moduli.c revision 1.2 1 1.1 christos /* $NetBSD: moduli.c,v 1.2 2009/06/07 22:38:46 christos Exp $ */
2 1.1 christos /* $OpenBSD: moduli.c,v 1.21 2008/06/26 09:19:40 djm Exp $ */
3 1.1 christos /*
4 1.1 christos * Copyright 1994 Phil Karn <karn (at) qualcomm.com>
5 1.1 christos * Copyright 1996-1998, 2003 William Allen Simpson <wsimpson (at) greendragon.com>
6 1.1 christos * Copyright 2000 Niels Provos <provos (at) citi.umich.edu>
7 1.1 christos * All rights reserved.
8 1.1 christos *
9 1.1 christos * Redistribution and use in source and binary forms, with or without
10 1.1 christos * modification, are permitted provided that the following conditions
11 1.1 christos * are met:
12 1.1 christos * 1. Redistributions of source code must retain the above copyright
13 1.1 christos * notice, this list of conditions and the following disclaimer.
14 1.1 christos * 2. Redistributions in binary form must reproduce the above copyright
15 1.1 christos * notice, this list of conditions and the following disclaimer in the
16 1.1 christos * documentation and/or other materials provided with the distribution.
17 1.1 christos *
18 1.1 christos * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
19 1.1 christos * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
20 1.1 christos * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
21 1.1 christos * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
22 1.1 christos * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
23 1.1 christos * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
24 1.1 christos * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
25 1.1 christos * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
26 1.1 christos * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
27 1.1 christos * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
28 1.1 christos */
29 1.1 christos
30 1.1 christos /*
31 1.1 christos * Two-step process to generate safe primes for DHGEX
32 1.1 christos *
33 1.1 christos * Sieve candidates for "safe" primes,
34 1.1 christos * suitable for use as Diffie-Hellman moduli;
35 1.1 christos * that is, where q = (p-1)/2 is also prime.
36 1.1 christos *
37 1.1 christos * First step: generate candidate primes (memory intensive)
38 1.1 christos * Second step: test primes' safety (processor intensive)
39 1.1 christos */
40 1.2 christos #include "includes.h"
41 1.2 christos __RCSID("$NetBSD: moduli.c,v 1.2 2009/06/07 22:38:46 christos Exp $");
42 1.1 christos
43 1.1 christos #include <sys/types.h>
44 1.1 christos
45 1.1 christos #include <openssl/bn.h>
46 1.1 christos #include <openssl/dh.h>
47 1.1 christos
48 1.1 christos #include <stdio.h>
49 1.1 christos #include <stdlib.h>
50 1.1 christos #include <string.h>
51 1.1 christos #include <stdarg.h>
52 1.1 christos #include <time.h>
53 1.1 christos
54 1.1 christos #include "xmalloc.h"
55 1.1 christos #include "dh.h"
56 1.1 christos #include "log.h"
57 1.1 christos
58 1.1 christos /*
59 1.1 christos * File output defines
60 1.1 christos */
61 1.1 christos
62 1.1 christos /* need line long enough for largest moduli plus headers */
63 1.1 christos #define QLINESIZE (100+8192)
64 1.1 christos
65 1.1 christos /*
66 1.1 christos * Size: decimal.
67 1.1 christos * Specifies the number of the most significant bit (0 to M).
68 1.1 christos * WARNING: internally, usually 1 to N.
69 1.1 christos */
70 1.1 christos #define QSIZE_MINIMUM (511)
71 1.1 christos
72 1.1 christos /*
73 1.1 christos * Prime sieving defines
74 1.1 christos */
75 1.1 christos
76 1.1 christos /* Constant: assuming 8 bit bytes and 32 bit words */
77 1.1 christos #define SHIFT_BIT (3)
78 1.1 christos #define SHIFT_BYTE (2)
79 1.1 christos #define SHIFT_WORD (SHIFT_BIT+SHIFT_BYTE)
80 1.1 christos #define SHIFT_MEGABYTE (20)
81 1.1 christos #define SHIFT_MEGAWORD (SHIFT_MEGABYTE-SHIFT_BYTE)
82 1.1 christos
83 1.1 christos /*
84 1.1 christos * Using virtual memory can cause thrashing. This should be the largest
85 1.1 christos * number that is supported without a large amount of disk activity --
86 1.1 christos * that would increase the run time from hours to days or weeks!
87 1.1 christos */
88 1.1 christos #define LARGE_MINIMUM (8UL) /* megabytes */
89 1.1 christos
90 1.1 christos /*
91 1.1 christos * Do not increase this number beyond the unsigned integer bit size.
92 1.1 christos * Due to a multiple of 4, it must be LESS than 128 (yielding 2**30 bits).
93 1.1 christos */
94 1.1 christos #define LARGE_MAXIMUM (127UL) /* megabytes */
95 1.1 christos
96 1.1 christos /*
97 1.1 christos * Constant: when used with 32-bit integers, the largest sieve prime
98 1.1 christos * has to be less than 2**32.
99 1.1 christos */
100 1.1 christos #define SMALL_MAXIMUM (0xffffffffUL)
101 1.1 christos
102 1.1 christos /* Constant: can sieve all primes less than 2**32, as 65537**2 > 2**32-1. */
103 1.1 christos #define TINY_NUMBER (1UL<<16)
104 1.1 christos
105 1.1 christos /* Ensure enough bit space for testing 2*q. */
106 1.1 christos #define TEST_MAXIMUM (1UL<<16)
107 1.1 christos #define TEST_MINIMUM (QSIZE_MINIMUM + 1)
108 1.1 christos /* real TEST_MINIMUM (1UL << (SHIFT_WORD - TEST_POWER)) */
109 1.1 christos #define TEST_POWER (3) /* 2**n, n < SHIFT_WORD */
110 1.1 christos
111 1.1 christos /* bit operations on 32-bit words */
112 1.1 christos #define BIT_CLEAR(a,n) ((a)[(n)>>SHIFT_WORD] &= ~(1L << ((n) & 31)))
113 1.1 christos #define BIT_SET(a,n) ((a)[(n)>>SHIFT_WORD] |= (1L << ((n) & 31)))
114 1.1 christos #define BIT_TEST(a,n) ((a)[(n)>>SHIFT_WORD] & (1L << ((n) & 31)))
115 1.1 christos
116 1.1 christos /*
117 1.1 christos * Prime testing defines
118 1.1 christos */
119 1.1 christos
120 1.1 christos /* Minimum number of primality tests to perform */
121 1.1 christos #define TRIAL_MINIMUM (4)
122 1.1 christos
123 1.1 christos /*
124 1.1 christos * Sieving data (XXX - move to struct)
125 1.1 christos */
126 1.1 christos
127 1.1 christos /* sieve 2**16 */
128 1.1 christos static u_int32_t *TinySieve, tinybits;
129 1.1 christos
130 1.1 christos /* sieve 2**30 in 2**16 parts */
131 1.1 christos static u_int32_t *SmallSieve, smallbits, smallbase;
132 1.1 christos
133 1.1 christos /* sieve relative to the initial value */
134 1.1 christos static u_int32_t *LargeSieve, largewords, largetries, largenumbers;
135 1.1 christos static u_int32_t largebits, largememory; /* megabytes */
136 1.1 christos static BIGNUM *largebase;
137 1.1 christos
138 1.1 christos int gen_candidates(FILE *, u_int32_t, u_int32_t, BIGNUM *);
139 1.1 christos int prime_test(FILE *, FILE *, u_int32_t, u_int32_t);
140 1.1 christos
141 1.1 christos /*
142 1.1 christos * print moduli out in consistent form,
143 1.1 christos */
144 1.1 christos static int
145 1.1 christos qfileout(FILE * ofile, u_int32_t otype, u_int32_t otests, u_int32_t otries,
146 1.1 christos u_int32_t osize, u_int32_t ogenerator, BIGNUM * omodulus)
147 1.1 christos {
148 1.1 christos struct tm *gtm;
149 1.1 christos time_t time_now;
150 1.1 christos int res;
151 1.1 christos
152 1.1 christos time(&time_now);
153 1.1 christos gtm = gmtime(&time_now);
154 1.1 christos
155 1.1 christos res = fprintf(ofile, "%04d%02d%02d%02d%02d%02d %u %u %u %u %x ",
156 1.1 christos gtm->tm_year + 1900, gtm->tm_mon + 1, gtm->tm_mday,
157 1.1 christos gtm->tm_hour, gtm->tm_min, gtm->tm_sec,
158 1.1 christos otype, otests, otries, osize, ogenerator);
159 1.1 christos
160 1.1 christos if (res < 0)
161 1.1 christos return (-1);
162 1.1 christos
163 1.1 christos if (BN_print_fp(ofile, omodulus) < 1)
164 1.1 christos return (-1);
165 1.1 christos
166 1.1 christos res = fprintf(ofile, "\n");
167 1.1 christos fflush(ofile);
168 1.1 christos
169 1.1 christos return (res > 0 ? 0 : -1);
170 1.1 christos }
171 1.1 christos
172 1.1 christos
173 1.1 christos /*
174 1.1 christos ** Sieve p's and q's with small factors
175 1.1 christos */
176 1.1 christos static void
177 1.1 christos sieve_large(u_int32_t s)
178 1.1 christos {
179 1.1 christos u_int32_t r, u;
180 1.1 christos
181 1.1 christos debug3("sieve_large %u", s);
182 1.1 christos largetries++;
183 1.1 christos /* r = largebase mod s */
184 1.1 christos r = BN_mod_word(largebase, s);
185 1.1 christos if (r == 0)
186 1.1 christos u = 0; /* s divides into largebase exactly */
187 1.1 christos else
188 1.1 christos u = s - r; /* largebase+u is first entry divisible by s */
189 1.1 christos
190 1.1 christos if (u < largebits * 2) {
191 1.1 christos /*
192 1.1 christos * The sieve omits p's and q's divisible by 2, so ensure that
193 1.1 christos * largebase+u is odd. Then, step through the sieve in
194 1.1 christos * increments of 2*s
195 1.1 christos */
196 1.1 christos if (u & 0x1)
197 1.1 christos u += s; /* Make largebase+u odd, and u even */
198 1.1 christos
199 1.1 christos /* Mark all multiples of 2*s */
200 1.1 christos for (u /= 2; u < largebits; u += s)
201 1.1 christos BIT_SET(LargeSieve, u);
202 1.1 christos }
203 1.1 christos
204 1.1 christos /* r = p mod s */
205 1.1 christos r = (2 * r + 1) % s;
206 1.1 christos if (r == 0)
207 1.1 christos u = 0; /* s divides p exactly */
208 1.1 christos else
209 1.1 christos u = s - r; /* p+u is first entry divisible by s */
210 1.1 christos
211 1.1 christos if (u < largebits * 4) {
212 1.1 christos /*
213 1.1 christos * The sieve omits p's divisible by 4, so ensure that
214 1.1 christos * largebase+u is not. Then, step through the sieve in
215 1.1 christos * increments of 4*s
216 1.1 christos */
217 1.1 christos while (u & 0x3) {
218 1.1 christos if (SMALL_MAXIMUM - u < s)
219 1.1 christos return;
220 1.1 christos u += s;
221 1.1 christos }
222 1.1 christos
223 1.1 christos /* Mark all multiples of 4*s */
224 1.1 christos for (u /= 4; u < largebits; u += s)
225 1.1 christos BIT_SET(LargeSieve, u);
226 1.1 christos }
227 1.1 christos }
228 1.1 christos
229 1.1 christos /*
230 1.1 christos * list candidates for Sophie-Germain primes (where q = (p-1)/2)
231 1.1 christos * to standard output.
232 1.1 christos * The list is checked against small known primes (less than 2**30).
233 1.1 christos */
234 1.1 christos int
235 1.1 christos gen_candidates(FILE *out, u_int32_t memory, u_int32_t power, BIGNUM *start)
236 1.1 christos {
237 1.1 christos BIGNUM *q;
238 1.1 christos u_int32_t j, r, s, t;
239 1.1 christos u_int32_t smallwords = TINY_NUMBER >> 6;
240 1.1 christos u_int32_t tinywords = TINY_NUMBER >> 6;
241 1.1 christos time_t time_start, time_stop;
242 1.1 christos u_int32_t i;
243 1.1 christos int ret = 0;
244 1.1 christos
245 1.1 christos largememory = memory;
246 1.1 christos
247 1.1 christos if (memory != 0 &&
248 1.1 christos (memory < LARGE_MINIMUM || memory > LARGE_MAXIMUM)) {
249 1.1 christos error("Invalid memory amount (min %ld, max %ld)",
250 1.1 christos LARGE_MINIMUM, LARGE_MAXIMUM);
251 1.1 christos return (-1);
252 1.1 christos }
253 1.1 christos
254 1.1 christos /*
255 1.1 christos * Set power to the length in bits of the prime to be generated.
256 1.1 christos * This is changed to 1 less than the desired safe prime moduli p.
257 1.1 christos */
258 1.1 christos if (power > TEST_MAXIMUM) {
259 1.1 christos error("Too many bits: %u > %lu", power, TEST_MAXIMUM);
260 1.1 christos return (-1);
261 1.1 christos } else if (power < TEST_MINIMUM) {
262 1.1 christos error("Too few bits: %u < %u", power, TEST_MINIMUM);
263 1.1 christos return (-1);
264 1.1 christos }
265 1.1 christos power--; /* decrement before squaring */
266 1.1 christos
267 1.1 christos /*
268 1.1 christos * The density of ordinary primes is on the order of 1/bits, so the
269 1.1 christos * density of safe primes should be about (1/bits)**2. Set test range
270 1.1 christos * to something well above bits**2 to be reasonably sure (but not
271 1.1 christos * guaranteed) of catching at least one safe prime.
272 1.1 christos */
273 1.1 christos largewords = ((power * power) >> (SHIFT_WORD - TEST_POWER));
274 1.1 christos
275 1.1 christos /*
276 1.1 christos * Need idea of how much memory is available. We don't have to use all
277 1.1 christos * of it.
278 1.1 christos */
279 1.1 christos if (largememory > LARGE_MAXIMUM) {
280 1.1 christos logit("Limited memory: %u MB; limit %lu MB",
281 1.1 christos largememory, LARGE_MAXIMUM);
282 1.1 christos largememory = LARGE_MAXIMUM;
283 1.1 christos }
284 1.1 christos
285 1.1 christos if (largewords <= (largememory << SHIFT_MEGAWORD)) {
286 1.1 christos logit("Increased memory: %u MB; need %u bytes",
287 1.1 christos largememory, (largewords << SHIFT_BYTE));
288 1.1 christos largewords = (largememory << SHIFT_MEGAWORD);
289 1.1 christos } else if (largememory > 0) {
290 1.1 christos logit("Decreased memory: %u MB; want %u bytes",
291 1.1 christos largememory, (largewords << SHIFT_BYTE));
292 1.1 christos largewords = (largememory << SHIFT_MEGAWORD);
293 1.1 christos }
294 1.1 christos
295 1.1 christos TinySieve = xcalloc(tinywords, sizeof(u_int32_t));
296 1.1 christos tinybits = tinywords << SHIFT_WORD;
297 1.1 christos
298 1.1 christos SmallSieve = xcalloc(smallwords, sizeof(u_int32_t));
299 1.1 christos smallbits = smallwords << SHIFT_WORD;
300 1.1 christos
301 1.1 christos /*
302 1.1 christos * dynamically determine available memory
303 1.1 christos */
304 1.1 christos while ((LargeSieve = calloc(largewords, sizeof(u_int32_t))) == NULL)
305 1.1 christos largewords -= (1L << (SHIFT_MEGAWORD - 2)); /* 1/4 MB chunks */
306 1.1 christos
307 1.1 christos largebits = largewords << SHIFT_WORD;
308 1.1 christos largenumbers = largebits * 2; /* even numbers excluded */
309 1.1 christos
310 1.1 christos /* validation check: count the number of primes tried */
311 1.1 christos largetries = 0;
312 1.1 christos if ((q = BN_new()) == NULL)
313 1.1 christos fatal("BN_new failed");
314 1.1 christos
315 1.1 christos /*
316 1.1 christos * Generate random starting point for subprime search, or use
317 1.1 christos * specified parameter.
318 1.1 christos */
319 1.1 christos if ((largebase = BN_new()) == NULL)
320 1.1 christos fatal("BN_new failed");
321 1.1 christos if (start == NULL) {
322 1.1 christos if (BN_rand(largebase, power, 1, 1) == 0)
323 1.1 christos fatal("BN_rand failed");
324 1.1 christos } else {
325 1.1 christos if (BN_copy(largebase, start) == NULL)
326 1.1 christos fatal("BN_copy: failed");
327 1.1 christos }
328 1.1 christos
329 1.1 christos /* ensure odd */
330 1.1 christos if (BN_set_bit(largebase, 0) == 0)
331 1.1 christos fatal("BN_set_bit: failed");
332 1.1 christos
333 1.1 christos time(&time_start);
334 1.1 christos
335 1.1 christos logit("%.24s Sieve next %u plus %u-bit", ctime(&time_start),
336 1.1 christos largenumbers, power);
337 1.1 christos debug2("start point: 0x%s", BN_bn2hex(largebase));
338 1.1 christos
339 1.1 christos /*
340 1.1 christos * TinySieve
341 1.1 christos */
342 1.1 christos for (i = 0; i < tinybits; i++) {
343 1.1 christos if (BIT_TEST(TinySieve, i))
344 1.1 christos continue; /* 2*i+3 is composite */
345 1.1 christos
346 1.1 christos /* The next tiny prime */
347 1.1 christos t = 2 * i + 3;
348 1.1 christos
349 1.1 christos /* Mark all multiples of t */
350 1.1 christos for (j = i + t; j < tinybits; j += t)
351 1.1 christos BIT_SET(TinySieve, j);
352 1.1 christos
353 1.1 christos sieve_large(t);
354 1.1 christos }
355 1.1 christos
356 1.1 christos /*
357 1.1 christos * Start the small block search at the next possible prime. To avoid
358 1.1 christos * fencepost errors, the last pass is skipped.
359 1.1 christos */
360 1.1 christos for (smallbase = TINY_NUMBER + 3;
361 1.1 christos smallbase < (SMALL_MAXIMUM - TINY_NUMBER);
362 1.1 christos smallbase += TINY_NUMBER) {
363 1.1 christos for (i = 0; i < tinybits; i++) {
364 1.1 christos if (BIT_TEST(TinySieve, i))
365 1.1 christos continue; /* 2*i+3 is composite */
366 1.1 christos
367 1.1 christos /* The next tiny prime */
368 1.1 christos t = 2 * i + 3;
369 1.1 christos r = smallbase % t;
370 1.1 christos
371 1.1 christos if (r == 0) {
372 1.1 christos s = 0; /* t divides into smallbase exactly */
373 1.1 christos } else {
374 1.1 christos /* smallbase+s is first entry divisible by t */
375 1.1 christos s = t - r;
376 1.1 christos }
377 1.1 christos
378 1.1 christos /*
379 1.1 christos * The sieve omits even numbers, so ensure that
380 1.1 christos * smallbase+s is odd. Then, step through the sieve
381 1.1 christos * in increments of 2*t
382 1.1 christos */
383 1.1 christos if (s & 1)
384 1.1 christos s += t; /* Make smallbase+s odd, and s even */
385 1.1 christos
386 1.1 christos /* Mark all multiples of 2*t */
387 1.1 christos for (s /= 2; s < smallbits; s += t)
388 1.1 christos BIT_SET(SmallSieve, s);
389 1.1 christos }
390 1.1 christos
391 1.1 christos /*
392 1.1 christos * SmallSieve
393 1.1 christos */
394 1.1 christos for (i = 0; i < smallbits; i++) {
395 1.1 christos if (BIT_TEST(SmallSieve, i))
396 1.1 christos continue; /* 2*i+smallbase is composite */
397 1.1 christos
398 1.1 christos /* The next small prime */
399 1.1 christos sieve_large((2 * i) + smallbase);
400 1.1 christos }
401 1.1 christos
402 1.1 christos memset(SmallSieve, 0, smallwords << SHIFT_BYTE);
403 1.1 christos }
404 1.1 christos
405 1.1 christos time(&time_stop);
406 1.1 christos
407 1.1 christos logit("%.24s Sieved with %u small primes in %ld seconds",
408 1.1 christos ctime(&time_stop), largetries, (long) (time_stop - time_start));
409 1.1 christos
410 1.1 christos for (j = r = 0; j < largebits; j++) {
411 1.1 christos if (BIT_TEST(LargeSieve, j))
412 1.1 christos continue; /* Definitely composite, skip */
413 1.1 christos
414 1.1 christos debug2("test q = largebase+%u", 2 * j);
415 1.1 christos if (BN_set_word(q, 2 * j) == 0)
416 1.1 christos fatal("BN_set_word failed");
417 1.1 christos if (BN_add(q, q, largebase) == 0)
418 1.1 christos fatal("BN_add failed");
419 1.1 christos if (qfileout(out, MODULI_TYPE_SOPHIE_GERMAIN,
420 1.1 christos MODULI_TESTS_SIEVE, largetries,
421 1.1 christos (power - 1) /* MSB */, (0), q) == -1) {
422 1.1 christos ret = -1;
423 1.1 christos break;
424 1.1 christos }
425 1.1 christos
426 1.1 christos r++; /* count q */
427 1.1 christos }
428 1.1 christos
429 1.1 christos time(&time_stop);
430 1.1 christos
431 1.1 christos xfree(LargeSieve);
432 1.1 christos xfree(SmallSieve);
433 1.1 christos xfree(TinySieve);
434 1.1 christos
435 1.1 christos logit("%.24s Found %u candidates", ctime(&time_stop), r);
436 1.1 christos
437 1.1 christos return (ret);
438 1.1 christos }
439 1.1 christos
440 1.1 christos /*
441 1.1 christos * perform a Miller-Rabin primality test
442 1.1 christos * on the list of candidates
443 1.1 christos * (checking both q and p)
444 1.1 christos * The result is a list of so-call "safe" primes
445 1.1 christos */
446 1.1 christos int
447 1.1 christos prime_test(FILE *in, FILE *out, u_int32_t trials, u_int32_t generator_wanted)
448 1.1 christos {
449 1.1 christos BIGNUM *q, *p, *a;
450 1.1 christos BN_CTX *ctx;
451 1.1 christos char *cp, *lp;
452 1.1 christos u_int32_t count_in = 0, count_out = 0, count_possible = 0;
453 1.1 christos u_int32_t generator_known, in_tests, in_tries, in_type, in_size;
454 1.1 christos time_t time_start, time_stop;
455 1.1 christos int res;
456 1.1 christos
457 1.1 christos if (trials < TRIAL_MINIMUM) {
458 1.1 christos error("Minimum primality trials is %d", TRIAL_MINIMUM);
459 1.1 christos return (-1);
460 1.1 christos }
461 1.1 christos
462 1.1 christos time(&time_start);
463 1.1 christos
464 1.1 christos if ((p = BN_new()) == NULL)
465 1.1 christos fatal("BN_new failed");
466 1.1 christos if ((q = BN_new()) == NULL)
467 1.1 christos fatal("BN_new failed");
468 1.1 christos if ((ctx = BN_CTX_new()) == NULL)
469 1.1 christos fatal("BN_CTX_new failed");
470 1.1 christos
471 1.1 christos debug2("%.24s Final %u Miller-Rabin trials (%x generator)",
472 1.1 christos ctime(&time_start), trials, generator_wanted);
473 1.1 christos
474 1.1 christos res = 0;
475 1.1 christos lp = xmalloc(QLINESIZE + 1);
476 1.1 christos while (fgets(lp, QLINESIZE + 1, in) != NULL) {
477 1.1 christos count_in++;
478 1.1 christos if (strlen(lp) < 14 || *lp == '!' || *lp == '#') {
479 1.1 christos debug2("%10u: comment or short line", count_in);
480 1.1 christos continue;
481 1.1 christos }
482 1.1 christos
483 1.1 christos /* XXX - fragile parser */
484 1.1 christos /* time */
485 1.1 christos cp = &lp[14]; /* (skip) */
486 1.1 christos
487 1.1 christos /* type */
488 1.1 christos in_type = strtoul(cp, &cp, 10);
489 1.1 christos
490 1.1 christos /* tests */
491 1.1 christos in_tests = strtoul(cp, &cp, 10);
492 1.1 christos
493 1.1 christos if (in_tests & MODULI_TESTS_COMPOSITE) {
494 1.1 christos debug2("%10u: known composite", count_in);
495 1.1 christos continue;
496 1.1 christos }
497 1.1 christos
498 1.1 christos /* tries */
499 1.1 christos in_tries = strtoul(cp, &cp, 10);
500 1.1 christos
501 1.1 christos /* size (most significant bit) */
502 1.1 christos in_size = strtoul(cp, &cp, 10);
503 1.1 christos
504 1.1 christos /* generator (hex) */
505 1.1 christos generator_known = strtoul(cp, &cp, 16);
506 1.1 christos
507 1.1 christos /* Skip white space */
508 1.1 christos cp += strspn(cp, " ");
509 1.1 christos
510 1.1 christos /* modulus (hex) */
511 1.1 christos switch (in_type) {
512 1.1 christos case MODULI_TYPE_SOPHIE_GERMAIN:
513 1.1 christos debug2("%10u: (%u) Sophie-Germain", count_in, in_type);
514 1.1 christos a = q;
515 1.1 christos if (BN_hex2bn(&a, cp) == 0)
516 1.1 christos fatal("BN_hex2bn failed");
517 1.1 christos /* p = 2*q + 1 */
518 1.1 christos if (BN_lshift(p, q, 1) == 0)
519 1.1 christos fatal("BN_lshift failed");
520 1.1 christos if (BN_add_word(p, 1) == 0)
521 1.1 christos fatal("BN_add_word failed");
522 1.1 christos in_size += 1;
523 1.1 christos generator_known = 0;
524 1.1 christos break;
525 1.1 christos case MODULI_TYPE_UNSTRUCTURED:
526 1.1 christos case MODULI_TYPE_SAFE:
527 1.1 christos case MODULI_TYPE_SCHNORR:
528 1.1 christos case MODULI_TYPE_STRONG:
529 1.1 christos case MODULI_TYPE_UNKNOWN:
530 1.1 christos debug2("%10u: (%u)", count_in, in_type);
531 1.1 christos a = p;
532 1.1 christos if (BN_hex2bn(&a, cp) == 0)
533 1.1 christos fatal("BN_hex2bn failed");
534 1.1 christos /* q = (p-1) / 2 */
535 1.1 christos if (BN_rshift(q, p, 1) == 0)
536 1.1 christos fatal("BN_rshift failed");
537 1.1 christos break;
538 1.1 christos default:
539 1.1 christos debug2("Unknown prime type");
540 1.1 christos break;
541 1.1 christos }
542 1.1 christos
543 1.1 christos /*
544 1.1 christos * due to earlier inconsistencies in interpretation, check
545 1.1 christos * the proposed bit size.
546 1.1 christos */
547 1.1 christos if ((u_int32_t)BN_num_bits(p) != (in_size + 1)) {
548 1.1 christos debug2("%10u: bit size %u mismatch", count_in, in_size);
549 1.1 christos continue;
550 1.1 christos }
551 1.1 christos if (in_size < QSIZE_MINIMUM) {
552 1.1 christos debug2("%10u: bit size %u too short", count_in, in_size);
553 1.1 christos continue;
554 1.1 christos }
555 1.1 christos
556 1.1 christos if (in_tests & MODULI_TESTS_MILLER_RABIN)
557 1.1 christos in_tries += trials;
558 1.1 christos else
559 1.1 christos in_tries = trials;
560 1.1 christos
561 1.1 christos /*
562 1.1 christos * guess unknown generator
563 1.1 christos */
564 1.1 christos if (generator_known == 0) {
565 1.1 christos if (BN_mod_word(p, 24) == 11)
566 1.1 christos generator_known = 2;
567 1.1 christos else if (BN_mod_word(p, 12) == 5)
568 1.1 christos generator_known = 3;
569 1.1 christos else {
570 1.1 christos u_int32_t r = BN_mod_word(p, 10);
571 1.1 christos
572 1.1 christos if (r == 3 || r == 7)
573 1.1 christos generator_known = 5;
574 1.1 christos }
575 1.1 christos }
576 1.1 christos /*
577 1.1 christos * skip tests when desired generator doesn't match
578 1.1 christos */
579 1.1 christos if (generator_wanted > 0 &&
580 1.1 christos generator_wanted != generator_known) {
581 1.1 christos debug2("%10u: generator %d != %d",
582 1.1 christos count_in, generator_known, generator_wanted);
583 1.1 christos continue;
584 1.1 christos }
585 1.1 christos
586 1.1 christos /*
587 1.1 christos * Primes with no known generator are useless for DH, so
588 1.1 christos * skip those.
589 1.1 christos */
590 1.1 christos if (generator_known == 0) {
591 1.1 christos debug2("%10u: no known generator", count_in);
592 1.1 christos continue;
593 1.1 christos }
594 1.1 christos
595 1.1 christos count_possible++;
596 1.1 christos
597 1.1 christos /*
598 1.1 christos * The (1/4)^N performance bound on Miller-Rabin is
599 1.1 christos * extremely pessimistic, so don't spend a lot of time
600 1.1 christos * really verifying that q is prime until after we know
601 1.1 christos * that p is also prime. A single pass will weed out the
602 1.1 christos * vast majority of composite q's.
603 1.1 christos */
604 1.1 christos if (BN_is_prime(q, 1, NULL, ctx, NULL) <= 0) {
605 1.1 christos debug("%10u: q failed first possible prime test",
606 1.1 christos count_in);
607 1.1 christos continue;
608 1.1 christos }
609 1.1 christos
610 1.1 christos /*
611 1.1 christos * q is possibly prime, so go ahead and really make sure
612 1.1 christos * that p is prime. If it is, then we can go back and do
613 1.1 christos * the same for q. If p is composite, chances are that
614 1.1 christos * will show up on the first Rabin-Miller iteration so it
615 1.1 christos * doesn't hurt to specify a high iteration count.
616 1.1 christos */
617 1.1 christos if (!BN_is_prime(p, trials, NULL, ctx, NULL)) {
618 1.1 christos debug("%10u: p is not prime", count_in);
619 1.1 christos continue;
620 1.1 christos }
621 1.1 christos debug("%10u: p is almost certainly prime", count_in);
622 1.1 christos
623 1.1 christos /* recheck q more rigorously */
624 1.1 christos if (!BN_is_prime(q, trials - 1, NULL, ctx, NULL)) {
625 1.1 christos debug("%10u: q is not prime", count_in);
626 1.1 christos continue;
627 1.1 christos }
628 1.1 christos debug("%10u: q is almost certainly prime", count_in);
629 1.1 christos
630 1.1 christos if (qfileout(out, MODULI_TYPE_SAFE,
631 1.1 christos in_tests | MODULI_TESTS_MILLER_RABIN,
632 1.1 christos in_tries, in_size, generator_known, p)) {
633 1.1 christos res = -1;
634 1.1 christos break;
635 1.1 christos }
636 1.1 christos
637 1.1 christos count_out++;
638 1.1 christos }
639 1.1 christos
640 1.1 christos time(&time_stop);
641 1.1 christos xfree(lp);
642 1.1 christos BN_free(p);
643 1.1 christos BN_free(q);
644 1.1 christos BN_CTX_free(ctx);
645 1.1 christos
646 1.1 christos logit("%.24s Found %u safe primes of %u candidates in %ld seconds",
647 1.1 christos ctime(&time_stop), count_out, count_possible,
648 1.1 christos (long) (time_stop - time_start));
649 1.1 christos
650 1.1 christos return (res);
651 1.1 christos }
652