1 | /*
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2 | * rijndael-api-fst.c v2.3 April '2000
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3 | *
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4 | * Optimised ANSI C code
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5 | *
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6 | * authors: v1.0: Antoon Bosselaers
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7 | * v2.0: Vincent Rijmen
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8 | * v2.1: Vincent Rijmen
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9 | * v2.2: Vincent Rijmen
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10 | * v2.3: Paulo Barreto
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11 | * v2.4: Vincent Rijmen
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12 | *
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13 | * This code is placed in the public domain.
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14 | */
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15 |
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16 | #include "config_xor.h"
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17 |
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18 | #include <stdio.h>
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19 | #include <assert.h>
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20 | #include <stdlib.h>
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21 | #include <string.h>
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22 |
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23 | #ifdef SH_ENCRYPT
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24 |
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25 | #include "rijndael-api-fst.h"
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26 |
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27 | int makeKey(keyInstance *key, RIJ_BYTE direction, int keyLen, char *keyMaterial) {
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28 | word8 k[MAXKC][4];
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29 | int i;
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30 | char *keyMat;
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31 |
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32 | if (key == NULL) {
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33 | return BAD_KEY_INSTANCE;
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34 | }
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35 |
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36 | if ((direction == DIR_ENCRYPT) || (direction == DIR_DECRYPT)) {
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37 | key->direction = direction;
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38 | } else {
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39 | return BAD_KEY_DIR;
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40 | }
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41 |
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42 | if ((keyLen == 128) || (keyLen == 192) || (keyLen == 256)) {
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43 | key->keyLen = keyLen;
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44 | } else {
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45 | return BAD_KEY_MAT;
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46 | }
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47 |
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48 | if (keyMaterial != NULL) {
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49 | strncpy(key->keyMaterial, keyMaterial, keyLen/4);
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50 | }
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51 |
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52 | key->ROUNDS = keyLen/32 + 6;
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53 |
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54 | /* initialize key schedule: */
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55 | keyMat = key->keyMaterial;
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56 | #ifndef BINARY_KEY_MATERIAL
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57 | for (i = 0; i < key->keyLen/8; i++) {
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58 | int t, j;
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59 |
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60 | t = *keyMat++;
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61 | if ((t >= '0') && (t <= '9')) j = (t - '0') << 4;
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62 | else if ((t >= 'a') && (t <= 'f')) j = (t - 'a' + 10) << 4;
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63 | else if ((t >= 'A') && (t <= 'F')) j = (t - 'A' + 10) << 4;
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64 | else return BAD_KEY_MAT;
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65 |
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66 | t = *keyMat++;
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67 | if ((t >= '0') && (t <= '9')) j ^= (t - '0');
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68 | else if ((t >= 'a') && (t <= 'f')) j ^= (t - 'a' + 10);
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69 | else if ((t >= 'A') && (t <= 'F')) j ^= (t - 'A' + 10);
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70 | else return BAD_KEY_MAT;
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71 |
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72 | k[i >> 2][i & 3] = (word8)j;
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73 | }
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74 | #else
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75 | for (i = 0; i < key->keyLen/8; i++) {
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76 | k[i >> 2][i & 3] = (word8)keyMat[i];
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77 | }
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78 | #endif /* ?BINARY_KEY_MATERIAL */
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79 | rijndaelKeySched(k, key->keySched, key->ROUNDS);
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80 | if (direction == DIR_DECRYPT) {
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81 | rijndaelKeyEncToDec(key->keySched, key->ROUNDS);
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82 | }
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83 |
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84 | return TRUE;
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85 | }
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86 |
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87 | int cipherInit(cipherInstance *cipher, RIJ_BYTE mode, char *IV) {
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88 | if ((mode == MODE_ECB) || (mode == MODE_CBC) || (mode == MODE_CFB1)) {
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89 | cipher->mode = mode;
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90 | } else {
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91 | return BAD_CIPHER_MODE;
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92 | }
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93 | if (IV != NULL) {
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94 | #ifndef BINARY_KEY_MATERIAL
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95 | int i;
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96 | for (i = 0; i < MAX_IV_SIZE; i++) {
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97 | int t, j;
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98 |
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99 | t = IV[2*i];
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100 | if ((t >= '0') && (t <= '9')) j = (t - '0') << 4;
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101 | else if ((t >= 'a') && (t <= 'f')) j = (t - 'a' + 10) << 4;
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102 | else if ((t >= 'A') && (t <= 'F')) j = (t - 'A' + 10) << 4;
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103 | else return BAD_CIPHER_INSTANCE;
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104 |
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105 | t = IV[2*i+1];
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106 | if ((t >= '0') && (t <= '9')) j ^= (t - '0');
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107 | else if ((t >= 'a') && (t <= 'f')) j ^= (t - 'a' + 10);
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108 | else if ((t >= 'A') && (t <= 'F')) j ^= (t - 'A' + 10);
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109 | else return BAD_CIPHER_INSTANCE;
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110 |
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111 | cipher->IV[i] = (word8)j;
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112 | }
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113 | #else
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114 | memcpy(cipher->IV, IV, MAX_IV_SIZE);
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115 | #endif /* ?BINARY_KEY_MATERIAL */
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116 | } else {
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117 | memset(cipher->IV, 0, MAX_IV_SIZE);
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118 | }
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119 | return TRUE;
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120 | }
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121 |
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122 | int blockEncrypt(cipherInstance *cipher, keyInstance *key,
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123 | RIJ_BYTE *input, int inputLen, RIJ_BYTE *outBuffer) {
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124 | int i, k, numBlocks;
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125 | union {
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126 | word32 bloc4[4];
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127 | word8 block[16];
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128 | } bb;
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129 | union {
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130 | word32 i4[4];
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131 | word8 iv[4][4];
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132 | } iu;
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133 |
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134 | if (cipher == NULL ||
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135 | key == NULL ||
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136 | key->direction == DIR_DECRYPT) {
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137 | return BAD_CIPHER_STATE;
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138 | }
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139 | if (input == NULL || inputLen <= 0) {
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140 | return 0; /* nothing to do */
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141 | }
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142 |
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143 | numBlocks = inputLen/128;
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144 |
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145 | switch (cipher->mode) {
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146 | case MODE_ECB:
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147 | for (i = numBlocks; i > 0; i--) {
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148 | rijndaelEncrypt(input, outBuffer, key->keySched, key->ROUNDS);
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149 | input += 16;
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150 | outBuffer += 16;
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151 | }
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152 | break;
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153 |
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154 | case MODE_CBC:
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155 | /* fix the memory alignment for HP-UX 10.20
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156 | * R. Wichmann Mon Jun 18 22:36:55 CEST 2001
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157 | */
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158 | #if STRICT_ALIGN
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159 | memcpy(iu.iv, cipher->IV, 16);
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160 | bb.bloc4[0] = iu.i4[0] ^ ((word32*)input)[0];
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161 | bb.bloc4[1] = iu.i4[1] ^ ((word32*)input)[1];
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162 | bb.bloc4[2] = iu.i4[2] ^ ((word32*)input)[2];
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163 | bb.bloc4[3] = iu.i4[3] ^ ((word32*)input)[3];
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164 | #else /* !STRICT_ALIGN */
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165 | ((word32*)block)[0] = ((word32*)cipher->IV)[0] ^ ((word32*)input)[0];
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166 | ((word32*)block)[1] = ((word32*)cipher->IV)[1] ^ ((word32*)input)[1];
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167 | ((word32*)block)[2] = ((word32*)cipher->IV)[2] ^ ((word32*)input)[2];
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168 | ((word32*)block)[3] = ((word32*)cipher->IV)[3] ^ ((word32*)input)[3];
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169 | #endif /* ?STRICT_ALIGN */
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170 | rijndaelEncrypt(bb.block, outBuffer, key->keySched, key->ROUNDS);
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171 | input += 16;
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172 | for (i = numBlocks - 1; i > 0; i--) {
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173 | bb.bloc4[0] = ((word32*)outBuffer)[0] ^ ((word32*)input)[0];
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174 | bb.bloc4[1] = ((word32*)outBuffer)[1] ^ ((word32*)input)[1];
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175 | bb.bloc4[2] = ((word32*)outBuffer)[2] ^ ((word32*)input)[2];
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176 | bb.bloc4[3] = ((word32*)outBuffer)[3] ^ ((word32*)input)[3];
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177 | outBuffer += 16;
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178 | rijndaelEncrypt(bb.block, outBuffer, key->keySched, key->ROUNDS);
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179 | input += 16;
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180 | }
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181 | break;
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182 |
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183 | case MODE_CFB1:
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184 | #if STRICT_ALIGN
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185 | memcpy(iu.iv, cipher->IV, 16);
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186 | #else /* !STRICT_ALIGN */
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187 | *((word32*)iv[0]) = *((word32*)(cipher->IV ));
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188 | *((word32*)iv[1]) = *((word32*)(cipher->IV+ 4));
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189 | *((word32*)iv[2]) = *((word32*)(cipher->IV+ 8));
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190 | *((word32*)iv[3]) = *((word32*)(cipher->IV+12));
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191 | #endif /* ?STRICT_ALIGN */
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192 | for (i = numBlocks; i > 0; i--) {
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193 | for (k = 0; k < 128; k++) {
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194 | bb.bloc4[0] = iu.i4[0];
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195 | bb.bloc4[1] = iu.i4[1];
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196 | bb.bloc4[2] = iu.i4[2];
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197 | bb.bloc4[3] = iu.i4[3];
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198 | rijndaelEncrypt(bb.block, bb.block, key->keySched, key->ROUNDS);
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199 | outBuffer[k/8] ^= (bb.block[0] & 0x80) >> (k & 7);
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200 | iu.iv[0][0] = (iu.iv[0][0] << 1) | (iu.iv[0][1] >> 7);
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201 | iu.iv[0][1] = (iu.iv[0][1] << 1) | (iu.iv[0][2] >> 7);
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202 | iu.iv[0][2] = (iu.iv[0][2] << 1) | (iu.iv[0][3] >> 7);
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203 | iu.iv[0][3] = (iu.iv[0][3] << 1) | (iu.iv[1][0] >> 7);
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204 | iu.iv[1][0] = (iu.iv[1][0] << 1) | (iu.iv[1][1] >> 7);
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205 | iu.iv[1][1] = (iu.iv[1][1] << 1) | (iu.iv[1][2] >> 7);
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206 | iu.iv[1][2] = (iu.iv[1][2] << 1) | (iu.iv[1][3] >> 7);
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207 | iu.iv[1][3] = (iu.iv[1][3] << 1) | (iu.iv[2][0] >> 7);
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208 | iu.iv[2][0] = (iu.iv[2][0] << 1) | (iu.iv[2][1] >> 7);
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209 | iu.iv[2][1] = (iu.iv[2][1] << 1) | (iu.iv[2][2] >> 7);
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210 | iu.iv[2][2] = (iu.iv[2][2] << 1) | (iu.iv[2][3] >> 7);
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211 | iu.iv[2][3] = (iu.iv[2][3] << 1) | (iu.iv[3][0] >> 7);
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212 | iu.iv[3][0] = (iu.iv[3][0] << 1) | (iu.iv[3][1] >> 7);
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213 | iu.iv[3][1] = (iu.iv[3][1] << 1) | (iu.iv[3][2] >> 7);
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214 | iu.iv[3][2] = (iu.iv[3][2] << 1) | (iu.iv[3][3] >> 7);
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215 | iu.iv[3][3] = (iu.iv[3][3] << 1) | ((outBuffer[k/8] >> (7-(k&7))) & 1);
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216 | }
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217 | }
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218 | break;
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219 |
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220 | default:
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221 | return BAD_CIPHER_STATE;
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222 | }
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223 |
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224 | return 128*numBlocks;
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225 | }
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226 |
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227 | int blockDecrypt(cipherInstance *cipher, keyInstance *key,
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228 | RIJ_BYTE *input, int inputLen, RIJ_BYTE *outBuffer) {
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229 | int i, k, numBlocks;
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230 | union {
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231 | word32 bloc4[4];
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232 | word8 block[16];
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233 | } bb;
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234 | union {
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235 | word32 i4[4];
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236 | word8 iv[4][4];
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237 | } iu;
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238 |
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239 | if (cipher == NULL ||
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240 | key == NULL ||
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241 | ((cipher->mode != MODE_CFB1) && (key->direction == DIR_ENCRYPT))) {
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242 | return BAD_CIPHER_STATE;
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243 | }
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244 | if (input == NULL || inputLen <= 0) {
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245 | return 0; /* nothing to do */
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246 | }
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247 |
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248 | numBlocks = inputLen/128;
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249 |
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250 | switch (cipher->mode) {
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251 | case MODE_ECB:
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252 | for (i = numBlocks; i > 0; i--) {
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253 | rijndaelDecrypt(input, outBuffer, key->keySched, key->ROUNDS);
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254 | input += 16;
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255 | outBuffer += 16;
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256 | }
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257 | break;
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258 |
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259 | case MODE_CBC:
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260 | #if STRICT_ALIGN
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261 | memcpy(iu.iv, cipher->IV, 16);
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262 | #else
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263 | *((word32*)iu.i4[0]) = *((word32*)(cipher->IV ));
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264 | *((word32*)iu.i4[1]) = *((word32*)(cipher->IV+ 4));
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265 | *((word32*)iu.i4[2]) = *((word32*)(cipher->IV+ 8));
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266 | *((word32*)iu.i4[3]) = *((word32*)(cipher->IV+12));
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267 | #endif
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268 | for (i = numBlocks; i > 0; i--) {
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269 | rijndaelDecrypt(input, bb.block, key->keySched, key->ROUNDS);
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270 | bb.bloc4[0] ^= iu.i4[0];
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271 | bb.bloc4[1] ^= iu.i4[1];
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272 | bb.bloc4[2] ^= iu.i4[2];
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273 | bb.bloc4[3] ^= iu.i4[3];
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274 | #if STRICT_ALIGN
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275 | memcpy(iu.iv, input, 16);
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276 | memcpy(outBuffer, bb.block, 16);
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277 | #else
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278 | *((word32*)iv[0]) = ((word32*)input)[0]; ((word32*)outBuffer)[0] = ((word32*)block)[0];
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279 | *((word32*)iv[1]) = ((word32*)input)[1]; ((word32*)outBuffer)[1] = ((word32*)block)[1];
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280 | *((word32*)iv[2]) = ((word32*)input)[2]; ((word32*)outBuffer)[2] = ((word32*)block)[2];
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281 | *((word32*)iv[3]) = ((word32*)input)[3]; ((word32*)outBuffer)[3] = ((word32*)block)[3];
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282 | #endif
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283 | input += 16;
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284 | outBuffer += 16;
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285 | }
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286 | break;
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287 |
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288 | case MODE_CFB1:
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289 | #if STRICT_ALIGN
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290 | memcpy(iu.iv, cipher->IV, 16);
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291 | #else
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292 | *((word32*)iv[0]) = *((word32*)(cipher->IV));
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293 | *((word32*)iv[1]) = *((word32*)(cipher->IV+ 4));
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294 | *((word32*)iv[2]) = *((word32*)(cipher->IV+ 8));
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295 | *((word32*)iv[3]) = *((word32*)(cipher->IV+12));
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296 | #endif
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297 | for (i = numBlocks; i > 0; i--) {
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298 | for (k = 0; k < 128; k++) {
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299 | bb.bloc4[0] = iu.i4[0];
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300 | bb.bloc4[1] = iu.i4[1];
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301 | bb.bloc4[2] = iu.i4[2];
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302 | bb.bloc4[3] = iu.i4[3];
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303 | rijndaelEncrypt(bb.block, bb.block, key->keySched, key->ROUNDS);
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304 | iu.iv[0][0] = (iu.iv[0][0] << 1) | (iu.iv[0][1] >> 7);
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305 | iu.iv[0][1] = (iu.iv[0][1] << 1) | (iu.iv[0][2] >> 7);
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306 | iu.iv[0][2] = (iu.iv[0][2] << 1) | (iu.iv[0][3] >> 7);
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307 | iu.iv[0][3] = (iu.iv[0][3] << 1) | (iu.iv[1][0] >> 7);
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308 | iu.iv[1][0] = (iu.iv[1][0] << 1) | (iu.iv[1][1] >> 7);
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309 | iu.iv[1][1] = (iu.iv[1][1] << 1) | (iu.iv[1][2] >> 7);
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310 | iu.iv[1][2] = (iu.iv[1][2] << 1) | (iu.iv[1][3] >> 7);
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311 | iu.iv[1][3] = (iu.iv[1][3] << 1) | (iu.iv[2][0] >> 7);
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312 | iu.iv[2][0] = (iu.iv[2][0] << 1) | (iu.iv[2][1] >> 7);
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313 | iu.iv[2][1] = (iu.iv[2][1] << 1) | (iu.iv[2][2] >> 7);
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314 | iu.iv[2][2] = (iu.iv[2][2] << 1) | (iu.iv[2][3] >> 7);
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315 | iu.iv[2][3] = (iu.iv[2][3] << 1) | (iu.iv[3][0] >> 7);
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316 | iu.iv[3][0] = (iu.iv[3][0] << 1) | (iu.iv[3][1] >> 7);
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317 | iu.iv[3][1] = (iu.iv[3][1] << 1) | (iu.iv[3][2] >> 7);
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318 | iu.iv[3][2] = (iu.iv[3][2] << 1) | (iu.iv[3][3] >> 7);
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319 | iu.iv[3][3] = (iu.iv[3][3] << 1) | ((input[k/8] >> (7-(k&7))) & 1);
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320 | outBuffer[k/8] ^= (bb.block[0] & 0x80) >> (k & 7);
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321 | }
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322 | }
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323 | break;
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324 |
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325 | default:
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326 | return BAD_CIPHER_STATE;
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327 | }
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328 |
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329 | return 128*numBlocks;
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330 | }
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331 | #ifdef INTERMEDIATE_VALUE_KAT
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332 | /**
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333 | * cipherUpdateRounds:
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334 | *
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335 | * Encrypts/Decrypts exactly one full block a specified number of rounds.
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336 | * Only used in the Intermediate Value Known Answer Test.
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337 | *
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338 | * Returns:
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339 | * TRUE - on success
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340 | * BAD_CIPHER_STATE - cipher in bad state (e.g., not initialized)
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341 | */
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342 | int cipherUpdateRounds(cipherInstance *cipher, keyInstance *key,
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343 | RIJ_BYTE *input, int inputLen, RIJ_BYTE *outBuffer, int rounds) {
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344 | int j;
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345 | word8 block[4][4];
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346 |
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347 | if (cipher == NULL || key == NULL) {
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348 | return BAD_CIPHER_STATE;
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349 | }
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350 |
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351 | for (j = 3; j >= 0; j--) {
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352 | /* parse input stream into rectangular array */
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353 | *((word32*)block[j]) = *((word32*)(input+4*j));
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354 | }
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355 |
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356 | switch (key->direction) {
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357 | case DIR_ENCRYPT:
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358 | rijndaelEncryptRound(block, key->keySched, key->ROUNDS, rounds);
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359 | break;
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360 |
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361 | case DIR_DECRYPT:
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362 | rijndaelDecryptRound(block, key->keySched, key->ROUNDS, rounds);
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363 | break;
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364 |
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365 | default:
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366 | return BAD_KEY_DIR;
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367 | }
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368 |
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369 | for (j = 3; j >= 0; j--) {
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370 | /* parse rectangular array into output ciphertext bytes */
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371 | *((word32*)(outBuffer+4*j)) = *((word32*)block[j]);
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372 | }
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373 |
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374 | return TRUE;
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375 | }
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376 | #endif /* INTERMEDIATE_VALUE_KAT */
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377 | #endif
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