block.c 53.4 KB
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/*
 * QEMU System Emulator block driver
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 *
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 * Copyright (c) 2003 Fabrice Bellard
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 *
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 * Permission is hereby granted, free of charge, to any person obtaining a copy
 * of this software and associated documentation files (the "Software"), to deal
 * in the Software without restriction, including without limitation the rights
 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
 * copies of the Software, and to permit persons to whom the Software is
 * furnished to do so, subject to the following conditions:
 *
 * The above copyright notice and this permission notice shall be included in
 * all copies or substantial portions of the Software.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
 * THE SOFTWARE.
 */
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#include "config-host.h"
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#include "qemu-common.h"
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#include "monitor.h"
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#include "block_int.h"
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#include "module.h"
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#ifdef CONFIG_BSD
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#include <sys/types.h>
#include <sys/stat.h>
#include <sys/ioctl.h>
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#include <sys/queue.h>
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#ifndef __DragonFly__
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#include <sys/disk.h>
#endif
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#endif
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#ifdef _WIN32
#include <windows.h>
#endif

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#define SECTOR_BITS 9
#define SECTOR_SIZE (1 << SECTOR_BITS)
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#define SECTORS_PER_DIRTY_CHUNK 8
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static BlockDriverAIOCB *bdrv_aio_readv_em(BlockDriverState *bs,
        int64_t sector_num, QEMUIOVector *qiov, int nb_sectors,
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        BlockDriverCompletionFunc *cb, void *opaque);
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static BlockDriverAIOCB *bdrv_aio_writev_em(BlockDriverState *bs,
        int64_t sector_num, QEMUIOVector *qiov, int nb_sectors,
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        BlockDriverCompletionFunc *cb, void *opaque);
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static BlockDriverAIOCB *bdrv_aio_flush_em(BlockDriverState *bs,
        BlockDriverCompletionFunc *cb, void *opaque);
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static int bdrv_read_em(BlockDriverState *bs, int64_t sector_num,
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                        uint8_t *buf, int nb_sectors);
static int bdrv_write_em(BlockDriverState *bs, int64_t sector_num,
                         const uint8_t *buf, int nb_sectors);
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BlockDriverState *bdrv_first;

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static BlockDriver *first_drv;

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/* If non-zero, use only whitelisted block drivers */
static int use_bdrv_whitelist;

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int path_is_absolute(const char *path)
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{
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    const char *p;
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#ifdef _WIN32
    /* specific case for names like: "\\.\d:" */
    if (*path == '/' || *path == '\\')
        return 1;
#endif
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    p = strchr(path, ':');
    if (p)
        p++;
    else
        p = path;
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#ifdef _WIN32
    return (*p == '/' || *p == '\\');
#else
    return (*p == '/');
#endif
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}

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/* if filename is absolute, just copy it to dest. Otherwise, build a
   path to it by considering it is relative to base_path. URL are
   supported. */
void path_combine(char *dest, int dest_size,
                  const char *base_path,
                  const char *filename)
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{
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    const char *p, *p1;
    int len;

    if (dest_size <= 0)
        return;
    if (path_is_absolute(filename)) {
        pstrcpy(dest, dest_size, filename);
    } else {
        p = strchr(base_path, ':');
        if (p)
            p++;
        else
            p = base_path;
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        p1 = strrchr(base_path, '/');
#ifdef _WIN32
        {
            const char *p2;
            p2 = strrchr(base_path, '\\');
            if (!p1 || p2 > p1)
                p1 = p2;
        }
#endif
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        if (p1)
            p1++;
        else
            p1 = base_path;
        if (p1 > p)
            p = p1;
        len = p - base_path;
        if (len > dest_size - 1)
            len = dest_size - 1;
        memcpy(dest, base_path, len);
        dest[len] = '\0';
        pstrcat(dest, dest_size, filename);
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    }
}

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void bdrv_register(BlockDriver *bdrv)
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{
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    if (!bdrv->bdrv_aio_readv) {
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        /* add AIO emulation layer */
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        bdrv->bdrv_aio_readv = bdrv_aio_readv_em;
        bdrv->bdrv_aio_writev = bdrv_aio_writev_em;
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    } else if (!bdrv->bdrv_read) {
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        /* add synchronous IO emulation layer */
        bdrv->bdrv_read = bdrv_read_em;
        bdrv->bdrv_write = bdrv_write_em;
    }
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    if (!bdrv->bdrv_aio_flush)
        bdrv->bdrv_aio_flush = bdrv_aio_flush_em;

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    bdrv->next = first_drv;
    first_drv = bdrv;
}
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/* create a new block device (by default it is empty) */
BlockDriverState *bdrv_new(const char *device_name)
{
    BlockDriverState **pbs, *bs;

    bs = qemu_mallocz(sizeof(BlockDriverState));
    pstrcpy(bs->device_name, sizeof(bs->device_name), device_name);
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    if (device_name[0] != '\0') {
        /* insert at the end */
        pbs = &bdrv_first;
        while (*pbs != NULL)
            pbs = &(*pbs)->next;
        *pbs = bs;
    }
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    return bs;
}

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BlockDriver *bdrv_find_format(const char *format_name)
{
    BlockDriver *drv1;
    for(drv1 = first_drv; drv1 != NULL; drv1 = drv1->next) {
        if (!strcmp(drv1->format_name, format_name))
            return drv1;
    }
    return NULL;
}

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static int bdrv_is_whitelisted(BlockDriver *drv)
{
    static const char *whitelist[] = {
        CONFIG_BDRV_WHITELIST
    };
    const char **p;

    if (!whitelist[0])
        return 1;               /* no whitelist, anything goes */

    for (p = whitelist; *p; p++) {
        if (!strcmp(drv->format_name, *p)) {
            return 1;
        }
    }
    return 0;
}

BlockDriver *bdrv_find_whitelisted_format(const char *format_name)
{
    BlockDriver *drv = bdrv_find_format(format_name);
    return drv && bdrv_is_whitelisted(drv) ? drv : NULL;
}

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int bdrv_create(BlockDriver *drv, const char* filename,
    QEMUOptionParameter *options)
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{
    if (!drv->bdrv_create)
        return -ENOTSUP;
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    return drv->bdrv_create(filename, options);
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}

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#ifdef _WIN32
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void get_tmp_filename(char *filename, int size)
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{
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    char temp_dir[MAX_PATH];
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    GetTempPath(MAX_PATH, temp_dir);
    GetTempFileName(temp_dir, "qem", 0, filename);
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}
#else
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void get_tmp_filename(char *filename, int size)
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{
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    int fd;
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    const char *tmpdir;
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    /* XXX: race condition possible */
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    tmpdir = getenv("TMPDIR");
    if (!tmpdir)
        tmpdir = "/tmp";
    snprintf(filename, size, "%s/vl.XXXXXX", tmpdir);
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    fd = mkstemp(filename);
    close(fd);
}
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#endif
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#ifdef _WIN32
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static int is_windows_drive_prefix(const char *filename)
{
    return (((filename[0] >= 'a' && filename[0] <= 'z') ||
             (filename[0] >= 'A' && filename[0] <= 'Z')) &&
            filename[1] == ':');
}
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int is_windows_drive(const char *filename)
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{
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    if (is_windows_drive_prefix(filename) &&
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        filename[2] == '\0')
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        return 1;
    if (strstart(filename, "\\\\.\\", NULL) ||
        strstart(filename, "//./", NULL))
        return 1;
    return 0;
}
#endif

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static BlockDriver *find_protocol(const char *filename)
{
    BlockDriver *drv1;
    char protocol[128];
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    int len;
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    const char *p;
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#ifdef _WIN32
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    if (is_windows_drive(filename) ||
        is_windows_drive_prefix(filename))
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        return bdrv_find_format("raw");
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#endif
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    p = strchr(filename, ':');
    if (!p)
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        return bdrv_find_format("raw");
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    len = p - filename;
    if (len > sizeof(protocol) - 1)
        len = sizeof(protocol) - 1;
    memcpy(protocol, filename, len);
    protocol[len] = '\0';
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    for(drv1 = first_drv; drv1 != NULL; drv1 = drv1->next) {
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        if (drv1->protocol_name &&
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            !strcmp(drv1->protocol_name, protocol))
            return drv1;
    }
    return NULL;
}

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/*
 * Detect host devices. By convention, /dev/cdrom[N] is always
 * recognized as a host CDROM.
 */
static BlockDriver *find_hdev_driver(const char *filename)
{
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    int score_max = 0, score;
    BlockDriver *drv = NULL, *d;
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    for (d = first_drv; d; d = d->next) {
        if (d->bdrv_probe_device) {
            score = d->bdrv_probe_device(filename);
            if (score > score_max) {
                score_max = score;
                drv = d;
            }
        }
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    }
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    return drv;
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}
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static BlockDriver *find_image_format(const char *filename)
{
    int ret, score, score_max;
    BlockDriver *drv1, *drv;
    uint8_t buf[2048];
    BlockDriverState *bs;

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    drv = find_protocol(filename);
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    /* no need to test disk image formats for vvfat */
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    if (drv && strcmp(drv->format_name, "vvfat") == 0)
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        return drv;
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    ret = bdrv_file_open(&bs, filename, BDRV_O_RDONLY);
    if (ret < 0)
        return NULL;
    ret = bdrv_pread(bs, 0, buf, sizeof(buf));
    bdrv_delete(bs);
    if (ret < 0) {
        return NULL;
    }

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    score_max = 0;
    for(drv1 = first_drv; drv1 != NULL; drv1 = drv1->next) {
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        if (drv1->bdrv_probe) {
            score = drv1->bdrv_probe(buf, ret, filename);
            if (score > score_max) {
                score_max = score;
                drv = drv1;
            }
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        }
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    }
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    return drv;
}

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int bdrv_file_open(BlockDriverState **pbs, const char *filename, int flags)
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{
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    BlockDriverState *bs;
    int ret;

    bs = bdrv_new("");
    ret = bdrv_open2(bs, filename, flags | BDRV_O_FILE, NULL);
    if (ret < 0) {
        bdrv_delete(bs);
        return ret;
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    }
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    bs->growable = 1;
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    *pbs = bs;
    return 0;
}

int bdrv_open(BlockDriverState *bs, const char *filename, int flags)
{
    return bdrv_open2(bs, filename, flags, NULL);
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}

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int bdrv_open2(BlockDriverState *bs, const char *filename, int flags,
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               BlockDriver *drv)
{
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    int ret, open_flags, try_rw;
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    char tmp_filename[PATH_MAX];
    char backing_filename[PATH_MAX];
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    bs->is_temporary = 0;
    bs->encrypted = 0;
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    bs->valid_key = 0;
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    /* buffer_alignment defaulted to 512, drivers can change this value */
    bs->buffer_alignment = 512;
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    if (flags & BDRV_O_SNAPSHOT) {
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        BlockDriverState *bs1;
        int64_t total_size;
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        int is_protocol = 0;
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        BlockDriver *bdrv_qcow2;
        QEMUOptionParameter *options;
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        /* if snapshot, we create a temporary backing file and open it
           instead of opening 'filename' directly */
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        /* if there is a backing file, use it */
        bs1 = bdrv_new("");
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        ret = bdrv_open2(bs1, filename, 0, drv);
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        if (ret < 0) {
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            bdrv_delete(bs1);
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            return ret;
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        }
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        total_size = bdrv_getlength(bs1) >> SECTOR_BITS;
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        if (bs1->drv && bs1->drv->protocol_name)
            is_protocol = 1;

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        bdrv_delete(bs1);
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        get_tmp_filename(tmp_filename, sizeof(tmp_filename));
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        /* Real path is meaningless for protocols */
        if (is_protocol)
            snprintf(backing_filename, sizeof(backing_filename),
                     "%s", filename);
        else
            realpath(filename, backing_filename);

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        bdrv_qcow2 = bdrv_find_format("qcow2");
        options = parse_option_parameters("", bdrv_qcow2->create_options, NULL);

        set_option_parameter_int(options, BLOCK_OPT_SIZE, total_size * 512);
        set_option_parameter(options, BLOCK_OPT_BACKING_FILE, backing_filename);
        if (drv) {
            set_option_parameter(options, BLOCK_OPT_BACKING_FMT,
                drv->format_name);
        }

        ret = bdrv_create(bdrv_qcow2, tmp_filename, options);
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        if (ret < 0) {
            return ret;
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        }
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        filename = tmp_filename;
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        drv = bdrv_qcow2;
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        bs->is_temporary = 1;
    }
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    pstrcpy(bs->filename, sizeof(bs->filename), filename);
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    if (flags & BDRV_O_FILE) {
        drv = find_protocol(filename);
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    } else if (!drv) {
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        drv = find_hdev_driver(filename);
        if (!drv) {
            drv = find_image_format(filename);
        }
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    }
    if (!drv) {
        ret = -ENOENT;
        goto unlink_and_fail;
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    }
    bs->drv = drv;
    bs->opaque = qemu_mallocz(drv->instance_size);
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    /*
     * Yes, BDRV_O_NOCACHE aka O_DIRECT means we have to present a
     * write cache to the guest.  We do need the fdatasync to flush
     * out transactions for block allocations, and we maybe have a
     * volatile write cache in our backing device to deal with.
     */
    if (flags & (BDRV_O_CACHE_WB|BDRV_O_NOCACHE))
        bs->enable_write_cache = 1;

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    /* Note: for compatibility, we open disk image files as RDWR, and
       RDONLY as fallback */
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    try_rw = !bs->read_only || bs->is_temporary;
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    if (!(flags & BDRV_O_FILE))
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        open_flags = (try_rw ? BDRV_O_RDWR : 0) |
            (flags & (BDRV_O_CACHE_MASK|BDRV_O_NATIVE_AIO));
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    else
        open_flags = flags & ~(BDRV_O_FILE | BDRV_O_SNAPSHOT);
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    if (use_bdrv_whitelist && !bdrv_is_whitelisted(drv))
        ret = -ENOTSUP;
    else
        ret = drv->bdrv_open(bs, filename, open_flags);
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    if ((ret == -EACCES || ret == -EPERM) && !(flags & BDRV_O_FILE)) {
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        ret = drv->bdrv_open(bs, filename, open_flags & ~BDRV_O_RDWR);
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        bs->read_only = 1;
    }
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    if (ret < 0) {
        qemu_free(bs->opaque);
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        bs->opaque = NULL;
        bs->drv = NULL;
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    unlink_and_fail:
        if (bs->is_temporary)
            unlink(filename);
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        return ret;
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    }
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    if (drv->bdrv_getlength) {
        bs->total_sectors = bdrv_getlength(bs) >> SECTOR_BITS;
    }
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#ifndef _WIN32
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    if (bs->is_temporary) {
        unlink(filename);
    }
#endif
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    if (bs->backing_file[0] != '\0') {
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        /* if there is a backing file, use it */
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        BlockDriver *back_drv = NULL;
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        bs->backing_hd = bdrv_new("");
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        /* pass on read_only property to the backing_hd */
        bs->backing_hd->read_only = bs->read_only;
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        path_combine(backing_filename, sizeof(backing_filename),
                     filename, bs->backing_file);
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        if (bs->backing_format[0] != '\0')
            back_drv = bdrv_find_format(bs->backing_format);
        ret = bdrv_open2(bs->backing_hd, backing_filename, open_flags,
                         back_drv);
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        if (ret < 0) {
            bdrv_close(bs);
            return ret;
        }
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    }

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    if (!bdrv_key_required(bs)) {
        /* call the change callback */
        bs->media_changed = 1;
        if (bs->change_cb)
            bs->change_cb(bs->change_opaque);
    }
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    return 0;
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}

void bdrv_close(BlockDriverState *bs)
{
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    if (bs->drv) {
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        if (bs->backing_hd)
            bdrv_delete(bs->backing_hd);
        bs->drv->bdrv_close(bs);
        qemu_free(bs->opaque);
#ifdef _WIN32
        if (bs->is_temporary) {
            unlink(bs->filename);
        }
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#endif
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        bs->opaque = NULL;
        bs->drv = NULL;
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        /* call the change callback */
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        bs->media_changed = 1;
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        if (bs->change_cb)
            bs->change_cb(bs->change_opaque);
    }
}

void bdrv_delete(BlockDriverState *bs)
{
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    BlockDriverState **pbs;

    pbs = &bdrv_first;
    while (*pbs != bs && *pbs != NULL)
        pbs = &(*pbs)->next;
    if (*pbs == bs)
        *pbs = bs->next;

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    bdrv_close(bs);
    qemu_free(bs);
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}

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/*
 * Run consistency checks on an image
 *
 * Returns the number of errors or -errno when an internal error occurs
 */
int bdrv_check(BlockDriverState *bs)
{
    if (bs->drv->bdrv_check == NULL) {
        return -ENOTSUP;
    }

    return bs->drv->bdrv_check(bs);
}

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/* commit COW file into the raw image */
int bdrv_commit(BlockDriverState *bs)
{
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    BlockDriver *drv = bs->drv;
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    int64_t i, total_sectors;
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    int n, j;
    unsigned char sector[512];
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    if (!drv)
        return -ENOMEDIUM;
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    if (bs->read_only) {
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	return -EACCES;
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    }

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    if (!bs->backing_hd) {
	return -ENOTSUP;
    }
578

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    total_sectors = bdrv_getlength(bs) >> SECTOR_BITS;
    for (i = 0; i < total_sectors;) {
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        if (drv->bdrv_is_allocated(bs, i, 65536, &n)) {
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            for(j = 0; j < n; j++) {
                if (bdrv_read(bs, i, sector, 1) != 0) {
                    return -EIO;
                }

                if (bdrv_write(bs->backing_hd, i, sector, 1) != 0) {
                    return -EIO;
                }
                i++;
591
	    }
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	} else {
            i += n;
        }
595
    }
596

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    if (drv->bdrv_make_empty)
	return drv->bdrv_make_empty(bs);
599

600 601 602
    return 0;
}

603 604 605 606 607 608 609 610 611 612 613 614 615
static int bdrv_check_byte_request(BlockDriverState *bs, int64_t offset,
                                   size_t size)
{
    int64_t len;

    if (!bdrv_is_inserted(bs))
        return -ENOMEDIUM;

    if (bs->growable)
        return 0;

    len = bdrv_getlength(bs);

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    if (offset < 0)
        return -EIO;

    if ((offset > len) || (len - offset < size))
620 621 622 623 624 625 626 627
        return -EIO;

    return 0;
}

static int bdrv_check_request(BlockDriverState *bs, int64_t sector_num,
                              int nb_sectors)
{
628
    return bdrv_check_byte_request(bs, sector_num * 512, nb_sectors * 512);
629 630
}

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/* return < 0 if error. See bdrv_write() for the return codes */
632
int bdrv_read(BlockDriverState *bs, int64_t sector_num,
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              uint8_t *buf, int nb_sectors)
{
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    BlockDriver *drv = bs->drv;

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    if (!drv)
        return -ENOMEDIUM;
639 640
    if (bdrv_check_request(bs, sector_num, nb_sectors))
        return -EIO;
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642
    return drv->bdrv_read(bs, sector_num, buf, nb_sectors);
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}

645
static void set_dirty_bitmap(BlockDriverState *bs, int64_t sector_num,
646
                             int nb_sectors, int dirty)
647 648
{
    int64_t start, end;
649

650 651
    start = sector_num / SECTORS_PER_DIRTY_CHUNK;
    end = (sector_num + nb_sectors) / SECTORS_PER_DIRTY_CHUNK;
652 653

    for (; start <= end; start++) {
654 655 656 657
        bs->dirty_bitmap[start] = dirty;
    }
}

658
/* Return < 0 if error. Important errors are:
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  -EIO         generic I/O error (may happen for all errors)
  -ENOMEDIUM   No media inserted.
  -EINVAL      Invalid sector number or nb_sectors
  -EACCES      Trying to write a read-only device
*/
664
int bdrv_write(BlockDriverState *bs, int64_t sector_num,
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               const uint8_t *buf, int nb_sectors)
{
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    BlockDriver *drv = bs->drv;
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    if (!bs->drv)
        return -ENOMEDIUM;
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    if (bs->read_only)
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        return -EACCES;
672 673
    if (bdrv_check_request(bs, sector_num, nb_sectors))
        return -EIO;
674 675

    if (bs->dirty_tracking) {
676 677
        set_dirty_bitmap(bs, sector_num, nb_sectors, 1);
    }
678

679
    return drv->bdrv_write(bs, sector_num, buf, nb_sectors);
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}

682 683
int bdrv_pread(BlockDriverState *bs, int64_t offset,
               void *buf, int count1)
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{
    uint8_t tmp_buf[SECTOR_SIZE];
    int len, nb_sectors, count;
    int64_t sector_num;

    count = count1;
    /* first read to align to sector start */
    len = (SECTOR_SIZE - offset) & (SECTOR_SIZE - 1);
    if (len > count)
        len = count;
    sector_num = offset >> SECTOR_BITS;
    if (len > 0) {
        if (bdrv_read(bs, sector_num, tmp_buf, 1) < 0)
            return -EIO;
        memcpy(buf, tmp_buf + (offset & (SECTOR_SIZE - 1)), len);
        count -= len;
        if (count == 0)
            return count1;
        sector_num++;
        buf += len;
    }

    /* read the sectors "in place" */
    nb_sectors = count >> SECTOR_BITS;
    if (nb_sectors > 0) {
        if (bdrv_read(bs, sector_num, buf, nb_sectors) < 0)
            return -EIO;
        sector_num += nb_sectors;
        len = nb_sectors << SECTOR_BITS;
        buf += len;
        count -= len;
    }

    /* add data from the last sector */
    if (count > 0) {
        if (bdrv_read(bs, sector_num, tmp_buf, 1) < 0)
            return -EIO;
        memcpy(buf, tmp_buf, count);
    }
    return count1;
}

726 727
int bdrv_pwrite(BlockDriverState *bs, int64_t offset,
                const void *buf, int count1)
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{
    uint8_t tmp_buf[SECTOR_SIZE];
    int len, nb_sectors, count;
    int64_t sector_num;

    count = count1;
    /* first write to align to sector start */
    len = (SECTOR_SIZE - offset) & (SECTOR_SIZE - 1);
    if (len > count)
        len = count;
    sector_num = offset >> SECTOR_BITS;
    if (len > 0) {
        if (bdrv_read(bs, sector_num, tmp_buf, 1) < 0)
            return -EIO;
        memcpy(tmp_buf + (offset & (SECTOR_SIZE - 1)), buf, len);
        if (bdrv_write(bs, sector_num, tmp_buf, 1) < 0)
            return -EIO;
        count -= len;
        if (count == 0)
            return count1;
        sector_num++;
        buf += len;
    }

    /* write the sectors "in place" */
    nb_sectors = count >> SECTOR_BITS;
    if (nb_sectors > 0) {
        if (bdrv_write(bs, sector_num, buf, nb_sectors) < 0)
            return -EIO;
        sector_num += nb_sectors;
        len = nb_sectors << SECTOR_BITS;
        buf += len;
        count -= len;
    }

    /* add data from the last sector */
    if (count > 0) {
        if (bdrv_read(bs, sector_num, tmp_buf, 1) < 0)
            return -EIO;
        memcpy(tmp_buf, buf, count);
        if (bdrv_write(bs, sector_num, tmp_buf, 1) < 0)
            return -EIO;
    }
    return count1;
}

/**
 * Truncate file to 'offset' bytes (needed only for file protocols)
 */
int bdrv_truncate(BlockDriverState *bs, int64_t offset)
{
    BlockDriver *drv = bs->drv;
    if (!drv)
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        return -ENOMEDIUM;
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    if (!drv->bdrv_truncate)
        return -ENOTSUP;
784 785
    if (bs->read_only)
        return -EACCES;
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    return drv->bdrv_truncate(bs, offset);
}

/**
 * Length of a file in bytes. Return < 0 if error or unknown.
 */
int64_t bdrv_getlength(BlockDriverState *bs)
{
    BlockDriver *drv = bs->drv;
    if (!drv)
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        return -ENOMEDIUM;
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    if (!drv->bdrv_getlength) {
        /* legacy mode */
        return bs->total_sectors * SECTOR_SIZE;
    }
    return drv->bdrv_getlength(bs);
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}

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/* return 0 as number of sectors if no device present or error */
805
void bdrv_get_geometry(BlockDriverState *bs, uint64_t *nb_sectors_ptr)
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{
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    int64_t length;
    length = bdrv_getlength(bs);
    if (length < 0)
        length = 0;
    else
        length = length >> SECTOR_BITS;
    *nb_sectors_ptr = length;
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}
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816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836
struct partition {
        uint8_t boot_ind;           /* 0x80 - active */
        uint8_t head;               /* starting head */
        uint8_t sector;             /* starting sector */
        uint8_t cyl;                /* starting cylinder */
        uint8_t sys_ind;            /* What partition type */
        uint8_t end_head;           /* end head */
        uint8_t end_sector;         /* end sector */
        uint8_t end_cyl;            /* end cylinder */
        uint32_t start_sect;        /* starting sector counting from 0 */
        uint32_t nr_sects;          /* nr of sectors in partition */
} __attribute__((packed));

/* try to guess the disk logical geometry from the MSDOS partition table. Return 0 if OK, -1 if could not guess */
static int guess_disk_lchs(BlockDriverState *bs,
                           int *pcylinders, int *pheads, int *psectors)
{
    uint8_t buf[512];
    int ret, i, heads, sectors, cylinders;
    struct partition *p;
    uint32_t nr_sects;
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    uint64_t nb_sectors;
838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876

    bdrv_get_geometry(bs, &nb_sectors);

    ret = bdrv_read(bs, 0, buf, 1);
    if (ret < 0)
        return -1;
    /* test msdos magic */
    if (buf[510] != 0x55 || buf[511] != 0xaa)
        return -1;
    for(i = 0; i < 4; i++) {
        p = ((struct partition *)(buf + 0x1be)) + i;
        nr_sects = le32_to_cpu(p->nr_sects);
        if (nr_sects && p->end_head) {
            /* We make the assumption that the partition terminates on
               a cylinder boundary */
            heads = p->end_head + 1;
            sectors = p->end_sector & 63;
            if (sectors == 0)
                continue;
            cylinders = nb_sectors / (heads * sectors);
            if (cylinders < 1 || cylinders > 16383)
                continue;
            *pheads = heads;
            *psectors = sectors;
            *pcylinders = cylinders;
#if 0
            printf("guessed geometry: LCHS=%d %d %d\n",
                   cylinders, heads, sectors);
#endif
            return 0;
        }
    }
    return -1;
}

void bdrv_guess_geometry(BlockDriverState *bs, int *pcyls, int *pheads, int *psecs)
{
    int translation, lba_detected = 0;
    int cylinders, heads, secs;
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    uint64_t nb_sectors;
878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931

    /* if a geometry hint is available, use it */
    bdrv_get_geometry(bs, &nb_sectors);
    bdrv_get_geometry_hint(bs, &cylinders, &heads, &secs);
    translation = bdrv_get_translation_hint(bs);
    if (cylinders != 0) {
        *pcyls = cylinders;
        *pheads = heads;
        *psecs = secs;
    } else {
        if (guess_disk_lchs(bs, &cylinders, &heads, &secs) == 0) {
            if (heads > 16) {
                /* if heads > 16, it means that a BIOS LBA
                   translation was active, so the default
                   hardware geometry is OK */
                lba_detected = 1;
                goto default_geometry;
            } else {
                *pcyls = cylinders;
                *pheads = heads;
                *psecs = secs;
                /* disable any translation to be in sync with
                   the logical geometry */
                if (translation == BIOS_ATA_TRANSLATION_AUTO) {
                    bdrv_set_translation_hint(bs,
                                              BIOS_ATA_TRANSLATION_NONE);
                }
            }
        } else {
        default_geometry:
            /* if no geometry, use a standard physical disk geometry */
            cylinders = nb_sectors / (16 * 63);

            if (cylinders > 16383)
                cylinders = 16383;
            else if (cylinders < 2)
                cylinders = 2;
            *pcyls = cylinders;
            *pheads = 16;
            *psecs = 63;
            if ((lba_detected == 1) && (translation == BIOS_ATA_TRANSLATION_AUTO)) {
                if ((*pcyls * *pheads) <= 131072) {
                    bdrv_set_translation_hint(bs,
                                              BIOS_ATA_TRANSLATION_LARGE);
                } else {
                    bdrv_set_translation_hint(bs,
                                              BIOS_ATA_TRANSLATION_LBA);
                }
            }
        }
        bdrv_set_geometry_hint(bs, *pcyls, *pheads, *psecs);
    }
}

932
void bdrv_set_geometry_hint(BlockDriverState *bs,
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                            int cyls, int heads, int secs)
{
    bs->cyls = cyls;
    bs->heads = heads;
    bs->secs = secs;
}

void bdrv_set_type_hint(BlockDriverState *bs, int type)
{
    bs->type = type;
    bs->removable = ((type == BDRV_TYPE_CDROM ||
                      type == BDRV_TYPE_FLOPPY));
}

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void bdrv_set_translation_hint(BlockDriverState *bs, int translation)
{
    bs->translation = translation;
}

952
void bdrv_get_geometry_hint(BlockDriverState *bs,
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                            int *pcyls, int *pheads, int *psecs)
{
    *pcyls = bs->cyls;
    *pheads = bs->heads;
    *psecs = bs->secs;
}

int bdrv_get_type_hint(BlockDriverState *bs)
{
    return bs->type;
}

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int bdrv_get_translation_hint(BlockDriverState *bs)
{
    return bs->translation;
}

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int bdrv_is_removable(BlockDriverState *bs)
{
    return bs->removable;
}

int bdrv_is_read_only(BlockDriverState *bs)
{
    return bs->read_only;
}

980 981 982 983 984 985 986
int bdrv_set_read_only(BlockDriverState *bs, int read_only)
{
    int ret = bs->read_only;
    bs->read_only = read_only;
    return ret;
}

987 988 989 990 991
int bdrv_is_sg(BlockDriverState *bs)
{
    return bs->sg;
}

992 993 994 995 996
int bdrv_enable_write_cache(BlockDriverState *bs)
{
    return bs->enable_write_cache;
}

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/* XXX: no longer used */
998
void bdrv_set_change_cb(BlockDriverState *bs,
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                        void (*change_cb)(void *opaque), void *opaque)
{
    bs->change_cb = change_cb;
    bs->change_opaque = opaque;
}

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int bdrv_is_encrypted(BlockDriverState *bs)
{
    if (bs->backing_hd && bs->backing_hd->encrypted)
        return 1;
    return bs->encrypted;
}

1012 1013 1014 1015 1016 1017 1018 1019 1020
int bdrv_key_required(BlockDriverState *bs)
{
    BlockDriverState *backing_hd = bs->backing_hd;

    if (backing_hd && backing_hd->encrypted && !backing_hd->valid_key)
        return 1;
    return (bs->encrypted && !bs->valid_key);
}

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int bdrv_set_key(BlockDriverState *bs, const char *key)
{
    int ret;
    if (bs->backing_hd && bs->backing_hd->encrypted) {
        ret = bdrv_set_key(bs->backing_hd, key);
        if (ret < 0)
            return ret;
        if (!bs->encrypted)
            return 0;
    }
    if (!bs->encrypted || !bs->drv || !bs->drv->bdrv_set_key)
        return -1;
1033
    ret = bs->drv->bdrv_set_key(bs, key);
1034 1035 1036 1037 1038 1039 1040 1041 1042
    if (ret < 0) {
        bs->valid_key = 0;
    } else if (!bs->valid_key) {
        bs->valid_key = 1;
        /* call the change callback now, we skipped it on open */
        bs->media_changed = 1;
        if (bs->change_cb)
            bs->change_cb(bs->change_opaque);
    }
1043
    return ret;
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}

void bdrv_get_format(BlockDriverState *bs, char *buf, int buf_size)
{
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    if (!bs->drv) {
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        buf[0] = '\0';
    } else {
        pstrcpy(buf, buf_size, bs->drv->format_name);
    }
}

1055
void bdrv_iterate_format(void (*it)(void *opaque, const char *name),
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                         void *opaque)
{
    BlockDriver *drv;

    for (drv = first_drv; drv != NULL; drv = drv->next) {
        it(opaque, drv->format_name);
    }
}

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BlockDriverState *bdrv_find(const char *name)
{
    BlockDriverState *bs;

    for (bs = bdrv_first; bs != NULL; bs = bs->next) {
        if (!strcmp(name, bs->device_name))
            return bs;
    }
    return NULL;
}

1076
void bdrv_iterate(void (*it)(void *opaque, BlockDriverState *bs), void *opaque)
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1077 1078 1079 1080
{
    BlockDriverState *bs;

    for (bs = bdrv_first; bs != NULL; bs = bs->next) {
1081
        it(opaque, bs);
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    }
}

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const char *bdrv_get_device_name(BlockDriverState *bs)
{
    return bs->device_name;
}

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void bdrv_flush(BlockDriverState *bs)
{
1092 1093
    if (!bs->drv)
        return;
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    if (bs->drv->bdrv_flush)
        bs->drv->bdrv_flush(bs);
    if (bs->backing_hd)
        bdrv_flush(bs->backing_hd);
}

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void bdrv_flush_all(void)
{
    BlockDriverState *bs;

    for (bs = bdrv_first; bs != NULL; bs = bs->next)
        if (bs->drv && !bdrv_is_read_only(bs) && 
            (!bdrv_is_removable(bs) || bdrv_is_inserted(bs)))
            bdrv_flush(bs);
}

1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136
/*
 * Returns true iff the specified sector is present in the disk image. Drivers
 * not implementing the functionality are assumed to not support backing files,
 * hence all their sectors are reported as allocated.
 *
 * 'pnum' is set to the number of sectors (including and immediately following
 * the specified sector) that are known to be in the same
 * allocated/unallocated state.
 *
 * 'nb_sectors' is the max value 'pnum' should be set to.
 */
int bdrv_is_allocated(BlockDriverState *bs, int64_t sector_num, int nb_sectors,
	int *pnum)
{
    int64_t n;
    if (!bs->drv->bdrv_is_allocated) {
        if (sector_num >= bs->total_sectors) {
            *pnum = 0;
            return 0;
        }
        n = bs->total_sectors - sector_num;
        *pnum = (n < nb_sectors) ? (n) : (nb_sectors);
        return 1;
    }
    return bs->drv->bdrv_is_allocated(bs, sector_num, nb_sectors, pnum);
}

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void bdrv_info(Monitor *mon)
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{
    BlockDriverState *bs;

    for (bs = bdrv_first; bs != NULL; bs = bs->next) {
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        monitor_printf(mon, "%s:", bs->device_name);
        monitor_printf(mon, " type=");
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        switch(bs->type) {
        case BDRV_TYPE_HD:
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            monitor_printf(mon, "hd");
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            break;
        case BDRV_TYPE_CDROM:
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            monitor_printf(mon, "cdrom");
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            break;
        case BDRV_TYPE_FLOPPY:
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            monitor_printf(mon, "floppy");
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            break;
        }
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        monitor_printf(mon, " removable=%d", bs->removable);
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        if (bs->removable) {
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            monitor_printf(mon, " locked=%d", bs->locked);
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        }
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        if (bs->drv) {
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            monitor_printf(mon, " file=");
            monitor_print_filename(mon, bs->filename);
1162
            if (bs->backing_file[0] != '\0') {
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                monitor_printf(mon, " backing_file=");
                monitor_print_filename(mon, bs->backing_file);
            }
            monitor_printf(mon, " ro=%d", bs->read_only);
            monitor_printf(mon, " drv=%s", bs->drv->format_name);
            monitor_printf(mon, " encrypted=%d", bdrv_is_encrypted(bs));
B
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        } else {
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            monitor_printf(mon, " [not inserted]");
B
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        }
A
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        monitor_printf(mon, "\n");
B
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    }
}
1175 1176

/* The "info blockstats" command. */
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void bdrv_info_stats(Monitor *mon)
1178 1179 1180 1181
{
    BlockDriverState *bs;

    for (bs = bdrv_first; bs != NULL; bs = bs->next) {
A
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        monitor_printf(mon, "%s:"
                       " rd_bytes=%" PRIu64
                       " wr_bytes=%" PRIu64
                       " rd_operations=%" PRIu64
                       " wr_operations=%" PRIu64
A
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                       "\n",
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                       bs->device_name,
                       bs->rd_bytes, bs->wr_bytes,
                       bs->rd_ops, bs->wr_ops);
1191 1192
    }
}
B
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1194 1195 1196 1197 1198 1199 1200 1201 1202 1203
const char *bdrv_get_encrypted_filename(BlockDriverState *bs)
{
    if (bs->backing_hd && bs->backing_hd->encrypted)
        return bs->backing_file;
    else if (bs->encrypted)
        return bs->filename;
    else
        return NULL;
}

1204
void bdrv_get_backing_filename(BlockDriverState *bs,
B
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                               char *filename, int filename_size)
{
    if (!bs->backing_hd) {
        pstrcpy(filename, filename_size, "");
    } else {
        pstrcpy(filename, filename_size, bs->backing_file);
    }
}

1214
int bdrv_write_compressed(BlockDriverState *bs, int64_t sector_num,
B
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                          const uint8_t *buf, int nb_sectors)
{
    BlockDriver *drv = bs->drv;
    if (!drv)
B
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        return -ENOMEDIUM;
B
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1220 1221
    if (!drv->bdrv_write_compressed)
        return -ENOTSUP;
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1222 1223
    if (bdrv_check_request(bs, sector_num, nb_sectors))
        return -EIO;
1224 1225

    if (bs->dirty_tracking) {
1226 1227
        set_dirty_bitmap(bs, sector_num, nb_sectors, 1);
    }
1228

B
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    return drv->bdrv_write_compressed(bs, sector_num, buf, nb_sectors);
}
1231

B
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int bdrv_get_info(BlockDriverState *bs, BlockDriverInfo *bdi)
{
    BlockDriver *drv = bs->drv;
    if (!drv)
B
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        return -ENOMEDIUM;
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    if (!drv->bdrv_get_info)
        return -ENOTSUP;
    memset(bdi, 0, sizeof(*bdi));
    return drv->bdrv_get_info(bs, bdi);
}

1243 1244
int bdrv_save_vmstate(BlockDriverState *bs, const uint8_t *buf,
                      int64_t pos, int size)
1245 1246 1247 1248
{
    BlockDriver *drv = bs->drv;
    if (!drv)
        return -ENOMEDIUM;
1249
    if (!drv->bdrv_save_vmstate)
1250
        return -ENOTSUP;
1251
    return drv->bdrv_save_vmstate(bs, buf, pos, size);
1252 1253
}

1254 1255
int bdrv_load_vmstate(BlockDriverState *bs, uint8_t *buf,
                      int64_t pos, int size)
1256 1257 1258 1259
{
    BlockDriver *drv = bs->drv;
    if (!drv)
        return -ENOMEDIUM;
1260
    if (!drv->bdrv_load_vmstate)
1261
        return -ENOTSUP;
1262
    return drv->bdrv_load_vmstate(bs, buf, pos, size);
1263 1264
}

B
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/**************************************************************/
/* handling of snapshots */

1268
int bdrv_snapshot_create(BlockDriverState *bs,
B
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1269 1270 1271 1272
                         QEMUSnapshotInfo *sn_info)
{
    BlockDriver *drv = bs->drv;
    if (!drv)
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        return -ENOMEDIUM;
B
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    if (!drv->bdrv_snapshot_create)
        return -ENOTSUP;
    return drv->bdrv_snapshot_create(bs, sn_info);
}

1279
int bdrv_snapshot_goto(BlockDriverState *bs,
B
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1280 1281 1282 1283
                       const char *snapshot_id)
{
    BlockDriver *drv = bs->drv;
    if (!drv)
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        return -ENOMEDIUM;
B
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1285 1286 1287 1288 1289 1290 1291 1292 1293
    if (!drv->bdrv_snapshot_goto)
        return -ENOTSUP;
    return drv->bdrv_snapshot_goto(bs, snapshot_id);
}

int bdrv_snapshot_delete(BlockDriverState *bs, const char *snapshot_id)
{
    BlockDriver *drv = bs->drv;
    if (!drv)
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        return -ENOMEDIUM;
B
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    if (!drv->bdrv_snapshot_delete)
        return -ENOTSUP;
    return drv->bdrv_snapshot_delete(bs, snapshot_id);
}

1300
int bdrv_snapshot_list(BlockDriverState *bs,
B
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1301 1302 1303 1304
                       QEMUSnapshotInfo **psn_info)
{
    BlockDriver *drv = bs->drv;
    if (!drv)
B
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        return -ENOMEDIUM;
B
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1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324
    if (!drv->bdrv_snapshot_list)
        return -ENOTSUP;
    return drv->bdrv_snapshot_list(bs, psn_info);
}

#define NB_SUFFIXES 4

char *get_human_readable_size(char *buf, int buf_size, int64_t size)
{
    static const char suffixes[NB_SUFFIXES] = "KMGT";
    int64_t base;
    int i;

    if (size <= 999) {
        snprintf(buf, buf_size, "%" PRId64, size);
    } else {
        base = 1024;
        for(i = 0; i < NB_SUFFIXES; i++) {
            if (size < (10 * base)) {
1325
                snprintf(buf, buf_size, "%0.1f%c",
B
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                         (double)size / base,
                         suffixes[i]);
                break;
            } else if (size < (1000 * base) || i == (NB_SUFFIXES - 1)) {
1330
                snprintf(buf, buf_size, "%" PRId64 "%c",
B
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1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343
                         ((size + (base >> 1)) / base),
                         suffixes[i]);
                break;
            }
            base = base * 1024;
        }
    }
    return buf;
}

char *bdrv_snapshot_dump(char *buf, int buf_size, QEMUSnapshotInfo *sn)
{
    char buf1[128], date_buf[128], clock_buf[128];
1344 1345 1346
#ifdef _WIN32
    struct tm *ptm;
#else
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    struct tm tm;
1348
#endif
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1349 1350 1351 1352
    time_t ti;
    int64_t secs;

    if (!sn) {
1353 1354
        snprintf(buf, buf_size,
                 "%-10s%-20s%7s%20s%15s",
B
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1355 1356 1357
                 "ID", "TAG", "VM SIZE", "DATE", "VM CLOCK");
    } else {
        ti = sn->date_sec;
1358 1359 1360 1361 1362
#ifdef _WIN32
        ptm = localtime(&ti);
        strftime(date_buf, sizeof(date_buf),
                 "%Y-%m-%d %H:%M:%S", ptm);
#else
B
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1363 1364 1365
        localtime_r(&ti, &tm);
        strftime(date_buf, sizeof(date_buf),
                 "%Y-%m-%d %H:%M:%S", &tm);
1366
#endif
B
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1367 1368 1369 1370 1371
        secs = sn->vm_clock_nsec / 1000000000;
        snprintf(clock_buf, sizeof(clock_buf),
                 "%02d:%02d:%02d.%03d",
                 (int)(secs / 3600),
                 (int)((secs / 60) % 60),
1372
                 (int)(secs % 60),
B
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                 (int)((sn->vm_clock_nsec / 1000000) % 1000));
        snprintf(buf, buf_size,
1375
                 "%-10s%-20s%7s%20s%15s",
B
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1376 1377 1378 1379 1380 1381 1382 1383
                 sn->id_str, sn->name,
                 get_human_readable_size(buf1, sizeof(buf1), sn->vm_state_size),
                 date_buf,
                 clock_buf);
    }
    return buf;
}

B
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1384

B
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1385
/**************************************************************/
B
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1386
/* async I/Os */
B
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1387

1388
BlockDriverAIOCB *bdrv_aio_readv(BlockDriverState *bs, int64_t sector_num,
1389
                                 QEMUIOVector *qiov, int nb_sectors,
1390
                                 BlockDriverCompletionFunc *cb, void *opaque)
B
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1391 1392
{
    BlockDriver *drv = bs->drv;
1393
    BlockDriverAIOCB *ret;
B
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1394

B
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1395
    if (!drv)
1396
        return NULL;
1397 1398
    if (bdrv_check_request(bs, sector_num, nb_sectors))
        return NULL;
1399

1400 1401
    ret = drv->bdrv_aio_readv(bs, sector_num, qiov, nb_sectors,
                              cb, opaque);
1402 1403 1404 1405 1406 1407 1408 1409

    if (ret) {
	/* Update stats even though technically transfer has not happened. */
	bs->rd_bytes += (unsigned) nb_sectors * SECTOR_SIZE;
	bs->rd_ops ++;
    }

    return ret;
B
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1410 1411
}

1412 1413 1414
BlockDriverAIOCB *bdrv_aio_writev(BlockDriverState *bs, int64_t sector_num,
                                  QEMUIOVector *qiov, int nb_sectors,
                                  BlockDriverCompletionFunc *cb, void *opaque)
B
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1415
{
B
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1416
    BlockDriver *drv = bs->drv;
1417
    BlockDriverAIOCB *ret;
B
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1418

B
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1419
    if (!drv)
1420
        return NULL;
B
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1421
    if (bs->read_only)
1422
        return NULL;
1423 1424
    if (bdrv_check_request(bs, sector_num, nb_sectors))
        return NULL;
B
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1425

1426
    if (bs->dirty_tracking) {
1427 1428
        set_dirty_bitmap(bs, sector_num, nb_sectors, 1);
    }
1429

1430 1431
    ret = drv->bdrv_aio_writev(bs, sector_num, qiov, nb_sectors,
                               cb, opaque);
1432 1433 1434 1435 1436 1437 1438 1439

    if (ret) {
	/* Update stats even though technically transfer has not happened. */
	bs->wr_bytes += (unsigned) nb_sectors * SECTOR_SIZE;
	bs->wr_ops ++;
    }

    return ret;
B
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1440 1441
}

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1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 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 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624

typedef struct MultiwriteCB {
    int error;
    int num_requests;
    int num_callbacks;
    struct {
        BlockDriverCompletionFunc *cb;
        void *opaque;
        QEMUIOVector *free_qiov;
        void *free_buf;
    } callbacks[];
} MultiwriteCB;

static void multiwrite_user_cb(MultiwriteCB *mcb)
{
    int i;

    for (i = 0; i < mcb->num_callbacks; i++) {
        mcb->callbacks[i].cb(mcb->callbacks[i].opaque, mcb->error);
        qemu_free(mcb->callbacks[i].free_qiov);
        qemu_free(mcb->callbacks[i].free_buf);
    }
}

static void multiwrite_cb(void *opaque, int ret)
{
    MultiwriteCB *mcb = opaque;

    if (ret < 0) {
        mcb->error = ret;
        multiwrite_user_cb(mcb);
    }

    mcb->num_requests--;
    if (mcb->num_requests == 0) {
        if (mcb->error == 0) {
            multiwrite_user_cb(mcb);
        }
        qemu_free(mcb);
    }
}

static int multiwrite_req_compare(const void *a, const void *b)
{
    return (((BlockRequest*) a)->sector - ((BlockRequest*) b)->sector);
}

/*
 * Takes a bunch of requests and tries to merge them. Returns the number of
 * requests that remain after merging.
 */
static int multiwrite_merge(BlockDriverState *bs, BlockRequest *reqs,
    int num_reqs, MultiwriteCB *mcb)
{
    int i, outidx;

    // Sort requests by start sector
    qsort(reqs, num_reqs, sizeof(*reqs), &multiwrite_req_compare);

    // Check if adjacent requests touch the same clusters. If so, combine them,
    // filling up gaps with zero sectors.
    outidx = 0;
    for (i = 1; i < num_reqs; i++) {
        int merge = 0;
        int64_t oldreq_last = reqs[outidx].sector + reqs[outidx].nb_sectors;

        // This handles the cases that are valid for all block drivers, namely
        // exactly sequential writes and overlapping writes.
        if (reqs[i].sector <= oldreq_last) {
            merge = 1;
        }

        // The block driver may decide that it makes sense to combine requests
        // even if there is a gap of some sectors between them. In this case,
        // the gap is filled with zeros (therefore only applicable for yet
        // unused space in format like qcow2).
        if (!merge && bs->drv->bdrv_merge_requests) {
            merge = bs->drv->bdrv_merge_requests(bs, &reqs[outidx], &reqs[i]);
        }

        if (merge) {
            size_t size;
            QEMUIOVector *qiov = qemu_mallocz(sizeof(*qiov));
            qemu_iovec_init(qiov,
                reqs[outidx].qiov->niov + reqs[i].qiov->niov + 1);

            // Add the first request to the merged one. If the requests are
            // overlapping, drop the last sectors of the first request.
            size = (reqs[i].sector - reqs[outidx].sector) << 9;
            qemu_iovec_concat(qiov, reqs[outidx].qiov, size);

            // We might need to add some zeros between the two requests
            if (reqs[i].sector > oldreq_last) {
                size_t zero_bytes = (reqs[i].sector - oldreq_last) << 9;
                uint8_t *buf = qemu_blockalign(bs, zero_bytes);
                memset(buf, 0, zero_bytes);
                qemu_iovec_add(qiov, buf, zero_bytes);
                mcb->callbacks[i].free_buf = buf;
            }

            // Add the second request
            qemu_iovec_concat(qiov, reqs[i].qiov, reqs[i].qiov->size);

            reqs[outidx].nb_sectors += reqs[i].nb_sectors;
            reqs[outidx].qiov = qiov;

            mcb->callbacks[i].free_qiov = reqs[outidx].qiov;
        } else {
            outidx++;
            reqs[outidx].sector     = reqs[i].sector;
            reqs[outidx].nb_sectors = reqs[i].nb_sectors;
            reqs[outidx].qiov       = reqs[i].qiov;
        }
    }

    return outidx + 1;
}

/*
 * Submit multiple AIO write requests at once.
 *
 * On success, the function returns 0 and all requests in the reqs array have
 * been submitted. In error case this function returns -1, and any of the
 * requests may or may not be submitted yet. In particular, this means that the
 * callback will be called for some of the requests, for others it won't. The
 * caller must check the error field of the BlockRequest to wait for the right
 * callbacks (if error != 0, no callback will be called).
 *
 * The implementation may modify the contents of the reqs array, e.g. to merge
 * requests. However, the fields opaque and error are left unmodified as they
 * are used to signal failure for a single request to the caller.
 */
int bdrv_aio_multiwrite(BlockDriverState *bs, BlockRequest *reqs, int num_reqs)
{
    BlockDriverAIOCB *acb;
    MultiwriteCB *mcb;
    int i;

    if (num_reqs == 0) {
        return 0;
    }

    // Create MultiwriteCB structure
    mcb = qemu_mallocz(sizeof(*mcb) + num_reqs * sizeof(*mcb->callbacks));
    mcb->num_requests = 0;
    mcb->num_callbacks = num_reqs;

    for (i = 0; i < num_reqs; i++) {
        mcb->callbacks[i].cb = reqs[i].cb;
        mcb->callbacks[i].opaque = reqs[i].opaque;
    }

    // Check for mergable requests
    num_reqs = multiwrite_merge(bs, reqs, num_reqs, mcb);

    // Run the aio requests
    for (i = 0; i < num_reqs; i++) {
        acb = bdrv_aio_writev(bs, reqs[i].sector, reqs[i].qiov,
            reqs[i].nb_sectors, multiwrite_cb, mcb);

        if (acb == NULL) {
            // We can only fail the whole thing if no request has been
            // submitted yet. Otherwise we'll wait for the submitted AIOs to
            // complete and report the error in the callback.
            if (mcb->num_requests == 0) {
                reqs[i].error = EIO;
                goto fail;
            } else {
                mcb->error = EIO;
                break;
            }
        } else {
            mcb->num_requests++;
        }
    }

    return 0;

fail:
    free(mcb);
    return -1;
}

1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639
BlockDriverAIOCB *bdrv_aio_flush(BlockDriverState *bs,
        BlockDriverCompletionFunc *cb, void *opaque)
{
    BlockDriver *drv = bs->drv;

    if (!drv)
        return NULL;

    /*
     * Note that unlike bdrv_flush the driver is reponsible for flushing a
     * backing image if it exists.
     */
    return drv->bdrv_aio_flush(bs, cb, opaque);
}

B
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1640 1641
void bdrv_aio_cancel(BlockDriverAIOCB *acb)
{
1642
    acb->pool->cancel(acb);
B
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1643 1644
}

1645

B
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1646 1647 1648
/**************************************************************/
/* async block device emulation */

1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661
typedef struct BlockDriverAIOCBSync {
    BlockDriverAIOCB common;
    QEMUBH *bh;
    int ret;
    /* vector translation state */
    QEMUIOVector *qiov;
    uint8_t *bounce;
    int is_write;
} BlockDriverAIOCBSync;

static void bdrv_aio_cancel_em(BlockDriverAIOCB *blockacb)
{
    BlockDriverAIOCBSync *acb = (BlockDriverAIOCBSync *)blockacb;
1662
    qemu_bh_delete(acb->bh);
A
Avi Kivity 已提交
1663
    acb->bh = NULL;
1664 1665 1666 1667 1668 1669 1670 1671
    qemu_aio_release(acb);
}

static AIOPool bdrv_em_aio_pool = {
    .aiocb_size         = sizeof(BlockDriverAIOCBSync),
    .cancel             = bdrv_aio_cancel_em,
};

1672
static void bdrv_aio_bh_cb(void *opaque)
B
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1673
{
1674
    BlockDriverAIOCBSync *acb = opaque;
1675 1676 1677

    if (!acb->is_write)
        qemu_iovec_from_buffer(acb->qiov, acb->bounce, acb->qiov->size);
1678
    qemu_vfree(acb->bounce);
1679
    acb->common.cb(acb->common.opaque, acb->ret);
1680
    qemu_bh_delete(acb->bh);
A
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1681
    acb->bh = NULL;
1682
    qemu_aio_release(acb);
B
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1683
}
1684

1685 1686 1687 1688 1689 1690 1691 1692
static BlockDriverAIOCB *bdrv_aio_rw_vector(BlockDriverState *bs,
                                            int64_t sector_num,
                                            QEMUIOVector *qiov,
                                            int nb_sectors,
                                            BlockDriverCompletionFunc *cb,
                                            void *opaque,
                                            int is_write)

B
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1693
{
1694 1695
    BlockDriverAIOCBSync *acb;

1696
    acb = qemu_aio_get(&bdrv_em_aio_pool, bs, cb, opaque);
1697 1698
    acb->is_write = is_write;
    acb->qiov = qiov;
1699
    acb->bounce = qemu_blockalign(bs, qiov->size);
1700

1701 1702
    if (!acb->bh)
        acb->bh = qemu_bh_new(bdrv_aio_bh_cb, acb);
1703 1704 1705 1706 1707 1708 1709 1710

    if (is_write) {
        qemu_iovec_to_buffer(acb->qiov, acb->bounce);
        acb->ret = bdrv_write(bs, sector_num, acb->bounce, nb_sectors);
    } else {
        acb->ret = bdrv_read(bs, sector_num, acb->bounce, nb_sectors);
    }

1711
    qemu_bh_schedule(acb->bh);
1712

1713
    return &acb->common;
1714 1715
}

1716 1717
static BlockDriverAIOCB *bdrv_aio_readv_em(BlockDriverState *bs,
        int64_t sector_num, QEMUIOVector *qiov, int nb_sectors,
1718
        BlockDriverCompletionFunc *cb, void *opaque)
1719
{
1720 1721
    return bdrv_aio_rw_vector(bs, sector_num, qiov, nb_sectors, cb, opaque, 0);
}
B
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1722

1723 1724 1725 1726 1727
static BlockDriverAIOCB *bdrv_aio_writev_em(BlockDriverState *bs,
        int64_t sector_num, QEMUIOVector *qiov, int nb_sectors,
        BlockDriverCompletionFunc *cb, void *opaque)
{
    return bdrv_aio_rw_vector(bs, sector_num, qiov, nb_sectors, cb, opaque, 1);
1728 1729
}

1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748
static BlockDriverAIOCB *bdrv_aio_flush_em(BlockDriverState *bs,
        BlockDriverCompletionFunc *cb, void *opaque)
{
    BlockDriverAIOCBSync *acb;

    acb = qemu_aio_get(&bdrv_em_aio_pool, bs, cb, opaque);
    acb->is_write = 1; /* don't bounce in the completion hadler */
    acb->qiov = NULL;
    acb->bounce = NULL;
    acb->ret = 0;

    if (!acb->bh)
        acb->bh = qemu_bh_new(bdrv_aio_bh_cb, acb);

    bdrv_flush(bs);
    qemu_bh_schedule(acb->bh);
    return &acb->common;
}

B
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/**************************************************************/
/* sync block device emulation */
B
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B
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1752 1753 1754
static void bdrv_rw_em_cb(void *opaque, int ret)
{
    *(int *)opaque = ret;
B
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1755 1756
}

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#define NOT_DONE 0x7fffffff

1759
static int bdrv_read_em(BlockDriverState *bs, int64_t sector_num,
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                        uint8_t *buf, int nb_sectors)
P
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{
1762 1763
    int async_ret;
    BlockDriverAIOCB *acb;
1764 1765
    struct iovec iov;
    QEMUIOVector qiov;
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1767 1768
    async_context_push();

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    async_ret = NOT_DONE;
1770
    iov.iov_base = (void *)buf;
1771 1772 1773 1774
    iov.iov_len = nb_sectors * 512;
    qemu_iovec_init_external(&qiov, &iov, 1);
    acb = bdrv_aio_readv(bs, sector_num, &qiov, nb_sectors,
        bdrv_rw_em_cb, &async_ret);
1775 1776 1777 1778
    if (acb == NULL) {
        async_ret = -1;
        goto fail;
    }
1779

B
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    while (async_ret == NOT_DONE) {
        qemu_aio_wait();
    }
1783

1784 1785 1786

fail:
    async_context_pop();
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    return async_ret;
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}

B
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static int bdrv_write_em(BlockDriverState *bs, int64_t sector_num,
                         const uint8_t *buf, int nb_sectors)
{
1793 1794
    int async_ret;
    BlockDriverAIOCB *acb;
1795 1796
    struct iovec iov;
    QEMUIOVector qiov;
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1798 1799
    async_context_push();

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    async_ret = NOT_DONE;
1801 1802 1803 1804 1805
    iov.iov_base = (void *)buf;
    iov.iov_len = nb_sectors * 512;
    qemu_iovec_init_external(&qiov, &iov, 1);
    acb = bdrv_aio_writev(bs, sector_num, &qiov, nb_sectors,
        bdrv_rw_em_cb, &async_ret);
1806 1807 1808 1809
    if (acb == NULL) {
        async_ret = -1;
        goto fail;
    }
B
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    while (async_ret == NOT_DONE) {
        qemu_aio_wait();
    }
1813 1814 1815

fail:
    async_context_pop();
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    return async_ret;
}
B
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void bdrv_init(void)
{
1821
    module_call_init(MODULE_INIT_BLOCK);
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}
1823

1824 1825 1826 1827 1828 1829
void bdrv_init_with_whitelist(void)
{
    use_bdrv_whitelist = 1;
    bdrv_init();
}

1830 1831
void *qemu_aio_get(AIOPool *pool, BlockDriverState *bs,
                   BlockDriverCompletionFunc *cb, void *opaque)
1832 1833 1834
{
    BlockDriverAIOCB *acb;

1835 1836 1837
    if (pool->free_aiocb) {
        acb = pool->free_aiocb;
        pool->free_aiocb = acb->next;
1838
    } else {
1839 1840
        acb = qemu_mallocz(pool->aiocb_size);
        acb->pool = pool;
1841 1842 1843 1844 1845 1846 1847 1848 1849
    }
    acb->bs = bs;
    acb->cb = cb;
    acb->opaque = opaque;
    return acb;
}

void qemu_aio_release(void *p)
{
1850 1851 1852 1853
    BlockDriverAIOCB *acb = (BlockDriverAIOCB *)p;
    AIOPool *pool = acb->pool;
    acb->next = pool->free_aiocb;
    pool->free_aiocb = acb;
1854
}
B
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1855 1856 1857 1858 1859 1860 1861 1862 1863 1864 1865 1866 1867 1868 1869 1870 1871 1872 1873 1874 1875

/**************************************************************/
/* removable device support */

/**
 * Return TRUE if the media is present
 */
int bdrv_is_inserted(BlockDriverState *bs)
{
    BlockDriver *drv = bs->drv;
    int ret;
    if (!drv)
        return 0;
    if (!drv->bdrv_is_inserted)
        return 1;
    ret = drv->bdrv_is_inserted(bs);
    return ret;
}

/**
 * Return TRUE if the media changed since the last call to this
1876
 * function. It is currently only used for floppy disks
B
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1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895
 */
int bdrv_media_changed(BlockDriverState *bs)
{
    BlockDriver *drv = bs->drv;
    int ret;

    if (!drv || !drv->bdrv_media_changed)
        ret = -ENOTSUP;
    else
        ret = drv->bdrv_media_changed(bs);
    if (ret == -ENOTSUP)
        ret = bs->media_changed;
    bs->media_changed = 0;
    return ret;
}

/**
 * If eject_flag is TRUE, eject the media. Otherwise, close the tray
 */
1896
int bdrv_eject(BlockDriverState *bs, int eject_flag)
B
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{
    BlockDriver *drv = bs->drv;
    int ret;

1901 1902 1903 1904
    if (bs->locked) {
        return -EBUSY;
    }

B
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    if (!drv || !drv->bdrv_eject) {
        ret = -ENOTSUP;
    } else {
        ret = drv->bdrv_eject(bs, eject_flag);
    }
    if (ret == -ENOTSUP) {
        if (eject_flag)
            bdrv_close(bs);
1913
        ret = 0;
B
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    }
1915 1916

    return ret;
B
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1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936
}

int bdrv_is_locked(BlockDriverState *bs)
{
    return bs->locked;
}

/**
 * Lock or unlock the media (if it is locked, the user won't be able
 * to eject it manually).
 */
void bdrv_set_locked(BlockDriverState *bs, int locked)
{
    BlockDriver *drv = bs->drv;

    bs->locked = locked;
    if (drv && drv->bdrv_set_locked) {
        drv->bdrv_set_locked(bs, locked);
    }
}
1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947

/* needed for generic scsi interface */

int bdrv_ioctl(BlockDriverState *bs, unsigned long int req, void *buf)
{
    BlockDriver *drv = bs->drv;

    if (drv && drv->bdrv_ioctl)
        return drv->bdrv_ioctl(bs, req, buf);
    return -ENOTSUP;
}
1948

1949 1950 1951
BlockDriverAIOCB *bdrv_aio_ioctl(BlockDriverState *bs,
        unsigned long int req, void *buf,
        BlockDriverCompletionFunc *cb, void *opaque)
1952
{
1953
    BlockDriver *drv = bs->drv;
1954

1955 1956 1957
    if (drv && drv->bdrv_aio_ioctl)
        return drv->bdrv_aio_ioctl(bs, req, buf, cb, opaque);
    return NULL;
1958
}
1959

1960 1961


1962 1963 1964 1965
void *qemu_blockalign(BlockDriverState *bs, size_t size)
{
    return qemu_memalign((bs && bs->buffer_alignment) ? bs->buffer_alignment : 512, size);
}
1966 1967 1968 1969

void bdrv_set_dirty_tracking(BlockDriverState *bs, int enable)
{
    int64_t bitmap_size;
1970 1971 1972

    if (enable) {
        if (bs->dirty_tracking == 0) {
1973 1974
            int64_t i;
            uint8_t test;
1975

1976 1977 1978
            bitmap_size = (bdrv_getlength(bs) >> SECTOR_BITS);
            bitmap_size /= SECTORS_PER_DIRTY_CHUNK;
            bitmap_size++;
1979

1980
            bs->dirty_bitmap = qemu_mallocz(bitmap_size);
1981

1982 1983
            bs->dirty_tracking = enable;
            for(i = 0; i < bitmap_size; i++) test = bs->dirty_bitmap[i]; 
1984
        }
1985
    } else {
1986
        if (bs->dirty_tracking != 0) {
1987 1988
            qemu_free(bs->dirty_bitmap);
            bs->dirty_tracking = enable;
1989
        }
1990 1991 1992 1993 1994 1995
    }
}

int bdrv_get_dirty(BlockDriverState *bs, int64_t sector)
{
    int64_t chunk = sector / (int64_t)SECTORS_PER_DIRTY_CHUNK;
1996 1997 1998

    if (bs->dirty_bitmap != NULL &&
        (sector << SECTOR_BITS) <= bdrv_getlength(bs)) {
1999 2000 2001 2002 2003 2004
        return bs->dirty_bitmap[chunk];
    } else {
        return 0;
    }
}

2005 2006
void bdrv_reset_dirty(BlockDriverState *bs, int64_t cur_sector,
                      int nr_sectors)
2007 2008 2009 2010 2011 2012 2013 2014 2015
{
    set_dirty_bitmap(bs, cur_sector, nr_sectors, 0);
}

int bdrv_get_sectors_per_chunk(void)
{
    /* size must be 2^x */
    return SECTORS_PER_DIRTY_CHUNK;
}