Mirror of BoringSSL (grpc依赖)
https://boringssl.googlesource.com/boringssl
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434 lines
15 KiB
434 lines
15 KiB
/* ==================================================================== |
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* Copyright (c) 2008 The OpenSSL Project. All rights reserved. |
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* |
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* Redistribution and use in source and binary forms, with or without |
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* modification, are permitted provided that the following conditions |
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* are met: |
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* |
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* 1. Redistributions of source code must retain the above copyright |
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* notice, this list of conditions and the following disclaimer. |
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* |
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* 2. Redistributions in binary form must reproduce the above copyright |
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* notice, this list of conditions and the following disclaimer in |
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* the documentation and/or other materials provided with the |
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* distribution. |
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* |
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* 3. All advertising materials mentioning features or use of this |
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* software must display the following acknowledgment: |
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* "This product includes software developed by the OpenSSL Project |
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* for use in the OpenSSL Toolkit. (http://www.openssl.org/)" |
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* |
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* 4. The names "OpenSSL Toolkit" and "OpenSSL Project" must not be used to |
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* endorse or promote products derived from this software without |
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* prior written permission. For written permission, please contact |
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* openssl-core@openssl.org. |
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* |
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* 5. Products derived from this software may not be called "OpenSSL" |
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* nor may "OpenSSL" appear in their names without prior written |
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* permission of the OpenSSL Project. |
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* |
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* 6. Redistributions of any form whatsoever must retain the following |
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* acknowledgment: |
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* "This product includes software developed by the OpenSSL Project |
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* for use in the OpenSSL Toolkit (http://www.openssl.org/)" |
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* |
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* THIS SOFTWARE IS PROVIDED BY THE OpenSSL PROJECT ``AS IS'' AND ANY |
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* EXPRESSED OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE |
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* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR |
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* PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE OpenSSL PROJECT OR |
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* ITS CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, |
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* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT |
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* NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; |
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* LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) |
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* HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, |
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* STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) |
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* ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED |
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* OF THE POSSIBILITY OF SUCH DAMAGE. |
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* ==================================================================== */ |
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#include <openssl/aead.h> |
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#include <assert.h> |
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#include <openssl/cipher.h> |
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#include <openssl/err.h> |
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#include <openssl/mem.h> |
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#include "../delocate.h" |
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#include "../service_indicator/internal.h" |
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#include "internal.h" |
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struct ccm128_context { |
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block128_f block; |
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ctr128_f ctr; |
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unsigned M, L; |
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}; |
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struct ccm128_state { |
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union { |
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uint64_t u[2]; |
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uint8_t c[16]; |
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} nonce, cmac; |
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}; |
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static int CRYPTO_ccm128_init(struct ccm128_context *ctx, const AES_KEY *key, |
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block128_f block, ctr128_f ctr, unsigned M, |
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unsigned L) { |
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if (M < 4 || M > 16 || (M & 1) != 0 || L < 2 || L > 8) { |
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return 0; |
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} |
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ctx->block = block; |
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ctx->ctr = ctr; |
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ctx->M = M; |
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ctx->L = L; |
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return 1; |
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} |
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static size_t CRYPTO_ccm128_max_input(const struct ccm128_context *ctx) { |
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return ctx->L >= sizeof(size_t) ? (size_t)-1 |
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: (((size_t)1) << (ctx->L * 8)) - 1; |
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} |
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static int ccm128_init_state(const struct ccm128_context *ctx, |
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struct ccm128_state *state, const AES_KEY *key, |
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const uint8_t *nonce, size_t nonce_len, |
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const uint8_t *aad, size_t aad_len, |
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size_t plaintext_len) { |
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const block128_f block = ctx->block; |
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const unsigned M = ctx->M; |
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const unsigned L = ctx->L; |
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// |L| determines the expected |nonce_len| and the limit for |plaintext_len|. |
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if (plaintext_len > CRYPTO_ccm128_max_input(ctx) || |
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nonce_len != 15 - L) { |
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return 0; |
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} |
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// Assemble the first block for computing the MAC. |
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OPENSSL_memset(state, 0, sizeof(*state)); |
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state->nonce.c[0] = (uint8_t)((L - 1) | ((M - 2) / 2) << 3); |
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if (aad_len != 0) { |
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state->nonce.c[0] |= 0x40; // Set AAD Flag |
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} |
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OPENSSL_memcpy(&state->nonce.c[1], nonce, nonce_len); |
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for (unsigned i = 0; i < L; i++) { |
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state->nonce.c[15 - i] = (uint8_t)(plaintext_len >> (8 * i)); |
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} |
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(*block)(state->nonce.c, state->cmac.c, key); |
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size_t blocks = 1; |
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if (aad_len != 0) { |
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unsigned i; |
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// Cast to u64 to avoid the compiler complaining about invalid shifts. |
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uint64_t aad_len_u64 = aad_len; |
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if (aad_len_u64 < 0x10000 - 0x100) { |
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state->cmac.c[0] ^= (uint8_t)(aad_len_u64 >> 8); |
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state->cmac.c[1] ^= (uint8_t)aad_len_u64; |
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i = 2; |
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} else if (aad_len_u64 <= 0xffffffff) { |
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state->cmac.c[0] ^= 0xff; |
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state->cmac.c[1] ^= 0xfe; |
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state->cmac.c[2] ^= (uint8_t)(aad_len_u64 >> 24); |
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state->cmac.c[3] ^= (uint8_t)(aad_len_u64 >> 16); |
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state->cmac.c[4] ^= (uint8_t)(aad_len_u64 >> 8); |
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state->cmac.c[5] ^= (uint8_t)aad_len_u64; |
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i = 6; |
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} else { |
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state->cmac.c[0] ^= 0xff; |
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state->cmac.c[1] ^= 0xff; |
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state->cmac.c[2] ^= (uint8_t)(aad_len_u64 >> 56); |
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state->cmac.c[3] ^= (uint8_t)(aad_len_u64 >> 48); |
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state->cmac.c[4] ^= (uint8_t)(aad_len_u64 >> 40); |
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state->cmac.c[5] ^= (uint8_t)(aad_len_u64 >> 32); |
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state->cmac.c[6] ^= (uint8_t)(aad_len_u64 >> 24); |
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state->cmac.c[7] ^= (uint8_t)(aad_len_u64 >> 16); |
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state->cmac.c[8] ^= (uint8_t)(aad_len_u64 >> 8); |
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state->cmac.c[9] ^= (uint8_t)aad_len_u64; |
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i = 10; |
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} |
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do { |
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for (; i < 16 && aad_len != 0; i++) { |
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state->cmac.c[i] ^= *aad; |
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aad++; |
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aad_len--; |
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} |
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(*block)(state->cmac.c, state->cmac.c, key); |
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blocks++; |
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i = 0; |
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} while (aad_len != 0); |
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} |
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// Per RFC 3610, section 2.6, the total number of block cipher operations done |
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// must not exceed 2^61. There are two block cipher operations remaining per |
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// message block, plus one block at the end to encrypt the MAC. |
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size_t remaining_blocks = 2 * ((plaintext_len + 15) / 16) + 1; |
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if (plaintext_len + 15 < plaintext_len || |
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remaining_blocks + blocks < blocks || |
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(uint64_t) remaining_blocks + blocks > UINT64_C(1) << 61) { |
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return 0; |
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} |
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// Assemble the first block for encrypting and decrypting. The bottom |L| |
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// bytes are replaced with a counter and all bit the encoding of |L| is |
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// cleared in the first byte. |
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state->nonce.c[0] &= 7; |
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return 1; |
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} |
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static int ccm128_encrypt(const struct ccm128_context *ctx, |
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struct ccm128_state *state, const AES_KEY *key, |
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uint8_t *out, const uint8_t *in, size_t len) { |
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// The counter for encryption begins at one. |
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for (unsigned i = 0; i < ctx->L; i++) { |
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state->nonce.c[15 - i] = 0; |
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} |
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state->nonce.c[15] = 1; |
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uint8_t partial_buf[16]; |
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unsigned num = 0; |
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if (ctx->ctr != NULL) { |
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CRYPTO_ctr128_encrypt_ctr32(in, out, len, key, state->nonce.c, partial_buf, |
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&num, ctx->ctr); |
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} else { |
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CRYPTO_ctr128_encrypt(in, out, len, key, state->nonce.c, partial_buf, &num, |
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ctx->block); |
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} |
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return 1; |
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} |
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static int ccm128_compute_mac(const struct ccm128_context *ctx, |
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struct ccm128_state *state, const AES_KEY *key, |
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uint8_t *out_tag, size_t tag_len, |
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const uint8_t *in, size_t len) { |
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block128_f block = ctx->block; |
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if (tag_len != ctx->M) { |
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return 0; |
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} |
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// Incorporate |in| into the MAC. |
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union { |
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uint64_t u[2]; |
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uint8_t c[16]; |
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} tmp; |
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while (len >= 16) { |
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OPENSSL_memcpy(tmp.c, in, 16); |
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state->cmac.u[0] ^= tmp.u[0]; |
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state->cmac.u[1] ^= tmp.u[1]; |
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(*block)(state->cmac.c, state->cmac.c, key); |
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in += 16; |
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len -= 16; |
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} |
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if (len > 0) { |
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for (size_t i = 0; i < len; i++) { |
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state->cmac.c[i] ^= in[i]; |
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} |
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(*block)(state->cmac.c, state->cmac.c, key); |
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} |
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// Encrypt the MAC with counter zero. |
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for (unsigned i = 0; i < ctx->L; i++) { |
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state->nonce.c[15 - i] = 0; |
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} |
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(*block)(state->nonce.c, tmp.c, key); |
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state->cmac.u[0] ^= tmp.u[0]; |
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state->cmac.u[1] ^= tmp.u[1]; |
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OPENSSL_memcpy(out_tag, state->cmac.c, tag_len); |
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return 1; |
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} |
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static int CRYPTO_ccm128_encrypt(const struct ccm128_context *ctx, |
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const AES_KEY *key, uint8_t *out, |
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uint8_t *out_tag, size_t tag_len, |
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const uint8_t *nonce, size_t nonce_len, |
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const uint8_t *in, size_t len, |
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const uint8_t *aad, size_t aad_len) { |
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struct ccm128_state state; |
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return ccm128_init_state(ctx, &state, key, nonce, nonce_len, aad, aad_len, |
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len) && |
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ccm128_compute_mac(ctx, &state, key, out_tag, tag_len, in, len) && |
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ccm128_encrypt(ctx, &state, key, out, in, len); |
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} |
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static int CRYPTO_ccm128_decrypt(const struct ccm128_context *ctx, |
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const AES_KEY *key, uint8_t *out, |
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uint8_t *out_tag, size_t tag_len, |
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const uint8_t *nonce, size_t nonce_len, |
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const uint8_t *in, size_t len, |
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const uint8_t *aad, size_t aad_len) { |
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struct ccm128_state state; |
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return ccm128_init_state(ctx, &state, key, nonce, nonce_len, aad, aad_len, |
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len) && |
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ccm128_encrypt(ctx, &state, key, out, in, len) && |
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ccm128_compute_mac(ctx, &state, key, out_tag, tag_len, out, len); |
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} |
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#define EVP_AEAD_AES_CCM_MAX_TAG_LEN 16 |
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struct aead_aes_ccm_ctx { |
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union { |
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double align; |
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AES_KEY ks; |
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} ks; |
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struct ccm128_context ccm; |
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}; |
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OPENSSL_STATIC_ASSERT(sizeof(((EVP_AEAD_CTX *)NULL)->state) >= |
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sizeof(struct aead_aes_ccm_ctx), |
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"AEAD state is too small"); |
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OPENSSL_STATIC_ASSERT(alignof(union evp_aead_ctx_st_state) >= |
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alignof(struct aead_aes_ccm_ctx), |
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"AEAD state has insufficient alignment"); |
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static int aead_aes_ccm_init(EVP_AEAD_CTX *ctx, const uint8_t *key, |
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size_t key_len, size_t tag_len, unsigned M, |
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unsigned L) { |
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assert(M == EVP_AEAD_max_overhead(ctx->aead)); |
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assert(M == EVP_AEAD_max_tag_len(ctx->aead)); |
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assert(15 - L == EVP_AEAD_nonce_length(ctx->aead)); |
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if (key_len != EVP_AEAD_key_length(ctx->aead)) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_BAD_KEY_LENGTH); |
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return 0; // EVP_AEAD_CTX_init should catch this. |
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} |
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if (tag_len == EVP_AEAD_DEFAULT_TAG_LENGTH) { |
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tag_len = M; |
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} |
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if (tag_len != M) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_TAG_TOO_LARGE); |
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return 0; |
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} |
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struct aead_aes_ccm_ctx *ccm_ctx = (struct aead_aes_ccm_ctx *)&ctx->state; |
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block128_f block; |
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ctr128_f ctr = aes_ctr_set_key(&ccm_ctx->ks.ks, NULL, &block, key, key_len); |
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ctx->tag_len = tag_len; |
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if (!CRYPTO_ccm128_init(&ccm_ctx->ccm, &ccm_ctx->ks.ks, block, ctr, M, L)) { |
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OPENSSL_PUT_ERROR(CIPHER, ERR_R_INTERNAL_ERROR); |
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return 0; |
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} |
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return 1; |
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} |
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static void aead_aes_ccm_cleanup(EVP_AEAD_CTX *ctx) {} |
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static int aead_aes_ccm_seal_scatter( |
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const EVP_AEAD_CTX *ctx, uint8_t *out, uint8_t *out_tag, |
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size_t *out_tag_len, size_t max_out_tag_len, const uint8_t *nonce, |
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size_t nonce_len, const uint8_t *in, size_t in_len, const uint8_t *extra_in, |
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size_t extra_in_len, const uint8_t *ad, size_t ad_len) { |
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const struct aead_aes_ccm_ctx *ccm_ctx = |
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(struct aead_aes_ccm_ctx *)&ctx->state; |
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if (in_len > CRYPTO_ccm128_max_input(&ccm_ctx->ccm)) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_TOO_LARGE); |
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return 0; |
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} |
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if (max_out_tag_len < ctx->tag_len) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_BUFFER_TOO_SMALL); |
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return 0; |
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} |
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if (nonce_len != EVP_AEAD_nonce_length(ctx->aead)) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_INVALID_NONCE_SIZE); |
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return 0; |
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} |
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if (!CRYPTO_ccm128_encrypt(&ccm_ctx->ccm, &ccm_ctx->ks.ks, out, out_tag, |
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ctx->tag_len, nonce, nonce_len, in, in_len, ad, |
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ad_len)) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_TOO_LARGE); |
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return 0; |
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} |
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*out_tag_len = ctx->tag_len; |
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AEAD_CCM_verify_service_indicator(ctx); |
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return 1; |
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} |
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static int aead_aes_ccm_open_gather(const EVP_AEAD_CTX *ctx, uint8_t *out, |
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const uint8_t *nonce, size_t nonce_len, |
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const uint8_t *in, size_t in_len, |
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const uint8_t *in_tag, size_t in_tag_len, |
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const uint8_t *ad, size_t ad_len) { |
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const struct aead_aes_ccm_ctx *ccm_ctx = |
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(struct aead_aes_ccm_ctx *)&ctx->state; |
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if (in_len > CRYPTO_ccm128_max_input(&ccm_ctx->ccm)) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_TOO_LARGE); |
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return 0; |
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} |
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if (nonce_len != EVP_AEAD_nonce_length(ctx->aead)) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_INVALID_NONCE_SIZE); |
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return 0; |
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} |
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if (in_tag_len != ctx->tag_len) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_BAD_DECRYPT); |
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return 0; |
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} |
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uint8_t tag[EVP_AEAD_AES_CCM_MAX_TAG_LEN]; |
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assert(ctx->tag_len <= EVP_AEAD_AES_CCM_MAX_TAG_LEN); |
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if (!CRYPTO_ccm128_decrypt(&ccm_ctx->ccm, &ccm_ctx->ks.ks, out, tag, |
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ctx->tag_len, nonce, nonce_len, in, in_len, ad, |
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ad_len)) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_TOO_LARGE); |
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return 0; |
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} |
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if (CRYPTO_memcmp(tag, in_tag, ctx->tag_len) != 0) { |
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OPENSSL_PUT_ERROR(CIPHER, CIPHER_R_BAD_DECRYPT); |
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return 0; |
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} |
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AEAD_CCM_verify_service_indicator(ctx); |
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return 1; |
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} |
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static int aead_aes_ccm_bluetooth_init(EVP_AEAD_CTX *ctx, const uint8_t *key, |
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size_t key_len, size_t tag_len) { |
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return aead_aes_ccm_init(ctx, key, key_len, tag_len, 4, 2); |
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} |
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DEFINE_METHOD_FUNCTION(EVP_AEAD, EVP_aead_aes_128_ccm_bluetooth) { |
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memset(out, 0, sizeof(EVP_AEAD)); |
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out->key_len = 16; |
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out->nonce_len = 13; |
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out->overhead = 4; |
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out->max_tag_len = 4; |
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out->init = aead_aes_ccm_bluetooth_init; |
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out->cleanup = aead_aes_ccm_cleanup; |
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out->seal_scatter = aead_aes_ccm_seal_scatter; |
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out->open_gather = aead_aes_ccm_open_gather; |
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} |
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static int aead_aes_ccm_bluetooth_8_init(EVP_AEAD_CTX *ctx, const uint8_t *key, |
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size_t key_len, size_t tag_len) { |
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return aead_aes_ccm_init(ctx, key, key_len, tag_len, 8, 2); |
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} |
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DEFINE_METHOD_FUNCTION(EVP_AEAD, EVP_aead_aes_128_ccm_bluetooth_8) { |
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memset(out, 0, sizeof(EVP_AEAD)); |
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out->key_len = 16; |
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out->nonce_len = 13; |
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out->overhead = 8; |
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out->max_tag_len = 8; |
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out->init = aead_aes_ccm_bluetooth_8_init; |
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out->cleanup = aead_aes_ccm_cleanup; |
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out->seal_scatter = aead_aes_ccm_seal_scatter; |
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out->open_gather = aead_aes_ccm_open_gather; |
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}
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