2 * Block driver for the QCOW version 2 format
4 * Copyright (c) 2004-2006 Fabrice Bellard
6 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 * of this software and associated documentation files (the "Software"), to deal
8 * in the Software without restriction, including without limitation the rights
9 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
10 * copies of the Software, and to permit persons to whom the Software is
11 * furnished to do so, subject to the following conditions:
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
24 #include "qemu-common.h"
25 #include "block_int.h"
31 Differences with QCOW:
33 - Support for multiple incremental snapshots.
34 - Memory management by reference counts.
35 - Clusters which have a reference count of one have the bit
36 QCOW_OFLAG_COPIED to optimize write performance.
37 - Size of compressed clusters is stored in sectors to reduce bit usage
38 in the cluster offsets.
39 - Support for storing additional data (such as the VM state) in the
41 - If a backing store is used, the cluster size is not constrained
42 (could be backported to QCOW).
43 - L2 tables have always a size of one cluster.
47 //#define DEBUG_ALLOC2
49 #define QCOW_MAGIC (('Q' << 24) | ('F' << 16) | ('I' << 8) | 0xfb)
50 #define QCOW_VERSION 2
52 #define QCOW_CRYPT_NONE 0
53 #define QCOW_CRYPT_AES 1
55 #define QCOW_MAX_CRYPT_CLUSTERS 32
57 /* indicate that the refcount of the referenced cluster is exactly one. */
58 #define QCOW_OFLAG_COPIED (1LL << 63)
59 /* indicate that the cluster is compressed (they never have the copied flag) */
60 #define QCOW_OFLAG_COMPRESSED (1LL << 62)
62 #define REFCOUNT_SHIFT 1 /* refcount size is 2 bytes */
64 typedef struct QCowHeader
{
67 uint64_t backing_file_offset
;
68 uint32_t backing_file_size
;
69 uint32_t cluster_bits
;
70 uint64_t size
; /* in bytes */
71 uint32_t crypt_method
;
72 uint32_t l1_size
; /* XXX: save number of clusters instead ? */
73 uint64_t l1_table_offset
;
74 uint64_t refcount_table_offset
;
75 uint32_t refcount_table_clusters
;
76 uint32_t nb_snapshots
;
77 uint64_t snapshots_offset
;
80 typedef struct __attribute__((packed
)) QCowSnapshotHeader
{
81 /* header is 8 byte aligned */
82 uint64_t l1_table_offset
;
91 uint64_t vm_clock_nsec
;
93 uint32_t vm_state_size
;
94 uint32_t extra_data_size
; /* for extension */
95 /* extra data follows */
100 #define L2_CACHE_SIZE 16
102 typedef struct QCowSnapshot
{
103 uint64_t l1_table_offset
;
107 uint32_t vm_state_size
;
110 uint64_t vm_clock_nsec
;
113 typedef struct BDRVQcowState
{
114 BlockDriverState
*hd
;
121 int l1_vm_state_index
;
124 uint64_t cluster_offset_mask
;
125 uint64_t l1_table_offset
;
128 uint64_t l2_cache_offsets
[L2_CACHE_SIZE
];
129 uint32_t l2_cache_counts
[L2_CACHE_SIZE
];
130 uint8_t *cluster_cache
;
131 uint8_t *cluster_data
;
132 uint64_t cluster_cache_offset
;
134 uint64_t *refcount_table
;
135 uint64_t refcount_table_offset
;
136 uint32_t refcount_table_size
;
137 uint64_t refcount_block_cache_offset
;
138 uint16_t *refcount_block_cache
;
139 int64_t free_cluster_index
;
140 int64_t free_byte_offset
;
142 uint32_t crypt_method
; /* current crypt method, 0 if no key yet */
143 uint32_t crypt_method_header
;
144 AES_KEY aes_encrypt_key
;
145 AES_KEY aes_decrypt_key
;
146 uint64_t snapshots_offset
;
149 QCowSnapshot
*snapshots
;
152 static int decompress_cluster(BDRVQcowState
*s
, uint64_t cluster_offset
);
153 static int qcow_read(BlockDriverState
*bs
, int64_t sector_num
,
154 uint8_t *buf
, int nb_sectors
);
155 static int qcow_read_snapshots(BlockDriverState
*bs
);
156 static void qcow_free_snapshots(BlockDriverState
*bs
);
157 static int refcount_init(BlockDriverState
*bs
);
158 static void refcount_close(BlockDriverState
*bs
);
159 static int get_refcount(BlockDriverState
*bs
, int64_t cluster_index
);
160 static int update_cluster_refcount(BlockDriverState
*bs
,
161 int64_t cluster_index
,
163 static void update_refcount(BlockDriverState
*bs
,
164 int64_t offset
, int64_t length
,
166 static int64_t alloc_clusters(BlockDriverState
*bs
, int64_t size
);
167 static int64_t alloc_bytes(BlockDriverState
*bs
, int size
);
168 static void free_clusters(BlockDriverState
*bs
,
169 int64_t offset
, int64_t size
);
171 static void check_refcounts(BlockDriverState
*bs
);
174 static int qcow_probe(const uint8_t *buf
, int buf_size
, const char *filename
)
176 const QCowHeader
*cow_header
= (const void *)buf
;
178 if (buf_size
>= sizeof(QCowHeader
) &&
179 be32_to_cpu(cow_header
->magic
) == QCOW_MAGIC
&&
180 be32_to_cpu(cow_header
->version
) == QCOW_VERSION
)
186 static int qcow_open(BlockDriverState
*bs
, const char *filename
, int flags
)
188 BDRVQcowState
*s
= bs
->opaque
;
189 int len
, i
, shift
, ret
;
192 /* Performance is terrible right now with cache=writethrough due mainly
193 * to reference count updates. If the user does not explicitly specify
194 * a caching type, force to writeback caching.
196 if ((flags
& BDRV_O_CACHE_DEF
)) {
197 flags
|= BDRV_O_CACHE_WB
;
198 flags
&= ~BDRV_O_CACHE_DEF
;
200 ret
= bdrv_file_open(&s
->hd
, filename
, flags
);
203 if (bdrv_pread(s
->hd
, 0, &header
, sizeof(header
)) != sizeof(header
))
205 be32_to_cpus(&header
.magic
);
206 be32_to_cpus(&header
.version
);
207 be64_to_cpus(&header
.backing_file_offset
);
208 be32_to_cpus(&header
.backing_file_size
);
209 be64_to_cpus(&header
.size
);
210 be32_to_cpus(&header
.cluster_bits
);
211 be32_to_cpus(&header
.crypt_method
);
212 be64_to_cpus(&header
.l1_table_offset
);
213 be32_to_cpus(&header
.l1_size
);
214 be64_to_cpus(&header
.refcount_table_offset
);
215 be32_to_cpus(&header
.refcount_table_clusters
);
216 be64_to_cpus(&header
.snapshots_offset
);
217 be32_to_cpus(&header
.nb_snapshots
);
219 if (header
.magic
!= QCOW_MAGIC
|| header
.version
!= QCOW_VERSION
)
221 if (header
.size
<= 1 ||
222 header
.cluster_bits
< 9 ||
223 header
.cluster_bits
> 16)
225 if (header
.crypt_method
> QCOW_CRYPT_AES
)
227 s
->crypt_method_header
= header
.crypt_method
;
228 if (s
->crypt_method_header
)
230 s
->cluster_bits
= header
.cluster_bits
;
231 s
->cluster_size
= 1 << s
->cluster_bits
;
232 s
->cluster_sectors
= 1 << (s
->cluster_bits
- 9);
233 s
->l2_bits
= s
->cluster_bits
- 3; /* L2 is always one cluster */
234 s
->l2_size
= 1 << s
->l2_bits
;
235 bs
->total_sectors
= header
.size
/ 512;
236 s
->csize_shift
= (62 - (s
->cluster_bits
- 8));
237 s
->csize_mask
= (1 << (s
->cluster_bits
- 8)) - 1;
238 s
->cluster_offset_mask
= (1LL << s
->csize_shift
) - 1;
239 s
->refcount_table_offset
= header
.refcount_table_offset
;
240 s
->refcount_table_size
=
241 header
.refcount_table_clusters
<< (s
->cluster_bits
- 3);
243 s
->snapshots_offset
= header
.snapshots_offset
;
244 s
->nb_snapshots
= header
.nb_snapshots
;
246 /* read the level 1 table */
247 s
->l1_size
= header
.l1_size
;
248 shift
= s
->cluster_bits
+ s
->l2_bits
;
249 s
->l1_vm_state_index
= (header
.size
+ (1LL << shift
) - 1) >> shift
;
250 /* the L1 table must contain at least enough entries to put
252 if (s
->l1_size
< s
->l1_vm_state_index
)
254 s
->l1_table_offset
= header
.l1_table_offset
;
255 s
->l1_table
= qemu_malloc(s
->l1_size
* sizeof(uint64_t));
258 if (bdrv_pread(s
->hd
, s
->l1_table_offset
, s
->l1_table
, s
->l1_size
* sizeof(uint64_t)) !=
259 s
->l1_size
* sizeof(uint64_t))
261 for(i
= 0;i
< s
->l1_size
; i
++) {
262 be64_to_cpus(&s
->l1_table
[i
]);
265 s
->l2_cache
= qemu_malloc(s
->l2_size
* L2_CACHE_SIZE
* sizeof(uint64_t));
268 s
->cluster_cache
= qemu_malloc(s
->cluster_size
);
269 if (!s
->cluster_cache
)
271 /* one more sector for decompressed data alignment */
272 s
->cluster_data
= qemu_malloc(QCOW_MAX_CRYPT_CLUSTERS
* s
->cluster_size
274 if (!s
->cluster_data
)
276 s
->cluster_cache_offset
= -1;
278 if (refcount_init(bs
) < 0)
281 /* read the backing file name */
282 if (header
.backing_file_offset
!= 0) {
283 len
= header
.backing_file_size
;
286 if (bdrv_pread(s
->hd
, header
.backing_file_offset
, bs
->backing_file
, len
) != len
)
288 bs
->backing_file
[len
] = '\0';
290 if (qcow_read_snapshots(bs
) < 0)
299 qcow_free_snapshots(bs
);
301 qemu_free(s
->l1_table
);
302 qemu_free(s
->l2_cache
);
303 qemu_free(s
->cluster_cache
);
304 qemu_free(s
->cluster_data
);
309 static int qcow_set_key(BlockDriverState
*bs
, const char *key
)
311 BDRVQcowState
*s
= bs
->opaque
;
315 memset(keybuf
, 0, 16);
319 /* XXX: we could compress the chars to 7 bits to increase
321 for(i
= 0;i
< len
;i
++) {
324 s
->crypt_method
= s
->crypt_method_header
;
326 if (AES_set_encrypt_key(keybuf
, 128, &s
->aes_encrypt_key
) != 0)
328 if (AES_set_decrypt_key(keybuf
, 128, &s
->aes_decrypt_key
) != 0)
338 AES_encrypt(in
, tmp
, &s
->aes_encrypt_key
);
339 AES_decrypt(tmp
, out
, &s
->aes_decrypt_key
);
340 for(i
= 0; i
< 16; i
++)
341 printf(" %02x", tmp
[i
]);
343 for(i
= 0; i
< 16; i
++)
344 printf(" %02x", out
[i
]);
351 /* The crypt function is compatible with the linux cryptoloop
352 algorithm for < 4 GB images. NOTE: out_buf == in_buf is
354 static void encrypt_sectors(BDRVQcowState
*s
, int64_t sector_num
,
355 uint8_t *out_buf
, const uint8_t *in_buf
,
356 int nb_sectors
, int enc
,
365 for(i
= 0; i
< nb_sectors
; i
++) {
366 ivec
.ll
[0] = cpu_to_le64(sector_num
);
368 AES_cbc_encrypt(in_buf
, out_buf
, 512, key
,
376 static int copy_sectors(BlockDriverState
*bs
, uint64_t start_sect
,
377 uint64_t cluster_offset
, int n_start
, int n_end
)
379 BDRVQcowState
*s
= bs
->opaque
;
385 ret
= qcow_read(bs
, start_sect
+ n_start
, s
->cluster_data
, n
);
388 if (s
->crypt_method
) {
389 encrypt_sectors(s
, start_sect
+ n_start
,
391 s
->cluster_data
, n
, 1,
392 &s
->aes_encrypt_key
);
394 ret
= bdrv_write(s
->hd
, (cluster_offset
>> 9) + n_start
,
401 static void l2_cache_reset(BlockDriverState
*bs
)
403 BDRVQcowState
*s
= bs
->opaque
;
405 memset(s
->l2_cache
, 0, s
->l2_size
* L2_CACHE_SIZE
* sizeof(uint64_t));
406 memset(s
->l2_cache_offsets
, 0, L2_CACHE_SIZE
* sizeof(uint64_t));
407 memset(s
->l2_cache_counts
, 0, L2_CACHE_SIZE
* sizeof(uint32_t));
410 static inline int l2_cache_new_entry(BlockDriverState
*bs
)
412 BDRVQcowState
*s
= bs
->opaque
;
416 /* find a new entry in the least used one */
418 min_count
= 0xffffffff;
419 for(i
= 0; i
< L2_CACHE_SIZE
; i
++) {
420 if (s
->l2_cache_counts
[i
] < min_count
) {
421 min_count
= s
->l2_cache_counts
[i
];
428 static int64_t align_offset(int64_t offset
, int n
)
430 offset
= (offset
+ n
- 1) & ~(n
- 1);
434 static int grow_l1_table(BlockDriverState
*bs
, int min_size
)
436 BDRVQcowState
*s
= bs
->opaque
;
437 int new_l1_size
, new_l1_size2
, ret
, i
;
438 uint64_t *new_l1_table
;
439 uint64_t new_l1_table_offset
;
442 new_l1_size
= s
->l1_size
;
443 if (min_size
<= new_l1_size
)
445 while (min_size
> new_l1_size
) {
446 new_l1_size
= (new_l1_size
* 3 + 1) / 2;
449 printf("grow l1_table from %d to %d\n", s
->l1_size
, new_l1_size
);
452 new_l1_size2
= sizeof(uint64_t) * new_l1_size
;
453 new_l1_table
= qemu_mallocz(new_l1_size2
);
456 memcpy(new_l1_table
, s
->l1_table
, s
->l1_size
* sizeof(uint64_t));
458 /* write new table (align to cluster) */
459 new_l1_table_offset
= alloc_clusters(bs
, new_l1_size2
);
461 for(i
= 0; i
< s
->l1_size
; i
++)
462 new_l1_table
[i
] = cpu_to_be64(new_l1_table
[i
]);
463 ret
= bdrv_pwrite(s
->hd
, new_l1_table_offset
, new_l1_table
, new_l1_size2
);
464 if (ret
!= new_l1_size2
)
466 for(i
= 0; i
< s
->l1_size
; i
++)
467 new_l1_table
[i
] = be64_to_cpu(new_l1_table
[i
]);
470 cpu_to_be32w((uint32_t*)data
, new_l1_size
);
471 cpu_to_be64w((uint64_t*)(data
+ 4), new_l1_table_offset
);
472 if (bdrv_pwrite(s
->hd
, offsetof(QCowHeader
, l1_size
), data
,
473 sizeof(data
)) != sizeof(data
))
475 qemu_free(s
->l1_table
);
476 free_clusters(bs
, s
->l1_table_offset
, s
->l1_size
* sizeof(uint64_t));
477 s
->l1_table_offset
= new_l1_table_offset
;
478 s
->l1_table
= new_l1_table
;
479 s
->l1_size
= new_l1_size
;
482 qemu_free(s
->l1_table
);
489 * seek l2_offset in the l2_cache table
490 * if not found, return NULL,
492 * increments the l2 cache hit count of the entry,
493 * if counter overflow, divide by two all counters
494 * return the pointer to the l2 cache entry
498 static uint64_t *seek_l2_table(BDRVQcowState
*s
, uint64_t l2_offset
)
502 for(i
= 0; i
< L2_CACHE_SIZE
; i
++) {
503 if (l2_offset
== s
->l2_cache_offsets
[i
]) {
504 /* increment the hit count */
505 if (++s
->l2_cache_counts
[i
] == 0xffffffff) {
506 for(j
= 0; j
< L2_CACHE_SIZE
; j
++) {
507 s
->l2_cache_counts
[j
] >>= 1;
510 return s
->l2_cache
+ (i
<< s
->l2_bits
);
519 * Loads a L2 table into memory. If the table is in the cache, the cache
520 * is used; otherwise the L2 table is loaded from the image file.
522 * Returns a pointer to the L2 table on success, or NULL if the read from
523 * the image file failed.
526 static uint64_t *l2_load(BlockDriverState
*bs
, uint64_t l2_offset
)
528 BDRVQcowState
*s
= bs
->opaque
;
532 /* seek if the table for the given offset is in the cache */
534 l2_table
= seek_l2_table(s
, l2_offset
);
535 if (l2_table
!= NULL
)
538 /* not found: load a new entry in the least used one */
540 min_index
= l2_cache_new_entry(bs
);
541 l2_table
= s
->l2_cache
+ (min_index
<< s
->l2_bits
);
542 if (bdrv_pread(s
->hd
, l2_offset
, l2_table
, s
->l2_size
* sizeof(uint64_t)) !=
543 s
->l2_size
* sizeof(uint64_t))
545 s
->l2_cache_offsets
[min_index
] = l2_offset
;
546 s
->l2_cache_counts
[min_index
] = 1;
554 * Allocate a new l2 entry in the file. If l1_index points to an already
555 * used entry in the L2 table (i.e. we are doing a copy on write for the L2
556 * table) copy the contents of the old L2 table into the newly allocated one.
557 * Otherwise the new table is initialized with zeros.
561 static uint64_t *l2_allocate(BlockDriverState
*bs
, int l1_index
)
563 BDRVQcowState
*s
= bs
->opaque
;
565 uint64_t old_l2_offset
, tmp
;
566 uint64_t *l2_table
, l2_offset
;
568 old_l2_offset
= s
->l1_table
[l1_index
];
570 /* allocate a new l2 entry */
572 l2_offset
= alloc_clusters(bs
, s
->l2_size
* sizeof(uint64_t));
574 /* update the L1 entry */
576 s
->l1_table
[l1_index
] = l2_offset
| QCOW_OFLAG_COPIED
;
578 tmp
= cpu_to_be64(l2_offset
| QCOW_OFLAG_COPIED
);
579 if (bdrv_pwrite(s
->hd
, s
->l1_table_offset
+ l1_index
* sizeof(tmp
),
580 &tmp
, sizeof(tmp
)) != sizeof(tmp
))
583 /* allocate a new entry in the l2 cache */
585 min_index
= l2_cache_new_entry(bs
);
586 l2_table
= s
->l2_cache
+ (min_index
<< s
->l2_bits
);
588 if (old_l2_offset
== 0) {
589 /* if there was no old l2 table, clear the new table */
590 memset(l2_table
, 0, s
->l2_size
* sizeof(uint64_t));
592 /* if there was an old l2 table, read it from the disk */
593 if (bdrv_pread(s
->hd
, old_l2_offset
,
594 l2_table
, s
->l2_size
* sizeof(uint64_t)) !=
595 s
->l2_size
* sizeof(uint64_t))
598 /* write the l2 table to the file */
599 if (bdrv_pwrite(s
->hd
, l2_offset
,
600 l2_table
, s
->l2_size
* sizeof(uint64_t)) !=
601 s
->l2_size
* sizeof(uint64_t))
604 /* update the l2 cache entry */
606 s
->l2_cache_offsets
[min_index
] = l2_offset
;
607 s
->l2_cache_counts
[min_index
] = 1;
612 static int size_to_clusters(BDRVQcowState
*s
, int64_t size
)
614 return (size
+ (s
->cluster_size
- 1)) >> s
->cluster_bits
;
617 static int count_contiguous_clusters(uint64_t nb_clusters
, int cluster_size
,
618 uint64_t *l2_table
, uint64_t start
, uint64_t mask
)
621 uint64_t offset
= be64_to_cpu(l2_table
[0]) & ~mask
;
626 for (i
= start
; i
< start
+ nb_clusters
; i
++)
627 if (offset
+ i
* cluster_size
!= (be64_to_cpu(l2_table
[i
]) & ~mask
))
633 static int count_contiguous_free_clusters(uint64_t nb_clusters
, uint64_t *l2_table
)
637 while(nb_clusters
-- && l2_table
[i
] == 0)
646 * For a given offset of the disk image, return cluster offset in
649 * on entry, *num is the number of contiguous clusters we'd like to
650 * access following offset.
652 * on exit, *num is the number of contiguous clusters we can read.
654 * Return 1, if the offset is found
655 * Return 0, otherwise.
659 static uint64_t get_cluster_offset(BlockDriverState
*bs
,
660 uint64_t offset
, int *num
)
662 BDRVQcowState
*s
= bs
->opaque
;
663 int l1_index
, l2_index
;
664 uint64_t l2_offset
, *l2_table
, cluster_offset
;
666 int index_in_cluster
, nb_available
, nb_needed
, nb_clusters
;
668 index_in_cluster
= (offset
>> 9) & (s
->cluster_sectors
- 1);
669 nb_needed
= *num
+ index_in_cluster
;
671 l1_bits
= s
->l2_bits
+ s
->cluster_bits
;
673 /* compute how many bytes there are between the offset and
674 * the end of the l1 entry
677 nb_available
= (1 << l1_bits
) - (offset
& ((1 << l1_bits
) - 1));
679 /* compute the number of available sectors */
681 nb_available
= (nb_available
>> 9) + index_in_cluster
;
685 /* seek the the l2 offset in the l1 table */
687 l1_index
= offset
>> l1_bits
;
688 if (l1_index
>= s
->l1_size
)
691 l2_offset
= s
->l1_table
[l1_index
];
693 /* seek the l2 table of the given l2 offset */
698 /* load the l2 table in memory */
700 l2_offset
&= ~QCOW_OFLAG_COPIED
;
701 l2_table
= l2_load(bs
, l2_offset
);
702 if (l2_table
== NULL
)
705 /* find the cluster offset for the given disk offset */
707 l2_index
= (offset
>> s
->cluster_bits
) & (s
->l2_size
- 1);
708 cluster_offset
= be64_to_cpu(l2_table
[l2_index
]);
709 nb_clusters
= size_to_clusters(s
, nb_needed
<< 9);
711 if (!cluster_offset
) {
712 /* how many empty clusters ? */
713 c
= count_contiguous_free_clusters(nb_clusters
, &l2_table
[l2_index
]);
715 /* how many allocated clusters ? */
716 c
= count_contiguous_clusters(nb_clusters
, s
->cluster_size
,
717 &l2_table
[l2_index
], 0, QCOW_OFLAG_COPIED
);
720 nb_available
= (c
* s
->cluster_sectors
);
722 if (nb_available
> nb_needed
)
723 nb_available
= nb_needed
;
725 *num
= nb_available
- index_in_cluster
;
727 return cluster_offset
& ~QCOW_OFLAG_COPIED
;
733 * free clusters according to its type: compressed or not
737 static void free_any_clusters(BlockDriverState
*bs
,
738 uint64_t cluster_offset
, int nb_clusters
)
740 BDRVQcowState
*s
= bs
->opaque
;
742 /* free the cluster */
744 if (cluster_offset
& QCOW_OFLAG_COMPRESSED
) {
746 nb_csectors
= ((cluster_offset
>> s
->csize_shift
) &
748 free_clusters(bs
, (cluster_offset
& s
->cluster_offset_mask
) & ~511,
753 free_clusters(bs
, cluster_offset
, nb_clusters
<< s
->cluster_bits
);
761 * for a given disk offset, load (and allocate if needed)
764 * the l2 table offset in the qcow2 file and the cluster index
765 * in the l2 table are given to the caller.
769 static int get_cluster_table(BlockDriverState
*bs
, uint64_t offset
,
770 uint64_t **new_l2_table
,
771 uint64_t *new_l2_offset
,
774 BDRVQcowState
*s
= bs
->opaque
;
775 int l1_index
, l2_index
, ret
;
776 uint64_t l2_offset
, *l2_table
;
778 /* seek the the l2 offset in the l1 table */
780 l1_index
= offset
>> (s
->l2_bits
+ s
->cluster_bits
);
781 if (l1_index
>= s
->l1_size
) {
782 ret
= grow_l1_table(bs
, l1_index
+ 1);
786 l2_offset
= s
->l1_table
[l1_index
];
788 /* seek the l2 table of the given l2 offset */
790 if (l2_offset
& QCOW_OFLAG_COPIED
) {
791 /* load the l2 table in memory */
792 l2_offset
&= ~QCOW_OFLAG_COPIED
;
793 l2_table
= l2_load(bs
, l2_offset
);
794 if (l2_table
== NULL
)
798 free_clusters(bs
, l2_offset
, s
->l2_size
* sizeof(uint64_t));
799 l2_table
= l2_allocate(bs
, l1_index
);
800 if (l2_table
== NULL
)
802 l2_offset
= s
->l1_table
[l1_index
] & ~QCOW_OFLAG_COPIED
;
805 /* find the cluster offset for the given disk offset */
807 l2_index
= (offset
>> s
->cluster_bits
) & (s
->l2_size
- 1);
809 *new_l2_table
= l2_table
;
810 *new_l2_offset
= l2_offset
;
811 *new_l2_index
= l2_index
;
817 * alloc_compressed_cluster_offset
819 * For a given offset of the disk image, return cluster offset in
822 * If the offset is not found, allocate a new compressed cluster.
824 * Return the cluster offset if successful,
825 * Return 0, otherwise.
829 static uint64_t alloc_compressed_cluster_offset(BlockDriverState
*bs
,
833 BDRVQcowState
*s
= bs
->opaque
;
835 uint64_t l2_offset
, *l2_table
, cluster_offset
;
838 ret
= get_cluster_table(bs
, offset
, &l2_table
, &l2_offset
, &l2_index
);
842 cluster_offset
= be64_to_cpu(l2_table
[l2_index
]);
843 if (cluster_offset
& QCOW_OFLAG_COPIED
)
844 return cluster_offset
& ~QCOW_OFLAG_COPIED
;
847 free_any_clusters(bs
, cluster_offset
, 1);
849 cluster_offset
= alloc_bytes(bs
, compressed_size
);
850 nb_csectors
= ((cluster_offset
+ compressed_size
- 1) >> 9) -
851 (cluster_offset
>> 9);
853 cluster_offset
|= QCOW_OFLAG_COMPRESSED
|
854 ((uint64_t)nb_csectors
<< s
->csize_shift
);
856 /* update L2 table */
858 /* compressed clusters never have the copied flag */
860 l2_table
[l2_index
] = cpu_to_be64(cluster_offset
);
861 if (bdrv_pwrite(s
->hd
,
862 l2_offset
+ l2_index
* sizeof(uint64_t),
864 sizeof(uint64_t)) != sizeof(uint64_t))
867 return cluster_offset
;
870 typedef struct QCowL2Meta
878 static int alloc_cluster_link_l2(BlockDriverState
*bs
, uint64_t cluster_offset
,
881 BDRVQcowState
*s
= bs
->opaque
;
882 int i
, j
= 0, l2_index
, ret
;
883 uint64_t *old_cluster
, start_sect
, l2_offset
, *l2_table
;
885 if (m
->nb_clusters
== 0)
888 if (!(old_cluster
= qemu_malloc(m
->nb_clusters
* sizeof(uint64_t))))
891 /* copy content of unmodified sectors */
892 start_sect
= (m
->offset
& ~(s
->cluster_size
- 1)) >> 9;
894 ret
= copy_sectors(bs
, start_sect
, cluster_offset
, 0, m
->n_start
);
899 if (m
->nb_available
& (s
->cluster_sectors
- 1)) {
900 uint64_t end
= m
->nb_available
& ~(uint64_t)(s
->cluster_sectors
- 1);
901 ret
= copy_sectors(bs
, start_sect
+ end
, cluster_offset
+ (end
<< 9),
902 m
->nb_available
- end
, s
->cluster_sectors
);
908 /* update L2 table */
909 if (!get_cluster_table(bs
, m
->offset
, &l2_table
, &l2_offset
, &l2_index
))
912 for (i
= 0; i
< m
->nb_clusters
; i
++) {
913 if(l2_table
[l2_index
+ i
] != 0)
914 old_cluster
[j
++] = l2_table
[l2_index
+ i
];
916 l2_table
[l2_index
+ i
] = cpu_to_be64((cluster_offset
+
917 (i
<< s
->cluster_bits
)) | QCOW_OFLAG_COPIED
);
920 if (bdrv_pwrite(s
->hd
, l2_offset
+ l2_index
* sizeof(uint64_t),
921 l2_table
+ l2_index
, m
->nb_clusters
* sizeof(uint64_t)) !=
922 m
->nb_clusters
* sizeof(uint64_t))
925 for (i
= 0; i
< j
; i
++)
926 free_any_clusters(bs
, old_cluster
[i
], 1);
930 qemu_free(old_cluster
);
935 * alloc_cluster_offset
937 * For a given offset of the disk image, return cluster offset in
940 * If the offset is not found, allocate a new cluster.
942 * Return the cluster offset if successful,
943 * Return 0, otherwise.
947 static uint64_t alloc_cluster_offset(BlockDriverState
*bs
,
949 int n_start
, int n_end
,
950 int *num
, QCowL2Meta
*m
)
952 BDRVQcowState
*s
= bs
->opaque
;
954 uint64_t l2_offset
, *l2_table
, cluster_offset
;
955 int nb_clusters
, i
= 0;
957 ret
= get_cluster_table(bs
, offset
, &l2_table
, &l2_offset
, &l2_index
);
961 nb_clusters
= size_to_clusters(s
, n_end
<< 9);
963 nb_clusters
= MIN(nb_clusters
, s
->l2_size
- l2_index
);
965 cluster_offset
= be64_to_cpu(l2_table
[l2_index
]);
967 /* We keep all QCOW_OFLAG_COPIED clusters */
969 if (cluster_offset
& QCOW_OFLAG_COPIED
) {
970 nb_clusters
= count_contiguous_clusters(nb_clusters
, s
->cluster_size
,
971 &l2_table
[l2_index
], 0, 0);
973 cluster_offset
&= ~QCOW_OFLAG_COPIED
;
979 /* for the moment, multiple compressed clusters are not managed */
981 if (cluster_offset
& QCOW_OFLAG_COMPRESSED
)
984 /* how many available clusters ? */
986 while (i
< nb_clusters
) {
987 i
+= count_contiguous_clusters(nb_clusters
- i
, s
->cluster_size
,
988 &l2_table
[l2_index
], i
, 0);
990 if(be64_to_cpu(l2_table
[l2_index
+ i
]))
993 i
+= count_contiguous_free_clusters(nb_clusters
- i
,
994 &l2_table
[l2_index
+ i
]);
996 cluster_offset
= be64_to_cpu(l2_table
[l2_index
+ i
]);
998 if ((cluster_offset
& QCOW_OFLAG_COPIED
) ||
999 (cluster_offset
& QCOW_OFLAG_COMPRESSED
))
1004 /* allocate a new cluster */
1006 cluster_offset
= alloc_clusters(bs
, nb_clusters
* s
->cluster_size
);
1008 /* save info needed for meta data update */
1010 m
->n_start
= n_start
;
1011 m
->nb_clusters
= nb_clusters
;
1014 m
->nb_available
= MIN(nb_clusters
<< (s
->cluster_bits
- 9), n_end
);
1016 *num
= m
->nb_available
- n_start
;
1018 return cluster_offset
;
1021 static int qcow_is_allocated(BlockDriverState
*bs
, int64_t sector_num
,
1022 int nb_sectors
, int *pnum
)
1024 uint64_t cluster_offset
;
1027 cluster_offset
= get_cluster_offset(bs
, sector_num
<< 9, pnum
);
1029 return (cluster_offset
!= 0);
1032 static int decompress_buffer(uint8_t *out_buf
, int out_buf_size
,
1033 const uint8_t *buf
, int buf_size
)
1035 z_stream strm1
, *strm
= &strm1
;
1038 memset(strm
, 0, sizeof(*strm
));
1040 strm
->next_in
= (uint8_t *)buf
;
1041 strm
->avail_in
= buf_size
;
1042 strm
->next_out
= out_buf
;
1043 strm
->avail_out
= out_buf_size
;
1045 ret
= inflateInit2(strm
, -12);
1048 ret
= inflate(strm
, Z_FINISH
);
1049 out_len
= strm
->next_out
- out_buf
;
1050 if ((ret
!= Z_STREAM_END
&& ret
!= Z_BUF_ERROR
) ||
1051 out_len
!= out_buf_size
) {
1059 static int decompress_cluster(BDRVQcowState
*s
, uint64_t cluster_offset
)
1061 int ret
, csize
, nb_csectors
, sector_offset
;
1064 coffset
= cluster_offset
& s
->cluster_offset_mask
;
1065 if (s
->cluster_cache_offset
!= coffset
) {
1066 nb_csectors
= ((cluster_offset
>> s
->csize_shift
) & s
->csize_mask
) + 1;
1067 sector_offset
= coffset
& 511;
1068 csize
= nb_csectors
* 512 - sector_offset
;
1069 ret
= bdrv_read(s
->hd
, coffset
>> 9, s
->cluster_data
, nb_csectors
);
1073 if (decompress_buffer(s
->cluster_cache
, s
->cluster_size
,
1074 s
->cluster_data
+ sector_offset
, csize
) < 0) {
1077 s
->cluster_cache_offset
= coffset
;
1082 /* handle reading after the end of the backing file */
1083 static int backing_read1(BlockDriverState
*bs
,
1084 int64_t sector_num
, uint8_t *buf
, int nb_sectors
)
1087 if ((sector_num
+ nb_sectors
) <= bs
->total_sectors
)
1089 if (sector_num
>= bs
->total_sectors
)
1092 n1
= bs
->total_sectors
- sector_num
;
1093 memset(buf
+ n1
* 512, 0, 512 * (nb_sectors
- n1
));
1097 static int qcow_read(BlockDriverState
*bs
, int64_t sector_num
,
1098 uint8_t *buf
, int nb_sectors
)
1100 BDRVQcowState
*s
= bs
->opaque
;
1101 int ret
, index_in_cluster
, n
, n1
;
1102 uint64_t cluster_offset
;
1104 while (nb_sectors
> 0) {
1106 cluster_offset
= get_cluster_offset(bs
, sector_num
<< 9, &n
);
1107 index_in_cluster
= sector_num
& (s
->cluster_sectors
- 1);
1108 if (!cluster_offset
) {
1109 if (bs
->backing_hd
) {
1110 /* read from the base image */
1111 n1
= backing_read1(bs
->backing_hd
, sector_num
, buf
, n
);
1113 ret
= bdrv_read(bs
->backing_hd
, sector_num
, buf
, n1
);
1118 memset(buf
, 0, 512 * n
);
1120 } else if (cluster_offset
& QCOW_OFLAG_COMPRESSED
) {
1121 if (decompress_cluster(s
, cluster_offset
) < 0)
1123 memcpy(buf
, s
->cluster_cache
+ index_in_cluster
* 512, 512 * n
);
1125 ret
= bdrv_pread(s
->hd
, cluster_offset
+ index_in_cluster
* 512, buf
, n
* 512);
1128 if (s
->crypt_method
) {
1129 encrypt_sectors(s
, sector_num
, buf
, buf
, n
, 0,
1130 &s
->aes_decrypt_key
);
1140 static int qcow_write(BlockDriverState
*bs
, int64_t sector_num
,
1141 const uint8_t *buf
, int nb_sectors
)
1143 BDRVQcowState
*s
= bs
->opaque
;
1144 int ret
, index_in_cluster
, n
;
1145 uint64_t cluster_offset
;
1149 while (nb_sectors
> 0) {
1150 index_in_cluster
= sector_num
& (s
->cluster_sectors
- 1);
1151 n_end
= index_in_cluster
+ nb_sectors
;
1152 if (s
->crypt_method
&&
1153 n_end
> QCOW_MAX_CRYPT_CLUSTERS
* s
->cluster_sectors
)
1154 n_end
= QCOW_MAX_CRYPT_CLUSTERS
* s
->cluster_sectors
;
1155 cluster_offset
= alloc_cluster_offset(bs
, sector_num
<< 9,
1157 n_end
, &n
, &l2meta
);
1158 if (!cluster_offset
)
1160 if (s
->crypt_method
) {
1161 encrypt_sectors(s
, sector_num
, s
->cluster_data
, buf
, n
, 1,
1162 &s
->aes_encrypt_key
);
1163 ret
= bdrv_pwrite(s
->hd
, cluster_offset
+ index_in_cluster
* 512,
1164 s
->cluster_data
, n
* 512);
1166 ret
= bdrv_pwrite(s
->hd
, cluster_offset
+ index_in_cluster
* 512, buf
, n
* 512);
1168 if (ret
!= n
* 512 || alloc_cluster_link_l2(bs
, cluster_offset
, &l2meta
) < 0) {
1169 free_any_clusters(bs
, cluster_offset
, l2meta
.nb_clusters
);
1176 s
->cluster_cache_offset
= -1; /* disable compressed cache */
1180 typedef struct QCowAIOCB
{
1181 BlockDriverAIOCB common
;
1186 uint64_t cluster_offset
;
1187 uint8_t *cluster_data
;
1188 BlockDriverAIOCB
*hd_aiocb
;
1193 static void qcow_aio_read_cb(void *opaque
, int ret
);
1194 static void qcow_aio_read_bh(void *opaque
)
1196 QCowAIOCB
*acb
= opaque
;
1197 qemu_bh_delete(acb
->bh
);
1199 qcow_aio_read_cb(opaque
, 0);
1202 static int qcow_schedule_bh(QEMUBHFunc
*cb
, QCowAIOCB
*acb
)
1207 acb
->bh
= qemu_bh_new(cb
, acb
);
1211 qemu_bh_schedule(acb
->bh
);
1216 static void qcow_aio_read_cb(void *opaque
, int ret
)
1218 QCowAIOCB
*acb
= opaque
;
1219 BlockDriverState
*bs
= acb
->common
.bs
;
1220 BDRVQcowState
*s
= bs
->opaque
;
1221 int index_in_cluster
, n1
;
1223 acb
->hd_aiocb
= NULL
;
1226 acb
->common
.cb(acb
->common
.opaque
, ret
);
1227 qemu_aio_release(acb
);
1231 /* post process the read buffer */
1232 if (!acb
->cluster_offset
) {
1234 } else if (acb
->cluster_offset
& QCOW_OFLAG_COMPRESSED
) {
1237 if (s
->crypt_method
) {
1238 encrypt_sectors(s
, acb
->sector_num
, acb
->buf
, acb
->buf
,
1240 &s
->aes_decrypt_key
);
1244 acb
->nb_sectors
-= acb
->n
;
1245 acb
->sector_num
+= acb
->n
;
1246 acb
->buf
+= acb
->n
* 512;
1248 if (acb
->nb_sectors
== 0) {
1249 /* request completed */
1250 acb
->common
.cb(acb
->common
.opaque
, 0);
1251 qemu_aio_release(acb
);
1255 /* prepare next AIO request */
1256 acb
->n
= acb
->nb_sectors
;
1257 acb
->cluster_offset
= get_cluster_offset(bs
, acb
->sector_num
<< 9, &acb
->n
);
1258 index_in_cluster
= acb
->sector_num
& (s
->cluster_sectors
- 1);
1260 if (!acb
->cluster_offset
) {
1261 if (bs
->backing_hd
) {
1262 /* read from the base image */
1263 n1
= backing_read1(bs
->backing_hd
, acb
->sector_num
,
1266 acb
->hd_aiocb
= bdrv_aio_read(bs
->backing_hd
, acb
->sector_num
,
1267 acb
->buf
, acb
->n
, qcow_aio_read_cb
, acb
);
1268 if (acb
->hd_aiocb
== NULL
)
1271 ret
= qcow_schedule_bh(qcow_aio_read_bh
, acb
);
1276 /* Note: in this case, no need to wait */
1277 memset(acb
->buf
, 0, 512 * acb
->n
);
1278 ret
= qcow_schedule_bh(qcow_aio_read_bh
, acb
);
1282 } else if (acb
->cluster_offset
& QCOW_OFLAG_COMPRESSED
) {
1283 /* add AIO support for compressed blocks ? */
1284 if (decompress_cluster(s
, acb
->cluster_offset
) < 0)
1287 s
->cluster_cache
+ index_in_cluster
* 512, 512 * acb
->n
);
1288 ret
= qcow_schedule_bh(qcow_aio_read_bh
, acb
);
1292 if ((acb
->cluster_offset
& 511) != 0) {
1296 acb
->hd_aiocb
= bdrv_aio_read(s
->hd
,
1297 (acb
->cluster_offset
>> 9) + index_in_cluster
,
1298 acb
->buf
, acb
->n
, qcow_aio_read_cb
, acb
);
1299 if (acb
->hd_aiocb
== NULL
)
1304 static QCowAIOCB
*qcow_aio_setup(BlockDriverState
*bs
,
1305 int64_t sector_num
, uint8_t *buf
, int nb_sectors
,
1306 BlockDriverCompletionFunc
*cb
, void *opaque
)
1310 acb
= qemu_aio_get(bs
, cb
, opaque
);
1313 acb
->hd_aiocb
= NULL
;
1314 acb
->sector_num
= sector_num
;
1316 acb
->nb_sectors
= nb_sectors
;
1318 acb
->cluster_offset
= 0;
1319 acb
->l2meta
.nb_clusters
= 0;
1323 static BlockDriverAIOCB
*qcow_aio_read(BlockDriverState
*bs
,
1324 int64_t sector_num
, uint8_t *buf
, int nb_sectors
,
1325 BlockDriverCompletionFunc
*cb
, void *opaque
)
1329 acb
= qcow_aio_setup(bs
, sector_num
, buf
, nb_sectors
, cb
, opaque
);
1333 qcow_aio_read_cb(acb
, 0);
1334 return &acb
->common
;
1337 static void qcow_aio_write_cb(void *opaque
, int ret
)
1339 QCowAIOCB
*acb
= opaque
;
1340 BlockDriverState
*bs
= acb
->common
.bs
;
1341 BDRVQcowState
*s
= bs
->opaque
;
1342 int index_in_cluster
;
1343 const uint8_t *src_buf
;
1346 acb
->hd_aiocb
= NULL
;
1350 acb
->common
.cb(acb
->common
.opaque
, ret
);
1351 qemu_aio_release(acb
);
1355 if (alloc_cluster_link_l2(bs
, acb
->cluster_offset
, &acb
->l2meta
) < 0) {
1356 free_any_clusters(bs
, acb
->cluster_offset
, acb
->l2meta
.nb_clusters
);
1360 acb
->nb_sectors
-= acb
->n
;
1361 acb
->sector_num
+= acb
->n
;
1362 acb
->buf
+= acb
->n
* 512;
1364 if (acb
->nb_sectors
== 0) {
1365 /* request completed */
1366 acb
->common
.cb(acb
->common
.opaque
, 0);
1367 qemu_aio_release(acb
);
1371 index_in_cluster
= acb
->sector_num
& (s
->cluster_sectors
- 1);
1372 n_end
= index_in_cluster
+ acb
->nb_sectors
;
1373 if (s
->crypt_method
&&
1374 n_end
> QCOW_MAX_CRYPT_CLUSTERS
* s
->cluster_sectors
)
1375 n_end
= QCOW_MAX_CRYPT_CLUSTERS
* s
->cluster_sectors
;
1377 acb
->cluster_offset
= alloc_cluster_offset(bs
, acb
->sector_num
<< 9,
1379 n_end
, &acb
->n
, &acb
->l2meta
);
1380 if (!acb
->cluster_offset
|| (acb
->cluster_offset
& 511) != 0) {
1384 if (s
->crypt_method
) {
1385 if (!acb
->cluster_data
) {
1386 acb
->cluster_data
= qemu_mallocz(QCOW_MAX_CRYPT_CLUSTERS
*
1388 if (!acb
->cluster_data
) {
1393 encrypt_sectors(s
, acb
->sector_num
, acb
->cluster_data
, acb
->buf
,
1394 acb
->n
, 1, &s
->aes_encrypt_key
);
1395 src_buf
= acb
->cluster_data
;
1399 acb
->hd_aiocb
= bdrv_aio_write(s
->hd
,
1400 (acb
->cluster_offset
>> 9) + index_in_cluster
,
1402 qcow_aio_write_cb
, acb
);
1403 if (acb
->hd_aiocb
== NULL
)
1407 static BlockDriverAIOCB
*qcow_aio_write(BlockDriverState
*bs
,
1408 int64_t sector_num
, const uint8_t *buf
, int nb_sectors
,
1409 BlockDriverCompletionFunc
*cb
, void *opaque
)
1411 BDRVQcowState
*s
= bs
->opaque
;
1414 s
->cluster_cache_offset
= -1; /* disable compressed cache */
1416 acb
= qcow_aio_setup(bs
, sector_num
, (uint8_t*)buf
, nb_sectors
, cb
, opaque
);
1420 qcow_aio_write_cb(acb
, 0);
1421 return &acb
->common
;
1424 static void qcow_aio_cancel(BlockDriverAIOCB
*blockacb
)
1426 QCowAIOCB
*acb
= (QCowAIOCB
*)blockacb
;
1428 bdrv_aio_cancel(acb
->hd_aiocb
);
1429 qemu_aio_release(acb
);
1432 static void qcow_close(BlockDriverState
*bs
)
1434 BDRVQcowState
*s
= bs
->opaque
;
1435 qemu_free(s
->l1_table
);
1436 qemu_free(s
->l2_cache
);
1437 qemu_free(s
->cluster_cache
);
1438 qemu_free(s
->cluster_data
);
1443 /* XXX: use std qcow open function ? */
1444 typedef struct QCowCreateState
{
1447 uint16_t *refcount_block
;
1448 uint64_t *refcount_table
;
1449 int64_t l1_table_offset
;
1450 int64_t refcount_table_offset
;
1451 int64_t refcount_block_offset
;
1454 static void create_refcount_update(QCowCreateState
*s
,
1455 int64_t offset
, int64_t size
)
1458 int64_t start
, last
, cluster_offset
;
1461 start
= offset
& ~(s
->cluster_size
- 1);
1462 last
= (offset
+ size
- 1) & ~(s
->cluster_size
- 1);
1463 for(cluster_offset
= start
; cluster_offset
<= last
;
1464 cluster_offset
+= s
->cluster_size
) {
1465 p
= &s
->refcount_block
[cluster_offset
>> s
->cluster_bits
];
1466 refcount
= be16_to_cpu(*p
);
1468 *p
= cpu_to_be16(refcount
);
1472 static int qcow_create(const char *filename
, int64_t total_size
,
1473 const char *backing_file
, int flags
)
1475 int fd
, header_size
, backing_filename_len
, l1_size
, i
, shift
, l2_bits
;
1477 uint64_t tmp
, offset
;
1478 QCowCreateState s1
, *s
= &s1
;
1480 memset(s
, 0, sizeof(*s
));
1482 fd
= open(filename
, O_WRONLY
| O_CREAT
| O_TRUNC
| O_BINARY
, 0644);
1485 memset(&header
, 0, sizeof(header
));
1486 header
.magic
= cpu_to_be32(QCOW_MAGIC
);
1487 header
.version
= cpu_to_be32(QCOW_VERSION
);
1488 header
.size
= cpu_to_be64(total_size
* 512);
1489 header_size
= sizeof(header
);
1490 backing_filename_len
= 0;
1492 header
.backing_file_offset
= cpu_to_be64(header_size
);
1493 backing_filename_len
= strlen(backing_file
);
1494 header
.backing_file_size
= cpu_to_be32(backing_filename_len
);
1495 header_size
+= backing_filename_len
;
1497 s
->cluster_bits
= 12; /* 4 KB clusters */
1498 s
->cluster_size
= 1 << s
->cluster_bits
;
1499 header
.cluster_bits
= cpu_to_be32(s
->cluster_bits
);
1500 header_size
= (header_size
+ 7) & ~7;
1501 if (flags
& BLOCK_FLAG_ENCRYPT
) {
1502 header
.crypt_method
= cpu_to_be32(QCOW_CRYPT_AES
);
1504 header
.crypt_method
= cpu_to_be32(QCOW_CRYPT_NONE
);
1506 l2_bits
= s
->cluster_bits
- 3;
1507 shift
= s
->cluster_bits
+ l2_bits
;
1508 l1_size
= (((total_size
* 512) + (1LL << shift
) - 1) >> shift
);
1509 offset
= align_offset(header_size
, s
->cluster_size
);
1510 s
->l1_table_offset
= offset
;
1511 header
.l1_table_offset
= cpu_to_be64(s
->l1_table_offset
);
1512 header
.l1_size
= cpu_to_be32(l1_size
);
1513 offset
+= align_offset(l1_size
* sizeof(uint64_t), s
->cluster_size
);
1515 s
->refcount_table
= qemu_mallocz(s
->cluster_size
);
1516 if (!s
->refcount_table
)
1518 s
->refcount_block
= qemu_mallocz(s
->cluster_size
);
1519 if (!s
->refcount_block
)
1522 s
->refcount_table_offset
= offset
;
1523 header
.refcount_table_offset
= cpu_to_be64(offset
);
1524 header
.refcount_table_clusters
= cpu_to_be32(1);
1525 offset
+= s
->cluster_size
;
1527 s
->refcount_table
[0] = cpu_to_be64(offset
);
1528 s
->refcount_block_offset
= offset
;
1529 offset
+= s
->cluster_size
;
1531 /* update refcounts */
1532 create_refcount_update(s
, 0, header_size
);
1533 create_refcount_update(s
, s
->l1_table_offset
, l1_size
* sizeof(uint64_t));
1534 create_refcount_update(s
, s
->refcount_table_offset
, s
->cluster_size
);
1535 create_refcount_update(s
, s
->refcount_block_offset
, s
->cluster_size
);
1537 /* write all the data */
1538 write(fd
, &header
, sizeof(header
));
1540 write(fd
, backing_file
, backing_filename_len
);
1542 lseek(fd
, s
->l1_table_offset
, SEEK_SET
);
1544 for(i
= 0;i
< l1_size
; i
++) {
1545 write(fd
, &tmp
, sizeof(tmp
));
1547 lseek(fd
, s
->refcount_table_offset
, SEEK_SET
);
1548 write(fd
, s
->refcount_table
, s
->cluster_size
);
1550 lseek(fd
, s
->refcount_block_offset
, SEEK_SET
);
1551 write(fd
, s
->refcount_block
, s
->cluster_size
);
1553 qemu_free(s
->refcount_table
);
1554 qemu_free(s
->refcount_block
);
1558 qemu_free(s
->refcount_table
);
1559 qemu_free(s
->refcount_block
);
1564 static int qcow_make_empty(BlockDriverState
*bs
)
1567 /* XXX: not correct */
1568 BDRVQcowState
*s
= bs
->opaque
;
1569 uint32_t l1_length
= s
->l1_size
* sizeof(uint64_t);
1572 memset(s
->l1_table
, 0, l1_length
);
1573 if (bdrv_pwrite(s
->hd
, s
->l1_table_offset
, s
->l1_table
, l1_length
) < 0)
1575 ret
= bdrv_truncate(s
->hd
, s
->l1_table_offset
+ l1_length
);
1584 /* XXX: put compressed sectors first, then all the cluster aligned
1585 tables to avoid losing bytes in alignment */
1586 static int qcow_write_compressed(BlockDriverState
*bs
, int64_t sector_num
,
1587 const uint8_t *buf
, int nb_sectors
)
1589 BDRVQcowState
*s
= bs
->opaque
;
1593 uint64_t cluster_offset
;
1595 if (nb_sectors
== 0) {
1596 /* align end of file to a sector boundary to ease reading with
1597 sector based I/Os */
1598 cluster_offset
= bdrv_getlength(s
->hd
);
1599 cluster_offset
= (cluster_offset
+ 511) & ~511;
1600 bdrv_truncate(s
->hd
, cluster_offset
);
1604 if (nb_sectors
!= s
->cluster_sectors
)
1607 out_buf
= qemu_malloc(s
->cluster_size
+ (s
->cluster_size
/ 1000) + 128);
1611 /* best compression, small window, no zlib header */
1612 memset(&strm
, 0, sizeof(strm
));
1613 ret
= deflateInit2(&strm
, Z_DEFAULT_COMPRESSION
,
1615 9, Z_DEFAULT_STRATEGY
);
1621 strm
.avail_in
= s
->cluster_size
;
1622 strm
.next_in
= (uint8_t *)buf
;
1623 strm
.avail_out
= s
->cluster_size
;
1624 strm
.next_out
= out_buf
;
1626 ret
= deflate(&strm
, Z_FINISH
);
1627 if (ret
!= Z_STREAM_END
&& ret
!= Z_OK
) {
1632 out_len
= strm
.next_out
- out_buf
;
1636 if (ret
!= Z_STREAM_END
|| out_len
>= s
->cluster_size
) {
1637 /* could not compress: write normal cluster */
1638 qcow_write(bs
, sector_num
, buf
, s
->cluster_sectors
);
1640 cluster_offset
= alloc_compressed_cluster_offset(bs
, sector_num
<< 9,
1642 if (!cluster_offset
)
1644 cluster_offset
&= s
->cluster_offset_mask
;
1645 if (bdrv_pwrite(s
->hd
, cluster_offset
, out_buf
, out_len
) != out_len
) {
1655 static void qcow_flush(BlockDriverState
*bs
)
1657 BDRVQcowState
*s
= bs
->opaque
;
1661 static int qcow_get_info(BlockDriverState
*bs
, BlockDriverInfo
*bdi
)
1663 BDRVQcowState
*s
= bs
->opaque
;
1664 bdi
->cluster_size
= s
->cluster_size
;
1665 bdi
->vm_state_offset
= (int64_t)s
->l1_vm_state_index
<<
1666 (s
->cluster_bits
+ s
->l2_bits
);
1670 /*********************************************************/
1671 /* snapshot support */
1673 /* update the refcounts of snapshots and the copied flag */
1674 static int update_snapshot_refcount(BlockDriverState
*bs
,
1675 int64_t l1_table_offset
,
1679 BDRVQcowState
*s
= bs
->opaque
;
1680 uint64_t *l1_table
, *l2_table
, l2_offset
, offset
, l1_size2
, l1_allocated
;
1681 int64_t old_offset
, old_l2_offset
;
1682 int l2_size
, i
, j
, l1_modified
, l2_modified
, nb_csectors
, refcount
;
1688 l1_size2
= l1_size
* sizeof(uint64_t);
1690 if (l1_table_offset
!= s
->l1_table_offset
) {
1691 l1_table
= qemu_malloc(l1_size2
);
1695 if (bdrv_pread(s
->hd
, l1_table_offset
,
1696 l1_table
, l1_size2
) != l1_size2
)
1698 for(i
= 0;i
< l1_size
; i
++)
1699 be64_to_cpus(&l1_table
[i
]);
1701 assert(l1_size
== s
->l1_size
);
1702 l1_table
= s
->l1_table
;
1706 l2_size
= s
->l2_size
* sizeof(uint64_t);
1707 l2_table
= qemu_malloc(l2_size
);
1711 for(i
= 0; i
< l1_size
; i
++) {
1712 l2_offset
= l1_table
[i
];
1714 old_l2_offset
= l2_offset
;
1715 l2_offset
&= ~QCOW_OFLAG_COPIED
;
1717 if (bdrv_pread(s
->hd
, l2_offset
, l2_table
, l2_size
) != l2_size
)
1719 for(j
= 0; j
< s
->l2_size
; j
++) {
1720 offset
= be64_to_cpu(l2_table
[j
]);
1722 old_offset
= offset
;
1723 offset
&= ~QCOW_OFLAG_COPIED
;
1724 if (offset
& QCOW_OFLAG_COMPRESSED
) {
1725 nb_csectors
= ((offset
>> s
->csize_shift
) &
1728 update_refcount(bs
, (offset
& s
->cluster_offset_mask
) & ~511,
1729 nb_csectors
* 512, addend
);
1730 /* compressed clusters are never modified */
1734 refcount
= update_cluster_refcount(bs
, offset
>> s
->cluster_bits
, addend
);
1736 refcount
= get_refcount(bs
, offset
>> s
->cluster_bits
);
1740 if (refcount
== 1) {
1741 offset
|= QCOW_OFLAG_COPIED
;
1743 if (offset
!= old_offset
) {
1744 l2_table
[j
] = cpu_to_be64(offset
);
1750 if (bdrv_pwrite(s
->hd
,
1751 l2_offset
, l2_table
, l2_size
) != l2_size
)
1756 refcount
= update_cluster_refcount(bs
, l2_offset
>> s
->cluster_bits
, addend
);
1758 refcount
= get_refcount(bs
, l2_offset
>> s
->cluster_bits
);
1760 if (refcount
== 1) {
1761 l2_offset
|= QCOW_OFLAG_COPIED
;
1763 if (l2_offset
!= old_l2_offset
) {
1764 l1_table
[i
] = l2_offset
;
1770 for(i
= 0; i
< l1_size
; i
++)
1771 cpu_to_be64s(&l1_table
[i
]);
1772 if (bdrv_pwrite(s
->hd
, l1_table_offset
, l1_table
,
1773 l1_size2
) != l1_size2
)
1775 for(i
= 0; i
< l1_size
; i
++)
1776 be64_to_cpus(&l1_table
[i
]);
1779 qemu_free(l1_table
);
1780 qemu_free(l2_table
);
1784 qemu_free(l1_table
);
1785 qemu_free(l2_table
);
1789 static void qcow_free_snapshots(BlockDriverState
*bs
)
1791 BDRVQcowState
*s
= bs
->opaque
;
1794 for(i
= 0; i
< s
->nb_snapshots
; i
++) {
1795 qemu_free(s
->snapshots
[i
].name
);
1796 qemu_free(s
->snapshots
[i
].id_str
);
1798 qemu_free(s
->snapshots
);
1799 s
->snapshots
= NULL
;
1800 s
->nb_snapshots
= 0;
1803 static int qcow_read_snapshots(BlockDriverState
*bs
)
1805 BDRVQcowState
*s
= bs
->opaque
;
1806 QCowSnapshotHeader h
;
1808 int i
, id_str_size
, name_size
;
1810 uint32_t extra_data_size
;
1812 if (!s
->nb_snapshots
) {
1813 s
->snapshots
= NULL
;
1814 s
->snapshots_size
= 0;
1818 offset
= s
->snapshots_offset
;
1819 s
->snapshots
= qemu_mallocz(s
->nb_snapshots
* sizeof(QCowSnapshot
));
1822 for(i
= 0; i
< s
->nb_snapshots
; i
++) {
1823 offset
= align_offset(offset
, 8);
1824 if (bdrv_pread(s
->hd
, offset
, &h
, sizeof(h
)) != sizeof(h
))
1826 offset
+= sizeof(h
);
1827 sn
= s
->snapshots
+ i
;
1828 sn
->l1_table_offset
= be64_to_cpu(h
.l1_table_offset
);
1829 sn
->l1_size
= be32_to_cpu(h
.l1_size
);
1830 sn
->vm_state_size
= be32_to_cpu(h
.vm_state_size
);
1831 sn
->date_sec
= be32_to_cpu(h
.date_sec
);
1832 sn
->date_nsec
= be32_to_cpu(h
.date_nsec
);
1833 sn
->vm_clock_nsec
= be64_to_cpu(h
.vm_clock_nsec
);
1834 extra_data_size
= be32_to_cpu(h
.extra_data_size
);
1836 id_str_size
= be16_to_cpu(h
.id_str_size
);
1837 name_size
= be16_to_cpu(h
.name_size
);
1839 offset
+= extra_data_size
;
1841 sn
->id_str
= qemu_malloc(id_str_size
+ 1);
1844 if (bdrv_pread(s
->hd
, offset
, sn
->id_str
, id_str_size
) != id_str_size
)
1846 offset
+= id_str_size
;
1847 sn
->id_str
[id_str_size
] = '\0';
1849 sn
->name
= qemu_malloc(name_size
+ 1);
1852 if (bdrv_pread(s
->hd
, offset
, sn
->name
, name_size
) != name_size
)
1854 offset
+= name_size
;
1855 sn
->name
[name_size
] = '\0';
1857 s
->snapshots_size
= offset
- s
->snapshots_offset
;
1860 qcow_free_snapshots(bs
);
1864 /* add at the end of the file a new list of snapshots */
1865 static int qcow_write_snapshots(BlockDriverState
*bs
)
1867 BDRVQcowState
*s
= bs
->opaque
;
1869 QCowSnapshotHeader h
;
1870 int i
, name_size
, id_str_size
, snapshots_size
;
1873 int64_t offset
, snapshots_offset
;
1875 /* compute the size of the snapshots */
1877 for(i
= 0; i
< s
->nb_snapshots
; i
++) {
1878 sn
= s
->snapshots
+ i
;
1879 offset
= align_offset(offset
, 8);
1880 offset
+= sizeof(h
);
1881 offset
+= strlen(sn
->id_str
);
1882 offset
+= strlen(sn
->name
);
1884 snapshots_size
= offset
;
1886 snapshots_offset
= alloc_clusters(bs
, snapshots_size
);
1887 offset
= snapshots_offset
;
1889 for(i
= 0; i
< s
->nb_snapshots
; i
++) {
1890 sn
= s
->snapshots
+ i
;
1891 memset(&h
, 0, sizeof(h
));
1892 h
.l1_table_offset
= cpu_to_be64(sn
->l1_table_offset
);
1893 h
.l1_size
= cpu_to_be32(sn
->l1_size
);
1894 h
.vm_state_size
= cpu_to_be32(sn
->vm_state_size
);
1895 h
.date_sec
= cpu_to_be32(sn
->date_sec
);
1896 h
.date_nsec
= cpu_to_be32(sn
->date_nsec
);
1897 h
.vm_clock_nsec
= cpu_to_be64(sn
->vm_clock_nsec
);
1899 id_str_size
= strlen(sn
->id_str
);
1900 name_size
= strlen(sn
->name
);
1901 h
.id_str_size
= cpu_to_be16(id_str_size
);
1902 h
.name_size
= cpu_to_be16(name_size
);
1903 offset
= align_offset(offset
, 8);
1904 if (bdrv_pwrite(s
->hd
, offset
, &h
, sizeof(h
)) != sizeof(h
))
1906 offset
+= sizeof(h
);
1907 if (bdrv_pwrite(s
->hd
, offset
, sn
->id_str
, id_str_size
) != id_str_size
)
1909 offset
+= id_str_size
;
1910 if (bdrv_pwrite(s
->hd
, offset
, sn
->name
, name_size
) != name_size
)
1912 offset
+= name_size
;
1915 /* update the various header fields */
1916 data64
= cpu_to_be64(snapshots_offset
);
1917 if (bdrv_pwrite(s
->hd
, offsetof(QCowHeader
, snapshots_offset
),
1918 &data64
, sizeof(data64
)) != sizeof(data64
))
1920 data32
= cpu_to_be32(s
->nb_snapshots
);
1921 if (bdrv_pwrite(s
->hd
, offsetof(QCowHeader
, nb_snapshots
),
1922 &data32
, sizeof(data32
)) != sizeof(data32
))
1925 /* free the old snapshot table */
1926 free_clusters(bs
, s
->snapshots_offset
, s
->snapshots_size
);
1927 s
->snapshots_offset
= snapshots_offset
;
1928 s
->snapshots_size
= snapshots_size
;
1934 static void find_new_snapshot_id(BlockDriverState
*bs
,
1935 char *id_str
, int id_str_size
)
1937 BDRVQcowState
*s
= bs
->opaque
;
1939 int i
, id
, id_max
= 0;
1941 for(i
= 0; i
< s
->nb_snapshots
; i
++) {
1942 sn
= s
->snapshots
+ i
;
1943 id
= strtoul(sn
->id_str
, NULL
, 10);
1947 snprintf(id_str
, id_str_size
, "%d", id_max
+ 1);
1950 static int find_snapshot_by_id(BlockDriverState
*bs
, const char *id_str
)
1952 BDRVQcowState
*s
= bs
->opaque
;
1955 for(i
= 0; i
< s
->nb_snapshots
; i
++) {
1956 if (!strcmp(s
->snapshots
[i
].id_str
, id_str
))
1962 static int find_snapshot_by_id_or_name(BlockDriverState
*bs
, const char *name
)
1964 BDRVQcowState
*s
= bs
->opaque
;
1967 ret
= find_snapshot_by_id(bs
, name
);
1970 for(i
= 0; i
< s
->nb_snapshots
; i
++) {
1971 if (!strcmp(s
->snapshots
[i
].name
, name
))
1977 /* if no id is provided, a new one is constructed */
1978 static int qcow_snapshot_create(BlockDriverState
*bs
,
1979 QEMUSnapshotInfo
*sn_info
)
1981 BDRVQcowState
*s
= bs
->opaque
;
1982 QCowSnapshot
*snapshots1
, sn1
, *sn
= &sn1
;
1984 uint64_t *l1_table
= NULL
;
1986 memset(sn
, 0, sizeof(*sn
));
1988 if (sn_info
->id_str
[0] == '\0') {
1989 /* compute a new id */
1990 find_new_snapshot_id(bs
, sn_info
->id_str
, sizeof(sn_info
->id_str
));
1993 /* check that the ID is unique */
1994 if (find_snapshot_by_id(bs
, sn_info
->id_str
) >= 0)
1997 sn
->id_str
= qemu_strdup(sn_info
->id_str
);
2000 sn
->name
= qemu_strdup(sn_info
->name
);
2003 sn
->vm_state_size
= sn_info
->vm_state_size
;
2004 sn
->date_sec
= sn_info
->date_sec
;
2005 sn
->date_nsec
= sn_info
->date_nsec
;
2006 sn
->vm_clock_nsec
= sn_info
->vm_clock_nsec
;
2008 ret
= update_snapshot_refcount(bs
, s
->l1_table_offset
, s
->l1_size
, 1);
2012 /* create the L1 table of the snapshot */
2013 sn
->l1_table_offset
= alloc_clusters(bs
, s
->l1_size
* sizeof(uint64_t));
2014 sn
->l1_size
= s
->l1_size
;
2016 l1_table
= qemu_malloc(s
->l1_size
* sizeof(uint64_t));
2019 for(i
= 0; i
< s
->l1_size
; i
++) {
2020 l1_table
[i
] = cpu_to_be64(s
->l1_table
[i
]);
2022 if (bdrv_pwrite(s
->hd
, sn
->l1_table_offset
,
2023 l1_table
, s
->l1_size
* sizeof(uint64_t)) !=
2024 (s
->l1_size
* sizeof(uint64_t)))
2026 qemu_free(l1_table
);
2029 snapshots1
= qemu_malloc((s
->nb_snapshots
+ 1) * sizeof(QCowSnapshot
));
2033 memcpy(snapshots1
, s
->snapshots
, s
->nb_snapshots
* sizeof(QCowSnapshot
));
2034 qemu_free(s
->snapshots
);
2036 s
->snapshots
= snapshots1
;
2037 s
->snapshots
[s
->nb_snapshots
++] = *sn
;
2039 if (qcow_write_snapshots(bs
) < 0)
2042 check_refcounts(bs
);
2046 qemu_free(sn
->name
);
2047 qemu_free(l1_table
);
2051 /* copy the snapshot 'snapshot_name' into the current disk image */
2052 static int qcow_snapshot_goto(BlockDriverState
*bs
,
2053 const char *snapshot_id
)
2055 BDRVQcowState
*s
= bs
->opaque
;
2057 int i
, snapshot_index
, l1_size2
;
2059 snapshot_index
= find_snapshot_by_id_or_name(bs
, snapshot_id
);
2060 if (snapshot_index
< 0)
2062 sn
= &s
->snapshots
[snapshot_index
];
2064 if (update_snapshot_refcount(bs
, s
->l1_table_offset
, s
->l1_size
, -1) < 0)
2067 if (grow_l1_table(bs
, sn
->l1_size
) < 0)
2070 s
->l1_size
= sn
->l1_size
;
2071 l1_size2
= s
->l1_size
* sizeof(uint64_t);
2072 /* copy the snapshot l1 table to the current l1 table */
2073 if (bdrv_pread(s
->hd
, sn
->l1_table_offset
,
2074 s
->l1_table
, l1_size2
) != l1_size2
)
2076 if (bdrv_pwrite(s
->hd
, s
->l1_table_offset
,
2077 s
->l1_table
, l1_size2
) != l1_size2
)
2079 for(i
= 0;i
< s
->l1_size
; i
++) {
2080 be64_to_cpus(&s
->l1_table
[i
]);
2083 if (update_snapshot_refcount(bs
, s
->l1_table_offset
, s
->l1_size
, 1) < 0)
2087 check_refcounts(bs
);
2094 static int qcow_snapshot_delete(BlockDriverState
*bs
, const char *snapshot_id
)
2096 BDRVQcowState
*s
= bs
->opaque
;
2098 int snapshot_index
, ret
;
2100 snapshot_index
= find_snapshot_by_id_or_name(bs
, snapshot_id
);
2101 if (snapshot_index
< 0)
2103 sn
= &s
->snapshots
[snapshot_index
];
2105 ret
= update_snapshot_refcount(bs
, sn
->l1_table_offset
, sn
->l1_size
, -1);
2108 /* must update the copied flag on the current cluster offsets */
2109 ret
= update_snapshot_refcount(bs
, s
->l1_table_offset
, s
->l1_size
, 0);
2112 free_clusters(bs
, sn
->l1_table_offset
, sn
->l1_size
* sizeof(uint64_t));
2114 qemu_free(sn
->id_str
);
2115 qemu_free(sn
->name
);
2116 memmove(sn
, sn
+ 1, (s
->nb_snapshots
- snapshot_index
- 1) * sizeof(*sn
));
2118 ret
= qcow_write_snapshots(bs
);
2120 /* XXX: restore snapshot if error ? */
2124 check_refcounts(bs
);
2129 static int qcow_snapshot_list(BlockDriverState
*bs
,
2130 QEMUSnapshotInfo
**psn_tab
)
2132 BDRVQcowState
*s
= bs
->opaque
;
2133 QEMUSnapshotInfo
*sn_tab
, *sn_info
;
2137 sn_tab
= qemu_mallocz(s
->nb_snapshots
* sizeof(QEMUSnapshotInfo
));
2140 for(i
= 0; i
< s
->nb_snapshots
; i
++) {
2141 sn_info
= sn_tab
+ i
;
2142 sn
= s
->snapshots
+ i
;
2143 pstrcpy(sn_info
->id_str
, sizeof(sn_info
->id_str
),
2145 pstrcpy(sn_info
->name
, sizeof(sn_info
->name
),
2147 sn_info
->vm_state_size
= sn
->vm_state_size
;
2148 sn_info
->date_sec
= sn
->date_sec
;
2149 sn_info
->date_nsec
= sn
->date_nsec
;
2150 sn_info
->vm_clock_nsec
= sn
->vm_clock_nsec
;
2153 return s
->nb_snapshots
;
2160 /*********************************************************/
2161 /* refcount handling */
2163 static int refcount_init(BlockDriverState
*bs
)
2165 BDRVQcowState
*s
= bs
->opaque
;
2166 int ret
, refcount_table_size2
, i
;
2168 s
->refcount_block_cache
= qemu_malloc(s
->cluster_size
);
2169 if (!s
->refcount_block_cache
)
2171 refcount_table_size2
= s
->refcount_table_size
* sizeof(uint64_t);
2172 s
->refcount_table
= qemu_malloc(refcount_table_size2
);
2173 if (!s
->refcount_table
)
2175 if (s
->refcount_table_size
> 0) {
2176 ret
= bdrv_pread(s
->hd
, s
->refcount_table_offset
,
2177 s
->refcount_table
, refcount_table_size2
);
2178 if (ret
!= refcount_table_size2
)
2180 for(i
= 0; i
< s
->refcount_table_size
; i
++)
2181 be64_to_cpus(&s
->refcount_table
[i
]);
2188 static void refcount_close(BlockDriverState
*bs
)
2190 BDRVQcowState
*s
= bs
->opaque
;
2191 qemu_free(s
->refcount_block_cache
);
2192 qemu_free(s
->refcount_table
);
2196 static int load_refcount_block(BlockDriverState
*bs
,
2197 int64_t refcount_block_offset
)
2199 BDRVQcowState
*s
= bs
->opaque
;
2201 ret
= bdrv_pread(s
->hd
, refcount_block_offset
, s
->refcount_block_cache
,
2203 if (ret
!= s
->cluster_size
)
2205 s
->refcount_block_cache_offset
= refcount_block_offset
;
2209 static int get_refcount(BlockDriverState
*bs
, int64_t cluster_index
)
2211 BDRVQcowState
*s
= bs
->opaque
;
2212 int refcount_table_index
, block_index
;
2213 int64_t refcount_block_offset
;
2215 refcount_table_index
= cluster_index
>> (s
->cluster_bits
- REFCOUNT_SHIFT
);
2216 if (refcount_table_index
>= s
->refcount_table_size
)
2218 refcount_block_offset
= s
->refcount_table
[refcount_table_index
];
2219 if (!refcount_block_offset
)
2221 if (refcount_block_offset
!= s
->refcount_block_cache_offset
) {
2222 /* better than nothing: return allocated if read error */
2223 if (load_refcount_block(bs
, refcount_block_offset
) < 0)
2226 block_index
= cluster_index
&
2227 ((1 << (s
->cluster_bits
- REFCOUNT_SHIFT
)) - 1);
2228 return be16_to_cpu(s
->refcount_block_cache
[block_index
]);
2231 /* return < 0 if error */
2232 static int64_t alloc_clusters_noref(BlockDriverState
*bs
, int64_t size
)
2234 BDRVQcowState
*s
= bs
->opaque
;
2237 nb_clusters
= size_to_clusters(s
, size
);
2239 for(i
= 0; i
< nb_clusters
; i
++) {
2240 int64_t i
= s
->free_cluster_index
++;
2241 if (get_refcount(bs
, i
) != 0)
2245 printf("alloc_clusters: size=%lld -> %lld\n",
2247 (s
->free_cluster_index
- nb_clusters
) << s
->cluster_bits
);
2249 return (s
->free_cluster_index
- nb_clusters
) << s
->cluster_bits
;
2252 static int64_t alloc_clusters(BlockDriverState
*bs
, int64_t size
)
2256 offset
= alloc_clusters_noref(bs
, size
);
2257 update_refcount(bs
, offset
, size
, 1);
2261 /* only used to allocate compressed sectors. We try to allocate
2262 contiguous sectors. size must be <= cluster_size */
2263 static int64_t alloc_bytes(BlockDriverState
*bs
, int size
)
2265 BDRVQcowState
*s
= bs
->opaque
;
2266 int64_t offset
, cluster_offset
;
2267 int free_in_cluster
;
2269 assert(size
> 0 && size
<= s
->cluster_size
);
2270 if (s
->free_byte_offset
== 0) {
2271 s
->free_byte_offset
= alloc_clusters(bs
, s
->cluster_size
);
2274 free_in_cluster
= s
->cluster_size
-
2275 (s
->free_byte_offset
& (s
->cluster_size
- 1));
2276 if (size
<= free_in_cluster
) {
2277 /* enough space in current cluster */
2278 offset
= s
->free_byte_offset
;
2279 s
->free_byte_offset
+= size
;
2280 free_in_cluster
-= size
;
2281 if (free_in_cluster
== 0)
2282 s
->free_byte_offset
= 0;
2283 if ((offset
& (s
->cluster_size
- 1)) != 0)
2284 update_cluster_refcount(bs
, offset
>> s
->cluster_bits
, 1);
2286 offset
= alloc_clusters(bs
, s
->cluster_size
);
2287 cluster_offset
= s
->free_byte_offset
& ~(s
->cluster_size
- 1);
2288 if ((cluster_offset
+ s
->cluster_size
) == offset
) {
2289 /* we are lucky: contiguous data */
2290 offset
= s
->free_byte_offset
;
2291 update_cluster_refcount(bs
, offset
>> s
->cluster_bits
, 1);
2292 s
->free_byte_offset
+= size
;
2294 s
->free_byte_offset
= offset
;
2301 static void free_clusters(BlockDriverState
*bs
,
2302 int64_t offset
, int64_t size
)
2304 update_refcount(bs
, offset
, size
, -1);
2307 static int grow_refcount_table(BlockDriverState
*bs
, int min_size
)
2309 BDRVQcowState
*s
= bs
->opaque
;
2310 int new_table_size
, new_table_size2
, refcount_table_clusters
, i
, ret
;
2311 uint64_t *new_table
;
2312 int64_t table_offset
;
2315 int64_t old_table_offset
;
2317 if (min_size
<= s
->refcount_table_size
)
2319 /* compute new table size */
2320 refcount_table_clusters
= s
->refcount_table_size
>> (s
->cluster_bits
- 3);
2322 if (refcount_table_clusters
== 0) {
2323 refcount_table_clusters
= 1;
2325 refcount_table_clusters
= (refcount_table_clusters
* 3 + 1) / 2;
2327 new_table_size
= refcount_table_clusters
<< (s
->cluster_bits
- 3);
2328 if (min_size
<= new_table_size
)
2332 printf("grow_refcount_table from %d to %d\n",
2333 s
->refcount_table_size
,
2336 new_table_size2
= new_table_size
* sizeof(uint64_t);
2337 new_table
= qemu_mallocz(new_table_size2
);
2340 memcpy(new_table
, s
->refcount_table
,
2341 s
->refcount_table_size
* sizeof(uint64_t));
2342 for(i
= 0; i
< s
->refcount_table_size
; i
++)
2343 cpu_to_be64s(&new_table
[i
]);
2344 /* Note: we cannot update the refcount now to avoid recursion */
2345 table_offset
= alloc_clusters_noref(bs
, new_table_size2
);
2346 ret
= bdrv_pwrite(s
->hd
, table_offset
, new_table
, new_table_size2
);
2347 if (ret
!= new_table_size2
)
2349 for(i
= 0; i
< s
->refcount_table_size
; i
++)
2350 be64_to_cpus(&new_table
[i
]);
2352 cpu_to_be64w((uint64_t*)data
, table_offset
);
2353 cpu_to_be32w((uint32_t*)(data
+ 8), refcount_table_clusters
);
2354 if (bdrv_pwrite(s
->hd
, offsetof(QCowHeader
, refcount_table_offset
),
2355 data
, sizeof(data
)) != sizeof(data
))
2357 qemu_free(s
->refcount_table
);
2358 old_table_offset
= s
->refcount_table_offset
;
2359 old_table_size
= s
->refcount_table_size
;
2360 s
->refcount_table
= new_table
;
2361 s
->refcount_table_size
= new_table_size
;
2362 s
->refcount_table_offset
= table_offset
;
2364 update_refcount(bs
, table_offset
, new_table_size2
, 1);
2365 free_clusters(bs
, old_table_offset
, old_table_size
* sizeof(uint64_t));
2368 free_clusters(bs
, table_offset
, new_table_size2
);
2369 qemu_free(new_table
);
2373 /* addend must be 1 or -1 */
2374 /* XXX: cache several refcount block clusters ? */
2375 static int update_cluster_refcount(BlockDriverState
*bs
,
2376 int64_t cluster_index
,
2379 BDRVQcowState
*s
= bs
->opaque
;
2380 int64_t offset
, refcount_block_offset
;
2381 int ret
, refcount_table_index
, block_index
, refcount
;
2384 refcount_table_index
= cluster_index
>> (s
->cluster_bits
- REFCOUNT_SHIFT
);
2385 if (refcount_table_index
>= s
->refcount_table_size
) {
2388 ret
= grow_refcount_table(bs
, refcount_table_index
+ 1);
2392 refcount_block_offset
= s
->refcount_table
[refcount_table_index
];
2393 if (!refcount_block_offset
) {
2396 /* create a new refcount block */
2397 /* Note: we cannot update the refcount now to avoid recursion */
2398 offset
= alloc_clusters_noref(bs
, s
->cluster_size
);
2399 memset(s
->refcount_block_cache
, 0, s
->cluster_size
);
2400 ret
= bdrv_pwrite(s
->hd
, offset
, s
->refcount_block_cache
, s
->cluster_size
);
2401 if (ret
!= s
->cluster_size
)
2403 s
->refcount_table
[refcount_table_index
] = offset
;
2404 data64
= cpu_to_be64(offset
);
2405 ret
= bdrv_pwrite(s
->hd
, s
->refcount_table_offset
+
2406 refcount_table_index
* sizeof(uint64_t),
2407 &data64
, sizeof(data64
));
2408 if (ret
!= sizeof(data64
))
2411 refcount_block_offset
= offset
;
2412 s
->refcount_block_cache_offset
= offset
;
2413 update_refcount(bs
, offset
, s
->cluster_size
, 1);
2415 if (refcount_block_offset
!= s
->refcount_block_cache_offset
) {
2416 if (load_refcount_block(bs
, refcount_block_offset
) < 0)
2420 /* we can update the count and save it */
2421 block_index
= cluster_index
&
2422 ((1 << (s
->cluster_bits
- REFCOUNT_SHIFT
)) - 1);
2423 refcount
= be16_to_cpu(s
->refcount_block_cache
[block_index
]);
2425 if (refcount
< 0 || refcount
> 0xffff)
2427 if (refcount
== 0 && cluster_index
< s
->free_cluster_index
) {
2428 s
->free_cluster_index
= cluster_index
;
2430 s
->refcount_block_cache
[block_index
] = cpu_to_be16(refcount
);
2431 if (bdrv_pwrite(s
->hd
,
2432 refcount_block_offset
+ (block_index
<< REFCOUNT_SHIFT
),
2433 &s
->refcount_block_cache
[block_index
], 2) != 2)
2438 static void update_refcount(BlockDriverState
*bs
,
2439 int64_t offset
, int64_t length
,
2442 BDRVQcowState
*s
= bs
->opaque
;
2443 int64_t start
, last
, cluster_offset
;
2446 printf("update_refcount: offset=%lld size=%lld addend=%d\n",
2447 offset
, length
, addend
);
2451 start
= offset
& ~(s
->cluster_size
- 1);
2452 last
= (offset
+ length
- 1) & ~(s
->cluster_size
- 1);
2453 for(cluster_offset
= start
; cluster_offset
<= last
;
2454 cluster_offset
+= s
->cluster_size
) {
2455 update_cluster_refcount(bs
, cluster_offset
>> s
->cluster_bits
, addend
);
2460 static void inc_refcounts(BlockDriverState
*bs
,
2461 uint16_t *refcount_table
,
2462 int refcount_table_size
,
2463 int64_t offset
, int64_t size
)
2465 BDRVQcowState
*s
= bs
->opaque
;
2466 int64_t start
, last
, cluster_offset
;
2472 start
= offset
& ~(s
->cluster_size
- 1);
2473 last
= (offset
+ size
- 1) & ~(s
->cluster_size
- 1);
2474 for(cluster_offset
= start
; cluster_offset
<= last
;
2475 cluster_offset
+= s
->cluster_size
) {
2476 k
= cluster_offset
>> s
->cluster_bits
;
2477 if (k
< 0 || k
>= refcount_table_size
) {
2478 printf("ERROR: invalid cluster offset=0x%llx\n", cluster_offset
);
2480 if (++refcount_table
[k
] == 0) {
2481 printf("ERROR: overflow cluster offset=0x%llx\n", cluster_offset
);
2487 static int check_refcounts_l1(BlockDriverState
*bs
,
2488 uint16_t *refcount_table
,
2489 int refcount_table_size
,
2490 int64_t l1_table_offset
, int l1_size
,
2493 BDRVQcowState
*s
= bs
->opaque
;
2494 uint64_t *l1_table
, *l2_table
, l2_offset
, offset
, l1_size2
;
2495 int l2_size
, i
, j
, nb_csectors
, refcount
;
2498 l1_size2
= l1_size
* sizeof(uint64_t);
2500 inc_refcounts(bs
, refcount_table
, refcount_table_size
,
2501 l1_table_offset
, l1_size2
);
2503 l1_table
= qemu_malloc(l1_size2
);
2506 if (bdrv_pread(s
->hd
, l1_table_offset
,
2507 l1_table
, l1_size2
) != l1_size2
)
2509 for(i
= 0;i
< l1_size
; i
++)
2510 be64_to_cpus(&l1_table
[i
]);
2512 l2_size
= s
->l2_size
* sizeof(uint64_t);
2513 l2_table
= qemu_malloc(l2_size
);
2516 for(i
= 0; i
< l1_size
; i
++) {
2517 l2_offset
= l1_table
[i
];
2520 refcount
= get_refcount(bs
, (l2_offset
& ~QCOW_OFLAG_COPIED
) >> s
->cluster_bits
);
2521 if ((refcount
== 1) != ((l2_offset
& QCOW_OFLAG_COPIED
) != 0)) {
2522 printf("ERROR OFLAG_COPIED: l2_offset=%llx refcount=%d\n",
2523 l2_offset
, refcount
);
2526 l2_offset
&= ~QCOW_OFLAG_COPIED
;
2527 if (bdrv_pread(s
->hd
, l2_offset
, l2_table
, l2_size
) != l2_size
)
2529 for(j
= 0; j
< s
->l2_size
; j
++) {
2530 offset
= be64_to_cpu(l2_table
[j
]);
2532 if (offset
& QCOW_OFLAG_COMPRESSED
) {
2533 if (offset
& QCOW_OFLAG_COPIED
) {
2534 printf("ERROR: cluster %lld: copied flag must never be set for compressed clusters\n",
2535 offset
>> s
->cluster_bits
);
2536 offset
&= ~QCOW_OFLAG_COPIED
;
2538 nb_csectors
= ((offset
>> s
->csize_shift
) &
2540 offset
&= s
->cluster_offset_mask
;
2541 inc_refcounts(bs
, refcount_table
,
2542 refcount_table_size
,
2543 offset
& ~511, nb_csectors
* 512);
2546 refcount
= get_refcount(bs
, (offset
& ~QCOW_OFLAG_COPIED
) >> s
->cluster_bits
);
2547 if ((refcount
== 1) != ((offset
& QCOW_OFLAG_COPIED
) != 0)) {
2548 printf("ERROR OFLAG_COPIED: offset=%llx refcount=%d\n",
2552 offset
&= ~QCOW_OFLAG_COPIED
;
2553 inc_refcounts(bs
, refcount_table
,
2554 refcount_table_size
,
2555 offset
, s
->cluster_size
);
2559 inc_refcounts(bs
, refcount_table
,
2560 refcount_table_size
,
2565 qemu_free(l1_table
);
2566 qemu_free(l2_table
);
2569 printf("ERROR: I/O error in check_refcounts_l1\n");
2570 qemu_free(l1_table
);
2571 qemu_free(l2_table
);
2575 static void check_refcounts(BlockDriverState
*bs
)
2577 BDRVQcowState
*s
= bs
->opaque
;
2579 int nb_clusters
, refcount1
, refcount2
, i
;
2581 uint16_t *refcount_table
;
2583 size
= bdrv_getlength(s
->hd
);
2584 nb_clusters
= size_to_clusters(s
, size
);
2585 refcount_table
= qemu_mallocz(nb_clusters
* sizeof(uint16_t));
2588 inc_refcounts(bs
, refcount_table
, nb_clusters
,
2589 0, s
->cluster_size
);
2591 check_refcounts_l1(bs
, refcount_table
, nb_clusters
,
2592 s
->l1_table_offset
, s
->l1_size
, 1);
2595 for(i
= 0; i
< s
->nb_snapshots
; i
++) {
2596 sn
= s
->snapshots
+ i
;
2597 check_refcounts_l1(bs
, refcount_table
, nb_clusters
,
2598 sn
->l1_table_offset
, sn
->l1_size
, 0);
2600 inc_refcounts(bs
, refcount_table
, nb_clusters
,
2601 s
->snapshots_offset
, s
->snapshots_size
);
2604 inc_refcounts(bs
, refcount_table
, nb_clusters
,
2605 s
->refcount_table_offset
,
2606 s
->refcount_table_size
* sizeof(uint64_t));
2607 for(i
= 0; i
< s
->refcount_table_size
; i
++) {
2609 offset
= s
->refcount_table
[i
];
2611 inc_refcounts(bs
, refcount_table
, nb_clusters
,
2612 offset
, s
->cluster_size
);
2616 /* compare ref counts */
2617 for(i
= 0; i
< nb_clusters
; i
++) {
2618 refcount1
= get_refcount(bs
, i
);
2619 refcount2
= refcount_table
[i
];
2620 if (refcount1
!= refcount2
)
2621 printf("ERROR cluster %d refcount=%d reference=%d\n",
2622 i
, refcount1
, refcount2
);
2625 qemu_free(refcount_table
);
2629 static void dump_refcounts(BlockDriverState
*bs
)
2631 BDRVQcowState
*s
= bs
->opaque
;
2632 int64_t nb_clusters
, k
, k1
, size
;
2635 size
= bdrv_getlength(s
->hd
);
2636 nb_clusters
= size_to_clusters(s
, size
);
2637 for(k
= 0; k
< nb_clusters
;) {
2639 refcount
= get_refcount(bs
, k
);
2641 while (k
< nb_clusters
&& get_refcount(bs
, k
) == refcount
)
2643 printf("%lld: refcount=%d nb=%lld\n", k
, refcount
, k
- k1
);
2649 BlockDriver bdrv_qcow2
= {
2651 sizeof(BDRVQcowState
),
2663 .bdrv_aio_read
= qcow_aio_read
,
2664 .bdrv_aio_write
= qcow_aio_write
,
2665 .bdrv_aio_cancel
= qcow_aio_cancel
,
2666 .aiocb_size
= sizeof(QCowAIOCB
),
2667 .bdrv_write_compressed
= qcow_write_compressed
,
2669 .bdrv_snapshot_create
= qcow_snapshot_create
,
2670 .bdrv_snapshot_goto
= qcow_snapshot_goto
,
2671 .bdrv_snapshot_delete
= qcow_snapshot_delete
,
2672 .bdrv_snapshot_list
= qcow_snapshot_list
,
2673 .bdrv_get_info
= qcow_get_info
,