aes_alt.c 70 KB

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  1. /*
  2. * FIPS-197 compliant AES implementation
  3. *
  4. * Copyright The Mbed TLS Contributors
  5. * SPDX-License-Identifier: Apache-2.0
  6. *
  7. * Licensed under the Apache License, Version 2.0 (the "License"); you may
  8. * not use this file except in compliance with the License.
  9. * You may obtain a copy of the License at
  10. *
  11. * http://www.apache.org/licenses/LICENSE-2.0
  12. *
  13. * Unless required by applicable law or agreed to in writing, software
  14. * distributed under the License is distributed on an "AS IS" BASIS, WITHOUT
  15. * WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  16. * See the License for the specific language governing permissions and
  17. * limitations under the License.
  18. *
  19. * This file is part of mbed TLS (https://tls.mbed.org)
  20. */
  21. /*
  22. * The AES block cipher was designed by Vincent Rijmen and Joan Daemen.
  23. *
  24. * http://csrc.nist.gov/encryption/aes/rijndael/Rijndael.pdf
  25. * http://csrc.nist.gov/publications/fips/fips197/fips-197.pdf
  26. */
  27. /*
  28. * Fow HW integration change
  29. * Copyright (c) 2023 HPMicro
  30. *
  31. * SPDX-License-Identifier: BSD-3-Clause
  32. *
  33. */
  34. #include "aes_alt.h"
  35. #if defined(MBEDTLS_AES_C)
  36. #include <string.h>
  37. #include "stdio.h"
  38. #include "hpm_l1c_drv.h"
  39. #include "mbedtls/aes.h"
  40. #include "mbedtls/platform_util.h"
  41. #if defined(MBEDTLS_PADLOCK_C)
  42. #include "mbedtls/padlock.h"
  43. #endif
  44. #if defined(MBEDTLS_AESNI_C)
  45. #include "mbedtls/aesni.h"
  46. #endif
  47. #if defined(MBEDTLS_THREADING_C)
  48. #include "mbedtls/threading.h"
  49. #include "ksdk_mbedtls.h"
  50. #endif
  51. #include "board.h"
  52. ATTR_PLACE_AT_NONCACHEABLE sdp_aes_ctx_t s_aes_ctx;
  53. #if defined(MBEDTLS_AES_ALT)
  54. /* clang-format off */
  55. /* Parameter validation macros based on platform_util.h */
  56. #define AES_VALIDATE_RET( cond ) \
  57. MBEDTLS_INTERNAL_VALIDATE_RET( cond, MBEDTLS_ERR_AES_BAD_INPUT_DATA )
  58. #define AES_VALIDATE( cond ) \
  59. MBEDTLS_INTERNAL_VALIDATE( cond )
  60. /*
  61. * 32-bit integer manipulation macros (little endian)
  62. */
  63. #ifndef GET_UINT32_LE
  64. #define GET_UINT32_LE(n,b,i) \
  65. { \
  66. (n) = ( (uint32_t) (b)[(i) ] ) \
  67. | ( (uint32_t) (b)[(i) + 1] << 8 ) \
  68. | ( (uint32_t) (b)[(i) + 2] << 16 ) \
  69. | ( (uint32_t) (b)[(i) + 3] << 24 ); \
  70. }
  71. #endif
  72. #ifndef PUT_UINT32_LE
  73. #define PUT_UINT32_LE(n,b,i) \
  74. { \
  75. (b)[(i) ] = (unsigned char) ( ( (n) ) & 0xFF ); \
  76. (b)[(i) + 1] = (unsigned char) ( ( (n) >> 8 ) & 0xFF ); \
  77. (b)[(i) + 2] = (unsigned char) ( ( (n) >> 16 ) & 0xFF ); \
  78. (b)[(i) + 3] = (unsigned char) ( ( (n) >> 24 ) & 0xFF ); \
  79. }
  80. #endif
  81. #if defined(MBEDTLS_PADLOCK_C) && \
  82. ( defined(MBEDTLS_HAVE_X86) || defined(MBEDTLS_PADLOCK_ALIGN16) )
  83. static int aes_padlock_ace = -1;
  84. #endif
  85. #if defined(MBEDTLS_AES_ROM_TABLES)
  86. #if ((!defined(MBEDTLS_AES_SETKEY_ENC_ALT)) || (defined(MBEDTLS_AES192_ALT_SW) || defined(MBEDTLS_AES256_ALT_SW) || defined(MBEDTLS_AES_CBC_ALT_SW)))
  87. /*
  88. * Forward S-box
  89. */
  90. static const unsigned char FSb[256] =
  91. {
  92. 0x63, 0x7C, 0x77, 0x7B, 0xF2, 0x6B, 0x6F, 0xC5,
  93. 0x30, 0x01, 0x67, 0x2B, 0xFE, 0xD7, 0xAB, 0x76,
  94. 0xCA, 0x82, 0xC9, 0x7D, 0xFA, 0x59, 0x47, 0xF0,
  95. 0xAD, 0xD4, 0xA2, 0xAF, 0x9C, 0xA4, 0x72, 0xC0,
  96. 0xB7, 0xFD, 0x93, 0x26, 0x36, 0x3F, 0xF7, 0xCC,
  97. 0x34, 0xA5, 0xE5, 0xF1, 0x71, 0xD8, 0x31, 0x15,
  98. 0x04, 0xC7, 0x23, 0xC3, 0x18, 0x96, 0x05, 0x9A,
  99. 0x07, 0x12, 0x80, 0xE2, 0xEB, 0x27, 0xB2, 0x75,
  100. 0x09, 0x83, 0x2C, 0x1A, 0x1B, 0x6E, 0x5A, 0xA0,
  101. 0x52, 0x3B, 0xD6, 0xB3, 0x29, 0xE3, 0x2F, 0x84,
  102. 0x53, 0xD1, 0x00, 0xED, 0x20, 0xFC, 0xB1, 0x5B,
  103. 0x6A, 0xCB, 0xBE, 0x39, 0x4A, 0x4C, 0x58, 0xCF,
  104. 0xD0, 0xEF, 0xAA, 0xFB, 0x43, 0x4D, 0x33, 0x85,
  105. 0x45, 0xF9, 0x02, 0x7F, 0x50, 0x3C, 0x9F, 0xA8,
  106. 0x51, 0xA3, 0x40, 0x8F, 0x92, 0x9D, 0x38, 0xF5,
  107. 0xBC, 0xB6, 0xDA, 0x21, 0x10, 0xFF, 0xF3, 0xD2,
  108. 0xCD, 0x0C, 0x13, 0xEC, 0x5F, 0x97, 0x44, 0x17,
  109. 0xC4, 0xA7, 0x7E, 0x3D, 0x64, 0x5D, 0x19, 0x73,
  110. 0x60, 0x81, 0x4F, 0xDC, 0x22, 0x2A, 0x90, 0x88,
  111. 0x46, 0xEE, 0xB8, 0x14, 0xDE, 0x5E, 0x0B, 0xDB,
  112. 0xE0, 0x32, 0x3A, 0x0A, 0x49, 0x06, 0x24, 0x5C,
  113. 0xC2, 0xD3, 0xAC, 0x62, 0x91, 0x95, 0xE4, 0x79,
  114. 0xE7, 0xC8, 0x37, 0x6D, 0x8D, 0xD5, 0x4E, 0xA9,
  115. 0x6C, 0x56, 0xF4, 0xEA, 0x65, 0x7A, 0xAE, 0x08,
  116. 0xBA, 0x78, 0x25, 0x2E, 0x1C, 0xA6, 0xB4, 0xC6,
  117. 0xE8, 0xDD, 0x74, 0x1F, 0x4B, 0xBD, 0x8B, 0x8A,
  118. 0x70, 0x3E, 0xB5, 0x66, 0x48, 0x03, 0xF6, 0x0E,
  119. 0x61, 0x35, 0x57, 0xB9, 0x86, 0xC1, 0x1D, 0x9E,
  120. 0xE1, 0xF8, 0x98, 0x11, 0x69, 0xD9, 0x8E, 0x94,
  121. 0x9B, 0x1E, 0x87, 0xE9, 0xCE, 0x55, 0x28, 0xDF,
  122. 0x8C, 0xA1, 0x89, 0x0D, 0xBF, 0xE6, 0x42, 0x68,
  123. 0x41, 0x99, 0x2D, 0x0F, 0xB0, 0x54, 0xBB, 0x16
  124. };
  125. /*
  126. * Forward tables
  127. */
  128. #define FT \
  129. \
  130. V(A5,63,63,C6), V(84,7C,7C,F8), V(99,77,77,EE), V(8D,7B,7B,F6), \
  131. V(0D,F2,F2,FF), V(BD,6B,6B,D6), V(B1,6F,6F,DE), V(54,C5,C5,91), \
  132. V(50,30,30,60), V(03,01,01,02), V(A9,67,67,CE), V(7D,2B,2B,56), \
  133. V(19,FE,FE,E7), V(62,D7,D7,B5), V(E6,AB,AB,4D), V(9A,76,76,EC), \
  134. V(45,CA,CA,8F), V(9D,82,82,1F), V(40,C9,C9,89), V(87,7D,7D,FA), \
  135. V(15,FA,FA,EF), V(EB,59,59,B2), V(C9,47,47,8E), V(0B,F0,F0,FB), \
  136. V(EC,AD,AD,41), V(67,D4,D4,B3), V(FD,A2,A2,5F), V(EA,AF,AF,45), \
  137. V(BF,9C,9C,23), V(F7,A4,A4,53), V(96,72,72,E4), V(5B,C0,C0,9B), \
  138. V(C2,B7,B7,75), V(1C,FD,FD,E1), V(AE,93,93,3D), V(6A,26,26,4C), \
  139. V(5A,36,36,6C), V(41,3F,3F,7E), V(02,F7,F7,F5), V(4F,CC,CC,83), \
  140. V(5C,34,34,68), V(F4,A5,A5,51), V(34,E5,E5,D1), V(08,F1,F1,F9), \
  141. V(93,71,71,E2), V(73,D8,D8,AB), V(53,31,31,62), V(3F,15,15,2A), \
  142. V(0C,04,04,08), V(52,C7,C7,95), V(65,23,23,46), V(5E,C3,C3,9D), \
  143. V(28,18,18,30), V(A1,96,96,37), V(0F,05,05,0A), V(B5,9A,9A,2F), \
  144. V(09,07,07,0E), V(36,12,12,24), V(9B,80,80,1B), V(3D,E2,E2,DF), \
  145. V(26,EB,EB,CD), V(69,27,27,4E), V(CD,B2,B2,7F), V(9F,75,75,EA), \
  146. V(1B,09,09,12), V(9E,83,83,1D), V(74,2C,2C,58), V(2E,1A,1A,34), \
  147. V(2D,1B,1B,36), V(B2,6E,6E,DC), V(EE,5A,5A,B4), V(FB,A0,A0,5B), \
  148. V(F6,52,52,A4), V(4D,3B,3B,76), V(61,D6,D6,B7), V(CE,B3,B3,7D), \
  149. V(7B,29,29,52), V(3E,E3,E3,DD), V(71,2F,2F,5E), V(97,84,84,13), \
  150. V(F5,53,53,A6), V(68,D1,D1,B9), V(00,00,00,00), V(2C,ED,ED,C1), \
  151. V(60,20,20,40), V(1F,FC,FC,E3), V(C8,B1,B1,79), V(ED,5B,5B,B6), \
  152. V(BE,6A,6A,D4), V(46,CB,CB,8D), V(D9,BE,BE,67), V(4B,39,39,72), \
  153. V(DE,4A,4A,94), V(D4,4C,4C,98), V(E8,58,58,B0), V(4A,CF,CF,85), \
  154. V(6B,D0,D0,BB), V(2A,EF,EF,C5), V(E5,AA,AA,4F), V(16,FB,FB,ED), \
  155. V(C5,43,43,86), V(D7,4D,4D,9A), V(55,33,33,66), V(94,85,85,11), \
  156. V(CF,45,45,8A), V(10,F9,F9,E9), V(06,02,02,04), V(81,7F,7F,FE), \
  157. V(F0,50,50,A0), V(44,3C,3C,78), V(BA,9F,9F,25), V(E3,A8,A8,4B), \
  158. V(F3,51,51,A2), V(FE,A3,A3,5D), V(C0,40,40,80), V(8A,8F,8F,05), \
  159. V(AD,92,92,3F), V(BC,9D,9D,21), V(48,38,38,70), V(04,F5,F5,F1), \
  160. V(DF,BC,BC,63), V(C1,B6,B6,77), V(75,DA,DA,AF), V(63,21,21,42), \
  161. V(30,10,10,20), V(1A,FF,FF,E5), V(0E,F3,F3,FD), V(6D,D2,D2,BF), \
  162. V(4C,CD,CD,81), V(14,0C,0C,18), V(35,13,13,26), V(2F,EC,EC,C3), \
  163. V(E1,5F,5F,BE), V(A2,97,97,35), V(CC,44,44,88), V(39,17,17,2E), \
  164. V(57,C4,C4,93), V(F2,A7,A7,55), V(82,7E,7E,FC), V(47,3D,3D,7A), \
  165. V(AC,64,64,C8), V(E7,5D,5D,BA), V(2B,19,19,32), V(95,73,73,E6), \
  166. V(A0,60,60,C0), V(98,81,81,19), V(D1,4F,4F,9E), V(7F,DC,DC,A3), \
  167. V(66,22,22,44), V(7E,2A,2A,54), V(AB,90,90,3B), V(83,88,88,0B), \
  168. V(CA,46,46,8C), V(29,EE,EE,C7), V(D3,B8,B8,6B), V(3C,14,14,28), \
  169. V(79,DE,DE,A7), V(E2,5E,5E,BC), V(1D,0B,0B,16), V(76,DB,DB,AD), \
  170. V(3B,E0,E0,DB), V(56,32,32,64), V(4E,3A,3A,74), V(1E,0A,0A,14), \
  171. V(DB,49,49,92), V(0A,06,06,0C), V(6C,24,24,48), V(E4,5C,5C,B8), \
  172. V(5D,C2,C2,9F), V(6E,D3,D3,BD), V(EF,AC,AC,43), V(A6,62,62,C4), \
  173. V(A8,91,91,39), V(A4,95,95,31), V(37,E4,E4,D3), V(8B,79,79,F2), \
  174. V(32,E7,E7,D5), V(43,C8,C8,8B), V(59,37,37,6E), V(B7,6D,6D,DA), \
  175. V(8C,8D,8D,01), V(64,D5,D5,B1), V(D2,4E,4E,9C), V(E0,A9,A9,49), \
  176. V(B4,6C,6C,D8), V(FA,56,56,AC), V(07,F4,F4,F3), V(25,EA,EA,CF), \
  177. V(AF,65,65,CA), V(8E,7A,7A,F4), V(E9,AE,AE,47), V(18,08,08,10), \
  178. V(D5,BA,BA,6F), V(88,78,78,F0), V(6F,25,25,4A), V(72,2E,2E,5C), \
  179. V(24,1C,1C,38), V(F1,A6,A6,57), V(C7,B4,B4,73), V(51,C6,C6,97), \
  180. V(23,E8,E8,CB), V(7C,DD,DD,A1), V(9C,74,74,E8), V(21,1F,1F,3E), \
  181. V(DD,4B,4B,96), V(DC,BD,BD,61), V(86,8B,8B,0D), V(85,8A,8A,0F), \
  182. V(90,70,70,E0), V(42,3E,3E,7C), V(C4,B5,B5,71), V(AA,66,66,CC), \
  183. V(D8,48,48,90), V(05,03,03,06), V(01,F6,F6,F7), V(12,0E,0E,1C), \
  184. V(A3,61,61,C2), V(5F,35,35,6A), V(F9,57,57,AE), V(D0,B9,B9,69), \
  185. V(91,86,86,17), V(58,C1,C1,99), V(27,1D,1D,3A), V(B9,9E,9E,27), \
  186. V(38,E1,E1,D9), V(13,F8,F8,EB), V(B3,98,98,2B), V(33,11,11,22), \
  187. V(BB,69,69,D2), V(70,D9,D9,A9), V(89,8E,8E,07), V(A7,94,94,33), \
  188. V(B6,9B,9B,2D), V(22,1E,1E,3C), V(92,87,87,15), V(20,E9,E9,C9), \
  189. V(49,CE,CE,87), V(FF,55,55,AA), V(78,28,28,50), V(7A,DF,DF,A5), \
  190. V(8F,8C,8C,03), V(F8,A1,A1,59), V(80,89,89,09), V(17,0D,0D,1A), \
  191. V(DA,BF,BF,65), V(31,E6,E6,D7), V(C6,42,42,84), V(B8,68,68,D0), \
  192. V(C3,41,41,82), V(B0,99,99,29), V(77,2D,2D,5A), V(11,0F,0F,1E), \
  193. V(CB,B0,B0,7B), V(FC,54,54,A8), V(D6,BB,BB,6D), V(3A,16,16,2C)
  194. #define V(a,b,c,d) 0x##a##b##c##d
  195. static const uint32_t FT0[256] = { FT };
  196. #undef V
  197. #if !defined(MBEDTLS_AES_FEWER_TABLES)
  198. #define V(a,b,c,d) 0x##b##c##d##a
  199. static const uint32_t FT1[256] = { FT };
  200. #undef V
  201. #define V(a,b,c,d) 0x##c##d##a##b
  202. static const uint32_t FT2[256] = { FT };
  203. #undef V
  204. #define V(a,b,c,d) 0x##d##a##b##c
  205. static const uint32_t FT3[256] = { FT };
  206. #undef V
  207. #endif /* !MBEDTLS_AES_FEWER_TABLES */
  208. #undef FT
  209. /*
  210. * Reverse S-box
  211. */
  212. static const unsigned char RSb[256] =
  213. {
  214. 0x52, 0x09, 0x6A, 0xD5, 0x30, 0x36, 0xA5, 0x38,
  215. 0xBF, 0x40, 0xA3, 0x9E, 0x81, 0xF3, 0xD7, 0xFB,
  216. 0x7C, 0xE3, 0x39, 0x82, 0x9B, 0x2F, 0xFF, 0x87,
  217. 0x34, 0x8E, 0x43, 0x44, 0xC4, 0xDE, 0xE9, 0xCB,
  218. 0x54, 0x7B, 0x94, 0x32, 0xA6, 0xC2, 0x23, 0x3D,
  219. 0xEE, 0x4C, 0x95, 0x0B, 0x42, 0xFA, 0xC3, 0x4E,
  220. 0x08, 0x2E, 0xA1, 0x66, 0x28, 0xD9, 0x24, 0xB2,
  221. 0x76, 0x5B, 0xA2, 0x49, 0x6D, 0x8B, 0xD1, 0x25,
  222. 0x72, 0xF8, 0xF6, 0x64, 0x86, 0x68, 0x98, 0x16,
  223. 0xD4, 0xA4, 0x5C, 0xCC, 0x5D, 0x65, 0xB6, 0x92,
  224. 0x6C, 0x70, 0x48, 0x50, 0xFD, 0xED, 0xB9, 0xDA,
  225. 0x5E, 0x15, 0x46, 0x57, 0xA7, 0x8D, 0x9D, 0x84,
  226. 0x90, 0xD8, 0xAB, 0x00, 0x8C, 0xBC, 0xD3, 0x0A,
  227. 0xF7, 0xE4, 0x58, 0x05, 0xB8, 0xB3, 0x45, 0x06,
  228. 0xD0, 0x2C, 0x1E, 0x8F, 0xCA, 0x3F, 0x0F, 0x02,
  229. 0xC1, 0xAF, 0xBD, 0x03, 0x01, 0x13, 0x8A, 0x6B,
  230. 0x3A, 0x91, 0x11, 0x41, 0x4F, 0x67, 0xDC, 0xEA,
  231. 0x97, 0xF2, 0xCF, 0xCE, 0xF0, 0xB4, 0xE6, 0x73,
  232. 0x96, 0xAC, 0x74, 0x22, 0xE7, 0xAD, 0x35, 0x85,
  233. 0xE2, 0xF9, 0x37, 0xE8, 0x1C, 0x75, 0xDF, 0x6E,
  234. 0x47, 0xF1, 0x1A, 0x71, 0x1D, 0x29, 0xC5, 0x89,
  235. 0x6F, 0xB7, 0x62, 0x0E, 0xAA, 0x18, 0xBE, 0x1B,
  236. 0xFC, 0x56, 0x3E, 0x4B, 0xC6, 0xD2, 0x79, 0x20,
  237. 0x9A, 0xDB, 0xC0, 0xFE, 0x78, 0xCD, 0x5A, 0xF4,
  238. 0x1F, 0xDD, 0xA8, 0x33, 0x88, 0x07, 0xC7, 0x31,
  239. 0xB1, 0x12, 0x10, 0x59, 0x27, 0x80, 0xEC, 0x5F,
  240. 0x60, 0x51, 0x7F, 0xA9, 0x19, 0xB5, 0x4A, 0x0D,
  241. 0x2D, 0xE5, 0x7A, 0x9F, 0x93, 0xC9, 0x9C, 0xEF,
  242. 0xA0, 0xE0, 0x3B, 0x4D, 0xAE, 0x2A, 0xF5, 0xB0,
  243. 0xC8, 0xEB, 0xBB, 0x3C, 0x83, 0x53, 0x99, 0x61,
  244. 0x17, 0x2B, 0x04, 0x7E, 0xBA, 0x77, 0xD6, 0x26,
  245. 0xE1, 0x69, 0x14, 0x63, 0x55, 0x21, 0x0C, 0x7D
  246. };
  247. /*
  248. * Reverse tables
  249. */
  250. #define RT \
  251. \
  252. V(50,A7,F4,51), V(53,65,41,7E), V(C3,A4,17,1A), V(96,5E,27,3A), \
  253. V(CB,6B,AB,3B), V(F1,45,9D,1F), V(AB,58,FA,AC), V(93,03,E3,4B), \
  254. V(55,FA,30,20), V(F6,6D,76,AD), V(91,76,CC,88), V(25,4C,02,F5), \
  255. V(FC,D7,E5,4F), V(D7,CB,2A,C5), V(80,44,35,26), V(8F,A3,62,B5), \
  256. V(49,5A,B1,DE), V(67,1B,BA,25), V(98,0E,EA,45), V(E1,C0,FE,5D), \
  257. V(02,75,2F,C3), V(12,F0,4C,81), V(A3,97,46,8D), V(C6,F9,D3,6B), \
  258. V(E7,5F,8F,03), V(95,9C,92,15), V(EB,7A,6D,BF), V(DA,59,52,95), \
  259. V(2D,83,BE,D4), V(D3,21,74,58), V(29,69,E0,49), V(44,C8,C9,8E), \
  260. V(6A,89,C2,75), V(78,79,8E,F4), V(6B,3E,58,99), V(DD,71,B9,27), \
  261. V(B6,4F,E1,BE), V(17,AD,88,F0), V(66,AC,20,C9), V(B4,3A,CE,7D), \
  262. V(18,4A,DF,63), V(82,31,1A,E5), V(60,33,51,97), V(45,7F,53,62), \
  263. V(E0,77,64,B1), V(84,AE,6B,BB), V(1C,A0,81,FE), V(94,2B,08,F9), \
  264. V(58,68,48,70), V(19,FD,45,8F), V(87,6C,DE,94), V(B7,F8,7B,52), \
  265. V(23,D3,73,AB), V(E2,02,4B,72), V(57,8F,1F,E3), V(2A,AB,55,66), \
  266. V(07,28,EB,B2), V(03,C2,B5,2F), V(9A,7B,C5,86), V(A5,08,37,D3), \
  267. V(F2,87,28,30), V(B2,A5,BF,23), V(BA,6A,03,02), V(5C,82,16,ED), \
  268. V(2B,1C,CF,8A), V(92,B4,79,A7), V(F0,F2,07,F3), V(A1,E2,69,4E), \
  269. V(CD,F4,DA,65), V(D5,BE,05,06), V(1F,62,34,D1), V(8A,FE,A6,C4), \
  270. V(9D,53,2E,34), V(A0,55,F3,A2), V(32,E1,8A,05), V(75,EB,F6,A4), \
  271. V(39,EC,83,0B), V(AA,EF,60,40), V(06,9F,71,5E), V(51,10,6E,BD), \
  272. V(F9,8A,21,3E), V(3D,06,DD,96), V(AE,05,3E,DD), V(46,BD,E6,4D), \
  273. V(B5,8D,54,91), V(05,5D,C4,71), V(6F,D4,06,04), V(FF,15,50,60), \
  274. V(24,FB,98,19), V(97,E9,BD,D6), V(CC,43,40,89), V(77,9E,D9,67), \
  275. V(BD,42,E8,B0), V(88,8B,89,07), V(38,5B,19,E7), V(DB,EE,C8,79), \
  276. V(47,0A,7C,A1), V(E9,0F,42,7C), V(C9,1E,84,F8), V(00,00,00,00), \
  277. V(83,86,80,09), V(48,ED,2B,32), V(AC,70,11,1E), V(4E,72,5A,6C), \
  278. V(FB,FF,0E,FD), V(56,38,85,0F), V(1E,D5,AE,3D), V(27,39,2D,36), \
  279. V(64,D9,0F,0A), V(21,A6,5C,68), V(D1,54,5B,9B), V(3A,2E,36,24), \
  280. V(B1,67,0A,0C), V(0F,E7,57,93), V(D2,96,EE,B4), V(9E,91,9B,1B), \
  281. V(4F,C5,C0,80), V(A2,20,DC,61), V(69,4B,77,5A), V(16,1A,12,1C), \
  282. V(0A,BA,93,E2), V(E5,2A,A0,C0), V(43,E0,22,3C), V(1D,17,1B,12), \
  283. V(0B,0D,09,0E), V(AD,C7,8B,F2), V(B9,A8,B6,2D), V(C8,A9,1E,14), \
  284. V(85,19,F1,57), V(4C,07,75,AF), V(BB,DD,99,EE), V(FD,60,7F,A3), \
  285. V(9F,26,01,F7), V(BC,F5,72,5C), V(C5,3B,66,44), V(34,7E,FB,5B), \
  286. V(76,29,43,8B), V(DC,C6,23,CB), V(68,FC,ED,B6), V(63,F1,E4,B8), \
  287. V(CA,DC,31,D7), V(10,85,63,42), V(40,22,97,13), V(20,11,C6,84), \
  288. V(7D,24,4A,85), V(F8,3D,BB,D2), V(11,32,F9,AE), V(6D,A1,29,C7), \
  289. V(4B,2F,9E,1D), V(F3,30,B2,DC), V(EC,52,86,0D), V(D0,E3,C1,77), \
  290. V(6C,16,B3,2B), V(99,B9,70,A9), V(FA,48,94,11), V(22,64,E9,47), \
  291. V(C4,8C,FC,A8), V(1A,3F,F0,A0), V(D8,2C,7D,56), V(EF,90,33,22), \
  292. V(C7,4E,49,87), V(C1,D1,38,D9), V(FE,A2,CA,8C), V(36,0B,D4,98), \
  293. V(CF,81,F5,A6), V(28,DE,7A,A5), V(26,8E,B7,DA), V(A4,BF,AD,3F), \
  294. V(E4,9D,3A,2C), V(0D,92,78,50), V(9B,CC,5F,6A), V(62,46,7E,54), \
  295. V(C2,13,8D,F6), V(E8,B8,D8,90), V(5E,F7,39,2E), V(F5,AF,C3,82), \
  296. V(BE,80,5D,9F), V(7C,93,D0,69), V(A9,2D,D5,6F), V(B3,12,25,CF), \
  297. V(3B,99,AC,C8), V(A7,7D,18,10), V(6E,63,9C,E8), V(7B,BB,3B,DB), \
  298. V(09,78,26,CD), V(F4,18,59,6E), V(01,B7,9A,EC), V(A8,9A,4F,83), \
  299. V(65,6E,95,E6), V(7E,E6,FF,AA), V(08,CF,BC,21), V(E6,E8,15,EF), \
  300. V(D9,9B,E7,BA), V(CE,36,6F,4A), V(D4,09,9F,EA), V(D6,7C,B0,29), \
  301. V(AF,B2,A4,31), V(31,23,3F,2A), V(30,94,A5,C6), V(C0,66,A2,35), \
  302. V(37,BC,4E,74), V(A6,CA,82,FC), V(B0,D0,90,E0), V(15,D8,A7,33), \
  303. V(4A,98,04,F1), V(F7,DA,EC,41), V(0E,50,CD,7F), V(2F,F6,91,17), \
  304. V(8D,D6,4D,76), V(4D,B0,EF,43), V(54,4D,AA,CC), V(DF,04,96,E4), \
  305. V(E3,B5,D1,9E), V(1B,88,6A,4C), V(B8,1F,2C,C1), V(7F,51,65,46), \
  306. V(04,EA,5E,9D), V(5D,35,8C,01), V(73,74,87,FA), V(2E,41,0B,FB), \
  307. V(5A,1D,67,B3), V(52,D2,DB,92), V(33,56,10,E9), V(13,47,D6,6D), \
  308. V(8C,61,D7,9A), V(7A,0C,A1,37), V(8E,14,F8,59), V(89,3C,13,EB), \
  309. V(EE,27,A9,CE), V(35,C9,61,B7), V(ED,E5,1C,E1), V(3C,B1,47,7A), \
  310. V(59,DF,D2,9C), V(3F,73,F2,55), V(79,CE,14,18), V(BF,37,C7,73), \
  311. V(EA,CD,F7,53), V(5B,AA,FD,5F), V(14,6F,3D,DF), V(86,DB,44,78), \
  312. V(81,F3,AF,CA), V(3E,C4,68,B9), V(2C,34,24,38), V(5F,40,A3,C2), \
  313. V(72,C3,1D,16), V(0C,25,E2,BC), V(8B,49,3C,28), V(41,95,0D,FF), \
  314. V(71,01,A8,39), V(DE,B3,0C,08), V(9C,E4,B4,D8), V(90,C1,56,64), \
  315. V(61,84,CB,7B), V(70,B6,32,D5), V(74,5C,6C,48), V(42,57,B8,D0)
  316. #define V(a,b,c,d) 0x##a##b##c##d
  317. static const uint32_t RT0[256] = { RT };
  318. #undef V
  319. #if !defined(MBEDTLS_AES_FEWER_TABLES)
  320. #define V(a,b,c,d) 0x##b##c##d##a
  321. static const uint32_t RT1[256] = { RT };
  322. #undef V
  323. #define V(a,b,c,d) 0x##c##d##a##b
  324. static const uint32_t RT2[256] = { RT };
  325. #undef V
  326. #define V(a,b,c,d) 0x##d##a##b##c
  327. static const uint32_t RT3[256] = { RT };
  328. #undef V
  329. #endif /* !MBEDTLS_AES_FEWER_TABLES */
  330. #undef RT
  331. /*
  332. * Round constants
  333. */
  334. static const uint32_t RCON[10] =
  335. {
  336. 0x00000001, 0x00000002, 0x00000004, 0x00000008,
  337. 0x00000010, 0x00000020, 0x00000040, 0x00000080,
  338. 0x0000001B, 0x00000036
  339. };
  340. #endif /* MBEDTLS_AES_SETKEY_ENC_ALT */
  341. #else /* MBEDTLS_AES_ROM_TABLES */
  342. #if !defined(MBEDTLS_AES_SETKEY_ENC_ALT)
  343. /*
  344. * Forward S-box & tables
  345. */
  346. static unsigned char FSb[256];
  347. static uint32_t FT0[256];
  348. #if !defined(MBEDTLS_AES_FEWER_TABLES)
  349. static uint32_t FT1[256];
  350. static uint32_t FT2[256];
  351. static uint32_t FT3[256];
  352. #endif /* !MBEDTLS_AES_FEWER_TABLES */
  353. /*
  354. * Reverse S-box & tables
  355. */
  356. static unsigned char RSb[256];
  357. static uint32_t RT0[256];
  358. #if !defined(MBEDTLS_AES_FEWER_TABLES)
  359. static uint32_t RT1[256];
  360. static uint32_t RT2[256];
  361. static uint32_t RT3[256];
  362. #endif /* !MBEDTLS_AES_FEWER_TABLES */
  363. /*
  364. * Round constants
  365. */
  366. static uint32_t RCON[10];
  367. /*
  368. * Tables generation code
  369. */
  370. #define ROTL8(x) ( ( (x) << 8 ) & 0xFFFFFFFF ) | ( (x) >> 24 )
  371. #define XTIME(x) ( ( (x) << 1 ) ^ ( ( (x) & 0x80 ) ? 0x1B : 0x00 ) )
  372. #define MUL(x,y) ( ( (x) && (y) ) ? pow[(log[(x)]+log[(y)]) % 255] : 0 )
  373. static int aes_init_done = 0;
  374. static void aes_gen_tables( void )
  375. {
  376. int i, x, y, z;
  377. int pow[256];
  378. int log[256];
  379. /*
  380. * compute pow and log tables over GF(2^8)
  381. */
  382. for( i = 0, x = 1; i < 256; i++ )
  383. {
  384. pow[i] = x;
  385. log[x] = i;
  386. x = ( x ^ XTIME( x ) ) & 0xFF;
  387. }
  388. /*
  389. * calculate the round constants
  390. */
  391. for( i = 0, x = 1; i < 10; i++ )
  392. {
  393. RCON[i] = (uint32_t) x;
  394. x = XTIME( x ) & 0xFF;
  395. }
  396. /*
  397. * generate the forward and reverse S-boxes
  398. */
  399. FSb[0x00] = 0x63;
  400. RSb[0x63] = 0x00;
  401. for( i = 1; i < 256; i++ )
  402. {
  403. x = pow[255 - log[i]];
  404. y = x; y = ( ( y << 1 ) | ( y >> 7 ) ) & 0xFF;
  405. x ^= y; y = ( ( y << 1 ) | ( y >> 7 ) ) & 0xFF;
  406. x ^= y; y = ( ( y << 1 ) | ( y >> 7 ) ) & 0xFF;
  407. x ^= y; y = ( ( y << 1 ) | ( y >> 7 ) ) & 0xFF;
  408. x ^= y ^ 0x63;
  409. FSb[i] = (unsigned char) x;
  410. RSb[x] = (unsigned char) i;
  411. }
  412. /*
  413. * generate the forward and reverse tables
  414. */
  415. for( i = 0; i < 256; i++ )
  416. {
  417. x = FSb[i];
  418. y = XTIME( x ) & 0xFF;
  419. z = ( y ^ x ) & 0xFF;
  420. FT0[i] = ( (uint32_t) y ) ^
  421. ( (uint32_t) x << 8 ) ^
  422. ( (uint32_t) x << 16 ) ^
  423. ( (uint32_t) z << 24 );
  424. #if !defined(MBEDTLS_AES_FEWER_TABLES)
  425. FT1[i] = ROTL8( FT0[i] );
  426. FT2[i] = ROTL8( FT1[i] );
  427. FT3[i] = ROTL8( FT2[i] );
  428. #endif /* !MBEDTLS_AES_FEWER_TABLES */
  429. x = RSb[i];
  430. RT0[i] = ( (uint32_t) MUL( 0x0E, x ) ) ^
  431. ( (uint32_t) MUL( 0x09, x ) << 8 ) ^
  432. ( (uint32_t) MUL( 0x0D, x ) << 16 ) ^
  433. ( (uint32_t) MUL( 0x0B, x ) << 24 );
  434. #if !defined(MBEDTLS_AES_FEWER_TABLES)
  435. RT1[i] = ROTL8( RT0[i] );
  436. RT2[i] = ROTL8( RT1[i] );
  437. RT3[i] = ROTL8( RT2[i] );
  438. #endif /* !MBEDTLS_AES_FEWER_TABLES */
  439. }
  440. }
  441. #undef ROTL8
  442. #endif /* !MBEDTLS_AES_SETKEY_ENC_ALT */
  443. #endif /* MBEDTLS_AES_ROM_TABLES */
  444. #if defined(MBEDTLS_AES_FEWER_TABLES)
  445. #define ROTL8(x) ( (uint32_t)( ( x ) << 8 ) + (uint32_t)( ( x ) >> 24 ) )
  446. #define ROTL16(x) ( (uint32_t)( ( x ) << 16 ) + (uint32_t)( ( x ) >> 16 ) )
  447. #define ROTL24(x) ( (uint32_t)( ( x ) << 24 ) + (uint32_t)( ( x ) >> 8 ) )
  448. #define AES_RT0(idx) RT0[idx]
  449. #define AES_RT1(idx) ROTL8( RT0[idx] )
  450. #define AES_RT2(idx) ROTL16( RT0[idx] )
  451. #define AES_RT3(idx) ROTL24( RT0[idx] )
  452. #define AES_FT0(idx) FT0[idx]
  453. #define AES_FT1(idx) ROTL8( FT0[idx] )
  454. #define AES_FT2(idx) ROTL16( FT0[idx] )
  455. #define AES_FT3(idx) ROTL24( FT0[idx] )
  456. #else /* MBEDTLS_AES_FEWER_TABLES */
  457. #define AES_RT0(idx) RT0[idx]
  458. #define AES_RT1(idx) RT1[idx]
  459. #define AES_RT2(idx) RT2[idx]
  460. #define AES_RT3(idx) RT3[idx]
  461. #define AES_FT0(idx) FT0[idx]
  462. #define AES_FT1(idx) FT1[idx]
  463. #define AES_FT2(idx) FT2[idx]
  464. #define AES_FT3(idx) FT3[idx]
  465. #endif /* MBEDTLS_AES_FEWER_TABLES */
  466. static void sdp_api_init(void)
  467. {
  468. rom_sdp_init();
  469. }
  470. void mbedtls_aes_init( mbedtls_aes_context *ctx )
  471. {
  472. AES_VALIDATE( ctx != NULL );
  473. sdp_api_init();
  474. memset( ctx, 0, sizeof( mbedtls_aes_context ) );
  475. }
  476. void mbedtls_aes_free( mbedtls_aes_context *ctx )
  477. {
  478. if( ctx == NULL )
  479. return;
  480. mbedtls_platform_zeroize( ctx, sizeof( mbedtls_aes_context ) );
  481. }
  482. #if defined(MBEDTLS_CIPHER_MODE_XTS)
  483. void mbedtls_aes_xts_init( mbedtls_aes_xts_context *ctx )
  484. {
  485. AES_VALIDATE( ctx != NULL );
  486. mbedtls_aes_init( &ctx->crypt );
  487. mbedtls_aes_init( &ctx->tweak );
  488. }
  489. void mbedtls_aes_xts_free( mbedtls_aes_xts_context *ctx )
  490. {
  491. if( ctx == NULL )
  492. return;
  493. mbedtls_aes_free( &ctx->crypt );
  494. mbedtls_aes_free( &ctx->tweak );
  495. }
  496. #endif /* MBEDTLS_CIPHER_MODE_XTS */
  497. /*
  498. * AES key schedule (encryption)
  499. */
  500. #if defined(MBEDTLS_AES_SETKEY_ENC_ALT) && (defined(MBEDTLS_AES192_ALT_SW) || defined(MBEDTLS_AES256_ALT_SW))
  501. int mbedtls_aes_setkey_enc_sw( mbedtls_aes_context *ctx, const unsigned char *key,
  502. unsigned int keybits )
  503. {
  504. unsigned int i;
  505. uint32_t *RK;
  506. AES_VALIDATE_RET( ctx != NULL );
  507. AES_VALIDATE_RET( key != NULL );
  508. switch( keybits )
  509. {
  510. case 128: ctx->nr = 10; break;
  511. case 192: ctx->nr = 12; break;
  512. case 256: ctx->nr = 14; break;
  513. default : return( MBEDTLS_ERR_AES_INVALID_KEY_LENGTH );
  514. }
  515. #if !defined(MBEDTLS_AES_ROM_TABLES)
  516. if( aes_init_done == 0 )
  517. {
  518. aes_gen_tables();
  519. aes_init_done = 1;
  520. }
  521. #endif
  522. #if defined(MBEDTLS_PADLOCK_C) && defined(MBEDTLS_PADLOCK_ALIGN16)
  523. if( aes_padlock_ace == -1 )
  524. aes_padlock_ace = mbedtls_padlock_has_support( MBEDTLS_PADLOCK_ACE );
  525. if( aes_padlock_ace )
  526. ctx->rk = RK = MBEDTLS_PADLOCK_ALIGN16( ctx->buf );
  527. else
  528. #endif
  529. ctx->rk = RK = ctx->buf;
  530. #if defined(MBEDTLS_AESNI_C) && defined(MBEDTLS_HAVE_X86_64)
  531. if( mbedtls_aesni_has_support( MBEDTLS_AESNI_AES ) )
  532. return( mbedtls_aesni_setkey_enc( (unsigned char *) ctx->rk, key, keybits ) );
  533. #endif
  534. for( i = 0; i < ( keybits >> 5 ); i++ )
  535. {
  536. GET_UINT32_LE( RK[i], key, i << 2 );
  537. }
  538. switch( ctx->nr )
  539. {
  540. case 10:
  541. for( i = 0; i < 10; i++, RK += 4 )
  542. {
  543. RK[4] = RK[0] ^ RCON[i] ^
  544. ( (uint32_t) FSb[ ( RK[3] >> 8 ) & 0xFF ] ) ^
  545. ( (uint32_t) FSb[ ( RK[3] >> 16 ) & 0xFF ] << 8 ) ^
  546. ( (uint32_t) FSb[ ( RK[3] >> 24 ) & 0xFF ] << 16 ) ^
  547. ( (uint32_t) FSb[ ( RK[3] ) & 0xFF ] << 24 );
  548. RK[5] = RK[1] ^ RK[4];
  549. RK[6] = RK[2] ^ RK[5];
  550. RK[7] = RK[3] ^ RK[6];
  551. }
  552. break;
  553. case 12:
  554. for( i = 0; i < 8; i++, RK += 6 )
  555. {
  556. RK[6] = RK[0] ^ RCON[i] ^
  557. ( (uint32_t) FSb[ ( RK[5] >> 8 ) & 0xFF ] ) ^
  558. ( (uint32_t) FSb[ ( RK[5] >> 16 ) & 0xFF ] << 8 ) ^
  559. ( (uint32_t) FSb[ ( RK[5] >> 24 ) & 0xFF ] << 16 ) ^
  560. ( (uint32_t) FSb[ ( RK[5] ) & 0xFF ] << 24 );
  561. RK[7] = RK[1] ^ RK[6];
  562. RK[8] = RK[2] ^ RK[7];
  563. RK[9] = RK[3] ^ RK[8];
  564. RK[10] = RK[4] ^ RK[9];
  565. RK[11] = RK[5] ^ RK[10];
  566. }
  567. break;
  568. case 14:
  569. for( i = 0; i < 7; i++, RK += 8 )
  570. {
  571. RK[8] = RK[0] ^ RCON[i] ^
  572. ( (uint32_t) FSb[ ( RK[7] >> 8 ) & 0xFF ] ) ^
  573. ( (uint32_t) FSb[ ( RK[7] >> 16 ) & 0xFF ] << 8 ) ^
  574. ( (uint32_t) FSb[ ( RK[7] >> 24 ) & 0xFF ] << 16 ) ^
  575. ( (uint32_t) FSb[ ( RK[7] ) & 0xFF ] << 24 );
  576. RK[9] = RK[1] ^ RK[8];
  577. RK[10] = RK[2] ^ RK[9];
  578. RK[11] = RK[3] ^ RK[10];
  579. RK[12] = RK[4] ^
  580. ( (uint32_t) FSb[ ( RK[11] ) & 0xFF ] ) ^
  581. ( (uint32_t) FSb[ ( RK[11] >> 8 ) & 0xFF ] << 8 ) ^
  582. ( (uint32_t) FSb[ ( RK[11] >> 16 ) & 0xFF ] << 16 ) ^
  583. ( (uint32_t) FSb[ ( RK[11] >> 24 ) & 0xFF ] << 24 );
  584. RK[13] = RK[5] ^ RK[12];
  585. RK[14] = RK[6] ^ RK[13];
  586. RK[15] = RK[7] ^ RK[14];
  587. }
  588. break;
  589. }
  590. return( 0 );
  591. }
  592. #endif /* MBEDTLS_AES_SETKEY_ENC_ALT && (MBEDTLS_AES192_ALT_SW) || MBEDTLS_AES256_ALT_SW) */
  593. /*
  594. * AES key schedule (decryption)
  595. */
  596. #if defined(MBEDTLS_AES_SETKEY_DEC_ALT) && (defined(MBEDTLS_AES192_ALT_SW) || defined(MBEDTLS_AES256_ALT_SW))
  597. int mbedtls_aes_setkey_dec_sw( mbedtls_aes_context *ctx, const unsigned char *key,
  598. unsigned int keybits )
  599. {
  600. int i, j, ret;
  601. mbedtls_aes_context cty;
  602. uint32_t *RK;
  603. uint32_t *SK;
  604. AES_VALIDATE_RET( ctx != NULL );
  605. AES_VALIDATE_RET( key != NULL );
  606. mbedtls_aes_init( &cty );
  607. #if defined(MBEDTLS_PADLOCK_C) && defined(MBEDTLS_PADLOCK_ALIGN16)
  608. if( aes_padlock_ace == -1 )
  609. aes_padlock_ace = mbedtls_padlock_has_support( MBEDTLS_PADLOCK_ACE );
  610. if( aes_padlock_ace )
  611. ctx->rk = RK = MBEDTLS_PADLOCK_ALIGN16( ctx->buf );
  612. else
  613. #endif
  614. ctx->rk = RK = ctx->buf;
  615. /* Also checks keybits */
  616. if( ( ret = mbedtls_aes_setkey_enc( &cty, key, keybits ) ) != 0 )
  617. goto exit;
  618. ctx->nr = cty.nr;
  619. #if defined(MBEDTLS_AESNI_C) && defined(MBEDTLS_HAVE_X86_64)
  620. if( mbedtls_aesni_has_support( MBEDTLS_AESNI_AES ) )
  621. {
  622. mbedtls_aesni_inverse_key( (unsigned char *) ctx->rk,
  623. (const unsigned char *) cty.rk, ctx->nr );
  624. goto exit;
  625. }
  626. #endif
  627. SK = cty.rk + cty.nr * 4;
  628. *RK++ = *SK++;
  629. *RK++ = *SK++;
  630. *RK++ = *SK++;
  631. *RK++ = *SK++;
  632. for( i = ctx->nr - 1, SK -= 8; i > 0; i--, SK -= 8 )
  633. {
  634. for( j = 0; j < 4; j++, SK++ )
  635. {
  636. *RK++ = AES_RT0( FSb[ ( *SK ) & 0xFF ] ) ^
  637. AES_RT1( FSb[ ( *SK >> 8 ) & 0xFF ] ) ^
  638. AES_RT2( FSb[ ( *SK >> 16 ) & 0xFF ] ) ^
  639. AES_RT3( FSb[ ( *SK >> 24 ) & 0xFF ] );
  640. }
  641. }
  642. *RK++ = *SK++;
  643. *RK++ = *SK++;
  644. *RK++ = *SK++;
  645. *RK++ = *SK++;
  646. exit:
  647. mbedtls_aes_free( &cty );
  648. return( ret );
  649. }
  650. #endif /* MBEDTLS_AES_SETKEY_DEC_ALT && (MBEDTLS_AES192_ALT_SW) || MBEDTLS_AES256_ALT_SW) */
  651. /*
  652. * AES key schedule (encryption)
  653. */
  654. #if !defined(MBEDTLS_AES_SETKEY_ENC_ALT)
  655. int mbedtls_aes_setkey_enc( mbedtls_aes_context *ctx, const unsigned char *key,
  656. unsigned int keybits )
  657. {
  658. unsigned int i;
  659. uint32_t *RK;
  660. AES_VALIDATE_RET( ctx != NULL );
  661. AES_VALIDATE_RET( key != NULL );
  662. switch( keybits )
  663. {
  664. case 128: ctx->nr = 10; break;
  665. case 192: ctx->nr = 12; break;
  666. case 256: ctx->nr = 14; break;
  667. default : return( MBEDTLS_ERR_AES_INVALID_KEY_LENGTH );
  668. }
  669. #if !defined(MBEDTLS_AES_ROM_TABLES)
  670. if( aes_init_done == 0 )
  671. {
  672. aes_gen_tables();
  673. aes_init_done = 1;
  674. }
  675. #endif
  676. #if defined(MBEDTLS_PADLOCK_C) && defined(MBEDTLS_PADLOCK_ALIGN16)
  677. if( aes_padlock_ace == -1 )
  678. aes_padlock_ace = mbedtls_padlock_has_support( MBEDTLS_PADLOCK_ACE );
  679. if( aes_padlock_ace )
  680. ctx->rk = RK = MBEDTLS_PADLOCK_ALIGN16( ctx->buf );
  681. else
  682. #endif
  683. ctx->rk = RK = ctx->buf;
  684. #if defined(MBEDTLS_AESNI_C) && defined(MBEDTLS_HAVE_X86_64)
  685. if( mbedtls_aesni_has_support( MBEDTLS_AESNI_AES ) )
  686. return( mbedtls_aesni_setkey_enc( (unsigned char *) ctx->rk, key, keybits ) );
  687. #endif
  688. for( i = 0; i < ( keybits >> 5 ); i++ )
  689. {
  690. GET_UINT32_LE( RK[i], key, i << 2 );
  691. }
  692. switch( ctx->nr )
  693. {
  694. case 10:
  695. for( i = 0; i < 10; i++, RK += 4 )
  696. {
  697. RK[4] = RK[0] ^ RCON[i] ^
  698. ( (uint32_t) FSb[ ( RK[3] >> 8 ) & 0xFF ] ) ^
  699. ( (uint32_t) FSb[ ( RK[3] >> 16 ) & 0xFF ] << 8 ) ^
  700. ( (uint32_t) FSb[ ( RK[3] >> 24 ) & 0xFF ] << 16 ) ^
  701. ( (uint32_t) FSb[ ( RK[3] ) & 0xFF ] << 24 );
  702. RK[5] = RK[1] ^ RK[4];
  703. RK[6] = RK[2] ^ RK[5];
  704. RK[7] = RK[3] ^ RK[6];
  705. }
  706. break;
  707. case 12:
  708. for( i = 0; i < 8; i++, RK += 6 )
  709. {
  710. RK[6] = RK[0] ^ RCON[i] ^
  711. ( (uint32_t) FSb[ ( RK[5] >> 8 ) & 0xFF ] ) ^
  712. ( (uint32_t) FSb[ ( RK[5] >> 16 ) & 0xFF ] << 8 ) ^
  713. ( (uint32_t) FSb[ ( RK[5] >> 24 ) & 0xFF ] << 16 ) ^
  714. ( (uint32_t) FSb[ ( RK[5] ) & 0xFF ] << 24 );
  715. RK[7] = RK[1] ^ RK[6];
  716. RK[8] = RK[2] ^ RK[7];
  717. RK[9] = RK[3] ^ RK[8];
  718. RK[10] = RK[4] ^ RK[9];
  719. RK[11] = RK[5] ^ RK[10];
  720. }
  721. break;
  722. case 14:
  723. for( i = 0; i < 7; i++, RK += 8 )
  724. {
  725. RK[8] = RK[0] ^ RCON[i] ^
  726. ( (uint32_t) FSb[ ( RK[7] >> 8 ) & 0xFF ] ) ^
  727. ( (uint32_t) FSb[ ( RK[7] >> 16 ) & 0xFF ] << 8 ) ^
  728. ( (uint32_t) FSb[ ( RK[7] >> 24 ) & 0xFF ] << 16 ) ^
  729. ( (uint32_t) FSb[ ( RK[7] ) & 0xFF ] << 24 );
  730. RK[9] = RK[1] ^ RK[8];
  731. RK[10] = RK[2] ^ RK[9];
  732. RK[11] = RK[3] ^ RK[10];
  733. RK[12] = RK[4] ^
  734. ( (uint32_t) FSb[ ( RK[11] ) & 0xFF ] ) ^
  735. ( (uint32_t) FSb[ ( RK[11] >> 8 ) & 0xFF ] << 8 ) ^
  736. ( (uint32_t) FSb[ ( RK[11] >> 16 ) & 0xFF ] << 16 ) ^
  737. ( (uint32_t) FSb[ ( RK[11] >> 24 ) & 0xFF ] << 24 );
  738. RK[13] = RK[5] ^ RK[12];
  739. RK[14] = RK[6] ^ RK[13];
  740. RK[15] = RK[7] ^ RK[14];
  741. }
  742. break;
  743. }
  744. return( 0 );
  745. }
  746. #endif /* !MBEDTLS_AES_SETKEY_ENC_ALT */
  747. /*
  748. * AES key schedule (decryption)
  749. */
  750. #if !defined(MBEDTLS_AES_SETKEY_DEC_ALT)
  751. int mbedtls_aes_setkey_dec( mbedtls_aes_context *ctx, const unsigned char *key,
  752. unsigned int keybits )
  753. {
  754. int i, j, ret;
  755. mbedtls_aes_context cty;
  756. uint32_t *RK;
  757. uint32_t *SK;
  758. AES_VALIDATE_RET( ctx != NULL );
  759. AES_VALIDATE_RET( key != NULL );
  760. mbedtls_aes_init( &cty );
  761. #if defined(MBEDTLS_PADLOCK_C) && defined(MBEDTLS_PADLOCK_ALIGN16)
  762. if( aes_padlock_ace == -1 )
  763. aes_padlock_ace = mbedtls_padlock_has_support( MBEDTLS_PADLOCK_ACE );
  764. if( aes_padlock_ace )
  765. ctx->rk = RK = MBEDTLS_PADLOCK_ALIGN16( ctx->buf );
  766. else
  767. #endif
  768. ctx->rk = RK = ctx->buf;
  769. /* Also checks keybits */
  770. if( ( ret = mbedtls_aes_setkey_enc( &cty, key, keybits ) ) != 0 )
  771. goto exit;
  772. ctx->nr = cty.nr;
  773. #if defined(MBEDTLS_AESNI_C) && defined(MBEDTLS_HAVE_X86_64)
  774. if( mbedtls_aesni_has_support( MBEDTLS_AESNI_AES ) )
  775. {
  776. mbedtls_aesni_inverse_key( (unsigned char *) ctx->rk,
  777. (const unsigned char *) cty.rk, ctx->nr );
  778. goto exit;
  779. }
  780. #endif
  781. SK = cty.rk + cty.nr * 4;
  782. *RK++ = *SK++;
  783. *RK++ = *SK++;
  784. *RK++ = *SK++;
  785. *RK++ = *SK++;
  786. for( i = ctx->nr - 1, SK -= 8; i > 0; i--, SK -= 8 )
  787. {
  788. for( j = 0; j < 4; j++, SK++ )
  789. {
  790. *RK++ = AES_RT0( FSb[ ( *SK ) & 0xFF ] ) ^
  791. AES_RT1( FSb[ ( *SK >> 8 ) & 0xFF ] ) ^
  792. AES_RT2( FSb[ ( *SK >> 16 ) & 0xFF ] ) ^
  793. AES_RT3( FSb[ ( *SK >> 24 ) & 0xFF ] );
  794. }
  795. }
  796. *RK++ = *SK++;
  797. *RK++ = *SK++;
  798. *RK++ = *SK++;
  799. *RK++ = *SK++;
  800. exit:
  801. mbedtls_aes_free( &cty );
  802. return( ret );
  803. }
  804. #if defined(MBEDTLS_CIPHER_MODE_XTS)
  805. static int mbedtls_aes_xts_decode_keys( const unsigned char *key,
  806. unsigned int keybits,
  807. const unsigned char **key1,
  808. unsigned int *key1bits,
  809. const unsigned char **key2,
  810. unsigned int *key2bits )
  811. {
  812. const unsigned int half_keybits = keybits / 2;
  813. const unsigned int half_keybytes = half_keybits / 8;
  814. switch( keybits )
  815. {
  816. case 256: break;
  817. case 512: break;
  818. default : return( MBEDTLS_ERR_AES_INVALID_KEY_LENGTH );
  819. }
  820. *key1bits = half_keybits;
  821. *key2bits = half_keybits;
  822. *key1 = &key[0];
  823. *key2 = &key[half_keybytes];
  824. return 0;
  825. }
  826. int mbedtls_aes_xts_setkey_enc( mbedtls_aes_xts_context *ctx,
  827. const unsigned char *key,
  828. unsigned int keybits)
  829. {
  830. int ret = MBEDTLS_ERR_ERROR_CORRUPTION_DETECTED;
  831. const unsigned char *key1, *key2;
  832. unsigned int key1bits, key2bits;
  833. AES_VALIDATE_RET( ctx != NULL );
  834. AES_VALIDATE_RET( key != NULL );
  835. ret = mbedtls_aes_xts_decode_keys( key, keybits, &key1, &key1bits,
  836. &key2, &key2bits );
  837. if( ret != 0 )
  838. return( ret );
  839. /* Set the tweak key. Always set tweak key for the encryption mode. */
  840. ret = mbedtls_aes_setkey_enc( &ctx->tweak, key2, key2bits );
  841. if( ret != 0 )
  842. return( ret );
  843. /* Set crypt key for encryption. */
  844. return mbedtls_aes_setkey_enc( &ctx->crypt, key1, key1bits );
  845. }
  846. int mbedtls_aes_xts_setkey_dec( mbedtls_aes_xts_context *ctx,
  847. const unsigned char *key,
  848. unsigned int keybits)
  849. {
  850. int ret = MBEDTLS_ERR_ERROR_CORRUPTION_DETECTED;
  851. const unsigned char *key1, *key2;
  852. unsigned int key1bits, key2bits;
  853. AES_VALIDATE_RET( ctx != NULL );
  854. AES_VALIDATE_RET( key != NULL );
  855. ret = mbedtls_aes_xts_decode_keys( key, keybits, &key1, &key1bits,
  856. &key2, &key2bits );
  857. if( ret != 0 )
  858. return( ret );
  859. /* Set the tweak key. Always set tweak key for encryption. */
  860. ret = mbedtls_aes_setkey_enc( &ctx->tweak, key2, key2bits );
  861. if( ret != 0 )
  862. return( ret );
  863. /* Set crypt key for decryption. */
  864. return mbedtls_aes_setkey_dec( &ctx->crypt, key1, key1bits );
  865. }
  866. #endif /* MBEDTLS_CIPHER_MODE_XTS */
  867. #endif /* !MBEDTLS_AES_SETKEY_DEC_ALT */
  868. #define AES_FROUND(X0,X1,X2,X3,Y0,Y1,Y2,Y3) \
  869. do \
  870. { \
  871. (X0) = *RK++ ^ AES_FT0( ( (Y0) ) & 0xFF ) ^ \
  872. AES_FT1( ( (Y1) >> 8 ) & 0xFF ) ^ \
  873. AES_FT2( ( (Y2) >> 16 ) & 0xFF ) ^ \
  874. AES_FT3( ( (Y3) >> 24 ) & 0xFF ); \
  875. \
  876. (X1) = *RK++ ^ AES_FT0( ( (Y1) ) & 0xFF ) ^ \
  877. AES_FT1( ( (Y2) >> 8 ) & 0xFF ) ^ \
  878. AES_FT2( ( (Y3) >> 16 ) & 0xFF ) ^ \
  879. AES_FT3( ( (Y0) >> 24 ) & 0xFF ); \
  880. \
  881. (X2) = *RK++ ^ AES_FT0( ( (Y2) ) & 0xFF ) ^ \
  882. AES_FT1( ( (Y3) >> 8 ) & 0xFF ) ^ \
  883. AES_FT2( ( (Y0) >> 16 ) & 0xFF ) ^ \
  884. AES_FT3( ( (Y1) >> 24 ) & 0xFF ); \
  885. \
  886. (X3) = *RK++ ^ AES_FT0( ( (Y3) ) & 0xFF ) ^ \
  887. AES_FT1( ( (Y0) >> 8 ) & 0xFF ) ^ \
  888. AES_FT2( ( (Y1) >> 16 ) & 0xFF ) ^ \
  889. AES_FT3( ( (Y2) >> 24 ) & 0xFF ); \
  890. } while( 0 )
  891. #define AES_RROUND(X0,X1,X2,X3,Y0,Y1,Y2,Y3) \
  892. do \
  893. { \
  894. (X0) = *RK++ ^ AES_RT0( ( (Y0) ) & 0xFF ) ^ \
  895. AES_RT1( ( (Y3) >> 8 ) & 0xFF ) ^ \
  896. AES_RT2( ( (Y2) >> 16 ) & 0xFF ) ^ \
  897. AES_RT3( ( (Y1) >> 24 ) & 0xFF ); \
  898. \
  899. (X1) = *RK++ ^ AES_RT0( ( (Y1) ) & 0xFF ) ^ \
  900. AES_RT1( ( (Y0) >> 8 ) & 0xFF ) ^ \
  901. AES_RT2( ( (Y3) >> 16 ) & 0xFF ) ^ \
  902. AES_RT3( ( (Y2) >> 24 ) & 0xFF ); \
  903. \
  904. (X2) = *RK++ ^ AES_RT0( ( (Y2) ) & 0xFF ) ^ \
  905. AES_RT1( ( (Y1) >> 8 ) & 0xFF ) ^ \
  906. AES_RT2( ( (Y0) >> 16 ) & 0xFF ) ^ \
  907. AES_RT3( ( (Y3) >> 24 ) & 0xFF ); \
  908. \
  909. (X3) = *RK++ ^ AES_RT0( ( (Y3) ) & 0xFF ) ^ \
  910. AES_RT1( ( (Y2) >> 8 ) & 0xFF ) ^ \
  911. AES_RT2( ( (Y1) >> 16 ) & 0xFF ) ^ \
  912. AES_RT3( ( (Y0) >> 24 ) & 0xFF ); \
  913. } while( 0 )
  914. /*
  915. * AES-ECB block encryption
  916. */
  917. #if !defined(MBEDTLS_AES_ENCRYPT_ALT)
  918. int mbedtls_internal_aes_encrypt( mbedtls_aes_context *ctx,
  919. const unsigned char input[16],
  920. unsigned char output[16] )
  921. {
  922. int i;
  923. uint32_t *RK = ctx->rk;
  924. struct
  925. {
  926. uint32_t X[4];
  927. uint32_t Y[4];
  928. } t;
  929. GET_UINT32_LE( t.X[0], input, 0 ); t.X[0] ^= *RK++;
  930. GET_UINT32_LE( t.X[1], input, 4 ); t.X[1] ^= *RK++;
  931. GET_UINT32_LE( t.X[2], input, 8 ); t.X[2] ^= *RK++;
  932. GET_UINT32_LE( t.X[3], input, 12 ); t.X[3] ^= *RK++;
  933. for( i = ( ctx->nr >> 1 ) - 1; i > 0; i-- )
  934. {
  935. AES_FROUND( t.Y[0], t.Y[1], t.Y[2], t.Y[3], t.X[0], t.X[1], t.X[2], t.X[3] );
  936. AES_FROUND( t.X[0], t.X[1], t.X[2], t.X[3], t.Y[0], t.Y[1], t.Y[2], t.Y[3] );
  937. }
  938. AES_FROUND( t.Y[0], t.Y[1], t.Y[2], t.Y[3], t.X[0], t.X[1], t.X[2], t.X[3] );
  939. t.X[0] = *RK++ ^ \
  940. ( (uint32_t) FSb[ ( t.Y[0] ) & 0xFF ] ) ^
  941. ( (uint32_t) FSb[ ( t.Y[1] >> 8 ) & 0xFF ] << 8 ) ^
  942. ( (uint32_t) FSb[ ( t.Y[2] >> 16 ) & 0xFF ] << 16 ) ^
  943. ( (uint32_t) FSb[ ( t.Y[3] >> 24 ) & 0xFF ] << 24 );
  944. t.X[1] = *RK++ ^ \
  945. ( (uint32_t) FSb[ ( t.Y[1] ) & 0xFF ] ) ^
  946. ( (uint32_t) FSb[ ( t.Y[2] >> 8 ) & 0xFF ] << 8 ) ^
  947. ( (uint32_t) FSb[ ( t.Y[3] >> 16 ) & 0xFF ] << 16 ) ^
  948. ( (uint32_t) FSb[ ( t.Y[0] >> 24 ) & 0xFF ] << 24 );
  949. t.X[2] = *RK++ ^ \
  950. ( (uint32_t) FSb[ ( t.Y[2] ) & 0xFF ] ) ^
  951. ( (uint32_t) FSb[ ( t.Y[3] >> 8 ) & 0xFF ] << 8 ) ^
  952. ( (uint32_t) FSb[ ( t.Y[0] >> 16 ) & 0xFF ] << 16 ) ^
  953. ( (uint32_t) FSb[ ( t.Y[1] >> 24 ) & 0xFF ] << 24 );
  954. t.X[3] = *RK++ ^ \
  955. ( (uint32_t) FSb[ ( t.Y[3] ) & 0xFF ] ) ^
  956. ( (uint32_t) FSb[ ( t.Y[0] >> 8 ) & 0xFF ] << 8 ) ^
  957. ( (uint32_t) FSb[ ( t.Y[1] >> 16 ) & 0xFF ] << 16 ) ^
  958. ( (uint32_t) FSb[ ( t.Y[2] >> 24 ) & 0xFF ] << 24 );
  959. PUT_UINT32_LE( t.X[0], output, 0 );
  960. PUT_UINT32_LE( t.X[1], output, 4 );
  961. PUT_UINT32_LE( t.X[2], output, 8 );
  962. PUT_UINT32_LE( t.X[3], output, 12 );
  963. mbedtls_platform_zeroize( &t, sizeof( t ) );
  964. return( 0 );
  965. }
  966. #endif /* !MBEDTLS_AES_ENCRYPT_ALT */
  967. #if !defined(MBEDTLS_DEPRECATED_REMOVED)
  968. void mbedtls_aes_encrypt( mbedtls_aes_context *ctx,
  969. const unsigned char input[16],
  970. unsigned char output[16] )
  971. {
  972. mbedtls_internal_aes_encrypt( ctx, input, output );
  973. }
  974. #endif /* !MBEDTLS_DEPRECATED_REMOVED */
  975. /*
  976. * AES-ECB block encryption
  977. */
  978. #if defined(MBEDTLS_AES_ENCRYPT_ALT) && (defined(MBEDTLS_AES192_ALT_SW) || defined(MBEDTLS_AES256_ALT_SW))
  979. int mbedtls_internal_aes_encrypt_sw( mbedtls_aes_context *ctx,
  980. const unsigned char input[16],
  981. unsigned char output[16] )
  982. {
  983. int i;
  984. uint32_t *RK = ctx->rk;
  985. struct
  986. {
  987. uint32_t X[4];
  988. uint32_t Y[4];
  989. } t;
  990. GET_UINT32_LE( t.X[0], input, 0 ); t.X[0] ^= *RK++;
  991. GET_UINT32_LE( t.X[1], input, 4 ); t.X[1] ^= *RK++;
  992. GET_UINT32_LE( t.X[2], input, 8 ); t.X[2] ^= *RK++;
  993. GET_UINT32_LE( t.X[3], input, 12 ); t.X[3] ^= *RK++;
  994. for( i = ( ctx->nr >> 1 ) - 1; i > 0; i-- )
  995. {
  996. AES_FROUND( t.Y[0], t.Y[1], t.Y[2], t.Y[3], t.X[0], t.X[1], t.X[2], t.X[3] );
  997. AES_FROUND( t.X[0], t.X[1], t.X[2], t.X[3], t.Y[0], t.Y[1], t.Y[2], t.Y[3] );
  998. }
  999. AES_FROUND( t.Y[0], t.Y[1], t.Y[2], t.Y[3], t.X[0], t.X[1], t.X[2], t.X[3] );
  1000. t.X[0] = *RK++ ^ \
  1001. ( (uint32_t) FSb[ ( t.Y[0] ) & 0xFF ] ) ^
  1002. ( (uint32_t) FSb[ ( t.Y[1] >> 8 ) & 0xFF ] << 8 ) ^
  1003. ( (uint32_t) FSb[ ( t.Y[2] >> 16 ) & 0xFF ] << 16 ) ^
  1004. ( (uint32_t) FSb[ ( t.Y[3] >> 24 ) & 0xFF ] << 24 );
  1005. t.X[1] = *RK++ ^ \
  1006. ( (uint32_t) FSb[ ( t.Y[1] ) & 0xFF ] ) ^
  1007. ( (uint32_t) FSb[ ( t.Y[2] >> 8 ) & 0xFF ] << 8 ) ^
  1008. ( (uint32_t) FSb[ ( t.Y[3] >> 16 ) & 0xFF ] << 16 ) ^
  1009. ( (uint32_t) FSb[ ( t.Y[0] >> 24 ) & 0xFF ] << 24 );
  1010. t.X[2] = *RK++ ^ \
  1011. ( (uint32_t) FSb[ ( t.Y[2] ) & 0xFF ] ) ^
  1012. ( (uint32_t) FSb[ ( t.Y[3] >> 8 ) & 0xFF ] << 8 ) ^
  1013. ( (uint32_t) FSb[ ( t.Y[0] >> 16 ) & 0xFF ] << 16 ) ^
  1014. ( (uint32_t) FSb[ ( t.Y[1] >> 24 ) & 0xFF ] << 24 );
  1015. t.X[3] = *RK++ ^ \
  1016. ( (uint32_t) FSb[ ( t.Y[3] ) & 0xFF ] ) ^
  1017. ( (uint32_t) FSb[ ( t.Y[0] >> 8 ) & 0xFF ] << 8 ) ^
  1018. ( (uint32_t) FSb[ ( t.Y[1] >> 16 ) & 0xFF ] << 16 ) ^
  1019. ( (uint32_t) FSb[ ( t.Y[2] >> 24 ) & 0xFF ] << 24 );
  1020. PUT_UINT32_LE( t.X[0], output, 0 );
  1021. PUT_UINT32_LE( t.X[1], output, 4 );
  1022. PUT_UINT32_LE( t.X[2], output, 8 );
  1023. PUT_UINT32_LE( t.X[3], output, 12 );
  1024. mbedtls_platform_zeroize( &t, sizeof( t ) );
  1025. return( 0 );
  1026. }
  1027. #endif /* MBEDTLS_AES_ENCRYPT_ALT && (MBEDTLS_AES192_ALT_SW || MBEDTLS_AES256_ALT_SW) */
  1028. /*
  1029. * AES-ECB block decryption
  1030. */
  1031. #if !defined(MBEDTLS_AES_DECRYPT_ALT)
  1032. int mbedtls_internal_aes_decrypt( mbedtls_aes_context *ctx,
  1033. const unsigned char input[16],
  1034. unsigned char output[16] )
  1035. {
  1036. int i;
  1037. uint32_t *RK = ctx->rk;
  1038. struct
  1039. {
  1040. uint32_t X[4];
  1041. uint32_t Y[4];
  1042. } t;
  1043. GET_UINT32_LE( t.X[0], input, 0 ); t.X[0] ^= *RK++;
  1044. GET_UINT32_LE( t.X[1], input, 4 ); t.X[1] ^= *RK++;
  1045. GET_UINT32_LE( t.X[2], input, 8 ); t.X[2] ^= *RK++;
  1046. GET_UINT32_LE( t.X[3], input, 12 ); t.X[3] ^= *RK++;
  1047. for( i = ( ctx->nr >> 1 ) - 1; i > 0; i-- )
  1048. {
  1049. AES_RROUND( t.Y[0], t.Y[1], t.Y[2], t.Y[3], t.X[0], t.X[1], t.X[2], t.X[3] );
  1050. AES_RROUND( t.X[0], t.X[1], t.X[2], t.X[3], t.Y[0], t.Y[1], t.Y[2], t.Y[3] );
  1051. }
  1052. AES_RROUND( t.Y[0], t.Y[1], t.Y[2], t.Y[3], t.X[0], t.X[1], t.X[2], t.X[3] );
  1053. t.X[0] = *RK++ ^ \
  1054. ( (uint32_t) RSb[ ( t.Y[0] ) & 0xFF ] ) ^
  1055. ( (uint32_t) RSb[ ( t.Y[3] >> 8 ) & 0xFF ] << 8 ) ^
  1056. ( (uint32_t) RSb[ ( t.Y[2] >> 16 ) & 0xFF ] << 16 ) ^
  1057. ( (uint32_t) RSb[ ( t.Y[1] >> 24 ) & 0xFF ] << 24 );
  1058. t.X[1] = *RK++ ^ \
  1059. ( (uint32_t) RSb[ ( t.Y[1] ) & 0xFF ] ) ^
  1060. ( (uint32_t) RSb[ ( t.Y[0] >> 8 ) & 0xFF ] << 8 ) ^
  1061. ( (uint32_t) RSb[ ( t.Y[3] >> 16 ) & 0xFF ] << 16 ) ^
  1062. ( (uint32_t) RSb[ ( t.Y[2] >> 24 ) & 0xFF ] << 24 );
  1063. t.X[2] = *RK++ ^ \
  1064. ( (uint32_t) RSb[ ( t.Y[2] ) & 0xFF ] ) ^
  1065. ( (uint32_t) RSb[ ( t.Y[1] >> 8 ) & 0xFF ] << 8 ) ^
  1066. ( (uint32_t) RSb[ ( t.Y[0] >> 16 ) & 0xFF ] << 16 ) ^
  1067. ( (uint32_t) RSb[ ( t.Y[3] >> 24 ) & 0xFF ] << 24 );
  1068. t.X[3] = *RK++ ^ \
  1069. ( (uint32_t) RSb[ ( t.Y[3] ) & 0xFF ] ) ^
  1070. ( (uint32_t) RSb[ ( t.Y[2] >> 8 ) & 0xFF ] << 8 ) ^
  1071. ( (uint32_t) RSb[ ( t.Y[1] >> 16 ) & 0xFF ] << 16 ) ^
  1072. ( (uint32_t) RSb[ ( t.Y[0] >> 24 ) & 0xFF ] << 24 );
  1073. PUT_UINT32_LE( t.X[0], output, 0 );
  1074. PUT_UINT32_LE( t.X[1], output, 4 );
  1075. PUT_UINT32_LE( t.X[2], output, 8 );
  1076. PUT_UINT32_LE( t.X[3], output, 12 );
  1077. mbedtls_platform_zeroize( &t, sizeof( t ) );
  1078. return( 0 );
  1079. }
  1080. #endif /* !MBEDTLS_AES_DECRYPT_ALT */
  1081. #if !defined(MBEDTLS_DEPRECATED_REMOVED)
  1082. void mbedtls_aes_decrypt( mbedtls_aes_context *ctx,
  1083. const unsigned char input[16],
  1084. unsigned char output[16] )
  1085. {
  1086. mbedtls_internal_aes_decrypt( ctx, input, output );
  1087. }
  1088. #endif /* !MBEDTLS_DEPRECATED_REMOVED */
  1089. /*
  1090. * AES-ECB block decryption
  1091. */
  1092. #if defined(MBEDTLS_AES_DECRYPT_ALT) && (defined(MBEDTLS_AES192_ALT_SW) || defined(MBEDTLS_AES256_ALT_SW))
  1093. int mbedtls_internal_aes_decrypt_sw( mbedtls_aes_context *ctx,
  1094. const unsigned char input[16],
  1095. unsigned char output[16] )
  1096. {
  1097. int i;
  1098. uint32_t *RK = ctx->rk;
  1099. struct
  1100. {
  1101. uint32_t X[4];
  1102. uint32_t Y[4];
  1103. } t;
  1104. GET_UINT32_LE( t.X[0], input, 0 ); t.X[0] ^= *RK++;
  1105. GET_UINT32_LE( t.X[1], input, 4 ); t.X[1] ^= *RK++;
  1106. GET_UINT32_LE( t.X[2], input, 8 ); t.X[2] ^= *RK++;
  1107. GET_UINT32_LE( t.X[3], input, 12 ); t.X[3] ^= *RK++;
  1108. for( i = ( ctx->nr >> 1 ) - 1; i > 0; i-- )
  1109. {
  1110. AES_RROUND( t.Y[0], t.Y[1], t.Y[2], t.Y[3], t.X[0], t.X[1], t.X[2], t.X[3] );
  1111. AES_RROUND( t.X[0], t.X[1], t.X[2], t.X[3], t.Y[0], t.Y[1], t.Y[2], t.Y[3] );
  1112. }
  1113. AES_RROUND( t.Y[0], t.Y[1], t.Y[2], t.Y[3], t.X[0], t.X[1], t.X[2], t.X[3] );
  1114. t.X[0] = *RK++ ^ \
  1115. ( (uint32_t) RSb[ ( t.Y[0] ) & 0xFF ] ) ^
  1116. ( (uint32_t) RSb[ ( t.Y[3] >> 8 ) & 0xFF ] << 8 ) ^
  1117. ( (uint32_t) RSb[ ( t.Y[2] >> 16 ) & 0xFF ] << 16 ) ^
  1118. ( (uint32_t) RSb[ ( t.Y[1] >> 24 ) & 0xFF ] << 24 );
  1119. t.X[1] = *RK++ ^ \
  1120. ( (uint32_t) RSb[ ( t.Y[1] ) & 0xFF ] ) ^
  1121. ( (uint32_t) RSb[ ( t.Y[0] >> 8 ) & 0xFF ] << 8 ) ^
  1122. ( (uint32_t) RSb[ ( t.Y[3] >> 16 ) & 0xFF ] << 16 ) ^
  1123. ( (uint32_t) RSb[ ( t.Y[2] >> 24 ) & 0xFF ] << 24 );
  1124. t.X[2] = *RK++ ^ \
  1125. ( (uint32_t) RSb[ ( t.Y[2] ) & 0xFF ] ) ^
  1126. ( (uint32_t) RSb[ ( t.Y[1] >> 8 ) & 0xFF ] << 8 ) ^
  1127. ( (uint32_t) RSb[ ( t.Y[0] >> 16 ) & 0xFF ] << 16 ) ^
  1128. ( (uint32_t) RSb[ ( t.Y[3] >> 24 ) & 0xFF ] << 24 );
  1129. t.X[3] = *RK++ ^ \
  1130. ( (uint32_t) RSb[ ( t.Y[3] ) & 0xFF ] ) ^
  1131. ( (uint32_t) RSb[ ( t.Y[2] >> 8 ) & 0xFF ] << 8 ) ^
  1132. ( (uint32_t) RSb[ ( t.Y[1] >> 16 ) & 0xFF ] << 16 ) ^
  1133. ( (uint32_t) RSb[ ( t.Y[0] >> 24 ) & 0xFF ] << 24 );
  1134. PUT_UINT32_LE( t.X[0], output, 0 );
  1135. PUT_UINT32_LE( t.X[1], output, 4 );
  1136. PUT_UINT32_LE( t.X[2], output, 8 );
  1137. PUT_UINT32_LE( t.X[3], output, 12 );
  1138. mbedtls_platform_zeroize( &t, sizeof( t ) );
  1139. return( 0 );
  1140. }
  1141. #endif /* MBEDTLS_AES_DECRYPT_ALT && (MBEDTLS_AES192_ALT_SW || MBEDTLS_AES256_ALT_SW) */
  1142. /*
  1143. * AES-ECB block encryption/decryption
  1144. */
  1145. int mbedtls_aes_crypt_ecb( mbedtls_aes_context *ctx,
  1146. int mode,
  1147. const unsigned char input[16],
  1148. unsigned char output[16] )
  1149. {
  1150. AES_VALIDATE_RET( ctx != NULL );
  1151. AES_VALIDATE_RET( input != NULL );
  1152. AES_VALIDATE_RET( output != NULL );
  1153. AES_VALIDATE_RET( mode == MBEDTLS_AES_ENCRYPT ||
  1154. mode == MBEDTLS_AES_DECRYPT );
  1155. #if defined(MBEDTLS_AESNI_C) && defined(MBEDTLS_HAVE_X86_64)
  1156. if( mbedtls_aesni_has_support( MBEDTLS_AESNI_AES ) )
  1157. return( mbedtls_aesni_crypt_ecb( ctx, mode, input, output ) );
  1158. #endif
  1159. #if defined(MBEDTLS_PADLOCK_C) && defined(MBEDTLS_HAVE_X86)
  1160. if( aes_padlock_ace )
  1161. {
  1162. if( mbedtls_padlock_xcryptecb( ctx, mode, input, output ) == 0 )
  1163. return( 0 );
  1164. // If padlock data misaligned, we just fall back to
  1165. // unaccelerated mode
  1166. //
  1167. }
  1168. #endif
  1169. if( mode == MBEDTLS_AES_ENCRYPT )
  1170. return( mbedtls_internal_aes_encrypt( ctx, input, output ) );
  1171. else
  1172. return( mbedtls_internal_aes_decrypt( ctx, input, output ) );
  1173. }
  1174. #if defined(MBEDTLS_CIPHER_MODE_CBC)
  1175. /*
  1176. * AES-CBC buffer encryption/decryption
  1177. */
  1178. #if !defined(MBEDTLS_AES_CRYPT_CBC_ALT)
  1179. int mbedtls_aes_crypt_cbc( mbedtls_aes_context *ctx,
  1180. int mode,
  1181. size_t length,
  1182. unsigned char iv[16],
  1183. const unsigned char *input,
  1184. unsigned char *output )
  1185. {
  1186. int i;
  1187. unsigned char temp[16];
  1188. AES_VALIDATE_RET( ctx != NULL );
  1189. AES_VALIDATE_RET( mode == MBEDTLS_AES_ENCRYPT ||
  1190. mode == MBEDTLS_AES_DECRYPT );
  1191. AES_VALIDATE_RET( iv != NULL );
  1192. AES_VALIDATE_RET( input != NULL );
  1193. AES_VALIDATE_RET( output != NULL );
  1194. if( length % 16 )
  1195. return( MBEDTLS_ERR_AES_INVALID_INPUT_LENGTH );
  1196. #if defined(MBEDTLS_PADLOCK_C) && defined(MBEDTLS_HAVE_X86)
  1197. if( aes_padlock_ace )
  1198. {
  1199. if( mbedtls_padlock_xcryptcbc( ctx, mode, length, iv, input, output ) == 0 )
  1200. return( 0 );
  1201. // If padlock data misaligned, we just fall back to
  1202. // unaccelerated mode
  1203. //
  1204. }
  1205. #endif
  1206. if( mode == MBEDTLS_AES_DECRYPT )
  1207. {
  1208. while( length > 0 )
  1209. {
  1210. memcpy( temp, input, 16 );
  1211. mbedtls_aes_crypt_ecb( ctx, mode, input, output );
  1212. for( i = 0; i < 16; i++ )
  1213. output[i] = (unsigned char)( output[i] ^ iv[i] );
  1214. memcpy( iv, temp, 16 );
  1215. input += 16;
  1216. output += 16;
  1217. length -= 16;
  1218. }
  1219. }
  1220. else
  1221. {
  1222. while( length > 0 )
  1223. {
  1224. for( i = 0; i < 16; i++ )
  1225. output[i] = (unsigned char)( input[i] ^ iv[i] );
  1226. mbedtls_aes_crypt_ecb( ctx, mode, output, output );
  1227. memcpy( iv, output, 16 );
  1228. input += 16;
  1229. output += 16;
  1230. length -= 16;
  1231. }
  1232. }
  1233. return( 0 );
  1234. }
  1235. #endif /* !MBEDTLS_AES_CRYPT_CBC_ALT */
  1236. #endif /* !MBEDTLS_CIPHER_MODE_CBC */
  1237. #if defined(MBEDTLS_CIPHER_MODE_XTS)
  1238. /* Endianess with 64 bits values */
  1239. #ifndef GET_UINT64_LE
  1240. #define GET_UINT64_LE(n,b,i) \
  1241. { \
  1242. (n) = ( (uint64_t) (b)[(i) + 7] << 56 ) \
  1243. | ( (uint64_t) (b)[(i) + 6] << 48 ) \
  1244. | ( (uint64_t) (b)[(i) + 5] << 40 ) \
  1245. | ( (uint64_t) (b)[(i) + 4] << 32 ) \
  1246. | ( (uint64_t) (b)[(i) + 3] << 24 ) \
  1247. | ( (uint64_t) (b)[(i) + 2] << 16 ) \
  1248. | ( (uint64_t) (b)[(i) + 1] << 8 ) \
  1249. | ( (uint64_t) (b)[(i) ] ); \
  1250. }
  1251. #endif
  1252. #ifndef PUT_UINT64_LE
  1253. #define PUT_UINT64_LE(n,b,i) \
  1254. { \
  1255. (b)[(i) + 7] = (unsigned char) ( (n) >> 56 ); \
  1256. (b)[(i) + 6] = (unsigned char) ( (n) >> 48 ); \
  1257. (b)[(i) + 5] = (unsigned char) ( (n) >> 40 ); \
  1258. (b)[(i) + 4] = (unsigned char) ( (n) >> 32 ); \
  1259. (b)[(i) + 3] = (unsigned char) ( (n) >> 24 ); \
  1260. (b)[(i) + 2] = (unsigned char) ( (n) >> 16 ); \
  1261. (b)[(i) + 1] = (unsigned char) ( (n) >> 8 ); \
  1262. (b)[(i) ] = (unsigned char) ( (n) ); \
  1263. }
  1264. #endif
  1265. typedef unsigned char mbedtls_be128[16];
  1266. /*
  1267. * GF(2^128) multiplication function
  1268. *
  1269. * This function multiplies a field element by x in the polynomial field
  1270. * representation. It uses 64-bit word operations to gain speed but compensates
  1271. * for machine endianess and hence works correctly on both big and little
  1272. * endian machines.
  1273. */
  1274. static void mbedtls_gf128mul_x_ble( unsigned char r[16],
  1275. const unsigned char x[16] )
  1276. {
  1277. uint64_t a, b, ra, rb;
  1278. GET_UINT64_LE( a, x, 0 );
  1279. GET_UINT64_LE( b, x, 8 );
  1280. ra = ( a << 1 ) ^ 0x0087 >> ( 8 - ( ( b >> 63 ) << 3 ) );
  1281. rb = ( a >> 63 ) | ( b << 1 );
  1282. PUT_UINT64_LE( ra, r, 0 );
  1283. PUT_UINT64_LE( rb, r, 8 );
  1284. }
  1285. /*
  1286. * AES-XTS buffer encryption/decryption
  1287. */
  1288. int mbedtls_aes_crypt_xts( mbedtls_aes_xts_context *ctx,
  1289. int mode,
  1290. size_t length,
  1291. const unsigned char data_unit[16],
  1292. const unsigned char *input,
  1293. unsigned char *output )
  1294. {
  1295. int ret = MBEDTLS_ERR_ERROR_CORRUPTION_DETECTED;
  1296. size_t blocks = length / 16;
  1297. size_t leftover = length % 16;
  1298. unsigned char tweak[16];
  1299. unsigned char prev_tweak[16];
  1300. unsigned char tmp[16];
  1301. AES_VALIDATE_RET( ctx != NULL );
  1302. AES_VALIDATE_RET( mode == MBEDTLS_AES_ENCRYPT ||
  1303. mode == MBEDTLS_AES_DECRYPT );
  1304. AES_VALIDATE_RET( data_unit != NULL );
  1305. AES_VALIDATE_RET( input != NULL );
  1306. AES_VALIDATE_RET( output != NULL );
  1307. /* Data units must be at least 16 bytes long. */
  1308. if( length < 16 )
  1309. return MBEDTLS_ERR_AES_INVALID_INPUT_LENGTH;
  1310. /* NIST SP 800-38E disallows data units larger than 2**20 blocks. */
  1311. if( length > ( 1 << 20 ) * 16 )
  1312. return MBEDTLS_ERR_AES_INVALID_INPUT_LENGTH;
  1313. /* Compute the tweak. */
  1314. ret = mbedtls_aes_crypt_ecb( &ctx->tweak, MBEDTLS_AES_ENCRYPT,
  1315. data_unit, tweak );
  1316. if( ret != 0 )
  1317. return( ret );
  1318. while( blocks-- )
  1319. {
  1320. size_t i;
  1321. if( leftover && ( mode == MBEDTLS_AES_DECRYPT ) && blocks == 0 )
  1322. {
  1323. /* We are on the last block in a decrypt operation that has
  1324. * leftover bytes, so we need to use the next tweak for this block,
  1325. * and this tweak for the lefover bytes. Save the current tweak for
  1326. * the leftovers and then update the current tweak for use on this,
  1327. * the last full block. */
  1328. memcpy( prev_tweak, tweak, sizeof( tweak ) );
  1329. mbedtls_gf128mul_x_ble( tweak, tweak );
  1330. }
  1331. for( i = 0; i < 16; i++ )
  1332. tmp[i] = input[i] ^ tweak[i];
  1333. ret = mbedtls_aes_crypt_ecb( &ctx->crypt, mode, tmp, tmp );
  1334. if( ret != 0 )
  1335. return( ret );
  1336. for( i = 0; i < 16; i++ )
  1337. output[i] = tmp[i] ^ tweak[i];
  1338. /* Update the tweak for the next block. */
  1339. mbedtls_gf128mul_x_ble( tweak, tweak );
  1340. output += 16;
  1341. input += 16;
  1342. }
  1343. if( leftover )
  1344. {
  1345. /* If we are on the leftover bytes in a decrypt operation, we need to
  1346. * use the previous tweak for these bytes (as saved in prev_tweak). */
  1347. unsigned char *t = mode == MBEDTLS_AES_DECRYPT ? prev_tweak : tweak;
  1348. /* We are now on the final part of the data unit, which doesn't divide
  1349. * evenly by 16. It's time for ciphertext stealing. */
  1350. size_t i;
  1351. unsigned char *prev_output = output - 16;
  1352. /* Copy ciphertext bytes from the previous block to our output for each
  1353. * byte of cyphertext we won't steal. At the same time, copy the
  1354. * remainder of the input for this final round (since the loop bounds
  1355. * are the same). */
  1356. for( i = 0; i < leftover; i++ )
  1357. {
  1358. output[i] = prev_output[i];
  1359. tmp[i] = input[i] ^ t[i];
  1360. }
  1361. /* Copy ciphertext bytes from the previous block for input in this
  1362. * round. */
  1363. for( ; i < 16; i++ )
  1364. tmp[i] = prev_output[i] ^ t[i];
  1365. ret = mbedtls_aes_crypt_ecb( &ctx->crypt, mode, tmp, tmp );
  1366. if( ret != 0 )
  1367. return ret;
  1368. /* Write the result back to the previous block, overriding the previous
  1369. * output we copied. */
  1370. for( i = 0; i < 16; i++ )
  1371. prev_output[i] = tmp[i] ^ t[i];
  1372. }
  1373. return( 0 );
  1374. }
  1375. #endif /* MBEDTLS_CIPHER_MODE_XTS */
  1376. #if defined(MBEDTLS_CIPHER_MODE_CFB)
  1377. /*
  1378. * AES-CFB128 buffer encryption/decryption
  1379. */
  1380. #if !defined(MBEDTLS_AES_CRYPT_CFB_ALT)
  1381. int mbedtls_aes_crypt_cfb128( mbedtls_aes_context *ctx,
  1382. int mode,
  1383. size_t length,
  1384. size_t *iv_off,
  1385. unsigned char iv[16],
  1386. const unsigned char *input,
  1387. unsigned char *output )
  1388. {
  1389. int c;
  1390. size_t n;
  1391. AES_VALIDATE_RET( ctx != NULL );
  1392. AES_VALIDATE_RET( mode == MBEDTLS_AES_ENCRYPT ||
  1393. mode == MBEDTLS_AES_DECRYPT );
  1394. AES_VALIDATE_RET( iv_off != NULL );
  1395. AES_VALIDATE_RET( iv != NULL );
  1396. AES_VALIDATE_RET( input != NULL );
  1397. AES_VALIDATE_RET( output != NULL );
  1398. n = *iv_off;
  1399. if( n > 15 )
  1400. return( MBEDTLS_ERR_AES_BAD_INPUT_DATA );
  1401. if( mode == MBEDTLS_AES_DECRYPT )
  1402. {
  1403. while( length-- )
  1404. {
  1405. if( n == 0 )
  1406. mbedtls_aes_crypt_ecb( ctx, MBEDTLS_AES_ENCRYPT, iv, iv );
  1407. c = *input++;
  1408. *output++ = (unsigned char)( c ^ iv[n] );
  1409. iv[n] = (unsigned char) c;
  1410. n = ( n + 1 ) & 0x0F;
  1411. }
  1412. }
  1413. else
  1414. {
  1415. while( length-- )
  1416. {
  1417. if( n == 0 )
  1418. mbedtls_aes_crypt_ecb( ctx, MBEDTLS_AES_ENCRYPT, iv, iv );
  1419. iv[n] = *output++ = (unsigned char)( iv[n] ^ *input++ );
  1420. n = ( n + 1 ) & 0x0F;
  1421. }
  1422. }
  1423. *iv_off = n;
  1424. return( 0 );
  1425. }
  1426. /*
  1427. * AES-CFB8 buffer encryption/decryption
  1428. */
  1429. int mbedtls_aes_crypt_cfb8( mbedtls_aes_context *ctx,
  1430. int mode,
  1431. size_t length,
  1432. unsigned char iv[16],
  1433. const unsigned char *input,
  1434. unsigned char *output )
  1435. {
  1436. unsigned char c;
  1437. unsigned char ov[17];
  1438. AES_VALIDATE_RET( ctx != NULL );
  1439. AES_VALIDATE_RET( mode == MBEDTLS_AES_ENCRYPT ||
  1440. mode == MBEDTLS_AES_DECRYPT );
  1441. AES_VALIDATE_RET( iv != NULL );
  1442. AES_VALIDATE_RET( input != NULL );
  1443. AES_VALIDATE_RET( output != NULL );
  1444. while( length-- )
  1445. {
  1446. memcpy( ov, iv, 16 );
  1447. mbedtls_aes_crypt_ecb( ctx, MBEDTLS_AES_ENCRYPT, iv, iv );
  1448. if( mode == MBEDTLS_AES_DECRYPT )
  1449. ov[16] = *input;
  1450. c = *output++ = (unsigned char)( iv[0] ^ *input++ );
  1451. if( mode == MBEDTLS_AES_ENCRYPT )
  1452. ov[16] = c;
  1453. memcpy( iv, ov + 1, 16 );
  1454. }
  1455. return( 0 );
  1456. }
  1457. #endif /* !MBEDTLS_AES_CRYPT_CFB_ALT */
  1458. #endif /* MBEDTLS_CIPHER_MODE_CFB */
  1459. #if defined(MBEDTLS_CIPHER_MODE_OFB)
  1460. /*
  1461. * AES-OFB (Output Feedback Mode) buffer encryption/decryption
  1462. */
  1463. #if !defined(MBEDTLS_AES_CRYPT_OFB_ALT)
  1464. int mbedtls_aes_crypt_ofb( mbedtls_aes_context *ctx,
  1465. size_t length,
  1466. size_t *iv_off,
  1467. unsigned char iv[16],
  1468. const unsigned char *input,
  1469. unsigned char *output )
  1470. {
  1471. int ret = 0;
  1472. size_t n;
  1473. AES_VALIDATE_RET( ctx != NULL );
  1474. AES_VALIDATE_RET( iv_off != NULL );
  1475. AES_VALIDATE_RET( iv != NULL );
  1476. AES_VALIDATE_RET( input != NULL );
  1477. AES_VALIDATE_RET( output != NULL );
  1478. n = *iv_off;
  1479. if( n > 15 )
  1480. return( MBEDTLS_ERR_AES_BAD_INPUT_DATA );
  1481. while( length-- )
  1482. {
  1483. if( n == 0 )
  1484. {
  1485. ret = mbedtls_aes_crypt_ecb( ctx, MBEDTLS_AES_ENCRYPT, iv, iv );
  1486. if( ret != 0 )
  1487. goto exit;
  1488. }
  1489. *output++ = *input++ ^ iv[n];
  1490. n = ( n + 1 ) & 0x0F;
  1491. }
  1492. *iv_off = n;
  1493. exit:
  1494. return( ret );
  1495. }
  1496. #endif /* MBEDTLS_AES_CRYPT_OFB_ALT */
  1497. #endif /* MBEDTLS_CIPHER_MODE_OFB */
  1498. #if defined(MBEDTLS_CIPHER_MODE_CTR)
  1499. /*
  1500. * AES-CTR buffer encryption/decryption
  1501. */
  1502. #if !defined(MBEDTLS_AES_CRYPT_CTR_ALT)
  1503. int mbedtls_aes_crypt_ctr( mbedtls_aes_context *ctx,
  1504. size_t length,
  1505. size_t *nc_off,
  1506. unsigned char nonce_counter[16],
  1507. unsigned char stream_block[16],
  1508. const unsigned char *input,
  1509. unsigned char *output )
  1510. {
  1511. int c, i;
  1512. size_t n;
  1513. AES_VALIDATE_RET( ctx != NULL );
  1514. AES_VALIDATE_RET( nc_off != NULL );
  1515. AES_VALIDATE_RET( nonce_counter != NULL );
  1516. AES_VALIDATE_RET( stream_block != NULL );
  1517. AES_VALIDATE_RET( input != NULL );
  1518. AES_VALIDATE_RET( output != NULL );
  1519. n = *nc_off;
  1520. if ( n > 0x0F )
  1521. return( MBEDTLS_ERR_AES_BAD_INPUT_DATA );
  1522. while( length-- )
  1523. {
  1524. if( n == 0 )
  1525. {
  1526. mbedtls_aes_crypt_ecb( ctx, MBEDTLS_AES_ENCRYPT, nonce_counter, stream_block );
  1527. for( i = 16; i > 0; i-- )
  1528. if( ++nonce_counter[i - 1] != 0 )
  1529. break;
  1530. }
  1531. c = *input++;
  1532. *output++ = (unsigned char)( c ^ stream_block[n] );
  1533. n = ( n + 1 ) & 0x0F;
  1534. }
  1535. *nc_off = n;
  1536. return( 0 );
  1537. }
  1538. #endif /* !MBEDTLS_AES_CRYPT_CTR_ALT */
  1539. #endif /* MBEDTLS_CIPHER_MODE_CTR */
  1540. /* HPM SDP AES
  1541. * HPM SDP AES
  1542. * HPM SDP AES
  1543. * HPM SDP AES
  1544. * HPM SDP AES
  1545. */
  1546. #if defined(CONFIG_MBEDTLS_USE_HPM_SDP)
  1547. #if defined(MBEDTLS_AES_SETKEY_ENC_ALT)
  1548. /*
  1549. * AES key schedule (encryption)
  1550. */
  1551. int mbedtls_aes_setkey_enc(mbedtls_aes_context *ctx, const unsigned char *key, unsigned int keybits)
  1552. {
  1553. uint32_t *RK;
  1554. AES_VALIDATE_RET( ctx != NULL );
  1555. AES_VALIDATE_RET( key != NULL );
  1556. ctx->rk = RK = ctx->buf;
  1557. (void)memcpy(RK, (const uint32_t *)(uintptr_t)key, keybits / 8U);
  1558. /* Set keysize in bytes.*/
  1559. switch (keybits)
  1560. {
  1561. case 128:
  1562. ctx->nr = 10;
  1563. break;
  1564. case 192:
  1565. ctx->nr = 12;
  1566. break;
  1567. case 256:
  1568. ctx->nr = 14;
  1569. break;
  1570. default:
  1571. return (MBEDTLS_ERR_AES_INVALID_KEY_LENGTH);
  1572. }
  1573. return (0);
  1574. }
  1575. #endif /* MBEDTLS_AES_SETKEY_ENC_ALT */
  1576. #if defined(MBEDTLS_AES_SETKEY_DEC_ALT)
  1577. /*
  1578. * AES key schedule (decryption)
  1579. */
  1580. int mbedtls_aes_setkey_dec(mbedtls_aes_context *ctx, const unsigned char *key, unsigned int keybits)
  1581. {
  1582. uint32_t *RK;
  1583. AES_VALIDATE_RET( ctx != NULL );
  1584. AES_VALIDATE_RET( key != NULL );
  1585. ctx->rk = RK = ctx->buf;
  1586. (void)memcpy(RK, (const uint32_t *)(uintptr_t)key, keybits / 8U);
  1587. /* Set keysize in bytes.*/
  1588. switch (keybits)
  1589. {
  1590. case 128:
  1591. ctx->nr = 10;
  1592. break;
  1593. case 192:
  1594. ctx->nr = 12;
  1595. break;
  1596. case 256:
  1597. ctx->nr = 14;
  1598. break;
  1599. default:
  1600. return (MBEDTLS_ERR_AES_INVALID_KEY_LENGTH);
  1601. }
  1602. return (0);
  1603. }
  1604. #endif /* MBEDTLS_AES_SETKEY_DEC_ALT */
  1605. #if defined(MBEDTLS_AES_SETKEY_ENC_ALT)
  1606. /*
  1607. * AES-ECB block encryption
  1608. */
  1609. int mbedtls_internal_aes_encrypt(mbedtls_aes_context *ctx, const unsigned char input[16], unsigned char output[16])
  1610. {
  1611. static uint8_t ATTR_PLACE_AT_NONCACHEABLE local_tmp[32];
  1612. #if defined(MBEDTLS_THREADING_C)
  1613. int ret;
  1614. if ((ret = mbedtls_mutex_lock(&mbedtls_threading_hwcrypto_hashcrypt_mutex)) != 0)
  1615. return (ret);
  1616. #endif
  1617. sdp_crypto_key_bits_t key_size;
  1618. switch (ctx->nr)
  1619. {
  1620. case 10:
  1621. key_size = sdp_aes_keybits_128;
  1622. break;
  1623. case 14:
  1624. key_size = sdp_aes_keybits_256;
  1625. break;
  1626. default:
  1627. return (MBEDTLS_ERR_AES_INVALID_KEY_LENGTH);
  1628. }
  1629. uint32_t key_tmp = core_local_mem_to_sys_address(BOARD_RUNNING_CORE, (uint32_t) ctx->rk);
  1630. uint8_t *p_sys_local = (uint8_t *) core_local_mem_to_sys_address(BOARD_RUNNING_CORE, (uint32_t) local_tmp);
  1631. sdp_aes_ctx_t *p_sys_sdp_ctx = (sdp_aes_ctx_t *) core_local_mem_to_sys_address(BOARD_RUNNING_CORE, (uint32_t) &s_aes_ctx);
  1632. memcpy(p_sys_local, (uint8_t *)key_tmp, key_size == sdp_aes_keybits_128 ? 16 : 32);
  1633. hpm_stat_t status = rom_sdp_aes_set_key(p_sys_sdp_ctx, (const uint8_t *)p_sys_local, key_size, 0);
  1634. memcpy(p_sys_local, input, 16);
  1635. status = rom_sdp_aes_crypt_ecb(p_sys_sdp_ctx, sdp_aes_op_encrypt, 16, p_sys_local, p_sys_local);
  1636. memcpy(output, p_sys_local, 16);
  1637. #if defined(MBEDTLS_THREADING_C)
  1638. if ((ret = mbedtls_mutex_unlock(&mbedtls_threading_hwcrypto_hashcrypt_mutex)) != 0)
  1639. return (ret);
  1640. #endif
  1641. return (status_success == status) ? 0 : MBEDTLS_ERR_AES_HW_ACCEL_FAILED;
  1642. }
  1643. #endif /* MBEDTLS_AES_SETKEY_ENC_ALT */
  1644. #if defined(MBEDTLS_AES_SETKEY_DEC_ALT)
  1645. /*
  1646. * AES-ECB block decryption
  1647. */
  1648. int mbedtls_internal_aes_decrypt(mbedtls_aes_context *ctx, const unsigned char input[16], unsigned char output[16])
  1649. {
  1650. static uint8_t ATTR_PLACE_AT_NONCACHEABLE local_tmp[16];
  1651. #if defined(MBEDTLS_THREADING_C)
  1652. int ret;
  1653. if ((ret = mbedtls_mutex_lock(&mbedtls_threading_hwcrypto_hashcrypt_mutex)) != 0)
  1654. return (ret);
  1655. #endif
  1656. sdp_crypto_key_bits_t key_size;
  1657. switch (ctx->nr)
  1658. {
  1659. case 10:
  1660. key_size = sdp_aes_keybits_128;
  1661. break;
  1662. case 14:
  1663. key_size = sdp_aes_keybits_256;
  1664. break;
  1665. default:
  1666. return (MBEDTLS_ERR_AES_INVALID_KEY_LENGTH);
  1667. }
  1668. uint32_t key_tmp = core_local_mem_to_sys_address(BOARD_RUNNING_CORE, (uint32_t) ctx->rk);
  1669. uint8_t *p_sys_local = (uint8_t *) core_local_mem_to_sys_address(BOARD_RUNNING_CORE, (uint32_t) local_tmp);
  1670. sdp_aes_ctx_t *p_sys_sdp_ctx = (sdp_aes_ctx_t *) core_local_mem_to_sys_address(BOARD_RUNNING_CORE, (uint32_t) &s_aes_ctx);
  1671. memcpy(p_sys_local, (uint8_t *)key_tmp, key_size == sdp_aes_keybits_128 ? 16 : 32);
  1672. hpm_stat_t status = rom_sdp_aes_set_key(p_sys_sdp_ctx, (const uint8_t *)key_tmp, key_size, 0);
  1673. memcpy(p_sys_local, input, 16);
  1674. status = rom_sdp_aes_crypt_ecb(p_sys_sdp_ctx, sdp_aes_op_decrypt, 16, p_sys_local, p_sys_local);
  1675. memcpy(output, p_sys_local, 16);
  1676. #if defined(MBEDTLS_THREADING_C)
  1677. if ((ret = mbedtls_mutex_unlock(&mbedtls_threading_hwcrypto_hashcrypt_mutex)) != 0)
  1678. return (ret);
  1679. #endif
  1680. return (status_success == status) ? 0 : MBEDTLS_ERR_AES_HW_ACCEL_FAILED;
  1681. }
  1682. #endif /* MBEDTLS_AES_SETKEY_DEC_ALT */
  1683. #if defined(MBEDTLS_CIPHER_MODE_CBC)
  1684. #if defined(MBEDTLS_AES_CRYPT_CBC_ALT)
  1685. /*
  1686. * AES-CBC buffer encryption/decryption
  1687. */
  1688. int mbedtls_aes_crypt_cbc(mbedtls_aes_context *ctx,
  1689. int mode,
  1690. size_t length,
  1691. unsigned char iv[16],
  1692. const unsigned char *input,
  1693. unsigned char *output)
  1694. {
  1695. static uint8_t ATTR_PLACE_AT_NONCACHEABLE local_iv[16];
  1696. uint8_t *local_tmp = malloc(HPM_L1C_CACHELINE_SIZE + length);
  1697. assert((uint32_t)local_tmp > 0);
  1698. sdp_aes_ctx_t *p_sys_sdp_ctx = (sdp_aes_ctx_t *) core_local_mem_to_sys_address(BOARD_RUNNING_CORE, (uint32_t) &s_aes_ctx);
  1699. AES_VALIDATE_RET( ctx != NULL );
  1700. AES_VALIDATE_RET( mode == MBEDTLS_AES_ENCRYPT ||
  1701. mode == MBEDTLS_AES_DECRYPT );
  1702. AES_VALIDATE_RET( iv != NULL );
  1703. AES_VALIDATE_RET( input != NULL );
  1704. AES_VALIDATE_RET( output != NULL );
  1705. if (length % 16)
  1706. return (MBEDTLS_ERR_AES_INVALID_INPUT_LENGTH);
  1707. #if defined(MBEDTLS_THREADING_C)
  1708. int ret;
  1709. if ((ret = mbedtls_mutex_lock(&mbedtls_threading_hwcrypto_hashcrypt_mutex)) != 0)
  1710. return (ret);
  1711. #endif
  1712. sdp_crypto_key_bits_t key_size;
  1713. switch (ctx->nr)
  1714. {
  1715. case 10:
  1716. key_size = sdp_aes_keybits_128;
  1717. break;
  1718. case 14:
  1719. key_size = sdp_aes_keybits_256;
  1720. break;
  1721. default:
  1722. return (MBEDTLS_ERR_AES_INVALID_KEY_LENGTH);
  1723. }
  1724. uint32_t key_tmp = core_local_mem_to_sys_address(BOARD_RUNNING_CORE, (uint32_t) ctx->rk);
  1725. uint8_t *p_sys_local = (uint8_t *) core_local_mem_to_sys_address(BOARD_RUNNING_CORE, (uint32_t) local_tmp);
  1726. p_sys_local = (uint8_t *)HPM_L1C_CACHELINE_ALIGN_DOWN((uint32_t)p_sys_local + HPM_L1C_CACHELINE_SIZE);
  1727. hpm_stat_t status;
  1728. size_t key_len = (key_size == sdp_aes_keybits_128 ? 16 : 32);
  1729. memcpy(p_sys_local, (uint8_t *)key_tmp, key_len);
  1730. if (l1c_dc_is_enabled()) {
  1731. uint32_t aligned_start = HPM_L1C_CACHELINE_ALIGN_DOWN((uint32_t)p_sys_local);
  1732. uint32_t aligned_end = HPM_L1C_CACHELINE_ALIGN_UP((uint32_t)p_sys_local + key_len);
  1733. uint32_t aligned_size = aligned_end - aligned_start;
  1734. l1c_dc_flush((uint32_t)aligned_start, aligned_size);
  1735. }
  1736. status = rom_sdp_aes_set_key(p_sys_sdp_ctx, (const uint8_t *)p_sys_local, key_size, 0);
  1737. memcpy(p_sys_local, (uint8_t *)input, length);
  1738. if (l1c_dc_is_enabled()) {
  1739. uint32_t aligned_start = HPM_L1C_CACHELINE_ALIGN_DOWN((uint32_t)p_sys_local);
  1740. uint32_t aligned_end = HPM_L1C_CACHELINE_ALIGN_UP((uint32_t)p_sys_local + length);
  1741. uint32_t aligned_size = aligned_end - aligned_start;
  1742. l1c_dc_flush((uint32_t)aligned_start, aligned_size);
  1743. }
  1744. memcpy(local_iv, iv, 16);
  1745. if (mode == MBEDTLS_AES_DECRYPT)
  1746. {
  1747. status = rom_sdp_aes_crypt_cbc(p_sys_sdp_ctx, sdp_aes_op_decrypt, length, local_iv, p_sys_local, p_sys_local);
  1748. if (status_success == status)
  1749. {
  1750. if (l1c_dc_is_enabled()) {
  1751. uint32_t aligned_start = HPM_L1C_CACHELINE_ALIGN_DOWN((uint32_t)p_sys_local);
  1752. uint32_t aligned_end = HPM_L1C_CACHELINE_ALIGN_UP((uint32_t)p_sys_local + length);
  1753. uint32_t aligned_size = aligned_end - aligned_start;
  1754. l1c_dc_invalidate((uint32_t)p_sys_local, aligned_size);
  1755. }
  1756. memcpy(output, p_sys_local, length);
  1757. memcpy(iv, local_iv, 16);
  1758. }
  1759. }
  1760. else
  1761. {
  1762. status = rom_sdp_aes_crypt_cbc(p_sys_sdp_ctx, sdp_aes_op_encrypt, length, local_iv, p_sys_local, p_sys_local);
  1763. if (status_success == status)
  1764. {
  1765. if (l1c_dc_is_enabled()) {
  1766. uint32_t aligned_start = HPM_L1C_CACHELINE_ALIGN_DOWN((uint32_t)p_sys_local);
  1767. uint32_t aligned_end = HPM_L1C_CACHELINE_ALIGN_UP((uint32_t)p_sys_local + length);
  1768. uint32_t aligned_size = aligned_end - aligned_start;
  1769. l1c_dc_invalidate((uint32_t)p_sys_local, aligned_size);
  1770. }
  1771. memcpy(output, p_sys_local, length);
  1772. memcpy(iv, local_iv, 16);
  1773. }
  1774. }
  1775. #if defined(MBEDTLS_THREADING_C)
  1776. if ((ret = mbedtls_mutex_unlock(&mbedtls_threading_hwcrypto_hashcrypt_mutex)) != 0)
  1777. return (ret);
  1778. #endif
  1779. free(local_tmp);
  1780. return (status_success == status) ? 0 : MBEDTLS_ERR_AES_HW_ACCEL_FAILED;
  1781. }
  1782. #endif /* defined(MBEDTLS_AES_CRYPT_CBC_ALT) */
  1783. #endif /* MBEDTLS_CIPHER_MODE_CBC */
  1784. #endif /* !CONFIG_MBEDTLS_USE_HPM_SDP */
  1785. #endif /* MBEDTLS_AES_ALT */
  1786. #endif /* MBEDTLS_AES_C */