qed.c 49.0 KB
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/*
 * QEMU Enhanced Disk Format
 *
 * Copyright IBM, Corp. 2010
 *
 * Authors:
 *  Stefan Hajnoczi   <stefanha@linux.vnet.ibm.com>
 *  Anthony Liguori   <aliguori@us.ibm.com>
 *
 * This work is licensed under the terms of the GNU LGPL, version 2 or later.
 * See the COPYING.LIB file in the top-level directory.
 *
 */

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#include "qemu/timer.h"
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#include "trace.h"
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#include "qed.h"
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#include "qapi/qmp/qerror.h"
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#include "migration/migration.h"
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static const AIOCBInfo qed_aiocb_info = {
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    .aiocb_size         = sizeof(QEDAIOCB),
};

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static int bdrv_qed_probe(const uint8_t *buf, int buf_size,
                          const char *filename)
{
    const QEDHeader *header = (const QEDHeader *)buf;

    if (buf_size < sizeof(*header)) {
        return 0;
    }
    if (le32_to_cpu(header->magic) != QED_MAGIC) {
        return 0;
    }
    return 100;
}

/**
 * Check whether an image format is raw
 *
 * @fmt:    Backing file format, may be NULL
 */
static bool qed_fmt_is_raw(const char *fmt)
{
    return fmt && strcmp(fmt, "raw") == 0;
}

static void qed_header_le_to_cpu(const QEDHeader *le, QEDHeader *cpu)
{
    cpu->magic = le32_to_cpu(le->magic);
    cpu->cluster_size = le32_to_cpu(le->cluster_size);
    cpu->table_size = le32_to_cpu(le->table_size);
    cpu->header_size = le32_to_cpu(le->header_size);
    cpu->features = le64_to_cpu(le->features);
    cpu->compat_features = le64_to_cpu(le->compat_features);
    cpu->autoclear_features = le64_to_cpu(le->autoclear_features);
    cpu->l1_table_offset = le64_to_cpu(le->l1_table_offset);
    cpu->image_size = le64_to_cpu(le->image_size);
    cpu->backing_filename_offset = le32_to_cpu(le->backing_filename_offset);
    cpu->backing_filename_size = le32_to_cpu(le->backing_filename_size);
}

static void qed_header_cpu_to_le(const QEDHeader *cpu, QEDHeader *le)
{
    le->magic = cpu_to_le32(cpu->magic);
    le->cluster_size = cpu_to_le32(cpu->cluster_size);
    le->table_size = cpu_to_le32(cpu->table_size);
    le->header_size = cpu_to_le32(cpu->header_size);
    le->features = cpu_to_le64(cpu->features);
    le->compat_features = cpu_to_le64(cpu->compat_features);
    le->autoclear_features = cpu_to_le64(cpu->autoclear_features);
    le->l1_table_offset = cpu_to_le64(cpu->l1_table_offset);
    le->image_size = cpu_to_le64(cpu->image_size);
    le->backing_filename_offset = cpu_to_le32(cpu->backing_filename_offset);
    le->backing_filename_size = cpu_to_le32(cpu->backing_filename_size);
}

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int qed_write_header_sync(BDRVQEDState *s)
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{
    QEDHeader le;
    int ret;

    qed_header_cpu_to_le(&s->header, &le);
    ret = bdrv_pwrite(s->bs->file, 0, &le, sizeof(le));
    if (ret != sizeof(le)) {
        return ret;
    }
    return 0;
}

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typedef struct {
    GenericCB gencb;
    BDRVQEDState *s;
    struct iovec iov;
    QEMUIOVector qiov;
    int nsectors;
    uint8_t *buf;
} QEDWriteHeaderCB;

static void qed_write_header_cb(void *opaque, int ret)
{
    QEDWriteHeaderCB *write_header_cb = opaque;

    qemu_vfree(write_header_cb->buf);
    gencb_complete(write_header_cb, ret);
}

static void qed_write_header_read_cb(void *opaque, int ret)
{
    QEDWriteHeaderCB *write_header_cb = opaque;
    BDRVQEDState *s = write_header_cb->s;

    if (ret) {
        qed_write_header_cb(write_header_cb, ret);
        return;
    }

    /* Update header */
    qed_header_cpu_to_le(&s->header, (QEDHeader *)write_header_cb->buf);

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    bdrv_aio_writev(s->bs->file, 0, &write_header_cb->qiov,
                    write_header_cb->nsectors, qed_write_header_cb,
                    write_header_cb);
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}

/**
 * Update header in-place (does not rewrite backing filename or other strings)
 *
 * This function only updates known header fields in-place and does not affect
 * extra data after the QED header.
 */
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static void qed_write_header(BDRVQEDState *s, BlockCompletionFunc cb,
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                             void *opaque)
{
    /* We must write full sectors for O_DIRECT but cannot necessarily generate
     * the data following the header if an unrecognized compat feature is
     * active.  Therefore, first read the sectors containing the header, update
     * them, and write back.
     */

    int nsectors = (sizeof(QEDHeader) + BDRV_SECTOR_SIZE - 1) /
                   BDRV_SECTOR_SIZE;
    size_t len = nsectors * BDRV_SECTOR_SIZE;
    QEDWriteHeaderCB *write_header_cb = gencb_alloc(sizeof(*write_header_cb),
                                                    cb, opaque);

    write_header_cb->s = s;
    write_header_cb->nsectors = nsectors;
    write_header_cb->buf = qemu_blockalign(s->bs, len);
    write_header_cb->iov.iov_base = write_header_cb->buf;
    write_header_cb->iov.iov_len = len;
    qemu_iovec_init_external(&write_header_cb->qiov, &write_header_cb->iov, 1);

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    bdrv_aio_readv(s->bs->file, 0, &write_header_cb->qiov, nsectors,
                   qed_write_header_read_cb, write_header_cb);
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}

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static uint64_t qed_max_image_size(uint32_t cluster_size, uint32_t table_size)
{
    uint64_t table_entries;
    uint64_t l2_size;

    table_entries = (table_size * cluster_size) / sizeof(uint64_t);
    l2_size = table_entries * cluster_size;

    return l2_size * table_entries;
}

static bool qed_is_cluster_size_valid(uint32_t cluster_size)
{
    if (cluster_size < QED_MIN_CLUSTER_SIZE ||
        cluster_size > QED_MAX_CLUSTER_SIZE) {
        return false;
    }
    if (cluster_size & (cluster_size - 1)) {
        return false; /* not power of 2 */
    }
    return true;
}

static bool qed_is_table_size_valid(uint32_t table_size)
{
    if (table_size < QED_MIN_TABLE_SIZE ||
        table_size > QED_MAX_TABLE_SIZE) {
        return false;
    }
    if (table_size & (table_size - 1)) {
        return false; /* not power of 2 */
    }
    return true;
}

static bool qed_is_image_size_valid(uint64_t image_size, uint32_t cluster_size,
                                    uint32_t table_size)
{
    if (image_size % BDRV_SECTOR_SIZE != 0) {
        return false; /* not multiple of sector size */
    }
    if (image_size > qed_max_image_size(cluster_size, table_size)) {
        return false; /* image is too large */
    }
    return true;
}

/**
 * Read a string of known length from the image file
 *
 * @file:       Image file
 * @offset:     File offset to start of string, in bytes
 * @n:          String length in bytes
 * @buf:        Destination buffer
 * @buflen:     Destination buffer length in bytes
 * @ret:        0 on success, -errno on failure
 *
 * The string is NUL-terminated.
 */
static int qed_read_string(BlockDriverState *file, uint64_t offset, size_t n,
                           char *buf, size_t buflen)
{
    int ret;
    if (n >= buflen) {
        return -EINVAL;
    }
    ret = bdrv_pread(file, offset, buf, n);
    if (ret < 0) {
        return ret;
    }
    buf[n] = '\0';
    return 0;
}

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/**
 * Allocate new clusters
 *
 * @s:          QED state
 * @n:          Number of contiguous clusters to allocate
 * @ret:        Offset of first allocated cluster
 *
 * This function only produces the offset where the new clusters should be
 * written.  It updates BDRVQEDState but does not make any changes to the image
 * file.
 */
static uint64_t qed_alloc_clusters(BDRVQEDState *s, unsigned int n)
{
    uint64_t offset = s->file_size;
    s->file_size += n * s->header.cluster_size;
    return offset;
}

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QEDTable *qed_alloc_table(BDRVQEDState *s)
{
    /* Honor O_DIRECT memory alignment requirements */
    return qemu_blockalign(s->bs,
                           s->header.cluster_size * s->header.table_size);
}

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/**
 * Allocate a new zeroed L2 table
 */
static CachedL2Table *qed_new_l2_table(BDRVQEDState *s)
{
    CachedL2Table *l2_table = qed_alloc_l2_cache_entry(&s->l2_cache);

    l2_table->table = qed_alloc_table(s);
    l2_table->offset = qed_alloc_clusters(s, s->header.table_size);

    memset(l2_table->table->offsets, 0,
           s->header.cluster_size * s->header.table_size);
    return l2_table;
}

static void qed_aio_next_io(void *opaque, int ret);

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static void qed_plug_allocating_write_reqs(BDRVQEDState *s)
{
    assert(!s->allocating_write_reqs_plugged);

    s->allocating_write_reqs_plugged = true;
}

static void qed_unplug_allocating_write_reqs(BDRVQEDState *s)
{
    QEDAIOCB *acb;

    assert(s->allocating_write_reqs_plugged);

    s->allocating_write_reqs_plugged = false;

    acb = QSIMPLEQ_FIRST(&s->allocating_write_reqs);
    if (acb) {
        qed_aio_next_io(acb, 0);
    }
}

static void qed_finish_clear_need_check(void *opaque, int ret)
{
    /* Do nothing */
}

static void qed_flush_after_clear_need_check(void *opaque, int ret)
{
    BDRVQEDState *s = opaque;

    bdrv_aio_flush(s->bs, qed_finish_clear_need_check, s);

    /* No need to wait until flush completes */
    qed_unplug_allocating_write_reqs(s);
}

static void qed_clear_need_check(void *opaque, int ret)
{
    BDRVQEDState *s = opaque;

    if (ret) {
        qed_unplug_allocating_write_reqs(s);
        return;
    }

    s->header.features &= ~QED_F_NEED_CHECK;
    qed_write_header(s, qed_flush_after_clear_need_check, s);
}

static void qed_need_check_timer_cb(void *opaque)
{
    BDRVQEDState *s = opaque;

    /* The timer should only fire when allocating writes have drained */
    assert(!QSIMPLEQ_FIRST(&s->allocating_write_reqs));

    trace_qed_need_check_timer_cb(s);

    qed_plug_allocating_write_reqs(s);

    /* Ensure writes are on disk before clearing flag */
    bdrv_aio_flush(s->bs, qed_clear_need_check, s);
}

static void qed_start_need_check_timer(BDRVQEDState *s)
{
    trace_qed_start_need_check_timer(s);

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    /* Use QEMU_CLOCK_VIRTUAL so we don't alter the image file while suspended for
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     * migration.
     */
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    timer_mod(s->need_check_timer, qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL) +
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                   get_ticks_per_sec() * QED_NEED_CHECK_TIMEOUT);
}

/* It's okay to call this multiple times or when no timer is started */
static void qed_cancel_need_check_timer(BDRVQEDState *s)
{
    trace_qed_cancel_need_check_timer(s);
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    timer_del(s->need_check_timer);
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}

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static void bdrv_qed_rebind(BlockDriverState *bs)
{
    BDRVQEDState *s = bs->opaque;
    s->bs = bs;
}

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static void bdrv_qed_detach_aio_context(BlockDriverState *bs)
{
    BDRVQEDState *s = bs->opaque;

    qed_cancel_need_check_timer(s);
    timer_free(s->need_check_timer);
}

static void bdrv_qed_attach_aio_context(BlockDriverState *bs,
                                        AioContext *new_context)
{
    BDRVQEDState *s = bs->opaque;

    s->need_check_timer = aio_timer_new(new_context,
                                        QEMU_CLOCK_VIRTUAL, SCALE_NS,
                                        qed_need_check_timer_cb, s);
    if (s->header.features & QED_F_NEED_CHECK) {
        qed_start_need_check_timer(s);
    }
}

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static int bdrv_qed_open(BlockDriverState *bs, QDict *options, int flags,
                         Error **errp)
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{
    BDRVQEDState *s = bs->opaque;
    QEDHeader le_header;
    int64_t file_size;
    int ret;

    s->bs = bs;
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    QSIMPLEQ_INIT(&s->allocating_write_reqs);
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    ret = bdrv_pread(bs->file, 0, &le_header, sizeof(le_header));
    if (ret < 0) {
        return ret;
    }
    qed_header_le_to_cpu(&le_header, &s->header);

    if (s->header.magic != QED_MAGIC) {
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        error_setg(errp, "Image not in QED format");
        return -EINVAL;
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    }
    if (s->header.features & ~QED_FEATURE_MASK) {
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        /* image uses unsupported feature bits */
        char buf[64];
        snprintf(buf, sizeof(buf), "%" PRIx64,
            s->header.features & ~QED_FEATURE_MASK);
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        error_set(errp, QERR_UNKNOWN_BLOCK_FORMAT_FEATURE,
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            bdrv_get_device_name(bs), "QED", buf);
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        return -ENOTSUP;
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    }
    if (!qed_is_cluster_size_valid(s->header.cluster_size)) {
        return -EINVAL;
    }

    /* Round down file size to the last cluster */
    file_size = bdrv_getlength(bs->file);
    if (file_size < 0) {
        return file_size;
    }
    s->file_size = qed_start_of_cluster(s, file_size);

    if (!qed_is_table_size_valid(s->header.table_size)) {
        return -EINVAL;
    }
    if (!qed_is_image_size_valid(s->header.image_size,
                                 s->header.cluster_size,
                                 s->header.table_size)) {
        return -EINVAL;
    }
    if (!qed_check_table_offset(s, s->header.l1_table_offset)) {
        return -EINVAL;
    }

    s->table_nelems = (s->header.cluster_size * s->header.table_size) /
                      sizeof(uint64_t);
    s->l2_shift = ffs(s->header.cluster_size) - 1;
    s->l2_mask = s->table_nelems - 1;
    s->l1_shift = s->l2_shift + ffs(s->table_nelems) - 1;

    if ((s->header.features & QED_F_BACKING_FILE)) {
        if ((uint64_t)s->header.backing_filename_offset +
            s->header.backing_filename_size >
            s->header.cluster_size * s->header.header_size) {
            return -EINVAL;
        }

        ret = qed_read_string(bs->file, s->header.backing_filename_offset,
                              s->header.backing_filename_size, bs->backing_file,
                              sizeof(bs->backing_file));
        if (ret < 0) {
            return ret;
        }

        if (s->header.features & QED_F_BACKING_FORMAT_NO_PROBE) {
            pstrcpy(bs->backing_format, sizeof(bs->backing_format), "raw");
        }
    }

    /* Reset unknown autoclear feature bits.  This is a backwards
     * compatibility mechanism that allows images to be opened by older
     * programs, which "knock out" unknown feature bits.  When an image is
     * opened by a newer program again it can detect that the autoclear
     * feature is no longer valid.
     */
    if ((s->header.autoclear_features & ~QED_AUTOCLEAR_FEATURE_MASK) != 0 &&
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        !bdrv_is_read_only(bs->file) && !(flags & BDRV_O_INCOMING)) {
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        s->header.autoclear_features &= QED_AUTOCLEAR_FEATURE_MASK;

        ret = qed_write_header_sync(s);
        if (ret) {
            return ret;
        }

        /* From here on only known autoclear feature bits are valid */
        bdrv_flush(bs->file);
    }

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    s->l1_table = qed_alloc_table(s);
    qed_init_l2_cache(&s->l2_cache);

    ret = qed_read_l1_table_sync(s);
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    if (ret) {
        goto out;
    }

    /* If image was not closed cleanly, check consistency */
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    if (!(flags & BDRV_O_CHECK) && (s->header.features & QED_F_NEED_CHECK)) {
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        /* Read-only images cannot be fixed.  There is no risk of corruption
         * since write operations are not possible.  Therefore, allow
         * potentially inconsistent images to be opened read-only.  This can
         * aid data recovery from an otherwise inconsistent image.
         */
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        if (!bdrv_is_read_only(bs->file) &&
            !(flags & BDRV_O_INCOMING)) {
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            BdrvCheckResult result = {0};

            ret = qed_check(s, &result, true);
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            if (ret) {
                goto out;
            }
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        }
    }

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    bdrv_qed_attach_aio_context(bs, bdrv_get_aio_context(bs));
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out:
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    if (ret) {
        qed_free_l2_cache(&s->l2_cache);
        qemu_vfree(s->l1_table);
    }
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    return ret;
}

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static void bdrv_qed_refresh_limits(BlockDriverState *bs, Error **errp)
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{
    BDRVQEDState *s = bs->opaque;

    bs->bl.write_zeroes_alignment = s->header.cluster_size >> BDRV_SECTOR_BITS;
}

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/* We have nothing to do for QED reopen, stubs just return
 * success */
static int bdrv_qed_reopen_prepare(BDRVReopenState *state,
                                   BlockReopenQueue *queue, Error **errp)
{
    return 0;
}

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static void bdrv_qed_close(BlockDriverState *bs)
{
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    BDRVQEDState *s = bs->opaque;

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    bdrv_qed_detach_aio_context(bs);
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    /* Ensure writes reach stable storage */
    bdrv_flush(bs->file);

    /* Clean shutdown, no check required on next open */
    if (s->header.features & QED_F_NEED_CHECK) {
        s->header.features &= ~QED_F_NEED_CHECK;
        qed_write_header_sync(s);
    }

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    qed_free_l2_cache(&s->l2_cache);
    qemu_vfree(s->l1_table);
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}

static int qed_create(const char *filename, uint32_t cluster_size,
                      uint64_t image_size, uint32_t table_size,
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                      const char *backing_file, const char *backing_fmt,
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                      QemuOpts *opts, Error **errp)
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{
    QEDHeader header = {
        .magic = QED_MAGIC,
        .cluster_size = cluster_size,
        .table_size = table_size,
        .header_size = 1,
        .features = 0,
        .compat_features = 0,
        .l1_table_offset = cluster_size,
        .image_size = image_size,
    };
    QEDHeader le_header;
    uint8_t *l1_table = NULL;
    size_t l1_size = header.cluster_size * header.table_size;
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    Error *local_err = NULL;
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    int ret = 0;
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    BlockDriverState *bs;
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    ret = bdrv_create_file(filename, opts, &local_err);
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    if (ret < 0) {
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        error_propagate(errp, local_err);
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        return ret;
    }

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    bs = NULL;
    ret = bdrv_open(&bs, filename, NULL, NULL,
                    BDRV_O_RDWR | BDRV_O_CACHE_WB | BDRV_O_PROTOCOL, NULL,
                    &local_err);
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    if (ret < 0) {
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        error_propagate(errp, local_err);
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        return ret;
    }

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    /* File must start empty and grow, check truncate is supported */
    ret = bdrv_truncate(bs, 0);
    if (ret < 0) {
        goto out;
    }

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    if (backing_file) {
        header.features |= QED_F_BACKING_FILE;
        header.backing_filename_offset = sizeof(le_header);
        header.backing_filename_size = strlen(backing_file);

        if (qed_fmt_is_raw(backing_fmt)) {
            header.features |= QED_F_BACKING_FORMAT_NO_PROBE;
        }
    }

    qed_header_cpu_to_le(&header, &le_header);
    ret = bdrv_pwrite(bs, 0, &le_header, sizeof(le_header));
    if (ret < 0) {
        goto out;
    }
    ret = bdrv_pwrite(bs, sizeof(le_header), backing_file,
                      header.backing_filename_size);
    if (ret < 0) {
        goto out;
    }

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    l1_table = g_malloc0(l1_size);
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    ret = bdrv_pwrite(bs, header.l1_table_offset, l1_table, l1_size);
    if (ret < 0) {
        goto out;
    }

    ret = 0; /* success */
out:
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    g_free(l1_table);
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    bdrv_unref(bs);
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    return ret;
}

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static int bdrv_qed_create(const char *filename, QemuOpts *opts, Error **errp)
629 630 631 632
{
    uint64_t image_size = 0;
    uint32_t cluster_size = QED_DEFAULT_CLUSTER_SIZE;
    uint32_t table_size = QED_DEFAULT_TABLE_SIZE;
633 634 635 636
    char *backing_file = NULL;
    char *backing_fmt = NULL;
    int ret;

637 638
    image_size = ROUND_UP(qemu_opt_get_size_del(opts, BLOCK_OPT_SIZE, 0),
                          BDRV_SECTOR_SIZE);
639 640 641 642 643 644 645
    backing_file = qemu_opt_get_del(opts, BLOCK_OPT_BACKING_FILE);
    backing_fmt = qemu_opt_get_del(opts, BLOCK_OPT_BACKING_FMT);
    cluster_size = qemu_opt_get_size_del(opts,
                                         BLOCK_OPT_CLUSTER_SIZE,
                                         QED_DEFAULT_CLUSTER_SIZE);
    table_size = qemu_opt_get_size_del(opts, BLOCK_OPT_TABLE_SIZE,
                                       QED_DEFAULT_TABLE_SIZE);
646 647

    if (!qed_is_cluster_size_valid(cluster_size)) {
648 649 650
        error_setg(errp, "QED cluster size must be within range [%u, %u] "
                         "and power of 2",
                   QED_MIN_CLUSTER_SIZE, QED_MAX_CLUSTER_SIZE);
651 652
        ret = -EINVAL;
        goto finish;
653 654
    }
    if (!qed_is_table_size_valid(table_size)) {
655 656 657
        error_setg(errp, "QED table size must be within range [%u, %u] "
                         "and power of 2",
                   QED_MIN_TABLE_SIZE, QED_MAX_TABLE_SIZE);
658 659
        ret = -EINVAL;
        goto finish;
660 661
    }
    if (!qed_is_image_size_valid(image_size, cluster_size, table_size)) {
662 663 664
        error_setg(errp, "QED image size must be a non-zero multiple of "
                         "cluster size and less than %" PRIu64 " bytes",
                   qed_max_image_size(cluster_size, table_size));
665 666
        ret = -EINVAL;
        goto finish;
667 668
    }

669
    ret = qed_create(filename, cluster_size, image_size, table_size,
670
                     backing_file, backing_fmt, opts, errp);
671 672 673 674 675

finish:
    g_free(backing_file);
    g_free(backing_fmt);
    return ret;
676 677
}

678
typedef struct {
679
    BlockDriverState *bs;
680
    Coroutine *co;
681 682
    uint64_t pos;
    int64_t status;
683 684 685 686 687 688
    int *pnum;
} QEDIsAllocatedCB;

static void qed_is_allocated_cb(void *opaque, int ret, uint64_t offset, size_t len)
{
    QEDIsAllocatedCB *cb = opaque;
689
    BDRVQEDState *s = cb->bs->opaque;
690
    *cb->pnum = len / BDRV_SECTOR_SIZE;
691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708
    switch (ret) {
    case QED_CLUSTER_FOUND:
        offset |= qed_offset_into_cluster(s, cb->pos);
        cb->status = BDRV_BLOCK_DATA | BDRV_BLOCK_OFFSET_VALID | offset;
        break;
    case QED_CLUSTER_ZERO:
        cb->status = BDRV_BLOCK_ZERO;
        break;
    case QED_CLUSTER_L2:
    case QED_CLUSTER_L1:
        cb->status = 0;
        break;
    default:
        assert(ret < 0);
        cb->status = ret;
        break;
    }

709 710 711
    if (cb->co) {
        qemu_coroutine_enter(cb->co, NULL);
    }
712 713
}

714
static int64_t coroutine_fn bdrv_qed_co_get_block_status(BlockDriverState *bs,
715 716
                                                 int64_t sector_num,
                                                 int nb_sectors, int *pnum)
717
{
718 719 720
    BDRVQEDState *s = bs->opaque;
    size_t len = (size_t)nb_sectors * BDRV_SECTOR_SIZE;
    QEDIsAllocatedCB cb = {
721 722 723
        .bs = bs,
        .pos = (uint64_t)sector_num * BDRV_SECTOR_SIZE,
        .status = BDRV_BLOCK_OFFSET_MASK,
724 725 726 727
        .pnum = pnum,
    };
    QEDRequest request = { .l2_table = NULL };

728
    qed_find_cluster(s, &request, cb.pos, len, qed_is_allocated_cb, &cb);
729

730
    /* Now sleep if the callback wasn't invoked immediately */
731
    while (cb.status == BDRV_BLOCK_OFFSET_MASK) {
732 733
        cb.co = qemu_coroutine_self();
        qemu_coroutine_yield();
734 735 736 737
    }

    qed_unref_l2_cache_entry(request.l2_table);

738
    return cb.status;
739 740
}

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static BDRVQEDState *acb_to_s(QEDAIOCB *acb)
{
    return acb->common.bs->opaque;
}

/**
 * Read from the backing file or zero-fill if no backing file
 *
749 750 751 752 753 754
 * @s:              QED state
 * @pos:            Byte position in device
 * @qiov:           Destination I/O vector
 * @backing_qiov:   Possibly shortened copy of qiov, to be allocated here
 * @cb:             Completion function
 * @opaque:         User data for completion function
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 *
 * This function reads qiov->size bytes starting at pos from the backing file.
 * If there is no backing file then zeroes are read.
 */
static void qed_read_backing_file(BDRVQEDState *s, uint64_t pos,
                                  QEMUIOVector *qiov,
761
                                  QEMUIOVector **backing_qiov,
762
                                  BlockCompletionFunc *cb, void *opaque)
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{
    uint64_t backing_length = 0;
    size_t size;

    /* If there is a backing file, get its length.  Treat the absence of a
     * backing file like a zero length backing file.
     */
    if (s->bs->backing_hd) {
        int64_t l = bdrv_getlength(s->bs->backing_hd);
        if (l < 0) {
            cb(opaque, l);
            return;
        }
        backing_length = l;
    }

    /* Zero all sectors if reading beyond the end of the backing file */
    if (pos >= backing_length ||
        pos + qiov->size > backing_length) {
782
        qemu_iovec_memset(qiov, 0, 0, qiov->size);
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    }

    /* Complete now if there are no backing file sectors to read */
    if (pos >= backing_length) {
        cb(opaque, 0);
        return;
    }

    /* If the read straddles the end of the backing file, shorten it */
    size = MIN((uint64_t)backing_length - pos, qiov->size);

794 795 796 797 798
    assert(*backing_qiov == NULL);
    *backing_qiov = g_new(QEMUIOVector, 1);
    qemu_iovec_init(*backing_qiov, qiov->niov);
    qemu_iovec_concat(*backing_qiov, qiov, 0, size);

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Paolo Bonzini 已提交
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    BLKDBG_EVENT(s->bs->file, BLKDBG_READ_BACKING_AIO);
800
    bdrv_aio_readv(s->bs->backing_hd, pos / BDRV_SECTOR_SIZE,
801
                   *backing_qiov, size / BDRV_SECTOR_SIZE, cb, opaque);
S
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}

typedef struct {
    GenericCB gencb;
    BDRVQEDState *s;
    QEMUIOVector qiov;
808
    QEMUIOVector *backing_qiov;
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    struct iovec iov;
    uint64_t offset;
} CopyFromBackingFileCB;

static void qed_copy_from_backing_file_cb(void *opaque, int ret)
{
    CopyFromBackingFileCB *copy_cb = opaque;
    qemu_vfree(copy_cb->iov.iov_base);
    gencb_complete(&copy_cb->gencb, ret);
}

static void qed_copy_from_backing_file_write(void *opaque, int ret)
{
    CopyFromBackingFileCB *copy_cb = opaque;
    BDRVQEDState *s = copy_cb->s;

825 826 827 828 829 830
    if (copy_cb->backing_qiov) {
        qemu_iovec_destroy(copy_cb->backing_qiov);
        g_free(copy_cb->backing_qiov);
        copy_cb->backing_qiov = NULL;
    }

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831 832 833 834 835 836
    if (ret) {
        qed_copy_from_backing_file_cb(copy_cb, ret);
        return;
    }

    BLKDBG_EVENT(s->bs->file, BLKDBG_COW_WRITE);
837 838 839
    bdrv_aio_writev(s->bs->file, copy_cb->offset / BDRV_SECTOR_SIZE,
                    &copy_cb->qiov, copy_cb->qiov.size / BDRV_SECTOR_SIZE,
                    qed_copy_from_backing_file_cb, copy_cb);
S
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}

/**
 * Copy data from backing file into the image
 *
 * @s:          QED state
 * @pos:        Byte position in device
 * @len:        Number of bytes
 * @offset:     Byte offset in image file
 * @cb:         Completion function
 * @opaque:     User data for completion function
 */
static void qed_copy_from_backing_file(BDRVQEDState *s, uint64_t pos,
                                       uint64_t len, uint64_t offset,
854
                                       BlockCompletionFunc *cb,
S
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855 856 857 858 859 860 861 862 863 864 865 866 867
                                       void *opaque)
{
    CopyFromBackingFileCB *copy_cb;

    /* Skip copy entirely if there is no work to do */
    if (len == 0) {
        cb(opaque, 0);
        return;
    }

    copy_cb = gencb_alloc(sizeof(*copy_cb), cb, opaque);
    copy_cb->s = s;
    copy_cb->offset = offset;
868
    copy_cb->backing_qiov = NULL;
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869 870 871 872
    copy_cb->iov.iov_base = qemu_blockalign(s->bs, len);
    copy_cb->iov.iov_len = len;
    qemu_iovec_init_external(&copy_cb->qiov, &copy_cb->iov, 1);

873
    qed_read_backing_file(s, pos, &copy_cb->qiov, &copy_cb->backing_qiov,
S
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874 875 876 877 878 879 880 881 882 883
                          qed_copy_from_backing_file_write, copy_cb);
}

/**
 * Link one or more contiguous clusters into a table
 *
 * @s:              QED state
 * @table:          L2 table
 * @index:          First cluster index
 * @n:              Number of contiguous clusters
884 885 886 887
 * @cluster:        First cluster offset
 *
 * The cluster offset may be an allocated byte offset in the image file, the
 * zero cluster marker, or the unallocated cluster marker.
S
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888 889 890 891 892 893 894
 */
static void qed_update_l2_table(BDRVQEDState *s, QEDTable *table, int index,
                                unsigned int n, uint64_t cluster)
{
    int i;
    for (i = index; i < index + n; i++) {
        table->offsets[i] = cluster;
895 896 897 898
        if (!qed_offset_is_unalloc_cluster(cluster) &&
            !qed_offset_is_zero_cluster(cluster)) {
            cluster += s->header.cluster_size;
        }
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    }
}

static void qed_aio_complete_bh(void *opaque)
{
    QEDAIOCB *acb = opaque;
905
    BlockCompletionFunc *cb = acb->common.cb;
S
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    void *user_opaque = acb->common.opaque;
    int ret = acb->bh_ret;

    qemu_bh_delete(acb->bh);
910
    qemu_aio_unref(acb);
S
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911 912 913 914 915 916 917 918 919 920 921 922 923 924 925

    /* Invoke callback */
    cb(user_opaque, ret);
}

static void qed_aio_complete(QEDAIOCB *acb, int ret)
{
    BDRVQEDState *s = acb_to_s(acb);

    trace_qed_aio_complete(s, acb, ret);

    /* Free resources */
    qemu_iovec_destroy(&acb->cur_qiov);
    qed_unref_l2_cache_entry(acb->request.l2_table);

926 927 928 929 930 931
    /* Free the buffer we may have allocated for zero writes */
    if (acb->flags & QED_AIOCB_ZERO) {
        qemu_vfree(acb->qiov->iov[0].iov_base);
        acb->qiov->iov[0].iov_base = NULL;
    }

S
Stefan Hajnoczi 已提交
932 933
    /* Arrange for a bh to invoke the completion function */
    acb->bh_ret = ret;
934 935
    acb->bh = aio_bh_new(bdrv_get_aio_context(acb->common.bs),
                         qed_aio_complete_bh, acb);
S
Stefan Hajnoczi 已提交
936 937 938 939 940 941 942 943 944 945 946 947 948
    qemu_bh_schedule(acb->bh);

    /* Start next allocating write request waiting behind this one.  Note that
     * requests enqueue themselves when they first hit an unallocated cluster
     * but they wait until the entire request is finished before waking up the
     * next request in the queue.  This ensures that we don't cycle through
     * requests multiple times but rather finish one at a time completely.
     */
    if (acb == QSIMPLEQ_FIRST(&s->allocating_write_reqs)) {
        QSIMPLEQ_REMOVE_HEAD(&s->allocating_write_reqs, next);
        acb = QSIMPLEQ_FIRST(&s->allocating_write_reqs);
        if (acb) {
            qed_aio_next_io(acb, 0);
949 950
        } else if (s->header.features & QED_F_NEED_CHECK) {
            qed_start_need_check_timer(s);
S
Stefan Hajnoczi 已提交
951 952 953 954 955 956 957 958 959 960 961 962
        }
    }
}

/**
 * Commit the current L2 table to the cache
 */
static void qed_commit_l2_update(void *opaque, int ret)
{
    QEDAIOCB *acb = opaque;
    BDRVQEDState *s = acb_to_s(acb);
    CachedL2Table *l2_table = acb->request.l2_table;
963
    uint64_t l2_offset = l2_table->offset;
S
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964 965 966 967 968 969

    qed_commit_l2_cache_entry(&s->l2_cache, l2_table);

    /* This is guaranteed to succeed because we just committed the entry to the
     * cache.
     */
970
    acb->request.l2_table = qed_find_l2_cache_entry(&s->l2_cache, l2_offset);
S
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971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998
    assert(acb->request.l2_table != NULL);

    qed_aio_next_io(opaque, ret);
}

/**
 * Update L1 table with new L2 table offset and write it out
 */
static void qed_aio_write_l1_update(void *opaque, int ret)
{
    QEDAIOCB *acb = opaque;
    BDRVQEDState *s = acb_to_s(acb);
    int index;

    if (ret) {
        qed_aio_complete(acb, ret);
        return;
    }

    index = qed_l1_index(s, acb->cur_pos);
    s->l1_table->offsets[index] = acb->request.l2_table->offset;

    qed_write_l1_table(s, index, 1, qed_commit_l2_update, acb);
}

/**
 * Update L2 table with new cluster offsets and write them out
 */
999
static void qed_aio_write_l2_update(QEDAIOCB *acb, int ret, uint64_t offset)
S
Stefan Hajnoczi 已提交
1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015
{
    BDRVQEDState *s = acb_to_s(acb);
    bool need_alloc = acb->find_cluster_ret == QED_CLUSTER_L1;
    int index;

    if (ret) {
        goto err;
    }

    if (need_alloc) {
        qed_unref_l2_cache_entry(acb->request.l2_table);
        acb->request.l2_table = qed_new_l2_table(s);
    }

    index = qed_l2_index(s, acb->cur_pos);
    qed_update_l2_table(s, acb->request.l2_table->table, index, acb->cur_nclusters,
1016
                         offset);
S
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1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032

    if (need_alloc) {
        /* Write out the whole new L2 table */
        qed_write_l2_table(s, &acb->request, 0, s->table_nelems, true,
                            qed_aio_write_l1_update, acb);
    } else {
        /* Write out only the updated part of the L2 table */
        qed_write_l2_table(s, &acb->request, index, acb->cur_nclusters, false,
                            qed_aio_next_io, acb);
    }
    return;

err:
    qed_aio_complete(acb, ret);
}

1033 1034 1035 1036 1037 1038
static void qed_aio_write_l2_update_cb(void *opaque, int ret)
{
    QEDAIOCB *acb = opaque;
    qed_aio_write_l2_update(acb, ret, acb->cur_cluster);
}

S
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1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052
/**
 * Flush new data clusters before updating the L2 table
 *
 * This flush is necessary when a backing file is in use.  A crash during an
 * allocating write could result in empty clusters in the image.  If the write
 * only touched a subregion of the cluster, then backing image sectors have
 * been lost in the untouched region.  The solution is to flush after writing a
 * new data cluster and before updating the L2 table.
 */
static void qed_aio_write_flush_before_l2_update(void *opaque, int ret)
{
    QEDAIOCB *acb = opaque;
    BDRVQEDState *s = acb_to_s(acb);

1053
    if (!bdrv_aio_flush(s->bs->file, qed_aio_write_l2_update_cb, opaque)) {
S
Stefan Hajnoczi 已提交
1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066
        qed_aio_complete(acb, -EIO);
    }
}

/**
 * Write data to the image file
 */
static void qed_aio_write_main(void *opaque, int ret)
{
    QEDAIOCB *acb = opaque;
    BDRVQEDState *s = acb_to_s(acb);
    uint64_t offset = acb->cur_cluster +
                      qed_offset_into_cluster(s, acb->cur_pos);
1067
    BlockCompletionFunc *next_fn;
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    trace_qed_aio_write_main(s, acb, ret, offset, acb->cur_qiov.size);

    if (ret) {
        qed_aio_complete(acb, ret);
        return;
    }

    if (acb->find_cluster_ret == QED_CLUSTER_FOUND) {
        next_fn = qed_aio_next_io;
    } else {
        if (s->bs->backing_hd) {
            next_fn = qed_aio_write_flush_before_l2_update;
        } else {
1082
            next_fn = qed_aio_write_l2_update_cb;
S
Stefan Hajnoczi 已提交
1083 1084 1085 1086
        }
    }

    BLKDBG_EVENT(s->bs->file, BLKDBG_WRITE_AIO);
1087 1088 1089
    bdrv_aio_writev(s->bs->file, offset / BDRV_SECTOR_SIZE,
                    &acb->cur_qiov, acb->cur_qiov.size / BDRV_SECTOR_SIZE,
                    next_fn, acb);
S
Stefan Hajnoczi 已提交
1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130
}

/**
 * Populate back untouched region of new data cluster
 */
static void qed_aio_write_postfill(void *opaque, int ret)
{
    QEDAIOCB *acb = opaque;
    BDRVQEDState *s = acb_to_s(acb);
    uint64_t start = acb->cur_pos + acb->cur_qiov.size;
    uint64_t len =
        qed_start_of_cluster(s, start + s->header.cluster_size - 1) - start;
    uint64_t offset = acb->cur_cluster +
                      qed_offset_into_cluster(s, acb->cur_pos) +
                      acb->cur_qiov.size;

    if (ret) {
        qed_aio_complete(acb, ret);
        return;
    }

    trace_qed_aio_write_postfill(s, acb, start, len, offset);
    qed_copy_from_backing_file(s, start, len, offset,
                                qed_aio_write_main, acb);
}

/**
 * Populate front untouched region of new data cluster
 */
static void qed_aio_write_prefill(void *opaque, int ret)
{
    QEDAIOCB *acb = opaque;
    BDRVQEDState *s = acb_to_s(acb);
    uint64_t start = qed_start_of_cluster(s, acb->cur_pos);
    uint64_t len = qed_offset_into_cluster(s, acb->cur_pos);

    trace_qed_aio_write_prefill(s, acb, start, len, acb->cur_cluster);
    qed_copy_from_backing_file(s, start, len, acb->cur_cluster,
                                qed_aio_write_postfill, acb);
}

1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143
/**
 * Check if the QED_F_NEED_CHECK bit should be set during allocating write
 */
static bool qed_should_set_need_check(BDRVQEDState *s)
{
    /* The flush before L2 update path ensures consistency */
    if (s->bs->backing_hd) {
        return false;
    }

    return !(s->header.features & QED_F_NEED_CHECK);
}

1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155
static void qed_aio_write_zero_cluster(void *opaque, int ret)
{
    QEDAIOCB *acb = opaque;

    if (ret) {
        qed_aio_complete(acb, ret);
        return;
    }

    qed_aio_write_l2_update(acb, 0, 1);
}

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/**
 * Write new data cluster
 *
 * @acb:        Write request
 * @len:        Length in bytes
 *
 * This path is taken when writing to previously unallocated clusters.
 */
static void qed_aio_write_alloc(QEDAIOCB *acb, size_t len)
{
    BDRVQEDState *s = acb_to_s(acb);
1167
    BlockCompletionFunc *cb;
S
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1169 1170 1171 1172 1173
    /* Cancel timer when the first allocating request comes in */
    if (QSIMPLEQ_EMPTY(&s->allocating_write_reqs)) {
        qed_cancel_need_check_timer(s);
    }

S
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1174 1175 1176 1177
    /* Freeze this request if another allocating write is in progress */
    if (acb != QSIMPLEQ_FIRST(&s->allocating_write_reqs)) {
        QSIMPLEQ_INSERT_TAIL(&s->allocating_write_reqs, acb, next);
    }
1178 1179
    if (acb != QSIMPLEQ_FIRST(&s->allocating_write_reqs) ||
        s->allocating_write_reqs_plugged) {
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1180 1181 1182 1183 1184
        return; /* wait for existing request to finish */
    }

    acb->cur_nclusters = qed_bytes_to_clusters(s,
            qed_offset_into_cluster(s, acb->cur_pos) + len);
1185
    qemu_iovec_concat(&acb->cur_qiov, acb->qiov, acb->qiov_offset, len);
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1186

1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199
    if (acb->flags & QED_AIOCB_ZERO) {
        /* Skip ahead if the clusters are already zero */
        if (acb->find_cluster_ret == QED_CLUSTER_ZERO) {
            qed_aio_next_io(acb, 0);
            return;
        }

        cb = qed_aio_write_zero_cluster;
    } else {
        cb = qed_aio_write_prefill;
        acb->cur_cluster = qed_alloc_clusters(s, acb->cur_nclusters);
    }

1200 1201
    if (qed_should_set_need_check(s)) {
        s->header.features |= QED_F_NEED_CHECK;
1202
        qed_write_header(s, cb, acb);
1203
    } else {
1204
        cb(acb, 0);
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1205
    }
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1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218
}

/**
 * Write data cluster in place
 *
 * @acb:        Write request
 * @offset:     Cluster offset in bytes
 * @len:        Length in bytes
 *
 * This path is taken when writing to already allocated clusters.
 */
static void qed_aio_write_inplace(QEDAIOCB *acb, uint64_t offset, size_t len)
{
1219 1220 1221 1222 1223
    /* Allocate buffer for zero writes */
    if (acb->flags & QED_AIOCB_ZERO) {
        struct iovec *iov = acb->qiov->iov;

        if (!iov->iov_base) {
1224 1225 1226 1227 1228
            iov->iov_base = qemu_try_blockalign(acb->common.bs, iov->iov_len);
            if (iov->iov_base == NULL) {
                qed_aio_complete(acb, -ENOMEM);
                return;
            }
1229 1230 1231 1232
            memset(iov->iov_base, 0, iov->iov_len);
        }
    }

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1233 1234
    /* Calculate the I/O vector */
    acb->cur_cluster = offset;
1235
    qemu_iovec_concat(&acb->cur_qiov, acb->qiov, acb->qiov_offset, len);
S
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1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267

    /* Do the actual write */
    qed_aio_write_main(acb, 0);
}

/**
 * Write data cluster
 *
 * @opaque:     Write request
 * @ret:        QED_CLUSTER_FOUND, QED_CLUSTER_L2, QED_CLUSTER_L1,
 *              or -errno
 * @offset:     Cluster offset in bytes
 * @len:        Length in bytes
 *
 * Callback from qed_find_cluster().
 */
static void qed_aio_write_data(void *opaque, int ret,
                               uint64_t offset, size_t len)
{
    QEDAIOCB *acb = opaque;

    trace_qed_aio_write_data(acb_to_s(acb), acb, ret, offset, len);

    acb->find_cluster_ret = ret;

    switch (ret) {
    case QED_CLUSTER_FOUND:
        qed_aio_write_inplace(acb, offset, len);
        break;

    case QED_CLUSTER_L2:
    case QED_CLUSTER_L1:
1268
    case QED_CLUSTER_ZERO:
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1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304
        qed_aio_write_alloc(acb, len);
        break;

    default:
        qed_aio_complete(acb, ret);
        break;
    }
}

/**
 * Read data cluster
 *
 * @opaque:     Read request
 * @ret:        QED_CLUSTER_FOUND, QED_CLUSTER_L2, QED_CLUSTER_L1,
 *              or -errno
 * @offset:     Cluster offset in bytes
 * @len:        Length in bytes
 *
 * Callback from qed_find_cluster().
 */
static void qed_aio_read_data(void *opaque, int ret,
                              uint64_t offset, size_t len)
{
    QEDAIOCB *acb = opaque;
    BDRVQEDState *s = acb_to_s(acb);
    BlockDriverState *bs = acb->common.bs;

    /* Adjust offset into cluster */
    offset += qed_offset_into_cluster(s, acb->cur_pos);

    trace_qed_aio_read_data(s, acb, ret, offset, len);

    if (ret < 0) {
        goto err;
    }

1305
    qemu_iovec_concat(&acb->cur_qiov, acb->qiov, acb->qiov_offset, len);
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1307 1308
    /* Handle zero cluster and backing file reads */
    if (ret == QED_CLUSTER_ZERO) {
1309
        qemu_iovec_memset(&acb->cur_qiov, 0, 0, acb->cur_qiov.size);
1310 1311 1312
        qed_aio_next_io(acb, 0);
        return;
    } else if (ret != QED_CLUSTER_FOUND) {
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        qed_read_backing_file(s, acb->cur_pos, &acb->cur_qiov,
1314
                              &acb->backing_qiov, qed_aio_next_io, acb);
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        return;
    }

    BLKDBG_EVENT(bs->file, BLKDBG_READ_AIO);
1319 1320 1321
    bdrv_aio_readv(bs->file, offset / BDRV_SECTOR_SIZE,
                   &acb->cur_qiov, acb->cur_qiov.size / BDRV_SECTOR_SIZE,
                   qed_aio_next_io, acb);
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1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334
    return;

err:
    qed_aio_complete(acb, ret);
}

/**
 * Begin next I/O or complete the request
 */
static void qed_aio_next_io(void *opaque, int ret)
{
    QEDAIOCB *acb = opaque;
    BDRVQEDState *s = acb_to_s(acb);
1335 1336
    QEDFindClusterFunc *io_fn = (acb->flags & QED_AIOCB_WRITE) ?
                                qed_aio_write_data : qed_aio_read_data;
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    trace_qed_aio_next_io(s, acb, ret, acb->cur_pos + acb->cur_qiov.size);

1340 1341 1342 1343 1344 1345
    if (acb->backing_qiov) {
        qemu_iovec_destroy(acb->backing_qiov);
        g_free(acb->backing_qiov);
        acb->backing_qiov = NULL;
    }

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1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367
    /* Handle I/O error */
    if (ret) {
        qed_aio_complete(acb, ret);
        return;
    }

    acb->qiov_offset += acb->cur_qiov.size;
    acb->cur_pos += acb->cur_qiov.size;
    qemu_iovec_reset(&acb->cur_qiov);

    /* Complete request */
    if (acb->cur_pos >= acb->end_pos) {
        qed_aio_complete(acb, 0);
        return;
    }

    /* Find next cluster and start I/O */
    qed_find_cluster(s, &acb->request,
                      acb->cur_pos, acb->end_pos - acb->cur_pos,
                      io_fn, acb);
}

1368 1369 1370
static BlockAIOCB *qed_aio_setup(BlockDriverState *bs,
                                 int64_t sector_num,
                                 QEMUIOVector *qiov, int nb_sectors,
1371
                                 BlockCompletionFunc *cb,
1372
                                 void *opaque, int flags)
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{
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    QEDAIOCB *acb = qemu_aio_get(&qed_aiocb_info, bs, cb, opaque);
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    trace_qed_aio_setup(bs->opaque, acb, sector_num, nb_sectors,
1377
                        opaque, flags);
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1378

1379
    acb->flags = flags;
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1380 1381 1382 1383
    acb->qiov = qiov;
    acb->qiov_offset = 0;
    acb->cur_pos = (uint64_t)sector_num * BDRV_SECTOR_SIZE;
    acb->end_pos = acb->cur_pos + nb_sectors * BDRV_SECTOR_SIZE;
1384
    acb->backing_qiov = NULL;
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1385 1386 1387 1388 1389 1390 1391 1392
    acb->request.l2_table = NULL;
    qemu_iovec_init(&acb->cur_qiov, qiov->niov);

    /* Start request */
    qed_aio_next_io(acb, 0);
    return &acb->common;
}

1393 1394 1395
static BlockAIOCB *bdrv_qed_aio_readv(BlockDriverState *bs,
                                      int64_t sector_num,
                                      QEMUIOVector *qiov, int nb_sectors,
1396
                                      BlockCompletionFunc *cb,
1397
                                      void *opaque)
1398
{
1399
    return qed_aio_setup(bs, sector_num, qiov, nb_sectors, cb, opaque, 0);
1400 1401
}

1402 1403 1404
static BlockAIOCB *bdrv_qed_aio_writev(BlockDriverState *bs,
                                       int64_t sector_num,
                                       QEMUIOVector *qiov, int nb_sectors,
1405
                                       BlockCompletionFunc *cb,
1406
                                       void *opaque)
1407
{
1408 1409
    return qed_aio_setup(bs, sector_num, qiov, nb_sectors, cb,
                         opaque, QED_AIOCB_WRITE);
1410 1411
}

1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430
typedef struct {
    Coroutine *co;
    int ret;
    bool done;
} QEDWriteZeroesCB;

static void coroutine_fn qed_co_write_zeroes_cb(void *opaque, int ret)
{
    QEDWriteZeroesCB *cb = opaque;

    cb->done = true;
    cb->ret = ret;
    if (cb->co) {
        qemu_coroutine_enter(cb->co, NULL);
    }
}

static int coroutine_fn bdrv_qed_co_write_zeroes(BlockDriverState *bs,
                                                 int64_t sector_num,
1431 1432
                                                 int nb_sectors,
                                                 BdrvRequestFlags flags)
1433
{
1434
    BlockAIOCB *blockacb;
1435
    BDRVQEDState *s = bs->opaque;
1436 1437 1438 1439
    QEDWriteZeroesCB cb = { .done = false };
    QEMUIOVector qiov;
    struct iovec iov;

1440 1441 1442 1443 1444 1445 1446 1447 1448 1449
    /* Refuse if there are untouched backing file sectors */
    if (bs->backing_hd) {
        if (qed_offset_into_cluster(s, sector_num * BDRV_SECTOR_SIZE) != 0) {
            return -ENOTSUP;
        }
        if (qed_offset_into_cluster(s, nb_sectors * BDRV_SECTOR_SIZE) != 0) {
            return -ENOTSUP;
        }
    }

1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470
    /* Zero writes start without an I/O buffer.  If a buffer becomes necessary
     * then it will be allocated during request processing.
     */
    iov.iov_base = NULL,
    iov.iov_len  = nb_sectors * BDRV_SECTOR_SIZE,

    qemu_iovec_init_external(&qiov, &iov, 1);
    blockacb = qed_aio_setup(bs, sector_num, &qiov, nb_sectors,
                             qed_co_write_zeroes_cb, &cb,
                             QED_AIOCB_WRITE | QED_AIOCB_ZERO);
    if (!blockacb) {
        return -EIO;
    }
    if (!cb.done) {
        cb.co = qemu_coroutine_self();
        qemu_coroutine_yield();
    }
    assert(cb.done);
    return cb.ret;
}

1471 1472
static int bdrv_qed_truncate(BlockDriverState *bs, int64_t offset)
{
1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493
    BDRVQEDState *s = bs->opaque;
    uint64_t old_image_size;
    int ret;

    if (!qed_is_image_size_valid(offset, s->header.cluster_size,
                                 s->header.table_size)) {
        return -EINVAL;
    }

    /* Shrinking is currently not supported */
    if ((uint64_t)offset < s->header.image_size) {
        return -ENOTSUP;
    }

    old_image_size = s->header.image_size;
    s->header.image_size = offset;
    ret = qed_write_header_sync(s);
    if (ret < 0) {
        s->header.image_size = old_image_size;
    }
    return ret;
1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507
}

static int64_t bdrv_qed_getlength(BlockDriverState *bs)
{
    BDRVQEDState *s = bs->opaque;
    return s->header.image_size;
}

static int bdrv_qed_get_info(BlockDriverState *bs, BlockDriverInfo *bdi)
{
    BDRVQEDState *s = bs->opaque;

    memset(bdi, 0, sizeof(*bdi));
    bdi->cluster_size = s->header.cluster_size;
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Dong Xu Wang 已提交
1508
    bdi->is_dirty = s->header.features & QED_F_NEED_CHECK;
1509 1510
    bdi->unallocated_blocks_are_zero = true;
    bdi->can_write_zeroes_with_unmap = true;
1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565
    return 0;
}

static int bdrv_qed_change_backing_file(BlockDriverState *bs,
                                        const char *backing_file,
                                        const char *backing_fmt)
{
    BDRVQEDState *s = bs->opaque;
    QEDHeader new_header, le_header;
    void *buffer;
    size_t buffer_len, backing_file_len;
    int ret;

    /* Refuse to set backing filename if unknown compat feature bits are
     * active.  If the image uses an unknown compat feature then we may not
     * know the layout of data following the header structure and cannot safely
     * add a new string.
     */
    if (backing_file && (s->header.compat_features &
                         ~QED_COMPAT_FEATURE_MASK)) {
        return -ENOTSUP;
    }

    memcpy(&new_header, &s->header, sizeof(new_header));

    new_header.features &= ~(QED_F_BACKING_FILE |
                             QED_F_BACKING_FORMAT_NO_PROBE);

    /* Adjust feature flags */
    if (backing_file) {
        new_header.features |= QED_F_BACKING_FILE;

        if (qed_fmt_is_raw(backing_fmt)) {
            new_header.features |= QED_F_BACKING_FORMAT_NO_PROBE;
        }
    }

    /* Calculate new header size */
    backing_file_len = 0;

    if (backing_file) {
        backing_file_len = strlen(backing_file);
    }

    buffer_len = sizeof(new_header);
    new_header.backing_filename_offset = buffer_len;
    new_header.backing_filename_size = backing_file_len;
    buffer_len += backing_file_len;

    /* Make sure we can rewrite header without failing */
    if (buffer_len > new_header.header_size * new_header.cluster_size) {
        return -ENOSPC;
    }

    /* Prepare new header */
1566
    buffer = g_malloc(buffer_len);
1567 1568 1569 1570 1571

    qed_header_cpu_to_le(&new_header, &le_header);
    memcpy(buffer, &le_header, sizeof(le_header));
    buffer_len = sizeof(le_header);

P
Pavel Borzenkov 已提交
1572 1573 1574 1575
    if (backing_file) {
        memcpy(buffer + buffer_len, backing_file, backing_file_len);
        buffer_len += backing_file_len;
    }
1576 1577 1578

    /* Write new header */
    ret = bdrv_pwrite_sync(bs->file, 0, buffer, buffer_len);
1579
    g_free(buffer);
1580 1581 1582 1583 1584 1585
    if (ret == 0) {
        memcpy(&s->header, &new_header, sizeof(new_header));
    }
    return ret;
}

1586
static void bdrv_qed_invalidate_cache(BlockDriverState *bs, Error **errp)
1587 1588
{
    BDRVQEDState *s = bs->opaque;
1589 1590
    Error *local_err = NULL;
    int ret;
1591 1592

    bdrv_qed_close(bs);
1593

1594 1595 1596 1597 1598
    bdrv_invalidate_cache(bs->file, &local_err);
    if (local_err) {
        error_propagate(errp, local_err);
        return;
    }
1599

1600
    memset(s, 0, sizeof(BDRVQEDState));
1601 1602 1603 1604 1605 1606 1607 1608 1609 1610
    ret = bdrv_qed_open(bs, NULL, bs->open_flags, &local_err);
    if (local_err) {
        error_setg(errp, "Could not reopen qed layer: %s",
                   error_get_pretty(local_err));
        error_free(local_err);
        return;
    } else if (ret < 0) {
        error_setg_errno(errp, -ret, "Could not reopen qed layer");
        return;
    }
1611 1612
}

1613 1614
static int bdrv_qed_check(BlockDriverState *bs, BdrvCheckResult *result,
                          BdrvCheckMode fix)
1615
{
S
Stefan Hajnoczi 已提交
1616 1617
    BDRVQEDState *s = bs->opaque;

1618
    return qed_check(s, result, !!fix);
1619 1620
}

1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652
static QemuOptsList qed_create_opts = {
    .name = "qed-create-opts",
    .head = QTAILQ_HEAD_INITIALIZER(qed_create_opts.head),
    .desc = {
        {
            .name = BLOCK_OPT_SIZE,
            .type = QEMU_OPT_SIZE,
            .help = "Virtual disk size"
        },
        {
            .name = BLOCK_OPT_BACKING_FILE,
            .type = QEMU_OPT_STRING,
            .help = "File name of a base image"
        },
        {
            .name = BLOCK_OPT_BACKING_FMT,
            .type = QEMU_OPT_STRING,
            .help = "Image format of the base image"
        },
        {
            .name = BLOCK_OPT_CLUSTER_SIZE,
            .type = QEMU_OPT_SIZE,
            .help = "Cluster size (in bytes)",
            .def_value_str = stringify(QED_DEFAULT_CLUSTER_SIZE)
        },
        {
            .name = BLOCK_OPT_TABLE_SIZE,
            .type = QEMU_OPT_SIZE,
            .help = "L1/L2 table size (in clusters)"
        },
        { /* end of list */ }
    }
1653 1654 1655 1656 1657
};

static BlockDriver bdrv_qed = {
    .format_name              = "qed",
    .instance_size            = sizeof(BDRVQEDState),
1658
    .create_opts              = &qed_create_opts,
1659
    .supports_backing         = true,
1660 1661

    .bdrv_probe               = bdrv_qed_probe,
P
Paolo Bonzini 已提交
1662
    .bdrv_rebind              = bdrv_qed_rebind,
1663 1664
    .bdrv_open                = bdrv_qed_open,
    .bdrv_close               = bdrv_qed_close,
J
Jeff Cody 已提交
1665
    .bdrv_reopen_prepare      = bdrv_qed_reopen_prepare,
C
Chunyan Liu 已提交
1666
    .bdrv_create              = bdrv_qed_create,
1667
    .bdrv_has_zero_init       = bdrv_has_zero_init_1,
1668
    .bdrv_co_get_block_status = bdrv_qed_co_get_block_status,
1669 1670
    .bdrv_aio_readv           = bdrv_qed_aio_readv,
    .bdrv_aio_writev          = bdrv_qed_aio_writev,
1671
    .bdrv_co_write_zeroes     = bdrv_qed_co_write_zeroes,
1672 1673 1674
    .bdrv_truncate            = bdrv_qed_truncate,
    .bdrv_getlength           = bdrv_qed_getlength,
    .bdrv_get_info            = bdrv_qed_get_info,
1675
    .bdrv_refresh_limits      = bdrv_qed_refresh_limits,
1676
    .bdrv_change_backing_file = bdrv_qed_change_backing_file,
1677
    .bdrv_invalidate_cache    = bdrv_qed_invalidate_cache,
1678
    .bdrv_check               = bdrv_qed_check,
1679 1680
    .bdrv_detach_aio_context  = bdrv_qed_detach_aio_context,
    .bdrv_attach_aio_context  = bdrv_qed_attach_aio_context,
1681 1682 1683 1684 1685 1686 1687 1688
};

static void bdrv_qed_init(void)
{
    bdrv_register(&bdrv_qed);
}

block_init(bdrv_qed_init);