Mercurial > dropbear
annotate libtomcrypt/src/ciphers/rc5.c @ 1861:2b3a8026a6ce
Add re-exec for server
This allows ASLR to re-randomize the address
space for every connection, preventing some
vulnerabilities from being exploitable by
repeated probing.
Overhead (memory and time) is yet to be confirmed.
At present this is only enabled on Linux. Other BSD platforms
with fexecve() would probably also work though have not been tested.
author | Matt Johnston <matt@ucc.asn.au> |
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date | Sun, 30 Jan 2022 10:14:56 +0800 |
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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 |
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10 /** |
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11 @file rc5.c |
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12 LTC_RC5 code by Tom St Denis |
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13 */ |
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14 |
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15 #include "tomcrypt.h" |
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16 |
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17 #ifdef LTC_RC5 |
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18 |
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19 const struct ltc_cipher_descriptor rc5_desc = |
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20 { |
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21 "rc5", |
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22 2, |
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23 8, 128, 8, 12, |
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24 &rc5_setup, |
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25 &rc5_ecb_encrypt, |
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26 &rc5_ecb_decrypt, |
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27 &rc5_test, |
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28 &rc5_done, |
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29 &rc5_keysize, |
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30 NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL |
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31 }; |
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32 |
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33 static const ulong32 stab[50] = { |
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34 0xb7e15163UL, 0x5618cb1cUL, 0xf45044d5UL, 0x9287be8eUL, 0x30bf3847UL, 0xcef6b200UL, 0x6d2e2bb9UL, 0x0b65a572UL, |
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35 0xa99d1f2bUL, 0x47d498e4UL, 0xe60c129dUL, 0x84438c56UL, 0x227b060fUL, 0xc0b27fc8UL, 0x5ee9f981UL, 0xfd21733aUL, |
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36 0x9b58ecf3UL, 0x399066acUL, 0xd7c7e065UL, 0x75ff5a1eUL, 0x1436d3d7UL, 0xb26e4d90UL, 0x50a5c749UL, 0xeedd4102UL, |
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37 0x8d14babbUL, 0x2b4c3474UL, 0xc983ae2dUL, 0x67bb27e6UL, 0x05f2a19fUL, 0xa42a1b58UL, 0x42619511UL, 0xe0990ecaUL, |
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38 0x7ed08883UL, 0x1d08023cUL, 0xbb3f7bf5UL, 0x5976f5aeUL, 0xf7ae6f67UL, 0x95e5e920UL, 0x341d62d9UL, 0xd254dc92UL, |
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39 0x708c564bUL, 0x0ec3d004UL, 0xacfb49bdUL, 0x4b32c376UL, 0xe96a3d2fUL, 0x87a1b6e8UL, 0x25d930a1UL, 0xc410aa5aUL, |
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40 0x62482413UL, 0x007f9dccUL |
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41 }; |
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42 |
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43 /** |
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44 Initialize the LTC_RC5 block cipher |
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45 @param key The symmetric key you wish to pass |
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46 @param keylen The key length in bytes |
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47 @param num_rounds The number of rounds desired (0 for default) |
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48 @param skey The key in as scheduled by this function. |
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49 @return CRYPT_OK if successful |
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50 */ |
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51 #ifdef LTC_CLEAN_STACK |
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52 static int _rc5_setup(const unsigned char *key, int keylen, int num_rounds, symmetric_key *skey) |
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53 #else |
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54 int rc5_setup(const unsigned char *key, int keylen, int num_rounds, symmetric_key *skey) |
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55 #endif |
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56 { |
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57 ulong32 L[64], *S, A, B, i, j, v, s, t, l; |
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58 |
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59 LTC_ARGCHK(skey != NULL); |
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60 LTC_ARGCHK(key != NULL); |
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61 |
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62 /* test parameters */ |
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63 if (num_rounds == 0) { |
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64 num_rounds = rc5_desc.default_rounds; |
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65 } |
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66 |
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67 if (num_rounds < 12 || num_rounds > 24) { |
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68 return CRYPT_INVALID_ROUNDS; |
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69 } |
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70 |
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71 /* key must be between 64 and 1024 bits */ |
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72 if (keylen < 8 || keylen > 128) { |
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73 return CRYPT_INVALID_KEYSIZE; |
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74 } |
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75 |
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76 skey->rc5.rounds = num_rounds; |
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77 S = skey->rc5.K; |
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78 |
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79 /* copy the key into the L array */ |
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80 for (A = i = j = 0; i < (ulong32)keylen; ) { |
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81 A = (A << 8) | ((ulong32)(key[i++] & 255)); |
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82 if ((i & 3) == 0) { |
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83 L[j++] = BSWAP(A); |
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84 A = 0; |
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85 } |
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86 } |
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87 |
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88 if ((keylen & 3) != 0) { |
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89 A <<= (ulong32)((8 * (4 - (keylen&3)))); |
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90 L[j++] = BSWAP(A); |
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91 } |
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92 |
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93 /* setup the S array */ |
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94 t = (ulong32)(2 * (num_rounds + 1)); |
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95 XMEMCPY(S, stab, t * sizeof(*S)); |
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96 |
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97 /* mix buffer */ |
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98 s = 3 * MAX(t, j); |
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99 l = j; |
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100 for (A = B = i = j = v = 0; v < s; v++) { |
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101 A = S[i] = ROLc(S[i] + A + B, 3); |
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102 B = L[j] = ROL(L[j] + A + B, (A+B)); |
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103 if (++i == t) { i = 0; } |
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104 if (++j == l) { j = 0; } |
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105 } |
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106 return CRYPT_OK; |
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107 } |
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108 |
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109 #ifdef LTC_CLEAN_STACK |
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110 int rc5_setup(const unsigned char *key, int keylen, int num_rounds, symmetric_key *skey) |
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111 { |
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112 int x; |
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113 x = _rc5_setup(key, keylen, num_rounds, skey); |
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114 burn_stack(sizeof(ulong32) * 122 + sizeof(int)); |
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115 return x; |
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116 } |
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117 #endif |
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118 |
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119 /** |
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120 Encrypts a block of text with LTC_RC5 |
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121 @param pt The input plaintext (8 bytes) |
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122 @param ct The output ciphertext (8 bytes) |
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123 @param skey The key as scheduled |
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124 @return CRYPT_OK if successful |
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125 */ |
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126 #ifdef LTC_CLEAN_STACK |
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127 static int _rc5_ecb_encrypt(const unsigned char *pt, unsigned char *ct, symmetric_key *skey) |
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128 #else |
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129 int rc5_ecb_encrypt(const unsigned char *pt, unsigned char *ct, symmetric_key *skey) |
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130 #endif |
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131 { |
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132 ulong32 A, B, *K; |
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133 int r; |
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134 LTC_ARGCHK(skey != NULL); |
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135 LTC_ARGCHK(pt != NULL); |
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136 LTC_ARGCHK(ct != NULL); |
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137 |
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138 LOAD32L(A, &pt[0]); |
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139 LOAD32L(B, &pt[4]); |
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140 A += skey->rc5.K[0]; |
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141 B += skey->rc5.K[1]; |
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142 K = skey->rc5.K + 2; |
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143 |
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144 if ((skey->rc5.rounds & 1) == 0) { |
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145 for (r = 0; r < skey->rc5.rounds; r += 2) { |
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146 A = ROL(A ^ B, B) + K[0]; |
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147 B = ROL(B ^ A, A) + K[1]; |
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148 A = ROL(A ^ B, B) + K[2]; |
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149 B = ROL(B ^ A, A) + K[3]; |
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150 K += 4; |
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151 } |
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152 } else { |
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153 for (r = 0; r < skey->rc5.rounds; r++) { |
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154 A = ROL(A ^ B, B) + K[0]; |
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155 B = ROL(B ^ A, A) + K[1]; |
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156 K += 2; |
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157 } |
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158 } |
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159 STORE32L(A, &ct[0]); |
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160 STORE32L(B, &ct[4]); |
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161 |
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162 return CRYPT_OK; |
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163 } |
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164 |
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165 #ifdef LTC_CLEAN_STACK |
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166 int rc5_ecb_encrypt(const unsigned char *pt, unsigned char *ct, symmetric_key *skey) |
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167 { |
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168 int err = _rc5_ecb_encrypt(pt, ct, skey); |
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169 burn_stack(sizeof(ulong32) * 2 + sizeof(int)); |
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170 return err; |
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171 } |
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172 #endif |
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173 |
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174 /** |
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175 Decrypts a block of text with LTC_RC5 |
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176 @param ct The input ciphertext (8 bytes) |
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177 @param pt The output plaintext (8 bytes) |
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178 @param skey The key as scheduled |
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179 @return CRYPT_OK if successful |
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180 */ |
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181 #ifdef LTC_CLEAN_STACK |
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182 static int _rc5_ecb_decrypt(const unsigned char *ct, unsigned char *pt, symmetric_key *skey) |
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183 #else |
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184 int rc5_ecb_decrypt(const unsigned char *ct, unsigned char *pt, symmetric_key *skey) |
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185 #endif |
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186 { |
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187 ulong32 A, B, *K; |
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188 int r; |
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189 LTC_ARGCHK(skey != NULL); |
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190 LTC_ARGCHK(pt != NULL); |
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191 LTC_ARGCHK(ct != NULL); |
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192 |
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193 LOAD32L(A, &ct[0]); |
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194 LOAD32L(B, &ct[4]); |
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195 K = skey->rc5.K + (skey->rc5.rounds << 1); |
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196 |
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197 if ((skey->rc5.rounds & 1) == 0) { |
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198 K -= 2; |
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199 for (r = skey->rc5.rounds - 1; r >= 0; r -= 2) { |
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200 B = ROR(B - K[3], A) ^ A; |
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201 A = ROR(A - K[2], B) ^ B; |
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202 B = ROR(B - K[1], A) ^ A; |
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203 A = ROR(A - K[0], B) ^ B; |
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204 K -= 4; |
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205 } |
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206 } else { |
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207 for (r = skey->rc5.rounds - 1; r >= 0; r--) { |
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208 B = ROR(B - K[1], A) ^ A; |
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209 A = ROR(A - K[0], B) ^ B; |
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210 K -= 2; |
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211 } |
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212 } |
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213 A -= skey->rc5.K[0]; |
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214 B -= skey->rc5.K[1]; |
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215 STORE32L(A, &pt[0]); |
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216 STORE32L(B, &pt[4]); |
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217 |
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218 return CRYPT_OK; |
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219 } |
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220 |
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221 #ifdef LTC_CLEAN_STACK |
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222 int rc5_ecb_decrypt(const unsigned char *ct, unsigned char *pt, symmetric_key *skey) |
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223 { |
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224 int err = _rc5_ecb_decrypt(ct, pt, skey); |
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225 burn_stack(sizeof(ulong32) * 2 + sizeof(int)); |
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226 return err; |
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227 } |
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228 #endif |
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229 |
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230 /** |
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231 Performs a self-test of the LTC_RC5 block cipher |
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232 @return CRYPT_OK if functional, CRYPT_NOP if self-test has been disabled |
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233 */ |
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234 int rc5_test(void) |
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235 { |
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236 #ifndef LTC_TEST |
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237 return CRYPT_NOP; |
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238 #else |
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239 static const struct { |
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240 unsigned char key[16], pt[8], ct[8]; |
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241 } tests[] = { |
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242 { |
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243 { 0x91, 0x5f, 0x46, 0x19, 0xbe, 0x41, 0xb2, 0x51, |
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244 0x63, 0x55, 0xa5, 0x01, 0x10, 0xa9, 0xce, 0x91 }, |
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245 { 0x21, 0xa5, 0xdb, 0xee, 0x15, 0x4b, 0x8f, 0x6d }, |
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246 { 0xf7, 0xc0, 0x13, 0xac, 0x5b, 0x2b, 0x89, 0x52 } |
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247 }, |
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248 { |
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249 { 0x78, 0x33, 0x48, 0xe7, 0x5a, 0xeb, 0x0f, 0x2f, |
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250 0xd7, 0xb1, 0x69, 0xbb, 0x8d, 0xc1, 0x67, 0x87 }, |
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251 { 0xF7, 0xC0, 0x13, 0xAC, 0x5B, 0x2B, 0x89, 0x52 }, |
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252 { 0x2F, 0x42, 0xB3, 0xB7, 0x03, 0x69, 0xFC, 0x92 } |
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253 }, |
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254 { |
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255 { 0xDC, 0x49, 0xdb, 0x13, 0x75, 0xa5, 0x58, 0x4f, |
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256 0x64, 0x85, 0xb4, 0x13, 0xb5, 0xf1, 0x2b, 0xaf }, |
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257 { 0x2F, 0x42, 0xB3, 0xB7, 0x03, 0x69, 0xFC, 0x92 }, |
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258 { 0x65, 0xc1, 0x78, 0xb2, 0x84, 0xd1, 0x97, 0xcc } |
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259 } |
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260 }; |
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261 unsigned char tmp[2][8]; |
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262 int x, y, err; |
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263 symmetric_key key; |
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264 |
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265 for (x = 0; x < (int)(sizeof(tests) / sizeof(tests[0])); x++) { |
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266 /* setup key */ |
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267 if ((err = rc5_setup(tests[x].key, 16, 12, &key)) != CRYPT_OK) { |
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268 return err; |
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269 } |
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270 |
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271 /* encrypt and decrypt */ |
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272 rc5_ecb_encrypt(tests[x].pt, tmp[0], &key); |
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273 rc5_ecb_decrypt(tmp[0], tmp[1], &key); |
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274 |
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275 /* compare */ |
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276 if (compare_testvector(tmp[0], 8, tests[x].ct, 8, "RC5 Encrypt", x) != 0 || |
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277 compare_testvector(tmp[1], 8, tests[x].pt, 8, "RC5 Decrypt", x) != 0) { |
285
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278 return CRYPT_FAIL_TESTVECTOR; |
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279 } |
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280 |
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281 /* now see if we can encrypt all zero bytes 1000 times, decrypt and come back where we started */ |
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282 for (y = 0; y < 8; y++) tmp[0][y] = 0; |
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283 for (y = 0; y < 1000; y++) rc5_ecb_encrypt(tmp[0], tmp[0], &key); |
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284 for (y = 0; y < 1000; y++) rc5_ecb_decrypt(tmp[0], tmp[0], &key); |
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285 for (y = 0; y < 8; y++) if (tmp[0][y] != 0) return CRYPT_FAIL_TESTVECTOR; |
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286 } |
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287 return CRYPT_OK; |
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288 #endif |
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289 } |
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290 |
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291 /** Terminate the context |
285
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292 @param skey The scheduled key |
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293 */ |
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294 void rc5_done(symmetric_key *skey) |
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295 { |
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296 LTC_UNUSED_PARAM(skey); |
285
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297 } |
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298 |
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299 /** |
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300 Gets suitable key size |
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301 @param keysize [in/out] The length of the recommended key (in bytes). This function will store the suitable size back in this variable. |
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302 @return CRYPT_OK if the input key size is acceptable. |
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303 */ |
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304 int rc5_keysize(int *keysize) |
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305 { |
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306 LTC_ARGCHK(keysize != NULL); |
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307 if (*keysize < 8) { |
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308 return CRYPT_INVALID_KEYSIZE; |
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309 } else if (*keysize > 128) { |
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310 *keysize = 128; |
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311 } |
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312 return CRYPT_OK; |
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313 } |
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314 |
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315 #endif |
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316 |
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317 |
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318 |
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319 |
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320 /* ref: $Format:%D$ */ |
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321 /* git commit: $Format:%H$ */ |
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322 /* commit time: $Format:%ai$ */ |