bn.h 23 KB

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  1. /*
  2. * Copyright 1995-2021 The OpenSSL Project Authors. All Rights Reserved.
  3. * Copyright (c) 2002, Oracle and/or its affiliates. All rights reserved
  4. *
  5. * Licensed under the Apache License 2.0 (the "License"). You may not use
  6. * this file except in compliance with the License. You can obtain a copy
  7. * in the file LICENSE in the source distribution or at
  8. * https://www.openssl.org/source/license.html
  9. */
  10. #ifndef OPENSSL_BN_H
  11. # define OPENSSL_BN_H
  12. # pragma once
  13. # include <openssl/macros.h>
  14. # ifndef OPENSSL_NO_DEPRECATED_3_0
  15. # define HEADER_BN_H
  16. # endif
  17. # include <openssl/e_os2.h>
  18. # ifndef OPENSSL_NO_STDIO
  19. # include <stdio.h>
  20. # endif
  21. # include <openssl/opensslconf.h>
  22. # include <openssl/types.h>
  23. # include <openssl/crypto.h>
  24. # include <openssl/bnerr.h>
  25. #ifdef __cplusplus
  26. extern "C" {
  27. #endif
  28. /*
  29. * 64-bit processor with LP64 ABI
  30. */
  31. # ifdef SIXTY_FOUR_BIT_LONG
  32. # define BN_ULONG unsigned long
  33. # define BN_BYTES 8
  34. # endif
  35. /*
  36. * 64-bit processor other than LP64 ABI
  37. */
  38. # ifdef SIXTY_FOUR_BIT
  39. # define BN_ULONG unsigned long long
  40. # define BN_BYTES 8
  41. # endif
  42. # ifdef THIRTY_TWO_BIT
  43. # define BN_ULONG unsigned int
  44. # define BN_BYTES 4
  45. # endif
  46. # define BN_BITS2 (BN_BYTES * 8)
  47. # define BN_BITS (BN_BITS2 * 2)
  48. # define BN_TBIT ((BN_ULONG)1 << (BN_BITS2 - 1))
  49. # define BN_FLG_MALLOCED 0x01
  50. # define BN_FLG_STATIC_DATA 0x02
  51. /*
  52. * avoid leaking exponent information through timing,
  53. * BN_mod_exp_mont() will call BN_mod_exp_mont_consttime,
  54. * BN_div() will call BN_div_no_branch,
  55. * BN_mod_inverse() will call bn_mod_inverse_no_branch.
  56. */
  57. # define BN_FLG_CONSTTIME 0x04
  58. # define BN_FLG_SECURE 0x08
  59. # ifndef OPENSSL_NO_DEPRECATED_0_9_8
  60. /* deprecated name for the flag */
  61. # define BN_FLG_EXP_CONSTTIME BN_FLG_CONSTTIME
  62. # define BN_FLG_FREE 0x8000 /* used for debugging */
  63. # endif
  64. void BN_set_flags(BIGNUM *b, int n);
  65. int BN_get_flags(const BIGNUM *b, int n);
  66. /* Values for |top| in BN_rand() */
  67. #define BN_RAND_TOP_ANY -1
  68. #define BN_RAND_TOP_ONE 0
  69. #define BN_RAND_TOP_TWO 1
  70. /* Values for |bottom| in BN_rand() */
  71. #define BN_RAND_BOTTOM_ANY 0
  72. #define BN_RAND_BOTTOM_ODD 1
  73. /*
  74. * get a clone of a BIGNUM with changed flags, for *temporary* use only (the
  75. * two BIGNUMs cannot be used in parallel!). Also only for *read only* use. The
  76. * value |dest| should be a newly allocated BIGNUM obtained via BN_new() that
  77. * has not been otherwise initialised or used.
  78. */
  79. void BN_with_flags(BIGNUM *dest, const BIGNUM *b, int flags);
  80. /* Wrapper function to make using BN_GENCB easier */
  81. int BN_GENCB_call(BN_GENCB *cb, int a, int b);
  82. BN_GENCB *BN_GENCB_new(void);
  83. void BN_GENCB_free(BN_GENCB *cb);
  84. /* Populate a BN_GENCB structure with an "old"-style callback */
  85. void BN_GENCB_set_old(BN_GENCB *gencb, void (*callback) (int, int, void *),
  86. void *cb_arg);
  87. /* Populate a BN_GENCB structure with a "new"-style callback */
  88. void BN_GENCB_set(BN_GENCB *gencb, int (*callback) (int, int, BN_GENCB *),
  89. void *cb_arg);
  90. void *BN_GENCB_get_arg(BN_GENCB *cb);
  91. # ifndef OPENSSL_NO_DEPRECATED_3_0
  92. # define BN_prime_checks 0 /* default: select number of iterations based
  93. * on the size of the number */
  94. /*
  95. * BN_prime_checks_for_size() returns the number of Miller-Rabin iterations
  96. * that will be done for checking that a random number is probably prime. The
  97. * error rate for accepting a composite number as prime depends on the size of
  98. * the prime |b|. The error rates used are for calculating an RSA key with 2 primes,
  99. * and so the level is what you would expect for a key of double the size of the
  100. * prime.
  101. *
  102. * This table is generated using the algorithm of FIPS PUB 186-4
  103. * Digital Signature Standard (DSS), section F.1, page 117.
  104. * (https://dx.doi.org/10.6028/NIST.FIPS.186-4)
  105. *
  106. * The following magma script was used to generate the output:
  107. * securitybits:=125;
  108. * k:=1024;
  109. * for t:=1 to 65 do
  110. * for M:=3 to Floor(2*Sqrt(k-1)-1) do
  111. * S:=0;
  112. * // Sum over m
  113. * for m:=3 to M do
  114. * s:=0;
  115. * // Sum over j
  116. * for j:=2 to m do
  117. * s+:=(RealField(32)!2)^-(j+(k-1)/j);
  118. * end for;
  119. * S+:=2^(m-(m-1)*t)*s;
  120. * end for;
  121. * A:=2^(k-2-M*t);
  122. * B:=8*(Pi(RealField(32))^2-6)/3*2^(k-2)*S;
  123. * pkt:=2.00743*Log(2)*k*2^-k*(A+B);
  124. * seclevel:=Floor(-Log(2,pkt));
  125. * if seclevel ge securitybits then
  126. * printf "k: %5o, security: %o bits (t: %o, M: %o)\n",k,seclevel,t,M;
  127. * break;
  128. * end if;
  129. * end for;
  130. * if seclevel ge securitybits then break; end if;
  131. * end for;
  132. *
  133. * It can be run online at:
  134. * http://magma.maths.usyd.edu.au/calc
  135. *
  136. * And will output:
  137. * k: 1024, security: 129 bits (t: 6, M: 23)
  138. *
  139. * k is the number of bits of the prime, securitybits is the level we want to
  140. * reach.
  141. *
  142. * prime length | RSA key size | # MR tests | security level
  143. * -------------+--------------|------------+---------------
  144. * (b) >= 6394 | >= 12788 | 3 | 256 bit
  145. * (b) >= 3747 | >= 7494 | 3 | 192 bit
  146. * (b) >= 1345 | >= 2690 | 4 | 128 bit
  147. * (b) >= 1080 | >= 2160 | 5 | 128 bit
  148. * (b) >= 852 | >= 1704 | 5 | 112 bit
  149. * (b) >= 476 | >= 952 | 5 | 80 bit
  150. * (b) >= 400 | >= 800 | 6 | 80 bit
  151. * (b) >= 347 | >= 694 | 7 | 80 bit
  152. * (b) >= 308 | >= 616 | 8 | 80 bit
  153. * (b) >= 55 | >= 110 | 27 | 64 bit
  154. * (b) >= 6 | >= 12 | 34 | 64 bit
  155. */
  156. # define BN_prime_checks_for_size(b) ((b) >= 3747 ? 3 : \
  157. (b) >= 1345 ? 4 : \
  158. (b) >= 476 ? 5 : \
  159. (b) >= 400 ? 6 : \
  160. (b) >= 347 ? 7 : \
  161. (b) >= 308 ? 8 : \
  162. (b) >= 55 ? 27 : \
  163. /* b >= 6 */ 34)
  164. # endif
  165. # define BN_num_bytes(a) ((BN_num_bits(a)+7)/8)
  166. int BN_abs_is_word(const BIGNUM *a, const BN_ULONG w);
  167. int BN_is_zero(const BIGNUM *a);
  168. int BN_is_one(const BIGNUM *a);
  169. int BN_is_word(const BIGNUM *a, const BN_ULONG w);
  170. int BN_is_odd(const BIGNUM *a);
  171. # define BN_one(a) (BN_set_word((a),1))
  172. void BN_zero_ex(BIGNUM *a);
  173. # if OPENSSL_API_LEVEL > 908
  174. # define BN_zero(a) BN_zero_ex(a)
  175. # else
  176. # define BN_zero(a) (BN_set_word((a),0))
  177. # endif
  178. const BIGNUM *BN_value_one(void);
  179. char *BN_options(void);
  180. BN_CTX *BN_CTX_new_ex(OSSL_LIB_CTX *ctx);
  181. BN_CTX *BN_CTX_new(void);
  182. BN_CTX *BN_CTX_secure_new_ex(OSSL_LIB_CTX *ctx);
  183. BN_CTX *BN_CTX_secure_new(void);
  184. void BN_CTX_free(BN_CTX *c);
  185. void BN_CTX_start(BN_CTX *ctx);
  186. BIGNUM *BN_CTX_get(BN_CTX *ctx);
  187. void BN_CTX_end(BN_CTX *ctx);
  188. int BN_rand_ex(BIGNUM *rnd, int bits, int top, int bottom,
  189. unsigned int strength, BN_CTX *ctx);
  190. int BN_rand(BIGNUM *rnd, int bits, int top, int bottom);
  191. int BN_priv_rand_ex(BIGNUM *rnd, int bits, int top, int bottom,
  192. unsigned int strength, BN_CTX *ctx);
  193. int BN_priv_rand(BIGNUM *rnd, int bits, int top, int bottom);
  194. int BN_rand_range_ex(BIGNUM *r, const BIGNUM *range, unsigned int strength,
  195. BN_CTX *ctx);
  196. int BN_rand_range(BIGNUM *rnd, const BIGNUM *range);
  197. int BN_priv_rand_range_ex(BIGNUM *r, const BIGNUM *range,
  198. unsigned int strength, BN_CTX *ctx);
  199. int BN_priv_rand_range(BIGNUM *rnd, const BIGNUM *range);
  200. # ifndef OPENSSL_NO_DEPRECATED_3_0
  201. OSSL_DEPRECATEDIN_3_0
  202. int BN_pseudo_rand(BIGNUM *rnd, int bits, int top, int bottom);
  203. OSSL_DEPRECATEDIN_3_0
  204. int BN_pseudo_rand_range(BIGNUM *rnd, const BIGNUM *range);
  205. # endif
  206. int BN_num_bits(const BIGNUM *a);
  207. int BN_num_bits_word(BN_ULONG l);
  208. int BN_security_bits(int L, int N);
  209. BIGNUM *BN_new(void);
  210. BIGNUM *BN_secure_new(void);
  211. void BN_clear_free(BIGNUM *a);
  212. BIGNUM *BN_copy(BIGNUM *a, const BIGNUM *b);
  213. void BN_swap(BIGNUM *a, BIGNUM *b);
  214. BIGNUM *BN_bin2bn(const unsigned char *s, int len, BIGNUM *ret);
  215. int BN_bn2bin(const BIGNUM *a, unsigned char *to);
  216. int BN_bn2binpad(const BIGNUM *a, unsigned char *to, int tolen);
  217. BIGNUM *BN_lebin2bn(const unsigned char *s, int len, BIGNUM *ret);
  218. int BN_bn2lebinpad(const BIGNUM *a, unsigned char *to, int tolen);
  219. BIGNUM *BN_native2bn(const unsigned char *s, int len, BIGNUM *ret);
  220. int BN_bn2nativepad(const BIGNUM *a, unsigned char *to, int tolen);
  221. BIGNUM *BN_mpi2bn(const unsigned char *s, int len, BIGNUM *ret);
  222. int BN_bn2mpi(const BIGNUM *a, unsigned char *to);
  223. int BN_sub(BIGNUM *r, const BIGNUM *a, const BIGNUM *b);
  224. int BN_usub(BIGNUM *r, const BIGNUM *a, const BIGNUM *b);
  225. int BN_uadd(BIGNUM *r, const BIGNUM *a, const BIGNUM *b);
  226. int BN_add(BIGNUM *r, const BIGNUM *a, const BIGNUM *b);
  227. int BN_mul(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, BN_CTX *ctx);
  228. int BN_sqr(BIGNUM *r, const BIGNUM *a, BN_CTX *ctx);
  229. /** BN_set_negative sets sign of a BIGNUM
  230. * \param b pointer to the BIGNUM object
  231. * \param n 0 if the BIGNUM b should be positive and a value != 0 otherwise
  232. */
  233. void BN_set_negative(BIGNUM *b, int n);
  234. /** BN_is_negative returns 1 if the BIGNUM is negative
  235. * \param b pointer to the BIGNUM object
  236. * \return 1 if a < 0 and 0 otherwise
  237. */
  238. int BN_is_negative(const BIGNUM *b);
  239. int BN_div(BIGNUM *dv, BIGNUM *rem, const BIGNUM *m, const BIGNUM *d,
  240. BN_CTX *ctx);
  241. # define BN_mod(rem,m,d,ctx) BN_div(NULL,(rem),(m),(d),(ctx))
  242. int BN_nnmod(BIGNUM *r, const BIGNUM *m, const BIGNUM *d, BN_CTX *ctx);
  243. int BN_mod_add(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, const BIGNUM *m,
  244. BN_CTX *ctx);
  245. int BN_mod_add_quick(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
  246. const BIGNUM *m);
  247. int BN_mod_sub(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, const BIGNUM *m,
  248. BN_CTX *ctx);
  249. int BN_mod_sub_quick(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
  250. const BIGNUM *m);
  251. int BN_mod_mul(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, const BIGNUM *m,
  252. BN_CTX *ctx);
  253. int BN_mod_sqr(BIGNUM *r, const BIGNUM *a, const BIGNUM *m, BN_CTX *ctx);
  254. int BN_mod_lshift1(BIGNUM *r, const BIGNUM *a, const BIGNUM *m, BN_CTX *ctx);
  255. int BN_mod_lshift1_quick(BIGNUM *r, const BIGNUM *a, const BIGNUM *m);
  256. int BN_mod_lshift(BIGNUM *r, const BIGNUM *a, int n, const BIGNUM *m,
  257. BN_CTX *ctx);
  258. int BN_mod_lshift_quick(BIGNUM *r, const BIGNUM *a, int n, const BIGNUM *m);
  259. BN_ULONG BN_mod_word(const BIGNUM *a, BN_ULONG w);
  260. BN_ULONG BN_div_word(BIGNUM *a, BN_ULONG w);
  261. int BN_mul_word(BIGNUM *a, BN_ULONG w);
  262. int BN_add_word(BIGNUM *a, BN_ULONG w);
  263. int BN_sub_word(BIGNUM *a, BN_ULONG w);
  264. int BN_set_word(BIGNUM *a, BN_ULONG w);
  265. BN_ULONG BN_get_word(const BIGNUM *a);
  266. int BN_cmp(const BIGNUM *a, const BIGNUM *b);
  267. void BN_free(BIGNUM *a);
  268. int BN_is_bit_set(const BIGNUM *a, int n);
  269. int BN_lshift(BIGNUM *r, const BIGNUM *a, int n);
  270. int BN_lshift1(BIGNUM *r, const BIGNUM *a);
  271. int BN_exp(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
  272. int BN_mod_exp(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
  273. const BIGNUM *m, BN_CTX *ctx);
  274. int BN_mod_exp_mont(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
  275. const BIGNUM *m, BN_CTX *ctx, BN_MONT_CTX *m_ctx);
  276. int BN_mod_exp_mont_consttime(BIGNUM *rr, const BIGNUM *a, const BIGNUM *p,
  277. const BIGNUM *m, BN_CTX *ctx,
  278. BN_MONT_CTX *in_mont);
  279. int BN_mod_exp_mont_word(BIGNUM *r, BN_ULONG a, const BIGNUM *p,
  280. const BIGNUM *m, BN_CTX *ctx, BN_MONT_CTX *m_ctx);
  281. int BN_mod_exp2_mont(BIGNUM *r, const BIGNUM *a1, const BIGNUM *p1,
  282. const BIGNUM *a2, const BIGNUM *p2, const BIGNUM *m,
  283. BN_CTX *ctx, BN_MONT_CTX *m_ctx);
  284. int BN_mod_exp_simple(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
  285. const BIGNUM *m, BN_CTX *ctx);
  286. int BN_mod_exp_mont_consttime_x2(BIGNUM *rr1, const BIGNUM *a1, const BIGNUM *p1,
  287. const BIGNUM *m1, BN_MONT_CTX *in_mont1,
  288. BIGNUM *rr2, const BIGNUM *a2, const BIGNUM *p2,
  289. const BIGNUM *m2, BN_MONT_CTX *in_mont2,
  290. BN_CTX *ctx);
  291. int BN_mask_bits(BIGNUM *a, int n);
  292. # ifndef OPENSSL_NO_STDIO
  293. int BN_print_fp(FILE *fp, const BIGNUM *a);
  294. # endif
  295. int BN_print(BIO *bio, const BIGNUM *a);
  296. int BN_reciprocal(BIGNUM *r, const BIGNUM *m, int len, BN_CTX *ctx);
  297. int BN_rshift(BIGNUM *r, const BIGNUM *a, int n);
  298. int BN_rshift1(BIGNUM *r, const BIGNUM *a);
  299. void BN_clear(BIGNUM *a);
  300. BIGNUM *BN_dup(const BIGNUM *a);
  301. int BN_ucmp(const BIGNUM *a, const BIGNUM *b);
  302. int BN_set_bit(BIGNUM *a, int n);
  303. int BN_clear_bit(BIGNUM *a, int n);
  304. char *BN_bn2hex(const BIGNUM *a);
  305. char *BN_bn2dec(const BIGNUM *a);
  306. int BN_hex2bn(BIGNUM **a, const char *str);
  307. int BN_dec2bn(BIGNUM **a, const char *str);
  308. int BN_asc2bn(BIGNUM **a, const char *str);
  309. int BN_gcd(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, BN_CTX *ctx);
  310. int BN_kronecker(const BIGNUM *a, const BIGNUM *b, BN_CTX *ctx); /* returns
  311. * -2 for
  312. * error */
  313. BIGNUM *BN_mod_inverse(BIGNUM *ret,
  314. const BIGNUM *a, const BIGNUM *n, BN_CTX *ctx);
  315. BIGNUM *BN_mod_sqrt(BIGNUM *ret,
  316. const BIGNUM *a, const BIGNUM *n, BN_CTX *ctx);
  317. void BN_consttime_swap(BN_ULONG swap, BIGNUM *a, BIGNUM *b, int nwords);
  318. /* Deprecated versions */
  319. # ifndef OPENSSL_NO_DEPRECATED_0_9_8
  320. OSSL_DEPRECATEDIN_0_9_8
  321. BIGNUM *BN_generate_prime(BIGNUM *ret, int bits, int safe,
  322. const BIGNUM *add, const BIGNUM *rem,
  323. void (*callback) (int, int, void *),
  324. void *cb_arg);
  325. OSSL_DEPRECATEDIN_0_9_8
  326. int BN_is_prime(const BIGNUM *p, int nchecks,
  327. void (*callback) (int, int, void *),
  328. BN_CTX *ctx, void *cb_arg);
  329. OSSL_DEPRECATEDIN_0_9_8
  330. int BN_is_prime_fasttest(const BIGNUM *p, int nchecks,
  331. void (*callback) (int, int, void *),
  332. BN_CTX *ctx, void *cb_arg,
  333. int do_trial_division);
  334. # endif
  335. # ifndef OPENSSL_NO_DEPRECATED_3_0
  336. OSSL_DEPRECATEDIN_3_0
  337. int BN_is_prime_ex(const BIGNUM *p, int nchecks, BN_CTX *ctx, BN_GENCB *cb);
  338. OSSL_DEPRECATEDIN_3_0
  339. int BN_is_prime_fasttest_ex(const BIGNUM *p, int nchecks, BN_CTX *ctx,
  340. int do_trial_division, BN_GENCB *cb);
  341. # endif
  342. /* Newer versions */
  343. int BN_generate_prime_ex2(BIGNUM *ret, int bits, int safe,
  344. const BIGNUM *add, const BIGNUM *rem, BN_GENCB *cb,
  345. BN_CTX *ctx);
  346. int BN_generate_prime_ex(BIGNUM *ret, int bits, int safe, const BIGNUM *add,
  347. const BIGNUM *rem, BN_GENCB *cb);
  348. int BN_check_prime(const BIGNUM *p, BN_CTX *ctx, BN_GENCB *cb);
  349. # ifndef OPENSSL_NO_DEPRECATED_3_0
  350. OSSL_DEPRECATEDIN_3_0
  351. int BN_X931_generate_Xpq(BIGNUM *Xp, BIGNUM *Xq, int nbits, BN_CTX *ctx);
  352. OSSL_DEPRECATEDIN_3_0
  353. int BN_X931_derive_prime_ex(BIGNUM *p, BIGNUM *p1, BIGNUM *p2,
  354. const BIGNUM *Xp, const BIGNUM *Xp1,
  355. const BIGNUM *Xp2, const BIGNUM *e, BN_CTX *ctx,
  356. BN_GENCB *cb);
  357. OSSL_DEPRECATEDIN_3_0
  358. int BN_X931_generate_prime_ex(BIGNUM *p, BIGNUM *p1, BIGNUM *p2, BIGNUM *Xp1,
  359. BIGNUM *Xp2, const BIGNUM *Xp, const BIGNUM *e,
  360. BN_CTX *ctx, BN_GENCB *cb);
  361. # endif
  362. BN_MONT_CTX *BN_MONT_CTX_new(void);
  363. int BN_mod_mul_montgomery(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
  364. BN_MONT_CTX *mont, BN_CTX *ctx);
  365. int BN_to_montgomery(BIGNUM *r, const BIGNUM *a, BN_MONT_CTX *mont,
  366. BN_CTX *ctx);
  367. int BN_from_montgomery(BIGNUM *r, const BIGNUM *a, BN_MONT_CTX *mont,
  368. BN_CTX *ctx);
  369. void BN_MONT_CTX_free(BN_MONT_CTX *mont);
  370. int BN_MONT_CTX_set(BN_MONT_CTX *mont, const BIGNUM *mod, BN_CTX *ctx);
  371. BN_MONT_CTX *BN_MONT_CTX_copy(BN_MONT_CTX *to, BN_MONT_CTX *from);
  372. BN_MONT_CTX *BN_MONT_CTX_set_locked(BN_MONT_CTX **pmont, CRYPTO_RWLOCK *lock,
  373. const BIGNUM *mod, BN_CTX *ctx);
  374. /* BN_BLINDING flags */
  375. # define BN_BLINDING_NO_UPDATE 0x00000001
  376. # define BN_BLINDING_NO_RECREATE 0x00000002
  377. BN_BLINDING *BN_BLINDING_new(const BIGNUM *A, const BIGNUM *Ai, BIGNUM *mod);
  378. void BN_BLINDING_free(BN_BLINDING *b);
  379. int BN_BLINDING_update(BN_BLINDING *b, BN_CTX *ctx);
  380. int BN_BLINDING_convert(BIGNUM *n, BN_BLINDING *b, BN_CTX *ctx);
  381. int BN_BLINDING_invert(BIGNUM *n, BN_BLINDING *b, BN_CTX *ctx);
  382. int BN_BLINDING_convert_ex(BIGNUM *n, BIGNUM *r, BN_BLINDING *b, BN_CTX *);
  383. int BN_BLINDING_invert_ex(BIGNUM *n, const BIGNUM *r, BN_BLINDING *b,
  384. BN_CTX *);
  385. int BN_BLINDING_is_current_thread(BN_BLINDING *b);
  386. void BN_BLINDING_set_current_thread(BN_BLINDING *b);
  387. int BN_BLINDING_lock(BN_BLINDING *b);
  388. int BN_BLINDING_unlock(BN_BLINDING *b);
  389. unsigned long BN_BLINDING_get_flags(const BN_BLINDING *);
  390. void BN_BLINDING_set_flags(BN_BLINDING *, unsigned long);
  391. BN_BLINDING *BN_BLINDING_create_param(BN_BLINDING *b,
  392. const BIGNUM *e, BIGNUM *m, BN_CTX *ctx,
  393. int (*bn_mod_exp) (BIGNUM *r,
  394. const BIGNUM *a,
  395. const BIGNUM *p,
  396. const BIGNUM *m,
  397. BN_CTX *ctx,
  398. BN_MONT_CTX *m_ctx),
  399. BN_MONT_CTX *m_ctx);
  400. # ifndef OPENSSL_NO_DEPRECATED_0_9_8
  401. OSSL_DEPRECATEDIN_0_9_8
  402. void BN_set_params(int mul, int high, int low, int mont);
  403. OSSL_DEPRECATEDIN_0_9_8
  404. int BN_get_params(int which); /* 0, mul, 1 high, 2 low, 3 mont */
  405. # endif
  406. BN_RECP_CTX *BN_RECP_CTX_new(void);
  407. void BN_RECP_CTX_free(BN_RECP_CTX *recp);
  408. int BN_RECP_CTX_set(BN_RECP_CTX *recp, const BIGNUM *rdiv, BN_CTX *ctx);
  409. int BN_mod_mul_reciprocal(BIGNUM *r, const BIGNUM *x, const BIGNUM *y,
  410. BN_RECP_CTX *recp, BN_CTX *ctx);
  411. int BN_mod_exp_recp(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
  412. const BIGNUM *m, BN_CTX *ctx);
  413. int BN_div_recp(BIGNUM *dv, BIGNUM *rem, const BIGNUM *m,
  414. BN_RECP_CTX *recp, BN_CTX *ctx);
  415. # ifndef OPENSSL_NO_EC2M
  416. /*
  417. * Functions for arithmetic over binary polynomials represented by BIGNUMs.
  418. * The BIGNUM::neg property of BIGNUMs representing binary polynomials is
  419. * ignored. Note that input arguments are not const so that their bit arrays
  420. * can be expanded to the appropriate size if needed.
  421. */
  422. /*
  423. * r = a + b
  424. */
  425. int BN_GF2m_add(BIGNUM *r, const BIGNUM *a, const BIGNUM *b);
  426. # define BN_GF2m_sub(r, a, b) BN_GF2m_add(r, a, b)
  427. /*
  428. * r=a mod p
  429. */
  430. int BN_GF2m_mod(BIGNUM *r, const BIGNUM *a, const BIGNUM *p);
  431. /* r = (a * b) mod p */
  432. int BN_GF2m_mod_mul(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
  433. const BIGNUM *p, BN_CTX *ctx);
  434. /* r = (a * a) mod p */
  435. int BN_GF2m_mod_sqr(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
  436. /* r = (1 / b) mod p */
  437. int BN_GF2m_mod_inv(BIGNUM *r, const BIGNUM *b, const BIGNUM *p, BN_CTX *ctx);
  438. /* r = (a / b) mod p */
  439. int BN_GF2m_mod_div(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
  440. const BIGNUM *p, BN_CTX *ctx);
  441. /* r = (a ^ b) mod p */
  442. int BN_GF2m_mod_exp(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
  443. const BIGNUM *p, BN_CTX *ctx);
  444. /* r = sqrt(a) mod p */
  445. int BN_GF2m_mod_sqrt(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
  446. BN_CTX *ctx);
  447. /* r^2 + r = a mod p */
  448. int BN_GF2m_mod_solve_quad(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
  449. BN_CTX *ctx);
  450. # define BN_GF2m_cmp(a, b) BN_ucmp((a), (b))
  451. /*-
  452. * Some functions allow for representation of the irreducible polynomials
  453. * as an unsigned int[], say p. The irreducible f(t) is then of the form:
  454. * t^p[0] + t^p[1] + ... + t^p[k]
  455. * where m = p[0] > p[1] > ... > p[k] = 0.
  456. */
  457. /* r = a mod p */
  458. int BN_GF2m_mod_arr(BIGNUM *r, const BIGNUM *a, const int p[]);
  459. /* r = (a * b) mod p */
  460. int BN_GF2m_mod_mul_arr(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
  461. const int p[], BN_CTX *ctx);
  462. /* r = (a * a) mod p */
  463. int BN_GF2m_mod_sqr_arr(BIGNUM *r, const BIGNUM *a, const int p[],
  464. BN_CTX *ctx);
  465. /* r = (1 / b) mod p */
  466. int BN_GF2m_mod_inv_arr(BIGNUM *r, const BIGNUM *b, const int p[],
  467. BN_CTX *ctx);
  468. /* r = (a / b) mod p */
  469. int BN_GF2m_mod_div_arr(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
  470. const int p[], BN_CTX *ctx);
  471. /* r = (a ^ b) mod p */
  472. int BN_GF2m_mod_exp_arr(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
  473. const int p[], BN_CTX *ctx);
  474. /* r = sqrt(a) mod p */
  475. int BN_GF2m_mod_sqrt_arr(BIGNUM *r, const BIGNUM *a,
  476. const int p[], BN_CTX *ctx);
  477. /* r^2 + r = a mod p */
  478. int BN_GF2m_mod_solve_quad_arr(BIGNUM *r, const BIGNUM *a,
  479. const int p[], BN_CTX *ctx);
  480. int BN_GF2m_poly2arr(const BIGNUM *a, int p[], int max);
  481. int BN_GF2m_arr2poly(const int p[], BIGNUM *a);
  482. # endif
  483. /*
  484. * faster mod functions for the 'NIST primes' 0 <= a < p^2
  485. */
  486. int BN_nist_mod_192(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
  487. int BN_nist_mod_224(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
  488. int BN_nist_mod_256(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
  489. int BN_nist_mod_384(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
  490. int BN_nist_mod_521(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
  491. const BIGNUM *BN_get0_nist_prime_192(void);
  492. const BIGNUM *BN_get0_nist_prime_224(void);
  493. const BIGNUM *BN_get0_nist_prime_256(void);
  494. const BIGNUM *BN_get0_nist_prime_384(void);
  495. const BIGNUM *BN_get0_nist_prime_521(void);
  496. int (*BN_nist_mod_func(const BIGNUM *p)) (BIGNUM *r, const BIGNUM *a,
  497. const BIGNUM *field, BN_CTX *ctx);
  498. int BN_generate_dsa_nonce(BIGNUM *out, const BIGNUM *range,
  499. const BIGNUM *priv, const unsigned char *message,
  500. size_t message_len, BN_CTX *ctx);
  501. /* Primes from RFC 2409 */
  502. BIGNUM *BN_get_rfc2409_prime_768(BIGNUM *bn);
  503. BIGNUM *BN_get_rfc2409_prime_1024(BIGNUM *bn);
  504. /* Primes from RFC 3526 */
  505. BIGNUM *BN_get_rfc3526_prime_1536(BIGNUM *bn);
  506. BIGNUM *BN_get_rfc3526_prime_2048(BIGNUM *bn);
  507. BIGNUM *BN_get_rfc3526_prime_3072(BIGNUM *bn);
  508. BIGNUM *BN_get_rfc3526_prime_4096(BIGNUM *bn);
  509. BIGNUM *BN_get_rfc3526_prime_6144(BIGNUM *bn);
  510. BIGNUM *BN_get_rfc3526_prime_8192(BIGNUM *bn);
  511. # ifndef OPENSSL_NO_DEPRECATED_1_1_0
  512. # define get_rfc2409_prime_768 BN_get_rfc2409_prime_768
  513. # define get_rfc2409_prime_1024 BN_get_rfc2409_prime_1024
  514. # define get_rfc3526_prime_1536 BN_get_rfc3526_prime_1536
  515. # define get_rfc3526_prime_2048 BN_get_rfc3526_prime_2048
  516. # define get_rfc3526_prime_3072 BN_get_rfc3526_prime_3072
  517. # define get_rfc3526_prime_4096 BN_get_rfc3526_prime_4096
  518. # define get_rfc3526_prime_6144 BN_get_rfc3526_prime_6144
  519. # define get_rfc3526_prime_8192 BN_get_rfc3526_prime_8192
  520. # endif
  521. int BN_bntest_rand(BIGNUM *rnd, int bits, int top, int bottom);
  522. # ifdef __cplusplus
  523. }
  524. # endif
  525. #endif