1 /* crypto/bn/bn.h */ 2 /* Copyright (C) 1995-1997 Eric Young (eay@cryptsoft.com) 3 * All rights reserved. 4 * 5 * This package is an SSL implementation written 6 * by Eric Young (eay@cryptsoft.com). 7 * The implementation was written so as to conform with Netscapes SSL. 8 * 9 * This library is free for commercial and non-commercial use as long as 10 * the following conditions are aheared to. The following conditions 11 * apply to all code found in this distribution, be it the RC4, RSA, 12 * lhash, DES, etc., code; not just the SSL code. The SSL documentation 13 * included with this distribution is covered by the same copyright terms 14 * except that the holder is Tim Hudson (tjh@cryptsoft.com). 15 * 16 * Copyright remains Eric Young's, and as such any Copyright notices in 17 * the code are not to be removed. 18 * If this package is used in a product, Eric Young should be given attribution 19 * as the author of the parts of the library used. 20 * This can be in the form of a textual message at program startup or 21 * in documentation (online or textual) provided with the package. 22 * 23 * Redistribution and use in source and binary forms, with or without 24 * modification, are permitted provided that the following conditions 25 * are met: 26 * 1. Redistributions of source code must retain the copyright 27 * notice, this list of conditions and the following disclaimer. 28 * 2. Redistributions in binary form must reproduce the above copyright 29 * notice, this list of conditions and the following disclaimer in the 30 * documentation and/or other materials provided with the distribution. 31 * 3. All advertising materials mentioning features or use of this software 32 * must display the following acknowledgement: 33 * "This product includes cryptographic software written by 34 * Eric Young (eay@cryptsoft.com)" 35 * The word 'cryptographic' can be left out if the rouines from the library 36 * being used are not cryptographic related :-). 37 * 4. If you include any Windows specific code (or a derivative thereof) from 38 * the apps directory (application code) you must include an acknowledgement: 39 * "This product includes software written by Tim Hudson (tjh@cryptsoft.com)" 40 * 41 * THIS SOFTWARE IS PROVIDED BY ERIC YOUNG ``AS IS'' AND 42 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 43 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 44 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE 45 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 46 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 47 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 48 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 49 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 50 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 51 * SUCH DAMAGE. 52 * 53 * The licence and distribution terms for any publically available version or 54 * derivative of this code cannot be changed. i.e. this code cannot simply be 55 * copied and put under another distribution licence 56 * [including the GNU Public Licence.] 57 */ 58 /* ==================================================================== 59 * Copyright (c) 1998-2006 The OpenSSL Project. All rights reserved. 60 * 61 * Redistribution and use in source and binary forms, with or without 62 * modification, are permitted provided that the following conditions 63 * are met: 64 * 65 * 1. Redistributions of source code must retain the above copyright 66 * notice, this list of conditions and the following disclaimer. 67 * 68 * 2. Redistributions in binary form must reproduce the above copyright 69 * notice, this list of conditions and the following disclaimer in 70 * the documentation and/or other materials provided with the 71 * distribution. 72 * 73 * 3. All advertising materials mentioning features or use of this 74 * software must display the following acknowledgment: 75 * "This product includes software developed by the OpenSSL Project 76 * for use in the OpenSSL Toolkit. (http://www.openssl.org/)" 77 * 78 * 4. The names "OpenSSL Toolkit" and "OpenSSL Project" must not be used to 79 * endorse or promote products derived from this software without 80 * prior written permission. For written permission, please contact 81 * openssl-core@openssl.org. 82 * 83 * 5. Products derived from this software may not be called "OpenSSL" 84 * nor may "OpenSSL" appear in their names without prior written 85 * permission of the OpenSSL Project. 86 * 87 * 6. Redistributions of any form whatsoever must retain the following 88 * acknowledgment: 89 * "This product includes software developed by the OpenSSL Project 90 * for use in the OpenSSL Toolkit (http://www.openssl.org/)" 91 * 92 * THIS SOFTWARE IS PROVIDED BY THE OpenSSL PROJECT ``AS IS'' AND ANY 93 * EXPRESSED OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 94 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR 95 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE OpenSSL PROJECT OR 96 * ITS CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, 97 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 98 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; 99 * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 100 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, 101 * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 102 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED 103 * OF THE POSSIBILITY OF SUCH DAMAGE. 104 * ==================================================================== 105 * 106 * This product includes cryptographic software written by Eric Young 107 * (eay@cryptsoft.com). This product includes software written by Tim 108 * Hudson (tjh@cryptsoft.com). 109 * 110 */ 111 /* ==================================================================== 112 * Copyright 2002 Sun Microsystems, Inc. ALL RIGHTS RESERVED. 113 * 114 * Portions of the attached software ("Contribution") are developed by 115 * SUN MICROSYSTEMS, INC., and are contributed to the OpenSSL project. 116 * 117 * The Contribution is licensed pursuant to the Eric Young open source 118 * license provided above. 119 * 120 * The binary polynomial arithmetic software is originally written by 121 * Sheueling Chang Shantz and Douglas Stebila of Sun Microsystems Laboratories. 122 * 123 */ 124 125 module deimos.openssl.bn; 126 127 import deimos.openssl._d_util; 128 129 public import deimos.openssl.e_os2; 130 version(OPENSSL_NO_FP_API) {} else { 131 import core.stdc.stdio; /* FILE */ 132 } 133 public import deimos.openssl.types; 134 public import deimos.openssl.crypto; 135 136 extern (C): 137 nothrow: 138 139 /+ Not ported, internal only. 140 /* These preprocessor symbols control various aspects of the bignum headers and 141 * library code. They're not defined by any "normal" configuration, as they are 142 * intended for development and testing purposes. NB: defining all three can be 143 * useful for debugging application code as well as openssl itself. 144 * 145 * BN_DEBUG - turn on various debugging alterations to the bignum code 146 * BN_DEBUG_RAND - uses random poisoning of unused words to trip up 147 * mismanagement of bignum internals. You must also define BN_DEBUG. 148 */ 149 /* #define BN_DEBUG */ 150 /* #define BN_DEBUG_RAND */ 151 152 // #ifndef OPENSSL_SMALL_FOOTPRINT 153 // #define BN_MUL_COMBA 154 // #define BN_SQR_COMBA 155 // #define BN_RECURSION 156 // #endif 157 158 /* This next option uses the C libraries (2 word)/(1 word) function. 159 * If it is not defined, I use my C version (which is slower). 160 * The reason for this flag is that when the particular C compiler 161 * library routine is used, and the library is linked with a different 162 * compiler, the library is missing. This mostly happens when the 163 * library is built with gcc and then linked using normal cc. This would 164 * be a common occurrence because gcc normally produces code that is 165 * 2 times faster than system compilers for the big number stuff. 166 * For machines with only one compiler (or shared libraries), this should 167 * be on. Again this in only really a problem on machines 168 * using "long long's", are 32bit, and are not using my assembler code. */ 169 #if defined(OPENSSL_SYS_MSDOS) || defined(OPENSSL_SYS_WINDOWS) || \ 170 defined(OPENSSL_SYS_WIN32) || defined(linux) 171 # ifndef BN_DIV2W 172 # define BN_DIV2W 173 # endif 174 #endif 175 176 177 /* assuming c_long is 64bit - this is the DEC Alpha 178 * c_ulong c_long is only 64 bits :-(, don't define 179 * BN_LLONG for the DEC Alpha */ 180 #ifdef SIXTY_FOUR_BIT_LONG 181 alias c_ulong BN_ULLONG; c_long 182 alias c_ulong BN_ULONG; 183 alias c_long BN_LONG; 184 enum BN_BITS = 128; 185 enum BN_BYTES = 8; 186 enum BN_BITS2 = 64; 187 enum BN_BITS4 = 32; 188 #define BN_MASK (0xffffffffffffffffffffffffffffffffLL) 189 #define BN_MASK2 (0xffffffffffffffffL) 190 #define BN_MASK2l (0xffffffffL) 191 #define BN_MASK2h (0xffffffff00000000L) 192 #define BN_MASK2h1 (0xffffffff80000000L) 193 #define BN_TBIT (0x8000000000000000L) 194 enum BN_DEC_CONV = (10000000000000000000UL); 195 enum BN_DEC_FMT1 = "%lu"; 196 enum BN_DEC_FMT2 = "%019lu"; 197 enum BN_DEC_NUM = 19; 198 enum BN_HEX_FMT1 = "%lX"; 199 enum BN_HEX_FMT2 = "%016lX"; 200 #endif 201 202 /* This is where the c_long long data type is 64 bits, but c_long is 32. 203 * For machines where there are 64bit registers, this is the mode to use. 204 * IRIX, on R4000 and above should use this mode, along with the relevant 205 * assembler code :-). Do NOT define BN_LLONG. 206 */ 207 #ifdef SIXTY_FOUR_BIT 208 #undef BN_LLONG 209 #undef BN_ULLONG 210 alias c_ulong BN_ULONG; c_long 211 alias c_long BN_LONG; long 212 enum BN_BITS = 128; 213 enum BN_BYTES = 8; 214 enum BN_BITS2 = 64; 215 enum BN_BITS4 = 32; 216 #define BN_MASK2 (0xffffffffffffffffLL) 217 #define BN_MASK2l (0xffffffffL) 218 #define BN_MASK2h (0xffffffff00000000LL) 219 #define BN_MASK2h1 (0xffffffff80000000LL) 220 #define BN_TBIT (0x8000000000000000LL) 221 enum BN_DEC_CONV = (10000000000000000000ULL); 222 enum BN_DEC_FMT1 = "%llu"; 223 enum BN_DEC_FMT2 = "%019llu"; 224 enum BN_DEC_NUM = 19; 225 enum BN_HEX_FMT1 = "%llX"; 226 enum BN_HEX_FMT2 = "%016llX"; 227 #endif 228 229 #ifdef THIRTY_TWO_BIT+/ 230 // #ifdef BN_LLONG 231 // # if defined(_WIN32) && !defined(__GNUC__) 232 // # define BN_ULLONG unsigned __int64 233 // # define BN_MASK (0xffffffffffffffffI64) 234 // # else 235 // # define BN_ULLONG c_ulong c_long 236 // # define BN_MASK (0xffffffffffffffffLL) 237 // # endif 238 // #endif 239 // FIXME: Is this correct? 240 alias ulong BN_ULLONG; 241 alias uint BN_ULONG; 242 alias int BN_LONG; 243 enum BN_BITS = 64; 244 enum BN_BYTES = 4; 245 enum BN_BITS2 = 32; 246 enum BN_BITS4 = 16; 247 enum BN_MASK2 = 0xffffffff; 248 enum BN_MASK2l = 0xffff; 249 enum BN_MASK2h1 = 0xffff8000; 250 enum BN_MASK2h = 0xffff0000; 251 enum BN_TBIT = 0x80000000; 252 enum BN_DEC_CONV = 1000000000; 253 enum BN_DEC_FMT1 = "%u"; 254 enum BN_DEC_FMT2 = "%09u"; 255 enum BN_DEC_NUM = 9; 256 enum BN_HEX_FMT1 = "%X"; 257 enum BN_HEX_FMT2 = "%08X"; 258 /+#endif 259 260 /* 2011-02-22 SMS. 261 * In various places, a size_t variable or a type cast to size_t was 262 * used to perform integer-only operations on pointers. This failed on 263 * VMS with 64-bit pointers (CC /POINTER_SIZE = 64) because size_t is 264 * still only 32 bits. What's needed in these cases is an integer type 265 * with the same size as a pointer, which size_t is not certain to be. 266 * The only fix here is VMS-specific. 267 */ 268 #if defined(OPENSSL_SYS_VMS) 269 # if __INITIAL_POINTER_SIZE == 64 270 # define PTR_SIZE_INT c_long long 271 # else /* __INITIAL_POINTER_SIZE == 64 */ 272 # define PTR_SIZE_INT int 273 # endif /* __INITIAL_POINTER_SIZE == 64 [else] */ 274 #else /* defined(OPENSSL_SYS_VMS) */ 275 # define PTR_SIZE_INT size_t 276 #endif /* defined(OPENSSL_SYS_VMS) [else] */ 277 +/ 278 enum BN_DEFAULT_BITS = 1280; 279 280 enum BN_FLG_MALLOCED = 0x01; 281 enum BN_FLG_STATIC_DATA = 0x02; 282 enum BN_FLG_CONSTTIME = 0x04; /* avoid leaking exponent information through timing, 283 * BN_mod_exp_mont() will call BN_mod_exp_mont_consttime, 284 * BN_div() will call BN_div_no_branch, 285 * BN_mod_inverse() will call BN_mod_inverse_no_branch. 286 */ 287 288 version(OPENSSL_NO_DEPRECATED) {} else { 289 alias BN_FLG_CONSTTIME BN_FLG_EXP_CONSTTIME; /* deprecated name for the flag */ 290 /* avoid leaking exponent information through timings 291 * (BN_mod_exp_mont() will call BN_mod_exp_mont_consttime) */ 292 } 293 294 version(OPENSSL_NO_DEPRECATED) {} else { 295 enum BN_FLG_FREE = 0x8000; /* used for debuging */ 296 } 297 void BN_set_flags()(BIGNUM* b, int n) { b.flags |= n; } 298 int BN_get_flags()(const(BIGNUM)* b, int n) { return b.flags & n; } 299 300 /* get a clone of a BIGNUM with changed flags, for* temporary* use only 301 * (the two BIGNUMs cannot not be used in parallel!) */ 302 void BN_with_flags()(BIGNUM* dest, BIGNUM* b, int n) { 303 dest.d=b.d; 304 dest.top=b.top; 305 dest.dmax=b.dmax; 306 dest.neg=b.neg; 307 dest.flags=(dest.flags & BN_FLG_MALLOCED) 308 | (b.flags & ~BN_FLG_MALLOCED) 309 | BN_FLG_STATIC_DATA 310 | n; 311 } 312 313 /* Wrapper function to make using BN_GENCB easier, */ 314 int BN_GENCB_call(BN_GENCB* cb, int a, int b); 315 /* Macro to populate a BN_GENCB structure with an "old"-style callback */ 316 void BN_GENCB_set_old()(gencb, callback, cb_arg) { 317 BN_GENCB* tmp_gencb = (gencb); 318 tmp_gencb.ver = 1; 319 tmp_gencb.arg = (cb_arg); 320 tmp_gencb.cb.cb_1 = (callback); 321 } 322 /* Macro to populate a BN_GENCB structure with a "new"-style callback */ 323 void BN_GENCB_set()(gencb, callback, cb_arg) { 324 BN_GENCB* tmp_gencb = (gencb); 325 tmp_gencb.ver = 2; 326 tmp_gencb.arg = (cb_arg); 327 tmp_gencb.cb.cb_2 = (callback); 328 } 329 330 enum BN_prime_checks = 0; /* default: select number of iterations 331 based on the size of the number */ 332 333 /* number of Miller-Rabin iterations for an error rate of less than 2^-80 334 * for random 'b'-bit input, b >= 100 (taken from table 4.4 in the Handbook 335 * of Applied Cryptography [Menezes, van Oorschot, Vanstone; CRC Press 1996]; 336 * original paper: Damgaard, Landrock, Pomerance: Average case error estimates 337 * for the strong probable prime test. -- Math. Comp. 61 (1993) 177-194) */ 338 auto BN_prime_checks_for_size(T)(T b) { 339 return ((b) >= 1300 ? 2 : 340 (b) >= 850 ? 3 : 341 (b) >= 650 ? 4 : 342 (b) >= 550 ? 5 : 343 (b) >= 450 ? 6 : 344 (b) >= 400 ? 7 : 345 (b) >= 350 ? 8 : 346 (b) >= 300 ? 9 : 347 (b) >= 250 ? 12 : 348 (b) >= 200 ? 15 : 349 (b) >= 150 ? 18 : 350 /* b >= 100 */ 27); 351 } 352 353 auto BN_num_bytes()(const(BIGNUM)* a) { return (BN_num_bits(a)+7)/8; } 354 355 /* Note that BN_abs_is_word didn't work reliably for w == 0 until 0.9.8 */ 356 auto BN_abs_is_word()(const(BIGNUM)* a, BN_ULONG w) { return (((a.top == 1) && (a.d[0] == (w))) || 357 (((w) == 0) && (a.top == 0))); } 358 auto BN_is_zero()(const(BIGNUM)* a) { return (a.top == 0); } 359 auto BN_is_one()(const(BIGNUM)* a) { return (BN_abs_is_word((a),1) && !a.neg); } 360 auto BN_is_word()(const(BIGNUM)* a, BN_ULONG w) { return (BN_abs_is_word((a),(w)) && (!(w) || !a.neg)); } 361 auto BN_is_odd()(const(BIGNUM)* a) { return ((a.top > 0) && (a.d[0] & 1)); } 362 363 auto BN_one()(BIGNUM* a) { return BN_set_word((a),1); } 364 auto BN_zero_ex()(BIGNUM* a) { 365 a.top = 0; 366 a.neg = 0; 367 } 368 version (OPENSSL_NO_DEPRECATED) { 369 alias BN_zero_ex BN_zero; 370 } else { 371 auto BN_zero()(BIGNUM* a) { return BN_set_word(a,0); } 372 } 373 374 const(BIGNUM)* BN_value_one(); 375 char* BN_options(); 376 BN_CTX* BN_CTX_new(); 377 version(OPENSSL_NO_DEPRECATED) {} else { 378 void BN_CTX_init(BN_CTX* c); 379 } 380 void BN_CTX_free(BN_CTX* c); 381 void BN_CTX_start(BN_CTX* ctx); 382 BIGNUM* BN_CTX_get(BN_CTX* ctx); 383 void BN_CTX_end(BN_CTX* ctx); 384 int BN_rand(BIGNUM* rnd, int bits, int top,int bottom); 385 int BN_pseudo_rand(BIGNUM* rnd, int bits, int top,int bottom); 386 int BN_rand_range(BIGNUM* rnd, const(BIGNUM)* range); 387 int BN_pseudo_rand_range(BIGNUM* rnd, const(BIGNUM)* range); 388 int BN_num_bits(const(BIGNUM)* a); 389 int BN_num_bits_word(BN_ULONG); 390 BIGNUM* BN_new(); 391 void BN_init(BIGNUM*); 392 void BN_clear_free(BIGNUM* a); 393 BIGNUM* BN_copy(BIGNUM* a, const(BIGNUM)* b); 394 void BN_swap(BIGNUM* a, BIGNUM* b); 395 BIGNUM* BN_bin2bn(const(ubyte)* s,int len,BIGNUM* ret); 396 int BN_bn2bin(const(BIGNUM)* a, ubyte* to); 397 BIGNUM* BN_mpi2bn(const(ubyte)* s,int len,BIGNUM* ret); 398 int BN_bn2mpi(const(BIGNUM)* a, ubyte* to); 399 int BN_sub(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b); 400 int BN_usub(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b); 401 int BN_uadd(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b); 402 int BN_add(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b); 403 int BN_mul(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, BN_CTX* ctx); 404 int BN_sqr(BIGNUM* r, const(BIGNUM)* a,BN_CTX* ctx); 405 /** BN_set_negative sets sign of a BIGNUM 406 * \param b pointer to the BIGNUM object 407 * \param n 0 if the BIGNUM b should be positive and a value != 0 otherwise 408 */ 409 void BN_set_negative(BIGNUM* b, int n); 410 /** BN_is_negative returns 1 if the BIGNUM is negative 411 * \param a pointer to the BIGNUM object 412 * \return 1 if a < 0 and 0 otherwise 413 */ 414 auto BN_is_negative()(const(BIGNUM)* a) { return a.neg != 0; } 415 416 int BN_div(BIGNUM* dv, BIGNUM* rem, const(BIGNUM)* m, const(BIGNUM)* d, 417 BN_CTX* ctx); 418 auto BN_mod()(BIGNUM* rem,const(BIGNUM)* m,const(BIGNUM)* d,BN_CTX* ctx) { return BN_div(null,(rem),(m),(d),(ctx)); } 419 int BN_nnmod(BIGNUM* r, const(BIGNUM)* m, const(BIGNUM)* d, BN_CTX* ctx); 420 int BN_mod_add(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, const(BIGNUM)* m, BN_CTX* ctx); 421 int BN_mod_add_quick(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, const(BIGNUM)* m); 422 int BN_mod_sub(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, const(BIGNUM)* m, BN_CTX* ctx); 423 int BN_mod_sub_quick(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, const(BIGNUM)* m); 424 int BN_mod_mul(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, 425 const(BIGNUM)* m, BN_CTX* ctx); 426 int BN_mod_sqr(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* m, BN_CTX* ctx); 427 int BN_mod_lshift1(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* m, BN_CTX* ctx); 428 int BN_mod_lshift1_quick(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* m); 429 int BN_mod_lshift(BIGNUM* r, const(BIGNUM)* a, int n, const(BIGNUM)* m, BN_CTX* ctx); 430 int BN_mod_lshift_quick(BIGNUM* r, const(BIGNUM)* a, int n, const(BIGNUM)* m); 431 432 BN_ULONG BN_mod_word(const(BIGNUM)* a, BN_ULONG w); 433 BN_ULONG BN_div_word(BIGNUM* a, BN_ULONG w); 434 int BN_mul_word(BIGNUM* a, BN_ULONG w); 435 int BN_add_word(BIGNUM* a, BN_ULONG w); 436 int BN_sub_word(BIGNUM* a, BN_ULONG w); 437 int BN_set_word(BIGNUM* a, BN_ULONG w); 438 BN_ULONG BN_get_word(const(BIGNUM)* a); 439 440 int BN_cmp(const(BIGNUM)* a, const(BIGNUM)* b); 441 void BN_free(BIGNUM* a); 442 int BN_is_bit_set(const(BIGNUM)* a, int n); 443 int BN_lshift(BIGNUM* r, const(BIGNUM)* a, int n); 444 int BN_lshift1(BIGNUM* r, const(BIGNUM)* a); 445 int BN_exp(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p,BN_CTX* ctx); 446 447 int BN_mod_exp(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, 448 const(BIGNUM)* m,BN_CTX* ctx); 449 int BN_mod_exp_mont(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, 450 const(BIGNUM)* m, BN_CTX* ctx, BN_MONT_CTX* m_ctx); 451 int BN_mod_exp_mont_consttime(BIGNUM* rr, const(BIGNUM)* a, const(BIGNUM)* p, 452 const(BIGNUM)* m, BN_CTX* ctx, BN_MONT_CTX* in_mont); 453 int BN_mod_exp_mont_word(BIGNUM* r, BN_ULONG a, const(BIGNUM)* p, 454 const(BIGNUM)* m, BN_CTX* ctx, BN_MONT_CTX* m_ctx); 455 int BN_mod_exp2_mont(BIGNUM* r, const(BIGNUM)* a1, const(BIGNUM)* p1, 456 const(BIGNUM)* a2, const(BIGNUM)* p2,const(BIGNUM)* m, 457 BN_CTX* ctx,BN_MONT_CTX* m_ctx); 458 int BN_mod_exp_simple(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, 459 const(BIGNUM)* m,BN_CTX* ctx); 460 461 int BN_mask_bits(BIGNUM* a,int n); 462 version(OPENSSL_NO_FP_API) {} else { 463 int BN_print_fp(FILE* fp, const(BIGNUM)* a); 464 } 465 // #ifdef HEADER_BIO_H 466 import deimos.openssl.bio; 467 int BN_print(BIO* fp, const(BIGNUM)* a); 468 // #else 469 // int BN_print(void* fp, const(BIGNUM)* a); 470 // #endif 471 int BN_reciprocal(BIGNUM* r, const(BIGNUM)* m, int len, BN_CTX* ctx); 472 int BN_rshift(BIGNUM* r, const(BIGNUM)* a, int n); 473 int BN_rshift1(BIGNUM* r, const(BIGNUM)* a); 474 void BN_clear(BIGNUM* a); 475 BIGNUM* BN_dup(const(BIGNUM)* a); 476 int BN_ucmp(const(BIGNUM)* a, const(BIGNUM)* b); 477 int BN_set_bit(BIGNUM* a, int n); 478 int BN_clear_bit(BIGNUM* a, int n); 479 char* BN_bn2hex(const(BIGNUM)* a); 480 char* BN_bn2dec(const(BIGNUM)* a); 481 int BN_hex2bn(BIGNUM** a, const(char)* str); 482 int BN_dec2bn(BIGNUM** a, const(char)* str); 483 int BN_asc2bn(BIGNUM** a, const(char)* str); 484 int BN_gcd(BIGNUM* r,const(BIGNUM)* a,const(BIGNUM)* b,BN_CTX* ctx); 485 int BN_kronecker(const(BIGNUM)* a,const(BIGNUM)* b,BN_CTX* ctx); /* returns -2 for error */ 486 BIGNUM* BN_mod_inverse(BIGNUM* ret, 487 const(BIGNUM)* a, const(BIGNUM)* n,BN_CTX* ctx); 488 BIGNUM* BN_mod_sqrt(BIGNUM* ret, 489 const(BIGNUM)* a, const(BIGNUM)* n,BN_CTX* ctx); 490 491 void BN_consttime_swap(BN_ULONG swap, BIGNUM *a, BIGNUM *b, int nwords); 492 493 /* Deprecated versions */ 494 version(OPENSSL_NO_DEPRECATED) {} else { 495 BIGNUM* BN_generate_prime(BIGNUM* ret,int bits,int safe, 496 const(BIGNUM)* add, const(BIGNUM)* rem, 497 ExternC!(void function(int,int,void*)) callback,void* cb_arg); 498 int BN_is_prime(const(BIGNUM)* p,int nchecks, 499 ExternC!(void function(int,int,void*)) callback, 500 BN_CTX* ctx,void* cb_arg); 501 int BN_is_prime_fasttest(const(BIGNUM)* p,int nchecks, 502 ExternC!(void function(int,int,void*)) callback,BN_CTX* ctx,void* cb_arg, 503 int do_trial_division); 504 } /* !defined(OPENSSL_NO_DEPRECATED) */ 505 506 /* Newer versions */ 507 int BN_generate_prime_ex(BIGNUM* ret,int bits,int safe, const(BIGNUM)* add, 508 const(BIGNUM)* rem, BN_GENCB* cb); 509 int BN_is_prime_ex(const(BIGNUM)* p,int nchecks, BN_CTX* ctx, BN_GENCB* cb); 510 int BN_is_prime_fasttest_ex(const(BIGNUM)* p,int nchecks, BN_CTX* ctx, 511 int do_trial_division, BN_GENCB* cb); 512 513 int BN_X931_generate_Xpq(BIGNUM *Xp, BIGNUM *Xq, int nbits, BN_CTX *ctx); 514 515 int BN_X931_derive_prime_ex(BIGNUM *p, BIGNUM *p1, BIGNUM *p2, 516 const(BIGNUM)* Xp, const(BIGNUM)* Xp1, const(BIGNUM)* Xp2, 517 const(BIGNUM)* e, BN_CTX *ctx, BN_GENCB *cb); 518 int BN_X931_generate_prime_ex(BIGNUM *p, BIGNUM *p1, BIGNUM *p2, 519 BIGNUM *Xp1, BIGNUM *Xp2, 520 const(BIGNUM)* Xp, 521 const(BIGNUM)* e, BN_CTX *ctx, 522 BN_GENCB *cb); 523 524 BN_MONT_CTX* BN_MONT_CTX_new(); 525 void BN_MONT_CTX_init(BN_MONT_CTX* ctx); 526 int BN_mod_mul_montgomery(BIGNUM* r,const(BIGNUM)* a,const(BIGNUM)* b, 527 BN_MONT_CTX* mont, BN_CTX* ctx); 528 auto BN_to_montgomery()(BIGNUM* r,const(BIGNUM)* a,BN_MONT_CTX* mont,BN_CTX* ctx) { 529 BN_mod_mul_montgomery((r),(a),&(mont.RR),(mont),(ctx)); 530 } 531 int BN_from_montgomery(BIGNUM* r,const(BIGNUM)* a, 532 BN_MONT_CTX* mont, BN_CTX* ctx); 533 void BN_MONT_CTX_free(BN_MONT_CTX* mont); 534 int BN_MONT_CTX_set(BN_MONT_CTX* mont,const(BIGNUM)* mod,BN_CTX* ctx); 535 BN_MONT_CTX* BN_MONT_CTX_copy(BN_MONT_CTX* to,BN_MONT_CTX* from); 536 BN_MONT_CTX* BN_MONT_CTX_set_locked(BN_MONT_CTX** pmont, int lock, 537 const(BIGNUM)* mod, BN_CTX* ctx); 538 539 /* BN_BLINDING flags */ 540 enum BN_BLINDING_NO_UPDATE = 0x00000001; 541 enum BN_BLINDING_NO_RECREATE = 0x00000002; 542 543 BN_BLINDING* BN_BLINDING_new(const(BIGNUM)* A, const(BIGNUM)* Ai, BIGNUM* mod); 544 void BN_BLINDING_free(BN_BLINDING* b); 545 int BN_BLINDING_update(BN_BLINDING* b,BN_CTX* ctx); 546 int BN_BLINDING_convert(BIGNUM* n, BN_BLINDING* b, BN_CTX* ctx); 547 int BN_BLINDING_invert(BIGNUM* n, BN_BLINDING* b, BN_CTX* ctx); 548 int BN_BLINDING_convert_ex(BIGNUM* n, BIGNUM* r, BN_BLINDING* b, BN_CTX*); 549 int BN_BLINDING_invert_ex(BIGNUM* n, const(BIGNUM)* r, BN_BLINDING* b, BN_CTX*); 550 version(OPENSSL_NO_DEPRECATED) {} else { 551 c_ulong BN_BLINDING_get_thread_id(const(BN_BLINDING)*); 552 void BN_BLINDING_set_thread_id(BN_BLINDING*, c_ulong); 553 } 554 CRYPTO_THREADID* BN_BLINDING_thread_id(BN_BLINDING*); 555 c_ulong BN_BLINDING_get_flags(const(BN_BLINDING)*); 556 void BN_BLINDING_set_flags(BN_BLINDING*, c_ulong); 557 BN_BLINDING* BN_BLINDING_create_param(BN_BLINDING* b, 558 const(BIGNUM)* e, BIGNUM* m, BN_CTX* ctx, 559 ExternC!(int function(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, 560 const(BIGNUM)* m, BN_CTX* ctx, BN_MONT_CTX* m_ctx)) bn_mod_exp, 561 BN_MONT_CTX* m_ctx); 562 563 version(OPENSSL_NO_DEPRECATED) {} else { 564 void BN_set_params(int mul,int high,int low,int mont); 565 int BN_get_params(int which); /* 0, mul, 1 high, 2 low, 3 mont */ 566 } 567 568 void BN_RECP_CTX_init(BN_RECP_CTX* recp); 569 BN_RECP_CTX* BN_RECP_CTX_new(); 570 void BN_RECP_CTX_free(BN_RECP_CTX* recp); 571 int BN_RECP_CTX_set(BN_RECP_CTX* recp,const(BIGNUM)* rdiv,BN_CTX* ctx); 572 int BN_mod_mul_reciprocal(BIGNUM* r, const(BIGNUM)* x, const(BIGNUM)* y, 573 BN_RECP_CTX* recp,BN_CTX* ctx); 574 int BN_mod_exp_recp(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, 575 const(BIGNUM)* m, BN_CTX* ctx); 576 int BN_div_recp(BIGNUM* dv, BIGNUM* rem, const(BIGNUM)* m, 577 BN_RECP_CTX* recp, BN_CTX* ctx); 578 579 version(OPENSSL_NO_EC2M) {} else { 580 581 /* Functions for arithmetic over binary polynomials represented by BIGNUMs. 582 * 583 * The BIGNUM::neg property of BIGNUMs representing binary polynomials is 584 * ignored. 585 * 586 * Note that input arguments are not const so that their bit arrays can 587 * be expanded to the appropriate size if needed. 588 */ 589 590 int BN_GF2m_add(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b); /*r = a + b*/ 591 alias BN_GF2m_add BN_GF2m_sub; 592 int BN_GF2m_mod(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p); /*r=a mod p*/ 593 int BN_GF2m_mod_mul(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, 594 const(BIGNUM)* p, BN_CTX* ctx); /* r = (a* b) mod p */ 595 int BN_GF2m_mod_sqr(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, 596 BN_CTX* ctx); /* r = (a* a) mod p */ 597 int BN_GF2m_mod_inv(BIGNUM* r, const(BIGNUM)* b, const(BIGNUM)* p, 598 BN_CTX* ctx); /* r = (1 / b) mod p */ 599 int BN_GF2m_mod_div(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, 600 const(BIGNUM)* p, BN_CTX* ctx); /* r = (a / b) mod p */ 601 int BN_GF2m_mod_exp(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, 602 const(BIGNUM)* p, BN_CTX* ctx); /* r = (a ^ b) mod p */ 603 int BN_GF2m_mod_sqrt(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, 604 BN_CTX* ctx); /* r = sqrt(a) mod p */ 605 int BN_GF2m_mod_solve_quad(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, 606 BN_CTX* ctx); /* r^2 + r = a mod p */ 607 alias BN_ucmp BN_GF2m_cmp; 608 /* Some functions allow for representation of the irreducible polynomials 609 * as an uint[], say p. The irreducible f(t) is then of the form: 610 * t^p[0] + t^p[1] + ... + t^p[k] 611 * where m = p[0] > p[1] > ... > p[k] = 0. 612 */ 613 int BN_GF2m_mod_arr(BIGNUM* r, const(BIGNUM)* a, const int[] p); 614 /* r = a mod p */ 615 int BN_GF2m_mod_mul_arr(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, 616 const int[] p, BN_CTX* ctx); /* r = (a* b) mod p */ 617 int BN_GF2m_mod_sqr_arr(BIGNUM* r, const(BIGNUM)* a, const int[] p, 618 BN_CTX* ctx); /* r = (a* a) mod p */ 619 int BN_GF2m_mod_inv_arr(BIGNUM* r, const(BIGNUM)* b, const int[] p, 620 BN_CTX* ctx); /* r = (1 / b) mod p */ 621 int BN_GF2m_mod_div_arr(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, 622 const int[] p, BN_CTX* ctx); /* r = (a / b) mod p */ 623 int BN_GF2m_mod_exp_arr(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* b, 624 const int[] p, BN_CTX* ctx); /* r = (a ^ b) mod p */ 625 int BN_GF2m_mod_sqrt_arr(BIGNUM* r, const(BIGNUM)* a, 626 const int[] p, BN_CTX* ctx); /* r = sqrt(a) mod p */ 627 int BN_GF2m_mod_solve_quad_arr(BIGNUM* r, const(BIGNUM)* a, 628 const int[] p, BN_CTX* ctx); /* r^2 + r = a mod p */ 629 int BN_GF2m_poly2arr(const(BIGNUM)* a, int[] p, int max); 630 int BN_GF2m_arr2poly(const int[] p, BIGNUM* a); 631 632 } 633 634 /* faster mod functions for the 'NIST primes' 635 * 0 <= a < p^2 */ 636 int BN_nist_mod_192(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, BN_CTX* ctx); 637 int BN_nist_mod_224(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, BN_CTX* ctx); 638 int BN_nist_mod_256(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, BN_CTX* ctx); 639 int BN_nist_mod_384(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, BN_CTX* ctx); 640 int BN_nist_mod_521(BIGNUM* r, const(BIGNUM)* a, const(BIGNUM)* p, BN_CTX* ctx); 641 642 const(BIGNUM)* BN_get0_nist_prime_192(); 643 const(BIGNUM)* BN_get0_nist_prime_224(); 644 const(BIGNUM)* BN_get0_nist_prime_256(); 645 const(BIGNUM)* BN_get0_nist_prime_384(); 646 const(BIGNUM)* BN_get0_nist_prime_521(); 647 648 /* library internal functions */ 649 650 auto bn_expand()(BIGNUM* a, int bits) { return ((((((bits+BN_BITS2-1))/BN_BITS2)) <= a.dmax)? 651 (a):bn_expand2((a),(bits+BN_BITS2-1)/BN_BITS2)); } 652 auto bn_wexpand()(BIGNUM* a, int words) { return (((words) <= a.dmax)?(a):bn_expand2((a),(words))); } 653 BIGNUM* bn_expand2(BIGNUM* a, int words); 654 version(OPENSSL_NO_DEPRECATED) {} else { 655 BIGNUM* bn_dup_expand(const(BIGNUM)* a, int words); /* unused */ 656 } 657 658 /+ FIXME: Not yet ported. 659 /* Bignum consistency macros 660 * There is one "API" macro, bn_fix_top(), for stripping leading zeroes from 661 * bignum data after direct manipulations on the data. There is also an 662 * "internal" macro, bn_check_top(), for verifying that there are no leading 663 * zeroes. Unfortunately, some auditing is required due to the fact that 664 * bn_fix_top() has become an overabused duct-tape because bignum data is 665 * occasionally passed around in an inconsistent state. So the following 666 * changes have been made to sort this out_; 667 * - bn_fix_top()s implementation has been moved to bn_correct_top() 668 * - if BN_DEBUG isn't defined, bn_fix_top() maps to bn_correct_top(), and 669 * bn_check_top() is as before. 670 * - if BN_DEBUG* is* defined; 671 * - bn_check_top() tries to pollute unused words even if the bignum 'top' is 672 * consistent. (ed: only if BN_DEBUG_RAND is defined) 673 * - bn_fix_top() maps to bn_check_top() rather than "fixing" anything. 674 * The idea is to have debug builds flag up inconsistent bignums when they 675 * occur. If that occurs in a bn_fix_top(), we examine the code in question; if 676 * the use of bn_fix_top() was appropriate (ie. it follows directly after code 677 * that manipulates the bignum) it is converted to bn_correct_top(), and if it 678 * was not appropriate, we convert it permanently to bn_check_top() and track 679 * down the cause of the bug. Eventually, no internal code should be using the 680 * bn_fix_top() macro. External applications and libraries should try this with 681 * their own code too, both in terms of building against the openssl headers 682 * with BN_DEBUG defined* and* linking with a version of OpenSSL built with it 683 * defined. This not only improves external code, it provides more test 684 * coverage for openssl's own code. 685 */ 686 687 #ifdef BN_DEBUG 688 689 /* We only need assert() when debugging */ 690 #include <assert.h> 691 692 #ifdef BN_DEBUG_RAND 693 /* To avoid "make update" cvs wars due to BN_DEBUG, use some tricks */ 694 #ifndef RAND_pseudo_bytes 695 int RAND_pseudo_bytes(ubyte* buf,int num); 696 #define BN_DEBUG_TRIX 697 #endif 698 #define bn_pollute(a) \ 699 do { \ 700 const(BIGNUM)* _bnum1 = (a); \ 701 if(_bnum1->top < _bnum1->dmax) { \ 702 ubyte _tmp_char; \ 703 /* We cast away const without the compiler knowing, any \ 704 ** genuinely* constant variables that aren't mutable \ 705 * wouldn't be constructed with top!=dmax. */ \ 706 BN_ULONG* _not_const; \ 707 memcpy(&_not_const, &_bnum1->d, sizeof(BN_ULONG*)); \ 708 RAND_pseudo_bytes(&_tmp_char, 1); \ 709 memset((ubyte*)(_not_const + _bnum1->top), _tmp_char, \ 710 (_bnum1->dmax - _bnum1->top) * sizeof(BN_ULONG)); \ 711 } \ 712 } while(0) 713 #ifdef BN_DEBUG_TRIX 714 #undef RAND_pseudo_bytes 715 #endif 716 #else 717 #define bn_pollute(a) 718 #endif 719 #define bn_check_top(a) \ 720 do { \ 721 const(BIGNUM)* _bnum2 = (a); \ 722 if (_bnum2 != NULL) { \ 723 assert((_bnum2->top == 0) || \ 724 (_bnum2->d[_bnum2->top - 1] != 0)); \ 725 bn_pollute(_bnum2); \ 726 } \ 727 } while(0) 728 729 #define bn_fix_top(a) bn_check_top(a) 730 731 #define bn_check_size(bn, bits) bn_wcheck_size(bn, ((bits+BN_BITS2-1))/BN_BITS2) 732 #define bn_wcheck_size(bn, words) \ 733 do { \ 734 const BIGNUM *_bnum2 = (bn); \ 735 assert(words <= (_bnum2)->dmax && words >= (_bnum2)->top); \ 736 } while(0) 737 738 #else /* !BN_DEBUG */ 739 +/ 740 void bn_pollute()(BIGNUM* a) {} 741 void bn_check_top()(BIGNUM* a) {} 742 alias bn_correct_top bn_fix_top; 743 void bn_check_size()(BIGNUM* bn, size_t bits) {} 744 void bn_wcheck_size()(BIGNUM* bn, size_t words) {} 745 746 // #endif 747 748 auto bn_correct_top()(BIGNUM* a) { 749 BN_ULONG* ftl; 750 int tmp_top = a.top; 751 if (tmp_top > 0) 752 { 753 for (ftl= &(a.d[tmp_top-1]); tmp_top > 0; tmp_top--) 754 if (*(ftl--)) break; 755 a.top = tmp_top; 756 } 757 bn_pollute(a); 758 } 759 760 BN_ULONG bn_mul_add_words(BN_ULONG* rp, const(BN_ULONG)* ap, int num, BN_ULONG w); 761 BN_ULONG bn_mul_words(BN_ULONG* rp, const(BN_ULONG)* ap, int num, BN_ULONG w); 762 void bn_sqr_words(BN_ULONG* rp, const(BN_ULONG)* ap, int num); 763 BN_ULONG bn_div_words(BN_ULONG h, BN_ULONG l, BN_ULONG d); 764 BN_ULONG bn_add_words(BN_ULONG* rp, const(BN_ULONG)* ap, const(BN_ULONG)* bp,int num); 765 BN_ULONG bn_sub_words(BN_ULONG* rp, const(BN_ULONG)* ap, const(BN_ULONG)* bp,int num); 766 767 /* Primes from RFC 2409 */ 768 BIGNUM* get_rfc2409_prime_768(BIGNUM* bn); 769 BIGNUM* get_rfc2409_prime_1024(BIGNUM* bn); 770 771 /* Primes from RFC 3526 */ 772 BIGNUM* get_rfc3526_prime_1536(BIGNUM* bn); 773 BIGNUM* get_rfc3526_prime_2048(BIGNUM* bn); 774 BIGNUM* get_rfc3526_prime_3072(BIGNUM* bn); 775 BIGNUM* get_rfc3526_prime_4096(BIGNUM* bn); 776 BIGNUM* get_rfc3526_prime_6144(BIGNUM* bn); 777 BIGNUM* get_rfc3526_prime_8192(BIGNUM* bn); 778 779 int BN_bntest_rand(BIGNUM* rnd, int bits, int top,int bottom); 780 781 /* BEGIN ERROR CODES */ 782 /* The following lines are auto generated by the script mkerr.pl. Any changes 783 * made after this point may be overwritten when the script is next run. 784 */ 785 void ERR_load_BN_strings(); 786 787 /* Error codes for the BN functions. */ 788 789 /* Function codes. */ 790 enum BN_F_BNRAND = 127; 791 enum BN_F_BN_BLINDING_CONVERT_EX = 100; 792 enum BN_F_BN_BLINDING_CREATE_PARAM = 128; 793 enum BN_F_BN_BLINDING_INVERT_EX = 101; 794 enum BN_F_BN_BLINDING_NEW = 102; 795 enum BN_F_BN_BLINDING_UPDATE = 103; 796 enum BN_F_BN_BN2DEC = 104; 797 enum BN_F_BN_BN2HEX = 105; 798 enum BN_F_BN_CTX_GET = 116; 799 enum BN_F_BN_CTX_NEW = 106; 800 enum BN_F_BN_CTX_START = 129; 801 enum BN_F_BN_DIV = 107; 802 enum BN_F_BN_DIV_NO_BRANCH = 138; 803 enum BN_F_BN_DIV_RECP = 130; 804 enum BN_F_BN_EXP = 123; 805 enum BN_F_BN_EXPAND2 = 108; 806 enum BN_F_BN_EXPAND_INTERNAL = 120; 807 enum BN_F_BN_GF2M_MOD = 131; 808 enum BN_F_BN_GF2M_MOD_EXP = 132; 809 enum BN_F_BN_GF2M_MOD_MUL = 133; 810 enum BN_F_BN_GF2M_MOD_SOLVE_QUAD = 134; 811 enum BN_F_BN_GF2M_MOD_SOLVE_QUAD_ARR = 135; 812 enum BN_F_BN_GF2M_MOD_SQR = 136; 813 enum BN_F_BN_GF2M_MOD_SQRT = 137; 814 enum BN_F_BN_MOD_EXP2_MONT = 118; 815 enum BN_F_BN_MOD_EXP_MONT = 109; 816 enum BN_F_BN_MOD_EXP_MONT_CONSTTIME = 124; 817 enum BN_F_BN_MOD_EXP_MONT_WORD = 117; 818 enum BN_F_BN_MOD_EXP_RECP = 125; 819 enum BN_F_BN_MOD_EXP_SIMPLE = 126; 820 enum BN_F_BN_MOD_INVERSE = 110; 821 enum BN_F_BN_MOD_INVERSE_NO_BRANCH = 139; 822 enum BN_F_BN_MOD_LSHIFT_QUICK = 119; 823 enum BN_F_BN_MOD_MUL_RECIPROCAL = 111; 824 enum BN_F_BN_MOD_SQRT = 121; 825 enum BN_F_BN_MPI2BN = 112; 826 enum BN_F_BN_NEW = 113; 827 enum BN_F_BN_RAND = 114; 828 enum BN_F_BN_RAND_RANGE = 122; 829 enum BN_F_BN_USUB = 115; 830 831 /* Reason codes. */ 832 enum BN_R_ARG2_LT_ARG3 = 100; 833 enum BN_R_BAD_RECIPROCAL = 101; 834 enum BN_R_BIGNUM_TOO_LONG = 114; 835 enum BN_R_CALLED_WITH_EVEN_MODULUS = 102; 836 enum BN_R_DIV_BY_ZERO = 103; 837 enum BN_R_ENCODING_ERROR = 104; 838 enum BN_R_EXPAND_ON_STATIC_BIGNUM_DATA = 105; 839 enum BN_R_INPUT_NOT_REDUCED = 110; 840 enum BN_R_INVALID_LENGTH = 106; 841 enum BN_R_INVALID_RANGE = 115; 842 enum BN_R_NOT_A_SQUARE = 111; 843 enum BN_R_NOT_INITIALIZED = 107; 844 enum BN_R_NO_INVERSE = 108; 845 enum BN_R_NO_SOLUTION = 116; 846 enum BN_R_P_IS_NOT_PRIME = 112; 847 enum BN_R_TOO_MANY_ITERATIONS = 113; 848 enum BN_R_TOO_MANY_TEMPORARY_VARIABLES = 109;