Mercurial > dropbear
annotate libtomcrypt/demos/tv_gen.c @ 1857:6022df862942
Use DSCP for IP QoS traffic classes
The previous TOS values are deprecated and not used by modern traffic
classifiers. This sets AF21 for "interactive" traffic (with a tty).
Non-tty traffic sets AF11 - that indicates high throughput but is not
lowest priority (which would be CS1 or LE).
This differs from the CS1 used by OpenSSH, it lets interactive git over SSH
have higher priority than background least effort traffic. Dropbear's settings
here should be suitable with the diffservs used by CAKE qdisc.
author | Matt Johnston <matt@ucc.asn.au> |
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date | Tue, 25 Jan 2022 17:32:20 +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 |
285
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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 |
285
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418 } |
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419 |
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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
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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); |
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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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545 for (z = 0; z < kl; z++) { |
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Matt Johnston <matt@ucc.asn.au>
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546 key[z] = tag[z % len]; |
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547 } |
1b9e69c058d2
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548 } |
1b9e69c058d2
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parents:
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549 fprintf(out, "\n"); |
1b9e69c058d2
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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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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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diff
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560 unsigned char key[MAXBLOCKSIZE], plaintext[MAXBLOCKSIZE*2], tag[MAXBLOCKSIZE]; |
1b9e69c058d2
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561 unsigned long len; |
1b9e69c058d2
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562 |
1b9e69c058d2
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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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|
566 "step repeated sufficiently. The nonce is fixed throughout at 13 bytes 000102...\n\n"); |
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Matt Johnston <matt@ucc.asn.au>
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|
567 |
1b9e69c058d2
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Matt Johnston <matt@ucc.asn.au>
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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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|
571 /* skip ciphers which do not have 128 bit block sizes */ |
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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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|
579 /* the key */ |
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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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|
581 key[z] = (z & 255); |
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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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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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|
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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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 |
0cbe8f6dbf9e
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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 |
0cbe8f6dbf9e
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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); |
1471
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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
changeset
|
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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diff
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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; |
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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"); |
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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 |
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800 /* ref: $Format:%D$ */ |
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801 /* git commit: $Format:%H$ */ |
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802 /* commit time: $Format:%ai$ */ |