Mercurial > trustbridge > nss-cmake-static
annotate nss/lib/freebl/hmacct.c @ 4:b513267f632f tip
Build DBM module
author | Andre Heinecke <andre.heinecke@intevation.de> |
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date | Tue, 05 Aug 2014 18:58:03 +0200 |
parents | 1e5118fa0cb1 |
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rev | line source |
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0
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1 /* This Source Code Form is subject to the terms of the Mozilla Public |
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2 * License, v. 2.0. If a copy of the MPL was not distributed with this |
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3 * file, You can obtain one at http://mozilla.org/MPL/2.0/. */ |
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4 |
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5 #ifdef FREEBL_NO_DEPEND |
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6 #include "stubs.h" |
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7 #endif |
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8 |
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9 #include "secport.h" |
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10 #include "hasht.h" |
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11 #include "blapit.h" |
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12 #include "hmacct.h" |
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13 #include "secerr.h" |
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14 |
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15 /* MAX_HASH_BIT_COUNT_BYTES is the maximum number of bytes in the hash's length |
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16 * field. (SHA-384/512 have 128-bit length.) */ |
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17 #define MAX_HASH_BIT_COUNT_BYTES 16 |
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18 |
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19 /* Some utility functions are needed: |
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20 * |
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21 * These macros return the given value with the MSB copied to all the other |
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22 * bits. They use the fact that an arithmetic shift shifts-in the sign bit. |
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23 * However, this is not ensured by the C standard so you may need to replace |
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24 * them with something else on odd CPUs. |
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25 * |
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26 * Note: the argument to these macros must be an unsigned int. |
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27 * */ |
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28 #define DUPLICATE_MSB_TO_ALL(x) ( (unsigned int)( (int)(x) >> (sizeof(int)*8-1) ) ) |
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29 #define DUPLICATE_MSB_TO_ALL_8(x) ( (unsigned char)(DUPLICATE_MSB_TO_ALL(x)) ) |
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30 |
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31 /* constantTimeGE returns 0xff if a>=b and 0x00 otherwise, where a, b < |
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32 * MAX_UINT/2. */ |
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33 static unsigned char |
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34 constantTimeGE(unsigned int a, unsigned int b) |
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35 { |
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36 a -= b; |
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37 return DUPLICATE_MSB_TO_ALL(~a); |
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38 } |
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39 |
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40 /* constantTimeEQ8 returns 0xff if a==b and 0x00 otherwise. */ |
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41 static unsigned char |
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42 constantTimeEQ8(unsigned char a, unsigned char b) |
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43 { |
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44 unsigned int c = a ^ b; |
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45 c--; |
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46 return DUPLICATE_MSB_TO_ALL_8(c); |
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47 } |
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48 |
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49 /* MAC performs a constant time SSLv3/TLS MAC of |dataLen| bytes of |data|, |
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50 * where |dataLen| includes both the authenticated bytes and the MAC tag from |
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51 * the sender. |dataLen| must be >= the length of the MAC tag. |
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52 * |
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53 * |dataTotalLen| is >= |dataLen| and also accounts for any padding bytes |
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54 * that may follow the sender's MAC. (Only a single block of padding may |
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55 * follow in SSLv3, or up to 255 bytes in TLS.) |
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56 * |
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57 * Since the results of decryption are secret information (otherwise a |
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58 * padding-oracle is created), this function is constant-time with respect to |
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59 * |dataLen|. |
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60 * |
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61 * |header| contains either the 13-byte TLS header (containing the sequence |
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62 * number, record type etc), or it contains the SSLv3 header with the SSLv3 |
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63 * padding bytes etc. */ |
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64 static SECStatus |
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65 MAC(unsigned char *mdOut, |
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66 unsigned int *mdOutLen, |
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67 unsigned int mdOutMax, |
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68 const SECHashObject *hashObj, |
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69 const unsigned char *macSecret, |
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70 unsigned int macSecretLen, |
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71 const unsigned char *header, |
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72 unsigned int headerLen, |
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73 const unsigned char *data, |
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74 unsigned int dataLen, |
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75 unsigned int dataTotalLen, |
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76 unsigned char isSSLv3) |
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77 { |
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78 void *mdState = hashObj->create(); |
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79 const unsigned int mdSize = hashObj->length; |
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80 const unsigned int mdBlockSize = hashObj->blocklength; |
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81 /* mdLengthSize is the number of bytes in the length field that terminates |
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82 * the hash. |
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83 * |
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84 * This assumes that hash functions with a 64 byte block size use a 64-bit |
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85 * length, and otherwise they use a 128-bit length. This is true of {MD5, |
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86 * SHA*} (which are all of the hash functions specified for use with TLS |
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87 * today). */ |
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88 const unsigned int mdLengthSize = mdBlockSize == 64 ? 8 : 16; |
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89 |
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90 const unsigned int sslv3PadLen = hashObj->type == HASH_AlgMD5 ? 48 : 40; |
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91 |
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92 /* varianceBlocks is the number of blocks of the hash that we have to |
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93 * calculate in constant time because they could be altered by the |
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94 * padding value. |
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95 * |
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96 * In SSLv3, the padding must be minimal so the end of the plaintext |
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97 * varies by, at most, 15+20 = 35 bytes. (We conservatively assume that |
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98 * the MAC size varies from 0..20 bytes.) In case the 9 bytes of hash |
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99 * termination (0x80 + 64-bit length) don't fit in the final block, we |
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100 * say that the final two blocks can vary based on the padding. |
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101 * |
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102 * TLSv1 has MACs up to 48 bytes long (SHA-384) and the padding is not |
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103 * required to be minimal. Therefore we say that the final six blocks |
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104 * can vary based on the padding. |
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105 * |
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106 * Later in the function, if the message is short and there obviously |
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107 * cannot be this many blocks then varianceBlocks can be reduced. */ |
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108 unsigned int varianceBlocks = isSSLv3 ? 2 : 6; |
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109 /* From now on we're dealing with the MAC, which conceptually has 13 |
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110 * bytes of `header' before the start of the data (TLS) or 71/75 bytes |
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111 * (SSLv3) */ |
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112 const unsigned int len = dataTotalLen + headerLen; |
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113 /* maxMACBytes contains the maximum bytes of bytes in the MAC, including |
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114 * |header|, assuming that there's no padding. */ |
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115 const unsigned int maxMACBytes = len - mdSize - 1; |
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116 /* numBlocks is the maximum number of hash blocks. */ |
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117 const unsigned int numBlocks = |
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118 (maxMACBytes + 1 + mdLengthSize + mdBlockSize - 1) / mdBlockSize; |
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119 /* macEndOffset is the index just past the end of the data to be |
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120 * MACed. */ |
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121 const unsigned int macEndOffset = dataLen + headerLen - mdSize; |
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122 /* c is the index of the 0x80 byte in the final hash block that |
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123 * contains application data. */ |
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124 const unsigned int c = macEndOffset % mdBlockSize; |
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125 /* indexA is the hash block number that contains the 0x80 terminating |
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126 * value. */ |
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127 const unsigned int indexA = macEndOffset / mdBlockSize; |
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128 /* indexB is the hash block number that contains the 64-bit hash |
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129 * length, in bits. */ |
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130 const unsigned int indexB = (macEndOffset + mdLengthSize) / mdBlockSize; |
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131 /* bits is the hash-length in bits. It includes the additional hash |
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132 * block for the masked HMAC key, or whole of |header| in the case of |
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133 * SSLv3. */ |
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134 unsigned int bits; |
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135 /* In order to calculate the MAC in constant time we have to handle |
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136 * the final blocks specially because the padding value could cause the |
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137 * end to appear somewhere in the final |varianceBlocks| blocks and we |
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138 * can't leak where. However, |numStartingBlocks| worth of data can |
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139 * be hashed right away because no padding value can affect whether |
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140 * they are plaintext. */ |
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141 unsigned int numStartingBlocks = 0; |
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142 /* k is the starting byte offset into the conceptual header||data where |
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143 * we start processing. */ |
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144 unsigned int k = 0; |
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145 unsigned char lengthBytes[MAX_HASH_BIT_COUNT_BYTES]; |
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146 /* hmacPad is the masked HMAC key. */ |
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147 unsigned char hmacPad[HASH_BLOCK_LENGTH_MAX]; |
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148 unsigned char firstBlock[HASH_BLOCK_LENGTH_MAX]; |
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149 unsigned char macOut[HASH_LENGTH_MAX]; |
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150 unsigned i, j; |
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151 |
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152 /* For SSLv3, if we're going to have any starting blocks then we need |
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153 * at least two because the header is larger than a single block. */ |
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154 if (numBlocks > varianceBlocks + (isSSLv3 ? 1 : 0)) { |
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155 numStartingBlocks = numBlocks - varianceBlocks; |
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156 k = mdBlockSize*numStartingBlocks; |
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157 } |
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158 |
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159 bits = 8*macEndOffset; |
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160 hashObj->begin(mdState); |
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161 if (!isSSLv3) { |
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162 /* Compute the initial HMAC block. For SSLv3, the padding and |
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163 * secret bytes are included in |header| because they take more |
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164 * than a single block. */ |
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165 bits += 8*mdBlockSize; |
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166 memset(hmacPad, 0, mdBlockSize); |
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167 PORT_Assert(macSecretLen <= sizeof(hmacPad)); |
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168 memcpy(hmacPad, macSecret, macSecretLen); |
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169 for (i = 0; i < mdBlockSize; i++) |
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170 hmacPad[i] ^= 0x36; |
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171 hashObj->update(mdState, hmacPad, mdBlockSize); |
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172 } |
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173 |
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174 j = 0; |
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175 memset(lengthBytes, 0, sizeof(lengthBytes)); |
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176 if (mdLengthSize == 16) { |
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177 j = 8; |
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178 } |
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179 if (hashObj->type == HASH_AlgMD5) { |
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180 /* MD5 appends a little-endian length. */ |
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181 for (i = 0; i < 4; i++) { |
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182 lengthBytes[i+j] = bits >> (8*i); |
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183 } |
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184 } else { |
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185 /* All other TLS hash functions use a big-endian length. */ |
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186 for (i = 0; i < 4; i++) { |
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187 lengthBytes[4+i+j] = bits >> (8*(3-i)); |
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188 } |
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189 } |
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190 |
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191 if (k > 0) { |
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192 if (isSSLv3) { |
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193 /* The SSLv3 header is larger than a single block. |
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194 * overhang is the number of bytes beyond a single |
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195 * block that the header consumes: either 7 bytes |
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196 * (SHA1) or 11 bytes (MD5). */ |
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197 const unsigned int overhang = headerLen-mdBlockSize; |
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198 hashObj->update(mdState, header, mdBlockSize); |
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199 memcpy(firstBlock, header + mdBlockSize, overhang); |
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200 memcpy(firstBlock + overhang, data, mdBlockSize-overhang); |
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201 hashObj->update(mdState, firstBlock, mdBlockSize); |
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202 for (i = 1; i < k/mdBlockSize - 1; i++) { |
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203 hashObj->update(mdState, data + mdBlockSize*i - overhang, |
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204 mdBlockSize); |
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205 } |
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206 } else { |
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207 /* k is a multiple of mdBlockSize. */ |
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208 memcpy(firstBlock, header, 13); |
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209 memcpy(firstBlock+13, data, mdBlockSize-13); |
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210 hashObj->update(mdState, firstBlock, mdBlockSize); |
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211 for (i = 1; i < k/mdBlockSize; i++) { |
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212 hashObj->update(mdState, data + mdBlockSize*i - 13, |
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213 mdBlockSize); |
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214 } |
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215 } |
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216 } |
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217 |
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218 memset(macOut, 0, sizeof(macOut)); |
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219 |
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220 /* We now process the final hash blocks. For each block, we construct |
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221 * it in constant time. If i == indexA then we'll include the 0x80 |
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222 * bytes and zero pad etc. For each block we selectively copy it, in |
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223 * constant time, to |macOut|. */ |
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224 for (i = numStartingBlocks; i <= numStartingBlocks+varianceBlocks; i++) { |
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225 unsigned char block[HASH_BLOCK_LENGTH_MAX]; |
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226 unsigned char isBlockA = constantTimeEQ8(i, indexA); |
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227 unsigned char isBlockB = constantTimeEQ8(i, indexB); |
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228 for (j = 0; j < mdBlockSize; j++) { |
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229 unsigned char isPastC = isBlockA & constantTimeGE(j, c); |
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230 unsigned char isPastCPlus1 = isBlockA & constantTimeGE(j, c+1); |
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231 unsigned char b = 0; |
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232 if (k < headerLen) { |
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233 b = header[k]; |
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234 } else if (k < dataTotalLen + headerLen) { |
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235 b = data[k-headerLen]; |
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236 } |
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237 k++; |
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238 |
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239 /* If this is the block containing the end of the |
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240 * application data, and we are at the offset for the |
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241 * 0x80 value, then overwrite b with 0x80. */ |
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242 b = (b&~isPastC) | (0x80&isPastC); |
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243 /* If this the the block containing the end of the |
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244 * application data and we're past the 0x80 value then |
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245 * just write zero. */ |
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246 b = b&~isPastCPlus1; |
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247 /* If this is indexB (the final block), but not |
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248 * indexA (the end of the data), then the 64-bit |
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249 * length didn't fit into indexA and we're having to |
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250 * add an extra block of zeros. */ |
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251 b &= ~isBlockB | isBlockA; |
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252 |
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253 /* The final bytes of one of the blocks contains the length. */ |
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254 if (j >= mdBlockSize - mdLengthSize) { |
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255 /* If this is indexB, write a length byte. */ |
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256 b = (b&~isBlockB) | |
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257 (isBlockB&lengthBytes[j-(mdBlockSize-mdLengthSize)]); |
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258 } |
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259 block[j] = b; |
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260 } |
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261 |
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262 hashObj->update(mdState, block, mdBlockSize); |
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263 hashObj->end_raw(mdState, block, NULL, mdSize); |
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264 /* If this is indexB, copy the hash value to |macOut|. */ |
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265 for (j = 0; j < mdSize; j++) { |
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266 macOut[j] |= block[j]&isBlockB; |
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267 } |
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268 } |
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269 |
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270 hashObj->begin(mdState); |
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271 |
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272 if (isSSLv3) { |
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273 /* We repurpose |hmacPad| to contain the SSLv3 pad2 block. */ |
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274 for (i = 0; i < sslv3PadLen; i++) |
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275 hmacPad[i] = 0x5c; |
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276 |
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277 hashObj->update(mdState, macSecret, macSecretLen); |
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278 hashObj->update(mdState, hmacPad, sslv3PadLen); |
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279 hashObj->update(mdState, macOut, mdSize); |
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280 } else { |
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281 /* Complete the HMAC in the standard manner. */ |
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282 for (i = 0; i < mdBlockSize; i++) |
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283 hmacPad[i] ^= 0x6a; |
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284 |
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285 hashObj->update(mdState, hmacPad, mdBlockSize); |
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286 hashObj->update(mdState, macOut, mdSize); |
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287 } |
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288 |
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289 hashObj->end(mdState, mdOut, mdOutLen, mdOutMax); |
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290 hashObj->destroy(mdState, PR_TRUE); |
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291 |
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292 return SECSuccess; |
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293 } |
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294 |
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295 SECStatus |
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296 HMAC_ConstantTime( |
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297 unsigned char *result, |
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298 unsigned int *resultLen, |
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299 unsigned int maxResultLen, |
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300 const SECHashObject *hashObj, |
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301 const unsigned char *secret, |
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302 unsigned int secretLen, |
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303 const unsigned char *header, |
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304 unsigned int headerLen, |
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305 const unsigned char *body, |
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306 unsigned int bodyLen, |
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307 unsigned int bodyTotalLen) |
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308 { |
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309 if (hashObj->end_raw == NULL) |
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310 return SECFailure; |
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311 return MAC(result, resultLen, maxResultLen, hashObj, secret, secretLen, |
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312 header, headerLen, body, bodyLen, bodyTotalLen, |
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313 0 /* not SSLv3 */); |
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314 } |
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315 |
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316 SECStatus |
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317 SSLv3_MAC_ConstantTime( |
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318 unsigned char *result, |
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319 unsigned int *resultLen, |
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320 unsigned int maxResultLen, |
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321 const SECHashObject *hashObj, |
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322 const unsigned char *secret, |
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323 unsigned int secretLen, |
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324 const unsigned char *header, |
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325 unsigned int headerLen, |
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326 const unsigned char *body, |
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327 unsigned int bodyLen, |
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328 unsigned int bodyTotalLen) |
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329 { |
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330 if (hashObj->end_raw == NULL) |
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331 return SECFailure; |
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332 return MAC(result, resultLen, maxResultLen, hashObj, secret, secretLen, |
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333 header, headerLen, body, bodyLen, bodyTotalLen, |
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334 1 /* SSLv3 */); |
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335 } |
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336 |