1 | /*
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2 | * Copyright 2010-2018 The OpenSSL Project Authors. All Rights Reserved.
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3 | *
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4 | * Licensed under the OpenSSL license (the "License"). You may not use
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5 | * this file except in compliance with the License. You can obtain a copy
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6 | * in the file LICENSE in the source distribution or at
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7 | * https://www.openssl.org/source/license.html
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8 | */
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9 |
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10 | #include <stdio.h>
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11 | #include <stdlib.h>
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12 | #include <string.h>
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13 | #include "internal/cryptlib.h"
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14 | #include <openssl/cmac.h>
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15 | #include <openssl/err.h>
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16 |
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17 | struct CMAC_CTX_st {
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18 | /* Cipher context to use */
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19 | EVP_CIPHER_CTX *cctx;
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20 | /* Keys k1 and k2 */
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21 | unsigned char k1[EVP_MAX_BLOCK_LENGTH];
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22 | unsigned char k2[EVP_MAX_BLOCK_LENGTH];
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23 | /* Temporary block */
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24 | unsigned char tbl[EVP_MAX_BLOCK_LENGTH];
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25 | /* Last (possibly partial) block */
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26 | unsigned char last_block[EVP_MAX_BLOCK_LENGTH];
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27 | /* Number of bytes in last block: -1 means context not initialised */
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28 | int nlast_block;
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29 | };
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30 |
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31 | /* Make temporary keys K1 and K2 */
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32 |
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33 | static void make_kn(unsigned char *k1, const unsigned char *l, int bl)
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34 | {
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35 | int i;
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36 | unsigned char c = l[0], carry = c >> 7, cnext;
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37 |
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38 | /* Shift block to left, including carry */
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39 | for (i = 0; i < bl - 1; i++, c = cnext)
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40 | k1[i] = (c << 1) | ((cnext = l[i + 1]) >> 7);
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41 |
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42 | /* If MSB set fixup with R */
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43 | k1[i] = (c << 1) ^ ((0 - carry) & (bl == 16 ? 0x87 : 0x1b));
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44 | }
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45 |
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46 | CMAC_CTX *CMAC_CTX_new(void)
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47 | {
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48 | CMAC_CTX *ctx;
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49 |
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50 | if ((ctx = OPENSSL_malloc(sizeof(*ctx))) == NULL) {
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51 | CRYPTOerr(CRYPTO_F_CMAC_CTX_NEW, ERR_R_MALLOC_FAILURE);
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52 | return NULL;
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53 | }
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54 | ctx->cctx = EVP_CIPHER_CTX_new();
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55 | if (ctx->cctx == NULL) {
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56 | OPENSSL_free(ctx);
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57 | return NULL;
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58 | }
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59 | ctx->nlast_block = -1;
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60 | return ctx;
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61 | }
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62 |
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63 | void CMAC_CTX_cleanup(CMAC_CTX *ctx)
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64 | {
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65 | EVP_CIPHER_CTX_reset(ctx->cctx);
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66 | OPENSSL_cleanse(ctx->tbl, EVP_MAX_BLOCK_LENGTH);
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67 | OPENSSL_cleanse(ctx->k1, EVP_MAX_BLOCK_LENGTH);
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68 | OPENSSL_cleanse(ctx->k2, EVP_MAX_BLOCK_LENGTH);
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69 | OPENSSL_cleanse(ctx->last_block, EVP_MAX_BLOCK_LENGTH);
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70 | ctx->nlast_block = -1;
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71 | }
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72 |
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73 | EVP_CIPHER_CTX *CMAC_CTX_get0_cipher_ctx(CMAC_CTX *ctx)
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74 | {
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75 | return ctx->cctx;
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76 | }
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77 |
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78 | void CMAC_CTX_free(CMAC_CTX *ctx)
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79 | {
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80 | if (!ctx)
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81 | return;
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82 | CMAC_CTX_cleanup(ctx);
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83 | EVP_CIPHER_CTX_free(ctx->cctx);
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84 | OPENSSL_free(ctx);
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85 | }
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86 |
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87 | int CMAC_CTX_copy(CMAC_CTX *out, const CMAC_CTX *in)
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88 | {
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89 | int bl;
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90 | if (in->nlast_block == -1)
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91 | return 0;
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92 | if (!EVP_CIPHER_CTX_copy(out->cctx, in->cctx))
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93 | return 0;
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94 | bl = EVP_CIPHER_CTX_block_size(in->cctx);
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95 | memcpy(out->k1, in->k1, bl);
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96 | memcpy(out->k2, in->k2, bl);
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97 | memcpy(out->tbl, in->tbl, bl);
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98 | memcpy(out->last_block, in->last_block, bl);
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99 | out->nlast_block = in->nlast_block;
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100 | return 1;
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101 | }
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102 |
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103 | int CMAC_Init(CMAC_CTX *ctx, const void *key, size_t keylen,
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104 | const EVP_CIPHER *cipher, ENGINE *impl)
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105 | {
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106 | static const unsigned char zero_iv[EVP_MAX_BLOCK_LENGTH] = { 0 };
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107 | /* All zeros means restart */
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108 | if (!key && !cipher && !impl && keylen == 0) {
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109 | /* Not initialised */
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110 | if (ctx->nlast_block == -1)
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111 | return 0;
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112 | if (!EVP_EncryptInit_ex(ctx->cctx, NULL, NULL, NULL, zero_iv))
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113 | return 0;
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114 | memset(ctx->tbl, 0, EVP_CIPHER_CTX_block_size(ctx->cctx));
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115 | ctx->nlast_block = 0;
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116 | return 1;
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117 | }
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118 | /* Initialise context */
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119 | if (cipher && !EVP_EncryptInit_ex(ctx->cctx, cipher, impl, NULL, NULL))
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120 | return 0;
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121 | /* Non-NULL key means initialisation complete */
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122 | if (key) {
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123 | int bl;
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124 | if (!EVP_CIPHER_CTX_cipher(ctx->cctx))
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125 | return 0;
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126 | if (!EVP_CIPHER_CTX_set_key_length(ctx->cctx, keylen))
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127 | return 0;
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128 | if (!EVP_EncryptInit_ex(ctx->cctx, NULL, NULL, key, zero_iv))
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129 | return 0;
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130 | bl = EVP_CIPHER_CTX_block_size(ctx->cctx);
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131 | if (!EVP_Cipher(ctx->cctx, ctx->tbl, zero_iv, bl))
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132 | return 0;
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133 | make_kn(ctx->k1, ctx->tbl, bl);
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134 | make_kn(ctx->k2, ctx->k1, bl);
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135 | OPENSSL_cleanse(ctx->tbl, bl);
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136 | /* Reset context again ready for first data block */
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137 | if (!EVP_EncryptInit_ex(ctx->cctx, NULL, NULL, NULL, zero_iv))
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138 | return 0;
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139 | /* Zero tbl so resume works */
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140 | memset(ctx->tbl, 0, bl);
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141 | ctx->nlast_block = 0;
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142 | }
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143 | return 1;
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144 | }
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145 |
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146 | int CMAC_Update(CMAC_CTX *ctx, const void *in, size_t dlen)
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147 | {
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148 | const unsigned char *data = in;
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149 | size_t bl;
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150 | if (ctx->nlast_block == -1)
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151 | return 0;
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152 | if (dlen == 0)
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153 | return 1;
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154 | bl = EVP_CIPHER_CTX_block_size(ctx->cctx);
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155 | /* Copy into partial block if we need to */
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156 | if (ctx->nlast_block > 0) {
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157 | size_t nleft;
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158 | nleft = bl - ctx->nlast_block;
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159 | if (dlen < nleft)
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160 | nleft = dlen;
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161 | memcpy(ctx->last_block + ctx->nlast_block, data, nleft);
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162 | dlen -= nleft;
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163 | ctx->nlast_block += nleft;
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164 | /* If no more to process return */
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165 | if (dlen == 0)
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166 | return 1;
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167 | data += nleft;
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168 | /* Else not final block so encrypt it */
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169 | if (!EVP_Cipher(ctx->cctx, ctx->tbl, ctx->last_block, bl))
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170 | return 0;
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171 | }
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172 | /* Encrypt all but one of the complete blocks left */
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173 | while (dlen > bl) {
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174 | if (!EVP_Cipher(ctx->cctx, ctx->tbl, data, bl))
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175 | return 0;
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176 | dlen -= bl;
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177 | data += bl;
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178 | }
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179 | /* Copy any data left to last block buffer */
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180 | memcpy(ctx->last_block, data, dlen);
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181 | ctx->nlast_block = dlen;
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182 | return 1;
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183 |
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184 | }
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185 |
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186 | int CMAC_Final(CMAC_CTX *ctx, unsigned char *out, size_t *poutlen)
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187 | {
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188 | int i, bl, lb;
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189 | if (ctx->nlast_block == -1)
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190 | return 0;
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191 | bl = EVP_CIPHER_CTX_block_size(ctx->cctx);
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192 | *poutlen = (size_t)bl;
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193 | if (!out)
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194 | return 1;
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195 | lb = ctx->nlast_block;
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196 | /* Is last block complete? */
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197 | if (lb == bl) {
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198 | for (i = 0; i < bl; i++)
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199 | out[i] = ctx->last_block[i] ^ ctx->k1[i];
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200 | } else {
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201 | ctx->last_block[lb] = 0x80;
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202 | if (bl - lb > 1)
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203 | memset(ctx->last_block + lb + 1, 0, bl - lb - 1);
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204 | for (i = 0; i < bl; i++)
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205 | out[i] = ctx->last_block[i] ^ ctx->k2[i];
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206 | }
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207 | if (!EVP_Cipher(ctx->cctx, out, out, bl)) {
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208 | OPENSSL_cleanse(out, bl);
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209 | return 0;
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210 | }
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211 | return 1;
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212 | }
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213 |
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214 | int CMAC_resume(CMAC_CTX *ctx)
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215 | {
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216 | if (ctx->nlast_block == -1)
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217 | return 0;
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218 | /*
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219 | * The buffer "tbl" contains the last fully encrypted block which is the
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220 | * last IV (or all zeroes if no last encrypted block). The last block has
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221 | * not been modified since CMAC_final(). So reinitialising using the last
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222 | * decrypted block will allow CMAC to continue after calling
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223 | * CMAC_Final().
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224 | */
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225 | return EVP_EncryptInit_ex(ctx->cctx, NULL, NULL, NULL, ctx->tbl);
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226 | }
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