1 | /*
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2 | * Copyright 2011-2020 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 | #include <string.h>
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11 | #include <openssl/crypto.h>
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12 | #include "crypto/modes.h"
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13 |
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14 | #ifndef STRICT_ALIGNMENT
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15 | # ifdef __GNUC__
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16 | typedef u64 u64_a1 __attribute((__aligned__(1)));
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17 | # else
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18 | typedef u64 u64_a1;
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19 | # endif
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20 | #endif
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21 |
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22 | /*
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23 | * First you setup M and L parameters and pass the key schedule. This is
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24 | * called once per session setup...
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25 | */
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26 | void CRYPTO_ccm128_init(CCM128_CONTEXT *ctx,
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27 | unsigned int M, unsigned int L, void *key,
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28 | block128_f block)
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29 | {
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30 | memset(ctx->nonce.c, 0, sizeof(ctx->nonce.c));
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31 | ctx->nonce.c[0] = ((u8)(L - 1) & 7) | (u8)(((M - 2) / 2) & 7) << 3;
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32 | ctx->blocks = 0;
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33 | ctx->block = block;
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34 | ctx->key = key;
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35 | }
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36 |
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37 | /* !!! Following interfaces are to be called *once* per packet !!! */
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38 |
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39 | /* Then you setup per-message nonce and pass the length of the message */
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40 | int CRYPTO_ccm128_setiv(CCM128_CONTEXT *ctx,
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41 | const unsigned char *nonce, size_t nlen, size_t mlen)
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42 | {
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43 | unsigned int L = ctx->nonce.c[0] & 7; /* the L parameter */
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44 |
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45 | if (nlen < (14 - L))
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46 | return -1; /* nonce is too short */
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47 |
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48 | if (sizeof(mlen) == 8 && L >= 3) {
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49 | ctx->nonce.c[8] = (u8)(mlen >> (56 % (sizeof(mlen) * 8)));
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50 | ctx->nonce.c[9] = (u8)(mlen >> (48 % (sizeof(mlen) * 8)));
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51 | ctx->nonce.c[10] = (u8)(mlen >> (40 % (sizeof(mlen) * 8)));
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52 | ctx->nonce.c[11] = (u8)(mlen >> (32 % (sizeof(mlen) * 8)));
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53 | } else
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54 | ctx->nonce.u[1] = 0;
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55 |
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56 | ctx->nonce.c[12] = (u8)(mlen >> 24);
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57 | ctx->nonce.c[13] = (u8)(mlen >> 16);
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58 | ctx->nonce.c[14] = (u8)(mlen >> 8);
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59 | ctx->nonce.c[15] = (u8)mlen;
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60 |
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61 | ctx->nonce.c[0] &= ~0x40; /* clear Adata flag */
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62 | memcpy(&ctx->nonce.c[1], nonce, 14 - L);
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63 |
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64 | return 0;
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65 | }
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66 |
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67 | /* Then you pass additional authentication data, this is optional */
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68 | void CRYPTO_ccm128_aad(CCM128_CONTEXT *ctx,
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69 | const unsigned char *aad, size_t alen)
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70 | {
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71 | unsigned int i;
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72 | block128_f block = ctx->block;
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73 |
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74 | if (alen == 0)
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75 | return;
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76 |
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77 | ctx->nonce.c[0] |= 0x40; /* set Adata flag */
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78 | (*block) (ctx->nonce.c, ctx->cmac.c, ctx->key), ctx->blocks++;
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79 |
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80 | if (alen < (0x10000 - 0x100)) {
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81 | ctx->cmac.c[0] ^= (u8)(alen >> 8);
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82 | ctx->cmac.c[1] ^= (u8)alen;
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83 | i = 2;
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84 | } else if (sizeof(alen) == 8
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85 | && alen >= (size_t)1 << (32 % (sizeof(alen) * 8))) {
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86 | ctx->cmac.c[0] ^= 0xFF;
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87 | ctx->cmac.c[1] ^= 0xFF;
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88 | ctx->cmac.c[2] ^= (u8)(alen >> (56 % (sizeof(alen) * 8)));
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89 | ctx->cmac.c[3] ^= (u8)(alen >> (48 % (sizeof(alen) * 8)));
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90 | ctx->cmac.c[4] ^= (u8)(alen >> (40 % (sizeof(alen) * 8)));
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91 | ctx->cmac.c[5] ^= (u8)(alen >> (32 % (sizeof(alen) * 8)));
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92 | ctx->cmac.c[6] ^= (u8)(alen >> 24);
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93 | ctx->cmac.c[7] ^= (u8)(alen >> 16);
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94 | ctx->cmac.c[8] ^= (u8)(alen >> 8);
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95 | ctx->cmac.c[9] ^= (u8)alen;
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96 | i = 10;
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97 | } else {
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98 | ctx->cmac.c[0] ^= 0xFF;
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99 | ctx->cmac.c[1] ^= 0xFE;
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100 | ctx->cmac.c[2] ^= (u8)(alen >> 24);
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101 | ctx->cmac.c[3] ^= (u8)(alen >> 16);
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102 | ctx->cmac.c[4] ^= (u8)(alen >> 8);
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103 | ctx->cmac.c[5] ^= (u8)alen;
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104 | i = 6;
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105 | }
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106 |
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107 | do {
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108 | for (; i < 16 && alen; ++i, ++aad, --alen)
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109 | ctx->cmac.c[i] ^= *aad;
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110 | (*block) (ctx->cmac.c, ctx->cmac.c, ctx->key), ctx->blocks++;
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111 | i = 0;
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112 | } while (alen);
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113 | }
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114 |
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115 | /* Finally you encrypt or decrypt the message */
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116 |
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117 | /*
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118 | * counter part of nonce may not be larger than L*8 bits, L is not larger
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119 | * than 8, therefore 64-bit counter...
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120 | */
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121 | static void ctr64_inc(unsigned char *counter)
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122 | {
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123 | unsigned int n = 8;
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124 | u8 c;
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125 |
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126 | counter += 8;
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127 | do {
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128 | --n;
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129 | c = counter[n];
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130 | ++c;
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131 | counter[n] = c;
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132 | if (c)
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133 | return;
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134 | } while (n);
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135 | }
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136 |
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137 | int CRYPTO_ccm128_encrypt(CCM128_CONTEXT *ctx,
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138 | const unsigned char *inp, unsigned char *out,
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139 | size_t len)
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140 | {
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141 | size_t n;
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142 | unsigned int i, L;
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143 | unsigned char flags0 = ctx->nonce.c[0];
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144 | block128_f block = ctx->block;
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145 | void *key = ctx->key;
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146 | union {
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147 | u64 u[2];
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148 | u8 c[16];
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149 | } scratch;
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150 |
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151 | if (!(flags0 & 0x40))
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152 | (*block) (ctx->nonce.c, ctx->cmac.c, key), ctx->blocks++;
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153 |
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154 | ctx->nonce.c[0] = L = flags0 & 7;
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155 | for (n = 0, i = 15 - L; i < 15; ++i) {
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156 | n |= ctx->nonce.c[i];
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157 | ctx->nonce.c[i] = 0;
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158 | n <<= 8;
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159 | }
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160 | n |= ctx->nonce.c[15]; /* reconstructed length */
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161 | ctx->nonce.c[15] = 1;
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162 |
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163 | if (n != len)
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164 | return -1; /* length mismatch */
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165 |
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166 | ctx->blocks += ((len + 15) >> 3) | 1;
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167 | if (ctx->blocks > (U64(1) << 61))
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168 | return -2; /* too much data */
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169 |
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170 | while (len >= 16) {
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171 | #if defined(STRICT_ALIGNMENT)
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172 | union {
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173 | u64 u[2];
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174 | u8 c[16];
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175 | } temp;
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176 |
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177 | memcpy(temp.c, inp, 16);
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178 | ctx->cmac.u[0] ^= temp.u[0];
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179 | ctx->cmac.u[1] ^= temp.u[1];
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180 | #else
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181 | ctx->cmac.u[0] ^= ((u64_a1 *)inp)[0];
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182 | ctx->cmac.u[1] ^= ((u64_a1 *)inp)[1];
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183 | #endif
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184 | (*block) (ctx->cmac.c, ctx->cmac.c, key);
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185 | (*block) (ctx->nonce.c, scratch.c, key);
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186 | ctr64_inc(ctx->nonce.c);
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187 | #if defined(STRICT_ALIGNMENT)
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188 | temp.u[0] ^= scratch.u[0];
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189 | temp.u[1] ^= scratch.u[1];
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190 | memcpy(out, temp.c, 16);
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191 | #else
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192 | ((u64_a1 *)out)[0] = scratch.u[0] ^ ((u64_a1 *)inp)[0];
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193 | ((u64_a1 *)out)[1] = scratch.u[1] ^ ((u64_a1 *)inp)[1];
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194 | #endif
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195 | inp += 16;
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196 | out += 16;
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197 | len -= 16;
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198 | }
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199 |
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200 | if (len) {
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201 | for (i = 0; i < len; ++i)
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202 | ctx->cmac.c[i] ^= inp[i];
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203 | (*block) (ctx->cmac.c, ctx->cmac.c, key);
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204 | (*block) (ctx->nonce.c, scratch.c, key);
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205 | for (i = 0; i < len; ++i)
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206 | out[i] = scratch.c[i] ^ inp[i];
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207 | }
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208 |
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209 | for (i = 15 - L; i < 16; ++i)
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210 | ctx->nonce.c[i] = 0;
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211 |
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212 | (*block) (ctx->nonce.c, scratch.c, key);
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213 | ctx->cmac.u[0] ^= scratch.u[0];
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214 | ctx->cmac.u[1] ^= scratch.u[1];
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215 |
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216 | ctx->nonce.c[0] = flags0;
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217 |
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218 | return 0;
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219 | }
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220 |
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221 | int CRYPTO_ccm128_decrypt(CCM128_CONTEXT *ctx,
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222 | const unsigned char *inp, unsigned char *out,
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223 | size_t len)
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224 | {
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225 | size_t n;
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226 | unsigned int i, L;
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227 | unsigned char flags0 = ctx->nonce.c[0];
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228 | block128_f block = ctx->block;
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229 | void *key = ctx->key;
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230 | union {
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231 | u64 u[2];
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232 | u8 c[16];
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233 | } scratch;
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234 |
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235 | if (!(flags0 & 0x40))
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236 | (*block) (ctx->nonce.c, ctx->cmac.c, key);
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237 |
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238 | ctx->nonce.c[0] = L = flags0 & 7;
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239 | for (n = 0, i = 15 - L; i < 15; ++i) {
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240 | n |= ctx->nonce.c[i];
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241 | ctx->nonce.c[i] = 0;
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242 | n <<= 8;
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243 | }
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244 | n |= ctx->nonce.c[15]; /* reconstructed length */
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245 | ctx->nonce.c[15] = 1;
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246 |
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247 | if (n != len)
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248 | return -1;
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249 |
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250 | while (len >= 16) {
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251 | #if defined(STRICT_ALIGNMENT)
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252 | union {
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253 | u64 u[2];
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254 | u8 c[16];
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255 | } temp;
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256 | #endif
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257 | (*block) (ctx->nonce.c, scratch.c, key);
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258 | ctr64_inc(ctx->nonce.c);
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259 | #if defined(STRICT_ALIGNMENT)
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260 | memcpy(temp.c, inp, 16);
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261 | ctx->cmac.u[0] ^= (scratch.u[0] ^= temp.u[0]);
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262 | ctx->cmac.u[1] ^= (scratch.u[1] ^= temp.u[1]);
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263 | memcpy(out, scratch.c, 16);
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264 | #else
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265 | ctx->cmac.u[0] ^= (((u64_a1 *)out)[0]
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266 | = scratch.u[0] ^ ((u64_a1 *)inp)[0]);
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267 | ctx->cmac.u[1] ^= (((u64_a1 *)out)[1]
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268 | = scratch.u[1] ^ ((u64_a1 *)inp)[1]);
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269 | #endif
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270 | (*block) (ctx->cmac.c, ctx->cmac.c, key);
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271 |
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272 | inp += 16;
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273 | out += 16;
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274 | len -= 16;
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275 | }
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276 |
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277 | if (len) {
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278 | (*block) (ctx->nonce.c, scratch.c, key);
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279 | for (i = 0; i < len; ++i)
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280 | ctx->cmac.c[i] ^= (out[i] = scratch.c[i] ^ inp[i]);
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281 | (*block) (ctx->cmac.c, ctx->cmac.c, key);
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282 | }
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283 |
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284 | for (i = 15 - L; i < 16; ++i)
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285 | ctx->nonce.c[i] = 0;
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286 |
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287 | (*block) (ctx->nonce.c, scratch.c, key);
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288 | ctx->cmac.u[0] ^= scratch.u[0];
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289 | ctx->cmac.u[1] ^= scratch.u[1];
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290 |
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291 | ctx->nonce.c[0] = flags0;
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292 |
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293 | return 0;
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294 | }
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295 |
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296 | static void ctr64_add(unsigned char *counter, size_t inc)
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297 | {
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298 | size_t n = 8, val = 0;
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299 |
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300 | counter += 8;
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301 | do {
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302 | --n;
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303 | val += counter[n] + (inc & 0xff);
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304 | counter[n] = (unsigned char)val;
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305 | val >>= 8; /* carry bit */
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306 | inc >>= 8;
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307 | } while (n && (inc || val));
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308 | }
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309 |
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310 | int CRYPTO_ccm128_encrypt_ccm64(CCM128_CONTEXT *ctx,
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311 | const unsigned char *inp, unsigned char *out,
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312 | size_t len, ccm128_f stream)
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313 | {
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314 | size_t n;
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315 | unsigned int i, L;
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316 | unsigned char flags0 = ctx->nonce.c[0];
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317 | block128_f block = ctx->block;
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318 | void *key = ctx->key;
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319 | union {
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320 | u64 u[2];
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321 | u8 c[16];
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322 | } scratch;
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323 |
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324 | if (!(flags0 & 0x40))
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325 | (*block) (ctx->nonce.c, ctx->cmac.c, key), ctx->blocks++;
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326 |
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327 | ctx->nonce.c[0] = L = flags0 & 7;
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328 | for (n = 0, i = 15 - L; i < 15; ++i) {
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329 | n |= ctx->nonce.c[i];
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330 | ctx->nonce.c[i] = 0;
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331 | n <<= 8;
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332 | }
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333 | n |= ctx->nonce.c[15]; /* reconstructed length */
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334 | ctx->nonce.c[15] = 1;
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335 |
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336 | if (n != len)
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337 | return -1; /* length mismatch */
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338 |
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339 | ctx->blocks += ((len + 15) >> 3) | 1;
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340 | if (ctx->blocks > (U64(1) << 61))
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341 | return -2; /* too much data */
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342 |
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343 | if ((n = len / 16)) {
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344 | (*stream) (inp, out, n, key, ctx->nonce.c, ctx->cmac.c);
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345 | n *= 16;
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346 | inp += n;
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347 | out += n;
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348 | len -= n;
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349 | if (len)
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350 | ctr64_add(ctx->nonce.c, n / 16);
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351 | }
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352 |
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353 | if (len) {
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354 | for (i = 0; i < len; ++i)
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355 | ctx->cmac.c[i] ^= inp[i];
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356 | (*block) (ctx->cmac.c, ctx->cmac.c, key);
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357 | (*block) (ctx->nonce.c, scratch.c, key);
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358 | for (i = 0; i < len; ++i)
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359 | out[i] = scratch.c[i] ^ inp[i];
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360 | }
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361 |
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362 | for (i = 15 - L; i < 16; ++i)
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363 | ctx->nonce.c[i] = 0;
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364 |
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365 | (*block) (ctx->nonce.c, scratch.c, key);
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366 | ctx->cmac.u[0] ^= scratch.u[0];
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367 | ctx->cmac.u[1] ^= scratch.u[1];
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368 |
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369 | ctx->nonce.c[0] = flags0;
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370 |
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371 | return 0;
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372 | }
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373 |
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374 | int CRYPTO_ccm128_decrypt_ccm64(CCM128_CONTEXT *ctx,
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375 | const unsigned char *inp, unsigned char *out,
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376 | size_t len, ccm128_f stream)
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377 | {
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378 | size_t n;
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379 | unsigned int i, L;
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380 | unsigned char flags0 = ctx->nonce.c[0];
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381 | block128_f block = ctx->block;
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382 | void *key = ctx->key;
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383 | union {
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384 | u64 u[2];
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385 | u8 c[16];
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386 | } scratch;
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387 |
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388 | if (!(flags0 & 0x40))
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389 | (*block) (ctx->nonce.c, ctx->cmac.c, key);
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390 |
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391 | ctx->nonce.c[0] = L = flags0 & 7;
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392 | for (n = 0, i = 15 - L; i < 15; ++i) {
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393 | n |= ctx->nonce.c[i];
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394 | ctx->nonce.c[i] = 0;
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395 | n <<= 8;
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396 | }
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397 | n |= ctx->nonce.c[15]; /* reconstructed length */
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398 | ctx->nonce.c[15] = 1;
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399 |
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400 | if (n != len)
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401 | return -1;
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402 |
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403 | if ((n = len / 16)) {
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404 | (*stream) (inp, out, n, key, ctx->nonce.c, ctx->cmac.c);
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405 | n *= 16;
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406 | inp += n;
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407 | out += n;
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408 | len -= n;
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409 | if (len)
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410 | ctr64_add(ctx->nonce.c, n / 16);
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411 | }
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412 |
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413 | if (len) {
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414 | (*block) (ctx->nonce.c, scratch.c, key);
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415 | for (i = 0; i < len; ++i)
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416 | ctx->cmac.c[i] ^= (out[i] = scratch.c[i] ^ inp[i]);
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417 | (*block) (ctx->cmac.c, ctx->cmac.c, key);
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418 | }
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419 |
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420 | for (i = 15 - L; i < 16; ++i)
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421 | ctx->nonce.c[i] = 0;
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422 |
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423 | (*block) (ctx->nonce.c, scratch.c, key);
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424 | ctx->cmac.u[0] ^= scratch.u[0];
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425 | ctx->cmac.u[1] ^= scratch.u[1];
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426 |
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427 | ctx->nonce.c[0] = flags0;
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428 |
|
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429 | return 0;
|
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430 | }
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431 |
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432 | size_t CRYPTO_ccm128_tag(CCM128_CONTEXT *ctx, unsigned char *tag, size_t len)
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433 | {
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434 | unsigned int M = (ctx->nonce.c[0] >> 3) & 7; /* the M parameter */
|
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435 |
|
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436 | M *= 2;
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437 | M += 2;
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438 | if (len != M)
|
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439 | return 0;
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440 | memcpy(tag, ctx->cmac.c, M);
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441 | return M;
|
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442 | }
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