aes-neonbs-glue.c 13 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Bit sliced AES using NEON instructions
  4. *
  5. * Copyright (C) 2017 Linaro Ltd <ard.biesheuvel@linaro.org>
  6. */
  7. #include <asm/neon.h>
  8. #include <asm/simd.h>
  9. #include <crypto/aes.h>
  10. #include <crypto/ctr.h>
  11. #include <crypto/internal/simd.h>
  12. #include <crypto/internal/skcipher.h>
  13. #include <crypto/scatterwalk.h>
  14. #include <crypto/xts.h>
  15. #include <linux/module.h>
  16. #include "aes-cipher.h"
  17. MODULE_AUTHOR("Ard Biesheuvel <ard.biesheuvel@linaro.org>");
  18. MODULE_DESCRIPTION("Bit sliced AES using NEON instructions");
  19. MODULE_LICENSE("GPL v2");
  20. MODULE_ALIAS_CRYPTO("ecb(aes)");
  21. MODULE_ALIAS_CRYPTO("cbc(aes)");
  22. MODULE_ALIAS_CRYPTO("ctr(aes)");
  23. MODULE_ALIAS_CRYPTO("xts(aes)");
  24. asmlinkage void aesbs_convert_key(u8 out[], u32 const rk[], int rounds);
  25. asmlinkage void aesbs_ecb_encrypt(u8 out[], u8 const in[], u8 const rk[],
  26. int rounds, int blocks);
  27. asmlinkage void aesbs_ecb_decrypt(u8 out[], u8 const in[], u8 const rk[],
  28. int rounds, int blocks);
  29. asmlinkage void aesbs_cbc_decrypt(u8 out[], u8 const in[], u8 const rk[],
  30. int rounds, int blocks, u8 iv[]);
  31. asmlinkage void aesbs_ctr_encrypt(u8 out[], u8 const in[], u8 const rk[],
  32. int rounds, int blocks, u8 ctr[]);
  33. asmlinkage void aesbs_xts_encrypt(u8 out[], u8 const in[], u8 const rk[],
  34. int rounds, int blocks, u8 iv[], int);
  35. asmlinkage void aesbs_xts_decrypt(u8 out[], u8 const in[], u8 const rk[],
  36. int rounds, int blocks, u8 iv[], int);
  37. struct aesbs_ctx {
  38. int rounds;
  39. u8 rk[13 * (8 * AES_BLOCK_SIZE) + 32] __aligned(AES_BLOCK_SIZE);
  40. };
  41. struct aesbs_cbc_ctx {
  42. struct aesbs_ctx key;
  43. struct crypto_aes_ctx fallback;
  44. };
  45. struct aesbs_xts_ctx {
  46. struct aesbs_ctx key;
  47. struct crypto_aes_ctx fallback;
  48. struct crypto_aes_ctx tweak_key;
  49. };
  50. struct aesbs_ctr_ctx {
  51. struct aesbs_ctx key; /* must be first member */
  52. struct crypto_aes_ctx fallback;
  53. };
  54. static int aesbs_setkey(struct crypto_skcipher *tfm, const u8 *in_key,
  55. unsigned int key_len)
  56. {
  57. struct aesbs_ctx *ctx = crypto_skcipher_ctx(tfm);
  58. struct crypto_aes_ctx rk;
  59. int err;
  60. err = aes_expandkey(&rk, in_key, key_len);
  61. if (err)
  62. return err;
  63. ctx->rounds = 6 + key_len / 4;
  64. kernel_neon_begin();
  65. aesbs_convert_key(ctx->rk, rk.key_enc, ctx->rounds);
  66. kernel_neon_end();
  67. return 0;
  68. }
  69. static int __ecb_crypt(struct skcipher_request *req,
  70. void (*fn)(u8 out[], u8 const in[], u8 const rk[],
  71. int rounds, int blocks))
  72. {
  73. struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
  74. struct aesbs_ctx *ctx = crypto_skcipher_ctx(tfm);
  75. struct skcipher_walk walk;
  76. int err;
  77. err = skcipher_walk_virt(&walk, req, false);
  78. while (walk.nbytes >= AES_BLOCK_SIZE) {
  79. unsigned int blocks = walk.nbytes / AES_BLOCK_SIZE;
  80. if (walk.nbytes < walk.total)
  81. blocks = round_down(blocks,
  82. walk.stride / AES_BLOCK_SIZE);
  83. kernel_neon_begin();
  84. fn(walk.dst.virt.addr, walk.src.virt.addr, ctx->rk,
  85. ctx->rounds, blocks);
  86. kernel_neon_end();
  87. err = skcipher_walk_done(&walk,
  88. walk.nbytes - blocks * AES_BLOCK_SIZE);
  89. }
  90. return err;
  91. }
  92. static int ecb_encrypt(struct skcipher_request *req)
  93. {
  94. return __ecb_crypt(req, aesbs_ecb_encrypt);
  95. }
  96. static int ecb_decrypt(struct skcipher_request *req)
  97. {
  98. return __ecb_crypt(req, aesbs_ecb_decrypt);
  99. }
  100. static int aesbs_cbc_setkey(struct crypto_skcipher *tfm, const u8 *in_key,
  101. unsigned int key_len)
  102. {
  103. struct aesbs_cbc_ctx *ctx = crypto_skcipher_ctx(tfm);
  104. int err;
  105. err = aes_expandkey(&ctx->fallback, in_key, key_len);
  106. if (err)
  107. return err;
  108. ctx->key.rounds = 6 + key_len / 4;
  109. kernel_neon_begin();
  110. aesbs_convert_key(ctx->key.rk, ctx->fallback.key_enc, ctx->key.rounds);
  111. kernel_neon_end();
  112. return 0;
  113. }
  114. static int cbc_encrypt(struct skcipher_request *req)
  115. {
  116. struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
  117. const struct aesbs_cbc_ctx *ctx = crypto_skcipher_ctx(tfm);
  118. struct skcipher_walk walk;
  119. unsigned int nbytes;
  120. int err;
  121. err = skcipher_walk_virt(&walk, req, false);
  122. while ((nbytes = walk.nbytes) >= AES_BLOCK_SIZE) {
  123. const u8 *src = walk.src.virt.addr;
  124. u8 *dst = walk.dst.virt.addr;
  125. u8 *prev = walk.iv;
  126. do {
  127. crypto_xor_cpy(dst, src, prev, AES_BLOCK_SIZE);
  128. __aes_arm_encrypt(ctx->fallback.key_enc,
  129. ctx->key.rounds, dst, dst);
  130. prev = dst;
  131. src += AES_BLOCK_SIZE;
  132. dst += AES_BLOCK_SIZE;
  133. nbytes -= AES_BLOCK_SIZE;
  134. } while (nbytes >= AES_BLOCK_SIZE);
  135. memcpy(walk.iv, prev, AES_BLOCK_SIZE);
  136. err = skcipher_walk_done(&walk, nbytes);
  137. }
  138. return err;
  139. }
  140. static int cbc_decrypt(struct skcipher_request *req)
  141. {
  142. struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
  143. struct aesbs_cbc_ctx *ctx = crypto_skcipher_ctx(tfm);
  144. struct skcipher_walk walk;
  145. int err;
  146. err = skcipher_walk_virt(&walk, req, false);
  147. while (walk.nbytes >= AES_BLOCK_SIZE) {
  148. unsigned int blocks = walk.nbytes / AES_BLOCK_SIZE;
  149. if (walk.nbytes < walk.total)
  150. blocks = round_down(blocks,
  151. walk.stride / AES_BLOCK_SIZE);
  152. kernel_neon_begin();
  153. aesbs_cbc_decrypt(walk.dst.virt.addr, walk.src.virt.addr,
  154. ctx->key.rk, ctx->key.rounds, blocks,
  155. walk.iv);
  156. kernel_neon_end();
  157. err = skcipher_walk_done(&walk,
  158. walk.nbytes - blocks * AES_BLOCK_SIZE);
  159. }
  160. return err;
  161. }
  162. static int aesbs_ctr_setkey_sync(struct crypto_skcipher *tfm, const u8 *in_key,
  163. unsigned int key_len)
  164. {
  165. struct aesbs_ctr_ctx *ctx = crypto_skcipher_ctx(tfm);
  166. int err;
  167. err = aes_expandkey(&ctx->fallback, in_key, key_len);
  168. if (err)
  169. return err;
  170. ctx->key.rounds = 6 + key_len / 4;
  171. kernel_neon_begin();
  172. aesbs_convert_key(ctx->key.rk, ctx->fallback.key_enc, ctx->key.rounds);
  173. kernel_neon_end();
  174. return 0;
  175. }
  176. static int ctr_encrypt(struct skcipher_request *req)
  177. {
  178. struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
  179. struct aesbs_ctx *ctx = crypto_skcipher_ctx(tfm);
  180. struct skcipher_walk walk;
  181. u8 buf[AES_BLOCK_SIZE];
  182. int err;
  183. err = skcipher_walk_virt(&walk, req, false);
  184. while (walk.nbytes > 0) {
  185. const u8 *src = walk.src.virt.addr;
  186. u8 *dst = walk.dst.virt.addr;
  187. unsigned int bytes = walk.nbytes;
  188. if (unlikely(bytes < AES_BLOCK_SIZE))
  189. src = dst = memcpy(buf + sizeof(buf) - bytes,
  190. src, bytes);
  191. else if (walk.nbytes < walk.total)
  192. bytes &= ~(8 * AES_BLOCK_SIZE - 1);
  193. kernel_neon_begin();
  194. aesbs_ctr_encrypt(dst, src, ctx->rk, ctx->rounds, bytes, walk.iv);
  195. kernel_neon_end();
  196. if (unlikely(bytes < AES_BLOCK_SIZE))
  197. memcpy(walk.dst.virt.addr,
  198. buf + sizeof(buf) - bytes, bytes);
  199. err = skcipher_walk_done(&walk, walk.nbytes - bytes);
  200. }
  201. return err;
  202. }
  203. static void ctr_encrypt_one(struct crypto_skcipher *tfm, const u8 *src, u8 *dst)
  204. {
  205. struct aesbs_ctr_ctx *ctx = crypto_skcipher_ctx(tfm);
  206. __aes_arm_encrypt(ctx->fallback.key_enc, ctx->key.rounds, src, dst);
  207. }
  208. static int ctr_encrypt_sync(struct skcipher_request *req)
  209. {
  210. if (!crypto_simd_usable())
  211. return crypto_ctr_encrypt_walk(req, ctr_encrypt_one);
  212. return ctr_encrypt(req);
  213. }
  214. static int aesbs_xts_setkey(struct crypto_skcipher *tfm, const u8 *in_key,
  215. unsigned int key_len)
  216. {
  217. struct aesbs_xts_ctx *ctx = crypto_skcipher_ctx(tfm);
  218. int err;
  219. err = xts_verify_key(tfm, in_key, key_len);
  220. if (err)
  221. return err;
  222. key_len /= 2;
  223. err = aes_expandkey(&ctx->fallback, in_key, key_len);
  224. if (err)
  225. return err;
  226. err = aes_expandkey(&ctx->tweak_key, in_key + key_len, key_len);
  227. if (err)
  228. return err;
  229. return aesbs_setkey(tfm, in_key, key_len);
  230. }
  231. static int __xts_crypt(struct skcipher_request *req, bool encrypt,
  232. void (*fn)(u8 out[], u8 const in[], u8 const rk[],
  233. int rounds, int blocks, u8 iv[], int))
  234. {
  235. struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
  236. struct aesbs_xts_ctx *ctx = crypto_skcipher_ctx(tfm);
  237. const int rounds = ctx->key.rounds;
  238. int tail = req->cryptlen % AES_BLOCK_SIZE;
  239. struct skcipher_request subreq;
  240. u8 buf[2 * AES_BLOCK_SIZE];
  241. struct skcipher_walk walk;
  242. int err;
  243. if (req->cryptlen < AES_BLOCK_SIZE)
  244. return -EINVAL;
  245. if (unlikely(tail)) {
  246. skcipher_request_set_tfm(&subreq, tfm);
  247. skcipher_request_set_callback(&subreq,
  248. skcipher_request_flags(req),
  249. NULL, NULL);
  250. skcipher_request_set_crypt(&subreq, req->src, req->dst,
  251. req->cryptlen - tail, req->iv);
  252. req = &subreq;
  253. }
  254. err = skcipher_walk_virt(&walk, req, true);
  255. if (err)
  256. return err;
  257. __aes_arm_encrypt(ctx->tweak_key.key_enc, rounds, walk.iv, walk.iv);
  258. while (walk.nbytes >= AES_BLOCK_SIZE) {
  259. unsigned int blocks = walk.nbytes / AES_BLOCK_SIZE;
  260. int reorder_last_tweak = !encrypt && tail > 0;
  261. if (walk.nbytes < walk.total) {
  262. blocks = round_down(blocks,
  263. walk.stride / AES_BLOCK_SIZE);
  264. reorder_last_tweak = 0;
  265. }
  266. kernel_neon_begin();
  267. fn(walk.dst.virt.addr, walk.src.virt.addr, ctx->key.rk,
  268. rounds, blocks, walk.iv, reorder_last_tweak);
  269. kernel_neon_end();
  270. err = skcipher_walk_done(&walk,
  271. walk.nbytes - blocks * AES_BLOCK_SIZE);
  272. }
  273. if (err || likely(!tail))
  274. return err;
  275. /* handle ciphertext stealing */
  276. scatterwalk_map_and_copy(buf, req->dst, req->cryptlen - AES_BLOCK_SIZE,
  277. AES_BLOCK_SIZE, 0);
  278. memcpy(buf + AES_BLOCK_SIZE, buf, tail);
  279. scatterwalk_map_and_copy(buf, req->src, req->cryptlen, tail, 0);
  280. crypto_xor(buf, req->iv, AES_BLOCK_SIZE);
  281. if (encrypt)
  282. __aes_arm_encrypt(ctx->fallback.key_enc, rounds, buf, buf);
  283. else
  284. __aes_arm_decrypt(ctx->fallback.key_dec, rounds, buf, buf);
  285. crypto_xor(buf, req->iv, AES_BLOCK_SIZE);
  286. scatterwalk_map_and_copy(buf, req->dst, req->cryptlen - AES_BLOCK_SIZE,
  287. AES_BLOCK_SIZE + tail, 1);
  288. return 0;
  289. }
  290. static int xts_encrypt(struct skcipher_request *req)
  291. {
  292. return __xts_crypt(req, true, aesbs_xts_encrypt);
  293. }
  294. static int xts_decrypt(struct skcipher_request *req)
  295. {
  296. return __xts_crypt(req, false, aesbs_xts_decrypt);
  297. }
  298. static struct skcipher_alg aes_algs[] = { {
  299. .base.cra_name = "__ecb(aes)",
  300. .base.cra_driver_name = "__ecb-aes-neonbs",
  301. .base.cra_priority = 250,
  302. .base.cra_blocksize = AES_BLOCK_SIZE,
  303. .base.cra_ctxsize = sizeof(struct aesbs_ctx),
  304. .base.cra_module = THIS_MODULE,
  305. .base.cra_flags = CRYPTO_ALG_INTERNAL,
  306. .min_keysize = AES_MIN_KEY_SIZE,
  307. .max_keysize = AES_MAX_KEY_SIZE,
  308. .walksize = 8 * AES_BLOCK_SIZE,
  309. .setkey = aesbs_setkey,
  310. .encrypt = ecb_encrypt,
  311. .decrypt = ecb_decrypt,
  312. }, {
  313. .base.cra_name = "__cbc(aes)",
  314. .base.cra_driver_name = "__cbc-aes-neonbs",
  315. .base.cra_priority = 250,
  316. .base.cra_blocksize = AES_BLOCK_SIZE,
  317. .base.cra_ctxsize = sizeof(struct aesbs_cbc_ctx),
  318. .base.cra_module = THIS_MODULE,
  319. .base.cra_flags = CRYPTO_ALG_INTERNAL,
  320. .min_keysize = AES_MIN_KEY_SIZE,
  321. .max_keysize = AES_MAX_KEY_SIZE,
  322. .walksize = 8 * AES_BLOCK_SIZE,
  323. .ivsize = AES_BLOCK_SIZE,
  324. .setkey = aesbs_cbc_setkey,
  325. .encrypt = cbc_encrypt,
  326. .decrypt = cbc_decrypt,
  327. }, {
  328. .base.cra_name = "__ctr(aes)",
  329. .base.cra_driver_name = "__ctr-aes-neonbs",
  330. .base.cra_priority = 250,
  331. .base.cra_blocksize = 1,
  332. .base.cra_ctxsize = sizeof(struct aesbs_ctx),
  333. .base.cra_module = THIS_MODULE,
  334. .base.cra_flags = CRYPTO_ALG_INTERNAL,
  335. .min_keysize = AES_MIN_KEY_SIZE,
  336. .max_keysize = AES_MAX_KEY_SIZE,
  337. .chunksize = AES_BLOCK_SIZE,
  338. .walksize = 8 * AES_BLOCK_SIZE,
  339. .ivsize = AES_BLOCK_SIZE,
  340. .setkey = aesbs_setkey,
  341. .encrypt = ctr_encrypt,
  342. .decrypt = ctr_encrypt,
  343. }, {
  344. .base.cra_name = "ctr(aes)",
  345. .base.cra_driver_name = "ctr-aes-neonbs-sync",
  346. .base.cra_priority = 250 - 1,
  347. .base.cra_blocksize = 1,
  348. .base.cra_ctxsize = sizeof(struct aesbs_ctr_ctx),
  349. .base.cra_module = THIS_MODULE,
  350. .min_keysize = AES_MIN_KEY_SIZE,
  351. .max_keysize = AES_MAX_KEY_SIZE,
  352. .chunksize = AES_BLOCK_SIZE,
  353. .walksize = 8 * AES_BLOCK_SIZE,
  354. .ivsize = AES_BLOCK_SIZE,
  355. .setkey = aesbs_ctr_setkey_sync,
  356. .encrypt = ctr_encrypt_sync,
  357. .decrypt = ctr_encrypt_sync,
  358. }, {
  359. .base.cra_name = "__xts(aes)",
  360. .base.cra_driver_name = "__xts-aes-neonbs",
  361. .base.cra_priority = 250,
  362. .base.cra_blocksize = AES_BLOCK_SIZE,
  363. .base.cra_ctxsize = sizeof(struct aesbs_xts_ctx),
  364. .base.cra_module = THIS_MODULE,
  365. .base.cra_flags = CRYPTO_ALG_INTERNAL,
  366. .min_keysize = 2 * AES_MIN_KEY_SIZE,
  367. .max_keysize = 2 * AES_MAX_KEY_SIZE,
  368. .walksize = 8 * AES_BLOCK_SIZE,
  369. .ivsize = AES_BLOCK_SIZE,
  370. .setkey = aesbs_xts_setkey,
  371. .encrypt = xts_encrypt,
  372. .decrypt = xts_decrypt,
  373. } };
  374. static struct simd_skcipher_alg *aes_simd_algs[ARRAY_SIZE(aes_algs)];
  375. static void aes_exit(void)
  376. {
  377. int i;
  378. for (i = 0; i < ARRAY_SIZE(aes_simd_algs); i++)
  379. if (aes_simd_algs[i])
  380. simd_skcipher_free(aes_simd_algs[i]);
  381. crypto_unregister_skciphers(aes_algs, ARRAY_SIZE(aes_algs));
  382. }
  383. static int __init aes_init(void)
  384. {
  385. struct simd_skcipher_alg *simd;
  386. const char *basename;
  387. const char *algname;
  388. const char *drvname;
  389. int err;
  390. int i;
  391. if (!(elf_hwcap & HWCAP_NEON))
  392. return -ENODEV;
  393. err = crypto_register_skciphers(aes_algs, ARRAY_SIZE(aes_algs));
  394. if (err)
  395. return err;
  396. for (i = 0; i < ARRAY_SIZE(aes_algs); i++) {
  397. if (!(aes_algs[i].base.cra_flags & CRYPTO_ALG_INTERNAL))
  398. continue;
  399. algname = aes_algs[i].base.cra_name + 2;
  400. drvname = aes_algs[i].base.cra_driver_name + 2;
  401. basename = aes_algs[i].base.cra_driver_name;
  402. simd = simd_skcipher_create_compat(aes_algs + i, algname, drvname, basename);
  403. err = PTR_ERR(simd);
  404. if (IS_ERR(simd))
  405. goto unregister_simds;
  406. aes_simd_algs[i] = simd;
  407. }
  408. return 0;
  409. unregister_simds:
  410. aes_exit();
  411. return err;
  412. }
  413. late_initcall(aes_init);
  414. module_exit(aes_exit);