1 | /* NIST Secure Hash Algorithm */ |
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2 | /* heavily modified by Uwe Hollerbach uh@alumni.caltech edu */ |
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3 | /* from Peter C. Gutmann's implementation as found in */ |
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4 | /* Applied Cryptography by Bruce Schneier */ |
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5 | |
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6 | /* NIST's proposed modification to SHA of 7/11/94 may be */ |
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7 | /* activated by defining USE_MODIFIED_SHA */ |
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8 | |
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9 | #include <stdlib.h> |
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10 | #include <stdio.h> |
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11 | #include <string.h> |
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12 | #include "sha-sha.h" |
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13 | |
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14 | /* SHA f()-functions */ |
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15 | |
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16 | #define f1(x,y,z) ((x & y) | (~x & z)) |
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17 | #define f2(x,y,z) (x ^ y ^ z) |
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18 | #define f3(x,y,z) ((x & y) | (x & z) | (y & z)) |
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19 | #define f4(x,y,z) (x ^ y ^ z) |
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20 | |
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21 | /* SHA constants */ |
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22 | |
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23 | #define CONST1 0x5a827999L |
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24 | #define CONST2 0x6ed9eba1L |
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25 | #define CONST3 0x8f1bbcdcL |
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26 | #define CONST4 0xca62c1d6L |
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27 | |
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28 | /* 32-bit rotate */ |
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29 | |
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30 | #define ROT32(x,n) ((x << n) | (x >> (32 - n))) |
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31 | |
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32 | #define FUNC(n,i) \ |
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33 | temp = ROT32(A,5) + f##n(B,C,D) + E + W[i] + CONST##n; \ |
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34 | E = D; D = C; C = ROT32(B,30); B = A; A = temp |
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35 | |
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36 | /* do SHA transformation */ |
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37 | |
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38 | static void sha_transform(SHA_INFO *sha_info) |
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39 | { |
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40 | int i; |
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41 | LONG temp, A, B, C, D, E, W[80]; |
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42 | |
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43 | for (i = 0; i < 16; ++i) { |
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44 | W[i] = sha_info->data[i]; |
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45 | } |
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46 | for (i = 16; i < 80; ++i) { |
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47 | W[i] = W[i-3] ^ W[i-8] ^ W[i-14] ^ W[i-16]; |
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48 | #ifdef USE_MODIFIED_SHA |
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49 | W[i] = ROT32(W[i], 1); |
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50 | #endif /* USE_MODIFIED_SHA */ |
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51 | } |
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52 | A = sha_info->digest[0]; |
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53 | B = sha_info->digest[1]; |
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54 | C = sha_info->digest[2]; |
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55 | D = sha_info->digest[3]; |
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56 | E = sha_info->digest[4]; |
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57 | #ifdef UNROLL_LOOPS |
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58 | FUNC(1, 0); FUNC(1, 1); FUNC(1, 2); FUNC(1, 3); FUNC(1, 4); |
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59 | FUNC(1, 5); FUNC(1, 6); FUNC(1, 7); FUNC(1, 8); FUNC(1, 9); |
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60 | FUNC(1,10); FUNC(1,11); FUNC(1,12); FUNC(1,13); FUNC(1,14); |
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61 | FUNC(1,15); FUNC(1,16); FUNC(1,17); FUNC(1,18); FUNC(1,19); |
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62 | |
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63 | FUNC(2,20); FUNC(2,21); FUNC(2,22); FUNC(2,23); FUNC(2,24); |
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64 | FUNC(2,25); FUNC(2,26); FUNC(2,27); FUNC(2,28); FUNC(2,29); |
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65 | FUNC(2,30); FUNC(2,31); FUNC(2,32); FUNC(2,33); FUNC(2,34); |
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66 | FUNC(2,35); FUNC(2,36); FUNC(2,37); FUNC(2,38); FUNC(2,39); |
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67 | |
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68 | FUNC(3,40); FUNC(3,41); FUNC(3,42); FUNC(3,43); FUNC(3,44); |
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69 | FUNC(3,45); FUNC(3,46); FUNC(3,47); FUNC(3,48); FUNC(3,49); |
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70 | FUNC(3,50); FUNC(3,51); FUNC(3,52); FUNC(3,53); FUNC(3,54); |
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71 | FUNC(3,55); FUNC(3,56); FUNC(3,57); FUNC(3,58); FUNC(3,59); |
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72 | |
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73 | FUNC(4,60); FUNC(4,61); FUNC(4,62); FUNC(4,63); FUNC(4,64); |
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74 | FUNC(4,65); FUNC(4,66); FUNC(4,67); FUNC(4,68); FUNC(4,69); |
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75 | FUNC(4,70); FUNC(4,71); FUNC(4,72); FUNC(4,73); FUNC(4,74); |
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76 | FUNC(4,75); FUNC(4,76); FUNC(4,77); FUNC(4,78); FUNC(4,79); |
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77 | #else /* !UNROLL_LOOPS */ |
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78 | for (i = 0; i < 20; ++i) { |
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79 | FUNC(1,i); |
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80 | } |
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81 | for (i = 20; i < 40; ++i) { |
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82 | FUNC(2,i); |
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83 | } |
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84 | for (i = 40; i < 60; ++i) { |
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85 | FUNC(3,i); |
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86 | } |
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87 | for (i = 60; i < 80; ++i) { |
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88 | FUNC(4,i); |
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89 | } |
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90 | #endif /* !UNROLL_LOOPS */ |
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91 | sha_info->digest[0] += A; |
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92 | sha_info->digest[1] += B; |
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93 | sha_info->digest[2] += C; |
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94 | sha_info->digest[3] += D; |
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95 | sha_info->digest[4] += E; |
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96 | } |
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97 | |
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98 | #ifdef LITTLE_ENDIAN |
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99 | |
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100 | /* change endianness of data */ |
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101 | |
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102 | static void byte_reverse(LONG *buffer, int count) |
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103 | { |
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104 | int i; |
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105 | BYTE ct[4], *cp; |
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106 | |
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107 | count /= sizeof(LONG); |
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108 | cp = (BYTE *) buffer; |
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109 | for (i = 0; i < count; ++i) { |
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110 | ct[0] = cp[0]; |
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111 | ct[1] = cp[1]; |
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112 | ct[2] = cp[2]; |
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113 | ct[3] = cp[3]; |
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114 | cp[0] = ct[3]; |
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115 | cp[1] = ct[2]; |
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116 | cp[2] = ct[1]; |
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117 | cp[3] = ct[0]; |
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118 | cp += sizeof(LONG); |
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119 | } |
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120 | } |
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121 | |
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122 | #endif /* LITTLE_ENDIAN */ |
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123 | |
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124 | /* initialize the SHA digest */ |
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125 | |
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126 | void sha_init(SHA_INFO *sha_info) |
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127 | { |
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128 | sha_info->digest[0] = 0x67452301L; |
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129 | sha_info->digest[1] = 0xefcdab89L; |
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130 | sha_info->digest[2] = 0x98badcfeL; |
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131 | sha_info->digest[3] = 0x10325476L; |
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132 | sha_info->digest[4] = 0xc3d2e1f0L; |
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133 | sha_info->count_lo = 0L; |
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134 | sha_info->count_hi = 0L; |
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135 | } |
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136 | |
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137 | /* update the SHA digest */ |
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138 | |
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139 | void sha_update(SHA_INFO *sha_info, BYTE *buffer, int count) |
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140 | { |
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141 | if ((sha_info->count_lo + ((LONG) count << 3)) < sha_info->count_lo) { |
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142 | ++sha_info->count_hi; |
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143 | } |
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144 | sha_info->count_lo += (LONG) count << 3; |
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145 | sha_info->count_hi += (LONG) count >> 29; |
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146 | while (count >= SHA_BLOCKSIZE) { |
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147 | memcpy(sha_info->data, buffer, SHA_BLOCKSIZE); |
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148 | #ifdef LITTLE_ENDIAN |
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149 | byte_reverse(sha_info->data, SHA_BLOCKSIZE); |
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150 | #endif /* LITTLE_ENDIAN */ |
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151 | sha_transform(sha_info); |
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152 | buffer += SHA_BLOCKSIZE; |
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153 | count -= SHA_BLOCKSIZE; |
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154 | } |
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155 | memcpy(sha_info->data, buffer, count); |
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156 | } |
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157 | |
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158 | /* finish computing the SHA digest */ |
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159 | |
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160 | void sha_final(SHA_INFO *sha_info) |
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161 | { |
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162 | int count; |
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163 | LONG lo_bit_count, hi_bit_count; |
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164 | |
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165 | lo_bit_count = sha_info->count_lo; |
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166 | hi_bit_count = sha_info->count_hi; |
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167 | count = (int) ((lo_bit_count >> 3) & 0x3f); |
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168 | ((BYTE *) sha_info->data)[count++] = 0x80; |
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169 | if (count > 56) { |
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170 | memset((BYTE *) &sha_info->data + count, 0, 64 - count); |
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171 | #ifdef LITTLE_ENDIAN |
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172 | byte_reverse(sha_info->data, SHA_BLOCKSIZE); |
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173 | #endif /* LITTLE_ENDIAN */ |
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174 | sha_transform(sha_info); |
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175 | memset(&sha_info->data, 0, 56); |
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176 | } else { |
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177 | memset((BYTE *) &sha_info->data + count, 0, 56 - count); |
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178 | } |
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179 | #ifdef LITTLE_ENDIAN |
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180 | byte_reverse(sha_info->data, SHA_BLOCKSIZE); |
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181 | #endif /* LITTLE_ENDIAN */ |
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182 | sha_info->data[14] = hi_bit_count; |
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183 | sha_info->data[15] = lo_bit_count; |
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184 | sha_transform(sha_info); |
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185 | } |
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186 | |
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187 | /* compute the SHA digest of a FILE stream */ |
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188 | |
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189 | #define BLOCK_SIZE 8192 |
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190 | |
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191 | void sha_stream(SHA_INFO *sha_info, FILE *fin) |
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192 | { |
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193 | int i; |
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194 | BYTE data[BLOCK_SIZE]; |
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195 | |
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196 | sha_init(sha_info); |
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197 | while ((i = fread(data, 1, BLOCK_SIZE, fin)) > 0) { |
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198 | sha_update(sha_info, data, i); |
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199 | } |
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200 | sha_final(sha_info); |
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201 | } |
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202 | |
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203 | /* print a SHA digest */ |
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204 | |
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205 | void sha_print(SHA_INFO *sha_info) |
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206 | { |
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207 | printf("%08lx %08lx %08lx %08lx %08lx\n", |
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208 | sha_info->digest[0], sha_info->digest[1], sha_info->digest[2], |
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209 | sha_info->digest[3], sha_info->digest[4]); |
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210 | } |
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