1 /* 2 ** 2009 January 28 3 ** 4 ** The author disclaims copyright to this source code. In place of 5 ** a legal notice, here is a blessing: 6 ** 7 ** May you do good and not evil. 8 ** May you find forgiveness for yourself and forgive others. 9 ** May you share freely, never taking more than you give. 10 ** 11 ************************************************************************* 12 ** This file contains the implementation of the sqlite3_backup_XXX() 13 ** API functions and the related features. 14 */ 15 #include "sqliteInt.h" 16 #include "btreeInt.h" 17 18 /* Macro to find the minimum of two numeric values. 19 */ 20 #ifndef MIN 21 # define MIN(x,y) ((x)<(y)?(x):(y)) 22 #endif 23 24 /* 25 ** Structure allocated for each backup operation. 26 */ 27 struct sqlite3_backup { 28 sqlite3* pDestDb; /* Destination database handle */ 29 Btree *pDest; /* Destination b-tree file */ 30 u32 iDestSchema; /* Original schema cookie in destination */ 31 int bDestLocked; /* True once a write-transaction is open on pDest */ 32 33 Pgno iNext; /* Page number of the next source page to copy */ 34 sqlite3* pSrcDb; /* Source database handle */ 35 Btree *pSrc; /* Source b-tree file */ 36 37 int rc; /* Backup process error code */ 38 39 /* These two variables are set by every call to backup_step(). They are 40 ** read by calls to backup_remaining() and backup_pagecount(). 41 */ 42 Pgno nRemaining; /* Number of pages left to copy */ 43 Pgno nPagecount; /* Total number of pages to copy */ 44 45 int isAttached; /* True once backup has been registered with pager */ 46 sqlite3_backup *pNext; /* Next backup associated with source pager */ 47 }; 48 49 /* 50 ** THREAD SAFETY NOTES: 51 ** 52 ** Once it has been created using backup_init(), a single sqlite3_backup 53 ** structure may be accessed via two groups of thread-safe entry points: 54 ** 55 ** * Via the sqlite3_backup_XXX() API function backup_step() and 56 ** backup_finish(). Both these functions obtain the source database 57 ** handle mutex and the mutex associated with the source BtShared 58 ** structure, in that order. 59 ** 60 ** * Via the BackupUpdate() and BackupRestart() functions, which are 61 ** invoked by the pager layer to report various state changes in 62 ** the page cache associated with the source database. The mutex 63 ** associated with the source database BtShared structure will always 64 ** be held when either of these functions are invoked. 65 ** 66 ** The other sqlite3_backup_XXX() API functions, backup_remaining() and 67 ** backup_pagecount() are not thread-safe functions. If they are called 68 ** while some other thread is calling backup_step() or backup_finish(), 69 ** the values returned may be invalid. There is no way for a call to 70 ** BackupUpdate() or BackupRestart() to interfere with backup_remaining() 71 ** or backup_pagecount(). 72 ** 73 ** Depending on the SQLite configuration, the database handles and/or 74 ** the Btree objects may have their own mutexes that require locking. 75 ** Non-sharable Btrees (in-memory databases for example), do not have 76 ** associated mutexes. 77 */ 78 79 /* 80 ** Return a pointer corresponding to database zDb (i.e. "main", "temp") 81 ** in connection handle pDb. If such a database cannot be found, return 82 ** a NULL pointer and write an error message to pErrorDb. 83 ** 84 ** If the "temp" database is requested, it may need to be opened by this 85 ** function. If an error occurs while doing so, return 0 and write an 86 ** error message to pErrorDb. 87 */ 88 static Btree *findBtree(sqlite3 *pErrorDb, sqlite3 *pDb, const char *zDb){ 89 int i = sqlite3FindDbName(pDb, zDb); 90 91 if( i==1 ){ 92 Parse *pParse; 93 int rc = 0; 94 pParse = sqlite3StackAllocZero(pErrorDb, sizeof(*pParse)); 95 if( pParse==0 ){ 96 sqlite3Error(pErrorDb, SQLITE_NOMEM, "out of memory"); 97 rc = SQLITE_NOMEM; 98 }else{ 99 pParse->db = pDb; 100 if( sqlite3OpenTempDatabase(pParse) ){ 101 sqlite3Error(pErrorDb, pParse->rc, "%s", pParse->zErrMsg); 102 rc = SQLITE_ERROR; 103 } 104 sqlite3DbFree(pErrorDb, pParse->zErrMsg); 105 sqlite3StackFree(pErrorDb, pParse); 106 } 107 if( rc ){ 108 return 0; 109 } 110 } 111 112 if( i<0 ){ 113 sqlite3Error(pErrorDb, SQLITE_ERROR, "unknown database %s", zDb); 114 return 0; 115 } 116 117 return pDb->aDb[i].pBt; 118 } 119 120 /* 121 ** Attempt to set the page size of the destination to match the page size 122 ** of the source. 123 */ 124 static int setDestPgsz(sqlite3_backup *p){ 125 int rc; 126 rc = sqlite3BtreeSetPageSize(p->pDest,sqlite3BtreeGetPageSize(p->pSrc),-1,0); 127 return rc; 128 } 129 130 /* 131 ** Create an sqlite3_backup process to copy the contents of zSrcDb from 132 ** connection handle pSrcDb to zDestDb in pDestDb. If successful, return 133 ** a pointer to the new sqlite3_backup object. 134 ** 135 ** If an error occurs, NULL is returned and an error code and error message 136 ** stored in database handle pDestDb. 137 */ 138 sqlite3_backup *sqlite3_backup_init( 139 sqlite3* pDestDb, /* Database to write to */ 140 const char *zDestDb, /* Name of database within pDestDb */ 141 sqlite3* pSrcDb, /* Database connection to read from */ 142 const char *zSrcDb /* Name of database within pSrcDb */ 143 ){ 144 sqlite3_backup *p; /* Value to return */ 145 146 /* Lock the source database handle. The destination database 147 ** handle is not locked in this routine, but it is locked in 148 ** sqlite3_backup_step(). The user is required to ensure that no 149 ** other thread accesses the destination handle for the duration 150 ** of the backup operation. Any attempt to use the destination 151 ** database connection while a backup is in progress may cause 152 ** a malfunction or a deadlock. 153 */ 154 sqlite3_mutex_enter(pSrcDb->mutex); 155 sqlite3_mutex_enter(pDestDb->mutex); 156 157 if( pSrcDb==pDestDb ){ 158 sqlite3Error( 159 pDestDb, SQLITE_ERROR, "source and destination must be distinct" 160 ); 161 p = 0; 162 }else { 163 /* Allocate space for a new sqlite3_backup object... 164 ** EVIDENCE-OF: R-64852-21591 The sqlite3_backup object is created by a 165 ** call to sqlite3_backup_init() and is destroyed by a call to 166 ** sqlite3_backup_finish(). */ 167 p = (sqlite3_backup *)sqlite3MallocZero(sizeof(sqlite3_backup)); 168 if( !p ){ 169 sqlite3Error(pDestDb, SQLITE_NOMEM, 0); 170 } 171 } 172 173 /* If the allocation succeeded, populate the new object. */ 174 if( p ){ 175 p->pSrc = findBtree(pDestDb, pSrcDb, zSrcDb); 176 p->pDest = findBtree(pDestDb, pDestDb, zDestDb); 177 p->pDestDb = pDestDb; 178 p->pSrcDb = pSrcDb; 179 p->iNext = 1; 180 p->isAttached = 0; 181 182 if( 0==p->pSrc || 0==p->pDest || setDestPgsz(p)==SQLITE_NOMEM ){ 183 /* One (or both) of the named databases did not exist or an OOM 184 ** error was hit. The error has already been written into the 185 ** pDestDb handle. All that is left to do here is free the 186 ** sqlite3_backup structure. 187 */ 188 sqlite3_free(p); 189 p = 0; 190 } 191 } 192 if( p ){ 193 p->pSrc->nBackup++; 194 } 195 196 sqlite3_mutex_leave(pDestDb->mutex); 197 sqlite3_mutex_leave(pSrcDb->mutex); 198 return p; 199 } 200 201 /* 202 ** Argument rc is an SQLite error code. Return true if this error is 203 ** considered fatal if encountered during a backup operation. All errors 204 ** are considered fatal except for SQLITE_BUSY and SQLITE_LOCKED. 205 */ 206 static int isFatalError(int rc){ 207 return (rc!=SQLITE_OK && rc!=SQLITE_BUSY && ALWAYS(rc!=SQLITE_LOCKED)); 208 } 209 210 /* 211 ** Parameter zSrcData points to a buffer containing the data for 212 ** page iSrcPg from the source database. Copy this data into the 213 ** destination database. 214 */ 215 static int backupOnePage( 216 sqlite3_backup *p, /* Backup handle */ 217 Pgno iSrcPg, /* Source database page to backup */ 218 const u8 *zSrcData, /* Source database page data */ 219 int bUpdate /* True for an update, false otherwise */ 220 ){ 221 Pager * const pDestPager = sqlite3BtreePager(p->pDest); 222 const int nSrcPgsz = sqlite3BtreeGetPageSize(p->pSrc); 223 int nDestPgsz = sqlite3BtreeGetPageSize(p->pDest); 224 const int nCopy = MIN(nSrcPgsz, nDestPgsz); 225 const i64 iEnd = (i64)iSrcPg*(i64)nSrcPgsz; 226 #ifdef SQLITE_HAS_CODEC 227 /* Use BtreeGetReserveNoMutex() for the source b-tree, as although it is 228 ** guaranteed that the shared-mutex is held by this thread, handle 229 ** p->pSrc may not actually be the owner. */ 230 int nSrcReserve = sqlite3BtreeGetReserveNoMutex(p->pSrc); 231 int nDestReserve = sqlite3BtreeGetReserve(p->pDest); 232 #endif 233 int rc = SQLITE_OK; 234 i64 iOff; 235 236 assert( sqlite3BtreeGetReserveNoMutex(p->pSrc)>=0 ); 237 assert( p->bDestLocked ); 238 assert( !isFatalError(p->rc) ); 239 assert( iSrcPg!=PENDING_BYTE_PAGE(p->pSrc->pBt) ); 240 assert( zSrcData ); 241 242 /* Catch the case where the destination is an in-memory database and the 243 ** page sizes of the source and destination differ. 244 */ 245 if( nSrcPgsz!=nDestPgsz && sqlite3PagerIsMemdb(pDestPager) ){ 246 rc = SQLITE_READONLY; 247 } 248 249 #ifdef SQLITE_HAS_CODEC 250 /* Backup is not possible if the page size of the destination is changing 251 ** and a codec is in use. 252 */ 253 if( nSrcPgsz!=nDestPgsz && sqlite3PagerGetCodec(pDestPager)!=0 ){ 254 rc = SQLITE_READONLY; 255 } 256 257 /* Backup is not possible if the number of bytes of reserve space differ 258 ** between source and destination. If there is a difference, try to 259 ** fix the destination to agree with the source. If that is not possible, 260 ** then the backup cannot proceed. 261 */ 262 if( nSrcReserve!=nDestReserve ){ 263 u32 newPgsz = nSrcPgsz; 264 rc = sqlite3PagerSetPagesize(pDestPager, &newPgsz, nSrcReserve); 265 if( rc==SQLITE_OK && newPgsz!=nSrcPgsz ) rc = SQLITE_READONLY; 266 } 267 #endif 268 269 /* This loop runs once for each destination page spanned by the source 270 ** page. For each iteration, variable iOff is set to the byte offset 271 ** of the destination page. 272 */ 273 for(iOff=iEnd-(i64)nSrcPgsz; rc==SQLITE_OK && iOff<iEnd; iOff+=nDestPgsz){ 274 DbPage *pDestPg = 0; 275 Pgno iDest = (Pgno)(iOff/nDestPgsz)+1; 276 if( iDest==PENDING_BYTE_PAGE(p->pDest->pBt) ) continue; 277 if( SQLITE_OK==(rc = sqlite3PagerGet(pDestPager, iDest, &pDestPg)) 278 && SQLITE_OK==(rc = sqlite3PagerWrite(pDestPg)) 279 ){ 280 const u8 *zIn = &zSrcData[iOff%nSrcPgsz]; 281 u8 *zDestData = sqlite3PagerGetData(pDestPg); 282 u8 *zOut = &zDestData[iOff%nDestPgsz]; 283 284 /* Copy the data from the source page into the destination page. 285 ** Then clear the Btree layer MemPage.isInit flag. Both this module 286 ** and the pager code use this trick (clearing the first byte 287 ** of the page 'extra' space to invalidate the Btree layers 288 ** cached parse of the page). MemPage.isInit is marked 289 ** "MUST BE FIRST" for this purpose. 290 */ 291 memcpy(zOut, zIn, nCopy); 292 ((u8 *)sqlite3PagerGetExtra(pDestPg))[0] = 0; 293 if( iOff==0 && bUpdate==0 ){ 294 sqlite3Put4byte(&zOut[28], sqlite3BtreeLastPage(p->pSrc)); 295 } 296 } 297 sqlite3PagerUnref(pDestPg); 298 } 299 300 return rc; 301 } 302 303 /* 304 ** If pFile is currently larger than iSize bytes, then truncate it to 305 ** exactly iSize bytes. If pFile is not larger than iSize bytes, then 306 ** this function is a no-op. 307 ** 308 ** Return SQLITE_OK if everything is successful, or an SQLite error 309 ** code if an error occurs. 310 */ 311 static int backupTruncateFile(sqlite3_file *pFile, i64 iSize){ 312 i64 iCurrent; 313 int rc = sqlite3OsFileSize(pFile, &iCurrent); 314 if( rc==SQLITE_OK && iCurrent>iSize ){ 315 rc = sqlite3OsTruncate(pFile, iSize); 316 } 317 return rc; 318 } 319 320 /* 321 ** Register this backup object with the associated source pager for 322 ** callbacks when pages are changed or the cache invalidated. 323 */ 324 static void attachBackupObject(sqlite3_backup *p){ 325 sqlite3_backup **pp; 326 assert( sqlite3BtreeHoldsMutex(p->pSrc) ); 327 pp = sqlite3PagerBackupPtr(sqlite3BtreePager(p->pSrc)); 328 p->pNext = *pp; 329 *pp = p; 330 p->isAttached = 1; 331 } 332 333 /* 334 ** Copy nPage pages from the source b-tree to the destination. 335 */ 336 int sqlite3_backup_step(sqlite3_backup *p, int nPage){ 337 int rc; 338 int destMode; /* Destination journal mode */ 339 int pgszSrc = 0; /* Source page size */ 340 int pgszDest = 0; /* Destination page size */ 341 342 sqlite3_mutex_enter(p->pSrcDb->mutex); 343 sqlite3BtreeEnter(p->pSrc); 344 if( p->pDestDb ){ 345 sqlite3_mutex_enter(p->pDestDb->mutex); 346 } 347 348 rc = p->rc; 349 if( !isFatalError(rc) ){ 350 Pager * const pSrcPager = sqlite3BtreePager(p->pSrc); /* Source pager */ 351 Pager * const pDestPager = sqlite3BtreePager(p->pDest); /* Dest pager */ 352 int ii; /* Iterator variable */ 353 int nSrcPage = -1; /* Size of source db in pages */ 354 int bCloseTrans = 0; /* True if src db requires unlocking */ 355 356 /* If the source pager is currently in a write-transaction, return 357 ** SQLITE_BUSY immediately. 358 */ 359 if( p->pDestDb && p->pSrc->pBt->inTransaction==TRANS_WRITE ){ 360 rc = SQLITE_BUSY; 361 }else{ 362 rc = SQLITE_OK; 363 } 364 365 /* Lock the destination database, if it is not locked already. */ 366 if( SQLITE_OK==rc && p->bDestLocked==0 367 && SQLITE_OK==(rc = sqlite3BtreeBeginTrans(p->pDest, 2)) 368 ){ 369 p->bDestLocked = 1; 370 sqlite3BtreeGetMeta(p->pDest, BTREE_SCHEMA_VERSION, &p->iDestSchema); 371 } 372 373 /* If there is no open read-transaction on the source database, open 374 ** one now. If a transaction is opened here, then it will be closed 375 ** before this function exits. 376 */ 377 if( rc==SQLITE_OK && 0==sqlite3BtreeIsInReadTrans(p->pSrc) ){ 378 rc = sqlite3BtreeBeginTrans(p->pSrc, 0); 379 bCloseTrans = 1; 380 } 381 382 /* Do not allow backup if the destination database is in WAL mode 383 ** and the page sizes are different between source and destination */ 384 pgszSrc = sqlite3BtreeGetPageSize(p->pSrc); 385 pgszDest = sqlite3BtreeGetPageSize(p->pDest); 386 destMode = sqlite3PagerGetJournalMode(sqlite3BtreePager(p->pDest)); 387 if( SQLITE_OK==rc && destMode==PAGER_JOURNALMODE_WAL && pgszSrc!=pgszDest ){ 388 rc = SQLITE_READONLY; 389 } 390 391 /* Now that there is a read-lock on the source database, query the 392 ** source pager for the number of pages in the database. 393 */ 394 nSrcPage = (int)sqlite3BtreeLastPage(p->pSrc); 395 assert( nSrcPage>=0 ); 396 for(ii=0; (nPage<0 || ii<nPage) && p->iNext<=(Pgno)nSrcPage && !rc; ii++){ 397 const Pgno iSrcPg = p->iNext; /* Source page number */ 398 if( iSrcPg!=PENDING_BYTE_PAGE(p->pSrc->pBt) ){ 399 DbPage *pSrcPg; /* Source page object */ 400 rc = sqlite3PagerAcquire(pSrcPager, iSrcPg, &pSrcPg, 401 PAGER_ACQUIRE_READONLY); 402 if( rc==SQLITE_OK ){ 403 rc = backupOnePage(p, iSrcPg, sqlite3PagerGetData(pSrcPg), 0); 404 sqlite3PagerUnref(pSrcPg); 405 } 406 } 407 p->iNext++; 408 } 409 if( rc==SQLITE_OK ){ 410 p->nPagecount = nSrcPage; 411 p->nRemaining = nSrcPage+1-p->iNext; 412 if( p->iNext>(Pgno)nSrcPage ){ 413 rc = SQLITE_DONE; 414 }else if( !p->isAttached ){ 415 attachBackupObject(p); 416 } 417 } 418 419 /* Update the schema version field in the destination database. This 420 ** is to make sure that the schema-version really does change in 421 ** the case where the source and destination databases have the 422 ** same schema version. 423 */ 424 if( rc==SQLITE_DONE ){ 425 if( nSrcPage==0 ){ 426 rc = sqlite3BtreeNewDb(p->pDest); 427 nSrcPage = 1; 428 } 429 if( rc==SQLITE_OK || rc==SQLITE_DONE ){ 430 rc = sqlite3BtreeUpdateMeta(p->pDest,1,p->iDestSchema+1); 431 } 432 if( rc==SQLITE_OK ){ 433 if( p->pDestDb ){ 434 sqlite3ResetAllSchemasOfConnection(p->pDestDb); 435 } 436 if( destMode==PAGER_JOURNALMODE_WAL ){ 437 rc = sqlite3BtreeSetVersion(p->pDest, 2); 438 } 439 } 440 if( rc==SQLITE_OK ){ 441 int nDestTruncate; 442 /* Set nDestTruncate to the final number of pages in the destination 443 ** database. The complication here is that the destination page 444 ** size may be different to the source page size. 445 ** 446 ** If the source page size is smaller than the destination page size, 447 ** round up. In this case the call to sqlite3OsTruncate() below will 448 ** fix the size of the file. However it is important to call 449 ** sqlite3PagerTruncateImage() here so that any pages in the 450 ** destination file that lie beyond the nDestTruncate page mark are 451 ** journalled by PagerCommitPhaseOne() before they are destroyed 452 ** by the file truncation. 453 */ 454 assert( pgszSrc==sqlite3BtreeGetPageSize(p->pSrc) ); 455 assert( pgszDest==sqlite3BtreeGetPageSize(p->pDest) ); 456 if( pgszSrc<pgszDest ){ 457 int ratio = pgszDest/pgszSrc; 458 nDestTruncate = (nSrcPage+ratio-1)/ratio; 459 if( nDestTruncate==(int)PENDING_BYTE_PAGE(p->pDest->pBt) ){ 460 nDestTruncate--; 461 } 462 }else{ 463 nDestTruncate = nSrcPage * (pgszSrc/pgszDest); 464 } 465 assert( nDestTruncate>0 ); 466 467 if( pgszSrc<pgszDest ){ 468 /* If the source page-size is smaller than the destination page-size, 469 ** two extra things may need to happen: 470 ** 471 ** * The destination may need to be truncated, and 472 ** 473 ** * Data stored on the pages immediately following the 474 ** pending-byte page in the source database may need to be 475 ** copied into the destination database. 476 */ 477 const i64 iSize = (i64)pgszSrc * (i64)nSrcPage; 478 sqlite3_file * const pFile = sqlite3PagerFile(pDestPager); 479 Pgno iPg; 480 int nDstPage; 481 i64 iOff; 482 i64 iEnd; 483 484 assert( pFile ); 485 assert( nDestTruncate==0 486 || (i64)nDestTruncate*(i64)pgszDest >= iSize || ( 487 nDestTruncate==(int)(PENDING_BYTE_PAGE(p->pDest->pBt)-1) 488 && iSize>=PENDING_BYTE && iSize<=PENDING_BYTE+pgszDest 489 )); 490 491 /* This block ensures that all data required to recreate the original 492 ** database has been stored in the journal for pDestPager and the 493 ** journal synced to disk. So at this point we may safely modify 494 ** the database file in any way, knowing that if a power failure 495 ** occurs, the original database will be reconstructed from the 496 ** journal file. */ 497 sqlite3PagerPagecount(pDestPager, &nDstPage); 498 for(iPg=nDestTruncate; rc==SQLITE_OK && iPg<=(Pgno)nDstPage; iPg++){ 499 if( iPg!=PENDING_BYTE_PAGE(p->pDest->pBt) ){ 500 DbPage *pPg; 501 rc = sqlite3PagerGet(pDestPager, iPg, &pPg); 502 if( rc==SQLITE_OK ){ 503 rc = sqlite3PagerWrite(pPg); 504 sqlite3PagerUnref(pPg); 505 } 506 } 507 } 508 if( rc==SQLITE_OK ){ 509 rc = sqlite3PagerCommitPhaseOne(pDestPager, 0, 1); 510 } 511 512 /* Write the extra pages and truncate the database file as required */ 513 iEnd = MIN(PENDING_BYTE + pgszDest, iSize); 514 for( 515 iOff=PENDING_BYTE+pgszSrc; 516 rc==SQLITE_OK && iOff<iEnd; 517 iOff+=pgszSrc 518 ){ 519 PgHdr *pSrcPg = 0; 520 const Pgno iSrcPg = (Pgno)((iOff/pgszSrc)+1); 521 rc = sqlite3PagerGet(pSrcPager, iSrcPg, &pSrcPg); 522 if( rc==SQLITE_OK ){ 523 u8 *zData = sqlite3PagerGetData(pSrcPg); 524 rc = sqlite3OsWrite(pFile, zData, pgszSrc, iOff); 525 } 526 sqlite3PagerUnref(pSrcPg); 527 } 528 if( rc==SQLITE_OK ){ 529 rc = backupTruncateFile(pFile, iSize); 530 } 531 532 /* Sync the database file to disk. */ 533 if( rc==SQLITE_OK ){ 534 rc = sqlite3PagerSync(pDestPager); 535 } 536 }else{ 537 sqlite3PagerTruncateImage(pDestPager, nDestTruncate); 538 rc = sqlite3PagerCommitPhaseOne(pDestPager, 0, 0); 539 } 540 541 /* Finish committing the transaction to the destination database. */ 542 if( SQLITE_OK==rc 543 && SQLITE_OK==(rc = sqlite3BtreeCommitPhaseTwo(p->pDest, 0)) 544 ){ 545 rc = SQLITE_DONE; 546 } 547 } 548 } 549 550 /* If bCloseTrans is true, then this function opened a read transaction 551 ** on the source database. Close the read transaction here. There is 552 ** no need to check the return values of the btree methods here, as 553 ** "committing" a read-only transaction cannot fail. 554 */ 555 if( bCloseTrans ){ 556 TESTONLY( int rc2 ); 557 TESTONLY( rc2 = ) sqlite3BtreeCommitPhaseOne(p->pSrc, 0); 558 TESTONLY( rc2 |= ) sqlite3BtreeCommitPhaseTwo(p->pSrc, 0); 559 assert( rc2==SQLITE_OK ); 560 } 561 562 if( rc==SQLITE_IOERR_NOMEM ){ 563 rc = SQLITE_NOMEM; 564 } 565 p->rc = rc; 566 } 567 if( p->pDestDb ){ 568 sqlite3_mutex_leave(p->pDestDb->mutex); 569 } 570 sqlite3BtreeLeave(p->pSrc); 571 sqlite3_mutex_leave(p->pSrcDb->mutex); 572 return rc; 573 } 574 575 /* 576 ** Release all resources associated with an sqlite3_backup* handle. 577 */ 578 int sqlite3_backup_finish(sqlite3_backup *p){ 579 sqlite3_backup **pp; /* Ptr to head of pagers backup list */ 580 sqlite3 *pSrcDb; /* Source database connection */ 581 int rc; /* Value to return */ 582 583 /* Enter the mutexes */ 584 if( p==0 ) return SQLITE_OK; 585 pSrcDb = p->pSrcDb; 586 sqlite3_mutex_enter(pSrcDb->mutex); 587 sqlite3BtreeEnter(p->pSrc); 588 if( p->pDestDb ){ 589 sqlite3_mutex_enter(p->pDestDb->mutex); 590 } 591 592 /* Detach this backup from the source pager. */ 593 if( p->pDestDb ){ 594 p->pSrc->nBackup--; 595 } 596 if( p->isAttached ){ 597 pp = sqlite3PagerBackupPtr(sqlite3BtreePager(p->pSrc)); 598 while( *pp!=p ){ 599 pp = &(*pp)->pNext; 600 } 601 *pp = p->pNext; 602 } 603 604 /* If a transaction is still open on the Btree, roll it back. */ 605 sqlite3BtreeRollback(p->pDest, SQLITE_OK); 606 607 /* Set the error code of the destination database handle. */ 608 rc = (p->rc==SQLITE_DONE) ? SQLITE_OK : p->rc; 609 sqlite3Error(p->pDestDb, rc, 0); 610 611 /* Exit the mutexes and free the backup context structure. */ 612 if( p->pDestDb ){ 613 sqlite3LeaveMutexAndCloseZombie(p->pDestDb); 614 } 615 sqlite3BtreeLeave(p->pSrc); 616 if( p->pDestDb ){ 617 /* EVIDENCE-OF: R-64852-21591 The sqlite3_backup object is created by a 618 ** call to sqlite3_backup_init() and is destroyed by a call to 619 ** sqlite3_backup_finish(). */ 620 sqlite3_free(p); 621 } 622 sqlite3LeaveMutexAndCloseZombie(pSrcDb); 623 return rc; 624 } 625 626 /* 627 ** Return the number of pages still to be backed up as of the most recent 628 ** call to sqlite3_backup_step(). 629 */ 630 int sqlite3_backup_remaining(sqlite3_backup *p){ 631 return p->nRemaining; 632 } 633 634 /* 635 ** Return the total number of pages in the source database as of the most 636 ** recent call to sqlite3_backup_step(). 637 */ 638 int sqlite3_backup_pagecount(sqlite3_backup *p){ 639 return p->nPagecount; 640 } 641 642 /* 643 ** This function is called after the contents of page iPage of the 644 ** source database have been modified. If page iPage has already been 645 ** copied into the destination database, then the data written to the 646 ** destination is now invalidated. The destination copy of iPage needs 647 ** to be updated with the new data before the backup operation is 648 ** complete. 649 ** 650 ** It is assumed that the mutex associated with the BtShared object 651 ** corresponding to the source database is held when this function is 652 ** called. 653 */ 654 void sqlite3BackupUpdate(sqlite3_backup *pBackup, Pgno iPage, const u8 *aData){ 655 sqlite3_backup *p; /* Iterator variable */ 656 for(p=pBackup; p; p=p->pNext){ 657 assert( sqlite3_mutex_held(p->pSrc->pBt->mutex) ); 658 if( !isFatalError(p->rc) && iPage<p->iNext ){ 659 /* The backup process p has already copied page iPage. But now it 660 ** has been modified by a transaction on the source pager. Copy 661 ** the new data into the backup. 662 */ 663 int rc; 664 assert( p->pDestDb ); 665 sqlite3_mutex_enter(p->pDestDb->mutex); 666 rc = backupOnePage(p, iPage, aData, 1); 667 sqlite3_mutex_leave(p->pDestDb->mutex); 668 assert( rc!=SQLITE_BUSY && rc!=SQLITE_LOCKED ); 669 if( rc!=SQLITE_OK ){ 670 p->rc = rc; 671 } 672 } 673 } 674 } 675 676 /* 677 ** Restart the backup process. This is called when the pager layer 678 ** detects that the database has been modified by an external database 679 ** connection. In this case there is no way of knowing which of the 680 ** pages that have been copied into the destination database are still 681 ** valid and which are not, so the entire process needs to be restarted. 682 ** 683 ** It is assumed that the mutex associated with the BtShared object 684 ** corresponding to the source database is held when this function is 685 ** called. 686 */ 687 void sqlite3BackupRestart(sqlite3_backup *pBackup){ 688 sqlite3_backup *p; /* Iterator variable */ 689 for(p=pBackup; p; p=p->pNext){ 690 assert( sqlite3_mutex_held(p->pSrc->pBt->mutex) ); 691 p->iNext = 1; 692 } 693 } 694 695 #ifndef SQLITE_OMIT_VACUUM 696 /* 697 ** Copy the complete content of pBtFrom into pBtTo. A transaction 698 ** must be active for both files. 699 ** 700 ** The size of file pTo may be reduced by this operation. If anything 701 ** goes wrong, the transaction on pTo is rolled back. If successful, the 702 ** transaction is committed before returning. 703 */ 704 int sqlite3BtreeCopyFile(Btree *pTo, Btree *pFrom){ 705 int rc; 706 sqlite3_file *pFd; /* File descriptor for database pTo */ 707 sqlite3_backup b; 708 sqlite3BtreeEnter(pTo); 709 sqlite3BtreeEnter(pFrom); 710 711 assert( sqlite3BtreeIsInTrans(pTo) ); 712 pFd = sqlite3PagerFile(sqlite3BtreePager(pTo)); 713 if( pFd->pMethods ){ 714 i64 nByte = sqlite3BtreeGetPageSize(pFrom)*(i64)sqlite3BtreeLastPage(pFrom); 715 rc = sqlite3OsFileControl(pFd, SQLITE_FCNTL_OVERWRITE, &nByte); 716 if( rc==SQLITE_NOTFOUND ) rc = SQLITE_OK; 717 if( rc ) goto copy_finished; 718 } 719 720 /* Set up an sqlite3_backup object. sqlite3_backup.pDestDb must be set 721 ** to 0. This is used by the implementations of sqlite3_backup_step() 722 ** and sqlite3_backup_finish() to detect that they are being called 723 ** from this function, not directly by the user. 724 */ 725 memset(&b, 0, sizeof(b)); 726 b.pSrcDb = pFrom->db; 727 b.pSrc = pFrom; 728 b.pDest = pTo; 729 b.iNext = 1; 730 731 /* 0x7FFFFFFF is the hard limit for the number of pages in a database 732 ** file. By passing this as the number of pages to copy to 733 ** sqlite3_backup_step(), we can guarantee that the copy finishes 734 ** within a single call (unless an error occurs). The assert() statement 735 ** checks this assumption - (p->rc) should be set to either SQLITE_DONE 736 ** or an error code. 737 */ 738 sqlite3_backup_step(&b, 0x7FFFFFFF); 739 assert( b.rc!=SQLITE_OK ); 740 rc = sqlite3_backup_finish(&b); 741 if( rc==SQLITE_OK ){ 742 pTo->pBt->btsFlags &= ~BTS_PAGESIZE_FIXED; 743 }else{ 744 sqlite3PagerClearCache(sqlite3BtreePager(b.pDest)); 745 } 746 747 assert( sqlite3BtreeIsInTrans(pTo)==0 ); 748 copy_finished: 749 sqlite3BtreeLeave(pFrom); 750 sqlite3BtreeLeave(pTo); 751 return rc; 752 } 753 #endif /* SQLITE_OMIT_VACUUM */ 754