Mercurial > dropbear
annotate libtommath/tommath.h @ 1691:2d3745d58843
try rearrange travis build matrix
author | Matt Johnston <matt@ucc.asn.au> |
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date | Tue, 26 May 2020 23:27:26 +0800 |
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children | 1051e4eea25a |
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1 /* LibTomMath, multiple-precision integer library -- Tom St Denis |
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2 * |
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3 * LibTomMath is a library that provides multiple-precision |
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4 * integer arithmetic as well as number theoretic functionality. |
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5 * |
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6 * The library was designed directly after the MPI library by |
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7 * Michael Fromberger but has been written from scratch with |
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8 * additional optimizations in place. |
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9 * |
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10 * SPDX-License-Identifier: Unlicense |
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11 */ |
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12 #ifndef BN_H_ |
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13 #define BN_H_ |
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14 |
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15 #include <stdio.h> |
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16 #include <stdlib.h> |
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18 #include <limits.h> |
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19 |
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20 #include "tommath_class.h" |
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21 |
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22 #ifdef __cplusplus |
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23 extern "C" { |
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24 #endif |
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25 |
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26 /* MS Visual C++ doesn't have a 128bit type for words, so fall back to 32bit MPI's (where words are 64bit) */ |
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27 #if defined(_MSC_VER) || defined(__LLP64__) || defined(__e2k__) || defined(__LCC__) |
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28 # define MP_32BIT |
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29 #endif |
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30 |
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31 /* detect 64-bit mode if possible */ |
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32 #if defined(__x86_64__) || defined(_M_X64) || defined(_M_AMD64) || \ |
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33 defined(__powerpc64__) || defined(__ppc64__) || defined(__PPC64__) || \ |
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34 defined(__s390x__) || defined(__arch64__) || defined(__aarch64__) || \ |
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35 defined(__sparcv9) || defined(__sparc_v9__) || defined(__sparc64__) || \ |
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36 defined(__ia64) || defined(__ia64__) || defined(__itanium__) || defined(_M_IA64) || \ |
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37 defined(__LP64__) || defined(_LP64) || defined(__64BIT__) |
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38 # if !(defined(MP_32BIT) || defined(MP_16BIT) || defined(MP_8BIT)) |
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39 # if defined(__GNUC__) |
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40 /* we support 128bit integers only via: __attribute__((mode(TI))) */ |
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41 # define MP_64BIT |
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42 # else |
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43 /* otherwise we fall back to MP_32BIT even on 64bit platforms */ |
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44 # define MP_32BIT |
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45 # endif |
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46 # endif |
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47 #endif |
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48 |
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49 /* some default configurations. |
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50 * |
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51 * A "mp_digit" must be able to hold DIGIT_BIT + 1 bits |
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52 * A "mp_word" must be able to hold 2*DIGIT_BIT + 1 bits |
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53 * |
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54 * At the very least a mp_digit must be able to hold 7 bits |
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55 * [any size beyond that is ok provided it doesn't overflow the data type] |
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56 */ |
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57 #ifdef MP_8BIT |
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58 typedef uint8_t mp_digit; |
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59 typedef uint16_t mp_word; |
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60 # define MP_SIZEOF_MP_DIGIT 1 |
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61 # ifdef DIGIT_BIT |
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62 # error You must not define DIGIT_BIT when using MP_8BIT |
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63 # endif |
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64 #elif defined(MP_16BIT) |
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65 typedef uint16_t mp_digit; |
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66 typedef uint32_t mp_word; |
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67 # define MP_SIZEOF_MP_DIGIT 2 |
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68 # ifdef DIGIT_BIT |
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69 # error You must not define DIGIT_BIT when using MP_16BIT |
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70 # endif |
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71 #elif defined(MP_64BIT) |
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72 /* for GCC only on supported platforms */ |
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73 typedef uint64_t mp_digit; |
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74 typedef unsigned long mp_word __attribute__((mode(TI))); |
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75 # define DIGIT_BIT 60 |
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76 #else |
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77 /* this is the default case, 28-bit digits */ |
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78 |
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79 /* this is to make porting into LibTomCrypt easier :-) */ |
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80 typedef uint32_t mp_digit; |
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81 typedef uint64_t mp_word; |
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82 |
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83 # ifdef MP_31BIT |
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84 /* this is an extension that uses 31-bit digits */ |
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85 # define DIGIT_BIT 31 |
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86 # else |
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87 /* default case is 28-bit digits, defines MP_28BIT as a handy macro to test */ |
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88 # define DIGIT_BIT 28 |
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89 # define MP_28BIT |
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90 # endif |
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91 #endif |
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92 |
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93 /* otherwise the bits per digit is calculated automatically from the size of a mp_digit */ |
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94 #ifndef DIGIT_BIT |
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95 # define DIGIT_BIT (((CHAR_BIT * MP_SIZEOF_MP_DIGIT) - 1)) /* bits per digit */ |
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96 typedef uint_least32_t mp_min_u32; |
1436 | 97 #else |
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98 typedef mp_digit mp_min_u32; |
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99 #endif |
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100 |
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101 #define MP_DIGIT_BIT DIGIT_BIT |
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102 #define MP_MASK ((((mp_digit)1)<<((mp_digit)DIGIT_BIT))-((mp_digit)1)) |
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103 #define MP_DIGIT_MAX MP_MASK |
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104 |
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105 /* equalities */ |
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106 #define MP_LT -1 /* less than */ |
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107 #define MP_EQ 0 /* equal to */ |
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108 #define MP_GT 1 /* greater than */ |
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109 |
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110 #define MP_ZPOS 0 /* positive integer */ |
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111 #define MP_NEG 1 /* negative */ |
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112 |
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113 #define MP_OKAY 0 /* ok result */ |
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114 #define MP_MEM -2 /* out of mem */ |
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115 #define MP_VAL -3 /* invalid input */ |
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116 #define MP_RANGE MP_VAL |
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117 #define MP_ITER -4 /* Max. iterations reached */ |
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118 |
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119 #define MP_YES 1 /* yes response */ |
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120 #define MP_NO 0 /* no response */ |
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121 |
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122 /* Primality generation flags */ |
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123 #define LTM_PRIME_BBS 0x0001 /* BBS style prime */ |
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124 #define LTM_PRIME_SAFE 0x0002 /* Safe prime (p-1)/2 == prime */ |
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125 #define LTM_PRIME_2MSB_ON 0x0008 /* force 2nd MSB to 1 */ |
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126 |
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127 typedef int mp_err; |
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128 |
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129 /* you'll have to tune these... */ |
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130 extern int KARATSUBA_MUL_CUTOFF, |
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131 KARATSUBA_SQR_CUTOFF, |
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132 TOOM_MUL_CUTOFF, |
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133 TOOM_SQR_CUTOFF; |
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134 |
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135 /* define this to use lower memory usage routines (exptmods mostly) */ |
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136 /* #define MP_LOW_MEM */ |
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137 |
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138 /* default precision */ |
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139 #ifndef MP_PREC |
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140 # ifndef MP_LOW_MEM |
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141 # define MP_PREC 32 /* default digits of precision */ |
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142 # else |
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143 # define MP_PREC 8 /* default digits of precision */ |
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144 # endif |
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145 #endif |
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146 |
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147 /* size of comba arrays, should be at least 2 * 2**(BITS_PER_WORD - BITS_PER_DIGIT*2) */ |
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148 #define MP_WARRAY (1u << (((sizeof(mp_word) * CHAR_BIT) - (2 * DIGIT_BIT)) + 1)) |
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149 |
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150 /* the infamous mp_int structure */ |
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151 typedef struct { |
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152 int used, alloc, sign; |
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153 mp_digit *dp; |
284
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154 } mp_int; |
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155 |
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156 /* callback for mp_prime_random, should fill dst with random bytes and return how many read [upto len] */ |
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157 typedef int ltm_prime_callback(unsigned char *dst, int len, void *dat); |
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158 |
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159 |
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160 #define USED(m) ((m)->used) |
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161 #define DIGIT(m, k) ((m)->dp[(k)]) |
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162 #define SIGN(m) ((m)->sign) |
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163 |
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164 /* error code to char* string */ |
1436 | 165 const char *mp_error_to_string(int code); |
284
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166 |
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167 /* ---> init and deinit bignum functions <--- */ |
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168 /* init a bignum */ |
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169 int mp_init(mp_int *a); |
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170 |
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171 /* free a bignum */ |
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172 void mp_clear(mp_int *a); |
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173 |
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174 /* init a null terminated series of arguments */ |
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175 int mp_init_multi(mp_int *mp, ...); |
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176 |
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177 /* clear a null terminated series of arguments */ |
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178 void mp_clear_multi(mp_int *mp, ...); |
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179 |
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180 /* exchange two ints */ |
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181 void mp_exch(mp_int *a, mp_int *b); |
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182 |
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183 /* shrink ram required for a bignum */ |
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184 int mp_shrink(mp_int *a); |
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185 |
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186 /* grow an int to a given size */ |
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187 int mp_grow(mp_int *a, int size); |
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188 |
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189 /* init to a given number of digits */ |
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190 int mp_init_size(mp_int *a, int size); |
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191 |
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192 /* ---> Basic Manipulations <--- */ |
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193 #define mp_iszero(a) (((a)->used == 0) ? MP_YES : MP_NO) |
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194 #define mp_iseven(a) ((((a)->used == 0) || (((a)->dp[0] & 1u) == 0u)) ? MP_YES : MP_NO) |
1436 | 195 #define mp_isodd(a) ((((a)->used > 0) && (((a)->dp[0] & 1u) == 1u)) ? MP_YES : MP_NO) |
196 #define mp_isneg(a) (((a)->sign != MP_ZPOS) ? MP_YES : MP_NO) | |
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197 |
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198 /* set to zero */ |
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199 void mp_zero(mp_int *a); |
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200 |
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201 /* set to a digit */ |
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202 void mp_set(mp_int *a, mp_digit b); |
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203 |
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204 /* set a 32-bit const */ |
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205 int mp_set_int(mp_int *a, unsigned long b); |
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206 |
1436 | 207 /* set a platform dependent unsigned long value */ |
208 int mp_set_long(mp_int *a, unsigned long b); | |
209 | |
210 /* set a platform dependent unsigned long long value */ | |
211 int mp_set_long_long(mp_int *a, unsigned long long b); | |
212 | |
284
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213 /* get a 32-bit value */ |
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214 unsigned long mp_get_int(const mp_int *a); |
284
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215 |
1436 | 216 /* get a platform dependent unsigned long value */ |
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217 unsigned long mp_get_long(const mp_int *a); |
1436 | 218 |
219 /* get a platform dependent unsigned long long value */ | |
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220 unsigned long long mp_get_long_long(const mp_int *a); |
1436 | 221 |
284
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222 /* initialize and set a digit */ |
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223 int mp_init_set(mp_int *a, mp_digit b); |
284
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224 |
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225 /* initialize and set 32-bit value */ |
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226 int mp_init_set_int(mp_int *a, unsigned long b); |
284
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227 |
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228 /* copy, b = a */ |
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229 int mp_copy(const mp_int *a, mp_int *b); |
284
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230 |
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231 /* inits and copies, a = b */ |
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232 int mp_init_copy(mp_int *a, const mp_int *b); |
284
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233 |
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234 /* trim unused digits */ |
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235 void mp_clamp(mp_int *a); |
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236 |
1436 | 237 /* import binary data */ |
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238 int mp_import(mp_int *rop, size_t count, int order, size_t size, int endian, size_t nails, const void *op); |
1436 | 239 |
240 /* export binary data */ | |
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241 int mp_export(void *rop, size_t *countp, int order, size_t size, int endian, size_t nails, const mp_int *op); |
1436 | 242 |
284
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243 /* ---> digit manipulation <--- */ |
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244 |
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245 /* right shift by "b" digits */ |
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246 void mp_rshd(mp_int *a, int b); |
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247 |
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248 /* left shift by "b" digits */ |
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249 int mp_lshd(mp_int *a, int b); |
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250 |
1436 | 251 /* c = a / 2**b, implemented as c = a >> b */ |
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252 int mp_div_2d(const mp_int *a, int b, mp_int *c, mp_int *d); |
284
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253 |
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254 /* b = a/2 */ |
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255 int mp_div_2(const mp_int *a, mp_int *b); |
284
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256 |
1436 | 257 /* c = a * 2**b, implemented as c = a << b */ |
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258 int mp_mul_2d(const mp_int *a, int b, mp_int *c); |
284
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259 |
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260 /* b = a*2 */ |
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261 int mp_mul_2(const mp_int *a, mp_int *b); |
284
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262 |
1436 | 263 /* c = a mod 2**b */ |
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264 int mp_mod_2d(const mp_int *a, int b, mp_int *c); |
284
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265 |
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266 /* computes a = 2**b */ |
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267 int mp_2expt(mp_int *a, int b); |
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268 |
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269 /* Counts the number of lsbs which are zero before the first zero bit */ |
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270 int mp_cnt_lsb(const mp_int *a); |
284
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271 |
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272 /* I Love Earth! */ |
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273 |
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274 /* makes a pseudo-random mp_int of a given size */ |
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275 int mp_rand(mp_int *a, int digits); |
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276 /* makes a pseudo-random small int of a given size */ |
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277 int mp_rand_digit(mp_digit *r); |
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278 |
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279 #ifdef MP_PRNG_ENABLE_LTM_RNG |
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280 /* A last resort to provide random data on systems without any of the other |
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281 * implemented ways to gather entropy. |
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282 * It is compatible with `rng_get_bytes()` from libtomcrypt so you could |
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283 * provide that one and then set `ltm_rng = rng_get_bytes;` */ |
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284 extern unsigned long (*ltm_rng)(unsigned char *out, unsigned long outlen, void (*callback)(void)); |
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285 extern void (*ltm_rng_callback)(void); |
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286 #endif |
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287 |
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288 /* ---> binary operations <--- */ |
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289 /* c = a XOR b */ |
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290 int mp_xor(const mp_int *a, const mp_int *b, mp_int *c); |
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291 |
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292 /* c = a OR b */ |
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293 int mp_or(const mp_int *a, const mp_int *b, mp_int *c); |
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294 |
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295 /* c = a AND b */ |
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296 int mp_and(const mp_int *a, const mp_int *b, mp_int *c); |
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297 |
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298 /* Checks the bit at position b and returns MP_YES |
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299 if the bit is 1, MP_NO if it is 0 and MP_VAL |
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300 in case of error */ |
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301 int mp_get_bit(const mp_int *a, int b); |
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302 |
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303 /* c = a XOR b (two complement) */ |
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304 int mp_tc_xor(const mp_int *a, const mp_int *b, mp_int *c); |
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305 |
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306 /* c = a OR b (two complement) */ |
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307 int mp_tc_or(const mp_int *a, const mp_int *b, mp_int *c); |
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308 |
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309 /* c = a AND b (two complement) */ |
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310 int mp_tc_and(const mp_int *a, const mp_int *b, mp_int *c); |
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311 |
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312 /* right shift (two complement) */ |
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313 int mp_tc_div_2d(const mp_int *a, int b, mp_int *c); |
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314 |
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315 /* ---> Basic arithmetic <--- */ |
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316 |
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317 /* b = ~a */ |
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318 int mp_complement(const mp_int *a, mp_int *b); |
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319 |
284
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320 /* b = -a */ |
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321 int mp_neg(const mp_int *a, mp_int *b); |
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322 |
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323 /* b = |a| */ |
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324 int mp_abs(const mp_int *a, mp_int *b); |
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325 |
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326 /* compare a to b */ |
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327 int mp_cmp(const mp_int *a, const mp_int *b); |
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328 |
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329 /* compare |a| to |b| */ |
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330 int mp_cmp_mag(const mp_int *a, const mp_int *b); |
284
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331 |
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332 /* c = a + b */ |
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333 int mp_add(const mp_int *a, const mp_int *b, mp_int *c); |
284
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334 |
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335 /* c = a - b */ |
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336 int mp_sub(const mp_int *a, const mp_int *b, mp_int *c); |
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337 |
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338 /* c = a * b */ |
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339 int mp_mul(const mp_int *a, const mp_int *b, mp_int *c); |
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340 |
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341 /* b = a*a */ |
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342 int mp_sqr(const mp_int *a, mp_int *b); |
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343 |
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344 /* a/b => cb + d == a */ |
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345 int mp_div(const mp_int *a, const mp_int *b, mp_int *c, mp_int *d); |
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346 |
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347 /* c = a mod b, 0 <= c < b */ |
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348 int mp_mod(const mp_int *a, const mp_int *b, mp_int *c); |
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349 |
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350 /* ---> single digit functions <--- */ |
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351 |
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352 /* compare against a single digit */ |
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353 int mp_cmp_d(const mp_int *a, mp_digit b); |
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354 |
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355 /* c = a + b */ |
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356 int mp_add_d(const mp_int *a, mp_digit b, mp_int *c); |
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357 |
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358 /* c = a - b */ |
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359 int mp_sub_d(const mp_int *a, mp_digit b, mp_int *c); |
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360 |
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361 /* c = a * b */ |
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362 int mp_mul_d(const mp_int *a, mp_digit b, mp_int *c); |
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363 |
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364 /* a/b => cb + d == a */ |
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365 int mp_div_d(const mp_int *a, mp_digit b, mp_int *c, mp_digit *d); |
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366 |
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367 /* a/3 => 3c + d == a */ |
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368 int mp_div_3(const mp_int *a, mp_int *c, mp_digit *d); |
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369 |
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370 /* c = a**b */ |
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371 int mp_expt_d(const mp_int *a, mp_digit b, mp_int *c); |
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372 int mp_expt_d_ex(const mp_int *a, mp_digit b, mp_int *c, int fast); |
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373 |
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374 /* c = a mod b, 0 <= c < b */ |
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375 int mp_mod_d(const mp_int *a, mp_digit b, mp_digit *c); |
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376 |
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377 /* ---> number theory <--- */ |
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378 |
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379 /* d = a + b (mod c) */ |
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380 int mp_addmod(const mp_int *a, const mp_int *b, const mp_int *c, mp_int *d); |
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381 |
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382 /* d = a - b (mod c) */ |
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383 int mp_submod(const mp_int *a, const mp_int *b, const mp_int *c, mp_int *d); |
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384 |
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385 /* d = a * b (mod c) */ |
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386 int mp_mulmod(const mp_int *a, const mp_int *b, const mp_int *c, mp_int *d); |
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387 |
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388 /* c = a * a (mod b) */ |
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389 int mp_sqrmod(const mp_int *a, const mp_int *b, mp_int *c); |
284
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390 |
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391 /* c = 1/a (mod b) */ |
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392 int mp_invmod(const mp_int *a, const mp_int *b, mp_int *c); |
284
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393 |
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394 /* c = (a, b) */ |
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395 int mp_gcd(const mp_int *a, const mp_int *b, mp_int *c); |
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396 |
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397 /* produces value such that U1*a + U2*b = U3 */ |
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398 int mp_exteuclid(const mp_int *a, const mp_int *b, mp_int *U1, mp_int *U2, mp_int *U3); |
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399 |
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400 /* c = [a, b] or (a*b)/(a, b) */ |
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401 int mp_lcm(const mp_int *a, const mp_int *b, mp_int *c); |
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402 |
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403 /* finds one of the b'th root of a, such that |c|**b <= |a| |
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404 * |
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405 * returns error if a < 0 and b is even |
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406 */ |
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407 int mp_n_root(const mp_int *a, mp_digit b, mp_int *c); |
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408 int mp_n_root_ex(const mp_int *a, mp_digit b, mp_int *c, int fast); |
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409 |
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410 /* special sqrt algo */ |
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411 int mp_sqrt(const mp_int *arg, mp_int *ret); |
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412 |
1436 | 413 /* special sqrt (mod prime) */ |
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414 int mp_sqrtmod_prime(const mp_int *n, const mp_int *prime, mp_int *ret); |
1436 | 415 |
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416 /* is number a square? */ |
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417 int mp_is_square(const mp_int *arg, int *ret); |
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418 |
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419 /* computes the jacobi c = (a | n) (or Legendre if b is prime) */ |
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420 int mp_jacobi(const mp_int *a, const mp_int *n, int *c); |
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421 |
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422 /* computes the Kronecker symbol c = (a | p) (like jacobi() but with {a,p} in Z */ |
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423 int mp_kronecker(const mp_int *a, const mp_int *p, int *c); |
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424 |
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425 /* used to setup the Barrett reduction for a given modulus b */ |
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426 int mp_reduce_setup(mp_int *a, const mp_int *b); |
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427 |
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428 /* Barrett Reduction, computes a (mod b) with a precomputed value c |
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429 * |
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430 * Assumes that 0 < x <= m*m, note if 0 > x > -(m*m) then you can merely |
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431 * compute the reduction as -1 * mp_reduce(mp_abs(x)) [pseudo code]. |
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432 */ |
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433 int mp_reduce(mp_int *x, const mp_int *m, const mp_int *mu); |
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434 |
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435 /* setups the montgomery reduction */ |
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436 int mp_montgomery_setup(const mp_int *n, mp_digit *rho); |
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437 |
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438 /* computes a = B**n mod b without division or multiplication useful for |
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439 * normalizing numbers in a Montgomery system. |
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440 */ |
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441 int mp_montgomery_calc_normalization(mp_int *a, const mp_int *b); |
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442 |
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443 /* computes x/R == x (mod N) via Montgomery Reduction */ |
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444 int mp_montgomery_reduce(mp_int *x, const mp_int *n, mp_digit rho); |
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445 |
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446 /* returns 1 if a is a valid DR modulus */ |
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447 int mp_dr_is_modulus(const mp_int *a); |
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448 |
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449 /* sets the value of "d" required for mp_dr_reduce */ |
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450 void mp_dr_setup(const mp_int *a, mp_digit *d); |
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451 |
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452 /* reduces a modulo n using the Diminished Radix method */ |
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453 int mp_dr_reduce(mp_int *x, const mp_int *n, mp_digit k); |
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454 |
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455 /* returns true if a can be reduced with mp_reduce_2k */ |
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456 int mp_reduce_is_2k(const mp_int *a); |
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457 |
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458 /* determines k value for 2k reduction */ |
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459 int mp_reduce_2k_setup(const mp_int *a, mp_digit *d); |
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460 |
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461 /* reduces a modulo b where b is of the form 2**p - k [0 <= a] */ |
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462 int mp_reduce_2k(mp_int *a, const mp_int *n, mp_digit d); |
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463 |
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464 /* returns true if a can be reduced with mp_reduce_2k_l */ |
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465 int mp_reduce_is_2k_l(const mp_int *a); |
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466 |
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467 /* determines k value for 2k reduction */ |
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468 int mp_reduce_2k_setup_l(const mp_int *a, mp_int *d); |
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469 |
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470 /* reduces a modulo b where b is of the form 2**p - k [0 <= a] */ |
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471 int mp_reduce_2k_l(mp_int *a, const mp_int *n, const mp_int *d); |
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472 |
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473 /* Y = G**X (mod P) */ |
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474 int mp_exptmod(const mp_int *G, const mp_int *X, const mp_int *P, mp_int *Y); |
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475 |
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476 /* ---> Primes <--- */ |
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477 |
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478 /* number of primes */ |
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479 #ifdef MP_8BIT |
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480 # define PRIME_SIZE 31 |
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481 #else |
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482 # define PRIME_SIZE 256 |
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483 #endif |
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484 |
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485 /* table of first PRIME_SIZE primes */ |
1436 | 486 extern const mp_digit ltm_prime_tab[PRIME_SIZE]; |
284
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487 |
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488 /* result=1 if a is divisible by one of the first PRIME_SIZE primes */ |
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489 int mp_prime_is_divisible(const mp_int *a, int *result); |
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490 |
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491 /* performs one Fermat test of "a" using base "b". |
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492 * Sets result to 0 if composite or 1 if probable prime |
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493 */ |
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494 int mp_prime_fermat(const mp_int *a, const mp_int *b, int *result); |
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495 |
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496 /* performs one Miller-Rabin test of "a" using base "b". |
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497 * Sets result to 0 if composite or 1 if probable prime |
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498 */ |
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499 int mp_prime_miller_rabin(const mp_int *a, const mp_int *b, int *result); |
284
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500 |
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501 /* This gives [for a given bit size] the number of trials required |
1436 | 502 * such that Miller-Rabin gives a prob of failure lower than 2^-96 |
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503 */ |
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504 int mp_prime_rabin_miller_trials(int size); |
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505 |
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506 /* performs one strong Lucas-Selfridge test of "a". |
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507 * Sets result to 0 if composite or 1 if probable prime |
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508 */ |
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509 int mp_prime_strong_lucas_selfridge(const mp_int *a, int *result); |
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510 |
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511 /* performs one Frobenius test of "a" as described by Paul Underwood. |
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512 * Sets result to 0 if composite or 1 if probable prime |
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513 */ |
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514 int mp_prime_frobenius_underwood(const mp_int *N, int *result); |
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515 |
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516 /* performs t random rounds of Miller-Rabin on "a" additional to |
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517 * bases 2 and 3. Also performs an initial sieve of trial |
284
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518 * division. Determines if "a" is prime with probability |
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519 * of error no more than (1/4)**t. |
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520 * Both a strong Lucas-Selfridge to complete the BPSW test |
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521 * and a separate Frobenius test are available at compile time. |
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522 * With t<0 a deterministic test is run for primes up to |
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523 * 318665857834031151167461. With t<13 (abs(t)-13) additional |
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524 * tests with sequential small primes are run starting at 43. |
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525 * Is Fips 186.4 compliant if called with t as computed by |
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526 * mp_prime_rabin_miller_trials(); |
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527 * |
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528 * Sets result to 1 if probably prime, 0 otherwise |
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529 */ |
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530 int mp_prime_is_prime(const mp_int *a, int t, int *result); |
284
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531 |
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532 /* finds the next prime after the number "a" using "t" trials |
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533 * of Miller-Rabin. |
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534 * |
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535 * bbs_style = 1 means the prime must be congruent to 3 mod 4 |
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536 */ |
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537 int mp_prime_next_prime(mp_int *a, int t, int bbs_style); |
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538 |
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539 /* makes a truly random prime of a given size (bytes), |
1436 | 540 * call with bbs = 1 if you want it to be congruent to 3 mod 4 |
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541 * |
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542 * You have to supply a callback which fills in a buffer with random bytes. "dat" is a parameter you can |
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543 * have passed to the callback (e.g. a state or something). This function doesn't use "dat" itself |
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544 * so it can be NULL |
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545 * |
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546 * The prime generated will be larger than 2^(8*size). |
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547 */ |
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548 #define mp_prime_random(a, t, size, bbs, cb, dat) mp_prime_random_ex(a, t, ((size) * 8) + 1, (bbs==1)?LTM_PRIME_BBS:0, cb, dat) |
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549 |
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550 /* makes a truly random prime of a given size (bits), |
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551 * |
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552 * Flags are as follows: |
1436 | 553 * |
284
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554 * LTM_PRIME_BBS - make prime congruent to 3 mod 4 |
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555 * LTM_PRIME_SAFE - make sure (p-1)/2 is prime as well (implies LTM_PRIME_BBS) |
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556 * LTM_PRIME_2MSB_ON - make the 2nd highest bit one |
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557 * |
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558 * You have to supply a callback which fills in a buffer with random bytes. "dat" is a parameter you can |
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559 * have passed to the callback (e.g. a state or something). This function doesn't use "dat" itself |
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560 * so it can be NULL |
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561 * |
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562 */ |
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563 int mp_prime_random_ex(mp_int *a, int t, int size, int flags, ltm_prime_callback cb, void *dat); |
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564 |
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565 /* ---> radix conversion <--- */ |
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566 int mp_count_bits(const mp_int *a); |
284
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567 |
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568 int mp_unsigned_bin_size(const mp_int *a); |
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569 int mp_read_unsigned_bin(mp_int *a, const unsigned char *b, int c); |
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570 int mp_to_unsigned_bin(const mp_int *a, unsigned char *b); |
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571 int mp_to_unsigned_bin_n(const mp_int *a, unsigned char *b, unsigned long *outlen); |
284
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572 |
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573 int mp_signed_bin_size(const mp_int *a); |
389
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574 int mp_read_signed_bin(mp_int *a, const unsigned char *b, int c); |
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575 int mp_to_signed_bin(const mp_int *a, unsigned char *b); |
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576 int mp_to_signed_bin_n(const mp_int *a, unsigned char *b, unsigned long *outlen); |
284
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577 |
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578 int mp_read_radix(mp_int *a, const char *str, int radix); |
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579 int mp_toradix(const mp_int *a, char *str, int radix); |
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580 int mp_toradix_n(const mp_int *a, char *str, int radix, int maxlen); |
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581 int mp_radix_size(const mp_int *a, int radix, int *size); |
284
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582 |
1436 | 583 #ifndef LTM_NO_FILE |
284
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584 int mp_fread(mp_int *a, int radix, FILE *stream); |
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585 int mp_fwrite(const mp_int *a, int radix, FILE *stream); |
1436 | 586 #endif |
284
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587 |
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588 #define mp_read_raw(mp, str, len) mp_read_signed_bin((mp), (str), (len)) |
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589 #define mp_raw_size(mp) mp_signed_bin_size(mp) |
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590 #define mp_toraw(mp, str) mp_to_signed_bin((mp), (str)) |
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591 #define mp_read_mag(mp, str, len) mp_read_unsigned_bin((mp), (str), (len)) |
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592 #define mp_mag_size(mp) mp_unsigned_bin_size(mp) |
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593 #define mp_tomag(mp, str) mp_to_unsigned_bin((mp), (str)) |
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594 |
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595 #define mp_tobinary(M, S) mp_toradix((M), (S), 2) |
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596 #define mp_tooctal(M, S) mp_toradix((M), (S), 8) |
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597 #define mp_todecimal(M, S) mp_toradix((M), (S), 10) |
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598 #define mp_tohex(M, S) mp_toradix((M), (S), 16) |
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599 |
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600 #ifdef __cplusplus |
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601 } |
284
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602 #endif |
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603 |
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604 #endif |
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605 |
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606 |
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607 /* ref: HEAD -> master, tag: v1.1.0 */ |
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608 /* git commit: 08549ad6bc8b0cede0b357a9c341c5c6473a9c55 */ |
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609 /* commit time: 2019-01-28 20:32:32 +0100 */ |