4 * Copyright Red Hat, Inc. 2012
7 * Paolo Bonzini <pbonzini@redhat.com>
9 * This work is licensed under the terms of the GNU LGPL, version 2 or later.
10 * See the COPYING.LIB file in the top-level directory.
14 #include "qemu/osdep.h"
15 #include "qemu/cutils.h"
16 #include "qemu/coroutine.h"
17 #include "qemu/range.h"
19 #include "block/blockjob_int.h"
20 #include "block/block_int.h"
21 #include "sysemu/block-backend.h"
22 #include "qapi/error.h"
23 #include "qapi/qmp/qerror.h"
24 #include "qemu/ratelimit.h"
25 #include "qemu/bitmap.h"
26 #include "qemu/memalign.h"
28 #define MAX_IN_FLIGHT 16
29 #define MAX_IO_BYTES (1 << 20) /* 1 Mb */
30 #define DEFAULT_MIRROR_BUF_SIZE (MAX_IN_FLIGHT * MAX_IO_BYTES)
32 /* The mirroring buffer is a list of granularity-sized chunks.
33 * Free chunks are organized in a list.
35 typedef struct MirrorBuffer
{
36 QSIMPLEQ_ENTRY(MirrorBuffer
) next
;
39 typedef struct MirrorOp MirrorOp
;
41 typedef struct MirrorBlockJob
{
44 BlockDriverState
*mirror_top_bs
;
45 BlockDriverState
*base
;
46 BlockDriverState
*base_overlay
;
48 /* The name of the graph node to replace */
50 /* The BDS to replace */
51 BlockDriverState
*to_replace
;
52 /* Used to block operations on the drive-mirror-replace target */
53 Error
*replace_blocker
;
55 BlockMirrorBackingMode backing_mode
;
56 /* Whether the target image requires explicit zero-initialization */
58 MirrorCopyMode copy_mode
;
59 BlockdevOnError on_source_error
, on_target_error
;
60 /* Set when the target is synced (dirty bitmap is clean, nothing
61 * in flight) and the job is running in active mode */
67 unsigned long *cow_bitmap
;
68 BdrvDirtyBitmap
*dirty_bitmap
;
69 BdrvDirtyBitmapIter
*dbi
;
71 QSIMPLEQ_HEAD(, MirrorBuffer
) buf_free
;
74 uint64_t last_pause_ns
;
75 unsigned long *in_flight_bitmap
;
77 int64_t bytes_in_flight
;
78 QTAILQ_HEAD(, MirrorOp
) ops_in_flight
;
81 int target_cluster_size
;
83 bool initial_zeroing_ongoing
;
84 int in_active_write_counter
;
89 typedef struct MirrorBDSOpaque
{
101 /* The pointee is set by mirror_co_read(), mirror_co_zero(), and
102 * mirror_co_discard() before yielding for the first time */
103 int64_t *bytes_handled
;
106 bool is_active_write
;
108 CoQueue waiting_requests
;
110 MirrorOp
*waiting_for_op
;
112 QTAILQ_ENTRY(MirrorOp
) next
;
115 typedef enum MirrorMethod
{
118 MIRROR_METHOD_DISCARD
,
121 static BlockErrorAction
mirror_error_action(MirrorBlockJob
*s
, bool read
,
124 s
->actively_synced
= false;
126 return block_job_error_action(&s
->common
, s
->on_source_error
,
129 return block_job_error_action(&s
->common
, s
->on_target_error
,
134 static void coroutine_fn
mirror_wait_on_conflicts(MirrorOp
*self
,
139 uint64_t self_start_chunk
= offset
/ s
->granularity
;
140 uint64_t self_end_chunk
= DIV_ROUND_UP(offset
+ bytes
, s
->granularity
);
141 uint64_t self_nb_chunks
= self_end_chunk
- self_start_chunk
;
143 while (find_next_bit(s
->in_flight_bitmap
, self_end_chunk
,
144 self_start_chunk
) < self_end_chunk
&&
149 QTAILQ_FOREACH(op
, &s
->ops_in_flight
, next
) {
150 uint64_t op_start_chunk
= op
->offset
/ s
->granularity
;
151 uint64_t op_nb_chunks
= DIV_ROUND_UP(op
->offset
+ op
->bytes
,
159 if (ranges_overlap(self_start_chunk
, self_nb_chunks
,
160 op_start_chunk
, op_nb_chunks
))
164 * If the operation is already (indirectly) waiting for us,
165 * or will wait for us as soon as it wakes up, then just go
166 * on (instead of producing a deadlock in the former case).
168 if (op
->waiting_for_op
) {
172 self
->waiting_for_op
= op
;
175 qemu_co_queue_wait(&op
->waiting_requests
, NULL
);
178 self
->waiting_for_op
= NULL
;
187 static void coroutine_fn
mirror_iteration_done(MirrorOp
*op
, int ret
)
189 MirrorBlockJob
*s
= op
->s
;
194 trace_mirror_iteration_done(s
, op
->offset
, op
->bytes
, ret
);
197 s
->bytes_in_flight
-= op
->bytes
;
199 for (i
= 0; i
< op
->qiov
.niov
; i
++) {
200 MirrorBuffer
*buf
= (MirrorBuffer
*) iov
[i
].iov_base
;
201 QSIMPLEQ_INSERT_TAIL(&s
->buf_free
, buf
, next
);
205 chunk_num
= op
->offset
/ s
->granularity
;
206 nb_chunks
= DIV_ROUND_UP(op
->bytes
, s
->granularity
);
208 bitmap_clear(s
->in_flight_bitmap
, chunk_num
, nb_chunks
);
209 QTAILQ_REMOVE(&s
->ops_in_flight
, op
, next
);
212 bitmap_set(s
->cow_bitmap
, chunk_num
, nb_chunks
);
214 if (!s
->initial_zeroing_ongoing
) {
215 job_progress_update(&s
->common
.job
, op
->bytes
);
218 qemu_iovec_destroy(&op
->qiov
);
220 qemu_co_queue_restart_all(&op
->waiting_requests
);
224 static void coroutine_fn
mirror_write_complete(MirrorOp
*op
, int ret
)
226 MirrorBlockJob
*s
= op
->s
;
229 BlockErrorAction action
;
231 bdrv_set_dirty_bitmap(s
->dirty_bitmap
, op
->offset
, op
->bytes
);
232 action
= mirror_error_action(s
, false, -ret
);
233 if (action
== BLOCK_ERROR_ACTION_REPORT
&& s
->ret
>= 0) {
238 mirror_iteration_done(op
, ret
);
241 static void coroutine_fn
mirror_read_complete(MirrorOp
*op
, int ret
)
243 MirrorBlockJob
*s
= op
->s
;
246 BlockErrorAction action
;
248 bdrv_set_dirty_bitmap(s
->dirty_bitmap
, op
->offset
, op
->bytes
);
249 action
= mirror_error_action(s
, true, -ret
);
250 if (action
== BLOCK_ERROR_ACTION_REPORT
&& s
->ret
>= 0) {
254 mirror_iteration_done(op
, ret
);
258 ret
= blk_co_pwritev(s
->target
, op
->offset
, op
->qiov
.size
, &op
->qiov
, 0);
259 mirror_write_complete(op
, ret
);
262 /* Clip bytes relative to offset to not exceed end-of-file */
263 static inline int64_t mirror_clip_bytes(MirrorBlockJob
*s
,
267 return MIN(bytes
, s
->bdev_length
- offset
);
270 /* Round offset and/or bytes to target cluster if COW is needed, and
271 * return the offset of the adjusted tail against original. */
272 static int mirror_cow_align(MirrorBlockJob
*s
, int64_t *offset
,
277 int64_t align_offset
= *offset
;
278 int64_t align_bytes
= *bytes
;
279 int max_bytes
= s
->granularity
* s
->max_iov
;
281 need_cow
= !test_bit(*offset
/ s
->granularity
, s
->cow_bitmap
);
282 need_cow
|= !test_bit((*offset
+ *bytes
- 1) / s
->granularity
,
285 bdrv_round_to_clusters(blk_bs(s
->target
), *offset
, *bytes
,
286 &align_offset
, &align_bytes
);
289 if (align_bytes
> max_bytes
) {
290 align_bytes
= max_bytes
;
292 align_bytes
= QEMU_ALIGN_DOWN(align_bytes
, s
->target_cluster_size
);
295 /* Clipping may result in align_bytes unaligned to chunk boundary, but
296 * that doesn't matter because it's already the end of source image. */
297 align_bytes
= mirror_clip_bytes(s
, align_offset
, align_bytes
);
299 ret
= align_offset
+ align_bytes
- (*offset
+ *bytes
);
300 *offset
= align_offset
;
301 *bytes
= align_bytes
;
306 static inline void coroutine_fn
307 mirror_wait_for_any_operation(MirrorBlockJob
*s
, bool active
)
311 QTAILQ_FOREACH(op
, &s
->ops_in_flight
, next
) {
312 /* Do not wait on pseudo ops, because it may in turn wait on
313 * some other operation to start, which may in fact be the
314 * caller of this function. Since there is only one pseudo op
315 * at any given time, we will always find some real operation
317 if (!op
->is_pseudo_op
&& op
->is_in_flight
&&
318 op
->is_active_write
== active
)
320 qemu_co_queue_wait(&op
->waiting_requests
, NULL
);
327 static inline void coroutine_fn
328 mirror_wait_for_free_in_flight_slot(MirrorBlockJob
*s
)
330 /* Only non-active operations use up in-flight slots */
331 mirror_wait_for_any_operation(s
, false);
334 /* Perform a mirror copy operation.
336 * *op->bytes_handled is set to the number of bytes copied after and
337 * including offset, excluding any bytes copied prior to offset due
338 * to alignment. This will be op->bytes if no alignment is necessary,
339 * or (new_end - op->offset) if the tail is rounded up or down due to
340 * alignment or buffer limit.
342 static void coroutine_fn
mirror_co_read(void *opaque
)
344 MirrorOp
*op
= opaque
;
345 MirrorBlockJob
*s
= op
->s
;
350 max_bytes
= s
->granularity
* s
->max_iov
;
352 /* We can only handle as much as buf_size at a time. */
353 op
->bytes
= MIN(s
->buf_size
, MIN(max_bytes
, op
->bytes
));
355 assert(op
->bytes
< BDRV_REQUEST_MAX_BYTES
);
356 *op
->bytes_handled
= op
->bytes
;
359 *op
->bytes_handled
+= mirror_cow_align(s
, &op
->offset
, &op
->bytes
);
361 /* Cannot exceed BDRV_REQUEST_MAX_BYTES + INT_MAX */
362 assert(*op
->bytes_handled
<= UINT_MAX
);
363 assert(op
->bytes
<= s
->buf_size
);
364 /* The offset is granularity-aligned because:
365 * 1) Caller passes in aligned values;
366 * 2) mirror_cow_align is used only when target cluster is larger. */
367 assert(QEMU_IS_ALIGNED(op
->offset
, s
->granularity
));
368 /* The range is sector-aligned, since bdrv_getlength() rounds up. */
369 assert(QEMU_IS_ALIGNED(op
->bytes
, BDRV_SECTOR_SIZE
));
370 nb_chunks
= DIV_ROUND_UP(op
->bytes
, s
->granularity
);
372 while (s
->buf_free_count
< nb_chunks
) {
373 trace_mirror_yield_in_flight(s
, op
->offset
, s
->in_flight
);
374 mirror_wait_for_free_in_flight_slot(s
);
377 /* Now make a QEMUIOVector taking enough granularity-sized chunks
380 qemu_iovec_init(&op
->qiov
, nb_chunks
);
381 while (nb_chunks
-- > 0) {
382 MirrorBuffer
*buf
= QSIMPLEQ_FIRST(&s
->buf_free
);
383 size_t remaining
= op
->bytes
- op
->qiov
.size
;
385 QSIMPLEQ_REMOVE_HEAD(&s
->buf_free
, next
);
387 qemu_iovec_add(&op
->qiov
, buf
, MIN(s
->granularity
, remaining
));
390 /* Copy the dirty cluster. */
392 s
->bytes_in_flight
+= op
->bytes
;
393 op
->is_in_flight
= true;
394 trace_mirror_one_iteration(s
, op
->offset
, op
->bytes
);
396 ret
= bdrv_co_preadv(s
->mirror_top_bs
->backing
, op
->offset
, op
->bytes
,
398 mirror_read_complete(op
, ret
);
401 static void coroutine_fn
mirror_co_zero(void *opaque
)
403 MirrorOp
*op
= opaque
;
407 op
->s
->bytes_in_flight
+= op
->bytes
;
408 *op
->bytes_handled
= op
->bytes
;
409 op
->is_in_flight
= true;
411 ret
= blk_co_pwrite_zeroes(op
->s
->target
, op
->offset
, op
->bytes
,
412 op
->s
->unmap
? BDRV_REQ_MAY_UNMAP
: 0);
413 mirror_write_complete(op
, ret
);
416 static void coroutine_fn
mirror_co_discard(void *opaque
)
418 MirrorOp
*op
= opaque
;
422 op
->s
->bytes_in_flight
+= op
->bytes
;
423 *op
->bytes_handled
= op
->bytes
;
424 op
->is_in_flight
= true;
426 ret
= blk_co_pdiscard(op
->s
->target
, op
->offset
, op
->bytes
);
427 mirror_write_complete(op
, ret
);
430 static unsigned mirror_perform(MirrorBlockJob
*s
, int64_t offset
,
431 unsigned bytes
, MirrorMethod mirror_method
)
435 int64_t bytes_handled
= -1;
437 op
= g_new(MirrorOp
, 1);
442 .bytes_handled
= &bytes_handled
,
444 qemu_co_queue_init(&op
->waiting_requests
);
446 switch (mirror_method
) {
447 case MIRROR_METHOD_COPY
:
448 co
= qemu_coroutine_create(mirror_co_read
, op
);
450 case MIRROR_METHOD_ZERO
:
451 co
= qemu_coroutine_create(mirror_co_zero
, op
);
453 case MIRROR_METHOD_DISCARD
:
454 co
= qemu_coroutine_create(mirror_co_discard
, op
);
461 QTAILQ_INSERT_TAIL(&s
->ops_in_flight
, op
, next
);
462 qemu_coroutine_enter(co
);
463 /* At this point, ownership of op has been moved to the coroutine
464 * and the object may already be freed */
466 /* Assert that this value has been set */
467 assert(bytes_handled
>= 0);
469 /* Same assertion as in mirror_co_read() (and for mirror_co_read()
470 * and mirror_co_discard(), bytes_handled == op->bytes, which
471 * is the @bytes parameter given to this function) */
472 assert(bytes_handled
<= UINT_MAX
);
473 return bytes_handled
;
476 static uint64_t coroutine_fn
mirror_iteration(MirrorBlockJob
*s
)
478 BlockDriverState
*source
= s
->mirror_top_bs
->backing
->bs
;
481 uint64_t delay_ns
= 0, ret
= 0;
482 /* At least the first dirty chunk is mirrored in one iteration. */
484 bool write_zeroes_ok
= bdrv_can_write_zeroes_with_unmap(blk_bs(s
->target
));
485 int max_io_bytes
= MAX(s
->buf_size
/ MAX_IN_FLIGHT
, MAX_IO_BYTES
);
487 bdrv_dirty_bitmap_lock(s
->dirty_bitmap
);
488 offset
= bdrv_dirty_iter_next(s
->dbi
);
490 bdrv_set_dirty_iter(s
->dbi
, 0);
491 offset
= bdrv_dirty_iter_next(s
->dbi
);
492 trace_mirror_restart_iter(s
, bdrv_get_dirty_count(s
->dirty_bitmap
));
495 bdrv_dirty_bitmap_unlock(s
->dirty_bitmap
);
497 mirror_wait_on_conflicts(NULL
, s
, offset
, 1);
499 job_pause_point(&s
->common
.job
);
501 /* Find the number of consective dirty chunks following the first dirty
502 * one, and wait for in flight requests in them. */
503 bdrv_dirty_bitmap_lock(s
->dirty_bitmap
);
504 while (nb_chunks
* s
->granularity
< s
->buf_size
) {
506 int64_t next_offset
= offset
+ nb_chunks
* s
->granularity
;
507 int64_t next_chunk
= next_offset
/ s
->granularity
;
508 if (next_offset
>= s
->bdev_length
||
509 !bdrv_dirty_bitmap_get_locked(s
->dirty_bitmap
, next_offset
)) {
512 if (test_bit(next_chunk
, s
->in_flight_bitmap
)) {
516 next_dirty
= bdrv_dirty_iter_next(s
->dbi
);
517 if (next_dirty
> next_offset
|| next_dirty
< 0) {
518 /* The bitmap iterator's cache is stale, refresh it */
519 bdrv_set_dirty_iter(s
->dbi
, next_offset
);
520 next_dirty
= bdrv_dirty_iter_next(s
->dbi
);
522 assert(next_dirty
== next_offset
);
526 /* Clear dirty bits before querying the block status, because
527 * calling bdrv_block_status_above could yield - if some blocks are
528 * marked dirty in this window, we need to know.
530 bdrv_reset_dirty_bitmap_locked(s
->dirty_bitmap
, offset
,
531 nb_chunks
* s
->granularity
);
532 bdrv_dirty_bitmap_unlock(s
->dirty_bitmap
);
534 /* Before claiming an area in the in-flight bitmap, we have to
535 * create a MirrorOp for it so that conflicting requests can wait
536 * for it. mirror_perform() will create the real MirrorOps later,
537 * for now we just create a pseudo operation that will wake up all
538 * conflicting requests once all real operations have been
540 pseudo_op
= g_new(MirrorOp
, 1);
541 *pseudo_op
= (MirrorOp
){
543 .bytes
= nb_chunks
* s
->granularity
,
544 .is_pseudo_op
= true,
546 qemu_co_queue_init(&pseudo_op
->waiting_requests
);
547 QTAILQ_INSERT_TAIL(&s
->ops_in_flight
, pseudo_op
, next
);
549 bitmap_set(s
->in_flight_bitmap
, offset
/ s
->granularity
, nb_chunks
);
550 while (nb_chunks
> 0 && offset
< s
->bdev_length
) {
553 int64_t io_bytes_acct
;
554 MirrorMethod mirror_method
= MIRROR_METHOD_COPY
;
556 assert(!(offset
% s
->granularity
));
557 ret
= bdrv_block_status_above(source
, NULL
, offset
,
558 nb_chunks
* s
->granularity
,
559 &io_bytes
, NULL
, NULL
);
561 io_bytes
= MIN(nb_chunks
* s
->granularity
, max_io_bytes
);
562 } else if (ret
& BDRV_BLOCK_DATA
) {
563 io_bytes
= MIN(io_bytes
, max_io_bytes
);
566 io_bytes
-= io_bytes
% s
->granularity
;
567 if (io_bytes
< s
->granularity
) {
568 io_bytes
= s
->granularity
;
569 } else if (ret
>= 0 && !(ret
& BDRV_BLOCK_DATA
)) {
570 int64_t target_offset
;
571 int64_t target_bytes
;
572 bdrv_round_to_clusters(blk_bs(s
->target
), offset
, io_bytes
,
573 &target_offset
, &target_bytes
);
574 if (target_offset
== offset
&&
575 target_bytes
== io_bytes
) {
576 mirror_method
= ret
& BDRV_BLOCK_ZERO
?
578 MIRROR_METHOD_DISCARD
;
582 while (s
->in_flight
>= MAX_IN_FLIGHT
) {
583 trace_mirror_yield_in_flight(s
, offset
, s
->in_flight
);
584 mirror_wait_for_free_in_flight_slot(s
);
592 io_bytes
= mirror_clip_bytes(s
, offset
, io_bytes
);
593 io_bytes
= mirror_perform(s
, offset
, io_bytes
, mirror_method
);
594 if (mirror_method
!= MIRROR_METHOD_COPY
&& write_zeroes_ok
) {
597 io_bytes_acct
= io_bytes
;
601 nb_chunks
-= DIV_ROUND_UP(io_bytes
, s
->granularity
);
602 delay_ns
= block_job_ratelimit_get_delay(&s
->common
, io_bytes_acct
);
607 QTAILQ_REMOVE(&s
->ops_in_flight
, pseudo_op
, next
);
608 qemu_co_queue_restart_all(&pseudo_op
->waiting_requests
);
614 static void mirror_free_init(MirrorBlockJob
*s
)
616 int granularity
= s
->granularity
;
617 size_t buf_size
= s
->buf_size
;
618 uint8_t *buf
= s
->buf
;
620 assert(s
->buf_free_count
== 0);
621 QSIMPLEQ_INIT(&s
->buf_free
);
622 while (buf_size
!= 0) {
623 MirrorBuffer
*cur
= (MirrorBuffer
*)buf
;
624 QSIMPLEQ_INSERT_TAIL(&s
->buf_free
, cur
, next
);
626 buf_size
-= granularity
;
631 /* This is also used for the .pause callback. There is no matching
632 * mirror_resume() because mirror_run() will begin iterating again
633 * when the job is resumed.
635 static void coroutine_fn
mirror_wait_for_all_io(MirrorBlockJob
*s
)
637 while (s
->in_flight
> 0) {
638 mirror_wait_for_free_in_flight_slot(s
);
643 * mirror_exit_common: handle both abort() and prepare() cases.
644 * for .prepare, returns 0 on success and -errno on failure.
645 * for .abort cases, denoted by abort = true, MUST return 0.
647 static int mirror_exit_common(Job
*job
)
649 MirrorBlockJob
*s
= container_of(job
, MirrorBlockJob
, common
.job
);
650 BlockJob
*bjob
= &s
->common
;
651 MirrorBDSOpaque
*bs_opaque
;
652 AioContext
*replace_aio_context
= NULL
;
653 BlockDriverState
*src
;
654 BlockDriverState
*target_bs
;
655 BlockDriverState
*mirror_top_bs
;
656 Error
*local_err
= NULL
;
657 bool abort
= job
->ret
< 0;
665 mirror_top_bs
= s
->mirror_top_bs
;
666 bs_opaque
= mirror_top_bs
->opaque
;
667 src
= mirror_top_bs
->backing
->bs
;
668 target_bs
= blk_bs(s
->target
);
670 if (bdrv_chain_contains(src
, target_bs
)) {
671 bdrv_unfreeze_backing_chain(mirror_top_bs
, target_bs
);
674 bdrv_release_dirty_bitmap(s
->dirty_bitmap
);
676 /* Make sure that the source BDS doesn't go away during bdrv_replace_node,
677 * before we can call bdrv_drained_end */
679 bdrv_ref(mirror_top_bs
);
683 * Remove target parent that still uses BLK_PERM_WRITE/RESIZE before
684 * inserting target_bs at s->to_replace, where we might not be able to get
687 blk_unref(s
->target
);
690 /* We don't access the source any more. Dropping any WRITE/RESIZE is
691 * required before it could become a backing file of target_bs. Not having
692 * these permissions any more means that we can't allow any new requests on
693 * mirror_top_bs from now on, so keep it drained. */
694 bdrv_drained_begin(mirror_top_bs
);
695 bs_opaque
->stop
= true;
696 bdrv_child_refresh_perms(mirror_top_bs
, mirror_top_bs
->backing
,
698 if (!abort
&& s
->backing_mode
== MIRROR_SOURCE_BACKING_CHAIN
) {
699 BlockDriverState
*backing
= s
->is_none_mode
? src
: s
->base
;
700 BlockDriverState
*unfiltered_target
= bdrv_skip_filters(target_bs
);
702 if (bdrv_cow_bs(unfiltered_target
) != backing
) {
703 bdrv_set_backing_hd(unfiltered_target
, backing
, &local_err
);
705 error_report_err(local_err
);
710 } else if (!abort
&& s
->backing_mode
== MIRROR_OPEN_BACKING_CHAIN
) {
711 assert(!bdrv_backing_chain_next(target_bs
));
712 ret
= bdrv_open_backing_file(bdrv_skip_filters(target_bs
), NULL
,
713 "backing", &local_err
);
715 error_report_err(local_err
);
721 replace_aio_context
= bdrv_get_aio_context(s
->to_replace
);
722 aio_context_acquire(replace_aio_context
);
725 if (s
->should_complete
&& !abort
) {
726 BlockDriverState
*to_replace
= s
->to_replace
?: src
;
727 bool ro
= bdrv_is_read_only(to_replace
);
729 if (ro
!= bdrv_is_read_only(target_bs
)) {
730 bdrv_reopen_set_read_only(target_bs
, ro
, NULL
);
733 /* The mirror job has no requests in flight any more, but we need to
734 * drain potential other users of the BDS before changing the graph. */
736 bdrv_drained_begin(target_bs
);
738 * Cannot use check_to_replace_node() here, because that would
739 * check for an op blocker on @to_replace, and we have our own
742 if (bdrv_recurse_can_replace(src
, to_replace
)) {
743 bdrv_replace_node(to_replace
, target_bs
, &local_err
);
745 error_setg(&local_err
, "Can no longer replace '%s' by '%s', "
746 "because it can no longer be guaranteed that doing so "
747 "would not lead to an abrupt change of visible data",
748 to_replace
->node_name
, target_bs
->node_name
);
750 bdrv_drained_end(target_bs
);
752 error_report_err(local_err
);
757 bdrv_op_unblock_all(s
->to_replace
, s
->replace_blocker
);
758 error_free(s
->replace_blocker
);
759 bdrv_unref(s
->to_replace
);
761 if (replace_aio_context
) {
762 aio_context_release(replace_aio_context
);
765 bdrv_unref(target_bs
);
768 * Remove the mirror filter driver from the graph. Before this, get rid of
769 * the blockers on the intermediate nodes so that the resulting state is
772 block_job_remove_all_bdrv(bjob
);
773 bdrv_replace_node(mirror_top_bs
, mirror_top_bs
->backing
->bs
, &error_abort
);
775 bs_opaque
->job
= NULL
;
777 bdrv_drained_end(src
);
778 bdrv_drained_end(mirror_top_bs
);
780 bdrv_unref(mirror_top_bs
);
786 static int mirror_prepare(Job
*job
)
788 return mirror_exit_common(job
);
791 static void mirror_abort(Job
*job
)
793 int ret
= mirror_exit_common(job
);
797 static void coroutine_fn
mirror_throttle(MirrorBlockJob
*s
)
799 int64_t now
= qemu_clock_get_ns(QEMU_CLOCK_REALTIME
);
801 if (now
- s
->last_pause_ns
> BLOCK_JOB_SLICE_TIME
) {
802 s
->last_pause_ns
= now
;
803 job_sleep_ns(&s
->common
.job
, 0);
805 job_pause_point(&s
->common
.job
);
809 static int coroutine_fn
mirror_dirty_init(MirrorBlockJob
*s
)
812 BlockDriverState
*bs
= s
->mirror_top_bs
->backing
->bs
;
813 BlockDriverState
*target_bs
= blk_bs(s
->target
);
817 if (s
->zero_target
) {
818 if (!bdrv_can_write_zeroes_with_unmap(target_bs
)) {
819 bdrv_set_dirty_bitmap(s
->dirty_bitmap
, 0, s
->bdev_length
);
823 s
->initial_zeroing_ongoing
= true;
824 for (offset
= 0; offset
< s
->bdev_length
; ) {
825 int bytes
= MIN(s
->bdev_length
- offset
,
826 QEMU_ALIGN_DOWN(INT_MAX
, s
->granularity
));
830 if (job_is_cancelled(&s
->common
.job
)) {
831 s
->initial_zeroing_ongoing
= false;
835 if (s
->in_flight
>= MAX_IN_FLIGHT
) {
836 trace_mirror_yield(s
, UINT64_MAX
, s
->buf_free_count
,
838 mirror_wait_for_free_in_flight_slot(s
);
842 mirror_perform(s
, offset
, bytes
, MIRROR_METHOD_ZERO
);
846 mirror_wait_for_all_io(s
);
847 s
->initial_zeroing_ongoing
= false;
850 /* First part, loop on the sectors and initialize the dirty bitmap. */
851 for (offset
= 0; offset
< s
->bdev_length
; ) {
852 /* Just to make sure we are not exceeding int limit. */
853 int bytes
= MIN(s
->bdev_length
- offset
,
854 QEMU_ALIGN_DOWN(INT_MAX
, s
->granularity
));
858 if (job_is_cancelled(&s
->common
.job
)) {
862 ret
= bdrv_is_allocated_above(bs
, s
->base_overlay
, true, offset
, bytes
,
870 bdrv_set_dirty_bitmap(s
->dirty_bitmap
, offset
, count
);
877 /* Called when going out of the streaming phase to flush the bulk of the
878 * data to the medium, or just before completing.
880 static int mirror_flush(MirrorBlockJob
*s
)
882 int ret
= blk_flush(s
->target
);
884 if (mirror_error_action(s
, false, -ret
) == BLOCK_ERROR_ACTION_REPORT
) {
891 static int coroutine_fn
mirror_run(Job
*job
, Error
**errp
)
893 MirrorBlockJob
*s
= container_of(job
, MirrorBlockJob
, common
.job
);
894 BlockDriverState
*bs
= s
->mirror_top_bs
->backing
->bs
;
895 BlockDriverState
*target_bs
= blk_bs(s
->target
);
896 bool need_drain
= true;
897 BlockDeviceIoStatus iostatus
;
899 int64_t target_length
;
901 char backing_filename
[2]; /* we only need 2 characters because we are only
902 checking for a NULL string */
905 if (job_is_cancelled(&s
->common
.job
)) {
909 s
->bdev_length
= bdrv_getlength(bs
);
910 if (s
->bdev_length
< 0) {
911 ret
= s
->bdev_length
;
915 target_length
= blk_getlength(s
->target
);
916 if (target_length
< 0) {
921 /* Active commit must resize the base image if its size differs from the
923 if (s
->base
== blk_bs(s
->target
)) {
924 if (s
->bdev_length
> target_length
) {
925 ret
= blk_truncate(s
->target
, s
->bdev_length
, false,
926 PREALLOC_MODE_OFF
, 0, NULL
);
931 } else if (s
->bdev_length
!= target_length
) {
932 error_setg(errp
, "Source and target image have different sizes");
937 if (s
->bdev_length
== 0) {
938 /* Transition to the READY state and wait for complete. */
939 job_transition_to_ready(&s
->common
.job
);
940 s
->actively_synced
= true;
941 while (!job_cancel_requested(&s
->common
.job
) && !s
->should_complete
) {
942 job_yield(&s
->common
.job
);
947 length
= DIV_ROUND_UP(s
->bdev_length
, s
->granularity
);
948 s
->in_flight_bitmap
= bitmap_new(length
);
950 /* If we have no backing file yet in the destination, we cannot let
951 * the destination do COW. Instead, we copy sectors around the
952 * dirty data if needed. We need a bitmap to do that.
954 bdrv_get_backing_filename(target_bs
, backing_filename
,
955 sizeof(backing_filename
));
956 if (!bdrv_get_info(target_bs
, &bdi
) && bdi
.cluster_size
) {
957 s
->target_cluster_size
= bdi
.cluster_size
;
959 s
->target_cluster_size
= BDRV_SECTOR_SIZE
;
961 if (backing_filename
[0] && !bdrv_backing_chain_next(target_bs
) &&
962 s
->granularity
< s
->target_cluster_size
) {
963 s
->buf_size
= MAX(s
->buf_size
, s
->target_cluster_size
);
964 s
->cow_bitmap
= bitmap_new(length
);
966 s
->max_iov
= MIN(bs
->bl
.max_iov
, target_bs
->bl
.max_iov
);
968 s
->buf
= qemu_try_blockalign(bs
, s
->buf_size
);
969 if (s
->buf
== NULL
) {
976 s
->last_pause_ns
= qemu_clock_get_ns(QEMU_CLOCK_REALTIME
);
977 if (!s
->is_none_mode
) {
978 ret
= mirror_dirty_init(s
);
979 if (ret
< 0 || job_is_cancelled(&s
->common
.job
)) {
985 s
->dbi
= bdrv_dirty_iter_new(s
->dirty_bitmap
);
987 uint64_t delay_ns
= 0;
989 bool should_complete
;
991 /* Do not start passive operations while there are active
992 * writes in progress */
993 while (s
->in_active_write_counter
) {
994 mirror_wait_for_any_operation(s
, true);
1002 job_pause_point(&s
->common
.job
);
1004 if (job_is_cancelled(&s
->common
.job
)) {
1006 goto immediate_exit
;
1009 cnt
= bdrv_get_dirty_count(s
->dirty_bitmap
);
1010 /* cnt is the number of dirty bytes remaining and s->bytes_in_flight is
1011 * the number of bytes currently being processed; together those are
1012 * the current remaining operation length */
1013 job_progress_set_remaining(&s
->common
.job
, s
->bytes_in_flight
+ cnt
);
1015 /* Note that even when no rate limit is applied we need to yield
1016 * periodically with no pending I/O so that bdrv_drain_all() returns.
1017 * We do so every BLKOCK_JOB_SLICE_TIME nanoseconds, or when there is
1018 * an error, or when the source is clean, whichever comes first. */
1019 delta
= qemu_clock_get_ns(QEMU_CLOCK_REALTIME
) - s
->last_pause_ns
;
1020 WITH_JOB_LOCK_GUARD() {
1021 iostatus
= s
->common
.iostatus
;
1023 if (delta
< BLOCK_JOB_SLICE_TIME
&&
1024 iostatus
== BLOCK_DEVICE_IO_STATUS_OK
) {
1025 if (s
->in_flight
>= MAX_IN_FLIGHT
|| s
->buf_free_count
== 0 ||
1026 (cnt
== 0 && s
->in_flight
> 0)) {
1027 trace_mirror_yield(s
, cnt
, s
->buf_free_count
, s
->in_flight
);
1028 mirror_wait_for_free_in_flight_slot(s
);
1030 } else if (cnt
!= 0) {
1031 delay_ns
= mirror_iteration(s
);
1035 should_complete
= false;
1036 if (s
->in_flight
== 0 && cnt
== 0) {
1037 trace_mirror_before_flush(s
);
1038 if (!job_is_ready(&s
->common
.job
)) {
1039 if (mirror_flush(s
) < 0) {
1040 /* Go check s->ret. */
1043 /* We're out of the streaming phase. From now on, if the job
1044 * is cancelled we will actually complete all pending I/O and
1045 * report completion. This way, block-job-cancel will leave
1046 * the target in a consistent state.
1048 job_transition_to_ready(&s
->common
.job
);
1049 if (s
->copy_mode
!= MIRROR_COPY_MODE_BACKGROUND
) {
1050 s
->actively_synced
= true;
1054 should_complete
= s
->should_complete
||
1055 job_cancel_requested(&s
->common
.job
);
1056 cnt
= bdrv_get_dirty_count(s
->dirty_bitmap
);
1059 if (cnt
== 0 && should_complete
) {
1060 /* The dirty bitmap is not updated while operations are pending.
1061 * If we're about to exit, wait for pending operations before
1062 * calling bdrv_get_dirty_count(bs), or we may exit while the
1063 * source has dirty data to copy!
1065 * Note that I/O can be submitted by the guest while
1066 * mirror_populate runs, so pause it now. Before deciding
1067 * whether to switch to target check one last time if I/O has
1068 * come in the meanwhile, and if not flush the data to disk.
1070 trace_mirror_before_drain(s
, cnt
);
1073 bdrv_drained_begin(bs
);
1074 cnt
= bdrv_get_dirty_count(s
->dirty_bitmap
);
1075 if (cnt
> 0 || mirror_flush(s
) < 0) {
1076 bdrv_drained_end(bs
);
1077 s
->in_drain
= false;
1081 /* The two disks are in sync. Exit and report successful
1084 assert(QLIST_EMPTY(&bs
->tracked_requests
));
1089 if (job_is_ready(&s
->common
.job
) && !should_complete
) {
1090 delay_ns
= (s
->in_flight
== 0 &&
1091 cnt
== 0 ? BLOCK_JOB_SLICE_TIME
: 0);
1093 trace_mirror_before_sleep(s
, cnt
, job_is_ready(&s
->common
.job
),
1095 job_sleep_ns(&s
->common
.job
, delay_ns
);
1096 s
->last_pause_ns
= qemu_clock_get_ns(QEMU_CLOCK_REALTIME
);
1100 if (s
->in_flight
> 0) {
1101 /* We get here only if something went wrong. Either the job failed,
1102 * or it was cancelled prematurely so that we do not guarantee that
1103 * the target is a copy of the source.
1105 assert(ret
< 0 || job_is_cancelled(&s
->common
.job
));
1107 mirror_wait_for_all_io(s
);
1110 assert(s
->in_flight
== 0);
1112 g_free(s
->cow_bitmap
);
1113 g_free(s
->in_flight_bitmap
);
1114 bdrv_dirty_iter_free(s
->dbi
);
1118 bdrv_drained_begin(bs
);
1124 static void mirror_complete(Job
*job
, Error
**errp
)
1126 MirrorBlockJob
*s
= container_of(job
, MirrorBlockJob
, common
.job
);
1128 if (!job_is_ready(job
)) {
1129 error_setg(errp
, "The active block job '%s' cannot be completed",
1134 /* block all operations on to_replace bs */
1136 AioContext
*replace_aio_context
;
1138 s
->to_replace
= bdrv_find_node(s
->replaces
);
1139 if (!s
->to_replace
) {
1140 error_setg(errp
, "Node name '%s' not found", s
->replaces
);
1144 replace_aio_context
= bdrv_get_aio_context(s
->to_replace
);
1145 aio_context_acquire(replace_aio_context
);
1147 /* TODO Translate this into child freeze system. */
1148 error_setg(&s
->replace_blocker
,
1149 "block device is in use by block-job-complete");
1150 bdrv_op_block_all(s
->to_replace
, s
->replace_blocker
);
1151 bdrv_ref(s
->to_replace
);
1153 aio_context_release(replace_aio_context
);
1156 s
->should_complete
= true;
1158 /* If the job is paused, it will be re-entered when it is resumed */
1159 WITH_JOB_LOCK_GUARD() {
1161 job_enter_cond_locked(job
, NULL
);
1166 static void coroutine_fn
mirror_pause(Job
*job
)
1168 MirrorBlockJob
*s
= container_of(job
, MirrorBlockJob
, common
.job
);
1170 mirror_wait_for_all_io(s
);
1173 static bool mirror_drained_poll(BlockJob
*job
)
1175 MirrorBlockJob
*s
= container_of(job
, MirrorBlockJob
, common
);
1177 /* If the job isn't paused nor cancelled, we can't be sure that it won't
1178 * issue more requests. We make an exception if we've reached this point
1179 * from one of our own drain sections, to avoid a deadlock waiting for
1182 WITH_JOB_LOCK_GUARD() {
1183 if (!s
->common
.job
.paused
&& !job_is_cancelled_locked(&job
->job
)
1189 return !!s
->in_flight
;
1192 static bool mirror_cancel(Job
*job
, bool force
)
1194 MirrorBlockJob
*s
= container_of(job
, MirrorBlockJob
, common
.job
);
1195 BlockDriverState
*target
= blk_bs(s
->target
);
1198 * Before the job is READY, we treat any cancellation like a
1199 * force-cancellation.
1201 force
= force
|| !job_is_ready(job
);
1204 bdrv_cancel_in_flight(target
);
1209 static bool commit_active_cancel(Job
*job
, bool force
)
1211 /* Same as above in mirror_cancel() */
1212 return force
|| !job_is_ready(job
);
1215 static const BlockJobDriver mirror_job_driver
= {
1217 .instance_size
= sizeof(MirrorBlockJob
),
1218 .job_type
= JOB_TYPE_MIRROR
,
1219 .free
= block_job_free
,
1220 .user_resume
= block_job_user_resume
,
1222 .prepare
= mirror_prepare
,
1223 .abort
= mirror_abort
,
1224 .pause
= mirror_pause
,
1225 .complete
= mirror_complete
,
1226 .cancel
= mirror_cancel
,
1228 .drained_poll
= mirror_drained_poll
,
1231 static const BlockJobDriver commit_active_job_driver
= {
1233 .instance_size
= sizeof(MirrorBlockJob
),
1234 .job_type
= JOB_TYPE_COMMIT
,
1235 .free
= block_job_free
,
1236 .user_resume
= block_job_user_resume
,
1238 .prepare
= mirror_prepare
,
1239 .abort
= mirror_abort
,
1240 .pause
= mirror_pause
,
1241 .complete
= mirror_complete
,
1242 .cancel
= commit_active_cancel
,
1244 .drained_poll
= mirror_drained_poll
,
1247 static void coroutine_fn
1248 do_sync_target_write(MirrorBlockJob
*job
, MirrorMethod method
,
1249 uint64_t offset
, uint64_t bytes
,
1250 QEMUIOVector
*qiov
, int flags
)
1253 size_t qiov_offset
= 0;
1254 int64_t bitmap_offset
, bitmap_end
;
1256 if (!QEMU_IS_ALIGNED(offset
, job
->granularity
) &&
1257 bdrv_dirty_bitmap_get(job
->dirty_bitmap
, offset
))
1260 * Dirty unaligned padding: ignore it.
1263 * 1. If we copy it, we can't reset corresponding bit in
1264 * dirty_bitmap as there may be some "dirty" bytes still not
1266 * 2. It's already dirty, so skipping it we don't diverge mirror
1269 * Note, that because of this, guest write may have no contribution
1270 * into mirror converge, but that's not bad, as we have background
1271 * process of mirroring. If under some bad circumstances (high guest
1272 * IO load) background process starve, we will not converge anyway,
1273 * even if each write will contribute, as guest is not guaranteed to
1274 * rewrite the whole disk.
1276 qiov_offset
= QEMU_ALIGN_UP(offset
, job
->granularity
) - offset
;
1277 if (bytes
<= qiov_offset
) {
1278 /* nothing to do after shrink */
1281 offset
+= qiov_offset
;
1282 bytes
-= qiov_offset
;
1285 if (!QEMU_IS_ALIGNED(offset
+ bytes
, job
->granularity
) &&
1286 bdrv_dirty_bitmap_get(job
->dirty_bitmap
, offset
+ bytes
- 1))
1288 uint64_t tail
= (offset
+ bytes
) % job
->granularity
;
1290 if (bytes
<= tail
) {
1291 /* nothing to do after shrink */
1298 * Tails are either clean or shrunk, so for bitmap resetting
1299 * we safely align the range down.
1301 bitmap_offset
= QEMU_ALIGN_UP(offset
, job
->granularity
);
1302 bitmap_end
= QEMU_ALIGN_DOWN(offset
+ bytes
, job
->granularity
);
1303 if (bitmap_offset
< bitmap_end
) {
1304 bdrv_reset_dirty_bitmap(job
->dirty_bitmap
, bitmap_offset
,
1305 bitmap_end
- bitmap_offset
);
1308 job_progress_increase_remaining(&job
->common
.job
, bytes
);
1311 case MIRROR_METHOD_COPY
:
1312 ret
= blk_co_pwritev_part(job
->target
, offset
, bytes
,
1313 qiov
, qiov_offset
, flags
);
1316 case MIRROR_METHOD_ZERO
:
1318 ret
= blk_co_pwrite_zeroes(job
->target
, offset
, bytes
, flags
);
1321 case MIRROR_METHOD_DISCARD
:
1323 ret
= blk_co_pdiscard(job
->target
, offset
, bytes
);
1331 job_progress_update(&job
->common
.job
, bytes
);
1333 BlockErrorAction action
;
1336 * We failed, so we should mark dirty the whole area, aligned up.
1337 * Note that we don't care about shrunk tails if any: they were dirty
1338 * at function start, and they must be still dirty, as we've locked
1339 * the region for in-flight op.
1341 bitmap_offset
= QEMU_ALIGN_DOWN(offset
, job
->granularity
);
1342 bitmap_end
= QEMU_ALIGN_UP(offset
+ bytes
, job
->granularity
);
1343 bdrv_set_dirty_bitmap(job
->dirty_bitmap
, bitmap_offset
,
1344 bitmap_end
- bitmap_offset
);
1345 job
->actively_synced
= false;
1347 action
= mirror_error_action(job
, false, -ret
);
1348 if (action
== BLOCK_ERROR_ACTION_REPORT
) {
1356 static MirrorOp
*coroutine_fn
active_write_prepare(MirrorBlockJob
*s
,
1361 uint64_t start_chunk
= offset
/ s
->granularity
;
1362 uint64_t end_chunk
= DIV_ROUND_UP(offset
+ bytes
, s
->granularity
);
1364 op
= g_new(MirrorOp
, 1);
1369 .is_active_write
= true,
1370 .is_in_flight
= true,
1371 .co
= qemu_coroutine_self(),
1373 qemu_co_queue_init(&op
->waiting_requests
);
1374 QTAILQ_INSERT_TAIL(&s
->ops_in_flight
, op
, next
);
1376 s
->in_active_write_counter
++;
1378 mirror_wait_on_conflicts(op
, s
, offset
, bytes
);
1380 bitmap_set(s
->in_flight_bitmap
, start_chunk
, end_chunk
- start_chunk
);
1385 static void coroutine_fn
active_write_settle(MirrorOp
*op
)
1387 uint64_t start_chunk
= op
->offset
/ op
->s
->granularity
;
1388 uint64_t end_chunk
= DIV_ROUND_UP(op
->offset
+ op
->bytes
,
1389 op
->s
->granularity
);
1391 if (!--op
->s
->in_active_write_counter
&& op
->s
->actively_synced
) {
1392 BdrvChild
*source
= op
->s
->mirror_top_bs
->backing
;
1394 if (QLIST_FIRST(&source
->bs
->parents
) == source
&&
1395 QLIST_NEXT(source
, next_parent
) == NULL
)
1397 /* Assert that we are back in sync once all active write
1398 * operations are settled.
1399 * Note that we can only assert this if the mirror node
1400 * is the source node's only parent. */
1401 assert(!bdrv_get_dirty_count(op
->s
->dirty_bitmap
));
1404 bitmap_clear(op
->s
->in_flight_bitmap
, start_chunk
, end_chunk
- start_chunk
);
1405 QTAILQ_REMOVE(&op
->s
->ops_in_flight
, op
, next
);
1406 qemu_co_queue_restart_all(&op
->waiting_requests
);
1410 static int coroutine_fn
bdrv_mirror_top_preadv(BlockDriverState
*bs
,
1411 int64_t offset
, int64_t bytes
, QEMUIOVector
*qiov
, BdrvRequestFlags flags
)
1413 return bdrv_co_preadv(bs
->backing
, offset
, bytes
, qiov
, flags
);
1416 static int coroutine_fn
bdrv_mirror_top_do_write(BlockDriverState
*bs
,
1417 MirrorMethod method
, uint64_t offset
, uint64_t bytes
, QEMUIOVector
*qiov
,
1420 MirrorOp
*op
= NULL
;
1421 MirrorBDSOpaque
*s
= bs
->opaque
;
1423 bool copy_to_target
;
1425 copy_to_target
= s
->job
->ret
>= 0 &&
1426 !job_is_cancelled(&s
->job
->common
.job
) &&
1427 s
->job
->copy_mode
== MIRROR_COPY_MODE_WRITE_BLOCKING
;
1429 if (copy_to_target
) {
1430 op
= active_write_prepare(s
->job
, offset
, bytes
);
1434 case MIRROR_METHOD_COPY
:
1435 ret
= bdrv_co_pwritev(bs
->backing
, offset
, bytes
, qiov
, flags
);
1438 case MIRROR_METHOD_ZERO
:
1439 ret
= bdrv_co_pwrite_zeroes(bs
->backing
, offset
, bytes
, flags
);
1442 case MIRROR_METHOD_DISCARD
:
1443 ret
= bdrv_co_pdiscard(bs
->backing
, offset
, bytes
);
1454 if (copy_to_target
) {
1455 do_sync_target_write(s
->job
, method
, offset
, bytes
, qiov
, flags
);
1459 if (copy_to_target
) {
1460 active_write_settle(op
);
1465 static int coroutine_fn
bdrv_mirror_top_pwritev(BlockDriverState
*bs
,
1466 int64_t offset
, int64_t bytes
, QEMUIOVector
*qiov
, BdrvRequestFlags flags
)
1468 MirrorBDSOpaque
*s
= bs
->opaque
;
1469 QEMUIOVector bounce_qiov
;
1472 bool copy_to_target
;
1474 copy_to_target
= s
->job
->ret
>= 0 &&
1475 !job_is_cancelled(&s
->job
->common
.job
) &&
1476 s
->job
->copy_mode
== MIRROR_COPY_MODE_WRITE_BLOCKING
;
1478 if (copy_to_target
) {
1479 /* The guest might concurrently modify the data to write; but
1480 * the data on source and destination must match, so we have
1481 * to use a bounce buffer if we are going to write to the
1483 bounce_buf
= qemu_blockalign(bs
, bytes
);
1484 iov_to_buf_full(qiov
->iov
, qiov
->niov
, 0, bounce_buf
, bytes
);
1486 qemu_iovec_init(&bounce_qiov
, 1);
1487 qemu_iovec_add(&bounce_qiov
, bounce_buf
, bytes
);
1488 qiov
= &bounce_qiov
;
1491 ret
= bdrv_mirror_top_do_write(bs
, MIRROR_METHOD_COPY
, offset
, bytes
, qiov
,
1494 if (copy_to_target
) {
1495 qemu_iovec_destroy(&bounce_qiov
);
1496 qemu_vfree(bounce_buf
);
1502 static int coroutine_fn
bdrv_mirror_top_flush(BlockDriverState
*bs
)
1504 if (bs
->backing
== NULL
) {
1505 /* we can be here after failed bdrv_append in mirror_start_job */
1508 return bdrv_co_flush(bs
->backing
->bs
);
1511 static int coroutine_fn
bdrv_mirror_top_pwrite_zeroes(BlockDriverState
*bs
,
1512 int64_t offset
, int64_t bytes
, BdrvRequestFlags flags
)
1514 return bdrv_mirror_top_do_write(bs
, MIRROR_METHOD_ZERO
, offset
, bytes
, NULL
,
1518 static int coroutine_fn
bdrv_mirror_top_pdiscard(BlockDriverState
*bs
,
1519 int64_t offset
, int64_t bytes
)
1521 return bdrv_mirror_top_do_write(bs
, MIRROR_METHOD_DISCARD
, offset
, bytes
,
1525 static void bdrv_mirror_top_refresh_filename(BlockDriverState
*bs
)
1527 if (bs
->backing
== NULL
) {
1528 /* we can be here after failed bdrv_attach_child in
1529 * bdrv_set_backing_hd */
1532 pstrcpy(bs
->exact_filename
, sizeof(bs
->exact_filename
),
1533 bs
->backing
->bs
->filename
);
1536 static void bdrv_mirror_top_child_perm(BlockDriverState
*bs
, BdrvChild
*c
,
1538 BlockReopenQueue
*reopen_queue
,
1539 uint64_t perm
, uint64_t shared
,
1540 uint64_t *nperm
, uint64_t *nshared
)
1542 MirrorBDSOpaque
*s
= bs
->opaque
;
1546 * If the job is to be stopped, we do not need to forward
1547 * anything to the real image.
1550 *nshared
= BLK_PERM_ALL
;
1554 bdrv_default_perms(bs
, c
, role
, reopen_queue
,
1555 perm
, shared
, nperm
, nshared
);
1559 * For commit jobs, we cannot take CONSISTENT_READ, because
1560 * that permission is unshared for everything above the base
1561 * node (except for filters on the base node).
1562 * We also have to force-share the WRITE permission, or
1563 * otherwise we would block ourselves at the base node (if
1564 * writes are blocked for a node, they are also blocked for
1565 * its backing file).
1566 * (We could also share RESIZE, because it may be needed for
1567 * the target if its size is less than the top node's; but
1568 * bdrv_default_perms_for_cow() automatically shares RESIZE
1569 * for backing nodes if WRITE is shared, so there is no need
1572 *nperm
&= ~BLK_PERM_CONSISTENT_READ
;
1573 *nshared
|= BLK_PERM_WRITE
;
1577 /* Dummy node that provides consistent read to its users without requiring it
1578 * from its backing file and that allows writes on the backing file chain. */
1579 static BlockDriver bdrv_mirror_top
= {
1580 .format_name
= "mirror_top",
1581 .bdrv_co_preadv
= bdrv_mirror_top_preadv
,
1582 .bdrv_co_pwritev
= bdrv_mirror_top_pwritev
,
1583 .bdrv_co_pwrite_zeroes
= bdrv_mirror_top_pwrite_zeroes
,
1584 .bdrv_co_pdiscard
= bdrv_mirror_top_pdiscard
,
1585 .bdrv_co_flush
= bdrv_mirror_top_flush
,
1586 .bdrv_refresh_filename
= bdrv_mirror_top_refresh_filename
,
1587 .bdrv_child_perm
= bdrv_mirror_top_child_perm
,
1592 static BlockJob
*mirror_start_job(
1593 const char *job_id
, BlockDriverState
*bs
,
1594 int creation_flags
, BlockDriverState
*target
,
1595 const char *replaces
, int64_t speed
,
1596 uint32_t granularity
, int64_t buf_size
,
1597 BlockMirrorBackingMode backing_mode
,
1599 BlockdevOnError on_source_error
,
1600 BlockdevOnError on_target_error
,
1602 BlockCompletionFunc
*cb
,
1604 const BlockJobDriver
*driver
,
1605 bool is_none_mode
, BlockDriverState
*base
,
1606 bool auto_complete
, const char *filter_node_name
,
1607 bool is_mirror
, MirrorCopyMode copy_mode
,
1611 MirrorBDSOpaque
*bs_opaque
;
1612 BlockDriverState
*mirror_top_bs
;
1613 bool target_is_backing
;
1614 uint64_t target_perms
, target_shared_perms
;
1617 if (granularity
== 0) {
1618 granularity
= bdrv_get_default_bitmap_granularity(target
);
1621 assert(is_power_of_2(granularity
));
1624 error_setg(errp
, "Invalid parameter 'buf-size'");
1628 if (buf_size
== 0) {
1629 buf_size
= DEFAULT_MIRROR_BUF_SIZE
;
1632 if (bdrv_skip_filters(bs
) == bdrv_skip_filters(target
)) {
1633 error_setg(errp
, "Can't mirror node into itself");
1637 target_is_backing
= bdrv_chain_contains(bs
, target
);
1639 /* In the case of active commit, add dummy driver to provide consistent
1640 * reads on the top, while disabling it in the intermediate nodes, and make
1641 * the backing chain writable. */
1642 mirror_top_bs
= bdrv_new_open_driver(&bdrv_mirror_top
, filter_node_name
,
1644 if (mirror_top_bs
== NULL
) {
1647 if (!filter_node_name
) {
1648 mirror_top_bs
->implicit
= true;
1651 /* So that we can always drop this node */
1652 mirror_top_bs
->never_freeze
= true;
1654 mirror_top_bs
->total_sectors
= bs
->total_sectors
;
1655 mirror_top_bs
->supported_write_flags
= BDRV_REQ_WRITE_UNCHANGED
;
1656 mirror_top_bs
->supported_zero_flags
= BDRV_REQ_WRITE_UNCHANGED
|
1657 BDRV_REQ_NO_FALLBACK
;
1658 bs_opaque
= g_new0(MirrorBDSOpaque
, 1);
1659 mirror_top_bs
->opaque
= bs_opaque
;
1661 bs_opaque
->is_commit
= target_is_backing
;
1663 bdrv_drained_begin(bs
);
1664 ret
= bdrv_append(mirror_top_bs
, bs
, errp
);
1665 bdrv_drained_end(bs
);
1668 bdrv_unref(mirror_top_bs
);
1672 /* Make sure that the source is not resized while the job is running */
1673 s
= block_job_create(job_id
, driver
, NULL
, mirror_top_bs
,
1674 BLK_PERM_CONSISTENT_READ
,
1675 BLK_PERM_CONSISTENT_READ
| BLK_PERM_WRITE_UNCHANGED
|
1676 BLK_PERM_WRITE
, speed
,
1677 creation_flags
, cb
, opaque
, errp
);
1683 /* The block job now has a reference to this node */
1684 bdrv_unref(mirror_top_bs
);
1686 s
->mirror_top_bs
= mirror_top_bs
;
1688 /* No resize for the target either; while the mirror is still running, a
1689 * consistent read isn't necessarily possible. We could possibly allow
1690 * writes and graph modifications, though it would likely defeat the
1691 * purpose of a mirror, so leave them blocked for now.
1693 * In the case of active commit, things look a bit different, though,
1694 * because the target is an already populated backing file in active use.
1695 * We can allow anything except resize there.*/
1697 target_perms
= BLK_PERM_WRITE
;
1698 target_shared_perms
= BLK_PERM_WRITE_UNCHANGED
;
1700 if (target_is_backing
) {
1701 int64_t bs_size
, target_size
;
1702 bs_size
= bdrv_getlength(bs
);
1704 error_setg_errno(errp
, -bs_size
,
1705 "Could not inquire top image size");
1709 target_size
= bdrv_getlength(target
);
1710 if (target_size
< 0) {
1711 error_setg_errno(errp
, -target_size
,
1712 "Could not inquire base image size");
1716 if (target_size
< bs_size
) {
1717 target_perms
|= BLK_PERM_RESIZE
;
1720 target_shared_perms
|= BLK_PERM_CONSISTENT_READ
| BLK_PERM_WRITE
;
1721 } else if (bdrv_chain_contains(bs
, bdrv_skip_filters(target
))) {
1723 * We may want to allow this in the future, but it would
1724 * require taking some extra care.
1726 error_setg(errp
, "Cannot mirror to a filter on top of a node in the "
1727 "source's backing chain");
1731 s
->target
= blk_new(s
->common
.job
.aio_context
,
1732 target_perms
, target_shared_perms
);
1733 ret
= blk_insert_bs(s
->target
, target
, errp
);
1738 /* XXX: Mirror target could be a NBD server of target QEMU in the case
1739 * of non-shared block migration. To allow migration completion, we
1740 * have to allow "inactivate" of the target BB. When that happens, we
1741 * know the job is drained, and the vcpus are stopped, so no write
1742 * operation will be performed. Block layer already has assertions to
1744 blk_set_force_allow_inactivate(s
->target
);
1746 blk_set_allow_aio_context_change(s
->target
, true);
1747 blk_set_disable_request_queuing(s
->target
, true);
1749 s
->replaces
= g_strdup(replaces
);
1750 s
->on_source_error
= on_source_error
;
1751 s
->on_target_error
= on_target_error
;
1752 s
->is_none_mode
= is_none_mode
;
1753 s
->backing_mode
= backing_mode
;
1754 s
->zero_target
= zero_target
;
1755 s
->copy_mode
= copy_mode
;
1757 s
->base_overlay
= bdrv_find_overlay(bs
, base
);
1758 s
->granularity
= granularity
;
1759 s
->buf_size
= ROUND_UP(buf_size
, granularity
);
1761 if (auto_complete
) {
1762 s
->should_complete
= true;
1765 s
->dirty_bitmap
= bdrv_create_dirty_bitmap(bs
, granularity
, NULL
, errp
);
1766 if (!s
->dirty_bitmap
) {
1769 if (s
->copy_mode
== MIRROR_COPY_MODE_WRITE_BLOCKING
) {
1770 bdrv_disable_dirty_bitmap(s
->dirty_bitmap
);
1773 ret
= block_job_add_bdrv(&s
->common
, "source", bs
, 0,
1774 BLK_PERM_WRITE_UNCHANGED
| BLK_PERM_WRITE
|
1775 BLK_PERM_CONSISTENT_READ
,
1781 /* Required permissions are already taken with blk_new() */
1782 block_job_add_bdrv(&s
->common
, "target", target
, 0, BLK_PERM_ALL
,
1785 /* In commit_active_start() all intermediate nodes disappear, so
1786 * any jobs in them must be blocked */
1787 if (target_is_backing
) {
1788 BlockDriverState
*iter
, *filtered_target
;
1789 uint64_t iter_shared_perms
;
1792 * The topmost node with
1793 * bdrv_skip_filters(filtered_target) == bdrv_skip_filters(target)
1795 filtered_target
= bdrv_cow_bs(bdrv_find_overlay(bs
, target
));
1797 assert(bdrv_skip_filters(filtered_target
) ==
1798 bdrv_skip_filters(target
));
1801 * XXX BLK_PERM_WRITE needs to be allowed so we don't block
1802 * ourselves at s->base (if writes are blocked for a node, they are
1803 * also blocked for its backing file). The other options would be a
1804 * second filter driver above s->base (== target).
1806 iter_shared_perms
= BLK_PERM_WRITE_UNCHANGED
| BLK_PERM_WRITE
;
1808 for (iter
= bdrv_filter_or_cow_bs(bs
); iter
!= target
;
1809 iter
= bdrv_filter_or_cow_bs(iter
))
1811 if (iter
== filtered_target
) {
1813 * From here on, all nodes are filters on the base.
1814 * This allows us to share BLK_PERM_CONSISTENT_READ.
1816 iter_shared_perms
|= BLK_PERM_CONSISTENT_READ
;
1819 ret
= block_job_add_bdrv(&s
->common
, "intermediate node", iter
, 0,
1820 iter_shared_perms
, errp
);
1826 if (bdrv_freeze_backing_chain(mirror_top_bs
, target
, errp
) < 0) {
1831 QTAILQ_INIT(&s
->ops_in_flight
);
1833 trace_mirror_start(bs
, s
, opaque
);
1834 job_start(&s
->common
.job
);
1840 /* Make sure this BDS does not go away until we have completed the graph
1842 bdrv_ref(mirror_top_bs
);
1844 g_free(s
->replaces
);
1845 blk_unref(s
->target
);
1846 bs_opaque
->job
= NULL
;
1847 if (s
->dirty_bitmap
) {
1848 bdrv_release_dirty_bitmap(s
->dirty_bitmap
);
1850 job_early_fail(&s
->common
.job
);
1853 bs_opaque
->stop
= true;
1854 bdrv_child_refresh_perms(mirror_top_bs
, mirror_top_bs
->backing
,
1856 bdrv_replace_node(mirror_top_bs
, mirror_top_bs
->backing
->bs
, &error_abort
);
1858 bdrv_unref(mirror_top_bs
);
1863 void mirror_start(const char *job_id
, BlockDriverState
*bs
,
1864 BlockDriverState
*target
, const char *replaces
,
1865 int creation_flags
, int64_t speed
,
1866 uint32_t granularity
, int64_t buf_size
,
1867 MirrorSyncMode mode
, BlockMirrorBackingMode backing_mode
,
1869 BlockdevOnError on_source_error
,
1870 BlockdevOnError on_target_error
,
1871 bool unmap
, const char *filter_node_name
,
1872 MirrorCopyMode copy_mode
, Error
**errp
)
1875 BlockDriverState
*base
;
1877 GLOBAL_STATE_CODE();
1879 if ((mode
== MIRROR_SYNC_MODE_INCREMENTAL
) ||
1880 (mode
== MIRROR_SYNC_MODE_BITMAP
)) {
1881 error_setg(errp
, "Sync mode '%s' not supported",
1882 MirrorSyncMode_str(mode
));
1885 is_none_mode
= mode
== MIRROR_SYNC_MODE_NONE
;
1886 base
= mode
== MIRROR_SYNC_MODE_TOP
? bdrv_backing_chain_next(bs
) : NULL
;
1887 mirror_start_job(job_id
, bs
, creation_flags
, target
, replaces
,
1888 speed
, granularity
, buf_size
, backing_mode
, zero_target
,
1889 on_source_error
, on_target_error
, unmap
, NULL
, NULL
,
1890 &mirror_job_driver
, is_none_mode
, base
, false,
1891 filter_node_name
, true, copy_mode
, errp
);
1894 BlockJob
*commit_active_start(const char *job_id
, BlockDriverState
*bs
,
1895 BlockDriverState
*base
, int creation_flags
,
1896 int64_t speed
, BlockdevOnError on_error
,
1897 const char *filter_node_name
,
1898 BlockCompletionFunc
*cb
, void *opaque
,
1899 bool auto_complete
, Error
**errp
)
1901 bool base_read_only
;
1904 GLOBAL_STATE_CODE();
1906 base_read_only
= bdrv_is_read_only(base
);
1908 if (base_read_only
) {
1909 if (bdrv_reopen_set_read_only(base
, false, errp
) < 0) {
1914 job
= mirror_start_job(
1915 job_id
, bs
, creation_flags
, base
, NULL
, speed
, 0, 0,
1916 MIRROR_LEAVE_BACKING_CHAIN
, false,
1917 on_error
, on_error
, true, cb
, opaque
,
1918 &commit_active_job_driver
, false, base
, auto_complete
,
1919 filter_node_name
, false, MIRROR_COPY_MODE_BACKGROUND
,
1922 goto error_restore_flags
;
1927 error_restore_flags
:
1928 /* ignore error and errp for bdrv_reopen, because we want to propagate
1929 * the original error */
1930 if (base_read_only
) {
1931 bdrv_reopen_set_read_only(base
, true, NULL
);