188 lines
5.4 KiB
C
188 lines
5.4 KiB
C
// Copyright (C) 1995-1998 Eric Young (eay@cryptsoft.com) All rights reserved.
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// SPDX-License-Identifier: Apache-2.0
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#include <openssl/md4.h>
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#include <stdlib.h>
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#include <string.h>
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#include "../internal.h"
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#include "../fipsmodule/digest/md32_common.h"
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uint8_t *MD4(const uint8_t *data, size_t len, uint8_t out[MD4_DIGEST_LENGTH]) {
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MD4_CTX ctx;
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MD4_Init(&ctx);
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MD4_Update(&ctx, data, len);
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MD4_Final(out, &ctx);
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return out;
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}
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// Implemented from RFC 1186 The MD4 Message-Digest Algorithm.
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int MD4_Init(MD4_CTX *md4) {
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OPENSSL_memset(md4, 0, sizeof(MD4_CTX));
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md4->h[0] = 0x67452301UL;
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md4->h[1] = 0xefcdab89UL;
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md4->h[2] = 0x98badcfeUL;
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md4->h[3] = 0x10325476UL;
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return 1;
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}
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void md4_block_data_order(uint32_t *state, const uint8_t *data, size_t num);
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void MD4_Transform(MD4_CTX *c, const uint8_t data[MD4_CBLOCK]) {
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md4_block_data_order(c->h, data, 1);
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}
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int MD4_Update(MD4_CTX *c, const void *data, size_t len) {
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crypto_md32_update(&md4_block_data_order, c->h, c->data, MD4_CBLOCK, &c->num,
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&c->Nh, &c->Nl, data, len);
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return 1;
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}
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int MD4_Final(uint8_t out[MD4_DIGEST_LENGTH], MD4_CTX *c) {
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crypto_md32_final(&md4_block_data_order, c->h, c->data, MD4_CBLOCK, &c->num,
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c->Nh, c->Nl, /*is_big_endian=*/0);
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CRYPTO_store_u32_le(out, c->h[0]);
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CRYPTO_store_u32_le(out + 4, c->h[1]);
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CRYPTO_store_u32_le(out + 8, c->h[2]);
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CRYPTO_store_u32_le(out + 12, c->h[3]);
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return 1;
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}
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// As pointed out by Wei Dai <weidai@eskimo.com>, the above can be
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// simplified to the code below. Wei attributes these optimizations
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// to Peter Gutmann's SHS code, and he attributes it to Rich Schroeppel.
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#define F(b, c, d) ((((c) ^ (d)) & (b)) ^ (d))
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#define G(b, c, d) (((b) & (c)) | ((b) & (d)) | ((c) & (d)))
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#define H(b, c, d) ((b) ^ (c) ^ (d))
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#define R0(a, b, c, d, k, s, t) \
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do { \
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(a) += ((k) + (t) + F((b), (c), (d))); \
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(a) = CRYPTO_rotl_u32(a, s); \
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} while (0)
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#define R1(a, b, c, d, k, s, t) \
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do { \
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(a) += ((k) + (t) + G((b), (c), (d))); \
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(a) = CRYPTO_rotl_u32(a, s); \
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} while (0)
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#define R2(a, b, c, d, k, s, t) \
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do { \
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(a) += ((k) + (t) + H((b), (c), (d))); \
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(a) = CRYPTO_rotl_u32(a, s); \
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} while (0)
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void md4_block_data_order(uint32_t *state, const uint8_t *data, size_t num) {
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uint32_t A, B, C, D;
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uint32_t X0, X1, X2, X3, X4, X5, X6, X7, X8, X9, X10, X11, X12, X13, X14, X15;
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A = state[0];
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B = state[1];
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C = state[2];
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D = state[3];
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for (; num--;) {
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X0 = CRYPTO_load_u32_le(data);
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data += 4;
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X1 = CRYPTO_load_u32_le(data);
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data += 4;
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// Round 0
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R0(A, B, C, D, X0, 3, 0);
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X2 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(D, A, B, C, X1, 7, 0);
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X3 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(C, D, A, B, X2, 11, 0);
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X4 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(B, C, D, A, X3, 19, 0);
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X5 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(A, B, C, D, X4, 3, 0);
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X6 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(D, A, B, C, X5, 7, 0);
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X7 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(C, D, A, B, X6, 11, 0);
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X8 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(B, C, D, A, X7, 19, 0);
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X9 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(A, B, C, D, X8, 3, 0);
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X10 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(D, A, B, C, X9, 7, 0);
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X11 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(C, D, A, B, X10, 11, 0);
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X12 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(B, C, D, A, X11, 19, 0);
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X13 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(A, B, C, D, X12, 3, 0);
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X14 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(D, A, B, C, X13, 7, 0);
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X15 = CRYPTO_load_u32_le(data);
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data += 4;
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R0(C, D, A, B, X14, 11, 0);
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R0(B, C, D, A, X15, 19, 0);
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// Round 1
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R1(A, B, C, D, X0, 3, 0x5A827999L);
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R1(D, A, B, C, X4, 5, 0x5A827999L);
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R1(C, D, A, B, X8, 9, 0x5A827999L);
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R1(B, C, D, A, X12, 13, 0x5A827999L);
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R1(A, B, C, D, X1, 3, 0x5A827999L);
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R1(D, A, B, C, X5, 5, 0x5A827999L);
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R1(C, D, A, B, X9, 9, 0x5A827999L);
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R1(B, C, D, A, X13, 13, 0x5A827999L);
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R1(A, B, C, D, X2, 3, 0x5A827999L);
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R1(D, A, B, C, X6, 5, 0x5A827999L);
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R1(C, D, A, B, X10, 9, 0x5A827999L);
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R1(B, C, D, A, X14, 13, 0x5A827999L);
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R1(A, B, C, D, X3, 3, 0x5A827999L);
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R1(D, A, B, C, X7, 5, 0x5A827999L);
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R1(C, D, A, B, X11, 9, 0x5A827999L);
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R1(B, C, D, A, X15, 13, 0x5A827999L);
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// Round 2
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R2(A, B, C, D, X0, 3, 0x6ED9EBA1L);
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R2(D, A, B, C, X8, 9, 0x6ED9EBA1L);
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R2(C, D, A, B, X4, 11, 0x6ED9EBA1L);
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R2(B, C, D, A, X12, 15, 0x6ED9EBA1L);
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R2(A, B, C, D, X2, 3, 0x6ED9EBA1L);
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R2(D, A, B, C, X10, 9, 0x6ED9EBA1L);
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R2(C, D, A, B, X6, 11, 0x6ED9EBA1L);
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R2(B, C, D, A, X14, 15, 0x6ED9EBA1L);
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R2(A, B, C, D, X1, 3, 0x6ED9EBA1L);
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R2(D, A, B, C, X9, 9, 0x6ED9EBA1L);
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R2(C, D, A, B, X5, 11, 0x6ED9EBA1L);
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R2(B, C, D, A, X13, 15, 0x6ED9EBA1L);
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R2(A, B, C, D, X3, 3, 0x6ED9EBA1L);
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R2(D, A, B, C, X11, 9, 0x6ED9EBA1L);
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R2(C, D, A, B, X7, 11, 0x6ED9EBA1L);
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R2(B, C, D, A, X15, 15, 0x6ED9EBA1L);
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A = state[0] += A;
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B = state[1] += B;
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C = state[2] += C;
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D = state[3] += D;
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}
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}
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#undef F
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#undef G
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#undef H
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#undef R0
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#undef R1
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#undef R2
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