Mercurial > dropbear
annotate libtomcrypt/demos/tv_gen.c @ 1844:7a3cd7b598d8
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author | Matt Johnston <matt@ucc.asn.au> |
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date | Mon, 18 Oct 2021 23:31:23 +0800 |
parents | e9dba7abd939 |
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rev | line source |
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1 /* LibTomCrypt, modular cryptographic library -- Tom St Denis |
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2 * |
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3 * LibTomCrypt is a library that provides various cryptographic |
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4 * algorithms in a highly modular and flexible manner. |
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5 * |
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6 * The library is free for all purposes without any express |
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7 * guarantee it works. |
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8 */ |
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9 #include <tomcrypt.h> |
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10 |
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11 void hash_gen(void) |
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12 { |
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13 unsigned char md[MAXBLOCKSIZE], *buf; |
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14 unsigned long outlen, x, y, z; |
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15 FILE *out; |
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16 int err; |
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17 |
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18 out = fopen("hash_tv.txt", "w"); |
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19 if (out == NULL) { |
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20 perror("can't open hash_tv"); |
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21 } |
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22 |
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23 fprintf(out, "Hash Test Vectors:\n\nThese are the hashes of nn bytes '00 01 02 03 .. (nn-1)'\n\n"); |
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24 for (x = 0; hash_descriptor[x].name != NULL; x++) { |
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25 buf = XMALLOC(2 * hash_descriptor[x].blocksize + 1); |
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26 if (buf == NULL) { |
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27 perror("can't alloc mem"); |
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28 exit(EXIT_FAILURE); |
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29 } |
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30 fprintf(out, "Hash: %s\n", hash_descriptor[x].name); |
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31 for (y = 0; y <= (hash_descriptor[x].blocksize * 2); y++) { |
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32 for (z = 0; z < y; z++) { |
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33 buf[z] = (unsigned char)(z & 255); |
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34 } |
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35 outlen = sizeof(md); |
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36 if ((err = hash_memory(x, buf, y, md, &outlen)) != CRYPT_OK) { |
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37 printf("hash_memory error: %s\n", error_to_string(err)); |
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38 exit(EXIT_FAILURE); |
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39 } |
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40 fprintf(out, "%3lu: ", y); |
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41 for (z = 0; z < outlen; z++) { |
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42 fprintf(out, "%02X", md[z]); |
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43 } |
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44 fprintf(out, "\n"); |
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45 } |
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46 fprintf(out, "\n"); |
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47 XFREE(buf); |
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48 } |
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49 fclose(out); |
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50 } |
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51 |
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52 void cipher_gen(void) |
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53 { |
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54 unsigned char *key, pt[MAXBLOCKSIZE]; |
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55 unsigned long x, y, z, w; |
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56 int err, kl, lastkl; |
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57 FILE *out; |
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58 symmetric_key skey; |
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59 |
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60 out = fopen("cipher_tv.txt", "w"); |
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61 |
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62 fprintf(out, |
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63 "Cipher Test Vectors\n\nThese are test encryptions with key of nn bytes '00 01 02 03 .. (nn-1)' and original PT of the same style.\n" |
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64 "The output of step N is used as the key and plaintext for step N+1 (key bytes repeated as required to fill the key)\n\n"); |
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65 |
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66 for (x = 0; cipher_descriptor[x].name != NULL; x++) { |
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67 fprintf(out, "Cipher: %s\n", cipher_descriptor[x].name); |
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68 |
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69 /* three modes, smallest, medium, large keys */ |
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70 lastkl = 10000; |
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71 for (y = 0; y < 3; y++) { |
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72 switch (y) { |
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73 case 0: kl = cipher_descriptor[x].min_key_length; break; |
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74 case 1: kl = (cipher_descriptor[x].min_key_length + cipher_descriptor[x].max_key_length)/2; break; |
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75 case 2: kl = cipher_descriptor[x].max_key_length; break; |
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76 } |
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77 if ((err = cipher_descriptor[x].keysize(&kl)) != CRYPT_OK) { |
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78 printf("keysize error: %s\n", error_to_string(err)); |
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79 exit(EXIT_FAILURE); |
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80 } |
1711 | 81 if (kl == lastkl) continue; |
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82 lastkl = kl; |
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83 fprintf(out, "Key Size: %d bytes\n", kl); |
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84 |
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85 key = XMALLOC(kl); |
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86 if (key == NULL) { |
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87 perror("can't malloc memory"); |
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88 exit(EXIT_FAILURE); |
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89 } |
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90 |
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91 for (z = 0; (int)z < kl; z++) { |
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92 key[z] = (unsigned char)z; |
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93 } |
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94 if ((err = cipher_descriptor[x].setup(key, kl, 0, &skey)) != CRYPT_OK) { |
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95 printf("setup error: %s\n", error_to_string(err)); |
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96 exit(EXIT_FAILURE); |
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97 } |
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98 |
285
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99 for (z = 0; (int)z < cipher_descriptor[x].block_length; z++) { |
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100 pt[z] = (unsigned char)z; |
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101 } |
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102 for (w = 0; w < 50; w++) { |
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103 cipher_descriptor[x].ecb_encrypt(pt, pt, &skey); |
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104 fprintf(out, "%2lu: ", w); |
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105 for (z = 0; (int)z < cipher_descriptor[x].block_length; z++) { |
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106 fprintf(out, "%02X", pt[z]); |
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107 } |
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108 fprintf(out, "\n"); |
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109 |
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110 /* reschedule a new key */ |
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111 for (z = 0; z < (unsigned long)kl; z++) { |
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112 key[z] = pt[z % cipher_descriptor[x].block_length]; |
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113 } |
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114 if ((err = cipher_descriptor[x].setup(key, kl, 0, &skey)) != CRYPT_OK) { |
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115 printf("cipher setup2 error: %s\n", error_to_string(err)); |
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116 exit(EXIT_FAILURE); |
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117 } |
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118 } |
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119 fprintf(out, "\n"); |
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120 XFREE(key); |
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121 } |
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122 fprintf(out, "\n"); |
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123 } |
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124 fclose(out); |
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125 } |
285
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126 |
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127 void hmac_gen(void) |
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128 { |
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129 unsigned char key[MAXBLOCKSIZE], output[MAXBLOCKSIZE], *input; |
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130 int x, y, z, err; |
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131 FILE *out; |
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132 unsigned long len; |
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133 |
285
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134 out = fopen("hmac_tv.txt", "w"); |
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135 |
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136 fprintf(out, |
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137 "HMAC Tests. In these tests messages of N bytes long (00,01,02,...,NN-1) are HMACed. The initial key is\n" |
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138 "of the same format (the same length as the HASH output size). The HMAC key in step N+1 is the HMAC output of\n" |
285
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139 "step N.\n\n"); |
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140 |
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141 for (x = 0; hash_descriptor[x].name != NULL; x++) { |
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142 fprintf(out, "HMAC-%s\n", hash_descriptor[x].name); |
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143 |
285
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144 /* initial key */ |
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145 for (y = 0; y < (int)hash_descriptor[x].hashsize; y++) { |
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146 key[y] = (y&255); |
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147 } |
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148 |
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149 input = XMALLOC(hash_descriptor[x].blocksize * 2 + 1); |
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150 if (input == NULL) { |
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151 perror("Can't malloc memory"); |
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152 exit(EXIT_FAILURE); |
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153 } |
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154 |
285
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155 for (y = 0; y <= (int)(hash_descriptor[x].blocksize * 2); y++) { |
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156 for (z = 0; z < y; z++) { |
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157 input[z] = (unsigned char)(z & 255); |
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158 } |
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159 len = sizeof(output); |
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160 if ((err = hmac_memory(x, key, hash_descriptor[x].hashsize, input, y, output, &len)) != CRYPT_OK) { |
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161 printf("Error hmacing: %s\n", error_to_string(err)); |
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162 exit(EXIT_FAILURE); |
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163 } |
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164 fprintf(out, "%3d: ", y); |
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165 for (z = 0; z <(int) len; z++) { |
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166 fprintf(out, "%02X", output[z]); |
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167 } |
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168 fprintf(out, "\n"); |
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169 |
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170 /* forward the key */ |
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171 memcpy(key, output, hash_descriptor[x].hashsize); |
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172 } |
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173 XFREE(input); |
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174 fprintf(out, "\n"); |
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175 } |
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176 fclose(out); |
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177 } |
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178 |
285
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179 void omac_gen(void) |
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180 { |
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181 #ifdef LTC_OMAC |
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182 unsigned char key[MAXBLOCKSIZE], output[MAXBLOCKSIZE], input[MAXBLOCKSIZE*2+2]; |
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183 int err, x, y, z, kl; |
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184 FILE *out; |
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185 unsigned long len; |
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186 |
285
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187 out = fopen("omac_tv.txt", "w"); |
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188 |
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189 fprintf(out, |
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190 "OMAC Tests. In these tests messages of N bytes long (00,01,02,...,NN-1) are OMAC'ed. The initial key is\n" |
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191 "of the same format (length specified per cipher). The OMAC key in step N+1 is the OMAC output of\n" |
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192 "step N (repeated as required to fill the array).\n\n"); |
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193 |
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194 for (x = 0; cipher_descriptor[x].name != NULL; x++) { |
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195 kl = cipher_descriptor[x].block_length; |
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196 |
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197 /* skip ciphers which do not have 64 or 128 bit block sizes */ |
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198 if (kl != 8 && kl != 16) continue; |
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199 |
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200 if (cipher_descriptor[x].keysize(&kl) != CRYPT_OK) { |
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201 kl = cipher_descriptor[x].max_key_length; |
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202 } |
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203 fprintf(out, "OMAC-%s (%d byte key)\n", cipher_descriptor[x].name, kl); |
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204 |
285
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205 /* initial key/block */ |
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206 for (y = 0; y < kl; y++) { |
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207 key[y] = (y & 255); |
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208 } |
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209 |
285
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210 for (y = 0; y <= (int)(cipher_descriptor[x].block_length*2); y++) { |
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211 for (z = 0; z < y; z++) { |
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212 input[z] = (unsigned char)(z & 255); |
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213 } |
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214 len = sizeof(output); |
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215 if ((err = omac_memory(x, key, kl, input, y, output, &len)) != CRYPT_OK) { |
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216 printf("Error omacing: %s\n", error_to_string(err)); |
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217 exit(EXIT_FAILURE); |
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218 } |
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219 fprintf(out, "%3d: ", y); |
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220 for (z = 0; z <(int)len; z++) { |
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221 fprintf(out, "%02X", output[z]); |
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222 } |
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223 fprintf(out, "\n"); |
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224 |
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225 /* forward the key */ |
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226 for (z = 0; z < kl; z++) { |
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227 key[z] = output[z % len]; |
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228 } |
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229 } |
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230 fprintf(out, "\n"); |
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231 } |
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232 fclose(out); |
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233 #endif |
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234 } |
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235 |
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236 void pmac_gen(void) |
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237 { |
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238 #ifdef LTC_PMAC |
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239 unsigned char key[MAXBLOCKSIZE], output[MAXBLOCKSIZE], input[MAXBLOCKSIZE*2+2]; |
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240 int err, x, y, z, kl; |
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241 FILE *out; |
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242 unsigned long len; |
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243 |
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244 out = fopen("pmac_tv.txt", "w"); |
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245 |
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246 fprintf(out, |
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247 "PMAC Tests. In these tests messages of N bytes long (00,01,02,...,NN-1) are PMAC'ed. The initial key is\n" |
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248 "of the same format (length specified per cipher). The PMAC key in step N+1 is the PMAC output of\n" |
285
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249 "step N (repeated as required to fill the array).\n\n"); |
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250 |
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251 for (x = 0; cipher_descriptor[x].name != NULL; x++) { |
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252 kl = cipher_descriptor[x].block_length; |
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253 |
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254 /* skip ciphers which do not have 64 or 128 bit block sizes */ |
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255 if (kl != 8 && kl != 16) continue; |
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256 |
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257 if (cipher_descriptor[x].keysize(&kl) != CRYPT_OK) { |
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258 kl = cipher_descriptor[x].max_key_length; |
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259 } |
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260 fprintf(out, "PMAC-%s (%d byte key)\n", cipher_descriptor[x].name, kl); |
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261 |
285
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262 /* initial key/block */ |
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263 for (y = 0; y < kl; y++) { |
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264 key[y] = (y & 255); |
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265 } |
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266 |
285
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267 for (y = 0; y <= (int)(cipher_descriptor[x].block_length*2); y++) { |
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268 for (z = 0; z < y; z++) { |
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269 input[z] = (unsigned char)(z & 255); |
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270 } |
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271 len = sizeof(output); |
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272 if ((err = pmac_memory(x, key, kl, input, y, output, &len)) != CRYPT_OK) { |
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273 printf("Error omacing: %s\n", error_to_string(err)); |
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274 exit(EXIT_FAILURE); |
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275 } |
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276 fprintf(out, "%3d: ", y); |
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277 for (z = 0; z <(int)len; z++) { |
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278 fprintf(out, "%02X", output[z]); |
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279 } |
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280 fprintf(out, "\n"); |
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281 |
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282 /* forward the key */ |
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283 for (z = 0; z < kl; z++) { |
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284 key[z] = output[z % len]; |
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285 } |
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286 } |
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287 fprintf(out, "\n"); |
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288 } |
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289 fclose(out); |
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290 #endif |
285
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291 } |
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292 |
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293 void eax_gen(void) |
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294 { |
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295 #ifdef LTC_EAX_MODE |
285
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296 int err, kl, x, y1, z; |
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297 FILE *out; |
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298 unsigned char key[MAXBLOCKSIZE], nonce[MAXBLOCKSIZE*2], header[MAXBLOCKSIZE*2], |
285
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299 plaintext[MAXBLOCKSIZE*2], tag[MAXBLOCKSIZE]; |
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300 unsigned long len; |
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301 |
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302 out = fopen("eax_tv.txt", "w"); |
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303 fprintf(out, "EAX Test Vectors. Uses the 00010203...NN-1 pattern for header/nonce/plaintext/key. The outputs\n" |
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304 "are of the form ciphertext,tag for a given NN. The key for step N>1 is the tag of the previous\n" |
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305 "step repeated sufficiently.\n\n"); |
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306 |
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307 for (x = 0; cipher_descriptor[x].name != NULL; x++) { |
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308 kl = cipher_descriptor[x].block_length; |
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309 |
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310 /* skip ciphers which do not have 64 or 128 bit block sizes */ |
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311 if (kl != 8 && kl != 16) continue; |
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312 |
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313 if (cipher_descriptor[x].keysize(&kl) != CRYPT_OK) { |
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314 kl = cipher_descriptor[x].max_key_length; |
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315 } |
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316 fprintf(out, "EAX-%s (%d byte key)\n", cipher_descriptor[x].name, kl); |
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317 |
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318 /* the key */ |
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319 for (z = 0; z < kl; z++) { |
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320 key[z] = (z & 255); |
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321 } |
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322 |
285
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323 for (y1 = 0; y1 <= (int)(cipher_descriptor[x].block_length*2); y1++){ |
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324 for (z = 0; z < y1; z++) { |
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325 plaintext[z] = (unsigned char)(z & 255); |
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326 nonce[z] = (unsigned char)(z & 255); |
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327 header[z] = (unsigned char)(z & 255); |
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328 } |
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329 len = sizeof(tag); |
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330 if ((err = eax_encrypt_authenticate_memory(x, key, kl, nonce, y1, header, y1, plaintext, y1, plaintext, tag, &len)) != CRYPT_OK) { |
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331 printf("Error EAX'ing: %s\n", error_to_string(err)); |
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332 exit(EXIT_FAILURE); |
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333 } |
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334 fprintf(out, "%3d: ", y1); |
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335 for (z = 0; z < y1; z++) { |
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336 fprintf(out, "%02X", plaintext[z]); |
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337 } |
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338 fprintf(out, ", "); |
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339 for (z = 0; z <(int)len; z++) { |
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340 fprintf(out, "%02X", tag[z]); |
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341 } |
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342 fprintf(out, "\n"); |
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343 |
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344 /* forward the key */ |
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345 for (z = 0; z < kl; z++) { |
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346 key[z] = tag[z % len]; |
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347 } |
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348 } |
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349 fprintf(out, "\n"); |
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350 } |
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351 fclose(out); |
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352 #endif |
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353 } |
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354 |
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355 void ocb_gen(void) |
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356 { |
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357 #ifdef LTC_OCB_MODE |
285
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358 int err, kl, x, y1, z; |
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359 FILE *out; |
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360 unsigned char key[MAXBLOCKSIZE], nonce[MAXBLOCKSIZE*2], |
285
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361 plaintext[MAXBLOCKSIZE*2], tag[MAXBLOCKSIZE]; |
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362 unsigned long len; |
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363 |
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364 out = fopen("ocb_tv.txt", "w"); |
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365 fprintf(out, "OCB Test Vectors. Uses the 00010203...NN-1 pattern for nonce/plaintext/key. The outputs\n" |
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366 "are of the form ciphertext,tag for a given NN. The key for step N>1 is the tag of the previous\n" |
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367 "step repeated sufficiently. The nonce is fixed throughout.\n\n"); |
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368 |
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369 for (x = 0; cipher_descriptor[x].name != NULL; x++) { |
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370 kl = cipher_descriptor[x].block_length; |
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371 |
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372 /* skip ciphers which do not have 64 or 128 bit block sizes */ |
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373 if (kl != 8 && kl != 16) continue; |
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374 |
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375 if (cipher_descriptor[x].keysize(&kl) != CRYPT_OK) { |
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376 kl = cipher_descriptor[x].max_key_length; |
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377 } |
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378 fprintf(out, "OCB-%s (%d byte key)\n", cipher_descriptor[x].name, kl); |
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379 |
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380 /* the key */ |
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381 for (z = 0; z < kl; z++) { |
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382 key[z] = (z & 255); |
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383 } |
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384 |
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385 /* fixed nonce */ |
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386 for (z = 0; z < cipher_descriptor[x].block_length; z++) { |
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387 nonce[z] = z; |
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388 } |
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389 |
285
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390 for (y1 = 0; y1 <= (int)(cipher_descriptor[x].block_length*2); y1++){ |
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391 for (z = 0; z < y1; z++) { |
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392 plaintext[z] = (unsigned char)(z & 255); |
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393 } |
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394 len = sizeof(tag); |
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395 if ((err = ocb_encrypt_authenticate_memory(x, key, kl, nonce, plaintext, y1, plaintext, tag, &len)) != CRYPT_OK) { |
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396 printf("Error OCB'ing: %s\n", error_to_string(err)); |
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397 exit(EXIT_FAILURE); |
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398 } |
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399 fprintf(out, "%3d: ", y1); |
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400 for (z = 0; z < y1; z++) { |
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401 fprintf(out, "%02X", plaintext[z]); |
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402 } |
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403 fprintf(out, ", "); |
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404 for (z = 0; z <(int)len; z++) { |
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405 fprintf(out, "%02X", tag[z]); |
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406 } |
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407 fprintf(out, "\n"); |
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408 |
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409 /* forward the key */ |
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410 for (z = 0; z < kl; z++) { |
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411 key[z] = tag[z % len]; |
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412 } |
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413 } |
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414 fprintf(out, "\n"); |
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415 } |
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416 fclose(out); |
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417 #endif |
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418 } |
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419 |
1471
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420 void ocb3_gen(void) |
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421 { |
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422 #ifdef LTC_OCB3_MODE |
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423 int err, kl, x, y1, z, noncelen; |
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424 FILE *out; |
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425 unsigned char key[MAXBLOCKSIZE], nonce[MAXBLOCKSIZE*2], |
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426 plaintext[MAXBLOCKSIZE*2], tag[MAXBLOCKSIZE]; |
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427 unsigned long len; |
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428 |
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429 out = fopen("ocb3_tv.txt", "w"); |
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430 fprintf(out, "OCB3 Test Vectors. Uses the 00010203...NN-1 pattern for nonce/plaintext/key. The outputs\n" |
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431 "are of the form ciphertext,tag for a given NN. The key for step N>1 is the tag of the previous\n" |
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432 "step repeated sufficiently. The nonce is fixed throughout. AAD is fixed to 3 bytes (ASCII) 'AAD'.\n\n"); |
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433 |
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434 for (x = 0; cipher_descriptor[x].name != NULL; x++) { |
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435 kl = cipher_descriptor[x].block_length; |
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436 |
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437 /* skip ciphers which do not have 64 or 128 bit block sizes */ |
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438 if (kl != 16) continue; |
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439 |
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440 if (cipher_descriptor[x].keysize(&kl) != CRYPT_OK) { |
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441 kl = cipher_descriptor[x].max_key_length; |
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442 } |
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443 fprintf(out, "OCB3-%s (%d byte key)\n", cipher_descriptor[x].name, kl); |
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444 |
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445 /* the key */ |
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446 for (z = 0; z < kl; z++) { |
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447 key[z] = (z & 255); |
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448 } |
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449 |
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450 /* fixed nonce */ |
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451 noncelen = MIN(15, cipher_descriptor[x].block_length); |
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452 for (z = 0; z < noncelen; z++) { |
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453 nonce[z] = z; |
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454 } |
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455 |
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456 for (y1 = 0; y1 <= (int)(cipher_descriptor[x].block_length*2); y1++){ |
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457 for (z = 0; z < y1; z++) { |
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458 plaintext[z] = (unsigned char)(z & 255); |
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459 } |
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460 len = 16; |
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461 if ((err = ocb3_encrypt_authenticate_memory(x, key, kl, nonce, noncelen, (unsigned char*)"AAD", 3, plaintext, y1, plaintext, tag, &len)) != CRYPT_OK) { |
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462 printf("Error OCB3'ing: %s\n", error_to_string(err)); |
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463 exit(EXIT_FAILURE); |
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464 } |
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465 fprintf(out, "%3d: ", y1); |
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466 for (z = 0; z < y1; z++) { |
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467 fprintf(out, "%02X", plaintext[z]); |
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468 } |
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469 fprintf(out, ", "); |
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470 for (z = 0; z <(int)len; z++) { |
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471 fprintf(out, "%02X", tag[z]); |
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472 } |
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473 fprintf(out, "\n"); |
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474 |
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475 /* forward the key */ |
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476 for (z = 0; z < kl; z++) { |
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477 key[z] = tag[z % len]; |
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478 } |
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479 } |
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480 fprintf(out, "\n"); |
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481 } |
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482 fclose(out); |
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483 #endif |
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484 } |
285
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485 |
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486 void ccm_gen(void) |
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487 { |
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488 #ifdef LTC_CCM_MODE |
285
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489 int err, kl, x, y1, z; |
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490 FILE *out; |
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491 unsigned char key[MAXBLOCKSIZE], nonce[MAXBLOCKSIZE*2], |
285
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492 plaintext[MAXBLOCKSIZE*2], tag[MAXBLOCKSIZE]; |
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493 unsigned long len; |
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494 |
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495 out = fopen("ccm_tv.txt", "w"); |
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496 fprintf(out, "CCM Test Vectors. Uses the 00010203...NN-1 pattern for nonce/header/plaintext/key. The outputs\n" |
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497 "are of the form ciphertext,tag for a given NN. The key for step N>1 is the tag of the previous\n" |
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498 "step repeated sufficiently. The nonce is fixed throughout at 13 bytes 000102...\n\n"); |
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499 |
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500 for (x = 0; cipher_descriptor[x].name != NULL; x++) { |
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501 kl = cipher_descriptor[x].block_length; |
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502 |
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503 /* skip ciphers which do not have 128 bit block sizes */ |
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504 if (kl != 16) continue; |
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505 |
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506 if (cipher_descriptor[x].keysize(&kl) != CRYPT_OK) { |
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507 kl = cipher_descriptor[x].max_key_length; |
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508 } |
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509 fprintf(out, "CCM-%s (%d byte key)\n", cipher_descriptor[x].name, kl); |
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510 |
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511 /* the key */ |
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512 for (z = 0; z < kl; z++) { |
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513 key[z] = (z & 255); |
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514 } |
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515 |
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|
516 /* fixed nonce */ |
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517 for (z = 0; z < cipher_descriptor[x].block_length; z++) { |
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518 nonce[z] = z; |
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519 } |
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6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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520 |
285
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521 for (y1 = 0; y1 <= (int)(cipher_descriptor[x].block_length*2); y1++){ |
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522 for (z = 0; z < y1; z++) { |
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523 plaintext[z] = (unsigned char)(z & 255); |
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524 } |
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|
525 len = sizeof(tag); |
382
0cbe8f6dbf9e
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285
diff
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526 if ((err = ccm_memory(x, key, kl, NULL, nonce, 13, plaintext, y1, plaintext, y1, plaintext, tag, &len, CCM_ENCRYPT)) != CRYPT_OK) { |
285
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527 printf("Error CCM'ing: %s\n", error_to_string(err)); |
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|
528 exit(EXIT_FAILURE); |
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529 } |
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6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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530 if (len == 0) { |
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Update to libtomcrypt 1.18.1, merged with Dropbear changes
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531 printf("Error CCM'ing: zero length\n"); |
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Update to libtomcrypt 1.18.1, merged with Dropbear changes
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532 exit(EXIT_FAILURE); |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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533 } |
285
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534 fprintf(out, "%3d: ", y1); |
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535 for (z = 0; z < y1; z++) { |
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536 fprintf(out, "%02X", plaintext[z]); |
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537 } |
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538 fprintf(out, ", "); |
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539 for (z = 0; z <(int)len; z++) { |
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540 fprintf(out, "%02X", tag[z]); |
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541 } |
1b9e69c058d2
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|
542 fprintf(out, "\n"); |
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543 |
1b9e69c058d2
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|
544 /* forward the key */ |
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Matt Johnston <matt@ucc.asn.au>
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545 for (z = 0; z < kl; z++) { |
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Matt Johnston <matt@ucc.asn.au>
parents:
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546 key[z] = tag[z % len]; |
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547 } |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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548 } |
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Matt Johnston <matt@ucc.asn.au>
parents:
diff
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|
549 fprintf(out, "\n"); |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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550 } |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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551 fclose(out); |
1471
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
Matt Johnston <matt@ucc.asn.au>
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552 #endif |
285
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553 } |
1b9e69c058d2
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554 |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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diff
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|
555 void gcm_gen(void) |
1b9e69c058d2
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|
556 { |
1471
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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|
557 #ifdef LTC_GCM_MODE |
285
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Matt Johnston <matt@ucc.asn.au>
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558 int err, kl, x, y1, z; |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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559 FILE *out; |
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parents:
diff
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|
560 unsigned char key[MAXBLOCKSIZE], plaintext[MAXBLOCKSIZE*2], tag[MAXBLOCKSIZE]; |
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561 unsigned long len; |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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562 |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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563 out = fopen("gcm_tv.txt", "w"); |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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564 fprintf(out, "GCM Test Vectors. Uses the 00010203...NN-1 pattern for nonce/header/plaintext/key. The outputs\n" |
1b9e69c058d2
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565 "are of the form ciphertext,tag for a given NN. The key for step N>1 is the tag of the previous\n" |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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|
566 "step repeated sufficiently. The nonce is fixed throughout at 13 bytes 000102...\n\n"); |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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diff
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|
567 |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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diff
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|
568 for (x = 0; cipher_descriptor[x].name != NULL; x++) { |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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diff
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|
569 kl = cipher_descriptor[x].block_length; |
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|
570 |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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diff
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|
571 /* skip ciphers which do not have 128 bit block sizes */ |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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|
572 if (kl != 16) continue; |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
parents:
diff
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|
573 |
1b9e69c058d2
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|
574 if (cipher_descriptor[x].keysize(&kl) != CRYPT_OK) { |
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Matt Johnston <matt@ucc.asn.au>
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|
575 kl = cipher_descriptor[x].max_key_length; |
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|
576 } |
1b9e69c058d2
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|
577 fprintf(out, "GCM-%s (%d byte key)\n", cipher_descriptor[x].name, kl); |
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|
578 |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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|
579 /* the key */ |
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Matt Johnston <matt@ucc.asn.au>
parents:
diff
changeset
|
580 for (z = 0; z < kl; z++) { |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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diff
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|
581 key[z] = (z & 255); |
1b9e69c058d2
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582 } |
1471
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
Matt Johnston <matt@ucc.asn.au>
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583 |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
Matt Johnston <matt@ucc.asn.au>
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584 for (y1 = 1; y1 <= (int)(cipher_descriptor[x].block_length*2); y1++){ |
285
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585 for (z = 0; z < y1; z++) { |
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diff
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|
586 plaintext[z] = (unsigned char)(z & 255); |
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587 } |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
parents:
diff
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|
588 len = sizeof(tag); |
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|
589 if ((err = gcm_memory(x, key, kl, plaintext, y1, plaintext, y1, plaintext, y1, plaintext, tag, &len, GCM_ENCRYPT)) != CRYPT_OK) { |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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|
590 printf("Error GCM'ing: %s\n", error_to_string(err)); |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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|
591 exit(EXIT_FAILURE); |
1b9e69c058d2
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592 } |
1471
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
Matt Johnston <matt@ucc.asn.au>
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593 if (len == 0) { |
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Update to libtomcrypt 1.18.1, merged with Dropbear changes
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parents:
1435
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594 printf("Error GCM'ing: zero length\n"); |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
Matt Johnston <matt@ucc.asn.au>
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595 exit(EXIT_FAILURE); |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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596 } |
285
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Matt Johnston <matt@ucc.asn.au>
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597 fprintf(out, "%3d: ", y1); |
1b9e69c058d2
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|
598 for (z = 0; z < y1; z++) { |
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599 fprintf(out, "%02X", plaintext[z]); |
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600 } |
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601 fprintf(out, ", "); |
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602 for (z = 0; z <(int)len; z++) { |
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603 fprintf(out, "%02X", tag[z]); |
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604 } |
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605 fprintf(out, "\n"); |
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606 |
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607 /* forward the key */ |
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608 for (z = 0; z < kl; z++) { |
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609 key[z] = tag[z % len]; |
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610 } |
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611 } |
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612 fprintf(out, "\n"); |
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613 } |
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614 fclose(out); |
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615 #endif |
285
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616 } |
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617 |
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618 void base64_gen(void) |
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619 { |
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620 FILE *out; |
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621 unsigned char dst[256], src[32], ch; |
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622 unsigned long x, len; |
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623 |
285
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624 out = fopen("base64_tv.txt", "w"); |
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625 fprintf(out, "Base64 vectors. These are the base64 encodings of the strings 00,01,02...NN-1\n\n"); |
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626 for (x = 0; x <= 32; x++) { |
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627 for (ch = 0; ch < x; ch++) { |
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628 src[ch] = ch; |
285
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629 } |
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630 len = sizeof(dst); |
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631 base64_encode(src, x, dst, &len); |
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632 fprintf(out, "%2lu: %s\n", x, dst); |
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633 } |
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634 fclose(out); |
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635 } |
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636 |
382
0cbe8f6dbf9e
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637 void math_gen(void) |
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638 { |
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639 } |
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640 |
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641 void ecc_gen(void) |
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642 { |
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643 FILE *out; |
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644 unsigned char str[512]; |
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645 void *k, *order, *modulus; |
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646 ecc_point *G, *R; |
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647 int x; |
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648 |
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649 out = fopen("ecc_tv.txt", "w"); |
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650 fprintf(out, "ecc vectors. These are for kG for k=1,3,9,27,...,3**n until k > order of the curve outputs are <k,x,y> triplets\n\n"); |
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651 G = ltc_ecc_new_point(); |
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652 R = ltc_ecc_new_point(); |
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653 mp_init(&k); |
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654 mp_init(&order); |
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655 mp_init(&modulus); |
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656 |
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657 for (x = 0; ltc_ecc_sets[x].size != 0; x++) { |
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658 fprintf(out, "ECC-%d\n", ltc_ecc_sets[x].size*8); |
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659 mp_set(k, 1); |
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660 |
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661 mp_read_radix(order, (char *)ltc_ecc_sets[x].order, 16); |
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662 mp_read_radix(modulus, (char *)ltc_ecc_sets[x].prime, 16); |
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663 mp_read_radix(G->x, (char *)ltc_ecc_sets[x].Gx, 16); |
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664 mp_read_radix(G->y, (char *)ltc_ecc_sets[x].Gy, 16); |
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Update to libtomcrypt 1.18.1, merged with Dropbear changes
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665 mp_set(G->z, 1); |
382
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666 |
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667 while (mp_cmp(k, order) == LTC_MP_LT) { |
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668 ltc_mp.ecc_ptmul(k, G, R, modulus, 1); |
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669 mp_tohex(k, (char*)str); fprintf(out, "%s, ", (char*)str); |
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670 mp_tohex(R->x, (char*)str); fprintf(out, "%s, ", (char*)str); |
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671 mp_tohex(R->y, (char*)str); fprintf(out, "%s\n", (char*)str); |
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672 mp_mul_d(k, 3, k); |
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673 } |
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674 } |
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675 mp_clear_multi(k, order, modulus, NULL); |
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676 ltc_ecc_del_point(G); |
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677 ltc_ecc_del_point(R); |
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678 fclose(out); |
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679 } |
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680 |
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681 void lrw_gen(void) |
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682 { |
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683 #ifdef LTC_LRW_MODE |
382
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684 FILE *out; |
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685 unsigned char tweak[16], key[16], iv[16], buf[1024]; |
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686 int x, y, err; |
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687 symmetric_LRW lrw; |
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688 |
382
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689 /* initialize default key and tweak */ |
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690 for (x = 0; x < 16; x++) { |
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691 tweak[x] = key[x] = iv[x] = x; |
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692 } |
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693 |
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694 out = fopen("lrw_tv.txt", "w"); |
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695 for (x = 16; x < (int)(sizeof(buf)); x += 16) { |
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696 if ((err = lrw_start(find_cipher("aes"), iv, key, 16, tweak, 0, &lrw)) != CRYPT_OK) { |
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697 fprintf(stderr, "Error starting LRW-AES: %s\n", error_to_string(err)); |
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698 exit(EXIT_FAILURE); |
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699 } |
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700 |
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701 /* encrypt incremental */ |
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702 for (y = 0; y < x; y++) { |
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703 buf[y] = y & 255; |
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704 } |
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705 |
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706 if ((err = lrw_encrypt(buf, buf, x, &lrw)) != CRYPT_OK) { |
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707 fprintf(stderr, "Error encrypting with LRW-AES: %s\n", error_to_string(err)); |
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708 exit(EXIT_FAILURE); |
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709 } |
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710 |
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711 /* display it */ |
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712 fprintf(out, "%d:", x); |
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713 for (y = 0; y < x; y++) { |
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714 fprintf(out, "%02x", buf[y]); |
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715 } |
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716 fprintf(out, "\n"); |
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717 |
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718 /* reset IV */ |
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719 if ((err = lrw_setiv(iv, 16, &lrw)) != CRYPT_OK) { |
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720 fprintf(stderr, "Error setting IV: %s\n", error_to_string(err)); |
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721 exit(EXIT_FAILURE); |
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722 } |
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723 |
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724 /* copy new tweak, iv and key */ |
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725 for (y = 0; y < 16; y++) { |
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726 key[y] = buf[y]; |
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727 iv[y] = buf[(y+16)%x]; |
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728 tweak[y] = buf[(y+32)%x]; |
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729 } |
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730 |
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731 if ((err = lrw_decrypt(buf, buf, x, &lrw)) != CRYPT_OK) { |
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732 fprintf(stderr, "Error decrypting with LRW-AES: %s\n", error_to_string(err)); |
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733 exit(EXIT_FAILURE); |
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734 } |
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|
735 |
0cbe8f6dbf9e
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736 /* display it */ |
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737 fprintf(out, "%d:", x); |
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738 for (y = 0; y < x; y++) { |
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739 fprintf(out, "%02x", buf[y]); |
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740 } |
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741 fprintf(out, "\n"); |
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742 lrw_done(&lrw); |
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743 } |
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744 fclose(out); |
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6dba84798cd5
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745 #endif |
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746 } |
382
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747 |
285
1b9e69c058d2
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|
748 int main(void) |
1b9e69c058d2
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749 { |
1471
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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|
750 register_all_ciphers(); |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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diff
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|
751 register_all_hashes(); |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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diff
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|
752 register_all_prngs(); |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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diff
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|
753 #ifdef USE_LTM |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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diff
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|
754 ltc_mp = ltm_desc; |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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diff
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|
755 #elif defined(USE_TFM) |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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diff
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|
756 ltc_mp = tfm_desc; |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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|
757 #elif defined(USE_GMP) |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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diff
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|
758 ltc_mp = gmp_desc; |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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diff
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|
759 #elif defined(EXT_MATH_LIB) |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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diff
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|
760 extern ltc_math_descriptor EXT_MATH_LIB; |
6dba84798cd5
Update to libtomcrypt 1.18.1, merged with Dropbear changes
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|
761 ltc_mp = EXT_MATH_LIB; |
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762 #else |
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763 fprintf(stderr, "No MPI provider available\n"); |
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764 exit(EXIT_FAILURE); |
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765 #endif |
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766 |
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767 printf("Generating hash vectors..."); fflush(stdout); hash_gen(); printf("done\n"); |
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768 printf("Generating cipher vectors..."); fflush(stdout); cipher_gen(); printf("done\n"); |
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769 printf("Generating HMAC vectors..."); fflush(stdout); hmac_gen(); printf("done\n"); |
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770 #ifdef LTC_OMAC |
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771 printf("Generating OMAC vectors..."); fflush(stdout); omac_gen(); printf("done\n"); |
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772 #endif |
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773 #ifdef LTC_PMAC |
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774 printf("Generating PMAC vectors..."); fflush(stdout); pmac_gen(); printf("done\n"); |
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775 #endif |
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776 #ifdef LTC_EAX_MODE |
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777 printf("Generating EAX vectors..."); fflush(stdout); eax_gen(); printf("done\n"); |
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778 #endif |
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779 #ifdef LTC_OCB_MODE |
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780 printf("Generating OCB vectors..."); fflush(stdout); ocb_gen(); printf("done\n"); |
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781 #endif |
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782 #ifdef LTC_OCB3_MODE |
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783 printf("Generating OCB3 vectors..."); fflush(stdout); ocb3_gen(); printf("done\n"); |
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784 #endif |
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785 #ifdef LTC_CCM_MODE |
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786 printf("Generating CCM vectors..."); fflush(stdout); ccm_gen(); printf("done\n"); |
1471
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787 #endif |
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788 #ifdef LTC_GCM_MODE |
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789 printf("Generating GCM vectors..."); fflush(stdout); gcm_gen(); printf("done\n"); |
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790 #endif |
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791 printf("Generating BASE64 vectors..."); fflush(stdout); base64_gen(); printf("done\n"); |
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792 printf("Generating MATH vectors..."); fflush(stdout); math_gen(); printf("done\n"); |
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793 printf("Generating ECC vectors..."); fflush(stdout); ecc_gen(); printf("done\n"); |
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794 #ifdef LTC_LRW_MODE |
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795 printf("Generating LRW vectors..."); fflush(stdout); lrw_gen(); printf("done\n"); |
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796 #endif |
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797 return 0; |
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798 } |
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799 |
1471
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800 /* ref: $Format:%D$ */ |
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801 /* git commit: $Format:%H$ */ |
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802 /* commit time: $Format:%ai$ */ |