/src/openssl30/crypto/cmac/cmac.c
| Line | Count | Source (jump to first uncovered line) | 
| 1 |  | /* | 
| 2 |  |  * Copyright 2010-2022 The OpenSSL Project Authors. All Rights Reserved. | 
| 3 |  |  * | 
| 4 |  |  * Licensed under the Apache License 2.0 (the "License").  You may not use | 
| 5 |  |  * this file except in compliance with the License.  You can obtain a copy | 
| 6 |  |  * in the file LICENSE in the source distribution or at | 
| 7 |  |  * https://www.openssl.org/source/license.html | 
| 8 |  |  */ | 
| 9 |  |  | 
| 10 |  | /* | 
| 11 |  |  * CMAC low level APIs are deprecated for public use, but still ok for internal | 
| 12 |  |  * use. | 
| 13 |  |  */ | 
| 14 |  | #include "internal/deprecated.h" | 
| 15 |  |  | 
| 16 |  | #include <stdio.h> | 
| 17 |  | #include <stdlib.h> | 
| 18 |  | #include <string.h> | 
| 19 |  | #include "internal/cryptlib.h" | 
| 20 |  | #include <openssl/cmac.h> | 
| 21 |  | #include <openssl/err.h> | 
| 22 |  |  | 
| 23 |  | struct CMAC_CTX_st { | 
| 24 |  |     /* Cipher context to use */ | 
| 25 |  |     EVP_CIPHER_CTX *cctx; | 
| 26 |  |     /* Keys k1 and k2 */ | 
| 27 |  |     unsigned char k1[EVP_MAX_BLOCK_LENGTH]; | 
| 28 |  |     unsigned char k2[EVP_MAX_BLOCK_LENGTH]; | 
| 29 |  |     /* Temporary block */ | 
| 30 |  |     unsigned char tbl[EVP_MAX_BLOCK_LENGTH]; | 
| 31 |  |     /* Last (possibly partial) block */ | 
| 32 |  |     unsigned char last_block[EVP_MAX_BLOCK_LENGTH]; | 
| 33 |  |     /* Number of bytes in last block: -1 means context not initialised */ | 
| 34 |  |     int nlast_block; | 
| 35 |  | }; | 
| 36 |  |  | 
| 37 |  | /* Make temporary keys K1 and K2 */ | 
| 38 |  |  | 
| 39 |  | static void make_kn(unsigned char *k1, const unsigned char *l, int bl) | 
| 40 | 0 | { | 
| 41 | 0 |     int i; | 
| 42 | 0 |     unsigned char c = l[0], carry = c >> 7, cnext; | 
| 43 |  |  | 
| 44 |  |     /* Shift block to left, including carry */ | 
| 45 | 0 |     for (i = 0; i < bl - 1; i++, c = cnext) | 
| 46 | 0 |         k1[i] = (c << 1) | ((cnext = l[i + 1]) >> 7); | 
| 47 |  |  | 
| 48 |  |     /* If MSB set fixup with R */ | 
| 49 | 0 |     k1[i] = (c << 1) ^ ((0 - carry) & (bl == 16 ? 0x87 : 0x1b)); | 
| 50 | 0 | } | 
| 51 |  |  | 
| 52 |  | CMAC_CTX *CMAC_CTX_new(void) | 
| 53 | 0 | { | 
| 54 | 0 |     CMAC_CTX *ctx; | 
| 55 |  | 
 | 
| 56 | 0 |     if ((ctx = OPENSSL_malloc(sizeof(*ctx))) == NULL) { | 
| 57 | 0 |         ERR_raise(ERR_LIB_CRYPTO, ERR_R_MALLOC_FAILURE); | 
| 58 | 0 |         return NULL; | 
| 59 | 0 |     } | 
| 60 | 0 |     ctx->cctx = EVP_CIPHER_CTX_new(); | 
| 61 | 0 |     if (ctx->cctx == NULL) { | 
| 62 | 0 |         OPENSSL_free(ctx); | 
| 63 | 0 |         return NULL; | 
| 64 | 0 |     } | 
| 65 | 0 |     ctx->nlast_block = -1; | 
| 66 | 0 |     return ctx; | 
| 67 | 0 | } | 
| 68 |  |  | 
| 69 |  | void CMAC_CTX_cleanup(CMAC_CTX *ctx) | 
| 70 | 0 | { | 
| 71 | 0 |     EVP_CIPHER_CTX_reset(ctx->cctx); | 
| 72 | 0 |     OPENSSL_cleanse(ctx->tbl, EVP_MAX_BLOCK_LENGTH); | 
| 73 | 0 |     OPENSSL_cleanse(ctx->k1, EVP_MAX_BLOCK_LENGTH); | 
| 74 | 0 |     OPENSSL_cleanse(ctx->k2, EVP_MAX_BLOCK_LENGTH); | 
| 75 | 0 |     OPENSSL_cleanse(ctx->last_block, EVP_MAX_BLOCK_LENGTH); | 
| 76 | 0 |     ctx->nlast_block = -1; | 
| 77 | 0 | } | 
| 78 |  |  | 
| 79 |  | EVP_CIPHER_CTX *CMAC_CTX_get0_cipher_ctx(CMAC_CTX *ctx) | 
| 80 | 0 | { | 
| 81 | 0 |     return ctx->cctx; | 
| 82 | 0 | } | 
| 83 |  |  | 
| 84 |  | void CMAC_CTX_free(CMAC_CTX *ctx) | 
| 85 | 0 | { | 
| 86 | 0 |     if (!ctx) | 
| 87 | 0 |         return; | 
| 88 | 0 |     CMAC_CTX_cleanup(ctx); | 
| 89 | 0 |     EVP_CIPHER_CTX_free(ctx->cctx); | 
| 90 | 0 |     OPENSSL_free(ctx); | 
| 91 | 0 | } | 
| 92 |  |  | 
| 93 |  | int CMAC_CTX_copy(CMAC_CTX *out, const CMAC_CTX *in) | 
| 94 | 0 | { | 
| 95 | 0 |     int bl; | 
| 96 |  | 
 | 
| 97 | 0 |     if (in->nlast_block == -1) | 
| 98 | 0 |         return 0; | 
| 99 | 0 |     if ((bl = EVP_CIPHER_CTX_get_block_size(in->cctx)) < 0) | 
| 100 | 0 |         return 0; | 
| 101 | 0 |     if (!EVP_CIPHER_CTX_copy(out->cctx, in->cctx)) | 
| 102 | 0 |         return 0; | 
| 103 | 0 |     memcpy(out->k1, in->k1, bl); | 
| 104 | 0 |     memcpy(out->k2, in->k2, bl); | 
| 105 | 0 |     memcpy(out->tbl, in->tbl, bl); | 
| 106 | 0 |     memcpy(out->last_block, in->last_block, bl); | 
| 107 | 0 |     out->nlast_block = in->nlast_block; | 
| 108 | 0 |     return 1; | 
| 109 | 0 | } | 
| 110 |  |  | 
| 111 |  | int CMAC_Init(CMAC_CTX *ctx, const void *key, size_t keylen, | 
| 112 |  |               const EVP_CIPHER *cipher, ENGINE *impl) | 
| 113 | 0 | { | 
| 114 | 0 |     static const unsigned char zero_iv[EVP_MAX_BLOCK_LENGTH] = { 0 }; | 
| 115 |  |  | 
| 116 |  |     /* All zeros means restart */ | 
| 117 | 0 |     if (!key && !cipher && !impl && keylen == 0) { | 
| 118 |  |         /* Not initialised */ | 
| 119 | 0 |         if (ctx->nlast_block == -1) | 
| 120 | 0 |             return 0; | 
| 121 | 0 |         if (!EVP_EncryptInit_ex(ctx->cctx, NULL, NULL, NULL, zero_iv)) | 
| 122 | 0 |             return 0; | 
| 123 | 0 |         memset(ctx->tbl, 0, EVP_CIPHER_CTX_get_block_size(ctx->cctx)); | 
| 124 | 0 |         ctx->nlast_block = 0; | 
| 125 | 0 |         return 1; | 
| 126 | 0 |     } | 
| 127 |  |     /* Initialise context */ | 
| 128 | 0 |     if (cipher != NULL) { | 
| 129 |  |         /* Ensure we can't use this ctx until we also have a key */ | 
| 130 | 0 |         ctx->nlast_block = -1; | 
| 131 | 0 |         if (!EVP_EncryptInit_ex(ctx->cctx, cipher, impl, NULL, NULL)) | 
| 132 | 0 |             return 0; | 
| 133 | 0 |     } | 
| 134 |  |     /* Non-NULL key means initialisation complete */ | 
| 135 | 0 |     if (key != NULL) { | 
| 136 | 0 |         int bl; | 
| 137 |  |  | 
| 138 |  |         /* If anything fails then ensure we can't use this ctx */ | 
| 139 | 0 |         ctx->nlast_block = -1; | 
| 140 | 0 |         if (EVP_CIPHER_CTX_get0_cipher(ctx->cctx) == NULL) | 
| 141 | 0 |             return 0; | 
| 142 | 0 |         if (EVP_CIPHER_CTX_set_key_length(ctx->cctx, keylen) <= 0) | 
| 143 | 0 |             return 0; | 
| 144 | 0 |         if (!EVP_EncryptInit_ex(ctx->cctx, NULL, NULL, key, zero_iv)) | 
| 145 | 0 |             return 0; | 
| 146 | 0 |         if ((bl = EVP_CIPHER_CTX_get_block_size(ctx->cctx)) < 0) | 
| 147 | 0 |             return 0; | 
| 148 | 0 |         if (EVP_Cipher(ctx->cctx, ctx->tbl, zero_iv, bl) <= 0) | 
| 149 | 0 |             return 0; | 
| 150 | 0 |         make_kn(ctx->k1, ctx->tbl, bl); | 
| 151 | 0 |         make_kn(ctx->k2, ctx->k1, bl); | 
| 152 | 0 |         OPENSSL_cleanse(ctx->tbl, bl); | 
| 153 |  |         /* Reset context again ready for first data block */ | 
| 154 | 0 |         if (!EVP_EncryptInit_ex(ctx->cctx, NULL, NULL, NULL, zero_iv)) | 
| 155 | 0 |             return 0; | 
| 156 |  |         /* Zero tbl so resume works */ | 
| 157 | 0 |         memset(ctx->tbl, 0, bl); | 
| 158 | 0 |         ctx->nlast_block = 0; | 
| 159 | 0 |     } | 
| 160 | 0 |     return 1; | 
| 161 | 0 | } | 
| 162 |  |  | 
| 163 |  | int CMAC_Update(CMAC_CTX *ctx, const void *in, size_t dlen) | 
| 164 | 0 | { | 
| 165 | 0 |     const unsigned char *data = in; | 
| 166 | 0 |     int bl; | 
| 167 |  | 
 | 
| 168 | 0 |     if (ctx->nlast_block == -1) | 
| 169 | 0 |         return 0; | 
| 170 | 0 |     if (dlen == 0) | 
| 171 | 0 |         return 1; | 
| 172 | 0 |     if ((bl = EVP_CIPHER_CTX_get_block_size(ctx->cctx)) < 0) | 
| 173 | 0 |         return 0; | 
| 174 |  |     /* Copy into partial block if we need to */ | 
| 175 | 0 |     if (ctx->nlast_block > 0) { | 
| 176 | 0 |         size_t nleft; | 
| 177 |  | 
 | 
| 178 | 0 |         nleft = bl - ctx->nlast_block; | 
| 179 | 0 |         if (dlen < nleft) | 
| 180 | 0 |             nleft = dlen; | 
| 181 | 0 |         memcpy(ctx->last_block + ctx->nlast_block, data, nleft); | 
| 182 | 0 |         dlen -= nleft; | 
| 183 | 0 |         ctx->nlast_block += nleft; | 
| 184 |  |         /* If no more to process return */ | 
| 185 | 0 |         if (dlen == 0) | 
| 186 | 0 |             return 1; | 
| 187 | 0 |         data += nleft; | 
| 188 |  |         /* Else not final block so encrypt it */ | 
| 189 | 0 |         if (EVP_Cipher(ctx->cctx, ctx->tbl, ctx->last_block, bl) <= 0) | 
| 190 | 0 |             return 0; | 
| 191 | 0 |     } | 
| 192 |  |     /* Encrypt all but one of the complete blocks left */ | 
| 193 | 0 |     while (dlen > (size_t)bl) { | 
| 194 | 0 |         if (EVP_Cipher(ctx->cctx, ctx->tbl, data, bl) <= 0) | 
| 195 | 0 |             return 0; | 
| 196 | 0 |         dlen -= bl; | 
| 197 | 0 |         data += bl; | 
| 198 | 0 |     } | 
| 199 |  |     /* Copy any data left to last block buffer */ | 
| 200 | 0 |     memcpy(ctx->last_block, data, dlen); | 
| 201 | 0 |     ctx->nlast_block = dlen; | 
| 202 | 0 |     return 1; | 
| 203 |  | 
 | 
| 204 | 0 | } | 
| 205 |  |  | 
| 206 |  | int CMAC_Final(CMAC_CTX *ctx, unsigned char *out, size_t *poutlen) | 
| 207 | 0 | { | 
| 208 | 0 |     int i, bl, lb; | 
| 209 |  | 
 | 
| 210 | 0 |     if (ctx->nlast_block == -1) | 
| 211 | 0 |         return 0; | 
| 212 | 0 |     if ((bl = EVP_CIPHER_CTX_get_block_size(ctx->cctx)) < 0) | 
| 213 | 0 |         return 0; | 
| 214 | 0 |     if (poutlen != NULL) | 
| 215 | 0 |         *poutlen = (size_t)bl; | 
| 216 | 0 |     if (!out) | 
| 217 | 0 |         return 1; | 
| 218 | 0 |     lb = ctx->nlast_block; | 
| 219 |  |     /* Is last block complete? */ | 
| 220 | 0 |     if (lb == bl) { | 
| 221 | 0 |         for (i = 0; i < bl; i++) | 
| 222 | 0 |             out[i] = ctx->last_block[i] ^ ctx->k1[i]; | 
| 223 | 0 |     } else { | 
| 224 | 0 |         ctx->last_block[lb] = 0x80; | 
| 225 | 0 |         if (bl - lb > 1) | 
| 226 | 0 |             memset(ctx->last_block + lb + 1, 0, bl - lb - 1); | 
| 227 | 0 |         for (i = 0; i < bl; i++) | 
| 228 | 0 |             out[i] = ctx->last_block[i] ^ ctx->k2[i]; | 
| 229 | 0 |     } | 
| 230 | 0 |     if (EVP_Cipher(ctx->cctx, out, out, bl) <= 0) { | 
| 231 | 0 |         OPENSSL_cleanse(out, bl); | 
| 232 | 0 |         return 0; | 
| 233 | 0 |     } | 
| 234 | 0 |     return 1; | 
| 235 | 0 | } | 
| 236 |  |  | 
| 237 |  | int CMAC_resume(CMAC_CTX *ctx) | 
| 238 | 0 | { | 
| 239 | 0 |     if (ctx->nlast_block == -1) | 
| 240 | 0 |         return 0; | 
| 241 |  |     /* | 
| 242 |  |      * The buffer "tbl" contains the last fully encrypted block which is the | 
| 243 |  |      * last IV (or all zeroes if no last encrypted block). The last block has | 
| 244 |  |      * not been modified since CMAC_final(). So reinitialising using the last | 
| 245 |  |      * decrypted block will allow CMAC to continue after calling | 
| 246 |  |      * CMAC_Final(). | 
| 247 |  |      */ | 
| 248 | 0 |     return EVP_EncryptInit_ex(ctx->cctx, NULL, NULL, NULL, ctx->tbl); | 
| 249 | 0 | } |