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1 | /* | |
2 | * Copyright (C) 2003 Christophe Saout <[email protected]> | |
3 | * Copyright (C) 2004 Clemens Fruhwirth <[email protected]> | |
4 | * Copyright (C) 2006-2008 Red Hat, Inc. All rights reserved. | |
5 | * | |
6 | * This file is released under the GPL. | |
7 | */ | |
8 | ||
9 | #include <linux/completion.h> | |
10 | #include <linux/err.h> | |
11 | #include <linux/module.h> | |
12 | #include <linux/init.h> | |
13 | #include <linux/kernel.h> | |
14 | #include <linux/bio.h> | |
15 | #include <linux/blkdev.h> | |
16 | #include <linux/mempool.h> | |
17 | #include <linux/slab.h> | |
18 | #include <linux/crypto.h> | |
19 | #include <linux/workqueue.h> | |
20 | #include <linux/backing-dev.h> | |
21 | #include <asm/atomic.h> | |
22 | #include <linux/scatterlist.h> | |
23 | #include <asm/page.h> | |
24 | #include <asm/unaligned.h> | |
25 | ||
26 | #include "dm.h" | |
27 | ||
28 | #define DM_MSG_PREFIX "crypt" | |
29 | #define MESG_STR(x) x, sizeof(x) | |
30 | ||
31 | /* | |
32 | * context holding the current state of a multi-part conversion | |
33 | */ | |
34 | struct convert_context { | |
35 | struct completion restart; | |
36 | struct bio *bio_in; | |
37 | struct bio *bio_out; | |
38 | unsigned int offset_in; | |
39 | unsigned int offset_out; | |
40 | unsigned int idx_in; | |
41 | unsigned int idx_out; | |
42 | sector_t sector; | |
43 | atomic_t pending; | |
44 | }; | |
45 | ||
46 | /* | |
47 | * per bio private data | |
48 | */ | |
49 | struct dm_crypt_io { | |
50 | struct dm_target *target; | |
51 | struct bio *base_bio; | |
52 | struct work_struct work; | |
53 | ||
54 | struct convert_context ctx; | |
55 | ||
56 | atomic_t pending; | |
57 | int error; | |
58 | sector_t sector; | |
59 | }; | |
60 | ||
61 | struct dm_crypt_request { | |
62 | struct scatterlist sg_in; | |
63 | struct scatterlist sg_out; | |
64 | }; | |
65 | ||
66 | struct crypt_config; | |
67 | ||
68 | struct crypt_iv_operations { | |
69 | int (*ctr)(struct crypt_config *cc, struct dm_target *ti, | |
70 | const char *opts); | |
71 | void (*dtr)(struct crypt_config *cc); | |
72 | const char *(*status)(struct crypt_config *cc); | |
73 | int (*generator)(struct crypt_config *cc, u8 *iv, sector_t sector); | |
74 | }; | |
75 | ||
76 | /* | |
77 | * Crypt: maps a linear range of a block device | |
78 | * and encrypts / decrypts at the same time. | |
79 | */ | |
80 | enum flags { DM_CRYPT_SUSPENDED, DM_CRYPT_KEY_VALID }; | |
81 | struct crypt_config { | |
82 | struct dm_dev *dev; | |
83 | sector_t start; | |
84 | ||
85 | /* | |
86 | * pool for per bio private data, crypto requests and | |
87 | * encryption requeusts/buffer pages | |
88 | */ | |
89 | mempool_t *io_pool; | |
90 | mempool_t *req_pool; | |
91 | mempool_t *page_pool; | |
92 | struct bio_set *bs; | |
93 | ||
94 | struct workqueue_struct *io_queue; | |
95 | struct workqueue_struct *crypt_queue; | |
96 | wait_queue_head_t writeq; | |
97 | ||
98 | /* | |
99 | * crypto related data | |
100 | */ | |
101 | struct crypt_iv_operations *iv_gen_ops; | |
102 | char *iv_mode; | |
103 | union { | |
104 | struct crypto_cipher *essiv_tfm; | |
105 | int benbi_shift; | |
106 | } iv_gen_private; | |
107 | sector_t iv_offset; | |
108 | unsigned int iv_size; | |
109 | ||
110 | /* | |
111 | * Layout of each crypto request: | |
112 | * | |
113 | * struct ablkcipher_request | |
114 | * context | |
115 | * padding | |
116 | * struct dm_crypt_request | |
117 | * padding | |
118 | * IV | |
119 | * | |
120 | * The padding is added so that dm_crypt_request and the IV are | |
121 | * correctly aligned. | |
122 | */ | |
123 | unsigned int dmreq_start; | |
124 | struct ablkcipher_request *req; | |
125 | ||
126 | char cipher[CRYPTO_MAX_ALG_NAME]; | |
127 | char chainmode[CRYPTO_MAX_ALG_NAME]; | |
128 | struct crypto_ablkcipher *tfm; | |
129 | unsigned long flags; | |
130 | unsigned int key_size; | |
131 | u8 key[0]; | |
132 | }; | |
133 | ||
134 | #define MIN_IOS 16 | |
135 | #define MIN_POOL_PAGES 32 | |
136 | #define MIN_BIO_PAGES 8 | |
137 | ||
138 | static struct kmem_cache *_crypt_io_pool; | |
139 | ||
140 | static void clone_init(struct dm_crypt_io *, struct bio *); | |
141 | static void kcryptd_queue_crypt(struct dm_crypt_io *io); | |
142 | ||
143 | /* | |
144 | * Different IV generation algorithms: | |
145 | * | |
146 | * plain: the initial vector is the 32-bit little-endian version of the sector | |
147 | * number, padded with zeros if necessary. | |
148 | * | |
149 | * essiv: "encrypted sector|salt initial vector", the sector number is | |
150 | * encrypted with the bulk cipher using a salt as key. The salt | |
151 | * should be derived from the bulk cipher's key via hashing. | |
152 | * | |
153 | * benbi: the 64-bit "big-endian 'narrow block'-count", starting at 1 | |
154 | * (needed for LRW-32-AES and possible other narrow block modes) | |
155 | * | |
156 | * null: the initial vector is always zero. Provides compatibility with | |
157 | * obsolete loop_fish2 devices. Do not use for new devices. | |
158 | * | |
159 | * plumb: unimplemented, see: | |
160 | * http://article.gmane.org/gmane.linux.kernel.device-mapper.dm-crypt/454 | |
161 | */ | |
162 | ||
163 | static int crypt_iv_plain_gen(struct crypt_config *cc, u8 *iv, sector_t sector) | |
164 | { | |
165 | memset(iv, 0, cc->iv_size); | |
166 | *(u32 *)iv = cpu_to_le32(sector & 0xffffffff); | |
167 | ||
168 | return 0; | |
169 | } | |
170 | ||
171 | static int crypt_iv_essiv_ctr(struct crypt_config *cc, struct dm_target *ti, | |
172 | const char *opts) | |
173 | { | |
174 | struct crypto_cipher *essiv_tfm; | |
175 | struct crypto_hash *hash_tfm; | |
176 | struct hash_desc desc; | |
177 | struct scatterlist sg; | |
178 | unsigned int saltsize; | |
179 | u8 *salt; | |
180 | int err; | |
181 | ||
182 | if (opts == NULL) { | |
183 | ti->error = "Digest algorithm missing for ESSIV mode"; | |
184 | return -EINVAL; | |
185 | } | |
186 | ||
187 | /* Hash the cipher key with the given hash algorithm */ | |
188 | hash_tfm = crypto_alloc_hash(opts, 0, CRYPTO_ALG_ASYNC); | |
189 | if (IS_ERR(hash_tfm)) { | |
190 | ti->error = "Error initializing ESSIV hash"; | |
191 | return PTR_ERR(hash_tfm); | |
192 | } | |
193 | ||
194 | saltsize = crypto_hash_digestsize(hash_tfm); | |
195 | salt = kmalloc(saltsize, GFP_KERNEL); | |
196 | if (salt == NULL) { | |
197 | ti->error = "Error kmallocing salt storage in ESSIV"; | |
198 | crypto_free_hash(hash_tfm); | |
199 | return -ENOMEM; | |
200 | } | |
201 | ||
202 | sg_init_one(&sg, cc->key, cc->key_size); | |
203 | desc.tfm = hash_tfm; | |
204 | desc.flags = CRYPTO_TFM_REQ_MAY_SLEEP; | |
205 | err = crypto_hash_digest(&desc, &sg, cc->key_size, salt); | |
206 | crypto_free_hash(hash_tfm); | |
207 | ||
208 | if (err) { | |
209 | ti->error = "Error calculating hash in ESSIV"; | |
210 | kfree(salt); | |
211 | return err; | |
212 | } | |
213 | ||
214 | /* Setup the essiv_tfm with the given salt */ | |
215 | essiv_tfm = crypto_alloc_cipher(cc->cipher, 0, CRYPTO_ALG_ASYNC); | |
216 | if (IS_ERR(essiv_tfm)) { | |
217 | ti->error = "Error allocating crypto tfm for ESSIV"; | |
218 | kfree(salt); | |
219 | return PTR_ERR(essiv_tfm); | |
220 | } | |
221 | if (crypto_cipher_blocksize(essiv_tfm) != | |
222 | crypto_ablkcipher_ivsize(cc->tfm)) { | |
223 | ti->error = "Block size of ESSIV cipher does " | |
224 | "not match IV size of block cipher"; | |
225 | crypto_free_cipher(essiv_tfm); | |
226 | kfree(salt); | |
227 | return -EINVAL; | |
228 | } | |
229 | err = crypto_cipher_setkey(essiv_tfm, salt, saltsize); | |
230 | if (err) { | |
231 | ti->error = "Failed to set key for ESSIV cipher"; | |
232 | crypto_free_cipher(essiv_tfm); | |
233 | kfree(salt); | |
234 | return err; | |
235 | } | |
236 | kfree(salt); | |
237 | ||
238 | cc->iv_gen_private.essiv_tfm = essiv_tfm; | |
239 | return 0; | |
240 | } | |
241 | ||
242 | static void crypt_iv_essiv_dtr(struct crypt_config *cc) | |
243 | { | |
244 | crypto_free_cipher(cc->iv_gen_private.essiv_tfm); | |
245 | cc->iv_gen_private.essiv_tfm = NULL; | |
246 | } | |
247 | ||
248 | static int crypt_iv_essiv_gen(struct crypt_config *cc, u8 *iv, sector_t sector) | |
249 | { | |
250 | memset(iv, 0, cc->iv_size); | |
251 | *(u64 *)iv = cpu_to_le64(sector); | |
252 | crypto_cipher_encrypt_one(cc->iv_gen_private.essiv_tfm, iv, iv); | |
253 | return 0; | |
254 | } | |
255 | ||
256 | static int crypt_iv_benbi_ctr(struct crypt_config *cc, struct dm_target *ti, | |
257 | const char *opts) | |
258 | { | |
259 | unsigned bs = crypto_ablkcipher_blocksize(cc->tfm); | |
260 | int log = ilog2(bs); | |
261 | ||
262 | /* we need to calculate how far we must shift the sector count | |
263 | * to get the cipher block count, we use this shift in _gen */ | |
264 | ||
265 | if (1 << log != bs) { | |
266 | ti->error = "cypher blocksize is not a power of 2"; | |
267 | return -EINVAL; | |
268 | } | |
269 | ||
270 | if (log > 9) { | |
271 | ti->error = "cypher blocksize is > 512"; | |
272 | return -EINVAL; | |
273 | } | |
274 | ||
275 | cc->iv_gen_private.benbi_shift = 9 - log; | |
276 | ||
277 | return 0; | |
278 | } | |
279 | ||
280 | static void crypt_iv_benbi_dtr(struct crypt_config *cc) | |
281 | { | |
282 | } | |
283 | ||
284 | static int crypt_iv_benbi_gen(struct crypt_config *cc, u8 *iv, sector_t sector) | |
285 | { | |
286 | __be64 val; | |
287 | ||
288 | memset(iv, 0, cc->iv_size - sizeof(u64)); /* rest is cleared below */ | |
289 | ||
290 | val = cpu_to_be64(((u64)sector << cc->iv_gen_private.benbi_shift) + 1); | |
291 | put_unaligned(val, (__be64 *)(iv + cc->iv_size - sizeof(u64))); | |
292 | ||
293 | return 0; | |
294 | } | |
295 | ||
296 | static int crypt_iv_null_gen(struct crypt_config *cc, u8 *iv, sector_t sector) | |
297 | { | |
298 | memset(iv, 0, cc->iv_size); | |
299 | ||
300 | return 0; | |
301 | } | |
302 | ||
303 | static struct crypt_iv_operations crypt_iv_plain_ops = { | |
304 | .generator = crypt_iv_plain_gen | |
305 | }; | |
306 | ||
307 | static struct crypt_iv_operations crypt_iv_essiv_ops = { | |
308 | .ctr = crypt_iv_essiv_ctr, | |
309 | .dtr = crypt_iv_essiv_dtr, | |
310 | .generator = crypt_iv_essiv_gen | |
311 | }; | |
312 | ||
313 | static struct crypt_iv_operations crypt_iv_benbi_ops = { | |
314 | .ctr = crypt_iv_benbi_ctr, | |
315 | .dtr = crypt_iv_benbi_dtr, | |
316 | .generator = crypt_iv_benbi_gen | |
317 | }; | |
318 | ||
319 | static struct crypt_iv_operations crypt_iv_null_ops = { | |
320 | .generator = crypt_iv_null_gen | |
321 | }; | |
322 | ||
323 | static void crypt_convert_init(struct crypt_config *cc, | |
324 | struct convert_context *ctx, | |
325 | struct bio *bio_out, struct bio *bio_in, | |
326 | sector_t sector) | |
327 | { | |
328 | ctx->bio_in = bio_in; | |
329 | ctx->bio_out = bio_out; | |
330 | ctx->offset_in = 0; | |
331 | ctx->offset_out = 0; | |
332 | ctx->idx_in = bio_in ? bio_in->bi_idx : 0; | |
333 | ctx->idx_out = bio_out ? bio_out->bi_idx : 0; | |
334 | ctx->sector = sector + cc->iv_offset; | |
335 | init_completion(&ctx->restart); | |
336 | atomic_set(&ctx->pending, 1); | |
337 | } | |
338 | ||
339 | static int crypt_convert_block(struct crypt_config *cc, | |
340 | struct convert_context *ctx, | |
341 | struct ablkcipher_request *req) | |
342 | { | |
343 | struct bio_vec *bv_in = bio_iovec_idx(ctx->bio_in, ctx->idx_in); | |
344 | struct bio_vec *bv_out = bio_iovec_idx(ctx->bio_out, ctx->idx_out); | |
345 | struct dm_crypt_request *dmreq; | |
346 | u8 *iv; | |
347 | int r = 0; | |
348 | ||
349 | dmreq = (struct dm_crypt_request *)((char *)req + cc->dmreq_start); | |
350 | iv = (u8 *)ALIGN((unsigned long)(dmreq + 1), | |
351 | crypto_ablkcipher_alignmask(cc->tfm) + 1); | |
352 | ||
353 | sg_init_table(&dmreq->sg_in, 1); | |
354 | sg_set_page(&dmreq->sg_in, bv_in->bv_page, 1 << SECTOR_SHIFT, | |
355 | bv_in->bv_offset + ctx->offset_in); | |
356 | ||
357 | sg_init_table(&dmreq->sg_out, 1); | |
358 | sg_set_page(&dmreq->sg_out, bv_out->bv_page, 1 << SECTOR_SHIFT, | |
359 | bv_out->bv_offset + ctx->offset_out); | |
360 | ||
361 | ctx->offset_in += 1 << SECTOR_SHIFT; | |
362 | if (ctx->offset_in >= bv_in->bv_len) { | |
363 | ctx->offset_in = 0; | |
364 | ctx->idx_in++; | |
365 | } | |
366 | ||
367 | ctx->offset_out += 1 << SECTOR_SHIFT; | |
368 | if (ctx->offset_out >= bv_out->bv_len) { | |
369 | ctx->offset_out = 0; | |
370 | ctx->idx_out++; | |
371 | } | |
372 | ||
373 | if (cc->iv_gen_ops) { | |
374 | r = cc->iv_gen_ops->generator(cc, iv, ctx->sector); | |
375 | if (r < 0) | |
376 | return r; | |
377 | } | |
378 | ||
379 | ablkcipher_request_set_crypt(req, &dmreq->sg_in, &dmreq->sg_out, | |
380 | 1 << SECTOR_SHIFT, iv); | |
381 | ||
382 | if (bio_data_dir(ctx->bio_in) == WRITE) | |
383 | r = crypto_ablkcipher_encrypt(req); | |
384 | else | |
385 | r = crypto_ablkcipher_decrypt(req); | |
386 | ||
387 | return r; | |
388 | } | |
389 | ||
390 | static void kcryptd_async_done(struct crypto_async_request *async_req, | |
391 | int error); | |
392 | static void crypt_alloc_req(struct crypt_config *cc, | |
393 | struct convert_context *ctx) | |
394 | { | |
395 | if (!cc->req) | |
396 | cc->req = mempool_alloc(cc->req_pool, GFP_NOIO); | |
397 | ablkcipher_request_set_tfm(cc->req, cc->tfm); | |
398 | ablkcipher_request_set_callback(cc->req, CRYPTO_TFM_REQ_MAY_BACKLOG | | |
399 | CRYPTO_TFM_REQ_MAY_SLEEP, | |
400 | kcryptd_async_done, ctx); | |
401 | } | |
402 | ||
403 | /* | |
404 | * Encrypt / decrypt data from one bio to another one (can be the same one) | |
405 | */ | |
406 | static int crypt_convert(struct crypt_config *cc, | |
407 | struct convert_context *ctx) | |
408 | { | |
409 | int r; | |
410 | ||
411 | while(ctx->idx_in < ctx->bio_in->bi_vcnt && | |
412 | ctx->idx_out < ctx->bio_out->bi_vcnt) { | |
413 | ||
414 | crypt_alloc_req(cc, ctx); | |
415 | ||
416 | atomic_inc(&ctx->pending); | |
417 | ||
418 | r = crypt_convert_block(cc, ctx, cc->req); | |
419 | ||
420 | switch (r) { | |
421 | /* async */ | |
422 | case -EBUSY: | |
423 | wait_for_completion(&ctx->restart); | |
424 | INIT_COMPLETION(ctx->restart); | |
425 | /* fall through*/ | |
426 | case -EINPROGRESS: | |
427 | cc->req = NULL; | |
428 | ctx->sector++; | |
429 | continue; | |
430 | ||
431 | /* sync */ | |
432 | case 0: | |
433 | atomic_dec(&ctx->pending); | |
434 | ctx->sector++; | |
435 | continue; | |
436 | ||
437 | /* error */ | |
438 | default: | |
439 | atomic_dec(&ctx->pending); | |
440 | return r; | |
441 | } | |
442 | } | |
443 | ||
444 | return 0; | |
445 | } | |
446 | ||
447 | static void dm_crypt_bio_destructor(struct bio *bio) | |
448 | { | |
449 | struct dm_crypt_io *io = bio->bi_private; | |
450 | struct crypt_config *cc = io->target->private; | |
451 | ||
452 | bio_free(bio, cc->bs); | |
453 | } | |
454 | ||
455 | /* | |
456 | * Generate a new unfragmented bio with the given size | |
457 | * This should never violate the device limitations | |
458 | * May return a smaller bio when running out of pages | |
459 | */ | |
460 | static struct bio *crypt_alloc_buffer(struct dm_crypt_io *io, unsigned size) | |
461 | { | |
462 | struct crypt_config *cc = io->target->private; | |
463 | struct bio *clone; | |
464 | unsigned int nr_iovecs = (size + PAGE_SIZE - 1) >> PAGE_SHIFT; | |
465 | gfp_t gfp_mask = GFP_NOIO | __GFP_HIGHMEM; | |
466 | unsigned i, len; | |
467 | struct page *page; | |
468 | ||
469 | clone = bio_alloc_bioset(GFP_NOIO, nr_iovecs, cc->bs); | |
470 | if (!clone) | |
471 | return NULL; | |
472 | ||
473 | clone_init(io, clone); | |
474 | ||
475 | for (i = 0; i < nr_iovecs; i++) { | |
476 | page = mempool_alloc(cc->page_pool, gfp_mask); | |
477 | if (!page) | |
478 | break; | |
479 | ||
480 | /* | |
481 | * if additional pages cannot be allocated without waiting, | |
482 | * return a partially allocated bio, the caller will then try | |
483 | * to allocate additional bios while submitting this partial bio | |
484 | */ | |
485 | if (i == (MIN_BIO_PAGES - 1)) | |
486 | gfp_mask = (gfp_mask | __GFP_NOWARN) & ~__GFP_WAIT; | |
487 | ||
488 | len = (size > PAGE_SIZE) ? PAGE_SIZE : size; | |
489 | ||
490 | if (!bio_add_page(clone, page, len, 0)) { | |
491 | mempool_free(page, cc->page_pool); | |
492 | break; | |
493 | } | |
494 | ||
495 | size -= len; | |
496 | } | |
497 | ||
498 | if (!clone->bi_size) { | |
499 | bio_put(clone); | |
500 | return NULL; | |
501 | } | |
502 | ||
503 | return clone; | |
504 | } | |
505 | ||
506 | static void crypt_free_buffer_pages(struct crypt_config *cc, struct bio *clone) | |
507 | { | |
508 | unsigned int i; | |
509 | struct bio_vec *bv; | |
510 | ||
511 | for (i = 0; i < clone->bi_vcnt; i++) { | |
512 | bv = bio_iovec_idx(clone, i); | |
513 | BUG_ON(!bv->bv_page); | |
514 | mempool_free(bv->bv_page, cc->page_pool); | |
515 | bv->bv_page = NULL; | |
516 | } | |
517 | } | |
518 | ||
519 | /* | |
520 | * One of the bios was finished. Check for completion of | |
521 | * the whole request and correctly clean up the buffer. | |
522 | */ | |
523 | static void crypt_dec_pending(struct dm_crypt_io *io) | |
524 | { | |
525 | struct crypt_config *cc = io->target->private; | |
526 | ||
527 | if (!atomic_dec_and_test(&io->pending)) | |
528 | return; | |
529 | ||
530 | bio_endio(io->base_bio, io->error); | |
531 | mempool_free(io, cc->io_pool); | |
532 | } | |
533 | ||
534 | /* | |
535 | * kcryptd/kcryptd_io: | |
536 | * | |
537 | * Needed because it would be very unwise to do decryption in an | |
538 | * interrupt context. | |
539 | * | |
540 | * kcryptd performs the actual encryption or decryption. | |
541 | * | |
542 | * kcryptd_io performs the IO submission. | |
543 | * | |
544 | * They must be separated as otherwise the final stages could be | |
545 | * starved by new requests which can block in the first stages due | |
546 | * to memory allocation. | |
547 | */ | |
548 | static void crypt_endio(struct bio *clone, int error) | |
549 | { | |
550 | struct dm_crypt_io *io = clone->bi_private; | |
551 | struct crypt_config *cc = io->target->private; | |
552 | unsigned rw = bio_data_dir(clone); | |
553 | ||
554 | if (unlikely(!bio_flagged(clone, BIO_UPTODATE) && !error)) | |
555 | error = -EIO; | |
556 | ||
557 | /* | |
558 | * free the processed pages | |
559 | */ | |
560 | if (rw == WRITE) | |
561 | crypt_free_buffer_pages(cc, clone); | |
562 | ||
563 | bio_put(clone); | |
564 | ||
565 | if (rw == READ && !error) { | |
566 | kcryptd_queue_crypt(io); | |
567 | return; | |
568 | } | |
569 | ||
570 | if (unlikely(error)) | |
571 | io->error = error; | |
572 | ||
573 | crypt_dec_pending(io); | |
574 | } | |
575 | ||
576 | static void clone_init(struct dm_crypt_io *io, struct bio *clone) | |
577 | { | |
578 | struct crypt_config *cc = io->target->private; | |
579 | ||
580 | clone->bi_private = io; | |
581 | clone->bi_end_io = crypt_endio; | |
582 | clone->bi_bdev = cc->dev->bdev; | |
583 | clone->bi_rw = io->base_bio->bi_rw; | |
584 | clone->bi_destructor = dm_crypt_bio_destructor; | |
585 | } | |
586 | ||
587 | static void kcryptd_io_read(struct dm_crypt_io *io) | |
588 | { | |
589 | struct crypt_config *cc = io->target->private; | |
590 | struct bio *base_bio = io->base_bio; | |
591 | struct bio *clone; | |
592 | ||
593 | atomic_inc(&io->pending); | |
594 | ||
595 | /* | |
596 | * The block layer might modify the bvec array, so always | |
597 | * copy the required bvecs because we need the original | |
598 | * one in order to decrypt the whole bio data *afterwards*. | |
599 | */ | |
600 | clone = bio_alloc_bioset(GFP_NOIO, bio_segments(base_bio), cc->bs); | |
601 | if (unlikely(!clone)) { | |
602 | io->error = -ENOMEM; | |
603 | crypt_dec_pending(io); | |
604 | return; | |
605 | } | |
606 | ||
607 | clone_init(io, clone); | |
608 | clone->bi_idx = 0; | |
609 | clone->bi_vcnt = bio_segments(base_bio); | |
610 | clone->bi_size = base_bio->bi_size; | |
611 | clone->bi_sector = cc->start + io->sector; | |
612 | memcpy(clone->bi_io_vec, bio_iovec(base_bio), | |
613 | sizeof(struct bio_vec) * clone->bi_vcnt); | |
614 | ||
615 | generic_make_request(clone); | |
616 | } | |
617 | ||
618 | static void kcryptd_io_write(struct dm_crypt_io *io) | |
619 | { | |
620 | struct bio *clone = io->ctx.bio_out; | |
621 | struct crypt_config *cc = io->target->private; | |
622 | ||
623 | generic_make_request(clone); | |
624 | wake_up(&cc->writeq); | |
625 | } | |
626 | ||
627 | static void kcryptd_io(struct work_struct *work) | |
628 | { | |
629 | struct dm_crypt_io *io = container_of(work, struct dm_crypt_io, work); | |
630 | ||
631 | if (bio_data_dir(io->base_bio) == READ) | |
632 | kcryptd_io_read(io); | |
633 | else | |
634 | kcryptd_io_write(io); | |
635 | } | |
636 | ||
637 | static void kcryptd_queue_io(struct dm_crypt_io *io) | |
638 | { | |
639 | struct crypt_config *cc = io->target->private; | |
640 | ||
641 | INIT_WORK(&io->work, kcryptd_io); | |
642 | queue_work(cc->io_queue, &io->work); | |
643 | } | |
644 | ||
645 | static void kcryptd_crypt_write_io_submit(struct dm_crypt_io *io, | |
646 | int error, int async) | |
647 | { | |
648 | struct bio *clone = io->ctx.bio_out; | |
649 | struct crypt_config *cc = io->target->private; | |
650 | ||
651 | if (unlikely(error < 0)) { | |
652 | crypt_free_buffer_pages(cc, clone); | |
653 | bio_put(clone); | |
654 | io->error = -EIO; | |
655 | return; | |
656 | } | |
657 | ||
658 | /* crypt_convert should have filled the clone bio */ | |
659 | BUG_ON(io->ctx.idx_out < clone->bi_vcnt); | |
660 | ||
661 | clone->bi_sector = cc->start + io->sector; | |
662 | io->sector += bio_sectors(clone); | |
663 | ||
664 | if (async) | |
665 | kcryptd_queue_io(io); | |
666 | else { | |
667 | atomic_inc(&io->pending); | |
668 | generic_make_request(clone); | |
669 | } | |
670 | } | |
671 | ||
672 | static void kcryptd_crypt_write_convert_loop(struct dm_crypt_io *io) | |
673 | { | |
674 | struct crypt_config *cc = io->target->private; | |
675 | struct bio *clone; | |
676 | unsigned remaining = io->base_bio->bi_size; | |
677 | int r; | |
678 | ||
679 | /* | |
680 | * The allocated buffers can be smaller than the whole bio, | |
681 | * so repeat the whole process until all the data can be handled. | |
682 | */ | |
683 | while (remaining) { | |
684 | clone = crypt_alloc_buffer(io, remaining); | |
685 | if (unlikely(!clone)) { | |
686 | io->error = -ENOMEM; | |
687 | return; | |
688 | } | |
689 | ||
690 | io->ctx.bio_out = clone; | |
691 | io->ctx.idx_out = 0; | |
692 | ||
693 | remaining -= clone->bi_size; | |
694 | ||
695 | r = crypt_convert(cc, &io->ctx); | |
696 | ||
697 | if (atomic_dec_and_test(&io->ctx.pending)) { | |
698 | /* processed, no running async crypto */ | |
699 | kcryptd_crypt_write_io_submit(io, r, 0); | |
700 | if (unlikely(r < 0)) | |
701 | return; | |
702 | } else | |
703 | atomic_inc(&io->pending); | |
704 | ||
705 | /* out of memory -> run queues */ | |
706 | if (unlikely(remaining)) { | |
707 | /* wait for async crypto then reinitialize pending */ | |
708 | wait_event(cc->writeq, !atomic_read(&io->ctx.pending)); | |
709 | atomic_set(&io->ctx.pending, 1); | |
710 | congestion_wait(WRITE, HZ/100); | |
711 | } | |
712 | } | |
713 | } | |
714 | ||
715 | static void kcryptd_crypt_write_convert(struct dm_crypt_io *io) | |
716 | { | |
717 | struct crypt_config *cc = io->target->private; | |
718 | ||
719 | /* | |
720 | * Prevent io from disappearing until this function completes. | |
721 | */ | |
722 | atomic_inc(&io->pending); | |
723 | ||
724 | crypt_convert_init(cc, &io->ctx, NULL, io->base_bio, io->sector); | |
725 | kcryptd_crypt_write_convert_loop(io); | |
726 | ||
727 | crypt_dec_pending(io); | |
728 | } | |
729 | ||
730 | static void kcryptd_crypt_read_done(struct dm_crypt_io *io, int error) | |
731 | { | |
732 | if (unlikely(error < 0)) | |
733 | io->error = -EIO; | |
734 | ||
735 | crypt_dec_pending(io); | |
736 | } | |
737 | ||
738 | static void kcryptd_crypt_read_convert(struct dm_crypt_io *io) | |
739 | { | |
740 | struct crypt_config *cc = io->target->private; | |
741 | int r = 0; | |
742 | ||
743 | atomic_inc(&io->pending); | |
744 | ||
745 | crypt_convert_init(cc, &io->ctx, io->base_bio, io->base_bio, | |
746 | io->sector); | |
747 | ||
748 | r = crypt_convert(cc, &io->ctx); | |
749 | ||
750 | if (atomic_dec_and_test(&io->ctx.pending)) | |
751 | kcryptd_crypt_read_done(io, r); | |
752 | ||
753 | crypt_dec_pending(io); | |
754 | } | |
755 | ||
756 | static void kcryptd_async_done(struct crypto_async_request *async_req, | |
757 | int error) | |
758 | { | |
759 | struct convert_context *ctx = async_req->data; | |
760 | struct dm_crypt_io *io = container_of(ctx, struct dm_crypt_io, ctx); | |
761 | struct crypt_config *cc = io->target->private; | |
762 | ||
763 | if (error == -EINPROGRESS) { | |
764 | complete(&ctx->restart); | |
765 | return; | |
766 | } | |
767 | ||
768 | mempool_free(ablkcipher_request_cast(async_req), cc->req_pool); | |
769 | ||
770 | if (!atomic_dec_and_test(&ctx->pending)) | |
771 | return; | |
772 | ||
773 | if (bio_data_dir(io->base_bio) == READ) | |
774 | kcryptd_crypt_read_done(io, error); | |
775 | else | |
776 | kcryptd_crypt_write_io_submit(io, error, 1); | |
777 | } | |
778 | ||
779 | static void kcryptd_crypt(struct work_struct *work) | |
780 | { | |
781 | struct dm_crypt_io *io = container_of(work, struct dm_crypt_io, work); | |
782 | ||
783 | if (bio_data_dir(io->base_bio) == READ) | |
784 | kcryptd_crypt_read_convert(io); | |
785 | else | |
786 | kcryptd_crypt_write_convert(io); | |
787 | } | |
788 | ||
789 | static void kcryptd_queue_crypt(struct dm_crypt_io *io) | |
790 | { | |
791 | struct crypt_config *cc = io->target->private; | |
792 | ||
793 | INIT_WORK(&io->work, kcryptd_crypt); | |
794 | queue_work(cc->crypt_queue, &io->work); | |
795 | } | |
796 | ||
797 | /* | |
798 | * Decode key from its hex representation | |
799 | */ | |
800 | static int crypt_decode_key(u8 *key, char *hex, unsigned int size) | |
801 | { | |
802 | char buffer[3]; | |
803 | char *endp; | |
804 | unsigned int i; | |
805 | ||
806 | buffer[2] = '\0'; | |
807 | ||
808 | for (i = 0; i < size; i++) { | |
809 | buffer[0] = *hex++; | |
810 | buffer[1] = *hex++; | |
811 | ||
812 | key[i] = (u8)simple_strtoul(buffer, &endp, 16); | |
813 | ||
814 | if (endp != &buffer[2]) | |
815 | return -EINVAL; | |
816 | } | |
817 | ||
818 | if (*hex != '\0') | |
819 | return -EINVAL; | |
820 | ||
821 | return 0; | |
822 | } | |
823 | ||
824 | /* | |
825 | * Encode key into its hex representation | |
826 | */ | |
827 | static void crypt_encode_key(char *hex, u8 *key, unsigned int size) | |
828 | { | |
829 | unsigned int i; | |
830 | ||
831 | for (i = 0; i < size; i++) { | |
832 | sprintf(hex, "%02x", *key); | |
833 | hex += 2; | |
834 | key++; | |
835 | } | |
836 | } | |
837 | ||
838 | static int crypt_set_key(struct crypt_config *cc, char *key) | |
839 | { | |
840 | unsigned key_size = strlen(key) >> 1; | |
841 | ||
842 | if (cc->key_size && cc->key_size != key_size) | |
843 | return -EINVAL; | |
844 | ||
845 | cc->key_size = key_size; /* initial settings */ | |
846 | ||
847 | if ((!key_size && strcmp(key, "-")) || | |
848 | (key_size && crypt_decode_key(cc->key, key, key_size) < 0)) | |
849 | return -EINVAL; | |
850 | ||
851 | set_bit(DM_CRYPT_KEY_VALID, &cc->flags); | |
852 | ||
853 | return 0; | |
854 | } | |
855 | ||
856 | static int crypt_wipe_key(struct crypt_config *cc) | |
857 | { | |
858 | clear_bit(DM_CRYPT_KEY_VALID, &cc->flags); | |
859 | memset(&cc->key, 0, cc->key_size * sizeof(u8)); | |
860 | return 0; | |
861 | } | |
862 | ||
863 | /* | |
864 | * Construct an encryption mapping: | |
865 | * <cipher> <key> <iv_offset> <dev_path> <start> | |
866 | */ | |
867 | static int crypt_ctr(struct dm_target *ti, unsigned int argc, char **argv) | |
868 | { | |
869 | struct crypt_config *cc; | |
870 | struct crypto_ablkcipher *tfm; | |
871 | char *tmp; | |
872 | char *cipher; | |
873 | char *chainmode; | |
874 | char *ivmode; | |
875 | char *ivopts; | |
876 | unsigned int key_size; | |
877 | unsigned long long tmpll; | |
878 | ||
879 | if (argc != 5) { | |
880 | ti->error = "Not enough arguments"; | |
881 | return -EINVAL; | |
882 | } | |
883 | ||
884 | tmp = argv[0]; | |
885 | cipher = strsep(&tmp, "-"); | |
886 | chainmode = strsep(&tmp, "-"); | |
887 | ivopts = strsep(&tmp, "-"); | |
888 | ivmode = strsep(&ivopts, ":"); | |
889 | ||
890 | if (tmp) | |
891 | DMWARN("Unexpected additional cipher options"); | |
892 | ||
893 | key_size = strlen(argv[1]) >> 1; | |
894 | ||
895 | cc = kzalloc(sizeof(*cc) + key_size * sizeof(u8), GFP_KERNEL); | |
896 | if (cc == NULL) { | |
897 | ti->error = | |
898 | "Cannot allocate transparent encryption context"; | |
899 | return -ENOMEM; | |
900 | } | |
901 | ||
902 | if (crypt_set_key(cc, argv[1])) { | |
903 | ti->error = "Error decoding key"; | |
904 | goto bad_cipher; | |
905 | } | |
906 | ||
907 | /* Compatiblity mode for old dm-crypt cipher strings */ | |
908 | if (!chainmode || (strcmp(chainmode, "plain") == 0 && !ivmode)) { | |
909 | chainmode = "cbc"; | |
910 | ivmode = "plain"; | |
911 | } | |
912 | ||
913 | if (strcmp(chainmode, "ecb") && !ivmode) { | |
914 | ti->error = "This chaining mode requires an IV mechanism"; | |
915 | goto bad_cipher; | |
916 | } | |
917 | ||
918 | if (snprintf(cc->cipher, CRYPTO_MAX_ALG_NAME, "%s(%s)", | |
919 | chainmode, cipher) >= CRYPTO_MAX_ALG_NAME) { | |
920 | ti->error = "Chain mode + cipher name is too long"; | |
921 | goto bad_cipher; | |
922 | } | |
923 | ||
924 | tfm = crypto_alloc_ablkcipher(cc->cipher, 0, 0); | |
925 | if (IS_ERR(tfm)) { | |
926 | ti->error = "Error allocating crypto tfm"; | |
927 | goto bad_cipher; | |
928 | } | |
929 | ||
930 | strcpy(cc->cipher, cipher); | |
931 | strcpy(cc->chainmode, chainmode); | |
932 | cc->tfm = tfm; | |
933 | ||
934 | /* | |
935 | * Choose ivmode. Valid modes: "plain", "essiv:<esshash>", "benbi". | |
936 | * See comments at iv code | |
937 | */ | |
938 | ||
939 | if (ivmode == NULL) | |
940 | cc->iv_gen_ops = NULL; | |
941 | else if (strcmp(ivmode, "plain") == 0) | |
942 | cc->iv_gen_ops = &crypt_iv_plain_ops; | |
943 | else if (strcmp(ivmode, "essiv") == 0) | |
944 | cc->iv_gen_ops = &crypt_iv_essiv_ops; | |
945 | else if (strcmp(ivmode, "benbi") == 0) | |
946 | cc->iv_gen_ops = &crypt_iv_benbi_ops; | |
947 | else if (strcmp(ivmode, "null") == 0) | |
948 | cc->iv_gen_ops = &crypt_iv_null_ops; | |
949 | else { | |
950 | ti->error = "Invalid IV mode"; | |
951 | goto bad_ivmode; | |
952 | } | |
953 | ||
954 | if (cc->iv_gen_ops && cc->iv_gen_ops->ctr && | |
955 | cc->iv_gen_ops->ctr(cc, ti, ivopts) < 0) | |
956 | goto bad_ivmode; | |
957 | ||
958 | cc->iv_size = crypto_ablkcipher_ivsize(tfm); | |
959 | if (cc->iv_size) | |
960 | /* at least a 64 bit sector number should fit in our buffer */ | |
961 | cc->iv_size = max(cc->iv_size, | |
962 | (unsigned int)(sizeof(u64) / sizeof(u8))); | |
963 | else { | |
964 | if (cc->iv_gen_ops) { | |
965 | DMWARN("Selected cipher does not support IVs"); | |
966 | if (cc->iv_gen_ops->dtr) | |
967 | cc->iv_gen_ops->dtr(cc); | |
968 | cc->iv_gen_ops = NULL; | |
969 | } | |
970 | } | |
971 | ||
972 | cc->io_pool = mempool_create_slab_pool(MIN_IOS, _crypt_io_pool); | |
973 | if (!cc->io_pool) { | |
974 | ti->error = "Cannot allocate crypt io mempool"; | |
975 | goto bad_slab_pool; | |
976 | } | |
977 | ||
978 | cc->dmreq_start = sizeof(struct ablkcipher_request); | |
979 | cc->dmreq_start += crypto_ablkcipher_reqsize(tfm); | |
980 | cc->dmreq_start = ALIGN(cc->dmreq_start, crypto_tfm_ctx_alignment()); | |
981 | cc->dmreq_start += crypto_ablkcipher_alignmask(tfm) & | |
982 | ~(crypto_tfm_ctx_alignment() - 1); | |
983 | ||
984 | cc->req_pool = mempool_create_kmalloc_pool(MIN_IOS, cc->dmreq_start + | |
985 | sizeof(struct dm_crypt_request) + cc->iv_size); | |
986 | if (!cc->req_pool) { | |
987 | ti->error = "Cannot allocate crypt request mempool"; | |
988 | goto bad_req_pool; | |
989 | } | |
990 | cc->req = NULL; | |
991 | ||
992 | cc->page_pool = mempool_create_page_pool(MIN_POOL_PAGES, 0); | |
993 | if (!cc->page_pool) { | |
994 | ti->error = "Cannot allocate page mempool"; | |
995 | goto bad_page_pool; | |
996 | } | |
997 | ||
998 | cc->bs = bioset_create(MIN_IOS, MIN_IOS); | |
999 | if (!cc->bs) { | |
1000 | ti->error = "Cannot allocate crypt bioset"; | |
1001 | goto bad_bs; | |
1002 | } | |
1003 | ||
1004 | if (crypto_ablkcipher_setkey(tfm, cc->key, key_size) < 0) { | |
1005 | ti->error = "Error setting key"; | |
1006 | goto bad_device; | |
1007 | } | |
1008 | ||
1009 | if (sscanf(argv[2], "%llu", &tmpll) != 1) { | |
1010 | ti->error = "Invalid iv_offset sector"; | |
1011 | goto bad_device; | |
1012 | } | |
1013 | cc->iv_offset = tmpll; | |
1014 | ||
1015 | if (sscanf(argv[4], "%llu", &tmpll) != 1) { | |
1016 | ti->error = "Invalid device sector"; | |
1017 | goto bad_device; | |
1018 | } | |
1019 | cc->start = tmpll; | |
1020 | ||
1021 | if (dm_get_device(ti, argv[3], cc->start, ti->len, | |
1022 | dm_table_get_mode(ti->table), &cc->dev)) { | |
1023 | ti->error = "Device lookup failed"; | |
1024 | goto bad_device; | |
1025 | } | |
1026 | ||
1027 | if (ivmode && cc->iv_gen_ops) { | |
1028 | if (ivopts) | |
1029 | *(ivopts - 1) = ':'; | |
1030 | cc->iv_mode = kmalloc(strlen(ivmode) + 1, GFP_KERNEL); | |
1031 | if (!cc->iv_mode) { | |
1032 | ti->error = "Error kmallocing iv_mode string"; | |
1033 | goto bad_ivmode_string; | |
1034 | } | |
1035 | strcpy(cc->iv_mode, ivmode); | |
1036 | } else | |
1037 | cc->iv_mode = NULL; | |
1038 | ||
1039 | cc->io_queue = create_singlethread_workqueue("kcryptd_io"); | |
1040 | if (!cc->io_queue) { | |
1041 | ti->error = "Couldn't create kcryptd io queue"; | |
1042 | goto bad_io_queue; | |
1043 | } | |
1044 | ||
1045 | cc->crypt_queue = create_singlethread_workqueue("kcryptd"); | |
1046 | if (!cc->crypt_queue) { | |
1047 | ti->error = "Couldn't create kcryptd queue"; | |
1048 | goto bad_crypt_queue; | |
1049 | } | |
1050 | ||
1051 | init_waitqueue_head(&cc->writeq); | |
1052 | ti->private = cc; | |
1053 | return 0; | |
1054 | ||
1055 | bad_crypt_queue: | |
1056 | destroy_workqueue(cc->io_queue); | |
1057 | bad_io_queue: | |
1058 | kfree(cc->iv_mode); | |
1059 | bad_ivmode_string: | |
1060 | dm_put_device(ti, cc->dev); | |
1061 | bad_device: | |
1062 | bioset_free(cc->bs); | |
1063 | bad_bs: | |
1064 | mempool_destroy(cc->page_pool); | |
1065 | bad_page_pool: | |
1066 | mempool_destroy(cc->req_pool); | |
1067 | bad_req_pool: | |
1068 | mempool_destroy(cc->io_pool); | |
1069 | bad_slab_pool: | |
1070 | if (cc->iv_gen_ops && cc->iv_gen_ops->dtr) | |
1071 | cc->iv_gen_ops->dtr(cc); | |
1072 | bad_ivmode: | |
1073 | crypto_free_ablkcipher(tfm); | |
1074 | bad_cipher: | |
1075 | /* Must zero key material before freeing */ | |
1076 | memset(cc, 0, sizeof(*cc) + cc->key_size * sizeof(u8)); | |
1077 | kfree(cc); | |
1078 | return -EINVAL; | |
1079 | } | |
1080 | ||
1081 | static void crypt_dtr(struct dm_target *ti) | |
1082 | { | |
1083 | struct crypt_config *cc = (struct crypt_config *) ti->private; | |
1084 | ||
1085 | destroy_workqueue(cc->io_queue); | |
1086 | destroy_workqueue(cc->crypt_queue); | |
1087 | ||
1088 | if (cc->req) | |
1089 | mempool_free(cc->req, cc->req_pool); | |
1090 | ||
1091 | bioset_free(cc->bs); | |
1092 | mempool_destroy(cc->page_pool); | |
1093 | mempool_destroy(cc->req_pool); | |
1094 | mempool_destroy(cc->io_pool); | |
1095 | ||
1096 | kfree(cc->iv_mode); | |
1097 | if (cc->iv_gen_ops && cc->iv_gen_ops->dtr) | |
1098 | cc->iv_gen_ops->dtr(cc); | |
1099 | crypto_free_ablkcipher(cc->tfm); | |
1100 | dm_put_device(ti, cc->dev); | |
1101 | ||
1102 | /* Must zero key material before freeing */ | |
1103 | memset(cc, 0, sizeof(*cc) + cc->key_size * sizeof(u8)); | |
1104 | kfree(cc); | |
1105 | } | |
1106 | ||
1107 | static int crypt_map(struct dm_target *ti, struct bio *bio, | |
1108 | union map_info *map_context) | |
1109 | { | |
1110 | struct crypt_config *cc = ti->private; | |
1111 | struct dm_crypt_io *io; | |
1112 | ||
1113 | io = mempool_alloc(cc->io_pool, GFP_NOIO); | |
1114 | io->target = ti; | |
1115 | io->base_bio = bio; | |
1116 | io->sector = bio->bi_sector - ti->begin; | |
1117 | io->error = 0; | |
1118 | atomic_set(&io->pending, 0); | |
1119 | ||
1120 | if (bio_data_dir(io->base_bio) == READ) | |
1121 | kcryptd_queue_io(io); | |
1122 | else | |
1123 | kcryptd_queue_crypt(io); | |
1124 | ||
1125 | return DM_MAPIO_SUBMITTED; | |
1126 | } | |
1127 | ||
1128 | static int crypt_status(struct dm_target *ti, status_type_t type, | |
1129 | char *result, unsigned int maxlen) | |
1130 | { | |
1131 | struct crypt_config *cc = (struct crypt_config *) ti->private; | |
1132 | unsigned int sz = 0; | |
1133 | ||
1134 | switch (type) { | |
1135 | case STATUSTYPE_INFO: | |
1136 | result[0] = '\0'; | |
1137 | break; | |
1138 | ||
1139 | case STATUSTYPE_TABLE: | |
1140 | if (cc->iv_mode) | |
1141 | DMEMIT("%s-%s-%s ", cc->cipher, cc->chainmode, | |
1142 | cc->iv_mode); | |
1143 | else | |
1144 | DMEMIT("%s-%s ", cc->cipher, cc->chainmode); | |
1145 | ||
1146 | if (cc->key_size > 0) { | |
1147 | if ((maxlen - sz) < ((cc->key_size << 1) + 1)) | |
1148 | return -ENOMEM; | |
1149 | ||
1150 | crypt_encode_key(result + sz, cc->key, cc->key_size); | |
1151 | sz += cc->key_size << 1; | |
1152 | } else { | |
1153 | if (sz >= maxlen) | |
1154 | return -ENOMEM; | |
1155 | result[sz++] = '-'; | |
1156 | } | |
1157 | ||
1158 | DMEMIT(" %llu %s %llu", (unsigned long long)cc->iv_offset, | |
1159 | cc->dev->name, (unsigned long long)cc->start); | |
1160 | break; | |
1161 | } | |
1162 | return 0; | |
1163 | } | |
1164 | ||
1165 | static void crypt_postsuspend(struct dm_target *ti) | |
1166 | { | |
1167 | struct crypt_config *cc = ti->private; | |
1168 | ||
1169 | set_bit(DM_CRYPT_SUSPENDED, &cc->flags); | |
1170 | } | |
1171 | ||
1172 | static int crypt_preresume(struct dm_target *ti) | |
1173 | { | |
1174 | struct crypt_config *cc = ti->private; | |
1175 | ||
1176 | if (!test_bit(DM_CRYPT_KEY_VALID, &cc->flags)) { | |
1177 | DMERR("aborting resume - crypt key is not set."); | |
1178 | return -EAGAIN; | |
1179 | } | |
1180 | ||
1181 | return 0; | |
1182 | } | |
1183 | ||
1184 | static void crypt_resume(struct dm_target *ti) | |
1185 | { | |
1186 | struct crypt_config *cc = ti->private; | |
1187 | ||
1188 | clear_bit(DM_CRYPT_SUSPENDED, &cc->flags); | |
1189 | } | |
1190 | ||
1191 | /* Message interface | |
1192 | * key set <key> | |
1193 | * key wipe | |
1194 | */ | |
1195 | static int crypt_message(struct dm_target *ti, unsigned argc, char **argv) | |
1196 | { | |
1197 | struct crypt_config *cc = ti->private; | |
1198 | ||
1199 | if (argc < 2) | |
1200 | goto error; | |
1201 | ||
1202 | if (!strnicmp(argv[0], MESG_STR("key"))) { | |
1203 | if (!test_bit(DM_CRYPT_SUSPENDED, &cc->flags)) { | |
1204 | DMWARN("not suspended during key manipulation."); | |
1205 | return -EINVAL; | |
1206 | } | |
1207 | if (argc == 3 && !strnicmp(argv[1], MESG_STR("set"))) | |
1208 | return crypt_set_key(cc, argv[2]); | |
1209 | if (argc == 2 && !strnicmp(argv[1], MESG_STR("wipe"))) | |
1210 | return crypt_wipe_key(cc); | |
1211 | } | |
1212 | ||
1213 | error: | |
1214 | DMWARN("unrecognised message received."); | |
1215 | return -EINVAL; | |
1216 | } | |
1217 | ||
1218 | static struct target_type crypt_target = { | |
1219 | .name = "crypt", | |
1220 | .version= {1, 5, 0}, | |
1221 | .module = THIS_MODULE, | |
1222 | .ctr = crypt_ctr, | |
1223 | .dtr = crypt_dtr, | |
1224 | .map = crypt_map, | |
1225 | .status = crypt_status, | |
1226 | .postsuspend = crypt_postsuspend, | |
1227 | .preresume = crypt_preresume, | |
1228 | .resume = crypt_resume, | |
1229 | .message = crypt_message, | |
1230 | }; | |
1231 | ||
1232 | static int __init dm_crypt_init(void) | |
1233 | { | |
1234 | int r; | |
1235 | ||
1236 | _crypt_io_pool = KMEM_CACHE(dm_crypt_io, 0); | |
1237 | if (!_crypt_io_pool) | |
1238 | return -ENOMEM; | |
1239 | ||
1240 | r = dm_register_target(&crypt_target); | |
1241 | if (r < 0) { | |
1242 | DMERR("register failed %d", r); | |
1243 | kmem_cache_destroy(_crypt_io_pool); | |
1244 | } | |
1245 | ||
1246 | return r; | |
1247 | } | |
1248 | ||
1249 | static void __exit dm_crypt_exit(void) | |
1250 | { | |
1251 | int r = dm_unregister_target(&crypt_target); | |
1252 | ||
1253 | if (r < 0) | |
1254 | DMERR("unregister failed %d", r); | |
1255 | ||
1256 | kmem_cache_destroy(_crypt_io_pool); | |
1257 | } | |
1258 | ||
1259 | module_init(dm_crypt_init); | |
1260 | module_exit(dm_crypt_exit); | |
1261 | ||
1262 | MODULE_AUTHOR("Christophe Saout <[email protected]>"); | |
1263 | MODULE_DESCRIPTION(DM_NAME " target for transparent encryption / decryption"); | |
1264 | MODULE_LICENSE("GPL"); |