AES.cpp 15 KB

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  1. /*
  2. * Copyright (c) 2020, Ali Mohammad Pur <mpfard@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include <AK/StringBuilder.h>
  7. #include <LibCrypto/Cipher/AES.h>
  8. #include <LibCrypto/Cipher/AESTables.h>
  9. namespace Crypto {
  10. namespace Cipher {
  11. template<typename T>
  12. constexpr u32 get_key(T pt)
  13. {
  14. return ((u32)(pt)[0] << 24) ^ ((u32)(pt)[1] << 16) ^ ((u32)(pt)[2] << 8) ^ ((u32)(pt)[3]);
  15. }
  16. constexpr void swap_keys(u32* keys, size_t i, size_t j)
  17. {
  18. u32 temp = keys[i];
  19. keys[i] = keys[j];
  20. keys[j] = temp;
  21. }
  22. String AESCipherBlock::to_string() const
  23. {
  24. StringBuilder builder;
  25. for (auto value : m_data)
  26. builder.appendff("{:02x}", value);
  27. return builder.build();
  28. }
  29. String AESCipherKey::to_string() const
  30. {
  31. StringBuilder builder;
  32. for (size_t i = 0; i < (rounds() + 1) * 4; ++i)
  33. builder.appendff("{:02x}", m_rd_keys[i]);
  34. return builder.build();
  35. }
  36. void AESCipherKey::expand_encrypt_key(ReadonlyBytes user_key, size_t bits)
  37. {
  38. u32* round_key;
  39. u32 temp;
  40. size_t i { 0 };
  41. VERIFY(!user_key.is_null());
  42. VERIFY(is_valid_key_size(bits));
  43. VERIFY(user_key.size() == bits / 8);
  44. round_key = round_keys();
  45. if (bits == 128) {
  46. m_rounds = 10;
  47. } else if (bits == 192) {
  48. m_rounds = 12;
  49. } else {
  50. m_rounds = 14;
  51. }
  52. round_key[0] = get_key(user_key.data());
  53. round_key[1] = get_key(user_key.data() + 4);
  54. round_key[2] = get_key(user_key.data() + 8);
  55. round_key[3] = get_key(user_key.data() + 12);
  56. if (bits == 128) {
  57. for (;;) {
  58. temp = round_key[3];
  59. // clang-format off
  60. round_key[4] = round_key[0] ^
  61. (AESTables::Encode2[(temp >> 16) & 0xff] & 0xff000000) ^
  62. (AESTables::Encode3[(temp >> 8) & 0xff] & 0x00ff0000) ^
  63. (AESTables::Encode0[(temp ) & 0xff] & 0x0000ff00) ^
  64. (AESTables::Encode1[(temp >> 24) ] & 0x000000ff) ^ AESTables::RCON[i];
  65. // clang-format on
  66. round_key[5] = round_key[1] ^ round_key[4];
  67. round_key[6] = round_key[2] ^ round_key[5];
  68. round_key[7] = round_key[3] ^ round_key[6];
  69. ++i;
  70. if (i == 10)
  71. break;
  72. round_key += 4;
  73. }
  74. return;
  75. }
  76. round_key[4] = get_key(user_key.data() + 16);
  77. round_key[5] = get_key(user_key.data() + 20);
  78. if (bits == 192) {
  79. for (;;) {
  80. temp = round_key[5];
  81. // clang-format off
  82. round_key[6] = round_key[0] ^
  83. (AESTables::Encode2[(temp >> 16) & 0xff] & 0xff000000) ^
  84. (AESTables::Encode3[(temp >> 8) & 0xff] & 0x00ff0000) ^
  85. (AESTables::Encode0[(temp ) & 0xff] & 0x0000ff00) ^
  86. (AESTables::Encode1[(temp >> 24) ] & 0x000000ff) ^ AESTables::RCON[i];
  87. // clang-format on
  88. round_key[7] = round_key[1] ^ round_key[6];
  89. round_key[8] = round_key[2] ^ round_key[7];
  90. round_key[9] = round_key[3] ^ round_key[8];
  91. ++i;
  92. if (i == 8)
  93. break;
  94. round_key[10] = round_key[4] ^ round_key[9];
  95. round_key[11] = round_key[5] ^ round_key[10];
  96. round_key += 6;
  97. }
  98. return;
  99. }
  100. round_key[6] = get_key(user_key.data() + 24);
  101. round_key[7] = get_key(user_key.data() + 28);
  102. if (true) { // bits == 256
  103. for (;;) {
  104. temp = round_key[7];
  105. // clang-format off
  106. round_key[8] = round_key[0] ^
  107. (AESTables::Encode2[(temp >> 16) & 0xff] & 0xff000000) ^
  108. (AESTables::Encode3[(temp >> 8) & 0xff] & 0x00ff0000) ^
  109. (AESTables::Encode0[(temp ) & 0xff] & 0x0000ff00) ^
  110. (AESTables::Encode1[(temp >> 24) ] & 0x000000ff) ^ AESTables::RCON[i];
  111. // clang-format on
  112. round_key[9] = round_key[1] ^ round_key[8];
  113. round_key[10] = round_key[2] ^ round_key[9];
  114. round_key[11] = round_key[3] ^ round_key[10];
  115. ++i;
  116. if (i == 7)
  117. break;
  118. temp = round_key[11];
  119. // clang-format off
  120. round_key[12] = round_key[4] ^
  121. (AESTables::Encode2[(temp >> 24) ] & 0xff000000) ^
  122. (AESTables::Encode3[(temp >> 16) & 0xff] & 0x00ff0000) ^
  123. (AESTables::Encode0[(temp >> 8) & 0xff] & 0x0000ff00) ^
  124. (AESTables::Encode1[(temp ) & 0xff] & 0x000000ff) ;
  125. // clang-format on
  126. round_key[13] = round_key[5] ^ round_key[12];
  127. round_key[14] = round_key[6] ^ round_key[13];
  128. round_key[15] = round_key[7] ^ round_key[14];
  129. round_key += 8;
  130. }
  131. return;
  132. }
  133. }
  134. void AESCipherKey::expand_decrypt_key(ReadonlyBytes user_key, size_t bits)
  135. {
  136. u32* round_key;
  137. expand_encrypt_key(user_key, bits);
  138. round_key = round_keys();
  139. // reorder round keys
  140. for (size_t i = 0, j = 4 * rounds(); i < j; i += 4, j -= 4) {
  141. swap_keys(round_key, i, j);
  142. swap_keys(round_key, i + 1, j + 1);
  143. swap_keys(round_key, i + 2, j + 2);
  144. swap_keys(round_key, i + 3, j + 3);
  145. }
  146. // apply inverse mix-column to middle rounds
  147. for (size_t i = 1; i < rounds(); ++i) {
  148. round_key += 4;
  149. // clang-format off
  150. round_key[0] =
  151. AESTables::Decode0[AESTables::Encode1[(round_key[0] >> 24) ] & 0xff] ^
  152. AESTables::Decode1[AESTables::Encode1[(round_key[0] >> 16) & 0xff] & 0xff] ^
  153. AESTables::Decode2[AESTables::Encode1[(round_key[0] >> 8) & 0xff] & 0xff] ^
  154. AESTables::Decode3[AESTables::Encode1[(round_key[0] ) & 0xff] & 0xff] ;
  155. round_key[1] =
  156. AESTables::Decode0[AESTables::Encode1[(round_key[1] >> 24) ] & 0xff] ^
  157. AESTables::Decode1[AESTables::Encode1[(round_key[1] >> 16) & 0xff] & 0xff] ^
  158. AESTables::Decode2[AESTables::Encode1[(round_key[1] >> 8) & 0xff] & 0xff] ^
  159. AESTables::Decode3[AESTables::Encode1[(round_key[1] ) & 0xff] & 0xff] ;
  160. round_key[2] =
  161. AESTables::Decode0[AESTables::Encode1[(round_key[2] >> 24) ] & 0xff] ^
  162. AESTables::Decode1[AESTables::Encode1[(round_key[2] >> 16) & 0xff] & 0xff] ^
  163. AESTables::Decode2[AESTables::Encode1[(round_key[2] >> 8) & 0xff] & 0xff] ^
  164. AESTables::Decode3[AESTables::Encode1[(round_key[2] ) & 0xff] & 0xff] ;
  165. round_key[3] =
  166. AESTables::Decode0[AESTables::Encode1[(round_key[3] >> 24) ] & 0xff] ^
  167. AESTables::Decode1[AESTables::Encode1[(round_key[3] >> 16) & 0xff] & 0xff] ^
  168. AESTables::Decode2[AESTables::Encode1[(round_key[3] >> 8) & 0xff] & 0xff] ^
  169. AESTables::Decode3[AESTables::Encode1[(round_key[3] ) & 0xff] & 0xff] ;
  170. // clang-format on
  171. }
  172. }
  173. void AESCipher::encrypt_block(const AESCipherBlock& in, AESCipherBlock& out)
  174. {
  175. u32 s0, s1, s2, s3, t0, t1, t2, t3;
  176. size_t r { 0 };
  177. const auto& dec_key = key();
  178. const auto* round_keys = dec_key.round_keys();
  179. s0 = get_key(in.bytes().offset_pointer(0)) ^ round_keys[0];
  180. s1 = get_key(in.bytes().offset_pointer(4)) ^ round_keys[1];
  181. s2 = get_key(in.bytes().offset_pointer(8)) ^ round_keys[2];
  182. s3 = get_key(in.bytes().offset_pointer(12)) ^ round_keys[3];
  183. r = dec_key.rounds() >> 1;
  184. // apply the first |r - 1| rounds
  185. auto i { 0 };
  186. for (;;) {
  187. ++i;
  188. // clang-format off
  189. t0 = AESTables::Encode0[(s0 >> 24) ] ^
  190. AESTables::Encode1[(s1 >> 16) & 0xff] ^
  191. AESTables::Encode2[(s2 >> 8) & 0xff] ^
  192. AESTables::Encode3[(s3 ) & 0xff] ^ round_keys[4];
  193. t1 = AESTables::Encode0[(s1 >> 24) ] ^
  194. AESTables::Encode1[(s2 >> 16) & 0xff] ^
  195. AESTables::Encode2[(s3 >> 8) & 0xff] ^
  196. AESTables::Encode3[(s0 ) & 0xff] ^ round_keys[5];
  197. t2 = AESTables::Encode0[(s2 >> 24) ] ^
  198. AESTables::Encode1[(s3 >> 16) & 0xff] ^
  199. AESTables::Encode2[(s0 >> 8) & 0xff] ^
  200. AESTables::Encode3[(s1 ) & 0xff] ^ round_keys[6];
  201. t3 = AESTables::Encode0[(s3 >> 24) ] ^
  202. AESTables::Encode1[(s0 >> 16) & 0xff] ^
  203. AESTables::Encode2[(s1 >> 8) & 0xff] ^
  204. AESTables::Encode3[(s2 ) & 0xff] ^ round_keys[7];
  205. // clang-format on
  206. round_keys += 8;
  207. --r;
  208. ++i;
  209. if (r == 0)
  210. break;
  211. // clang-format off
  212. s0 = AESTables::Encode0[(t0 >> 24) ] ^
  213. AESTables::Encode1[(t1 >> 16) & 0xff] ^
  214. AESTables::Encode2[(t2 >> 8) & 0xff] ^
  215. AESTables::Encode3[(t3 ) & 0xff] ^ round_keys[0];
  216. s1 = AESTables::Encode0[(t1 >> 24) ] ^
  217. AESTables::Encode1[(t2 >> 16) & 0xff] ^
  218. AESTables::Encode2[(t3 >> 8) & 0xff] ^
  219. AESTables::Encode3[(t0 ) & 0xff] ^ round_keys[1];
  220. s2 = AESTables::Encode0[(t2 >> 24) ] ^
  221. AESTables::Encode1[(t3 >> 16) & 0xff] ^
  222. AESTables::Encode2[(t0 >> 8) & 0xff] ^
  223. AESTables::Encode3[(t1 ) & 0xff] ^ round_keys[2];
  224. s3 = AESTables::Encode0[(t3 >> 24) ] ^
  225. AESTables::Encode1[(t0 >> 16) & 0xff] ^
  226. AESTables::Encode2[(t1 >> 8) & 0xff] ^
  227. AESTables::Encode3[(t2 ) & 0xff] ^ round_keys[3];
  228. // clang-format on
  229. }
  230. // apply the last round and put the encrypted data into out
  231. // clang-format off
  232. s0 = (AESTables::Encode2[(t0 >> 24) ] & 0xff000000) ^
  233. (AESTables::Encode3[(t1 >> 16) & 0xff] & 0x00ff0000) ^
  234. (AESTables::Encode0[(t2 >> 8) & 0xff] & 0x0000ff00) ^
  235. (AESTables::Encode1[(t3 ) & 0xff] & 0x000000ff) ^ round_keys[0];
  236. out.put(0, s0);
  237. s1 = (AESTables::Encode2[(t1 >> 24) ] & 0xff000000) ^
  238. (AESTables::Encode3[(t2 >> 16) & 0xff] & 0x00ff0000) ^
  239. (AESTables::Encode0[(t3 >> 8) & 0xff] & 0x0000ff00) ^
  240. (AESTables::Encode1[(t0 ) & 0xff] & 0x000000ff) ^ round_keys[1];
  241. out.put(4, s1);
  242. s2 = (AESTables::Encode2[(t2 >> 24) ] & 0xff000000) ^
  243. (AESTables::Encode3[(t3 >> 16) & 0xff] & 0x00ff0000) ^
  244. (AESTables::Encode0[(t0 >> 8) & 0xff] & 0x0000ff00) ^
  245. (AESTables::Encode1[(t1 ) & 0xff] & 0x000000ff) ^ round_keys[2];
  246. out.put(8, s2);
  247. s3 = (AESTables::Encode2[(t3 >> 24) ] & 0xff000000) ^
  248. (AESTables::Encode3[(t0 >> 16) & 0xff] & 0x00ff0000) ^
  249. (AESTables::Encode0[(t1 >> 8) & 0xff] & 0x0000ff00) ^
  250. (AESTables::Encode1[(t2 ) & 0xff] & 0x000000ff) ^ round_keys[3];
  251. out.put(12, s3);
  252. // clang-format on
  253. }
  254. void AESCipher::decrypt_block(const AESCipherBlock& in, AESCipherBlock& out)
  255. {
  256. u32 s0, s1, s2, s3, t0, t1, t2, t3;
  257. size_t r { 0 };
  258. const auto& dec_key = key();
  259. const auto* round_keys = dec_key.round_keys();
  260. s0 = get_key(in.bytes().offset_pointer(0)) ^ round_keys[0];
  261. s1 = get_key(in.bytes().offset_pointer(4)) ^ round_keys[1];
  262. s2 = get_key(in.bytes().offset_pointer(8)) ^ round_keys[2];
  263. s3 = get_key(in.bytes().offset_pointer(12)) ^ round_keys[3];
  264. r = dec_key.rounds() >> 1;
  265. // apply the first |r - 1| rounds
  266. for (;;) {
  267. // clang-format off
  268. t0 = AESTables::Decode0[(s0 >> 24) ] ^
  269. AESTables::Decode1[(s3 >> 16) & 0xff] ^
  270. AESTables::Decode2[(s2 >> 8) & 0xff] ^
  271. AESTables::Decode3[(s1 ) & 0xff] ^ round_keys[4];
  272. t1 = AESTables::Decode0[(s1 >> 24) ] ^
  273. AESTables::Decode1[(s0 >> 16) & 0xff] ^
  274. AESTables::Decode2[(s3 >> 8) & 0xff] ^
  275. AESTables::Decode3[(s2 ) & 0xff] ^ round_keys[5];
  276. t2 = AESTables::Decode0[(s2 >> 24) ] ^
  277. AESTables::Decode1[(s1 >> 16) & 0xff] ^
  278. AESTables::Decode2[(s0 >> 8) & 0xff] ^
  279. AESTables::Decode3[(s3 ) & 0xff] ^ round_keys[6];
  280. t3 = AESTables::Decode0[(s3 >> 24) ] ^
  281. AESTables::Decode1[(s2 >> 16) & 0xff] ^
  282. AESTables::Decode2[(s1 >> 8) & 0xff] ^
  283. AESTables::Decode3[(s0 ) & 0xff] ^ round_keys[7];
  284. // clang-format on
  285. round_keys += 8;
  286. --r;
  287. if (r == 0)
  288. break;
  289. // clang-format off
  290. s0 = AESTables::Decode0[(t0 >> 24) ] ^
  291. AESTables::Decode1[(t3 >> 16) & 0xff] ^
  292. AESTables::Decode2[(t2 >> 8) & 0xff] ^
  293. AESTables::Decode3[(t1 ) & 0xff] ^ round_keys[0];
  294. s1 = AESTables::Decode0[(t1 >> 24) ] ^
  295. AESTables::Decode1[(t0 >> 16) & 0xff] ^
  296. AESTables::Decode2[(t3 >> 8) & 0xff] ^
  297. AESTables::Decode3[(t2 ) & 0xff] ^ round_keys[1];
  298. s2 = AESTables::Decode0[(t2 >> 24) ] ^
  299. AESTables::Decode1[(t1 >> 16) & 0xff] ^
  300. AESTables::Decode2[(t0 >> 8) & 0xff] ^
  301. AESTables::Decode3[(t3 ) & 0xff] ^ round_keys[2];
  302. s3 = AESTables::Decode0[(t3 >> 24) ] ^
  303. AESTables::Decode1[(t2 >> 16) & 0xff] ^
  304. AESTables::Decode2[(t1 >> 8) & 0xff] ^
  305. AESTables::Decode3[(t0 ) & 0xff] ^ round_keys[3];
  306. // clang-format on
  307. }
  308. // apply the last round and put the decrypted data into out
  309. // clang-format off
  310. s0 = ((u32)AESTables::Decode4[(t0 >> 24) ] << 24) ^
  311. ((u32)AESTables::Decode4[(t3 >> 16) & 0xff] << 16) ^
  312. ((u32)AESTables::Decode4[(t2 >> 8) & 0xff] << 8) ^
  313. ((u32)AESTables::Decode4[(t1 ) & 0xff] ) ^ round_keys[0];
  314. out.put(0, s0);
  315. s1 = ((u32)AESTables::Decode4[(t1 >> 24) ] << 24) ^
  316. ((u32)AESTables::Decode4[(t0 >> 16) & 0xff] << 16) ^
  317. ((u32)AESTables::Decode4[(t3 >> 8) & 0xff] << 8) ^
  318. ((u32)AESTables::Decode4[(t2 ) & 0xff] ) ^ round_keys[1];
  319. out.put(4, s1);
  320. s2 = ((u32)AESTables::Decode4[(t2 >> 24) ] << 24) ^
  321. ((u32)AESTables::Decode4[(t1 >> 16) & 0xff] << 16) ^
  322. ((u32)AESTables::Decode4[(t0 >> 8) & 0xff] << 8) ^
  323. ((u32)AESTables::Decode4[(t3 ) & 0xff] ) ^ round_keys[2];
  324. out.put(8, s2);
  325. s3 = ((u32)AESTables::Decode4[(t3 >> 24) ] << 24) ^
  326. ((u32)AESTables::Decode4[(t2 >> 16) & 0xff] << 16) ^
  327. ((u32)AESTables::Decode4[(t1 >> 8) & 0xff] << 8) ^
  328. ((u32)AESTables::Decode4[(t0 ) & 0xff] ) ^ round_keys[3];
  329. out.put(12, s3);
  330. // clang-format on
  331. }
  332. void AESCipherBlock::overwrite(ReadonlyBytes bytes)
  333. {
  334. auto data = bytes.data();
  335. auto length = bytes.size();
  336. VERIFY(length <= this->data_size());
  337. this->bytes().overwrite(0, data, length);
  338. if (length < this->data_size()) {
  339. switch (padding_mode()) {
  340. case PaddingMode::Null:
  341. // fill with zeros
  342. __builtin_memset(m_data + length, 0, this->data_size() - length);
  343. break;
  344. case PaddingMode::CMS:
  345. // fill with the length of the padding bytes
  346. __builtin_memset(m_data + length, this->data_size() - length, this->data_size() - length);
  347. break;
  348. case PaddingMode::RFC5246:
  349. // fill with the length of the padding bytes minus one
  350. __builtin_memset(m_data + length, this->data_size() - length - 1, this->data_size() - length);
  351. break;
  352. default:
  353. // FIXME: We should handle the rest of the common padding modes
  354. VERIFY_NOT_REACHED();
  355. break;
  356. }
  357. }
  358. }
  359. }
  360. }