2 * Copyright (C) 2003 Christophe Saout <christophe@saout.de>
3 * Copyright (C) 2004 Clemens Fruhwirth <clemens@endorphin.org>
4 * Copyright (C) 2006-2009 Red Hat, Inc. All rights reserved.
6 * This file is released under the GPL.
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>
24 #include <asm/unaligned.h>
26 #include <linux/device-mapper.h>
28 #define DM_MSG_PREFIX "crypt"
29 #define MESG_STR(x) x, sizeof(x)
32 * context holding the current state of a multi-part conversion
34 struct convert_context
{
35 struct completion restart
;
38 unsigned int offset_in
;
39 unsigned int offset_out
;
47 * per bio private data
50 struct dm_target
*target
;
52 struct work_struct work
;
54 struct convert_context ctx
;
59 struct dm_crypt_io
*base_io
;
62 struct dm_crypt_request
{
63 struct convert_context
*ctx
;
64 struct scatterlist sg_in
;
65 struct scatterlist sg_out
;
70 struct crypt_iv_operations
{
71 int (*ctr
)(struct crypt_config
*cc
, struct dm_target
*ti
,
73 void (*dtr
)(struct crypt_config
*cc
);
74 int (*init
)(struct crypt_config
*cc
);
75 int (*wipe
)(struct crypt_config
*cc
);
76 int (*generator
)(struct crypt_config
*cc
, u8
*iv
, sector_t sector
);
79 struct iv_essiv_private
{
80 struct crypto_cipher
*tfm
;
81 struct crypto_hash
*hash_tfm
;
85 struct iv_benbi_private
{
90 * Crypt: maps a linear range of a block device
91 * and encrypts / decrypts at the same time.
93 enum flags
{ DM_CRYPT_SUSPENDED
, DM_CRYPT_KEY_VALID
};
99 * pool for per bio private data, crypto requests and
100 * encryption requeusts/buffer pages
104 mempool_t
*page_pool
;
107 struct workqueue_struct
*io_queue
;
108 struct workqueue_struct
*crypt_queue
;
111 * crypto related data
113 struct crypt_iv_operations
*iv_gen_ops
;
116 struct iv_essiv_private essiv
;
117 struct iv_benbi_private benbi
;
120 unsigned int iv_size
;
123 * Layout of each crypto request:
125 * struct ablkcipher_request
128 * struct dm_crypt_request
132 * The padding is added so that dm_crypt_request and the IV are
135 unsigned int dmreq_start
;
136 struct ablkcipher_request
*req
;
138 char cipher
[CRYPTO_MAX_ALG_NAME
];
139 char chainmode
[CRYPTO_MAX_ALG_NAME
];
140 struct crypto_ablkcipher
*tfm
;
142 unsigned int key_size
;
147 #define MIN_POOL_PAGES 32
148 #define MIN_BIO_PAGES 8
150 static struct kmem_cache
*_crypt_io_pool
;
152 static void clone_init(struct dm_crypt_io
*, struct bio
*);
153 static void kcryptd_queue_crypt(struct dm_crypt_io
*io
);
156 * Different IV generation algorithms:
158 * plain: the initial vector is the 32-bit little-endian version of the sector
159 * number, padded with zeros if necessary.
161 * essiv: "encrypted sector|salt initial vector", the sector number is
162 * encrypted with the bulk cipher using a salt as key. The salt
163 * should be derived from the bulk cipher's key via hashing.
165 * benbi: the 64-bit "big-endian 'narrow block'-count", starting at 1
166 * (needed for LRW-32-AES and possible other narrow block modes)
168 * null: the initial vector is always zero. Provides compatibility with
169 * obsolete loop_fish2 devices. Do not use for new devices.
171 * plumb: unimplemented, see:
172 * http://article.gmane.org/gmane.linux.kernel.device-mapper.dm-crypt/454
175 static int crypt_iv_plain_gen(struct crypt_config
*cc
, u8
*iv
, sector_t sector
)
177 memset(iv
, 0, cc
->iv_size
);
178 *(u32
*)iv
= cpu_to_le32(sector
& 0xffffffff);
183 /* Initialise ESSIV - compute salt but no local memory allocations */
184 static int crypt_iv_essiv_init(struct crypt_config
*cc
)
186 struct iv_essiv_private
*essiv
= &cc
->iv_gen_private
.essiv
;
187 struct hash_desc desc
;
188 struct scatterlist sg
;
191 sg_init_one(&sg
, cc
->key
, cc
->key_size
);
192 desc
.tfm
= essiv
->hash_tfm
;
193 desc
.flags
= CRYPTO_TFM_REQ_MAY_SLEEP
;
195 err
= crypto_hash_digest(&desc
, &sg
, cc
->key_size
, essiv
->salt
);
199 return crypto_cipher_setkey(essiv
->tfm
, essiv
->salt
,
200 crypto_hash_digestsize(essiv
->hash_tfm
));
203 /* Wipe salt and reset key derived from volume key */
204 static int crypt_iv_essiv_wipe(struct crypt_config
*cc
)
206 struct iv_essiv_private
*essiv
= &cc
->iv_gen_private
.essiv
;
207 unsigned salt_size
= crypto_hash_digestsize(essiv
->hash_tfm
);
209 memset(essiv
->salt
, 0, salt_size
);
211 return crypto_cipher_setkey(essiv
->tfm
, essiv
->salt
, salt_size
);
214 static void crypt_iv_essiv_dtr(struct crypt_config
*cc
)
216 struct iv_essiv_private
*essiv
= &cc
->iv_gen_private
.essiv
;
218 crypto_free_cipher(essiv
->tfm
);
221 crypto_free_hash(essiv
->hash_tfm
);
222 essiv
->hash_tfm
= NULL
;
228 static int crypt_iv_essiv_ctr(struct crypt_config
*cc
, struct dm_target
*ti
,
231 struct crypto_cipher
*essiv_tfm
= NULL
;
232 struct crypto_hash
*hash_tfm
= NULL
;
237 ti
->error
= "Digest algorithm missing for ESSIV mode";
241 /* Allocate hash algorithm */
242 hash_tfm
= crypto_alloc_hash(opts
, 0, CRYPTO_ALG_ASYNC
);
243 if (IS_ERR(hash_tfm
)) {
244 ti
->error
= "Error initializing ESSIV hash";
245 err
= PTR_ERR(hash_tfm
);
249 salt
= kzalloc(crypto_hash_digestsize(hash_tfm
), GFP_KERNEL
);
251 ti
->error
= "Error kmallocing salt storage in ESSIV";
256 /* Allocate essiv_tfm */
257 essiv_tfm
= crypto_alloc_cipher(cc
->cipher
, 0, CRYPTO_ALG_ASYNC
);
258 if (IS_ERR(essiv_tfm
)) {
259 ti
->error
= "Error allocating crypto tfm for ESSIV";
260 err
= PTR_ERR(essiv_tfm
);
263 if (crypto_cipher_blocksize(essiv_tfm
) !=
264 crypto_ablkcipher_ivsize(cc
->tfm
)) {
265 ti
->error
= "Block size of ESSIV cipher does "
266 "not match IV size of block cipher";
271 cc
->iv_gen_private
.essiv
.salt
= salt
;
272 cc
->iv_gen_private
.essiv
.tfm
= essiv_tfm
;
273 cc
->iv_gen_private
.essiv
.hash_tfm
= hash_tfm
;
278 if (essiv_tfm
&& !IS_ERR(essiv_tfm
))
279 crypto_free_cipher(essiv_tfm
);
280 if (hash_tfm
&& !IS_ERR(hash_tfm
))
281 crypto_free_hash(hash_tfm
);
286 static int crypt_iv_essiv_gen(struct crypt_config
*cc
, u8
*iv
, sector_t sector
)
288 memset(iv
, 0, cc
->iv_size
);
289 *(u64
*)iv
= cpu_to_le64(sector
);
290 crypto_cipher_encrypt_one(cc
->iv_gen_private
.essiv
.tfm
, iv
, iv
);
294 static int crypt_iv_benbi_ctr(struct crypt_config
*cc
, struct dm_target
*ti
,
297 unsigned bs
= crypto_ablkcipher_blocksize(cc
->tfm
);
300 /* we need to calculate how far we must shift the sector count
301 * to get the cipher block count, we use this shift in _gen */
303 if (1 << log
!= bs
) {
304 ti
->error
= "cypher blocksize is not a power of 2";
309 ti
->error
= "cypher blocksize is > 512";
313 cc
->iv_gen_private
.benbi
.shift
= 9 - log
;
318 static void crypt_iv_benbi_dtr(struct crypt_config
*cc
)
322 static int crypt_iv_benbi_gen(struct crypt_config
*cc
, u8
*iv
, sector_t sector
)
326 memset(iv
, 0, cc
->iv_size
- sizeof(u64
)); /* rest is cleared below */
328 val
= cpu_to_be64(((u64
)sector
<< cc
->iv_gen_private
.benbi
.shift
) + 1);
329 put_unaligned(val
, (__be64
*)(iv
+ cc
->iv_size
- sizeof(u64
)));
334 static int crypt_iv_null_gen(struct crypt_config
*cc
, u8
*iv
, sector_t sector
)
336 memset(iv
, 0, cc
->iv_size
);
341 static struct crypt_iv_operations crypt_iv_plain_ops
= {
342 .generator
= crypt_iv_plain_gen
345 static struct crypt_iv_operations crypt_iv_essiv_ops
= {
346 .ctr
= crypt_iv_essiv_ctr
,
347 .dtr
= crypt_iv_essiv_dtr
,
348 .init
= crypt_iv_essiv_init
,
349 .wipe
= crypt_iv_essiv_wipe
,
350 .generator
= crypt_iv_essiv_gen
353 static struct crypt_iv_operations crypt_iv_benbi_ops
= {
354 .ctr
= crypt_iv_benbi_ctr
,
355 .dtr
= crypt_iv_benbi_dtr
,
356 .generator
= crypt_iv_benbi_gen
359 static struct crypt_iv_operations crypt_iv_null_ops
= {
360 .generator
= crypt_iv_null_gen
363 static void crypt_convert_init(struct crypt_config
*cc
,
364 struct convert_context
*ctx
,
365 struct bio
*bio_out
, struct bio
*bio_in
,
368 ctx
->bio_in
= bio_in
;
369 ctx
->bio_out
= bio_out
;
372 ctx
->idx_in
= bio_in
? bio_in
->bi_idx
: 0;
373 ctx
->idx_out
= bio_out
? bio_out
->bi_idx
: 0;
374 ctx
->sector
= sector
+ cc
->iv_offset
;
375 init_completion(&ctx
->restart
);
378 static struct dm_crypt_request
*dmreq_of_req(struct crypt_config
*cc
,
379 struct ablkcipher_request
*req
)
381 return (struct dm_crypt_request
*)((char *)req
+ cc
->dmreq_start
);
384 static struct ablkcipher_request
*req_of_dmreq(struct crypt_config
*cc
,
385 struct dm_crypt_request
*dmreq
)
387 return (struct ablkcipher_request
*)((char *)dmreq
- cc
->dmreq_start
);
390 static int crypt_convert_block(struct crypt_config
*cc
,
391 struct convert_context
*ctx
,
392 struct ablkcipher_request
*req
)
394 struct bio_vec
*bv_in
= bio_iovec_idx(ctx
->bio_in
, ctx
->idx_in
);
395 struct bio_vec
*bv_out
= bio_iovec_idx(ctx
->bio_out
, ctx
->idx_out
);
396 struct dm_crypt_request
*dmreq
;
400 dmreq
= dmreq_of_req(cc
, req
);
401 iv
= (u8
*)ALIGN((unsigned long)(dmreq
+ 1),
402 crypto_ablkcipher_alignmask(cc
->tfm
) + 1);
405 sg_init_table(&dmreq
->sg_in
, 1);
406 sg_set_page(&dmreq
->sg_in
, bv_in
->bv_page
, 1 << SECTOR_SHIFT
,
407 bv_in
->bv_offset
+ ctx
->offset_in
);
409 sg_init_table(&dmreq
->sg_out
, 1);
410 sg_set_page(&dmreq
->sg_out
, bv_out
->bv_page
, 1 << SECTOR_SHIFT
,
411 bv_out
->bv_offset
+ ctx
->offset_out
);
413 ctx
->offset_in
+= 1 << SECTOR_SHIFT
;
414 if (ctx
->offset_in
>= bv_in
->bv_len
) {
419 ctx
->offset_out
+= 1 << SECTOR_SHIFT
;
420 if (ctx
->offset_out
>= bv_out
->bv_len
) {
425 if (cc
->iv_gen_ops
) {
426 r
= cc
->iv_gen_ops
->generator(cc
, iv
, ctx
->sector
);
431 ablkcipher_request_set_crypt(req
, &dmreq
->sg_in
, &dmreq
->sg_out
,
432 1 << SECTOR_SHIFT
, iv
);
434 if (bio_data_dir(ctx
->bio_in
) == WRITE
)
435 r
= crypto_ablkcipher_encrypt(req
);
437 r
= crypto_ablkcipher_decrypt(req
);
442 static void kcryptd_async_done(struct crypto_async_request
*async_req
,
444 static void crypt_alloc_req(struct crypt_config
*cc
,
445 struct convert_context
*ctx
)
448 cc
->req
= mempool_alloc(cc
->req_pool
, GFP_NOIO
);
449 ablkcipher_request_set_tfm(cc
->req
, cc
->tfm
);
450 ablkcipher_request_set_callback(cc
->req
, CRYPTO_TFM_REQ_MAY_BACKLOG
|
451 CRYPTO_TFM_REQ_MAY_SLEEP
,
453 dmreq_of_req(cc
, cc
->req
));
457 * Encrypt / decrypt data from one bio to another one (can be the same one)
459 static int crypt_convert(struct crypt_config
*cc
,
460 struct convert_context
*ctx
)
464 atomic_set(&ctx
->pending
, 1);
466 while(ctx
->idx_in
< ctx
->bio_in
->bi_vcnt
&&
467 ctx
->idx_out
< ctx
->bio_out
->bi_vcnt
) {
469 crypt_alloc_req(cc
, ctx
);
471 atomic_inc(&ctx
->pending
);
473 r
= crypt_convert_block(cc
, ctx
, cc
->req
);
478 wait_for_completion(&ctx
->restart
);
479 INIT_COMPLETION(ctx
->restart
);
488 atomic_dec(&ctx
->pending
);
495 atomic_dec(&ctx
->pending
);
503 static void dm_crypt_bio_destructor(struct bio
*bio
)
505 struct dm_crypt_io
*io
= bio
->bi_private
;
506 struct crypt_config
*cc
= io
->target
->private;
508 bio_free(bio
, cc
->bs
);
512 * Generate a new unfragmented bio with the given size
513 * This should never violate the device limitations
514 * May return a smaller bio when running out of pages, indicated by
515 * *out_of_pages set to 1.
517 static struct bio
*crypt_alloc_buffer(struct dm_crypt_io
*io
, unsigned size
,
518 unsigned *out_of_pages
)
520 struct crypt_config
*cc
= io
->target
->private;
522 unsigned int nr_iovecs
= (size
+ PAGE_SIZE
- 1) >> PAGE_SHIFT
;
523 gfp_t gfp_mask
= GFP_NOIO
| __GFP_HIGHMEM
;
527 clone
= bio_alloc_bioset(GFP_NOIO
, nr_iovecs
, cc
->bs
);
531 clone_init(io
, clone
);
534 for (i
= 0; i
< nr_iovecs
; i
++) {
535 page
= mempool_alloc(cc
->page_pool
, gfp_mask
);
542 * if additional pages cannot be allocated without waiting,
543 * return a partially allocated bio, the caller will then try
544 * to allocate additional bios while submitting this partial bio
546 if (i
== (MIN_BIO_PAGES
- 1))
547 gfp_mask
= (gfp_mask
| __GFP_NOWARN
) & ~__GFP_WAIT
;
549 len
= (size
> PAGE_SIZE
) ? PAGE_SIZE
: size
;
551 if (!bio_add_page(clone
, page
, len
, 0)) {
552 mempool_free(page
, cc
->page_pool
);
559 if (!clone
->bi_size
) {
567 static void crypt_free_buffer_pages(struct crypt_config
*cc
, struct bio
*clone
)
572 for (i
= 0; i
< clone
->bi_vcnt
; i
++) {
573 bv
= bio_iovec_idx(clone
, i
);
574 BUG_ON(!bv
->bv_page
);
575 mempool_free(bv
->bv_page
, cc
->page_pool
);
580 static struct dm_crypt_io
*crypt_io_alloc(struct dm_target
*ti
,
581 struct bio
*bio
, sector_t sector
)
583 struct crypt_config
*cc
= ti
->private;
584 struct dm_crypt_io
*io
;
586 io
= mempool_alloc(cc
->io_pool
, GFP_NOIO
);
592 atomic_set(&io
->pending
, 0);
597 static void crypt_inc_pending(struct dm_crypt_io
*io
)
599 atomic_inc(&io
->pending
);
603 * One of the bios was finished. Check for completion of
604 * the whole request and correctly clean up the buffer.
605 * If base_io is set, wait for the last fragment to complete.
607 static void crypt_dec_pending(struct dm_crypt_io
*io
)
609 struct crypt_config
*cc
= io
->target
->private;
610 struct bio
*base_bio
= io
->base_bio
;
611 struct dm_crypt_io
*base_io
= io
->base_io
;
612 int error
= io
->error
;
614 if (!atomic_dec_and_test(&io
->pending
))
617 mempool_free(io
, cc
->io_pool
);
619 if (likely(!base_io
))
620 bio_endio(base_bio
, error
);
622 if (error
&& !base_io
->error
)
623 base_io
->error
= error
;
624 crypt_dec_pending(base_io
);
629 * kcryptd/kcryptd_io:
631 * Needed because it would be very unwise to do decryption in an
634 * kcryptd performs the actual encryption or decryption.
636 * kcryptd_io performs the IO submission.
638 * They must be separated as otherwise the final stages could be
639 * starved by new requests which can block in the first stages due
640 * to memory allocation.
642 static void crypt_endio(struct bio
*clone
, int error
)
644 struct dm_crypt_io
*io
= clone
->bi_private
;
645 struct crypt_config
*cc
= io
->target
->private;
646 unsigned rw
= bio_data_dir(clone
);
648 if (unlikely(!bio_flagged(clone
, BIO_UPTODATE
) && !error
))
652 * free the processed pages
655 crypt_free_buffer_pages(cc
, clone
);
659 if (rw
== READ
&& !error
) {
660 kcryptd_queue_crypt(io
);
667 crypt_dec_pending(io
);
670 static void clone_init(struct dm_crypt_io
*io
, struct bio
*clone
)
672 struct crypt_config
*cc
= io
->target
->private;
674 clone
->bi_private
= io
;
675 clone
->bi_end_io
= crypt_endio
;
676 clone
->bi_bdev
= cc
->dev
->bdev
;
677 clone
->bi_rw
= io
->base_bio
->bi_rw
;
678 clone
->bi_destructor
= dm_crypt_bio_destructor
;
681 static void kcryptd_io_read(struct dm_crypt_io
*io
)
683 struct crypt_config
*cc
= io
->target
->private;
684 struct bio
*base_bio
= io
->base_bio
;
687 crypt_inc_pending(io
);
690 * The block layer might modify the bvec array, so always
691 * copy the required bvecs because we need the original
692 * one in order to decrypt the whole bio data *afterwards*.
694 clone
= bio_alloc_bioset(GFP_NOIO
, bio_segments(base_bio
), cc
->bs
);
695 if (unlikely(!clone
)) {
697 crypt_dec_pending(io
);
701 clone_init(io
, clone
);
703 clone
->bi_vcnt
= bio_segments(base_bio
);
704 clone
->bi_size
= base_bio
->bi_size
;
705 clone
->bi_sector
= cc
->start
+ io
->sector
;
706 memcpy(clone
->bi_io_vec
, bio_iovec(base_bio
),
707 sizeof(struct bio_vec
) * clone
->bi_vcnt
);
709 generic_make_request(clone
);
712 static void kcryptd_io_write(struct dm_crypt_io
*io
)
714 struct bio
*clone
= io
->ctx
.bio_out
;
715 generic_make_request(clone
);
718 static void kcryptd_io(struct work_struct
*work
)
720 struct dm_crypt_io
*io
= container_of(work
, struct dm_crypt_io
, work
);
722 if (bio_data_dir(io
->base_bio
) == READ
)
725 kcryptd_io_write(io
);
728 static void kcryptd_queue_io(struct dm_crypt_io
*io
)
730 struct crypt_config
*cc
= io
->target
->private;
732 INIT_WORK(&io
->work
, kcryptd_io
);
733 queue_work(cc
->io_queue
, &io
->work
);
736 static void kcryptd_crypt_write_io_submit(struct dm_crypt_io
*io
,
737 int error
, int async
)
739 struct bio
*clone
= io
->ctx
.bio_out
;
740 struct crypt_config
*cc
= io
->target
->private;
742 if (unlikely(error
< 0)) {
743 crypt_free_buffer_pages(cc
, clone
);
746 crypt_dec_pending(io
);
750 /* crypt_convert should have filled the clone bio */
751 BUG_ON(io
->ctx
.idx_out
< clone
->bi_vcnt
);
753 clone
->bi_sector
= cc
->start
+ io
->sector
;
756 kcryptd_queue_io(io
);
758 generic_make_request(clone
);
761 static void kcryptd_crypt_write_convert(struct dm_crypt_io
*io
)
763 struct crypt_config
*cc
= io
->target
->private;
765 struct dm_crypt_io
*new_io
;
767 unsigned out_of_pages
= 0;
768 unsigned remaining
= io
->base_bio
->bi_size
;
769 sector_t sector
= io
->sector
;
773 * Prevent io from disappearing until this function completes.
775 crypt_inc_pending(io
);
776 crypt_convert_init(cc
, &io
->ctx
, NULL
, io
->base_bio
, sector
);
779 * The allocated buffers can be smaller than the whole bio,
780 * so repeat the whole process until all the data can be handled.
783 clone
= crypt_alloc_buffer(io
, remaining
, &out_of_pages
);
784 if (unlikely(!clone
)) {
789 io
->ctx
.bio_out
= clone
;
792 remaining
-= clone
->bi_size
;
793 sector
+= bio_sectors(clone
);
795 crypt_inc_pending(io
);
796 r
= crypt_convert(cc
, &io
->ctx
);
797 crypt_finished
= atomic_dec_and_test(&io
->ctx
.pending
);
799 /* Encryption was already finished, submit io now */
800 if (crypt_finished
) {
801 kcryptd_crypt_write_io_submit(io
, r
, 0);
804 * If there was an error, do not try next fragments.
805 * For async, error is processed in async handler.
814 * Out of memory -> run queues
815 * But don't wait if split was due to the io size restriction
817 if (unlikely(out_of_pages
))
818 congestion_wait(BLK_RW_ASYNC
, HZ
/100);
821 * With async crypto it is unsafe to share the crypto context
822 * between fragments, so switch to a new dm_crypt_io structure.
824 if (unlikely(!crypt_finished
&& remaining
)) {
825 new_io
= crypt_io_alloc(io
->target
, io
->base_bio
,
827 crypt_inc_pending(new_io
);
828 crypt_convert_init(cc
, &new_io
->ctx
, NULL
,
829 io
->base_bio
, sector
);
830 new_io
->ctx
.idx_in
= io
->ctx
.idx_in
;
831 new_io
->ctx
.offset_in
= io
->ctx
.offset_in
;
834 * Fragments after the first use the base_io
838 new_io
->base_io
= io
;
840 new_io
->base_io
= io
->base_io
;
841 crypt_inc_pending(io
->base_io
);
842 crypt_dec_pending(io
);
849 crypt_dec_pending(io
);
852 static void kcryptd_crypt_read_done(struct dm_crypt_io
*io
, int error
)
854 if (unlikely(error
< 0))
857 crypt_dec_pending(io
);
860 static void kcryptd_crypt_read_convert(struct dm_crypt_io
*io
)
862 struct crypt_config
*cc
= io
->target
->private;
865 crypt_inc_pending(io
);
867 crypt_convert_init(cc
, &io
->ctx
, io
->base_bio
, io
->base_bio
,
870 r
= crypt_convert(cc
, &io
->ctx
);
872 if (atomic_dec_and_test(&io
->ctx
.pending
))
873 kcryptd_crypt_read_done(io
, r
);
875 crypt_dec_pending(io
);
878 static void kcryptd_async_done(struct crypto_async_request
*async_req
,
881 struct dm_crypt_request
*dmreq
= async_req
->data
;
882 struct convert_context
*ctx
= dmreq
->ctx
;
883 struct dm_crypt_io
*io
= container_of(ctx
, struct dm_crypt_io
, ctx
);
884 struct crypt_config
*cc
= io
->target
->private;
886 if (error
== -EINPROGRESS
) {
887 complete(&ctx
->restart
);
891 mempool_free(req_of_dmreq(cc
, dmreq
), cc
->req_pool
);
893 if (!atomic_dec_and_test(&ctx
->pending
))
896 if (bio_data_dir(io
->base_bio
) == READ
)
897 kcryptd_crypt_read_done(io
, error
);
899 kcryptd_crypt_write_io_submit(io
, error
, 1);
902 static void kcryptd_crypt(struct work_struct
*work
)
904 struct dm_crypt_io
*io
= container_of(work
, struct dm_crypt_io
, work
);
906 if (bio_data_dir(io
->base_bio
) == READ
)
907 kcryptd_crypt_read_convert(io
);
909 kcryptd_crypt_write_convert(io
);
912 static void kcryptd_queue_crypt(struct dm_crypt_io
*io
)
914 struct crypt_config
*cc
= io
->target
->private;
916 INIT_WORK(&io
->work
, kcryptd_crypt
);
917 queue_work(cc
->crypt_queue
, &io
->work
);
921 * Decode key from its hex representation
923 static int crypt_decode_key(u8
*key
, char *hex
, unsigned int size
)
931 for (i
= 0; i
< size
; i
++) {
935 key
[i
] = (u8
)simple_strtoul(buffer
, &endp
, 16);
937 if (endp
!= &buffer
[2])
948 * Encode key into its hex representation
950 static void crypt_encode_key(char *hex
, u8
*key
, unsigned int size
)
954 for (i
= 0; i
< size
; i
++) {
955 sprintf(hex
, "%02x", *key
);
961 static int crypt_set_key(struct crypt_config
*cc
, char *key
)
963 unsigned key_size
= strlen(key
) >> 1;
965 if (cc
->key_size
&& cc
->key_size
!= key_size
)
968 cc
->key_size
= key_size
; /* initial settings */
970 if ((!key_size
&& strcmp(key
, "-")) ||
971 (key_size
&& crypt_decode_key(cc
->key
, key
, key_size
) < 0))
974 set_bit(DM_CRYPT_KEY_VALID
, &cc
->flags
);
979 static int crypt_wipe_key(struct crypt_config
*cc
)
981 clear_bit(DM_CRYPT_KEY_VALID
, &cc
->flags
);
982 memset(&cc
->key
, 0, cc
->key_size
* sizeof(u8
));
987 * Construct an encryption mapping:
988 * <cipher> <key> <iv_offset> <dev_path> <start>
990 static int crypt_ctr(struct dm_target
*ti
, unsigned int argc
, char **argv
)
992 struct crypt_config
*cc
;
993 struct crypto_ablkcipher
*tfm
;
999 unsigned int key_size
;
1000 unsigned long long tmpll
;
1003 ti
->error
= "Not enough arguments";
1008 cipher
= strsep(&tmp
, "-");
1009 chainmode
= strsep(&tmp
, "-");
1010 ivopts
= strsep(&tmp
, "-");
1011 ivmode
= strsep(&ivopts
, ":");
1014 DMWARN("Unexpected additional cipher options");
1016 key_size
= strlen(argv
[1]) >> 1;
1018 cc
= kzalloc(sizeof(*cc
) + key_size
* sizeof(u8
), GFP_KERNEL
);
1021 "Cannot allocate transparent encryption context";
1025 if (crypt_set_key(cc
, argv
[1])) {
1026 ti
->error
= "Error decoding key";
1030 /* Compatiblity mode for old dm-crypt cipher strings */
1031 if (!chainmode
|| (strcmp(chainmode
, "plain") == 0 && !ivmode
)) {
1036 if (strcmp(chainmode
, "ecb") && !ivmode
) {
1037 ti
->error
= "This chaining mode requires an IV mechanism";
1041 if (snprintf(cc
->cipher
, CRYPTO_MAX_ALG_NAME
, "%s(%s)",
1042 chainmode
, cipher
) >= CRYPTO_MAX_ALG_NAME
) {
1043 ti
->error
= "Chain mode + cipher name is too long";
1047 tfm
= crypto_alloc_ablkcipher(cc
->cipher
, 0, 0);
1049 ti
->error
= "Error allocating crypto tfm";
1053 strcpy(cc
->cipher
, cipher
);
1054 strcpy(cc
->chainmode
, chainmode
);
1058 * Choose ivmode. Valid modes: "plain", "essiv:<esshash>", "benbi".
1059 * See comments at iv code
1063 cc
->iv_gen_ops
= NULL
;
1064 else if (strcmp(ivmode
, "plain") == 0)
1065 cc
->iv_gen_ops
= &crypt_iv_plain_ops
;
1066 else if (strcmp(ivmode
, "essiv") == 0)
1067 cc
->iv_gen_ops
= &crypt_iv_essiv_ops
;
1068 else if (strcmp(ivmode
, "benbi") == 0)
1069 cc
->iv_gen_ops
= &crypt_iv_benbi_ops
;
1070 else if (strcmp(ivmode
, "null") == 0)
1071 cc
->iv_gen_ops
= &crypt_iv_null_ops
;
1073 ti
->error
= "Invalid IV mode";
1077 if (cc
->iv_gen_ops
&& cc
->iv_gen_ops
->ctr
&&
1078 cc
->iv_gen_ops
->ctr(cc
, ti
, ivopts
) < 0)
1081 if (cc
->iv_gen_ops
&& cc
->iv_gen_ops
->init
&&
1082 cc
->iv_gen_ops
->init(cc
) < 0) {
1083 ti
->error
= "Error initialising IV";
1087 cc
->iv_size
= crypto_ablkcipher_ivsize(tfm
);
1089 /* at least a 64 bit sector number should fit in our buffer */
1090 cc
->iv_size
= max(cc
->iv_size
,
1091 (unsigned int)(sizeof(u64
) / sizeof(u8
)));
1093 if (cc
->iv_gen_ops
) {
1094 DMWARN("Selected cipher does not support IVs");
1095 if (cc
->iv_gen_ops
->dtr
)
1096 cc
->iv_gen_ops
->dtr(cc
);
1097 cc
->iv_gen_ops
= NULL
;
1101 cc
->io_pool
= mempool_create_slab_pool(MIN_IOS
, _crypt_io_pool
);
1103 ti
->error
= "Cannot allocate crypt io mempool";
1107 cc
->dmreq_start
= sizeof(struct ablkcipher_request
);
1108 cc
->dmreq_start
+= crypto_ablkcipher_reqsize(tfm
);
1109 cc
->dmreq_start
= ALIGN(cc
->dmreq_start
, crypto_tfm_ctx_alignment());
1110 cc
->dmreq_start
+= crypto_ablkcipher_alignmask(tfm
) &
1111 ~(crypto_tfm_ctx_alignment() - 1);
1113 cc
->req_pool
= mempool_create_kmalloc_pool(MIN_IOS
, cc
->dmreq_start
+
1114 sizeof(struct dm_crypt_request
) + cc
->iv_size
);
1115 if (!cc
->req_pool
) {
1116 ti
->error
= "Cannot allocate crypt request mempool";
1121 cc
->page_pool
= mempool_create_page_pool(MIN_POOL_PAGES
, 0);
1122 if (!cc
->page_pool
) {
1123 ti
->error
= "Cannot allocate page mempool";
1127 cc
->bs
= bioset_create(MIN_IOS
, 0);
1129 ti
->error
= "Cannot allocate crypt bioset";
1133 if (crypto_ablkcipher_setkey(tfm
, cc
->key
, key_size
) < 0) {
1134 ti
->error
= "Error setting key";
1138 if (sscanf(argv
[2], "%llu", &tmpll
) != 1) {
1139 ti
->error
= "Invalid iv_offset sector";
1142 cc
->iv_offset
= tmpll
;
1144 if (sscanf(argv
[4], "%llu", &tmpll
) != 1) {
1145 ti
->error
= "Invalid device sector";
1150 if (dm_get_device(ti
, argv
[3], cc
->start
, ti
->len
,
1151 dm_table_get_mode(ti
->table
), &cc
->dev
)) {
1152 ti
->error
= "Device lookup failed";
1156 if (ivmode
&& cc
->iv_gen_ops
) {
1158 *(ivopts
- 1) = ':';
1159 cc
->iv_mode
= kmalloc(strlen(ivmode
) + 1, GFP_KERNEL
);
1161 ti
->error
= "Error kmallocing iv_mode string";
1162 goto bad_ivmode_string
;
1164 strcpy(cc
->iv_mode
, ivmode
);
1168 cc
->io_queue
= create_singlethread_workqueue("kcryptd_io");
1169 if (!cc
->io_queue
) {
1170 ti
->error
= "Couldn't create kcryptd io queue";
1174 cc
->crypt_queue
= create_singlethread_workqueue("kcryptd");
1175 if (!cc
->crypt_queue
) {
1176 ti
->error
= "Couldn't create kcryptd queue";
1177 goto bad_crypt_queue
;
1180 ti
->num_flush_requests
= 1;
1185 destroy_workqueue(cc
->io_queue
);
1189 dm_put_device(ti
, cc
->dev
);
1191 bioset_free(cc
->bs
);
1193 mempool_destroy(cc
->page_pool
);
1195 mempool_destroy(cc
->req_pool
);
1197 mempool_destroy(cc
->io_pool
);
1199 if (cc
->iv_gen_ops
&& cc
->iv_gen_ops
->dtr
)
1200 cc
->iv_gen_ops
->dtr(cc
);
1202 crypto_free_ablkcipher(tfm
);
1204 /* Must zero key material before freeing */
1209 static void crypt_dtr(struct dm_target
*ti
)
1211 struct crypt_config
*cc
= (struct crypt_config
*) ti
->private;
1213 destroy_workqueue(cc
->io_queue
);
1214 destroy_workqueue(cc
->crypt_queue
);
1217 mempool_free(cc
->req
, cc
->req_pool
);
1219 bioset_free(cc
->bs
);
1220 mempool_destroy(cc
->page_pool
);
1221 mempool_destroy(cc
->req_pool
);
1222 mempool_destroy(cc
->io_pool
);
1225 if (cc
->iv_gen_ops
&& cc
->iv_gen_ops
->dtr
)
1226 cc
->iv_gen_ops
->dtr(cc
);
1227 crypto_free_ablkcipher(cc
->tfm
);
1228 dm_put_device(ti
, cc
->dev
);
1230 /* Must zero key material before freeing */
1234 static int crypt_map(struct dm_target
*ti
, struct bio
*bio
,
1235 union map_info
*map_context
)
1237 struct dm_crypt_io
*io
;
1238 struct crypt_config
*cc
;
1240 if (unlikely(bio_empty_barrier(bio
))) {
1242 bio
->bi_bdev
= cc
->dev
->bdev
;
1243 return DM_MAPIO_REMAPPED
;
1246 io
= crypt_io_alloc(ti
, bio
, bio
->bi_sector
- ti
->begin
);
1248 if (bio_data_dir(io
->base_bio
) == READ
)
1249 kcryptd_queue_io(io
);
1251 kcryptd_queue_crypt(io
);
1253 return DM_MAPIO_SUBMITTED
;
1256 static int crypt_status(struct dm_target
*ti
, status_type_t type
,
1257 char *result
, unsigned int maxlen
)
1259 struct crypt_config
*cc
= (struct crypt_config
*) ti
->private;
1260 unsigned int sz
= 0;
1263 case STATUSTYPE_INFO
:
1267 case STATUSTYPE_TABLE
:
1269 DMEMIT("%s-%s-%s ", cc
->cipher
, cc
->chainmode
,
1272 DMEMIT("%s-%s ", cc
->cipher
, cc
->chainmode
);
1274 if (cc
->key_size
> 0) {
1275 if ((maxlen
- sz
) < ((cc
->key_size
<< 1) + 1))
1278 crypt_encode_key(result
+ sz
, cc
->key
, cc
->key_size
);
1279 sz
+= cc
->key_size
<< 1;
1286 DMEMIT(" %llu %s %llu", (unsigned long long)cc
->iv_offset
,
1287 cc
->dev
->name
, (unsigned long long)cc
->start
);
1293 static void crypt_postsuspend(struct dm_target
*ti
)
1295 struct crypt_config
*cc
= ti
->private;
1297 set_bit(DM_CRYPT_SUSPENDED
, &cc
->flags
);
1300 static int crypt_preresume(struct dm_target
*ti
)
1302 struct crypt_config
*cc
= ti
->private;
1304 if (!test_bit(DM_CRYPT_KEY_VALID
, &cc
->flags
)) {
1305 DMERR("aborting resume - crypt key is not set.");
1312 static void crypt_resume(struct dm_target
*ti
)
1314 struct crypt_config
*cc
= ti
->private;
1316 clear_bit(DM_CRYPT_SUSPENDED
, &cc
->flags
);
1319 /* Message interface
1323 static int crypt_message(struct dm_target
*ti
, unsigned argc
, char **argv
)
1325 struct crypt_config
*cc
= ti
->private;
1331 if (!strnicmp(argv
[0], MESG_STR("key"))) {
1332 if (!test_bit(DM_CRYPT_SUSPENDED
, &cc
->flags
)) {
1333 DMWARN("not suspended during key manipulation.");
1336 if (argc
== 3 && !strnicmp(argv
[1], MESG_STR("set"))) {
1337 ret
= crypt_set_key(cc
, argv
[2]);
1340 if (cc
->iv_gen_ops
&& cc
->iv_gen_ops
->init
)
1341 ret
= cc
->iv_gen_ops
->init(cc
);
1344 if (argc
== 2 && !strnicmp(argv
[1], MESG_STR("wipe"))) {
1345 if (cc
->iv_gen_ops
&& cc
->iv_gen_ops
->wipe
) {
1346 ret
= cc
->iv_gen_ops
->wipe(cc
);
1350 return crypt_wipe_key(cc
);
1355 DMWARN("unrecognised message received.");
1359 static int crypt_merge(struct dm_target
*ti
, struct bvec_merge_data
*bvm
,
1360 struct bio_vec
*biovec
, int max_size
)
1362 struct crypt_config
*cc
= ti
->private;
1363 struct request_queue
*q
= bdev_get_queue(cc
->dev
->bdev
);
1365 if (!q
->merge_bvec_fn
)
1368 bvm
->bi_bdev
= cc
->dev
->bdev
;
1369 bvm
->bi_sector
= cc
->start
+ bvm
->bi_sector
- ti
->begin
;
1371 return min(max_size
, q
->merge_bvec_fn(q
, bvm
, biovec
));
1374 static int crypt_iterate_devices(struct dm_target
*ti
,
1375 iterate_devices_callout_fn fn
, void *data
)
1377 struct crypt_config
*cc
= ti
->private;
1379 return fn(ti
, cc
->dev
, cc
->start
, ti
->len
, data
);
1382 static struct target_type crypt_target
= {
1384 .version
= {1, 7, 0},
1385 .module
= THIS_MODULE
,
1389 .status
= crypt_status
,
1390 .postsuspend
= crypt_postsuspend
,
1391 .preresume
= crypt_preresume
,
1392 .resume
= crypt_resume
,
1393 .message
= crypt_message
,
1394 .merge
= crypt_merge
,
1395 .iterate_devices
= crypt_iterate_devices
,
1398 static int __init
dm_crypt_init(void)
1402 _crypt_io_pool
= KMEM_CACHE(dm_crypt_io
, 0);
1403 if (!_crypt_io_pool
)
1406 r
= dm_register_target(&crypt_target
);
1408 DMERR("register failed %d", r
);
1409 kmem_cache_destroy(_crypt_io_pool
);
1415 static void __exit
dm_crypt_exit(void)
1417 dm_unregister_target(&crypt_target
);
1418 kmem_cache_destroy(_crypt_io_pool
);
1421 module_init(dm_crypt_init
);
1422 module_exit(dm_crypt_exit
);
1424 MODULE_AUTHOR("Christophe Saout <christophe@saout.de>");
1425 MODULE_DESCRIPTION(DM_NAME
" target for transparent encryption / decryption");
1426 MODULE_LICENSE("GPL");