xref: /sqlite-3.40.0/src/backup.c (revision 6695f47e)
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         sqlite3ErrorClear(pParse);
102         sqlite3Error(pErrorDb, pParse->rc, "%s", pParse->zErrMsg);
103         rc = SQLITE_ERROR;
104       }
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 ** Create an sqlite3_backup process to copy the contents of zSrcDb from
122 ** connection handle pSrcDb to zDestDb in pDestDb. If successful, return
123 ** a pointer to the new sqlite3_backup object.
124 **
125 ** If an error occurs, NULL is returned and an error code and error message
126 ** stored in database handle pDestDb.
127 */
128 sqlite3_backup *sqlite3_backup_init(
129   sqlite3* pDestDb,                     /* Database to write to */
130   const char *zDestDb,                  /* Name of database within pDestDb */
131   sqlite3* pSrcDb,                      /* Database connection to read from */
132   const char *zSrcDb                    /* Name of database within pSrcDb */
133 ){
134   sqlite3_backup *p;                    /* Value to return */
135 
136   /* Lock the source database handle. The destination database
137   ** handle is not locked in this routine, but it is locked in
138   ** sqlite3_backup_step(). The user is required to ensure that no
139   ** other thread accesses the destination handle for the duration
140   ** of the backup operation.  Any attempt to use the destination
141   ** database connection while a backup is in progress may cause
142   ** a malfunction or a deadlock.
143   */
144   sqlite3_mutex_enter(pSrcDb->mutex);
145   sqlite3_mutex_enter(pDestDb->mutex);
146 
147   if( pSrcDb==pDestDb ){
148     sqlite3Error(
149         pDestDb, SQLITE_ERROR, "source and destination must be distinct"
150     );
151     p = 0;
152   }else {
153     /* Allocate space for a new sqlite3_backup object */
154     p = (sqlite3_backup *)sqlite3_malloc(sizeof(sqlite3_backup));
155     if( !p ){
156       sqlite3Error(pDestDb, SQLITE_NOMEM, 0);
157     }
158   }
159 
160   /* If the allocation succeeded, populate the new object. */
161   if( p ){
162     memset(p, 0, sizeof(sqlite3_backup));
163     p->pSrc = findBtree(pDestDb, pSrcDb, zSrcDb);
164     p->pDest = findBtree(pDestDb, pDestDb, zDestDb);
165     p->pDestDb = pDestDb;
166     p->pSrcDb = pSrcDb;
167     p->iNext = 1;
168     p->isAttached = 0;
169 
170     if( 0==p->pSrc || 0==p->pDest ){
171       /* One (or both) of the named databases did not exist. An error has
172       ** already been written into the pDestDb handle. All that is left
173       ** to do here is free the sqlite3_backup structure.
174       */
175       sqlite3_free(p);
176       p = 0;
177     }
178   }
179   if( p ){
180     p->pSrc->nBackup++;
181   }
182 
183   sqlite3_mutex_leave(pDestDb->mutex);
184   sqlite3_mutex_leave(pSrcDb->mutex);
185   return p;
186 }
187 
188 /*
189 ** Argument rc is an SQLite error code. Return true if this error is
190 ** considered fatal if encountered during a backup operation. All errors
191 ** are considered fatal except for SQLITE_BUSY and SQLITE_LOCKED.
192 */
193 static int isFatalError(int rc){
194   return (rc!=SQLITE_OK && rc!=SQLITE_BUSY && ALWAYS(rc!=SQLITE_LOCKED));
195 }
196 
197 /*
198 ** Parameter zSrcData points to a buffer containing the data for
199 ** page iSrcPg from the source database. Copy this data into the
200 ** destination database.
201 */
202 static int backupOnePage(sqlite3_backup *p, Pgno iSrcPg, const u8 *zSrcData){
203   Pager * const pDestPager = sqlite3BtreePager(p->pDest);
204   const int nSrcPgsz = sqlite3BtreeGetPageSize(p->pSrc);
205   int nDestPgsz = sqlite3BtreeGetPageSize(p->pDest);
206   const int nCopy = MIN(nSrcPgsz, nDestPgsz);
207   const i64 iEnd = (i64)iSrcPg*(i64)nSrcPgsz;
208 
209   int rc = SQLITE_OK;
210   i64 iOff;
211 
212   assert( p->bDestLocked );
213   assert( !isFatalError(p->rc) );
214   assert( iSrcPg!=PENDING_BYTE_PAGE(p->pSrc->pBt) );
215   assert( zSrcData );
216 
217   /* Catch the case where the destination is an in-memory database and the
218   ** page sizes of the source and destination differ.
219   */
220   if( nSrcPgsz!=nDestPgsz && sqlite3PagerIsMemdb(sqlite3BtreePager(p->pDest)) ){
221     rc = SQLITE_READONLY;
222   }
223 
224   /* This loop runs once for each destination page spanned by the source
225   ** page. For each iteration, variable iOff is set to the byte offset
226   ** of the destination page.
227   */
228   for(iOff=iEnd-(i64)nSrcPgsz; rc==SQLITE_OK && iOff<iEnd; iOff+=nDestPgsz){
229     DbPage *pDestPg = 0;
230     Pgno iDest = (Pgno)(iOff/nDestPgsz)+1;
231     if( iDest==PENDING_BYTE_PAGE(p->pDest->pBt) ) continue;
232     if( SQLITE_OK==(rc = sqlite3PagerGet(pDestPager, iDest, &pDestPg))
233      && SQLITE_OK==(rc = sqlite3PagerWrite(pDestPg))
234     ){
235       const u8 *zIn = &zSrcData[iOff%nSrcPgsz];
236       u8 *zDestData = sqlite3PagerGetData(pDestPg);
237       u8 *zOut = &zDestData[iOff%nDestPgsz];
238 
239       /* Copy the data from the source page into the destination page.
240       ** Then clear the Btree layer MemPage.isInit flag. Both this module
241       ** and the pager code use this trick (clearing the first byte
242       ** of the page 'extra' space to invalidate the Btree layers
243       ** cached parse of the page). MemPage.isInit is marked
244       ** "MUST BE FIRST" for this purpose.
245       */
246       memcpy(zOut, zIn, nCopy);
247       ((u8 *)sqlite3PagerGetExtra(pDestPg))[0] = 0;
248     }
249     sqlite3PagerUnref(pDestPg);
250   }
251 
252   return rc;
253 }
254 
255 /*
256 ** If pFile is currently larger than iSize bytes, then truncate it to
257 ** exactly iSize bytes. If pFile is not larger than iSize bytes, then
258 ** this function is a no-op.
259 **
260 ** Return SQLITE_OK if everything is successful, or an SQLite error
261 ** code if an error occurs.
262 */
263 static int backupTruncateFile(sqlite3_file *pFile, i64 iSize){
264   i64 iCurrent;
265   int rc = sqlite3OsFileSize(pFile, &iCurrent);
266   if( rc==SQLITE_OK && iCurrent>iSize ){
267     rc = sqlite3OsTruncate(pFile, iSize);
268   }
269   return rc;
270 }
271 
272 /*
273 ** Register this backup object with the associated source pager for
274 ** callbacks when pages are changed or the cache invalidated.
275 */
276 static void attachBackupObject(sqlite3_backup *p){
277   sqlite3_backup **pp;
278   assert( sqlite3BtreeHoldsMutex(p->pSrc) );
279   pp = sqlite3PagerBackupPtr(sqlite3BtreePager(p->pSrc));
280   p->pNext = *pp;
281   *pp = p;
282   p->isAttached = 1;
283 }
284 
285 /*
286 ** Copy nPage pages from the source b-tree to the destination.
287 */
288 int sqlite3_backup_step(sqlite3_backup *p, int nPage){
289   int rc;
290 
291   sqlite3_mutex_enter(p->pSrcDb->mutex);
292   sqlite3BtreeEnter(p->pSrc);
293   if( p->pDestDb ){
294     sqlite3_mutex_enter(p->pDestDb->mutex);
295   }
296 
297   rc = p->rc;
298   if( !isFatalError(rc) ){
299     Pager * const pSrcPager = sqlite3BtreePager(p->pSrc);     /* Source pager */
300     Pager * const pDestPager = sqlite3BtreePager(p->pDest);   /* Dest pager */
301     int ii;                            /* Iterator variable */
302     int nSrcPage = -1;                 /* Size of source db in pages */
303     int bCloseTrans = 0;               /* True if src db requires unlocking */
304 
305     /* If the source pager is currently in a write-transaction, return
306     ** SQLITE_BUSY immediately.
307     */
308     if( p->pDestDb && p->pSrc->pBt->inTransaction==TRANS_WRITE ){
309       rc = SQLITE_BUSY;
310     }else{
311       rc = SQLITE_OK;
312     }
313 
314     /* Lock the destination database, if it is not locked already. */
315     if( SQLITE_OK==rc && p->bDestLocked==0
316      && SQLITE_OK==(rc = sqlite3BtreeBeginTrans(p->pDest, 2))
317     ){
318       p->bDestLocked = 1;
319       sqlite3BtreeGetMeta(p->pDest, BTREE_SCHEMA_VERSION, &p->iDestSchema);
320     }
321 
322     /* If there is no open read-transaction on the source database, open
323     ** one now. If a transaction is opened here, then it will be closed
324     ** before this function exits.
325     */
326     if( rc==SQLITE_OK && 0==sqlite3BtreeIsInReadTrans(p->pSrc) ){
327       rc = sqlite3BtreeBeginTrans(p->pSrc, 0);
328       bCloseTrans = 1;
329     }
330 
331     /* Now that there is a read-lock on the source database, query the
332     ** source pager for the number of pages in the database.
333     */
334     if( rc==SQLITE_OK ){
335       rc = sqlite3PagerPagecount(pSrcPager, &nSrcPage);
336     }
337     for(ii=0; (nPage<0 || ii<nPage) && p->iNext<=(Pgno)nSrcPage && !rc; ii++){
338       const Pgno iSrcPg = p->iNext;                 /* Source page number */
339       if( iSrcPg!=PENDING_BYTE_PAGE(p->pSrc->pBt) ){
340         DbPage *pSrcPg;                             /* Source page object */
341         rc = sqlite3PagerGet(pSrcPager, iSrcPg, &pSrcPg);
342         if( rc==SQLITE_OK ){
343           rc = backupOnePage(p, iSrcPg, sqlite3PagerGetData(pSrcPg));
344           sqlite3PagerUnref(pSrcPg);
345         }
346       }
347       p->iNext++;
348     }
349     if( rc==SQLITE_OK ){
350       p->nPagecount = nSrcPage;
351       p->nRemaining = nSrcPage+1-p->iNext;
352       if( p->iNext>(Pgno)nSrcPage ){
353         rc = SQLITE_DONE;
354       }else if( !p->isAttached ){
355         attachBackupObject(p);
356       }
357     }
358 
359     /* Update the schema version field in the destination database. This
360     ** is to make sure that the schema-version really does change in
361     ** the case where the source and destination databases have the
362     ** same schema version.
363     */
364     if( rc==SQLITE_DONE
365      && (rc = sqlite3BtreeUpdateMeta(p->pDest,1,p->iDestSchema+1))==SQLITE_OK
366     ){
367       const int nSrcPagesize = sqlite3BtreeGetPageSize(p->pSrc);
368       const int nDestPagesize = sqlite3BtreeGetPageSize(p->pDest);
369       int nDestTruncate;
370 
371       if( p->pDestDb ){
372         sqlite3ResetInternalSchema(p->pDestDb, 0);
373       }
374 
375       /* Set nDestTruncate to the final number of pages in the destination
376       ** database. The complication here is that the destination page
377       ** size may be different to the source page size.
378       **
379       ** If the source page size is smaller than the destination page size,
380       ** round up. In this case the call to sqlite3OsTruncate() below will
381       ** fix the size of the file. However it is important to call
382       ** sqlite3PagerTruncateImage() here so that any pages in the
383       ** destination file that lie beyond the nDestTruncate page mark are
384       ** journalled by PagerCommitPhaseOne() before they are destroyed
385       ** by the file truncation.
386       */
387       if( nSrcPagesize<nDestPagesize ){
388         int ratio = nDestPagesize/nSrcPagesize;
389         nDestTruncate = (nSrcPage+ratio-1)/ratio;
390         if( nDestTruncate==(int)PENDING_BYTE_PAGE(p->pDest->pBt) ){
391           nDestTruncate--;
392         }
393       }else{
394         nDestTruncate = nSrcPage * (nSrcPagesize/nDestPagesize);
395       }
396       sqlite3PagerTruncateImage(pDestPager, nDestTruncate);
397 
398       if( nSrcPagesize<nDestPagesize ){
399         /* If the source page-size is smaller than the destination page-size,
400         ** two extra things may need to happen:
401         **
402         **   * The destination may need to be truncated, and
403         **
404         **   * Data stored on the pages immediately following the
405         **     pending-byte page in the source database may need to be
406         **     copied into the destination database.
407         */
408         const i64 iSize = (i64)nSrcPagesize * (i64)nSrcPage;
409         sqlite3_file * const pFile = sqlite3PagerFile(pDestPager);
410 
411         assert( pFile );
412         assert( (i64)nDestTruncate*(i64)nDestPagesize >= iSize || (
413               nDestTruncate==(int)(PENDING_BYTE_PAGE(p->pDest->pBt)-1)
414            && iSize>=PENDING_BYTE && iSize<=PENDING_BYTE+nDestPagesize
415         ));
416         if( SQLITE_OK==(rc = sqlite3PagerCommitPhaseOne(pDestPager, 0, 1))
417          && SQLITE_OK==(rc = backupTruncateFile(pFile, iSize))
418          && SQLITE_OK==(rc = sqlite3PagerSync(pDestPager))
419         ){
420           i64 iOff;
421           i64 iEnd = MIN(PENDING_BYTE + nDestPagesize, iSize);
422           for(
423             iOff=PENDING_BYTE+nSrcPagesize;
424             rc==SQLITE_OK && iOff<iEnd;
425             iOff+=nSrcPagesize
426           ){
427             PgHdr *pSrcPg = 0;
428             const Pgno iSrcPg = (Pgno)((iOff/nSrcPagesize)+1);
429             rc = sqlite3PagerGet(pSrcPager, iSrcPg, &pSrcPg);
430             if( rc==SQLITE_OK ){
431               u8 *zData = sqlite3PagerGetData(pSrcPg);
432               rc = sqlite3OsWrite(pFile, zData, nSrcPagesize, iOff);
433             }
434             sqlite3PagerUnref(pSrcPg);
435           }
436         }
437       }else{
438         rc = sqlite3PagerCommitPhaseOne(pDestPager, 0, 0);
439       }
440 
441       /* Finish committing the transaction to the destination database. */
442       if( SQLITE_OK==rc
443        && SQLITE_OK==(rc = sqlite3BtreeCommitPhaseTwo(p->pDest))
444       ){
445         rc = SQLITE_DONE;
446       }
447     }
448 
449     /* If bCloseTrans is true, then this function opened a read transaction
450     ** on the source database. Close the read transaction here. There is
451     ** no need to check the return values of the btree methods here, as
452     ** "committing" a read-only transaction cannot fail.
453     */
454     if( bCloseTrans ){
455       TESTONLY( int rc2 );
456       TESTONLY( rc2  = ) sqlite3BtreeCommitPhaseOne(p->pSrc, 0);
457       TESTONLY( rc2 |= ) sqlite3BtreeCommitPhaseTwo(p->pSrc);
458       assert( rc2==SQLITE_OK );
459     }
460 
461     p->rc = rc;
462   }
463   if( p->pDestDb ){
464     sqlite3_mutex_leave(p->pDestDb->mutex);
465   }
466   sqlite3BtreeLeave(p->pSrc);
467   sqlite3_mutex_leave(p->pSrcDb->mutex);
468   return rc;
469 }
470 
471 /*
472 ** Release all resources associated with an sqlite3_backup* handle.
473 */
474 int sqlite3_backup_finish(sqlite3_backup *p){
475   sqlite3_backup **pp;                 /* Ptr to head of pagers backup list */
476   sqlite3_mutex *mutex;                /* Mutex to protect source database */
477   int rc;                              /* Value to return */
478 
479   /* Enter the mutexes */
480   if( p==0 ) return SQLITE_OK;
481   sqlite3_mutex_enter(p->pSrcDb->mutex);
482   sqlite3BtreeEnter(p->pSrc);
483   mutex = p->pSrcDb->mutex;
484   if( p->pDestDb ){
485     sqlite3_mutex_enter(p->pDestDb->mutex);
486   }
487 
488   /* Detach this backup from the source pager. */
489   if( p->pDestDb ){
490     p->pSrc->nBackup--;
491   }
492   if( p->isAttached ){
493     pp = sqlite3PagerBackupPtr(sqlite3BtreePager(p->pSrc));
494     while( *pp!=p ){
495       pp = &(*pp)->pNext;
496     }
497     *pp = p->pNext;
498   }
499 
500   /* If a transaction is still open on the Btree, roll it back. */
501   sqlite3BtreeRollback(p->pDest);
502 
503   /* Set the error code of the destination database handle. */
504   rc = (p->rc==SQLITE_DONE) ? SQLITE_OK : p->rc;
505   sqlite3Error(p->pDestDb, rc, 0);
506 
507   /* Exit the mutexes and free the backup context structure. */
508   if( p->pDestDb ){
509     sqlite3_mutex_leave(p->pDestDb->mutex);
510   }
511   sqlite3BtreeLeave(p->pSrc);
512   if( p->pDestDb ){
513     sqlite3_free(p);
514   }
515   sqlite3_mutex_leave(mutex);
516   return rc;
517 }
518 
519 /*
520 ** Return the number of pages still to be backed up as of the most recent
521 ** call to sqlite3_backup_step().
522 */
523 int sqlite3_backup_remaining(sqlite3_backup *p){
524   return p->nRemaining;
525 }
526 
527 /*
528 ** Return the total number of pages in the source database as of the most
529 ** recent call to sqlite3_backup_step().
530 */
531 int sqlite3_backup_pagecount(sqlite3_backup *p){
532   return p->nPagecount;
533 }
534 
535 /*
536 ** This function is called after the contents of page iPage of the
537 ** source database have been modified. If page iPage has already been
538 ** copied into the destination database, then the data written to the
539 ** destination is now invalidated. The destination copy of iPage needs
540 ** to be updated with the new data before the backup operation is
541 ** complete.
542 **
543 ** It is assumed that the mutex associated with the BtShared object
544 ** corresponding to the source database is held when this function is
545 ** called.
546 */
547 void sqlite3BackupUpdate(sqlite3_backup *pBackup, Pgno iPage, const u8 *aData){
548   sqlite3_backup *p;                   /* Iterator variable */
549   for(p=pBackup; p; p=p->pNext){
550     assert( sqlite3_mutex_held(p->pSrc->pBt->mutex) );
551     if( !isFatalError(p->rc) && iPage<p->iNext ){
552       /* The backup process p has already copied page iPage. But now it
553       ** has been modified by a transaction on the source pager. Copy
554       ** the new data into the backup.
555       */
556       int rc = backupOnePage(p, iPage, aData);
557       assert( rc!=SQLITE_BUSY && rc!=SQLITE_LOCKED );
558       if( rc!=SQLITE_OK ){
559         p->rc = rc;
560       }
561     }
562   }
563 }
564 
565 /*
566 ** Restart the backup process. This is called when the pager layer
567 ** detects that the database has been modified by an external database
568 ** connection. In this case there is no way of knowing which of the
569 ** pages that have been copied into the destination database are still
570 ** valid and which are not, so the entire process needs to be restarted.
571 **
572 ** It is assumed that the mutex associated with the BtShared object
573 ** corresponding to the source database is held when this function is
574 ** called.
575 */
576 void sqlite3BackupRestart(sqlite3_backup *pBackup){
577   sqlite3_backup *p;                   /* Iterator variable */
578   for(p=pBackup; p; p=p->pNext){
579     assert( sqlite3_mutex_held(p->pSrc->pBt->mutex) );
580     p->iNext = 1;
581   }
582 }
583 
584 #ifndef SQLITE_OMIT_VACUUM
585 /*
586 ** Copy the complete content of pBtFrom into pBtTo.  A transaction
587 ** must be active for both files.
588 **
589 ** The size of file pTo may be reduced by this operation. If anything
590 ** goes wrong, the transaction on pTo is rolled back. If successful, the
591 ** transaction is committed before returning.
592 */
593 int sqlite3BtreeCopyFile(Btree *pTo, Btree *pFrom){
594   int rc;
595   sqlite3_backup b;
596   sqlite3BtreeEnter(pTo);
597   sqlite3BtreeEnter(pFrom);
598 
599   /* Set up an sqlite3_backup object. sqlite3_backup.pDestDb must be set
600   ** to 0. This is used by the implementations of sqlite3_backup_step()
601   ** and sqlite3_backup_finish() to detect that they are being called
602   ** from this function, not directly by the user.
603   */
604   memset(&b, 0, sizeof(b));
605   b.pSrcDb = pFrom->db;
606   b.pSrc = pFrom;
607   b.pDest = pTo;
608   b.iNext = 1;
609 
610   /* 0x7FFFFFFF is the hard limit for the number of pages in a database
611   ** file. By passing this as the number of pages to copy to
612   ** sqlite3_backup_step(), we can guarantee that the copy finishes
613   ** within a single call (unless an error occurs). The assert() statement
614   ** checks this assumption - (p->rc) should be set to either SQLITE_DONE
615   ** or an error code.
616   */
617   sqlite3_backup_step(&b, 0x7FFFFFFF);
618   assert( b.rc!=SQLITE_OK );
619   rc = sqlite3_backup_finish(&b);
620   if( rc==SQLITE_OK ){
621     pTo->pBt->pageSizeFixed = 0;
622   }
623 
624   sqlite3BtreeLeave(pFrom);
625   sqlite3BtreeLeave(pTo);
626   return rc;
627 }
628 #endif /* SQLITE_OMIT_VACUUM */
629