Fix a test script problem causing shell1.test to fail with
[sqlite.git] / src / pager.c
blobe3881c6a892e572eb0258dfc37f6630a44dcfe2b
1 /*
2 ** 2001 September 15
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.
11 *************************************************************************
12 ** This is the implementation of the page cache subsystem or "pager".
13 **
14 ** The pager is used to access a database disk file. It implements
15 ** atomic commit and rollback through the use of a journal file that
16 ** is separate from the database file. The pager also implements file
17 ** locking to prevent two processes from writing the same database
18 ** file simultaneously, or one process from reading the database while
19 ** another is writing.
21 #ifndef SQLITE_OMIT_DISKIO
22 #include "sqliteInt.h"
23 #include "wal.h"
26 /******************* NOTES ON THE DESIGN OF THE PAGER ************************
28 ** This comment block describes invariants that hold when using a rollback
29 ** journal. These invariants do not apply for journal_mode=WAL,
30 ** journal_mode=MEMORY, or journal_mode=OFF.
32 ** Within this comment block, a page is deemed to have been synced
33 ** automatically as soon as it is written when PRAGMA synchronous=OFF.
34 ** Otherwise, the page is not synced until the xSync method of the VFS
35 ** is called successfully on the file containing the page.
37 ** Definition: A page of the database file is said to be "overwriteable" if
38 ** one or more of the following are true about the page:
39 **
40 ** (a) The original content of the page as it was at the beginning of
41 ** the transaction has been written into the rollback journal and
42 ** synced.
43 **
44 ** (b) The page was a freelist leaf page at the start of the transaction.
45 **
46 ** (c) The page number is greater than the largest page that existed in
47 ** the database file at the start of the transaction.
48 **
49 ** (1) A page of the database file is never overwritten unless one of the
50 ** following are true:
51 **
52 ** (a) The page and all other pages on the same sector are overwriteable.
53 **
54 ** (b) The atomic page write optimization is enabled, and the entire
55 ** transaction other than the update of the transaction sequence
56 ** number consists of a single page change.
57 **
58 ** (2) The content of a page written into the rollback journal exactly matches
59 ** both the content in the database when the rollback journal was written
60 ** and the content in the database at the beginning of the current
61 ** transaction.
62 **
63 ** (3) Writes to the database file are an integer multiple of the page size
64 ** in length and are aligned on a page boundary.
65 **
66 ** (4) Reads from the database file are either aligned on a page boundary and
67 ** an integer multiple of the page size in length or are taken from the
68 ** first 100 bytes of the database file.
69 **
70 ** (5) All writes to the database file are synced prior to the rollback journal
71 ** being deleted, truncated, or zeroed.
72 **
73 ** (6) If a master journal file is used, then all writes to the database file
74 ** are synced prior to the master journal being deleted.
75 **
76 ** Definition: Two databases (or the same database at two points it time)
77 ** are said to be "logically equivalent" if they give the same answer to
78 ** all queries. Note in particular the content of freelist leaf
79 ** pages can be changed arbitrarily without affecting the logical equivalence
80 ** of the database.
81 **
82 ** (7) At any time, if any subset, including the empty set and the total set,
83 ** of the unsynced changes to a rollback journal are removed and the
84 ** journal is rolled back, the resulting database file will be logically
85 ** equivalent to the database file at the beginning of the transaction.
86 **
87 ** (8) When a transaction is rolled back, the xTruncate method of the VFS
88 ** is called to restore the database file to the same size it was at
89 ** the beginning of the transaction. (In some VFSes, the xTruncate
90 ** method is a no-op, but that does not change the fact the SQLite will
91 ** invoke it.)
92 **
93 ** (9) Whenever the database file is modified, at least one bit in the range
94 ** of bytes from 24 through 39 inclusive will be changed prior to releasing
95 ** the EXCLUSIVE lock, thus signaling other connections on the same
96 ** database to flush their caches.
98 ** (10) The pattern of bits in bytes 24 through 39 shall not repeat in less
99 ** than one billion transactions.
101 ** (11) A database file is well-formed at the beginning and at the conclusion
102 ** of every transaction.
104 ** (12) An EXCLUSIVE lock is held on the database file when writing to
105 ** the database file.
107 ** (13) A SHARED lock is held on the database file while reading any
108 ** content out of the database file.
110 ******************************************************************************/
113 ** Macros for troubleshooting. Normally turned off
115 #if 0
116 int sqlite3PagerTrace=1; /* True to enable tracing */
117 #define sqlite3DebugPrintf printf
118 #define PAGERTRACE(X) if( sqlite3PagerTrace ){ sqlite3DebugPrintf X; }
119 #else
120 #define PAGERTRACE(X)
121 #endif
124 ** The following two macros are used within the PAGERTRACE() macros above
125 ** to print out file-descriptors.
127 ** PAGERID() takes a pointer to a Pager struct as its argument. The
128 ** associated file-descriptor is returned. FILEHANDLEID() takes an sqlite3_file
129 ** struct as its argument.
131 #define PAGERID(p) (SQLITE_PTR_TO_INT(p->fd))
132 #define FILEHANDLEID(fd) (SQLITE_PTR_TO_INT(fd))
135 ** The Pager.eState variable stores the current 'state' of a pager. A
136 ** pager may be in any one of the seven states shown in the following
137 ** state diagram.
139 ** OPEN <------+------+
140 ** | | |
141 ** V | |
142 ** +---------> READER-------+ |
143 ** | | |
144 ** | V |
145 ** |<-------WRITER_LOCKED------> ERROR
146 ** | | ^
147 ** | V |
148 ** |<------WRITER_CACHEMOD-------->|
149 ** | | |
150 ** | V |
151 ** |<-------WRITER_DBMOD---------->|
152 ** | | |
153 ** | V |
154 ** +<------WRITER_FINISHED-------->+
157 ** List of state transitions and the C [function] that performs each:
159 ** OPEN -> READER [sqlite3PagerSharedLock]
160 ** READER -> OPEN [pager_unlock]
162 ** READER -> WRITER_LOCKED [sqlite3PagerBegin]
163 ** WRITER_LOCKED -> WRITER_CACHEMOD [pager_open_journal]
164 ** WRITER_CACHEMOD -> WRITER_DBMOD [syncJournal]
165 ** WRITER_DBMOD -> WRITER_FINISHED [sqlite3PagerCommitPhaseOne]
166 ** WRITER_*** -> READER [pager_end_transaction]
168 ** WRITER_*** -> ERROR [pager_error]
169 ** ERROR -> OPEN [pager_unlock]
172 ** OPEN:
174 ** The pager starts up in this state. Nothing is guaranteed in this
175 ** state - the file may or may not be locked and the database size is
176 ** unknown. The database may not be read or written.
178 ** * No read or write transaction is active.
179 ** * Any lock, or no lock at all, may be held on the database file.
180 ** * The dbSize, dbOrigSize and dbFileSize variables may not be trusted.
182 ** READER:
184 ** In this state all the requirements for reading the database in
185 ** rollback (non-WAL) mode are met. Unless the pager is (or recently
186 ** was) in exclusive-locking mode, a user-level read transaction is
187 ** open. The database size is known in this state.
189 ** A connection running with locking_mode=normal enters this state when
190 ** it opens a read-transaction on the database and returns to state
191 ** OPEN after the read-transaction is completed. However a connection
192 ** running in locking_mode=exclusive (including temp databases) remains in
193 ** this state even after the read-transaction is closed. The only way
194 ** a locking_mode=exclusive connection can transition from READER to OPEN
195 ** is via the ERROR state (see below).
197 ** * A read transaction may be active (but a write-transaction cannot).
198 ** * A SHARED or greater lock is held on the database file.
199 ** * The dbSize variable may be trusted (even if a user-level read
200 ** transaction is not active). The dbOrigSize and dbFileSize variables
201 ** may not be trusted at this point.
202 ** * If the database is a WAL database, then the WAL connection is open.
203 ** * Even if a read-transaction is not open, it is guaranteed that
204 ** there is no hot-journal in the file-system.
206 ** WRITER_LOCKED:
208 ** The pager moves to this state from READER when a write-transaction
209 ** is first opened on the database. In WRITER_LOCKED state, all locks
210 ** required to start a write-transaction are held, but no actual
211 ** modifications to the cache or database have taken place.
213 ** In rollback mode, a RESERVED or (if the transaction was opened with
214 ** BEGIN EXCLUSIVE) EXCLUSIVE lock is obtained on the database file when
215 ** moving to this state, but the journal file is not written to or opened
216 ** to in this state. If the transaction is committed or rolled back while
217 ** in WRITER_LOCKED state, all that is required is to unlock the database
218 ** file.
220 ** IN WAL mode, WalBeginWriteTransaction() is called to lock the log file.
221 ** If the connection is running with locking_mode=exclusive, an attempt
222 ** is made to obtain an EXCLUSIVE lock on the database file.
224 ** * A write transaction is active.
225 ** * If the connection is open in rollback-mode, a RESERVED or greater
226 ** lock is held on the database file.
227 ** * If the connection is open in WAL-mode, a WAL write transaction
228 ** is open (i.e. sqlite3WalBeginWriteTransaction() has been successfully
229 ** called).
230 ** * The dbSize, dbOrigSize and dbFileSize variables are all valid.
231 ** * The contents of the pager cache have not been modified.
232 ** * The journal file may or may not be open.
233 ** * Nothing (not even the first header) has been written to the journal.
235 ** WRITER_CACHEMOD:
237 ** A pager moves from WRITER_LOCKED state to this state when a page is
238 ** first modified by the upper layer. In rollback mode the journal file
239 ** is opened (if it is not already open) and a header written to the
240 ** start of it. The database file on disk has not been modified.
242 ** * A write transaction is active.
243 ** * A RESERVED or greater lock is held on the database file.
244 ** * The journal file is open and the first header has been written
245 ** to it, but the header has not been synced to disk.
246 ** * The contents of the page cache have been modified.
248 ** WRITER_DBMOD:
250 ** The pager transitions from WRITER_CACHEMOD into WRITER_DBMOD state
251 ** when it modifies the contents of the database file. WAL connections
252 ** never enter this state (since they do not modify the database file,
253 ** just the log file).
255 ** * A write transaction is active.
256 ** * An EXCLUSIVE or greater lock is held on the database file.
257 ** * The journal file is open and the first header has been written
258 ** and synced to disk.
259 ** * The contents of the page cache have been modified (and possibly
260 ** written to disk).
262 ** WRITER_FINISHED:
264 ** It is not possible for a WAL connection to enter this state.
266 ** A rollback-mode pager changes to WRITER_FINISHED state from WRITER_DBMOD
267 ** state after the entire transaction has been successfully written into the
268 ** database file. In this state the transaction may be committed simply
269 ** by finalizing the journal file. Once in WRITER_FINISHED state, it is
270 ** not possible to modify the database further. At this point, the upper
271 ** layer must either commit or rollback the transaction.
273 ** * A write transaction is active.
274 ** * An EXCLUSIVE or greater lock is held on the database file.
275 ** * All writing and syncing of journal and database data has finished.
276 ** If no error occurred, all that remains is to finalize the journal to
277 ** commit the transaction. If an error did occur, the caller will need
278 ** to rollback the transaction.
280 ** ERROR:
282 ** The ERROR state is entered when an IO or disk-full error (including
283 ** SQLITE_IOERR_NOMEM) occurs at a point in the code that makes it
284 ** difficult to be sure that the in-memory pager state (cache contents,
285 ** db size etc.) are consistent with the contents of the file-system.
287 ** Temporary pager files may enter the ERROR state, but in-memory pagers
288 ** cannot.
290 ** For example, if an IO error occurs while performing a rollback,
291 ** the contents of the page-cache may be left in an inconsistent state.
292 ** At this point it would be dangerous to change back to READER state
293 ** (as usually happens after a rollback). Any subsequent readers might
294 ** report database corruption (due to the inconsistent cache), and if
295 ** they upgrade to writers, they may inadvertently corrupt the database
296 ** file. To avoid this hazard, the pager switches into the ERROR state
297 ** instead of READER following such an error.
299 ** Once it has entered the ERROR state, any attempt to use the pager
300 ** to read or write data returns an error. Eventually, once all
301 ** outstanding transactions have been abandoned, the pager is able to
302 ** transition back to OPEN state, discarding the contents of the
303 ** page-cache and any other in-memory state at the same time. Everything
304 ** is reloaded from disk (and, if necessary, hot-journal rollback peformed)
305 ** when a read-transaction is next opened on the pager (transitioning
306 ** the pager into READER state). At that point the system has recovered
307 ** from the error.
309 ** Specifically, the pager jumps into the ERROR state if:
311 ** 1. An error occurs while attempting a rollback. This happens in
312 ** function sqlite3PagerRollback().
314 ** 2. An error occurs while attempting to finalize a journal file
315 ** following a commit in function sqlite3PagerCommitPhaseTwo().
317 ** 3. An error occurs while attempting to write to the journal or
318 ** database file in function pagerStress() in order to free up
319 ** memory.
321 ** In other cases, the error is returned to the b-tree layer. The b-tree
322 ** layer then attempts a rollback operation. If the error condition
323 ** persists, the pager enters the ERROR state via condition (1) above.
325 ** Condition (3) is necessary because it can be triggered by a read-only
326 ** statement executed within a transaction. In this case, if the error
327 ** code were simply returned to the user, the b-tree layer would not
328 ** automatically attempt a rollback, as it assumes that an error in a
329 ** read-only statement cannot leave the pager in an internally inconsistent
330 ** state.
332 ** * The Pager.errCode variable is set to something other than SQLITE_OK.
333 ** * There are one or more outstanding references to pages (after the
334 ** last reference is dropped the pager should move back to OPEN state).
335 ** * The pager is not an in-memory pager.
338 ** Notes:
340 ** * A pager is never in WRITER_DBMOD or WRITER_FINISHED state if the
341 ** connection is open in WAL mode. A WAL connection is always in one
342 ** of the first four states.
344 ** * Normally, a connection open in exclusive mode is never in PAGER_OPEN
345 ** state. There are two exceptions: immediately after exclusive-mode has
346 ** been turned on (and before any read or write transactions are
347 ** executed), and when the pager is leaving the "error state".
349 ** * See also: assert_pager_state().
351 #define PAGER_OPEN 0
352 #define PAGER_READER 1
353 #define PAGER_WRITER_LOCKED 2
354 #define PAGER_WRITER_CACHEMOD 3
355 #define PAGER_WRITER_DBMOD 4
356 #define PAGER_WRITER_FINISHED 5
357 #define PAGER_ERROR 6
360 ** The Pager.eLock variable is almost always set to one of the
361 ** following locking-states, according to the lock currently held on
362 ** the database file: NO_LOCK, SHARED_LOCK, RESERVED_LOCK or EXCLUSIVE_LOCK.
363 ** This variable is kept up to date as locks are taken and released by
364 ** the pagerLockDb() and pagerUnlockDb() wrappers.
366 ** If the VFS xLock() or xUnlock() returns an error other than SQLITE_BUSY
367 ** (i.e. one of the SQLITE_IOERR subtypes), it is not clear whether or not
368 ** the operation was successful. In these circumstances pagerLockDb() and
369 ** pagerUnlockDb() take a conservative approach - eLock is always updated
370 ** when unlocking the file, and only updated when locking the file if the
371 ** VFS call is successful. This way, the Pager.eLock variable may be set
372 ** to a less exclusive (lower) value than the lock that is actually held
373 ** at the system level, but it is never set to a more exclusive value.
375 ** This is usually safe. If an xUnlock fails or appears to fail, there may
376 ** be a few redundant xLock() calls or a lock may be held for longer than
377 ** required, but nothing really goes wrong.
379 ** The exception is when the database file is unlocked as the pager moves
380 ** from ERROR to OPEN state. At this point there may be a hot-journal file
381 ** in the file-system that needs to be rolled back (as part of an OPEN->SHARED
382 ** transition, by the same pager or any other). If the call to xUnlock()
383 ** fails at this point and the pager is left holding an EXCLUSIVE lock, this
384 ** can confuse the call to xCheckReservedLock() call made later as part
385 ** of hot-journal detection.
387 ** xCheckReservedLock() is defined as returning true "if there is a RESERVED
388 ** lock held by this process or any others". So xCheckReservedLock may
389 ** return true because the caller itself is holding an EXCLUSIVE lock (but
390 ** doesn't know it because of a previous error in xUnlock). If this happens
391 ** a hot-journal may be mistaken for a journal being created by an active
392 ** transaction in another process, causing SQLite to read from the database
393 ** without rolling it back.
395 ** To work around this, if a call to xUnlock() fails when unlocking the
396 ** database in the ERROR state, Pager.eLock is set to UNKNOWN_LOCK. It
397 ** is only changed back to a real locking state after a successful call
398 ** to xLock(EXCLUSIVE). Also, the code to do the OPEN->SHARED state transition
399 ** omits the check for a hot-journal if Pager.eLock is set to UNKNOWN_LOCK
400 ** lock. Instead, it assumes a hot-journal exists and obtains an EXCLUSIVE
401 ** lock on the database file before attempting to roll it back. See function
402 ** PagerSharedLock() for more detail.
404 ** Pager.eLock may only be set to UNKNOWN_LOCK when the pager is in
405 ** PAGER_OPEN state.
407 #define UNKNOWN_LOCK (EXCLUSIVE_LOCK+1)
410 ** A macro used for invoking the codec if there is one
412 #ifdef SQLITE_HAS_CODEC
413 # define CODEC1(P,D,N,X,E) \
414 if( P->xCodec && P->xCodec(P->pCodec,D,N,X)==0 ){ E; }
415 # define CODEC2(P,D,N,X,E,O) \
416 if( P->xCodec==0 ){ O=(char*)D; }else \
417 if( (O=(char*)(P->xCodec(P->pCodec,D,N,X)))==0 ){ E; }
418 #else
419 # define CODEC1(P,D,N,X,E) /* NO-OP */
420 # define CODEC2(P,D,N,X,E,O) O=(char*)D
421 #endif
424 ** The maximum allowed sector size. 64KiB. If the xSectorsize() method
425 ** returns a value larger than this, then MAX_SECTOR_SIZE is used instead.
426 ** This could conceivably cause corruption following a power failure on
427 ** such a system. This is currently an undocumented limit.
429 #define MAX_SECTOR_SIZE 0x10000
433 ** An instance of the following structure is allocated for each active
434 ** savepoint and statement transaction in the system. All such structures
435 ** are stored in the Pager.aSavepoint[] array, which is allocated and
436 ** resized using sqlite3Realloc().
438 ** When a savepoint is created, the PagerSavepoint.iHdrOffset field is
439 ** set to 0. If a journal-header is written into the main journal while
440 ** the savepoint is active, then iHdrOffset is set to the byte offset
441 ** immediately following the last journal record written into the main
442 ** journal before the journal-header. This is required during savepoint
443 ** rollback (see pagerPlaybackSavepoint()).
445 typedef struct PagerSavepoint PagerSavepoint;
446 struct PagerSavepoint {
447 i64 iOffset; /* Starting offset in main journal */
448 i64 iHdrOffset; /* See above */
449 Bitvec *pInSavepoint; /* Set of pages in this savepoint */
450 Pgno nOrig; /* Original number of pages in file */
451 Pgno iSubRec; /* Index of first record in sub-journal */
452 #ifndef SQLITE_OMIT_WAL
453 u32 aWalData[WAL_SAVEPOINT_NDATA]; /* WAL savepoint context */
454 #endif
458 ** Bits of the Pager.doNotSpill flag. See further description below.
460 #define SPILLFLAG_OFF 0x01 /* Never spill cache. Set via pragma */
461 #define SPILLFLAG_ROLLBACK 0x02 /* Current rolling back, so do not spill */
462 #define SPILLFLAG_NOSYNC 0x04 /* Spill is ok, but do not sync */
465 ** An open page cache is an instance of struct Pager. A description of
466 ** some of the more important member variables follows:
468 ** eState
470 ** The current 'state' of the pager object. See the comment and state
471 ** diagram above for a description of the pager state.
473 ** eLock
475 ** For a real on-disk database, the current lock held on the database file -
476 ** NO_LOCK, SHARED_LOCK, RESERVED_LOCK or EXCLUSIVE_LOCK.
478 ** For a temporary or in-memory database (neither of which require any
479 ** locks), this variable is always set to EXCLUSIVE_LOCK. Since such
480 ** databases always have Pager.exclusiveMode==1, this tricks the pager
481 ** logic into thinking that it already has all the locks it will ever
482 ** need (and no reason to release them).
484 ** In some (obscure) circumstances, this variable may also be set to
485 ** UNKNOWN_LOCK. See the comment above the #define of UNKNOWN_LOCK for
486 ** details.
488 ** changeCountDone
490 ** This boolean variable is used to make sure that the change-counter
491 ** (the 4-byte header field at byte offset 24 of the database file) is
492 ** not updated more often than necessary.
494 ** It is set to true when the change-counter field is updated, which
495 ** can only happen if an exclusive lock is held on the database file.
496 ** It is cleared (set to false) whenever an exclusive lock is
497 ** relinquished on the database file. Each time a transaction is committed,
498 ** The changeCountDone flag is inspected. If it is true, the work of
499 ** updating the change-counter is omitted for the current transaction.
501 ** This mechanism means that when running in exclusive mode, a connection
502 ** need only update the change-counter once, for the first transaction
503 ** committed.
505 ** setMaster
507 ** When PagerCommitPhaseOne() is called to commit a transaction, it may
508 ** (or may not) specify a master-journal name to be written into the
509 ** journal file before it is synced to disk.
511 ** Whether or not a journal file contains a master-journal pointer affects
512 ** the way in which the journal file is finalized after the transaction is
513 ** committed or rolled back when running in "journal_mode=PERSIST" mode.
514 ** If a journal file does not contain a master-journal pointer, it is
515 ** finalized by overwriting the first journal header with zeroes. If
516 ** it does contain a master-journal pointer the journal file is finalized
517 ** by truncating it to zero bytes, just as if the connection were
518 ** running in "journal_mode=truncate" mode.
520 ** Journal files that contain master journal pointers cannot be finalized
521 ** simply by overwriting the first journal-header with zeroes, as the
522 ** master journal pointer could interfere with hot-journal rollback of any
523 ** subsequently interrupted transaction that reuses the journal file.
525 ** The flag is cleared as soon as the journal file is finalized (either
526 ** by PagerCommitPhaseTwo or PagerRollback). If an IO error prevents the
527 ** journal file from being successfully finalized, the setMaster flag
528 ** is cleared anyway (and the pager will move to ERROR state).
530 ** doNotSpill
532 ** This variables control the behavior of cache-spills (calls made by
533 ** the pcache module to the pagerStress() routine to write cached data
534 ** to the file-system in order to free up memory).
536 ** When bits SPILLFLAG_OFF or SPILLFLAG_ROLLBACK of doNotSpill are set,
537 ** writing to the database from pagerStress() is disabled altogether.
538 ** The SPILLFLAG_ROLLBACK case is done in a very obscure case that
539 ** comes up during savepoint rollback that requires the pcache module
540 ** to allocate a new page to prevent the journal file from being written
541 ** while it is being traversed by code in pager_playback(). The SPILLFLAG_OFF
542 ** case is a user preference.
544 ** If the SPILLFLAG_NOSYNC bit is set, writing to the database from
545 ** pagerStress() is permitted, but syncing the journal file is not.
546 ** This flag is set by sqlite3PagerWrite() when the file-system sector-size
547 ** is larger than the database page-size in order to prevent a journal sync
548 ** from happening in between the journalling of two pages on the same sector.
550 ** subjInMemory
552 ** This is a boolean variable. If true, then any required sub-journal
553 ** is opened as an in-memory journal file. If false, then in-memory
554 ** sub-journals are only used for in-memory pager files.
556 ** This variable is updated by the upper layer each time a new
557 ** write-transaction is opened.
559 ** dbSize, dbOrigSize, dbFileSize
561 ** Variable dbSize is set to the number of pages in the database file.
562 ** It is valid in PAGER_READER and higher states (all states except for
563 ** OPEN and ERROR).
565 ** dbSize is set based on the size of the database file, which may be
566 ** larger than the size of the database (the value stored at offset
567 ** 28 of the database header by the btree). If the size of the file
568 ** is not an integer multiple of the page-size, the value stored in
569 ** dbSize is rounded down (i.e. a 5KB file with 2K page-size has dbSize==2).
570 ** Except, any file that is greater than 0 bytes in size is considered
571 ** to have at least one page. (i.e. a 1KB file with 2K page-size leads
572 ** to dbSize==1).
574 ** During a write-transaction, if pages with page-numbers greater than
575 ** dbSize are modified in the cache, dbSize is updated accordingly.
576 ** Similarly, if the database is truncated using PagerTruncateImage(),
577 ** dbSize is updated.
579 ** Variables dbOrigSize and dbFileSize are valid in states
580 ** PAGER_WRITER_LOCKED and higher. dbOrigSize is a copy of the dbSize
581 ** variable at the start of the transaction. It is used during rollback,
582 ** and to determine whether or not pages need to be journalled before
583 ** being modified.
585 ** Throughout a write-transaction, dbFileSize contains the size of
586 ** the file on disk in pages. It is set to a copy of dbSize when the
587 ** write-transaction is first opened, and updated when VFS calls are made
588 ** to write or truncate the database file on disk.
590 ** The only reason the dbFileSize variable is required is to suppress
591 ** unnecessary calls to xTruncate() after committing a transaction. If,
592 ** when a transaction is committed, the dbFileSize variable indicates
593 ** that the database file is larger than the database image (Pager.dbSize),
594 ** pager_truncate() is called. The pager_truncate() call uses xFilesize()
595 ** to measure the database file on disk, and then truncates it if required.
596 ** dbFileSize is not used when rolling back a transaction. In this case
597 ** pager_truncate() is called unconditionally (which means there may be
598 ** a call to xFilesize() that is not strictly required). In either case,
599 ** pager_truncate() may cause the file to become smaller or larger.
601 ** dbHintSize
603 ** The dbHintSize variable is used to limit the number of calls made to
604 ** the VFS xFileControl(FCNTL_SIZE_HINT) method.
606 ** dbHintSize is set to a copy of the dbSize variable when a
607 ** write-transaction is opened (at the same time as dbFileSize and
608 ** dbOrigSize). If the xFileControl(FCNTL_SIZE_HINT) method is called,
609 ** dbHintSize is increased to the number of pages that correspond to the
610 ** size-hint passed to the method call. See pager_write_pagelist() for
611 ** details.
613 ** errCode
615 ** The Pager.errCode variable is only ever used in PAGER_ERROR state. It
616 ** is set to zero in all other states. In PAGER_ERROR state, Pager.errCode
617 ** is always set to SQLITE_FULL, SQLITE_IOERR or one of the SQLITE_IOERR_XXX
618 ** sub-codes.
620 ** syncFlags, walSyncFlags
622 ** syncFlags is either SQLITE_SYNC_NORMAL (0x02) or SQLITE_SYNC_FULL (0x03).
623 ** syncFlags is used for rollback mode. walSyncFlags is used for WAL mode
624 ** and contains the flags used to sync the checkpoint operations in the
625 ** lower two bits, and sync flags used for transaction commits in the WAL
626 ** file in bits 0x04 and 0x08. In other words, to get the correct sync flags
627 ** for checkpoint operations, use (walSyncFlags&0x03) and to get the correct
628 ** sync flags for transaction commit, use ((walSyncFlags>>2)&0x03). Note
629 ** that with synchronous=NORMAL in WAL mode, transaction commit is not synced
630 ** meaning that the 0x04 and 0x08 bits are both zero.
632 struct Pager {
633 sqlite3_vfs *pVfs; /* OS functions to use for IO */
634 u8 exclusiveMode; /* Boolean. True if locking_mode==EXCLUSIVE */
635 u8 journalMode; /* One of the PAGER_JOURNALMODE_* values */
636 u8 useJournal; /* Use a rollback journal on this file */
637 u8 noSync; /* Do not sync the journal if true */
638 u8 fullSync; /* Do extra syncs of the journal for robustness */
639 u8 extraSync; /* sync directory after journal delete */
640 u8 syncFlags; /* SYNC_NORMAL or SYNC_FULL otherwise */
641 u8 walSyncFlags; /* See description above */
642 u8 tempFile; /* zFilename is a temporary or immutable file */
643 u8 noLock; /* Do not lock (except in WAL mode) */
644 u8 readOnly; /* True for a read-only database */
645 u8 memDb; /* True to inhibit all file I/O */
647 /**************************************************************************
648 ** The following block contains those class members that change during
649 ** routine operation. Class members not in this block are either fixed
650 ** when the pager is first created or else only change when there is a
651 ** significant mode change (such as changing the page_size, locking_mode,
652 ** or the journal_mode). From another view, these class members describe
653 ** the "state" of the pager, while other class members describe the
654 ** "configuration" of the pager.
656 u8 eState; /* Pager state (OPEN, READER, WRITER_LOCKED..) */
657 u8 eLock; /* Current lock held on database file */
658 u8 changeCountDone; /* Set after incrementing the change-counter */
659 u8 setMaster; /* True if a m-j name has been written to jrnl */
660 u8 doNotSpill; /* Do not spill the cache when non-zero */
661 u8 subjInMemory; /* True to use in-memory sub-journals */
662 u8 bUseFetch; /* True to use xFetch() */
663 u8 hasHeldSharedLock; /* True if a shared lock has ever been held */
664 Pgno dbSize; /* Number of pages in the database */
665 Pgno dbOrigSize; /* dbSize before the current transaction */
666 Pgno dbFileSize; /* Number of pages in the database file */
667 Pgno dbHintSize; /* Value passed to FCNTL_SIZE_HINT call */
668 int errCode; /* One of several kinds of errors */
669 int nRec; /* Pages journalled since last j-header written */
670 u32 cksumInit; /* Quasi-random value added to every checksum */
671 u32 nSubRec; /* Number of records written to sub-journal */
672 Bitvec *pInJournal; /* One bit for each page in the database file */
673 sqlite3_file *fd; /* File descriptor for database */
674 sqlite3_file *jfd; /* File descriptor for main journal */
675 sqlite3_file *sjfd; /* File descriptor for sub-journal */
676 i64 journalOff; /* Current write offset in the journal file */
677 i64 journalHdr; /* Byte offset to previous journal header */
678 sqlite3_backup *pBackup; /* Pointer to list of ongoing backup processes */
679 PagerSavepoint *aSavepoint; /* Array of active savepoints */
680 int nSavepoint; /* Number of elements in aSavepoint[] */
681 u32 iDataVersion; /* Changes whenever database content changes */
682 char dbFileVers[16]; /* Changes whenever database file changes */
684 int nMmapOut; /* Number of mmap pages currently outstanding */
685 sqlite3_int64 szMmap; /* Desired maximum mmap size */
686 PgHdr *pMmapFreelist; /* List of free mmap page headers (pDirty) */
688 ** End of the routinely-changing class members
689 ***************************************************************************/
691 u16 nExtra; /* Add this many bytes to each in-memory page */
692 i16 nReserve; /* Number of unused bytes at end of each page */
693 u32 vfsFlags; /* Flags for sqlite3_vfs.xOpen() */
694 u32 sectorSize; /* Assumed sector size during rollback */
695 int pageSize; /* Number of bytes in a page */
696 Pgno mxPgno; /* Maximum allowed size of the database */
697 i64 journalSizeLimit; /* Size limit for persistent journal files */
698 char *zFilename; /* Name of the database file */
699 char *zJournal; /* Name of the journal file */
700 int (*xBusyHandler)(void*); /* Function to call when busy */
701 void *pBusyHandlerArg; /* Context argument for xBusyHandler */
702 int aStat[4]; /* Total cache hits, misses, writes, spills */
703 #ifdef SQLITE_TEST
704 int nRead; /* Database pages read */
705 #endif
706 void (*xReiniter)(DbPage*); /* Call this routine when reloading pages */
707 int (*xGet)(Pager*,Pgno,DbPage**,int); /* Routine to fetch a patch */
708 #ifdef SQLITE_HAS_CODEC
709 void *(*xCodec)(void*,void*,Pgno,int); /* Routine for en/decoding data */
710 void (*xCodecSizeChng)(void*,int,int); /* Notify of page size changes */
711 void (*xCodecFree)(void*); /* Destructor for the codec */
712 void *pCodec; /* First argument to xCodec... methods */
713 #endif
714 char *pTmpSpace; /* Pager.pageSize bytes of space for tmp use */
715 PCache *pPCache; /* Pointer to page cache object */
716 #ifndef SQLITE_OMIT_WAL
717 Wal *pWal; /* Write-ahead log used by "journal_mode=wal" */
718 char *zWal; /* File name for write-ahead log */
719 #endif
723 ** Indexes for use with Pager.aStat[]. The Pager.aStat[] array contains
724 ** the values accessed by passing SQLITE_DBSTATUS_CACHE_HIT, CACHE_MISS
725 ** or CACHE_WRITE to sqlite3_db_status().
727 #define PAGER_STAT_HIT 0
728 #define PAGER_STAT_MISS 1
729 #define PAGER_STAT_WRITE 2
730 #define PAGER_STAT_SPILL 3
733 ** The following global variables hold counters used for
734 ** testing purposes only. These variables do not exist in
735 ** a non-testing build. These variables are not thread-safe.
737 #ifdef SQLITE_TEST
738 int sqlite3_pager_readdb_count = 0; /* Number of full pages read from DB */
739 int sqlite3_pager_writedb_count = 0; /* Number of full pages written to DB */
740 int sqlite3_pager_writej_count = 0; /* Number of pages written to journal */
741 # define PAGER_INCR(v) v++
742 #else
743 # define PAGER_INCR(v)
744 #endif
749 ** Journal files begin with the following magic string. The data
750 ** was obtained from /dev/random. It is used only as a sanity check.
752 ** Since version 2.8.0, the journal format contains additional sanity
753 ** checking information. If the power fails while the journal is being
754 ** written, semi-random garbage data might appear in the journal
755 ** file after power is restored. If an attempt is then made
756 ** to roll the journal back, the database could be corrupted. The additional
757 ** sanity checking data is an attempt to discover the garbage in the
758 ** journal and ignore it.
760 ** The sanity checking information for the new journal format consists
761 ** of a 32-bit checksum on each page of data. The checksum covers both
762 ** the page number and the pPager->pageSize bytes of data for the page.
763 ** This cksum is initialized to a 32-bit random value that appears in the
764 ** journal file right after the header. The random initializer is important,
765 ** because garbage data that appears at the end of a journal is likely
766 ** data that was once in other files that have now been deleted. If the
767 ** garbage data came from an obsolete journal file, the checksums might
768 ** be correct. But by initializing the checksum to random value which
769 ** is different for every journal, we minimize that risk.
771 static const unsigned char aJournalMagic[] = {
772 0xd9, 0xd5, 0x05, 0xf9, 0x20, 0xa1, 0x63, 0xd7,
776 ** The size of the of each page record in the journal is given by
777 ** the following macro.
779 #define JOURNAL_PG_SZ(pPager) ((pPager->pageSize) + 8)
782 ** The journal header size for this pager. This is usually the same
783 ** size as a single disk sector. See also setSectorSize().
785 #define JOURNAL_HDR_SZ(pPager) (pPager->sectorSize)
788 ** The macro MEMDB is true if we are dealing with an in-memory database.
789 ** We do this as a macro so that if the SQLITE_OMIT_MEMORYDB macro is set,
790 ** the value of MEMDB will be a constant and the compiler will optimize
791 ** out code that would never execute.
793 #ifdef SQLITE_OMIT_MEMORYDB
794 # define MEMDB 0
795 #else
796 # define MEMDB pPager->memDb
797 #endif
800 ** The macro USEFETCH is true if we are allowed to use the xFetch and xUnfetch
801 ** interfaces to access the database using memory-mapped I/O.
803 #if SQLITE_MAX_MMAP_SIZE>0
804 # define USEFETCH(x) ((x)->bUseFetch)
805 #else
806 # define USEFETCH(x) 0
807 #endif
810 ** The maximum legal page number is (2^31 - 1).
812 #define PAGER_MAX_PGNO 2147483647
815 ** The argument to this macro is a file descriptor (type sqlite3_file*).
816 ** Return 0 if it is not open, or non-zero (but not 1) if it is.
818 ** This is so that expressions can be written as:
820 ** if( isOpen(pPager->jfd) ){ ...
822 ** instead of
824 ** if( pPager->jfd->pMethods ){ ...
826 #define isOpen(pFd) ((pFd)->pMethods!=0)
829 ** Return true if this pager uses a write-ahead log to read page pgno.
830 ** Return false if the pager reads pgno directly from the database.
832 #if !defined(SQLITE_OMIT_WAL) && defined(SQLITE_DIRECT_OVERFLOW_READ)
833 int sqlite3PagerUseWal(Pager *pPager, Pgno pgno){
834 u32 iRead = 0;
835 int rc;
836 if( pPager->pWal==0 ) return 0;
837 rc = sqlite3WalFindFrame(pPager->pWal, pgno, &iRead);
838 return rc || iRead;
840 #endif
841 #ifndef SQLITE_OMIT_WAL
842 # define pagerUseWal(x) ((x)->pWal!=0)
843 #else
844 # define pagerUseWal(x) 0
845 # define pagerRollbackWal(x) 0
846 # define pagerWalFrames(v,w,x,y) 0
847 # define pagerOpenWalIfPresent(z) SQLITE_OK
848 # define pagerBeginReadTransaction(z) SQLITE_OK
849 #endif
851 #ifndef NDEBUG
853 ** Usage:
855 ** assert( assert_pager_state(pPager) );
857 ** This function runs many asserts to try to find inconsistencies in
858 ** the internal state of the Pager object.
860 static int assert_pager_state(Pager *p){
861 Pager *pPager = p;
863 /* State must be valid. */
864 assert( p->eState==PAGER_OPEN
865 || p->eState==PAGER_READER
866 || p->eState==PAGER_WRITER_LOCKED
867 || p->eState==PAGER_WRITER_CACHEMOD
868 || p->eState==PAGER_WRITER_DBMOD
869 || p->eState==PAGER_WRITER_FINISHED
870 || p->eState==PAGER_ERROR
873 /* Regardless of the current state, a temp-file connection always behaves
874 ** as if it has an exclusive lock on the database file. It never updates
875 ** the change-counter field, so the changeCountDone flag is always set.
877 assert( p->tempFile==0 || p->eLock==EXCLUSIVE_LOCK );
878 assert( p->tempFile==0 || pPager->changeCountDone );
880 /* If the useJournal flag is clear, the journal-mode must be "OFF".
881 ** And if the journal-mode is "OFF", the journal file must not be open.
883 assert( p->journalMode==PAGER_JOURNALMODE_OFF || p->useJournal );
884 assert( p->journalMode!=PAGER_JOURNALMODE_OFF || !isOpen(p->jfd) );
886 /* Check that MEMDB implies noSync. And an in-memory journal. Since
887 ** this means an in-memory pager performs no IO at all, it cannot encounter
888 ** either SQLITE_IOERR or SQLITE_FULL during rollback or while finalizing
889 ** a journal file. (although the in-memory journal implementation may
890 ** return SQLITE_IOERR_NOMEM while the journal file is being written). It
891 ** is therefore not possible for an in-memory pager to enter the ERROR
892 ** state.
894 if( MEMDB ){
895 assert( !isOpen(p->fd) );
896 assert( p->noSync );
897 assert( p->journalMode==PAGER_JOURNALMODE_OFF
898 || p->journalMode==PAGER_JOURNALMODE_MEMORY
900 assert( p->eState!=PAGER_ERROR && p->eState!=PAGER_OPEN );
901 assert( pagerUseWal(p)==0 );
904 /* If changeCountDone is set, a RESERVED lock or greater must be held
905 ** on the file.
907 assert( pPager->changeCountDone==0 || pPager->eLock>=RESERVED_LOCK );
908 assert( p->eLock!=PENDING_LOCK );
910 switch( p->eState ){
911 case PAGER_OPEN:
912 assert( !MEMDB );
913 assert( pPager->errCode==SQLITE_OK );
914 assert( sqlite3PcacheRefCount(pPager->pPCache)==0 || pPager->tempFile );
915 break;
917 case PAGER_READER:
918 assert( pPager->errCode==SQLITE_OK );
919 assert( p->eLock!=UNKNOWN_LOCK );
920 assert( p->eLock>=SHARED_LOCK );
921 break;
923 case PAGER_WRITER_LOCKED:
924 assert( p->eLock!=UNKNOWN_LOCK );
925 assert( pPager->errCode==SQLITE_OK );
926 if( !pagerUseWal(pPager) ){
927 assert( p->eLock>=RESERVED_LOCK );
929 assert( pPager->dbSize==pPager->dbOrigSize );
930 assert( pPager->dbOrigSize==pPager->dbFileSize );
931 assert( pPager->dbOrigSize==pPager->dbHintSize );
932 assert( pPager->setMaster==0 );
933 break;
935 case PAGER_WRITER_CACHEMOD:
936 assert( p->eLock!=UNKNOWN_LOCK );
937 assert( pPager->errCode==SQLITE_OK );
938 if( !pagerUseWal(pPager) ){
939 /* It is possible that if journal_mode=wal here that neither the
940 ** journal file nor the WAL file are open. This happens during
941 ** a rollback transaction that switches from journal_mode=off
942 ** to journal_mode=wal.
944 assert( p->eLock>=RESERVED_LOCK );
945 assert( isOpen(p->jfd)
946 || p->journalMode==PAGER_JOURNALMODE_OFF
947 || p->journalMode==PAGER_JOURNALMODE_WAL
950 assert( pPager->dbOrigSize==pPager->dbFileSize );
951 assert( pPager->dbOrigSize==pPager->dbHintSize );
952 break;
954 case PAGER_WRITER_DBMOD:
955 assert( p->eLock==EXCLUSIVE_LOCK );
956 assert( pPager->errCode==SQLITE_OK );
957 assert( !pagerUseWal(pPager) );
958 assert( p->eLock>=EXCLUSIVE_LOCK );
959 assert( isOpen(p->jfd)
960 || p->journalMode==PAGER_JOURNALMODE_OFF
961 || p->journalMode==PAGER_JOURNALMODE_WAL
962 || (sqlite3OsDeviceCharacteristics(p->fd)&SQLITE_IOCAP_BATCH_ATOMIC)
964 assert( pPager->dbOrigSize<=pPager->dbHintSize );
965 break;
967 case PAGER_WRITER_FINISHED:
968 assert( p->eLock==EXCLUSIVE_LOCK );
969 assert( pPager->errCode==SQLITE_OK );
970 assert( !pagerUseWal(pPager) );
971 assert( isOpen(p->jfd)
972 || p->journalMode==PAGER_JOURNALMODE_OFF
973 || p->journalMode==PAGER_JOURNALMODE_WAL
974 || (sqlite3OsDeviceCharacteristics(p->fd)&SQLITE_IOCAP_BATCH_ATOMIC)
976 break;
978 case PAGER_ERROR:
979 /* There must be at least one outstanding reference to the pager if
980 ** in ERROR state. Otherwise the pager should have already dropped
981 ** back to OPEN state.
983 assert( pPager->errCode!=SQLITE_OK );
984 assert( sqlite3PcacheRefCount(pPager->pPCache)>0 || pPager->tempFile );
985 break;
988 return 1;
990 #endif /* ifndef NDEBUG */
992 #ifdef SQLITE_DEBUG
994 ** Return a pointer to a human readable string in a static buffer
995 ** containing the state of the Pager object passed as an argument. This
996 ** is intended to be used within debuggers. For example, as an alternative
997 ** to "print *pPager" in gdb:
999 ** (gdb) printf "%s", print_pager_state(pPager)
1001 static char *print_pager_state(Pager *p){
1002 static char zRet[1024];
1004 sqlite3_snprintf(1024, zRet,
1005 "Filename: %s\n"
1006 "State: %s errCode=%d\n"
1007 "Lock: %s\n"
1008 "Locking mode: locking_mode=%s\n"
1009 "Journal mode: journal_mode=%s\n"
1010 "Backing store: tempFile=%d memDb=%d useJournal=%d\n"
1011 "Journal: journalOff=%lld journalHdr=%lld\n"
1012 "Size: dbsize=%d dbOrigSize=%d dbFileSize=%d\n"
1013 , p->zFilename
1014 , p->eState==PAGER_OPEN ? "OPEN" :
1015 p->eState==PAGER_READER ? "READER" :
1016 p->eState==PAGER_WRITER_LOCKED ? "WRITER_LOCKED" :
1017 p->eState==PAGER_WRITER_CACHEMOD ? "WRITER_CACHEMOD" :
1018 p->eState==PAGER_WRITER_DBMOD ? "WRITER_DBMOD" :
1019 p->eState==PAGER_WRITER_FINISHED ? "WRITER_FINISHED" :
1020 p->eState==PAGER_ERROR ? "ERROR" : "?error?"
1021 , (int)p->errCode
1022 , p->eLock==NO_LOCK ? "NO_LOCK" :
1023 p->eLock==RESERVED_LOCK ? "RESERVED" :
1024 p->eLock==EXCLUSIVE_LOCK ? "EXCLUSIVE" :
1025 p->eLock==SHARED_LOCK ? "SHARED" :
1026 p->eLock==UNKNOWN_LOCK ? "UNKNOWN" : "?error?"
1027 , p->exclusiveMode ? "exclusive" : "normal"
1028 , p->journalMode==PAGER_JOURNALMODE_MEMORY ? "memory" :
1029 p->journalMode==PAGER_JOURNALMODE_OFF ? "off" :
1030 p->journalMode==PAGER_JOURNALMODE_DELETE ? "delete" :
1031 p->journalMode==PAGER_JOURNALMODE_PERSIST ? "persist" :
1032 p->journalMode==PAGER_JOURNALMODE_TRUNCATE ? "truncate" :
1033 p->journalMode==PAGER_JOURNALMODE_WAL ? "wal" : "?error?"
1034 , (int)p->tempFile, (int)p->memDb, (int)p->useJournal
1035 , p->journalOff, p->journalHdr
1036 , (int)p->dbSize, (int)p->dbOrigSize, (int)p->dbFileSize
1039 return zRet;
1041 #endif
1043 /* Forward references to the various page getters */
1044 static int getPageNormal(Pager*,Pgno,DbPage**,int);
1045 static int getPageError(Pager*,Pgno,DbPage**,int);
1046 #if SQLITE_MAX_MMAP_SIZE>0
1047 static int getPageMMap(Pager*,Pgno,DbPage**,int);
1048 #endif
1051 ** Set the Pager.xGet method for the appropriate routine used to fetch
1052 ** content from the pager.
1054 static void setGetterMethod(Pager *pPager){
1055 if( pPager->errCode ){
1056 pPager->xGet = getPageError;
1057 #if SQLITE_MAX_MMAP_SIZE>0
1058 }else if( USEFETCH(pPager)
1059 #ifdef SQLITE_HAS_CODEC
1060 && pPager->xCodec==0
1061 #endif
1063 pPager->xGet = getPageMMap;
1064 #endif /* SQLITE_MAX_MMAP_SIZE>0 */
1065 }else{
1066 pPager->xGet = getPageNormal;
1071 ** Return true if it is necessary to write page *pPg into the sub-journal.
1072 ** A page needs to be written into the sub-journal if there exists one
1073 ** or more open savepoints for which:
1075 ** * The page-number is less than or equal to PagerSavepoint.nOrig, and
1076 ** * The bit corresponding to the page-number is not set in
1077 ** PagerSavepoint.pInSavepoint.
1079 static int subjRequiresPage(PgHdr *pPg){
1080 Pager *pPager = pPg->pPager;
1081 PagerSavepoint *p;
1082 Pgno pgno = pPg->pgno;
1083 int i;
1084 for(i=0; i<pPager->nSavepoint; i++){
1085 p = &pPager->aSavepoint[i];
1086 if( p->nOrig>=pgno && 0==sqlite3BitvecTestNotNull(p->pInSavepoint, pgno) ){
1087 return 1;
1090 return 0;
1093 #ifdef SQLITE_DEBUG
1095 ** Return true if the page is already in the journal file.
1097 static int pageInJournal(Pager *pPager, PgHdr *pPg){
1098 return sqlite3BitvecTest(pPager->pInJournal, pPg->pgno);
1100 #endif
1103 ** Read a 32-bit integer from the given file descriptor. Store the integer
1104 ** that is read in *pRes. Return SQLITE_OK if everything worked, or an
1105 ** error code is something goes wrong.
1107 ** All values are stored on disk as big-endian.
1109 static int read32bits(sqlite3_file *fd, i64 offset, u32 *pRes){
1110 unsigned char ac[4];
1111 int rc = sqlite3OsRead(fd, ac, sizeof(ac), offset);
1112 if( rc==SQLITE_OK ){
1113 *pRes = sqlite3Get4byte(ac);
1115 return rc;
1119 ** Write a 32-bit integer into a string buffer in big-endian byte order.
1121 #define put32bits(A,B) sqlite3Put4byte((u8*)A,B)
1125 ** Write a 32-bit integer into the given file descriptor. Return SQLITE_OK
1126 ** on success or an error code is something goes wrong.
1128 static int write32bits(sqlite3_file *fd, i64 offset, u32 val){
1129 char ac[4];
1130 put32bits(ac, val);
1131 return sqlite3OsWrite(fd, ac, 4, offset);
1135 ** Unlock the database file to level eLock, which must be either NO_LOCK
1136 ** or SHARED_LOCK. Regardless of whether or not the call to xUnlock()
1137 ** succeeds, set the Pager.eLock variable to match the (attempted) new lock.
1139 ** Except, if Pager.eLock is set to UNKNOWN_LOCK when this function is
1140 ** called, do not modify it. See the comment above the #define of
1141 ** UNKNOWN_LOCK for an explanation of this.
1143 static int pagerUnlockDb(Pager *pPager, int eLock){
1144 int rc = SQLITE_OK;
1146 assert( !pPager->exclusiveMode || pPager->eLock==eLock );
1147 assert( eLock==NO_LOCK || eLock==SHARED_LOCK );
1148 assert( eLock!=NO_LOCK || pagerUseWal(pPager)==0 );
1149 if( isOpen(pPager->fd) ){
1150 assert( pPager->eLock>=eLock );
1151 rc = pPager->noLock ? SQLITE_OK : sqlite3OsUnlock(pPager->fd, eLock);
1152 if( pPager->eLock!=UNKNOWN_LOCK ){
1153 pPager->eLock = (u8)eLock;
1155 IOTRACE(("UNLOCK %p %d\n", pPager, eLock))
1157 return rc;
1161 ** Lock the database file to level eLock, which must be either SHARED_LOCK,
1162 ** RESERVED_LOCK or EXCLUSIVE_LOCK. If the caller is successful, set the
1163 ** Pager.eLock variable to the new locking state.
1165 ** Except, if Pager.eLock is set to UNKNOWN_LOCK when this function is
1166 ** called, do not modify it unless the new locking state is EXCLUSIVE_LOCK.
1167 ** See the comment above the #define of UNKNOWN_LOCK for an explanation
1168 ** of this.
1170 static int pagerLockDb(Pager *pPager, int eLock){
1171 int rc = SQLITE_OK;
1173 assert( eLock==SHARED_LOCK || eLock==RESERVED_LOCK || eLock==EXCLUSIVE_LOCK );
1174 if( pPager->eLock<eLock || pPager->eLock==UNKNOWN_LOCK ){
1175 rc = pPager->noLock ? SQLITE_OK : sqlite3OsLock(pPager->fd, eLock);
1176 if( rc==SQLITE_OK && (pPager->eLock!=UNKNOWN_LOCK||eLock==EXCLUSIVE_LOCK) ){
1177 pPager->eLock = (u8)eLock;
1178 IOTRACE(("LOCK %p %d\n", pPager, eLock))
1181 return rc;
1185 ** This function determines whether or not the atomic-write or
1186 ** atomic-batch-write optimizations can be used with this pager. The
1187 ** atomic-write optimization can be used if:
1189 ** (a) the value returned by OsDeviceCharacteristics() indicates that
1190 ** a database page may be written atomically, and
1191 ** (b) the value returned by OsSectorSize() is less than or equal
1192 ** to the page size.
1194 ** If it can be used, then the value returned is the size of the journal
1195 ** file when it contains rollback data for exactly one page.
1197 ** The atomic-batch-write optimization can be used if OsDeviceCharacteristics()
1198 ** returns a value with the SQLITE_IOCAP_BATCH_ATOMIC bit set. -1 is
1199 ** returned in this case.
1201 ** If neither optimization can be used, 0 is returned.
1203 static int jrnlBufferSize(Pager *pPager){
1204 assert( !MEMDB );
1206 #if defined(SQLITE_ENABLE_ATOMIC_WRITE) \
1207 || defined(SQLITE_ENABLE_BATCH_ATOMIC_WRITE)
1208 int dc; /* Device characteristics */
1210 assert( isOpen(pPager->fd) );
1211 dc = sqlite3OsDeviceCharacteristics(pPager->fd);
1212 #else
1213 UNUSED_PARAMETER(pPager);
1214 #endif
1216 #ifdef SQLITE_ENABLE_BATCH_ATOMIC_WRITE
1217 if( pPager->dbSize>0 && (dc&SQLITE_IOCAP_BATCH_ATOMIC) ){
1218 return -1;
1220 #endif
1222 #ifdef SQLITE_ENABLE_ATOMIC_WRITE
1224 int nSector = pPager->sectorSize;
1225 int szPage = pPager->pageSize;
1227 assert(SQLITE_IOCAP_ATOMIC512==(512>>8));
1228 assert(SQLITE_IOCAP_ATOMIC64K==(65536>>8));
1229 if( 0==(dc&(SQLITE_IOCAP_ATOMIC|(szPage>>8)) || nSector>szPage) ){
1230 return 0;
1234 return JOURNAL_HDR_SZ(pPager) + JOURNAL_PG_SZ(pPager);
1235 #endif
1237 return 0;
1241 ** If SQLITE_CHECK_PAGES is defined then we do some sanity checking
1242 ** on the cache using a hash function. This is used for testing
1243 ** and debugging only.
1245 #ifdef SQLITE_CHECK_PAGES
1247 ** Return a 32-bit hash of the page data for pPage.
1249 static u32 pager_datahash(int nByte, unsigned char *pData){
1250 u32 hash = 0;
1251 int i;
1252 for(i=0; i<nByte; i++){
1253 hash = (hash*1039) + pData[i];
1255 return hash;
1257 static u32 pager_pagehash(PgHdr *pPage){
1258 return pager_datahash(pPage->pPager->pageSize, (unsigned char *)pPage->pData);
1260 static void pager_set_pagehash(PgHdr *pPage){
1261 pPage->pageHash = pager_pagehash(pPage);
1265 ** The CHECK_PAGE macro takes a PgHdr* as an argument. If SQLITE_CHECK_PAGES
1266 ** is defined, and NDEBUG is not defined, an assert() statement checks
1267 ** that the page is either dirty or still matches the calculated page-hash.
1269 #define CHECK_PAGE(x) checkPage(x)
1270 static void checkPage(PgHdr *pPg){
1271 Pager *pPager = pPg->pPager;
1272 assert( pPager->eState!=PAGER_ERROR );
1273 assert( (pPg->flags&PGHDR_DIRTY) || pPg->pageHash==pager_pagehash(pPg) );
1276 #else
1277 #define pager_datahash(X,Y) 0
1278 #define pager_pagehash(X) 0
1279 #define pager_set_pagehash(X)
1280 #define CHECK_PAGE(x)
1281 #endif /* SQLITE_CHECK_PAGES */
1284 ** When this is called the journal file for pager pPager must be open.
1285 ** This function attempts to read a master journal file name from the
1286 ** end of the file and, if successful, copies it into memory supplied
1287 ** by the caller. See comments above writeMasterJournal() for the format
1288 ** used to store a master journal file name at the end of a journal file.
1290 ** zMaster must point to a buffer of at least nMaster bytes allocated by
1291 ** the caller. This should be sqlite3_vfs.mxPathname+1 (to ensure there is
1292 ** enough space to write the master journal name). If the master journal
1293 ** name in the journal is longer than nMaster bytes (including a
1294 ** nul-terminator), then this is handled as if no master journal name
1295 ** were present in the journal.
1297 ** If a master journal file name is present at the end of the journal
1298 ** file, then it is copied into the buffer pointed to by zMaster. A
1299 ** nul-terminator byte is appended to the buffer following the master
1300 ** journal file name.
1302 ** If it is determined that no master journal file name is present
1303 ** zMaster[0] is set to 0 and SQLITE_OK returned.
1305 ** If an error occurs while reading from the journal file, an SQLite
1306 ** error code is returned.
1308 static int readMasterJournal(sqlite3_file *pJrnl, char *zMaster, u32 nMaster){
1309 int rc; /* Return code */
1310 u32 len; /* Length in bytes of master journal name */
1311 i64 szJ; /* Total size in bytes of journal file pJrnl */
1312 u32 cksum; /* MJ checksum value read from journal */
1313 u32 u; /* Unsigned loop counter */
1314 unsigned char aMagic[8]; /* A buffer to hold the magic header */
1315 zMaster[0] = '\0';
1317 if( SQLITE_OK!=(rc = sqlite3OsFileSize(pJrnl, &szJ))
1318 || szJ<16
1319 || SQLITE_OK!=(rc = read32bits(pJrnl, szJ-16, &len))
1320 || len>=nMaster
1321 || len>szJ-16
1322 || len==0
1323 || SQLITE_OK!=(rc = read32bits(pJrnl, szJ-12, &cksum))
1324 || SQLITE_OK!=(rc = sqlite3OsRead(pJrnl, aMagic, 8, szJ-8))
1325 || memcmp(aMagic, aJournalMagic, 8)
1326 || SQLITE_OK!=(rc = sqlite3OsRead(pJrnl, zMaster, len, szJ-16-len))
1328 return rc;
1331 /* See if the checksum matches the master journal name */
1332 for(u=0; u<len; u++){
1333 cksum -= zMaster[u];
1335 if( cksum ){
1336 /* If the checksum doesn't add up, then one or more of the disk sectors
1337 ** containing the master journal filename is corrupted. This means
1338 ** definitely roll back, so just return SQLITE_OK and report a (nul)
1339 ** master-journal filename.
1341 len = 0;
1343 zMaster[len] = '\0';
1345 return SQLITE_OK;
1349 ** Return the offset of the sector boundary at or immediately
1350 ** following the value in pPager->journalOff, assuming a sector
1351 ** size of pPager->sectorSize bytes.
1353 ** i.e for a sector size of 512:
1355 ** Pager.journalOff Return value
1356 ** ---------------------------------------
1357 ** 0 0
1358 ** 512 512
1359 ** 100 512
1360 ** 2000 2048
1363 static i64 journalHdrOffset(Pager *pPager){
1364 i64 offset = 0;
1365 i64 c = pPager->journalOff;
1366 if( c ){
1367 offset = ((c-1)/JOURNAL_HDR_SZ(pPager) + 1) * JOURNAL_HDR_SZ(pPager);
1369 assert( offset%JOURNAL_HDR_SZ(pPager)==0 );
1370 assert( offset>=c );
1371 assert( (offset-c)<JOURNAL_HDR_SZ(pPager) );
1372 return offset;
1376 ** The journal file must be open when this function is called.
1378 ** This function is a no-op if the journal file has not been written to
1379 ** within the current transaction (i.e. if Pager.journalOff==0).
1381 ** If doTruncate is non-zero or the Pager.journalSizeLimit variable is
1382 ** set to 0, then truncate the journal file to zero bytes in size. Otherwise,
1383 ** zero the 28-byte header at the start of the journal file. In either case,
1384 ** if the pager is not in no-sync mode, sync the journal file immediately
1385 ** after writing or truncating it.
1387 ** If Pager.journalSizeLimit is set to a positive, non-zero value, and
1388 ** following the truncation or zeroing described above the size of the
1389 ** journal file in bytes is larger than this value, then truncate the
1390 ** journal file to Pager.journalSizeLimit bytes. The journal file does
1391 ** not need to be synced following this operation.
1393 ** If an IO error occurs, abandon processing and return the IO error code.
1394 ** Otherwise, return SQLITE_OK.
1396 static int zeroJournalHdr(Pager *pPager, int doTruncate){
1397 int rc = SQLITE_OK; /* Return code */
1398 assert( isOpen(pPager->jfd) );
1399 assert( !sqlite3JournalIsInMemory(pPager->jfd) );
1400 if( pPager->journalOff ){
1401 const i64 iLimit = pPager->journalSizeLimit; /* Local cache of jsl */
1403 IOTRACE(("JZEROHDR %p\n", pPager))
1404 if( doTruncate || iLimit==0 ){
1405 rc = sqlite3OsTruncate(pPager->jfd, 0);
1406 }else{
1407 static const char zeroHdr[28] = {0};
1408 rc = sqlite3OsWrite(pPager->jfd, zeroHdr, sizeof(zeroHdr), 0);
1410 if( rc==SQLITE_OK && !pPager->noSync ){
1411 rc = sqlite3OsSync(pPager->jfd, SQLITE_SYNC_DATAONLY|pPager->syncFlags);
1414 /* At this point the transaction is committed but the write lock
1415 ** is still held on the file. If there is a size limit configured for
1416 ** the persistent journal and the journal file currently consumes more
1417 ** space than that limit allows for, truncate it now. There is no need
1418 ** to sync the file following this operation.
1420 if( rc==SQLITE_OK && iLimit>0 ){
1421 i64 sz;
1422 rc = sqlite3OsFileSize(pPager->jfd, &sz);
1423 if( rc==SQLITE_OK && sz>iLimit ){
1424 rc = sqlite3OsTruncate(pPager->jfd, iLimit);
1428 return rc;
1432 ** The journal file must be open when this routine is called. A journal
1433 ** header (JOURNAL_HDR_SZ bytes) is written into the journal file at the
1434 ** current location.
1436 ** The format for the journal header is as follows:
1437 ** - 8 bytes: Magic identifying journal format.
1438 ** - 4 bytes: Number of records in journal, or -1 no-sync mode is on.
1439 ** - 4 bytes: Random number used for page hash.
1440 ** - 4 bytes: Initial database page count.
1441 ** - 4 bytes: Sector size used by the process that wrote this journal.
1442 ** - 4 bytes: Database page size.
1444 ** Followed by (JOURNAL_HDR_SZ - 28) bytes of unused space.
1446 static int writeJournalHdr(Pager *pPager){
1447 int rc = SQLITE_OK; /* Return code */
1448 char *zHeader = pPager->pTmpSpace; /* Temporary space used to build header */
1449 u32 nHeader = (u32)pPager->pageSize;/* Size of buffer pointed to by zHeader */
1450 u32 nWrite; /* Bytes of header sector written */
1451 int ii; /* Loop counter */
1453 assert( isOpen(pPager->jfd) ); /* Journal file must be open. */
1455 if( nHeader>JOURNAL_HDR_SZ(pPager) ){
1456 nHeader = JOURNAL_HDR_SZ(pPager);
1459 /* If there are active savepoints and any of them were created
1460 ** since the most recent journal header was written, update the
1461 ** PagerSavepoint.iHdrOffset fields now.
1463 for(ii=0; ii<pPager->nSavepoint; ii++){
1464 if( pPager->aSavepoint[ii].iHdrOffset==0 ){
1465 pPager->aSavepoint[ii].iHdrOffset = pPager->journalOff;
1469 pPager->journalHdr = pPager->journalOff = journalHdrOffset(pPager);
1472 ** Write the nRec Field - the number of page records that follow this
1473 ** journal header. Normally, zero is written to this value at this time.
1474 ** After the records are added to the journal (and the journal synced,
1475 ** if in full-sync mode), the zero is overwritten with the true number
1476 ** of records (see syncJournal()).
1478 ** A faster alternative is to write 0xFFFFFFFF to the nRec field. When
1479 ** reading the journal this value tells SQLite to assume that the
1480 ** rest of the journal file contains valid page records. This assumption
1481 ** is dangerous, as if a failure occurred whilst writing to the journal
1482 ** file it may contain some garbage data. There are two scenarios
1483 ** where this risk can be ignored:
1485 ** * When the pager is in no-sync mode. Corruption can follow a
1486 ** power failure in this case anyway.
1488 ** * When the SQLITE_IOCAP_SAFE_APPEND flag is set. This guarantees
1489 ** that garbage data is never appended to the journal file.
1491 assert( isOpen(pPager->fd) || pPager->noSync );
1492 if( pPager->noSync || (pPager->journalMode==PAGER_JOURNALMODE_MEMORY)
1493 || (sqlite3OsDeviceCharacteristics(pPager->fd)&SQLITE_IOCAP_SAFE_APPEND)
1495 memcpy(zHeader, aJournalMagic, sizeof(aJournalMagic));
1496 put32bits(&zHeader[sizeof(aJournalMagic)], 0xffffffff);
1497 }else{
1498 memset(zHeader, 0, sizeof(aJournalMagic)+4);
1501 /* The random check-hash initializer */
1502 sqlite3_randomness(sizeof(pPager->cksumInit), &pPager->cksumInit);
1503 put32bits(&zHeader[sizeof(aJournalMagic)+4], pPager->cksumInit);
1504 /* The initial database size */
1505 put32bits(&zHeader[sizeof(aJournalMagic)+8], pPager->dbOrigSize);
1506 /* The assumed sector size for this process */
1507 put32bits(&zHeader[sizeof(aJournalMagic)+12], pPager->sectorSize);
1509 /* The page size */
1510 put32bits(&zHeader[sizeof(aJournalMagic)+16], pPager->pageSize);
1512 /* Initializing the tail of the buffer is not necessary. Everything
1513 ** works find if the following memset() is omitted. But initializing
1514 ** the memory prevents valgrind from complaining, so we are willing to
1515 ** take the performance hit.
1517 memset(&zHeader[sizeof(aJournalMagic)+20], 0,
1518 nHeader-(sizeof(aJournalMagic)+20));
1520 /* In theory, it is only necessary to write the 28 bytes that the
1521 ** journal header consumes to the journal file here. Then increment the
1522 ** Pager.journalOff variable by JOURNAL_HDR_SZ so that the next
1523 ** record is written to the following sector (leaving a gap in the file
1524 ** that will be implicitly filled in by the OS).
1526 ** However it has been discovered that on some systems this pattern can
1527 ** be significantly slower than contiguously writing data to the file,
1528 ** even if that means explicitly writing data to the block of
1529 ** (JOURNAL_HDR_SZ - 28) bytes that will not be used. So that is what
1530 ** is done.
1532 ** The loop is required here in case the sector-size is larger than the
1533 ** database page size. Since the zHeader buffer is only Pager.pageSize
1534 ** bytes in size, more than one call to sqlite3OsWrite() may be required
1535 ** to populate the entire journal header sector.
1537 for(nWrite=0; rc==SQLITE_OK&&nWrite<JOURNAL_HDR_SZ(pPager); nWrite+=nHeader){
1538 IOTRACE(("JHDR %p %lld %d\n", pPager, pPager->journalHdr, nHeader))
1539 rc = sqlite3OsWrite(pPager->jfd, zHeader, nHeader, pPager->journalOff);
1540 assert( pPager->journalHdr <= pPager->journalOff );
1541 pPager->journalOff += nHeader;
1544 return rc;
1548 ** The journal file must be open when this is called. A journal header file
1549 ** (JOURNAL_HDR_SZ bytes) is read from the current location in the journal
1550 ** file. The current location in the journal file is given by
1551 ** pPager->journalOff. See comments above function writeJournalHdr() for
1552 ** a description of the journal header format.
1554 ** If the header is read successfully, *pNRec is set to the number of
1555 ** page records following this header and *pDbSize is set to the size of the
1556 ** database before the transaction began, in pages. Also, pPager->cksumInit
1557 ** is set to the value read from the journal header. SQLITE_OK is returned
1558 ** in this case.
1560 ** If the journal header file appears to be corrupted, SQLITE_DONE is
1561 ** returned and *pNRec and *PDbSize are undefined. If JOURNAL_HDR_SZ bytes
1562 ** cannot be read from the journal file an error code is returned.
1564 static int readJournalHdr(
1565 Pager *pPager, /* Pager object */
1566 int isHot,
1567 i64 journalSize, /* Size of the open journal file in bytes */
1568 u32 *pNRec, /* OUT: Value read from the nRec field */
1569 u32 *pDbSize /* OUT: Value of original database size field */
1571 int rc; /* Return code */
1572 unsigned char aMagic[8]; /* A buffer to hold the magic header */
1573 i64 iHdrOff; /* Offset of journal header being read */
1575 assert( isOpen(pPager->jfd) ); /* Journal file must be open. */
1577 /* Advance Pager.journalOff to the start of the next sector. If the
1578 ** journal file is too small for there to be a header stored at this
1579 ** point, return SQLITE_DONE.
1581 pPager->journalOff = journalHdrOffset(pPager);
1582 if( pPager->journalOff+JOURNAL_HDR_SZ(pPager) > journalSize ){
1583 return SQLITE_DONE;
1585 iHdrOff = pPager->journalOff;
1587 /* Read in the first 8 bytes of the journal header. If they do not match
1588 ** the magic string found at the start of each journal header, return
1589 ** SQLITE_DONE. If an IO error occurs, return an error code. Otherwise,
1590 ** proceed.
1592 if( isHot || iHdrOff!=pPager->journalHdr ){
1593 rc = sqlite3OsRead(pPager->jfd, aMagic, sizeof(aMagic), iHdrOff);
1594 if( rc ){
1595 return rc;
1597 if( memcmp(aMagic, aJournalMagic, sizeof(aMagic))!=0 ){
1598 return SQLITE_DONE;
1602 /* Read the first three 32-bit fields of the journal header: The nRec
1603 ** field, the checksum-initializer and the database size at the start
1604 ** of the transaction. Return an error code if anything goes wrong.
1606 if( SQLITE_OK!=(rc = read32bits(pPager->jfd, iHdrOff+8, pNRec))
1607 || SQLITE_OK!=(rc = read32bits(pPager->jfd, iHdrOff+12, &pPager->cksumInit))
1608 || SQLITE_OK!=(rc = read32bits(pPager->jfd, iHdrOff+16, pDbSize))
1610 return rc;
1613 if( pPager->journalOff==0 ){
1614 u32 iPageSize; /* Page-size field of journal header */
1615 u32 iSectorSize; /* Sector-size field of journal header */
1617 /* Read the page-size and sector-size journal header fields. */
1618 if( SQLITE_OK!=(rc = read32bits(pPager->jfd, iHdrOff+20, &iSectorSize))
1619 || SQLITE_OK!=(rc = read32bits(pPager->jfd, iHdrOff+24, &iPageSize))
1621 return rc;
1624 /* Versions of SQLite prior to 3.5.8 set the page-size field of the
1625 ** journal header to zero. In this case, assume that the Pager.pageSize
1626 ** variable is already set to the correct page size.
1628 if( iPageSize==0 ){
1629 iPageSize = pPager->pageSize;
1632 /* Check that the values read from the page-size and sector-size fields
1633 ** are within range. To be 'in range', both values need to be a power
1634 ** of two greater than or equal to 512 or 32, and not greater than their
1635 ** respective compile time maximum limits.
1637 if( iPageSize<512 || iSectorSize<32
1638 || iPageSize>SQLITE_MAX_PAGE_SIZE || iSectorSize>MAX_SECTOR_SIZE
1639 || ((iPageSize-1)&iPageSize)!=0 || ((iSectorSize-1)&iSectorSize)!=0
1641 /* If the either the page-size or sector-size in the journal-header is
1642 ** invalid, then the process that wrote the journal-header must have
1643 ** crashed before the header was synced. In this case stop reading
1644 ** the journal file here.
1646 return SQLITE_DONE;
1649 /* Update the page-size to match the value read from the journal.
1650 ** Use a testcase() macro to make sure that malloc failure within
1651 ** PagerSetPagesize() is tested.
1653 rc = sqlite3PagerSetPagesize(pPager, &iPageSize, -1);
1654 testcase( rc!=SQLITE_OK );
1656 /* Update the assumed sector-size to match the value used by
1657 ** the process that created this journal. If this journal was
1658 ** created by a process other than this one, then this routine
1659 ** is being called from within pager_playback(). The local value
1660 ** of Pager.sectorSize is restored at the end of that routine.
1662 pPager->sectorSize = iSectorSize;
1665 pPager->journalOff += JOURNAL_HDR_SZ(pPager);
1666 return rc;
1671 ** Write the supplied master journal name into the journal file for pager
1672 ** pPager at the current location. The master journal name must be the last
1673 ** thing written to a journal file. If the pager is in full-sync mode, the
1674 ** journal file descriptor is advanced to the next sector boundary before
1675 ** anything is written. The format is:
1677 ** + 4 bytes: PAGER_MJ_PGNO.
1678 ** + N bytes: Master journal filename in utf-8.
1679 ** + 4 bytes: N (length of master journal name in bytes, no nul-terminator).
1680 ** + 4 bytes: Master journal name checksum.
1681 ** + 8 bytes: aJournalMagic[].
1683 ** The master journal page checksum is the sum of the bytes in the master
1684 ** journal name, where each byte is interpreted as a signed 8-bit integer.
1686 ** If zMaster is a NULL pointer (occurs for a single database transaction),
1687 ** this call is a no-op.
1689 static int writeMasterJournal(Pager *pPager, const char *zMaster){
1690 int rc; /* Return code */
1691 int nMaster; /* Length of string zMaster */
1692 i64 iHdrOff; /* Offset of header in journal file */
1693 i64 jrnlSize; /* Size of journal file on disk */
1694 u32 cksum = 0; /* Checksum of string zMaster */
1696 assert( pPager->setMaster==0 );
1697 assert( !pagerUseWal(pPager) );
1699 if( !zMaster
1700 || pPager->journalMode==PAGER_JOURNALMODE_MEMORY
1701 || !isOpen(pPager->jfd)
1703 return SQLITE_OK;
1705 pPager->setMaster = 1;
1706 assert( pPager->journalHdr <= pPager->journalOff );
1708 /* Calculate the length in bytes and the checksum of zMaster */
1709 for(nMaster=0; zMaster[nMaster]; nMaster++){
1710 cksum += zMaster[nMaster];
1713 /* If in full-sync mode, advance to the next disk sector before writing
1714 ** the master journal name. This is in case the previous page written to
1715 ** the journal has already been synced.
1717 if( pPager->fullSync ){
1718 pPager->journalOff = journalHdrOffset(pPager);
1720 iHdrOff = pPager->journalOff;
1722 /* Write the master journal data to the end of the journal file. If
1723 ** an error occurs, return the error code to the caller.
1725 if( (0 != (rc = write32bits(pPager->jfd, iHdrOff, PAGER_MJ_PGNO(pPager))))
1726 || (0 != (rc = sqlite3OsWrite(pPager->jfd, zMaster, nMaster, iHdrOff+4)))
1727 || (0 != (rc = write32bits(pPager->jfd, iHdrOff+4+nMaster, nMaster)))
1728 || (0 != (rc = write32bits(pPager->jfd, iHdrOff+4+nMaster+4, cksum)))
1729 || (0 != (rc = sqlite3OsWrite(pPager->jfd, aJournalMagic, 8,
1730 iHdrOff+4+nMaster+8)))
1732 return rc;
1734 pPager->journalOff += (nMaster+20);
1736 /* If the pager is in peristent-journal mode, then the physical
1737 ** journal-file may extend past the end of the master-journal name
1738 ** and 8 bytes of magic data just written to the file. This is
1739 ** dangerous because the code to rollback a hot-journal file
1740 ** will not be able to find the master-journal name to determine
1741 ** whether or not the journal is hot.
1743 ** Easiest thing to do in this scenario is to truncate the journal
1744 ** file to the required size.
1746 if( SQLITE_OK==(rc = sqlite3OsFileSize(pPager->jfd, &jrnlSize))
1747 && jrnlSize>pPager->journalOff
1749 rc = sqlite3OsTruncate(pPager->jfd, pPager->journalOff);
1751 return rc;
1755 ** Discard the entire contents of the in-memory page-cache.
1757 static void pager_reset(Pager *pPager){
1758 pPager->iDataVersion++;
1759 sqlite3BackupRestart(pPager->pBackup);
1760 sqlite3PcacheClear(pPager->pPCache);
1764 ** Return the pPager->iDataVersion value
1766 u32 sqlite3PagerDataVersion(Pager *pPager){
1767 assert( pPager->eState>PAGER_OPEN );
1768 return pPager->iDataVersion;
1772 ** Free all structures in the Pager.aSavepoint[] array and set both
1773 ** Pager.aSavepoint and Pager.nSavepoint to zero. Close the sub-journal
1774 ** if it is open and the pager is not in exclusive mode.
1776 static void releaseAllSavepoints(Pager *pPager){
1777 int ii; /* Iterator for looping through Pager.aSavepoint */
1778 for(ii=0; ii<pPager->nSavepoint; ii++){
1779 sqlite3BitvecDestroy(pPager->aSavepoint[ii].pInSavepoint);
1781 if( !pPager->exclusiveMode || sqlite3JournalIsInMemory(pPager->sjfd) ){
1782 sqlite3OsClose(pPager->sjfd);
1784 sqlite3_free(pPager->aSavepoint);
1785 pPager->aSavepoint = 0;
1786 pPager->nSavepoint = 0;
1787 pPager->nSubRec = 0;
1791 ** Set the bit number pgno in the PagerSavepoint.pInSavepoint
1792 ** bitvecs of all open savepoints. Return SQLITE_OK if successful
1793 ** or SQLITE_NOMEM if a malloc failure occurs.
1795 static int addToSavepointBitvecs(Pager *pPager, Pgno pgno){
1796 int ii; /* Loop counter */
1797 int rc = SQLITE_OK; /* Result code */
1799 for(ii=0; ii<pPager->nSavepoint; ii++){
1800 PagerSavepoint *p = &pPager->aSavepoint[ii];
1801 if( pgno<=p->nOrig ){
1802 rc |= sqlite3BitvecSet(p->pInSavepoint, pgno);
1803 testcase( rc==SQLITE_NOMEM );
1804 assert( rc==SQLITE_OK || rc==SQLITE_NOMEM );
1807 return rc;
1811 ** This function is a no-op if the pager is in exclusive mode and not
1812 ** in the ERROR state. Otherwise, it switches the pager to PAGER_OPEN
1813 ** state.
1815 ** If the pager is not in exclusive-access mode, the database file is
1816 ** completely unlocked. If the file is unlocked and the file-system does
1817 ** not exhibit the UNDELETABLE_WHEN_OPEN property, the journal file is
1818 ** closed (if it is open).
1820 ** If the pager is in ERROR state when this function is called, the
1821 ** contents of the pager cache are discarded before switching back to
1822 ** the OPEN state. Regardless of whether the pager is in exclusive-mode
1823 ** or not, any journal file left in the file-system will be treated
1824 ** as a hot-journal and rolled back the next time a read-transaction
1825 ** is opened (by this or by any other connection).
1827 static void pager_unlock(Pager *pPager){
1829 assert( pPager->eState==PAGER_READER
1830 || pPager->eState==PAGER_OPEN
1831 || pPager->eState==PAGER_ERROR
1834 sqlite3BitvecDestroy(pPager->pInJournal);
1835 pPager->pInJournal = 0;
1836 releaseAllSavepoints(pPager);
1838 if( pagerUseWal(pPager) ){
1839 assert( !isOpen(pPager->jfd) );
1840 sqlite3WalEndReadTransaction(pPager->pWal);
1841 pPager->eState = PAGER_OPEN;
1842 }else if( !pPager->exclusiveMode ){
1843 int rc; /* Error code returned by pagerUnlockDb() */
1844 int iDc = isOpen(pPager->fd)?sqlite3OsDeviceCharacteristics(pPager->fd):0;
1846 /* If the operating system support deletion of open files, then
1847 ** close the journal file when dropping the database lock. Otherwise
1848 ** another connection with journal_mode=delete might delete the file
1849 ** out from under us.
1851 assert( (PAGER_JOURNALMODE_MEMORY & 5)!=1 );
1852 assert( (PAGER_JOURNALMODE_OFF & 5)!=1 );
1853 assert( (PAGER_JOURNALMODE_WAL & 5)!=1 );
1854 assert( (PAGER_JOURNALMODE_DELETE & 5)!=1 );
1855 assert( (PAGER_JOURNALMODE_TRUNCATE & 5)==1 );
1856 assert( (PAGER_JOURNALMODE_PERSIST & 5)==1 );
1857 if( 0==(iDc & SQLITE_IOCAP_UNDELETABLE_WHEN_OPEN)
1858 || 1!=(pPager->journalMode & 5)
1860 sqlite3OsClose(pPager->jfd);
1863 /* If the pager is in the ERROR state and the call to unlock the database
1864 ** file fails, set the current lock to UNKNOWN_LOCK. See the comment
1865 ** above the #define for UNKNOWN_LOCK for an explanation of why this
1866 ** is necessary.
1868 rc = pagerUnlockDb(pPager, NO_LOCK);
1869 if( rc!=SQLITE_OK && pPager->eState==PAGER_ERROR ){
1870 pPager->eLock = UNKNOWN_LOCK;
1873 /* The pager state may be changed from PAGER_ERROR to PAGER_OPEN here
1874 ** without clearing the error code. This is intentional - the error
1875 ** code is cleared and the cache reset in the block below.
1877 assert( pPager->errCode || pPager->eState!=PAGER_ERROR );
1878 pPager->changeCountDone = 0;
1879 pPager->eState = PAGER_OPEN;
1882 /* If Pager.errCode is set, the contents of the pager cache cannot be
1883 ** trusted. Now that there are no outstanding references to the pager,
1884 ** it can safely move back to PAGER_OPEN state. This happens in both
1885 ** normal and exclusive-locking mode.
1887 assert( pPager->errCode==SQLITE_OK || !MEMDB );
1888 if( pPager->errCode ){
1889 if( pPager->tempFile==0 ){
1890 pager_reset(pPager);
1891 pPager->changeCountDone = 0;
1892 pPager->eState = PAGER_OPEN;
1893 }else{
1894 pPager->eState = (isOpen(pPager->jfd) ? PAGER_OPEN : PAGER_READER);
1896 if( USEFETCH(pPager) ) sqlite3OsUnfetch(pPager->fd, 0, 0);
1897 pPager->errCode = SQLITE_OK;
1898 setGetterMethod(pPager);
1901 pPager->journalOff = 0;
1902 pPager->journalHdr = 0;
1903 pPager->setMaster = 0;
1907 ** This function is called whenever an IOERR or FULL error that requires
1908 ** the pager to transition into the ERROR state may ahve occurred.
1909 ** The first argument is a pointer to the pager structure, the second
1910 ** the error-code about to be returned by a pager API function. The
1911 ** value returned is a copy of the second argument to this function.
1913 ** If the second argument is SQLITE_FULL, SQLITE_IOERR or one of the
1914 ** IOERR sub-codes, the pager enters the ERROR state and the error code
1915 ** is stored in Pager.errCode. While the pager remains in the ERROR state,
1916 ** all major API calls on the Pager will immediately return Pager.errCode.
1918 ** The ERROR state indicates that the contents of the pager-cache
1919 ** cannot be trusted. This state can be cleared by completely discarding
1920 ** the contents of the pager-cache. If a transaction was active when
1921 ** the persistent error occurred, then the rollback journal may need
1922 ** to be replayed to restore the contents of the database file (as if
1923 ** it were a hot-journal).
1925 static int pager_error(Pager *pPager, int rc){
1926 int rc2 = rc & 0xff;
1927 assert( rc==SQLITE_OK || !MEMDB );
1928 assert(
1929 pPager->errCode==SQLITE_FULL ||
1930 pPager->errCode==SQLITE_OK ||
1931 (pPager->errCode & 0xff)==SQLITE_IOERR
1933 if( rc2==SQLITE_FULL || rc2==SQLITE_IOERR ){
1934 pPager->errCode = rc;
1935 pPager->eState = PAGER_ERROR;
1936 setGetterMethod(pPager);
1938 return rc;
1941 static int pager_truncate(Pager *pPager, Pgno nPage);
1944 ** The write transaction open on pPager is being committed (bCommit==1)
1945 ** or rolled back (bCommit==0).
1947 ** Return TRUE if and only if all dirty pages should be flushed to disk.
1949 ** Rules:
1951 ** * For non-TEMP databases, always sync to disk. This is necessary
1952 ** for transactions to be durable.
1954 ** * Sync TEMP database only on a COMMIT (not a ROLLBACK) when the backing
1955 ** file has been created already (via a spill on pagerStress()) and
1956 ** when the number of dirty pages in memory exceeds 25% of the total
1957 ** cache size.
1959 static int pagerFlushOnCommit(Pager *pPager, int bCommit){
1960 if( pPager->tempFile==0 ) return 1;
1961 if( !bCommit ) return 0;
1962 if( !isOpen(pPager->fd) ) return 0;
1963 return (sqlite3PCachePercentDirty(pPager->pPCache)>=25);
1967 ** This routine ends a transaction. A transaction is usually ended by
1968 ** either a COMMIT or a ROLLBACK operation. This routine may be called
1969 ** after rollback of a hot-journal, or if an error occurs while opening
1970 ** the journal file or writing the very first journal-header of a
1971 ** database transaction.
1973 ** This routine is never called in PAGER_ERROR state. If it is called
1974 ** in PAGER_NONE or PAGER_SHARED state and the lock held is less
1975 ** exclusive than a RESERVED lock, it is a no-op.
1977 ** Otherwise, any active savepoints are released.
1979 ** If the journal file is open, then it is "finalized". Once a journal
1980 ** file has been finalized it is not possible to use it to roll back a
1981 ** transaction. Nor will it be considered to be a hot-journal by this
1982 ** or any other database connection. Exactly how a journal is finalized
1983 ** depends on whether or not the pager is running in exclusive mode and
1984 ** the current journal-mode (Pager.journalMode value), as follows:
1986 ** journalMode==MEMORY
1987 ** Journal file descriptor is simply closed. This destroys an
1988 ** in-memory journal.
1990 ** journalMode==TRUNCATE
1991 ** Journal file is truncated to zero bytes in size.
1993 ** journalMode==PERSIST
1994 ** The first 28 bytes of the journal file are zeroed. This invalidates
1995 ** the first journal header in the file, and hence the entire journal
1996 ** file. An invalid journal file cannot be rolled back.
1998 ** journalMode==DELETE
1999 ** The journal file is closed and deleted using sqlite3OsDelete().
2001 ** If the pager is running in exclusive mode, this method of finalizing
2002 ** the journal file is never used. Instead, if the journalMode is
2003 ** DELETE and the pager is in exclusive mode, the method described under
2004 ** journalMode==PERSIST is used instead.
2006 ** After the journal is finalized, the pager moves to PAGER_READER state.
2007 ** If running in non-exclusive rollback mode, the lock on the file is
2008 ** downgraded to a SHARED_LOCK.
2010 ** SQLITE_OK is returned if no error occurs. If an error occurs during
2011 ** any of the IO operations to finalize the journal file or unlock the
2012 ** database then the IO error code is returned to the user. If the
2013 ** operation to finalize the journal file fails, then the code still
2014 ** tries to unlock the database file if not in exclusive mode. If the
2015 ** unlock operation fails as well, then the first error code related
2016 ** to the first error encountered (the journal finalization one) is
2017 ** returned.
2019 static int pager_end_transaction(Pager *pPager, int hasMaster, int bCommit){
2020 int rc = SQLITE_OK; /* Error code from journal finalization operation */
2021 int rc2 = SQLITE_OK; /* Error code from db file unlock operation */
2023 /* Do nothing if the pager does not have an open write transaction
2024 ** or at least a RESERVED lock. This function may be called when there
2025 ** is no write-transaction active but a RESERVED or greater lock is
2026 ** held under two circumstances:
2028 ** 1. After a successful hot-journal rollback, it is called with
2029 ** eState==PAGER_NONE and eLock==EXCLUSIVE_LOCK.
2031 ** 2. If a connection with locking_mode=exclusive holding an EXCLUSIVE
2032 ** lock switches back to locking_mode=normal and then executes a
2033 ** read-transaction, this function is called with eState==PAGER_READER
2034 ** and eLock==EXCLUSIVE_LOCK when the read-transaction is closed.
2036 assert( assert_pager_state(pPager) );
2037 assert( pPager->eState!=PAGER_ERROR );
2038 if( pPager->eState<PAGER_WRITER_LOCKED && pPager->eLock<RESERVED_LOCK ){
2039 return SQLITE_OK;
2042 releaseAllSavepoints(pPager);
2043 assert( isOpen(pPager->jfd) || pPager->pInJournal==0
2044 || (sqlite3OsDeviceCharacteristics(pPager->fd)&SQLITE_IOCAP_BATCH_ATOMIC)
2046 if( isOpen(pPager->jfd) ){
2047 assert( !pagerUseWal(pPager) );
2049 /* Finalize the journal file. */
2050 if( sqlite3JournalIsInMemory(pPager->jfd) ){
2051 /* assert( pPager->journalMode==PAGER_JOURNALMODE_MEMORY ); */
2052 sqlite3OsClose(pPager->jfd);
2053 }else if( pPager->journalMode==PAGER_JOURNALMODE_TRUNCATE ){
2054 if( pPager->journalOff==0 ){
2055 rc = SQLITE_OK;
2056 }else{
2057 rc = sqlite3OsTruncate(pPager->jfd, 0);
2058 if( rc==SQLITE_OK && pPager->fullSync ){
2059 /* Make sure the new file size is written into the inode right away.
2060 ** Otherwise the journal might resurrect following a power loss and
2061 ** cause the last transaction to roll back. See
2062 ** https://bugzilla.mozilla.org/show_bug.cgi?id=1072773
2064 rc = sqlite3OsSync(pPager->jfd, pPager->syncFlags);
2067 pPager->journalOff = 0;
2068 }else if( pPager->journalMode==PAGER_JOURNALMODE_PERSIST
2069 || (pPager->exclusiveMode && pPager->journalMode!=PAGER_JOURNALMODE_WAL)
2071 rc = zeroJournalHdr(pPager, hasMaster||pPager->tempFile);
2072 pPager->journalOff = 0;
2073 }else{
2074 /* This branch may be executed with Pager.journalMode==MEMORY if
2075 ** a hot-journal was just rolled back. In this case the journal
2076 ** file should be closed and deleted. If this connection writes to
2077 ** the database file, it will do so using an in-memory journal.
2079 int bDelete = !pPager->tempFile;
2080 assert( sqlite3JournalIsInMemory(pPager->jfd)==0 );
2081 assert( pPager->journalMode==PAGER_JOURNALMODE_DELETE
2082 || pPager->journalMode==PAGER_JOURNALMODE_MEMORY
2083 || pPager->journalMode==PAGER_JOURNALMODE_WAL
2085 sqlite3OsClose(pPager->jfd);
2086 if( bDelete ){
2087 rc = sqlite3OsDelete(pPager->pVfs, pPager->zJournal, pPager->extraSync);
2092 #ifdef SQLITE_CHECK_PAGES
2093 sqlite3PcacheIterateDirty(pPager->pPCache, pager_set_pagehash);
2094 if( pPager->dbSize==0 && sqlite3PcacheRefCount(pPager->pPCache)>0 ){
2095 PgHdr *p = sqlite3PagerLookup(pPager, 1);
2096 if( p ){
2097 p->pageHash = 0;
2098 sqlite3PagerUnrefNotNull(p);
2101 #endif
2103 sqlite3BitvecDestroy(pPager->pInJournal);
2104 pPager->pInJournal = 0;
2105 pPager->nRec = 0;
2106 if( rc==SQLITE_OK ){
2107 if( MEMDB || pagerFlushOnCommit(pPager, bCommit) ){
2108 sqlite3PcacheCleanAll(pPager->pPCache);
2109 }else{
2110 sqlite3PcacheClearWritable(pPager->pPCache);
2112 sqlite3PcacheTruncate(pPager->pPCache, pPager->dbSize);
2115 if( pagerUseWal(pPager) ){
2116 /* Drop the WAL write-lock, if any. Also, if the connection was in
2117 ** locking_mode=exclusive mode but is no longer, drop the EXCLUSIVE
2118 ** lock held on the database file.
2120 rc2 = sqlite3WalEndWriteTransaction(pPager->pWal);
2121 assert( rc2==SQLITE_OK );
2122 }else if( rc==SQLITE_OK && bCommit && pPager->dbFileSize>pPager->dbSize ){
2123 /* This branch is taken when committing a transaction in rollback-journal
2124 ** mode if the database file on disk is larger than the database image.
2125 ** At this point the journal has been finalized and the transaction
2126 ** successfully committed, but the EXCLUSIVE lock is still held on the
2127 ** file. So it is safe to truncate the database file to its minimum
2128 ** required size. */
2129 assert( pPager->eLock==EXCLUSIVE_LOCK );
2130 rc = pager_truncate(pPager, pPager->dbSize);
2133 if( rc==SQLITE_OK && bCommit && isOpen(pPager->fd) ){
2134 rc = sqlite3OsFileControl(pPager->fd, SQLITE_FCNTL_COMMIT_PHASETWO, 0);
2135 if( rc==SQLITE_NOTFOUND ) rc = SQLITE_OK;
2138 if( !pPager->exclusiveMode
2139 && (!pagerUseWal(pPager) || sqlite3WalExclusiveMode(pPager->pWal, 0))
2141 rc2 = pagerUnlockDb(pPager, SHARED_LOCK);
2142 pPager->changeCountDone = 0;
2144 pPager->eState = PAGER_READER;
2145 pPager->setMaster = 0;
2147 return (rc==SQLITE_OK?rc2:rc);
2151 ** Execute a rollback if a transaction is active and unlock the
2152 ** database file.
2154 ** If the pager has already entered the ERROR state, do not attempt
2155 ** the rollback at this time. Instead, pager_unlock() is called. The
2156 ** call to pager_unlock() will discard all in-memory pages, unlock
2157 ** the database file and move the pager back to OPEN state. If this
2158 ** means that there is a hot-journal left in the file-system, the next
2159 ** connection to obtain a shared lock on the pager (which may be this one)
2160 ** will roll it back.
2162 ** If the pager has not already entered the ERROR state, but an IO or
2163 ** malloc error occurs during a rollback, then this will itself cause
2164 ** the pager to enter the ERROR state. Which will be cleared by the
2165 ** call to pager_unlock(), as described above.
2167 static void pagerUnlockAndRollback(Pager *pPager){
2168 if( pPager->eState!=PAGER_ERROR && pPager->eState!=PAGER_OPEN ){
2169 assert( assert_pager_state(pPager) );
2170 if( pPager->eState>=PAGER_WRITER_LOCKED ){
2171 sqlite3BeginBenignMalloc();
2172 sqlite3PagerRollback(pPager);
2173 sqlite3EndBenignMalloc();
2174 }else if( !pPager->exclusiveMode ){
2175 assert( pPager->eState==PAGER_READER );
2176 pager_end_transaction(pPager, 0, 0);
2179 pager_unlock(pPager);
2183 ** Parameter aData must point to a buffer of pPager->pageSize bytes
2184 ** of data. Compute and return a checksum based ont the contents of the
2185 ** page of data and the current value of pPager->cksumInit.
2187 ** This is not a real checksum. It is really just the sum of the
2188 ** random initial value (pPager->cksumInit) and every 200th byte
2189 ** of the page data, starting with byte offset (pPager->pageSize%200).
2190 ** Each byte is interpreted as an 8-bit unsigned integer.
2192 ** Changing the formula used to compute this checksum results in an
2193 ** incompatible journal file format.
2195 ** If journal corruption occurs due to a power failure, the most likely
2196 ** scenario is that one end or the other of the record will be changed.
2197 ** It is much less likely that the two ends of the journal record will be
2198 ** correct and the middle be corrupt. Thus, this "checksum" scheme,
2199 ** though fast and simple, catches the mostly likely kind of corruption.
2201 static u32 pager_cksum(Pager *pPager, const u8 *aData){
2202 u32 cksum = pPager->cksumInit; /* Checksum value to return */
2203 int i = pPager->pageSize-200; /* Loop counter */
2204 while( i>0 ){
2205 cksum += aData[i];
2206 i -= 200;
2208 return cksum;
2212 ** Report the current page size and number of reserved bytes back
2213 ** to the codec.
2215 #ifdef SQLITE_HAS_CODEC
2216 static void pagerReportSize(Pager *pPager){
2217 if( pPager->xCodecSizeChng ){
2218 pPager->xCodecSizeChng(pPager->pCodec, pPager->pageSize,
2219 (int)pPager->nReserve);
2222 #else
2223 # define pagerReportSize(X) /* No-op if we do not support a codec */
2224 #endif
2226 #ifdef SQLITE_HAS_CODEC
2228 ** Make sure the number of reserved bits is the same in the destination
2229 ** pager as it is in the source. This comes up when a VACUUM changes the
2230 ** number of reserved bits to the "optimal" amount.
2232 void sqlite3PagerAlignReserve(Pager *pDest, Pager *pSrc){
2233 if( pDest->nReserve!=pSrc->nReserve ){
2234 pDest->nReserve = pSrc->nReserve;
2235 pagerReportSize(pDest);
2238 #endif
2241 ** Read a single page from either the journal file (if isMainJrnl==1) or
2242 ** from the sub-journal (if isMainJrnl==0) and playback that page.
2243 ** The page begins at offset *pOffset into the file. The *pOffset
2244 ** value is increased to the start of the next page in the journal.
2246 ** The main rollback journal uses checksums - the statement journal does
2247 ** not.
2249 ** If the page number of the page record read from the (sub-)journal file
2250 ** is greater than the current value of Pager.dbSize, then playback is
2251 ** skipped and SQLITE_OK is returned.
2253 ** If pDone is not NULL, then it is a record of pages that have already
2254 ** been played back. If the page at *pOffset has already been played back
2255 ** (if the corresponding pDone bit is set) then skip the playback.
2256 ** Make sure the pDone bit corresponding to the *pOffset page is set
2257 ** prior to returning.
2259 ** If the page record is successfully read from the (sub-)journal file
2260 ** and played back, then SQLITE_OK is returned. If an IO error occurs
2261 ** while reading the record from the (sub-)journal file or while writing
2262 ** to the database file, then the IO error code is returned. If data
2263 ** is successfully read from the (sub-)journal file but appears to be
2264 ** corrupted, SQLITE_DONE is returned. Data is considered corrupted in
2265 ** two circumstances:
2267 ** * If the record page-number is illegal (0 or PAGER_MJ_PGNO), or
2268 ** * If the record is being rolled back from the main journal file
2269 ** and the checksum field does not match the record content.
2271 ** Neither of these two scenarios are possible during a savepoint rollback.
2273 ** If this is a savepoint rollback, then memory may have to be dynamically
2274 ** allocated by this function. If this is the case and an allocation fails,
2275 ** SQLITE_NOMEM is returned.
2277 static int pager_playback_one_page(
2278 Pager *pPager, /* The pager being played back */
2279 i64 *pOffset, /* Offset of record to playback */
2280 Bitvec *pDone, /* Bitvec of pages already played back */
2281 int isMainJrnl, /* 1 -> main journal. 0 -> sub-journal. */
2282 int isSavepnt /* True for a savepoint rollback */
2284 int rc;
2285 PgHdr *pPg; /* An existing page in the cache */
2286 Pgno pgno; /* The page number of a page in journal */
2287 u32 cksum; /* Checksum used for sanity checking */
2288 char *aData; /* Temporary storage for the page */
2289 sqlite3_file *jfd; /* The file descriptor for the journal file */
2290 int isSynced; /* True if journal page is synced */
2291 #ifdef SQLITE_HAS_CODEC
2292 /* The jrnlEnc flag is true if Journal pages should be passed through
2293 ** the codec. It is false for pure in-memory journals. */
2294 const int jrnlEnc = (isMainJrnl || pPager->subjInMemory==0);
2295 #endif
2297 assert( (isMainJrnl&~1)==0 ); /* isMainJrnl is 0 or 1 */
2298 assert( (isSavepnt&~1)==0 ); /* isSavepnt is 0 or 1 */
2299 assert( isMainJrnl || pDone ); /* pDone always used on sub-journals */
2300 assert( isSavepnt || pDone==0 ); /* pDone never used on non-savepoint */
2302 aData = pPager->pTmpSpace;
2303 assert( aData ); /* Temp storage must have already been allocated */
2304 assert( pagerUseWal(pPager)==0 || (!isMainJrnl && isSavepnt) );
2306 /* Either the state is greater than PAGER_WRITER_CACHEMOD (a transaction
2307 ** or savepoint rollback done at the request of the caller) or this is
2308 ** a hot-journal rollback. If it is a hot-journal rollback, the pager
2309 ** is in state OPEN and holds an EXCLUSIVE lock. Hot-journal rollback
2310 ** only reads from the main journal, not the sub-journal.
2312 assert( pPager->eState>=PAGER_WRITER_CACHEMOD
2313 || (pPager->eState==PAGER_OPEN && pPager->eLock==EXCLUSIVE_LOCK)
2315 assert( pPager->eState>=PAGER_WRITER_CACHEMOD || isMainJrnl );
2317 /* Read the page number and page data from the journal or sub-journal
2318 ** file. Return an error code to the caller if an IO error occurs.
2320 jfd = isMainJrnl ? pPager->jfd : pPager->sjfd;
2321 rc = read32bits(jfd, *pOffset, &pgno);
2322 if( rc!=SQLITE_OK ) return rc;
2323 rc = sqlite3OsRead(jfd, (u8*)aData, pPager->pageSize, (*pOffset)+4);
2324 if( rc!=SQLITE_OK ) return rc;
2325 *pOffset += pPager->pageSize + 4 + isMainJrnl*4;
2327 /* Sanity checking on the page. This is more important that I originally
2328 ** thought. If a power failure occurs while the journal is being written,
2329 ** it could cause invalid data to be written into the journal. We need to
2330 ** detect this invalid data (with high probability) and ignore it.
2332 if( pgno==0 || pgno==PAGER_MJ_PGNO(pPager) ){
2333 assert( !isSavepnt );
2334 return SQLITE_DONE;
2336 if( pgno>(Pgno)pPager->dbSize || sqlite3BitvecTest(pDone, pgno) ){
2337 return SQLITE_OK;
2339 if( isMainJrnl ){
2340 rc = read32bits(jfd, (*pOffset)-4, &cksum);
2341 if( rc ) return rc;
2342 if( !isSavepnt && pager_cksum(pPager, (u8*)aData)!=cksum ){
2343 return SQLITE_DONE;
2347 /* If this page has already been played back before during the current
2348 ** rollback, then don't bother to play it back again.
2350 if( pDone && (rc = sqlite3BitvecSet(pDone, pgno))!=SQLITE_OK ){
2351 return rc;
2354 /* When playing back page 1, restore the nReserve setting
2356 if( pgno==1 && pPager->nReserve!=((u8*)aData)[20] ){
2357 pPager->nReserve = ((u8*)aData)[20];
2358 pagerReportSize(pPager);
2361 /* If the pager is in CACHEMOD state, then there must be a copy of this
2362 ** page in the pager cache. In this case just update the pager cache,
2363 ** not the database file. The page is left marked dirty in this case.
2365 ** An exception to the above rule: If the database is in no-sync mode
2366 ** and a page is moved during an incremental vacuum then the page may
2367 ** not be in the pager cache. Later: if a malloc() or IO error occurs
2368 ** during a Movepage() call, then the page may not be in the cache
2369 ** either. So the condition described in the above paragraph is not
2370 ** assert()able.
2372 ** If in WRITER_DBMOD, WRITER_FINISHED or OPEN state, then we update the
2373 ** pager cache if it exists and the main file. The page is then marked
2374 ** not dirty. Since this code is only executed in PAGER_OPEN state for
2375 ** a hot-journal rollback, it is guaranteed that the page-cache is empty
2376 ** if the pager is in OPEN state.
2378 ** Ticket #1171: The statement journal might contain page content that is
2379 ** different from the page content at the start of the transaction.
2380 ** This occurs when a page is changed prior to the start of a statement
2381 ** then changed again within the statement. When rolling back such a
2382 ** statement we must not write to the original database unless we know
2383 ** for certain that original page contents are synced into the main rollback
2384 ** journal. Otherwise, a power loss might leave modified data in the
2385 ** database file without an entry in the rollback journal that can
2386 ** restore the database to its original form. Two conditions must be
2387 ** met before writing to the database files. (1) the database must be
2388 ** locked. (2) we know that the original page content is fully synced
2389 ** in the main journal either because the page is not in cache or else
2390 ** the page is marked as needSync==0.
2392 ** 2008-04-14: When attempting to vacuum a corrupt database file, it
2393 ** is possible to fail a statement on a database that does not yet exist.
2394 ** Do not attempt to write if database file has never been opened.
2396 if( pagerUseWal(pPager) ){
2397 pPg = 0;
2398 }else{
2399 pPg = sqlite3PagerLookup(pPager, pgno);
2401 assert( pPg || !MEMDB );
2402 assert( pPager->eState!=PAGER_OPEN || pPg==0 || pPager->tempFile );
2403 PAGERTRACE(("PLAYBACK %d page %d hash(%08x) %s\n",
2404 PAGERID(pPager), pgno, pager_datahash(pPager->pageSize, (u8*)aData),
2405 (isMainJrnl?"main-journal":"sub-journal")
2407 if( isMainJrnl ){
2408 isSynced = pPager->noSync || (*pOffset <= pPager->journalHdr);
2409 }else{
2410 isSynced = (pPg==0 || 0==(pPg->flags & PGHDR_NEED_SYNC));
2412 if( isOpen(pPager->fd)
2413 && (pPager->eState>=PAGER_WRITER_DBMOD || pPager->eState==PAGER_OPEN)
2414 && isSynced
2416 i64 ofst = (pgno-1)*(i64)pPager->pageSize;
2417 testcase( !isSavepnt && pPg!=0 && (pPg->flags&PGHDR_NEED_SYNC)!=0 );
2418 assert( !pagerUseWal(pPager) );
2420 /* Write the data read from the journal back into the database file.
2421 ** This is usually safe even for an encrypted database - as the data
2422 ** was encrypted before it was written to the journal file. The exception
2423 ** is if the data was just read from an in-memory sub-journal. In that
2424 ** case it must be encrypted here before it is copied into the database
2425 ** file. */
2426 #ifdef SQLITE_HAS_CODEC
2427 if( !jrnlEnc ){
2428 CODEC2(pPager, aData, pgno, 7, rc=SQLITE_NOMEM_BKPT, aData);
2429 rc = sqlite3OsWrite(pPager->fd, (u8 *)aData, pPager->pageSize, ofst);
2430 CODEC1(pPager, aData, pgno, 3, rc=SQLITE_NOMEM_BKPT);
2431 }else
2432 #endif
2433 rc = sqlite3OsWrite(pPager->fd, (u8 *)aData, pPager->pageSize, ofst);
2435 if( pgno>pPager->dbFileSize ){
2436 pPager->dbFileSize = pgno;
2438 if( pPager->pBackup ){
2439 #ifdef SQLITE_HAS_CODEC
2440 if( jrnlEnc ){
2441 CODEC1(pPager, aData, pgno, 3, rc=SQLITE_NOMEM_BKPT);
2442 sqlite3BackupUpdate(pPager->pBackup, pgno, (u8*)aData);
2443 CODEC2(pPager, aData, pgno, 7, rc=SQLITE_NOMEM_BKPT,aData);
2444 }else
2445 #endif
2446 sqlite3BackupUpdate(pPager->pBackup, pgno, (u8*)aData);
2448 }else if( !isMainJrnl && pPg==0 ){
2449 /* If this is a rollback of a savepoint and data was not written to
2450 ** the database and the page is not in-memory, there is a potential
2451 ** problem. When the page is next fetched by the b-tree layer, it
2452 ** will be read from the database file, which may or may not be
2453 ** current.
2455 ** There are a couple of different ways this can happen. All are quite
2456 ** obscure. When running in synchronous mode, this can only happen
2457 ** if the page is on the free-list at the start of the transaction, then
2458 ** populated, then moved using sqlite3PagerMovepage().
2460 ** The solution is to add an in-memory page to the cache containing
2461 ** the data just read from the sub-journal. Mark the page as dirty
2462 ** and if the pager requires a journal-sync, then mark the page as
2463 ** requiring a journal-sync before it is written.
2465 assert( isSavepnt );
2466 assert( (pPager->doNotSpill & SPILLFLAG_ROLLBACK)==0 );
2467 pPager->doNotSpill |= SPILLFLAG_ROLLBACK;
2468 rc = sqlite3PagerGet(pPager, pgno, &pPg, 1);
2469 assert( (pPager->doNotSpill & SPILLFLAG_ROLLBACK)!=0 );
2470 pPager->doNotSpill &= ~SPILLFLAG_ROLLBACK;
2471 if( rc!=SQLITE_OK ) return rc;
2472 sqlite3PcacheMakeDirty(pPg);
2474 if( pPg ){
2475 /* No page should ever be explicitly rolled back that is in use, except
2476 ** for page 1 which is held in use in order to keep the lock on the
2477 ** database active. However such a page may be rolled back as a result
2478 ** of an internal error resulting in an automatic call to
2479 ** sqlite3PagerRollback().
2481 void *pData;
2482 pData = pPg->pData;
2483 memcpy(pData, (u8*)aData, pPager->pageSize);
2484 pPager->xReiniter(pPg);
2485 /* It used to be that sqlite3PcacheMakeClean(pPg) was called here. But
2486 ** that call was dangerous and had no detectable benefit since the cache
2487 ** is normally cleaned by sqlite3PcacheCleanAll() after rollback and so
2488 ** has been removed. */
2489 pager_set_pagehash(pPg);
2491 /* If this was page 1, then restore the value of Pager.dbFileVers.
2492 ** Do this before any decoding. */
2493 if( pgno==1 ){
2494 memcpy(&pPager->dbFileVers, &((u8*)pData)[24],sizeof(pPager->dbFileVers));
2497 /* Decode the page just read from disk */
2498 #if SQLITE_HAS_CODEC
2499 if( jrnlEnc ){ CODEC1(pPager, pData, pPg->pgno, 3, rc=SQLITE_NOMEM_BKPT); }
2500 #endif
2501 sqlite3PcacheRelease(pPg);
2503 return rc;
2507 ** Parameter zMaster is the name of a master journal file. A single journal
2508 ** file that referred to the master journal file has just been rolled back.
2509 ** This routine checks if it is possible to delete the master journal file,
2510 ** and does so if it is.
2512 ** Argument zMaster may point to Pager.pTmpSpace. So that buffer is not
2513 ** available for use within this function.
2515 ** When a master journal file is created, it is populated with the names
2516 ** of all of its child journals, one after another, formatted as utf-8
2517 ** encoded text. The end of each child journal file is marked with a
2518 ** nul-terminator byte (0x00). i.e. the entire contents of a master journal
2519 ** file for a transaction involving two databases might be:
2521 ** "/home/bill/a.db-journal\x00/home/bill/b.db-journal\x00"
2523 ** A master journal file may only be deleted once all of its child
2524 ** journals have been rolled back.
2526 ** This function reads the contents of the master-journal file into
2527 ** memory and loops through each of the child journal names. For
2528 ** each child journal, it checks if:
2530 ** * if the child journal exists, and if so
2531 ** * if the child journal contains a reference to master journal
2532 ** file zMaster
2534 ** If a child journal can be found that matches both of the criteria
2535 ** above, this function returns without doing anything. Otherwise, if
2536 ** no such child journal can be found, file zMaster is deleted from
2537 ** the file-system using sqlite3OsDelete().
2539 ** If an IO error within this function, an error code is returned. This
2540 ** function allocates memory by calling sqlite3Malloc(). If an allocation
2541 ** fails, SQLITE_NOMEM is returned. Otherwise, if no IO or malloc errors
2542 ** occur, SQLITE_OK is returned.
2544 ** TODO: This function allocates a single block of memory to load
2545 ** the entire contents of the master journal file. This could be
2546 ** a couple of kilobytes or so - potentially larger than the page
2547 ** size.
2549 static int pager_delmaster(Pager *pPager, const char *zMaster){
2550 sqlite3_vfs *pVfs = pPager->pVfs;
2551 int rc; /* Return code */
2552 sqlite3_file *pMaster; /* Malloc'd master-journal file descriptor */
2553 sqlite3_file *pJournal; /* Malloc'd child-journal file descriptor */
2554 char *zMasterJournal = 0; /* Contents of master journal file */
2555 i64 nMasterJournal; /* Size of master journal file */
2556 char *zJournal; /* Pointer to one journal within MJ file */
2557 char *zMasterPtr; /* Space to hold MJ filename from a journal file */
2558 int nMasterPtr; /* Amount of space allocated to zMasterPtr[] */
2560 /* Allocate space for both the pJournal and pMaster file descriptors.
2561 ** If successful, open the master journal file for reading.
2563 pMaster = (sqlite3_file *)sqlite3MallocZero(pVfs->szOsFile * 2);
2564 pJournal = (sqlite3_file *)(((u8 *)pMaster) + pVfs->szOsFile);
2565 if( !pMaster ){
2566 rc = SQLITE_NOMEM_BKPT;
2567 }else{
2568 const int flags = (SQLITE_OPEN_READONLY|SQLITE_OPEN_MASTER_JOURNAL);
2569 rc = sqlite3OsOpen(pVfs, zMaster, pMaster, flags, 0);
2571 if( rc!=SQLITE_OK ) goto delmaster_out;
2573 /* Load the entire master journal file into space obtained from
2574 ** sqlite3_malloc() and pointed to by zMasterJournal. Also obtain
2575 ** sufficient space (in zMasterPtr) to hold the names of master
2576 ** journal files extracted from regular rollback-journals.
2578 rc = sqlite3OsFileSize(pMaster, &nMasterJournal);
2579 if( rc!=SQLITE_OK ) goto delmaster_out;
2580 nMasterPtr = pVfs->mxPathname+1;
2581 zMasterJournal = sqlite3Malloc(nMasterJournal + nMasterPtr + 1);
2582 if( !zMasterJournal ){
2583 rc = SQLITE_NOMEM_BKPT;
2584 goto delmaster_out;
2586 zMasterPtr = &zMasterJournal[nMasterJournal+1];
2587 rc = sqlite3OsRead(pMaster, zMasterJournal, (int)nMasterJournal, 0);
2588 if( rc!=SQLITE_OK ) goto delmaster_out;
2589 zMasterJournal[nMasterJournal] = 0;
2591 zJournal = zMasterJournal;
2592 while( (zJournal-zMasterJournal)<nMasterJournal ){
2593 int exists;
2594 rc = sqlite3OsAccess(pVfs, zJournal, SQLITE_ACCESS_EXISTS, &exists);
2595 if( rc!=SQLITE_OK ){
2596 goto delmaster_out;
2598 if( exists ){
2599 /* One of the journals pointed to by the master journal exists.
2600 ** Open it and check if it points at the master journal. If
2601 ** so, return without deleting the master journal file.
2603 int c;
2604 int flags = (SQLITE_OPEN_READONLY|SQLITE_OPEN_MAIN_JOURNAL);
2605 rc = sqlite3OsOpen(pVfs, zJournal, pJournal, flags, 0);
2606 if( rc!=SQLITE_OK ){
2607 goto delmaster_out;
2610 rc = readMasterJournal(pJournal, zMasterPtr, nMasterPtr);
2611 sqlite3OsClose(pJournal);
2612 if( rc!=SQLITE_OK ){
2613 goto delmaster_out;
2616 c = zMasterPtr[0]!=0 && strcmp(zMasterPtr, zMaster)==0;
2617 if( c ){
2618 /* We have a match. Do not delete the master journal file. */
2619 goto delmaster_out;
2622 zJournal += (sqlite3Strlen30(zJournal)+1);
2625 sqlite3OsClose(pMaster);
2626 rc = sqlite3OsDelete(pVfs, zMaster, 0);
2628 delmaster_out:
2629 sqlite3_free(zMasterJournal);
2630 if( pMaster ){
2631 sqlite3OsClose(pMaster);
2632 assert( !isOpen(pJournal) );
2633 sqlite3_free(pMaster);
2635 return rc;
2640 ** This function is used to change the actual size of the database
2641 ** file in the file-system. This only happens when committing a transaction,
2642 ** or rolling back a transaction (including rolling back a hot-journal).
2644 ** If the main database file is not open, or the pager is not in either
2645 ** DBMOD or OPEN state, this function is a no-op. Otherwise, the size
2646 ** of the file is changed to nPage pages (nPage*pPager->pageSize bytes).
2647 ** If the file on disk is currently larger than nPage pages, then use the VFS
2648 ** xTruncate() method to truncate it.
2650 ** Or, it might be the case that the file on disk is smaller than
2651 ** nPage pages. Some operating system implementations can get confused if
2652 ** you try to truncate a file to some size that is larger than it
2653 ** currently is, so detect this case and write a single zero byte to
2654 ** the end of the new file instead.
2656 ** If successful, return SQLITE_OK. If an IO error occurs while modifying
2657 ** the database file, return the error code to the caller.
2659 static int pager_truncate(Pager *pPager, Pgno nPage){
2660 int rc = SQLITE_OK;
2661 assert( pPager->eState!=PAGER_ERROR );
2662 assert( pPager->eState!=PAGER_READER );
2664 if( isOpen(pPager->fd)
2665 && (pPager->eState>=PAGER_WRITER_DBMOD || pPager->eState==PAGER_OPEN)
2667 i64 currentSize, newSize;
2668 int szPage = pPager->pageSize;
2669 assert( pPager->eLock==EXCLUSIVE_LOCK );
2670 /* TODO: Is it safe to use Pager.dbFileSize here? */
2671 rc = sqlite3OsFileSize(pPager->fd, &currentSize);
2672 newSize = szPage*(i64)nPage;
2673 if( rc==SQLITE_OK && currentSize!=newSize ){
2674 if( currentSize>newSize ){
2675 rc = sqlite3OsTruncate(pPager->fd, newSize);
2676 }else if( (currentSize+szPage)<=newSize ){
2677 char *pTmp = pPager->pTmpSpace;
2678 memset(pTmp, 0, szPage);
2679 testcase( (newSize-szPage) == currentSize );
2680 testcase( (newSize-szPage) > currentSize );
2681 rc = sqlite3OsWrite(pPager->fd, pTmp, szPage, newSize-szPage);
2683 if( rc==SQLITE_OK ){
2684 pPager->dbFileSize = nPage;
2688 return rc;
2692 ** Return a sanitized version of the sector-size of OS file pFile. The
2693 ** return value is guaranteed to lie between 32 and MAX_SECTOR_SIZE.
2695 int sqlite3SectorSize(sqlite3_file *pFile){
2696 int iRet = sqlite3OsSectorSize(pFile);
2697 if( iRet<32 ){
2698 iRet = 512;
2699 }else if( iRet>MAX_SECTOR_SIZE ){
2700 assert( MAX_SECTOR_SIZE>=512 );
2701 iRet = MAX_SECTOR_SIZE;
2703 return iRet;
2707 ** Set the value of the Pager.sectorSize variable for the given
2708 ** pager based on the value returned by the xSectorSize method
2709 ** of the open database file. The sector size will be used
2710 ** to determine the size and alignment of journal header and
2711 ** master journal pointers within created journal files.
2713 ** For temporary files the effective sector size is always 512 bytes.
2715 ** Otherwise, for non-temporary files, the effective sector size is
2716 ** the value returned by the xSectorSize() method rounded up to 32 if
2717 ** it is less than 32, or rounded down to MAX_SECTOR_SIZE if it
2718 ** is greater than MAX_SECTOR_SIZE.
2720 ** If the file has the SQLITE_IOCAP_POWERSAFE_OVERWRITE property, then set
2721 ** the effective sector size to its minimum value (512). The purpose of
2722 ** pPager->sectorSize is to define the "blast radius" of bytes that
2723 ** might change if a crash occurs while writing to a single byte in
2724 ** that range. But with POWERSAFE_OVERWRITE, the blast radius is zero
2725 ** (that is what POWERSAFE_OVERWRITE means), so we minimize the sector
2726 ** size. For backwards compatibility of the rollback journal file format,
2727 ** we cannot reduce the effective sector size below 512.
2729 static void setSectorSize(Pager *pPager){
2730 assert( isOpen(pPager->fd) || pPager->tempFile );
2732 if( pPager->tempFile
2733 || (sqlite3OsDeviceCharacteristics(pPager->fd) &
2734 SQLITE_IOCAP_POWERSAFE_OVERWRITE)!=0
2736 /* Sector size doesn't matter for temporary files. Also, the file
2737 ** may not have been opened yet, in which case the OsSectorSize()
2738 ** call will segfault. */
2739 pPager->sectorSize = 512;
2740 }else{
2741 pPager->sectorSize = sqlite3SectorSize(pPager->fd);
2746 ** Playback the journal and thus restore the database file to
2747 ** the state it was in before we started making changes.
2749 ** The journal file format is as follows:
2751 ** (1) 8 byte prefix. A copy of aJournalMagic[].
2752 ** (2) 4 byte big-endian integer which is the number of valid page records
2753 ** in the journal. If this value is 0xffffffff, then compute the
2754 ** number of page records from the journal size.
2755 ** (3) 4 byte big-endian integer which is the initial value for the
2756 ** sanity checksum.
2757 ** (4) 4 byte integer which is the number of pages to truncate the
2758 ** database to during a rollback.
2759 ** (5) 4 byte big-endian integer which is the sector size. The header
2760 ** is this many bytes in size.
2761 ** (6) 4 byte big-endian integer which is the page size.
2762 ** (7) zero padding out to the next sector size.
2763 ** (8) Zero or more pages instances, each as follows:
2764 ** + 4 byte page number.
2765 ** + pPager->pageSize bytes of data.
2766 ** + 4 byte checksum
2768 ** When we speak of the journal header, we mean the first 7 items above.
2769 ** Each entry in the journal is an instance of the 8th item.
2771 ** Call the value from the second bullet "nRec". nRec is the number of
2772 ** valid page entries in the journal. In most cases, you can compute the
2773 ** value of nRec from the size of the journal file. But if a power
2774 ** failure occurred while the journal was being written, it could be the
2775 ** case that the size of the journal file had already been increased but
2776 ** the extra entries had not yet made it safely to disk. In such a case,
2777 ** the value of nRec computed from the file size would be too large. For
2778 ** that reason, we always use the nRec value in the header.
2780 ** If the nRec value is 0xffffffff it means that nRec should be computed
2781 ** from the file size. This value is used when the user selects the
2782 ** no-sync option for the journal. A power failure could lead to corruption
2783 ** in this case. But for things like temporary table (which will be
2784 ** deleted when the power is restored) we don't care.
2786 ** If the file opened as the journal file is not a well-formed
2787 ** journal file then all pages up to the first corrupted page are rolled
2788 ** back (or no pages if the journal header is corrupted). The journal file
2789 ** is then deleted and SQLITE_OK returned, just as if no corruption had
2790 ** been encountered.
2792 ** If an I/O or malloc() error occurs, the journal-file is not deleted
2793 ** and an error code is returned.
2795 ** The isHot parameter indicates that we are trying to rollback a journal
2796 ** that might be a hot journal. Or, it could be that the journal is
2797 ** preserved because of JOURNALMODE_PERSIST or JOURNALMODE_TRUNCATE.
2798 ** If the journal really is hot, reset the pager cache prior rolling
2799 ** back any content. If the journal is merely persistent, no reset is
2800 ** needed.
2802 static int pager_playback(Pager *pPager, int isHot){
2803 sqlite3_vfs *pVfs = pPager->pVfs;
2804 i64 szJ; /* Size of the journal file in bytes */
2805 u32 nRec; /* Number of Records in the journal */
2806 u32 u; /* Unsigned loop counter */
2807 Pgno mxPg = 0; /* Size of the original file in pages */
2808 int rc; /* Result code of a subroutine */
2809 int res = 1; /* Value returned by sqlite3OsAccess() */
2810 char *zMaster = 0; /* Name of master journal file if any */
2811 int needPagerReset; /* True to reset page prior to first page rollback */
2812 int nPlayback = 0; /* Total number of pages restored from journal */
2813 u32 savedPageSize = pPager->pageSize;
2815 /* Figure out how many records are in the journal. Abort early if
2816 ** the journal is empty.
2818 assert( isOpen(pPager->jfd) );
2819 rc = sqlite3OsFileSize(pPager->jfd, &szJ);
2820 if( rc!=SQLITE_OK ){
2821 goto end_playback;
2824 /* Read the master journal name from the journal, if it is present.
2825 ** If a master journal file name is specified, but the file is not
2826 ** present on disk, then the journal is not hot and does not need to be
2827 ** played back.
2829 ** TODO: Technically the following is an error because it assumes that
2830 ** buffer Pager.pTmpSpace is (mxPathname+1) bytes or larger. i.e. that
2831 ** (pPager->pageSize >= pPager->pVfs->mxPathname+1). Using os_unix.c,
2832 ** mxPathname is 512, which is the same as the minimum allowable value
2833 ** for pageSize.
2835 zMaster = pPager->pTmpSpace;
2836 rc = readMasterJournal(pPager->jfd, zMaster, pPager->pVfs->mxPathname+1);
2837 if( rc==SQLITE_OK && zMaster[0] ){
2838 rc = sqlite3OsAccess(pVfs, zMaster, SQLITE_ACCESS_EXISTS, &res);
2840 zMaster = 0;
2841 if( rc!=SQLITE_OK || !res ){
2842 goto end_playback;
2844 pPager->journalOff = 0;
2845 needPagerReset = isHot;
2847 /* This loop terminates either when a readJournalHdr() or
2848 ** pager_playback_one_page() call returns SQLITE_DONE or an IO error
2849 ** occurs.
2851 while( 1 ){
2852 /* Read the next journal header from the journal file. If there are
2853 ** not enough bytes left in the journal file for a complete header, or
2854 ** it is corrupted, then a process must have failed while writing it.
2855 ** This indicates nothing more needs to be rolled back.
2857 rc = readJournalHdr(pPager, isHot, szJ, &nRec, &mxPg);
2858 if( rc!=SQLITE_OK ){
2859 if( rc==SQLITE_DONE ){
2860 rc = SQLITE_OK;
2862 goto end_playback;
2865 /* If nRec is 0xffffffff, then this journal was created by a process
2866 ** working in no-sync mode. This means that the rest of the journal
2867 ** file consists of pages, there are no more journal headers. Compute
2868 ** the value of nRec based on this assumption.
2870 if( nRec==0xffffffff ){
2871 assert( pPager->journalOff==JOURNAL_HDR_SZ(pPager) );
2872 nRec = (int)((szJ - JOURNAL_HDR_SZ(pPager))/JOURNAL_PG_SZ(pPager));
2875 /* If nRec is 0 and this rollback is of a transaction created by this
2876 ** process and if this is the final header in the journal, then it means
2877 ** that this part of the journal was being filled but has not yet been
2878 ** synced to disk. Compute the number of pages based on the remaining
2879 ** size of the file.
2881 ** The third term of the test was added to fix ticket #2565.
2882 ** When rolling back a hot journal, nRec==0 always means that the next
2883 ** chunk of the journal contains zero pages to be rolled back. But
2884 ** when doing a ROLLBACK and the nRec==0 chunk is the last chunk in
2885 ** the journal, it means that the journal might contain additional
2886 ** pages that need to be rolled back and that the number of pages
2887 ** should be computed based on the journal file size.
2889 if( nRec==0 && !isHot &&
2890 pPager->journalHdr+JOURNAL_HDR_SZ(pPager)==pPager->journalOff ){
2891 nRec = (int)((szJ - pPager->journalOff) / JOURNAL_PG_SZ(pPager));
2894 /* If this is the first header read from the journal, truncate the
2895 ** database file back to its original size.
2897 if( pPager->journalOff==JOURNAL_HDR_SZ(pPager) ){
2898 rc = pager_truncate(pPager, mxPg);
2899 if( rc!=SQLITE_OK ){
2900 goto end_playback;
2902 pPager->dbSize = mxPg;
2905 /* Copy original pages out of the journal and back into the
2906 ** database file and/or page cache.
2908 for(u=0; u<nRec; u++){
2909 if( needPagerReset ){
2910 pager_reset(pPager);
2911 needPagerReset = 0;
2913 rc = pager_playback_one_page(pPager,&pPager->journalOff,0,1,0);
2914 if( rc==SQLITE_OK ){
2915 nPlayback++;
2916 }else{
2917 if( rc==SQLITE_DONE ){
2918 pPager->journalOff = szJ;
2919 break;
2920 }else if( rc==SQLITE_IOERR_SHORT_READ ){
2921 /* If the journal has been truncated, simply stop reading and
2922 ** processing the journal. This might happen if the journal was
2923 ** not completely written and synced prior to a crash. In that
2924 ** case, the database should have never been written in the
2925 ** first place so it is OK to simply abandon the rollback. */
2926 rc = SQLITE_OK;
2927 goto end_playback;
2928 }else{
2929 /* If we are unable to rollback, quit and return the error
2930 ** code. This will cause the pager to enter the error state
2931 ** so that no further harm will be done. Perhaps the next
2932 ** process to come along will be able to rollback the database.
2934 goto end_playback;
2939 /*NOTREACHED*/
2940 assert( 0 );
2942 end_playback:
2943 if( rc==SQLITE_OK ){
2944 rc = sqlite3PagerSetPagesize(pPager, &savedPageSize, -1);
2946 /* Following a rollback, the database file should be back in its original
2947 ** state prior to the start of the transaction, so invoke the
2948 ** SQLITE_FCNTL_DB_UNCHANGED file-control method to disable the
2949 ** assertion that the transaction counter was modified.
2951 #ifdef SQLITE_DEBUG
2952 if( pPager->fd->pMethods ){
2953 sqlite3OsFileControlHint(pPager->fd,SQLITE_FCNTL_DB_UNCHANGED,0);
2955 #endif
2957 /* If this playback is happening automatically as a result of an IO or
2958 ** malloc error that occurred after the change-counter was updated but
2959 ** before the transaction was committed, then the change-counter
2960 ** modification may just have been reverted. If this happens in exclusive
2961 ** mode, then subsequent transactions performed by the connection will not
2962 ** update the change-counter at all. This may lead to cache inconsistency
2963 ** problems for other processes at some point in the future. So, just
2964 ** in case this has happened, clear the changeCountDone flag now.
2966 pPager->changeCountDone = pPager->tempFile;
2968 if( rc==SQLITE_OK ){
2969 zMaster = pPager->pTmpSpace;
2970 rc = readMasterJournal(pPager->jfd, zMaster, pPager->pVfs->mxPathname+1);
2971 testcase( rc!=SQLITE_OK );
2973 if( rc==SQLITE_OK
2974 && (pPager->eState>=PAGER_WRITER_DBMOD || pPager->eState==PAGER_OPEN)
2976 rc = sqlite3PagerSync(pPager, 0);
2978 if( rc==SQLITE_OK ){
2979 rc = pager_end_transaction(pPager, zMaster[0]!='\0', 0);
2980 testcase( rc!=SQLITE_OK );
2982 if( rc==SQLITE_OK && zMaster[0] && res ){
2983 /* If there was a master journal and this routine will return success,
2984 ** see if it is possible to delete the master journal.
2986 rc = pager_delmaster(pPager, zMaster);
2987 testcase( rc!=SQLITE_OK );
2989 if( isHot && nPlayback ){
2990 sqlite3_log(SQLITE_NOTICE_RECOVER_ROLLBACK, "recovered %d pages from %s",
2991 nPlayback, pPager->zJournal);
2994 /* The Pager.sectorSize variable may have been updated while rolling
2995 ** back a journal created by a process with a different sector size
2996 ** value. Reset it to the correct value for this process.
2998 setSectorSize(pPager);
2999 return rc;
3004 ** Read the content for page pPg out of the database file (or out of
3005 ** the WAL if that is where the most recent copy if found) into
3006 ** pPg->pData. A shared lock or greater must be held on the database
3007 ** file before this function is called.
3009 ** If page 1 is read, then the value of Pager.dbFileVers[] is set to
3010 ** the value read from the database file.
3012 ** If an IO error occurs, then the IO error is returned to the caller.
3013 ** Otherwise, SQLITE_OK is returned.
3015 static int readDbPage(PgHdr *pPg){
3016 Pager *pPager = pPg->pPager; /* Pager object associated with page pPg */
3017 int rc = SQLITE_OK; /* Return code */
3019 #ifndef SQLITE_OMIT_WAL
3020 u32 iFrame = 0; /* Frame of WAL containing pgno */
3022 assert( pPager->eState>=PAGER_READER && !MEMDB );
3023 assert( isOpen(pPager->fd) );
3025 if( pagerUseWal(pPager) ){
3026 rc = sqlite3WalFindFrame(pPager->pWal, pPg->pgno, &iFrame);
3027 if( rc ) return rc;
3029 if( iFrame ){
3030 rc = sqlite3WalReadFrame(pPager->pWal, iFrame,pPager->pageSize,pPg->pData);
3031 }else
3032 #endif
3034 i64 iOffset = (pPg->pgno-1)*(i64)pPager->pageSize;
3035 rc = sqlite3OsRead(pPager->fd, pPg->pData, pPager->pageSize, iOffset);
3036 if( rc==SQLITE_IOERR_SHORT_READ ){
3037 rc = SQLITE_OK;
3041 if( pPg->pgno==1 ){
3042 if( rc ){
3043 /* If the read is unsuccessful, set the dbFileVers[] to something
3044 ** that will never be a valid file version. dbFileVers[] is a copy
3045 ** of bytes 24..39 of the database. Bytes 28..31 should always be
3046 ** zero or the size of the database in page. Bytes 32..35 and 35..39
3047 ** should be page numbers which are never 0xffffffff. So filling
3048 ** pPager->dbFileVers[] with all 0xff bytes should suffice.
3050 ** For an encrypted database, the situation is more complex: bytes
3051 ** 24..39 of the database are white noise. But the probability of
3052 ** white noise equaling 16 bytes of 0xff is vanishingly small so
3053 ** we should still be ok.
3055 memset(pPager->dbFileVers, 0xff, sizeof(pPager->dbFileVers));
3056 }else{
3057 u8 *dbFileVers = &((u8*)pPg->pData)[24];
3058 memcpy(&pPager->dbFileVers, dbFileVers, sizeof(pPager->dbFileVers));
3061 CODEC1(pPager, pPg->pData, pPg->pgno, 3, rc = SQLITE_NOMEM_BKPT);
3063 PAGER_INCR(sqlite3_pager_readdb_count);
3064 PAGER_INCR(pPager->nRead);
3065 IOTRACE(("PGIN %p %d\n", pPager, pPg->pgno));
3066 PAGERTRACE(("FETCH %d page %d hash(%08x)\n",
3067 PAGERID(pPager), pPg->pgno, pager_pagehash(pPg)));
3069 return rc;
3073 ** Update the value of the change-counter at offsets 24 and 92 in
3074 ** the header and the sqlite version number at offset 96.
3076 ** This is an unconditional update. See also the pager_incr_changecounter()
3077 ** routine which only updates the change-counter if the update is actually
3078 ** needed, as determined by the pPager->changeCountDone state variable.
3080 static void pager_write_changecounter(PgHdr *pPg){
3081 u32 change_counter;
3083 /* Increment the value just read and write it back to byte 24. */
3084 change_counter = sqlite3Get4byte((u8*)pPg->pPager->dbFileVers)+1;
3085 put32bits(((char*)pPg->pData)+24, change_counter);
3087 /* Also store the SQLite version number in bytes 96..99 and in
3088 ** bytes 92..95 store the change counter for which the version number
3089 ** is valid. */
3090 put32bits(((char*)pPg->pData)+92, change_counter);
3091 put32bits(((char*)pPg->pData)+96, SQLITE_VERSION_NUMBER);
3094 #ifndef SQLITE_OMIT_WAL
3096 ** This function is invoked once for each page that has already been
3097 ** written into the log file when a WAL transaction is rolled back.
3098 ** Parameter iPg is the page number of said page. The pCtx argument
3099 ** is actually a pointer to the Pager structure.
3101 ** If page iPg is present in the cache, and has no outstanding references,
3102 ** it is discarded. Otherwise, if there are one or more outstanding
3103 ** references, the page content is reloaded from the database. If the
3104 ** attempt to reload content from the database is required and fails,
3105 ** return an SQLite error code. Otherwise, SQLITE_OK.
3107 static int pagerUndoCallback(void *pCtx, Pgno iPg){
3108 int rc = SQLITE_OK;
3109 Pager *pPager = (Pager *)pCtx;
3110 PgHdr *pPg;
3112 assert( pagerUseWal(pPager) );
3113 pPg = sqlite3PagerLookup(pPager, iPg);
3114 if( pPg ){
3115 if( sqlite3PcachePageRefcount(pPg)==1 ){
3116 sqlite3PcacheDrop(pPg);
3117 }else{
3118 rc = readDbPage(pPg);
3119 if( rc==SQLITE_OK ){
3120 pPager->xReiniter(pPg);
3122 sqlite3PagerUnrefNotNull(pPg);
3126 /* Normally, if a transaction is rolled back, any backup processes are
3127 ** updated as data is copied out of the rollback journal and into the
3128 ** database. This is not generally possible with a WAL database, as
3129 ** rollback involves simply truncating the log file. Therefore, if one
3130 ** or more frames have already been written to the log (and therefore
3131 ** also copied into the backup databases) as part of this transaction,
3132 ** the backups must be restarted.
3134 sqlite3BackupRestart(pPager->pBackup);
3136 return rc;
3140 ** This function is called to rollback a transaction on a WAL database.
3142 static int pagerRollbackWal(Pager *pPager){
3143 int rc; /* Return Code */
3144 PgHdr *pList; /* List of dirty pages to revert */
3146 /* For all pages in the cache that are currently dirty or have already
3147 ** been written (but not committed) to the log file, do one of the
3148 ** following:
3150 ** + Discard the cached page (if refcount==0), or
3151 ** + Reload page content from the database (if refcount>0).
3153 pPager->dbSize = pPager->dbOrigSize;
3154 rc = sqlite3WalUndo(pPager->pWal, pagerUndoCallback, (void *)pPager);
3155 pList = sqlite3PcacheDirtyList(pPager->pPCache);
3156 while( pList && rc==SQLITE_OK ){
3157 PgHdr *pNext = pList->pDirty;
3158 rc = pagerUndoCallback((void *)pPager, pList->pgno);
3159 pList = pNext;
3162 return rc;
3166 ** This function is a wrapper around sqlite3WalFrames(). As well as logging
3167 ** the contents of the list of pages headed by pList (connected by pDirty),
3168 ** this function notifies any active backup processes that the pages have
3169 ** changed.
3171 ** The list of pages passed into this routine is always sorted by page number.
3172 ** Hence, if page 1 appears anywhere on the list, it will be the first page.
3174 static int pagerWalFrames(
3175 Pager *pPager, /* Pager object */
3176 PgHdr *pList, /* List of frames to log */
3177 Pgno nTruncate, /* Database size after this commit */
3178 int isCommit /* True if this is a commit */
3180 int rc; /* Return code */
3181 int nList; /* Number of pages in pList */
3182 PgHdr *p; /* For looping over pages */
3184 assert( pPager->pWal );
3185 assert( pList );
3186 #ifdef SQLITE_DEBUG
3187 /* Verify that the page list is in accending order */
3188 for(p=pList; p && p->pDirty; p=p->pDirty){
3189 assert( p->pgno < p->pDirty->pgno );
3191 #endif
3193 assert( pList->pDirty==0 || isCommit );
3194 if( isCommit ){
3195 /* If a WAL transaction is being committed, there is no point in writing
3196 ** any pages with page numbers greater than nTruncate into the WAL file.
3197 ** They will never be read by any client. So remove them from the pDirty
3198 ** list here. */
3199 PgHdr **ppNext = &pList;
3200 nList = 0;
3201 for(p=pList; (*ppNext = p)!=0; p=p->pDirty){
3202 if( p->pgno<=nTruncate ){
3203 ppNext = &p->pDirty;
3204 nList++;
3207 assert( pList );
3208 }else{
3209 nList = 1;
3211 pPager->aStat[PAGER_STAT_WRITE] += nList;
3213 if( pList->pgno==1 ) pager_write_changecounter(pList);
3214 rc = sqlite3WalFrames(pPager->pWal,
3215 pPager->pageSize, pList, nTruncate, isCommit, pPager->walSyncFlags
3217 if( rc==SQLITE_OK && pPager->pBackup ){
3218 for(p=pList; p; p=p->pDirty){
3219 sqlite3BackupUpdate(pPager->pBackup, p->pgno, (u8 *)p->pData);
3223 #ifdef SQLITE_CHECK_PAGES
3224 pList = sqlite3PcacheDirtyList(pPager->pPCache);
3225 for(p=pList; p; p=p->pDirty){
3226 pager_set_pagehash(p);
3228 #endif
3230 return rc;
3234 ** Begin a read transaction on the WAL.
3236 ** This routine used to be called "pagerOpenSnapshot()" because it essentially
3237 ** makes a snapshot of the database at the current point in time and preserves
3238 ** that snapshot for use by the reader in spite of concurrently changes by
3239 ** other writers or checkpointers.
3241 static int pagerBeginReadTransaction(Pager *pPager){
3242 int rc; /* Return code */
3243 int changed = 0; /* True if cache must be reset */
3245 assert( pagerUseWal(pPager) );
3246 assert( pPager->eState==PAGER_OPEN || pPager->eState==PAGER_READER );
3248 /* sqlite3WalEndReadTransaction() was not called for the previous
3249 ** transaction in locking_mode=EXCLUSIVE. So call it now. If we
3250 ** are in locking_mode=NORMAL and EndRead() was previously called,
3251 ** the duplicate call is harmless.
3253 sqlite3WalEndReadTransaction(pPager->pWal);
3255 rc = sqlite3WalBeginReadTransaction(pPager->pWal, &changed);
3256 if( rc!=SQLITE_OK || changed ){
3257 pager_reset(pPager);
3258 if( USEFETCH(pPager) ) sqlite3OsUnfetch(pPager->fd, 0, 0);
3261 return rc;
3263 #endif
3266 ** This function is called as part of the transition from PAGER_OPEN
3267 ** to PAGER_READER state to determine the size of the database file
3268 ** in pages (assuming the page size currently stored in Pager.pageSize).
3270 ** If no error occurs, SQLITE_OK is returned and the size of the database
3271 ** in pages is stored in *pnPage. Otherwise, an error code (perhaps
3272 ** SQLITE_IOERR_FSTAT) is returned and *pnPage is left unmodified.
3274 static int pagerPagecount(Pager *pPager, Pgno *pnPage){
3275 Pgno nPage; /* Value to return via *pnPage */
3277 /* Query the WAL sub-system for the database size. The WalDbsize()
3278 ** function returns zero if the WAL is not open (i.e. Pager.pWal==0), or
3279 ** if the database size is not available. The database size is not
3280 ** available from the WAL sub-system if the log file is empty or
3281 ** contains no valid committed transactions.
3283 assert( pPager->eState==PAGER_OPEN );
3284 assert( pPager->eLock>=SHARED_LOCK );
3285 assert( isOpen(pPager->fd) );
3286 assert( pPager->tempFile==0 );
3287 nPage = sqlite3WalDbsize(pPager->pWal);
3289 /* If the number of pages in the database is not available from the
3290 ** WAL sub-system, determine the page count based on the size of
3291 ** the database file. If the size of the database file is not an
3292 ** integer multiple of the page-size, round up the result.
3294 if( nPage==0 && ALWAYS(isOpen(pPager->fd)) ){
3295 i64 n = 0; /* Size of db file in bytes */
3296 int rc = sqlite3OsFileSize(pPager->fd, &n);
3297 if( rc!=SQLITE_OK ){
3298 return rc;
3300 nPage = (Pgno)((n+pPager->pageSize-1) / pPager->pageSize);
3303 /* If the current number of pages in the file is greater than the
3304 ** configured maximum pager number, increase the allowed limit so
3305 ** that the file can be read.
3307 if( nPage>pPager->mxPgno ){
3308 pPager->mxPgno = (Pgno)nPage;
3311 *pnPage = nPage;
3312 return SQLITE_OK;
3315 #ifndef SQLITE_OMIT_WAL
3317 ** Check if the *-wal file that corresponds to the database opened by pPager
3318 ** exists if the database is not empy, or verify that the *-wal file does
3319 ** not exist (by deleting it) if the database file is empty.
3321 ** If the database is not empty and the *-wal file exists, open the pager
3322 ** in WAL mode. If the database is empty or if no *-wal file exists and
3323 ** if no error occurs, make sure Pager.journalMode is not set to
3324 ** PAGER_JOURNALMODE_WAL.
3326 ** Return SQLITE_OK or an error code.
3328 ** The caller must hold a SHARED lock on the database file to call this
3329 ** function. Because an EXCLUSIVE lock on the db file is required to delete
3330 ** a WAL on a none-empty database, this ensures there is no race condition
3331 ** between the xAccess() below and an xDelete() being executed by some
3332 ** other connection.
3334 static int pagerOpenWalIfPresent(Pager *pPager){
3335 int rc = SQLITE_OK;
3336 assert( pPager->eState==PAGER_OPEN );
3337 assert( pPager->eLock>=SHARED_LOCK );
3339 if( !pPager->tempFile ){
3340 int isWal; /* True if WAL file exists */
3341 rc = sqlite3OsAccess(
3342 pPager->pVfs, pPager->zWal, SQLITE_ACCESS_EXISTS, &isWal
3344 if( rc==SQLITE_OK ){
3345 if( isWal ){
3346 Pgno nPage; /* Size of the database file */
3348 rc = pagerPagecount(pPager, &nPage);
3349 if( rc ) return rc;
3350 if( nPage==0 ){
3351 rc = sqlite3OsDelete(pPager->pVfs, pPager->zWal, 0);
3352 }else{
3353 testcase( sqlite3PcachePagecount(pPager->pPCache)==0 );
3354 rc = sqlite3PagerOpenWal(pPager, 0);
3356 }else if( pPager->journalMode==PAGER_JOURNALMODE_WAL ){
3357 pPager->journalMode = PAGER_JOURNALMODE_DELETE;
3361 return rc;
3363 #endif
3366 ** Playback savepoint pSavepoint. Or, if pSavepoint==NULL, then playback
3367 ** the entire master journal file. The case pSavepoint==NULL occurs when
3368 ** a ROLLBACK TO command is invoked on a SAVEPOINT that is a transaction
3369 ** savepoint.
3371 ** When pSavepoint is not NULL (meaning a non-transaction savepoint is
3372 ** being rolled back), then the rollback consists of up to three stages,
3373 ** performed in the order specified:
3375 ** * Pages are played back from the main journal starting at byte
3376 ** offset PagerSavepoint.iOffset and continuing to
3377 ** PagerSavepoint.iHdrOffset, or to the end of the main journal
3378 ** file if PagerSavepoint.iHdrOffset is zero.
3380 ** * If PagerSavepoint.iHdrOffset is not zero, then pages are played
3381 ** back starting from the journal header immediately following
3382 ** PagerSavepoint.iHdrOffset to the end of the main journal file.
3384 ** * Pages are then played back from the sub-journal file, starting
3385 ** with the PagerSavepoint.iSubRec and continuing to the end of
3386 ** the journal file.
3388 ** Throughout the rollback process, each time a page is rolled back, the
3389 ** corresponding bit is set in a bitvec structure (variable pDone in the
3390 ** implementation below). This is used to ensure that a page is only
3391 ** rolled back the first time it is encountered in either journal.
3393 ** If pSavepoint is NULL, then pages are only played back from the main
3394 ** journal file. There is no need for a bitvec in this case.
3396 ** In either case, before playback commences the Pager.dbSize variable
3397 ** is reset to the value that it held at the start of the savepoint
3398 ** (or transaction). No page with a page-number greater than this value
3399 ** is played back. If one is encountered it is simply skipped.
3401 static int pagerPlaybackSavepoint(Pager *pPager, PagerSavepoint *pSavepoint){
3402 i64 szJ; /* Effective size of the main journal */
3403 i64 iHdrOff; /* End of first segment of main-journal records */
3404 int rc = SQLITE_OK; /* Return code */
3405 Bitvec *pDone = 0; /* Bitvec to ensure pages played back only once */
3407 assert( pPager->eState!=PAGER_ERROR );
3408 assert( pPager->eState>=PAGER_WRITER_LOCKED );
3410 /* Allocate a bitvec to use to store the set of pages rolled back */
3411 if( pSavepoint ){
3412 pDone = sqlite3BitvecCreate(pSavepoint->nOrig);
3413 if( !pDone ){
3414 return SQLITE_NOMEM_BKPT;
3418 /* Set the database size back to the value it was before the savepoint
3419 ** being reverted was opened.
3421 pPager->dbSize = pSavepoint ? pSavepoint->nOrig : pPager->dbOrigSize;
3422 pPager->changeCountDone = pPager->tempFile;
3424 if( !pSavepoint && pagerUseWal(pPager) ){
3425 return pagerRollbackWal(pPager);
3428 /* Use pPager->journalOff as the effective size of the main rollback
3429 ** journal. The actual file might be larger than this in
3430 ** PAGER_JOURNALMODE_TRUNCATE or PAGER_JOURNALMODE_PERSIST. But anything
3431 ** past pPager->journalOff is off-limits to us.
3433 szJ = pPager->journalOff;
3434 assert( pagerUseWal(pPager)==0 || szJ==0 );
3436 /* Begin by rolling back records from the main journal starting at
3437 ** PagerSavepoint.iOffset and continuing to the next journal header.
3438 ** There might be records in the main journal that have a page number
3439 ** greater than the current database size (pPager->dbSize) but those
3440 ** will be skipped automatically. Pages are added to pDone as they
3441 ** are played back.
3443 if( pSavepoint && !pagerUseWal(pPager) ){
3444 iHdrOff = pSavepoint->iHdrOffset ? pSavepoint->iHdrOffset : szJ;
3445 pPager->journalOff = pSavepoint->iOffset;
3446 while( rc==SQLITE_OK && pPager->journalOff<iHdrOff ){
3447 rc = pager_playback_one_page(pPager, &pPager->journalOff, pDone, 1, 1);
3449 assert( rc!=SQLITE_DONE );
3450 }else{
3451 pPager->journalOff = 0;
3454 /* Continue rolling back records out of the main journal starting at
3455 ** the first journal header seen and continuing until the effective end
3456 ** of the main journal file. Continue to skip out-of-range pages and
3457 ** continue adding pages rolled back to pDone.
3459 while( rc==SQLITE_OK && pPager->journalOff<szJ ){
3460 u32 ii; /* Loop counter */
3461 u32 nJRec = 0; /* Number of Journal Records */
3462 u32 dummy;
3463 rc = readJournalHdr(pPager, 0, szJ, &nJRec, &dummy);
3464 assert( rc!=SQLITE_DONE );
3467 ** The "pPager->journalHdr+JOURNAL_HDR_SZ(pPager)==pPager->journalOff"
3468 ** test is related to ticket #2565. See the discussion in the
3469 ** pager_playback() function for additional information.
3471 if( nJRec==0
3472 && pPager->journalHdr+JOURNAL_HDR_SZ(pPager)==pPager->journalOff
3474 nJRec = (u32)((szJ - pPager->journalOff)/JOURNAL_PG_SZ(pPager));
3476 for(ii=0; rc==SQLITE_OK && ii<nJRec && pPager->journalOff<szJ; ii++){
3477 rc = pager_playback_one_page(pPager, &pPager->journalOff, pDone, 1, 1);
3479 assert( rc!=SQLITE_DONE );
3481 assert( rc!=SQLITE_OK || pPager->journalOff>=szJ );
3483 /* Finally, rollback pages from the sub-journal. Page that were
3484 ** previously rolled back out of the main journal (and are hence in pDone)
3485 ** will be skipped. Out-of-range pages are also skipped.
3487 if( pSavepoint ){
3488 u32 ii; /* Loop counter */
3489 i64 offset = (i64)pSavepoint->iSubRec*(4+pPager->pageSize);
3491 if( pagerUseWal(pPager) ){
3492 rc = sqlite3WalSavepointUndo(pPager->pWal, pSavepoint->aWalData);
3494 for(ii=pSavepoint->iSubRec; rc==SQLITE_OK && ii<pPager->nSubRec; ii++){
3495 assert( offset==(i64)ii*(4+pPager->pageSize) );
3496 rc = pager_playback_one_page(pPager, &offset, pDone, 0, 1);
3498 assert( rc!=SQLITE_DONE );
3501 sqlite3BitvecDestroy(pDone);
3502 if( rc==SQLITE_OK ){
3503 pPager->journalOff = szJ;
3506 return rc;
3510 ** Change the maximum number of in-memory pages that are allowed
3511 ** before attempting to recycle clean and unused pages.
3513 void sqlite3PagerSetCachesize(Pager *pPager, int mxPage){
3514 sqlite3PcacheSetCachesize(pPager->pPCache, mxPage);
3518 ** Change the maximum number of in-memory pages that are allowed
3519 ** before attempting to spill pages to journal.
3521 int sqlite3PagerSetSpillsize(Pager *pPager, int mxPage){
3522 return sqlite3PcacheSetSpillsize(pPager->pPCache, mxPage);
3526 ** Invoke SQLITE_FCNTL_MMAP_SIZE based on the current value of szMmap.
3528 static void pagerFixMaplimit(Pager *pPager){
3529 #if SQLITE_MAX_MMAP_SIZE>0
3530 sqlite3_file *fd = pPager->fd;
3531 if( isOpen(fd) && fd->pMethods->iVersion>=3 ){
3532 sqlite3_int64 sz;
3533 sz = pPager->szMmap;
3534 pPager->bUseFetch = (sz>0);
3535 setGetterMethod(pPager);
3536 sqlite3OsFileControlHint(pPager->fd, SQLITE_FCNTL_MMAP_SIZE, &sz);
3538 #endif
3542 ** Change the maximum size of any memory mapping made of the database file.
3544 void sqlite3PagerSetMmapLimit(Pager *pPager, sqlite3_int64 szMmap){
3545 pPager->szMmap = szMmap;
3546 pagerFixMaplimit(pPager);
3550 ** Free as much memory as possible from the pager.
3552 void sqlite3PagerShrink(Pager *pPager){
3553 sqlite3PcacheShrink(pPager->pPCache);
3557 ** Adjust settings of the pager to those specified in the pgFlags parameter.
3559 ** The "level" in pgFlags & PAGER_SYNCHRONOUS_MASK sets the robustness
3560 ** of the database to damage due to OS crashes or power failures by
3561 ** changing the number of syncs()s when writing the journals.
3562 ** There are four levels:
3564 ** OFF sqlite3OsSync() is never called. This is the default
3565 ** for temporary and transient files.
3567 ** NORMAL The journal is synced once before writes begin on the
3568 ** database. This is normally adequate protection, but
3569 ** it is theoretically possible, though very unlikely,
3570 ** that an inopertune power failure could leave the journal
3571 ** in a state which would cause damage to the database
3572 ** when it is rolled back.
3574 ** FULL The journal is synced twice before writes begin on the
3575 ** database (with some additional information - the nRec field
3576 ** of the journal header - being written in between the two
3577 ** syncs). If we assume that writing a
3578 ** single disk sector is atomic, then this mode provides
3579 ** assurance that the journal will not be corrupted to the
3580 ** point of causing damage to the database during rollback.
3582 ** EXTRA This is like FULL except that is also syncs the directory
3583 ** that contains the rollback journal after the rollback
3584 ** journal is unlinked.
3586 ** The above is for a rollback-journal mode. For WAL mode, OFF continues
3587 ** to mean that no syncs ever occur. NORMAL means that the WAL is synced
3588 ** prior to the start of checkpoint and that the database file is synced
3589 ** at the conclusion of the checkpoint if the entire content of the WAL
3590 ** was written back into the database. But no sync operations occur for
3591 ** an ordinary commit in NORMAL mode with WAL. FULL means that the WAL
3592 ** file is synced following each commit operation, in addition to the
3593 ** syncs associated with NORMAL. There is no difference between FULL
3594 ** and EXTRA for WAL mode.
3596 ** Do not confuse synchronous=FULL with SQLITE_SYNC_FULL. The
3597 ** SQLITE_SYNC_FULL macro means to use the MacOSX-style full-fsync
3598 ** using fcntl(F_FULLFSYNC). SQLITE_SYNC_NORMAL means to do an
3599 ** ordinary fsync() call. There is no difference between SQLITE_SYNC_FULL
3600 ** and SQLITE_SYNC_NORMAL on platforms other than MacOSX. But the
3601 ** synchronous=FULL versus synchronous=NORMAL setting determines when
3602 ** the xSync primitive is called and is relevant to all platforms.
3604 ** Numeric values associated with these states are OFF==1, NORMAL=2,
3605 ** and FULL=3.
3607 #ifndef SQLITE_OMIT_PAGER_PRAGMAS
3608 void sqlite3PagerSetFlags(
3609 Pager *pPager, /* The pager to set safety level for */
3610 unsigned pgFlags /* Various flags */
3612 unsigned level = pgFlags & PAGER_SYNCHRONOUS_MASK;
3613 if( pPager->tempFile ){
3614 pPager->noSync = 1;
3615 pPager->fullSync = 0;
3616 pPager->extraSync = 0;
3617 }else{
3618 pPager->noSync = level==PAGER_SYNCHRONOUS_OFF ?1:0;
3619 pPager->fullSync = level>=PAGER_SYNCHRONOUS_FULL ?1:0;
3620 pPager->extraSync = level==PAGER_SYNCHRONOUS_EXTRA ?1:0;
3622 if( pPager->noSync ){
3623 pPager->syncFlags = 0;
3624 }else if( pgFlags & PAGER_FULLFSYNC ){
3625 pPager->syncFlags = SQLITE_SYNC_FULL;
3626 }else{
3627 pPager->syncFlags = SQLITE_SYNC_NORMAL;
3629 pPager->walSyncFlags = (pPager->syncFlags<<2);
3630 if( pPager->fullSync ){
3631 pPager->walSyncFlags |= pPager->syncFlags;
3633 if( (pgFlags & PAGER_CKPT_FULLFSYNC) && !pPager->noSync ){
3634 pPager->walSyncFlags |= (SQLITE_SYNC_FULL<<2);
3636 if( pgFlags & PAGER_CACHESPILL ){
3637 pPager->doNotSpill &= ~SPILLFLAG_OFF;
3638 }else{
3639 pPager->doNotSpill |= SPILLFLAG_OFF;
3642 #endif
3645 ** The following global variable is incremented whenever the library
3646 ** attempts to open a temporary file. This information is used for
3647 ** testing and analysis only.
3649 #ifdef SQLITE_TEST
3650 int sqlite3_opentemp_count = 0;
3651 #endif
3654 ** Open a temporary file.
3656 ** Write the file descriptor into *pFile. Return SQLITE_OK on success
3657 ** or some other error code if we fail. The OS will automatically
3658 ** delete the temporary file when it is closed.
3660 ** The flags passed to the VFS layer xOpen() call are those specified
3661 ** by parameter vfsFlags ORed with the following:
3663 ** SQLITE_OPEN_READWRITE
3664 ** SQLITE_OPEN_CREATE
3665 ** SQLITE_OPEN_EXCLUSIVE
3666 ** SQLITE_OPEN_DELETEONCLOSE
3668 static int pagerOpentemp(
3669 Pager *pPager, /* The pager object */
3670 sqlite3_file *pFile, /* Write the file descriptor here */
3671 int vfsFlags /* Flags passed through to the VFS */
3673 int rc; /* Return code */
3675 #ifdef SQLITE_TEST
3676 sqlite3_opentemp_count++; /* Used for testing and analysis only */
3677 #endif
3679 vfsFlags |= SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE |
3680 SQLITE_OPEN_EXCLUSIVE | SQLITE_OPEN_DELETEONCLOSE;
3681 rc = sqlite3OsOpen(pPager->pVfs, 0, pFile, vfsFlags, 0);
3682 assert( rc!=SQLITE_OK || isOpen(pFile) );
3683 return rc;
3687 ** Set the busy handler function.
3689 ** The pager invokes the busy-handler if sqlite3OsLock() returns
3690 ** SQLITE_BUSY when trying to upgrade from no-lock to a SHARED lock,
3691 ** or when trying to upgrade from a RESERVED lock to an EXCLUSIVE
3692 ** lock. It does *not* invoke the busy handler when upgrading from
3693 ** SHARED to RESERVED, or when upgrading from SHARED to EXCLUSIVE
3694 ** (which occurs during hot-journal rollback). Summary:
3696 ** Transition | Invokes xBusyHandler
3697 ** --------------------------------------------------------
3698 ** NO_LOCK -> SHARED_LOCK | Yes
3699 ** SHARED_LOCK -> RESERVED_LOCK | No
3700 ** SHARED_LOCK -> EXCLUSIVE_LOCK | No
3701 ** RESERVED_LOCK -> EXCLUSIVE_LOCK | Yes
3703 ** If the busy-handler callback returns non-zero, the lock is
3704 ** retried. If it returns zero, then the SQLITE_BUSY error is
3705 ** returned to the caller of the pager API function.
3707 void sqlite3PagerSetBusyhandler(
3708 Pager *pPager, /* Pager object */
3709 int (*xBusyHandler)(void *), /* Pointer to busy-handler function */
3710 void *pBusyHandlerArg /* Argument to pass to xBusyHandler */
3712 pPager->xBusyHandler = xBusyHandler;
3713 pPager->pBusyHandlerArg = pBusyHandlerArg;
3715 if( isOpen(pPager->fd) ){
3716 void **ap = (void **)&pPager->xBusyHandler;
3717 assert( ((int(*)(void *))(ap[0]))==xBusyHandler );
3718 assert( ap[1]==pBusyHandlerArg );
3719 sqlite3OsFileControlHint(pPager->fd, SQLITE_FCNTL_BUSYHANDLER, (void *)ap);
3724 ** Change the page size used by the Pager object. The new page size
3725 ** is passed in *pPageSize.
3727 ** If the pager is in the error state when this function is called, it
3728 ** is a no-op. The value returned is the error state error code (i.e.
3729 ** one of SQLITE_IOERR, an SQLITE_IOERR_xxx sub-code or SQLITE_FULL).
3731 ** Otherwise, if all of the following are true:
3733 ** * the new page size (value of *pPageSize) is valid (a power
3734 ** of two between 512 and SQLITE_MAX_PAGE_SIZE, inclusive), and
3736 ** * there are no outstanding page references, and
3738 ** * the database is either not an in-memory database or it is
3739 ** an in-memory database that currently consists of zero pages.
3741 ** then the pager object page size is set to *pPageSize.
3743 ** If the page size is changed, then this function uses sqlite3PagerMalloc()
3744 ** to obtain a new Pager.pTmpSpace buffer. If this allocation attempt
3745 ** fails, SQLITE_NOMEM is returned and the page size remains unchanged.
3746 ** In all other cases, SQLITE_OK is returned.
3748 ** If the page size is not changed, either because one of the enumerated
3749 ** conditions above is not true, the pager was in error state when this
3750 ** function was called, or because the memory allocation attempt failed,
3751 ** then *pPageSize is set to the old, retained page size before returning.
3753 int sqlite3PagerSetPagesize(Pager *pPager, u32 *pPageSize, int nReserve){
3754 int rc = SQLITE_OK;
3756 /* It is not possible to do a full assert_pager_state() here, as this
3757 ** function may be called from within PagerOpen(), before the state
3758 ** of the Pager object is internally consistent.
3760 ** At one point this function returned an error if the pager was in
3761 ** PAGER_ERROR state. But since PAGER_ERROR state guarantees that
3762 ** there is at least one outstanding page reference, this function
3763 ** is a no-op for that case anyhow.
3766 u32 pageSize = *pPageSize;
3767 assert( pageSize==0 || (pageSize>=512 && pageSize<=SQLITE_MAX_PAGE_SIZE) );
3768 if( (pPager->memDb==0 || pPager->dbSize==0)
3769 && sqlite3PcacheRefCount(pPager->pPCache)==0
3770 && pageSize && pageSize!=(u32)pPager->pageSize
3772 char *pNew = NULL; /* New temp space */
3773 i64 nByte = 0;
3775 if( pPager->eState>PAGER_OPEN && isOpen(pPager->fd) ){
3776 rc = sqlite3OsFileSize(pPager->fd, &nByte);
3778 if( rc==SQLITE_OK ){
3779 pNew = (char *)sqlite3PageMalloc(pageSize);
3780 if( !pNew ) rc = SQLITE_NOMEM_BKPT;
3783 if( rc==SQLITE_OK ){
3784 pager_reset(pPager);
3785 rc = sqlite3PcacheSetPageSize(pPager->pPCache, pageSize);
3787 if( rc==SQLITE_OK ){
3788 sqlite3PageFree(pPager->pTmpSpace);
3789 pPager->pTmpSpace = pNew;
3790 pPager->dbSize = (Pgno)((nByte+pageSize-1)/pageSize);
3791 pPager->pageSize = pageSize;
3792 }else{
3793 sqlite3PageFree(pNew);
3797 *pPageSize = pPager->pageSize;
3798 if( rc==SQLITE_OK ){
3799 if( nReserve<0 ) nReserve = pPager->nReserve;
3800 assert( nReserve>=0 && nReserve<1000 );
3801 pPager->nReserve = (i16)nReserve;
3802 pagerReportSize(pPager);
3803 pagerFixMaplimit(pPager);
3805 return rc;
3809 ** Return a pointer to the "temporary page" buffer held internally
3810 ** by the pager. This is a buffer that is big enough to hold the
3811 ** entire content of a database page. This buffer is used internally
3812 ** during rollback and will be overwritten whenever a rollback
3813 ** occurs. But other modules are free to use it too, as long as
3814 ** no rollbacks are happening.
3816 void *sqlite3PagerTempSpace(Pager *pPager){
3817 return pPager->pTmpSpace;
3821 ** Attempt to set the maximum database page count if mxPage is positive.
3822 ** Make no changes if mxPage is zero or negative. And never reduce the
3823 ** maximum page count below the current size of the database.
3825 ** Regardless of mxPage, return the current maximum page count.
3827 int sqlite3PagerMaxPageCount(Pager *pPager, int mxPage){
3828 if( mxPage>0 ){
3829 pPager->mxPgno = mxPage;
3831 assert( pPager->eState!=PAGER_OPEN ); /* Called only by OP_MaxPgcnt */
3832 assert( pPager->mxPgno>=pPager->dbSize ); /* OP_MaxPgcnt enforces this */
3833 return pPager->mxPgno;
3837 ** The following set of routines are used to disable the simulated
3838 ** I/O error mechanism. These routines are used to avoid simulated
3839 ** errors in places where we do not care about errors.
3841 ** Unless -DSQLITE_TEST=1 is used, these routines are all no-ops
3842 ** and generate no code.
3844 #ifdef SQLITE_TEST
3845 extern int sqlite3_io_error_pending;
3846 extern int sqlite3_io_error_hit;
3847 static int saved_cnt;
3848 void disable_simulated_io_errors(void){
3849 saved_cnt = sqlite3_io_error_pending;
3850 sqlite3_io_error_pending = -1;
3852 void enable_simulated_io_errors(void){
3853 sqlite3_io_error_pending = saved_cnt;
3855 #else
3856 # define disable_simulated_io_errors()
3857 # define enable_simulated_io_errors()
3858 #endif
3861 ** Read the first N bytes from the beginning of the file into memory
3862 ** that pDest points to.
3864 ** If the pager was opened on a transient file (zFilename==""), or
3865 ** opened on a file less than N bytes in size, the output buffer is
3866 ** zeroed and SQLITE_OK returned. The rationale for this is that this
3867 ** function is used to read database headers, and a new transient or
3868 ** zero sized database has a header than consists entirely of zeroes.
3870 ** If any IO error apart from SQLITE_IOERR_SHORT_READ is encountered,
3871 ** the error code is returned to the caller and the contents of the
3872 ** output buffer undefined.
3874 int sqlite3PagerReadFileheader(Pager *pPager, int N, unsigned char *pDest){
3875 int rc = SQLITE_OK;
3876 memset(pDest, 0, N);
3877 assert( isOpen(pPager->fd) || pPager->tempFile );
3879 /* This routine is only called by btree immediately after creating
3880 ** the Pager object. There has not been an opportunity to transition
3881 ** to WAL mode yet.
3883 assert( !pagerUseWal(pPager) );
3885 if( isOpen(pPager->fd) ){
3886 IOTRACE(("DBHDR %p 0 %d\n", pPager, N))
3887 rc = sqlite3OsRead(pPager->fd, pDest, N, 0);
3888 if( rc==SQLITE_IOERR_SHORT_READ ){
3889 rc = SQLITE_OK;
3892 return rc;
3896 ** This function may only be called when a read-transaction is open on
3897 ** the pager. It returns the total number of pages in the database.
3899 ** However, if the file is between 1 and <page-size> bytes in size, then
3900 ** this is considered a 1 page file.
3902 void sqlite3PagerPagecount(Pager *pPager, int *pnPage){
3903 assert( pPager->eState>=PAGER_READER );
3904 assert( pPager->eState!=PAGER_WRITER_FINISHED );
3905 *pnPage = (int)pPager->dbSize;
3910 ** Try to obtain a lock of type locktype on the database file. If
3911 ** a similar or greater lock is already held, this function is a no-op
3912 ** (returning SQLITE_OK immediately).
3914 ** Otherwise, attempt to obtain the lock using sqlite3OsLock(). Invoke
3915 ** the busy callback if the lock is currently not available. Repeat
3916 ** until the busy callback returns false or until the attempt to
3917 ** obtain the lock succeeds.
3919 ** Return SQLITE_OK on success and an error code if we cannot obtain
3920 ** the lock. If the lock is obtained successfully, set the Pager.state
3921 ** variable to locktype before returning.
3923 static int pager_wait_on_lock(Pager *pPager, int locktype){
3924 int rc; /* Return code */
3926 /* Check that this is either a no-op (because the requested lock is
3927 ** already held), or one of the transitions that the busy-handler
3928 ** may be invoked during, according to the comment above
3929 ** sqlite3PagerSetBusyhandler().
3931 assert( (pPager->eLock>=locktype)
3932 || (pPager->eLock==NO_LOCK && locktype==SHARED_LOCK)
3933 || (pPager->eLock==RESERVED_LOCK && locktype==EXCLUSIVE_LOCK)
3936 do {
3937 rc = pagerLockDb(pPager, locktype);
3938 }while( rc==SQLITE_BUSY && pPager->xBusyHandler(pPager->pBusyHandlerArg) );
3939 return rc;
3943 ** Function assertTruncateConstraint(pPager) checks that one of the
3944 ** following is true for all dirty pages currently in the page-cache:
3946 ** a) The page number is less than or equal to the size of the
3947 ** current database image, in pages, OR
3949 ** b) if the page content were written at this time, it would not
3950 ** be necessary to write the current content out to the sub-journal
3951 ** (as determined by function subjRequiresPage()).
3953 ** If the condition asserted by this function were not true, and the
3954 ** dirty page were to be discarded from the cache via the pagerStress()
3955 ** routine, pagerStress() would not write the current page content to
3956 ** the database file. If a savepoint transaction were rolled back after
3957 ** this happened, the correct behavior would be to restore the current
3958 ** content of the page. However, since this content is not present in either
3959 ** the database file or the portion of the rollback journal and
3960 ** sub-journal rolled back the content could not be restored and the
3961 ** database image would become corrupt. It is therefore fortunate that
3962 ** this circumstance cannot arise.
3964 #if defined(SQLITE_DEBUG)
3965 static void assertTruncateConstraintCb(PgHdr *pPg){
3966 assert( pPg->flags&PGHDR_DIRTY );
3967 assert( !subjRequiresPage(pPg) || pPg->pgno<=pPg->pPager->dbSize );
3969 static void assertTruncateConstraint(Pager *pPager){
3970 sqlite3PcacheIterateDirty(pPager->pPCache, assertTruncateConstraintCb);
3972 #else
3973 # define assertTruncateConstraint(pPager)
3974 #endif
3977 ** Truncate the in-memory database file image to nPage pages. This
3978 ** function does not actually modify the database file on disk. It
3979 ** just sets the internal state of the pager object so that the
3980 ** truncation will be done when the current transaction is committed.
3982 ** This function is only called right before committing a transaction.
3983 ** Once this function has been called, the transaction must either be
3984 ** rolled back or committed. It is not safe to call this function and
3985 ** then continue writing to the database.
3987 void sqlite3PagerTruncateImage(Pager *pPager, Pgno nPage){
3988 assert( pPager->dbSize>=nPage );
3989 assert( pPager->eState>=PAGER_WRITER_CACHEMOD );
3990 pPager->dbSize = nPage;
3992 /* At one point the code here called assertTruncateConstraint() to
3993 ** ensure that all pages being truncated away by this operation are,
3994 ** if one or more savepoints are open, present in the savepoint
3995 ** journal so that they can be restored if the savepoint is rolled
3996 ** back. This is no longer necessary as this function is now only
3997 ** called right before committing a transaction. So although the
3998 ** Pager object may still have open savepoints (Pager.nSavepoint!=0),
3999 ** they cannot be rolled back. So the assertTruncateConstraint() call
4000 ** is no longer correct. */
4005 ** This function is called before attempting a hot-journal rollback. It
4006 ** syncs the journal file to disk, then sets pPager->journalHdr to the
4007 ** size of the journal file so that the pager_playback() routine knows
4008 ** that the entire journal file has been synced.
4010 ** Syncing a hot-journal to disk before attempting to roll it back ensures
4011 ** that if a power-failure occurs during the rollback, the process that
4012 ** attempts rollback following system recovery sees the same journal
4013 ** content as this process.
4015 ** If everything goes as planned, SQLITE_OK is returned. Otherwise,
4016 ** an SQLite error code.
4018 static int pagerSyncHotJournal(Pager *pPager){
4019 int rc = SQLITE_OK;
4020 if( !pPager->noSync ){
4021 rc = sqlite3OsSync(pPager->jfd, SQLITE_SYNC_NORMAL);
4023 if( rc==SQLITE_OK ){
4024 rc = sqlite3OsFileSize(pPager->jfd, &pPager->journalHdr);
4026 return rc;
4029 #if SQLITE_MAX_MMAP_SIZE>0
4031 ** Obtain a reference to a memory mapped page object for page number pgno.
4032 ** The new object will use the pointer pData, obtained from xFetch().
4033 ** If successful, set *ppPage to point to the new page reference
4034 ** and return SQLITE_OK. Otherwise, return an SQLite error code and set
4035 ** *ppPage to zero.
4037 ** Page references obtained by calling this function should be released
4038 ** by calling pagerReleaseMapPage().
4040 static int pagerAcquireMapPage(
4041 Pager *pPager, /* Pager object */
4042 Pgno pgno, /* Page number */
4043 void *pData, /* xFetch()'d data for this page */
4044 PgHdr **ppPage /* OUT: Acquired page object */
4046 PgHdr *p; /* Memory mapped page to return */
4048 if( pPager->pMmapFreelist ){
4049 *ppPage = p = pPager->pMmapFreelist;
4050 pPager->pMmapFreelist = p->pDirty;
4051 p->pDirty = 0;
4052 assert( pPager->nExtra>=8 );
4053 memset(p->pExtra, 0, 8);
4054 }else{
4055 *ppPage = p = (PgHdr *)sqlite3MallocZero(sizeof(PgHdr) + pPager->nExtra);
4056 if( p==0 ){
4057 sqlite3OsUnfetch(pPager->fd, (i64)(pgno-1) * pPager->pageSize, pData);
4058 return SQLITE_NOMEM_BKPT;
4060 p->pExtra = (void *)&p[1];
4061 p->flags = PGHDR_MMAP;
4062 p->nRef = 1;
4063 p->pPager = pPager;
4066 assert( p->pExtra==(void *)&p[1] );
4067 assert( p->pPage==0 );
4068 assert( p->flags==PGHDR_MMAP );
4069 assert( p->pPager==pPager );
4070 assert( p->nRef==1 );
4072 p->pgno = pgno;
4073 p->pData = pData;
4074 pPager->nMmapOut++;
4076 return SQLITE_OK;
4078 #endif
4081 ** Release a reference to page pPg. pPg must have been returned by an
4082 ** earlier call to pagerAcquireMapPage().
4084 static void pagerReleaseMapPage(PgHdr *pPg){
4085 Pager *pPager = pPg->pPager;
4086 pPager->nMmapOut--;
4087 pPg->pDirty = pPager->pMmapFreelist;
4088 pPager->pMmapFreelist = pPg;
4090 assert( pPager->fd->pMethods->iVersion>=3 );
4091 sqlite3OsUnfetch(pPager->fd, (i64)(pPg->pgno-1)*pPager->pageSize, pPg->pData);
4095 ** Free all PgHdr objects stored in the Pager.pMmapFreelist list.
4097 static void pagerFreeMapHdrs(Pager *pPager){
4098 PgHdr *p;
4099 PgHdr *pNext;
4100 for(p=pPager->pMmapFreelist; p; p=pNext){
4101 pNext = p->pDirty;
4102 sqlite3_free(p);
4106 /* Verify that the database file has not be deleted or renamed out from
4107 ** under the pager. Return SQLITE_OK if the database is still where it ought
4108 ** to be on disk. Return non-zero (SQLITE_READONLY_DBMOVED or some other error
4109 ** code from sqlite3OsAccess()) if the database has gone missing.
4111 static int databaseIsUnmoved(Pager *pPager){
4112 int bHasMoved = 0;
4113 int rc;
4115 if( pPager->tempFile ) return SQLITE_OK;
4116 if( pPager->dbSize==0 ) return SQLITE_OK;
4117 assert( pPager->zFilename && pPager->zFilename[0] );
4118 rc = sqlite3OsFileControl(pPager->fd, SQLITE_FCNTL_HAS_MOVED, &bHasMoved);
4119 if( rc==SQLITE_NOTFOUND ){
4120 /* If the HAS_MOVED file-control is unimplemented, assume that the file
4121 ** has not been moved. That is the historical behavior of SQLite: prior to
4122 ** version 3.8.3, it never checked */
4123 rc = SQLITE_OK;
4124 }else if( rc==SQLITE_OK && bHasMoved ){
4125 rc = SQLITE_READONLY_DBMOVED;
4127 return rc;
4132 ** Shutdown the page cache. Free all memory and close all files.
4134 ** If a transaction was in progress when this routine is called, that
4135 ** transaction is rolled back. All outstanding pages are invalidated
4136 ** and their memory is freed. Any attempt to use a page associated
4137 ** with this page cache after this function returns will likely
4138 ** result in a coredump.
4140 ** This function always succeeds. If a transaction is active an attempt
4141 ** is made to roll it back. If an error occurs during the rollback
4142 ** a hot journal may be left in the filesystem but no error is returned
4143 ** to the caller.
4145 int sqlite3PagerClose(Pager *pPager, sqlite3 *db){
4146 u8 *pTmp = (u8*)pPager->pTmpSpace;
4147 assert( db || pagerUseWal(pPager)==0 );
4148 assert( assert_pager_state(pPager) );
4149 disable_simulated_io_errors();
4150 sqlite3BeginBenignMalloc();
4151 pagerFreeMapHdrs(pPager);
4152 /* pPager->errCode = 0; */
4153 pPager->exclusiveMode = 0;
4154 #ifndef SQLITE_OMIT_WAL
4156 u8 *a = 0;
4157 assert( db || pPager->pWal==0 );
4158 if( db && 0==(db->flags & SQLITE_NoCkptOnClose)
4159 && SQLITE_OK==databaseIsUnmoved(pPager)
4161 a = pTmp;
4163 sqlite3WalClose(pPager->pWal, db, pPager->walSyncFlags, pPager->pageSize,a);
4164 pPager->pWal = 0;
4166 #endif
4167 pager_reset(pPager);
4168 if( MEMDB ){
4169 pager_unlock(pPager);
4170 }else{
4171 /* If it is open, sync the journal file before calling UnlockAndRollback.
4172 ** If this is not done, then an unsynced portion of the open journal
4173 ** file may be played back into the database. If a power failure occurs
4174 ** while this is happening, the database could become corrupt.
4176 ** If an error occurs while trying to sync the journal, shift the pager
4177 ** into the ERROR state. This causes UnlockAndRollback to unlock the
4178 ** database and close the journal file without attempting to roll it
4179 ** back or finalize it. The next database user will have to do hot-journal
4180 ** rollback before accessing the database file.
4182 if( isOpen(pPager->jfd) ){
4183 pager_error(pPager, pagerSyncHotJournal(pPager));
4185 pagerUnlockAndRollback(pPager);
4187 sqlite3EndBenignMalloc();
4188 enable_simulated_io_errors();
4189 PAGERTRACE(("CLOSE %d\n", PAGERID(pPager)));
4190 IOTRACE(("CLOSE %p\n", pPager))
4191 sqlite3OsClose(pPager->jfd);
4192 sqlite3OsClose(pPager->fd);
4193 sqlite3PageFree(pTmp);
4194 sqlite3PcacheClose(pPager->pPCache);
4196 #ifdef SQLITE_HAS_CODEC
4197 if( pPager->xCodecFree ) pPager->xCodecFree(pPager->pCodec);
4198 #endif
4200 assert( !pPager->aSavepoint && !pPager->pInJournal );
4201 assert( !isOpen(pPager->jfd) && !isOpen(pPager->sjfd) );
4203 sqlite3_free(pPager);
4204 return SQLITE_OK;
4207 #if !defined(NDEBUG) || defined(SQLITE_TEST)
4209 ** Return the page number for page pPg.
4211 Pgno sqlite3PagerPagenumber(DbPage *pPg){
4212 return pPg->pgno;
4214 #endif
4217 ** Increment the reference count for page pPg.
4219 void sqlite3PagerRef(DbPage *pPg){
4220 sqlite3PcacheRef(pPg);
4224 ** Sync the journal. In other words, make sure all the pages that have
4225 ** been written to the journal have actually reached the surface of the
4226 ** disk and can be restored in the event of a hot-journal rollback.
4228 ** If the Pager.noSync flag is set, then this function is a no-op.
4229 ** Otherwise, the actions required depend on the journal-mode and the
4230 ** device characteristics of the file-system, as follows:
4232 ** * If the journal file is an in-memory journal file, no action need
4233 ** be taken.
4235 ** * Otherwise, if the device does not support the SAFE_APPEND property,
4236 ** then the nRec field of the most recently written journal header
4237 ** is updated to contain the number of journal records that have
4238 ** been written following it. If the pager is operating in full-sync
4239 ** mode, then the journal file is synced before this field is updated.
4241 ** * If the device does not support the SEQUENTIAL property, then
4242 ** journal file is synced.
4244 ** Or, in pseudo-code:
4246 ** if( NOT <in-memory journal> ){
4247 ** if( NOT SAFE_APPEND ){
4248 ** if( <full-sync mode> ) xSync(<journal file>);
4249 ** <update nRec field>
4250 ** }
4251 ** if( NOT SEQUENTIAL ) xSync(<journal file>);
4252 ** }
4254 ** If successful, this routine clears the PGHDR_NEED_SYNC flag of every
4255 ** page currently held in memory before returning SQLITE_OK. If an IO
4256 ** error is encountered, then the IO error code is returned to the caller.
4258 static int syncJournal(Pager *pPager, int newHdr){
4259 int rc; /* Return code */
4261 assert( pPager->eState==PAGER_WRITER_CACHEMOD
4262 || pPager->eState==PAGER_WRITER_DBMOD
4264 assert( assert_pager_state(pPager) );
4265 assert( !pagerUseWal(pPager) );
4267 rc = sqlite3PagerExclusiveLock(pPager);
4268 if( rc!=SQLITE_OK ) return rc;
4270 if( !pPager->noSync ){
4271 assert( !pPager->tempFile );
4272 if( isOpen(pPager->jfd) && pPager->journalMode!=PAGER_JOURNALMODE_MEMORY ){
4273 const int iDc = sqlite3OsDeviceCharacteristics(pPager->fd);
4274 assert( isOpen(pPager->jfd) );
4276 if( 0==(iDc&SQLITE_IOCAP_SAFE_APPEND) ){
4277 /* This block deals with an obscure problem. If the last connection
4278 ** that wrote to this database was operating in persistent-journal
4279 ** mode, then the journal file may at this point actually be larger
4280 ** than Pager.journalOff bytes. If the next thing in the journal
4281 ** file happens to be a journal-header (written as part of the
4282 ** previous connection's transaction), and a crash or power-failure
4283 ** occurs after nRec is updated but before this connection writes
4284 ** anything else to the journal file (or commits/rolls back its
4285 ** transaction), then SQLite may become confused when doing the
4286 ** hot-journal rollback following recovery. It may roll back all
4287 ** of this connections data, then proceed to rolling back the old,
4288 ** out-of-date data that follows it. Database corruption.
4290 ** To work around this, if the journal file does appear to contain
4291 ** a valid header following Pager.journalOff, then write a 0x00
4292 ** byte to the start of it to prevent it from being recognized.
4294 ** Variable iNextHdrOffset is set to the offset at which this
4295 ** problematic header will occur, if it exists. aMagic is used
4296 ** as a temporary buffer to inspect the first couple of bytes of
4297 ** the potential journal header.
4299 i64 iNextHdrOffset;
4300 u8 aMagic[8];
4301 u8 zHeader[sizeof(aJournalMagic)+4];
4303 memcpy(zHeader, aJournalMagic, sizeof(aJournalMagic));
4304 put32bits(&zHeader[sizeof(aJournalMagic)], pPager->nRec);
4306 iNextHdrOffset = journalHdrOffset(pPager);
4307 rc = sqlite3OsRead(pPager->jfd, aMagic, 8, iNextHdrOffset);
4308 if( rc==SQLITE_OK && 0==memcmp(aMagic, aJournalMagic, 8) ){
4309 static const u8 zerobyte = 0;
4310 rc = sqlite3OsWrite(pPager->jfd, &zerobyte, 1, iNextHdrOffset);
4312 if( rc!=SQLITE_OK && rc!=SQLITE_IOERR_SHORT_READ ){
4313 return rc;
4316 /* Write the nRec value into the journal file header. If in
4317 ** full-synchronous mode, sync the journal first. This ensures that
4318 ** all data has really hit the disk before nRec is updated to mark
4319 ** it as a candidate for rollback.
4321 ** This is not required if the persistent media supports the
4322 ** SAFE_APPEND property. Because in this case it is not possible
4323 ** for garbage data to be appended to the file, the nRec field
4324 ** is populated with 0xFFFFFFFF when the journal header is written
4325 ** and never needs to be updated.
4327 if( pPager->fullSync && 0==(iDc&SQLITE_IOCAP_SEQUENTIAL) ){
4328 PAGERTRACE(("SYNC journal of %d\n", PAGERID(pPager)));
4329 IOTRACE(("JSYNC %p\n", pPager))
4330 rc = sqlite3OsSync(pPager->jfd, pPager->syncFlags);
4331 if( rc!=SQLITE_OK ) return rc;
4333 IOTRACE(("JHDR %p %lld\n", pPager, pPager->journalHdr));
4334 rc = sqlite3OsWrite(
4335 pPager->jfd, zHeader, sizeof(zHeader), pPager->journalHdr
4337 if( rc!=SQLITE_OK ) return rc;
4339 if( 0==(iDc&SQLITE_IOCAP_SEQUENTIAL) ){
4340 PAGERTRACE(("SYNC journal of %d\n", PAGERID(pPager)));
4341 IOTRACE(("JSYNC %p\n", pPager))
4342 rc = sqlite3OsSync(pPager->jfd, pPager->syncFlags|
4343 (pPager->syncFlags==SQLITE_SYNC_FULL?SQLITE_SYNC_DATAONLY:0)
4345 if( rc!=SQLITE_OK ) return rc;
4348 pPager->journalHdr = pPager->journalOff;
4349 if( newHdr && 0==(iDc&SQLITE_IOCAP_SAFE_APPEND) ){
4350 pPager->nRec = 0;
4351 rc = writeJournalHdr(pPager);
4352 if( rc!=SQLITE_OK ) return rc;
4354 }else{
4355 pPager->journalHdr = pPager->journalOff;
4359 /* Unless the pager is in noSync mode, the journal file was just
4360 ** successfully synced. Either way, clear the PGHDR_NEED_SYNC flag on
4361 ** all pages.
4363 sqlite3PcacheClearSyncFlags(pPager->pPCache);
4364 pPager->eState = PAGER_WRITER_DBMOD;
4365 assert( assert_pager_state(pPager) );
4366 return SQLITE_OK;
4370 ** The argument is the first in a linked list of dirty pages connected
4371 ** by the PgHdr.pDirty pointer. This function writes each one of the
4372 ** in-memory pages in the list to the database file. The argument may
4373 ** be NULL, representing an empty list. In this case this function is
4374 ** a no-op.
4376 ** The pager must hold at least a RESERVED lock when this function
4377 ** is called. Before writing anything to the database file, this lock
4378 ** is upgraded to an EXCLUSIVE lock. If the lock cannot be obtained,
4379 ** SQLITE_BUSY is returned and no data is written to the database file.
4381 ** If the pager is a temp-file pager and the actual file-system file
4382 ** is not yet open, it is created and opened before any data is
4383 ** written out.
4385 ** Once the lock has been upgraded and, if necessary, the file opened,
4386 ** the pages are written out to the database file in list order. Writing
4387 ** a page is skipped if it meets either of the following criteria:
4389 ** * The page number is greater than Pager.dbSize, or
4390 ** * The PGHDR_DONT_WRITE flag is set on the page.
4392 ** If writing out a page causes the database file to grow, Pager.dbFileSize
4393 ** is updated accordingly. If page 1 is written out, then the value cached
4394 ** in Pager.dbFileVers[] is updated to match the new value stored in
4395 ** the database file.
4397 ** If everything is successful, SQLITE_OK is returned. If an IO error
4398 ** occurs, an IO error code is returned. Or, if the EXCLUSIVE lock cannot
4399 ** be obtained, SQLITE_BUSY is returned.
4401 static int pager_write_pagelist(Pager *pPager, PgHdr *pList){
4402 int rc = SQLITE_OK; /* Return code */
4404 /* This function is only called for rollback pagers in WRITER_DBMOD state. */
4405 assert( !pagerUseWal(pPager) );
4406 assert( pPager->tempFile || pPager->eState==PAGER_WRITER_DBMOD );
4407 assert( pPager->eLock==EXCLUSIVE_LOCK );
4408 assert( isOpen(pPager->fd) || pList->pDirty==0 );
4410 /* If the file is a temp-file has not yet been opened, open it now. It
4411 ** is not possible for rc to be other than SQLITE_OK if this branch
4412 ** is taken, as pager_wait_on_lock() is a no-op for temp-files.
4414 if( !isOpen(pPager->fd) ){
4415 assert( pPager->tempFile && rc==SQLITE_OK );
4416 rc = pagerOpentemp(pPager, pPager->fd, pPager->vfsFlags);
4419 /* Before the first write, give the VFS a hint of what the final
4420 ** file size will be.
4422 assert( rc!=SQLITE_OK || isOpen(pPager->fd) );
4423 if( rc==SQLITE_OK
4424 && pPager->dbHintSize<pPager->dbSize
4425 && (pList->pDirty || pList->pgno>pPager->dbHintSize)
4427 sqlite3_int64 szFile = pPager->pageSize * (sqlite3_int64)pPager->dbSize;
4428 sqlite3OsFileControlHint(pPager->fd, SQLITE_FCNTL_SIZE_HINT, &szFile);
4429 pPager->dbHintSize = pPager->dbSize;
4432 while( rc==SQLITE_OK && pList ){
4433 Pgno pgno = pList->pgno;
4435 /* If there are dirty pages in the page cache with page numbers greater
4436 ** than Pager.dbSize, this means sqlite3PagerTruncateImage() was called to
4437 ** make the file smaller (presumably by auto-vacuum code). Do not write
4438 ** any such pages to the file.
4440 ** Also, do not write out any page that has the PGHDR_DONT_WRITE flag
4441 ** set (set by sqlite3PagerDontWrite()).
4443 if( pgno<=pPager->dbSize && 0==(pList->flags&PGHDR_DONT_WRITE) ){
4444 i64 offset = (pgno-1)*(i64)pPager->pageSize; /* Offset to write */
4445 char *pData; /* Data to write */
4447 assert( (pList->flags&PGHDR_NEED_SYNC)==0 );
4448 if( pList->pgno==1 ) pager_write_changecounter(pList);
4450 /* Encode the database */
4451 CODEC2(pPager, pList->pData, pgno, 6, return SQLITE_NOMEM_BKPT, pData);
4453 /* Write out the page data. */
4454 rc = sqlite3OsWrite(pPager->fd, pData, pPager->pageSize, offset);
4456 /* If page 1 was just written, update Pager.dbFileVers to match
4457 ** the value now stored in the database file. If writing this
4458 ** page caused the database file to grow, update dbFileSize.
4460 if( pgno==1 ){
4461 memcpy(&pPager->dbFileVers, &pData[24], sizeof(pPager->dbFileVers));
4463 if( pgno>pPager->dbFileSize ){
4464 pPager->dbFileSize = pgno;
4466 pPager->aStat[PAGER_STAT_WRITE]++;
4468 /* Update any backup objects copying the contents of this pager. */
4469 sqlite3BackupUpdate(pPager->pBackup, pgno, (u8*)pList->pData);
4471 PAGERTRACE(("STORE %d page %d hash(%08x)\n",
4472 PAGERID(pPager), pgno, pager_pagehash(pList)));
4473 IOTRACE(("PGOUT %p %d\n", pPager, pgno));
4474 PAGER_INCR(sqlite3_pager_writedb_count);
4475 }else{
4476 PAGERTRACE(("NOSTORE %d page %d\n", PAGERID(pPager), pgno));
4478 pager_set_pagehash(pList);
4479 pList = pList->pDirty;
4482 return rc;
4486 ** Ensure that the sub-journal file is open. If it is already open, this
4487 ** function is a no-op.
4489 ** SQLITE_OK is returned if everything goes according to plan. An
4490 ** SQLITE_IOERR_XXX error code is returned if a call to sqlite3OsOpen()
4491 ** fails.
4493 static int openSubJournal(Pager *pPager){
4494 int rc = SQLITE_OK;
4495 if( !isOpen(pPager->sjfd) ){
4496 const int flags = SQLITE_OPEN_SUBJOURNAL | SQLITE_OPEN_READWRITE
4497 | SQLITE_OPEN_CREATE | SQLITE_OPEN_EXCLUSIVE
4498 | SQLITE_OPEN_DELETEONCLOSE;
4499 int nStmtSpill = sqlite3Config.nStmtSpill;
4500 if( pPager->journalMode==PAGER_JOURNALMODE_MEMORY || pPager->subjInMemory ){
4501 nStmtSpill = -1;
4503 rc = sqlite3JournalOpen(pPager->pVfs, 0, pPager->sjfd, flags, nStmtSpill);
4505 return rc;
4509 ** Append a record of the current state of page pPg to the sub-journal.
4511 ** If successful, set the bit corresponding to pPg->pgno in the bitvecs
4512 ** for all open savepoints before returning.
4514 ** This function returns SQLITE_OK if everything is successful, an IO
4515 ** error code if the attempt to write to the sub-journal fails, or
4516 ** SQLITE_NOMEM if a malloc fails while setting a bit in a savepoint
4517 ** bitvec.
4519 static int subjournalPage(PgHdr *pPg){
4520 int rc = SQLITE_OK;
4521 Pager *pPager = pPg->pPager;
4522 if( pPager->journalMode!=PAGER_JOURNALMODE_OFF ){
4524 /* Open the sub-journal, if it has not already been opened */
4525 assert( pPager->useJournal );
4526 assert( isOpen(pPager->jfd) || pagerUseWal(pPager) );
4527 assert( isOpen(pPager->sjfd) || pPager->nSubRec==0 );
4528 assert( pagerUseWal(pPager)
4529 || pageInJournal(pPager, pPg)
4530 || pPg->pgno>pPager->dbOrigSize
4532 rc = openSubJournal(pPager);
4534 /* If the sub-journal was opened successfully (or was already open),
4535 ** write the journal record into the file. */
4536 if( rc==SQLITE_OK ){
4537 void *pData = pPg->pData;
4538 i64 offset = (i64)pPager->nSubRec*(4+pPager->pageSize);
4539 char *pData2;
4541 #if SQLITE_HAS_CODEC
4542 if( !pPager->subjInMemory ){
4543 CODEC2(pPager, pData, pPg->pgno, 7, return SQLITE_NOMEM_BKPT, pData2);
4544 }else
4545 #endif
4546 pData2 = pData;
4547 PAGERTRACE(("STMT-JOURNAL %d page %d\n", PAGERID(pPager), pPg->pgno));
4548 rc = write32bits(pPager->sjfd, offset, pPg->pgno);
4549 if( rc==SQLITE_OK ){
4550 rc = sqlite3OsWrite(pPager->sjfd, pData2, pPager->pageSize, offset+4);
4554 if( rc==SQLITE_OK ){
4555 pPager->nSubRec++;
4556 assert( pPager->nSavepoint>0 );
4557 rc = addToSavepointBitvecs(pPager, pPg->pgno);
4559 return rc;
4561 static int subjournalPageIfRequired(PgHdr *pPg){
4562 if( subjRequiresPage(pPg) ){
4563 return subjournalPage(pPg);
4564 }else{
4565 return SQLITE_OK;
4570 ** This function is called by the pcache layer when it has reached some
4571 ** soft memory limit. The first argument is a pointer to a Pager object
4572 ** (cast as a void*). The pager is always 'purgeable' (not an in-memory
4573 ** database). The second argument is a reference to a page that is
4574 ** currently dirty but has no outstanding references. The page
4575 ** is always associated with the Pager object passed as the first
4576 ** argument.
4578 ** The job of this function is to make pPg clean by writing its contents
4579 ** out to the database file, if possible. This may involve syncing the
4580 ** journal file.
4582 ** If successful, sqlite3PcacheMakeClean() is called on the page and
4583 ** SQLITE_OK returned. If an IO error occurs while trying to make the
4584 ** page clean, the IO error code is returned. If the page cannot be
4585 ** made clean for some other reason, but no error occurs, then SQLITE_OK
4586 ** is returned by sqlite3PcacheMakeClean() is not called.
4588 static int pagerStress(void *p, PgHdr *pPg){
4589 Pager *pPager = (Pager *)p;
4590 int rc = SQLITE_OK;
4592 assert( pPg->pPager==pPager );
4593 assert( pPg->flags&PGHDR_DIRTY );
4595 /* The doNotSpill NOSYNC bit is set during times when doing a sync of
4596 ** journal (and adding a new header) is not allowed. This occurs
4597 ** during calls to sqlite3PagerWrite() while trying to journal multiple
4598 ** pages belonging to the same sector.
4600 ** The doNotSpill ROLLBACK and OFF bits inhibits all cache spilling
4601 ** regardless of whether or not a sync is required. This is set during
4602 ** a rollback or by user request, respectively.
4604 ** Spilling is also prohibited when in an error state since that could
4605 ** lead to database corruption. In the current implementation it
4606 ** is impossible for sqlite3PcacheFetch() to be called with createFlag==3
4607 ** while in the error state, hence it is impossible for this routine to
4608 ** be called in the error state. Nevertheless, we include a NEVER()
4609 ** test for the error state as a safeguard against future changes.
4611 if( NEVER(pPager->errCode) ) return SQLITE_OK;
4612 testcase( pPager->doNotSpill & SPILLFLAG_ROLLBACK );
4613 testcase( pPager->doNotSpill & SPILLFLAG_OFF );
4614 testcase( pPager->doNotSpill & SPILLFLAG_NOSYNC );
4615 if( pPager->doNotSpill
4616 && ((pPager->doNotSpill & (SPILLFLAG_ROLLBACK|SPILLFLAG_OFF))!=0
4617 || (pPg->flags & PGHDR_NEED_SYNC)!=0)
4619 return SQLITE_OK;
4622 pPager->aStat[PAGER_STAT_SPILL]++;
4623 pPg->pDirty = 0;
4624 if( pagerUseWal(pPager) ){
4625 /* Write a single frame for this page to the log. */
4626 rc = subjournalPageIfRequired(pPg);
4627 if( rc==SQLITE_OK ){
4628 rc = pagerWalFrames(pPager, pPg, 0, 0);
4630 }else{
4632 #ifdef SQLITE_ENABLE_BATCH_ATOMIC_WRITE
4633 if( pPager->tempFile==0 ){
4634 rc = sqlite3JournalCreate(pPager->jfd);
4635 if( rc!=SQLITE_OK ) return pager_error(pPager, rc);
4637 #endif
4639 /* Sync the journal file if required. */
4640 if( pPg->flags&PGHDR_NEED_SYNC
4641 || pPager->eState==PAGER_WRITER_CACHEMOD
4643 rc = syncJournal(pPager, 1);
4646 /* Write the contents of the page out to the database file. */
4647 if( rc==SQLITE_OK ){
4648 assert( (pPg->flags&PGHDR_NEED_SYNC)==0 );
4649 rc = pager_write_pagelist(pPager, pPg);
4653 /* Mark the page as clean. */
4654 if( rc==SQLITE_OK ){
4655 PAGERTRACE(("STRESS %d page %d\n", PAGERID(pPager), pPg->pgno));
4656 sqlite3PcacheMakeClean(pPg);
4659 return pager_error(pPager, rc);
4663 ** Flush all unreferenced dirty pages to disk.
4665 int sqlite3PagerFlush(Pager *pPager){
4666 int rc = pPager->errCode;
4667 if( !MEMDB ){
4668 PgHdr *pList = sqlite3PcacheDirtyList(pPager->pPCache);
4669 assert( assert_pager_state(pPager) );
4670 while( rc==SQLITE_OK && pList ){
4671 PgHdr *pNext = pList->pDirty;
4672 if( pList->nRef==0 ){
4673 rc = pagerStress((void*)pPager, pList);
4675 pList = pNext;
4679 return rc;
4683 ** Allocate and initialize a new Pager object and put a pointer to it
4684 ** in *ppPager. The pager should eventually be freed by passing it
4685 ** to sqlite3PagerClose().
4687 ** The zFilename argument is the path to the database file to open.
4688 ** If zFilename is NULL then a randomly-named temporary file is created
4689 ** and used as the file to be cached. Temporary files are be deleted
4690 ** automatically when they are closed. If zFilename is ":memory:" then
4691 ** all information is held in cache. It is never written to disk.
4692 ** This can be used to implement an in-memory database.
4694 ** The nExtra parameter specifies the number of bytes of space allocated
4695 ** along with each page reference. This space is available to the user
4696 ** via the sqlite3PagerGetExtra() API. When a new page is allocated, the
4697 ** first 8 bytes of this space are zeroed but the remainder is uninitialized.
4698 ** (The extra space is used by btree as the MemPage object.)
4700 ** The flags argument is used to specify properties that affect the
4701 ** operation of the pager. It should be passed some bitwise combination
4702 ** of the PAGER_* flags.
4704 ** The vfsFlags parameter is a bitmask to pass to the flags parameter
4705 ** of the xOpen() method of the supplied VFS when opening files.
4707 ** If the pager object is allocated and the specified file opened
4708 ** successfully, SQLITE_OK is returned and *ppPager set to point to
4709 ** the new pager object. If an error occurs, *ppPager is set to NULL
4710 ** and error code returned. This function may return SQLITE_NOMEM
4711 ** (sqlite3Malloc() is used to allocate memory), SQLITE_CANTOPEN or
4712 ** various SQLITE_IO_XXX errors.
4714 int sqlite3PagerOpen(
4715 sqlite3_vfs *pVfs, /* The virtual file system to use */
4716 Pager **ppPager, /* OUT: Return the Pager structure here */
4717 const char *zFilename, /* Name of the database file to open */
4718 int nExtra, /* Extra bytes append to each in-memory page */
4719 int flags, /* flags controlling this file */
4720 int vfsFlags, /* flags passed through to sqlite3_vfs.xOpen() */
4721 void (*xReinit)(DbPage*) /* Function to reinitialize pages */
4723 u8 *pPtr;
4724 Pager *pPager = 0; /* Pager object to allocate and return */
4725 int rc = SQLITE_OK; /* Return code */
4726 int tempFile = 0; /* True for temp files (incl. in-memory files) */
4727 int memDb = 0; /* True if this is an in-memory file */
4728 #ifdef SQLITE_ENABLE_DESERIALIZE
4729 int memJM = 0; /* Memory journal mode */
4730 #else
4731 # define memJM 0
4732 #endif
4733 int readOnly = 0; /* True if this is a read-only file */
4734 int journalFileSize; /* Bytes to allocate for each journal fd */
4735 char *zPathname = 0; /* Full path to database file */
4736 int nPathname = 0; /* Number of bytes in zPathname */
4737 int useJournal = (flags & PAGER_OMIT_JOURNAL)==0; /* False to omit journal */
4738 int pcacheSize = sqlite3PcacheSize(); /* Bytes to allocate for PCache */
4739 u32 szPageDflt = SQLITE_DEFAULT_PAGE_SIZE; /* Default page size */
4740 const char *zUri = 0; /* URI args to copy */
4741 int nUri = 0; /* Number of bytes of URI args at *zUri */
4743 /* Figure out how much space is required for each journal file-handle
4744 ** (there are two of them, the main journal and the sub-journal). */
4745 journalFileSize = ROUND8(sqlite3JournalSize(pVfs));
4747 /* Set the output variable to NULL in case an error occurs. */
4748 *ppPager = 0;
4750 #ifndef SQLITE_OMIT_MEMORYDB
4751 if( flags & PAGER_MEMORY ){
4752 memDb = 1;
4753 if( zFilename && zFilename[0] ){
4754 zPathname = sqlite3DbStrDup(0, zFilename);
4755 if( zPathname==0 ) return SQLITE_NOMEM_BKPT;
4756 nPathname = sqlite3Strlen30(zPathname);
4757 zFilename = 0;
4760 #endif
4762 /* Compute and store the full pathname in an allocated buffer pointed
4763 ** to by zPathname, length nPathname. Or, if this is a temporary file,
4764 ** leave both nPathname and zPathname set to 0.
4766 if( zFilename && zFilename[0] ){
4767 const char *z;
4768 nPathname = pVfs->mxPathname+1;
4769 zPathname = sqlite3DbMallocRaw(0, nPathname*2);
4770 if( zPathname==0 ){
4771 return SQLITE_NOMEM_BKPT;
4773 zPathname[0] = 0; /* Make sure initialized even if FullPathname() fails */
4774 rc = sqlite3OsFullPathname(pVfs, zFilename, nPathname, zPathname);
4775 nPathname = sqlite3Strlen30(zPathname);
4776 z = zUri = &zFilename[sqlite3Strlen30(zFilename)+1];
4777 while( *z ){
4778 z += sqlite3Strlen30(z)+1;
4779 z += sqlite3Strlen30(z)+1;
4781 nUri = (int)(&z[1] - zUri);
4782 assert( nUri>=0 );
4783 if( rc==SQLITE_OK && nPathname+8>pVfs->mxPathname ){
4784 /* This branch is taken when the journal path required by
4785 ** the database being opened will be more than pVfs->mxPathname
4786 ** bytes in length. This means the database cannot be opened,
4787 ** as it will not be possible to open the journal file or even
4788 ** check for a hot-journal before reading.
4790 rc = SQLITE_CANTOPEN_BKPT;
4792 if( rc!=SQLITE_OK ){
4793 sqlite3DbFree(0, zPathname);
4794 return rc;
4798 /* Allocate memory for the Pager structure, PCache object, the
4799 ** three file descriptors, the database file name and the journal
4800 ** file name. The layout in memory is as follows:
4802 ** Pager object (sizeof(Pager) bytes)
4803 ** PCache object (sqlite3PcacheSize() bytes)
4804 ** Database file handle (pVfs->szOsFile bytes)
4805 ** Sub-journal file handle (journalFileSize bytes)
4806 ** Main journal file handle (journalFileSize bytes)
4807 ** Database file name (nPathname+1 bytes)
4808 ** Journal file name (nPathname+8+1 bytes)
4810 pPtr = (u8 *)sqlite3MallocZero(
4811 ROUND8(sizeof(*pPager)) + /* Pager structure */
4812 ROUND8(pcacheSize) + /* PCache object */
4813 ROUND8(pVfs->szOsFile) + /* The main db file */
4814 journalFileSize * 2 + /* The two journal files */
4815 nPathname + 1 + nUri + /* zFilename */
4816 nPathname + 8 + 2 /* zJournal */
4817 #ifndef SQLITE_OMIT_WAL
4818 + nPathname + 4 + 2 /* zWal */
4819 #endif
4821 assert( EIGHT_BYTE_ALIGNMENT(SQLITE_INT_TO_PTR(journalFileSize)) );
4822 if( !pPtr ){
4823 sqlite3DbFree(0, zPathname);
4824 return SQLITE_NOMEM_BKPT;
4826 pPager = (Pager*)(pPtr);
4827 pPager->pPCache = (PCache*)(pPtr += ROUND8(sizeof(*pPager)));
4828 pPager->fd = (sqlite3_file*)(pPtr += ROUND8(pcacheSize));
4829 pPager->sjfd = (sqlite3_file*)(pPtr += ROUND8(pVfs->szOsFile));
4830 pPager->jfd = (sqlite3_file*)(pPtr += journalFileSize);
4831 pPager->zFilename = (char*)(pPtr += journalFileSize);
4832 assert( EIGHT_BYTE_ALIGNMENT(pPager->jfd) );
4834 /* Fill in the Pager.zFilename and Pager.zJournal buffers, if required. */
4835 if( zPathname ){
4836 assert( nPathname>0 );
4837 pPager->zJournal = (char*)(pPtr += nPathname + 1 + nUri);
4838 memcpy(pPager->zFilename, zPathname, nPathname);
4839 if( nUri ) memcpy(&pPager->zFilename[nPathname+1], zUri, nUri);
4840 memcpy(pPager->zJournal, zPathname, nPathname);
4841 memcpy(&pPager->zJournal[nPathname], "-journal\000", 8+2);
4842 sqlite3FileSuffix3(pPager->zFilename, pPager->zJournal);
4843 #ifndef SQLITE_OMIT_WAL
4844 pPager->zWal = &pPager->zJournal[nPathname+8+1];
4845 memcpy(pPager->zWal, zPathname, nPathname);
4846 memcpy(&pPager->zWal[nPathname], "-wal\000", 4+1);
4847 sqlite3FileSuffix3(pPager->zFilename, pPager->zWal);
4848 #endif
4849 sqlite3DbFree(0, zPathname);
4851 pPager->pVfs = pVfs;
4852 pPager->vfsFlags = vfsFlags;
4854 /* Open the pager file.
4856 if( zFilename && zFilename[0] ){
4857 int fout = 0; /* VFS flags returned by xOpen() */
4858 rc = sqlite3OsOpen(pVfs, pPager->zFilename, pPager->fd, vfsFlags, &fout);
4859 assert( !memDb );
4860 #ifdef SQLITE_ENABLE_DESERIALIZE
4861 memJM = (fout&SQLITE_OPEN_MEMORY)!=0;
4862 #endif
4863 readOnly = (fout&SQLITE_OPEN_READONLY)!=0;
4865 /* If the file was successfully opened for read/write access,
4866 ** choose a default page size in case we have to create the
4867 ** database file. The default page size is the maximum of:
4869 ** + SQLITE_DEFAULT_PAGE_SIZE,
4870 ** + The value returned by sqlite3OsSectorSize()
4871 ** + The largest page size that can be written atomically.
4873 if( rc==SQLITE_OK ){
4874 int iDc = sqlite3OsDeviceCharacteristics(pPager->fd);
4875 if( !readOnly ){
4876 setSectorSize(pPager);
4877 assert(SQLITE_DEFAULT_PAGE_SIZE<=SQLITE_MAX_DEFAULT_PAGE_SIZE);
4878 if( szPageDflt<pPager->sectorSize ){
4879 if( pPager->sectorSize>SQLITE_MAX_DEFAULT_PAGE_SIZE ){
4880 szPageDflt = SQLITE_MAX_DEFAULT_PAGE_SIZE;
4881 }else{
4882 szPageDflt = (u32)pPager->sectorSize;
4885 #ifdef SQLITE_ENABLE_ATOMIC_WRITE
4887 int ii;
4888 assert(SQLITE_IOCAP_ATOMIC512==(512>>8));
4889 assert(SQLITE_IOCAP_ATOMIC64K==(65536>>8));
4890 assert(SQLITE_MAX_DEFAULT_PAGE_SIZE<=65536);
4891 for(ii=szPageDflt; ii<=SQLITE_MAX_DEFAULT_PAGE_SIZE; ii=ii*2){
4892 if( iDc&(SQLITE_IOCAP_ATOMIC|(ii>>8)) ){
4893 szPageDflt = ii;
4897 #endif
4899 pPager->noLock = sqlite3_uri_boolean(zFilename, "nolock", 0);
4900 if( (iDc & SQLITE_IOCAP_IMMUTABLE)!=0
4901 || sqlite3_uri_boolean(zFilename, "immutable", 0) ){
4902 vfsFlags |= SQLITE_OPEN_READONLY;
4903 goto act_like_temp_file;
4906 }else{
4907 /* If a temporary file is requested, it is not opened immediately.
4908 ** In this case we accept the default page size and delay actually
4909 ** opening the file until the first call to OsWrite().
4911 ** This branch is also run for an in-memory database. An in-memory
4912 ** database is the same as a temp-file that is never written out to
4913 ** disk and uses an in-memory rollback journal.
4915 ** This branch also runs for files marked as immutable.
4917 act_like_temp_file:
4918 tempFile = 1;
4919 pPager->eState = PAGER_READER; /* Pretend we already have a lock */
4920 pPager->eLock = EXCLUSIVE_LOCK; /* Pretend we are in EXCLUSIVE mode */
4921 pPager->noLock = 1; /* Do no locking */
4922 readOnly = (vfsFlags&SQLITE_OPEN_READONLY);
4925 /* The following call to PagerSetPagesize() serves to set the value of
4926 ** Pager.pageSize and to allocate the Pager.pTmpSpace buffer.
4928 if( rc==SQLITE_OK ){
4929 assert( pPager->memDb==0 );
4930 rc = sqlite3PagerSetPagesize(pPager, &szPageDflt, -1);
4931 testcase( rc!=SQLITE_OK );
4934 /* Initialize the PCache object. */
4935 if( rc==SQLITE_OK ){
4936 nExtra = ROUND8(nExtra);
4937 assert( nExtra>=8 && nExtra<1000 );
4938 rc = sqlite3PcacheOpen(szPageDflt, nExtra, !memDb,
4939 !memDb?pagerStress:0, (void *)pPager, pPager->pPCache);
4942 /* If an error occurred above, free the Pager structure and close the file.
4944 if( rc!=SQLITE_OK ){
4945 sqlite3OsClose(pPager->fd);
4946 sqlite3PageFree(pPager->pTmpSpace);
4947 sqlite3_free(pPager);
4948 return rc;
4951 PAGERTRACE(("OPEN %d %s\n", FILEHANDLEID(pPager->fd), pPager->zFilename));
4952 IOTRACE(("OPEN %p %s\n", pPager, pPager->zFilename))
4954 pPager->useJournal = (u8)useJournal;
4955 /* pPager->stmtOpen = 0; */
4956 /* pPager->stmtInUse = 0; */
4957 /* pPager->nRef = 0; */
4958 /* pPager->stmtSize = 0; */
4959 /* pPager->stmtJSize = 0; */
4960 /* pPager->nPage = 0; */
4961 pPager->mxPgno = SQLITE_MAX_PAGE_COUNT;
4962 /* pPager->state = PAGER_UNLOCK; */
4963 /* pPager->errMask = 0; */
4964 pPager->tempFile = (u8)tempFile;
4965 assert( tempFile==PAGER_LOCKINGMODE_NORMAL
4966 || tempFile==PAGER_LOCKINGMODE_EXCLUSIVE );
4967 assert( PAGER_LOCKINGMODE_EXCLUSIVE==1 );
4968 pPager->exclusiveMode = (u8)tempFile;
4969 pPager->changeCountDone = pPager->tempFile;
4970 pPager->memDb = (u8)memDb;
4971 pPager->readOnly = (u8)readOnly;
4972 assert( useJournal || pPager->tempFile );
4973 pPager->noSync = pPager->tempFile;
4974 if( pPager->noSync ){
4975 assert( pPager->fullSync==0 );
4976 assert( pPager->extraSync==0 );
4977 assert( pPager->syncFlags==0 );
4978 assert( pPager->walSyncFlags==0 );
4979 }else{
4980 pPager->fullSync = 1;
4981 pPager->extraSync = 0;
4982 pPager->syncFlags = SQLITE_SYNC_NORMAL;
4983 pPager->walSyncFlags = SQLITE_SYNC_NORMAL | (SQLITE_SYNC_NORMAL<<2);
4985 /* pPager->pFirst = 0; */
4986 /* pPager->pFirstSynced = 0; */
4987 /* pPager->pLast = 0; */
4988 pPager->nExtra = (u16)nExtra;
4989 pPager->journalSizeLimit = SQLITE_DEFAULT_JOURNAL_SIZE_LIMIT;
4990 assert( isOpen(pPager->fd) || tempFile );
4991 setSectorSize(pPager);
4992 if( !useJournal ){
4993 pPager->journalMode = PAGER_JOURNALMODE_OFF;
4994 }else if( memDb || memJM ){
4995 pPager->journalMode = PAGER_JOURNALMODE_MEMORY;
4997 /* pPager->xBusyHandler = 0; */
4998 /* pPager->pBusyHandlerArg = 0; */
4999 pPager->xReiniter = xReinit;
5000 setGetterMethod(pPager);
5001 /* memset(pPager->aHash, 0, sizeof(pPager->aHash)); */
5002 /* pPager->szMmap = SQLITE_DEFAULT_MMAP_SIZE // will be set by btree.c */
5004 *ppPager = pPager;
5005 return SQLITE_OK;
5011 ** This function is called after transitioning from PAGER_UNLOCK to
5012 ** PAGER_SHARED state. It tests if there is a hot journal present in
5013 ** the file-system for the given pager. A hot journal is one that
5014 ** needs to be played back. According to this function, a hot-journal
5015 ** file exists if the following criteria are met:
5017 ** * The journal file exists in the file system, and
5018 ** * No process holds a RESERVED or greater lock on the database file, and
5019 ** * The database file itself is greater than 0 bytes in size, and
5020 ** * The first byte of the journal file exists and is not 0x00.
5022 ** If the current size of the database file is 0 but a journal file
5023 ** exists, that is probably an old journal left over from a prior
5024 ** database with the same name. In this case the journal file is
5025 ** just deleted using OsDelete, *pExists is set to 0 and SQLITE_OK
5026 ** is returned.
5028 ** This routine does not check if there is a master journal filename
5029 ** at the end of the file. If there is, and that master journal file
5030 ** does not exist, then the journal file is not really hot. In this
5031 ** case this routine will return a false-positive. The pager_playback()
5032 ** routine will discover that the journal file is not really hot and
5033 ** will not roll it back.
5035 ** If a hot-journal file is found to exist, *pExists is set to 1 and
5036 ** SQLITE_OK returned. If no hot-journal file is present, *pExists is
5037 ** set to 0 and SQLITE_OK returned. If an IO error occurs while trying
5038 ** to determine whether or not a hot-journal file exists, the IO error
5039 ** code is returned and the value of *pExists is undefined.
5041 static int hasHotJournal(Pager *pPager, int *pExists){
5042 sqlite3_vfs * const pVfs = pPager->pVfs;
5043 int rc = SQLITE_OK; /* Return code */
5044 int exists = 1; /* True if a journal file is present */
5045 int jrnlOpen = !!isOpen(pPager->jfd);
5047 assert( pPager->useJournal );
5048 assert( isOpen(pPager->fd) );
5049 assert( pPager->eState==PAGER_OPEN );
5051 assert( jrnlOpen==0 || ( sqlite3OsDeviceCharacteristics(pPager->jfd) &
5052 SQLITE_IOCAP_UNDELETABLE_WHEN_OPEN
5055 *pExists = 0;
5056 if( !jrnlOpen ){
5057 rc = sqlite3OsAccess(pVfs, pPager->zJournal, SQLITE_ACCESS_EXISTS, &exists);
5059 if( rc==SQLITE_OK && exists ){
5060 int locked = 0; /* True if some process holds a RESERVED lock */
5062 /* Race condition here: Another process might have been holding the
5063 ** the RESERVED lock and have a journal open at the sqlite3OsAccess()
5064 ** call above, but then delete the journal and drop the lock before
5065 ** we get to the following sqlite3OsCheckReservedLock() call. If that
5066 ** is the case, this routine might think there is a hot journal when
5067 ** in fact there is none. This results in a false-positive which will
5068 ** be dealt with by the playback routine. Ticket #3883.
5070 rc = sqlite3OsCheckReservedLock(pPager->fd, &locked);
5071 if( rc==SQLITE_OK && !locked ){
5072 Pgno nPage; /* Number of pages in database file */
5074 assert( pPager->tempFile==0 );
5075 rc = pagerPagecount(pPager, &nPage);
5076 if( rc==SQLITE_OK ){
5077 /* If the database is zero pages in size, that means that either (1) the
5078 ** journal is a remnant from a prior database with the same name where
5079 ** the database file but not the journal was deleted, or (2) the initial
5080 ** transaction that populates a new database is being rolled back.
5081 ** In either case, the journal file can be deleted. However, take care
5082 ** not to delete the journal file if it is already open due to
5083 ** journal_mode=PERSIST.
5085 if( nPage==0 && !jrnlOpen ){
5086 sqlite3BeginBenignMalloc();
5087 if( pagerLockDb(pPager, RESERVED_LOCK)==SQLITE_OK ){
5088 sqlite3OsDelete(pVfs, pPager->zJournal, 0);
5089 if( !pPager->exclusiveMode ) pagerUnlockDb(pPager, SHARED_LOCK);
5091 sqlite3EndBenignMalloc();
5092 }else{
5093 /* The journal file exists and no other connection has a reserved
5094 ** or greater lock on the database file. Now check that there is
5095 ** at least one non-zero bytes at the start of the journal file.
5096 ** If there is, then we consider this journal to be hot. If not,
5097 ** it can be ignored.
5099 if( !jrnlOpen ){
5100 int f = SQLITE_OPEN_READONLY|SQLITE_OPEN_MAIN_JOURNAL;
5101 rc = sqlite3OsOpen(pVfs, pPager->zJournal, pPager->jfd, f, &f);
5103 if( rc==SQLITE_OK ){
5104 u8 first = 0;
5105 rc = sqlite3OsRead(pPager->jfd, (void *)&first, 1, 0);
5106 if( rc==SQLITE_IOERR_SHORT_READ ){
5107 rc = SQLITE_OK;
5109 if( !jrnlOpen ){
5110 sqlite3OsClose(pPager->jfd);
5112 *pExists = (first!=0);
5113 }else if( rc==SQLITE_CANTOPEN ){
5114 /* If we cannot open the rollback journal file in order to see if
5115 ** it has a zero header, that might be due to an I/O error, or
5116 ** it might be due to the race condition described above and in
5117 ** ticket #3883. Either way, assume that the journal is hot.
5118 ** This might be a false positive. But if it is, then the
5119 ** automatic journal playback and recovery mechanism will deal
5120 ** with it under an EXCLUSIVE lock where we do not need to
5121 ** worry so much with race conditions.
5123 *pExists = 1;
5124 rc = SQLITE_OK;
5131 return rc;
5135 ** This function is called to obtain a shared lock on the database file.
5136 ** It is illegal to call sqlite3PagerGet() until after this function
5137 ** has been successfully called. If a shared-lock is already held when
5138 ** this function is called, it is a no-op.
5140 ** The following operations are also performed by this function.
5142 ** 1) If the pager is currently in PAGER_OPEN state (no lock held
5143 ** on the database file), then an attempt is made to obtain a
5144 ** SHARED lock on the database file. Immediately after obtaining
5145 ** the SHARED lock, the file-system is checked for a hot-journal,
5146 ** which is played back if present. Following any hot-journal
5147 ** rollback, the contents of the cache are validated by checking
5148 ** the 'change-counter' field of the database file header and
5149 ** discarded if they are found to be invalid.
5151 ** 2) If the pager is running in exclusive-mode, and there are currently
5152 ** no outstanding references to any pages, and is in the error state,
5153 ** then an attempt is made to clear the error state by discarding
5154 ** the contents of the page cache and rolling back any open journal
5155 ** file.
5157 ** If everything is successful, SQLITE_OK is returned. If an IO error
5158 ** occurs while locking the database, checking for a hot-journal file or
5159 ** rolling back a journal file, the IO error code is returned.
5161 int sqlite3PagerSharedLock(Pager *pPager){
5162 int rc = SQLITE_OK; /* Return code */
5164 /* This routine is only called from b-tree and only when there are no
5165 ** outstanding pages. This implies that the pager state should either
5166 ** be OPEN or READER. READER is only possible if the pager is or was in
5167 ** exclusive access mode. */
5168 assert( sqlite3PcacheRefCount(pPager->pPCache)==0 );
5169 assert( assert_pager_state(pPager) );
5170 assert( pPager->eState==PAGER_OPEN || pPager->eState==PAGER_READER );
5171 assert( pPager->errCode==SQLITE_OK );
5173 if( !pagerUseWal(pPager) && pPager->eState==PAGER_OPEN ){
5174 int bHotJournal = 1; /* True if there exists a hot journal-file */
5176 assert( !MEMDB );
5177 assert( pPager->tempFile==0 || pPager->eLock==EXCLUSIVE_LOCK );
5179 rc = pager_wait_on_lock(pPager, SHARED_LOCK);
5180 if( rc!=SQLITE_OK ){
5181 assert( pPager->eLock==NO_LOCK || pPager->eLock==UNKNOWN_LOCK );
5182 goto failed;
5185 /* If a journal file exists, and there is no RESERVED lock on the
5186 ** database file, then it either needs to be played back or deleted.
5188 if( pPager->eLock<=SHARED_LOCK ){
5189 rc = hasHotJournal(pPager, &bHotJournal);
5191 if( rc!=SQLITE_OK ){
5192 goto failed;
5194 if( bHotJournal ){
5195 if( pPager->readOnly ){
5196 rc = SQLITE_READONLY_ROLLBACK;
5197 goto failed;
5200 /* Get an EXCLUSIVE lock on the database file. At this point it is
5201 ** important that a RESERVED lock is not obtained on the way to the
5202 ** EXCLUSIVE lock. If it were, another process might open the
5203 ** database file, detect the RESERVED lock, and conclude that the
5204 ** database is safe to read while this process is still rolling the
5205 ** hot-journal back.
5207 ** Because the intermediate RESERVED lock is not requested, any
5208 ** other process attempting to access the database file will get to
5209 ** this point in the code and fail to obtain its own EXCLUSIVE lock
5210 ** on the database file.
5212 ** Unless the pager is in locking_mode=exclusive mode, the lock is
5213 ** downgraded to SHARED_LOCK before this function returns.
5215 rc = pagerLockDb(pPager, EXCLUSIVE_LOCK);
5216 if( rc!=SQLITE_OK ){
5217 goto failed;
5220 /* If it is not already open and the file exists on disk, open the
5221 ** journal for read/write access. Write access is required because
5222 ** in exclusive-access mode the file descriptor will be kept open
5223 ** and possibly used for a transaction later on. Also, write-access
5224 ** is usually required to finalize the journal in journal_mode=persist
5225 ** mode (and also for journal_mode=truncate on some systems).
5227 ** If the journal does not exist, it usually means that some
5228 ** other connection managed to get in and roll it back before
5229 ** this connection obtained the exclusive lock above. Or, it
5230 ** may mean that the pager was in the error-state when this
5231 ** function was called and the journal file does not exist.
5233 if( !isOpen(pPager->jfd) ){
5234 sqlite3_vfs * const pVfs = pPager->pVfs;
5235 int bExists; /* True if journal file exists */
5236 rc = sqlite3OsAccess(
5237 pVfs, pPager->zJournal, SQLITE_ACCESS_EXISTS, &bExists);
5238 if( rc==SQLITE_OK && bExists ){
5239 int fout = 0;
5240 int f = SQLITE_OPEN_READWRITE|SQLITE_OPEN_MAIN_JOURNAL;
5241 assert( !pPager->tempFile );
5242 rc = sqlite3OsOpen(pVfs, pPager->zJournal, pPager->jfd, f, &fout);
5243 assert( rc!=SQLITE_OK || isOpen(pPager->jfd) );
5244 if( rc==SQLITE_OK && fout&SQLITE_OPEN_READONLY ){
5245 rc = SQLITE_CANTOPEN_BKPT;
5246 sqlite3OsClose(pPager->jfd);
5251 /* Playback and delete the journal. Drop the database write
5252 ** lock and reacquire the read lock. Purge the cache before
5253 ** playing back the hot-journal so that we don't end up with
5254 ** an inconsistent cache. Sync the hot journal before playing
5255 ** it back since the process that crashed and left the hot journal
5256 ** probably did not sync it and we are required to always sync
5257 ** the journal before playing it back.
5259 if( isOpen(pPager->jfd) ){
5260 assert( rc==SQLITE_OK );
5261 rc = pagerSyncHotJournal(pPager);
5262 if( rc==SQLITE_OK ){
5263 rc = pager_playback(pPager, !pPager->tempFile);
5264 pPager->eState = PAGER_OPEN;
5266 }else if( !pPager->exclusiveMode ){
5267 pagerUnlockDb(pPager, SHARED_LOCK);
5270 if( rc!=SQLITE_OK ){
5271 /* This branch is taken if an error occurs while trying to open
5272 ** or roll back a hot-journal while holding an EXCLUSIVE lock. The
5273 ** pager_unlock() routine will be called before returning to unlock
5274 ** the file. If the unlock attempt fails, then Pager.eLock must be
5275 ** set to UNKNOWN_LOCK (see the comment above the #define for
5276 ** UNKNOWN_LOCK above for an explanation).
5278 ** In order to get pager_unlock() to do this, set Pager.eState to
5279 ** PAGER_ERROR now. This is not actually counted as a transition
5280 ** to ERROR state in the state diagram at the top of this file,
5281 ** since we know that the same call to pager_unlock() will very
5282 ** shortly transition the pager object to the OPEN state. Calling
5283 ** assert_pager_state() would fail now, as it should not be possible
5284 ** to be in ERROR state when there are zero outstanding page
5285 ** references.
5287 pager_error(pPager, rc);
5288 goto failed;
5291 assert( pPager->eState==PAGER_OPEN );
5292 assert( (pPager->eLock==SHARED_LOCK)
5293 || (pPager->exclusiveMode && pPager->eLock>SHARED_LOCK)
5297 if( !pPager->tempFile && pPager->hasHeldSharedLock ){
5298 /* The shared-lock has just been acquired then check to
5299 ** see if the database has been modified. If the database has changed,
5300 ** flush the cache. The hasHeldSharedLock flag prevents this from
5301 ** occurring on the very first access to a file, in order to save a
5302 ** single unnecessary sqlite3OsRead() call at the start-up.
5304 ** Database changes are detected by looking at 15 bytes beginning
5305 ** at offset 24 into the file. The first 4 of these 16 bytes are
5306 ** a 32-bit counter that is incremented with each change. The
5307 ** other bytes change randomly with each file change when
5308 ** a codec is in use.
5310 ** There is a vanishingly small chance that a change will not be
5311 ** detected. The chance of an undetected change is so small that
5312 ** it can be neglected.
5314 char dbFileVers[sizeof(pPager->dbFileVers)];
5316 IOTRACE(("CKVERS %p %d\n", pPager, sizeof(dbFileVers)));
5317 rc = sqlite3OsRead(pPager->fd, &dbFileVers, sizeof(dbFileVers), 24);
5318 if( rc!=SQLITE_OK ){
5319 if( rc!=SQLITE_IOERR_SHORT_READ ){
5320 goto failed;
5322 memset(dbFileVers, 0, sizeof(dbFileVers));
5325 if( memcmp(pPager->dbFileVers, dbFileVers, sizeof(dbFileVers))!=0 ){
5326 pager_reset(pPager);
5328 /* Unmap the database file. It is possible that external processes
5329 ** may have truncated the database file and then extended it back
5330 ** to its original size while this process was not holding a lock.
5331 ** In this case there may exist a Pager.pMap mapping that appears
5332 ** to be the right size but is not actually valid. Avoid this
5333 ** possibility by unmapping the db here. */
5334 if( USEFETCH(pPager) ){
5335 sqlite3OsUnfetch(pPager->fd, 0, 0);
5340 /* If there is a WAL file in the file-system, open this database in WAL
5341 ** mode. Otherwise, the following function call is a no-op.
5343 rc = pagerOpenWalIfPresent(pPager);
5344 #ifndef SQLITE_OMIT_WAL
5345 assert( pPager->pWal==0 || rc==SQLITE_OK );
5346 #endif
5349 if( pagerUseWal(pPager) ){
5350 assert( rc==SQLITE_OK );
5351 rc = pagerBeginReadTransaction(pPager);
5354 if( pPager->tempFile==0 && pPager->eState==PAGER_OPEN && rc==SQLITE_OK ){
5355 rc = pagerPagecount(pPager, &pPager->dbSize);
5358 failed:
5359 if( rc!=SQLITE_OK ){
5360 assert( !MEMDB );
5361 pager_unlock(pPager);
5362 assert( pPager->eState==PAGER_OPEN );
5363 }else{
5364 pPager->eState = PAGER_READER;
5365 pPager->hasHeldSharedLock = 1;
5367 return rc;
5371 ** If the reference count has reached zero, rollback any active
5372 ** transaction and unlock the pager.
5374 ** Except, in locking_mode=EXCLUSIVE when there is nothing to in
5375 ** the rollback journal, the unlock is not performed and there is
5376 ** nothing to rollback, so this routine is a no-op.
5378 static void pagerUnlockIfUnused(Pager *pPager){
5379 if( sqlite3PcacheRefCount(pPager->pPCache)==0 ){
5380 assert( pPager->nMmapOut==0 ); /* because page1 is never memory mapped */
5381 pagerUnlockAndRollback(pPager);
5386 ** The page getter methods each try to acquire a reference to a
5387 ** page with page number pgno. If the requested reference is
5388 ** successfully obtained, it is copied to *ppPage and SQLITE_OK returned.
5390 ** There are different implementations of the getter method depending
5391 ** on the current state of the pager.
5393 ** getPageNormal() -- The normal getter
5394 ** getPageError() -- Used if the pager is in an error state
5395 ** getPageMmap() -- Used if memory-mapped I/O is enabled
5397 ** If the requested page is already in the cache, it is returned.
5398 ** Otherwise, a new page object is allocated and populated with data
5399 ** read from the database file. In some cases, the pcache module may
5400 ** choose not to allocate a new page object and may reuse an existing
5401 ** object with no outstanding references.
5403 ** The extra data appended to a page is always initialized to zeros the
5404 ** first time a page is loaded into memory. If the page requested is
5405 ** already in the cache when this function is called, then the extra
5406 ** data is left as it was when the page object was last used.
5408 ** If the database image is smaller than the requested page or if
5409 ** the flags parameter contains the PAGER_GET_NOCONTENT bit and the
5410 ** requested page is not already stored in the cache, then no
5411 ** actual disk read occurs. In this case the memory image of the
5412 ** page is initialized to all zeros.
5414 ** If PAGER_GET_NOCONTENT is true, it means that we do not care about
5415 ** the contents of the page. This occurs in two scenarios:
5417 ** a) When reading a free-list leaf page from the database, and
5419 ** b) When a savepoint is being rolled back and we need to load
5420 ** a new page into the cache to be filled with the data read
5421 ** from the savepoint journal.
5423 ** If PAGER_GET_NOCONTENT is true, then the data returned is zeroed instead
5424 ** of being read from the database. Additionally, the bits corresponding
5425 ** to pgno in Pager.pInJournal (bitvec of pages already written to the
5426 ** journal file) and the PagerSavepoint.pInSavepoint bitvecs of any open
5427 ** savepoints are set. This means if the page is made writable at any
5428 ** point in the future, using a call to sqlite3PagerWrite(), its contents
5429 ** will not be journaled. This saves IO.
5431 ** The acquisition might fail for several reasons. In all cases,
5432 ** an appropriate error code is returned and *ppPage is set to NULL.
5434 ** See also sqlite3PagerLookup(). Both this routine and Lookup() attempt
5435 ** to find a page in the in-memory cache first. If the page is not already
5436 ** in memory, this routine goes to disk to read it in whereas Lookup()
5437 ** just returns 0. This routine acquires a read-lock the first time it
5438 ** has to go to disk, and could also playback an old journal if necessary.
5439 ** Since Lookup() never goes to disk, it never has to deal with locks
5440 ** or journal files.
5442 static int getPageNormal(
5443 Pager *pPager, /* The pager open on the database file */
5444 Pgno pgno, /* Page number to fetch */
5445 DbPage **ppPage, /* Write a pointer to the page here */
5446 int flags /* PAGER_GET_XXX flags */
5448 int rc = SQLITE_OK;
5449 PgHdr *pPg;
5450 u8 noContent; /* True if PAGER_GET_NOCONTENT is set */
5451 sqlite3_pcache_page *pBase;
5453 assert( pPager->errCode==SQLITE_OK );
5454 assert( pPager->eState>=PAGER_READER );
5455 assert( assert_pager_state(pPager) );
5456 assert( pPager->hasHeldSharedLock==1 );
5458 if( pgno==0 ) return SQLITE_CORRUPT_BKPT;
5459 pBase = sqlite3PcacheFetch(pPager->pPCache, pgno, 3);
5460 if( pBase==0 ){
5461 pPg = 0;
5462 rc = sqlite3PcacheFetchStress(pPager->pPCache, pgno, &pBase);
5463 if( rc!=SQLITE_OK ) goto pager_acquire_err;
5464 if( pBase==0 ){
5465 rc = SQLITE_NOMEM_BKPT;
5466 goto pager_acquire_err;
5469 pPg = *ppPage = sqlite3PcacheFetchFinish(pPager->pPCache, pgno, pBase);
5470 assert( pPg==(*ppPage) );
5471 assert( pPg->pgno==pgno );
5472 assert( pPg->pPager==pPager || pPg->pPager==0 );
5474 noContent = (flags & PAGER_GET_NOCONTENT)!=0;
5475 if( pPg->pPager && !noContent ){
5476 /* In this case the pcache already contains an initialized copy of
5477 ** the page. Return without further ado. */
5478 assert( pgno<=PAGER_MAX_PGNO && pgno!=PAGER_MJ_PGNO(pPager) );
5479 pPager->aStat[PAGER_STAT_HIT]++;
5480 return SQLITE_OK;
5482 }else{
5483 /* The pager cache has created a new page. Its content needs to
5484 ** be initialized. But first some error checks:
5486 ** (1) The maximum page number is 2^31
5487 ** (2) Never try to fetch the locking page
5489 if( pgno>PAGER_MAX_PGNO || pgno==PAGER_MJ_PGNO(pPager) ){
5490 rc = SQLITE_CORRUPT_BKPT;
5491 goto pager_acquire_err;
5494 pPg->pPager = pPager;
5496 assert( !isOpen(pPager->fd) || !MEMDB );
5497 if( !isOpen(pPager->fd) || pPager->dbSize<pgno || noContent ){
5498 if( pgno>pPager->mxPgno ){
5499 rc = SQLITE_FULL;
5500 goto pager_acquire_err;
5502 if( noContent ){
5503 /* Failure to set the bits in the InJournal bit-vectors is benign.
5504 ** It merely means that we might do some extra work to journal a
5505 ** page that does not need to be journaled. Nevertheless, be sure
5506 ** to test the case where a malloc error occurs while trying to set
5507 ** a bit in a bit vector.
5509 sqlite3BeginBenignMalloc();
5510 if( pgno<=pPager->dbOrigSize ){
5511 TESTONLY( rc = ) sqlite3BitvecSet(pPager->pInJournal, pgno);
5512 testcase( rc==SQLITE_NOMEM );
5514 TESTONLY( rc = ) addToSavepointBitvecs(pPager, pgno);
5515 testcase( rc==SQLITE_NOMEM );
5516 sqlite3EndBenignMalloc();
5518 memset(pPg->pData, 0, pPager->pageSize);
5519 IOTRACE(("ZERO %p %d\n", pPager, pgno));
5520 }else{
5521 assert( pPg->pPager==pPager );
5522 pPager->aStat[PAGER_STAT_MISS]++;
5523 rc = readDbPage(pPg);
5524 if( rc!=SQLITE_OK ){
5525 goto pager_acquire_err;
5528 pager_set_pagehash(pPg);
5530 return SQLITE_OK;
5532 pager_acquire_err:
5533 assert( rc!=SQLITE_OK );
5534 if( pPg ){
5535 sqlite3PcacheDrop(pPg);
5537 pagerUnlockIfUnused(pPager);
5538 *ppPage = 0;
5539 return rc;
5542 #if SQLITE_MAX_MMAP_SIZE>0
5543 /* The page getter for when memory-mapped I/O is enabled */
5544 static int getPageMMap(
5545 Pager *pPager, /* The pager open on the database file */
5546 Pgno pgno, /* Page number to fetch */
5547 DbPage **ppPage, /* Write a pointer to the page here */
5548 int flags /* PAGER_GET_XXX flags */
5550 int rc = SQLITE_OK;
5551 PgHdr *pPg = 0;
5552 u32 iFrame = 0; /* Frame to read from WAL file */
5554 /* It is acceptable to use a read-only (mmap) page for any page except
5555 ** page 1 if there is no write-transaction open or the ACQUIRE_READONLY
5556 ** flag was specified by the caller. And so long as the db is not a
5557 ** temporary or in-memory database. */
5558 const int bMmapOk = (pgno>1
5559 && (pPager->eState==PAGER_READER || (flags & PAGER_GET_READONLY))
5562 assert( USEFETCH(pPager) );
5563 #ifdef SQLITE_HAS_CODEC
5564 assert( pPager->xCodec==0 );
5565 #endif
5567 /* Optimization note: Adding the "pgno<=1" term before "pgno==0" here
5568 ** allows the compiler optimizer to reuse the results of the "pgno>1"
5569 ** test in the previous statement, and avoid testing pgno==0 in the
5570 ** common case where pgno is large. */
5571 if( pgno<=1 && pgno==0 ){
5572 return SQLITE_CORRUPT_BKPT;
5574 assert( pPager->eState>=PAGER_READER );
5575 assert( assert_pager_state(pPager) );
5576 assert( pPager->hasHeldSharedLock==1 );
5577 assert( pPager->errCode==SQLITE_OK );
5579 if( bMmapOk && pagerUseWal(pPager) ){
5580 rc = sqlite3WalFindFrame(pPager->pWal, pgno, &iFrame);
5581 if( rc!=SQLITE_OK ){
5582 *ppPage = 0;
5583 return rc;
5586 if( bMmapOk && iFrame==0 ){
5587 void *pData = 0;
5588 rc = sqlite3OsFetch(pPager->fd,
5589 (i64)(pgno-1) * pPager->pageSize, pPager->pageSize, &pData
5591 if( rc==SQLITE_OK && pData ){
5592 if( pPager->eState>PAGER_READER || pPager->tempFile ){
5593 pPg = sqlite3PagerLookup(pPager, pgno);
5595 if( pPg==0 ){
5596 rc = pagerAcquireMapPage(pPager, pgno, pData, &pPg);
5597 }else{
5598 sqlite3OsUnfetch(pPager->fd, (i64)(pgno-1)*pPager->pageSize, pData);
5600 if( pPg ){
5601 assert( rc==SQLITE_OK );
5602 *ppPage = pPg;
5603 return SQLITE_OK;
5606 if( rc!=SQLITE_OK ){
5607 *ppPage = 0;
5608 return rc;
5611 return getPageNormal(pPager, pgno, ppPage, flags);
5613 #endif /* SQLITE_MAX_MMAP_SIZE>0 */
5615 /* The page getter method for when the pager is an error state */
5616 static int getPageError(
5617 Pager *pPager, /* The pager open on the database file */
5618 Pgno pgno, /* Page number to fetch */
5619 DbPage **ppPage, /* Write a pointer to the page here */
5620 int flags /* PAGER_GET_XXX flags */
5622 UNUSED_PARAMETER(pgno);
5623 UNUSED_PARAMETER(flags);
5624 assert( pPager->errCode!=SQLITE_OK );
5625 *ppPage = 0;
5626 return pPager->errCode;
5630 /* Dispatch all page fetch requests to the appropriate getter method.
5632 int sqlite3PagerGet(
5633 Pager *pPager, /* The pager open on the database file */
5634 Pgno pgno, /* Page number to fetch */
5635 DbPage **ppPage, /* Write a pointer to the page here */
5636 int flags /* PAGER_GET_XXX flags */
5638 return pPager->xGet(pPager, pgno, ppPage, flags);
5642 ** Acquire a page if it is already in the in-memory cache. Do
5643 ** not read the page from disk. Return a pointer to the page,
5644 ** or 0 if the page is not in cache.
5646 ** See also sqlite3PagerGet(). The difference between this routine
5647 ** and sqlite3PagerGet() is that _get() will go to the disk and read
5648 ** in the page if the page is not already in cache. This routine
5649 ** returns NULL if the page is not in cache or if a disk I/O error
5650 ** has ever happened.
5652 DbPage *sqlite3PagerLookup(Pager *pPager, Pgno pgno){
5653 sqlite3_pcache_page *pPage;
5654 assert( pPager!=0 );
5655 assert( pgno!=0 );
5656 assert( pPager->pPCache!=0 );
5657 pPage = sqlite3PcacheFetch(pPager->pPCache, pgno, 0);
5658 assert( pPage==0 || pPager->hasHeldSharedLock );
5659 if( pPage==0 ) return 0;
5660 return sqlite3PcacheFetchFinish(pPager->pPCache, pgno, pPage);
5664 ** Release a page reference.
5666 ** The sqlite3PagerUnref() and sqlite3PagerUnrefNotNull() may only be
5667 ** used if we know that the page being released is not the last page.
5668 ** The btree layer always holds page1 open until the end, so these first
5669 ** to routines can be used to release any page other than BtShared.pPage1.
5671 ** Use sqlite3PagerUnrefPageOne() to release page1. This latter routine
5672 ** checks the total number of outstanding pages and if the number of
5673 ** pages reaches zero it drops the database lock.
5675 void sqlite3PagerUnrefNotNull(DbPage *pPg){
5676 TESTONLY( Pager *pPager = pPg->pPager; )
5677 assert( pPg!=0 );
5678 if( pPg->flags & PGHDR_MMAP ){
5679 assert( pPg->pgno!=1 ); /* Page1 is never memory mapped */
5680 pagerReleaseMapPage(pPg);
5681 }else{
5682 sqlite3PcacheRelease(pPg);
5684 /* Do not use this routine to release the last reference to page1 */
5685 assert( sqlite3PcacheRefCount(pPager->pPCache)>0 );
5687 void sqlite3PagerUnref(DbPage *pPg){
5688 if( pPg ) sqlite3PagerUnrefNotNull(pPg);
5690 void sqlite3PagerUnrefPageOne(DbPage *pPg){
5691 Pager *pPager;
5692 assert( pPg!=0 );
5693 assert( pPg->pgno==1 );
5694 assert( (pPg->flags & PGHDR_MMAP)==0 ); /* Page1 is never memory mapped */
5695 pPager = pPg->pPager;
5696 sqlite3PcacheRelease(pPg);
5697 pagerUnlockIfUnused(pPager);
5701 ** This function is called at the start of every write transaction.
5702 ** There must already be a RESERVED or EXCLUSIVE lock on the database
5703 ** file when this routine is called.
5705 ** Open the journal file for pager pPager and write a journal header
5706 ** to the start of it. If there are active savepoints, open the sub-journal
5707 ** as well. This function is only used when the journal file is being
5708 ** opened to write a rollback log for a transaction. It is not used
5709 ** when opening a hot journal file to roll it back.
5711 ** If the journal file is already open (as it may be in exclusive mode),
5712 ** then this function just writes a journal header to the start of the
5713 ** already open file.
5715 ** Whether or not the journal file is opened by this function, the
5716 ** Pager.pInJournal bitvec structure is allocated.
5718 ** Return SQLITE_OK if everything is successful. Otherwise, return
5719 ** SQLITE_NOMEM if the attempt to allocate Pager.pInJournal fails, or
5720 ** an IO error code if opening or writing the journal file fails.
5722 static int pager_open_journal(Pager *pPager){
5723 int rc = SQLITE_OK; /* Return code */
5724 sqlite3_vfs * const pVfs = pPager->pVfs; /* Local cache of vfs pointer */
5726 assert( pPager->eState==PAGER_WRITER_LOCKED );
5727 assert( assert_pager_state(pPager) );
5728 assert( pPager->pInJournal==0 );
5730 /* If already in the error state, this function is a no-op. But on
5731 ** the other hand, this routine is never called if we are already in
5732 ** an error state. */
5733 if( NEVER(pPager->errCode) ) return pPager->errCode;
5735 if( !pagerUseWal(pPager) && pPager->journalMode!=PAGER_JOURNALMODE_OFF ){
5736 pPager->pInJournal = sqlite3BitvecCreate(pPager->dbSize);
5737 if( pPager->pInJournal==0 ){
5738 return SQLITE_NOMEM_BKPT;
5741 /* Open the journal file if it is not already open. */
5742 if( !isOpen(pPager->jfd) ){
5743 if( pPager->journalMode==PAGER_JOURNALMODE_MEMORY ){
5744 sqlite3MemJournalOpen(pPager->jfd);
5745 }else{
5746 int flags = SQLITE_OPEN_READWRITE|SQLITE_OPEN_CREATE;
5747 int nSpill;
5749 if( pPager->tempFile ){
5750 flags |= (SQLITE_OPEN_DELETEONCLOSE|SQLITE_OPEN_TEMP_JOURNAL);
5751 nSpill = sqlite3Config.nStmtSpill;
5752 }else{
5753 flags |= SQLITE_OPEN_MAIN_JOURNAL;
5754 nSpill = jrnlBufferSize(pPager);
5757 /* Verify that the database still has the same name as it did when
5758 ** it was originally opened. */
5759 rc = databaseIsUnmoved(pPager);
5760 if( rc==SQLITE_OK ){
5761 rc = sqlite3JournalOpen (
5762 pVfs, pPager->zJournal, pPager->jfd, flags, nSpill
5766 assert( rc!=SQLITE_OK || isOpen(pPager->jfd) );
5770 /* Write the first journal header to the journal file and open
5771 ** the sub-journal if necessary.
5773 if( rc==SQLITE_OK ){
5774 /* TODO: Check if all of these are really required. */
5775 pPager->nRec = 0;
5776 pPager->journalOff = 0;
5777 pPager->setMaster = 0;
5778 pPager->journalHdr = 0;
5779 rc = writeJournalHdr(pPager);
5783 if( rc!=SQLITE_OK ){
5784 sqlite3BitvecDestroy(pPager->pInJournal);
5785 pPager->pInJournal = 0;
5786 }else{
5787 assert( pPager->eState==PAGER_WRITER_LOCKED );
5788 pPager->eState = PAGER_WRITER_CACHEMOD;
5791 return rc;
5795 ** Begin a write-transaction on the specified pager object. If a
5796 ** write-transaction has already been opened, this function is a no-op.
5798 ** If the exFlag argument is false, then acquire at least a RESERVED
5799 ** lock on the database file. If exFlag is true, then acquire at least
5800 ** an EXCLUSIVE lock. If such a lock is already held, no locking
5801 ** functions need be called.
5803 ** If the subjInMemory argument is non-zero, then any sub-journal opened
5804 ** within this transaction will be opened as an in-memory file. This
5805 ** has no effect if the sub-journal is already opened (as it may be when
5806 ** running in exclusive mode) or if the transaction does not require a
5807 ** sub-journal. If the subjInMemory argument is zero, then any required
5808 ** sub-journal is implemented in-memory if pPager is an in-memory database,
5809 ** or using a temporary file otherwise.
5811 int sqlite3PagerBegin(Pager *pPager, int exFlag, int subjInMemory){
5812 int rc = SQLITE_OK;
5814 if( pPager->errCode ) return pPager->errCode;
5815 assert( pPager->eState>=PAGER_READER && pPager->eState<PAGER_ERROR );
5816 pPager->subjInMemory = (u8)subjInMemory;
5818 if( ALWAYS(pPager->eState==PAGER_READER) ){
5819 assert( pPager->pInJournal==0 );
5821 if( pagerUseWal(pPager) ){
5822 /* If the pager is configured to use locking_mode=exclusive, and an
5823 ** exclusive lock on the database is not already held, obtain it now.
5825 if( pPager->exclusiveMode && sqlite3WalExclusiveMode(pPager->pWal, -1) ){
5826 rc = pagerLockDb(pPager, EXCLUSIVE_LOCK);
5827 if( rc!=SQLITE_OK ){
5828 return rc;
5830 (void)sqlite3WalExclusiveMode(pPager->pWal, 1);
5833 /* Grab the write lock on the log file. If successful, upgrade to
5834 ** PAGER_RESERVED state. Otherwise, return an error code to the caller.
5835 ** The busy-handler is not invoked if another connection already
5836 ** holds the write-lock. If possible, the upper layer will call it.
5838 rc = sqlite3WalBeginWriteTransaction(pPager->pWal);
5839 }else{
5840 /* Obtain a RESERVED lock on the database file. If the exFlag parameter
5841 ** is true, then immediately upgrade this to an EXCLUSIVE lock. The
5842 ** busy-handler callback can be used when upgrading to the EXCLUSIVE
5843 ** lock, but not when obtaining the RESERVED lock.
5845 rc = pagerLockDb(pPager, RESERVED_LOCK);
5846 if( rc==SQLITE_OK && exFlag ){
5847 rc = pager_wait_on_lock(pPager, EXCLUSIVE_LOCK);
5851 if( rc==SQLITE_OK ){
5852 /* Change to WRITER_LOCKED state.
5854 ** WAL mode sets Pager.eState to PAGER_WRITER_LOCKED or CACHEMOD
5855 ** when it has an open transaction, but never to DBMOD or FINISHED.
5856 ** This is because in those states the code to roll back savepoint
5857 ** transactions may copy data from the sub-journal into the database
5858 ** file as well as into the page cache. Which would be incorrect in
5859 ** WAL mode.
5861 pPager->eState = PAGER_WRITER_LOCKED;
5862 pPager->dbHintSize = pPager->dbSize;
5863 pPager->dbFileSize = pPager->dbSize;
5864 pPager->dbOrigSize = pPager->dbSize;
5865 pPager->journalOff = 0;
5868 assert( rc==SQLITE_OK || pPager->eState==PAGER_READER );
5869 assert( rc!=SQLITE_OK || pPager->eState==PAGER_WRITER_LOCKED );
5870 assert( assert_pager_state(pPager) );
5873 PAGERTRACE(("TRANSACTION %d\n", PAGERID(pPager)));
5874 return rc;
5878 ** Write page pPg onto the end of the rollback journal.
5880 static SQLITE_NOINLINE int pagerAddPageToRollbackJournal(PgHdr *pPg){
5881 Pager *pPager = pPg->pPager;
5882 int rc;
5883 u32 cksum;
5884 char *pData2;
5885 i64 iOff = pPager->journalOff;
5887 /* We should never write to the journal file the page that
5888 ** contains the database locks. The following assert verifies
5889 ** that we do not. */
5890 assert( pPg->pgno!=PAGER_MJ_PGNO(pPager) );
5892 assert( pPager->journalHdr<=pPager->journalOff );
5893 CODEC2(pPager, pPg->pData, pPg->pgno, 7, return SQLITE_NOMEM_BKPT, pData2);
5894 cksum = pager_cksum(pPager, (u8*)pData2);
5896 /* Even if an IO or diskfull error occurs while journalling the
5897 ** page in the block above, set the need-sync flag for the page.
5898 ** Otherwise, when the transaction is rolled back, the logic in
5899 ** playback_one_page() will think that the page needs to be restored
5900 ** in the database file. And if an IO error occurs while doing so,
5901 ** then corruption may follow.
5903 pPg->flags |= PGHDR_NEED_SYNC;
5905 rc = write32bits(pPager->jfd, iOff, pPg->pgno);
5906 if( rc!=SQLITE_OK ) return rc;
5907 rc = sqlite3OsWrite(pPager->jfd, pData2, pPager->pageSize, iOff+4);
5908 if( rc!=SQLITE_OK ) return rc;
5909 rc = write32bits(pPager->jfd, iOff+pPager->pageSize+4, cksum);
5910 if( rc!=SQLITE_OK ) return rc;
5912 IOTRACE(("JOUT %p %d %lld %d\n", pPager, pPg->pgno,
5913 pPager->journalOff, pPager->pageSize));
5914 PAGER_INCR(sqlite3_pager_writej_count);
5915 PAGERTRACE(("JOURNAL %d page %d needSync=%d hash(%08x)\n",
5916 PAGERID(pPager), pPg->pgno,
5917 ((pPg->flags&PGHDR_NEED_SYNC)?1:0), pager_pagehash(pPg)));
5919 pPager->journalOff += 8 + pPager->pageSize;
5920 pPager->nRec++;
5921 assert( pPager->pInJournal!=0 );
5922 rc = sqlite3BitvecSet(pPager->pInJournal, pPg->pgno);
5923 testcase( rc==SQLITE_NOMEM );
5924 assert( rc==SQLITE_OK || rc==SQLITE_NOMEM );
5925 rc |= addToSavepointBitvecs(pPager, pPg->pgno);
5926 assert( rc==SQLITE_OK || rc==SQLITE_NOMEM );
5927 return rc;
5931 ** Mark a single data page as writeable. The page is written into the
5932 ** main journal or sub-journal as required. If the page is written into
5933 ** one of the journals, the corresponding bit is set in the
5934 ** Pager.pInJournal bitvec and the PagerSavepoint.pInSavepoint bitvecs
5935 ** of any open savepoints as appropriate.
5937 static int pager_write(PgHdr *pPg){
5938 Pager *pPager = pPg->pPager;
5939 int rc = SQLITE_OK;
5941 /* This routine is not called unless a write-transaction has already
5942 ** been started. The journal file may or may not be open at this point.
5943 ** It is never called in the ERROR state.
5945 assert( pPager->eState==PAGER_WRITER_LOCKED
5946 || pPager->eState==PAGER_WRITER_CACHEMOD
5947 || pPager->eState==PAGER_WRITER_DBMOD
5949 assert( assert_pager_state(pPager) );
5950 assert( pPager->errCode==0 );
5951 assert( pPager->readOnly==0 );
5952 CHECK_PAGE(pPg);
5954 /* The journal file needs to be opened. Higher level routines have already
5955 ** obtained the necessary locks to begin the write-transaction, but the
5956 ** rollback journal might not yet be open. Open it now if this is the case.
5958 ** This is done before calling sqlite3PcacheMakeDirty() on the page.
5959 ** Otherwise, if it were done after calling sqlite3PcacheMakeDirty(), then
5960 ** an error might occur and the pager would end up in WRITER_LOCKED state
5961 ** with pages marked as dirty in the cache.
5963 if( pPager->eState==PAGER_WRITER_LOCKED ){
5964 rc = pager_open_journal(pPager);
5965 if( rc!=SQLITE_OK ) return rc;
5967 assert( pPager->eState>=PAGER_WRITER_CACHEMOD );
5968 assert( assert_pager_state(pPager) );
5970 /* Mark the page that is about to be modified as dirty. */
5971 sqlite3PcacheMakeDirty(pPg);
5973 /* If a rollback journal is in use, them make sure the page that is about
5974 ** to change is in the rollback journal, or if the page is a new page off
5975 ** then end of the file, make sure it is marked as PGHDR_NEED_SYNC.
5977 assert( (pPager->pInJournal!=0) == isOpen(pPager->jfd) );
5978 if( pPager->pInJournal!=0
5979 && sqlite3BitvecTestNotNull(pPager->pInJournal, pPg->pgno)==0
5981 assert( pagerUseWal(pPager)==0 );
5982 if( pPg->pgno<=pPager->dbOrigSize ){
5983 rc = pagerAddPageToRollbackJournal(pPg);
5984 if( rc!=SQLITE_OK ){
5985 return rc;
5987 }else{
5988 if( pPager->eState!=PAGER_WRITER_DBMOD ){
5989 pPg->flags |= PGHDR_NEED_SYNC;
5991 PAGERTRACE(("APPEND %d page %d needSync=%d\n",
5992 PAGERID(pPager), pPg->pgno,
5993 ((pPg->flags&PGHDR_NEED_SYNC)?1:0)));
5997 /* The PGHDR_DIRTY bit is set above when the page was added to the dirty-list
5998 ** and before writing the page into the rollback journal. Wait until now,
5999 ** after the page has been successfully journalled, before setting the
6000 ** PGHDR_WRITEABLE bit that indicates that the page can be safely modified.
6002 pPg->flags |= PGHDR_WRITEABLE;
6004 /* If the statement journal is open and the page is not in it,
6005 ** then write the page into the statement journal.
6007 if( pPager->nSavepoint>0 ){
6008 rc = subjournalPageIfRequired(pPg);
6011 /* Update the database size and return. */
6012 if( pPager->dbSize<pPg->pgno ){
6013 pPager->dbSize = pPg->pgno;
6015 return rc;
6019 ** This is a variant of sqlite3PagerWrite() that runs when the sector size
6020 ** is larger than the page size. SQLite makes the (reasonable) assumption that
6021 ** all bytes of a sector are written together by hardware. Hence, all bytes of
6022 ** a sector need to be journalled in case of a power loss in the middle of
6023 ** a write.
6025 ** Usually, the sector size is less than or equal to the page size, in which
6026 ** case pages can be individually written. This routine only runs in the
6027 ** exceptional case where the page size is smaller than the sector size.
6029 static SQLITE_NOINLINE int pagerWriteLargeSector(PgHdr *pPg){
6030 int rc = SQLITE_OK; /* Return code */
6031 Pgno nPageCount; /* Total number of pages in database file */
6032 Pgno pg1; /* First page of the sector pPg is located on. */
6033 int nPage = 0; /* Number of pages starting at pg1 to journal */
6034 int ii; /* Loop counter */
6035 int needSync = 0; /* True if any page has PGHDR_NEED_SYNC */
6036 Pager *pPager = pPg->pPager; /* The pager that owns pPg */
6037 Pgno nPagePerSector = (pPager->sectorSize/pPager->pageSize);
6039 /* Set the doNotSpill NOSYNC bit to 1. This is because we cannot allow
6040 ** a journal header to be written between the pages journaled by
6041 ** this function.
6043 assert( !MEMDB );
6044 assert( (pPager->doNotSpill & SPILLFLAG_NOSYNC)==0 );
6045 pPager->doNotSpill |= SPILLFLAG_NOSYNC;
6047 /* This trick assumes that both the page-size and sector-size are
6048 ** an integer power of 2. It sets variable pg1 to the identifier
6049 ** of the first page of the sector pPg is located on.
6051 pg1 = ((pPg->pgno-1) & ~(nPagePerSector-1)) + 1;
6053 nPageCount = pPager->dbSize;
6054 if( pPg->pgno>nPageCount ){
6055 nPage = (pPg->pgno - pg1)+1;
6056 }else if( (pg1+nPagePerSector-1)>nPageCount ){
6057 nPage = nPageCount+1-pg1;
6058 }else{
6059 nPage = nPagePerSector;
6061 assert(nPage>0);
6062 assert(pg1<=pPg->pgno);
6063 assert((pg1+nPage)>pPg->pgno);
6065 for(ii=0; ii<nPage && rc==SQLITE_OK; ii++){
6066 Pgno pg = pg1+ii;
6067 PgHdr *pPage;
6068 if( pg==pPg->pgno || !sqlite3BitvecTest(pPager->pInJournal, pg) ){
6069 if( pg!=PAGER_MJ_PGNO(pPager) ){
6070 rc = sqlite3PagerGet(pPager, pg, &pPage, 0);
6071 if( rc==SQLITE_OK ){
6072 rc = pager_write(pPage);
6073 if( pPage->flags&PGHDR_NEED_SYNC ){
6074 needSync = 1;
6076 sqlite3PagerUnrefNotNull(pPage);
6079 }else if( (pPage = sqlite3PagerLookup(pPager, pg))!=0 ){
6080 if( pPage->flags&PGHDR_NEED_SYNC ){
6081 needSync = 1;
6083 sqlite3PagerUnrefNotNull(pPage);
6087 /* If the PGHDR_NEED_SYNC flag is set for any of the nPage pages
6088 ** starting at pg1, then it needs to be set for all of them. Because
6089 ** writing to any of these nPage pages may damage the others, the
6090 ** journal file must contain sync()ed copies of all of them
6091 ** before any of them can be written out to the database file.
6093 if( rc==SQLITE_OK && needSync ){
6094 assert( !MEMDB );
6095 for(ii=0; ii<nPage; ii++){
6096 PgHdr *pPage = sqlite3PagerLookup(pPager, pg1+ii);
6097 if( pPage ){
6098 pPage->flags |= PGHDR_NEED_SYNC;
6099 sqlite3PagerUnrefNotNull(pPage);
6104 assert( (pPager->doNotSpill & SPILLFLAG_NOSYNC)!=0 );
6105 pPager->doNotSpill &= ~SPILLFLAG_NOSYNC;
6106 return rc;
6110 ** Mark a data page as writeable. This routine must be called before
6111 ** making changes to a page. The caller must check the return value
6112 ** of this function and be careful not to change any page data unless
6113 ** this routine returns SQLITE_OK.
6115 ** The difference between this function and pager_write() is that this
6116 ** function also deals with the special case where 2 or more pages
6117 ** fit on a single disk sector. In this case all co-resident pages
6118 ** must have been written to the journal file before returning.
6120 ** If an error occurs, SQLITE_NOMEM or an IO error code is returned
6121 ** as appropriate. Otherwise, SQLITE_OK.
6123 int sqlite3PagerWrite(PgHdr *pPg){
6124 Pager *pPager = pPg->pPager;
6125 assert( (pPg->flags & PGHDR_MMAP)==0 );
6126 assert( pPager->eState>=PAGER_WRITER_LOCKED );
6127 assert( assert_pager_state(pPager) );
6128 if( (pPg->flags & PGHDR_WRITEABLE)!=0 && pPager->dbSize>=pPg->pgno ){
6129 if( pPager->nSavepoint ) return subjournalPageIfRequired(pPg);
6130 return SQLITE_OK;
6131 }else if( pPager->errCode ){
6132 return pPager->errCode;
6133 }else if( pPager->sectorSize > (u32)pPager->pageSize ){
6134 assert( pPager->tempFile==0 );
6135 return pagerWriteLargeSector(pPg);
6136 }else{
6137 return pager_write(pPg);
6142 ** Return TRUE if the page given in the argument was previously passed
6143 ** to sqlite3PagerWrite(). In other words, return TRUE if it is ok
6144 ** to change the content of the page.
6146 #ifndef NDEBUG
6147 int sqlite3PagerIswriteable(DbPage *pPg){
6148 return pPg->flags & PGHDR_WRITEABLE;
6150 #endif
6153 ** A call to this routine tells the pager that it is not necessary to
6154 ** write the information on page pPg back to the disk, even though
6155 ** that page might be marked as dirty. This happens, for example, when
6156 ** the page has been added as a leaf of the freelist and so its
6157 ** content no longer matters.
6159 ** The overlying software layer calls this routine when all of the data
6160 ** on the given page is unused. The pager marks the page as clean so
6161 ** that it does not get written to disk.
6163 ** Tests show that this optimization can quadruple the speed of large
6164 ** DELETE operations.
6166 ** This optimization cannot be used with a temp-file, as the page may
6167 ** have been dirty at the start of the transaction. In that case, if
6168 ** memory pressure forces page pPg out of the cache, the data does need
6169 ** to be written out to disk so that it may be read back in if the
6170 ** current transaction is rolled back.
6172 void sqlite3PagerDontWrite(PgHdr *pPg){
6173 Pager *pPager = pPg->pPager;
6174 if( !pPager->tempFile && (pPg->flags&PGHDR_DIRTY) && pPager->nSavepoint==0 ){
6175 PAGERTRACE(("DONT_WRITE page %d of %d\n", pPg->pgno, PAGERID(pPager)));
6176 IOTRACE(("CLEAN %p %d\n", pPager, pPg->pgno))
6177 pPg->flags |= PGHDR_DONT_WRITE;
6178 pPg->flags &= ~PGHDR_WRITEABLE;
6179 testcase( pPg->flags & PGHDR_NEED_SYNC );
6180 pager_set_pagehash(pPg);
6185 ** This routine is called to increment the value of the database file
6186 ** change-counter, stored as a 4-byte big-endian integer starting at
6187 ** byte offset 24 of the pager file. The secondary change counter at
6188 ** 92 is also updated, as is the SQLite version number at offset 96.
6190 ** But this only happens if the pPager->changeCountDone flag is false.
6191 ** To avoid excess churning of page 1, the update only happens once.
6192 ** See also the pager_write_changecounter() routine that does an
6193 ** unconditional update of the change counters.
6195 ** If the isDirectMode flag is zero, then this is done by calling
6196 ** sqlite3PagerWrite() on page 1, then modifying the contents of the
6197 ** page data. In this case the file will be updated when the current
6198 ** transaction is committed.
6200 ** The isDirectMode flag may only be non-zero if the library was compiled
6201 ** with the SQLITE_ENABLE_ATOMIC_WRITE macro defined. In this case,
6202 ** if isDirect is non-zero, then the database file is updated directly
6203 ** by writing an updated version of page 1 using a call to the
6204 ** sqlite3OsWrite() function.
6206 static int pager_incr_changecounter(Pager *pPager, int isDirectMode){
6207 int rc = SQLITE_OK;
6209 assert( pPager->eState==PAGER_WRITER_CACHEMOD
6210 || pPager->eState==PAGER_WRITER_DBMOD
6212 assert( assert_pager_state(pPager) );
6214 /* Declare and initialize constant integer 'isDirect'. If the
6215 ** atomic-write optimization is enabled in this build, then isDirect
6216 ** is initialized to the value passed as the isDirectMode parameter
6217 ** to this function. Otherwise, it is always set to zero.
6219 ** The idea is that if the atomic-write optimization is not
6220 ** enabled at compile time, the compiler can omit the tests of
6221 ** 'isDirect' below, as well as the block enclosed in the
6222 ** "if( isDirect )" condition.
6224 #ifndef SQLITE_ENABLE_ATOMIC_WRITE
6225 # define DIRECT_MODE 0
6226 assert( isDirectMode==0 );
6227 UNUSED_PARAMETER(isDirectMode);
6228 #else
6229 # define DIRECT_MODE isDirectMode
6230 #endif
6232 if( !pPager->changeCountDone && ALWAYS(pPager->dbSize>0) ){
6233 PgHdr *pPgHdr; /* Reference to page 1 */
6235 assert( !pPager->tempFile && isOpen(pPager->fd) );
6237 /* Open page 1 of the file for writing. */
6238 rc = sqlite3PagerGet(pPager, 1, &pPgHdr, 0);
6239 assert( pPgHdr==0 || rc==SQLITE_OK );
6241 /* If page one was fetched successfully, and this function is not
6242 ** operating in direct-mode, make page 1 writable. When not in
6243 ** direct mode, page 1 is always held in cache and hence the PagerGet()
6244 ** above is always successful - hence the ALWAYS on rc==SQLITE_OK.
6246 if( !DIRECT_MODE && ALWAYS(rc==SQLITE_OK) ){
6247 rc = sqlite3PagerWrite(pPgHdr);
6250 if( rc==SQLITE_OK ){
6251 /* Actually do the update of the change counter */
6252 pager_write_changecounter(pPgHdr);
6254 /* If running in direct mode, write the contents of page 1 to the file. */
6255 if( DIRECT_MODE ){
6256 const void *zBuf;
6257 assert( pPager->dbFileSize>0 );
6258 CODEC2(pPager, pPgHdr->pData, 1, 6, rc=SQLITE_NOMEM_BKPT, zBuf);
6259 if( rc==SQLITE_OK ){
6260 rc = sqlite3OsWrite(pPager->fd, zBuf, pPager->pageSize, 0);
6261 pPager->aStat[PAGER_STAT_WRITE]++;
6263 if( rc==SQLITE_OK ){
6264 /* Update the pager's copy of the change-counter. Otherwise, the
6265 ** next time a read transaction is opened the cache will be
6266 ** flushed (as the change-counter values will not match). */
6267 const void *pCopy = (const void *)&((const char *)zBuf)[24];
6268 memcpy(&pPager->dbFileVers, pCopy, sizeof(pPager->dbFileVers));
6269 pPager->changeCountDone = 1;
6271 }else{
6272 pPager->changeCountDone = 1;
6276 /* Release the page reference. */
6277 sqlite3PagerUnref(pPgHdr);
6279 return rc;
6283 ** Sync the database file to disk. This is a no-op for in-memory databases
6284 ** or pages with the Pager.noSync flag set.
6286 ** If successful, or if called on a pager for which it is a no-op, this
6287 ** function returns SQLITE_OK. Otherwise, an IO error code is returned.
6289 int sqlite3PagerSync(Pager *pPager, const char *zMaster){
6290 int rc = SQLITE_OK;
6292 if( isOpen(pPager->fd) ){
6293 void *pArg = (void*)zMaster;
6294 rc = sqlite3OsFileControl(pPager->fd, SQLITE_FCNTL_SYNC, pArg);
6295 if( rc==SQLITE_NOTFOUND ) rc = SQLITE_OK;
6297 if( rc==SQLITE_OK && !pPager->noSync ){
6298 assert( !MEMDB );
6299 rc = sqlite3OsSync(pPager->fd, pPager->syncFlags);
6301 return rc;
6305 ** This function may only be called while a write-transaction is active in
6306 ** rollback. If the connection is in WAL mode, this call is a no-op.
6307 ** Otherwise, if the connection does not already have an EXCLUSIVE lock on
6308 ** the database file, an attempt is made to obtain one.
6310 ** If the EXCLUSIVE lock is already held or the attempt to obtain it is
6311 ** successful, or the connection is in WAL mode, SQLITE_OK is returned.
6312 ** Otherwise, either SQLITE_BUSY or an SQLITE_IOERR_XXX error code is
6313 ** returned.
6315 int sqlite3PagerExclusiveLock(Pager *pPager){
6316 int rc = pPager->errCode;
6317 assert( assert_pager_state(pPager) );
6318 if( rc==SQLITE_OK ){
6319 assert( pPager->eState==PAGER_WRITER_CACHEMOD
6320 || pPager->eState==PAGER_WRITER_DBMOD
6321 || pPager->eState==PAGER_WRITER_LOCKED
6323 assert( assert_pager_state(pPager) );
6324 if( 0==pagerUseWal(pPager) ){
6325 rc = pager_wait_on_lock(pPager, EXCLUSIVE_LOCK);
6328 return rc;
6332 ** Sync the database file for the pager pPager. zMaster points to the name
6333 ** of a master journal file that should be written into the individual
6334 ** journal file. zMaster may be NULL, which is interpreted as no master
6335 ** journal (a single database transaction).
6337 ** This routine ensures that:
6339 ** * The database file change-counter is updated,
6340 ** * the journal is synced (unless the atomic-write optimization is used),
6341 ** * all dirty pages are written to the database file,
6342 ** * the database file is truncated (if required), and
6343 ** * the database file synced.
6345 ** The only thing that remains to commit the transaction is to finalize
6346 ** (delete, truncate or zero the first part of) the journal file (or
6347 ** delete the master journal file if specified).
6349 ** Note that if zMaster==NULL, this does not overwrite a previous value
6350 ** passed to an sqlite3PagerCommitPhaseOne() call.
6352 ** If the final parameter - noSync - is true, then the database file itself
6353 ** is not synced. The caller must call sqlite3PagerSync() directly to
6354 ** sync the database file before calling CommitPhaseTwo() to delete the
6355 ** journal file in this case.
6357 int sqlite3PagerCommitPhaseOne(
6358 Pager *pPager, /* Pager object */
6359 const char *zMaster, /* If not NULL, the master journal name */
6360 int noSync /* True to omit the xSync on the db file */
6362 int rc = SQLITE_OK; /* Return code */
6364 assert( pPager->eState==PAGER_WRITER_LOCKED
6365 || pPager->eState==PAGER_WRITER_CACHEMOD
6366 || pPager->eState==PAGER_WRITER_DBMOD
6367 || pPager->eState==PAGER_ERROR
6369 assert( assert_pager_state(pPager) );
6371 /* If a prior error occurred, report that error again. */
6372 if( NEVER(pPager->errCode) ) return pPager->errCode;
6374 /* Provide the ability to easily simulate an I/O error during testing */
6375 if( sqlite3FaultSim(400) ) return SQLITE_IOERR;
6377 PAGERTRACE(("DATABASE SYNC: File=%s zMaster=%s nSize=%d\n",
6378 pPager->zFilename, zMaster, pPager->dbSize));
6380 /* If no database changes have been made, return early. */
6381 if( pPager->eState<PAGER_WRITER_CACHEMOD ) return SQLITE_OK;
6383 assert( MEMDB==0 || pPager->tempFile );
6384 assert( isOpen(pPager->fd) || pPager->tempFile );
6385 if( 0==pagerFlushOnCommit(pPager, 1) ){
6386 /* If this is an in-memory db, or no pages have been written to, or this
6387 ** function has already been called, it is mostly a no-op. However, any
6388 ** backup in progress needs to be restarted. */
6389 sqlite3BackupRestart(pPager->pBackup);
6390 }else{
6391 if( pagerUseWal(pPager) ){
6392 PgHdr *pList = sqlite3PcacheDirtyList(pPager->pPCache);
6393 PgHdr *pPageOne = 0;
6394 if( pList==0 ){
6395 /* Must have at least one page for the WAL commit flag.
6396 ** Ticket [2d1a5c67dfc2363e44f29d9bbd57f] 2011-05-18 */
6397 rc = sqlite3PagerGet(pPager, 1, &pPageOne, 0);
6398 pList = pPageOne;
6399 pList->pDirty = 0;
6401 assert( rc==SQLITE_OK );
6402 if( ALWAYS(pList) ){
6403 rc = pagerWalFrames(pPager, pList, pPager->dbSize, 1);
6405 sqlite3PagerUnref(pPageOne);
6406 if( rc==SQLITE_OK ){
6407 sqlite3PcacheCleanAll(pPager->pPCache);
6409 }else{
6410 /* The bBatch boolean is true if the batch-atomic-write commit method
6411 ** should be used. No rollback journal is created if batch-atomic-write
6412 ** is enabled.
6414 sqlite3_file *fd = pPager->fd;
6415 #ifdef SQLITE_ENABLE_BATCH_ATOMIC_WRITE
6416 const int bBatch = zMaster==0 /* An SQLITE_IOCAP_BATCH_ATOMIC commit */
6417 && (sqlite3OsDeviceCharacteristics(fd) & SQLITE_IOCAP_BATCH_ATOMIC)
6418 && !pPager->noSync
6419 && sqlite3JournalIsInMemory(pPager->jfd);
6420 #else
6421 # define bBatch 0
6422 #endif
6424 #ifdef SQLITE_ENABLE_ATOMIC_WRITE
6425 /* The following block updates the change-counter. Exactly how it
6426 ** does this depends on whether or not the atomic-update optimization
6427 ** was enabled at compile time, and if this transaction meets the
6428 ** runtime criteria to use the operation:
6430 ** * The file-system supports the atomic-write property for
6431 ** blocks of size page-size, and
6432 ** * This commit is not part of a multi-file transaction, and
6433 ** * Exactly one page has been modified and store in the journal file.
6435 ** If the optimization was not enabled at compile time, then the
6436 ** pager_incr_changecounter() function is called to update the change
6437 ** counter in 'indirect-mode'. If the optimization is compiled in but
6438 ** is not applicable to this transaction, call sqlite3JournalCreate()
6439 ** to make sure the journal file has actually been created, then call
6440 ** pager_incr_changecounter() to update the change-counter in indirect
6441 ** mode.
6443 ** Otherwise, if the optimization is both enabled and applicable,
6444 ** then call pager_incr_changecounter() to update the change-counter
6445 ** in 'direct' mode. In this case the journal file will never be
6446 ** created for this transaction.
6448 if( bBatch==0 ){
6449 PgHdr *pPg;
6450 assert( isOpen(pPager->jfd)
6451 || pPager->journalMode==PAGER_JOURNALMODE_OFF
6452 || pPager->journalMode==PAGER_JOURNALMODE_WAL
6454 if( !zMaster && isOpen(pPager->jfd)
6455 && pPager->journalOff==jrnlBufferSize(pPager)
6456 && pPager->dbSize>=pPager->dbOrigSize
6457 && (!(pPg = sqlite3PcacheDirtyList(pPager->pPCache)) || 0==pPg->pDirty)
6459 /* Update the db file change counter via the direct-write method. The
6460 ** following call will modify the in-memory representation of page 1
6461 ** to include the updated change counter and then write page 1
6462 ** directly to the database file. Because of the atomic-write
6463 ** property of the host file-system, this is safe.
6465 rc = pager_incr_changecounter(pPager, 1);
6466 }else{
6467 rc = sqlite3JournalCreate(pPager->jfd);
6468 if( rc==SQLITE_OK ){
6469 rc = pager_incr_changecounter(pPager, 0);
6473 #else
6474 #ifdef SQLITE_ENABLE_BATCH_ATOMIC_WRITE
6475 if( zMaster ){
6476 rc = sqlite3JournalCreate(pPager->jfd);
6477 if( rc!=SQLITE_OK ) goto commit_phase_one_exit;
6479 #endif
6480 rc = pager_incr_changecounter(pPager, 0);
6481 #endif
6482 if( rc!=SQLITE_OK ) goto commit_phase_one_exit;
6484 /* Write the master journal name into the journal file. If a master
6485 ** journal file name has already been written to the journal file,
6486 ** or if zMaster is NULL (no master journal), then this call is a no-op.
6488 rc = writeMasterJournal(pPager, zMaster);
6489 if( rc!=SQLITE_OK ) goto commit_phase_one_exit;
6491 /* Sync the journal file and write all dirty pages to the database.
6492 ** If the atomic-update optimization is being used, this sync will not
6493 ** create the journal file or perform any real IO.
6495 ** Because the change-counter page was just modified, unless the
6496 ** atomic-update optimization is used it is almost certain that the
6497 ** journal requires a sync here. However, in locking_mode=exclusive
6498 ** on a system under memory pressure it is just possible that this is
6499 ** not the case. In this case it is likely enough that the redundant
6500 ** xSync() call will be changed to a no-op by the OS anyhow.
6502 rc = syncJournal(pPager, 0);
6503 if( rc!=SQLITE_OK ) goto commit_phase_one_exit;
6505 if( bBatch ){
6506 /* The pager is now in DBMOD state. But regardless of what happens
6507 ** next, attempting to play the journal back into the database would
6508 ** be unsafe. Close it now to make sure that does not happen. */
6509 sqlite3OsClose(pPager->jfd);
6510 rc = sqlite3OsFileControl(fd, SQLITE_FCNTL_BEGIN_ATOMIC_WRITE, 0);
6511 if( rc!=SQLITE_OK ) goto commit_phase_one_exit;
6513 rc = pager_write_pagelist(pPager,sqlite3PcacheDirtyList(pPager->pPCache));
6514 if( bBatch ){
6515 if( rc==SQLITE_OK ){
6516 rc = sqlite3OsFileControl(fd, SQLITE_FCNTL_COMMIT_ATOMIC_WRITE, 0);
6518 if( rc!=SQLITE_OK ){
6519 sqlite3OsFileControlHint(fd, SQLITE_FCNTL_ROLLBACK_ATOMIC_WRITE, 0);
6523 if( rc!=SQLITE_OK ){
6524 assert( rc!=SQLITE_IOERR_BLOCKED );
6525 goto commit_phase_one_exit;
6527 sqlite3PcacheCleanAll(pPager->pPCache);
6529 /* If the file on disk is smaller than the database image, use
6530 ** pager_truncate to grow the file here. This can happen if the database
6531 ** image was extended as part of the current transaction and then the
6532 ** last page in the db image moved to the free-list. In this case the
6533 ** last page is never written out to disk, leaving the database file
6534 ** undersized. Fix this now if it is the case. */
6535 if( pPager->dbSize>pPager->dbFileSize ){
6536 Pgno nNew = pPager->dbSize - (pPager->dbSize==PAGER_MJ_PGNO(pPager));
6537 assert( pPager->eState==PAGER_WRITER_DBMOD );
6538 rc = pager_truncate(pPager, nNew);
6539 if( rc!=SQLITE_OK ) goto commit_phase_one_exit;
6542 /* Finally, sync the database file. */
6543 if( !noSync ){
6544 rc = sqlite3PagerSync(pPager, zMaster);
6546 IOTRACE(("DBSYNC %p\n", pPager))
6550 commit_phase_one_exit:
6551 if( rc==SQLITE_OK && !pagerUseWal(pPager) ){
6552 pPager->eState = PAGER_WRITER_FINISHED;
6554 return rc;
6559 ** When this function is called, the database file has been completely
6560 ** updated to reflect the changes made by the current transaction and
6561 ** synced to disk. The journal file still exists in the file-system
6562 ** though, and if a failure occurs at this point it will eventually
6563 ** be used as a hot-journal and the current transaction rolled back.
6565 ** This function finalizes the journal file, either by deleting,
6566 ** truncating or partially zeroing it, so that it cannot be used
6567 ** for hot-journal rollback. Once this is done the transaction is
6568 ** irrevocably committed.
6570 ** If an error occurs, an IO error code is returned and the pager
6571 ** moves into the error state. Otherwise, SQLITE_OK is returned.
6573 int sqlite3PagerCommitPhaseTwo(Pager *pPager){
6574 int rc = SQLITE_OK; /* Return code */
6576 /* This routine should not be called if a prior error has occurred.
6577 ** But if (due to a coding error elsewhere in the system) it does get
6578 ** called, just return the same error code without doing anything. */
6579 if( NEVER(pPager->errCode) ) return pPager->errCode;
6581 assert( pPager->eState==PAGER_WRITER_LOCKED
6582 || pPager->eState==PAGER_WRITER_FINISHED
6583 || (pagerUseWal(pPager) && pPager->eState==PAGER_WRITER_CACHEMOD)
6585 assert( assert_pager_state(pPager) );
6587 /* An optimization. If the database was not actually modified during
6588 ** this transaction, the pager is running in exclusive-mode and is
6589 ** using persistent journals, then this function is a no-op.
6591 ** The start of the journal file currently contains a single journal
6592 ** header with the nRec field set to 0. If such a journal is used as
6593 ** a hot-journal during hot-journal rollback, 0 changes will be made
6594 ** to the database file. So there is no need to zero the journal
6595 ** header. Since the pager is in exclusive mode, there is no need
6596 ** to drop any locks either.
6598 if( pPager->eState==PAGER_WRITER_LOCKED
6599 && pPager->exclusiveMode
6600 && pPager->journalMode==PAGER_JOURNALMODE_PERSIST
6602 assert( pPager->journalOff==JOURNAL_HDR_SZ(pPager) || !pPager->journalOff );
6603 pPager->eState = PAGER_READER;
6604 return SQLITE_OK;
6607 PAGERTRACE(("COMMIT %d\n", PAGERID(pPager)));
6608 pPager->iDataVersion++;
6609 rc = pager_end_transaction(pPager, pPager->setMaster, 1);
6610 return pager_error(pPager, rc);
6614 ** If a write transaction is open, then all changes made within the
6615 ** transaction are reverted and the current write-transaction is closed.
6616 ** The pager falls back to PAGER_READER state if successful, or PAGER_ERROR
6617 ** state if an error occurs.
6619 ** If the pager is already in PAGER_ERROR state when this function is called,
6620 ** it returns Pager.errCode immediately. No work is performed in this case.
6622 ** Otherwise, in rollback mode, this function performs two functions:
6624 ** 1) It rolls back the journal file, restoring all database file and
6625 ** in-memory cache pages to the state they were in when the transaction
6626 ** was opened, and
6628 ** 2) It finalizes the journal file, so that it is not used for hot
6629 ** rollback at any point in the future.
6631 ** Finalization of the journal file (task 2) is only performed if the
6632 ** rollback is successful.
6634 ** In WAL mode, all cache-entries containing data modified within the
6635 ** current transaction are either expelled from the cache or reverted to
6636 ** their pre-transaction state by re-reading data from the database or
6637 ** WAL files. The WAL transaction is then closed.
6639 int sqlite3PagerRollback(Pager *pPager){
6640 int rc = SQLITE_OK; /* Return code */
6641 PAGERTRACE(("ROLLBACK %d\n", PAGERID(pPager)));
6643 /* PagerRollback() is a no-op if called in READER or OPEN state. If
6644 ** the pager is already in the ERROR state, the rollback is not
6645 ** attempted here. Instead, the error code is returned to the caller.
6647 assert( assert_pager_state(pPager) );
6648 if( pPager->eState==PAGER_ERROR ) return pPager->errCode;
6649 if( pPager->eState<=PAGER_READER ) return SQLITE_OK;
6651 if( pagerUseWal(pPager) ){
6652 int rc2;
6653 rc = sqlite3PagerSavepoint(pPager, SAVEPOINT_ROLLBACK, -1);
6654 rc2 = pager_end_transaction(pPager, pPager->setMaster, 0);
6655 if( rc==SQLITE_OK ) rc = rc2;
6656 }else if( !isOpen(pPager->jfd) || pPager->eState==PAGER_WRITER_LOCKED ){
6657 int eState = pPager->eState;
6658 rc = pager_end_transaction(pPager, 0, 0);
6659 if( !MEMDB && eState>PAGER_WRITER_LOCKED ){
6660 /* This can happen using journal_mode=off. Move the pager to the error
6661 ** state to indicate that the contents of the cache may not be trusted.
6662 ** Any active readers will get SQLITE_ABORT.
6664 pPager->errCode = SQLITE_ABORT;
6665 pPager->eState = PAGER_ERROR;
6666 setGetterMethod(pPager);
6667 return rc;
6669 }else{
6670 rc = pager_playback(pPager, 0);
6673 assert( pPager->eState==PAGER_READER || rc!=SQLITE_OK );
6674 assert( rc==SQLITE_OK || rc==SQLITE_FULL || rc==SQLITE_CORRUPT
6675 || rc==SQLITE_NOMEM || (rc&0xFF)==SQLITE_IOERR
6676 || rc==SQLITE_CANTOPEN
6679 /* If an error occurs during a ROLLBACK, we can no longer trust the pager
6680 ** cache. So call pager_error() on the way out to make any error persistent.
6682 return pager_error(pPager, rc);
6686 ** Return TRUE if the database file is opened read-only. Return FALSE
6687 ** if the database is (in theory) writable.
6689 u8 sqlite3PagerIsreadonly(Pager *pPager){
6690 return pPager->readOnly;
6693 #ifdef SQLITE_DEBUG
6695 ** Return the sum of the reference counts for all pages held by pPager.
6697 int sqlite3PagerRefcount(Pager *pPager){
6698 return sqlite3PcacheRefCount(pPager->pPCache);
6700 #endif
6703 ** Return the approximate number of bytes of memory currently
6704 ** used by the pager and its associated cache.
6706 int sqlite3PagerMemUsed(Pager *pPager){
6707 int perPageSize = pPager->pageSize + pPager->nExtra + sizeof(PgHdr)
6708 + 5*sizeof(void*);
6709 return perPageSize*sqlite3PcachePagecount(pPager->pPCache)
6710 + sqlite3MallocSize(pPager)
6711 + pPager->pageSize;
6715 ** Return the number of references to the specified page.
6717 int sqlite3PagerPageRefcount(DbPage *pPage){
6718 return sqlite3PcachePageRefcount(pPage);
6721 #ifdef SQLITE_TEST
6723 ** This routine is used for testing and analysis only.
6725 int *sqlite3PagerStats(Pager *pPager){
6726 static int a[11];
6727 a[0] = sqlite3PcacheRefCount(pPager->pPCache);
6728 a[1] = sqlite3PcachePagecount(pPager->pPCache);
6729 a[2] = sqlite3PcacheGetCachesize(pPager->pPCache);
6730 a[3] = pPager->eState==PAGER_OPEN ? -1 : (int) pPager->dbSize;
6731 a[4] = pPager->eState;
6732 a[5] = pPager->errCode;
6733 a[6] = pPager->aStat[PAGER_STAT_HIT];
6734 a[7] = pPager->aStat[PAGER_STAT_MISS];
6735 a[8] = 0; /* Used to be pPager->nOvfl */
6736 a[9] = pPager->nRead;
6737 a[10] = pPager->aStat[PAGER_STAT_WRITE];
6738 return a;
6740 #endif
6743 ** Parameter eStat must be one of SQLITE_DBSTATUS_CACHE_HIT, _MISS, _WRITE,
6744 ** or _WRITE+1. The SQLITE_DBSTATUS_CACHE_WRITE+1 case is a translation
6745 ** of SQLITE_DBSTATUS_CACHE_SPILL. The _SPILL case is not contiguous because
6746 ** it was added later.
6748 ** Before returning, *pnVal is incremented by the
6749 ** current cache hit or miss count, according to the value of eStat. If the
6750 ** reset parameter is non-zero, the cache hit or miss count is zeroed before
6751 ** returning.
6753 void sqlite3PagerCacheStat(Pager *pPager, int eStat, int reset, int *pnVal){
6755 assert( eStat==SQLITE_DBSTATUS_CACHE_HIT
6756 || eStat==SQLITE_DBSTATUS_CACHE_MISS
6757 || eStat==SQLITE_DBSTATUS_CACHE_WRITE
6758 || eStat==SQLITE_DBSTATUS_CACHE_WRITE+1
6761 assert( SQLITE_DBSTATUS_CACHE_HIT+1==SQLITE_DBSTATUS_CACHE_MISS );
6762 assert( SQLITE_DBSTATUS_CACHE_HIT+2==SQLITE_DBSTATUS_CACHE_WRITE );
6763 assert( PAGER_STAT_HIT==0 && PAGER_STAT_MISS==1
6764 && PAGER_STAT_WRITE==2 && PAGER_STAT_SPILL==3 );
6766 eStat -= SQLITE_DBSTATUS_CACHE_HIT;
6767 *pnVal += pPager->aStat[eStat];
6768 if( reset ){
6769 pPager->aStat[eStat] = 0;
6774 ** Return true if this is an in-memory or temp-file backed pager.
6776 int sqlite3PagerIsMemdb(Pager *pPager){
6777 return pPager->tempFile;
6781 ** Check that there are at least nSavepoint savepoints open. If there are
6782 ** currently less than nSavepoints open, then open one or more savepoints
6783 ** to make up the difference. If the number of savepoints is already
6784 ** equal to nSavepoint, then this function is a no-op.
6786 ** If a memory allocation fails, SQLITE_NOMEM is returned. If an error
6787 ** occurs while opening the sub-journal file, then an IO error code is
6788 ** returned. Otherwise, SQLITE_OK.
6790 static SQLITE_NOINLINE int pagerOpenSavepoint(Pager *pPager, int nSavepoint){
6791 int rc = SQLITE_OK; /* Return code */
6792 int nCurrent = pPager->nSavepoint; /* Current number of savepoints */
6793 int ii; /* Iterator variable */
6794 PagerSavepoint *aNew; /* New Pager.aSavepoint array */
6796 assert( pPager->eState>=PAGER_WRITER_LOCKED );
6797 assert( assert_pager_state(pPager) );
6798 assert( nSavepoint>nCurrent && pPager->useJournal );
6800 /* Grow the Pager.aSavepoint array using realloc(). Return SQLITE_NOMEM
6801 ** if the allocation fails. Otherwise, zero the new portion in case a
6802 ** malloc failure occurs while populating it in the for(...) loop below.
6804 aNew = (PagerSavepoint *)sqlite3Realloc(
6805 pPager->aSavepoint, sizeof(PagerSavepoint)*nSavepoint
6807 if( !aNew ){
6808 return SQLITE_NOMEM_BKPT;
6810 memset(&aNew[nCurrent], 0, (nSavepoint-nCurrent) * sizeof(PagerSavepoint));
6811 pPager->aSavepoint = aNew;
6813 /* Populate the PagerSavepoint structures just allocated. */
6814 for(ii=nCurrent; ii<nSavepoint; ii++){
6815 aNew[ii].nOrig = pPager->dbSize;
6816 if( isOpen(pPager->jfd) && pPager->journalOff>0 ){
6817 aNew[ii].iOffset = pPager->journalOff;
6818 }else{
6819 aNew[ii].iOffset = JOURNAL_HDR_SZ(pPager);
6821 aNew[ii].iSubRec = pPager->nSubRec;
6822 aNew[ii].pInSavepoint = sqlite3BitvecCreate(pPager->dbSize);
6823 if( !aNew[ii].pInSavepoint ){
6824 return SQLITE_NOMEM_BKPT;
6826 if( pagerUseWal(pPager) ){
6827 sqlite3WalSavepoint(pPager->pWal, aNew[ii].aWalData);
6829 pPager->nSavepoint = ii+1;
6831 assert( pPager->nSavepoint==nSavepoint );
6832 assertTruncateConstraint(pPager);
6833 return rc;
6835 int sqlite3PagerOpenSavepoint(Pager *pPager, int nSavepoint){
6836 assert( pPager->eState>=PAGER_WRITER_LOCKED );
6837 assert( assert_pager_state(pPager) );
6839 if( nSavepoint>pPager->nSavepoint && pPager->useJournal ){
6840 return pagerOpenSavepoint(pPager, nSavepoint);
6841 }else{
6842 return SQLITE_OK;
6848 ** This function is called to rollback or release (commit) a savepoint.
6849 ** The savepoint to release or rollback need not be the most recently
6850 ** created savepoint.
6852 ** Parameter op is always either SAVEPOINT_ROLLBACK or SAVEPOINT_RELEASE.
6853 ** If it is SAVEPOINT_RELEASE, then release and destroy the savepoint with
6854 ** index iSavepoint. If it is SAVEPOINT_ROLLBACK, then rollback all changes
6855 ** that have occurred since the specified savepoint was created.
6857 ** The savepoint to rollback or release is identified by parameter
6858 ** iSavepoint. A value of 0 means to operate on the outermost savepoint
6859 ** (the first created). A value of (Pager.nSavepoint-1) means operate
6860 ** on the most recently created savepoint. If iSavepoint is greater than
6861 ** (Pager.nSavepoint-1), then this function is a no-op.
6863 ** If a negative value is passed to this function, then the current
6864 ** transaction is rolled back. This is different to calling
6865 ** sqlite3PagerRollback() because this function does not terminate
6866 ** the transaction or unlock the database, it just restores the
6867 ** contents of the database to its original state.
6869 ** In any case, all savepoints with an index greater than iSavepoint
6870 ** are destroyed. If this is a release operation (op==SAVEPOINT_RELEASE),
6871 ** then savepoint iSavepoint is also destroyed.
6873 ** This function may return SQLITE_NOMEM if a memory allocation fails,
6874 ** or an IO error code if an IO error occurs while rolling back a
6875 ** savepoint. If no errors occur, SQLITE_OK is returned.
6877 int sqlite3PagerSavepoint(Pager *pPager, int op, int iSavepoint){
6878 int rc = pPager->errCode;
6880 #ifdef SQLITE_ENABLE_ZIPVFS
6881 if( op==SAVEPOINT_RELEASE ) rc = SQLITE_OK;
6882 #endif
6884 assert( op==SAVEPOINT_RELEASE || op==SAVEPOINT_ROLLBACK );
6885 assert( iSavepoint>=0 || op==SAVEPOINT_ROLLBACK );
6887 if( rc==SQLITE_OK && iSavepoint<pPager->nSavepoint ){
6888 int ii; /* Iterator variable */
6889 int nNew; /* Number of remaining savepoints after this op. */
6891 /* Figure out how many savepoints will still be active after this
6892 ** operation. Store this value in nNew. Then free resources associated
6893 ** with any savepoints that are destroyed by this operation.
6895 nNew = iSavepoint + (( op==SAVEPOINT_RELEASE ) ? 0 : 1);
6896 for(ii=nNew; ii<pPager->nSavepoint; ii++){
6897 sqlite3BitvecDestroy(pPager->aSavepoint[ii].pInSavepoint);
6899 pPager->nSavepoint = nNew;
6901 /* If this is a release of the outermost savepoint, truncate
6902 ** the sub-journal to zero bytes in size. */
6903 if( op==SAVEPOINT_RELEASE ){
6904 if( nNew==0 && isOpen(pPager->sjfd) ){
6905 /* Only truncate if it is an in-memory sub-journal. */
6906 if( sqlite3JournalIsInMemory(pPager->sjfd) ){
6907 rc = sqlite3OsTruncate(pPager->sjfd, 0);
6908 assert( rc==SQLITE_OK );
6910 pPager->nSubRec = 0;
6913 /* Else this is a rollback operation, playback the specified savepoint.
6914 ** If this is a temp-file, it is possible that the journal file has
6915 ** not yet been opened. In this case there have been no changes to
6916 ** the database file, so the playback operation can be skipped.
6918 else if( pagerUseWal(pPager) || isOpen(pPager->jfd) ){
6919 PagerSavepoint *pSavepoint = (nNew==0)?0:&pPager->aSavepoint[nNew-1];
6920 rc = pagerPlaybackSavepoint(pPager, pSavepoint);
6921 assert(rc!=SQLITE_DONE);
6924 #ifdef SQLITE_ENABLE_ZIPVFS
6925 /* If the cache has been modified but the savepoint cannot be rolled
6926 ** back journal_mode=off, put the pager in the error state. This way,
6927 ** if the VFS used by this pager includes ZipVFS, the entire transaction
6928 ** can be rolled back at the ZipVFS level. */
6929 else if(
6930 pPager->journalMode==PAGER_JOURNALMODE_OFF
6931 && pPager->eState>=PAGER_WRITER_CACHEMOD
6933 pPager->errCode = SQLITE_ABORT;
6934 pPager->eState = PAGER_ERROR;
6935 setGetterMethod(pPager);
6937 #endif
6940 return rc;
6944 ** Return the full pathname of the database file.
6946 ** Except, if the pager is in-memory only, then return an empty string if
6947 ** nullIfMemDb is true. This routine is called with nullIfMemDb==1 when
6948 ** used to report the filename to the user, for compatibility with legacy
6949 ** behavior. But when the Btree needs to know the filename for matching to
6950 ** shared cache, it uses nullIfMemDb==0 so that in-memory databases can
6951 ** participate in shared-cache.
6953 const char *sqlite3PagerFilename(Pager *pPager, int nullIfMemDb){
6954 return (nullIfMemDb && pPager->memDb) ? "" : pPager->zFilename;
6958 ** Return the VFS structure for the pager.
6960 sqlite3_vfs *sqlite3PagerVfs(Pager *pPager){
6961 return pPager->pVfs;
6965 ** Return the file handle for the database file associated
6966 ** with the pager. This might return NULL if the file has
6967 ** not yet been opened.
6969 sqlite3_file *sqlite3PagerFile(Pager *pPager){
6970 return pPager->fd;
6974 ** Return the file handle for the journal file (if it exists).
6975 ** This will be either the rollback journal or the WAL file.
6977 sqlite3_file *sqlite3PagerJrnlFile(Pager *pPager){
6978 #if SQLITE_OMIT_WAL
6979 return pPager->jfd;
6980 #else
6981 return pPager->pWal ? sqlite3WalFile(pPager->pWal) : pPager->jfd;
6982 #endif
6986 ** Return the full pathname of the journal file.
6988 const char *sqlite3PagerJournalname(Pager *pPager){
6989 return pPager->zJournal;
6992 #ifdef SQLITE_HAS_CODEC
6994 ** Set or retrieve the codec for this pager
6996 void sqlite3PagerSetCodec(
6997 Pager *pPager,
6998 void *(*xCodec)(void*,void*,Pgno,int),
6999 void (*xCodecSizeChng)(void*,int,int),
7000 void (*xCodecFree)(void*),
7001 void *pCodec
7003 if( pPager->xCodecFree ) pPager->xCodecFree(pPager->pCodec);
7004 pPager->xCodec = pPager->memDb ? 0 : xCodec;
7005 pPager->xCodecSizeChng = xCodecSizeChng;
7006 pPager->xCodecFree = xCodecFree;
7007 pPager->pCodec = pCodec;
7008 setGetterMethod(pPager);
7009 pagerReportSize(pPager);
7011 void *sqlite3PagerGetCodec(Pager *pPager){
7012 return pPager->pCodec;
7016 ** This function is called by the wal module when writing page content
7017 ** into the log file.
7019 ** This function returns a pointer to a buffer containing the encrypted
7020 ** page content. If a malloc fails, this function may return NULL.
7022 void *sqlite3PagerCodec(PgHdr *pPg){
7023 void *aData = 0;
7024 CODEC2(pPg->pPager, pPg->pData, pPg->pgno, 6, return 0, aData);
7025 return aData;
7029 ** Return the current pager state
7031 int sqlite3PagerState(Pager *pPager){
7032 return pPager->eState;
7034 #endif /* SQLITE_HAS_CODEC */
7036 #ifndef SQLITE_OMIT_AUTOVACUUM
7038 ** Move the page pPg to location pgno in the file.
7040 ** There must be no references to the page previously located at
7041 ** pgno (which we call pPgOld) though that page is allowed to be
7042 ** in cache. If the page previously located at pgno is not already
7043 ** in the rollback journal, it is not put there by by this routine.
7045 ** References to the page pPg remain valid. Updating any
7046 ** meta-data associated with pPg (i.e. data stored in the nExtra bytes
7047 ** allocated along with the page) is the responsibility of the caller.
7049 ** A transaction must be active when this routine is called. It used to be
7050 ** required that a statement transaction was not active, but this restriction
7051 ** has been removed (CREATE INDEX needs to move a page when a statement
7052 ** transaction is active).
7054 ** If the fourth argument, isCommit, is non-zero, then this page is being
7055 ** moved as part of a database reorganization just before the transaction
7056 ** is being committed. In this case, it is guaranteed that the database page
7057 ** pPg refers to will not be written to again within this transaction.
7059 ** This function may return SQLITE_NOMEM or an IO error code if an error
7060 ** occurs. Otherwise, it returns SQLITE_OK.
7062 int sqlite3PagerMovepage(Pager *pPager, DbPage *pPg, Pgno pgno, int isCommit){
7063 PgHdr *pPgOld; /* The page being overwritten. */
7064 Pgno needSyncPgno = 0; /* Old value of pPg->pgno, if sync is required */
7065 int rc; /* Return code */
7066 Pgno origPgno; /* The original page number */
7068 assert( pPg->nRef>0 );
7069 assert( pPager->eState==PAGER_WRITER_CACHEMOD
7070 || pPager->eState==PAGER_WRITER_DBMOD
7072 assert( assert_pager_state(pPager) );
7074 /* In order to be able to rollback, an in-memory database must journal
7075 ** the page we are moving from.
7077 assert( pPager->tempFile || !MEMDB );
7078 if( pPager->tempFile ){
7079 rc = sqlite3PagerWrite(pPg);
7080 if( rc ) return rc;
7083 /* If the page being moved is dirty and has not been saved by the latest
7084 ** savepoint, then save the current contents of the page into the
7085 ** sub-journal now. This is required to handle the following scenario:
7087 ** BEGIN;
7088 ** <journal page X, then modify it in memory>
7089 ** SAVEPOINT one;
7090 ** <Move page X to location Y>
7091 ** ROLLBACK TO one;
7093 ** If page X were not written to the sub-journal here, it would not
7094 ** be possible to restore its contents when the "ROLLBACK TO one"
7095 ** statement were is processed.
7097 ** subjournalPage() may need to allocate space to store pPg->pgno into
7098 ** one or more savepoint bitvecs. This is the reason this function
7099 ** may return SQLITE_NOMEM.
7101 if( (pPg->flags & PGHDR_DIRTY)!=0
7102 && SQLITE_OK!=(rc = subjournalPageIfRequired(pPg))
7104 return rc;
7107 PAGERTRACE(("MOVE %d page %d (needSync=%d) moves to %d\n",
7108 PAGERID(pPager), pPg->pgno, (pPg->flags&PGHDR_NEED_SYNC)?1:0, pgno));
7109 IOTRACE(("MOVE %p %d %d\n", pPager, pPg->pgno, pgno))
7111 /* If the journal needs to be sync()ed before page pPg->pgno can
7112 ** be written to, store pPg->pgno in local variable needSyncPgno.
7114 ** If the isCommit flag is set, there is no need to remember that
7115 ** the journal needs to be sync()ed before database page pPg->pgno
7116 ** can be written to. The caller has already promised not to write to it.
7118 if( (pPg->flags&PGHDR_NEED_SYNC) && !isCommit ){
7119 needSyncPgno = pPg->pgno;
7120 assert( pPager->journalMode==PAGER_JOURNALMODE_OFF ||
7121 pageInJournal(pPager, pPg) || pPg->pgno>pPager->dbOrigSize );
7122 assert( pPg->flags&PGHDR_DIRTY );
7125 /* If the cache contains a page with page-number pgno, remove it
7126 ** from its hash chain. Also, if the PGHDR_NEED_SYNC flag was set for
7127 ** page pgno before the 'move' operation, it needs to be retained
7128 ** for the page moved there.
7130 pPg->flags &= ~PGHDR_NEED_SYNC;
7131 pPgOld = sqlite3PagerLookup(pPager, pgno);
7132 assert( !pPgOld || pPgOld->nRef==1 );
7133 if( pPgOld ){
7134 pPg->flags |= (pPgOld->flags&PGHDR_NEED_SYNC);
7135 if( pPager->tempFile ){
7136 /* Do not discard pages from an in-memory database since we might
7137 ** need to rollback later. Just move the page out of the way. */
7138 sqlite3PcacheMove(pPgOld, pPager->dbSize+1);
7139 }else{
7140 sqlite3PcacheDrop(pPgOld);
7144 origPgno = pPg->pgno;
7145 sqlite3PcacheMove(pPg, pgno);
7146 sqlite3PcacheMakeDirty(pPg);
7148 /* For an in-memory database, make sure the original page continues
7149 ** to exist, in case the transaction needs to roll back. Use pPgOld
7150 ** as the original page since it has already been allocated.
7152 if( pPager->tempFile && pPgOld ){
7153 sqlite3PcacheMove(pPgOld, origPgno);
7154 sqlite3PagerUnrefNotNull(pPgOld);
7157 if( needSyncPgno ){
7158 /* If needSyncPgno is non-zero, then the journal file needs to be
7159 ** sync()ed before any data is written to database file page needSyncPgno.
7160 ** Currently, no such page exists in the page-cache and the
7161 ** "is journaled" bitvec flag has been set. This needs to be remedied by
7162 ** loading the page into the pager-cache and setting the PGHDR_NEED_SYNC
7163 ** flag.
7165 ** If the attempt to load the page into the page-cache fails, (due
7166 ** to a malloc() or IO failure), clear the bit in the pInJournal[]
7167 ** array. Otherwise, if the page is loaded and written again in
7168 ** this transaction, it may be written to the database file before
7169 ** it is synced into the journal file. This way, it may end up in
7170 ** the journal file twice, but that is not a problem.
7172 PgHdr *pPgHdr;
7173 rc = sqlite3PagerGet(pPager, needSyncPgno, &pPgHdr, 0);
7174 if( rc!=SQLITE_OK ){
7175 if( needSyncPgno<=pPager->dbOrigSize ){
7176 assert( pPager->pTmpSpace!=0 );
7177 sqlite3BitvecClear(pPager->pInJournal, needSyncPgno, pPager->pTmpSpace);
7179 return rc;
7181 pPgHdr->flags |= PGHDR_NEED_SYNC;
7182 sqlite3PcacheMakeDirty(pPgHdr);
7183 sqlite3PagerUnrefNotNull(pPgHdr);
7186 return SQLITE_OK;
7188 #endif
7191 ** The page handle passed as the first argument refers to a dirty page
7192 ** with a page number other than iNew. This function changes the page's
7193 ** page number to iNew and sets the value of the PgHdr.flags field to
7194 ** the value passed as the third parameter.
7196 void sqlite3PagerRekey(DbPage *pPg, Pgno iNew, u16 flags){
7197 assert( pPg->pgno!=iNew );
7198 pPg->flags = flags;
7199 sqlite3PcacheMove(pPg, iNew);
7203 ** Return a pointer to the data for the specified page.
7205 void *sqlite3PagerGetData(DbPage *pPg){
7206 assert( pPg->nRef>0 || pPg->pPager->memDb );
7207 return pPg->pData;
7211 ** Return a pointer to the Pager.nExtra bytes of "extra" space
7212 ** allocated along with the specified page.
7214 void *sqlite3PagerGetExtra(DbPage *pPg){
7215 return pPg->pExtra;
7219 ** Get/set the locking-mode for this pager. Parameter eMode must be one
7220 ** of PAGER_LOCKINGMODE_QUERY, PAGER_LOCKINGMODE_NORMAL or
7221 ** PAGER_LOCKINGMODE_EXCLUSIVE. If the parameter is not _QUERY, then
7222 ** the locking-mode is set to the value specified.
7224 ** The returned value is either PAGER_LOCKINGMODE_NORMAL or
7225 ** PAGER_LOCKINGMODE_EXCLUSIVE, indicating the current (possibly updated)
7226 ** locking-mode.
7228 int sqlite3PagerLockingMode(Pager *pPager, int eMode){
7229 assert( eMode==PAGER_LOCKINGMODE_QUERY
7230 || eMode==PAGER_LOCKINGMODE_NORMAL
7231 || eMode==PAGER_LOCKINGMODE_EXCLUSIVE );
7232 assert( PAGER_LOCKINGMODE_QUERY<0 );
7233 assert( PAGER_LOCKINGMODE_NORMAL>=0 && PAGER_LOCKINGMODE_EXCLUSIVE>=0 );
7234 assert( pPager->exclusiveMode || 0==sqlite3WalHeapMemory(pPager->pWal) );
7235 if( eMode>=0 && !pPager->tempFile && !sqlite3WalHeapMemory(pPager->pWal) ){
7236 pPager->exclusiveMode = (u8)eMode;
7238 return (int)pPager->exclusiveMode;
7242 ** Set the journal-mode for this pager. Parameter eMode must be one of:
7244 ** PAGER_JOURNALMODE_DELETE
7245 ** PAGER_JOURNALMODE_TRUNCATE
7246 ** PAGER_JOURNALMODE_PERSIST
7247 ** PAGER_JOURNALMODE_OFF
7248 ** PAGER_JOURNALMODE_MEMORY
7249 ** PAGER_JOURNALMODE_WAL
7251 ** The journalmode is set to the value specified if the change is allowed.
7252 ** The change may be disallowed for the following reasons:
7254 ** * An in-memory database can only have its journal_mode set to _OFF
7255 ** or _MEMORY.
7257 ** * Temporary databases cannot have _WAL journalmode.
7259 ** The returned indicate the current (possibly updated) journal-mode.
7261 int sqlite3PagerSetJournalMode(Pager *pPager, int eMode){
7262 u8 eOld = pPager->journalMode; /* Prior journalmode */
7264 #ifdef SQLITE_DEBUG
7265 /* The print_pager_state() routine is intended to be used by the debugger
7266 ** only. We invoke it once here to suppress a compiler warning. */
7267 print_pager_state(pPager);
7268 #endif
7271 /* The eMode parameter is always valid */
7272 assert( eMode==PAGER_JOURNALMODE_DELETE
7273 || eMode==PAGER_JOURNALMODE_TRUNCATE
7274 || eMode==PAGER_JOURNALMODE_PERSIST
7275 || eMode==PAGER_JOURNALMODE_OFF
7276 || eMode==PAGER_JOURNALMODE_WAL
7277 || eMode==PAGER_JOURNALMODE_MEMORY );
7279 /* This routine is only called from the OP_JournalMode opcode, and
7280 ** the logic there will never allow a temporary file to be changed
7281 ** to WAL mode.
7283 assert( pPager->tempFile==0 || eMode!=PAGER_JOURNALMODE_WAL );
7285 /* Do allow the journalmode of an in-memory database to be set to
7286 ** anything other than MEMORY or OFF
7288 if( MEMDB ){
7289 assert( eOld==PAGER_JOURNALMODE_MEMORY || eOld==PAGER_JOURNALMODE_OFF );
7290 if( eMode!=PAGER_JOURNALMODE_MEMORY && eMode!=PAGER_JOURNALMODE_OFF ){
7291 eMode = eOld;
7295 if( eMode!=eOld ){
7297 /* Change the journal mode. */
7298 assert( pPager->eState!=PAGER_ERROR );
7299 pPager->journalMode = (u8)eMode;
7301 /* When transistioning from TRUNCATE or PERSIST to any other journal
7302 ** mode except WAL, unless the pager is in locking_mode=exclusive mode,
7303 ** delete the journal file.
7305 assert( (PAGER_JOURNALMODE_TRUNCATE & 5)==1 );
7306 assert( (PAGER_JOURNALMODE_PERSIST & 5)==1 );
7307 assert( (PAGER_JOURNALMODE_DELETE & 5)==0 );
7308 assert( (PAGER_JOURNALMODE_MEMORY & 5)==4 );
7309 assert( (PAGER_JOURNALMODE_OFF & 5)==0 );
7310 assert( (PAGER_JOURNALMODE_WAL & 5)==5 );
7312 assert( isOpen(pPager->fd) || pPager->exclusiveMode );
7313 if( !pPager->exclusiveMode && (eOld & 5)==1 && (eMode & 1)==0 ){
7315 /* In this case we would like to delete the journal file. If it is
7316 ** not possible, then that is not a problem. Deleting the journal file
7317 ** here is an optimization only.
7319 ** Before deleting the journal file, obtain a RESERVED lock on the
7320 ** database file. This ensures that the journal file is not deleted
7321 ** while it is in use by some other client.
7323 sqlite3OsClose(pPager->jfd);
7324 if( pPager->eLock>=RESERVED_LOCK ){
7325 sqlite3OsDelete(pPager->pVfs, pPager->zJournal, 0);
7326 }else{
7327 int rc = SQLITE_OK;
7328 int state = pPager->eState;
7329 assert( state==PAGER_OPEN || state==PAGER_READER );
7330 if( state==PAGER_OPEN ){
7331 rc = sqlite3PagerSharedLock(pPager);
7333 if( pPager->eState==PAGER_READER ){
7334 assert( rc==SQLITE_OK );
7335 rc = pagerLockDb(pPager, RESERVED_LOCK);
7337 if( rc==SQLITE_OK ){
7338 sqlite3OsDelete(pPager->pVfs, pPager->zJournal, 0);
7340 if( rc==SQLITE_OK && state==PAGER_READER ){
7341 pagerUnlockDb(pPager, SHARED_LOCK);
7342 }else if( state==PAGER_OPEN ){
7343 pager_unlock(pPager);
7345 assert( state==pPager->eState );
7347 }else if( eMode==PAGER_JOURNALMODE_OFF ){
7348 sqlite3OsClose(pPager->jfd);
7352 /* Return the new journal mode */
7353 return (int)pPager->journalMode;
7357 ** Return the current journal mode.
7359 int sqlite3PagerGetJournalMode(Pager *pPager){
7360 return (int)pPager->journalMode;
7364 ** Return TRUE if the pager is in a state where it is OK to change the
7365 ** journalmode. Journalmode changes can only happen when the database
7366 ** is unmodified.
7368 int sqlite3PagerOkToChangeJournalMode(Pager *pPager){
7369 assert( assert_pager_state(pPager) );
7370 if( pPager->eState>=PAGER_WRITER_CACHEMOD ) return 0;
7371 if( NEVER(isOpen(pPager->jfd) && pPager->journalOff>0) ) return 0;
7372 return 1;
7376 ** Get/set the size-limit used for persistent journal files.
7378 ** Setting the size limit to -1 means no limit is enforced.
7379 ** An attempt to set a limit smaller than -1 is a no-op.
7381 i64 sqlite3PagerJournalSizeLimit(Pager *pPager, i64 iLimit){
7382 if( iLimit>=-1 ){
7383 pPager->journalSizeLimit = iLimit;
7384 sqlite3WalLimit(pPager->pWal, iLimit);
7386 return pPager->journalSizeLimit;
7390 ** Return a pointer to the pPager->pBackup variable. The backup module
7391 ** in backup.c maintains the content of this variable. This module
7392 ** uses it opaquely as an argument to sqlite3BackupRestart() and
7393 ** sqlite3BackupUpdate() only.
7395 sqlite3_backup **sqlite3PagerBackupPtr(Pager *pPager){
7396 return &pPager->pBackup;
7399 #ifndef SQLITE_OMIT_VACUUM
7401 ** Unless this is an in-memory or temporary database, clear the pager cache.
7403 void sqlite3PagerClearCache(Pager *pPager){
7404 assert( MEMDB==0 || pPager->tempFile );
7405 if( pPager->tempFile==0 ) pager_reset(pPager);
7407 #endif
7410 #ifndef SQLITE_OMIT_WAL
7412 ** This function is called when the user invokes "PRAGMA wal_checkpoint",
7413 ** "PRAGMA wal_blocking_checkpoint" or calls the sqlite3_wal_checkpoint()
7414 ** or wal_blocking_checkpoint() API functions.
7416 ** Parameter eMode is one of SQLITE_CHECKPOINT_PASSIVE, FULL or RESTART.
7418 int sqlite3PagerCheckpoint(
7419 Pager *pPager, /* Checkpoint on this pager */
7420 sqlite3 *db, /* Db handle used to check for interrupts */
7421 int eMode, /* Type of checkpoint */
7422 int *pnLog, /* OUT: Final number of frames in log */
7423 int *pnCkpt /* OUT: Final number of checkpointed frames */
7425 int rc = SQLITE_OK;
7426 if( pPager->pWal ){
7427 rc = sqlite3WalCheckpoint(pPager->pWal, db, eMode,
7428 (eMode==SQLITE_CHECKPOINT_PASSIVE ? 0 : pPager->xBusyHandler),
7429 pPager->pBusyHandlerArg,
7430 pPager->walSyncFlags, pPager->pageSize, (u8 *)pPager->pTmpSpace,
7431 pnLog, pnCkpt
7434 return rc;
7437 int sqlite3PagerWalCallback(Pager *pPager){
7438 return sqlite3WalCallback(pPager->pWal);
7442 ** Return true if the underlying VFS for the given pager supports the
7443 ** primitives necessary for write-ahead logging.
7445 int sqlite3PagerWalSupported(Pager *pPager){
7446 const sqlite3_io_methods *pMethods = pPager->fd->pMethods;
7447 if( pPager->noLock ) return 0;
7448 return pPager->exclusiveMode || (pMethods->iVersion>=2 && pMethods->xShmMap);
7452 ** Attempt to take an exclusive lock on the database file. If a PENDING lock
7453 ** is obtained instead, immediately release it.
7455 static int pagerExclusiveLock(Pager *pPager){
7456 int rc; /* Return code */
7458 assert( pPager->eLock==SHARED_LOCK || pPager->eLock==EXCLUSIVE_LOCK );
7459 rc = pagerLockDb(pPager, EXCLUSIVE_LOCK);
7460 if( rc!=SQLITE_OK ){
7461 /* If the attempt to grab the exclusive lock failed, release the
7462 ** pending lock that may have been obtained instead. */
7463 pagerUnlockDb(pPager, SHARED_LOCK);
7466 return rc;
7470 ** Call sqlite3WalOpen() to open the WAL handle. If the pager is in
7471 ** exclusive-locking mode when this function is called, take an EXCLUSIVE
7472 ** lock on the database file and use heap-memory to store the wal-index
7473 ** in. Otherwise, use the normal shared-memory.
7475 static int pagerOpenWal(Pager *pPager){
7476 int rc = SQLITE_OK;
7478 assert( pPager->pWal==0 && pPager->tempFile==0 );
7479 assert( pPager->eLock==SHARED_LOCK || pPager->eLock==EXCLUSIVE_LOCK );
7481 /* If the pager is already in exclusive-mode, the WAL module will use
7482 ** heap-memory for the wal-index instead of the VFS shared-memory
7483 ** implementation. Take the exclusive lock now, before opening the WAL
7484 ** file, to make sure this is safe.
7486 if( pPager->exclusiveMode ){
7487 rc = pagerExclusiveLock(pPager);
7490 /* Open the connection to the log file. If this operation fails,
7491 ** (e.g. due to malloc() failure), return an error code.
7493 if( rc==SQLITE_OK ){
7494 rc = sqlite3WalOpen(pPager->pVfs,
7495 pPager->fd, pPager->zWal, pPager->exclusiveMode,
7496 pPager->journalSizeLimit, &pPager->pWal
7499 pagerFixMaplimit(pPager);
7501 return rc;
7506 ** The caller must be holding a SHARED lock on the database file to call
7507 ** this function.
7509 ** If the pager passed as the first argument is open on a real database
7510 ** file (not a temp file or an in-memory database), and the WAL file
7511 ** is not already open, make an attempt to open it now. If successful,
7512 ** return SQLITE_OK. If an error occurs or the VFS used by the pager does
7513 ** not support the xShmXXX() methods, return an error code. *pbOpen is
7514 ** not modified in either case.
7516 ** If the pager is open on a temp-file (or in-memory database), or if
7517 ** the WAL file is already open, set *pbOpen to 1 and return SQLITE_OK
7518 ** without doing anything.
7520 int sqlite3PagerOpenWal(
7521 Pager *pPager, /* Pager object */
7522 int *pbOpen /* OUT: Set to true if call is a no-op */
7524 int rc = SQLITE_OK; /* Return code */
7526 assert( assert_pager_state(pPager) );
7527 assert( pPager->eState==PAGER_OPEN || pbOpen );
7528 assert( pPager->eState==PAGER_READER || !pbOpen );
7529 assert( pbOpen==0 || *pbOpen==0 );
7530 assert( pbOpen!=0 || (!pPager->tempFile && !pPager->pWal) );
7532 if( !pPager->tempFile && !pPager->pWal ){
7533 if( !sqlite3PagerWalSupported(pPager) ) return SQLITE_CANTOPEN;
7535 /* Close any rollback journal previously open */
7536 sqlite3OsClose(pPager->jfd);
7538 rc = pagerOpenWal(pPager);
7539 if( rc==SQLITE_OK ){
7540 pPager->journalMode = PAGER_JOURNALMODE_WAL;
7541 pPager->eState = PAGER_OPEN;
7543 }else{
7544 *pbOpen = 1;
7547 return rc;
7551 ** This function is called to close the connection to the log file prior
7552 ** to switching from WAL to rollback mode.
7554 ** Before closing the log file, this function attempts to take an
7555 ** EXCLUSIVE lock on the database file. If this cannot be obtained, an
7556 ** error (SQLITE_BUSY) is returned and the log connection is not closed.
7557 ** If successful, the EXCLUSIVE lock is not released before returning.
7559 int sqlite3PagerCloseWal(Pager *pPager, sqlite3 *db){
7560 int rc = SQLITE_OK;
7562 assert( pPager->journalMode==PAGER_JOURNALMODE_WAL );
7564 /* If the log file is not already open, but does exist in the file-system,
7565 ** it may need to be checkpointed before the connection can switch to
7566 ** rollback mode. Open it now so this can happen.
7568 if( !pPager->pWal ){
7569 int logexists = 0;
7570 rc = pagerLockDb(pPager, SHARED_LOCK);
7571 if( rc==SQLITE_OK ){
7572 rc = sqlite3OsAccess(
7573 pPager->pVfs, pPager->zWal, SQLITE_ACCESS_EXISTS, &logexists
7576 if( rc==SQLITE_OK && logexists ){
7577 rc = pagerOpenWal(pPager);
7581 /* Checkpoint and close the log. Because an EXCLUSIVE lock is held on
7582 ** the database file, the log and log-summary files will be deleted.
7584 if( rc==SQLITE_OK && pPager->pWal ){
7585 rc = pagerExclusiveLock(pPager);
7586 if( rc==SQLITE_OK ){
7587 rc = sqlite3WalClose(pPager->pWal, db, pPager->walSyncFlags,
7588 pPager->pageSize, (u8*)pPager->pTmpSpace);
7589 pPager->pWal = 0;
7590 pagerFixMaplimit(pPager);
7591 if( rc && !pPager->exclusiveMode ) pagerUnlockDb(pPager, SHARED_LOCK);
7594 return rc;
7597 #ifdef SQLITE_ENABLE_SNAPSHOT
7599 ** If this is a WAL database, obtain a snapshot handle for the snapshot
7600 ** currently open. Otherwise, return an error.
7602 int sqlite3PagerSnapshotGet(Pager *pPager, sqlite3_snapshot **ppSnapshot){
7603 int rc = SQLITE_ERROR;
7604 if( pPager->pWal ){
7605 rc = sqlite3WalSnapshotGet(pPager->pWal, ppSnapshot);
7607 return rc;
7611 ** If this is a WAL database, store a pointer to pSnapshot. Next time a
7612 ** read transaction is opened, attempt to read from the snapshot it
7613 ** identifies. If this is not a WAL database, return an error.
7615 int sqlite3PagerSnapshotOpen(Pager *pPager, sqlite3_snapshot *pSnapshot){
7616 int rc = SQLITE_OK;
7617 if( pPager->pWal ){
7618 sqlite3WalSnapshotOpen(pPager->pWal, pSnapshot);
7619 }else{
7620 rc = SQLITE_ERROR;
7622 return rc;
7626 ** If this is a WAL database, call sqlite3WalSnapshotRecover(). If this
7627 ** is not a WAL database, return an error.
7629 int sqlite3PagerSnapshotRecover(Pager *pPager){
7630 int rc;
7631 if( pPager->pWal ){
7632 rc = sqlite3WalSnapshotRecover(pPager->pWal);
7633 }else{
7634 rc = SQLITE_ERROR;
7636 return rc;
7638 #endif /* SQLITE_ENABLE_SNAPSHOT */
7639 #endif /* !SQLITE_OMIT_WAL */
7641 #ifdef SQLITE_ENABLE_ZIPVFS
7643 ** A read-lock must be held on the pager when this function is called. If
7644 ** the pager is in WAL mode and the WAL file currently contains one or more
7645 ** frames, return the size in bytes of the page images stored within the
7646 ** WAL frames. Otherwise, if this is not a WAL database or the WAL file
7647 ** is empty, return 0.
7649 int sqlite3PagerWalFramesize(Pager *pPager){
7650 assert( pPager->eState>=PAGER_READER );
7651 return sqlite3WalFramesize(pPager->pWal);
7653 #endif
7655 #endif /* SQLITE_OMIT_DISKIO */