1 | /*
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2 | * Copyright 2016-2022 The OpenSSL Project Authors. All Rights Reserved.
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3 | *
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4 | * Licensed under the Apache License 2.0 (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 | /*
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11 | * Refer to "The TLS Protocol Version 1.0" Section 5
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12 | * (https://tools.ietf.org/html/rfc2246#section-5) and
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13 | * "The Transport Layer Security (TLS) Protocol Version 1.2" Section 5
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14 | * (https://tools.ietf.org/html/rfc5246#section-5).
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15 | *
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16 | * For TLS v1.0 and TLS v1.1 the TLS PRF algorithm is given by:
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17 | *
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18 | * PRF(secret, label, seed) = P_MD5(S1, label + seed) XOR
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19 | * P_SHA-1(S2, label + seed)
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20 | *
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21 | * where P_MD5 and P_SHA-1 are defined by P_<hash>, below, and S1 and S2 are
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22 | * two halves of the secret (with the possibility of one shared byte, in the
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23 | * case where the length of the original secret is odd). S1 is taken from the
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24 | * first half of the secret, S2 from the second half.
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25 | *
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26 | * For TLS v1.2 the TLS PRF algorithm is given by:
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27 | *
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28 | * PRF(secret, label, seed) = P_<hash>(secret, label + seed)
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29 | *
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30 | * where hash is SHA-256 for all cipher suites defined in RFC 5246 as well as
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31 | * those published prior to TLS v1.2 while the TLS v1.2 protocol is in effect,
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32 | * unless defined otherwise by the cipher suite.
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33 | *
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34 | * P_<hash> is an expansion function that uses a single hash function to expand
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35 | * a secret and seed into an arbitrary quantity of output:
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36 | *
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37 | * P_<hash>(secret, seed) = HMAC_<hash>(secret, A(1) + seed) +
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38 | * HMAC_<hash>(secret, A(2) + seed) +
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39 | * HMAC_<hash>(secret, A(3) + seed) + ...
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40 | *
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41 | * where + indicates concatenation. P_<hash> can be iterated as many times as
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42 | * is necessary to produce the required quantity of data.
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43 | *
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44 | * A(i) is defined as:
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45 | * A(0) = seed
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46 | * A(i) = HMAC_<hash>(secret, A(i-1))
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47 | */
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48 | #include <stdio.h>
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49 | #include <stdarg.h>
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50 | #include <string.h>
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51 | #include <openssl/evp.h>
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52 | #include <openssl/kdf.h>
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53 | #include <openssl/core_names.h>
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54 | #include <openssl/params.h>
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55 | #include <openssl/proverr.h>
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56 | #include "internal/cryptlib.h"
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57 | #include "internal/numbers.h"
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58 | #include "crypto/evp.h"
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59 | #include "prov/provider_ctx.h"
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60 | #include "prov/providercommon.h"
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61 | #include "prov/implementations.h"
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62 | #include "prov/provider_util.h"
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63 | #include "e_os.h"
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64 |
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65 | static OSSL_FUNC_kdf_newctx_fn kdf_tls1_prf_new;
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66 | static OSSL_FUNC_kdf_freectx_fn kdf_tls1_prf_free;
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67 | static OSSL_FUNC_kdf_reset_fn kdf_tls1_prf_reset;
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68 | static OSSL_FUNC_kdf_derive_fn kdf_tls1_prf_derive;
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69 | static OSSL_FUNC_kdf_settable_ctx_params_fn kdf_tls1_prf_settable_ctx_params;
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70 | static OSSL_FUNC_kdf_set_ctx_params_fn kdf_tls1_prf_set_ctx_params;
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71 | static OSSL_FUNC_kdf_gettable_ctx_params_fn kdf_tls1_prf_gettable_ctx_params;
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72 | static OSSL_FUNC_kdf_get_ctx_params_fn kdf_tls1_prf_get_ctx_params;
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73 |
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74 | static int tls1_prf_alg(EVP_MAC_CTX *mdctx, EVP_MAC_CTX *sha1ctx,
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75 | const unsigned char *sec, size_t slen,
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76 | const unsigned char *seed, size_t seed_len,
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77 | unsigned char *out, size_t olen);
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78 |
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79 | #define TLS1_PRF_MAXBUF 1024
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80 |
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81 | /* TLS KDF kdf context structure */
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82 | typedef struct {
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83 | void *provctx;
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84 |
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85 | /* MAC context for the main digest */
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86 | EVP_MAC_CTX *P_hash;
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87 | /* MAC context for SHA1 for the MD5/SHA-1 combined PRF */
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88 | EVP_MAC_CTX *P_sha1;
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89 |
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90 | /* Secret value to use for PRF */
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91 | unsigned char *sec;
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92 | size_t seclen;
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93 | /* Buffer of concatenated seed data */
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94 | unsigned char seed[TLS1_PRF_MAXBUF];
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95 | size_t seedlen;
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96 | } TLS1_PRF;
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97 |
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98 | static void *kdf_tls1_prf_new(void *provctx)
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99 | {
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100 | TLS1_PRF *ctx;
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101 |
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102 | if (!ossl_prov_is_running())
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103 | return NULL;
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104 |
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105 | if ((ctx = OPENSSL_zalloc(sizeof(*ctx))) == NULL)
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106 | ERR_raise(ERR_LIB_PROV, ERR_R_MALLOC_FAILURE);
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107 | ctx->provctx = provctx;
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108 | return ctx;
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109 | }
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110 |
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111 | static void kdf_tls1_prf_free(void *vctx)
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112 | {
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113 | TLS1_PRF *ctx = (TLS1_PRF *)vctx;
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114 |
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115 | if (ctx != NULL) {
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116 | kdf_tls1_prf_reset(ctx);
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117 | OPENSSL_free(ctx);
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118 | }
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119 | }
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120 |
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121 | static void kdf_tls1_prf_reset(void *vctx)
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122 | {
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123 | TLS1_PRF *ctx = (TLS1_PRF *)vctx;
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124 | void *provctx = ctx->provctx;
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125 |
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126 | EVP_MAC_CTX_free(ctx->P_hash);
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127 | EVP_MAC_CTX_free(ctx->P_sha1);
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128 | OPENSSL_clear_free(ctx->sec, ctx->seclen);
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129 | OPENSSL_cleanse(ctx->seed, ctx->seedlen);
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130 | memset(ctx, 0, sizeof(*ctx));
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131 | ctx->provctx = provctx;
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132 | }
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133 |
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134 | static int kdf_tls1_prf_derive(void *vctx, unsigned char *key, size_t keylen,
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135 | const OSSL_PARAM params[])
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136 | {
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137 | TLS1_PRF *ctx = (TLS1_PRF *)vctx;
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138 |
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139 | if (!ossl_prov_is_running() || !kdf_tls1_prf_set_ctx_params(ctx, params))
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140 | return 0;
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141 |
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142 | if (ctx->P_hash == NULL) {
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143 | ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_MESSAGE_DIGEST);
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144 | return 0;
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145 | }
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146 | if (ctx->sec == NULL) {
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147 | ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_SECRET);
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148 | return 0;
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149 | }
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150 | if (ctx->seedlen == 0) {
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151 | ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_SEED);
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152 | return 0;
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153 | }
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154 | if (keylen == 0) {
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155 | ERR_raise(ERR_LIB_PROV, PROV_R_INVALID_KEY_LENGTH);
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156 | return 0;
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157 | }
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158 |
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159 | return tls1_prf_alg(ctx->P_hash, ctx->P_sha1,
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160 | ctx->sec, ctx->seclen,
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161 | ctx->seed, ctx->seedlen,
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162 | key, keylen);
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163 | }
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164 |
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165 | static int kdf_tls1_prf_set_ctx_params(void *vctx, const OSSL_PARAM params[])
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166 | {
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167 | const OSSL_PARAM *p;
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168 | TLS1_PRF *ctx = vctx;
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169 | OSSL_LIB_CTX *libctx = PROV_LIBCTX_OF(ctx->provctx);
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170 |
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171 | if (params == NULL)
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172 | return 1;
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173 |
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174 | if ((p = OSSL_PARAM_locate_const(params, OSSL_KDF_PARAM_DIGEST)) != NULL) {
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175 | if (OPENSSL_strcasecmp(p->data, SN_md5_sha1) == 0) {
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176 | if (!ossl_prov_macctx_load_from_params(&ctx->P_hash, params,
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177 | OSSL_MAC_NAME_HMAC,
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178 | NULL, SN_md5, libctx)
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179 | || !ossl_prov_macctx_load_from_params(&ctx->P_sha1, params,
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180 | OSSL_MAC_NAME_HMAC,
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181 | NULL, SN_sha1, libctx))
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182 | return 0;
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183 | } else {
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184 | EVP_MAC_CTX_free(ctx->P_sha1);
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185 | if (!ossl_prov_macctx_load_from_params(&ctx->P_hash, params,
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186 | OSSL_MAC_NAME_HMAC,
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187 | NULL, NULL, libctx))
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188 | return 0;
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189 | }
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190 | }
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191 |
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192 | if ((p = OSSL_PARAM_locate_const(params, OSSL_KDF_PARAM_SECRET)) != NULL) {
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193 | OPENSSL_clear_free(ctx->sec, ctx->seclen);
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194 | ctx->sec = NULL;
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195 | if (!OSSL_PARAM_get_octet_string(p, (void **)&ctx->sec, 0, &ctx->seclen))
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196 | return 0;
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197 | }
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198 | /* The seed fields concatenate, so process them all */
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199 | if ((p = OSSL_PARAM_locate_const(params, OSSL_KDF_PARAM_SEED)) != NULL) {
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200 | for (; p != NULL; p = OSSL_PARAM_locate_const(p + 1,
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201 | OSSL_KDF_PARAM_SEED)) {
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202 | const void *q = ctx->seed + ctx->seedlen;
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203 | size_t sz = 0;
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204 |
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205 | if (p->data_size != 0
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206 | && p->data != NULL
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207 | && !OSSL_PARAM_get_octet_string(p, (void **)&q,
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208 | TLS1_PRF_MAXBUF - ctx->seedlen,
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209 | &sz))
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210 | return 0;
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211 | ctx->seedlen += sz;
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212 | }
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213 | }
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214 | return 1;
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215 | }
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216 |
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217 | static const OSSL_PARAM *kdf_tls1_prf_settable_ctx_params(
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218 | ossl_unused void *ctx, ossl_unused void *provctx)
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219 | {
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220 | static const OSSL_PARAM known_settable_ctx_params[] = {
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221 | OSSL_PARAM_utf8_string(OSSL_KDF_PARAM_PROPERTIES, NULL, 0),
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222 | OSSL_PARAM_utf8_string(OSSL_KDF_PARAM_DIGEST, NULL, 0),
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223 | OSSL_PARAM_octet_string(OSSL_KDF_PARAM_SECRET, NULL, 0),
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224 | OSSL_PARAM_octet_string(OSSL_KDF_PARAM_SEED, NULL, 0),
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225 | OSSL_PARAM_END
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226 | };
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227 | return known_settable_ctx_params;
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228 | }
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229 |
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230 | static int kdf_tls1_prf_get_ctx_params(void *vctx, OSSL_PARAM params[])
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231 | {
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232 | OSSL_PARAM *p;
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233 |
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234 | if ((p = OSSL_PARAM_locate(params, OSSL_KDF_PARAM_SIZE)) != NULL)
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235 | return OSSL_PARAM_set_size_t(p, SIZE_MAX);
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236 | return -2;
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237 | }
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238 |
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239 | static const OSSL_PARAM *kdf_tls1_prf_gettable_ctx_params(
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240 | ossl_unused void *ctx, ossl_unused void *provctx)
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241 | {
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242 | static const OSSL_PARAM known_gettable_ctx_params[] = {
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243 | OSSL_PARAM_size_t(OSSL_KDF_PARAM_SIZE, NULL),
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244 | OSSL_PARAM_END
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245 | };
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246 | return known_gettable_ctx_params;
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247 | }
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248 |
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249 | const OSSL_DISPATCH ossl_kdf_tls1_prf_functions[] = {
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250 | { OSSL_FUNC_KDF_NEWCTX, (void(*)(void))kdf_tls1_prf_new },
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251 | { OSSL_FUNC_KDF_FREECTX, (void(*)(void))kdf_tls1_prf_free },
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252 | { OSSL_FUNC_KDF_RESET, (void(*)(void))kdf_tls1_prf_reset },
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253 | { OSSL_FUNC_KDF_DERIVE, (void(*)(void))kdf_tls1_prf_derive },
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254 | { OSSL_FUNC_KDF_SETTABLE_CTX_PARAMS,
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255 | (void(*)(void))kdf_tls1_prf_settable_ctx_params },
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256 | { OSSL_FUNC_KDF_SET_CTX_PARAMS,
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257 | (void(*)(void))kdf_tls1_prf_set_ctx_params },
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258 | { OSSL_FUNC_KDF_GETTABLE_CTX_PARAMS,
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259 | (void(*)(void))kdf_tls1_prf_gettable_ctx_params },
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260 | { OSSL_FUNC_KDF_GET_CTX_PARAMS,
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261 | (void(*)(void))kdf_tls1_prf_get_ctx_params },
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262 | { 0, NULL }
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263 | };
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264 |
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265 | /*
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266 | * Refer to "The TLS Protocol Version 1.0" Section 5
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267 | * (https://tools.ietf.org/html/rfc2246#section-5) and
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268 | * "The Transport Layer Security (TLS) Protocol Version 1.2" Section 5
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269 | * (https://tools.ietf.org/html/rfc5246#section-5).
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270 | *
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271 | * P_<hash> is an expansion function that uses a single hash function to expand
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272 | * a secret and seed into an arbitrary quantity of output:
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273 | *
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274 | * P_<hash>(secret, seed) = HMAC_<hash>(secret, A(1) + seed) +
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275 | * HMAC_<hash>(secret, A(2) + seed) +
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276 | * HMAC_<hash>(secret, A(3) + seed) + ...
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277 | *
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278 | * where + indicates concatenation. P_<hash> can be iterated as many times as
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279 | * is necessary to produce the required quantity of data.
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280 | *
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281 | * A(i) is defined as:
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282 | * A(0) = seed
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283 | * A(i) = HMAC_<hash>(secret, A(i-1))
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284 | */
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285 | static int tls1_prf_P_hash(EVP_MAC_CTX *ctx_init,
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286 | const unsigned char *sec, size_t sec_len,
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287 | const unsigned char *seed, size_t seed_len,
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288 | unsigned char *out, size_t olen)
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289 | {
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290 | size_t chunk;
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291 | EVP_MAC_CTX *ctx = NULL, *ctx_Ai = NULL;
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292 | unsigned char Ai[EVP_MAX_MD_SIZE];
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293 | size_t Ai_len;
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294 | int ret = 0;
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295 |
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296 | if (!EVP_MAC_init(ctx_init, sec, sec_len, NULL))
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297 | goto err;
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298 | chunk = EVP_MAC_CTX_get_mac_size(ctx_init);
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299 | if (chunk == 0)
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300 | goto err;
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301 | /* A(0) = seed */
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302 | ctx_Ai = EVP_MAC_CTX_dup(ctx_init);
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303 | if (ctx_Ai == NULL)
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304 | goto err;
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305 | if (seed != NULL && !EVP_MAC_update(ctx_Ai, seed, seed_len))
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306 | goto err;
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307 |
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308 | for (;;) {
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309 | /* calc: A(i) = HMAC_<hash>(secret, A(i-1)) */
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310 | if (!EVP_MAC_final(ctx_Ai, Ai, &Ai_len, sizeof(Ai)))
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311 | goto err;
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312 | EVP_MAC_CTX_free(ctx_Ai);
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313 | ctx_Ai = NULL;
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314 |
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315 | /* calc next chunk: HMAC_<hash>(secret, A(i) + seed) */
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316 | ctx = EVP_MAC_CTX_dup(ctx_init);
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317 | if (ctx == NULL)
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318 | goto err;
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319 | if (!EVP_MAC_update(ctx, Ai, Ai_len))
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320 | goto err;
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321 | /* save state for calculating next A(i) value */
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322 | if (olen > chunk) {
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323 | ctx_Ai = EVP_MAC_CTX_dup(ctx);
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324 | if (ctx_Ai == NULL)
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325 | goto err;
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326 | }
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327 | if (seed != NULL && !EVP_MAC_update(ctx, seed, seed_len))
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328 | goto err;
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329 | if (olen <= chunk) {
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330 | /* last chunk - use Ai as temp bounce buffer */
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331 | if (!EVP_MAC_final(ctx, Ai, &Ai_len, sizeof(Ai)))
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332 | goto err;
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333 | memcpy(out, Ai, olen);
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334 | break;
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335 | }
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336 | if (!EVP_MAC_final(ctx, out, NULL, olen))
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337 | goto err;
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338 | EVP_MAC_CTX_free(ctx);
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339 | ctx = NULL;
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340 | out += chunk;
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341 | olen -= chunk;
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342 | }
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343 | ret = 1;
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344 | err:
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345 | EVP_MAC_CTX_free(ctx);
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346 | EVP_MAC_CTX_free(ctx_Ai);
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347 | OPENSSL_cleanse(Ai, sizeof(Ai));
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348 | return ret;
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349 | }
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350 |
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351 | /*
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352 | * Refer to "The TLS Protocol Version 1.0" Section 5
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353 | * (https://tools.ietf.org/html/rfc2246#section-5) and
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354 | * "The Transport Layer Security (TLS) Protocol Version 1.2" Section 5
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355 | * (https://tools.ietf.org/html/rfc5246#section-5).
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356 | *
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357 | * For TLS v1.0 and TLS v1.1:
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358 | *
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359 | * PRF(secret, label, seed) = P_MD5(S1, label + seed) XOR
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360 | * P_SHA-1(S2, label + seed)
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361 | *
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362 | * S1 is taken from the first half of the secret, S2 from the second half.
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363 | *
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364 | * L_S = length in bytes of secret;
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365 | * L_S1 = L_S2 = ceil(L_S / 2);
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366 | *
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367 | * For TLS v1.2:
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368 | *
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369 | * PRF(secret, label, seed) = P_<hash>(secret, label + seed)
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370 | */
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371 | static int tls1_prf_alg(EVP_MAC_CTX *mdctx, EVP_MAC_CTX *sha1ctx,
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372 | const unsigned char *sec, size_t slen,
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373 | const unsigned char *seed, size_t seed_len,
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374 | unsigned char *out, size_t olen)
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375 | {
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376 | if (sha1ctx != NULL) {
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377 | /* TLS v1.0 and TLS v1.1 */
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378 | size_t i;
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379 | unsigned char *tmp;
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380 | /* calc: L_S1 = L_S2 = ceil(L_S / 2) */
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381 | size_t L_S1 = (slen + 1) / 2;
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382 | size_t L_S2 = L_S1;
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383 |
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384 | if (!tls1_prf_P_hash(mdctx, sec, L_S1,
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385 | seed, seed_len, out, olen))
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386 | return 0;
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387 |
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388 | if ((tmp = OPENSSL_malloc(olen)) == NULL) {
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389 | ERR_raise(ERR_LIB_PROV, ERR_R_MALLOC_FAILURE);
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390 | return 0;
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391 | }
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392 |
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393 | if (!tls1_prf_P_hash(sha1ctx, sec + slen - L_S2, L_S2,
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394 | seed, seed_len, tmp, olen)) {
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395 | OPENSSL_clear_free(tmp, olen);
|
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396 | return 0;
|
---|
397 | }
|
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398 | for (i = 0; i < olen; i++)
|
---|
399 | out[i] ^= tmp[i];
|
---|
400 | OPENSSL_clear_free(tmp, olen);
|
---|
401 | return 1;
|
---|
402 | }
|
---|
403 |
|
---|
404 | /* TLS v1.2 */
|
---|
405 | if (!tls1_prf_P_hash(mdctx, sec, slen, seed, seed_len, out, olen))
|
---|
406 | return 0;
|
---|
407 |
|
---|
408 | return 1;
|
---|
409 | }
|
---|