Merge remote-tracking branch 'remotes/stefanha/tags/net-pull-request' into staging
[qemu.git] / block / qed.c
blob79f5bd392af797eae2fd9552e24f42253d64c37b
1 /*
2 * QEMU Enhanced Disk Format
4 * Copyright IBM, Corp. 2010
6 * Authors:
7 * Stefan Hajnoczi <stefanha@linux.vnet.ibm.com>
8 * Anthony Liguori <aliguori@us.ibm.com>
10 * This work is licensed under the terms of the GNU LGPL, version 2 or later.
11 * See the COPYING.LIB file in the top-level directory.
15 #include "qemu/timer.h"
16 #include "trace.h"
17 #include "qed.h"
18 #include "qapi/qmp/qerror.h"
19 #include "migration/migration.h"
21 static void qed_aio_cancel(BlockDriverAIOCB *blockacb)
23 QEDAIOCB *acb = (QEDAIOCB *)blockacb;
24 AioContext *aio_context = bdrv_get_aio_context(blockacb->bs);
25 bool finished = false;
27 /* Wait for the request to finish */
28 acb->finished = &finished;
29 while (!finished) {
30 aio_poll(aio_context, true);
34 static const AIOCBInfo qed_aiocb_info = {
35 .aiocb_size = sizeof(QEDAIOCB),
36 .cancel = qed_aio_cancel,
39 static int bdrv_qed_probe(const uint8_t *buf, int buf_size,
40 const char *filename)
42 const QEDHeader *header = (const QEDHeader *)buf;
44 if (buf_size < sizeof(*header)) {
45 return 0;
47 if (le32_to_cpu(header->magic) != QED_MAGIC) {
48 return 0;
50 return 100;
53 /**
54 * Check whether an image format is raw
56 * @fmt: Backing file format, may be NULL
58 static bool qed_fmt_is_raw(const char *fmt)
60 return fmt && strcmp(fmt, "raw") == 0;
63 static void qed_header_le_to_cpu(const QEDHeader *le, QEDHeader *cpu)
65 cpu->magic = le32_to_cpu(le->magic);
66 cpu->cluster_size = le32_to_cpu(le->cluster_size);
67 cpu->table_size = le32_to_cpu(le->table_size);
68 cpu->header_size = le32_to_cpu(le->header_size);
69 cpu->features = le64_to_cpu(le->features);
70 cpu->compat_features = le64_to_cpu(le->compat_features);
71 cpu->autoclear_features = le64_to_cpu(le->autoclear_features);
72 cpu->l1_table_offset = le64_to_cpu(le->l1_table_offset);
73 cpu->image_size = le64_to_cpu(le->image_size);
74 cpu->backing_filename_offset = le32_to_cpu(le->backing_filename_offset);
75 cpu->backing_filename_size = le32_to_cpu(le->backing_filename_size);
78 static void qed_header_cpu_to_le(const QEDHeader *cpu, QEDHeader *le)
80 le->magic = cpu_to_le32(cpu->magic);
81 le->cluster_size = cpu_to_le32(cpu->cluster_size);
82 le->table_size = cpu_to_le32(cpu->table_size);
83 le->header_size = cpu_to_le32(cpu->header_size);
84 le->features = cpu_to_le64(cpu->features);
85 le->compat_features = cpu_to_le64(cpu->compat_features);
86 le->autoclear_features = cpu_to_le64(cpu->autoclear_features);
87 le->l1_table_offset = cpu_to_le64(cpu->l1_table_offset);
88 le->image_size = cpu_to_le64(cpu->image_size);
89 le->backing_filename_offset = cpu_to_le32(cpu->backing_filename_offset);
90 le->backing_filename_size = cpu_to_le32(cpu->backing_filename_size);
93 int qed_write_header_sync(BDRVQEDState *s)
95 QEDHeader le;
96 int ret;
98 qed_header_cpu_to_le(&s->header, &le);
99 ret = bdrv_pwrite(s->bs->file, 0, &le, sizeof(le));
100 if (ret != sizeof(le)) {
101 return ret;
103 return 0;
106 typedef struct {
107 GenericCB gencb;
108 BDRVQEDState *s;
109 struct iovec iov;
110 QEMUIOVector qiov;
111 int nsectors;
112 uint8_t *buf;
113 } QEDWriteHeaderCB;
115 static void qed_write_header_cb(void *opaque, int ret)
117 QEDWriteHeaderCB *write_header_cb = opaque;
119 qemu_vfree(write_header_cb->buf);
120 gencb_complete(write_header_cb, ret);
123 static void qed_write_header_read_cb(void *opaque, int ret)
125 QEDWriteHeaderCB *write_header_cb = opaque;
126 BDRVQEDState *s = write_header_cb->s;
128 if (ret) {
129 qed_write_header_cb(write_header_cb, ret);
130 return;
133 /* Update header */
134 qed_header_cpu_to_le(&s->header, (QEDHeader *)write_header_cb->buf);
136 bdrv_aio_writev(s->bs->file, 0, &write_header_cb->qiov,
137 write_header_cb->nsectors, qed_write_header_cb,
138 write_header_cb);
142 * Update header in-place (does not rewrite backing filename or other strings)
144 * This function only updates known header fields in-place and does not affect
145 * extra data after the QED header.
147 static void qed_write_header(BDRVQEDState *s, BlockDriverCompletionFunc cb,
148 void *opaque)
150 /* We must write full sectors for O_DIRECT but cannot necessarily generate
151 * the data following the header if an unrecognized compat feature is
152 * active. Therefore, first read the sectors containing the header, update
153 * them, and write back.
156 int nsectors = (sizeof(QEDHeader) + BDRV_SECTOR_SIZE - 1) /
157 BDRV_SECTOR_SIZE;
158 size_t len = nsectors * BDRV_SECTOR_SIZE;
159 QEDWriteHeaderCB *write_header_cb = gencb_alloc(sizeof(*write_header_cb),
160 cb, opaque);
162 write_header_cb->s = s;
163 write_header_cb->nsectors = nsectors;
164 write_header_cb->buf = qemu_blockalign(s->bs, len);
165 write_header_cb->iov.iov_base = write_header_cb->buf;
166 write_header_cb->iov.iov_len = len;
167 qemu_iovec_init_external(&write_header_cb->qiov, &write_header_cb->iov, 1);
169 bdrv_aio_readv(s->bs->file, 0, &write_header_cb->qiov, nsectors,
170 qed_write_header_read_cb, write_header_cb);
173 static uint64_t qed_max_image_size(uint32_t cluster_size, uint32_t table_size)
175 uint64_t table_entries;
176 uint64_t l2_size;
178 table_entries = (table_size * cluster_size) / sizeof(uint64_t);
179 l2_size = table_entries * cluster_size;
181 return l2_size * table_entries;
184 static bool qed_is_cluster_size_valid(uint32_t cluster_size)
186 if (cluster_size < QED_MIN_CLUSTER_SIZE ||
187 cluster_size > QED_MAX_CLUSTER_SIZE) {
188 return false;
190 if (cluster_size & (cluster_size - 1)) {
191 return false; /* not power of 2 */
193 return true;
196 static bool qed_is_table_size_valid(uint32_t table_size)
198 if (table_size < QED_MIN_TABLE_SIZE ||
199 table_size > QED_MAX_TABLE_SIZE) {
200 return false;
202 if (table_size & (table_size - 1)) {
203 return false; /* not power of 2 */
205 return true;
208 static bool qed_is_image_size_valid(uint64_t image_size, uint32_t cluster_size,
209 uint32_t table_size)
211 if (image_size % BDRV_SECTOR_SIZE != 0) {
212 return false; /* not multiple of sector size */
214 if (image_size > qed_max_image_size(cluster_size, table_size)) {
215 return false; /* image is too large */
217 return true;
221 * Read a string of known length from the image file
223 * @file: Image file
224 * @offset: File offset to start of string, in bytes
225 * @n: String length in bytes
226 * @buf: Destination buffer
227 * @buflen: Destination buffer length in bytes
228 * @ret: 0 on success, -errno on failure
230 * The string is NUL-terminated.
232 static int qed_read_string(BlockDriverState *file, uint64_t offset, size_t n,
233 char *buf, size_t buflen)
235 int ret;
236 if (n >= buflen) {
237 return -EINVAL;
239 ret = bdrv_pread(file, offset, buf, n);
240 if (ret < 0) {
241 return ret;
243 buf[n] = '\0';
244 return 0;
248 * Allocate new clusters
250 * @s: QED state
251 * @n: Number of contiguous clusters to allocate
252 * @ret: Offset of first allocated cluster
254 * This function only produces the offset where the new clusters should be
255 * written. It updates BDRVQEDState but does not make any changes to the image
256 * file.
258 static uint64_t qed_alloc_clusters(BDRVQEDState *s, unsigned int n)
260 uint64_t offset = s->file_size;
261 s->file_size += n * s->header.cluster_size;
262 return offset;
265 QEDTable *qed_alloc_table(BDRVQEDState *s)
267 /* Honor O_DIRECT memory alignment requirements */
268 return qemu_blockalign(s->bs,
269 s->header.cluster_size * s->header.table_size);
273 * Allocate a new zeroed L2 table
275 static CachedL2Table *qed_new_l2_table(BDRVQEDState *s)
277 CachedL2Table *l2_table = qed_alloc_l2_cache_entry(&s->l2_cache);
279 l2_table->table = qed_alloc_table(s);
280 l2_table->offset = qed_alloc_clusters(s, s->header.table_size);
282 memset(l2_table->table->offsets, 0,
283 s->header.cluster_size * s->header.table_size);
284 return l2_table;
287 static void qed_aio_next_io(void *opaque, int ret);
289 static void qed_plug_allocating_write_reqs(BDRVQEDState *s)
291 assert(!s->allocating_write_reqs_plugged);
293 s->allocating_write_reqs_plugged = true;
296 static void qed_unplug_allocating_write_reqs(BDRVQEDState *s)
298 QEDAIOCB *acb;
300 assert(s->allocating_write_reqs_plugged);
302 s->allocating_write_reqs_plugged = false;
304 acb = QSIMPLEQ_FIRST(&s->allocating_write_reqs);
305 if (acb) {
306 qed_aio_next_io(acb, 0);
310 static void qed_finish_clear_need_check(void *opaque, int ret)
312 /* Do nothing */
315 static void qed_flush_after_clear_need_check(void *opaque, int ret)
317 BDRVQEDState *s = opaque;
319 bdrv_aio_flush(s->bs, qed_finish_clear_need_check, s);
321 /* No need to wait until flush completes */
322 qed_unplug_allocating_write_reqs(s);
325 static void qed_clear_need_check(void *opaque, int ret)
327 BDRVQEDState *s = opaque;
329 if (ret) {
330 qed_unplug_allocating_write_reqs(s);
331 return;
334 s->header.features &= ~QED_F_NEED_CHECK;
335 qed_write_header(s, qed_flush_after_clear_need_check, s);
338 static void qed_need_check_timer_cb(void *opaque)
340 BDRVQEDState *s = opaque;
342 /* The timer should only fire when allocating writes have drained */
343 assert(!QSIMPLEQ_FIRST(&s->allocating_write_reqs));
345 trace_qed_need_check_timer_cb(s);
347 qed_plug_allocating_write_reqs(s);
349 /* Ensure writes are on disk before clearing flag */
350 bdrv_aio_flush(s->bs, qed_clear_need_check, s);
353 static void qed_start_need_check_timer(BDRVQEDState *s)
355 trace_qed_start_need_check_timer(s);
357 /* Use QEMU_CLOCK_VIRTUAL so we don't alter the image file while suspended for
358 * migration.
360 timer_mod(s->need_check_timer, qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL) +
361 get_ticks_per_sec() * QED_NEED_CHECK_TIMEOUT);
364 /* It's okay to call this multiple times or when no timer is started */
365 static void qed_cancel_need_check_timer(BDRVQEDState *s)
367 trace_qed_cancel_need_check_timer(s);
368 timer_del(s->need_check_timer);
371 static void bdrv_qed_rebind(BlockDriverState *bs)
373 BDRVQEDState *s = bs->opaque;
374 s->bs = bs;
377 static void bdrv_qed_detach_aio_context(BlockDriverState *bs)
379 BDRVQEDState *s = bs->opaque;
381 qed_cancel_need_check_timer(s);
382 timer_free(s->need_check_timer);
385 static void bdrv_qed_attach_aio_context(BlockDriverState *bs,
386 AioContext *new_context)
388 BDRVQEDState *s = bs->opaque;
390 s->need_check_timer = aio_timer_new(new_context,
391 QEMU_CLOCK_VIRTUAL, SCALE_NS,
392 qed_need_check_timer_cb, s);
393 if (s->header.features & QED_F_NEED_CHECK) {
394 qed_start_need_check_timer(s);
398 static int bdrv_qed_open(BlockDriverState *bs, QDict *options, int flags,
399 Error **errp)
401 BDRVQEDState *s = bs->opaque;
402 QEDHeader le_header;
403 int64_t file_size;
404 int ret;
406 s->bs = bs;
407 QSIMPLEQ_INIT(&s->allocating_write_reqs);
409 ret = bdrv_pread(bs->file, 0, &le_header, sizeof(le_header));
410 if (ret < 0) {
411 return ret;
413 qed_header_le_to_cpu(&le_header, &s->header);
415 if (s->header.magic != QED_MAGIC) {
416 error_setg(errp, "Image not in QED format");
417 return -EINVAL;
419 if (s->header.features & ~QED_FEATURE_MASK) {
420 /* image uses unsupported feature bits */
421 char buf[64];
422 snprintf(buf, sizeof(buf), "%" PRIx64,
423 s->header.features & ~QED_FEATURE_MASK);
424 error_set(errp, QERR_UNKNOWN_BLOCK_FORMAT_FEATURE,
425 bs->device_name, "QED", buf);
426 return -ENOTSUP;
428 if (!qed_is_cluster_size_valid(s->header.cluster_size)) {
429 return -EINVAL;
432 /* Round down file size to the last cluster */
433 file_size = bdrv_getlength(bs->file);
434 if (file_size < 0) {
435 return file_size;
437 s->file_size = qed_start_of_cluster(s, file_size);
439 if (!qed_is_table_size_valid(s->header.table_size)) {
440 return -EINVAL;
442 if (!qed_is_image_size_valid(s->header.image_size,
443 s->header.cluster_size,
444 s->header.table_size)) {
445 return -EINVAL;
447 if (!qed_check_table_offset(s, s->header.l1_table_offset)) {
448 return -EINVAL;
451 s->table_nelems = (s->header.cluster_size * s->header.table_size) /
452 sizeof(uint64_t);
453 s->l2_shift = ffs(s->header.cluster_size) - 1;
454 s->l2_mask = s->table_nelems - 1;
455 s->l1_shift = s->l2_shift + ffs(s->table_nelems) - 1;
457 if ((s->header.features & QED_F_BACKING_FILE)) {
458 if ((uint64_t)s->header.backing_filename_offset +
459 s->header.backing_filename_size >
460 s->header.cluster_size * s->header.header_size) {
461 return -EINVAL;
464 ret = qed_read_string(bs->file, s->header.backing_filename_offset,
465 s->header.backing_filename_size, bs->backing_file,
466 sizeof(bs->backing_file));
467 if (ret < 0) {
468 return ret;
471 if (s->header.features & QED_F_BACKING_FORMAT_NO_PROBE) {
472 pstrcpy(bs->backing_format, sizeof(bs->backing_format), "raw");
476 /* Reset unknown autoclear feature bits. This is a backwards
477 * compatibility mechanism that allows images to be opened by older
478 * programs, which "knock out" unknown feature bits. When an image is
479 * opened by a newer program again it can detect that the autoclear
480 * feature is no longer valid.
482 if ((s->header.autoclear_features & ~QED_AUTOCLEAR_FEATURE_MASK) != 0 &&
483 !bdrv_is_read_only(bs->file) && !(flags & BDRV_O_INCOMING)) {
484 s->header.autoclear_features &= QED_AUTOCLEAR_FEATURE_MASK;
486 ret = qed_write_header_sync(s);
487 if (ret) {
488 return ret;
491 /* From here on only known autoclear feature bits are valid */
492 bdrv_flush(bs->file);
495 s->l1_table = qed_alloc_table(s);
496 qed_init_l2_cache(&s->l2_cache);
498 ret = qed_read_l1_table_sync(s);
499 if (ret) {
500 goto out;
503 /* If image was not closed cleanly, check consistency */
504 if (!(flags & BDRV_O_CHECK) && (s->header.features & QED_F_NEED_CHECK)) {
505 /* Read-only images cannot be fixed. There is no risk of corruption
506 * since write operations are not possible. Therefore, allow
507 * potentially inconsistent images to be opened read-only. This can
508 * aid data recovery from an otherwise inconsistent image.
510 if (!bdrv_is_read_only(bs->file) &&
511 !(flags & BDRV_O_INCOMING)) {
512 BdrvCheckResult result = {0};
514 ret = qed_check(s, &result, true);
515 if (ret) {
516 goto out;
521 bdrv_qed_attach_aio_context(bs, bdrv_get_aio_context(bs));
523 out:
524 if (ret) {
525 qed_free_l2_cache(&s->l2_cache);
526 qemu_vfree(s->l1_table);
528 return ret;
531 static int bdrv_qed_refresh_limits(BlockDriverState *bs)
533 BDRVQEDState *s = bs->opaque;
535 bs->bl.write_zeroes_alignment = s->header.cluster_size >> BDRV_SECTOR_BITS;
537 return 0;
540 /* We have nothing to do for QED reopen, stubs just return
541 * success */
542 static int bdrv_qed_reopen_prepare(BDRVReopenState *state,
543 BlockReopenQueue *queue, Error **errp)
545 return 0;
548 static void bdrv_qed_close(BlockDriverState *bs)
550 BDRVQEDState *s = bs->opaque;
552 bdrv_qed_detach_aio_context(bs);
554 /* Ensure writes reach stable storage */
555 bdrv_flush(bs->file);
557 /* Clean shutdown, no check required on next open */
558 if (s->header.features & QED_F_NEED_CHECK) {
559 s->header.features &= ~QED_F_NEED_CHECK;
560 qed_write_header_sync(s);
563 qed_free_l2_cache(&s->l2_cache);
564 qemu_vfree(s->l1_table);
567 static int qed_create(const char *filename, uint32_t cluster_size,
568 uint64_t image_size, uint32_t table_size,
569 const char *backing_file, const char *backing_fmt,
570 Error **errp)
572 QEDHeader header = {
573 .magic = QED_MAGIC,
574 .cluster_size = cluster_size,
575 .table_size = table_size,
576 .header_size = 1,
577 .features = 0,
578 .compat_features = 0,
579 .l1_table_offset = cluster_size,
580 .image_size = image_size,
582 QEDHeader le_header;
583 uint8_t *l1_table = NULL;
584 size_t l1_size = header.cluster_size * header.table_size;
585 Error *local_err = NULL;
586 int ret = 0;
587 BlockDriverState *bs;
589 ret = bdrv_create_file(filename, NULL, &local_err);
590 if (ret < 0) {
591 error_propagate(errp, local_err);
592 return ret;
595 bs = NULL;
596 ret = bdrv_open(&bs, filename, NULL, NULL,
597 BDRV_O_RDWR | BDRV_O_CACHE_WB | BDRV_O_PROTOCOL, NULL,
598 &local_err);
599 if (ret < 0) {
600 error_propagate(errp, local_err);
601 return ret;
604 /* File must start empty and grow, check truncate is supported */
605 ret = bdrv_truncate(bs, 0);
606 if (ret < 0) {
607 goto out;
610 if (backing_file) {
611 header.features |= QED_F_BACKING_FILE;
612 header.backing_filename_offset = sizeof(le_header);
613 header.backing_filename_size = strlen(backing_file);
615 if (qed_fmt_is_raw(backing_fmt)) {
616 header.features |= QED_F_BACKING_FORMAT_NO_PROBE;
620 qed_header_cpu_to_le(&header, &le_header);
621 ret = bdrv_pwrite(bs, 0, &le_header, sizeof(le_header));
622 if (ret < 0) {
623 goto out;
625 ret = bdrv_pwrite(bs, sizeof(le_header), backing_file,
626 header.backing_filename_size);
627 if (ret < 0) {
628 goto out;
631 l1_table = g_malloc0(l1_size);
632 ret = bdrv_pwrite(bs, header.l1_table_offset, l1_table, l1_size);
633 if (ret < 0) {
634 goto out;
637 ret = 0; /* success */
638 out:
639 g_free(l1_table);
640 bdrv_unref(bs);
641 return ret;
644 static int bdrv_qed_create(const char *filename, QEMUOptionParameter *options,
645 Error **errp)
647 uint64_t image_size = 0;
648 uint32_t cluster_size = QED_DEFAULT_CLUSTER_SIZE;
649 uint32_t table_size = QED_DEFAULT_TABLE_SIZE;
650 const char *backing_file = NULL;
651 const char *backing_fmt = NULL;
653 while (options && options->name) {
654 if (!strcmp(options->name, BLOCK_OPT_SIZE)) {
655 image_size = options->value.n;
656 } else if (!strcmp(options->name, BLOCK_OPT_BACKING_FILE)) {
657 backing_file = options->value.s;
658 } else if (!strcmp(options->name, BLOCK_OPT_BACKING_FMT)) {
659 backing_fmt = options->value.s;
660 } else if (!strcmp(options->name, BLOCK_OPT_CLUSTER_SIZE)) {
661 if (options->value.n) {
662 cluster_size = options->value.n;
664 } else if (!strcmp(options->name, BLOCK_OPT_TABLE_SIZE)) {
665 if (options->value.n) {
666 table_size = options->value.n;
669 options++;
672 if (!qed_is_cluster_size_valid(cluster_size)) {
673 error_setg(errp, "QED cluster size must be within range [%u, %u] "
674 "and power of 2",
675 QED_MIN_CLUSTER_SIZE, QED_MAX_CLUSTER_SIZE);
676 return -EINVAL;
678 if (!qed_is_table_size_valid(table_size)) {
679 error_setg(errp, "QED table size must be within range [%u, %u] "
680 "and power of 2",
681 QED_MIN_TABLE_SIZE, QED_MAX_TABLE_SIZE);
682 return -EINVAL;
684 if (!qed_is_image_size_valid(image_size, cluster_size, table_size)) {
685 error_setg(errp, "QED image size must be a non-zero multiple of "
686 "cluster size and less than %" PRIu64 " bytes",
687 qed_max_image_size(cluster_size, table_size));
688 return -EINVAL;
691 return qed_create(filename, cluster_size, image_size, table_size,
692 backing_file, backing_fmt, errp);
695 typedef struct {
696 BlockDriverState *bs;
697 Coroutine *co;
698 uint64_t pos;
699 int64_t status;
700 int *pnum;
701 } QEDIsAllocatedCB;
703 static void qed_is_allocated_cb(void *opaque, int ret, uint64_t offset, size_t len)
705 QEDIsAllocatedCB *cb = opaque;
706 BDRVQEDState *s = cb->bs->opaque;
707 *cb->pnum = len / BDRV_SECTOR_SIZE;
708 switch (ret) {
709 case QED_CLUSTER_FOUND:
710 offset |= qed_offset_into_cluster(s, cb->pos);
711 cb->status = BDRV_BLOCK_DATA | BDRV_BLOCK_OFFSET_VALID | offset;
712 break;
713 case QED_CLUSTER_ZERO:
714 cb->status = BDRV_BLOCK_ZERO;
715 break;
716 case QED_CLUSTER_L2:
717 case QED_CLUSTER_L1:
718 cb->status = 0;
719 break;
720 default:
721 assert(ret < 0);
722 cb->status = ret;
723 break;
726 if (cb->co) {
727 qemu_coroutine_enter(cb->co, NULL);
731 static int64_t coroutine_fn bdrv_qed_co_get_block_status(BlockDriverState *bs,
732 int64_t sector_num,
733 int nb_sectors, int *pnum)
735 BDRVQEDState *s = bs->opaque;
736 size_t len = (size_t)nb_sectors * BDRV_SECTOR_SIZE;
737 QEDIsAllocatedCB cb = {
738 .bs = bs,
739 .pos = (uint64_t)sector_num * BDRV_SECTOR_SIZE,
740 .status = BDRV_BLOCK_OFFSET_MASK,
741 .pnum = pnum,
743 QEDRequest request = { .l2_table = NULL };
745 qed_find_cluster(s, &request, cb.pos, len, qed_is_allocated_cb, &cb);
747 /* Now sleep if the callback wasn't invoked immediately */
748 while (cb.status == BDRV_BLOCK_OFFSET_MASK) {
749 cb.co = qemu_coroutine_self();
750 qemu_coroutine_yield();
753 qed_unref_l2_cache_entry(request.l2_table);
755 return cb.status;
758 static BDRVQEDState *acb_to_s(QEDAIOCB *acb)
760 return acb->common.bs->opaque;
764 * Read from the backing file or zero-fill if no backing file
766 * @s: QED state
767 * @pos: Byte position in device
768 * @qiov: Destination I/O vector
769 * @cb: Completion function
770 * @opaque: User data for completion function
772 * This function reads qiov->size bytes starting at pos from the backing file.
773 * If there is no backing file then zeroes are read.
775 static void qed_read_backing_file(BDRVQEDState *s, uint64_t pos,
776 QEMUIOVector *qiov,
777 BlockDriverCompletionFunc *cb, void *opaque)
779 uint64_t backing_length = 0;
780 size_t size;
782 /* If there is a backing file, get its length. Treat the absence of a
783 * backing file like a zero length backing file.
785 if (s->bs->backing_hd) {
786 int64_t l = bdrv_getlength(s->bs->backing_hd);
787 if (l < 0) {
788 cb(opaque, l);
789 return;
791 backing_length = l;
794 /* Zero all sectors if reading beyond the end of the backing file */
795 if (pos >= backing_length ||
796 pos + qiov->size > backing_length) {
797 qemu_iovec_memset(qiov, 0, 0, qiov->size);
800 /* Complete now if there are no backing file sectors to read */
801 if (pos >= backing_length) {
802 cb(opaque, 0);
803 return;
806 /* If the read straddles the end of the backing file, shorten it */
807 size = MIN((uint64_t)backing_length - pos, qiov->size);
809 BLKDBG_EVENT(s->bs->file, BLKDBG_READ_BACKING_AIO);
810 bdrv_aio_readv(s->bs->backing_hd, pos / BDRV_SECTOR_SIZE,
811 qiov, size / BDRV_SECTOR_SIZE, cb, opaque);
814 typedef struct {
815 GenericCB gencb;
816 BDRVQEDState *s;
817 QEMUIOVector qiov;
818 struct iovec iov;
819 uint64_t offset;
820 } CopyFromBackingFileCB;
822 static void qed_copy_from_backing_file_cb(void *opaque, int ret)
824 CopyFromBackingFileCB *copy_cb = opaque;
825 qemu_vfree(copy_cb->iov.iov_base);
826 gencb_complete(&copy_cb->gencb, ret);
829 static void qed_copy_from_backing_file_write(void *opaque, int ret)
831 CopyFromBackingFileCB *copy_cb = opaque;
832 BDRVQEDState *s = copy_cb->s;
834 if (ret) {
835 qed_copy_from_backing_file_cb(copy_cb, ret);
836 return;
839 BLKDBG_EVENT(s->bs->file, BLKDBG_COW_WRITE);
840 bdrv_aio_writev(s->bs->file, copy_cb->offset / BDRV_SECTOR_SIZE,
841 &copy_cb->qiov, copy_cb->qiov.size / BDRV_SECTOR_SIZE,
842 qed_copy_from_backing_file_cb, copy_cb);
846 * Copy data from backing file into the image
848 * @s: QED state
849 * @pos: Byte position in device
850 * @len: Number of bytes
851 * @offset: Byte offset in image file
852 * @cb: Completion function
853 * @opaque: User data for completion function
855 static void qed_copy_from_backing_file(BDRVQEDState *s, uint64_t pos,
856 uint64_t len, uint64_t offset,
857 BlockDriverCompletionFunc *cb,
858 void *opaque)
860 CopyFromBackingFileCB *copy_cb;
862 /* Skip copy entirely if there is no work to do */
863 if (len == 0) {
864 cb(opaque, 0);
865 return;
868 copy_cb = gencb_alloc(sizeof(*copy_cb), cb, opaque);
869 copy_cb->s = s;
870 copy_cb->offset = offset;
871 copy_cb->iov.iov_base = qemu_blockalign(s->bs, len);
872 copy_cb->iov.iov_len = len;
873 qemu_iovec_init_external(&copy_cb->qiov, &copy_cb->iov, 1);
875 qed_read_backing_file(s, pos, &copy_cb->qiov,
876 qed_copy_from_backing_file_write, copy_cb);
880 * Link one or more contiguous clusters into a table
882 * @s: QED state
883 * @table: L2 table
884 * @index: First cluster index
885 * @n: Number of contiguous clusters
886 * @cluster: First cluster offset
888 * The cluster offset may be an allocated byte offset in the image file, the
889 * zero cluster marker, or the unallocated cluster marker.
891 static void qed_update_l2_table(BDRVQEDState *s, QEDTable *table, int index,
892 unsigned int n, uint64_t cluster)
894 int i;
895 for (i = index; i < index + n; i++) {
896 table->offsets[i] = cluster;
897 if (!qed_offset_is_unalloc_cluster(cluster) &&
898 !qed_offset_is_zero_cluster(cluster)) {
899 cluster += s->header.cluster_size;
904 static void qed_aio_complete_bh(void *opaque)
906 QEDAIOCB *acb = opaque;
907 BlockDriverCompletionFunc *cb = acb->common.cb;
908 void *user_opaque = acb->common.opaque;
909 int ret = acb->bh_ret;
910 bool *finished = acb->finished;
912 qemu_bh_delete(acb->bh);
913 qemu_aio_release(acb);
915 /* Invoke callback */
916 cb(user_opaque, ret);
918 /* Signal cancel completion */
919 if (finished) {
920 *finished = true;
924 static void qed_aio_complete(QEDAIOCB *acb, int ret)
926 BDRVQEDState *s = acb_to_s(acb);
928 trace_qed_aio_complete(s, acb, ret);
930 /* Free resources */
931 qemu_iovec_destroy(&acb->cur_qiov);
932 qed_unref_l2_cache_entry(acb->request.l2_table);
934 /* Free the buffer we may have allocated for zero writes */
935 if (acb->flags & QED_AIOCB_ZERO) {
936 qemu_vfree(acb->qiov->iov[0].iov_base);
937 acb->qiov->iov[0].iov_base = NULL;
940 /* Arrange for a bh to invoke the completion function */
941 acb->bh_ret = ret;
942 acb->bh = aio_bh_new(bdrv_get_aio_context(acb->common.bs),
943 qed_aio_complete_bh, acb);
944 qemu_bh_schedule(acb->bh);
946 /* Start next allocating write request waiting behind this one. Note that
947 * requests enqueue themselves when they first hit an unallocated cluster
948 * but they wait until the entire request is finished before waking up the
949 * next request in the queue. This ensures that we don't cycle through
950 * requests multiple times but rather finish one at a time completely.
952 if (acb == QSIMPLEQ_FIRST(&s->allocating_write_reqs)) {
953 QSIMPLEQ_REMOVE_HEAD(&s->allocating_write_reqs, next);
954 acb = QSIMPLEQ_FIRST(&s->allocating_write_reqs);
955 if (acb) {
956 qed_aio_next_io(acb, 0);
957 } else if (s->header.features & QED_F_NEED_CHECK) {
958 qed_start_need_check_timer(s);
964 * Commit the current L2 table to the cache
966 static void qed_commit_l2_update(void *opaque, int ret)
968 QEDAIOCB *acb = opaque;
969 BDRVQEDState *s = acb_to_s(acb);
970 CachedL2Table *l2_table = acb->request.l2_table;
971 uint64_t l2_offset = l2_table->offset;
973 qed_commit_l2_cache_entry(&s->l2_cache, l2_table);
975 /* This is guaranteed to succeed because we just committed the entry to the
976 * cache.
978 acb->request.l2_table = qed_find_l2_cache_entry(&s->l2_cache, l2_offset);
979 assert(acb->request.l2_table != NULL);
981 qed_aio_next_io(opaque, ret);
985 * Update L1 table with new L2 table offset and write it out
987 static void qed_aio_write_l1_update(void *opaque, int ret)
989 QEDAIOCB *acb = opaque;
990 BDRVQEDState *s = acb_to_s(acb);
991 int index;
993 if (ret) {
994 qed_aio_complete(acb, ret);
995 return;
998 index = qed_l1_index(s, acb->cur_pos);
999 s->l1_table->offsets[index] = acb->request.l2_table->offset;
1001 qed_write_l1_table(s, index, 1, qed_commit_l2_update, acb);
1005 * Update L2 table with new cluster offsets and write them out
1007 static void qed_aio_write_l2_update(QEDAIOCB *acb, int ret, uint64_t offset)
1009 BDRVQEDState *s = acb_to_s(acb);
1010 bool need_alloc = acb->find_cluster_ret == QED_CLUSTER_L1;
1011 int index;
1013 if (ret) {
1014 goto err;
1017 if (need_alloc) {
1018 qed_unref_l2_cache_entry(acb->request.l2_table);
1019 acb->request.l2_table = qed_new_l2_table(s);
1022 index = qed_l2_index(s, acb->cur_pos);
1023 qed_update_l2_table(s, acb->request.l2_table->table, index, acb->cur_nclusters,
1024 offset);
1026 if (need_alloc) {
1027 /* Write out the whole new L2 table */
1028 qed_write_l2_table(s, &acb->request, 0, s->table_nelems, true,
1029 qed_aio_write_l1_update, acb);
1030 } else {
1031 /* Write out only the updated part of the L2 table */
1032 qed_write_l2_table(s, &acb->request, index, acb->cur_nclusters, false,
1033 qed_aio_next_io, acb);
1035 return;
1037 err:
1038 qed_aio_complete(acb, ret);
1041 static void qed_aio_write_l2_update_cb(void *opaque, int ret)
1043 QEDAIOCB *acb = opaque;
1044 qed_aio_write_l2_update(acb, ret, acb->cur_cluster);
1048 * Flush new data clusters before updating the L2 table
1050 * This flush is necessary when a backing file is in use. A crash during an
1051 * allocating write could result in empty clusters in the image. If the write
1052 * only touched a subregion of the cluster, then backing image sectors have
1053 * been lost in the untouched region. The solution is to flush after writing a
1054 * new data cluster and before updating the L2 table.
1056 static void qed_aio_write_flush_before_l2_update(void *opaque, int ret)
1058 QEDAIOCB *acb = opaque;
1059 BDRVQEDState *s = acb_to_s(acb);
1061 if (!bdrv_aio_flush(s->bs->file, qed_aio_write_l2_update_cb, opaque)) {
1062 qed_aio_complete(acb, -EIO);
1067 * Write data to the image file
1069 static void qed_aio_write_main(void *opaque, int ret)
1071 QEDAIOCB *acb = opaque;
1072 BDRVQEDState *s = acb_to_s(acb);
1073 uint64_t offset = acb->cur_cluster +
1074 qed_offset_into_cluster(s, acb->cur_pos);
1075 BlockDriverCompletionFunc *next_fn;
1077 trace_qed_aio_write_main(s, acb, ret, offset, acb->cur_qiov.size);
1079 if (ret) {
1080 qed_aio_complete(acb, ret);
1081 return;
1084 if (acb->find_cluster_ret == QED_CLUSTER_FOUND) {
1085 next_fn = qed_aio_next_io;
1086 } else {
1087 if (s->bs->backing_hd) {
1088 next_fn = qed_aio_write_flush_before_l2_update;
1089 } else {
1090 next_fn = qed_aio_write_l2_update_cb;
1094 BLKDBG_EVENT(s->bs->file, BLKDBG_WRITE_AIO);
1095 bdrv_aio_writev(s->bs->file, offset / BDRV_SECTOR_SIZE,
1096 &acb->cur_qiov, acb->cur_qiov.size / BDRV_SECTOR_SIZE,
1097 next_fn, acb);
1101 * Populate back untouched region of new data cluster
1103 static void qed_aio_write_postfill(void *opaque, int ret)
1105 QEDAIOCB *acb = opaque;
1106 BDRVQEDState *s = acb_to_s(acb);
1107 uint64_t start = acb->cur_pos + acb->cur_qiov.size;
1108 uint64_t len =
1109 qed_start_of_cluster(s, start + s->header.cluster_size - 1) - start;
1110 uint64_t offset = acb->cur_cluster +
1111 qed_offset_into_cluster(s, acb->cur_pos) +
1112 acb->cur_qiov.size;
1114 if (ret) {
1115 qed_aio_complete(acb, ret);
1116 return;
1119 trace_qed_aio_write_postfill(s, acb, start, len, offset);
1120 qed_copy_from_backing_file(s, start, len, offset,
1121 qed_aio_write_main, acb);
1125 * Populate front untouched region of new data cluster
1127 static void qed_aio_write_prefill(void *opaque, int ret)
1129 QEDAIOCB *acb = opaque;
1130 BDRVQEDState *s = acb_to_s(acb);
1131 uint64_t start = qed_start_of_cluster(s, acb->cur_pos);
1132 uint64_t len = qed_offset_into_cluster(s, acb->cur_pos);
1134 trace_qed_aio_write_prefill(s, acb, start, len, acb->cur_cluster);
1135 qed_copy_from_backing_file(s, start, len, acb->cur_cluster,
1136 qed_aio_write_postfill, acb);
1140 * Check if the QED_F_NEED_CHECK bit should be set during allocating write
1142 static bool qed_should_set_need_check(BDRVQEDState *s)
1144 /* The flush before L2 update path ensures consistency */
1145 if (s->bs->backing_hd) {
1146 return false;
1149 return !(s->header.features & QED_F_NEED_CHECK);
1152 static void qed_aio_write_zero_cluster(void *opaque, int ret)
1154 QEDAIOCB *acb = opaque;
1156 if (ret) {
1157 qed_aio_complete(acb, ret);
1158 return;
1161 qed_aio_write_l2_update(acb, 0, 1);
1165 * Write new data cluster
1167 * @acb: Write request
1168 * @len: Length in bytes
1170 * This path is taken when writing to previously unallocated clusters.
1172 static void qed_aio_write_alloc(QEDAIOCB *acb, size_t len)
1174 BDRVQEDState *s = acb_to_s(acb);
1175 BlockDriverCompletionFunc *cb;
1177 /* Cancel timer when the first allocating request comes in */
1178 if (QSIMPLEQ_EMPTY(&s->allocating_write_reqs)) {
1179 qed_cancel_need_check_timer(s);
1182 /* Freeze this request if another allocating write is in progress */
1183 if (acb != QSIMPLEQ_FIRST(&s->allocating_write_reqs)) {
1184 QSIMPLEQ_INSERT_TAIL(&s->allocating_write_reqs, acb, next);
1186 if (acb != QSIMPLEQ_FIRST(&s->allocating_write_reqs) ||
1187 s->allocating_write_reqs_plugged) {
1188 return; /* wait for existing request to finish */
1191 acb->cur_nclusters = qed_bytes_to_clusters(s,
1192 qed_offset_into_cluster(s, acb->cur_pos) + len);
1193 qemu_iovec_concat(&acb->cur_qiov, acb->qiov, acb->qiov_offset, len);
1195 if (acb->flags & QED_AIOCB_ZERO) {
1196 /* Skip ahead if the clusters are already zero */
1197 if (acb->find_cluster_ret == QED_CLUSTER_ZERO) {
1198 qed_aio_next_io(acb, 0);
1199 return;
1202 cb = qed_aio_write_zero_cluster;
1203 } else {
1204 cb = qed_aio_write_prefill;
1205 acb->cur_cluster = qed_alloc_clusters(s, acb->cur_nclusters);
1208 if (qed_should_set_need_check(s)) {
1209 s->header.features |= QED_F_NEED_CHECK;
1210 qed_write_header(s, cb, acb);
1211 } else {
1212 cb(acb, 0);
1217 * Write data cluster in place
1219 * @acb: Write request
1220 * @offset: Cluster offset in bytes
1221 * @len: Length in bytes
1223 * This path is taken when writing to already allocated clusters.
1225 static void qed_aio_write_inplace(QEDAIOCB *acb, uint64_t offset, size_t len)
1227 /* Allocate buffer for zero writes */
1228 if (acb->flags & QED_AIOCB_ZERO) {
1229 struct iovec *iov = acb->qiov->iov;
1231 if (!iov->iov_base) {
1232 iov->iov_base = qemu_blockalign(acb->common.bs, iov->iov_len);
1233 memset(iov->iov_base, 0, iov->iov_len);
1237 /* Calculate the I/O vector */
1238 acb->cur_cluster = offset;
1239 qemu_iovec_concat(&acb->cur_qiov, acb->qiov, acb->qiov_offset, len);
1241 /* Do the actual write */
1242 qed_aio_write_main(acb, 0);
1246 * Write data cluster
1248 * @opaque: Write request
1249 * @ret: QED_CLUSTER_FOUND, QED_CLUSTER_L2, QED_CLUSTER_L1,
1250 * or -errno
1251 * @offset: Cluster offset in bytes
1252 * @len: Length in bytes
1254 * Callback from qed_find_cluster().
1256 static void qed_aio_write_data(void *opaque, int ret,
1257 uint64_t offset, size_t len)
1259 QEDAIOCB *acb = opaque;
1261 trace_qed_aio_write_data(acb_to_s(acb), acb, ret, offset, len);
1263 acb->find_cluster_ret = ret;
1265 switch (ret) {
1266 case QED_CLUSTER_FOUND:
1267 qed_aio_write_inplace(acb, offset, len);
1268 break;
1270 case QED_CLUSTER_L2:
1271 case QED_CLUSTER_L1:
1272 case QED_CLUSTER_ZERO:
1273 qed_aio_write_alloc(acb, len);
1274 break;
1276 default:
1277 qed_aio_complete(acb, ret);
1278 break;
1283 * Read data cluster
1285 * @opaque: Read request
1286 * @ret: QED_CLUSTER_FOUND, QED_CLUSTER_L2, QED_CLUSTER_L1,
1287 * or -errno
1288 * @offset: Cluster offset in bytes
1289 * @len: Length in bytes
1291 * Callback from qed_find_cluster().
1293 static void qed_aio_read_data(void *opaque, int ret,
1294 uint64_t offset, size_t len)
1296 QEDAIOCB *acb = opaque;
1297 BDRVQEDState *s = acb_to_s(acb);
1298 BlockDriverState *bs = acb->common.bs;
1300 /* Adjust offset into cluster */
1301 offset += qed_offset_into_cluster(s, acb->cur_pos);
1303 trace_qed_aio_read_data(s, acb, ret, offset, len);
1305 if (ret < 0) {
1306 goto err;
1309 qemu_iovec_concat(&acb->cur_qiov, acb->qiov, acb->qiov_offset, len);
1311 /* Handle zero cluster and backing file reads */
1312 if (ret == QED_CLUSTER_ZERO) {
1313 qemu_iovec_memset(&acb->cur_qiov, 0, 0, acb->cur_qiov.size);
1314 qed_aio_next_io(acb, 0);
1315 return;
1316 } else if (ret != QED_CLUSTER_FOUND) {
1317 qed_read_backing_file(s, acb->cur_pos, &acb->cur_qiov,
1318 qed_aio_next_io, acb);
1319 return;
1322 BLKDBG_EVENT(bs->file, BLKDBG_READ_AIO);
1323 bdrv_aio_readv(bs->file, offset / BDRV_SECTOR_SIZE,
1324 &acb->cur_qiov, acb->cur_qiov.size / BDRV_SECTOR_SIZE,
1325 qed_aio_next_io, acb);
1326 return;
1328 err:
1329 qed_aio_complete(acb, ret);
1333 * Begin next I/O or complete the request
1335 static void qed_aio_next_io(void *opaque, int ret)
1337 QEDAIOCB *acb = opaque;
1338 BDRVQEDState *s = acb_to_s(acb);
1339 QEDFindClusterFunc *io_fn = (acb->flags & QED_AIOCB_WRITE) ?
1340 qed_aio_write_data : qed_aio_read_data;
1342 trace_qed_aio_next_io(s, acb, ret, acb->cur_pos + acb->cur_qiov.size);
1344 /* Handle I/O error */
1345 if (ret) {
1346 qed_aio_complete(acb, ret);
1347 return;
1350 acb->qiov_offset += acb->cur_qiov.size;
1351 acb->cur_pos += acb->cur_qiov.size;
1352 qemu_iovec_reset(&acb->cur_qiov);
1354 /* Complete request */
1355 if (acb->cur_pos >= acb->end_pos) {
1356 qed_aio_complete(acb, 0);
1357 return;
1360 /* Find next cluster and start I/O */
1361 qed_find_cluster(s, &acb->request,
1362 acb->cur_pos, acb->end_pos - acb->cur_pos,
1363 io_fn, acb);
1366 static BlockDriverAIOCB *qed_aio_setup(BlockDriverState *bs,
1367 int64_t sector_num,
1368 QEMUIOVector *qiov, int nb_sectors,
1369 BlockDriverCompletionFunc *cb,
1370 void *opaque, int flags)
1372 QEDAIOCB *acb = qemu_aio_get(&qed_aiocb_info, bs, cb, opaque);
1374 trace_qed_aio_setup(bs->opaque, acb, sector_num, nb_sectors,
1375 opaque, flags);
1377 acb->flags = flags;
1378 acb->finished = NULL;
1379 acb->qiov = qiov;
1380 acb->qiov_offset = 0;
1381 acb->cur_pos = (uint64_t)sector_num * BDRV_SECTOR_SIZE;
1382 acb->end_pos = acb->cur_pos + nb_sectors * BDRV_SECTOR_SIZE;
1383 acb->request.l2_table = NULL;
1384 qemu_iovec_init(&acb->cur_qiov, qiov->niov);
1386 /* Start request */
1387 qed_aio_next_io(acb, 0);
1388 return &acb->common;
1391 static BlockDriverAIOCB *bdrv_qed_aio_readv(BlockDriverState *bs,
1392 int64_t sector_num,
1393 QEMUIOVector *qiov, int nb_sectors,
1394 BlockDriverCompletionFunc *cb,
1395 void *opaque)
1397 return qed_aio_setup(bs, sector_num, qiov, nb_sectors, cb, opaque, 0);
1400 static BlockDriverAIOCB *bdrv_qed_aio_writev(BlockDriverState *bs,
1401 int64_t sector_num,
1402 QEMUIOVector *qiov, int nb_sectors,
1403 BlockDriverCompletionFunc *cb,
1404 void *opaque)
1406 return qed_aio_setup(bs, sector_num, qiov, nb_sectors, cb,
1407 opaque, QED_AIOCB_WRITE);
1410 typedef struct {
1411 Coroutine *co;
1412 int ret;
1413 bool done;
1414 } QEDWriteZeroesCB;
1416 static void coroutine_fn qed_co_write_zeroes_cb(void *opaque, int ret)
1418 QEDWriteZeroesCB *cb = opaque;
1420 cb->done = true;
1421 cb->ret = ret;
1422 if (cb->co) {
1423 qemu_coroutine_enter(cb->co, NULL);
1427 static int coroutine_fn bdrv_qed_co_write_zeroes(BlockDriverState *bs,
1428 int64_t sector_num,
1429 int nb_sectors,
1430 BdrvRequestFlags flags)
1432 BlockDriverAIOCB *blockacb;
1433 BDRVQEDState *s = bs->opaque;
1434 QEDWriteZeroesCB cb = { .done = false };
1435 QEMUIOVector qiov;
1436 struct iovec iov;
1438 /* Refuse if there are untouched backing file sectors */
1439 if (bs->backing_hd) {
1440 if (qed_offset_into_cluster(s, sector_num * BDRV_SECTOR_SIZE) != 0) {
1441 return -ENOTSUP;
1443 if (qed_offset_into_cluster(s, nb_sectors * BDRV_SECTOR_SIZE) != 0) {
1444 return -ENOTSUP;
1448 /* Zero writes start without an I/O buffer. If a buffer becomes necessary
1449 * then it will be allocated during request processing.
1451 iov.iov_base = NULL,
1452 iov.iov_len = nb_sectors * BDRV_SECTOR_SIZE,
1454 qemu_iovec_init_external(&qiov, &iov, 1);
1455 blockacb = qed_aio_setup(bs, sector_num, &qiov, nb_sectors,
1456 qed_co_write_zeroes_cb, &cb,
1457 QED_AIOCB_WRITE | QED_AIOCB_ZERO);
1458 if (!blockacb) {
1459 return -EIO;
1461 if (!cb.done) {
1462 cb.co = qemu_coroutine_self();
1463 qemu_coroutine_yield();
1465 assert(cb.done);
1466 return cb.ret;
1469 static int bdrv_qed_truncate(BlockDriverState *bs, int64_t offset)
1471 BDRVQEDState *s = bs->opaque;
1472 uint64_t old_image_size;
1473 int ret;
1475 if (!qed_is_image_size_valid(offset, s->header.cluster_size,
1476 s->header.table_size)) {
1477 return -EINVAL;
1480 /* Shrinking is currently not supported */
1481 if ((uint64_t)offset < s->header.image_size) {
1482 return -ENOTSUP;
1485 old_image_size = s->header.image_size;
1486 s->header.image_size = offset;
1487 ret = qed_write_header_sync(s);
1488 if (ret < 0) {
1489 s->header.image_size = old_image_size;
1491 return ret;
1494 static int64_t bdrv_qed_getlength(BlockDriverState *bs)
1496 BDRVQEDState *s = bs->opaque;
1497 return s->header.image_size;
1500 static int bdrv_qed_get_info(BlockDriverState *bs, BlockDriverInfo *bdi)
1502 BDRVQEDState *s = bs->opaque;
1504 memset(bdi, 0, sizeof(*bdi));
1505 bdi->cluster_size = s->header.cluster_size;
1506 bdi->is_dirty = s->header.features & QED_F_NEED_CHECK;
1507 bdi->unallocated_blocks_are_zero = true;
1508 bdi->can_write_zeroes_with_unmap = true;
1509 return 0;
1512 static int bdrv_qed_change_backing_file(BlockDriverState *bs,
1513 const char *backing_file,
1514 const char *backing_fmt)
1516 BDRVQEDState *s = bs->opaque;
1517 QEDHeader new_header, le_header;
1518 void *buffer;
1519 size_t buffer_len, backing_file_len;
1520 int ret;
1522 /* Refuse to set backing filename if unknown compat feature bits are
1523 * active. If the image uses an unknown compat feature then we may not
1524 * know the layout of data following the header structure and cannot safely
1525 * add a new string.
1527 if (backing_file && (s->header.compat_features &
1528 ~QED_COMPAT_FEATURE_MASK)) {
1529 return -ENOTSUP;
1532 memcpy(&new_header, &s->header, sizeof(new_header));
1534 new_header.features &= ~(QED_F_BACKING_FILE |
1535 QED_F_BACKING_FORMAT_NO_PROBE);
1537 /* Adjust feature flags */
1538 if (backing_file) {
1539 new_header.features |= QED_F_BACKING_FILE;
1541 if (qed_fmt_is_raw(backing_fmt)) {
1542 new_header.features |= QED_F_BACKING_FORMAT_NO_PROBE;
1546 /* Calculate new header size */
1547 backing_file_len = 0;
1549 if (backing_file) {
1550 backing_file_len = strlen(backing_file);
1553 buffer_len = sizeof(new_header);
1554 new_header.backing_filename_offset = buffer_len;
1555 new_header.backing_filename_size = backing_file_len;
1556 buffer_len += backing_file_len;
1558 /* Make sure we can rewrite header without failing */
1559 if (buffer_len > new_header.header_size * new_header.cluster_size) {
1560 return -ENOSPC;
1563 /* Prepare new header */
1564 buffer = g_malloc(buffer_len);
1566 qed_header_cpu_to_le(&new_header, &le_header);
1567 memcpy(buffer, &le_header, sizeof(le_header));
1568 buffer_len = sizeof(le_header);
1570 if (backing_file) {
1571 memcpy(buffer + buffer_len, backing_file, backing_file_len);
1572 buffer_len += backing_file_len;
1575 /* Write new header */
1576 ret = bdrv_pwrite_sync(bs->file, 0, buffer, buffer_len);
1577 g_free(buffer);
1578 if (ret == 0) {
1579 memcpy(&s->header, &new_header, sizeof(new_header));
1581 return ret;
1584 static void bdrv_qed_invalidate_cache(BlockDriverState *bs, Error **errp)
1586 BDRVQEDState *s = bs->opaque;
1587 Error *local_err = NULL;
1588 int ret;
1590 bdrv_qed_close(bs);
1592 bdrv_invalidate_cache(bs->file, &local_err);
1593 if (local_err) {
1594 error_propagate(errp, local_err);
1595 return;
1598 memset(s, 0, sizeof(BDRVQEDState));
1599 ret = bdrv_qed_open(bs, NULL, bs->open_flags, &local_err);
1600 if (local_err) {
1601 error_setg(errp, "Could not reopen qed layer: %s",
1602 error_get_pretty(local_err));
1603 error_free(local_err);
1604 return;
1605 } else if (ret < 0) {
1606 error_setg_errno(errp, -ret, "Could not reopen qed layer");
1607 return;
1611 static int bdrv_qed_check(BlockDriverState *bs, BdrvCheckResult *result,
1612 BdrvCheckMode fix)
1614 BDRVQEDState *s = bs->opaque;
1616 return qed_check(s, result, !!fix);
1619 static QEMUOptionParameter qed_create_options[] = {
1621 .name = BLOCK_OPT_SIZE,
1622 .type = OPT_SIZE,
1623 .help = "Virtual disk size (in bytes)"
1624 }, {
1625 .name = BLOCK_OPT_BACKING_FILE,
1626 .type = OPT_STRING,
1627 .help = "File name of a base image"
1628 }, {
1629 .name = BLOCK_OPT_BACKING_FMT,
1630 .type = OPT_STRING,
1631 .help = "Image format of the base image"
1632 }, {
1633 .name = BLOCK_OPT_CLUSTER_SIZE,
1634 .type = OPT_SIZE,
1635 .help = "Cluster size (in bytes)",
1636 .value = { .n = QED_DEFAULT_CLUSTER_SIZE },
1637 }, {
1638 .name = BLOCK_OPT_TABLE_SIZE,
1639 .type = OPT_SIZE,
1640 .help = "L1/L2 table size (in clusters)"
1642 { /* end of list */ }
1645 static BlockDriver bdrv_qed = {
1646 .format_name = "qed",
1647 .instance_size = sizeof(BDRVQEDState),
1648 .create_options = qed_create_options,
1650 .bdrv_probe = bdrv_qed_probe,
1651 .bdrv_rebind = bdrv_qed_rebind,
1652 .bdrv_open = bdrv_qed_open,
1653 .bdrv_close = bdrv_qed_close,
1654 .bdrv_reopen_prepare = bdrv_qed_reopen_prepare,
1655 .bdrv_create = bdrv_qed_create,
1656 .bdrv_has_zero_init = bdrv_has_zero_init_1,
1657 .bdrv_co_get_block_status = bdrv_qed_co_get_block_status,
1658 .bdrv_aio_readv = bdrv_qed_aio_readv,
1659 .bdrv_aio_writev = bdrv_qed_aio_writev,
1660 .bdrv_co_write_zeroes = bdrv_qed_co_write_zeroes,
1661 .bdrv_truncate = bdrv_qed_truncate,
1662 .bdrv_getlength = bdrv_qed_getlength,
1663 .bdrv_get_info = bdrv_qed_get_info,
1664 .bdrv_refresh_limits = bdrv_qed_refresh_limits,
1665 .bdrv_change_backing_file = bdrv_qed_change_backing_file,
1666 .bdrv_invalidate_cache = bdrv_qed_invalidate_cache,
1667 .bdrv_check = bdrv_qed_check,
1668 .bdrv_detach_aio_context = bdrv_qed_detach_aio_context,
1669 .bdrv_attach_aio_context = bdrv_qed_attach_aio_context,
1672 static void bdrv_qed_init(void)
1674 bdrv_register(&bdrv_qed);
1677 block_init(bdrv_qed_init);