Mercurial > pihelp
annotate aes.c @ 36:c6f77df67dde
Fix programming
author | Matt Johnston <matt@ucc.asn.au> |
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date | Thu, 27 Jun 2013 14:05:10 +0800 |
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1 #include "aes.h" |
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2 //#include "loader.h" |
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3 // |
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4 #define KEY_COUNT 1 |
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5 |
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6 #if KEY_COUNT > 0 |
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7 |
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8 //#include "aeskeys.inc" |
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9 |
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10 |
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11 |
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12 |
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13 typedef unsigned char byte; |
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14 |
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15 |
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16 |
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17 #define BPOLY 0x1b //!< Lower 8 bits of (x^8+x^4+x^3+x+1), ie. (x^4+x^3+x+1). |
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18 #define BLOCKSIZE 16 //!< Block size in number of bytes. |
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19 |
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20 |
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21 |
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22 #if KEY_COUNT == 1 |
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23 #define KEYBITS 128 //!< Use AES128. |
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24 #elif KEY_COUNT == 2 |
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25 #define KEYBITS 192 //!< Use AES196. |
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26 #elif KEY_COUNT == 3 |
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27 #define KEYBITS 256 //!< Use AES256. |
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28 #else |
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29 #error Use 1, 2 or 3 keys! |
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30 #endif |
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31 |
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32 #if KEYBITS == 128 |
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33 #define ROUNDS 10 //!< Number of rounds. |
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34 #define KEYLENGTH 16 //!< Key length in number of bytes. |
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35 #elif KEYBITS == 192 |
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36 #define ROUNDS 12 //!< Number of rounds. |
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37 #define KEYLENGTH 24 //!< // Key length in number of bytes. |
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38 #elif KEYBITS == 256 |
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39 #define ROUNDS 14 //!< Number of rounds. |
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40 #define KEYLENGTH 32 //!< Key length in number of bytes. |
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41 #else |
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42 #error Key must be 128, 192 or 256 bits! |
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43 #endif |
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44 |
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45 #define EXPANDED_KEY_SIZE (BLOCKSIZE * (ROUNDS+1)) //!< 176, 208 or 240 bytes. |
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46 |
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47 |
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48 |
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49 byte block1[ 256 ]; //!< Workspace 1. |
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50 byte block2[ 256 ]; //!< Worksapce 2. |
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51 |
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52 |
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53 |
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54 byte * powTbl; //!< Final location of exponentiation lookup table. |
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55 byte * logTbl; //!< Final location of logarithm lookup table. |
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56 byte * sBox; //!< Final location of s-box. |
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57 byte * sBoxInv; //!< Final location of inverse s-box. |
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58 byte * expandedKey; //!< Final location of expanded key. |
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59 |
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60 |
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61 |
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62 void CalcPowLog( byte * powTbl, byte * logTbl ) |
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63 { |
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64 byte i = 0; |
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65 byte t = 1; |
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66 |
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67 do { |
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68 // Use 0x03 as root for exponentiation and logarithms. |
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69 powTbl[i] = t; |
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70 logTbl[t] = i; |
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71 i++; |
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72 |
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73 // Muliply t by 3 in GF(2^8). |
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74 t ^= (t << 1) ^ (t & 0x80 ? BPOLY : 0); |
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75 } while( t != 1 ); // Cyclic properties ensure that i < 255. |
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76 |
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77 powTbl[255] = powTbl[0]; // 255 = '-0', 254 = -1, etc. |
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78 } |
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79 |
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80 |
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81 |
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82 void CalcSBox( byte * sBox ) |
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83 { |
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84 byte i, rot; |
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85 byte temp; |
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86 byte result; |
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87 |
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88 // Fill all entries of sBox[]. |
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89 i = 0; |
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90 do { |
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91 // Inverse in GF(2^8). |
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92 if( i > 0 ) { |
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93 temp = powTbl[ 255 - logTbl[i] ]; |
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94 } else { |
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95 temp = 0; |
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96 } |
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97 |
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98 // Affine transformation in GF(2). |
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99 result = temp ^ 0x63; // Start with adding a vector in GF(2). |
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100 for( rot = 0; rot < 4; rot++ ) { |
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101 // Rotate left. |
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102 temp = (temp<<1) | (temp>>7); |
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103 |
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104 // Add rotated byte in GF(2). |
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105 result ^= temp; |
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106 } |
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107 |
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108 // Put result in table. |
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109 sBox[i] = result; |
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110 } while( ++i != 0 ); |
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111 } |
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112 |
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113 |
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114 |
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115 void CalcSBoxInv( byte * sBox, byte * sBoxInv ) |
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116 { |
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117 byte i = 0; |
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118 byte j = 0; |
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119 |
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120 // Iterate through all elements in sBoxInv using i. |
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121 do { |
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122 // Search through sBox using j. |
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123 do { |
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124 // Check if current j is the inverse of current i. |
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125 if( sBox[ j ] == i ) { |
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126 // If so, set sBoxInc and indicate search finished. |
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127 sBoxInv[ i ] = j; |
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128 j = 255; |
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129 } |
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130 } while( ++j != 0 ); |
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131 } while( ++i != 0 ); |
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132 } |
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133 |
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134 |
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135 |
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136 void CycleLeft( byte * row ) |
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137 { |
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138 // Cycle 4 bytes in an array left once. |
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139 byte temp = row[0]; |
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140 row[0] = row[1]; |
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141 row[1] = row[2]; |
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142 row[2] = row[3]; |
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143 row[3] = temp; |
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144 } |
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145 |
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146 |
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147 |
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148 void InvMixColumn( byte * column ) |
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149 { |
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150 byte result0, result1, result2, result3; |
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151 byte column0, column1, column2, column3; |
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152 byte xor; |
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153 |
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154 // This generates more effective code, at least |
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155 // with the IAR C compiler. |
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156 column0 = column[0]; |
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157 column1 = column[1]; |
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158 column2 = column[2]; |
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159 column3 = column[3]; |
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160 |
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161 // Partial sums (modular addition using XOR). |
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162 result0 = column1 ^ column2 ^ column3; |
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163 result1 = column0 ^ column2 ^ column3; |
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164 result2 = column0 ^ column1 ^ column3; |
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165 result3 = column0 ^ column1 ^ column2; |
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166 |
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167 // Multiply column bytes by 2 modulo BPOLY. |
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168 // This operation is done the following way to ensure cycle count |
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169 // independent from data contents. Take care when changing this code. |
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170 xor = 0; |
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171 if (column0 & 0x80) { |
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172 xor = BPOLY; |
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173 } |
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174 column0 <<= 1; |
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175 column0 ^= xor; |
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176 |
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177 xor = 0; |
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178 if (column1 & 0x80) { |
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179 xor = BPOLY; |
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180 } |
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181 column1 <<= 1; |
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182 column1 ^= xor; |
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183 |
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184 xor = 0; |
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185 if (column2 & 0x80) { |
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186 xor = BPOLY; |
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187 } |
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188 column2 <<= 1; |
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189 column2 ^= xor; |
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190 |
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191 xor = 0; |
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192 if (column3 & 0x80) { |
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193 xor = BPOLY; |
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194 } |
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195 column3 <<= 1; |
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196 column3 ^= xor; |
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197 |
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198 // More partial sums. |
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199 result0 ^= column0 ^ column1; |
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200 result1 ^= column1 ^ column2; |
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201 result2 ^= column2 ^ column3; |
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202 result3 ^= column0 ^ column3; |
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203 |
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204 // Multiply column bytes by 2 modulo BPOLY. |
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205 // This operation is done the following way to ensure cycle count |
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206 // independent from data contents. Take care when changing this code. |
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207 xor = 0; |
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208 if (column0 & 0x80) { |
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209 xor = BPOLY; |
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210 } |
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211 column0 <<= 1; |
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212 column0 ^= xor; |
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213 |
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214 xor = 0; |
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215 if (column1 & 0x80) { |
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216 xor = BPOLY; |
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217 } |
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218 column1 <<= 1; |
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219 column1 ^= xor; |
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220 |
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221 xor = 0; |
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222 if (column2 & 0x80) { |
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223 xor = BPOLY; |
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224 } |
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225 column2 <<= 1; |
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226 column2 ^= xor; |
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227 |
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228 xor = 0; |
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229 if (column3 & 0x80) { |
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230 xor = BPOLY; |
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231 } |
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232 column3 <<= 1; |
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233 column3 ^= xor; |
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234 |
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235 // More partial sums. |
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236 result0 ^= column0 ^ column2; |
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237 result1 ^= column1 ^ column3; |
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238 result2 ^= column0 ^ column2; |
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239 result3 ^= column1 ^ column3; |
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240 |
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241 // Multiply column bytes by 2 modulo BPOLY. |
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242 // This operation is done the following way to ensure cycle count |
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243 // independent from data contents. Take care when changing this code. |
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244 xor = 0; |
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245 if (column0 & 0x80) { |
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246 xor = BPOLY; |
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247 } |
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248 column0 <<= 1; |
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249 column0 ^= xor; |
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250 |
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251 xor = 0; |
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252 if (column1 & 0x80) { |
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253 xor = BPOLY; |
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254 } |
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255 column1 <<= 1; |
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256 column1 ^= xor; |
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257 |
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258 xor = 0; |
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259 if (column2 & 0x80) { |
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260 xor = BPOLY; |
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261 } |
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262 column2 <<= 1; |
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263 column2 ^= xor; |
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264 |
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265 xor = 0; |
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266 if (column3 & 0x80) { |
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267 xor = BPOLY; |
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268 } |
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269 column3 <<= 1; |
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270 column3 ^= xor; |
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271 |
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272 // Final partial sum. |
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273 column0 ^= column1 ^ column2 ^ column3; |
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274 |
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275 // Final sums stored into original column bytes. |
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276 column[0] = result0 ^ column0; |
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277 column[1] = result1 ^ column0; |
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278 column[2] = result2 ^ column0; |
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279 column[3] = result3 ^ column0; |
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280 } |
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281 |
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282 |
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283 |
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284 void SubBytes( byte * bytes, byte count ) |
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285 { |
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286 do { |
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287 *bytes = sBox[ *bytes ]; // Substitute every byte in state. |
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288 bytes++; |
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289 } while( --count ); |
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290 } |
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291 |
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292 |
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293 |
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294 void InvSubBytesAndXOR( byte * bytes, byte * key, byte count ) |
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295 { |
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296 do { |
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297 // *bytes = sBoxInv[ *bytes ] ^ *key; // Inverse substitute every byte in state and add key. |
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298 *bytes = block2[ *bytes ] ^ *key; // Use block2 directly. Increases speed. |
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299 bytes++; |
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300 key++; |
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301 } while( --count ); |
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302 } |
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303 |
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304 |
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305 |
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306 void InvShiftRows( byte * state ) |
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307 { |
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308 byte temp; |
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309 |
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310 // Note: State is arranged column by column. |
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311 |
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312 // Cycle second row right one time. |
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313 temp = state[ 1 + 3*4 ]; |
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314 state[ 1 + 3*4 ] = state[ 1 + 2*4 ]; |
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315 state[ 1 + 2*4 ] = state[ 1 + 1*4 ]; |
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316 state[ 1 + 1*4 ] = state[ 1 + 0*4 ]; |
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317 state[ 1 + 0*4 ] = temp; |
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318 |
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319 // Cycle third row right two times. |
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320 temp = state[ 2 + 0*4 ]; |
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321 state[ 2 + 0*4 ] = state[ 2 + 2*4 ]; |
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322 state[ 2 + 2*4 ] = temp; |
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323 temp = state[ 2 + 1*4 ]; |
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324 state[ 2 + 1*4 ] = state[ 2 + 3*4 ]; |
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325 state[ 2 + 3*4 ] = temp; |
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326 |
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327 // Cycle fourth row right three times, ie. left once. |
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328 temp = state[ 3 + 0*4 ]; |
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329 state[ 3 + 0*4 ] = state[ 3 + 1*4 ]; |
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330 state[ 3 + 1*4 ] = state[ 3 + 2*4 ]; |
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331 state[ 3 + 2*4 ] = state[ 3 + 3*4 ]; |
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332 state[ 3 + 3*4 ] = temp; |
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333 } |
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334 |
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335 |
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336 |
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337 void InvMixColumns( byte * state ) |
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338 { |
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339 InvMixColumn( state + 0*4 ); |
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340 InvMixColumn( state + 1*4 ); |
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341 InvMixColumn( state + 2*4 ); |
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342 InvMixColumn( state + 3*4 ); |
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343 } |
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344 |
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345 |
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346 |
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347 void XORBytes( byte * bytes1, byte * bytes2, byte count ) |
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348 { |
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349 do { |
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350 *bytes1 ^= *bytes2; // Add in GF(2), ie. XOR. |
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351 bytes1++; |
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352 bytes2++; |
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353 } while( --count ); |
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354 } |
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355 |
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356 |
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357 |
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358 void CopyBytes( byte * to, byte * from, byte count ) |
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359 { |
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360 do { |
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361 *to = *from; |
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362 to++; |
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363 from++; |
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364 } while( --count ); |
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365 } |
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366 |
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367 |
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368 |
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369 void KeyExpansion( byte * key, byte * expandedKey ) |
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370 { |
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371 byte temp[4]; |
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372 byte i; |
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373 byte Rcon[4] = { 0x01, 0x00, 0x00, 0x00 }; // Round constant. |
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374 |
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375 #if 0 |
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376 // matt |
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377 unsigned char BOOTFLASH * key = kTable; |
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378 #endif |
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379 |
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380 // Copy key to start of expanded key. |
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381 i = KEYLENGTH; |
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382 do { |
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383 *expandedKey = *key; |
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384 expandedKey++; |
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385 key++; |
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386 } while( --i ); |
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387 |
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388 // Prepare last 4 bytes of key in temp. |
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389 expandedKey -= 4; |
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390 temp[0] = *(expandedKey++); |
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391 temp[1] = *(expandedKey++); |
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392 temp[2] = *(expandedKey++); |
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393 temp[3] = *(expandedKey++); |
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394 |
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395 // Expand key. |
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396 i = KEYLENGTH; |
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397 while( i < BLOCKSIZE*(ROUNDS+1) ) { |
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398 // Are we at the start of a multiple of the key size? |
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399 if( (i % KEYLENGTH) == 0 ) { |
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400 CycleLeft( temp ); // Cycle left once. |
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401 SubBytes( temp, 4 ); // Substitute each byte. |
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402 XORBytes( temp, Rcon, 4 ); // Add constant in GF(2). |
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403 *Rcon = (*Rcon << 1) ^ (*Rcon & 0x80 ? BPOLY : 0); |
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404 } |
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405 |
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406 // Keysize larger than 24 bytes, ie. larger that 192 bits? |
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407 #if KEYLENGTH > 24 |
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408 // Are we right past a block size? |
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409 else if( (i % KEYLENGTH) == BLOCKSIZE ) { |
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410 SubBytes( temp, 4 ); // Substitute each byte. |
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411 } |
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412 #endif |
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413 |
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414 // Add bytes in GF(2) one KEYLENGTH away. |
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415 XORBytes( temp, expandedKey - KEYLENGTH, 4 ); |
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416 |
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417 // Copy result to current 4 bytes. |
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418 *(expandedKey++) = temp[ 0 ]; |
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419 *(expandedKey++) = temp[ 1 ]; |
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420 *(expandedKey++) = temp[ 2 ]; |
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421 *(expandedKey++) = temp[ 3 ]; |
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422 |
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423 i += 4; // Next 4 bytes. |
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424 } |
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425 } |
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426 |
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427 |
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428 |
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429 void InvCipher( byte * block, byte * expandedKey ) |
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430 { |
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431 byte round = ROUNDS-1; |
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432 expandedKey += BLOCKSIZE * ROUNDS; |
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433 |
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434 XORBytes( block, expandedKey, 16 ); |
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435 expandedKey -= BLOCKSIZE; |
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436 |
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437 do { |
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438 InvShiftRows( block ); |
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439 InvSubBytesAndXOR( block, expandedKey, 16 ); |
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440 expandedKey -= BLOCKSIZE; |
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441 InvMixColumns( block ); |
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442 } while( --round ); |
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443 |
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444 InvShiftRows( block ); |
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445 InvSubBytesAndXOR( block, expandedKey, 16 ); |
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446 } |
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447 |
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448 |
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449 |
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450 void aesInit( unsigned char *key, unsigned char * tempbuf ) |
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451 { |
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452 powTbl = block1; |
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453 logTbl = block2; |
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454 CalcPowLog( powTbl, logTbl ); |
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455 |
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456 sBox = tempbuf; |
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457 CalcSBox( sBox ); |
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458 |
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459 expandedKey = block1; |
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460 KeyExpansion( key, expandedKey ); |
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461 |
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462 sBoxInv = block2; // Must be block2. |
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463 CalcSBoxInv( sBox, sBoxInv ); |
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464 } |
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465 |
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466 |
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467 |
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468 void aesDecrypt( unsigned char * buffer, unsigned char * chainBlock ) |
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469 { |
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470 byte temp[ BLOCKSIZE ]; |
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471 |
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472 CopyBytes( temp, buffer, BLOCKSIZE ); |
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473 InvCipher( buffer, expandedKey ); |
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474 if (chainBlock) |
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475 { |
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476 XORBytes( buffer, chainBlock, BLOCKSIZE ); |
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477 CopyBytes( chainBlock, temp, BLOCKSIZE ); |
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478 } |
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479 } |
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480 |
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481 #endif |