_LENGTH);
12314
12315 if (memcmp (SIGNATURE_MSSQL2012, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
12316
12317 u64 *digest = (u64 *) hash_buf->digest;
12318
12319 salt_t *salt = hash_buf->salt;
12320
12321 char *salt_buf = input_buf + 6;
12322
12323 uint salt_len = 8;
12324
12325 char *salt_buf_ptr = (char *) salt->salt_buf;
12326
12327 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
12328
12329 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
12330
12331 salt->salt_len = salt_len;
12332
12333 char *hash_pos = input_buf + 6 + 8;
12334
12335 digest[0] = hex_to_u64 ((const u8 *) &hash_pos[ 0]);
12336 digest[1] = hex_to_u64 ((const u8 *) &hash_pos[ 16]);
12337 digest[2] = hex_to_u64 ((const u8 *) &hash_pos[ 32]);
12338 digest[3] = hex_to_u64 ((const u8 *) &hash_pos[ 48]);
12339 digest[4] = hex_to_u64 ((const u8 *) &hash_pos[ 64]);
12340 digest[5] = hex_to_u64 ((const u8 *) &hash_pos[ 80]);
12341 digest[6] = hex_to_u64 ((const u8 *) &hash_pos[ 96]);
12342 digest[7] = hex_to_u64 ((const u8 *) &hash_pos[112]);
12343
12344 digest[0] -= SHA512M_A;
12345 digest[1] -= SHA512M_B;
12346 digest[2] -= SHA512M_C;
12347 digest[3] -= SHA512M_D;
12348 digest[4] -= SHA512M_E;
12349 digest[5] -= SHA512M_F;
12350 digest[6] -= SHA512M_G;
12351 digest[7] -= SHA512M_H;
12352
12353 return (PARSER_OK);
12354 }
12355
12356 int oracleh_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12357 {
12358 if (data.opts_type & OPTS_TYPE_ST_HEX)
12359 {
12360 if ((input_len < DISPLAY_LEN_MIN_3100H) || (input_len > DISPLAY_LEN_MAX_3100H)) return (PARSER_GLOBAL_LENGTH);
12361 }
12362 else
12363 {
12364 if ((input_len < DISPLAY_LEN_MIN_3100) || (input_len > DISPLAY_LEN_MAX_3100)) return (PARSER_GLOBAL_LENGTH);
12365 }
12366
12367 u32 *digest = (u32 *) hash_buf->digest;
12368
12369 salt_t *salt = hash_buf->salt;
12370
12371 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12372 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12373 digest[2] = 0;
12374 digest[3] = 0;
12375
12376 digest[0] = byte_swap_32 (digest[0]);
12377 digest[1] = byte_swap_32 (digest[1]);
12378
12379 if (input_buf[16] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
12380
12381 uint salt_len = input_len - 16 - 1;
12382
12383 char *salt_buf = input_buf + 16 + 1;
12384
12385 char *salt_buf_ptr = (char *) salt->salt_buf;
12386
12387 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
12388
12389 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
12390
12391 salt->salt_len = salt_len;
12392
12393 return (PARSER_OK);
12394 }
12395
12396 int oracles_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12397 {
12398 if ((input_len < DISPLAY_LEN_MIN_112) || (input_len > DISPLAY_LEN_MAX_112)) return (PARSER_GLOBAL_LENGTH);
12399
12400 u32 *digest = (u32 *) hash_buf->digest;
12401
12402 salt_t *salt = hash_buf->salt;
12403
12404 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12405 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12406 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
12407 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
12408 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
12409
12410 digest[0] -= SHA1M_A;
12411 digest[1] -= SHA1M_B;
12412 digest[2] -= SHA1M_C;
12413 digest[3] -= SHA1M_D;
12414 digest[4] -= SHA1M_E;
12415
12416 if (input_buf[40] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
12417
12418 uint salt_len = input_len - 40 - 1;
12419
12420 char *salt_buf = input_buf + 40 + 1;
12421
12422 char *salt_buf_ptr = (char *) salt->salt_buf;
12423
12424 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
12425
12426 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
12427
12428 salt->salt_len = salt_len;
12429
12430 return (PARSER_OK);
12431 }
12432
12433 int oraclet_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12434 {
12435 if ((input_len < DISPLAY_LEN_MIN_12300) || (input_len > DISPLAY_LEN_MAX_12300)) return (PARSER_GLOBAL_LENGTH);
12436
12437 u32 *digest = (u32 *) hash_buf->digest;
12438
12439 salt_t *salt = hash_buf->salt;
12440
12441 char *hash_pos = input_buf;
12442
12443 digest[ 0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
12444 digest[ 1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
12445 digest[ 2] = hex_to_u32 ((const u8 *) &hash_pos[ 16]);
12446 digest[ 3] = hex_to_u32 ((const u8 *) &hash_pos[ 24]);
12447 digest[ 4] = hex_to_u32 ((const u8 *) &hash_pos[ 32]);
12448 digest[ 5] = hex_to_u32 ((const u8 *) &hash_pos[ 40]);
12449 digest[ 6] = hex_to_u32 ((const u8 *) &hash_pos[ 48]);
12450 digest[ 7] = hex_to_u32 ((const u8 *) &hash_pos[ 56]);
12451 digest[ 8] = hex_to_u32 ((const u8 *) &hash_pos[ 64]);
12452 digest[ 9] = hex_to_u32 ((const u8 *) &hash_pos[ 72]);
12453 digest[10] = hex_to_u32 ((const u8 *) &hash_pos[ 80]);
12454 digest[11] = hex_to_u32 ((const u8 *) &hash_pos[ 88]);
12455 digest[12] = hex_to_u32 ((const u8 *) &hash_pos[ 96]);
12456 digest[13] = hex_to_u32 ((const u8 *) &hash_pos[104]);
12457 digest[14] = hex_to_u32 ((const u8 *) &hash_pos[112]);
12458 digest[15] = hex_to_u32 ((const u8 *) &hash_pos[120]);
12459
12460 char *salt_pos = input_buf + 128;
12461
12462 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_pos[ 0]);
12463 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_pos[ 8]);
12464 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &salt_pos[16]);
12465 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &salt_pos[24]);
12466
12467 salt->salt_iter = ROUNDS_ORACLET - 1;
12468 salt->salt_len = 16;
12469
12470 return (PARSER_OK);
12471 }
12472
12473 int sha256_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12474 {
12475 if ((input_len < DISPLAY_LEN_MIN_1400) || (input_len > DISPLAY_LEN_MAX_1400)) return (PARSER_GLOBAL_LENGTH);
12476
12477 u32 *digest = (u32 *) hash_buf->digest;
12478
12479 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12480 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12481 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
12482 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
12483 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
12484 digest[5] = hex_to_u32 ((const u8 *) &input_buf[40]);
12485 digest[6] = hex_to_u32 ((const u8 *) &input_buf[48]);
12486 digest[7] = hex_to_u32 ((const u8 *) &input_buf[56]);
12487
12488 digest[0] -= SHA256M_A;
12489 digest[1] -= SHA256M_B;
12490 digest[2] -= SHA256M_C;
12491 digest[3] -= SHA256M_D;
12492 digest[4] -= SHA256M_E;
12493 digest[5] -= SHA256M_F;
12494 digest[6] -= SHA256M_G;
12495 digest[7] -= SHA256M_H;
12496
12497 return (PARSER_OK);
12498 }
12499
12500 int sha256s_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12501 {
12502 if (data.opts_type & OPTS_TYPE_ST_HEX)
12503 {
12504 if ((input_len < DISPLAY_LEN_MIN_1410H) || (input_len > DISPLAY_LEN_MAX_1410H)) return (PARSER_GLOBAL_LENGTH);
12505 }
12506 else
12507 {
12508 if ((input_len < DISPLAY_LEN_MIN_1410) || (input_len > DISPLAY_LEN_MAX_1410)) return (PARSER_GLOBAL_LENGTH);
12509 }
12510
12511 u32 *digest = (u32 *) hash_buf->digest;
12512
12513 salt_t *salt = hash_buf->salt;
12514
12515 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12516 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12517 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
12518 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
12519 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
12520 digest[5] = hex_to_u32 ((const u8 *) &input_buf[40]);
12521 digest[6] = hex_to_u32 ((const u8 *) &input_buf[48]);
12522 digest[7] = hex_to_u32 ((const u8 *) &input_buf[56]);
12523
12524 digest[0] -= SHA256M_A;
12525 digest[1] -= SHA256M_B;
12526 digest[2] -= SHA256M_C;
12527 digest[3] -= SHA256M_D;
12528 digest[4] -= SHA256M_E;
12529 digest[5] -= SHA256M_F;
12530 digest[6] -= SHA256M_G;
12531 digest[7] -= SHA256M_H;
12532
12533 if (input_buf[64] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
12534
12535 uint salt_len = input_len - 64 - 1;
12536
12537 char *salt_buf = input_buf + 64 + 1;
12538
12539 char *salt_buf_ptr = (char *) salt->salt_buf;
12540
12541 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
12542
12543 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
12544
12545 salt->salt_len = salt_len;
12546
12547 return (PARSER_OK);
12548 }
12549
12550 int sha384_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12551 {
12552 if ((input_len < DISPLAY_LEN_MIN_10800) || (input_len > DISPLAY_LEN_MAX_10800)) return (PARSER_GLOBAL_LENGTH);
12553
12554 u64 *digest = (u64 *) hash_buf->digest;
12555
12556 digest[0] = hex_to_u64 ((const u8 *) &input_buf[ 0]);
12557 digest[1] = hex_to_u64 ((const u8 *) &input_buf[ 16]);
12558 digest[2] = hex_to_u64 ((const u8 *) &input_buf[ 32]);
12559 digest[3] = hex_to_u64 ((const u8 *) &input_buf[ 48]);
12560 digest[4] = hex_to_u64 ((const u8 *) &input_buf[ 64]);
12561 digest[5] = hex_to_u64 ((const u8 *) &input_buf[ 80]);
12562 digest[6] = 0;
12563 digest[7] = 0;
12564
12565 digest[0] -= SHA384M_A;
12566 digest[1] -= SHA384M_B;
12567 digest[2] -= SHA384M_C;
12568 digest[3] -= SHA384M_D;
12569 digest[4] -= SHA384M_E;
12570 digest[5] -= SHA384M_F;
12571 digest[6] -= 0;
12572 digest[7] -= 0;
12573
12574 return (PARSER_OK);
12575 }
12576
12577 int sha512_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12578 {
12579 if ((input_len < DISPLAY_LEN_MIN_1700) || (input_len > DISPLAY_LEN_MAX_1700)) return (PARSER_GLOBAL_LENGTH);
12580
12581 u64 *digest = (u64 *) hash_buf->digest;
12582
12583 digest[0] = hex_to_u64 ((const u8 *) &input_buf[ 0]);
12584 digest[1] = hex_to_u64 ((const u8 *) &input_buf[ 16]);
12585 digest[2] = hex_to_u64 ((const u8 *) &input_buf[ 32]);
12586 digest[3] = hex_to_u64 ((const u8 *) &input_buf[ 48]);
12587 digest[4] = hex_to_u64 ((const u8 *) &input_buf[ 64]);
12588 digest[5] = hex_to_u64 ((const u8 *) &input_buf[ 80]);
12589 digest[6] = hex_to_u64 ((const u8 *) &input_buf[ 96]);
12590 digest[7] = hex_to_u64 ((const u8 *) &input_buf[112]);
12591
12592 digest[0] -= SHA512M_A;
12593 digest[1] -= SHA512M_B;
12594 digest[2] -= SHA512M_C;
12595 digest[3] -= SHA512M_D;
12596 digest[4] -= SHA512M_E;
12597 digest[5] -= SHA512M_F;
12598 digest[6] -= SHA512M_G;
12599 digest[7] -= SHA512M_H;
12600
12601 return (PARSER_OK);
12602 }
12603
12604 int sha512s_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12605 {
12606 if (data.opts_type & OPTS_TYPE_ST_HEX)
12607 {
12608 if ((input_len < DISPLAY_LEN_MIN_1710H) || (input_len > DISPLAY_LEN_MAX_1710H)) return (PARSER_GLOBAL_LENGTH);
12609 }
12610 else
12611 {
12612 if ((input_len < DISPLAY_LEN_MIN_1710) || (input_len > DISPLAY_LEN_MAX_1710)) return (PARSER_GLOBAL_LENGTH);
12613 }
12614
12615 u64 *digest = (u64 *) hash_buf->digest;
12616
12617 salt_t *salt = hash_buf->salt;
12618
12619 digest[0] = hex_to_u64 ((const u8 *) &input_buf[ 0]);
12620 digest[1] = hex_to_u64 ((const u8 *) &input_buf[ 16]);
12621 digest[2] = hex_to_u64 ((const u8 *) &input_buf[ 32]);
12622 digest[3] = hex_to_u64 ((const u8 *) &input_buf[ 48]);
12623 digest[4] = hex_to_u64 ((const u8 *) &input_buf[ 64]);
12624 digest[5] = hex_to_u64 ((const u8 *) &input_buf[ 80]);
12625 digest[6] = hex_to_u64 ((const u8 *) &input_buf[ 96]);
12626 digest[7] = hex_to_u64 ((const u8 *) &input_buf[112]);
12627
12628 digest[0] -= SHA512M_A;
12629 digest[1] -= SHA512M_B;
12630 digest[2] -= SHA512M_C;
12631 digest[3] -= SHA512M_D;
12632 digest[4] -= SHA512M_E;
12633 digest[5] -= SHA512M_F;
12634 digest[6] -= SHA512M_G;
12635 digest[7] -= SHA512M_H;
12636
12637 if (input_buf[128] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
12638
12639 uint salt_len = input_len - 128 - 1;
12640
12641 char *salt_buf = input_buf + 128 + 1;
12642
12643 char *salt_buf_ptr = (char *) salt->salt_buf;
12644
12645 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
12646
12647 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
12648
12649 salt->salt_len = salt_len;
12650
12651 return (PARSER_OK);
12652 }
12653
12654 int sha512crypt_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12655 {
12656 if (memcmp (SIGNATURE_SHA512CRYPT, input_buf, 3)) return (PARSER_SIGNATURE_UNMATCHED);
12657
12658 u64 *digest = (u64 *) hash_buf->digest;
12659
12660 salt_t *salt = hash_buf->salt;
12661
12662 char *salt_pos = input_buf + 3;
12663
12664 uint iterations_len = 0;
12665
12666 if (memcmp (salt_pos, "rounds=", 7) == 0)
12667 {
12668 salt_pos += 7;
12669
12670 for (iterations_len = 0; salt_pos[0] >= '0' && salt_pos[0] <= '9' && iterations_len < 7; iterations_len++, salt_pos += 1) continue;
12671
12672 if (iterations_len == 0 ) return (PARSER_SALT_ITERATION);
12673 if (salt_pos[0] != '$') return (PARSER_SIGNATURE_UNMATCHED);
12674
12675 salt_pos[0] = 0x0;
12676
12677 salt->salt_iter = atoi (salt_pos - iterations_len);
12678
12679 salt_pos += 1;
12680
12681 iterations_len += 8;
12682 }
12683 else
12684 {
12685 salt->salt_iter = ROUNDS_SHA512CRYPT;
12686 }
12687
12688 if ((input_len < DISPLAY_LEN_MIN_1800) || (input_len > DISPLAY_LEN_MAX_1800 + iterations_len)) return (PARSER_GLOBAL_LENGTH);
12689
12690 char *hash_pos = strchr (salt_pos, '$');
12691
12692 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
12693
12694 uint salt_len = hash_pos - salt_pos;
12695
12696 if (salt_len > 16) return (PARSER_SALT_LENGTH);
12697
12698 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
12699
12700 salt->salt_len = salt_len;
12701
12702 hash_pos++;
12703
12704 sha512crypt_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
12705
12706 return (PARSER_OK);
12707 }
12708
12709 int keccak_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12710 {
12711 if ((input_len < DISPLAY_LEN_MIN_5000) || (input_len > DISPLAY_LEN_MAX_5000)) return (PARSER_GLOBAL_LENGTH);
12712
12713 if (input_len % 16) return (PARSER_GLOBAL_LENGTH);
12714
12715 u64 *digest = (u64 *) hash_buf->digest;
12716
12717 salt_t *salt = hash_buf->salt;
12718
12719 uint keccak_mdlen = input_len / 2;
12720
12721 for (uint i = 0; i < keccak_mdlen / 8; i++)
12722 {
12723 digest[i] = hex_to_u64 ((const u8 *) &input_buf[i * 16]);
12724
12725 digest[i] = byte_swap_64 (digest[i]);
12726 }
12727
12728 salt->keccak_mdlen = keccak_mdlen;
12729
12730 return (PARSER_OK);
12731 }
12732
12733 int ikepsk_md5_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12734 {
12735 if ((input_len < DISPLAY_LEN_MIN_5300) || (input_len > DISPLAY_LEN_MAX_5300)) return (PARSER_GLOBAL_LENGTH);
12736
12737 u32 *digest = (u32 *) hash_buf->digest;
12738
12739 salt_t *salt = hash_buf->salt;
12740
12741 ikepsk_t *ikepsk = (ikepsk_t *) hash_buf->esalt;
12742
12743 /**
12744 * Parse that strange long line
12745 */
12746
12747 char *in_off[9];
12748
12749 size_t in_len[9] = { 0 };
12750
12751 in_off[0] = strtok (input_buf, ":");
12752
12753 if (in_off[0] == NULL) return (PARSER_SEPARATOR_UNMATCHED);
12754
12755 in_len[0] = strlen (in_off[0]);
12756
12757 size_t i;
12758
12759 for (i = 1; i < 9; i++)
12760 {
12761 in_off[i] = strtok (NULL, ":");
12762
12763 if (in_off[i] == NULL) return (PARSER_SEPARATOR_UNMATCHED);
12764
12765 in_len[i] = strlen (in_off[i]);
12766 }
12767
12768 char *ptr = (char *) ikepsk->msg_buf;
12769
12770 for (i = 0; i < in_len[0]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[0] + i);
12771 for (i = 0; i < in_len[1]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[1] + i);
12772 for (i = 0; i < in_len[2]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[2] + i);
12773 for (i = 0; i < in_len[3]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[3] + i);
12774 for (i = 0; i < in_len[4]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[4] + i);
12775 for (i = 0; i < in_len[5]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[5] + i);
12776
12777 *ptr = 0x80;
12778
12779 ikepsk->msg_len = (in_len[0] + in_len[1] + in_len[2] + in_len[3] + in_len[4] + in_len[5]) / 2;
12780
12781 ptr = (char *) ikepsk->nr_buf;
12782
12783 for (i = 0; i < in_len[6]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[6] + i);
12784 for (i = 0; i < in_len[7]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[7] + i);
12785
12786 *ptr = 0x80;
12787
12788 ikepsk->nr_len = (in_len[6] + in_len[7]) / 2;
12789
12790 /**
12791 * Store to database
12792 */
12793
12794 ptr = in_off[8];
12795
12796 digest[0] = hex_to_u32 ((const u8 *) &ptr[ 0]);
12797 digest[1] = hex_to_u32 ((const u8 *) &ptr[ 8]);
12798 digest[2] = hex_to_u32 ((const u8 *) &ptr[16]);
12799 digest[3] = hex_to_u32 ((const u8 *) &ptr[24]);
12800
12801 digest[0] = byte_swap_32 (digest[0]);
12802 digest[1] = byte_swap_32 (digest[1]);
12803 digest[2] = byte_swap_32 (digest[2]);
12804 digest[3] = byte_swap_32 (digest[3]);
12805
12806 salt->salt_len = 32;
12807
12808 salt->salt_buf[0] = ikepsk->nr_buf[0];
12809 salt->salt_buf[1] = ikepsk->nr_buf[1];
12810 salt->salt_buf[2] = ikepsk->nr_buf[2];
12811 salt->salt_buf[3] = ikepsk->nr_buf[3];
12812 salt->salt_buf[4] = ikepsk->nr_buf[4];
12813 salt->salt_buf[5] = ikepsk->nr_buf[5];
12814 salt->salt_buf[6] = ikepsk->nr_buf[6];
12815 salt->salt_buf[7] = ikepsk->nr_buf[7];
12816
12817 return (PARSER_OK);
12818 }
12819
12820 int ikepsk_sha1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12821 {
12822 if ((input_len < DISPLAY_LEN_MIN_5400) || (input_len > DISPLAY_LEN_MAX_5400)) return (PARSER_GLOBAL_LENGTH);
12823
12824 u32 *digest = (u32 *) hash_buf->digest;
12825
12826 salt_t *salt = hash_buf->salt;
12827
12828 ikepsk_t *ikepsk = (ikepsk_t *) hash_buf->esalt;
12829
12830 /**
12831 * Parse that strange long line
12832 */
12833
12834 char *in_off[9];
12835
12836 size_t in_len[9] = { 0 };
12837
12838 in_off[0] = strtok (input_buf, ":");
12839
12840 if (in_off[0] == NULL) return (PARSER_SEPARATOR_UNMATCHED);
12841
12842 in_len[0] = strlen (in_off[0]);
12843
12844 size_t i;
12845
12846 for (i = 1; i < 9; i++)
12847 {
12848 in_off[i] = strtok (NULL, ":");
12849
12850 if (in_off[i] == NULL) return (PARSER_SEPARATOR_UNMATCHED);
12851
12852 in_len[i] = strlen (in_off[i]);
12853 }
12854
12855 char *ptr = (char *) ikepsk->msg_buf;
12856
12857 for (i = 0; i < in_len[0]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[0] + i);
12858 for (i = 0; i < in_len[1]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[1] + i);
12859 for (i = 0; i < in_len[2]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[2] + i);
12860 for (i = 0; i < in_len[3]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[3] + i);
12861 for (i = 0; i < in_len[4]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[4] + i);
12862 for (i = 0; i < in_len[5]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[5] + i);
12863
12864 *ptr = 0x80;
12865
12866 ikepsk->msg_len = (in_len[0] + in_len[1] + in_len[2] + in_len[3] + in_len[4] + in_len[5]) / 2;
12867
12868 ptr = (char *) ikepsk->nr_buf;
12869
12870 for (i = 0; i < in_len[6]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[6] + i);
12871 for (i = 0; i < in_len[7]; i += 2) *ptr++ = hex_to_u8 ((const u8 *) in_off[7] + i);
12872
12873 *ptr = 0x80;
12874
12875 ikepsk->nr_len = (in_len[6] + in_len[7]) / 2;
12876
12877 /**
12878 * Store to database
12879 */
12880
12881 ptr = in_off[8];
12882
12883 digest[0] = hex_to_u32 ((const u8 *) &ptr[ 0]);
12884 digest[1] = hex_to_u32 ((const u8 *) &ptr[ 8]);
12885 digest[2] = hex_to_u32 ((const u8 *) &ptr[16]);
12886 digest[3] = hex_to_u32 ((const u8 *) &ptr[24]);
12887 digest[4] = hex_to_u32 ((const u8 *) &ptr[32]);
12888
12889 salt->salt_len = 32;
12890
12891 salt->salt_buf[0] = ikepsk->nr_buf[0];
12892 salt->salt_buf[1] = ikepsk->nr_buf[1];
12893 salt->salt_buf[2] = ikepsk->nr_buf[2];
12894 salt->salt_buf[3] = ikepsk->nr_buf[3];
12895 salt->salt_buf[4] = ikepsk->nr_buf[4];
12896 salt->salt_buf[5] = ikepsk->nr_buf[5];
12897 salt->salt_buf[6] = ikepsk->nr_buf[6];
12898 salt->salt_buf[7] = ikepsk->nr_buf[7];
12899
12900 return (PARSER_OK);
12901 }
12902
12903 int ripemd160_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12904 {
12905 if ((input_len < DISPLAY_LEN_MIN_6000) || (input_len > DISPLAY_LEN_MAX_6000)) return (PARSER_GLOBAL_LENGTH);
12906
12907 u32 *digest = (u32 *) hash_buf->digest;
12908
12909 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12910 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12911 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
12912 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
12913 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
12914
12915 digest[0] = byte_swap_32 (digest[0]);
12916 digest[1] = byte_swap_32 (digest[1]);
12917 digest[2] = byte_swap_32 (digest[2]);
12918 digest[3] = byte_swap_32 (digest[3]);
12919 digest[4] = byte_swap_32 (digest[4]);
12920
12921 return (PARSER_OK);
12922 }
12923
12924 int whirlpool_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12925 {
12926 if ((input_len < DISPLAY_LEN_MIN_6100) || (input_len > DISPLAY_LEN_MAX_6100)) return (PARSER_GLOBAL_LENGTH);
12927
12928 u32 *digest = (u32 *) hash_buf->digest;
12929
12930 digest[ 0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12931 digest[ 1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12932 digest[ 2] = hex_to_u32 ((const u8 *) &input_buf[ 16]);
12933 digest[ 3] = hex_to_u32 ((const u8 *) &input_buf[ 24]);
12934 digest[ 4] = hex_to_u32 ((const u8 *) &input_buf[ 32]);
12935 digest[ 5] = hex_to_u32 ((const u8 *) &input_buf[ 40]);
12936 digest[ 6] = hex_to_u32 ((const u8 *) &input_buf[ 48]);
12937 digest[ 7] = hex_to_u32 ((const u8 *) &input_buf[ 56]);
12938 digest[ 8] = hex_to_u32 ((const u8 *) &input_buf[ 64]);
12939 digest[ 9] = hex_to_u32 ((const u8 *) &input_buf[ 72]);
12940 digest[10] = hex_to_u32 ((const u8 *) &input_buf[ 80]);
12941 digest[11] = hex_to_u32 ((const u8 *) &input_buf[ 88]);
12942 digest[12] = hex_to_u32 ((const u8 *) &input_buf[ 96]);
12943 digest[13] = hex_to_u32 ((const u8 *) &input_buf[104]);
12944 digest[14] = hex_to_u32 ((const u8 *) &input_buf[112]);
12945 digest[15] = hex_to_u32 ((const u8 *) &input_buf[120]);
12946
12947 return (PARSER_OK);
12948 }
12949
12950 int androidpin_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
12951 {
12952 if ((input_len < DISPLAY_LEN_MIN_5800) || (input_len > DISPLAY_LEN_MAX_5800)) return (PARSER_GLOBAL_LENGTH);
12953
12954 u32 *digest = (u32 *) hash_buf->digest;
12955
12956 salt_t *salt = hash_buf->salt;
12957
12958 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
12959 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
12960 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
12961 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
12962 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
12963
12964 if (input_buf[40] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
12965
12966 uint salt_len = input_len - 40 - 1;
12967
12968 char *salt_buf = input_buf + 40 + 1;
12969
12970 char *salt_buf_ptr = (char *) salt->salt_buf;
12971
12972 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
12973
12974 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
12975
12976 salt->salt_len = salt_len;
12977
12978 salt->salt_iter = ROUNDS_ANDROIDPIN - 1;
12979
12980 return (PARSER_OK);
12981 }
12982
12983 int truecrypt_parse_hash_1k (char *input_buf, uint input_len, hash_t *hash_buf)
12984 {
12985 u32 *digest = (u32 *) hash_buf->digest;
12986
12987 salt_t *salt = hash_buf->salt;
12988
12989 tc_t *tc = (tc_t *) hash_buf->esalt;
12990
12991 if (input_len == 0)
12992 {
12993 log_error ("TrueCrypt container not specified");
12994
12995 exit (-1);
12996 }
12997
12998 FILE *fp = fopen (input_buf, "rb");
12999
13000 if (fp == NULL)
13001 {
13002 log_error ("%s: %s", input_buf, strerror (errno));
13003
13004 exit (-1);
13005 }
13006
13007 char buf[512] = { 0 };
13008
13009 int n = fread (buf, 1, sizeof (buf), fp);
13010
13011 fclose (fp);
13012
13013 if (n != 512) return (PARSER_TC_FILE_SIZE);
13014
13015 memcpy (tc->salt_buf, buf, 64);
13016
13017 memcpy (tc->data_buf, buf + 64, 512 - 64);
13018
13019 salt->salt_buf[0] = tc->salt_buf[0];
13020
13021 salt->salt_len = 4;
13022
13023 salt->salt_iter = ROUNDS_TRUECRYPT_1K - 1;
13024
13025 tc->signature = 0x45555254; // "TRUE"
13026
13027 digest[0] = tc->data_buf[0];
13028
13029 return (PARSER_OK);
13030 }
13031
13032 int truecrypt_parse_hash_2k (char *input_buf, uint input_len, hash_t *hash_buf)
13033 {
13034 u32 *digest = (u32 *) hash_buf->digest;
13035
13036 salt_t *salt = hash_buf->salt;
13037
13038 tc_t *tc = (tc_t *) hash_buf->esalt;
13039
13040 if (input_len == 0)
13041 {
13042 log_error ("TrueCrypt container not specified");
13043
13044 exit (-1);
13045 }
13046
13047 FILE *fp = fopen (input_buf, "rb");
13048
13049 if (fp == NULL)
13050 {
13051 log_error ("%s: %s", input_buf, strerror (errno));
13052
13053 exit (-1);
13054 }
13055
13056 char buf[512] = { 0 };
13057
13058 int n = fread (buf, 1, sizeof (buf), fp);
13059
13060 fclose (fp);
13061
13062 if (n != 512) return (PARSER_TC_FILE_SIZE);
13063
13064 memcpy (tc->salt_buf, buf, 64);
13065
13066 memcpy (tc->data_buf, buf + 64, 512 - 64);
13067
13068 salt->salt_buf[0] = tc->salt_buf[0];
13069
13070 salt->salt_len = 4;
13071
13072 salt->salt_iter = ROUNDS_TRUECRYPT_2K - 1;
13073
13074 tc->signature = 0x45555254; // "TRUE"
13075
13076 digest[0] = tc->data_buf[0];
13077
13078 return (PARSER_OK);
13079 }
13080
13081 int veracrypt_parse_hash_200000 (char *input_buf, uint input_len, hash_t *hash_buf)
13082 {
13083 u32 *digest = (u32 *) hash_buf->digest;
13084
13085 salt_t *salt = hash_buf->salt;
13086
13087 tc_t *tc = (tc_t *) hash_buf->esalt;
13088
13089 if (input_len == 0)
13090 {
13091 log_error ("VeraCrypt container not specified");
13092
13093 exit (-1);
13094 }
13095
13096 FILE *fp = fopen (input_buf, "rb");
13097
13098 if (fp == NULL)
13099 {
13100 log_error ("%s: %s", input_buf, strerror (errno));
13101
13102 exit (-1);
13103 }
13104
13105 char buf[512] = { 0 };
13106
13107 int n = fread (buf, 1, sizeof (buf), fp);
13108
13109 fclose (fp);
13110
13111 if (n != 512) return (PARSER_VC_FILE_SIZE);
13112
13113 memcpy (tc->salt_buf, buf, 64);
13114
13115 memcpy (tc->data_buf, buf + 64, 512 - 64);
13116
13117 salt->salt_buf[0] = tc->salt_buf[0];
13118
13119 salt->salt_len = 4;
13120
13121 salt->salt_iter = ROUNDS_VERACRYPT_200000 - 1;
13122
13123 tc->signature = 0x41524556; // "VERA"
13124
13125 digest[0] = tc->data_buf[0];
13126
13127 return (PARSER_OK);
13128 }
13129
13130 int veracrypt_parse_hash_500000 (char *input_buf, uint input_len, hash_t *hash_buf)
13131 {
13132 u32 *digest = (u32 *) hash_buf->digest;
13133
13134 salt_t *salt = hash_buf->salt;
13135
13136 tc_t *tc = (tc_t *) hash_buf->esalt;
13137
13138 if (input_len == 0)
13139 {
13140 log_error ("VeraCrypt container not specified");
13141
13142 exit (-1);
13143 }
13144
13145 FILE *fp = fopen (input_buf, "rb");
13146
13147 if (fp == NULL)
13148 {
13149 log_error ("%s: %s", input_buf, strerror (errno));
13150
13151 exit (-1);
13152 }
13153
13154 char buf[512] = { 0 };
13155
13156 int n = fread (buf, 1, sizeof (buf), fp);
13157
13158 fclose (fp);
13159
13160 if (n != 512) return (PARSER_VC_FILE_SIZE);
13161
13162 memcpy (tc->salt_buf, buf, 64);
13163
13164 memcpy (tc->data_buf, buf + 64, 512 - 64);
13165
13166 salt->salt_buf[0] = tc->salt_buf[0];
13167
13168 salt->salt_len = 4;
13169
13170 salt->salt_iter = ROUNDS_VERACRYPT_500000 - 1;
13171
13172 tc->signature = 0x41524556; // "VERA"
13173
13174 digest[0] = tc->data_buf[0];
13175
13176 return (PARSER_OK);
13177 }
13178
13179 int veracrypt_parse_hash_327661 (char *input_buf, uint input_len, hash_t *hash_buf)
13180 {
13181 u32 *digest = (u32 *) hash_buf->digest;
13182
13183 salt_t *salt = hash_buf->salt;
13184
13185 tc_t *tc = (tc_t *) hash_buf->esalt;
13186
13187 if (input_len == 0)
13188 {
13189 log_error ("VeraCrypt container not specified");
13190
13191 exit (-1);
13192 }
13193
13194 FILE *fp = fopen (input_buf, "rb");
13195
13196 if (fp == NULL)
13197 {
13198 log_error ("%s: %s", input_buf, strerror (errno));
13199
13200 exit (-1);
13201 }
13202
13203 char buf[512] = { 0 };
13204
13205 int n = fread (buf, 1, sizeof (buf), fp);
13206
13207 fclose (fp);
13208
13209 if (n != 512) return (PARSER_VC_FILE_SIZE);
13210
13211 memcpy (tc->salt_buf, buf, 64);
13212
13213 memcpy (tc->data_buf, buf + 64, 512 - 64);
13214
13215 salt->salt_buf[0] = tc->salt_buf[0];
13216
13217 salt->salt_len = 4;
13218
13219 salt->salt_iter = ROUNDS_VERACRYPT_327661 - 1;
13220
13221 tc->signature = 0x41524556; // "VERA"
13222
13223 digest[0] = tc->data_buf[0];
13224
13225 return (PARSER_OK);
13226 }
13227
13228 int veracrypt_parse_hash_655331 (char *input_buf, uint input_len, hash_t *hash_buf)
13229 {
13230 u32 *digest = (u32 *) hash_buf->digest;
13231
13232 salt_t *salt = hash_buf->salt;
13233
13234 tc_t *tc = (tc_t *) hash_buf->esalt;
13235
13236 if (input_len == 0)
13237 {
13238 log_error ("VeraCrypt container not specified");
13239
13240 exit (-1);
13241 }
13242
13243 FILE *fp = fopen (input_buf, "rb");
13244
13245 if (fp == NULL)
13246 {
13247 log_error ("%s: %s", input_buf, strerror (errno));
13248
13249 exit (-1);
13250 }
13251
13252 char buf[512] = { 0 };
13253
13254 int n = fread (buf, 1, sizeof (buf), fp);
13255
13256 fclose (fp);
13257
13258 if (n != 512) return (PARSER_VC_FILE_SIZE);
13259
13260 memcpy (tc->salt_buf, buf, 64);
13261
13262 memcpy (tc->data_buf, buf + 64, 512 - 64);
13263
13264 salt->salt_buf[0] = tc->salt_buf[0];
13265
13266 salt->salt_len = 4;
13267
13268 salt->salt_iter = ROUNDS_VERACRYPT_655331 - 1;
13269
13270 tc->signature = 0x41524556; // "VERA"
13271
13272 digest[0] = tc->data_buf[0];
13273
13274 return (PARSER_OK);
13275 }
13276
13277 int md5aix_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13278 {
13279 if ((input_len < DISPLAY_LEN_MIN_6300) || (input_len > DISPLAY_LEN_MAX_6300)) return (PARSER_GLOBAL_LENGTH);
13280
13281 if (memcmp (SIGNATURE_MD5AIX, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
13282
13283 u32 *digest = (u32 *) hash_buf->digest;
13284
13285 salt_t *salt = hash_buf->salt;
13286
13287 char *salt_pos = input_buf + 6;
13288
13289 char *hash_pos = strchr (salt_pos, '$');
13290
13291 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13292
13293 uint salt_len = hash_pos - salt_pos;
13294
13295 if (salt_len < 8) return (PARSER_SALT_LENGTH);
13296
13297 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
13298
13299 salt->salt_len = salt_len;
13300
13301 salt->salt_iter = 1000;
13302
13303 hash_pos++;
13304
13305 md5crypt_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
13306
13307 return (PARSER_OK);
13308 }
13309
13310 int sha1aix_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13311 {
13312 if ((input_len < DISPLAY_LEN_MIN_6700) || (input_len > DISPLAY_LEN_MAX_6700)) return (PARSER_GLOBAL_LENGTH);
13313
13314 if (memcmp (SIGNATURE_SHA1AIX, input_buf, 7)) return (PARSER_SIGNATURE_UNMATCHED);
13315
13316 u32 *digest = (u32 *) hash_buf->digest;
13317
13318 salt_t *salt = hash_buf->salt;
13319
13320 char *iter_pos = input_buf + 7;
13321
13322 char *salt_pos = strchr (iter_pos, '$');
13323
13324 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13325
13326 salt_pos++;
13327
13328 char *hash_pos = strchr (salt_pos, '$');
13329
13330 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13331
13332 uint salt_len = hash_pos - salt_pos;
13333
13334 if (salt_len < 16) return (PARSER_SALT_LENGTH);
13335
13336 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
13337
13338 salt->salt_len = salt_len;
13339
13340 char salt_iter[3] = { iter_pos[0], iter_pos[1], 0 };
13341
13342 salt->salt_sign[0] = atoi (salt_iter);
13343
13344 salt->salt_iter = (1 << atoi (salt_iter)) - 1;
13345
13346 hash_pos++;
13347
13348 sha1aix_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
13349
13350 digest[0] = byte_swap_32 (digest[0]);
13351 digest[1] = byte_swap_32 (digest[1]);
13352 digest[2] = byte_swap_32 (digest[2]);
13353 digest[3] = byte_swap_32 (digest[3]);
13354 digest[4] = byte_swap_32 (digest[4]);
13355
13356 return (PARSER_OK);
13357 }
13358
13359 int sha256aix_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13360 {
13361 if ((input_len < DISPLAY_LEN_MIN_6400) || (input_len > DISPLAY_LEN_MAX_6400)) return (PARSER_GLOBAL_LENGTH);
13362
13363 if (memcmp (SIGNATURE_SHA256AIX, input_buf, 9)) return (PARSER_SIGNATURE_UNMATCHED);
13364
13365 u32 *digest = (u32 *) hash_buf->digest;
13366
13367 salt_t *salt = hash_buf->salt;
13368
13369 char *iter_pos = input_buf + 9;
13370
13371 char *salt_pos = strchr (iter_pos, '$');
13372
13373 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13374
13375 salt_pos++;
13376
13377 char *hash_pos = strchr (salt_pos, '$');
13378
13379 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13380
13381 uint salt_len = hash_pos - salt_pos;
13382
13383 if (salt_len < 16) return (PARSER_SALT_LENGTH);
13384
13385 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
13386
13387 salt->salt_len = salt_len;
13388
13389 char salt_iter[3] = { iter_pos[0], iter_pos[1], 0 };
13390
13391 salt->salt_sign[0] = atoi (salt_iter);
13392
13393 salt->salt_iter = (1 << atoi (salt_iter)) - 1;
13394
13395 hash_pos++;
13396
13397 sha256aix_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
13398
13399 digest[0] = byte_swap_32 (digest[0]);
13400 digest[1] = byte_swap_32 (digest[1]);
13401 digest[2] = byte_swap_32 (digest[2]);
13402 digest[3] = byte_swap_32 (digest[3]);
13403 digest[4] = byte_swap_32 (digest[4]);
13404 digest[5] = byte_swap_32 (digest[5]);
13405 digest[6] = byte_swap_32 (digest[6]);
13406 digest[7] = byte_swap_32 (digest[7]);
13407
13408 return (PARSER_OK);
13409 }
13410
13411 int sha512aix_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13412 {
13413 if ((input_len < DISPLAY_LEN_MIN_6500) || (input_len > DISPLAY_LEN_MAX_6500)) return (PARSER_GLOBAL_LENGTH);
13414
13415 if (memcmp (SIGNATURE_SHA512AIX, input_buf, 9)) return (PARSER_SIGNATURE_UNMATCHED);
13416
13417 u64 *digest = (u64 *) hash_buf->digest;
13418
13419 salt_t *salt = hash_buf->salt;
13420
13421 char *iter_pos = input_buf + 9;
13422
13423 char *salt_pos = strchr (iter_pos, '$');
13424
13425 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13426
13427 salt_pos++;
13428
13429 char *hash_pos = strchr (salt_pos, '$');
13430
13431 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13432
13433 uint salt_len = hash_pos - salt_pos;
13434
13435 if (salt_len < 16) return (PARSER_SALT_LENGTH);
13436
13437 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
13438
13439 salt->salt_len = salt_len;
13440
13441 char salt_iter[3] = { iter_pos[0], iter_pos[1], 0 };
13442
13443 salt->salt_sign[0] = atoi (salt_iter);
13444
13445 salt->salt_iter = (1 << atoi (salt_iter)) - 1;
13446
13447 hash_pos++;
13448
13449 sha512aix_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
13450
13451 digest[0] = byte_swap_64 (digest[0]);
13452 digest[1] = byte_swap_64 (digest[1]);
13453 digest[2] = byte_swap_64 (digest[2]);
13454 digest[3] = byte_swap_64 (digest[3]);
13455 digest[4] = byte_swap_64 (digest[4]);
13456 digest[5] = byte_swap_64 (digest[5]);
13457 digest[6] = byte_swap_64 (digest[6]);
13458 digest[7] = byte_swap_64 (digest[7]);
13459
13460 return (PARSER_OK);
13461 }
13462
13463 int agilekey_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13464 {
13465 if ((input_len < DISPLAY_LEN_MIN_6600) || (input_len > DISPLAY_LEN_MAX_6600)) return (PARSER_GLOBAL_LENGTH);
13466
13467 u32 *digest = (u32 *) hash_buf->digest;
13468
13469 salt_t *salt = hash_buf->salt;
13470
13471 agilekey_t *agilekey = (agilekey_t *) hash_buf->esalt;
13472
13473 /**
13474 * parse line
13475 */
13476
13477 char *iterations_pos = input_buf;
13478
13479 char *saltbuf_pos = strchr (iterations_pos, ':');
13480
13481 if (saltbuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13482
13483 uint iterations_len = saltbuf_pos - iterations_pos;
13484
13485 if (iterations_len > 6) return (PARSER_SALT_LENGTH);
13486
13487 saltbuf_pos++;
13488
13489 char *cipherbuf_pos = strchr (saltbuf_pos, ':');
13490
13491 if (cipherbuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13492
13493 uint saltbuf_len = cipherbuf_pos - saltbuf_pos;
13494
13495 if (saltbuf_len != 16) return (PARSER_SALT_LENGTH);
13496
13497 uint cipherbuf_len = input_len - iterations_len - 1 - saltbuf_len - 1;
13498
13499 if (cipherbuf_len != 2080) return (PARSER_HASH_LENGTH);
13500
13501 cipherbuf_pos++;
13502
13503 /**
13504 * pbkdf2 iterations
13505 */
13506
13507 salt->salt_iter = atoi (iterations_pos) - 1;
13508
13509 /**
13510 * handle salt encoding
13511 */
13512
13513 char *saltbuf_ptr = (char *) salt->salt_buf;
13514
13515 for (uint i = 0; i < saltbuf_len; i += 2)
13516 {
13517 const char p0 = saltbuf_pos[i + 0];
13518 const char p1 = saltbuf_pos[i + 1];
13519
13520 *saltbuf_ptr++ = hex_convert (p1) << 0
13521 | hex_convert (p0) << 4;
13522 }
13523
13524 salt->salt_len = saltbuf_len / 2;
13525
13526 /**
13527 * handle cipher encoding
13528 */
13529
13530 uint *tmp = (uint *) mymalloc (32);
13531
13532 char *cipherbuf_ptr = (char *) tmp;
13533
13534 for (uint i = 2016; i < cipherbuf_len; i += 2)
13535 {
13536 const char p0 = cipherbuf_pos[i + 0];
13537 const char p1 = cipherbuf_pos[i + 1];
13538
13539 *cipherbuf_ptr++ = hex_convert (p1) << 0
13540 | hex_convert (p0) << 4;
13541 }
13542
13543 // iv is stored at salt_buf 4 (length 16)
13544 // data is stored at salt_buf 8 (length 16)
13545
13546 salt->salt_buf[ 4] = byte_swap_32 (tmp[0]);
13547 salt->salt_buf[ 5] = byte_swap_32 (tmp[1]);
13548 salt->salt_buf[ 6] = byte_swap_32 (tmp[2]);
13549 salt->salt_buf[ 7] = byte_swap_32 (tmp[3]);
13550
13551 salt->salt_buf[ 8] = byte_swap_32 (tmp[4]);
13552 salt->salt_buf[ 9] = byte_swap_32 (tmp[5]);
13553 salt->salt_buf[10] = byte_swap_32 (tmp[6]);
13554 salt->salt_buf[11] = byte_swap_32 (tmp[7]);
13555
13556 free (tmp);
13557
13558 for (uint i = 0, j = 0; i < 1040; i += 1, j += 2)
13559 {
13560 const char p0 = cipherbuf_pos[j + 0];
13561 const char p1 = cipherbuf_pos[j + 1];
13562
13563 agilekey->cipher[i] = hex_convert (p1) << 0
13564 | hex_convert (p0) << 4;
13565 }
13566
13567 /**
13568 * digest buf
13569 */
13570
13571 digest[0] = 0x10101010;
13572 digest[1] = 0x10101010;
13573 digest[2] = 0x10101010;
13574 digest[3] = 0x10101010;
13575
13576 return (PARSER_OK);
13577 }
13578
13579 int lastpass_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13580 {
13581 if ((input_len < DISPLAY_LEN_MIN_6800) || (input_len > DISPLAY_LEN_MAX_6800)) return (PARSER_GLOBAL_LENGTH);
13582
13583 u32 *digest = (u32 *) hash_buf->digest;
13584
13585 salt_t *salt = hash_buf->salt;
13586
13587 char *hashbuf_pos = input_buf;
13588
13589 char *iterations_pos = strchr (hashbuf_pos, ':');
13590
13591 if (iterations_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13592
13593 uint hash_len = iterations_pos - hashbuf_pos;
13594
13595 if ((hash_len != 32) && (hash_len != 64)) return (PARSER_HASH_LENGTH);
13596
13597 iterations_pos++;
13598
13599 char *saltbuf_pos = strchr (iterations_pos, ':');
13600
13601 if (saltbuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13602
13603 uint iterations_len = saltbuf_pos - iterations_pos;
13604
13605 saltbuf_pos++;
13606
13607 uint salt_len = input_len - hash_len - 1 - iterations_len - 1;
13608
13609 if (salt_len > 32) return (PARSER_SALT_LENGTH);
13610
13611 char *salt_buf_ptr = (char *) salt->salt_buf;
13612
13613 salt_len = parse_and_store_salt (salt_buf_ptr, saltbuf_pos, salt_len);
13614
13615 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
13616
13617 salt->salt_len = salt_len;
13618
13619 salt->salt_iter = atoi (iterations_pos) - 1;
13620
13621 digest[0] = hex_to_u32 ((const u8 *) &hashbuf_pos[ 0]);
13622 digest[1] = hex_to_u32 ((const u8 *) &hashbuf_pos[ 8]);
13623 digest[2] = hex_to_u32 ((const u8 *) &hashbuf_pos[16]);
13624 digest[3] = hex_to_u32 ((const u8 *) &hashbuf_pos[24]);
13625
13626 return (PARSER_OK);
13627 }
13628
13629 int gost_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13630 {
13631 if ((input_len < DISPLAY_LEN_MIN_6900) || (input_len > DISPLAY_LEN_MAX_6900)) return (PARSER_GLOBAL_LENGTH);
13632
13633 u32 *digest = (u32 *) hash_buf->digest;
13634
13635 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
13636 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
13637 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
13638 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
13639 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
13640 digest[5] = hex_to_u32 ((const u8 *) &input_buf[40]);
13641 digest[6] = hex_to_u32 ((const u8 *) &input_buf[48]);
13642 digest[7] = hex_to_u32 ((const u8 *) &input_buf[56]);
13643
13644 digest[0] = byte_swap_32 (digest[0]);
13645 digest[1] = byte_swap_32 (digest[1]);
13646 digest[2] = byte_swap_32 (digest[2]);
13647 digest[3] = byte_swap_32 (digest[3]);
13648 digest[4] = byte_swap_32 (digest[4]);
13649 digest[5] = byte_swap_32 (digest[5]);
13650 digest[6] = byte_swap_32 (digest[6]);
13651 digest[7] = byte_swap_32 (digest[7]);
13652
13653 return (PARSER_OK);
13654 }
13655
13656 int sha256crypt_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13657 {
13658 if (memcmp (SIGNATURE_SHA256CRYPT, input_buf, 3)) return (PARSER_SIGNATURE_UNMATCHED);
13659
13660 u32 *digest = (u32 *) hash_buf->digest;
13661
13662 salt_t *salt = hash_buf->salt;
13663
13664 char *salt_pos = input_buf + 3;
13665
13666 uint iterations_len = 0;
13667
13668 if (memcmp (salt_pos, "rounds=", 7) == 0)
13669 {
13670 salt_pos += 7;
13671
13672 for (iterations_len = 0; salt_pos[0] >= '0' && salt_pos[0] <= '9' && iterations_len < 7; iterations_len++, salt_pos += 1) continue;
13673
13674 if (iterations_len == 0 ) return (PARSER_SALT_ITERATION);
13675 if (salt_pos[0] != '$') return (PARSER_SIGNATURE_UNMATCHED);
13676
13677 salt_pos[0] = 0x0;
13678
13679 salt->salt_iter = atoi (salt_pos - iterations_len);
13680
13681 salt_pos += 1;
13682
13683 iterations_len += 8;
13684 }
13685 else
13686 {
13687 salt->salt_iter = ROUNDS_SHA256CRYPT;
13688 }
13689
13690 if ((input_len < DISPLAY_LEN_MIN_7400) || (input_len > DISPLAY_LEN_MAX_7400 + iterations_len)) return (PARSER_GLOBAL_LENGTH);
13691
13692 char *hash_pos = strchr (salt_pos, '$');
13693
13694 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13695
13696 uint salt_len = hash_pos - salt_pos;
13697
13698 if (salt_len > 16) return (PARSER_SALT_LENGTH);
13699
13700 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
13701
13702 salt->salt_len = salt_len;
13703
13704 hash_pos++;
13705
13706 sha256crypt_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
13707
13708 return (PARSER_OK);
13709 }
13710
13711 int sha512osx_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13712 {
13713 uint max_len = DISPLAY_LEN_MAX_7100 + (2 * 128);
13714
13715 if ((input_len < DISPLAY_LEN_MIN_7100) || (input_len > max_len)) return (PARSER_GLOBAL_LENGTH);
13716
13717 if (memcmp (SIGNATURE_SHA512OSX, input_buf, 4)) return (PARSER_SIGNATURE_UNMATCHED);
13718
13719 u64 *digest = (u64 *) hash_buf->digest;
13720
13721 salt_t *salt = hash_buf->salt;
13722
13723 pbkdf2_sha512_t *pbkdf2_sha512 = (pbkdf2_sha512_t *) hash_buf->esalt;
13724
13725 char *iter_pos = input_buf + 4;
13726
13727 char *salt_pos = strchr (iter_pos, '$');
13728
13729 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13730
13731 salt_pos++;
13732
13733 char *hash_pos = strchr (salt_pos, '$');
13734
13735 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13736
13737 if (((input_len - (hash_pos - input_buf) - 1) % 128) != 0) return (PARSER_GLOBAL_LENGTH);
13738
13739 hash_pos++;
13740
13741 digest[0] = hex_to_u64 ((const u8 *) &hash_pos[ 0]);
13742 digest[1] = hex_to_u64 ((const u8 *) &hash_pos[ 16]);
13743 digest[2] = hex_to_u64 ((const u8 *) &hash_pos[ 32]);
13744 digest[3] = hex_to_u64 ((const u8 *) &hash_pos[ 48]);
13745 digest[4] = hex_to_u64 ((const u8 *) &hash_pos[ 64]);
13746 digest[5] = hex_to_u64 ((const u8 *) &hash_pos[ 80]);
13747 digest[6] = hex_to_u64 ((const u8 *) &hash_pos[ 96]);
13748 digest[7] = hex_to_u64 ((const u8 *) &hash_pos[112]);
13749
13750 uint salt_len = hash_pos - salt_pos - 1;
13751
13752 if ((salt_len % 2) != 0) return (PARSER_SALT_LENGTH);
13753
13754 salt->salt_len = salt_len / 2;
13755
13756 pbkdf2_sha512->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_pos[ 0]);
13757 pbkdf2_sha512->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_pos[ 8]);
13758 pbkdf2_sha512->salt_buf[2] = hex_to_u32 ((const u8 *) &salt_pos[16]);
13759 pbkdf2_sha512->salt_buf[3] = hex_to_u32 ((const u8 *) &salt_pos[24]);
13760 pbkdf2_sha512->salt_buf[4] = hex_to_u32 ((const u8 *) &salt_pos[32]);
13761 pbkdf2_sha512->salt_buf[5] = hex_to_u32 ((const u8 *) &salt_pos[40]);
13762 pbkdf2_sha512->salt_buf[6] = hex_to_u32 ((const u8 *) &salt_pos[48]);
13763 pbkdf2_sha512->salt_buf[7] = hex_to_u32 ((const u8 *) &salt_pos[56]);
13764
13765 pbkdf2_sha512->salt_buf[0] = byte_swap_32 (pbkdf2_sha512->salt_buf[0]);
13766 pbkdf2_sha512->salt_buf[1] = byte_swap_32 (pbkdf2_sha512->salt_buf[1]);
13767 pbkdf2_sha512->salt_buf[2] = byte_swap_32 (pbkdf2_sha512->salt_buf[2]);
13768 pbkdf2_sha512->salt_buf[3] = byte_swap_32 (pbkdf2_sha512->salt_buf[3]);
13769 pbkdf2_sha512->salt_buf[4] = byte_swap_32 (pbkdf2_sha512->salt_buf[4]);
13770 pbkdf2_sha512->salt_buf[5] = byte_swap_32 (pbkdf2_sha512->salt_buf[5]);
13771 pbkdf2_sha512->salt_buf[6] = byte_swap_32 (pbkdf2_sha512->salt_buf[6]);
13772 pbkdf2_sha512->salt_buf[7] = byte_swap_32 (pbkdf2_sha512->salt_buf[7]);
13773 pbkdf2_sha512->salt_buf[8] = 0x01000000;
13774 pbkdf2_sha512->salt_buf[9] = 0x80;
13775
13776 salt->salt_buf[0] = pbkdf2_sha512->salt_buf[0];
13777
13778 salt->salt_iter = atoi (iter_pos) - 1;
13779
13780 return (PARSER_OK);
13781 }
13782
13783 int episerver4_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13784 {
13785 if ((input_len < DISPLAY_LEN_MIN_1441) || (input_len > DISPLAY_LEN_MAX_1441)) return (PARSER_GLOBAL_LENGTH);
13786
13787 if (memcmp (SIGNATURE_EPISERVER4, input_buf, 14)) return (PARSER_SIGNATURE_UNMATCHED);
13788
13789 u32 *digest = (u32 *) hash_buf->digest;
13790
13791 salt_t *salt = hash_buf->salt;
13792
13793 char *salt_pos = input_buf + 14;
13794
13795 char *hash_pos = strchr (salt_pos, '*');
13796
13797 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13798
13799 hash_pos++;
13800
13801 uint salt_len = hash_pos - salt_pos - 1;
13802
13803 char *salt_buf_ptr = (char *) salt->salt_buf;
13804
13805 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
13806
13807 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
13808
13809 salt->salt_len = salt_len;
13810
13811 u8 tmp_buf[100] = { 0 };
13812
13813 base64_decode (base64_to_int, (const u8 *) hash_pos, 43, tmp_buf);
13814
13815 memcpy (digest, tmp_buf, 32);
13816
13817 digest[0] = byte_swap_32 (digest[0]);
13818 digest[1] = byte_swap_32 (digest[1]);
13819 digest[2] = byte_swap_32 (digest[2]);
13820 digest[3] = byte_swap_32 (digest[3]);
13821 digest[4] = byte_swap_32 (digest[4]);
13822 digest[5] = byte_swap_32 (digest[5]);
13823 digest[6] = byte_swap_32 (digest[6]);
13824 digest[7] = byte_swap_32 (digest[7]);
13825
13826 digest[0] -= SHA256M_A;
13827 digest[1] -= SHA256M_B;
13828 digest[2] -= SHA256M_C;
13829 digest[3] -= SHA256M_D;
13830 digest[4] -= SHA256M_E;
13831 digest[5] -= SHA256M_F;
13832 digest[6] -= SHA256M_G;
13833 digest[7] -= SHA256M_H;
13834
13835 return (PARSER_OK);
13836 }
13837
13838 int sha512grub_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13839 {
13840 uint max_len = DISPLAY_LEN_MAX_7200 + (8 * 128);
13841
13842 if ((input_len < DISPLAY_LEN_MIN_7200) || (input_len > max_len)) return (PARSER_GLOBAL_LENGTH);
13843
13844 if (memcmp (SIGNATURE_SHA512GRUB, input_buf, 19)) return (PARSER_SIGNATURE_UNMATCHED);
13845
13846 u64 *digest = (u64 *) hash_buf->digest;
13847
13848 salt_t *salt = hash_buf->salt;
13849
13850 pbkdf2_sha512_t *pbkdf2_sha512 = (pbkdf2_sha512_t *) hash_buf->esalt;
13851
13852 char *iter_pos = input_buf + 19;
13853
13854 char *salt_pos = strchr (iter_pos, '.');
13855
13856 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13857
13858 salt_pos++;
13859
13860 char *hash_pos = strchr (salt_pos, '.');
13861
13862 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
13863
13864 if (((input_len - (hash_pos - input_buf) - 1) % 128) != 0) return (PARSER_GLOBAL_LENGTH);
13865
13866 hash_pos++;
13867
13868 digest[0] = hex_to_u64 ((const u8 *) &hash_pos[ 0]);
13869 digest[1] = hex_to_u64 ((const u8 *) &hash_pos[ 16]);
13870 digest[2] = hex_to_u64 ((const u8 *) &hash_pos[ 32]);
13871 digest[3] = hex_to_u64 ((const u8 *) &hash_pos[ 48]);
13872 digest[4] = hex_to_u64 ((const u8 *) &hash_pos[ 64]);
13873 digest[5] = hex_to_u64 ((const u8 *) &hash_pos[ 80]);
13874 digest[6] = hex_to_u64 ((const u8 *) &hash_pos[ 96]);
13875 digest[7] = hex_to_u64 ((const u8 *) &hash_pos[112]);
13876
13877 uint salt_len = hash_pos - salt_pos - 1;
13878
13879 salt_len /= 2;
13880
13881 char *salt_buf_ptr = (char *) pbkdf2_sha512->salt_buf;
13882
13883 uint i;
13884
13885 for (i = 0; i < salt_len; i++)
13886 {
13887 salt_buf_ptr[i] = hex_to_u8 ((const u8 *) &salt_pos[i * 2]);
13888 }
13889
13890 salt_buf_ptr[salt_len + 3] = 0x01;
13891 salt_buf_ptr[salt_len + 4] = 0x80;
13892
13893 salt->salt_buf[0] = pbkdf2_sha512->salt_buf[0];
13894
13895 salt->salt_len = salt_len;
13896
13897 salt->salt_iter = atoi (iter_pos) - 1;
13898
13899 return (PARSER_OK);
13900 }
13901
13902 int sha512b64s_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13903 {
13904 if ((input_len < DISPLAY_LEN_MIN_1711) || (input_len > DISPLAY_LEN_MAX_1711)) return (PARSER_GLOBAL_LENGTH);
13905
13906 if (memcmp (SIGNATURE_SHA512B64S, input_buf, 9)) return (PARSER_SIGNATURE_UNMATCHED);
13907
13908 u64 *digest = (u64 *) hash_buf->digest;
13909
13910 salt_t *salt = hash_buf->salt;
13911
13912 u8 tmp_buf[120] = { 0 };
13913
13914 int tmp_len = base64_decode (base64_to_int, (const u8 *) input_buf + 9, input_len - 9, tmp_buf);
13915
13916 if (tmp_len < 64) return (PARSER_HASH_LENGTH);
13917
13918 memcpy (digest, tmp_buf, 64);
13919
13920 digest[0] = byte_swap_64 (digest[0]);
13921 digest[1] = byte_swap_64 (digest[1]);
13922 digest[2] = byte_swap_64 (digest[2]);
13923 digest[3] = byte_swap_64 (digest[3]);
13924 digest[4] = byte_swap_64 (digest[4]);
13925 digest[5] = byte_swap_64 (digest[5]);
13926 digest[6] = byte_swap_64 (digest[6]);
13927 digest[7] = byte_swap_64 (digest[7]);
13928
13929 digest[0] -= SHA512M_A;
13930 digest[1] -= SHA512M_B;
13931 digest[2] -= SHA512M_C;
13932 digest[3] -= SHA512M_D;
13933 digest[4] -= SHA512M_E;
13934 digest[5] -= SHA512M_F;
13935 digest[6] -= SHA512M_G;
13936 digest[7] -= SHA512M_H;
13937
13938 int salt_len = tmp_len - 64;
13939
13940 if (salt_len < 0) return (PARSER_SALT_LENGTH);
13941
13942 salt->salt_len = salt_len;
13943
13944 memcpy (salt->salt_buf, tmp_buf + 64, salt->salt_len);
13945
13946 if (data.opts_type & OPTS_TYPE_ST_ADD80)
13947 {
13948 char *ptr = (char *) salt->salt_buf;
13949
13950 ptr[salt->salt_len] = 0x80;
13951 }
13952
13953 return (PARSER_OK);
13954 }
13955
13956 int hmacmd5_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13957 {
13958 if (data.opts_type & OPTS_TYPE_ST_HEX)
13959 {
13960 if ((input_len < DISPLAY_LEN_MIN_50H) || (input_len > DISPLAY_LEN_MAX_50H)) return (PARSER_GLOBAL_LENGTH);
13961 }
13962 else
13963 {
13964 if ((input_len < DISPLAY_LEN_MIN_50) || (input_len > DISPLAY_LEN_MAX_50)) return (PARSER_GLOBAL_LENGTH);
13965 }
13966
13967 u32 *digest = (u32 *) hash_buf->digest;
13968
13969 salt_t *salt = hash_buf->salt;
13970
13971 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
13972 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
13973 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
13974 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
13975
13976 digest[0] = byte_swap_32 (digest[0]);
13977 digest[1] = byte_swap_32 (digest[1]);
13978 digest[2] = byte_swap_32 (digest[2]);
13979 digest[3] = byte_swap_32 (digest[3]);
13980
13981 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
13982
13983 uint salt_len = input_len - 32 - 1;
13984
13985 char *salt_buf = input_buf + 32 + 1;
13986
13987 char *salt_buf_ptr = (char *) salt->salt_buf;
13988
13989 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
13990
13991 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
13992
13993 salt->salt_len = salt_len;
13994
13995 return (PARSER_OK);
13996 }
13997
13998 int hmacsha1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
13999 {
14000 if (data.opts_type & OPTS_TYPE_ST_HEX)
14001 {
14002 if ((input_len < DISPLAY_LEN_MIN_150H) || (input_len > DISPLAY_LEN_MAX_150H)) return (PARSER_GLOBAL_LENGTH);
14003 }
14004 else
14005 {
14006 if ((input_len < DISPLAY_LEN_MIN_150) || (input_len > DISPLAY_LEN_MAX_150)) return (PARSER_GLOBAL_LENGTH);
14007 }
14008
14009 u32 *digest = (u32 *) hash_buf->digest;
14010
14011 salt_t *salt = hash_buf->salt;
14012
14013 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
14014 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
14015 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
14016 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
14017 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
14018
14019 if (input_buf[40] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
14020
14021 uint salt_len = input_len - 40 - 1;
14022
14023 char *salt_buf = input_buf + 40 + 1;
14024
14025 char *salt_buf_ptr = (char *) salt->salt_buf;
14026
14027 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
14028
14029 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
14030
14031 salt->salt_len = salt_len;
14032
14033 return (PARSER_OK);
14034 }
14035
14036 int hmacsha256_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14037 {
14038 if (data.opts_type & OPTS_TYPE_ST_HEX)
14039 {
14040 if ((input_len < DISPLAY_LEN_MIN_1450H) || (input_len > DISPLAY_LEN_MAX_1450H)) return (PARSER_GLOBAL_LENGTH);
14041 }
14042 else
14043 {
14044 if ((input_len < DISPLAY_LEN_MIN_1450) || (input_len > DISPLAY_LEN_MAX_1450)) return (PARSER_GLOBAL_LENGTH);
14045 }
14046
14047 u32 *digest = (u32 *) hash_buf->digest;
14048
14049 salt_t *salt = hash_buf->salt;
14050
14051 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
14052 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
14053 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
14054 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
14055 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
14056 digest[5] = hex_to_u32 ((const u8 *) &input_buf[40]);
14057 digest[6] = hex_to_u32 ((const u8 *) &input_buf[48]);
14058 digest[7] = hex_to_u32 ((const u8 *) &input_buf[56]);
14059
14060 if (input_buf[64] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
14061
14062 uint salt_len = input_len - 64 - 1;
14063
14064 char *salt_buf = input_buf + 64 + 1;
14065
14066 char *salt_buf_ptr = (char *) salt->salt_buf;
14067
14068 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
14069
14070 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
14071
14072 salt->salt_len = salt_len;
14073
14074 return (PARSER_OK);
14075 }
14076
14077 int hmacsha512_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14078 {
14079 if (data.opts_type & OPTS_TYPE_ST_HEX)
14080 {
14081 if ((input_len < DISPLAY_LEN_MIN_1750H) || (input_len > DISPLAY_LEN_MAX_1750H)) return (PARSER_GLOBAL_LENGTH);
14082 }
14083 else
14084 {
14085 if ((input_len < DISPLAY_LEN_MIN_1750) || (input_len > DISPLAY_LEN_MAX_1750)) return (PARSER_GLOBAL_LENGTH);
14086 }
14087
14088 u64 *digest = (u64 *) hash_buf->digest;
14089
14090 salt_t *salt = hash_buf->salt;
14091
14092 digest[0] = hex_to_u64 ((const u8 *) &input_buf[ 0]);
14093 digest[1] = hex_to_u64 ((const u8 *) &input_buf[ 16]);
14094 digest[2] = hex_to_u64 ((const u8 *) &input_buf[ 32]);
14095 digest[3] = hex_to_u64 ((const u8 *) &input_buf[ 48]);
14096 digest[4] = hex_to_u64 ((const u8 *) &input_buf[ 64]);
14097 digest[5] = hex_to_u64 ((const u8 *) &input_buf[ 80]);
14098 digest[6] = hex_to_u64 ((const u8 *) &input_buf[ 96]);
14099 digest[7] = hex_to_u64 ((const u8 *) &input_buf[112]);
14100
14101 if (input_buf[128] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
14102
14103 uint salt_len = input_len - 128 - 1;
14104
14105 char *salt_buf = input_buf + 128 + 1;
14106
14107 char *salt_buf_ptr = (char *) salt->salt_buf;
14108
14109 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
14110
14111 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
14112
14113 salt->salt_len = salt_len;
14114
14115 return (PARSER_OK);
14116 }
14117
14118 int krb5pa_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14119 {
14120 if ((input_len < DISPLAY_LEN_MIN_7500) || (input_len > DISPLAY_LEN_MAX_7500)) return (PARSER_GLOBAL_LENGTH);
14121
14122 if (memcmp (SIGNATURE_KRB5PA, input_buf, 10)) return (PARSER_SIGNATURE_UNMATCHED);
14123
14124 u32 *digest = (u32 *) hash_buf->digest;
14125
14126 salt_t *salt = hash_buf->salt;
14127
14128 krb5pa_t *krb5pa = (krb5pa_t *) hash_buf->esalt;
14129
14130 /**
14131 * parse line
14132 */
14133
14134 char *user_pos = input_buf + 10 + 1;
14135
14136 char *realm_pos = strchr (user_pos, '$');
14137
14138 if (realm_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14139
14140 uint user_len = realm_pos - user_pos;
14141
14142 if (user_len >= 64) return (PARSER_SALT_LENGTH);
14143
14144 realm_pos++;
14145
14146 char *salt_pos = strchr (realm_pos, '$');
14147
14148 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14149
14150 uint realm_len = salt_pos - realm_pos;
14151
14152 if (realm_len >= 64) return (PARSER_SALT_LENGTH);
14153
14154 salt_pos++;
14155
14156 char *data_pos = strchr (salt_pos, '$');
14157
14158 if (data_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14159
14160 uint salt_len = data_pos - salt_pos;
14161
14162 if (salt_len >= 128) return (PARSER_SALT_LENGTH);
14163
14164 data_pos++;
14165
14166 uint data_len = input_len - 10 - 1 - user_len - 1 - realm_len - 1 - salt_len - 1;
14167
14168 if (data_len != ((36 + 16) * 2)) return (PARSER_SALT_LENGTH);
14169
14170 /**
14171 * copy data
14172 */
14173
14174 memcpy (krb5pa->user, user_pos, user_len);
14175 memcpy (krb5pa->realm, realm_pos, realm_len);
14176 memcpy (krb5pa->salt, salt_pos, salt_len);
14177
14178 char *timestamp_ptr = (char *) krb5pa->timestamp;
14179
14180 for (uint i = 0; i < (36 * 2); i += 2)
14181 {
14182 const char p0 = data_pos[i + 0];
14183 const char p1 = data_pos[i + 1];
14184
14185 *timestamp_ptr++ = hex_convert (p1) << 0
14186 | hex_convert (p0) << 4;
14187 }
14188
14189 char *checksum_ptr = (char *) krb5pa->checksum;
14190
14191 for (uint i = (36 * 2); i < ((36 + 16) * 2); i += 2)
14192 {
14193 const char p0 = data_pos[i + 0];
14194 const char p1 = data_pos[i + 1];
14195
14196 *checksum_ptr++ = hex_convert (p1) << 0
14197 | hex_convert (p0) << 4;
14198 }
14199
14200 /**
14201 * copy some data to generic buffers to make sorting happy
14202 */
14203
14204 salt->salt_buf[0] = krb5pa->timestamp[0];
14205 salt->salt_buf[1] = krb5pa->timestamp[1];
14206 salt->salt_buf[2] = krb5pa->timestamp[2];
14207 salt->salt_buf[3] = krb5pa->timestamp[3];
14208 salt->salt_buf[4] = krb5pa->timestamp[4];
14209 salt->salt_buf[5] = krb5pa->timestamp[5];
14210 salt->salt_buf[6] = krb5pa->timestamp[6];
14211 salt->salt_buf[7] = krb5pa->timestamp[7];
14212 salt->salt_buf[8] = krb5pa->timestamp[8];
14213
14214 salt->salt_len = 36;
14215
14216 digest[0] = krb5pa->checksum[0];
14217 digest[1] = krb5pa->checksum[1];
14218 digest[2] = krb5pa->checksum[2];
14219 digest[3] = krb5pa->checksum[3];
14220
14221 return (PARSER_OK);
14222 }
14223
14224 int sapb_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14225 {
14226 if ((input_len < DISPLAY_LEN_MIN_7700) || (input_len > DISPLAY_LEN_MAX_7700)) return (PARSER_GLOBAL_LENGTH);
14227
14228 u32 *digest = (u32 *) hash_buf->digest;
14229
14230 salt_t *salt = hash_buf->salt;
14231
14232 /**
14233 * parse line
14234 */
14235
14236 char *salt_pos = input_buf;
14237
14238 char *hash_pos = strchr (salt_pos, '$');
14239
14240 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14241
14242 uint salt_len = hash_pos - salt_pos;
14243
14244 if (salt_len >= 40) return (PARSER_SALT_LENGTH);
14245
14246 hash_pos++;
14247
14248 uint hash_len = input_len - 1 - salt_len;
14249
14250 if (hash_len != 16) return (PARSER_HASH_LENGTH);
14251
14252 /**
14253 * valid some data
14254 */
14255
14256 uint user_len = 0;
14257
14258 for (uint i = 0; i < salt_len; i++)
14259 {
14260 if (salt_pos[i] == ' ') continue;
14261
14262 user_len++;
14263 }
14264
14265 // SAP user names cannot be longer than 12 characters
14266 if (user_len > 12) return (PARSER_SALT_LENGTH);
14267
14268 // SAP user name cannot start with ! or ?
14269 if (salt_pos[0] == '!' || salt_pos[0] == '?') return (PARSER_SALT_VALUE);
14270
14271 /**
14272 * copy data
14273 */
14274
14275 char *salt_buf_ptr = (char *) salt->salt_buf;
14276
14277 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
14278
14279 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
14280
14281 salt->salt_len = salt_len;
14282
14283 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[0]);
14284 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[8]);
14285 digest[2] = 0;
14286 digest[3] = 0;
14287
14288 digest[0] = byte_swap_32 (digest[0]);
14289 digest[1] = byte_swap_32 (digest[1]);
14290
14291 return (PARSER_OK);
14292 }
14293
14294 int sapg_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14295 {
14296 if ((input_len < DISPLAY_LEN_MIN_7800) || (input_len > DISPLAY_LEN_MAX_7800)) return (PARSER_GLOBAL_LENGTH);
14297
14298 u32 *digest = (u32 *) hash_buf->digest;
14299
14300 salt_t *salt = hash_buf->salt;
14301
14302 /**
14303 * parse line
14304 */
14305
14306 char *salt_pos = input_buf;
14307
14308 char *hash_pos = strchr (salt_pos, '$');
14309
14310 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14311
14312 uint salt_len = hash_pos - salt_pos;
14313
14314 if (salt_len >= 40) return (PARSER_SALT_LENGTH);
14315
14316 hash_pos++;
14317
14318 uint hash_len = input_len - 1 - salt_len;
14319
14320 if (hash_len != 40) return (PARSER_HASH_LENGTH);
14321
14322 /**
14323 * valid some data
14324 */
14325
14326 uint user_len = 0;
14327
14328 for (uint i = 0; i < salt_len; i++)
14329 {
14330 if (salt_pos[i] == ' ') continue;
14331
14332 user_len++;
14333 }
14334
14335 // SAP user names cannot be longer than 12 characters
14336 // this is kinda buggy. if the username is in utf the length can be up to length 12*3
14337 // so far nobody complained so we stay with this because it helps in optimization
14338 // final string can have a max size of 32 (password) + (10 * 5) = lengthMagicArray + 12 (max salt) + 1 (the 0x80)
14339
14340 if (user_len > 12) return (PARSER_SALT_LENGTH);
14341
14342 // SAP user name cannot start with ! or ?
14343 if (salt_pos[0] == '!' || salt_pos[0] == '?') return (PARSER_SALT_VALUE);
14344
14345 /**
14346 * copy data
14347 */
14348
14349 char *salt_buf_ptr = (char *) salt->salt_buf;
14350
14351 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
14352
14353 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
14354
14355 salt->salt_len = salt_len;
14356
14357 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
14358 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
14359 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
14360 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
14361 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
14362
14363 return (PARSER_OK);
14364 }
14365
14366 int drupal7_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14367 {
14368 if ((input_len < DISPLAY_LEN_MIN_7900) || (input_len > DISPLAY_LEN_MAX_7900)) return (PARSER_GLOBAL_LENGTH);
14369
14370 if (memcmp (SIGNATURE_DRUPAL7, input_buf, 3)) return (PARSER_SIGNATURE_UNMATCHED);
14371
14372 u64 *digest = (u64 *) hash_buf->digest;
14373
14374 salt_t *salt = hash_buf->salt;
14375
14376 char *iter_pos = input_buf + 3;
14377
14378 uint salt_iter = 1 << itoa64_to_int (iter_pos[0]);
14379
14380 if (salt_iter > 0x80000000) return (PARSER_SALT_ITERATION);
14381
14382 memcpy ((char *) salt->salt_sign, input_buf, 4);
14383
14384 salt->salt_iter = salt_iter;
14385
14386 char *salt_pos = iter_pos + 1;
14387
14388 uint salt_len = 8;
14389
14390 memcpy ((char *) salt->salt_buf, salt_pos, salt_len);
14391
14392 salt->salt_len = salt_len;
14393
14394 char *hash_pos = salt_pos + salt_len;
14395
14396 drupal7_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
14397
14398 // ugly hack start
14399
14400 char *tmp = (char *) salt->salt_buf_pc;
14401
14402 tmp[0] = hash_pos[42];
14403
14404 // ugly hack end
14405
14406 digest[ 0] = byte_swap_64 (digest[ 0]);
14407 digest[ 1] = byte_swap_64 (digest[ 1]);
14408 digest[ 2] = byte_swap_64 (digest[ 2]);
14409 digest[ 3] = byte_swap_64 (digest[ 3]);
14410 digest[ 4] = 0;
14411 digest[ 5] = 0;
14412 digest[ 6] = 0;
14413 digest[ 7] = 0;
14414
14415 return (PARSER_OK);
14416 }
14417
14418 int sybasease_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14419 {
14420 if ((input_len < DISPLAY_LEN_MIN_8000) || (input_len > DISPLAY_LEN_MAX_8000)) return (PARSER_GLOBAL_LENGTH);
14421
14422 if (memcmp (SIGNATURE_SYBASEASE, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
14423
14424 u32 *digest = (u32 *) hash_buf->digest;
14425
14426 salt_t *salt = hash_buf->salt;
14427
14428 char *salt_buf = input_buf + 6;
14429
14430 uint salt_len = 16;
14431
14432 char *salt_buf_ptr = (char *) salt->salt_buf;
14433
14434 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
14435
14436 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
14437
14438 salt->salt_len = salt_len;
14439
14440 char *hash_pos = input_buf + 6 + 16;
14441
14442 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
14443 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
14444 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
14445 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
14446 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
14447 digest[5] = hex_to_u32 ((const u8 *) &hash_pos[40]);
14448 digest[6] = hex_to_u32 ((const u8 *) &hash_pos[48]);
14449 digest[7] = hex_to_u32 ((const u8 *) &hash_pos[56]);
14450
14451 return (PARSER_OK);
14452 }
14453
14454 int mysql323_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14455 {
14456 if ((input_len < DISPLAY_LEN_MIN_200) || (input_len > DISPLAY_LEN_MAX_200)) return (PARSER_GLOBAL_LENGTH);
14457
14458 u32 *digest = (u32 *) hash_buf->digest;
14459
14460 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
14461 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
14462 digest[2] = 0;
14463 digest[3] = 0;
14464
14465 return (PARSER_OK);
14466 }
14467
14468 int rakp_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14469 {
14470 if ((input_len < DISPLAY_LEN_MIN_7300) || (input_len > DISPLAY_LEN_MAX_7300)) return (PARSER_GLOBAL_LENGTH);
14471
14472 u32 *digest = (u32 *) hash_buf->digest;
14473
14474 salt_t *salt = hash_buf->salt;
14475
14476 rakp_t *rakp = (rakp_t *) hash_buf->esalt;
14477
14478 char *saltbuf_pos = input_buf;
14479
14480 char *hashbuf_pos = strchr (saltbuf_pos, ':');
14481
14482 if (hashbuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14483
14484 uint saltbuf_len = hashbuf_pos - saltbuf_pos;
14485
14486 if (saltbuf_len < 64) return (PARSER_SALT_LENGTH);
14487 if (saltbuf_len > 512) return (PARSER_SALT_LENGTH);
14488
14489 if (saltbuf_len & 1) return (PARSER_SALT_LENGTH); // muss gerade sein wegen hex
14490
14491 hashbuf_pos++;
14492
14493 uint hashbuf_len = input_len - saltbuf_len - 1;
14494
14495 if (hashbuf_len != 40) return (PARSER_HASH_LENGTH);
14496
14497 char *salt_ptr = (char *) saltbuf_pos;
14498 char *rakp_ptr = (char *) rakp->salt_buf;
14499
14500 uint i;
14501 uint j;
14502
14503 for (i = 0, j = 0; i < saltbuf_len; i += 2, j += 1)
14504 {
14505 rakp_ptr[j] = hex_to_u8 ((const u8 *) &salt_ptr[i]);
14506 }
14507
14508 rakp_ptr[j] = 0x80;
14509
14510 rakp->salt_len = j;
14511
14512 for (i = 0; i < 64; i++)
14513 {
14514 rakp->salt_buf[i] = byte_swap_32 (rakp->salt_buf[i]);
14515 }
14516
14517 salt->salt_buf[0] = rakp->salt_buf[0];
14518 salt->salt_buf[1] = rakp->salt_buf[1];
14519 salt->salt_buf[2] = rakp->salt_buf[2];
14520 salt->salt_buf[3] = rakp->salt_buf[3];
14521 salt->salt_buf[4] = rakp->salt_buf[4];
14522 salt->salt_buf[5] = rakp->salt_buf[5];
14523 salt->salt_buf[6] = rakp->salt_buf[6];
14524 salt->salt_buf[7] = rakp->salt_buf[7];
14525
14526 salt->salt_len = 32; // muss min. 32 haben
14527
14528 digest[0] = hex_to_u32 ((const u8 *) &hashbuf_pos[ 0]);
14529 digest[1] = hex_to_u32 ((const u8 *) &hashbuf_pos[ 8]);
14530 digest[2] = hex_to_u32 ((const u8 *) &hashbuf_pos[16]);
14531 digest[3] = hex_to_u32 ((const u8 *) &hashbuf_pos[24]);
14532 digest[4] = hex_to_u32 ((const u8 *) &hashbuf_pos[32]);
14533
14534 return (PARSER_OK);
14535 }
14536
14537 int netscaler_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14538 {
14539 if ((input_len < DISPLAY_LEN_MIN_8100) || (input_len > DISPLAY_LEN_MAX_8100)) return (PARSER_GLOBAL_LENGTH);
14540
14541 u32 *digest = (u32 *) hash_buf->digest;
14542
14543 salt_t *salt = hash_buf->salt;
14544
14545 if (memcmp (SIGNATURE_NETSCALER, input_buf, 1)) return (PARSER_SIGNATURE_UNMATCHED);
14546
14547 char *salt_pos = input_buf + 1;
14548
14549 memcpy (salt->salt_buf, salt_pos, 8);
14550
14551 salt->salt_buf[0] = byte_swap_32 (salt->salt_buf[0]);
14552 salt->salt_buf[1] = byte_swap_32 (salt->salt_buf[1]);
14553
14554 salt->salt_len = 8;
14555
14556 char *hash_pos = salt_pos + 8;
14557
14558 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
14559 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
14560 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
14561 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
14562 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
14563
14564 digest[0] -= SHA1M_A;
14565 digest[1] -= SHA1M_B;
14566 digest[2] -= SHA1M_C;
14567 digest[3] -= SHA1M_D;
14568 digest[4] -= SHA1M_E;
14569
14570 return (PARSER_OK);
14571 }
14572
14573 int chap_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14574 {
14575 if ((input_len < DISPLAY_LEN_MIN_4800) || (input_len > DISPLAY_LEN_MAX_4800)) return (PARSER_GLOBAL_LENGTH);
14576
14577 u32 *digest = (u32 *) hash_buf->digest;
14578
14579 salt_t *salt = hash_buf->salt;
14580
14581 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
14582 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
14583 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
14584 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
14585
14586 digest[0] = byte_swap_32 (digest[0]);
14587 digest[1] = byte_swap_32 (digest[1]);
14588 digest[2] = byte_swap_32 (digest[2]);
14589 digest[3] = byte_swap_32 (digest[3]);
14590
14591 digest[0] -= MD5M_A;
14592 digest[1] -= MD5M_B;
14593 digest[2] -= MD5M_C;
14594 digest[3] -= MD5M_D;
14595
14596 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
14597
14598 char *salt_buf_ptr = input_buf + 32 + 1;
14599
14600 u32 *salt_buf = salt->salt_buf;
14601
14602 salt_buf[0] = hex_to_u32 ((const u8 *) &salt_buf_ptr[ 0]);
14603 salt_buf[1] = hex_to_u32 ((const u8 *) &salt_buf_ptr[ 8]);
14604 salt_buf[2] = hex_to_u32 ((const u8 *) &salt_buf_ptr[16]);
14605 salt_buf[3] = hex_to_u32 ((const u8 *) &salt_buf_ptr[24]);
14606
14607 salt_buf[0] = byte_swap_32 (salt_buf[0]);
14608 salt_buf[1] = byte_swap_32 (salt_buf[1]);
14609 salt_buf[2] = byte_swap_32 (salt_buf[2]);
14610 salt_buf[3] = byte_swap_32 (salt_buf[3]);
14611
14612 salt->salt_len = 16 + 1;
14613
14614 if (input_buf[65] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
14615
14616 char *idbyte_buf_ptr = input_buf + 32 + 1 + 32 + 1;
14617
14618 salt_buf[4] = hex_to_u8 ((const u8 *) &idbyte_buf_ptr[0]) & 0xff;
14619
14620 return (PARSER_OK);
14621 }
14622
14623 int cloudkey_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14624 {
14625 if ((input_len < DISPLAY_LEN_MIN_8200) || (input_len > DISPLAY_LEN_MAX_8200)) return (PARSER_GLOBAL_LENGTH);
14626
14627 u32 *digest = (u32 *) hash_buf->digest;
14628
14629 salt_t *salt = hash_buf->salt;
14630
14631 cloudkey_t *cloudkey = (cloudkey_t *) hash_buf->esalt;
14632
14633 /**
14634 * parse line
14635 */
14636
14637 char *hashbuf_pos = input_buf;
14638
14639 char *saltbuf_pos = strchr (hashbuf_pos, ':');
14640
14641 if (saltbuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14642
14643 const uint hashbuf_len = saltbuf_pos - hashbuf_pos;
14644
14645 if (hashbuf_len != 64) return (PARSER_HASH_LENGTH);
14646
14647 saltbuf_pos++;
14648
14649 char *iteration_pos = strchr (saltbuf_pos, ':');
14650
14651 if (iteration_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14652
14653 const uint saltbuf_len = iteration_pos - saltbuf_pos;
14654
14655 if (saltbuf_len != 32) return (PARSER_SALT_LENGTH);
14656
14657 iteration_pos++;
14658
14659 char *databuf_pos = strchr (iteration_pos, ':');
14660
14661 if (databuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14662
14663 const uint iteration_len = databuf_pos - iteration_pos;
14664
14665 if (iteration_len < 1) return (PARSER_SALT_ITERATION);
14666 if (iteration_len > 8) return (PARSER_SALT_ITERATION);
14667
14668 const uint databuf_len = input_len - hashbuf_len - 1 - saltbuf_len - 1 - iteration_len - 1;
14669
14670 if (databuf_len < 1) return (PARSER_SALT_LENGTH);
14671 if (databuf_len > 2048) return (PARSER_SALT_LENGTH);
14672
14673 databuf_pos++;
14674
14675 // digest
14676
14677 digest[0] = hex_to_u32 ((const u8 *) &hashbuf_pos[ 0]);
14678 digest[1] = hex_to_u32 ((const u8 *) &hashbuf_pos[ 8]);
14679 digest[2] = hex_to_u32 ((const u8 *) &hashbuf_pos[16]);
14680 digest[3] = hex_to_u32 ((const u8 *) &hashbuf_pos[24]);
14681 digest[4] = hex_to_u32 ((const u8 *) &hashbuf_pos[32]);
14682 digest[5] = hex_to_u32 ((const u8 *) &hashbuf_pos[40]);
14683 digest[6] = hex_to_u32 ((const u8 *) &hashbuf_pos[48]);
14684 digest[7] = hex_to_u32 ((const u8 *) &hashbuf_pos[56]);
14685
14686 // salt
14687
14688 char *saltbuf_ptr = (char *) salt->salt_buf;
14689
14690 for (uint i = 0; i < saltbuf_len; i += 2)
14691 {
14692 const char p0 = saltbuf_pos[i + 0];
14693 const char p1 = saltbuf_pos[i + 1];
14694
14695 *saltbuf_ptr++ = hex_convert (p1) << 0
14696 | hex_convert (p0) << 4;
14697 }
14698
14699 salt->salt_buf[4] = 0x01000000;
14700 salt->salt_buf[5] = 0x80;
14701
14702 salt->salt_len = saltbuf_len / 2;
14703
14704 // iteration
14705
14706 salt->salt_iter = atoi (iteration_pos) - 1;
14707
14708 // data
14709
14710 char *databuf_ptr = (char *) cloudkey->data_buf;
14711
14712 for (uint i = 0; i < databuf_len; i += 2)
14713 {
14714 const char p0 = databuf_pos[i + 0];
14715 const char p1 = databuf_pos[i + 1];
14716
14717 *databuf_ptr++ = hex_convert (p1) << 0
14718 | hex_convert (p0) << 4;
14719 }
14720
14721 *databuf_ptr++ = 0x80;
14722
14723 for (uint i = 0; i < 512; i++)
14724 {
14725 cloudkey->data_buf[i] = byte_swap_32 (cloudkey->data_buf[i]);
14726 }
14727
14728 cloudkey->data_len = databuf_len / 2;
14729
14730 return (PARSER_OK);
14731 }
14732
14733 int nsec3_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14734 {
14735 if ((input_len < DISPLAY_LEN_MIN_8300) || (input_len > DISPLAY_LEN_MAX_8300)) return (PARSER_GLOBAL_LENGTH);
14736
14737 u32 *digest = (u32 *) hash_buf->digest;
14738
14739 salt_t *salt = hash_buf->salt;
14740
14741 /**
14742 * parse line
14743 */
14744
14745 char *hashbuf_pos = input_buf;
14746
14747 char *domainbuf_pos = strchr (hashbuf_pos, ':');
14748
14749 if (domainbuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14750
14751 const uint hashbuf_len = domainbuf_pos - hashbuf_pos;
14752
14753 if (hashbuf_len != 32) return (PARSER_HASH_LENGTH);
14754
14755 domainbuf_pos++;
14756
14757 if (domainbuf_pos[0] != '.') return (PARSER_SALT_VALUE);
14758
14759 char *saltbuf_pos = strchr (domainbuf_pos, ':');
14760
14761 if (saltbuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14762
14763 const uint domainbuf_len = saltbuf_pos - domainbuf_pos;
14764
14765 if (domainbuf_len >= 32) return (PARSER_SALT_LENGTH);
14766
14767 saltbuf_pos++;
14768
14769 char *iteration_pos = strchr (saltbuf_pos, ':');
14770
14771 if (iteration_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14772
14773 const uint saltbuf_len = iteration_pos - saltbuf_pos;
14774
14775 if (saltbuf_len >= 28) return (PARSER_SALT_LENGTH); // 28 = 32 - 4; 4 = length
14776
14777 if ((domainbuf_len + saltbuf_len) >= 48) return (PARSER_SALT_LENGTH);
14778
14779 iteration_pos++;
14780
14781 const uint iteration_len = input_len - hashbuf_len - 1 - domainbuf_len - 1 - saltbuf_len - 1;
14782
14783 if (iteration_len < 1) return (PARSER_SALT_ITERATION);
14784 if (iteration_len > 5) return (PARSER_SALT_ITERATION);
14785
14786 // ok, the plan for this algorithm is the following:
14787 // we have 2 salts here, the domain-name and a random salt
14788 // while both are used in the initial transformation,
14789 // only the random salt is used in the following iterations
14790 // so we create two buffer, one that includes domain-name (stored into salt_buf_pc[])
14791 // and one that includes only the real salt (stored into salt_buf[]).
14792 // the domain-name length is put into array position 7 of salt_buf_pc[] since there is not salt_pc_len
14793
14794 u8 tmp_buf[100] = { 0 };
14795
14796 base32_decode (itoa32_to_int, (const u8 *) hashbuf_pos, 32, tmp_buf);
14797
14798 memcpy (digest, tmp_buf, 20);
14799
14800 digest[0] = byte_swap_32 (digest[0]);
14801 digest[1] = byte_swap_32 (digest[1]);
14802 digest[2] = byte_swap_32 (digest[2]);
14803 digest[3] = byte_swap_32 (digest[3]);
14804 digest[4] = byte_swap_32 (digest[4]);
14805
14806 // domain
14807
14808 char *salt_buf_pc_ptr = (char *) salt->salt_buf_pc;
14809
14810 memcpy (salt_buf_pc_ptr, domainbuf_pos, domainbuf_len);
14811
14812 char *len_ptr = NULL;
14813
14814 for (uint i = 0; i < domainbuf_len; i++)
14815 {
14816 if (salt_buf_pc_ptr[i] == '.')
14817 {
14818 len_ptr = &salt_buf_pc_ptr[i];
14819
14820 *len_ptr = 0;
14821 }
14822 else
14823 {
14824 *len_ptr += 1;
14825 }
14826 }
14827
14828 salt->salt_buf_pc[7] = domainbuf_len;
14829
14830 // "real" salt
14831
14832 char *salt_buf_ptr = (char *) salt->salt_buf;
14833
14834 const uint salt_len = parse_and_store_salt (salt_buf_ptr, saltbuf_pos, saltbuf_len);
14835
14836 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
14837
14838 salt->salt_len = salt_len;
14839
14840 // iteration
14841
14842 salt->salt_iter = atoi (iteration_pos);
14843
14844 return (PARSER_OK);
14845 }
14846
14847 int wbb3_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14848 {
14849 if ((input_len < DISPLAY_LEN_MIN_8400) || (input_len > DISPLAY_LEN_MAX_8400)) return (PARSER_GLOBAL_LENGTH);
14850
14851 u32 *digest = (u32 *) hash_buf->digest;
14852
14853 salt_t *salt = hash_buf->salt;
14854
14855 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
14856 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
14857 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
14858 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
14859 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
14860
14861 if (input_buf[40] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
14862
14863 uint salt_len = input_len - 40 - 1;
14864
14865 char *salt_buf = input_buf + 40 + 1;
14866
14867 char *salt_buf_ptr = (char *) salt->salt_buf;
14868
14869 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
14870
14871 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
14872
14873 salt->salt_len = salt_len;
14874
14875 return (PARSER_OK);
14876 }
14877
14878 int racf_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14879 {
14880 const u8 ascii_to_ebcdic[] =
14881 {
14882 0x00, 0x01, 0x02, 0x03, 0x37, 0x2d, 0x2e, 0x2f, 0x16, 0x05, 0x25, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f,
14883 0x10, 0x11, 0x12, 0x13, 0x3c, 0x3d, 0x32, 0x26, 0x18, 0x19, 0x3f, 0x27, 0x1c, 0x1d, 0x1e, 0x1f,
14884 0x40, 0x4f, 0x7f, 0x7b, 0x5b, 0x6c, 0x50, 0x7d, 0x4d, 0x5d, 0x5c, 0x4e, 0x6b, 0x60, 0x4b, 0x61,
14885 0xf0, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7, 0xf8, 0xf9, 0x7a, 0x5e, 0x4c, 0x7e, 0x6e, 0x6f,
14886 0x7c, 0xc1, 0xc2, 0xc3, 0xc4, 0xc5, 0xc6, 0xc7, 0xc8, 0xc9, 0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6,
14887 0xd7, 0xd8, 0xd9, 0xe2, 0xe3, 0xe4, 0xe5, 0xe6, 0xe7, 0xe8, 0xe9, 0x4a, 0xe0, 0x5a, 0x5f, 0x6d,
14888 0x79, 0x81, 0x82, 0x83, 0x84, 0x85, 0x86, 0x87, 0x88, 0x89, 0x91, 0x92, 0x93, 0x94, 0x95, 0x96,
14889 0x97, 0x98, 0x99, 0xa2, 0xa3, 0xa4, 0xa5, 0xa6, 0xa7, 0xa8, 0xa9, 0xc0, 0x6a, 0xd0, 0xa1, 0x07,
14890 0x20, 0x21, 0x22, 0x23, 0x24, 0x15, 0x06, 0x17, 0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x09, 0x0a, 0x1b,
14891 0x30, 0x31, 0x1a, 0x33, 0x34, 0x35, 0x36, 0x08, 0x38, 0x39, 0x3a, 0x3b, 0x04, 0x14, 0x3e, 0xe1,
14892 0x41, 0x42, 0x43, 0x44, 0x45, 0x46, 0x47, 0x48, 0x49, 0x51, 0x52, 0x53, 0x54, 0x55, 0x56, 0x57,
14893 0x58, 0x59, 0x62, 0x63, 0x64, 0x65, 0x66, 0x67, 0x68, 0x69, 0x70, 0x71, 0x72, 0x73, 0x74, 0x75,
14894 0x76, 0x77, 0x78, 0x80, 0x8a, 0x8b, 0x8c, 0x8d, 0x8e, 0x8f, 0x90, 0x9a, 0x9b, 0x9c, 0x9d, 0x9e,
14895 0x9f, 0xa0, 0xaa, 0xab, 0xac, 0xad, 0xae, 0xaf, 0xb0, 0xb1, 0xb2, 0xb3, 0xb4, 0xb5, 0xb6, 0xb7,
14896 0xb8, 0xb9, 0xba, 0xbb, 0xbc, 0xbd, 0xbe, 0xbf, 0xca, 0xcb, 0xcc, 0xcd, 0xce, 0xcf, 0xda, 0xdb,
14897 0xdc, 0xdd, 0xde, 0xdf, 0xea, 0xeb, 0xec, 0xed, 0xee, 0xef, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff,
14898 };
14899
14900 if ((input_len < DISPLAY_LEN_MIN_8500) || (input_len > DISPLAY_LEN_MAX_8500)) return (PARSER_GLOBAL_LENGTH);
14901
14902 if (memcmp (SIGNATURE_RACF, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
14903
14904 u32 *digest = (u32 *) hash_buf->digest;
14905
14906 salt_t *salt = hash_buf->salt;
14907
14908 char *salt_pos = input_buf + 6 + 1;
14909
14910 char *digest_pos = strchr (salt_pos, '*');
14911
14912 if (digest_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
14913
14914 uint salt_len = digest_pos - salt_pos;
14915
14916 if (salt_len > 8) return (PARSER_SALT_LENGTH);
14917
14918 uint hash_len = input_len - 1 - salt_len - 1 - 6;
14919
14920 if (hash_len != 16) return (PARSER_HASH_LENGTH);
14921
14922 digest_pos++;
14923
14924 char *salt_buf_ptr = (char *) salt->salt_buf;
14925 char *salt_buf_pc_ptr = (char *) salt->salt_buf_pc;
14926
14927 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
14928
14929 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
14930
14931 salt->salt_len = salt_len;
14932
14933 for (uint i = 0; i < salt_len; i++)
14934 {
14935 salt_buf_pc_ptr[i] = ascii_to_ebcdic[(int) salt_buf_ptr[i]];
14936 }
14937 for (uint i = salt_len; i < 8; i++)
14938 {
14939 salt_buf_pc_ptr[i] = 0x40;
14940 }
14941
14942 uint tt;
14943
14944 IP (salt->salt_buf_pc[0], salt->salt_buf_pc[1], tt);
14945
14946 salt->salt_buf_pc[0] = rotl32 (salt->salt_buf_pc[0], 3u);
14947 salt->salt_buf_pc[1] = rotl32 (salt->salt_buf_pc[1], 3u);
14948
14949 digest[0] = hex_to_u32 ((const u8 *) &digest_pos[ 0]);
14950 digest[1] = hex_to_u32 ((const u8 *) &digest_pos[ 8]);
14951
14952 digest[0] = byte_swap_32 (digest[0]);
14953 digest[1] = byte_swap_32 (digest[1]);
14954
14955 IP (digest[0], digest[1], tt);
14956
14957 digest[0] = rotr32 (digest[0], 29);
14958 digest[1] = rotr32 (digest[1], 29);
14959 digest[2] = 0;
14960 digest[3] = 0;
14961
14962 return (PARSER_OK);
14963 }
14964
14965 int lotus5_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14966 {
14967 if ((input_len < DISPLAY_LEN_MIN_8600) || (input_len > DISPLAY_LEN_MAX_8600)) return (PARSER_GLOBAL_LENGTH);
14968
14969 u32 *digest = (u32 *) hash_buf->digest;
14970
14971 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
14972 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
14973 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
14974 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
14975
14976 digest[0] = byte_swap_32 (digest[0]);
14977 digest[1] = byte_swap_32 (digest[1]);
14978 digest[2] = byte_swap_32 (digest[2]);
14979 digest[3] = byte_swap_32 (digest[3]);
14980
14981 return (PARSER_OK);
14982 }
14983
14984 int lotus6_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
14985 {
14986 if ((input_len < DISPLAY_LEN_MIN_8700) || (input_len > DISPLAY_LEN_MAX_8700)) return (PARSER_GLOBAL_LENGTH);
14987
14988 if ((input_buf[0] != '(') || (input_buf[1] != 'G') || (input_buf[21] != ')')) return (PARSER_SIGNATURE_UNMATCHED);
14989
14990 u32 *digest = (u32 *) hash_buf->digest;
14991
14992 salt_t *salt = hash_buf->salt;
14993
14994 u8 tmp_buf[120] = { 0 };
14995
14996 base64_decode (lotus64_to_int, (const u8 *) input_buf + 2, input_len - 3, tmp_buf);
14997
14998 tmp_buf[3] += -4; // dont ask!
14999
15000 memcpy (salt->salt_buf, tmp_buf, 5);
15001
15002 salt->salt_len = 5;
15003
15004 memcpy (digest, tmp_buf + 5, 9);
15005
15006 // yes, only 9 byte are needed to crack, but 10 to display
15007
15008 salt->salt_buf_pc[7] = input_buf[20];
15009
15010 return (PARSER_OK);
15011 }
15012
15013 int lotus8_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15014 {
15015 if ((input_len < DISPLAY_LEN_MIN_9100) || (input_len > DISPLAY_LEN_MAX_9100)) return (PARSER_GLOBAL_LENGTH);
15016
15017 if ((input_buf[0] != '(') || (input_buf[1] != 'H') || (input_buf[DISPLAY_LEN_MAX_9100 - 1] != ')')) return (PARSER_SIGNATURE_UNMATCHED);
15018
15019 u32 *digest = (u32 *) hash_buf->digest;
15020
15021 salt_t *salt = hash_buf->salt;
15022
15023 u8 tmp_buf[120] = { 0 };
15024
15025 base64_decode (lotus64_to_int, (const u8 *) input_buf + 2, input_len - 3, tmp_buf);
15026
15027 tmp_buf[3] += -4; // dont ask!
15028
15029 // salt
15030
15031 memcpy (salt->salt_buf, tmp_buf, 16);
15032
15033 salt->salt_len = 16; // Attention: in theory we have 2 salt_len, one for the -m 8700 part (len: 8), 2nd for the 9100 part (len: 16)
15034
15035 // iteration
15036
15037 char tmp_iter_buf[11] = { 0 };
15038
15039 memcpy (tmp_iter_buf, tmp_buf + 16, 10);
15040
15041 tmp_iter_buf[10] = 0;
15042
15043 salt->salt_iter = atoi (tmp_iter_buf);
15044
15045 if (salt->salt_iter < 1) // well, the limit hopefully is much higher
15046 {
15047 return (PARSER_SALT_ITERATION);
15048 }
15049
15050 salt->salt_iter--; // first round in init
15051
15052 // 2 additional bytes for display only
15053
15054 salt->salt_buf_pc[0] = tmp_buf[26];
15055 salt->salt_buf_pc[1] = tmp_buf[27];
15056
15057 // digest
15058
15059 memcpy (digest, tmp_buf + 28, 8);
15060
15061 digest[0] = byte_swap_32 (digest[0]);
15062 digest[1] = byte_swap_32 (digest[1]);
15063 digest[2] = 0;
15064 digest[3] = 0;
15065
15066 return (PARSER_OK);
15067 }
15068
15069 int hmailserver_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15070 {
15071 if ((input_len < DISPLAY_LEN_MIN_1421) || (input_len > DISPLAY_LEN_MAX_1421)) return (PARSER_GLOBAL_LENGTH);
15072
15073 u32 *digest = (u32 *) hash_buf->digest;
15074
15075 salt_t *salt = hash_buf->salt;
15076
15077 char *salt_buf_pos = input_buf;
15078
15079 char *hash_buf_pos = salt_buf_pos + 6;
15080
15081 digest[0] = hex_to_u32 ((const u8 *) &hash_buf_pos[ 0]);
15082 digest[1] = hex_to_u32 ((const u8 *) &hash_buf_pos[ 8]);
15083 digest[2] = hex_to_u32 ((const u8 *) &hash_buf_pos[16]);
15084 digest[3] = hex_to_u32 ((const u8 *) &hash_buf_pos[24]);
15085 digest[4] = hex_to_u32 ((const u8 *) &hash_buf_pos[32]);
15086 digest[5] = hex_to_u32 ((const u8 *) &hash_buf_pos[40]);
15087 digest[6] = hex_to_u32 ((const u8 *) &hash_buf_pos[48]);
15088 digest[7] = hex_to_u32 ((const u8 *) &hash_buf_pos[56]);
15089
15090 digest[0] -= SHA256M_A;
15091 digest[1] -= SHA256M_B;
15092 digest[2] -= SHA256M_C;
15093 digest[3] -= SHA256M_D;
15094 digest[4] -= SHA256M_E;
15095 digest[5] -= SHA256M_F;
15096 digest[6] -= SHA256M_G;
15097 digest[7] -= SHA256M_H;
15098
15099 char *salt_buf_ptr = (char *) salt->salt_buf;
15100
15101 const uint salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf_pos, 6);
15102
15103 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
15104
15105 salt->salt_len = salt_len;
15106
15107 return (PARSER_OK);
15108 }
15109
15110 int phps_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15111 {
15112 if ((input_len < DISPLAY_LEN_MIN_2612) || (input_len > DISPLAY_LEN_MAX_2612)) return (PARSER_GLOBAL_LENGTH);
15113
15114 u32 *digest = (u32 *) hash_buf->digest;
15115
15116 if (memcmp (SIGNATURE_PHPS, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
15117
15118 salt_t *salt = hash_buf->salt;
15119
15120 char *salt_buf = input_buf + 6;
15121
15122 char *digest_buf = strchr (salt_buf, '$');
15123
15124 if (digest_buf == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15125
15126 uint salt_len = digest_buf - salt_buf;
15127
15128 digest_buf++; // skip the '$' symbol
15129
15130 char *salt_buf_ptr = (char *) salt->salt_buf;
15131
15132 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
15133
15134 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
15135
15136 salt->salt_len = salt_len;
15137
15138 digest[0] = hex_to_u32 ((const u8 *) &digest_buf[ 0]);
15139 digest[1] = hex_to_u32 ((const u8 *) &digest_buf[ 8]);
15140 digest[2] = hex_to_u32 ((const u8 *) &digest_buf[16]);
15141 digest[3] = hex_to_u32 ((const u8 *) &digest_buf[24]);
15142
15143 digest[0] = byte_swap_32 (digest[0]);
15144 digest[1] = byte_swap_32 (digest[1]);
15145 digest[2] = byte_swap_32 (digest[2]);
15146 digest[3] = byte_swap_32 (digest[3]);
15147
15148 digest[0] -= MD5M_A;
15149 digest[1] -= MD5M_B;
15150 digest[2] -= MD5M_C;
15151 digest[3] -= MD5M_D;
15152
15153 return (PARSER_OK);
15154 }
15155
15156 int mediawiki_b_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15157 {
15158 if ((input_len < DISPLAY_LEN_MIN_3711) || (input_len > DISPLAY_LEN_MAX_3711)) return (PARSER_GLOBAL_LENGTH);
15159
15160 if (memcmp (SIGNATURE_MEDIAWIKI_B, input_buf, 3)) return (PARSER_SIGNATURE_UNMATCHED);
15161
15162 u32 *digest = (u32 *) hash_buf->digest;
15163
15164 salt_t *salt = hash_buf->salt;
15165
15166 char *salt_buf = input_buf + 3;
15167
15168 char *digest_buf = strchr (salt_buf, '$');
15169
15170 if (digest_buf == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15171
15172 uint salt_len = digest_buf - salt_buf;
15173
15174 digest_buf++; // skip the '$' symbol
15175
15176 char *salt_buf_ptr = (char *) salt->salt_buf;
15177
15178 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
15179
15180 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
15181
15182 salt_buf_ptr[salt_len] = 0x2d;
15183
15184 salt->salt_len = salt_len + 1;
15185
15186 digest[0] = hex_to_u32 ((const u8 *) &digest_buf[ 0]);
15187 digest[1] = hex_to_u32 ((const u8 *) &digest_buf[ 8]);
15188 digest[2] = hex_to_u32 ((const u8 *) &digest_buf[16]);
15189 digest[3] = hex_to_u32 ((const u8 *) &digest_buf[24]);
15190
15191 digest[0] = byte_swap_32 (digest[0]);
15192 digest[1] = byte_swap_32 (digest[1]);
15193 digest[2] = byte_swap_32 (digest[2]);
15194 digest[3] = byte_swap_32 (digest[3]);
15195
15196 digest[0] -= MD5M_A;
15197 digest[1] -= MD5M_B;
15198 digest[2] -= MD5M_C;
15199 digest[3] -= MD5M_D;
15200
15201 return (PARSER_OK);
15202 }
15203
15204 int peoplesoft_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15205 {
15206 if ((input_len < DISPLAY_LEN_MIN_133) || (input_len > DISPLAY_LEN_MAX_133)) return (PARSER_GLOBAL_LENGTH);
15207
15208 u32 *digest = (u32 *) hash_buf->digest;
15209
15210 salt_t *salt = hash_buf->salt;
15211
15212 u8 tmp_buf[100] = { 0 };
15213
15214 base64_decode (base64_to_int, (const u8 *) input_buf, input_len, tmp_buf);
15215
15216 memcpy (digest, tmp_buf, 20);
15217
15218 digest[0] = byte_swap_32 (digest[0]);
15219 digest[1] = byte_swap_32 (digest[1]);
15220 digest[2] = byte_swap_32 (digest[2]);
15221 digest[3] = byte_swap_32 (digest[3]);
15222 digest[4] = byte_swap_32 (digest[4]);
15223
15224 digest[0] -= SHA1M_A;
15225 digest[1] -= SHA1M_B;
15226 digest[2] -= SHA1M_C;
15227 digest[3] -= SHA1M_D;
15228 digest[4] -= SHA1M_E;
15229
15230 salt->salt_buf[0] = 0x80;
15231
15232 salt->salt_len = 0;
15233
15234 return (PARSER_OK);
15235 }
15236
15237 int skype_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15238 {
15239 if ((input_len < DISPLAY_LEN_MIN_23) || (input_len > DISPLAY_LEN_MAX_23)) return (PARSER_GLOBAL_LENGTH);
15240
15241 u32 *digest = (u32 *) hash_buf->digest;
15242
15243 salt_t *salt = hash_buf->salt;
15244
15245 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
15246 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
15247 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
15248 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
15249
15250 digest[0] = byte_swap_32 (digest[0]);
15251 digest[1] = byte_swap_32 (digest[1]);
15252 digest[2] = byte_swap_32 (digest[2]);
15253 digest[3] = byte_swap_32 (digest[3]);
15254
15255 digest[0] -= MD5M_A;
15256 digest[1] -= MD5M_B;
15257 digest[2] -= MD5M_C;
15258 digest[3] -= MD5M_D;
15259
15260 if (input_buf[32] != ':') return (PARSER_SEPARATOR_UNMATCHED);
15261
15262 uint salt_len = input_len - 32 - 1;
15263
15264 char *salt_buf = input_buf + 32 + 1;
15265
15266 char *salt_buf_ptr = (char *) salt->salt_buf;
15267
15268 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
15269
15270 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
15271
15272 /*
15273 * add static "salt" part
15274 */
15275
15276 memcpy (salt_buf_ptr + salt_len, "\nskyper\n", 8);
15277
15278 salt_len += 8;
15279
15280 salt->salt_len = salt_len;
15281
15282 return (PARSER_OK);
15283 }
15284
15285 int androidfde_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15286 {
15287 if ((input_len < DISPLAY_LEN_MIN_8800) || (input_len > DISPLAY_LEN_MAX_8800)) return (PARSER_GLOBAL_LENGTH);
15288
15289 if (memcmp (SIGNATURE_ANDROIDFDE, input_buf, 5)) return (PARSER_SIGNATURE_UNMATCHED);
15290
15291 u32 *digest = (u32 *) hash_buf->digest;
15292
15293 salt_t *salt = hash_buf->salt;
15294
15295 androidfde_t *androidfde = (androidfde_t *) hash_buf->esalt;
15296
15297 /**
15298 * parse line
15299 */
15300
15301 char *saltlen_pos = input_buf + 1 + 3 + 1;
15302
15303 char *saltbuf_pos = strchr (saltlen_pos, '$');
15304
15305 if (saltbuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15306
15307 uint saltlen_len = saltbuf_pos - saltlen_pos;
15308
15309 if (saltlen_len != 2) return (PARSER_SALT_LENGTH);
15310
15311 saltbuf_pos++;
15312
15313 char *keylen_pos = strchr (saltbuf_pos, '$');
15314
15315 if (keylen_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15316
15317 uint saltbuf_len = keylen_pos - saltbuf_pos;
15318
15319 if (saltbuf_len != 32) return (PARSER_SALT_LENGTH);
15320
15321 keylen_pos++;
15322
15323 char *keybuf_pos = strchr (keylen_pos, '$');
15324
15325 if (keybuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15326
15327 uint keylen_len = keybuf_pos - keylen_pos;
15328
15329 if (keylen_len != 2) return (PARSER_SALT_LENGTH);
15330
15331 keybuf_pos++;
15332
15333 char *databuf_pos = strchr (keybuf_pos, '$');
15334
15335 if (databuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15336
15337 uint keybuf_len = databuf_pos - keybuf_pos;
15338
15339 if (keybuf_len != 32) return (PARSER_SALT_LENGTH);
15340
15341 databuf_pos++;
15342
15343 uint data_len = input_len - 1 - 3 - 1 - saltlen_len - 1 - saltbuf_len - 1 - keylen_len - 1 - keybuf_len - 1;
15344
15345 if (data_len != 3072) return (PARSER_SALT_LENGTH);
15346
15347 /**
15348 * copy data
15349 */
15350
15351 digest[0] = hex_to_u32 ((const u8 *) &keybuf_pos[ 0]);
15352 digest[1] = hex_to_u32 ((const u8 *) &keybuf_pos[ 8]);
15353 digest[2] = hex_to_u32 ((const u8 *) &keybuf_pos[16]);
15354 digest[3] = hex_to_u32 ((const u8 *) &keybuf_pos[24]);
15355
15356 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &saltbuf_pos[ 0]);
15357 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &saltbuf_pos[ 8]);
15358 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &saltbuf_pos[16]);
15359 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &saltbuf_pos[24]);
15360
15361 salt->salt_buf[0] = byte_swap_32 (salt->salt_buf[0]);
15362 salt->salt_buf[1] = byte_swap_32 (salt->salt_buf[1]);
15363 salt->salt_buf[2] = byte_swap_32 (salt->salt_buf[2]);
15364 salt->salt_buf[3] = byte_swap_32 (salt->salt_buf[3]);
15365
15366 salt->salt_len = 16;
15367 salt->salt_iter = ROUNDS_ANDROIDFDE - 1;
15368
15369 for (uint i = 0, j = 0; i < 3072; i += 8, j += 1)
15370 {
15371 androidfde->data[j] = hex_to_u32 ((const u8 *) &databuf_pos[i]);
15372 }
15373
15374 return (PARSER_OK);
15375 }
15376
15377 int scrypt_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15378 {
15379 if ((input_len < DISPLAY_LEN_MIN_8900) || (input_len > DISPLAY_LEN_MAX_8900)) return (PARSER_GLOBAL_LENGTH);
15380
15381 if (memcmp (SIGNATURE_SCRYPT, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
15382
15383 u32 *digest = (u32 *) hash_buf->digest;
15384
15385 salt_t *salt = hash_buf->salt;
15386
15387 /**
15388 * parse line
15389 */
15390
15391 // first is the N salt parameter
15392
15393 char *N_pos = input_buf + 6;
15394
15395 if (N_pos[0] != ':') return (PARSER_SEPARATOR_UNMATCHED);
15396
15397 N_pos++;
15398
15399 salt->scrypt_N = atoi (N_pos);
15400
15401 // r
15402
15403 char *r_pos = strchr (N_pos, ':');
15404
15405 if (r_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15406
15407 r_pos++;
15408
15409 salt->scrypt_r = atoi (r_pos);
15410
15411 // p
15412
15413 char *p_pos = strchr (r_pos, ':');
15414
15415 if (p_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15416
15417 p_pos++;
15418
15419 salt->scrypt_p = atoi (p_pos);
15420
15421 // salt
15422
15423 char *saltbuf_pos = strchr (p_pos, ':');
15424
15425 if (saltbuf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15426
15427 saltbuf_pos++;
15428
15429 char *hash_pos = strchr (saltbuf_pos, ':');
15430
15431 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15432
15433 hash_pos++;
15434
15435 // base64 decode
15436
15437 int salt_len_base64 = hash_pos - saltbuf_pos;
15438
15439 if (salt_len_base64 > 45) return (PARSER_SALT_LENGTH);
15440
15441 u8 tmp_buf[33] = { 0 };
15442
15443 int tmp_len = base64_decode (base64_to_int, (const u8 *) saltbuf_pos, salt_len_base64, tmp_buf);
15444
15445 char *salt_buf_ptr = (char *) salt->salt_buf;
15446
15447 memcpy (salt_buf_ptr, tmp_buf, tmp_len);
15448
15449 salt->salt_len = tmp_len;
15450 salt->salt_iter = 1;
15451
15452 // digest - base64 decode
15453
15454 memset (tmp_buf, 0, sizeof (tmp_buf));
15455
15456 tmp_len = input_len - (hash_pos - input_buf);
15457
15458 if (tmp_len != 44) return (PARSER_GLOBAL_LENGTH);
15459
15460 base64_decode (base64_to_int, (const u8 *) hash_pos, tmp_len, tmp_buf);
15461
15462 memcpy (digest, tmp_buf, 32);
15463
15464 return (PARSER_OK);
15465 }
15466
15467 int juniper_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15468 {
15469 if ((input_len < DISPLAY_LEN_MIN_501) || (input_len > DISPLAY_LEN_MAX_501)) return (PARSER_GLOBAL_LENGTH);
15470
15471 u32 *digest = (u32 *) hash_buf->digest;
15472
15473 salt_t *salt = hash_buf->salt;
15474
15475 /**
15476 * parse line
15477 */
15478
15479 char decrypted[76] = { 0 }; // iv + hash
15480
15481 juniper_decrypt_hash (input_buf, decrypted);
15482
15483 char *md5crypt_hash = decrypted + 12;
15484
15485 if (memcmp (md5crypt_hash, "$1$danastre$", 12)) return (PARSER_SALT_VALUE);
15486
15487 salt->salt_iter = ROUNDS_MD5CRYPT;
15488
15489 char *salt_pos = md5crypt_hash + 3;
15490
15491 char *hash_pos = strchr (salt_pos, '$'); // or simply salt_pos + 8
15492
15493 salt->salt_len = hash_pos - salt_pos; // should be 8
15494
15495 memcpy ((char *) salt->salt_buf, salt_pos, salt->salt_len);
15496
15497 hash_pos++;
15498
15499 md5crypt_decode ((unsigned char *) digest, (unsigned char *) hash_pos);
15500
15501 return (PARSER_OK);
15502 }
15503
15504 int cisco8_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15505 {
15506 if ((input_len < DISPLAY_LEN_MIN_9200) || (input_len > DISPLAY_LEN_MAX_9200)) return (PARSER_GLOBAL_LENGTH);
15507
15508 if (memcmp (SIGNATURE_CISCO8, input_buf, 3)) return (PARSER_SIGNATURE_UNMATCHED);
15509
15510 u32 *digest = (u32 *) hash_buf->digest;
15511
15512 salt_t *salt = hash_buf->salt;
15513
15514 pbkdf2_sha256_t *pbkdf2_sha256 = (pbkdf2_sha256_t *) hash_buf->esalt;
15515
15516 /**
15517 * parse line
15518 */
15519
15520 // first is *raw* salt
15521
15522 char *salt_pos = input_buf + 3;
15523
15524 char *hash_pos = strchr (salt_pos, '$');
15525
15526 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15527
15528 uint salt_len = hash_pos - salt_pos;
15529
15530 if (salt_len != 14) return (PARSER_SALT_LENGTH);
15531
15532 hash_pos++;
15533
15534 char *salt_buf_ptr = (char *) pbkdf2_sha256->salt_buf;
15535
15536 memcpy (salt_buf_ptr, salt_pos, 14);
15537
15538 salt_buf_ptr[17] = 0x01;
15539 salt_buf_ptr[18] = 0x80;
15540
15541 // add some stuff to normal salt to make sorted happy
15542
15543 salt->salt_buf[0] = pbkdf2_sha256->salt_buf[0];
15544 salt->salt_buf[1] = pbkdf2_sha256->salt_buf[1];
15545 salt->salt_buf[2] = pbkdf2_sha256->salt_buf[2];
15546 salt->salt_buf[3] = pbkdf2_sha256->salt_buf[3];
15547
15548 salt->salt_len = salt_len;
15549 salt->salt_iter = ROUNDS_CISCO8 - 1;
15550
15551 // base64 decode hash
15552
15553 u8 tmp_buf[100] = { 0 };
15554
15555 uint hash_len = input_len - 3 - salt_len - 1;
15556
15557 int tmp_len = base64_decode (itoa64_to_int, (const u8 *) hash_pos, hash_len, tmp_buf);
15558
15559 if (tmp_len != 32) return (PARSER_HASH_LENGTH);
15560
15561 memcpy (digest, tmp_buf, 32);
15562
15563 digest[0] = byte_swap_32 (digest[0]);
15564 digest[1] = byte_swap_32 (digest[1]);
15565 digest[2] = byte_swap_32 (digest[2]);
15566 digest[3] = byte_swap_32 (digest[3]);
15567 digest[4] = byte_swap_32 (digest[4]);
15568 digest[5] = byte_swap_32 (digest[5]);
15569 digest[6] = byte_swap_32 (digest[6]);
15570 digest[7] = byte_swap_32 (digest[7]);
15571
15572 return (PARSER_OK);
15573 }
15574
15575 int cisco9_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15576 {
15577 if ((input_len < DISPLAY_LEN_MIN_9300) || (input_len > DISPLAY_LEN_MAX_9300)) return (PARSER_GLOBAL_LENGTH);
15578
15579 if (memcmp (SIGNATURE_CISCO9, input_buf, 3)) return (PARSER_SIGNATURE_UNMATCHED);
15580
15581 u32 *digest = (u32 *) hash_buf->digest;
15582
15583 salt_t *salt = hash_buf->salt;
15584
15585 /**
15586 * parse line
15587 */
15588
15589 // first is *raw* salt
15590
15591 char *salt_pos = input_buf + 3;
15592
15593 char *hash_pos = strchr (salt_pos, '$');
15594
15595 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15596
15597 uint salt_len = hash_pos - salt_pos;
15598
15599 if (salt_len != 14) return (PARSER_SALT_LENGTH);
15600
15601 salt->salt_len = salt_len;
15602 hash_pos++;
15603
15604 char *salt_buf_ptr = (char *) salt->salt_buf;
15605
15606 memcpy (salt_buf_ptr, salt_pos, salt_len);
15607 salt_buf_ptr[salt_len] = 0;
15608
15609 // base64 decode hash
15610
15611 u8 tmp_buf[100] = { 0 };
15612
15613 uint hash_len = input_len - 3 - salt_len - 1;
15614
15615 int tmp_len = base64_decode (itoa64_to_int, (const u8 *) hash_pos, hash_len, tmp_buf);
15616
15617 if (tmp_len != 32) return (PARSER_HASH_LENGTH);
15618
15619 memcpy (digest, tmp_buf, 32);
15620
15621 // fixed:
15622 salt->scrypt_N = 16384;
15623 salt->scrypt_r = 1;
15624 salt->scrypt_p = 1;
15625 salt->salt_iter = 1;
15626
15627 return (PARSER_OK);
15628 }
15629
15630 int office2007_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15631 {
15632 if ((input_len < DISPLAY_LEN_MIN_9400) || (input_len > DISPLAY_LEN_MAX_9400)) return (PARSER_GLOBAL_LENGTH);
15633
15634 if (memcmp (SIGNATURE_OFFICE2007, input_buf, 8)) return (PARSER_SIGNATURE_UNMATCHED);
15635
15636 u32 *digest = (u32 *) hash_buf->digest;
15637
15638 salt_t *salt = hash_buf->salt;
15639
15640 office2007_t *office2007 = (office2007_t *) hash_buf->esalt;
15641
15642 /**
15643 * parse line
15644 */
15645
15646 char *version_pos = input_buf + 8 + 1;
15647
15648 char *verifierHashSize_pos = strchr (version_pos, '*');
15649
15650 if (verifierHashSize_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15651
15652 u32 version_len = verifierHashSize_pos - version_pos;
15653
15654 if (version_len != 4) return (PARSER_SALT_LENGTH);
15655
15656 verifierHashSize_pos++;
15657
15658 char *keySize_pos = strchr (verifierHashSize_pos, '*');
15659
15660 if (keySize_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15661
15662 u32 verifierHashSize_len = keySize_pos - verifierHashSize_pos;
15663
15664 if (verifierHashSize_len != 2) return (PARSER_SALT_LENGTH);
15665
15666 keySize_pos++;
15667
15668 char *saltSize_pos = strchr (keySize_pos, '*');
15669
15670 if (saltSize_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15671
15672 u32 keySize_len = saltSize_pos - keySize_pos;
15673
15674 if (keySize_len != 3) return (PARSER_SALT_LENGTH);
15675
15676 saltSize_pos++;
15677
15678 char *osalt_pos = strchr (saltSize_pos, '*');
15679
15680 if (osalt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15681
15682 u32 saltSize_len = osalt_pos - saltSize_pos;
15683
15684 if (saltSize_len != 2) return (PARSER_SALT_LENGTH);
15685
15686 osalt_pos++;
15687
15688 char *encryptedVerifier_pos = strchr (osalt_pos, '*');
15689
15690 if (encryptedVerifier_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15691
15692 u32 osalt_len = encryptedVerifier_pos - osalt_pos;
15693
15694 if (osalt_len != 32) return (PARSER_SALT_LENGTH);
15695
15696 encryptedVerifier_pos++;
15697
15698 char *encryptedVerifierHash_pos = strchr (encryptedVerifier_pos, '*');
15699
15700 if (encryptedVerifierHash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15701
15702 u32 encryptedVerifier_len = encryptedVerifierHash_pos - encryptedVerifier_pos;
15703
15704 if (encryptedVerifier_len != 32) return (PARSER_SALT_LENGTH);
15705
15706 encryptedVerifierHash_pos++;
15707
15708 u32 encryptedVerifierHash_len = input_len - 8 - 1 - version_len - 1 - verifierHashSize_len - 1 - keySize_len - 1 - saltSize_len - 1 - osalt_len - 1 - encryptedVerifier_len - 1;
15709
15710 if (encryptedVerifierHash_len != 40) return (PARSER_SALT_LENGTH);
15711
15712 const uint version = atoi (version_pos);
15713
15714 if (version != 2007) return (PARSER_SALT_VALUE);
15715
15716 const uint verifierHashSize = atoi (verifierHashSize_pos);
15717
15718 if (verifierHashSize != 20) return (PARSER_SALT_VALUE);
15719
15720 const uint keySize = atoi (keySize_pos);
15721
15722 if ((keySize != 128) && (keySize != 256)) return (PARSER_SALT_VALUE);
15723
15724 office2007->keySize = keySize;
15725
15726 const uint saltSize = atoi (saltSize_pos);
15727
15728 if (saltSize != 16) return (PARSER_SALT_VALUE);
15729
15730 /**
15731 * salt
15732 */
15733
15734 salt->salt_len = 16;
15735 salt->salt_iter = ROUNDS_OFFICE2007;
15736
15737 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &osalt_pos[ 0]);
15738 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &osalt_pos[ 8]);
15739 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &osalt_pos[16]);
15740 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &osalt_pos[24]);
15741
15742 /**
15743 * esalt
15744 */
15745
15746 office2007->encryptedVerifier[0] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 0]);
15747 office2007->encryptedVerifier[1] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 8]);
15748 office2007->encryptedVerifier[2] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[16]);
15749 office2007->encryptedVerifier[3] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[24]);
15750
15751 office2007->encryptedVerifierHash[0] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 0]);
15752 office2007->encryptedVerifierHash[1] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 8]);
15753 office2007->encryptedVerifierHash[2] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[16]);
15754 office2007->encryptedVerifierHash[3] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[24]);
15755 office2007->encryptedVerifierHash[4] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[32]);
15756
15757 /**
15758 * digest
15759 */
15760
15761 digest[0] = office2007->encryptedVerifierHash[0];
15762 digest[1] = office2007->encryptedVerifierHash[1];
15763 digest[2] = office2007->encryptedVerifierHash[2];
15764 digest[3] = office2007->encryptedVerifierHash[3];
15765
15766 return (PARSER_OK);
15767 }
15768
15769 int office2010_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15770 {
15771 if ((input_len < DISPLAY_LEN_MIN_9500) || (input_len > DISPLAY_LEN_MAX_9500)) return (PARSER_GLOBAL_LENGTH);
15772
15773 if (memcmp (SIGNATURE_OFFICE2010, input_buf, 8)) return (PARSER_SIGNATURE_UNMATCHED);
15774
15775 u32 *digest = (u32 *) hash_buf->digest;
15776
15777 salt_t *salt = hash_buf->salt;
15778
15779 office2010_t *office2010 = (office2010_t *) hash_buf->esalt;
15780
15781 /**
15782 * parse line
15783 */
15784
15785 char *version_pos = input_buf + 8 + 1;
15786
15787 char *spinCount_pos = strchr (version_pos, '*');
15788
15789 if (spinCount_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15790
15791 u32 version_len = spinCount_pos - version_pos;
15792
15793 if (version_len != 4) return (PARSER_SALT_LENGTH);
15794
15795 spinCount_pos++;
15796
15797 char *keySize_pos = strchr (spinCount_pos, '*');
15798
15799 if (keySize_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15800
15801 u32 spinCount_len = keySize_pos - spinCount_pos;
15802
15803 if (spinCount_len != 6) return (PARSER_SALT_LENGTH);
15804
15805 keySize_pos++;
15806
15807 char *saltSize_pos = strchr (keySize_pos, '*');
15808
15809 if (saltSize_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15810
15811 u32 keySize_len = saltSize_pos - keySize_pos;
15812
15813 if (keySize_len != 3) return (PARSER_SALT_LENGTH);
15814
15815 saltSize_pos++;
15816
15817 char *osalt_pos = strchr (saltSize_pos, '*');
15818
15819 if (osalt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15820
15821 u32 saltSize_len = osalt_pos - saltSize_pos;
15822
15823 if (saltSize_len != 2) return (PARSER_SALT_LENGTH);
15824
15825 osalt_pos++;
15826
15827 char *encryptedVerifier_pos = strchr (osalt_pos, '*');
15828
15829 if (encryptedVerifier_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15830
15831 u32 osalt_len = encryptedVerifier_pos - osalt_pos;
15832
15833 if (osalt_len != 32) return (PARSER_SALT_LENGTH);
15834
15835 encryptedVerifier_pos++;
15836
15837 char *encryptedVerifierHash_pos = strchr (encryptedVerifier_pos, '*');
15838
15839 if (encryptedVerifierHash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15840
15841 u32 encryptedVerifier_len = encryptedVerifierHash_pos - encryptedVerifier_pos;
15842
15843 if (encryptedVerifier_len != 32) return (PARSER_SALT_LENGTH);
15844
15845 encryptedVerifierHash_pos++;
15846
15847 u32 encryptedVerifierHash_len = input_len - 8 - 1 - version_len - 1 - spinCount_len - 1 - keySize_len - 1 - saltSize_len - 1 - osalt_len - 1 - encryptedVerifier_len - 1;
15848
15849 if (encryptedVerifierHash_len != 64) return (PARSER_SALT_LENGTH);
15850
15851 const uint version = atoi (version_pos);
15852
15853 if (version != 2010) return (PARSER_SALT_VALUE);
15854
15855 const uint spinCount = atoi (spinCount_pos);
15856
15857 if (spinCount != 100000) return (PARSER_SALT_VALUE);
15858
15859 const uint keySize = atoi (keySize_pos);
15860
15861 if (keySize != 128) return (PARSER_SALT_VALUE);
15862
15863 const uint saltSize = atoi (saltSize_pos);
15864
15865 if (saltSize != 16) return (PARSER_SALT_VALUE);
15866
15867 /**
15868 * salt
15869 */
15870
15871 salt->salt_len = 16;
15872 salt->salt_iter = spinCount;
15873
15874 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &osalt_pos[ 0]);
15875 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &osalt_pos[ 8]);
15876 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &osalt_pos[16]);
15877 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &osalt_pos[24]);
15878
15879 /**
15880 * esalt
15881 */
15882
15883 office2010->encryptedVerifier[0] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 0]);
15884 office2010->encryptedVerifier[1] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 8]);
15885 office2010->encryptedVerifier[2] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[16]);
15886 office2010->encryptedVerifier[3] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[24]);
15887
15888 office2010->encryptedVerifierHash[0] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 0]);
15889 office2010->encryptedVerifierHash[1] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 8]);
15890 office2010->encryptedVerifierHash[2] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[16]);
15891 office2010->encryptedVerifierHash[3] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[24]);
15892 office2010->encryptedVerifierHash[4] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[32]);
15893 office2010->encryptedVerifierHash[5] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[40]);
15894 office2010->encryptedVerifierHash[6] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[48]);
15895 office2010->encryptedVerifierHash[7] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[56]);
15896
15897 /**
15898 * digest
15899 */
15900
15901 digest[0] = office2010->encryptedVerifierHash[0];
15902 digest[1] = office2010->encryptedVerifierHash[1];
15903 digest[2] = office2010->encryptedVerifierHash[2];
15904 digest[3] = office2010->encryptedVerifierHash[3];
15905
15906 return (PARSER_OK);
15907 }
15908
15909 int office2013_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
15910 {
15911 if ((input_len < DISPLAY_LEN_MIN_9600) || (input_len > DISPLAY_LEN_MAX_9600)) return (PARSER_GLOBAL_LENGTH);
15912
15913 if (memcmp (SIGNATURE_OFFICE2013, input_buf, 8)) return (PARSER_SIGNATURE_UNMATCHED);
15914
15915 u32 *digest = (u32 *) hash_buf->digest;
15916
15917 salt_t *salt = hash_buf->salt;
15918
15919 office2013_t *office2013 = (office2013_t *) hash_buf->esalt;
15920
15921 /**
15922 * parse line
15923 */
15924
15925 char *version_pos = input_buf + 8 + 1;
15926
15927 char *spinCount_pos = strchr (version_pos, '*');
15928
15929 if (spinCount_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15930
15931 u32 version_len = spinCount_pos - version_pos;
15932
15933 if (version_len != 4) return (PARSER_SALT_LENGTH);
15934
15935 spinCount_pos++;
15936
15937 char *keySize_pos = strchr (spinCount_pos, '*');
15938
15939 if (keySize_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15940
15941 u32 spinCount_len = keySize_pos - spinCount_pos;
15942
15943 if (spinCount_len != 6) return (PARSER_SALT_LENGTH);
15944
15945 keySize_pos++;
15946
15947 char *saltSize_pos = strchr (keySize_pos, '*');
15948
15949 if (saltSize_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15950
15951 u32 keySize_len = saltSize_pos - keySize_pos;
15952
15953 if (keySize_len != 3) return (PARSER_SALT_LENGTH);
15954
15955 saltSize_pos++;
15956
15957 char *osalt_pos = strchr (saltSize_pos, '*');
15958
15959 if (osalt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15960
15961 u32 saltSize_len = osalt_pos - saltSize_pos;
15962
15963 if (saltSize_len != 2) return (PARSER_SALT_LENGTH);
15964
15965 osalt_pos++;
15966
15967 char *encryptedVerifier_pos = strchr (osalt_pos, '*');
15968
15969 if (encryptedVerifier_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15970
15971 u32 osalt_len = encryptedVerifier_pos - osalt_pos;
15972
15973 if (osalt_len != 32) return (PARSER_SALT_LENGTH);
15974
15975 encryptedVerifier_pos++;
15976
15977 char *encryptedVerifierHash_pos = strchr (encryptedVerifier_pos, '*');
15978
15979 if (encryptedVerifierHash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
15980
15981 u32 encryptedVerifier_len = encryptedVerifierHash_pos - encryptedVerifier_pos;
15982
15983 if (encryptedVerifier_len != 32) return (PARSER_SALT_LENGTH);
15984
15985 encryptedVerifierHash_pos++;
15986
15987 u32 encryptedVerifierHash_len = input_len - 8 - 1 - version_len - 1 - spinCount_len - 1 - keySize_len - 1 - saltSize_len - 1 - osalt_len - 1 - encryptedVerifier_len - 1;
15988
15989 if (encryptedVerifierHash_len != 64) return (PARSER_SALT_LENGTH);
15990
15991 const uint version = atoi (version_pos);
15992
15993 if (version != 2013) return (PARSER_SALT_VALUE);
15994
15995 const uint spinCount = atoi (spinCount_pos);
15996
15997 if (spinCount != 100000) return (PARSER_SALT_VALUE);
15998
15999 const uint keySize = atoi (keySize_pos);
16000
16001 if (keySize != 256) return (PARSER_SALT_VALUE);
16002
16003 const uint saltSize = atoi (saltSize_pos);
16004
16005 if (saltSize != 16) return (PARSER_SALT_VALUE);
16006
16007 /**
16008 * salt
16009 */
16010
16011 salt->salt_len = 16;
16012 salt->salt_iter = spinCount;
16013
16014 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &osalt_pos[ 0]);
16015 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &osalt_pos[ 8]);
16016 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &osalt_pos[16]);
16017 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &osalt_pos[24]);
16018
16019 /**
16020 * esalt
16021 */
16022
16023 office2013->encryptedVerifier[0] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 0]);
16024 office2013->encryptedVerifier[1] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 8]);
16025 office2013->encryptedVerifier[2] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[16]);
16026 office2013->encryptedVerifier[3] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[24]);
16027
16028 office2013->encryptedVerifierHash[0] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 0]);
16029 office2013->encryptedVerifierHash[1] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 8]);
16030 office2013->encryptedVerifierHash[2] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[16]);
16031 office2013->encryptedVerifierHash[3] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[24]);
16032 office2013->encryptedVerifierHash[4] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[32]);
16033 office2013->encryptedVerifierHash[5] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[40]);
16034 office2013->encryptedVerifierHash[6] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[48]);
16035 office2013->encryptedVerifierHash[7] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[56]);
16036
16037 /**
16038 * digest
16039 */
16040
16041 digest[0] = office2013->encryptedVerifierHash[0];
16042 digest[1] = office2013->encryptedVerifierHash[1];
16043 digest[2] = office2013->encryptedVerifierHash[2];
16044 digest[3] = office2013->encryptedVerifierHash[3];
16045
16046 return (PARSER_OK);
16047 }
16048
16049 int oldoffice01_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16050 {
16051 if ((input_len < DISPLAY_LEN_MIN_9700) || (input_len > DISPLAY_LEN_MAX_9700)) return (PARSER_GLOBAL_LENGTH);
16052
16053 if ((memcmp (SIGNATURE_OLDOFFICE0, input_buf, 12)) && (memcmp (SIGNATURE_OLDOFFICE1, input_buf, 12))) return (PARSER_SIGNATURE_UNMATCHED);
16054
16055 u32 *digest = (u32 *) hash_buf->digest;
16056
16057 salt_t *salt = hash_buf->salt;
16058
16059 oldoffice01_t *oldoffice01 = (oldoffice01_t *) hash_buf->esalt;
16060
16061 /**
16062 * parse line
16063 */
16064
16065 char *version_pos = input_buf + 11;
16066
16067 char *osalt_pos = strchr (version_pos, '*');
16068
16069 if (osalt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16070
16071 u32 version_len = osalt_pos - version_pos;
16072
16073 if (version_len != 1) return (PARSER_SALT_LENGTH);
16074
16075 osalt_pos++;
16076
16077 char *encryptedVerifier_pos = strchr (osalt_pos, '*');
16078
16079 if (encryptedVerifier_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16080
16081 u32 osalt_len = encryptedVerifier_pos - osalt_pos;
16082
16083 if (osalt_len != 32) return (PARSER_SALT_LENGTH);
16084
16085 encryptedVerifier_pos++;
16086
16087 char *encryptedVerifierHash_pos = strchr (encryptedVerifier_pos, '*');
16088
16089 if (encryptedVerifierHash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16090
16091 u32 encryptedVerifier_len = encryptedVerifierHash_pos - encryptedVerifier_pos;
16092
16093 if (encryptedVerifier_len != 32) return (PARSER_SALT_LENGTH);
16094
16095 encryptedVerifierHash_pos++;
16096
16097 u32 encryptedVerifierHash_len = input_len - 11 - version_len - 1 - osalt_len - 1 - encryptedVerifier_len - 1;
16098
16099 if (encryptedVerifierHash_len != 32) return (PARSER_SALT_LENGTH);
16100
16101 const uint version = *version_pos - 0x30;
16102
16103 if (version != 0 && version != 1) return (PARSER_SALT_VALUE);
16104
16105 /**
16106 * esalt
16107 */
16108
16109 oldoffice01->version = version;
16110
16111 oldoffice01->encryptedVerifier[0] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 0]);
16112 oldoffice01->encryptedVerifier[1] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 8]);
16113 oldoffice01->encryptedVerifier[2] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[16]);
16114 oldoffice01->encryptedVerifier[3] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[24]);
16115
16116 oldoffice01->encryptedVerifier[0] = byte_swap_32 (oldoffice01->encryptedVerifier[0]);
16117 oldoffice01->encryptedVerifier[1] = byte_swap_32 (oldoffice01->encryptedVerifier[1]);
16118 oldoffice01->encryptedVerifier[2] = byte_swap_32 (oldoffice01->encryptedVerifier[2]);
16119 oldoffice01->encryptedVerifier[3] = byte_swap_32 (oldoffice01->encryptedVerifier[3]);
16120
16121 oldoffice01->encryptedVerifierHash[0] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 0]);
16122 oldoffice01->encryptedVerifierHash[1] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 8]);
16123 oldoffice01->encryptedVerifierHash[2] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[16]);
16124 oldoffice01->encryptedVerifierHash[3] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[24]);
16125
16126 oldoffice01->encryptedVerifierHash[0] = byte_swap_32 (oldoffice01->encryptedVerifierHash[0]);
16127 oldoffice01->encryptedVerifierHash[1] = byte_swap_32 (oldoffice01->encryptedVerifierHash[1]);
16128 oldoffice01->encryptedVerifierHash[2] = byte_swap_32 (oldoffice01->encryptedVerifierHash[2]);
16129 oldoffice01->encryptedVerifierHash[3] = byte_swap_32 (oldoffice01->encryptedVerifierHash[3]);
16130
16131 /**
16132 * salt
16133 */
16134
16135 salt->salt_len = 16;
16136
16137 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &osalt_pos[ 0]);
16138 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &osalt_pos[ 8]);
16139 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &osalt_pos[16]);
16140 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &osalt_pos[24]);
16141
16142 salt->salt_buf[0] = byte_swap_32 (salt->salt_buf[0]);
16143 salt->salt_buf[1] = byte_swap_32 (salt->salt_buf[1]);
16144 salt->salt_buf[2] = byte_swap_32 (salt->salt_buf[2]);
16145 salt->salt_buf[3] = byte_swap_32 (salt->salt_buf[3]);
16146
16147 // this is a workaround as office produces multiple documents with the same salt
16148
16149 salt->salt_len += 32;
16150
16151 salt->salt_buf[ 4] = oldoffice01->encryptedVerifier[0];
16152 salt->salt_buf[ 5] = oldoffice01->encryptedVerifier[1];
16153 salt->salt_buf[ 6] = oldoffice01->encryptedVerifier[2];
16154 salt->salt_buf[ 7] = oldoffice01->encryptedVerifier[3];
16155 salt->salt_buf[ 8] = oldoffice01->encryptedVerifierHash[0];
16156 salt->salt_buf[ 9] = oldoffice01->encryptedVerifierHash[1];
16157 salt->salt_buf[10] = oldoffice01->encryptedVerifierHash[2];
16158 salt->salt_buf[11] = oldoffice01->encryptedVerifierHash[3];
16159
16160 /**
16161 * digest
16162 */
16163
16164 digest[0] = oldoffice01->encryptedVerifierHash[0];
16165 digest[1] = oldoffice01->encryptedVerifierHash[1];
16166 digest[2] = oldoffice01->encryptedVerifierHash[2];
16167 digest[3] = oldoffice01->encryptedVerifierHash[3];
16168
16169 return (PARSER_OK);
16170 }
16171
16172 int oldoffice01cm1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16173 {
16174 return oldoffice01_parse_hash (input_buf, input_len, hash_buf);
16175 }
16176
16177 int oldoffice01cm2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16178 {
16179 if ((input_len < DISPLAY_LEN_MIN_9720) || (input_len > DISPLAY_LEN_MAX_9720)) return (PARSER_GLOBAL_LENGTH);
16180
16181 if ((memcmp (SIGNATURE_OLDOFFICE0, input_buf, 12)) && (memcmp (SIGNATURE_OLDOFFICE1, input_buf, 12))) return (PARSER_SIGNATURE_UNMATCHED);
16182
16183 u32 *digest = (u32 *) hash_buf->digest;
16184
16185 salt_t *salt = hash_buf->salt;
16186
16187 oldoffice01_t *oldoffice01 = (oldoffice01_t *) hash_buf->esalt;
16188
16189 /**
16190 * parse line
16191 */
16192
16193 char *version_pos = input_buf + 11;
16194
16195 char *osalt_pos = strchr (version_pos, '*');
16196
16197 if (osalt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16198
16199 u32 version_len = osalt_pos - version_pos;
16200
16201 if (version_len != 1) return (PARSER_SALT_LENGTH);
16202
16203 osalt_pos++;
16204
16205 char *encryptedVerifier_pos = strchr (osalt_pos, '*');
16206
16207 if (encryptedVerifier_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16208
16209 u32 osalt_len = encryptedVerifier_pos - osalt_pos;
16210
16211 if (osalt_len != 32) return (PARSER_SALT_LENGTH);
16212
16213 encryptedVerifier_pos++;
16214
16215 char *encryptedVerifierHash_pos = strchr (encryptedVerifier_pos, '*');
16216
16217 if (encryptedVerifierHash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16218
16219 u32 encryptedVerifier_len = encryptedVerifierHash_pos - encryptedVerifier_pos;
16220
16221 if (encryptedVerifier_len != 32) return (PARSER_SALT_LENGTH);
16222
16223 encryptedVerifierHash_pos++;
16224
16225 char *rc4key_pos = strchr (encryptedVerifierHash_pos, ':');
16226
16227 if (rc4key_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16228
16229 u32 encryptedVerifierHash_len = rc4key_pos - encryptedVerifierHash_pos;
16230
16231 if (encryptedVerifierHash_len != 32) return (PARSER_SALT_LENGTH);
16232
16233 rc4key_pos++;
16234
16235 u32 rc4key_len = input_len - 11 - version_len - 1 - osalt_len - 1 - encryptedVerifier_len - 1 - encryptedVerifierHash_len - 1;
16236
16237 if (rc4key_len != 10) return (PARSER_SALT_LENGTH);
16238
16239 const uint version = *version_pos - 0x30;
16240
16241 if (version != 0 && version != 1) return (PARSER_SALT_VALUE);
16242
16243 /**
16244 * esalt
16245 */
16246
16247 oldoffice01->version = version;
16248
16249 oldoffice01->encryptedVerifier[0] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 0]);
16250 oldoffice01->encryptedVerifier[1] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 8]);
16251 oldoffice01->encryptedVerifier[2] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[16]);
16252 oldoffice01->encryptedVerifier[3] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[24]);
16253
16254 oldoffice01->encryptedVerifier[0] = byte_swap_32 (oldoffice01->encryptedVerifier[0]);
16255 oldoffice01->encryptedVerifier[1] = byte_swap_32 (oldoffice01->encryptedVerifier[1]);
16256 oldoffice01->encryptedVerifier[2] = byte_swap_32 (oldoffice01->encryptedVerifier[2]);
16257 oldoffice01->encryptedVerifier[3] = byte_swap_32 (oldoffice01->encryptedVerifier[3]);
16258
16259 oldoffice01->encryptedVerifierHash[0] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 0]);
16260 oldoffice01->encryptedVerifierHash[1] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 8]);
16261 oldoffice01->encryptedVerifierHash[2] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[16]);
16262 oldoffice01->encryptedVerifierHash[3] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[24]);
16263
16264 oldoffice01->encryptedVerifierHash[0] = byte_swap_32 (oldoffice01->encryptedVerifierHash[0]);
16265 oldoffice01->encryptedVerifierHash[1] = byte_swap_32 (oldoffice01->encryptedVerifierHash[1]);
16266 oldoffice01->encryptedVerifierHash[2] = byte_swap_32 (oldoffice01->encryptedVerifierHash[2]);
16267 oldoffice01->encryptedVerifierHash[3] = byte_swap_32 (oldoffice01->encryptedVerifierHash[3]);
16268
16269 oldoffice01->rc4key[1] = 0;
16270 oldoffice01->rc4key[0] = 0;
16271
16272 oldoffice01->rc4key[0] |= hex_convert (rc4key_pos[0]) << 28;
16273 oldoffice01->rc4key[0] |= hex_convert (rc4key_pos[1]) << 24;
16274 oldoffice01->rc4key[0] |= hex_convert (rc4key_pos[2]) << 20;
16275 oldoffice01->rc4key[0] |= hex_convert (rc4key_pos[3]) << 16;
16276 oldoffice01->rc4key[0] |= hex_convert (rc4key_pos[4]) << 12;
16277 oldoffice01->rc4key[0] |= hex_convert (rc4key_pos[5]) << 8;
16278 oldoffice01->rc4key[0] |= hex_convert (rc4key_pos[6]) << 4;
16279 oldoffice01->rc4key[0] |= hex_convert (rc4key_pos[7]) << 0;
16280 oldoffice01->rc4key[1] |= hex_convert (rc4key_pos[8]) << 28;
16281 oldoffice01->rc4key[1] |= hex_convert (rc4key_pos[9]) << 24;
16282
16283 oldoffice01->rc4key[0] = byte_swap_32 (oldoffice01->rc4key[0]);
16284 oldoffice01->rc4key[1] = byte_swap_32 (oldoffice01->rc4key[1]);
16285
16286 /**
16287 * salt
16288 */
16289
16290 salt->salt_len = 16;
16291
16292 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &osalt_pos[ 0]);
16293 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &osalt_pos[ 8]);
16294 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &osalt_pos[16]);
16295 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &osalt_pos[24]);
16296
16297 salt->salt_buf[0] = byte_swap_32 (salt->salt_buf[0]);
16298 salt->salt_buf[1] = byte_swap_32 (salt->salt_buf[1]);
16299 salt->salt_buf[2] = byte_swap_32 (salt->salt_buf[2]);
16300 salt->salt_buf[3] = byte_swap_32 (salt->salt_buf[3]);
16301
16302 // this is a workaround as office produces multiple documents with the same salt
16303
16304 salt->salt_len += 32;
16305
16306 salt->salt_buf[ 4] = oldoffice01->encryptedVerifier[0];
16307 salt->salt_buf[ 5] = oldoffice01->encryptedVerifier[1];
16308 salt->salt_buf[ 6] = oldoffice01->encryptedVerifier[2];
16309 salt->salt_buf[ 7] = oldoffice01->encryptedVerifier[3];
16310 salt->salt_buf[ 8] = oldoffice01->encryptedVerifierHash[0];
16311 salt->salt_buf[ 9] = oldoffice01->encryptedVerifierHash[1];
16312 salt->salt_buf[10] = oldoffice01->encryptedVerifierHash[2];
16313 salt->salt_buf[11] = oldoffice01->encryptedVerifierHash[3];
16314
16315 /**
16316 * digest
16317 */
16318
16319 digest[0] = oldoffice01->rc4key[0];
16320 digest[1] = oldoffice01->rc4key[1];
16321 digest[2] = 0;
16322 digest[3] = 0;
16323
16324 return (PARSER_OK);
16325 }
16326
16327 int oldoffice34_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16328 {
16329 if ((input_len < DISPLAY_LEN_MIN_9800) || (input_len > DISPLAY_LEN_MAX_9800)) return (PARSER_GLOBAL_LENGTH);
16330
16331 if ((memcmp (SIGNATURE_OLDOFFICE3, input_buf, 12)) && (memcmp (SIGNATURE_OLDOFFICE4, input_buf, 12))) return (PARSER_SIGNATURE_UNMATCHED);
16332
16333 u32 *digest = (u32 *) hash_buf->digest;
16334
16335 salt_t *salt = hash_buf->salt;
16336
16337 oldoffice34_t *oldoffice34 = (oldoffice34_t *) hash_buf->esalt;
16338
16339 /**
16340 * parse line
16341 */
16342
16343 char *version_pos = input_buf + 11;
16344
16345 char *osalt_pos = strchr (version_pos, '*');
16346
16347 if (osalt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16348
16349 u32 version_len = osalt_pos - version_pos;
16350
16351 if (version_len != 1) return (PARSER_SALT_LENGTH);
16352
16353 osalt_pos++;
16354
16355 char *encryptedVerifier_pos = strchr (osalt_pos, '*');
16356
16357 if (encryptedVerifier_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16358
16359 u32 osalt_len = encryptedVerifier_pos - osalt_pos;
16360
16361 if (osalt_len != 32) return (PARSER_SALT_LENGTH);
16362
16363 encryptedVerifier_pos++;
16364
16365 char *encryptedVerifierHash_pos = strchr (encryptedVerifier_pos, '*');
16366
16367 if (encryptedVerifierHash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16368
16369 u32 encryptedVerifier_len = encryptedVerifierHash_pos - encryptedVerifier_pos;
16370
16371 if (encryptedVerifier_len != 32) return (PARSER_SALT_LENGTH);
16372
16373 encryptedVerifierHash_pos++;
16374
16375 u32 encryptedVerifierHash_len = input_len - 11 - version_len - 1 - osalt_len - 1 - encryptedVerifier_len - 1;
16376
16377 if (encryptedVerifierHash_len != 40) return (PARSER_SALT_LENGTH);
16378
16379 const uint version = *version_pos - 0x30;
16380
16381 if (version != 3 && version != 4) return (PARSER_SALT_VALUE);
16382
16383 /**
16384 * esalt
16385 */
16386
16387 oldoffice34->version = version;
16388
16389 oldoffice34->encryptedVerifier[0] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 0]);
16390 oldoffice34->encryptedVerifier[1] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 8]);
16391 oldoffice34->encryptedVerifier[2] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[16]);
16392 oldoffice34->encryptedVerifier[3] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[24]);
16393
16394 oldoffice34->encryptedVerifier[0] = byte_swap_32 (oldoffice34->encryptedVerifier[0]);
16395 oldoffice34->encryptedVerifier[1] = byte_swap_32 (oldoffice34->encryptedVerifier[1]);
16396 oldoffice34->encryptedVerifier[2] = byte_swap_32 (oldoffice34->encryptedVerifier[2]);
16397 oldoffice34->encryptedVerifier[3] = byte_swap_32 (oldoffice34->encryptedVerifier[3]);
16398
16399 oldoffice34->encryptedVerifierHash[0] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 0]);
16400 oldoffice34->encryptedVerifierHash[1] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 8]);
16401 oldoffice34->encryptedVerifierHash[2] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[16]);
16402 oldoffice34->encryptedVerifierHash[3] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[24]);
16403 oldoffice34->encryptedVerifierHash[4] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[32]);
16404
16405 oldoffice34->encryptedVerifierHash[0] = byte_swap_32 (oldoffice34->encryptedVerifierHash[0]);
16406 oldoffice34->encryptedVerifierHash[1] = byte_swap_32 (oldoffice34->encryptedVerifierHash[1]);
16407 oldoffice34->encryptedVerifierHash[2] = byte_swap_32 (oldoffice34->encryptedVerifierHash[2]);
16408 oldoffice34->encryptedVerifierHash[3] = byte_swap_32 (oldoffice34->encryptedVerifierHash[3]);
16409 oldoffice34->encryptedVerifierHash[4] = byte_swap_32 (oldoffice34->encryptedVerifierHash[4]);
16410
16411 /**
16412 * salt
16413 */
16414
16415 salt->salt_len = 16;
16416
16417 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &osalt_pos[ 0]);
16418 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &osalt_pos[ 8]);
16419 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &osalt_pos[16]);
16420 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &osalt_pos[24]);
16421
16422 // this is a workaround as office produces multiple documents with the same salt
16423
16424 salt->salt_len += 32;
16425
16426 salt->salt_buf[ 4] = oldoffice34->encryptedVerifier[0];
16427 salt->salt_buf[ 5] = oldoffice34->encryptedVerifier[1];
16428 salt->salt_buf[ 6] = oldoffice34->encryptedVerifier[2];
16429 salt->salt_buf[ 7] = oldoffice34->encryptedVerifier[3];
16430 salt->salt_buf[ 8] = oldoffice34->encryptedVerifierHash[0];
16431 salt->salt_buf[ 9] = oldoffice34->encryptedVerifierHash[1];
16432 salt->salt_buf[10] = oldoffice34->encryptedVerifierHash[2];
16433 salt->salt_buf[11] = oldoffice34->encryptedVerifierHash[3];
16434
16435 /**
16436 * digest
16437 */
16438
16439 digest[0] = oldoffice34->encryptedVerifierHash[0];
16440 digest[1] = oldoffice34->encryptedVerifierHash[1];
16441 digest[2] = oldoffice34->encryptedVerifierHash[2];
16442 digest[3] = oldoffice34->encryptedVerifierHash[3];
16443
16444 return (PARSER_OK);
16445 }
16446
16447 int oldoffice34cm1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16448 {
16449 if (memcmp (SIGNATURE_OLDOFFICE3, input_buf, 12)) return (PARSER_SIGNATURE_UNMATCHED);
16450
16451 return oldoffice34_parse_hash (input_buf, input_len, hash_buf);
16452 }
16453
16454 int oldoffice34cm2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16455 {
16456 if ((input_len < DISPLAY_LEN_MIN_9820) || (input_len > DISPLAY_LEN_MAX_9820)) return (PARSER_GLOBAL_LENGTH);
16457
16458 if (memcmp (SIGNATURE_OLDOFFICE3, input_buf, 12)) return (PARSER_SIGNATURE_UNMATCHED);
16459
16460 u32 *digest = (u32 *) hash_buf->digest;
16461
16462 salt_t *salt = hash_buf->salt;
16463
16464 oldoffice34_t *oldoffice34 = (oldoffice34_t *) hash_buf->esalt;
16465
16466 /**
16467 * parse line
16468 */
16469
16470 char *version_pos = input_buf + 11;
16471
16472 char *osalt_pos = strchr (version_pos, '*');
16473
16474 if (osalt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16475
16476 u32 version_len = osalt_pos - version_pos;
16477
16478 if (version_len != 1) return (PARSER_SALT_LENGTH);
16479
16480 osalt_pos++;
16481
16482 char *encryptedVerifier_pos = strchr (osalt_pos, '*');
16483
16484 if (encryptedVerifier_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16485
16486 u32 osalt_len = encryptedVerifier_pos - osalt_pos;
16487
16488 if (osalt_len != 32) return (PARSER_SALT_LENGTH);
16489
16490 encryptedVerifier_pos++;
16491
16492 char *encryptedVerifierHash_pos = strchr (encryptedVerifier_pos, '*');
16493
16494 if (encryptedVerifierHash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16495
16496 u32 encryptedVerifier_len = encryptedVerifierHash_pos - encryptedVerifier_pos;
16497
16498 if (encryptedVerifier_len != 32) return (PARSER_SALT_LENGTH);
16499
16500 encryptedVerifierHash_pos++;
16501
16502 char *rc4key_pos = strchr (encryptedVerifierHash_pos, ':');
16503
16504 if (rc4key_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16505
16506 u32 encryptedVerifierHash_len = rc4key_pos - encryptedVerifierHash_pos;
16507
16508 if (encryptedVerifierHash_len != 40) return (PARSER_SALT_LENGTH);
16509
16510 rc4key_pos++;
16511
16512 u32 rc4key_len = input_len - 11 - version_len - 1 - osalt_len - 1 - encryptedVerifier_len - 1 - encryptedVerifierHash_len - 1;
16513
16514 if (rc4key_len != 10) return (PARSER_SALT_LENGTH);
16515
16516 const uint version = *version_pos - 0x30;
16517
16518 if (version != 3 && version != 4) return (PARSER_SALT_VALUE);
16519
16520 /**
16521 * esalt
16522 */
16523
16524 oldoffice34->version = version;
16525
16526 oldoffice34->encryptedVerifier[0] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 0]);
16527 oldoffice34->encryptedVerifier[1] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[ 8]);
16528 oldoffice34->encryptedVerifier[2] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[16]);
16529 oldoffice34->encryptedVerifier[3] = hex_to_u32 ((const u8 *) &encryptedVerifier_pos[24]);
16530
16531 oldoffice34->encryptedVerifier[0] = byte_swap_32 (oldoffice34->encryptedVerifier[0]);
16532 oldoffice34->encryptedVerifier[1] = byte_swap_32 (oldoffice34->encryptedVerifier[1]);
16533 oldoffice34->encryptedVerifier[2] = byte_swap_32 (oldoffice34->encryptedVerifier[2]);
16534 oldoffice34->encryptedVerifier[3] = byte_swap_32 (oldoffice34->encryptedVerifier[3]);
16535
16536 oldoffice34->encryptedVerifierHash[0] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 0]);
16537 oldoffice34->encryptedVerifierHash[1] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[ 8]);
16538 oldoffice34->encryptedVerifierHash[2] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[16]);
16539 oldoffice34->encryptedVerifierHash[3] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[24]);
16540 oldoffice34->encryptedVerifierHash[4] = hex_to_u32 ((const u8 *) &encryptedVerifierHash_pos[32]);
16541
16542 oldoffice34->encryptedVerifierHash[0] = byte_swap_32 (oldoffice34->encryptedVerifierHash[0]);
16543 oldoffice34->encryptedVerifierHash[1] = byte_swap_32 (oldoffice34->encryptedVerifierHash[1]);
16544 oldoffice34->encryptedVerifierHash[2] = byte_swap_32 (oldoffice34->encryptedVerifierHash[2]);
16545 oldoffice34->encryptedVerifierHash[3] = byte_swap_32 (oldoffice34->encryptedVerifierHash[3]);
16546 oldoffice34->encryptedVerifierHash[4] = byte_swap_32 (oldoffice34->encryptedVerifierHash[4]);
16547
16548 oldoffice34->rc4key[1] = 0;
16549 oldoffice34->rc4key[0] = 0;
16550
16551 oldoffice34->rc4key[0] |= hex_convert (rc4key_pos[0]) << 28;
16552 oldoffice34->rc4key[0] |= hex_convert (rc4key_pos[1]) << 24;
16553 oldoffice34->rc4key[0] |= hex_convert (rc4key_pos[2]) << 20;
16554 oldoffice34->rc4key[0] |= hex_convert (rc4key_pos[3]) << 16;
16555 oldoffice34->rc4key[0] |= hex_convert (rc4key_pos[4]) << 12;
16556 oldoffice34->rc4key[0] |= hex_convert (rc4key_pos[5]) << 8;
16557 oldoffice34->rc4key[0] |= hex_convert (rc4key_pos[6]) << 4;
16558 oldoffice34->rc4key[0] |= hex_convert (rc4key_pos[7]) << 0;
16559 oldoffice34->rc4key[1] |= hex_convert (rc4key_pos[8]) << 28;
16560 oldoffice34->rc4key[1] |= hex_convert (rc4key_pos[9]) << 24;
16561
16562 oldoffice34->rc4key[0] = byte_swap_32 (oldoffice34->rc4key[0]);
16563 oldoffice34->rc4key[1] = byte_swap_32 (oldoffice34->rc4key[1]);
16564
16565 /**
16566 * salt
16567 */
16568
16569 salt->salt_len = 16;
16570
16571 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &osalt_pos[ 0]);
16572 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &osalt_pos[ 8]);
16573 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &osalt_pos[16]);
16574 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &osalt_pos[24]);
16575
16576 // this is a workaround as office produces multiple documents with the same salt
16577
16578 salt->salt_len += 32;
16579
16580 salt->salt_buf[ 4] = oldoffice34->encryptedVerifier[0];
16581 salt->salt_buf[ 5] = oldoffice34->encryptedVerifier[1];
16582 salt->salt_buf[ 6] = oldoffice34->encryptedVerifier[2];
16583 salt->salt_buf[ 7] = oldoffice34->encryptedVerifier[3];
16584 salt->salt_buf[ 8] = oldoffice34->encryptedVerifierHash[0];
16585 salt->salt_buf[ 9] = oldoffice34->encryptedVerifierHash[1];
16586 salt->salt_buf[10] = oldoffice34->encryptedVerifierHash[2];
16587 salt->salt_buf[11] = oldoffice34->encryptedVerifierHash[3];
16588
16589 /**
16590 * digest
16591 */
16592
16593 digest[0] = oldoffice34->rc4key[0];
16594 digest[1] = oldoffice34->rc4key[1];
16595 digest[2] = 0;
16596 digest[3] = 0;
16597
16598 return (PARSER_OK);
16599 }
16600
16601 int radmin2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16602 {
16603 if ((input_len < DISPLAY_LEN_MIN_9900) || (input_len > DISPLAY_LEN_MAX_9900)) return (PARSER_GLOBAL_LENGTH);
16604
16605 u32 *digest = (u32 *) hash_buf->digest;
16606
16607 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
16608 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
16609 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
16610 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
16611
16612 digest[0] = byte_swap_32 (digest[0]);
16613 digest[1] = byte_swap_32 (digest[1]);
16614 digest[2] = byte_swap_32 (digest[2]);
16615 digest[3] = byte_swap_32 (digest[3]);
16616
16617 return (PARSER_OK);
16618 }
16619
16620 int djangosha1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16621 {
16622 if ((input_len < DISPLAY_LEN_MIN_124) || (input_len > DISPLAY_LEN_MAX_124)) return (PARSER_GLOBAL_LENGTH);
16623
16624 if ((memcmp (SIGNATURE_DJANGOSHA1, input_buf, 5)) && (memcmp (SIGNATURE_DJANGOSHA1, input_buf, 5))) return (PARSER_SIGNATURE_UNMATCHED);
16625
16626 u32 *digest = (u32 *) hash_buf->digest;
16627
16628 salt_t *salt = hash_buf->salt;
16629
16630 char *signature_pos = input_buf;
16631
16632 char *salt_pos = strchr (signature_pos, '$');
16633
16634 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16635
16636 u32 signature_len = salt_pos - signature_pos;
16637
16638 if (signature_len != 4) return (PARSER_SIGNATURE_UNMATCHED);
16639
16640 salt_pos++;
16641
16642 char *hash_pos = strchr (salt_pos, '$');
16643
16644 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16645
16646 u32 salt_len = hash_pos - salt_pos;
16647
16648 if (salt_len > 32) return (PARSER_SALT_LENGTH);
16649
16650 hash_pos++;
16651
16652 u32 hash_len = input_len - signature_len - 1 - salt_len - 1;
16653
16654 if (hash_len != 40) return (PARSER_SALT_LENGTH);
16655
16656 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
16657 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
16658 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
16659 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
16660 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
16661
16662 digest[0] -= SHA1M_A;
16663 digest[1] -= SHA1M_B;
16664 digest[2] -= SHA1M_C;
16665 digest[3] -= SHA1M_D;
16666 digest[4] -= SHA1M_E;
16667
16668 char *salt_buf_ptr = (char *) salt->salt_buf;
16669
16670 memcpy (salt_buf_ptr, salt_pos, salt_len);
16671
16672 salt->salt_len = salt_len;
16673
16674 return (PARSER_OK);
16675 }
16676
16677 int djangopbkdf2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16678 {
16679 if ((input_len < DISPLAY_LEN_MIN_10000) || (input_len > DISPLAY_LEN_MAX_10000)) return (PARSER_GLOBAL_LENGTH);
16680
16681 if (memcmp (SIGNATURE_DJANGOPBKDF2, input_buf, 14)) return (PARSER_SIGNATURE_UNMATCHED);
16682
16683 u32 *digest = (u32 *) hash_buf->digest;
16684
16685 salt_t *salt = hash_buf->salt;
16686
16687 pbkdf2_sha256_t *pbkdf2_sha256 = (pbkdf2_sha256_t *) hash_buf->esalt;
16688
16689 /**
16690 * parse line
16691 */
16692
16693 char *iter_pos = input_buf + 14;
16694
16695 const int iter = atoi (iter_pos);
16696
16697 if (iter < 1) return (PARSER_SALT_ITERATION);
16698
16699 salt->salt_iter = iter - 1;
16700
16701 char *salt_pos = strchr (iter_pos, '$');
16702
16703 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16704
16705 salt_pos++;
16706
16707 char *hash_pos = strchr (salt_pos, '$');
16708
16709 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16710
16711 const uint salt_len = hash_pos - salt_pos;
16712
16713 hash_pos++;
16714
16715 char *salt_buf_ptr = (char *) pbkdf2_sha256->salt_buf;
16716
16717 memcpy (salt_buf_ptr, salt_pos, salt_len);
16718
16719 salt->salt_len = salt_len;
16720
16721 salt_buf_ptr[salt_len + 3] = 0x01;
16722 salt_buf_ptr[salt_len + 4] = 0x80;
16723
16724 // add some stuff to normal salt to make sorted happy
16725
16726 salt->salt_buf[0] = pbkdf2_sha256->salt_buf[0];
16727 salt->salt_buf[1] = pbkdf2_sha256->salt_buf[1];
16728 salt->salt_buf[2] = pbkdf2_sha256->salt_buf[2];
16729 salt->salt_buf[3] = pbkdf2_sha256->salt_buf[3];
16730 salt->salt_buf[4] = salt->salt_iter;
16731
16732 // base64 decode hash
16733
16734 u8 tmp_buf[100] = { 0 };
16735
16736 uint hash_len = input_len - (hash_pos - input_buf);
16737
16738 if (hash_len != 44) return (PARSER_HASH_LENGTH);
16739
16740 base64_decode (base64_to_int, (const u8 *) hash_pos, hash_len, tmp_buf);
16741
16742 memcpy (digest, tmp_buf, 32);
16743
16744 digest[0] = byte_swap_32 (digest[0]);
16745 digest[1] = byte_swap_32 (digest[1]);
16746 digest[2] = byte_swap_32 (digest[2]);
16747 digest[3] = byte_swap_32 (digest[3]);
16748 digest[4] = byte_swap_32 (digest[4]);
16749 digest[5] = byte_swap_32 (digest[5]);
16750 digest[6] = byte_swap_32 (digest[6]);
16751 digest[7] = byte_swap_32 (digest[7]);
16752
16753 return (PARSER_OK);
16754 }
16755
16756 int siphash_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16757 {
16758 if ((input_len < DISPLAY_LEN_MIN_10100) || (input_len > DISPLAY_LEN_MAX_10100)) return (PARSER_GLOBAL_LENGTH);
16759
16760 u32 *digest = (u32 *) hash_buf->digest;
16761
16762 salt_t *salt = hash_buf->salt;
16763
16764 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
16765 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
16766 digest[2] = 0;
16767 digest[3] = 0;
16768
16769 digest[0] = byte_swap_32 (digest[0]);
16770 digest[1] = byte_swap_32 (digest[1]);
16771
16772 if (input_buf[16] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
16773 if (input_buf[18] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
16774 if (input_buf[20] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
16775
16776 char iter_c = input_buf[17];
16777 char iter_d = input_buf[19];
16778
16779 // atm only defaults, let's see if there's more request
16780 if (iter_c != '2') return (PARSER_SALT_ITERATION);
16781 if (iter_d != '4') return (PARSER_SALT_ITERATION);
16782
16783 char *salt_buf = input_buf + 16 + 1 + 1 + 1 + 1 + 1;
16784
16785 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_buf[ 0]);
16786 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_buf[ 8]);
16787 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &salt_buf[16]);
16788 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &salt_buf[24]);
16789
16790 salt->salt_buf[0] = byte_swap_32 (salt->salt_buf[0]);
16791 salt->salt_buf[1] = byte_swap_32 (salt->salt_buf[1]);
16792 salt->salt_buf[2] = byte_swap_32 (salt->salt_buf[2]);
16793 salt->salt_buf[3] = byte_swap_32 (salt->salt_buf[3]);
16794
16795 salt->salt_len = 16;
16796
16797 return (PARSER_OK);
16798 }
16799
16800 int crammd5_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16801 {
16802 if ((input_len < DISPLAY_LEN_MIN_10200) || (input_len > DISPLAY_LEN_MAX_10200)) return (PARSER_GLOBAL_LENGTH);
16803
16804 if (memcmp (SIGNATURE_CRAM_MD5, input_buf, 10)) return (PARSER_SIGNATURE_UNMATCHED);
16805
16806 u32 *digest = (u32 *) hash_buf->digest;
16807
16808 cram_md5_t *cram_md5 = (cram_md5_t *) hash_buf->esalt;
16809
16810 salt_t *salt = hash_buf->salt;
16811
16812 char *salt_pos = input_buf + 10;
16813
16814 char *hash_pos = strchr (salt_pos, '$');
16815
16816 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16817
16818 uint salt_len = hash_pos - salt_pos;
16819
16820 hash_pos++;
16821
16822 uint hash_len = input_len - 10 - salt_len - 1;
16823
16824 // base64 decode salt
16825
16826 if (salt_len > 133) return (PARSER_SALT_LENGTH);
16827
16828 u8 tmp_buf[100] = { 0 };
16829
16830 salt_len = base64_decode (base64_to_int, (const u8 *) salt_pos, salt_len, tmp_buf);
16831
16832 if (salt_len > 55) return (PARSER_SALT_LENGTH);
16833
16834 tmp_buf[salt_len] = 0x80;
16835
16836 memcpy (&salt->salt_buf, tmp_buf, salt_len + 1);
16837
16838 salt->salt_len = salt_len;
16839
16840 // base64 decode hash
16841
16842 if (hash_len > 133) return (PARSER_HASH_LENGTH);
16843
16844 memset (tmp_buf, 0, sizeof (tmp_buf));
16845
16846 hash_len = base64_decode (base64_to_int, (const u8 *) hash_pos, hash_len, tmp_buf);
16847
16848 if (hash_len < 32 + 1) return (PARSER_SALT_LENGTH);
16849
16850 uint user_len = hash_len - 32;
16851
16852 const u8 *tmp_hash = tmp_buf + user_len;
16853
16854 user_len--; // skip the trailing space
16855
16856 digest[0] = hex_to_u32 (&tmp_hash[ 0]);
16857 digest[1] = hex_to_u32 (&tmp_hash[ 8]);
16858 digest[2] = hex_to_u32 (&tmp_hash[16]);
16859 digest[3] = hex_to_u32 (&tmp_hash[24]);
16860
16861 digest[0] = byte_swap_32 (digest[0]);
16862 digest[1] = byte_swap_32 (digest[1]);
16863 digest[2] = byte_swap_32 (digest[2]);
16864 digest[3] = byte_swap_32 (digest[3]);
16865
16866 // store username for host only (output hash if cracked)
16867
16868 memset (cram_md5->user, 0, sizeof (cram_md5->user));
16869 memcpy (cram_md5->user, tmp_buf, user_len);
16870
16871 return (PARSER_OK);
16872 }
16873
16874 int saph_sha1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16875 {
16876 if ((input_len < DISPLAY_LEN_MIN_10300) || (input_len > DISPLAY_LEN_MAX_10300)) return (PARSER_GLOBAL_LENGTH);
16877
16878 if (memcmp (SIGNATURE_SAPH_SHA1, input_buf, 10)) return (PARSER_SIGNATURE_UNMATCHED);
16879
16880 u32 *digest = (u32 *) hash_buf->digest;
16881
16882 salt_t *salt = hash_buf->salt;
16883
16884 char *iter_pos = input_buf + 10;
16885
16886 u32 iter = atoi (iter_pos);
16887
16888 if (iter < 1)
16889 {
16890 return (PARSER_SALT_ITERATION);
16891 }
16892
16893 iter--; // first iteration is special
16894
16895 salt->salt_iter = iter;
16896
16897 char *base64_pos = strchr (iter_pos, '}');
16898
16899 if (base64_pos == NULL)
16900 {
16901 return (PARSER_SIGNATURE_UNMATCHED);
16902 }
16903
16904 base64_pos++;
16905
16906 // base64 decode salt
16907
16908 u32 base64_len = input_len - (base64_pos - input_buf);
16909
16910 u8 tmp_buf[100] = { 0 };
16911
16912 u32 decoded_len = base64_decode (base64_to_int, (const u8 *) base64_pos, base64_len, tmp_buf);
16913
16914 if (decoded_len < 24)
16915 {
16916 return (PARSER_SALT_LENGTH);
16917 }
16918
16919 // copy the salt
16920
16921 uint salt_len = decoded_len - 20;
16922
16923 if (salt_len < 4) return (PARSER_SALT_LENGTH);
16924 if (salt_len > 16) return (PARSER_SALT_LENGTH);
16925
16926 memcpy (&salt->salt_buf, tmp_buf + 20, salt_len);
16927
16928 salt->salt_len = salt_len;
16929
16930 // set digest
16931
16932 u32 *digest_ptr = (u32*) tmp_buf;
16933
16934 digest[0] = byte_swap_32 (digest_ptr[0]);
16935 digest[1] = byte_swap_32 (digest_ptr[1]);
16936 digest[2] = byte_swap_32 (digest_ptr[2]);
16937 digest[3] = byte_swap_32 (digest_ptr[3]);
16938 digest[4] = byte_swap_32 (digest_ptr[4]);
16939
16940 return (PARSER_OK);
16941 }
16942
16943 int redmine_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16944 {
16945 if ((input_len < DISPLAY_LEN_MIN_7600) || (input_len > DISPLAY_LEN_MAX_7600)) return (PARSER_GLOBAL_LENGTH);
16946
16947 u32 *digest = (u32 *) hash_buf->digest;
16948
16949 salt_t *salt = hash_buf->salt;
16950
16951 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
16952 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
16953 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
16954 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
16955 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
16956
16957 if (input_buf[40] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
16958
16959 uint salt_len = input_len - 40 - 1;
16960
16961 char *salt_buf = input_buf + 40 + 1;
16962
16963 char *salt_buf_ptr = (char *) salt->salt_buf;
16964
16965 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
16966
16967 if (salt_len != 32) return (PARSER_SALT_LENGTH);
16968
16969 salt->salt_len = salt_len;
16970
16971 return (PARSER_OK);
16972 }
16973
16974 int pdf11_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
16975 {
16976 if ((input_len < DISPLAY_LEN_MIN_10400) || (input_len > DISPLAY_LEN_MAX_10400)) return (PARSER_GLOBAL_LENGTH);
16977
16978 if ((memcmp (SIGNATURE_PDF, input_buf, 5)) && (memcmp (SIGNATURE_PDF, input_buf, 5))) return (PARSER_SIGNATURE_UNMATCHED);
16979
16980 u32 *digest = (u32 *) hash_buf->digest;
16981
16982 salt_t *salt = hash_buf->salt;
16983
16984 pdf_t *pdf = (pdf_t *) hash_buf->esalt;
16985
16986 /**
16987 * parse line
16988 */
16989
16990 char *V_pos = input_buf + 5;
16991
16992 char *R_pos = strchr (V_pos, '*');
16993
16994 if (R_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
16995
16996 u32 V_len = R_pos - V_pos;
16997
16998 R_pos++;
16999
17000 char *bits_pos = strchr (R_pos, '*');
17001
17002 if (bits_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17003
17004 u32 R_len = bits_pos - R_pos;
17005
17006 bits_pos++;
17007
17008 char *P_pos = strchr (bits_pos, '*');
17009
17010 if (P_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17011
17012 u32 bits_len = P_pos - bits_pos;
17013
17014 P_pos++;
17015
17016 char *enc_md_pos = strchr (P_pos, '*');
17017
17018 if (enc_md_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17019
17020 u32 P_len = enc_md_pos - P_pos;
17021
17022 enc_md_pos++;
17023
17024 char *id_len_pos = strchr (enc_md_pos, '*');
17025
17026 if (id_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17027
17028 u32 enc_md_len = id_len_pos - enc_md_pos;
17029
17030 id_len_pos++;
17031
17032 char *id_buf_pos = strchr (id_len_pos, '*');
17033
17034 if (id_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17035
17036 u32 id_len_len = id_buf_pos - id_len_pos;
17037
17038 id_buf_pos++;
17039
17040 char *u_len_pos = strchr (id_buf_pos, '*');
17041
17042 if (u_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17043
17044 u32 id_buf_len = u_len_pos - id_buf_pos;
17045
17046 if (id_buf_len != 32) return (PARSER_SALT_LENGTH);
17047
17048 u_len_pos++;
17049
17050 char *u_buf_pos = strchr (u_len_pos, '*');
17051
17052 if (u_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17053
17054 u32 u_len_len = u_buf_pos - u_len_pos;
17055
17056 u_buf_pos++;
17057
17058 char *o_len_pos = strchr (u_buf_pos, '*');
17059
17060 if (o_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17061
17062 u32 u_buf_len = o_len_pos - u_buf_pos;
17063
17064 if (u_buf_len != 64) return (PARSER_SALT_LENGTH);
17065
17066 o_len_pos++;
17067
17068 char *o_buf_pos = strchr (o_len_pos, '*');
17069
17070 if (o_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17071
17072 u32 o_len_len = o_buf_pos - o_len_pos;
17073
17074 o_buf_pos++;
17075
17076 u32 o_buf_len = input_len - 5 - V_len - 1 - R_len - 1 - bits_len - 1 - P_len - 1 - enc_md_len - 1 - id_len_len - 1 - id_buf_len - 1 - u_len_len - 1 - u_buf_len - 1 - o_len_len - 1;
17077
17078 if (o_buf_len != 64) return (PARSER_SALT_LENGTH);
17079
17080 // validate data
17081
17082 const int V = atoi (V_pos);
17083 const int R = atoi (R_pos);
17084 const int P = atoi (P_pos);
17085
17086 if (V != 1) return (PARSER_SALT_VALUE);
17087 if (R != 2) return (PARSER_SALT_VALUE);
17088
17089 const int enc_md = atoi (enc_md_pos);
17090
17091 if ((enc_md != 0) && (enc_md != 1)) return (PARSER_SALT_VALUE);
17092
17093 const int id_len = atoi (id_len_pos);
17094 const int u_len = atoi (u_len_pos);
17095 const int o_len = atoi (o_len_pos);
17096
17097 if (id_len != 16) return (PARSER_SALT_VALUE);
17098 if (u_len != 32) return (PARSER_SALT_VALUE);
17099 if (o_len != 32) return (PARSER_SALT_VALUE);
17100
17101 const int bits = atoi (bits_pos);
17102
17103 if (bits != 40) return (PARSER_SALT_VALUE);
17104
17105 // copy data to esalt
17106
17107 pdf->V = V;
17108 pdf->R = R;
17109 pdf->P = P;
17110
17111 pdf->enc_md = enc_md;
17112
17113 pdf->id_buf[0] = hex_to_u32 ((const u8 *) &id_buf_pos[ 0]);
17114 pdf->id_buf[1] = hex_to_u32 ((const u8 *) &id_buf_pos[ 8]);
17115 pdf->id_buf[2] = hex_to_u32 ((const u8 *) &id_buf_pos[16]);
17116 pdf->id_buf[3] = hex_to_u32 ((const u8 *) &id_buf_pos[24]);
17117 pdf->id_len = id_len;
17118
17119 pdf->u_buf[0] = hex_to_u32 ((const u8 *) &u_buf_pos[ 0]);
17120 pdf->u_buf[1] = hex_to_u32 ((const u8 *) &u_buf_pos[ 8]);
17121 pdf->u_buf[2] = hex_to_u32 ((const u8 *) &u_buf_pos[16]);
17122 pdf->u_buf[3] = hex_to_u32 ((const u8 *) &u_buf_pos[24]);
17123 pdf->u_buf[4] = hex_to_u32 ((const u8 *) &u_buf_pos[32]);
17124 pdf->u_buf[5] = hex_to_u32 ((const u8 *) &u_buf_pos[40]);
17125 pdf->u_buf[6] = hex_to_u32 ((const u8 *) &u_buf_pos[48]);
17126 pdf->u_buf[7] = hex_to_u32 ((const u8 *) &u_buf_pos[56]);
17127 pdf->u_len = u_len;
17128
17129 pdf->o_buf[0] = hex_to_u32 ((const u8 *) &o_buf_pos[ 0]);
17130 pdf->o_buf[1] = hex_to_u32 ((const u8 *) &o_buf_pos[ 8]);
17131 pdf->o_buf[2] = hex_to_u32 ((const u8 *) &o_buf_pos[16]);
17132 pdf->o_buf[3] = hex_to_u32 ((const u8 *) &o_buf_pos[24]);
17133 pdf->o_buf[4] = hex_to_u32 ((const u8 *) &o_buf_pos[32]);
17134 pdf->o_buf[5] = hex_to_u32 ((const u8 *) &o_buf_pos[40]);
17135 pdf->o_buf[6] = hex_to_u32 ((const u8 *) &o_buf_pos[48]);
17136 pdf->o_buf[7] = hex_to_u32 ((const u8 *) &o_buf_pos[56]);
17137 pdf->o_len = o_len;
17138
17139 pdf->id_buf[0] = byte_swap_32 (pdf->id_buf[0]);
17140 pdf->id_buf[1] = byte_swap_32 (pdf->id_buf[1]);
17141 pdf->id_buf[2] = byte_swap_32 (pdf->id_buf[2]);
17142 pdf->id_buf[3] = byte_swap_32 (pdf->id_buf[3]);
17143
17144 pdf->u_buf[0] = byte_swap_32 (pdf->u_buf[0]);
17145 pdf->u_buf[1] = byte_swap_32 (pdf->u_buf[1]);
17146 pdf->u_buf[2] = byte_swap_32 (pdf->u_buf[2]);
17147 pdf->u_buf[3] = byte_swap_32 (pdf->u_buf[3]);
17148 pdf->u_buf[4] = byte_swap_32 (pdf->u_buf[4]);
17149 pdf->u_buf[5] = byte_swap_32 (pdf->u_buf[5]);
17150 pdf->u_buf[6] = byte_swap_32 (pdf->u_buf[6]);
17151 pdf->u_buf[7] = byte_swap_32 (pdf->u_buf[7]);
17152
17153 pdf->o_buf[0] = byte_swap_32 (pdf->o_buf[0]);
17154 pdf->o_buf[1] = byte_swap_32 (pdf->o_buf[1]);
17155 pdf->o_buf[2] = byte_swap_32 (pdf->o_buf[2]);
17156 pdf->o_buf[3] = byte_swap_32 (pdf->o_buf[3]);
17157 pdf->o_buf[4] = byte_swap_32 (pdf->o_buf[4]);
17158 pdf->o_buf[5] = byte_swap_32 (pdf->o_buf[5]);
17159 pdf->o_buf[6] = byte_swap_32 (pdf->o_buf[6]);
17160 pdf->o_buf[7] = byte_swap_32 (pdf->o_buf[7]);
17161
17162 // we use ID for salt, maybe needs to change, we will see...
17163
17164 salt->salt_buf[0] = pdf->id_buf[0];
17165 salt->salt_buf[1] = pdf->id_buf[1];
17166 salt->salt_buf[2] = pdf->id_buf[2];
17167 salt->salt_buf[3] = pdf->id_buf[3];
17168 salt->salt_len = pdf->id_len;
17169
17170 digest[0] = pdf->u_buf[0];
17171 digest[1] = pdf->u_buf[1];
17172 digest[2] = pdf->u_buf[2];
17173 digest[3] = pdf->u_buf[3];
17174
17175 return (PARSER_OK);
17176 }
17177
17178 int pdf11cm1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
17179 {
17180 return pdf11_parse_hash (input_buf, input_len, hash_buf);
17181 }
17182
17183 int pdf11cm2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
17184 {
17185 if ((input_len < DISPLAY_LEN_MIN_10420) || (input_len > DISPLAY_LEN_MAX_10420)) return (PARSER_GLOBAL_LENGTH);
17186
17187 if ((memcmp (SIGNATURE_PDF, input_buf, 5)) && (memcmp (SIGNATURE_PDF, input_buf, 5))) return (PARSER_SIGNATURE_UNMATCHED);
17188
17189 u32 *digest = (u32 *) hash_buf->digest;
17190
17191 salt_t *salt = hash_buf->salt;
17192
17193 pdf_t *pdf = (pdf_t *) hash_buf->esalt;
17194
17195 /**
17196 * parse line
17197 */
17198
17199 char *V_pos = input_buf + 5;
17200
17201 char *R_pos = strchr (V_pos, '*');
17202
17203 if (R_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17204
17205 u32 V_len = R_pos - V_pos;
17206
17207 R_pos++;
17208
17209 char *bits_pos = strchr (R_pos, '*');
17210
17211 if (bits_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17212
17213 u32 R_len = bits_pos - R_pos;
17214
17215 bits_pos++;
17216
17217 char *P_pos = strchr (bits_pos, '*');
17218
17219 if (P_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17220
17221 u32 bits_len = P_pos - bits_pos;
17222
17223 P_pos++;
17224
17225 char *enc_md_pos = strchr (P_pos, '*');
17226
17227 if (enc_md_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17228
17229 u32 P_len = enc_md_pos - P_pos;
17230
17231 enc_md_pos++;
17232
17233 char *id_len_pos = strchr (enc_md_pos, '*');
17234
17235 if (id_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17236
17237 u32 enc_md_len = id_len_pos - enc_md_pos;
17238
17239 id_len_pos++;
17240
17241 char *id_buf_pos = strchr (id_len_pos, '*');
17242
17243 if (id_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17244
17245 u32 id_len_len = id_buf_pos - id_len_pos;
17246
17247 id_buf_pos++;
17248
17249 char *u_len_pos = strchr (id_buf_pos, '*');
17250
17251 if (u_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17252
17253 u32 id_buf_len = u_len_pos - id_buf_pos;
17254
17255 if (id_buf_len != 32) return (PARSER_SALT_LENGTH);
17256
17257 u_len_pos++;
17258
17259 char *u_buf_pos = strchr (u_len_pos, '*');
17260
17261 if (u_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17262
17263 u32 u_len_len = u_buf_pos - u_len_pos;
17264
17265 u_buf_pos++;
17266
17267 char *o_len_pos = strchr (u_buf_pos, '*');
17268
17269 if (o_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17270
17271 u32 u_buf_len = o_len_pos - u_buf_pos;
17272
17273 if (u_buf_len != 64) return (PARSER_SALT_LENGTH);
17274
17275 o_len_pos++;
17276
17277 char *o_buf_pos = strchr (o_len_pos, '*');
17278
17279 if (o_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17280
17281 u32 o_len_len = o_buf_pos - o_len_pos;
17282
17283 o_buf_pos++;
17284
17285 char *rc4key_pos = strchr (o_buf_pos, ':');
17286
17287 if (rc4key_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17288
17289 u32 o_buf_len = rc4key_pos - o_buf_pos;
17290
17291 if (o_buf_len != 64) return (PARSER_SALT_LENGTH);
17292
17293 rc4key_pos++;
17294
17295 u32 rc4key_len = input_len - 5 - V_len - 1 - R_len - 1 - bits_len - 1 - P_len - 1 - enc_md_len - 1 - id_len_len - 1 - id_buf_len - 1 - u_len_len - 1 - u_buf_len - 1 - o_len_len - 1 - o_buf_len - 1;
17296
17297 if (rc4key_len != 10) return (PARSER_SALT_LENGTH);
17298
17299 // validate data
17300
17301 const int V = atoi (V_pos);
17302 const int R = atoi (R_pos);
17303 const int P = atoi (P_pos);
17304
17305 if (V != 1) return (PARSER_SALT_VALUE);
17306 if (R != 2) return (PARSER_SALT_VALUE);
17307
17308 const int enc_md = atoi (enc_md_pos);
17309
17310 if ((enc_md != 0) && (enc_md != 1)) return (PARSER_SALT_VALUE);
17311
17312 const int id_len = atoi (id_len_pos);
17313 const int u_len = atoi (u_len_pos);
17314 const int o_len = atoi (o_len_pos);
17315
17316 if (id_len != 16) return (PARSER_SALT_VALUE);
17317 if (u_len != 32) return (PARSER_SALT_VALUE);
17318 if (o_len != 32) return (PARSER_SALT_VALUE);
17319
17320 const int bits = atoi (bits_pos);
17321
17322 if (bits != 40) return (PARSER_SALT_VALUE);
17323
17324 // copy data to esalt
17325
17326 pdf->V = V;
17327 pdf->R = R;
17328 pdf->P = P;
17329
17330 pdf->enc_md = enc_md;
17331
17332 pdf->id_buf[0] = hex_to_u32 ((const u8 *) &id_buf_pos[ 0]);
17333 pdf->id_buf[1] = hex_to_u32 ((const u8 *) &id_buf_pos[ 8]);
17334 pdf->id_buf[2] = hex_to_u32 ((const u8 *) &id_buf_pos[16]);
17335 pdf->id_buf[3] = hex_to_u32 ((const u8 *) &id_buf_pos[24]);
17336 pdf->id_len = id_len;
17337
17338 pdf->u_buf[0] = hex_to_u32 ((const u8 *) &u_buf_pos[ 0]);
17339 pdf->u_buf[1] = hex_to_u32 ((const u8 *) &u_buf_pos[ 8]);
17340 pdf->u_buf[2] = hex_to_u32 ((const u8 *) &u_buf_pos[16]);
17341 pdf->u_buf[3] = hex_to_u32 ((const u8 *) &u_buf_pos[24]);
17342 pdf->u_buf[4] = hex_to_u32 ((const u8 *) &u_buf_pos[32]);
17343 pdf->u_buf[5] = hex_to_u32 ((const u8 *) &u_buf_pos[40]);
17344 pdf->u_buf[6] = hex_to_u32 ((const u8 *) &u_buf_pos[48]);
17345 pdf->u_buf[7] = hex_to_u32 ((const u8 *) &u_buf_pos[56]);
17346 pdf->u_len = u_len;
17347
17348 pdf->o_buf[0] = hex_to_u32 ((const u8 *) &o_buf_pos[ 0]);
17349 pdf->o_buf[1] = hex_to_u32 ((const u8 *) &o_buf_pos[ 8]);
17350 pdf->o_buf[2] = hex_to_u32 ((const u8 *) &o_buf_pos[16]);
17351 pdf->o_buf[3] = hex_to_u32 ((const u8 *) &o_buf_pos[24]);
17352 pdf->o_buf[4] = hex_to_u32 ((const u8 *) &o_buf_pos[32]);
17353 pdf->o_buf[5] = hex_to_u32 ((const u8 *) &o_buf_pos[40]);
17354 pdf->o_buf[6] = hex_to_u32 ((const u8 *) &o_buf_pos[48]);
17355 pdf->o_buf[7] = hex_to_u32 ((const u8 *) &o_buf_pos[56]);
17356 pdf->o_len = o_len;
17357
17358 pdf->id_buf[0] = byte_swap_32 (pdf->id_buf[0]);
17359 pdf->id_buf[1] = byte_swap_32 (pdf->id_buf[1]);
17360 pdf->id_buf[2] = byte_swap_32 (pdf->id_buf[2]);
17361 pdf->id_buf[3] = byte_swap_32 (pdf->id_buf[3]);
17362
17363 pdf->u_buf[0] = byte_swap_32 (pdf->u_buf[0]);
17364 pdf->u_buf[1] = byte_swap_32 (pdf->u_buf[1]);
17365 pdf->u_buf[2] = byte_swap_32 (pdf->u_buf[2]);
17366 pdf->u_buf[3] = byte_swap_32 (pdf->u_buf[3]);
17367 pdf->u_buf[4] = byte_swap_32 (pdf->u_buf[4]);
17368 pdf->u_buf[5] = byte_swap_32 (pdf->u_buf[5]);
17369 pdf->u_buf[6] = byte_swap_32 (pdf->u_buf[6]);
17370 pdf->u_buf[7] = byte_swap_32 (pdf->u_buf[7]);
17371
17372 pdf->o_buf[0] = byte_swap_32 (pdf->o_buf[0]);
17373 pdf->o_buf[1] = byte_swap_32 (pdf->o_buf[1]);
17374 pdf->o_buf[2] = byte_swap_32 (pdf->o_buf[2]);
17375 pdf->o_buf[3] = byte_swap_32 (pdf->o_buf[3]);
17376 pdf->o_buf[4] = byte_swap_32 (pdf->o_buf[4]);
17377 pdf->o_buf[5] = byte_swap_32 (pdf->o_buf[5]);
17378 pdf->o_buf[6] = byte_swap_32 (pdf->o_buf[6]);
17379 pdf->o_buf[7] = byte_swap_32 (pdf->o_buf[7]);
17380
17381 pdf->rc4key[1] = 0;
17382 pdf->rc4key[0] = 0;
17383
17384 pdf->rc4key[0] |= hex_convert (rc4key_pos[0]) << 28;
17385 pdf->rc4key[0] |= hex_convert (rc4key_pos[1]) << 24;
17386 pdf->rc4key[0] |= hex_convert (rc4key_pos[2]) << 20;
17387 pdf->rc4key[0] |= hex_convert (rc4key_pos[3]) << 16;
17388 pdf->rc4key[0] |= hex_convert (rc4key_pos[4]) << 12;
17389 pdf->rc4key[0] |= hex_convert (rc4key_pos[5]) << 8;
17390 pdf->rc4key[0] |= hex_convert (rc4key_pos[6]) << 4;
17391 pdf->rc4key[0] |= hex_convert (rc4key_pos[7]) << 0;
17392 pdf->rc4key[1] |= hex_convert (rc4key_pos[8]) << 28;
17393 pdf->rc4key[1] |= hex_convert (rc4key_pos[9]) << 24;
17394
17395 pdf->rc4key[0] = byte_swap_32 (pdf->rc4key[0]);
17396 pdf->rc4key[1] = byte_swap_32 (pdf->rc4key[1]);
17397
17398 // we use ID for salt, maybe needs to change, we will see...
17399
17400 salt->salt_buf[0] = pdf->id_buf[0];
17401 salt->salt_buf[1] = pdf->id_buf[1];
17402 salt->salt_buf[2] = pdf->id_buf[2];
17403 salt->salt_buf[3] = pdf->id_buf[3];
17404 salt->salt_buf[4] = pdf->u_buf[0];
17405 salt->salt_buf[5] = pdf->u_buf[1];
17406 salt->salt_buf[6] = pdf->o_buf[0];
17407 salt->salt_buf[7] = pdf->o_buf[1];
17408 salt->salt_len = pdf->id_len + 16;
17409
17410 digest[0] = pdf->rc4key[0];
17411 digest[1] = pdf->rc4key[1];
17412 digest[2] = 0;
17413 digest[3] = 0;
17414
17415 return (PARSER_OK);
17416 }
17417
17418 int pdf14_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
17419 {
17420 if ((input_len < DISPLAY_LEN_MIN_10500) || (input_len > DISPLAY_LEN_MAX_10500)) return (PARSER_GLOBAL_LENGTH);
17421
17422 if ((memcmp (SIGNATURE_PDF, input_buf, 5)) && (memcmp (SIGNATURE_PDF, input_buf, 5))) return (PARSER_SIGNATURE_UNMATCHED);
17423
17424 u32 *digest = (u32 *) hash_buf->digest;
17425
17426 salt_t *salt = hash_buf->salt;
17427
17428 pdf_t *pdf = (pdf_t *) hash_buf->esalt;
17429
17430 /**
17431 * parse line
17432 */
17433
17434 char *V_pos = input_buf + 5;
17435
17436 char *R_pos = strchr (V_pos, '*');
17437
17438 if (R_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17439
17440 u32 V_len = R_pos - V_pos;
17441
17442 R_pos++;
17443
17444 char *bits_pos = strchr (R_pos, '*');
17445
17446 if (bits_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17447
17448 u32 R_len = bits_pos - R_pos;
17449
17450 bits_pos++;
17451
17452 char *P_pos = strchr (bits_pos, '*');
17453
17454 if (P_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17455
17456 u32 bits_len = P_pos - bits_pos;
17457
17458 P_pos++;
17459
17460 char *enc_md_pos = strchr (P_pos, '*');
17461
17462 if (enc_md_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17463
17464 u32 P_len = enc_md_pos - P_pos;
17465
17466 enc_md_pos++;
17467
17468 char *id_len_pos = strchr (enc_md_pos, '*');
17469
17470 if (id_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17471
17472 u32 enc_md_len = id_len_pos - enc_md_pos;
17473
17474 id_len_pos++;
17475
17476 char *id_buf_pos = strchr (id_len_pos, '*');
17477
17478 if (id_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17479
17480 u32 id_len_len = id_buf_pos - id_len_pos;
17481
17482 id_buf_pos++;
17483
17484 char *u_len_pos = strchr (id_buf_pos, '*');
17485
17486 if (u_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17487
17488 u32 id_buf_len = u_len_pos - id_buf_pos;
17489
17490 if ((id_buf_len != 32) && (id_buf_len != 64)) return (PARSER_SALT_LENGTH);
17491
17492 u_len_pos++;
17493
17494 char *u_buf_pos = strchr (u_len_pos, '*');
17495
17496 if (u_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17497
17498 u32 u_len_len = u_buf_pos - u_len_pos;
17499
17500 u_buf_pos++;
17501
17502 char *o_len_pos = strchr (u_buf_pos, '*');
17503
17504 if (o_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17505
17506 u32 u_buf_len = o_len_pos - u_buf_pos;
17507
17508 if (u_buf_len != 64) return (PARSER_SALT_LENGTH);
17509
17510 o_len_pos++;
17511
17512 char *o_buf_pos = strchr (o_len_pos, '*');
17513
17514 if (o_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17515
17516 u32 o_len_len = o_buf_pos - o_len_pos;
17517
17518 o_buf_pos++;
17519
17520 u32 o_buf_len = input_len - 5 - V_len - 1 - R_len - 1 - bits_len - 1 - P_len - 1 - enc_md_len - 1 - id_len_len - 1 - id_buf_len - 1 - u_len_len - 1 - u_buf_len - 1 - o_len_len - 1;
17521
17522 if (o_buf_len != 64) return (PARSER_SALT_LENGTH);
17523
17524 // validate data
17525
17526 const int V = atoi (V_pos);
17527 const int R = atoi (R_pos);
17528 const int P = atoi (P_pos);
17529
17530 int vr_ok = 0;
17531
17532 if ((V == 2) && (R == 3)) vr_ok = 1;
17533 if ((V == 4) && (R == 4)) vr_ok = 1;
17534
17535 if (vr_ok == 0) return (PARSER_SALT_VALUE);
17536
17537 const int id_len = atoi (id_len_pos);
17538 const int u_len = atoi (u_len_pos);
17539 const int o_len = atoi (o_len_pos);
17540
17541 if ((id_len != 16) && (id_len != 32)) return (PARSER_SALT_VALUE);
17542
17543 if (u_len != 32) return (PARSER_SALT_VALUE);
17544 if (o_len != 32) return (PARSER_SALT_VALUE);
17545
17546 const int bits = atoi (bits_pos);
17547
17548 if (bits != 128) return (PARSER_SALT_VALUE);
17549
17550 int enc_md = 1;
17551
17552 if (R >= 4)
17553 {
17554 enc_md = atoi (enc_md_pos);
17555 }
17556
17557 // copy data to esalt
17558
17559 pdf->V = V;
17560 pdf->R = R;
17561 pdf->P = P;
17562
17563 pdf->enc_md = enc_md;
17564
17565 pdf->id_buf[0] = hex_to_u32 ((const u8 *) &id_buf_pos[ 0]);
17566 pdf->id_buf[1] = hex_to_u32 ((const u8 *) &id_buf_pos[ 8]);
17567 pdf->id_buf[2] = hex_to_u32 ((const u8 *) &id_buf_pos[16]);
17568 pdf->id_buf[3] = hex_to_u32 ((const u8 *) &id_buf_pos[24]);
17569
17570 if (id_len == 32)
17571 {
17572 pdf->id_buf[4] = hex_to_u32 ((const u8 *) &id_buf_pos[32]);
17573 pdf->id_buf[5] = hex_to_u32 ((const u8 *) &id_buf_pos[40]);
17574 pdf->id_buf[6] = hex_to_u32 ((const u8 *) &id_buf_pos[48]);
17575 pdf->id_buf[7] = hex_to_u32 ((const u8 *) &id_buf_pos[56]);
17576 }
17577
17578 pdf->id_len = id_len;
17579
17580 pdf->u_buf[0] = hex_to_u32 ((const u8 *) &u_buf_pos[ 0]);
17581 pdf->u_buf[1] = hex_to_u32 ((const u8 *) &u_buf_pos[ 8]);
17582 pdf->u_buf[2] = hex_to_u32 ((const u8 *) &u_buf_pos[16]);
17583 pdf->u_buf[3] = hex_to_u32 ((const u8 *) &u_buf_pos[24]);
17584 pdf->u_buf[4] = hex_to_u32 ((const u8 *) &u_buf_pos[32]);
17585 pdf->u_buf[5] = hex_to_u32 ((const u8 *) &u_buf_pos[40]);
17586 pdf->u_buf[6] = hex_to_u32 ((const u8 *) &u_buf_pos[48]);
17587 pdf->u_buf[7] = hex_to_u32 ((const u8 *) &u_buf_pos[56]);
17588 pdf->u_len = u_len;
17589
17590 pdf->o_buf[0] = hex_to_u32 ((const u8 *) &o_buf_pos[ 0]);
17591 pdf->o_buf[1] = hex_to_u32 ((const u8 *) &o_buf_pos[ 8]);
17592 pdf->o_buf[2] = hex_to_u32 ((const u8 *) &o_buf_pos[16]);
17593 pdf->o_buf[3] = hex_to_u32 ((const u8 *) &o_buf_pos[24]);
17594 pdf->o_buf[4] = hex_to_u32 ((const u8 *) &o_buf_pos[32]);
17595 pdf->o_buf[5] = hex_to_u32 ((const u8 *) &o_buf_pos[40]);
17596 pdf->o_buf[6] = hex_to_u32 ((const u8 *) &o_buf_pos[48]);
17597 pdf->o_buf[7] = hex_to_u32 ((const u8 *) &o_buf_pos[56]);
17598 pdf->o_len = o_len;
17599
17600 pdf->id_buf[0] = byte_swap_32 (pdf->id_buf[0]);
17601 pdf->id_buf[1] = byte_swap_32 (pdf->id_buf[1]);
17602 pdf->id_buf[2] = byte_swap_32 (pdf->id_buf[2]);
17603 pdf->id_buf[3] = byte_swap_32 (pdf->id_buf[3]);
17604
17605 if (id_len == 32)
17606 {
17607 pdf->id_buf[4] = byte_swap_32 (pdf->id_buf[4]);
17608 pdf->id_buf[5] = byte_swap_32 (pdf->id_buf[5]);
17609 pdf->id_buf[6] = byte_swap_32 (pdf->id_buf[6]);
17610 pdf->id_buf[7] = byte_swap_32 (pdf->id_buf[7]);
17611 }
17612
17613 pdf->u_buf[0] = byte_swap_32 (pdf->u_buf[0]);
17614 pdf->u_buf[1] = byte_swap_32 (pdf->u_buf[1]);
17615 pdf->u_buf[2] = byte_swap_32 (pdf->u_buf[2]);
17616 pdf->u_buf[3] = byte_swap_32 (pdf->u_buf[3]);
17617 pdf->u_buf[4] = byte_swap_32 (pdf->u_buf[4]);
17618 pdf->u_buf[5] = byte_swap_32 (pdf->u_buf[5]);
17619 pdf->u_buf[6] = byte_swap_32 (pdf->u_buf[6]);
17620 pdf->u_buf[7] = byte_swap_32 (pdf->u_buf[7]);
17621
17622 pdf->o_buf[0] = byte_swap_32 (pdf->o_buf[0]);
17623 pdf->o_buf[1] = byte_swap_32 (pdf->o_buf[1]);
17624 pdf->o_buf[2] = byte_swap_32 (pdf->o_buf[2]);
17625 pdf->o_buf[3] = byte_swap_32 (pdf->o_buf[3]);
17626 pdf->o_buf[4] = byte_swap_32 (pdf->o_buf[4]);
17627 pdf->o_buf[5] = byte_swap_32 (pdf->o_buf[5]);
17628 pdf->o_buf[6] = byte_swap_32 (pdf->o_buf[6]);
17629 pdf->o_buf[7] = byte_swap_32 (pdf->o_buf[7]);
17630
17631 // precompute rc4 data for later use
17632
17633 uint padding[8] =
17634 {
17635 0x5e4ebf28,
17636 0x418a754e,
17637 0x564e0064,
17638 0x0801faff,
17639 0xb6002e2e,
17640 0x803e68d0,
17641 0xfea90c2f,
17642 0x7a695364
17643 };
17644
17645 // md5
17646
17647 uint salt_pc_block[32] = { 0 };
17648
17649 char *salt_pc_ptr = (char *) salt_pc_block;
17650
17651 memcpy (salt_pc_ptr, padding, 32);
17652 memcpy (salt_pc_ptr + 32, pdf->id_buf, pdf->id_len);
17653
17654 uint salt_pc_digest[4] = { 0 };
17655
17656 md5_complete_no_limit (salt_pc_digest, salt_pc_block, 32 + pdf->id_len);
17657
17658 pdf->rc4data[0] = salt_pc_digest[0];
17659 pdf->rc4data[1] = salt_pc_digest[1];
17660
17661 // we use ID for salt, maybe needs to change, we will see...
17662
17663 salt->salt_buf[0] = pdf->id_buf[0];
17664 salt->salt_buf[1] = pdf->id_buf[1];
17665 salt->salt_buf[2] = pdf->id_buf[2];
17666 salt->salt_buf[3] = pdf->id_buf[3];
17667 salt->salt_buf[4] = pdf->u_buf[0];
17668 salt->salt_buf[5] = pdf->u_buf[1];
17669 salt->salt_buf[6] = pdf->o_buf[0];
17670 salt->salt_buf[7] = pdf->o_buf[1];
17671 salt->salt_len = pdf->id_len + 16;
17672
17673 salt->salt_iter = ROUNDS_PDF14;
17674
17675 digest[0] = pdf->u_buf[0];
17676 digest[1] = pdf->u_buf[1];
17677 digest[2] = 0;
17678 digest[3] = 0;
17679
17680 return (PARSER_OK);
17681 }
17682
17683 int pdf17l3_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
17684 {
17685 int ret = pdf17l8_parse_hash (input_buf, input_len, hash_buf);
17686
17687 if (ret != PARSER_OK)
17688 {
17689 return ret;
17690 }
17691
17692 u32 *digest = (u32 *) hash_buf->digest;
17693
17694 salt_t *salt = hash_buf->salt;
17695
17696 digest[0] -= SHA256M_A;
17697 digest[1] -= SHA256M_B;
17698 digest[2] -= SHA256M_C;
17699 digest[3] -= SHA256M_D;
17700 digest[4] -= SHA256M_E;
17701 digest[5] -= SHA256M_F;
17702 digest[6] -= SHA256M_G;
17703 digest[7] -= SHA256M_H;
17704
17705 salt->salt_buf[2] = 0x80;
17706
17707 return (PARSER_OK);
17708 }
17709
17710 int pdf17l8_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
17711 {
17712 if ((input_len < DISPLAY_LEN_MIN_10600) || (input_len > DISPLAY_LEN_MAX_10600)) return (PARSER_GLOBAL_LENGTH);
17713
17714 if ((memcmp (SIGNATURE_PDF, input_buf, 5)) && (memcmp (SIGNATURE_PDF, input_buf, 5))) return (PARSER_SIGNATURE_UNMATCHED);
17715
17716 u32 *digest = (u32 *) hash_buf->digest;
17717
17718 salt_t *salt = hash_buf->salt;
17719
17720 pdf_t *pdf = (pdf_t *) hash_buf->esalt;
17721
17722 /**
17723 * parse line
17724 */
17725
17726 char *V_pos = input_buf + 5;
17727
17728 char *R_pos = strchr (V_pos, '*');
17729
17730 if (R_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17731
17732 u32 V_len = R_pos - V_pos;
17733
17734 R_pos++;
17735
17736 char *bits_pos = strchr (R_pos, '*');
17737
17738 if (bits_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17739
17740 u32 R_len = bits_pos - R_pos;
17741
17742 bits_pos++;
17743
17744 char *P_pos = strchr (bits_pos, '*');
17745
17746 if (P_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17747
17748 u32 bits_len = P_pos - bits_pos;
17749
17750 P_pos++;
17751
17752 char *enc_md_pos = strchr (P_pos, '*');
17753
17754 if (enc_md_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17755
17756 u32 P_len = enc_md_pos - P_pos;
17757
17758 enc_md_pos++;
17759
17760 char *id_len_pos = strchr (enc_md_pos, '*');
17761
17762 if (id_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17763
17764 u32 enc_md_len = id_len_pos - enc_md_pos;
17765
17766 id_len_pos++;
17767
17768 char *id_buf_pos = strchr (id_len_pos, '*');
17769
17770 if (id_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17771
17772 u32 id_len_len = id_buf_pos - id_len_pos;
17773
17774 id_buf_pos++;
17775
17776 char *u_len_pos = strchr (id_buf_pos, '*');
17777
17778 if (u_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17779
17780 u32 id_buf_len = u_len_pos - id_buf_pos;
17781
17782 u_len_pos++;
17783
17784 char *u_buf_pos = strchr (u_len_pos, '*');
17785
17786 if (u_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17787
17788 u32 u_len_len = u_buf_pos - u_len_pos;
17789
17790 u_buf_pos++;
17791
17792 char *o_len_pos = strchr (u_buf_pos, '*');
17793
17794 if (o_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17795
17796 u32 u_buf_len = o_len_pos - u_buf_pos;
17797
17798 o_len_pos++;
17799
17800 char *o_buf_pos = strchr (o_len_pos, '*');
17801
17802 if (o_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17803
17804 u32 o_len_len = o_buf_pos - o_len_pos;
17805
17806 o_buf_pos++;
17807
17808 char *last = strchr (o_buf_pos, '*');
17809
17810 if (last == NULL) last = input_buf + input_len;
17811
17812 u32 o_buf_len = last - o_buf_pos;
17813
17814 // validate data
17815
17816 const int V = atoi (V_pos);
17817 const int R = atoi (R_pos);
17818
17819 int vr_ok = 0;
17820
17821 if ((V == 5) && (R == 5)) vr_ok = 1;
17822 if ((V == 5) && (R == 6)) vr_ok = 1;
17823
17824 if (vr_ok == 0) return (PARSER_SALT_VALUE);
17825
17826 const int bits = atoi (bits_pos);
17827
17828 if (bits != 256) return (PARSER_SALT_VALUE);
17829
17830 int enc_md = atoi (enc_md_pos);
17831
17832 if (enc_md != 1) return (PARSER_SALT_VALUE);
17833
17834 const uint id_len = atoi (id_len_pos);
17835 const uint u_len = atoi (u_len_pos);
17836 const uint o_len = atoi (o_len_pos);
17837
17838 if (V_len > 6) return (PARSER_SALT_LENGTH);
17839 if (R_len > 6) return (PARSER_SALT_LENGTH);
17840 if (P_len > 6) return (PARSER_SALT_LENGTH);
17841 if (id_len_len > 6) return (PARSER_SALT_LENGTH);
17842 if (u_len_len > 6) return (PARSER_SALT_LENGTH);
17843 if (o_len_len > 6) return (PARSER_SALT_LENGTH);
17844 if (bits_len > 6) return (PARSER_SALT_LENGTH);
17845 if (enc_md_len > 6) return (PARSER_SALT_LENGTH);
17846
17847 if ((id_len * 2) != id_buf_len) return (PARSER_SALT_VALUE);
17848 if ((u_len * 2) != u_buf_len) return (PARSER_SALT_VALUE);
17849 if ((o_len * 2) != o_buf_len) return (PARSER_SALT_VALUE);
17850
17851 // copy data to esalt
17852
17853 if (u_len < 40) return (PARSER_SALT_VALUE);
17854
17855 for (int i = 0, j = 0; i < 8 + 2; i += 1, j += 8)
17856 {
17857 pdf->u_buf[i] = hex_to_u32 ((const u8 *) &u_buf_pos[j]);
17858 }
17859
17860 salt->salt_buf[0] = pdf->u_buf[8];
17861 salt->salt_buf[1] = pdf->u_buf[9];
17862
17863 salt->salt_buf[0] = byte_swap_32 (salt->salt_buf[0]);
17864 salt->salt_buf[1] = byte_swap_32 (salt->salt_buf[1]);
17865
17866 salt->salt_len = 8;
17867 salt->salt_iter = ROUNDS_PDF17L8;
17868
17869 digest[0] = pdf->u_buf[0];
17870 digest[1] = pdf->u_buf[1];
17871 digest[2] = pdf->u_buf[2];
17872 digest[3] = pdf->u_buf[3];
17873 digest[4] = pdf->u_buf[4];
17874 digest[5] = pdf->u_buf[5];
17875 digest[6] = pdf->u_buf[6];
17876 digest[7] = pdf->u_buf[7];
17877
17878 return (PARSER_OK);
17879 }
17880
17881 int pbkdf2_sha256_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
17882 {
17883 if ((input_len < DISPLAY_LEN_MIN_10900) || (input_len > DISPLAY_LEN_MAX_10900)) return (PARSER_GLOBAL_LENGTH);
17884
17885 if (memcmp (SIGNATURE_PBKDF2_SHA256, input_buf, 7)) return (PARSER_SIGNATURE_UNMATCHED);
17886
17887 u32 *digest = (u32 *) hash_buf->digest;
17888
17889 salt_t *salt = hash_buf->salt;
17890
17891 pbkdf2_sha256_t *pbkdf2_sha256 = (pbkdf2_sha256_t *) hash_buf->esalt;
17892
17893 /**
17894 * parse line
17895 */
17896
17897 // iterations
17898
17899 char *iter_pos = input_buf + 7;
17900
17901 u32 iter = atoi (iter_pos);
17902
17903 if (iter < 1) return (PARSER_SALT_ITERATION);
17904 if (iter > 999999) return (PARSER_SALT_ITERATION);
17905
17906 // first is *raw* salt
17907
17908 char *salt_pos = strchr (iter_pos, ':');
17909
17910 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17911
17912 salt_pos++;
17913
17914 char *hash_pos = strchr (salt_pos, ':');
17915
17916 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
17917
17918 u32 salt_len = hash_pos - salt_pos;
17919
17920 if (salt_len > 64) return (PARSER_SALT_LENGTH);
17921
17922 hash_pos++;
17923
17924 u32 hash_b64_len = input_len - (hash_pos - input_buf);
17925
17926 if (hash_b64_len > 88) return (PARSER_HASH_LENGTH);
17927
17928 // decode salt
17929
17930 char *salt_buf_ptr = (char *) pbkdf2_sha256->salt_buf;
17931
17932 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
17933
17934 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
17935
17936 salt_buf_ptr[salt_len + 3] = 0x01;
17937 salt_buf_ptr[salt_len + 4] = 0x80;
17938
17939 salt->salt_len = salt_len;
17940 salt->salt_iter = iter - 1;
17941
17942 // decode hash
17943
17944 u8 tmp_buf[100] = { 0 };
17945
17946 int hash_len = base64_decode (base64_to_int, (const u8 *) hash_pos, hash_b64_len, tmp_buf);
17947
17948 if (hash_len < 16) return (PARSER_HASH_LENGTH);
17949
17950 memcpy (digest, tmp_buf, 16);
17951
17952 digest[0] = byte_swap_32 (digest[0]);
17953 digest[1] = byte_swap_32 (digest[1]);
17954 digest[2] = byte_swap_32 (digest[2]);
17955 digest[3] = byte_swap_32 (digest[3]);
17956
17957 // add some stuff to normal salt to make sorted happy
17958
17959 salt->salt_buf[0] = pbkdf2_sha256->salt_buf[0];
17960 salt->salt_buf[1] = pbkdf2_sha256->salt_buf[1];
17961 salt->salt_buf[2] = pbkdf2_sha256->salt_buf[2];
17962 salt->salt_buf[3] = pbkdf2_sha256->salt_buf[3];
17963 salt->salt_buf[4] = salt->salt_iter;
17964
17965 return (PARSER_OK);
17966 }
17967
17968 int prestashop_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
17969 {
17970 if ((input_len < DISPLAY_LEN_MIN_11000) || (input_len > DISPLAY_LEN_MAX_11000)) return (PARSER_GLOBAL_LENGTH);
17971
17972 u32 *digest = (u32 *) hash_buf->digest;
17973
17974 salt_t *salt = hash_buf->salt;
17975
17976 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
17977 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
17978 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
17979 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
17980
17981 digest[0] = byte_swap_32 (digest[0]);
17982 digest[1] = byte_swap_32 (digest[1]);
17983 digest[2] = byte_swap_32 (digest[2]);
17984 digest[3] = byte_swap_32 (digest[3]);
17985
17986 if (input_buf[32] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
17987
17988 uint salt_len = input_len - 32 - 1;
17989
17990 char *salt_buf = input_buf + 32 + 1;
17991
17992 char *salt_buf_ptr = (char *) salt->salt_buf;
17993
17994 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
17995
17996 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
17997
17998 salt->salt_len = salt_len;
17999
18000 return (PARSER_OK);
18001 }
18002
18003 int postgresql_auth_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
18004 {
18005 if ((input_len < DISPLAY_LEN_MIN_11100) || (input_len > DISPLAY_LEN_MAX_11100)) return (PARSER_GLOBAL_LENGTH);
18006
18007 if (memcmp (SIGNATURE_POSTGRESQL_AUTH, input_buf, 10)) return (PARSER_SIGNATURE_UNMATCHED);
18008
18009 u32 *digest = (u32 *) hash_buf->digest;
18010
18011 salt_t *salt = hash_buf->salt;
18012
18013 char *user_pos = input_buf + 10;
18014
18015 char *salt_pos = strchr (user_pos, '*');
18016
18017 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18018
18019 salt_pos++;
18020
18021 char *hash_pos = strchr (salt_pos, '*');
18022
18023 hash_pos++;
18024
18025 uint hash_len = input_len - (hash_pos - input_buf);
18026
18027 if (hash_len != 32) return (PARSER_HASH_LENGTH);
18028
18029 uint user_len = salt_pos - user_pos - 1;
18030
18031 uint salt_len = hash_pos - salt_pos - 1;
18032
18033 if (salt_len != 8) return (PARSER_SALT_LENGTH);
18034
18035 /*
18036 * store digest
18037 */
18038
18039 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
18040 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
18041 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
18042 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
18043
18044 digest[0] = byte_swap_32 (digest[0]);
18045 digest[1] = byte_swap_32 (digest[1]);
18046 digest[2] = byte_swap_32 (digest[2]);
18047 digest[3] = byte_swap_32 (digest[3]);
18048
18049 digest[0] -= MD5M_A;
18050 digest[1] -= MD5M_B;
18051 digest[2] -= MD5M_C;
18052 digest[3] -= MD5M_D;
18053
18054 /*
18055 * store salt
18056 */
18057
18058 char *salt_buf_ptr = (char *) salt->salt_buf;
18059
18060 // first 4 bytes are the "challenge"
18061
18062 salt_buf_ptr[0] = hex_to_u8 ((const u8 *) &salt_pos[0]);
18063 salt_buf_ptr[1] = hex_to_u8 ((const u8 *) &salt_pos[2]);
18064 salt_buf_ptr[2] = hex_to_u8 ((const u8 *) &salt_pos[4]);
18065 salt_buf_ptr[3] = hex_to_u8 ((const u8 *) &salt_pos[6]);
18066
18067 // append the user name
18068
18069 user_len = parse_and_store_salt (salt_buf_ptr + 4, user_pos, user_len);
18070
18071 salt->salt_len = 4 + user_len;
18072
18073 return (PARSER_OK);
18074 }
18075
18076 int mysql_auth_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
18077 {
18078 if ((input_len < DISPLAY_LEN_MIN_11200) || (input_len > DISPLAY_LEN_MAX_11200)) return (PARSER_GLOBAL_LENGTH);
18079
18080 if (memcmp (SIGNATURE_MYSQL_AUTH, input_buf, 9)) return (PARSER_SIGNATURE_UNMATCHED);
18081
18082 u32 *digest = (u32 *) hash_buf->digest;
18083
18084 salt_t *salt = hash_buf->salt;
18085
18086 char *salt_pos = input_buf + 9;
18087
18088 char *hash_pos = strchr (salt_pos, '*');
18089
18090 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18091
18092 hash_pos++;
18093
18094 uint hash_len = input_len - (hash_pos - input_buf);
18095
18096 if (hash_len != 40) return (PARSER_HASH_LENGTH);
18097
18098 uint salt_len = hash_pos - salt_pos - 1;
18099
18100 if (salt_len != 40) return (PARSER_SALT_LENGTH);
18101
18102 /*
18103 * store digest
18104 */
18105
18106 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
18107 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
18108 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
18109 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
18110 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
18111
18112 /*
18113 * store salt
18114 */
18115
18116 char *salt_buf_ptr = (char *) salt->salt_buf;
18117
18118 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
18119
18120 salt->salt_len = salt_len;
18121
18122 return (PARSER_OK);
18123 }
18124
18125 int bitcoin_wallet_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
18126 {
18127 if ((input_len < DISPLAY_LEN_MIN_11300) || (input_len > DISPLAY_LEN_MAX_11300)) return (PARSER_GLOBAL_LENGTH);
18128
18129 if (memcmp (SIGNATURE_BITCOIN_WALLET, input_buf, 9)) return (PARSER_SIGNATURE_UNMATCHED);
18130
18131 u32 *digest = (u32 *) hash_buf->digest;
18132
18133 salt_t *salt = hash_buf->salt;
18134
18135 bitcoin_wallet_t *bitcoin_wallet = (bitcoin_wallet_t *) hash_buf->esalt;
18136
18137 /**
18138 * parse line
18139 */
18140
18141 char *cry_master_len_pos = input_buf + 9;
18142
18143 char *cry_master_buf_pos = strchr (cry_master_len_pos, '$');
18144
18145 if (cry_master_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18146
18147 u32 cry_master_len_len = cry_master_buf_pos - cry_master_len_pos;
18148
18149 cry_master_buf_pos++;
18150
18151 char *cry_salt_len_pos = strchr (cry_master_buf_pos, '$');
18152
18153 if (cry_salt_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18154
18155 u32 cry_master_buf_len = cry_salt_len_pos - cry_master_buf_pos;
18156
18157 cry_salt_len_pos++;
18158
18159 char *cry_salt_buf_pos = strchr (cry_salt_len_pos, '$');
18160
18161 if (cry_salt_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18162
18163 u32 cry_salt_len_len = cry_salt_buf_pos - cry_salt_len_pos;
18164
18165 cry_salt_buf_pos++;
18166
18167 char *cry_rounds_pos = strchr (cry_salt_buf_pos, '$');
18168
18169 if (cry_rounds_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18170
18171 u32 cry_salt_buf_len = cry_rounds_pos - cry_salt_buf_pos;
18172
18173 cry_rounds_pos++;
18174
18175 char *ckey_len_pos = strchr (cry_rounds_pos, '$');
18176
18177 if (ckey_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18178
18179 u32 cry_rounds_len = ckey_len_pos - cry_rounds_pos;
18180
18181 ckey_len_pos++;
18182
18183 char *ckey_buf_pos = strchr (ckey_len_pos, '$');
18184
18185 if (ckey_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18186
18187 u32 ckey_len_len = ckey_buf_pos - ckey_len_pos;
18188
18189 ckey_buf_pos++;
18190
18191 char *public_key_len_pos = strchr (ckey_buf_pos, '$');
18192
18193 if (public_key_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18194
18195 u32 ckey_buf_len = public_key_len_pos - ckey_buf_pos;
18196
18197 public_key_len_pos++;
18198
18199 char *public_key_buf_pos = strchr (public_key_len_pos, '$');
18200
18201 if (public_key_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18202
18203 u32 public_key_len_len = public_key_buf_pos - public_key_len_pos;
18204
18205 public_key_buf_pos++;
18206
18207 u32 public_key_buf_len = input_len - 1 - 7 - 1 - cry_master_len_len - 1 - cry_master_buf_len - 1 - cry_salt_len_len - 1 - cry_salt_buf_len - 1 - cry_rounds_len - 1 - ckey_len_len - 1 - ckey_buf_len - 1 - public_key_len_len - 1;
18208
18209 const uint cry_master_len = atoi (cry_master_len_pos);
18210 const uint cry_salt_len = atoi (cry_salt_len_pos);
18211 const uint ckey_len = atoi (ckey_len_pos);
18212 const uint public_key_len = atoi (public_key_len_pos);
18213
18214 if (cry_master_buf_len != cry_master_len) return (PARSER_SALT_VALUE);
18215 if (cry_salt_buf_len != cry_salt_len) return (PARSER_SALT_VALUE);
18216 if (ckey_buf_len != ckey_len) return (PARSER_SALT_VALUE);
18217 if (public_key_buf_len != public_key_len) return (PARSER_SALT_VALUE);
18218
18219 for (uint i = 0, j = 0; j < cry_master_len; i += 1, j += 8)
18220 {
18221 bitcoin_wallet->cry_master_buf[i] = hex_to_u32 ((const u8 *) &cry_master_buf_pos[j]);
18222
18223 bitcoin_wallet->cry_master_buf[i] = byte_swap_32 (bitcoin_wallet->cry_master_buf[i]);
18224 }
18225
18226 for (uint i = 0, j = 0; j < ckey_len; i += 1, j += 8)
18227 {
18228 bitcoin_wallet->ckey_buf[i] = hex_to_u32 ((const u8 *) &ckey_buf_pos[j]);
18229
18230 bitcoin_wallet->ckey_buf[i] = byte_swap_32 (bitcoin_wallet->ckey_buf[i]);
18231 }
18232
18233 for (uint i = 0, j = 0; j < public_key_len; i += 1, j += 8)
18234 {
18235 bitcoin_wallet->public_key_buf[i] = hex_to_u32 ((const u8 *) &public_key_buf_pos[j]);
18236
18237 bitcoin_wallet->public_key_buf[i] = byte_swap_32 (bitcoin_wallet->public_key_buf[i]);
18238 }
18239
18240 bitcoin_wallet->cry_master_len = cry_master_len / 2;
18241 bitcoin_wallet->ckey_len = ckey_len / 2;
18242 bitcoin_wallet->public_key_len = public_key_len / 2;
18243
18244 /*
18245 * store digest (should be unique enought, hopefully)
18246 */
18247
18248 digest[0] = bitcoin_wallet->cry_master_buf[0];
18249 digest[1] = bitcoin_wallet->cry_master_buf[1];
18250 digest[2] = bitcoin_wallet->cry_master_buf[2];
18251 digest[3] = bitcoin_wallet->cry_master_buf[3];
18252
18253 /*
18254 * store salt
18255 */
18256
18257 if (cry_rounds_len >= 7) return (PARSER_SALT_VALUE);
18258
18259 const uint cry_rounds = atoi (cry_rounds_pos);
18260
18261 salt->salt_iter = cry_rounds - 1;
18262
18263 char *salt_buf_ptr = (char *) salt->salt_buf;
18264
18265 const uint salt_len = parse_and_store_salt (salt_buf_ptr, cry_salt_buf_pos, cry_salt_buf_len);
18266
18267 salt->salt_len = salt_len;
18268
18269 return (PARSER_OK);
18270 }
18271
18272 int sip_auth_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
18273 {
18274 if ((input_len < DISPLAY_LEN_MIN_11400) || (input_len > DISPLAY_LEN_MAX_11400)) return (PARSER_GLOBAL_LENGTH);
18275
18276 if (memcmp (SIGNATURE_SIP_AUTH, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
18277
18278 u32 *digest = (u32 *) hash_buf->digest;
18279
18280 salt_t *salt = hash_buf->salt;
18281
18282 sip_t *sip = (sip_t *) hash_buf->esalt;
18283
18284 // work with a temporary copy of input_buf (s.t. we can manipulate it directly)
18285
18286 char *temp_input_buf = (char *) mymalloc (input_len + 1);
18287
18288 memcpy (temp_input_buf, input_buf, input_len);
18289
18290 // URI_server:
18291
18292 char *URI_server_pos = temp_input_buf + 6;
18293
18294 char *URI_client_pos = strchr (URI_server_pos, '*');
18295
18296 if (URI_client_pos == NULL)
18297 {
18298 myfree (temp_input_buf);
18299
18300 return (PARSER_SEPARATOR_UNMATCHED);
18301 }
18302
18303 URI_client_pos[0] = 0;
18304 URI_client_pos++;
18305
18306 uint URI_server_len = strlen (URI_server_pos);
18307
18308 if (URI_server_len > 512)
18309 {
18310 myfree (temp_input_buf);
18311
18312 return (PARSER_SALT_LENGTH);
18313 }
18314
18315 // URI_client:
18316
18317 char *user_pos = strchr (URI_client_pos, '*');
18318
18319 if (user_pos == NULL)
18320 {
18321 myfree (temp_input_buf);
18322
18323 return (PARSER_SEPARATOR_UNMATCHED);
18324 }
18325
18326 user_pos[0] = 0;
18327 user_pos++;
18328
18329 uint URI_client_len = strlen (URI_client_pos);
18330
18331 if (URI_client_len > 512)
18332 {
18333 myfree (temp_input_buf);
18334
18335 return (PARSER_SALT_LENGTH);
18336 }
18337
18338 // user:
18339
18340 char *realm_pos = strchr (user_pos, '*');
18341
18342 if (realm_pos == NULL)
18343 {
18344 myfree (temp_input_buf);
18345
18346 return (PARSER_SEPARATOR_UNMATCHED);
18347 }
18348
18349 realm_pos[0] = 0;
18350 realm_pos++;
18351
18352 uint user_len = strlen (user_pos);
18353
18354 if (user_len > 116)
18355 {
18356 myfree (temp_input_buf);
18357
18358 return (PARSER_SALT_LENGTH);
18359 }
18360
18361 // realm:
18362
18363 char *method_pos = strchr (realm_pos, '*');
18364
18365 if (method_pos == NULL)
18366 {
18367 myfree (temp_input_buf);
18368
18369 return (PARSER_SEPARATOR_UNMATCHED);
18370 }
18371
18372 method_pos[0] = 0;
18373 method_pos++;
18374
18375 uint realm_len = strlen (realm_pos);
18376
18377 if (realm_len > 116)
18378 {
18379 myfree (temp_input_buf);
18380
18381 return (PARSER_SALT_LENGTH);
18382 }
18383
18384 // method:
18385
18386 char *URI_prefix_pos = strchr (method_pos, '*');
18387
18388 if (URI_prefix_pos == NULL)
18389 {
18390 myfree (temp_input_buf);
18391
18392 return (PARSER_SEPARATOR_UNMATCHED);
18393 }
18394
18395 URI_prefix_pos[0] = 0;
18396 URI_prefix_pos++;
18397
18398 uint method_len = strlen (method_pos);
18399
18400 if (method_len > 246)
18401 {
18402 myfree (temp_input_buf);
18403
18404 return (PARSER_SALT_LENGTH);
18405 }
18406
18407 // URI_prefix:
18408
18409 char *URI_resource_pos = strchr (URI_prefix_pos, '*');
18410
18411 if (URI_resource_pos == NULL)
18412 {
18413 myfree (temp_input_buf);
18414
18415 return (PARSER_SEPARATOR_UNMATCHED);
18416 }
18417
18418 URI_resource_pos[0] = 0;
18419 URI_resource_pos++;
18420
18421 uint URI_prefix_len = strlen (URI_prefix_pos);
18422
18423 if (URI_prefix_len > 245)
18424 {
18425 myfree (temp_input_buf);
18426
18427 return (PARSER_SALT_LENGTH);
18428 }
18429
18430 // URI_resource:
18431
18432 char *URI_suffix_pos = strchr (URI_resource_pos, '*');
18433
18434 if (URI_suffix_pos == NULL)
18435 {
18436 myfree (temp_input_buf);
18437
18438 return (PARSER_SEPARATOR_UNMATCHED);
18439 }
18440
18441 URI_suffix_pos[0] = 0;
18442 URI_suffix_pos++;
18443
18444 uint URI_resource_len = strlen (URI_resource_pos);
18445
18446 if (URI_resource_len < 1 || URI_resource_len > 246)
18447 {
18448 myfree (temp_input_buf);
18449
18450 return (PARSER_SALT_LENGTH);
18451 }
18452
18453 // URI_suffix:
18454
18455 char *nonce_pos = strchr (URI_suffix_pos, '*');
18456
18457 if (nonce_pos == NULL)
18458 {
18459 myfree (temp_input_buf);
18460
18461 return (PARSER_SEPARATOR_UNMATCHED);
18462 }
18463
18464 nonce_pos[0] = 0;
18465 nonce_pos++;
18466
18467 uint URI_suffix_len = strlen (URI_suffix_pos);
18468
18469 if (URI_suffix_len > 245)
18470 {
18471 myfree (temp_input_buf);
18472
18473 return (PARSER_SALT_LENGTH);
18474 }
18475
18476 // nonce:
18477
18478 char *nonce_client_pos = strchr (nonce_pos, '*');
18479
18480 if (nonce_client_pos == NULL)
18481 {
18482 myfree (temp_input_buf);
18483
18484 return (PARSER_SEPARATOR_UNMATCHED);
18485 }
18486
18487 nonce_client_pos[0] = 0;
18488 nonce_client_pos++;
18489
18490 uint nonce_len = strlen (nonce_pos);
18491
18492 if (nonce_len < 1 || nonce_len > 50)
18493 {
18494 myfree (temp_input_buf);
18495
18496 return (PARSER_SALT_LENGTH);
18497 }
18498
18499 // nonce_client:
18500
18501 char *nonce_count_pos = strchr (nonce_client_pos, '*');
18502
18503 if (nonce_count_pos == NULL)
18504 {
18505 myfree (temp_input_buf);
18506
18507 return (PARSER_SEPARATOR_UNMATCHED);
18508 }
18509
18510 nonce_count_pos[0] = 0;
18511 nonce_count_pos++;
18512
18513 uint nonce_client_len = strlen (nonce_client_pos);
18514
18515 if (nonce_client_len > 50)
18516 {
18517 myfree (temp_input_buf);
18518
18519 return (PARSER_SALT_LENGTH);
18520 }
18521
18522 // nonce_count:
18523
18524 char *qop_pos = strchr (nonce_count_pos, '*');
18525
18526 if (qop_pos == NULL)
18527 {
18528 myfree (temp_input_buf);
18529
18530 return (PARSER_SEPARATOR_UNMATCHED);
18531 }
18532
18533 qop_pos[0] = 0;
18534 qop_pos++;
18535
18536 uint nonce_count_len = strlen (nonce_count_pos);
18537
18538 if (nonce_count_len > 50)
18539 {
18540 myfree (temp_input_buf);
18541
18542 return (PARSER_SALT_LENGTH);
18543 }
18544
18545 // qop:
18546
18547 char *directive_pos = strchr (qop_pos, '*');
18548
18549 if (directive_pos == NULL)
18550 {
18551 myfree (temp_input_buf);
18552
18553 return (PARSER_SEPARATOR_UNMATCHED);
18554 }
18555
18556 directive_pos[0] = 0;
18557 directive_pos++;
18558
18559 uint qop_len = strlen (qop_pos);
18560
18561 if (qop_len > 50)
18562 {
18563 myfree (temp_input_buf);
18564
18565 return (PARSER_SALT_LENGTH);
18566 }
18567
18568 // directive
18569
18570 char *digest_pos = strchr (directive_pos, '*');
18571
18572 if (digest_pos == NULL)
18573 {
18574 myfree (temp_input_buf);
18575
18576 return (PARSER_SEPARATOR_UNMATCHED);
18577 }
18578
18579 digest_pos[0] = 0;
18580 digest_pos++;
18581
18582 uint directive_len = strlen (directive_pos);
18583
18584 if (directive_len != 3)
18585 {
18586 myfree (temp_input_buf);
18587
18588 return (PARSER_SALT_LENGTH);
18589 }
18590
18591 if (memcmp (directive_pos, "MD5", 3))
18592 {
18593 log_info ("ERROR: Only the MD5 directive is currently supported\n");
18594
18595 myfree (temp_input_buf);
18596
18597 return (PARSER_SIP_AUTH_DIRECTIVE);
18598 }
18599
18600 /*
18601 * first (pre-)compute: HA2 = md5 ($method . ":" . $uri)
18602 */
18603
18604 uint md5_len = 0;
18605
18606 uint md5_max_len = 4 * 64;
18607
18608 uint md5_remaining_len = md5_max_len;
18609
18610 uint tmp_md5_buf[64] = { 0 };
18611
18612 char *tmp_md5_ptr = (char *) tmp_md5_buf;
18613
18614 snprintf (tmp_md5_ptr, md5_remaining_len, "%s:", method_pos);
18615
18616 md5_len += method_len + 1;
18617 tmp_md5_ptr += method_len + 1;
18618
18619 if (URI_prefix_len > 0)
18620 {
18621 md5_remaining_len = md5_max_len - md5_len;
18622
18623 snprintf (tmp_md5_ptr, md5_remaining_len + 1, "%s:", URI_prefix_pos);
18624
18625 md5_len += URI_prefix_len + 1;
18626 tmp_md5_ptr += URI_prefix_len + 1;
18627 }
18628
18629 md5_remaining_len = md5_max_len - md5_len;
18630
18631 snprintf (tmp_md5_ptr, md5_remaining_len + 1, "%s", URI_resource_pos);
18632
18633 md5_len += URI_resource_len;
18634 tmp_md5_ptr += URI_resource_len;
18635
18636 if (URI_suffix_len > 0)
18637 {
18638 md5_remaining_len = md5_max_len - md5_len;
18639
18640 snprintf (tmp_md5_ptr, md5_remaining_len + 1, ":%s", URI_suffix_pos);
18641
18642 md5_len += 1 + URI_suffix_len;
18643 }
18644
18645 uint tmp_digest[4] = { 0 };
18646
18647 md5_complete_no_limit (tmp_digest, tmp_md5_buf, md5_len);
18648
18649 tmp_digest[0] = byte_swap_32 (tmp_digest[0]);
18650 tmp_digest[1] = byte_swap_32 (tmp_digest[1]);
18651 tmp_digest[2] = byte_swap_32 (tmp_digest[2]);
18652 tmp_digest[3] = byte_swap_32 (tmp_digest[3]);
18653
18654 /*
18655 * esalt
18656 */
18657
18658 char *esalt_buf_ptr = (char *) sip->esalt_buf;
18659
18660 uint esalt_len = 0;
18661
18662 uint max_esalt_len = sizeof (sip->esalt_buf); // 151 = (64 + 64 + 55) - 32, where 32 is the hexadecimal MD5 HA1 hash
18663
18664 // there are 2 possibilities for the esalt:
18665
18666 if ((strcmp (qop_pos, "auth") == 0) || (strcmp (qop_pos, "auth-int") == 0))
18667 {
18668 esalt_len = 1 + nonce_len + 1 + nonce_count_len + 1 + nonce_client_len + 1 + qop_len + 1 + 32;
18669
18670 if (esalt_len > max_esalt_len)
18671 {
18672 myfree (temp_input_buf);
18673
18674 return (PARSER_SALT_LENGTH);
18675 }
18676
18677 snprintf (esalt_buf_ptr, max_esalt_len, ":%s:%s:%s:%s:%08x%08x%08x%08x",
18678 nonce_pos,
18679 nonce_count_pos,
18680 nonce_client_pos,
18681 qop_pos,
18682 tmp_digest[0],
18683 tmp_digest[1],
18684 tmp_digest[2],
18685 tmp_digest[3]);
18686 }
18687 else
18688 {
18689 esalt_len = 1 + nonce_len + 1 + 32;
18690
18691 if (esalt_len > max_esalt_len)
18692 {
18693 myfree (temp_input_buf);
18694
18695 return (PARSER_SALT_LENGTH);
18696 }
18697
18698 snprintf (esalt_buf_ptr, max_esalt_len, ":%s:%08x%08x%08x%08x",
18699 nonce_pos,
18700 tmp_digest[0],
18701 tmp_digest[1],
18702 tmp_digest[2],
18703 tmp_digest[3]);
18704 }
18705
18706 // add 0x80 to esalt
18707
18708 esalt_buf_ptr[esalt_len] = 0x80;
18709
18710 sip->esalt_len = esalt_len;
18711
18712 /*
18713 * actual salt
18714 */
18715
18716 char *sip_salt_ptr = (char *) sip->salt_buf;
18717
18718 uint salt_len = user_len + 1 + realm_len + 1;
18719
18720 uint max_salt_len = 119;
18721
18722 if (salt_len > max_salt_len)
18723 {
18724 myfree (temp_input_buf);
18725
18726 return (PARSER_SALT_LENGTH);
18727 }
18728
18729 snprintf (sip_salt_ptr, max_salt_len + 1, "%s:%s:", user_pos, realm_pos);
18730
18731 sip->salt_len = salt_len;
18732
18733 /*
18734 * fake salt (for sorting)
18735 */
18736
18737 char *salt_buf_ptr = (char *) salt->salt_buf;
18738
18739 max_salt_len = 55;
18740
18741 uint fake_salt_len = salt_len;
18742
18743 if (fake_salt_len > max_salt_len)
18744 {
18745 fake_salt_len = max_salt_len;
18746 }
18747
18748 snprintf (salt_buf_ptr, max_salt_len + 1, "%s:%s:", user_pos, realm_pos);
18749
18750 salt->salt_len = fake_salt_len;
18751
18752 /*
18753 * digest
18754 */
18755
18756 digest[0] = hex_to_u32 ((const u8 *) &digest_pos[ 0]);
18757 digest[1] = hex_to_u32 ((const u8 *) &digest_pos[ 8]);
18758 digest[2] = hex_to_u32 ((const u8 *) &digest_pos[16]);
18759 digest[3] = hex_to_u32 ((const u8 *) &digest_pos[24]);
18760
18761 digest[0] = byte_swap_32 (digest[0]);
18762 digest[1] = byte_swap_32 (digest[1]);
18763 digest[2] = byte_swap_32 (digest[2]);
18764 digest[3] = byte_swap_32 (digest[3]);
18765
18766 myfree (temp_input_buf);
18767
18768 return (PARSER_OK);
18769 }
18770
18771 int crc32_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
18772 {
18773 if ((input_len < DISPLAY_LEN_MIN_11500) || (input_len > DISPLAY_LEN_MAX_11500)) return (PARSER_GLOBAL_LENGTH);
18774
18775 if (input_buf[8] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
18776
18777 u32 *digest = (u32 *) hash_buf->digest;
18778
18779 salt_t *salt = hash_buf->salt;
18780
18781 // digest
18782
18783 char *digest_pos = input_buf;
18784
18785 digest[0] = hex_to_u32 ((const u8 *) &digest_pos[0]);
18786 digest[1] = 0;
18787 digest[2] = 0;
18788 digest[3] = 0;
18789
18790 // salt
18791
18792 char *salt_buf = input_buf + 8 + 1;
18793
18794 uint salt_len = 8;
18795
18796 char *salt_buf_ptr = (char *) salt->salt_buf;
18797
18798 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
18799
18800 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
18801
18802 salt->salt_len = salt_len;
18803
18804 return (PARSER_OK);
18805 }
18806
18807 int seven_zip_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
18808 {
18809 if ((input_len < DISPLAY_LEN_MIN_11600) || (input_len > DISPLAY_LEN_MAX_11600)) return (PARSER_GLOBAL_LENGTH);
18810
18811 if (memcmp (SIGNATURE_SEVEN_ZIP, input_buf, 4)) return (PARSER_SIGNATURE_UNMATCHED);
18812
18813 u32 *digest = (u32 *) hash_buf->digest;
18814
18815 salt_t *salt = hash_buf->salt;
18816
18817 seven_zip_t *seven_zip = (seven_zip_t *) hash_buf->esalt;
18818
18819 /**
18820 * parse line
18821 */
18822
18823 char *p_buf_pos = input_buf + 4;
18824
18825 char *NumCyclesPower_pos = strchr (p_buf_pos, '$');
18826
18827 if (NumCyclesPower_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18828
18829 u32 p_buf_len = NumCyclesPower_pos - p_buf_pos;
18830
18831 NumCyclesPower_pos++;
18832
18833 char *salt_len_pos = strchr (NumCyclesPower_pos, '$');
18834
18835 if (salt_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18836
18837 u32 NumCyclesPower_len = salt_len_pos - NumCyclesPower_pos;
18838
18839 salt_len_pos++;
18840
18841 char *salt_buf_pos = strchr (salt_len_pos, '$');
18842
18843 if (salt_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18844
18845 u32 salt_len_len = salt_buf_pos - salt_len_pos;
18846
18847 salt_buf_pos++;
18848
18849 char *iv_len_pos = strchr (salt_buf_pos, '$');
18850
18851 if (iv_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18852
18853 u32 salt_buf_len = iv_len_pos - salt_buf_pos;
18854
18855 iv_len_pos++;
18856
18857 char *iv_buf_pos = strchr (iv_len_pos, '$');
18858
18859 if (iv_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18860
18861 u32 iv_len_len = iv_buf_pos - iv_len_pos;
18862
18863 iv_buf_pos++;
18864
18865 char *crc_buf_pos = strchr (iv_buf_pos, '$');
18866
18867 if (crc_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18868
18869 u32 iv_buf_len = crc_buf_pos - iv_buf_pos;
18870
18871 crc_buf_pos++;
18872
18873 char *data_len_pos = strchr (crc_buf_pos, '$');
18874
18875 if (data_len_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18876
18877 u32 crc_buf_len = data_len_pos - crc_buf_pos;
18878
18879 data_len_pos++;
18880
18881 char *unpack_size_pos = strchr (data_len_pos, '$');
18882
18883 if (unpack_size_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18884
18885 u32 data_len_len = unpack_size_pos - data_len_pos;
18886
18887 unpack_size_pos++;
18888
18889 char *data_buf_pos = strchr (unpack_size_pos, '$');
18890
18891 if (data_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
18892
18893 u32 unpack_size_len = data_buf_pos - unpack_size_pos;
18894
18895 data_buf_pos++;
18896
18897 u32 data_buf_len = input_len - 1 - 2 - 1 - p_buf_len - 1 - NumCyclesPower_len - 1 - salt_len_len - 1 - salt_buf_len - 1 - iv_len_len - 1 - iv_buf_len - 1 - crc_buf_len - 1 - data_len_len - 1 - unpack_size_len - 1;
18898
18899 const uint iter = atoi (NumCyclesPower_pos);
18900 const uint crc = atoi (crc_buf_pos);
18901 const uint p_buf = atoi (p_buf_pos);
18902 const uint salt_len = atoi (salt_len_pos);
18903 const uint iv_len = atoi (iv_len_pos);
18904 const uint unpack_size = atoi (unpack_size_pos);
18905 const uint data_len = atoi (data_len_pos);
18906
18907 /**
18908 * verify some data
18909 */
18910
18911 if (p_buf != 0) return (PARSER_SALT_VALUE);
18912 if (salt_len != 0) return (PARSER_SALT_VALUE);
18913
18914 if ((data_len * 2) != data_buf_len) return (PARSER_SALT_VALUE);
18915
18916 if (data_len > 384) return (PARSER_SALT_VALUE);
18917
18918 if (unpack_size > data_len) return (PARSER_SALT_VALUE);
18919
18920 /**
18921 * store data
18922 */
18923
18924 seven_zip->iv_buf[0] = hex_to_u32 ((const u8 *) &iv_buf_pos[ 0]);
18925 seven_zip->iv_buf[1] = hex_to_u32 ((const u8 *) &iv_buf_pos[ 8]);
18926 seven_zip->iv_buf[2] = hex_to_u32 ((const u8 *) &iv_buf_pos[16]);
18927 seven_zip->iv_buf[3] = hex_to_u32 ((const u8 *) &iv_buf_pos[24]);
18928
18929 seven_zip->iv_len = iv_len;
18930
18931 memcpy (seven_zip->salt_buf, salt_buf_pos, salt_buf_len); // we just need that for later ascii_digest()
18932
18933 seven_zip->salt_len = 0;
18934
18935 seven_zip->crc = crc;
18936
18937 for (uint i = 0, j = 0; j < data_buf_len; i += 1, j += 8)
18938 {
18939 seven_zip->data_buf[i] = hex_to_u32 ((const u8 *) &data_buf_pos[j]);
18940
18941 seven_zip->data_buf[i] = byte_swap_32 (seven_zip->data_buf[i]);
18942 }
18943
18944 seven_zip->data_len = data_len;
18945
18946 seven_zip->unpack_size = unpack_size;
18947
18948 // real salt
18949
18950 salt->salt_buf[0] = seven_zip->data_buf[0];
18951 salt->salt_buf[1] = seven_zip->data_buf[1];
18952 salt->salt_buf[2] = seven_zip->data_buf[2];
18953 salt->salt_buf[3] = seven_zip->data_buf[3];
18954
18955 salt->salt_len = 16;
18956
18957 salt->salt_sign[0] = iter;
18958
18959 salt->salt_iter = 1 << iter;
18960
18961 /**
18962 * digest
18963 */
18964
18965 digest[0] = crc;
18966 digest[1] = 0;
18967 digest[2] = 0;
18968 digest[3] = 0;
18969
18970 return (PARSER_OK);
18971 }
18972
18973 int gost2012sbog_256_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
18974 {
18975 if ((input_len < DISPLAY_LEN_MIN_11700) || (input_len > DISPLAY_LEN_MAX_11700)) return (PARSER_GLOBAL_LENGTH);
18976
18977 u32 *digest = (u32 *) hash_buf->digest;
18978
18979 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
18980 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
18981 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
18982 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
18983 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
18984 digest[5] = hex_to_u32 ((const u8 *) &input_buf[40]);
18985 digest[6] = hex_to_u32 ((const u8 *) &input_buf[48]);
18986 digest[7] = hex_to_u32 ((const u8 *) &input_buf[56]);
18987
18988 digest[0] = byte_swap_32 (digest[0]);
18989 digest[1] = byte_swap_32 (digest[1]);
18990 digest[2] = byte_swap_32 (digest[2]);
18991 digest[3] = byte_swap_32 (digest[3]);
18992 digest[4] = byte_swap_32 (digest[4]);
18993 digest[5] = byte_swap_32 (digest[5]);
18994 digest[6] = byte_swap_32 (digest[6]);
18995 digest[7] = byte_swap_32 (digest[7]);
18996
18997 return (PARSER_OK);
18998 }
18999
19000 int gost2012sbog_512_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19001 {
19002 if ((input_len < DISPLAY_LEN_MIN_11800) || (input_len > DISPLAY_LEN_MAX_11800)) return (PARSER_GLOBAL_LENGTH);
19003
19004 u32 *digest = (u32 *) hash_buf->digest;
19005
19006 digest[ 0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
19007 digest[ 1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
19008 digest[ 2] = hex_to_u32 ((const u8 *) &input_buf[ 16]);
19009 digest[ 3] = hex_to_u32 ((const u8 *) &input_buf[ 24]);
19010 digest[ 4] = hex_to_u32 ((const u8 *) &input_buf[ 32]);
19011 digest[ 5] = hex_to_u32 ((const u8 *) &input_buf[ 40]);
19012 digest[ 6] = hex_to_u32 ((const u8 *) &input_buf[ 48]);
19013 digest[ 7] = hex_to_u32 ((const u8 *) &input_buf[ 56]);
19014 digest[ 8] = hex_to_u32 ((const u8 *) &input_buf[ 64]);
19015 digest[ 9] = hex_to_u32 ((const u8 *) &input_buf[ 72]);
19016 digest[10] = hex_to_u32 ((const u8 *) &input_buf[ 80]);
19017 digest[11] = hex_to_u32 ((const u8 *) &input_buf[ 88]);
19018 digest[12] = hex_to_u32 ((const u8 *) &input_buf[ 96]);
19019 digest[13] = hex_to_u32 ((const u8 *) &input_buf[104]);
19020 digest[14] = hex_to_u32 ((const u8 *) &input_buf[112]);
19021 digest[15] = hex_to_u32 ((const u8 *) &input_buf[120]);
19022
19023 digest[ 0] = byte_swap_32 (digest[ 0]);
19024 digest[ 1] = byte_swap_32 (digest[ 1]);
19025 digest[ 2] = byte_swap_32 (digest[ 2]);
19026 digest[ 3] = byte_swap_32 (digest[ 3]);
19027 digest[ 4] = byte_swap_32 (digest[ 4]);
19028 digest[ 5] = byte_swap_32 (digest[ 5]);
19029 digest[ 6] = byte_swap_32 (digest[ 6]);
19030 digest[ 7] = byte_swap_32 (digest[ 7]);
19031 digest[ 8] = byte_swap_32 (digest[ 8]);
19032 digest[ 9] = byte_swap_32 (digest[ 9]);
19033 digest[10] = byte_swap_32 (digest[10]);
19034 digest[11] = byte_swap_32 (digest[11]);
19035 digest[12] = byte_swap_32 (digest[12]);
19036 digest[13] = byte_swap_32 (digest[13]);
19037 digest[14] = byte_swap_32 (digest[14]);
19038 digest[15] = byte_swap_32 (digest[15]);
19039
19040 return (PARSER_OK);
19041 }
19042
19043 int pbkdf2_md5_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19044 {
19045 if ((input_len < DISPLAY_LEN_MIN_11900) || (input_len > DISPLAY_LEN_MAX_11900)) return (PARSER_GLOBAL_LENGTH);
19046
19047 if (memcmp (SIGNATURE_PBKDF2_MD5, input_buf, 4)) return (PARSER_SIGNATURE_UNMATCHED);
19048
19049 u32 *digest = (u32 *) hash_buf->digest;
19050
19051 salt_t *salt = hash_buf->salt;
19052
19053 pbkdf2_md5_t *pbkdf2_md5 = (pbkdf2_md5_t *) hash_buf->esalt;
19054
19055 /**
19056 * parse line
19057 */
19058
19059 // iterations
19060
19061 char *iter_pos = input_buf + 4;
19062
19063 u32 iter = atoi (iter_pos);
19064
19065 if (iter < 1) return (PARSER_SALT_ITERATION);
19066 if (iter > 999999) return (PARSER_SALT_ITERATION);
19067
19068 // first is *raw* salt
19069
19070 char *salt_pos = strchr (iter_pos, ':');
19071
19072 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19073
19074 salt_pos++;
19075
19076 char *hash_pos = strchr (salt_pos, ':');
19077
19078 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19079
19080 u32 salt_len = hash_pos - salt_pos;
19081
19082 if (salt_len > 64) return (PARSER_SALT_LENGTH);
19083
19084 hash_pos++;
19085
19086 u32 hash_b64_len = input_len - (hash_pos - input_buf);
19087
19088 if (hash_b64_len > 88) return (PARSER_HASH_LENGTH);
19089
19090 // decode salt
19091
19092 char *salt_buf_ptr = (char *) pbkdf2_md5->salt_buf;
19093
19094 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
19095
19096 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
19097
19098 salt_buf_ptr[salt_len + 3] = 0x01;
19099 salt_buf_ptr[salt_len + 4] = 0x80;
19100
19101 salt->salt_len = salt_len;
19102 salt->salt_iter = iter - 1;
19103
19104 // decode hash
19105
19106 u8 tmp_buf[100] = { 0 };
19107
19108 int hash_len = base64_decode (base64_to_int, (const u8 *) hash_pos, hash_b64_len, tmp_buf);
19109
19110 if (hash_len < 16) return (PARSER_HASH_LENGTH);
19111
19112 memcpy (digest, tmp_buf, 16);
19113
19114 // add some stuff to normal salt to make sorted happy
19115
19116 salt->salt_buf[0] = pbkdf2_md5->salt_buf[0];
19117 salt->salt_buf[1] = pbkdf2_md5->salt_buf[1];
19118 salt->salt_buf[2] = pbkdf2_md5->salt_buf[2];
19119 salt->salt_buf[3] = pbkdf2_md5->salt_buf[3];
19120 salt->salt_buf[4] = salt->salt_iter;
19121
19122 return (PARSER_OK);
19123 }
19124
19125 int pbkdf2_sha1_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19126 {
19127 if ((input_len < DISPLAY_LEN_MIN_12000) || (input_len > DISPLAY_LEN_MAX_12000)) return (PARSER_GLOBAL_LENGTH);
19128
19129 if (memcmp (SIGNATURE_PBKDF2_SHA1, input_buf, 5)) return (PARSER_SIGNATURE_UNMATCHED);
19130
19131 u32 *digest = (u32 *) hash_buf->digest;
19132
19133 salt_t *salt = hash_buf->salt;
19134
19135 pbkdf2_sha1_t *pbkdf2_sha1 = (pbkdf2_sha1_t *) hash_buf->esalt;
19136
19137 /**
19138 * parse line
19139 */
19140
19141 // iterations
19142
19143 char *iter_pos = input_buf + 5;
19144
19145 u32 iter = atoi (iter_pos);
19146
19147 if (iter < 1) return (PARSER_SALT_ITERATION);
19148 if (iter > 999999) return (PARSER_SALT_ITERATION);
19149
19150 // first is *raw* salt
19151
19152 char *salt_pos = strchr (iter_pos, ':');
19153
19154 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19155
19156 salt_pos++;
19157
19158 char *hash_pos = strchr (salt_pos, ':');
19159
19160 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19161
19162 u32 salt_len = hash_pos - salt_pos;
19163
19164 if (salt_len > 64) return (PARSER_SALT_LENGTH);
19165
19166 hash_pos++;
19167
19168 u32 hash_b64_len = input_len - (hash_pos - input_buf);
19169
19170 if (hash_b64_len > 88) return (PARSER_HASH_LENGTH);
19171
19172 // decode salt
19173
19174 char *salt_buf_ptr = (char *) pbkdf2_sha1->salt_buf;
19175
19176 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
19177
19178 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
19179
19180 salt_buf_ptr[salt_len + 3] = 0x01;
19181 salt_buf_ptr[salt_len + 4] = 0x80;
19182
19183 salt->salt_len = salt_len;
19184 salt->salt_iter = iter - 1;
19185
19186 // decode hash
19187
19188 u8 tmp_buf[100] = { 0 };
19189
19190 int hash_len = base64_decode (base64_to_int, (const u8 *) hash_pos, hash_b64_len, tmp_buf);
19191
19192 if (hash_len < 16) return (PARSER_HASH_LENGTH);
19193
19194 memcpy (digest, tmp_buf, 16);
19195
19196 digest[0] = byte_swap_32 (digest[0]);
19197 digest[1] = byte_swap_32 (digest[1]);
19198 digest[2] = byte_swap_32 (digest[2]);
19199 digest[3] = byte_swap_32 (digest[3]);
19200
19201 // add some stuff to normal salt to make sorted happy
19202
19203 salt->salt_buf[0] = pbkdf2_sha1->salt_buf[0];
19204 salt->salt_buf[1] = pbkdf2_sha1->salt_buf[1];
19205 salt->salt_buf[2] = pbkdf2_sha1->salt_buf[2];
19206 salt->salt_buf[3] = pbkdf2_sha1->salt_buf[3];
19207 salt->salt_buf[4] = salt->salt_iter;
19208
19209 return (PARSER_OK);
19210 }
19211
19212 int pbkdf2_sha512_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19213 {
19214 if ((input_len < DISPLAY_LEN_MIN_12100) || (input_len > DISPLAY_LEN_MAX_12100)) return (PARSER_GLOBAL_LENGTH);
19215
19216 if (memcmp (SIGNATURE_PBKDF2_SHA512, input_buf, 7)) return (PARSER_SIGNATURE_UNMATCHED);
19217
19218 u64 *digest = (u64 *) hash_buf->digest;
19219
19220 salt_t *salt = hash_buf->salt;
19221
19222 pbkdf2_sha512_t *pbkdf2_sha512 = (pbkdf2_sha512_t *) hash_buf->esalt;
19223
19224 /**
19225 * parse line
19226 */
19227
19228 // iterations
19229
19230 char *iter_pos = input_buf + 7;
19231
19232 u32 iter = atoi (iter_pos);
19233
19234 if (iter < 1) return (PARSER_SALT_ITERATION);
19235 if (iter > 999999) return (PARSER_SALT_ITERATION);
19236
19237 // first is *raw* salt
19238
19239 char *salt_pos = strchr (iter_pos, ':');
19240
19241 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19242
19243 salt_pos++;
19244
19245 char *hash_pos = strchr (salt_pos, ':');
19246
19247 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19248
19249 u32 salt_len = hash_pos - salt_pos;
19250
19251 if (salt_len > 64) return (PARSER_SALT_LENGTH);
19252
19253 hash_pos++;
19254
19255 u32 hash_b64_len = input_len - (hash_pos - input_buf);
19256
19257 if (hash_b64_len > 88) return (PARSER_HASH_LENGTH);
19258
19259 // decode salt
19260
19261 char *salt_buf_ptr = (char *) pbkdf2_sha512->salt_buf;
19262
19263 salt_len = parse_and_store_salt (salt_buf_ptr, salt_pos, salt_len);
19264
19265 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
19266
19267 salt_buf_ptr[salt_len + 3] = 0x01;
19268 salt_buf_ptr[salt_len + 4] = 0x80;
19269
19270 salt->salt_len = salt_len;
19271 salt->salt_iter = iter - 1;
19272
19273 // decode hash
19274
19275 u8 tmp_buf[100] = { 0 };
19276
19277 int hash_len = base64_decode (base64_to_int, (const u8 *) hash_pos, hash_b64_len, tmp_buf);
19278
19279 if (hash_len < 16) return (PARSER_HASH_LENGTH);
19280
19281 memcpy (digest, tmp_buf, 64);
19282
19283 digest[0] = byte_swap_64 (digest[0]);
19284 digest[1] = byte_swap_64 (digest[1]);
19285 digest[2] = byte_swap_64 (digest[2]);
19286 digest[3] = byte_swap_64 (digest[3]);
19287 digest[4] = byte_swap_64 (digest[4]);
19288 digest[5] = byte_swap_64 (digest[5]);
19289 digest[6] = byte_swap_64 (digest[6]);
19290 digest[7] = byte_swap_64 (digest[7]);
19291
19292 // add some stuff to normal salt to make sorted happy
19293
19294 salt->salt_buf[0] = pbkdf2_sha512->salt_buf[0];
19295 salt->salt_buf[1] = pbkdf2_sha512->salt_buf[1];
19296 salt->salt_buf[2] = pbkdf2_sha512->salt_buf[2];
19297 salt->salt_buf[3] = pbkdf2_sha512->salt_buf[3];
19298 salt->salt_buf[4] = salt->salt_iter;
19299
19300 return (PARSER_OK);
19301 }
19302
19303 int ecryptfs_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19304 {
19305 if ((input_len < DISPLAY_LEN_MIN_12200) || (input_len > DISPLAY_LEN_MAX_12200)) return (PARSER_GLOBAL_LENGTH);
19306
19307 if (memcmp (SIGNATURE_ECRYPTFS, input_buf, 10)) return (PARSER_SIGNATURE_UNMATCHED);
19308
19309 uint *digest = (uint *) hash_buf->digest;
19310
19311 salt_t *salt = hash_buf->salt;
19312
19313 /**
19314 * parse line
19315 */
19316
19317 char *salt_pos = input_buf + 10 + 2 + 2; // skip over "0$" and "1$"
19318
19319 char *hash_pos = strchr (salt_pos, '$');
19320
19321 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19322
19323 u32 salt_len = hash_pos - salt_pos;
19324
19325 if (salt_len != 16) return (PARSER_SALT_LENGTH);
19326
19327 hash_pos++;
19328
19329 u32 hash_len = input_len - 10 - 2 - 2 - salt_len - 1;
19330
19331 if (hash_len != 16) return (PARSER_HASH_LENGTH);
19332
19333 // decode hash
19334
19335 digest[ 0] = hex_to_u32 ((const u8 *) &hash_pos[0]);
19336 digest[ 1] = hex_to_u32 ((const u8 *) &hash_pos[8]);
19337 digest[ 2] = 0;
19338 digest[ 3] = 0;
19339 digest[ 4] = 0;
19340 digest[ 5] = 0;
19341 digest[ 6] = 0;
19342 digest[ 7] = 0;
19343 digest[ 8] = 0;
19344 digest[ 9] = 0;
19345 digest[10] = 0;
19346 digest[11] = 0;
19347 digest[12] = 0;
19348 digest[13] = 0;
19349 digest[14] = 0;
19350 digest[15] = 0;
19351
19352 // decode salt
19353
19354 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_pos[0]);
19355 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_pos[8]);
19356
19357 salt->salt_iter = ROUNDS_ECRYPTFS;
19358 salt->salt_len = 8;
19359
19360 return (PARSER_OK);
19361 }
19362
19363 int bsdicrypt_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19364 {
19365 if ((input_len < DISPLAY_LEN_MIN_12400) || (input_len > DISPLAY_LEN_MAX_12400)) return (PARSER_GLOBAL_LENGTH);
19366
19367 if (memcmp (SIGNATURE_BSDICRYPT, input_buf, 1)) return (PARSER_SIGNATURE_UNMATCHED);
19368
19369 unsigned char c19 = itoa64_to_int (input_buf[19]);
19370
19371 if (c19 & 3) return (PARSER_HASH_VALUE);
19372
19373 salt_t *salt = hash_buf->salt;
19374
19375 u32 *digest = (u32 *) hash_buf->digest;
19376
19377 // iteration count
19378
19379 salt->salt_iter = itoa64_to_int (input_buf[1])
19380 | itoa64_to_int (input_buf[2]) << 6
19381 | itoa64_to_int (input_buf[3]) << 12
19382 | itoa64_to_int (input_buf[4]) << 18;
19383
19384 // set salt
19385
19386 salt->salt_buf[0] = itoa64_to_int (input_buf[5])
19387 | itoa64_to_int (input_buf[6]) << 6
19388 | itoa64_to_int (input_buf[7]) << 12
19389 | itoa64_to_int (input_buf[8]) << 18;
19390
19391 salt->salt_len = 4;
19392
19393 u8 tmp_buf[100] = { 0 };
19394
19395 base64_decode (itoa64_to_int, (const u8 *) input_buf + 9, 11, tmp_buf);
19396
19397 memcpy (digest, tmp_buf, 8);
19398
19399 uint tt;
19400
19401 IP (digest[0], digest[1], tt);
19402
19403 digest[0] = rotr32 (digest[0], 31);
19404 digest[1] = rotr32 (digest[1], 31);
19405 digest[2] = 0;
19406 digest[3] = 0;
19407
19408 return (PARSER_OK);
19409 }
19410
19411 int rar3hp_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19412 {
19413 if ((input_len < DISPLAY_LEN_MIN_12500) || (input_len > DISPLAY_LEN_MAX_12500)) return (PARSER_GLOBAL_LENGTH);
19414
19415 if (memcmp (SIGNATURE_RAR3, input_buf, 6)) return (PARSER_SIGNATURE_UNMATCHED);
19416
19417 u32 *digest = (u32 *) hash_buf->digest;
19418
19419 salt_t *salt = hash_buf->salt;
19420
19421 /**
19422 * parse line
19423 */
19424
19425 char *type_pos = input_buf + 6 + 1;
19426
19427 char *salt_pos = strchr (type_pos, '*');
19428
19429 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19430
19431 u32 type_len = salt_pos - type_pos;
19432
19433 if (type_len != 1) return (PARSER_SALT_LENGTH);
19434
19435 salt_pos++;
19436
19437 char *crypted_pos = strchr (salt_pos, '*');
19438
19439 if (crypted_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19440
19441 u32 salt_len = crypted_pos - salt_pos;
19442
19443 if (salt_len != 16) return (PARSER_SALT_LENGTH);
19444
19445 crypted_pos++;
19446
19447 u32 crypted_len = input_len - 6 - 1 - type_len - 1 - salt_len - 1;
19448
19449 if (crypted_len != 32) return (PARSER_SALT_LENGTH);
19450
19451 /**
19452 * copy data
19453 */
19454
19455 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_pos[0]);
19456 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_pos[8]);
19457
19458 salt->salt_buf[0] = byte_swap_32 (salt->salt_buf[0]);
19459 salt->salt_buf[1] = byte_swap_32 (salt->salt_buf[1]);
19460
19461 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &crypted_pos[ 0]);
19462 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &crypted_pos[ 8]);
19463 salt->salt_buf[4] = hex_to_u32 ((const u8 *) &crypted_pos[16]);
19464 salt->salt_buf[5] = hex_to_u32 ((const u8 *) &crypted_pos[24]);
19465
19466 salt->salt_len = 24;
19467 salt->salt_iter = ROUNDS_RAR3;
19468
19469 // there's no hash for rar3. the data which is in crypted_pos is some encrypted data and
19470 // if it matches the value \xc4\x3d\x7b\x00\x40\x07\x00 after decrypt we know that we successfully cracked it.
19471
19472 digest[0] = 0xc43d7b00;
19473 digest[1] = 0x40070000;
19474 digest[2] = 0;
19475 digest[3] = 0;
19476
19477 return (PARSER_OK);
19478 }
19479
19480 int rar5_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19481 {
19482 if ((input_len < DISPLAY_LEN_MIN_13000) || (input_len > DISPLAY_LEN_MAX_13000)) return (PARSER_GLOBAL_LENGTH);
19483
19484 if (memcmp (SIGNATURE_RAR5, input_buf, 1 + 4 + 1)) return (PARSER_SIGNATURE_UNMATCHED);
19485
19486 u32 *digest = (u32 *) hash_buf->digest;
19487
19488 salt_t *salt = hash_buf->salt;
19489
19490 rar5_t *rar5 = (rar5_t *) hash_buf->esalt;
19491
19492 /**
19493 * parse line
19494 */
19495
19496 char *param0_pos = input_buf + 1 + 4 + 1;
19497
19498 char *param1_pos = strchr (param0_pos, '$');
19499
19500 if (param1_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19501
19502 u32 param0_len = param1_pos - param0_pos;
19503
19504 param1_pos++;
19505
19506 char *param2_pos = strchr (param1_pos, '$');
19507
19508 if (param2_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19509
19510 u32 param1_len = param2_pos - param1_pos;
19511
19512 param2_pos++;
19513
19514 char *param3_pos = strchr (param2_pos, '$');
19515
19516 if (param3_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19517
19518 u32 param2_len = param3_pos - param2_pos;
19519
19520 param3_pos++;
19521
19522 char *param4_pos = strchr (param3_pos, '$');
19523
19524 if (param4_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19525
19526 u32 param3_len = param4_pos - param3_pos;
19527
19528 param4_pos++;
19529
19530 char *param5_pos = strchr (param4_pos, '$');
19531
19532 if (param5_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19533
19534 u32 param4_len = param5_pos - param4_pos;
19535
19536 param5_pos++;
19537
19538 u32 param5_len = input_len - 1 - 4 - 1 - param0_len - 1 - param1_len - 1 - param2_len - 1 - param3_len - 1 - param4_len - 1;
19539
19540 char *salt_buf = param1_pos;
19541 char *iv = param3_pos;
19542 char *pswcheck = param5_pos;
19543
19544 const uint salt_len = atoi (param0_pos);
19545 const uint iterations = atoi (param2_pos);
19546 const uint pswcheck_len = atoi (param4_pos);
19547
19548 /**
19549 * verify some data
19550 */
19551
19552 if (param1_len != 32) return (PARSER_SALT_VALUE);
19553 if (param3_len != 32) return (PARSER_SALT_VALUE);
19554 if (param5_len != 16) return (PARSER_SALT_VALUE);
19555
19556 if (salt_len != 16) return (PARSER_SALT_VALUE);
19557 if (iterations == 0) return (PARSER_SALT_VALUE);
19558 if (pswcheck_len != 8) return (PARSER_SALT_VALUE);
19559
19560 /**
19561 * store data
19562 */
19563
19564 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_buf[ 0]);
19565 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_buf[ 8]);
19566 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &salt_buf[16]);
19567 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &salt_buf[24]);
19568
19569 rar5->iv[0] = hex_to_u32 ((const u8 *) &iv[ 0]);
19570 rar5->iv[1] = hex_to_u32 ((const u8 *) &iv[ 8]);
19571 rar5->iv[2] = hex_to_u32 ((const u8 *) &iv[16]);
19572 rar5->iv[3] = hex_to_u32 ((const u8 *) &iv[24]);
19573
19574 salt->salt_len = 16;
19575
19576 salt->salt_sign[0] = iterations;
19577
19578 salt->salt_iter = ((1 << iterations) + 32) - 1;
19579
19580 /**
19581 * digest buf
19582 */
19583
19584 digest[0] = hex_to_u32 ((const u8 *) &pswcheck[ 0]);
19585 digest[1] = hex_to_u32 ((const u8 *) &pswcheck[ 8]);
19586 digest[2] = 0;
19587 digest[3] = 0;
19588
19589 return (PARSER_OK);
19590 }
19591
19592 int krb5tgs_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19593 {
19594 if ((input_len < DISPLAY_LEN_MIN_13100) || (input_len > DISPLAY_LEN_MAX_13100)) return (PARSER_GLOBAL_LENGTH);
19595
19596 if (memcmp (SIGNATURE_KRB5TGS, input_buf, 11)) return (PARSER_SIGNATURE_UNMATCHED);
19597
19598 u32 *digest = (u32 *) hash_buf->digest;
19599
19600 salt_t *salt = hash_buf->salt;
19601
19602 krb5tgs_t *krb5tgs = (krb5tgs_t *) hash_buf->esalt;
19603
19604 /**
19605 * parse line
19606 */
19607
19608 /* Skip '$' */
19609 char *account_pos = input_buf + 11 + 1;
19610
19611 char *data_pos;
19612
19613 uint data_len;
19614
19615 if (account_pos[0] == '*')
19616 {
19617 account_pos++;
19618
19619 data_pos = strchr (account_pos, '*');
19620
19621 /* Skip '*' */
19622 data_pos++;
19623
19624 if (data_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19625
19626 uint account_len = data_pos - account_pos + 1;
19627
19628 if (account_len >= 512) return (PARSER_SALT_LENGTH);
19629
19630 /* Skip '$' */
19631 data_pos++;
19632
19633 data_len = input_len - 11 - 1 - account_len - 2;
19634
19635 memcpy (krb5tgs->account_info, account_pos - 1, account_len);
19636 }
19637 else
19638 {
19639 /* assume $krb5tgs$23$checksum$edata2 */
19640 data_pos = account_pos;
19641
19642 memcpy (krb5tgs->account_info, "**", 3);
19643
19644 data_len = input_len - 11 - 1 - 1;
19645 }
19646
19647 if (data_len < ((16 + 32) * 2)) return (PARSER_SALT_LENGTH);
19648
19649 char *checksum_ptr = (char *) krb5tgs->checksum;
19650
19651 for (uint i = 0; i < 16 * 2; i += 2)
19652 {
19653 const char p0 = data_pos[i + 0];
19654 const char p1 = data_pos[i + 1];
19655
19656 *checksum_ptr++ = hex_convert (p1) << 0
19657 | hex_convert (p0) << 4;
19658 }
19659
19660 char *edata_ptr = (char *) krb5tgs->edata2;
19661
19662 krb5tgs->edata2_len = (data_len - 32) / 2 ;
19663
19664 /* skip '$' */
19665 for (uint i = 16 * 2 + 1; i < (krb5tgs->edata2_len * 2) + (16 * 2 + 1); i += 2)
19666 {
19667 const char p0 = data_pos[i + 0];
19668 const char p1 = data_pos[i + 1];
19669 *edata_ptr++ = hex_convert (p1) << 0
19670 | hex_convert (p0) << 4;
19671 }
19672
19673 /* this is needed for hmac_md5 */
19674 *edata_ptr++ = 0x80;
19675
19676 salt->salt_buf[0] = krb5tgs->checksum[0];
19677 salt->salt_buf[1] = krb5tgs->checksum[1];
19678 salt->salt_buf[2] = krb5tgs->checksum[2];
19679 salt->salt_buf[3] = krb5tgs->checksum[3];
19680
19681 salt->salt_len = 32;
19682
19683 digest[0] = krb5tgs->checksum[0];
19684 digest[1] = krb5tgs->checksum[1];
19685 digest[2] = krb5tgs->checksum[2];
19686 digest[3] = krb5tgs->checksum[3];
19687
19688 return (PARSER_OK);
19689 }
19690
19691 int axcrypt_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19692 {
19693 if ((input_len < DISPLAY_LEN_MIN_13200) || (input_len > DISPLAY_LEN_MAX_13200)) return (PARSER_GLOBAL_LENGTH);
19694
19695 if (memcmp (SIGNATURE_AXCRYPT, input_buf, 11)) return (PARSER_SIGNATURE_UNMATCHED);
19696
19697 u32 *digest = (u32 *) hash_buf->digest;
19698
19699 salt_t *salt = hash_buf->salt;
19700
19701 /**
19702 * parse line
19703 */
19704
19705 /* Skip '*' */
19706 char *wrapping_rounds_pos = input_buf + 11 + 1;
19707
19708 char *salt_pos;
19709
19710 char *wrapped_key_pos;
19711
19712 char *data_pos;
19713
19714 salt->salt_iter = atoi (wrapping_rounds_pos);
19715
19716 salt_pos = strchr (wrapping_rounds_pos, '*');
19717
19718 if (salt_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19719
19720 uint wrapping_rounds_len = salt_pos - wrapping_rounds_pos;
19721
19722 /* Skip '*' */
19723 salt_pos++;
19724
19725 data_pos = salt_pos;
19726
19727 wrapped_key_pos = strchr (salt_pos, '*');
19728
19729 if (wrapped_key_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19730
19731 uint salt_len = wrapped_key_pos - salt_pos;
19732
19733 if (salt_len != 32) return (PARSER_SALT_LENGTH);
19734
19735 /* Skip '*' */
19736 wrapped_key_pos++;
19737
19738 uint wrapped_key_len = input_len - 11 - 1 - wrapping_rounds_len - 1 - salt_len - 1;
19739
19740 if (wrapped_key_len != 48) return (PARSER_SALT_LENGTH);
19741
19742 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &data_pos[ 0]);
19743 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &data_pos[ 8]);
19744 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &data_pos[16]);
19745 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &data_pos[24]);
19746
19747 data_pos += 33;
19748
19749 salt->salt_buf[4] = hex_to_u32 ((const u8 *) &data_pos[ 0]);
19750 salt->salt_buf[5] = hex_to_u32 ((const u8 *) &data_pos[ 8]);
19751 salt->salt_buf[6] = hex_to_u32 ((const u8 *) &data_pos[16]);
19752 salt->salt_buf[7] = hex_to_u32 ((const u8 *) &data_pos[24]);
19753 salt->salt_buf[8] = hex_to_u32 ((const u8 *) &data_pos[32]);
19754 salt->salt_buf[9] = hex_to_u32 ((const u8 *) &data_pos[40]);
19755
19756 salt->salt_len = 40;
19757
19758 digest[0] = salt->salt_buf[0];
19759 digest[1] = salt->salt_buf[1];
19760 digest[2] = salt->salt_buf[2];
19761 digest[3] = salt->salt_buf[3];
19762
19763 return (PARSER_OK);
19764 }
19765
19766 int keepass_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
19767 {
19768 if ((input_len < DISPLAY_LEN_MIN_13400) || (input_len > DISPLAY_LEN_MAX_13400)) return (PARSER_GLOBAL_LENGTH);
19769
19770 if (memcmp (SIGNATURE_KEEPASS, input_buf, 9)) return (PARSER_SIGNATURE_UNMATCHED);
19771
19772 u32 *digest = (u32 *) hash_buf->digest;
19773
19774 salt_t *salt = hash_buf->salt;
19775
19776 keepass_t *keepass = (keepass_t *) hash_buf->esalt;
19777
19778 /**
19779 * parse line
19780 */
19781
19782 char *version_pos;
19783
19784 char *rounds_pos;
19785
19786 char *algorithm_pos;
19787
19788 char *final_random_seed_pos;
19789 u32 final_random_seed_len;
19790
19791 char *transf_random_seed_pos;
19792 u32 transf_random_seed_len;
19793
19794 char *enc_iv_pos;
19795 u32 enc_iv_len;
19796
19797 /* default is no keyfile provided */
19798 char *keyfile_len_pos;
19799 u32 keyfile_len = 0;
19800 u32 is_keyfile_present = 0;
19801 char *keyfile_inline_pos;
19802 char *keyfile_pos;
19803
19804 /* specific to version 1 */
19805 char *contents_len_pos;
19806 u32 contents_len;
19807 char *contents_pos;
19808
19809 /* specific to version 2 */
19810 char *expected_bytes_pos;
19811 u32 expected_bytes_len;
19812
19813 char *contents_hash_pos;
19814 u32 contents_hash_len;
19815
19816 version_pos = input_buf + 8 + 1 + 1;
19817
19818 keepass->version = atoi (version_pos);
19819
19820 rounds_pos = strchr (version_pos, '*');
19821
19822 if (rounds_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19823
19824 rounds_pos++;
19825
19826 salt->salt_iter = (atoi (rounds_pos));
19827
19828 algorithm_pos = strchr (rounds_pos, '*');
19829
19830 if (algorithm_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19831
19832 algorithm_pos++;
19833
19834 keepass->algorithm = atoi (algorithm_pos);
19835
19836 final_random_seed_pos = strchr (algorithm_pos, '*');
19837
19838 if (final_random_seed_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19839
19840 final_random_seed_pos++;
19841
19842 keepass->final_random_seed[0] = hex_to_u32 ((const u8 *) &final_random_seed_pos[ 0]);
19843 keepass->final_random_seed[1] = hex_to_u32 ((const u8 *) &final_random_seed_pos[ 8]);
19844 keepass->final_random_seed[2] = hex_to_u32 ((const u8 *) &final_random_seed_pos[16]);
19845 keepass->final_random_seed[3] = hex_to_u32 ((const u8 *) &final_random_seed_pos[24]);
19846
19847 if (keepass->version == 2)
19848 {
19849 keepass->final_random_seed[4] = hex_to_u32 ((const u8 *) &final_random_seed_pos[32]);
19850 keepass->final_random_seed[5] = hex_to_u32 ((const u8 *) &final_random_seed_pos[40]);
19851 keepass->final_random_seed[6] = hex_to_u32 ((const u8 *) &final_random_seed_pos[48]);
19852 keepass->final_random_seed[7] = hex_to_u32 ((const u8 *) &final_random_seed_pos[56]);
19853 }
19854
19855 transf_random_seed_pos = strchr (final_random_seed_pos, '*');
19856
19857 if (transf_random_seed_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19858
19859 final_random_seed_len = transf_random_seed_pos - final_random_seed_pos;
19860
19861 if (keepass->version == 1 && final_random_seed_len != 32) return (PARSER_SALT_LENGTH);
19862 if (keepass->version == 2 && final_random_seed_len != 64) return (PARSER_SALT_LENGTH);
19863
19864 transf_random_seed_pos++;
19865
19866 keepass->transf_random_seed[0] = hex_to_u32 ((const u8 *) &transf_random_seed_pos[ 0]);
19867 keepass->transf_random_seed[1] = hex_to_u32 ((const u8 *) &transf_random_seed_pos[ 8]);
19868 keepass->transf_random_seed[2] = hex_to_u32 ((const u8 *) &transf_random_seed_pos[16]);
19869 keepass->transf_random_seed[3] = hex_to_u32 ((const u8 *) &transf_random_seed_pos[24]);
19870 keepass->transf_random_seed[4] = hex_to_u32 ((const u8 *) &transf_random_seed_pos[32]);
19871 keepass->transf_random_seed[5] = hex_to_u32 ((const u8 *) &transf_random_seed_pos[40]);
19872 keepass->transf_random_seed[6] = hex_to_u32 ((const u8 *) &transf_random_seed_pos[48]);
19873 keepass->transf_random_seed[7] = hex_to_u32 ((const u8 *) &transf_random_seed_pos[56]);
19874
19875 enc_iv_pos = strchr (transf_random_seed_pos, '*');
19876
19877 if (enc_iv_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19878
19879 transf_random_seed_len = enc_iv_pos - transf_random_seed_pos;
19880
19881 if (transf_random_seed_len != 64) return (PARSER_SALT_LENGTH);
19882
19883 enc_iv_pos++;
19884
19885 keepass->enc_iv[0] = hex_to_u32 ((const u8 *) &enc_iv_pos[ 0]);
19886 keepass->enc_iv[1] = hex_to_u32 ((const u8 *) &enc_iv_pos[ 8]);
19887 keepass->enc_iv[2] = hex_to_u32 ((const u8 *) &enc_iv_pos[16]);
19888 keepass->enc_iv[3] = hex_to_u32 ((const u8 *) &enc_iv_pos[24]);
19889
19890 if (keepass->version == 1)
19891 {
19892 contents_hash_pos = strchr (enc_iv_pos, '*');
19893
19894 if (contents_hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19895
19896 enc_iv_len = contents_hash_pos - enc_iv_pos;
19897
19898 if (enc_iv_len != 32) return (PARSER_SALT_LENGTH);
19899
19900 contents_hash_pos++;
19901
19902 keepass->contents_hash[0] = hex_to_u32 ((const u8 *) &contents_hash_pos[ 0]);
19903 keepass->contents_hash[1] = hex_to_u32 ((const u8 *) &contents_hash_pos[ 8]);
19904 keepass->contents_hash[2] = hex_to_u32 ((const u8 *) &contents_hash_pos[16]);
19905 keepass->contents_hash[3] = hex_to_u32 ((const u8 *) &contents_hash_pos[24]);
19906 keepass->contents_hash[4] = hex_to_u32 ((const u8 *) &contents_hash_pos[32]);
19907 keepass->contents_hash[5] = hex_to_u32 ((const u8 *) &contents_hash_pos[40]);
19908 keepass->contents_hash[6] = hex_to_u32 ((const u8 *) &contents_hash_pos[48]);
19909 keepass->contents_hash[7] = hex_to_u32 ((const u8 *) &contents_hash_pos[56]);
19910
19911 /* get length of contents following */
19912 char *inline_flag_pos = strchr (contents_hash_pos, '*');
19913
19914 if (inline_flag_pos == NULL) return (PARSER_SALT_LENGTH);
19915
19916 contents_hash_len = inline_flag_pos - contents_hash_pos;
19917
19918 if (contents_hash_len != 64) return (PARSER_SALT_LENGTH);
19919
19920 inline_flag_pos++;
19921
19922 u32 inline_flag = atoi (inline_flag_pos);
19923
19924 if (inline_flag != 1) return (PARSER_SALT_LENGTH);
19925
19926 contents_len_pos = strchr (inline_flag_pos, '*');
19927
19928 if (contents_len_pos == NULL) return (PARSER_SALT_LENGTH);
19929
19930 contents_len_pos++;
19931
19932 contents_len = atoi (contents_len_pos);
19933
19934 if (contents_len > 50000) return (PARSER_SALT_LENGTH);
19935
19936 contents_pos = strchr (contents_len_pos, '*');
19937
19938 if (contents_pos == NULL) return (PARSER_SALT_LENGTH);
19939
19940 contents_pos++;
19941
19942 u32 i;
19943
19944 keepass->contents_len = contents_len;
19945
19946 contents_len = contents_len / 4;
19947
19948 keyfile_inline_pos = strchr (contents_pos, '*');
19949
19950 u32 real_contents_len;
19951
19952 if (keyfile_inline_pos == NULL)
19953 real_contents_len = input_len - (contents_pos - input_buf);
19954 else
19955 {
19956 real_contents_len = keyfile_inline_pos - contents_pos;
19957 keyfile_inline_pos++;
19958 is_keyfile_present = 1;
19959 }
19960
19961 if (real_contents_len != keepass->contents_len * 2) return (PARSER_SALT_LENGTH);
19962
19963 for (i = 0; i < contents_len; i++)
19964 keepass->contents[i] = hex_to_u32 ((const u8 *) &contents_pos[i * 8]);
19965 }
19966 else if (keepass->version == 2)
19967 {
19968 expected_bytes_pos = strchr (enc_iv_pos, '*');
19969
19970 if (expected_bytes_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19971
19972 enc_iv_len = expected_bytes_pos - enc_iv_pos;
19973
19974 if (enc_iv_len != 32) return (PARSER_SALT_LENGTH);
19975
19976 expected_bytes_pos++;
19977
19978 keepass->expected_bytes[0] = hex_to_u32 ((const u8 *) &expected_bytes_pos[ 0]);
19979 keepass->expected_bytes[1] = hex_to_u32 ((const u8 *) &expected_bytes_pos[ 8]);
19980 keepass->expected_bytes[2] = hex_to_u32 ((const u8 *) &expected_bytes_pos[16]);
19981 keepass->expected_bytes[3] = hex_to_u32 ((const u8 *) &expected_bytes_pos[24]);
19982 keepass->expected_bytes[4] = hex_to_u32 ((const u8 *) &expected_bytes_pos[32]);
19983 keepass->expected_bytes[5] = hex_to_u32 ((const u8 *) &expected_bytes_pos[40]);
19984 keepass->expected_bytes[6] = hex_to_u32 ((const u8 *) &expected_bytes_pos[48]);
19985 keepass->expected_bytes[7] = hex_to_u32 ((const u8 *) &expected_bytes_pos[56]);
19986
19987 contents_hash_pos = strchr (expected_bytes_pos, '*');
19988
19989 if (contents_hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
19990
19991 expected_bytes_len = contents_hash_pos - expected_bytes_pos;
19992
19993 if (expected_bytes_len != 64) return (PARSER_SALT_LENGTH);
19994
19995 contents_hash_pos++;
19996
19997 keepass->contents_hash[0] = hex_to_u32 ((const u8 *) &contents_hash_pos[ 0]);
19998 keepass->contents_hash[1] = hex_to_u32 ((const u8 *) &contents_hash_pos[ 8]);
19999 keepass->contents_hash[2] = hex_to_u32 ((const u8 *) &contents_hash_pos[16]);
20000 keepass->contents_hash[3] = hex_to_u32 ((const u8 *) &contents_hash_pos[24]);
20001 keepass->contents_hash[4] = hex_to_u32 ((const u8 *) &contents_hash_pos[32]);
20002 keepass->contents_hash[5] = hex_to_u32 ((const u8 *) &contents_hash_pos[40]);
20003 keepass->contents_hash[6] = hex_to_u32 ((const u8 *) &contents_hash_pos[48]);
20004 keepass->contents_hash[7] = hex_to_u32 ((const u8 *) &contents_hash_pos[56]);
20005
20006 keyfile_inline_pos = strchr (contents_hash_pos, '*');
20007
20008 if (keyfile_inline_pos == NULL)
20009 contents_hash_len = input_len - (int) (contents_hash_pos - input_buf);
20010 else
20011 {
20012 contents_hash_len = keyfile_inline_pos - contents_hash_pos;
20013 keyfile_inline_pos++;
20014 is_keyfile_present = 1;
20015 }
20016 if (contents_hash_len != 64) return (PARSER_SALT_LENGTH);
20017 }
20018
20019 if (is_keyfile_present != 0)
20020 {
20021 keyfile_len_pos = strchr (keyfile_inline_pos, '*');
20022
20023 keyfile_len_pos++;
20024
20025 keyfile_len = atoi (keyfile_len_pos);
20026
20027 keepass->keyfile_len = keyfile_len;
20028
20029 if (keyfile_len != 64) return (PARSER_SALT_LENGTH);
20030
20031 keyfile_pos = strchr (keyfile_len_pos, '*');
20032
20033 if (keyfile_pos == NULL) return (PARSER_SALT_LENGTH);
20034
20035 keyfile_pos++;
20036
20037 u32 real_keyfile_len = input_len - (keyfile_pos - input_buf);
20038
20039 if (real_keyfile_len != 64) return (PARSER_SALT_LENGTH);
20040
20041 keepass->keyfile[0] = hex_to_u32 ((const u8 *) &keyfile_pos[ 0]);
20042 keepass->keyfile[1] = hex_to_u32 ((const u8 *) &keyfile_pos[ 8]);
20043 keepass->keyfile[2] = hex_to_u32 ((const u8 *) &keyfile_pos[16]);
20044 keepass->keyfile[3] = hex_to_u32 ((const u8 *) &keyfile_pos[24]);
20045 keepass->keyfile[4] = hex_to_u32 ((const u8 *) &keyfile_pos[32]);
20046 keepass->keyfile[5] = hex_to_u32 ((const u8 *) &keyfile_pos[40]);
20047 keepass->keyfile[6] = hex_to_u32 ((const u8 *) &keyfile_pos[48]);
20048 keepass->keyfile[7] = hex_to_u32 ((const u8 *) &keyfile_pos[56]);
20049 }
20050
20051 digest[0] = keepass->enc_iv[0];
20052 digest[1] = keepass->enc_iv[1];
20053 digest[2] = keepass->enc_iv[2];
20054 digest[3] = keepass->enc_iv[3];
20055
20056 salt->salt_buf[0] = keepass->transf_random_seed[0];
20057 salt->salt_buf[1] = keepass->transf_random_seed[1];
20058 salt->salt_buf[2] = keepass->transf_random_seed[2];
20059 salt->salt_buf[3] = keepass->transf_random_seed[3];
20060 salt->salt_buf[4] = keepass->transf_random_seed[4];
20061 salt->salt_buf[5] = keepass->transf_random_seed[5];
20062 salt->salt_buf[6] = keepass->transf_random_seed[6];
20063 salt->salt_buf[7] = keepass->transf_random_seed[7];
20064
20065 return (PARSER_OK);
20066 }
20067
20068 int cf10_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
20069 {
20070 if ((input_len < DISPLAY_LEN_MIN_12600) || (input_len > DISPLAY_LEN_MAX_12600)) return (PARSER_GLOBAL_LENGTH);
20071
20072 u32 *digest = (u32 *) hash_buf->digest;
20073
20074 salt_t *salt = hash_buf->salt;
20075
20076 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
20077 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
20078 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
20079 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
20080 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
20081 digest[5] = hex_to_u32 ((const u8 *) &input_buf[40]);
20082 digest[6] = hex_to_u32 ((const u8 *) &input_buf[48]);
20083 digest[7] = hex_to_u32 ((const u8 *) &input_buf[56]);
20084
20085 if (input_buf[64] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
20086
20087 uint salt_len = input_len - 64 - 1;
20088
20089 char *salt_buf = input_buf + 64 + 1;
20090
20091 char *salt_buf_ptr = (char *) salt->salt_buf;
20092
20093 salt_len = parse_and_store_salt (salt_buf_ptr, salt_buf, salt_len);
20094
20095 if (salt_len == UINT_MAX) return (PARSER_SALT_LENGTH);
20096
20097 salt->salt_len = salt_len;
20098
20099 /**
20100 * we can precompute the first sha256 transform
20101 */
20102
20103 uint w[16] = { 0 };
20104
20105 w[ 0] = byte_swap_32 (salt->salt_buf[ 0]);
20106 w[ 1] = byte_swap_32 (salt->salt_buf[ 1]);
20107 w[ 2] = byte_swap_32 (salt->salt_buf[ 2]);
20108 w[ 3] = byte_swap_32 (salt->salt_buf[ 3]);
20109 w[ 4] = byte_swap_32 (salt->salt_buf[ 4]);
20110 w[ 5] = byte_swap_32 (salt->salt_buf[ 5]);
20111 w[ 6] = byte_swap_32 (salt->salt_buf[ 6]);
20112 w[ 7] = byte_swap_32 (salt->salt_buf[ 7]);
20113 w[ 8] = byte_swap_32 (salt->salt_buf[ 8]);
20114 w[ 9] = byte_swap_32 (salt->salt_buf[ 9]);
20115 w[10] = byte_swap_32 (salt->salt_buf[10]);
20116 w[11] = byte_swap_32 (salt->salt_buf[11]);
20117 w[12] = byte_swap_32 (salt->salt_buf[12]);
20118 w[13] = byte_swap_32 (salt->salt_buf[13]);
20119 w[14] = byte_swap_32 (salt->salt_buf[14]);
20120 w[15] = byte_swap_32 (salt->salt_buf[15]);
20121
20122 uint pc256[8] = { SHA256M_A, SHA256M_B, SHA256M_C, SHA256M_D, SHA256M_E, SHA256M_F, SHA256M_G, SHA256M_H };
20123
20124 sha256_64 (w, pc256);
20125
20126 salt->salt_buf_pc[0] = pc256[0];
20127 salt->salt_buf_pc[1] = pc256[1];
20128 salt->salt_buf_pc[2] = pc256[2];
20129 salt->salt_buf_pc[3] = pc256[3];
20130 salt->salt_buf_pc[4] = pc256[4];
20131 salt->salt_buf_pc[5] = pc256[5];
20132 salt->salt_buf_pc[6] = pc256[6];
20133 salt->salt_buf_pc[7] = pc256[7];
20134
20135 digest[0] -= pc256[0];
20136 digest[1] -= pc256[1];
20137 digest[2] -= pc256[2];
20138 digest[3] -= pc256[3];
20139 digest[4] -= pc256[4];
20140 digest[5] -= pc256[5];
20141 digest[6] -= pc256[6];
20142 digest[7] -= pc256[7];
20143
20144 return (PARSER_OK);
20145 }
20146
20147 int mywallet_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
20148 {
20149 if ((input_len < DISPLAY_LEN_MIN_12700) || (input_len > DISPLAY_LEN_MAX_12700)) return (PARSER_GLOBAL_LENGTH);
20150
20151 if (memcmp (SIGNATURE_MYWALLET, input_buf, 12)) return (PARSER_SIGNATURE_UNMATCHED);
20152
20153 u32 *digest = (u32 *) hash_buf->digest;
20154
20155 salt_t *salt = hash_buf->salt;
20156
20157 /**
20158 * parse line
20159 */
20160
20161 char *data_len_pos = input_buf + 1 + 10 + 1;
20162
20163 char *data_buf_pos = strchr (data_len_pos, '$');
20164
20165 if (data_buf_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20166
20167 u32 data_len_len = data_buf_pos - data_len_pos;
20168
20169 if (data_len_len < 1) return (PARSER_SALT_LENGTH);
20170 if (data_len_len > 5) return (PARSER_SALT_LENGTH);
20171
20172 data_buf_pos++;
20173
20174 u32 data_buf_len = input_len - 1 - 10 - 1 - data_len_len - 1;
20175
20176 if (data_buf_len < 64) return (PARSER_HASH_LENGTH);
20177
20178 if (data_buf_len % 16) return (PARSER_HASH_LENGTH);
20179
20180 u32 data_len = atoi (data_len_pos);
20181
20182 if ((data_len * 2) != data_buf_len) return (PARSER_HASH_LENGTH);
20183
20184 /**
20185 * salt
20186 */
20187
20188 char *salt_pos = data_buf_pos;
20189
20190 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_pos[ 0]);
20191 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_pos[ 8]);
20192 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &salt_pos[16]);
20193 salt->salt_buf[3] = hex_to_u32 ((const u8 *) &salt_pos[24]);
20194
20195 // this is actually the CT, which is also the hash later (if matched)
20196
20197 salt->salt_buf[4] = hex_to_u32 ((const u8 *) &salt_pos[32]);
20198 salt->salt_buf[5] = hex_to_u32 ((const u8 *) &salt_pos[40]);
20199 salt->salt_buf[6] = hex_to_u32 ((const u8 *) &salt_pos[48]);
20200 salt->salt_buf[7] = hex_to_u32 ((const u8 *) &salt_pos[56]);
20201
20202 salt->salt_len = 32; // note we need to fix this to 16 in kernel
20203
20204 salt->salt_iter = 10 - 1;
20205
20206 /**
20207 * digest buf
20208 */
20209
20210 digest[0] = salt->salt_buf[4];
20211 digest[1] = salt->salt_buf[5];
20212 digest[2] = salt->salt_buf[6];
20213 digest[3] = salt->salt_buf[7];
20214
20215 return (PARSER_OK);
20216 }
20217
20218 int ms_drsr_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
20219 {
20220 if ((input_len < DISPLAY_LEN_MIN_12800) || (input_len > DISPLAY_LEN_MAX_12800)) return (PARSER_GLOBAL_LENGTH);
20221
20222 if (memcmp (SIGNATURE_MS_DRSR, input_buf, 11)) return (PARSER_SIGNATURE_UNMATCHED);
20223
20224 u32 *digest = (u32 *) hash_buf->digest;
20225
20226 salt_t *salt = hash_buf->salt;
20227
20228 /**
20229 * parse line
20230 */
20231
20232 char *salt_pos = input_buf + 11 + 1;
20233
20234 char *iter_pos = strchr (salt_pos, ',');
20235
20236 if (iter_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20237
20238 u32 salt_len = iter_pos - salt_pos;
20239
20240 if (salt_len != 20) return (PARSER_SALT_LENGTH);
20241
20242 iter_pos++;
20243
20244 char *hash_pos = strchr (iter_pos, ',');
20245
20246 if (hash_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20247
20248 u32 iter_len = hash_pos - iter_pos;
20249
20250 if (iter_len > 5) return (PARSER_SALT_LENGTH);
20251
20252 hash_pos++;
20253
20254 u32 hash_len = input_len - 11 - 1 - salt_len - 1 - iter_len - 1;
20255
20256 if (hash_len != 64) return (PARSER_HASH_LENGTH);
20257
20258 /**
20259 * salt
20260 */
20261
20262 salt->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_pos[ 0]);
20263 salt->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_pos[ 8]);
20264 salt->salt_buf[2] = hex_to_u32 ((const u8 *) &salt_pos[16]) & 0xffff0000;
20265 salt->salt_buf[3] = 0x00018000;
20266
20267 salt->salt_buf[0] = byte_swap_32 (salt->salt_buf[0]);
20268 salt->salt_buf[1] = byte_swap_32 (salt->salt_buf[1]);
20269 salt->salt_buf[2] = byte_swap_32 (salt->salt_buf[2]);
20270 salt->salt_buf[3] = byte_swap_32 (salt->salt_buf[3]);
20271
20272 salt->salt_len = salt_len / 2;
20273
20274 salt->salt_iter = atoi (iter_pos) - 1;
20275
20276 /**
20277 * digest buf
20278 */
20279
20280 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
20281 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
20282 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
20283 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
20284 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
20285 digest[5] = hex_to_u32 ((const u8 *) &hash_pos[40]);
20286 digest[6] = hex_to_u32 ((const u8 *) &hash_pos[48]);
20287 digest[7] = hex_to_u32 ((const u8 *) &hash_pos[56]);
20288
20289 return (PARSER_OK);
20290 }
20291
20292 int androidfde_samsung_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
20293 {
20294 if ((input_len < DISPLAY_LEN_MIN_12900) || (input_len > DISPLAY_LEN_MAX_12900)) return (PARSER_GLOBAL_LENGTH);
20295
20296 u32 *digest = (u32 *) hash_buf->digest;
20297
20298 salt_t *salt = hash_buf->salt;
20299
20300 /**
20301 * parse line
20302 */
20303
20304 char *hash_pos = input_buf + 64;
20305 char *salt1_pos = input_buf + 128;
20306 char *salt2_pos = input_buf;
20307
20308 /**
20309 * salt
20310 */
20311
20312 salt->salt_buf[ 0] = hex_to_u32 ((const u8 *) &salt1_pos[ 0]);
20313 salt->salt_buf[ 1] = hex_to_u32 ((const u8 *) &salt1_pos[ 8]);
20314 salt->salt_buf[ 2] = hex_to_u32 ((const u8 *) &salt1_pos[16]);
20315 salt->salt_buf[ 3] = hex_to_u32 ((const u8 *) &salt1_pos[24]);
20316
20317 salt->salt_buf[ 4] = hex_to_u32 ((const u8 *) &salt2_pos[ 0]);
20318 salt->salt_buf[ 5] = hex_to_u32 ((const u8 *) &salt2_pos[ 8]);
20319 salt->salt_buf[ 6] = hex_to_u32 ((const u8 *) &salt2_pos[16]);
20320 salt->salt_buf[ 7] = hex_to_u32 ((const u8 *) &salt2_pos[24]);
20321
20322 salt->salt_buf[ 8] = hex_to_u32 ((const u8 *) &salt2_pos[32]);
20323 salt->salt_buf[ 9] = hex_to_u32 ((const u8 *) &salt2_pos[40]);
20324 salt->salt_buf[10] = hex_to_u32 ((const u8 *) &salt2_pos[48]);
20325 salt->salt_buf[11] = hex_to_u32 ((const u8 *) &salt2_pos[56]);
20326
20327 salt->salt_len = 48;
20328
20329 salt->salt_iter = ROUNDS_ANDROIDFDE_SAMSUNG - 1;
20330
20331 /**
20332 * digest buf
20333 */
20334
20335 digest[0] = hex_to_u32 ((const u8 *) &hash_pos[ 0]);
20336 digest[1] = hex_to_u32 ((const u8 *) &hash_pos[ 8]);
20337 digest[2] = hex_to_u32 ((const u8 *) &hash_pos[16]);
20338 digest[3] = hex_to_u32 ((const u8 *) &hash_pos[24]);
20339 digest[4] = hex_to_u32 ((const u8 *) &hash_pos[32]);
20340 digest[5] = hex_to_u32 ((const u8 *) &hash_pos[40]);
20341 digest[6] = hex_to_u32 ((const u8 *) &hash_pos[48]);
20342 digest[7] = hex_to_u32 ((const u8 *) &hash_pos[56]);
20343
20344 return (PARSER_OK);
20345 }
20346
20347 int zip2_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
20348 {
20349 if ((input_len < DISPLAY_LEN_MIN_13600) || (input_len > DISPLAY_LEN_MAX_13600)) return (PARSER_GLOBAL_LENGTH);
20350
20351 if (memcmp (SIGNATURE_ZIP2_START, input_buf , 6)) return (PARSER_SIGNATURE_UNMATCHED);
20352 if (memcmp (SIGNATURE_ZIP2_STOP , input_buf + input_len - 7, 7)) return (PARSER_SIGNATURE_UNMATCHED);
20353
20354 u32 *digest = (u32 *) hash_buf->digest;
20355
20356 salt_t *salt = hash_buf->salt;
20357
20358 zip2_t *zip2 = (zip2_t *) hash_buf->esalt;
20359
20360 /**
20361 * parse line
20362 */
20363
20364 char *param0_pos = input_buf + 6 + 1;
20365
20366 char *param1_pos = strchr (param0_pos, '*');
20367
20368 if (param1_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20369
20370 u32 param0_len = param1_pos - param0_pos;
20371
20372 param1_pos++;
20373
20374 char *param2_pos = strchr (param1_pos, '*');
20375
20376 if (param2_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20377
20378 u32 param1_len = param2_pos - param1_pos;
20379
20380 param2_pos++;
20381
20382 char *param3_pos = strchr (param2_pos, '*');
20383
20384 if (param3_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20385
20386 u32 param2_len = param3_pos - param2_pos;
20387
20388 param3_pos++;
20389
20390 char *param4_pos = strchr (param3_pos, '*');
20391
20392 if (param4_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20393
20394 u32 param3_len = param4_pos - param3_pos;
20395
20396 param4_pos++;
20397
20398 char *param5_pos = strchr (param4_pos, '*');
20399
20400 if (param5_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20401
20402 u32 param4_len = param5_pos - param4_pos;
20403
20404 param5_pos++;
20405
20406 char *param6_pos = strchr (param5_pos, '*');
20407
20408 if (param6_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20409
20410 u32 param5_len = param6_pos - param5_pos;
20411
20412 param6_pos++;
20413
20414 char *param7_pos = strchr (param6_pos, '*');
20415
20416 if (param7_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20417
20418 u32 param6_len = param7_pos - param6_pos;
20419
20420 param7_pos++;
20421
20422 char *param8_pos = strchr (param7_pos, '*');
20423
20424 if (param8_pos == NULL) return (PARSER_SEPARATOR_UNMATCHED);
20425
20426 u32 param7_len = param8_pos - param7_pos;
20427
20428 param8_pos++;
20429
20430 const uint type = atoi (param0_pos);
20431 const uint mode = atoi (param1_pos);
20432 const uint magic = atoi (param2_pos);
20433
20434 char *salt_buf = param3_pos;
20435
20436 uint verify_bytes; sscanf (param4_pos, "%4x*", &verify_bytes);
20437
20438 const uint compress_length = atoi (param5_pos);
20439
20440 char *data_buf = param6_pos;
20441 char *auth = param7_pos;
20442
20443 /**
20444 * verify some data
20445 */
20446
20447 if (param0_len != 1) return (PARSER_SALT_VALUE);
20448
20449 if (param1_len != 1) return (PARSER_SALT_VALUE);
20450
20451 if (param2_len != 1) return (PARSER_SALT_VALUE);
20452
20453 if ((param3_len != 16) && (param3_len != 24) && (param3_len != 32)) return (PARSER_SALT_VALUE);
20454
20455 if (param4_len >= 5) return (PARSER_SALT_VALUE);
20456
20457 if (param5_len >= 5) return (PARSER_SALT_VALUE);
20458
20459 if (param6_len >= 8192) return (PARSER_SALT_VALUE);
20460
20461 if (param6_len & 1) return (PARSER_SALT_VALUE);
20462
20463 if (param7_len != 20) return (PARSER_SALT_VALUE);
20464
20465 if (type != 0) return (PARSER_SALT_VALUE);
20466
20467 if ((mode != 1) && (mode != 2) && (mode != 3)) return (PARSER_SALT_VALUE);
20468
20469 if (magic != 0) return (PARSER_SALT_VALUE);
20470
20471 if (verify_bytes >= 0x10000) return (PARSER_SALT_VALUE);
20472
20473 /**
20474 * store data
20475 */
20476
20477 zip2->type = type;
20478 zip2->mode = mode;
20479 zip2->magic = magic;
20480
20481 if (mode == 1)
20482 {
20483 zip2->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_buf[ 0]);
20484 zip2->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_buf[ 8]);
20485 zip2->salt_buf[2] = 0;
20486 zip2->salt_buf[3] = 0;
20487
20488 zip2->salt_len = 8;
20489 }
20490 else if (mode == 2)
20491 {
20492 zip2->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_buf[ 0]);
20493 zip2->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_buf[ 8]);
20494 zip2->salt_buf[2] = hex_to_u32 ((const u8 *) &salt_buf[16]);
20495 zip2->salt_buf[3] = 0;
20496
20497 zip2->salt_len = 12;
20498 }
20499 else if (mode == 3)
20500 {
20501 zip2->salt_buf[0] = hex_to_u32 ((const u8 *) &salt_buf[ 0]);
20502 zip2->salt_buf[1] = hex_to_u32 ((const u8 *) &salt_buf[ 8]);
20503 zip2->salt_buf[2] = hex_to_u32 ((const u8 *) &salt_buf[16]);
20504 zip2->salt_buf[3] = hex_to_u32 ((const u8 *) &salt_buf[24]);
20505
20506 zip2->salt_len = 16;
20507 }
20508
20509 zip2->salt_buf[0] = byte_swap_32 (zip2->salt_buf[0]);
20510 zip2->salt_buf[1] = byte_swap_32 (zip2->salt_buf[1]);
20511 zip2->salt_buf[2] = byte_swap_32 (zip2->salt_buf[2]);
20512 zip2->salt_buf[3] = byte_swap_32 (zip2->salt_buf[3]);
20513
20514 zip2->verify_bytes = verify_bytes;
20515
20516 zip2->compress_length = compress_length;
20517
20518 char *data_buf_ptr = (char *) zip2->data_buf;
20519
20520 for (uint i = 0; i < param6_len; i += 2)
20521 {
20522 const char p0 = data_buf[i + 0];
20523 const char p1 = data_buf[i + 1];
20524
20525 *data_buf_ptr++ = hex_convert (p1) << 0
20526 | hex_convert (p0) << 4;
20527
20528 zip2->data_len++;
20529 }
20530
20531 *data_buf_ptr = 0x80;
20532
20533 char *auth_ptr = (char *) zip2->auth_buf;
20534
20535 for (uint i = 0; i < param7_len; i += 2)
20536 {
20537 const char p0 = auth[i + 0];
20538 const char p1 = auth[i + 1];
20539
20540 *auth_ptr++ = hex_convert (p1) << 0
20541 | hex_convert (p0) << 4;
20542
20543 zip2->auth_len++;
20544 }
20545
20546 /**
20547 * salt buf (fake)
20548 */
20549
20550 salt->salt_buf[0] = zip2->salt_buf[0];
20551 salt->salt_buf[1] = zip2->salt_buf[1];
20552 salt->salt_buf[2] = zip2->salt_buf[2];
20553 salt->salt_buf[3] = zip2->salt_buf[3];
20554 salt->salt_buf[4] = zip2->data_buf[0];
20555 salt->salt_buf[5] = zip2->data_buf[1];
20556 salt->salt_buf[6] = zip2->data_buf[2];
20557 salt->salt_buf[7] = zip2->data_buf[3];
20558
20559 salt->salt_len = 32;
20560
20561 salt->salt_iter = ROUNDS_ZIP2 - 1;
20562
20563 /**
20564 * digest buf (fake)
20565 */
20566
20567 digest[0] = zip2->auth_buf[0];
20568 digest[1] = zip2->auth_buf[1];
20569 digest[2] = zip2->auth_buf[2];
20570 digest[3] = zip2->auth_buf[3];
20571
20572 return (PARSER_OK);
20573 }
20574
20575 int win8phone_parse_hash (char *input_buf, uint input_len, hash_t *hash_buf)
20576 {
20577 if ((input_len < DISPLAY_LEN_MIN_13800) || (input_len > DISPLAY_LEN_MAX_13800)) return (PARSER_GLOBAL_LENGTH);
20578
20579 u32 *digest = (u32 *) hash_buf->digest;
20580
20581 salt_t *salt = hash_buf->salt;
20582
20583 win8phone_t *esalt = hash_buf->esalt;
20584
20585 digest[0] = hex_to_u32 ((const u8 *) &input_buf[ 0]);
20586 digest[1] = hex_to_u32 ((const u8 *) &input_buf[ 8]);
20587 digest[2] = hex_to_u32 ((const u8 *) &input_buf[16]);
20588 digest[3] = hex_to_u32 ((const u8 *) &input_buf[24]);
20589 digest[4] = hex_to_u32 ((const u8 *) &input_buf[32]);
20590 digest[5] = hex_to_u32 ((const u8 *) &input_buf[40]);
20591 digest[6] = hex_to_u32 ((const u8 *) &input_buf[48]);
20592 digest[7] = hex_to_u32 ((const u8 *) &input_buf[56]);
20593
20594 if (input_buf[64] != data.separator) return (PARSER_SEPARATOR_UNMATCHED);
20595
20596 char *salt_buf_ptr = input_buf + 64 + 1;
20597
20598 u32 *salt_buf = esalt->salt_buf;
20599
20600 for (int i = 0, j = 0; i < 32; i += 1, j += 8)
20601 {
20602 salt_buf[i] = hex_to_u32 ((const u8 *) &salt_buf_ptr[j]);
20603 }
20604
20605 salt->salt_buf[0] = salt_buf[0];
20606 salt->salt_buf[1] = salt_buf[1];
20607 salt->salt_buf[2] = salt_buf[2];
20608 salt->salt_buf[3] = salt_buf[3];
20609 salt->salt_buf[4] = salt_buf[4];
20610 salt->salt_buf[5] = salt_buf[5];
20611 salt->salt_buf[6] = salt_buf[6];
20612 salt->salt_buf[7] = salt_buf[7];
20613
20614 salt->salt_len = 64;
20615
20616 return (PARSER_OK);
20617 }
20618
20619 /**
20620 * parallel running threads
20621 */
20622
20623 #ifdef WIN
20624
20625 BOOL WINAPI sigHandler_default (DWORD sig)
20626 {
20627 switch (sig)
20628 {
20629 case CTRL_CLOSE_EVENT:
20630
20631 /*
20632 * special case see: https://stackoverflow.com/questions/3640633/c-setconsolectrlhandler-routine-issue/5610042#5610042
20633 * if the user interacts w/ the user-interface (GUI/cmd), we need to do the finalization job within this signal handler
20634 * function otherwise it is too late (e.g. after returning from this function)
20635 */
20636
20637 myabort ();
20638
20639 SetConsoleCtrlHandler (NULL, TRUE);
20640
20641 hc_sleep (10);
20642
20643 return TRUE;
20644
20645 case CTRL_C_EVENT:
20646 case CTRL_LOGOFF_EVENT:
20647 case CTRL_SHUTDOWN_EVENT:
20648
20649 myabort ();
20650
20651 SetConsoleCtrlHandler (NULL, TRUE);
20652
20653 return TRUE;
20654 }
20655
20656 return FALSE;
20657 }
20658
20659 BOOL WINAPI sigHandler_benchmark (DWORD sig)
20660 {
20661 switch (sig)
20662 {
20663 case CTRL_CLOSE_EVENT:
20664
20665 myabort ();
20666
20667 SetConsoleCtrlHandler (NULL, TRUE);
20668
20669 hc_sleep (10);
20670
20671 return TRUE;
20672
20673 case CTRL_C_EVENT:
20674 case CTRL_LOGOFF_EVENT:
20675 case CTRL_SHUTDOWN_EVENT:
20676
20677 myquit ();
20678
20679 SetConsoleCtrlHandler (NULL, TRUE);
20680
20681 return TRUE;
20682 }
20683
20684 return FALSE;
20685 }
20686
20687 void hc_signal (BOOL WINAPI (callback) (DWORD))
20688 {
20689 if (callback == NULL)
20690 {
20691 SetConsoleCtrlHandler ((PHANDLER_ROUTINE) callback, FALSE);
20692 }
20693 else
20694 {
20695 SetConsoleCtrlHandler ((PHANDLER_ROUTINE) callback, TRUE);
20696 }
20697 }
20698
20699 #else
20700
20701 void sigHandler_default (int sig)
20702 {
20703 myabort ();
20704
20705 signal (sig, NULL);
20706 }
20707
20708 void sigHandler_benchmark (int sig)
20709 {
20710 myquit ();
20711
20712 signal (sig, NULL);
20713 }
20714
20715 void hc_signal (void (callback) (int))
20716 {
20717 if (callback == NULL) callback = SIG_DFL;
20718
20719 signal (SIGINT, callback);
20720 signal (SIGTERM, callback);
20721 signal (SIGABRT, callback);
20722 }
20723
20724 #endif
20725
20726 void status_display ();
20727
20728 void *thread_keypress (void *p)
20729 {
20730 int benchmark = *((int *) p);
20731
20732 uint quiet = data.quiet;
20733
20734 tty_break();
20735
20736 while ((data.devices_status != STATUS_EXHAUSTED) && (data.devices_status != STATUS_CRACKED) && (data.devices_status != STATUS_ABORTED) && (data.devices_status != STATUS_QUIT))
20737 {
20738 int ch = tty_getchar();
20739
20740 if (ch == -1) break;
20741
20742 if (ch == 0) continue;
20743
20744 //https://github.com/hashcat/hashcat/issues/302
20745 //#ifdef _POSIX
20746 //if (ch != '\n')
20747 //#endif
20748
20749 hc_thread_mutex_lock (mux_display);
20750
20751 log_info ("");
20752
20753 switch (ch)
20754 {
20755 case 's':
20756 case '\r':
20757 case '\n':
20758
20759 log_info ("");
20760
20761 status_display ();
20762
20763 log_info ("");
20764
20765 if (quiet == 0) fprintf (stdout, "%s", PROMPT);
20766 if (quiet == 0) fflush (stdout);
20767
20768 break;
20769
20770 case 'b':
20771
20772 log_info ("");
20773
20774 bypass ();
20775
20776 log_info ("");
20777
20778 if (quiet == 0) fprintf (stdout, "%s", PROMPT);
20779 if (quiet == 0) fflush (stdout);
20780
20781 break;
20782
20783 case 'p':
20784
20785 log_info ("");
20786
20787 SuspendThreads ();
20788
20789 log_info ("");
20790
20791 if (quiet == 0) fprintf (stdout, "%s", PROMPT);
20792 if (quiet == 0) fflush (stdout);
20793
20794 break;
20795
20796 case 'r':
20797
20798 log_info ("");
20799
20800 ResumeThreads ();
20801
20802 log_info ("");
20803
20804 if (quiet == 0) fprintf (stdout, "%s", PROMPT);
20805 if (quiet == 0) fflush (stdout);
20806
20807 break;
20808
20809 case 'c':
20810
20811 log_info ("");
20812
20813 if (benchmark == 1) break;
20814
20815 stop_at_checkpoint ();
20816
20817 log_info ("");
20818
20819 if (quiet == 0) fprintf (stdout, "%s", PROMPT);
20820 if (quiet == 0) fflush (stdout);
20821
20822 break;
20823
20824 case 'q':
20825
20826 log_info ("");
20827
20828 if (benchmark == 1)
20829 {
20830 myquit ();
20831 }
20832 else
20833 {
20834 myabort ();
20835 }
20836
20837 break;
20838 }
20839
20840 //https://github.com/hashcat/hashcat/issues/302
20841 //#ifdef _POSIX
20842 //if (ch != '\n')
20843 //#endif
20844
20845 hc_thread_mutex_unlock (mux_display);
20846 }
20847
20848 tty_fix();
20849
20850 return (p);
20851 }
20852
20853 /**
20854 * rules common
20855 */
20856
20857 bool class_num (const u8 c)
20858 {
20859 return ((c >= '0') && (c <= '9'));
20860 }
20861
20862 bool class_lower (const u8 c)
20863 {
20864 return ((c >= 'a') && (c <= 'z'));
20865 }
20866
20867 bool class_upper (const u8 c)
20868 {
20869 return ((c >= 'A') && (c <= 'Z'));
20870 }
20871
20872 bool class_alpha (const u8 c)
20873 {
20874 return (class_lower (c) || class_upper (c));
20875 }
20876
20877 int conv_ctoi (const u8 c)
20878 {
20879 if (class_num (c))
20880 {
20881 return c - '0';
20882 }
20883 else if (class_upper (c))
20884 {
20885 return c - 'A' + 10;
20886 }
20887
20888 return -1;
20889 }
20890
20891 int conv_itoc (const u8 c)
20892 {
20893 if (c < 10)
20894 {
20895 return c + '0';
20896 }
20897 else if (c < 37)
20898 {
20899 return c + 'A' - 10;
20900 }
20901
20902 return -1;
20903 }
20904
20905 /**
20906 * device rules
20907 */
20908
20909 #define INCR_POS if (++rule_pos == rule_len) return (-1)
20910 #define SET_NAME(rule,val) (rule)->cmds[rule_cnt] = ((val) & 0xff) << 0
20911 #define SET_P0(rule,val) INCR_POS; (rule)->cmds[rule_cnt] |= ((val) & 0xff) << 8
20912 #define SET_P1(rule,val) INCR_POS; (rule)->cmds[rule_cnt] |= ((val) & 0xff) << 16
20913 #define MAX_KERNEL_RULES 255
20914 #define GET_NAME(rule) rule_cmd = (((rule)->cmds[rule_cnt] >> 0) & 0xff)
20915 #define GET_P0(rule) INCR_POS; rule_buf[rule_pos] = (((rule)->cmds[rule_cnt] >> 8) & 0xff)
20916 #define GET_P1(rule) INCR_POS; rule_buf[rule_pos] = (((rule)->cmds[rule_cnt] >> 16) & 0xff)
20917
20918 #define SET_P0_CONV(rule,val) INCR_POS; (rule)->cmds[rule_cnt] |= ((conv_ctoi (val)) & 0xff) << 8
20919 #define SET_P1_CONV(rule,val) INCR_POS; (rule)->cmds[rule_cnt] |= ((conv_ctoi (val)) & 0xff) << 16
20920 #define GET_P0_CONV(rule) INCR_POS; rule_buf[rule_pos] = conv_itoc (((rule)->cmds[rule_cnt] >> 8) & 0xff)
20921 #define GET_P1_CONV(rule) INCR_POS; rule_buf[rule_pos] = conv_itoc (((rule)->cmds[rule_cnt] >> 16) & 0xff)
20922
20923 int cpu_rule_to_kernel_rule (char *rule_buf, uint rule_len, kernel_rule_t *rule)
20924 {
20925 uint rule_pos;
20926 uint rule_cnt;
20927
20928 for (rule_pos = 0, rule_cnt = 0; rule_pos < rule_len && rule_cnt < MAX_KERNEL_RULES; rule_pos++, rule_cnt++)
20929 {
20930 switch (rule_buf[rule_pos])
20931 {
20932 case ' ':
20933 rule_cnt--;
20934 break;
20935
20936 case RULE_OP_MANGLE_NOOP:
20937 SET_NAME (rule, rule_buf[rule_pos]);
20938 break;
20939
20940 case RULE_OP_MANGLE_LREST:
20941 SET_NAME (rule, rule_buf[rule_pos]);
20942 break;
20943
20944 case RULE_OP_MANGLE_UREST:
20945 SET_NAME (rule, rule_buf[rule_pos]);
20946 break;
20947
20948 case RULE_OP_MANGLE_LREST_UFIRST:
20949 SET_NAME (rule, rule_buf[rule_pos]);
20950 break;
20951
20952 case RULE_OP_MANGLE_UREST_LFIRST:
20953 SET_NAME (rule, rule_buf[rule_pos]);
20954 break;
20955
20956 case RULE_OP_MANGLE_TREST:
20957 SET_NAME (rule, rule_buf[rule_pos]);
20958 break;
20959
20960 case RULE_OP_MANGLE_TOGGLE_AT:
20961 SET_NAME (rule, rule_buf[rule_pos]);
20962 SET_P0_CONV (rule, rule_buf[rule_pos]);
20963 break;
20964
20965 case RULE_OP_MANGLE_REVERSE:
20966 SET_NAME (rule, rule_buf[rule_pos]);
20967 break;
20968
20969 case RULE_OP_MANGLE_DUPEWORD:
20970 SET_NAME (rule, rule_buf[rule_pos]);
20971 break;
20972
20973 case RULE_OP_MANGLE_DUPEWORD_TIMES:
20974 SET_NAME (rule, rule_buf[rule_pos]);
20975 SET_P0_CONV (rule, rule_buf[rule_pos]);
20976 break;
20977
20978 case RULE_OP_MANGLE_REFLECT:
20979 SET_NAME (rule, rule_buf[rule_pos]);
20980 break;
20981
20982 case RULE_OP_MANGLE_ROTATE_LEFT:
20983 SET_NAME (rule, rule_buf[rule_pos]);
20984 break;
20985
20986 case RULE_OP_MANGLE_ROTATE_RIGHT:
20987 SET_NAME (rule, rule_buf[rule_pos]);
20988 break;
20989
20990 case RULE_OP_MANGLE_APPEND:
20991 SET_NAME (rule, rule_buf[rule_pos]);
20992 SET_P0 (rule, rule_buf[rule_pos]);
20993 break;
20994
20995 case RULE_OP_MANGLE_PREPEND:
20996 SET_NAME (rule, rule_buf[rule_pos]);
20997 SET_P0 (rule, rule_buf[rule_pos]);
20998 break;
20999
21000 case RULE_OP_MANGLE_DELETE_FIRST:
21001 SET_NAME (rule, rule_buf[rule_pos]);
21002 break;
21003
21004 case RULE_OP_MANGLE_DELETE_LAST:
21005 SET_NAME (rule, rule_buf[rule_pos]);
21006 break;
21007
21008 case RULE_OP_MANGLE_DELETE_AT:
21009 SET_NAME (rule, rule_buf[rule_pos]);
21010 SET_P0_CONV (rule, rule_buf[rule_pos]);
21011 break;
21012
21013 case RULE_OP_MANGLE_EXTRACT:
21014 SET_NAME (rule, rule_buf[rule_pos]);
21015 SET_P0_CONV (rule, rule_buf[rule_pos]);
21016 SET_P1_CONV (rule, rule_buf[rule_pos]);
21017 break;
21018
21019 case RULE_OP_MANGLE_OMIT:
21020 SET_NAME (rule, rule_buf[rule_pos]);
21021 SET_P0_CONV (rule, rule_buf[rule_pos]);
21022 SET_P1_CONV (rule, rule_buf[rule_pos]);
21023 break;
21024
21025 case RULE_OP_MANGLE_INSERT:
21026 SET_NAME (rule, rule_buf[rule_pos]);
21027 SET_P0_CONV (rule, rule_buf[rule_pos]);
21028 SET_P1 (rule, rule_buf[rule_pos]);
21029 break;
21030
21031 case RULE_OP_MANGLE_OVERSTRIKE:
21032 SET_NAME (rule, rule_buf[rule_pos]);
21033 SET_P0_CONV (rule, rule_buf[rule_pos]);
21034 SET_P1 (rule, rule_buf[rule_pos]);
21035 break;
21036
21037 case RULE_OP_MANGLE_TRUNCATE_AT:
21038 SET_NAME (rule, rule_buf[rule_pos]);
21039 SET_P0_CONV (rule, rule_buf[rule_pos]);
21040 break;
21041
21042 case RULE_OP_MANGLE_REPLACE:
21043 SET_NAME (rule, rule_buf[rule_pos]);
21044 SET_P0 (rule, rule_buf[rule_pos]);
21045 SET_P1 (rule, rule_buf[rule_pos]);
21046 break;
21047
21048 case RULE_OP_MANGLE_PURGECHAR:
21049 return (-1);
21050 break;
21051
21052 case RULE_OP_MANGLE_TOGGLECASE_REC:
21053 return (-1);
21054 break;
21055
21056 case RULE_OP_MANGLE_DUPECHAR_FIRST:
21057 SET_NAME (rule, rule_buf[rule_pos]);
21058 SET_P0_CONV (rule, rule_buf[rule_pos]);
21059 break;
21060
21061 case RULE_OP_MANGLE_DUPECHAR_LAST:
21062 SET_NAME (rule, rule_buf[rule_pos]);
21063 SET_P0_CONV (rule, rule_buf[rule_pos]);
21064 break;
21065
21066 case RULE_OP_MANGLE_DUPECHAR_ALL:
21067 SET_NAME (rule, rule_buf[rule_pos]);
21068 break;
21069
21070 case RULE_OP_MANGLE_SWITCH_FIRST:
21071 SET_NAME (rule, rule_buf[rule_pos]);
21072 break;
21073
21074 case RULE_OP_MANGLE_SWITCH_LAST:
21075 SET_NAME (rule, rule_buf[rule_pos]);
21076 break;
21077
21078 case RULE_OP_MANGLE_SWITCH_AT:
21079 SET_NAME (rule, rule_buf[rule_pos]);
21080 SET_P0_CONV (rule, rule_buf[rule_pos]);
21081 SET_P1_CONV (rule, rule_buf[rule_pos]);
21082 break;
21083
21084 case RULE_OP_MANGLE_CHR_SHIFTL:
21085 SET_NAME (rule, rule_buf[rule_pos]);
21086 SET_P0_CONV (rule, rule_buf[rule_pos]);
21087 break;
21088
21089 case RULE_OP_MANGLE_CHR_SHIFTR:
21090 SET_NAME (rule, rule_buf[rule_pos]);
21091 SET_P0_CONV (rule, rule_buf[rule_pos]);
21092 break;
21093
21094 case RULE_OP_MANGLE_CHR_INCR:
21095 SET_NAME (rule, rule_buf[rule_pos]);
21096 SET_P0_CONV (rule, rule_buf[rule_pos]);
21097 break;
21098
21099 case RULE_OP_MANGLE_CHR_DECR:
21100 SET_NAME (rule, rule_buf[rule_pos]);
21101 SET_P0_CONV (rule, rule_buf[rule_pos]);
21102 break;
21103
21104 case RULE_OP_MANGLE_REPLACE_NP1:
21105 SET_NAME (rule, rule_buf[rule_pos]);
21106 SET_P0_CONV (rule, rule_buf[rule_pos]);
21107 break;
21108
21109 case RULE_OP_MANGLE_REPLACE_NM1:
21110 SET_NAME (rule, rule_buf[rule_pos]);
21111 SET_P0_CONV (rule, rule_buf[rule_pos]);
21112 break;
21113
21114 case RULE_OP_MANGLE_DUPEBLOCK_FIRST:
21115 SET_NAME (rule, rule_buf[rule_pos]);
21116 SET_P0_CONV (rule, rule_buf[rule_pos]);
21117 break;
21118
21119 case RULE_OP_MANGLE_DUPEBLOCK_LAST:
21120 SET_NAME (rule, rule_buf[rule_pos]);
21121 SET_P0_CONV (rule, rule_buf[rule_pos]);
21122 break;
21123
21124 case RULE_OP_MANGLE_TITLE:
21125 SET_NAME (rule, rule_buf[rule_pos]);
21126 break;
21127
21128 default:
21129 return (-1);
21130 break;
21131 }
21132 }
21133
21134 if (rule_pos < rule_len) return (-1);
21135
21136 return (0);
21137 }
21138
21139 int kernel_rule_to_cpu_rule (char *rule_buf, kernel_rule_t *rule)
21140 {
21141 uint rule_cnt;
21142 uint rule_pos;
21143 uint rule_len = HCBUFSIZ - 1; // maximum possible len
21144
21145 char rule_cmd;
21146
21147 for (rule_cnt = 0, rule_pos = 0; rule_pos < rule_len && rule_cnt < MAX_KERNEL_RULES; rule_pos++, rule_cnt++)
21148 {
21149 GET_NAME (rule);
21150
21151 if (rule_cnt > 0) rule_buf[rule_pos++] = ' ';
21152
21153 switch (rule_cmd)
21154 {
21155 case RULE_OP_MANGLE_NOOP:
21156 rule_buf[rule_pos] = rule_cmd;
21157 break;
21158
21159 case RULE_OP_MANGLE_LREST:
21160 rule_buf[rule_pos] = rule_cmd;
21161 break;
21162
21163 case RULE_OP_MANGLE_UREST:
21164 rule_buf[rule_pos] = rule_cmd;
21165 break;
21166
21167 case RULE_OP_MANGLE_LREST_UFIRST:
21168 rule_buf[rule_pos] = rule_cmd;
21169 break;
21170
21171 case RULE_OP_MANGLE_UREST_LFIRST:
21172 rule_buf[rule_pos] = rule_cmd;
21173 break;
21174
21175 case RULE_OP_MANGLE_TREST:
21176 rule_buf[rule_pos] = rule_cmd;
21177 break;
21178
21179 case RULE_OP_MANGLE_TOGGLE_AT:
21180 rule_buf[rule_pos] = rule_cmd;
21181 GET_P0_CONV (rule);
21182 break;
21183
21184 case RULE_OP_MANGLE_REVERSE:
21185 rule_buf[rule_pos] = rule_cmd;
21186 break;
21187
21188 case RULE_OP_MANGLE_DUPEWORD:
21189 rule_buf[rule_pos] = rule_cmd;
21190 break;
21191
21192 case RULE_OP_MANGLE_DUPEWORD_TIMES:
21193 rule_buf[rule_pos] = rule_cmd;
21194 GET_P0_CONV (rule);
21195 break;
21196
21197 case RULE_OP_MANGLE_REFLECT:
21198 rule_buf[rule_pos] = rule_cmd;
21199 break;
21200
21201 case RULE_OP_MANGLE_ROTATE_LEFT:
21202 rule_buf[rule_pos] = rule_cmd;
21203 break;
21204
21205 case RULE_OP_MANGLE_ROTATE_RIGHT:
21206 rule_buf[rule_pos] = rule_cmd;
21207 break;
21208
21209 case RULE_OP_MANGLE_APPEND:
21210 rule_buf[rule_pos] = rule_cmd;
21211 GET_P0 (rule);
21212 break;
21213
21214 case RULE_OP_MANGLE_PREPEND:
21215 rule_buf[rule_pos] = rule_cmd;
21216 GET_P0 (rule);
21217 break;
21218
21219 case RULE_OP_MANGLE_DELETE_FIRST:
21220 rule_buf[rule_pos] = rule_cmd;
21221 break;
21222
21223 case RULE_OP_MANGLE_DELETE_LAST:
21224 rule_buf[rule_pos] = rule_cmd;
21225 break;
21226
21227 case RULE_OP_MANGLE_DELETE_AT:
21228 rule_buf[rule_pos] = rule_cmd;
21229 GET_P0_CONV (rule);
21230 break;
21231
21232 case RULE_OP_MANGLE_EXTRACT:
21233 rule_buf[rule_pos] = rule_cmd;
21234 GET_P0_CONV (rule);
21235 GET_P1_CONV (rule);
21236 break;
21237
21238 case RULE_OP_MANGLE_OMIT:
21239 rule_buf[rule_pos] = rule_cmd;
21240 GET_P0_CONV (rule);
21241 GET_P1_CONV (rule);
21242 break;
21243
21244 case RULE_OP_MANGLE_INSERT:
21245 rule_buf[rule_pos] = rule_cmd;
21246 GET_P0_CONV (rule);
21247 GET_P1 (rule);
21248 break;
21249
21250 case RULE_OP_MANGLE_OVERSTRIKE:
21251 rule_buf[rule_pos] = rule_cmd;
21252 GET_P0_CONV (rule);
21253 GET_P1 (rule);
21254 break;
21255
21256 case RULE_OP_MANGLE_TRUNCATE_AT:
21257 rule_buf[rule_pos] = rule_cmd;
21258 GET_P0_CONV (rule);
21259 break;
21260
21261 case RULE_OP_MANGLE_REPLACE:
21262 rule_buf[rule_pos] = rule_cmd;
21263 GET_P0 (rule);
21264 GET_P1 (rule);
21265 break;
21266
21267 case RULE_OP_MANGLE_PURGECHAR:
21268 return (-1);
21269 break;
21270
21271 case RULE_OP_MANGLE_TOGGLECASE_REC:
21272 return (-1);
21273 break;
21274
21275 case RULE_OP_MANGLE_DUPECHAR_FIRST:
21276 rule_buf[rule_pos] = rule_cmd;
21277 GET_P0_CONV (rule);
21278 break;
21279
21280 case RULE_OP_MANGLE_DUPECHAR_LAST:
21281 rule_buf[rule_pos] = rule_cmd;
21282 GET_P0_CONV (rule);
21283 break;
21284
21285 case RULE_OP_MANGLE_DUPECHAR_ALL:
21286 rule_buf[rule_pos] = rule_cmd;
21287 break;
21288
21289 case RULE_OP_MANGLE_SWITCH_FIRST:
21290 rule_buf[rule_pos] = rule_cmd;
21291 break;
21292
21293 case RULE_OP_MANGLE_SWITCH_LAST:
21294 rule_buf[rule_pos] = rule_cmd;
21295 break;
21296
21297 case RULE_OP_MANGLE_SWITCH_AT:
21298 rule_buf[rule_pos] = rule_cmd;
21299 GET_P0_CONV (rule);
21300 GET_P1_CONV (rule);
21301 break;
21302
21303 case RULE_OP_MANGLE_CHR_SHIFTL:
21304 rule_buf[rule_pos] = rule_cmd;
21305 GET_P0_CONV (rule);
21306 break;
21307
21308 case RULE_OP_MANGLE_CHR_SHIFTR:
21309 rule_buf[rule_pos] = rule_cmd;
21310 GET_P0_CONV (rule);
21311 break;
21312
21313 case RULE_OP_MANGLE_CHR_INCR:
21314 rule_buf[rule_pos] = rule_cmd;
21315 GET_P0_CONV (rule);
21316 break;
21317
21318 case RULE_OP_MANGLE_CHR_DECR:
21319 rule_buf[rule_pos] = rule_cmd;
21320 GET_P0_CONV (rule);
21321 break;
21322
21323 case RULE_OP_MANGLE_REPLACE_NP1:
21324 rule_buf[rule_pos] = rule_cmd;
21325 GET_P0_CONV (rule);
21326 break;
21327
21328 case RULE_OP_MANGLE_REPLACE_NM1:
21329 rule_buf[rule_pos] = rule_cmd;
21330 GET_P0_CONV (rule);
21331 break;
21332
21333 case RULE_OP_MANGLE_DUPEBLOCK_FIRST:
21334 rule_buf[rule_pos] = rule_cmd;
21335 GET_P0_CONV (rule);
21336 break;
21337
21338 case RULE_OP_MANGLE_DUPEBLOCK_LAST:
21339 rule_buf[rule_pos] = rule_cmd;
21340 GET_P0_CONV (rule);
21341 break;
21342
21343 case RULE_OP_MANGLE_TITLE:
21344 rule_buf[rule_pos] = rule_cmd;
21345 break;
21346
21347 case 0:
21348 return rule_pos - 1;
21349 break;
21350
21351 default:
21352 return (-1);
21353 break;
21354 }
21355 }
21356
21357 if (rule_cnt > 0)
21358 {
21359 return rule_pos;
21360 }
21361
21362 return (-1);
21363 }
21364
21365 /**
21366 * CPU rules : this is from hashcat sources, cpu based rules
21367 */
21368
21369 #define NEXT_RULEPOS(rp) if (++(rp) == rule_len) return (RULE_RC_SYNTAX_ERROR)
21370 #define NEXT_RPTOI(r,rp,up) if (((up) = conv_ctoi ((r)[(rp)])) == -1) return (RULE_RC_SYNTAX_ERROR)
21371
21372 #define MANGLE_TOGGLE_AT(a,p) if (class_alpha ((a)[(p)])) (a)[(p)] ^= 0x20
21373 #define MANGLE_LOWER_AT(a,p) if (class_upper ((a)[(p)])) (a)[(p)] ^= 0x20
21374 #define MANGLE_UPPER_AT(a,p) if (class_lower ((a)[(p)])) (a)[(p)] ^= 0x20
21375
21376 /* #define MANGLE_SWITCH(a,l,r) { char c = (l); arr[(r)] = arr[(l)]; arr[(l)] = c; } */
21377 /* #define MANGLE_SWITCH(a,l,r) { char c = (l); (a)[(r)] = (a)[(l)]; (a)[(l)] = c; } */
21378 #define MANGLE_SWITCH(a,l,r) { char c = (a)[(r)]; (a)[(r)] = (a)[(l)]; (a)[(l)] = c; }
21379
21380 int mangle_lrest (char arr[BLOCK_SIZE], int arr_len)
21381 {
21382 int pos;
21383
21384 for (pos = 0; pos < arr_len; pos++) MANGLE_LOWER_AT (arr, pos);
21385
21386 return (arr_len);
21387 }
21388
21389 int mangle_urest (char arr[BLOCK_SIZE], int arr_len)
21390 {
21391 int pos;
21392
21393 for (pos = 0; pos < arr_len; pos++) MANGLE_UPPER_AT (arr, pos);
21394
21395 return (arr_len);
21396 }
21397
21398 int mangle_trest (char arr[BLOCK_SIZE], int arr_len)
21399 {
21400 int pos;
21401
21402 for (pos = 0; pos < arr_len; pos++) MANGLE_TOGGLE_AT (arr, pos);
21403
21404 return (arr_len);
21405 }
21406
21407 int mangle_reverse (char arr[BLOCK_SIZE], int arr_len)
21408 {
21409 int l;
21410 int r;
21411
21412 for (l = 0; l < arr_len; l++)
21413 {
21414 r = arr_len - 1 - l;
21415
21416 if (l >= r) break;
21417
21418 MANGLE_SWITCH (arr, l, r);
21419 }
21420
21421 return (arr_len);
21422 }
21423
21424 int mangle_double (char arr[BLOCK_SIZE], int arr_len)
21425 {
21426 if ((arr_len * 2) >= BLOCK_SIZE) return (arr_len);
21427
21428 memcpy (&arr[arr_len], arr, (size_t) arr_len);
21429
21430 return (arr_len * 2);
21431 }
21432
21433 int mangle_double_times (char arr[BLOCK_SIZE], int arr_len, int times)
21434 {
21435 if (((arr_len * times) + arr_len) >= BLOCK_SIZE) return (arr_len);
21436
21437 int orig_len = arr_len;
21438
21439 int i;
21440
21441 for (i = 0; i < times; i++)
21442 {
21443 memcpy (&arr[arr_len], arr, orig_len);
21444
21445 arr_len += orig_len;
21446 }
21447
21448 return (arr_len);
21449 }
21450
21451 int mangle_reflect (char arr[BLOCK_SIZE], int arr_len)
21452 {
21453 if ((arr_len * 2) >= BLOCK_SIZE) return (arr_len);
21454
21455 mangle_double (arr, arr_len);
21456
21457 mangle_reverse (arr + arr_len, arr_len);
21458
21459 return (arr_len * 2);
21460 }
21461
21462 int mangle_rotate_left (char arr[BLOCK_SIZE], int arr_len)
21463 {
21464 int l;
21465 int r;
21466
21467 for (l = 0, r = arr_len - 1; r > 0; r--)
21468 {
21469 MANGLE_SWITCH (arr, l, r);
21470 }
21471
21472 return (arr_len);
21473 }
21474
21475 int mangle_rotate_right (char arr[BLOCK_SIZE], int arr_len)
21476 {
21477 int l;
21478 int r;
21479
21480 for (l = 0, r = arr_len - 1; l < r; l++)
21481 {
21482 MANGLE_SWITCH (arr, l, r);
21483 }
21484
21485 return (arr_len);
21486 }
21487
21488 int mangle_append (char arr[BLOCK_SIZE], int arr_len, char c)
21489 {
21490 if ((arr_len + 1) >= BLOCK_SIZE) return (arr_len);
21491
21492 arr[arr_len] = c;
21493
21494 return (arr_len + 1);
21495 }
21496
21497 int mangle_prepend (char arr[BLOCK_SIZE], int arr_len, char c)
21498 {
21499 if ((arr_len + 1) >= BLOCK_SIZE) return (arr_len);
21500
21501 int arr_pos;
21502
21503 for (arr_pos = arr_len - 1; arr_pos > -1; arr_pos--)
21504 {
21505 arr[arr_pos + 1] = arr[arr_pos];
21506 }
21507
21508 arr[0] = c;
21509
21510 return (arr_len + 1);
21511 }
21512
21513 int mangle_delete_at (char arr[BLOCK_SIZE], int arr_len, int upos)
21514 {
21515 if (upos >= arr_len) return (arr_len);
21516
21517 int arr_pos;
21518
21519 for (arr_pos = upos; arr_pos < arr_len - 1; arr_pos++)
21520 {
21521 arr[arr_pos] = arr[arr_pos + 1];
21522 }
21523
21524 return (arr_len - 1);
21525 }
21526
21527 int mangle_extract (char arr[BLOCK_SIZE], int arr_len, int upos, int ulen)
21528 {
21529 if (upos >= arr_len) return (arr_len);
21530
21531 if ((upos + ulen) > arr_len) return (arr_len);
21532
21533 int arr_pos;
21534
21535 for (arr_pos = 0; arr_pos < ulen; arr_pos++)
21536 {
21537 arr[arr_pos] = arr[upos + arr_pos];
21538 }
21539
21540 return (ulen);
21541 }
21542
21543 int mangle_omit (char arr[BLOCK_SIZE], int arr_len, int upos, int ulen)
21544 {
21545 if (upos >= arr_len) return (arr_len);
21546
21547 if ((upos + ulen) >= arr_len) return (arr_len);
21548
21549 int arr_pos;
21550
21551 for (arr_pos = upos; arr_pos < arr_len - ulen; arr_pos++)
21552 {
21553 arr[arr_pos] = arr[arr_pos + ulen];
21554 }
21555
21556 return (arr_len - ulen);
21557 }
21558
21559 int mangle_insert (char arr[BLOCK_SIZE], int arr_len, int upos, char c)
21560 {
21561 if (upos >= arr_len) return (arr_len);
21562
21563 if ((arr_len + 1) >= BLOCK_SIZE) return (arr_len);
21564
21565 int arr_pos;
21566
21567 for (arr_pos = arr_len - 1; arr_pos > upos - 1; arr_pos--)
21568 {
21569 arr[arr_pos + 1] = arr[arr_pos];
21570 }
21571
21572 arr[upos] = c;
21573
21574 return (arr_len + 1);
21575 }
21576
21577 int mangle_insert_multi (char arr[BLOCK_SIZE], int arr_len, int arr_pos, char arr2[BLOCK_SIZE], int arr2_len, int arr2_pos, int arr2_cpy)
21578 {
21579 if ((arr_len + arr2_cpy) > BLOCK_SIZE) return (RULE_RC_REJECT_ERROR);
21580
21581 if (arr_pos > arr_len) return (RULE_RC_REJECT_ERROR);
21582
21583 if (arr2_pos > arr2_len) return (RULE_RC_REJECT_ERROR);
21584
21585 if ((arr2_pos + arr2_cpy) > arr2_len) return (RULE_RC_REJECT_ERROR);
21586
21587 if (arr2_cpy < 1) return (RULE_RC_SYNTAX_ERROR);
21588
21589 memcpy (arr2, arr2 + arr2_pos, arr2_len - arr2_pos);
21590
21591 memcpy (arr2 + arr2_cpy, arr + arr_pos, arr_len - arr_pos);
21592
21593 memcpy (arr + arr_pos, arr2, arr_len - arr_pos + arr2_cpy);
21594
21595 return (arr_len + arr2_cpy);
21596 }
21597
21598 int mangle_overstrike (char arr[BLOCK_SIZE], int arr_len, int upos, char c)
21599 {
21600 if (upos >= arr_len) return (arr_len);
21601
21602 arr[upos] = c;
21603
21604 return (arr_len);
21605 }
21606
21607 int mangle_truncate_at (char arr[BLOCK_SIZE], int arr_len, int upos)
21608 {
21609 if (upos >= arr_len) return (arr_len);
21610
21611 memset (arr + upos, 0, arr_len - upos);
21612
21613 return (upos);
21614 }
21615
21616 int mangle_replace (char arr[BLOCK_SIZE], int arr_len, char oldc, char newc)
21617 {
21618 int arr_pos;
21619
21620 for (arr_pos = 0; arr_pos < arr_len; arr_pos++)
21621 {
21622 if (arr[arr_pos] != oldc) continue;
21623
21624 arr[arr_pos] = newc;
21625 }
21626
21627 return (arr_len);
21628 }
21629
21630 int mangle_purgechar (char arr[BLOCK_SIZE], int arr_len, char c)
21631 {
21632 int arr_pos;
21633
21634 int ret_len;
21635
21636 for (ret_len = 0, arr_pos = 0; arr_pos < arr_len; arr_pos++)
21637 {
21638 if (arr[arr_pos] == c) continue;
21639
21640 arr[ret_len] = arr[arr_pos];
21641
21642 ret_len++;
21643 }
21644
21645 return (ret_len);
21646 }
21647
21648 int mangle_dupeblock_prepend (char arr[BLOCK_SIZE], int arr_len, int ulen)
21649 {
21650 if (ulen > arr_len) return (arr_len);
21651
21652 if ((arr_len + ulen) >= BLOCK_SIZE) return (arr_len);
21653
21654 char cs[100] = { 0 };
21655
21656 memcpy (cs, arr, ulen);
21657
21658 int i;
21659
21660 for (i = 0; i < ulen; i++)
21661 {
21662 char c = cs[i];
21663
21664 arr_len = mangle_insert (arr, arr_len, i, c);
21665 }
21666
21667 return (arr_len);
21668 }
21669
21670 int mangle_dupeblock_append (char arr[BLOCK_SIZE], int arr_len, int ulen)
21671 {
21672 if (ulen > arr_len) return (arr_len);
21673
21674 if ((arr_len + ulen) >= BLOCK_SIZE) return (arr_len);
21675
21676 int upos = arr_len - ulen;
21677
21678 int i;
21679
21680 for (i = 0; i < ulen; i++)
21681 {
21682 char c = arr[upos + i];
21683
21684 arr_len = mangle_append (arr, arr_len, c);
21685 }
21686
21687 return (arr_len);
21688 }
21689
21690 int mangle_dupechar_at (char arr[BLOCK_SIZE], int arr_len, int upos, int ulen)
21691 {
21692 if ( arr_len == 0) return (arr_len);
21693 if ((arr_len + ulen) >= BLOCK_SIZE) return (arr_len);
21694
21695 char c = arr[upos];
21696
21697 int i;
21698
21699 for (i = 0; i < ulen; i++)
21700 {
21701 arr_len = mangle_insert (arr, arr_len, upos, c);
21702 }
21703
21704 return (arr_len);
21705 }
21706
21707 int mangle_dupechar (char arr[BLOCK_SIZE], int arr_len)
21708 {
21709 if ( arr_len == 0) return (arr_len);
21710 if ((arr_len + arr_len) >= BLOCK_SIZE) return (arr_len);
21711
21712 int arr_pos;
21713
21714 for (arr_pos = arr_len - 1; arr_pos > -1; arr_pos--)
21715 {
21716 int new_pos = arr_pos * 2;
21717
21718 arr[new_pos] = arr[arr_pos];
21719
21720 arr[new_pos + 1] = arr[arr_pos];
21721 }
21722
21723 return (arr_len * 2);
21724 }
21725
21726 int mangle_switch_at_check (char arr[BLOCK_SIZE], int arr_len, int upos, int upos2)
21727 {
21728 if (upos >= arr_len) return (arr_len);
21729 if (upos2 >= arr_len) return (arr_len);
21730
21731 MANGLE_SWITCH (arr, upos, upos2);
21732
21733 return (arr_len);
21734 }
21735
21736 int mangle_switch_at (char arr[BLOCK_SIZE], int arr_len, int upos, int upos2)
21737 {
21738 MANGLE_SWITCH (arr, upos, upos2);
21739
21740 return (arr_len);
21741 }
21742
21743 int mangle_chr_shiftl (char arr[BLOCK_SIZE], int arr_len, int upos)
21744 {
21745 if (upos >= arr_len) return (arr_len);
21746
21747 arr[upos] <<= 1;
21748
21749 return (arr_len);
21750 }
21751
21752 int mangle_chr_shiftr (char arr[BLOCK_SIZE], int arr_len, int upos)
21753 {
21754 if (upos >= arr_len) return (arr_len);
21755
21756 arr[upos] >>= 1;
21757
21758 return (arr_len);
21759 }
21760
21761 int mangle_chr_incr (char arr[BLOCK_SIZE], int arr_len, int upos)
21762 {
21763 if (upos >= arr_len) return (arr_len);
21764
21765 arr[upos] += 1;
21766
21767 return (arr_len);
21768 }
21769
21770 int mangle_chr_decr (char arr[BLOCK_SIZE], int arr_len, int upos)
21771 {
21772 if (upos >= arr_len) return (arr_len);
21773
21774 arr[upos] -= 1;
21775
21776 return (arr_len);
21777 }
21778
21779 int mangle_title (char arr[BLOCK_SIZE], int arr_len)
21780 {
21781 int upper_next = 1;
21782
21783 int pos;
21784
21785 for (pos = 0; pos < arr_len; pos++)
21786 {
21787 if (arr[pos] == ' ')
21788 {
21789 upper_next = 1;
21790
21791 continue;
21792 }
21793
21794 if (upper_next)
21795 {
21796 upper_next = 0;
21797
21798 MANGLE_UPPER_AT (arr, pos);
21799 }
21800 else
21801 {
21802 MANGLE_LOWER_AT (arr, pos);
21803 }
21804 }
21805
21806 return (arr_len);
21807 }
21808
21809 int generate_random_rule (char rule_buf[RP_RULE_BUFSIZ], u32 rp_gen_func_min, u32 rp_gen_func_max)
21810 {
21811 u32 rp_gen_num = get_random_num (rp_gen_func_min, rp_gen_func_max);
21812
21813 u32 j;
21814
21815 u32 rule_pos = 0;
21816
21817 for (j = 0; j < rp_gen_num; j++)
21818 {
21819 u32 r = 0;
21820 u32 p1 = 0;
21821 u32 p2 = 0;
21822 u32 p3 = 0;
21823
21824 switch ((char) get_random_num (0, 9))
21825 {
21826 case 0:
21827 r = get_random_num (0, sizeof (grp_op_nop));
21828 rule_buf[rule_pos++] = grp_op_nop[r];
21829 break;
21830
21831 case 1:
21832 r = get_random_num (0, sizeof (grp_op_pos_p0));
21833 rule_buf[rule_pos++] = grp_op_pos_p0[r];
21834 p1 = get_random_num (0, sizeof (grp_pos));
21835 rule_buf[rule_pos++] = grp_pos[p1];
21836 break;
21837
21838 case 2:
21839 r = get_random_num (0, sizeof (grp_op_pos_p1));
21840 rule_buf[rule_pos++] = grp_op_pos_p1[r];
21841 p1 = get_random_num (1, 6);
21842 rule_buf[rule_pos++] = grp_pos[p1];
21843 break;
21844
21845 case 3:
21846 r = get_random_num (0, sizeof (grp_op_chr));
21847 rule_buf[rule_pos++] = grp_op_chr[r];
21848 p1 = get_random_num (0x20, 0x7e);
21849 rule_buf[rule_pos++] = (char) p1;
21850 break;
21851
21852 case 4:
21853 r = get_random_num (0, sizeof (grp_op_chr_chr));
21854 rule_buf[rule_pos++] = grp_op_chr_chr[r];
21855 p1 = get_random_num (0x20, 0x7e);
21856 rule_buf[rule_pos++] = (char) p1;
21857 p2 = get_random_num (0x20, 0x7e);
21858 while (p1 == p2)
21859 p2 = get_random_num (0x20, 0x7e);
21860 rule_buf[rule_pos++] = (char) p2;
21861 break;
21862
21863 case 5:
21864 r = get_random_num (0, sizeof (grp_op_pos_chr));
21865 rule_buf[rule_pos++] = grp_op_pos_chr[r];
21866 p1 = get_random_num (0, sizeof (grp_pos));
21867 rule_buf[rule_pos++] = grp_pos[p1];
21868 p2 = get_random_num (0x20, 0x7e);
21869 rule_buf[rule_pos++] = (char) p2;
21870 break;
21871
21872 case 6:
21873 r = get_random_num (0, sizeof (grp_op_pos_pos0));
21874 rule_buf[rule_pos++] = grp_op_pos_pos0[r];
21875 p1 = get_random_num (0, sizeof (grp_pos));
21876 rule_buf[rule_pos++] = grp_pos[p1];
21877 p2 = get_random_num (0, sizeof (grp_pos));
21878 while (p1 == p2)
21879 p2 = get_random_num (0, sizeof (grp_pos));
21880 rule_buf[rule_pos++] = grp_pos[p2];
21881 break;
21882
21883 case 7:
21884 r = get_random_num (0, sizeof (grp_op_pos_pos1));
21885 rule_buf[rule_pos++] = grp_op_pos_pos1[r];
21886 p1 = get_random_num (0, sizeof (grp_pos));
21887 rule_buf[rule_pos++] = grp_pos[p1];
21888 p2 = get_random_num (1, sizeof (grp_pos));
21889 while (p1 == p2)
21890 p2 = get_random_num (1, sizeof (grp_pos));
21891 rule_buf[rule_pos++] = grp_pos[p2];
21892 break;
21893
21894 case 8:
21895 r = get_random_num (0, sizeof (grp_op_pos1_pos2_pos3));
21896 rule_buf[rule_pos++] = grp_op_pos1_pos2_pos3[r];
21897 p1 = get_random_num (0, sizeof (grp_pos));
21898 rule_buf[rule_pos++] = grp_pos[p1];
21899 p2 = get_random_num (1, sizeof (grp_pos));
21900 rule_buf[rule_pos++] = grp_pos[p1];
21901 p3 = get_random_num (0, sizeof (grp_pos));
21902 rule_buf[rule_pos++] = grp_pos[p3];
21903 break;
21904 }
21905 }
21906
21907 return (rule_pos);
21908 }
21909
21910 int _old_apply_rule (char *rule, int rule_len, char in[BLOCK_SIZE], int in_len, char out[BLOCK_SIZE])
21911 {
21912 char mem[BLOCK_SIZE] = { 0 };
21913
21914 if (in == NULL) return (RULE_RC_REJECT_ERROR);
21915
21916 if (out == NULL) return (RULE_RC_REJECT_ERROR);
21917
21918 if (in_len < 1 || in_len > BLOCK_SIZE) return (RULE_RC_REJECT_ERROR);
21919
21920 if (rule_len < 1) return (RULE_RC_REJECT_ERROR);
21921
21922 int out_len = in_len;
21923 int mem_len = in_len;
21924
21925 memcpy (out, in, out_len);
21926
21927 int rule_pos;
21928
21929 for (rule_pos = 0; rule_pos < rule_len; rule_pos++)
21930 {
21931 int upos, upos2;
21932 int ulen;
21933
21934 switch (rule[rule_pos])
21935 {
21936 case ' ':
21937 break;
21938
21939 case RULE_OP_MANGLE_NOOP:
21940 break;
21941
21942 case RULE_OP_MANGLE_LREST:
21943 out_len = mangle_lrest (out, out_len);
21944 break;
21945
21946 case RULE_OP_MANGLE_UREST:
21947 out_len = mangle_urest (out, out_len);
21948 break;
21949
21950 case RULE_OP_MANGLE_LREST_UFIRST:
21951 out_len = mangle_lrest (out, out_len);
21952 if (out_len) MANGLE_UPPER_AT (out, 0);
21953 break;
21954
21955 case RULE_OP_MANGLE_UREST_LFIRST:
21956 out_len = mangle_urest (out, out_len);
21957 if (out_len) MANGLE_LOWER_AT (out, 0);
21958 break;
21959
21960 case RULE_OP_MANGLE_TREST:
21961 out_len = mangle_trest (out, out_len);
21962 break;
21963
21964 case RULE_OP_MANGLE_TOGGLE_AT:
21965 NEXT_RULEPOS (rule_pos);
21966 NEXT_RPTOI (rule, rule_pos, upos);
21967 if (upos < out_len) MANGLE_TOGGLE_AT (out, upos);
21968 break;
21969
21970 case RULE_OP_MANGLE_REVERSE:
21971 out_len = mangle_reverse (out, out_len);
21972 break;
21973
21974 case RULE_OP_MANGLE_DUPEWORD:
21975 out_len = mangle_double (out, out_len);
21976 break;
21977
21978 case RULE_OP_MANGLE_DUPEWORD_TIMES:
21979 NEXT_RULEPOS (rule_pos);
21980 NEXT_RPTOI (rule, rule_pos, ulen);
21981 out_len = mangle_double_times (out, out_len, ulen);
21982 break;
21983
21984 case RULE_OP_MANGLE_REFLECT:
21985 out_len = mangle_reflect (out, out_len);
21986 break;
21987
21988 case RULE_OP_MANGLE_ROTATE_LEFT:
21989 mangle_rotate_left (out, out_len);
21990 break;
21991
21992 case RULE_OP_MANGLE_ROTATE_RIGHT:
21993 mangle_rotate_right (out, out_len);
21994 break;
21995
21996 case RULE_OP_MANGLE_APPEND:
21997 NEXT_RULEPOS (rule_pos);
21998 out_len = mangle_append (out, out_len, rule[rule_pos]);
21999 break;
22000
22001 case RULE_OP_MANGLE_PREPEND:
22002 NEXT_RULEPOS (rule_pos);
22003 out_len = mangle_prepend (out, out_len, rule[rule_pos]);
22004 break;
22005
22006 case RULE_OP_MANGLE_DELETE_FIRST:
22007 out_len = mangle_delete_at (out, out_len, 0);
22008 break;
22009
22010 case RULE_OP_MANGLE_DELETE_LAST:
22011 out_len = mangle_delete_at (out, out_len, (out_len) ? out_len - 1 : 0);
22012 break;
22013
22014 case RULE_OP_MANGLE_DELETE_AT:
22015 NEXT_RULEPOS (rule_pos);
22016 NEXT_RPTOI (rule, rule_pos, upos);
22017 out_len = mangle_delete_at (out, out_len, upos);
22018 break;
22019
22020 case RULE_OP_MANGLE_EXTRACT:
22021 NEXT_RULEPOS (rule_pos);
22022 NEXT_RPTOI (rule, rule_pos, upos);
22023 NEXT_RULEPOS (rule_pos);
22024 NEXT_RPTOI (rule, rule_pos, ulen);
22025 out_len = mangle_extract (out, out_len, upos, ulen);
22026 break;
22027
22028 case RULE_OP_MANGLE_OMIT:
22029 NEXT_RULEPOS (rule_pos);
22030 NEXT_RPTOI (rule, rule_pos, upos);
22031 NEXT_RULEPOS (rule_pos);
22032 NEXT_RPTOI (rule, rule_pos, ulen);
22033 out_len = mangle_omit (out, out_len, upos, ulen);
22034 break;
22035
22036 case RULE_OP_MANGLE_INSERT:
22037 NEXT_RULEPOS (rule_pos);
22038 NEXT_RPTOI (rule, rule_pos, upos);
22039 NEXT_RULEPOS (rule_pos);
22040 out_len = mangle_insert (out, out_len, upos, rule[rule_pos]);
22041 break;
22042
22043 case RULE_OP_MANGLE_OVERSTRIKE:
22044 NEXT_RULEPOS (rule_pos);
22045 NEXT_RPTOI (rule, rule_pos, upos);
22046 NEXT_RULEPOS (rule_pos);
22047 out_len = mangle_overstrike (out, out_len, upos, rule[rule_pos]);
22048 break;
22049
22050 case RULE_OP_MANGLE_TRUNCATE_AT:
22051 NEXT_RULEPOS (rule_pos);
22052 NEXT_RPTOI (rule, rule_pos, upos);
22053 out_len = mangle_truncate_at (out, out_len, upos);
22054 break;
22055
22056 case RULE_OP_MANGLE_REPLACE:
22057 NEXT_RULEPOS (rule_pos);
22058 NEXT_RULEPOS (rule_pos);
22059 out_len = mangle_replace (out, out_len, rule[rule_pos - 1], rule[rule_pos]);
22060 break;
22061
22062 case RULE_OP_MANGLE_PURGECHAR:
22063 NEXT_RULEPOS (rule_pos);
22064 out_len = mangle_purgechar (out, out_len, rule[rule_pos]);
22065 break;
22066
22067 case RULE_OP_MANGLE_TOGGLECASE_REC:
22068 /* todo */
22069 break;
22070
22071 case RULE_OP_MANGLE_DUPECHAR_FIRST:
22072 NEXT_RULEPOS (rule_pos);
22073 NEXT_RPTOI (rule, rule_pos, ulen);
22074 out_len = mangle_dupechar_at (out, out_len, 0, ulen);
22075 break;
22076
22077 case RULE_OP_MANGLE_DUPECHAR_LAST:
22078 NEXT_RULEPOS (rule_pos);
22079 NEXT_RPTOI (rule, rule_pos, ulen);
22080 out_len = mangle_dupechar_at (out, out_len, out_len - 1, ulen);
22081 break;
22082
22083 case RULE_OP_MANGLE_DUPECHAR_ALL:
22084 out_len = mangle_dupechar (out, out_len);
22085 break;
22086
22087 case RULE_OP_MANGLE_DUPEBLOCK_FIRST:
22088 NEXT_RULEPOS (rule_pos);
22089 NEXT_RPTOI (rule, rule_pos, ulen);
22090 out_len = mangle_dupeblock_prepend (out, out_len, ulen);
22091 break;
22092
22093 case RULE_OP_MANGLE_DUPEBLOCK_LAST:
22094 NEXT_RULEPOS (rule_pos);
22095 NEXT_RPTOI (rule, rule_pos, ulen);
22096 out_len = mangle_dupeblock_append (out, out_len, ulen);
22097 break;
22098
22099 case RULE_OP_MANGLE_SWITCH_FIRST:
22100 if (out_len >= 2) mangle_switch_at (out, out_len, 0, 1);
22101 break;
22102
22103 case RULE_OP_MANGLE_SWITCH_LAST:
22104 if (out_len >= 2) mangle_switch_at (out, out_len, out_len - 1, out_len - 2);
22105 break;
22106
22107 case RULE_OP_MANGLE_SWITCH_AT:
22108 NEXT_RULEPOS (rule_pos);
22109 NEXT_RPTOI (rule, rule_pos, upos);
22110 NEXT_RULEPOS (rule_pos);
22111 NEXT_RPTOI (rule, rule_pos, upos2);
22112 out_len = mangle_switch_at_check (out, out_len, upos, upos2);
22113 break;
22114
22115 case RULE_OP_MANGLE_CHR_SHIFTL:
22116 NEXT_RULEPOS (rule_pos);
22117 NEXT_RPTOI (rule, rule_pos, upos);
22118 mangle_chr_shiftl (out, out_len, upos);
22119 break;
22120
22121 case RULE_OP_MANGLE_CHR_SHIFTR:
22122 NEXT_RULEPOS (rule_pos);
22123 NEXT_RPTOI (rule, rule_pos, upos);
22124 mangle_chr_shiftr (out, out_len, upos);
22125 break;
22126
22127 case RULE_OP_MANGLE_CHR_INCR:
22128 NEXT_RULEPOS (rule_pos);
22129 NEXT_RPTOI (rule, rule_pos, upos);
22130 mangle_chr_incr (out, out_len, upos);
22131 break;
22132
22133 case RULE_OP_MANGLE_CHR_DECR:
22134 NEXT_RULEPOS (rule_pos);
22135 NEXT_RPTOI (rule, rule_pos, upos);
22136 mangle_chr_decr (out, out_len, upos);
22137 break;
22138
22139 case RULE_OP_MANGLE_REPLACE_NP1:
22140 NEXT_RULEPOS (rule_pos);
22141 NEXT_RPTOI (rule, rule_pos, upos);
22142 if ((upos >= 0) && ((upos + 1) < out_len)) mangle_overstrike (out, out_len, upos, out[upos + 1]);
22143 break;
22144
22145 case RULE_OP_MANGLE_REPLACE_NM1:
22146 NEXT_RULEPOS (rule_pos);
22147 NEXT_RPTOI (rule, rule_pos, upos);
22148 if ((upos >= 1) && ((upos + 0) < out_len)) mangle_overstrike (out, out_len, upos, out[upos - 1]);
22149 break;
22150
22151 case RULE_OP_MANGLE_TITLE:
22152 out_len = mangle_title (out, out_len);
22153 break;
22154
22155 case RULE_OP_MANGLE_EXTRACT_MEMORY:
22156 if (mem_len < 1) return (RULE_RC_REJECT_ERROR);
22157 NEXT_RULEPOS (rule_pos);
22158 NEXT_RPTOI (rule, rule_pos, upos);
22159 NEXT_RULEPOS (rule_pos);
22160 NEXT_RPTOI (rule, rule_pos, ulen);
22161 NEXT_RULEPOS (rule_pos);
22162 NEXT_RPTOI (rule, rule_pos, upos2);
22163 if ((out_len = mangle_insert_multi (out, out_len, upos2, mem, mem_len, upos, ulen)) < 1) return (out_len);
22164 break;
22165
22166 case RULE_OP_MANGLE_APPEND_MEMORY:
22167 if (mem_len < 1) return (RULE_RC_REJECT_ERROR);
22168 if ((out_len + mem_len) > BLOCK_SIZE) return (RULE_RC_REJECT_ERROR);
22169 memcpy (out + out_len, mem, mem_len);
22170 out_len += mem_len;
22171 break;
22172
22173 case RULE_OP_MANGLE_PREPEND_MEMORY:
22174 if (mem_len < 1) return (RULE_RC_REJECT_ERROR);
22175 if ((mem_len + out_len) > BLOCK_SIZE) return (RULE_RC_REJECT_ERROR);
22176 memcpy (mem + mem_len, out, out_len);
22177 out_len += mem_len;
22178 memcpy (out, mem, out_len);
22179 break;
22180
22181 case RULE_OP_MEMORIZE_WORD:
22182 memcpy (mem, out, out_len);
22183 mem_len = out_len;
22184 break;
22185
22186 case RULE_OP_REJECT_LESS:
22187 NEXT_RULEPOS (rule_pos);
22188 NEXT_RPTOI (rule, rule_pos, upos);
22189 if (out_len > upos) return (RULE_RC_REJECT_ERROR);
22190 break;
22191
22192 case RULE_OP_REJECT_GREATER:
22193 NEXT_RULEPOS (rule_pos);
22194 NEXT_RPTOI (rule, rule_pos, upos);
22195 if (out_len < upos) return (RULE_RC_REJECT_ERROR);
22196 break;
22197
22198 case RULE_OP_REJECT_CONTAIN:
22199 NEXT_RULEPOS (rule_pos);
22200 if (strchr (out, rule[rule_pos]) != NULL) return (RULE_RC_REJECT_ERROR);
22201 break;
22202
22203 case RULE_OP_REJECT_NOT_CONTAIN:
22204 NEXT_RULEPOS (rule_pos);
22205 if (strchr (out, rule[rule_pos]) == NULL) return (RULE_RC_REJECT_ERROR);
22206 break;
22207
22208 case RULE_OP_REJECT_EQUAL_FIRST:
22209 NEXT_RULEPOS (rule_pos);
22210 if (out[0] != rule[rule_pos]) return (RULE_RC_REJECT_ERROR);
22211 break;
22212
22213 case RULE_OP_REJECT_EQUAL_LAST:
22214 NEXT_RULEPOS (rule_pos);
22215 if (out[out_len - 1] != rule[rule_pos]) return (RULE_RC_REJECT_ERROR);
22216 break;
22217
22218 case RULE_OP_REJECT_EQUAL_AT:
22219 NEXT_RULEPOS (rule_pos);
22220 NEXT_RPTOI (rule, rule_pos, upos);
22221 if ((upos + 1) > out_len) return (RULE_RC_REJECT_ERROR);
22222 NEXT_RULEPOS (rule_pos);
22223 if (out[upos] != rule[rule_pos]) return (RULE_RC_REJECT_ERROR);
22224 break;
22225
22226 case RULE_OP_REJECT_CONTAINS:
22227 NEXT_RULEPOS (rule_pos);
22228 NEXT_RPTOI (rule, rule_pos, upos);
22229 if ((upos + 1) > out_len) return (RULE_RC_REJECT_ERROR);
22230 NEXT_RULEPOS (rule_pos);
22231 int c; int cnt; for (c = 0, cnt = 0; c < out_len; c++) if (out[c] == rule[rule_pos]) cnt++;
22232 if (cnt < upos) return (RULE_RC_REJECT_ERROR);
22233 break;
22234
22235 case RULE_OP_REJECT_MEMORY:
22236 if ((out_len == mem_len) && (memcmp (out, mem, out_len) == 0)) return (RULE_RC_REJECT_ERROR);
22237 break;
22238
22239 default:
22240 return (RULE_RC_SYNTAX_ERROR);
22241 break;
22242 }
22243 }
22244
22245 memset (out + out_len, 0, BLOCK_SIZE - out_len);
22246
22247 return (out_len);
22248 }