1 // SPDX-License-Identifier: GPL-2.0-only
3 * Copyright (C) 2012 Red Hat, Inc.
5 * Author: Mikulas Patocka <mpatocka@redhat.com>
7 * Based on Chromium dm-verity driver (C) 2011 The Chromium OS Authors
9 * In the file "/sys/module/dm_verity/parameters/prefetch_cluster" you can set
10 * default prefetch value. Data are read in "prefetch_cluster" chunks from the
11 * hash device. Setting this greatly improves performance when data and hash
12 * are on the same disk on different partitions on devices with poor random
16 #include "dm-verity.h"
17 #include "dm-verity-fec.h"
18 #include "dm-verity-verify-sig.h"
19 #include <linux/module.h>
20 #include <linux/reboot.h>
22 #define DM_MSG_PREFIX "verity"
24 #define DM_VERITY_ENV_LENGTH 42
25 #define DM_VERITY_ENV_VAR_NAME "DM_VERITY_ERR_BLOCK_NR"
27 #define DM_VERITY_DEFAULT_PREFETCH_SIZE 262144
29 #define DM_VERITY_MAX_CORRUPTED_ERRS 100
31 #define DM_VERITY_OPT_LOGGING "ignore_corruption"
32 #define DM_VERITY_OPT_RESTART "restart_on_corruption"
33 #define DM_VERITY_OPT_PANIC "panic_on_corruption"
34 #define DM_VERITY_OPT_IGN_ZEROES "ignore_zero_blocks"
35 #define DM_VERITY_OPT_AT_MOST_ONCE "check_at_most_once"
37 #define DM_VERITY_OPTS_MAX (2 + DM_VERITY_OPTS_FEC + \
38 DM_VERITY_ROOT_HASH_VERIFICATION_OPTS)
40 static unsigned dm_verity_prefetch_cluster
= DM_VERITY_DEFAULT_PREFETCH_SIZE
;
42 module_param_named(prefetch_cluster
, dm_verity_prefetch_cluster
, uint
, S_IRUGO
| S_IWUSR
);
44 struct dm_verity_prefetch_work
{
45 struct work_struct work
;
52 * Auxiliary structure appended to each dm-bufio buffer. If the value
53 * hash_verified is nonzero, hash of the block has been verified.
55 * The variable hash_verified is set to 0 when allocating the buffer, then
56 * it can be changed to 1 and it is never reset to 0 again.
58 * There is no lock around this value, a race condition can at worst cause
59 * that multiple processes verify the hash of the same buffer simultaneously
60 * and write 1 to hash_verified simultaneously.
61 * This condition is harmless, so we don't need locking.
68 * Initialize struct buffer_aux for a freshly created buffer.
70 static void dm_bufio_alloc_callback(struct dm_buffer
*buf
)
72 struct buffer_aux
*aux
= dm_bufio_get_aux_data(buf
);
74 aux
->hash_verified
= 0;
78 * Translate input sector number to the sector number on the target device.
80 static sector_t
verity_map_sector(struct dm_verity
*v
, sector_t bi_sector
)
82 return v
->data_start
+ dm_target_offset(v
->ti
, bi_sector
);
86 * Return hash position of a specified block at a specified tree level
87 * (0 is the lowest level).
88 * The lowest "hash_per_block_bits"-bits of the result denote hash position
89 * inside a hash block. The remaining bits denote location of the hash block.
91 static sector_t
verity_position_at_level(struct dm_verity
*v
, sector_t block
,
94 return block
>> (level
* v
->hash_per_block_bits
);
97 static int verity_hash_update(struct dm_verity
*v
, struct ahash_request
*req
,
98 const u8
*data
, size_t len
,
99 struct crypto_wait
*wait
)
101 struct scatterlist sg
;
103 if (likely(!is_vmalloc_addr(data
))) {
104 sg_init_one(&sg
, data
, len
);
105 ahash_request_set_crypt(req
, &sg
, NULL
, len
);
106 return crypto_wait_req(crypto_ahash_update(req
), wait
);
110 size_t this_step
= min_t(size_t, len
, PAGE_SIZE
- offset_in_page(data
));
111 flush_kernel_vmap_range((void *)data
, this_step
);
112 sg_init_table(&sg
, 1);
113 sg_set_page(&sg
, vmalloc_to_page(data
), this_step
, offset_in_page(data
));
114 ahash_request_set_crypt(req
, &sg
, NULL
, this_step
);
115 r
= crypto_wait_req(crypto_ahash_update(req
), wait
);
126 * Wrapper for crypto_ahash_init, which handles verity salting.
128 static int verity_hash_init(struct dm_verity
*v
, struct ahash_request
*req
,
129 struct crypto_wait
*wait
)
133 ahash_request_set_tfm(req
, v
->tfm
);
134 ahash_request_set_callback(req
, CRYPTO_TFM_REQ_MAY_SLEEP
|
135 CRYPTO_TFM_REQ_MAY_BACKLOG
,
136 crypto_req_done
, (void *)wait
);
137 crypto_init_wait(wait
);
139 r
= crypto_wait_req(crypto_ahash_init(req
), wait
);
141 if (unlikely(r
< 0)) {
142 DMERR("crypto_ahash_init failed: %d", r
);
146 if (likely(v
->salt_size
&& (v
->version
>= 1)))
147 r
= verity_hash_update(v
, req
, v
->salt
, v
->salt_size
, wait
);
152 static int verity_hash_final(struct dm_verity
*v
, struct ahash_request
*req
,
153 u8
*digest
, struct crypto_wait
*wait
)
157 if (unlikely(v
->salt_size
&& (!v
->version
))) {
158 r
= verity_hash_update(v
, req
, v
->salt
, v
->salt_size
, wait
);
161 DMERR("verity_hash_final failed updating salt: %d", r
);
166 ahash_request_set_crypt(req
, NULL
, digest
, 0);
167 r
= crypto_wait_req(crypto_ahash_final(req
), wait
);
172 int verity_hash(struct dm_verity
*v
, struct ahash_request
*req
,
173 const u8
*data
, size_t len
, u8
*digest
)
176 struct crypto_wait wait
;
178 r
= verity_hash_init(v
, req
, &wait
);
182 r
= verity_hash_update(v
, req
, data
, len
, &wait
);
186 r
= verity_hash_final(v
, req
, digest
, &wait
);
192 static void verity_hash_at_level(struct dm_verity
*v
, sector_t block
, int level
,
193 sector_t
*hash_block
, unsigned *offset
)
195 sector_t position
= verity_position_at_level(v
, block
, level
);
198 *hash_block
= v
->hash_level_block
[level
] + (position
>> v
->hash_per_block_bits
);
203 idx
= position
& ((1 << v
->hash_per_block_bits
) - 1);
205 *offset
= idx
* v
->digest_size
;
207 *offset
= idx
<< (v
->hash_dev_block_bits
- v
->hash_per_block_bits
);
211 * Handle verification errors.
213 static int verity_handle_err(struct dm_verity
*v
, enum verity_block_type type
,
214 unsigned long long block
)
216 char verity_env
[DM_VERITY_ENV_LENGTH
];
217 char *envp
[] = { verity_env
, NULL
};
218 const char *type_str
= "";
219 struct mapped_device
*md
= dm_table_get_md(v
->ti
->table
);
221 /* Corruption should be visible in device status in all modes */
224 if (v
->corrupted_errs
>= DM_VERITY_MAX_CORRUPTED_ERRS
)
230 case DM_VERITY_BLOCK_TYPE_DATA
:
233 case DM_VERITY_BLOCK_TYPE_METADATA
:
234 type_str
= "metadata";
240 DMERR_LIMIT("%s: %s block %llu is corrupted", v
->data_dev
->name
,
243 if (v
->corrupted_errs
== DM_VERITY_MAX_CORRUPTED_ERRS
)
244 DMERR("%s: reached maximum errors", v
->data_dev
->name
);
246 snprintf(verity_env
, DM_VERITY_ENV_LENGTH
, "%s=%d,%llu",
247 DM_VERITY_ENV_VAR_NAME
, type
, block
);
249 kobject_uevent_env(&disk_to_dev(dm_disk(md
))->kobj
, KOBJ_CHANGE
, envp
);
252 if (v
->mode
== DM_VERITY_MODE_LOGGING
)
255 if (v
->mode
== DM_VERITY_MODE_RESTART
)
256 kernel_restart("dm-verity device corrupted");
258 if (v
->mode
== DM_VERITY_MODE_PANIC
)
259 panic("dm-verity device corrupted");
265 * Verify hash of a metadata block pertaining to the specified data block
266 * ("block" argument) at a specified level ("level" argument).
268 * On successful return, verity_io_want_digest(v, io) contains the hash value
269 * for a lower tree level or for the data block (if we're at the lowest level).
271 * If "skip_unverified" is true, unverified buffer is skipped and 1 is returned.
272 * If "skip_unverified" is false, unverified buffer is hashed and verified
273 * against current value of verity_io_want_digest(v, io).
275 static int verity_verify_level(struct dm_verity
*v
, struct dm_verity_io
*io
,
276 sector_t block
, int level
, bool skip_unverified
,
279 struct dm_buffer
*buf
;
280 struct buffer_aux
*aux
;
286 verity_hash_at_level(v
, block
, level
, &hash_block
, &offset
);
288 data
= dm_bufio_read(v
->bufio
, hash_block
, &buf
);
290 return PTR_ERR(data
);
292 aux
= dm_bufio_get_aux_data(buf
);
294 if (!aux
->hash_verified
) {
295 if (skip_unverified
) {
300 r
= verity_hash(v
, verity_io_hash_req(v
, io
),
301 data
, 1 << v
->hash_dev_block_bits
,
302 verity_io_real_digest(v
, io
));
306 if (likely(memcmp(verity_io_real_digest(v
, io
), want_digest
,
307 v
->digest_size
) == 0))
308 aux
->hash_verified
= 1;
309 else if (verity_fec_decode(v
, io
,
310 DM_VERITY_BLOCK_TYPE_METADATA
,
311 hash_block
, data
, NULL
) == 0)
312 aux
->hash_verified
= 1;
313 else if (verity_handle_err(v
,
314 DM_VERITY_BLOCK_TYPE_METADATA
,
322 memcpy(want_digest
, data
, v
->digest_size
);
326 dm_bufio_release(buf
);
331 * Find a hash for a given block, write it to digest and verify the integrity
332 * of the hash tree if necessary.
334 int verity_hash_for_block(struct dm_verity
*v
, struct dm_verity_io
*io
,
335 sector_t block
, u8
*digest
, bool *is_zero
)
339 if (likely(v
->levels
)) {
341 * First, we try to get the requested hash for
342 * the current block. If the hash block itself is
343 * verified, zero is returned. If it isn't, this
344 * function returns 1 and we fall back to whole
345 * chain verification.
347 r
= verity_verify_level(v
, io
, block
, 0, true, digest
);
352 memcpy(digest
, v
->root_digest
, v
->digest_size
);
354 for (i
= v
->levels
- 1; i
>= 0; i
--) {
355 r
= verity_verify_level(v
, io
, block
, i
, false, digest
);
360 if (!r
&& v
->zero_digest
)
361 *is_zero
= !memcmp(v
->zero_digest
, digest
, v
->digest_size
);
369 * Calculates the digest for the given bio
371 static int verity_for_io_block(struct dm_verity
*v
, struct dm_verity_io
*io
,
372 struct bvec_iter
*iter
, struct crypto_wait
*wait
)
374 unsigned int todo
= 1 << v
->data_dev_block_bits
;
375 struct bio
*bio
= dm_bio_from_per_bio_data(io
, v
->ti
->per_io_data_size
);
376 struct scatterlist sg
;
377 struct ahash_request
*req
= verity_io_hash_req(v
, io
);
382 struct bio_vec bv
= bio_iter_iovec(bio
, *iter
);
384 sg_init_table(&sg
, 1);
388 if (likely(len
>= todo
))
391 * Operating on a single page at a time looks suboptimal
392 * until you consider the typical block size is 4,096B.
393 * Going through this loops twice should be very rare.
395 sg_set_page(&sg
, bv
.bv_page
, len
, bv
.bv_offset
);
396 ahash_request_set_crypt(req
, &sg
, NULL
, len
);
397 r
= crypto_wait_req(crypto_ahash_update(req
), wait
);
399 if (unlikely(r
< 0)) {
400 DMERR("verity_for_io_block crypto op failed: %d", r
);
404 bio_advance_iter(bio
, iter
, len
);
412 * Calls function process for 1 << v->data_dev_block_bits bytes in the bio_vec
413 * starting from iter.
415 int verity_for_bv_block(struct dm_verity
*v
, struct dm_verity_io
*io
,
416 struct bvec_iter
*iter
,
417 int (*process
)(struct dm_verity
*v
,
418 struct dm_verity_io
*io
, u8
*data
,
421 unsigned todo
= 1 << v
->data_dev_block_bits
;
422 struct bio
*bio
= dm_bio_from_per_bio_data(io
, v
->ti
->per_io_data_size
);
428 struct bio_vec bv
= bio_iter_iovec(bio
, *iter
);
430 page
= kmap_atomic(bv
.bv_page
);
433 if (likely(len
>= todo
))
436 r
= process(v
, io
, page
+ bv
.bv_offset
, len
);
442 bio_advance_iter(bio
, iter
, len
);
449 static int verity_bv_zero(struct dm_verity
*v
, struct dm_verity_io
*io
,
450 u8
*data
, size_t len
)
452 memset(data
, 0, len
);
457 * Moves the bio iter one data block forward.
459 static inline void verity_bv_skip_block(struct dm_verity
*v
,
460 struct dm_verity_io
*io
,
461 struct bvec_iter
*iter
)
463 struct bio
*bio
= dm_bio_from_per_bio_data(io
, v
->ti
->per_io_data_size
);
465 bio_advance_iter(bio
, iter
, 1 << v
->data_dev_block_bits
);
469 * Verify one "dm_verity_io" structure.
471 static int verity_verify_io(struct dm_verity_io
*io
)
474 struct dm_verity
*v
= io
->v
;
475 struct bvec_iter start
;
477 struct crypto_wait wait
;
479 for (b
= 0; b
< io
->n_blocks
; b
++) {
481 sector_t cur_block
= io
->block
+ b
;
482 struct ahash_request
*req
= verity_io_hash_req(v
, io
);
484 if (v
->validated_blocks
&&
485 likely(test_bit(cur_block
, v
->validated_blocks
))) {
486 verity_bv_skip_block(v
, io
, &io
->iter
);
490 r
= verity_hash_for_block(v
, io
, cur_block
,
491 verity_io_want_digest(v
, io
),
498 * If we expect a zero block, don't validate, just
501 r
= verity_for_bv_block(v
, io
, &io
->iter
,
509 r
= verity_hash_init(v
, req
, &wait
);
514 r
= verity_for_io_block(v
, io
, &io
->iter
, &wait
);
518 r
= verity_hash_final(v
, req
, verity_io_real_digest(v
, io
),
523 if (likely(memcmp(verity_io_real_digest(v
, io
),
524 verity_io_want_digest(v
, io
), v
->digest_size
) == 0)) {
525 if (v
->validated_blocks
)
526 set_bit(cur_block
, v
->validated_blocks
);
529 else if (verity_fec_decode(v
, io
, DM_VERITY_BLOCK_TYPE_DATA
,
530 cur_block
, NULL
, &start
) == 0)
532 else if (verity_handle_err(v
, DM_VERITY_BLOCK_TYPE_DATA
,
541 * End one "io" structure with a given error.
543 static void verity_finish_io(struct dm_verity_io
*io
, blk_status_t status
)
545 struct dm_verity
*v
= io
->v
;
546 struct bio
*bio
= dm_bio_from_per_bio_data(io
, v
->ti
->per_io_data_size
);
548 bio
->bi_end_io
= io
->orig_bi_end_io
;
549 bio
->bi_status
= status
;
551 verity_fec_finish_io(io
);
556 static void verity_work(struct work_struct
*w
)
558 struct dm_verity_io
*io
= container_of(w
, struct dm_verity_io
, work
);
560 verity_finish_io(io
, errno_to_blk_status(verity_verify_io(io
)));
563 static void verity_end_io(struct bio
*bio
)
565 struct dm_verity_io
*io
= bio
->bi_private
;
567 if (bio
->bi_status
&& !verity_fec_is_enabled(io
->v
)) {
568 verity_finish_io(io
, bio
->bi_status
);
572 INIT_WORK(&io
->work
, verity_work
);
573 queue_work(io
->v
->verify_wq
, &io
->work
);
577 * Prefetch buffers for the specified io.
578 * The root buffer is not prefetched, it is assumed that it will be cached
581 static void verity_prefetch_io(struct work_struct
*work
)
583 struct dm_verity_prefetch_work
*pw
=
584 container_of(work
, struct dm_verity_prefetch_work
, work
);
585 struct dm_verity
*v
= pw
->v
;
588 for (i
= v
->levels
- 2; i
>= 0; i
--) {
589 sector_t hash_block_start
;
590 sector_t hash_block_end
;
591 verity_hash_at_level(v
, pw
->block
, i
, &hash_block_start
, NULL
);
592 verity_hash_at_level(v
, pw
->block
+ pw
->n_blocks
- 1, i
, &hash_block_end
, NULL
);
594 unsigned cluster
= READ_ONCE(dm_verity_prefetch_cluster
);
596 cluster
>>= v
->data_dev_block_bits
;
597 if (unlikely(!cluster
))
598 goto no_prefetch_cluster
;
600 if (unlikely(cluster
& (cluster
- 1)))
601 cluster
= 1 << __fls(cluster
);
603 hash_block_start
&= ~(sector_t
)(cluster
- 1);
604 hash_block_end
|= cluster
- 1;
605 if (unlikely(hash_block_end
>= v
->hash_blocks
))
606 hash_block_end
= v
->hash_blocks
- 1;
609 dm_bufio_prefetch(v
->bufio
, hash_block_start
,
610 hash_block_end
- hash_block_start
+ 1);
616 static void verity_submit_prefetch(struct dm_verity
*v
, struct dm_verity_io
*io
)
618 sector_t block
= io
->block
;
619 unsigned int n_blocks
= io
->n_blocks
;
620 struct dm_verity_prefetch_work
*pw
;
622 if (v
->validated_blocks
) {
623 while (n_blocks
&& test_bit(block
, v
->validated_blocks
)) {
627 while (n_blocks
&& test_bit(block
+ n_blocks
- 1,
628 v
->validated_blocks
))
634 pw
= kmalloc(sizeof(struct dm_verity_prefetch_work
),
635 GFP_NOIO
| __GFP_NORETRY
| __GFP_NOMEMALLOC
| __GFP_NOWARN
);
640 INIT_WORK(&pw
->work
, verity_prefetch_io
);
643 pw
->n_blocks
= n_blocks
;
644 queue_work(v
->verify_wq
, &pw
->work
);
648 * Bio map function. It allocates dm_verity_io structure and bio vector and
649 * fills them. Then it issues prefetches and the I/O.
651 static int verity_map(struct dm_target
*ti
, struct bio
*bio
)
653 struct dm_verity
*v
= ti
->private;
654 struct dm_verity_io
*io
;
656 bio_set_dev(bio
, v
->data_dev
->bdev
);
657 bio
->bi_iter
.bi_sector
= verity_map_sector(v
, bio
->bi_iter
.bi_sector
);
659 if (((unsigned)bio
->bi_iter
.bi_sector
| bio_sectors(bio
)) &
660 ((1 << (v
->data_dev_block_bits
- SECTOR_SHIFT
)) - 1)) {
661 DMERR_LIMIT("unaligned io");
662 return DM_MAPIO_KILL
;
665 if (bio_end_sector(bio
) >>
666 (v
->data_dev_block_bits
- SECTOR_SHIFT
) > v
->data_blocks
) {
667 DMERR_LIMIT("io out of range");
668 return DM_MAPIO_KILL
;
671 if (bio_data_dir(bio
) == WRITE
)
672 return DM_MAPIO_KILL
;
674 io
= dm_per_bio_data(bio
, ti
->per_io_data_size
);
676 io
->orig_bi_end_io
= bio
->bi_end_io
;
677 io
->block
= bio
->bi_iter
.bi_sector
>> (v
->data_dev_block_bits
- SECTOR_SHIFT
);
678 io
->n_blocks
= bio
->bi_iter
.bi_size
>> v
->data_dev_block_bits
;
680 bio
->bi_end_io
= verity_end_io
;
681 bio
->bi_private
= io
;
682 io
->iter
= bio
->bi_iter
;
684 verity_fec_init_io(io
);
686 verity_submit_prefetch(v
, io
);
688 submit_bio_noacct(bio
);
690 return DM_MAPIO_SUBMITTED
;
694 * Status: V (valid) or C (corruption found)
696 static void verity_status(struct dm_target
*ti
, status_type_t type
,
697 unsigned status_flags
, char *result
, unsigned maxlen
)
699 struct dm_verity
*v
= ti
->private;
705 case STATUSTYPE_INFO
:
706 DMEMIT("%c", v
->hash_failed
? 'C' : 'V');
708 case STATUSTYPE_TABLE
:
709 DMEMIT("%u %s %s %u %u %llu %llu %s ",
713 1 << v
->data_dev_block_bits
,
714 1 << v
->hash_dev_block_bits
,
715 (unsigned long long)v
->data_blocks
,
716 (unsigned long long)v
->hash_start
,
719 for (x
= 0; x
< v
->digest_size
; x
++)
720 DMEMIT("%02x", v
->root_digest
[x
]);
725 for (x
= 0; x
< v
->salt_size
; x
++)
726 DMEMIT("%02x", v
->salt
[x
]);
727 if (v
->mode
!= DM_VERITY_MODE_EIO
)
729 if (verity_fec_is_enabled(v
))
730 args
+= DM_VERITY_OPTS_FEC
;
733 if (v
->validated_blocks
)
735 if (v
->signature_key_desc
)
736 args
+= DM_VERITY_ROOT_HASH_VERIFICATION_OPTS
;
740 if (v
->mode
!= DM_VERITY_MODE_EIO
) {
743 case DM_VERITY_MODE_LOGGING
:
744 DMEMIT(DM_VERITY_OPT_LOGGING
);
746 case DM_VERITY_MODE_RESTART
:
747 DMEMIT(DM_VERITY_OPT_RESTART
);
749 case DM_VERITY_MODE_PANIC
:
750 DMEMIT(DM_VERITY_OPT_PANIC
);
757 DMEMIT(" " DM_VERITY_OPT_IGN_ZEROES
);
758 if (v
->validated_blocks
)
759 DMEMIT(" " DM_VERITY_OPT_AT_MOST_ONCE
);
760 sz
= verity_fec_status_table(v
, sz
, result
, maxlen
);
761 if (v
->signature_key_desc
)
762 DMEMIT(" " DM_VERITY_ROOT_HASH_VERIFICATION_OPT_SIG_KEY
763 " %s", v
->signature_key_desc
);
768 static int verity_prepare_ioctl(struct dm_target
*ti
, struct block_device
**bdev
)
770 struct dm_verity
*v
= ti
->private;
772 *bdev
= v
->data_dev
->bdev
;
775 ti
->len
!= i_size_read(v
->data_dev
->bdev
->bd_inode
) >> SECTOR_SHIFT
)
780 static int verity_iterate_devices(struct dm_target
*ti
,
781 iterate_devices_callout_fn fn
, void *data
)
783 struct dm_verity
*v
= ti
->private;
785 return fn(ti
, v
->data_dev
, v
->data_start
, ti
->len
, data
);
788 static void verity_io_hints(struct dm_target
*ti
, struct queue_limits
*limits
)
790 struct dm_verity
*v
= ti
->private;
792 if (limits
->logical_block_size
< 1 << v
->data_dev_block_bits
)
793 limits
->logical_block_size
= 1 << v
->data_dev_block_bits
;
795 if (limits
->physical_block_size
< 1 << v
->data_dev_block_bits
)
796 limits
->physical_block_size
= 1 << v
->data_dev_block_bits
;
798 blk_limits_io_min(limits
, limits
->logical_block_size
);
801 static void verity_dtr(struct dm_target
*ti
)
803 struct dm_verity
*v
= ti
->private;
806 destroy_workqueue(v
->verify_wq
);
809 dm_bufio_client_destroy(v
->bufio
);
811 kvfree(v
->validated_blocks
);
813 kfree(v
->root_digest
);
814 kfree(v
->zero_digest
);
817 crypto_free_ahash(v
->tfm
);
822 dm_put_device(ti
, v
->hash_dev
);
825 dm_put_device(ti
, v
->data_dev
);
829 kfree(v
->signature_key_desc
);
834 static int verity_alloc_most_once(struct dm_verity
*v
)
836 struct dm_target
*ti
= v
->ti
;
838 /* the bitset can only handle INT_MAX blocks */
839 if (v
->data_blocks
> INT_MAX
) {
840 ti
->error
= "device too large to use check_at_most_once";
844 v
->validated_blocks
= kvcalloc(BITS_TO_LONGS(v
->data_blocks
),
845 sizeof(unsigned long),
847 if (!v
->validated_blocks
) {
848 ti
->error
= "failed to allocate bitset for check_at_most_once";
855 static int verity_alloc_zero_digest(struct dm_verity
*v
)
858 struct ahash_request
*req
;
861 v
->zero_digest
= kmalloc(v
->digest_size
, GFP_KERNEL
);
866 req
= kmalloc(v
->ahash_reqsize
, GFP_KERNEL
);
869 return r
; /* verity_dtr will free zero_digest */
871 zero_data
= kzalloc(1 << v
->data_dev_block_bits
, GFP_KERNEL
);
876 r
= verity_hash(v
, req
, zero_data
, 1 << v
->data_dev_block_bits
,
886 static int verity_parse_opt_args(struct dm_arg_set
*as
, struct dm_verity
*v
,
887 struct dm_verity_sig_opts
*verify_args
)
891 struct dm_target
*ti
= v
->ti
;
892 const char *arg_name
;
894 static const struct dm_arg _args
[] = {
895 {0, DM_VERITY_OPTS_MAX
, "Invalid number of feature args"},
898 r
= dm_read_arg_group(_args
, as
, &argc
, &ti
->error
);
906 arg_name
= dm_shift_arg(as
);
909 if (!strcasecmp(arg_name
, DM_VERITY_OPT_LOGGING
)) {
910 v
->mode
= DM_VERITY_MODE_LOGGING
;
913 } else if (!strcasecmp(arg_name
, DM_VERITY_OPT_RESTART
)) {
914 v
->mode
= DM_VERITY_MODE_RESTART
;
917 } else if (!strcasecmp(arg_name
, DM_VERITY_OPT_PANIC
)) {
918 v
->mode
= DM_VERITY_MODE_PANIC
;
921 } else if (!strcasecmp(arg_name
, DM_VERITY_OPT_IGN_ZEROES
)) {
922 r
= verity_alloc_zero_digest(v
);
924 ti
->error
= "Cannot allocate zero digest";
929 } else if (!strcasecmp(arg_name
, DM_VERITY_OPT_AT_MOST_ONCE
)) {
930 r
= verity_alloc_most_once(v
);
935 } else if (verity_is_fec_opt_arg(arg_name
)) {
936 r
= verity_fec_parse_opt_args(as
, v
, &argc
, arg_name
);
940 } else if (verity_verify_is_sig_opt_arg(arg_name
)) {
941 r
= verity_verify_sig_parse_opt_args(as
, v
,
950 ti
->error
= "Unrecognized verity feature request";
952 } while (argc
&& !r
);
959 * <version> The current format is version 1.
960 * Vsn 0 is compatible with original Chromium OS releases.
965 * <the number of data blocks>
969 * <salt> Hex string or "-" if no salt.
971 static int verity_ctr(struct dm_target
*ti
, unsigned argc
, char **argv
)
974 struct dm_verity_sig_opts verify_args
= {0};
975 struct dm_arg_set as
;
977 unsigned long long num_ll
;
980 sector_t hash_position
;
982 char *root_hash_digest_to_validate
;
984 v
= kzalloc(sizeof(struct dm_verity
), GFP_KERNEL
);
986 ti
->error
= "Cannot allocate verity structure";
992 r
= verity_fec_ctr_alloc(v
);
996 if ((dm_table_get_mode(ti
->table
) & ~FMODE_READ
)) {
997 ti
->error
= "Device must be readonly";
1003 ti
->error
= "Not enough arguments";
1008 if (sscanf(argv
[0], "%u%c", &num
, &dummy
) != 1 ||
1010 ti
->error
= "Invalid version";
1016 r
= dm_get_device(ti
, argv
[1], FMODE_READ
, &v
->data_dev
);
1018 ti
->error
= "Data device lookup failed";
1022 r
= dm_get_device(ti
, argv
[2], FMODE_READ
, &v
->hash_dev
);
1024 ti
->error
= "Hash device lookup failed";
1028 if (sscanf(argv
[3], "%u%c", &num
, &dummy
) != 1 ||
1029 !num
|| (num
& (num
- 1)) ||
1030 num
< bdev_logical_block_size(v
->data_dev
->bdev
) ||
1032 ti
->error
= "Invalid data device block size";
1036 v
->data_dev_block_bits
= __ffs(num
);
1038 if (sscanf(argv
[4], "%u%c", &num
, &dummy
) != 1 ||
1039 !num
|| (num
& (num
- 1)) ||
1040 num
< bdev_logical_block_size(v
->hash_dev
->bdev
) ||
1042 ti
->error
= "Invalid hash device block size";
1046 v
->hash_dev_block_bits
= __ffs(num
);
1048 if (sscanf(argv
[5], "%llu%c", &num_ll
, &dummy
) != 1 ||
1049 (sector_t
)(num_ll
<< (v
->data_dev_block_bits
- SECTOR_SHIFT
))
1050 >> (v
->data_dev_block_bits
- SECTOR_SHIFT
) != num_ll
) {
1051 ti
->error
= "Invalid data blocks";
1055 v
->data_blocks
= num_ll
;
1057 if (ti
->len
> (v
->data_blocks
<< (v
->data_dev_block_bits
- SECTOR_SHIFT
))) {
1058 ti
->error
= "Data device is too small";
1063 if (sscanf(argv
[6], "%llu%c", &num_ll
, &dummy
) != 1 ||
1064 (sector_t
)(num_ll
<< (v
->hash_dev_block_bits
- SECTOR_SHIFT
))
1065 >> (v
->hash_dev_block_bits
- SECTOR_SHIFT
) != num_ll
) {
1066 ti
->error
= "Invalid hash start";
1070 v
->hash_start
= num_ll
;
1072 v
->alg_name
= kstrdup(argv
[7], GFP_KERNEL
);
1074 ti
->error
= "Cannot allocate algorithm name";
1079 v
->tfm
= crypto_alloc_ahash(v
->alg_name
, 0, 0);
1080 if (IS_ERR(v
->tfm
)) {
1081 ti
->error
= "Cannot initialize hash function";
1082 r
= PTR_ERR(v
->tfm
);
1088 * dm-verity performance can vary greatly depending on which hash
1089 * algorithm implementation is used. Help people debug performance
1090 * problems by logging the ->cra_driver_name.
1092 DMINFO("%s using implementation \"%s\"", v
->alg_name
,
1093 crypto_hash_alg_common(v
->tfm
)->base
.cra_driver_name
);
1095 v
->digest_size
= crypto_ahash_digestsize(v
->tfm
);
1096 if ((1 << v
->hash_dev_block_bits
) < v
->digest_size
* 2) {
1097 ti
->error
= "Digest size too big";
1101 v
->ahash_reqsize
= sizeof(struct ahash_request
) +
1102 crypto_ahash_reqsize(v
->tfm
);
1104 v
->root_digest
= kmalloc(v
->digest_size
, GFP_KERNEL
);
1105 if (!v
->root_digest
) {
1106 ti
->error
= "Cannot allocate root digest";
1110 if (strlen(argv
[8]) != v
->digest_size
* 2 ||
1111 hex2bin(v
->root_digest
, argv
[8], v
->digest_size
)) {
1112 ti
->error
= "Invalid root digest";
1116 root_hash_digest_to_validate
= argv
[8];
1118 if (strcmp(argv
[9], "-")) {
1119 v
->salt_size
= strlen(argv
[9]) / 2;
1120 v
->salt
= kmalloc(v
->salt_size
, GFP_KERNEL
);
1122 ti
->error
= "Cannot allocate salt";
1126 if (strlen(argv
[9]) != v
->salt_size
* 2 ||
1127 hex2bin(v
->salt
, argv
[9], v
->salt_size
)) {
1128 ti
->error
= "Invalid salt";
1137 /* Optional parameters */
1142 r
= verity_parse_opt_args(&as
, v
, &verify_args
);
1147 /* Root hash signature is a optional parameter*/
1148 r
= verity_verify_root_hash(root_hash_digest_to_validate
,
1149 strlen(root_hash_digest_to_validate
),
1151 verify_args
.sig_size
);
1153 ti
->error
= "Root hash verification failed";
1156 v
->hash_per_block_bits
=
1157 __fls((1 << v
->hash_dev_block_bits
) / v
->digest_size
);
1161 while (v
->hash_per_block_bits
* v
->levels
< 64 &&
1162 (unsigned long long)(v
->data_blocks
- 1) >>
1163 (v
->hash_per_block_bits
* v
->levels
))
1166 if (v
->levels
> DM_VERITY_MAX_LEVELS
) {
1167 ti
->error
= "Too many tree levels";
1172 hash_position
= v
->hash_start
;
1173 for (i
= v
->levels
- 1; i
>= 0; i
--) {
1175 v
->hash_level_block
[i
] = hash_position
;
1176 s
= (v
->data_blocks
+ ((sector_t
)1 << ((i
+ 1) * v
->hash_per_block_bits
)) - 1)
1177 >> ((i
+ 1) * v
->hash_per_block_bits
);
1178 if (hash_position
+ s
< hash_position
) {
1179 ti
->error
= "Hash device offset overflow";
1185 v
->hash_blocks
= hash_position
;
1187 v
->bufio
= dm_bufio_client_create(v
->hash_dev
->bdev
,
1188 1 << v
->hash_dev_block_bits
, 1, sizeof(struct buffer_aux
),
1189 dm_bufio_alloc_callback
, NULL
);
1190 if (IS_ERR(v
->bufio
)) {
1191 ti
->error
= "Cannot initialize dm-bufio";
1192 r
= PTR_ERR(v
->bufio
);
1197 if (dm_bufio_get_device_size(v
->bufio
) < v
->hash_blocks
) {
1198 ti
->error
= "Hash device is too small";
1203 /* WQ_UNBOUND greatly improves performance when running on ramdisk */
1204 v
->verify_wq
= alloc_workqueue("kverityd", WQ_CPU_INTENSIVE
| WQ_MEM_RECLAIM
| WQ_UNBOUND
, num_online_cpus());
1205 if (!v
->verify_wq
) {
1206 ti
->error
= "Cannot allocate workqueue";
1211 ti
->per_io_data_size
= sizeof(struct dm_verity_io
) +
1212 v
->ahash_reqsize
+ v
->digest_size
* 2;
1214 r
= verity_fec_ctr(v
);
1218 ti
->per_io_data_size
= roundup(ti
->per_io_data_size
,
1219 __alignof__(struct dm_verity_io
));
1221 verity_verify_sig_opts_cleanup(&verify_args
);
1227 verity_verify_sig_opts_cleanup(&verify_args
);
1233 static struct target_type verity_target
= {
1235 .version
= {1, 7, 0},
1236 .module
= THIS_MODULE
,
1240 .status
= verity_status
,
1241 .prepare_ioctl
= verity_prepare_ioctl
,
1242 .iterate_devices
= verity_iterate_devices
,
1243 .io_hints
= verity_io_hints
,
1246 static int __init
dm_verity_init(void)
1250 r
= dm_register_target(&verity_target
);
1252 DMERR("register failed %d", r
);
1257 static void __exit
dm_verity_exit(void)
1259 dm_unregister_target(&verity_target
);
1262 module_init(dm_verity_init
);
1263 module_exit(dm_verity_exit
);
1265 MODULE_AUTHOR("Mikulas Patocka <mpatocka@redhat.com>");
1266 MODULE_AUTHOR("Mandeep Baines <msb@chromium.org>");
1267 MODULE_AUTHOR("Will Drewry <wad@chromium.org>");
1268 MODULE_DESCRIPTION(DM_NAME
" target for transparent disk integrity checking");
1269 MODULE_LICENSE("GPL");