sha512_neon_glue.c 8.2 KB

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  1. /*
  2. * Glue code for the SHA512 Secure Hash Algorithm assembly implementation
  3. * using NEON instructions.
  4. *
  5. * Copyright © 2014 Jussi Kivilinna <jussi.kivilinna@iki.fi>
  6. *
  7. * This file is based on sha512_ssse3_glue.c:
  8. * Copyright (C) 2013 Intel Corporation
  9. * Author: Tim Chen <tim.c.chen@linux.intel.com>
  10. *
  11. * This program is free software; you can redistribute it and/or modify it
  12. * under the terms of the GNU General Public License as published by the Free
  13. * Software Foundation; either version 2 of the License, or (at your option)
  14. * any later version.
  15. *
  16. */
  17. #include <crypto/internal/hash.h>
  18. #include <linux/init.h>
  19. #include <linux/module.h>
  20. #include <linux/mm.h>
  21. #include <linux/cryptohash.h>
  22. #include <linux/types.h>
  23. #include <linux/string.h>
  24. #include <crypto/sha.h>
  25. #include <asm/byteorder.h>
  26. #include <asm/simd.h>
  27. #include <asm/neon.h>
  28. static const u64 sha512_k[] = {
  29. 0x428a2f98d728ae22ULL, 0x7137449123ef65cdULL,
  30. 0xb5c0fbcfec4d3b2fULL, 0xe9b5dba58189dbbcULL,
  31. 0x3956c25bf348b538ULL, 0x59f111f1b605d019ULL,
  32. 0x923f82a4af194f9bULL, 0xab1c5ed5da6d8118ULL,
  33. 0xd807aa98a3030242ULL, 0x12835b0145706fbeULL,
  34. 0x243185be4ee4b28cULL, 0x550c7dc3d5ffb4e2ULL,
  35. 0x72be5d74f27b896fULL, 0x80deb1fe3b1696b1ULL,
  36. 0x9bdc06a725c71235ULL, 0xc19bf174cf692694ULL,
  37. 0xe49b69c19ef14ad2ULL, 0xefbe4786384f25e3ULL,
  38. 0x0fc19dc68b8cd5b5ULL, 0x240ca1cc77ac9c65ULL,
  39. 0x2de92c6f592b0275ULL, 0x4a7484aa6ea6e483ULL,
  40. 0x5cb0a9dcbd41fbd4ULL, 0x76f988da831153b5ULL,
  41. 0x983e5152ee66dfabULL, 0xa831c66d2db43210ULL,
  42. 0xb00327c898fb213fULL, 0xbf597fc7beef0ee4ULL,
  43. 0xc6e00bf33da88fc2ULL, 0xd5a79147930aa725ULL,
  44. 0x06ca6351e003826fULL, 0x142929670a0e6e70ULL,
  45. 0x27b70a8546d22ffcULL, 0x2e1b21385c26c926ULL,
  46. 0x4d2c6dfc5ac42aedULL, 0x53380d139d95b3dfULL,
  47. 0x650a73548baf63deULL, 0x766a0abb3c77b2a8ULL,
  48. 0x81c2c92e47edaee6ULL, 0x92722c851482353bULL,
  49. 0xa2bfe8a14cf10364ULL, 0xa81a664bbc423001ULL,
  50. 0xc24b8b70d0f89791ULL, 0xc76c51a30654be30ULL,
  51. 0xd192e819d6ef5218ULL, 0xd69906245565a910ULL,
  52. 0xf40e35855771202aULL, 0x106aa07032bbd1b8ULL,
  53. 0x19a4c116b8d2d0c8ULL, 0x1e376c085141ab53ULL,
  54. 0x2748774cdf8eeb99ULL, 0x34b0bcb5e19b48a8ULL,
  55. 0x391c0cb3c5c95a63ULL, 0x4ed8aa4ae3418acbULL,
  56. 0x5b9cca4f7763e373ULL, 0x682e6ff3d6b2b8a3ULL,
  57. 0x748f82ee5defb2fcULL, 0x78a5636f43172f60ULL,
  58. 0x84c87814a1f0ab72ULL, 0x8cc702081a6439ecULL,
  59. 0x90befffa23631e28ULL, 0xa4506cebde82bde9ULL,
  60. 0xbef9a3f7b2c67915ULL, 0xc67178f2e372532bULL,
  61. 0xca273eceea26619cULL, 0xd186b8c721c0c207ULL,
  62. 0xeada7dd6cde0eb1eULL, 0xf57d4f7fee6ed178ULL,
  63. 0x06f067aa72176fbaULL, 0x0a637dc5a2c898a6ULL,
  64. 0x113f9804bef90daeULL, 0x1b710b35131c471bULL,
  65. 0x28db77f523047d84ULL, 0x32caab7b40c72493ULL,
  66. 0x3c9ebe0a15c9bebcULL, 0x431d67c49c100d4cULL,
  67. 0x4cc5d4becb3e42b6ULL, 0x597f299cfc657e2aULL,
  68. 0x5fcb6fab3ad6faecULL, 0x6c44198c4a475817ULL
  69. };
  70. asmlinkage void sha512_transform_neon(u64 *digest, const void *data,
  71. const u64 k[], unsigned int num_blks);
  72. static int sha512_neon_init(struct shash_desc *desc)
  73. {
  74. struct sha512_state *sctx = shash_desc_ctx(desc);
  75. sctx->state[0] = SHA512_H0;
  76. sctx->state[1] = SHA512_H1;
  77. sctx->state[2] = SHA512_H2;
  78. sctx->state[3] = SHA512_H3;
  79. sctx->state[4] = SHA512_H4;
  80. sctx->state[5] = SHA512_H5;
  81. sctx->state[6] = SHA512_H6;
  82. sctx->state[7] = SHA512_H7;
  83. sctx->count[0] = sctx->count[1] = 0;
  84. return 0;
  85. }
  86. static int __sha512_neon_update(struct shash_desc *desc, const u8 *data,
  87. unsigned int len, unsigned int partial)
  88. {
  89. struct sha512_state *sctx = shash_desc_ctx(desc);
  90. unsigned int done = 0;
  91. sctx->count[0] += len;
  92. if (sctx->count[0] < len)
  93. sctx->count[1]++;
  94. if (partial) {
  95. done = SHA512_BLOCK_SIZE - partial;
  96. memcpy(sctx->buf + partial, data, done);
  97. sha512_transform_neon(sctx->state, sctx->buf, sha512_k, 1);
  98. }
  99. if (len - done >= SHA512_BLOCK_SIZE) {
  100. const unsigned int rounds = (len - done) / SHA512_BLOCK_SIZE;
  101. sha512_transform_neon(sctx->state, data + done, sha512_k,
  102. rounds);
  103. done += rounds * SHA512_BLOCK_SIZE;
  104. }
  105. memcpy(sctx->buf, data + done, len - done);
  106. return 0;
  107. }
  108. static int sha512_neon_update(struct shash_desc *desc, const u8 *data,
  109. unsigned int len)
  110. {
  111. struct sha512_state *sctx = shash_desc_ctx(desc);
  112. unsigned int partial = sctx->count[0] % SHA512_BLOCK_SIZE;
  113. int res;
  114. /* Handle the fast case right here */
  115. if (partial + len < SHA512_BLOCK_SIZE) {
  116. sctx->count[0] += len;
  117. if (sctx->count[0] < len)
  118. sctx->count[1]++;
  119. memcpy(sctx->buf + partial, data, len);
  120. return 0;
  121. }
  122. if (!may_use_simd()) {
  123. res = crypto_sha512_update(desc, data, len);
  124. } else {
  125. kernel_neon_begin();
  126. res = __sha512_neon_update(desc, data, len, partial);
  127. kernel_neon_end();
  128. }
  129. return res;
  130. }
  131. /* Add padding and return the message digest. */
  132. static int sha512_neon_final(struct shash_desc *desc, u8 *out)
  133. {
  134. struct sha512_state *sctx = shash_desc_ctx(desc);
  135. unsigned int i, index, padlen;
  136. __be64 *dst = (__be64 *)out;
  137. __be64 bits[2];
  138. static const u8 padding[SHA512_BLOCK_SIZE] = { 0x80, };
  139. /* save number of bits */
  140. bits[1] = cpu_to_be64(sctx->count[0] << 3);
  141. bits[0] = cpu_to_be64(sctx->count[1] << 3 | sctx->count[0] >> 61);
  142. /* Pad out to 112 mod 128 and append length */
  143. index = sctx->count[0] & 0x7f;
  144. padlen = (index < 112) ? (112 - index) : ((128+112) - index);
  145. if (!may_use_simd()) {
  146. crypto_sha512_update(desc, padding, padlen);
  147. crypto_sha512_update(desc, (const u8 *)&bits, sizeof(bits));
  148. } else {
  149. kernel_neon_begin();
  150. /* We need to fill a whole block for __sha512_neon_update() */
  151. if (padlen <= 112) {
  152. sctx->count[0] += padlen;
  153. if (sctx->count[0] < padlen)
  154. sctx->count[1]++;
  155. memcpy(sctx->buf + index, padding, padlen);
  156. } else {
  157. __sha512_neon_update(desc, padding, padlen, index);
  158. }
  159. __sha512_neon_update(desc, (const u8 *)&bits,
  160. sizeof(bits), 112);
  161. kernel_neon_end();
  162. }
  163. /* Store state in digest */
  164. for (i = 0; i < 8; i++)
  165. dst[i] = cpu_to_be64(sctx->state[i]);
  166. /* Wipe context */
  167. memset(sctx, 0, sizeof(*sctx));
  168. return 0;
  169. }
  170. static int sha512_neon_export(struct shash_desc *desc, void *out)
  171. {
  172. struct sha512_state *sctx = shash_desc_ctx(desc);
  173. memcpy(out, sctx, sizeof(*sctx));
  174. return 0;
  175. }
  176. static int sha512_neon_import(struct shash_desc *desc, const void *in)
  177. {
  178. struct sha512_state *sctx = shash_desc_ctx(desc);
  179. memcpy(sctx, in, sizeof(*sctx));
  180. return 0;
  181. }
  182. static int sha384_neon_init(struct shash_desc *desc)
  183. {
  184. struct sha512_state *sctx = shash_desc_ctx(desc);
  185. sctx->state[0] = SHA384_H0;
  186. sctx->state[1] = SHA384_H1;
  187. sctx->state[2] = SHA384_H2;
  188. sctx->state[3] = SHA384_H3;
  189. sctx->state[4] = SHA384_H4;
  190. sctx->state[5] = SHA384_H5;
  191. sctx->state[6] = SHA384_H6;
  192. sctx->state[7] = SHA384_H7;
  193. sctx->count[0] = sctx->count[1] = 0;
  194. return 0;
  195. }
  196. static int sha384_neon_final(struct shash_desc *desc, u8 *hash)
  197. {
  198. u8 D[SHA512_DIGEST_SIZE];
  199. sha512_neon_final(desc, D);
  200. memcpy(hash, D, SHA384_DIGEST_SIZE);
  201. memset(D, 0, SHA512_DIGEST_SIZE);
  202. return 0;
  203. }
  204. static struct shash_alg algs[] = { {
  205. .digestsize = SHA512_DIGEST_SIZE,
  206. .init = sha512_neon_init,
  207. .update = sha512_neon_update,
  208. .final = sha512_neon_final,
  209. .export = sha512_neon_export,
  210. .import = sha512_neon_import,
  211. .descsize = sizeof(struct sha512_state),
  212. .statesize = sizeof(struct sha512_state),
  213. .base = {
  214. .cra_name = "sha512",
  215. .cra_driver_name = "sha512-neon",
  216. .cra_priority = 250,
  217. .cra_flags = CRYPTO_ALG_TYPE_SHASH,
  218. .cra_blocksize = SHA512_BLOCK_SIZE,
  219. .cra_module = THIS_MODULE,
  220. }
  221. }, {
  222. .digestsize = SHA384_DIGEST_SIZE,
  223. .init = sha384_neon_init,
  224. .update = sha512_neon_update,
  225. .final = sha384_neon_final,
  226. .export = sha512_neon_export,
  227. .import = sha512_neon_import,
  228. .descsize = sizeof(struct sha512_state),
  229. .statesize = sizeof(struct sha512_state),
  230. .base = {
  231. .cra_name = "sha384",
  232. .cra_driver_name = "sha384-neon",
  233. .cra_priority = 250,
  234. .cra_flags = CRYPTO_ALG_TYPE_SHASH,
  235. .cra_blocksize = SHA384_BLOCK_SIZE,
  236. .cra_module = THIS_MODULE,
  237. }
  238. } };
  239. static int __init sha512_neon_mod_init(void)
  240. {
  241. if (!cpu_has_neon())
  242. return -ENODEV;
  243. return crypto_register_shashes(algs, ARRAY_SIZE(algs));
  244. }
  245. static void __exit sha512_neon_mod_fini(void)
  246. {
  247. crypto_unregister_shashes(algs, ARRAY_SIZE(algs));
  248. }
  249. module_init(sha512_neon_mod_init);
  250. module_exit(sha512_neon_mod_fini);
  251. MODULE_LICENSE("GPL");
  252. MODULE_DESCRIPTION("SHA512 Secure Hash Algorithm, NEON accelerated");
  253. MODULE_ALIAS("sha512");
  254. MODULE_ALIAS("sha384");