Mercurial > dropbear
annotate tomsfastmath/src/exptmod/fp_exptmod.c @ 644:ff5cc422ba40 dropbear-tfm tomsfastmath
Somehow Makefile.in went missing
author | Matt Johnston <matt@ucc.asn.au> |
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date | Wed, 23 Nov 2011 18:11:51 +0700 |
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1 /* TomsFastMath, a fast ISO C bignum library. |
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2 * |
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3 * This project is meant to fill in where LibTomMath |
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4 * falls short. That is speed ;-) |
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5 * |
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6 * This project is public domain and free for all purposes. |
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7 * |
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8 * Tom St Denis, [email protected] |
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9 */ |
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10 #include <tfm.h> |
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11 |
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12 #ifdef TFM_TIMING_RESISTANT |
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13 |
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14 /* timing resistant montgomery ladder based exptmod |
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15 |
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16 Based on work by Marc Joye, Sung-Ming Yen, "The Montgomery Powering Ladder", Cryptographic Hardware and Embedded Systems, CHES 2002 |
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17 */ |
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18 static int _fp_exptmod(fp_int * G, fp_int * X, fp_int * P, fp_int * Y) |
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19 { |
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20 fp_int R[2]; |
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21 fp_digit buf, mp; |
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22 int err, bitcnt, digidx, y; |
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23 |
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24 /* now setup montgomery */ |
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25 if ((err = fp_montgomery_setup (P, &mp)) != FP_OKAY) { |
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26 return err; |
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27 } |
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28 |
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29 fp_init(&R[0]); |
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30 fp_init(&R[1]); |
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31 |
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32 /* now we need R mod m */ |
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33 fp_montgomery_calc_normalization (&R[0], P); |
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34 |
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35 /* now set R[0][1] to G * R mod m */ |
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36 if (fp_cmp_mag(P, G) != FP_GT) { |
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37 /* G > P so we reduce it first */ |
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38 fp_mod(G, P, &R[1]); |
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39 } else { |
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40 fp_copy(G, &R[1]); |
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41 } |
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42 fp_mulmod (&R[1], &R[0], P, &R[1]); |
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43 |
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44 /* for j = t-1 downto 0 do |
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45 r_!k = R0*R1; r_k = r_k^2 |
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46 */ |
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47 |
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48 /* set initial mode and bit cnt */ |
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49 bitcnt = 1; |
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50 buf = 0; |
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51 digidx = X->used - 1; |
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52 |
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53 for (;;) { |
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54 /* grab next digit as required */ |
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55 if (--bitcnt == 0) { |
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56 /* if digidx == -1 we are out of digits so break */ |
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57 if (digidx == -1) { |
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58 break; |
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59 } |
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60 /* read next digit and reset bitcnt */ |
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61 buf = X->dp[digidx--]; |
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62 bitcnt = (int)DIGIT_BIT; |
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63 } |
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64 |
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65 /* grab the next msb from the exponent */ |
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66 y = (fp_digit)(buf >> (DIGIT_BIT - 1)) & 1; |
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67 buf <<= (fp_digit)1; |
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68 |
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69 /* do ops */ |
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70 fp_mul(&R[0], &R[1], &R[y^1]); fp_montgomery_reduce(&R[y^1], P, mp); |
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71 fp_sqr(&R[y], &R[y]); fp_montgomery_reduce(&R[y], P, mp); |
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72 } |
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73 |
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74 fp_montgomery_reduce(&R[0], P, mp); |
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75 fp_copy(&R[0], Y); |
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76 return FP_OKAY; |
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77 } |
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78 |
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79 #else |
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80 |
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81 /* y = g**x (mod b) |
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82 * Some restrictions... x must be positive and < b |
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83 */ |
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84 static int _fp_exptmod(fp_int * G, fp_int * X, fp_int * P, fp_int * Y) |
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85 { |
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86 fp_int M[64], res; |
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87 fp_digit buf, mp; |
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88 int err, bitbuf, bitcpy, bitcnt, mode, digidx, x, y, winsize; |
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89 |
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90 /* find window size */ |
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91 x = fp_count_bits (X); |
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92 if (x <= 21) { |
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93 winsize = 1; |
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94 } else if (x <= 36) { |
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95 winsize = 3; |
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96 } else if (x <= 140) { |
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97 winsize = 4; |
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98 } else if (x <= 450) { |
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99 winsize = 5; |
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100 } else { |
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101 winsize = 6; |
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102 } |
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103 |
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104 /* init M array */ |
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105 memset(M, 0, sizeof(M)); |
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106 |
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107 /* now setup montgomery */ |
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108 if ((err = fp_montgomery_setup (P, &mp)) != FP_OKAY) { |
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109 return err; |
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110 } |
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111 |
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112 /* setup result */ |
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113 fp_init(&res); |
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114 |
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115 /* create M table |
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116 * |
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117 * The M table contains powers of the input base, e.g. M[x] = G^x mod P |
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118 * |
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119 * The first half of the table is not computed though accept for M[0] and M[1] |
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120 */ |
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121 |
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122 /* now we need R mod m */ |
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123 fp_montgomery_calc_normalization (&res, P); |
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124 |
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125 /* now set M[1] to G * R mod m */ |
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126 if (fp_cmp_mag(P, G) != FP_GT) { |
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127 /* G > P so we reduce it first */ |
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128 fp_mod(G, P, &M[1]); |
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129 } else { |
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130 fp_copy(G, &M[1]); |
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131 } |
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132 fp_mulmod (&M[1], &res, P, &M[1]); |
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133 |
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134 /* compute the value at M[1<<(winsize-1)] by squaring M[1] (winsize-1) times */ |
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135 fp_copy (&M[1], &M[1 << (winsize - 1)]); |
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136 for (x = 0; x < (winsize - 1); x++) { |
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137 fp_sqr (&M[1 << (winsize - 1)], &M[1 << (winsize - 1)]); |
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138 fp_montgomery_reduce (&M[1 << (winsize - 1)], P, mp); |
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139 } |
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140 |
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141 /* create upper table */ |
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142 for (x = (1 << (winsize - 1)) + 1; x < (1 << winsize); x++) { |
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143 fp_mul(&M[x - 1], &M[1], &M[x]); |
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144 fp_montgomery_reduce(&M[x], P, mp); |
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145 } |
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146 |
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147 /* set initial mode and bit cnt */ |
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148 mode = 0; |
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149 bitcnt = 1; |
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150 buf = 0; |
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151 digidx = X->used - 1; |
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152 bitcpy = 0; |
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153 bitbuf = 0; |
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154 |
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155 for (;;) { |
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156 /* grab next digit as required */ |
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157 if (--bitcnt == 0) { |
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158 /* if digidx == -1 we are out of digits so break */ |
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159 if (digidx == -1) { |
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160 break; |
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161 } |
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162 /* read next digit and reset bitcnt */ |
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163 buf = X->dp[digidx--]; |
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164 bitcnt = (int)DIGIT_BIT; |
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165 } |
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166 |
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167 /* grab the next msb from the exponent */ |
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168 y = (fp_digit)(buf >> (DIGIT_BIT - 1)) & 1; |
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169 buf <<= (fp_digit)1; |
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170 |
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171 /* if the bit is zero and mode == 0 then we ignore it |
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172 * These represent the leading zero bits before the first 1 bit |
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173 * in the exponent. Technically this opt is not required but it |
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174 * does lower the # of trivial squaring/reductions used |
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175 */ |
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176 if (mode == 0 && y == 0) { |
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177 continue; |
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178 } |
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179 |
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180 /* if the bit is zero and mode == 1 then we square */ |
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181 if (mode == 1 && y == 0) { |
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182 fp_sqr(&res, &res); |
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183 fp_montgomery_reduce(&res, P, mp); |
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184 continue; |
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185 } |
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186 |
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187 /* else we add it to the window */ |
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188 bitbuf |= (y << (winsize - ++bitcpy)); |
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189 mode = 2; |
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190 |
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191 if (bitcpy == winsize) { |
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192 /* ok window is filled so square as required and multiply */ |
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193 /* square first */ |
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194 for (x = 0; x < winsize; x++) { |
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195 fp_sqr(&res, &res); |
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196 fp_montgomery_reduce(&res, P, mp); |
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197 } |
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198 |
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199 /* then multiply */ |
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200 fp_mul(&res, &M[bitbuf], &res); |
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201 fp_montgomery_reduce(&res, P, mp); |
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202 |
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203 /* empty window and reset */ |
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204 bitcpy = 0; |
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205 bitbuf = 0; |
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206 mode = 1; |
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207 } |
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208 } |
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209 |
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210 /* if bits remain then square/multiply */ |
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211 if (mode == 2 && bitcpy > 0) { |
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212 /* square then multiply if the bit is set */ |
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213 for (x = 0; x < bitcpy; x++) { |
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214 fp_sqr(&res, &res); |
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215 fp_montgomery_reduce(&res, P, mp); |
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216 |
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217 /* get next bit of the window */ |
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218 bitbuf <<= 1; |
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219 if ((bitbuf & (1 << winsize)) != 0) { |
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220 /* then multiply */ |
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221 fp_mul(&res, &M[1], &res); |
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222 fp_montgomery_reduce(&res, P, mp); |
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223 } |
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224 } |
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225 } |
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226 |
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227 /* fixup result if Montgomery reduction is used |
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228 * recall that any value in a Montgomery system is |
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229 * actually multiplied by R mod n. So we have |
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230 * to reduce one more time to cancel out the factor |
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231 * of R. |
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232 */ |
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233 fp_montgomery_reduce(&res, P, mp); |
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234 |
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235 /* swap res with Y */ |
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236 fp_copy (&res, Y); |
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237 return FP_OKAY; |
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238 } |
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239 |
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240 #endif |
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241 |
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242 |
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243 int fp_exptmod(fp_int * G, fp_int * X, fp_int * P, fp_int * Y) |
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244 { |
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245 fp_int tmp; |
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246 int err; |
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247 |
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248 #ifdef TFM_CHECK |
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249 /* prevent overflows */ |
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250 if (P->used > (FP_SIZE/2)) { |
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251 return FP_VAL; |
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252 } |
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253 #endif |
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254 |
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255 /* is X negative? */ |
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256 if (X->sign == FP_NEG) { |
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257 /* yes, copy G and invmod it */ |
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258 fp_copy(G, &tmp); |
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259 if ((err = fp_invmod(&tmp, P, &tmp)) != FP_OKAY) { |
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260 return err; |
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261 } |
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262 X->sign = FP_ZPOS; |
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263 err = _fp_exptmod(&tmp, X, P, Y); |
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264 if (X != Y) { |
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265 X->sign = FP_NEG; |
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266 } |
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267 return err; |
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268 } else { |
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269 /* Positive exponent so just exptmod */ |
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270 return _fp_exptmod(G, X, P, Y); |
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271 } |
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272 } |
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273 |
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274 /* $Source$ */ |
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275 /* $Revision$ */ |
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276 /* $Date$ */ |