VirtualBox

source: vbox/trunk/src/VBox/Storage/VMDK.cpp@ 36512

Last change on this file since 36512 was 36173, checked in by vboxsync, 14 years ago

Storage/VMDK: fix small and harmless UUID issue when "adopting" an image created by VMware

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1/* $Id: VMDK.cpp 36173 2011-03-04 13:36:54Z vboxsync $ */
2/** @file
3 * VMDK disk image, core code.
4 */
5
6/*
7 * Copyright (C) 2006-2010 Oracle Corporation
8 *
9 * This file is part of VirtualBox Open Source Edition (OSE), as
10 * available from http://www.virtualbox.org. This file is free software;
11 * you can redistribute it and/or modify it under the terms of the GNU
12 * General Public License (GPL) as published by the Free Software
13 * Foundation, in version 2 as it comes in the "COPYING" file of the
14 * VirtualBox OSE distribution. VirtualBox OSE is distributed in the
15 * hope that it will be useful, but WITHOUT ANY WARRANTY of any kind.
16 */
17
18/*******************************************************************************
19* Header Files *
20*******************************************************************************/
21#define LOG_GROUP LOG_GROUP_VD_VMDK
22#include <VBox/vd-plugin.h>
23#include <VBox/err.h>
24
25#include <VBox/log.h>
26#include <iprt/assert.h>
27#include <iprt/alloc.h>
28#include <iprt/uuid.h>
29#include <iprt/path.h>
30#include <iprt/string.h>
31#include <iprt/rand.h>
32#include <iprt/zip.h>
33#include <iprt/asm.h>
34
35
36/*******************************************************************************
37* Constants And Macros, Structures and Typedefs *
38*******************************************************************************/
39
40/** Maximum encoded string size (including NUL) we allow for VMDK images.
41 * Deliberately not set high to avoid running out of descriptor space. */
42#define VMDK_ENCODED_COMMENT_MAX 1024
43
44/** VMDK descriptor DDB entry for PCHS cylinders. */
45#define VMDK_DDB_GEO_PCHS_CYLINDERS "ddb.geometry.cylinders"
46
47/** VMDK descriptor DDB entry for PCHS heads. */
48#define VMDK_DDB_GEO_PCHS_HEADS "ddb.geometry.heads"
49
50/** VMDK descriptor DDB entry for PCHS sectors. */
51#define VMDK_DDB_GEO_PCHS_SECTORS "ddb.geometry.sectors"
52
53/** VMDK descriptor DDB entry for LCHS cylinders. */
54#define VMDK_DDB_GEO_LCHS_CYLINDERS "ddb.geometry.biosCylinders"
55
56/** VMDK descriptor DDB entry for LCHS heads. */
57#define VMDK_DDB_GEO_LCHS_HEADS "ddb.geometry.biosHeads"
58
59/** VMDK descriptor DDB entry for LCHS sectors. */
60#define VMDK_DDB_GEO_LCHS_SECTORS "ddb.geometry.biosSectors"
61
62/** VMDK descriptor DDB entry for image UUID. */
63#define VMDK_DDB_IMAGE_UUID "ddb.uuid.image"
64
65/** VMDK descriptor DDB entry for image modification UUID. */
66#define VMDK_DDB_MODIFICATION_UUID "ddb.uuid.modification"
67
68/** VMDK descriptor DDB entry for parent image UUID. */
69#define VMDK_DDB_PARENT_UUID "ddb.uuid.parent"
70
71/** VMDK descriptor DDB entry for parent image modification UUID. */
72#define VMDK_DDB_PARENT_MODIFICATION_UUID "ddb.uuid.parentmodification"
73
74/** No compression for streamOptimized files. */
75#define VMDK_COMPRESSION_NONE 0
76
77/** Deflate compression for streamOptimized files. */
78#define VMDK_COMPRESSION_DEFLATE 1
79
80/** Marker that the actual GD value is stored in the footer. */
81#define VMDK_GD_AT_END 0xffffffffffffffffULL
82
83/** Marker for end-of-stream in streamOptimized images. */
84#define VMDK_MARKER_EOS 0
85
86/** Marker for grain table block in streamOptimized images. */
87#define VMDK_MARKER_GT 1
88
89/** Marker for grain directory block in streamOptimized images. */
90#define VMDK_MARKER_GD 2
91
92/** Marker for footer in streamOptimized images. */
93#define VMDK_MARKER_FOOTER 3
94
95/** Dummy marker for "don't check the marker value". */
96#define VMDK_MARKER_IGNORE 0xffffffffU
97
98/**
99 * Magic number for hosted images created by VMware Workstation 4, VMware
100 * Workstation 5, VMware Server or VMware Player. Not necessarily sparse.
101 */
102#define VMDK_SPARSE_MAGICNUMBER 0x564d444b /* 'V' 'M' 'D' 'K' */
103
104/**
105 * VMDK hosted binary extent header. The "Sparse" is a total misnomer, as
106 * this header is also used for monolithic flat images.
107 */
108#pragma pack(1)
109typedef struct SparseExtentHeader
110{
111 uint32_t magicNumber;
112 uint32_t version;
113 uint32_t flags;
114 uint64_t capacity;
115 uint64_t grainSize;
116 uint64_t descriptorOffset;
117 uint64_t descriptorSize;
118 uint32_t numGTEsPerGT;
119 uint64_t rgdOffset;
120 uint64_t gdOffset;
121 uint64_t overHead;
122 bool uncleanShutdown;
123 char singleEndLineChar;
124 char nonEndLineChar;
125 char doubleEndLineChar1;
126 char doubleEndLineChar2;
127 uint16_t compressAlgorithm;
128 uint8_t pad[433];
129} SparseExtentHeader;
130#pragma pack()
131
132/** VMDK capacity for a single chunk when 2G splitting is turned on. Should be
133 * divisible by the default grain size (64K) */
134#define VMDK_2G_SPLIT_SIZE (2047 * 1024 * 1024)
135
136/** VMDK streamOptimized file format marker. The type field may or may not
137 * be actually valid, but there's always data to read there. */
138#pragma pack(1)
139typedef struct VMDKMARKER
140{
141 uint64_t uSector;
142 uint32_t cbSize;
143 uint32_t uType;
144} VMDKMARKER, *PVMDKMARKER;
145#pragma pack()
146
147
148#ifdef VBOX_WITH_VMDK_ESX
149
150/** @todo the ESX code is not tested, not used, and lacks error messages. */
151
152/**
153 * Magic number for images created by VMware GSX Server 3 or ESX Server 3.
154 */
155#define VMDK_ESX_SPARSE_MAGICNUMBER 0x44574f43 /* 'C' 'O' 'W' 'D' */
156
157#pragma pack(1)
158typedef struct COWDisk_Header
159{
160 uint32_t magicNumber;
161 uint32_t version;
162 uint32_t flags;
163 uint32_t numSectors;
164 uint32_t grainSize;
165 uint32_t gdOffset;
166 uint32_t numGDEntries;
167 uint32_t freeSector;
168 /* The spec incompletely documents quite a few further fields, but states
169 * that they are unused by the current format. Replace them by padding. */
170 char reserved1[1604];
171 uint32_t savedGeneration;
172 char reserved2[8];
173 uint32_t uncleanShutdown;
174 char padding[396];
175} COWDisk_Header;
176#pragma pack()
177#endif /* VBOX_WITH_VMDK_ESX */
178
179
180/** Convert sector number/size to byte offset/size. */
181#define VMDK_SECTOR2BYTE(u) ((uint64_t)(u) << 9)
182
183/** Convert byte offset/size to sector number/size. */
184#define VMDK_BYTE2SECTOR(u) ((u) >> 9)
185
186/**
187 * VMDK extent type.
188 */
189typedef enum VMDKETYPE
190{
191 /** Hosted sparse extent. */
192 VMDKETYPE_HOSTED_SPARSE = 1,
193 /** Flat extent. */
194 VMDKETYPE_FLAT,
195 /** Zero extent. */
196 VMDKETYPE_ZERO,
197 /** VMFS extent, used by ESX. */
198 VMDKETYPE_VMFS
199#ifdef VBOX_WITH_VMDK_ESX
200 ,
201 /** ESX sparse extent. */
202 VMDKETYPE_ESX_SPARSE
203#endif /* VBOX_WITH_VMDK_ESX */
204} VMDKETYPE, *PVMDKETYPE;
205
206/**
207 * VMDK access type for a extent.
208 */
209typedef enum VMDKACCESS
210{
211 /** No access allowed. */
212 VMDKACCESS_NOACCESS = 0,
213 /** Read-only access. */
214 VMDKACCESS_READONLY,
215 /** Read-write access. */
216 VMDKACCESS_READWRITE
217} VMDKACCESS, *PVMDKACCESS;
218
219/** Forward declaration for PVMDKIMAGE. */
220typedef struct VMDKIMAGE *PVMDKIMAGE;
221
222/**
223 * Extents files entry. Used for opening a particular file only once.
224 */
225typedef struct VMDKFILE
226{
227 /** Pointer to filename. Local copy. */
228 const char *pszFilename;
229 /** File open flags for consistency checking. */
230 unsigned fOpen;
231 /** Flag whether this file has been opened for async I/O. */
232 bool fAsyncIO;
233 /** Handle for sync/async file abstraction.*/
234 PVDIOSTORAGE pStorage;
235 /** Reference counter. */
236 unsigned uReferences;
237 /** Flag whether the file should be deleted on last close. */
238 bool fDelete;
239 /** Pointer to the image we belong to (for debugging purposes). */
240 PVMDKIMAGE pImage;
241 /** Pointer to next file descriptor. */
242 struct VMDKFILE *pNext;
243 /** Pointer to the previous file descriptor. */
244 struct VMDKFILE *pPrev;
245} VMDKFILE, *PVMDKFILE;
246
247/**
248 * VMDK extent data structure.
249 */
250typedef struct VMDKEXTENT
251{
252 /** File handle. */
253 PVMDKFILE pFile;
254 /** Base name of the image extent. */
255 const char *pszBasename;
256 /** Full name of the image extent. */
257 const char *pszFullname;
258 /** Number of sectors in this extent. */
259 uint64_t cSectors;
260 /** Number of sectors per block (grain in VMDK speak). */
261 uint64_t cSectorsPerGrain;
262 /** Starting sector number of descriptor. */
263 uint64_t uDescriptorSector;
264 /** Size of descriptor in sectors. */
265 uint64_t cDescriptorSectors;
266 /** Starting sector number of grain directory. */
267 uint64_t uSectorGD;
268 /** Starting sector number of redundant grain directory. */
269 uint64_t uSectorRGD;
270 /** Total number of metadata sectors. */
271 uint64_t cOverheadSectors;
272 /** Nominal size (i.e. as described by the descriptor) of this extent. */
273 uint64_t cNominalSectors;
274 /** Sector offset (i.e. as described by the descriptor) of this extent. */
275 uint64_t uSectorOffset;
276 /** Number of entries in a grain table. */
277 uint32_t cGTEntries;
278 /** Number of sectors reachable via a grain directory entry. */
279 uint32_t cSectorsPerGDE;
280 /** Number of entries in the grain directory. */
281 uint32_t cGDEntries;
282 /** Pointer to the next free sector. Legacy information. Do not use. */
283 uint32_t uFreeSector;
284 /** Number of this extent in the list of images. */
285 uint32_t uExtent;
286 /** Pointer to the descriptor (NULL if no descriptor in this extent). */
287 char *pDescData;
288 /** Pointer to the grain directory. */
289 uint32_t *pGD;
290 /** Pointer to the redundant grain directory. */
291 uint32_t *pRGD;
292 /** VMDK version of this extent. 1=1.0/1.1 */
293 uint32_t uVersion;
294 /** Type of this extent. */
295 VMDKETYPE enmType;
296 /** Access to this extent. */
297 VMDKACCESS enmAccess;
298 /** Flag whether this extent is marked as unclean. */
299 bool fUncleanShutdown;
300 /** Flag whether the metadata in the extent header needs to be updated. */
301 bool fMetaDirty;
302 /** Flag whether there is a footer in this extent. */
303 bool fFooter;
304 /** Compression type for this extent. */
305 uint16_t uCompression;
306 /** Append position for writing new grain. Only for sparse extents. */
307 uint64_t uAppendPosition;
308 /** Last grain which was accessed. Only for streamOptimized extents. */
309 uint32_t uLastGrainAccess;
310 /** Starting sector corresponding to the grain buffer. */
311 uint32_t uGrainSectorAbs;
312 /** Grain number corresponding to the grain buffer. */
313 uint32_t uGrain;
314 /** Actual size of the compressed data, only valid for reading. */
315 uint32_t cbGrainStreamRead;
316 /** Size of compressed grain buffer for streamOptimized extents. */
317 size_t cbCompGrain;
318 /** Compressed grain buffer for streamOptimized extents, with marker. */
319 void *pvCompGrain;
320 /** Decompressed grain buffer for streamOptimized extents. */
321 void *pvGrain;
322 /** Reference to the image in which this extent is used. Do not use this
323 * on a regular basis to avoid passing pImage references to functions
324 * explicitly. */
325 struct VMDKIMAGE *pImage;
326} VMDKEXTENT, *PVMDKEXTENT;
327
328/**
329 * Grain table cache size. Allocated per image.
330 */
331#define VMDK_GT_CACHE_SIZE 256
332
333/**
334 * Grain table block size. Smaller than an actual grain table block to allow
335 * more grain table blocks to be cached without having to allocate excessive
336 * amounts of memory for the cache.
337 */
338#define VMDK_GT_CACHELINE_SIZE 128
339
340
341/**
342 * Maximum number of lines in a descriptor file. Not worth the effort of
343 * making it variable. Descriptor files are generally very short (~20 lines),
344 * with the exception of sparse files split in 2G chunks, which need for the
345 * maximum size (almost 2T) exactly 1025 lines for the disk database.
346 */
347#define VMDK_DESCRIPTOR_LINES_MAX 1100U
348
349/**
350 * Parsed descriptor information. Allows easy access and update of the
351 * descriptor (whether separate file or not). Free form text files suck.
352 */
353typedef struct VMDKDESCRIPTOR
354{
355 /** Line number of first entry of the disk descriptor. */
356 unsigned uFirstDesc;
357 /** Line number of first entry in the extent description. */
358 unsigned uFirstExtent;
359 /** Line number of first disk database entry. */
360 unsigned uFirstDDB;
361 /** Total number of lines. */
362 unsigned cLines;
363 /** Total amount of memory available for the descriptor. */
364 size_t cbDescAlloc;
365 /** Set if descriptor has been changed and not yet written to disk. */
366 bool fDirty;
367 /** Array of pointers to the data in the descriptor. */
368 char *aLines[VMDK_DESCRIPTOR_LINES_MAX];
369 /** Array of line indices pointing to the next non-comment line. */
370 unsigned aNextLines[VMDK_DESCRIPTOR_LINES_MAX];
371} VMDKDESCRIPTOR, *PVMDKDESCRIPTOR;
372
373
374/**
375 * Cache entry for translating extent/sector to a sector number in that
376 * extent.
377 */
378typedef struct VMDKGTCACHEENTRY
379{
380 /** Extent number for which this entry is valid. */
381 uint32_t uExtent;
382 /** GT data block number. */
383 uint64_t uGTBlock;
384 /** Data part of the cache entry. */
385 uint32_t aGTData[VMDK_GT_CACHELINE_SIZE];
386} VMDKGTCACHEENTRY, *PVMDKGTCACHEENTRY;
387
388/**
389 * Cache data structure for blocks of grain table entries. For now this is a
390 * fixed size direct mapping cache, but this should be adapted to the size of
391 * the sparse image and maybe converted to a set-associative cache. The
392 * implementation below implements a write-through cache with write allocate.
393 */
394typedef struct VMDKGTCACHE
395{
396 /** Cache entries. */
397 VMDKGTCACHEENTRY aGTCache[VMDK_GT_CACHE_SIZE];
398 /** Number of cache entries (currently unused). */
399 unsigned cEntries;
400} VMDKGTCACHE, *PVMDKGTCACHE;
401
402/**
403 * Complete VMDK image data structure. Mainly a collection of extents and a few
404 * extra global data fields.
405 */
406typedef struct VMDKIMAGE
407{
408 /** Image name. */
409 const char *pszFilename;
410 /** Descriptor file if applicable. */
411 PVMDKFILE pFile;
412 /** I/O interface. */
413 PVDINTERFACE pInterfaceIO;
414 /** I/O interface callbacks. */
415 PVDINTERFACEIOINT pInterfaceIOCallbacks;
416
417 /** Pointer to the per-disk VD interface list. */
418 PVDINTERFACE pVDIfsDisk;
419 /** Pointer to the per-image VD interface list. */
420 PVDINTERFACE pVDIfsImage;
421
422 /** Error interface. */
423 PVDINTERFACE pInterfaceError;
424 /** Error interface callbacks. */
425 PVDINTERFACEERROR pInterfaceErrorCallbacks;
426
427 /** Pointer to the image extents. */
428 PVMDKEXTENT pExtents;
429 /** Number of image extents. */
430 unsigned cExtents;
431 /** Pointer to the files list, for opening a file referenced multiple
432 * times only once (happens mainly with raw partition access). */
433 PVMDKFILE pFiles;
434
435 /**
436 * Pointer to an array of segment entries for async I/O.
437 * This is an optimization because the task number to submit is not known
438 * and allocating/freeing an array in the read/write functions every time
439 * is too expensive.
440 */
441 PPDMDATASEG paSegments;
442 /** Entries available in the segments array. */
443 unsigned cSegments;
444
445 /** Open flags passed by VBoxHD layer. */
446 unsigned uOpenFlags;
447 /** Image flags defined during creation or determined during open. */
448 unsigned uImageFlags;
449 /** Total size of the image. */
450 uint64_t cbSize;
451 /** Physical geometry of this image. */
452 VDGEOMETRY PCHSGeometry;
453 /** Logical geometry of this image. */
454 VDGEOMETRY LCHSGeometry;
455 /** Image UUID. */
456 RTUUID ImageUuid;
457 /** Image modification UUID. */
458 RTUUID ModificationUuid;
459 /** Parent image UUID. */
460 RTUUID ParentUuid;
461 /** Parent image modification UUID. */
462 RTUUID ParentModificationUuid;
463
464 /** Pointer to grain table cache, if this image contains sparse extents. */
465 PVMDKGTCACHE pGTCache;
466 /** Pointer to the descriptor (NULL if no separate descriptor file). */
467 char *pDescData;
468 /** Allocation size of the descriptor file. */
469 size_t cbDescAlloc;
470 /** Parsed descriptor file content. */
471 VMDKDESCRIPTOR Descriptor;
472} VMDKIMAGE;
473
474
475/** State for the input/output callout of the inflate reader/deflate writer. */
476typedef struct VMDKCOMPRESSIO
477{
478 /* Image this operation relates to. */
479 PVMDKIMAGE pImage;
480 /* Current read position. */
481 ssize_t iOffset;
482 /* Size of the compressed grain buffer (available data). */
483 size_t cbCompGrain;
484 /* Pointer to the compressed grain buffer. */
485 void *pvCompGrain;
486} VMDKCOMPRESSIO;
487
488
489/** Tracks async grain allocation. */
490typedef struct VMDKGRAINALLOCASYNC
491{
492 /** Flag whether the allocation failed. */
493 bool fIoErr;
494 /** Current number of transfers pending.
495 * If reached 0 and there is an error the old state is restored. */
496 unsigned cIoXfersPending;
497 /** Sector number */
498 uint64_t uSector;
499 /** Flag whether the grain table needs to be updated. */
500 bool fGTUpdateNeeded;
501 /** Extent the allocation happens. */
502 PVMDKEXTENT pExtent;
503 /** Position of the new grain, required for the grain table update. */
504 uint64_t uGrainOffset;
505 /** Grain table sector. */
506 uint64_t uGTSector;
507 /** Backup grain table sector. */
508 uint64_t uRGTSector;
509} VMDKGRAINALLOCASYNC, *PVMDKGRAINALLOCASYNC;
510
511/*******************************************************************************
512* Static Variables *
513*******************************************************************************/
514
515/** NULL-terminated array of supported file extensions. */
516static const VDFILEEXTENSION s_aVmdkFileExtensions[] =
517{
518 {"vmdk", VDTYPE_HDD},
519 {NULL, VDTYPE_INVALID}
520};
521
522/*******************************************************************************
523* Internal Functions *
524*******************************************************************************/
525
526static void vmdkFreeStreamBuffers(PVMDKEXTENT pExtent);
527static void vmdkFreeExtentData(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
528 bool fDelete);
529
530static int vmdkCreateExtents(PVMDKIMAGE pImage, unsigned cExtents);
531static int vmdkFlushImage(PVMDKIMAGE pImage);
532static int vmdkSetImageComment(PVMDKIMAGE pImage, const char *pszComment);
533static int vmdkFreeImage(PVMDKIMAGE pImage, bool fDelete);
534
535static int vmdkAllocGrainAsyncComplete(void *pBackendData, PVDIOCTX pIoCtx, void *pvUser, int rcReq);
536
537/**
538 * Internal: signal an error to the frontend.
539 */
540DECLINLINE(int) vmdkError(PVMDKIMAGE pImage, int rc, RT_SRC_POS_DECL,
541 const char *pszFormat, ...)
542{
543 va_list va;
544 va_start(va, pszFormat);
545 if (pImage->pInterfaceError && pImage->pInterfaceErrorCallbacks)
546 pImage->pInterfaceErrorCallbacks->pfnError(pImage->pInterfaceError->pvUser, rc, RT_SRC_POS_ARGS,
547 pszFormat, va);
548 va_end(va);
549 return rc;
550}
551
552/**
553 * Internal: signal an informational message to the frontend.
554 */
555DECLINLINE(int) vmdkMessage(PVMDKIMAGE pImage, const char *pszFormat, ...)
556{
557 int rc = VINF_SUCCESS;
558 va_list va;
559 va_start(va, pszFormat);
560 if (pImage->pInterfaceError && pImage->pInterfaceErrorCallbacks)
561 rc = pImage->pInterfaceErrorCallbacks->pfnMessage(pImage->pInterfaceError->pvUser,
562 pszFormat, va);
563 va_end(va);
564 return rc;
565}
566
567/**
568 * Internal: open a file (using a file descriptor cache to ensure each file
569 * is only opened once - anything else can cause locking problems).
570 */
571static int vmdkFileOpen(PVMDKIMAGE pImage, PVMDKFILE *ppVmdkFile,
572 const char *pszFilename, uint32_t fOpen, bool fAsyncIO)
573{
574 int rc = VINF_SUCCESS;
575 PVMDKFILE pVmdkFile;
576
577 for (pVmdkFile = pImage->pFiles;
578 pVmdkFile != NULL;
579 pVmdkFile = pVmdkFile->pNext)
580 {
581 if (!strcmp(pszFilename, pVmdkFile->pszFilename))
582 {
583 Assert(fOpen == pVmdkFile->fOpen);
584 pVmdkFile->uReferences++;
585
586 *ppVmdkFile = pVmdkFile;
587
588 return rc;
589 }
590 }
591
592 /* If we get here, there's no matching entry in the cache. */
593 pVmdkFile = (PVMDKFILE)RTMemAllocZ(sizeof(VMDKFILE));
594 if (!VALID_PTR(pVmdkFile))
595 {
596 *ppVmdkFile = NULL;
597 return VERR_NO_MEMORY;
598 }
599
600 pVmdkFile->pszFilename = RTStrDup(pszFilename);
601 if (!VALID_PTR(pVmdkFile->pszFilename))
602 {
603 RTMemFree(pVmdkFile);
604 *ppVmdkFile = NULL;
605 return VERR_NO_MEMORY;
606 }
607 pVmdkFile->fOpen = fOpen;
608 pVmdkFile->fAsyncIO = fAsyncIO;
609
610 rc = pImage->pInterfaceIOCallbacks->pfnOpen(pImage->pInterfaceIO->pvUser,
611 pszFilename, fOpen,
612 &pVmdkFile->pStorage);
613 if (RT_SUCCESS(rc))
614 {
615 pVmdkFile->uReferences = 1;
616 pVmdkFile->pImage = pImage;
617 pVmdkFile->pNext = pImage->pFiles;
618 if (pImage->pFiles)
619 pImage->pFiles->pPrev = pVmdkFile;
620 pImage->pFiles = pVmdkFile;
621 *ppVmdkFile = pVmdkFile;
622 }
623 else
624 {
625 RTStrFree((char *)(void *)pVmdkFile->pszFilename);
626 RTMemFree(pVmdkFile);
627 *ppVmdkFile = NULL;
628 }
629
630 return rc;
631}
632
633/**
634 * Internal: close a file, updating the file descriptor cache.
635 */
636static int vmdkFileClose(PVMDKIMAGE pImage, PVMDKFILE *ppVmdkFile, bool fDelete)
637{
638 int rc = VINF_SUCCESS;
639 PVMDKFILE pVmdkFile = *ppVmdkFile;
640
641 AssertPtr(pVmdkFile);
642
643 pVmdkFile->fDelete |= fDelete;
644 Assert(pVmdkFile->uReferences);
645 pVmdkFile->uReferences--;
646 if (pVmdkFile->uReferences == 0)
647 {
648 PVMDKFILE pPrev;
649 PVMDKFILE pNext;
650
651 /* Unchain the element from the list. */
652 pPrev = pVmdkFile->pPrev;
653 pNext = pVmdkFile->pNext;
654
655 if (pNext)
656 pNext->pPrev = pPrev;
657 if (pPrev)
658 pPrev->pNext = pNext;
659 else
660 pImage->pFiles = pNext;
661
662 rc = pImage->pInterfaceIOCallbacks->pfnClose(pImage->pInterfaceIO->pvUser,
663 pVmdkFile->pStorage);
664 if (RT_SUCCESS(rc) && pVmdkFile->fDelete)
665 rc = pImage->pInterfaceIOCallbacks->pfnDelete(pImage->pInterfaceIO->pvUser,
666 pVmdkFile->pszFilename);
667 RTStrFree((char *)(void *)pVmdkFile->pszFilename);
668 RTMemFree(pVmdkFile);
669 }
670
671 *ppVmdkFile = NULL;
672 return rc;
673}
674
675/**
676 * Internal: rename a file (sync)
677 */
678DECLINLINE(int) vmdkFileMove(PVMDKIMAGE pImage, const char *pszSrc,
679 const char *pszDst, unsigned fMove)
680{
681 return pImage->pInterfaceIOCallbacks->pfnMove(pImage->pInterfaceIO->pvUser,
682 pszSrc, pszDst, fMove);
683}
684
685/**
686 * Internal: get the size of a file (sync/async)
687 */
688DECLINLINE(int) vmdkFileGetSize(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile,
689 uint64_t *pcbSize)
690{
691 return pImage->pInterfaceIOCallbacks->pfnGetSize(pImage->pInterfaceIO->pvUser,
692 pVmdkFile->pStorage,
693 pcbSize);
694}
695
696/**
697 * Internal: set the size of a file (sync/async)
698 */
699DECLINLINE(int) vmdkFileSetSize(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile,
700 uint64_t cbSize)
701{
702 return pImage->pInterfaceIOCallbacks->pfnSetSize(pImage->pInterfaceIO->pvUser,
703 pVmdkFile->pStorage,
704 cbSize);
705}
706
707/**
708 * Internal: read from a file (sync)
709 */
710DECLINLINE(int) vmdkFileReadSync(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile,
711 uint64_t uOffset, void *pvBuf,
712 size_t cbToRead, size_t *pcbRead)
713{
714 return pImage->pInterfaceIOCallbacks->pfnReadSync(pImage->pInterfaceIO->pvUser,
715 pVmdkFile->pStorage, uOffset,
716 pvBuf, cbToRead, pcbRead);
717}
718
719/**
720 * Internal: write to a file (sync)
721 */
722DECLINLINE(int) vmdkFileWriteSync(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile,
723 uint64_t uOffset, const void *pvBuf,
724 size_t cbToWrite, size_t *pcbWritten)
725{
726 return pImage->pInterfaceIOCallbacks->pfnWriteSync(pImage->pInterfaceIO->pvUser,
727 pVmdkFile->pStorage, uOffset,
728 pvBuf, cbToWrite, pcbWritten);
729}
730
731/**
732 * Internal: flush a file (sync)
733 */
734DECLINLINE(int) vmdkFileFlush(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile)
735{
736 return pImage->pInterfaceIOCallbacks->pfnFlushSync(pImage->pInterfaceIO->pvUser,
737 pVmdkFile->pStorage);
738}
739
740/**
741 * Internal: read user data (async)
742 */
743DECLINLINE(int) vmdkFileReadUserAsync(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile,
744 uint64_t uOffset, PVDIOCTX pIoCtx,
745 size_t cbRead)
746{
747 return pImage->pInterfaceIOCallbacks->pfnReadUserAsync(pImage->pInterfaceIO->pvUser,
748 pVmdkFile->pStorage,
749 uOffset, pIoCtx,
750 cbRead);
751}
752
753/**
754 * Internal: write user data (async)
755 */
756DECLINLINE(int) vmdkFileWriteUserAsync(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile,
757 uint64_t uOffset, PVDIOCTX pIoCtx,
758 size_t cbWrite,
759 PFNVDXFERCOMPLETED pfnComplete,
760 void *pvCompleteUser)
761{
762 return pImage->pInterfaceIOCallbacks->pfnWriteUserAsync(pImage->pInterfaceIO->pvUser,
763 pVmdkFile->pStorage,
764 uOffset, pIoCtx,
765 cbWrite,
766 pfnComplete,
767 pvCompleteUser);
768}
769
770/**
771 * Internal: read metadata (async)
772 */
773DECLINLINE(int) vmdkFileReadMetaAsync(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile,
774 uint64_t uOffset, void *pvBuffer,
775 size_t cbBuffer, PVDIOCTX pIoCtx,
776 PPVDMETAXFER ppMetaXfer,
777 PFNVDXFERCOMPLETED pfnComplete,
778 void *pvCompleteUser)
779{
780 return pImage->pInterfaceIOCallbacks->pfnReadMetaAsync(pImage->pInterfaceIO->pvUser,
781 pVmdkFile->pStorage,
782 uOffset, pvBuffer,
783 cbBuffer, pIoCtx,
784 ppMetaXfer,
785 pfnComplete,
786 pvCompleteUser);
787}
788
789/**
790 * Internal: write metadata (async)
791 */
792DECLINLINE(int) vmdkFileWriteMetaAsync(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile,
793 uint64_t uOffset, void *pvBuffer,
794 size_t cbBuffer, PVDIOCTX pIoCtx,
795 PFNVDXFERCOMPLETED pfnComplete,
796 void *pvCompleteUser)
797{
798 return pImage->pInterfaceIOCallbacks->pfnWriteMetaAsync(pImage->pInterfaceIO->pvUser,
799 pVmdkFile->pStorage,
800 uOffset, pvBuffer,
801 cbBuffer, pIoCtx,
802 pfnComplete,
803 pvCompleteUser);
804}
805
806/**
807 * Internal: releases a metadata transfer handle (async)
808 */
809DECLINLINE(void) vmdkFileMetaXferRelease(PVMDKIMAGE pImage, PVDMETAXFER pMetaXfer)
810{
811 pImage->pInterfaceIOCallbacks->pfnMetaXferRelease(pImage->pInterfaceIO->pvUser,
812 pMetaXfer);
813}
814
815/**
816 * Internal: flush a file (async)
817 */
818DECLINLINE(int) vmdkFileFlushAsync(PVMDKIMAGE pImage, PVMDKFILE pVmdkFile,
819 PVDIOCTX pIoCtx)
820{
821 return pImage->pInterfaceIOCallbacks->pfnFlushAsync(pImage->pInterfaceIO->pvUser,
822 pVmdkFile->pStorage, pIoCtx,
823 NULL, NULL);
824}
825
826/**
827 * Internal: sets the buffer to a specific byte (async)
828 */
829DECLINLINE(int) vmdkFileIoCtxSet(PVMDKIMAGE pImage, PVDIOCTX pIoCtx,
830 int ch, size_t cbSet)
831{
832 return pImage->pInterfaceIOCallbacks->pfnIoCtxSet(pImage->pInterfaceIO->pvUser,
833 pIoCtx, ch, cbSet);
834}
835
836
837static DECLCALLBACK(int) vmdkFileInflateHelper(void *pvUser, void *pvBuf, size_t cbBuf, size_t *pcbBuf)
838{
839 VMDKCOMPRESSIO *pInflateState = (VMDKCOMPRESSIO *)pvUser;
840 size_t cbInjected = 0;
841
842 Assert(cbBuf);
843 if (pInflateState->iOffset < 0)
844 {
845 *(uint8_t *)pvBuf = RTZIPTYPE_ZLIB;
846 pvBuf = (uint8_t *)pvBuf + 1;
847 cbBuf--;
848 cbInjected = 1;
849 pInflateState->iOffset = RT_OFFSETOF(VMDKMARKER, uType);
850 }
851 if (!cbBuf)
852 {
853 if (pcbBuf)
854 *pcbBuf = cbInjected;
855 return VINF_SUCCESS;
856 }
857 cbBuf = RT_MIN(cbBuf, pInflateState->cbCompGrain - pInflateState->iOffset);
858 memcpy(pvBuf,
859 (uint8_t *)pInflateState->pvCompGrain + pInflateState->iOffset,
860 cbBuf);
861 pInflateState->iOffset += cbBuf;
862 Assert(pcbBuf);
863 *pcbBuf = cbBuf + cbInjected;
864 return VINF_SUCCESS;
865}
866
867/**
868 * Internal: read from a file and inflate the compressed data,
869 * distinguishing between async and normal operation
870 */
871DECLINLINE(int) vmdkFileInflateSync(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
872 uint64_t uOffset, void *pvBuf,
873 size_t cbToRead, const void *pcvMarker,
874 uint64_t *puLBA, uint32_t *pcbMarkerData)
875{
876 if (pExtent->pFile->fAsyncIO)
877 {
878 AssertMsgFailed(("TODO\n"));
879 return VERR_NOT_SUPPORTED;
880 }
881 else
882 {
883 int rc;
884 PRTZIPDECOMP pZip = NULL;
885 VMDKMARKER *pMarker = (VMDKMARKER *)pExtent->pvCompGrain;
886 size_t cbCompSize, cbActuallyRead;
887
888 if (!pcvMarker)
889 {
890 rc = vmdkFileReadSync(pImage, pExtent->pFile, uOffset, pMarker,
891 RT_OFFSETOF(VMDKMARKER, uType), NULL);
892 if (RT_FAILURE(rc))
893 return rc;
894 }
895 else
896 memcpy(pMarker, pcvMarker, RT_OFFSETOF(VMDKMARKER, uType));
897
898 cbCompSize = RT_LE2H_U32(pMarker->cbSize);
899 if (cbCompSize == 0)
900 {
901 AssertMsgFailed(("VMDK: corrupted marker\n"));
902 return VERR_VD_VMDK_INVALID_FORMAT;
903 }
904
905 /* Sanity check - the expansion ratio should be much less than 2. */
906 Assert(cbCompSize < 2 * cbToRead);
907 if (cbCompSize >= 2 * cbToRead)
908 return VERR_VD_VMDK_INVALID_FORMAT;
909
910 /* Compressed grain marker. Data follows immediately. */
911 rc = vmdkFileReadSync(pImage, pExtent->pFile,
912 uOffset + RT_OFFSETOF(VMDKMARKER, uType),
913 (uint8_t *)pExtent->pvCompGrain
914 + RT_OFFSETOF(VMDKMARKER, uType),
915 RT_ALIGN_Z( cbCompSize
916 + RT_OFFSETOF(VMDKMARKER, uType),
917 512)
918 - RT_OFFSETOF(VMDKMARKER, uType), NULL);
919
920 if (puLBA)
921 *puLBA = RT_LE2H_U64(pMarker->uSector);
922 if (pcbMarkerData)
923 *pcbMarkerData = RT_ALIGN( cbCompSize
924 + RT_OFFSETOF(VMDKMARKER, uType),
925 512);
926
927 VMDKCOMPRESSIO InflateState;
928 InflateState.pImage = pImage;
929 InflateState.iOffset = -1;
930 InflateState.cbCompGrain = cbCompSize + RT_OFFSETOF(VMDKMARKER, uType);
931 InflateState.pvCompGrain = pExtent->pvCompGrain;
932
933 rc = RTZipDecompCreate(&pZip, &InflateState, vmdkFileInflateHelper);
934 if (RT_FAILURE(rc))
935 return rc;
936 rc = RTZipDecompress(pZip, pvBuf, cbToRead, &cbActuallyRead);
937 RTZipDecompDestroy(pZip);
938 if (RT_FAILURE(rc))
939 return rc;
940 if (cbActuallyRead != cbToRead)
941 rc = VERR_VD_VMDK_INVALID_FORMAT;
942 return rc;
943 }
944}
945
946static DECLCALLBACK(int) vmdkFileDeflateHelper(void *pvUser, const void *pvBuf, size_t cbBuf)
947{
948 VMDKCOMPRESSIO *pDeflateState = (VMDKCOMPRESSIO *)pvUser;
949
950 Assert(cbBuf);
951 if (pDeflateState->iOffset < 0)
952 {
953 pvBuf = (const uint8_t *)pvBuf + 1;
954 cbBuf--;
955 pDeflateState->iOffset = RT_OFFSETOF(VMDKMARKER, uType);
956 }
957 if (!cbBuf)
958 return VINF_SUCCESS;
959 if (pDeflateState->iOffset + cbBuf > pDeflateState->cbCompGrain)
960 return VERR_BUFFER_OVERFLOW;
961 memcpy((uint8_t *)pDeflateState->pvCompGrain + pDeflateState->iOffset,
962 pvBuf, cbBuf);
963 pDeflateState->iOffset += cbBuf;
964 return VINF_SUCCESS;
965}
966
967/**
968 * Internal: deflate the uncompressed data and write to a file,
969 * distinguishing between async and normal operation
970 */
971DECLINLINE(int) vmdkFileDeflateSync(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
972 uint64_t uOffset, const void *pvBuf,
973 size_t cbToWrite, uint64_t uLBA,
974 uint32_t *pcbMarkerData)
975{
976 if (pExtent->pFile->fAsyncIO)
977 {
978 AssertMsgFailed(("TODO\n"));
979 return VERR_NOT_SUPPORTED;
980 }
981 else
982 {
983 int rc;
984 PRTZIPCOMP pZip = NULL;
985 VMDKCOMPRESSIO DeflateState;
986
987 DeflateState.pImage = pImage;
988 DeflateState.iOffset = -1;
989 DeflateState.cbCompGrain = pExtent->cbCompGrain;
990 DeflateState.pvCompGrain = pExtent->pvCompGrain;
991
992 rc = RTZipCompCreate(&pZip, &DeflateState, vmdkFileDeflateHelper,
993 RTZIPTYPE_ZLIB, RTZIPLEVEL_DEFAULT);
994 if (RT_FAILURE(rc))
995 return rc;
996 rc = RTZipCompress(pZip, pvBuf, cbToWrite);
997 if (RT_SUCCESS(rc))
998 rc = RTZipCompFinish(pZip);
999 RTZipCompDestroy(pZip);
1000 if (RT_SUCCESS(rc))
1001 {
1002 Assert( DeflateState.iOffset > 0
1003 && (size_t)DeflateState.iOffset <= DeflateState.cbCompGrain);
1004
1005 /* pad with zeroes to get to a full sector size */
1006 uint32_t uSize = DeflateState.iOffset;
1007 if (uSize % 512)
1008 {
1009 uint32_t uSizeAlign = RT_ALIGN(uSize, 512);
1010 memset((uint8_t *)pExtent->pvCompGrain + uSize, '\0',
1011 uSizeAlign - uSize);
1012 uSize = uSizeAlign;
1013 }
1014
1015 if (pcbMarkerData)
1016 *pcbMarkerData = uSize;
1017
1018 /* Compressed grain marker. Data follows immediately. */
1019 VMDKMARKER *pMarker = (VMDKMARKER *)pExtent->pvCompGrain;
1020 pMarker->uSector = RT_H2LE_U64(uLBA);
1021 pMarker->cbSize = RT_H2LE_U32( DeflateState.iOffset
1022 - RT_OFFSETOF(VMDKMARKER, uType));
1023 rc = vmdkFileWriteSync(pImage, pExtent->pFile, uOffset, pMarker,
1024 uSize, NULL);
1025 if (RT_FAILURE(rc))
1026 return rc;
1027 }
1028 return rc;
1029 }
1030}
1031
1032
1033/**
1034 * Internal: check if all files are closed, prevent leaking resources.
1035 */
1036static int vmdkFileCheckAllClose(PVMDKIMAGE pImage)
1037{
1038 int rc = VINF_SUCCESS, rc2;
1039 PVMDKFILE pVmdkFile;
1040
1041 Assert(pImage->pFiles == NULL);
1042 for (pVmdkFile = pImage->pFiles;
1043 pVmdkFile != NULL;
1044 pVmdkFile = pVmdkFile->pNext)
1045 {
1046 LogRel(("VMDK: leaking reference to file \"%s\"\n",
1047 pVmdkFile->pszFilename));
1048 pImage->pFiles = pVmdkFile->pNext;
1049
1050 rc2 = vmdkFileClose(pImage, &pVmdkFile, pVmdkFile->fDelete);
1051
1052 if (RT_SUCCESS(rc))
1053 rc = rc2;
1054 }
1055 return rc;
1056}
1057
1058/**
1059 * Internal: truncate a string (at a UTF8 code point boundary) and encode the
1060 * critical non-ASCII characters.
1061 */
1062static char *vmdkEncodeString(const char *psz)
1063{
1064 char szEnc[VMDK_ENCODED_COMMENT_MAX + 3];
1065 char *pszDst = szEnc;
1066
1067 AssertPtr(psz);
1068
1069 for (; *psz; psz = RTStrNextCp(psz))
1070 {
1071 char *pszDstPrev = pszDst;
1072 RTUNICP Cp = RTStrGetCp(psz);
1073 if (Cp == '\\')
1074 {
1075 pszDst = RTStrPutCp(pszDst, Cp);
1076 pszDst = RTStrPutCp(pszDst, Cp);
1077 }
1078 else if (Cp == '\n')
1079 {
1080 pszDst = RTStrPutCp(pszDst, '\\');
1081 pszDst = RTStrPutCp(pszDst, 'n');
1082 }
1083 else if (Cp == '\r')
1084 {
1085 pszDst = RTStrPutCp(pszDst, '\\');
1086 pszDst = RTStrPutCp(pszDst, 'r');
1087 }
1088 else
1089 pszDst = RTStrPutCp(pszDst, Cp);
1090 if (pszDst - szEnc >= VMDK_ENCODED_COMMENT_MAX - 1)
1091 {
1092 pszDst = pszDstPrev;
1093 break;
1094 }
1095 }
1096 *pszDst = '\0';
1097 return RTStrDup(szEnc);
1098}
1099
1100/**
1101 * Internal: decode a string and store it into the specified string.
1102 */
1103static int vmdkDecodeString(const char *pszEncoded, char *psz, size_t cb)
1104{
1105 int rc = VINF_SUCCESS;
1106 char szBuf[4];
1107
1108 if (!cb)
1109 return VERR_BUFFER_OVERFLOW;
1110
1111 AssertPtr(psz);
1112
1113 for (; *pszEncoded; pszEncoded = RTStrNextCp(pszEncoded))
1114 {
1115 char *pszDst = szBuf;
1116 RTUNICP Cp = RTStrGetCp(pszEncoded);
1117 if (Cp == '\\')
1118 {
1119 pszEncoded = RTStrNextCp(pszEncoded);
1120 RTUNICP CpQ = RTStrGetCp(pszEncoded);
1121 if (CpQ == 'n')
1122 RTStrPutCp(pszDst, '\n');
1123 else if (CpQ == 'r')
1124 RTStrPutCp(pszDst, '\r');
1125 else if (CpQ == '\0')
1126 {
1127 rc = VERR_VD_VMDK_INVALID_HEADER;
1128 break;
1129 }
1130 else
1131 RTStrPutCp(pszDst, CpQ);
1132 }
1133 else
1134 pszDst = RTStrPutCp(pszDst, Cp);
1135
1136 /* Need to leave space for terminating NUL. */
1137 if ((size_t)(pszDst - szBuf) + 1 >= cb)
1138 {
1139 rc = VERR_BUFFER_OVERFLOW;
1140 break;
1141 }
1142 memcpy(psz, szBuf, pszDst - szBuf);
1143 psz += pszDst - szBuf;
1144 }
1145 *psz = '\0';
1146 return rc;
1147}
1148
1149/**
1150 * Internal: free all buffers associated with grain directories.
1151 */
1152static void vmdkFreeGrainDirectory(PVMDKEXTENT pExtent)
1153{
1154 if (pExtent->pGD)
1155 {
1156 RTMemFree(pExtent->pGD);
1157 pExtent->pGD = NULL;
1158 }
1159 if (pExtent->pRGD)
1160 {
1161 RTMemFree(pExtent->pRGD);
1162 pExtent->pRGD = NULL;
1163 }
1164}
1165
1166/**
1167 * Internal: allocate the compressed/uncompressed buffers for streamOptimized
1168 * images.
1169 */
1170static int vmdkAllocStreamBuffers(PVMDKIMAGE pImage, PVMDKEXTENT pExtent)
1171{
1172 int rc = VINF_SUCCESS;
1173
1174 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
1175 {
1176 /* streamOptimized extents need a compressed grain buffer, which must
1177 * be big enough to hold uncompressible data (which needs ~8 bytes
1178 * more than the uncompressed data), the marker and padding. */
1179 pExtent->cbCompGrain = RT_ALIGN_Z( VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain)
1180 + 8 + sizeof(VMDKMARKER), 512);
1181 pExtent->pvCompGrain = RTMemAlloc(pExtent->cbCompGrain);
1182 if (!pExtent->pvCompGrain)
1183 {
1184 rc = VERR_NO_MEMORY;
1185 goto out;
1186 }
1187
1188 /* streamOptimized extents need a decompressed grain buffer. */
1189 pExtent->pvGrain = RTMemAlloc(VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain));
1190 if (!pExtent->pvGrain)
1191 {
1192 rc = VERR_NO_MEMORY;
1193 goto out;
1194 }
1195 }
1196
1197out:
1198 if (RT_FAILURE(rc))
1199 vmdkFreeStreamBuffers(pExtent);
1200 return rc;
1201}
1202
1203/**
1204 * Internal: allocate all buffers associated with grain directories.
1205 */
1206static int vmdkAllocGrainDirectory(PVMDKIMAGE pImage, PVMDKEXTENT pExtent)
1207{
1208 int rc = VINF_SUCCESS;
1209 size_t cbGD = pExtent->cGDEntries * sizeof(uint32_t);
1210 uint32_t *pGD = NULL, *pRGD = NULL;
1211
1212 pGD = (uint32_t *)RTMemAllocZ(cbGD);
1213 if (!pGD)
1214 {
1215 rc = VERR_NO_MEMORY;
1216 goto out;
1217 }
1218 pExtent->pGD = pGD;
1219
1220 if (pExtent->uSectorRGD)
1221 {
1222 pRGD = (uint32_t *)RTMemAllocZ(cbGD);
1223 if (!pRGD)
1224 {
1225 rc = VERR_NO_MEMORY;
1226 goto out;
1227 }
1228 pExtent->pRGD = pRGD;
1229 }
1230
1231out:
1232 if (RT_FAILURE(rc))
1233 vmdkFreeGrainDirectory(pExtent);
1234 return rc;
1235}
1236
1237static int vmdkReadGrainDirectory(PVMDKIMAGE pImage, PVMDKEXTENT pExtent)
1238{
1239 int rc = VINF_SUCCESS;
1240 unsigned i;
1241 uint32_t *pGDTmp, *pRGDTmp;
1242 size_t cbGD = pExtent->cGDEntries * sizeof(uint32_t);
1243
1244 if (pExtent->enmType != VMDKETYPE_HOSTED_SPARSE)
1245 goto out;
1246
1247 if ( pExtent->uSectorGD == VMDK_GD_AT_END
1248 || pExtent->uSectorRGD == VMDK_GD_AT_END)
1249 {
1250 rc = VERR_INTERNAL_ERROR;
1251 goto out;
1252 }
1253
1254 rc = vmdkAllocGrainDirectory(pImage, pExtent);
1255 if (RT_FAILURE(rc))
1256 goto out;
1257
1258 /* The VMDK 1.1 spec seems to talk about compressed grain directories,
1259 * but in reality they are not compressed. */
1260 rc = vmdkFileReadSync(pImage, pExtent->pFile,
1261 VMDK_SECTOR2BYTE(pExtent->uSectorGD),
1262 pExtent->pGD, cbGD, NULL);
1263 AssertRC(rc);
1264 if (RT_FAILURE(rc))
1265 {
1266 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not read grain directory in '%s': %Rrc"), pExtent->pszFullname);
1267 goto out;
1268 }
1269 for (i = 0, pGDTmp = pExtent->pGD; i < pExtent->cGDEntries; i++, pGDTmp++)
1270 *pGDTmp = RT_LE2H_U32(*pGDTmp);
1271
1272 if (pExtent->uSectorRGD)
1273 {
1274 /* The VMDK 1.1 spec seems to talk about compressed grain directories,
1275 * but in reality they are not compressed. */
1276 rc = vmdkFileReadSync(pImage, pExtent->pFile,
1277 VMDK_SECTOR2BYTE(pExtent->uSectorRGD),
1278 pExtent->pRGD, cbGD, NULL);
1279 AssertRC(rc);
1280 if (RT_FAILURE(rc))
1281 {
1282 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not read redundant grain directory in '%s'"), pExtent->pszFullname);
1283 goto out;
1284 }
1285 for (i = 0, pRGDTmp = pExtent->pRGD; i < pExtent->cGDEntries; i++, pRGDTmp++)
1286 *pRGDTmp = RT_LE2H_U32(*pRGDTmp);
1287
1288 /* Check grain table and redundant grain table for consistency. */
1289 size_t cbGT = pExtent->cGTEntries * sizeof(uint32_t);
1290 uint32_t *pTmpGT1 = (uint32_t *)RTMemTmpAlloc(cbGT);
1291 if (!pTmpGT1)
1292 {
1293 rc = VERR_NO_MEMORY;
1294 goto out;
1295 }
1296 uint32_t *pTmpGT2 = (uint32_t *)RTMemTmpAlloc(cbGT);
1297 if (!pTmpGT2)
1298 {
1299 RTMemTmpFree(pTmpGT1);
1300 rc = VERR_NO_MEMORY;
1301 goto out;
1302 }
1303
1304 for (i = 0, pGDTmp = pExtent->pGD, pRGDTmp = pExtent->pRGD;
1305 i < pExtent->cGDEntries;
1306 i++, pGDTmp++, pRGDTmp++)
1307 {
1308 /* If no grain table is allocated skip the entry. */
1309 if (*pGDTmp == 0 && *pRGDTmp == 0)
1310 continue;
1311
1312 if (*pGDTmp == 0 || *pRGDTmp == 0 || *pGDTmp == *pRGDTmp)
1313 {
1314 /* Just one grain directory entry refers to a not yet allocated
1315 * grain table or both grain directory copies refer to the same
1316 * grain table. Not allowed. */
1317 RTMemTmpFree(pTmpGT1);
1318 RTMemTmpFree(pTmpGT2);
1319 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: inconsistent references to grain directory in '%s'"), pExtent->pszFullname);
1320 goto out;
1321 }
1322 /* The VMDK 1.1 spec seems to talk about compressed grain tables,
1323 * but in reality they are not compressed. */
1324 rc = vmdkFileReadSync(pImage, pExtent->pFile,
1325 VMDK_SECTOR2BYTE(*pGDTmp),
1326 pTmpGT1, cbGT, NULL);
1327 if (RT_FAILURE(rc))
1328 {
1329 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error reading grain table in '%s'"), pExtent->pszFullname);
1330 RTMemTmpFree(pTmpGT1);
1331 RTMemTmpFree(pTmpGT2);
1332 goto out;
1333 }
1334 /* The VMDK 1.1 spec seems to talk about compressed grain tables,
1335 * but in reality they are not compressed. */
1336 rc = vmdkFileReadSync(pImage, pExtent->pFile,
1337 VMDK_SECTOR2BYTE(*pRGDTmp),
1338 pTmpGT2, cbGT, NULL);
1339 if (RT_FAILURE(rc))
1340 {
1341 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error reading backup grain table in '%s'"), pExtent->pszFullname);
1342 RTMemTmpFree(pTmpGT1);
1343 RTMemTmpFree(pTmpGT2);
1344 goto out;
1345 }
1346 if (memcmp(pTmpGT1, pTmpGT2, cbGT))
1347 {
1348 RTMemTmpFree(pTmpGT1);
1349 RTMemTmpFree(pTmpGT2);
1350 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: inconsistency between grain table and backup grain table in '%s'"), pExtent->pszFullname);
1351 goto out;
1352 }
1353 }
1354
1355 /** @todo figure out what to do for unclean VMDKs. */
1356 RTMemTmpFree(pTmpGT1);
1357 RTMemTmpFree(pTmpGT2);
1358 }
1359
1360out:
1361 if (RT_FAILURE(rc))
1362 vmdkFreeGrainDirectory(pExtent);
1363 return rc;
1364}
1365
1366static int vmdkCreateGrainDirectory(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
1367 uint64_t uStartSector, bool fPreAlloc)
1368{
1369 int rc = VINF_SUCCESS;
1370 unsigned i;
1371 size_t cbGD = pExtent->cGDEntries * sizeof(uint32_t);
1372 size_t cbGDRounded = RT_ALIGN_64(pExtent->cGDEntries * sizeof(uint32_t), 512);
1373 size_t cbGTRounded;
1374 uint64_t cbOverhead;
1375
1376 if (fPreAlloc)
1377 {
1378 cbGTRounded = RT_ALIGN_64(pExtent->cGDEntries * pExtent->cGTEntries * sizeof(uint32_t), 512);
1379 cbOverhead = VMDK_SECTOR2BYTE(uStartSector) + cbGDRounded
1380 + cbGTRounded;
1381 }
1382 else
1383 {
1384 /* Use a dummy start sector for layout computation. */
1385 if (uStartSector == VMDK_GD_AT_END)
1386 uStartSector = 1;
1387 cbGTRounded = 0;
1388 cbOverhead = VMDK_SECTOR2BYTE(uStartSector) + cbGDRounded;
1389 }
1390
1391 /* For streamOptimized extents there is only one grain directory,
1392 * and for all others take redundant grain directory into account. */
1393 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
1394 {
1395 cbOverhead = RT_ALIGN_64(cbOverhead,
1396 VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain));
1397 }
1398 else
1399 {
1400 cbOverhead += cbGDRounded + cbGTRounded;
1401 cbOverhead = RT_ALIGN_64(cbOverhead,
1402 VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain));
1403 rc = vmdkFileSetSize(pImage, pExtent->pFile, cbOverhead);
1404 }
1405 if (RT_FAILURE(rc))
1406 goto out;
1407 pExtent->uAppendPosition = cbOverhead;
1408 pExtent->cOverheadSectors = VMDK_BYTE2SECTOR(cbOverhead);
1409
1410 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
1411 {
1412 pExtent->uSectorRGD = 0;
1413 pExtent->uSectorGD = uStartSector;
1414 }
1415 else
1416 {
1417 pExtent->uSectorRGD = uStartSector;
1418 pExtent->uSectorGD = uStartSector + VMDK_BYTE2SECTOR(cbGDRounded + cbGTRounded);
1419 }
1420
1421 rc = vmdkAllocStreamBuffers(pImage, pExtent);
1422 if (RT_FAILURE(rc))
1423 goto out;
1424
1425 rc = vmdkAllocGrainDirectory(pImage, pExtent);
1426 if (RT_FAILURE(rc))
1427 goto out;
1428
1429 if (fPreAlloc)
1430 {
1431 uint32_t uGTSectorLE;
1432 uint64_t uOffsetSectors;
1433
1434 if (pExtent->pRGD)
1435 {
1436 uOffsetSectors = pExtent->uSectorRGD + VMDK_BYTE2SECTOR(cbGDRounded);
1437 for (i = 0; i < pExtent->cGDEntries; i++)
1438 {
1439 pExtent->pRGD[i] = uOffsetSectors;
1440 uGTSectorLE = RT_H2LE_U64(uOffsetSectors);
1441 /* Write the redundant grain directory entry to disk. */
1442 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
1443 VMDK_SECTOR2BYTE(pExtent->uSectorRGD) + i * sizeof(uGTSectorLE),
1444 &uGTSectorLE, sizeof(uGTSectorLE), NULL);
1445 if (RT_FAILURE(rc))
1446 {
1447 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write new redundant grain directory entry in '%s'"), pExtent->pszFullname);
1448 goto out;
1449 }
1450 uOffsetSectors += VMDK_BYTE2SECTOR(pExtent->cGTEntries * sizeof(uint32_t));
1451 }
1452 }
1453
1454 uOffsetSectors = pExtent->uSectorGD + VMDK_BYTE2SECTOR(cbGDRounded);
1455 for (i = 0; i < pExtent->cGDEntries; i++)
1456 {
1457 pExtent->pGD[i] = uOffsetSectors;
1458 uGTSectorLE = RT_H2LE_U64(uOffsetSectors);
1459 /* Write the grain directory entry to disk. */
1460 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
1461 VMDK_SECTOR2BYTE(pExtent->uSectorGD) + i * sizeof(uGTSectorLE),
1462 &uGTSectorLE, sizeof(uGTSectorLE), NULL);
1463 if (RT_FAILURE(rc))
1464 {
1465 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write new grain directory entry in '%s'"), pExtent->pszFullname);
1466 goto out;
1467 }
1468 uOffsetSectors += VMDK_BYTE2SECTOR(pExtent->cGTEntries * sizeof(uint32_t));
1469 }
1470 }
1471
1472out:
1473 if (RT_FAILURE(rc))
1474 vmdkFreeGrainDirectory(pExtent);
1475 return rc;
1476}
1477
1478static int vmdkStringUnquote(PVMDKIMAGE pImage, const char *pszStr,
1479 char **ppszUnquoted, char **ppszNext)
1480{
1481 char *pszQ;
1482 char *pszUnquoted;
1483
1484 /* Skip over whitespace. */
1485 while (*pszStr == ' ' || *pszStr == '\t')
1486 pszStr++;
1487
1488 if (*pszStr != '"')
1489 {
1490 pszQ = (char *)pszStr;
1491 while (*pszQ && *pszQ != ' ' && *pszQ != '\t')
1492 pszQ++;
1493 }
1494 else
1495 {
1496 pszStr++;
1497 pszQ = (char *)strchr(pszStr, '"');
1498 if (pszQ == NULL)
1499 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: incorrectly quoted value in descriptor in '%s'"), pImage->pszFilename);
1500 }
1501
1502 pszUnquoted = (char *)RTMemTmpAlloc(pszQ - pszStr + 1);
1503 if (!pszUnquoted)
1504 return VERR_NO_MEMORY;
1505 memcpy(pszUnquoted, pszStr, pszQ - pszStr);
1506 pszUnquoted[pszQ - pszStr] = '\0';
1507 *ppszUnquoted = pszUnquoted;
1508 if (ppszNext)
1509 *ppszNext = pszQ + 1;
1510 return VINF_SUCCESS;
1511}
1512
1513static int vmdkDescInitStr(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1514 const char *pszLine)
1515{
1516 char *pEnd = pDescriptor->aLines[pDescriptor->cLines];
1517 ssize_t cbDiff = strlen(pszLine) + 1;
1518
1519 if ( pDescriptor->cLines >= VMDK_DESCRIPTOR_LINES_MAX - 1
1520 && pEnd - pDescriptor->aLines[0] > (ptrdiff_t)pDescriptor->cbDescAlloc - cbDiff)
1521 return vmdkError(pImage, VERR_BUFFER_OVERFLOW, RT_SRC_POS, N_("VMDK: descriptor too big in '%s'"), pImage->pszFilename);
1522
1523 memcpy(pEnd, pszLine, cbDiff);
1524 pDescriptor->cLines++;
1525 pDescriptor->aLines[pDescriptor->cLines] = pEnd + cbDiff;
1526 pDescriptor->fDirty = true;
1527
1528 return VINF_SUCCESS;
1529}
1530
1531static bool vmdkDescGetStr(PVMDKDESCRIPTOR pDescriptor, unsigned uStart,
1532 const char *pszKey, const char **ppszValue)
1533{
1534 size_t cbKey = strlen(pszKey);
1535 const char *pszValue;
1536
1537 while (uStart != 0)
1538 {
1539 if (!strncmp(pDescriptor->aLines[uStart], pszKey, cbKey))
1540 {
1541 /* Key matches, check for a '=' (preceded by whitespace). */
1542 pszValue = pDescriptor->aLines[uStart] + cbKey;
1543 while (*pszValue == ' ' || *pszValue == '\t')
1544 pszValue++;
1545 if (*pszValue == '=')
1546 {
1547 *ppszValue = pszValue + 1;
1548 break;
1549 }
1550 }
1551 uStart = pDescriptor->aNextLines[uStart];
1552 }
1553 return !!uStart;
1554}
1555
1556static int vmdkDescSetStr(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1557 unsigned uStart,
1558 const char *pszKey, const char *pszValue)
1559{
1560 char *pszTmp;
1561 size_t cbKey = strlen(pszKey);
1562 unsigned uLast = 0;
1563
1564 while (uStart != 0)
1565 {
1566 if (!strncmp(pDescriptor->aLines[uStart], pszKey, cbKey))
1567 {
1568 /* Key matches, check for a '=' (preceded by whitespace). */
1569 pszTmp = pDescriptor->aLines[uStart] + cbKey;
1570 while (*pszTmp == ' ' || *pszTmp == '\t')
1571 pszTmp++;
1572 if (*pszTmp == '=')
1573 {
1574 pszTmp++;
1575 while (*pszTmp == ' ' || *pszTmp == '\t')
1576 pszTmp++;
1577 break;
1578 }
1579 }
1580 if (!pDescriptor->aNextLines[uStart])
1581 uLast = uStart;
1582 uStart = pDescriptor->aNextLines[uStart];
1583 }
1584 if (uStart)
1585 {
1586 if (pszValue)
1587 {
1588 /* Key already exists, replace existing value. */
1589 size_t cbOldVal = strlen(pszTmp);
1590 size_t cbNewVal = strlen(pszValue);
1591 ssize_t cbDiff = cbNewVal - cbOldVal;
1592 /* Check for buffer overflow. */
1593 if ( pDescriptor->aLines[pDescriptor->cLines]
1594 - pDescriptor->aLines[0] > (ptrdiff_t)pDescriptor->cbDescAlloc - cbDiff)
1595 return vmdkError(pImage, VERR_BUFFER_OVERFLOW, RT_SRC_POS, N_("VMDK: descriptor too big in '%s'"), pImage->pszFilename);
1596
1597 memmove(pszTmp + cbNewVal, pszTmp + cbOldVal,
1598 pDescriptor->aLines[pDescriptor->cLines] - pszTmp - cbOldVal);
1599 memcpy(pszTmp, pszValue, cbNewVal + 1);
1600 for (unsigned i = uStart + 1; i <= pDescriptor->cLines; i++)
1601 pDescriptor->aLines[i] += cbDiff;
1602 }
1603 else
1604 {
1605 memmove(pDescriptor->aLines[uStart], pDescriptor->aLines[uStart+1],
1606 pDescriptor->aLines[pDescriptor->cLines] - pDescriptor->aLines[uStart+1] + 1);
1607 for (unsigned i = uStart + 1; i <= pDescriptor->cLines; i++)
1608 {
1609 pDescriptor->aLines[i-1] = pDescriptor->aLines[i];
1610 if (pDescriptor->aNextLines[i])
1611 pDescriptor->aNextLines[i-1] = pDescriptor->aNextLines[i] - 1;
1612 else
1613 pDescriptor->aNextLines[i-1] = 0;
1614 }
1615 pDescriptor->cLines--;
1616 /* Adjust starting line numbers of following descriptor sections. */
1617 if (uStart < pDescriptor->uFirstExtent)
1618 pDescriptor->uFirstExtent--;
1619 if (uStart < pDescriptor->uFirstDDB)
1620 pDescriptor->uFirstDDB--;
1621 }
1622 }
1623 else
1624 {
1625 /* Key doesn't exist, append after the last entry in this category. */
1626 if (!pszValue)
1627 {
1628 /* Key doesn't exist, and it should be removed. Simply a no-op. */
1629 return VINF_SUCCESS;
1630 }
1631 cbKey = strlen(pszKey);
1632 size_t cbValue = strlen(pszValue);
1633 ssize_t cbDiff = cbKey + 1 + cbValue + 1;
1634 /* Check for buffer overflow. */
1635 if ( (pDescriptor->cLines >= VMDK_DESCRIPTOR_LINES_MAX - 1)
1636 || ( pDescriptor->aLines[pDescriptor->cLines]
1637 - pDescriptor->aLines[0] > (ptrdiff_t)pDescriptor->cbDescAlloc - cbDiff))
1638 return vmdkError(pImage, VERR_BUFFER_OVERFLOW, RT_SRC_POS, N_("VMDK: descriptor too big in '%s'"), pImage->pszFilename);
1639 for (unsigned i = pDescriptor->cLines + 1; i > uLast + 1; i--)
1640 {
1641 pDescriptor->aLines[i] = pDescriptor->aLines[i - 1];
1642 if (pDescriptor->aNextLines[i - 1])
1643 pDescriptor->aNextLines[i] = pDescriptor->aNextLines[i - 1] + 1;
1644 else
1645 pDescriptor->aNextLines[i] = 0;
1646 }
1647 uStart = uLast + 1;
1648 pDescriptor->aNextLines[uLast] = uStart;
1649 pDescriptor->aNextLines[uStart] = 0;
1650 pDescriptor->cLines++;
1651 pszTmp = pDescriptor->aLines[uStart];
1652 memmove(pszTmp + cbDiff, pszTmp,
1653 pDescriptor->aLines[pDescriptor->cLines] - pszTmp);
1654 memcpy(pDescriptor->aLines[uStart], pszKey, cbKey);
1655 pDescriptor->aLines[uStart][cbKey] = '=';
1656 memcpy(pDescriptor->aLines[uStart] + cbKey + 1, pszValue, cbValue + 1);
1657 for (unsigned i = uStart + 1; i <= pDescriptor->cLines; i++)
1658 pDescriptor->aLines[i] += cbDiff;
1659
1660 /* Adjust starting line numbers of following descriptor sections. */
1661 if (uStart <= pDescriptor->uFirstExtent)
1662 pDescriptor->uFirstExtent++;
1663 if (uStart <= pDescriptor->uFirstDDB)
1664 pDescriptor->uFirstDDB++;
1665 }
1666 pDescriptor->fDirty = true;
1667 return VINF_SUCCESS;
1668}
1669
1670static int vmdkDescBaseGetU32(PVMDKDESCRIPTOR pDescriptor, const char *pszKey,
1671 uint32_t *puValue)
1672{
1673 const char *pszValue;
1674
1675 if (!vmdkDescGetStr(pDescriptor, pDescriptor->uFirstDesc, pszKey,
1676 &pszValue))
1677 return VERR_VD_VMDK_VALUE_NOT_FOUND;
1678 return RTStrToUInt32Ex(pszValue, NULL, 10, puValue);
1679}
1680
1681static int vmdkDescBaseGetStr(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1682 const char *pszKey, const char **ppszValue)
1683{
1684 const char *pszValue;
1685 char *pszValueUnquoted;
1686
1687 if (!vmdkDescGetStr(pDescriptor, pDescriptor->uFirstDesc, pszKey,
1688 &pszValue))
1689 return VERR_VD_VMDK_VALUE_NOT_FOUND;
1690 int rc = vmdkStringUnquote(pImage, pszValue, &pszValueUnquoted, NULL);
1691 if (RT_FAILURE(rc))
1692 return rc;
1693 *ppszValue = pszValueUnquoted;
1694 return rc;
1695}
1696
1697static int vmdkDescBaseSetStr(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1698 const char *pszKey, const char *pszValue)
1699{
1700 char *pszValueQuoted;
1701
1702 RTStrAPrintf(&pszValueQuoted, "\"%s\"", pszValue);
1703 if (!pszValueQuoted)
1704 return VERR_NO_STR_MEMORY;
1705 int rc = vmdkDescSetStr(pImage, pDescriptor, pDescriptor->uFirstDesc, pszKey,
1706 pszValueQuoted);
1707 RTStrFree(pszValueQuoted);
1708 return rc;
1709}
1710
1711static void vmdkDescExtRemoveDummy(PVMDKIMAGE pImage,
1712 PVMDKDESCRIPTOR pDescriptor)
1713{
1714 unsigned uEntry = pDescriptor->uFirstExtent;
1715 ssize_t cbDiff;
1716
1717 if (!uEntry)
1718 return;
1719
1720 cbDiff = strlen(pDescriptor->aLines[uEntry]) + 1;
1721 /* Move everything including \0 in the entry marking the end of buffer. */
1722 memmove(pDescriptor->aLines[uEntry], pDescriptor->aLines[uEntry + 1],
1723 pDescriptor->aLines[pDescriptor->cLines] - pDescriptor->aLines[uEntry + 1] + 1);
1724 for (unsigned i = uEntry + 1; i <= pDescriptor->cLines; i++)
1725 {
1726 pDescriptor->aLines[i - 1] = pDescriptor->aLines[i] - cbDiff;
1727 if (pDescriptor->aNextLines[i])
1728 pDescriptor->aNextLines[i - 1] = pDescriptor->aNextLines[i] - 1;
1729 else
1730 pDescriptor->aNextLines[i - 1] = 0;
1731 }
1732 pDescriptor->cLines--;
1733 if (pDescriptor->uFirstDDB)
1734 pDescriptor->uFirstDDB--;
1735
1736 return;
1737}
1738
1739static int vmdkDescExtInsert(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1740 VMDKACCESS enmAccess, uint64_t cNominalSectors,
1741 VMDKETYPE enmType, const char *pszBasename,
1742 uint64_t uSectorOffset)
1743{
1744 static const char *apszAccess[] = { "NOACCESS", "RDONLY", "RW" };
1745 static const char *apszType[] = { "", "SPARSE", "FLAT", "ZERO", "VMFS" };
1746 char *pszTmp;
1747 unsigned uStart = pDescriptor->uFirstExtent, uLast = 0;
1748 char szExt[1024];
1749 ssize_t cbDiff;
1750
1751 Assert((unsigned)enmAccess < RT_ELEMENTS(apszAccess));
1752 Assert((unsigned)enmType < RT_ELEMENTS(apszType));
1753
1754 /* Find last entry in extent description. */
1755 while (uStart)
1756 {
1757 if (!pDescriptor->aNextLines[uStart])
1758 uLast = uStart;
1759 uStart = pDescriptor->aNextLines[uStart];
1760 }
1761
1762 if (enmType == VMDKETYPE_ZERO)
1763 {
1764 RTStrPrintf(szExt, sizeof(szExt), "%s %llu %s ", apszAccess[enmAccess],
1765 cNominalSectors, apszType[enmType]);
1766 }
1767 else if (enmType == VMDKETYPE_FLAT)
1768 {
1769 RTStrPrintf(szExt, sizeof(szExt), "%s %llu %s \"%s\" %llu",
1770 apszAccess[enmAccess], cNominalSectors,
1771 apszType[enmType], pszBasename, uSectorOffset);
1772 }
1773 else
1774 {
1775 RTStrPrintf(szExt, sizeof(szExt), "%s %llu %s \"%s\"",
1776 apszAccess[enmAccess], cNominalSectors,
1777 apszType[enmType], pszBasename);
1778 }
1779 cbDiff = strlen(szExt) + 1;
1780
1781 /* Check for buffer overflow. */
1782 if ( (pDescriptor->cLines >= VMDK_DESCRIPTOR_LINES_MAX - 1)
1783 || ( pDescriptor->aLines[pDescriptor->cLines]
1784 - pDescriptor->aLines[0] > (ptrdiff_t)pDescriptor->cbDescAlloc - cbDiff))
1785 return vmdkError(pImage, VERR_BUFFER_OVERFLOW, RT_SRC_POS, N_("VMDK: descriptor too big in '%s'"), pImage->pszFilename);
1786
1787 for (unsigned i = pDescriptor->cLines + 1; i > uLast + 1; i--)
1788 {
1789 pDescriptor->aLines[i] = pDescriptor->aLines[i - 1];
1790 if (pDescriptor->aNextLines[i - 1])
1791 pDescriptor->aNextLines[i] = pDescriptor->aNextLines[i - 1] + 1;
1792 else
1793 pDescriptor->aNextLines[i] = 0;
1794 }
1795 uStart = uLast + 1;
1796 pDescriptor->aNextLines[uLast] = uStart;
1797 pDescriptor->aNextLines[uStart] = 0;
1798 pDescriptor->cLines++;
1799 pszTmp = pDescriptor->aLines[uStart];
1800 memmove(pszTmp + cbDiff, pszTmp,
1801 pDescriptor->aLines[pDescriptor->cLines] - pszTmp);
1802 memcpy(pDescriptor->aLines[uStart], szExt, cbDiff);
1803 for (unsigned i = uStart + 1; i <= pDescriptor->cLines; i++)
1804 pDescriptor->aLines[i] += cbDiff;
1805
1806 /* Adjust starting line numbers of following descriptor sections. */
1807 if (uStart <= pDescriptor->uFirstDDB)
1808 pDescriptor->uFirstDDB++;
1809
1810 pDescriptor->fDirty = true;
1811 return VINF_SUCCESS;
1812}
1813
1814static int vmdkDescDDBGetStr(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1815 const char *pszKey, const char **ppszValue)
1816{
1817 const char *pszValue;
1818 char *pszValueUnquoted;
1819
1820 if (!vmdkDescGetStr(pDescriptor, pDescriptor->uFirstDDB, pszKey,
1821 &pszValue))
1822 return VERR_VD_VMDK_VALUE_NOT_FOUND;
1823 int rc = vmdkStringUnquote(pImage, pszValue, &pszValueUnquoted, NULL);
1824 if (RT_FAILURE(rc))
1825 return rc;
1826 *ppszValue = pszValueUnquoted;
1827 return rc;
1828}
1829
1830static int vmdkDescDDBGetU32(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1831 const char *pszKey, uint32_t *puValue)
1832{
1833 const char *pszValue;
1834 char *pszValueUnquoted;
1835
1836 if (!vmdkDescGetStr(pDescriptor, pDescriptor->uFirstDDB, pszKey,
1837 &pszValue))
1838 return VERR_VD_VMDK_VALUE_NOT_FOUND;
1839 int rc = vmdkStringUnquote(pImage, pszValue, &pszValueUnquoted, NULL);
1840 if (RT_FAILURE(rc))
1841 return rc;
1842 rc = RTStrToUInt32Ex(pszValueUnquoted, NULL, 10, puValue);
1843 RTMemTmpFree(pszValueUnquoted);
1844 return rc;
1845}
1846
1847static int vmdkDescDDBGetUuid(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1848 const char *pszKey, PRTUUID pUuid)
1849{
1850 const char *pszValue;
1851 char *pszValueUnquoted;
1852
1853 if (!vmdkDescGetStr(pDescriptor, pDescriptor->uFirstDDB, pszKey,
1854 &pszValue))
1855 return VERR_VD_VMDK_VALUE_NOT_FOUND;
1856 int rc = vmdkStringUnquote(pImage, pszValue, &pszValueUnquoted, NULL);
1857 if (RT_FAILURE(rc))
1858 return rc;
1859 rc = RTUuidFromStr(pUuid, pszValueUnquoted);
1860 RTMemTmpFree(pszValueUnquoted);
1861 return rc;
1862}
1863
1864static int vmdkDescDDBSetStr(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1865 const char *pszKey, const char *pszVal)
1866{
1867 int rc;
1868 char *pszValQuoted;
1869
1870 if (pszVal)
1871 {
1872 RTStrAPrintf(&pszValQuoted, "\"%s\"", pszVal);
1873 if (!pszValQuoted)
1874 return VERR_NO_STR_MEMORY;
1875 }
1876 else
1877 pszValQuoted = NULL;
1878 rc = vmdkDescSetStr(pImage, pDescriptor, pDescriptor->uFirstDDB, pszKey,
1879 pszValQuoted);
1880 if (pszValQuoted)
1881 RTStrFree(pszValQuoted);
1882 return rc;
1883}
1884
1885static int vmdkDescDDBSetUuid(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1886 const char *pszKey, PCRTUUID pUuid)
1887{
1888 char *pszUuid;
1889
1890 RTStrAPrintf(&pszUuid, "\"%RTuuid\"", pUuid);
1891 if (!pszUuid)
1892 return VERR_NO_STR_MEMORY;
1893 int rc = vmdkDescSetStr(pImage, pDescriptor, pDescriptor->uFirstDDB, pszKey,
1894 pszUuid);
1895 RTStrFree(pszUuid);
1896 return rc;
1897}
1898
1899static int vmdkDescDDBSetU32(PVMDKIMAGE pImage, PVMDKDESCRIPTOR pDescriptor,
1900 const char *pszKey, uint32_t uValue)
1901{
1902 char *pszValue;
1903
1904 RTStrAPrintf(&pszValue, "\"%d\"", uValue);
1905 if (!pszValue)
1906 return VERR_NO_STR_MEMORY;
1907 int rc = vmdkDescSetStr(pImage, pDescriptor, pDescriptor->uFirstDDB, pszKey,
1908 pszValue);
1909 RTStrFree(pszValue);
1910 return rc;
1911}
1912
1913static int vmdkPreprocessDescriptor(PVMDKIMAGE pImage, char *pDescData,
1914 size_t cbDescData,
1915 PVMDKDESCRIPTOR pDescriptor)
1916{
1917 int rc = VINF_SUCCESS;
1918 unsigned cLine = 0, uLastNonEmptyLine = 0;
1919 char *pTmp = pDescData;
1920
1921 pDescriptor->cbDescAlloc = cbDescData;
1922 while (*pTmp != '\0')
1923 {
1924 pDescriptor->aLines[cLine++] = pTmp;
1925 if (cLine >= VMDK_DESCRIPTOR_LINES_MAX)
1926 {
1927 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: descriptor too big in '%s'"), pImage->pszFilename);
1928 goto out;
1929 }
1930
1931 while (*pTmp != '\0' && *pTmp != '\n')
1932 {
1933 if (*pTmp == '\r')
1934 {
1935 if (*(pTmp + 1) != '\n')
1936 {
1937 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: unsupported end of line in descriptor in '%s'"), pImage->pszFilename);
1938 goto out;
1939 }
1940 else
1941 {
1942 /* Get rid of CR character. */
1943 *pTmp = '\0';
1944 }
1945 }
1946 pTmp++;
1947 }
1948 /* Get rid of LF character. */
1949 if (*pTmp == '\n')
1950 {
1951 *pTmp = '\0';
1952 pTmp++;
1953 }
1954 }
1955 pDescriptor->cLines = cLine;
1956 /* Pointer right after the end of the used part of the buffer. */
1957 pDescriptor->aLines[cLine] = pTmp;
1958
1959 if ( strcmp(pDescriptor->aLines[0], "# Disk DescriptorFile")
1960 && strcmp(pDescriptor->aLines[0], "# Disk Descriptor File"))
1961 {
1962 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: descriptor does not start as expected in '%s'"), pImage->pszFilename);
1963 goto out;
1964 }
1965
1966 /* Initialize those, because we need to be able to reopen an image. */
1967 pDescriptor->uFirstDesc = 0;
1968 pDescriptor->uFirstExtent = 0;
1969 pDescriptor->uFirstDDB = 0;
1970 for (unsigned i = 0; i < cLine; i++)
1971 {
1972 if (*pDescriptor->aLines[i] != '#' && *pDescriptor->aLines[i] != '\0')
1973 {
1974 if ( !strncmp(pDescriptor->aLines[i], "RW", 2)
1975 || !strncmp(pDescriptor->aLines[i], "RDONLY", 6)
1976 || !strncmp(pDescriptor->aLines[i], "NOACCESS", 8) )
1977 {
1978 /* An extent descriptor. */
1979 if (!pDescriptor->uFirstDesc || pDescriptor->uFirstDDB)
1980 {
1981 /* Incorrect ordering of entries. */
1982 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: incorrect ordering of entries in descriptor in '%s'"), pImage->pszFilename);
1983 goto out;
1984 }
1985 if (!pDescriptor->uFirstExtent)
1986 {
1987 pDescriptor->uFirstExtent = i;
1988 uLastNonEmptyLine = 0;
1989 }
1990 }
1991 else if (!strncmp(pDescriptor->aLines[i], "ddb.", 4))
1992 {
1993 /* A disk database entry. */
1994 if (!pDescriptor->uFirstDesc || !pDescriptor->uFirstExtent)
1995 {
1996 /* Incorrect ordering of entries. */
1997 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: incorrect ordering of entries in descriptor in '%s'"), pImage->pszFilename);
1998 goto out;
1999 }
2000 if (!pDescriptor->uFirstDDB)
2001 {
2002 pDescriptor->uFirstDDB = i;
2003 uLastNonEmptyLine = 0;
2004 }
2005 }
2006 else
2007 {
2008 /* A normal entry. */
2009 if (pDescriptor->uFirstExtent || pDescriptor->uFirstDDB)
2010 {
2011 /* Incorrect ordering of entries. */
2012 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: incorrect ordering of entries in descriptor in '%s'"), pImage->pszFilename);
2013 goto out;
2014 }
2015 if (!pDescriptor->uFirstDesc)
2016 {
2017 pDescriptor->uFirstDesc = i;
2018 uLastNonEmptyLine = 0;
2019 }
2020 }
2021 if (uLastNonEmptyLine)
2022 pDescriptor->aNextLines[uLastNonEmptyLine] = i;
2023 uLastNonEmptyLine = i;
2024 }
2025 }
2026
2027out:
2028 return rc;
2029}
2030
2031static int vmdkDescSetPCHSGeometry(PVMDKIMAGE pImage,
2032 PCVDGEOMETRY pPCHSGeometry)
2033{
2034 int rc = vmdkDescDDBSetU32(pImage, &pImage->Descriptor,
2035 VMDK_DDB_GEO_PCHS_CYLINDERS,
2036 pPCHSGeometry->cCylinders);
2037 if (RT_FAILURE(rc))
2038 return rc;
2039 rc = vmdkDescDDBSetU32(pImage, &pImage->Descriptor,
2040 VMDK_DDB_GEO_PCHS_HEADS,
2041 pPCHSGeometry->cHeads);
2042 if (RT_FAILURE(rc))
2043 return rc;
2044 rc = vmdkDescDDBSetU32(pImage, &pImage->Descriptor,
2045 VMDK_DDB_GEO_PCHS_SECTORS,
2046 pPCHSGeometry->cSectors);
2047 return rc;
2048}
2049
2050static int vmdkDescSetLCHSGeometry(PVMDKIMAGE pImage,
2051 PCVDGEOMETRY pLCHSGeometry)
2052{
2053 int rc = vmdkDescDDBSetU32(pImage, &pImage->Descriptor,
2054 VMDK_DDB_GEO_LCHS_CYLINDERS,
2055 pLCHSGeometry->cCylinders);
2056 if (RT_FAILURE(rc))
2057 return rc;
2058 rc = vmdkDescDDBSetU32(pImage, &pImage->Descriptor,
2059 VMDK_DDB_GEO_LCHS_HEADS,
2060
2061 pLCHSGeometry->cHeads);
2062 if (RT_FAILURE(rc))
2063 return rc;
2064 rc = vmdkDescDDBSetU32(pImage, &pImage->Descriptor,
2065 VMDK_DDB_GEO_LCHS_SECTORS,
2066 pLCHSGeometry->cSectors);
2067 return rc;
2068}
2069
2070static int vmdkCreateDescriptor(PVMDKIMAGE pImage, char *pDescData,
2071 size_t cbDescData, PVMDKDESCRIPTOR pDescriptor)
2072{
2073 int rc;
2074
2075 pDescriptor->uFirstDesc = 0;
2076 pDescriptor->uFirstExtent = 0;
2077 pDescriptor->uFirstDDB = 0;
2078 pDescriptor->cLines = 0;
2079 pDescriptor->cbDescAlloc = cbDescData;
2080 pDescriptor->fDirty = false;
2081 pDescriptor->aLines[pDescriptor->cLines] = pDescData;
2082 memset(pDescriptor->aNextLines, '\0', sizeof(pDescriptor->aNextLines));
2083
2084 rc = vmdkDescInitStr(pImage, pDescriptor, "# Disk DescriptorFile");
2085 if (RT_FAILURE(rc))
2086 goto out;
2087 rc = vmdkDescInitStr(pImage, pDescriptor, "version=1");
2088 if (RT_FAILURE(rc))
2089 goto out;
2090 pDescriptor->uFirstDesc = pDescriptor->cLines - 1;
2091 rc = vmdkDescInitStr(pImage, pDescriptor, "");
2092 if (RT_FAILURE(rc))
2093 goto out;
2094 rc = vmdkDescInitStr(pImage, pDescriptor, "# Extent description");
2095 if (RT_FAILURE(rc))
2096 goto out;
2097 rc = vmdkDescInitStr(pImage, pDescriptor, "NOACCESS 0 ZERO ");
2098 if (RT_FAILURE(rc))
2099 goto out;
2100 pDescriptor->uFirstExtent = pDescriptor->cLines - 1;
2101 rc = vmdkDescInitStr(pImage, pDescriptor, "");
2102 if (RT_FAILURE(rc))
2103 goto out;
2104 /* The trailing space is created by VMware, too. */
2105 rc = vmdkDescInitStr(pImage, pDescriptor, "# The disk Data Base ");
2106 if (RT_FAILURE(rc))
2107 goto out;
2108 rc = vmdkDescInitStr(pImage, pDescriptor, "#DDB");
2109 if (RT_FAILURE(rc))
2110 goto out;
2111 rc = vmdkDescInitStr(pImage, pDescriptor, "");
2112 if (RT_FAILURE(rc))
2113 goto out;
2114 rc = vmdkDescInitStr(pImage, pDescriptor, "ddb.virtualHWVersion = \"4\"");
2115 if (RT_FAILURE(rc))
2116 goto out;
2117 pDescriptor->uFirstDDB = pDescriptor->cLines - 1;
2118
2119 /* Now that the framework is in place, use the normal functions to insert
2120 * the remaining keys. */
2121 char szBuf[9];
2122 RTStrPrintf(szBuf, sizeof(szBuf), "%08x", RTRandU32());
2123 rc = vmdkDescSetStr(pImage, pDescriptor, pDescriptor->uFirstDesc,
2124 "CID", szBuf);
2125 if (RT_FAILURE(rc))
2126 goto out;
2127 rc = vmdkDescSetStr(pImage, pDescriptor, pDescriptor->uFirstDesc,
2128 "parentCID", "ffffffff");
2129 if (RT_FAILURE(rc))
2130 goto out;
2131
2132 rc = vmdkDescDDBSetStr(pImage, pDescriptor, "ddb.adapterType", "ide");
2133 if (RT_FAILURE(rc))
2134 goto out;
2135
2136out:
2137 return rc;
2138}
2139
2140static int vmdkParseDescriptor(PVMDKIMAGE pImage, char *pDescData,
2141 size_t cbDescData)
2142{
2143 int rc;
2144 unsigned cExtents;
2145 unsigned uLine;
2146 unsigned i;
2147
2148 rc = vmdkPreprocessDescriptor(pImage, pDescData, cbDescData,
2149 &pImage->Descriptor);
2150 if (RT_FAILURE(rc))
2151 return rc;
2152
2153 /* Check version, must be 1. */
2154 uint32_t uVersion;
2155 rc = vmdkDescBaseGetU32(&pImage->Descriptor, "version", &uVersion);
2156 if (RT_FAILURE(rc))
2157 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error finding key 'version' in descriptor in '%s'"), pImage->pszFilename);
2158 if (uVersion != 1)
2159 return vmdkError(pImage, VERR_VD_VMDK_UNSUPPORTED_VERSION, RT_SRC_POS, N_("VMDK: unsupported format version in descriptor in '%s'"), pImage->pszFilename);
2160
2161 /* Get image creation type and determine image flags. */
2162 const char *pszCreateType = NULL; /* initialized to make gcc shut up */
2163 rc = vmdkDescBaseGetStr(pImage, &pImage->Descriptor, "createType",
2164 &pszCreateType);
2165 if (RT_FAILURE(rc))
2166 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot get image type from descriptor in '%s'"), pImage->pszFilename);
2167 if ( !strcmp(pszCreateType, "twoGbMaxExtentSparse")
2168 || !strcmp(pszCreateType, "twoGbMaxExtentFlat"))
2169 pImage->uImageFlags |= VD_VMDK_IMAGE_FLAGS_SPLIT_2G;
2170 else if ( !strcmp(pszCreateType, "partitionedDevice")
2171 || !strcmp(pszCreateType, "fullDevice"))
2172 pImage->uImageFlags |= VD_VMDK_IMAGE_FLAGS_RAWDISK;
2173 else if (!strcmp(pszCreateType, "streamOptimized"))
2174 pImage->uImageFlags |= VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED;
2175 else if (!strcmp(pszCreateType, "vmfs"))
2176 pImage->uImageFlags |= VD_IMAGE_FLAGS_FIXED | VD_VMDK_IMAGE_FLAGS_ESX;
2177 RTStrFree((char *)(void *)pszCreateType);
2178
2179 /* Count the number of extent config entries. */
2180 for (uLine = pImage->Descriptor.uFirstExtent, cExtents = 0;
2181 uLine != 0;
2182 uLine = pImage->Descriptor.aNextLines[uLine], cExtents++)
2183 /* nothing */;
2184
2185 if (!pImage->pDescData && cExtents != 1)
2186 {
2187 /* Monolithic image, must have only one extent (already opened). */
2188 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: monolithic image may only have one extent in '%s'"), pImage->pszFilename);
2189 }
2190
2191 if (pImage->pDescData)
2192 {
2193 /* Non-monolithic image, extents need to be allocated. */
2194 rc = vmdkCreateExtents(pImage, cExtents);
2195 if (RT_FAILURE(rc))
2196 return rc;
2197 }
2198
2199 for (i = 0, uLine = pImage->Descriptor.uFirstExtent;
2200 i < cExtents; i++, uLine = pImage->Descriptor.aNextLines[uLine])
2201 {
2202 char *pszLine = pImage->Descriptor.aLines[uLine];
2203
2204 /* Access type of the extent. */
2205 if (!strncmp(pszLine, "RW", 2))
2206 {
2207 pImage->pExtents[i].enmAccess = VMDKACCESS_READWRITE;
2208 pszLine += 2;
2209 }
2210 else if (!strncmp(pszLine, "RDONLY", 6))
2211 {
2212 pImage->pExtents[i].enmAccess = VMDKACCESS_READONLY;
2213 pszLine += 6;
2214 }
2215 else if (!strncmp(pszLine, "NOACCESS", 8))
2216 {
2217 pImage->pExtents[i].enmAccess = VMDKACCESS_NOACCESS;
2218 pszLine += 8;
2219 }
2220 else
2221 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: parse error in extent description in '%s'"), pImage->pszFilename);
2222 if (*pszLine++ != ' ')
2223 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: parse error in extent description in '%s'"), pImage->pszFilename);
2224
2225 /* Nominal size of the extent. */
2226 rc = RTStrToUInt64Ex(pszLine, &pszLine, 10,
2227 &pImage->pExtents[i].cNominalSectors);
2228 if (RT_FAILURE(rc))
2229 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: parse error in extent description in '%s'"), pImage->pszFilename);
2230 if (*pszLine++ != ' ')
2231 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: parse error in extent description in '%s'"), pImage->pszFilename);
2232
2233 /* Type of the extent. */
2234#ifdef VBOX_WITH_VMDK_ESX
2235 /** @todo Add the ESX extent types. Not necessary for now because
2236 * the ESX extent types are only used inside an ESX server. They are
2237 * automatically converted if the VMDK is exported. */
2238#endif /* VBOX_WITH_VMDK_ESX */
2239 if (!strncmp(pszLine, "SPARSE", 6))
2240 {
2241 pImage->pExtents[i].enmType = VMDKETYPE_HOSTED_SPARSE;
2242 pszLine += 6;
2243 }
2244 else if (!strncmp(pszLine, "FLAT", 4))
2245 {
2246 pImage->pExtents[i].enmType = VMDKETYPE_FLAT;
2247 pszLine += 4;
2248 }
2249 else if (!strncmp(pszLine, "ZERO", 4))
2250 {
2251 pImage->pExtents[i].enmType = VMDKETYPE_ZERO;
2252 pszLine += 4;
2253 }
2254 else if (!strncmp(pszLine, "VMFS", 4))
2255 {
2256 pImage->pExtents[i].enmType = VMDKETYPE_VMFS;
2257 pszLine += 4;
2258 }
2259 else
2260 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: parse error in extent description in '%s'"), pImage->pszFilename);
2261
2262 if (pImage->pExtents[i].enmType == VMDKETYPE_ZERO)
2263 {
2264 /* This one has no basename or offset. */
2265 if (*pszLine == ' ')
2266 pszLine++;
2267 if (*pszLine != '\0')
2268 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: parse error in extent description in '%s'"), pImage->pszFilename);
2269 pImage->pExtents[i].pszBasename = NULL;
2270 }
2271 else
2272 {
2273 /* All other extent types have basename and optional offset. */
2274 if (*pszLine++ != ' ')
2275 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: parse error in extent description in '%s'"), pImage->pszFilename);
2276
2277 /* Basename of the image. Surrounded by quotes. */
2278 char *pszBasename;
2279 rc = vmdkStringUnquote(pImage, pszLine, &pszBasename, &pszLine);
2280 if (RT_FAILURE(rc))
2281 return rc;
2282 pImage->pExtents[i].pszBasename = pszBasename;
2283 if (*pszLine == ' ')
2284 {
2285 pszLine++;
2286 if (*pszLine != '\0')
2287 {
2288 /* Optional offset in extent specified. */
2289 rc = RTStrToUInt64Ex(pszLine, &pszLine, 10,
2290 &pImage->pExtents[i].uSectorOffset);
2291 if (RT_FAILURE(rc))
2292 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: parse error in extent description in '%s'"), pImage->pszFilename);
2293 }
2294 }
2295
2296 if (*pszLine != '\0')
2297 return vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: parse error in extent description in '%s'"), pImage->pszFilename);
2298 }
2299 }
2300
2301 /* Determine PCHS geometry (autogenerate if necessary). */
2302 rc = vmdkDescDDBGetU32(pImage, &pImage->Descriptor,
2303 VMDK_DDB_GEO_PCHS_CYLINDERS,
2304 &pImage->PCHSGeometry.cCylinders);
2305 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2306 pImage->PCHSGeometry.cCylinders = 0;
2307 else if (RT_FAILURE(rc))
2308 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error getting PCHS geometry from extent description in '%s'"), pImage->pszFilename);
2309 rc = vmdkDescDDBGetU32(pImage, &pImage->Descriptor,
2310 VMDK_DDB_GEO_PCHS_HEADS,
2311 &pImage->PCHSGeometry.cHeads);
2312 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2313 pImage->PCHSGeometry.cHeads = 0;
2314 else if (RT_FAILURE(rc))
2315 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error getting PCHS geometry from extent description in '%s'"), pImage->pszFilename);
2316 rc = vmdkDescDDBGetU32(pImage, &pImage->Descriptor,
2317 VMDK_DDB_GEO_PCHS_SECTORS,
2318 &pImage->PCHSGeometry.cSectors);
2319 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2320 pImage->PCHSGeometry.cSectors = 0;
2321 else if (RT_FAILURE(rc))
2322 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error getting PCHS geometry from extent description in '%s'"), pImage->pszFilename);
2323 if ( pImage->PCHSGeometry.cCylinders == 0
2324 || pImage->PCHSGeometry.cHeads == 0
2325 || pImage->PCHSGeometry.cHeads > 16
2326 || pImage->PCHSGeometry.cSectors == 0
2327 || pImage->PCHSGeometry.cSectors > 63)
2328 {
2329 /* Mark PCHS geometry as not yet valid (can't do the calculation here
2330 * as the total image size isn't known yet). */
2331 pImage->PCHSGeometry.cCylinders = 0;
2332 pImage->PCHSGeometry.cHeads = 16;
2333 pImage->PCHSGeometry.cSectors = 63;
2334 }
2335
2336 /* Determine LCHS geometry (set to 0 if not specified). */
2337 rc = vmdkDescDDBGetU32(pImage, &pImage->Descriptor,
2338 VMDK_DDB_GEO_LCHS_CYLINDERS,
2339 &pImage->LCHSGeometry.cCylinders);
2340 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2341 pImage->LCHSGeometry.cCylinders = 0;
2342 else if (RT_FAILURE(rc))
2343 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error getting LCHS geometry from extent description in '%s'"), pImage->pszFilename);
2344 rc = vmdkDescDDBGetU32(pImage, &pImage->Descriptor,
2345 VMDK_DDB_GEO_LCHS_HEADS,
2346 &pImage->LCHSGeometry.cHeads);
2347 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2348 pImage->LCHSGeometry.cHeads = 0;
2349 else if (RT_FAILURE(rc))
2350 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error getting LCHS geometry from extent description in '%s'"), pImage->pszFilename);
2351 rc = vmdkDescDDBGetU32(pImage, &pImage->Descriptor,
2352 VMDK_DDB_GEO_LCHS_SECTORS,
2353 &pImage->LCHSGeometry.cSectors);
2354 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2355 pImage->LCHSGeometry.cSectors = 0;
2356 else if (RT_FAILURE(rc))
2357 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error getting LCHS geometry from extent description in '%s'"), pImage->pszFilename);
2358 if ( pImage->LCHSGeometry.cCylinders == 0
2359 || pImage->LCHSGeometry.cHeads == 0
2360 || pImage->LCHSGeometry.cSectors == 0)
2361 {
2362 pImage->LCHSGeometry.cCylinders = 0;
2363 pImage->LCHSGeometry.cHeads = 0;
2364 pImage->LCHSGeometry.cSectors = 0;
2365 }
2366
2367 /* Get image UUID. */
2368 rc = vmdkDescDDBGetUuid(pImage, &pImage->Descriptor, VMDK_DDB_IMAGE_UUID,
2369 &pImage->ImageUuid);
2370 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2371 {
2372 /* Image without UUID. Probably created by VMware and not yet used
2373 * by VirtualBox. Can only be added for images opened in read/write
2374 * mode, so don't bother producing a sensible UUID otherwise. */
2375 if (pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
2376 RTUuidClear(&pImage->ImageUuid);
2377 else
2378 {
2379 rc = RTUuidCreate(&pImage->ImageUuid);
2380 if (RT_FAILURE(rc))
2381 return rc;
2382 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
2383 VMDK_DDB_IMAGE_UUID, &pImage->ImageUuid);
2384 if (RT_FAILURE(rc))
2385 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing image UUID in descriptor in '%s'"), pImage->pszFilename);
2386 }
2387 }
2388 else if (RT_FAILURE(rc))
2389 return rc;
2390
2391 /* Get image modification UUID. */
2392 rc = vmdkDescDDBGetUuid(pImage, &pImage->Descriptor,
2393 VMDK_DDB_MODIFICATION_UUID,
2394 &pImage->ModificationUuid);
2395 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2396 {
2397 /* Image without UUID. Probably created by VMware and not yet used
2398 * by VirtualBox. Can only be added for images opened in read/write
2399 * mode, so don't bother producing a sensible UUID otherwise. */
2400 if (pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
2401 RTUuidClear(&pImage->ModificationUuid);
2402 else
2403 {
2404 rc = RTUuidCreate(&pImage->ModificationUuid);
2405 if (RT_FAILURE(rc))
2406 return rc;
2407 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
2408 VMDK_DDB_MODIFICATION_UUID,
2409 &pImage->ModificationUuid);
2410 if (RT_FAILURE(rc))
2411 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing image modification UUID in descriptor in '%s'"), pImage->pszFilename);
2412 }
2413 }
2414 else if (RT_FAILURE(rc))
2415 return rc;
2416
2417 /* Get UUID of parent image. */
2418 rc = vmdkDescDDBGetUuid(pImage, &pImage->Descriptor, VMDK_DDB_PARENT_UUID,
2419 &pImage->ParentUuid);
2420 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2421 {
2422 /* Image without UUID. Probably created by VMware and not yet used
2423 * by VirtualBox. Can only be added for images opened in read/write
2424 * mode, so don't bother producing a sensible UUID otherwise. */
2425 if (pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
2426 RTUuidClear(&pImage->ParentUuid);
2427 else
2428 {
2429 rc = RTUuidClear(&pImage->ParentUuid);
2430 if (RT_FAILURE(rc))
2431 return rc;
2432 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
2433 VMDK_DDB_PARENT_UUID, &pImage->ParentUuid);
2434 if (RT_FAILURE(rc))
2435 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing parent UUID in descriptor in '%s'"), pImage->pszFilename);
2436 }
2437 }
2438 else if (RT_FAILURE(rc))
2439 return rc;
2440
2441 /* Get parent image modification UUID. */
2442 rc = vmdkDescDDBGetUuid(pImage, &pImage->Descriptor,
2443 VMDK_DDB_PARENT_MODIFICATION_UUID,
2444 &pImage->ParentModificationUuid);
2445 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
2446 {
2447 /* Image without UUID. Probably created by VMware and not yet used
2448 * by VirtualBox. Can only be added for images opened in read/write
2449 * mode, so don't bother producing a sensible UUID otherwise. */
2450 if (pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
2451 RTUuidClear(&pImage->ParentModificationUuid);
2452 else
2453 {
2454 RTUuidClear(&pImage->ParentModificationUuid);
2455 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
2456 VMDK_DDB_PARENT_MODIFICATION_UUID,
2457 &pImage->ParentModificationUuid);
2458 if (RT_FAILURE(rc))
2459 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing parent modification UUID in descriptor in '%s'"), pImage->pszFilename);
2460 }
2461 }
2462 else if (RT_FAILURE(rc))
2463 return rc;
2464
2465 return VINF_SUCCESS;
2466}
2467
2468/**
2469 * Internal : Prepares the descriptor to write to the image.
2470 */
2471static int vmdkDescriptorPrepare(PVMDKIMAGE pImage, uint64_t cbLimit,
2472 void **ppvData, size_t *pcbData)
2473{
2474 int rc = VINF_SUCCESS;
2475
2476 /*
2477 * Allocate temporary descriptor buffer.
2478 * In case there is no limit allocate a default
2479 * and increase if required.
2480 */
2481 size_t cbDescriptor = cbLimit ? cbLimit : 4 * _1K;
2482 char *pszDescriptor = (char *)RTMemAllocZ(cbDescriptor);
2483 unsigned offDescriptor = 0;
2484
2485 if (!pszDescriptor)
2486 return VERR_NO_MEMORY;
2487
2488 for (unsigned i = 0; i < pImage->Descriptor.cLines; i++)
2489 {
2490 const char *psz = pImage->Descriptor.aLines[i];
2491 size_t cb = strlen(psz);
2492
2493 /*
2494 * Increase the descriptor if there is no limit and
2495 * there is not enough room left for this line.
2496 */
2497 if (offDescriptor + cb + 1 > cbDescriptor)
2498 {
2499 if (cbLimit)
2500 {
2501 rc = vmdkError(pImage, VERR_BUFFER_OVERFLOW, RT_SRC_POS, N_("VMDK: descriptor too long in '%s'"), pImage->pszFilename);
2502 break;
2503 }
2504 else
2505 {
2506 char *pszDescriptorNew = NULL;
2507 LogFlow(("Increasing descriptor cache\n"));
2508
2509 pszDescriptorNew = (char *)RTMemRealloc(pszDescriptor, cbDescriptor + cb + 4 * _1K);
2510 if (!pszDescriptorNew)
2511 {
2512 rc = VERR_NO_MEMORY;
2513 break;
2514 }
2515 pszDescriptor = pszDescriptorNew;
2516 cbDescriptor += cb + 4 * _1K;
2517 }
2518 }
2519
2520 if (cb > 0)
2521 {
2522 memcpy(pszDescriptor + offDescriptor, psz, cb);
2523 offDescriptor += cb;
2524 }
2525
2526 memcpy(pszDescriptor + offDescriptor, "\n", 1);
2527 offDescriptor++;
2528 }
2529
2530 if (RT_SUCCESS(rc))
2531 {
2532 *ppvData = pszDescriptor;
2533 *pcbData = offDescriptor;
2534 }
2535 else if (pszDescriptor)
2536 RTMemFree(pszDescriptor);
2537
2538 return rc;
2539}
2540
2541/**
2542 * Internal: write/update the descriptor part of the image.
2543 */
2544static int vmdkWriteDescriptor(PVMDKIMAGE pImage)
2545{
2546 int rc = VINF_SUCCESS;
2547 uint64_t cbLimit;
2548 uint64_t uOffset;
2549 PVMDKFILE pDescFile;
2550 void *pvDescriptor;
2551 size_t cbDescriptor;
2552
2553 if (pImage->pDescData)
2554 {
2555 /* Separate descriptor file. */
2556 uOffset = 0;
2557 cbLimit = 0;
2558 pDescFile = pImage->pFile;
2559 }
2560 else
2561 {
2562 /* Embedded descriptor file. */
2563 uOffset = VMDK_SECTOR2BYTE(pImage->pExtents[0].uDescriptorSector);
2564 cbLimit = VMDK_SECTOR2BYTE(pImage->pExtents[0].cDescriptorSectors);
2565 pDescFile = pImage->pExtents[0].pFile;
2566 }
2567 /* Bail out if there is no file to write to. */
2568 if (pDescFile == NULL)
2569 return VERR_INVALID_PARAMETER;
2570
2571 rc = vmdkDescriptorPrepare(pImage, cbLimit, &pvDescriptor, &cbDescriptor);
2572 if (RT_SUCCESS(rc))
2573 {
2574 rc = vmdkFileWriteSync(pImage, pDescFile, uOffset, pvDescriptor, cbLimit ? cbLimit : cbDescriptor, NULL);
2575 if (RT_FAILURE(rc))
2576 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error writing descriptor in '%s'"), pImage->pszFilename);
2577
2578 if (RT_SUCCESS(rc) && !cbLimit)
2579 {
2580 rc = vmdkFileSetSize(pImage, pDescFile, cbDescriptor);
2581 if (RT_FAILURE(rc))
2582 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error truncating descriptor in '%s'"), pImage->pszFilename);
2583 }
2584
2585 if (RT_SUCCESS(rc))
2586 pImage->Descriptor.fDirty = false;
2587
2588 RTMemFree(pvDescriptor);
2589 }
2590
2591 return rc;
2592}
2593
2594/**
2595 * Internal: write/update the descriptor part of the image - async version.
2596 */
2597static int vmdkWriteDescriptorAsync(PVMDKIMAGE pImage, PVDIOCTX pIoCtx)
2598{
2599 int rc = VINF_SUCCESS;
2600 uint64_t cbLimit;
2601 uint64_t uOffset;
2602 PVMDKFILE pDescFile;
2603 void *pvDescriptor;
2604 size_t cbDescriptor;
2605
2606 if (pImage->pDescData)
2607 {
2608 /* Separate descriptor file. */
2609 uOffset = 0;
2610 cbLimit = 0;
2611 pDescFile = pImage->pFile;
2612 }
2613 else
2614 {
2615 /* Embedded descriptor file. */
2616 uOffset = VMDK_SECTOR2BYTE(pImage->pExtents[0].uDescriptorSector);
2617 cbLimit = VMDK_SECTOR2BYTE(pImage->pExtents[0].cDescriptorSectors);
2618 pDescFile = pImage->pExtents[0].pFile;
2619 }
2620 /* Bail out if there is no file to write to. */
2621 if (pDescFile == NULL)
2622 return VERR_INVALID_PARAMETER;
2623
2624 rc = vmdkDescriptorPrepare(pImage, cbLimit, &pvDescriptor, &cbDescriptor);
2625 if (RT_SUCCESS(rc))
2626 {
2627 rc = vmdkFileWriteMetaAsync(pImage, pDescFile, uOffset, pvDescriptor, cbLimit ? cbLimit : cbDescriptor, pIoCtx, NULL, NULL);
2628 if ( RT_FAILURE(rc)
2629 && rc != VERR_VD_ASYNC_IO_IN_PROGRESS)
2630 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error writing descriptor in '%s'"), pImage->pszFilename);
2631 }
2632
2633 if (RT_SUCCESS(rc) && !cbLimit)
2634 {
2635 rc = vmdkFileSetSize(pImage, pDescFile, cbDescriptor);
2636 if (RT_FAILURE(rc))
2637 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error truncating descriptor in '%s'"), pImage->pszFilename);
2638 }
2639
2640 if (RT_SUCCESS(rc))
2641 pImage->Descriptor.fDirty = false;
2642
2643 RTMemFree(pvDescriptor);
2644 return rc;
2645
2646}
2647
2648/**
2649 * Internal: validate the consistency check values in a binary header.
2650 */
2651static int vmdkValidateHeader(PVMDKIMAGE pImage, PVMDKEXTENT pExtent, const SparseExtentHeader *pHeader)
2652{
2653 int rc = VINF_SUCCESS;
2654 if (RT_LE2H_U32(pHeader->magicNumber) != VMDK_SPARSE_MAGICNUMBER)
2655 {
2656 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: incorrect magic in sparse extent header in '%s'"), pExtent->pszFullname);
2657 return rc;
2658 }
2659 if (RT_LE2H_U32(pHeader->version) != 1 && RT_LE2H_U32(pHeader->version) != 3)
2660 {
2661 rc = vmdkError(pImage, VERR_VD_VMDK_UNSUPPORTED_VERSION, RT_SRC_POS, N_("VMDK: incorrect version in sparse extent header in '%s', not a VMDK 1.0/1.1 conforming file"), pExtent->pszFullname);
2662 return rc;
2663 }
2664 if ( (RT_LE2H_U32(pHeader->flags) & 1)
2665 && ( pHeader->singleEndLineChar != '\n'
2666 || pHeader->nonEndLineChar != ' '
2667 || pHeader->doubleEndLineChar1 != '\r'
2668 || pHeader->doubleEndLineChar2 != '\n') )
2669 {
2670 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: corrupted by CR/LF translation in '%s'"), pExtent->pszFullname);
2671 return rc;
2672 }
2673 return rc;
2674}
2675
2676/**
2677 * Internal: read metadata belonging to an extent with binary header, i.e.
2678 * as found in monolithic files.
2679 */
2680static int vmdkReadBinaryMetaExtent(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
2681 bool fMagicAlreadyRead)
2682{
2683 SparseExtentHeader Header;
2684 uint64_t cSectorsPerGDE;
2685 uint64_t cbFile = 0;
2686 int rc;
2687
2688 if (!fMagicAlreadyRead)
2689 rc = vmdkFileReadSync(pImage, pExtent->pFile, 0, &Header,
2690 sizeof(Header), NULL);
2691 else
2692 {
2693 Header.magicNumber = RT_H2LE_U32(VMDK_SPARSE_MAGICNUMBER);
2694 rc = vmdkFileReadSync(pImage, pExtent->pFile,
2695 RT_OFFSETOF(SparseExtentHeader, version),
2696 &Header.version,
2697 sizeof(Header)
2698 - RT_OFFSETOF(SparseExtentHeader, version),
2699 NULL);
2700 }
2701 AssertRC(rc);
2702 if (RT_FAILURE(rc))
2703 {
2704 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error reading extent header in '%s'"), pExtent->pszFullname);
2705 goto out;
2706 }
2707 rc = vmdkValidateHeader(pImage, pExtent, &Header);
2708 if (RT_FAILURE(rc))
2709 goto out;
2710
2711 if ( RT_LE2H_U32(Header.flags & RT_BIT(17))
2712 && RT_LE2H_U64(Header.gdOffset) == VMDK_GD_AT_END)
2713 pExtent->fFooter = true;
2714
2715 if ( !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
2716 || ( pExtent->fFooter
2717 && !(pImage->uOpenFlags & VD_OPEN_FLAGS_SEQUENTIAL)))
2718 {
2719 rc = vmdkFileGetSize(pImage, pExtent->pFile, &cbFile);
2720 AssertRC(rc);
2721 if (RT_FAILURE(rc))
2722 {
2723 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot get size of '%s'"), pExtent->pszFullname);
2724 goto out;
2725 }
2726 }
2727
2728 if (!(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY))
2729 pExtent->uAppendPosition = RT_ALIGN_64(cbFile, 512);
2730
2731 if ( pExtent->fFooter
2732 && ( !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
2733 || !(pImage->uOpenFlags & VD_OPEN_FLAGS_SEQUENTIAL)))
2734 {
2735 /* Read the footer, which comes before the end-of-stream marker. */
2736 rc = vmdkFileReadSync(pImage, pExtent->pFile,
2737 cbFile - 2*512, &Header,
2738 sizeof(Header), NULL);
2739 AssertRC(rc);
2740 if (RT_FAILURE(rc))
2741 {
2742 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error reading extent footer in '%s'"), pExtent->pszFullname);
2743 goto out;
2744 }
2745 rc = vmdkValidateHeader(pImage, pExtent, &Header);
2746 if (RT_FAILURE(rc))
2747 goto out;
2748 /* Prohibit any writes to this extent. */
2749 pExtent->uAppendPosition = 0;
2750 }
2751
2752 pExtent->uVersion = RT_LE2H_U32(Header.version);
2753 pExtent->enmType = VMDKETYPE_HOSTED_SPARSE; /* Just dummy value, changed later. */
2754 pExtent->cSectors = RT_LE2H_U64(Header.capacity);
2755 pExtent->cSectorsPerGrain = RT_LE2H_U64(Header.grainSize);
2756 pExtent->uDescriptorSector = RT_LE2H_U64(Header.descriptorOffset);
2757 pExtent->cDescriptorSectors = RT_LE2H_U64(Header.descriptorSize);
2758 if (pExtent->uDescriptorSector && !pExtent->cDescriptorSectors)
2759 {
2760 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: inconsistent embedded descriptor config in '%s'"), pExtent->pszFullname);
2761 goto out;
2762 }
2763 pExtent->cGTEntries = RT_LE2H_U32(Header.numGTEsPerGT);
2764 if (RT_LE2H_U32(Header.flags) & RT_BIT(1))
2765 {
2766 pExtent->uSectorRGD = RT_LE2H_U64(Header.rgdOffset);
2767 pExtent->uSectorGD = RT_LE2H_U64(Header.gdOffset);
2768 }
2769 else
2770 {
2771 pExtent->uSectorGD = RT_LE2H_U64(Header.gdOffset);
2772 pExtent->uSectorRGD = 0;
2773 }
2774 if ( ( pExtent->uSectorGD == VMDK_GD_AT_END
2775 || pExtent->uSectorRGD == VMDK_GD_AT_END)
2776 && ( !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
2777 || !(pImage->uOpenFlags & VD_OPEN_FLAGS_SEQUENTIAL)))
2778 {
2779 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: cannot resolve grain directory offset in '%s'"), pExtent->pszFullname);
2780 goto out;
2781 }
2782 pExtent->cOverheadSectors = RT_LE2H_U64(Header.overHead);
2783 pExtent->fUncleanShutdown = !!Header.uncleanShutdown;
2784 pExtent->uCompression = RT_LE2H_U16(Header.compressAlgorithm);
2785 cSectorsPerGDE = pExtent->cGTEntries * pExtent->cSectorsPerGrain;
2786 if (!cSectorsPerGDE || cSectorsPerGDE > UINT32_MAX)
2787 {
2788 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: incorrect grain directory size in '%s'"), pExtent->pszFullname);
2789 goto out;
2790 }
2791 pExtent->cSectorsPerGDE = cSectorsPerGDE;
2792 pExtent->cGDEntries = (pExtent->cSectors + cSectorsPerGDE - 1) / cSectorsPerGDE;
2793
2794 /* Fix up the number of descriptor sectors, as some flat images have
2795 * really just one, and this causes failures when inserting the UUID
2796 * values and other extra information. */
2797 if (pExtent->cDescriptorSectors != 0 && pExtent->cDescriptorSectors < 4)
2798 {
2799 /* Do it the easy way - just fix it for flat images which have no
2800 * other complicated metadata which needs space too. */
2801 if ( pExtent->uDescriptorSector + 4 < pExtent->cOverheadSectors
2802 && pExtent->cGTEntries * pExtent->cGDEntries == 0)
2803 pExtent->cDescriptorSectors = 4;
2804 }
2805
2806out:
2807 if (RT_FAILURE(rc))
2808 vmdkFreeExtentData(pImage, pExtent, false);
2809
2810 return rc;
2811}
2812
2813/**
2814 * Internal: read additional metadata belonging to an extent. For those
2815 * extents which have no additional metadata just verify the information.
2816 */
2817static int vmdkReadMetaExtent(PVMDKIMAGE pImage, PVMDKEXTENT pExtent)
2818{
2819 int rc = VINF_SUCCESS;
2820
2821/* disabled the check as there are too many truncated vmdk images out there */
2822#ifdef VBOX_WITH_VMDK_STRICT_SIZE_CHECK
2823 uint64_t cbExtentSize;
2824 /* The image must be a multiple of a sector in size and contain the data
2825 * area (flat images only). If not, it means the image is at least
2826 * truncated, or even seriously garbled. */
2827 rc = vmdkFileGetSize(pImage, pExtent->pFile, &cbExtentSize);
2828 if (RT_FAILURE(rc))
2829 {
2830 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error getting size in '%s'"), pExtent->pszFullname);
2831 goto out;
2832 }
2833 if ( cbExtentSize != RT_ALIGN_64(cbExtentSize, 512)
2834 && (pExtent->enmType != VMDKETYPE_FLAT || pExtent->cNominalSectors + pExtent->uSectorOffset > VMDK_BYTE2SECTOR(cbExtentSize)))
2835 {
2836 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: file size is not a multiple of 512 in '%s', file is truncated or otherwise garbled"), pExtent->pszFullname);
2837 goto out;
2838 }
2839#endif /* VBOX_WITH_VMDK_STRICT_SIZE_CHECK */
2840 if (pExtent->enmType != VMDKETYPE_HOSTED_SPARSE)
2841 goto out;
2842
2843 /* The spec says that this must be a power of two and greater than 8,
2844 * but probably they meant not less than 8. */
2845 if ( (pExtent->cSectorsPerGrain & (pExtent->cSectorsPerGrain - 1))
2846 || pExtent->cSectorsPerGrain < 8)
2847 {
2848 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: invalid extent grain size %u in '%s'"), pExtent->cSectorsPerGrain, pExtent->pszFullname);
2849 goto out;
2850 }
2851
2852 /* This code requires that a grain table must hold a power of two multiple
2853 * of the number of entries per GT cache entry. */
2854 if ( (pExtent->cGTEntries & (pExtent->cGTEntries - 1))
2855 || pExtent->cGTEntries < VMDK_GT_CACHELINE_SIZE)
2856 {
2857 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: grain table cache size problem in '%s'"), pExtent->pszFullname);
2858 goto out;
2859 }
2860
2861 rc = vmdkAllocStreamBuffers(pImage, pExtent);
2862 if (RT_FAILURE(rc))
2863 goto out;
2864
2865 /* Prohibit any writes to this streamOptimized extent. */
2866 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
2867 pExtent->uAppendPosition = 0;
2868
2869 if ( !(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
2870 || !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
2871 || !(pImage->uOpenFlags & VD_OPEN_FLAGS_SEQUENTIAL))
2872 rc = vmdkReadGrainDirectory(pImage, pExtent);
2873 else
2874 {
2875 pExtent->uGrainSectorAbs = pExtent->cOverheadSectors;
2876 pExtent->cbGrainStreamRead = 0;
2877 }
2878
2879out:
2880 if (RT_FAILURE(rc))
2881 vmdkFreeExtentData(pImage, pExtent, false);
2882
2883 return rc;
2884}
2885
2886/**
2887 * Internal: write/update the metadata for a sparse extent.
2888 */
2889static int vmdkWriteMetaSparseExtent(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
2890 uint64_t uOffset)
2891{
2892 SparseExtentHeader Header;
2893
2894 memset(&Header, '\0', sizeof(Header));
2895 Header.magicNumber = RT_H2LE_U32(VMDK_SPARSE_MAGICNUMBER);
2896 Header.version = RT_H2LE_U32(pExtent->uVersion);
2897 Header.flags = RT_H2LE_U32(RT_BIT(0));
2898 if (pExtent->pRGD)
2899 Header.flags |= RT_H2LE_U32(RT_BIT(1));
2900 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
2901 Header.flags |= RT_H2LE_U32(RT_BIT(16) | RT_BIT(17));
2902 Header.capacity = RT_H2LE_U64(pExtent->cSectors);
2903 Header.grainSize = RT_H2LE_U64(pExtent->cSectorsPerGrain);
2904 Header.descriptorOffset = RT_H2LE_U64(pExtent->uDescriptorSector);
2905 Header.descriptorSize = RT_H2LE_U64(pExtent->cDescriptorSectors);
2906 Header.numGTEsPerGT = RT_H2LE_U32(pExtent->cGTEntries);
2907 if (pExtent->fFooter && uOffset == 0)
2908 {
2909 if (pExtent->pRGD)
2910 {
2911 Assert(pExtent->uSectorRGD);
2912 Header.rgdOffset = RT_H2LE_U64(VMDK_GD_AT_END);
2913 Header.gdOffset = RT_H2LE_U64(VMDK_GD_AT_END);
2914 }
2915 else
2916 {
2917 Header.gdOffset = RT_H2LE_U64(VMDK_GD_AT_END);
2918 }
2919 }
2920 else
2921 {
2922 if (pExtent->pRGD)
2923 {
2924 Assert(pExtent->uSectorRGD);
2925 Header.rgdOffset = RT_H2LE_U64(pExtent->uSectorRGD);
2926 Header.gdOffset = RT_H2LE_U64(pExtent->uSectorGD);
2927 }
2928 else
2929 {
2930 Header.gdOffset = RT_H2LE_U64(pExtent->uSectorGD);
2931 }
2932 }
2933 Header.overHead = RT_H2LE_U64(pExtent->cOverheadSectors);
2934 Header.uncleanShutdown = pExtent->fUncleanShutdown;
2935 Header.singleEndLineChar = '\n';
2936 Header.nonEndLineChar = ' ';
2937 Header.doubleEndLineChar1 = '\r';
2938 Header.doubleEndLineChar2 = '\n';
2939 Header.compressAlgorithm = RT_H2LE_U16(pExtent->uCompression);
2940
2941 int rc = vmdkFileWriteSync(pImage, pExtent->pFile, uOffset, &Header, sizeof(Header), NULL);
2942 AssertRC(rc);
2943 if (RT_FAILURE(rc))
2944 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error writing extent header in '%s'"), pExtent->pszFullname);
2945 return rc;
2946}
2947
2948/**
2949 * Internal: write/update the metadata for a sparse extent - async version.
2950 */
2951static int vmdkWriteMetaSparseExtentAsync(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
2952 uint64_t uOffset, PVDIOCTX pIoCtx)
2953{
2954 SparseExtentHeader Header;
2955
2956 memset(&Header, '\0', sizeof(Header));
2957 Header.magicNumber = RT_H2LE_U32(VMDK_SPARSE_MAGICNUMBER);
2958 Header.version = RT_H2LE_U32(pExtent->uVersion);
2959 Header.flags = RT_H2LE_U32(RT_BIT(0));
2960 if (pExtent->pRGD)
2961 Header.flags |= RT_H2LE_U32(RT_BIT(1));
2962 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
2963 Header.flags |= RT_H2LE_U32(RT_BIT(16) | RT_BIT(17));
2964 Header.capacity = RT_H2LE_U64(pExtent->cSectors);
2965 Header.grainSize = RT_H2LE_U64(pExtent->cSectorsPerGrain);
2966 Header.descriptorOffset = RT_H2LE_U64(pExtent->uDescriptorSector);
2967 Header.descriptorSize = RT_H2LE_U64(pExtent->cDescriptorSectors);
2968 Header.numGTEsPerGT = RT_H2LE_U32(pExtent->cGTEntries);
2969 if (pExtent->fFooter && uOffset == 0)
2970 {
2971 if (pExtent->pRGD)
2972 {
2973 Assert(pExtent->uSectorRGD);
2974 Header.rgdOffset = RT_H2LE_U64(VMDK_GD_AT_END);
2975 Header.gdOffset = RT_H2LE_U64(VMDK_GD_AT_END);
2976 }
2977 else
2978 {
2979 Header.gdOffset = RT_H2LE_U64(VMDK_GD_AT_END);
2980 }
2981 }
2982 else
2983 {
2984 if (pExtent->pRGD)
2985 {
2986 Assert(pExtent->uSectorRGD);
2987 Header.rgdOffset = RT_H2LE_U64(pExtent->uSectorRGD);
2988 Header.gdOffset = RT_H2LE_U64(pExtent->uSectorGD);
2989 }
2990 else
2991 {
2992 Header.gdOffset = RT_H2LE_U64(pExtent->uSectorGD);
2993 }
2994 }
2995 Header.overHead = RT_H2LE_U64(pExtent->cOverheadSectors);
2996 Header.uncleanShutdown = pExtent->fUncleanShutdown;
2997 Header.singleEndLineChar = '\n';
2998 Header.nonEndLineChar = ' ';
2999 Header.doubleEndLineChar1 = '\r';
3000 Header.doubleEndLineChar2 = '\n';
3001 Header.compressAlgorithm = RT_H2LE_U16(pExtent->uCompression);
3002
3003 int rc = vmdkFileWriteMetaAsync(pImage, pExtent->pFile,
3004 uOffset, &Header, sizeof(Header),
3005 pIoCtx, NULL, NULL);
3006 if (RT_FAILURE(rc) && (rc != VERR_VD_ASYNC_IO_IN_PROGRESS))
3007 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error writing extent header in '%s'"), pExtent->pszFullname);
3008 return rc;
3009}
3010
3011#ifdef VBOX_WITH_VMDK_ESX
3012/**
3013 * Internal: unused code to read the metadata of a sparse ESX extent.
3014 *
3015 * Such extents never leave ESX server, so this isn't ever used.
3016 */
3017static int vmdkReadMetaESXSparseExtent(PVMDKEXTENT pExtent)
3018{
3019 COWDisk_Header Header;
3020 uint64_t cSectorsPerGDE;
3021
3022 int rc = vmdkFileReadSync(pImage, pExtent->pFile, 0, &Header, sizeof(Header), NULL);
3023 AssertRC(rc);
3024 if (RT_FAILURE(rc))
3025 goto out;
3026 if ( RT_LE2H_U32(Header.magicNumber) != VMDK_ESX_SPARSE_MAGICNUMBER
3027 || RT_LE2H_U32(Header.version) != 1
3028 || RT_LE2H_U32(Header.flags) != 3)
3029 {
3030 rc = VERR_VD_VMDK_INVALID_HEADER;
3031 goto out;
3032 }
3033 pExtent->enmType = VMDKETYPE_ESX_SPARSE;
3034 pExtent->cSectors = RT_LE2H_U32(Header.numSectors);
3035 pExtent->cSectorsPerGrain = RT_LE2H_U32(Header.grainSize);
3036 /* The spec says that this must be between 1 sector and 1MB. This code
3037 * assumes it's a power of two, so check that requirement, too. */
3038 if ( (pExtent->cSectorsPerGrain & (pExtent->cSectorsPerGrain - 1))
3039 || pExtent->cSectorsPerGrain == 0
3040 || pExtent->cSectorsPerGrain > 2048)
3041 {
3042 rc = VERR_VD_VMDK_INVALID_HEADER;
3043 goto out;
3044 }
3045 pExtent->uDescriptorSector = 0;
3046 pExtent->cDescriptorSectors = 0;
3047 pExtent->uSectorGD = RT_LE2H_U32(Header.gdOffset);
3048 pExtent->uSectorRGD = 0;
3049 pExtent->cOverheadSectors = 0;
3050 pExtent->cGTEntries = 4096;
3051 cSectorsPerGDE = pExtent->cGTEntries * pExtent->cSectorsPerGrain;
3052 if (!cSectorsPerGDE || cSectorsPerGDE > UINT32_MAX)
3053 {
3054 rc = VERR_VD_VMDK_INVALID_HEADER;
3055 goto out;
3056 }
3057 pExtent->cSectorsPerGDE = cSectorsPerGDE;
3058 pExtent->cGDEntries = (pExtent->cSectors + cSectorsPerGDE - 1) / cSectorsPerGDE;
3059 if (pExtent->cGDEntries != RT_LE2H_U32(Header.numGDEntries))
3060 {
3061 /* Inconsistency detected. Computed number of GD entries doesn't match
3062 * stored value. Better be safe than sorry. */
3063 rc = VERR_VD_VMDK_INVALID_HEADER;
3064 goto out;
3065 }
3066 pExtent->uFreeSector = RT_LE2H_U32(Header.freeSector);
3067 pExtent->fUncleanShutdown = !!Header.uncleanShutdown;
3068
3069 rc = vmdkReadGrainDirectory(pImage, pExtent);
3070
3071out:
3072 if (RT_FAILURE(rc))
3073 vmdkFreeExtentData(pImage, pExtent, false);
3074
3075 return rc;
3076}
3077#endif /* VBOX_WITH_VMDK_ESX */
3078
3079/**
3080 * Internal: free the buffers used for streamOptimized images.
3081 */
3082static void vmdkFreeStreamBuffers(PVMDKEXTENT pExtent)
3083{
3084 if (pExtent->pvCompGrain)
3085 {
3086 RTMemFree(pExtent->pvCompGrain);
3087 pExtent->pvCompGrain = NULL;
3088 }
3089 if (pExtent->pvGrain)
3090 {
3091 RTMemFree(pExtent->pvGrain);
3092 pExtent->pvGrain = NULL;
3093 }
3094}
3095
3096/**
3097 * Internal: free the memory used by the extent data structure, optionally
3098 * deleting the referenced files.
3099 */
3100static void vmdkFreeExtentData(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
3101 bool fDelete)
3102{
3103 vmdkFreeGrainDirectory(pExtent);
3104 if (pExtent->pDescData)
3105 {
3106 RTMemFree(pExtent->pDescData);
3107 pExtent->pDescData = NULL;
3108 }
3109 if (pExtent->pFile != NULL)
3110 {
3111 /* Do not delete raw extents, these have full and base names equal. */
3112 vmdkFileClose(pImage, &pExtent->pFile,
3113 fDelete
3114 && pExtent->pszFullname
3115 && strcmp(pExtent->pszFullname, pExtent->pszBasename));
3116 }
3117 if (pExtent->pszBasename)
3118 {
3119 RTMemTmpFree((void *)pExtent->pszBasename);
3120 pExtent->pszBasename = NULL;
3121 }
3122 if (pExtent->pszFullname)
3123 {
3124 RTStrFree((char *)(void *)pExtent->pszFullname);
3125 pExtent->pszFullname = NULL;
3126 }
3127 vmdkFreeStreamBuffers(pExtent);
3128}
3129
3130/**
3131 * Internal: allocate grain table cache if necessary for this image.
3132 */
3133static int vmdkAllocateGrainTableCache(PVMDKIMAGE pImage)
3134{
3135 PVMDKEXTENT pExtent;
3136
3137 /* Allocate grain table cache if any sparse extent is present. */
3138 for (unsigned i = 0; i < pImage->cExtents; i++)
3139 {
3140 pExtent = &pImage->pExtents[i];
3141 if ( pExtent->enmType == VMDKETYPE_HOSTED_SPARSE
3142#ifdef VBOX_WITH_VMDK_ESX
3143 || pExtent->enmType == VMDKETYPE_ESX_SPARSE
3144#endif /* VBOX_WITH_VMDK_ESX */
3145 )
3146 {
3147 /* Allocate grain table cache. */
3148 pImage->pGTCache = (PVMDKGTCACHE)RTMemAllocZ(sizeof(VMDKGTCACHE));
3149 if (!pImage->pGTCache)
3150 return VERR_NO_MEMORY;
3151 for (unsigned j = 0; j < VMDK_GT_CACHE_SIZE; j++)
3152 {
3153 PVMDKGTCACHEENTRY pGCE = &pImage->pGTCache->aGTCache[j];
3154 pGCE->uExtent = UINT32_MAX;
3155 }
3156 pImage->pGTCache->cEntries = VMDK_GT_CACHE_SIZE;
3157 break;
3158 }
3159 }
3160
3161 return VINF_SUCCESS;
3162}
3163
3164/**
3165 * Internal: allocate the given number of extents.
3166 */
3167static int vmdkCreateExtents(PVMDKIMAGE pImage, unsigned cExtents)
3168{
3169 int rc = VINF_SUCCESS;
3170 PVMDKEXTENT pExtents = (PVMDKEXTENT)RTMemAllocZ(cExtents * sizeof(VMDKEXTENT));
3171 if (pExtents)
3172 {
3173 for (unsigned i = 0; i < cExtents; i++)
3174 {
3175 pExtents[i].pFile = NULL;
3176 pExtents[i].pszBasename = NULL;
3177 pExtents[i].pszFullname = NULL;
3178 pExtents[i].pGD = NULL;
3179 pExtents[i].pRGD = NULL;
3180 pExtents[i].pDescData = NULL;
3181 pExtents[i].uVersion = 1;
3182 pExtents[i].uCompression = VMDK_COMPRESSION_NONE;
3183 pExtents[i].uExtent = i;
3184 pExtents[i].pImage = pImage;
3185 }
3186 pImage->pExtents = pExtents;
3187 pImage->cExtents = cExtents;
3188 }
3189 else
3190 rc = VERR_NO_MEMORY;
3191
3192 return rc;
3193}
3194
3195/**
3196 * Internal: Open an image, constructing all necessary data structures.
3197 */
3198static int vmdkOpenImage(PVMDKIMAGE pImage, unsigned uOpenFlags)
3199{
3200 int rc;
3201 uint32_t u32Magic;
3202 PVMDKFILE pFile;
3203 PVMDKEXTENT pExtent;
3204
3205 pImage->uOpenFlags = uOpenFlags;
3206
3207 /* Try to get error interface. */
3208 pImage->pInterfaceError = VDInterfaceGet(pImage->pVDIfsDisk, VDINTERFACETYPE_ERROR);
3209 if (pImage->pInterfaceError)
3210 pImage->pInterfaceErrorCallbacks = VDGetInterfaceError(pImage->pInterfaceError);
3211
3212 /* Get I/O interface. */
3213 pImage->pInterfaceIO = VDInterfaceGet(pImage->pVDIfsImage, VDINTERFACETYPE_IOINT);
3214 AssertPtrReturn(pImage->pInterfaceIO, VERR_INVALID_PARAMETER);
3215 pImage->pInterfaceIOCallbacks = VDGetInterfaceIOInt(pImage->pInterfaceIO);
3216 AssertPtrReturn(pImage->pInterfaceIOCallbacks, VERR_INVALID_PARAMETER);
3217
3218 /*
3219 * Open the image.
3220 * We don't have to check for asynchronous access because
3221 * we only support raw access and the opened file is a description
3222 * file were no data is stored.
3223 */
3224
3225 rc = vmdkFileOpen(pImage, &pFile, pImage->pszFilename,
3226 VDOpenFlagsToFileOpenFlags(uOpenFlags, false /* fCreate */),
3227 false /* fAsyncIO */);
3228 if (RT_FAILURE(rc))
3229 {
3230 /* Do NOT signal an appropriate error here, as the VD layer has the
3231 * choice of retrying the open if it failed. */
3232 goto out;
3233 }
3234 pImage->pFile = pFile;
3235
3236 /* Read magic (if present). */
3237 rc = vmdkFileReadSync(pImage, pFile, 0, &u32Magic, sizeof(u32Magic), NULL);
3238 if (RT_FAILURE(rc))
3239 {
3240 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error reading the magic number in '%s'"), pImage->pszFilename);
3241 goto out;
3242 }
3243
3244 /* Handle the file according to its magic number. */
3245 if (RT_LE2H_U32(u32Magic) == VMDK_SPARSE_MAGICNUMBER)
3246 {
3247 /* It's a hosted single-extent image. */
3248 rc = vmdkCreateExtents(pImage, 1);
3249 if (RT_FAILURE(rc))
3250 goto out;
3251 /* The opened file is passed to the extent. No separate descriptor
3252 * file, so no need to keep anything open for the image. */
3253 pExtent = &pImage->pExtents[0];
3254 pExtent->pFile = pFile;
3255 pImage->pFile = NULL;
3256 pExtent->pszFullname = RTPathAbsDup(pImage->pszFilename);
3257 if (!pExtent->pszFullname)
3258 {
3259 rc = VERR_NO_MEMORY;
3260 goto out;
3261 }
3262 rc = vmdkReadBinaryMetaExtent(pImage, pExtent, true /* fMagicAlreadyRead */);
3263 if (RT_FAILURE(rc))
3264 goto out;
3265
3266 /* As we're dealing with a monolithic image here, there must
3267 * be a descriptor embedded in the image file. */
3268 if (!pExtent->uDescriptorSector || !pExtent->cDescriptorSectors)
3269 {
3270 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: monolithic image without descriptor in '%s'"), pImage->pszFilename);
3271 goto out;
3272 }
3273 /* HACK: extend the descriptor if it is unusually small and it fits in
3274 * the unused space after the image header. Allows opening VMDK files
3275 * with extremely small descriptor in read/write mode. */
3276 if ( !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
3277 && pExtent->cDescriptorSectors < 3
3278 && (int64_t)pExtent->uSectorGD - pExtent->uDescriptorSector >= 4
3279 && (!pExtent->uSectorRGD || (int64_t)pExtent->uSectorRGD - pExtent->uDescriptorSector >= 4))
3280 {
3281 pExtent->cDescriptorSectors = 4;
3282 pExtent->fMetaDirty = true;
3283 }
3284 /* Read the descriptor from the extent. */
3285 pExtent->pDescData = (char *)RTMemAllocZ(VMDK_SECTOR2BYTE(pExtent->cDescriptorSectors));
3286 if (!pExtent->pDescData)
3287 {
3288 rc = VERR_NO_MEMORY;
3289 goto out;
3290 }
3291 rc = vmdkFileReadSync(pImage, pExtent->pFile,
3292 VMDK_SECTOR2BYTE(pExtent->uDescriptorSector),
3293 pExtent->pDescData,
3294 VMDK_SECTOR2BYTE(pExtent->cDescriptorSectors), NULL);
3295 AssertRC(rc);
3296 if (RT_FAILURE(rc))
3297 {
3298 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: read error for descriptor in '%s'"), pExtent->pszFullname);
3299 goto out;
3300 }
3301
3302 rc = vmdkParseDescriptor(pImage, pExtent->pDescData,
3303 VMDK_SECTOR2BYTE(pExtent->cDescriptorSectors));
3304 if (RT_FAILURE(rc))
3305 goto out;
3306
3307 rc = vmdkReadMetaExtent(pImage, pExtent);
3308 if (RT_FAILURE(rc))
3309 goto out;
3310
3311 /* Mark the extent as unclean if opened in read-write mode. */
3312 if ( !(uOpenFlags & VD_OPEN_FLAGS_READONLY)
3313 && !(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED))
3314 {
3315 pExtent->fUncleanShutdown = true;
3316 pExtent->fMetaDirty = true;
3317 }
3318 }
3319 else
3320 {
3321 /* Allocate at least 10K, and make sure that there is 5K free space
3322 * in case new entries need to be added to the descriptor. Never
3323 * allocate more than 128K, because that's no valid descriptor file
3324 * and will result in the correct "truncated read" error handling. */
3325 uint64_t cbFileSize;
3326 rc = vmdkFileGetSize(pImage, pFile, &cbFileSize);
3327 if (RT_FAILURE(rc))
3328 goto out;
3329
3330 /* If the descriptor file is shorter than 50 bytes it can't be valid. */
3331 if (cbFileSize < 50)
3332 {
3333 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: descriptor in '%s' is too short"), pImage->pszFilename);
3334 goto out;
3335 }
3336
3337 uint64_t cbSize = cbFileSize;
3338 if (cbSize % VMDK_SECTOR2BYTE(10))
3339 cbSize += VMDK_SECTOR2BYTE(20) - cbSize % VMDK_SECTOR2BYTE(10);
3340 else
3341 cbSize += VMDK_SECTOR2BYTE(10);
3342 cbSize = RT_MIN(cbSize, _128K);
3343 pImage->cbDescAlloc = RT_MAX(VMDK_SECTOR2BYTE(20), cbSize);
3344 pImage->pDescData = (char *)RTMemAllocZ(pImage->cbDescAlloc);
3345 if (!pImage->pDescData)
3346 {
3347 rc = VERR_NO_MEMORY;
3348 goto out;
3349 }
3350
3351 /* Don't reread the place where the magic would live in a sparse
3352 * image if it's a descriptor based one. */
3353 memcpy(pImage->pDescData, &u32Magic, sizeof(u32Magic));
3354 size_t cbRead;
3355 rc = vmdkFileReadSync(pImage, pImage->pFile, sizeof(u32Magic),
3356 pImage->pDescData + sizeof(u32Magic),
3357 RT_MIN(pImage->cbDescAlloc - sizeof(u32Magic),
3358 cbFileSize - sizeof(u32Magic)),
3359 &cbRead);
3360 if (RT_FAILURE(rc))
3361 {
3362 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: read error for descriptor in '%s'"), pImage->pszFilename);
3363 goto out;
3364 }
3365 cbRead += sizeof(u32Magic);
3366 if (cbRead == pImage->cbDescAlloc)
3367 {
3368 /* Likely the read is truncated. Better fail a bit too early
3369 * (normally the descriptor is much smaller than our buffer). */
3370 rc = vmdkError(pImage, VERR_VD_VMDK_INVALID_HEADER, RT_SRC_POS, N_("VMDK: cannot read descriptor in '%s'"), pImage->pszFilename);
3371 goto out;
3372 }
3373
3374 rc = vmdkParseDescriptor(pImage, pImage->pDescData,
3375 pImage->cbDescAlloc);
3376 if (RT_FAILURE(rc))
3377 goto out;
3378
3379 /*
3380 * We have to check for the asynchronous open flag. The
3381 * extents are parsed and the type of all are known now.
3382 * Check if every extent is either FLAT or ZERO.
3383 */
3384 if (uOpenFlags & VD_OPEN_FLAGS_ASYNC_IO)
3385 {
3386 unsigned cFlatExtents = 0;
3387
3388 for (unsigned i = 0; i < pImage->cExtents; i++)
3389 {
3390 pExtent = &pImage->pExtents[i];
3391
3392 if (( pExtent->enmType != VMDKETYPE_FLAT
3393 && pExtent->enmType != VMDKETYPE_ZERO
3394 && pExtent->enmType != VMDKETYPE_VMFS)
3395 || ((pImage->pExtents[i].enmType == VMDKETYPE_FLAT) && (cFlatExtents > 0)))
3396 {
3397 /*
3398 * Opened image contains at least one none flat or zero extent.
3399 * Return error but don't set error message as the caller
3400 * has the chance to open in non async I/O mode.
3401 */
3402 rc = VERR_NOT_SUPPORTED;
3403 goto out;
3404 }
3405 if (pExtent->enmType == VMDKETYPE_FLAT)
3406 cFlatExtents++;
3407 }
3408 }
3409
3410 for (unsigned i = 0; i < pImage->cExtents; i++)
3411 {
3412 pExtent = &pImage->pExtents[i];
3413
3414 if (pExtent->pszBasename)
3415 {
3416 /* Hack to figure out whether the specified name in the
3417 * extent descriptor is absolute. Doesn't always work, but
3418 * should be good enough for now. */
3419 char *pszFullname;
3420 /** @todo implement proper path absolute check. */
3421 if (pExtent->pszBasename[0] == RTPATH_SLASH)
3422 {
3423 pszFullname = RTStrDup(pExtent->pszBasename);
3424 if (!pszFullname)
3425 {
3426 rc = VERR_NO_MEMORY;
3427 goto out;
3428 }
3429 }
3430 else
3431 {
3432 char *pszDirname = RTStrDup(pImage->pszFilename);
3433 if (!pszDirname)
3434 {
3435 rc = VERR_NO_MEMORY;
3436 goto out;
3437 }
3438 RTPathStripFilename(pszDirname);
3439 pszFullname = RTPathJoinA(pszDirname, pExtent->pszBasename);
3440 RTStrFree(pszDirname);
3441 if (!pszFullname)
3442 {
3443 rc = VERR_NO_STR_MEMORY;
3444 goto out;
3445 }
3446 }
3447 pExtent->pszFullname = pszFullname;
3448 }
3449 else
3450 pExtent->pszFullname = NULL;
3451
3452 switch (pExtent->enmType)
3453 {
3454 case VMDKETYPE_HOSTED_SPARSE:
3455 rc = vmdkFileOpen(pImage, &pExtent->pFile, pExtent->pszFullname,
3456 VDOpenFlagsToFileOpenFlags(uOpenFlags,
3457 false /* fCreate */),
3458 false /* fAsyncIO */);
3459 if (RT_FAILURE(rc))
3460 {
3461 /* Do NOT signal an appropriate error here, as the VD
3462 * layer has the choice of retrying the open if it
3463 * failed. */
3464 goto out;
3465 }
3466 rc = vmdkReadBinaryMetaExtent(pImage, pExtent,
3467 false /* fMagicAlreadyRead */);
3468 if (RT_FAILURE(rc))
3469 goto out;
3470 rc = vmdkReadMetaExtent(pImage, pExtent);
3471 if (RT_FAILURE(rc))
3472 goto out;
3473
3474 /* Mark extent as unclean if opened in read-write mode. */
3475 if (!(uOpenFlags & VD_OPEN_FLAGS_READONLY))
3476 {
3477 pExtent->fUncleanShutdown = true;
3478 pExtent->fMetaDirty = true;
3479 }
3480 break;
3481 case VMDKETYPE_VMFS:
3482 case VMDKETYPE_FLAT:
3483 rc = vmdkFileOpen(pImage, &pExtent->pFile, pExtent->pszFullname,
3484 VDOpenFlagsToFileOpenFlags(uOpenFlags,
3485 false /* fCreate */),
3486 true /* fAsyncIO */);
3487 if (RT_FAILURE(rc))
3488 {
3489 /* Do NOT signal an appropriate error here, as the VD
3490 * layer has the choice of retrying the open if it
3491 * failed. */
3492 goto out;
3493 }
3494 break;
3495 case VMDKETYPE_ZERO:
3496 /* Nothing to do. */
3497 break;
3498 default:
3499 AssertMsgFailed(("unknown vmdk extent type %d\n", pExtent->enmType));
3500 }
3501 }
3502 }
3503
3504 /* Make sure this is not reached accidentally with an error status. */
3505 AssertRC(rc);
3506
3507 /* Determine PCHS geometry if not set. */
3508 if (pImage->PCHSGeometry.cCylinders == 0)
3509 {
3510 uint64_t cCylinders = VMDK_BYTE2SECTOR(pImage->cbSize)
3511 / pImage->PCHSGeometry.cHeads
3512 / pImage->PCHSGeometry.cSectors;
3513 pImage->PCHSGeometry.cCylinders = (unsigned)RT_MIN(cCylinders, 16383);
3514 if ( !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
3515 && !(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED))
3516 {
3517 rc = vmdkDescSetPCHSGeometry(pImage, &pImage->PCHSGeometry);
3518 AssertRC(rc);
3519 }
3520 }
3521
3522 /* Update the image metadata now in case has changed. */
3523 rc = vmdkFlushImage(pImage);
3524 if (RT_FAILURE(rc))
3525 goto out;
3526
3527 /* Figure out a few per-image constants from the extents. */
3528 pImage->cbSize = 0;
3529 for (unsigned i = 0; i < pImage->cExtents; i++)
3530 {
3531 pExtent = &pImage->pExtents[i];
3532 if ( pExtent->enmType == VMDKETYPE_HOSTED_SPARSE
3533#ifdef VBOX_WITH_VMDK_ESX
3534 || pExtent->enmType == VMDKETYPE_ESX_SPARSE
3535#endif /* VBOX_WITH_VMDK_ESX */
3536 )
3537 {
3538 /* Here used to be a check whether the nominal size of an extent
3539 * is a multiple of the grain size. The spec says that this is
3540 * always the case, but unfortunately some files out there in the
3541 * wild violate the spec (e.g. ReactOS 0.3.1). */
3542 }
3543 pImage->cbSize += VMDK_SECTOR2BYTE(pExtent->cNominalSectors);
3544 }
3545
3546 for (unsigned i = 0; i < pImage->cExtents; i++)
3547 {
3548 pExtent = &pImage->pExtents[i];
3549 if ( pImage->pExtents[i].enmType == VMDKETYPE_FLAT
3550 || pImage->pExtents[i].enmType == VMDKETYPE_ZERO)
3551 {
3552 pImage->uImageFlags |= VD_IMAGE_FLAGS_FIXED;
3553 break;
3554 }
3555 }
3556
3557 if ( !(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
3558 || !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
3559 || !(pImage->uOpenFlags & VD_OPEN_FLAGS_SEQUENTIAL))
3560 rc = vmdkAllocateGrainTableCache(pImage);
3561
3562out:
3563 if (RT_FAILURE(rc))
3564 vmdkFreeImage(pImage, false);
3565 return rc;
3566}
3567
3568/**
3569 * Internal: create VMDK images for raw disk/partition access.
3570 */
3571static int vmdkCreateRawImage(PVMDKIMAGE pImage, const PVBOXHDDRAW pRaw,
3572 uint64_t cbSize)
3573{
3574 int rc = VINF_SUCCESS;
3575 PVMDKEXTENT pExtent;
3576
3577 if (pRaw->fRawDisk)
3578 {
3579 /* Full raw disk access. This requires setting up a descriptor
3580 * file and open the (flat) raw disk. */
3581 rc = vmdkCreateExtents(pImage, 1);
3582 if (RT_FAILURE(rc))
3583 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new extent list in '%s'"), pImage->pszFilename);
3584 pExtent = &pImage->pExtents[0];
3585 /* Create raw disk descriptor file. */
3586 rc = vmdkFileOpen(pImage, &pImage->pFile, pImage->pszFilename,
3587 VDOpenFlagsToFileOpenFlags(pImage->uOpenFlags,
3588 true /* fCreate */),
3589 false /* fAsyncIO */);
3590 if (RT_FAILURE(rc))
3591 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new file '%s'"), pImage->pszFilename);
3592
3593 /* Set up basename for extent description. Cannot use StrDup. */
3594 size_t cbBasename = strlen(pRaw->pszRawDisk) + 1;
3595 char *pszBasename = (char *)RTMemTmpAlloc(cbBasename);
3596 if (!pszBasename)
3597 return VERR_NO_MEMORY;
3598 memcpy(pszBasename, pRaw->pszRawDisk, cbBasename);
3599 pExtent->pszBasename = pszBasename;
3600 /* For raw disks the full name is identical to the base name. */
3601 pExtent->pszFullname = RTStrDup(pszBasename);
3602 if (!pExtent->pszFullname)
3603 return VERR_NO_MEMORY;
3604 pExtent->enmType = VMDKETYPE_FLAT;
3605 pExtent->cNominalSectors = VMDK_BYTE2SECTOR(cbSize);
3606 pExtent->uSectorOffset = 0;
3607 pExtent->enmAccess = VMDKACCESS_READWRITE;
3608 pExtent->fMetaDirty = false;
3609
3610 /* Open flat image, the raw disk. */
3611 rc = vmdkFileOpen(pImage, &pExtent->pFile, pExtent->pszFullname,
3612 VDOpenFlagsToFileOpenFlags(pImage->uOpenFlags & ~VD_OPEN_FLAGS_READONLY,
3613 false /* fCreate */),
3614 false /* fAsyncIO */);
3615 if (RT_FAILURE(rc))
3616 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not open raw disk file '%s'"), pExtent->pszFullname);
3617 }
3618 else
3619 {
3620 /* Raw partition access. This requires setting up a descriptor
3621 * file, write the partition information to a flat extent and
3622 * open all the (flat) raw disk partitions. */
3623
3624 /* First pass over the partition data areas to determine how many
3625 * extents we need. One data area can require up to 2 extents, as
3626 * it might be necessary to skip over unpartitioned space. */
3627 unsigned cExtents = 0;
3628 uint64_t uStart = 0;
3629 for (unsigned i = 0; i < pRaw->cPartDescs; i++)
3630 {
3631 PVBOXHDDRAWPARTDESC pPart = &pRaw->pPartDescs[i];
3632 if (uStart > pPart->uStart)
3633 return vmdkError(pImage, VERR_INVALID_PARAMETER, RT_SRC_POS, N_("VMDK: incorrect partition data area ordering set up by the caller in '%s'"), pImage->pszFilename);
3634
3635 if (uStart < pPart->uStart)
3636 cExtents++;
3637 uStart = pPart->uStart + pPart->cbData;
3638 cExtents++;
3639 }
3640 /* Another extent for filling up the rest of the image. */
3641 if (uStart != cbSize)
3642 cExtents++;
3643
3644 rc = vmdkCreateExtents(pImage, cExtents);
3645 if (RT_FAILURE(rc))
3646 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new extent list in '%s'"), pImage->pszFilename);
3647
3648 /* Create raw partition descriptor file. */
3649 rc = vmdkFileOpen(pImage, &pImage->pFile, pImage->pszFilename,
3650 VDOpenFlagsToFileOpenFlags(pImage->uOpenFlags,
3651 true /* fCreate */),
3652 false /* fAsyncIO */);
3653 if (RT_FAILURE(rc))
3654 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new file '%s'"), pImage->pszFilename);
3655
3656 /* Create base filename for the partition table extent. */
3657 /** @todo remove fixed buffer without creating memory leaks. */
3658 char pszPartition[1024];
3659 const char *pszBase = RTPathFilename(pImage->pszFilename);
3660 const char *pszExt = RTPathExt(pszBase);
3661 if (pszExt == NULL)
3662 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: invalid filename '%s'"), pImage->pszFilename);
3663 char *pszBaseBase = RTStrDup(pszBase);
3664 if (!pszBaseBase)
3665 return VERR_NO_MEMORY;
3666 RTPathStripExt(pszBaseBase);
3667 RTStrPrintf(pszPartition, sizeof(pszPartition), "%s-pt%s",
3668 pszBaseBase, pszExt);
3669 RTStrFree(pszBaseBase);
3670
3671 /* Second pass over the partitions, now define all extents. */
3672 uint64_t uPartOffset = 0;
3673 cExtents = 0;
3674 uStart = 0;
3675 for (unsigned i = 0; i < pRaw->cPartDescs; i++)
3676 {
3677 PVBOXHDDRAWPARTDESC pPart = &pRaw->pPartDescs[i];
3678 pExtent = &pImage->pExtents[cExtents++];
3679
3680 if (uStart < pPart->uStart)
3681 {
3682 pExtent->pszBasename = NULL;
3683 pExtent->pszFullname = NULL;
3684 pExtent->enmType = VMDKETYPE_ZERO;
3685 pExtent->cNominalSectors = VMDK_BYTE2SECTOR(pPart->uStart - uStart);
3686 pExtent->uSectorOffset = 0;
3687 pExtent->enmAccess = VMDKACCESS_READWRITE;
3688 pExtent->fMetaDirty = false;
3689 /* go to next extent */
3690 pExtent = &pImage->pExtents[cExtents++];
3691 }
3692 uStart = pPart->uStart + pPart->cbData;
3693
3694 if (pPart->pvPartitionData)
3695 {
3696 /* Set up basename for extent description. Can't use StrDup. */
3697 size_t cbBasename = strlen(pszPartition) + 1;
3698 char *pszBasename = (char *)RTMemTmpAlloc(cbBasename);
3699 if (!pszBasename)
3700 return VERR_NO_MEMORY;
3701 memcpy(pszBasename, pszPartition, cbBasename);
3702 pExtent->pszBasename = pszBasename;
3703
3704 /* Set up full name for partition extent. */
3705 char *pszDirname = RTStrDup(pImage->pszFilename);
3706 if (!pszDirname)
3707 return VERR_NO_STR_MEMORY;
3708 RTPathStripFilename(pszDirname);
3709 char *pszFullname = RTPathJoinA(pszDirname, pExtent->pszBasename);
3710 RTStrFree(pszDirname);
3711 if (!pszDirname)
3712 return VERR_NO_STR_MEMORY;
3713 pExtent->pszFullname = pszFullname;
3714 pExtent->enmType = VMDKETYPE_FLAT;
3715 pExtent->cNominalSectors = VMDK_BYTE2SECTOR(pPart->cbData);
3716 pExtent->uSectorOffset = uPartOffset;
3717 pExtent->enmAccess = VMDKACCESS_READWRITE;
3718 pExtent->fMetaDirty = false;
3719
3720 /* Create partition table flat image. */
3721 rc = vmdkFileOpen(pImage, &pExtent->pFile, pExtent->pszFullname,
3722 VDOpenFlagsToFileOpenFlags(pImage->uOpenFlags,
3723 true /* fCreate */),
3724 false /* fAsyncIO */);
3725 if (RT_FAILURE(rc))
3726 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new partition data file '%s'"), pExtent->pszFullname);
3727 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
3728 VMDK_SECTOR2BYTE(uPartOffset),
3729 pPart->pvPartitionData,
3730 pPart->cbData, NULL);
3731 if (RT_FAILURE(rc))
3732 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not write partition data to '%s'"), pExtent->pszFullname);
3733 uPartOffset += VMDK_BYTE2SECTOR(pPart->cbData);
3734 }
3735 else
3736 {
3737 if (pPart->pszRawDevice)
3738 {
3739 /* Set up basename for extent descr. Can't use StrDup. */
3740 size_t cbBasename = strlen(pPart->pszRawDevice) + 1;
3741 char *pszBasename = (char *)RTMemTmpAlloc(cbBasename);
3742 if (!pszBasename)
3743 return VERR_NO_MEMORY;
3744 memcpy(pszBasename, pPart->pszRawDevice, cbBasename);
3745 pExtent->pszBasename = pszBasename;
3746 /* For raw disks full name is identical to base name. */
3747 pExtent->pszFullname = RTStrDup(pszBasename);
3748 if (!pExtent->pszFullname)
3749 return VERR_NO_MEMORY;
3750 pExtent->enmType = VMDKETYPE_FLAT;
3751 pExtent->cNominalSectors = VMDK_BYTE2SECTOR(pPart->cbData);
3752 pExtent->uSectorOffset = VMDK_BYTE2SECTOR(pPart->uStartOffset);
3753 pExtent->enmAccess = VMDKACCESS_READWRITE;
3754 pExtent->fMetaDirty = false;
3755
3756 /* Open flat image, the raw partition. */
3757 rc = vmdkFileOpen(pImage, &pExtent->pFile, pExtent->pszFullname,
3758 VDOpenFlagsToFileOpenFlags(pImage->uOpenFlags & ~VD_OPEN_FLAGS_READONLY,
3759 false /* fCreate */),
3760 false /* fAsyncIO */);
3761 if (RT_FAILURE(rc))
3762 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not open raw partition file '%s'"), pExtent->pszFullname);
3763 }
3764 else
3765 {
3766 pExtent->pszBasename = NULL;
3767 pExtent->pszFullname = NULL;
3768 pExtent->enmType = VMDKETYPE_ZERO;
3769 pExtent->cNominalSectors = VMDK_BYTE2SECTOR(pPart->cbData);
3770 pExtent->uSectorOffset = 0;
3771 pExtent->enmAccess = VMDKACCESS_READWRITE;
3772 pExtent->fMetaDirty = false;
3773 }
3774 }
3775 }
3776 /* Another extent for filling up the rest of the image. */
3777 if (uStart != cbSize)
3778 {
3779 pExtent = &pImage->pExtents[cExtents++];
3780 pExtent->pszBasename = NULL;
3781 pExtent->pszFullname = NULL;
3782 pExtent->enmType = VMDKETYPE_ZERO;
3783 pExtent->cNominalSectors = VMDK_BYTE2SECTOR(cbSize - uStart);
3784 pExtent->uSectorOffset = 0;
3785 pExtent->enmAccess = VMDKACCESS_READWRITE;
3786 pExtent->fMetaDirty = false;
3787 }
3788 }
3789
3790 rc = vmdkDescBaseSetStr(pImage, &pImage->Descriptor, "createType",
3791 pRaw->fRawDisk ?
3792 "fullDevice" : "partitionedDevice");
3793 if (RT_FAILURE(rc))
3794 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not set the image type in '%s'"), pImage->pszFilename);
3795 return rc;
3796}
3797
3798/**
3799 * Internal: create a regular (i.e. file-backed) VMDK image.
3800 */
3801static int vmdkCreateRegularImage(PVMDKIMAGE pImage, uint64_t cbSize,
3802 unsigned uImageFlags,
3803 PFNVDPROGRESS pfnProgress, void *pvUser,
3804 unsigned uPercentStart, unsigned uPercentSpan)
3805{
3806 int rc = VINF_SUCCESS;
3807 unsigned cExtents = 1;
3808 uint64_t cbOffset = 0;
3809 uint64_t cbRemaining = cbSize;
3810
3811 if (uImageFlags & VD_VMDK_IMAGE_FLAGS_SPLIT_2G)
3812 {
3813 cExtents = cbSize / VMDK_2G_SPLIT_SIZE;
3814 /* Do proper extent computation: need one smaller extent if the total
3815 * size isn't evenly divisible by the split size. */
3816 if (cbSize % VMDK_2G_SPLIT_SIZE)
3817 cExtents++;
3818 }
3819 rc = vmdkCreateExtents(pImage, cExtents);
3820 if (RT_FAILURE(rc))
3821 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new extent list in '%s'"), pImage->pszFilename);
3822
3823 /* Basename strings needed for constructing the extent names. */
3824 char *pszBasenameSubstr = RTPathFilename(pImage->pszFilename);
3825 AssertPtr(pszBasenameSubstr);
3826 size_t cbBasenameSubstr = strlen(pszBasenameSubstr) + 1;
3827
3828 /* Create separate descriptor file if necessary. */
3829 if (cExtents != 1 || (uImageFlags & VD_IMAGE_FLAGS_FIXED))
3830 {
3831 rc = vmdkFileOpen(pImage, &pImage->pFile, pImage->pszFilename,
3832 VDOpenFlagsToFileOpenFlags(pImage->uOpenFlags,
3833 true /* fCreate */),
3834 false /* fAsyncIO */);
3835 if (RT_FAILURE(rc))
3836 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new sparse descriptor file '%s'"), pImage->pszFilename);
3837 }
3838 else
3839 pImage->pFile = NULL;
3840
3841 /* Set up all extents. */
3842 for (unsigned i = 0; i < cExtents; i++)
3843 {
3844 PVMDKEXTENT pExtent = &pImage->pExtents[i];
3845 uint64_t cbExtent = cbRemaining;
3846
3847 /* Set up fullname/basename for extent description. Cannot use StrDup
3848 * for basename, as it is not guaranteed that the memory can be freed
3849 * with RTMemTmpFree, which must be used as in other code paths
3850 * StrDup is not usable. */
3851 if (cExtents == 1 && !(uImageFlags & VD_IMAGE_FLAGS_FIXED))
3852 {
3853 char *pszBasename = (char *)RTMemTmpAlloc(cbBasenameSubstr);
3854 if (!pszBasename)
3855 return VERR_NO_MEMORY;
3856 memcpy(pszBasename, pszBasenameSubstr, cbBasenameSubstr);
3857 pExtent->pszBasename = pszBasename;
3858 }
3859 else
3860 {
3861 char *pszBasenameExt = RTPathExt(pszBasenameSubstr);
3862 char *pszBasenameBase = RTStrDup(pszBasenameSubstr);
3863 RTPathStripExt(pszBasenameBase);
3864 char *pszTmp;
3865 size_t cbTmp;
3866 if (uImageFlags & VD_IMAGE_FLAGS_FIXED)
3867 {
3868 if (cExtents == 1)
3869 RTStrAPrintf(&pszTmp, "%s-flat%s", pszBasenameBase,
3870 pszBasenameExt);
3871 else
3872 RTStrAPrintf(&pszTmp, "%s-f%03d%s", pszBasenameBase,
3873 i+1, pszBasenameExt);
3874 }
3875 else
3876 RTStrAPrintf(&pszTmp, "%s-s%03d%s", pszBasenameBase, i+1,
3877 pszBasenameExt);
3878 RTStrFree(pszBasenameBase);
3879 if (!pszTmp)
3880 return VERR_NO_STR_MEMORY;
3881 cbTmp = strlen(pszTmp) + 1;
3882 char *pszBasename = (char *)RTMemTmpAlloc(cbTmp);
3883 if (!pszBasename)
3884 return VERR_NO_MEMORY;
3885 memcpy(pszBasename, pszTmp, cbTmp);
3886 RTStrFree(pszTmp);
3887 pExtent->pszBasename = pszBasename;
3888 if (uImageFlags & VD_VMDK_IMAGE_FLAGS_SPLIT_2G)
3889 cbExtent = RT_MIN(cbRemaining, VMDK_2G_SPLIT_SIZE);
3890 }
3891 char *pszBasedirectory = RTStrDup(pImage->pszFilename);
3892 if (!pszBasedirectory)
3893 return VERR_NO_STR_MEMORY;
3894 RTPathStripFilename(pszBasedirectory);
3895 char *pszFullname = RTPathJoinA(pszBasedirectory, pExtent->pszBasename);
3896 RTStrFree(pszBasedirectory);
3897 if (!pszFullname)
3898 return VERR_NO_STR_MEMORY;
3899 pExtent->pszFullname = pszFullname;
3900
3901 /* Create file for extent. */
3902 rc = vmdkFileOpen(pImage, &pExtent->pFile, pExtent->pszFullname,
3903 VDOpenFlagsToFileOpenFlags(pImage->uOpenFlags,
3904 true /* fCreate */),
3905 false /* fAsyncIO */);
3906 if (RT_FAILURE(rc))
3907 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new file '%s'"), pExtent->pszFullname);
3908 if (uImageFlags & VD_IMAGE_FLAGS_FIXED)
3909 {
3910 rc = vmdkFileSetSize(pImage, pExtent->pFile, cbExtent);
3911 if (RT_FAILURE(rc))
3912 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not set size of new file '%s'"), pExtent->pszFullname);
3913
3914 /* Fill image with zeroes. We do this for every fixed-size image since on some systems
3915 * (for example Windows Vista), it takes ages to write a block near the end of a sparse
3916 * file and the guest could complain about an ATA timeout. */
3917
3918 /** @todo Starting with Linux 2.6.23, there is an fallocate() system call.
3919 * Currently supported file systems are ext4 and ocfs2. */
3920
3921 /* Allocate a temporary zero-filled buffer. Use a bigger block size to optimize writing */
3922 const size_t cbBuf = 128 * _1K;
3923 void *pvBuf = RTMemTmpAllocZ(cbBuf);
3924 if (!pvBuf)
3925 return VERR_NO_MEMORY;
3926
3927 uint64_t uOff = 0;
3928 /* Write data to all image blocks. */
3929 while (uOff < cbExtent)
3930 {
3931 unsigned cbChunk = (unsigned)RT_MIN(cbExtent, cbBuf);
3932
3933 rc = vmdkFileWriteSync(pImage, pExtent->pFile, uOff, pvBuf, cbChunk, NULL);
3934 if (RT_FAILURE(rc))
3935 {
3936 RTMemFree(pvBuf);
3937 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: writing block failed for '%s'"), pImage->pszFilename);
3938 }
3939
3940 uOff += cbChunk;
3941
3942 if (pfnProgress)
3943 {
3944 rc = pfnProgress(pvUser,
3945 uPercentStart + uOff * uPercentSpan / cbExtent);
3946 if (RT_FAILURE(rc))
3947 {
3948 RTMemFree(pvBuf);
3949 return rc;
3950 }
3951 }
3952 }
3953 RTMemTmpFree(pvBuf);
3954 }
3955
3956 /* Place descriptor file information (where integrated). */
3957 if (cExtents == 1 && !(uImageFlags & VD_IMAGE_FLAGS_FIXED))
3958 {
3959 pExtent->uDescriptorSector = 1;
3960 pExtent->cDescriptorSectors = VMDK_BYTE2SECTOR(pImage->cbDescAlloc);
3961 /* The descriptor is part of the (only) extent. */
3962 pExtent->pDescData = pImage->pDescData;
3963 pImage->pDescData = NULL;
3964 }
3965
3966 if (!(uImageFlags & VD_IMAGE_FLAGS_FIXED))
3967 {
3968 uint64_t cSectorsPerGDE, cSectorsPerGD;
3969 pExtent->enmType = VMDKETYPE_HOSTED_SPARSE;
3970 pExtent->cSectors = VMDK_BYTE2SECTOR(RT_ALIGN_64(cbExtent, _64K));
3971 pExtent->cSectorsPerGrain = VMDK_BYTE2SECTOR(_64K);
3972 pExtent->cGTEntries = 512;
3973 cSectorsPerGDE = pExtent->cGTEntries * pExtent->cSectorsPerGrain;
3974 pExtent->cSectorsPerGDE = cSectorsPerGDE;
3975 pExtent->cGDEntries = (pExtent->cSectors + cSectorsPerGDE - 1) / cSectorsPerGDE;
3976 cSectorsPerGD = (pExtent->cGDEntries + (512 / sizeof(uint32_t) - 1)) / (512 / sizeof(uint32_t));
3977 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
3978 {
3979 /* The spec says version is 1 for all VMDKs, but the vast
3980 * majority of streamOptimized VMDKs actually contain
3981 * version 3 - so go with the majority. Both are accepted. */
3982 pExtent->uVersion = 3;
3983 pExtent->uCompression = VMDK_COMPRESSION_DEFLATE;
3984 }
3985 }
3986 else
3987 {
3988 if (uImageFlags & VD_VMDK_IMAGE_FLAGS_ESX)
3989 pExtent->enmType = VMDKETYPE_VMFS;
3990 else
3991 pExtent->enmType = VMDKETYPE_FLAT;
3992 }
3993
3994 pExtent->enmAccess = VMDKACCESS_READWRITE;
3995 pExtent->fUncleanShutdown = true;
3996 pExtent->cNominalSectors = VMDK_BYTE2SECTOR(cbExtent);
3997 pExtent->uSectorOffset = 0;
3998 pExtent->fMetaDirty = true;
3999
4000 if (!(uImageFlags & VD_IMAGE_FLAGS_FIXED))
4001 {
4002 /* fPreAlloc should never be false because VMware can't use such images. */
4003 rc = vmdkCreateGrainDirectory(pImage, pExtent,
4004 RT_MAX( pExtent->uDescriptorSector
4005 + pExtent->cDescriptorSectors,
4006 1),
4007 true /* fPreAlloc */);
4008 if (RT_FAILURE(rc))
4009 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new grain directory in '%s'"), pExtent->pszFullname);
4010 }
4011
4012 if (RT_SUCCESS(rc) && pfnProgress)
4013 pfnProgress(pvUser, uPercentStart + i * uPercentSpan / cExtents);
4014
4015 cbRemaining -= cbExtent;
4016 cbOffset += cbExtent;
4017 }
4018
4019 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_ESX)
4020 {
4021 /* VirtualBox doesn't care, but VMWare ESX freaks out if the wrong
4022 * controller type is set in an image. */
4023 rc = vmdkDescDDBSetStr(pImage, &pImage->Descriptor, "ddb.adapterType", "lsilogic");
4024 if (RT_FAILURE(rc))
4025 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not set controller type to lsilogic in '%s'"), pImage->pszFilename);
4026 }
4027
4028 const char *pszDescType = NULL;
4029 if (uImageFlags & VD_IMAGE_FLAGS_FIXED)
4030 {
4031 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_ESX)
4032 pszDescType = "vmfs";
4033 else
4034 pszDescType = (cExtents == 1)
4035 ? "monolithicFlat" : "twoGbMaxExtentFlat";
4036 }
4037 else
4038 {
4039 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
4040 pszDescType = "streamOptimized";
4041 else
4042 {
4043 pszDescType = (cExtents == 1)
4044 ? "monolithicSparse" : "twoGbMaxExtentSparse";
4045 }
4046 }
4047 rc = vmdkDescBaseSetStr(pImage, &pImage->Descriptor, "createType",
4048 pszDescType);
4049 if (RT_FAILURE(rc))
4050 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not set the image type in '%s'"), pImage->pszFilename);
4051 return rc;
4052}
4053
4054/**
4055 * Internal: Create a real stream optimized VMDK using only linear writes.
4056 */
4057static int vmdkCreateStreamImage(PVMDKIMAGE pImage, uint64_t cbSize,
4058 unsigned uImageFlags,
4059 PFNVDPROGRESS pfnProgress, void *pvUser,
4060 unsigned uPercentStart, unsigned uPercentSpan)
4061{
4062 int rc;
4063
4064 rc = vmdkCreateExtents(pImage, 1);
4065 if (RT_FAILURE(rc))
4066 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new extent list in '%s'"), pImage->pszFilename);
4067
4068 /* Basename strings needed for constructing the extent names. */
4069 const char *pszBasenameSubstr = RTPathFilename(pImage->pszFilename);
4070 AssertPtr(pszBasenameSubstr);
4071 size_t cbBasenameSubstr = strlen(pszBasenameSubstr) + 1;
4072
4073 /* No separate descriptor file. */
4074 pImage->pFile = NULL;
4075
4076 /* Set up all extents. */
4077 PVMDKEXTENT pExtent = &pImage->pExtents[0];
4078
4079 /* Set up fullname/basename for extent description. Cannot use StrDup
4080 * for basename, as it is not guaranteed that the memory can be freed
4081 * with RTMemTmpFree, which must be used as in other code paths
4082 * StrDup is not usable. */
4083 char *pszBasename = (char *)RTMemTmpAlloc(cbBasenameSubstr);
4084 if (!pszBasename)
4085 return VERR_NO_MEMORY;
4086 memcpy(pszBasename, pszBasenameSubstr, cbBasenameSubstr);
4087 pExtent->pszBasename = pszBasename;
4088
4089 char *pszBasedirectory = RTStrDup(pImage->pszFilename);
4090 RTPathStripFilename(pszBasedirectory);
4091 char *pszFullname = RTPathJoinA(pszBasedirectory, pExtent->pszBasename);
4092 RTStrFree(pszBasedirectory);
4093 if (!pszFullname)
4094 return VERR_NO_STR_MEMORY;
4095 pExtent->pszFullname = pszFullname;
4096
4097 /* Create file for extent. Make it write only, no reading allowed. */
4098 rc = vmdkFileOpen(pImage, &pExtent->pFile, pExtent->pszFullname,
4099 VDOpenFlagsToFileOpenFlags(pImage->uOpenFlags,
4100 true /* fCreate */)
4101 & ~RTFILE_O_READ,
4102 false /* fAsyncIO */);
4103 if (RT_FAILURE(rc))
4104 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new file '%s'"), pExtent->pszFullname);
4105
4106 /* Place descriptor file information. */
4107 pExtent->uDescriptorSector = 1;
4108 pExtent->cDescriptorSectors = VMDK_BYTE2SECTOR(pImage->cbDescAlloc);
4109 /* The descriptor is part of the (only) extent. */
4110 pExtent->pDescData = pImage->pDescData;
4111 pImage->pDescData = NULL;
4112
4113 uint64_t cSectorsPerGDE, cSectorsPerGD;
4114 pExtent->enmType = VMDKETYPE_HOSTED_SPARSE;
4115 pExtent->cSectors = VMDK_BYTE2SECTOR(RT_ALIGN_64(cbSize, _64K));
4116 pExtent->cSectorsPerGrain = VMDK_BYTE2SECTOR(_64K);
4117 pExtent->cGTEntries = 512;
4118 cSectorsPerGDE = pExtent->cGTEntries * pExtent->cSectorsPerGrain;
4119 pExtent->cSectorsPerGDE = cSectorsPerGDE;
4120 pExtent->cGDEntries = (pExtent->cSectors + cSectorsPerGDE - 1) / cSectorsPerGDE;
4121 cSectorsPerGD = (pExtent->cGDEntries + (512 / sizeof(uint32_t) - 1)) / (512 / sizeof(uint32_t));
4122
4123 /* The spec says version is 1 for all VMDKs, but the vast
4124 * majority of streamOptimized VMDKs actually contain
4125 * version 3 - so go with the majority. Both are accepted. */
4126 pExtent->uVersion = 3;
4127 pExtent->uCompression = VMDK_COMPRESSION_DEFLATE;
4128 pExtent->fFooter = true;
4129
4130 pExtent->enmAccess = VMDKACCESS_READONLY;
4131 pExtent->fUncleanShutdown = false;
4132 pExtent->cNominalSectors = VMDK_BYTE2SECTOR(cbSize);
4133 pExtent->uSectorOffset = 0;
4134 pExtent->fMetaDirty = true;
4135
4136 /* Create grain directory, without preallocating it straight away. It will
4137 * be constructed on the fly when writing out the data and written when
4138 * closing the image. The end effect is that the full grain directory is
4139 * allocated, which is a requirement of the VMDK specs. */
4140 rc = vmdkCreateGrainDirectory(pImage, pExtent, VMDK_GD_AT_END,
4141 false /* fPreAlloc */);
4142 if (RT_FAILURE(rc))
4143 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new grain directory in '%s'"), pExtent->pszFullname);
4144
4145 rc = vmdkDescBaseSetStr(pImage, &pImage->Descriptor, "createType",
4146 "streamOptimized");
4147 if (RT_FAILURE(rc))
4148 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not set the image type in '%s'"), pImage->pszFilename);
4149
4150 return rc;
4151}
4152
4153/**
4154 * Internal: The actual code for creating any VMDK variant currently in
4155 * existence on hosted environments.
4156 */
4157static int vmdkCreateImage(PVMDKIMAGE pImage, uint64_t cbSize,
4158 unsigned uImageFlags, const char *pszComment,
4159 PCVDGEOMETRY pPCHSGeometry,
4160 PCVDGEOMETRY pLCHSGeometry, PCRTUUID pUuid,
4161 PFNVDPROGRESS pfnProgress, void *pvUser,
4162 unsigned uPercentStart, unsigned uPercentSpan)
4163{
4164 int rc;
4165
4166 pImage->uImageFlags = uImageFlags;
4167
4168 /* Try to get error interface. */
4169 pImage->pInterfaceError = VDInterfaceGet(pImage->pVDIfsDisk, VDINTERFACETYPE_ERROR);
4170 if (pImage->pInterfaceError)
4171 pImage->pInterfaceErrorCallbacks = VDGetInterfaceError(pImage->pInterfaceError);
4172
4173 /* Get I/O interface. */
4174 pImage->pInterfaceIO = VDInterfaceGet(pImage->pVDIfsImage, VDINTERFACETYPE_IOINT);
4175 AssertPtrReturn(pImage->pInterfaceIO, VERR_INVALID_PARAMETER);
4176 pImage->pInterfaceIOCallbacks = VDGetInterfaceIOInt(pImage->pInterfaceIO);
4177 AssertPtrReturn(pImage->pInterfaceIOCallbacks, VERR_INVALID_PARAMETER);
4178
4179 rc = vmdkCreateDescriptor(pImage, pImage->pDescData, pImage->cbDescAlloc,
4180 &pImage->Descriptor);
4181 if (RT_FAILURE(rc))
4182 {
4183 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not create new descriptor in '%s'"), pImage->pszFilename);
4184 goto out;
4185 }
4186
4187 if ( (uImageFlags & VD_IMAGE_FLAGS_FIXED)
4188 && (uImageFlags & VD_VMDK_IMAGE_FLAGS_RAWDISK))
4189 {
4190 /* Raw disk image (includes raw partition). */
4191 const PVBOXHDDRAW pRaw = (const PVBOXHDDRAW)pszComment;
4192 /* As the comment is misused, zap it so that no garbage comment
4193 * is set below. */
4194 pszComment = NULL;
4195 rc = vmdkCreateRawImage(pImage, pRaw, cbSize);
4196 }
4197 else
4198 {
4199 if (uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
4200 {
4201 /* Stream optimized sparse image (monolithic). */
4202 rc = vmdkCreateStreamImage(pImage, cbSize, uImageFlags,
4203 pfnProgress, pvUser, uPercentStart,
4204 uPercentSpan * 95 / 100);
4205 }
4206 else
4207 {
4208 /* Regular fixed or sparse image (monolithic or split). */
4209 rc = vmdkCreateRegularImage(pImage, cbSize, uImageFlags,
4210 pfnProgress, pvUser, uPercentStart,
4211 uPercentSpan * 95 / 100);
4212 }
4213 }
4214
4215 if (RT_FAILURE(rc))
4216 goto out;
4217
4218 if (RT_SUCCESS(rc) && pfnProgress)
4219 pfnProgress(pvUser, uPercentStart + uPercentSpan * 98 / 100);
4220
4221 pImage->cbSize = cbSize;
4222
4223 for (unsigned i = 0; i < pImage->cExtents; i++)
4224 {
4225 PVMDKEXTENT pExtent = &pImage->pExtents[i];
4226
4227 rc = vmdkDescExtInsert(pImage, &pImage->Descriptor, pExtent->enmAccess,
4228 pExtent->cNominalSectors, pExtent->enmType,
4229 pExtent->pszBasename, pExtent->uSectorOffset);
4230 if (RT_FAILURE(rc))
4231 {
4232 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: could not insert the extent list into descriptor in '%s'"), pImage->pszFilename);
4233 goto out;
4234 }
4235 }
4236 vmdkDescExtRemoveDummy(pImage, &pImage->Descriptor);
4237
4238 if ( pPCHSGeometry->cCylinders != 0
4239 && pPCHSGeometry->cHeads != 0
4240 && pPCHSGeometry->cSectors != 0)
4241 {
4242 rc = vmdkDescSetPCHSGeometry(pImage, pPCHSGeometry);
4243 if (RT_FAILURE(rc))
4244 goto out;
4245 }
4246 if ( pLCHSGeometry->cCylinders != 0
4247 && pLCHSGeometry->cHeads != 0
4248 && pLCHSGeometry->cSectors != 0)
4249 {
4250 rc = vmdkDescSetLCHSGeometry(pImage, pLCHSGeometry);
4251 if (RT_FAILURE(rc))
4252 goto out;
4253 }
4254
4255 pImage->LCHSGeometry = *pLCHSGeometry;
4256 pImage->PCHSGeometry = *pPCHSGeometry;
4257
4258 pImage->ImageUuid = *pUuid;
4259 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
4260 VMDK_DDB_IMAGE_UUID, &pImage->ImageUuid);
4261 if (RT_FAILURE(rc))
4262 {
4263 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing image UUID in new descriptor in '%s'"), pImage->pszFilename);
4264 goto out;
4265 }
4266 RTUuidClear(&pImage->ParentUuid);
4267 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
4268 VMDK_DDB_PARENT_UUID, &pImage->ParentUuid);
4269 if (RT_FAILURE(rc))
4270 {
4271 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing parent image UUID in new descriptor in '%s'"), pImage->pszFilename);
4272 goto out;
4273 }
4274 RTUuidClear(&pImage->ModificationUuid);
4275 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
4276 VMDK_DDB_MODIFICATION_UUID,
4277 &pImage->ModificationUuid);
4278 if (RT_FAILURE(rc))
4279 {
4280 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing modification UUID in new descriptor in '%s'"), pImage->pszFilename);
4281 goto out;
4282 }
4283 RTUuidClear(&pImage->ParentModificationUuid);
4284 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
4285 VMDK_DDB_PARENT_MODIFICATION_UUID,
4286 &pImage->ParentModificationUuid);
4287 if (RT_FAILURE(rc))
4288 {
4289 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing parent modification UUID in new descriptor in '%s'"), pImage->pszFilename);
4290 goto out;
4291 }
4292
4293 rc = vmdkAllocateGrainTableCache(pImage);
4294 if (RT_FAILURE(rc))
4295 goto out;
4296
4297 rc = vmdkSetImageComment(pImage, pszComment);
4298 if (RT_FAILURE(rc))
4299 {
4300 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot set image comment in '%s'"), pImage->pszFilename);
4301 goto out;
4302 }
4303
4304 if (RT_SUCCESS(rc) && pfnProgress)
4305 pfnProgress(pvUser, uPercentStart + uPercentSpan * 99 / 100);
4306
4307 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
4308 {
4309 /* streamOptimized is a bit special, we cannot trigger the flush
4310 * until all data has been written. So we write the necessary
4311 * information explicitly. */
4312 pImage->pExtents[0].cDescriptorSectors = VMDK_BYTE2SECTOR(RT_ALIGN_64( pImage->Descriptor.aLines[pImage->Descriptor.cLines]
4313 - pImage->Descriptor.aLines[0], 512));
4314 rc = vmdkWriteMetaSparseExtent(pImage, &pImage->pExtents[0], 0);
4315 if (RT_FAILURE(rc))
4316 {
4317 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write VMDK header in '%s'"), pImage->pszFilename);
4318 goto out;
4319 }
4320
4321 rc = vmdkWriteDescriptor(pImage);
4322 if (RT_FAILURE(rc))
4323 {
4324 rc = vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write VMDK descriptor in '%s'"), pImage->pszFilename);
4325 goto out;
4326 }
4327 }
4328 else
4329 rc = vmdkFlushImage(pImage);
4330
4331out:
4332 if (RT_SUCCESS(rc) && pfnProgress)
4333 pfnProgress(pvUser, uPercentStart + uPercentSpan);
4334
4335 if (RT_FAILURE(rc))
4336 vmdkFreeImage(pImage, rc != VERR_ALREADY_EXISTS);
4337 return rc;
4338}
4339
4340/**
4341 * Internal: Update image comment.
4342 */
4343static int vmdkSetImageComment(PVMDKIMAGE pImage, const char *pszComment)
4344{
4345 char *pszCommentEncoded;
4346 if (pszComment)
4347 {
4348 pszCommentEncoded = vmdkEncodeString(pszComment);
4349 if (!pszCommentEncoded)
4350 return VERR_NO_MEMORY;
4351 }
4352 else
4353 pszCommentEncoded = NULL;
4354 int rc = vmdkDescDDBSetStr(pImage, &pImage->Descriptor,
4355 "ddb.comment", pszCommentEncoded);
4356 if (pszComment)
4357 RTStrFree(pszCommentEncoded);
4358 if (RT_FAILURE(rc))
4359 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing image comment in descriptor in '%s'"), pImage->pszFilename);
4360 return VINF_SUCCESS;
4361}
4362
4363/**
4364 * Internal. Clear the grain table buffer for real stream optimized writing.
4365 */
4366static void vmdkStreamClearGT(PVMDKIMAGE pImage, PVMDKEXTENT pExtent)
4367{
4368 uint32_t cCacheLines = RT_ALIGN(pExtent->cGTEntries, VMDK_GT_CACHELINE_SIZE) / VMDK_GT_CACHELINE_SIZE;
4369 for (uint32_t i = 0; i < cCacheLines; i++)
4370 memset(&pImage->pGTCache->aGTCache[i].aGTData[0], '\0',
4371 VMDK_GT_CACHELINE_SIZE * sizeof(uint32_t));
4372}
4373
4374/**
4375 * Internal. Flush the grain table buffer for real stream optimized writing.
4376 */
4377static int vmdkStreamFlushGT(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
4378 uint32_t uGDEntry)
4379{
4380 int rc = VINF_SUCCESS;
4381 uint32_t cCacheLines = RT_ALIGN(pExtent->cGTEntries, VMDK_GT_CACHELINE_SIZE) / VMDK_GT_CACHELINE_SIZE;
4382
4383 /* VMware does not write out completely empty grain tables in the case
4384 * of streamOptimized images, which according to my interpretation of
4385 * the VMDK 1.1 spec is bending the rules. Since they do it and we can
4386 * handle it without problems do it the same way and save some bytes. */
4387 bool fAllZero = true;
4388 for (uint32_t i = 0; i < cCacheLines; i++)
4389 {
4390 /* Convert the grain table to little endian in place, as it will not
4391 * be used at all after this function has been called. */
4392 uint32_t *pGTTmp = &pImage->pGTCache->aGTCache[i].aGTData[0];
4393 for (uint32_t j = 0; j < VMDK_GT_CACHELINE_SIZE; j++, pGTTmp++)
4394 if (*pGTTmp)
4395 {
4396 fAllZero = false;
4397 break;
4398 }
4399 if (!fAllZero)
4400 break;
4401 }
4402 if (fAllZero)
4403 return VINF_SUCCESS;
4404
4405 uint64_t uFileOffset = pExtent->uAppendPosition;
4406 if (!uFileOffset)
4407 return VERR_INTERNAL_ERROR;
4408 /* Align to sector, as the previous write could have been any size. */
4409 uFileOffset = RT_ALIGN_64(uFileOffset, 512);
4410
4411 /* Grain table marker. */
4412 uint8_t aMarker[512];
4413 PVMDKMARKER pMarker = (PVMDKMARKER)&aMarker[0];
4414 memset(pMarker, '\0', sizeof(aMarker));
4415 pMarker->uSector = RT_H2LE_U64(VMDK_BYTE2SECTOR(pExtent->cGTEntries * sizeof(uint32_t)));
4416 pMarker->uType = RT_H2LE_U32(VMDK_MARKER_GT);
4417 rc = vmdkFileWriteSync(pImage, pExtent->pFile, uFileOffset,
4418 aMarker, sizeof(aMarker), NULL);
4419 AssertRC(rc);
4420 uFileOffset += 512;
4421
4422 if (!pExtent->pGD || pExtent->pGD[uGDEntry])
4423 return VERR_INTERNAL_ERROR;
4424
4425 pExtent->pGD[uGDEntry] = VMDK_BYTE2SECTOR(uFileOffset);
4426
4427 for (uint32_t i = 0; i < cCacheLines; i++)
4428 {
4429 /* Convert the grain table to little endian in place, as it will not
4430 * be used at all after this function has been called. */
4431 uint32_t *pGTTmp = &pImage->pGTCache->aGTCache[i].aGTData[0];
4432 for (uint32_t j = 0; j < VMDK_GT_CACHELINE_SIZE; j++, pGTTmp++)
4433 *pGTTmp = RT_H2LE_U32(*pGTTmp);
4434
4435 rc = vmdkFileWriteSync(pImage, pExtent->pFile, uFileOffset,
4436 &pImage->pGTCache->aGTCache[i].aGTData[0],
4437 VMDK_GT_CACHELINE_SIZE * sizeof(uint32_t),
4438 NULL);
4439 uFileOffset += VMDK_GT_CACHELINE_SIZE * sizeof(uint32_t);
4440 if (RT_FAILURE(rc))
4441 break;
4442 }
4443 Assert(!(uFileOffset % 512));
4444 pExtent->uAppendPosition = RT_ALIGN_64(uFileOffset, 512);
4445 return rc;
4446}
4447
4448/**
4449 * Internal. Free all allocated space for representing an image, and optionally
4450 * delete the image from disk.
4451 */
4452static int vmdkFreeImage(PVMDKIMAGE pImage, bool fDelete)
4453{
4454 int rc = VINF_SUCCESS;
4455
4456 /* Freeing a never allocated image (e.g. because the open failed) is
4457 * not signalled as an error. After all nothing bad happens. */
4458 if (pImage)
4459 {
4460 if (!(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY))
4461 {
4462 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
4463 {
4464 /* Check if all extents are clean. */
4465 for (unsigned i = 0; i < pImage->cExtents; i++)
4466 {
4467 Assert(!pImage->pExtents[i].fUncleanShutdown);
4468 }
4469 }
4470 else
4471 {
4472 /* Mark all extents as clean. */
4473 for (unsigned i = 0; i < pImage->cExtents; i++)
4474 {
4475 if ( ( pImage->pExtents[i].enmType == VMDKETYPE_HOSTED_SPARSE
4476#ifdef VBOX_WITH_VMDK_ESX
4477 || pImage->pExtents[i].enmType == VMDKETYPE_ESX_SPARSE
4478#endif /* VBOX_WITH_VMDK_ESX */
4479 )
4480 && pImage->pExtents[i].fUncleanShutdown)
4481 {
4482 pImage->pExtents[i].fUncleanShutdown = false;
4483 pImage->pExtents[i].fMetaDirty = true;
4484 }
4485
4486 /* From now on it's not safe to append any more data. */
4487 pImage->pExtents[i].uAppendPosition = 0;
4488 }
4489 }
4490 }
4491
4492 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
4493 {
4494 /* No need to write any pending data if the file will be deleted
4495 * or if the new file wasn't successfully created. */
4496 if ( !fDelete && pImage->pExtents
4497 && pImage->pExtents[0].cGTEntries
4498 && pImage->pExtents[0].uAppendPosition)
4499 {
4500 PVMDKEXTENT pExtent = &pImage->pExtents[0];
4501 uint32_t uLastGDEntry = pExtent->uLastGrainAccess / pExtent->cGTEntries;
4502 rc = vmdkStreamFlushGT(pImage, pExtent, uLastGDEntry);
4503 AssertRC(rc);
4504 vmdkStreamClearGT(pImage, pExtent);
4505 for (uint32_t i = uLastGDEntry + 1; i < pExtent->cGDEntries; i++)
4506 {
4507 rc = vmdkStreamFlushGT(pImage, pExtent, i);
4508 AssertRC(rc);
4509 }
4510
4511 uint64_t uFileOffset = pExtent->uAppendPosition;
4512 if (!uFileOffset)
4513 return VERR_INTERNAL_ERROR;
4514 uFileOffset = RT_ALIGN_64(uFileOffset, 512);
4515
4516 /* From now on it's not safe to append any more data. */
4517 pExtent->uAppendPosition = 0;
4518
4519 /* Grain directory marker. */
4520 uint8_t aMarker[512];
4521 PVMDKMARKER pMarker = (PVMDKMARKER)&aMarker[0];
4522 memset(pMarker, '\0', sizeof(aMarker));
4523 pMarker->uSector = VMDK_BYTE2SECTOR(RT_ALIGN_64(RT_H2LE_U64(pExtent->cGDEntries * sizeof(uint32_t)), 512));
4524 pMarker->uType = RT_H2LE_U32(VMDK_MARKER_GD);
4525 rc = vmdkFileWriteSync(pImage, pExtent->pFile, uFileOffset,
4526 aMarker, sizeof(aMarker), NULL);
4527 AssertRC(rc);
4528 uFileOffset += 512;
4529
4530 /* Write grain directory in little endian style. The array will
4531 * not be used after this, so convert in place. */
4532 uint32_t *pGDTmp = pExtent->pGD;
4533 for (uint32_t i = 0; i < pExtent->cGDEntries; i++, pGDTmp++)
4534 *pGDTmp = RT_H2LE_U32(*pGDTmp);
4535 rc = vmdkFileWriteSync(pImage, pExtent->pFile, uFileOffset,
4536 pExtent->pGD,
4537 pExtent->cGDEntries * sizeof(uint32_t),
4538 NULL);
4539 AssertRC(rc);
4540
4541 pExtent->uSectorGD = VMDK_BYTE2SECTOR(uFileOffset);
4542 pExtent->uSectorRGD = VMDK_BYTE2SECTOR(uFileOffset);
4543 uFileOffset = RT_ALIGN_64( uFileOffset
4544 + pExtent->cGDEntries * sizeof(uint32_t),
4545 512);
4546
4547 /* Footer marker. */
4548 memset(pMarker, '\0', sizeof(aMarker));
4549 pMarker->uSector = VMDK_BYTE2SECTOR(512);
4550 pMarker->uType = RT_H2LE_U32(VMDK_MARKER_FOOTER);
4551 rc = vmdkFileWriteSync(pImage, pExtent->pFile, uFileOffset,
4552 aMarker, sizeof(aMarker), NULL);
4553 AssertRC(rc);
4554
4555 uFileOffset += 512;
4556 rc = vmdkWriteMetaSparseExtent(pImage, pExtent, uFileOffset);
4557 AssertRC(rc);
4558
4559 uFileOffset += 512;
4560 /* End-of-stream marker. */
4561 memset(pMarker, '\0', sizeof(aMarker));
4562 rc = vmdkFileWriteSync(pImage, pExtent->pFile, uFileOffset,
4563 aMarker, sizeof(aMarker), NULL);
4564 AssertRC(rc);
4565 }
4566 }
4567 else
4568 vmdkFlushImage(pImage);
4569
4570 if (pImage->pExtents != NULL)
4571 {
4572 for (unsigned i = 0 ; i < pImage->cExtents; i++)
4573 vmdkFreeExtentData(pImage, &pImage->pExtents[i], fDelete);
4574 RTMemFree(pImage->pExtents);
4575 pImage->pExtents = NULL;
4576 }
4577 pImage->cExtents = 0;
4578 if (pImage->pFile != NULL)
4579 vmdkFileClose(pImage, &pImage->pFile, fDelete);
4580 vmdkFileCheckAllClose(pImage);
4581
4582 if (pImage->pGTCache)
4583 {
4584 RTMemFree(pImage->pGTCache);
4585 pImage->pGTCache = NULL;
4586 }
4587 if (pImage->pDescData)
4588 {
4589 RTMemFree(pImage->pDescData);
4590 pImage->pDescData = NULL;
4591 }
4592 }
4593
4594 LogFlowFunc(("returns %Rrc\n", rc));
4595 return rc;
4596}
4597
4598/**
4599 * Internal. Flush image data (and metadata) to disk.
4600 */
4601static int vmdkFlushImage(PVMDKIMAGE pImage)
4602{
4603 PVMDKEXTENT pExtent;
4604 int rc = VINF_SUCCESS;
4605
4606 /* Update descriptor if changed. */
4607 if (pImage->Descriptor.fDirty)
4608 {
4609 rc = vmdkWriteDescriptor(pImage);
4610 if (RT_FAILURE(rc))
4611 goto out;
4612 }
4613
4614 for (unsigned i = 0; i < pImage->cExtents; i++)
4615 {
4616 pExtent = &pImage->pExtents[i];
4617 if (pExtent->pFile != NULL && pExtent->fMetaDirty)
4618 {
4619 switch (pExtent->enmType)
4620 {
4621 case VMDKETYPE_HOSTED_SPARSE:
4622 if (!pExtent->fFooter)
4623 {
4624 rc = vmdkWriteMetaSparseExtent(pImage, pExtent, 0);
4625 if (RT_FAILURE(rc))
4626 goto out;
4627 }
4628 else
4629 {
4630 uint64_t uFileOffset = pExtent->uAppendPosition;
4631 /* Simply skip writing anything if the streamOptimized
4632 * image hasn't been just created. */
4633 if (!uFileOffset)
4634 break;
4635 uFileOffset = RT_ALIGN_64(uFileOffset, 512);
4636 rc = vmdkWriteMetaSparseExtent(pImage, pExtent,
4637 uFileOffset);
4638 if (RT_FAILURE(rc))
4639 goto out;
4640 }
4641 break;
4642#ifdef VBOX_WITH_VMDK_ESX
4643 case VMDKETYPE_ESX_SPARSE:
4644 /** @todo update the header. */
4645 break;
4646#endif /* VBOX_WITH_VMDK_ESX */
4647 case VMDKETYPE_VMFS:
4648 case VMDKETYPE_FLAT:
4649 /* Nothing to do. */
4650 break;
4651 case VMDKETYPE_ZERO:
4652 default:
4653 AssertMsgFailed(("extent with type %d marked as dirty\n",
4654 pExtent->enmType));
4655 break;
4656 }
4657 }
4658 switch (pExtent->enmType)
4659 {
4660 case VMDKETYPE_HOSTED_SPARSE:
4661#ifdef VBOX_WITH_VMDK_ESX
4662 case VMDKETYPE_ESX_SPARSE:
4663#endif /* VBOX_WITH_VMDK_ESX */
4664 case VMDKETYPE_VMFS:
4665 case VMDKETYPE_FLAT:
4666 /** @todo implement proper path absolute check. */
4667 if ( pExtent->pFile != NULL
4668 && !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
4669 && !(pExtent->pszBasename[0] == RTPATH_SLASH))
4670 rc = vmdkFileFlush(pImage, pExtent->pFile);
4671 break;
4672 case VMDKETYPE_ZERO:
4673 /* No need to do anything for this extent. */
4674 break;
4675 default:
4676 AssertMsgFailed(("unknown extent type %d\n", pExtent->enmType));
4677 break;
4678 }
4679 }
4680
4681out:
4682 return rc;
4683}
4684
4685/**
4686 * Internal. Find extent corresponding to the sector number in the disk.
4687 */
4688static int vmdkFindExtent(PVMDKIMAGE pImage, uint64_t offSector,
4689 PVMDKEXTENT *ppExtent, uint64_t *puSectorInExtent)
4690{
4691 PVMDKEXTENT pExtent = NULL;
4692 int rc = VINF_SUCCESS;
4693
4694 for (unsigned i = 0; i < pImage->cExtents; i++)
4695 {
4696 if (offSector < pImage->pExtents[i].cNominalSectors)
4697 {
4698 pExtent = &pImage->pExtents[i];
4699 *puSectorInExtent = offSector + pImage->pExtents[i].uSectorOffset;
4700 break;
4701 }
4702 offSector -= pImage->pExtents[i].cNominalSectors;
4703 }
4704
4705 if (pExtent)
4706 *ppExtent = pExtent;
4707 else
4708 rc = VERR_IO_SECTOR_NOT_FOUND;
4709
4710 return rc;
4711}
4712
4713/**
4714 * Internal. Hash function for placing the grain table hash entries.
4715 */
4716static uint32_t vmdkGTCacheHash(PVMDKGTCACHE pCache, uint64_t uSector,
4717 unsigned uExtent)
4718{
4719 /** @todo this hash function is quite simple, maybe use a better one which
4720 * scrambles the bits better. */
4721 return (uSector + uExtent) % pCache->cEntries;
4722}
4723
4724/**
4725 * Internal. Get sector number in the extent file from the relative sector
4726 * number in the extent.
4727 */
4728static int vmdkGetSector(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
4729 uint64_t uSector, uint64_t *puExtentSector)
4730{
4731 PVMDKGTCACHE pCache = pImage->pGTCache;
4732 uint64_t uGDIndex, uGTSector, uGTBlock;
4733 uint32_t uGTHash, uGTBlockIndex;
4734 PVMDKGTCACHEENTRY pGTCacheEntry;
4735 uint32_t aGTDataTmp[VMDK_GT_CACHELINE_SIZE];
4736 int rc;
4737
4738 /* For newly created and readonly/sequentially opened streamOptimized
4739 * images this must be a no-op, as the grain directory is not there. */
4740 if ( ( pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED
4741 && pExtent->uAppendPosition)
4742 || ( pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED
4743 && pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY
4744 && pImage->uOpenFlags & VD_OPEN_FLAGS_SEQUENTIAL))
4745 {
4746 *puExtentSector = 0;
4747 return VINF_SUCCESS;
4748 }
4749
4750 uGDIndex = uSector / pExtent->cSectorsPerGDE;
4751 if (uGDIndex >= pExtent->cGDEntries)
4752 return VERR_OUT_OF_RANGE;
4753 uGTSector = pExtent->pGD[uGDIndex];
4754 if (!uGTSector)
4755 {
4756 /* There is no grain table referenced by this grain directory
4757 * entry. So there is absolutely no data in this area. */
4758 *puExtentSector = 0;
4759 return VINF_SUCCESS;
4760 }
4761
4762 uGTBlock = uSector / (pExtent->cSectorsPerGrain * VMDK_GT_CACHELINE_SIZE);
4763 uGTHash = vmdkGTCacheHash(pCache, uGTBlock, pExtent->uExtent);
4764 pGTCacheEntry = &pCache->aGTCache[uGTHash];
4765 if ( pGTCacheEntry->uExtent != pExtent->uExtent
4766 || pGTCacheEntry->uGTBlock != uGTBlock)
4767 {
4768 /* Cache miss, fetch data from disk. */
4769 rc = vmdkFileReadSync(pImage, pExtent->pFile,
4770 VMDK_SECTOR2BYTE(uGTSector) + (uGTBlock % (pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE)) * sizeof(aGTDataTmp),
4771 aGTDataTmp, sizeof(aGTDataTmp), NULL);
4772 if (RT_FAILURE(rc))
4773 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot read grain table entry in '%s'"), pExtent->pszFullname);
4774 pGTCacheEntry->uExtent = pExtent->uExtent;
4775 pGTCacheEntry->uGTBlock = uGTBlock;
4776 for (unsigned i = 0; i < VMDK_GT_CACHELINE_SIZE; i++)
4777 pGTCacheEntry->aGTData[i] = RT_LE2H_U32(aGTDataTmp[i]);
4778 }
4779 uGTBlockIndex = (uSector / pExtent->cSectorsPerGrain) % VMDK_GT_CACHELINE_SIZE;
4780 uint32_t uGrainSector = pGTCacheEntry->aGTData[uGTBlockIndex];
4781 if (uGrainSector)
4782 *puExtentSector = uGrainSector + uSector % pExtent->cSectorsPerGrain;
4783 else
4784 *puExtentSector = 0;
4785 return VINF_SUCCESS;
4786}
4787
4788/**
4789 * Internal. Get sector number in the extent file from the relative sector
4790 * number in the extent - version for async access.
4791 */
4792static int vmdkGetSectorAsync(PVMDKIMAGE pImage, PVDIOCTX pIoCtx,
4793 PVMDKEXTENT pExtent, uint64_t uSector,
4794 uint64_t *puExtentSector)
4795{
4796 PVMDKGTCACHE pCache = pImage->pGTCache;
4797 uint64_t uGDIndex, uGTSector, uGTBlock;
4798 uint32_t uGTHash, uGTBlockIndex;
4799 PVMDKGTCACHEENTRY pGTCacheEntry;
4800 uint32_t aGTDataTmp[VMDK_GT_CACHELINE_SIZE];
4801 int rc;
4802
4803 uGDIndex = uSector / pExtent->cSectorsPerGDE;
4804 if (uGDIndex >= pExtent->cGDEntries)
4805 return VERR_OUT_OF_RANGE;
4806 uGTSector = pExtent->pGD[uGDIndex];
4807 if (!uGTSector)
4808 {
4809 /* There is no grain table referenced by this grain directory
4810 * entry. So there is absolutely no data in this area. */
4811 *puExtentSector = 0;
4812 return VINF_SUCCESS;
4813 }
4814
4815 uGTBlock = uSector / (pExtent->cSectorsPerGrain * VMDK_GT_CACHELINE_SIZE);
4816 uGTHash = vmdkGTCacheHash(pCache, uGTBlock, pExtent->uExtent);
4817 pGTCacheEntry = &pCache->aGTCache[uGTHash];
4818 if ( pGTCacheEntry->uExtent != pExtent->uExtent
4819 || pGTCacheEntry->uGTBlock != uGTBlock)
4820 {
4821 /* Cache miss, fetch data from disk. */
4822 PVDMETAXFER pMetaXfer;
4823 rc = vmdkFileReadMetaAsync(pImage, pExtent->pFile,
4824 VMDK_SECTOR2BYTE(uGTSector) + (uGTBlock % (pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE)) * sizeof(aGTDataTmp),
4825 aGTDataTmp, sizeof(aGTDataTmp), pIoCtx, &pMetaXfer, NULL, NULL);
4826 if (RT_FAILURE(rc))
4827 return rc;
4828 /* We can release the metadata transfer immediately. */
4829 vmdkFileMetaXferRelease(pImage, pMetaXfer);
4830 pGTCacheEntry->uExtent = pExtent->uExtent;
4831 pGTCacheEntry->uGTBlock = uGTBlock;
4832 for (unsigned i = 0; i < VMDK_GT_CACHELINE_SIZE; i++)
4833 pGTCacheEntry->aGTData[i] = RT_LE2H_U32(aGTDataTmp[i]);
4834 }
4835 uGTBlockIndex = (uSector / pExtent->cSectorsPerGrain) % VMDK_GT_CACHELINE_SIZE;
4836 uint32_t uGrainSector = pGTCacheEntry->aGTData[uGTBlockIndex];
4837 if (uGrainSector)
4838 *puExtentSector = uGrainSector + uSector % pExtent->cSectorsPerGrain;
4839 else
4840 *puExtentSector = 0;
4841 return VINF_SUCCESS;
4842}
4843
4844/**
4845 * Internal. Allocates a new grain table (if necessary), writes the grain
4846 * and updates the grain table. The cache is also updated by this operation.
4847 * This is separate from vmdkGetSector, because that should be as fast as
4848 * possible. Most code from vmdkGetSector also appears here.
4849 */
4850static int vmdkAllocGrain(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
4851 uint64_t uSector, const void *pvBuf,
4852 uint64_t cbWrite)
4853{
4854 PVMDKGTCACHE pCache = pImage->pGTCache;
4855 uint64_t uGDIndex, uGTSector, uRGTSector, uGTBlock;
4856 uint64_t uFileOffset;
4857 uint32_t uGTHash, uGTBlockIndex;
4858 PVMDKGTCACHEENTRY pGTCacheEntry;
4859 uint32_t aGTDataTmp[VMDK_GT_CACHELINE_SIZE];
4860 int rc;
4861
4862 uGDIndex = uSector / pExtent->cSectorsPerGDE;
4863 if (uGDIndex >= pExtent->cGDEntries)
4864 return VERR_OUT_OF_RANGE;
4865 uGTSector = pExtent->pGD[uGDIndex];
4866 if (pExtent->pRGD)
4867 uRGTSector = pExtent->pRGD[uGDIndex];
4868 else
4869 uRGTSector = 0; /**< avoid compiler warning */
4870 if (!uGTSector)
4871 {
4872 /* There is no grain table referenced by this grain directory
4873 * entry. So there is absolutely no data in this area. Allocate
4874 * a new grain table and put the reference to it in the GDs. */
4875 uFileOffset = pExtent->uAppendPosition;
4876 if (!uFileOffset)
4877 return VERR_INTERNAL_ERROR;
4878 Assert(!(uFileOffset % 512));
4879 uFileOffset = RT_ALIGN_64(uFileOffset, 512);
4880 uGTSector = VMDK_BYTE2SECTOR(uFileOffset);
4881
4882 pExtent->uAppendPosition += pExtent->cGTEntries * sizeof(uint32_t);
4883
4884 /* Normally the grain table is preallocated for hosted sparse extents
4885 * that support more than 32 bit sector numbers. So this shouldn't
4886 * ever happen on a valid extent. */
4887 if (uGTSector > UINT32_MAX)
4888 return VERR_VD_VMDK_INVALID_HEADER;
4889
4890 /* Write grain table by writing the required number of grain table
4891 * cache chunks. Avoids dynamic memory allocation, but is a bit
4892 * slower. But as this is a pretty infrequently occurring case it
4893 * should be acceptable. */
4894 memset(aGTDataTmp, '\0', sizeof(aGTDataTmp));
4895 for (unsigned i = 0;
4896 i < pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE;
4897 i++)
4898 {
4899 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
4900 VMDK_SECTOR2BYTE(uGTSector) + i * sizeof(aGTDataTmp),
4901 aGTDataTmp, sizeof(aGTDataTmp), NULL);
4902 if (RT_FAILURE(rc))
4903 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write grain table allocation in '%s'"), pExtent->pszFullname);
4904 }
4905 pExtent->uAppendPosition = RT_ALIGN_64( pExtent->uAppendPosition
4906 + pExtent->cGTEntries * sizeof(uint32_t),
4907 512);
4908
4909 if (pExtent->pRGD)
4910 {
4911 AssertReturn(!uRGTSector, VERR_VD_VMDK_INVALID_HEADER);
4912 uFileOffset = pExtent->uAppendPosition;
4913 if (!uFileOffset)
4914 return VERR_INTERNAL_ERROR;
4915 Assert(!(uFileOffset % 512));
4916 uRGTSector = VMDK_BYTE2SECTOR(uFileOffset);
4917
4918 pExtent->uAppendPosition += pExtent->cGTEntries * sizeof(uint32_t);
4919
4920 /* Normally the redundant grain table is preallocated for hosted
4921 * sparse extents that support more than 32 bit sector numbers. So
4922 * this shouldn't ever happen on a valid extent. */
4923 if (uRGTSector > UINT32_MAX)
4924 return VERR_VD_VMDK_INVALID_HEADER;
4925
4926 /* Write backup grain table by writing the required number of grain
4927 * table cache chunks. Avoids dynamic memory allocation, but is a
4928 * bit slower. But as this is a pretty infrequently occurring case
4929 * it should be acceptable. */
4930 for (unsigned i = 0;
4931 i < pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE;
4932 i++)
4933 {
4934 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
4935 VMDK_SECTOR2BYTE(uRGTSector) + i * sizeof(aGTDataTmp),
4936 aGTDataTmp, sizeof(aGTDataTmp), NULL);
4937 if (RT_FAILURE(rc))
4938 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write backup grain table allocation in '%s'"), pExtent->pszFullname);
4939 }
4940
4941 pExtent->uAppendPosition = pExtent->uAppendPosition
4942 + pExtent->cGTEntries * sizeof(uint32_t);
4943 }
4944
4945 /* Update the grain directory on disk (doing it before writing the
4946 * grain table will result in a garbled extent if the operation is
4947 * aborted for some reason. Otherwise the worst that can happen is
4948 * some unused sectors in the extent. */
4949 uint32_t uGTSectorLE = RT_H2LE_U64(uGTSector);
4950 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
4951 VMDK_SECTOR2BYTE(pExtent->uSectorGD) + uGDIndex * sizeof(uGTSectorLE),
4952 &uGTSectorLE, sizeof(uGTSectorLE), NULL);
4953 if (RT_FAILURE(rc))
4954 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write grain directory entry in '%s'"), pExtent->pszFullname);
4955 if (pExtent->pRGD)
4956 {
4957 uint32_t uRGTSectorLE = RT_H2LE_U64(uRGTSector);
4958 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
4959 VMDK_SECTOR2BYTE(pExtent->uSectorRGD) + uGDIndex * sizeof(uRGTSectorLE),
4960 &uRGTSectorLE, sizeof(uRGTSectorLE), NULL);
4961 if (RT_FAILURE(rc))
4962 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write backup grain directory entry in '%s'"), pExtent->pszFullname);
4963 }
4964
4965 /* As the final step update the in-memory copy of the GDs. */
4966 pExtent->pGD[uGDIndex] = uGTSector;
4967 if (pExtent->pRGD)
4968 pExtent->pRGD[uGDIndex] = uRGTSector;
4969 }
4970
4971 uFileOffset = pExtent->uAppendPosition;
4972 if (!uFileOffset)
4973 return VERR_INTERNAL_ERROR;
4974 Assert(!(uFileOffset % 512));
4975
4976 /* Write the data. Always a full grain, or we're in big trouble. */
4977 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
4978 {
4979 if (cbWrite != VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain))
4980 return vmdkError(pImage, VERR_INTERNAL_ERROR, RT_SRC_POS, N_("VMDK: not enough data for a compressed data block in '%s'"), pExtent->pszFullname);
4981
4982 /* Invalidate cache, just in case some code incorrectly allows mixing
4983 * of reads and writes. Normally shouldn't be needed. */
4984 pExtent->uGrainSectorAbs = 0;
4985
4986 /* Write compressed data block and the markers. */
4987 uint32_t cbGrain = 0;
4988 rc = vmdkFileDeflateSync(pImage, pExtent, uFileOffset,
4989 pvBuf, cbWrite, uSector, &cbGrain);
4990 if (RT_FAILURE(rc))
4991 {
4992 AssertRC(rc);
4993 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write allocated compressed data block in '%s'"), pExtent->pszFullname);
4994 }
4995 pExtent->uLastGrainAccess = uSector / pExtent->cSectorsPerGrain;
4996 pExtent->uAppendPosition += cbGrain;
4997 }
4998 else
4999 {
5000 rc = vmdkFileWriteSync(pImage, pExtent->pFile, uFileOffset,
5001 pvBuf, cbWrite, NULL);
5002 if (RT_FAILURE(rc))
5003 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write allocated data block in '%s'"), pExtent->pszFullname);
5004 pExtent->uAppendPosition += cbWrite;
5005 }
5006
5007 /* Update the grain table (and the cache). */
5008 uGTBlock = uSector / (pExtent->cSectorsPerGrain * VMDK_GT_CACHELINE_SIZE);
5009 uGTHash = vmdkGTCacheHash(pCache, uGTBlock, pExtent->uExtent);
5010 pGTCacheEntry = &pCache->aGTCache[uGTHash];
5011 if ( pGTCacheEntry->uExtent != pExtent->uExtent
5012 || pGTCacheEntry->uGTBlock != uGTBlock)
5013 {
5014 /* Cache miss, fetch data from disk. */
5015 rc = vmdkFileReadSync(pImage, pExtent->pFile,
5016 VMDK_SECTOR2BYTE(uGTSector) + (uGTBlock % (pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE)) * sizeof(aGTDataTmp),
5017 aGTDataTmp, sizeof(aGTDataTmp), NULL);
5018 if (RT_FAILURE(rc))
5019 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot read allocated grain table entry in '%s'"), pExtent->pszFullname);
5020 pGTCacheEntry->uExtent = pExtent->uExtent;
5021 pGTCacheEntry->uGTBlock = uGTBlock;
5022 for (unsigned i = 0; i < VMDK_GT_CACHELINE_SIZE; i++)
5023 pGTCacheEntry->aGTData[i] = RT_LE2H_U32(aGTDataTmp[i]);
5024 }
5025 else
5026 {
5027 /* Cache hit. Convert grain table block back to disk format, otherwise
5028 * the code below will write garbage for all but the updated entry. */
5029 for (unsigned i = 0; i < VMDK_GT_CACHELINE_SIZE; i++)
5030 aGTDataTmp[i] = RT_H2LE_U32(pGTCacheEntry->aGTData[i]);
5031 }
5032 uGTBlockIndex = (uSector / pExtent->cSectorsPerGrain) % VMDK_GT_CACHELINE_SIZE;
5033 aGTDataTmp[uGTBlockIndex] = RT_H2LE_U32(VMDK_BYTE2SECTOR(uFileOffset));
5034 pGTCacheEntry->aGTData[uGTBlockIndex] = VMDK_BYTE2SECTOR(uFileOffset);
5035 /* Update grain table on disk. */
5036 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
5037 VMDK_SECTOR2BYTE(uGTSector) + (uGTBlock % (pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE)) * sizeof(aGTDataTmp),
5038 aGTDataTmp, sizeof(aGTDataTmp), NULL);
5039 if (RT_FAILURE(rc))
5040 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write updated grain table in '%s'"), pExtent->pszFullname);
5041 if (pExtent->pRGD)
5042 {
5043 /* Update backup grain table on disk. */
5044 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
5045 VMDK_SECTOR2BYTE(uRGTSector) + (uGTBlock % (pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE)) * sizeof(aGTDataTmp),
5046 aGTDataTmp, sizeof(aGTDataTmp), NULL);
5047 if (RT_FAILURE(rc))
5048 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write updated backup grain table in '%s'"), pExtent->pszFullname);
5049 }
5050#ifdef VBOX_WITH_VMDK_ESX
5051 if (RT_SUCCESS(rc) && pExtent->enmType == VMDKETYPE_ESX_SPARSE)
5052 {
5053 pExtent->uFreeSector = uGTSector + VMDK_BYTE2SECTOR(cbWrite);
5054 pExtent->fMetaDirty = true;
5055 }
5056#endif /* VBOX_WITH_VMDK_ESX */
5057 return rc;
5058}
5059
5060/**
5061 * Internal. Writes the grain and also if necessary the grain tables.
5062 * Uses the grain table cache as a true grain table.
5063 */
5064static int vmdkStreamAllocGrain(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
5065 uint64_t uSector, const void *pvBuf,
5066 uint64_t cbWrite)
5067{
5068 uint32_t uGrain;
5069 uint32_t uGDEntry, uLastGDEntry;
5070 uint32_t cbGrain = 0;
5071 uint32_t uCacheLine, uCacheEntry;
5072 const void *pData = pvBuf;
5073 int rc;
5074
5075 /* Very strict requirements: always write at least one full grain, with
5076 * proper alignment. Everything else would require reading of already
5077 * written data, which we don't support for obvious reasons. The only
5078 * exception is the last grain, and only if the image size specifies
5079 * that only some portion holds data. In any case the write must be
5080 * within the image limits, no "overshoot" allowed. */
5081 if ( cbWrite == 0
5082 || ( cbWrite < VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain)
5083 && pExtent->cNominalSectors - uSector >= pExtent->cSectorsPerGrain)
5084 || uSector % pExtent->cSectorsPerGrain
5085 || uSector + VMDK_BYTE2SECTOR(cbWrite) > pExtent->cNominalSectors)
5086 return VERR_INVALID_PARAMETER;
5087
5088 /* Clip write range to at most the rest of the grain. */
5089 cbWrite = RT_MIN(cbWrite, VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain - uSector % pExtent->cSectorsPerGrain));
5090
5091 /* Do not allow to go back. */
5092 uGrain = uSector / pExtent->cSectorsPerGrain;
5093 uCacheLine = uGrain % pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE;
5094 uCacheEntry = uGrain % VMDK_GT_CACHELINE_SIZE;
5095 uGDEntry = uGrain / pExtent->cGTEntries;
5096 uLastGDEntry = pExtent->uLastGrainAccess / pExtent->cGTEntries;
5097 if (uGrain < pExtent->uLastGrainAccess)
5098 return VERR_VD_VMDK_INVALID_WRITE;
5099
5100 /* Zero byte write optimization. Since we don't tell VBoxHDD that we need
5101 * to allocate something, we also need to detect the situation ourself. */
5102 if ( !(pImage->uOpenFlags & VD_OPEN_FLAGS_HONOR_ZEROES)
5103 && ASMBitFirstSet((volatile void *)pvBuf, (uint32_t)cbWrite * 8) == -1)
5104 return VINF_SUCCESS;
5105
5106 if (uGDEntry != uLastGDEntry)
5107 {
5108 rc = vmdkStreamFlushGT(pImage, pExtent, uLastGDEntry);
5109 if (RT_FAILURE(rc))
5110 return rc;
5111 vmdkStreamClearGT(pImage, pExtent);
5112 for (uint32_t i = uLastGDEntry + 1; i < uGDEntry; i++)
5113 {
5114 rc = vmdkStreamFlushGT(pImage, pExtent, i);
5115 if (RT_FAILURE(rc))
5116 return rc;
5117 }
5118 }
5119
5120 uint64_t uFileOffset;
5121 uFileOffset = pExtent->uAppendPosition;
5122 if (!uFileOffset)
5123 return VERR_INTERNAL_ERROR;
5124 /* Align to sector, as the previous write could have been any size. */
5125 uFileOffset = RT_ALIGN_64(uFileOffset, 512);
5126
5127 /* Paranoia check: extent type, grain table buffer presence and
5128 * grain table buffer space. Also grain table entry must be clear. */
5129 if ( pExtent->enmType != VMDKETYPE_HOSTED_SPARSE
5130 || !pImage->pGTCache
5131 || pExtent->cGTEntries > VMDK_GT_CACHE_SIZE * VMDK_GT_CACHELINE_SIZE
5132 || pImage->pGTCache->aGTCache[uCacheLine].aGTData[uCacheEntry])
5133 return VERR_INTERNAL_ERROR;
5134
5135 /* Update grain table entry. */
5136 pImage->pGTCache->aGTCache[uCacheLine].aGTData[uCacheEntry] = VMDK_BYTE2SECTOR(uFileOffset);
5137
5138 if (cbWrite != VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain))
5139 {
5140 memcpy(pExtent->pvGrain, pvBuf, cbWrite);
5141 memset((char *)pExtent->pvGrain + cbWrite, '\0',
5142 VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain) - cbWrite);
5143 pData = pExtent->pvGrain;
5144 }
5145 rc = vmdkFileDeflateSync(pImage, pExtent, uFileOffset, pData,
5146 VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain),
5147 uSector, &cbGrain);
5148 if (RT_FAILURE(rc))
5149 {
5150 pExtent->uGrainSectorAbs = 0;
5151 AssertRC(rc);
5152 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write compressed data block in '%s'"), pExtent->pszFullname);
5153 }
5154 pExtent->uLastGrainAccess = uGrain;
5155 pExtent->uAppendPosition += cbGrain;
5156
5157 return rc;
5158}
5159
5160/**
5161 * Internal: Updates the grain table during a async grain allocation.
5162 */
5163static int vmdkAllocGrainAsyncGTUpdate(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
5164 PVDIOCTX pIoCtx,
5165 PVMDKGRAINALLOCASYNC pGrainAlloc)
5166{
5167 int rc = VINF_SUCCESS;
5168 PVMDKGTCACHE pCache = pImage->pGTCache;
5169 uint32_t aGTDataTmp[VMDK_GT_CACHELINE_SIZE];
5170 uint32_t uGTHash, uGTBlockIndex;
5171 uint64_t uGTSector, uRGTSector, uGTBlock;
5172 uint64_t uSector = pGrainAlloc->uSector;
5173 PVMDKGTCACHEENTRY pGTCacheEntry;
5174
5175 LogFlowFunc(("pImage=%#p pExtent=%#p pCache=%#p pIoCtx=%#p pGrainAlloc=%#p\n",
5176 pImage, pExtent, pCache, pIoCtx, pGrainAlloc));
5177
5178 uGTSector = pGrainAlloc->uGTSector;
5179 uRGTSector = pGrainAlloc->uRGTSector;
5180 LogFlow(("uGTSector=%llu uRGTSector=%llu\n", uGTSector, uRGTSector));
5181
5182 /* Update the grain table (and the cache). */
5183 uGTBlock = uSector / (pExtent->cSectorsPerGrain * VMDK_GT_CACHELINE_SIZE);
5184 uGTHash = vmdkGTCacheHash(pCache, uGTBlock, pExtent->uExtent);
5185 pGTCacheEntry = &pCache->aGTCache[uGTHash];
5186 if ( pGTCacheEntry->uExtent != pExtent->uExtent
5187 || pGTCacheEntry->uGTBlock != uGTBlock)
5188 {
5189 /* Cache miss, fetch data from disk. */
5190 LogFlow(("Cache miss, fetch data from disk\n"));
5191 PVDMETAXFER pMetaXfer = NULL;
5192 rc = vmdkFileReadMetaAsync(pImage, pExtent->pFile,
5193 VMDK_SECTOR2BYTE(uGTSector) + (uGTBlock % (pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE)) * sizeof(aGTDataTmp),
5194 aGTDataTmp, sizeof(aGTDataTmp), pIoCtx,
5195 &pMetaXfer, vmdkAllocGrainAsyncComplete, pGrainAlloc);
5196 if (rc == VERR_VD_ASYNC_IO_IN_PROGRESS)
5197 {
5198 pGrainAlloc->cIoXfersPending++;
5199 pGrainAlloc->fGTUpdateNeeded = true;
5200 /* Leave early, we will be called again after the read completed. */
5201 LogFlowFunc(("Metadata read in progress, leaving\n"));
5202 return rc;
5203 }
5204 else if (RT_FAILURE(rc))
5205 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot read allocated grain table entry in '%s'"), pExtent->pszFullname);
5206 vmdkFileMetaXferRelease(pImage, pMetaXfer);
5207 pGTCacheEntry->uExtent = pExtent->uExtent;
5208 pGTCacheEntry->uGTBlock = uGTBlock;
5209 for (unsigned i = 0; i < VMDK_GT_CACHELINE_SIZE; i++)
5210 pGTCacheEntry->aGTData[i] = RT_LE2H_U32(aGTDataTmp[i]);
5211 }
5212 else
5213 {
5214 /* Cache hit. Convert grain table block back to disk format, otherwise
5215 * the code below will write garbage for all but the updated entry. */
5216 for (unsigned i = 0; i < VMDK_GT_CACHELINE_SIZE; i++)
5217 aGTDataTmp[i] = RT_H2LE_U32(pGTCacheEntry->aGTData[i]);
5218 }
5219 pGrainAlloc->fGTUpdateNeeded = false;
5220 uGTBlockIndex = (uSector / pExtent->cSectorsPerGrain) % VMDK_GT_CACHELINE_SIZE;
5221 aGTDataTmp[uGTBlockIndex] = RT_H2LE_U32(VMDK_BYTE2SECTOR(pGrainAlloc->uGrainOffset));
5222 pGTCacheEntry->aGTData[uGTBlockIndex] = VMDK_BYTE2SECTOR(pGrainAlloc->uGrainOffset);
5223 /* Update grain table on disk. */
5224 rc = vmdkFileWriteMetaAsync(pImage, pExtent->pFile,
5225 VMDK_SECTOR2BYTE(uGTSector) + (uGTBlock % (pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE)) * sizeof(aGTDataTmp),
5226 aGTDataTmp, sizeof(aGTDataTmp), pIoCtx,
5227 vmdkAllocGrainAsyncComplete, pGrainAlloc);
5228 if (rc == VERR_VD_ASYNC_IO_IN_PROGRESS)
5229 pGrainAlloc->cIoXfersPending++;
5230 else if (RT_FAILURE(rc))
5231 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write updated grain table in '%s'"), pExtent->pszFullname);
5232 if (pExtent->pRGD)
5233 {
5234 /* Update backup grain table on disk. */
5235 rc = vmdkFileWriteMetaAsync(pImage, pExtent->pFile,
5236 VMDK_SECTOR2BYTE(uRGTSector) + (uGTBlock % (pExtent->cGTEntries / VMDK_GT_CACHELINE_SIZE)) * sizeof(aGTDataTmp),
5237 aGTDataTmp, sizeof(aGTDataTmp), pIoCtx,
5238 vmdkAllocGrainAsyncComplete, pGrainAlloc);
5239 if (rc == VERR_VD_ASYNC_IO_IN_PROGRESS)
5240 pGrainAlloc->cIoXfersPending++;
5241 else if (RT_FAILURE(rc))
5242 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write updated backup grain table in '%s'"), pExtent->pszFullname);
5243 }
5244#ifdef VBOX_WITH_VMDK_ESX
5245 if (RT_SUCCESS(rc) && pExtent->enmType == VMDKETYPE_ESX_SPARSE)
5246 {
5247 pExtent->uFreeSector = uGTSector + VMDK_BYTE2SECTOR(cbWrite);
5248 pExtent->fMetaDirty = true;
5249 }
5250#endif /* VBOX_WITH_VMDK_ESX */
5251
5252 LogFlowFunc(("leaving rc=%Rrc\n", rc));
5253
5254 return rc;
5255}
5256
5257/**
5258 * Internal - complete the grain allocation by updating disk grain table if required.
5259 */
5260static int vmdkAllocGrainAsyncComplete(void *pBackendData, PVDIOCTX pIoCtx, void *pvUser, int rcReq)
5261{
5262 int rc = VINF_SUCCESS;
5263 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
5264 PVMDKGRAINALLOCASYNC pGrainAlloc = (PVMDKGRAINALLOCASYNC)pvUser;
5265 PVMDKEXTENT pExtent = pGrainAlloc->pExtent;
5266
5267 LogFlowFunc(("pBackendData=%#p pIoCtx=%#p pvUser=%#p rcReq=%Rrc\n",
5268 pBackendData, pIoCtx, pvUser, rcReq));
5269
5270 pGrainAlloc->cIoXfersPending--;
5271 if (!pGrainAlloc->cIoXfersPending && pGrainAlloc->fGTUpdateNeeded)
5272 rc = vmdkAllocGrainAsyncGTUpdate(pImage, pGrainAlloc->pExtent,
5273 pIoCtx, pGrainAlloc);
5274
5275 if (!pGrainAlloc->cIoXfersPending)
5276 {
5277 /* Grain allocation completed. */
5278 RTMemFree(pGrainAlloc);
5279 }
5280
5281 LogFlowFunc(("Leaving rc=%Rrc\n", rc));
5282 return rc;
5283}
5284
5285/**
5286 * Internal. Allocates a new grain table (if necessary) - async version.
5287 */
5288static int vmdkAllocGrainAsync(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
5289 PVDIOCTX pIoCtx, uint64_t uSector,
5290 uint64_t cbWrite)
5291{
5292 PVMDKGTCACHE pCache = pImage->pGTCache;
5293 uint64_t uGDIndex, uGTSector, uRGTSector;
5294 uint64_t uFileOffset;
5295 PVMDKGRAINALLOCASYNC pGrainAlloc = NULL;
5296 int rc;
5297
5298 LogFlowFunc(("pCache=%#p pExtent=%#p pIoCtx=%#p uSector=%llu cbWrite=%llu\n",
5299 pCache, pExtent, pIoCtx, uSector, cbWrite));
5300
5301 AssertReturn(!(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED), VERR_NOT_SUPPORTED);
5302
5303 pGrainAlloc = (PVMDKGRAINALLOCASYNC)RTMemAllocZ(sizeof(VMDKGRAINALLOCASYNC));
5304 if (!pGrainAlloc)
5305 return VERR_NO_MEMORY;
5306
5307 pGrainAlloc->pExtent = pExtent;
5308 pGrainAlloc->uSector = uSector;
5309
5310 uGDIndex = uSector / pExtent->cSectorsPerGDE;
5311 if (uGDIndex >= pExtent->cGDEntries)
5312 {
5313 RTMemFree(pGrainAlloc);
5314 return VERR_OUT_OF_RANGE;
5315 }
5316 uGTSector = pExtent->pGD[uGDIndex];
5317 if (pExtent->pRGD)
5318 uRGTSector = pExtent->pRGD[uGDIndex];
5319 else
5320 uRGTSector = 0; /**< avoid compiler warning */
5321 if (!uGTSector)
5322 {
5323 LogFlow(("Allocating new grain table\n"));
5324
5325 /* There is no grain table referenced by this grain directory
5326 * entry. So there is absolutely no data in this area. Allocate
5327 * a new grain table and put the reference to it in the GDs. */
5328 uFileOffset = pExtent->uAppendPosition;
5329 if (!uFileOffset)
5330 return VERR_INTERNAL_ERROR;
5331 Assert(!(uFileOffset % 512));
5332
5333 uFileOffset = RT_ALIGN_64(uFileOffset, 512);
5334 uGTSector = VMDK_BYTE2SECTOR(uFileOffset);
5335
5336 /* Normally the grain table is preallocated for hosted sparse extents
5337 * that support more than 32 bit sector numbers. So this shouldn't
5338 * ever happen on a valid extent. */
5339 if (uGTSector > UINT32_MAX)
5340 return VERR_VD_VMDK_INVALID_HEADER;
5341
5342 /* Write grain table by writing the required number of grain table
5343 * cache chunks. Allocate memory dynamically here or we flood the
5344 * metadata cache with very small entries. */
5345 size_t cbGTDataTmp = pExtent->cGTEntries * sizeof(uint32_t);
5346 uint32_t *paGTDataTmp = (uint32_t *)RTMemTmpAllocZ(cbGTDataTmp);
5347
5348 if (!paGTDataTmp)
5349 return VERR_NO_MEMORY;
5350
5351 memset(paGTDataTmp, '\0', cbGTDataTmp);
5352 rc = vmdkFileWriteMetaAsync(pImage, pExtent->pFile,
5353 VMDK_SECTOR2BYTE(uGTSector),
5354 paGTDataTmp, cbGTDataTmp, pIoCtx,
5355 vmdkAllocGrainAsyncComplete, pGrainAlloc);
5356 if (rc == VERR_VD_ASYNC_IO_IN_PROGRESS)
5357 pGrainAlloc->cIoXfersPending++;
5358 else if (RT_FAILURE(rc))
5359 {
5360 RTMemTmpFree(paGTDataTmp);
5361 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write grain table allocation in '%s'"), pExtent->pszFullname);
5362 }
5363 pExtent->uAppendPosition = RT_ALIGN_64( pExtent->uAppendPosition
5364 + cbGTDataTmp, 512);
5365
5366 if (pExtent->pRGD)
5367 {
5368 AssertReturn(!uRGTSector, VERR_VD_VMDK_INVALID_HEADER);
5369 uFileOffset = pExtent->uAppendPosition;
5370 if (!uFileOffset)
5371 return VERR_INTERNAL_ERROR;
5372 Assert(!(uFileOffset % 512));
5373 uRGTSector = VMDK_BYTE2SECTOR(uFileOffset);
5374
5375 /* Normally the redundant grain table is preallocated for hosted
5376 * sparse extents that support more than 32 bit sector numbers. So
5377 * this shouldn't ever happen on a valid extent. */
5378 if (uRGTSector > UINT32_MAX)
5379 {
5380 RTMemTmpFree(paGTDataTmp);
5381 return VERR_VD_VMDK_INVALID_HEADER;
5382 }
5383
5384 /* Write grain table by writing the required number of grain table
5385 * cache chunks. Allocate memory dynamically here or we flood the
5386 * metadata cache with very small entries. */
5387 rc = vmdkFileWriteMetaAsync(pImage, pExtent->pFile,
5388 VMDK_SECTOR2BYTE(uRGTSector),
5389 paGTDataTmp, cbGTDataTmp, pIoCtx,
5390 vmdkAllocGrainAsyncComplete, pGrainAlloc);
5391 if (rc == VERR_VD_ASYNC_IO_IN_PROGRESS)
5392 pGrainAlloc->cIoXfersPending++;
5393 else if (RT_FAILURE(rc))
5394 {
5395 RTMemTmpFree(paGTDataTmp);
5396 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write backup grain table allocation in '%s'"), pExtent->pszFullname);
5397 }
5398
5399 pExtent->uAppendPosition = pExtent->uAppendPosition + cbGTDataTmp;
5400 }
5401
5402 RTMemTmpFree(paGTDataTmp);
5403
5404 /* Update the grain directory on disk (doing it before writing the
5405 * grain table will result in a garbled extent if the operation is
5406 * aborted for some reason. Otherwise the worst that can happen is
5407 * some unused sectors in the extent. */
5408 uint32_t uGTSectorLE = RT_H2LE_U64(uGTSector);
5409 rc = vmdkFileWriteMetaAsync(pImage, pExtent->pFile,
5410 VMDK_SECTOR2BYTE(pExtent->uSectorGD) + uGDIndex * sizeof(uGTSectorLE),
5411 &uGTSectorLE, sizeof(uGTSectorLE), pIoCtx,
5412 vmdkAllocGrainAsyncComplete, pGrainAlloc);
5413 if (rc == VERR_VD_ASYNC_IO_IN_PROGRESS)
5414 pGrainAlloc->cIoXfersPending++;
5415 else if (RT_FAILURE(rc))
5416 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write grain directory entry in '%s'"), pExtent->pszFullname);
5417 if (pExtent->pRGD)
5418 {
5419 uint32_t uRGTSectorLE = RT_H2LE_U64(uRGTSector);
5420 rc = vmdkFileWriteMetaAsync(pImage, pExtent->pFile,
5421 VMDK_SECTOR2BYTE(pExtent->uSectorRGD) + uGDIndex * sizeof(uGTSectorLE),
5422 &uRGTSectorLE, sizeof(uRGTSectorLE), pIoCtx,
5423 vmdkAllocGrainAsyncComplete, pGrainAlloc);
5424 if (rc == VERR_VD_ASYNC_IO_IN_PROGRESS)
5425 pGrainAlloc->cIoXfersPending++;
5426 else if (RT_FAILURE(rc))
5427 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write backup grain directory entry in '%s'"), pExtent->pszFullname);
5428 }
5429
5430 /* As the final step update the in-memory copy of the GDs. */
5431 pExtent->pGD[uGDIndex] = uGTSector;
5432 if (pExtent->pRGD)
5433 pExtent->pRGD[uGDIndex] = uRGTSector;
5434 }
5435
5436 LogFlow(("uGTSector=%llu uRGTSector=%llu\n", uGTSector, uRGTSector));
5437 pGrainAlloc->uGTSector = uGTSector;
5438 pGrainAlloc->uRGTSector = uRGTSector;
5439
5440 uFileOffset = pExtent->uAppendPosition;
5441 if (!uFileOffset)
5442 return VERR_INTERNAL_ERROR;
5443 Assert(!(uFileOffset % 512));
5444
5445 pGrainAlloc->uGrainOffset = uFileOffset;
5446
5447 /* Write the data. Always a full grain, or we're in big trouble. */
5448 rc = vmdkFileWriteUserAsync(pImage, pExtent->pFile,
5449 uFileOffset, pIoCtx, cbWrite,
5450 vmdkAllocGrainAsyncComplete, pGrainAlloc);
5451 if (rc == VERR_VD_ASYNC_IO_IN_PROGRESS)
5452 pGrainAlloc->cIoXfersPending++;
5453 else if (RT_FAILURE(rc))
5454 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: cannot write allocated data block in '%s'"), pExtent->pszFullname);
5455
5456 pExtent->uAppendPosition += cbWrite;
5457
5458 rc = vmdkAllocGrainAsyncGTUpdate(pImage, pExtent, pIoCtx, pGrainAlloc);
5459
5460 if (!pGrainAlloc->cIoXfersPending)
5461 {
5462 /* Grain allocation completed. */
5463 RTMemFree(pGrainAlloc);
5464 }
5465
5466 LogFlowFunc(("leaving rc=%Rrc\n", rc));
5467
5468 return rc;
5469}
5470
5471/**
5472 * Internal. Reads the contents by sequentially going over the compressed
5473 * grains (hoping that they are in sequence).
5474 */
5475static int vmdkStreamReadSequential(PVMDKIMAGE pImage, PVMDKEXTENT pExtent,
5476 uint64_t uSector, void *pvBuf,
5477 uint64_t cbRead)
5478{
5479 int rc;
5480
5481 /* Do not allow to go back. */
5482 uint32_t uGrain = uSector / pExtent->cSectorsPerGrain;
5483 if (uGrain < pExtent->uLastGrainAccess)
5484 return VERR_VD_VMDK_INVALID_STATE;
5485 pExtent->uLastGrainAccess = uGrain;
5486
5487 /* After a previous error do not attempt to recover, as it would need
5488 * seeking (in the general case backwards which is forbidden). */
5489 if (!pExtent->uGrainSectorAbs)
5490 return VERR_VD_VMDK_INVALID_STATE;
5491
5492 /* Check if we need to read something from the image or if what we have
5493 * in the buffer is good to fulfill the request. */
5494 if (!pExtent->cbGrainStreamRead || uGrain > pExtent->uGrain)
5495 {
5496 uint32_t uGrainSectorAbs = pExtent->uGrainSectorAbs
5497 + VMDK_BYTE2SECTOR(pExtent->cbGrainStreamRead);
5498
5499 /* Get the marker from the next data block - and skip everything which
5500 * is not a compressed grain. If it's a compressed grain which is for
5501 * the requested sector (or after), read it. */
5502 VMDKMARKER Marker;
5503 do
5504 {
5505 RT_ZERO(Marker);
5506 rc = vmdkFileReadSync(pImage, pExtent->pFile,
5507 VMDK_SECTOR2BYTE(uGrainSectorAbs),
5508 &Marker, RT_OFFSETOF(VMDKMARKER, uType),
5509 NULL);
5510 if (RT_FAILURE(rc))
5511 return rc;
5512 Marker.uSector = RT_LE2H_U64(Marker.uSector);
5513 Marker.cbSize = RT_LE2H_U32(Marker.cbSize);
5514
5515 if (Marker.cbSize == 0)
5516 {
5517 /* A marker for something else than a compressed grain. */
5518 rc = vmdkFileReadSync(pImage, pExtent->pFile,
5519 VMDK_SECTOR2BYTE(uGrainSectorAbs)
5520 + RT_OFFSETOF(VMDKMARKER, uType),
5521 &Marker.uType, sizeof(Marker.uType),
5522 NULL);
5523 if (RT_FAILURE(rc))
5524 return rc;
5525 Marker.uType = RT_LE2H_U32(Marker.uType);
5526 switch (Marker.uType)
5527 {
5528 case VMDK_MARKER_EOS:
5529 uGrainSectorAbs++;
5530 /* Read (or mostly skip) to the end of file. Uses the
5531 * Marker (LBA sector) as it is unused anyway. This
5532 * makes sure that really everything is read in the
5533 * success case. If this read fails it means the image
5534 * is truncated, but this is harmless so ignore. */
5535 vmdkFileReadSync(pImage, pExtent->pFile,
5536 VMDK_SECTOR2BYTE(uGrainSectorAbs)
5537 + 511,
5538 &Marker.uSector, 1, NULL);
5539 break;
5540 case VMDK_MARKER_GT:
5541 uGrainSectorAbs += 1 + VMDK_BYTE2SECTOR(pExtent->cGTEntries * sizeof(uint32_t));
5542 break;
5543 case VMDK_MARKER_GD:
5544 uGrainSectorAbs += 1 + VMDK_BYTE2SECTOR(RT_ALIGN(pExtent->cGDEntries * sizeof(uint32_t), 512));
5545 break;
5546 case VMDK_MARKER_FOOTER:
5547 uGrainSectorAbs += 2;
5548 break;
5549 default:
5550 AssertMsgFailed(("VMDK: corrupted marker, type=%#x\n", Marker.uType));
5551 pExtent->uGrainSectorAbs = 0;
5552 return VERR_VD_VMDK_INVALID_STATE;
5553 }
5554 pExtent->cbGrainStreamRead = 0;
5555 }
5556 else
5557 {
5558 /* A compressed grain marker. If it is at/after what we're
5559 * interested in read and decompress data. */
5560 if (uSector > Marker.uSector + pExtent->cSectorsPerGrain)
5561 {
5562 uGrainSectorAbs += VMDK_BYTE2SECTOR(RT_ALIGN(Marker.cbSize + RT_OFFSETOF(VMDKMARKER, uType), 512));
5563 continue;
5564 }
5565 uint64_t uLBA = 0;
5566 uint32_t cbGrainStreamRead = 0;
5567 rc = vmdkFileInflateSync(pImage, pExtent,
5568 VMDK_SECTOR2BYTE(uGrainSectorAbs),
5569 pExtent->pvGrain,
5570 VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain),
5571 &Marker, &uLBA, &cbGrainStreamRead);
5572 if (RT_FAILURE(rc))
5573 {
5574 pExtent->uGrainSectorAbs = 0;
5575 return rc;
5576 }
5577 if ( pExtent->uGrain
5578 && uLBA / pExtent->cSectorsPerGrain <= pExtent->uGrain)
5579 {
5580 pExtent->uGrainSectorAbs = 0;
5581 return VERR_VD_VMDK_INVALID_STATE;
5582 }
5583 pExtent->uGrain = uLBA / pExtent->cSectorsPerGrain;
5584 pExtent->cbGrainStreamRead = cbGrainStreamRead;
5585 break;
5586 }
5587 } while (Marker.uType != VMDK_MARKER_EOS);
5588
5589 pExtent->uGrainSectorAbs = uGrainSectorAbs;
5590
5591 if (!pExtent->cbGrainStreamRead && Marker.uType == VMDK_MARKER_EOS)
5592 {
5593 pExtent->uGrain = UINT32_MAX;
5594 /* Must set a non-zero value for pExtent->cbGrainStreamRead or
5595 * the next read would try to get more data, and we're at EOF. */
5596 pExtent->cbGrainStreamRead = 1;
5597 }
5598 }
5599
5600 if (pExtent->uGrain > uSector / pExtent->cSectorsPerGrain)
5601 {
5602 /* The next data block we have is not for this area, so just return
5603 * that there is no data. */
5604 return VERR_VD_BLOCK_FREE;
5605 }
5606
5607 uint32_t uSectorInGrain = uSector % pExtent->cSectorsPerGrain;
5608 memcpy(pvBuf,
5609 (uint8_t *)pExtent->pvGrain + VMDK_SECTOR2BYTE(uSectorInGrain),
5610 cbRead);
5611 return VINF_SUCCESS;
5612}
5613
5614/**
5615 * Replaces a fragment of a string with the specified string.
5616 *
5617 * @returns Pointer to the allocated UTF-8 string.
5618 * @param pszWhere UTF-8 string to search in.
5619 * @param pszWhat UTF-8 string to search for.
5620 * @param pszByWhat UTF-8 string to replace the found string with.
5621 */
5622static char *vmdkStrReplace(const char *pszWhere, const char *pszWhat,
5623 const char *pszByWhat)
5624{
5625 AssertPtr(pszWhere);
5626 AssertPtr(pszWhat);
5627 AssertPtr(pszByWhat);
5628 const char *pszFoundStr = strstr(pszWhere, pszWhat);
5629 if (!pszFoundStr)
5630 return NULL;
5631 size_t cFinal = strlen(pszWhere) + 1 + strlen(pszByWhat) - strlen(pszWhat);
5632 char *pszNewStr = (char *)RTMemAlloc(cFinal);
5633 if (pszNewStr)
5634 {
5635 char *pszTmp = pszNewStr;
5636 memcpy(pszTmp, pszWhere, pszFoundStr - pszWhere);
5637 pszTmp += pszFoundStr - pszWhere;
5638 memcpy(pszTmp, pszByWhat, strlen(pszByWhat));
5639 pszTmp += strlen(pszByWhat);
5640 strcpy(pszTmp, pszFoundStr + strlen(pszWhat));
5641 }
5642 return pszNewStr;
5643}
5644
5645
5646/** @copydoc VBOXHDDBACKEND::pfnCheckIfValid */
5647static int vmdkCheckIfValid(const char *pszFilename, PVDINTERFACE pVDIfsDisk,
5648 PVDINTERFACE pVDIfsImage, VDTYPE *penmType)
5649{
5650 LogFlowFunc(("pszFilename=\"%s\" pVDIfsDisk=%#p pVDIfsImage=%#p penmType=%#p\n",
5651 pszFilename, pVDIfsDisk, pVDIfsImage, penmType));
5652 int rc = VINF_SUCCESS;
5653 PVMDKIMAGE pImage;
5654
5655 if ( !pszFilename
5656 || !*pszFilename
5657 || strchr(pszFilename, '"'))
5658 {
5659 rc = VERR_INVALID_PARAMETER;
5660 goto out;
5661 }
5662
5663 pImage = (PVMDKIMAGE)RTMemAllocZ(sizeof(VMDKIMAGE));
5664 if (!pImage)
5665 {
5666 rc = VERR_NO_MEMORY;
5667 goto out;
5668 }
5669 pImage->pszFilename = pszFilename;
5670 pImage->pFile = NULL;
5671 pImage->pExtents = NULL;
5672 pImage->pFiles = NULL;
5673 pImage->pGTCache = NULL;
5674 pImage->pDescData = NULL;
5675 pImage->pVDIfsDisk = pVDIfsDisk;
5676 pImage->pVDIfsImage = pVDIfsImage;
5677 /** @todo speed up this test open (VD_OPEN_FLAGS_INFO) by skipping as
5678 * much as possible in vmdkOpenImage. */
5679 rc = vmdkOpenImage(pImage, VD_OPEN_FLAGS_INFO | VD_OPEN_FLAGS_READONLY);
5680 vmdkFreeImage(pImage, false);
5681 RTMemFree(pImage);
5682
5683 if (RT_SUCCESS(rc))
5684 *penmType = VDTYPE_HDD;
5685
5686out:
5687 LogFlowFunc(("returns %Rrc\n", rc));
5688 return rc;
5689}
5690
5691/** @copydoc VBOXHDDBACKEND::pfnOpen */
5692static int vmdkOpen(const char *pszFilename, unsigned uOpenFlags,
5693 PVDINTERFACE pVDIfsDisk, PVDINTERFACE pVDIfsImage,
5694 VDTYPE enmType, void **ppBackendData)
5695{
5696 LogFlowFunc(("pszFilename=\"%s\" uOpenFlags=%#x pVDIfsDisk=%#p pVDIfsImage=%#p ppBackendData=%#p\n", pszFilename, uOpenFlags, pVDIfsDisk, pVDIfsImage, ppBackendData));
5697 int rc;
5698 PVMDKIMAGE pImage;
5699
5700 /* Check open flags. All valid flags are supported. */
5701 if (uOpenFlags & ~VD_OPEN_FLAGS_MASK)
5702 {
5703 rc = VERR_INVALID_PARAMETER;
5704 goto out;
5705 }
5706
5707 /* Check remaining arguments. */
5708 if ( !VALID_PTR(pszFilename)
5709 || !*pszFilename
5710 || strchr(pszFilename, '"'))
5711 {
5712 rc = VERR_INVALID_PARAMETER;
5713 goto out;
5714 }
5715
5716 pImage = (PVMDKIMAGE)RTMemAllocZ(sizeof(VMDKIMAGE));
5717 if (!pImage)
5718 {
5719 rc = VERR_NO_MEMORY;
5720 goto out;
5721 }
5722 pImage->pszFilename = pszFilename;
5723 pImage->pFile = NULL;
5724 pImage->pExtents = NULL;
5725 pImage->pFiles = NULL;
5726 pImage->pGTCache = NULL;
5727 pImage->pDescData = NULL;
5728 pImage->pVDIfsDisk = pVDIfsDisk;
5729 pImage->pVDIfsImage = pVDIfsImage;
5730
5731 rc = vmdkOpenImage(pImage, uOpenFlags);
5732 if (RT_SUCCESS(rc))
5733 *ppBackendData = pImage;
5734
5735out:
5736 LogFlowFunc(("returns %Rrc (pBackendData=%#p)\n", rc, *ppBackendData));
5737 return rc;
5738}
5739
5740/** @copydoc VBOXHDDBACKEND::pfnCreate */
5741static int vmdkCreate(const char *pszFilename, uint64_t cbSize,
5742 unsigned uImageFlags, const char *pszComment,
5743 PCVDGEOMETRY pPCHSGeometry, PCVDGEOMETRY pLCHSGeometry,
5744 PCRTUUID pUuid, unsigned uOpenFlags,
5745 unsigned uPercentStart, unsigned uPercentSpan,
5746 PVDINTERFACE pVDIfsDisk, PVDINTERFACE pVDIfsImage,
5747 PVDINTERFACE pVDIfsOperation, void **ppBackendData)
5748{
5749 LogFlowFunc(("pszFilename=\"%s\" cbSize=%llu uImageFlags=%#x pszComment=\"%s\" pPCHSGeometry=%#p pLCHSGeometry=%#p Uuid=%RTuuid uOpenFlags=%#x uPercentStart=%u uPercentSpan=%u pVDIfsDisk=%#p pVDIfsImage=%#p pVDIfsOperation=%#p ppBackendData=%#p\n", pszFilename, cbSize, uImageFlags, pszComment, pPCHSGeometry, pLCHSGeometry, pUuid, uOpenFlags, uPercentStart, uPercentSpan, pVDIfsDisk, pVDIfsImage, pVDIfsOperation, ppBackendData));
5750 int rc;
5751 PVMDKIMAGE pImage;
5752
5753 PFNVDPROGRESS pfnProgress = NULL;
5754 void *pvUser = NULL;
5755 PVDINTERFACE pIfProgress = VDInterfaceGet(pVDIfsOperation,
5756 VDINTERFACETYPE_PROGRESS);
5757 PVDINTERFACEPROGRESS pCbProgress = NULL;
5758 if (pIfProgress)
5759 {
5760 pCbProgress = VDGetInterfaceProgress(pIfProgress);
5761 pfnProgress = pCbProgress->pfnProgress;
5762 pvUser = pIfProgress->pvUser;
5763 }
5764
5765 /* Check open flags. All valid flags are supported. */
5766 if (uOpenFlags & ~VD_OPEN_FLAGS_MASK)
5767 {
5768 rc = VERR_INVALID_PARAMETER;
5769 goto out;
5770 }
5771
5772 /* Check size. Maximum 2TB-64K for sparse images, otherwise unlimited. */
5773 if ( !cbSize
5774 || (!(uImageFlags & VD_IMAGE_FLAGS_FIXED) && cbSize >= _1T * 2 - _64K))
5775 {
5776 rc = VERR_VD_INVALID_SIZE;
5777 goto out;
5778 }
5779
5780 /* Check remaining arguments. */
5781 if ( !VALID_PTR(pszFilename)
5782 || !*pszFilename
5783 || strchr(pszFilename, '"')
5784 || !VALID_PTR(pPCHSGeometry)
5785 || !VALID_PTR(pLCHSGeometry)
5786#ifndef VBOX_WITH_VMDK_ESX
5787 || ( uImageFlags & VD_VMDK_IMAGE_FLAGS_ESX
5788 && !(uImageFlags & VD_IMAGE_FLAGS_FIXED))
5789#endif
5790 || ( (uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
5791 && (uImageFlags & ~(VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED | VD_IMAGE_FLAGS_DIFF))))
5792 {
5793 rc = VERR_INVALID_PARAMETER;
5794 goto out;
5795 }
5796
5797 pImage = (PVMDKIMAGE)RTMemAllocZ(sizeof(VMDKIMAGE));
5798 if (!pImage)
5799 {
5800 rc = VERR_NO_MEMORY;
5801 goto out;
5802 }
5803 pImage->pszFilename = pszFilename;
5804 pImage->pFile = NULL;
5805 pImage->pExtents = NULL;
5806 pImage->pFiles = NULL;
5807 pImage->pGTCache = NULL;
5808 pImage->pDescData = NULL;
5809 pImage->pVDIfsDisk = pVDIfsDisk;
5810 pImage->pVDIfsImage = pVDIfsImage;
5811 /* Descriptors for split images can be pretty large, especially if the
5812 * filename is long. So prepare for the worst, and allocate quite some
5813 * memory for the descriptor in this case. */
5814 if (uImageFlags & VD_VMDK_IMAGE_FLAGS_SPLIT_2G)
5815 pImage->cbDescAlloc = VMDK_SECTOR2BYTE(200);
5816 else
5817 pImage->cbDescAlloc = VMDK_SECTOR2BYTE(20);
5818 pImage->pDescData = (char *)RTMemAllocZ(pImage->cbDescAlloc);
5819 if (!pImage->pDescData)
5820 {
5821 RTMemFree(pImage);
5822 rc = VERR_NO_MEMORY;
5823 goto out;
5824 }
5825
5826 rc = vmdkCreateImage(pImage, cbSize, uImageFlags, pszComment,
5827 pPCHSGeometry, pLCHSGeometry, pUuid,
5828 pfnProgress, pvUser, uPercentStart, uPercentSpan);
5829 if (RT_SUCCESS(rc))
5830 {
5831 /* So far the image is opened in read/write mode. Make sure the
5832 * image is opened in read-only mode if the caller requested that. */
5833 if (uOpenFlags & VD_OPEN_FLAGS_READONLY)
5834 {
5835 vmdkFreeImage(pImage, false);
5836 rc = vmdkOpenImage(pImage, uOpenFlags);
5837 if (RT_FAILURE(rc))
5838 goto out;
5839 }
5840 *ppBackendData = pImage;
5841 }
5842 else
5843 {
5844 RTMemFree(pImage->pDescData);
5845 RTMemFree(pImage);
5846 }
5847
5848out:
5849 LogFlowFunc(("returns %Rrc (pBackendData=%#p)\n", rc, *ppBackendData));
5850 return rc;
5851}
5852
5853/** @copydoc VBOXHDDBACKEND::pfnRename */
5854static int vmdkRename(void *pBackendData, const char *pszFilename)
5855{
5856 LogFlowFunc(("pBackendData=%#p pszFilename=%#p\n", pBackendData, pszFilename));
5857
5858 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
5859 int rc = VINF_SUCCESS;
5860 char **apszOldName = NULL;
5861 char **apszNewName = NULL;
5862 char **apszNewLines = NULL;
5863 char *pszOldDescName = NULL;
5864 bool fImageFreed = false;
5865 bool fEmbeddedDesc = false;
5866 unsigned cExtents = 0;
5867 char *pszNewBaseName = NULL;
5868 char *pszOldBaseName = NULL;
5869 char *pszNewFullName = NULL;
5870 char *pszOldFullName = NULL;
5871 const char *pszOldImageName;
5872 unsigned i, line;
5873 VMDKDESCRIPTOR DescriptorCopy;
5874 VMDKEXTENT ExtentCopy;
5875
5876 memset(&DescriptorCopy, 0, sizeof(DescriptorCopy));
5877
5878 /* Check arguments. */
5879 if ( !pImage
5880 || (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_RAWDISK)
5881 || !VALID_PTR(pszFilename)
5882 || !*pszFilename)
5883 {
5884 rc = VERR_INVALID_PARAMETER;
5885 goto out;
5886 }
5887
5888 cExtents = pImage->cExtents;
5889
5890 /*
5891 * Allocate an array to store both old and new names of renamed files
5892 * in case we have to roll back the changes. Arrays are initialized
5893 * with zeros. We actually save stuff when and if we change it.
5894 */
5895 apszOldName = (char **)RTMemTmpAllocZ((cExtents + 1) * sizeof(char*));
5896 apszNewName = (char **)RTMemTmpAllocZ((cExtents + 1) * sizeof(char*));
5897 apszNewLines = (char **)RTMemTmpAllocZ((cExtents) * sizeof(char*));
5898 if (!apszOldName || !apszNewName || !apszNewLines)
5899 {
5900 rc = VERR_NO_MEMORY;
5901 goto out;
5902 }
5903
5904 /* Save the descriptor size and position. */
5905 if (pImage->pDescData)
5906 {
5907 /* Separate descriptor file. */
5908 fEmbeddedDesc = false;
5909 }
5910 else
5911 {
5912 /* Embedded descriptor file. */
5913 ExtentCopy = pImage->pExtents[0];
5914 fEmbeddedDesc = true;
5915 }
5916 /* Save the descriptor content. */
5917 DescriptorCopy.cLines = pImage->Descriptor.cLines;
5918 for (i = 0; i < DescriptorCopy.cLines; i++)
5919 {
5920 DescriptorCopy.aLines[i] = RTStrDup(pImage->Descriptor.aLines[i]);
5921 if (!DescriptorCopy.aLines[i])
5922 {
5923 rc = VERR_NO_MEMORY;
5924 goto out;
5925 }
5926 }
5927
5928 /* Prepare both old and new base names used for string replacement. */
5929 pszNewBaseName = RTStrDup(RTPathFilename(pszFilename));
5930 RTPathStripExt(pszNewBaseName);
5931 pszOldBaseName = RTStrDup(RTPathFilename(pImage->pszFilename));
5932 RTPathStripExt(pszOldBaseName);
5933 /* Prepare both old and new full names used for string replacement. */
5934 pszNewFullName = RTStrDup(pszFilename);
5935 RTPathStripExt(pszNewFullName);
5936 pszOldFullName = RTStrDup(pImage->pszFilename);
5937 RTPathStripExt(pszOldFullName);
5938
5939 /* --- Up to this point we have not done any damage yet. --- */
5940
5941 /* Save the old name for easy access to the old descriptor file. */
5942 pszOldDescName = RTStrDup(pImage->pszFilename);
5943 /* Save old image name. */
5944 pszOldImageName = pImage->pszFilename;
5945
5946 /* Update the descriptor with modified extent names. */
5947 for (i = 0, line = pImage->Descriptor.uFirstExtent;
5948 i < cExtents;
5949 i++, line = pImage->Descriptor.aNextLines[line])
5950 {
5951 /* Assume that vmdkStrReplace will fail. */
5952 rc = VERR_NO_MEMORY;
5953 /* Update the descriptor. */
5954 apszNewLines[i] = vmdkStrReplace(pImage->Descriptor.aLines[line],
5955 pszOldBaseName, pszNewBaseName);
5956 if (!apszNewLines[i])
5957 goto rollback;
5958 pImage->Descriptor.aLines[line] = apszNewLines[i];
5959 }
5960 /* Make sure the descriptor gets written back. */
5961 pImage->Descriptor.fDirty = true;
5962 /* Flush the descriptor now, in case it is embedded. */
5963 vmdkFlushImage(pImage);
5964
5965 /* Close and rename/move extents. */
5966 for (i = 0; i < cExtents; i++)
5967 {
5968 PVMDKEXTENT pExtent = &pImage->pExtents[i];
5969 /* Compose new name for the extent. */
5970 apszNewName[i] = vmdkStrReplace(pExtent->pszFullname,
5971 pszOldFullName, pszNewFullName);
5972 if (!apszNewName[i])
5973 goto rollback;
5974 /* Close the extent file. */
5975 vmdkFileClose(pImage, &pExtent->pFile, false);
5976 /* Rename the extent file. */
5977 rc = vmdkFileMove(pImage, pExtent->pszFullname, apszNewName[i], 0);
5978 if (RT_FAILURE(rc))
5979 goto rollback;
5980 /* Remember the old name. */
5981 apszOldName[i] = RTStrDup(pExtent->pszFullname);
5982 }
5983 /* Release all old stuff. */
5984 vmdkFreeImage(pImage, false);
5985
5986 fImageFreed = true;
5987
5988 /* Last elements of new/old name arrays are intended for
5989 * storing descriptor's names.
5990 */
5991 apszNewName[cExtents] = RTStrDup(pszFilename);
5992 /* Rename the descriptor file if it's separate. */
5993 if (!fEmbeddedDesc)
5994 {
5995 rc = vmdkFileMove(pImage, pImage->pszFilename, apszNewName[cExtents], 0);
5996 if (RT_FAILURE(rc))
5997 goto rollback;
5998 /* Save old name only if we may need to change it back. */
5999 apszOldName[cExtents] = RTStrDup(pszFilename);
6000 }
6001
6002 /* Update pImage with the new information. */
6003 pImage->pszFilename = pszFilename;
6004
6005 /* Open the new image. */
6006 rc = vmdkOpenImage(pImage, pImage->uOpenFlags);
6007 if (RT_SUCCESS(rc))
6008 goto out;
6009
6010rollback:
6011 /* Roll back all changes in case of failure. */
6012 if (RT_FAILURE(rc))
6013 {
6014 int rrc;
6015 if (!fImageFreed)
6016 {
6017 /*
6018 * Some extents may have been closed, close the rest. We will
6019 * re-open the whole thing later.
6020 */
6021 vmdkFreeImage(pImage, false);
6022 }
6023 /* Rename files back. */
6024 for (i = 0; i <= cExtents; i++)
6025 {
6026 if (apszOldName[i])
6027 {
6028 rrc = vmdkFileMove(pImage, apszNewName[i], apszOldName[i], 0);
6029 AssertRC(rrc);
6030 }
6031 }
6032 /* Restore the old descriptor. */
6033 PVMDKFILE pFile;
6034 rrc = vmdkFileOpen(pImage, &pFile, pszOldDescName,
6035 VDOpenFlagsToFileOpenFlags(VD_OPEN_FLAGS_NORMAL,
6036 false /* fCreate */),
6037 false /* fAsyncIO */);
6038 AssertRC(rrc);
6039 if (fEmbeddedDesc)
6040 {
6041 ExtentCopy.pFile = pFile;
6042 pImage->pExtents = &ExtentCopy;
6043 }
6044 else
6045 {
6046 /* Shouldn't be null for separate descriptor.
6047 * There will be no access to the actual content.
6048 */
6049 pImage->pDescData = pszOldDescName;
6050 pImage->pFile = pFile;
6051 }
6052 pImage->Descriptor = DescriptorCopy;
6053 vmdkWriteDescriptor(pImage);
6054 vmdkFileClose(pImage, &pFile, false);
6055 /* Get rid of the stuff we implanted. */
6056 pImage->pExtents = NULL;
6057 pImage->pFile = NULL;
6058 pImage->pDescData = NULL;
6059 /* Re-open the image back. */
6060 pImage->pszFilename = pszOldImageName;
6061 rrc = vmdkOpenImage(pImage, pImage->uOpenFlags);
6062 AssertRC(rrc);
6063 }
6064
6065out:
6066 for (i = 0; i < DescriptorCopy.cLines; i++)
6067 if (DescriptorCopy.aLines[i])
6068 RTStrFree(DescriptorCopy.aLines[i]);
6069 if (apszOldName)
6070 {
6071 for (i = 0; i <= cExtents; i++)
6072 if (apszOldName[i])
6073 RTStrFree(apszOldName[i]);
6074 RTMemTmpFree(apszOldName);
6075 }
6076 if (apszNewName)
6077 {
6078 for (i = 0; i <= cExtents; i++)
6079 if (apszNewName[i])
6080 RTStrFree(apszNewName[i]);
6081 RTMemTmpFree(apszNewName);
6082 }
6083 if (apszNewLines)
6084 {
6085 for (i = 0; i < cExtents; i++)
6086 if (apszNewLines[i])
6087 RTStrFree(apszNewLines[i]);
6088 RTMemTmpFree(apszNewLines);
6089 }
6090 if (pszOldDescName)
6091 RTStrFree(pszOldDescName);
6092 if (pszOldBaseName)
6093 RTStrFree(pszOldBaseName);
6094 if (pszNewBaseName)
6095 RTStrFree(pszNewBaseName);
6096 if (pszOldFullName)
6097 RTStrFree(pszOldFullName);
6098 if (pszNewFullName)
6099 RTStrFree(pszNewFullName);
6100 LogFlowFunc(("returns %Rrc\n", rc));
6101 return rc;
6102}
6103
6104/** @copydoc VBOXHDDBACKEND::pfnClose */
6105static int vmdkClose(void *pBackendData, bool fDelete)
6106{
6107 LogFlowFunc(("pBackendData=%#p fDelete=%d\n", pBackendData, fDelete));
6108 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6109 int rc;
6110
6111 rc = vmdkFreeImage(pImage, fDelete);
6112 RTMemFree(pImage);
6113
6114 LogFlowFunc(("returns %Rrc\n", rc));
6115 return rc;
6116}
6117
6118/** @copydoc VBOXHDDBACKEND::pfnRead */
6119static int vmdkRead(void *pBackendData, uint64_t uOffset, void *pvBuf,
6120 size_t cbToRead, size_t *pcbActuallyRead)
6121{
6122 LogFlowFunc(("pBackendData=%#p uOffset=%llu pvBuf=%#p cbToRead=%zu pcbActuallyRead=%#p\n", pBackendData, uOffset, pvBuf, cbToRead, pcbActuallyRead));
6123 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6124 PVMDKEXTENT pExtent;
6125 uint64_t uSectorExtentRel;
6126 uint64_t uSectorExtentAbs;
6127 int rc;
6128
6129 AssertPtr(pImage);
6130 Assert(uOffset % 512 == 0);
6131 Assert(cbToRead % 512 == 0);
6132
6133 if ( uOffset + cbToRead > pImage->cbSize
6134 || cbToRead == 0)
6135 {
6136 rc = VERR_INVALID_PARAMETER;
6137 goto out;
6138 }
6139
6140 rc = vmdkFindExtent(pImage, VMDK_BYTE2SECTOR(uOffset),
6141 &pExtent, &uSectorExtentRel);
6142 if (RT_FAILURE(rc))
6143 goto out;
6144
6145 /* Check access permissions as defined in the extent descriptor. */
6146 if (pExtent->enmAccess == VMDKACCESS_NOACCESS)
6147 {
6148 rc = VERR_VD_VMDK_INVALID_STATE;
6149 goto out;
6150 }
6151
6152 /* Clip read range to remain in this extent. */
6153 cbToRead = RT_MIN(cbToRead, VMDK_SECTOR2BYTE(pExtent->uSectorOffset + pExtent->cNominalSectors - uSectorExtentRel));
6154
6155 /* Handle the read according to the current extent type. */
6156 switch (pExtent->enmType)
6157 {
6158 case VMDKETYPE_HOSTED_SPARSE:
6159#ifdef VBOX_WITH_VMDK_ESX
6160 case VMDKETYPE_ESX_SPARSE:
6161#endif /* VBOX_WITH_VMDK_ESX */
6162 rc = vmdkGetSector(pImage, pExtent, uSectorExtentRel,
6163 &uSectorExtentAbs);
6164 if (RT_FAILURE(rc))
6165 goto out;
6166 /* Clip read range to at most the rest of the grain. */
6167 cbToRead = RT_MIN(cbToRead, VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain - uSectorExtentRel % pExtent->cSectorsPerGrain));
6168 Assert(!(cbToRead % 512));
6169 if (uSectorExtentAbs == 0)
6170 {
6171 if ( !(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
6172 || !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
6173 || !(pImage->uOpenFlags & VD_OPEN_FLAGS_SEQUENTIAL))
6174 rc = VERR_VD_BLOCK_FREE;
6175 else
6176 rc = vmdkStreamReadSequential(pImage, pExtent,
6177 uSectorExtentRel,
6178 pvBuf, cbToRead);
6179 }
6180 else
6181 {
6182 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
6183 {
6184 uint32_t uSectorInGrain = uSectorExtentRel % pExtent->cSectorsPerGrain;
6185 uSectorExtentAbs -= uSectorInGrain;
6186 uint64_t uLBA;
6187 if (pExtent->uGrainSectorAbs != uSectorExtentAbs)
6188 {
6189 rc = vmdkFileInflateSync(pImage, pExtent,
6190 VMDK_SECTOR2BYTE(uSectorExtentAbs),
6191 pExtent->pvGrain,
6192 VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain),
6193 NULL, &uLBA, NULL);
6194 if (RT_FAILURE(rc))
6195 {
6196 pExtent->uGrainSectorAbs = 0;
6197 AssertRC(rc);
6198 goto out;
6199 }
6200 pExtent->uGrainSectorAbs = uSectorExtentAbs;
6201 pExtent->uGrain = uSectorExtentRel / pExtent->cSectorsPerGrain;
6202 Assert(uLBA == uSectorExtentRel);
6203 }
6204 memcpy(pvBuf, (uint8_t *)pExtent->pvGrain + VMDK_SECTOR2BYTE(uSectorInGrain), cbToRead);
6205 }
6206 else
6207 {
6208 rc = vmdkFileReadSync(pImage, pExtent->pFile,
6209 VMDK_SECTOR2BYTE(uSectorExtentAbs),
6210 pvBuf, cbToRead, NULL);
6211 }
6212 }
6213 break;
6214 case VMDKETYPE_VMFS:
6215 case VMDKETYPE_FLAT:
6216 rc = vmdkFileReadSync(pImage, pExtent->pFile,
6217 VMDK_SECTOR2BYTE(uSectorExtentRel),
6218 pvBuf, cbToRead, NULL);
6219 break;
6220 case VMDKETYPE_ZERO:
6221 memset(pvBuf, '\0', cbToRead);
6222 break;
6223 }
6224 if (pcbActuallyRead)
6225 *pcbActuallyRead = cbToRead;
6226
6227out:
6228 LogFlowFunc(("returns %Rrc\n", rc));
6229 return rc;
6230}
6231
6232/** @copydoc VBOXHDDBACKEND::pfnWrite */
6233static int vmdkWrite(void *pBackendData, uint64_t uOffset, const void *pvBuf,
6234 size_t cbToWrite, size_t *pcbWriteProcess,
6235 size_t *pcbPreRead, size_t *pcbPostRead, unsigned fWrite)
6236{
6237 LogFlowFunc(("pBackendData=%#p uOffset=%llu pvBuf=%#p cbToWrite=%zu pcbWriteProcess=%#p pcbPreRead=%#p pcbPostRead=%#p\n", pBackendData, uOffset, pvBuf, cbToWrite, pcbWriteProcess, pcbPreRead, pcbPostRead));
6238 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6239 PVMDKEXTENT pExtent;
6240 uint64_t uSectorExtentRel;
6241 uint64_t uSectorExtentAbs;
6242 int rc;
6243
6244 AssertPtr(pImage);
6245 Assert(uOffset % 512 == 0);
6246 Assert(cbToWrite % 512 == 0);
6247
6248 if (pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
6249 {
6250 rc = VERR_VD_IMAGE_READ_ONLY;
6251 goto out;
6252 }
6253
6254 if (cbToWrite == 0)
6255 {
6256 rc = VERR_INVALID_PARAMETER;
6257 goto out;
6258 }
6259
6260 /* No size check here, will do that later when the extent is located.
6261 * There are sparse images out there which according to the spec are
6262 * invalid, because the total size is not a multiple of the grain size.
6263 * Also for sparse images which are stitched together in odd ways (not at
6264 * grain boundaries, and with the nominal size not being a multiple of the
6265 * grain size), this would prevent writing to the last grain. */
6266
6267 rc = vmdkFindExtent(pImage, VMDK_BYTE2SECTOR(uOffset),
6268 &pExtent, &uSectorExtentRel);
6269 if (RT_FAILURE(rc))
6270 goto out;
6271
6272 /* Check access permissions as defined in the extent descriptor. */
6273 if ( pExtent->enmAccess != VMDKACCESS_READWRITE
6274 && ( !(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
6275 && !pImage->pExtents[0].uAppendPosition
6276 && pExtent->enmAccess != VMDKACCESS_READONLY))
6277 {
6278 rc = VERR_VD_VMDK_INVALID_STATE;
6279 goto out;
6280 }
6281
6282 /* Handle the write according to the current extent type. */
6283 switch (pExtent->enmType)
6284 {
6285 case VMDKETYPE_HOSTED_SPARSE:
6286#ifdef VBOX_WITH_VMDK_ESX
6287 case VMDKETYPE_ESX_SPARSE:
6288#endif /* VBOX_WITH_VMDK_ESX */
6289 rc = vmdkGetSector(pImage, pExtent, uSectorExtentRel,
6290 &uSectorExtentAbs);
6291 if (RT_FAILURE(rc))
6292 goto out;
6293 /* Clip write range to at most the rest of the grain. */
6294 cbToWrite = RT_MIN(cbToWrite, VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain - uSectorExtentRel % pExtent->cSectorsPerGrain));
6295 if ( pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED
6296 && uSectorExtentRel < (uint64_t)pExtent->uLastGrainAccess * pExtent->cSectorsPerGrain)
6297 {
6298 rc = VERR_VD_VMDK_INVALID_WRITE;
6299 goto out;
6300 }
6301 if (uSectorExtentAbs == 0)
6302 {
6303 if (!(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED))
6304 {
6305 if (cbToWrite == VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain))
6306 {
6307 /* Full block write to a previously unallocated block.
6308 * Check if the caller wants feedback. */
6309 if (!(fWrite & VD_WRITE_NO_ALLOC))
6310 {
6311 /* Allocate GT and store the grain. */
6312 rc = vmdkAllocGrain(pImage, pExtent,
6313 uSectorExtentRel,
6314 pvBuf, cbToWrite);
6315 }
6316 else
6317 rc = VERR_VD_BLOCK_FREE;
6318 *pcbPreRead = 0;
6319 *pcbPostRead = 0;
6320 }
6321 else
6322 {
6323 /* Clip write range to remain in this extent. */
6324 cbToWrite = RT_MIN(cbToWrite, VMDK_SECTOR2BYTE(pExtent->uSectorOffset + pExtent->cNominalSectors - uSectorExtentRel));
6325 *pcbPreRead = VMDK_SECTOR2BYTE(uSectorExtentRel % pExtent->cSectorsPerGrain);
6326 *pcbPostRead = VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain) - cbToWrite - *pcbPreRead;
6327 rc = VERR_VD_BLOCK_FREE;
6328 }
6329 }
6330 else
6331 {
6332 rc = vmdkStreamAllocGrain(pImage, pExtent,
6333 uSectorExtentRel,
6334 pvBuf, cbToWrite);
6335 }
6336 }
6337 else
6338 {
6339 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
6340 {
6341 /* A partial write to a streamOptimized image is simply
6342 * invalid. It requires rewriting already compressed data
6343 * which is somewhere between expensive and impossible. */
6344 rc = VERR_VD_VMDK_INVALID_STATE;
6345 pExtent->uGrainSectorAbs = 0;
6346 AssertRC(rc);
6347 }
6348 else
6349 {
6350 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
6351 VMDK_SECTOR2BYTE(uSectorExtentAbs),
6352 pvBuf, cbToWrite, NULL);
6353 }
6354 }
6355 break;
6356 case VMDKETYPE_VMFS:
6357 case VMDKETYPE_FLAT:
6358 /* Clip write range to remain in this extent. */
6359 cbToWrite = RT_MIN(cbToWrite, VMDK_SECTOR2BYTE(pExtent->uSectorOffset + pExtent->cNominalSectors - uSectorExtentRel));
6360 rc = vmdkFileWriteSync(pImage, pExtent->pFile,
6361 VMDK_SECTOR2BYTE(uSectorExtentRel),
6362 pvBuf, cbToWrite, NULL);
6363 break;
6364 case VMDKETYPE_ZERO:
6365 /* Clip write range to remain in this extent. */
6366 cbToWrite = RT_MIN(cbToWrite, VMDK_SECTOR2BYTE(pExtent->uSectorOffset + pExtent->cNominalSectors - uSectorExtentRel));
6367 break;
6368 }
6369
6370 if (pcbWriteProcess)
6371 *pcbWriteProcess = cbToWrite;
6372
6373out:
6374 LogFlowFunc(("returns %Rrc\n", rc));
6375 return rc;
6376}
6377
6378/** @copydoc VBOXHDDBACKEND::pfnFlush */
6379static int vmdkFlush(void *pBackendData)
6380{
6381 LogFlowFunc(("pBackendData=%#p\n", pBackendData));
6382 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6383 int rc = VINF_SUCCESS;
6384
6385 AssertPtr(pImage);
6386
6387 if (!(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED))
6388 rc = vmdkFlushImage(pImage);
6389
6390 LogFlowFunc(("returns %Rrc\n", rc));
6391 return rc;
6392}
6393
6394/** @copydoc VBOXHDDBACKEND::pfnGetVersion */
6395static unsigned vmdkGetVersion(void *pBackendData)
6396{
6397 LogFlowFunc(("pBackendData=%#p\n", pBackendData));
6398 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6399
6400 AssertPtr(pImage);
6401
6402 if (pImage)
6403 return VMDK_IMAGE_VERSION;
6404 else
6405 return 0;
6406}
6407
6408/** @copydoc VBOXHDDBACKEND::pfnGetSize */
6409static uint64_t vmdkGetSize(void *pBackendData)
6410{
6411 LogFlowFunc(("pBackendData=%#p\n", pBackendData));
6412 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6413
6414 AssertPtr(pImage);
6415
6416 if (pImage)
6417 return pImage->cbSize;
6418 else
6419 return 0;
6420}
6421
6422/** @copydoc VBOXHDDBACKEND::pfnGetFileSize */
6423static uint64_t vmdkGetFileSize(void *pBackendData)
6424{
6425 LogFlowFunc(("pBackendData=%#p\n", pBackendData));
6426 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6427 uint64_t cb = 0;
6428
6429 AssertPtr(pImage);
6430
6431 if (pImage)
6432 {
6433 uint64_t cbFile;
6434 if (pImage->pFile != NULL)
6435 {
6436 int rc = vmdkFileGetSize(pImage, pImage->pFile, &cbFile);
6437 if (RT_SUCCESS(rc))
6438 cb += cbFile;
6439 }
6440 for (unsigned i = 0; i < pImage->cExtents; i++)
6441 {
6442 if (pImage->pExtents[i].pFile != NULL)
6443 {
6444 int rc = vmdkFileGetSize(pImage, pImage->pExtents[i].pFile, &cbFile);
6445 if (RT_SUCCESS(rc))
6446 cb += cbFile;
6447 }
6448 }
6449 }
6450
6451 LogFlowFunc(("returns %lld\n", cb));
6452 return cb;
6453}
6454
6455/** @copydoc VBOXHDDBACKEND::pfnGetPCHSGeometry */
6456static int vmdkGetPCHSGeometry(void *pBackendData, PVDGEOMETRY pPCHSGeometry)
6457{
6458 LogFlowFunc(("pBackendData=%#p pPCHSGeometry=%#p\n", pBackendData, pPCHSGeometry));
6459 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6460 int rc;
6461
6462 AssertPtr(pImage);
6463
6464 if (pImage)
6465 {
6466 if (pImage->PCHSGeometry.cCylinders)
6467 {
6468 *pPCHSGeometry = pImage->PCHSGeometry;
6469 rc = VINF_SUCCESS;
6470 }
6471 else
6472 rc = VERR_VD_GEOMETRY_NOT_SET;
6473 }
6474 else
6475 rc = VERR_VD_NOT_OPENED;
6476
6477 LogFlowFunc(("returns %Rrc (PCHS=%u/%u/%u)\n", rc, pPCHSGeometry->cCylinders, pPCHSGeometry->cHeads, pPCHSGeometry->cSectors));
6478 return rc;
6479}
6480
6481/** @copydoc VBOXHDDBACKEND::pfnSetPCHSGeometry */
6482static int vmdkSetPCHSGeometry(void *pBackendData, PCVDGEOMETRY pPCHSGeometry)
6483{
6484 LogFlowFunc(("pBackendData=%#p pPCHSGeometry=%#p PCHS=%u/%u/%u\n", pBackendData, pPCHSGeometry, pPCHSGeometry->cCylinders, pPCHSGeometry->cHeads, pPCHSGeometry->cSectors));
6485 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6486 int rc;
6487
6488 AssertPtr(pImage);
6489
6490 if (pImage)
6491 {
6492 if (pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
6493 {
6494 rc = VERR_VD_IMAGE_READ_ONLY;
6495 goto out;
6496 }
6497 if (pImage->uOpenFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
6498 {
6499 rc = VERR_NOT_SUPPORTED;
6500 goto out;
6501 }
6502 rc = vmdkDescSetPCHSGeometry(pImage, pPCHSGeometry);
6503 if (RT_FAILURE(rc))
6504 goto out;
6505
6506 pImage->PCHSGeometry = *pPCHSGeometry;
6507 rc = VINF_SUCCESS;
6508 }
6509 else
6510 rc = VERR_VD_NOT_OPENED;
6511
6512out:
6513 LogFlowFunc(("returns %Rrc\n", rc));
6514 return rc;
6515}
6516
6517/** @copydoc VBOXHDDBACKEND::pfnGetLCHSGeometry */
6518static int vmdkGetLCHSGeometry(void *pBackendData, PVDGEOMETRY pLCHSGeometry)
6519{
6520 LogFlowFunc(("pBackendData=%#p pLCHSGeometry=%#p\n", pBackendData, pLCHSGeometry));
6521 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6522 int rc;
6523
6524 AssertPtr(pImage);
6525
6526 if (pImage)
6527 {
6528 if (pImage->LCHSGeometry.cCylinders)
6529 {
6530 *pLCHSGeometry = pImage->LCHSGeometry;
6531 rc = VINF_SUCCESS;
6532 }
6533 else
6534 rc = VERR_VD_GEOMETRY_NOT_SET;
6535 }
6536 else
6537 rc = VERR_VD_NOT_OPENED;
6538
6539 LogFlowFunc(("returns %Rrc (LCHS=%u/%u/%u)\n", rc, pLCHSGeometry->cCylinders, pLCHSGeometry->cHeads, pLCHSGeometry->cSectors));
6540 return rc;
6541}
6542
6543/** @copydoc VBOXHDDBACKEND::pfnSetLCHSGeometry */
6544static int vmdkSetLCHSGeometry(void *pBackendData, PCVDGEOMETRY pLCHSGeometry)
6545{
6546 LogFlowFunc(("pBackendData=%#p pLCHSGeometry=%#p LCHS=%u/%u/%u\n", pBackendData, pLCHSGeometry, pLCHSGeometry->cCylinders, pLCHSGeometry->cHeads, pLCHSGeometry->cSectors));
6547 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6548 int rc;
6549
6550 AssertPtr(pImage);
6551
6552 if (pImage)
6553 {
6554 if (pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
6555 {
6556 rc = VERR_VD_IMAGE_READ_ONLY;
6557 goto out;
6558 }
6559 if (pImage->uOpenFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
6560 {
6561 rc = VERR_NOT_SUPPORTED;
6562 goto out;
6563 }
6564 rc = vmdkDescSetLCHSGeometry(pImage, pLCHSGeometry);
6565 if (RT_FAILURE(rc))
6566 goto out;
6567
6568 pImage->LCHSGeometry = *pLCHSGeometry;
6569 rc = VINF_SUCCESS;
6570 }
6571 else
6572 rc = VERR_VD_NOT_OPENED;
6573
6574out:
6575 LogFlowFunc(("returns %Rrc\n", rc));
6576 return rc;
6577}
6578
6579/** @copydoc VBOXHDDBACKEND::pfnGetImageFlags */
6580static unsigned vmdkGetImageFlags(void *pBackendData)
6581{
6582 LogFlowFunc(("pBackendData=%#p\n", pBackendData));
6583 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6584 unsigned uImageFlags;
6585
6586 AssertPtr(pImage);
6587
6588 if (pImage)
6589 uImageFlags = pImage->uImageFlags;
6590 else
6591 uImageFlags = 0;
6592
6593 LogFlowFunc(("returns %#x\n", uImageFlags));
6594 return uImageFlags;
6595}
6596
6597/** @copydoc VBOXHDDBACKEND::pfnGetOpenFlags */
6598static unsigned vmdkGetOpenFlags(void *pBackendData)
6599{
6600 LogFlowFunc(("pBackendData=%#p\n", pBackendData));
6601 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6602 unsigned uOpenFlags;
6603
6604 AssertPtr(pImage);
6605
6606 if (pImage)
6607 uOpenFlags = pImage->uOpenFlags;
6608 else
6609 uOpenFlags = 0;
6610
6611 LogFlowFunc(("returns %#x\n", uOpenFlags));
6612 return uOpenFlags;
6613}
6614
6615/** @copydoc VBOXHDDBACKEND::pfnSetOpenFlags */
6616static int vmdkSetOpenFlags(void *pBackendData, unsigned uOpenFlags)
6617{
6618 LogFlowFunc(("pBackendData=%#p\n uOpenFlags=%#x", pBackendData, uOpenFlags));
6619 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6620 int rc;
6621
6622 /* Image must be opened and the new flags must be valid. */
6623 if (!pImage || (uOpenFlags & ~(VD_OPEN_FLAGS_READONLY | VD_OPEN_FLAGS_INFO | VD_OPEN_FLAGS_ASYNC_IO | VD_OPEN_FLAGS_SHAREABLE | VD_OPEN_FLAGS_SEQUENTIAL)))
6624 {
6625 rc = VERR_INVALID_PARAMETER;
6626 goto out;
6627 }
6628
6629 /* StreamOptimized images need special treatment: reopen is prohibited. */
6630 if (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
6631 {
6632 if (pImage->uOpenFlags == uOpenFlags)
6633 rc = VINF_SUCCESS;
6634 else
6635 rc = VERR_INVALID_PARAMETER;
6636 goto out;
6637 }
6638
6639 /* Implement this operation via reopening the image. */
6640 vmdkFreeImage(pImage, false);
6641 rc = vmdkOpenImage(pImage, uOpenFlags);
6642
6643out:
6644 LogFlowFunc(("returns %Rrc\n", rc));
6645 return rc;
6646}
6647
6648/** @copydoc VBOXHDDBACKEND::pfnGetComment */
6649static int vmdkGetComment(void *pBackendData, char *pszComment,
6650 size_t cbComment)
6651{
6652 LogFlowFunc(("pBackendData=%#p pszComment=%#p cbComment=%zu\n", pBackendData, pszComment, cbComment));
6653 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6654 int rc;
6655
6656 AssertPtr(pImage);
6657
6658 if (pImage)
6659 {
6660 const char *pszCommentEncoded = NULL;
6661 rc = vmdkDescDDBGetStr(pImage, &pImage->Descriptor,
6662 "ddb.comment", &pszCommentEncoded);
6663 if (rc == VERR_VD_VMDK_VALUE_NOT_FOUND)
6664 pszCommentEncoded = NULL;
6665 else if (RT_FAILURE(rc))
6666 goto out;
6667
6668 if (pszComment && pszCommentEncoded)
6669 rc = vmdkDecodeString(pszCommentEncoded, pszComment, cbComment);
6670 else
6671 {
6672 if (pszComment)
6673 *pszComment = '\0';
6674 rc = VINF_SUCCESS;
6675 }
6676 if (pszCommentEncoded)
6677 RTStrFree((char *)(void *)pszCommentEncoded);
6678 }
6679 else
6680 rc = VERR_VD_NOT_OPENED;
6681
6682out:
6683 LogFlowFunc(("returns %Rrc comment='%s'\n", rc, pszComment));
6684 return rc;
6685}
6686
6687/** @copydoc VBOXHDDBACKEND::pfnSetComment */
6688static int vmdkSetComment(void *pBackendData, const char *pszComment)
6689{
6690 LogFlowFunc(("pBackendData=%#p pszComment=\"%s\"\n", pBackendData, pszComment));
6691 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6692 int rc;
6693
6694 AssertPtr(pImage);
6695
6696 if (pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
6697 {
6698 rc = VERR_VD_IMAGE_READ_ONLY;
6699 goto out;
6700 }
6701 if (pImage->uOpenFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED)
6702 {
6703 rc = VERR_NOT_SUPPORTED;
6704 goto out;
6705 }
6706
6707 if (pImage)
6708 rc = vmdkSetImageComment(pImage, pszComment);
6709 else
6710 rc = VERR_VD_NOT_OPENED;
6711
6712out:
6713 LogFlowFunc(("returns %Rrc\n", rc));
6714 return rc;
6715}
6716
6717/** @copydoc VBOXHDDBACKEND::pfnGetUuid */
6718static int vmdkGetUuid(void *pBackendData, PRTUUID pUuid)
6719{
6720 LogFlowFunc(("pBackendData=%#p pUuid=%#p\n", pBackendData, pUuid));
6721 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6722 int rc;
6723
6724 AssertPtr(pImage);
6725
6726 if (pImage)
6727 {
6728 *pUuid = pImage->ImageUuid;
6729 rc = VINF_SUCCESS;
6730 }
6731 else
6732 rc = VERR_VD_NOT_OPENED;
6733
6734 LogFlowFunc(("returns %Rrc (%RTuuid)\n", rc, pUuid));
6735 return rc;
6736}
6737
6738/** @copydoc VBOXHDDBACKEND::pfnSetUuid */
6739static int vmdkSetUuid(void *pBackendData, PCRTUUID pUuid)
6740{
6741 LogFlowFunc(("pBackendData=%#p Uuid=%RTuuid\n", pBackendData, pUuid));
6742 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6743 int rc;
6744
6745 LogFlowFunc(("%RTuuid\n", pUuid));
6746 AssertPtr(pImage);
6747
6748 if (pImage)
6749 {
6750 if (!(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY))
6751 {
6752 if (!(pImage->uOpenFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED))
6753 {
6754 pImage->ImageUuid = *pUuid;
6755 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
6756 VMDK_DDB_IMAGE_UUID, pUuid);
6757 if (RT_FAILURE(rc))
6758 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing image UUID in descriptor in '%s'"), pImage->pszFilename);
6759 rc = VINF_SUCCESS;
6760 }
6761 else
6762 rc = VERR_NOT_SUPPORTED;
6763 }
6764 else
6765 rc = VERR_VD_IMAGE_READ_ONLY;
6766 }
6767 else
6768 rc = VERR_VD_NOT_OPENED;
6769
6770 LogFlowFunc(("returns %Rrc\n", rc));
6771 return rc;
6772}
6773
6774/** @copydoc VBOXHDDBACKEND::pfnGetModificationUuid */
6775static int vmdkGetModificationUuid(void *pBackendData, PRTUUID pUuid)
6776{
6777 LogFlowFunc(("pBackendData=%#p pUuid=%#p\n", pBackendData, pUuid));
6778 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6779 int rc;
6780
6781 AssertPtr(pImage);
6782
6783 if (pImage)
6784 {
6785 *pUuid = pImage->ModificationUuid;
6786 rc = VINF_SUCCESS;
6787 }
6788 else
6789 rc = VERR_VD_NOT_OPENED;
6790
6791 LogFlowFunc(("returns %Rrc (%RTuuid)\n", rc, pUuid));
6792 return rc;
6793}
6794
6795/** @copydoc VBOXHDDBACKEND::pfnSetModificationUuid */
6796static int vmdkSetModificationUuid(void *pBackendData, PCRTUUID pUuid)
6797{
6798 LogFlowFunc(("pBackendData=%#p Uuid=%RTuuid\n", pBackendData, pUuid));
6799 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6800 int rc;
6801
6802 AssertPtr(pImage);
6803
6804 if (pImage)
6805 {
6806 if (!(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY))
6807 {
6808 if (!(pImage->uOpenFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED))
6809 {
6810 /* Only touch the modification uuid if it changed. */
6811 if (RTUuidCompare(&pImage->ModificationUuid, pUuid))
6812 {
6813 pImage->ModificationUuid = *pUuid;
6814 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
6815 VMDK_DDB_MODIFICATION_UUID, pUuid);
6816 if (RT_FAILURE(rc))
6817 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing modification UUID in descriptor in '%s'"), pImage->pszFilename);
6818 }
6819 rc = VINF_SUCCESS;
6820 }
6821 else
6822 rc = VERR_NOT_SUPPORTED;
6823 }
6824 else
6825 rc = VERR_VD_IMAGE_READ_ONLY;
6826 }
6827 else
6828 rc = VERR_VD_NOT_OPENED;
6829
6830 LogFlowFunc(("returns %Rrc\n", rc));
6831 return rc;
6832}
6833
6834/** @copydoc VBOXHDDBACKEND::pfnGetParentUuid */
6835static int vmdkGetParentUuid(void *pBackendData, PRTUUID pUuid)
6836{
6837 LogFlowFunc(("pBackendData=%#p pUuid=%#p\n", pBackendData, pUuid));
6838 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6839 int rc;
6840
6841 AssertPtr(pImage);
6842
6843 if (pImage)
6844 {
6845 *pUuid = pImage->ParentUuid;
6846 rc = VINF_SUCCESS;
6847 }
6848 else
6849 rc = VERR_VD_NOT_OPENED;
6850
6851 LogFlowFunc(("returns %Rrc (%RTuuid)\n", rc, pUuid));
6852 return rc;
6853}
6854
6855/** @copydoc VBOXHDDBACKEND::pfnSetParentUuid */
6856static int vmdkSetParentUuid(void *pBackendData, PCRTUUID pUuid)
6857{
6858 LogFlowFunc(("pBackendData=%#p Uuid=%RTuuid\n", pBackendData, pUuid));
6859 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6860 int rc;
6861
6862 AssertPtr(pImage);
6863
6864 if (pImage)
6865 {
6866 if (!(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY))
6867 {
6868 if (!(pImage->uOpenFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED))
6869 {
6870 pImage->ParentUuid = *pUuid;
6871 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
6872 VMDK_DDB_PARENT_UUID, pUuid);
6873 if (RT_FAILURE(rc))
6874 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing parent image UUID in descriptor in '%s'"), pImage->pszFilename);
6875 rc = VINF_SUCCESS;
6876 }
6877 else
6878 rc = VERR_NOT_SUPPORTED;
6879 }
6880 else
6881 rc = VERR_VD_IMAGE_READ_ONLY;
6882 }
6883 else
6884 rc = VERR_VD_NOT_OPENED;
6885
6886 LogFlowFunc(("returns %Rrc\n", rc));
6887 return rc;
6888}
6889
6890/** @copydoc VBOXHDDBACKEND::pfnGetParentModificationUuid */
6891static int vmdkGetParentModificationUuid(void *pBackendData, PRTUUID pUuid)
6892{
6893 LogFlowFunc(("pBackendData=%#p pUuid=%#p\n", pBackendData, pUuid));
6894 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6895 int rc;
6896
6897 AssertPtr(pImage);
6898
6899 if (pImage)
6900 {
6901 *pUuid = pImage->ParentModificationUuid;
6902 rc = VINF_SUCCESS;
6903 }
6904 else
6905 rc = VERR_VD_NOT_OPENED;
6906
6907 LogFlowFunc(("returns %Rrc (%RTuuid)\n", rc, pUuid));
6908 return rc;
6909}
6910
6911/** @copydoc VBOXHDDBACKEND::pfnSetParentModificationUuid */
6912static int vmdkSetParentModificationUuid(void *pBackendData, PCRTUUID pUuid)
6913{
6914 LogFlowFunc(("pBackendData=%#p Uuid=%RTuuid\n", pBackendData, pUuid));
6915 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6916 int rc;
6917
6918 AssertPtr(pImage);
6919
6920 if (pImage)
6921 {
6922 if (!(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY))
6923 {
6924 if (!(pImage->uOpenFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED))
6925 {
6926 pImage->ParentModificationUuid = *pUuid;
6927 rc = vmdkDescDDBSetUuid(pImage, &pImage->Descriptor,
6928 VMDK_DDB_PARENT_MODIFICATION_UUID, pUuid);
6929 if (RT_FAILURE(rc))
6930 return vmdkError(pImage, rc, RT_SRC_POS, N_("VMDK: error storing parent image UUID in descriptor in '%s'"), pImage->pszFilename);
6931 rc = VINF_SUCCESS;
6932 }
6933 else
6934 rc = VERR_NOT_SUPPORTED;
6935 }
6936 else
6937 rc = VERR_VD_IMAGE_READ_ONLY;
6938 }
6939 else
6940 rc = VERR_VD_NOT_OPENED;
6941
6942 LogFlowFunc(("returns %Rrc\n", rc));
6943 return rc;
6944}
6945
6946/** @copydoc VBOXHDDBACKEND::pfnDump */
6947static void vmdkDump(void *pBackendData)
6948{
6949 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6950
6951 AssertPtr(pImage);
6952 if (pImage)
6953 {
6954 vmdkMessage(pImage, "Header: Geometry PCHS=%u/%u/%u LCHS=%u/%u/%u cbSector=%llu\n",
6955 pImage->PCHSGeometry.cCylinders, pImage->PCHSGeometry.cHeads, pImage->PCHSGeometry.cSectors,
6956 pImage->LCHSGeometry.cCylinders, pImage->LCHSGeometry.cHeads, pImage->LCHSGeometry.cSectors,
6957 VMDK_BYTE2SECTOR(pImage->cbSize));
6958 vmdkMessage(pImage, "Header: uuidCreation={%RTuuid}\n", &pImage->ImageUuid);
6959 vmdkMessage(pImage, "Header: uuidModification={%RTuuid}\n", &pImage->ModificationUuid);
6960 vmdkMessage(pImage, "Header: uuidParent={%RTuuid}\n", &pImage->ParentUuid);
6961 vmdkMessage(pImage, "Header: uuidParentModification={%RTuuid}\n", &pImage->ParentModificationUuid);
6962 }
6963}
6964
6965/** @copydoc VBOXHDDBACKEND::pfnIsAsyncIOSupported */
6966static bool vmdkIsAsyncIOSupported(void *pBackendData)
6967{
6968 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6969
6970 /* We do not support async I/O for stream optimized VMDK images. */
6971 return (pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED) == 0;
6972}
6973
6974/** @copydoc VBOXHDDBACKEND::pfnAsyncRead */
6975static int vmdkAsyncRead(void *pBackendData, uint64_t uOffset, size_t cbRead,
6976 PVDIOCTX pIoCtx, size_t *pcbActuallyRead)
6977{
6978 LogFlowFunc(("pBackendData=%#p uOffset=%llu pIoCtx=%#p cbToRead=%zu pcbActuallyRead=%#p\n",
6979 pBackendData, uOffset, pIoCtx, cbRead, pcbActuallyRead));
6980 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
6981 PVMDKEXTENT pExtent;
6982 uint64_t uSectorExtentRel;
6983 uint64_t uSectorExtentAbs;
6984 int rc;
6985
6986 AssertPtr(pImage);
6987 Assert(uOffset % 512 == 0);
6988 Assert(cbRead % 512 == 0);
6989
6990 if ( uOffset + cbRead > pImage->cbSize
6991 || cbRead == 0)
6992 {
6993 rc = VERR_INVALID_PARAMETER;
6994 goto out;
6995 }
6996
6997 rc = vmdkFindExtent(pImage, VMDK_BYTE2SECTOR(uOffset),
6998 &pExtent, &uSectorExtentRel);
6999 if (RT_FAILURE(rc))
7000 goto out;
7001
7002 /* Check access permissions as defined in the extent descriptor. */
7003 if (pExtent->enmAccess == VMDKACCESS_NOACCESS)
7004 {
7005 rc = VERR_VD_VMDK_INVALID_STATE;
7006 goto out;
7007 }
7008
7009 /* Clip read range to remain in this extent. */
7010 cbRead = RT_MIN(cbRead, VMDK_SECTOR2BYTE(pExtent->uSectorOffset + pExtent->cNominalSectors - uSectorExtentRel));
7011
7012 /* Handle the read according to the current extent type. */
7013 switch (pExtent->enmType)
7014 {
7015 case VMDKETYPE_HOSTED_SPARSE:
7016#ifdef VBOX_WITH_VMDK_ESX
7017 case VMDKETYPE_ESX_SPARSE:
7018#endif /* VBOX_WITH_VMDK_ESX */
7019 rc = vmdkGetSectorAsync(pImage, pIoCtx, pExtent,
7020 uSectorExtentRel, &uSectorExtentAbs);
7021 if (RT_FAILURE(rc))
7022 goto out;
7023 /* Clip read range to at most the rest of the grain. */
7024 cbRead = RT_MIN(cbRead, VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain - uSectorExtentRel % pExtent->cSectorsPerGrain));
7025 Assert(!(cbRead % 512));
7026 if (uSectorExtentAbs == 0)
7027 rc = VERR_VD_BLOCK_FREE;
7028 else
7029 {
7030 AssertMsg(!(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED), ("Async I/O is not supported for stream optimized VMDK's\n"));
7031 rc = vmdkFileReadUserAsync(pImage, pExtent->pFile,
7032 VMDK_SECTOR2BYTE(uSectorExtentAbs),
7033 pIoCtx, cbRead);
7034 }
7035 break;
7036 case VMDKETYPE_VMFS:
7037 case VMDKETYPE_FLAT:
7038 rc = vmdkFileReadUserAsync(pImage, pExtent->pFile,
7039 VMDK_SECTOR2BYTE(uSectorExtentRel),
7040 pIoCtx, cbRead);
7041 break;
7042 case VMDKETYPE_ZERO:
7043 size_t cbSet;
7044
7045 cbSet = vmdkFileIoCtxSet(pImage, pIoCtx, 0, cbRead);
7046 Assert(cbSet == cbRead);
7047
7048 rc = VINF_SUCCESS;
7049 break;
7050 }
7051 if (pcbActuallyRead)
7052 *pcbActuallyRead = cbRead;
7053
7054out:
7055 LogFlowFunc(("returns %Rrc\n", rc));
7056 return rc;
7057}
7058
7059/** @copydoc VBOXHDDBACKEND::pfnAsyncWrite */
7060static int vmdkAsyncWrite(void *pBackendData, uint64_t uOffset, size_t cbWrite,
7061 PVDIOCTX pIoCtx,
7062 size_t *pcbWriteProcess, size_t *pcbPreRead,
7063 size_t *pcbPostRead, unsigned fWrite)
7064{
7065 LogFlowFunc(("pBackendData=%#p uOffset=%llu pIoCtx=%#p cbToWrite=%zu pcbWriteProcess=%#p pcbPreRead=%#p pcbPostRead=%#p\n",
7066 pBackendData, uOffset, pIoCtx, cbWrite, pcbWriteProcess, pcbPreRead, pcbPostRead));
7067 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
7068 PVMDKEXTENT pExtent;
7069 uint64_t uSectorExtentRel;
7070 uint64_t uSectorExtentAbs;
7071 int rc;
7072
7073 AssertPtr(pImage);
7074 Assert(uOffset % 512 == 0);
7075 Assert(cbWrite % 512 == 0);
7076
7077 if (pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY)
7078 {
7079 rc = VERR_VD_IMAGE_READ_ONLY;
7080 goto out;
7081 }
7082
7083 if (cbWrite == 0)
7084 {
7085 rc = VERR_INVALID_PARAMETER;
7086 goto out;
7087 }
7088
7089 /* No size check here, will do that later when the extent is located.
7090 * There are sparse images out there which according to the spec are
7091 * invalid, because the total size is not a multiple of the grain size.
7092 * Also for sparse images which are stitched together in odd ways (not at
7093 * grain boundaries, and with the nominal size not being a multiple of the
7094 * grain size), this would prevent writing to the last grain. */
7095
7096 rc = vmdkFindExtent(pImage, VMDK_BYTE2SECTOR(uOffset),
7097 &pExtent, &uSectorExtentRel);
7098 if (RT_FAILURE(rc))
7099 goto out;
7100
7101 /* Check access permissions as defined in the extent descriptor. */
7102 if (pExtent->enmAccess != VMDKACCESS_READWRITE)
7103 {
7104 rc = VERR_VD_VMDK_INVALID_STATE;
7105 goto out;
7106 }
7107
7108 /* Handle the write according to the current extent type. */
7109 switch (pExtent->enmType)
7110 {
7111 case VMDKETYPE_HOSTED_SPARSE:
7112#ifdef VBOX_WITH_VMDK_ESX
7113 case VMDKETYPE_ESX_SPARSE:
7114#endif /* VBOX_WITH_VMDK_ESX */
7115 rc = vmdkGetSectorAsync(pImage, pIoCtx, pExtent, uSectorExtentRel,
7116 &uSectorExtentAbs);
7117 if (RT_FAILURE(rc))
7118 goto out;
7119 /* Clip write range to at most the rest of the grain. */
7120 cbWrite = RT_MIN(cbWrite, VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain - uSectorExtentRel % pExtent->cSectorsPerGrain));
7121 if ( pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED
7122 && uSectorExtentRel < (uint64_t)pExtent->uLastGrainAccess * pExtent->cSectorsPerGrain)
7123 {
7124 rc = VERR_VD_VMDK_INVALID_WRITE;
7125 goto out;
7126 }
7127 if (uSectorExtentAbs == 0)
7128 {
7129 if (cbWrite == VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain))
7130 {
7131 /* Full block write to a previously unallocated block.
7132 * Check if the caller wants to avoid the automatic alloc. */
7133 if (!(fWrite & VD_WRITE_NO_ALLOC))
7134 {
7135 /* Allocate GT and find out where to store the grain. */
7136 rc = vmdkAllocGrainAsync(pImage, pExtent, pIoCtx,
7137 uSectorExtentRel, cbWrite);
7138 }
7139 else
7140 rc = VERR_VD_BLOCK_FREE;
7141 *pcbPreRead = 0;
7142 *pcbPostRead = 0;
7143 }
7144 else
7145 {
7146 /* Clip write range to remain in this extent. */
7147 cbWrite = RT_MIN(cbWrite, VMDK_SECTOR2BYTE(pExtent->uSectorOffset + pExtent->cNominalSectors - uSectorExtentRel));
7148 *pcbPreRead = VMDK_SECTOR2BYTE(uSectorExtentRel % pExtent->cSectorsPerGrain);
7149 *pcbPostRead = VMDK_SECTOR2BYTE(pExtent->cSectorsPerGrain) - cbWrite - *pcbPreRead;
7150 rc = VERR_VD_BLOCK_FREE;
7151 }
7152 }
7153 else
7154 {
7155 Assert(!(pImage->uImageFlags & VD_VMDK_IMAGE_FLAGS_STREAM_OPTIMIZED));
7156 rc = vmdkFileWriteUserAsync(pImage, pExtent->pFile,
7157 VMDK_SECTOR2BYTE(uSectorExtentAbs),
7158 pIoCtx, cbWrite, NULL, NULL);
7159 }
7160 break;
7161 case VMDKETYPE_VMFS:
7162 case VMDKETYPE_FLAT:
7163 /* Clip write range to remain in this extent. */
7164 cbWrite = RT_MIN(cbWrite, VMDK_SECTOR2BYTE(pExtent->uSectorOffset + pExtent->cNominalSectors - uSectorExtentRel));
7165 rc = vmdkFileWriteUserAsync(pImage, pExtent->pFile,
7166 VMDK_SECTOR2BYTE(uSectorExtentRel),
7167 pIoCtx, cbWrite, NULL, NULL);
7168 break;
7169 case VMDKETYPE_ZERO:
7170 /* Clip write range to remain in this extent. */
7171 cbWrite = RT_MIN(cbWrite, VMDK_SECTOR2BYTE(pExtent->uSectorOffset + pExtent->cNominalSectors - uSectorExtentRel));
7172 break;
7173 }
7174
7175 if (pcbWriteProcess)
7176 *pcbWriteProcess = cbWrite;
7177
7178out:
7179 LogFlowFunc(("returns %Rrc\n", rc));
7180 return rc;
7181}
7182
7183/** @copydoc VBOXHDDBACKEND::pfnAsyncFlush */
7184static int vmdkAsyncFlush(void *pBackendData, PVDIOCTX pIoCtx)
7185{
7186 PVMDKIMAGE pImage = (PVMDKIMAGE)pBackendData;
7187 PVMDKEXTENT pExtent;
7188 int rc = VINF_SUCCESS;
7189
7190 /* Update descriptor if changed. */
7191 /** @todo: The descriptor is never updated because
7192 * it remains unchanged during normal operation (only vmdkRename updates it).
7193 * So this part is actually not tested so far and requires testing as soon
7194 * as the descriptor might change during async I/O.
7195 */
7196 if (pImage->Descriptor.fDirty)
7197 {
7198 rc = vmdkWriteDescriptorAsync(pImage, pIoCtx);
7199 if ( RT_FAILURE(rc)
7200 && rc != VERR_VD_ASYNC_IO_IN_PROGRESS)
7201 goto out;
7202 }
7203
7204 for (unsigned i = 0; i < pImage->cExtents; i++)
7205 {
7206 pExtent = &pImage->pExtents[i];
7207 if (pExtent->pFile != NULL && pExtent->fMetaDirty)
7208 {
7209 switch (pExtent->enmType)
7210 {
7211 case VMDKETYPE_HOSTED_SPARSE:
7212#ifdef VBOX_WITH_VMDK_ESX
7213 case VMDKETYPE_ESX_SPARSE:
7214#endif /* VBOX_WITH_VMDK_ESX */
7215 rc = vmdkWriteMetaSparseExtentAsync(pImage, pExtent, 0, pIoCtx);
7216 if (RT_FAILURE(rc) && (rc != VERR_VD_ASYNC_IO_IN_PROGRESS))
7217 goto out;
7218 if (pExtent->fFooter)
7219 {
7220 uint64_t uFileOffset = pExtent->uAppendPosition;
7221 if (!uFileOffset)
7222 {
7223 rc = VERR_INTERNAL_ERROR;
7224 goto out;
7225 }
7226 uFileOffset = RT_ALIGN_64(uFileOffset, 512);
7227 rc = vmdkWriteMetaSparseExtent(pImage, pExtent, uFileOffset);
7228 if (RT_FAILURE(rc) && (rc != VERR_VD_ASYNC_IO_IN_PROGRESS))
7229 goto out;
7230 }
7231 break;
7232 case VMDKETYPE_VMFS:
7233 case VMDKETYPE_FLAT:
7234 /* Nothing to do. */
7235 break;
7236 case VMDKETYPE_ZERO:
7237 default:
7238 AssertMsgFailed(("extent with type %d marked as dirty\n",
7239 pExtent->enmType));
7240 break;
7241 }
7242 }
7243 switch (pExtent->enmType)
7244 {
7245 case VMDKETYPE_HOSTED_SPARSE:
7246#ifdef VBOX_WITH_VMDK_ESX
7247 case VMDKETYPE_ESX_SPARSE:
7248#endif /* VBOX_WITH_VMDK_ESX */
7249 case VMDKETYPE_VMFS:
7250 case VMDKETYPE_FLAT:
7251 /*
7252 * Don't ignore block devices like in the sync case
7253 * (they have an absolute path).
7254 * We might have unwritten data in the writeback cache and
7255 * the async I/O manager will handle these requests properly
7256 * even if the block device doesn't support these requests.
7257 */
7258 if ( pExtent->pFile != NULL
7259 && !(pImage->uOpenFlags & VD_OPEN_FLAGS_READONLY))
7260 rc = vmdkFileFlushAsync(pImage, pExtent->pFile, pIoCtx);
7261 break;
7262 case VMDKETYPE_ZERO:
7263 /* No need to do anything for this extent. */
7264 break;
7265 default:
7266 AssertMsgFailed(("unknown extent type %d\n", pExtent->enmType));
7267 break;
7268 }
7269 }
7270
7271out:
7272 return rc;
7273}
7274
7275
7276VBOXHDDBACKEND g_VmdkBackend =
7277{
7278 /* pszBackendName */
7279 "VMDK",
7280 /* cbSize */
7281 sizeof(VBOXHDDBACKEND),
7282 /* uBackendCaps */
7283 VD_CAP_UUID | VD_CAP_CREATE_FIXED | VD_CAP_CREATE_DYNAMIC
7284 | VD_CAP_CREATE_SPLIT_2G | VD_CAP_DIFF | VD_CAP_FILE | VD_CAP_ASYNC
7285 | VD_CAP_VFS,
7286 /* paFileExtensions */
7287 s_aVmdkFileExtensions,
7288 /* paConfigInfo */
7289 NULL,
7290 /* hPlugin */
7291 NIL_RTLDRMOD,
7292 /* pfnCheckIfValid */
7293 vmdkCheckIfValid,
7294 /* pfnOpen */
7295 vmdkOpen,
7296 /* pfnCreate */
7297 vmdkCreate,
7298 /* pfnRename */
7299 vmdkRename,
7300 /* pfnClose */
7301 vmdkClose,
7302 /* pfnRead */
7303 vmdkRead,
7304 /* pfnWrite */
7305 vmdkWrite,
7306 /* pfnFlush */
7307 vmdkFlush,
7308 /* pfnGetVersion */
7309 vmdkGetVersion,
7310 /* pfnGetSize */
7311 vmdkGetSize,
7312 /* pfnGetFileSize */
7313 vmdkGetFileSize,
7314 /* pfnGetPCHSGeometry */
7315 vmdkGetPCHSGeometry,
7316 /* pfnSetPCHSGeometry */
7317 vmdkSetPCHSGeometry,
7318 /* pfnGetLCHSGeometry */
7319 vmdkGetLCHSGeometry,
7320 /* pfnSetLCHSGeometry */
7321 vmdkSetLCHSGeometry,
7322 /* pfnGetImageFlags */
7323 vmdkGetImageFlags,
7324 /* pfnGetOpenFlags */
7325 vmdkGetOpenFlags,
7326 /* pfnSetOpenFlags */
7327 vmdkSetOpenFlags,
7328 /* pfnGetComment */
7329 vmdkGetComment,
7330 /* pfnSetComment */
7331 vmdkSetComment,
7332 /* pfnGetUuid */
7333 vmdkGetUuid,
7334 /* pfnSetUuid */
7335 vmdkSetUuid,
7336 /* pfnGetModificationUuid */
7337 vmdkGetModificationUuid,
7338 /* pfnSetModificationUuid */
7339 vmdkSetModificationUuid,
7340 /* pfnGetParentUuid */
7341 vmdkGetParentUuid,
7342 /* pfnSetParentUuid */
7343 vmdkSetParentUuid,
7344 /* pfnGetParentModificationUuid */
7345 vmdkGetParentModificationUuid,
7346 /* pfnSetParentModificationUuid */
7347 vmdkSetParentModificationUuid,
7348 /* pfnDump */
7349 vmdkDump,
7350 /* pfnGetTimeStamp */
7351 NULL,
7352 /* pfnGetParentTimeStamp */
7353 NULL,
7354 /* pfnSetParentTimeStamp */
7355 NULL,
7356 /* pfnGetParentFilename */
7357 NULL,
7358 /* pfnSetParentFilename */
7359 NULL,
7360 /* pfnIsAsyncIOSupported */
7361 vmdkIsAsyncIOSupported,
7362 /* pfnAsyncRead */
7363 vmdkAsyncRead,
7364 /* pfnAsyncWrite */
7365 vmdkAsyncWrite,
7366 /* pfnAsyncFlush */
7367 vmdkAsyncFlush,
7368 /* pfnComposeLocation */
7369 genericFileComposeLocation,
7370 /* pfnComposeName */
7371 genericFileComposeName,
7372 /* pfnCompact */
7373 NULL,
7374 /* pfnResize */
7375 NULL
7376};
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