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1
/*
2
 * Block driver for the VMDK format
3
 *
4
 * Copyright (c) 2004 Fabrice Bellard
5
 * Copyright (c) 2005 Filip Navara
6
 *
7
 * Permission is hereby granted, free of charge, to any person obtaining a copy
8
 * of this software and associated documentation files (the "Software"), to deal
9
 * in the Software without restriction, including without limitation the rights
10
 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
11
 * copies of the Software, and to permit persons to whom the Software is
12
 * furnished to do so, subject to the following conditions:
13
 *
14
 * The above copyright notice and this permission notice shall be included in
15
 * all copies or substantial portions of the Software.
16
 *
17
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
18
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
19
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
20
 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
21
 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
22
 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
23
 * THE SOFTWARE.
24
 */
25

    
26
#include "qemu-common.h"
27
#include "block_int.h"
28

    
29
#define VMDK3_MAGIC (('C' << 24) | ('O' << 16) | ('W' << 8) | 'D')
30
#define VMDK4_MAGIC (('K' << 24) | ('D' << 16) | ('M' << 8) | 'V')
31

    
32
typedef struct {
33
    uint32_t version;
34
    uint32_t flags;
35
    uint32_t disk_sectors;
36
    uint32_t granularity;
37
    uint32_t l1dir_offset;
38
    uint32_t l1dir_size;
39
    uint32_t file_sectors;
40
    uint32_t cylinders;
41
    uint32_t heads;
42
    uint32_t sectors_per_track;
43
} VMDK3Header;
44

    
45
typedef struct {
46
    uint32_t version;
47
    uint32_t flags;
48
    int64_t capacity;
49
    int64_t granularity;
50
    int64_t desc_offset;
51
    int64_t desc_size;
52
    int32_t num_gtes_per_gte;
53
    int64_t rgd_offset;
54
    int64_t gd_offset;
55
    int64_t grain_offset;
56
    char filler[1];
57
    char check_bytes[4];
58
} __attribute__((packed)) VMDK4Header;
59

    
60
#define L2_CACHE_SIZE 16
61

    
62
typedef struct BDRVVmdkState {
63
    BlockDriverState *hd;
64
    int64_t l1_table_offset;
65
    int64_t l1_backup_table_offset;
66
    uint32_t *l1_table;
67
    uint32_t *l1_backup_table;
68
    unsigned int l1_size;
69
    uint32_t l1_entry_sectors;
70

    
71
    unsigned int l2_size;
72
    uint32_t *l2_cache;
73
    uint32_t l2_cache_offsets[L2_CACHE_SIZE];
74
    uint32_t l2_cache_counts[L2_CACHE_SIZE];
75

    
76
    unsigned int cluster_sectors;
77
    uint32_t parent_cid;
78
    int is_parent;
79
} BDRVVmdkState;
80

    
81
typedef struct VmdkMetaData {
82
    uint32_t offset;
83
    unsigned int l1_index;
84
    unsigned int l2_index;
85
    unsigned int l2_offset;
86
    int valid;
87
} VmdkMetaData;
88

    
89
typedef struct ActiveBDRVState{
90
    BlockDriverState *hd;            // active image handler
91
    uint64_t cluster_offset;         // current write offset
92
}ActiveBDRVState;
93

    
94
static ActiveBDRVState activeBDRV;
95

    
96

    
97
static int vmdk_probe(const uint8_t *buf, int buf_size, const char *filename)
98
{
99
    uint32_t magic;
100

    
101
    if (buf_size < 4)
102
        return 0;
103
    magic = be32_to_cpu(*(uint32_t *)buf);
104
    if (magic == VMDK3_MAGIC ||
105
        magic == VMDK4_MAGIC)
106
        return 100;
107
    else
108
        return 0;
109
}
110

    
111
#define CHECK_CID 1
112

    
113
#define SECTOR_SIZE 512
114
#define DESC_SIZE 20*SECTOR_SIZE        // 20 sectors of 512 bytes each
115
#define HEADER_SIZE 512                           // first sector of 512 bytes
116

    
117
static uint32_t vmdk_read_cid(BlockDriverState *bs, int parent)
118
{
119
    BDRVVmdkState *s = bs->opaque;
120
    char desc[DESC_SIZE];
121
    uint32_t cid;
122
    char *p_name, *cid_str;
123
    size_t cid_str_size;
124

    
125
    /* the descriptor offset = 0x200 */
126
    if (bdrv_pread(s->hd, 0x200, desc, DESC_SIZE) != DESC_SIZE)
127
        return 0;
128

    
129
    if (parent) {
130
        cid_str = "parentCID";
131
        cid_str_size = sizeof("parentCID");
132
    } else {
133
        cid_str = "CID";
134
        cid_str_size = sizeof("CID");
135
    }
136

    
137
    if ((p_name = strstr(desc,cid_str)) != 0) {
138
        p_name += cid_str_size;
139
        sscanf(p_name,"%x",&cid);
140
    }
141

    
142
    return cid;
143
}
144

    
145
static int vmdk_write_cid(BlockDriverState *bs, uint32_t cid)
146
{
147
    BDRVVmdkState *s = bs->opaque;
148
    char desc[DESC_SIZE], tmp_desc[DESC_SIZE];
149
    char *p_name, *tmp_str;
150

    
151
    /* the descriptor offset = 0x200 */
152
    if (bdrv_pread(s->hd, 0x200, desc, DESC_SIZE) != DESC_SIZE)
153
        return -1;
154

    
155
    tmp_str = strstr(desc,"parentCID");
156
    strcpy(tmp_desc, tmp_str);
157
    if ((p_name = strstr(desc,"CID")) != 0) {
158
        p_name += sizeof("CID");
159
        sprintf(p_name,"%x\n",cid);
160
        strcat(desc,tmp_desc);
161
    }
162

    
163
    if (bdrv_pwrite(s->hd, 0x200, desc, DESC_SIZE) != DESC_SIZE)
164
        return -1;
165
    return 0;
166
}
167

    
168
static int vmdk_is_cid_valid(BlockDriverState *bs)
169
{
170
#ifdef CHECK_CID
171
    BDRVVmdkState *s = bs->opaque;
172
    BlockDriverState *p_bs = s->hd->backing_hd;
173
    uint32_t cur_pcid;
174

    
175
    if (p_bs) {
176
        cur_pcid = vmdk_read_cid(p_bs,0);
177
        if (s->parent_cid != cur_pcid)
178
            // CID not valid
179
            return 0;
180
    }
181
#endif
182
    // CID valid
183
    return 1;
184
}
185

    
186
static int vmdk_snapshot_create(const char *filename, const char *backing_file)
187
{
188
    int snp_fd, p_fd;
189
    uint32_t p_cid;
190
    char *p_name, *gd_buf, *rgd_buf;
191
    const char *real_filename, *temp_str;
192
    VMDK4Header header;
193
    uint32_t gde_entries, gd_size;
194
    int64_t gd_offset, rgd_offset, capacity, gt_size;
195
    char p_desc[DESC_SIZE], s_desc[DESC_SIZE], hdr[HEADER_SIZE];
196
    char *desc_template =
197
    "# Disk DescriptorFile\n"
198
    "version=1\n"
199
    "CID=%x\n"
200
    "parentCID=%x\n"
201
    "createType=\"monolithicSparse\"\n"
202
    "parentFileNameHint=\"%s\"\n"
203
    "\n"
204
    "# Extent description\n"
205
    "RW %lu SPARSE \"%s\"\n"
206
    "\n"
207
    "# The Disk Data Base \n"
208
    "#DDB\n"
209
    "\n";
210

    
211
    snp_fd = open(filename, O_RDWR | O_CREAT | O_TRUNC | O_BINARY | O_LARGEFILE, 0644);
212
    if (snp_fd < 0)
213
        return -1;
214
    p_fd = open(backing_file, O_RDONLY | O_BINARY | O_LARGEFILE);
215
    if (p_fd < 0) {
216
        close(snp_fd);
217
        return -1;
218
    }
219

    
220
    /* read the header */
221
    if (lseek(p_fd, 0x0, SEEK_SET) == -1)
222
        goto fail;
223
    if (read(p_fd, hdr, HEADER_SIZE) != HEADER_SIZE)
224
        goto fail;
225

    
226
    /* write the header */
227
    if (lseek(snp_fd, 0x0, SEEK_SET) == -1)
228
        goto fail;
229
    if (write(snp_fd, hdr, HEADER_SIZE) == -1)
230
        goto fail;
231

    
232
    memset(&header, 0, sizeof(header));
233
    memcpy(&header,&hdr[4], sizeof(header)); // skip the VMDK4_MAGIC
234

    
235
    ftruncate(snp_fd, header.grain_offset << 9);
236
    /* the descriptor offset = 0x200 */
237
    if (lseek(p_fd, 0x200, SEEK_SET) == -1)
238
        goto fail;
239
    if (read(p_fd, p_desc, DESC_SIZE) != DESC_SIZE)
240
        goto fail;
241

    
242
    if ((p_name = strstr(p_desc,"CID")) != 0) {
243
        p_name += sizeof("CID");
244
        sscanf(p_name,"%x",&p_cid);
245
    }
246

    
247
    real_filename = filename;
248
    if ((temp_str = strrchr(real_filename, '\\')) != NULL)
249
        real_filename = temp_str + 1;
250
    if ((temp_str = strrchr(real_filename, '/')) != NULL)
251
        real_filename = temp_str + 1;
252
    if ((temp_str = strrchr(real_filename, ':')) != NULL)
253
        real_filename = temp_str + 1;
254

    
255
    sprintf(s_desc, desc_template, p_cid, p_cid, backing_file
256
            , (uint32_t)header.capacity, real_filename);
257

    
258
    /* write the descriptor */
259
    if (lseek(snp_fd, 0x200, SEEK_SET) == -1)
260
        goto fail;
261
    if (write(snp_fd, s_desc, strlen(s_desc)) == -1)
262
        goto fail;
263

    
264
    gd_offset = header.gd_offset * SECTOR_SIZE;     // offset of GD table
265
    rgd_offset = header.rgd_offset * SECTOR_SIZE;   // offset of RGD table
266
    capacity = header.capacity * SECTOR_SIZE;       // Extent size
267
    /*
268
     * Each GDE span 32M disk, means:
269
     * 512 GTE per GT, each GTE points to grain
270
     */
271
    gt_size = (int64_t)header.num_gtes_per_gte * header.granularity * SECTOR_SIZE;
272
    if (!gt_size)
273
        goto fail;
274
    gde_entries = (uint32_t)(capacity / gt_size);  // number of gde/rgde
275
    gd_size = gde_entries * sizeof(uint32_t);
276

    
277
    /* write RGD */
278
    rgd_buf = qemu_malloc(gd_size);
279
    if (!rgd_buf)
280
        goto fail;
281
    if (lseek(p_fd, rgd_offset, SEEK_SET) == -1)
282
        goto fail_rgd;
283
    if (read(p_fd, rgd_buf, gd_size) != gd_size)
284
        goto fail_rgd;
285
    if (lseek(snp_fd, rgd_offset, SEEK_SET) == -1)
286
        goto fail_rgd;
287
    if (write(snp_fd, rgd_buf, gd_size) == -1)
288
        goto fail_rgd;
289
    qemu_free(rgd_buf);
290

    
291
    /* write GD */
292
    gd_buf = qemu_malloc(gd_size);
293
    if (!gd_buf)
294
        goto fail_rgd;
295
    if (lseek(p_fd, gd_offset, SEEK_SET) == -1)
296
        goto fail_gd;
297
    if (read(p_fd, gd_buf, gd_size) != gd_size)
298
        goto fail_gd;
299
    if (lseek(snp_fd, gd_offset, SEEK_SET) == -1)
300
        goto fail_gd;
301
    if (write(snp_fd, gd_buf, gd_size) == -1)
302
        goto fail_gd;
303
    qemu_free(gd_buf);
304

    
305
    close(p_fd);
306
    close(snp_fd);
307
    return 0;
308

    
309
    fail_gd:
310
    qemu_free(gd_buf);
311
    fail_rgd:
312
    qemu_free(rgd_buf);
313
    fail:
314
    close(p_fd);
315
    close(snp_fd);
316
    return -1;
317
}
318

    
319
static void vmdk_parent_close(BlockDriverState *bs)
320
{
321
    if (bs->backing_hd)
322
        bdrv_close(bs->backing_hd);
323
}
324

    
325
int parent_open = 0;
326
static int vmdk_parent_open(BlockDriverState *bs, const char * filename)
327
{
328
    BDRVVmdkState *s = bs->opaque;
329
    char *p_name;
330
    char desc[DESC_SIZE];
331
    char parent_img_name[1024];
332

    
333
    /* the descriptor offset = 0x200 */
334
    if (bdrv_pread(s->hd, 0x200, desc, DESC_SIZE) != DESC_SIZE)
335
        return -1;
336

    
337
    if ((p_name = strstr(desc,"parentFileNameHint")) != 0) {
338
        char *end_name;
339
        struct stat file_buf;
340

    
341
        p_name += sizeof("parentFileNameHint") + 1;
342
        if ((end_name = strchr(p_name,'\"')) == 0)
343
            return -1;
344
        if ((end_name - p_name) > sizeof (s->hd->backing_file) - 1)
345
            return -1;
346

    
347
        strncpy(s->hd->backing_file, p_name, end_name - p_name);
348
        if (stat(s->hd->backing_file, &file_buf) != 0) {
349
            path_combine(parent_img_name, sizeof(parent_img_name),
350
                         filename, s->hd->backing_file);
351
        } else {
352
            strcpy(parent_img_name, s->hd->backing_file);
353
        }
354

    
355
        s->hd->backing_hd = bdrv_new("");
356
        if (!s->hd->backing_hd) {
357
            failure:
358
            bdrv_close(s->hd);
359
            return -1;
360
        }
361
        parent_open = 1;
362
        if (bdrv_open(s->hd->backing_hd, parent_img_name, BDRV_O_RDONLY) < 0)
363
            goto failure;
364
        parent_open = 0;
365
    }
366

    
367
    return 0;
368
}
369

    
370
static int vmdk_open(BlockDriverState *bs, const char *filename, int flags)
371
{
372
    BDRVVmdkState *s = bs->opaque;
373
    uint32_t magic;
374
    int l1_size, i, ret;
375

    
376
    if (parent_open)
377
        // Parent must be opened as RO.
378
        flags = BDRV_O_RDONLY;
379

    
380
    ret = bdrv_file_open(&s->hd, filename, flags);
381
    if (ret < 0)
382
        return ret;
383
    if (bdrv_pread(s->hd, 0, &magic, sizeof(magic)) != sizeof(magic))
384
        goto fail;
385

    
386
    magic = be32_to_cpu(magic);
387
    if (magic == VMDK3_MAGIC) {
388
        VMDK3Header header;
389

    
390
        if (bdrv_pread(s->hd, sizeof(magic), &header, sizeof(header)) != sizeof(header))
391
            goto fail;
392
        s->cluster_sectors = le32_to_cpu(header.granularity);
393
        s->l2_size = 1 << 9;
394
        s->l1_size = 1 << 6;
395
        bs->total_sectors = le32_to_cpu(header.disk_sectors);
396
        s->l1_table_offset = le32_to_cpu(header.l1dir_offset) << 9;
397
        s->l1_backup_table_offset = 0;
398
        s->l1_entry_sectors = s->l2_size * s->cluster_sectors;
399
    } else if (magic == VMDK4_MAGIC) {
400
        VMDK4Header header;
401

    
402
        if (bdrv_pread(s->hd, sizeof(magic), &header, sizeof(header)) != sizeof(header))
403
            goto fail;
404
        bs->total_sectors = le64_to_cpu(header.capacity);
405
        s->cluster_sectors = le64_to_cpu(header.granularity);
406
        s->l2_size = le32_to_cpu(header.num_gtes_per_gte);
407
        s->l1_entry_sectors = s->l2_size * s->cluster_sectors;
408
        if (s->l1_entry_sectors <= 0)
409
            goto fail;
410
        s->l1_size = (bs->total_sectors + s->l1_entry_sectors - 1)
411
            / s->l1_entry_sectors;
412
        s->l1_table_offset = le64_to_cpu(header.rgd_offset) << 9;
413
        s->l1_backup_table_offset = le64_to_cpu(header.gd_offset) << 9;
414

    
415
        if (parent_open)
416
            s->is_parent = 1;
417
        else
418
            s->is_parent = 0;
419

    
420
        // try to open parent images, if exist
421
        if (vmdk_parent_open(bs, filename) != 0)
422
            goto fail;
423
        // write the CID once after the image creation
424
        s->parent_cid = vmdk_read_cid(bs,1);
425
    } else {
426
        goto fail;
427
    }
428

    
429
    /* read the L1 table */
430
    l1_size = s->l1_size * sizeof(uint32_t);
431
    s->l1_table = qemu_malloc(l1_size);
432
    if (!s->l1_table)
433
        goto fail;
434
    if (bdrv_pread(s->hd, s->l1_table_offset, s->l1_table, l1_size) != l1_size)
435
        goto fail;
436
    for(i = 0; i < s->l1_size; i++) {
437
        le32_to_cpus(&s->l1_table[i]);
438
    }
439

    
440
    if (s->l1_backup_table_offset) {
441
        s->l1_backup_table = qemu_malloc(l1_size);
442
        if (!s->l1_backup_table)
443
            goto fail;
444
        if (bdrv_pread(s->hd, s->l1_backup_table_offset, s->l1_backup_table, l1_size) != l1_size)
445
            goto fail;
446
        for(i = 0; i < s->l1_size; i++) {
447
            le32_to_cpus(&s->l1_backup_table[i]);
448
        }
449
    }
450

    
451
    s->l2_cache = qemu_malloc(s->l2_size * L2_CACHE_SIZE * sizeof(uint32_t));
452
    if (!s->l2_cache)
453
        goto fail;
454
    return 0;
455
 fail:
456
    qemu_free(s->l1_backup_table);
457
    qemu_free(s->l1_table);
458
    qemu_free(s->l2_cache);
459
    bdrv_delete(s->hd);
460
    return -1;
461
}
462

    
463
static uint64_t get_cluster_offset(BlockDriverState *bs, VmdkMetaData *m_data,
464
                                   uint64_t offset, int allocate);
465

    
466
static int get_whole_cluster(BlockDriverState *bs, uint64_t cluster_offset,
467
                             uint64_t offset, int allocate)
468
{
469
    uint64_t parent_cluster_offset;
470
    BDRVVmdkState *s = bs->opaque;
471
    uint8_t  whole_grain[s->cluster_sectors*512];        // 128 sectors * 512 bytes each = grain size 64KB
472

    
473
    // we will be here if it's first write on non-exist grain(cluster).
474
    // try to read from parent image, if exist
475
    if (s->hd->backing_hd) {
476
        BDRVVmdkState *ps = s->hd->backing_hd->opaque;
477

    
478
        if (!vmdk_is_cid_valid(bs))
479
            return -1;
480

    
481
        parent_cluster_offset = get_cluster_offset(s->hd->backing_hd, NULL, offset, allocate);
482

    
483
        if (parent_cluster_offset) {
484
            BDRVVmdkState *act_s = activeBDRV.hd->opaque;
485

    
486
            if (bdrv_pread(ps->hd, parent_cluster_offset, whole_grain, ps->cluster_sectors*512) != ps->cluster_sectors*512)
487
                return -1;
488

    
489
            //Write grain only into the active image
490
            if (bdrv_pwrite(act_s->hd, activeBDRV.cluster_offset << 9, whole_grain, sizeof(whole_grain)) != sizeof(whole_grain))
491
                return -1;
492
        }
493
    }
494
    return 0;
495
}
496

    
497
static int vmdk_L2update(BlockDriverState *bs, VmdkMetaData *m_data)
498
{
499
    BDRVVmdkState *s = bs->opaque;
500

    
501
    /* update L2 table */
502
    if (bdrv_pwrite(s->hd, ((int64_t)m_data->l2_offset * 512) + (m_data->l2_index * sizeof(m_data->offset)),
503
                    &(m_data->offset), sizeof(m_data->offset)) != sizeof(m_data->offset))
504
        return -1;
505
    /* update backup L2 table */
506
    if (s->l1_backup_table_offset != 0) {
507
        m_data->l2_offset = s->l1_backup_table[m_data->l1_index];
508
        if (bdrv_pwrite(s->hd, ((int64_t)m_data->l2_offset * 512) + (m_data->l2_index * sizeof(m_data->offset)),
509
                        &(m_data->offset), sizeof(m_data->offset)) != sizeof(m_data->offset))
510
            return -1;
511
    }
512

    
513
    return 0;
514
}
515

    
516
static uint64_t get_cluster_offset(BlockDriverState *bs, VmdkMetaData *m_data,
517
                                   uint64_t offset, int allocate)
518
{
519
    BDRVVmdkState *s = bs->opaque;
520
    unsigned int l1_index, l2_offset, l2_index;
521
    int min_index, i, j;
522
    uint32_t min_count, *l2_table, tmp = 0;
523
    uint64_t cluster_offset;
524

    
525
    if (m_data)
526
        m_data->valid = 0;
527

    
528
    l1_index = (offset >> 9) / s->l1_entry_sectors;
529
    if (l1_index >= s->l1_size)
530
        return 0;
531
    l2_offset = s->l1_table[l1_index];
532
    if (!l2_offset)
533
        return 0;
534
    for(i = 0; i < L2_CACHE_SIZE; i++) {
535
        if (l2_offset == s->l2_cache_offsets[i]) {
536
            /* increment the hit count */
537
            if (++s->l2_cache_counts[i] == 0xffffffff) {
538
                for(j = 0; j < L2_CACHE_SIZE; j++) {
539
                    s->l2_cache_counts[j] >>= 1;
540
                }
541
            }
542
            l2_table = s->l2_cache + (i * s->l2_size);
543
            goto found;
544
        }
545
    }
546
    /* not found: load a new entry in the least used one */
547
    min_index = 0;
548
    min_count = 0xffffffff;
549
    for(i = 0; i < L2_CACHE_SIZE; i++) {
550
        if (s->l2_cache_counts[i] < min_count) {
551
            min_count = s->l2_cache_counts[i];
552
            min_index = i;
553
        }
554
    }
555
    l2_table = s->l2_cache + (min_index * s->l2_size);
556
    if (bdrv_pread(s->hd, (int64_t)l2_offset * 512, l2_table, s->l2_size * sizeof(uint32_t)) !=
557
                                                                        s->l2_size * sizeof(uint32_t))
558
        return 0;
559

    
560
    s->l2_cache_offsets[min_index] = l2_offset;
561
    s->l2_cache_counts[min_index] = 1;
562
 found:
563
    l2_index = ((offset >> 9) / s->cluster_sectors) % s->l2_size;
564
    cluster_offset = le32_to_cpu(l2_table[l2_index]);
565

    
566
    if (!cluster_offset) {
567
        if (!allocate)
568
            return 0;
569
        // Avoid the L2 tables update for the images that have snapshots.
570
        if (!s->is_parent) {
571
            cluster_offset = bdrv_getlength(s->hd);
572
            bdrv_truncate(s->hd, cluster_offset + (s->cluster_sectors << 9));
573

    
574
            cluster_offset >>= 9;
575
            tmp = cpu_to_le32(cluster_offset);
576
            l2_table[l2_index] = tmp;
577
            // Save the active image state
578
            activeBDRV.cluster_offset = cluster_offset;
579
            activeBDRV.hd = bs;
580
        }
581
        /* First of all we write grain itself, to avoid race condition
582
         * that may to corrupt the image.
583
         * This problem may occur because of insufficient space on host disk
584
         * or inappropriate VM shutdown.
585
         */
586
        if (get_whole_cluster(bs, cluster_offset, offset, allocate) == -1)
587
            return 0;
588

    
589
        if (m_data) {
590
            m_data->offset = tmp;
591
            m_data->l1_index = l1_index;
592
            m_data->l2_index = l2_index;
593
            m_data->l2_offset = l2_offset;
594
            m_data->valid = 1;
595
        }
596
    }
597
    cluster_offset <<= 9;
598
    return cluster_offset;
599
}
600

    
601
static int vmdk_is_allocated(BlockDriverState *bs, int64_t sector_num,
602
                             int nb_sectors, int *pnum)
603
{
604
    BDRVVmdkState *s = bs->opaque;
605
    int index_in_cluster, n;
606
    uint64_t cluster_offset;
607

    
608
    cluster_offset = get_cluster_offset(bs, NULL, sector_num << 9, 0);
609
    index_in_cluster = sector_num % s->cluster_sectors;
610
    n = s->cluster_sectors - index_in_cluster;
611
    if (n > nb_sectors)
612
        n = nb_sectors;
613
    *pnum = n;
614
    return (cluster_offset != 0);
615
}
616

    
617
static int vmdk_read(BlockDriverState *bs, int64_t sector_num,
618
                    uint8_t *buf, int nb_sectors)
619
{
620
    BDRVVmdkState *s = bs->opaque;
621
    int index_in_cluster, n, ret;
622
    uint64_t cluster_offset;
623

    
624
    while (nb_sectors > 0) {
625
        cluster_offset = get_cluster_offset(bs, NULL, sector_num << 9, 0);
626
        index_in_cluster = sector_num % s->cluster_sectors;
627
        n = s->cluster_sectors - index_in_cluster;
628
        if (n > nb_sectors)
629
            n = nb_sectors;
630
        if (!cluster_offset) {
631
            // try to read from parent image, if exist
632
            if (s->hd->backing_hd) {
633
                if (!vmdk_is_cid_valid(bs))
634
                    return -1;
635
                ret = bdrv_read(s->hd->backing_hd, sector_num, buf, n);
636
                if (ret < 0)
637
                    return -1;
638
            } else {
639
                memset(buf, 0, 512 * n);
640
            }
641
        } else {
642
            if(bdrv_pread(s->hd, cluster_offset + index_in_cluster * 512, buf, n * 512) != n * 512)
643
                return -1;
644
        }
645
        nb_sectors -= n;
646
        sector_num += n;
647
        buf += n * 512;
648
    }
649
    return 0;
650
}
651

    
652
static int vmdk_write(BlockDriverState *bs, int64_t sector_num,
653
                     const uint8_t *buf, int nb_sectors)
654
{
655
    BDRVVmdkState *s = bs->opaque;
656
    VmdkMetaData m_data;
657
    int index_in_cluster, n;
658
    uint64_t cluster_offset;
659
    static int cid_update = 0;
660

    
661
    if (sector_num > bs->total_sectors) {
662
        fprintf(stderr,
663
                "(VMDK) Wrong offset: sector_num=0x%" PRIx64
664
                " total_sectors=0x%" PRIx64 "\n",
665
                sector_num, bs->total_sectors);
666
        return -1;
667
    }
668

    
669
    while (nb_sectors > 0) {
670
        index_in_cluster = sector_num & (s->cluster_sectors - 1);
671
        n = s->cluster_sectors - index_in_cluster;
672
        if (n > nb_sectors)
673
            n = nb_sectors;
674
        cluster_offset = get_cluster_offset(bs, &m_data, sector_num << 9, 1);
675
        if (!cluster_offset)
676
            return -1;
677

    
678
        if (bdrv_pwrite(s->hd, cluster_offset + index_in_cluster * 512, buf, n * 512) != n * 512)
679
            return -1;
680
        if (m_data.valid) {
681
            /* update L2 tables */
682
            if (vmdk_L2update(bs, &m_data) == -1)
683
                return -1;
684
        }
685
        nb_sectors -= n;
686
        sector_num += n;
687
        buf += n * 512;
688

    
689
        // update CID on the first write every time the virtual disk is opened
690
        if (!cid_update) {
691
            vmdk_write_cid(bs, time(NULL));
692
            cid_update++;
693
        }
694
    }
695
    return 0;
696
}
697

    
698
static int vmdk_create(const char *filename, int64_t total_size,
699
                       const char *backing_file, int flags)
700
{
701
    int fd, i;
702
    VMDK4Header header;
703
    uint32_t tmp, magic, grains, gd_size, gt_size, gt_count;
704
    char *desc_template =
705
        "# Disk DescriptorFile\n"
706
        "version=1\n"
707
        "CID=%x\n"
708
        "parentCID=ffffffff\n"
709
        "createType=\"monolithicSparse\"\n"
710
        "\n"
711
        "# Extent description\n"
712
        "RW %lu SPARSE \"%s\"\n"
713
        "\n"
714
        "# The Disk Data Base \n"
715
        "#DDB\n"
716
        "\n"
717
        "ddb.virtualHWVersion = \"%d\"\n"
718
        "ddb.geometry.cylinders = \"%lu\"\n"
719
        "ddb.geometry.heads = \"16\"\n"
720
        "ddb.geometry.sectors = \"63\"\n"
721
        "ddb.adapterType = \"ide\"\n";
722
    char desc[1024];
723
    const char *real_filename, *temp_str;
724

    
725
    /* XXX: add support for backing file */
726
    if (backing_file) {
727
        return vmdk_snapshot_create(filename, backing_file);
728
    }
729

    
730
    fd = open(filename, O_WRONLY | O_CREAT | O_TRUNC | O_BINARY | O_LARGEFILE,
731
              0644);
732
    if (fd < 0)
733
        return -1;
734
    magic = cpu_to_be32(VMDK4_MAGIC);
735
    memset(&header, 0, sizeof(header));
736
    header.version = cpu_to_le32(1);
737
    header.flags = cpu_to_le32(3); /* ?? */
738
    header.capacity = cpu_to_le64(total_size);
739
    header.granularity = cpu_to_le64(128);
740
    header.num_gtes_per_gte = cpu_to_le32(512);
741

    
742
    grains = (total_size + header.granularity - 1) / header.granularity;
743
    gt_size = ((header.num_gtes_per_gte * sizeof(uint32_t)) + 511) >> 9;
744
    gt_count = (grains + header.num_gtes_per_gte - 1) / header.num_gtes_per_gte;
745
    gd_size = (gt_count * sizeof(uint32_t) + 511) >> 9;
746

    
747
    header.desc_offset = 1;
748
    header.desc_size = 20;
749
    header.rgd_offset = header.desc_offset + header.desc_size;
750
    header.gd_offset = header.rgd_offset + gd_size + (gt_size * gt_count);
751
    header.grain_offset =
752
       ((header.gd_offset + gd_size + (gt_size * gt_count) +
753
         header.granularity - 1) / header.granularity) *
754
        header.granularity;
755

    
756
    header.desc_offset = cpu_to_le64(header.desc_offset);
757
    header.desc_size = cpu_to_le64(header.desc_size);
758
    header.rgd_offset = cpu_to_le64(header.rgd_offset);
759
    header.gd_offset = cpu_to_le64(header.gd_offset);
760
    header.grain_offset = cpu_to_le64(header.grain_offset);
761

    
762
    header.check_bytes[0] = 0xa;
763
    header.check_bytes[1] = 0x20;
764
    header.check_bytes[2] = 0xd;
765
    header.check_bytes[3] = 0xa;
766

    
767
    /* write all the data */
768
    write(fd, &magic, sizeof(magic));
769
    write(fd, &header, sizeof(header));
770

    
771
    ftruncate(fd, header.grain_offset << 9);
772

    
773
    /* write grain directory */
774
    lseek(fd, le64_to_cpu(header.rgd_offset) << 9, SEEK_SET);
775
    for (i = 0, tmp = header.rgd_offset + gd_size;
776
         i < gt_count; i++, tmp += gt_size)
777
        write(fd, &tmp, sizeof(tmp));
778

    
779
    /* write backup grain directory */
780
    lseek(fd, le64_to_cpu(header.gd_offset) << 9, SEEK_SET);
781
    for (i = 0, tmp = header.gd_offset + gd_size;
782
         i < gt_count; i++, tmp += gt_size)
783
        write(fd, &tmp, sizeof(tmp));
784

    
785
    /* compose the descriptor */
786
    real_filename = filename;
787
    if ((temp_str = strrchr(real_filename, '\\')) != NULL)
788
        real_filename = temp_str + 1;
789
    if ((temp_str = strrchr(real_filename, '/')) != NULL)
790
        real_filename = temp_str + 1;
791
    if ((temp_str = strrchr(real_filename, ':')) != NULL)
792
        real_filename = temp_str + 1;
793
    sprintf(desc, desc_template, time(NULL), (unsigned long)total_size,
794
            real_filename, (flags & BLOCK_FLAG_COMPAT6 ? 6 : 4), total_size / (63 * 16));
795

    
796
    /* write the descriptor */
797
    lseek(fd, le64_to_cpu(header.desc_offset) << 9, SEEK_SET);
798
    write(fd, desc, strlen(desc));
799

    
800
    close(fd);
801
    return 0;
802
}
803

    
804
static void vmdk_close(BlockDriverState *bs)
805
{
806
    BDRVVmdkState *s = bs->opaque;
807

    
808
    qemu_free(s->l1_table);
809
    qemu_free(s->l2_cache);
810
    // try to close parent image, if exist
811
    vmdk_parent_close(s->hd);
812
    bdrv_delete(s->hd);
813
}
814

    
815
static void vmdk_flush(BlockDriverState *bs)
816
{
817
    BDRVVmdkState *s = bs->opaque;
818
    bdrv_flush(s->hd);
819
}
820

    
821
BlockDriver bdrv_vmdk = {
822
    "vmdk",
823
    sizeof(BDRVVmdkState),
824
    vmdk_probe,
825
    vmdk_open,
826
    vmdk_read,
827
    vmdk_write,
828
    vmdk_close,
829
    vmdk_create,
830
    vmdk_flush,
831
    vmdk_is_allocated,
832
};