ccp-crypto-sha.c 10 KB

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  1. /*
  2. * AMD Cryptographic Coprocessor (CCP) SHA crypto API support
  3. *
  4. * Copyright (C) 2013 Advanced Micro Devices, Inc.
  5. *
  6. * Author: Tom Lendacky <thomas.lendacky@amd.com>
  7. *
  8. * This program is free software; you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License version 2 as
  10. * published by the Free Software Foundation.
  11. */
  12. #include <linux/module.h>
  13. #include <linux/sched.h>
  14. #include <linux/delay.h>
  15. #include <linux/scatterlist.h>
  16. #include <linux/crypto.h>
  17. #include <crypto/algapi.h>
  18. #include <crypto/hash.h>
  19. #include <crypto/internal/hash.h>
  20. #include <crypto/sha.h>
  21. #include <crypto/scatterwalk.h>
  22. #include "ccp-crypto.h"
  23. static int ccp_sha_complete(struct crypto_async_request *async_req, int ret)
  24. {
  25. struct ahash_request *req = ahash_request_cast(async_req);
  26. struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
  27. struct ccp_sha_req_ctx *rctx = ahash_request_ctx(req);
  28. unsigned int digest_size = crypto_ahash_digestsize(tfm);
  29. if (ret)
  30. goto e_free;
  31. if (rctx->hash_rem) {
  32. /* Save remaining data to buffer */
  33. unsigned int offset = rctx->nbytes - rctx->hash_rem;
  34. scatterwalk_map_and_copy(rctx->buf, rctx->src,
  35. offset, rctx->hash_rem, 0);
  36. rctx->buf_count = rctx->hash_rem;
  37. } else
  38. rctx->buf_count = 0;
  39. /* Update result area if supplied */
  40. if (req->result)
  41. memcpy(req->result, rctx->ctx, digest_size);
  42. e_free:
  43. sg_free_table(&rctx->data_sg);
  44. return ret;
  45. }
  46. static int ccp_do_sha_update(struct ahash_request *req, unsigned int nbytes,
  47. unsigned int final)
  48. {
  49. struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
  50. struct ccp_ctx *ctx = crypto_ahash_ctx(tfm);
  51. struct ccp_sha_req_ctx *rctx = ahash_request_ctx(req);
  52. struct scatterlist *sg;
  53. unsigned int block_size =
  54. crypto_tfm_alg_blocksize(crypto_ahash_tfm(tfm));
  55. unsigned int sg_count;
  56. gfp_t gfp;
  57. u64 len;
  58. int ret;
  59. len = (u64)rctx->buf_count + (u64)nbytes;
  60. if (!final && (len <= block_size)) {
  61. scatterwalk_map_and_copy(rctx->buf + rctx->buf_count, req->src,
  62. 0, nbytes, 0);
  63. rctx->buf_count += nbytes;
  64. return 0;
  65. }
  66. rctx->src = req->src;
  67. rctx->nbytes = nbytes;
  68. rctx->final = final;
  69. rctx->hash_rem = final ? 0 : len & (block_size - 1);
  70. rctx->hash_cnt = len - rctx->hash_rem;
  71. if (!final && !rctx->hash_rem) {
  72. /* CCP can't do zero length final, so keep some data around */
  73. rctx->hash_cnt -= block_size;
  74. rctx->hash_rem = block_size;
  75. }
  76. /* Initialize the context scatterlist */
  77. sg_init_one(&rctx->ctx_sg, rctx->ctx, sizeof(rctx->ctx));
  78. sg = NULL;
  79. if (rctx->buf_count && nbytes) {
  80. /* Build the data scatterlist table - allocate enough entries
  81. * for both data pieces (buffer and input data)
  82. */
  83. gfp = req->base.flags & CRYPTO_TFM_REQ_MAY_SLEEP ?
  84. GFP_KERNEL : GFP_ATOMIC;
  85. sg_count = sg_nents(req->src) + 1;
  86. ret = sg_alloc_table(&rctx->data_sg, sg_count, gfp);
  87. if (ret)
  88. return ret;
  89. sg_init_one(&rctx->buf_sg, rctx->buf, rctx->buf_count);
  90. sg = ccp_crypto_sg_table_add(&rctx->data_sg, &rctx->buf_sg);
  91. sg = ccp_crypto_sg_table_add(&rctx->data_sg, req->src);
  92. sg_mark_end(sg);
  93. sg = rctx->data_sg.sgl;
  94. } else if (rctx->buf_count) {
  95. sg_init_one(&rctx->buf_sg, rctx->buf, rctx->buf_count);
  96. sg = &rctx->buf_sg;
  97. } else if (nbytes) {
  98. sg = req->src;
  99. }
  100. rctx->msg_bits += (rctx->hash_cnt << 3); /* Total in bits */
  101. memset(&rctx->cmd, 0, sizeof(rctx->cmd));
  102. INIT_LIST_HEAD(&rctx->cmd.entry);
  103. rctx->cmd.engine = CCP_ENGINE_SHA;
  104. rctx->cmd.u.sha.type = rctx->type;
  105. rctx->cmd.u.sha.ctx = &rctx->ctx_sg;
  106. rctx->cmd.u.sha.ctx_len = sizeof(rctx->ctx);
  107. rctx->cmd.u.sha.src = sg;
  108. rctx->cmd.u.sha.src_len = rctx->hash_cnt;
  109. rctx->cmd.u.sha.opad = ctx->u.sha.key_len ?
  110. &ctx->u.sha.opad_sg : NULL;
  111. rctx->cmd.u.sha.opad_len = ctx->u.sha.key_len ?
  112. ctx->u.sha.opad_count : 0;
  113. rctx->cmd.u.sha.first = rctx->first;
  114. rctx->cmd.u.sha.final = rctx->final;
  115. rctx->cmd.u.sha.msg_bits = rctx->msg_bits;
  116. rctx->first = 0;
  117. ret = ccp_crypto_enqueue_request(&req->base, &rctx->cmd);
  118. return ret;
  119. }
  120. static int ccp_sha_init(struct ahash_request *req)
  121. {
  122. struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
  123. struct ccp_ctx *ctx = crypto_ahash_ctx(tfm);
  124. struct ccp_sha_req_ctx *rctx = ahash_request_ctx(req);
  125. struct ccp_crypto_ahash_alg *alg =
  126. ccp_crypto_ahash_alg(crypto_ahash_tfm(tfm));
  127. unsigned int block_size =
  128. crypto_tfm_alg_blocksize(crypto_ahash_tfm(tfm));
  129. memset(rctx, 0, sizeof(*rctx));
  130. rctx->type = alg->type;
  131. rctx->first = 1;
  132. if (ctx->u.sha.key_len) {
  133. /* Buffer the HMAC key for first update */
  134. memcpy(rctx->buf, ctx->u.sha.ipad, block_size);
  135. rctx->buf_count = block_size;
  136. }
  137. return 0;
  138. }
  139. static int ccp_sha_update(struct ahash_request *req)
  140. {
  141. return ccp_do_sha_update(req, req->nbytes, 0);
  142. }
  143. static int ccp_sha_final(struct ahash_request *req)
  144. {
  145. return ccp_do_sha_update(req, 0, 1);
  146. }
  147. static int ccp_sha_finup(struct ahash_request *req)
  148. {
  149. return ccp_do_sha_update(req, req->nbytes, 1);
  150. }
  151. static int ccp_sha_digest(struct ahash_request *req)
  152. {
  153. int ret;
  154. ret = ccp_sha_init(req);
  155. if (ret)
  156. return ret;
  157. return ccp_sha_finup(req);
  158. }
  159. static int ccp_sha_setkey(struct crypto_ahash *tfm, const u8 *key,
  160. unsigned int key_len)
  161. {
  162. struct ccp_ctx *ctx = crypto_tfm_ctx(crypto_ahash_tfm(tfm));
  163. struct crypto_shash *shash = ctx->u.sha.hmac_tfm;
  164. SHASH_DESC_ON_STACK(sdesc, shash);
  165. unsigned int block_size = crypto_shash_blocksize(shash);
  166. unsigned int digest_size = crypto_shash_digestsize(shash);
  167. int i, ret;
  168. /* Set to zero until complete */
  169. ctx->u.sha.key_len = 0;
  170. /* Clear key area to provide zero padding for keys smaller
  171. * than the block size
  172. */
  173. memset(ctx->u.sha.key, 0, sizeof(ctx->u.sha.key));
  174. if (key_len > block_size) {
  175. /* Must hash the input key */
  176. sdesc->tfm = shash;
  177. sdesc->flags = crypto_ahash_get_flags(tfm) &
  178. CRYPTO_TFM_REQ_MAY_SLEEP;
  179. ret = crypto_shash_digest(sdesc, key, key_len,
  180. ctx->u.sha.key);
  181. if (ret) {
  182. crypto_ahash_set_flags(tfm, CRYPTO_TFM_RES_BAD_KEY_LEN);
  183. return -EINVAL;
  184. }
  185. key_len = digest_size;
  186. } else
  187. memcpy(ctx->u.sha.key, key, key_len);
  188. for (i = 0; i < block_size; i++) {
  189. ctx->u.sha.ipad[i] = ctx->u.sha.key[i] ^ 0x36;
  190. ctx->u.sha.opad[i] = ctx->u.sha.key[i] ^ 0x5c;
  191. }
  192. sg_init_one(&ctx->u.sha.opad_sg, ctx->u.sha.opad, block_size);
  193. ctx->u.sha.opad_count = block_size;
  194. ctx->u.sha.key_len = key_len;
  195. return 0;
  196. }
  197. static int ccp_sha_cra_init(struct crypto_tfm *tfm)
  198. {
  199. struct ccp_ctx *ctx = crypto_tfm_ctx(tfm);
  200. struct crypto_ahash *ahash = __crypto_ahash_cast(tfm);
  201. ctx->complete = ccp_sha_complete;
  202. ctx->u.sha.key_len = 0;
  203. crypto_ahash_set_reqsize(ahash, sizeof(struct ccp_sha_req_ctx));
  204. return 0;
  205. }
  206. static void ccp_sha_cra_exit(struct crypto_tfm *tfm)
  207. {
  208. }
  209. static int ccp_hmac_sha_cra_init(struct crypto_tfm *tfm)
  210. {
  211. struct ccp_ctx *ctx = crypto_tfm_ctx(tfm);
  212. struct ccp_crypto_ahash_alg *alg = ccp_crypto_ahash_alg(tfm);
  213. struct crypto_shash *hmac_tfm;
  214. hmac_tfm = crypto_alloc_shash(alg->child_alg, 0, 0);
  215. if (IS_ERR(hmac_tfm)) {
  216. pr_warn("could not load driver %s need for HMAC support\n",
  217. alg->child_alg);
  218. return PTR_ERR(hmac_tfm);
  219. }
  220. ctx->u.sha.hmac_tfm = hmac_tfm;
  221. return ccp_sha_cra_init(tfm);
  222. }
  223. static void ccp_hmac_sha_cra_exit(struct crypto_tfm *tfm)
  224. {
  225. struct ccp_ctx *ctx = crypto_tfm_ctx(tfm);
  226. if (ctx->u.sha.hmac_tfm)
  227. crypto_free_shash(ctx->u.sha.hmac_tfm);
  228. ccp_sha_cra_exit(tfm);
  229. }
  230. struct ccp_sha_def {
  231. const char *name;
  232. const char *drv_name;
  233. enum ccp_sha_type type;
  234. u32 digest_size;
  235. u32 block_size;
  236. };
  237. static struct ccp_sha_def sha_algs[] = {
  238. {
  239. .name = "sha1",
  240. .drv_name = "sha1-ccp",
  241. .type = CCP_SHA_TYPE_1,
  242. .digest_size = SHA1_DIGEST_SIZE,
  243. .block_size = SHA1_BLOCK_SIZE,
  244. },
  245. {
  246. .name = "sha224",
  247. .drv_name = "sha224-ccp",
  248. .type = CCP_SHA_TYPE_224,
  249. .digest_size = SHA224_DIGEST_SIZE,
  250. .block_size = SHA224_BLOCK_SIZE,
  251. },
  252. {
  253. .name = "sha256",
  254. .drv_name = "sha256-ccp",
  255. .type = CCP_SHA_TYPE_256,
  256. .digest_size = SHA256_DIGEST_SIZE,
  257. .block_size = SHA256_BLOCK_SIZE,
  258. },
  259. };
  260. static int ccp_register_hmac_alg(struct list_head *head,
  261. const struct ccp_sha_def *def,
  262. const struct ccp_crypto_ahash_alg *base_alg)
  263. {
  264. struct ccp_crypto_ahash_alg *ccp_alg;
  265. struct ahash_alg *alg;
  266. struct hash_alg_common *halg;
  267. struct crypto_alg *base;
  268. int ret;
  269. ccp_alg = kzalloc(sizeof(*ccp_alg), GFP_KERNEL);
  270. if (!ccp_alg)
  271. return -ENOMEM;
  272. /* Copy the base algorithm and only change what's necessary */
  273. *ccp_alg = *base_alg;
  274. INIT_LIST_HEAD(&ccp_alg->entry);
  275. strncpy(ccp_alg->child_alg, def->name, CRYPTO_MAX_ALG_NAME);
  276. alg = &ccp_alg->alg;
  277. alg->setkey = ccp_sha_setkey;
  278. halg = &alg->halg;
  279. base = &halg->base;
  280. snprintf(base->cra_name, CRYPTO_MAX_ALG_NAME, "hmac(%s)", def->name);
  281. snprintf(base->cra_driver_name, CRYPTO_MAX_ALG_NAME, "hmac-%s",
  282. def->drv_name);
  283. base->cra_init = ccp_hmac_sha_cra_init;
  284. base->cra_exit = ccp_hmac_sha_cra_exit;
  285. ret = crypto_register_ahash(alg);
  286. if (ret) {
  287. pr_err("%s ahash algorithm registration error (%d)\n",
  288. base->cra_name, ret);
  289. kfree(ccp_alg);
  290. return ret;
  291. }
  292. list_add(&ccp_alg->entry, head);
  293. return ret;
  294. }
  295. static int ccp_register_sha_alg(struct list_head *head,
  296. const struct ccp_sha_def *def)
  297. {
  298. struct ccp_crypto_ahash_alg *ccp_alg;
  299. struct ahash_alg *alg;
  300. struct hash_alg_common *halg;
  301. struct crypto_alg *base;
  302. int ret;
  303. ccp_alg = kzalloc(sizeof(*ccp_alg), GFP_KERNEL);
  304. if (!ccp_alg)
  305. return -ENOMEM;
  306. INIT_LIST_HEAD(&ccp_alg->entry);
  307. ccp_alg->type = def->type;
  308. alg = &ccp_alg->alg;
  309. alg->init = ccp_sha_init;
  310. alg->update = ccp_sha_update;
  311. alg->final = ccp_sha_final;
  312. alg->finup = ccp_sha_finup;
  313. alg->digest = ccp_sha_digest;
  314. halg = &alg->halg;
  315. halg->digestsize = def->digest_size;
  316. base = &halg->base;
  317. snprintf(base->cra_name, CRYPTO_MAX_ALG_NAME, "%s", def->name);
  318. snprintf(base->cra_driver_name, CRYPTO_MAX_ALG_NAME, "%s",
  319. def->drv_name);
  320. base->cra_flags = CRYPTO_ALG_TYPE_AHASH | CRYPTO_ALG_ASYNC |
  321. CRYPTO_ALG_KERN_DRIVER_ONLY |
  322. CRYPTO_ALG_NEED_FALLBACK;
  323. base->cra_blocksize = def->block_size;
  324. base->cra_ctxsize = sizeof(struct ccp_ctx);
  325. base->cra_priority = CCP_CRA_PRIORITY;
  326. base->cra_type = &crypto_ahash_type;
  327. base->cra_init = ccp_sha_cra_init;
  328. base->cra_exit = ccp_sha_cra_exit;
  329. base->cra_module = THIS_MODULE;
  330. ret = crypto_register_ahash(alg);
  331. if (ret) {
  332. pr_err("%s ahash algorithm registration error (%d)\n",
  333. base->cra_name, ret);
  334. kfree(ccp_alg);
  335. return ret;
  336. }
  337. list_add(&ccp_alg->entry, head);
  338. ret = ccp_register_hmac_alg(head, def, ccp_alg);
  339. return ret;
  340. }
  341. int ccp_register_sha_algs(struct list_head *head)
  342. {
  343. int i, ret;
  344. for (i = 0; i < ARRAY_SIZE(sha_algs); i++) {
  345. ret = ccp_register_sha_alg(head, &sha_algs[i]);
  346. if (ret)
  347. return ret;
  348. }
  349. return 0;
  350. }