dm-crypt.c 30 KB

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  1. /*
  2. * Copyright (C) 2003 Christophe Saout <christophe@saout.de>
  3. * Copyright (C) 2004 Clemens Fruhwirth <clemens@endorphin.org>
  4. * Copyright (C) 2006-2008 Red Hat, Inc. All rights reserved.
  5. *
  6. * This file is released under the GPL.
  7. */
  8. #include <linux/completion.h>
  9. #include <linux/err.h>
  10. #include <linux/module.h>
  11. #include <linux/init.h>
  12. #include <linux/kernel.h>
  13. #include <linux/bio.h>
  14. #include <linux/blkdev.h>
  15. #include <linux/mempool.h>
  16. #include <linux/slab.h>
  17. #include <linux/crypto.h>
  18. #include <linux/workqueue.h>
  19. #include <linux/backing-dev.h>
  20. #include <asm/atomic.h>
  21. #include <linux/scatterlist.h>
  22. #include <asm/page.h>
  23. #include <asm/unaligned.h>
  24. #include "dm.h"
  25. #define DM_MSG_PREFIX "crypt"
  26. #define MESG_STR(x) x, sizeof(x)
  27. /*
  28. * context holding the current state of a multi-part conversion
  29. */
  30. struct convert_context {
  31. struct completion restart;
  32. struct bio *bio_in;
  33. struct bio *bio_out;
  34. unsigned int offset_in;
  35. unsigned int offset_out;
  36. unsigned int idx_in;
  37. unsigned int idx_out;
  38. sector_t sector;
  39. atomic_t pending;
  40. };
  41. /*
  42. * per bio private data
  43. */
  44. struct dm_crypt_io {
  45. struct dm_target *target;
  46. struct bio *base_bio;
  47. struct work_struct work;
  48. struct convert_context ctx;
  49. atomic_t pending;
  50. int error;
  51. sector_t sector;
  52. };
  53. struct dm_crypt_request {
  54. struct scatterlist sg_in;
  55. struct scatterlist sg_out;
  56. };
  57. struct crypt_config;
  58. struct crypt_iv_operations {
  59. int (*ctr)(struct crypt_config *cc, struct dm_target *ti,
  60. const char *opts);
  61. void (*dtr)(struct crypt_config *cc);
  62. const char *(*status)(struct crypt_config *cc);
  63. int (*generator)(struct crypt_config *cc, u8 *iv, sector_t sector);
  64. };
  65. /*
  66. * Crypt: maps a linear range of a block device
  67. * and encrypts / decrypts at the same time.
  68. */
  69. enum flags { DM_CRYPT_SUSPENDED, DM_CRYPT_KEY_VALID };
  70. struct crypt_config {
  71. struct dm_dev *dev;
  72. sector_t start;
  73. /*
  74. * pool for per bio private data, crypto requests and
  75. * encryption requeusts/buffer pages
  76. */
  77. mempool_t *io_pool;
  78. mempool_t *req_pool;
  79. mempool_t *page_pool;
  80. struct bio_set *bs;
  81. struct workqueue_struct *io_queue;
  82. struct workqueue_struct *crypt_queue;
  83. wait_queue_head_t writeq;
  84. /*
  85. * crypto related data
  86. */
  87. struct crypt_iv_operations *iv_gen_ops;
  88. char *iv_mode;
  89. union {
  90. struct crypto_cipher *essiv_tfm;
  91. int benbi_shift;
  92. } iv_gen_private;
  93. sector_t iv_offset;
  94. unsigned int iv_size;
  95. /*
  96. * Layout of each crypto request:
  97. *
  98. * struct ablkcipher_request
  99. * context
  100. * padding
  101. * struct dm_crypt_request
  102. * padding
  103. * IV
  104. *
  105. * The padding is added so that dm_crypt_request and the IV are
  106. * correctly aligned.
  107. */
  108. unsigned int dmreq_start;
  109. struct ablkcipher_request *req;
  110. char cipher[CRYPTO_MAX_ALG_NAME];
  111. char chainmode[CRYPTO_MAX_ALG_NAME];
  112. struct crypto_ablkcipher *tfm;
  113. unsigned long flags;
  114. unsigned int key_size;
  115. u8 key[0];
  116. };
  117. #define MIN_IOS 16
  118. #define MIN_POOL_PAGES 32
  119. #define MIN_BIO_PAGES 8
  120. static struct kmem_cache *_crypt_io_pool;
  121. static void clone_init(struct dm_crypt_io *, struct bio *);
  122. static void kcryptd_queue_crypt(struct dm_crypt_io *io);
  123. /*
  124. * Different IV generation algorithms:
  125. *
  126. * plain: the initial vector is the 32-bit little-endian version of the sector
  127. * number, padded with zeros if necessary.
  128. *
  129. * essiv: "encrypted sector|salt initial vector", the sector number is
  130. * encrypted with the bulk cipher using a salt as key. The salt
  131. * should be derived from the bulk cipher's key via hashing.
  132. *
  133. * benbi: the 64-bit "big-endian 'narrow block'-count", starting at 1
  134. * (needed for LRW-32-AES and possible other narrow block modes)
  135. *
  136. * null: the initial vector is always zero. Provides compatibility with
  137. * obsolete loop_fish2 devices. Do not use for new devices.
  138. *
  139. * plumb: unimplemented, see:
  140. * http://article.gmane.org/gmane.linux.kernel.device-mapper.dm-crypt/454
  141. */
  142. static int crypt_iv_plain_gen(struct crypt_config *cc, u8 *iv, sector_t sector)
  143. {
  144. memset(iv, 0, cc->iv_size);
  145. *(u32 *)iv = cpu_to_le32(sector & 0xffffffff);
  146. return 0;
  147. }
  148. static int crypt_iv_essiv_ctr(struct crypt_config *cc, struct dm_target *ti,
  149. const char *opts)
  150. {
  151. struct crypto_cipher *essiv_tfm;
  152. struct crypto_hash *hash_tfm;
  153. struct hash_desc desc;
  154. struct scatterlist sg;
  155. unsigned int saltsize;
  156. u8 *salt;
  157. int err;
  158. if (opts == NULL) {
  159. ti->error = "Digest algorithm missing for ESSIV mode";
  160. return -EINVAL;
  161. }
  162. /* Hash the cipher key with the given hash algorithm */
  163. hash_tfm = crypto_alloc_hash(opts, 0, CRYPTO_ALG_ASYNC);
  164. if (IS_ERR(hash_tfm)) {
  165. ti->error = "Error initializing ESSIV hash";
  166. return PTR_ERR(hash_tfm);
  167. }
  168. saltsize = crypto_hash_digestsize(hash_tfm);
  169. salt = kmalloc(saltsize, GFP_KERNEL);
  170. if (salt == NULL) {
  171. ti->error = "Error kmallocing salt storage in ESSIV";
  172. crypto_free_hash(hash_tfm);
  173. return -ENOMEM;
  174. }
  175. sg_init_one(&sg, cc->key, cc->key_size);
  176. desc.tfm = hash_tfm;
  177. desc.flags = CRYPTO_TFM_REQ_MAY_SLEEP;
  178. err = crypto_hash_digest(&desc, &sg, cc->key_size, salt);
  179. crypto_free_hash(hash_tfm);
  180. if (err) {
  181. ti->error = "Error calculating hash in ESSIV";
  182. kfree(salt);
  183. return err;
  184. }
  185. /* Setup the essiv_tfm with the given salt */
  186. essiv_tfm = crypto_alloc_cipher(cc->cipher, 0, CRYPTO_ALG_ASYNC);
  187. if (IS_ERR(essiv_tfm)) {
  188. ti->error = "Error allocating crypto tfm for ESSIV";
  189. kfree(salt);
  190. return PTR_ERR(essiv_tfm);
  191. }
  192. if (crypto_cipher_blocksize(essiv_tfm) !=
  193. crypto_ablkcipher_ivsize(cc->tfm)) {
  194. ti->error = "Block size of ESSIV cipher does "
  195. "not match IV size of block cipher";
  196. crypto_free_cipher(essiv_tfm);
  197. kfree(salt);
  198. return -EINVAL;
  199. }
  200. err = crypto_cipher_setkey(essiv_tfm, salt, saltsize);
  201. if (err) {
  202. ti->error = "Failed to set key for ESSIV cipher";
  203. crypto_free_cipher(essiv_tfm);
  204. kfree(salt);
  205. return err;
  206. }
  207. kfree(salt);
  208. cc->iv_gen_private.essiv_tfm = essiv_tfm;
  209. return 0;
  210. }
  211. static void crypt_iv_essiv_dtr(struct crypt_config *cc)
  212. {
  213. crypto_free_cipher(cc->iv_gen_private.essiv_tfm);
  214. cc->iv_gen_private.essiv_tfm = NULL;
  215. }
  216. static int crypt_iv_essiv_gen(struct crypt_config *cc, u8 *iv, sector_t sector)
  217. {
  218. memset(iv, 0, cc->iv_size);
  219. *(u64 *)iv = cpu_to_le64(sector);
  220. crypto_cipher_encrypt_one(cc->iv_gen_private.essiv_tfm, iv, iv);
  221. return 0;
  222. }
  223. static int crypt_iv_benbi_ctr(struct crypt_config *cc, struct dm_target *ti,
  224. const char *opts)
  225. {
  226. unsigned bs = crypto_ablkcipher_blocksize(cc->tfm);
  227. int log = ilog2(bs);
  228. /* we need to calculate how far we must shift the sector count
  229. * to get the cipher block count, we use this shift in _gen */
  230. if (1 << log != bs) {
  231. ti->error = "cypher blocksize is not a power of 2";
  232. return -EINVAL;
  233. }
  234. if (log > 9) {
  235. ti->error = "cypher blocksize is > 512";
  236. return -EINVAL;
  237. }
  238. cc->iv_gen_private.benbi_shift = 9 - log;
  239. return 0;
  240. }
  241. static void crypt_iv_benbi_dtr(struct crypt_config *cc)
  242. {
  243. }
  244. static int crypt_iv_benbi_gen(struct crypt_config *cc, u8 *iv, sector_t sector)
  245. {
  246. __be64 val;
  247. memset(iv, 0, cc->iv_size - sizeof(u64)); /* rest is cleared below */
  248. val = cpu_to_be64(((u64)sector << cc->iv_gen_private.benbi_shift) + 1);
  249. put_unaligned(val, (__be64 *)(iv + cc->iv_size - sizeof(u64)));
  250. return 0;
  251. }
  252. static int crypt_iv_null_gen(struct crypt_config *cc, u8 *iv, sector_t sector)
  253. {
  254. memset(iv, 0, cc->iv_size);
  255. return 0;
  256. }
  257. static struct crypt_iv_operations crypt_iv_plain_ops = {
  258. .generator = crypt_iv_plain_gen
  259. };
  260. static struct crypt_iv_operations crypt_iv_essiv_ops = {
  261. .ctr = crypt_iv_essiv_ctr,
  262. .dtr = crypt_iv_essiv_dtr,
  263. .generator = crypt_iv_essiv_gen
  264. };
  265. static struct crypt_iv_operations crypt_iv_benbi_ops = {
  266. .ctr = crypt_iv_benbi_ctr,
  267. .dtr = crypt_iv_benbi_dtr,
  268. .generator = crypt_iv_benbi_gen
  269. };
  270. static struct crypt_iv_operations crypt_iv_null_ops = {
  271. .generator = crypt_iv_null_gen
  272. };
  273. static void crypt_convert_init(struct crypt_config *cc,
  274. struct convert_context *ctx,
  275. struct bio *bio_out, struct bio *bio_in,
  276. sector_t sector)
  277. {
  278. ctx->bio_in = bio_in;
  279. ctx->bio_out = bio_out;
  280. ctx->offset_in = 0;
  281. ctx->offset_out = 0;
  282. ctx->idx_in = bio_in ? bio_in->bi_idx : 0;
  283. ctx->idx_out = bio_out ? bio_out->bi_idx : 0;
  284. ctx->sector = sector + cc->iv_offset;
  285. init_completion(&ctx->restart);
  286. atomic_set(&ctx->pending, 1);
  287. }
  288. static int crypt_convert_block(struct crypt_config *cc,
  289. struct convert_context *ctx,
  290. struct ablkcipher_request *req)
  291. {
  292. struct bio_vec *bv_in = bio_iovec_idx(ctx->bio_in, ctx->idx_in);
  293. struct bio_vec *bv_out = bio_iovec_idx(ctx->bio_out, ctx->idx_out);
  294. struct dm_crypt_request *dmreq;
  295. u8 *iv;
  296. int r = 0;
  297. dmreq = (struct dm_crypt_request *)((char *)req + cc->dmreq_start);
  298. iv = (u8 *)ALIGN((unsigned long)(dmreq + 1),
  299. crypto_ablkcipher_alignmask(cc->tfm) + 1);
  300. sg_init_table(&dmreq->sg_in, 1);
  301. sg_set_page(&dmreq->sg_in, bv_in->bv_page, 1 << SECTOR_SHIFT,
  302. bv_in->bv_offset + ctx->offset_in);
  303. sg_init_table(&dmreq->sg_out, 1);
  304. sg_set_page(&dmreq->sg_out, bv_out->bv_page, 1 << SECTOR_SHIFT,
  305. bv_out->bv_offset + ctx->offset_out);
  306. ctx->offset_in += 1 << SECTOR_SHIFT;
  307. if (ctx->offset_in >= bv_in->bv_len) {
  308. ctx->offset_in = 0;
  309. ctx->idx_in++;
  310. }
  311. ctx->offset_out += 1 << SECTOR_SHIFT;
  312. if (ctx->offset_out >= bv_out->bv_len) {
  313. ctx->offset_out = 0;
  314. ctx->idx_out++;
  315. }
  316. if (cc->iv_gen_ops) {
  317. r = cc->iv_gen_ops->generator(cc, iv, ctx->sector);
  318. if (r < 0)
  319. return r;
  320. }
  321. ablkcipher_request_set_crypt(req, &dmreq->sg_in, &dmreq->sg_out,
  322. 1 << SECTOR_SHIFT, iv);
  323. if (bio_data_dir(ctx->bio_in) == WRITE)
  324. r = crypto_ablkcipher_encrypt(req);
  325. else
  326. r = crypto_ablkcipher_decrypt(req);
  327. return r;
  328. }
  329. static void kcryptd_async_done(struct crypto_async_request *async_req,
  330. int error);
  331. static void crypt_alloc_req(struct crypt_config *cc,
  332. struct convert_context *ctx)
  333. {
  334. if (!cc->req)
  335. cc->req = mempool_alloc(cc->req_pool, GFP_NOIO);
  336. ablkcipher_request_set_tfm(cc->req, cc->tfm);
  337. ablkcipher_request_set_callback(cc->req, CRYPTO_TFM_REQ_MAY_BACKLOG |
  338. CRYPTO_TFM_REQ_MAY_SLEEP,
  339. kcryptd_async_done, ctx);
  340. }
  341. /*
  342. * Encrypt / decrypt data from one bio to another one (can be the same one)
  343. */
  344. static int crypt_convert(struct crypt_config *cc,
  345. struct convert_context *ctx)
  346. {
  347. int r;
  348. while(ctx->idx_in < ctx->bio_in->bi_vcnt &&
  349. ctx->idx_out < ctx->bio_out->bi_vcnt) {
  350. crypt_alloc_req(cc, ctx);
  351. atomic_inc(&ctx->pending);
  352. r = crypt_convert_block(cc, ctx, cc->req);
  353. switch (r) {
  354. /* async */
  355. case -EBUSY:
  356. wait_for_completion(&ctx->restart);
  357. INIT_COMPLETION(ctx->restart);
  358. /* fall through*/
  359. case -EINPROGRESS:
  360. cc->req = NULL;
  361. ctx->sector++;
  362. continue;
  363. /* sync */
  364. case 0:
  365. atomic_dec(&ctx->pending);
  366. ctx->sector++;
  367. cond_resched();
  368. continue;
  369. /* error */
  370. default:
  371. atomic_dec(&ctx->pending);
  372. return r;
  373. }
  374. }
  375. return 0;
  376. }
  377. static void dm_crypt_bio_destructor(struct bio *bio)
  378. {
  379. struct dm_crypt_io *io = bio->bi_private;
  380. struct crypt_config *cc = io->target->private;
  381. bio_free(bio, cc->bs);
  382. }
  383. /*
  384. * Generate a new unfragmented bio with the given size
  385. * This should never violate the device limitations
  386. * May return a smaller bio when running out of pages
  387. */
  388. static struct bio *crypt_alloc_buffer(struct dm_crypt_io *io, unsigned size)
  389. {
  390. struct crypt_config *cc = io->target->private;
  391. struct bio *clone;
  392. unsigned int nr_iovecs = (size + PAGE_SIZE - 1) >> PAGE_SHIFT;
  393. gfp_t gfp_mask = GFP_NOIO | __GFP_HIGHMEM;
  394. unsigned i, len;
  395. struct page *page;
  396. clone = bio_alloc_bioset(GFP_NOIO, nr_iovecs, cc->bs);
  397. if (!clone)
  398. return NULL;
  399. clone_init(io, clone);
  400. for (i = 0; i < nr_iovecs; i++) {
  401. page = mempool_alloc(cc->page_pool, gfp_mask);
  402. if (!page)
  403. break;
  404. /*
  405. * if additional pages cannot be allocated without waiting,
  406. * return a partially allocated bio, the caller will then try
  407. * to allocate additional bios while submitting this partial bio
  408. */
  409. if (i == (MIN_BIO_PAGES - 1))
  410. gfp_mask = (gfp_mask | __GFP_NOWARN) & ~__GFP_WAIT;
  411. len = (size > PAGE_SIZE) ? PAGE_SIZE : size;
  412. if (!bio_add_page(clone, page, len, 0)) {
  413. mempool_free(page, cc->page_pool);
  414. break;
  415. }
  416. size -= len;
  417. }
  418. if (!clone->bi_size) {
  419. bio_put(clone);
  420. return NULL;
  421. }
  422. return clone;
  423. }
  424. static void crypt_free_buffer_pages(struct crypt_config *cc, struct bio *clone)
  425. {
  426. unsigned int i;
  427. struct bio_vec *bv;
  428. for (i = 0; i < clone->bi_vcnt; i++) {
  429. bv = bio_iovec_idx(clone, i);
  430. BUG_ON(!bv->bv_page);
  431. mempool_free(bv->bv_page, cc->page_pool);
  432. bv->bv_page = NULL;
  433. }
  434. }
  435. static struct dm_crypt_io *crypt_io_alloc(struct dm_target *ti,
  436. struct bio *bio, sector_t sector)
  437. {
  438. struct crypt_config *cc = ti->private;
  439. struct dm_crypt_io *io;
  440. io = mempool_alloc(cc->io_pool, GFP_NOIO);
  441. io->target = ti;
  442. io->base_bio = bio;
  443. io->sector = sector;
  444. io->error = 0;
  445. atomic_set(&io->pending, 0);
  446. return io;
  447. }
  448. static void crypt_inc_pending(struct dm_crypt_io *io)
  449. {
  450. atomic_inc(&io->pending);
  451. }
  452. /*
  453. * One of the bios was finished. Check for completion of
  454. * the whole request and correctly clean up the buffer.
  455. */
  456. static void crypt_dec_pending(struct dm_crypt_io *io)
  457. {
  458. struct crypt_config *cc = io->target->private;
  459. if (!atomic_dec_and_test(&io->pending))
  460. return;
  461. bio_endio(io->base_bio, io->error);
  462. mempool_free(io, cc->io_pool);
  463. }
  464. /*
  465. * kcryptd/kcryptd_io:
  466. *
  467. * Needed because it would be very unwise to do decryption in an
  468. * interrupt context.
  469. *
  470. * kcryptd performs the actual encryption or decryption.
  471. *
  472. * kcryptd_io performs the IO submission.
  473. *
  474. * They must be separated as otherwise the final stages could be
  475. * starved by new requests which can block in the first stages due
  476. * to memory allocation.
  477. */
  478. static void crypt_endio(struct bio *clone, int error)
  479. {
  480. struct dm_crypt_io *io = clone->bi_private;
  481. struct crypt_config *cc = io->target->private;
  482. unsigned rw = bio_data_dir(clone);
  483. if (unlikely(!bio_flagged(clone, BIO_UPTODATE) && !error))
  484. error = -EIO;
  485. /*
  486. * free the processed pages
  487. */
  488. if (rw == WRITE)
  489. crypt_free_buffer_pages(cc, clone);
  490. bio_put(clone);
  491. if (rw == READ && !error) {
  492. kcryptd_queue_crypt(io);
  493. return;
  494. }
  495. if (unlikely(error))
  496. io->error = error;
  497. crypt_dec_pending(io);
  498. }
  499. static void clone_init(struct dm_crypt_io *io, struct bio *clone)
  500. {
  501. struct crypt_config *cc = io->target->private;
  502. clone->bi_private = io;
  503. clone->bi_end_io = crypt_endio;
  504. clone->bi_bdev = cc->dev->bdev;
  505. clone->bi_rw = io->base_bio->bi_rw;
  506. clone->bi_destructor = dm_crypt_bio_destructor;
  507. }
  508. static void kcryptd_io_read(struct dm_crypt_io *io)
  509. {
  510. struct crypt_config *cc = io->target->private;
  511. struct bio *base_bio = io->base_bio;
  512. struct bio *clone;
  513. crypt_inc_pending(io);
  514. /*
  515. * The block layer might modify the bvec array, so always
  516. * copy the required bvecs because we need the original
  517. * one in order to decrypt the whole bio data *afterwards*.
  518. */
  519. clone = bio_alloc_bioset(GFP_NOIO, bio_segments(base_bio), cc->bs);
  520. if (unlikely(!clone)) {
  521. io->error = -ENOMEM;
  522. crypt_dec_pending(io);
  523. return;
  524. }
  525. clone_init(io, clone);
  526. clone->bi_idx = 0;
  527. clone->bi_vcnt = bio_segments(base_bio);
  528. clone->bi_size = base_bio->bi_size;
  529. clone->bi_sector = cc->start + io->sector;
  530. memcpy(clone->bi_io_vec, bio_iovec(base_bio),
  531. sizeof(struct bio_vec) * clone->bi_vcnt);
  532. generic_make_request(clone);
  533. }
  534. static void kcryptd_io_write(struct dm_crypt_io *io)
  535. {
  536. struct bio *clone = io->ctx.bio_out;
  537. struct crypt_config *cc = io->target->private;
  538. generic_make_request(clone);
  539. wake_up(&cc->writeq);
  540. }
  541. static void kcryptd_io(struct work_struct *work)
  542. {
  543. struct dm_crypt_io *io = container_of(work, struct dm_crypt_io, work);
  544. if (bio_data_dir(io->base_bio) == READ)
  545. kcryptd_io_read(io);
  546. else
  547. kcryptd_io_write(io);
  548. }
  549. static void kcryptd_queue_io(struct dm_crypt_io *io)
  550. {
  551. struct crypt_config *cc = io->target->private;
  552. INIT_WORK(&io->work, kcryptd_io);
  553. queue_work(cc->io_queue, &io->work);
  554. }
  555. static void kcryptd_crypt_write_io_submit(struct dm_crypt_io *io,
  556. int error, int async)
  557. {
  558. struct bio *clone = io->ctx.bio_out;
  559. struct crypt_config *cc = io->target->private;
  560. if (unlikely(error < 0)) {
  561. crypt_free_buffer_pages(cc, clone);
  562. bio_put(clone);
  563. io->error = -EIO;
  564. return;
  565. }
  566. /* crypt_convert should have filled the clone bio */
  567. BUG_ON(io->ctx.idx_out < clone->bi_vcnt);
  568. clone->bi_sector = cc->start + io->sector;
  569. io->sector += bio_sectors(clone);
  570. if (async)
  571. kcryptd_queue_io(io);
  572. else {
  573. crypt_inc_pending(io);
  574. generic_make_request(clone);
  575. }
  576. }
  577. static void kcryptd_crypt_write_convert(struct dm_crypt_io *io)
  578. {
  579. struct crypt_config *cc = io->target->private;
  580. struct bio *clone;
  581. unsigned remaining = io->base_bio->bi_size;
  582. int r;
  583. /*
  584. * Prevent io from disappearing until this function completes.
  585. */
  586. crypt_inc_pending(io);
  587. crypt_convert_init(cc, &io->ctx, NULL, io->base_bio, io->sector);
  588. /*
  589. * The allocated buffers can be smaller than the whole bio,
  590. * so repeat the whole process until all the data can be handled.
  591. */
  592. while (remaining) {
  593. clone = crypt_alloc_buffer(io, remaining);
  594. if (unlikely(!clone)) {
  595. io->error = -ENOMEM;
  596. break;
  597. }
  598. io->ctx.bio_out = clone;
  599. io->ctx.idx_out = 0;
  600. remaining -= clone->bi_size;
  601. r = crypt_convert(cc, &io->ctx);
  602. if (atomic_dec_and_test(&io->ctx.pending)) {
  603. /* processed, no running async crypto */
  604. kcryptd_crypt_write_io_submit(io, r, 0);
  605. if (unlikely(r < 0))
  606. break;
  607. } else
  608. crypt_inc_pending(io);
  609. /* out of memory -> run queues */
  610. if (unlikely(remaining)) {
  611. /* wait for async crypto then reinitialize pending */
  612. wait_event(cc->writeq, !atomic_read(&io->ctx.pending));
  613. atomic_set(&io->ctx.pending, 1);
  614. congestion_wait(WRITE, HZ/100);
  615. }
  616. }
  617. crypt_dec_pending(io);
  618. }
  619. static void kcryptd_crypt_read_done(struct dm_crypt_io *io, int error)
  620. {
  621. if (unlikely(error < 0))
  622. io->error = -EIO;
  623. crypt_dec_pending(io);
  624. }
  625. static void kcryptd_crypt_read_convert(struct dm_crypt_io *io)
  626. {
  627. struct crypt_config *cc = io->target->private;
  628. int r = 0;
  629. crypt_inc_pending(io);
  630. crypt_convert_init(cc, &io->ctx, io->base_bio, io->base_bio,
  631. io->sector);
  632. r = crypt_convert(cc, &io->ctx);
  633. if (atomic_dec_and_test(&io->ctx.pending))
  634. kcryptd_crypt_read_done(io, r);
  635. crypt_dec_pending(io);
  636. }
  637. static void kcryptd_async_done(struct crypto_async_request *async_req,
  638. int error)
  639. {
  640. struct convert_context *ctx = async_req->data;
  641. struct dm_crypt_io *io = container_of(ctx, struct dm_crypt_io, ctx);
  642. struct crypt_config *cc = io->target->private;
  643. if (error == -EINPROGRESS) {
  644. complete(&ctx->restart);
  645. return;
  646. }
  647. mempool_free(ablkcipher_request_cast(async_req), cc->req_pool);
  648. if (!atomic_dec_and_test(&ctx->pending))
  649. return;
  650. if (bio_data_dir(io->base_bio) == READ)
  651. kcryptd_crypt_read_done(io, error);
  652. else
  653. kcryptd_crypt_write_io_submit(io, error, 1);
  654. }
  655. static void kcryptd_crypt(struct work_struct *work)
  656. {
  657. struct dm_crypt_io *io = container_of(work, struct dm_crypt_io, work);
  658. if (bio_data_dir(io->base_bio) == READ)
  659. kcryptd_crypt_read_convert(io);
  660. else
  661. kcryptd_crypt_write_convert(io);
  662. }
  663. static void kcryptd_queue_crypt(struct dm_crypt_io *io)
  664. {
  665. struct crypt_config *cc = io->target->private;
  666. INIT_WORK(&io->work, kcryptd_crypt);
  667. queue_work(cc->crypt_queue, &io->work);
  668. }
  669. /*
  670. * Decode key from its hex representation
  671. */
  672. static int crypt_decode_key(u8 *key, char *hex, unsigned int size)
  673. {
  674. char buffer[3];
  675. char *endp;
  676. unsigned int i;
  677. buffer[2] = '\0';
  678. for (i = 0; i < size; i++) {
  679. buffer[0] = *hex++;
  680. buffer[1] = *hex++;
  681. key[i] = (u8)simple_strtoul(buffer, &endp, 16);
  682. if (endp != &buffer[2])
  683. return -EINVAL;
  684. }
  685. if (*hex != '\0')
  686. return -EINVAL;
  687. return 0;
  688. }
  689. /*
  690. * Encode key into its hex representation
  691. */
  692. static void crypt_encode_key(char *hex, u8 *key, unsigned int size)
  693. {
  694. unsigned int i;
  695. for (i = 0; i < size; i++) {
  696. sprintf(hex, "%02x", *key);
  697. hex += 2;
  698. key++;
  699. }
  700. }
  701. static int crypt_set_key(struct crypt_config *cc, char *key)
  702. {
  703. unsigned key_size = strlen(key) >> 1;
  704. if (cc->key_size && cc->key_size != key_size)
  705. return -EINVAL;
  706. cc->key_size = key_size; /* initial settings */
  707. if ((!key_size && strcmp(key, "-")) ||
  708. (key_size && crypt_decode_key(cc->key, key, key_size) < 0))
  709. return -EINVAL;
  710. set_bit(DM_CRYPT_KEY_VALID, &cc->flags);
  711. return 0;
  712. }
  713. static int crypt_wipe_key(struct crypt_config *cc)
  714. {
  715. clear_bit(DM_CRYPT_KEY_VALID, &cc->flags);
  716. memset(&cc->key, 0, cc->key_size * sizeof(u8));
  717. return 0;
  718. }
  719. /*
  720. * Construct an encryption mapping:
  721. * <cipher> <key> <iv_offset> <dev_path> <start>
  722. */
  723. static int crypt_ctr(struct dm_target *ti, unsigned int argc, char **argv)
  724. {
  725. struct crypt_config *cc;
  726. struct crypto_ablkcipher *tfm;
  727. char *tmp;
  728. char *cipher;
  729. char *chainmode;
  730. char *ivmode;
  731. char *ivopts;
  732. unsigned int key_size;
  733. unsigned long long tmpll;
  734. if (argc != 5) {
  735. ti->error = "Not enough arguments";
  736. return -EINVAL;
  737. }
  738. tmp = argv[0];
  739. cipher = strsep(&tmp, "-");
  740. chainmode = strsep(&tmp, "-");
  741. ivopts = strsep(&tmp, "-");
  742. ivmode = strsep(&ivopts, ":");
  743. if (tmp)
  744. DMWARN("Unexpected additional cipher options");
  745. key_size = strlen(argv[1]) >> 1;
  746. cc = kzalloc(sizeof(*cc) + key_size * sizeof(u8), GFP_KERNEL);
  747. if (cc == NULL) {
  748. ti->error =
  749. "Cannot allocate transparent encryption context";
  750. return -ENOMEM;
  751. }
  752. if (crypt_set_key(cc, argv[1])) {
  753. ti->error = "Error decoding key";
  754. goto bad_cipher;
  755. }
  756. /* Compatiblity mode for old dm-crypt cipher strings */
  757. if (!chainmode || (strcmp(chainmode, "plain") == 0 && !ivmode)) {
  758. chainmode = "cbc";
  759. ivmode = "plain";
  760. }
  761. if (strcmp(chainmode, "ecb") && !ivmode) {
  762. ti->error = "This chaining mode requires an IV mechanism";
  763. goto bad_cipher;
  764. }
  765. if (snprintf(cc->cipher, CRYPTO_MAX_ALG_NAME, "%s(%s)",
  766. chainmode, cipher) >= CRYPTO_MAX_ALG_NAME) {
  767. ti->error = "Chain mode + cipher name is too long";
  768. goto bad_cipher;
  769. }
  770. tfm = crypto_alloc_ablkcipher(cc->cipher, 0, 0);
  771. if (IS_ERR(tfm)) {
  772. ti->error = "Error allocating crypto tfm";
  773. goto bad_cipher;
  774. }
  775. strcpy(cc->cipher, cipher);
  776. strcpy(cc->chainmode, chainmode);
  777. cc->tfm = tfm;
  778. /*
  779. * Choose ivmode. Valid modes: "plain", "essiv:<esshash>", "benbi".
  780. * See comments at iv code
  781. */
  782. if (ivmode == NULL)
  783. cc->iv_gen_ops = NULL;
  784. else if (strcmp(ivmode, "plain") == 0)
  785. cc->iv_gen_ops = &crypt_iv_plain_ops;
  786. else if (strcmp(ivmode, "essiv") == 0)
  787. cc->iv_gen_ops = &crypt_iv_essiv_ops;
  788. else if (strcmp(ivmode, "benbi") == 0)
  789. cc->iv_gen_ops = &crypt_iv_benbi_ops;
  790. else if (strcmp(ivmode, "null") == 0)
  791. cc->iv_gen_ops = &crypt_iv_null_ops;
  792. else {
  793. ti->error = "Invalid IV mode";
  794. goto bad_ivmode;
  795. }
  796. if (cc->iv_gen_ops && cc->iv_gen_ops->ctr &&
  797. cc->iv_gen_ops->ctr(cc, ti, ivopts) < 0)
  798. goto bad_ivmode;
  799. cc->iv_size = crypto_ablkcipher_ivsize(tfm);
  800. if (cc->iv_size)
  801. /* at least a 64 bit sector number should fit in our buffer */
  802. cc->iv_size = max(cc->iv_size,
  803. (unsigned int)(sizeof(u64) / sizeof(u8)));
  804. else {
  805. if (cc->iv_gen_ops) {
  806. DMWARN("Selected cipher does not support IVs");
  807. if (cc->iv_gen_ops->dtr)
  808. cc->iv_gen_ops->dtr(cc);
  809. cc->iv_gen_ops = NULL;
  810. }
  811. }
  812. cc->io_pool = mempool_create_slab_pool(MIN_IOS, _crypt_io_pool);
  813. if (!cc->io_pool) {
  814. ti->error = "Cannot allocate crypt io mempool";
  815. goto bad_slab_pool;
  816. }
  817. cc->dmreq_start = sizeof(struct ablkcipher_request);
  818. cc->dmreq_start += crypto_ablkcipher_reqsize(tfm);
  819. cc->dmreq_start = ALIGN(cc->dmreq_start, crypto_tfm_ctx_alignment());
  820. cc->dmreq_start += crypto_ablkcipher_alignmask(tfm) &
  821. ~(crypto_tfm_ctx_alignment() - 1);
  822. cc->req_pool = mempool_create_kmalloc_pool(MIN_IOS, cc->dmreq_start +
  823. sizeof(struct dm_crypt_request) + cc->iv_size);
  824. if (!cc->req_pool) {
  825. ti->error = "Cannot allocate crypt request mempool";
  826. goto bad_req_pool;
  827. }
  828. cc->req = NULL;
  829. cc->page_pool = mempool_create_page_pool(MIN_POOL_PAGES, 0);
  830. if (!cc->page_pool) {
  831. ti->error = "Cannot allocate page mempool";
  832. goto bad_page_pool;
  833. }
  834. cc->bs = bioset_create(MIN_IOS, MIN_IOS);
  835. if (!cc->bs) {
  836. ti->error = "Cannot allocate crypt bioset";
  837. goto bad_bs;
  838. }
  839. if (crypto_ablkcipher_setkey(tfm, cc->key, key_size) < 0) {
  840. ti->error = "Error setting key";
  841. goto bad_device;
  842. }
  843. if (sscanf(argv[2], "%llu", &tmpll) != 1) {
  844. ti->error = "Invalid iv_offset sector";
  845. goto bad_device;
  846. }
  847. cc->iv_offset = tmpll;
  848. if (sscanf(argv[4], "%llu", &tmpll) != 1) {
  849. ti->error = "Invalid device sector";
  850. goto bad_device;
  851. }
  852. cc->start = tmpll;
  853. if (dm_get_device(ti, argv[3], cc->start, ti->len,
  854. dm_table_get_mode(ti->table), &cc->dev)) {
  855. ti->error = "Device lookup failed";
  856. goto bad_device;
  857. }
  858. if (ivmode && cc->iv_gen_ops) {
  859. if (ivopts)
  860. *(ivopts - 1) = ':';
  861. cc->iv_mode = kmalloc(strlen(ivmode) + 1, GFP_KERNEL);
  862. if (!cc->iv_mode) {
  863. ti->error = "Error kmallocing iv_mode string";
  864. goto bad_ivmode_string;
  865. }
  866. strcpy(cc->iv_mode, ivmode);
  867. } else
  868. cc->iv_mode = NULL;
  869. cc->io_queue = create_singlethread_workqueue("kcryptd_io");
  870. if (!cc->io_queue) {
  871. ti->error = "Couldn't create kcryptd io queue";
  872. goto bad_io_queue;
  873. }
  874. cc->crypt_queue = create_singlethread_workqueue("kcryptd");
  875. if (!cc->crypt_queue) {
  876. ti->error = "Couldn't create kcryptd queue";
  877. goto bad_crypt_queue;
  878. }
  879. init_waitqueue_head(&cc->writeq);
  880. ti->private = cc;
  881. return 0;
  882. bad_crypt_queue:
  883. destroy_workqueue(cc->io_queue);
  884. bad_io_queue:
  885. kfree(cc->iv_mode);
  886. bad_ivmode_string:
  887. dm_put_device(ti, cc->dev);
  888. bad_device:
  889. bioset_free(cc->bs);
  890. bad_bs:
  891. mempool_destroy(cc->page_pool);
  892. bad_page_pool:
  893. mempool_destroy(cc->req_pool);
  894. bad_req_pool:
  895. mempool_destroy(cc->io_pool);
  896. bad_slab_pool:
  897. if (cc->iv_gen_ops && cc->iv_gen_ops->dtr)
  898. cc->iv_gen_ops->dtr(cc);
  899. bad_ivmode:
  900. crypto_free_ablkcipher(tfm);
  901. bad_cipher:
  902. /* Must zero key material before freeing */
  903. memset(cc, 0, sizeof(*cc) + cc->key_size * sizeof(u8));
  904. kfree(cc);
  905. return -EINVAL;
  906. }
  907. static void crypt_dtr(struct dm_target *ti)
  908. {
  909. struct crypt_config *cc = (struct crypt_config *) ti->private;
  910. destroy_workqueue(cc->io_queue);
  911. destroy_workqueue(cc->crypt_queue);
  912. if (cc->req)
  913. mempool_free(cc->req, cc->req_pool);
  914. bioset_free(cc->bs);
  915. mempool_destroy(cc->page_pool);
  916. mempool_destroy(cc->req_pool);
  917. mempool_destroy(cc->io_pool);
  918. kfree(cc->iv_mode);
  919. if (cc->iv_gen_ops && cc->iv_gen_ops->dtr)
  920. cc->iv_gen_ops->dtr(cc);
  921. crypto_free_ablkcipher(cc->tfm);
  922. dm_put_device(ti, cc->dev);
  923. /* Must zero key material before freeing */
  924. memset(cc, 0, sizeof(*cc) + cc->key_size * sizeof(u8));
  925. kfree(cc);
  926. }
  927. static int crypt_map(struct dm_target *ti, struct bio *bio,
  928. union map_info *map_context)
  929. {
  930. struct dm_crypt_io *io;
  931. io = crypt_io_alloc(ti, bio, bio->bi_sector - ti->begin);
  932. if (bio_data_dir(io->base_bio) == READ)
  933. kcryptd_queue_io(io);
  934. else
  935. kcryptd_queue_crypt(io);
  936. return DM_MAPIO_SUBMITTED;
  937. }
  938. static int crypt_status(struct dm_target *ti, status_type_t type,
  939. char *result, unsigned int maxlen)
  940. {
  941. struct crypt_config *cc = (struct crypt_config *) ti->private;
  942. unsigned int sz = 0;
  943. switch (type) {
  944. case STATUSTYPE_INFO:
  945. result[0] = '\0';
  946. break;
  947. case STATUSTYPE_TABLE:
  948. if (cc->iv_mode)
  949. DMEMIT("%s-%s-%s ", cc->cipher, cc->chainmode,
  950. cc->iv_mode);
  951. else
  952. DMEMIT("%s-%s ", cc->cipher, cc->chainmode);
  953. if (cc->key_size > 0) {
  954. if ((maxlen - sz) < ((cc->key_size << 1) + 1))
  955. return -ENOMEM;
  956. crypt_encode_key(result + sz, cc->key, cc->key_size);
  957. sz += cc->key_size << 1;
  958. } else {
  959. if (sz >= maxlen)
  960. return -ENOMEM;
  961. result[sz++] = '-';
  962. }
  963. DMEMIT(" %llu %s %llu", (unsigned long long)cc->iv_offset,
  964. cc->dev->name, (unsigned long long)cc->start);
  965. break;
  966. }
  967. return 0;
  968. }
  969. static void crypt_postsuspend(struct dm_target *ti)
  970. {
  971. struct crypt_config *cc = ti->private;
  972. set_bit(DM_CRYPT_SUSPENDED, &cc->flags);
  973. }
  974. static int crypt_preresume(struct dm_target *ti)
  975. {
  976. struct crypt_config *cc = ti->private;
  977. if (!test_bit(DM_CRYPT_KEY_VALID, &cc->flags)) {
  978. DMERR("aborting resume - crypt key is not set.");
  979. return -EAGAIN;
  980. }
  981. return 0;
  982. }
  983. static void crypt_resume(struct dm_target *ti)
  984. {
  985. struct crypt_config *cc = ti->private;
  986. clear_bit(DM_CRYPT_SUSPENDED, &cc->flags);
  987. }
  988. /* Message interface
  989. * key set <key>
  990. * key wipe
  991. */
  992. static int crypt_message(struct dm_target *ti, unsigned argc, char **argv)
  993. {
  994. struct crypt_config *cc = ti->private;
  995. if (argc < 2)
  996. goto error;
  997. if (!strnicmp(argv[0], MESG_STR("key"))) {
  998. if (!test_bit(DM_CRYPT_SUSPENDED, &cc->flags)) {
  999. DMWARN("not suspended during key manipulation.");
  1000. return -EINVAL;
  1001. }
  1002. if (argc == 3 && !strnicmp(argv[1], MESG_STR("set")))
  1003. return crypt_set_key(cc, argv[2]);
  1004. if (argc == 2 && !strnicmp(argv[1], MESG_STR("wipe")))
  1005. return crypt_wipe_key(cc);
  1006. }
  1007. error:
  1008. DMWARN("unrecognised message received.");
  1009. return -EINVAL;
  1010. }
  1011. static int crypt_merge(struct dm_target *ti, struct bvec_merge_data *bvm,
  1012. struct bio_vec *biovec, int max_size)
  1013. {
  1014. struct crypt_config *cc = ti->private;
  1015. struct request_queue *q = bdev_get_queue(cc->dev->bdev);
  1016. if (!q->merge_bvec_fn)
  1017. return max_size;
  1018. bvm->bi_bdev = cc->dev->bdev;
  1019. bvm->bi_sector = cc->start + bvm->bi_sector - ti->begin;
  1020. return min(max_size, q->merge_bvec_fn(q, bvm, biovec));
  1021. }
  1022. static struct target_type crypt_target = {
  1023. .name = "crypt",
  1024. .version= {1, 6, 0},
  1025. .module = THIS_MODULE,
  1026. .ctr = crypt_ctr,
  1027. .dtr = crypt_dtr,
  1028. .map = crypt_map,
  1029. .status = crypt_status,
  1030. .postsuspend = crypt_postsuspend,
  1031. .preresume = crypt_preresume,
  1032. .resume = crypt_resume,
  1033. .message = crypt_message,
  1034. .merge = crypt_merge,
  1035. };
  1036. static int __init dm_crypt_init(void)
  1037. {
  1038. int r;
  1039. _crypt_io_pool = KMEM_CACHE(dm_crypt_io, 0);
  1040. if (!_crypt_io_pool)
  1041. return -ENOMEM;
  1042. r = dm_register_target(&crypt_target);
  1043. if (r < 0) {
  1044. DMERR("register failed %d", r);
  1045. kmem_cache_destroy(_crypt_io_pool);
  1046. }
  1047. return r;
  1048. }
  1049. static void __exit dm_crypt_exit(void)
  1050. {
  1051. int r = dm_unregister_target(&crypt_target);
  1052. if (r < 0)
  1053. DMERR("unregister failed %d", r);
  1054. kmem_cache_destroy(_crypt_io_pool);
  1055. }
  1056. module_init(dm_crypt_init);
  1057. module_exit(dm_crypt_exit);
  1058. MODULE_AUTHOR("Christophe Saout <christophe@saout.de>");
  1059. MODULE_DESCRIPTION(DM_NAME " target for transparent encryption / decryption");
  1060. MODULE_LICENSE("GPL");