2 * Block layer I/O functions
4 * Copyright (c) 2003 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
25 #include "qemu/osdep.h"
27 #include "sysemu/block-backend.h"
28 #include "block/aio-wait.h"
29 #include "block/blockjob.h"
30 #include "block/blockjob_int.h"
31 #include "block/block_int.h"
32 #include "qemu/cutils.h"
33 #include "qapi/error.h"
34 #include "qemu/error-report.h"
36 #define NOT_DONE 0x7fffffff /* used while emulated sync operation in progress */
38 /* Maximum bounce buffer for copy-on-read and write zeroes, in bytes */
39 #define MAX_BOUNCE_BUFFER (32768 << BDRV_SECTOR_BITS)
41 static int coroutine_fn
bdrv_co_do_pwrite_zeroes(BlockDriverState
*bs
,
42 int64_t offset
, int bytes
, BdrvRequestFlags flags
);
44 void bdrv_parent_drained_begin(BlockDriverState
*bs
, BdrvChild
*ignore
)
48 QLIST_FOREACH_SAFE(c
, &bs
->parents
, next_parent
, next
) {
52 if (c
->role
->drained_begin
) {
53 c
->role
->drained_begin(c
);
58 void bdrv_parent_drained_end(BlockDriverState
*bs
, BdrvChild
*ignore
)
62 QLIST_FOREACH_SAFE(c
, &bs
->parents
, next_parent
, next
) {
66 if (c
->role
->drained_end
) {
67 c
->role
->drained_end(c
);
72 static void bdrv_merge_limits(BlockLimits
*dst
, const BlockLimits
*src
)
74 dst
->opt_transfer
= MAX(dst
->opt_transfer
, src
->opt_transfer
);
75 dst
->max_transfer
= MIN_NON_ZERO(dst
->max_transfer
, src
->max_transfer
);
76 dst
->opt_mem_alignment
= MAX(dst
->opt_mem_alignment
,
77 src
->opt_mem_alignment
);
78 dst
->min_mem_alignment
= MAX(dst
->min_mem_alignment
,
79 src
->min_mem_alignment
);
80 dst
->max_iov
= MIN_NON_ZERO(dst
->max_iov
, src
->max_iov
);
83 void bdrv_refresh_limits(BlockDriverState
*bs
, Error
**errp
)
85 BlockDriver
*drv
= bs
->drv
;
86 Error
*local_err
= NULL
;
88 memset(&bs
->bl
, 0, sizeof(bs
->bl
));
94 /* Default alignment based on whether driver has byte interface */
95 bs
->bl
.request_alignment
= drv
->bdrv_co_preadv
? 1 : 512;
97 /* Take some limits from the children as a default */
99 bdrv_refresh_limits(bs
->file
->bs
, &local_err
);
101 error_propagate(errp
, local_err
);
104 bdrv_merge_limits(&bs
->bl
, &bs
->file
->bs
->bl
);
106 bs
->bl
.min_mem_alignment
= 512;
107 bs
->bl
.opt_mem_alignment
= getpagesize();
109 /* Safe default since most protocols use readv()/writev()/etc */
110 bs
->bl
.max_iov
= IOV_MAX
;
114 bdrv_refresh_limits(bs
->backing
->bs
, &local_err
);
116 error_propagate(errp
, local_err
);
119 bdrv_merge_limits(&bs
->bl
, &bs
->backing
->bs
->bl
);
122 /* Then let the driver override it */
123 if (drv
->bdrv_refresh_limits
) {
124 drv
->bdrv_refresh_limits(bs
, errp
);
129 * The copy-on-read flag is actually a reference count so multiple users may
130 * use the feature without worrying about clobbering its previous state.
131 * Copy-on-read stays enabled until all users have called to disable it.
133 void bdrv_enable_copy_on_read(BlockDriverState
*bs
)
135 atomic_inc(&bs
->copy_on_read
);
138 void bdrv_disable_copy_on_read(BlockDriverState
*bs
)
140 int old
= atomic_fetch_dec(&bs
->copy_on_read
);
146 BlockDriverState
*bs
;
153 static void coroutine_fn
bdrv_drain_invoke_entry(void *opaque
)
155 BdrvCoDrainData
*data
= opaque
;
156 BlockDriverState
*bs
= data
->bs
;
159 bs
->drv
->bdrv_co_drain_begin(bs
);
161 bs
->drv
->bdrv_co_drain_end(bs
);
164 /* Set data->done before reading bs->wakeup. */
165 atomic_mb_set(&data
->done
, true);
169 /* Recursively call BlockDriver.bdrv_co_drain_begin/end callbacks */
170 static void bdrv_drain_invoke(BlockDriverState
*bs
, bool begin
, bool recursive
)
172 BdrvChild
*child
, *tmp
;
173 BdrvCoDrainData data
= { .bs
= bs
, .done
= false, .begin
= begin
};
175 if (!bs
->drv
|| (begin
&& !bs
->drv
->bdrv_co_drain_begin
) ||
176 (!begin
&& !bs
->drv
->bdrv_co_drain_end
)) {
180 data
.co
= qemu_coroutine_create(bdrv_drain_invoke_entry
, &data
);
181 bdrv_coroutine_enter(bs
, data
.co
);
182 BDRV_POLL_WHILE(bs
, !data
.done
);
185 QLIST_FOREACH_SAFE(child
, &bs
->children
, next
, tmp
) {
186 bdrv_drain_invoke(child
->bs
, begin
, true);
191 static bool bdrv_drain_recurse(BlockDriverState
*bs
)
193 BdrvChild
*child
, *tmp
;
196 /* Wait for drained requests to finish */
197 waited
= BDRV_POLL_WHILE(bs
, atomic_read(&bs
->in_flight
) > 0);
199 QLIST_FOREACH_SAFE(child
, &bs
->children
, next
, tmp
) {
200 BlockDriverState
*bs
= child
->bs
;
202 qemu_get_current_aio_context() == qemu_get_aio_context();
203 assert(bs
->refcnt
> 0);
205 /* In case the recursive bdrv_drain_recurse processes a
206 * block_job_defer_to_main_loop BH and modifies the graph,
207 * let's hold a reference to bs until we are done.
209 * IOThread doesn't have such a BH, and it is not safe to call
210 * bdrv_unref without BQL, so skip doing it there.
214 waited
|= bdrv_drain_recurse(bs
);
223 static void bdrv_do_drained_begin(BlockDriverState
*bs
, bool recursive
,
225 static void bdrv_do_drained_end(BlockDriverState
*bs
, bool recursive
,
228 static void bdrv_co_drain_bh_cb(void *opaque
)
230 BdrvCoDrainData
*data
= opaque
;
231 Coroutine
*co
= data
->co
;
232 BlockDriverState
*bs
= data
->bs
;
234 bdrv_dec_in_flight(bs
);
236 bdrv_do_drained_begin(bs
, data
->recursive
, data
->parent
);
238 bdrv_do_drained_end(bs
, data
->recursive
, data
->parent
);
245 static void coroutine_fn
bdrv_co_yield_to_drain(BlockDriverState
*bs
,
246 bool begin
, bool recursive
,
249 BdrvCoDrainData data
;
251 /* Calling bdrv_drain() from a BH ensures the current coroutine yields and
252 * other coroutines run if they were queued by aio_co_enter(). */
254 assert(qemu_in_coroutine());
255 data
= (BdrvCoDrainData
) {
256 .co
= qemu_coroutine_self(),
260 .recursive
= recursive
,
263 bdrv_inc_in_flight(bs
);
264 aio_bh_schedule_oneshot(bdrv_get_aio_context(bs
),
265 bdrv_co_drain_bh_cb
, &data
);
267 qemu_coroutine_yield();
268 /* If we are resumed from some other event (such as an aio completion or a
269 * timer callback), it is a bug in the caller that should be fixed. */
273 void bdrv_do_drained_begin(BlockDriverState
*bs
, bool recursive
,
276 BdrvChild
*child
, *next
;
278 if (qemu_in_coroutine()) {
279 bdrv_co_yield_to_drain(bs
, true, recursive
, parent
);
283 /* Stop things in parent-to-child order */
284 if (atomic_fetch_inc(&bs
->quiesce_counter
) == 0) {
285 aio_disable_external(bdrv_get_aio_context(bs
));
288 bdrv_parent_drained_begin(bs
, parent
);
289 bdrv_drain_invoke(bs
, true, false);
290 bdrv_drain_recurse(bs
);
293 bs
->recursive_quiesce_counter
++;
294 QLIST_FOREACH_SAFE(child
, &bs
->children
, next
, next
) {
295 bdrv_do_drained_begin(child
->bs
, true, child
);
300 void bdrv_drained_begin(BlockDriverState
*bs
)
302 bdrv_do_drained_begin(bs
, false, NULL
);
305 void bdrv_subtree_drained_begin(BlockDriverState
*bs
)
307 bdrv_do_drained_begin(bs
, true, NULL
);
310 void bdrv_do_drained_end(BlockDriverState
*bs
, bool recursive
,
313 BdrvChild
*child
, *next
;
314 int old_quiesce_counter
;
316 if (qemu_in_coroutine()) {
317 bdrv_co_yield_to_drain(bs
, false, recursive
, parent
);
320 assert(bs
->quiesce_counter
> 0);
321 old_quiesce_counter
= atomic_fetch_dec(&bs
->quiesce_counter
);
323 /* Re-enable things in child-to-parent order */
324 bdrv_drain_invoke(bs
, false, false);
325 bdrv_parent_drained_end(bs
, parent
);
326 if (old_quiesce_counter
== 1) {
327 aio_enable_external(bdrv_get_aio_context(bs
));
331 bs
->recursive_quiesce_counter
--;
332 QLIST_FOREACH_SAFE(child
, &bs
->children
, next
, next
) {
333 bdrv_do_drained_end(child
->bs
, true, child
);
338 void bdrv_drained_end(BlockDriverState
*bs
)
340 bdrv_do_drained_end(bs
, false, NULL
);
343 void bdrv_subtree_drained_end(BlockDriverState
*bs
)
345 bdrv_do_drained_end(bs
, true, NULL
);
348 void bdrv_apply_subtree_drain(BdrvChild
*child
, BlockDriverState
*new_parent
)
352 for (i
= 0; i
< new_parent
->recursive_quiesce_counter
; i
++) {
353 bdrv_do_drained_begin(child
->bs
, true, child
);
357 void bdrv_unapply_subtree_drain(BdrvChild
*child
, BlockDriverState
*old_parent
)
361 for (i
= 0; i
< old_parent
->recursive_quiesce_counter
; i
++) {
362 bdrv_do_drained_end(child
->bs
, true, child
);
367 * Wait for pending requests to complete on a single BlockDriverState subtree,
368 * and suspend block driver's internal I/O until next request arrives.
370 * Note that unlike bdrv_drain_all(), the caller must hold the BlockDriverState
373 * Only this BlockDriverState's AioContext is run, so in-flight requests must
374 * not depend on events in other AioContexts. In that case, use
375 * bdrv_drain_all() instead.
377 void coroutine_fn
bdrv_co_drain(BlockDriverState
*bs
)
379 assert(qemu_in_coroutine());
380 bdrv_drained_begin(bs
);
381 bdrv_drained_end(bs
);
384 void bdrv_drain(BlockDriverState
*bs
)
386 bdrv_drained_begin(bs
);
387 bdrv_drained_end(bs
);
391 * Wait for pending requests to complete across all BlockDriverStates
393 * This function does not flush data to disk, use bdrv_flush_all() for that
394 * after calling this function.
396 * This pauses all block jobs and disables external clients. It must
397 * be paired with bdrv_drain_all_end().
399 * NOTE: no new block jobs or BlockDriverStates can be created between
400 * the bdrv_drain_all_begin() and bdrv_drain_all_end() calls.
402 void bdrv_drain_all_begin(void)
404 /* Always run first iteration so any pending completion BHs run */
406 BlockDriverState
*bs
;
408 GSList
*aio_ctxs
= NULL
, *ctx
;
410 /* BDRV_POLL_WHILE() for a node can only be called from its own I/O thread
411 * or the main loop AioContext. We potentially use BDRV_POLL_WHILE() on
412 * nodes in several different AioContexts, so make sure we're in the main
414 assert(qemu_get_current_aio_context() == qemu_get_aio_context());
416 for (bs
= bdrv_first(&it
); bs
; bs
= bdrv_next(&it
)) {
417 AioContext
*aio_context
= bdrv_get_aio_context(bs
);
419 /* Stop things in parent-to-child order */
420 aio_context_acquire(aio_context
);
421 aio_disable_external(aio_context
);
422 bdrv_parent_drained_begin(bs
, NULL
);
423 bdrv_drain_invoke(bs
, true, true);
424 aio_context_release(aio_context
);
426 if (!g_slist_find(aio_ctxs
, aio_context
)) {
427 aio_ctxs
= g_slist_prepend(aio_ctxs
, aio_context
);
431 /* Note that completion of an asynchronous I/O operation can trigger any
432 * number of other I/O operations on other devices---for example a
433 * coroutine can submit an I/O request to another device in response to
434 * request completion. Therefore we must keep looping until there was no
435 * more activity rather than simply draining each device independently.
440 for (ctx
= aio_ctxs
; ctx
!= NULL
; ctx
= ctx
->next
) {
441 AioContext
*aio_context
= ctx
->data
;
443 aio_context_acquire(aio_context
);
444 for (bs
= bdrv_first(&it
); bs
; bs
= bdrv_next(&it
)) {
445 if (aio_context
== bdrv_get_aio_context(bs
)) {
446 waited
|= bdrv_drain_recurse(bs
);
449 aio_context_release(aio_context
);
453 g_slist_free(aio_ctxs
);
456 void bdrv_drain_all_end(void)
458 BlockDriverState
*bs
;
461 for (bs
= bdrv_first(&it
); bs
; bs
= bdrv_next(&it
)) {
462 AioContext
*aio_context
= bdrv_get_aio_context(bs
);
464 /* Re-enable things in child-to-parent order */
465 aio_context_acquire(aio_context
);
466 bdrv_drain_invoke(bs
, false, true);
467 bdrv_parent_drained_end(bs
, NULL
);
468 aio_enable_external(aio_context
);
469 aio_context_release(aio_context
);
473 void bdrv_drain_all(void)
475 bdrv_drain_all_begin();
476 bdrv_drain_all_end();
480 * Remove an active request from the tracked requests list
482 * This function should be called when a tracked request is completing.
484 static void tracked_request_end(BdrvTrackedRequest
*req
)
486 if (req
->serialising
) {
487 atomic_dec(&req
->bs
->serialising_in_flight
);
490 qemu_co_mutex_lock(&req
->bs
->reqs_lock
);
491 QLIST_REMOVE(req
, list
);
492 qemu_co_queue_restart_all(&req
->wait_queue
);
493 qemu_co_mutex_unlock(&req
->bs
->reqs_lock
);
497 * Add an active request to the tracked requests list
499 static void tracked_request_begin(BdrvTrackedRequest
*req
,
500 BlockDriverState
*bs
,
503 enum BdrvTrackedRequestType type
)
505 *req
= (BdrvTrackedRequest
){
510 .co
= qemu_coroutine_self(),
511 .serialising
= false,
512 .overlap_offset
= offset
,
513 .overlap_bytes
= bytes
,
516 qemu_co_queue_init(&req
->wait_queue
);
518 qemu_co_mutex_lock(&bs
->reqs_lock
);
519 QLIST_INSERT_HEAD(&bs
->tracked_requests
, req
, list
);
520 qemu_co_mutex_unlock(&bs
->reqs_lock
);
523 static void mark_request_serialising(BdrvTrackedRequest
*req
, uint64_t align
)
525 int64_t overlap_offset
= req
->offset
& ~(align
- 1);
526 unsigned int overlap_bytes
= ROUND_UP(req
->offset
+ req
->bytes
, align
)
529 if (!req
->serialising
) {
530 atomic_inc(&req
->bs
->serialising_in_flight
);
531 req
->serialising
= true;
534 req
->overlap_offset
= MIN(req
->overlap_offset
, overlap_offset
);
535 req
->overlap_bytes
= MAX(req
->overlap_bytes
, overlap_bytes
);
539 * Round a region to cluster boundaries
541 void bdrv_round_to_clusters(BlockDriverState
*bs
,
542 int64_t offset
, int64_t bytes
,
543 int64_t *cluster_offset
,
544 int64_t *cluster_bytes
)
548 if (bdrv_get_info(bs
, &bdi
) < 0 || bdi
.cluster_size
== 0) {
549 *cluster_offset
= offset
;
550 *cluster_bytes
= bytes
;
552 int64_t c
= bdi
.cluster_size
;
553 *cluster_offset
= QEMU_ALIGN_DOWN(offset
, c
);
554 *cluster_bytes
= QEMU_ALIGN_UP(offset
- *cluster_offset
+ bytes
, c
);
558 static int bdrv_get_cluster_size(BlockDriverState
*bs
)
563 ret
= bdrv_get_info(bs
, &bdi
);
564 if (ret
< 0 || bdi
.cluster_size
== 0) {
565 return bs
->bl
.request_alignment
;
567 return bdi
.cluster_size
;
571 static bool tracked_request_overlaps(BdrvTrackedRequest
*req
,
572 int64_t offset
, unsigned int bytes
)
575 if (offset
>= req
->overlap_offset
+ req
->overlap_bytes
) {
579 if (req
->overlap_offset
>= offset
+ bytes
) {
585 void bdrv_inc_in_flight(BlockDriverState
*bs
)
587 atomic_inc(&bs
->in_flight
);
590 void bdrv_wakeup(BlockDriverState
*bs
)
592 aio_wait_kick(bdrv_get_aio_wait(bs
));
595 void bdrv_dec_in_flight(BlockDriverState
*bs
)
597 atomic_dec(&bs
->in_flight
);
601 static bool coroutine_fn
wait_serialising_requests(BdrvTrackedRequest
*self
)
603 BlockDriverState
*bs
= self
->bs
;
604 BdrvTrackedRequest
*req
;
608 if (!atomic_read(&bs
->serialising_in_flight
)) {
614 qemu_co_mutex_lock(&bs
->reqs_lock
);
615 QLIST_FOREACH(req
, &bs
->tracked_requests
, list
) {
616 if (req
== self
|| (!req
->serialising
&& !self
->serialising
)) {
619 if (tracked_request_overlaps(req
, self
->overlap_offset
,
620 self
->overlap_bytes
))
622 /* Hitting this means there was a reentrant request, for
623 * example, a block driver issuing nested requests. This must
624 * never happen since it means deadlock.
626 assert(qemu_coroutine_self() != req
->co
);
628 /* If the request is already (indirectly) waiting for us, or
629 * will wait for us as soon as it wakes up, then just go on
630 * (instead of producing a deadlock in the former case). */
631 if (!req
->waiting_for
) {
632 self
->waiting_for
= req
;
633 qemu_co_queue_wait(&req
->wait_queue
, &bs
->reqs_lock
);
634 self
->waiting_for
= NULL
;
641 qemu_co_mutex_unlock(&bs
->reqs_lock
);
647 static int bdrv_check_byte_request(BlockDriverState
*bs
, int64_t offset
,
650 if (size
> BDRV_REQUEST_MAX_SECTORS
<< BDRV_SECTOR_BITS
) {
654 if (!bdrv_is_inserted(bs
)) {
665 typedef struct RwCo
{
671 BdrvRequestFlags flags
;
674 static void coroutine_fn
bdrv_rw_co_entry(void *opaque
)
678 if (!rwco
->is_write
) {
679 rwco
->ret
= bdrv_co_preadv(rwco
->child
, rwco
->offset
,
680 rwco
->qiov
->size
, rwco
->qiov
,
683 rwco
->ret
= bdrv_co_pwritev(rwco
->child
, rwco
->offset
,
684 rwco
->qiov
->size
, rwco
->qiov
,
690 * Process a vectored synchronous request using coroutines
692 static int bdrv_prwv_co(BdrvChild
*child
, int64_t offset
,
693 QEMUIOVector
*qiov
, bool is_write
,
694 BdrvRequestFlags flags
)
701 .is_write
= is_write
,
706 if (qemu_in_coroutine()) {
707 /* Fast-path if already in coroutine context */
708 bdrv_rw_co_entry(&rwco
);
710 co
= qemu_coroutine_create(bdrv_rw_co_entry
, &rwco
);
711 bdrv_coroutine_enter(child
->bs
, co
);
712 BDRV_POLL_WHILE(child
->bs
, rwco
.ret
== NOT_DONE
);
718 * Process a synchronous request using coroutines
720 static int bdrv_rw_co(BdrvChild
*child
, int64_t sector_num
, uint8_t *buf
,
721 int nb_sectors
, bool is_write
, BdrvRequestFlags flags
)
725 .iov_base
= (void *)buf
,
726 .iov_len
= nb_sectors
* BDRV_SECTOR_SIZE
,
729 if (nb_sectors
< 0 || nb_sectors
> BDRV_REQUEST_MAX_SECTORS
) {
733 qemu_iovec_init_external(&qiov
, &iov
, 1);
734 return bdrv_prwv_co(child
, sector_num
<< BDRV_SECTOR_BITS
,
735 &qiov
, is_write
, flags
);
738 /* return < 0 if error. See bdrv_write() for the return codes */
739 int bdrv_read(BdrvChild
*child
, int64_t sector_num
,
740 uint8_t *buf
, int nb_sectors
)
742 return bdrv_rw_co(child
, sector_num
, buf
, nb_sectors
, false, 0);
745 /* Return < 0 if error. Important errors are:
746 -EIO generic I/O error (may happen for all errors)
747 -ENOMEDIUM No media inserted.
748 -EINVAL Invalid sector number or nb_sectors
749 -EACCES Trying to write a read-only device
751 int bdrv_write(BdrvChild
*child
, int64_t sector_num
,
752 const uint8_t *buf
, int nb_sectors
)
754 return bdrv_rw_co(child
, sector_num
, (uint8_t *)buf
, nb_sectors
, true, 0);
757 int bdrv_pwrite_zeroes(BdrvChild
*child
, int64_t offset
,
758 int bytes
, BdrvRequestFlags flags
)
766 qemu_iovec_init_external(&qiov
, &iov
, 1);
767 return bdrv_prwv_co(child
, offset
, &qiov
, true,
768 BDRV_REQ_ZERO_WRITE
| flags
);
772 * Completely zero out a block device with the help of bdrv_pwrite_zeroes.
773 * The operation is sped up by checking the block status and only writing
774 * zeroes to the device if they currently do not return zeroes. Optional
775 * flags are passed through to bdrv_pwrite_zeroes (e.g. BDRV_REQ_MAY_UNMAP,
778 * Returns < 0 on error, 0 on success. For error codes see bdrv_write().
780 int bdrv_make_zero(BdrvChild
*child
, BdrvRequestFlags flags
)
783 int64_t target_size
, bytes
, offset
= 0;
784 BlockDriverState
*bs
= child
->bs
;
786 target_size
= bdrv_getlength(bs
);
787 if (target_size
< 0) {
792 bytes
= MIN(target_size
- offset
, BDRV_REQUEST_MAX_BYTES
);
796 ret
= bdrv_block_status(bs
, offset
, bytes
, &bytes
, NULL
, NULL
);
798 error_report("error getting block status at offset %" PRId64
": %s",
799 offset
, strerror(-ret
));
802 if (ret
& BDRV_BLOCK_ZERO
) {
806 ret
= bdrv_pwrite_zeroes(child
, offset
, bytes
, flags
);
808 error_report("error writing zeroes at offset %" PRId64
": %s",
809 offset
, strerror(-ret
));
816 int bdrv_preadv(BdrvChild
*child
, int64_t offset
, QEMUIOVector
*qiov
)
820 ret
= bdrv_prwv_co(child
, offset
, qiov
, false, 0);
828 int bdrv_pread(BdrvChild
*child
, int64_t offset
, void *buf
, int bytes
)
832 .iov_base
= (void *)buf
,
840 qemu_iovec_init_external(&qiov
, &iov
, 1);
841 return bdrv_preadv(child
, offset
, &qiov
);
844 int bdrv_pwritev(BdrvChild
*child
, int64_t offset
, QEMUIOVector
*qiov
)
848 ret
= bdrv_prwv_co(child
, offset
, qiov
, true, 0);
856 int bdrv_pwrite(BdrvChild
*child
, int64_t offset
, const void *buf
, int bytes
)
860 .iov_base
= (void *) buf
,
868 qemu_iovec_init_external(&qiov
, &iov
, 1);
869 return bdrv_pwritev(child
, offset
, &qiov
);
873 * Writes to the file and ensures that no writes are reordered across this
874 * request (acts as a barrier)
876 * Returns 0 on success, -errno in error cases.
878 int bdrv_pwrite_sync(BdrvChild
*child
, int64_t offset
,
879 const void *buf
, int count
)
883 ret
= bdrv_pwrite(child
, offset
, buf
, count
);
888 ret
= bdrv_flush(child
->bs
);
896 typedef struct CoroutineIOCompletion
{
897 Coroutine
*coroutine
;
899 } CoroutineIOCompletion
;
901 static void bdrv_co_io_em_complete(void *opaque
, int ret
)
903 CoroutineIOCompletion
*co
= opaque
;
906 aio_co_wake(co
->coroutine
);
909 static int coroutine_fn
bdrv_driver_preadv(BlockDriverState
*bs
,
910 uint64_t offset
, uint64_t bytes
,
911 QEMUIOVector
*qiov
, int flags
)
913 BlockDriver
*drv
= bs
->drv
;
915 unsigned int nb_sectors
;
917 assert(!(flags
& ~BDRV_REQ_MASK
));
923 if (drv
->bdrv_co_preadv
) {
924 return drv
->bdrv_co_preadv(bs
, offset
, bytes
, qiov
, flags
);
927 sector_num
= offset
>> BDRV_SECTOR_BITS
;
928 nb_sectors
= bytes
>> BDRV_SECTOR_BITS
;
930 assert((offset
& (BDRV_SECTOR_SIZE
- 1)) == 0);
931 assert((bytes
& (BDRV_SECTOR_SIZE
- 1)) == 0);
932 assert((bytes
>> BDRV_SECTOR_BITS
) <= BDRV_REQUEST_MAX_SECTORS
);
934 if (drv
->bdrv_co_readv
) {
935 return drv
->bdrv_co_readv(bs
, sector_num
, nb_sectors
, qiov
);
938 CoroutineIOCompletion co
= {
939 .coroutine
= qemu_coroutine_self(),
942 acb
= bs
->drv
->bdrv_aio_readv(bs
, sector_num
, qiov
, nb_sectors
,
943 bdrv_co_io_em_complete
, &co
);
947 qemu_coroutine_yield();
953 static int coroutine_fn
bdrv_driver_pwritev(BlockDriverState
*bs
,
954 uint64_t offset
, uint64_t bytes
,
955 QEMUIOVector
*qiov
, int flags
)
957 BlockDriver
*drv
= bs
->drv
;
959 unsigned int nb_sectors
;
962 assert(!(flags
& ~BDRV_REQ_MASK
));
968 if (drv
->bdrv_co_pwritev
) {
969 ret
= drv
->bdrv_co_pwritev(bs
, offset
, bytes
, qiov
,
970 flags
& bs
->supported_write_flags
);
971 flags
&= ~bs
->supported_write_flags
;
975 sector_num
= offset
>> BDRV_SECTOR_BITS
;
976 nb_sectors
= bytes
>> BDRV_SECTOR_BITS
;
978 assert((offset
& (BDRV_SECTOR_SIZE
- 1)) == 0);
979 assert((bytes
& (BDRV_SECTOR_SIZE
- 1)) == 0);
980 assert((bytes
>> BDRV_SECTOR_BITS
) <= BDRV_REQUEST_MAX_SECTORS
);
982 if (drv
->bdrv_co_writev_flags
) {
983 ret
= drv
->bdrv_co_writev_flags(bs
, sector_num
, nb_sectors
, qiov
,
984 flags
& bs
->supported_write_flags
);
985 flags
&= ~bs
->supported_write_flags
;
986 } else if (drv
->bdrv_co_writev
) {
987 assert(!bs
->supported_write_flags
);
988 ret
= drv
->bdrv_co_writev(bs
, sector_num
, nb_sectors
, qiov
);
991 CoroutineIOCompletion co
= {
992 .coroutine
= qemu_coroutine_self(),
995 acb
= bs
->drv
->bdrv_aio_writev(bs
, sector_num
, qiov
, nb_sectors
,
996 bdrv_co_io_em_complete
, &co
);
1000 qemu_coroutine_yield();
1006 if (ret
== 0 && (flags
& BDRV_REQ_FUA
)) {
1007 ret
= bdrv_co_flush(bs
);
1013 static int coroutine_fn
1014 bdrv_driver_pwritev_compressed(BlockDriverState
*bs
, uint64_t offset
,
1015 uint64_t bytes
, QEMUIOVector
*qiov
)
1017 BlockDriver
*drv
= bs
->drv
;
1023 if (!drv
->bdrv_co_pwritev_compressed
) {
1027 return drv
->bdrv_co_pwritev_compressed(bs
, offset
, bytes
, qiov
);
1030 static int coroutine_fn
bdrv_co_do_copy_on_readv(BdrvChild
*child
,
1031 int64_t offset
, unsigned int bytes
, QEMUIOVector
*qiov
)
1033 BlockDriverState
*bs
= child
->bs
;
1035 /* Perform I/O through a temporary buffer so that users who scribble over
1036 * their read buffer while the operation is in progress do not end up
1037 * modifying the image file. This is critical for zero-copy guest I/O
1038 * where anything might happen inside guest memory.
1040 void *bounce_buffer
;
1042 BlockDriver
*drv
= bs
->drv
;
1044 QEMUIOVector local_qiov
;
1045 int64_t cluster_offset
;
1046 int64_t cluster_bytes
;
1049 int max_transfer
= MIN_NON_ZERO(bs
->bl
.max_transfer
,
1050 BDRV_REQUEST_MAX_BYTES
);
1051 unsigned int progress
= 0;
1057 /* FIXME We cannot require callers to have write permissions when all they
1058 * are doing is a read request. If we did things right, write permissions
1059 * would be obtained anyway, but internally by the copy-on-read code. As
1060 * long as it is implemented here rather than in a separate filter driver,
1061 * the copy-on-read code doesn't have its own BdrvChild, however, for which
1062 * it could request permissions. Therefore we have to bypass the permission
1063 * system for the moment. */
1064 // assert(child->perm & (BLK_PERM_WRITE_UNCHANGED | BLK_PERM_WRITE));
1066 /* Cover entire cluster so no additional backing file I/O is required when
1067 * allocating cluster in the image file. Note that this value may exceed
1068 * BDRV_REQUEST_MAX_BYTES (even when the original read did not), which
1069 * is one reason we loop rather than doing it all at once.
1071 bdrv_round_to_clusters(bs
, offset
, bytes
, &cluster_offset
, &cluster_bytes
);
1072 skip_bytes
= offset
- cluster_offset
;
1074 trace_bdrv_co_do_copy_on_readv(bs
, offset
, bytes
,
1075 cluster_offset
, cluster_bytes
);
1077 bounce_buffer
= qemu_try_blockalign(bs
,
1078 MIN(MIN(max_transfer
, cluster_bytes
),
1079 MAX_BOUNCE_BUFFER
));
1080 if (bounce_buffer
== NULL
) {
1085 while (cluster_bytes
) {
1088 ret
= bdrv_is_allocated(bs
, cluster_offset
,
1089 MIN(cluster_bytes
, max_transfer
), &pnum
);
1091 /* Safe to treat errors in querying allocation as if
1092 * unallocated; we'll probably fail again soon on the
1093 * read, but at least that will set a decent errno.
1095 pnum
= MIN(cluster_bytes
, max_transfer
);
1098 assert(skip_bytes
< pnum
);
1101 /* Must copy-on-read; use the bounce buffer */
1102 iov
.iov_base
= bounce_buffer
;
1103 iov
.iov_len
= pnum
= MIN(pnum
, MAX_BOUNCE_BUFFER
);
1104 qemu_iovec_init_external(&local_qiov
, &iov
, 1);
1106 ret
= bdrv_driver_preadv(bs
, cluster_offset
, pnum
,
1112 bdrv_debug_event(bs
, BLKDBG_COR_WRITE
);
1113 if (drv
->bdrv_co_pwrite_zeroes
&&
1114 buffer_is_zero(bounce_buffer
, pnum
)) {
1115 /* FIXME: Should we (perhaps conditionally) be setting
1116 * BDRV_REQ_MAY_UNMAP, if it will allow for a sparser copy
1117 * that still correctly reads as zero? */
1118 ret
= bdrv_co_do_pwrite_zeroes(bs
, cluster_offset
, pnum
, 0);
1120 /* This does not change the data on the disk, it is not
1121 * necessary to flush even in cache=writethrough mode.
1123 ret
= bdrv_driver_pwritev(bs
, cluster_offset
, pnum
,
1128 /* It might be okay to ignore write errors for guest
1129 * requests. If this is a deliberate copy-on-read
1130 * then we don't want to ignore the error. Simply
1131 * report it in all cases.
1136 qemu_iovec_from_buf(qiov
, progress
, bounce_buffer
+ skip_bytes
,
1139 /* Read directly into the destination */
1140 qemu_iovec_init(&local_qiov
, qiov
->niov
);
1141 qemu_iovec_concat(&local_qiov
, qiov
, progress
, pnum
- skip_bytes
);
1142 ret
= bdrv_driver_preadv(bs
, offset
+ progress
, local_qiov
.size
,
1144 qemu_iovec_destroy(&local_qiov
);
1150 cluster_offset
+= pnum
;
1151 cluster_bytes
-= pnum
;
1152 progress
+= pnum
- skip_bytes
;
1158 qemu_vfree(bounce_buffer
);
1163 * Forwards an already correctly aligned request to the BlockDriver. This
1164 * handles copy on read, zeroing after EOF, and fragmentation of large
1165 * reads; any other features must be implemented by the caller.
1167 static int coroutine_fn
bdrv_aligned_preadv(BdrvChild
*child
,
1168 BdrvTrackedRequest
*req
, int64_t offset
, unsigned int bytes
,
1169 int64_t align
, QEMUIOVector
*qiov
, int flags
)
1171 BlockDriverState
*bs
= child
->bs
;
1172 int64_t total_bytes
, max_bytes
;
1174 uint64_t bytes_remaining
= bytes
;
1177 assert(is_power_of_2(align
));
1178 assert((offset
& (align
- 1)) == 0);
1179 assert((bytes
& (align
- 1)) == 0);
1180 assert(!qiov
|| bytes
== qiov
->size
);
1181 assert((bs
->open_flags
& BDRV_O_NO_IO
) == 0);
1182 max_transfer
= QEMU_ALIGN_DOWN(MIN_NON_ZERO(bs
->bl
.max_transfer
, INT_MAX
),
1185 /* TODO: We would need a per-BDS .supported_read_flags and
1186 * potential fallback support, if we ever implement any read flags
1187 * to pass through to drivers. For now, there aren't any
1188 * passthrough flags. */
1189 assert(!(flags
& ~(BDRV_REQ_NO_SERIALISING
| BDRV_REQ_COPY_ON_READ
)));
1191 /* Handle Copy on Read and associated serialisation */
1192 if (flags
& BDRV_REQ_COPY_ON_READ
) {
1193 /* If we touch the same cluster it counts as an overlap. This
1194 * guarantees that allocating writes will be serialized and not race
1195 * with each other for the same cluster. For example, in copy-on-read
1196 * it ensures that the CoR read and write operations are atomic and
1197 * guest writes cannot interleave between them. */
1198 mark_request_serialising(req
, bdrv_get_cluster_size(bs
));
1201 if (!(flags
& BDRV_REQ_NO_SERIALISING
)) {
1202 wait_serialising_requests(req
);
1205 if (flags
& BDRV_REQ_COPY_ON_READ
) {
1208 ret
= bdrv_is_allocated(bs
, offset
, bytes
, &pnum
);
1213 if (!ret
|| pnum
!= bytes
) {
1214 ret
= bdrv_co_do_copy_on_readv(child
, offset
, bytes
, qiov
);
1219 /* Forward the request to the BlockDriver, possibly fragmenting it */
1220 total_bytes
= bdrv_getlength(bs
);
1221 if (total_bytes
< 0) {
1226 max_bytes
= ROUND_UP(MAX(0, total_bytes
- offset
), align
);
1227 if (bytes
<= max_bytes
&& bytes
<= max_transfer
) {
1228 ret
= bdrv_driver_preadv(bs
, offset
, bytes
, qiov
, 0);
1232 while (bytes_remaining
) {
1236 QEMUIOVector local_qiov
;
1238 num
= MIN(bytes_remaining
, MIN(max_bytes
, max_transfer
));
1240 qemu_iovec_init(&local_qiov
, qiov
->niov
);
1241 qemu_iovec_concat(&local_qiov
, qiov
, bytes
- bytes_remaining
, num
);
1243 ret
= bdrv_driver_preadv(bs
, offset
+ bytes
- bytes_remaining
,
1244 num
, &local_qiov
, 0);
1246 qemu_iovec_destroy(&local_qiov
);
1248 num
= bytes_remaining
;
1249 ret
= qemu_iovec_memset(qiov
, bytes
- bytes_remaining
, 0,
1255 bytes_remaining
-= num
;
1259 return ret
< 0 ? ret
: 0;
1263 * Handle a read request in coroutine context
1265 int coroutine_fn
bdrv_co_preadv(BdrvChild
*child
,
1266 int64_t offset
, unsigned int bytes
, QEMUIOVector
*qiov
,
1267 BdrvRequestFlags flags
)
1269 BlockDriverState
*bs
= child
->bs
;
1270 BlockDriver
*drv
= bs
->drv
;
1271 BdrvTrackedRequest req
;
1273 uint64_t align
= bs
->bl
.request_alignment
;
1274 uint8_t *head_buf
= NULL
;
1275 uint8_t *tail_buf
= NULL
;
1276 QEMUIOVector local_qiov
;
1277 bool use_local_qiov
= false;
1280 trace_bdrv_co_preadv(child
->bs
, offset
, bytes
, flags
);
1286 ret
= bdrv_check_byte_request(bs
, offset
, bytes
);
1291 bdrv_inc_in_flight(bs
);
1293 /* Don't do copy-on-read if we read data before write operation */
1294 if (atomic_read(&bs
->copy_on_read
) && !(flags
& BDRV_REQ_NO_SERIALISING
)) {
1295 flags
|= BDRV_REQ_COPY_ON_READ
;
1298 /* Align read if necessary by padding qiov */
1299 if (offset
& (align
- 1)) {
1300 head_buf
= qemu_blockalign(bs
, align
);
1301 qemu_iovec_init(&local_qiov
, qiov
->niov
+ 2);
1302 qemu_iovec_add(&local_qiov
, head_buf
, offset
& (align
- 1));
1303 qemu_iovec_concat(&local_qiov
, qiov
, 0, qiov
->size
);
1304 use_local_qiov
= true;
1306 bytes
+= offset
& (align
- 1);
1307 offset
= offset
& ~(align
- 1);
1310 if ((offset
+ bytes
) & (align
- 1)) {
1311 if (!use_local_qiov
) {
1312 qemu_iovec_init(&local_qiov
, qiov
->niov
+ 1);
1313 qemu_iovec_concat(&local_qiov
, qiov
, 0, qiov
->size
);
1314 use_local_qiov
= true;
1316 tail_buf
= qemu_blockalign(bs
, align
);
1317 qemu_iovec_add(&local_qiov
, tail_buf
,
1318 align
- ((offset
+ bytes
) & (align
- 1)));
1320 bytes
= ROUND_UP(bytes
, align
);
1323 tracked_request_begin(&req
, bs
, offset
, bytes
, BDRV_TRACKED_READ
);
1324 ret
= bdrv_aligned_preadv(child
, &req
, offset
, bytes
, align
,
1325 use_local_qiov
? &local_qiov
: qiov
,
1327 tracked_request_end(&req
);
1328 bdrv_dec_in_flight(bs
);
1330 if (use_local_qiov
) {
1331 qemu_iovec_destroy(&local_qiov
);
1332 qemu_vfree(head_buf
);
1333 qemu_vfree(tail_buf
);
1339 static int coroutine_fn
bdrv_co_do_readv(BdrvChild
*child
,
1340 int64_t sector_num
, int nb_sectors
, QEMUIOVector
*qiov
,
1341 BdrvRequestFlags flags
)
1343 if (nb_sectors
< 0 || nb_sectors
> BDRV_REQUEST_MAX_SECTORS
) {
1347 return bdrv_co_preadv(child
, sector_num
<< BDRV_SECTOR_BITS
,
1348 nb_sectors
<< BDRV_SECTOR_BITS
, qiov
, flags
);
1351 int coroutine_fn
bdrv_co_readv(BdrvChild
*child
, int64_t sector_num
,
1352 int nb_sectors
, QEMUIOVector
*qiov
)
1354 return bdrv_co_do_readv(child
, sector_num
, nb_sectors
, qiov
, 0);
1357 static int coroutine_fn
bdrv_co_do_pwrite_zeroes(BlockDriverState
*bs
,
1358 int64_t offset
, int bytes
, BdrvRequestFlags flags
)
1360 BlockDriver
*drv
= bs
->drv
;
1362 struct iovec iov
= {0};
1364 bool need_flush
= false;
1368 int max_write_zeroes
= MIN_NON_ZERO(bs
->bl
.max_pwrite_zeroes
, INT_MAX
);
1369 int alignment
= MAX(bs
->bl
.pwrite_zeroes_alignment
,
1370 bs
->bl
.request_alignment
);
1371 int max_transfer
= MIN_NON_ZERO(bs
->bl
.max_transfer
, MAX_BOUNCE_BUFFER
);
1377 assert(alignment
% bs
->bl
.request_alignment
== 0);
1378 head
= offset
% alignment
;
1379 tail
= (offset
+ bytes
) % alignment
;
1380 max_write_zeroes
= QEMU_ALIGN_DOWN(max_write_zeroes
, alignment
);
1381 assert(max_write_zeroes
>= bs
->bl
.request_alignment
);
1383 while (bytes
> 0 && !ret
) {
1386 /* Align request. Block drivers can expect the "bulk" of the request
1387 * to be aligned, and that unaligned requests do not cross cluster
1391 /* Make a small request up to the first aligned sector. For
1392 * convenience, limit this request to max_transfer even if
1393 * we don't need to fall back to writes. */
1394 num
= MIN(MIN(bytes
, max_transfer
), alignment
- head
);
1395 head
= (head
+ num
) % alignment
;
1396 assert(num
< max_write_zeroes
);
1397 } else if (tail
&& num
> alignment
) {
1398 /* Shorten the request to the last aligned sector. */
1402 /* limit request size */
1403 if (num
> max_write_zeroes
) {
1404 num
= max_write_zeroes
;
1408 /* First try the efficient write zeroes operation */
1409 if (drv
->bdrv_co_pwrite_zeroes
) {
1410 ret
= drv
->bdrv_co_pwrite_zeroes(bs
, offset
, num
,
1411 flags
& bs
->supported_zero_flags
);
1412 if (ret
!= -ENOTSUP
&& (flags
& BDRV_REQ_FUA
) &&
1413 !(bs
->supported_zero_flags
& BDRV_REQ_FUA
)) {
1417 assert(!bs
->supported_zero_flags
);
1420 if (ret
== -ENOTSUP
) {
1421 /* Fall back to bounce buffer if write zeroes is unsupported */
1422 BdrvRequestFlags write_flags
= flags
& ~BDRV_REQ_ZERO_WRITE
;
1424 if ((flags
& BDRV_REQ_FUA
) &&
1425 !(bs
->supported_write_flags
& BDRV_REQ_FUA
)) {
1426 /* No need for bdrv_driver_pwrite() to do a fallback
1427 * flush on each chunk; use just one at the end */
1428 write_flags
&= ~BDRV_REQ_FUA
;
1431 num
= MIN(num
, max_transfer
);
1433 if (iov
.iov_base
== NULL
) {
1434 iov
.iov_base
= qemu_try_blockalign(bs
, num
);
1435 if (iov
.iov_base
== NULL
) {
1439 memset(iov
.iov_base
, 0, num
);
1441 qemu_iovec_init_external(&qiov
, &iov
, 1);
1443 ret
= bdrv_driver_pwritev(bs
, offset
, num
, &qiov
, write_flags
);
1445 /* Keep bounce buffer around if it is big enough for all
1446 * all future requests.
1448 if (num
< max_transfer
) {
1449 qemu_vfree(iov
.iov_base
);
1450 iov
.iov_base
= NULL
;
1459 if (ret
== 0 && need_flush
) {
1460 ret
= bdrv_co_flush(bs
);
1462 qemu_vfree(iov
.iov_base
);
1467 * Forwards an already correctly aligned write request to the BlockDriver,
1468 * after possibly fragmenting it.
1470 static int coroutine_fn
bdrv_aligned_pwritev(BdrvChild
*child
,
1471 BdrvTrackedRequest
*req
, int64_t offset
, unsigned int bytes
,
1472 int64_t align
, QEMUIOVector
*qiov
, int flags
)
1474 BlockDriverState
*bs
= child
->bs
;
1475 BlockDriver
*drv
= bs
->drv
;
1479 int64_t end_sector
= DIV_ROUND_UP(offset
+ bytes
, BDRV_SECTOR_SIZE
);
1480 uint64_t bytes_remaining
= bytes
;
1487 if (bdrv_has_readonly_bitmaps(bs
)) {
1491 assert(is_power_of_2(align
));
1492 assert((offset
& (align
- 1)) == 0);
1493 assert((bytes
& (align
- 1)) == 0);
1494 assert(!qiov
|| bytes
== qiov
->size
);
1495 assert((bs
->open_flags
& BDRV_O_NO_IO
) == 0);
1496 assert(!(flags
& ~BDRV_REQ_MASK
));
1497 max_transfer
= QEMU_ALIGN_DOWN(MIN_NON_ZERO(bs
->bl
.max_transfer
, INT_MAX
),
1500 waited
= wait_serialising_requests(req
);
1501 assert(!waited
|| !req
->serialising
);
1502 assert(req
->overlap_offset
<= offset
);
1503 assert(offset
+ bytes
<= req
->overlap_offset
+ req
->overlap_bytes
);
1504 assert(child
->perm
& BLK_PERM_WRITE
);
1505 assert(end_sector
<= bs
->total_sectors
|| child
->perm
& BLK_PERM_RESIZE
);
1507 ret
= notifier_with_return_list_notify(&bs
->before_write_notifiers
, req
);
1509 if (!ret
&& bs
->detect_zeroes
!= BLOCKDEV_DETECT_ZEROES_OPTIONS_OFF
&&
1510 !(flags
& BDRV_REQ_ZERO_WRITE
) && drv
->bdrv_co_pwrite_zeroes
&&
1511 qemu_iovec_is_zero(qiov
)) {
1512 flags
|= BDRV_REQ_ZERO_WRITE
;
1513 if (bs
->detect_zeroes
== BLOCKDEV_DETECT_ZEROES_OPTIONS_UNMAP
) {
1514 flags
|= BDRV_REQ_MAY_UNMAP
;
1519 /* Do nothing, write notifier decided to fail this request */
1520 } else if (flags
& BDRV_REQ_ZERO_WRITE
) {
1521 bdrv_debug_event(bs
, BLKDBG_PWRITEV_ZERO
);
1522 ret
= bdrv_co_do_pwrite_zeroes(bs
, offset
, bytes
, flags
);
1523 } else if (flags
& BDRV_REQ_WRITE_COMPRESSED
) {
1524 ret
= bdrv_driver_pwritev_compressed(bs
, offset
, bytes
, qiov
);
1525 } else if (bytes
<= max_transfer
) {
1526 bdrv_debug_event(bs
, BLKDBG_PWRITEV
);
1527 ret
= bdrv_driver_pwritev(bs
, offset
, bytes
, qiov
, flags
);
1529 bdrv_debug_event(bs
, BLKDBG_PWRITEV
);
1530 while (bytes_remaining
) {
1531 int num
= MIN(bytes_remaining
, max_transfer
);
1532 QEMUIOVector local_qiov
;
1533 int local_flags
= flags
;
1536 if (num
< bytes_remaining
&& (flags
& BDRV_REQ_FUA
) &&
1537 !(bs
->supported_write_flags
& BDRV_REQ_FUA
)) {
1538 /* If FUA is going to be emulated by flush, we only
1539 * need to flush on the last iteration */
1540 local_flags
&= ~BDRV_REQ_FUA
;
1542 qemu_iovec_init(&local_qiov
, qiov
->niov
);
1543 qemu_iovec_concat(&local_qiov
, qiov
, bytes
- bytes_remaining
, num
);
1545 ret
= bdrv_driver_pwritev(bs
, offset
+ bytes
- bytes_remaining
,
1546 num
, &local_qiov
, local_flags
);
1547 qemu_iovec_destroy(&local_qiov
);
1551 bytes_remaining
-= num
;
1554 bdrv_debug_event(bs
, BLKDBG_PWRITEV_DONE
);
1556 atomic_inc(&bs
->write_gen
);
1557 bdrv_set_dirty(bs
, offset
, bytes
);
1559 stat64_max(&bs
->wr_highest_offset
, offset
+ bytes
);
1562 bs
->total_sectors
= MAX(bs
->total_sectors
, end_sector
);
1569 static int coroutine_fn
bdrv_co_do_zero_pwritev(BdrvChild
*child
,
1572 BdrvRequestFlags flags
,
1573 BdrvTrackedRequest
*req
)
1575 BlockDriverState
*bs
= child
->bs
;
1576 uint8_t *buf
= NULL
;
1577 QEMUIOVector local_qiov
;
1579 uint64_t align
= bs
->bl
.request_alignment
;
1580 unsigned int head_padding_bytes
, tail_padding_bytes
;
1583 head_padding_bytes
= offset
& (align
- 1);
1584 tail_padding_bytes
= (align
- (offset
+ bytes
)) & (align
- 1);
1587 assert(flags
& BDRV_REQ_ZERO_WRITE
);
1588 if (head_padding_bytes
|| tail_padding_bytes
) {
1589 buf
= qemu_blockalign(bs
, align
);
1590 iov
= (struct iovec
) {
1594 qemu_iovec_init_external(&local_qiov
, &iov
, 1);
1596 if (head_padding_bytes
) {
1597 uint64_t zero_bytes
= MIN(bytes
, align
- head_padding_bytes
);
1599 /* RMW the unaligned part before head. */
1600 mark_request_serialising(req
, align
);
1601 wait_serialising_requests(req
);
1602 bdrv_debug_event(bs
, BLKDBG_PWRITEV_RMW_HEAD
);
1603 ret
= bdrv_aligned_preadv(child
, req
, offset
& ~(align
- 1), align
,
1604 align
, &local_qiov
, 0);
1608 bdrv_debug_event(bs
, BLKDBG_PWRITEV_RMW_AFTER_HEAD
);
1610 memset(buf
+ head_padding_bytes
, 0, zero_bytes
);
1611 ret
= bdrv_aligned_pwritev(child
, req
, offset
& ~(align
- 1), align
,
1613 flags
& ~BDRV_REQ_ZERO_WRITE
);
1617 offset
+= zero_bytes
;
1618 bytes
-= zero_bytes
;
1621 assert(!bytes
|| (offset
& (align
- 1)) == 0);
1622 if (bytes
>= align
) {
1623 /* Write the aligned part in the middle. */
1624 uint64_t aligned_bytes
= bytes
& ~(align
- 1);
1625 ret
= bdrv_aligned_pwritev(child
, req
, offset
, aligned_bytes
, align
,
1630 bytes
-= aligned_bytes
;
1631 offset
+= aligned_bytes
;
1634 assert(!bytes
|| (offset
& (align
- 1)) == 0);
1636 assert(align
== tail_padding_bytes
+ bytes
);
1637 /* RMW the unaligned part after tail. */
1638 mark_request_serialising(req
, align
);
1639 wait_serialising_requests(req
);
1640 bdrv_debug_event(bs
, BLKDBG_PWRITEV_RMW_TAIL
);
1641 ret
= bdrv_aligned_preadv(child
, req
, offset
, align
,
1642 align
, &local_qiov
, 0);
1646 bdrv_debug_event(bs
, BLKDBG_PWRITEV_RMW_AFTER_TAIL
);
1648 memset(buf
, 0, bytes
);
1649 ret
= bdrv_aligned_pwritev(child
, req
, offset
, align
, align
,
1650 &local_qiov
, flags
& ~BDRV_REQ_ZERO_WRITE
);
1659 * Handle a write request in coroutine context
1661 int coroutine_fn
bdrv_co_pwritev(BdrvChild
*child
,
1662 int64_t offset
, unsigned int bytes
, QEMUIOVector
*qiov
,
1663 BdrvRequestFlags flags
)
1665 BlockDriverState
*bs
= child
->bs
;
1666 BdrvTrackedRequest req
;
1667 uint64_t align
= bs
->bl
.request_alignment
;
1668 uint8_t *head_buf
= NULL
;
1669 uint8_t *tail_buf
= NULL
;
1670 QEMUIOVector local_qiov
;
1671 bool use_local_qiov
= false;
1674 trace_bdrv_co_pwritev(child
->bs
, offset
, bytes
, flags
);
1679 if (bs
->read_only
) {
1682 assert(!(bs
->open_flags
& BDRV_O_INACTIVE
));
1684 ret
= bdrv_check_byte_request(bs
, offset
, bytes
);
1689 bdrv_inc_in_flight(bs
);
1691 * Align write if necessary by performing a read-modify-write cycle.
1692 * Pad qiov with the read parts and be sure to have a tracked request not
1693 * only for bdrv_aligned_pwritev, but also for the reads of the RMW cycle.
1695 tracked_request_begin(&req
, bs
, offset
, bytes
, BDRV_TRACKED_WRITE
);
1697 if (flags
& BDRV_REQ_ZERO_WRITE
) {
1698 ret
= bdrv_co_do_zero_pwritev(child
, offset
, bytes
, flags
, &req
);
1702 if (offset
& (align
- 1)) {
1703 QEMUIOVector head_qiov
;
1704 struct iovec head_iov
;
1706 mark_request_serialising(&req
, align
);
1707 wait_serialising_requests(&req
);
1709 head_buf
= qemu_blockalign(bs
, align
);
1710 head_iov
= (struct iovec
) {
1711 .iov_base
= head_buf
,
1714 qemu_iovec_init_external(&head_qiov
, &head_iov
, 1);
1716 bdrv_debug_event(bs
, BLKDBG_PWRITEV_RMW_HEAD
);
1717 ret
= bdrv_aligned_preadv(child
, &req
, offset
& ~(align
- 1), align
,
1718 align
, &head_qiov
, 0);
1722 bdrv_debug_event(bs
, BLKDBG_PWRITEV_RMW_AFTER_HEAD
);
1724 qemu_iovec_init(&local_qiov
, qiov
->niov
+ 2);
1725 qemu_iovec_add(&local_qiov
, head_buf
, offset
& (align
- 1));
1726 qemu_iovec_concat(&local_qiov
, qiov
, 0, qiov
->size
);
1727 use_local_qiov
= true;
1729 bytes
+= offset
& (align
- 1);
1730 offset
= offset
& ~(align
- 1);
1732 /* We have read the tail already if the request is smaller
1733 * than one aligned block.
1735 if (bytes
< align
) {
1736 qemu_iovec_add(&local_qiov
, head_buf
+ bytes
, align
- bytes
);
1741 if ((offset
+ bytes
) & (align
- 1)) {
1742 QEMUIOVector tail_qiov
;
1743 struct iovec tail_iov
;
1747 mark_request_serialising(&req
, align
);
1748 waited
= wait_serialising_requests(&req
);
1749 assert(!waited
|| !use_local_qiov
);
1751 tail_buf
= qemu_blockalign(bs
, align
);
1752 tail_iov
= (struct iovec
) {
1753 .iov_base
= tail_buf
,
1756 qemu_iovec_init_external(&tail_qiov
, &tail_iov
, 1);
1758 bdrv_debug_event(bs
, BLKDBG_PWRITEV_RMW_TAIL
);
1759 ret
= bdrv_aligned_preadv(child
, &req
, (offset
+ bytes
) & ~(align
- 1),
1760 align
, align
, &tail_qiov
, 0);
1764 bdrv_debug_event(bs
, BLKDBG_PWRITEV_RMW_AFTER_TAIL
);
1766 if (!use_local_qiov
) {
1767 qemu_iovec_init(&local_qiov
, qiov
->niov
+ 1);
1768 qemu_iovec_concat(&local_qiov
, qiov
, 0, qiov
->size
);
1769 use_local_qiov
= true;
1772 tail_bytes
= (offset
+ bytes
) & (align
- 1);
1773 qemu_iovec_add(&local_qiov
, tail_buf
+ tail_bytes
, align
- tail_bytes
);
1775 bytes
= ROUND_UP(bytes
, align
);
1778 ret
= bdrv_aligned_pwritev(child
, &req
, offset
, bytes
, align
,
1779 use_local_qiov
? &local_qiov
: qiov
,
1784 if (use_local_qiov
) {
1785 qemu_iovec_destroy(&local_qiov
);
1787 qemu_vfree(head_buf
);
1788 qemu_vfree(tail_buf
);
1790 tracked_request_end(&req
);
1791 bdrv_dec_in_flight(bs
);
1795 static int coroutine_fn
bdrv_co_do_writev(BdrvChild
*child
,
1796 int64_t sector_num
, int nb_sectors
, QEMUIOVector
*qiov
,
1797 BdrvRequestFlags flags
)
1799 if (nb_sectors
< 0 || nb_sectors
> BDRV_REQUEST_MAX_SECTORS
) {
1803 return bdrv_co_pwritev(child
, sector_num
<< BDRV_SECTOR_BITS
,
1804 nb_sectors
<< BDRV_SECTOR_BITS
, qiov
, flags
);
1807 int coroutine_fn
bdrv_co_writev(BdrvChild
*child
, int64_t sector_num
,
1808 int nb_sectors
, QEMUIOVector
*qiov
)
1810 return bdrv_co_do_writev(child
, sector_num
, nb_sectors
, qiov
, 0);
1813 int coroutine_fn
bdrv_co_pwrite_zeroes(BdrvChild
*child
, int64_t offset
,
1814 int bytes
, BdrvRequestFlags flags
)
1816 trace_bdrv_co_pwrite_zeroes(child
->bs
, offset
, bytes
, flags
);
1818 if (!(child
->bs
->open_flags
& BDRV_O_UNMAP
)) {
1819 flags
&= ~BDRV_REQ_MAY_UNMAP
;
1822 return bdrv_co_pwritev(child
, offset
, bytes
, NULL
,
1823 BDRV_REQ_ZERO_WRITE
| flags
);
1827 * Flush ALL BDSes regardless of if they are reachable via a BlkBackend or not.
1829 int bdrv_flush_all(void)
1831 BdrvNextIterator it
;
1832 BlockDriverState
*bs
= NULL
;
1835 for (bs
= bdrv_first(&it
); bs
; bs
= bdrv_next(&it
)) {
1836 AioContext
*aio_context
= bdrv_get_aio_context(bs
);
1839 aio_context_acquire(aio_context
);
1840 ret
= bdrv_flush(bs
);
1841 if (ret
< 0 && !result
) {
1844 aio_context_release(aio_context
);
1851 typedef struct BdrvCoBlockStatusData
{
1852 BlockDriverState
*bs
;
1853 BlockDriverState
*base
;
1859 BlockDriverState
**file
;
1862 } BdrvCoBlockStatusData
;
1864 int coroutine_fn
bdrv_co_block_status_from_file(BlockDriverState
*bs
,
1870 BlockDriverState
**file
)
1872 assert(bs
->file
&& bs
->file
->bs
);
1875 *file
= bs
->file
->bs
;
1876 return BDRV_BLOCK_RAW
| BDRV_BLOCK_OFFSET_VALID
;
1879 int coroutine_fn
bdrv_co_block_status_from_backing(BlockDriverState
*bs
,
1885 BlockDriverState
**file
)
1887 assert(bs
->backing
&& bs
->backing
->bs
);
1890 *file
= bs
->backing
->bs
;
1891 return BDRV_BLOCK_RAW
| BDRV_BLOCK_OFFSET_VALID
;
1895 * Returns the allocation status of the specified sectors.
1896 * Drivers not implementing the functionality are assumed to not support
1897 * backing files, hence all their sectors are reported as allocated.
1899 * If 'want_zero' is true, the caller is querying for mapping
1900 * purposes, with a focus on valid BDRV_BLOCK_OFFSET_VALID, _DATA, and
1901 * _ZERO where possible; otherwise, the result favors larger 'pnum',
1902 * with a focus on accurate BDRV_BLOCK_ALLOCATED.
1904 * If 'offset' is beyond the end of the disk image the return value is
1905 * BDRV_BLOCK_EOF and 'pnum' is set to 0.
1907 * 'bytes' is the max value 'pnum' should be set to. If bytes goes
1908 * beyond the end of the disk image it will be clamped; if 'pnum' is set to
1909 * the end of the image, then the returned value will include BDRV_BLOCK_EOF.
1911 * 'pnum' is set to the number of bytes (including and immediately
1912 * following the specified offset) that are easily known to be in the
1913 * same allocated/unallocated state. Note that a second call starting
1914 * at the original offset plus returned pnum may have the same status.
1915 * The returned value is non-zero on success except at end-of-file.
1917 * Returns negative errno on failure. Otherwise, if the
1918 * BDRV_BLOCK_OFFSET_VALID bit is set, 'map' and 'file' (if non-NULL) are
1919 * set to the host mapping and BDS corresponding to the guest offset.
1921 static int coroutine_fn
bdrv_co_block_status(BlockDriverState
*bs
,
1923 int64_t offset
, int64_t bytes
,
1924 int64_t *pnum
, int64_t *map
,
1925 BlockDriverState
**file
)
1928 int64_t n
; /* bytes */
1930 int64_t local_map
= 0;
1931 BlockDriverState
*local_file
= NULL
;
1932 int64_t aligned_offset
, aligned_bytes
;
1937 total_size
= bdrv_getlength(bs
);
1938 if (total_size
< 0) {
1943 if (offset
>= total_size
) {
1944 ret
= BDRV_BLOCK_EOF
;
1952 n
= total_size
- offset
;
1957 /* Must be non-NULL or bdrv_getlength() would have failed */
1959 if (!bs
->drv
->bdrv_co_block_status
) {
1961 ret
= BDRV_BLOCK_DATA
| BDRV_BLOCK_ALLOCATED
;
1962 if (offset
+ bytes
== total_size
) {
1963 ret
|= BDRV_BLOCK_EOF
;
1965 if (bs
->drv
->protocol_name
) {
1966 ret
|= BDRV_BLOCK_OFFSET_VALID
;
1973 bdrv_inc_in_flight(bs
);
1975 /* Round out to request_alignment boundaries */
1976 align
= bs
->bl
.request_alignment
;
1977 aligned_offset
= QEMU_ALIGN_DOWN(offset
, align
);
1978 aligned_bytes
= ROUND_UP(offset
+ bytes
, align
) - aligned_offset
;
1980 ret
= bs
->drv
->bdrv_co_block_status(bs
, want_zero
, aligned_offset
,
1981 aligned_bytes
, pnum
, &local_map
,
1989 * The driver's result must be a non-zero multiple of request_alignment.
1990 * Clamp pnum and adjust map to original request.
1992 assert(*pnum
&& QEMU_IS_ALIGNED(*pnum
, align
) &&
1993 align
> offset
- aligned_offset
);
1994 *pnum
-= offset
- aligned_offset
;
1995 if (*pnum
> bytes
) {
1998 if (ret
& BDRV_BLOCK_OFFSET_VALID
) {
1999 local_map
+= offset
- aligned_offset
;
2002 if (ret
& BDRV_BLOCK_RAW
) {
2003 assert(ret
& BDRV_BLOCK_OFFSET_VALID
&& local_file
);
2004 ret
= bdrv_co_block_status(local_file
, want_zero
, local_map
,
2005 *pnum
, pnum
, &local_map
, &local_file
);
2009 if (ret
& (BDRV_BLOCK_DATA
| BDRV_BLOCK_ZERO
)) {
2010 ret
|= BDRV_BLOCK_ALLOCATED
;
2011 } else if (want_zero
) {
2012 if (bdrv_unallocated_blocks_are_zero(bs
)) {
2013 ret
|= BDRV_BLOCK_ZERO
;
2014 } else if (bs
->backing
) {
2015 BlockDriverState
*bs2
= bs
->backing
->bs
;
2016 int64_t size2
= bdrv_getlength(bs2
);
2018 if (size2
>= 0 && offset
>= size2
) {
2019 ret
|= BDRV_BLOCK_ZERO
;
2024 if (want_zero
&& local_file
&& local_file
!= bs
&&
2025 (ret
& BDRV_BLOCK_DATA
) && !(ret
& BDRV_BLOCK_ZERO
) &&
2026 (ret
& BDRV_BLOCK_OFFSET_VALID
)) {
2030 ret2
= bdrv_co_block_status(local_file
, want_zero
, local_map
,
2031 *pnum
, &file_pnum
, NULL
, NULL
);
2033 /* Ignore errors. This is just providing extra information, it
2034 * is useful but not necessary.
2036 if (ret2
& BDRV_BLOCK_EOF
&&
2037 (!file_pnum
|| ret2
& BDRV_BLOCK_ZERO
)) {
2039 * It is valid for the format block driver to read
2040 * beyond the end of the underlying file's current
2041 * size; such areas read as zero.
2043 ret
|= BDRV_BLOCK_ZERO
;
2045 /* Limit request to the range reported by the protocol driver */
2047 ret
|= (ret2
& BDRV_BLOCK_ZERO
);
2053 bdrv_dec_in_flight(bs
);
2054 if (ret
>= 0 && offset
+ *pnum
== total_size
) {
2055 ret
|= BDRV_BLOCK_EOF
;
2067 static int coroutine_fn
bdrv_co_block_status_above(BlockDriverState
*bs
,
2068 BlockDriverState
*base
,
2074 BlockDriverState
**file
)
2076 BlockDriverState
*p
;
2081 for (p
= bs
; p
!= base
; p
= backing_bs(p
)) {
2082 ret
= bdrv_co_block_status(p
, want_zero
, offset
, bytes
, pnum
, map
,
2087 if (ret
& BDRV_BLOCK_ZERO
&& ret
& BDRV_BLOCK_EOF
&& !first
) {
2089 * Reading beyond the end of the file continues to read
2090 * zeroes, but we can only widen the result to the
2091 * unallocated length we learned from an earlier
2096 if (ret
& (BDRV_BLOCK_ZERO
| BDRV_BLOCK_DATA
)) {
2099 /* [offset, pnum] unallocated on this layer, which could be only
2100 * the first part of [offset, bytes]. */
2101 bytes
= MIN(bytes
, *pnum
);
2107 /* Coroutine wrapper for bdrv_block_status_above() */
2108 static void coroutine_fn
bdrv_block_status_above_co_entry(void *opaque
)
2110 BdrvCoBlockStatusData
*data
= opaque
;
2112 data
->ret
= bdrv_co_block_status_above(data
->bs
, data
->base
,
2114 data
->offset
, data
->bytes
,
2115 data
->pnum
, data
->map
, data
->file
);
2120 * Synchronous wrapper around bdrv_co_block_status_above().
2122 * See bdrv_co_block_status_above() for details.
2124 static int bdrv_common_block_status_above(BlockDriverState
*bs
,
2125 BlockDriverState
*base
,
2126 bool want_zero
, int64_t offset
,
2127 int64_t bytes
, int64_t *pnum
,
2129 BlockDriverState
**file
)
2132 BdrvCoBlockStatusData data
= {
2135 .want_zero
= want_zero
,
2144 if (qemu_in_coroutine()) {
2145 /* Fast-path if already in coroutine context */
2146 bdrv_block_status_above_co_entry(&data
);
2148 co
= qemu_coroutine_create(bdrv_block_status_above_co_entry
, &data
);
2149 bdrv_coroutine_enter(bs
, co
);
2150 BDRV_POLL_WHILE(bs
, !data
.done
);
2155 int bdrv_block_status_above(BlockDriverState
*bs
, BlockDriverState
*base
,
2156 int64_t offset
, int64_t bytes
, int64_t *pnum
,
2157 int64_t *map
, BlockDriverState
**file
)
2159 return bdrv_common_block_status_above(bs
, base
, true, offset
, bytes
,
2163 int bdrv_block_status(BlockDriverState
*bs
, int64_t offset
, int64_t bytes
,
2164 int64_t *pnum
, int64_t *map
, BlockDriverState
**file
)
2166 return bdrv_block_status_above(bs
, backing_bs(bs
),
2167 offset
, bytes
, pnum
, map
, file
);
2170 int coroutine_fn
bdrv_is_allocated(BlockDriverState
*bs
, int64_t offset
,
2171 int64_t bytes
, int64_t *pnum
)
2176 ret
= bdrv_common_block_status_above(bs
, backing_bs(bs
), false, offset
,
2177 bytes
, pnum
? pnum
: &dummy
, NULL
,
2182 return !!(ret
& BDRV_BLOCK_ALLOCATED
);
2186 * Given an image chain: ... -> [BASE] -> [INTER1] -> [INTER2] -> [TOP]
2188 * Return true if (a prefix of) the given range is allocated in any image
2189 * between BASE and TOP (inclusive). BASE can be NULL to check if the given
2190 * offset is allocated in any image of the chain. Return false otherwise,
2191 * or negative errno on failure.
2193 * 'pnum' is set to the number of bytes (including and immediately
2194 * following the specified offset) that are known to be in the same
2195 * allocated/unallocated state. Note that a subsequent call starting
2196 * at 'offset + *pnum' may return the same allocation status (in other
2197 * words, the result is not necessarily the maximum possible range);
2198 * but 'pnum' will only be 0 when end of file is reached.
2201 int bdrv_is_allocated_above(BlockDriverState
*top
,
2202 BlockDriverState
*base
,
2203 int64_t offset
, int64_t bytes
, int64_t *pnum
)
2205 BlockDriverState
*intermediate
;
2210 while (intermediate
&& intermediate
!= base
) {
2214 ret
= bdrv_is_allocated(intermediate
, offset
, bytes
, &pnum_inter
);
2223 size_inter
= bdrv_getlength(intermediate
);
2224 if (size_inter
< 0) {
2227 if (n
> pnum_inter
&&
2228 (intermediate
== top
|| offset
+ pnum_inter
< size_inter
)) {
2232 intermediate
= backing_bs(intermediate
);
2239 typedef struct BdrvVmstateCo
{
2240 BlockDriverState
*bs
;
2247 static int coroutine_fn
2248 bdrv_co_rw_vmstate(BlockDriverState
*bs
, QEMUIOVector
*qiov
, int64_t pos
,
2251 BlockDriver
*drv
= bs
->drv
;
2254 bdrv_inc_in_flight(bs
);
2258 } else if (drv
->bdrv_load_vmstate
) {
2260 ret
= drv
->bdrv_load_vmstate(bs
, qiov
, pos
);
2262 ret
= drv
->bdrv_save_vmstate(bs
, qiov
, pos
);
2264 } else if (bs
->file
) {
2265 ret
= bdrv_co_rw_vmstate(bs
->file
->bs
, qiov
, pos
, is_read
);
2268 bdrv_dec_in_flight(bs
);
2272 static void coroutine_fn
bdrv_co_rw_vmstate_entry(void *opaque
)
2274 BdrvVmstateCo
*co
= opaque
;
2275 co
->ret
= bdrv_co_rw_vmstate(co
->bs
, co
->qiov
, co
->pos
, co
->is_read
);
2279 bdrv_rw_vmstate(BlockDriverState
*bs
, QEMUIOVector
*qiov
, int64_t pos
,
2282 if (qemu_in_coroutine()) {
2283 return bdrv_co_rw_vmstate(bs
, qiov
, pos
, is_read
);
2285 BdrvVmstateCo data
= {
2290 .ret
= -EINPROGRESS
,
2292 Coroutine
*co
= qemu_coroutine_create(bdrv_co_rw_vmstate_entry
, &data
);
2294 bdrv_coroutine_enter(bs
, co
);
2295 BDRV_POLL_WHILE(bs
, data
.ret
== -EINPROGRESS
);
2300 int bdrv_save_vmstate(BlockDriverState
*bs
, const uint8_t *buf
,
2301 int64_t pos
, int size
)
2304 struct iovec iov
= {
2305 .iov_base
= (void *) buf
,
2310 qemu_iovec_init_external(&qiov
, &iov
, 1);
2312 ret
= bdrv_writev_vmstate(bs
, &qiov
, pos
);
2320 int bdrv_writev_vmstate(BlockDriverState
*bs
, QEMUIOVector
*qiov
, int64_t pos
)
2322 return bdrv_rw_vmstate(bs
, qiov
, pos
, false);
2325 int bdrv_load_vmstate(BlockDriverState
*bs
, uint8_t *buf
,
2326 int64_t pos
, int size
)
2329 struct iovec iov
= {
2335 qemu_iovec_init_external(&qiov
, &iov
, 1);
2336 ret
= bdrv_readv_vmstate(bs
, &qiov
, pos
);
2344 int bdrv_readv_vmstate(BlockDriverState
*bs
, QEMUIOVector
*qiov
, int64_t pos
)
2346 return bdrv_rw_vmstate(bs
, qiov
, pos
, true);
2349 /**************************************************************/
2352 void bdrv_aio_cancel(BlockAIOCB
*acb
)
2355 bdrv_aio_cancel_async(acb
);
2356 while (acb
->refcnt
> 1) {
2357 if (acb
->aiocb_info
->get_aio_context
) {
2358 aio_poll(acb
->aiocb_info
->get_aio_context(acb
), true);
2359 } else if (acb
->bs
) {
2360 /* qemu_aio_ref and qemu_aio_unref are not thread-safe, so
2361 * assert that we're not using an I/O thread. Thread-safe
2362 * code should use bdrv_aio_cancel_async exclusively.
2364 assert(bdrv_get_aio_context(acb
->bs
) == qemu_get_aio_context());
2365 aio_poll(bdrv_get_aio_context(acb
->bs
), true);
2370 qemu_aio_unref(acb
);
2373 /* Async version of aio cancel. The caller is not blocked if the acb implements
2374 * cancel_async, otherwise we do nothing and let the request normally complete.
2375 * In either case the completion callback must be called. */
2376 void bdrv_aio_cancel_async(BlockAIOCB
*acb
)
2378 if (acb
->aiocb_info
->cancel_async
) {
2379 acb
->aiocb_info
->cancel_async(acb
);
2383 /**************************************************************/
2384 /* Coroutine block device emulation */
2386 typedef struct FlushCo
{
2387 BlockDriverState
*bs
;
2392 static void coroutine_fn
bdrv_flush_co_entry(void *opaque
)
2394 FlushCo
*rwco
= opaque
;
2396 rwco
->ret
= bdrv_co_flush(rwco
->bs
);
2399 int coroutine_fn
bdrv_co_flush(BlockDriverState
*bs
)
2404 bdrv_inc_in_flight(bs
);
2406 if (!bdrv_is_inserted(bs
) || bdrv_is_read_only(bs
) ||
2411 qemu_co_mutex_lock(&bs
->reqs_lock
);
2412 current_gen
= atomic_read(&bs
->write_gen
);
2414 /* Wait until any previous flushes are completed */
2415 while (bs
->active_flush_req
) {
2416 qemu_co_queue_wait(&bs
->flush_queue
, &bs
->reqs_lock
);
2419 /* Flushes reach this point in nondecreasing current_gen order. */
2420 bs
->active_flush_req
= true;
2421 qemu_co_mutex_unlock(&bs
->reqs_lock
);
2423 /* Write back all layers by calling one driver function */
2424 if (bs
->drv
->bdrv_co_flush
) {
2425 ret
= bs
->drv
->bdrv_co_flush(bs
);
2429 /* Write back cached data to the OS even with cache=unsafe */
2430 BLKDBG_EVENT(bs
->file
, BLKDBG_FLUSH_TO_OS
);
2431 if (bs
->drv
->bdrv_co_flush_to_os
) {
2432 ret
= bs
->drv
->bdrv_co_flush_to_os(bs
);
2438 /* But don't actually force it to the disk with cache=unsafe */
2439 if (bs
->open_flags
& BDRV_O_NO_FLUSH
) {
2443 /* Check if we really need to flush anything */
2444 if (bs
->flushed_gen
== current_gen
) {
2448 BLKDBG_EVENT(bs
->file
, BLKDBG_FLUSH_TO_DISK
);
2450 /* bs->drv->bdrv_co_flush() might have ejected the BDS
2451 * (even in case of apparent success) */
2455 if (bs
->drv
->bdrv_co_flush_to_disk
) {
2456 ret
= bs
->drv
->bdrv_co_flush_to_disk(bs
);
2457 } else if (bs
->drv
->bdrv_aio_flush
) {
2459 CoroutineIOCompletion co
= {
2460 .coroutine
= qemu_coroutine_self(),
2463 acb
= bs
->drv
->bdrv_aio_flush(bs
, bdrv_co_io_em_complete
, &co
);
2467 qemu_coroutine_yield();
2472 * Some block drivers always operate in either writethrough or unsafe
2473 * mode and don't support bdrv_flush therefore. Usually qemu doesn't
2474 * know how the server works (because the behaviour is hardcoded or
2475 * depends on server-side configuration), so we can't ensure that
2476 * everything is safe on disk. Returning an error doesn't work because
2477 * that would break guests even if the server operates in writethrough
2480 * Let's hope the user knows what he's doing.
2489 /* Now flush the underlying protocol. It will also have BDRV_O_NO_FLUSH
2490 * in the case of cache=unsafe, so there are no useless flushes.
2493 ret
= bs
->file
? bdrv_co_flush(bs
->file
->bs
) : 0;
2495 /* Notify any pending flushes that we have completed */
2497 bs
->flushed_gen
= current_gen
;
2500 qemu_co_mutex_lock(&bs
->reqs_lock
);
2501 bs
->active_flush_req
= false;
2502 /* Return value is ignored - it's ok if wait queue is empty */
2503 qemu_co_queue_next(&bs
->flush_queue
);
2504 qemu_co_mutex_unlock(&bs
->reqs_lock
);
2507 bdrv_dec_in_flight(bs
);
2511 int bdrv_flush(BlockDriverState
*bs
)
2514 FlushCo flush_co
= {
2519 if (qemu_in_coroutine()) {
2520 /* Fast-path if already in coroutine context */
2521 bdrv_flush_co_entry(&flush_co
);
2523 co
= qemu_coroutine_create(bdrv_flush_co_entry
, &flush_co
);
2524 bdrv_coroutine_enter(bs
, co
);
2525 BDRV_POLL_WHILE(bs
, flush_co
.ret
== NOT_DONE
);
2528 return flush_co
.ret
;
2531 typedef struct DiscardCo
{
2532 BlockDriverState
*bs
;
2537 static void coroutine_fn
bdrv_pdiscard_co_entry(void *opaque
)
2539 DiscardCo
*rwco
= opaque
;
2541 rwco
->ret
= bdrv_co_pdiscard(rwco
->bs
, rwco
->offset
, rwco
->bytes
);
2544 int coroutine_fn
bdrv_co_pdiscard(BlockDriverState
*bs
, int64_t offset
,
2547 BdrvTrackedRequest req
;
2548 int max_pdiscard
, ret
;
2549 int head
, tail
, align
;
2555 if (bdrv_has_readonly_bitmaps(bs
)) {
2559 ret
= bdrv_check_byte_request(bs
, offset
, bytes
);
2562 } else if (bs
->read_only
) {
2565 assert(!(bs
->open_flags
& BDRV_O_INACTIVE
));
2567 /* Do nothing if disabled. */
2568 if (!(bs
->open_flags
& BDRV_O_UNMAP
)) {
2572 if (!bs
->drv
->bdrv_co_pdiscard
&& !bs
->drv
->bdrv_aio_pdiscard
) {
2576 /* Discard is advisory, but some devices track and coalesce
2577 * unaligned requests, so we must pass everything down rather than
2578 * round here. Still, most devices will just silently ignore
2579 * unaligned requests (by returning -ENOTSUP), so we must fragment
2580 * the request accordingly. */
2581 align
= MAX(bs
->bl
.pdiscard_alignment
, bs
->bl
.request_alignment
);
2582 assert(align
% bs
->bl
.request_alignment
== 0);
2583 head
= offset
% align
;
2584 tail
= (offset
+ bytes
) % align
;
2586 bdrv_inc_in_flight(bs
);
2587 tracked_request_begin(&req
, bs
, offset
, bytes
, BDRV_TRACKED_DISCARD
);
2589 ret
= notifier_with_return_list_notify(&bs
->before_write_notifiers
, &req
);
2594 max_pdiscard
= QEMU_ALIGN_DOWN(MIN_NON_ZERO(bs
->bl
.max_pdiscard
, INT_MAX
),
2596 assert(max_pdiscard
>= bs
->bl
.request_alignment
);
2602 /* Make small requests to get to alignment boundaries. */
2603 num
= MIN(bytes
, align
- head
);
2604 if (!QEMU_IS_ALIGNED(num
, bs
->bl
.request_alignment
)) {
2605 num
%= bs
->bl
.request_alignment
;
2607 head
= (head
+ num
) % align
;
2608 assert(num
< max_pdiscard
);
2611 /* Shorten the request to the last aligned cluster. */
2613 } else if (!QEMU_IS_ALIGNED(tail
, bs
->bl
.request_alignment
) &&
2614 tail
> bs
->bl
.request_alignment
) {
2615 tail
%= bs
->bl
.request_alignment
;
2619 /* limit request size */
2620 if (num
> max_pdiscard
) {
2628 if (bs
->drv
->bdrv_co_pdiscard
) {
2629 ret
= bs
->drv
->bdrv_co_pdiscard(bs
, offset
, num
);
2632 CoroutineIOCompletion co
= {
2633 .coroutine
= qemu_coroutine_self(),
2636 acb
= bs
->drv
->bdrv_aio_pdiscard(bs
, offset
, num
,
2637 bdrv_co_io_em_complete
, &co
);
2642 qemu_coroutine_yield();
2646 if (ret
&& ret
!= -ENOTSUP
) {
2655 atomic_inc(&bs
->write_gen
);
2656 bdrv_set_dirty(bs
, req
.offset
, req
.bytes
);
2657 tracked_request_end(&req
);
2658 bdrv_dec_in_flight(bs
);
2662 int bdrv_pdiscard(BlockDriverState
*bs
, int64_t offset
, int bytes
)
2672 if (qemu_in_coroutine()) {
2673 /* Fast-path if already in coroutine context */
2674 bdrv_pdiscard_co_entry(&rwco
);
2676 co
= qemu_coroutine_create(bdrv_pdiscard_co_entry
, &rwco
);
2677 bdrv_coroutine_enter(bs
, co
);
2678 BDRV_POLL_WHILE(bs
, rwco
.ret
== NOT_DONE
);
2684 int bdrv_co_ioctl(BlockDriverState
*bs
, int req
, void *buf
)
2686 BlockDriver
*drv
= bs
->drv
;
2687 CoroutineIOCompletion co
= {
2688 .coroutine
= qemu_coroutine_self(),
2692 bdrv_inc_in_flight(bs
);
2693 if (!drv
|| (!drv
->bdrv_aio_ioctl
&& !drv
->bdrv_co_ioctl
)) {
2698 if (drv
->bdrv_co_ioctl
) {
2699 co
.ret
= drv
->bdrv_co_ioctl(bs
, req
, buf
);
2701 acb
= drv
->bdrv_aio_ioctl(bs
, req
, buf
, bdrv_co_io_em_complete
, &co
);
2706 qemu_coroutine_yield();
2709 bdrv_dec_in_flight(bs
);
2713 void *qemu_blockalign(BlockDriverState
*bs
, size_t size
)
2715 return qemu_memalign(bdrv_opt_mem_align(bs
), size
);
2718 void *qemu_blockalign0(BlockDriverState
*bs
, size_t size
)
2720 return memset(qemu_blockalign(bs
, size
), 0, size
);
2723 void *qemu_try_blockalign(BlockDriverState
*bs
, size_t size
)
2725 size_t align
= bdrv_opt_mem_align(bs
);
2727 /* Ensure that NULL is never returned on success */
2733 return qemu_try_memalign(align
, size
);
2736 void *qemu_try_blockalign0(BlockDriverState
*bs
, size_t size
)
2738 void *mem
= qemu_try_blockalign(bs
, size
);
2741 memset(mem
, 0, size
);
2748 * Check if all memory in this vector is sector aligned.
2750 bool bdrv_qiov_is_aligned(BlockDriverState
*bs
, QEMUIOVector
*qiov
)
2753 size_t alignment
= bdrv_min_mem_align(bs
);
2755 for (i
= 0; i
< qiov
->niov
; i
++) {
2756 if ((uintptr_t) qiov
->iov
[i
].iov_base
% alignment
) {
2759 if (qiov
->iov
[i
].iov_len
% alignment
) {
2767 void bdrv_add_before_write_notifier(BlockDriverState
*bs
,
2768 NotifierWithReturn
*notifier
)
2770 notifier_with_return_list_add(&bs
->before_write_notifiers
, notifier
);
2773 void bdrv_io_plug(BlockDriverState
*bs
)
2777 QLIST_FOREACH(child
, &bs
->children
, next
) {
2778 bdrv_io_plug(child
->bs
);
2781 if (atomic_fetch_inc(&bs
->io_plugged
) == 0) {
2782 BlockDriver
*drv
= bs
->drv
;
2783 if (drv
&& drv
->bdrv_io_plug
) {
2784 drv
->bdrv_io_plug(bs
);
2789 void bdrv_io_unplug(BlockDriverState
*bs
)
2793 assert(bs
->io_plugged
);
2794 if (atomic_fetch_dec(&bs
->io_plugged
) == 1) {
2795 BlockDriver
*drv
= bs
->drv
;
2796 if (drv
&& drv
->bdrv_io_unplug
) {
2797 drv
->bdrv_io_unplug(bs
);
2801 QLIST_FOREACH(child
, &bs
->children
, next
) {
2802 bdrv_io_unplug(child
->bs
);
2806 void bdrv_register_buf(BlockDriverState
*bs
, void *host
, size_t size
)
2810 if (bs
->drv
&& bs
->drv
->bdrv_register_buf
) {
2811 bs
->drv
->bdrv_register_buf(bs
, host
, size
);
2813 QLIST_FOREACH(child
, &bs
->children
, next
) {
2814 bdrv_register_buf(child
->bs
, host
, size
);
2818 void bdrv_unregister_buf(BlockDriverState
*bs
, void *host
)
2822 if (bs
->drv
&& bs
->drv
->bdrv_unregister_buf
) {
2823 bs
->drv
->bdrv_unregister_buf(bs
, host
);
2825 QLIST_FOREACH(child
, &bs
->children
, next
) {
2826 bdrv_unregister_buf(child
->bs
, host
);