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drha059ad02001-04-17 20:09:11 +00001/*
drh9e572e62004-04-23 23:43:10 +00002** 2004 April 6
drha059ad02001-04-17 20:09:11 +00003**
drhb19a2bc2001-09-16 00:13:26 +00004** The author disclaims copyright to this source code. In place of
5** a legal notice, here is a blessing:
drha059ad02001-04-17 20:09:11 +00006**
drhb19a2bc2001-09-16 00:13:26 +00007** 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.
drha059ad02001-04-17 20:09:11 +000010**
11*************************************************************************
peter.d.reid60ec9142014-09-06 16:39:46 +000012** This file implements an external (disk-based) database using BTrees.
drha3152892007-05-05 11:48:52 +000013** See the header comment on "btreeInt.h" for additional information.
14** Including a description of file format and an overview of operation.
drha059ad02001-04-17 20:09:11 +000015*/
drha3152892007-05-05 11:48:52 +000016#include "btreeInt.h"
paulb95a8862003-04-01 21:16:41 +000017
drh8c42ca92001-06-22 19:15:00 +000018/*
drha3152892007-05-05 11:48:52 +000019** The header string that appears at the beginning of every
20** SQLite database.
drh556b2a22005-06-14 16:04:05 +000021*/
drh556b2a22005-06-14 16:04:05 +000022static const char zMagicHeader[] = SQLITE_FILE_HEADER;
drh08ed44e2001-04-29 23:32:55 +000023
drh8c42ca92001-06-22 19:15:00 +000024/*
drha3152892007-05-05 11:48:52 +000025** Set this global variable to 1 to enable tracing using the TRACE
26** macro.
drh615ae552005-01-16 23:21:00 +000027*/
drhe8f52c52008-07-12 14:52:20 +000028#if 0
danielk1977a50d9aa2009-06-08 14:49:45 +000029int sqlite3BtreeTrace=1; /* True to enable tracing */
drhe8f52c52008-07-12 14:52:20 +000030# define TRACE(X) if(sqlite3BtreeTrace){printf X;fflush(stdout);}
31#else
32# define TRACE(X)
drh615ae552005-01-16 23:21:00 +000033#endif
drh615ae552005-01-16 23:21:00 +000034
drh5d433ce2010-08-14 16:02:52 +000035/*
36** Extract a 2-byte big-endian integer from an array of unsigned bytes.
37** But if the value is zero, make it 65536.
38**
39** This routine is used to extract the "offset to cell content area" value
40** from the header of a btree page. If the page size is 65536 and the page
41** is empty, the offset should be 65536, but the 2-byte value stores zero.
42** This routine makes the necessary adjustment to 65536.
43*/
44#define get2byteNotZero(X) (((((int)get2byte(X))-1)&0xffff)+1)
drh86f8c192007-08-22 00:39:19 +000045
dan09ff9e12013-03-11 11:49:03 +000046/*
47** Values passed as the 5th argument to allocateBtreePage()
48*/
49#define BTALLOC_ANY 0 /* Allocate any page */
50#define BTALLOC_EXACT 1 /* Allocate exact page if possible */
51#define BTALLOC_LE 2 /* Allocate any page <= the parameter */
52
53/*
54** Macro IfNotOmitAV(x) returns (x) if SQLITE_OMIT_AUTOVACUUM is not
55** defined, or 0 if it is. For example:
56**
57** bIncrVacuum = IfNotOmitAV(pBtShared->incrVacuum);
58*/
59#ifndef SQLITE_OMIT_AUTOVACUUM
60#define IfNotOmitAV(expr) (expr)
61#else
62#define IfNotOmitAV(expr) 0
63#endif
64
drhe53831d2007-08-17 01:14:38 +000065#ifndef SQLITE_OMIT_SHARED_CACHE
66/*
danielk1977502b4e02008-09-02 14:07:24 +000067** A list of BtShared objects that are eligible for participation
68** in shared cache. This variable has file scope during normal builds,
69** but the test harness needs to access it so we make it global for
70** test builds.
drh7555d8e2009-03-20 13:15:30 +000071**
drhccb21132020-06-19 11:34:57 +000072** Access to this variable is protected by SQLITE_MUTEX_STATIC_MAIN.
drhe53831d2007-08-17 01:14:38 +000073*/
74#ifdef SQLITE_TEST
drh78f82d12008-09-02 00:52:52 +000075BtShared *SQLITE_WSD sqlite3SharedCacheList = 0;
drhe53831d2007-08-17 01:14:38 +000076#else
drh78f82d12008-09-02 00:52:52 +000077static BtShared *SQLITE_WSD sqlite3SharedCacheList = 0;
drhe53831d2007-08-17 01:14:38 +000078#endif
drhe53831d2007-08-17 01:14:38 +000079#endif /* SQLITE_OMIT_SHARED_CACHE */
80
81#ifndef SQLITE_OMIT_SHARED_CACHE
82/*
83** Enable or disable the shared pager and schema features.
84**
85** This routine has no effect on existing database connections.
86** The shared cache setting effects only future calls to
87** sqlite3_open(), sqlite3_open16(), or sqlite3_open_v2().
88*/
89int sqlite3_enable_shared_cache(int enable){
danielk1977502b4e02008-09-02 14:07:24 +000090 sqlite3GlobalConfig.sharedCacheEnabled = enable;
drhe53831d2007-08-17 01:14:38 +000091 return SQLITE_OK;
92}
93#endif
94
drhd677b3d2007-08-20 22:48:41 +000095
danielk1977aef0bf62005-12-30 16:28:01 +000096
97#ifdef SQLITE_OMIT_SHARED_CACHE
98 /*
drhc25eabe2009-02-24 18:57:31 +000099 ** The functions querySharedCacheTableLock(), setSharedCacheTableLock(),
100 ** and clearAllSharedCacheTableLocks()
danielk1977aef0bf62005-12-30 16:28:01 +0000101 ** manipulate entries in the BtShared.pLock linked list used to store
102 ** shared-cache table level locks. If the library is compiled with the
103 ** shared-cache feature disabled, then there is only ever one user
danielk1977da184232006-01-05 11:34:32 +0000104 ** of each BtShared structure and so this locking is not necessary.
105 ** So define the lock related functions as no-ops.
danielk1977aef0bf62005-12-30 16:28:01 +0000106 */
drhc25eabe2009-02-24 18:57:31 +0000107 #define querySharedCacheTableLock(a,b,c) SQLITE_OK
108 #define setSharedCacheTableLock(a,b,c) SQLITE_OK
109 #define clearAllSharedCacheTableLocks(a)
danielk197794b30732009-07-02 17:21:57 +0000110 #define downgradeAllSharedCacheTableLocks(a)
danielk197796d48e92009-06-29 06:00:37 +0000111 #define hasSharedCacheTableLock(a,b,c,d) 1
112 #define hasReadConflicts(a, b) 0
drhe53831d2007-08-17 01:14:38 +0000113#endif
danielk1977aef0bf62005-12-30 16:28:01 +0000114
daneebf2f52017-11-18 17:30:08 +0000115/*
116** Implementation of the SQLITE_CORRUPT_PAGE() macro. Takes a single
117** (MemPage*) as an argument. The (MemPage*) must not be NULL.
118**
119** If SQLITE_DEBUG is not defined, then this macro is equivalent to
120** SQLITE_CORRUPT_BKPT. Or, if SQLITE_DEBUG is set, then the log message
121** normally produced as a side-effect of SQLITE_CORRUPT_BKPT is augmented
122** with the page number and filename associated with the (MemPage*).
123*/
124#ifdef SQLITE_DEBUG
125int corruptPageError(int lineno, MemPage *p){
drh8bfe66a2018-01-22 15:45:12 +0000126 char *zMsg;
127 sqlite3BeginBenignMalloc();
128 zMsg = sqlite3_mprintf("database corruption page %d of %s",
daneebf2f52017-11-18 17:30:08 +0000129 (int)p->pgno, sqlite3PagerFilename(p->pBt->pPager, 0)
130 );
drh8bfe66a2018-01-22 15:45:12 +0000131 sqlite3EndBenignMalloc();
daneebf2f52017-11-18 17:30:08 +0000132 if( zMsg ){
133 sqlite3ReportError(SQLITE_CORRUPT, lineno, zMsg);
134 }
135 sqlite3_free(zMsg);
136 return SQLITE_CORRUPT_BKPT;
137}
138# define SQLITE_CORRUPT_PAGE(pMemPage) corruptPageError(__LINE__, pMemPage)
139#else
140# define SQLITE_CORRUPT_PAGE(pMemPage) SQLITE_CORRUPT_PGNO(pMemPage->pgno)
141#endif
142
drhe53831d2007-08-17 01:14:38 +0000143#ifndef SQLITE_OMIT_SHARED_CACHE
danielk197796d48e92009-06-29 06:00:37 +0000144
145#ifdef SQLITE_DEBUG
146/*
drh0ee3dbe2009-10-16 15:05:18 +0000147**** This function is only used as part of an assert() statement. ***
148**
149** Check to see if pBtree holds the required locks to read or write to the
150** table with root page iRoot. Return 1 if it does and 0 if not.
151**
152** For example, when writing to a table with root-page iRoot via
danielk197796d48e92009-06-29 06:00:37 +0000153** Btree connection pBtree:
154**
155** assert( hasSharedCacheTableLock(pBtree, iRoot, 0, WRITE_LOCK) );
156**
drh0ee3dbe2009-10-16 15:05:18 +0000157** When writing to an index that resides in a sharable database, the
danielk197796d48e92009-06-29 06:00:37 +0000158** caller should have first obtained a lock specifying the root page of
drh0ee3dbe2009-10-16 15:05:18 +0000159** the corresponding table. This makes things a bit more complicated,
160** as this module treats each table as a separate structure. To determine
161** the table corresponding to the index being written, this
danielk197796d48e92009-06-29 06:00:37 +0000162** function has to search through the database schema.
163**
drh0ee3dbe2009-10-16 15:05:18 +0000164** Instead of a lock on the table/index rooted at page iRoot, the caller may
danielk197796d48e92009-06-29 06:00:37 +0000165** hold a write-lock on the schema table (root page 1). This is also
166** acceptable.
167*/
168static int hasSharedCacheTableLock(
169 Btree *pBtree, /* Handle that must hold lock */
170 Pgno iRoot, /* Root page of b-tree */
171 int isIndex, /* True if iRoot is the root of an index b-tree */
172 int eLockType /* Required lock type (READ_LOCK or WRITE_LOCK) */
173){
174 Schema *pSchema = (Schema *)pBtree->pBt->pSchema;
175 Pgno iTab = 0;
176 BtLock *pLock;
177
drh0ee3dbe2009-10-16 15:05:18 +0000178 /* If this database is not shareable, or if the client is reading
danielk197796d48e92009-06-29 06:00:37 +0000179 ** and has the read-uncommitted flag set, then no lock is required.
drh0ee3dbe2009-10-16 15:05:18 +0000180 ** Return true immediately.
181 */
danielk197796d48e92009-06-29 06:00:37 +0000182 if( (pBtree->sharable==0)
drh169dd922017-06-26 13:57:49 +0000183 || (eLockType==READ_LOCK && (pBtree->db->flags & SQLITE_ReadUncommit))
danielk197796d48e92009-06-29 06:00:37 +0000184 ){
185 return 1;
186 }
187
drh0ee3dbe2009-10-16 15:05:18 +0000188 /* If the client is reading or writing an index and the schema is
189 ** not loaded, then it is too difficult to actually check to see if
190 ** the correct locks are held. So do not bother - just return true.
191 ** This case does not come up very often anyhow.
192 */
drh2c5e35f2014-08-05 11:04:21 +0000193 if( isIndex && (!pSchema || (pSchema->schemaFlags&DB_SchemaLoaded)==0) ){
drh0ee3dbe2009-10-16 15:05:18 +0000194 return 1;
195 }
196
danielk197796d48e92009-06-29 06:00:37 +0000197 /* Figure out the root-page that the lock should be held on. For table
198 ** b-trees, this is just the root page of the b-tree being read or
199 ** written. For index b-trees, it is the root page of the associated
200 ** table. */
201 if( isIndex ){
202 HashElem *p;
dan877859f2020-06-17 20:29:56 +0000203 int bSeen = 0;
danielk197796d48e92009-06-29 06:00:37 +0000204 for(p=sqliteHashFirst(&pSchema->idxHash); p; p=sqliteHashNext(p)){
205 Index *pIdx = (Index *)sqliteHashData(p);
shane5eff7cf2009-08-10 03:57:58 +0000206 if( pIdx->tnum==(int)iRoot ){
dan877859f2020-06-17 20:29:56 +0000207 if( bSeen ){
drh1ffede82015-01-30 20:59:27 +0000208 /* Two or more indexes share the same root page. There must
209 ** be imposter tables. So just return true. The assert is not
210 ** useful in that case. */
211 return 1;
212 }
shane5eff7cf2009-08-10 03:57:58 +0000213 iTab = pIdx->pTable->tnum;
dan877859f2020-06-17 20:29:56 +0000214 bSeen = 1;
danielk197796d48e92009-06-29 06:00:37 +0000215 }
216 }
217 }else{
218 iTab = iRoot;
219 }
220
221 /* Search for the required lock. Either a write-lock on root-page iTab, a
222 ** write-lock on the schema table, or (if the client is reading) a
223 ** read-lock on iTab will suffice. Return 1 if any of these are found. */
224 for(pLock=pBtree->pBt->pLock; pLock; pLock=pLock->pNext){
225 if( pLock->pBtree==pBtree
226 && (pLock->iTable==iTab || (pLock->eLock==WRITE_LOCK && pLock->iTable==1))
227 && pLock->eLock>=eLockType
228 ){
229 return 1;
230 }
231 }
232
233 /* Failed to find the required lock. */
234 return 0;
235}
drh0ee3dbe2009-10-16 15:05:18 +0000236#endif /* SQLITE_DEBUG */
danielk197796d48e92009-06-29 06:00:37 +0000237
drh0ee3dbe2009-10-16 15:05:18 +0000238#ifdef SQLITE_DEBUG
danielk197796d48e92009-06-29 06:00:37 +0000239/*
drh0ee3dbe2009-10-16 15:05:18 +0000240**** This function may be used as part of assert() statements only. ****
danielk197796d48e92009-06-29 06:00:37 +0000241**
drh0ee3dbe2009-10-16 15:05:18 +0000242** Return true if it would be illegal for pBtree to write into the
243** table or index rooted at iRoot because other shared connections are
244** simultaneously reading that same table or index.
245**
246** It is illegal for pBtree to write if some other Btree object that
247** shares the same BtShared object is currently reading or writing
248** the iRoot table. Except, if the other Btree object has the
249** read-uncommitted flag set, then it is OK for the other object to
250** have a read cursor.
251**
252** For example, before writing to any part of the table or index
253** rooted at page iRoot, one should call:
danielk197796d48e92009-06-29 06:00:37 +0000254**
255** assert( !hasReadConflicts(pBtree, iRoot) );
256*/
257static int hasReadConflicts(Btree *pBtree, Pgno iRoot){
258 BtCursor *p;
259 for(p=pBtree->pBt->pCursor; p; p=p->pNext){
260 if( p->pgnoRoot==iRoot
261 && p->pBtree!=pBtree
drh169dd922017-06-26 13:57:49 +0000262 && 0==(p->pBtree->db->flags & SQLITE_ReadUncommit)
danielk197796d48e92009-06-29 06:00:37 +0000263 ){
264 return 1;
265 }
266 }
267 return 0;
268}
269#endif /* #ifdef SQLITE_DEBUG */
270
danielk1977da184232006-01-05 11:34:32 +0000271/*
drh0ee3dbe2009-10-16 15:05:18 +0000272** Query to see if Btree handle p may obtain a lock of type eLock
danielk1977aef0bf62005-12-30 16:28:01 +0000273** (READ_LOCK or WRITE_LOCK) on the table with root-page iTab. Return
drhc25eabe2009-02-24 18:57:31 +0000274** SQLITE_OK if the lock may be obtained (by calling
275** setSharedCacheTableLock()), or SQLITE_LOCKED if not.
danielk1977aef0bf62005-12-30 16:28:01 +0000276*/
drhc25eabe2009-02-24 18:57:31 +0000277static int querySharedCacheTableLock(Btree *p, Pgno iTab, u8 eLock){
danielk1977aef0bf62005-12-30 16:28:01 +0000278 BtShared *pBt = p->pBt;
279 BtLock *pIter;
280
drh1fee73e2007-08-29 04:00:57 +0000281 assert( sqlite3BtreeHoldsMutex(p) );
drhfa67c3c2008-07-11 02:21:40 +0000282 assert( eLock==READ_LOCK || eLock==WRITE_LOCK );
283 assert( p->db!=0 );
drh169dd922017-06-26 13:57:49 +0000284 assert( !(p->db->flags&SQLITE_ReadUncommit)||eLock==WRITE_LOCK||iTab==1 );
drhd677b3d2007-08-20 22:48:41 +0000285
danielk19775b413d72009-04-01 09:41:54 +0000286 /* If requesting a write-lock, then the Btree must have an open write
287 ** transaction on this file. And, obviously, for this to be so there
288 ** must be an open write transaction on the file itself.
289 */
290 assert( eLock==READ_LOCK || (p==pBt->pWriter && p->inTrans==TRANS_WRITE) );
291 assert( eLock==READ_LOCK || pBt->inTransaction==TRANS_WRITE );
292
drh0ee3dbe2009-10-16 15:05:18 +0000293 /* This routine is a no-op if the shared-cache is not enabled */
drhe53831d2007-08-17 01:14:38 +0000294 if( !p->sharable ){
danielk1977da184232006-01-05 11:34:32 +0000295 return SQLITE_OK;
296 }
297
danielk1977641b0f42007-12-21 04:47:25 +0000298 /* If some other connection is holding an exclusive lock, the
299 ** requested lock may not be obtained.
300 */
drhc9166342012-01-05 23:32:06 +0000301 if( pBt->pWriter!=p && (pBt->btsFlags & BTS_EXCLUSIVE)!=0 ){
danielk1977404ca072009-03-16 13:19:36 +0000302 sqlite3ConnectionBlocked(p->db, pBt->pWriter->db);
303 return SQLITE_LOCKED_SHAREDCACHE;
danielk1977641b0f42007-12-21 04:47:25 +0000304 }
305
danielk1977e0d9e6f2009-07-03 16:25:06 +0000306 for(pIter=pBt->pLock; pIter; pIter=pIter->pNext){
307 /* The condition (pIter->eLock!=eLock) in the following if(...)
308 ** statement is a simplification of:
309 **
310 ** (eLock==WRITE_LOCK || pIter->eLock==WRITE_LOCK)
311 **
312 ** since we know that if eLock==WRITE_LOCK, then no other connection
313 ** may hold a WRITE_LOCK on any table in this file (since there can
314 ** only be a single writer).
315 */
316 assert( pIter->eLock==READ_LOCK || pIter->eLock==WRITE_LOCK );
317 assert( eLock==READ_LOCK || pIter->pBtree==p || pIter->eLock==READ_LOCK);
318 if( pIter->pBtree!=p && pIter->iTable==iTab && pIter->eLock!=eLock ){
319 sqlite3ConnectionBlocked(p->db, pIter->pBtree->db);
320 if( eLock==WRITE_LOCK ){
321 assert( p==pBt->pWriter );
drhc9166342012-01-05 23:32:06 +0000322 pBt->btsFlags |= BTS_PENDING;
danielk1977da184232006-01-05 11:34:32 +0000323 }
danielk1977e0d9e6f2009-07-03 16:25:06 +0000324 return SQLITE_LOCKED_SHAREDCACHE;
danielk1977aef0bf62005-12-30 16:28:01 +0000325 }
326 }
327 return SQLITE_OK;
328}
drhe53831d2007-08-17 01:14:38 +0000329#endif /* !SQLITE_OMIT_SHARED_CACHE */
danielk1977aef0bf62005-12-30 16:28:01 +0000330
drhe53831d2007-08-17 01:14:38 +0000331#ifndef SQLITE_OMIT_SHARED_CACHE
danielk1977aef0bf62005-12-30 16:28:01 +0000332/*
333** Add a lock on the table with root-page iTable to the shared-btree used
334** by Btree handle p. Parameter eLock must be either READ_LOCK or
335** WRITE_LOCK.
336**
danielk19779d104862009-07-09 08:27:14 +0000337** This function assumes the following:
338**
drh0ee3dbe2009-10-16 15:05:18 +0000339** (a) The specified Btree object p is connected to a sharable
340** database (one with the BtShared.sharable flag set), and
danielk19779d104862009-07-09 08:27:14 +0000341**
drh0ee3dbe2009-10-16 15:05:18 +0000342** (b) No other Btree objects hold a lock that conflicts
danielk19779d104862009-07-09 08:27:14 +0000343** with the requested lock (i.e. querySharedCacheTableLock() has
344** already been called and returned SQLITE_OK).
345**
346** SQLITE_OK is returned if the lock is added successfully. SQLITE_NOMEM
347** is returned if a malloc attempt fails.
danielk1977aef0bf62005-12-30 16:28:01 +0000348*/
drhc25eabe2009-02-24 18:57:31 +0000349static int setSharedCacheTableLock(Btree *p, Pgno iTable, u8 eLock){
danielk1977aef0bf62005-12-30 16:28:01 +0000350 BtShared *pBt = p->pBt;
351 BtLock *pLock = 0;
352 BtLock *pIter;
353
drh1fee73e2007-08-29 04:00:57 +0000354 assert( sqlite3BtreeHoldsMutex(p) );
drhfa67c3c2008-07-11 02:21:40 +0000355 assert( eLock==READ_LOCK || eLock==WRITE_LOCK );
356 assert( p->db!=0 );
drhd677b3d2007-08-20 22:48:41 +0000357
danielk1977e0d9e6f2009-07-03 16:25:06 +0000358 /* A connection with the read-uncommitted flag set will never try to
359 ** obtain a read-lock using this function. The only read-lock obtained
drh1e32bed2020-06-19 13:33:53 +0000360 ** by a connection in read-uncommitted mode is on the sqlite_schema
danielk1977e0d9e6f2009-07-03 16:25:06 +0000361 ** table, and that lock is obtained in BtreeBeginTrans(). */
drh169dd922017-06-26 13:57:49 +0000362 assert( 0==(p->db->flags&SQLITE_ReadUncommit) || eLock==WRITE_LOCK );
danielk1977e0d9e6f2009-07-03 16:25:06 +0000363
danielk19779d104862009-07-09 08:27:14 +0000364 /* This function should only be called on a sharable b-tree after it
365 ** has been determined that no other b-tree holds a conflicting lock. */
366 assert( p->sharable );
drhc25eabe2009-02-24 18:57:31 +0000367 assert( SQLITE_OK==querySharedCacheTableLock(p, iTable, eLock) );
danielk1977aef0bf62005-12-30 16:28:01 +0000368
369 /* First search the list for an existing lock on this table. */
370 for(pIter=pBt->pLock; pIter; pIter=pIter->pNext){
371 if( pIter->iTable==iTable && pIter->pBtree==p ){
372 pLock = pIter;
373 break;
374 }
375 }
376
377 /* If the above search did not find a BtLock struct associating Btree p
378 ** with table iTable, allocate one and link it into the list.
379 */
380 if( !pLock ){
drh17435752007-08-16 04:30:38 +0000381 pLock = (BtLock *)sqlite3MallocZero(sizeof(BtLock));
danielk1977aef0bf62005-12-30 16:28:01 +0000382 if( !pLock ){
mistachkinfad30392016-02-13 23:43:46 +0000383 return SQLITE_NOMEM_BKPT;
danielk1977aef0bf62005-12-30 16:28:01 +0000384 }
385 pLock->iTable = iTable;
386 pLock->pBtree = p;
387 pLock->pNext = pBt->pLock;
388 pBt->pLock = pLock;
389 }
390
391 /* Set the BtLock.eLock variable to the maximum of the current lock
392 ** and the requested lock. This means if a write-lock was already held
393 ** and a read-lock requested, we don't incorrectly downgrade the lock.
394 */
395 assert( WRITE_LOCK>READ_LOCK );
danielk19775118b912005-12-30 16:31:53 +0000396 if( eLock>pLock->eLock ){
397 pLock->eLock = eLock;
398 }
danielk1977aef0bf62005-12-30 16:28:01 +0000399
400 return SQLITE_OK;
401}
drhe53831d2007-08-17 01:14:38 +0000402#endif /* !SQLITE_OMIT_SHARED_CACHE */
danielk1977aef0bf62005-12-30 16:28:01 +0000403
drhe53831d2007-08-17 01:14:38 +0000404#ifndef SQLITE_OMIT_SHARED_CACHE
danielk1977aef0bf62005-12-30 16:28:01 +0000405/*
drhc25eabe2009-02-24 18:57:31 +0000406** Release all the table locks (locks obtained via calls to
drh0ee3dbe2009-10-16 15:05:18 +0000407** the setSharedCacheTableLock() procedure) held by Btree object p.
danielk1977fa542f12009-04-02 18:28:08 +0000408**
drh0ee3dbe2009-10-16 15:05:18 +0000409** This function assumes that Btree p has an open read or write
drhc9166342012-01-05 23:32:06 +0000410** transaction. If it does not, then the BTS_PENDING flag
danielk1977fa542f12009-04-02 18:28:08 +0000411** may be incorrectly cleared.
danielk1977aef0bf62005-12-30 16:28:01 +0000412*/
drhc25eabe2009-02-24 18:57:31 +0000413static void clearAllSharedCacheTableLocks(Btree *p){
danielk1977641b0f42007-12-21 04:47:25 +0000414 BtShared *pBt = p->pBt;
415 BtLock **ppIter = &pBt->pLock;
danielk1977da184232006-01-05 11:34:32 +0000416
drh1fee73e2007-08-29 04:00:57 +0000417 assert( sqlite3BtreeHoldsMutex(p) );
drhe53831d2007-08-17 01:14:38 +0000418 assert( p->sharable || 0==*ppIter );
danielk1977fa542f12009-04-02 18:28:08 +0000419 assert( p->inTrans>0 );
danielk1977da184232006-01-05 11:34:32 +0000420
danielk1977aef0bf62005-12-30 16:28:01 +0000421 while( *ppIter ){
422 BtLock *pLock = *ppIter;
drhc9166342012-01-05 23:32:06 +0000423 assert( (pBt->btsFlags & BTS_EXCLUSIVE)==0 || pBt->pWriter==pLock->pBtree );
danielk1977fa542f12009-04-02 18:28:08 +0000424 assert( pLock->pBtree->inTrans>=pLock->eLock );
danielk1977aef0bf62005-12-30 16:28:01 +0000425 if( pLock->pBtree==p ){
426 *ppIter = pLock->pNext;
danielk1977602b4662009-07-02 07:47:33 +0000427 assert( pLock->iTable!=1 || pLock==&p->lock );
428 if( pLock->iTable!=1 ){
429 sqlite3_free(pLock);
430 }
danielk1977aef0bf62005-12-30 16:28:01 +0000431 }else{
432 ppIter = &pLock->pNext;
433 }
434 }
danielk1977641b0f42007-12-21 04:47:25 +0000435
drhc9166342012-01-05 23:32:06 +0000436 assert( (pBt->btsFlags & BTS_PENDING)==0 || pBt->pWriter );
danielk1977404ca072009-03-16 13:19:36 +0000437 if( pBt->pWriter==p ){
438 pBt->pWriter = 0;
drhc9166342012-01-05 23:32:06 +0000439 pBt->btsFlags &= ~(BTS_EXCLUSIVE|BTS_PENDING);
danielk1977404ca072009-03-16 13:19:36 +0000440 }else if( pBt->nTransaction==2 ){
drh0ee3dbe2009-10-16 15:05:18 +0000441 /* This function is called when Btree p is concluding its
danielk1977404ca072009-03-16 13:19:36 +0000442 ** transaction. If there currently exists a writer, and p is not
443 ** that writer, then the number of locks held by connections other
444 ** than the writer must be about to drop to zero. In this case
drhc9166342012-01-05 23:32:06 +0000445 ** set the BTS_PENDING flag to 0.
danielk1977404ca072009-03-16 13:19:36 +0000446 **
drhc9166342012-01-05 23:32:06 +0000447 ** If there is not currently a writer, then BTS_PENDING must
danielk1977404ca072009-03-16 13:19:36 +0000448 ** be zero already. So this next line is harmless in that case.
449 */
drhc9166342012-01-05 23:32:06 +0000450 pBt->btsFlags &= ~BTS_PENDING;
danielk1977641b0f42007-12-21 04:47:25 +0000451 }
danielk1977aef0bf62005-12-30 16:28:01 +0000452}
danielk197794b30732009-07-02 17:21:57 +0000453
danielk1977e0d9e6f2009-07-03 16:25:06 +0000454/*
drh0ee3dbe2009-10-16 15:05:18 +0000455** This function changes all write-locks held by Btree p into read-locks.
danielk1977e0d9e6f2009-07-03 16:25:06 +0000456*/
danielk197794b30732009-07-02 17:21:57 +0000457static void downgradeAllSharedCacheTableLocks(Btree *p){
458 BtShared *pBt = p->pBt;
459 if( pBt->pWriter==p ){
460 BtLock *pLock;
461 pBt->pWriter = 0;
drhc9166342012-01-05 23:32:06 +0000462 pBt->btsFlags &= ~(BTS_EXCLUSIVE|BTS_PENDING);
danielk197794b30732009-07-02 17:21:57 +0000463 for(pLock=pBt->pLock; pLock; pLock=pLock->pNext){
464 assert( pLock->eLock==READ_LOCK || pLock->pBtree==p );
465 pLock->eLock = READ_LOCK;
466 }
467 }
468}
469
danielk1977aef0bf62005-12-30 16:28:01 +0000470#endif /* SQLITE_OMIT_SHARED_CACHE */
471
drh3908fe92017-09-01 14:50:19 +0000472static void releasePage(MemPage *pPage); /* Forward reference */
473static void releasePageOne(MemPage *pPage); /* Forward reference */
drh352a35a2017-08-15 03:46:47 +0000474static void releasePageNotNull(MemPage *pPage); /* Forward reference */
drh980b1a72006-08-16 16:42:48 +0000475
drh1fee73e2007-08-29 04:00:57 +0000476/*
drh0ee3dbe2009-10-16 15:05:18 +0000477***** This routine is used inside of assert() only ****
478**
479** Verify that the cursor holds the mutex on its BtShared
drh1fee73e2007-08-29 04:00:57 +0000480*/
drh0ee3dbe2009-10-16 15:05:18 +0000481#ifdef SQLITE_DEBUG
drh1fee73e2007-08-29 04:00:57 +0000482static int cursorHoldsMutex(BtCursor *p){
drhff0587c2007-08-29 17:43:19 +0000483 return sqlite3_mutex_held(p->pBt->mutex);
drh1fee73e2007-08-29 04:00:57 +0000484}
drh5e08d0f2016-06-04 21:05:54 +0000485
486/* Verify that the cursor and the BtShared agree about what is the current
487** database connetion. This is important in shared-cache mode. If the database
488** connection pointers get out-of-sync, it is possible for routines like
489** btreeInitPage() to reference an stale connection pointer that references a
490** a connection that has already closed. This routine is used inside assert()
491** statements only and for the purpose of double-checking that the btree code
492** does keep the database connection pointers up-to-date.
493*/
dan7a2347e2016-01-07 16:43:54 +0000494static int cursorOwnsBtShared(BtCursor *p){
495 assert( cursorHoldsMutex(p) );
496 return (p->pBtree->db==p->pBt->db);
497}
drh1fee73e2007-08-29 04:00:57 +0000498#endif
499
danielk197792d4d7a2007-05-04 12:05:56 +0000500/*
dan5a500af2014-03-11 20:33:04 +0000501** Invalidate the overflow cache of the cursor passed as the first argument.
502** on the shared btree structure pBt.
danielk197792d4d7a2007-05-04 12:05:56 +0000503*/
drh036dbec2014-03-11 23:40:44 +0000504#define invalidateOverflowCache(pCur) (pCur->curFlags &= ~BTCF_ValidOvfl)
danielk197792d4d7a2007-05-04 12:05:56 +0000505
506/*
507** Invalidate the overflow page-list cache for all cursors opened
508** on the shared btree structure pBt.
509*/
510static void invalidateAllOverflowCache(BtShared *pBt){
511 BtCursor *p;
drh1fee73e2007-08-29 04:00:57 +0000512 assert( sqlite3_mutex_held(pBt->mutex) );
danielk197792d4d7a2007-05-04 12:05:56 +0000513 for(p=pBt->pCursor; p; p=p->pNext){
514 invalidateOverflowCache(p);
515 }
516}
danielk197796d48e92009-06-29 06:00:37 +0000517
dan5a500af2014-03-11 20:33:04 +0000518#ifndef SQLITE_OMIT_INCRBLOB
danielk197796d48e92009-06-29 06:00:37 +0000519/*
520** This function is called before modifying the contents of a table
drh0ee3dbe2009-10-16 15:05:18 +0000521** to invalidate any incrblob cursors that are open on the
drheeb844a2009-08-08 18:01:07 +0000522** row or one of the rows being modified.
danielk197796d48e92009-06-29 06:00:37 +0000523**
524** If argument isClearTable is true, then the entire contents of the
525** table is about to be deleted. In this case invalidate all incrblob
526** cursors open on any row within the table with root-page pgnoRoot.
527**
528** Otherwise, if argument isClearTable is false, then the row with
529** rowid iRow is being replaced or deleted. In this case invalidate
drh0ee3dbe2009-10-16 15:05:18 +0000530** only those incrblob cursors open on that specific row.
danielk197796d48e92009-06-29 06:00:37 +0000531*/
532static void invalidateIncrblobCursors(
533 Btree *pBtree, /* The database file to check */
drh9ca431a2017-03-29 18:03:50 +0000534 Pgno pgnoRoot, /* The table that might be changing */
danielk197796d48e92009-06-29 06:00:37 +0000535 i64 iRow, /* The rowid that might be changing */
536 int isClearTable /* True if all rows are being deleted */
537){
538 BtCursor *p;
drh69180952015-06-25 13:03:10 +0000539 if( pBtree->hasIncrblobCur==0 ) return;
danielk197796d48e92009-06-29 06:00:37 +0000540 assert( sqlite3BtreeHoldsMutex(pBtree) );
drh69180952015-06-25 13:03:10 +0000541 pBtree->hasIncrblobCur = 0;
542 for(p=pBtree->pBt->pCursor; p; p=p->pNext){
543 if( (p->curFlags & BTCF_Incrblob)!=0 ){
544 pBtree->hasIncrblobCur = 1;
drh9ca431a2017-03-29 18:03:50 +0000545 if( p->pgnoRoot==pgnoRoot && (isClearTable || p->info.nKey==iRow) ){
drh69180952015-06-25 13:03:10 +0000546 p->eState = CURSOR_INVALID;
547 }
danielk197796d48e92009-06-29 06:00:37 +0000548 }
549 }
550}
551
danielk197792d4d7a2007-05-04 12:05:56 +0000552#else
dan5a500af2014-03-11 20:33:04 +0000553 /* Stub function when INCRBLOB is omitted */
drh9ca431a2017-03-29 18:03:50 +0000554 #define invalidateIncrblobCursors(w,x,y,z)
drh0ee3dbe2009-10-16 15:05:18 +0000555#endif /* SQLITE_OMIT_INCRBLOB */
danielk197792d4d7a2007-05-04 12:05:56 +0000556
drh980b1a72006-08-16 16:42:48 +0000557/*
danielk1977bea2a942009-01-20 17:06:27 +0000558** Set bit pgno of the BtShared.pHasContent bitvec. This is called
559** when a page that previously contained data becomes a free-list leaf
560** page.
561**
562** The BtShared.pHasContent bitvec exists to work around an obscure
563** bug caused by the interaction of two useful IO optimizations surrounding
564** free-list leaf pages:
565**
566** 1) When all data is deleted from a page and the page becomes
567** a free-list leaf page, the page is not written to the database
568** (as free-list leaf pages contain no meaningful data). Sometimes
569** such a page is not even journalled (as it will not be modified,
570** why bother journalling it?).
571**
572** 2) When a free-list leaf page is reused, its content is not read
573** from the database or written to the journal file (why should it
574** be, if it is not at all meaningful?).
575**
576** By themselves, these optimizations work fine and provide a handy
577** performance boost to bulk delete or insert operations. However, if
578** a page is moved to the free-list and then reused within the same
579** transaction, a problem comes up. If the page is not journalled when
580** it is moved to the free-list and it is also not journalled when it
581** is extracted from the free-list and reused, then the original data
582** may be lost. In the event of a rollback, it may not be possible
583** to restore the database to its original configuration.
584**
585** The solution is the BtShared.pHasContent bitvec. Whenever a page is
586** moved to become a free-list leaf page, the corresponding bit is
587** set in the bitvec. Whenever a leaf page is extracted from the free-list,
drh0ee3dbe2009-10-16 15:05:18 +0000588** optimization 2 above is omitted if the corresponding bit is already
danielk1977bea2a942009-01-20 17:06:27 +0000589** set in BtShared.pHasContent. The contents of the bitvec are cleared
590** at the end of every transaction.
591*/
592static int btreeSetHasContent(BtShared *pBt, Pgno pgno){
593 int rc = SQLITE_OK;
594 if( !pBt->pHasContent ){
drhdd3cd972010-03-27 17:12:36 +0000595 assert( pgno<=pBt->nPage );
596 pBt->pHasContent = sqlite3BitvecCreate(pBt->nPage);
drh4c301aa2009-07-15 17:25:45 +0000597 if( !pBt->pHasContent ){
mistachkinfad30392016-02-13 23:43:46 +0000598 rc = SQLITE_NOMEM_BKPT;
danielk1977bea2a942009-01-20 17:06:27 +0000599 }
600 }
601 if( rc==SQLITE_OK && pgno<=sqlite3BitvecSize(pBt->pHasContent) ){
602 rc = sqlite3BitvecSet(pBt->pHasContent, pgno);
603 }
604 return rc;
605}
606
607/*
608** Query the BtShared.pHasContent vector.
609**
610** This function is called when a free-list leaf page is removed from the
611** free-list for reuse. It returns false if it is safe to retrieve the
612** page from the pager layer with the 'no-content' flag set. True otherwise.
613*/
614static int btreeGetHasContent(BtShared *pBt, Pgno pgno){
615 Bitvec *p = pBt->pHasContent;
pdrdb9cb172020-03-08 13:33:58 +0000616 return p && (pgno>sqlite3BitvecSize(p) || sqlite3BitvecTestNotNull(p, pgno));
danielk1977bea2a942009-01-20 17:06:27 +0000617}
618
619/*
620** Clear (destroy) the BtShared.pHasContent bitvec. This should be
621** invoked at the conclusion of each write-transaction.
622*/
623static void btreeClearHasContent(BtShared *pBt){
624 sqlite3BitvecDestroy(pBt->pHasContent);
625 pBt->pHasContent = 0;
626}
627
628/*
drh138eeeb2013-03-27 03:15:23 +0000629** Release all of the apPage[] pages for a cursor.
630*/
631static void btreeReleaseAllCursorPages(BtCursor *pCur){
632 int i;
drh352a35a2017-08-15 03:46:47 +0000633 if( pCur->iPage>=0 ){
634 for(i=0; i<pCur->iPage; i++){
635 releasePageNotNull(pCur->apPage[i]);
636 }
637 releasePageNotNull(pCur->pPage);
638 pCur->iPage = -1;
drh138eeeb2013-03-27 03:15:23 +0000639 }
drh138eeeb2013-03-27 03:15:23 +0000640}
641
danf0ee1d32015-09-12 19:26:11 +0000642/*
643** The cursor passed as the only argument must point to a valid entry
644** when this function is called (i.e. have eState==CURSOR_VALID). This
645** function saves the current cursor key in variables pCur->nKey and
646** pCur->pKey. SQLITE_OK is returned if successful or an SQLite error
647** code otherwise.
648**
649** If the cursor is open on an intkey table, then the integer key
650** (the rowid) is stored in pCur->nKey and pCur->pKey is left set to
651** NULL. If the cursor is open on a non-intkey table, then pCur->pKey is
652** set to point to a malloced buffer pCur->nKey bytes in size containing
653** the key.
654*/
655static int saveCursorKey(BtCursor *pCur){
drha7c90c42016-06-04 20:37:10 +0000656 int rc = SQLITE_OK;
danf0ee1d32015-09-12 19:26:11 +0000657 assert( CURSOR_VALID==pCur->eState );
658 assert( 0==pCur->pKey );
659 assert( cursorHoldsMutex(pCur) );
660
drha7c90c42016-06-04 20:37:10 +0000661 if( pCur->curIntKey ){
662 /* Only the rowid is required for a table btree */
663 pCur->nKey = sqlite3BtreeIntegerKey(pCur);
664 }else{
danfffaf232018-12-14 13:18:35 +0000665 /* For an index btree, save the complete key content. It is possible
666 ** that the current key is corrupt. In that case, it is possible that
667 ** the sqlite3VdbeRecordUnpack() function may overread the buffer by
668 ** up to the size of 1 varint plus 1 8-byte value when the cursor
669 ** position is restored. Hence the 17 bytes of padding allocated
670 ** below. */
drhd66c4f82016-06-04 20:58:35 +0000671 void *pKey;
drha7c90c42016-06-04 20:37:10 +0000672 pCur->nKey = sqlite3BtreePayloadSize(pCur);
danfffaf232018-12-14 13:18:35 +0000673 pKey = sqlite3Malloc( pCur->nKey + 9 + 8 );
danf0ee1d32015-09-12 19:26:11 +0000674 if( pKey ){
drhcb3cabd2016-11-25 19:18:28 +0000675 rc = sqlite3BtreePayload(pCur, 0, (int)pCur->nKey, pKey);
danf0ee1d32015-09-12 19:26:11 +0000676 if( rc==SQLITE_OK ){
drhe6c628e2019-01-21 16:01:17 +0000677 memset(((u8*)pKey)+pCur->nKey, 0, 9+8);
danf0ee1d32015-09-12 19:26:11 +0000678 pCur->pKey = pKey;
679 }else{
680 sqlite3_free(pKey);
681 }
682 }else{
mistachkinfad30392016-02-13 23:43:46 +0000683 rc = SQLITE_NOMEM_BKPT;
danf0ee1d32015-09-12 19:26:11 +0000684 }
685 }
686 assert( !pCur->curIntKey || !pCur->pKey );
687 return rc;
688}
drh138eeeb2013-03-27 03:15:23 +0000689
690/*
drh980b1a72006-08-16 16:42:48 +0000691** Save the current cursor position in the variables BtCursor.nKey
692** and BtCursor.pKey. The cursor's state is set to CURSOR_REQUIRESEEK.
drhea8ffdf2009-07-22 00:35:23 +0000693**
694** The caller must ensure that the cursor is valid (has eState==CURSOR_VALID)
695** prior to calling this routine.
drh980b1a72006-08-16 16:42:48 +0000696*/
697static int saveCursorPosition(BtCursor *pCur){
698 int rc;
699
drhd2f83132015-03-25 17:35:01 +0000700 assert( CURSOR_VALID==pCur->eState || CURSOR_SKIPNEXT==pCur->eState );
drh980b1a72006-08-16 16:42:48 +0000701 assert( 0==pCur->pKey );
drh1fee73e2007-08-29 04:00:57 +0000702 assert( cursorHoldsMutex(pCur) );
drh980b1a72006-08-16 16:42:48 +0000703
drh7b14b652019-12-29 22:08:20 +0000704 if( pCur->curFlags & BTCF_Pinned ){
705 return SQLITE_CONSTRAINT_PINNED;
706 }
drhd2f83132015-03-25 17:35:01 +0000707 if( pCur->eState==CURSOR_SKIPNEXT ){
708 pCur->eState = CURSOR_VALID;
709 }else{
710 pCur->skipNext = 0;
711 }
drh980b1a72006-08-16 16:42:48 +0000712
danf0ee1d32015-09-12 19:26:11 +0000713 rc = saveCursorKey(pCur);
drh980b1a72006-08-16 16:42:48 +0000714 if( rc==SQLITE_OK ){
drh138eeeb2013-03-27 03:15:23 +0000715 btreeReleaseAllCursorPages(pCur);
drh980b1a72006-08-16 16:42:48 +0000716 pCur->eState = CURSOR_REQUIRESEEK;
717 }
718
dane755e102015-09-30 12:59:12 +0000719 pCur->curFlags &= ~(BTCF_ValidNKey|BTCF_ValidOvfl|BTCF_AtLast);
drh980b1a72006-08-16 16:42:48 +0000720 return rc;
721}
722
drh637f3d82014-08-22 22:26:07 +0000723/* Forward reference */
724static int SQLITE_NOINLINE saveCursorsOnList(BtCursor*,Pgno,BtCursor*);
725
drh980b1a72006-08-16 16:42:48 +0000726/*
drh0ee3dbe2009-10-16 15:05:18 +0000727** Save the positions of all cursors (except pExcept) that are open on
drh637f3d82014-08-22 22:26:07 +0000728** the table with root-page iRoot. "Saving the cursor position" means that
729** the location in the btree is remembered in such a way that it can be
730** moved back to the same spot after the btree has been modified. This
731** routine is called just before cursor pExcept is used to modify the
732** table, for example in BtreeDelete() or BtreeInsert().
733**
drh27fb7462015-06-30 02:47:36 +0000734** If there are two or more cursors on the same btree, then all such
735** cursors should have their BTCF_Multiple flag set. The btreeCursor()
736** routine enforces that rule. This routine only needs to be called in
737** the uncommon case when pExpect has the BTCF_Multiple flag set.
738**
739** If pExpect!=NULL and if no other cursors are found on the same root-page,
740** then the BTCF_Multiple flag on pExpect is cleared, to avoid another
741** pointless call to this routine.
742**
drh637f3d82014-08-22 22:26:07 +0000743** Implementation note: This routine merely checks to see if any cursors
744** need to be saved. It calls out to saveCursorsOnList() in the (unusual)
745** event that cursors are in need to being saved.
drh980b1a72006-08-16 16:42:48 +0000746*/
747static int saveAllCursors(BtShared *pBt, Pgno iRoot, BtCursor *pExcept){
748 BtCursor *p;
drh1fee73e2007-08-29 04:00:57 +0000749 assert( sqlite3_mutex_held(pBt->mutex) );
drhd0679ed2007-08-28 22:24:34 +0000750 assert( pExcept==0 || pExcept->pBt==pBt );
drh980b1a72006-08-16 16:42:48 +0000751 for(p=pBt->pCursor; p; p=p->pNext){
drh637f3d82014-08-22 22:26:07 +0000752 if( p!=pExcept && (0==iRoot || p->pgnoRoot==iRoot) ) break;
753 }
drh27fb7462015-06-30 02:47:36 +0000754 if( p ) return saveCursorsOnList(p, iRoot, pExcept);
755 if( pExcept ) pExcept->curFlags &= ~BTCF_Multiple;
756 return SQLITE_OK;
drh637f3d82014-08-22 22:26:07 +0000757}
758
759/* This helper routine to saveAllCursors does the actual work of saving
760** the cursors if and when a cursor is found that actually requires saving.
761** The common case is that no cursors need to be saved, so this routine is
762** broken out from its caller to avoid unnecessary stack pointer movement.
763*/
764static int SQLITE_NOINLINE saveCursorsOnList(
drh3f387402014-09-24 01:23:00 +0000765 BtCursor *p, /* The first cursor that needs saving */
766 Pgno iRoot, /* Only save cursor with this iRoot. Save all if zero */
767 BtCursor *pExcept /* Do not save this cursor */
drh637f3d82014-08-22 22:26:07 +0000768){
769 do{
drh138eeeb2013-03-27 03:15:23 +0000770 if( p!=pExcept && (0==iRoot || p->pgnoRoot==iRoot) ){
drhd2f83132015-03-25 17:35:01 +0000771 if( p->eState==CURSOR_VALID || p->eState==CURSOR_SKIPNEXT ){
drh138eeeb2013-03-27 03:15:23 +0000772 int rc = saveCursorPosition(p);
773 if( SQLITE_OK!=rc ){
774 return rc;
775 }
776 }else{
drh85ef6302017-08-02 15:50:09 +0000777 testcase( p->iPage>=0 );
drh138eeeb2013-03-27 03:15:23 +0000778 btreeReleaseAllCursorPages(p);
drh980b1a72006-08-16 16:42:48 +0000779 }
780 }
drh637f3d82014-08-22 22:26:07 +0000781 p = p->pNext;
782 }while( p );
drh980b1a72006-08-16 16:42:48 +0000783 return SQLITE_OK;
784}
785
786/*
drhbf700f32007-03-31 02:36:44 +0000787** Clear the current cursor position.
788*/
danielk1977be51a652008-10-08 17:58:48 +0000789void sqlite3BtreeClearCursor(BtCursor *pCur){
drh1fee73e2007-08-29 04:00:57 +0000790 assert( cursorHoldsMutex(pCur) );
drh17435752007-08-16 04:30:38 +0000791 sqlite3_free(pCur->pKey);
drhbf700f32007-03-31 02:36:44 +0000792 pCur->pKey = 0;
793 pCur->eState = CURSOR_INVALID;
794}
795
796/*
danielk19773509a652009-07-06 18:56:13 +0000797** In this version of BtreeMoveto, pKey is a packed index record
798** such as is generated by the OP_MakeRecord opcode. Unpack the
799** record and then call BtreeMovetoUnpacked() to do the work.
800*/
801static int btreeMoveto(
802 BtCursor *pCur, /* Cursor open on the btree to be searched */
803 const void *pKey, /* Packed key if the btree is an index */
804 i64 nKey, /* Integer key for tables. Size of pKey for indices */
805 int bias, /* Bias search to the high end */
806 int *pRes /* Write search results here */
807){
808 int rc; /* Status code */
809 UnpackedRecord *pIdxKey; /* Unpacked index key */
danielk19773509a652009-07-06 18:56:13 +0000810
811 if( pKey ){
danb0c4c942019-01-24 15:16:17 +0000812 KeyInfo *pKeyInfo = pCur->pKeyInfo;
danielk19773509a652009-07-06 18:56:13 +0000813 assert( nKey==(i64)(int)nKey );
danb0c4c942019-01-24 15:16:17 +0000814 pIdxKey = sqlite3VdbeAllocUnpackedRecord(pKeyInfo);
mistachkinfad30392016-02-13 23:43:46 +0000815 if( pIdxKey==0 ) return SQLITE_NOMEM_BKPT;
danb0c4c942019-01-24 15:16:17 +0000816 sqlite3VdbeRecordUnpack(pKeyInfo, (int)nKey, pKey, pIdxKey);
817 if( pIdxKey->nField==0 || pIdxKey->nField>pKeyInfo->nAllField ){
mistachkin88a79732017-09-04 19:31:54 +0000818 rc = SQLITE_CORRUPT_BKPT;
drha582b012016-12-21 19:45:54 +0000819 goto moveto_done;
drh094b7582013-11-30 12:49:28 +0000820 }
danielk19773509a652009-07-06 18:56:13 +0000821 }else{
822 pIdxKey = 0;
823 }
824 rc = sqlite3BtreeMovetoUnpacked(pCur, pIdxKey, nKey, bias, pRes);
drha582b012016-12-21 19:45:54 +0000825moveto_done:
826 if( pIdxKey ){
827 sqlite3DbFree(pCur->pKeyInfo->db, pIdxKey);
danielk19773509a652009-07-06 18:56:13 +0000828 }
829 return rc;
830}
831
832/*
drh980b1a72006-08-16 16:42:48 +0000833** Restore the cursor to the position it was in (or as close to as possible)
834** when saveCursorPosition() was called. Note that this call deletes the
835** saved position info stored by saveCursorPosition(), so there can be
drha3460582008-07-11 21:02:53 +0000836** at most one effective restoreCursorPosition() call after each
drh980b1a72006-08-16 16:42:48 +0000837** saveCursorPosition().
drh980b1a72006-08-16 16:42:48 +0000838*/
danielk197730548662009-07-09 05:07:37 +0000839static int btreeRestoreCursorPosition(BtCursor *pCur){
drhbf700f32007-03-31 02:36:44 +0000840 int rc;
mistachkin4e2d3d42019-04-01 03:07:21 +0000841 int skipNext = 0;
dan7a2347e2016-01-07 16:43:54 +0000842 assert( cursorOwnsBtShared(pCur) );
drhfb982642007-08-30 01:19:59 +0000843 assert( pCur->eState>=CURSOR_REQUIRESEEK );
844 if( pCur->eState==CURSOR_FAULT ){
drh4c301aa2009-07-15 17:25:45 +0000845 return pCur->skipNext;
drhfb982642007-08-30 01:19:59 +0000846 }
drh980b1a72006-08-16 16:42:48 +0000847 pCur->eState = CURSOR_INVALID;
drhb336d1a2019-03-30 19:17:35 +0000848 if( sqlite3FaultSim(410) ){
849 rc = SQLITE_IOERR;
850 }else{
851 rc = btreeMoveto(pCur, pCur->pKey, pCur->nKey, 0, &skipNext);
852 }
drh980b1a72006-08-16 16:42:48 +0000853 if( rc==SQLITE_OK ){
drh17435752007-08-16 04:30:38 +0000854 sqlite3_free(pCur->pKey);
drh980b1a72006-08-16 16:42:48 +0000855 pCur->pKey = 0;
drhbf700f32007-03-31 02:36:44 +0000856 assert( pCur->eState==CURSOR_VALID || pCur->eState==CURSOR_INVALID );
drh0c873bf2019-01-28 00:42:06 +0000857 if( skipNext ) pCur->skipNext = skipNext;
drh9b47ee32013-08-20 03:13:51 +0000858 if( pCur->skipNext && pCur->eState==CURSOR_VALID ){
859 pCur->eState = CURSOR_SKIPNEXT;
860 }
drh980b1a72006-08-16 16:42:48 +0000861 }
862 return rc;
863}
864
drha3460582008-07-11 21:02:53 +0000865#define restoreCursorPosition(p) \
drhfb982642007-08-30 01:19:59 +0000866 (p->eState>=CURSOR_REQUIRESEEK ? \
danielk197730548662009-07-09 05:07:37 +0000867 btreeRestoreCursorPosition(p) : \
drh16a9b832007-05-05 18:39:25 +0000868 SQLITE_OK)
drh980b1a72006-08-16 16:42:48 +0000869
drha3460582008-07-11 21:02:53 +0000870/*
drh6848dad2014-08-22 23:33:03 +0000871** Determine whether or not a cursor has moved from the position where
872** it was last placed, or has been invalidated for any other reason.
873** Cursors can move when the row they are pointing at is deleted out
874** from under them, for example. Cursor might also move if a btree
875** is rebalanced.
drha3460582008-07-11 21:02:53 +0000876**
drh6848dad2014-08-22 23:33:03 +0000877** Calling this routine with a NULL cursor pointer returns false.
drh86dd3712014-03-25 11:00:21 +0000878**
drh6848dad2014-08-22 23:33:03 +0000879** Use the separate sqlite3BtreeCursorRestore() routine to restore a cursor
880** back to where it ought to be if this routine returns true.
drha3460582008-07-11 21:02:53 +0000881*/
drh6848dad2014-08-22 23:33:03 +0000882int sqlite3BtreeCursorHasMoved(BtCursor *pCur){
drh5ba5f5b2018-06-02 16:32:04 +0000883 assert( EIGHT_BYTE_ALIGNMENT(pCur)
884 || pCur==sqlite3BtreeFakeValidCursor() );
885 assert( offsetof(BtCursor, eState)==0 );
886 assert( sizeof(pCur->eState)==1 );
887 return CURSOR_VALID != *(u8*)pCur;
drh6848dad2014-08-22 23:33:03 +0000888}
889
890/*
drhfe0cf7a2017-08-16 19:20:20 +0000891** Return a pointer to a fake BtCursor object that will always answer
892** false to the sqlite3BtreeCursorHasMoved() routine above. The fake
893** cursor returned must not be used with any other Btree interface.
894*/
895BtCursor *sqlite3BtreeFakeValidCursor(void){
896 static u8 fakeCursor = CURSOR_VALID;
897 assert( offsetof(BtCursor, eState)==0 );
898 return (BtCursor*)&fakeCursor;
899}
900
901/*
drh6848dad2014-08-22 23:33:03 +0000902** This routine restores a cursor back to its original position after it
903** has been moved by some outside activity (such as a btree rebalance or
904** a row having been deleted out from under the cursor).
905**
906** On success, the *pDifferentRow parameter is false if the cursor is left
907** pointing at exactly the same row. *pDifferntRow is the row the cursor
908** was pointing to has been deleted, forcing the cursor to point to some
909** nearby row.
910**
911** This routine should only be called for a cursor that just returned
912** TRUE from sqlite3BtreeCursorHasMoved().
913*/
914int sqlite3BtreeCursorRestore(BtCursor *pCur, int *pDifferentRow){
drha3460582008-07-11 21:02:53 +0000915 int rc;
916
drh6848dad2014-08-22 23:33:03 +0000917 assert( pCur!=0 );
918 assert( pCur->eState!=CURSOR_VALID );
drha3460582008-07-11 21:02:53 +0000919 rc = restoreCursorPosition(pCur);
920 if( rc ){
drh6848dad2014-08-22 23:33:03 +0000921 *pDifferentRow = 1;
drha3460582008-07-11 21:02:53 +0000922 return rc;
923 }
drh606a3572015-03-25 18:29:10 +0000924 if( pCur->eState!=CURSOR_VALID ){
drh6848dad2014-08-22 23:33:03 +0000925 *pDifferentRow = 1;
drha3460582008-07-11 21:02:53 +0000926 }else{
drh6848dad2014-08-22 23:33:03 +0000927 *pDifferentRow = 0;
drha3460582008-07-11 21:02:53 +0000928 }
929 return SQLITE_OK;
930}
931
drhf7854c72015-10-27 13:24:37 +0000932#ifdef SQLITE_ENABLE_CURSOR_HINTS
drh28935362013-12-07 20:39:19 +0000933/*
drh0df57012015-08-14 15:05:55 +0000934** Provide hints to the cursor. The particular hint given (and the type
935** and number of the varargs parameters) is determined by the eHintType
936** parameter. See the definitions of the BTREE_HINT_* macros for details.
drh28935362013-12-07 20:39:19 +0000937*/
drh0df57012015-08-14 15:05:55 +0000938void sqlite3BtreeCursorHint(BtCursor *pCur, int eHintType, ...){
drhf7854c72015-10-27 13:24:37 +0000939 /* Used only by system that substitute their own storage engine */
drh28935362013-12-07 20:39:19 +0000940}
drhf7854c72015-10-27 13:24:37 +0000941#endif
942
943/*
944** Provide flag hints to the cursor.
945*/
946void sqlite3BtreeCursorHintFlags(BtCursor *pCur, unsigned x){
947 assert( x==BTREE_SEEK_EQ || x==BTREE_BULKLOAD || x==0 );
948 pCur->hints = x;
949}
950
drh28935362013-12-07 20:39:19 +0000951
danielk1977599fcba2004-11-08 07:13:13 +0000952#ifndef SQLITE_OMIT_AUTOVACUUM
danielk1977afcdd022004-10-31 16:25:42 +0000953/*
drha3152892007-05-05 11:48:52 +0000954** Given a page number of a regular database page, return the page
955** number for the pointer-map page that contains the entry for the
956** input page number.
drh5f77b2e2010-08-21 15:09:37 +0000957**
958** Return 0 (not a valid page) for pgno==1 since there is
959** no pointer map associated with page 1. The integrity_check logic
960** requires that ptrmapPageno(*,1)!=1.
danielk1977afcdd022004-10-31 16:25:42 +0000961*/
danielk1977266664d2006-02-10 08:24:21 +0000962static Pgno ptrmapPageno(BtShared *pBt, Pgno pgno){
danielk197789d40042008-11-17 14:20:56 +0000963 int nPagesPerMapPage;
964 Pgno iPtrMap, ret;
drh1fee73e2007-08-29 04:00:57 +0000965 assert( sqlite3_mutex_held(pBt->mutex) );
drh5f77b2e2010-08-21 15:09:37 +0000966 if( pgno<2 ) return 0;
drhd677b3d2007-08-20 22:48:41 +0000967 nPagesPerMapPage = (pBt->usableSize/5)+1;
968 iPtrMap = (pgno-2)/nPagesPerMapPage;
969 ret = (iPtrMap*nPagesPerMapPage) + 2;
danielk1977266664d2006-02-10 08:24:21 +0000970 if( ret==PENDING_BYTE_PAGE(pBt) ){
971 ret++;
972 }
973 return ret;
974}
danielk1977a19df672004-11-03 11:37:07 +0000975
danielk1977afcdd022004-10-31 16:25:42 +0000976/*
danielk1977afcdd022004-10-31 16:25:42 +0000977** Write an entry into the pointer map.
danielk1977687566d2004-11-02 12:56:41 +0000978**
979** This routine updates the pointer map entry for page number 'key'
980** so that it maps to type 'eType' and parent page number 'pgno'.
drh98add2e2009-07-20 17:11:49 +0000981**
982** If *pRC is initially non-zero (non-SQLITE_OK) then this routine is
983** a no-op. If an error occurs, the appropriate error code is written
984** into *pRC.
danielk1977afcdd022004-10-31 16:25:42 +0000985*/
drh98add2e2009-07-20 17:11:49 +0000986static void ptrmapPut(BtShared *pBt, Pgno key, u8 eType, Pgno parent, int *pRC){
danielk19773b8a05f2007-03-19 17:44:26 +0000987 DbPage *pDbPage; /* The pointer map page */
988 u8 *pPtrmap; /* The pointer map data */
989 Pgno iPtrmap; /* The pointer map page number */
990 int offset; /* Offset in pointer map page */
drh98add2e2009-07-20 17:11:49 +0000991 int rc; /* Return code from subfunctions */
992
993 if( *pRC ) return;
danielk1977afcdd022004-10-31 16:25:42 +0000994
drh1fee73e2007-08-29 04:00:57 +0000995 assert( sqlite3_mutex_held(pBt->mutex) );
drh067b92b2020-06-19 15:24:12 +0000996 /* The super-journal page number must never be used as a pointer map page */
danielk1977266664d2006-02-10 08:24:21 +0000997 assert( 0==PTRMAP_ISPAGE(pBt, PENDING_BYTE_PAGE(pBt)) );
998
danielk1977ac11ee62005-01-15 12:45:51 +0000999 assert( pBt->autoVacuum );
danielk1977fdb7cdb2005-01-17 02:12:18 +00001000 if( key==0 ){
drh98add2e2009-07-20 17:11:49 +00001001 *pRC = SQLITE_CORRUPT_BKPT;
1002 return;
danielk1977fdb7cdb2005-01-17 02:12:18 +00001003 }
danielk1977266664d2006-02-10 08:24:21 +00001004 iPtrmap = PTRMAP_PAGENO(pBt, key);
drh9584f582015-11-04 20:22:37 +00001005 rc = sqlite3PagerGet(pBt->pPager, iPtrmap, &pDbPage, 0);
danielk1977687566d2004-11-02 12:56:41 +00001006 if( rc!=SQLITE_OK ){
drh98add2e2009-07-20 17:11:49 +00001007 *pRC = rc;
1008 return;
danielk1977afcdd022004-10-31 16:25:42 +00001009 }
drh203b1ea2018-12-14 03:14:18 +00001010 if( ((char*)sqlite3PagerGetExtra(pDbPage))[0]!=0 ){
1011 /* The first byte of the extra data is the MemPage.isInit byte.
1012 ** If that byte is set, it means this page is also being used
1013 ** as a btree page. */
1014 *pRC = SQLITE_CORRUPT_BKPT;
1015 goto ptrmap_exit;
1016 }
danielk19778c666b12008-07-18 09:34:57 +00001017 offset = PTRMAP_PTROFFSET(iPtrmap, key);
drhacfc72b2009-06-05 18:44:15 +00001018 if( offset<0 ){
drh98add2e2009-07-20 17:11:49 +00001019 *pRC = SQLITE_CORRUPT_BKPT;
drh4925a552009-07-07 11:39:58 +00001020 goto ptrmap_exit;
drhacfc72b2009-06-05 18:44:15 +00001021 }
drhfc243732011-05-17 15:21:56 +00001022 assert( offset <= (int)pBt->usableSize-5 );
danielk19773b8a05f2007-03-19 17:44:26 +00001023 pPtrmap = (u8 *)sqlite3PagerGetData(pDbPage);
danielk1977afcdd022004-10-31 16:25:42 +00001024
drh615ae552005-01-16 23:21:00 +00001025 if( eType!=pPtrmap[offset] || get4byte(&pPtrmap[offset+1])!=parent ){
1026 TRACE(("PTRMAP_UPDATE: %d->(%d,%d)\n", key, eType, parent));
drh98add2e2009-07-20 17:11:49 +00001027 *pRC= rc = sqlite3PagerWrite(pDbPage);
danielk19775558a8a2005-01-17 07:53:44 +00001028 if( rc==SQLITE_OK ){
1029 pPtrmap[offset] = eType;
1030 put4byte(&pPtrmap[offset+1], parent);
danielk1977afcdd022004-10-31 16:25:42 +00001031 }
danielk1977afcdd022004-10-31 16:25:42 +00001032 }
1033
drh4925a552009-07-07 11:39:58 +00001034ptrmap_exit:
danielk19773b8a05f2007-03-19 17:44:26 +00001035 sqlite3PagerUnref(pDbPage);
danielk1977afcdd022004-10-31 16:25:42 +00001036}
1037
1038/*
1039** Read an entry from the pointer map.
danielk1977687566d2004-11-02 12:56:41 +00001040**
1041** This routine retrieves the pointer map entry for page 'key', writing
1042** the type and parent page number to *pEType and *pPgno respectively.
1043** An error code is returned if something goes wrong, otherwise SQLITE_OK.
danielk1977afcdd022004-10-31 16:25:42 +00001044*/
danielk1977aef0bf62005-12-30 16:28:01 +00001045static int ptrmapGet(BtShared *pBt, Pgno key, u8 *pEType, Pgno *pPgno){
danielk19773b8a05f2007-03-19 17:44:26 +00001046 DbPage *pDbPage; /* The pointer map page */
danielk1977afcdd022004-10-31 16:25:42 +00001047 int iPtrmap; /* Pointer map page index */
1048 u8 *pPtrmap; /* Pointer map page data */
1049 int offset; /* Offset of entry in pointer map */
1050 int rc;
1051
drh1fee73e2007-08-29 04:00:57 +00001052 assert( sqlite3_mutex_held(pBt->mutex) );
drhd677b3d2007-08-20 22:48:41 +00001053
danielk1977266664d2006-02-10 08:24:21 +00001054 iPtrmap = PTRMAP_PAGENO(pBt, key);
drh9584f582015-11-04 20:22:37 +00001055 rc = sqlite3PagerGet(pBt->pPager, iPtrmap, &pDbPage, 0);
danielk1977afcdd022004-10-31 16:25:42 +00001056 if( rc!=0 ){
1057 return rc;
1058 }
danielk19773b8a05f2007-03-19 17:44:26 +00001059 pPtrmap = (u8 *)sqlite3PagerGetData(pDbPage);
danielk1977afcdd022004-10-31 16:25:42 +00001060
danielk19778c666b12008-07-18 09:34:57 +00001061 offset = PTRMAP_PTROFFSET(iPtrmap, key);
drhfc243732011-05-17 15:21:56 +00001062 if( offset<0 ){
1063 sqlite3PagerUnref(pDbPage);
1064 return SQLITE_CORRUPT_BKPT;
1065 }
1066 assert( offset <= (int)pBt->usableSize-5 );
drh43617e92006-03-06 20:55:46 +00001067 assert( pEType!=0 );
1068 *pEType = pPtrmap[offset];
danielk1977687566d2004-11-02 12:56:41 +00001069 if( pPgno ) *pPgno = get4byte(&pPtrmap[offset+1]);
danielk1977afcdd022004-10-31 16:25:42 +00001070
danielk19773b8a05f2007-03-19 17:44:26 +00001071 sqlite3PagerUnref(pDbPage);
drhcc97ca42017-06-07 22:32:59 +00001072 if( *pEType<1 || *pEType>5 ) return SQLITE_CORRUPT_PGNO(iPtrmap);
danielk1977afcdd022004-10-31 16:25:42 +00001073 return SQLITE_OK;
1074}
1075
danielk197785d90ca2008-07-19 14:25:15 +00001076#else /* if defined SQLITE_OMIT_AUTOVACUUM */
drh98add2e2009-07-20 17:11:49 +00001077 #define ptrmapPut(w,x,y,z,rc)
danielk197785d90ca2008-07-19 14:25:15 +00001078 #define ptrmapGet(w,x,y,z) SQLITE_OK
drh0f1bf4c2019-01-13 20:17:21 +00001079 #define ptrmapPutOvflPtr(x, y, z, rc)
danielk197785d90ca2008-07-19 14:25:15 +00001080#endif
danielk1977afcdd022004-10-31 16:25:42 +00001081
drh0d316a42002-08-11 20:10:47 +00001082/*
drh271efa52004-05-30 19:19:05 +00001083** Given a btree page and a cell index (0 means the first cell on
1084** the page, 1 means the second cell, and so forth) return a pointer
1085** to the cell content.
1086**
drhf44890a2015-06-27 03:58:15 +00001087** findCellPastPtr() does the same except it skips past the initial
1088** 4-byte child pointer found on interior pages, if there is one.
1089**
drh271efa52004-05-30 19:19:05 +00001090** This routine works only for pages that do not contain overflow cells.
drh3aac2dd2004-04-26 14:10:20 +00001091*/
drh1688c862008-07-18 02:44:17 +00001092#define findCell(P,I) \
drh329428e2015-06-30 13:28:18 +00001093 ((P)->aData + ((P)->maskPage & get2byteAligned(&(P)->aCellIdx[2*(I)])))
drhf44890a2015-06-27 03:58:15 +00001094#define findCellPastPtr(P,I) \
drh329428e2015-06-30 13:28:18 +00001095 ((P)->aDataOfst + ((P)->maskPage & get2byteAligned(&(P)->aCellIdx[2*(I)])))
drh68f2a572011-06-03 17:50:49 +00001096
drh43605152004-05-29 21:46:49 +00001097
1098/*
drh5fa60512015-06-19 17:19:34 +00001099** This is common tail processing for btreeParseCellPtr() and
1100** btreeParseCellPtrIndex() for the case when the cell does not fit entirely
1101** on a single B-tree page. Make necessary adjustments to the CellInfo
1102** structure.
drh43605152004-05-29 21:46:49 +00001103*/
drh5fa60512015-06-19 17:19:34 +00001104static SQLITE_NOINLINE void btreeParseCellAdjustSizeForOverflow(
1105 MemPage *pPage, /* Page containing the cell */
1106 u8 *pCell, /* Pointer to the cell text. */
1107 CellInfo *pInfo /* Fill in this structure */
1108){
1109 /* If the payload will not fit completely on the local page, we have
1110 ** to decide how much to store locally and how much to spill onto
1111 ** overflow pages. The strategy is to minimize the amount of unused
1112 ** space on overflow pages while keeping the amount of local storage
1113 ** in between minLocal and maxLocal.
1114 **
1115 ** Warning: changing the way overflow payload is distributed in any
1116 ** way will result in an incompatible file format.
1117 */
1118 int minLocal; /* Minimum amount of payload held locally */
1119 int maxLocal; /* Maximum amount of payload held locally */
1120 int surplus; /* Overflow payload available for local storage */
1121
1122 minLocal = pPage->minLocal;
1123 maxLocal = pPage->maxLocal;
1124 surplus = minLocal + (pInfo->nPayload - minLocal)%(pPage->pBt->usableSize-4);
1125 testcase( surplus==maxLocal );
1126 testcase( surplus==maxLocal+1 );
1127 if( surplus <= maxLocal ){
1128 pInfo->nLocal = (u16)surplus;
1129 }else{
1130 pInfo->nLocal = (u16)minLocal;
drh43605152004-05-29 21:46:49 +00001131 }
drh45ac1c72015-12-18 03:59:16 +00001132 pInfo->nSize = (u16)(&pInfo->pPayload[pInfo->nLocal] - pCell) + 4;
drh43605152004-05-29 21:46:49 +00001133}
1134
1135/*
drh5fa60512015-06-19 17:19:34 +00001136** The following routines are implementations of the MemPage.xParseCell()
1137** method.
danielk19771cc5ed82007-05-16 17:28:43 +00001138**
drh5fa60512015-06-19 17:19:34 +00001139** Parse a cell content block and fill in the CellInfo structure.
1140**
1141** btreeParseCellPtr() => table btree leaf nodes
1142** btreeParseCellNoPayload() => table btree internal nodes
1143** btreeParseCellPtrIndex() => index btree nodes
1144**
1145** There is also a wrapper function btreeParseCell() that works for
1146** all MemPage types and that references the cell by index rather than
1147** by pointer.
drh43605152004-05-29 21:46:49 +00001148*/
drh5fa60512015-06-19 17:19:34 +00001149static void btreeParseCellPtrNoPayload(
1150 MemPage *pPage, /* Page containing the cell */
1151 u8 *pCell, /* Pointer to the cell text. */
1152 CellInfo *pInfo /* Fill in this structure */
1153){
1154 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
1155 assert( pPage->leaf==0 );
drh5fa60512015-06-19 17:19:34 +00001156 assert( pPage->childPtrSize==4 );
drh94a31152015-07-01 04:08:40 +00001157#ifndef SQLITE_DEBUG
1158 UNUSED_PARAMETER(pPage);
1159#endif
drh5fa60512015-06-19 17:19:34 +00001160 pInfo->nSize = 4 + getVarint(&pCell[4], (u64*)&pInfo->nKey);
1161 pInfo->nPayload = 0;
1162 pInfo->nLocal = 0;
drh5fa60512015-06-19 17:19:34 +00001163 pInfo->pPayload = 0;
1164 return;
1165}
danielk197730548662009-07-09 05:07:37 +00001166static void btreeParseCellPtr(
drh3aac2dd2004-04-26 14:10:20 +00001167 MemPage *pPage, /* Page containing the cell */
drh43605152004-05-29 21:46:49 +00001168 u8 *pCell, /* Pointer to the cell text. */
drh6f11bef2004-05-13 01:12:56 +00001169 CellInfo *pInfo /* Fill in this structure */
drh3aac2dd2004-04-26 14:10:20 +00001170){
drh3e28ff52014-09-24 00:59:08 +00001171 u8 *pIter; /* For scanning through pCell */
drh271efa52004-05-30 19:19:05 +00001172 u32 nPayload; /* Number of bytes of cell payload */
drh56cb04e2015-06-19 18:24:37 +00001173 u64 iKey; /* Extracted Key value */
drh43605152004-05-29 21:46:49 +00001174
drh1fee73e2007-08-29 04:00:57 +00001175 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drhab01f612004-05-22 02:55:23 +00001176 assert( pPage->leaf==0 || pPage->leaf==1 );
drh5fa60512015-06-19 17:19:34 +00001177 assert( pPage->intKeyLeaf );
1178 assert( pPage->childPtrSize==0 );
drh56cb04e2015-06-19 18:24:37 +00001179 pIter = pCell;
1180
1181 /* The next block of code is equivalent to:
1182 **
1183 ** pIter += getVarint32(pIter, nPayload);
1184 **
1185 ** The code is inlined to avoid a function call.
1186 */
1187 nPayload = *pIter;
1188 if( nPayload>=0x80 ){
drheeab2c62015-06-19 20:08:39 +00001189 u8 *pEnd = &pIter[8];
drh56cb04e2015-06-19 18:24:37 +00001190 nPayload &= 0x7f;
1191 do{
1192 nPayload = (nPayload<<7) | (*++pIter & 0x7f);
1193 }while( (*pIter)>=0x80 && pIter<pEnd );
drh6f11bef2004-05-13 01:12:56 +00001194 }
drh56cb04e2015-06-19 18:24:37 +00001195 pIter++;
1196
1197 /* The next block of code is equivalent to:
1198 **
1199 ** pIter += getVarint(pIter, (u64*)&pInfo->nKey);
1200 **
1201 ** The code is inlined to avoid a function call.
1202 */
1203 iKey = *pIter;
1204 if( iKey>=0x80 ){
1205 u8 *pEnd = &pIter[7];
1206 iKey &= 0x7f;
1207 while(1){
1208 iKey = (iKey<<7) | (*++pIter & 0x7f);
1209 if( (*pIter)<0x80 ) break;
1210 if( pIter>=pEnd ){
1211 iKey = (iKey<<8) | *++pIter;
1212 break;
1213 }
1214 }
1215 }
1216 pIter++;
1217
1218 pInfo->nKey = *(i64*)&iKey;
drh72365832007-03-06 15:53:44 +00001219 pInfo->nPayload = nPayload;
drhab1cc582014-09-23 21:25:19 +00001220 pInfo->pPayload = pIter;
drh0a45c272009-07-08 01:49:11 +00001221 testcase( nPayload==pPage->maxLocal );
1222 testcase( nPayload==pPage->maxLocal+1 );
drhab1cc582014-09-23 21:25:19 +00001223 if( nPayload<=pPage->maxLocal ){
drh271efa52004-05-30 19:19:05 +00001224 /* This is the (easy) common case where the entire payload fits
1225 ** on the local page. No overflow is required.
1226 */
drhab1cc582014-09-23 21:25:19 +00001227 pInfo->nSize = nPayload + (u16)(pIter - pCell);
1228 if( pInfo->nSize<4 ) pInfo->nSize = 4;
drhf49661a2008-12-10 16:45:50 +00001229 pInfo->nLocal = (u16)nPayload;
drh6f11bef2004-05-13 01:12:56 +00001230 }else{
drh5fa60512015-06-19 17:19:34 +00001231 btreeParseCellAdjustSizeForOverflow(pPage, pCell, pInfo);
drh6f11bef2004-05-13 01:12:56 +00001232 }
drh3aac2dd2004-04-26 14:10:20 +00001233}
drh5fa60512015-06-19 17:19:34 +00001234static void btreeParseCellPtrIndex(
1235 MemPage *pPage, /* Page containing the cell */
1236 u8 *pCell, /* Pointer to the cell text. */
1237 CellInfo *pInfo /* Fill in this structure */
1238){
1239 u8 *pIter; /* For scanning through pCell */
1240 u32 nPayload; /* Number of bytes of cell payload */
drh3aac2dd2004-04-26 14:10:20 +00001241
drh5fa60512015-06-19 17:19:34 +00001242 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
1243 assert( pPage->leaf==0 || pPage->leaf==1 );
1244 assert( pPage->intKeyLeaf==0 );
drh5fa60512015-06-19 17:19:34 +00001245 pIter = pCell + pPage->childPtrSize;
1246 nPayload = *pIter;
1247 if( nPayload>=0x80 ){
drheeab2c62015-06-19 20:08:39 +00001248 u8 *pEnd = &pIter[8];
drh5fa60512015-06-19 17:19:34 +00001249 nPayload &= 0x7f;
1250 do{
1251 nPayload = (nPayload<<7) | (*++pIter & 0x7f);
1252 }while( *(pIter)>=0x80 && pIter<pEnd );
1253 }
1254 pIter++;
1255 pInfo->nKey = nPayload;
1256 pInfo->nPayload = nPayload;
1257 pInfo->pPayload = pIter;
1258 testcase( nPayload==pPage->maxLocal );
1259 testcase( nPayload==pPage->maxLocal+1 );
1260 if( nPayload<=pPage->maxLocal ){
1261 /* This is the (easy) common case where the entire payload fits
1262 ** on the local page. No overflow is required.
1263 */
1264 pInfo->nSize = nPayload + (u16)(pIter - pCell);
1265 if( pInfo->nSize<4 ) pInfo->nSize = 4;
1266 pInfo->nLocal = (u16)nPayload;
drh5fa60512015-06-19 17:19:34 +00001267 }else{
1268 btreeParseCellAdjustSizeForOverflow(pPage, pCell, pInfo);
drh3aac2dd2004-04-26 14:10:20 +00001269 }
1270}
danielk197730548662009-07-09 05:07:37 +00001271static void btreeParseCell(
drh43605152004-05-29 21:46:49 +00001272 MemPage *pPage, /* Page containing the cell */
1273 int iCell, /* The cell index. First cell is 0 */
1274 CellInfo *pInfo /* Fill in this structure */
1275){
drh5fa60512015-06-19 17:19:34 +00001276 pPage->xParseCell(pPage, findCell(pPage, iCell), pInfo);
drh43605152004-05-29 21:46:49 +00001277}
drh3aac2dd2004-04-26 14:10:20 +00001278
1279/*
drh5fa60512015-06-19 17:19:34 +00001280** The following routines are implementations of the MemPage.xCellSize
1281** method.
1282**
drh43605152004-05-29 21:46:49 +00001283** Compute the total number of bytes that a Cell needs in the cell
1284** data area of the btree-page. The return number includes the cell
1285** data header and the local payload, but not any overflow page or
1286** the space used by the cell pointer.
drh25ada072015-06-19 15:07:14 +00001287**
drh5fa60512015-06-19 17:19:34 +00001288** cellSizePtrNoPayload() => table internal nodes
1289** cellSizePtr() => all index nodes & table leaf nodes
drh3b7511c2001-05-26 13:15:44 +00001290*/
danielk1977ae5558b2009-04-29 11:31:47 +00001291static u16 cellSizePtr(MemPage *pPage, u8 *pCell){
drh3f387402014-09-24 01:23:00 +00001292 u8 *pIter = pCell + pPage->childPtrSize; /* For looping over bytes of pCell */
1293 u8 *pEnd; /* End mark for a varint */
1294 u32 nSize; /* Size value to return */
danielk1977ae5558b2009-04-29 11:31:47 +00001295
1296#ifdef SQLITE_DEBUG
1297 /* The value returned by this function should always be the same as
1298 ** the (CellInfo.nSize) value found by doing a full parse of the
1299 ** cell. If SQLITE_DEBUG is defined, an assert() at the bottom of
1300 ** this function verifies that this invariant is not violated. */
1301 CellInfo debuginfo;
drh5fa60512015-06-19 17:19:34 +00001302 pPage->xParseCell(pPage, pCell, &debuginfo);
danielk1977ae5558b2009-04-29 11:31:47 +00001303#endif
1304
drh3e28ff52014-09-24 00:59:08 +00001305 nSize = *pIter;
1306 if( nSize>=0x80 ){
drheeab2c62015-06-19 20:08:39 +00001307 pEnd = &pIter[8];
drh3e28ff52014-09-24 00:59:08 +00001308 nSize &= 0x7f;
1309 do{
1310 nSize = (nSize<<7) | (*++pIter & 0x7f);
1311 }while( *(pIter)>=0x80 && pIter<pEnd );
1312 }
1313 pIter++;
danielk1977ae5558b2009-04-29 11:31:47 +00001314 if( pPage->intKey ){
danielk1977ae5558b2009-04-29 11:31:47 +00001315 /* pIter now points at the 64-bit integer key value, a variable length
1316 ** integer. The following block moves pIter to point at the first byte
1317 ** past the end of the key value. */
1318 pEnd = &pIter[9];
1319 while( (*pIter++)&0x80 && pIter<pEnd );
danielk1977ae5558b2009-04-29 11:31:47 +00001320 }
drh0a45c272009-07-08 01:49:11 +00001321 testcase( nSize==pPage->maxLocal );
1322 testcase( nSize==pPage->maxLocal+1 );
drh3e28ff52014-09-24 00:59:08 +00001323 if( nSize<=pPage->maxLocal ){
1324 nSize += (u32)(pIter - pCell);
1325 if( nSize<4 ) nSize = 4;
1326 }else{
danielk1977ae5558b2009-04-29 11:31:47 +00001327 int minLocal = pPage->minLocal;
1328 nSize = minLocal + (nSize - minLocal) % (pPage->pBt->usableSize - 4);
drh0a45c272009-07-08 01:49:11 +00001329 testcase( nSize==pPage->maxLocal );
1330 testcase( nSize==pPage->maxLocal+1 );
danielk1977ae5558b2009-04-29 11:31:47 +00001331 if( nSize>pPage->maxLocal ){
1332 nSize = minLocal;
1333 }
drh3e28ff52014-09-24 00:59:08 +00001334 nSize += 4 + (u16)(pIter - pCell);
danielk1977ae5558b2009-04-29 11:31:47 +00001335 }
drhdc41d602014-09-22 19:51:35 +00001336 assert( nSize==debuginfo.nSize || CORRUPT_DB );
shane60a4b532009-05-06 18:57:09 +00001337 return (u16)nSize;
danielk1977ae5558b2009-04-29 11:31:47 +00001338}
drh25ada072015-06-19 15:07:14 +00001339static u16 cellSizePtrNoPayload(MemPage *pPage, u8 *pCell){
1340 u8 *pIter = pCell + 4; /* For looping over bytes of pCell */
1341 u8 *pEnd; /* End mark for a varint */
1342
1343#ifdef SQLITE_DEBUG
1344 /* The value returned by this function should always be the same as
1345 ** the (CellInfo.nSize) value found by doing a full parse of the
1346 ** cell. If SQLITE_DEBUG is defined, an assert() at the bottom of
1347 ** this function verifies that this invariant is not violated. */
1348 CellInfo debuginfo;
drh5fa60512015-06-19 17:19:34 +00001349 pPage->xParseCell(pPage, pCell, &debuginfo);
drh94a31152015-07-01 04:08:40 +00001350#else
1351 UNUSED_PARAMETER(pPage);
drh25ada072015-06-19 15:07:14 +00001352#endif
1353
1354 assert( pPage->childPtrSize==4 );
1355 pEnd = pIter + 9;
1356 while( (*pIter++)&0x80 && pIter<pEnd );
1357 assert( debuginfo.nSize==(u16)(pIter - pCell) || CORRUPT_DB );
1358 return (u16)(pIter - pCell);
1359}
1360
drh0ee3dbe2009-10-16 15:05:18 +00001361
1362#ifdef SQLITE_DEBUG
1363/* This variation on cellSizePtr() is used inside of assert() statements
1364** only. */
drha9121e42008-02-19 14:59:35 +00001365static u16 cellSize(MemPage *pPage, int iCell){
drh25ada072015-06-19 15:07:14 +00001366 return pPage->xCellSize(pPage, findCell(pPage, iCell));
drh43605152004-05-29 21:46:49 +00001367}
danielk1977bc6ada42004-06-30 08:20:16 +00001368#endif
drh3b7511c2001-05-26 13:15:44 +00001369
danielk197779a40da2005-01-16 08:00:01 +00001370#ifndef SQLITE_OMIT_AUTOVACUUM
drh3b7511c2001-05-26 13:15:44 +00001371/*
drh0f1bf4c2019-01-13 20:17:21 +00001372** The cell pCell is currently part of page pSrc but will ultimately be part
1373** of pPage. (pSrc and pPager are often the same.) If pCell contains a
1374** pointer to an overflow page, insert an entry into the pointer-map for
1375** the overflow page that will be valid after pCell has been moved to pPage.
danielk1977ac11ee62005-01-15 12:45:51 +00001376*/
drh0f1bf4c2019-01-13 20:17:21 +00001377static void ptrmapPutOvflPtr(MemPage *pPage, MemPage *pSrc, u8 *pCell,int *pRC){
drhfa67c3c2008-07-11 02:21:40 +00001378 CellInfo info;
drh98add2e2009-07-20 17:11:49 +00001379 if( *pRC ) return;
drhfa67c3c2008-07-11 02:21:40 +00001380 assert( pCell!=0 );
drh5fa60512015-06-19 17:19:34 +00001381 pPage->xParseCell(pPage, pCell, &info);
drh45ac1c72015-12-18 03:59:16 +00001382 if( info.nLocal<info.nPayload ){
drhe7acce62018-12-14 16:00:38 +00001383 Pgno ovfl;
drh0f1bf4c2019-01-13 20:17:21 +00001384 if( SQLITE_WITHIN(pSrc->aDataEnd, pCell, pCell+info.nLocal) ){
1385 testcase( pSrc!=pPage );
drhe7acce62018-12-14 16:00:38 +00001386 *pRC = SQLITE_CORRUPT_BKPT;
1387 return;
1388 }
1389 ovfl = get4byte(&pCell[info.nSize-4]);
drh98add2e2009-07-20 17:11:49 +00001390 ptrmapPut(pPage->pBt, ovfl, PTRMAP_OVERFLOW1, pPage->pgno, pRC);
danielk1977ac11ee62005-01-15 12:45:51 +00001391 }
danielk1977ac11ee62005-01-15 12:45:51 +00001392}
danielk197779a40da2005-01-16 08:00:01 +00001393#endif
1394
danielk1977ac11ee62005-01-15 12:45:51 +00001395
drhda200cc2004-05-09 11:51:38 +00001396/*
dane6d065a2017-02-24 19:58:22 +00001397** Defragment the page given. This routine reorganizes cells within the
1398** page so that there are no free-blocks on the free-block list.
1399**
1400** Parameter nMaxFrag is the maximum amount of fragmented space that may be
1401** present in the page after this routine returns.
drhfdab0262014-11-20 15:30:50 +00001402**
1403** EVIDENCE-OF: R-44582-60138 SQLite may from time to time reorganize a
1404** b-tree page so that there are no freeblocks or fragment bytes, all
1405** unused bytes are contained in the unallocated space region, and all
1406** cells are packed tightly at the end of the page.
drh365d68f2001-05-11 11:02:46 +00001407*/
dane6d065a2017-02-24 19:58:22 +00001408static int defragmentPage(MemPage *pPage, int nMaxFrag){
drh43605152004-05-29 21:46:49 +00001409 int i; /* Loop counter */
peter.d.reid60ec9142014-09-06 16:39:46 +00001410 int pc; /* Address of the i-th cell */
drh43605152004-05-29 21:46:49 +00001411 int hdr; /* Offset to the page header */
1412 int size; /* Size of a cell */
1413 int usableSize; /* Number of usable bytes on a page */
1414 int cellOffset; /* Offset to the cell pointer array */
drh281b21d2008-08-22 12:57:08 +00001415 int cbrk; /* Offset to the cell content area */
drh43605152004-05-29 21:46:49 +00001416 int nCell; /* Number of cells on the page */
drh2e38c322004-09-03 18:38:44 +00001417 unsigned char *data; /* The page data */
1418 unsigned char *temp; /* Temp area for cell content */
drh588400b2014-09-27 05:00:25 +00001419 unsigned char *src; /* Source of content */
drh17146622009-07-07 17:38:38 +00001420 int iCellFirst; /* First allowable cell index */
1421 int iCellLast; /* Last possible cell index */
1422
danielk19773b8a05f2007-03-19 17:44:26 +00001423 assert( sqlite3PagerIswriteable(pPage->pDbPage) );
drh9e572e62004-04-23 23:43:10 +00001424 assert( pPage->pBt!=0 );
drh90f5ecb2004-07-22 01:19:35 +00001425 assert( pPage->pBt->usableSize <= SQLITE_MAX_PAGE_SIZE );
drh43605152004-05-29 21:46:49 +00001426 assert( pPage->nOverflow==0 );
drh1fee73e2007-08-29 04:00:57 +00001427 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drh588400b2014-09-27 05:00:25 +00001428 temp = 0;
1429 src = data = pPage->aData;
drh9e572e62004-04-23 23:43:10 +00001430 hdr = pPage->hdrOffset;
drh43605152004-05-29 21:46:49 +00001431 cellOffset = pPage->cellOffset;
1432 nCell = pPage->nCell;
drh45616c72019-02-28 13:21:36 +00001433 assert( nCell==get2byte(&data[hdr+3]) || CORRUPT_DB );
dane6d065a2017-02-24 19:58:22 +00001434 iCellFirst = cellOffset + 2*nCell;
dan30741eb2017-03-03 20:02:53 +00001435 usableSize = pPage->pBt->usableSize;
dane6d065a2017-02-24 19:58:22 +00001436
1437 /* This block handles pages with two or fewer free blocks and nMaxFrag
1438 ** or fewer fragmented bytes. In this case it is faster to move the
1439 ** two (or one) blocks of cells using memmove() and add the required
1440 ** offsets to each pointer in the cell-pointer array than it is to
1441 ** reconstruct the entire page. */
1442 if( (int)data[hdr+7]<=nMaxFrag ){
1443 int iFree = get2byte(&data[hdr+1]);
drh119e1ff2019-03-30 18:39:13 +00001444 if( iFree>usableSize-4 ) return SQLITE_CORRUPT_PAGE(pPage);
dane6d065a2017-02-24 19:58:22 +00001445 if( iFree ){
1446 int iFree2 = get2byte(&data[iFree]);
drh5881dfe2018-12-13 03:36:13 +00001447 if( iFree2>usableSize-4 ) return SQLITE_CORRUPT_PAGE(pPage);
dane6d065a2017-02-24 19:58:22 +00001448 if( 0==iFree2 || (data[iFree2]==0 && data[iFree2+1]==0) ){
1449 u8 *pEnd = &data[cellOffset + nCell*2];
1450 u8 *pAddr;
1451 int sz2 = 0;
1452 int sz = get2byte(&data[iFree+2]);
1453 int top = get2byte(&data[hdr+5]);
drh4b9e7362020-02-18 23:58:58 +00001454 if( top>=iFree ){
daneebf2f52017-11-18 17:30:08 +00001455 return SQLITE_CORRUPT_PAGE(pPage);
drh4e6cec12017-09-28 13:47:35 +00001456 }
dane6d065a2017-02-24 19:58:22 +00001457 if( iFree2 ){
drh5881dfe2018-12-13 03:36:13 +00001458 if( iFree+sz>iFree2 ) return SQLITE_CORRUPT_PAGE(pPage);
dane6d065a2017-02-24 19:58:22 +00001459 sz2 = get2byte(&data[iFree2+2]);
drh5881dfe2018-12-13 03:36:13 +00001460 if( iFree2+sz2 > usableSize ) return SQLITE_CORRUPT_PAGE(pPage);
dane6d065a2017-02-24 19:58:22 +00001461 memmove(&data[iFree+sz+sz2], &data[iFree+sz], iFree2-(iFree+sz));
1462 sz += sz2;
drh3b76c452020-01-03 17:40:30 +00001463 }else if( NEVER(iFree+sz>usableSize) ){
dandcc427c2019-03-21 21:18:36 +00001464 return SQLITE_CORRUPT_PAGE(pPage);
dane6d065a2017-02-24 19:58:22 +00001465 }
dandcc427c2019-03-21 21:18:36 +00001466
dane6d065a2017-02-24 19:58:22 +00001467 cbrk = top+sz;
dan30741eb2017-03-03 20:02:53 +00001468 assert( cbrk+(iFree-top) <= usableSize );
dane6d065a2017-02-24 19:58:22 +00001469 memmove(&data[cbrk], &data[top], iFree-top);
1470 for(pAddr=&data[cellOffset]; pAddr<pEnd; pAddr+=2){
1471 pc = get2byte(pAddr);
1472 if( pc<iFree ){ put2byte(pAddr, pc+sz); }
1473 else if( pc<iFree2 ){ put2byte(pAddr, pc+sz2); }
1474 }
1475 goto defragment_out;
1476 }
1477 }
1478 }
1479
drh281b21d2008-08-22 12:57:08 +00001480 cbrk = usableSize;
drh17146622009-07-07 17:38:38 +00001481 iCellLast = usableSize - 4;
drh43605152004-05-29 21:46:49 +00001482 for(i=0; i<nCell; i++){
1483 u8 *pAddr; /* The i-th cell pointer */
1484 pAddr = &data[cellOffset + i*2];
1485 pc = get2byte(pAddr);
drh0a45c272009-07-08 01:49:11 +00001486 testcase( pc==iCellFirst );
1487 testcase( pc==iCellLast );
danielk197730548662009-07-09 05:07:37 +00001488 /* These conditions have already been verified in btreeInitPage()
drh1421d982015-05-27 03:46:18 +00001489 ** if PRAGMA cell_size_check=ON.
drh17146622009-07-07 17:38:38 +00001490 */
1491 if( pc<iCellFirst || pc>iCellLast ){
daneebf2f52017-11-18 17:30:08 +00001492 return SQLITE_CORRUPT_PAGE(pPage);
shane0af3f892008-11-12 04:55:34 +00001493 }
drh17146622009-07-07 17:38:38 +00001494 assert( pc>=iCellFirst && pc<=iCellLast );
drh25ada072015-06-19 15:07:14 +00001495 size = pPage->xCellSize(pPage, &src[pc]);
drh281b21d2008-08-22 12:57:08 +00001496 cbrk -= size;
drh17146622009-07-07 17:38:38 +00001497 if( cbrk<iCellFirst || pc+size>usableSize ){
daneebf2f52017-11-18 17:30:08 +00001498 return SQLITE_CORRUPT_PAGE(pPage);
drh17146622009-07-07 17:38:38 +00001499 }
drh7157e1d2009-07-09 13:25:32 +00001500 assert( cbrk+size<=usableSize && cbrk>=iCellFirst );
drh0a45c272009-07-08 01:49:11 +00001501 testcase( cbrk+size==usableSize );
drh0a45c272009-07-08 01:49:11 +00001502 testcase( pc+size==usableSize );
drh281b21d2008-08-22 12:57:08 +00001503 put2byte(pAddr, cbrk);
drh588400b2014-09-27 05:00:25 +00001504 if( temp==0 ){
1505 int x;
1506 if( cbrk==pc ) continue;
1507 temp = sqlite3PagerTempSpace(pPage->pBt->pPager);
1508 x = get2byte(&data[hdr+5]);
1509 memcpy(&temp[x], &data[x], (cbrk+size) - x);
1510 src = temp;
1511 }
1512 memcpy(&data[cbrk], &src[pc], size);
drh2af926b2001-05-15 00:39:25 +00001513 }
dane6d065a2017-02-24 19:58:22 +00001514 data[hdr+7] = 0;
dane6d065a2017-02-24 19:58:22 +00001515
1516 defragment_out:
drhb0ea9432019-02-09 21:06:40 +00001517 assert( pPage->nFree>=0 );
dan3b2ede12017-02-25 16:24:02 +00001518 if( data[hdr+7]+cbrk-iCellFirst!=pPage->nFree ){
daneebf2f52017-11-18 17:30:08 +00001519 return SQLITE_CORRUPT_PAGE(pPage);
dan3b2ede12017-02-25 16:24:02 +00001520 }
drh17146622009-07-07 17:38:38 +00001521 assert( cbrk>=iCellFirst );
drh281b21d2008-08-22 12:57:08 +00001522 put2byte(&data[hdr+5], cbrk);
drh43605152004-05-29 21:46:49 +00001523 data[hdr+1] = 0;
1524 data[hdr+2] = 0;
drh17146622009-07-07 17:38:38 +00001525 memset(&data[iCellFirst], 0, cbrk-iCellFirst);
drhc5053fb2008-11-27 02:22:10 +00001526 assert( sqlite3PagerIswriteable(pPage->pDbPage) );
shane0af3f892008-11-12 04:55:34 +00001527 return SQLITE_OK;
drh365d68f2001-05-11 11:02:46 +00001528}
1529
drha059ad02001-04-17 20:09:11 +00001530/*
dan8e9ba0c2014-10-14 17:27:04 +00001531** Search the free-list on page pPg for space to store a cell nByte bytes in
1532** size. If one can be found, return a pointer to the space and remove it
1533** from the free-list.
1534**
1535** If no suitable space can be found on the free-list, return NULL.
1536**
drhba0f9992014-10-30 20:48:44 +00001537** This function may detect corruption within pPg. If corruption is
1538** detected then *pRc is set to SQLITE_CORRUPT and NULL is returned.
dan61e94c92014-10-27 08:02:16 +00001539**
drhb7580e82015-06-25 18:36:13 +00001540** Slots on the free list that are between 1 and 3 bytes larger than nByte
1541** will be ignored if adding the extra space to the fragmentation count
1542** causes the fragmentation count to exceed 60.
dan8e9ba0c2014-10-14 17:27:04 +00001543*/
drhb7580e82015-06-25 18:36:13 +00001544static u8 *pageFindSlot(MemPage *pPg, int nByte, int *pRc){
drh298f45c2019-02-08 22:34:59 +00001545 const int hdr = pPg->hdrOffset; /* Offset to page header */
1546 u8 * const aData = pPg->aData; /* Page data */
1547 int iAddr = hdr + 1; /* Address of ptr to pc */
1548 int pc = get2byte(&aData[iAddr]); /* Address of a free slot */
1549 int x; /* Excess size of the slot */
1550 int maxPC = pPg->pBt->usableSize - nByte; /* Max address for a usable slot */
1551 int size; /* Size of the free slot */
dan8e9ba0c2014-10-14 17:27:04 +00001552
drhb7580e82015-06-25 18:36:13 +00001553 assert( pc>0 );
drh298f45c2019-02-08 22:34:59 +00001554 while( pc<=maxPC ){
drh113762a2014-11-19 16:36:25 +00001555 /* EVIDENCE-OF: R-22710-53328 The third and fourth bytes of each
1556 ** freeblock form a big-endian integer which is the size of the freeblock
1557 ** in bytes, including the 4-byte header. */
dan8e9ba0c2014-10-14 17:27:04 +00001558 size = get2byte(&aData[pc+2]);
drhb7580e82015-06-25 18:36:13 +00001559 if( (x = size - nByte)>=0 ){
dan8e9ba0c2014-10-14 17:27:04 +00001560 testcase( x==4 );
1561 testcase( x==3 );
drh298f45c2019-02-08 22:34:59 +00001562 if( x<4 ){
drhfdab0262014-11-20 15:30:50 +00001563 /* EVIDENCE-OF: R-11498-58022 In a well-formed b-tree page, the total
1564 ** number of bytes in fragments may not exceed 60. */
drhb7580e82015-06-25 18:36:13 +00001565 if( aData[hdr+7]>57 ) return 0;
1566
dan8e9ba0c2014-10-14 17:27:04 +00001567 /* Remove the slot from the free-list. Update the number of
1568 ** fragmented bytes within the page. */
1569 memcpy(&aData[iAddr], &aData[pc], 2);
1570 aData[hdr+7] += (u8)x;
drh298f45c2019-02-08 22:34:59 +00001571 }else if( x+pc > maxPC ){
1572 /* This slot extends off the end of the usable part of the page */
1573 *pRc = SQLITE_CORRUPT_PAGE(pPg);
1574 return 0;
dan8e9ba0c2014-10-14 17:27:04 +00001575 }else{
1576 /* The slot remains on the free-list. Reduce its size to account
drh298f45c2019-02-08 22:34:59 +00001577 ** for the portion used by the new allocation. */
dan8e9ba0c2014-10-14 17:27:04 +00001578 put2byte(&aData[pc+2], x);
1579 }
1580 return &aData[pc + x];
1581 }
drhb7580e82015-06-25 18:36:13 +00001582 iAddr = pc;
1583 pc = get2byte(&aData[pc]);
drh2a934d72019-03-13 10:29:16 +00001584 if( pc<=iAddr+size ){
drh298f45c2019-02-08 22:34:59 +00001585 if( pc ){
1586 /* The next slot in the chain is not past the end of the current slot */
1587 *pRc = SQLITE_CORRUPT_PAGE(pPg);
1588 }
1589 return 0;
1590 }
drh87d63c92017-08-23 23:09:03 +00001591 }
drh298f45c2019-02-08 22:34:59 +00001592 if( pc>maxPC+nByte-4 ){
1593 /* The free slot chain extends off the end of the page */
daneebf2f52017-11-18 17:30:08 +00001594 *pRc = SQLITE_CORRUPT_PAGE(pPg);
drh87d63c92017-08-23 23:09:03 +00001595 }
dan8e9ba0c2014-10-14 17:27:04 +00001596 return 0;
1597}
1598
1599/*
danielk19776011a752009-04-01 16:25:32 +00001600** Allocate nByte bytes of space from within the B-Tree page passed
drh0a45c272009-07-08 01:49:11 +00001601** as the first argument. Write into *pIdx the index into pPage->aData[]
1602** of the first byte of allocated space. Return either SQLITE_OK or
1603** an error code (usually SQLITE_CORRUPT).
drhbd03cae2001-06-02 02:40:57 +00001604**
drh0a45c272009-07-08 01:49:11 +00001605** The caller guarantees that there is sufficient space to make the
1606** allocation. This routine might need to defragment in order to bring
1607** all the space together, however. This routine will avoid using
1608** the first two bytes past the cell pointer area since presumably this
1609** allocation is being made in order to insert a new cell, so we will
1610** also end up needing a new cell pointer.
drh7e3b0a02001-04-28 16:52:40 +00001611*/
drh0a45c272009-07-08 01:49:11 +00001612static int allocateSpace(MemPage *pPage, int nByte, int *pIdx){
danielk19776011a752009-04-01 16:25:32 +00001613 const int hdr = pPage->hdrOffset; /* Local cache of pPage->hdrOffset */
1614 u8 * const data = pPage->aData; /* Local cache of pPage->aData */
drh0a45c272009-07-08 01:49:11 +00001615 int top; /* First byte of cell content area */
drhfefa0942014-11-05 21:21:08 +00001616 int rc = SQLITE_OK; /* Integer return code */
drh0a45c272009-07-08 01:49:11 +00001617 int gap; /* First byte of gap between cell pointers and cell content */
drh43605152004-05-29 21:46:49 +00001618
danielk19773b8a05f2007-03-19 17:44:26 +00001619 assert( sqlite3PagerIswriteable(pPage->pDbPage) );
drh9e572e62004-04-23 23:43:10 +00001620 assert( pPage->pBt );
drh1fee73e2007-08-29 04:00:57 +00001621 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drhfa67c3c2008-07-11 02:21:40 +00001622 assert( nByte>=0 ); /* Minimum cell size is 4 */
1623 assert( pPage->nFree>=nByte );
1624 assert( pPage->nOverflow==0 );
mistachkina95d8ca2014-10-27 19:42:02 +00001625 assert( nByte < (int)(pPage->pBt->usableSize-8) );
drh43605152004-05-29 21:46:49 +00001626
drh0a45c272009-07-08 01:49:11 +00001627 assert( pPage->cellOffset == hdr + 12 - 4*pPage->leaf );
1628 gap = pPage->cellOffset + 2*pPage->nCell;
drh75b31dc2014-08-20 00:54:46 +00001629 assert( gap<=65536 );
drhfdab0262014-11-20 15:30:50 +00001630 /* EVIDENCE-OF: R-29356-02391 If the database uses a 65536-byte page size
1631 ** and the reserved space is zero (the usual value for reserved space)
1632 ** then the cell content offset of an empty page wants to be 65536.
1633 ** However, that integer is too large to be stored in a 2-byte unsigned
1634 ** integer, so a value of 0 is used in its place. */
drhded340e2015-06-25 15:04:56 +00001635 top = get2byte(&data[hdr+5]);
drhdfcecdf2019-05-08 00:17:45 +00001636 assert( top<=(int)pPage->pBt->usableSize ); /* by btreeComputeFreeSpace() */
drhded340e2015-06-25 15:04:56 +00001637 if( gap>top ){
drh291508f2019-05-08 04:33:17 +00001638 if( top==0 && pPage->pBt->usableSize==65536 ){
drhded340e2015-06-25 15:04:56 +00001639 top = 65536;
1640 }else{
daneebf2f52017-11-18 17:30:08 +00001641 return SQLITE_CORRUPT_PAGE(pPage);
drh9e572e62004-04-23 23:43:10 +00001642 }
1643 }
drh43605152004-05-29 21:46:49 +00001644
drhd4a67442019-02-11 19:27:36 +00001645 /* If there is enough space between gap and top for one more cell pointer,
1646 ** and if the freelist is not empty, then search the
1647 ** freelist looking for a slot big enough to satisfy the request.
drh4c04f3c2014-08-20 11:56:14 +00001648 */
drh5e2f8b92001-05-28 00:41:15 +00001649 testcase( gap+2==top );
drh7aa128d2002-06-21 13:09:16 +00001650 testcase( gap+1==top );
drh14acc042001-06-10 19:56:58 +00001651 testcase( gap==top );
drhe674bf12015-06-25 16:01:44 +00001652 if( (data[hdr+2] || data[hdr+1]) && gap+2<=top ){
drhb7580e82015-06-25 18:36:13 +00001653 u8 *pSpace = pageFindSlot(pPage, nByte, &rc);
dan8e9ba0c2014-10-14 17:27:04 +00001654 if( pSpace ){
drh3b76c452020-01-03 17:40:30 +00001655 int g2;
drh2b96b692019-08-05 16:22:20 +00001656 assert( pSpace+nByte<=data+pPage->pBt->usableSize );
drh3b76c452020-01-03 17:40:30 +00001657 *pIdx = g2 = (int)(pSpace-data);
1658 if( NEVER(g2<=gap) ){
drh2b96b692019-08-05 16:22:20 +00001659 return SQLITE_CORRUPT_PAGE(pPage);
1660 }else{
1661 return SQLITE_OK;
1662 }
drhb7580e82015-06-25 18:36:13 +00001663 }else if( rc ){
1664 return rc;
drh9e572e62004-04-23 23:43:10 +00001665 }
1666 }
drh43605152004-05-29 21:46:49 +00001667
drh4c04f3c2014-08-20 11:56:14 +00001668 /* The request could not be fulfilled using a freelist slot. Check
1669 ** to see if defragmentation is necessary.
drh0a45c272009-07-08 01:49:11 +00001670 */
1671 testcase( gap+2+nByte==top );
1672 if( gap+2+nByte>top ){
drh1fd2d7d2014-12-02 16:16:47 +00001673 assert( pPage->nCell>0 || CORRUPT_DB );
drhb0ea9432019-02-09 21:06:40 +00001674 assert( pPage->nFree>=0 );
dane6d065a2017-02-24 19:58:22 +00001675 rc = defragmentPage(pPage, MIN(4, pPage->nFree - (2+nByte)));
drh0a45c272009-07-08 01:49:11 +00001676 if( rc ) return rc;
drh5d433ce2010-08-14 16:02:52 +00001677 top = get2byteNotZero(&data[hdr+5]);
dan3b2ede12017-02-25 16:24:02 +00001678 assert( gap+2+nByte<=top );
drh0a45c272009-07-08 01:49:11 +00001679 }
1680
1681
drh43605152004-05-29 21:46:49 +00001682 /* Allocate memory from the gap in between the cell pointer array
drh5860a612019-02-12 16:58:26 +00001683 ** and the cell content area. The btreeComputeFreeSpace() call has already
drhc314dc72009-07-21 11:52:34 +00001684 ** validated the freelist. Given that the freelist is valid, there
1685 ** is no way that the allocation can extend off the end of the page.
1686 ** The assert() below verifies the previous sentence.
drh43605152004-05-29 21:46:49 +00001687 */
drh0a45c272009-07-08 01:49:11 +00001688 top -= nByte;
drh43605152004-05-29 21:46:49 +00001689 put2byte(&data[hdr+5], top);
drhfcd71b62011-04-05 22:08:24 +00001690 assert( top+nByte <= (int)pPage->pBt->usableSize );
drh0a45c272009-07-08 01:49:11 +00001691 *pIdx = top;
1692 return SQLITE_OK;
drh7e3b0a02001-04-28 16:52:40 +00001693}
1694
1695/*
drh9e572e62004-04-23 23:43:10 +00001696** Return a section of the pPage->aData to the freelist.
drh7fb91642014-08-20 14:37:09 +00001697** The first byte of the new free block is pPage->aData[iStart]
1698** and the size of the block is iSize bytes.
drh306dc212001-05-21 13:45:10 +00001699**
drh5f5c7532014-08-20 17:56:27 +00001700** Adjacent freeblocks are coalesced.
1701**
drh5860a612019-02-12 16:58:26 +00001702** Even though the freeblock list was checked by btreeComputeFreeSpace(),
drh5f5c7532014-08-20 17:56:27 +00001703** that routine will not detect overlap between cells or freeblocks. Nor
1704** does it detect cells or freeblocks that encrouch into the reserved bytes
1705** at the end of the page. So do additional corruption checks inside this
1706** routine and return SQLITE_CORRUPT if any problems are found.
drh7e3b0a02001-04-28 16:52:40 +00001707*/
drh5f5c7532014-08-20 17:56:27 +00001708static int freeSpace(MemPage *pPage, u16 iStart, u16 iSize){
drh3f387402014-09-24 01:23:00 +00001709 u16 iPtr; /* Address of ptr to next freeblock */
drh5f5c7532014-08-20 17:56:27 +00001710 u16 iFreeBlk; /* Address of the next freeblock */
1711 u8 hdr; /* Page header size. 0 or 100 */
1712 u8 nFrag = 0; /* Reduction in fragmentation */
1713 u16 iOrigSize = iSize; /* Original value of iSize */
drh5e398e42017-08-23 20:36:06 +00001714 u16 x; /* Offset to cell content area */
drh5f5c7532014-08-20 17:56:27 +00001715 u32 iEnd = iStart + iSize; /* First byte past the iStart buffer */
drh7fb91642014-08-20 14:37:09 +00001716 unsigned char *data = pPage->aData; /* Page content */
drh2af926b2001-05-15 00:39:25 +00001717
drh9e572e62004-04-23 23:43:10 +00001718 assert( pPage->pBt!=0 );
danielk19773b8a05f2007-03-19 17:44:26 +00001719 assert( sqlite3PagerIswriteable(pPage->pDbPage) );
dancf3d17c2015-05-25 15:03:49 +00001720 assert( CORRUPT_DB || iStart>=pPage->hdrOffset+6+pPage->childPtrSize );
dan23eba452014-10-24 18:43:57 +00001721 assert( CORRUPT_DB || iEnd <= pPage->pBt->usableSize );
drh1fee73e2007-08-29 04:00:57 +00001722 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drh7fb91642014-08-20 14:37:09 +00001723 assert( iSize>=4 ); /* Minimum cell size is 4 */
drh5e398e42017-08-23 20:36:06 +00001724 assert( iStart<=pPage->pBt->usableSize-4 );
drhfcce93f2006-02-22 03:08:32 +00001725
drh5f5c7532014-08-20 17:56:27 +00001726 /* The list of freeblocks must be in ascending order. Find the
1727 ** spot on the list where iStart should be inserted.
drh0a45c272009-07-08 01:49:11 +00001728 */
drh43605152004-05-29 21:46:49 +00001729 hdr = pPage->hdrOffset;
drh7fb91642014-08-20 14:37:09 +00001730 iPtr = hdr + 1;
drh7bc4c452014-08-20 18:43:44 +00001731 if( data[iPtr+1]==0 && data[iPtr]==0 ){
1732 iFreeBlk = 0; /* Shortcut for the case when the freelist is empty */
1733 }else{
drh85f071b2016-09-17 19:34:32 +00001734 while( (iFreeBlk = get2byte(&data[iPtr]))<iStart ){
1735 if( iFreeBlk<iPtr+4 ){
drh05e8c542020-01-14 16:39:54 +00001736 if( iFreeBlk==0 ) break; /* TH3: corrupt082.100 */
daneebf2f52017-11-18 17:30:08 +00001737 return SQLITE_CORRUPT_PAGE(pPage);
drh85f071b2016-09-17 19:34:32 +00001738 }
drh7bc4c452014-08-20 18:43:44 +00001739 iPtr = iFreeBlk;
shanedcc50b72008-11-13 18:29:50 +00001740 }
drh628b1a32020-01-05 21:53:15 +00001741 if( iFreeBlk>pPage->pBt->usableSize-4 ){ /* TH3: corrupt081.100 */
daneebf2f52017-11-18 17:30:08 +00001742 return SQLITE_CORRUPT_PAGE(pPage);
drh5e398e42017-08-23 20:36:06 +00001743 }
drh7bc4c452014-08-20 18:43:44 +00001744 assert( iFreeBlk>iPtr || iFreeBlk==0 );
1745
1746 /* At this point:
1747 ** iFreeBlk: First freeblock after iStart, or zero if none
drh3e24a342015-06-15 16:09:35 +00001748 ** iPtr: The address of a pointer to iFreeBlk
drh7bc4c452014-08-20 18:43:44 +00001749 **
1750 ** Check to see if iFreeBlk should be coalesced onto the end of iStart.
1751 */
1752 if( iFreeBlk && iEnd+3>=iFreeBlk ){
1753 nFrag = iFreeBlk - iEnd;
daneebf2f52017-11-18 17:30:08 +00001754 if( iEnd>iFreeBlk ) return SQLITE_CORRUPT_PAGE(pPage);
drh7bc4c452014-08-20 18:43:44 +00001755 iEnd = iFreeBlk + get2byte(&data[iFreeBlk+2]);
drh6aa75152020-06-12 00:31:52 +00001756 if( iEnd > pPage->pBt->usableSize ){
daneebf2f52017-11-18 17:30:08 +00001757 return SQLITE_CORRUPT_PAGE(pPage);
drhcc97ca42017-06-07 22:32:59 +00001758 }
drh7bc4c452014-08-20 18:43:44 +00001759 iSize = iEnd - iStart;
1760 iFreeBlk = get2byte(&data[iFreeBlk]);
1761 }
1762
drh3f387402014-09-24 01:23:00 +00001763 /* If iPtr is another freeblock (that is, if iPtr is not the freelist
1764 ** pointer in the page header) then check to see if iStart should be
1765 ** coalesced onto the end of iPtr.
drh7bc4c452014-08-20 18:43:44 +00001766 */
1767 if( iPtr>hdr+1 ){
1768 int iPtrEnd = iPtr + get2byte(&data[iPtr+2]);
1769 if( iPtrEnd+3>=iStart ){
daneebf2f52017-11-18 17:30:08 +00001770 if( iPtrEnd>iStart ) return SQLITE_CORRUPT_PAGE(pPage);
drh7bc4c452014-08-20 18:43:44 +00001771 nFrag += iStart - iPtrEnd;
1772 iSize = iEnd - iPtr;
1773 iStart = iPtr;
shanedcc50b72008-11-13 18:29:50 +00001774 }
drh9e572e62004-04-23 23:43:10 +00001775 }
daneebf2f52017-11-18 17:30:08 +00001776 if( nFrag>data[hdr+7] ) return SQLITE_CORRUPT_PAGE(pPage);
drh7bc4c452014-08-20 18:43:44 +00001777 data[hdr+7] -= nFrag;
drh9e572e62004-04-23 23:43:10 +00001778 }
drh5e398e42017-08-23 20:36:06 +00001779 x = get2byte(&data[hdr+5]);
1780 if( iStart<=x ){
drh5f5c7532014-08-20 17:56:27 +00001781 /* The new freeblock is at the beginning of the cell content area,
1782 ** so just extend the cell content area rather than create another
1783 ** freelist entry */
drh3b76c452020-01-03 17:40:30 +00001784 if( iStart<x ) return SQLITE_CORRUPT_PAGE(pPage);
drh48118e42020-01-29 13:50:11 +00001785 if( iPtr!=hdr+1 ) return SQLITE_CORRUPT_PAGE(pPage);
drh5f5c7532014-08-20 17:56:27 +00001786 put2byte(&data[hdr+1], iFreeBlk);
1787 put2byte(&data[hdr+5], iEnd);
1788 }else{
1789 /* Insert the new freeblock into the freelist */
1790 put2byte(&data[iPtr], iStart);
drh4b70f112004-05-02 21:12:19 +00001791 }
drh5e398e42017-08-23 20:36:06 +00001792 if( pPage->pBt->btsFlags & BTS_FAST_SECURE ){
1793 /* Overwrite deleted information with zeros when the secure_delete
1794 ** option is enabled */
1795 memset(&data[iStart], 0, iSize);
1796 }
1797 put2byte(&data[iStart], iFreeBlk);
1798 put2byte(&data[iStart+2], iSize);
drh5f5c7532014-08-20 17:56:27 +00001799 pPage->nFree += iOrigSize;
shanedcc50b72008-11-13 18:29:50 +00001800 return SQLITE_OK;
drh4b70f112004-05-02 21:12:19 +00001801}
1802
1803/*
drh271efa52004-05-30 19:19:05 +00001804** Decode the flags byte (the first byte of the header) for a page
1805** and initialize fields of the MemPage structure accordingly.
drh44845222008-07-17 18:39:57 +00001806**
1807** Only the following combinations are supported. Anything different
1808** indicates a corrupt database files:
1809**
1810** PTF_ZERODATA
1811** PTF_ZERODATA | PTF_LEAF
1812** PTF_LEAFDATA | PTF_INTKEY
1813** PTF_LEAFDATA | PTF_INTKEY | PTF_LEAF
drh271efa52004-05-30 19:19:05 +00001814*/
drh44845222008-07-17 18:39:57 +00001815static int decodeFlags(MemPage *pPage, int flagByte){
danielk1977aef0bf62005-12-30 16:28:01 +00001816 BtShared *pBt; /* A copy of pPage->pBt */
drh271efa52004-05-30 19:19:05 +00001817
1818 assert( pPage->hdrOffset==(pPage->pgno==1 ? 100 : 0) );
drh1fee73e2007-08-29 04:00:57 +00001819 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drhf49661a2008-12-10 16:45:50 +00001820 pPage->leaf = (u8)(flagByte>>3); assert( PTF_LEAF == 1<<3 );
drh44845222008-07-17 18:39:57 +00001821 flagByte &= ~PTF_LEAF;
1822 pPage->childPtrSize = 4-4*pPage->leaf;
drh25ada072015-06-19 15:07:14 +00001823 pPage->xCellSize = cellSizePtr;
drh271efa52004-05-30 19:19:05 +00001824 pBt = pPage->pBt;
drh44845222008-07-17 18:39:57 +00001825 if( flagByte==(PTF_LEAFDATA | PTF_INTKEY) ){
drh3791c9c2016-05-09 23:11:47 +00001826 /* EVIDENCE-OF: R-07291-35328 A value of 5 (0x05) means the page is an
1827 ** interior table b-tree page. */
drhfdab0262014-11-20 15:30:50 +00001828 assert( (PTF_LEAFDATA|PTF_INTKEY)==5 );
drh3791c9c2016-05-09 23:11:47 +00001829 /* EVIDENCE-OF: R-26900-09176 A value of 13 (0x0d) means the page is a
1830 ** leaf table b-tree page. */
drhfdab0262014-11-20 15:30:50 +00001831 assert( (PTF_LEAFDATA|PTF_INTKEY|PTF_LEAF)==13 );
drh44845222008-07-17 18:39:57 +00001832 pPage->intKey = 1;
drh25ada072015-06-19 15:07:14 +00001833 if( pPage->leaf ){
1834 pPage->intKeyLeaf = 1;
drh5fa60512015-06-19 17:19:34 +00001835 pPage->xParseCell = btreeParseCellPtr;
drh25ada072015-06-19 15:07:14 +00001836 }else{
1837 pPage->intKeyLeaf = 0;
drh25ada072015-06-19 15:07:14 +00001838 pPage->xCellSize = cellSizePtrNoPayload;
drh5fa60512015-06-19 17:19:34 +00001839 pPage->xParseCell = btreeParseCellPtrNoPayload;
drh25ada072015-06-19 15:07:14 +00001840 }
drh271efa52004-05-30 19:19:05 +00001841 pPage->maxLocal = pBt->maxLeaf;
1842 pPage->minLocal = pBt->minLeaf;
drh44845222008-07-17 18:39:57 +00001843 }else if( flagByte==PTF_ZERODATA ){
drh3791c9c2016-05-09 23:11:47 +00001844 /* EVIDENCE-OF: R-43316-37308 A value of 2 (0x02) means the page is an
1845 ** interior index b-tree page. */
drhfdab0262014-11-20 15:30:50 +00001846 assert( (PTF_ZERODATA)==2 );
drh3791c9c2016-05-09 23:11:47 +00001847 /* EVIDENCE-OF: R-59615-42828 A value of 10 (0x0a) means the page is a
1848 ** leaf index b-tree page. */
drhfdab0262014-11-20 15:30:50 +00001849 assert( (PTF_ZERODATA|PTF_LEAF)==10 );
drh44845222008-07-17 18:39:57 +00001850 pPage->intKey = 0;
drh3e28ff52014-09-24 00:59:08 +00001851 pPage->intKeyLeaf = 0;
drh5fa60512015-06-19 17:19:34 +00001852 pPage->xParseCell = btreeParseCellPtrIndex;
drh271efa52004-05-30 19:19:05 +00001853 pPage->maxLocal = pBt->maxLocal;
1854 pPage->minLocal = pBt->minLocal;
drh44845222008-07-17 18:39:57 +00001855 }else{
drhfdab0262014-11-20 15:30:50 +00001856 /* EVIDENCE-OF: R-47608-56469 Any other value for the b-tree page type is
1857 ** an error. */
daneebf2f52017-11-18 17:30:08 +00001858 return SQLITE_CORRUPT_PAGE(pPage);
drh271efa52004-05-30 19:19:05 +00001859 }
drhc9166342012-01-05 23:32:06 +00001860 pPage->max1bytePayload = pBt->max1bytePayload;
drh44845222008-07-17 18:39:57 +00001861 return SQLITE_OK;
drh271efa52004-05-30 19:19:05 +00001862}
1863
1864/*
drhb0ea9432019-02-09 21:06:40 +00001865** Compute the amount of freespace on the page. In other words, fill
1866** in the pPage->nFree field.
drh7e3b0a02001-04-28 16:52:40 +00001867*/
drhb0ea9432019-02-09 21:06:40 +00001868static int btreeComputeFreeSpace(MemPage *pPage){
drh14e845a2017-05-25 21:35:56 +00001869 int pc; /* Address of a freeblock within pPage->aData[] */
1870 u8 hdr; /* Offset to beginning of page header */
1871 u8 *data; /* Equal to pPage->aData */
drh14e845a2017-05-25 21:35:56 +00001872 int usableSize; /* Amount of usable space on each page */
drh14e845a2017-05-25 21:35:56 +00001873 int nFree; /* Number of unused bytes on the page */
1874 int top; /* First byte of the cell content area */
1875 int iCellFirst; /* First allowable cell or freeblock offset */
1876 int iCellLast; /* Last possible cell or freeblock offset */
drh2af926b2001-05-15 00:39:25 +00001877
danielk197771d5d2c2008-09-29 11:49:47 +00001878 assert( pPage->pBt!=0 );
drh1421d982015-05-27 03:46:18 +00001879 assert( pPage->pBt->db!=0 );
danielk197771d5d2c2008-09-29 11:49:47 +00001880 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
danielk19773b8a05f2007-03-19 17:44:26 +00001881 assert( pPage->pgno==sqlite3PagerPagenumber(pPage->pDbPage) );
drhbf4bca52007-09-06 22:19:14 +00001882 assert( pPage == sqlite3PagerGetExtra(pPage->pDbPage) );
1883 assert( pPage->aData == sqlite3PagerGetData(pPage->pDbPage) );
drhb0ea9432019-02-09 21:06:40 +00001884 assert( pPage->isInit==1 );
1885 assert( pPage->nFree<0 );
danielk197771d5d2c2008-09-29 11:49:47 +00001886
drhb0ea9432019-02-09 21:06:40 +00001887 usableSize = pPage->pBt->usableSize;
drh14e845a2017-05-25 21:35:56 +00001888 hdr = pPage->hdrOffset;
1889 data = pPage->aData;
drh14e845a2017-05-25 21:35:56 +00001890 /* EVIDENCE-OF: R-58015-48175 The two-byte integer at offset 5 designates
1891 ** the start of the cell content area. A zero value for this integer is
1892 ** interpreted as 65536. */
1893 top = get2byteNotZero(&data[hdr+5]);
drhb0ea9432019-02-09 21:06:40 +00001894 iCellFirst = hdr + 8 + pPage->childPtrSize + 2*pPage->nCell;
drh14e845a2017-05-25 21:35:56 +00001895 iCellLast = usableSize - 4;
danielk197793c829c2009-06-03 17:26:17 +00001896
drh14e845a2017-05-25 21:35:56 +00001897 /* Compute the total free space on the page
1898 ** EVIDENCE-OF: R-23588-34450 The two-byte integer at offset 1 gives the
1899 ** start of the first freeblock on the page, or is zero if there are no
1900 ** freeblocks. */
1901 pc = get2byte(&data[hdr+1]);
1902 nFree = data[hdr+7] + top; /* Init nFree to non-freeblock free space */
1903 if( pc>0 ){
1904 u32 next, size;
dan9a20ea92020-01-03 15:51:23 +00001905 if( pc<top ){
drh14e845a2017-05-25 21:35:56 +00001906 /* EVIDENCE-OF: R-55530-52930 In a well-formed b-tree page, there will
1907 ** always be at least one cell before the first freeblock.
1908 */
daneebf2f52017-11-18 17:30:08 +00001909 return SQLITE_CORRUPT_PAGE(pPage);
drhee696e22004-08-30 16:52:17 +00001910 }
drh14e845a2017-05-25 21:35:56 +00001911 while( 1 ){
1912 if( pc>iCellLast ){
drhcc97ca42017-06-07 22:32:59 +00001913 /* Freeblock off the end of the page */
daneebf2f52017-11-18 17:30:08 +00001914 return SQLITE_CORRUPT_PAGE(pPage);
drh14e845a2017-05-25 21:35:56 +00001915 }
1916 next = get2byte(&data[pc]);
1917 size = get2byte(&data[pc+2]);
1918 nFree = nFree + size;
1919 if( next<=pc+size+3 ) break;
1920 pc = next;
1921 }
1922 if( next>0 ){
drhcc97ca42017-06-07 22:32:59 +00001923 /* Freeblock not in ascending order */
daneebf2f52017-11-18 17:30:08 +00001924 return SQLITE_CORRUPT_PAGE(pPage);
drh14e845a2017-05-25 21:35:56 +00001925 }
1926 if( pc+size>(unsigned int)usableSize ){
drhcc97ca42017-06-07 22:32:59 +00001927 /* Last freeblock extends past page end */
daneebf2f52017-11-18 17:30:08 +00001928 return SQLITE_CORRUPT_PAGE(pPage);
drh14e845a2017-05-25 21:35:56 +00001929 }
danielk197771d5d2c2008-09-29 11:49:47 +00001930 }
drh14e845a2017-05-25 21:35:56 +00001931
1932 /* At this point, nFree contains the sum of the offset to the start
1933 ** of the cell-content area plus the number of free bytes within
1934 ** the cell-content area. If this is greater than the usable-size
1935 ** of the page, then the page must be corrupted. This check also
1936 ** serves to verify that the offset to the start of the cell-content
1937 ** area, according to the page header, lies within the page.
1938 */
drhdfcecdf2019-05-08 00:17:45 +00001939 if( nFree>usableSize || nFree<iCellFirst ){
daneebf2f52017-11-18 17:30:08 +00001940 return SQLITE_CORRUPT_PAGE(pPage);
drh14e845a2017-05-25 21:35:56 +00001941 }
1942 pPage->nFree = (u16)(nFree - iCellFirst);
drhb0ea9432019-02-09 21:06:40 +00001943 return SQLITE_OK;
1944}
1945
1946/*
drh5860a612019-02-12 16:58:26 +00001947** Do additional sanity check after btreeInitPage() if
1948** PRAGMA cell_size_check=ON
1949*/
1950static SQLITE_NOINLINE int btreeCellSizeCheck(MemPage *pPage){
1951 int iCellFirst; /* First allowable cell or freeblock offset */
1952 int iCellLast; /* Last possible cell or freeblock offset */
1953 int i; /* Index into the cell pointer array */
1954 int sz; /* Size of a cell */
1955 int pc; /* Address of a freeblock within pPage->aData[] */
1956 u8 *data; /* Equal to pPage->aData */
1957 int usableSize; /* Maximum usable space on the page */
1958 int cellOffset; /* Start of cell content area */
1959
1960 iCellFirst = pPage->cellOffset + 2*pPage->nCell;
1961 usableSize = pPage->pBt->usableSize;
1962 iCellLast = usableSize - 4;
1963 data = pPage->aData;
1964 cellOffset = pPage->cellOffset;
1965 if( !pPage->leaf ) iCellLast--;
1966 for(i=0; i<pPage->nCell; i++){
1967 pc = get2byteAligned(&data[cellOffset+i*2]);
1968 testcase( pc==iCellFirst );
1969 testcase( pc==iCellLast );
1970 if( pc<iCellFirst || pc>iCellLast ){
1971 return SQLITE_CORRUPT_PAGE(pPage);
1972 }
1973 sz = pPage->xCellSize(pPage, &data[pc]);
1974 testcase( pc+sz==usableSize );
1975 if( pc+sz>usableSize ){
1976 return SQLITE_CORRUPT_PAGE(pPage);
1977 }
1978 }
1979 return SQLITE_OK;
1980}
1981
1982/*
drhb0ea9432019-02-09 21:06:40 +00001983** Initialize the auxiliary information for a disk block.
1984**
1985** Return SQLITE_OK on success. If we see that the page does
1986** not contain a well-formed database page, then return
1987** SQLITE_CORRUPT. Note that a return of SQLITE_OK does not
1988** guarantee that the page is well-formed. It only shows that
1989** we failed to detect any corruption.
1990*/
1991static int btreeInitPage(MemPage *pPage){
drhb0ea9432019-02-09 21:06:40 +00001992 u8 *data; /* Equal to pPage->aData */
1993 BtShared *pBt; /* The main btree structure */
drhb0ea9432019-02-09 21:06:40 +00001994
1995 assert( pPage->pBt!=0 );
1996 assert( pPage->pBt->db!=0 );
1997 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
1998 assert( pPage->pgno==sqlite3PagerPagenumber(pPage->pDbPage) );
1999 assert( pPage == sqlite3PagerGetExtra(pPage->pDbPage) );
2000 assert( pPage->aData == sqlite3PagerGetData(pPage->pDbPage) );
2001 assert( pPage->isInit==0 );
2002
2003 pBt = pPage->pBt;
drh5860a612019-02-12 16:58:26 +00002004 data = pPage->aData + pPage->hdrOffset;
drhb0ea9432019-02-09 21:06:40 +00002005 /* EVIDENCE-OF: R-28594-02890 The one-byte flag at offset 0 indicating
2006 ** the b-tree page type. */
drh5860a612019-02-12 16:58:26 +00002007 if( decodeFlags(pPage, data[0]) ){
drhb0ea9432019-02-09 21:06:40 +00002008 return SQLITE_CORRUPT_PAGE(pPage);
2009 }
2010 assert( pBt->pageSize>=512 && pBt->pageSize<=65536 );
2011 pPage->maskPage = (u16)(pBt->pageSize - 1);
2012 pPage->nOverflow = 0;
drh5860a612019-02-12 16:58:26 +00002013 pPage->cellOffset = pPage->hdrOffset + 8 + pPage->childPtrSize;
2014 pPage->aCellIdx = data + pPage->childPtrSize + 8;
2015 pPage->aDataEnd = pPage->aData + pBt->usableSize;
2016 pPage->aDataOfst = pPage->aData + pPage->childPtrSize;
drhb0ea9432019-02-09 21:06:40 +00002017 /* EVIDENCE-OF: R-37002-32774 The two-byte integer at offset 3 gives the
2018 ** number of cells on the page. */
drh5860a612019-02-12 16:58:26 +00002019 pPage->nCell = get2byte(&data[3]);
drhb0ea9432019-02-09 21:06:40 +00002020 if( pPage->nCell>MX_CELL(pBt) ){
2021 /* To many cells for a single page. The page must be corrupt */
2022 return SQLITE_CORRUPT_PAGE(pPage);
2023 }
2024 testcase( pPage->nCell==MX_CELL(pBt) );
2025 /* EVIDENCE-OF: R-24089-57979 If a page contains no cells (which is only
2026 ** possible for a root page of a table that contains no rows) then the
2027 ** offset to the cell content area will equal the page size minus the
2028 ** bytes of reserved space. */
2029 assert( pPage->nCell>0
mistachkin065f3bf2019-03-20 05:45:03 +00002030 || get2byteNotZero(&data[5])==(int)pBt->usableSize
drhb0ea9432019-02-09 21:06:40 +00002031 || CORRUPT_DB );
drhb0ea9432019-02-09 21:06:40 +00002032 pPage->nFree = -1; /* Indicate that this value is yet uncomputed */
drh14e845a2017-05-25 21:35:56 +00002033 pPage->isInit = 1;
drh5860a612019-02-12 16:58:26 +00002034 if( pBt->db->flags & SQLITE_CellSizeCk ){
2035 return btreeCellSizeCheck(pPage);
2036 }
drh9e572e62004-04-23 23:43:10 +00002037 return SQLITE_OK;
drh7e3b0a02001-04-28 16:52:40 +00002038}
2039
2040/*
drh8b2f49b2001-06-08 00:21:52 +00002041** Set up a raw page so that it looks like a database page holding
2042** no entries.
drhbd03cae2001-06-02 02:40:57 +00002043*/
drh9e572e62004-04-23 23:43:10 +00002044static void zeroPage(MemPage *pPage, int flags){
2045 unsigned char *data = pPage->aData;
danielk1977aef0bf62005-12-30 16:28:01 +00002046 BtShared *pBt = pPage->pBt;
drhf49661a2008-12-10 16:45:50 +00002047 u8 hdr = pPage->hdrOffset;
2048 u16 first;
drh9e572e62004-04-23 23:43:10 +00002049
danielk19773b8a05f2007-03-19 17:44:26 +00002050 assert( sqlite3PagerPagenumber(pPage->pDbPage)==pPage->pgno );
drhbf4bca52007-09-06 22:19:14 +00002051 assert( sqlite3PagerGetExtra(pPage->pDbPage) == (void*)pPage );
2052 assert( sqlite3PagerGetData(pPage->pDbPage) == data );
danielk19773b8a05f2007-03-19 17:44:26 +00002053 assert( sqlite3PagerIswriteable(pPage->pDbPage) );
drh1fee73e2007-08-29 04:00:57 +00002054 assert( sqlite3_mutex_held(pBt->mutex) );
drha5907a82017-06-19 11:44:22 +00002055 if( pBt->btsFlags & BTS_FAST_SECURE ){
drh5b47efa2010-02-12 18:18:39 +00002056 memset(&data[hdr], 0, pBt->usableSize - hdr);
2057 }
drh1bd10f82008-12-10 21:19:56 +00002058 data[hdr] = (char)flags;
drhfe485992014-02-12 23:52:16 +00002059 first = hdr + ((flags&PTF_LEAF)==0 ? 12 : 8);
drh43605152004-05-29 21:46:49 +00002060 memset(&data[hdr+1], 0, 4);
2061 data[hdr+7] = 0;
2062 put2byte(&data[hdr+5], pBt->usableSize);
shaneh1df2db72010-08-18 02:28:48 +00002063 pPage->nFree = (u16)(pBt->usableSize - first);
drh271efa52004-05-30 19:19:05 +00002064 decodeFlags(pPage, flags);
drh43605152004-05-29 21:46:49 +00002065 pPage->cellOffset = first;
drh3def2352011-11-11 00:27:15 +00002066 pPage->aDataEnd = &data[pBt->usableSize];
2067 pPage->aCellIdx = &data[first];
drhf44890a2015-06-27 03:58:15 +00002068 pPage->aDataOfst = &data[pPage->childPtrSize];
drh43605152004-05-29 21:46:49 +00002069 pPage->nOverflow = 0;
drhb2eced52010-08-12 02:41:12 +00002070 assert( pBt->pageSize>=512 && pBt->pageSize<=65536 );
2071 pPage->maskPage = (u16)(pBt->pageSize - 1);
drh43605152004-05-29 21:46:49 +00002072 pPage->nCell = 0;
danielk197771d5d2c2008-09-29 11:49:47 +00002073 pPage->isInit = 1;
drhbd03cae2001-06-02 02:40:57 +00002074}
2075
drh897a8202008-09-18 01:08:15 +00002076
2077/*
2078** Convert a DbPage obtained from the pager into a MemPage used by
2079** the btree layer.
2080*/
2081static MemPage *btreePageFromDbPage(DbPage *pDbPage, Pgno pgno, BtShared *pBt){
2082 MemPage *pPage = (MemPage*)sqlite3PagerGetExtra(pDbPage);
drh8dd1c252015-11-04 22:31:02 +00002083 if( pgno!=pPage->pgno ){
2084 pPage->aData = sqlite3PagerGetData(pDbPage);
2085 pPage->pDbPage = pDbPage;
2086 pPage->pBt = pBt;
2087 pPage->pgno = pgno;
2088 pPage->hdrOffset = pgno==1 ? 100 : 0;
2089 }
2090 assert( pPage->aData==sqlite3PagerGetData(pDbPage) );
drh897a8202008-09-18 01:08:15 +00002091 return pPage;
2092}
2093
drhbd03cae2001-06-02 02:40:57 +00002094/*
drh3aac2dd2004-04-26 14:10:20 +00002095** Get a page from the pager. Initialize the MemPage.pBt and
drh7e8c6f12015-05-28 03:28:27 +00002096** MemPage.aData elements if needed. See also: btreeGetUnusedPage().
drh538f5702007-04-13 02:14:30 +00002097**
drh7e8c6f12015-05-28 03:28:27 +00002098** If the PAGER_GET_NOCONTENT flag is set, it means that we do not care
2099** about the content of the page at this time. So do not go to the disk
drh538f5702007-04-13 02:14:30 +00002100** to fetch the content. Just fill in the content with zeros for now.
2101** If in the future we call sqlite3PagerWrite() on this page, that
2102** means we have started to be concerned about content and the disk
2103** read should occur at that point.
drh3aac2dd2004-04-26 14:10:20 +00002104*/
danielk197730548662009-07-09 05:07:37 +00002105static int btreeGetPage(
drh16a9b832007-05-05 18:39:25 +00002106 BtShared *pBt, /* The btree */
2107 Pgno pgno, /* Number of the page to fetch */
2108 MemPage **ppPage, /* Return the page in this parameter */
drhb00fc3b2013-08-21 23:42:32 +00002109 int flags /* PAGER_GET_NOCONTENT or PAGER_GET_READONLY */
drh16a9b832007-05-05 18:39:25 +00002110){
drh3aac2dd2004-04-26 14:10:20 +00002111 int rc;
danielk19773b8a05f2007-03-19 17:44:26 +00002112 DbPage *pDbPage;
2113
drhb00fc3b2013-08-21 23:42:32 +00002114 assert( flags==0 || flags==PAGER_GET_NOCONTENT || flags==PAGER_GET_READONLY );
drh1fee73e2007-08-29 04:00:57 +00002115 assert( sqlite3_mutex_held(pBt->mutex) );
drh9584f582015-11-04 20:22:37 +00002116 rc = sqlite3PagerGet(pBt->pPager, pgno, (DbPage**)&pDbPage, flags);
drh3aac2dd2004-04-26 14:10:20 +00002117 if( rc ) return rc;
drh897a8202008-09-18 01:08:15 +00002118 *ppPage = btreePageFromDbPage(pDbPage, pgno, pBt);
drh3aac2dd2004-04-26 14:10:20 +00002119 return SQLITE_OK;
2120}
2121
2122/*
danielk1977bea2a942009-01-20 17:06:27 +00002123** Retrieve a page from the pager cache. If the requested page is not
2124** already in the pager cache return NULL. Initialize the MemPage.pBt and
2125** MemPage.aData elements if needed.
2126*/
2127static MemPage *btreePageLookup(BtShared *pBt, Pgno pgno){
2128 DbPage *pDbPage;
2129 assert( sqlite3_mutex_held(pBt->mutex) );
2130 pDbPage = sqlite3PagerLookup(pBt->pPager, pgno);
2131 if( pDbPage ){
2132 return btreePageFromDbPage(pDbPage, pgno, pBt);
2133 }
2134 return 0;
2135}
2136
2137/*
danielk197789d40042008-11-17 14:20:56 +00002138** Return the size of the database file in pages. If there is any kind of
2139** error, return ((unsigned int)-1).
danielk197767fd7a92008-09-10 17:53:35 +00002140*/
drhb1299152010-03-30 22:58:33 +00002141static Pgno btreePagecount(BtShared *pBt){
drh406dfcb2020-01-07 18:10:01 +00002142 return pBt->nPage;
drhb1299152010-03-30 22:58:33 +00002143}
drh584e8b72020-07-22 17:12:59 +00002144Pgno sqlite3BtreeLastPage(Btree *p){
drhb1299152010-03-30 22:58:33 +00002145 assert( sqlite3BtreeHoldsMutex(p) );
drh584e8b72020-07-22 17:12:59 +00002146 return btreePagecount(p->pBt);
danielk197767fd7a92008-09-10 17:53:35 +00002147}
2148
2149/*
drh28f58dd2015-06-27 19:45:03 +00002150** Get a page from the pager and initialize it.
danielk197789bc4bc2009-07-21 19:25:24 +00002151**
drh15a00212015-06-27 20:55:00 +00002152** If pCur!=0 then the page is being fetched as part of a moveToChild()
2153** call. Do additional sanity checking on the page in this case.
2154** And if the fetch fails, this routine must decrement pCur->iPage.
drh28f58dd2015-06-27 19:45:03 +00002155**
2156** The page is fetched as read-write unless pCur is not NULL and is
2157** a read-only cursor.
2158**
2159** If an error occurs, then *ppPage is undefined. It
danielk197789bc4bc2009-07-21 19:25:24 +00002160** may remain unchanged, or it may be set to an invalid value.
drhde647132004-05-07 17:57:49 +00002161*/
2162static int getAndInitPage(
dan11dcd112013-03-15 18:29:18 +00002163 BtShared *pBt, /* The database file */
2164 Pgno pgno, /* Number of the page to get */
2165 MemPage **ppPage, /* Write the page pointer here */
drh28f58dd2015-06-27 19:45:03 +00002166 BtCursor *pCur, /* Cursor to receive the page, or NULL */
2167 int bReadOnly /* True for a read-only page */
drhde647132004-05-07 17:57:49 +00002168){
2169 int rc;
drh28f58dd2015-06-27 19:45:03 +00002170 DbPage *pDbPage;
drh1fee73e2007-08-29 04:00:57 +00002171 assert( sqlite3_mutex_held(pBt->mutex) );
drh352a35a2017-08-15 03:46:47 +00002172 assert( pCur==0 || ppPage==&pCur->pPage );
drh28f58dd2015-06-27 19:45:03 +00002173 assert( pCur==0 || bReadOnly==pCur->curPagerFlags );
drh15a00212015-06-27 20:55:00 +00002174 assert( pCur==0 || pCur->iPage>0 );
danielk197789bc4bc2009-07-21 19:25:24 +00002175
danba3cbf32010-06-30 04:29:03 +00002176 if( pgno>btreePagecount(pBt) ){
2177 rc = SQLITE_CORRUPT_BKPT;
drhb0ea9432019-02-09 21:06:40 +00002178 goto getAndInitPage_error1;
drh28f58dd2015-06-27 19:45:03 +00002179 }
drh9584f582015-11-04 20:22:37 +00002180 rc = sqlite3PagerGet(pBt->pPager, pgno, (DbPage**)&pDbPage, bReadOnly);
drh28f58dd2015-06-27 19:45:03 +00002181 if( rc ){
drhb0ea9432019-02-09 21:06:40 +00002182 goto getAndInitPage_error1;
drh28f58dd2015-06-27 19:45:03 +00002183 }
drh8dd1c252015-11-04 22:31:02 +00002184 *ppPage = (MemPage*)sqlite3PagerGetExtra(pDbPage);
drh28f58dd2015-06-27 19:45:03 +00002185 if( (*ppPage)->isInit==0 ){
drh8dd1c252015-11-04 22:31:02 +00002186 btreePageFromDbPage(pDbPage, pgno, pBt);
drh28f58dd2015-06-27 19:45:03 +00002187 rc = btreeInitPage(*ppPage);
2188 if( rc!=SQLITE_OK ){
drhb0ea9432019-02-09 21:06:40 +00002189 goto getAndInitPage_error2;
danielk197789bc4bc2009-07-21 19:25:24 +00002190 }
drhee696e22004-08-30 16:52:17 +00002191 }
drh8dd1c252015-11-04 22:31:02 +00002192 assert( (*ppPage)->pgno==pgno );
2193 assert( (*ppPage)->aData==sqlite3PagerGetData(pDbPage) );
danba3cbf32010-06-30 04:29:03 +00002194
drh15a00212015-06-27 20:55:00 +00002195 /* If obtaining a child page for a cursor, we must verify that the page is
2196 ** compatible with the root page. */
drh8dd1c252015-11-04 22:31:02 +00002197 if( pCur && ((*ppPage)->nCell<1 || (*ppPage)->intKey!=pCur->curIntKey) ){
drhcc97ca42017-06-07 22:32:59 +00002198 rc = SQLITE_CORRUPT_PGNO(pgno);
drhb0ea9432019-02-09 21:06:40 +00002199 goto getAndInitPage_error2;
drh28f58dd2015-06-27 19:45:03 +00002200 }
drh28f58dd2015-06-27 19:45:03 +00002201 return SQLITE_OK;
2202
drhb0ea9432019-02-09 21:06:40 +00002203getAndInitPage_error2:
2204 releasePage(*ppPage);
2205getAndInitPage_error1:
drh352a35a2017-08-15 03:46:47 +00002206 if( pCur ){
2207 pCur->iPage--;
2208 pCur->pPage = pCur->apPage[pCur->iPage];
2209 }
danba3cbf32010-06-30 04:29:03 +00002210 testcase( pgno==0 );
2211 assert( pgno!=0 || rc==SQLITE_CORRUPT );
drhde647132004-05-07 17:57:49 +00002212 return rc;
2213}
2214
2215/*
drh3aac2dd2004-04-26 14:10:20 +00002216** Release a MemPage. This should be called once for each prior
danielk197730548662009-07-09 05:07:37 +00002217** call to btreeGetPage.
drh3908fe92017-09-01 14:50:19 +00002218**
2219** Page1 is a special case and must be released using releasePageOne().
drh3aac2dd2004-04-26 14:10:20 +00002220*/
drhbbf0f862015-06-27 14:59:26 +00002221static void releasePageNotNull(MemPage *pPage){
2222 assert( pPage->aData );
2223 assert( pPage->pBt );
2224 assert( pPage->pDbPage!=0 );
2225 assert( sqlite3PagerGetExtra(pPage->pDbPage) == (void*)pPage );
2226 assert( sqlite3PagerGetData(pPage->pDbPage)==pPage->aData );
2227 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
2228 sqlite3PagerUnrefNotNull(pPage->pDbPage);
drh3aac2dd2004-04-26 14:10:20 +00002229}
drh3aac2dd2004-04-26 14:10:20 +00002230static void releasePage(MemPage *pPage){
drhbbf0f862015-06-27 14:59:26 +00002231 if( pPage ) releasePageNotNull(pPage);
drh3aac2dd2004-04-26 14:10:20 +00002232}
drh3908fe92017-09-01 14:50:19 +00002233static void releasePageOne(MemPage *pPage){
2234 assert( pPage!=0 );
2235 assert( pPage->aData );
2236 assert( pPage->pBt );
2237 assert( pPage->pDbPage!=0 );
2238 assert( sqlite3PagerGetExtra(pPage->pDbPage) == (void*)pPage );
2239 assert( sqlite3PagerGetData(pPage->pDbPage)==pPage->aData );
2240 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
2241 sqlite3PagerUnrefPageOne(pPage->pDbPage);
2242}
drh3aac2dd2004-04-26 14:10:20 +00002243
2244/*
drh7e8c6f12015-05-28 03:28:27 +00002245** Get an unused page.
2246**
2247** This works just like btreeGetPage() with the addition:
2248**
2249** * If the page is already in use for some other purpose, immediately
2250** release it and return an SQLITE_CURRUPT error.
2251** * Make sure the isInit flag is clear
2252*/
2253static int btreeGetUnusedPage(
2254 BtShared *pBt, /* The btree */
2255 Pgno pgno, /* Number of the page to fetch */
2256 MemPage **ppPage, /* Return the page in this parameter */
2257 int flags /* PAGER_GET_NOCONTENT or PAGER_GET_READONLY */
2258){
2259 int rc = btreeGetPage(pBt, pgno, ppPage, flags);
2260 if( rc==SQLITE_OK ){
2261 if( sqlite3PagerPageRefcount((*ppPage)->pDbPage)>1 ){
2262 releasePage(*ppPage);
2263 *ppPage = 0;
2264 return SQLITE_CORRUPT_BKPT;
2265 }
2266 (*ppPage)->isInit = 0;
2267 }else{
2268 *ppPage = 0;
2269 }
2270 return rc;
2271}
2272
drha059ad02001-04-17 20:09:11 +00002273
2274/*
drha6abd042004-06-09 17:37:22 +00002275** During a rollback, when the pager reloads information into the cache
2276** so that the cache is restored to its original state at the start of
2277** the transaction, for each page restored this routine is called.
2278**
2279** This routine needs to reset the extra data section at the end of the
2280** page to agree with the restored data.
2281*/
danielk1977eaa06f62008-09-18 17:34:44 +00002282static void pageReinit(DbPage *pData){
drh07d183d2005-05-01 22:52:42 +00002283 MemPage *pPage;
danielk19773b8a05f2007-03-19 17:44:26 +00002284 pPage = (MemPage *)sqlite3PagerGetExtra(pData);
danielk1977d217e6f2009-04-01 17:13:51 +00002285 assert( sqlite3PagerPageRefcount(pData)>0 );
danielk197771d5d2c2008-09-29 11:49:47 +00002286 if( pPage->isInit ){
drh1fee73e2007-08-29 04:00:57 +00002287 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drha6abd042004-06-09 17:37:22 +00002288 pPage->isInit = 0;
danielk1977d217e6f2009-04-01 17:13:51 +00002289 if( sqlite3PagerPageRefcount(pData)>1 ){
drh5e8d8872009-03-30 17:19:48 +00002290 /* pPage might not be a btree page; it might be an overflow page
2291 ** or ptrmap page or a free page. In those cases, the following
danielk197730548662009-07-09 05:07:37 +00002292 ** call to btreeInitPage() will likely return SQLITE_CORRUPT.
drh5e8d8872009-03-30 17:19:48 +00002293 ** But no harm is done by this. And it is very important that
danielk197730548662009-07-09 05:07:37 +00002294 ** btreeInitPage() be called on every btree page so we make
drh5e8d8872009-03-30 17:19:48 +00002295 ** the call for every page that comes in for re-initing. */
danielk197730548662009-07-09 05:07:37 +00002296 btreeInitPage(pPage);
danielk197771d5d2c2008-09-29 11:49:47 +00002297 }
drha6abd042004-06-09 17:37:22 +00002298 }
2299}
2300
2301/*
drhe5fe6902007-12-07 18:55:28 +00002302** Invoke the busy handler for a btree.
2303*/
danielk19771ceedd32008-11-19 10:22:33 +00002304static int btreeInvokeBusyHandler(void *pArg){
drhe5fe6902007-12-07 18:55:28 +00002305 BtShared *pBt = (BtShared*)pArg;
2306 assert( pBt->db );
2307 assert( sqlite3_mutex_held(pBt->db->mutex) );
drh783e1592020-05-06 20:55:38 +00002308 return sqlite3InvokeBusyHandler(&pBt->db->busyHandler);
drhe5fe6902007-12-07 18:55:28 +00002309}
2310
2311/*
drhad3e0102004-09-03 23:32:18 +00002312** Open a database file.
2313**
drh382c0242001-10-06 16:33:02 +00002314** zFilename is the name of the database file. If zFilename is NULL
drh75c014c2010-08-30 15:02:28 +00002315** then an ephemeral database is created. The ephemeral database might
2316** be exclusively in memory, or it might use a disk-based memory cache.
2317** Either way, the ephemeral database will be automatically deleted
2318** when sqlite3BtreeClose() is called.
2319**
drhe53831d2007-08-17 01:14:38 +00002320** If zFilename is ":memory:" then an in-memory database is created
2321** that is automatically destroyed when it is closed.
drhc47fd8e2009-04-30 13:30:32 +00002322**
drh33f111d2012-01-17 15:29:14 +00002323** The "flags" parameter is a bitmask that might contain bits like
2324** BTREE_OMIT_JOURNAL and/or BTREE_MEMORY.
drh75c014c2010-08-30 15:02:28 +00002325**
drhc47fd8e2009-04-30 13:30:32 +00002326** If the database is already opened in the same database connection
2327** and we are in shared cache mode, then the open will fail with an
2328** SQLITE_CONSTRAINT error. We cannot allow two or more BtShared
2329** objects in the same database connection since doing so will lead
2330** to problems with locking.
drha059ad02001-04-17 20:09:11 +00002331*/
drh23e11ca2004-05-04 17:27:28 +00002332int sqlite3BtreeOpen(
dan3a6d8ae2011-04-23 15:54:54 +00002333 sqlite3_vfs *pVfs, /* VFS to use for this b-tree */
drh3aac2dd2004-04-26 14:10:20 +00002334 const char *zFilename, /* Name of the file containing the BTree database */
drhe5fe6902007-12-07 18:55:28 +00002335 sqlite3 *db, /* Associated database handle */
drh3aac2dd2004-04-26 14:10:20 +00002336 Btree **ppBtree, /* Pointer to new Btree object written here */
drh33f4e022007-09-03 15:19:34 +00002337 int flags, /* Options */
2338 int vfsFlags /* Flags passed through to sqlite3_vfs.xOpen() */
drh6019e162001-07-02 17:51:45 +00002339){
drh7555d8e2009-03-20 13:15:30 +00002340 BtShared *pBt = 0; /* Shared part of btree structure */
2341 Btree *p; /* Handle to return */
2342 sqlite3_mutex *mutexOpen = 0; /* Prevents a race condition. Ticket #3537 */
2343 int rc = SQLITE_OK; /* Result code from this function */
2344 u8 nReserve; /* Byte of unused space on each page */
2345 unsigned char zDbHeader[100]; /* Database header content */
danielk1977aef0bf62005-12-30 16:28:01 +00002346
drh75c014c2010-08-30 15:02:28 +00002347 /* True if opening an ephemeral, temporary database */
2348 const int isTempDb = zFilename==0 || zFilename[0]==0;
2349
danielk1977aef0bf62005-12-30 16:28:01 +00002350 /* Set the variable isMemdb to true for an in-memory database, or
drhb0a7c9c2010-12-06 21:09:59 +00002351 ** false for a file-based database.
danielk1977aef0bf62005-12-30 16:28:01 +00002352 */
drhb0a7c9c2010-12-06 21:09:59 +00002353#ifdef SQLITE_OMIT_MEMORYDB
2354 const int isMemdb = 0;
2355#else
2356 const int isMemdb = (zFilename && strcmp(zFilename, ":memory:")==0)
drh9c67b2a2012-05-28 13:58:00 +00002357 || (isTempDb && sqlite3TempInMemory(db))
2358 || (vfsFlags & SQLITE_OPEN_MEMORY)!=0;
danielk1977aef0bf62005-12-30 16:28:01 +00002359#endif
2360
drhe5fe6902007-12-07 18:55:28 +00002361 assert( db!=0 );
dan3a6d8ae2011-04-23 15:54:54 +00002362 assert( pVfs!=0 );
drhe5fe6902007-12-07 18:55:28 +00002363 assert( sqlite3_mutex_held(db->mutex) );
drhd4187c72010-08-30 22:15:45 +00002364 assert( (flags&0xff)==flags ); /* flags fit in 8 bits */
2365
2366 /* Only a BTREE_SINGLE database can be BTREE_UNORDERED */
2367 assert( (flags & BTREE_UNORDERED)==0 || (flags & BTREE_SINGLE)!=0 );
2368
2369 /* A BTREE_SINGLE database is always a temporary and/or ephemeral */
2370 assert( (flags & BTREE_SINGLE)==0 || isTempDb );
drh153c62c2007-08-24 03:51:33 +00002371
drh75c014c2010-08-30 15:02:28 +00002372 if( isMemdb ){
2373 flags |= BTREE_MEMORY;
2374 }
2375 if( (vfsFlags & SQLITE_OPEN_MAIN_DB)!=0 && (isMemdb || isTempDb) ){
2376 vfsFlags = (vfsFlags & ~SQLITE_OPEN_MAIN_DB) | SQLITE_OPEN_TEMP_DB;
2377 }
drh17435752007-08-16 04:30:38 +00002378 p = sqlite3MallocZero(sizeof(Btree));
danielk1977aef0bf62005-12-30 16:28:01 +00002379 if( !p ){
mistachkinfad30392016-02-13 23:43:46 +00002380 return SQLITE_NOMEM_BKPT;
danielk1977aef0bf62005-12-30 16:28:01 +00002381 }
2382 p->inTrans = TRANS_NONE;
drhe5fe6902007-12-07 18:55:28 +00002383 p->db = db;
danielk1977602b4662009-07-02 07:47:33 +00002384#ifndef SQLITE_OMIT_SHARED_CACHE
2385 p->lock.pBtree = p;
2386 p->lock.iTable = 1;
2387#endif
danielk1977aef0bf62005-12-30 16:28:01 +00002388
drh198bf392006-01-06 21:52:49 +00002389#if !defined(SQLITE_OMIT_SHARED_CACHE) && !defined(SQLITE_OMIT_DISKIO)
drhe53831d2007-08-17 01:14:38 +00002390 /*
2391 ** If this Btree is a candidate for shared cache, try to find an
2392 ** existing BtShared object that we can share with
2393 */
drh4ab9d252012-05-26 20:08:49 +00002394 if( isTempDb==0 && (isMemdb==0 || (vfsFlags&SQLITE_OPEN_URI)!=0) ){
drhf1f12682009-09-09 14:17:52 +00002395 if( vfsFlags & SQLITE_OPEN_SHAREDCACHE ){
drh6b5f0eb2015-03-31 16:33:08 +00002396 int nFilename = sqlite3Strlen30(zFilename)+1;
danielk1977adfb9b02007-09-17 07:02:56 +00002397 int nFullPathname = pVfs->mxPathname+1;
drh6b5f0eb2015-03-31 16:33:08 +00002398 char *zFullPathname = sqlite3Malloc(MAX(nFullPathname,nFilename));
drh30ddce62011-10-15 00:16:30 +00002399 MUTEX_LOGIC( sqlite3_mutex *mutexShared; )
drh6b5f0eb2015-03-31 16:33:08 +00002400
drhff0587c2007-08-29 17:43:19 +00002401 p->sharable = 1;
drhff0587c2007-08-29 17:43:19 +00002402 if( !zFullPathname ){
2403 sqlite3_free(p);
mistachkinfad30392016-02-13 23:43:46 +00002404 return SQLITE_NOMEM_BKPT;
drhff0587c2007-08-29 17:43:19 +00002405 }
drhafc8b7f2012-05-26 18:06:38 +00002406 if( isMemdb ){
drh6b5f0eb2015-03-31 16:33:08 +00002407 memcpy(zFullPathname, zFilename, nFilename);
drhafc8b7f2012-05-26 18:06:38 +00002408 }else{
2409 rc = sqlite3OsFullPathname(pVfs, zFilename,
2410 nFullPathname, zFullPathname);
2411 if( rc ){
drhc398c652019-11-22 00:42:01 +00002412 if( rc==SQLITE_OK_SYMLINK ){
2413 rc = SQLITE_OK;
2414 }else{
2415 sqlite3_free(zFullPathname);
2416 sqlite3_free(p);
2417 return rc;
2418 }
drhafc8b7f2012-05-26 18:06:38 +00002419 }
drh070ad6b2011-11-17 11:43:19 +00002420 }
drh30ddce62011-10-15 00:16:30 +00002421#if SQLITE_THREADSAFE
drh7555d8e2009-03-20 13:15:30 +00002422 mutexOpen = sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_OPEN);
2423 sqlite3_mutex_enter(mutexOpen);
drhccb21132020-06-19 11:34:57 +00002424 mutexShared = sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_MAIN);
drhff0587c2007-08-29 17:43:19 +00002425 sqlite3_mutex_enter(mutexShared);
drh30ddce62011-10-15 00:16:30 +00002426#endif
drh78f82d12008-09-02 00:52:52 +00002427 for(pBt=GLOBAL(BtShared*,sqlite3SharedCacheList); pBt; pBt=pBt->pNext){
drhff0587c2007-08-29 17:43:19 +00002428 assert( pBt->nRef>0 );
drhd4e0bb02012-05-27 01:19:04 +00002429 if( 0==strcmp(zFullPathname, sqlite3PagerFilename(pBt->pPager, 0))
drhff0587c2007-08-29 17:43:19 +00002430 && sqlite3PagerVfs(pBt->pPager)==pVfs ){
drhc47fd8e2009-04-30 13:30:32 +00002431 int iDb;
2432 for(iDb=db->nDb-1; iDb>=0; iDb--){
2433 Btree *pExisting = db->aDb[iDb].pBt;
2434 if( pExisting && pExisting->pBt==pBt ){
2435 sqlite3_mutex_leave(mutexShared);
2436 sqlite3_mutex_leave(mutexOpen);
2437 sqlite3_free(zFullPathname);
2438 sqlite3_free(p);
2439 return SQLITE_CONSTRAINT;
2440 }
2441 }
drhff0587c2007-08-29 17:43:19 +00002442 p->pBt = pBt;
2443 pBt->nRef++;
2444 break;
2445 }
2446 }
2447 sqlite3_mutex_leave(mutexShared);
2448 sqlite3_free(zFullPathname);
danielk1977aef0bf62005-12-30 16:28:01 +00002449 }
drhff0587c2007-08-29 17:43:19 +00002450#ifdef SQLITE_DEBUG
2451 else{
2452 /* In debug mode, we mark all persistent databases as sharable
2453 ** even when they are not. This exercises the locking code and
2454 ** gives more opportunity for asserts(sqlite3_mutex_held())
2455 ** statements to find locking problems.
2456 */
2457 p->sharable = 1;
2458 }
2459#endif
danielk1977aef0bf62005-12-30 16:28:01 +00002460 }
2461#endif
drha059ad02001-04-17 20:09:11 +00002462 if( pBt==0 ){
drhe53831d2007-08-17 01:14:38 +00002463 /*
2464 ** The following asserts make sure that structures used by the btree are
2465 ** the right size. This is to guard against size changes that result
2466 ** when compiling on a different architecture.
danielk197703aded42004-11-22 05:26:27 +00002467 */
drh062cf272015-03-23 19:03:51 +00002468 assert( sizeof(i64)==8 );
2469 assert( sizeof(u64)==8 );
drhe53831d2007-08-17 01:14:38 +00002470 assert( sizeof(u32)==4 );
2471 assert( sizeof(u16)==2 );
2472 assert( sizeof(Pgno)==4 );
2473
2474 pBt = sqlite3MallocZero( sizeof(*pBt) );
2475 if( pBt==0 ){
mistachkinfad30392016-02-13 23:43:46 +00002476 rc = SQLITE_NOMEM_BKPT;
drhe53831d2007-08-17 01:14:38 +00002477 goto btree_open_out;
2478 }
danielk197771d5d2c2008-09-29 11:49:47 +00002479 rc = sqlite3PagerOpen(pVfs, &pBt->pPager, zFilename,
drha2ee5892016-12-09 16:02:00 +00002480 sizeof(MemPage), flags, vfsFlags, pageReinit);
drhe53831d2007-08-17 01:14:38 +00002481 if( rc==SQLITE_OK ){
drh9b4c59f2013-04-15 17:03:42 +00002482 sqlite3PagerSetMmapLimit(pBt->pPager, db->szMmap);
drhe53831d2007-08-17 01:14:38 +00002483 rc = sqlite3PagerReadFileheader(pBt->pPager,sizeof(zDbHeader),zDbHeader);
2484 }
2485 if( rc!=SQLITE_OK ){
2486 goto btree_open_out;
2487 }
shanehbd2aaf92010-09-01 02:38:21 +00002488 pBt->openFlags = (u8)flags;
danielk19772a50ff02009-04-10 09:47:06 +00002489 pBt->db = db;
drh80262892018-03-26 16:37:53 +00002490 sqlite3PagerSetBusyHandler(pBt->pPager, btreeInvokeBusyHandler, pBt);
drhe53831d2007-08-17 01:14:38 +00002491 p->pBt = pBt;
2492
drhe53831d2007-08-17 01:14:38 +00002493 pBt->pCursor = 0;
2494 pBt->pPage1 = 0;
drhc9166342012-01-05 23:32:06 +00002495 if( sqlite3PagerIsreadonly(pBt->pPager) ) pBt->btsFlags |= BTS_READ_ONLY;
drha5907a82017-06-19 11:44:22 +00002496#if defined(SQLITE_SECURE_DELETE)
drhc9166342012-01-05 23:32:06 +00002497 pBt->btsFlags |= BTS_SECURE_DELETE;
drha5907a82017-06-19 11:44:22 +00002498#elif defined(SQLITE_FAST_SECURE_DELETE)
2499 pBt->btsFlags |= BTS_OVERWRITE;
drh5b47efa2010-02-12 18:18:39 +00002500#endif
drh113762a2014-11-19 16:36:25 +00002501 /* EVIDENCE-OF: R-51873-39618 The page size for a database file is
2502 ** determined by the 2-byte integer located at an offset of 16 bytes from
2503 ** the beginning of the database file. */
drhb2eced52010-08-12 02:41:12 +00002504 pBt->pageSize = (zDbHeader[16]<<8) | (zDbHeader[17]<<16);
drhe53831d2007-08-17 01:14:38 +00002505 if( pBt->pageSize<512 || pBt->pageSize>SQLITE_MAX_PAGE_SIZE
2506 || ((pBt->pageSize-1)&pBt->pageSize)!=0 ){
danielk1977a1644fd2007-08-29 12:31:25 +00002507 pBt->pageSize = 0;
drhe53831d2007-08-17 01:14:38 +00002508#ifndef SQLITE_OMIT_AUTOVACUUM
2509 /* If the magic name ":memory:" will create an in-memory database, then
2510 ** leave the autoVacuum mode at 0 (do not auto-vacuum), even if
2511 ** SQLITE_DEFAULT_AUTOVACUUM is true. On the other hand, if
2512 ** SQLITE_OMIT_MEMORYDB has been defined, then ":memory:" is just a
2513 ** regular file-name. In this case the auto-vacuum applies as per normal.
2514 */
2515 if( zFilename && !isMemdb ){
2516 pBt->autoVacuum = (SQLITE_DEFAULT_AUTOVACUUM ? 1 : 0);
2517 pBt->incrVacuum = (SQLITE_DEFAULT_AUTOVACUUM==2 ? 1 : 0);
2518 }
2519#endif
2520 nReserve = 0;
2521 }else{
drh113762a2014-11-19 16:36:25 +00002522 /* EVIDENCE-OF: R-37497-42412 The size of the reserved region is
2523 ** determined by the one-byte unsigned integer found at an offset of 20
2524 ** into the database file header. */
drhe53831d2007-08-17 01:14:38 +00002525 nReserve = zDbHeader[20];
drhc9166342012-01-05 23:32:06 +00002526 pBt->btsFlags |= BTS_PAGESIZE_FIXED;
drhe53831d2007-08-17 01:14:38 +00002527#ifndef SQLITE_OMIT_AUTOVACUUM
2528 pBt->autoVacuum = (get4byte(&zDbHeader[36 + 4*4])?1:0);
2529 pBt->incrVacuum = (get4byte(&zDbHeader[36 + 7*4])?1:0);
2530#endif
2531 }
drhfa9601a2009-06-18 17:22:39 +00002532 rc = sqlite3PagerSetPagesize(pBt->pPager, &pBt->pageSize, nReserve);
drhc0b61812009-04-30 01:22:41 +00002533 if( rc ) goto btree_open_out;
drhe53831d2007-08-17 01:14:38 +00002534 pBt->usableSize = pBt->pageSize - nReserve;
2535 assert( (pBt->pageSize & 7)==0 ); /* 8-byte alignment of pageSize */
drhe53831d2007-08-17 01:14:38 +00002536
2537#if !defined(SQLITE_OMIT_SHARED_CACHE) && !defined(SQLITE_OMIT_DISKIO)
2538 /* Add the new BtShared object to the linked list sharable BtShareds.
2539 */
dan272989b2016-07-06 10:12:02 +00002540 pBt->nRef = 1;
drhe53831d2007-08-17 01:14:38 +00002541 if( p->sharable ){
drh30ddce62011-10-15 00:16:30 +00002542 MUTEX_LOGIC( sqlite3_mutex *mutexShared; )
drhccb21132020-06-19 11:34:57 +00002543 MUTEX_LOGIC( mutexShared = sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_MAIN);)
danielk1977075c23a2008-09-01 18:34:20 +00002544 if( SQLITE_THREADSAFE && sqlite3GlobalConfig.bCoreMutex ){
danielk197759f8c082008-06-18 17:09:10 +00002545 pBt->mutex = sqlite3MutexAlloc(SQLITE_MUTEX_FAST);
drh3285db22007-09-03 22:00:39 +00002546 if( pBt->mutex==0 ){
mistachkinfad30392016-02-13 23:43:46 +00002547 rc = SQLITE_NOMEM_BKPT;
drh3285db22007-09-03 22:00:39 +00002548 goto btree_open_out;
2549 }
drhff0587c2007-08-29 17:43:19 +00002550 }
drhe53831d2007-08-17 01:14:38 +00002551 sqlite3_mutex_enter(mutexShared);
drh78f82d12008-09-02 00:52:52 +00002552 pBt->pNext = GLOBAL(BtShared*,sqlite3SharedCacheList);
2553 GLOBAL(BtShared*,sqlite3SharedCacheList) = pBt;
drhe53831d2007-08-17 01:14:38 +00002554 sqlite3_mutex_leave(mutexShared);
danielk1977951af802004-11-05 15:45:09 +00002555 }
drheee46cf2004-11-06 00:02:48 +00002556#endif
drh90f5ecb2004-07-22 01:19:35 +00002557 }
danielk1977aef0bf62005-12-30 16:28:01 +00002558
drhcfed7bc2006-03-13 14:28:05 +00002559#if !defined(SQLITE_OMIT_SHARED_CACHE) && !defined(SQLITE_OMIT_DISKIO)
drhe53831d2007-08-17 01:14:38 +00002560 /* If the new Btree uses a sharable pBtShared, then link the new
2561 ** Btree into the list of all sharable Btrees for the same connection.
drhabddb0c2007-08-20 13:14:28 +00002562 ** The list is kept in ascending order by pBt address.
danielk197754f01982006-01-18 15:25:17 +00002563 */
drhe53831d2007-08-17 01:14:38 +00002564 if( p->sharable ){
2565 int i;
2566 Btree *pSib;
drhe5fe6902007-12-07 18:55:28 +00002567 for(i=0; i<db->nDb; i++){
2568 if( (pSib = db->aDb[i].pBt)!=0 && pSib->sharable ){
drhe53831d2007-08-17 01:14:38 +00002569 while( pSib->pPrev ){ pSib = pSib->pPrev; }
drh3bfa7e82016-03-22 14:37:59 +00002570 if( (uptr)p->pBt<(uptr)pSib->pBt ){
drhe53831d2007-08-17 01:14:38 +00002571 p->pNext = pSib;
2572 p->pPrev = 0;
2573 pSib->pPrev = p;
2574 }else{
drh3bfa7e82016-03-22 14:37:59 +00002575 while( pSib->pNext && (uptr)pSib->pNext->pBt<(uptr)p->pBt ){
drhe53831d2007-08-17 01:14:38 +00002576 pSib = pSib->pNext;
2577 }
2578 p->pNext = pSib->pNext;
2579 p->pPrev = pSib;
2580 if( p->pNext ){
2581 p->pNext->pPrev = p;
2582 }
2583 pSib->pNext = p;
2584 }
2585 break;
2586 }
2587 }
danielk1977aef0bf62005-12-30 16:28:01 +00002588 }
danielk1977aef0bf62005-12-30 16:28:01 +00002589#endif
2590 *ppBtree = p;
danielk1977dddbcdc2007-04-26 14:42:34 +00002591
2592btree_open_out:
2593 if( rc!=SQLITE_OK ){
2594 if( pBt && pBt->pPager ){
dan7fb89902016-08-12 16:21:15 +00002595 sqlite3PagerClose(pBt->pPager, 0);
danielk1977dddbcdc2007-04-26 14:42:34 +00002596 }
drh17435752007-08-16 04:30:38 +00002597 sqlite3_free(pBt);
2598 sqlite3_free(p);
danielk1977dddbcdc2007-04-26 14:42:34 +00002599 *ppBtree = 0;
drh75c014c2010-08-30 15:02:28 +00002600 }else{
dan0f5a1862016-08-13 14:30:23 +00002601 sqlite3_file *pFile;
2602
drh75c014c2010-08-30 15:02:28 +00002603 /* If the B-Tree was successfully opened, set the pager-cache size to the
2604 ** default value. Except, when opening on an existing shared pager-cache,
2605 ** do not change the pager-cache size.
2606 */
2607 if( sqlite3BtreeSchema(p, 0, 0)==0 ){
2608 sqlite3PagerSetCachesize(p->pBt->pPager, SQLITE_DEFAULT_CACHE_SIZE);
2609 }
dan0f5a1862016-08-13 14:30:23 +00002610
2611 pFile = sqlite3PagerFile(pBt->pPager);
2612 if( pFile->pMethods ){
2613 sqlite3OsFileControlHint(pFile, SQLITE_FCNTL_PDB, (void*)&pBt->db);
2614 }
danielk1977dddbcdc2007-04-26 14:42:34 +00002615 }
drh7555d8e2009-03-20 13:15:30 +00002616 if( mutexOpen ){
2617 assert( sqlite3_mutex_held(mutexOpen) );
2618 sqlite3_mutex_leave(mutexOpen);
2619 }
dan272989b2016-07-06 10:12:02 +00002620 assert( rc!=SQLITE_OK || sqlite3BtreeConnectionCount(*ppBtree)>0 );
danielk1977dddbcdc2007-04-26 14:42:34 +00002621 return rc;
drha059ad02001-04-17 20:09:11 +00002622}
2623
2624/*
drhe53831d2007-08-17 01:14:38 +00002625** Decrement the BtShared.nRef counter. When it reaches zero,
2626** remove the BtShared structure from the sharing list. Return
2627** true if the BtShared.nRef counter reaches zero and return
2628** false if it is still positive.
2629*/
2630static int removeFromSharingList(BtShared *pBt){
2631#ifndef SQLITE_OMIT_SHARED_CACHE
drh067b92b2020-06-19 15:24:12 +00002632 MUTEX_LOGIC( sqlite3_mutex *pMainMtx; )
drhe53831d2007-08-17 01:14:38 +00002633 BtShared *pList;
2634 int removed = 0;
2635
drhd677b3d2007-08-20 22:48:41 +00002636 assert( sqlite3_mutex_notheld(pBt->mutex) );
drh067b92b2020-06-19 15:24:12 +00002637 MUTEX_LOGIC( pMainMtx = sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_MAIN); )
2638 sqlite3_mutex_enter(pMainMtx);
drhe53831d2007-08-17 01:14:38 +00002639 pBt->nRef--;
2640 if( pBt->nRef<=0 ){
drh78f82d12008-09-02 00:52:52 +00002641 if( GLOBAL(BtShared*,sqlite3SharedCacheList)==pBt ){
2642 GLOBAL(BtShared*,sqlite3SharedCacheList) = pBt->pNext;
drhe53831d2007-08-17 01:14:38 +00002643 }else{
drh78f82d12008-09-02 00:52:52 +00002644 pList = GLOBAL(BtShared*,sqlite3SharedCacheList);
drh34004ce2008-07-11 16:15:17 +00002645 while( ALWAYS(pList) && pList->pNext!=pBt ){
drhe53831d2007-08-17 01:14:38 +00002646 pList=pList->pNext;
2647 }
drh34004ce2008-07-11 16:15:17 +00002648 if( ALWAYS(pList) ){
drhe53831d2007-08-17 01:14:38 +00002649 pList->pNext = pBt->pNext;
2650 }
2651 }
drh3285db22007-09-03 22:00:39 +00002652 if( SQLITE_THREADSAFE ){
2653 sqlite3_mutex_free(pBt->mutex);
2654 }
drhe53831d2007-08-17 01:14:38 +00002655 removed = 1;
2656 }
drh067b92b2020-06-19 15:24:12 +00002657 sqlite3_mutex_leave(pMainMtx);
drhe53831d2007-08-17 01:14:38 +00002658 return removed;
2659#else
2660 return 1;
2661#endif
2662}
2663
2664/*
drhf7141992008-06-19 00:16:08 +00002665** Make sure pBt->pTmpSpace points to an allocation of
drh92787cf2014-10-15 11:55:51 +00002666** MX_CELL_SIZE(pBt) bytes with a 4-byte prefix for a left-child
2667** pointer.
drhf7141992008-06-19 00:16:08 +00002668*/
2669static void allocateTempSpace(BtShared *pBt){
2670 if( !pBt->pTmpSpace ){
2671 pBt->pTmpSpace = sqlite3PageMalloc( pBt->pageSize );
dan14285b72013-10-16 11:39:07 +00002672
2673 /* One of the uses of pBt->pTmpSpace is to format cells before
2674 ** inserting them into a leaf page (function fillInCell()). If
2675 ** a cell is less than 4 bytes in size, it is rounded up to 4 bytes
2676 ** by the various routines that manipulate binary cells. Which
2677 ** can mean that fillInCell() only initializes the first 2 or 3
2678 ** bytes of pTmpSpace, but that the first 4 bytes are copied from
2679 ** it into a database page. This is not actually a problem, but it
2680 ** does cause a valgrind error when the 1 or 2 bytes of unitialized
2681 ** data is passed to system call write(). So to avoid this error,
drh92787cf2014-10-15 11:55:51 +00002682 ** zero the first 4 bytes of temp space here.
2683 **
2684 ** Also: Provide four bytes of initialized space before the
2685 ** beginning of pTmpSpace as an area available to prepend the
2686 ** left-child pointer to the beginning of a cell.
2687 */
2688 if( pBt->pTmpSpace ){
2689 memset(pBt->pTmpSpace, 0, 8);
2690 pBt->pTmpSpace += 4;
2691 }
drhf7141992008-06-19 00:16:08 +00002692 }
2693}
2694
2695/*
2696** Free the pBt->pTmpSpace allocation
2697*/
2698static void freeTempSpace(BtShared *pBt){
drh92787cf2014-10-15 11:55:51 +00002699 if( pBt->pTmpSpace ){
2700 pBt->pTmpSpace -= 4;
2701 sqlite3PageFree(pBt->pTmpSpace);
2702 pBt->pTmpSpace = 0;
2703 }
drhf7141992008-06-19 00:16:08 +00002704}
2705
2706/*
drha059ad02001-04-17 20:09:11 +00002707** Close an open database and invalidate all cursors.
2708*/
danielk1977aef0bf62005-12-30 16:28:01 +00002709int sqlite3BtreeClose(Btree *p){
danielk1977aef0bf62005-12-30 16:28:01 +00002710 BtShared *pBt = p->pBt;
2711 BtCursor *pCur;
2712
danielk1977aef0bf62005-12-30 16:28:01 +00002713 /* Close all cursors opened via this handle. */
drhe5fe6902007-12-07 18:55:28 +00002714 assert( sqlite3_mutex_held(p->db->mutex) );
drhe53831d2007-08-17 01:14:38 +00002715 sqlite3BtreeEnter(p);
danielk1977aef0bf62005-12-30 16:28:01 +00002716 pCur = pBt->pCursor;
2717 while( pCur ){
2718 BtCursor *pTmp = pCur;
2719 pCur = pCur->pNext;
2720 if( pTmp->pBtree==p ){
2721 sqlite3BtreeCloseCursor(pTmp);
2722 }
drha059ad02001-04-17 20:09:11 +00002723 }
danielk1977aef0bf62005-12-30 16:28:01 +00002724
danielk19778d34dfd2006-01-24 16:37:57 +00002725 /* Rollback any active transaction and free the handle structure.
2726 ** The call to sqlite3BtreeRollback() drops any table-locks held by
2727 ** this handle.
2728 */
drh47b7fc72014-11-11 01:33:57 +00002729 sqlite3BtreeRollback(p, SQLITE_OK, 0);
drhe53831d2007-08-17 01:14:38 +00002730 sqlite3BtreeLeave(p);
danielk1977aef0bf62005-12-30 16:28:01 +00002731
danielk1977aef0bf62005-12-30 16:28:01 +00002732 /* If there are still other outstanding references to the shared-btree
2733 ** structure, return now. The remainder of this procedure cleans
2734 ** up the shared-btree.
2735 */
drhe53831d2007-08-17 01:14:38 +00002736 assert( p->wantToLock==0 && p->locked==0 );
2737 if( !p->sharable || removeFromSharingList(pBt) ){
2738 /* The pBt is no longer on the sharing list, so we can access
2739 ** it without having to hold the mutex.
2740 **
2741 ** Clean out and delete the BtShared object.
2742 */
2743 assert( !pBt->pCursor );
dan7fb89902016-08-12 16:21:15 +00002744 sqlite3PagerClose(pBt->pPager, p->db);
drhe53831d2007-08-17 01:14:38 +00002745 if( pBt->xFreeSchema && pBt->pSchema ){
2746 pBt->xFreeSchema(pBt->pSchema);
2747 }
drhb9755982010-07-24 16:34:37 +00002748 sqlite3DbFree(0, pBt->pSchema);
drhf7141992008-06-19 00:16:08 +00002749 freeTempSpace(pBt);
drh65bbf292008-06-19 01:03:17 +00002750 sqlite3_free(pBt);
danielk1977aef0bf62005-12-30 16:28:01 +00002751 }
2752
drhe53831d2007-08-17 01:14:38 +00002753#ifndef SQLITE_OMIT_SHARED_CACHE
drhcab5ed72007-08-22 11:41:18 +00002754 assert( p->wantToLock==0 );
2755 assert( p->locked==0 );
2756 if( p->pPrev ) p->pPrev->pNext = p->pNext;
2757 if( p->pNext ) p->pNext->pPrev = p->pPrev;
danielk1977aef0bf62005-12-30 16:28:01 +00002758#endif
2759
drhe53831d2007-08-17 01:14:38 +00002760 sqlite3_free(p);
drha059ad02001-04-17 20:09:11 +00002761 return SQLITE_OK;
2762}
2763
2764/*
drh9b0cf342015-11-12 14:57:19 +00002765** Change the "soft" limit on the number of pages in the cache.
2766** Unused and unmodified pages will be recycled when the number of
2767** pages in the cache exceeds this soft limit. But the size of the
2768** cache is allowed to grow larger than this limit if it contains
2769** dirty pages or pages still in active use.
drhf57b14a2001-09-14 18:54:08 +00002770*/
danielk1977aef0bf62005-12-30 16:28:01 +00002771int sqlite3BtreeSetCacheSize(Btree *p, int mxPage){
2772 BtShared *pBt = p->pBt;
drhe5fe6902007-12-07 18:55:28 +00002773 assert( sqlite3_mutex_held(p->db->mutex) );
drhd677b3d2007-08-20 22:48:41 +00002774 sqlite3BtreeEnter(p);
danielk19773b8a05f2007-03-19 17:44:26 +00002775 sqlite3PagerSetCachesize(pBt->pPager, mxPage);
drhd677b3d2007-08-20 22:48:41 +00002776 sqlite3BtreeLeave(p);
drhf57b14a2001-09-14 18:54:08 +00002777 return SQLITE_OK;
2778}
2779
drh9b0cf342015-11-12 14:57:19 +00002780/*
2781** Change the "spill" limit on the number of pages in the cache.
2782** If the number of pages exceeds this limit during a write transaction,
2783** the pager might attempt to "spill" pages to the journal early in
2784** order to free up memory.
2785**
2786** The value returned is the current spill size. If zero is passed
2787** as an argument, no changes are made to the spill size setting, so
2788** using mxPage of 0 is a way to query the current spill size.
2789*/
2790int sqlite3BtreeSetSpillSize(Btree *p, int mxPage){
2791 BtShared *pBt = p->pBt;
2792 int res;
2793 assert( sqlite3_mutex_held(p->db->mutex) );
2794 sqlite3BtreeEnter(p);
2795 res = sqlite3PagerSetSpillsize(pBt->pPager, mxPage);
2796 sqlite3BtreeLeave(p);
2797 return res;
2798}
2799
drh18c7e402014-03-14 11:46:10 +00002800#if SQLITE_MAX_MMAP_SIZE>0
drhf57b14a2001-09-14 18:54:08 +00002801/*
dan5d8a1372013-03-19 19:28:06 +00002802** Change the limit on the amount of the database file that may be
2803** memory mapped.
2804*/
drh9b4c59f2013-04-15 17:03:42 +00002805int sqlite3BtreeSetMmapLimit(Btree *p, sqlite3_int64 szMmap){
dan5d8a1372013-03-19 19:28:06 +00002806 BtShared *pBt = p->pBt;
2807 assert( sqlite3_mutex_held(p->db->mutex) );
2808 sqlite3BtreeEnter(p);
drh9b4c59f2013-04-15 17:03:42 +00002809 sqlite3PagerSetMmapLimit(pBt->pPager, szMmap);
dan5d8a1372013-03-19 19:28:06 +00002810 sqlite3BtreeLeave(p);
2811 return SQLITE_OK;
2812}
drh18c7e402014-03-14 11:46:10 +00002813#endif /* SQLITE_MAX_MMAP_SIZE>0 */
dan5d8a1372013-03-19 19:28:06 +00002814
2815/*
drh973b6e32003-02-12 14:09:42 +00002816** Change the way data is synced to disk in order to increase or decrease
2817** how well the database resists damage due to OS crashes and power
2818** failures. Level 1 is the same as asynchronous (no syncs() occur and
2819** there is a high probability of damage) Level 2 is the default. There
2820** is a very low but non-zero probability of damage. Level 3 reduces the
2821** probability of damage to near zero but with a write performance reduction.
2822*/
danielk197793758c82005-01-21 08:13:14 +00002823#ifndef SQLITE_OMIT_PAGER_PRAGMAS
drh40c39412013-08-16 20:42:20 +00002824int sqlite3BtreeSetPagerFlags(
drhc97d8462010-11-19 18:23:35 +00002825 Btree *p, /* The btree to set the safety level on */
drh40c39412013-08-16 20:42:20 +00002826 unsigned pgFlags /* Various PAGER_* flags */
drhc97d8462010-11-19 18:23:35 +00002827){
danielk1977aef0bf62005-12-30 16:28:01 +00002828 BtShared *pBt = p->pBt;
drhe5fe6902007-12-07 18:55:28 +00002829 assert( sqlite3_mutex_held(p->db->mutex) );
drhd677b3d2007-08-20 22:48:41 +00002830 sqlite3BtreeEnter(p);
drh40c39412013-08-16 20:42:20 +00002831 sqlite3PagerSetFlags(pBt->pPager, pgFlags);
drhd677b3d2007-08-20 22:48:41 +00002832 sqlite3BtreeLeave(p);
drh973b6e32003-02-12 14:09:42 +00002833 return SQLITE_OK;
2834}
danielk197793758c82005-01-21 08:13:14 +00002835#endif
drh973b6e32003-02-12 14:09:42 +00002836
drh2c8997b2005-08-27 16:36:48 +00002837/*
drh90f5ecb2004-07-22 01:19:35 +00002838** Change the default pages size and the number of reserved bytes per page.
drhce4869f2009-04-02 20:16:58 +00002839** Or, if the page size has already been fixed, return SQLITE_READONLY
2840** without changing anything.
drh06f50212004-11-02 14:24:33 +00002841**
2842** The page size must be a power of 2 between 512 and 65536. If the page
2843** size supplied does not meet this constraint then the page size is not
2844** changed.
2845**
2846** Page sizes are constrained to be a power of two so that the region
2847** of the database file used for locking (beginning at PENDING_BYTE,
2848** the first byte past the 1GB boundary, 0x40000000) needs to occur
2849** at the beginning of a page.
danielk197728129562005-01-11 10:25:06 +00002850**
2851** If parameter nReserve is less than zero, then the number of reserved
2852** bytes per page is left unchanged.
drhce4869f2009-04-02 20:16:58 +00002853**
drhc9166342012-01-05 23:32:06 +00002854** If the iFix!=0 then the BTS_PAGESIZE_FIXED flag is set so that the page size
drhce4869f2009-04-02 20:16:58 +00002855** and autovacuum mode can no longer be changed.
drh90f5ecb2004-07-22 01:19:35 +00002856*/
drhce4869f2009-04-02 20:16:58 +00002857int sqlite3BtreeSetPageSize(Btree *p, int pageSize, int nReserve, int iFix){
danielk1977a1644fd2007-08-29 12:31:25 +00002858 int rc = SQLITE_OK;
drhe937df82020-05-07 01:56:57 +00002859 int x;
danielk1977aef0bf62005-12-30 16:28:01 +00002860 BtShared *pBt = p->pBt;
drhe937df82020-05-07 01:56:57 +00002861 assert( nReserve>=0 && nReserve<=255 );
drhd677b3d2007-08-20 22:48:41 +00002862 sqlite3BtreeEnter(p);
drhe937df82020-05-07 01:56:57 +00002863 pBt->nReserveWanted = nReserve;
2864 x = pBt->pageSize - pBt->usableSize;
2865 if( nReserve<x ) nReserve = x;
drhc9166342012-01-05 23:32:06 +00002866 if( pBt->btsFlags & BTS_PAGESIZE_FIXED ){
drhd677b3d2007-08-20 22:48:41 +00002867 sqlite3BtreeLeave(p);
drh90f5ecb2004-07-22 01:19:35 +00002868 return SQLITE_READONLY;
2869 }
drhf49661a2008-12-10 16:45:50 +00002870 assert( nReserve>=0 && nReserve<=255 );
drh06f50212004-11-02 14:24:33 +00002871 if( pageSize>=512 && pageSize<=SQLITE_MAX_PAGE_SIZE &&
2872 ((pageSize-1)&pageSize)==0 ){
drh07d183d2005-05-01 22:52:42 +00002873 assert( (pageSize & 7)==0 );
dandd14ecb2015-05-05 10:03:08 +00002874 assert( !pBt->pCursor );
drhb2eced52010-08-12 02:41:12 +00002875 pBt->pageSize = (u32)pageSize;
drhf7141992008-06-19 00:16:08 +00002876 freeTempSpace(pBt);
drh90f5ecb2004-07-22 01:19:35 +00002877 }
drhfa9601a2009-06-18 17:22:39 +00002878 rc = sqlite3PagerSetPagesize(pBt->pPager, &pBt->pageSize, nReserve);
drhf49661a2008-12-10 16:45:50 +00002879 pBt->usableSize = pBt->pageSize - (u16)nReserve;
drhc9166342012-01-05 23:32:06 +00002880 if( iFix ) pBt->btsFlags |= BTS_PAGESIZE_FIXED;
drhd677b3d2007-08-20 22:48:41 +00002881 sqlite3BtreeLeave(p);
danielk1977a1644fd2007-08-29 12:31:25 +00002882 return rc;
drh90f5ecb2004-07-22 01:19:35 +00002883}
2884
2885/*
2886** Return the currently defined page size
2887*/
danielk1977aef0bf62005-12-30 16:28:01 +00002888int sqlite3BtreeGetPageSize(Btree *p){
2889 return p->pBt->pageSize;
drh90f5ecb2004-07-22 01:19:35 +00002890}
drh7f751222009-03-17 22:33:00 +00002891
dan0094f372012-09-28 20:23:42 +00002892/*
2893** This function is similar to sqlite3BtreeGetReserve(), except that it
2894** may only be called if it is guaranteed that the b-tree mutex is already
2895** held.
2896**
2897** This is useful in one special case in the backup API code where it is
2898** known that the shared b-tree mutex is held, but the mutex on the
2899** database handle that owns *p is not. In this case if sqlite3BtreeEnter()
2900** were to be called, it might collide with some other operation on the
mistachkin48864df2013-03-21 21:20:32 +00002901** database handle that owns *p, causing undefined behavior.
dan0094f372012-09-28 20:23:42 +00002902*/
2903int sqlite3BtreeGetReserveNoMutex(Btree *p){
drhad0961b2015-02-21 00:19:25 +00002904 int n;
dan0094f372012-09-28 20:23:42 +00002905 assert( sqlite3_mutex_held(p->pBt->mutex) );
drhad0961b2015-02-21 00:19:25 +00002906 n = p->pBt->pageSize - p->pBt->usableSize;
2907 return n;
dan0094f372012-09-28 20:23:42 +00002908}
2909
drh7f751222009-03-17 22:33:00 +00002910/*
2911** Return the number of bytes of space at the end of every page that
2912** are intentually left unused. This is the "reserved" space that is
2913** sometimes used by extensions.
drhad0961b2015-02-21 00:19:25 +00002914**
drh4d347662020-04-22 00:50:21 +00002915** The value returned is the larger of the current reserve size and
2916** the latest reserve size requested by SQLITE_FILECTRL_RESERVE_BYTES.
2917** The amount of reserve can only grow - never shrink.
drh7f751222009-03-17 22:33:00 +00002918*/
drh45248de2020-04-20 15:18:43 +00002919int sqlite3BtreeGetRequestedReserve(Btree *p){
drhe937df82020-05-07 01:56:57 +00002920 int n1, n2;
drhd677b3d2007-08-20 22:48:41 +00002921 sqlite3BtreeEnter(p);
drhe937df82020-05-07 01:56:57 +00002922 n1 = (int)p->pBt->nReserveWanted;
2923 n2 = sqlite3BtreeGetReserveNoMutex(p);
drhd677b3d2007-08-20 22:48:41 +00002924 sqlite3BtreeLeave(p);
drhe937df82020-05-07 01:56:57 +00002925 return n1>n2 ? n1 : n2;
drh2011d5f2004-07-22 02:40:37 +00002926}
drhf8e632b2007-05-08 14:51:36 +00002927
drhad0961b2015-02-21 00:19:25 +00002928
drhf8e632b2007-05-08 14:51:36 +00002929/*
2930** Set the maximum page count for a database if mxPage is positive.
2931** No changes are made if mxPage is 0 or negative.
2932** Regardless of the value of mxPage, return the maximum page count.
2933*/
drhe9261db2020-07-20 12:47:32 +00002934Pgno sqlite3BtreeMaxPageCount(Btree *p, Pgno mxPage){
2935 Pgno n;
drhd677b3d2007-08-20 22:48:41 +00002936 sqlite3BtreeEnter(p);
2937 n = sqlite3PagerMaxPageCount(p->pBt->pPager, mxPage);
2938 sqlite3BtreeLeave(p);
2939 return n;
drhf8e632b2007-05-08 14:51:36 +00002940}
drh5b47efa2010-02-12 18:18:39 +00002941
2942/*
drha5907a82017-06-19 11:44:22 +00002943** Change the values for the BTS_SECURE_DELETE and BTS_OVERWRITE flags:
2944**
2945** newFlag==0 Both BTS_SECURE_DELETE and BTS_OVERWRITE are cleared
2946** newFlag==1 BTS_SECURE_DELETE set and BTS_OVERWRITE is cleared
2947** newFlag==2 BTS_SECURE_DELETE cleared and BTS_OVERWRITE is set
2948** newFlag==(-1) No changes
2949**
2950** This routine acts as a query if newFlag is less than zero
2951**
2952** With BTS_OVERWRITE set, deleted content is overwritten by zeros, but
2953** freelist leaf pages are not written back to the database. Thus in-page
2954** deleted content is cleared, but freelist deleted content is not.
2955**
2956** With BTS_SECURE_DELETE, operation is like BTS_OVERWRITE with the addition
2957** that freelist leaf pages are written back into the database, increasing
2958** the amount of disk I/O.
drh5b47efa2010-02-12 18:18:39 +00002959*/
2960int sqlite3BtreeSecureDelete(Btree *p, int newFlag){
2961 int b;
drhaf034ed2010-02-12 19:46:26 +00002962 if( p==0 ) return 0;
drh5b47efa2010-02-12 18:18:39 +00002963 sqlite3BtreeEnter(p);
drha5907a82017-06-19 11:44:22 +00002964 assert( BTS_OVERWRITE==BTS_SECURE_DELETE*2 );
2965 assert( BTS_FAST_SECURE==(BTS_OVERWRITE|BTS_SECURE_DELETE) );
drh5b47efa2010-02-12 18:18:39 +00002966 if( newFlag>=0 ){
drha5907a82017-06-19 11:44:22 +00002967 p->pBt->btsFlags &= ~BTS_FAST_SECURE;
2968 p->pBt->btsFlags |= BTS_SECURE_DELETE*newFlag;
2969 }
2970 b = (p->pBt->btsFlags & BTS_FAST_SECURE)/BTS_SECURE_DELETE;
drh5b47efa2010-02-12 18:18:39 +00002971 sqlite3BtreeLeave(p);
2972 return b;
2973}
drh90f5ecb2004-07-22 01:19:35 +00002974
2975/*
danielk1977951af802004-11-05 15:45:09 +00002976** Change the 'auto-vacuum' property of the database. If the 'autoVacuum'
2977** parameter is non-zero, then auto-vacuum mode is enabled. If zero, it
2978** is disabled. The default value for the auto-vacuum property is
2979** determined by the SQLITE_DEFAULT_AUTOVACUUM macro.
2980*/
danielk1977aef0bf62005-12-30 16:28:01 +00002981int sqlite3BtreeSetAutoVacuum(Btree *p, int autoVacuum){
danielk1977951af802004-11-05 15:45:09 +00002982#ifdef SQLITE_OMIT_AUTOVACUUM
drheee46cf2004-11-06 00:02:48 +00002983 return SQLITE_READONLY;
danielk1977951af802004-11-05 15:45:09 +00002984#else
danielk1977dddbcdc2007-04-26 14:42:34 +00002985 BtShared *pBt = p->pBt;
drhd677b3d2007-08-20 22:48:41 +00002986 int rc = SQLITE_OK;
drh076d4662009-02-18 20:31:18 +00002987 u8 av = (u8)autoVacuum;
drhd677b3d2007-08-20 22:48:41 +00002988
2989 sqlite3BtreeEnter(p);
drhc9166342012-01-05 23:32:06 +00002990 if( (pBt->btsFlags & BTS_PAGESIZE_FIXED)!=0 && (av ?1:0)!=pBt->autoVacuum ){
drhd677b3d2007-08-20 22:48:41 +00002991 rc = SQLITE_READONLY;
2992 }else{
drh076d4662009-02-18 20:31:18 +00002993 pBt->autoVacuum = av ?1:0;
2994 pBt->incrVacuum = av==2 ?1:0;
danielk1977951af802004-11-05 15:45:09 +00002995 }
drhd677b3d2007-08-20 22:48:41 +00002996 sqlite3BtreeLeave(p);
2997 return rc;
danielk1977951af802004-11-05 15:45:09 +00002998#endif
2999}
3000
3001/*
3002** Return the value of the 'auto-vacuum' property. If auto-vacuum is
3003** enabled 1 is returned. Otherwise 0.
3004*/
danielk1977aef0bf62005-12-30 16:28:01 +00003005int sqlite3BtreeGetAutoVacuum(Btree *p){
danielk1977951af802004-11-05 15:45:09 +00003006#ifdef SQLITE_OMIT_AUTOVACUUM
danielk1977dddbcdc2007-04-26 14:42:34 +00003007 return BTREE_AUTOVACUUM_NONE;
danielk1977951af802004-11-05 15:45:09 +00003008#else
drhd677b3d2007-08-20 22:48:41 +00003009 int rc;
3010 sqlite3BtreeEnter(p);
3011 rc = (
danielk1977dddbcdc2007-04-26 14:42:34 +00003012 (!p->pBt->autoVacuum)?BTREE_AUTOVACUUM_NONE:
3013 (!p->pBt->incrVacuum)?BTREE_AUTOVACUUM_FULL:
3014 BTREE_AUTOVACUUM_INCR
3015 );
drhd677b3d2007-08-20 22:48:41 +00003016 sqlite3BtreeLeave(p);
3017 return rc;
danielk1977951af802004-11-05 15:45:09 +00003018#endif
3019}
3020
danf5da7db2017-03-16 18:14:39 +00003021/*
3022** If the user has not set the safety-level for this database connection
3023** using "PRAGMA synchronous", and if the safety-level is not already
3024** set to the value passed to this function as the second parameter,
3025** set it so.
3026*/
drh2ed57372017-10-05 20:57:38 +00003027#if SQLITE_DEFAULT_SYNCHRONOUS!=SQLITE_DEFAULT_WAL_SYNCHRONOUS \
3028 && !defined(SQLITE_OMIT_WAL)
danf5da7db2017-03-16 18:14:39 +00003029static void setDefaultSyncFlag(BtShared *pBt, u8 safety_level){
3030 sqlite3 *db;
3031 Db *pDb;
3032 if( (db=pBt->db)!=0 && (pDb=db->aDb)!=0 ){
3033 while( pDb->pBt==0 || pDb->pBt->pBt!=pBt ){ pDb++; }
3034 if( pDb->bSyncSet==0
3035 && pDb->safety_level!=safety_level
3036 && pDb!=&db->aDb[1]
3037 ){
3038 pDb->safety_level = safety_level;
3039 sqlite3PagerSetFlags(pBt->pPager,
3040 pDb->safety_level | (db->flags & PAGER_FLAGS_MASK));
3041 }
3042 }
3043}
3044#else
danfc8f4b62017-03-16 18:54:42 +00003045# define setDefaultSyncFlag(pBt,safety_level)
danf5da7db2017-03-16 18:14:39 +00003046#endif
danielk1977951af802004-11-05 15:45:09 +00003047
drh0314cf32018-04-28 01:27:09 +00003048/* Forward declaration */
3049static int newDatabase(BtShared*);
3050
3051
danielk1977951af802004-11-05 15:45:09 +00003052/*
drha34b6762004-05-07 13:30:42 +00003053** Get a reference to pPage1 of the database file. This will
drh306dc212001-05-21 13:45:10 +00003054** also acquire a readlock on that file.
3055**
3056** SQLITE_OK is returned on success. If the file is not a
3057** well-formed database file, then SQLITE_CORRUPT is returned.
3058** SQLITE_BUSY is returned if the database is locked. SQLITE_NOMEM
drh4f0ee682007-03-30 20:43:40 +00003059** is returned if we run out of memory.
drh306dc212001-05-21 13:45:10 +00003060*/
danielk1977aef0bf62005-12-30 16:28:01 +00003061static int lockBtree(BtShared *pBt){
drhc2a4bab2010-04-02 12:46:45 +00003062 int rc; /* Result code from subfunctions */
3063 MemPage *pPage1; /* Page 1 of the database file */
dane6370e92019-01-11 17:41:23 +00003064 u32 nPage; /* Number of pages in the database */
3065 u32 nPageFile = 0; /* Number of pages in the database file */
3066 u32 nPageHeader; /* Number of pages in the database according to hdr */
drhd677b3d2007-08-20 22:48:41 +00003067
drh1fee73e2007-08-29 04:00:57 +00003068 assert( sqlite3_mutex_held(pBt->mutex) );
danielk1977295dc102009-04-01 19:07:03 +00003069 assert( pBt->pPage1==0 );
danielk197789bc4bc2009-07-21 19:25:24 +00003070 rc = sqlite3PagerSharedLock(pBt->pPager);
3071 if( rc!=SQLITE_OK ) return rc;
drhb00fc3b2013-08-21 23:42:32 +00003072 rc = btreeGetPage(pBt, 1, &pPage1, 0);
drh306dc212001-05-21 13:45:10 +00003073 if( rc!=SQLITE_OK ) return rc;
drh306dc212001-05-21 13:45:10 +00003074
3075 /* Do some checking to help insure the file we opened really is
3076 ** a valid database file.
3077 */
drhc2a4bab2010-04-02 12:46:45 +00003078 nPage = nPageHeader = get4byte(28+(u8*)pPage1->aData);
dane6370e92019-01-11 17:41:23 +00003079 sqlite3PagerPagecount(pBt->pPager, (int*)&nPageFile);
drhb28e59b2010-06-17 02:13:39 +00003080 if( nPage==0 || memcmp(24+(u8*)pPage1->aData, 92+(u8*)pPage1->aData,4)!=0 ){
drhc2a4bab2010-04-02 12:46:45 +00003081 nPage = nPageFile;
drh97b59a52010-03-31 02:31:33 +00003082 }
drh0314cf32018-04-28 01:27:09 +00003083 if( (pBt->db->flags & SQLITE_ResetDatabase)!=0 ){
3084 nPage = 0;
3085 }
drh97b59a52010-03-31 02:31:33 +00003086 if( nPage>0 ){
drh43b18e12010-08-17 19:40:08 +00003087 u32 pageSize;
3088 u32 usableSize;
drhb6f41482004-05-14 01:58:11 +00003089 u8 *page1 = pPage1->aData;
danielk1977ad0132d2008-06-07 08:58:22 +00003090 rc = SQLITE_NOTADB;
drh113762a2014-11-19 16:36:25 +00003091 /* EVIDENCE-OF: R-43737-39999 Every valid SQLite database file begins
3092 ** with the following 16 bytes (in hex): 53 51 4c 69 74 65 20 66 6f 72 6d
3093 ** 61 74 20 33 00. */
drhb6f41482004-05-14 01:58:11 +00003094 if( memcmp(page1, zMagicHeader, 16)!=0 ){
drh72f82862001-05-24 21:06:34 +00003095 goto page1_init_failed;
drh306dc212001-05-21 13:45:10 +00003096 }
dan5cf53532010-05-01 16:40:20 +00003097
3098#ifdef SQLITE_OMIT_WAL
3099 if( page1[18]>1 ){
drhc9166342012-01-05 23:32:06 +00003100 pBt->btsFlags |= BTS_READ_ONLY;
dan5cf53532010-05-01 16:40:20 +00003101 }
3102 if( page1[19]>1 ){
3103 goto page1_init_failed;
3104 }
3105#else
dane04dc882010-04-20 18:53:15 +00003106 if( page1[18]>2 ){
drhc9166342012-01-05 23:32:06 +00003107 pBt->btsFlags |= BTS_READ_ONLY;
drh309169a2007-04-24 17:27:51 +00003108 }
dane04dc882010-04-20 18:53:15 +00003109 if( page1[19]>2 ){
drhb6f41482004-05-14 01:58:11 +00003110 goto page1_init_failed;
3111 }
drhe5ae5732008-06-15 02:51:47 +00003112
dana470aeb2010-04-21 11:43:38 +00003113 /* If the write version is set to 2, this database should be accessed
3114 ** in WAL mode. If the log is not already open, open it now. Then
3115 ** return SQLITE_OK and return without populating BtShared.pPage1.
3116 ** The caller detects this and calls this function again. This is
3117 ** required as the version of page 1 currently in the page1 buffer
3118 ** may not be the latest version - there may be a newer one in the log
3119 ** file.
3120 */
drhc9166342012-01-05 23:32:06 +00003121 if( page1[19]==2 && (pBt->btsFlags & BTS_NO_WAL)==0 ){
dane04dc882010-04-20 18:53:15 +00003122 int isOpen = 0;
drh7ed91f22010-04-29 22:34:07 +00003123 rc = sqlite3PagerOpenWal(pBt->pPager, &isOpen);
dane04dc882010-04-20 18:53:15 +00003124 if( rc!=SQLITE_OK ){
3125 goto page1_init_failed;
drhe243de52016-03-08 15:14:26 +00003126 }else{
danf5da7db2017-03-16 18:14:39 +00003127 setDefaultSyncFlag(pBt, SQLITE_DEFAULT_WAL_SYNCHRONOUS+1);
drhe243de52016-03-08 15:14:26 +00003128 if( isOpen==0 ){
drh3908fe92017-09-01 14:50:19 +00003129 releasePageOne(pPage1);
drhe243de52016-03-08 15:14:26 +00003130 return SQLITE_OK;
3131 }
dane04dc882010-04-20 18:53:15 +00003132 }
dan8b5444b2010-04-27 14:37:47 +00003133 rc = SQLITE_NOTADB;
danf5da7db2017-03-16 18:14:39 +00003134 }else{
3135 setDefaultSyncFlag(pBt, SQLITE_DEFAULT_SYNCHRONOUS+1);
dane04dc882010-04-20 18:53:15 +00003136 }
dan5cf53532010-05-01 16:40:20 +00003137#endif
dane04dc882010-04-20 18:53:15 +00003138
drh113762a2014-11-19 16:36:25 +00003139 /* EVIDENCE-OF: R-15465-20813 The maximum and minimum embedded payload
3140 ** fractions and the leaf payload fraction values must be 64, 32, and 32.
3141 **
drhe5ae5732008-06-15 02:51:47 +00003142 ** The original design allowed these amounts to vary, but as of
3143 ** version 3.6.0, we require them to be fixed.
3144 */
3145 if( memcmp(&page1[21], "\100\040\040",3)!=0 ){
3146 goto page1_init_failed;
3147 }
drh113762a2014-11-19 16:36:25 +00003148 /* EVIDENCE-OF: R-51873-39618 The page size for a database file is
3149 ** determined by the 2-byte integer located at an offset of 16 bytes from
3150 ** the beginning of the database file. */
drhb2eced52010-08-12 02:41:12 +00003151 pageSize = (page1[16]<<8) | (page1[17]<<16);
drh113762a2014-11-19 16:36:25 +00003152 /* EVIDENCE-OF: R-25008-21688 The size of a page is a power of two
3153 ** between 512 and 65536 inclusive. */
drhb2eced52010-08-12 02:41:12 +00003154 if( ((pageSize-1)&pageSize)!=0
3155 || pageSize>SQLITE_MAX_PAGE_SIZE
3156 || pageSize<=256
drh7dc385e2007-09-06 23:39:36 +00003157 ){
drh07d183d2005-05-01 22:52:42 +00003158 goto page1_init_failed;
3159 }
drhdcc27002019-01-06 02:06:31 +00003160 pBt->btsFlags |= BTS_PAGESIZE_FIXED;
drh07d183d2005-05-01 22:52:42 +00003161 assert( (pageSize & 7)==0 );
drh113762a2014-11-19 16:36:25 +00003162 /* EVIDENCE-OF: R-59310-51205 The "reserved space" size in the 1-byte
3163 ** integer at offset 20 is the number of bytes of space at the end of
3164 ** each page to reserve for extensions.
3165 **
3166 ** EVIDENCE-OF: R-37497-42412 The size of the reserved region is
3167 ** determined by the one-byte unsigned integer found at an offset of 20
3168 ** into the database file header. */
danielk1977f653d782008-03-20 11:04:21 +00003169 usableSize = pageSize - page1[20];
shaneh1df2db72010-08-18 02:28:48 +00003170 if( (u32)pageSize!=pBt->pageSize ){
danielk1977f653d782008-03-20 11:04:21 +00003171 /* After reading the first page of the database assuming a page size
3172 ** of BtShared.pageSize, we have discovered that the page-size is
3173 ** actually pageSize. Unlock the database, leave pBt->pPage1 at
3174 ** zero and return SQLITE_OK. The caller will call this function
3175 ** again with the correct page-size.
3176 */
drh3908fe92017-09-01 14:50:19 +00003177 releasePageOne(pPage1);
drh43b18e12010-08-17 19:40:08 +00003178 pBt->usableSize = usableSize;
3179 pBt->pageSize = pageSize;
drhf7141992008-06-19 00:16:08 +00003180 freeTempSpace(pBt);
drhfa9601a2009-06-18 17:22:39 +00003181 rc = sqlite3PagerSetPagesize(pBt->pPager, &pBt->pageSize,
3182 pageSize-usableSize);
drh5e483932009-07-10 16:51:30 +00003183 return rc;
danielk1977f653d782008-03-20 11:04:21 +00003184 }
drh0f1c2eb2018-11-03 17:31:48 +00003185 if( sqlite3WritableSchema(pBt->db)==0 && nPage>nPageFile ){
drhc2a4bab2010-04-02 12:46:45 +00003186 rc = SQLITE_CORRUPT_BKPT;
3187 goto page1_init_failed;
3188 }
drh113762a2014-11-19 16:36:25 +00003189 /* EVIDENCE-OF: R-28312-64704 However, the usable size is not allowed to
3190 ** be less than 480. In other words, if the page size is 512, then the
3191 ** reserved space size cannot exceed 32. */
drhb33e1b92009-06-18 11:29:20 +00003192 if( usableSize<480 ){
drhb6f41482004-05-14 01:58:11 +00003193 goto page1_init_failed;
3194 }
drh43b18e12010-08-17 19:40:08 +00003195 pBt->pageSize = pageSize;
3196 pBt->usableSize = usableSize;
drh057cd3a2005-02-15 16:23:02 +00003197#ifndef SQLITE_OMIT_AUTOVACUUM
3198 pBt->autoVacuum = (get4byte(&page1[36 + 4*4])?1:0);
danielk197727b1f952007-06-25 08:16:58 +00003199 pBt->incrVacuum = (get4byte(&page1[36 + 7*4])?1:0);
drh057cd3a2005-02-15 16:23:02 +00003200#endif
drh306dc212001-05-21 13:45:10 +00003201 }
drhb6f41482004-05-14 01:58:11 +00003202
3203 /* maxLocal is the maximum amount of payload to store locally for
3204 ** a cell. Make sure it is small enough so that at least minFanout
3205 ** cells can will fit on one page. We assume a 10-byte page header.
3206 ** Besides the payload, the cell must store:
drh43605152004-05-29 21:46:49 +00003207 ** 2-byte pointer to the cell
drhb6f41482004-05-14 01:58:11 +00003208 ** 4-byte child pointer
3209 ** 9-byte nKey value
3210 ** 4-byte nData value
3211 ** 4-byte overflow page pointer
drhe22e03e2010-08-18 21:19:03 +00003212 ** So a cell consists of a 2-byte pointer, a header which is as much as
drh43605152004-05-29 21:46:49 +00003213 ** 17 bytes long, 0 to N bytes of payload, and an optional 4 byte overflow
3214 ** page pointer.
drhb6f41482004-05-14 01:58:11 +00003215 */
shaneh1df2db72010-08-18 02:28:48 +00003216 pBt->maxLocal = (u16)((pBt->usableSize-12)*64/255 - 23);
3217 pBt->minLocal = (u16)((pBt->usableSize-12)*32/255 - 23);
3218 pBt->maxLeaf = (u16)(pBt->usableSize - 35);
3219 pBt->minLeaf = (u16)((pBt->usableSize-12)*32/255 - 23);
drhc9166342012-01-05 23:32:06 +00003220 if( pBt->maxLocal>127 ){
3221 pBt->max1bytePayload = 127;
3222 }else{
mistachkin0547e2f2012-01-08 00:54:02 +00003223 pBt->max1bytePayload = (u8)pBt->maxLocal;
drhc9166342012-01-05 23:32:06 +00003224 }
drh2e38c322004-09-03 18:38:44 +00003225 assert( pBt->maxLeaf + 23 <= MX_CELL_SIZE(pBt) );
drh3aac2dd2004-04-26 14:10:20 +00003226 pBt->pPage1 = pPage1;
drhdd3cd972010-03-27 17:12:36 +00003227 pBt->nPage = nPage;
drhb6f41482004-05-14 01:58:11 +00003228 return SQLITE_OK;
drh306dc212001-05-21 13:45:10 +00003229
drh72f82862001-05-24 21:06:34 +00003230page1_init_failed:
drh3908fe92017-09-01 14:50:19 +00003231 releasePageOne(pPage1);
drh3aac2dd2004-04-26 14:10:20 +00003232 pBt->pPage1 = 0;
drh72f82862001-05-24 21:06:34 +00003233 return rc;
drh306dc212001-05-21 13:45:10 +00003234}
3235
drh85ec3b62013-05-14 23:12:06 +00003236#ifndef NDEBUG
3237/*
3238** Return the number of cursors open on pBt. This is for use
3239** in assert() expressions, so it is only compiled if NDEBUG is not
3240** defined.
3241**
3242** Only write cursors are counted if wrOnly is true. If wrOnly is
3243** false then all cursors are counted.
3244**
3245** For the purposes of this routine, a cursor is any cursor that
peter.d.reid60ec9142014-09-06 16:39:46 +00003246** is capable of reading or writing to the database. Cursors that
drh85ec3b62013-05-14 23:12:06 +00003247** have been tripped into the CURSOR_FAULT state are not counted.
3248*/
3249static int countValidCursors(BtShared *pBt, int wrOnly){
3250 BtCursor *pCur;
3251 int r = 0;
3252 for(pCur=pBt->pCursor; pCur; pCur=pCur->pNext){
drh036dbec2014-03-11 23:40:44 +00003253 if( (wrOnly==0 || (pCur->curFlags & BTCF_WriteFlag)!=0)
3254 && pCur->eState!=CURSOR_FAULT ) r++;
drh85ec3b62013-05-14 23:12:06 +00003255 }
3256 return r;
3257}
3258#endif
3259
drh306dc212001-05-21 13:45:10 +00003260/*
drhb8ca3072001-12-05 00:21:20 +00003261** If there are no outstanding cursors and we are not in the middle
3262** of a transaction but there is a read lock on the database, then
3263** this routine unrefs the first page of the database file which
3264** has the effect of releasing the read lock.
3265**
drhb8ca3072001-12-05 00:21:20 +00003266** If there is a transaction in progress, this routine is a no-op.
3267*/
danielk1977aef0bf62005-12-30 16:28:01 +00003268static void unlockBtreeIfUnused(BtShared *pBt){
drh1fee73e2007-08-29 04:00:57 +00003269 assert( sqlite3_mutex_held(pBt->mutex) );
drh85ec3b62013-05-14 23:12:06 +00003270 assert( countValidCursors(pBt,0)==0 || pBt->inTransaction>TRANS_NONE );
danielk19771bc9ee92009-07-04 15:41:02 +00003271 if( pBt->inTransaction==TRANS_NONE && pBt->pPage1!=0 ){
drhb2325b72014-09-24 18:31:07 +00003272 MemPage *pPage1 = pBt->pPage1;
3273 assert( pPage1->aData );
danielk1977c1761e82009-06-25 09:40:03 +00003274 assert( sqlite3PagerRefcount(pBt->pPager)==1 );
drh3aac2dd2004-04-26 14:10:20 +00003275 pBt->pPage1 = 0;
drh3908fe92017-09-01 14:50:19 +00003276 releasePageOne(pPage1);
drhb8ca3072001-12-05 00:21:20 +00003277 }
3278}
3279
3280/*
drhe39f2f92009-07-23 01:43:59 +00003281** If pBt points to an empty file then convert that empty file
3282** into a new empty database by initializing the first page of
3283** the database.
drh8b2f49b2001-06-08 00:21:52 +00003284*/
danielk1977aef0bf62005-12-30 16:28:01 +00003285static int newDatabase(BtShared *pBt){
drh9e572e62004-04-23 23:43:10 +00003286 MemPage *pP1;
3287 unsigned char *data;
drh8c42ca92001-06-22 19:15:00 +00003288 int rc;
drhd677b3d2007-08-20 22:48:41 +00003289
drh1fee73e2007-08-29 04:00:57 +00003290 assert( sqlite3_mutex_held(pBt->mutex) );
drhdd3cd972010-03-27 17:12:36 +00003291 if( pBt->nPage>0 ){
3292 return SQLITE_OK;
danielk1977ad0132d2008-06-07 08:58:22 +00003293 }
drh3aac2dd2004-04-26 14:10:20 +00003294 pP1 = pBt->pPage1;
drh9e572e62004-04-23 23:43:10 +00003295 assert( pP1!=0 );
3296 data = pP1->aData;
danielk19773b8a05f2007-03-19 17:44:26 +00003297 rc = sqlite3PagerWrite(pP1->pDbPage);
drh8b2f49b2001-06-08 00:21:52 +00003298 if( rc ) return rc;
drh9e572e62004-04-23 23:43:10 +00003299 memcpy(data, zMagicHeader, sizeof(zMagicHeader));
3300 assert( sizeof(zMagicHeader)==16 );
shaneh1df2db72010-08-18 02:28:48 +00003301 data[16] = (u8)((pBt->pageSize>>8)&0xff);
3302 data[17] = (u8)((pBt->pageSize>>16)&0xff);
drh9e572e62004-04-23 23:43:10 +00003303 data[18] = 1;
3304 data[19] = 1;
drhf49661a2008-12-10 16:45:50 +00003305 assert( pBt->usableSize<=pBt->pageSize && pBt->usableSize+255>=pBt->pageSize);
3306 data[20] = (u8)(pBt->pageSize - pBt->usableSize);
drhe5ae5732008-06-15 02:51:47 +00003307 data[21] = 64;
3308 data[22] = 32;
3309 data[23] = 32;
drhb6f41482004-05-14 01:58:11 +00003310 memset(&data[24], 0, 100-24);
drhe6c43812004-05-14 12:17:46 +00003311 zeroPage(pP1, PTF_INTKEY|PTF_LEAF|PTF_LEAFDATA );
drhc9166342012-01-05 23:32:06 +00003312 pBt->btsFlags |= BTS_PAGESIZE_FIXED;
danielk1977003ba062004-11-04 02:57:33 +00003313#ifndef SQLITE_OMIT_AUTOVACUUM
danielk1977dddbcdc2007-04-26 14:42:34 +00003314 assert( pBt->autoVacuum==1 || pBt->autoVacuum==0 );
danielk1977418899a2007-06-24 10:14:00 +00003315 assert( pBt->incrVacuum==1 || pBt->incrVacuum==0 );
danielk1977dddbcdc2007-04-26 14:42:34 +00003316 put4byte(&data[36 + 4*4], pBt->autoVacuum);
danielk1977418899a2007-06-24 10:14:00 +00003317 put4byte(&data[36 + 7*4], pBt->incrVacuum);
danielk1977003ba062004-11-04 02:57:33 +00003318#endif
drhdd3cd972010-03-27 17:12:36 +00003319 pBt->nPage = 1;
3320 data[31] = 1;
drh8b2f49b2001-06-08 00:21:52 +00003321 return SQLITE_OK;
3322}
3323
3324/*
danb483eba2012-10-13 19:58:11 +00003325** Initialize the first page of the database file (creating a database
3326** consisting of a single page and no schema objects). Return SQLITE_OK
3327** if successful, or an SQLite error code otherwise.
3328*/
3329int sqlite3BtreeNewDb(Btree *p){
3330 int rc;
3331 sqlite3BtreeEnter(p);
3332 p->pBt->nPage = 0;
3333 rc = newDatabase(p->pBt);
3334 sqlite3BtreeLeave(p);
3335 return rc;
3336}
3337
3338/*
danielk1977ee5741e2004-05-31 10:01:34 +00003339** Attempt to start a new transaction. A write-transaction
drh684917c2004-10-05 02:41:42 +00003340** is started if the second argument is nonzero, otherwise a read-
3341** transaction. If the second argument is 2 or more and exclusive
3342** transaction is started, meaning that no other process is allowed
3343** to access the database. A preexisting transaction may not be
drhb8ef32c2005-03-14 02:01:49 +00003344** upgraded to exclusive by calling this routine a second time - the
drh684917c2004-10-05 02:41:42 +00003345** exclusivity flag only works for a new transaction.
drh8b2f49b2001-06-08 00:21:52 +00003346**
danielk1977ee5741e2004-05-31 10:01:34 +00003347** A write-transaction must be started before attempting any
3348** changes to the database. None of the following routines
3349** will work unless a transaction is started first:
drh8b2f49b2001-06-08 00:21:52 +00003350**
drh23e11ca2004-05-04 17:27:28 +00003351** sqlite3BtreeCreateTable()
3352** sqlite3BtreeCreateIndex()
3353** sqlite3BtreeClearTable()
3354** sqlite3BtreeDropTable()
3355** sqlite3BtreeInsert()
3356** sqlite3BtreeDelete()
3357** sqlite3BtreeUpdateMeta()
danielk197713adf8a2004-06-03 16:08:41 +00003358**
drhb8ef32c2005-03-14 02:01:49 +00003359** If an initial attempt to acquire the lock fails because of lock contention
3360** and the database was previously unlocked, then invoke the busy handler
3361** if there is one. But if there was previously a read-lock, do not
3362** invoke the busy handler - just return SQLITE_BUSY. SQLITE_BUSY is
3363** returned when there is already a read-lock in order to avoid a deadlock.
3364**
3365** Suppose there are two processes A and B. A has a read lock and B has
3366** a reserved lock. B tries to promote to exclusive but is blocked because
3367** of A's read lock. A tries to promote to reserved but is blocked by B.
3368** One or the other of the two processes must give way or there can be
3369** no progress. By returning SQLITE_BUSY and not invoking the busy callback
3370** when A already has a read lock, we encourage A to give up and let B
3371** proceed.
drha059ad02001-04-17 20:09:11 +00003372*/
drhbb2d9b12018-06-06 16:28:40 +00003373int sqlite3BtreeBeginTrans(Btree *p, int wrflag, int *pSchemaVersion){
danielk1977aef0bf62005-12-30 16:28:01 +00003374 BtShared *pBt = p->pBt;
dan7bb8b8a2020-05-06 20:27:18 +00003375 Pager *pPager = pBt->pPager;
danielk1977ee5741e2004-05-31 10:01:34 +00003376 int rc = SQLITE_OK;
3377
drhd677b3d2007-08-20 22:48:41 +00003378 sqlite3BtreeEnter(p);
danielk1977aef0bf62005-12-30 16:28:01 +00003379 btreeIntegrity(p);
3380
danielk1977ee5741e2004-05-31 10:01:34 +00003381 /* If the btree is already in a write-transaction, or it
3382 ** is already in a read-transaction and a read-transaction
3383 ** is requested, this is a no-op.
3384 */
danielk1977aef0bf62005-12-30 16:28:01 +00003385 if( p->inTrans==TRANS_WRITE || (p->inTrans==TRANS_READ && !wrflag) ){
drhd677b3d2007-08-20 22:48:41 +00003386 goto trans_begun;
danielk1977ee5741e2004-05-31 10:01:34 +00003387 }
dan56c517a2013-09-26 11:04:33 +00003388 assert( pBt->inTransaction==TRANS_WRITE || IfNotOmitAV(pBt->bDoTruncate)==0 );
drhb8ef32c2005-03-14 02:01:49 +00003389
danea933f02018-07-19 11:44:02 +00003390 if( (p->db->flags & SQLITE_ResetDatabase)
dan7bb8b8a2020-05-06 20:27:18 +00003391 && sqlite3PagerIsreadonly(pPager)==0
danea933f02018-07-19 11:44:02 +00003392 ){
3393 pBt->btsFlags &= ~BTS_READ_ONLY;
3394 }
3395
drhb8ef32c2005-03-14 02:01:49 +00003396 /* Write transactions are not possible on a read-only database */
drhc9166342012-01-05 23:32:06 +00003397 if( (pBt->btsFlags & BTS_READ_ONLY)!=0 && wrflag ){
drhd677b3d2007-08-20 22:48:41 +00003398 rc = SQLITE_READONLY;
3399 goto trans_begun;
danielk1977ee5741e2004-05-31 10:01:34 +00003400 }
3401
danielk1977404ca072009-03-16 13:19:36 +00003402#ifndef SQLITE_OMIT_SHARED_CACHE
drh5a1fb182016-01-08 19:34:39 +00003403 {
3404 sqlite3 *pBlock = 0;
3405 /* If another database handle has already opened a write transaction
3406 ** on this shared-btree structure and a second write transaction is
3407 ** requested, return SQLITE_LOCKED.
3408 */
3409 if( (wrflag && pBt->inTransaction==TRANS_WRITE)
3410 || (pBt->btsFlags & BTS_PENDING)!=0
3411 ){
3412 pBlock = pBt->pWriter->db;
3413 }else if( wrflag>1 ){
3414 BtLock *pIter;
3415 for(pIter=pBt->pLock; pIter; pIter=pIter->pNext){
3416 if( pIter->pBtree!=p ){
3417 pBlock = pIter->pBtree->db;
3418 break;
3419 }
danielk1977641b0f42007-12-21 04:47:25 +00003420 }
3421 }
drh5a1fb182016-01-08 19:34:39 +00003422 if( pBlock ){
3423 sqlite3ConnectionBlocked(p->db, pBlock);
3424 rc = SQLITE_LOCKED_SHAREDCACHE;
3425 goto trans_begun;
3426 }
danielk1977404ca072009-03-16 13:19:36 +00003427 }
danielk1977641b0f42007-12-21 04:47:25 +00003428#endif
3429
danielk1977602b4662009-07-02 07:47:33 +00003430 /* Any read-only or read-write transaction implies a read-lock on
3431 ** page 1. So if some other shared-cache client already has a write-lock
3432 ** on page 1, the transaction cannot be opened. */
drh346a70c2020-06-15 20:27:35 +00003433 rc = querySharedCacheTableLock(p, SCHEMA_ROOT, READ_LOCK);
drh4c301aa2009-07-15 17:25:45 +00003434 if( SQLITE_OK!=rc ) goto trans_begun;
danielk1977602b4662009-07-02 07:47:33 +00003435
drhc9166342012-01-05 23:32:06 +00003436 pBt->btsFlags &= ~BTS_INITIALLY_EMPTY;
3437 if( pBt->nPage==0 ) pBt->btsFlags |= BTS_INITIALLY_EMPTY;
drhb8ef32c2005-03-14 02:01:49 +00003438 do {
dan11a81822020-05-07 14:26:40 +00003439 sqlite3PagerWalDb(pPager, p->db);
dan58021b22020-05-05 20:30:07 +00003440
3441#ifdef SQLITE_ENABLE_SETLK_TIMEOUT
3442 /* If transitioning from no transaction directly to a write transaction,
3443 ** block for the WRITER lock first if possible. */
3444 if( pBt->pPage1==0 && wrflag ){
3445 assert( pBt->inTransaction==TRANS_NONE );
dan861fb1e2020-05-06 19:14:41 +00003446 rc = sqlite3PagerWalWriteLock(pPager, 1);
dan7bb8b8a2020-05-06 20:27:18 +00003447 if( rc!=SQLITE_BUSY && rc!=SQLITE_OK ) break;
dan58021b22020-05-05 20:30:07 +00003448 }
3449#endif
3450
danielk1977295dc102009-04-01 19:07:03 +00003451 /* Call lockBtree() until either pBt->pPage1 is populated or
3452 ** lockBtree() returns something other than SQLITE_OK. lockBtree()
3453 ** may return SQLITE_OK but leave pBt->pPage1 set to 0 if after
3454 ** reading page 1 it discovers that the page-size of the database
3455 ** file is not pBt->pageSize. In this case lockBtree() will update
3456 ** pBt->pageSize to the page-size of the file on disk.
3457 */
3458 while( pBt->pPage1==0 && SQLITE_OK==(rc = lockBtree(pBt)) );
drh309169a2007-04-24 17:27:51 +00003459
drhb8ef32c2005-03-14 02:01:49 +00003460 if( rc==SQLITE_OK && wrflag ){
drhc9166342012-01-05 23:32:06 +00003461 if( (pBt->btsFlags & BTS_READ_ONLY)!=0 ){
drh309169a2007-04-24 17:27:51 +00003462 rc = SQLITE_READONLY;
3463 }else{
dan58021b22020-05-05 20:30:07 +00003464 rc = sqlite3PagerBegin(pPager, wrflag>1, sqlite3TempInMemory(p->db));
drh309169a2007-04-24 17:27:51 +00003465 if( rc==SQLITE_OK ){
3466 rc = newDatabase(pBt);
dan8bf6d702018-07-05 17:16:55 +00003467 }else if( rc==SQLITE_BUSY_SNAPSHOT && pBt->inTransaction==TRANS_NONE ){
3468 /* if there was no transaction opened when this function was
3469 ** called and SQLITE_BUSY_SNAPSHOT is returned, change the error
3470 ** code to SQLITE_BUSY. */
3471 rc = SQLITE_BUSY;
drh309169a2007-04-24 17:27:51 +00003472 }
drhb8ef32c2005-03-14 02:01:49 +00003473 }
3474 }
3475
danielk1977bd434552009-03-18 10:33:00 +00003476 if( rc!=SQLITE_OK ){
danfc87ab82020-05-06 19:22:59 +00003477 (void)sqlite3PagerWalWriteLock(pPager, 0);
drhb8ef32c2005-03-14 02:01:49 +00003478 unlockBtreeIfUnused(pBt);
3479 }
danf9b76712010-06-01 14:12:45 +00003480 }while( (rc&0xFF)==SQLITE_BUSY && pBt->inTransaction==TRANS_NONE &&
danielk19771ceedd32008-11-19 10:22:33 +00003481 btreeInvokeBusyHandler(pBt) );
dan7bb8b8a2020-05-06 20:27:18 +00003482 sqlite3PagerWalDb(pPager, 0);
3483#ifdef SQLITE_ENABLE_SETLK_TIMEOUT
3484 if( rc==SQLITE_BUSY_TIMEOUT ) rc = SQLITE_BUSY;
3485#endif
danielk1977aef0bf62005-12-30 16:28:01 +00003486
3487 if( rc==SQLITE_OK ){
3488 if( p->inTrans==TRANS_NONE ){
3489 pBt->nTransaction++;
danielk1977602b4662009-07-02 07:47:33 +00003490#ifndef SQLITE_OMIT_SHARED_CACHE
3491 if( p->sharable ){
drhf2f105d2012-08-20 15:53:54 +00003492 assert( p->lock.pBtree==p && p->lock.iTable==1 );
danielk1977602b4662009-07-02 07:47:33 +00003493 p->lock.eLock = READ_LOCK;
3494 p->lock.pNext = pBt->pLock;
3495 pBt->pLock = &p->lock;
3496 }
3497#endif
danielk1977aef0bf62005-12-30 16:28:01 +00003498 }
3499 p->inTrans = (wrflag?TRANS_WRITE:TRANS_READ);
3500 if( p->inTrans>pBt->inTransaction ){
3501 pBt->inTransaction = p->inTrans;
3502 }
danielk1977404ca072009-03-16 13:19:36 +00003503 if( wrflag ){
dan59257dc2010-08-04 11:34:31 +00003504 MemPage *pPage1 = pBt->pPage1;
3505#ifndef SQLITE_OMIT_SHARED_CACHE
danielk1977404ca072009-03-16 13:19:36 +00003506 assert( !pBt->pWriter );
3507 pBt->pWriter = p;
drhc9166342012-01-05 23:32:06 +00003508 pBt->btsFlags &= ~BTS_EXCLUSIVE;
3509 if( wrflag>1 ) pBt->btsFlags |= BTS_EXCLUSIVE;
danielk1977641b0f42007-12-21 04:47:25 +00003510#endif
dan59257dc2010-08-04 11:34:31 +00003511
3512 /* If the db-size header field is incorrect (as it may be if an old
3513 ** client has been writing the database file), update it now. Doing
3514 ** this sooner rather than later means the database size can safely
3515 ** re-read the database size from page 1 if a savepoint or transaction
3516 ** rollback occurs within the transaction.
3517 */
3518 if( pBt->nPage!=get4byte(&pPage1->aData[28]) ){
3519 rc = sqlite3PagerWrite(pPage1->pDbPage);
3520 if( rc==SQLITE_OK ){
3521 put4byte(&pPage1->aData[28], pBt->nPage);
3522 }
3523 }
3524 }
danielk1977aef0bf62005-12-30 16:28:01 +00003525 }
3526
drhd677b3d2007-08-20 22:48:41 +00003527trans_begun:
drhbb2d9b12018-06-06 16:28:40 +00003528 if( rc==SQLITE_OK ){
3529 if( pSchemaVersion ){
3530 *pSchemaVersion = get4byte(&pBt->pPage1->aData[40]);
3531 }
3532 if( wrflag ){
3533 /* This call makes sure that the pager has the correct number of
3534 ** open savepoints. If the second parameter is greater than 0 and
3535 ** the sub-journal is not already open, then it will be opened here.
3536 */
dan7bb8b8a2020-05-06 20:27:18 +00003537 rc = sqlite3PagerOpenSavepoint(pPager, p->db->nSavepoint);
drhbb2d9b12018-06-06 16:28:40 +00003538 }
danielk1977fd7f0452008-12-17 17:30:26 +00003539 }
danielk197712dd5492008-12-18 15:45:07 +00003540
danielk1977aef0bf62005-12-30 16:28:01 +00003541 btreeIntegrity(p);
drhd677b3d2007-08-20 22:48:41 +00003542 sqlite3BtreeLeave(p);
drhb8ca3072001-12-05 00:21:20 +00003543 return rc;
drha059ad02001-04-17 20:09:11 +00003544}
3545
danielk1977687566d2004-11-02 12:56:41 +00003546#ifndef SQLITE_OMIT_AUTOVACUUM
3547
3548/*
3549** Set the pointer-map entries for all children of page pPage. Also, if
3550** pPage contains cells that point to overflow pages, set the pointer
3551** map entries for the overflow pages as well.
3552*/
3553static int setChildPtrmaps(MemPage *pPage){
3554 int i; /* Counter variable */
3555 int nCell; /* Number of cells in page pPage */
danielk19772df71c72007-05-24 07:22:42 +00003556 int rc; /* Return code */
danielk1977aef0bf62005-12-30 16:28:01 +00003557 BtShared *pBt = pPage->pBt;
danielk1977687566d2004-11-02 12:56:41 +00003558 Pgno pgno = pPage->pgno;
3559
drh1fee73e2007-08-29 04:00:57 +00003560 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drh14e845a2017-05-25 21:35:56 +00003561 rc = pPage->isInit ? SQLITE_OK : btreeInitPage(pPage);
drh2a702542016-12-12 18:12:03 +00003562 if( rc!=SQLITE_OK ) return rc;
danielk1977687566d2004-11-02 12:56:41 +00003563 nCell = pPage->nCell;
3564
3565 for(i=0; i<nCell; i++){
danielk19771cc5ed82007-05-16 17:28:43 +00003566 u8 *pCell = findCell(pPage, i);
danielk1977687566d2004-11-02 12:56:41 +00003567
drh0f1bf4c2019-01-13 20:17:21 +00003568 ptrmapPutOvflPtr(pPage, pPage, pCell, &rc);
danielk197726836652005-01-17 01:33:13 +00003569
danielk1977687566d2004-11-02 12:56:41 +00003570 if( !pPage->leaf ){
3571 Pgno childPgno = get4byte(pCell);
drh98add2e2009-07-20 17:11:49 +00003572 ptrmapPut(pBt, childPgno, PTRMAP_BTREE, pgno, &rc);
danielk1977687566d2004-11-02 12:56:41 +00003573 }
3574 }
3575
3576 if( !pPage->leaf ){
3577 Pgno childPgno = get4byte(&pPage->aData[pPage->hdrOffset+8]);
drh98add2e2009-07-20 17:11:49 +00003578 ptrmapPut(pBt, childPgno, PTRMAP_BTREE, pgno, &rc);
danielk1977687566d2004-11-02 12:56:41 +00003579 }
3580
danielk1977687566d2004-11-02 12:56:41 +00003581 return rc;
3582}
3583
3584/*
drhf3aed592009-07-08 18:12:49 +00003585** Somewhere on pPage is a pointer to page iFrom. Modify this pointer so
3586** that it points to iTo. Parameter eType describes the type of pointer to
3587** be modified, as follows:
danielk1977687566d2004-11-02 12:56:41 +00003588**
3589** PTRMAP_BTREE: pPage is a btree-page. The pointer points at a child
3590** page of pPage.
3591**
3592** PTRMAP_OVERFLOW1: pPage is a btree-page. The pointer points at an overflow
3593** page pointed to by one of the cells on pPage.
3594**
3595** PTRMAP_OVERFLOW2: pPage is an overflow-page. The pointer points at the next
3596** overflow page in the list.
3597*/
danielk1977fdb7cdb2005-01-17 02:12:18 +00003598static int modifyPagePointer(MemPage *pPage, Pgno iFrom, Pgno iTo, u8 eType){
drh1fee73e2007-08-29 04:00:57 +00003599 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drhc5053fb2008-11-27 02:22:10 +00003600 assert( sqlite3PagerIswriteable(pPage->pDbPage) );
danielk1977687566d2004-11-02 12:56:41 +00003601 if( eType==PTRMAP_OVERFLOW2 ){
danielk1977f78fc082004-11-02 14:40:32 +00003602 /* The pointer is always the first 4 bytes of the page in this case. */
danielk1977fdb7cdb2005-01-17 02:12:18 +00003603 if( get4byte(pPage->aData)!=iFrom ){
daneebf2f52017-11-18 17:30:08 +00003604 return SQLITE_CORRUPT_PAGE(pPage);
danielk1977fdb7cdb2005-01-17 02:12:18 +00003605 }
danielk1977f78fc082004-11-02 14:40:32 +00003606 put4byte(pPage->aData, iTo);
danielk1977687566d2004-11-02 12:56:41 +00003607 }else{
danielk1977687566d2004-11-02 12:56:41 +00003608 int i;
3609 int nCell;
drha1f75d92015-05-24 10:18:12 +00003610 int rc;
danielk1977687566d2004-11-02 12:56:41 +00003611
drh14e845a2017-05-25 21:35:56 +00003612 rc = pPage->isInit ? SQLITE_OK : btreeInitPage(pPage);
drha1f75d92015-05-24 10:18:12 +00003613 if( rc ) return rc;
danielk1977687566d2004-11-02 12:56:41 +00003614 nCell = pPage->nCell;
3615
danielk1977687566d2004-11-02 12:56:41 +00003616 for(i=0; i<nCell; i++){
danielk19771cc5ed82007-05-16 17:28:43 +00003617 u8 *pCell = findCell(pPage, i);
danielk1977687566d2004-11-02 12:56:41 +00003618 if( eType==PTRMAP_OVERFLOW1 ){
3619 CellInfo info;
drh5fa60512015-06-19 17:19:34 +00003620 pPage->xParseCell(pPage, pCell, &info);
drhb701c9a2017-01-12 15:11:03 +00003621 if( info.nLocal<info.nPayload ){
3622 if( pCell+info.nSize > pPage->aData+pPage->pBt->usableSize ){
daneebf2f52017-11-18 17:30:08 +00003623 return SQLITE_CORRUPT_PAGE(pPage);
drhb701c9a2017-01-12 15:11:03 +00003624 }
3625 if( iFrom==get4byte(pCell+info.nSize-4) ){
3626 put4byte(pCell+info.nSize-4, iTo);
3627 break;
3628 }
danielk1977687566d2004-11-02 12:56:41 +00003629 }
3630 }else{
3631 if( get4byte(pCell)==iFrom ){
3632 put4byte(pCell, iTo);
3633 break;
3634 }
3635 }
3636 }
3637
3638 if( i==nCell ){
danielk1977fdb7cdb2005-01-17 02:12:18 +00003639 if( eType!=PTRMAP_BTREE ||
3640 get4byte(&pPage->aData[pPage->hdrOffset+8])!=iFrom ){
daneebf2f52017-11-18 17:30:08 +00003641 return SQLITE_CORRUPT_PAGE(pPage);
danielk1977fdb7cdb2005-01-17 02:12:18 +00003642 }
danielk1977687566d2004-11-02 12:56:41 +00003643 put4byte(&pPage->aData[pPage->hdrOffset+8], iTo);
3644 }
danielk1977687566d2004-11-02 12:56:41 +00003645 }
danielk1977fdb7cdb2005-01-17 02:12:18 +00003646 return SQLITE_OK;
danielk1977687566d2004-11-02 12:56:41 +00003647}
3648
danielk1977003ba062004-11-04 02:57:33 +00003649
danielk19777701e812005-01-10 12:59:51 +00003650/*
3651** Move the open database page pDbPage to location iFreePage in the
3652** database. The pDbPage reference remains valid.
drhe64ca7b2009-07-16 18:21:17 +00003653**
3654** The isCommit flag indicates that there is no need to remember that
3655** the journal needs to be sync()ed before database page pDbPage->pgno
3656** can be written to. The caller has already promised not to write to that
3657** page.
danielk19777701e812005-01-10 12:59:51 +00003658*/
danielk1977003ba062004-11-04 02:57:33 +00003659static int relocatePage(
danielk1977aef0bf62005-12-30 16:28:01 +00003660 BtShared *pBt, /* Btree */
danielk19777701e812005-01-10 12:59:51 +00003661 MemPage *pDbPage, /* Open page to move */
3662 u8 eType, /* Pointer map 'type' entry for pDbPage */
3663 Pgno iPtrPage, /* Pointer map 'page-no' entry for pDbPage */
danielk19774c999992008-07-16 18:17:55 +00003664 Pgno iFreePage, /* The location to move pDbPage to */
drhe64ca7b2009-07-16 18:21:17 +00003665 int isCommit /* isCommit flag passed to sqlite3PagerMovepage */
danielk1977003ba062004-11-04 02:57:33 +00003666){
3667 MemPage *pPtrPage; /* The page that contains a pointer to pDbPage */
3668 Pgno iDbPage = pDbPage->pgno;
3669 Pager *pPager = pBt->pPager;
3670 int rc;
3671
danielk1977a0bf2652004-11-04 14:30:04 +00003672 assert( eType==PTRMAP_OVERFLOW2 || eType==PTRMAP_OVERFLOW1 ||
3673 eType==PTRMAP_BTREE || eType==PTRMAP_ROOTPAGE );
drh1fee73e2007-08-29 04:00:57 +00003674 assert( sqlite3_mutex_held(pBt->mutex) );
drhd0679ed2007-08-28 22:24:34 +00003675 assert( pDbPage->pBt==pBt );
drh49272bc2018-10-31 01:04:18 +00003676 if( iDbPage<3 ) return SQLITE_CORRUPT_BKPT;
danielk1977003ba062004-11-04 02:57:33 +00003677
drh85b623f2007-12-13 21:54:09 +00003678 /* Move page iDbPage from its current location to page number iFreePage */
danielk1977003ba062004-11-04 02:57:33 +00003679 TRACE(("AUTOVACUUM: Moving %d to free page %d (ptr page %d type %d)\n",
3680 iDbPage, iFreePage, iPtrPage, eType));
danielk19774c999992008-07-16 18:17:55 +00003681 rc = sqlite3PagerMovepage(pPager, pDbPage->pDbPage, iFreePage, isCommit);
danielk1977003ba062004-11-04 02:57:33 +00003682 if( rc!=SQLITE_OK ){
3683 return rc;
3684 }
3685 pDbPage->pgno = iFreePage;
3686
3687 /* If pDbPage was a btree-page, then it may have child pages and/or cells
3688 ** that point to overflow pages. The pointer map entries for all these
3689 ** pages need to be changed.
3690 **
3691 ** If pDbPage is an overflow page, then the first 4 bytes may store a
3692 ** pointer to a subsequent overflow page. If this is the case, then
3693 ** the pointer map needs to be updated for the subsequent overflow page.
3694 */
danielk1977a0bf2652004-11-04 14:30:04 +00003695 if( eType==PTRMAP_BTREE || eType==PTRMAP_ROOTPAGE ){
danielk1977003ba062004-11-04 02:57:33 +00003696 rc = setChildPtrmaps(pDbPage);
3697 if( rc!=SQLITE_OK ){
3698 return rc;
3699 }
3700 }else{
3701 Pgno nextOvfl = get4byte(pDbPage->aData);
3702 if( nextOvfl!=0 ){
drh98add2e2009-07-20 17:11:49 +00003703 ptrmapPut(pBt, nextOvfl, PTRMAP_OVERFLOW2, iFreePage, &rc);
danielk1977003ba062004-11-04 02:57:33 +00003704 if( rc!=SQLITE_OK ){
3705 return rc;
3706 }
3707 }
3708 }
3709
3710 /* Fix the database pointer on page iPtrPage that pointed at iDbPage so
3711 ** that it points at iFreePage. Also fix the pointer map entry for
3712 ** iPtrPage.
3713 */
danielk1977a0bf2652004-11-04 14:30:04 +00003714 if( eType!=PTRMAP_ROOTPAGE ){
drhb00fc3b2013-08-21 23:42:32 +00003715 rc = btreeGetPage(pBt, iPtrPage, &pPtrPage, 0);
danielk1977a0bf2652004-11-04 14:30:04 +00003716 if( rc!=SQLITE_OK ){
3717 return rc;
3718 }
danielk19773b8a05f2007-03-19 17:44:26 +00003719 rc = sqlite3PagerWrite(pPtrPage->pDbPage);
danielk1977a0bf2652004-11-04 14:30:04 +00003720 if( rc!=SQLITE_OK ){
3721 releasePage(pPtrPage);
3722 return rc;
3723 }
danielk1977fdb7cdb2005-01-17 02:12:18 +00003724 rc = modifyPagePointer(pPtrPage, iDbPage, iFreePage, eType);
danielk1977003ba062004-11-04 02:57:33 +00003725 releasePage(pPtrPage);
danielk1977fdb7cdb2005-01-17 02:12:18 +00003726 if( rc==SQLITE_OK ){
drh98add2e2009-07-20 17:11:49 +00003727 ptrmapPut(pBt, iFreePage, eType, iPtrPage, &rc);
danielk1977fdb7cdb2005-01-17 02:12:18 +00003728 }
danielk1977003ba062004-11-04 02:57:33 +00003729 }
danielk1977003ba062004-11-04 02:57:33 +00003730 return rc;
3731}
3732
danielk1977dddbcdc2007-04-26 14:42:34 +00003733/* Forward declaration required by incrVacuumStep(). */
drh4f0c5872007-03-26 22:05:01 +00003734static int allocateBtreePage(BtShared *, MemPage **, Pgno *, Pgno, u8);
danielk1977687566d2004-11-02 12:56:41 +00003735
3736/*
dan51f0b6d2013-02-22 20:16:34 +00003737** Perform a single step of an incremental-vacuum. If successful, return
3738** SQLITE_OK. If there is no work to do (and therefore no point in
3739** calling this function again), return SQLITE_DONE. Or, if an error
3740** occurs, return some other error code.
danielk1977dddbcdc2007-04-26 14:42:34 +00003741**
peter.d.reid60ec9142014-09-06 16:39:46 +00003742** More specifically, this function attempts to re-organize the database so
dan51f0b6d2013-02-22 20:16:34 +00003743** that the last page of the file currently in use is no longer in use.
danielk1977dddbcdc2007-04-26 14:42:34 +00003744**
dan51f0b6d2013-02-22 20:16:34 +00003745** Parameter nFin is the number of pages that this database would contain
3746** were this function called until it returns SQLITE_DONE.
3747**
3748** If the bCommit parameter is non-zero, this function assumes that the
3749** caller will keep calling incrVacuumStep() until it returns SQLITE_DONE
peter.d.reid60ec9142014-09-06 16:39:46 +00003750** or an error. bCommit is passed true for an auto-vacuum-on-commit
dan51f0b6d2013-02-22 20:16:34 +00003751** operation, or false for an incremental vacuum.
danielk1977dddbcdc2007-04-26 14:42:34 +00003752*/
dan51f0b6d2013-02-22 20:16:34 +00003753static int incrVacuumStep(BtShared *pBt, Pgno nFin, Pgno iLastPg, int bCommit){
danielk1977dddbcdc2007-04-26 14:42:34 +00003754 Pgno nFreeList; /* Number of pages still on the free-list */
drhdd3cd972010-03-27 17:12:36 +00003755 int rc;
danielk1977dddbcdc2007-04-26 14:42:34 +00003756
drh1fee73e2007-08-29 04:00:57 +00003757 assert( sqlite3_mutex_held(pBt->mutex) );
danielk1977fa542f12009-04-02 18:28:08 +00003758 assert( iLastPg>nFin );
danielk1977dddbcdc2007-04-26 14:42:34 +00003759
3760 if( !PTRMAP_ISPAGE(pBt, iLastPg) && iLastPg!=PENDING_BYTE_PAGE(pBt) ){
danielk1977dddbcdc2007-04-26 14:42:34 +00003761 u8 eType;
3762 Pgno iPtrPage;
3763
3764 nFreeList = get4byte(&pBt->pPage1->aData[36]);
danielk1977fa542f12009-04-02 18:28:08 +00003765 if( nFreeList==0 ){
danielk1977dddbcdc2007-04-26 14:42:34 +00003766 return SQLITE_DONE;
3767 }
3768
3769 rc = ptrmapGet(pBt, iLastPg, &eType, &iPtrPage);
3770 if( rc!=SQLITE_OK ){
3771 return rc;
3772 }
3773 if( eType==PTRMAP_ROOTPAGE ){
3774 return SQLITE_CORRUPT_BKPT;
3775 }
3776
3777 if( eType==PTRMAP_FREEPAGE ){
dan51f0b6d2013-02-22 20:16:34 +00003778 if( bCommit==0 ){
danielk1977dddbcdc2007-04-26 14:42:34 +00003779 /* Remove the page from the files free-list. This is not required
dan51f0b6d2013-02-22 20:16:34 +00003780 ** if bCommit is non-zero. In that case, the free-list will be
danielk1977dddbcdc2007-04-26 14:42:34 +00003781 ** truncated to zero after this function returns, so it doesn't
3782 ** matter if it still contains some garbage entries.
3783 */
3784 Pgno iFreePg;
3785 MemPage *pFreePg;
dan51f0b6d2013-02-22 20:16:34 +00003786 rc = allocateBtreePage(pBt, &pFreePg, &iFreePg, iLastPg, BTALLOC_EXACT);
danielk1977dddbcdc2007-04-26 14:42:34 +00003787 if( rc!=SQLITE_OK ){
3788 return rc;
3789 }
3790 assert( iFreePg==iLastPg );
3791 releasePage(pFreePg);
3792 }
3793 } else {
3794 Pgno iFreePg; /* Index of free page to move pLastPg to */
3795 MemPage *pLastPg;
dan51f0b6d2013-02-22 20:16:34 +00003796 u8 eMode = BTALLOC_ANY; /* Mode parameter for allocateBtreePage() */
3797 Pgno iNear = 0; /* nearby parameter for allocateBtreePage() */
danielk1977dddbcdc2007-04-26 14:42:34 +00003798
drhb00fc3b2013-08-21 23:42:32 +00003799 rc = btreeGetPage(pBt, iLastPg, &pLastPg, 0);
danielk1977dddbcdc2007-04-26 14:42:34 +00003800 if( rc!=SQLITE_OK ){
3801 return rc;
3802 }
3803
dan51f0b6d2013-02-22 20:16:34 +00003804 /* If bCommit is zero, this loop runs exactly once and page pLastPg
danielk1977b4626a32007-04-28 15:47:43 +00003805 ** is swapped with the first free page pulled off the free list.
3806 **
dan51f0b6d2013-02-22 20:16:34 +00003807 ** On the other hand, if bCommit is greater than zero, then keep
danielk1977b4626a32007-04-28 15:47:43 +00003808 ** looping until a free-page located within the first nFin pages
3809 ** of the file is found.
3810 */
dan51f0b6d2013-02-22 20:16:34 +00003811 if( bCommit==0 ){
3812 eMode = BTALLOC_LE;
3813 iNear = nFin;
3814 }
danielk1977dddbcdc2007-04-26 14:42:34 +00003815 do {
3816 MemPage *pFreePg;
dan51f0b6d2013-02-22 20:16:34 +00003817 rc = allocateBtreePage(pBt, &pFreePg, &iFreePg, iNear, eMode);
danielk1977dddbcdc2007-04-26 14:42:34 +00003818 if( rc!=SQLITE_OK ){
3819 releasePage(pLastPg);
3820 return rc;
3821 }
3822 releasePage(pFreePg);
dan51f0b6d2013-02-22 20:16:34 +00003823 }while( bCommit && iFreePg>nFin );
danielk1977dddbcdc2007-04-26 14:42:34 +00003824 assert( iFreePg<iLastPg );
danielk1977b4626a32007-04-28 15:47:43 +00003825
dane1df4e32013-03-05 11:27:04 +00003826 rc = relocatePage(pBt, pLastPg, eType, iPtrPage, iFreePg, bCommit);
danielk1977dddbcdc2007-04-26 14:42:34 +00003827 releasePage(pLastPg);
3828 if( rc!=SQLITE_OK ){
3829 return rc;
danielk1977662278e2007-11-05 15:30:12 +00003830 }
danielk1977dddbcdc2007-04-26 14:42:34 +00003831 }
3832 }
3833
dan51f0b6d2013-02-22 20:16:34 +00003834 if( bCommit==0 ){
danbc1a3c62013-02-23 16:40:46 +00003835 do {
danielk19773460d192008-12-27 15:23:13 +00003836 iLastPg--;
danbc1a3c62013-02-23 16:40:46 +00003837 }while( iLastPg==PENDING_BYTE_PAGE(pBt) || PTRMAP_ISPAGE(pBt, iLastPg) );
3838 pBt->bDoTruncate = 1;
drhdd3cd972010-03-27 17:12:36 +00003839 pBt->nPage = iLastPg;
danielk1977dddbcdc2007-04-26 14:42:34 +00003840 }
3841 return SQLITE_OK;
3842}
3843
3844/*
dan51f0b6d2013-02-22 20:16:34 +00003845** The database opened by the first argument is an auto-vacuum database
3846** nOrig pages in size containing nFree free pages. Return the expected
3847** size of the database in pages following an auto-vacuum operation.
3848*/
3849static Pgno finalDbSize(BtShared *pBt, Pgno nOrig, Pgno nFree){
3850 int nEntry; /* Number of entries on one ptrmap page */
3851 Pgno nPtrmap; /* Number of PtrMap pages to be freed */
3852 Pgno nFin; /* Return value */
3853
3854 nEntry = pBt->usableSize/5;
3855 nPtrmap = (nFree-nOrig+PTRMAP_PAGENO(pBt, nOrig)+nEntry)/nEntry;
3856 nFin = nOrig - nFree - nPtrmap;
3857 if( nOrig>PENDING_BYTE_PAGE(pBt) && nFin<PENDING_BYTE_PAGE(pBt) ){
3858 nFin--;
3859 }
3860 while( PTRMAP_ISPAGE(pBt, nFin) || nFin==PENDING_BYTE_PAGE(pBt) ){
3861 nFin--;
3862 }
dan51f0b6d2013-02-22 20:16:34 +00003863
3864 return nFin;
3865}
3866
3867/*
danielk1977dddbcdc2007-04-26 14:42:34 +00003868** A write-transaction must be opened before calling this function.
3869** It performs a single unit of work towards an incremental vacuum.
3870**
3871** If the incremental vacuum is finished after this function has run,
shanebe217792009-03-05 04:20:31 +00003872** SQLITE_DONE is returned. If it is not finished, but no error occurred,
danielk1977dddbcdc2007-04-26 14:42:34 +00003873** SQLITE_OK is returned. Otherwise an SQLite error code.
3874*/
3875int sqlite3BtreeIncrVacuum(Btree *p){
drhd677b3d2007-08-20 22:48:41 +00003876 int rc;
danielk1977dddbcdc2007-04-26 14:42:34 +00003877 BtShared *pBt = p->pBt;
drhd677b3d2007-08-20 22:48:41 +00003878
3879 sqlite3BtreeEnter(p);
danielk1977dddbcdc2007-04-26 14:42:34 +00003880 assert( pBt->inTransaction==TRANS_WRITE && p->inTrans==TRANS_WRITE );
3881 if( !pBt->autoVacuum ){
drhd677b3d2007-08-20 22:48:41 +00003882 rc = SQLITE_DONE;
3883 }else{
dan51f0b6d2013-02-22 20:16:34 +00003884 Pgno nOrig = btreePagecount(pBt);
3885 Pgno nFree = get4byte(&pBt->pPage1->aData[36]);
3886 Pgno nFin = finalDbSize(pBt, nOrig, nFree);
3887
drhbc2cf3b2020-07-14 12:40:53 +00003888 if( nOrig<nFin || nFree>=nOrig ){
dan91384712013-02-24 11:50:43 +00003889 rc = SQLITE_CORRUPT_BKPT;
3890 }else if( nFree>0 ){
dan11dcd112013-03-15 18:29:18 +00003891 rc = saveAllCursors(pBt, 0, 0);
3892 if( rc==SQLITE_OK ){
3893 invalidateAllOverflowCache(pBt);
3894 rc = incrVacuumStep(pBt, nFin, nOrig, 0);
3895 }
dan51f0b6d2013-02-22 20:16:34 +00003896 if( rc==SQLITE_OK ){
3897 rc = sqlite3PagerWrite(pBt->pPage1->pDbPage);
3898 put4byte(&pBt->pPage1->aData[28], pBt->nPage);
3899 }
3900 }else{
3901 rc = SQLITE_DONE;
drhdd3cd972010-03-27 17:12:36 +00003902 }
danielk1977dddbcdc2007-04-26 14:42:34 +00003903 }
drhd677b3d2007-08-20 22:48:41 +00003904 sqlite3BtreeLeave(p);
3905 return rc;
danielk1977dddbcdc2007-04-26 14:42:34 +00003906}
3907
3908/*
danielk19773b8a05f2007-03-19 17:44:26 +00003909** This routine is called prior to sqlite3PagerCommit when a transaction
drhf7b54962013-05-28 12:11:54 +00003910** is committed for an auto-vacuum database.
danielk197724168722007-04-02 05:07:47 +00003911**
3912** If SQLITE_OK is returned, then *pnTrunc is set to the number of pages
3913** the database file should be truncated to during the commit process.
3914** i.e. the database has been reorganized so that only the first *pnTrunc
3915** pages are in use.
danielk1977687566d2004-11-02 12:56:41 +00003916*/
danielk19773460d192008-12-27 15:23:13 +00003917static int autoVacuumCommit(BtShared *pBt){
danielk1977dddbcdc2007-04-26 14:42:34 +00003918 int rc = SQLITE_OK;
danielk1977687566d2004-11-02 12:56:41 +00003919 Pager *pPager = pBt->pPager;
mistachkinc29cbb02015-07-02 16:52:01 +00003920 VVA_ONLY( int nRef = sqlite3PagerRefcount(pPager); )
danielk1977687566d2004-11-02 12:56:41 +00003921
drh1fee73e2007-08-29 04:00:57 +00003922 assert( sqlite3_mutex_held(pBt->mutex) );
danielk197792d4d7a2007-05-04 12:05:56 +00003923 invalidateAllOverflowCache(pBt);
danielk1977dddbcdc2007-04-26 14:42:34 +00003924 assert(pBt->autoVacuum);
3925 if( !pBt->incrVacuum ){
drhea8ffdf2009-07-22 00:35:23 +00003926 Pgno nFin; /* Number of pages in database after autovacuuming */
3927 Pgno nFree; /* Number of pages on the freelist initially */
drh41d628c2009-07-11 17:04:08 +00003928 Pgno iFree; /* The next page to be freed */
drh41d628c2009-07-11 17:04:08 +00003929 Pgno nOrig; /* Database size before freeing */
danielk1977687566d2004-11-02 12:56:41 +00003930
drhb1299152010-03-30 22:58:33 +00003931 nOrig = btreePagecount(pBt);
danielk1977ef165ce2009-04-06 17:50:03 +00003932 if( PTRMAP_ISPAGE(pBt, nOrig) || nOrig==PENDING_BYTE_PAGE(pBt) ){
3933 /* It is not possible to create a database for which the final page
3934 ** is either a pointer-map page or the pending-byte page. If one
3935 ** is encountered, this indicates corruption.
3936 */
danielk19773460d192008-12-27 15:23:13 +00003937 return SQLITE_CORRUPT_BKPT;
3938 }
danielk1977ef165ce2009-04-06 17:50:03 +00003939
danielk19773460d192008-12-27 15:23:13 +00003940 nFree = get4byte(&pBt->pPage1->aData[36]);
dan51f0b6d2013-02-22 20:16:34 +00003941 nFin = finalDbSize(pBt, nOrig, nFree);
drhc5e47ac2009-06-04 00:11:56 +00003942 if( nFin>nOrig ) return SQLITE_CORRUPT_BKPT;
dan0aed84d2013-03-26 14:16:20 +00003943 if( nFin<nOrig ){
3944 rc = saveAllCursors(pBt, 0, 0);
3945 }
danielk19773460d192008-12-27 15:23:13 +00003946 for(iFree=nOrig; iFree>nFin && rc==SQLITE_OK; iFree--){
dan51f0b6d2013-02-22 20:16:34 +00003947 rc = incrVacuumStep(pBt, nFin, iFree, 1);
danielk1977dddbcdc2007-04-26 14:42:34 +00003948 }
danielk19773460d192008-12-27 15:23:13 +00003949 if( (rc==SQLITE_DONE || rc==SQLITE_OK) && nFree>0 ){
danielk19773460d192008-12-27 15:23:13 +00003950 rc = sqlite3PagerWrite(pBt->pPage1->pDbPage);
3951 put4byte(&pBt->pPage1->aData[32], 0);
3952 put4byte(&pBt->pPage1->aData[36], 0);
drhdd3cd972010-03-27 17:12:36 +00003953 put4byte(&pBt->pPage1->aData[28], nFin);
danbc1a3c62013-02-23 16:40:46 +00003954 pBt->bDoTruncate = 1;
drhdd3cd972010-03-27 17:12:36 +00003955 pBt->nPage = nFin;
danielk1977dddbcdc2007-04-26 14:42:34 +00003956 }
3957 if( rc!=SQLITE_OK ){
3958 sqlite3PagerRollback(pPager);
3959 }
danielk1977687566d2004-11-02 12:56:41 +00003960 }
3961
dan0aed84d2013-03-26 14:16:20 +00003962 assert( nRef>=sqlite3PagerRefcount(pPager) );
danielk1977687566d2004-11-02 12:56:41 +00003963 return rc;
3964}
danielk1977dddbcdc2007-04-26 14:42:34 +00003965
danielk1977a50d9aa2009-06-08 14:49:45 +00003966#else /* ifndef SQLITE_OMIT_AUTOVACUUM */
3967# define setChildPtrmaps(x) SQLITE_OK
3968#endif
danielk1977687566d2004-11-02 12:56:41 +00003969
3970/*
drh80e35f42007-03-30 14:06:34 +00003971** This routine does the first phase of a two-phase commit. This routine
3972** causes a rollback journal to be created (if it does not already exist)
3973** and populated with enough information so that if a power loss occurs
3974** the database can be restored to its original state by playing back
3975** the journal. Then the contents of the journal are flushed out to
3976** the disk. After the journal is safely on oxide, the changes to the
3977** database are written into the database file and flushed to oxide.
3978** At the end of this call, the rollback journal still exists on the
3979** disk and we are still holding all locks, so the transaction has not
drh51898cf2009-04-19 20:51:06 +00003980** committed. See sqlite3BtreeCommitPhaseTwo() for the second phase of the
drh80e35f42007-03-30 14:06:34 +00003981** commit process.
3982**
3983** This call is a no-op if no write-transaction is currently active on pBt.
3984**
drh067b92b2020-06-19 15:24:12 +00003985** Otherwise, sync the database file for the btree pBt. zSuperJrnl points to
3986** the name of a super-journal file that should be written into the
3987** individual journal file, or is NULL, indicating no super-journal file
drh80e35f42007-03-30 14:06:34 +00003988** (single database transaction).
3989**
drh067b92b2020-06-19 15:24:12 +00003990** When this is called, the super-journal should already have been
drh80e35f42007-03-30 14:06:34 +00003991** created, populated with this journal pointer and synced to disk.
3992**
3993** Once this is routine has returned, the only thing required to commit
3994** the write-transaction for this database file is to delete the journal.
3995*/
drh067b92b2020-06-19 15:24:12 +00003996int sqlite3BtreeCommitPhaseOne(Btree *p, const char *zSuperJrnl){
drh80e35f42007-03-30 14:06:34 +00003997 int rc = SQLITE_OK;
3998 if( p->inTrans==TRANS_WRITE ){
3999 BtShared *pBt = p->pBt;
drhd677b3d2007-08-20 22:48:41 +00004000 sqlite3BtreeEnter(p);
drh80e35f42007-03-30 14:06:34 +00004001#ifndef SQLITE_OMIT_AUTOVACUUM
4002 if( pBt->autoVacuum ){
danielk19773460d192008-12-27 15:23:13 +00004003 rc = autoVacuumCommit(pBt);
drh80e35f42007-03-30 14:06:34 +00004004 if( rc!=SQLITE_OK ){
drhd677b3d2007-08-20 22:48:41 +00004005 sqlite3BtreeLeave(p);
drh80e35f42007-03-30 14:06:34 +00004006 return rc;
4007 }
4008 }
danbc1a3c62013-02-23 16:40:46 +00004009 if( pBt->bDoTruncate ){
4010 sqlite3PagerTruncateImage(pBt->pPager, pBt->nPage);
4011 }
drh80e35f42007-03-30 14:06:34 +00004012#endif
drh067b92b2020-06-19 15:24:12 +00004013 rc = sqlite3PagerCommitPhaseOne(pBt->pPager, zSuperJrnl, 0);
drhd677b3d2007-08-20 22:48:41 +00004014 sqlite3BtreeLeave(p);
drh80e35f42007-03-30 14:06:34 +00004015 }
4016 return rc;
4017}
4018
4019/*
danielk197794b30732009-07-02 17:21:57 +00004020** This function is called from both BtreeCommitPhaseTwo() and BtreeRollback()
4021** at the conclusion of a transaction.
4022*/
4023static void btreeEndTransaction(Btree *p){
4024 BtShared *pBt = p->pBt;
drh1713afb2013-06-28 01:24:57 +00004025 sqlite3 *db = p->db;
danielk197794b30732009-07-02 17:21:57 +00004026 assert( sqlite3BtreeHoldsMutex(p) );
4027
danbc1a3c62013-02-23 16:40:46 +00004028#ifndef SQLITE_OMIT_AUTOVACUUM
4029 pBt->bDoTruncate = 0;
4030#endif
danc0537fe2013-06-28 19:41:43 +00004031 if( p->inTrans>TRANS_NONE && db->nVdbeRead>1 ){
danfa401de2009-10-16 14:55:03 +00004032 /* If there are other active statements that belong to this database
4033 ** handle, downgrade to a read-only transaction. The other statements
4034 ** may still be reading from the database. */
danielk197794b30732009-07-02 17:21:57 +00004035 downgradeAllSharedCacheTableLocks(p);
4036 p->inTrans = TRANS_READ;
4037 }else{
4038 /* If the handle had any kind of transaction open, decrement the
4039 ** transaction count of the shared btree. If the transaction count
4040 ** reaches 0, set the shared state to TRANS_NONE. The unlockBtreeIfUnused()
4041 ** call below will unlock the pager. */
4042 if( p->inTrans!=TRANS_NONE ){
4043 clearAllSharedCacheTableLocks(p);
4044 pBt->nTransaction--;
4045 if( 0==pBt->nTransaction ){
4046 pBt->inTransaction = TRANS_NONE;
4047 }
4048 }
4049
4050 /* Set the current transaction state to TRANS_NONE and unlock the
4051 ** pager if this call closed the only read or write transaction. */
4052 p->inTrans = TRANS_NONE;
4053 unlockBtreeIfUnused(pBt);
4054 }
4055
4056 btreeIntegrity(p);
4057}
4058
4059/*
drh2aa679f2001-06-25 02:11:07 +00004060** Commit the transaction currently in progress.
drh5e00f6c2001-09-13 13:46:56 +00004061**
drh6e345992007-03-30 11:12:08 +00004062** This routine implements the second phase of a 2-phase commit. The
drh51898cf2009-04-19 20:51:06 +00004063** sqlite3BtreeCommitPhaseOne() routine does the first phase and should
4064** be invoked prior to calling this routine. The sqlite3BtreeCommitPhaseOne()
4065** routine did all the work of writing information out to disk and flushing the
drh6e345992007-03-30 11:12:08 +00004066** contents so that they are written onto the disk platter. All this
drh51898cf2009-04-19 20:51:06 +00004067** routine has to do is delete or truncate or zero the header in the
4068** the rollback journal (which causes the transaction to commit) and
4069** drop locks.
drh6e345992007-03-30 11:12:08 +00004070**
dan60939d02011-03-29 15:40:55 +00004071** Normally, if an error occurs while the pager layer is attempting to
4072** finalize the underlying journal file, this function returns an error and
4073** the upper layer will attempt a rollback. However, if the second argument
4074** is non-zero then this b-tree transaction is part of a multi-file
4075** transaction. In this case, the transaction has already been committed
drh067b92b2020-06-19 15:24:12 +00004076** (by deleting a super-journal file) and the caller will ignore this
dan60939d02011-03-29 15:40:55 +00004077** functions return code. So, even if an error occurs in the pager layer,
4078** reset the b-tree objects internal state to indicate that the write
4079** transaction has been closed. This is quite safe, as the pager will have
4080** transitioned to the error state.
4081**
drh5e00f6c2001-09-13 13:46:56 +00004082** This will release the write lock on the database file. If there
4083** are no active cursors, it also releases the read lock.
drha059ad02001-04-17 20:09:11 +00004084*/
dan60939d02011-03-29 15:40:55 +00004085int sqlite3BtreeCommitPhaseTwo(Btree *p, int bCleanup){
danielk1977aef0bf62005-12-30 16:28:01 +00004086
drh075ed302010-10-14 01:17:30 +00004087 if( p->inTrans==TRANS_NONE ) return SQLITE_OK;
drhd677b3d2007-08-20 22:48:41 +00004088 sqlite3BtreeEnter(p);
danielk1977aef0bf62005-12-30 16:28:01 +00004089 btreeIntegrity(p);
danielk1977aef0bf62005-12-30 16:28:01 +00004090
4091 /* If the handle has a write-transaction open, commit the shared-btrees
4092 ** transaction and set the shared state to TRANS_READ.
4093 */
4094 if( p->inTrans==TRANS_WRITE ){
danielk19777f7bc662006-01-23 13:47:47 +00004095 int rc;
drh075ed302010-10-14 01:17:30 +00004096 BtShared *pBt = p->pBt;
danielk1977aef0bf62005-12-30 16:28:01 +00004097 assert( pBt->inTransaction==TRANS_WRITE );
4098 assert( pBt->nTransaction>0 );
drh80e35f42007-03-30 14:06:34 +00004099 rc = sqlite3PagerCommitPhaseTwo(pBt->pPager);
dan60939d02011-03-29 15:40:55 +00004100 if( rc!=SQLITE_OK && bCleanup==0 ){
drhd677b3d2007-08-20 22:48:41 +00004101 sqlite3BtreeLeave(p);
danielk19777f7bc662006-01-23 13:47:47 +00004102 return rc;
4103 }
drh3da9c042014-12-22 18:41:21 +00004104 p->iDataVersion--; /* Compensate for pPager->iDataVersion++; */
danielk1977aef0bf62005-12-30 16:28:01 +00004105 pBt->inTransaction = TRANS_READ;
danbf0e57a2013-05-14 20:36:31 +00004106 btreeClearHasContent(pBt);
danielk1977ee5741e2004-05-31 10:01:34 +00004107 }
danielk1977aef0bf62005-12-30 16:28:01 +00004108
danielk197794b30732009-07-02 17:21:57 +00004109 btreeEndTransaction(p);
drhd677b3d2007-08-20 22:48:41 +00004110 sqlite3BtreeLeave(p);
danielk19777f7bc662006-01-23 13:47:47 +00004111 return SQLITE_OK;
drha059ad02001-04-17 20:09:11 +00004112}
4113
drh80e35f42007-03-30 14:06:34 +00004114/*
4115** Do both phases of a commit.
4116*/
4117int sqlite3BtreeCommit(Btree *p){
4118 int rc;
drhd677b3d2007-08-20 22:48:41 +00004119 sqlite3BtreeEnter(p);
drh80e35f42007-03-30 14:06:34 +00004120 rc = sqlite3BtreeCommitPhaseOne(p, 0);
4121 if( rc==SQLITE_OK ){
dan60939d02011-03-29 15:40:55 +00004122 rc = sqlite3BtreeCommitPhaseTwo(p, 0);
drh80e35f42007-03-30 14:06:34 +00004123 }
drhd677b3d2007-08-20 22:48:41 +00004124 sqlite3BtreeLeave(p);
drh80e35f42007-03-30 14:06:34 +00004125 return rc;
4126}
4127
drhc39e0002004-05-07 23:50:57 +00004128/*
drhfb982642007-08-30 01:19:59 +00004129** This routine sets the state to CURSOR_FAULT and the error
drh47b7fc72014-11-11 01:33:57 +00004130** code to errCode for every cursor on any BtShared that pBtree
4131** references. Or if the writeOnly flag is set to 1, then only
4132** trip write cursors and leave read cursors unchanged.
drhfb982642007-08-30 01:19:59 +00004133**
drh47b7fc72014-11-11 01:33:57 +00004134** Every cursor is a candidate to be tripped, including cursors
4135** that belong to other database connections that happen to be
4136** sharing the cache with pBtree.
drhfb982642007-08-30 01:19:59 +00004137**
dan80231042014-11-12 14:56:02 +00004138** This routine gets called when a rollback occurs. If the writeOnly
4139** flag is true, then only write-cursors need be tripped - read-only
4140** cursors save their current positions so that they may continue
4141** following the rollback. Or, if writeOnly is false, all cursors are
4142** tripped. In general, writeOnly is false if the transaction being
4143** rolled back modified the database schema. In this case b-tree root
4144** pages may be moved or deleted from the database altogether, making
4145** it unsafe for read cursors to continue.
4146**
4147** If the writeOnly flag is true and an error is encountered while
4148** saving the current position of a read-only cursor, all cursors,
4149** including all read-cursors are tripped.
4150**
4151** SQLITE_OK is returned if successful, or if an error occurs while
4152** saving a cursor position, an SQLite error code.
drhfb982642007-08-30 01:19:59 +00004153*/
dan80231042014-11-12 14:56:02 +00004154int sqlite3BtreeTripAllCursors(Btree *pBtree, int errCode, int writeOnly){
drhfb982642007-08-30 01:19:59 +00004155 BtCursor *p;
dan80231042014-11-12 14:56:02 +00004156 int rc = SQLITE_OK;
4157
drh47b7fc72014-11-11 01:33:57 +00004158 assert( (writeOnly==0 || writeOnly==1) && BTCF_WriteFlag==1 );
dan80231042014-11-12 14:56:02 +00004159 if( pBtree ){
4160 sqlite3BtreeEnter(pBtree);
4161 for(p=pBtree->pBt->pCursor; p; p=p->pNext){
dan80231042014-11-12 14:56:02 +00004162 if( writeOnly && (p->curFlags & BTCF_WriteFlag)==0 ){
drhd2f83132015-03-25 17:35:01 +00004163 if( p->eState==CURSOR_VALID || p->eState==CURSOR_SKIPNEXT ){
drhbea3b972014-11-18 20:22:05 +00004164 rc = saveCursorPosition(p);
dan80231042014-11-12 14:56:02 +00004165 if( rc!=SQLITE_OK ){
4166 (void)sqlite3BtreeTripAllCursors(pBtree, rc, 0);
4167 break;
4168 }
4169 }
4170 }else{
4171 sqlite3BtreeClearCursor(p);
4172 p->eState = CURSOR_FAULT;
4173 p->skipNext = errCode;
4174 }
drh85ef6302017-08-02 15:50:09 +00004175 btreeReleaseAllCursorPages(p);
danielk1977bc2ca9e2008-11-13 14:28:28 +00004176 }
dan80231042014-11-12 14:56:02 +00004177 sqlite3BtreeLeave(pBtree);
drhfb982642007-08-30 01:19:59 +00004178 }
dan80231042014-11-12 14:56:02 +00004179 return rc;
drhfb982642007-08-30 01:19:59 +00004180}
4181
4182/*
drh41422652019-05-10 14:34:18 +00004183** Set the pBt->nPage field correctly, according to the current
4184** state of the database. Assume pBt->pPage1 is valid.
4185*/
4186static void btreeSetNPage(BtShared *pBt, MemPage *pPage1){
4187 int nPage = get4byte(&pPage1->aData[28]);
4188 testcase( nPage==0 );
4189 if( nPage==0 ) sqlite3PagerPagecount(pBt->pPager, &nPage);
4190 testcase( pBt->nPage!=nPage );
4191 pBt->nPage = nPage;
4192}
4193
4194/*
drh47b7fc72014-11-11 01:33:57 +00004195** Rollback the transaction in progress.
4196**
4197** If tripCode is not SQLITE_OK then cursors will be invalidated (tripped).
4198** Only write cursors are tripped if writeOnly is true but all cursors are
4199** tripped if writeOnly is false. Any attempt to use
4200** a tripped cursor will result in an error.
drh5e00f6c2001-09-13 13:46:56 +00004201**
4202** This will release the write lock on the database file. If there
4203** are no active cursors, it also releases the read lock.
drha059ad02001-04-17 20:09:11 +00004204*/
drh47b7fc72014-11-11 01:33:57 +00004205int sqlite3BtreeRollback(Btree *p, int tripCode, int writeOnly){
danielk19778d34dfd2006-01-24 16:37:57 +00004206 int rc;
danielk1977aef0bf62005-12-30 16:28:01 +00004207 BtShared *pBt = p->pBt;
drh24cd67e2004-05-10 16:18:47 +00004208 MemPage *pPage1;
danielk1977aef0bf62005-12-30 16:28:01 +00004209
drh47b7fc72014-11-11 01:33:57 +00004210 assert( writeOnly==1 || writeOnly==0 );
4211 assert( tripCode==SQLITE_ABORT_ROLLBACK || tripCode==SQLITE_OK );
drhd677b3d2007-08-20 22:48:41 +00004212 sqlite3BtreeEnter(p);
drh0f198a72012-02-13 16:43:16 +00004213 if( tripCode==SQLITE_OK ){
4214 rc = tripCode = saveAllCursors(pBt, 0, 0);
drh47b7fc72014-11-11 01:33:57 +00004215 if( rc ) writeOnly = 0;
drh0f198a72012-02-13 16:43:16 +00004216 }else{
4217 rc = SQLITE_OK;
danielk19772b8c13e2006-01-24 14:21:24 +00004218 }
drh0f198a72012-02-13 16:43:16 +00004219 if( tripCode ){
dan80231042014-11-12 14:56:02 +00004220 int rc2 = sqlite3BtreeTripAllCursors(p, tripCode, writeOnly);
4221 assert( rc==SQLITE_OK || (writeOnly==0 && rc2==SQLITE_OK) );
4222 if( rc2!=SQLITE_OK ) rc = rc2;
drh0f198a72012-02-13 16:43:16 +00004223 }
danielk1977aef0bf62005-12-30 16:28:01 +00004224 btreeIntegrity(p);
danielk1977aef0bf62005-12-30 16:28:01 +00004225
4226 if( p->inTrans==TRANS_WRITE ){
danielk19778d34dfd2006-01-24 16:37:57 +00004227 int rc2;
danielk1977aef0bf62005-12-30 16:28:01 +00004228
danielk19778d34dfd2006-01-24 16:37:57 +00004229 assert( TRANS_WRITE==pBt->inTransaction );
danielk19773b8a05f2007-03-19 17:44:26 +00004230 rc2 = sqlite3PagerRollback(pBt->pPager);
danielk19778d34dfd2006-01-24 16:37:57 +00004231 if( rc2!=SQLITE_OK ){
4232 rc = rc2;
4233 }
4234
drh24cd67e2004-05-10 16:18:47 +00004235 /* The rollback may have destroyed the pPage1->aData value. So
danielk197730548662009-07-09 05:07:37 +00004236 ** call btreeGetPage() on page 1 again to make
drh16a9b832007-05-05 18:39:25 +00004237 ** sure pPage1->aData is set correctly. */
drhb00fc3b2013-08-21 23:42:32 +00004238 if( btreeGetPage(pBt, 1, &pPage1, 0)==SQLITE_OK ){
drh41422652019-05-10 14:34:18 +00004239 btreeSetNPage(pBt, pPage1);
drh3908fe92017-09-01 14:50:19 +00004240 releasePageOne(pPage1);
drh24cd67e2004-05-10 16:18:47 +00004241 }
drh85ec3b62013-05-14 23:12:06 +00004242 assert( countValidCursors(pBt, 1)==0 );
danielk1977aef0bf62005-12-30 16:28:01 +00004243 pBt->inTransaction = TRANS_READ;
danbf0e57a2013-05-14 20:36:31 +00004244 btreeClearHasContent(pBt);
drh24cd67e2004-05-10 16:18:47 +00004245 }
danielk1977aef0bf62005-12-30 16:28:01 +00004246
danielk197794b30732009-07-02 17:21:57 +00004247 btreeEndTransaction(p);
drhd677b3d2007-08-20 22:48:41 +00004248 sqlite3BtreeLeave(p);
drha059ad02001-04-17 20:09:11 +00004249 return rc;
4250}
4251
4252/*
peter.d.reid60ec9142014-09-06 16:39:46 +00004253** Start a statement subtransaction. The subtransaction can be rolled
danielk1977bd434552009-03-18 10:33:00 +00004254** back independently of the main transaction. You must start a transaction
4255** before starting a subtransaction. The subtransaction is ended automatically
4256** if the main transaction commits or rolls back.
drhab01f612004-05-22 02:55:23 +00004257**
4258** Statement subtransactions are used around individual SQL statements
4259** that are contained within a BEGIN...COMMIT block. If a constraint
4260** error occurs within the statement, the effect of that one statement
4261** can be rolled back without having to rollback the entire transaction.
danielk1977bd434552009-03-18 10:33:00 +00004262**
4263** A statement sub-transaction is implemented as an anonymous savepoint. The
4264** value passed as the second parameter is the total number of savepoints,
4265** including the new anonymous savepoint, open on the B-Tree. i.e. if there
4266** are no active savepoints and no other statement-transactions open,
4267** iStatement is 1. This anonymous savepoint can be released or rolled back
4268** using the sqlite3BtreeSavepoint() function.
drh663fc632002-02-02 18:49:19 +00004269*/
danielk1977bd434552009-03-18 10:33:00 +00004270int sqlite3BtreeBeginStmt(Btree *p, int iStatement){
drh663fc632002-02-02 18:49:19 +00004271 int rc;
danielk1977aef0bf62005-12-30 16:28:01 +00004272 BtShared *pBt = p->pBt;
drhd677b3d2007-08-20 22:48:41 +00004273 sqlite3BtreeEnter(p);
drh64022502009-01-09 14:11:04 +00004274 assert( p->inTrans==TRANS_WRITE );
drhc9166342012-01-05 23:32:06 +00004275 assert( (pBt->btsFlags & BTS_READ_ONLY)==0 );
danielk1977bd434552009-03-18 10:33:00 +00004276 assert( iStatement>0 );
4277 assert( iStatement>p->db->nSavepoint );
drh5e0ccc22010-03-29 19:36:52 +00004278 assert( pBt->inTransaction==TRANS_WRITE );
4279 /* At the pager level, a statement transaction is a savepoint with
4280 ** an index greater than all savepoints created explicitly using
4281 ** SQL statements. It is illegal to open, release or rollback any
4282 ** such savepoints while the statement transaction savepoint is active.
4283 */
4284 rc = sqlite3PagerOpenSavepoint(pBt->pPager, iStatement);
drhd677b3d2007-08-20 22:48:41 +00004285 sqlite3BtreeLeave(p);
drh663fc632002-02-02 18:49:19 +00004286 return rc;
4287}
4288
4289/*
danielk1977fd7f0452008-12-17 17:30:26 +00004290** The second argument to this function, op, is always SAVEPOINT_ROLLBACK
4291** or SAVEPOINT_RELEASE. This function either releases or rolls back the
danielk197712dd5492008-12-18 15:45:07 +00004292** savepoint identified by parameter iSavepoint, depending on the value
4293** of op.
4294**
4295** Normally, iSavepoint is greater than or equal to zero. However, if op is
4296** SAVEPOINT_ROLLBACK, then iSavepoint may also be -1. In this case the
4297** contents of the entire transaction are rolled back. This is different
4298** from a normal transaction rollback, as no locks are released and the
4299** transaction remains open.
danielk1977fd7f0452008-12-17 17:30:26 +00004300*/
4301int sqlite3BtreeSavepoint(Btree *p, int op, int iSavepoint){
4302 int rc = SQLITE_OK;
4303 if( p && p->inTrans==TRANS_WRITE ){
4304 BtShared *pBt = p->pBt;
danielk1977fd7f0452008-12-17 17:30:26 +00004305 assert( op==SAVEPOINT_RELEASE || op==SAVEPOINT_ROLLBACK );
4306 assert( iSavepoint>=0 || (iSavepoint==-1 && op==SAVEPOINT_ROLLBACK) );
4307 sqlite3BtreeEnter(p);
drh2343c7e2017-02-02 00:46:55 +00004308 if( op==SAVEPOINT_ROLLBACK ){
4309 rc = saveAllCursors(pBt, 0, 0);
4310 }
4311 if( rc==SQLITE_OK ){
4312 rc = sqlite3PagerSavepoint(pBt->pPager, op, iSavepoint);
4313 }
drh9f0bbf92009-01-02 21:08:09 +00004314 if( rc==SQLITE_OK ){
drhc9166342012-01-05 23:32:06 +00004315 if( iSavepoint<0 && (pBt->btsFlags & BTS_INITIALLY_EMPTY)!=0 ){
4316 pBt->nPage = 0;
4317 }
drh9f0bbf92009-01-02 21:08:09 +00004318 rc = newDatabase(pBt);
drh41422652019-05-10 14:34:18 +00004319 btreeSetNPage(pBt, pBt->pPage1);
drhb9b49bf2010-08-05 03:21:39 +00004320
dana9a54652019-04-22 11:47:40 +00004321 /* pBt->nPage might be zero if the database was corrupt when
4322 ** the transaction was started. Otherwise, it must be at least 1. */
4323 assert( CORRUPT_DB || pBt->nPage>0 );
drh9f0bbf92009-01-02 21:08:09 +00004324 }
danielk1977fd7f0452008-12-17 17:30:26 +00004325 sqlite3BtreeLeave(p);
4326 }
4327 return rc;
4328}
4329
4330/*
drh8b2f49b2001-06-08 00:21:52 +00004331** Create a new cursor for the BTree whose root is on the page
danielk19773e8add92009-07-04 17:16:00 +00004332** iTable. If a read-only cursor is requested, it is assumed that
4333** the caller already has at least a read-only transaction open
4334** on the database already. If a write-cursor is requested, then
4335** the caller is assumed to have an open write transaction.
drh1bee3d72001-10-15 00:44:35 +00004336**
drhe807bdb2016-01-21 17:06:33 +00004337** If the BTREE_WRCSR bit of wrFlag is clear, then the cursor can only
4338** be used for reading. If the BTREE_WRCSR bit is set, then the cursor
4339** can be used for reading or for writing if other conditions for writing
4340** are also met. These are the conditions that must be met in order
4341** for writing to be allowed:
drh6446c4d2001-12-15 14:22:18 +00004342**
drhe807bdb2016-01-21 17:06:33 +00004343** 1: The cursor must have been opened with wrFlag containing BTREE_WRCSR
drhf74b8d92002-09-01 23:20:45 +00004344**
drhfe5d71d2007-03-19 11:54:10 +00004345** 2: Other database connections that share the same pager cache
4346** but which are not in the READ_UNCOMMITTED state may not have
4347** cursors open with wrFlag==0 on the same table. Otherwise
4348** the changes made by this write cursor would be visible to
4349** the read cursors in the other database connection.
drhf74b8d92002-09-01 23:20:45 +00004350**
4351** 3: The database must be writable (not on read-only media)
4352**
4353** 4: There must be an active transaction.
4354**
drhe807bdb2016-01-21 17:06:33 +00004355** The BTREE_FORDELETE bit of wrFlag may optionally be set if BTREE_WRCSR
4356** is set. If FORDELETE is set, that is a hint to the implementation that
4357** this cursor will only be used to seek to and delete entries of an index
4358** as part of a larger DELETE statement. The FORDELETE hint is not used by
4359** this implementation. But in a hypothetical alternative storage engine
4360** in which index entries are automatically deleted when corresponding table
4361** rows are deleted, the FORDELETE flag is a hint that all SEEK and DELETE
4362** operations on this cursor can be no-ops and all READ operations can
4363** return a null row (2-bytes: 0x01 0x00).
4364**
drh6446c4d2001-12-15 14:22:18 +00004365** No checking is done to make sure that page iTable really is the
4366** root page of a b-tree. If it is not, then the cursor acquired
4367** will not work correctly.
danielk197771d5d2c2008-09-29 11:49:47 +00004368**
drhf25a5072009-11-18 23:01:25 +00004369** It is assumed that the sqlite3BtreeCursorZero() has been called
4370** on pCur to initialize the memory space prior to invoking this routine.
drha059ad02001-04-17 20:09:11 +00004371*/
drhd677b3d2007-08-20 22:48:41 +00004372static int btreeCursor(
danielk1977cd3e8f72008-03-25 09:47:35 +00004373 Btree *p, /* The btree */
drhabc38152020-07-22 13:38:04 +00004374 Pgno iTable, /* Root page of table to open */
danielk1977cd3e8f72008-03-25 09:47:35 +00004375 int wrFlag, /* 1 to write. 0 read-only */
4376 struct KeyInfo *pKeyInfo, /* First arg to comparison function */
4377 BtCursor *pCur /* Space for new cursor */
drh3aac2dd2004-04-26 14:10:20 +00004378){
danielk19773e8add92009-07-04 17:16:00 +00004379 BtShared *pBt = p->pBt; /* Shared b-tree handle */
drh27fb7462015-06-30 02:47:36 +00004380 BtCursor *pX; /* Looping over other all cursors */
drhecdc7532001-09-23 02:35:53 +00004381
drh1fee73e2007-08-29 04:00:57 +00004382 assert( sqlite3BtreeHoldsMutex(p) );
danfd261ec2015-10-22 20:54:33 +00004383 assert( wrFlag==0
4384 || wrFlag==BTREE_WRCSR
4385 || wrFlag==(BTREE_WRCSR|BTREE_FORDELETE)
4386 );
danielk197796d48e92009-06-29 06:00:37 +00004387
danielk1977602b4662009-07-02 07:47:33 +00004388 /* The following assert statements verify that if this is a sharable
4389 ** b-tree database, the connection is holding the required table locks,
4390 ** and that no other connection has any open cursor that conflicts with
drhac801802019-11-17 11:47:50 +00004391 ** this lock. The iTable<1 term disables the check for corrupt schemas. */
4392 assert( hasSharedCacheTableLock(p, iTable, pKeyInfo!=0, (wrFlag?2:1))
4393 || iTable<1 );
danielk197796d48e92009-06-29 06:00:37 +00004394 assert( wrFlag==0 || !hasReadConflicts(p, iTable) );
4395
danielk19773e8add92009-07-04 17:16:00 +00004396 /* Assert that the caller has opened the required transaction. */
4397 assert( p->inTrans>TRANS_NONE );
4398 assert( wrFlag==0 || p->inTrans==TRANS_WRITE );
4399 assert( pBt->pPage1 && pBt->pPage1->aData );
drh98ef0f62015-06-30 01:25:52 +00004400 assert( wrFlag==0 || (pBt->btsFlags & BTS_READ_ONLY)==0 );
danielk19773e8add92009-07-04 17:16:00 +00004401
drh3fbb0222014-09-24 19:47:27 +00004402 if( wrFlag ){
4403 allocateTempSpace(pBt);
mistachkinfad30392016-02-13 23:43:46 +00004404 if( pBt->pTmpSpace==0 ) return SQLITE_NOMEM_BKPT;
drha0c9a112004-03-10 13:42:37 +00004405 }
drhdb561bc2019-10-25 14:46:05 +00004406 if( iTable<=1 ){
4407 if( iTable<1 ){
4408 return SQLITE_CORRUPT_BKPT;
4409 }else if( btreePagecount(pBt)==0 ){
4410 assert( wrFlag==0 );
4411 iTable = 0;
4412 }
danielk19773e8add92009-07-04 17:16:00 +00004413 }
danielk1977aef0bf62005-12-30 16:28:01 +00004414
danielk1977aef0bf62005-12-30 16:28:01 +00004415 /* Now that no other errors can occur, finish filling in the BtCursor
danielk19773e8add92009-07-04 17:16:00 +00004416 ** variables and link the cursor into the BtShared list. */
drhabc38152020-07-22 13:38:04 +00004417 pCur->pgnoRoot = iTable;
danielk1977172114a2009-07-07 15:47:12 +00004418 pCur->iPage = -1;
drh1e968a02008-03-25 00:22:21 +00004419 pCur->pKeyInfo = pKeyInfo;
danielk1977aef0bf62005-12-30 16:28:01 +00004420 pCur->pBtree = p;
drhd0679ed2007-08-28 22:24:34 +00004421 pCur->pBt = pBt;
danfd261ec2015-10-22 20:54:33 +00004422 pCur->curFlags = wrFlag ? BTCF_WriteFlag : 0;
drh28f58dd2015-06-27 19:45:03 +00004423 pCur->curPagerFlags = wrFlag ? 0 : PAGER_GET_READONLY;
drh27fb7462015-06-30 02:47:36 +00004424 /* If there are two or more cursors on the same btree, then all such
4425 ** cursors *must* have the BTCF_Multiple flag set. */
4426 for(pX=pBt->pCursor; pX; pX=pX->pNext){
drhabc38152020-07-22 13:38:04 +00004427 if( pX->pgnoRoot==iTable ){
drh27fb7462015-06-30 02:47:36 +00004428 pX->curFlags |= BTCF_Multiple;
4429 pCur->curFlags |= BTCF_Multiple;
4430 }
drha059ad02001-04-17 20:09:11 +00004431 }
drh27fb7462015-06-30 02:47:36 +00004432 pCur->pNext = pBt->pCursor;
drha059ad02001-04-17 20:09:11 +00004433 pBt->pCursor = pCur;
danielk1977da184232006-01-05 11:34:32 +00004434 pCur->eState = CURSOR_INVALID;
danielk1977aef0bf62005-12-30 16:28:01 +00004435 return SQLITE_OK;
drha059ad02001-04-17 20:09:11 +00004436}
drhdb561bc2019-10-25 14:46:05 +00004437static int btreeCursorWithLock(
4438 Btree *p, /* The btree */
drhabc38152020-07-22 13:38:04 +00004439 Pgno iTable, /* Root page of table to open */
drhdb561bc2019-10-25 14:46:05 +00004440 int wrFlag, /* 1 to write. 0 read-only */
4441 struct KeyInfo *pKeyInfo, /* First arg to comparison function */
4442 BtCursor *pCur /* Space for new cursor */
4443){
4444 int rc;
4445 sqlite3BtreeEnter(p);
4446 rc = btreeCursor(p, iTable, wrFlag, pKeyInfo, pCur);
4447 sqlite3BtreeLeave(p);
4448 return rc;
4449}
drhd677b3d2007-08-20 22:48:41 +00004450int sqlite3BtreeCursor(
danielk1977cd3e8f72008-03-25 09:47:35 +00004451 Btree *p, /* The btree */
drhabc38152020-07-22 13:38:04 +00004452 Pgno iTable, /* Root page of table to open */
danielk1977cd3e8f72008-03-25 09:47:35 +00004453 int wrFlag, /* 1 to write. 0 read-only */
4454 struct KeyInfo *pKeyInfo, /* First arg to xCompare() */
4455 BtCursor *pCur /* Write new cursor here */
drhd677b3d2007-08-20 22:48:41 +00004456){
drhdb561bc2019-10-25 14:46:05 +00004457 if( p->sharable ){
4458 return btreeCursorWithLock(p, iTable, wrFlag, pKeyInfo, pCur);
dan08f901b2015-05-25 19:24:36 +00004459 }else{
drhdb561bc2019-10-25 14:46:05 +00004460 return btreeCursor(p, iTable, wrFlag, pKeyInfo, pCur);
dan08f901b2015-05-25 19:24:36 +00004461 }
drhd677b3d2007-08-20 22:48:41 +00004462}
drh7f751222009-03-17 22:33:00 +00004463
4464/*
4465** Return the size of a BtCursor object in bytes.
4466**
4467** This interfaces is needed so that users of cursors can preallocate
4468** sufficient storage to hold a cursor. The BtCursor object is opaque
4469** to users so they cannot do the sizeof() themselves - they must call
4470** this routine.
4471*/
4472int sqlite3BtreeCursorSize(void){
drhc54055b2009-11-13 17:05:53 +00004473 return ROUND8(sizeof(BtCursor));
danielk1977cd3e8f72008-03-25 09:47:35 +00004474}
4475
drh7f751222009-03-17 22:33:00 +00004476/*
drhf25a5072009-11-18 23:01:25 +00004477** Initialize memory that will be converted into a BtCursor object.
4478**
4479** The simple approach here would be to memset() the entire object
4480** to zero. But it turns out that the apPage[] and aiIdx[] arrays
4481** do not need to be zeroed and they are large, so we can save a lot
4482** of run-time by skipping the initialization of those elements.
4483*/
4484void sqlite3BtreeCursorZero(BtCursor *p){
drhda6bc672018-01-24 16:04:21 +00004485 memset(p, 0, offsetof(BtCursor, BTCURSOR_FIRST_UNINIT));
drhf25a5072009-11-18 23:01:25 +00004486}
4487
4488/*
drh5e00f6c2001-09-13 13:46:56 +00004489** Close a cursor. The read lock on the database file is released
drhbd03cae2001-06-02 02:40:57 +00004490** when the last cursor is closed.
drha059ad02001-04-17 20:09:11 +00004491*/
drh3aac2dd2004-04-26 14:10:20 +00004492int sqlite3BtreeCloseCursor(BtCursor *pCur){
drhff0587c2007-08-29 17:43:19 +00004493 Btree *pBtree = pCur->pBtree;
danielk1977cd3e8f72008-03-25 09:47:35 +00004494 if( pBtree ){
4495 BtShared *pBt = pCur->pBt;
4496 sqlite3BtreeEnter(pBtree);
drh27fb7462015-06-30 02:47:36 +00004497 assert( pBt->pCursor!=0 );
4498 if( pBt->pCursor==pCur ){
danielk1977cd3e8f72008-03-25 09:47:35 +00004499 pBt->pCursor = pCur->pNext;
drh27fb7462015-06-30 02:47:36 +00004500 }else{
4501 BtCursor *pPrev = pBt->pCursor;
4502 do{
4503 if( pPrev->pNext==pCur ){
4504 pPrev->pNext = pCur->pNext;
4505 break;
4506 }
4507 pPrev = pPrev->pNext;
4508 }while( ALWAYS(pPrev) );
danielk1977cd3e8f72008-03-25 09:47:35 +00004509 }
drh352a35a2017-08-15 03:46:47 +00004510 btreeReleaseAllCursorPages(pCur);
danielk1977cd3e8f72008-03-25 09:47:35 +00004511 unlockBtreeIfUnused(pBt);
dan85753662014-12-11 16:38:18 +00004512 sqlite3_free(pCur->aOverflow);
drhf38dd3b2017-08-14 23:53:02 +00004513 sqlite3_free(pCur->pKey);
danielk1977cd3e8f72008-03-25 09:47:35 +00004514 sqlite3BtreeLeave(pBtree);
dan97c8cb32019-01-01 18:00:17 +00004515 pCur->pBtree = 0;
drha059ad02001-04-17 20:09:11 +00004516 }
drh8c42ca92001-06-22 19:15:00 +00004517 return SQLITE_OK;
drha059ad02001-04-17 20:09:11 +00004518}
4519
drh5e2f8b92001-05-28 00:41:15 +00004520/*
drh86057612007-06-26 01:04:48 +00004521** Make sure the BtCursor* given in the argument has a valid
4522** BtCursor.info structure. If it is not already valid, call
danielk197730548662009-07-09 05:07:37 +00004523** btreeParseCell() to fill it in.
drhab01f612004-05-22 02:55:23 +00004524**
4525** BtCursor.info is a cache of the information in the current cell.
danielk197730548662009-07-09 05:07:37 +00004526** Using this cache reduces the number of calls to btreeParseCell().
drh9188b382004-05-14 21:12:22 +00004527*/
drh9188b382004-05-14 21:12:22 +00004528#ifndef NDEBUG
drha224ee22018-02-19 13:53:56 +00004529 static int cellInfoEqual(CellInfo *a, CellInfo *b){
4530 if( a->nKey!=b->nKey ) return 0;
4531 if( a->pPayload!=b->pPayload ) return 0;
4532 if( a->nPayload!=b->nPayload ) return 0;
4533 if( a->nLocal!=b->nLocal ) return 0;
4534 if( a->nSize!=b->nSize ) return 0;
4535 return 1;
4536 }
danielk19771cc5ed82007-05-16 17:28:43 +00004537 static void assertCellInfo(BtCursor *pCur){
drh9188b382004-05-14 21:12:22 +00004538 CellInfo info;
drh51c6d962004-06-06 00:42:25 +00004539 memset(&info, 0, sizeof(info));
drh352a35a2017-08-15 03:46:47 +00004540 btreeParseCell(pCur->pPage, pCur->ix, &info);
drha224ee22018-02-19 13:53:56 +00004541 assert( CORRUPT_DB || cellInfoEqual(&info, &pCur->info) );
drh9188b382004-05-14 21:12:22 +00004542 }
danielk19771cc5ed82007-05-16 17:28:43 +00004543#else
4544 #define assertCellInfo(x)
4545#endif
drhc5b41ac2015-06-17 02:11:46 +00004546static SQLITE_NOINLINE void getCellInfo(BtCursor *pCur){
4547 if( pCur->info.nSize==0 ){
drhc5b41ac2015-06-17 02:11:46 +00004548 pCur->curFlags |= BTCF_ValidNKey;
drh352a35a2017-08-15 03:46:47 +00004549 btreeParseCell(pCur->pPage,pCur->ix,&pCur->info);
drhc5b41ac2015-06-17 02:11:46 +00004550 }else{
4551 assertCellInfo(pCur);
drh86057612007-06-26 01:04:48 +00004552 }
drhc5b41ac2015-06-17 02:11:46 +00004553}
drh9188b382004-05-14 21:12:22 +00004554
drhea8ffdf2009-07-22 00:35:23 +00004555#ifndef NDEBUG /* The next routine used only within assert() statements */
4556/*
4557** Return true if the given BtCursor is valid. A valid cursor is one
4558** that is currently pointing to a row in a (non-empty) table.
4559** This is a verification routine is used only within assert() statements.
4560*/
4561int sqlite3BtreeCursorIsValid(BtCursor *pCur){
4562 return pCur && pCur->eState==CURSOR_VALID;
4563}
4564#endif /* NDEBUG */
drhd6ef5af2016-11-15 04:00:24 +00004565int sqlite3BtreeCursorIsValidNN(BtCursor *pCur){
4566 assert( pCur!=0 );
4567 return pCur->eState==CURSOR_VALID;
4568}
drhea8ffdf2009-07-22 00:35:23 +00004569
drh9188b382004-05-14 21:12:22 +00004570/*
drha7c90c42016-06-04 20:37:10 +00004571** Return the value of the integer key or "rowid" for a table btree.
4572** This routine is only valid for a cursor that is pointing into a
4573** ordinary table btree. If the cursor points to an index btree or
4574** is invalid, the result of this routine is undefined.
drh7e3b0a02001-04-28 16:52:40 +00004575*/
drha7c90c42016-06-04 20:37:10 +00004576i64 sqlite3BtreeIntegerKey(BtCursor *pCur){
drh1fee73e2007-08-29 04:00:57 +00004577 assert( cursorHoldsMutex(pCur) );
drhc5352b92014-11-17 20:33:07 +00004578 assert( pCur->eState==CURSOR_VALID );
drha7c90c42016-06-04 20:37:10 +00004579 assert( pCur->curIntKey );
drhc5352b92014-11-17 20:33:07 +00004580 getCellInfo(pCur);
drha7c90c42016-06-04 20:37:10 +00004581 return pCur->info.nKey;
drha059ad02001-04-17 20:09:11 +00004582}
drh2af926b2001-05-15 00:39:25 +00004583
drh7b14b652019-12-29 22:08:20 +00004584/*
4585** Pin or unpin a cursor.
4586*/
4587void sqlite3BtreeCursorPin(BtCursor *pCur){
4588 assert( (pCur->curFlags & BTCF_Pinned)==0 );
4589 pCur->curFlags |= BTCF_Pinned;
4590}
4591void sqlite3BtreeCursorUnpin(BtCursor *pCur){
4592 assert( (pCur->curFlags & BTCF_Pinned)!=0 );
4593 pCur->curFlags &= ~BTCF_Pinned;
4594}
4595
drh092457b2017-12-29 15:04:49 +00004596#ifdef SQLITE_ENABLE_OFFSET_SQL_FUNC
drh72f82862001-05-24 21:06:34 +00004597/*
drh2fc865c2017-12-16 20:20:37 +00004598** Return the offset into the database file for the start of the
4599** payload to which the cursor is pointing.
4600*/
drh092457b2017-12-29 15:04:49 +00004601i64 sqlite3BtreeOffset(BtCursor *pCur){
drh2fc865c2017-12-16 20:20:37 +00004602 assert( cursorHoldsMutex(pCur) );
4603 assert( pCur->eState==CURSOR_VALID );
drh2fc865c2017-12-16 20:20:37 +00004604 getCellInfo(pCur);
drhfe6d20e2017-12-29 14:33:54 +00004605 return (i64)pCur->pBt->pageSize*((i64)pCur->pPage->pgno - 1) +
drh2fc865c2017-12-16 20:20:37 +00004606 (i64)(pCur->info.pPayload - pCur->pPage->aData);
4607}
drh092457b2017-12-29 15:04:49 +00004608#endif /* SQLITE_ENABLE_OFFSET_SQL_FUNC */
drh2fc865c2017-12-16 20:20:37 +00004609
4610/*
drha7c90c42016-06-04 20:37:10 +00004611** Return the number of bytes of payload for the entry that pCur is
4612** currently pointing to. For table btrees, this will be the amount
4613** of data. For index btrees, this will be the size of the key.
drhea8ffdf2009-07-22 00:35:23 +00004614**
4615** The caller must guarantee that the cursor is pointing to a non-NULL
4616** valid entry. In other words, the calling procedure must guarantee
4617** that the cursor has Cursor.eState==CURSOR_VALID.
drh0e1c19e2004-05-11 00:58:56 +00004618*/
drha7c90c42016-06-04 20:37:10 +00004619u32 sqlite3BtreePayloadSize(BtCursor *pCur){
4620 assert( cursorHoldsMutex(pCur) );
drhea8ffdf2009-07-22 00:35:23 +00004621 assert( pCur->eState==CURSOR_VALID );
4622 getCellInfo(pCur);
drha7c90c42016-06-04 20:37:10 +00004623 return pCur->info.nPayload;
drh0e1c19e2004-05-11 00:58:56 +00004624}
4625
4626/*
drh53d30dd2019-02-04 21:10:24 +00004627** Return an upper bound on the size of any record for the table
4628** that the cursor is pointing into.
4629**
4630** This is an optimization. Everything will still work if this
4631** routine always returns 2147483647 (which is the largest record
4632** that SQLite can handle) or more. But returning a smaller value might
4633** prevent large memory allocations when trying to interpret a
4634** corrupt datrabase.
4635**
4636** The current implementation merely returns the size of the underlying
4637** database file.
4638*/
4639sqlite3_int64 sqlite3BtreeMaxRecordSize(BtCursor *pCur){
4640 assert( cursorHoldsMutex(pCur) );
4641 assert( pCur->eState==CURSOR_VALID );
4642 return pCur->pBt->pageSize * (sqlite3_int64)pCur->pBt->nPage;
4643}
4644
4645/*
danielk1977d04417962007-05-02 13:16:30 +00004646** Given the page number of an overflow page in the database (parameter
4647** ovfl), this function finds the page number of the next page in the
4648** linked list of overflow pages. If possible, it uses the auto-vacuum
4649** pointer-map data instead of reading the content of page ovfl to do so.
4650**
4651** If an error occurs an SQLite error code is returned. Otherwise:
4652**
danielk1977bea2a942009-01-20 17:06:27 +00004653** The page number of the next overflow page in the linked list is
4654** written to *pPgnoNext. If page ovfl is the last page in its linked
4655** list, *pPgnoNext is set to zero.
danielk1977d04417962007-05-02 13:16:30 +00004656**
danielk1977bea2a942009-01-20 17:06:27 +00004657** If ppPage is not NULL, and a reference to the MemPage object corresponding
4658** to page number pOvfl was obtained, then *ppPage is set to point to that
4659** reference. It is the responsibility of the caller to call releasePage()
4660** on *ppPage to free the reference. In no reference was obtained (because
4661** the pointer-map was used to obtain the value for *pPgnoNext), then
4662** *ppPage is set to zero.
danielk1977d04417962007-05-02 13:16:30 +00004663*/
4664static int getOverflowPage(
drhfa3be902009-07-07 02:44:07 +00004665 BtShared *pBt, /* The database file */
4666 Pgno ovfl, /* Current overflow page number */
danielk1977bea2a942009-01-20 17:06:27 +00004667 MemPage **ppPage, /* OUT: MemPage handle (may be NULL) */
danielk1977d04417962007-05-02 13:16:30 +00004668 Pgno *pPgnoNext /* OUT: Next overflow page number */
4669){
4670 Pgno next = 0;
danielk1977bea2a942009-01-20 17:06:27 +00004671 MemPage *pPage = 0;
drh1bd10f82008-12-10 21:19:56 +00004672 int rc = SQLITE_OK;
danielk1977d04417962007-05-02 13:16:30 +00004673
drh1fee73e2007-08-29 04:00:57 +00004674 assert( sqlite3_mutex_held(pBt->mutex) );
danielk1977bea2a942009-01-20 17:06:27 +00004675 assert(pPgnoNext);
danielk1977d04417962007-05-02 13:16:30 +00004676
4677#ifndef SQLITE_OMIT_AUTOVACUUM
4678 /* Try to find the next page in the overflow list using the
4679 ** autovacuum pointer-map pages. Guess that the next page in
4680 ** the overflow list is page number (ovfl+1). If that guess turns
4681 ** out to be wrong, fall back to loading the data of page
4682 ** number ovfl to determine the next page number.
4683 */
4684 if( pBt->autoVacuum ){
4685 Pgno pgno;
4686 Pgno iGuess = ovfl+1;
4687 u8 eType;
4688
4689 while( PTRMAP_ISPAGE(pBt, iGuess) || iGuess==PENDING_BYTE_PAGE(pBt) ){
4690 iGuess++;
4691 }
4692
drhb1299152010-03-30 22:58:33 +00004693 if( iGuess<=btreePagecount(pBt) ){
danielk1977d04417962007-05-02 13:16:30 +00004694 rc = ptrmapGet(pBt, iGuess, &eType, &pgno);
danielk1977bea2a942009-01-20 17:06:27 +00004695 if( rc==SQLITE_OK && eType==PTRMAP_OVERFLOW2 && pgno==ovfl ){
danielk1977d04417962007-05-02 13:16:30 +00004696 next = iGuess;
danielk1977bea2a942009-01-20 17:06:27 +00004697 rc = SQLITE_DONE;
danielk1977d04417962007-05-02 13:16:30 +00004698 }
4699 }
4700 }
4701#endif
4702
danielk1977d8a3f3d2009-07-11 11:45:23 +00004703 assert( next==0 || rc==SQLITE_DONE );
danielk1977bea2a942009-01-20 17:06:27 +00004704 if( rc==SQLITE_OK ){
drhb00fc3b2013-08-21 23:42:32 +00004705 rc = btreeGetPage(pBt, ovfl, &pPage, (ppPage==0) ? PAGER_GET_READONLY : 0);
danielk1977d8a3f3d2009-07-11 11:45:23 +00004706 assert( rc==SQLITE_OK || pPage==0 );
4707 if( rc==SQLITE_OK ){
danielk1977d04417962007-05-02 13:16:30 +00004708 next = get4byte(pPage->aData);
4709 }
danielk1977443c0592009-01-16 15:21:05 +00004710 }
danielk197745d68822009-01-16 16:23:38 +00004711
danielk1977bea2a942009-01-20 17:06:27 +00004712 *pPgnoNext = next;
4713 if( ppPage ){
4714 *ppPage = pPage;
4715 }else{
4716 releasePage(pPage);
4717 }
4718 return (rc==SQLITE_DONE ? SQLITE_OK : rc);
danielk1977d04417962007-05-02 13:16:30 +00004719}
4720
danielk1977da107192007-05-04 08:32:13 +00004721/*
4722** Copy data from a buffer to a page, or from a page to a buffer.
4723**
4724** pPayload is a pointer to data stored on database page pDbPage.
4725** If argument eOp is false, then nByte bytes of data are copied
4726** from pPayload to the buffer pointed at by pBuf. If eOp is true,
4727** then sqlite3PagerWrite() is called on pDbPage and nByte bytes
4728** of data are copied from the buffer pBuf to pPayload.
4729**
4730** SQLITE_OK is returned on success, otherwise an error code.
4731*/
4732static int copyPayload(
4733 void *pPayload, /* Pointer to page data */
4734 void *pBuf, /* Pointer to buffer */
4735 int nByte, /* Number of bytes to copy */
4736 int eOp, /* 0 -> copy from page, 1 -> copy to page */
4737 DbPage *pDbPage /* Page containing pPayload */
4738){
4739 if( eOp ){
4740 /* Copy data from buffer to page (a write operation) */
4741 int rc = sqlite3PagerWrite(pDbPage);
4742 if( rc!=SQLITE_OK ){
4743 return rc;
4744 }
4745 memcpy(pPayload, pBuf, nByte);
4746 }else{
4747 /* Copy data from page to buffer (a read operation) */
4748 memcpy(pBuf, pPayload, nByte);
4749 }
4750 return SQLITE_OK;
4751}
danielk1977d04417962007-05-02 13:16:30 +00004752
4753/*
danielk19779f8d6402007-05-02 17:48:45 +00004754** This function is used to read or overwrite payload information
dan5a500af2014-03-11 20:33:04 +00004755** for the entry that the pCur cursor is pointing to. The eOp
4756** argument is interpreted as follows:
4757**
4758** 0: The operation is a read. Populate the overflow cache.
4759** 1: The operation is a write. Populate the overflow cache.
danielk19779f8d6402007-05-02 17:48:45 +00004760**
4761** A total of "amt" bytes are read or written beginning at "offset".
4762** Data is read to or from the buffer pBuf.
drh72f82862001-05-24 21:06:34 +00004763**
drh3bcdfd22009-07-12 02:32:21 +00004764** The content being read or written might appear on the main page
4765** or be scattered out on multiple overflow pages.
danielk1977da107192007-05-04 08:32:13 +00004766**
drh42e28f12017-01-27 00:31:59 +00004767** If the current cursor entry uses one or more overflow pages
4768** this function may allocate space for and lazily populate
4769** the overflow page-list cache array (BtCursor.aOverflow).
dan5a500af2014-03-11 20:33:04 +00004770** Subsequent calls use this cache to make seeking to the supplied offset
4771** more efficient.
danielk1977da107192007-05-04 08:32:13 +00004772**
drh42e28f12017-01-27 00:31:59 +00004773** Once an overflow page-list cache has been allocated, it must be
danielk1977da107192007-05-04 08:32:13 +00004774** invalidated if some other cursor writes to the same table, or if
4775** the cursor is moved to a different row. Additionally, in auto-vacuum
4776** mode, the following events may invalidate an overflow page-list cache.
4777**
4778** * An incremental vacuum,
4779** * A commit in auto_vacuum="full" mode,
4780** * Creating a table (may require moving an overflow page).
drh72f82862001-05-24 21:06:34 +00004781*/
danielk19779f8d6402007-05-02 17:48:45 +00004782static int accessPayload(
drh3aac2dd2004-04-26 14:10:20 +00004783 BtCursor *pCur, /* Cursor pointing to entry to read from */
danielk197789d40042008-11-17 14:20:56 +00004784 u32 offset, /* Begin reading this far into payload */
4785 u32 amt, /* Read this many bytes */
drh3aac2dd2004-04-26 14:10:20 +00004786 unsigned char *pBuf, /* Write the bytes into this buffer */
danielk19779f8d6402007-05-02 17:48:45 +00004787 int eOp /* zero to read. non-zero to write. */
drh3aac2dd2004-04-26 14:10:20 +00004788){
4789 unsigned char *aPayload;
danielk1977da107192007-05-04 08:32:13 +00004790 int rc = SQLITE_OK;
danielk19772dec9702007-05-02 16:48:37 +00004791 int iIdx = 0;
drh352a35a2017-08-15 03:46:47 +00004792 MemPage *pPage = pCur->pPage; /* Btree page of current entry */
danielk19770d065412008-11-12 18:21:36 +00004793 BtShared *pBt = pCur->pBt; /* Btree this cursor belongs to */
drh4c417182014-03-31 23:57:41 +00004794#ifdef SQLITE_DIRECT_OVERFLOW_READ
drh8bb9fd32017-01-26 16:27:32 +00004795 unsigned char * const pBufStart = pBuf; /* Start of original out buffer */
drh4c417182014-03-31 23:57:41 +00004796#endif
drh3aac2dd2004-04-26 14:10:20 +00004797
danielk1977da107192007-05-04 08:32:13 +00004798 assert( pPage );
drh42e28f12017-01-27 00:31:59 +00004799 assert( eOp==0 || eOp==1 );
danielk1977da184232006-01-05 11:34:32 +00004800 assert( pCur->eState==CURSOR_VALID );
drh75e96b32017-04-01 00:20:06 +00004801 assert( pCur->ix<pPage->nCell );
drh1fee73e2007-08-29 04:00:57 +00004802 assert( cursorHoldsMutex(pCur) );
danielk1977da107192007-05-04 08:32:13 +00004803
drh86057612007-06-26 01:04:48 +00004804 getCellInfo(pCur);
drhab1cc582014-09-23 21:25:19 +00004805 aPayload = pCur->info.pPayload;
drhab1cc582014-09-23 21:25:19 +00004806 assert( offset+amt <= pCur->info.nPayload );
danielk1977da107192007-05-04 08:32:13 +00004807
drh0b982072016-03-22 14:10:45 +00004808 assert( aPayload > pPage->aData );
drhc5e7f942016-03-22 15:25:16 +00004809 if( (uptr)(aPayload - pPage->aData) > (pBt->usableSize - pCur->info.nLocal) ){
drh0b982072016-03-22 14:10:45 +00004810 /* Trying to read or write past the end of the data is an error. The
4811 ** conditional above is really:
4812 ** &aPayload[pCur->info.nLocal] > &pPage->aData[pBt->usableSize]
4813 ** but is recast into its current form to avoid integer overflow problems
4814 */
daneebf2f52017-11-18 17:30:08 +00004815 return SQLITE_CORRUPT_PAGE(pPage);
drh3aac2dd2004-04-26 14:10:20 +00004816 }
danielk1977da107192007-05-04 08:32:13 +00004817
4818 /* Check if data must be read/written to/from the btree page itself. */
drhfa1a98a2004-05-14 19:08:17 +00004819 if( offset<pCur->info.nLocal ){
drh2af926b2001-05-15 00:39:25 +00004820 int a = amt;
drhfa1a98a2004-05-14 19:08:17 +00004821 if( a+offset>pCur->info.nLocal ){
4822 a = pCur->info.nLocal - offset;
drh2af926b2001-05-15 00:39:25 +00004823 }
drh42e28f12017-01-27 00:31:59 +00004824 rc = copyPayload(&aPayload[offset], pBuf, a, eOp, pPage->pDbPage);
drh2aa679f2001-06-25 02:11:07 +00004825 offset = 0;
drha34b6762004-05-07 13:30:42 +00004826 pBuf += a;
drh2af926b2001-05-15 00:39:25 +00004827 amt -= a;
drhdd793422001-06-28 01:54:48 +00004828 }else{
drhfa1a98a2004-05-14 19:08:17 +00004829 offset -= pCur->info.nLocal;
drhbd03cae2001-06-02 02:40:57 +00004830 }
danielk1977da107192007-05-04 08:32:13 +00004831
dan85753662014-12-11 16:38:18 +00004832
danielk1977da107192007-05-04 08:32:13 +00004833 if( rc==SQLITE_OK && amt>0 ){
danielk197789d40042008-11-17 14:20:56 +00004834 const u32 ovflSize = pBt->usableSize - 4; /* Bytes content per ovfl page */
danielk1977da107192007-05-04 08:32:13 +00004835 Pgno nextPage;
4836
drhfa1a98a2004-05-14 19:08:17 +00004837 nextPage = get4byte(&aPayload[pCur->info.nLocal]);
drh584e8b72020-07-22 17:12:59 +00004838
drha38c9512014-04-01 01:24:34 +00004839 /* If the BtCursor.aOverflow[] has not been allocated, allocate it now.
drha38c9512014-04-01 01:24:34 +00004840 **
4841 ** The aOverflow[] array is sized at one entry for each overflow page
4842 ** in the overflow chain. The page number of the first overflow page is
4843 ** stored in aOverflow[0], etc. A value of 0 in the aOverflow[] array
4844 ** means "not yet known" (the cache is lazily populated).
danielk1977da107192007-05-04 08:32:13 +00004845 */
drh42e28f12017-01-27 00:31:59 +00004846 if( (pCur->curFlags & BTCF_ValidOvfl)==0 ){
danielk19772dec9702007-05-02 16:48:37 +00004847 int nOvfl = (pCur->info.nPayload-pCur->info.nLocal+ovflSize-1)/ovflSize;
drhda6bc672018-01-24 16:04:21 +00004848 if( pCur->aOverflow==0
mistachkin97f90592018-02-04 01:30:54 +00004849 || nOvfl*(int)sizeof(Pgno) > sqlite3MallocSize(pCur->aOverflow)
drhda6bc672018-01-24 16:04:21 +00004850 ){
dan85753662014-12-11 16:38:18 +00004851 Pgno *aNew = (Pgno*)sqlite3Realloc(
4852 pCur->aOverflow, nOvfl*2*sizeof(Pgno)
dan5a500af2014-03-11 20:33:04 +00004853 );
4854 if( aNew==0 ){
drhcd645532017-01-20 20:43:14 +00004855 return SQLITE_NOMEM_BKPT;
dan5a500af2014-03-11 20:33:04 +00004856 }else{
dan5a500af2014-03-11 20:33:04 +00004857 pCur->aOverflow = aNew;
4858 }
4859 }
drhcd645532017-01-20 20:43:14 +00004860 memset(pCur->aOverflow, 0, nOvfl*sizeof(Pgno));
4861 pCur->curFlags |= BTCF_ValidOvfl;
drhcdf360a2017-01-27 01:13:49 +00004862 }else{
4863 /* If the overflow page-list cache has been allocated and the
4864 ** entry for the first required overflow page is valid, skip
4865 ** directly to it.
4866 */
4867 if( pCur->aOverflow[offset/ovflSize] ){
4868 iIdx = (offset/ovflSize);
4869 nextPage = pCur->aOverflow[iIdx];
4870 offset = (offset%ovflSize);
4871 }
danielk19772dec9702007-05-02 16:48:37 +00004872 }
danielk1977da107192007-05-04 08:32:13 +00004873
drhcd645532017-01-20 20:43:14 +00004874 assert( rc==SQLITE_OK && amt>0 );
4875 while( nextPage ){
danielk1977da107192007-05-04 08:32:13 +00004876 /* If required, populate the overflow page-list cache. */
drh584e8b72020-07-22 17:12:59 +00004877 if( nextPage > pBt->nPage ) return SQLITE_CORRUPT_BKPT;
drh42e28f12017-01-27 00:31:59 +00004878 assert( pCur->aOverflow[iIdx]==0
4879 || pCur->aOverflow[iIdx]==nextPage
4880 || CORRUPT_DB );
4881 pCur->aOverflow[iIdx] = nextPage;
danielk1977da107192007-05-04 08:32:13 +00004882
danielk1977d04417962007-05-02 13:16:30 +00004883 if( offset>=ovflSize ){
4884 /* The only reason to read this page is to obtain the page
danielk1977da107192007-05-04 08:32:13 +00004885 ** number for the next page in the overflow chain. The page
drhfd131da2007-08-07 17:13:03 +00004886 ** data is not required. So first try to lookup the overflow
4887 ** page-list cache, if any, then fall back to the getOverflowPage()
danielk1977da107192007-05-04 08:32:13 +00004888 ** function.
danielk1977d04417962007-05-02 13:16:30 +00004889 */
drha38c9512014-04-01 01:24:34 +00004890 assert( pCur->curFlags & BTCF_ValidOvfl );
dan85753662014-12-11 16:38:18 +00004891 assert( pCur->pBtree->db==pBt->db );
drha38c9512014-04-01 01:24:34 +00004892 if( pCur->aOverflow[iIdx+1] ){
danielk1977da107192007-05-04 08:32:13 +00004893 nextPage = pCur->aOverflow[iIdx+1];
drha38c9512014-04-01 01:24:34 +00004894 }else{
danielk1977da107192007-05-04 08:32:13 +00004895 rc = getOverflowPage(pBt, nextPage, 0, &nextPage);
drha38c9512014-04-01 01:24:34 +00004896 }
danielk1977da107192007-05-04 08:32:13 +00004897 offset -= ovflSize;
danielk1977d04417962007-05-02 13:16:30 +00004898 }else{
danielk19779f8d6402007-05-02 17:48:45 +00004899 /* Need to read this page properly. It contains some of the
4900 ** range of data that is being read (eOp==0) or written (eOp!=0).
danielk1977d04417962007-05-02 13:16:30 +00004901 */
danielk1977cfe9a692004-06-16 12:00:29 +00004902 int a = amt;
danf4ba1092011-10-08 14:57:07 +00004903 if( a + offset > ovflSize ){
4904 a = ovflSize - offset;
danielk19779f8d6402007-05-02 17:48:45 +00004905 }
danf4ba1092011-10-08 14:57:07 +00004906
4907#ifdef SQLITE_DIRECT_OVERFLOW_READ
4908 /* If all the following are true:
4909 **
4910 ** 1) this is a read operation, and
4911 ** 2) data is required from the start of this overflow page, and
dan09236752018-11-22 19:10:14 +00004912 ** 3) there are no dirty pages in the page-cache
drh8bb9fd32017-01-26 16:27:32 +00004913 ** 4) the database is file-backed, and
drhd930b5c2017-01-26 02:26:02 +00004914 ** 5) the page is not in the WAL file
drh8bb9fd32017-01-26 16:27:32 +00004915 ** 6) at least 4 bytes have already been read into the output buffer
danf4ba1092011-10-08 14:57:07 +00004916 **
4917 ** then data can be read directly from the database file into the
4918 ** output buffer, bypassing the page-cache altogether. This speeds
4919 ** up loading large records that span many overflow pages.
4920 */
drh42e28f12017-01-27 00:31:59 +00004921 if( eOp==0 /* (1) */
danf4ba1092011-10-08 14:57:07 +00004922 && offset==0 /* (2) */
dan09236752018-11-22 19:10:14 +00004923 && sqlite3PagerDirectReadOk(pBt->pPager, nextPage) /* (3,4,5) */
drh8bb9fd32017-01-26 16:27:32 +00004924 && &pBuf[-4]>=pBufStart /* (6) */
danf4ba1092011-10-08 14:57:07 +00004925 ){
dan09236752018-11-22 19:10:14 +00004926 sqlite3_file *fd = sqlite3PagerFile(pBt->pPager);
danf4ba1092011-10-08 14:57:07 +00004927 u8 aSave[4];
4928 u8 *aWrite = &pBuf[-4];
drh8bb9fd32017-01-26 16:27:32 +00004929 assert( aWrite>=pBufStart ); /* due to (6) */
danf4ba1092011-10-08 14:57:07 +00004930 memcpy(aSave, aWrite, 4);
dan27d47fb2011-12-21 17:00:16 +00004931 rc = sqlite3OsRead(fd, aWrite, a+4, (i64)pBt->pageSize*(nextPage-1));
drhb9fc4552019-08-15 00:04:44 +00004932 if( rc && nextPage>pBt->nPage ) rc = SQLITE_CORRUPT_BKPT;
danf4ba1092011-10-08 14:57:07 +00004933 nextPage = get4byte(aWrite);
4934 memcpy(aWrite, aSave, 4);
4935 }else
4936#endif
4937
4938 {
4939 DbPage *pDbPage;
drh9584f582015-11-04 20:22:37 +00004940 rc = sqlite3PagerGet(pBt->pPager, nextPage, &pDbPage,
drh42e28f12017-01-27 00:31:59 +00004941 (eOp==0 ? PAGER_GET_READONLY : 0)
dan11dcd112013-03-15 18:29:18 +00004942 );
danf4ba1092011-10-08 14:57:07 +00004943 if( rc==SQLITE_OK ){
4944 aPayload = sqlite3PagerGetData(pDbPage);
4945 nextPage = get4byte(aPayload);
drh42e28f12017-01-27 00:31:59 +00004946 rc = copyPayload(&aPayload[offset+4], pBuf, a, eOp, pDbPage);
danf4ba1092011-10-08 14:57:07 +00004947 sqlite3PagerUnref(pDbPage);
4948 offset = 0;
4949 }
4950 }
4951 amt -= a;
drh6ee610b2017-01-27 01:25:00 +00004952 if( amt==0 ) return rc;
danf4ba1092011-10-08 14:57:07 +00004953 pBuf += a;
danielk1977cfe9a692004-06-16 12:00:29 +00004954 }
drhcd645532017-01-20 20:43:14 +00004955 if( rc ) break;
4956 iIdx++;
drh2af926b2001-05-15 00:39:25 +00004957 }
drh2af926b2001-05-15 00:39:25 +00004958 }
danielk1977cfe9a692004-06-16 12:00:29 +00004959
danielk1977da107192007-05-04 08:32:13 +00004960 if( rc==SQLITE_OK && amt>0 ){
drhcc97ca42017-06-07 22:32:59 +00004961 /* Overflow chain ends prematurely */
daneebf2f52017-11-18 17:30:08 +00004962 return SQLITE_CORRUPT_PAGE(pPage);
drha7fcb052001-12-14 15:09:55 +00004963 }
danielk1977da107192007-05-04 08:32:13 +00004964 return rc;
drh2af926b2001-05-15 00:39:25 +00004965}
4966
drh72f82862001-05-24 21:06:34 +00004967/*
drhcb3cabd2016-11-25 19:18:28 +00004968** Read part of the payload for the row at which that cursor pCur is currently
4969** pointing. "amt" bytes will be transferred into pBuf[]. The transfer
drh3aac2dd2004-04-26 14:10:20 +00004970** begins at "offset".
drh8c1238a2003-01-02 14:43:55 +00004971**
drhcb3cabd2016-11-25 19:18:28 +00004972** pCur can be pointing to either a table or an index b-tree.
4973** If pointing to a table btree, then the content section is read. If
4974** pCur is pointing to an index b-tree then the key section is read.
4975**
4976** For sqlite3BtreePayload(), the caller must ensure that pCur is pointing
4977** to a valid row in the table. For sqlite3BtreePayloadChecked(), the
4978** cursor might be invalid or might need to be restored before being read.
drh5d1a8722009-07-22 18:07:40 +00004979**
drh3aac2dd2004-04-26 14:10:20 +00004980** Return SQLITE_OK on success or an error code if anything goes
4981** wrong. An error is returned if "offset+amt" is larger than
4982** the available payload.
drh72f82862001-05-24 21:06:34 +00004983*/
drhcb3cabd2016-11-25 19:18:28 +00004984int sqlite3BtreePayload(BtCursor *pCur, u32 offset, u32 amt, void *pBuf){
drh1fee73e2007-08-29 04:00:57 +00004985 assert( cursorHoldsMutex(pCur) );
drh5d1a8722009-07-22 18:07:40 +00004986 assert( pCur->eState==CURSOR_VALID );
drh352a35a2017-08-15 03:46:47 +00004987 assert( pCur->iPage>=0 && pCur->pPage );
4988 assert( pCur->ix<pCur->pPage->nCell );
drh5d1a8722009-07-22 18:07:40 +00004989 return accessPayload(pCur, offset, amt, (unsigned char*)pBuf, 0);
drh3aac2dd2004-04-26 14:10:20 +00004990}
drh83ec2762017-01-26 16:54:47 +00004991
4992/*
4993** This variant of sqlite3BtreePayload() works even if the cursor has not
4994** in the CURSOR_VALID state. It is only used by the sqlite3_blob_read()
4995** interface.
4996*/
danielk19773588ceb2008-06-10 17:30:26 +00004997#ifndef SQLITE_OMIT_INCRBLOB
drh83ec2762017-01-26 16:54:47 +00004998static SQLITE_NOINLINE int accessPayloadChecked(
4999 BtCursor *pCur,
5000 u32 offset,
5001 u32 amt,
5002 void *pBuf
5003){
drhcb3cabd2016-11-25 19:18:28 +00005004 int rc;
danielk19773588ceb2008-06-10 17:30:26 +00005005 if ( pCur->eState==CURSOR_INVALID ){
5006 return SQLITE_ABORT;
5007 }
dan7a2347e2016-01-07 16:43:54 +00005008 assert( cursorOwnsBtShared(pCur) );
drh945b0942017-01-26 21:30:00 +00005009 rc = btreeRestoreCursorPosition(pCur);
drh83ec2762017-01-26 16:54:47 +00005010 return rc ? rc : accessPayload(pCur, offset, amt, pBuf, 0);
5011}
5012int sqlite3BtreePayloadChecked(BtCursor *pCur, u32 offset, u32 amt, void *pBuf){
5013 if( pCur->eState==CURSOR_VALID ){
5014 assert( cursorOwnsBtShared(pCur) );
5015 return accessPayload(pCur, offset, amt, pBuf, 0);
5016 }else{
5017 return accessPayloadChecked(pCur, offset, amt, pBuf);
danielk1977da184232006-01-05 11:34:32 +00005018 }
drh2af926b2001-05-15 00:39:25 +00005019}
drhcb3cabd2016-11-25 19:18:28 +00005020#endif /* SQLITE_OMIT_INCRBLOB */
drh2af926b2001-05-15 00:39:25 +00005021
drh72f82862001-05-24 21:06:34 +00005022/*
drh0e1c19e2004-05-11 00:58:56 +00005023** Return a pointer to payload information from the entry that the
5024** pCur cursor is pointing to. The pointer is to the beginning of
drh2a8d2262013-12-09 20:43:22 +00005025** the key if index btrees (pPage->intKey==0) and is the data for
5026** table btrees (pPage->intKey==1). The number of bytes of available
5027** key/data is written into *pAmt. If *pAmt==0, then the value
5028** returned will not be a valid pointer.
drh0e1c19e2004-05-11 00:58:56 +00005029**
5030** This routine is an optimization. It is common for the entire key
5031** and data to fit on the local page and for there to be no overflow
5032** pages. When that is so, this routine can be used to access the
5033** key and data without making a copy. If the key and/or data spills
drh7f751222009-03-17 22:33:00 +00005034** onto overflow pages, then accessPayload() must be used to reassemble
drh0e1c19e2004-05-11 00:58:56 +00005035** the key/data and copy it into a preallocated buffer.
5036**
5037** The pointer returned by this routine looks directly into the cached
5038** page of the database. The data might change or move the next time
5039** any btree routine is called.
5040*/
drh2a8d2262013-12-09 20:43:22 +00005041static const void *fetchPayload(
drh0e1c19e2004-05-11 00:58:56 +00005042 BtCursor *pCur, /* Cursor pointing to entry to read from */
drh2a8d2262013-12-09 20:43:22 +00005043 u32 *pAmt /* Write the number of available bytes here */
drh0e1c19e2004-05-11 00:58:56 +00005044){
danf2f72a02017-10-19 15:17:38 +00005045 int amt;
drh352a35a2017-08-15 03:46:47 +00005046 assert( pCur!=0 && pCur->iPage>=0 && pCur->pPage);
danielk1977da184232006-01-05 11:34:32 +00005047 assert( pCur->eState==CURSOR_VALID );
drh2a8d2262013-12-09 20:43:22 +00005048 assert( sqlite3_mutex_held(pCur->pBtree->db->mutex) );
dan7a2347e2016-01-07 16:43:54 +00005049 assert( cursorOwnsBtShared(pCur) );
drh352a35a2017-08-15 03:46:47 +00005050 assert( pCur->ix<pCur->pPage->nCell );
drh86dd3712014-03-25 11:00:21 +00005051 assert( pCur->info.nSize>0 );
drh352a35a2017-08-15 03:46:47 +00005052 assert( pCur->info.pPayload>pCur->pPage->aData || CORRUPT_DB );
5053 assert( pCur->info.pPayload<pCur->pPage->aDataEnd ||CORRUPT_DB);
danf2f72a02017-10-19 15:17:38 +00005054 amt = pCur->info.nLocal;
5055 if( amt>(int)(pCur->pPage->aDataEnd - pCur->info.pPayload) ){
5056 /* There is too little space on the page for the expected amount
5057 ** of local content. Database must be corrupt. */
5058 assert( CORRUPT_DB );
5059 amt = MAX(0, (int)(pCur->pPage->aDataEnd - pCur->info.pPayload));
5060 }
5061 *pAmt = (u32)amt;
drhab1cc582014-09-23 21:25:19 +00005062 return (void*)pCur->info.pPayload;
drh0e1c19e2004-05-11 00:58:56 +00005063}
5064
5065
5066/*
drhe51c44f2004-05-30 20:46:09 +00005067** For the entry that cursor pCur is point to, return as
5068** many bytes of the key or data as are available on the local
5069** b-tree page. Write the number of available bytes into *pAmt.
drh0e1c19e2004-05-11 00:58:56 +00005070**
5071** The pointer returned is ephemeral. The key/data may move
drhd677b3d2007-08-20 22:48:41 +00005072** or be destroyed on the next call to any Btree routine,
5073** including calls from other threads against the same cache.
5074** Hence, a mutex on the BtShared should be held prior to calling
5075** this routine.
drh0e1c19e2004-05-11 00:58:56 +00005076**
5077** These routines is used to get quick access to key and data
5078** in the common case where no overflow pages are used.
drh0e1c19e2004-05-11 00:58:56 +00005079*/
drha7c90c42016-06-04 20:37:10 +00005080const void *sqlite3BtreePayloadFetch(BtCursor *pCur, u32 *pAmt){
drh2a8d2262013-12-09 20:43:22 +00005081 return fetchPayload(pCur, pAmt);
drh0e1c19e2004-05-11 00:58:56 +00005082}
5083
5084
5085/*
drh8178a752003-01-05 21:41:40 +00005086** Move the cursor down to a new child page. The newPgno argument is the
drhab01f612004-05-22 02:55:23 +00005087** page number of the child page to move to.
danielk1977a299d612009-07-13 11:22:10 +00005088**
5089** This function returns SQLITE_CORRUPT if the page-header flags field of
5090** the new child page does not match the flags field of the parent (i.e.
5091** if an intkey page appears to be the parent of a non-intkey page, or
5092** vice-versa).
drh72f82862001-05-24 21:06:34 +00005093*/
drh3aac2dd2004-04-26 14:10:20 +00005094static int moveToChild(BtCursor *pCur, u32 newPgno){
drhd0679ed2007-08-28 22:24:34 +00005095 BtShared *pBt = pCur->pBt;
drh72f82862001-05-24 21:06:34 +00005096
dan7a2347e2016-01-07 16:43:54 +00005097 assert( cursorOwnsBtShared(pCur) );
danielk1977da184232006-01-05 11:34:32 +00005098 assert( pCur->eState==CURSOR_VALID );
danielk197771d5d2c2008-09-29 11:49:47 +00005099 assert( pCur->iPage<BTCURSOR_MAX_DEPTH );
dan11dcd112013-03-15 18:29:18 +00005100 assert( pCur->iPage>=0 );
danielk197771d5d2c2008-09-29 11:49:47 +00005101 if( pCur->iPage>=(BTCURSOR_MAX_DEPTH-1) ){
5102 return SQLITE_CORRUPT_BKPT;
5103 }
drh271efa52004-05-30 19:19:05 +00005104 pCur->info.nSize = 0;
drh036dbec2014-03-11 23:40:44 +00005105 pCur->curFlags &= ~(BTCF_ValidNKey|BTCF_ValidOvfl);
drh352a35a2017-08-15 03:46:47 +00005106 pCur->aiIdx[pCur->iPage] = pCur->ix;
5107 pCur->apPage[pCur->iPage] = pCur->pPage;
drh75e96b32017-04-01 00:20:06 +00005108 pCur->ix = 0;
drh352a35a2017-08-15 03:46:47 +00005109 pCur->iPage++;
5110 return getAndInitPage(pBt, newPgno, &pCur->pPage, pCur, pCur->curPagerFlags);
drh72f82862001-05-24 21:06:34 +00005111}
5112
drhd879e3e2017-02-13 13:35:55 +00005113#ifdef SQLITE_DEBUG
danielk1977bf93c562008-09-29 15:53:25 +00005114/*
5115** Page pParent is an internal (non-leaf) tree page. This function
5116** asserts that page number iChild is the left-child if the iIdx'th
5117** cell in page pParent. Or, if iIdx is equal to the total number of
5118** cells in pParent, that page number iChild is the right-child of
5119** the page.
5120*/
5121static void assertParentIndex(MemPage *pParent, int iIdx, Pgno iChild){
drhcbd33492015-03-25 13:06:54 +00005122 if( CORRUPT_DB ) return; /* The conditions tested below might not be true
5123 ** in a corrupt database */
danielk1977bf93c562008-09-29 15:53:25 +00005124 assert( iIdx<=pParent->nCell );
5125 if( iIdx==pParent->nCell ){
5126 assert( get4byte(&pParent->aData[pParent->hdrOffset+8])==iChild );
5127 }else{
5128 assert( get4byte(findCell(pParent, iIdx))==iChild );
5129 }
5130}
5131#else
5132# define assertParentIndex(x,y,z)
5133#endif
5134
drh72f82862001-05-24 21:06:34 +00005135/*
drh5e2f8b92001-05-28 00:41:15 +00005136** Move the cursor up to the parent page.
5137**
5138** pCur->idx is set to the cell index that contains the pointer
5139** to the page we are coming from. If we are coming from the
5140** right-most child page then pCur->idx is set to one more than
drhbd03cae2001-06-02 02:40:57 +00005141** the largest cell index.
drh72f82862001-05-24 21:06:34 +00005142*/
danielk197730548662009-07-09 05:07:37 +00005143static void moveToParent(BtCursor *pCur){
drh352a35a2017-08-15 03:46:47 +00005144 MemPage *pLeaf;
dan7a2347e2016-01-07 16:43:54 +00005145 assert( cursorOwnsBtShared(pCur) );
danielk1977da184232006-01-05 11:34:32 +00005146 assert( pCur->eState==CURSOR_VALID );
danielk197771d5d2c2008-09-29 11:49:47 +00005147 assert( pCur->iPage>0 );
drh352a35a2017-08-15 03:46:47 +00005148 assert( pCur->pPage );
danielk1977bf93c562008-09-29 15:53:25 +00005149 assertParentIndex(
5150 pCur->apPage[pCur->iPage-1],
5151 pCur->aiIdx[pCur->iPage-1],
drh352a35a2017-08-15 03:46:47 +00005152 pCur->pPage->pgno
danielk1977bf93c562008-09-29 15:53:25 +00005153 );
dan6c2688c2012-01-12 15:05:03 +00005154 testcase( pCur->aiIdx[pCur->iPage-1] > pCur->apPage[pCur->iPage-1]->nCell );
drh271efa52004-05-30 19:19:05 +00005155 pCur->info.nSize = 0;
drh036dbec2014-03-11 23:40:44 +00005156 pCur->curFlags &= ~(BTCF_ValidNKey|BTCF_ValidOvfl);
drh75e96b32017-04-01 00:20:06 +00005157 pCur->ix = pCur->aiIdx[pCur->iPage-1];
drh352a35a2017-08-15 03:46:47 +00005158 pLeaf = pCur->pPage;
5159 pCur->pPage = pCur->apPage[--pCur->iPage];
5160 releasePageNotNull(pLeaf);
drh72f82862001-05-24 21:06:34 +00005161}
5162
5163/*
danielk19778f880a82009-07-13 09:41:45 +00005164** Move the cursor to point to the root page of its b-tree structure.
5165**
5166** If the table has a virtual root page, then the cursor is moved to point
5167** to the virtual root page instead of the actual root page. A table has a
5168** virtual root page when the actual root page contains no cells and a
5169** single child page. This can only happen with the table rooted at page 1.
5170**
5171** If the b-tree structure is empty, the cursor state is set to
drh44548e72017-08-14 18:13:52 +00005172** CURSOR_INVALID and this routine returns SQLITE_EMPTY. Otherwise,
5173** the cursor is set to point to the first cell located on the root
5174** (or virtual root) page and the cursor state is set to CURSOR_VALID.
danielk19778f880a82009-07-13 09:41:45 +00005175**
5176** If this function returns successfully, it may be assumed that the
5177** page-header flags indicate that the [virtual] root-page is the expected
5178** kind of b-tree page (i.e. if when opening the cursor the caller did not
5179** specify a KeyInfo structure the flags byte is set to 0x05 or 0x0D,
5180** indicating a table b-tree, or if the caller did specify a KeyInfo
5181** structure the flags byte is set to 0x02 or 0x0A, indicating an index
5182** b-tree).
drh72f82862001-05-24 21:06:34 +00005183*/
drh5e2f8b92001-05-28 00:41:15 +00005184static int moveToRoot(BtCursor *pCur){
drh3aac2dd2004-04-26 14:10:20 +00005185 MemPage *pRoot;
drh777e4c42006-01-13 04:31:58 +00005186 int rc = SQLITE_OK;
drhbd03cae2001-06-02 02:40:57 +00005187
dan7a2347e2016-01-07 16:43:54 +00005188 assert( cursorOwnsBtShared(pCur) );
drhfb982642007-08-30 01:19:59 +00005189 assert( CURSOR_INVALID < CURSOR_REQUIRESEEK );
5190 assert( CURSOR_VALID < CURSOR_REQUIRESEEK );
5191 assert( CURSOR_FAULT > CURSOR_REQUIRESEEK );
drh85ef6302017-08-02 15:50:09 +00005192 assert( pCur->eState < CURSOR_REQUIRESEEK || pCur->iPage<0 );
drh44548e72017-08-14 18:13:52 +00005193 assert( pCur->pgnoRoot>0 || pCur->iPage<0 );
danielk197771d5d2c2008-09-29 11:49:47 +00005194
5195 if( pCur->iPage>=0 ){
drh7ad3eb62016-10-24 01:01:09 +00005196 if( pCur->iPage ){
drh352a35a2017-08-15 03:46:47 +00005197 releasePageNotNull(pCur->pPage);
5198 while( --pCur->iPage ){
5199 releasePageNotNull(pCur->apPage[pCur->iPage]);
5200 }
5201 pCur->pPage = pCur->apPage[0];
drh7ad3eb62016-10-24 01:01:09 +00005202 goto skip_init;
drhbbf0f862015-06-27 14:59:26 +00005203 }
dana205a482011-08-27 18:48:57 +00005204 }else if( pCur->pgnoRoot==0 ){
5205 pCur->eState = CURSOR_INVALID;
drh44548e72017-08-14 18:13:52 +00005206 return SQLITE_EMPTY;
drh777e4c42006-01-13 04:31:58 +00005207 }else{
drh28f58dd2015-06-27 19:45:03 +00005208 assert( pCur->iPage==(-1) );
drh85ef6302017-08-02 15:50:09 +00005209 if( pCur->eState>=CURSOR_REQUIRESEEK ){
5210 if( pCur->eState==CURSOR_FAULT ){
5211 assert( pCur->skipNext!=SQLITE_OK );
5212 return pCur->skipNext;
5213 }
5214 sqlite3BtreeClearCursor(pCur);
5215 }
drh352a35a2017-08-15 03:46:47 +00005216 rc = getAndInitPage(pCur->pBtree->pBt, pCur->pgnoRoot, &pCur->pPage,
drh15a00212015-06-27 20:55:00 +00005217 0, pCur->curPagerFlags);
drh4c301aa2009-07-15 17:25:45 +00005218 if( rc!=SQLITE_OK ){
drh777e4c42006-01-13 04:31:58 +00005219 pCur->eState = CURSOR_INVALID;
drhf0357d82017-08-14 17:03:58 +00005220 return rc;
drh777e4c42006-01-13 04:31:58 +00005221 }
danielk1977172114a2009-07-07 15:47:12 +00005222 pCur->iPage = 0;
drh352a35a2017-08-15 03:46:47 +00005223 pCur->curIntKey = pCur->pPage->intKey;
drhc39e0002004-05-07 23:50:57 +00005224 }
drh352a35a2017-08-15 03:46:47 +00005225 pRoot = pCur->pPage;
danielk197771d5d2c2008-09-29 11:49:47 +00005226 assert( pRoot->pgno==pCur->pgnoRoot );
dan7df42ab2014-01-20 18:25:44 +00005227
5228 /* If pCur->pKeyInfo is not NULL, then the caller that opened this cursor
5229 ** expected to open it on an index b-tree. Otherwise, if pKeyInfo is
5230 ** NULL, the caller expects a table b-tree. If this is not the case,
5231 ** return an SQLITE_CORRUPT error.
5232 **
5233 ** Earlier versions of SQLite assumed that this test could not fail
5234 ** if the root page was already loaded when this function was called (i.e.
5235 ** if pCur->iPage>=0). But this is not so if the database is corrupted
5236 ** in such a way that page pRoot is linked into a second b-tree table
5237 ** (or the freelist). */
5238 assert( pRoot->intKey==1 || pRoot->intKey==0 );
5239 if( pRoot->isInit==0 || (pCur->pKeyInfo==0)!=pRoot->intKey ){
daneebf2f52017-11-18 17:30:08 +00005240 return SQLITE_CORRUPT_PAGE(pCur->pPage);
dan7df42ab2014-01-20 18:25:44 +00005241 }
danielk19778f880a82009-07-13 09:41:45 +00005242
drh7ad3eb62016-10-24 01:01:09 +00005243skip_init:
drh75e96b32017-04-01 00:20:06 +00005244 pCur->ix = 0;
drh271efa52004-05-30 19:19:05 +00005245 pCur->info.nSize = 0;
drh036dbec2014-03-11 23:40:44 +00005246 pCur->curFlags &= ~(BTCF_AtLast|BTCF_ValidNKey|BTCF_ValidOvfl);
danielk197771d5d2c2008-09-29 11:49:47 +00005247
drh352a35a2017-08-15 03:46:47 +00005248 pRoot = pCur->pPage;
drh4e8fe3f2013-12-06 23:25:27 +00005249 if( pRoot->nCell>0 ){
5250 pCur->eState = CURSOR_VALID;
5251 }else if( !pRoot->leaf ){
drh8856d6a2004-04-29 14:42:46 +00005252 Pgno subpage;
drhc85240d2009-06-04 16:14:33 +00005253 if( pRoot->pgno!=1 ) return SQLITE_CORRUPT_BKPT;
drh43605152004-05-29 21:46:49 +00005254 subpage = get4byte(&pRoot->aData[pRoot->hdrOffset+8]);
danielk1977da184232006-01-05 11:34:32 +00005255 pCur->eState = CURSOR_VALID;
drh4b70f112004-05-02 21:12:19 +00005256 rc = moveToChild(pCur, subpage);
danielk197771d5d2c2008-09-29 11:49:47 +00005257 }else{
drh4e8fe3f2013-12-06 23:25:27 +00005258 pCur->eState = CURSOR_INVALID;
drh44548e72017-08-14 18:13:52 +00005259 rc = SQLITE_EMPTY;
drh8856d6a2004-04-29 14:42:46 +00005260 }
5261 return rc;
drh72f82862001-05-24 21:06:34 +00005262}
drh2af926b2001-05-15 00:39:25 +00005263
drh5e2f8b92001-05-28 00:41:15 +00005264/*
5265** Move the cursor down to the left-most leaf entry beneath the
5266** entry to which it is currently pointing.
drh777e4c42006-01-13 04:31:58 +00005267**
5268** The left-most leaf is the one with the smallest key - the first
5269** in ascending order.
drh5e2f8b92001-05-28 00:41:15 +00005270*/
5271static int moveToLeftmost(BtCursor *pCur){
5272 Pgno pgno;
drhd677b3d2007-08-20 22:48:41 +00005273 int rc = SQLITE_OK;
drh3aac2dd2004-04-26 14:10:20 +00005274 MemPage *pPage;
drh5e2f8b92001-05-28 00:41:15 +00005275
dan7a2347e2016-01-07 16:43:54 +00005276 assert( cursorOwnsBtShared(pCur) );
danielk1977da184232006-01-05 11:34:32 +00005277 assert( pCur->eState==CURSOR_VALID );
drh352a35a2017-08-15 03:46:47 +00005278 while( rc==SQLITE_OK && !(pPage = pCur->pPage)->leaf ){
drh75e96b32017-04-01 00:20:06 +00005279 assert( pCur->ix<pPage->nCell );
5280 pgno = get4byte(findCell(pPage, pCur->ix));
drh8178a752003-01-05 21:41:40 +00005281 rc = moveToChild(pCur, pgno);
drh5e2f8b92001-05-28 00:41:15 +00005282 }
drhd677b3d2007-08-20 22:48:41 +00005283 return rc;
drh5e2f8b92001-05-28 00:41:15 +00005284}
5285
drh2dcc9aa2002-12-04 13:40:25 +00005286/*
5287** Move the cursor down to the right-most leaf entry beneath the
5288** page to which it is currently pointing. Notice the difference
5289** between moveToLeftmost() and moveToRightmost(). moveToLeftmost()
5290** finds the left-most entry beneath the *entry* whereas moveToRightmost()
5291** finds the right-most entry beneath the *page*.
drh777e4c42006-01-13 04:31:58 +00005292**
5293** The right-most entry is the one with the largest key - the last
5294** key in ascending order.
drh2dcc9aa2002-12-04 13:40:25 +00005295*/
5296static int moveToRightmost(BtCursor *pCur){
5297 Pgno pgno;
drhd677b3d2007-08-20 22:48:41 +00005298 int rc = SQLITE_OK;
drh1bd10f82008-12-10 21:19:56 +00005299 MemPage *pPage = 0;
drh2dcc9aa2002-12-04 13:40:25 +00005300
dan7a2347e2016-01-07 16:43:54 +00005301 assert( cursorOwnsBtShared(pCur) );
danielk1977da184232006-01-05 11:34:32 +00005302 assert( pCur->eState==CURSOR_VALID );
drh352a35a2017-08-15 03:46:47 +00005303 while( !(pPage = pCur->pPage)->leaf ){
drh43605152004-05-29 21:46:49 +00005304 pgno = get4byte(&pPage->aData[pPage->hdrOffset+8]);
drh75e96b32017-04-01 00:20:06 +00005305 pCur->ix = pPage->nCell;
drh8178a752003-01-05 21:41:40 +00005306 rc = moveToChild(pCur, pgno);
drhee6438d2014-09-01 13:29:32 +00005307 if( rc ) return rc;
drh2dcc9aa2002-12-04 13:40:25 +00005308 }
drh75e96b32017-04-01 00:20:06 +00005309 pCur->ix = pPage->nCell-1;
drhee6438d2014-09-01 13:29:32 +00005310 assert( pCur->info.nSize==0 );
5311 assert( (pCur->curFlags & BTCF_ValidNKey)==0 );
5312 return SQLITE_OK;
drh2dcc9aa2002-12-04 13:40:25 +00005313}
5314
drh5e00f6c2001-09-13 13:46:56 +00005315/* Move the cursor to the first entry in the table. Return SQLITE_OK
5316** on success. Set *pRes to 0 if the cursor actually points to something
drh77c679c2002-02-19 22:43:58 +00005317** or set *pRes to 1 if the table is empty.
drh5e00f6c2001-09-13 13:46:56 +00005318*/
drh3aac2dd2004-04-26 14:10:20 +00005319int sqlite3BtreeFirst(BtCursor *pCur, int *pRes){
drh5e00f6c2001-09-13 13:46:56 +00005320 int rc;
drhd677b3d2007-08-20 22:48:41 +00005321
dan7a2347e2016-01-07 16:43:54 +00005322 assert( cursorOwnsBtShared(pCur) );
drhe5fe6902007-12-07 18:55:28 +00005323 assert( sqlite3_mutex_held(pCur->pBtree->db->mutex) );
drh5e00f6c2001-09-13 13:46:56 +00005324 rc = moveToRoot(pCur);
drhd677b3d2007-08-20 22:48:41 +00005325 if( rc==SQLITE_OK ){
drh352a35a2017-08-15 03:46:47 +00005326 assert( pCur->pPage->nCell>0 );
drh44548e72017-08-14 18:13:52 +00005327 *pRes = 0;
5328 rc = moveToLeftmost(pCur);
5329 }else if( rc==SQLITE_EMPTY ){
drh352a35a2017-08-15 03:46:47 +00005330 assert( pCur->pgnoRoot==0 || pCur->pPage->nCell==0 );
drh44548e72017-08-14 18:13:52 +00005331 *pRes = 1;
5332 rc = SQLITE_OK;
drh5e00f6c2001-09-13 13:46:56 +00005333 }
drh5e00f6c2001-09-13 13:46:56 +00005334 return rc;
5335}
drh5e2f8b92001-05-28 00:41:15 +00005336
drh9562b552002-02-19 15:00:07 +00005337/* Move the cursor to the last entry in the table. Return SQLITE_OK
5338** on success. Set *pRes to 0 if the cursor actually points to something
drh77c679c2002-02-19 22:43:58 +00005339** or set *pRes to 1 if the table is empty.
drh9562b552002-02-19 15:00:07 +00005340*/
drh3aac2dd2004-04-26 14:10:20 +00005341int sqlite3BtreeLast(BtCursor *pCur, int *pRes){
drh9562b552002-02-19 15:00:07 +00005342 int rc;
drhd677b3d2007-08-20 22:48:41 +00005343
dan7a2347e2016-01-07 16:43:54 +00005344 assert( cursorOwnsBtShared(pCur) );
drhe5fe6902007-12-07 18:55:28 +00005345 assert( sqlite3_mutex_held(pCur->pBtree->db->mutex) );
danielk19773f632d52009-05-02 10:03:09 +00005346
5347 /* If the cursor already points to the last entry, this is a no-op. */
drh036dbec2014-03-11 23:40:44 +00005348 if( CURSOR_VALID==pCur->eState && (pCur->curFlags & BTCF_AtLast)!=0 ){
danielk19773f632d52009-05-02 10:03:09 +00005349#ifdef SQLITE_DEBUG
5350 /* This block serves to assert() that the cursor really does point
5351 ** to the last entry in the b-tree. */
5352 int ii;
5353 for(ii=0; ii<pCur->iPage; ii++){
5354 assert( pCur->aiIdx[ii]==pCur->apPage[ii]->nCell );
5355 }
drh352a35a2017-08-15 03:46:47 +00005356 assert( pCur->ix==pCur->pPage->nCell-1 );
5357 assert( pCur->pPage->leaf );
danielk19773f632d52009-05-02 10:03:09 +00005358#endif
drheb265342019-05-08 23:55:04 +00005359 *pRes = 0;
danielk19773f632d52009-05-02 10:03:09 +00005360 return SQLITE_OK;
5361 }
5362
drh9562b552002-02-19 15:00:07 +00005363 rc = moveToRoot(pCur);
drhd677b3d2007-08-20 22:48:41 +00005364 if( rc==SQLITE_OK ){
drh44548e72017-08-14 18:13:52 +00005365 assert( pCur->eState==CURSOR_VALID );
5366 *pRes = 0;
5367 rc = moveToRightmost(pCur);
5368 if( rc==SQLITE_OK ){
5369 pCur->curFlags |= BTCF_AtLast;
drhd677b3d2007-08-20 22:48:41 +00005370 }else{
drh44548e72017-08-14 18:13:52 +00005371 pCur->curFlags &= ~BTCF_AtLast;
drhd677b3d2007-08-20 22:48:41 +00005372 }
drh44548e72017-08-14 18:13:52 +00005373 }else if( rc==SQLITE_EMPTY ){
drh352a35a2017-08-15 03:46:47 +00005374 assert( pCur->pgnoRoot==0 || pCur->pPage->nCell==0 );
drh44548e72017-08-14 18:13:52 +00005375 *pRes = 1;
5376 rc = SQLITE_OK;
drh9562b552002-02-19 15:00:07 +00005377 }
drh9562b552002-02-19 15:00:07 +00005378 return rc;
5379}
5380
drhe14006d2008-03-25 17:23:32 +00005381/* Move the cursor so that it points to an entry near the key
drhe63d9992008-08-13 19:11:48 +00005382** specified by pIdxKey or intKey. Return a success code.
drh72f82862001-05-24 21:06:34 +00005383**
drhe63d9992008-08-13 19:11:48 +00005384** For INTKEY tables, the intKey parameter is used. pIdxKey
5385** must be NULL. For index tables, pIdxKey is used and intKey
5386** is ignored.
drh3aac2dd2004-04-26 14:10:20 +00005387**
drh5e2f8b92001-05-28 00:41:15 +00005388** If an exact match is not found, then the cursor is always
drhbd03cae2001-06-02 02:40:57 +00005389** left pointing at a leaf page which would hold the entry if it
drh5e2f8b92001-05-28 00:41:15 +00005390** were present. The cursor might point to an entry that comes
5391** before or after the key.
5392**
drh64022502009-01-09 14:11:04 +00005393** An integer is written into *pRes which is the result of
5394** comparing the key with the entry to which the cursor is
5395** pointing. The meaning of the integer written into
5396** *pRes is as follows:
drhbd03cae2001-06-02 02:40:57 +00005397**
5398** *pRes<0 The cursor is left pointing at an entry that
drh64022502009-01-09 14:11:04 +00005399** is smaller than intKey/pIdxKey or if the table is empty
drh1a844c32002-12-04 22:29:28 +00005400** and the cursor is therefore left point to nothing.
drhbd03cae2001-06-02 02:40:57 +00005401**
5402** *pRes==0 The cursor is left pointing at an entry that
drh64022502009-01-09 14:11:04 +00005403** exactly matches intKey/pIdxKey.
drhbd03cae2001-06-02 02:40:57 +00005404**
5405** *pRes>0 The cursor is left pointing at an entry that
drh64022502009-01-09 14:11:04 +00005406** is larger than intKey/pIdxKey.
drhd677b3d2007-08-20 22:48:41 +00005407**
drhb1d607d2015-11-05 22:30:54 +00005408** For index tables, the pIdxKey->eqSeen field is set to 1 if there
5409** exists an entry in the table that exactly matches pIdxKey.
drha059ad02001-04-17 20:09:11 +00005410*/
drhe63d9992008-08-13 19:11:48 +00005411int sqlite3BtreeMovetoUnpacked(
5412 BtCursor *pCur, /* The cursor to be moved */
5413 UnpackedRecord *pIdxKey, /* Unpacked index key */
5414 i64 intKey, /* The table key */
5415 int biasRight, /* If true, bias the search to the high end */
5416 int *pRes /* Write search results here */
drhe4d90812007-03-29 05:51:49 +00005417){
drh72f82862001-05-24 21:06:34 +00005418 int rc;
dan3b9330f2014-02-27 20:44:18 +00005419 RecordCompare xRecordCompare;
drhd677b3d2007-08-20 22:48:41 +00005420
dan7a2347e2016-01-07 16:43:54 +00005421 assert( cursorOwnsBtShared(pCur) );
drhe5fe6902007-12-07 18:55:28 +00005422 assert( sqlite3_mutex_held(pCur->pBtree->db->mutex) );
danielk19775cb09632009-07-09 11:36:01 +00005423 assert( pRes );
danielk19773fd7cf52009-07-13 07:30:52 +00005424 assert( (pIdxKey==0)==(pCur->pKeyInfo==0) );
drhdebaa862016-06-13 12:51:20 +00005425 assert( pCur->eState!=CURSOR_VALID || (pIdxKey==0)==(pCur->curIntKey!=0) );
drha2c20e42008-03-29 16:01:04 +00005426
5427 /* If the cursor is already positioned at the point we are trying
5428 ** to move to, then just return without doing any work */
drh05a36092016-06-06 01:54:20 +00005429 if( pIdxKey==0
5430 && pCur->eState==CURSOR_VALID && (pCur->curFlags & BTCF_ValidNKey)!=0
danielk197771d5d2c2008-09-29 11:49:47 +00005431 ){
drhe63d9992008-08-13 19:11:48 +00005432 if( pCur->info.nKey==intKey ){
drha2c20e42008-03-29 16:01:04 +00005433 *pRes = 0;
5434 return SQLITE_OK;
5435 }
drh451e76d2017-01-21 16:54:19 +00005436 if( pCur->info.nKey<intKey ){
5437 if( (pCur->curFlags & BTCF_AtLast)!=0 ){
5438 *pRes = -1;
5439 return SQLITE_OK;
5440 }
drh7f11afa2017-01-21 21:47:54 +00005441 /* If the requested key is one more than the previous key, then
5442 ** try to get there using sqlite3BtreeNext() rather than a full
5443 ** binary search. This is an optimization only. The correct answer
drh2ab792e2017-05-30 18:34:07 +00005444 ** is still obtained without this case, only a little more slowely */
drh0c873bf2019-01-28 00:42:06 +00005445 if( pCur->info.nKey+1==intKey ){
drh7f11afa2017-01-21 21:47:54 +00005446 *pRes = 0;
drh2ab792e2017-05-30 18:34:07 +00005447 rc = sqlite3BtreeNext(pCur, 0);
5448 if( rc==SQLITE_OK ){
drh7f11afa2017-01-21 21:47:54 +00005449 getCellInfo(pCur);
5450 if( pCur->info.nKey==intKey ){
5451 return SQLITE_OK;
5452 }
drh2ab792e2017-05-30 18:34:07 +00005453 }else if( rc==SQLITE_DONE ){
5454 rc = SQLITE_OK;
5455 }else{
5456 return rc;
drh451e76d2017-01-21 16:54:19 +00005457 }
5458 }
drha2c20e42008-03-29 16:01:04 +00005459 }
5460 }
5461
dan1fed5da2014-02-25 21:01:25 +00005462 if( pIdxKey ){
5463 xRecordCompare = sqlite3VdbeFindCompare(pIdxKey);
dan38fdead2014-04-01 10:19:02 +00005464 pIdxKey->errCode = 0;
dan3b9330f2014-02-27 20:44:18 +00005465 assert( pIdxKey->default_rc==1
5466 || pIdxKey->default_rc==0
5467 || pIdxKey->default_rc==-1
5468 );
drh13a747e2014-03-03 21:46:55 +00005469 }else{
drhb6e8fd12014-03-06 01:56:33 +00005470 xRecordCompare = 0; /* All keys are integers */
dan1fed5da2014-02-25 21:01:25 +00005471 }
5472
drh5e2f8b92001-05-28 00:41:15 +00005473 rc = moveToRoot(pCur);
drhd677b3d2007-08-20 22:48:41 +00005474 if( rc ){
drh44548e72017-08-14 18:13:52 +00005475 if( rc==SQLITE_EMPTY ){
drh352a35a2017-08-15 03:46:47 +00005476 assert( pCur->pgnoRoot==0 || pCur->pPage->nCell==0 );
drh44548e72017-08-14 18:13:52 +00005477 *pRes = -1;
5478 return SQLITE_OK;
5479 }
drhd677b3d2007-08-20 22:48:41 +00005480 return rc;
5481 }
drh352a35a2017-08-15 03:46:47 +00005482 assert( pCur->pPage );
5483 assert( pCur->pPage->isInit );
drh44548e72017-08-14 18:13:52 +00005484 assert( pCur->eState==CURSOR_VALID );
drh352a35a2017-08-15 03:46:47 +00005485 assert( pCur->pPage->nCell > 0 );
5486 assert( pCur->iPage==0 || pCur->apPage[0]->intKey==pCur->curIntKey );
drhc75d8862015-06-27 23:55:20 +00005487 assert( pCur->curIntKey || pIdxKey );
drh14684382006-11-30 13:05:29 +00005488 for(;;){
drhec3e6b12013-11-25 02:38:55 +00005489 int lwr, upr, idx, c;
drh72f82862001-05-24 21:06:34 +00005490 Pgno chldPg;
drh352a35a2017-08-15 03:46:47 +00005491 MemPage *pPage = pCur->pPage;
drhec3e6b12013-11-25 02:38:55 +00005492 u8 *pCell; /* Pointer to current cell in pPage */
danielk1977171fff32009-07-11 05:06:51 +00005493
5494 /* pPage->nCell must be greater than zero. If this is the root-page
5495 ** the cursor would have been INVALID above and this for(;;) loop
5496 ** not run. If this is not the root-page, then the moveToChild() routine
danielk19773fd7cf52009-07-13 07:30:52 +00005497 ** would have already detected db corruption. Similarly, pPage must
5498 ** be the right kind (index or table) of b-tree page. Otherwise
5499 ** a moveToChild() or moveToRoot() call would have detected corruption. */
danielk1977171fff32009-07-11 05:06:51 +00005500 assert( pPage->nCell>0 );
danielk19773fd7cf52009-07-13 07:30:52 +00005501 assert( pPage->intKey==(pIdxKey==0) );
drh72f82862001-05-24 21:06:34 +00005502 lwr = 0;
5503 upr = pPage->nCell-1;
drhebf10b12013-11-25 17:38:26 +00005504 assert( biasRight==0 || biasRight==1 );
5505 idx = upr>>(1-biasRight); /* idx = biasRight ? upr : (lwr+upr)/2; */
drh75e96b32017-04-01 00:20:06 +00005506 pCur->ix = (u16)idx;
dana4660bd2014-03-04 16:05:25 +00005507 if( xRecordCompare==0 ){
drhec3e6b12013-11-25 02:38:55 +00005508 for(;;){
danielk197711c327a2009-05-04 19:01:26 +00005509 i64 nCellKey;
drhf44890a2015-06-27 03:58:15 +00005510 pCell = findCellPastPtr(pPage, idx);
drh3e28ff52014-09-24 00:59:08 +00005511 if( pPage->intKeyLeaf ){
drh9b2fc612013-11-25 20:14:13 +00005512 while( 0x80 <= *(pCell++) ){
drhcc97ca42017-06-07 22:32:59 +00005513 if( pCell>=pPage->aDataEnd ){
daneebf2f52017-11-18 17:30:08 +00005514 return SQLITE_CORRUPT_PAGE(pPage);
drhcc97ca42017-06-07 22:32:59 +00005515 }
drh9b2fc612013-11-25 20:14:13 +00005516 }
drhd172f862006-01-12 15:01:15 +00005517 }
drha2c20e42008-03-29 16:01:04 +00005518 getVarint(pCell, (u64*)&nCellKey);
drhbb933ef2013-11-25 15:01:38 +00005519 if( nCellKey<intKey ){
5520 lwr = idx+1;
5521 if( lwr>upr ){ c = -1; break; }
5522 }else if( nCellKey>intKey ){
5523 upr = idx-1;
5524 if( lwr>upr ){ c = +1; break; }
5525 }else{
5526 assert( nCellKey==intKey );
drh75e96b32017-04-01 00:20:06 +00005527 pCur->ix = (u16)idx;
drhec3e6b12013-11-25 02:38:55 +00005528 if( !pPage->leaf ){
5529 lwr = idx;
drhebf10b12013-11-25 17:38:26 +00005530 goto moveto_next_layer;
drhec3e6b12013-11-25 02:38:55 +00005531 }else{
drhd95ef5c2016-11-11 18:19:05 +00005532 pCur->curFlags |= BTCF_ValidNKey;
5533 pCur->info.nKey = nCellKey;
5534 pCur->info.nSize = 0;
drhec3e6b12013-11-25 02:38:55 +00005535 *pRes = 0;
drhd95ef5c2016-11-11 18:19:05 +00005536 return SQLITE_OK;
drhec3e6b12013-11-25 02:38:55 +00005537 }
drhd793f442013-11-25 14:10:15 +00005538 }
drhebf10b12013-11-25 17:38:26 +00005539 assert( lwr+upr>=0 );
5540 idx = (lwr+upr)>>1; /* idx = (lwr+upr)/2; */
drhec3e6b12013-11-25 02:38:55 +00005541 }
5542 }else{
5543 for(;;){
drhc6827502015-05-28 15:14:32 +00005544 int nCell; /* Size of the pCell cell in bytes */
drhf44890a2015-06-27 03:58:15 +00005545 pCell = findCellPastPtr(pPage, idx);
drhec3e6b12013-11-25 02:38:55 +00005546
drhb2eced52010-08-12 02:41:12 +00005547 /* The maximum supported page-size is 65536 bytes. This means that
danielk197711c327a2009-05-04 19:01:26 +00005548 ** the maximum number of record bytes stored on an index B-Tree
drhb2eced52010-08-12 02:41:12 +00005549 ** page is less than 16384 bytes and may be stored as a 2-byte
danielk197711c327a2009-05-04 19:01:26 +00005550 ** varint. This information is used to attempt to avoid parsing
5551 ** the entire cell by checking for the cases where the record is
5552 ** stored entirely within the b-tree page by inspecting the first
5553 ** 2 bytes of the cell.
5554 */
drhec3e6b12013-11-25 02:38:55 +00005555 nCell = pCell[0];
drh72b8ef62013-12-06 22:44:51 +00005556 if( nCell<=pPage->max1bytePayload ){
danielk197711c327a2009-05-04 19:01:26 +00005557 /* This branch runs if the record-size field of the cell is a
5558 ** single byte varint and the record fits entirely on the main
5559 ** b-tree page. */
drh3def2352011-11-11 00:27:15 +00005560 testcase( pCell+nCell+1==pPage->aDataEnd );
drh75179de2014-09-16 14:37:35 +00005561 c = xRecordCompare(nCell, (void*)&pCell[1], pIdxKey);
danielk197711c327a2009-05-04 19:01:26 +00005562 }else if( !(pCell[1] & 0x80)
5563 && (nCell = ((nCell&0x7f)<<7) + pCell[1])<=pPage->maxLocal
5564 ){
5565 /* The record-size field is a 2 byte varint and the record
5566 ** fits entirely on the main b-tree page. */
drh3def2352011-11-11 00:27:15 +00005567 testcase( pCell+nCell+2==pPage->aDataEnd );
drh75179de2014-09-16 14:37:35 +00005568 c = xRecordCompare(nCell, (void*)&pCell[2], pIdxKey);
drhe51c44f2004-05-30 20:46:09 +00005569 }else{
danielk197711c327a2009-05-04 19:01:26 +00005570 /* The record flows over onto one or more overflow pages. In
5571 ** this case the whole cell needs to be parsed, a buffer allocated
5572 ** and accessPayload() used to retrieve the record into the
dan3548db72015-05-27 14:21:05 +00005573 ** buffer before VdbeRecordCompare() can be called.
5574 **
5575 ** If the record is corrupt, the xRecordCompare routine may read
5576 ** up to two varints past the end of the buffer. An extra 18
5577 ** bytes of padding is allocated at the end of the buffer in
5578 ** case this happens. */
danielk197711c327a2009-05-04 19:01:26 +00005579 void *pCellKey;
5580 u8 * const pCellBody = pCell - pPage->childPtrSize;
drh5c2f2202019-05-16 20:36:07 +00005581 const int nOverrun = 18; /* Size of the overrun padding */
drh5fa60512015-06-19 17:19:34 +00005582 pPage->xParseCell(pPage, pCellBody, &pCur->info);
shane60a4b532009-05-06 18:57:09 +00005583 nCell = (int)pCur->info.nKey;
drhc6827502015-05-28 15:14:32 +00005584 testcase( nCell<0 ); /* True if key size is 2^32 or more */
5585 testcase( nCell==0 ); /* Invalid key size: 0x80 0x80 0x00 */
5586 testcase( nCell==1 ); /* Invalid key size: 0x80 0x80 0x01 */
5587 testcase( nCell==2 ); /* Minimum legal index key size */
drh87c3ad42019-01-21 23:18:22 +00005588 if( nCell<2 || nCell/pCur->pBt->usableSize>pCur->pBt->nPage ){
daneebf2f52017-11-18 17:30:08 +00005589 rc = SQLITE_CORRUPT_PAGE(pPage);
dan3548db72015-05-27 14:21:05 +00005590 goto moveto_finish;
5591 }
drh5c2f2202019-05-16 20:36:07 +00005592 pCellKey = sqlite3Malloc( nCell+nOverrun );
danielk19776507ecb2008-03-25 09:56:44 +00005593 if( pCellKey==0 ){
mistachkinfad30392016-02-13 23:43:46 +00005594 rc = SQLITE_NOMEM_BKPT;
danielk19776507ecb2008-03-25 09:56:44 +00005595 goto moveto_finish;
5596 }
drh75e96b32017-04-01 00:20:06 +00005597 pCur->ix = (u16)idx;
drh42e28f12017-01-27 00:31:59 +00005598 rc = accessPayload(pCur, 0, nCell, (unsigned char*)pCellKey, 0);
drh5c2f2202019-05-16 20:36:07 +00005599 memset(((u8*)pCellKey)+nCell,0,nOverrun); /* Fix uninit warnings */
drh42e28f12017-01-27 00:31:59 +00005600 pCur->curFlags &= ~BTCF_ValidOvfl;
drhec9b31f2009-08-25 13:53:49 +00005601 if( rc ){
5602 sqlite3_free(pCellKey);
5603 goto moveto_finish;
5604 }
drh0a31dc22019-03-05 14:39:00 +00005605 c = sqlite3VdbeRecordCompare(nCell, pCellKey, pIdxKey);
drhfacf0302008-06-17 15:12:00 +00005606 sqlite3_free(pCellKey);
drhe51c44f2004-05-30 20:46:09 +00005607 }
dan38fdead2014-04-01 10:19:02 +00005608 assert(
5609 (pIdxKey->errCode!=SQLITE_CORRUPT || c==0)
dana7bf23c2014-05-02 17:12:41 +00005610 && (pIdxKey->errCode!=SQLITE_NOMEM || pCur->pBtree->db->mallocFailed)
dan38fdead2014-04-01 10:19:02 +00005611 );
drhbb933ef2013-11-25 15:01:38 +00005612 if( c<0 ){
5613 lwr = idx+1;
5614 }else if( c>0 ){
5615 upr = idx-1;
5616 }else{
5617 assert( c==0 );
drh64022502009-01-09 14:11:04 +00005618 *pRes = 0;
drh1e968a02008-03-25 00:22:21 +00005619 rc = SQLITE_OK;
drh75e96b32017-04-01 00:20:06 +00005620 pCur->ix = (u16)idx;
mistachkin88a79732017-09-04 19:31:54 +00005621 if( pIdxKey->errCode ) rc = SQLITE_CORRUPT_BKPT;
drh1e968a02008-03-25 00:22:21 +00005622 goto moveto_finish;
drh8b18dd42004-05-12 19:18:15 +00005623 }
drhebf10b12013-11-25 17:38:26 +00005624 if( lwr>upr ) break;
5625 assert( lwr+upr>=0 );
5626 idx = (lwr+upr)>>1; /* idx = (lwr+upr)/2 */
drh72f82862001-05-24 21:06:34 +00005627 }
drh72f82862001-05-24 21:06:34 +00005628 }
drhb07028f2011-10-14 21:49:18 +00005629 assert( lwr==upr+1 || (pPage->intKey && !pPage->leaf) );
danielk197771d5d2c2008-09-29 11:49:47 +00005630 assert( pPage->isInit );
drh3aac2dd2004-04-26 14:10:20 +00005631 if( pPage->leaf ){
drh352a35a2017-08-15 03:46:47 +00005632 assert( pCur->ix<pCur->pPage->nCell );
drh75e96b32017-04-01 00:20:06 +00005633 pCur->ix = (u16)idx;
drhec3e6b12013-11-25 02:38:55 +00005634 *pRes = c;
5635 rc = SQLITE_OK;
5636 goto moveto_finish;
drhebf10b12013-11-25 17:38:26 +00005637 }
5638moveto_next_layer:
5639 if( lwr>=pPage->nCell ){
drh43605152004-05-29 21:46:49 +00005640 chldPg = get4byte(&pPage->aData[pPage->hdrOffset+8]);
drh72f82862001-05-24 21:06:34 +00005641 }else{
danielk19771cc5ed82007-05-16 17:28:43 +00005642 chldPg = get4byte(findCell(pPage, lwr));
drh72f82862001-05-24 21:06:34 +00005643 }
drh75e96b32017-04-01 00:20:06 +00005644 pCur->ix = (u16)lwr;
drh8178a752003-01-05 21:41:40 +00005645 rc = moveToChild(pCur, chldPg);
drhec3e6b12013-11-25 02:38:55 +00005646 if( rc ) break;
drh72f82862001-05-24 21:06:34 +00005647 }
drh1e968a02008-03-25 00:22:21 +00005648moveto_finish:
drhd2022b02013-11-25 16:23:52 +00005649 pCur->info.nSize = 0;
drhd95ef5c2016-11-11 18:19:05 +00005650 assert( (pCur->curFlags & BTCF_ValidOvfl)==0 );
drhe63d9992008-08-13 19:11:48 +00005651 return rc;
5652}
5653
drhd677b3d2007-08-20 22:48:41 +00005654
drh72f82862001-05-24 21:06:34 +00005655/*
drhc39e0002004-05-07 23:50:57 +00005656** Return TRUE if the cursor is not pointing at an entry of the table.
5657**
5658** TRUE will be returned after a call to sqlite3BtreeNext() moves
5659** past the last entry in the table or sqlite3BtreePrev() moves past
5660** the first entry. TRUE is also returned if the table is empty.
5661*/
5662int sqlite3BtreeEof(BtCursor *pCur){
danielk1977da184232006-01-05 11:34:32 +00005663 /* TODO: What if the cursor is in CURSOR_REQUIRESEEK but all table entries
5664 ** have been deleted? This API will need to change to return an error code
5665 ** as well as the boolean result value.
5666 */
5667 return (CURSOR_VALID!=pCur->eState);
drhc39e0002004-05-07 23:50:57 +00005668}
5669
5670/*
drh5e98e832017-02-17 19:24:06 +00005671** Return an estimate for the number of rows in the table that pCur is
5672** pointing to. Return a negative number if no estimate is currently
5673** available.
5674*/
5675i64 sqlite3BtreeRowCountEst(BtCursor *pCur){
5676 i64 n;
5677 u8 i;
5678
5679 assert( cursorOwnsBtShared(pCur) );
5680 assert( sqlite3_mutex_held(pCur->pBtree->db->mutex) );
drh555227b2017-02-23 02:15:33 +00005681
5682 /* Currently this interface is only called by the OP_IfSmaller
5683 ** opcode, and it that case the cursor will always be valid and
5684 ** will always point to a leaf node. */
5685 if( NEVER(pCur->eState!=CURSOR_VALID) ) return -1;
drh352a35a2017-08-15 03:46:47 +00005686 if( NEVER(pCur->pPage->leaf==0) ) return -1;
drh555227b2017-02-23 02:15:33 +00005687
drh352a35a2017-08-15 03:46:47 +00005688 n = pCur->pPage->nCell;
5689 for(i=0; i<pCur->iPage; i++){
drh5e98e832017-02-17 19:24:06 +00005690 n *= pCur->apPage[i]->nCell;
5691 }
5692 return n;
5693}
5694
5695/*
drh2ab792e2017-05-30 18:34:07 +00005696** Advance the cursor to the next entry in the database.
5697** Return value:
5698**
5699** SQLITE_OK success
5700** SQLITE_DONE cursor is already pointing at the last element
5701** otherwise some kind of error occurred
drhe39a7322014-02-03 14:04:11 +00005702**
drhee6438d2014-09-01 13:29:32 +00005703** The main entry point is sqlite3BtreeNext(). That routine is optimized
5704** for the common case of merely incrementing the cell counter BtCursor.aiIdx
5705** to the next cell on the current page. The (slower) btreeNext() helper
5706** routine is called when it is necessary to move to a different page or
5707** to restore the cursor.
5708**
drh89997982017-07-11 18:11:33 +00005709** If bit 0x01 of the F argument in sqlite3BtreeNext(C,F) is 1, then the
5710** cursor corresponds to an SQL index and this routine could have been
5711** skipped if the SQL index had been a unique index. The F argument
5712** is a hint to the implement. SQLite btree implementation does not use
5713** this hint, but COMDB2 does.
drh72f82862001-05-24 21:06:34 +00005714*/
drh89997982017-07-11 18:11:33 +00005715static SQLITE_NOINLINE int btreeNext(BtCursor *pCur){
drh72f82862001-05-24 21:06:34 +00005716 int rc;
danielk197771d5d2c2008-09-29 11:49:47 +00005717 int idx;
danielk197797a227c2006-01-20 16:32:04 +00005718 MemPage *pPage;
drh8b18dd42004-05-12 19:18:15 +00005719
dan7a2347e2016-01-07 16:43:54 +00005720 assert( cursorOwnsBtShared(pCur) );
drhf66f26a2013-08-19 20:04:10 +00005721 if( pCur->eState!=CURSOR_VALID ){
drhee6438d2014-09-01 13:29:32 +00005722 assert( (pCur->curFlags & BTCF_ValidOvfl)==0 );
drhf66f26a2013-08-19 20:04:10 +00005723 rc = restoreCursorPosition(pCur);
5724 if( rc!=SQLITE_OK ){
5725 return rc;
5726 }
5727 if( CURSOR_INVALID==pCur->eState ){
drh2ab792e2017-05-30 18:34:07 +00005728 return SQLITE_DONE;
drhf66f26a2013-08-19 20:04:10 +00005729 }
drh0c873bf2019-01-28 00:42:06 +00005730 if( pCur->eState==CURSOR_SKIPNEXT ){
drh9b47ee32013-08-20 03:13:51 +00005731 pCur->eState = CURSOR_VALID;
drh0c873bf2019-01-28 00:42:06 +00005732 if( pCur->skipNext>0 ) return SQLITE_OK;
drhf66f26a2013-08-19 20:04:10 +00005733 }
danielk1977da184232006-01-05 11:34:32 +00005734 }
danielk1977da184232006-01-05 11:34:32 +00005735
drh352a35a2017-08-15 03:46:47 +00005736 pPage = pCur->pPage;
drh75e96b32017-04-01 00:20:06 +00005737 idx = ++pCur->ix;
drhf3cd0c82018-06-08 19:13:57 +00005738 if( !pPage->isInit ){
5739 /* The only known way for this to happen is for there to be a
5740 ** recursive SQL function that does a DELETE operation as part of a
5741 ** SELECT which deletes content out from under an active cursor
5742 ** in a corrupt database file where the table being DELETE-ed from
5743 ** has pages in common with the table being queried. See TH3
5744 ** module cov1/btree78.test testcase 220 (2018-06-08) for an
5745 ** example. */
5746 return SQLITE_CORRUPT_BKPT;
5747 }
danbb246c42012-01-12 14:25:55 +00005748
5749 /* If the database file is corrupt, it is possible for the value of idx
5750 ** to be invalid here. This can only occur if a second cursor modifies
5751 ** the page while cursor pCur is holding a reference to it. Which can
5752 ** only happen if the database is corrupt in such a way as to link the
drha2d50282019-12-23 18:02:15 +00005753 ** page into more than one b-tree structure.
5754 **
5755 ** Update 2019-12-23: appears to long longer be possible after the
5756 ** addition of anotherValidCursor() condition on balance_deeper(). */
5757 harmless( idx>pPage->nCell );
danielk19776a43f9b2004-11-16 04:57:24 +00005758
danielk197771d5d2c2008-09-29 11:49:47 +00005759 if( idx>=pPage->nCell ){
drha34b6762004-05-07 13:30:42 +00005760 if( !pPage->leaf ){
drh43605152004-05-29 21:46:49 +00005761 rc = moveToChild(pCur, get4byte(&pPage->aData[pPage->hdrOffset+8]));
drhee6438d2014-09-01 13:29:32 +00005762 if( rc ) return rc;
5763 return moveToLeftmost(pCur);
drh72f82862001-05-24 21:06:34 +00005764 }
drh5e2f8b92001-05-28 00:41:15 +00005765 do{
danielk197771d5d2c2008-09-29 11:49:47 +00005766 if( pCur->iPage==0 ){
danielk1977da184232006-01-05 11:34:32 +00005767 pCur->eState = CURSOR_INVALID;
drh2ab792e2017-05-30 18:34:07 +00005768 return SQLITE_DONE;
drh5e2f8b92001-05-28 00:41:15 +00005769 }
danielk197730548662009-07-09 05:07:37 +00005770 moveToParent(pCur);
drh352a35a2017-08-15 03:46:47 +00005771 pPage = pCur->pPage;
drh75e96b32017-04-01 00:20:06 +00005772 }while( pCur->ix>=pPage->nCell );
drh44845222008-07-17 18:39:57 +00005773 if( pPage->intKey ){
drh89997982017-07-11 18:11:33 +00005774 return sqlite3BtreeNext(pCur, 0);
drh8b18dd42004-05-12 19:18:15 +00005775 }else{
drhee6438d2014-09-01 13:29:32 +00005776 return SQLITE_OK;
drh8b18dd42004-05-12 19:18:15 +00005777 }
drh8178a752003-01-05 21:41:40 +00005778 }
drh3aac2dd2004-04-26 14:10:20 +00005779 if( pPage->leaf ){
drh8178a752003-01-05 21:41:40 +00005780 return SQLITE_OK;
drhee6438d2014-09-01 13:29:32 +00005781 }else{
5782 return moveToLeftmost(pCur);
drh72f82862001-05-24 21:06:34 +00005783 }
drh72f82862001-05-24 21:06:34 +00005784}
drh2ab792e2017-05-30 18:34:07 +00005785int sqlite3BtreeNext(BtCursor *pCur, int flags){
drhee6438d2014-09-01 13:29:32 +00005786 MemPage *pPage;
drh89997982017-07-11 18:11:33 +00005787 UNUSED_PARAMETER( flags ); /* Used in COMDB2 but not native SQLite */
dan7a2347e2016-01-07 16:43:54 +00005788 assert( cursorOwnsBtShared(pCur) );
drh2ab792e2017-05-30 18:34:07 +00005789 assert( flags==0 || flags==1 );
drhee6438d2014-09-01 13:29:32 +00005790 pCur->info.nSize = 0;
5791 pCur->curFlags &= ~(BTCF_ValidNKey|BTCF_ValidOvfl);
drh89997982017-07-11 18:11:33 +00005792 if( pCur->eState!=CURSOR_VALID ) return btreeNext(pCur);
drh352a35a2017-08-15 03:46:47 +00005793 pPage = pCur->pPage;
drh75e96b32017-04-01 00:20:06 +00005794 if( (++pCur->ix)>=pPage->nCell ){
5795 pCur->ix--;
drh89997982017-07-11 18:11:33 +00005796 return btreeNext(pCur);
drhee6438d2014-09-01 13:29:32 +00005797 }
5798 if( pPage->leaf ){
5799 return SQLITE_OK;
5800 }else{
5801 return moveToLeftmost(pCur);
5802 }
5803}
drh72f82862001-05-24 21:06:34 +00005804
drh3b7511c2001-05-26 13:15:44 +00005805/*
drh2ab792e2017-05-30 18:34:07 +00005806** Step the cursor to the back to the previous entry in the database.
5807** Return values:
5808**
5809** SQLITE_OK success
5810** SQLITE_DONE the cursor is already on the first element of the table
5811** otherwise some kind of error occurred
drhe39a7322014-02-03 14:04:11 +00005812**
drhee6438d2014-09-01 13:29:32 +00005813** The main entry point is sqlite3BtreePrevious(). That routine is optimized
5814** for the common case of merely decrementing the cell counter BtCursor.aiIdx
drh3f387402014-09-24 01:23:00 +00005815** to the previous cell on the current page. The (slower) btreePrevious()
5816** helper routine is called when it is necessary to move to a different page
5817** or to restore the cursor.
drhee6438d2014-09-01 13:29:32 +00005818**
drh89997982017-07-11 18:11:33 +00005819** If bit 0x01 of the F argument to sqlite3BtreePrevious(C,F) is 1, then
5820** the cursor corresponds to an SQL index and this routine could have been
5821** skipped if the SQL index had been a unique index. The F argument is a
5822** hint to the implement. The native SQLite btree implementation does not
5823** use this hint, but COMDB2 does.
drh2dcc9aa2002-12-04 13:40:25 +00005824*/
drh89997982017-07-11 18:11:33 +00005825static SQLITE_NOINLINE int btreePrevious(BtCursor *pCur){
drh2dcc9aa2002-12-04 13:40:25 +00005826 int rc;
drh8178a752003-01-05 21:41:40 +00005827 MemPage *pPage;
danielk1977da184232006-01-05 11:34:32 +00005828
dan7a2347e2016-01-07 16:43:54 +00005829 assert( cursorOwnsBtShared(pCur) );
drhee6438d2014-09-01 13:29:32 +00005830 assert( (pCur->curFlags & (BTCF_AtLast|BTCF_ValidOvfl|BTCF_ValidNKey))==0 );
5831 assert( pCur->info.nSize==0 );
drhf66f26a2013-08-19 20:04:10 +00005832 if( pCur->eState!=CURSOR_VALID ){
drh7682a472014-09-29 15:00:28 +00005833 rc = restoreCursorPosition(pCur);
drhee6438d2014-09-01 13:29:32 +00005834 if( rc!=SQLITE_OK ){
5835 return rc;
drhf66f26a2013-08-19 20:04:10 +00005836 }
5837 if( CURSOR_INVALID==pCur->eState ){
drh2ab792e2017-05-30 18:34:07 +00005838 return SQLITE_DONE;
drhf66f26a2013-08-19 20:04:10 +00005839 }
drh0c873bf2019-01-28 00:42:06 +00005840 if( CURSOR_SKIPNEXT==pCur->eState ){
drh9b47ee32013-08-20 03:13:51 +00005841 pCur->eState = CURSOR_VALID;
drh0c873bf2019-01-28 00:42:06 +00005842 if( pCur->skipNext<0 ) return SQLITE_OK;
drhf66f26a2013-08-19 20:04:10 +00005843 }
danielk1977da184232006-01-05 11:34:32 +00005844 }
danielk1977da184232006-01-05 11:34:32 +00005845
drh352a35a2017-08-15 03:46:47 +00005846 pPage = pCur->pPage;
danielk197771d5d2c2008-09-29 11:49:47 +00005847 assert( pPage->isInit );
drha34b6762004-05-07 13:30:42 +00005848 if( !pPage->leaf ){
drh75e96b32017-04-01 00:20:06 +00005849 int idx = pCur->ix;
danielk197771d5d2c2008-09-29 11:49:47 +00005850 rc = moveToChild(pCur, get4byte(findCell(pPage, idx)));
drhee6438d2014-09-01 13:29:32 +00005851 if( rc ) return rc;
drh2dcc9aa2002-12-04 13:40:25 +00005852 rc = moveToRightmost(pCur);
5853 }else{
drh75e96b32017-04-01 00:20:06 +00005854 while( pCur->ix==0 ){
danielk197771d5d2c2008-09-29 11:49:47 +00005855 if( pCur->iPage==0 ){
danielk1977da184232006-01-05 11:34:32 +00005856 pCur->eState = CURSOR_INVALID;
drh2ab792e2017-05-30 18:34:07 +00005857 return SQLITE_DONE;
drh2dcc9aa2002-12-04 13:40:25 +00005858 }
danielk197730548662009-07-09 05:07:37 +00005859 moveToParent(pCur);
drh2dcc9aa2002-12-04 13:40:25 +00005860 }
drhee6438d2014-09-01 13:29:32 +00005861 assert( pCur->info.nSize==0 );
drhd95ef5c2016-11-11 18:19:05 +00005862 assert( (pCur->curFlags & (BTCF_ValidOvfl))==0 );
danielk197771d5d2c2008-09-29 11:49:47 +00005863
drh75e96b32017-04-01 00:20:06 +00005864 pCur->ix--;
drh352a35a2017-08-15 03:46:47 +00005865 pPage = pCur->pPage;
drh44845222008-07-17 18:39:57 +00005866 if( pPage->intKey && !pPage->leaf ){
drh89997982017-07-11 18:11:33 +00005867 rc = sqlite3BtreePrevious(pCur, 0);
drh8b18dd42004-05-12 19:18:15 +00005868 }else{
5869 rc = SQLITE_OK;
5870 }
drh2dcc9aa2002-12-04 13:40:25 +00005871 }
drh2dcc9aa2002-12-04 13:40:25 +00005872 return rc;
5873}
drh2ab792e2017-05-30 18:34:07 +00005874int sqlite3BtreePrevious(BtCursor *pCur, int flags){
dan7a2347e2016-01-07 16:43:54 +00005875 assert( cursorOwnsBtShared(pCur) );
drh2ab792e2017-05-30 18:34:07 +00005876 assert( flags==0 || flags==1 );
drh89997982017-07-11 18:11:33 +00005877 UNUSED_PARAMETER( flags ); /* Used in COMDB2 but not native SQLite */
drhee6438d2014-09-01 13:29:32 +00005878 pCur->curFlags &= ~(BTCF_AtLast|BTCF_ValidOvfl|BTCF_ValidNKey);
5879 pCur->info.nSize = 0;
5880 if( pCur->eState!=CURSOR_VALID
drh75e96b32017-04-01 00:20:06 +00005881 || pCur->ix==0
drh352a35a2017-08-15 03:46:47 +00005882 || pCur->pPage->leaf==0
drhee6438d2014-09-01 13:29:32 +00005883 ){
drh89997982017-07-11 18:11:33 +00005884 return btreePrevious(pCur);
drhee6438d2014-09-01 13:29:32 +00005885 }
drh75e96b32017-04-01 00:20:06 +00005886 pCur->ix--;
drhee6438d2014-09-01 13:29:32 +00005887 return SQLITE_OK;
5888}
drh2dcc9aa2002-12-04 13:40:25 +00005889
5890/*
drh3b7511c2001-05-26 13:15:44 +00005891** Allocate a new page from the database file.
5892**
danielk19773b8a05f2007-03-19 17:44:26 +00005893** The new page is marked as dirty. (In other words, sqlite3PagerWrite()
drh3b7511c2001-05-26 13:15:44 +00005894** has already been called on the new page.) The new page has also
5895** been referenced and the calling routine is responsible for calling
danielk19773b8a05f2007-03-19 17:44:26 +00005896** sqlite3PagerUnref() on the new page when it is done.
drh3b7511c2001-05-26 13:15:44 +00005897**
5898** SQLITE_OK is returned on success. Any other return value indicates
drh1c8bade2015-05-29 18:42:11 +00005899** an error. *ppPage is set to NULL in the event of an error.
drhbea00b92002-07-08 10:59:50 +00005900**
drh82e647d2013-03-02 03:25:55 +00005901** If the "nearby" parameter is not 0, then an effort is made to
drh199e3cf2002-07-18 11:01:47 +00005902** locate a page close to the page number "nearby". This can be used in an
drhbea00b92002-07-08 10:59:50 +00005903** attempt to keep related pages close to each other in the database file,
5904** which in turn can make database access faster.
danielk1977cb1a7eb2004-11-05 12:27:02 +00005905**
drh82e647d2013-03-02 03:25:55 +00005906** If the eMode parameter is BTALLOC_EXACT and the nearby page exists
5907** anywhere on the free-list, then it is guaranteed to be returned. If
5908** eMode is BTALLOC_LT then the page returned will be less than or equal
5909** to nearby if any such page exists. If eMode is BTALLOC_ANY then there
5910** are no restrictions on which page is returned.
drh3b7511c2001-05-26 13:15:44 +00005911*/
drh4f0c5872007-03-26 22:05:01 +00005912static int allocateBtreePage(
drh82e647d2013-03-02 03:25:55 +00005913 BtShared *pBt, /* The btree */
5914 MemPage **ppPage, /* Store pointer to the allocated page here */
5915 Pgno *pPgno, /* Store the page number here */
5916 Pgno nearby, /* Search for a page near this one */
5917 u8 eMode /* BTALLOC_EXACT, BTALLOC_LT, or BTALLOC_ANY */
danielk1977cb1a7eb2004-11-05 12:27:02 +00005918){
drh3aac2dd2004-04-26 14:10:20 +00005919 MemPage *pPage1;
drh8c42ca92001-06-22 19:15:00 +00005920 int rc;
drh35cd6432009-06-05 14:17:21 +00005921 u32 n; /* Number of pages on the freelist */
drh042d6a12009-06-17 13:57:16 +00005922 u32 k; /* Number of leaves on the trunk of the freelist */
drhd3627af2006-12-18 18:34:51 +00005923 MemPage *pTrunk = 0;
5924 MemPage *pPrevTrunk = 0;
drh1662b5a2009-06-04 19:06:09 +00005925 Pgno mxPage; /* Total size of the database file */
drh30e58752002-03-02 20:41:57 +00005926
drh1fee73e2007-08-29 04:00:57 +00005927 assert( sqlite3_mutex_held(pBt->mutex) );
dan09ff9e12013-03-11 11:49:03 +00005928 assert( eMode==BTALLOC_ANY || (nearby>0 && IfNotOmitAV(pBt->autoVacuum)) );
drh3aac2dd2004-04-26 14:10:20 +00005929 pPage1 = pBt->pPage1;
drhb1299152010-03-30 22:58:33 +00005930 mxPage = btreePagecount(pBt);
drh113762a2014-11-19 16:36:25 +00005931 /* EVIDENCE-OF: R-05119-02637 The 4-byte big-endian integer at offset 36
5932 ** stores stores the total number of pages on the freelist. */
drh3aac2dd2004-04-26 14:10:20 +00005933 n = get4byte(&pPage1->aData[36]);
drhdf35a082009-07-09 02:24:35 +00005934 testcase( n==mxPage-1 );
5935 if( n>=mxPage ){
drh1662b5a2009-06-04 19:06:09 +00005936 return SQLITE_CORRUPT_BKPT;
5937 }
drh3aac2dd2004-04-26 14:10:20 +00005938 if( n>0 ){
drh91025292004-05-03 19:49:32 +00005939 /* There are pages on the freelist. Reuse one of those pages. */
danielk1977cb1a7eb2004-11-05 12:27:02 +00005940 Pgno iTrunk;
danielk1977cb1a7eb2004-11-05 12:27:02 +00005941 u8 searchList = 0; /* If the free-list must be searched for 'nearby' */
drhc6e956f2015-06-24 13:32:10 +00005942 u32 nSearch = 0; /* Count of the number of search attempts */
danielk1977cb1a7eb2004-11-05 12:27:02 +00005943
drh82e647d2013-03-02 03:25:55 +00005944 /* If eMode==BTALLOC_EXACT and a query of the pointer-map
danielk1977cb1a7eb2004-11-05 12:27:02 +00005945 ** shows that the page 'nearby' is somewhere on the free-list, then
5946 ** the entire-list will be searched for that page.
5947 */
5948#ifndef SQLITE_OMIT_AUTOVACUUM
dan51f0b6d2013-02-22 20:16:34 +00005949 if( eMode==BTALLOC_EXACT ){
drh41af5b32020-07-31 02:07:16 +00005950 if( nearby<=mxPage ){
dan51f0b6d2013-02-22 20:16:34 +00005951 u8 eType;
5952 assert( nearby>0 );
5953 assert( pBt->autoVacuum );
5954 rc = ptrmapGet(pBt, nearby, &eType, 0);
5955 if( rc ) return rc;
5956 if( eType==PTRMAP_FREEPAGE ){
5957 searchList = 1;
5958 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00005959 }
dan51f0b6d2013-02-22 20:16:34 +00005960 }else if( eMode==BTALLOC_LE ){
5961 searchList = 1;
danielk1977cb1a7eb2004-11-05 12:27:02 +00005962 }
5963#endif
5964
5965 /* Decrement the free-list count by 1. Set iTrunk to the index of the
5966 ** first free-list trunk page. iPrevTrunk is initially 1.
5967 */
danielk19773b8a05f2007-03-19 17:44:26 +00005968 rc = sqlite3PagerWrite(pPage1->pDbPage);
drh3b7511c2001-05-26 13:15:44 +00005969 if( rc ) return rc;
drh3aac2dd2004-04-26 14:10:20 +00005970 put4byte(&pPage1->aData[36], n-1);
danielk1977cb1a7eb2004-11-05 12:27:02 +00005971
5972 /* The code within this loop is run only once if the 'searchList' variable
5973 ** is not true. Otherwise, it runs once for each trunk-page on the
drh82e647d2013-03-02 03:25:55 +00005974 ** free-list until the page 'nearby' is located (eMode==BTALLOC_EXACT)
5975 ** or until a page less than 'nearby' is located (eMode==BTALLOC_LT)
danielk1977cb1a7eb2004-11-05 12:27:02 +00005976 */
5977 do {
5978 pPrevTrunk = pTrunk;
5979 if( pPrevTrunk ){
drh113762a2014-11-19 16:36:25 +00005980 /* EVIDENCE-OF: R-01506-11053 The first integer on a freelist trunk page
5981 ** is the page number of the next freelist trunk page in the list or
5982 ** zero if this is the last freelist trunk page. */
danielk1977cb1a7eb2004-11-05 12:27:02 +00005983 iTrunk = get4byte(&pPrevTrunk->aData[0]);
drhbea00b92002-07-08 10:59:50 +00005984 }else{
drh113762a2014-11-19 16:36:25 +00005985 /* EVIDENCE-OF: R-59841-13798 The 4-byte big-endian integer at offset 32
5986 ** stores the page number of the first page of the freelist, or zero if
5987 ** the freelist is empty. */
danielk1977cb1a7eb2004-11-05 12:27:02 +00005988 iTrunk = get4byte(&pPage1->aData[32]);
drhbea00b92002-07-08 10:59:50 +00005989 }
drhdf35a082009-07-09 02:24:35 +00005990 testcase( iTrunk==mxPage );
drh9e7804d2015-06-24 12:24:03 +00005991 if( iTrunk>mxPage || nSearch++ > n ){
drhc62aab52017-06-11 18:26:15 +00005992 rc = SQLITE_CORRUPT_PGNO(pPrevTrunk ? pPrevTrunk->pgno : 1);
drh1662b5a2009-06-04 19:06:09 +00005993 }else{
drh7e8c6f12015-05-28 03:28:27 +00005994 rc = btreeGetUnusedPage(pBt, iTrunk, &pTrunk, 0);
drh1662b5a2009-06-04 19:06:09 +00005995 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00005996 if( rc ){
drhd3627af2006-12-18 18:34:51 +00005997 pTrunk = 0;
5998 goto end_allocate_page;
danielk1977cb1a7eb2004-11-05 12:27:02 +00005999 }
drhb07028f2011-10-14 21:49:18 +00006000 assert( pTrunk!=0 );
6001 assert( pTrunk->aData!=0 );
drh113762a2014-11-19 16:36:25 +00006002 /* EVIDENCE-OF: R-13523-04394 The second integer on a freelist trunk page
6003 ** is the number of leaf page pointers to follow. */
6004 k = get4byte(&pTrunk->aData[4]);
danielk1977cb1a7eb2004-11-05 12:27:02 +00006005 if( k==0 && !searchList ){
6006 /* The trunk has no leaves and the list is not being searched.
6007 ** So extract the trunk page itself and use it as the newly
6008 ** allocated page */
6009 assert( pPrevTrunk==0 );
danielk19773b8a05f2007-03-19 17:44:26 +00006010 rc = sqlite3PagerWrite(pTrunk->pDbPage);
drhd3627af2006-12-18 18:34:51 +00006011 if( rc ){
6012 goto end_allocate_page;
6013 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00006014 *pPgno = iTrunk;
6015 memcpy(&pPage1->aData[32], &pTrunk->aData[0], 4);
6016 *ppPage = pTrunk;
6017 pTrunk = 0;
6018 TRACE(("ALLOCATE: %d trunk - %d free pages left\n", *pPgno, n-1));
drh042d6a12009-06-17 13:57:16 +00006019 }else if( k>(u32)(pBt->usableSize/4 - 2) ){
danielk1977cb1a7eb2004-11-05 12:27:02 +00006020 /* Value of k is out of range. Database corruption */
drhcc97ca42017-06-07 22:32:59 +00006021 rc = SQLITE_CORRUPT_PGNO(iTrunk);
drhd3627af2006-12-18 18:34:51 +00006022 goto end_allocate_page;
danielk1977cb1a7eb2004-11-05 12:27:02 +00006023#ifndef SQLITE_OMIT_AUTOVACUUM
dan51f0b6d2013-02-22 20:16:34 +00006024 }else if( searchList
6025 && (nearby==iTrunk || (iTrunk<nearby && eMode==BTALLOC_LE))
6026 ){
danielk1977cb1a7eb2004-11-05 12:27:02 +00006027 /* The list is being searched and this trunk page is the page
6028 ** to allocate, regardless of whether it has leaves.
6029 */
dan51f0b6d2013-02-22 20:16:34 +00006030 *pPgno = iTrunk;
danielk1977cb1a7eb2004-11-05 12:27:02 +00006031 *ppPage = pTrunk;
6032 searchList = 0;
danielk19773b8a05f2007-03-19 17:44:26 +00006033 rc = sqlite3PagerWrite(pTrunk->pDbPage);
drhd3627af2006-12-18 18:34:51 +00006034 if( rc ){
6035 goto end_allocate_page;
6036 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00006037 if( k==0 ){
6038 if( !pPrevTrunk ){
6039 memcpy(&pPage1->aData[32], &pTrunk->aData[0], 4);
6040 }else{
danf48c3552010-08-23 15:41:24 +00006041 rc = sqlite3PagerWrite(pPrevTrunk->pDbPage);
6042 if( rc!=SQLITE_OK ){
6043 goto end_allocate_page;
6044 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00006045 memcpy(&pPrevTrunk->aData[0], &pTrunk->aData[0], 4);
6046 }
6047 }else{
6048 /* The trunk page is required by the caller but it contains
6049 ** pointers to free-list leaves. The first leaf becomes a trunk
6050 ** page in this case.
6051 */
6052 MemPage *pNewTrunk;
6053 Pgno iNewTrunk = get4byte(&pTrunk->aData[8]);
drh1662b5a2009-06-04 19:06:09 +00006054 if( iNewTrunk>mxPage ){
drhcc97ca42017-06-07 22:32:59 +00006055 rc = SQLITE_CORRUPT_PGNO(iTrunk);
drh1662b5a2009-06-04 19:06:09 +00006056 goto end_allocate_page;
6057 }
drhdf35a082009-07-09 02:24:35 +00006058 testcase( iNewTrunk==mxPage );
drh7e8c6f12015-05-28 03:28:27 +00006059 rc = btreeGetUnusedPage(pBt, iNewTrunk, &pNewTrunk, 0);
danielk1977cb1a7eb2004-11-05 12:27:02 +00006060 if( rc!=SQLITE_OK ){
drhd3627af2006-12-18 18:34:51 +00006061 goto end_allocate_page;
danielk1977cb1a7eb2004-11-05 12:27:02 +00006062 }
danielk19773b8a05f2007-03-19 17:44:26 +00006063 rc = sqlite3PagerWrite(pNewTrunk->pDbPage);
danielk1977cb1a7eb2004-11-05 12:27:02 +00006064 if( rc!=SQLITE_OK ){
6065 releasePage(pNewTrunk);
drhd3627af2006-12-18 18:34:51 +00006066 goto end_allocate_page;
danielk1977cb1a7eb2004-11-05 12:27:02 +00006067 }
6068 memcpy(&pNewTrunk->aData[0], &pTrunk->aData[0], 4);
6069 put4byte(&pNewTrunk->aData[4], k-1);
6070 memcpy(&pNewTrunk->aData[8], &pTrunk->aData[12], (k-1)*4);
drhd3627af2006-12-18 18:34:51 +00006071 releasePage(pNewTrunk);
danielk1977cb1a7eb2004-11-05 12:27:02 +00006072 if( !pPrevTrunk ){
drhc5053fb2008-11-27 02:22:10 +00006073 assert( sqlite3PagerIswriteable(pPage1->pDbPage) );
danielk1977cb1a7eb2004-11-05 12:27:02 +00006074 put4byte(&pPage1->aData[32], iNewTrunk);
6075 }else{
danielk19773b8a05f2007-03-19 17:44:26 +00006076 rc = sqlite3PagerWrite(pPrevTrunk->pDbPage);
drhd3627af2006-12-18 18:34:51 +00006077 if( rc ){
6078 goto end_allocate_page;
6079 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00006080 put4byte(&pPrevTrunk->aData[0], iNewTrunk);
6081 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00006082 }
6083 pTrunk = 0;
6084 TRACE(("ALLOCATE: %d trunk - %d free pages left\n", *pPgno, n-1));
6085#endif
danielk1977e5765212009-06-17 11:13:28 +00006086 }else if( k>0 ){
danielk1977cb1a7eb2004-11-05 12:27:02 +00006087 /* Extract a leaf from the trunk */
drh042d6a12009-06-17 13:57:16 +00006088 u32 closest;
danielk1977cb1a7eb2004-11-05 12:27:02 +00006089 Pgno iPage;
6090 unsigned char *aData = pTrunk->aData;
6091 if( nearby>0 ){
drh042d6a12009-06-17 13:57:16 +00006092 u32 i;
danielk1977cb1a7eb2004-11-05 12:27:02 +00006093 closest = 0;
danf38b65a2013-02-22 20:57:47 +00006094 if( eMode==BTALLOC_LE ){
6095 for(i=0; i<k; i++){
6096 iPage = get4byte(&aData[8+i*4]);
dan87ade192013-02-23 17:49:16 +00006097 if( iPage<=nearby ){
danf38b65a2013-02-22 20:57:47 +00006098 closest = i;
6099 break;
6100 }
6101 }
6102 }else{
6103 int dist;
6104 dist = sqlite3AbsInt32(get4byte(&aData[8]) - nearby);
6105 for(i=1; i<k; i++){
6106 int d2 = sqlite3AbsInt32(get4byte(&aData[8+i*4]) - nearby);
6107 if( d2<dist ){
6108 closest = i;
6109 dist = d2;
6110 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00006111 }
6112 }
6113 }else{
6114 closest = 0;
6115 }
6116
6117 iPage = get4byte(&aData[8+closest*4]);
drhdf35a082009-07-09 02:24:35 +00006118 testcase( iPage==mxPage );
drh1662b5a2009-06-04 19:06:09 +00006119 if( iPage>mxPage ){
drhcc97ca42017-06-07 22:32:59 +00006120 rc = SQLITE_CORRUPT_PGNO(iTrunk);
drh1662b5a2009-06-04 19:06:09 +00006121 goto end_allocate_page;
6122 }
drhdf35a082009-07-09 02:24:35 +00006123 testcase( iPage==mxPage );
dan51f0b6d2013-02-22 20:16:34 +00006124 if( !searchList
6125 || (iPage==nearby || (iPage<nearby && eMode==BTALLOC_LE))
6126 ){
danielk1977bea2a942009-01-20 17:06:27 +00006127 int noContent;
shane1f9e6aa2008-06-09 19:27:11 +00006128 *pPgno = iPage;
danielk1977cb1a7eb2004-11-05 12:27:02 +00006129 TRACE(("ALLOCATE: %d was leaf %d of %d on trunk %d"
6130 ": %d more free pages\n",
6131 *pPgno, closest+1, k, pTrunk->pgno, n-1));
drh93b4fc72011-04-07 14:47:01 +00006132 rc = sqlite3PagerWrite(pTrunk->pDbPage);
6133 if( rc ) goto end_allocate_page;
danielk1977cb1a7eb2004-11-05 12:27:02 +00006134 if( closest<k-1 ){
6135 memcpy(&aData[8+closest*4], &aData[4+k*4], 4);
6136 }
6137 put4byte(&aData[4], k-1);
drh3f387402014-09-24 01:23:00 +00006138 noContent = !btreeGetHasContent(pBt, *pPgno)? PAGER_GET_NOCONTENT : 0;
drh7e8c6f12015-05-28 03:28:27 +00006139 rc = btreeGetUnusedPage(pBt, *pPgno, ppPage, noContent);
danielk1977cb1a7eb2004-11-05 12:27:02 +00006140 if( rc==SQLITE_OK ){
danielk19773b8a05f2007-03-19 17:44:26 +00006141 rc = sqlite3PagerWrite((*ppPage)->pDbPage);
danielk1977aac0a382005-01-16 11:07:06 +00006142 if( rc!=SQLITE_OK ){
6143 releasePage(*ppPage);
drh1c8bade2015-05-29 18:42:11 +00006144 *ppPage = 0;
danielk1977aac0a382005-01-16 11:07:06 +00006145 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00006146 }
6147 searchList = 0;
6148 }
drhee696e22004-08-30 16:52:17 +00006149 }
danielk1977cb1a7eb2004-11-05 12:27:02 +00006150 releasePage(pPrevTrunk);
drhd3627af2006-12-18 18:34:51 +00006151 pPrevTrunk = 0;
danielk1977cb1a7eb2004-11-05 12:27:02 +00006152 }while( searchList );
drh3b7511c2001-05-26 13:15:44 +00006153 }else{
danbc1a3c62013-02-23 16:40:46 +00006154 /* There are no pages on the freelist, so append a new page to the
6155 ** database image.
6156 **
6157 ** Normally, new pages allocated by this block can be requested from the
6158 ** pager layer with the 'no-content' flag set. This prevents the pager
6159 ** from trying to read the pages content from disk. However, if the
6160 ** current transaction has already run one or more incremental-vacuum
6161 ** steps, then the page we are about to allocate may contain content
6162 ** that is required in the event of a rollback. In this case, do
6163 ** not set the no-content flag. This causes the pager to load and journal
6164 ** the current page content before overwriting it.
6165 **
6166 ** Note that the pager will not actually attempt to load or journal
6167 ** content for any page that really does lie past the end of the database
6168 ** file on disk. So the effects of disabling the no-content optimization
6169 ** here are confined to those pages that lie between the end of the
6170 ** database image and the end of the database file.
6171 */
drh3f387402014-09-24 01:23:00 +00006172 int bNoContent = (0==IfNotOmitAV(pBt->bDoTruncate))? PAGER_GET_NOCONTENT:0;
danbc1a3c62013-02-23 16:40:46 +00006173
drhdd3cd972010-03-27 17:12:36 +00006174 rc = sqlite3PagerWrite(pBt->pPage1->pDbPage);
6175 if( rc ) return rc;
6176 pBt->nPage++;
6177 if( pBt->nPage==PENDING_BYTE_PAGE(pBt) ) pBt->nPage++;
danielk1977bea2a942009-01-20 17:06:27 +00006178
danielk1977afcdd022004-10-31 16:25:42 +00006179#ifndef SQLITE_OMIT_AUTOVACUUM
drhdd3cd972010-03-27 17:12:36 +00006180 if( pBt->autoVacuum && PTRMAP_ISPAGE(pBt, pBt->nPage) ){
danielk1977afcdd022004-10-31 16:25:42 +00006181 /* If *pPgno refers to a pointer-map page, allocate two new pages
6182 ** at the end of the file instead of one. The first allocated page
6183 ** becomes a new pointer-map page, the second is used by the caller.
6184 */
danielk1977ac861692009-03-28 10:54:22 +00006185 MemPage *pPg = 0;
drhdd3cd972010-03-27 17:12:36 +00006186 TRACE(("ALLOCATE: %d from end of file (pointer-map page)\n", pBt->nPage));
6187 assert( pBt->nPage!=PENDING_BYTE_PAGE(pBt) );
drh7e8c6f12015-05-28 03:28:27 +00006188 rc = btreeGetUnusedPage(pBt, pBt->nPage, &pPg, bNoContent);
danielk1977ac861692009-03-28 10:54:22 +00006189 if( rc==SQLITE_OK ){
6190 rc = sqlite3PagerWrite(pPg->pDbPage);
6191 releasePage(pPg);
6192 }
6193 if( rc ) return rc;
drhdd3cd972010-03-27 17:12:36 +00006194 pBt->nPage++;
6195 if( pBt->nPage==PENDING_BYTE_PAGE(pBt) ){ pBt->nPage++; }
danielk1977afcdd022004-10-31 16:25:42 +00006196 }
6197#endif
drhdd3cd972010-03-27 17:12:36 +00006198 put4byte(28 + (u8*)pBt->pPage1->aData, pBt->nPage);
6199 *pPgno = pBt->nPage;
danielk1977afcdd022004-10-31 16:25:42 +00006200
danielk1977599fcba2004-11-08 07:13:13 +00006201 assert( *pPgno!=PENDING_BYTE_PAGE(pBt) );
drh7e8c6f12015-05-28 03:28:27 +00006202 rc = btreeGetUnusedPage(pBt, *pPgno, ppPage, bNoContent);
drh3b7511c2001-05-26 13:15:44 +00006203 if( rc ) return rc;
danielk19773b8a05f2007-03-19 17:44:26 +00006204 rc = sqlite3PagerWrite((*ppPage)->pDbPage);
danielk1977aac0a382005-01-16 11:07:06 +00006205 if( rc!=SQLITE_OK ){
6206 releasePage(*ppPage);
drh7e8c6f12015-05-28 03:28:27 +00006207 *ppPage = 0;
danielk1977aac0a382005-01-16 11:07:06 +00006208 }
drh3a4c1412004-05-09 20:40:11 +00006209 TRACE(("ALLOCATE: %d from end of file\n", *pPgno));
drh3b7511c2001-05-26 13:15:44 +00006210 }
danielk1977599fcba2004-11-08 07:13:13 +00006211
danba14c692019-01-25 13:42:12 +00006212 assert( CORRUPT_DB || *pPgno!=PENDING_BYTE_PAGE(pBt) );
drhd3627af2006-12-18 18:34:51 +00006213
6214end_allocate_page:
6215 releasePage(pTrunk);
6216 releasePage(pPrevTrunk);
drh7e8c6f12015-05-28 03:28:27 +00006217 assert( rc!=SQLITE_OK || sqlite3PagerPageRefcount((*ppPage)->pDbPage)<=1 );
6218 assert( rc!=SQLITE_OK || (*ppPage)->isInit==0 );
drh3b7511c2001-05-26 13:15:44 +00006219 return rc;
6220}
6221
6222/*
danielk1977bea2a942009-01-20 17:06:27 +00006223** This function is used to add page iPage to the database file free-list.
6224** It is assumed that the page is not already a part of the free-list.
drh5e2f8b92001-05-28 00:41:15 +00006225**
danielk1977bea2a942009-01-20 17:06:27 +00006226** The value passed as the second argument to this function is optional.
6227** If the caller happens to have a pointer to the MemPage object
6228** corresponding to page iPage handy, it may pass it as the second value.
6229** Otherwise, it may pass NULL.
6230**
6231** If a pointer to a MemPage object is passed as the second argument,
6232** its reference count is not altered by this function.
drh3b7511c2001-05-26 13:15:44 +00006233*/
danielk1977bea2a942009-01-20 17:06:27 +00006234static int freePage2(BtShared *pBt, MemPage *pMemPage, Pgno iPage){
6235 MemPage *pTrunk = 0; /* Free-list trunk page */
6236 Pgno iTrunk = 0; /* Page number of free-list trunk page */
6237 MemPage *pPage1 = pBt->pPage1; /* Local reference to page 1 */
6238 MemPage *pPage; /* Page being freed. May be NULL. */
6239 int rc; /* Return Code */
drh25050f22019-04-09 01:26:31 +00006240 u32 nFree; /* Initial number of pages on free-list */
drh8b2f49b2001-06-08 00:21:52 +00006241
danielk1977bea2a942009-01-20 17:06:27 +00006242 assert( sqlite3_mutex_held(pBt->mutex) );
danfb0246b2015-05-26 12:18:17 +00006243 assert( CORRUPT_DB || iPage>1 );
danielk1977bea2a942009-01-20 17:06:27 +00006244 assert( !pMemPage || pMemPage->pgno==iPage );
6245
drh53218e22020-07-31 23:34:53 +00006246 if( iPage<2 || iPage>pBt->nPage ){
drh58b42ad2019-03-25 19:50:19 +00006247 return SQLITE_CORRUPT_BKPT;
6248 }
danielk1977bea2a942009-01-20 17:06:27 +00006249 if( pMemPage ){
6250 pPage = pMemPage;
6251 sqlite3PagerRef(pPage->pDbPage);
6252 }else{
6253 pPage = btreePageLookup(pBt, iPage);
6254 }
drh3aac2dd2004-04-26 14:10:20 +00006255
drha34b6762004-05-07 13:30:42 +00006256 /* Increment the free page count on pPage1 */
danielk19773b8a05f2007-03-19 17:44:26 +00006257 rc = sqlite3PagerWrite(pPage1->pDbPage);
danielk1977bea2a942009-01-20 17:06:27 +00006258 if( rc ) goto freepage_out;
6259 nFree = get4byte(&pPage1->aData[36]);
6260 put4byte(&pPage1->aData[36], nFree+1);
drh3aac2dd2004-04-26 14:10:20 +00006261
drhc9166342012-01-05 23:32:06 +00006262 if( pBt->btsFlags & BTS_SECURE_DELETE ){
drh5b47efa2010-02-12 18:18:39 +00006263 /* If the secure_delete option is enabled, then
6264 ** always fully overwrite deleted information with zeros.
6265 */
drhb00fc3b2013-08-21 23:42:32 +00006266 if( (!pPage && ((rc = btreeGetPage(pBt, iPage, &pPage, 0))!=0) )
shaneh84f4b2f2010-02-26 01:46:54 +00006267 || ((rc = sqlite3PagerWrite(pPage->pDbPage))!=0)
drh5b47efa2010-02-12 18:18:39 +00006268 ){
6269 goto freepage_out;
6270 }
6271 memset(pPage->aData, 0, pPage->pBt->pageSize);
danielk1977bea2a942009-01-20 17:06:27 +00006272 }
drhfcce93f2006-02-22 03:08:32 +00006273
danielk1977687566d2004-11-02 12:56:41 +00006274 /* If the database supports auto-vacuum, write an entry in the pointer-map
danielk1977cb1a7eb2004-11-05 12:27:02 +00006275 ** to indicate that the page is free.
danielk1977687566d2004-11-02 12:56:41 +00006276 */
danielk197785d90ca2008-07-19 14:25:15 +00006277 if( ISAUTOVACUUM ){
drh98add2e2009-07-20 17:11:49 +00006278 ptrmapPut(pBt, iPage, PTRMAP_FREEPAGE, 0, &rc);
danielk1977bea2a942009-01-20 17:06:27 +00006279 if( rc ) goto freepage_out;
danielk1977687566d2004-11-02 12:56:41 +00006280 }
danielk1977687566d2004-11-02 12:56:41 +00006281
danielk1977bea2a942009-01-20 17:06:27 +00006282 /* Now manipulate the actual database free-list structure. There are two
6283 ** possibilities. If the free-list is currently empty, or if the first
6284 ** trunk page in the free-list is full, then this page will become a
6285 ** new free-list trunk page. Otherwise, it will become a leaf of the
6286 ** first trunk page in the current free-list. This block tests if it
6287 ** is possible to add the page as a new free-list leaf.
6288 */
6289 if( nFree!=0 ){
drhc046e3e2009-07-15 11:26:44 +00006290 u32 nLeaf; /* Initial number of leaf cells on trunk page */
danielk1977bea2a942009-01-20 17:06:27 +00006291
6292 iTrunk = get4byte(&pPage1->aData[32]);
drh10248222020-07-28 20:32:12 +00006293 if( iTrunk>btreePagecount(pBt) ){
6294 rc = SQLITE_CORRUPT_BKPT;
6295 goto freepage_out;
6296 }
drhb00fc3b2013-08-21 23:42:32 +00006297 rc = btreeGetPage(pBt, iTrunk, &pTrunk, 0);
danielk1977bea2a942009-01-20 17:06:27 +00006298 if( rc!=SQLITE_OK ){
6299 goto freepage_out;
6300 }
6301
6302 nLeaf = get4byte(&pTrunk->aData[4]);
drheeb844a2009-08-08 18:01:07 +00006303 assert( pBt->usableSize>32 );
6304 if( nLeaf > (u32)pBt->usableSize/4 - 2 ){
danielk1977bea2a942009-01-20 17:06:27 +00006305 rc = SQLITE_CORRUPT_BKPT;
6306 goto freepage_out;
6307 }
drheeb844a2009-08-08 18:01:07 +00006308 if( nLeaf < (u32)pBt->usableSize/4 - 8 ){
danielk1977bea2a942009-01-20 17:06:27 +00006309 /* In this case there is room on the trunk page to insert the page
6310 ** being freed as a new leaf.
drh45b1fac2008-07-04 17:52:42 +00006311 **
6312 ** Note that the trunk page is not really full until it contains
6313 ** usableSize/4 - 2 entries, not usableSize/4 - 8 entries as we have
6314 ** coded. But due to a coding error in versions of SQLite prior to
6315 ** 3.6.0, databases with freelist trunk pages holding more than
6316 ** usableSize/4 - 8 entries will be reported as corrupt. In order
6317 ** to maintain backwards compatibility with older versions of SQLite,
drhc046e3e2009-07-15 11:26:44 +00006318 ** we will continue to restrict the number of entries to usableSize/4 - 8
drh45b1fac2008-07-04 17:52:42 +00006319 ** for now. At some point in the future (once everyone has upgraded
6320 ** to 3.6.0 or later) we should consider fixing the conditional above
6321 ** to read "usableSize/4-2" instead of "usableSize/4-8".
drh113762a2014-11-19 16:36:25 +00006322 **
6323 ** EVIDENCE-OF: R-19920-11576 However, newer versions of SQLite still
6324 ** avoid using the last six entries in the freelist trunk page array in
6325 ** order that database files created by newer versions of SQLite can be
6326 ** read by older versions of SQLite.
drh45b1fac2008-07-04 17:52:42 +00006327 */
danielk19773b8a05f2007-03-19 17:44:26 +00006328 rc = sqlite3PagerWrite(pTrunk->pDbPage);
drhf5345442007-04-09 12:45:02 +00006329 if( rc==SQLITE_OK ){
danielk1977bea2a942009-01-20 17:06:27 +00006330 put4byte(&pTrunk->aData[4], nLeaf+1);
6331 put4byte(&pTrunk->aData[8+nLeaf*4], iPage);
drhc9166342012-01-05 23:32:06 +00006332 if( pPage && (pBt->btsFlags & BTS_SECURE_DELETE)==0 ){
danielk1977bea2a942009-01-20 17:06:27 +00006333 sqlite3PagerDontWrite(pPage->pDbPage);
6334 }
danielk1977bea2a942009-01-20 17:06:27 +00006335 rc = btreeSetHasContent(pBt, iPage);
drhf5345442007-04-09 12:45:02 +00006336 }
drh3a4c1412004-05-09 20:40:11 +00006337 TRACE(("FREE-PAGE: %d leaf on trunk page %d\n",pPage->pgno,pTrunk->pgno));
danielk1977bea2a942009-01-20 17:06:27 +00006338 goto freepage_out;
drh3aac2dd2004-04-26 14:10:20 +00006339 }
drh3b7511c2001-05-26 13:15:44 +00006340 }
danielk1977bea2a942009-01-20 17:06:27 +00006341
6342 /* If control flows to this point, then it was not possible to add the
6343 ** the page being freed as a leaf page of the first trunk in the free-list.
6344 ** Possibly because the free-list is empty, or possibly because the
6345 ** first trunk in the free-list is full. Either way, the page being freed
6346 ** will become the new first trunk page in the free-list.
6347 */
drhb00fc3b2013-08-21 23:42:32 +00006348 if( pPage==0 && SQLITE_OK!=(rc = btreeGetPage(pBt, iPage, &pPage, 0)) ){
drhc046e3e2009-07-15 11:26:44 +00006349 goto freepage_out;
6350 }
6351 rc = sqlite3PagerWrite(pPage->pDbPage);
6352 if( rc!=SQLITE_OK ){
danielk1977bea2a942009-01-20 17:06:27 +00006353 goto freepage_out;
6354 }
6355 put4byte(pPage->aData, iTrunk);
6356 put4byte(&pPage->aData[4], 0);
6357 put4byte(&pPage1->aData[32], iPage);
6358 TRACE(("FREE-PAGE: %d new trunk page replacing %d\n", pPage->pgno, iTrunk));
6359
6360freepage_out:
6361 if( pPage ){
6362 pPage->isInit = 0;
6363 }
6364 releasePage(pPage);
6365 releasePage(pTrunk);
drh3b7511c2001-05-26 13:15:44 +00006366 return rc;
6367}
drhc314dc72009-07-21 11:52:34 +00006368static void freePage(MemPage *pPage, int *pRC){
6369 if( (*pRC)==SQLITE_OK ){
6370 *pRC = freePage2(pPage->pBt, pPage, pPage->pgno);
6371 }
danielk1977bea2a942009-01-20 17:06:27 +00006372}
drh3b7511c2001-05-26 13:15:44 +00006373
6374/*
drh8d7f1632018-01-23 13:30:38 +00006375** Free any overflow pages associated with the given Cell. Store
6376** size information about the cell in pInfo.
drh3b7511c2001-05-26 13:15:44 +00006377*/
drh9bfdc252014-09-24 02:05:41 +00006378static int clearCell(
6379 MemPage *pPage, /* The page that contains the Cell */
6380 unsigned char *pCell, /* First byte of the Cell */
drh80159da2016-12-09 17:32:51 +00006381 CellInfo *pInfo /* Size information about the cell */
drh9bfdc252014-09-24 02:05:41 +00006382){
drh60172a52017-08-02 18:27:50 +00006383 BtShared *pBt;
drh3aac2dd2004-04-26 14:10:20 +00006384 Pgno ovflPgno;
drh6f11bef2004-05-13 01:12:56 +00006385 int rc;
drh94440812007-03-06 11:42:19 +00006386 int nOvfl;
shaneh1df2db72010-08-18 02:28:48 +00006387 u32 ovflPageSize;
drh3b7511c2001-05-26 13:15:44 +00006388
drh1fee73e2007-08-29 04:00:57 +00006389 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drh80159da2016-12-09 17:32:51 +00006390 pPage->xParseCell(pPage, pCell, pInfo);
6391 if( pInfo->nLocal==pInfo->nPayload ){
drha34b6762004-05-07 13:30:42 +00006392 return SQLITE_OK; /* No overflow pages. Return without doing anything */
drh3aac2dd2004-04-26 14:10:20 +00006393 }
drh6fcf83a2018-05-05 01:23:28 +00006394 testcase( pCell + pInfo->nSize == pPage->aDataEnd );
6395 testcase( pCell + (pInfo->nSize-1) == pPage->aDataEnd );
6396 if( pCell + pInfo->nSize > pPage->aDataEnd ){
drhcc97ca42017-06-07 22:32:59 +00006397 /* Cell extends past end of page */
daneebf2f52017-11-18 17:30:08 +00006398 return SQLITE_CORRUPT_PAGE(pPage);
drhe42a9b42011-08-31 13:27:19 +00006399 }
drh80159da2016-12-09 17:32:51 +00006400 ovflPgno = get4byte(pCell + pInfo->nSize - 4);
drh60172a52017-08-02 18:27:50 +00006401 pBt = pPage->pBt;
shane63207ab2009-02-04 01:49:30 +00006402 assert( pBt->usableSize > 4 );
drh94440812007-03-06 11:42:19 +00006403 ovflPageSize = pBt->usableSize - 4;
drh80159da2016-12-09 17:32:51 +00006404 nOvfl = (pInfo->nPayload - pInfo->nLocal + ovflPageSize - 1)/ovflPageSize;
dan0f8076d2015-05-25 18:47:26 +00006405 assert( nOvfl>0 ||
drh80159da2016-12-09 17:32:51 +00006406 (CORRUPT_DB && (pInfo->nPayload + ovflPageSize)<ovflPageSize)
dan0f8076d2015-05-25 18:47:26 +00006407 );
drh72365832007-03-06 15:53:44 +00006408 while( nOvfl-- ){
shane63207ab2009-02-04 01:49:30 +00006409 Pgno iNext = 0;
danielk1977bea2a942009-01-20 17:06:27 +00006410 MemPage *pOvfl = 0;
drhb1299152010-03-30 22:58:33 +00006411 if( ovflPgno<2 || ovflPgno>btreePagecount(pBt) ){
danielk1977e589a672009-04-11 16:06:15 +00006412 /* 0 is not a legal page number and page 1 cannot be an
6413 ** overflow page. Therefore if ovflPgno<2 or past the end of the
6414 ** file the database must be corrupt. */
drh49285702005-09-17 15:20:26 +00006415 return SQLITE_CORRUPT_BKPT;
danielk1977a1cb1832005-02-12 08:59:55 +00006416 }
danielk1977bea2a942009-01-20 17:06:27 +00006417 if( nOvfl ){
6418 rc = getOverflowPage(pBt, ovflPgno, &pOvfl, &iNext);
6419 if( rc ) return rc;
6420 }
dan887d4b22010-02-25 12:09:16 +00006421
shaneh1da207e2010-03-09 14:41:12 +00006422 if( ( pOvfl || ((pOvfl = btreePageLookup(pBt, ovflPgno))!=0) )
dan887d4b22010-02-25 12:09:16 +00006423 && sqlite3PagerPageRefcount(pOvfl->pDbPage)!=1
6424 ){
6425 /* There is no reason any cursor should have an outstanding reference
6426 ** to an overflow page belonging to a cell that is being deleted/updated.
6427 ** So if there exists more than one reference to this page, then it
6428 ** must not really be an overflow page and the database must be corrupt.
6429 ** It is helpful to detect this before calling freePage2(), as
6430 ** freePage2() may zero the page contents if secure-delete mode is
6431 ** enabled. If this 'overflow' page happens to be a page that the
6432 ** caller is iterating through or using in some other way, this
6433 ** can be problematic.
6434 */
6435 rc = SQLITE_CORRUPT_BKPT;
6436 }else{
6437 rc = freePage2(pBt, pOvfl, ovflPgno);
6438 }
6439
danielk1977bea2a942009-01-20 17:06:27 +00006440 if( pOvfl ){
6441 sqlite3PagerUnref(pOvfl->pDbPage);
6442 }
drh3b7511c2001-05-26 13:15:44 +00006443 if( rc ) return rc;
danielk1977bea2a942009-01-20 17:06:27 +00006444 ovflPgno = iNext;
drh3b7511c2001-05-26 13:15:44 +00006445 }
drh5e2f8b92001-05-28 00:41:15 +00006446 return SQLITE_OK;
drh3b7511c2001-05-26 13:15:44 +00006447}
6448
6449/*
drh91025292004-05-03 19:49:32 +00006450** Create the byte sequence used to represent a cell on page pPage
6451** and write that byte sequence into pCell[]. Overflow pages are
6452** allocated and filled in as necessary. The calling procedure
6453** is responsible for making sure sufficient space has been allocated
6454** for pCell[].
6455**
6456** Note that pCell does not necessary need to point to the pPage->aData
6457** area. pCell might point to some temporary storage. The cell will
6458** be constructed in this temporary area then copied into pPage->aData
6459** later.
drh3b7511c2001-05-26 13:15:44 +00006460*/
6461static int fillInCell(
drh3aac2dd2004-04-26 14:10:20 +00006462 MemPage *pPage, /* The page that contains the cell */
drh4b70f112004-05-02 21:12:19 +00006463 unsigned char *pCell, /* Complete text of the cell */
drh8eeb4462016-05-21 20:03:42 +00006464 const BtreePayload *pX, /* Payload with which to construct the cell */
drh4b70f112004-05-02 21:12:19 +00006465 int *pnSize /* Write cell size here */
drh3b7511c2001-05-26 13:15:44 +00006466){
drh3b7511c2001-05-26 13:15:44 +00006467 int nPayload;
drh8c6fa9b2004-05-26 00:01:53 +00006468 const u8 *pSrc;
drh5e27e1d2017-08-23 14:45:59 +00006469 int nSrc, n, rc, mn;
drh3aac2dd2004-04-26 14:10:20 +00006470 int spaceLeft;
drh5e27e1d2017-08-23 14:45:59 +00006471 MemPage *pToRelease;
drh3aac2dd2004-04-26 14:10:20 +00006472 unsigned char *pPrior;
6473 unsigned char *pPayload;
drh5e27e1d2017-08-23 14:45:59 +00006474 BtShared *pBt;
6475 Pgno pgnoOvfl;
drh4b70f112004-05-02 21:12:19 +00006476 int nHeader;
drh3b7511c2001-05-26 13:15:44 +00006477
drh1fee73e2007-08-29 04:00:57 +00006478 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drhd677b3d2007-08-20 22:48:41 +00006479
drhc5053fb2008-11-27 02:22:10 +00006480 /* pPage is not necessarily writeable since pCell might be auxiliary
6481 ** buffer space that is separate from the pPage buffer area */
drh5e27e1d2017-08-23 14:45:59 +00006482 assert( pCell<pPage->aData || pCell>=&pPage->aData[pPage->pBt->pageSize]
drhc5053fb2008-11-27 02:22:10 +00006483 || sqlite3PagerIswriteable(pPage->pDbPage) );
6484
drh91025292004-05-03 19:49:32 +00006485 /* Fill in the header. */
drh6200c882014-09-23 22:36:25 +00006486 nHeader = pPage->childPtrSize;
drhdfc2daa2016-05-21 23:25:29 +00006487 if( pPage->intKey ){
6488 nPayload = pX->nData + pX->nZero;
6489 pSrc = pX->pData;
6490 nSrc = pX->nData;
6491 assert( pPage->intKeyLeaf ); /* fillInCell() only called for leaves */
drh6200c882014-09-23 22:36:25 +00006492 nHeader += putVarint32(&pCell[nHeader], nPayload);
drhdfc2daa2016-05-21 23:25:29 +00006493 nHeader += putVarint(&pCell[nHeader], *(u64*)&pX->nKey);
drh6f11bef2004-05-13 01:12:56 +00006494 }else{
drh8eeb4462016-05-21 20:03:42 +00006495 assert( pX->nKey<=0x7fffffff && pX->pKey!=0 );
6496 nSrc = nPayload = (int)pX->nKey;
6497 pSrc = pX->pKey;
drhdfc2daa2016-05-21 23:25:29 +00006498 nHeader += putVarint32(&pCell[nHeader], nPayload);
drh3aac2dd2004-04-26 14:10:20 +00006499 }
drhdfc2daa2016-05-21 23:25:29 +00006500
6501 /* Fill in the payload */
drh5e27e1d2017-08-23 14:45:59 +00006502 pPayload = &pCell[nHeader];
drh6200c882014-09-23 22:36:25 +00006503 if( nPayload<=pPage->maxLocal ){
drh5e27e1d2017-08-23 14:45:59 +00006504 /* This is the common case where everything fits on the btree page
6505 ** and no overflow pages are required. */
drh6200c882014-09-23 22:36:25 +00006506 n = nHeader + nPayload;
6507 testcase( n==3 );
6508 testcase( n==4 );
6509 if( n<4 ) n = 4;
6510 *pnSize = n;
drh5e27e1d2017-08-23 14:45:59 +00006511 assert( nSrc<=nPayload );
6512 testcase( nSrc<nPayload );
6513 memcpy(pPayload, pSrc, nSrc);
6514 memset(pPayload+nSrc, 0, nPayload-nSrc);
6515 return SQLITE_OK;
drh6200c882014-09-23 22:36:25 +00006516 }
drh5e27e1d2017-08-23 14:45:59 +00006517
6518 /* If we reach this point, it means that some of the content will need
6519 ** to spill onto overflow pages.
6520 */
6521 mn = pPage->minLocal;
6522 n = mn + (nPayload - mn) % (pPage->pBt->usableSize - 4);
6523 testcase( n==pPage->maxLocal );
6524 testcase( n==pPage->maxLocal+1 );
6525 if( n > pPage->maxLocal ) n = mn;
6526 spaceLeft = n;
6527 *pnSize = n + nHeader + 4;
6528 pPrior = &pCell[nHeader+n];
6529 pToRelease = 0;
6530 pgnoOvfl = 0;
6531 pBt = pPage->pBt;
drh3b7511c2001-05-26 13:15:44 +00006532
drh6200c882014-09-23 22:36:25 +00006533 /* At this point variables should be set as follows:
6534 **
6535 ** nPayload Total payload size in bytes
6536 ** pPayload Begin writing payload here
6537 ** spaceLeft Space available at pPayload. If nPayload>spaceLeft,
6538 ** that means content must spill into overflow pages.
6539 ** *pnSize Size of the local cell (not counting overflow pages)
6540 ** pPrior Where to write the pgno of the first overflow page
6541 **
6542 ** Use a call to btreeParseCellPtr() to verify that the values above
6543 ** were computed correctly.
6544 */
drhd879e3e2017-02-13 13:35:55 +00006545#ifdef SQLITE_DEBUG
drh6200c882014-09-23 22:36:25 +00006546 {
6547 CellInfo info;
drh5fa60512015-06-19 17:19:34 +00006548 pPage->xParseCell(pPage, pCell, &info);
drhcc5f8a42016-02-06 22:32:06 +00006549 assert( nHeader==(int)(info.pPayload - pCell) );
drh8eeb4462016-05-21 20:03:42 +00006550 assert( info.nKey==pX->nKey );
drh6200c882014-09-23 22:36:25 +00006551 assert( *pnSize == info.nSize );
6552 assert( spaceLeft == info.nLocal );
drh6200c882014-09-23 22:36:25 +00006553 }
6554#endif
6555
6556 /* Write the payload into the local Cell and any extra into overflow pages */
drh5e27e1d2017-08-23 14:45:59 +00006557 while( 1 ){
6558 n = nPayload;
6559 if( n>spaceLeft ) n = spaceLeft;
6560
6561 /* If pToRelease is not zero than pPayload points into the data area
6562 ** of pToRelease. Make sure pToRelease is still writeable. */
6563 assert( pToRelease==0 || sqlite3PagerIswriteable(pToRelease->pDbPage) );
6564
6565 /* If pPayload is part of the data area of pPage, then make sure pPage
6566 ** is still writeable */
6567 assert( pPayload<pPage->aData || pPayload>=&pPage->aData[pBt->pageSize]
6568 || sqlite3PagerIswriteable(pPage->pDbPage) );
6569
6570 if( nSrc>=n ){
6571 memcpy(pPayload, pSrc, n);
6572 }else if( nSrc>0 ){
6573 n = nSrc;
6574 memcpy(pPayload, pSrc, n);
6575 }else{
6576 memset(pPayload, 0, n);
6577 }
6578 nPayload -= n;
6579 if( nPayload<=0 ) break;
6580 pPayload += n;
6581 pSrc += n;
6582 nSrc -= n;
6583 spaceLeft -= n;
drh3b7511c2001-05-26 13:15:44 +00006584 if( spaceLeft==0 ){
drh5e27e1d2017-08-23 14:45:59 +00006585 MemPage *pOvfl = 0;
danielk1977afcdd022004-10-31 16:25:42 +00006586#ifndef SQLITE_OMIT_AUTOVACUUM
6587 Pgno pgnoPtrmap = pgnoOvfl; /* Overflow page pointer-map entry page */
danielk1977b39f70b2007-05-17 18:28:11 +00006588 if( pBt->autoVacuum ){
6589 do{
6590 pgnoOvfl++;
6591 } while(
6592 PTRMAP_ISPAGE(pBt, pgnoOvfl) || pgnoOvfl==PENDING_BYTE_PAGE(pBt)
6593 );
danielk1977b39f70b2007-05-17 18:28:11 +00006594 }
danielk1977afcdd022004-10-31 16:25:42 +00006595#endif
drhf49661a2008-12-10 16:45:50 +00006596 rc = allocateBtreePage(pBt, &pOvfl, &pgnoOvfl, pgnoOvfl, 0);
danielk1977afcdd022004-10-31 16:25:42 +00006597#ifndef SQLITE_OMIT_AUTOVACUUM
danielk1977a19df672004-11-03 11:37:07 +00006598 /* If the database supports auto-vacuum, and the second or subsequent
6599 ** overflow page is being allocated, add an entry to the pointer-map
danielk19774ef24492007-05-23 09:52:41 +00006600 ** for that page now.
6601 **
6602 ** If this is the first overflow page, then write a partial entry
6603 ** to the pointer-map. If we write nothing to this pointer-map slot,
6604 ** then the optimistic overflow chain processing in clearCell()
mistachkin48864df2013-03-21 21:20:32 +00006605 ** may misinterpret the uninitialized values and delete the
danielk19774ef24492007-05-23 09:52:41 +00006606 ** wrong pages from the database.
danielk1977afcdd022004-10-31 16:25:42 +00006607 */
danielk19774ef24492007-05-23 09:52:41 +00006608 if( pBt->autoVacuum && rc==SQLITE_OK ){
6609 u8 eType = (pgnoPtrmap?PTRMAP_OVERFLOW2:PTRMAP_OVERFLOW1);
drh98add2e2009-07-20 17:11:49 +00006610 ptrmapPut(pBt, pgnoOvfl, eType, pgnoPtrmap, &rc);
danielk197789a4be82007-05-23 13:34:32 +00006611 if( rc ){
6612 releasePage(pOvfl);
6613 }
danielk1977afcdd022004-10-31 16:25:42 +00006614 }
6615#endif
drh3b7511c2001-05-26 13:15:44 +00006616 if( rc ){
drh9b171272004-05-08 02:03:22 +00006617 releasePage(pToRelease);
drh3b7511c2001-05-26 13:15:44 +00006618 return rc;
6619 }
drhc5053fb2008-11-27 02:22:10 +00006620
6621 /* If pToRelease is not zero than pPrior points into the data area
6622 ** of pToRelease. Make sure pToRelease is still writeable. */
6623 assert( pToRelease==0 || sqlite3PagerIswriteable(pToRelease->pDbPage) );
6624
6625 /* If pPrior is part of the data area of pPage, then make sure pPage
6626 ** is still writeable */
6627 assert( pPrior<pPage->aData || pPrior>=&pPage->aData[pBt->pageSize]
6628 || sqlite3PagerIswriteable(pPage->pDbPage) );
6629
drh3aac2dd2004-04-26 14:10:20 +00006630 put4byte(pPrior, pgnoOvfl);
drh9b171272004-05-08 02:03:22 +00006631 releasePage(pToRelease);
6632 pToRelease = pOvfl;
drh3aac2dd2004-04-26 14:10:20 +00006633 pPrior = pOvfl->aData;
6634 put4byte(pPrior, 0);
6635 pPayload = &pOvfl->aData[4];
drhb6f41482004-05-14 01:58:11 +00006636 spaceLeft = pBt->usableSize - 4;
drh3b7511c2001-05-26 13:15:44 +00006637 }
drhdd793422001-06-28 01:54:48 +00006638 }
drh9b171272004-05-08 02:03:22 +00006639 releasePage(pToRelease);
drh3b7511c2001-05-26 13:15:44 +00006640 return SQLITE_OK;
6641}
6642
drh14acc042001-06-10 19:56:58 +00006643/*
6644** Remove the i-th cell from pPage. This routine effects pPage only.
6645** The cell content is not freed or deallocated. It is assumed that
6646** the cell content has been copied someplace else. This routine just
6647** removes the reference to the cell from pPage.
6648**
6649** "sz" must be the number of bytes in the cell.
drh14acc042001-06-10 19:56:58 +00006650*/
drh98add2e2009-07-20 17:11:49 +00006651static void dropCell(MemPage *pPage, int idx, int sz, int *pRC){
drh43b18e12010-08-17 19:40:08 +00006652 u32 pc; /* Offset to cell content of cell being deleted */
drh43605152004-05-29 21:46:49 +00006653 u8 *data; /* pPage->aData */
6654 u8 *ptr; /* Used to move bytes around within data[] */
shanedcc50b72008-11-13 18:29:50 +00006655 int rc; /* The return code */
drhc314dc72009-07-21 11:52:34 +00006656 int hdr; /* Beginning of the header. 0 most pages. 100 page 1 */
drh43605152004-05-29 21:46:49 +00006657
drh98add2e2009-07-20 17:11:49 +00006658 if( *pRC ) return;
drh8c42ca92001-06-22 19:15:00 +00006659 assert( idx>=0 && idx<pPage->nCell );
dan0f8076d2015-05-25 18:47:26 +00006660 assert( CORRUPT_DB || sz==cellSize(pPage, idx) );
danielk19773b8a05f2007-03-19 17:44:26 +00006661 assert( sqlite3PagerIswriteable(pPage->pDbPage) );
drh1fee73e2007-08-29 04:00:57 +00006662 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drhb0ea9432019-02-09 21:06:40 +00006663 assert( pPage->nFree>=0 );
drhda200cc2004-05-09 11:51:38 +00006664 data = pPage->aData;
drh3def2352011-11-11 00:27:15 +00006665 ptr = &pPage->aCellIdx[2*idx];
shane0af3f892008-11-12 04:55:34 +00006666 pc = get2byte(ptr);
drhc314dc72009-07-21 11:52:34 +00006667 hdr = pPage->hdrOffset;
6668 testcase( pc==get2byte(&data[hdr+5]) );
6669 testcase( pc+sz==pPage->pBt->usableSize );
drh5e398e42017-08-23 20:36:06 +00006670 if( pc+sz > pPage->pBt->usableSize ){
drh98add2e2009-07-20 17:11:49 +00006671 *pRC = SQLITE_CORRUPT_BKPT;
6672 return;
shane0af3f892008-11-12 04:55:34 +00006673 }
shanedcc50b72008-11-13 18:29:50 +00006674 rc = freeSpace(pPage, pc, sz);
drh98add2e2009-07-20 17:11:49 +00006675 if( rc ){
6676 *pRC = rc;
6677 return;
shanedcc50b72008-11-13 18:29:50 +00006678 }
drh14acc042001-06-10 19:56:58 +00006679 pPage->nCell--;
drhfdab0262014-11-20 15:30:50 +00006680 if( pPage->nCell==0 ){
6681 memset(&data[hdr+1], 0, 4);
6682 data[hdr+7] = 0;
6683 put2byte(&data[hdr+5], pPage->pBt->usableSize);
6684 pPage->nFree = pPage->pBt->usableSize - pPage->hdrOffset
6685 - pPage->childPtrSize - 8;
6686 }else{
6687 memmove(ptr, ptr+2, 2*(pPage->nCell - idx));
6688 put2byte(&data[hdr+3], pPage->nCell);
6689 pPage->nFree += 2;
6690 }
drh14acc042001-06-10 19:56:58 +00006691}
6692
6693/*
6694** Insert a new cell on pPage at cell index "i". pCell points to the
6695** content of the cell.
6696**
6697** If the cell content will fit on the page, then put it there. If it
drh43605152004-05-29 21:46:49 +00006698** will not fit, then make a copy of the cell content into pTemp if
6699** pTemp is not null. Regardless of pTemp, allocate a new entry
drh2cbd78b2012-02-02 19:37:18 +00006700** in pPage->apOvfl[] and make it point to the cell content (either
drh43605152004-05-29 21:46:49 +00006701** in pTemp or the original pCell) and also record its index.
6702** Allocating a new entry in pPage->aCell[] implies that
6703** pPage->nOverflow is incremented.
drhcb89f4a2016-05-21 11:23:26 +00006704**
6705** *pRC must be SQLITE_OK when this routine is called.
drh14acc042001-06-10 19:56:58 +00006706*/
drh98add2e2009-07-20 17:11:49 +00006707static void insertCell(
drh24cd67e2004-05-10 16:18:47 +00006708 MemPage *pPage, /* Page into which we are copying */
drh43605152004-05-29 21:46:49 +00006709 int i, /* New cell becomes the i-th cell of the page */
6710 u8 *pCell, /* Content of the new cell */
6711 int sz, /* Bytes of content in pCell */
danielk1977a3ad5e72005-01-07 08:56:44 +00006712 u8 *pTemp, /* Temp storage space for pCell, if needed */
drh98add2e2009-07-20 17:11:49 +00006713 Pgno iChild, /* If non-zero, replace first 4 bytes with this value */
6714 int *pRC /* Read and write return code from here */
drh24cd67e2004-05-10 16:18:47 +00006715){
drh383d30f2010-02-26 13:07:37 +00006716 int idx = 0; /* Where to write new cell content in data[] */
drh43605152004-05-29 21:46:49 +00006717 int j; /* Loop counter */
drh43605152004-05-29 21:46:49 +00006718 u8 *data; /* The content of the whole page */
drh2c8fb922015-06-25 19:53:48 +00006719 u8 *pIns; /* The point in pPage->aCellIdx[] where no cell inserted */
danielk19774dbaa892009-06-16 16:50:22 +00006720
drhcb89f4a2016-05-21 11:23:26 +00006721 assert( *pRC==SQLITE_OK );
drh43605152004-05-29 21:46:49 +00006722 assert( i>=0 && i<=pPage->nCell+pPage->nOverflow );
danf216e322014-08-14 19:53:37 +00006723 assert( MX_CELL(pPage->pBt)<=10921 );
6724 assert( pPage->nCell<=MX_CELL(pPage->pBt) || CORRUPT_DB );
drh2cbd78b2012-02-02 19:37:18 +00006725 assert( pPage->nOverflow<=ArraySize(pPage->apOvfl) );
6726 assert( ArraySize(pPage->apOvfl)==ArraySize(pPage->aiOvfl) );
drh1fee73e2007-08-29 04:00:57 +00006727 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
drh996f5cc2019-07-17 16:18:01 +00006728 assert( sz==pPage->xCellSize(pPage, pCell) || CORRUPT_DB );
drhb0ea9432019-02-09 21:06:40 +00006729 assert( pPage->nFree>=0 );
drh43605152004-05-29 21:46:49 +00006730 if( pPage->nOverflow || sz+2>pPage->nFree ){
drh24cd67e2004-05-10 16:18:47 +00006731 if( pTemp ){
drhd6176c42014-10-11 17:22:55 +00006732 memcpy(pTemp, pCell, sz);
drh43605152004-05-29 21:46:49 +00006733 pCell = pTemp;
drh24cd67e2004-05-10 16:18:47 +00006734 }
danielk19774dbaa892009-06-16 16:50:22 +00006735 if( iChild ){
6736 put4byte(pCell, iChild);
6737 }
drh43605152004-05-29 21:46:49 +00006738 j = pPage->nOverflow++;
drha2ee5892016-12-09 16:02:00 +00006739 /* Comparison against ArraySize-1 since we hold back one extra slot
6740 ** as a contingency. In other words, never need more than 3 overflow
6741 ** slots but 4 are allocated, just to be safe. */
6742 assert( j < ArraySize(pPage->apOvfl)-1 );
drh2cbd78b2012-02-02 19:37:18 +00006743 pPage->apOvfl[j] = pCell;
6744 pPage->aiOvfl[j] = (u16)i;
drhfe647dc2015-06-23 18:24:25 +00006745
6746 /* When multiple overflows occur, they are always sequential and in
6747 ** sorted order. This invariants arise because multiple overflows can
6748 ** only occur when inserting divider cells into the parent page during
6749 ** balancing, and the dividers are adjacent and sorted.
6750 */
6751 assert( j==0 || pPage->aiOvfl[j-1]<(u16)i ); /* Overflows in sorted order */
6752 assert( j==0 || i==pPage->aiOvfl[j-1]+1 ); /* Overflows are sequential */
drh14acc042001-06-10 19:56:58 +00006753 }else{
danielk19776e465eb2007-08-21 13:11:00 +00006754 int rc = sqlite3PagerWrite(pPage->pDbPage);
6755 if( rc!=SQLITE_OK ){
drh98add2e2009-07-20 17:11:49 +00006756 *pRC = rc;
6757 return;
danielk19776e465eb2007-08-21 13:11:00 +00006758 }
6759 assert( sqlite3PagerIswriteable(pPage->pDbPage) );
drh43605152004-05-29 21:46:49 +00006760 data = pPage->aData;
drh2c8fb922015-06-25 19:53:48 +00006761 assert( &data[pPage->cellOffset]==pPage->aCellIdx );
drh0a45c272009-07-08 01:49:11 +00006762 rc = allocateSpace(pPage, sz, &idx);
drh98add2e2009-07-20 17:11:49 +00006763 if( rc ){ *pRC = rc; return; }
drhcd8fb7c2015-06-02 14:02:18 +00006764 /* The allocateSpace() routine guarantees the following properties
6765 ** if it returns successfully */
drh2c8fb922015-06-25 19:53:48 +00006766 assert( idx >= 0 );
6767 assert( idx >= pPage->cellOffset+2*pPage->nCell+2 || CORRUPT_DB );
drhfcd71b62011-04-05 22:08:24 +00006768 assert( idx+sz <= (int)pPage->pBt->usableSize );
drh0a45c272009-07-08 01:49:11 +00006769 pPage->nFree -= (u16)(2 + sz);
danielk19774dbaa892009-06-16 16:50:22 +00006770 if( iChild ){
drhd12db3d2019-01-14 05:48:10 +00006771 /* In a corrupt database where an entry in the cell index section of
6772 ** a btree page has a value of 3 or less, the pCell value might point
6773 ** as many as 4 bytes in front of the start of the aData buffer for
6774 ** the source page. Make sure this does not cause problems by not
6775 ** reading the first 4 bytes */
6776 memcpy(&data[idx+4], pCell+4, sz-4);
danielk19774dbaa892009-06-16 16:50:22 +00006777 put4byte(&data[idx], iChild);
drhd12db3d2019-01-14 05:48:10 +00006778 }else{
6779 memcpy(&data[idx], pCell, sz);
danielk19774dbaa892009-06-16 16:50:22 +00006780 }
drh2c8fb922015-06-25 19:53:48 +00006781 pIns = pPage->aCellIdx + i*2;
6782 memmove(pIns+2, pIns, 2*(pPage->nCell - i));
6783 put2byte(pIns, idx);
6784 pPage->nCell++;
6785 /* increment the cell count */
6786 if( (++data[pPage->hdrOffset+4])==0 ) data[pPage->hdrOffset+3]++;
drh56785a02019-02-16 22:45:55 +00006787 assert( get2byte(&data[pPage->hdrOffset+3])==pPage->nCell || CORRUPT_DB );
danielk1977a19df672004-11-03 11:37:07 +00006788#ifndef SQLITE_OMIT_AUTOVACUUM
6789 if( pPage->pBt->autoVacuum ){
6790 /* The cell may contain a pointer to an overflow page. If so, write
6791 ** the entry for the overflow page into the pointer map.
6792 */
drh0f1bf4c2019-01-13 20:17:21 +00006793 ptrmapPutOvflPtr(pPage, pPage, pCell, pRC);
danielk1977a19df672004-11-03 11:37:07 +00006794 }
6795#endif
drh14acc042001-06-10 19:56:58 +00006796 }
6797}
6798
6799/*
drhe3dadac2019-01-23 19:25:59 +00006800** The following parameters determine how many adjacent pages get involved
6801** in a balancing operation. NN is the number of neighbors on either side
6802** of the page that participate in the balancing operation. NB is the
6803** total number of pages that participate, including the target page and
6804** NN neighbors on either side.
6805**
6806** The minimum value of NN is 1 (of course). Increasing NN above 1
6807** (to 2 or 3) gives a modest improvement in SELECT and DELETE performance
6808** in exchange for a larger degradation in INSERT and UPDATE performance.
6809** The value of NN appears to give the best results overall.
6810**
6811** (Later:) The description above makes it seem as if these values are
6812** tunable - as if you could change them and recompile and it would all work.
6813** But that is unlikely. NB has been 3 since the inception of SQLite and
6814** we have never tested any other value.
6815*/
6816#define NN 1 /* Number of neighbors on either side of pPage */
6817#define NB 3 /* (NN*2+1): Total pages involved in the balance */
6818
6819/*
drh1ffd2472015-06-23 02:37:30 +00006820** A CellArray object contains a cache of pointers and sizes for a
drhc0d269e2016-08-03 14:51:16 +00006821** consecutive sequence of cells that might be held on multiple pages.
drhe3dadac2019-01-23 19:25:59 +00006822**
6823** The cells in this array are the divider cell or cells from the pParent
6824** page plus up to three child pages. There are a total of nCell cells.
6825**
6826** pRef is a pointer to one of the pages that contributes cells. This is
6827** used to access information such as MemPage.intKey and MemPage.pBt->pageSize
6828** which should be common to all pages that contribute cells to this array.
6829**
6830** apCell[] and szCell[] hold, respectively, pointers to the start of each
6831** cell and the size of each cell. Some of the apCell[] pointers might refer
6832** to overflow cells. In other words, some apCel[] pointers might not point
6833** to content area of the pages.
6834**
6835** A szCell[] of zero means the size of that cell has not yet been computed.
6836**
6837** The cells come from as many as four different pages:
6838**
6839** -----------
6840** | Parent |
6841** -----------
6842** / | \
6843** / | \
6844** --------- --------- ---------
6845** |Child-1| |Child-2| |Child-3|
6846** --------- --------- ---------
6847**
drh26b7ec82019-02-01 14:50:43 +00006848** The order of cells is in the array is for an index btree is:
drhe3dadac2019-01-23 19:25:59 +00006849**
6850** 1. All cells from Child-1 in order
6851** 2. The first divider cell from Parent
6852** 3. All cells from Child-2 in order
6853** 4. The second divider cell from Parent
6854** 5. All cells from Child-3 in order
6855**
drh26b7ec82019-02-01 14:50:43 +00006856** For a table-btree (with rowids) the items 2 and 4 are empty because
6857** content exists only in leaves and there are no divider cells.
6858**
6859** For an index btree, the apEnd[] array holds pointer to the end of page
6860** for Child-1, the Parent, Child-2, the Parent (again), and Child-3,
6861** respectively. The ixNx[] array holds the number of cells contained in
6862** each of these 5 stages, and all stages to the left. Hence:
6863**
drhe3dadac2019-01-23 19:25:59 +00006864** ixNx[0] = Number of cells in Child-1.
6865** ixNx[1] = Number of cells in Child-1 plus 1 for first divider.
6866** ixNx[2] = Number of cells in Child-1 and Child-2 + 1 for 1st divider.
6867** ixNx[3] = Number of cells in Child-1 and Child-2 + both divider cells
6868** ixNx[4] = Total number of cells.
drh26b7ec82019-02-01 14:50:43 +00006869**
6870** For a table-btree, the concept is similar, except only apEnd[0]..apEnd[2]
6871** are used and they point to the leaf pages only, and the ixNx value are:
6872**
6873** ixNx[0] = Number of cells in Child-1.
drh9c7e44c2019-02-14 15:27:12 +00006874** ixNx[1] = Number of cells in Child-1 and Child-2.
6875** ixNx[2] = Total number of cells.
6876**
6877** Sometimes when deleting, a child page can have zero cells. In those
6878** cases, ixNx[] entries with higher indexes, and the corresponding apEnd[]
6879** entries, shift down. The end result is that each ixNx[] entry should
6880** be larger than the previous
drhfa1a98a2004-05-14 19:08:17 +00006881*/
drh1ffd2472015-06-23 02:37:30 +00006882typedef struct CellArray CellArray;
6883struct CellArray {
6884 int nCell; /* Number of cells in apCell[] */
6885 MemPage *pRef; /* Reference page */
6886 u8 **apCell; /* All cells begin balanced */
6887 u16 *szCell; /* Local size of all cells in apCell[] */
drhe3dadac2019-01-23 19:25:59 +00006888 u8 *apEnd[NB*2]; /* MemPage.aDataEnd values */
6889 int ixNx[NB*2]; /* Index of at which we move to the next apEnd[] */
drh1ffd2472015-06-23 02:37:30 +00006890};
drhfa1a98a2004-05-14 19:08:17 +00006891
drh1ffd2472015-06-23 02:37:30 +00006892/*
6893** Make sure the cell sizes at idx, idx+1, ..., idx+N-1 have been
6894** computed.
6895*/
6896static void populateCellCache(CellArray *p, int idx, int N){
6897 assert( idx>=0 && idx+N<=p->nCell );
6898 while( N>0 ){
6899 assert( p->apCell[idx]!=0 );
6900 if( p->szCell[idx]==0 ){
6901 p->szCell[idx] = p->pRef->xCellSize(p->pRef, p->apCell[idx]);
6902 }else{
6903 assert( CORRUPT_DB ||
6904 p->szCell[idx]==p->pRef->xCellSize(p->pRef, p->apCell[idx]) );
6905 }
6906 idx++;
6907 N--;
drhfa1a98a2004-05-14 19:08:17 +00006908 }
drh1ffd2472015-06-23 02:37:30 +00006909}
6910
6911/*
6912** Return the size of the Nth element of the cell array
6913*/
6914static SQLITE_NOINLINE u16 computeCellSize(CellArray *p, int N){
6915 assert( N>=0 && N<p->nCell );
6916 assert( p->szCell[N]==0 );
6917 p->szCell[N] = p->pRef->xCellSize(p->pRef, p->apCell[N]);
6918 return p->szCell[N];
6919}
6920static u16 cachedCellSize(CellArray *p, int N){
6921 assert( N>=0 && N<p->nCell );
6922 if( p->szCell[N] ) return p->szCell[N];
6923 return computeCellSize(p, N);
6924}
6925
6926/*
dan8e9ba0c2014-10-14 17:27:04 +00006927** Array apCell[] contains pointers to nCell b-tree page cells. The
6928** szCell[] array contains the size in bytes of each cell. This function
6929** replaces the current contents of page pPg with the contents of the cell
6930** array.
6931**
6932** Some of the cells in apCell[] may currently be stored in pPg. This
6933** function works around problems caused by this by making a copy of any
6934** such cells before overwriting the page data.
6935**
6936** The MemPage.nFree field is invalidated by this function. It is the
6937** responsibility of the caller to set it correctly.
drhfa1a98a2004-05-14 19:08:17 +00006938*/
drh658873b2015-06-22 20:02:04 +00006939static int rebuildPage(
drhe3dadac2019-01-23 19:25:59 +00006940 CellArray *pCArray, /* Content to be added to page pPg */
6941 int iFirst, /* First cell in pCArray to use */
dan33ea4862014-10-09 19:35:37 +00006942 int nCell, /* Final number of cells on page */
drhe3dadac2019-01-23 19:25:59 +00006943 MemPage *pPg /* The page to be reconstructed */
dan33ea4862014-10-09 19:35:37 +00006944){
6945 const int hdr = pPg->hdrOffset; /* Offset of header on pPg */
6946 u8 * const aData = pPg->aData; /* Pointer to data for pPg */
6947 const int usableSize = pPg->pBt->usableSize;
6948 u8 * const pEnd = &aData[usableSize];
drhe3dadac2019-01-23 19:25:59 +00006949 int i = iFirst; /* Which cell to copy from pCArray*/
drha0466432019-01-29 16:41:13 +00006950 u32 j; /* Start of cell content area */
drhe3dadac2019-01-23 19:25:59 +00006951 int iEnd = i+nCell; /* Loop terminator */
dan33ea4862014-10-09 19:35:37 +00006952 u8 *pCellptr = pPg->aCellIdx;
6953 u8 *pTmp = sqlite3PagerTempSpace(pPg->pBt->pPager);
6954 u8 *pData;
drhe3dadac2019-01-23 19:25:59 +00006955 int k; /* Current slot in pCArray->apEnd[] */
6956 u8 *pSrcEnd; /* Current pCArray->apEnd[k] value */
dan33ea4862014-10-09 19:35:37 +00006957
drhe3dadac2019-01-23 19:25:59 +00006958 assert( i<iEnd );
6959 j = get2byte(&aData[hdr+5]);
drh3b76c452020-01-03 17:40:30 +00006960 if( NEVER(j>(u32)usableSize) ){ j = 0; }
drhe3dadac2019-01-23 19:25:59 +00006961 memcpy(&pTmp[j], &aData[j], usableSize - j);
6962
6963 for(k=0; pCArray->ixNx[k]<=i && ALWAYS(k<NB*2); k++){}
6964 pSrcEnd = pCArray->apEnd[k];
dan33ea4862014-10-09 19:35:37 +00006965
dan8e9ba0c2014-10-14 17:27:04 +00006966 pData = pEnd;
drhe3dadac2019-01-23 19:25:59 +00006967 while( 1/*exit by break*/ ){
6968 u8 *pCell = pCArray->apCell[i];
6969 u16 sz = pCArray->szCell[i];
6970 assert( sz>0 );
drh8b0ba7b2015-12-16 13:07:35 +00006971 if( SQLITE_WITHIN(pCell,aData,pEnd) ){
drhb2b61bb2020-01-04 14:50:06 +00006972 if( ((uptr)(pCell+sz))>(uptr)pEnd ) return SQLITE_CORRUPT_BKPT;
dan33ea4862014-10-09 19:35:37 +00006973 pCell = &pTmp[pCell - aData];
drhe3dadac2019-01-23 19:25:59 +00006974 }else if( (uptr)(pCell+sz)>(uptr)pSrcEnd
6975 && (uptr)(pCell)<(uptr)pSrcEnd
6976 ){
6977 return SQLITE_CORRUPT_BKPT;
dan33ea4862014-10-09 19:35:37 +00006978 }
drhe3dadac2019-01-23 19:25:59 +00006979
6980 pData -= sz;
dan33ea4862014-10-09 19:35:37 +00006981 put2byte(pCellptr, (pData - aData));
6982 pCellptr += 2;
drhe5cf3e92020-01-04 12:34:44 +00006983 if( pData < pCellptr ) return SQLITE_CORRUPT_BKPT;
drhe3dadac2019-01-23 19:25:59 +00006984 memcpy(pData, pCell, sz);
drhe5cf3e92020-01-04 12:34:44 +00006985 assert( sz==pPg->xCellSize(pPg, pCell) || CORRUPT_DB );
6986 testcase( sz!=pPg->xCellSize(pPg,pCell) )
drhe3dadac2019-01-23 19:25:59 +00006987 i++;
6988 if( i>=iEnd ) break;
6989 if( pCArray->ixNx[k]<=i ){
6990 k++;
6991 pSrcEnd = pCArray->apEnd[k];
6992 }
dan33ea4862014-10-09 19:35:37 +00006993 }
6994
dand7b545b2014-10-13 18:03:27 +00006995 /* The pPg->nFree field is now set incorrectly. The caller will fix it. */
dan33ea4862014-10-09 19:35:37 +00006996 pPg->nCell = nCell;
6997 pPg->nOverflow = 0;
6998
6999 put2byte(&aData[hdr+1], 0);
7000 put2byte(&aData[hdr+3], pPg->nCell);
7001 put2byte(&aData[hdr+5], pData - aData);
7002 aData[hdr+7] = 0x00;
drh658873b2015-06-22 20:02:04 +00007003 return SQLITE_OK;
dan33ea4862014-10-09 19:35:37 +00007004}
7005
dan8e9ba0c2014-10-14 17:27:04 +00007006/*
drhe3dadac2019-01-23 19:25:59 +00007007** The pCArray objects contains pointers to b-tree cells and the cell sizes.
7008** This function attempts to add the cells stored in the array to page pPg.
7009** If it cannot (because the page needs to be defragmented before the cells
7010** will fit), non-zero is returned. Otherwise, if the cells are added
7011** successfully, zero is returned.
dan8e9ba0c2014-10-14 17:27:04 +00007012**
7013** Argument pCellptr points to the first entry in the cell-pointer array
7014** (part of page pPg) to populate. After cell apCell[0] is written to the
7015** page body, a 16-bit offset is written to pCellptr. And so on, for each
7016** cell in the array. It is the responsibility of the caller to ensure
7017** that it is safe to overwrite this part of the cell-pointer array.
7018**
7019** When this function is called, *ppData points to the start of the
7020** content area on page pPg. If the size of the content area is extended,
7021** *ppData is updated to point to the new start of the content area
7022** before returning.
7023**
7024** Finally, argument pBegin points to the byte immediately following the
7025** end of the space required by this page for the cell-pointer area (for
7026** all cells - not just those inserted by the current call). If the content
7027** area must be extended to before this point in order to accomodate all
7028** cells in apCell[], then the cells do not fit and non-zero is returned.
7029*/
dand7b545b2014-10-13 18:03:27 +00007030static int pageInsertArray(
dan8e9ba0c2014-10-14 17:27:04 +00007031 MemPage *pPg, /* Page to add cells to */
7032 u8 *pBegin, /* End of cell-pointer array */
drhe3dadac2019-01-23 19:25:59 +00007033 u8 **ppData, /* IN/OUT: Page content-area pointer */
dan8e9ba0c2014-10-14 17:27:04 +00007034 u8 *pCellptr, /* Pointer to cell-pointer area */
drhf7838932015-06-23 15:36:34 +00007035 int iFirst, /* Index of first cell to add */
dan8e9ba0c2014-10-14 17:27:04 +00007036 int nCell, /* Number of cells to add to pPg */
drhf7838932015-06-23 15:36:34 +00007037 CellArray *pCArray /* Array of cells */
dand7b545b2014-10-13 18:03:27 +00007038){
drhe3dadac2019-01-23 19:25:59 +00007039 int i = iFirst; /* Loop counter - cell index to insert */
7040 u8 *aData = pPg->aData; /* Complete page */
7041 u8 *pData = *ppData; /* Content area. A subset of aData[] */
7042 int iEnd = iFirst + nCell; /* End of loop. One past last cell to ins */
7043 int k; /* Current slot in pCArray->apEnd[] */
7044 u8 *pEnd; /* Maximum extent of cell data */
dan23eba452014-10-24 18:43:57 +00007045 assert( CORRUPT_DB || pPg->hdrOffset==0 ); /* Never called on page 1 */
drhe3dadac2019-01-23 19:25:59 +00007046 if( iEnd<=iFirst ) return 0;
7047 for(k=0; pCArray->ixNx[k]<=i && ALWAYS(k<NB*2); k++){}
7048 pEnd = pCArray->apEnd[k];
7049 while( 1 /*Exit by break*/ ){
drhf7838932015-06-23 15:36:34 +00007050 int sz, rc;
dand7b545b2014-10-13 18:03:27 +00007051 u8 *pSlot;
dan666a42f2019-08-24 21:02:47 +00007052 assert( pCArray->szCell[i]!=0 );
7053 sz = pCArray->szCell[i];
drhb7580e82015-06-25 18:36:13 +00007054 if( (aData[1]==0 && aData[2]==0) || (pSlot = pageFindSlot(pPg,sz,&rc))==0 ){
drhcca66982016-04-05 13:19:19 +00007055 if( (pData - pBegin)<sz ) return 1;
dand7b545b2014-10-13 18:03:27 +00007056 pData -= sz;
dand7b545b2014-10-13 18:03:27 +00007057 pSlot = pData;
7058 }
drh48310f82015-10-10 16:41:28 +00007059 /* pSlot and pCArray->apCell[i] will never overlap on a well-formed
7060 ** database. But they might for a corrupt database. Hence use memmove()
7061 ** since memcpy() sends SIGABORT with overlapping buffers on OpenBSD */
7062 assert( (pSlot+sz)<=pCArray->apCell[i]
7063 || pSlot>=(pCArray->apCell[i]+sz)
7064 || CORRUPT_DB );
drhe3dadac2019-01-23 19:25:59 +00007065 if( (uptr)(pCArray->apCell[i]+sz)>(uptr)pEnd
7066 && (uptr)(pCArray->apCell[i])<(uptr)pEnd
7067 ){
7068 assert( CORRUPT_DB );
7069 (void)SQLITE_CORRUPT_BKPT;
7070 return 1;
7071 }
drh48310f82015-10-10 16:41:28 +00007072 memmove(pSlot, pCArray->apCell[i], sz);
dand7b545b2014-10-13 18:03:27 +00007073 put2byte(pCellptr, (pSlot - aData));
7074 pCellptr += 2;
drhe3dadac2019-01-23 19:25:59 +00007075 i++;
7076 if( i>=iEnd ) break;
7077 if( pCArray->ixNx[k]<=i ){
7078 k++;
7079 pEnd = pCArray->apEnd[k];
7080 }
dand7b545b2014-10-13 18:03:27 +00007081 }
7082 *ppData = pData;
7083 return 0;
7084}
7085
dan8e9ba0c2014-10-14 17:27:04 +00007086/*
drhe3dadac2019-01-23 19:25:59 +00007087** The pCArray object contains pointers to b-tree cells and their sizes.
7088**
7089** This function adds the space associated with each cell in the array
7090** that is currently stored within the body of pPg to the pPg free-list.
7091** The cell-pointers and other fields of the page are not updated.
dan8e9ba0c2014-10-14 17:27:04 +00007092**
7093** This function returns the total number of cells added to the free-list.
7094*/
dand7b545b2014-10-13 18:03:27 +00007095static int pageFreeArray(
7096 MemPage *pPg, /* Page to edit */
drhf7838932015-06-23 15:36:34 +00007097 int iFirst, /* First cell to delete */
dand7b545b2014-10-13 18:03:27 +00007098 int nCell, /* Cells to delete */
drhf7838932015-06-23 15:36:34 +00007099 CellArray *pCArray /* Array of cells */
dand7b545b2014-10-13 18:03:27 +00007100){
7101 u8 * const aData = pPg->aData;
7102 u8 * const pEnd = &aData[pPg->pBt->usableSize];
dan89ca0b32014-10-25 20:36:28 +00007103 u8 * const pStart = &aData[pPg->hdrOffset + 8 + pPg->childPtrSize];
dand7b545b2014-10-13 18:03:27 +00007104 int nRet = 0;
7105 int i;
drhf7838932015-06-23 15:36:34 +00007106 int iEnd = iFirst + nCell;
dand7b545b2014-10-13 18:03:27 +00007107 u8 *pFree = 0;
7108 int szFree = 0;
7109
drhf7838932015-06-23 15:36:34 +00007110 for(i=iFirst; i<iEnd; i++){
7111 u8 *pCell = pCArray->apCell[i];
drh8b0ba7b2015-12-16 13:07:35 +00007112 if( SQLITE_WITHIN(pCell, pStart, pEnd) ){
drhf7838932015-06-23 15:36:34 +00007113 int sz;
7114 /* No need to use cachedCellSize() here. The sizes of all cells that
7115 ** are to be freed have already been computing while deciding which
7116 ** cells need freeing */
7117 sz = pCArray->szCell[i]; assert( sz>0 );
dand7b545b2014-10-13 18:03:27 +00007118 if( pFree!=(pCell + sz) ){
drhfefa0942014-11-05 21:21:08 +00007119 if( pFree ){
7120 assert( pFree>aData && (pFree - aData)<65536 );
7121 freeSpace(pPg, (u16)(pFree - aData), szFree);
7122 }
dand7b545b2014-10-13 18:03:27 +00007123 pFree = pCell;
7124 szFree = sz;
drh64f7ee02020-01-04 17:55:01 +00007125 if( pFree+sz>pEnd ) return 0;
dand7b545b2014-10-13 18:03:27 +00007126 }else{
7127 pFree = pCell;
7128 szFree += sz;
7129 }
7130 nRet++;
7131 }
7132 }
drhfefa0942014-11-05 21:21:08 +00007133 if( pFree ){
7134 assert( pFree>aData && (pFree - aData)<65536 );
7135 freeSpace(pPg, (u16)(pFree - aData), szFree);
7136 }
dand7b545b2014-10-13 18:03:27 +00007137 return nRet;
7138}
7139
dand7b545b2014-10-13 18:03:27 +00007140/*
drha0466432019-01-29 16:41:13 +00007141** pCArray contains pointers to and sizes of all cells in the page being
drhe3dadac2019-01-23 19:25:59 +00007142** balanced. The current page, pPg, has pPg->nCell cells starting with
7143** pCArray->apCell[iOld]. After balancing, this page should hold nNew cells
drh5ab63772014-11-27 03:46:04 +00007144** starting at apCell[iNew].
7145**
7146** This routine makes the necessary adjustments to pPg so that it contains
7147** the correct cells after being balanced.
7148**
dand7b545b2014-10-13 18:03:27 +00007149** The pPg->nFree field is invalid when this function returns. It is the
7150** responsibility of the caller to set it correctly.
7151*/
drh658873b2015-06-22 20:02:04 +00007152static int editPage(
dan09c68402014-10-11 20:00:24 +00007153 MemPage *pPg, /* Edit this page */
7154 int iOld, /* Index of first cell currently on page */
7155 int iNew, /* Index of new first cell on page */
7156 int nNew, /* Final number of cells on page */
drh1ffd2472015-06-23 02:37:30 +00007157 CellArray *pCArray /* Array of cells and sizes */
dan09c68402014-10-11 20:00:24 +00007158){
dand7b545b2014-10-13 18:03:27 +00007159 u8 * const aData = pPg->aData;
7160 const int hdr = pPg->hdrOffset;
7161 u8 *pBegin = &pPg->aCellIdx[nNew * 2];
7162 int nCell = pPg->nCell; /* Cells stored on pPg */
7163 u8 *pData;
7164 u8 *pCellptr;
7165 int i;
7166 int iOldEnd = iOld + pPg->nCell + pPg->nOverflow;
7167 int iNewEnd = iNew + nNew;
dan09c68402014-10-11 20:00:24 +00007168
7169#ifdef SQLITE_DEBUG
dand7b545b2014-10-13 18:03:27 +00007170 u8 *pTmp = sqlite3PagerTempSpace(pPg->pBt->pPager);
7171 memcpy(pTmp, aData, pPg->pBt->usableSize);
dan09c68402014-10-11 20:00:24 +00007172#endif
7173
dand7b545b2014-10-13 18:03:27 +00007174 /* Remove cells from the start and end of the page */
drha0466432019-01-29 16:41:13 +00007175 assert( nCell>=0 );
dand7b545b2014-10-13 18:03:27 +00007176 if( iOld<iNew ){
drhf7838932015-06-23 15:36:34 +00007177 int nShift = pageFreeArray(pPg, iOld, iNew-iOld, pCArray);
drhfde25922020-05-05 19:54:02 +00007178 if( NEVER(nShift>nCell) ) return SQLITE_CORRUPT_BKPT;
dand7b545b2014-10-13 18:03:27 +00007179 memmove(pPg->aCellIdx, &pPg->aCellIdx[nShift*2], nCell*2);
7180 nCell -= nShift;
7181 }
7182 if( iNewEnd < iOldEnd ){
drha0466432019-01-29 16:41:13 +00007183 int nTail = pageFreeArray(pPg, iNewEnd, iOldEnd - iNewEnd, pCArray);
7184 assert( nCell>=nTail );
7185 nCell -= nTail;
dand7b545b2014-10-13 18:03:27 +00007186 }
dan09c68402014-10-11 20:00:24 +00007187
drh5ab63772014-11-27 03:46:04 +00007188 pData = &aData[get2byteNotZero(&aData[hdr+5])];
dand7b545b2014-10-13 18:03:27 +00007189 if( pData<pBegin ) goto editpage_fail;
7190
7191 /* Add cells to the start of the page */
7192 if( iNew<iOld ){
drh5ab63772014-11-27 03:46:04 +00007193 int nAdd = MIN(nNew,iOld-iNew);
7194 assert( (iOld-iNew)<nNew || nCell==0 || CORRUPT_DB );
drha0466432019-01-29 16:41:13 +00007195 assert( nAdd>=0 );
dand7b545b2014-10-13 18:03:27 +00007196 pCellptr = pPg->aCellIdx;
7197 memmove(&pCellptr[nAdd*2], pCellptr, nCell*2);
7198 if( pageInsertArray(
7199 pPg, pBegin, &pData, pCellptr,
drhf7838932015-06-23 15:36:34 +00007200 iNew, nAdd, pCArray
dand7b545b2014-10-13 18:03:27 +00007201 ) ) goto editpage_fail;
7202 nCell += nAdd;
7203 }
7204
7205 /* Add any overflow cells */
7206 for(i=0; i<pPg->nOverflow; i++){
7207 int iCell = (iOld + pPg->aiOvfl[i]) - iNew;
7208 if( iCell>=0 && iCell<nNew ){
drhfefa0942014-11-05 21:21:08 +00007209 pCellptr = &pPg->aCellIdx[iCell * 2];
drh4b986b22019-03-08 14:02:11 +00007210 if( nCell>iCell ){
7211 memmove(&pCellptr[2], pCellptr, (nCell - iCell) * 2);
7212 }
dand7b545b2014-10-13 18:03:27 +00007213 nCell++;
dan666a42f2019-08-24 21:02:47 +00007214 cachedCellSize(pCArray, iCell+iNew);
dand7b545b2014-10-13 18:03:27 +00007215 if( pageInsertArray(
7216 pPg, pBegin, &pData, pCellptr,
drhf7838932015-06-23 15:36:34 +00007217 iCell+iNew, 1, pCArray
dand7b545b2014-10-13 18:03:27 +00007218 ) ) goto editpage_fail;
dan09c68402014-10-11 20:00:24 +00007219 }
dand7b545b2014-10-13 18:03:27 +00007220 }
dan09c68402014-10-11 20:00:24 +00007221
dand7b545b2014-10-13 18:03:27 +00007222 /* Append cells to the end of the page */
drha0466432019-01-29 16:41:13 +00007223 assert( nCell>=0 );
dand7b545b2014-10-13 18:03:27 +00007224 pCellptr = &pPg->aCellIdx[nCell*2];
7225 if( pageInsertArray(
7226 pPg, pBegin, &pData, pCellptr,
drhf7838932015-06-23 15:36:34 +00007227 iNew+nCell, nNew-nCell, pCArray
dand7b545b2014-10-13 18:03:27 +00007228 ) ) goto editpage_fail;
dan09c68402014-10-11 20:00:24 +00007229
dand7b545b2014-10-13 18:03:27 +00007230 pPg->nCell = nNew;
7231 pPg->nOverflow = 0;
dan09c68402014-10-11 20:00:24 +00007232
dand7b545b2014-10-13 18:03:27 +00007233 put2byte(&aData[hdr+3], pPg->nCell);
7234 put2byte(&aData[hdr+5], pData - aData);
dan09c68402014-10-11 20:00:24 +00007235
7236#ifdef SQLITE_DEBUG
dan23eba452014-10-24 18:43:57 +00007237 for(i=0; i<nNew && !CORRUPT_DB; i++){
drh1ffd2472015-06-23 02:37:30 +00007238 u8 *pCell = pCArray->apCell[i+iNew];
drh329428e2015-06-30 13:28:18 +00007239 int iOff = get2byteAligned(&pPg->aCellIdx[i*2]);
drh1c715f62016-04-05 13:35:43 +00007240 if( SQLITE_WITHIN(pCell, aData, &aData[pPg->pBt->usableSize]) ){
dand7b545b2014-10-13 18:03:27 +00007241 pCell = &pTmp[pCell - aData];
dan09c68402014-10-11 20:00:24 +00007242 }
drh1ffd2472015-06-23 02:37:30 +00007243 assert( 0==memcmp(pCell, &aData[iOff],
7244 pCArray->pRef->xCellSize(pCArray->pRef, pCArray->apCell[i+iNew])) );
dand7b545b2014-10-13 18:03:27 +00007245 }
dan09c68402014-10-11 20:00:24 +00007246#endif
7247
drh658873b2015-06-22 20:02:04 +00007248 return SQLITE_OK;
dan09c68402014-10-11 20:00:24 +00007249 editpage_fail:
dan09c68402014-10-11 20:00:24 +00007250 /* Unable to edit this page. Rebuild it from scratch instead. */
drh1ffd2472015-06-23 02:37:30 +00007251 populateCellCache(pCArray, iNew, nNew);
drhe3dadac2019-01-23 19:25:59 +00007252 return rebuildPage(pCArray, iNew, nNew, pPg);
drhfa1a98a2004-05-14 19:08:17 +00007253}
7254
danielk1977ac245ec2005-01-14 13:50:11 +00007255
drh615ae552005-01-16 23:21:00 +00007256#ifndef SQLITE_OMIT_QUICKBALANCE
drhf222e712005-01-14 22:55:49 +00007257/*
7258** This version of balance() handles the common special case where
7259** a new entry is being inserted on the extreme right-end of the
7260** tree, in other words, when the new entry will become the largest
7261** entry in the tree.
7262**
drhc314dc72009-07-21 11:52:34 +00007263** Instead of trying to balance the 3 right-most leaf pages, just add
drhf222e712005-01-14 22:55:49 +00007264** a new page to the right-hand side and put the one new entry in
7265** that page. This leaves the right side of the tree somewhat
7266** unbalanced. But odds are that we will be inserting new entries
7267** at the end soon afterwards so the nearly empty page will quickly
7268** fill up. On average.
7269**
7270** pPage is the leaf page which is the right-most page in the tree.
7271** pParent is its parent. pPage must have a single overflow entry
7272** which is also the right-most entry on the page.
danielk1977a50d9aa2009-06-08 14:49:45 +00007273**
7274** The pSpace buffer is used to store a temporary copy of the divider
7275** cell that will be inserted into pParent. Such a cell consists of a 4
7276** byte page number followed by a variable length integer. In other
7277** words, at most 13 bytes. Hence the pSpace buffer must be at
7278** least 13 bytes in size.
drhf222e712005-01-14 22:55:49 +00007279*/
danielk1977a50d9aa2009-06-08 14:49:45 +00007280static int balance_quick(MemPage *pParent, MemPage *pPage, u8 *pSpace){
7281 BtShared *const pBt = pPage->pBt; /* B-Tree Database */
danielk19774dbaa892009-06-16 16:50:22 +00007282 MemPage *pNew; /* Newly allocated page */
danielk19776f235cc2009-06-04 14:46:08 +00007283 int rc; /* Return Code */
7284 Pgno pgnoNew; /* Page number of pNew */
danielk1977ac245ec2005-01-14 13:50:11 +00007285
drh1fee73e2007-08-29 04:00:57 +00007286 assert( sqlite3_mutex_held(pPage->pBt->mutex) );
danielk1977a50d9aa2009-06-08 14:49:45 +00007287 assert( sqlite3PagerIswriteable(pParent->pDbPage) );
danielk1977e56b60e2009-06-10 09:11:06 +00007288 assert( pPage->nOverflow==1 );
drhb0ea9432019-02-09 21:06:40 +00007289
drh6301c432018-12-13 21:52:18 +00007290 if( pPage->nCell==0 ) return SQLITE_CORRUPT_BKPT; /* dbfuzz001.test */
drh68133502019-02-11 17:22:30 +00007291 assert( pPage->nFree>=0 );
7292 assert( pParent->nFree>=0 );
drhd677b3d2007-08-20 22:48:41 +00007293
danielk1977a50d9aa2009-06-08 14:49:45 +00007294 /* Allocate a new page. This page will become the right-sibling of
7295 ** pPage. Make the parent page writable, so that the new divider cell
7296 ** may be inserted. If both these operations are successful, proceed.
7297 */
drh4f0c5872007-03-26 22:05:01 +00007298 rc = allocateBtreePage(pBt, &pNew, &pgnoNew, 0, 0);
danielk19774dbaa892009-06-16 16:50:22 +00007299
danielk1977eaa06f62008-09-18 17:34:44 +00007300 if( rc==SQLITE_OK ){
danielk1977a50d9aa2009-06-08 14:49:45 +00007301
7302 u8 *pOut = &pSpace[4];
drh2cbd78b2012-02-02 19:37:18 +00007303 u8 *pCell = pPage->apOvfl[0];
drh25ada072015-06-19 15:07:14 +00007304 u16 szCell = pPage->xCellSize(pPage, pCell);
danielk19776f235cc2009-06-04 14:46:08 +00007305 u8 *pStop;
drhe3dadac2019-01-23 19:25:59 +00007306 CellArray b;
danielk19776f235cc2009-06-04 14:46:08 +00007307
drhc5053fb2008-11-27 02:22:10 +00007308 assert( sqlite3PagerIswriteable(pNew->pDbPage) );
danba14c692019-01-25 13:42:12 +00007309 assert( CORRUPT_DB || pPage->aData[0]==(PTF_INTKEY|PTF_LEAFDATA|PTF_LEAF) );
danielk1977e56b60e2009-06-10 09:11:06 +00007310 zeroPage(pNew, PTF_INTKEY|PTF_LEAFDATA|PTF_LEAF);
drhe3dadac2019-01-23 19:25:59 +00007311 b.nCell = 1;
7312 b.pRef = pPage;
7313 b.apCell = &pCell;
7314 b.szCell = &szCell;
7315 b.apEnd[0] = pPage->aDataEnd;
7316 b.ixNx[0] = 2;
7317 rc = rebuildPage(&b, 0, 1, pNew);
7318 if( NEVER(rc) ){
7319 releasePage(pNew);
7320 return rc;
7321 }
dan8e9ba0c2014-10-14 17:27:04 +00007322 pNew->nFree = pBt->usableSize - pNew->cellOffset - 2 - szCell;
danielk19774dbaa892009-06-16 16:50:22 +00007323
7324 /* If this is an auto-vacuum database, update the pointer map
7325 ** with entries for the new page, and any pointer from the
7326 ** cell on the page to an overflow page. If either of these
7327 ** operations fails, the return code is set, but the contents
7328 ** of the parent page are still manipulated by thh code below.
7329 ** That is Ok, at this point the parent page is guaranteed to
7330 ** be marked as dirty. Returning an error code will cause a
7331 ** rollback, undoing any changes made to the parent page.
7332 */
7333 if( ISAUTOVACUUM ){
drh98add2e2009-07-20 17:11:49 +00007334 ptrmapPut(pBt, pgnoNew, PTRMAP_BTREE, pParent->pgno, &rc);
7335 if( szCell>pNew->minLocal ){
drh0f1bf4c2019-01-13 20:17:21 +00007336 ptrmapPutOvflPtr(pNew, pNew, pCell, &rc);
danielk19774dbaa892009-06-16 16:50:22 +00007337 }
7338 }
danielk1977eaa06f62008-09-18 17:34:44 +00007339
danielk19776f235cc2009-06-04 14:46:08 +00007340 /* Create a divider cell to insert into pParent. The divider cell
7341 ** consists of a 4-byte page number (the page number of pPage) and
7342 ** a variable length key value (which must be the same value as the
7343 ** largest key on pPage).
danielk1977eaa06f62008-09-18 17:34:44 +00007344 **
danielk19776f235cc2009-06-04 14:46:08 +00007345 ** To find the largest key value on pPage, first find the right-most
7346 ** cell on pPage. The first two fields of this cell are the
7347 ** record-length (a variable length integer at most 32-bits in size)
7348 ** and the key value (a variable length integer, may have any value).
7349 ** The first of the while(...) loops below skips over the record-length
7350 ** field. The second while(...) loop copies the key value from the
danielk1977a50d9aa2009-06-08 14:49:45 +00007351 ** cell on pPage into the pSpace buffer.
danielk1977eaa06f62008-09-18 17:34:44 +00007352 */
danielk1977eaa06f62008-09-18 17:34:44 +00007353 pCell = findCell(pPage, pPage->nCell-1);
danielk19776f235cc2009-06-04 14:46:08 +00007354 pStop = &pCell[9];
7355 while( (*(pCell++)&0x80) && pCell<pStop );
7356 pStop = &pCell[9];
7357 while( ((*(pOut++) = *(pCell++))&0x80) && pCell<pStop );
7358
danielk19774dbaa892009-06-16 16:50:22 +00007359 /* Insert the new divider cell into pParent. */
drhcb89f4a2016-05-21 11:23:26 +00007360 if( rc==SQLITE_OK ){
7361 insertCell(pParent, pParent->nCell, pSpace, (int)(pOut-pSpace),
7362 0, pPage->pgno, &rc);
7363 }
danielk19776f235cc2009-06-04 14:46:08 +00007364
7365 /* Set the right-child pointer of pParent to point to the new page. */
danielk1977eaa06f62008-09-18 17:34:44 +00007366 put4byte(&pParent->aData[pParent->hdrOffset+8], pgnoNew);
7367
danielk1977e08a3c42008-09-18 18:17:03 +00007368 /* Release the reference to the new page. */
7369 releasePage(pNew);
danielk1977ac11ee62005-01-15 12:45:51 +00007370 }
7371
danielk1977eaa06f62008-09-18 17:34:44 +00007372 return rc;
danielk1977ac245ec2005-01-14 13:50:11 +00007373}
drh615ae552005-01-16 23:21:00 +00007374#endif /* SQLITE_OMIT_QUICKBALANCE */
drh43605152004-05-29 21:46:49 +00007375
danielk19774dbaa892009-06-16 16:50:22 +00007376#if 0
drhc3b70572003-01-04 19:44:07 +00007377/*
danielk19774dbaa892009-06-16 16:50:22 +00007378** This function does not contribute anything to the operation of SQLite.
7379** it is sometimes activated temporarily while debugging code responsible
7380** for setting pointer-map entries.
7381*/
7382static int ptrmapCheckPages(MemPage **apPage, int nPage){
7383 int i, j;
7384 for(i=0; i<nPage; i++){
7385 Pgno n;
7386 u8 e;
7387 MemPage *pPage = apPage[i];
7388 BtShared *pBt = pPage->pBt;
7389 assert( pPage->isInit );
7390
7391 for(j=0; j<pPage->nCell; j++){
7392 CellInfo info;
7393 u8 *z;
7394
7395 z = findCell(pPage, j);
drh5fa60512015-06-19 17:19:34 +00007396 pPage->xParseCell(pPage, z, &info);
drh45ac1c72015-12-18 03:59:16 +00007397 if( info.nLocal<info.nPayload ){
7398 Pgno ovfl = get4byte(&z[info.nSize-4]);
danielk19774dbaa892009-06-16 16:50:22 +00007399 ptrmapGet(pBt, ovfl, &e, &n);
7400 assert( n==pPage->pgno && e==PTRMAP_OVERFLOW1 );
7401 }
7402 if( !pPage->leaf ){
7403 Pgno child = get4byte(z);
7404 ptrmapGet(pBt, child, &e, &n);
7405 assert( n==pPage->pgno && e==PTRMAP_BTREE );
7406 }
7407 }
7408 if( !pPage->leaf ){
7409 Pgno child = get4byte(&pPage->aData[pPage->hdrOffset+8]);
7410 ptrmapGet(pBt, child, &e, &n);
7411 assert( n==pPage->pgno && e==PTRMAP_BTREE );
7412 }
7413 }
7414 return 1;
7415}
7416#endif
7417
danielk1977cd581a72009-06-23 15:43:39 +00007418/*
7419** This function is used to copy the contents of the b-tree node stored
7420** on page pFrom to page pTo. If page pFrom was not a leaf page, then
7421** the pointer-map entries for each child page are updated so that the
7422** parent page stored in the pointer map is page pTo. If pFrom contained
7423** any cells with overflow page pointers, then the corresponding pointer
7424** map entries are also updated so that the parent page is page pTo.
7425**
7426** If pFrom is currently carrying any overflow cells (entries in the
drh2cbd78b2012-02-02 19:37:18 +00007427** MemPage.apOvfl[] array), they are not copied to pTo.
danielk1977cd581a72009-06-23 15:43:39 +00007428**
danielk197730548662009-07-09 05:07:37 +00007429** Before returning, page pTo is reinitialized using btreeInitPage().
danielk1977cd581a72009-06-23 15:43:39 +00007430**
7431** The performance of this function is not critical. It is only used by
7432** the balance_shallower() and balance_deeper() procedures, neither of
7433** which are called often under normal circumstances.
7434*/
drhc314dc72009-07-21 11:52:34 +00007435static void copyNodeContent(MemPage *pFrom, MemPage *pTo, int *pRC){
7436 if( (*pRC)==SQLITE_OK ){
7437 BtShared * const pBt = pFrom->pBt;
7438 u8 * const aFrom = pFrom->aData;
7439 u8 * const aTo = pTo->aData;
7440 int const iFromHdr = pFrom->hdrOffset;
7441 int const iToHdr = ((pTo->pgno==1) ? 100 : 0);
drhdc9b5f82009-12-05 18:34:08 +00007442 int rc;
drhc314dc72009-07-21 11:52:34 +00007443 int iData;
7444
7445
7446 assert( pFrom->isInit );
7447 assert( pFrom->nFree>=iToHdr );
drhfcd71b62011-04-05 22:08:24 +00007448 assert( get2byte(&aFrom[iFromHdr+5]) <= (int)pBt->usableSize );
drhc314dc72009-07-21 11:52:34 +00007449
7450 /* Copy the b-tree node content from page pFrom to page pTo. */
7451 iData = get2byte(&aFrom[iFromHdr+5]);
7452 memcpy(&aTo[iData], &aFrom[iData], pBt->usableSize-iData);
7453 memcpy(&aTo[iToHdr], &aFrom[iFromHdr], pFrom->cellOffset + 2*pFrom->nCell);
7454
7455 /* Reinitialize page pTo so that the contents of the MemPage structure
dan89e060e2009-12-05 18:03:50 +00007456 ** match the new data. The initialization of pTo can actually fail under
7457 ** fairly obscure circumstances, even though it is a copy of initialized
7458 ** page pFrom.
7459 */
drhc314dc72009-07-21 11:52:34 +00007460 pTo->isInit = 0;
dan89e060e2009-12-05 18:03:50 +00007461 rc = btreeInitPage(pTo);
drh8357c662019-02-11 22:50:01 +00007462 if( rc==SQLITE_OK ) rc = btreeComputeFreeSpace(pTo);
dan89e060e2009-12-05 18:03:50 +00007463 if( rc!=SQLITE_OK ){
7464 *pRC = rc;
7465 return;
7466 }
drhc314dc72009-07-21 11:52:34 +00007467
7468 /* If this is an auto-vacuum database, update the pointer-map entries
7469 ** for any b-tree or overflow pages that pTo now contains the pointers to.
7470 */
7471 if( ISAUTOVACUUM ){
7472 *pRC = setChildPtrmaps(pTo);
7473 }
danielk1977cd581a72009-06-23 15:43:39 +00007474 }
danielk1977cd581a72009-06-23 15:43:39 +00007475}
7476
7477/*
danielk19774dbaa892009-06-16 16:50:22 +00007478** This routine redistributes cells on the iParentIdx'th child of pParent
7479** (hereafter "the page") and up to 2 siblings so that all pages have about the
7480** same amount of free space. Usually a single sibling on either side of the
7481** page are used in the balancing, though both siblings might come from one
7482** side if the page is the first or last child of its parent. If the page
7483** has fewer than 2 siblings (something which can only happen if the page
7484** is a root page or a child of a root page) then all available siblings
7485** participate in the balancing.
drh8b2f49b2001-06-08 00:21:52 +00007486**
danielk19774dbaa892009-06-16 16:50:22 +00007487** The number of siblings of the page might be increased or decreased by
7488** one or two in an effort to keep pages nearly full but not over full.
drh14acc042001-06-10 19:56:58 +00007489**
danielk19774dbaa892009-06-16 16:50:22 +00007490** Note that when this routine is called, some of the cells on the page
7491** might not actually be stored in MemPage.aData[]. This can happen
7492** if the page is overfull. This routine ensures that all cells allocated
7493** to the page and its siblings fit into MemPage.aData[] before returning.
drh14acc042001-06-10 19:56:58 +00007494**
danielk19774dbaa892009-06-16 16:50:22 +00007495** In the course of balancing the page and its siblings, cells may be
7496** inserted into or removed from the parent page (pParent). Doing so
7497** may cause the parent page to become overfull or underfull. If this
7498** happens, it is the responsibility of the caller to invoke the correct
7499** balancing routine to fix this problem (see the balance() routine).
drh8c42ca92001-06-22 19:15:00 +00007500**
drh5e00f6c2001-09-13 13:46:56 +00007501** If this routine fails for any reason, it might leave the database
danielk19776067a9b2009-06-09 09:41:00 +00007502** in a corrupted state. So if this routine fails, the database should
drh5e00f6c2001-09-13 13:46:56 +00007503** be rolled back.
danielk19774dbaa892009-06-16 16:50:22 +00007504**
7505** The third argument to this function, aOvflSpace, is a pointer to a
drhcd09c532009-07-20 19:30:00 +00007506** buffer big enough to hold one page. If while inserting cells into the parent
7507** page (pParent) the parent page becomes overfull, this buffer is
7508** used to store the parent's overflow cells. Because this function inserts
danielk19774dbaa892009-06-16 16:50:22 +00007509** a maximum of four divider cells into the parent page, and the maximum
7510** size of a cell stored within an internal node is always less than 1/4
7511** of the page-size, the aOvflSpace[] buffer is guaranteed to be large
7512** enough for all overflow cells.
7513**
7514** If aOvflSpace is set to a null pointer, this function returns
7515** SQLITE_NOMEM.
drh8b2f49b2001-06-08 00:21:52 +00007516*/
danielk19774dbaa892009-06-16 16:50:22 +00007517static int balance_nonroot(
7518 MemPage *pParent, /* Parent page of siblings being balanced */
7519 int iParentIdx, /* Index of "the page" in pParent */
danielk1977cd581a72009-06-23 15:43:39 +00007520 u8 *aOvflSpace, /* page-size bytes of space for parent ovfl */
dan428c2182012-08-06 18:50:11 +00007521 int isRoot, /* True if pParent is a root-page */
7522 int bBulk /* True if this call is part of a bulk load */
danielk19774dbaa892009-06-16 16:50:22 +00007523){
drh16a9b832007-05-05 18:39:25 +00007524 BtShared *pBt; /* The whole database */
danielk1977634f2982005-03-28 08:44:07 +00007525 int nMaxCells = 0; /* Allocated size of apCell, szCell, aFrom. */
danielk1977a4124bd2008-12-23 10:37:47 +00007526 int nNew = 0; /* Number of pages in apNew[] */
danielk19774dbaa892009-06-16 16:50:22 +00007527 int nOld; /* Number of pages in apOld[] */
drh14acc042001-06-10 19:56:58 +00007528 int i, j, k; /* Loop counters */
drha34b6762004-05-07 13:30:42 +00007529 int nxDiv; /* Next divider slot in pParent->aCell[] */
shane85095702009-06-15 16:27:08 +00007530 int rc = SQLITE_OK; /* The return code */
shane36840fd2009-06-26 16:32:13 +00007531 u16 leafCorrection; /* 4 if pPage is a leaf. 0 if not */
drh8b18dd42004-05-12 19:18:15 +00007532 int leafData; /* True if pPage is a leaf of a LEAFDATA tree */
drh91025292004-05-03 19:49:32 +00007533 int usableSpace; /* Bytes in pPage beyond the header */
7534 int pageFlags; /* Value of pPage->aData[0] */
drhe5ae5732008-06-15 02:51:47 +00007535 int iSpace1 = 0; /* First unused byte of aSpace1[] */
danielk19776067a9b2009-06-09 09:41:00 +00007536 int iOvflSpace = 0; /* First unused byte of aOvflSpace[] */
drhfacf0302008-06-17 15:12:00 +00007537 int szScratch; /* Size of scratch memory requested */
drhc3b70572003-01-04 19:44:07 +00007538 MemPage *apOld[NB]; /* pPage and up to two siblings */
drha2fce642004-06-05 00:01:44 +00007539 MemPage *apNew[NB+2]; /* pPage and up to NB siblings after balancing */
danielk19774dbaa892009-06-16 16:50:22 +00007540 u8 *pRight; /* Location in parent of right-sibling pointer */
7541 u8 *apDiv[NB-1]; /* Divider cells in pParent */
drh1ffd2472015-06-23 02:37:30 +00007542 int cntNew[NB+2]; /* Index in b.paCell[] of cell after i-th page */
7543 int cntOld[NB+2]; /* Old index in b.apCell[] */
drh2a0df922014-10-30 23:14:56 +00007544 int szNew[NB+2]; /* Combined size of cells placed on i-th page */
danielk19774dbaa892009-06-16 16:50:22 +00007545 u8 *aSpace1; /* Space for copies of dividers cells */
7546 Pgno pgno; /* Temp var to store a page number in */
dane6593d82014-10-24 16:40:49 +00007547 u8 abDone[NB+2]; /* True after i'th new page is populated */
7548 Pgno aPgno[NB+2]; /* Page numbers of new pages before shuffling */
drh00fe08a2014-10-31 00:05:23 +00007549 Pgno aPgOrder[NB+2]; /* Copy of aPgno[] used for sorting pages */
dane6593d82014-10-24 16:40:49 +00007550 u16 aPgFlags[NB+2]; /* flags field of new pages before shuffling */
drh1ffd2472015-06-23 02:37:30 +00007551 CellArray b; /* Parsed information on cells being balanced */
drh8b2f49b2001-06-08 00:21:52 +00007552
dan33ea4862014-10-09 19:35:37 +00007553 memset(abDone, 0, sizeof(abDone));
drh1ffd2472015-06-23 02:37:30 +00007554 b.nCell = 0;
7555 b.apCell = 0;
danielk1977a50d9aa2009-06-08 14:49:45 +00007556 pBt = pParent->pBt;
7557 assert( sqlite3_mutex_held(pBt->mutex) );
7558 assert( sqlite3PagerIswriteable(pParent->pDbPage) );
danielk1977474b7cc2008-07-09 11:49:46 +00007559
danielk19774dbaa892009-06-16 16:50:22 +00007560 /* At this point pParent may have at most one overflow cell. And if
7561 ** this overflow cell is present, it must be the cell with
7562 ** index iParentIdx. This scenario comes about when this function
drhcd09c532009-07-20 19:30:00 +00007563 ** is called (indirectly) from sqlite3BtreeDelete().
7564 */
danielk19774dbaa892009-06-16 16:50:22 +00007565 assert( pParent->nOverflow==0 || pParent->nOverflow==1 );
drh2cbd78b2012-02-02 19:37:18 +00007566 assert( pParent->nOverflow==0 || pParent->aiOvfl[0]==iParentIdx );
danielk19774dbaa892009-06-16 16:50:22 +00007567
danielk197711a8a862009-06-17 11:49:52 +00007568 if( !aOvflSpace ){
mistachkinfad30392016-02-13 23:43:46 +00007569 return SQLITE_NOMEM_BKPT;
danielk197711a8a862009-06-17 11:49:52 +00007570 }
drh68133502019-02-11 17:22:30 +00007571 assert( pParent->nFree>=0 );
danielk197711a8a862009-06-17 11:49:52 +00007572
danielk1977a50d9aa2009-06-08 14:49:45 +00007573 /* Find the sibling pages to balance. Also locate the cells in pParent
7574 ** that divide the siblings. An attempt is made to find NN siblings on
7575 ** either side of pPage. More siblings are taken from one side, however,
7576 ** if there are fewer than NN siblings on the other side. If pParent
danielk19774dbaa892009-06-16 16:50:22 +00007577 ** has NB or fewer children then all children of pParent are taken.
7578 **
7579 ** This loop also drops the divider cells from the parent page. This
7580 ** way, the remainder of the function does not have to deal with any
drhcd09c532009-07-20 19:30:00 +00007581 ** overflow cells in the parent page, since if any existed they will
7582 ** have already been removed.
7583 */
danielk19774dbaa892009-06-16 16:50:22 +00007584 i = pParent->nOverflow + pParent->nCell;
7585 if( i<2 ){
drhc3b70572003-01-04 19:44:07 +00007586 nxDiv = 0;
danielk19774dbaa892009-06-16 16:50:22 +00007587 }else{
dan7d6885a2012-08-08 14:04:56 +00007588 assert( bBulk==0 || bBulk==1 );
danielk19774dbaa892009-06-16 16:50:22 +00007589 if( iParentIdx==0 ){
7590 nxDiv = 0;
7591 }else if( iParentIdx==i ){
dan7d6885a2012-08-08 14:04:56 +00007592 nxDiv = i-2+bBulk;
drh14acc042001-06-10 19:56:58 +00007593 }else{
danielk19774dbaa892009-06-16 16:50:22 +00007594 nxDiv = iParentIdx-1;
drh8b2f49b2001-06-08 00:21:52 +00007595 }
dan7d6885a2012-08-08 14:04:56 +00007596 i = 2-bBulk;
danielk19774dbaa892009-06-16 16:50:22 +00007597 }
dan7d6885a2012-08-08 14:04:56 +00007598 nOld = i+1;
danielk19774dbaa892009-06-16 16:50:22 +00007599 if( (i+nxDiv-pParent->nOverflow)==pParent->nCell ){
7600 pRight = &pParent->aData[pParent->hdrOffset+8];
7601 }else{
7602 pRight = findCell(pParent, i+nxDiv-pParent->nOverflow);
7603 }
7604 pgno = get4byte(pRight);
7605 while( 1 ){
drh28f58dd2015-06-27 19:45:03 +00007606 rc = getAndInitPage(pBt, pgno, &apOld[i], 0, 0);
danielk19774dbaa892009-06-16 16:50:22 +00007607 if( rc ){
danielk197789bc4bc2009-07-21 19:25:24 +00007608 memset(apOld, 0, (i+1)*sizeof(MemPage*));
danielk19774dbaa892009-06-16 16:50:22 +00007609 goto balance_cleanup;
7610 }
drh85a379b2019-02-09 22:33:44 +00007611 if( apOld[i]->nFree<0 ){
7612 rc = btreeComputeFreeSpace(apOld[i]);
7613 if( rc ){
7614 memset(apOld, 0, (i)*sizeof(MemPage*));
7615 goto balance_cleanup;
7616 }
7617 }
danielk19774dbaa892009-06-16 16:50:22 +00007618 if( (i--)==0 ) break;
7619
drh9cc5b4e2016-12-26 01:41:33 +00007620 if( pParent->nOverflow && i+nxDiv==pParent->aiOvfl[0] ){
drh2cbd78b2012-02-02 19:37:18 +00007621 apDiv[i] = pParent->apOvfl[0];
danielk19774dbaa892009-06-16 16:50:22 +00007622 pgno = get4byte(apDiv[i]);
drh25ada072015-06-19 15:07:14 +00007623 szNew[i] = pParent->xCellSize(pParent, apDiv[i]);
danielk19774dbaa892009-06-16 16:50:22 +00007624 pParent->nOverflow = 0;
7625 }else{
7626 apDiv[i] = findCell(pParent, i+nxDiv-pParent->nOverflow);
7627 pgno = get4byte(apDiv[i]);
drh25ada072015-06-19 15:07:14 +00007628 szNew[i] = pParent->xCellSize(pParent, apDiv[i]);
danielk19774dbaa892009-06-16 16:50:22 +00007629
7630 /* Drop the cell from the parent page. apDiv[i] still points to
7631 ** the cell within the parent, even though it has been dropped.
7632 ** This is safe because dropping a cell only overwrites the first
7633 ** four bytes of it, and this function does not need the first
7634 ** four bytes of the divider cell. So the pointer is safe to use
danielk197711a8a862009-06-17 11:49:52 +00007635 ** later on.
7636 **
drh8a575d92011-10-12 17:00:28 +00007637 ** But not if we are in secure-delete mode. In secure-delete mode,
danielk197711a8a862009-06-17 11:49:52 +00007638 ** the dropCell() routine will overwrite the entire cell with zeroes.
7639 ** In this case, temporarily copy the cell into the aOvflSpace[]
7640 ** buffer. It will be copied out again as soon as the aSpace[] buffer
7641 ** is allocated. */
drha5907a82017-06-19 11:44:22 +00007642 if( pBt->btsFlags & BTS_FAST_SECURE ){
drh8a575d92011-10-12 17:00:28 +00007643 int iOff;
7644
7645 iOff = SQLITE_PTR_TO_INT(apDiv[i]) - SQLITE_PTR_TO_INT(pParent->aData);
drh43b18e12010-08-17 19:40:08 +00007646 if( (iOff+szNew[i])>(int)pBt->usableSize ){
dan2ed11e72010-02-26 15:09:19 +00007647 rc = SQLITE_CORRUPT_BKPT;
7648 memset(apOld, 0, (i+1)*sizeof(MemPage*));
7649 goto balance_cleanup;
7650 }else{
7651 memcpy(&aOvflSpace[iOff], apDiv[i], szNew[i]);
7652 apDiv[i] = &aOvflSpace[apDiv[i]-pParent->aData];
7653 }
drh5b47efa2010-02-12 18:18:39 +00007654 }
drh98add2e2009-07-20 17:11:49 +00007655 dropCell(pParent, i+nxDiv-pParent->nOverflow, szNew[i], &rc);
danielk19774dbaa892009-06-16 16:50:22 +00007656 }
drh8b2f49b2001-06-08 00:21:52 +00007657 }
7658
drha9121e42008-02-19 14:59:35 +00007659 /* Make nMaxCells a multiple of 4 in order to preserve 8-byte
drh8d97f1f2005-05-05 18:14:13 +00007660 ** alignment */
drhf012dc42019-03-19 15:36:46 +00007661 nMaxCells = nOld*(MX_CELL(pBt) + ArraySize(pParent->apOvfl));
drha9121e42008-02-19 14:59:35 +00007662 nMaxCells = (nMaxCells + 3)&~3;
drh8d97f1f2005-05-05 18:14:13 +00007663
drh8b2f49b2001-06-08 00:21:52 +00007664 /*
danielk1977634f2982005-03-28 08:44:07 +00007665 ** Allocate space for memory structures
7666 */
drhfacf0302008-06-17 15:12:00 +00007667 szScratch =
drh1ffd2472015-06-23 02:37:30 +00007668 nMaxCells*sizeof(u8*) /* b.apCell */
7669 + nMaxCells*sizeof(u16) /* b.szCell */
dan33ea4862014-10-09 19:35:37 +00007670 + pBt->pageSize; /* aSpace1 */
drh5279d342014-11-04 13:41:32 +00007671
drhf012dc42019-03-19 15:36:46 +00007672 assert( szScratch<=7*(int)pBt->pageSize );
drhb2a0f752017-08-28 15:51:35 +00007673 b.apCell = sqlite3StackAllocRaw(0, szScratch );
drh1ffd2472015-06-23 02:37:30 +00007674 if( b.apCell==0 ){
mistachkinfad30392016-02-13 23:43:46 +00007675 rc = SQLITE_NOMEM_BKPT;
danielk1977634f2982005-03-28 08:44:07 +00007676 goto balance_cleanup;
7677 }
drh1ffd2472015-06-23 02:37:30 +00007678 b.szCell = (u16*)&b.apCell[nMaxCells];
7679 aSpace1 = (u8*)&b.szCell[nMaxCells];
drhea598cb2009-04-05 12:22:08 +00007680 assert( EIGHT_BYTE_ALIGNMENT(aSpace1) );
drh14acc042001-06-10 19:56:58 +00007681
7682 /*
7683 ** Load pointers to all cells on sibling pages and the divider cells
drh1ffd2472015-06-23 02:37:30 +00007684 ** into the local b.apCell[] array. Make copies of the divider cells
dan33ea4862014-10-09 19:35:37 +00007685 ** into space obtained from aSpace1[]. The divider cells have already
7686 ** been removed from pParent.
drh4b70f112004-05-02 21:12:19 +00007687 **
7688 ** If the siblings are on leaf pages, then the child pointers of the
7689 ** divider cells are stripped from the cells before they are copied
drh1ffd2472015-06-23 02:37:30 +00007690 ** into aSpace1[]. In this way, all cells in b.apCell[] are without
drh4b70f112004-05-02 21:12:19 +00007691 ** child pointers. If siblings are not leaves, then all cell in
drh1ffd2472015-06-23 02:37:30 +00007692 ** b.apCell[] include child pointers. Either way, all cells in b.apCell[]
drh4b70f112004-05-02 21:12:19 +00007693 ** are alike.
drh96f5b762004-05-16 16:24:36 +00007694 **
7695 ** leafCorrection: 4 if pPage is a leaf. 0 if pPage is not a leaf.
7696 ** leafData: 1 if pPage holds key+data and pParent holds only keys.
drh8b2f49b2001-06-08 00:21:52 +00007697 */
drh1ffd2472015-06-23 02:37:30 +00007698 b.pRef = apOld[0];
7699 leafCorrection = b.pRef->leaf*4;
7700 leafData = b.pRef->intKeyLeaf;
drh8b2f49b2001-06-08 00:21:52 +00007701 for(i=0; i<nOld; i++){
dan33ea4862014-10-09 19:35:37 +00007702 MemPage *pOld = apOld[i];
drh4edfdd32015-06-23 14:49:42 +00007703 int limit = pOld->nCell;
7704 u8 *aData = pOld->aData;
7705 u16 maskPage = pOld->maskPage;
drh4f4bf772015-06-23 17:09:53 +00007706 u8 *piCell = aData + pOld->cellOffset;
drhfe647dc2015-06-23 18:24:25 +00007707 u8 *piEnd;
drhe12ca5a2019-05-02 15:56:39 +00007708 VVA_ONLY( int nCellAtStart = b.nCell; )
danielk19774dbaa892009-06-16 16:50:22 +00007709
drh73d340a2015-05-28 11:23:11 +00007710 /* Verify that all sibling pages are of the same "type" (table-leaf,
7711 ** table-interior, index-leaf, or index-interior).
7712 */
7713 if( pOld->aData[0]!=apOld[0]->aData[0] ){
7714 rc = SQLITE_CORRUPT_BKPT;
7715 goto balance_cleanup;
7716 }
7717
drhfe647dc2015-06-23 18:24:25 +00007718 /* Load b.apCell[] with pointers to all cells in pOld. If pOld
drh8d7f1632018-01-23 13:30:38 +00007719 ** contains overflow cells, include them in the b.apCell[] array
drhfe647dc2015-06-23 18:24:25 +00007720 ** in the correct spot.
7721 **
7722 ** Note that when there are multiple overflow cells, it is always the
7723 ** case that they are sequential and adjacent. This invariant arises
7724 ** because multiple overflows can only occurs when inserting divider
7725 ** cells into a parent on a prior balance, and divider cells are always
7726 ** adjacent and are inserted in order. There is an assert() tagged
7727 ** with "NOTE 1" in the overflow cell insertion loop to prove this
7728 ** invariant.
drh4edfdd32015-06-23 14:49:42 +00007729 **
7730 ** This must be done in advance. Once the balance starts, the cell
7731 ** offset section of the btree page will be overwritten and we will no
7732 ** long be able to find the cells if a pointer to each cell is not saved
7733 ** first.
7734 */
drh36b78ee2016-01-20 01:32:00 +00007735 memset(&b.szCell[b.nCell], 0, sizeof(b.szCell[0])*(limit+pOld->nOverflow));
drh68f2a572011-06-03 17:50:49 +00007736 if( pOld->nOverflow>0 ){
drh27e80a32019-08-15 13:17:49 +00007737 if( NEVER(limit<pOld->aiOvfl[0]) ){
drhe12ca5a2019-05-02 15:56:39 +00007738 rc = SQLITE_CORRUPT_BKPT;
7739 goto balance_cleanup;
7740 }
drhfe647dc2015-06-23 18:24:25 +00007741 limit = pOld->aiOvfl[0];
drh68f2a572011-06-03 17:50:49 +00007742 for(j=0; j<limit; j++){
drh329428e2015-06-30 13:28:18 +00007743 b.apCell[b.nCell] = aData + (maskPage & get2byteAligned(piCell));
drhfe647dc2015-06-23 18:24:25 +00007744 piCell += 2;
7745 b.nCell++;
drh68f2a572011-06-03 17:50:49 +00007746 }
drhfe647dc2015-06-23 18:24:25 +00007747 for(k=0; k<pOld->nOverflow; k++){
7748 assert( k==0 || pOld->aiOvfl[k-1]+1==pOld->aiOvfl[k] );/* NOTE 1 */
drh4edfdd32015-06-23 14:49:42 +00007749 b.apCell[b.nCell] = pOld->apOvfl[k];
drh1ffd2472015-06-23 02:37:30 +00007750 b.nCell++;
drh68f2a572011-06-03 17:50:49 +00007751 }
drh1ffd2472015-06-23 02:37:30 +00007752 }
drhfe647dc2015-06-23 18:24:25 +00007753 piEnd = aData + pOld->cellOffset + 2*pOld->nCell;
7754 while( piCell<piEnd ){
drh4edfdd32015-06-23 14:49:42 +00007755 assert( b.nCell<nMaxCells );
drh329428e2015-06-30 13:28:18 +00007756 b.apCell[b.nCell] = aData + (maskPage & get2byteAligned(piCell));
drh4f4bf772015-06-23 17:09:53 +00007757 piCell += 2;
drh4edfdd32015-06-23 14:49:42 +00007758 b.nCell++;
drh4edfdd32015-06-23 14:49:42 +00007759 }
drhe12ca5a2019-05-02 15:56:39 +00007760 assert( (b.nCell-nCellAtStart)==(pOld->nCell+pOld->nOverflow) );
drh4edfdd32015-06-23 14:49:42 +00007761
drh1ffd2472015-06-23 02:37:30 +00007762 cntOld[i] = b.nCell;
danielk19774dbaa892009-06-16 16:50:22 +00007763 if( i<nOld-1 && !leafData){
shane36840fd2009-06-26 16:32:13 +00007764 u16 sz = (u16)szNew[i];
danielk19774dbaa892009-06-16 16:50:22 +00007765 u8 *pTemp;
drh1ffd2472015-06-23 02:37:30 +00007766 assert( b.nCell<nMaxCells );
7767 b.szCell[b.nCell] = sz;
danielk19774dbaa892009-06-16 16:50:22 +00007768 pTemp = &aSpace1[iSpace1];
7769 iSpace1 += sz;
drhe22e03e2010-08-18 21:19:03 +00007770 assert( sz<=pBt->maxLocal+23 );
drhfcd71b62011-04-05 22:08:24 +00007771 assert( iSpace1 <= (int)pBt->pageSize );
danielk19774dbaa892009-06-16 16:50:22 +00007772 memcpy(pTemp, apDiv[i], sz);
drh1ffd2472015-06-23 02:37:30 +00007773 b.apCell[b.nCell] = pTemp+leafCorrection;
danielk19774dbaa892009-06-16 16:50:22 +00007774 assert( leafCorrection==0 || leafCorrection==4 );
drh1ffd2472015-06-23 02:37:30 +00007775 b.szCell[b.nCell] = b.szCell[b.nCell] - leafCorrection;
danielk19774dbaa892009-06-16 16:50:22 +00007776 if( !pOld->leaf ){
7777 assert( leafCorrection==0 );
7778 assert( pOld->hdrOffset==0 );
7779 /* The right pointer of the child page pOld becomes the left
7780 ** pointer of the divider cell */
drh1ffd2472015-06-23 02:37:30 +00007781 memcpy(b.apCell[b.nCell], &pOld->aData[8], 4);
danielk19774dbaa892009-06-16 16:50:22 +00007782 }else{
7783 assert( leafCorrection==4 );
drh1ffd2472015-06-23 02:37:30 +00007784 while( b.szCell[b.nCell]<4 ){
dan8f1eb8a2014-12-06 14:56:49 +00007785 /* Do not allow any cells smaller than 4 bytes. If a smaller cell
7786 ** does exist, pad it with 0x00 bytes. */
drh1ffd2472015-06-23 02:37:30 +00007787 assert( b.szCell[b.nCell]==3 || CORRUPT_DB );
7788 assert( b.apCell[b.nCell]==&aSpace1[iSpace1-3] || CORRUPT_DB );
danee7172f2014-12-24 18:11:50 +00007789 aSpace1[iSpace1++] = 0x00;
drh1ffd2472015-06-23 02:37:30 +00007790 b.szCell[b.nCell]++;
danielk1977ac11ee62005-01-15 12:45:51 +00007791 }
7792 }
drh1ffd2472015-06-23 02:37:30 +00007793 b.nCell++;
drh8b2f49b2001-06-08 00:21:52 +00007794 }
drh8b2f49b2001-06-08 00:21:52 +00007795 }
7796
7797 /*
drh1ffd2472015-06-23 02:37:30 +00007798 ** Figure out the number of pages needed to hold all b.nCell cells.
drh6019e162001-07-02 17:51:45 +00007799 ** Store this number in "k". Also compute szNew[] which is the total
7800 ** size of all cells on the i-th page and cntNew[] which is the index
drh1ffd2472015-06-23 02:37:30 +00007801 ** in b.apCell[] of the cell that divides page i from page i+1.
7802 ** cntNew[k] should equal b.nCell.
drh6019e162001-07-02 17:51:45 +00007803 **
drh96f5b762004-05-16 16:24:36 +00007804 ** Values computed by this block:
7805 **
7806 ** k: The total number of sibling pages
7807 ** szNew[i]: Spaced used on the i-th sibling page.
drh1ffd2472015-06-23 02:37:30 +00007808 ** cntNew[i]: Index in b.apCell[] and b.szCell[] for the first cell to
drh96f5b762004-05-16 16:24:36 +00007809 ** the right of the i-th sibling page.
7810 ** usableSpace: Number of bytes of space available on each sibling.
7811 **
drh8b2f49b2001-06-08 00:21:52 +00007812 */
drh43605152004-05-29 21:46:49 +00007813 usableSpace = pBt->usableSize - 12 + leafCorrection;
drh26b7ec82019-02-01 14:50:43 +00007814 for(i=k=0; i<nOld; i++, k++){
drh658873b2015-06-22 20:02:04 +00007815 MemPage *p = apOld[i];
drh26b7ec82019-02-01 14:50:43 +00007816 b.apEnd[k] = p->aDataEnd;
7817 b.ixNx[k] = cntOld[i];
drh9c7e44c2019-02-14 15:27:12 +00007818 if( k && b.ixNx[k]==b.ixNx[k-1] ){
7819 k--; /* Omit b.ixNx[] entry for child pages with no cells */
7820 }
drh26b7ec82019-02-01 14:50:43 +00007821 if( !leafData ){
7822 k++;
7823 b.apEnd[k] = pParent->aDataEnd;
7824 b.ixNx[k] = cntOld[i]+1;
7825 }
drhb0ea9432019-02-09 21:06:40 +00007826 assert( p->nFree>=0 );
drh658873b2015-06-22 20:02:04 +00007827 szNew[i] = usableSpace - p->nFree;
drh658873b2015-06-22 20:02:04 +00007828 for(j=0; j<p->nOverflow; j++){
7829 szNew[i] += 2 + p->xCellSize(p, p->apOvfl[j]);
7830 }
7831 cntNew[i] = cntOld[i];
7832 }
7833 k = nOld;
7834 for(i=0; i<k; i++){
7835 int sz;
7836 while( szNew[i]>usableSpace ){
7837 if( i+1>=k ){
7838 k = i+2;
7839 if( k>NB+2 ){ rc = SQLITE_CORRUPT_BKPT; goto balance_cleanup; }
7840 szNew[k-1] = 0;
drh1ffd2472015-06-23 02:37:30 +00007841 cntNew[k-1] = b.nCell;
drh658873b2015-06-22 20:02:04 +00007842 }
drh1ffd2472015-06-23 02:37:30 +00007843 sz = 2 + cachedCellSize(&b, cntNew[i]-1);
drh658873b2015-06-22 20:02:04 +00007844 szNew[i] -= sz;
7845 if( !leafData ){
drh1ffd2472015-06-23 02:37:30 +00007846 if( cntNew[i]<b.nCell ){
7847 sz = 2 + cachedCellSize(&b, cntNew[i]);
7848 }else{
7849 sz = 0;
7850 }
drh658873b2015-06-22 20:02:04 +00007851 }
7852 szNew[i+1] += sz;
7853 cntNew[i]--;
7854 }
drh1ffd2472015-06-23 02:37:30 +00007855 while( cntNew[i]<b.nCell ){
7856 sz = 2 + cachedCellSize(&b, cntNew[i]);
drh658873b2015-06-22 20:02:04 +00007857 if( szNew[i]+sz>usableSpace ) break;
7858 szNew[i] += sz;
7859 cntNew[i]++;
7860 if( !leafData ){
drh1ffd2472015-06-23 02:37:30 +00007861 if( cntNew[i]<b.nCell ){
7862 sz = 2 + cachedCellSize(&b, cntNew[i]);
7863 }else{
7864 sz = 0;
7865 }
drh658873b2015-06-22 20:02:04 +00007866 }
7867 szNew[i+1] -= sz;
7868 }
drh1ffd2472015-06-23 02:37:30 +00007869 if( cntNew[i]>=b.nCell ){
drh658873b2015-06-22 20:02:04 +00007870 k = i+1;
drh672073a2015-06-24 12:07:40 +00007871 }else if( cntNew[i] <= (i>0 ? cntNew[i-1] : 0) ){
drh658873b2015-06-22 20:02:04 +00007872 rc = SQLITE_CORRUPT_BKPT;
7873 goto balance_cleanup;
drh6019e162001-07-02 17:51:45 +00007874 }
7875 }
drh96f5b762004-05-16 16:24:36 +00007876
7877 /*
7878 ** The packing computed by the previous block is biased toward the siblings
drh2a0df922014-10-30 23:14:56 +00007879 ** on the left side (siblings with smaller keys). The left siblings are
7880 ** always nearly full, while the right-most sibling might be nearly empty.
7881 ** The next block of code attempts to adjust the packing of siblings to
7882 ** get a better balance.
drh96f5b762004-05-16 16:24:36 +00007883 **
7884 ** This adjustment is more than an optimization. The packing above might
7885 ** be so out of balance as to be illegal. For example, the right-most
7886 ** sibling might be completely empty. This adjustment is not optional.
7887 */
drh6019e162001-07-02 17:51:45 +00007888 for(i=k-1; i>0; i--){
drh96f5b762004-05-16 16:24:36 +00007889 int szRight = szNew[i]; /* Size of sibling on the right */
7890 int szLeft = szNew[i-1]; /* Size of sibling on the left */
7891 int r; /* Index of right-most cell in left sibling */
7892 int d; /* Index of first cell to the left of right sibling */
7893
7894 r = cntNew[i-1] - 1;
7895 d = r + 1 - leafData;
drh008d64c2015-06-23 16:00:24 +00007896 (void)cachedCellSize(&b, d);
drh672073a2015-06-24 12:07:40 +00007897 do{
drh1ffd2472015-06-23 02:37:30 +00007898 assert( d<nMaxCells );
7899 assert( r<nMaxCells );
drh1ffd2472015-06-23 02:37:30 +00007900 (void)cachedCellSize(&b, r);
7901 if( szRight!=0
drh0b4c0422016-07-14 19:48:08 +00007902 && (bBulk || szRight+b.szCell[d]+2 > szLeft-(b.szCell[r]+(i==k-1?0:2)))){
drh1ffd2472015-06-23 02:37:30 +00007903 break;
7904 }
7905 szRight += b.szCell[d] + 2;
7906 szLeft -= b.szCell[r] + 2;
drh008d64c2015-06-23 16:00:24 +00007907 cntNew[i-1] = r;
drh008d64c2015-06-23 16:00:24 +00007908 r--;
7909 d--;
drh672073a2015-06-24 12:07:40 +00007910 }while( r>=0 );
drh96f5b762004-05-16 16:24:36 +00007911 szNew[i] = szRight;
7912 szNew[i-1] = szLeft;
drh672073a2015-06-24 12:07:40 +00007913 if( cntNew[i-1] <= (i>1 ? cntNew[i-2] : 0) ){
7914 rc = SQLITE_CORRUPT_BKPT;
7915 goto balance_cleanup;
7916 }
drh6019e162001-07-02 17:51:45 +00007917 }
drh09d0deb2005-08-02 17:13:09 +00007918
drh2a0df922014-10-30 23:14:56 +00007919 /* Sanity check: For a non-corrupt database file one of the follwing
7920 ** must be true:
7921 ** (1) We found one or more cells (cntNew[0])>0), or
7922 ** (2) pPage is a virtual root page. A virtual root page is when
7923 ** the real root page is page 1 and we are the only child of
7924 ** that page.
drh09d0deb2005-08-02 17:13:09 +00007925 */
drh2a0df922014-10-30 23:14:56 +00007926 assert( cntNew[0]>0 || (pParent->pgno==1 && pParent->nCell==0) || CORRUPT_DB);
dan33ea4862014-10-09 19:35:37 +00007927 TRACE(("BALANCE: old: %d(nc=%d) %d(nc=%d) %d(nc=%d)\n",
7928 apOld[0]->pgno, apOld[0]->nCell,
7929 nOld>=2 ? apOld[1]->pgno : 0, nOld>=2 ? apOld[1]->nCell : 0,
7930 nOld>=3 ? apOld[2]->pgno : 0, nOld>=3 ? apOld[2]->nCell : 0
danielk1977e5765212009-06-17 11:13:28 +00007931 ));
7932
drh8b2f49b2001-06-08 00:21:52 +00007933 /*
drh6b308672002-07-08 02:16:37 +00007934 ** Allocate k new pages. Reuse old pages where possible.
drh8b2f49b2001-06-08 00:21:52 +00007935 */
danielk1977a50d9aa2009-06-08 14:49:45 +00007936 pageFlags = apOld[0]->aData[0];
drh14acc042001-06-10 19:56:58 +00007937 for(i=0; i<k; i++){
drhda200cc2004-05-09 11:51:38 +00007938 MemPage *pNew;
drh6b308672002-07-08 02:16:37 +00007939 if( i<nOld ){
drhda200cc2004-05-09 11:51:38 +00007940 pNew = apNew[i] = apOld[i];
drh6b308672002-07-08 02:16:37 +00007941 apOld[i] = 0;
danielk19773b8a05f2007-03-19 17:44:26 +00007942 rc = sqlite3PagerWrite(pNew->pDbPage);
drhf5345442007-04-09 12:45:02 +00007943 nNew++;
danielk197728129562005-01-11 10:25:06 +00007944 if( rc ) goto balance_cleanup;
drh6b308672002-07-08 02:16:37 +00007945 }else{
drh7aa8f852006-03-28 00:24:44 +00007946 assert( i>0 );
dan428c2182012-08-06 18:50:11 +00007947 rc = allocateBtreePage(pBt, &pNew, &pgno, (bBulk ? 1 : pgno), 0);
drh6b308672002-07-08 02:16:37 +00007948 if( rc ) goto balance_cleanup;
dan33ea4862014-10-09 19:35:37 +00007949 zeroPage(pNew, pageFlags);
drhda200cc2004-05-09 11:51:38 +00007950 apNew[i] = pNew;
drhf5345442007-04-09 12:45:02 +00007951 nNew++;
drh1ffd2472015-06-23 02:37:30 +00007952 cntOld[i] = b.nCell;
danielk19774dbaa892009-06-16 16:50:22 +00007953
7954 /* Set the pointer-map entry for the new sibling page. */
7955 if( ISAUTOVACUUM ){
drh98add2e2009-07-20 17:11:49 +00007956 ptrmapPut(pBt, pNew->pgno, PTRMAP_BTREE, pParent->pgno, &rc);
danielk19774dbaa892009-06-16 16:50:22 +00007957 if( rc!=SQLITE_OK ){
7958 goto balance_cleanup;
7959 }
7960 }
drh6b308672002-07-08 02:16:37 +00007961 }
drh8b2f49b2001-06-08 00:21:52 +00007962 }
7963
7964 /*
dan33ea4862014-10-09 19:35:37 +00007965 ** Reassign page numbers so that the new pages are in ascending order.
7966 ** This helps to keep entries in the disk file in order so that a scan
7967 ** of the table is closer to a linear scan through the file. That in turn
7968 ** helps the operating system to deliver pages from the disk more rapidly.
drhf9ffac92002-03-02 19:00:31 +00007969 **
dan33ea4862014-10-09 19:35:37 +00007970 ** An O(n^2) insertion sort algorithm is used, but since n is never more
7971 ** than (NB+2) (a small constant), that should not be a problem.
drhf9ffac92002-03-02 19:00:31 +00007972 **
dan33ea4862014-10-09 19:35:37 +00007973 ** When NB==3, this one optimization makes the database about 25% faster
7974 ** for large insertions and deletions.
drhf9ffac92002-03-02 19:00:31 +00007975 */
dan33ea4862014-10-09 19:35:37 +00007976 for(i=0; i<nNew; i++){
drh00fe08a2014-10-31 00:05:23 +00007977 aPgOrder[i] = aPgno[i] = apNew[i]->pgno;
dan33ea4862014-10-09 19:35:37 +00007978 aPgFlags[i] = apNew[i]->pDbPage->flags;
dan89ca0b32014-10-25 20:36:28 +00007979 for(j=0; j<i; j++){
7980 if( aPgno[j]==aPgno[i] ){
7981 /* This branch is taken if the set of sibling pages somehow contains
7982 ** duplicate entries. This can happen if the database is corrupt.
7983 ** It would be simpler to detect this as part of the loop below, but
drhba0f9992014-10-30 20:48:44 +00007984 ** we do the detection here in order to avoid populating the pager
7985 ** cache with two separate objects associated with the same
7986 ** page number. */
dan89ca0b32014-10-25 20:36:28 +00007987 assert( CORRUPT_DB );
7988 rc = SQLITE_CORRUPT_BKPT;
7989 goto balance_cleanup;
drhf9ffac92002-03-02 19:00:31 +00007990 }
7991 }
dan33ea4862014-10-09 19:35:37 +00007992 }
7993 for(i=0; i<nNew; i++){
dan31f4e992014-10-24 20:57:03 +00007994 int iBest = 0; /* aPgno[] index of page number to use */
dan31f4e992014-10-24 20:57:03 +00007995 for(j=1; j<nNew; j++){
drh00fe08a2014-10-31 00:05:23 +00007996 if( aPgOrder[j]<aPgOrder[iBest] ) iBest = j;
drhf9ffac92002-03-02 19:00:31 +00007997 }
drh00fe08a2014-10-31 00:05:23 +00007998 pgno = aPgOrder[iBest];
7999 aPgOrder[iBest] = 0xffffffff;
dan31f4e992014-10-24 20:57:03 +00008000 if( iBest!=i ){
8001 if( iBest>i ){
8002 sqlite3PagerRekey(apNew[iBest]->pDbPage, pBt->nPage+iBest+1, 0);
8003 }
8004 sqlite3PagerRekey(apNew[i]->pDbPage, pgno, aPgFlags[iBest]);
8005 apNew[i]->pgno = pgno;
drhf9ffac92002-03-02 19:00:31 +00008006 }
8007 }
dan33ea4862014-10-09 19:35:37 +00008008
8009 TRACE(("BALANCE: new: %d(%d nc=%d) %d(%d nc=%d) %d(%d nc=%d) "
8010 "%d(%d nc=%d) %d(%d nc=%d)\n",
8011 apNew[0]->pgno, szNew[0], cntNew[0],
danielk19774dbaa892009-06-16 16:50:22 +00008012 nNew>=2 ? apNew[1]->pgno : 0, nNew>=2 ? szNew[1] : 0,
dan33ea4862014-10-09 19:35:37 +00008013 nNew>=2 ? cntNew[1] - cntNew[0] - !leafData : 0,
danielk19774dbaa892009-06-16 16:50:22 +00008014 nNew>=3 ? apNew[2]->pgno : 0, nNew>=3 ? szNew[2] : 0,
dan33ea4862014-10-09 19:35:37 +00008015 nNew>=3 ? cntNew[2] - cntNew[1] - !leafData : 0,
danielk19774dbaa892009-06-16 16:50:22 +00008016 nNew>=4 ? apNew[3]->pgno : 0, nNew>=4 ? szNew[3] : 0,
dan33ea4862014-10-09 19:35:37 +00008017 nNew>=4 ? cntNew[3] - cntNew[2] - !leafData : 0,
8018 nNew>=5 ? apNew[4]->pgno : 0, nNew>=5 ? szNew[4] : 0,
8019 nNew>=5 ? cntNew[4] - cntNew[3] - !leafData : 0
8020 ));
danielk19774dbaa892009-06-16 16:50:22 +00008021
8022 assert( sqlite3PagerIswriteable(pParent->pDbPage) );
drh55f66b32019-07-16 19:44:32 +00008023 assert( nNew>=1 && nNew<=ArraySize(apNew) );
8024 assert( apNew[nNew-1]!=0 );
danielk19774dbaa892009-06-16 16:50:22 +00008025 put4byte(pRight, apNew[nNew-1]->pgno);
drh24cd67e2004-05-10 16:18:47 +00008026
dan33ea4862014-10-09 19:35:37 +00008027 /* If the sibling pages are not leaves, ensure that the right-child pointer
8028 ** of the right-most new sibling page is set to the value that was
8029 ** originally in the same field of the right-most old sibling page. */
8030 if( (pageFlags & PTF_LEAF)==0 && nOld!=nNew ){
8031 MemPage *pOld = (nNew>nOld ? apNew : apOld)[nOld-1];
8032 memcpy(&apNew[nNew-1]->aData[8], &pOld->aData[8], 4);
8033 }
danielk1977ac11ee62005-01-15 12:45:51 +00008034
dan33ea4862014-10-09 19:35:37 +00008035 /* Make any required updates to pointer map entries associated with
8036 ** cells stored on sibling pages following the balance operation. Pointer
8037 ** map entries associated with divider cells are set by the insertCell()
8038 ** routine. The associated pointer map entries are:
8039 **
8040 ** a) if the cell contains a reference to an overflow chain, the
8041 ** entry associated with the first page in the overflow chain, and
8042 **
8043 ** b) if the sibling pages are not leaves, the child page associated
8044 ** with the cell.
8045 **
8046 ** If the sibling pages are not leaves, then the pointer map entry
8047 ** associated with the right-child of each sibling may also need to be
8048 ** updated. This happens below, after the sibling pages have been
8049 ** populated, not here.
danielk1977ac11ee62005-01-15 12:45:51 +00008050 */
dan33ea4862014-10-09 19:35:37 +00008051 if( ISAUTOVACUUM ){
drh0f1bf4c2019-01-13 20:17:21 +00008052 MemPage *pOld;
8053 MemPage *pNew = pOld = apNew[0];
dan33ea4862014-10-09 19:35:37 +00008054 int cntOldNext = pNew->nCell + pNew->nOverflow;
dan33ea4862014-10-09 19:35:37 +00008055 int iNew = 0;
8056 int iOld = 0;
danielk1977ac11ee62005-01-15 12:45:51 +00008057
drh1ffd2472015-06-23 02:37:30 +00008058 for(i=0; i<b.nCell; i++){
8059 u8 *pCell = b.apCell[i];
drh9c7e44c2019-02-14 15:27:12 +00008060 while( i==cntOldNext ){
8061 iOld++;
8062 assert( iOld<nNew || iOld<nOld );
drhdd2d9a32019-05-07 17:47:43 +00008063 assert( iOld>=0 && iOld<NB );
drh9c7e44c2019-02-14 15:27:12 +00008064 pOld = iOld<nNew ? apNew[iOld] : apOld[iOld];
dan33ea4862014-10-09 19:35:37 +00008065 cntOldNext += pOld->nCell + pOld->nOverflow + !leafData;
drh4b70f112004-05-02 21:12:19 +00008066 }
dan33ea4862014-10-09 19:35:37 +00008067 if( i==cntNew[iNew] ){
8068 pNew = apNew[++iNew];
8069 if( !leafData ) continue;
8070 }
danielk197785d90ca2008-07-19 14:25:15 +00008071
dan33ea4862014-10-09 19:35:37 +00008072 /* Cell pCell is destined for new sibling page pNew. Originally, it
drhba0f9992014-10-30 20:48:44 +00008073 ** was either part of sibling page iOld (possibly an overflow cell),
dan33ea4862014-10-09 19:35:37 +00008074 ** or else the divider cell to the left of sibling page iOld. So,
8075 ** if sibling page iOld had the same page number as pNew, and if
8076 ** pCell really was a part of sibling page iOld (not a divider or
8077 ** overflow cell), we can skip updating the pointer map entries. */
drhd52d52b2014-12-06 02:05:44 +00008078 if( iOld>=nNew
8079 || pNew->pgno!=aPgno[iOld]
drh9c7e44c2019-02-14 15:27:12 +00008080 || !SQLITE_WITHIN(pCell,pOld->aData,pOld->aDataEnd)
drhd52d52b2014-12-06 02:05:44 +00008081 ){
dan33ea4862014-10-09 19:35:37 +00008082 if( !leafCorrection ){
8083 ptrmapPut(pBt, get4byte(pCell), PTRMAP_BTREE, pNew->pgno, &rc);
8084 }
drh1ffd2472015-06-23 02:37:30 +00008085 if( cachedCellSize(&b,i)>pNew->minLocal ){
drh0f1bf4c2019-01-13 20:17:21 +00008086 ptrmapPutOvflPtr(pNew, pOld, pCell, &rc);
danielk1977ac11ee62005-01-15 12:45:51 +00008087 }
drhea82b372015-06-23 21:35:28 +00008088 if( rc ) goto balance_cleanup;
drh43605152004-05-29 21:46:49 +00008089 }
drh14acc042001-06-10 19:56:58 +00008090 }
8091 }
dan33ea4862014-10-09 19:35:37 +00008092
8093 /* Insert new divider cells into pParent. */
8094 for(i=0; i<nNew-1; i++){
8095 u8 *pCell;
8096 u8 *pTemp;
8097 int sz;
8098 MemPage *pNew = apNew[i];
8099 j = cntNew[i];
8100
8101 assert( j<nMaxCells );
drh1ffd2472015-06-23 02:37:30 +00008102 assert( b.apCell[j]!=0 );
8103 pCell = b.apCell[j];
8104 sz = b.szCell[j] + leafCorrection;
dan33ea4862014-10-09 19:35:37 +00008105 pTemp = &aOvflSpace[iOvflSpace];
8106 if( !pNew->leaf ){
8107 memcpy(&pNew->aData[8], pCell, 4);
8108 }else if( leafData ){
8109 /* If the tree is a leaf-data tree, and the siblings are leaves,
drh1ffd2472015-06-23 02:37:30 +00008110 ** then there is no divider cell in b.apCell[]. Instead, the divider
dan33ea4862014-10-09 19:35:37 +00008111 ** cell consists of the integer key for the right-most cell of
8112 ** the sibling-page assembled above only.
8113 */
8114 CellInfo info;
8115 j--;
drh1ffd2472015-06-23 02:37:30 +00008116 pNew->xParseCell(pNew, b.apCell[j], &info);
dan33ea4862014-10-09 19:35:37 +00008117 pCell = pTemp;
8118 sz = 4 + putVarint(&pCell[4], info.nKey);
8119 pTemp = 0;
8120 }else{
8121 pCell -= 4;
8122 /* Obscure case for non-leaf-data trees: If the cell at pCell was
8123 ** previously stored on a leaf node, and its reported size was 4
8124 ** bytes, then it may actually be smaller than this
8125 ** (see btreeParseCellPtr(), 4 bytes is the minimum size of
8126 ** any cell). But it is important to pass the correct size to
8127 ** insertCell(), so reparse the cell now.
8128 **
drhc1fb2b82016-03-09 03:29:27 +00008129 ** This can only happen for b-trees used to evaluate "IN (SELECT ...)"
8130 ** and WITHOUT ROWID tables with exactly one column which is the
8131 ** primary key.
dan33ea4862014-10-09 19:35:37 +00008132 */
drh1ffd2472015-06-23 02:37:30 +00008133 if( b.szCell[j]==4 ){
dan33ea4862014-10-09 19:35:37 +00008134 assert(leafCorrection==4);
drh25ada072015-06-19 15:07:14 +00008135 sz = pParent->xCellSize(pParent, pCell);
dan33ea4862014-10-09 19:35:37 +00008136 }
8137 }
8138 iOvflSpace += sz;
8139 assert( sz<=pBt->maxLocal+23 );
8140 assert( iOvflSpace <= (int)pBt->pageSize );
8141 insertCell(pParent, nxDiv+i, pCell, sz, pTemp, pNew->pgno, &rc);
drhd2cfbea2019-05-08 03:34:53 +00008142 if( rc!=SQLITE_OK ) goto balance_cleanup;
dan33ea4862014-10-09 19:35:37 +00008143 assert( sqlite3PagerIswriteable(pParent->pDbPage) );
8144 }
8145
8146 /* Now update the actual sibling pages. The order in which they are updated
8147 ** is important, as this code needs to avoid disrupting any page from which
8148 ** cells may still to be read. In practice, this means:
8149 **
drhd836d422014-10-31 14:26:36 +00008150 ** (1) If cells are moving left (from apNew[iPg] to apNew[iPg-1])
8151 ** then it is not safe to update page apNew[iPg] until after
8152 ** the left-hand sibling apNew[iPg-1] has been updated.
dan33ea4862014-10-09 19:35:37 +00008153 **
drhd836d422014-10-31 14:26:36 +00008154 ** (2) If cells are moving right (from apNew[iPg] to apNew[iPg+1])
8155 ** then it is not safe to update page apNew[iPg] until after
8156 ** the right-hand sibling apNew[iPg+1] has been updated.
dan33ea4862014-10-09 19:35:37 +00008157 **
8158 ** If neither of the above apply, the page is safe to update.
drhd836d422014-10-31 14:26:36 +00008159 **
8160 ** The iPg value in the following loop starts at nNew-1 goes down
8161 ** to 0, then back up to nNew-1 again, thus making two passes over
8162 ** the pages. On the initial downward pass, only condition (1) above
8163 ** needs to be tested because (2) will always be true from the previous
8164 ** step. On the upward pass, both conditions are always true, so the
8165 ** upwards pass simply processes pages that were missed on the downward
8166 ** pass.
dan33ea4862014-10-09 19:35:37 +00008167 */
drhbec021b2014-10-31 12:22:00 +00008168 for(i=1-nNew; i<nNew; i++){
8169 int iPg = i<0 ? -i : i;
drhbec021b2014-10-31 12:22:00 +00008170 assert( iPg>=0 && iPg<nNew );
drhd836d422014-10-31 14:26:36 +00008171 if( abDone[iPg] ) continue; /* Skip pages already processed */
8172 if( i>=0 /* On the upwards pass, or... */
8173 || cntOld[iPg-1]>=cntNew[iPg-1] /* Condition (1) is true */
dan33ea4862014-10-09 19:35:37 +00008174 ){
dan09c68402014-10-11 20:00:24 +00008175 int iNew;
8176 int iOld;
8177 int nNewCell;
8178
drhd836d422014-10-31 14:26:36 +00008179 /* Verify condition (1): If cells are moving left, update iPg
8180 ** only after iPg-1 has already been updated. */
8181 assert( iPg==0 || cntOld[iPg-1]>=cntNew[iPg-1] || abDone[iPg-1] );
8182
8183 /* Verify condition (2): If cells are moving right, update iPg
8184 ** only after iPg+1 has already been updated. */
8185 assert( cntNew[iPg]>=cntOld[iPg] || abDone[iPg+1] );
8186
dan09c68402014-10-11 20:00:24 +00008187 if( iPg==0 ){
8188 iNew = iOld = 0;
8189 nNewCell = cntNew[0];
8190 }else{
drh1ffd2472015-06-23 02:37:30 +00008191 iOld = iPg<nOld ? (cntOld[iPg-1] + !leafData) : b.nCell;
dan09c68402014-10-11 20:00:24 +00008192 iNew = cntNew[iPg-1] + !leafData;
8193 nNewCell = cntNew[iPg] - iNew;
8194 }
8195
drh1ffd2472015-06-23 02:37:30 +00008196 rc = editPage(apNew[iPg], iOld, iNew, nNewCell, &b);
drh658873b2015-06-22 20:02:04 +00008197 if( rc ) goto balance_cleanup;
drhd836d422014-10-31 14:26:36 +00008198 abDone[iPg]++;
dand7b545b2014-10-13 18:03:27 +00008199 apNew[iPg]->nFree = usableSpace-szNew[iPg];
dan09c68402014-10-11 20:00:24 +00008200 assert( apNew[iPg]->nOverflow==0 );
8201 assert( apNew[iPg]->nCell==nNewCell );
dan33ea4862014-10-09 19:35:37 +00008202 }
8203 }
drhd836d422014-10-31 14:26:36 +00008204
8205 /* All pages have been processed exactly once */
dan33ea4862014-10-09 19:35:37 +00008206 assert( memcmp(abDone, "\01\01\01\01\01", nNew)==0 );
8207
drh7aa8f852006-03-28 00:24:44 +00008208 assert( nOld>0 );
8209 assert( nNew>0 );
drh14acc042001-06-10 19:56:58 +00008210
danielk197713bd99f2009-06-24 05:40:34 +00008211 if( isRoot && pParent->nCell==0 && pParent->hdrOffset<=apNew[0]->nFree ){
8212 /* The root page of the b-tree now contains no cells. The only sibling
8213 ** page is the right-child of the parent. Copy the contents of the
8214 ** child page into the parent, decreasing the overall height of the
8215 ** b-tree structure by one. This is described as the "balance-shallower"
8216 ** sub-algorithm in some documentation.
8217 **
8218 ** If this is an auto-vacuum database, the call to copyNodeContent()
8219 ** sets all pointer-map entries corresponding to database image pages
8220 ** for which the pointer is stored within the content being copied.
8221 **
drh768f2902014-10-31 02:51:41 +00008222 ** It is critical that the child page be defragmented before being
8223 ** copied into the parent, because if the parent is page 1 then it will
8224 ** by smaller than the child due to the database header, and so all the
8225 ** free space needs to be up front.
8226 */
drh9b5351d2015-09-30 14:19:08 +00008227 assert( nNew==1 || CORRUPT_DB );
dan3b2ede12017-02-25 16:24:02 +00008228 rc = defragmentPage(apNew[0], -1);
drh768f2902014-10-31 02:51:41 +00008229 testcase( rc!=SQLITE_OK );
danielk197713bd99f2009-06-24 05:40:34 +00008230 assert( apNew[0]->nFree ==
drh1c960262019-03-25 18:44:08 +00008231 (get2byteNotZero(&apNew[0]->aData[5]) - apNew[0]->cellOffset
8232 - apNew[0]->nCell*2)
drh768f2902014-10-31 02:51:41 +00008233 || rc!=SQLITE_OK
danielk197713bd99f2009-06-24 05:40:34 +00008234 );
drhc314dc72009-07-21 11:52:34 +00008235 copyNodeContent(apNew[0], pParent, &rc);
8236 freePage(apNew[0], &rc);
dan33ea4862014-10-09 19:35:37 +00008237 }else if( ISAUTOVACUUM && !leafCorrection ){
8238 /* Fix the pointer map entries associated with the right-child of each
8239 ** sibling page. All other pointer map entries have already been taken
8240 ** care of. */
8241 for(i=0; i<nNew; i++){
8242 u32 key = get4byte(&apNew[i]->aData[8]);
8243 ptrmapPut(pBt, key, PTRMAP_BTREE, apNew[i]->pgno, &rc);
danielk19774dbaa892009-06-16 16:50:22 +00008244 }
dan33ea4862014-10-09 19:35:37 +00008245 }
danielk19774dbaa892009-06-16 16:50:22 +00008246
dan33ea4862014-10-09 19:35:37 +00008247 assert( pParent->isInit );
8248 TRACE(("BALANCE: finished: old=%d new=%d cells=%d\n",
drh1ffd2472015-06-23 02:37:30 +00008249 nOld, nNew, b.nCell));
danielk19774dbaa892009-06-16 16:50:22 +00008250
dan33ea4862014-10-09 19:35:37 +00008251 /* Free any old pages that were not reused as new pages.
8252 */
8253 for(i=nNew; i<nOld; i++){
8254 freePage(apOld[i], &rc);
8255 }
danielk19774dbaa892009-06-16 16:50:22 +00008256
8257#if 0
dan33ea4862014-10-09 19:35:37 +00008258 if( ISAUTOVACUUM && rc==SQLITE_OK && apNew[0]->isInit ){
danielk19774dbaa892009-06-16 16:50:22 +00008259 /* The ptrmapCheckPages() contains assert() statements that verify that
8260 ** all pointer map pages are set correctly. This is helpful while
8261 ** debugging. This is usually disabled because a corrupt database may
8262 ** cause an assert() statement to fail. */
8263 ptrmapCheckPages(apNew, nNew);
8264 ptrmapCheckPages(&pParent, 1);
danielk19774dbaa892009-06-16 16:50:22 +00008265 }
dan33ea4862014-10-09 19:35:37 +00008266#endif
danielk1977cd581a72009-06-23 15:43:39 +00008267
drh8b2f49b2001-06-08 00:21:52 +00008268 /*
drh14acc042001-06-10 19:56:58 +00008269 ** Cleanup before returning.
drh8b2f49b2001-06-08 00:21:52 +00008270 */
drh14acc042001-06-10 19:56:58 +00008271balance_cleanup:
drhb2a0f752017-08-28 15:51:35 +00008272 sqlite3StackFree(0, b.apCell);
drh8b2f49b2001-06-08 00:21:52 +00008273 for(i=0; i<nOld; i++){
drh91025292004-05-03 19:49:32 +00008274 releasePage(apOld[i]);
drh8b2f49b2001-06-08 00:21:52 +00008275 }
drh14acc042001-06-10 19:56:58 +00008276 for(i=0; i<nNew; i++){
drh91025292004-05-03 19:49:32 +00008277 releasePage(apNew[i]);
drh8b2f49b2001-06-08 00:21:52 +00008278 }
danielk1977eaa06f62008-09-18 17:34:44 +00008279
drh8b2f49b2001-06-08 00:21:52 +00008280 return rc;
8281}
8282
drh43605152004-05-29 21:46:49 +00008283
8284/*
danielk1977a50d9aa2009-06-08 14:49:45 +00008285** This function is called when the root page of a b-tree structure is
8286** overfull (has one or more overflow pages).
drh43605152004-05-29 21:46:49 +00008287**
danielk1977a50d9aa2009-06-08 14:49:45 +00008288** A new child page is allocated and the contents of the current root
8289** page, including overflow cells, are copied into the child. The root
8290** page is then overwritten to make it an empty page with the right-child
8291** pointer pointing to the new page.
8292**
8293** Before returning, all pointer-map entries corresponding to pages
8294** that the new child-page now contains pointers to are updated. The
8295** entry corresponding to the new right-child pointer of the root
8296** page is also updated.
8297**
8298** If successful, *ppChild is set to contain a reference to the child
8299** page and SQLITE_OK is returned. In this case the caller is required
8300** to call releasePage() on *ppChild exactly once. If an error occurs,
8301** an error code is returned and *ppChild is set to 0.
drh43605152004-05-29 21:46:49 +00008302*/
danielk1977a50d9aa2009-06-08 14:49:45 +00008303static int balance_deeper(MemPage *pRoot, MemPage **ppChild){
8304 int rc; /* Return value from subprocedures */
8305 MemPage *pChild = 0; /* Pointer to a new child page */
shane5eff7cf2009-08-10 03:57:58 +00008306 Pgno pgnoChild = 0; /* Page number of the new child page */
danielk1977a50d9aa2009-06-08 14:49:45 +00008307 BtShared *pBt = pRoot->pBt; /* The BTree */
drh43605152004-05-29 21:46:49 +00008308
danielk1977a50d9aa2009-06-08 14:49:45 +00008309 assert( pRoot->nOverflow>0 );
drh1fee73e2007-08-29 04:00:57 +00008310 assert( sqlite3_mutex_held(pBt->mutex) );
danielk1977bc2ca9e2008-11-13 14:28:28 +00008311
danielk1977a50d9aa2009-06-08 14:49:45 +00008312 /* Make pRoot, the root page of the b-tree, writable. Allocate a new
8313 ** page that will become the new right-child of pPage. Copy the contents
8314 ** of the node stored on pRoot into the new child page.
8315 */
drh98add2e2009-07-20 17:11:49 +00008316 rc = sqlite3PagerWrite(pRoot->pDbPage);
8317 if( rc==SQLITE_OK ){
8318 rc = allocateBtreePage(pBt,&pChild,&pgnoChild,pRoot->pgno,0);
drhc314dc72009-07-21 11:52:34 +00008319 copyNodeContent(pRoot, pChild, &rc);
8320 if( ISAUTOVACUUM ){
8321 ptrmapPut(pBt, pgnoChild, PTRMAP_BTREE, pRoot->pgno, &rc);
drh98add2e2009-07-20 17:11:49 +00008322 }
8323 }
8324 if( rc ){
danielk1977a50d9aa2009-06-08 14:49:45 +00008325 *ppChild = 0;
danielk197771d5d2c2008-09-29 11:49:47 +00008326 releasePage(pChild);
danielk1977a50d9aa2009-06-08 14:49:45 +00008327 return rc;
danielk197771d5d2c2008-09-29 11:49:47 +00008328 }
danielk1977a50d9aa2009-06-08 14:49:45 +00008329 assert( sqlite3PagerIswriteable(pChild->pDbPage) );
8330 assert( sqlite3PagerIswriteable(pRoot->pDbPage) );
drh12fe9a02019-02-19 16:42:54 +00008331 assert( pChild->nCell==pRoot->nCell || CORRUPT_DB );
danielk197771d5d2c2008-09-29 11:49:47 +00008332
danielk1977a50d9aa2009-06-08 14:49:45 +00008333 TRACE(("BALANCE: copy root %d into %d\n", pRoot->pgno, pChild->pgno));
8334
8335 /* Copy the overflow cells from pRoot to pChild */
drh2cbd78b2012-02-02 19:37:18 +00008336 memcpy(pChild->aiOvfl, pRoot->aiOvfl,
8337 pRoot->nOverflow*sizeof(pRoot->aiOvfl[0]));
8338 memcpy(pChild->apOvfl, pRoot->apOvfl,
8339 pRoot->nOverflow*sizeof(pRoot->apOvfl[0]));
danielk1977a50d9aa2009-06-08 14:49:45 +00008340 pChild->nOverflow = pRoot->nOverflow;
danielk1977a50d9aa2009-06-08 14:49:45 +00008341
8342 /* Zero the contents of pRoot. Then install pChild as the right-child. */
8343 zeroPage(pRoot, pChild->aData[0] & ~PTF_LEAF);
8344 put4byte(&pRoot->aData[pRoot->hdrOffset+8], pgnoChild);
8345
8346 *ppChild = pChild;
8347 return SQLITE_OK;
drh43605152004-05-29 21:46:49 +00008348}
8349
8350/*
drha2d50282019-12-23 18:02:15 +00008351** Return SQLITE_CORRUPT if any cursor other than pCur is currently valid
8352** on the same B-tree as pCur.
8353**
8354** This can if a database is corrupt with two or more SQL tables
8355** pointing to the same b-tree. If an insert occurs on one SQL table
8356** and causes a BEFORE TRIGGER to do a secondary insert on the other SQL
8357** table linked to the same b-tree. If the secondary insert causes a
8358** rebalance, that can change content out from under the cursor on the
8359** first SQL table, violating invariants on the first insert.
8360*/
8361static int anotherValidCursor(BtCursor *pCur){
8362 BtCursor *pOther;
8363 for(pOther=pCur->pBt->pCursor; pOther; pOther=pOther->pNext){
8364 if( pOther!=pCur
8365 && pOther->eState==CURSOR_VALID
8366 && pOther->pPage==pCur->pPage
8367 ){
8368 return SQLITE_CORRUPT_BKPT;
8369 }
8370 }
8371 return SQLITE_OK;
8372}
8373
8374/*
danielk197771d5d2c2008-09-29 11:49:47 +00008375** The page that pCur currently points to has just been modified in
8376** some way. This function figures out if this modification means the
8377** tree needs to be balanced, and if so calls the appropriate balancing
danielk1977a50d9aa2009-06-08 14:49:45 +00008378** routine. Balancing routines are:
8379**
8380** balance_quick()
danielk1977a50d9aa2009-06-08 14:49:45 +00008381** balance_deeper()
8382** balance_nonroot()
drh43605152004-05-29 21:46:49 +00008383*/
danielk1977a50d9aa2009-06-08 14:49:45 +00008384static int balance(BtCursor *pCur){
drh43605152004-05-29 21:46:49 +00008385 int rc = SQLITE_OK;
danielk1977a50d9aa2009-06-08 14:49:45 +00008386 const int nMin = pCur->pBt->usableSize * 2 / 3;
8387 u8 aBalanceQuickSpace[13];
8388 u8 *pFree = 0;
danielk197771d5d2c2008-09-29 11:49:47 +00008389
drhcc5f8a42016-02-06 22:32:06 +00008390 VVA_ONLY( int balance_quick_called = 0 );
8391 VVA_ONLY( int balance_deeper_called = 0 );
danielk1977a50d9aa2009-06-08 14:49:45 +00008392
8393 do {
dan01fd42b2019-07-13 09:55:33 +00008394 int iPage;
drh352a35a2017-08-15 03:46:47 +00008395 MemPage *pPage = pCur->pPage;
danielk1977a50d9aa2009-06-08 14:49:45 +00008396
drha941ff72019-02-12 00:58:10 +00008397 if( NEVER(pPage->nFree<0) && btreeComputeFreeSpace(pPage) ) break;
dan01fd42b2019-07-13 09:55:33 +00008398 if( pPage->nOverflow==0 && pPage->nFree<=nMin ){
8399 break;
8400 }else if( (iPage = pCur->iPage)==0 ){
drha2d50282019-12-23 18:02:15 +00008401 if( pPage->nOverflow && (rc = anotherValidCursor(pCur))==SQLITE_OK ){
danielk1977a50d9aa2009-06-08 14:49:45 +00008402 /* The root page of the b-tree is overfull. In this case call the
8403 ** balance_deeper() function to create a new child for the root-page
8404 ** and copy the current contents of the root-page to it. The
8405 ** next iteration of the do-loop will balance the child page.
8406 */
drhcc5f8a42016-02-06 22:32:06 +00008407 assert( balance_deeper_called==0 );
8408 VVA_ONLY( balance_deeper_called++ );
danielk1977a50d9aa2009-06-08 14:49:45 +00008409 rc = balance_deeper(pPage, &pCur->apPage[1]);
8410 if( rc==SQLITE_OK ){
8411 pCur->iPage = 1;
drh75e96b32017-04-01 00:20:06 +00008412 pCur->ix = 0;
danielk1977a50d9aa2009-06-08 14:49:45 +00008413 pCur->aiIdx[0] = 0;
drh352a35a2017-08-15 03:46:47 +00008414 pCur->apPage[0] = pPage;
8415 pCur->pPage = pCur->apPage[1];
8416 assert( pCur->pPage->nOverflow );
danielk1977a50d9aa2009-06-08 14:49:45 +00008417 }
danielk1977a50d9aa2009-06-08 14:49:45 +00008418 }else{
danielk1977a50d9aa2009-06-08 14:49:45 +00008419 break;
8420 }
danielk1977a50d9aa2009-06-08 14:49:45 +00008421 }else{
8422 MemPage * const pParent = pCur->apPage[iPage-1];
8423 int const iIdx = pCur->aiIdx[iPage-1];
8424
8425 rc = sqlite3PagerWrite(pParent->pDbPage);
drh68133502019-02-11 17:22:30 +00008426 if( rc==SQLITE_OK && pParent->nFree<0 ){
8427 rc = btreeComputeFreeSpace(pParent);
8428 }
danielk1977a50d9aa2009-06-08 14:49:45 +00008429 if( rc==SQLITE_OK ){
8430#ifndef SQLITE_OMIT_QUICKBALANCE
drh3e28ff52014-09-24 00:59:08 +00008431 if( pPage->intKeyLeaf
danielk1977a50d9aa2009-06-08 14:49:45 +00008432 && pPage->nOverflow==1
drh2cbd78b2012-02-02 19:37:18 +00008433 && pPage->aiOvfl[0]==pPage->nCell
danielk1977a50d9aa2009-06-08 14:49:45 +00008434 && pParent->pgno!=1
8435 && pParent->nCell==iIdx
8436 ){
8437 /* Call balance_quick() to create a new sibling of pPage on which
8438 ** to store the overflow cell. balance_quick() inserts a new cell
8439 ** into pParent, which may cause pParent overflow. If this
peter.d.reid60ec9142014-09-06 16:39:46 +00008440 ** happens, the next iteration of the do-loop will balance pParent
danielk1977a50d9aa2009-06-08 14:49:45 +00008441 ** use either balance_nonroot() or balance_deeper(). Until this
8442 ** happens, the overflow cell is stored in the aBalanceQuickSpace[]
8443 ** buffer.
8444 **
8445 ** The purpose of the following assert() is to check that only a
8446 ** single call to balance_quick() is made for each call to this
8447 ** function. If this were not verified, a subtle bug involving reuse
8448 ** of the aBalanceQuickSpace[] might sneak in.
8449 */
drhcc5f8a42016-02-06 22:32:06 +00008450 assert( balance_quick_called==0 );
8451 VVA_ONLY( balance_quick_called++ );
danielk1977a50d9aa2009-06-08 14:49:45 +00008452 rc = balance_quick(pParent, pPage, aBalanceQuickSpace);
8453 }else
8454#endif
8455 {
8456 /* In this case, call balance_nonroot() to redistribute cells
8457 ** between pPage and up to 2 of its sibling pages. This involves
8458 ** modifying the contents of pParent, which may cause pParent to
8459 ** become overfull or underfull. The next iteration of the do-loop
8460 ** will balance the parent page to correct this.
8461 **
8462 ** If the parent page becomes overfull, the overflow cell or cells
8463 ** are stored in the pSpace buffer allocated immediately below.
8464 ** A subsequent iteration of the do-loop will deal with this by
8465 ** calling balance_nonroot() (balance_deeper() may be called first,
8466 ** but it doesn't deal with overflow cells - just moves them to a
8467 ** different page). Once this subsequent call to balance_nonroot()
8468 ** has completed, it is safe to release the pSpace buffer used by
8469 ** the previous call, as the overflow cell data will have been
8470 ** copied either into the body of a database page or into the new
8471 ** pSpace buffer passed to the latter call to balance_nonroot().
8472 */
8473 u8 *pSpace = sqlite3PageMalloc(pCur->pBt->pageSize);
drhe0997b32015-03-20 14:57:50 +00008474 rc = balance_nonroot(pParent, iIdx, pSpace, iPage==1,
8475 pCur->hints&BTREE_BULKLOAD);
danielk1977a50d9aa2009-06-08 14:49:45 +00008476 if( pFree ){
8477 /* If pFree is not NULL, it points to the pSpace buffer used
8478 ** by a previous call to balance_nonroot(). Its contents are
8479 ** now stored either on real database pages or within the
8480 ** new pSpace buffer, so it may be safely freed here. */
8481 sqlite3PageFree(pFree);
8482 }
8483
danielk19774dbaa892009-06-16 16:50:22 +00008484 /* The pSpace buffer will be freed after the next call to
8485 ** balance_nonroot(), or just before this function returns, whichever
8486 ** comes first. */
danielk1977a50d9aa2009-06-08 14:49:45 +00008487 pFree = pSpace;
danielk1977a50d9aa2009-06-08 14:49:45 +00008488 }
8489 }
8490
8491 pPage->nOverflow = 0;
8492
8493 /* The next iteration of the do-loop balances the parent page. */
8494 releasePage(pPage);
8495 pCur->iPage--;
drhcbd33492015-03-25 13:06:54 +00008496 assert( pCur->iPage>=0 );
drh352a35a2017-08-15 03:46:47 +00008497 pCur->pPage = pCur->apPage[pCur->iPage];
drh43605152004-05-29 21:46:49 +00008498 }
danielk1977a50d9aa2009-06-08 14:49:45 +00008499 }while( rc==SQLITE_OK );
8500
8501 if( pFree ){
8502 sqlite3PageFree(pFree);
drh43605152004-05-29 21:46:49 +00008503 }
8504 return rc;
8505}
8506
drh3de5d162018-05-03 03:59:02 +00008507/* Overwrite content from pX into pDest. Only do the write if the
8508** content is different from what is already there.
8509*/
8510static int btreeOverwriteContent(
8511 MemPage *pPage, /* MemPage on which writing will occur */
8512 u8 *pDest, /* Pointer to the place to start writing */
8513 const BtreePayload *pX, /* Source of data to write */
8514 int iOffset, /* Offset of first byte to write */
8515 int iAmt /* Number of bytes to be written */
8516){
8517 int nData = pX->nData - iOffset;
8518 if( nData<=0 ){
8519 /* Overwritting with zeros */
8520 int i;
8521 for(i=0; i<iAmt && pDest[i]==0; i++){}
8522 if( i<iAmt ){
8523 int rc = sqlite3PagerWrite(pPage->pDbPage);
8524 if( rc ) return rc;
8525 memset(pDest + i, 0, iAmt - i);
8526 }
8527 }else{
8528 if( nData<iAmt ){
8529 /* Mixed read data and zeros at the end. Make a recursive call
8530 ** to write the zeros then fall through to write the real data */
drhd5aa9262018-05-03 16:56:06 +00008531 int rc = btreeOverwriteContent(pPage, pDest+nData, pX, iOffset+nData,
8532 iAmt-nData);
8533 if( rc ) return rc;
drh3de5d162018-05-03 03:59:02 +00008534 iAmt = nData;
8535 }
8536 if( memcmp(pDest, ((u8*)pX->pData) + iOffset, iAmt)!=0 ){
8537 int rc = sqlite3PagerWrite(pPage->pDbPage);
8538 if( rc ) return rc;
drh55469bb2019-01-24 13:36:47 +00008539 /* In a corrupt database, it is possible for the source and destination
8540 ** buffers to overlap. This is harmless since the database is already
8541 ** corrupt but it does cause valgrind and ASAN warnings. So use
8542 ** memmove(). */
8543 memmove(pDest, ((u8*)pX->pData) + iOffset, iAmt);
drh3de5d162018-05-03 03:59:02 +00008544 }
8545 }
8546 return SQLITE_OK;
8547}
8548
8549/*
8550** Overwrite the cell that cursor pCur is pointing to with fresh content
8551** contained in pX.
8552*/
8553static int btreeOverwriteCell(BtCursor *pCur, const BtreePayload *pX){
8554 int iOffset; /* Next byte of pX->pData to write */
8555 int nTotal = pX->nData + pX->nZero; /* Total bytes of to write */
8556 int rc; /* Return code */
8557 MemPage *pPage = pCur->pPage; /* Page being written */
8558 BtShared *pBt; /* Btree */
8559 Pgno ovflPgno; /* Next overflow page to write */
8560 u32 ovflPageSize; /* Size to write on overflow page */
8561
drh27e80a32019-08-15 13:17:49 +00008562 if( pCur->info.pPayload + pCur->info.nLocal > pPage->aDataEnd
8563 || pCur->info.pPayload < pPage->aData + pPage->cellOffset
8564 ){
drh4f84e9c2018-05-03 13:56:23 +00008565 return SQLITE_CORRUPT_BKPT;
8566 }
drh3de5d162018-05-03 03:59:02 +00008567 /* Overwrite the local portion first */
8568 rc = btreeOverwriteContent(pPage, pCur->info.pPayload, pX,
8569 0, pCur->info.nLocal);
8570 if( rc ) return rc;
8571 if( pCur->info.nLocal==nTotal ) return SQLITE_OK;
8572
8573 /* Now overwrite the overflow pages */
8574 iOffset = pCur->info.nLocal;
drh30f7a252018-05-07 11:29:59 +00008575 assert( nTotal>=0 );
8576 assert( iOffset>=0 );
drh3de5d162018-05-03 03:59:02 +00008577 ovflPgno = get4byte(pCur->info.pPayload + iOffset);
8578 pBt = pPage->pBt;
8579 ovflPageSize = pBt->usableSize - 4;
8580 do{
8581 rc = btreeGetPage(pBt, ovflPgno, &pPage, 0);
8582 if( rc ) return rc;
drh4f84e9c2018-05-03 13:56:23 +00008583 if( sqlite3PagerPageRefcount(pPage->pDbPage)!=1 ){
drhd5aa9262018-05-03 16:56:06 +00008584 rc = SQLITE_CORRUPT_BKPT;
drh3de5d162018-05-03 03:59:02 +00008585 }else{
drh30f7a252018-05-07 11:29:59 +00008586 if( iOffset+ovflPageSize<(u32)nTotal ){
drhd5aa9262018-05-03 16:56:06 +00008587 ovflPgno = get4byte(pPage->aData);
8588 }else{
8589 ovflPageSize = nTotal - iOffset;
8590 }
8591 rc = btreeOverwriteContent(pPage, pPage->aData+4, pX,
8592 iOffset, ovflPageSize);
drh3de5d162018-05-03 03:59:02 +00008593 }
drhd5aa9262018-05-03 16:56:06 +00008594 sqlite3PagerUnref(pPage->pDbPage);
drh3de5d162018-05-03 03:59:02 +00008595 if( rc ) return rc;
8596 iOffset += ovflPageSize;
drh3de5d162018-05-03 03:59:02 +00008597 }while( iOffset<nTotal );
8598 return SQLITE_OK;
8599}
8600
drhf74b8d92002-09-01 23:20:45 +00008601
8602/*
drh8eeb4462016-05-21 20:03:42 +00008603** Insert a new record into the BTree. The content of the new record
8604** is described by the pX object. The pCur cursor is used only to
8605** define what table the record should be inserted into, and is left
8606** pointing at a random location.
drh4b70f112004-05-02 21:12:19 +00008607**
drh8eeb4462016-05-21 20:03:42 +00008608** For a table btree (used for rowid tables), only the pX.nKey value of
8609** the key is used. The pX.pKey value must be NULL. The pX.nKey is the
8610** rowid or INTEGER PRIMARY KEY of the row. The pX.nData,pData,nZero fields
8611** hold the content of the row.
8612**
8613** For an index btree (used for indexes and WITHOUT ROWID tables), the
8614** key is an arbitrary byte sequence stored in pX.pKey,nKey. The
8615** pX.pData,nData,nZero fields must be zero.
danielk1977de630352009-05-04 11:42:29 +00008616**
8617** If the seekResult parameter is non-zero, then a successful call to
drheaf6ae22016-11-09 20:14:34 +00008618** MovetoUnpacked() to seek cursor pCur to (pKey,nKey) has already
8619** been performed. In other words, if seekResult!=0 then the cursor
8620** is currently pointing to a cell that will be adjacent to the cell
8621** to be inserted. If seekResult<0 then pCur points to a cell that is
8622** smaller then (pKey,nKey). If seekResult>0 then pCur points to a cell
8623** that is larger than (pKey,nKey).
danielk1977de630352009-05-04 11:42:29 +00008624**
drheaf6ae22016-11-09 20:14:34 +00008625** If seekResult==0, that means pCur is pointing at some unknown location.
8626** In that case, this routine must seek the cursor to the correct insertion
8627** point for (pKey,nKey) before doing the insertion. For index btrees,
8628** if pX->nMem is non-zero, then pX->aMem contains pointers to the unpacked
8629** key values and pX->aMem can be used instead of pX->pKey to avoid having
8630** to decode the key.
drh3b7511c2001-05-26 13:15:44 +00008631*/
drh3aac2dd2004-04-26 14:10:20 +00008632int sqlite3BtreeInsert(
drh5c4d9702001-08-20 00:33:58 +00008633 BtCursor *pCur, /* Insert data into the table of this cursor */
drh8eeb4462016-05-21 20:03:42 +00008634 const BtreePayload *pX, /* Content of the row to be inserted */
danf91c1312017-01-10 20:04:38 +00008635 int flags, /* True if this is likely an append */
danielk19773509a652009-07-06 18:56:13 +00008636 int seekResult /* Result of prior MovetoUnpacked() call */
drh3b7511c2001-05-26 13:15:44 +00008637){
drh3b7511c2001-05-26 13:15:44 +00008638 int rc;
drh3e9ca092009-09-08 01:14:48 +00008639 int loc = seekResult; /* -1: before desired location +1: after */
drh1d452e12009-11-01 19:26:59 +00008640 int szNew = 0;
danielk197771d5d2c2008-09-29 11:49:47 +00008641 int idx;
drh3b7511c2001-05-26 13:15:44 +00008642 MemPage *pPage;
drhd677b3d2007-08-20 22:48:41 +00008643 Btree *p = pCur->pBtree;
8644 BtShared *pBt = p->pBt;
drha34b6762004-05-07 13:30:42 +00008645 unsigned char *oldCell;
drh2e38c322004-09-03 18:38:44 +00008646 unsigned char *newCell = 0;
drh3b7511c2001-05-26 13:15:44 +00008647
danf91c1312017-01-10 20:04:38 +00008648 assert( (flags & (BTREE_SAVEPOSITION|BTREE_APPEND))==flags );
8649
drh98add2e2009-07-20 17:11:49 +00008650 if( pCur->eState==CURSOR_FAULT ){
8651 assert( pCur->skipNext!=SQLITE_OK );
8652 return pCur->skipNext;
8653 }
8654
dan7a2347e2016-01-07 16:43:54 +00008655 assert( cursorOwnsBtShared(pCur) );
drh3f387402014-09-24 01:23:00 +00008656 assert( (pCur->curFlags & BTCF_WriteFlag)!=0
8657 && pBt->inTransaction==TRANS_WRITE
drhc9166342012-01-05 23:32:06 +00008658 && (pBt->btsFlags & BTS_READ_ONLY)==0 );
danielk197796d48e92009-06-29 06:00:37 +00008659 assert( hasSharedCacheTableLock(p, pCur->pgnoRoot, pCur->pKeyInfo!=0, 2) );
8660
danielk197731d31b82009-07-13 13:18:07 +00008661 /* Assert that the caller has been consistent. If this cursor was opened
8662 ** expecting an index b-tree, then the caller should be inserting blob
8663 ** keys with no associated data. If the cursor was opened expecting an
8664 ** intkey table, the caller should be inserting integer keys with a
8665 ** blob of associated data. */
drh8eeb4462016-05-21 20:03:42 +00008666 assert( (pX->pKey==0)==(pCur->pKeyInfo==0) );
danielk197731d31b82009-07-13 13:18:07 +00008667
danielk19779c3acf32009-05-02 07:36:49 +00008668 /* Save the positions of any other cursors open on this table.
8669 **
danielk19773509a652009-07-06 18:56:13 +00008670 ** In some cases, the call to btreeMoveto() below is a no-op. For
danielk19779c3acf32009-05-02 07:36:49 +00008671 ** example, when inserting data into a table with auto-generated integer
8672 ** keys, the VDBE layer invokes sqlite3BtreeLast() to figure out the
8673 ** integer key to use. It then calls this function to actually insert the
danielk19773509a652009-07-06 18:56:13 +00008674 ** data into the intkey B-Tree. In this case btreeMoveto() recognizes
danielk19779c3acf32009-05-02 07:36:49 +00008675 ** that the cursor is already where it needs to be and returns without
8676 ** doing any work. To avoid thwarting these optimizations, it is important
8677 ** not to clear the cursor here.
8678 */
drh27fb7462015-06-30 02:47:36 +00008679 if( pCur->curFlags & BTCF_Multiple ){
8680 rc = saveAllCursors(pBt, pCur->pgnoRoot, pCur);
8681 if( rc ) return rc;
drhd60f4f42012-03-23 14:23:52 +00008682 }
8683
danielk197771d5d2c2008-09-29 11:49:47 +00008684 if( pCur->pKeyInfo==0 ){
drh8eeb4462016-05-21 20:03:42 +00008685 assert( pX->pKey==0 );
drhe0670b62014-02-12 21:31:12 +00008686 /* If this is an insert into a table b-tree, invalidate any incrblob
8687 ** cursors open on the row being replaced */
drh9ca431a2017-03-29 18:03:50 +00008688 invalidateIncrblobCursors(p, pCur->pgnoRoot, pX->nKey, 0);
drhe0670b62014-02-12 21:31:12 +00008689
danf91c1312017-01-10 20:04:38 +00008690 /* If BTREE_SAVEPOSITION is set, the cursor must already be pointing
drhd720d392018-05-07 17:27:04 +00008691 ** to a row with the same key as the new entry being inserted.
8692 */
8693#ifdef SQLITE_DEBUG
8694 if( flags & BTREE_SAVEPOSITION ){
8695 assert( pCur->curFlags & BTCF_ValidNKey );
8696 assert( pX->nKey==pCur->info.nKey );
drhd720d392018-05-07 17:27:04 +00008697 assert( loc==0 );
8698 }
8699#endif
danf91c1312017-01-10 20:04:38 +00008700
drhd720d392018-05-07 17:27:04 +00008701 /* On the other hand, BTREE_SAVEPOSITION==0 does not imply
8702 ** that the cursor is not pointing to a row to be overwritten.
8703 ** So do a complete check.
8704 */
drh7a1c28d2016-11-10 20:42:08 +00008705 if( (pCur->curFlags&BTCF_ValidNKey)!=0 && pX->nKey==pCur->info.nKey ){
drhd720d392018-05-07 17:27:04 +00008706 /* The cursor is pointing to the entry that is to be
drh3de5d162018-05-03 03:59:02 +00008707 ** overwritten */
drh30f7a252018-05-07 11:29:59 +00008708 assert( pX->nData>=0 && pX->nZero>=0 );
8709 if( pCur->info.nSize!=0
8710 && pCur->info.nPayload==(u32)pX->nData+pX->nZero
8711 ){
drhd720d392018-05-07 17:27:04 +00008712 /* New entry is the same size as the old. Do an overwrite */
drh3de5d162018-05-03 03:59:02 +00008713 return btreeOverwriteCell(pCur, pX);
8714 }
drhd720d392018-05-07 17:27:04 +00008715 assert( loc==0 );
drh207c8172015-06-29 23:01:32 +00008716 }else if( loc==0 ){
drhd720d392018-05-07 17:27:04 +00008717 /* The cursor is *not* pointing to the cell to be overwritten, nor
8718 ** to an adjacent cell. Move the cursor so that it is pointing either
8719 ** to the cell to be overwritten or an adjacent cell.
8720 */
danf91c1312017-01-10 20:04:38 +00008721 rc = sqlite3BtreeMovetoUnpacked(pCur, 0, pX->nKey, flags!=0, &loc);
drh207c8172015-06-29 23:01:32 +00008722 if( rc ) return rc;
drhe0670b62014-02-12 21:31:12 +00008723 }
drhd720d392018-05-07 17:27:04 +00008724 }else{
8725 /* This is an index or a WITHOUT ROWID table */
8726
8727 /* If BTREE_SAVEPOSITION is set, the cursor must already be pointing
8728 ** to a row with the same key as the new entry being inserted.
8729 */
8730 assert( (flags & BTREE_SAVEPOSITION)==0 || loc==0 );
8731
8732 /* If the cursor is not already pointing either to the cell to be
8733 ** overwritten, or if a new cell is being inserted, if the cursor is
8734 ** not pointing to an immediately adjacent cell, then move the cursor
8735 ** so that it does.
8736 */
8737 if( loc==0 && (flags & BTREE_SAVEPOSITION)==0 ){
8738 if( pX->nMem ){
8739 UnpackedRecord r;
8740 r.pKeyInfo = pCur->pKeyInfo;
8741 r.aMem = pX->aMem;
8742 r.nField = pX->nMem;
8743 r.default_rc = 0;
8744 r.errCode = 0;
8745 r.r1 = 0;
8746 r.r2 = 0;
8747 r.eqSeen = 0;
8748 rc = sqlite3BtreeMovetoUnpacked(pCur, &r, 0, flags!=0, &loc);
8749 }else{
8750 rc = btreeMoveto(pCur, pX->pKey, pX->nKey, flags!=0, &loc);
8751 }
8752 if( rc ) return rc;
drh9b4eaeb2016-11-09 00:10:33 +00008753 }
drh89ee2292018-05-07 18:41:19 +00008754
8755 /* If the cursor is currently pointing to an entry to be overwritten
8756 ** and the new content is the same as as the old, then use the
8757 ** overwrite optimization.
8758 */
8759 if( loc==0 ){
8760 getCellInfo(pCur);
8761 if( pCur->info.nKey==pX->nKey ){
8762 BtreePayload x2;
8763 x2.pData = pX->pKey;
8764 x2.nData = pX->nKey;
8765 x2.nZero = 0;
8766 return btreeOverwriteCell(pCur, &x2);
8767 }
8768 }
8769
danielk1977da184232006-01-05 11:34:32 +00008770 }
drh0e5ce802019-12-20 12:33:17 +00008771 assert( pCur->eState==CURSOR_VALID
8772 || (pCur->eState==CURSOR_INVALID && loc)
8773 || CORRUPT_DB );
danielk1977da184232006-01-05 11:34:32 +00008774
drh352a35a2017-08-15 03:46:47 +00008775 pPage = pCur->pPage;
drh8eeb4462016-05-21 20:03:42 +00008776 assert( pPage->intKey || pX->nKey>=0 );
drh44845222008-07-17 18:39:57 +00008777 assert( pPage->leaf || !pPage->intKey );
drhb0ea9432019-02-09 21:06:40 +00008778 if( pPage->nFree<0 ){
drha1085f02020-07-11 16:42:28 +00008779 if( pCur->eState>CURSOR_INVALID ){
8780 rc = SQLITE_CORRUPT_BKPT;
8781 }else{
8782 rc = btreeComputeFreeSpace(pPage);
8783 }
drhb0ea9432019-02-09 21:06:40 +00008784 if( rc ) return rc;
8785 }
danielk19778f880a82009-07-13 09:41:45 +00008786
drh3a4c1412004-05-09 20:40:11 +00008787 TRACE(("INSERT: table=%d nkey=%lld ndata=%d page=%d %s\n",
drh8eeb4462016-05-21 20:03:42 +00008788 pCur->pgnoRoot, pX->nKey, pX->nData, pPage->pgno,
drh3a4c1412004-05-09 20:40:11 +00008789 loc==0 ? "overwrite" : "new entry"));
danielk197771d5d2c2008-09-29 11:49:47 +00008790 assert( pPage->isInit );
danielk197752ae7242008-03-25 14:24:56 +00008791 newCell = pBt->pTmpSpace;
drh3fbb0222014-09-24 19:47:27 +00008792 assert( newCell!=0 );
drh8eeb4462016-05-21 20:03:42 +00008793 rc = fillInCell(pPage, newCell, pX, &szNew);
drh2e38c322004-09-03 18:38:44 +00008794 if( rc ) goto end_insert;
drh25ada072015-06-19 15:07:14 +00008795 assert( szNew==pPage->xCellSize(pPage, newCell) );
drhfcd71b62011-04-05 22:08:24 +00008796 assert( szNew <= MX_CELL_SIZE(pBt) );
drh75e96b32017-04-01 00:20:06 +00008797 idx = pCur->ix;
danielk1977b980d2212009-06-22 18:03:51 +00008798 if( loc==0 ){
drh80159da2016-12-09 17:32:51 +00008799 CellInfo info;
danielk197771d5d2c2008-09-29 11:49:47 +00008800 assert( idx<pPage->nCell );
danielk19776e465eb2007-08-21 13:11:00 +00008801 rc = sqlite3PagerWrite(pPage->pDbPage);
8802 if( rc ){
8803 goto end_insert;
8804 }
danielk197771d5d2c2008-09-29 11:49:47 +00008805 oldCell = findCell(pPage, idx);
drh4b70f112004-05-02 21:12:19 +00008806 if( !pPage->leaf ){
drh43605152004-05-29 21:46:49 +00008807 memcpy(newCell, oldCell, 4);
drh4b70f112004-05-02 21:12:19 +00008808 }
drh80159da2016-12-09 17:32:51 +00008809 rc = clearCell(pPage, oldCell, &info);
drh554a19d2019-08-12 18:26:46 +00008810 testcase( pCur->curFlags & BTCF_ValidOvfl );
8811 invalidateOverflowCache(pCur);
danca66f6c2017-06-08 11:14:08 +00008812 if( info.nSize==szNew && info.nLocal==info.nPayload
8813 && (!ISAUTOVACUUM || szNew<pPage->minLocal)
8814 ){
drhf9238252016-12-09 18:09:42 +00008815 /* Overwrite the old cell with the new if they are the same size.
8816 ** We could also try to do this if the old cell is smaller, then add
8817 ** the leftover space to the free list. But experiments show that
8818 ** doing that is no faster then skipping this optimization and just
danca66f6c2017-06-08 11:14:08 +00008819 ** calling dropCell() and insertCell().
8820 **
8821 ** This optimization cannot be used on an autovacuum database if the
8822 ** new entry uses overflow pages, as the insertCell() call below is
8823 ** necessary to add the PTRMAP_OVERFLOW1 pointer-map entry. */
drhf9238252016-12-09 18:09:42 +00008824 assert( rc==SQLITE_OK ); /* clearCell never fails when nLocal==nPayload */
drh93788182019-07-22 23:24:01 +00008825 if( oldCell < pPage->aData+pPage->hdrOffset+10 ){
8826 return SQLITE_CORRUPT_BKPT;
8827 }
8828 if( oldCell+szNew > pPage->aDataEnd ){
8829 return SQLITE_CORRUPT_BKPT;
8830 }
drh80159da2016-12-09 17:32:51 +00008831 memcpy(oldCell, newCell, szNew);
8832 return SQLITE_OK;
8833 }
8834 dropCell(pPage, idx, info.nSize, &rc);
drh2e38c322004-09-03 18:38:44 +00008835 if( rc ) goto end_insert;
drh7c717f72001-06-24 20:39:41 +00008836 }else if( loc<0 && pPage->nCell>0 ){
drh4b70f112004-05-02 21:12:19 +00008837 assert( pPage->leaf );
drh75e96b32017-04-01 00:20:06 +00008838 idx = ++pCur->ix;
dan874080b2017-05-01 18:12:56 +00008839 pCur->curFlags &= ~BTCF_ValidNKey;
drh14acc042001-06-10 19:56:58 +00008840 }else{
drh4b70f112004-05-02 21:12:19 +00008841 assert( pPage->leaf );
drh3b7511c2001-05-26 13:15:44 +00008842 }
drh98add2e2009-07-20 17:11:49 +00008843 insertCell(pPage, idx, newCell, szNew, 0, 0, &rc);
drh09a4e922016-05-21 12:29:04 +00008844 assert( pPage->nOverflow==0 || rc==SQLITE_OK );
danielk19773f632d52009-05-02 10:03:09 +00008845 assert( rc!=SQLITE_OK || pPage->nCell>0 || pPage->nOverflow>0 );
drh9bf9e9c2008-12-05 20:01:43 +00008846
mistachkin48864df2013-03-21 21:20:32 +00008847 /* If no error has occurred and pPage has an overflow cell, call balance()
danielk1977a50d9aa2009-06-08 14:49:45 +00008848 ** to redistribute the cells within the tree. Since balance() may move
drh036dbec2014-03-11 23:40:44 +00008849 ** the cursor, zero the BtCursor.info.nSize and BTCF_ValidNKey
danielk1977a50d9aa2009-06-08 14:49:45 +00008850 ** variables.
danielk19773f632d52009-05-02 10:03:09 +00008851 **
danielk1977a50d9aa2009-06-08 14:49:45 +00008852 ** Previous versions of SQLite called moveToRoot() to move the cursor
8853 ** back to the root page as balance() used to invalidate the contents
danielk197754109bb2009-06-23 11:22:29 +00008854 ** of BtCursor.apPage[] and BtCursor.aiIdx[]. Instead of doing that,
8855 ** set the cursor state to "invalid". This makes common insert operations
8856 ** slightly faster.
danielk19773f632d52009-05-02 10:03:09 +00008857 **
danielk1977a50d9aa2009-06-08 14:49:45 +00008858 ** There is a subtle but important optimization here too. When inserting
8859 ** multiple records into an intkey b-tree using a single cursor (as can
8860 ** happen while processing an "INSERT INTO ... SELECT" statement), it
8861 ** is advantageous to leave the cursor pointing to the last entry in
8862 ** the b-tree if possible. If the cursor is left pointing to the last
8863 ** entry in the table, and the next row inserted has an integer key
8864 ** larger than the largest existing key, it is possible to insert the
8865 ** row without seeking the cursor. This can be a big performance boost.
danielk19773f632d52009-05-02 10:03:09 +00008866 */
danielk1977a50d9aa2009-06-08 14:49:45 +00008867 pCur->info.nSize = 0;
drh09a4e922016-05-21 12:29:04 +00008868 if( pPage->nOverflow ){
8869 assert( rc==SQLITE_OK );
drh036dbec2014-03-11 23:40:44 +00008870 pCur->curFlags &= ~(BTCF_ValidNKey);
danielk1977a50d9aa2009-06-08 14:49:45 +00008871 rc = balance(pCur);
8872
8873 /* Must make sure nOverflow is reset to zero even if the balance()
danielk197754109bb2009-06-23 11:22:29 +00008874 ** fails. Internal data structure corruption will result otherwise.
8875 ** Also, set the cursor state to invalid. This stops saveCursorPosition()
8876 ** from trying to save the current position of the cursor. */
drh352a35a2017-08-15 03:46:47 +00008877 pCur->pPage->nOverflow = 0;
danielk197754109bb2009-06-23 11:22:29 +00008878 pCur->eState = CURSOR_INVALID;
danf91c1312017-01-10 20:04:38 +00008879 if( (flags & BTREE_SAVEPOSITION) && rc==SQLITE_OK ){
drh85ef6302017-08-02 15:50:09 +00008880 btreeReleaseAllCursorPages(pCur);
drh7b20a152017-01-12 19:10:55 +00008881 if( pCur->pKeyInfo ){
danf91c1312017-01-10 20:04:38 +00008882 assert( pCur->pKey==0 );
8883 pCur->pKey = sqlite3Malloc( pX->nKey );
8884 if( pCur->pKey==0 ){
8885 rc = SQLITE_NOMEM;
8886 }else{
8887 memcpy(pCur->pKey, pX->pKey, pX->nKey);
8888 }
8889 }
8890 pCur->eState = CURSOR_REQUIRESEEK;
8891 pCur->nKey = pX->nKey;
8892 }
danielk19773f632d52009-05-02 10:03:09 +00008893 }
drh352a35a2017-08-15 03:46:47 +00008894 assert( pCur->iPage<0 || pCur->pPage->nOverflow==0 );
drh9bf9e9c2008-12-05 20:01:43 +00008895
drh2e38c322004-09-03 18:38:44 +00008896end_insert:
drh5e2f8b92001-05-28 00:41:15 +00008897 return rc;
8898}
8899
8900/*
danf0ee1d32015-09-12 19:26:11 +00008901** Delete the entry that the cursor is pointing to.
8902**
drhe807bdb2016-01-21 17:06:33 +00008903** If the BTREE_SAVEPOSITION bit of the flags parameter is zero, then
8904** the cursor is left pointing at an arbitrary location after the delete.
8905** But if that bit is set, then the cursor is left in a state such that
8906** the next call to BtreeNext() or BtreePrev() moves it to the same row
8907** as it would have been on if the call to BtreeDelete() had been omitted.
8908**
drhdef19e32016-01-27 16:26:25 +00008909** The BTREE_AUXDELETE bit of flags indicates that is one of several deletes
8910** associated with a single table entry and its indexes. Only one of those
8911** deletes is considered the "primary" delete. The primary delete occurs
8912** on a cursor that is not a BTREE_FORDELETE cursor. All but one delete
8913** operation on non-FORDELETE cursors is tagged with the AUXDELETE flag.
8914** The BTREE_AUXDELETE bit is a hint that is not used by this implementation,
drhe807bdb2016-01-21 17:06:33 +00008915** but which might be used by alternative storage engines.
drh3b7511c2001-05-26 13:15:44 +00008916*/
drhe807bdb2016-01-21 17:06:33 +00008917int sqlite3BtreeDelete(BtCursor *pCur, u8 flags){
drhd677b3d2007-08-20 22:48:41 +00008918 Btree *p = pCur->pBtree;
danielk19774dbaa892009-06-16 16:50:22 +00008919 BtShared *pBt = p->pBt;
8920 int rc; /* Return code */
8921 MemPage *pPage; /* Page to delete cell from */
8922 unsigned char *pCell; /* Pointer to cell to delete */
8923 int iCellIdx; /* Index of cell to delete */
8924 int iCellDepth; /* Depth of node containing pCell */
drh80159da2016-12-09 17:32:51 +00008925 CellInfo info; /* Size of the cell being deleted */
danf0ee1d32015-09-12 19:26:11 +00008926 int bSkipnext = 0; /* Leaf cursor in SKIPNEXT state */
drhe807bdb2016-01-21 17:06:33 +00008927 u8 bPreserve = flags & BTREE_SAVEPOSITION; /* Keep cursor valid */
drh8b2f49b2001-06-08 00:21:52 +00008928
dan7a2347e2016-01-07 16:43:54 +00008929 assert( cursorOwnsBtShared(pCur) );
drh64022502009-01-09 14:11:04 +00008930 assert( pBt->inTransaction==TRANS_WRITE );
drhc9166342012-01-05 23:32:06 +00008931 assert( (pBt->btsFlags & BTS_READ_ONLY)==0 );
drh036dbec2014-03-11 23:40:44 +00008932 assert( pCur->curFlags & BTCF_WriteFlag );
danielk197796d48e92009-06-29 06:00:37 +00008933 assert( hasSharedCacheTableLock(p, pCur->pgnoRoot, pCur->pKeyInfo!=0, 2) );
8934 assert( !hasReadConflicts(p, pCur->pgnoRoot) );
drhdef19e32016-01-27 16:26:25 +00008935 assert( (flags & ~(BTREE_SAVEPOSITION | BTREE_AUXDELETE))==0 );
danb560a712019-03-13 15:29:14 +00008936 if( pCur->eState==CURSOR_REQUIRESEEK ){
8937 rc = btreeRestoreCursorPosition(pCur);
8938 if( rc ) return rc;
8939 }
8940 assert( pCur->eState==CURSOR_VALID );
danielk1977da184232006-01-05 11:34:32 +00008941
danielk19774dbaa892009-06-16 16:50:22 +00008942 iCellDepth = pCur->iPage;
drh75e96b32017-04-01 00:20:06 +00008943 iCellIdx = pCur->ix;
drh352a35a2017-08-15 03:46:47 +00008944 pPage = pCur->pPage;
danielk19774dbaa892009-06-16 16:50:22 +00008945 pCell = findCell(pPage, iCellIdx);
drhb0ea9432019-02-09 21:06:40 +00008946 if( pPage->nFree<0 && btreeComputeFreeSpace(pPage) ) return SQLITE_CORRUPT;
danielk19774dbaa892009-06-16 16:50:22 +00008947
drhbfc7a8b2016-04-09 17:04:05 +00008948 /* If the bPreserve flag is set to true, then the cursor position must
8949 ** be preserved following this delete operation. If the current delete
8950 ** will cause a b-tree rebalance, then this is done by saving the cursor
8951 ** key and leaving the cursor in CURSOR_REQUIRESEEK state before
8952 ** returning.
8953 **
8954 ** Or, if the current delete will not cause a rebalance, then the cursor
8955 ** will be left in CURSOR_SKIPNEXT state pointing to the entry immediately
8956 ** before or after the deleted entry. In this case set bSkipnext to true. */
8957 if( bPreserve ){
8958 if( !pPage->leaf
8959 || (pPage->nFree+cellSizePtr(pPage,pCell)+2)>(int)(pBt->usableSize*2/3)
drh1641f112018-12-13 21:05:45 +00008960 || pPage->nCell==1 /* See dbfuzz001.test for a test case */
drhbfc7a8b2016-04-09 17:04:05 +00008961 ){
8962 /* A b-tree rebalance will be required after deleting this entry.
8963 ** Save the cursor key. */
8964 rc = saveCursorKey(pCur);
8965 if( rc ) return rc;
8966 }else{
8967 bSkipnext = 1;
8968 }
8969 }
8970
danielk19774dbaa892009-06-16 16:50:22 +00008971 /* If the page containing the entry to delete is not a leaf page, move
8972 ** the cursor to the largest entry in the tree that is smaller than
8973 ** the entry being deleted. This cell will replace the cell being deleted
8974 ** from the internal node. The 'previous' entry is used for this instead
8975 ** of the 'next' entry, as the previous entry is always a part of the
8976 ** sub-tree headed by the child page of the cell being deleted. This makes
8977 ** balancing the tree following the delete operation easier. */
8978 if( !pPage->leaf ){
drh2ab792e2017-05-30 18:34:07 +00008979 rc = sqlite3BtreePrevious(pCur, 0);
8980 assert( rc!=SQLITE_DONE );
drh4c301aa2009-07-15 17:25:45 +00008981 if( rc ) return rc;
danielk19774dbaa892009-06-16 16:50:22 +00008982 }
8983
8984 /* Save the positions of any other cursors open on this table before
danf0ee1d32015-09-12 19:26:11 +00008985 ** making any modifications. */
drh27fb7462015-06-30 02:47:36 +00008986 if( pCur->curFlags & BTCF_Multiple ){
8987 rc = saveAllCursors(pBt, pCur->pgnoRoot, pCur);
8988 if( rc ) return rc;
8989 }
drhd60f4f42012-03-23 14:23:52 +00008990
8991 /* If this is a delete operation to remove a row from a table b-tree,
8992 ** invalidate any incrblob cursors open on the row being deleted. */
8993 if( pCur->pKeyInfo==0 ){
drh9ca431a2017-03-29 18:03:50 +00008994 invalidateIncrblobCursors(p, pCur->pgnoRoot, pCur->info.nKey, 0);
drhd60f4f42012-03-23 14:23:52 +00008995 }
8996
danf0ee1d32015-09-12 19:26:11 +00008997 /* Make the page containing the entry to be deleted writable. Then free any
8998 ** overflow pages associated with the entry and finally remove the cell
8999 ** itself from within the page. */
drha4ec1d42009-07-11 13:13:11 +00009000 rc = sqlite3PagerWrite(pPage->pDbPage);
9001 if( rc ) return rc;
drh80159da2016-12-09 17:32:51 +00009002 rc = clearCell(pPage, pCell, &info);
9003 dropCell(pPage, iCellIdx, info.nSize, &rc);
drha4ec1d42009-07-11 13:13:11 +00009004 if( rc ) return rc;
danielk1977e6efa742004-11-10 11:55:10 +00009005
danielk19774dbaa892009-06-16 16:50:22 +00009006 /* If the cell deleted was not located on a leaf page, then the cursor
9007 ** is currently pointing to the largest entry in the sub-tree headed
9008 ** by the child-page of the cell that was just deleted from an internal
9009 ** node. The cell from the leaf node needs to be moved to the internal
9010 ** node to replace the deleted cell. */
drh4b70f112004-05-02 21:12:19 +00009011 if( !pPage->leaf ){
drh352a35a2017-08-15 03:46:47 +00009012 MemPage *pLeaf = pCur->pPage;
danielk19774dbaa892009-06-16 16:50:22 +00009013 int nCell;
drh352a35a2017-08-15 03:46:47 +00009014 Pgno n;
danielk19774dbaa892009-06-16 16:50:22 +00009015 unsigned char *pTmp;
danielk1977e6efa742004-11-10 11:55:10 +00009016
drhb0ea9432019-02-09 21:06:40 +00009017 if( pLeaf->nFree<0 ){
9018 rc = btreeComputeFreeSpace(pLeaf);
9019 if( rc ) return rc;
9020 }
drh352a35a2017-08-15 03:46:47 +00009021 if( iCellDepth<pCur->iPage-1 ){
9022 n = pCur->apPage[iCellDepth+1]->pgno;
9023 }else{
9024 n = pCur->pPage->pgno;
9025 }
danielk19774dbaa892009-06-16 16:50:22 +00009026 pCell = findCell(pLeaf, pLeaf->nCell-1);
drhb468ce12015-06-24 01:07:30 +00009027 if( pCell<&pLeaf->aData[4] ) return SQLITE_CORRUPT_BKPT;
drh25ada072015-06-19 15:07:14 +00009028 nCell = pLeaf->xCellSize(pLeaf, pCell);
drhfcd71b62011-04-05 22:08:24 +00009029 assert( MX_CELL_SIZE(pBt) >= nCell );
danielk19774dbaa892009-06-16 16:50:22 +00009030 pTmp = pBt->pTmpSpace;
drh3fbb0222014-09-24 19:47:27 +00009031 assert( pTmp!=0 );
drha4ec1d42009-07-11 13:13:11 +00009032 rc = sqlite3PagerWrite(pLeaf->pDbPage);
drhcb89f4a2016-05-21 11:23:26 +00009033 if( rc==SQLITE_OK ){
9034 insertCell(pPage, iCellIdx, pCell-4, nCell+4, pTmp, n, &rc);
9035 }
drh98add2e2009-07-20 17:11:49 +00009036 dropCell(pLeaf, pLeaf->nCell-1, nCell, &rc);
drha4ec1d42009-07-11 13:13:11 +00009037 if( rc ) return rc;
drh5e2f8b92001-05-28 00:41:15 +00009038 }
danielk19774dbaa892009-06-16 16:50:22 +00009039
9040 /* Balance the tree. If the entry deleted was located on a leaf page,
9041 ** then the cursor still points to that page. In this case the first
9042 ** call to balance() repairs the tree, and the if(...) condition is
9043 ** never true.
9044 **
9045 ** Otherwise, if the entry deleted was on an internal node page, then
9046 ** pCur is pointing to the leaf page from which a cell was removed to
9047 ** replace the cell deleted from the internal node. This is slightly
9048 ** tricky as the leaf node may be underfull, and the internal node may
9049 ** be either under or overfull. In this case run the balancing algorithm
9050 ** on the leaf node first. If the balance proceeds far enough up the
9051 ** tree that we can be sure that any problem in the internal node has
9052 ** been corrected, so be it. Otherwise, after balancing the leaf node,
9053 ** walk the cursor up the tree to the internal node and balance it as
9054 ** well. */
9055 rc = balance(pCur);
9056 if( rc==SQLITE_OK && pCur->iPage>iCellDepth ){
drh352a35a2017-08-15 03:46:47 +00009057 releasePageNotNull(pCur->pPage);
9058 pCur->iPage--;
danielk19774dbaa892009-06-16 16:50:22 +00009059 while( pCur->iPage>iCellDepth ){
9060 releasePage(pCur->apPage[pCur->iPage--]);
9061 }
drh352a35a2017-08-15 03:46:47 +00009062 pCur->pPage = pCur->apPage[pCur->iPage];
danielk19774dbaa892009-06-16 16:50:22 +00009063 rc = balance(pCur);
9064 }
9065
danielk19776b456a22005-03-21 04:04:02 +00009066 if( rc==SQLITE_OK ){
danf0ee1d32015-09-12 19:26:11 +00009067 if( bSkipnext ){
drha660caf2016-01-01 03:37:44 +00009068 assert( bPreserve && (pCur->iPage==iCellDepth || CORRUPT_DB) );
drh352a35a2017-08-15 03:46:47 +00009069 assert( pPage==pCur->pPage || CORRUPT_DB );
drh78ac1092015-09-20 22:57:47 +00009070 assert( (pPage->nCell>0 || CORRUPT_DB) && iCellIdx<=pPage->nCell );
danf0ee1d32015-09-12 19:26:11 +00009071 pCur->eState = CURSOR_SKIPNEXT;
9072 if( iCellIdx>=pPage->nCell ){
9073 pCur->skipNext = -1;
drh75e96b32017-04-01 00:20:06 +00009074 pCur->ix = pPage->nCell-1;
danf0ee1d32015-09-12 19:26:11 +00009075 }else{
9076 pCur->skipNext = 1;
9077 }
9078 }else{
9079 rc = moveToRoot(pCur);
9080 if( bPreserve ){
drh85ef6302017-08-02 15:50:09 +00009081 btreeReleaseAllCursorPages(pCur);
danf0ee1d32015-09-12 19:26:11 +00009082 pCur->eState = CURSOR_REQUIRESEEK;
9083 }
drh44548e72017-08-14 18:13:52 +00009084 if( rc==SQLITE_EMPTY ) rc = SQLITE_OK;
danf0ee1d32015-09-12 19:26:11 +00009085 }
danielk19776b456a22005-03-21 04:04:02 +00009086 }
drh5e2f8b92001-05-28 00:41:15 +00009087 return rc;
drh3b7511c2001-05-26 13:15:44 +00009088}
drh8b2f49b2001-06-08 00:21:52 +00009089
9090/*
drhc6b52df2002-01-04 03:09:29 +00009091** Create a new BTree table. Write into *piTable the page
9092** number for the root page of the new table.
9093**
drhab01f612004-05-22 02:55:23 +00009094** The type of type is determined by the flags parameter. Only the
9095** following values of flags are currently in use. Other values for
9096** flags might not work:
9097**
9098** BTREE_INTKEY|BTREE_LEAFDATA Used for SQL tables with rowid keys
9099** BTREE_ZERODATA Used for SQL indices
drh8b2f49b2001-06-08 00:21:52 +00009100*/
drhabc38152020-07-22 13:38:04 +00009101static int btreeCreateTable(Btree *p, Pgno *piTable, int createTabFlags){
danielk1977aef0bf62005-12-30 16:28:01 +00009102 BtShared *pBt = p->pBt;
drh8b2f49b2001-06-08 00:21:52 +00009103 MemPage *pRoot;
9104 Pgno pgnoRoot;
9105 int rc;
drhd4187c72010-08-30 22:15:45 +00009106 int ptfFlags; /* Page-type flage for the root page of new table */
drhd677b3d2007-08-20 22:48:41 +00009107
drh1fee73e2007-08-29 04:00:57 +00009108 assert( sqlite3BtreeHoldsMutex(p) );
drh64022502009-01-09 14:11:04 +00009109 assert( pBt->inTransaction==TRANS_WRITE );
drhc9166342012-01-05 23:32:06 +00009110 assert( (pBt->btsFlags & BTS_READ_ONLY)==0 );
danielk1977e6efa742004-11-10 11:55:10 +00009111
danielk1977003ba062004-11-04 02:57:33 +00009112#ifdef SQLITE_OMIT_AUTOVACUUM
drh4f0c5872007-03-26 22:05:01 +00009113 rc = allocateBtreePage(pBt, &pRoot, &pgnoRoot, 1, 0);
drhd677b3d2007-08-20 22:48:41 +00009114 if( rc ){
9115 return rc;
9116 }
danielk1977003ba062004-11-04 02:57:33 +00009117#else
danielk1977687566d2004-11-02 12:56:41 +00009118 if( pBt->autoVacuum ){
danielk1977003ba062004-11-04 02:57:33 +00009119 Pgno pgnoMove; /* Move a page here to make room for the root-page */
9120 MemPage *pPageMove; /* The page to move to. */
9121
danielk197720713f32007-05-03 11:43:33 +00009122 /* Creating a new table may probably require moving an existing database
9123 ** to make room for the new tables root page. In case this page turns
9124 ** out to be an overflow page, delete all overflow page-map caches
9125 ** held by open cursors.
9126 */
danielk197792d4d7a2007-05-04 12:05:56 +00009127 invalidateAllOverflowCache(pBt);
danielk197720713f32007-05-03 11:43:33 +00009128
danielk1977003ba062004-11-04 02:57:33 +00009129 /* Read the value of meta[3] from the database to determine where the
9130 ** root page of the new table should go. meta[3] is the largest root-page
9131 ** created so far, so the new root-page is (meta[3]+1).
9132 */
danielk1977602b4662009-07-02 07:47:33 +00009133 sqlite3BtreeGetMeta(p, BTREE_LARGEST_ROOT_PAGE, &pgnoRoot);
drh10248222020-07-28 20:32:12 +00009134 if( pgnoRoot>btreePagecount(pBt) ){
9135 return SQLITE_CORRUPT_BKPT;
9136 }
danielk1977003ba062004-11-04 02:57:33 +00009137 pgnoRoot++;
9138
danielk1977599fcba2004-11-08 07:13:13 +00009139 /* The new root-page may not be allocated on a pointer-map page, or the
9140 ** PENDING_BYTE page.
9141 */
drh72190432008-01-31 14:54:43 +00009142 while( pgnoRoot==PTRMAP_PAGENO(pBt, pgnoRoot) ||
danielk1977599fcba2004-11-08 07:13:13 +00009143 pgnoRoot==PENDING_BYTE_PAGE(pBt) ){
danielk1977003ba062004-11-04 02:57:33 +00009144 pgnoRoot++;
9145 }
drh48bf2d72020-07-30 17:14:55 +00009146 assert( pgnoRoot>=3 );
danielk1977003ba062004-11-04 02:57:33 +00009147
9148 /* Allocate a page. The page that currently resides at pgnoRoot will
9149 ** be moved to the allocated page (unless the allocated page happens
9150 ** to reside at pgnoRoot).
9151 */
dan51f0b6d2013-02-22 20:16:34 +00009152 rc = allocateBtreePage(pBt, &pPageMove, &pgnoMove, pgnoRoot, BTALLOC_EXACT);
danielk1977003ba062004-11-04 02:57:33 +00009153 if( rc!=SQLITE_OK ){
danielk1977687566d2004-11-02 12:56:41 +00009154 return rc;
9155 }
danielk1977003ba062004-11-04 02:57:33 +00009156
9157 if( pgnoMove!=pgnoRoot ){
danielk1977f35843b2007-04-07 15:03:17 +00009158 /* pgnoRoot is the page that will be used for the root-page of
9159 ** the new table (assuming an error did not occur). But we were
9160 ** allocated pgnoMove. If required (i.e. if it was not allocated
9161 ** by extending the file), the current page at position pgnoMove
9162 ** is already journaled.
9163 */
drheeb844a2009-08-08 18:01:07 +00009164 u8 eType = 0;
9165 Pgno iPtrPage = 0;
danielk1977003ba062004-11-04 02:57:33 +00009166
danf7679ad2013-04-03 11:38:36 +00009167 /* Save the positions of any open cursors. This is required in
9168 ** case they are holding a reference to an xFetch reference
9169 ** corresponding to page pgnoRoot. */
9170 rc = saveAllCursors(pBt, 0, 0);
danielk1977003ba062004-11-04 02:57:33 +00009171 releasePage(pPageMove);
danf7679ad2013-04-03 11:38:36 +00009172 if( rc!=SQLITE_OK ){
9173 return rc;
9174 }
danielk1977f35843b2007-04-07 15:03:17 +00009175
9176 /* Move the page currently at pgnoRoot to pgnoMove. */
drhb00fc3b2013-08-21 23:42:32 +00009177 rc = btreeGetPage(pBt, pgnoRoot, &pRoot, 0);
danielk1977003ba062004-11-04 02:57:33 +00009178 if( rc!=SQLITE_OK ){
9179 return rc;
9180 }
9181 rc = ptrmapGet(pBt, pgnoRoot, &eType, &iPtrPage);
drh27731d72009-06-22 12:05:10 +00009182 if( eType==PTRMAP_ROOTPAGE || eType==PTRMAP_FREEPAGE ){
9183 rc = SQLITE_CORRUPT_BKPT;
9184 }
9185 if( rc!=SQLITE_OK ){
danielk1977003ba062004-11-04 02:57:33 +00009186 releasePage(pRoot);
9187 return rc;
9188 }
drhccae6022005-02-26 17:31:26 +00009189 assert( eType!=PTRMAP_ROOTPAGE );
9190 assert( eType!=PTRMAP_FREEPAGE );
danielk19774c999992008-07-16 18:17:55 +00009191 rc = relocatePage(pBt, pRoot, eType, iPtrPage, pgnoMove, 0);
danielk1977003ba062004-11-04 02:57:33 +00009192 releasePage(pRoot);
danielk1977f35843b2007-04-07 15:03:17 +00009193
9194 /* Obtain the page at pgnoRoot */
danielk1977003ba062004-11-04 02:57:33 +00009195 if( rc!=SQLITE_OK ){
9196 return rc;
9197 }
drhb00fc3b2013-08-21 23:42:32 +00009198 rc = btreeGetPage(pBt, pgnoRoot, &pRoot, 0);
danielk1977003ba062004-11-04 02:57:33 +00009199 if( rc!=SQLITE_OK ){
9200 return rc;
9201 }
danielk19773b8a05f2007-03-19 17:44:26 +00009202 rc = sqlite3PagerWrite(pRoot->pDbPage);
danielk1977003ba062004-11-04 02:57:33 +00009203 if( rc!=SQLITE_OK ){
9204 releasePage(pRoot);
9205 return rc;
9206 }
9207 }else{
9208 pRoot = pPageMove;
9209 }
9210
danielk197742741be2005-01-08 12:42:39 +00009211 /* Update the pointer-map and meta-data with the new root-page number. */
drh98add2e2009-07-20 17:11:49 +00009212 ptrmapPut(pBt, pgnoRoot, PTRMAP_ROOTPAGE, 0, &rc);
danielk1977003ba062004-11-04 02:57:33 +00009213 if( rc ){
9214 releasePage(pRoot);
9215 return rc;
9216 }
drhbf592832010-03-30 15:51:12 +00009217
9218 /* When the new root page was allocated, page 1 was made writable in
9219 ** order either to increase the database filesize, or to decrement the
9220 ** freelist count. Hence, the sqlite3BtreeUpdateMeta() call cannot fail.
9221 */
9222 assert( sqlite3PagerIswriteable(pBt->pPage1->pDbPage) );
danielk1977aef0bf62005-12-30 16:28:01 +00009223 rc = sqlite3BtreeUpdateMeta(p, 4, pgnoRoot);
drhbf592832010-03-30 15:51:12 +00009224 if( NEVER(rc) ){
danielk1977003ba062004-11-04 02:57:33 +00009225 releasePage(pRoot);
9226 return rc;
9227 }
danielk197742741be2005-01-08 12:42:39 +00009228
danielk1977003ba062004-11-04 02:57:33 +00009229 }else{
drh4f0c5872007-03-26 22:05:01 +00009230 rc = allocateBtreePage(pBt, &pRoot, &pgnoRoot, 1, 0);
danielk1977003ba062004-11-04 02:57:33 +00009231 if( rc ) return rc;
danielk1977687566d2004-11-02 12:56:41 +00009232 }
9233#endif
danielk19773b8a05f2007-03-19 17:44:26 +00009234 assert( sqlite3PagerIswriteable(pRoot->pDbPage) );
drhd4187c72010-08-30 22:15:45 +00009235 if( createTabFlags & BTREE_INTKEY ){
9236 ptfFlags = PTF_INTKEY | PTF_LEAFDATA | PTF_LEAF;
9237 }else{
9238 ptfFlags = PTF_ZERODATA | PTF_LEAF;
9239 }
9240 zeroPage(pRoot, ptfFlags);
danielk19773b8a05f2007-03-19 17:44:26 +00009241 sqlite3PagerUnref(pRoot->pDbPage);
drhd4187c72010-08-30 22:15:45 +00009242 assert( (pBt->openFlags & BTREE_SINGLE)==0 || pgnoRoot==2 );
drhabc38152020-07-22 13:38:04 +00009243 *piTable = pgnoRoot;
drh8b2f49b2001-06-08 00:21:52 +00009244 return SQLITE_OK;
9245}
drhabc38152020-07-22 13:38:04 +00009246int sqlite3BtreeCreateTable(Btree *p, Pgno *piTable, int flags){
drhd677b3d2007-08-20 22:48:41 +00009247 int rc;
9248 sqlite3BtreeEnter(p);
9249 rc = btreeCreateTable(p, piTable, flags);
9250 sqlite3BtreeLeave(p);
9251 return rc;
9252}
drh8b2f49b2001-06-08 00:21:52 +00009253
9254/*
9255** Erase the given database page and all its children. Return
9256** the page to the freelist.
9257*/
drh4b70f112004-05-02 21:12:19 +00009258static int clearDatabasePage(
danielk1977aef0bf62005-12-30 16:28:01 +00009259 BtShared *pBt, /* The BTree that contains the table */
drh7ab641f2009-11-24 02:37:02 +00009260 Pgno pgno, /* Page number to clear */
9261 int freePageFlag, /* Deallocate page if true */
9262 int *pnChange /* Add number of Cells freed to this counter */
drh4b70f112004-05-02 21:12:19 +00009263){
danielk1977146ba992009-07-22 14:08:13 +00009264 MemPage *pPage;
drh8b2f49b2001-06-08 00:21:52 +00009265 int rc;
drh4b70f112004-05-02 21:12:19 +00009266 unsigned char *pCell;
9267 int i;
dan8ce71842014-01-14 20:14:09 +00009268 int hdr;
drh80159da2016-12-09 17:32:51 +00009269 CellInfo info;
drh8b2f49b2001-06-08 00:21:52 +00009270
drh1fee73e2007-08-29 04:00:57 +00009271 assert( sqlite3_mutex_held(pBt->mutex) );
drhb1299152010-03-30 22:58:33 +00009272 if( pgno>btreePagecount(pBt) ){
drh49285702005-09-17 15:20:26 +00009273 return SQLITE_CORRUPT_BKPT;
danielk1977a1cb1832005-02-12 08:59:55 +00009274 }
drh28f58dd2015-06-27 19:45:03 +00009275 rc = getAndInitPage(pBt, pgno, &pPage, 0, 0);
danielk1977146ba992009-07-22 14:08:13 +00009276 if( rc ) return rc;
drhccf46d02015-04-01 13:21:33 +00009277 if( pPage->bBusy ){
9278 rc = SQLITE_CORRUPT_BKPT;
9279 goto cleardatabasepage_out;
9280 }
9281 pPage->bBusy = 1;
dan8ce71842014-01-14 20:14:09 +00009282 hdr = pPage->hdrOffset;
drh4b70f112004-05-02 21:12:19 +00009283 for(i=0; i<pPage->nCell; i++){
danielk19771cc5ed82007-05-16 17:28:43 +00009284 pCell = findCell(pPage, i);
drh4b70f112004-05-02 21:12:19 +00009285 if( !pPage->leaf ){
danielk197762c14b32008-11-19 09:05:26 +00009286 rc = clearDatabasePage(pBt, get4byte(pCell), 1, pnChange);
danielk19776b456a22005-03-21 04:04:02 +00009287 if( rc ) goto cleardatabasepage_out;
drh8b2f49b2001-06-08 00:21:52 +00009288 }
drh80159da2016-12-09 17:32:51 +00009289 rc = clearCell(pPage, pCell, &info);
danielk19776b456a22005-03-21 04:04:02 +00009290 if( rc ) goto cleardatabasepage_out;
drh8b2f49b2001-06-08 00:21:52 +00009291 }
drha34b6762004-05-07 13:30:42 +00009292 if( !pPage->leaf ){
dan8ce71842014-01-14 20:14:09 +00009293 rc = clearDatabasePage(pBt, get4byte(&pPage->aData[hdr+8]), 1, pnChange);
danielk19776b456a22005-03-21 04:04:02 +00009294 if( rc ) goto cleardatabasepage_out;
danielk1977c7af4842008-10-27 13:59:33 +00009295 }else if( pnChange ){
drhafe028a2015-05-22 13:09:50 +00009296 assert( pPage->intKey || CORRUPT_DB );
9297 testcase( !pPage->intKey );
danielk1977c7af4842008-10-27 13:59:33 +00009298 *pnChange += pPage->nCell;
drh2aa679f2001-06-25 02:11:07 +00009299 }
9300 if( freePageFlag ){
drhc314dc72009-07-21 11:52:34 +00009301 freePage(pPage, &rc);
danielk19773b8a05f2007-03-19 17:44:26 +00009302 }else if( (rc = sqlite3PagerWrite(pPage->pDbPage))==0 ){
dan8ce71842014-01-14 20:14:09 +00009303 zeroPage(pPage, pPage->aData[hdr] | PTF_LEAF);
drh2aa679f2001-06-25 02:11:07 +00009304 }
danielk19776b456a22005-03-21 04:04:02 +00009305
9306cleardatabasepage_out:
drhccf46d02015-04-01 13:21:33 +00009307 pPage->bBusy = 0;
drh4b70f112004-05-02 21:12:19 +00009308 releasePage(pPage);
drh2aa679f2001-06-25 02:11:07 +00009309 return rc;
drh8b2f49b2001-06-08 00:21:52 +00009310}
9311
9312/*
drhab01f612004-05-22 02:55:23 +00009313** Delete all information from a single table in the database. iTable is
9314** the page number of the root of the table. After this routine returns,
9315** the root page is empty, but still exists.
9316**
9317** This routine will fail with SQLITE_LOCKED if there are any open
9318** read cursors on the table. Open write cursors are moved to the
9319** root of the table.
danielk1977c7af4842008-10-27 13:59:33 +00009320**
9321** If pnChange is not NULL, then table iTable must be an intkey table. The
9322** integer value pointed to by pnChange is incremented by the number of
9323** entries in the table.
drh8b2f49b2001-06-08 00:21:52 +00009324*/
danielk1977c7af4842008-10-27 13:59:33 +00009325int sqlite3BtreeClearTable(Btree *p, int iTable, int *pnChange){
drh8b2f49b2001-06-08 00:21:52 +00009326 int rc;
danielk1977aef0bf62005-12-30 16:28:01 +00009327 BtShared *pBt = p->pBt;
drhd677b3d2007-08-20 22:48:41 +00009328 sqlite3BtreeEnter(p);
drh64022502009-01-09 14:11:04 +00009329 assert( p->inTrans==TRANS_WRITE );
danielk197796d48e92009-06-29 06:00:37 +00009330
drhc046e3e2009-07-15 11:26:44 +00009331 rc = saveAllCursors(pBt, (Pgno)iTable, 0);
drhd60f4f42012-03-23 14:23:52 +00009332
drhc046e3e2009-07-15 11:26:44 +00009333 if( SQLITE_OK==rc ){
drhd60f4f42012-03-23 14:23:52 +00009334 /* Invalidate all incrblob cursors open on table iTable (assuming iTable
9335 ** is the root of a table b-tree - if it is not, the following call is
9336 ** a no-op). */
drh9ca431a2017-03-29 18:03:50 +00009337 invalidateIncrblobCursors(p, (Pgno)iTable, 0, 1);
danielk197762c14b32008-11-19 09:05:26 +00009338 rc = clearDatabasePage(pBt, (Pgno)iTable, 0, pnChange);
drh8b2f49b2001-06-08 00:21:52 +00009339 }
drhd677b3d2007-08-20 22:48:41 +00009340 sqlite3BtreeLeave(p);
9341 return rc;
drh8b2f49b2001-06-08 00:21:52 +00009342}
9343
9344/*
drh079a3072014-03-19 14:10:55 +00009345** Delete all information from the single table that pCur is open on.
9346**
9347** This routine only work for pCur on an ephemeral table.
9348*/
9349int sqlite3BtreeClearTableOfCursor(BtCursor *pCur){
9350 return sqlite3BtreeClearTable(pCur->pBtree, pCur->pgnoRoot, 0);
9351}
9352
9353/*
drh8b2f49b2001-06-08 00:21:52 +00009354** Erase all information in a table and add the root of the table to
9355** the freelist. Except, the root of the principle table (the one on
drhab01f612004-05-22 02:55:23 +00009356** page 1) is never added to the freelist.
9357**
9358** This routine will fail with SQLITE_LOCKED if there are any open
9359** cursors on the table.
drh205f48e2004-11-05 00:43:11 +00009360**
9361** If AUTOVACUUM is enabled and the page at iTable is not the last
9362** root page in the database file, then the last root page
9363** in the database file is moved into the slot formerly occupied by
9364** iTable and that last slot formerly occupied by the last root page
9365** is added to the freelist instead of iTable. In this say, all
9366** root pages are kept at the beginning of the database file, which
9367** is necessary for AUTOVACUUM to work right. *piMoved is set to the
9368** page number that used to be the last root page in the file before
9369** the move. If no page gets moved, *piMoved is set to 0.
9370** The last root page is recorded in meta[3] and the value of
9371** meta[3] is updated by this procedure.
drh8b2f49b2001-06-08 00:21:52 +00009372*/
danielk197789d40042008-11-17 14:20:56 +00009373static int btreeDropTable(Btree *p, Pgno iTable, int *piMoved){
drh8b2f49b2001-06-08 00:21:52 +00009374 int rc;
danielk1977a0bf2652004-11-04 14:30:04 +00009375 MemPage *pPage = 0;
danielk1977aef0bf62005-12-30 16:28:01 +00009376 BtShared *pBt = p->pBt;
danielk1977a0bf2652004-11-04 14:30:04 +00009377
drh1fee73e2007-08-29 04:00:57 +00009378 assert( sqlite3BtreeHoldsMutex(p) );
drh64022502009-01-09 14:11:04 +00009379 assert( p->inTrans==TRANS_WRITE );
drh65f38d92016-11-22 01:26:42 +00009380 assert( iTable>=2 );
drh9a518842019-03-08 01:52:30 +00009381 if( iTable>btreePagecount(pBt) ){
9382 return SQLITE_CORRUPT_BKPT;
9383 }
drh055f2982016-01-15 15:06:41 +00009384
drhb00fc3b2013-08-21 23:42:32 +00009385 rc = btreeGetPage(pBt, (Pgno)iTable, &pPage, 0);
drh2aa679f2001-06-25 02:11:07 +00009386 if( rc ) return rc;
danielk1977c7af4842008-10-27 13:59:33 +00009387 rc = sqlite3BtreeClearTable(p, iTable, 0);
danielk19776b456a22005-03-21 04:04:02 +00009388 if( rc ){
9389 releasePage(pPage);
9390 return rc;
9391 }
danielk1977a0bf2652004-11-04 14:30:04 +00009392
drh205f48e2004-11-05 00:43:11 +00009393 *piMoved = 0;
danielk1977a0bf2652004-11-04 14:30:04 +00009394
danielk1977a0bf2652004-11-04 14:30:04 +00009395#ifdef SQLITE_OMIT_AUTOVACUUM
drh055f2982016-01-15 15:06:41 +00009396 freePage(pPage, &rc);
9397 releasePage(pPage);
danielk1977a0bf2652004-11-04 14:30:04 +00009398#else
drh055f2982016-01-15 15:06:41 +00009399 if( pBt->autoVacuum ){
9400 Pgno maxRootPgno;
9401 sqlite3BtreeGetMeta(p, BTREE_LARGEST_ROOT_PAGE, &maxRootPgno);
danielk1977a0bf2652004-11-04 14:30:04 +00009402
drh055f2982016-01-15 15:06:41 +00009403 if( iTable==maxRootPgno ){
9404 /* If the table being dropped is the table with the largest root-page
9405 ** number in the database, put the root page on the free list.
danielk1977599fcba2004-11-08 07:13:13 +00009406 */
drhc314dc72009-07-21 11:52:34 +00009407 freePage(pPage, &rc);
danielk1977a0bf2652004-11-04 14:30:04 +00009408 releasePage(pPage);
drh055f2982016-01-15 15:06:41 +00009409 if( rc!=SQLITE_OK ){
9410 return rc;
9411 }
9412 }else{
9413 /* The table being dropped does not have the largest root-page
9414 ** number in the database. So move the page that does into the
9415 ** gap left by the deleted root-page.
9416 */
9417 MemPage *pMove;
9418 releasePage(pPage);
9419 rc = btreeGetPage(pBt, maxRootPgno, &pMove, 0);
9420 if( rc!=SQLITE_OK ){
9421 return rc;
9422 }
9423 rc = relocatePage(pBt, pMove, PTRMAP_ROOTPAGE, 0, iTable, 0);
9424 releasePage(pMove);
9425 if( rc!=SQLITE_OK ){
9426 return rc;
9427 }
9428 pMove = 0;
9429 rc = btreeGetPage(pBt, maxRootPgno, &pMove, 0);
9430 freePage(pMove, &rc);
9431 releasePage(pMove);
9432 if( rc!=SQLITE_OK ){
9433 return rc;
9434 }
9435 *piMoved = maxRootPgno;
danielk1977a0bf2652004-11-04 14:30:04 +00009436 }
drh055f2982016-01-15 15:06:41 +00009437
9438 /* Set the new 'max-root-page' value in the database header. This
9439 ** is the old value less one, less one more if that happens to
9440 ** be a root-page number, less one again if that is the
9441 ** PENDING_BYTE_PAGE.
drhc046e3e2009-07-15 11:26:44 +00009442 */
drh055f2982016-01-15 15:06:41 +00009443 maxRootPgno--;
9444 while( maxRootPgno==PENDING_BYTE_PAGE(pBt)
9445 || PTRMAP_ISPAGE(pBt, maxRootPgno) ){
9446 maxRootPgno--;
9447 }
9448 assert( maxRootPgno!=PENDING_BYTE_PAGE(pBt) );
9449
9450 rc = sqlite3BtreeUpdateMeta(p, 4, maxRootPgno);
9451 }else{
9452 freePage(pPage, &rc);
danielk1977a0bf2652004-11-04 14:30:04 +00009453 releasePage(pPage);
drh8b2f49b2001-06-08 00:21:52 +00009454 }
drh055f2982016-01-15 15:06:41 +00009455#endif
drh8b2f49b2001-06-08 00:21:52 +00009456 return rc;
9457}
drhd677b3d2007-08-20 22:48:41 +00009458int sqlite3BtreeDropTable(Btree *p, int iTable, int *piMoved){
9459 int rc;
9460 sqlite3BtreeEnter(p);
dan7733a4d2011-09-02 18:03:16 +00009461 rc = btreeDropTable(p, iTable, piMoved);
drhd677b3d2007-08-20 22:48:41 +00009462 sqlite3BtreeLeave(p);
9463 return rc;
9464}
drh8b2f49b2001-06-08 00:21:52 +00009465
drh001bbcb2003-03-19 03:14:00 +00009466
drh8b2f49b2001-06-08 00:21:52 +00009467/*
danielk1977602b4662009-07-02 07:47:33 +00009468** This function may only be called if the b-tree connection already
9469** has a read or write transaction open on the database.
9470**
drh23e11ca2004-05-04 17:27:28 +00009471** Read the meta-information out of a database file. Meta[0]
9472** is the number of free pages currently in the database. Meta[1]
drha3b321d2004-05-11 09:31:31 +00009473** through meta[15] are available for use by higher layers. Meta[0]
9474** is read-only, the others are read/write.
9475**
9476** The schema layer numbers meta values differently. At the schema
9477** layer (and the SetCookie and ReadCookie opcodes) the number of
9478** free pages is not visible. So Cookie[0] is the same as Meta[1].
drh91618562014-12-19 19:28:02 +00009479**
9480** This routine treats Meta[BTREE_DATA_VERSION] as a special case. Instead
9481** of reading the value out of the header, it instead loads the "DataVersion"
9482** from the pager. The BTREE_DATA_VERSION value is not actually stored in the
9483** database file. It is a number computed by the pager. But its access
9484** pattern is the same as header meta values, and so it is convenient to
9485** read it from this routine.
drh8b2f49b2001-06-08 00:21:52 +00009486*/
danielk1977602b4662009-07-02 07:47:33 +00009487void sqlite3BtreeGetMeta(Btree *p, int idx, u32 *pMeta){
danielk1977aef0bf62005-12-30 16:28:01 +00009488 BtShared *pBt = p->pBt;
drh8b2f49b2001-06-08 00:21:52 +00009489
drhd677b3d2007-08-20 22:48:41 +00009490 sqlite3BtreeEnter(p);
danielk1977602b4662009-07-02 07:47:33 +00009491 assert( p->inTrans>TRANS_NONE );
drh346a70c2020-06-15 20:27:35 +00009492 assert( SQLITE_OK==querySharedCacheTableLock(p, SCHEMA_ROOT, READ_LOCK) );
danielk1977602b4662009-07-02 07:47:33 +00009493 assert( pBt->pPage1 );
drh23e11ca2004-05-04 17:27:28 +00009494 assert( idx>=0 && idx<=15 );
danielk1977ea897302008-09-19 15:10:58 +00009495
drh91618562014-12-19 19:28:02 +00009496 if( idx==BTREE_DATA_VERSION ){
drh3da9c042014-12-22 18:41:21 +00009497 *pMeta = sqlite3PagerDataVersion(pBt->pPager) + p->iDataVersion;
drh91618562014-12-19 19:28:02 +00009498 }else{
9499 *pMeta = get4byte(&pBt->pPage1->aData[36 + idx*4]);
9500 }
drhae157872004-08-14 19:20:09 +00009501
danielk1977602b4662009-07-02 07:47:33 +00009502 /* If auto-vacuum is disabled in this build and this is an auto-vacuum
9503 ** database, mark the database as read-only. */
danielk1977003ba062004-11-04 02:57:33 +00009504#ifdef SQLITE_OMIT_AUTOVACUUM
drhc9166342012-01-05 23:32:06 +00009505 if( idx==BTREE_LARGEST_ROOT_PAGE && *pMeta>0 ){
9506 pBt->btsFlags |= BTS_READ_ONLY;
9507 }
danielk1977003ba062004-11-04 02:57:33 +00009508#endif
drhae157872004-08-14 19:20:09 +00009509
drhd677b3d2007-08-20 22:48:41 +00009510 sqlite3BtreeLeave(p);
drh8b2f49b2001-06-08 00:21:52 +00009511}
9512
9513/*
drh23e11ca2004-05-04 17:27:28 +00009514** Write meta-information back into the database. Meta[0] is
9515** read-only and may not be written.
drh8b2f49b2001-06-08 00:21:52 +00009516*/
danielk1977aef0bf62005-12-30 16:28:01 +00009517int sqlite3BtreeUpdateMeta(Btree *p, int idx, u32 iMeta){
9518 BtShared *pBt = p->pBt;
drh4b70f112004-05-02 21:12:19 +00009519 unsigned char *pP1;
drha34b6762004-05-07 13:30:42 +00009520 int rc;
drh23e11ca2004-05-04 17:27:28 +00009521 assert( idx>=1 && idx<=15 );
drhd677b3d2007-08-20 22:48:41 +00009522 sqlite3BtreeEnter(p);
drh64022502009-01-09 14:11:04 +00009523 assert( p->inTrans==TRANS_WRITE );
9524 assert( pBt->pPage1!=0 );
9525 pP1 = pBt->pPage1->aData;
9526 rc = sqlite3PagerWrite(pBt->pPage1->pDbPage);
9527 if( rc==SQLITE_OK ){
9528 put4byte(&pP1[36 + idx*4], iMeta);
danielk19774152e672007-09-12 17:01:45 +00009529#ifndef SQLITE_OMIT_AUTOVACUUM
danielk19770d19f7a2009-06-03 11:25:07 +00009530 if( idx==BTREE_INCR_VACUUM ){
drh64022502009-01-09 14:11:04 +00009531 assert( pBt->autoVacuum || iMeta==0 );
9532 assert( iMeta==0 || iMeta==1 );
9533 pBt->incrVacuum = (u8)iMeta;
drhd677b3d2007-08-20 22:48:41 +00009534 }
drh64022502009-01-09 14:11:04 +00009535#endif
drh5df72a52002-06-06 23:16:05 +00009536 }
drhd677b3d2007-08-20 22:48:41 +00009537 sqlite3BtreeLeave(p);
9538 return rc;
drh8b2f49b2001-06-08 00:21:52 +00009539}
drh8c42ca92001-06-22 19:15:00 +00009540
danielk1977a5533162009-02-24 10:01:51 +00009541/*
9542** The first argument, pCur, is a cursor opened on some b-tree. Count the
9543** number of entries in the b-tree and write the result to *pnEntry.
9544**
9545** SQLITE_OK is returned if the operation is successfully executed.
9546** Otherwise, if an error is encountered (i.e. an IO error or database
9547** corruption) an SQLite error code is returned.
9548*/
drh21f6daa2019-10-11 14:21:48 +00009549int sqlite3BtreeCount(sqlite3 *db, BtCursor *pCur, i64 *pnEntry){
danielk1977a5533162009-02-24 10:01:51 +00009550 i64 nEntry = 0; /* Value to return in *pnEntry */
9551 int rc; /* Return code */
dana205a482011-08-27 18:48:57 +00009552
drh44548e72017-08-14 18:13:52 +00009553 rc = moveToRoot(pCur);
9554 if( rc==SQLITE_EMPTY ){
dana205a482011-08-27 18:48:57 +00009555 *pnEntry = 0;
9556 return SQLITE_OK;
9557 }
danielk1977a5533162009-02-24 10:01:51 +00009558
9559 /* Unless an error occurs, the following loop runs one iteration for each
9560 ** page in the B-Tree structure (not including overflow pages).
9561 */
dan892edb62020-03-30 13:35:05 +00009562 while( rc==SQLITE_OK && !AtomicLoad(&db->u1.isInterrupted) ){
danielk1977a5533162009-02-24 10:01:51 +00009563 int iIdx; /* Index of child node in parent */
9564 MemPage *pPage; /* Current page of the b-tree */
9565
9566 /* If this is a leaf page or the tree is not an int-key tree, then
9567 ** this page contains countable entries. Increment the entry counter
9568 ** accordingly.
9569 */
drh352a35a2017-08-15 03:46:47 +00009570 pPage = pCur->pPage;
danielk1977a5533162009-02-24 10:01:51 +00009571 if( pPage->leaf || !pPage->intKey ){
9572 nEntry += pPage->nCell;
9573 }
9574
9575 /* pPage is a leaf node. This loop navigates the cursor so that it
9576 ** points to the first interior cell that it points to the parent of
9577 ** the next page in the tree that has not yet been visited. The
9578 ** pCur->aiIdx[pCur->iPage] value is set to the index of the parent cell
9579 ** of the page, or to the number of cells in the page if the next page
9580 ** to visit is the right-child of its parent.
9581 **
9582 ** If all pages in the tree have been visited, return SQLITE_OK to the
9583 ** caller.
9584 */
9585 if( pPage->leaf ){
9586 do {
9587 if( pCur->iPage==0 ){
9588 /* All pages of the b-tree have been visited. Return successfully. */
9589 *pnEntry = nEntry;
drh7efa4262014-12-16 00:08:31 +00009590 return moveToRoot(pCur);
danielk1977a5533162009-02-24 10:01:51 +00009591 }
danielk197730548662009-07-09 05:07:37 +00009592 moveToParent(pCur);
drh352a35a2017-08-15 03:46:47 +00009593 }while ( pCur->ix>=pCur->pPage->nCell );
danielk1977a5533162009-02-24 10:01:51 +00009594
drh75e96b32017-04-01 00:20:06 +00009595 pCur->ix++;
drh352a35a2017-08-15 03:46:47 +00009596 pPage = pCur->pPage;
danielk1977a5533162009-02-24 10:01:51 +00009597 }
9598
9599 /* Descend to the child node of the cell that the cursor currently
9600 ** points at. This is the right-child if (iIdx==pPage->nCell).
9601 */
drh75e96b32017-04-01 00:20:06 +00009602 iIdx = pCur->ix;
danielk1977a5533162009-02-24 10:01:51 +00009603 if( iIdx==pPage->nCell ){
9604 rc = moveToChild(pCur, get4byte(&pPage->aData[pPage->hdrOffset+8]));
9605 }else{
9606 rc = moveToChild(pCur, get4byte(findCell(pPage, iIdx)));
9607 }
9608 }
9609
shanebe217792009-03-05 04:20:31 +00009610 /* An error has occurred. Return an error code. */
danielk1977a5533162009-02-24 10:01:51 +00009611 return rc;
9612}
drhdd793422001-06-28 01:54:48 +00009613
drhdd793422001-06-28 01:54:48 +00009614/*
drh5eddca62001-06-30 21:53:53 +00009615** Return the pager associated with a BTree. This routine is used for
9616** testing and debugging only.
drhdd793422001-06-28 01:54:48 +00009617*/
danielk1977aef0bf62005-12-30 16:28:01 +00009618Pager *sqlite3BtreePager(Btree *p){
9619 return p->pBt->pPager;
drhdd793422001-06-28 01:54:48 +00009620}
drh5eddca62001-06-30 21:53:53 +00009621
drhb7f91642004-10-31 02:22:47 +00009622#ifndef SQLITE_OMIT_INTEGRITY_CHECK
drh5eddca62001-06-30 21:53:53 +00009623/*
9624** Append a message to the error message string.
9625*/
drh2e38c322004-09-03 18:38:44 +00009626static void checkAppendMsg(
9627 IntegrityCk *pCheck,
drh2e38c322004-09-03 18:38:44 +00009628 const char *zFormat,
9629 ...
9630){
9631 va_list ap;
drh1dcdbc02007-01-27 02:24:54 +00009632 if( !pCheck->mxErr ) return;
9633 pCheck->mxErr--;
9634 pCheck->nErr++;
drh2e38c322004-09-03 18:38:44 +00009635 va_start(ap, zFormat);
drhf089aa42008-07-08 19:34:06 +00009636 if( pCheck->errMsg.nChar ){
drh0cdbe1a2018-05-09 13:46:26 +00009637 sqlite3_str_append(&pCheck->errMsg, "\n", 1);
drh5eddca62001-06-30 21:53:53 +00009638 }
drh867db832014-09-26 02:41:05 +00009639 if( pCheck->zPfx ){
drh0cdbe1a2018-05-09 13:46:26 +00009640 sqlite3_str_appendf(&pCheck->errMsg, pCheck->zPfx, pCheck->v1, pCheck->v2);
drhf089aa42008-07-08 19:34:06 +00009641 }
drh0cdbe1a2018-05-09 13:46:26 +00009642 sqlite3_str_vappendf(&pCheck->errMsg, zFormat, ap);
drhf089aa42008-07-08 19:34:06 +00009643 va_end(ap);
drh0cdbe1a2018-05-09 13:46:26 +00009644 if( pCheck->errMsg.accError==SQLITE_NOMEM ){
drh8ddf6352020-06-29 18:30:49 +00009645 pCheck->bOomFault = 1;
drhc890fec2008-08-01 20:10:08 +00009646 }
drh5eddca62001-06-30 21:53:53 +00009647}
drhb7f91642004-10-31 02:22:47 +00009648#endif /* SQLITE_OMIT_INTEGRITY_CHECK */
drh5eddca62001-06-30 21:53:53 +00009649
drhb7f91642004-10-31 02:22:47 +00009650#ifndef SQLITE_OMIT_INTEGRITY_CHECK
dan1235bb12012-04-03 17:43:28 +00009651
9652/*
9653** Return non-zero if the bit in the IntegrityCk.aPgRef[] array that
9654** corresponds to page iPg is already set.
9655*/
9656static int getPageReferenced(IntegrityCk *pCheck, Pgno iPg){
9657 assert( iPg<=pCheck->nPage && sizeof(pCheck->aPgRef[0])==1 );
9658 return (pCheck->aPgRef[iPg/8] & (1 << (iPg & 0x07)));
9659}
9660
9661/*
9662** Set the bit in the IntegrityCk.aPgRef[] array that corresponds to page iPg.
9663*/
9664static void setPageReferenced(IntegrityCk *pCheck, Pgno iPg){
9665 assert( iPg<=pCheck->nPage && sizeof(pCheck->aPgRef[0])==1 );
9666 pCheck->aPgRef[iPg/8] |= (1 << (iPg & 0x07));
9667}
9668
9669
drh5eddca62001-06-30 21:53:53 +00009670/*
9671** Add 1 to the reference count for page iPage. If this is the second
9672** reference to the page, add an error message to pCheck->zErrMsg.
peter.d.reid60ec9142014-09-06 16:39:46 +00009673** Return 1 if there are 2 or more references to the page and 0 if
drh5eddca62001-06-30 21:53:53 +00009674** if this is the first reference to the page.
9675**
9676** Also check that the page number is in bounds.
9677*/
drh867db832014-09-26 02:41:05 +00009678static int checkRef(IntegrityCk *pCheck, Pgno iPage){
drh91d58662018-07-20 13:39:28 +00009679 if( iPage>pCheck->nPage || iPage==0 ){
drh867db832014-09-26 02:41:05 +00009680 checkAppendMsg(pCheck, "invalid page number %d", iPage);
drh5eddca62001-06-30 21:53:53 +00009681 return 1;
9682 }
dan1235bb12012-04-03 17:43:28 +00009683 if( getPageReferenced(pCheck, iPage) ){
drh867db832014-09-26 02:41:05 +00009684 checkAppendMsg(pCheck, "2nd reference to page %d", iPage);
drh5eddca62001-06-30 21:53:53 +00009685 return 1;
9686 }
dan892edb62020-03-30 13:35:05 +00009687 if( AtomicLoad(&pCheck->db->u1.isInterrupted) ) return 1;
dan1235bb12012-04-03 17:43:28 +00009688 setPageReferenced(pCheck, iPage);
9689 return 0;
drh5eddca62001-06-30 21:53:53 +00009690}
9691
danielk1977afcdd022004-10-31 16:25:42 +00009692#ifndef SQLITE_OMIT_AUTOVACUUM
9693/*
9694** Check that the entry in the pointer-map for page iChild maps to
9695** page iParent, pointer type ptrType. If not, append an error message
9696** to pCheck.
9697*/
9698static void checkPtrmap(
9699 IntegrityCk *pCheck, /* Integrity check context */
9700 Pgno iChild, /* Child page number */
9701 u8 eType, /* Expected pointer map type */
drh867db832014-09-26 02:41:05 +00009702 Pgno iParent /* Expected pointer map parent page number */
danielk1977afcdd022004-10-31 16:25:42 +00009703){
9704 int rc;
9705 u8 ePtrmapType;
9706 Pgno iPtrmapParent;
9707
9708 rc = ptrmapGet(pCheck->pBt, iChild, &ePtrmapType, &iPtrmapParent);
9709 if( rc!=SQLITE_OK ){
drh8ddf6352020-06-29 18:30:49 +00009710 if( rc==SQLITE_NOMEM || rc==SQLITE_IOERR_NOMEM ) pCheck->bOomFault = 1;
drh867db832014-09-26 02:41:05 +00009711 checkAppendMsg(pCheck, "Failed to read ptrmap key=%d", iChild);
danielk1977afcdd022004-10-31 16:25:42 +00009712 return;
9713 }
9714
9715 if( ePtrmapType!=eType || iPtrmapParent!=iParent ){
drh867db832014-09-26 02:41:05 +00009716 checkAppendMsg(pCheck,
danielk1977afcdd022004-10-31 16:25:42 +00009717 "Bad ptr map entry key=%d expected=(%d,%d) got=(%d,%d)",
9718 iChild, eType, iParent, ePtrmapType, iPtrmapParent);
9719 }
9720}
9721#endif
9722
drh5eddca62001-06-30 21:53:53 +00009723/*
9724** Check the integrity of the freelist or of an overflow page list.
9725** Verify that the number of pages on the list is N.
9726*/
drh30e58752002-03-02 20:41:57 +00009727static void checkList(
9728 IntegrityCk *pCheck, /* Integrity checking context */
9729 int isFreeList, /* True for a freelist. False for overflow page list */
drhabc38152020-07-22 13:38:04 +00009730 Pgno iPage, /* Page number for first page in the list */
drheaac9992019-02-26 16:17:06 +00009731 u32 N /* Expected number of pages in the list */
drh30e58752002-03-02 20:41:57 +00009732){
9733 int i;
drheaac9992019-02-26 16:17:06 +00009734 u32 expected = N;
drh91d58662018-07-20 13:39:28 +00009735 int nErrAtStart = pCheck->nErr;
9736 while( iPage!=0 && pCheck->mxErr ){
danielk19773b8a05f2007-03-19 17:44:26 +00009737 DbPage *pOvflPage;
9738 unsigned char *pOvflData;
drh867db832014-09-26 02:41:05 +00009739 if( checkRef(pCheck, iPage) ) break;
drh91d58662018-07-20 13:39:28 +00009740 N--;
drh9584f582015-11-04 20:22:37 +00009741 if( sqlite3PagerGet(pCheck->pPager, (Pgno)iPage, &pOvflPage, 0) ){
drh867db832014-09-26 02:41:05 +00009742 checkAppendMsg(pCheck, "failed to get page %d", iPage);
drh5eddca62001-06-30 21:53:53 +00009743 break;
9744 }
danielk19773b8a05f2007-03-19 17:44:26 +00009745 pOvflData = (unsigned char *)sqlite3PagerGetData(pOvflPage);
drh30e58752002-03-02 20:41:57 +00009746 if( isFreeList ){
drhae104742018-12-14 17:57:01 +00009747 u32 n = (u32)get4byte(&pOvflData[4]);
danielk1977687566d2004-11-02 12:56:41 +00009748#ifndef SQLITE_OMIT_AUTOVACUUM
9749 if( pCheck->pBt->autoVacuum ){
drh867db832014-09-26 02:41:05 +00009750 checkPtrmap(pCheck, iPage, PTRMAP_FREEPAGE, 0);
danielk1977687566d2004-11-02 12:56:41 +00009751 }
9752#endif
drhae104742018-12-14 17:57:01 +00009753 if( n>pCheck->pBt->usableSize/4-2 ){
drh867db832014-09-26 02:41:05 +00009754 checkAppendMsg(pCheck,
drh2e38c322004-09-03 18:38:44 +00009755 "freelist leaf count too big on page %d", iPage);
drhee696e22004-08-30 16:52:17 +00009756 N--;
9757 }else{
drhae104742018-12-14 17:57:01 +00009758 for(i=0; i<(int)n; i++){
danielk19773b8a05f2007-03-19 17:44:26 +00009759 Pgno iFreePage = get4byte(&pOvflData[8+i*4]);
danielk1977687566d2004-11-02 12:56:41 +00009760#ifndef SQLITE_OMIT_AUTOVACUUM
9761 if( pCheck->pBt->autoVacuum ){
drh867db832014-09-26 02:41:05 +00009762 checkPtrmap(pCheck, iFreePage, PTRMAP_FREEPAGE, 0);
danielk1977687566d2004-11-02 12:56:41 +00009763 }
9764#endif
drh867db832014-09-26 02:41:05 +00009765 checkRef(pCheck, iFreePage);
drhee696e22004-08-30 16:52:17 +00009766 }
9767 N -= n;
drh30e58752002-03-02 20:41:57 +00009768 }
drh30e58752002-03-02 20:41:57 +00009769 }
danielk1977afcdd022004-10-31 16:25:42 +00009770#ifndef SQLITE_OMIT_AUTOVACUUM
danielk1977687566d2004-11-02 12:56:41 +00009771 else{
9772 /* If this database supports auto-vacuum and iPage is not the last
9773 ** page in this overflow list, check that the pointer-map entry for
9774 ** the following page matches iPage.
9775 */
9776 if( pCheck->pBt->autoVacuum && N>0 ){
danielk19773b8a05f2007-03-19 17:44:26 +00009777 i = get4byte(pOvflData);
drh867db832014-09-26 02:41:05 +00009778 checkPtrmap(pCheck, i, PTRMAP_OVERFLOW2, iPage);
danielk1977687566d2004-11-02 12:56:41 +00009779 }
danielk1977afcdd022004-10-31 16:25:42 +00009780 }
9781#endif
danielk19773b8a05f2007-03-19 17:44:26 +00009782 iPage = get4byte(pOvflData);
9783 sqlite3PagerUnref(pOvflPage);
drh91d58662018-07-20 13:39:28 +00009784 }
9785 if( N && nErrAtStart==pCheck->nErr ){
9786 checkAppendMsg(pCheck,
9787 "%s is %d but should be %d",
9788 isFreeList ? "size" : "overflow list length",
9789 expected-N, expected);
drh5eddca62001-06-30 21:53:53 +00009790 }
9791}
drhb7f91642004-10-31 02:22:47 +00009792#endif /* SQLITE_OMIT_INTEGRITY_CHECK */
drh5eddca62001-06-30 21:53:53 +00009793
drh67731a92015-04-16 11:56:03 +00009794/*
9795** An implementation of a min-heap.
9796**
9797** aHeap[0] is the number of elements on the heap. aHeap[1] is the
drha33b6832015-04-16 21:57:37 +00009798** root element. The daughter nodes of aHeap[N] are aHeap[N*2]
drh67731a92015-04-16 11:56:03 +00009799** and aHeap[N*2+1].
9800**
9801** The heap property is this: Every node is less than or equal to both
9802** of its daughter nodes. A consequence of the heap property is that the
drh42c0a2b2015-04-28 01:28:36 +00009803** root node aHeap[1] is always the minimum value currently in the heap.
drh67731a92015-04-16 11:56:03 +00009804**
9805** The btreeHeapInsert() routine inserts an unsigned 32-bit number onto
9806** the heap, preserving the heap property. The btreeHeapPull() routine
9807** removes the root element from the heap (the minimum value in the heap)
drh42c0a2b2015-04-28 01:28:36 +00009808** and then moves other nodes around as necessary to preserve the heap
drh67731a92015-04-16 11:56:03 +00009809** property.
9810**
9811** This heap is used for cell overlap and coverage testing. Each u32
9812** entry represents the span of a cell or freeblock on a btree page.
9813** The upper 16 bits are the index of the first byte of a range and the
9814** lower 16 bits are the index of the last byte of that range.
9815*/
9816static void btreeHeapInsert(u32 *aHeap, u32 x){
9817 u32 j, i = ++aHeap[0];
9818 aHeap[i] = x;
drha33b6832015-04-16 21:57:37 +00009819 while( (j = i/2)>0 && aHeap[j]>aHeap[i] ){
drh67731a92015-04-16 11:56:03 +00009820 x = aHeap[j];
9821 aHeap[j] = aHeap[i];
9822 aHeap[i] = x;
9823 i = j;
9824 }
9825}
9826static int btreeHeapPull(u32 *aHeap, u32 *pOut){
9827 u32 j, i, x;
9828 if( (x = aHeap[0])==0 ) return 0;
9829 *pOut = aHeap[1];
9830 aHeap[1] = aHeap[x];
9831 aHeap[x] = 0xffffffff;
9832 aHeap[0]--;
9833 i = 1;
9834 while( (j = i*2)<=aHeap[0] ){
9835 if( aHeap[j]>aHeap[j+1] ) j++;
9836 if( aHeap[i]<aHeap[j] ) break;
9837 x = aHeap[i];
9838 aHeap[i] = aHeap[j];
9839 aHeap[j] = x;
9840 i = j;
9841 }
9842 return 1;
9843}
9844
drhb7f91642004-10-31 02:22:47 +00009845#ifndef SQLITE_OMIT_INTEGRITY_CHECK
drh5eddca62001-06-30 21:53:53 +00009846/*
9847** Do various sanity checks on a single page of a tree. Return
9848** the tree depth. Root pages return 0. Parents of root pages
9849** return 1, and so forth.
9850**
9851** These checks are done:
9852**
9853** 1. Make sure that cells and freeblocks do not overlap
9854** but combine to completely cover the page.
drhe05b3f82015-07-01 17:53:49 +00009855** 2. Make sure integer cell keys are in order.
9856** 3. Check the integrity of overflow pages.
9857** 4. Recursively call checkTreePage on all children.
9858** 5. Verify that the depth of all children is the same.
drh5eddca62001-06-30 21:53:53 +00009859*/
9860static int checkTreePage(
drhaaab5722002-02-19 13:39:21 +00009861 IntegrityCk *pCheck, /* Context for the sanity check */
drhabc38152020-07-22 13:38:04 +00009862 Pgno iPage, /* Page number of the page to check */
drhcbc6b712015-07-02 16:17:30 +00009863 i64 *piMinKey, /* Write minimum integer primary key here */
9864 i64 maxKey /* Error if integer primary key greater than this */
drh5eddca62001-06-30 21:53:53 +00009865){
drhcbc6b712015-07-02 16:17:30 +00009866 MemPage *pPage = 0; /* The page being analyzed */
9867 int i; /* Loop counter */
9868 int rc; /* Result code from subroutine call */
9869 int depth = -1, d2; /* Depth of a subtree */
9870 int pgno; /* Page number */
9871 int nFrag; /* Number of fragmented bytes on the page */
9872 int hdr; /* Offset to the page header */
9873 int cellStart; /* Offset to the start of the cell pointer array */
9874 int nCell; /* Number of cells */
9875 int doCoverageCheck = 1; /* True if cell coverage checking should be done */
9876 int keyCanBeEqual = 1; /* True if IPK can be equal to maxKey
9877 ** False if IPK must be strictly less than maxKey */
9878 u8 *data; /* Page content */
9879 u8 *pCell; /* Cell content */
9880 u8 *pCellIdx; /* Next element of the cell pointer array */
9881 BtShared *pBt; /* The BtShared object that owns pPage */
9882 u32 pc; /* Address of a cell */
9883 u32 usableSize; /* Usable size of the page */
9884 u32 contentOffset; /* Offset to the start of the cell content area */
9885 u32 *heap = 0; /* Min-heap used for checking cell coverage */
drhd2dc87f2015-07-02 19:47:08 +00009886 u32 x, prev = 0; /* Next and previous entry on the min-heap */
drh867db832014-09-26 02:41:05 +00009887 const char *saved_zPfx = pCheck->zPfx;
9888 int saved_v1 = pCheck->v1;
9889 int saved_v2 = pCheck->v2;
mistachkin532f1792015-07-14 17:18:05 +00009890 u8 savedIsInit = 0;
danielk1977ef73ee92004-11-06 12:26:07 +00009891
drh5eddca62001-06-30 21:53:53 +00009892 /* Check that the page exists
9893 */
drhd9cb6ac2005-10-20 07:28:17 +00009894 pBt = pCheck->pBt;
drhb6f41482004-05-14 01:58:11 +00009895 usableSize = pBt->usableSize;
drh5eddca62001-06-30 21:53:53 +00009896 if( iPage==0 ) return 0;
drh867db832014-09-26 02:41:05 +00009897 if( checkRef(pCheck, iPage) ) return 0;
drhabc38152020-07-22 13:38:04 +00009898 pCheck->zPfx = "Page %u: ";
drh867db832014-09-26 02:41:05 +00009899 pCheck->v1 = iPage;
drhabc38152020-07-22 13:38:04 +00009900 if( (rc = btreeGetPage(pBt, iPage, &pPage, 0))!=0 ){
drh867db832014-09-26 02:41:05 +00009901 checkAppendMsg(pCheck,
drh2e38c322004-09-03 18:38:44 +00009902 "unable to get the page. error code=%d", rc);
drh867db832014-09-26 02:41:05 +00009903 goto end_of_check;
drh5eddca62001-06-30 21:53:53 +00009904 }
danielk197793caf5a2009-07-11 06:55:33 +00009905
9906 /* Clear MemPage.isInit to make sure the corruption detection code in
9907 ** btreeInitPage() is executed. */
drh72e191e2015-07-04 11:14:20 +00009908 savedIsInit = pPage->isInit;
danielk197793caf5a2009-07-11 06:55:33 +00009909 pPage->isInit = 0;
danielk197730548662009-07-09 05:07:37 +00009910 if( (rc = btreeInitPage(pPage))!=0 ){
drh64022502009-01-09 14:11:04 +00009911 assert( rc==SQLITE_CORRUPT ); /* The only possible error from InitPage */
drh867db832014-09-26 02:41:05 +00009912 checkAppendMsg(pCheck,
danielk197730548662009-07-09 05:07:37 +00009913 "btreeInitPage() returns error code %d", rc);
drh867db832014-09-26 02:41:05 +00009914 goto end_of_check;
drh5eddca62001-06-30 21:53:53 +00009915 }
drhb0ea9432019-02-09 21:06:40 +00009916 if( (rc = btreeComputeFreeSpace(pPage))!=0 ){
9917 assert( rc==SQLITE_CORRUPT );
9918 checkAppendMsg(pCheck, "free space corruption", rc);
9919 goto end_of_check;
9920 }
drhcbc6b712015-07-02 16:17:30 +00009921 data = pPage->aData;
9922 hdr = pPage->hdrOffset;
drh5eddca62001-06-30 21:53:53 +00009923
drhcbc6b712015-07-02 16:17:30 +00009924 /* Set up for cell analysis */
drhabc38152020-07-22 13:38:04 +00009925 pCheck->zPfx = "On tree page %u cell %d: ";
drhcbc6b712015-07-02 16:17:30 +00009926 contentOffset = get2byteNotZero(&data[hdr+5]);
9927 assert( contentOffset<=usableSize ); /* Enforced by btreeInitPage() */
9928
9929 /* EVIDENCE-OF: R-37002-32774 The two-byte integer at offset 3 gives the
9930 ** number of cells on the page. */
9931 nCell = get2byte(&data[hdr+3]);
9932 assert( pPage->nCell==nCell );
9933
9934 /* EVIDENCE-OF: R-23882-45353 The cell pointer array of a b-tree page
9935 ** immediately follows the b-tree page header. */
9936 cellStart = hdr + 12 - 4*pPage->leaf;
9937 assert( pPage->aCellIdx==&data[cellStart] );
9938 pCellIdx = &data[cellStart + 2*(nCell-1)];
9939
9940 if( !pPage->leaf ){
9941 /* Analyze the right-child page of internal pages */
9942 pgno = get4byte(&data[hdr+8]);
9943#ifndef SQLITE_OMIT_AUTOVACUUM
9944 if( pBt->autoVacuum ){
drhabc38152020-07-22 13:38:04 +00009945 pCheck->zPfx = "On page %u at right child: ";
drhcbc6b712015-07-02 16:17:30 +00009946 checkPtrmap(pCheck, pgno, PTRMAP_BTREE, iPage);
9947 }
9948#endif
9949 depth = checkTreePage(pCheck, pgno, &maxKey, maxKey);
9950 keyCanBeEqual = 0;
9951 }else{
9952 /* For leaf pages, the coverage check will occur in the same loop
9953 ** as the other cell checks, so initialize the heap. */
9954 heap = pCheck->heap;
9955 heap[0] = 0;
drh5eddca62001-06-30 21:53:53 +00009956 }
9957
drhcbc6b712015-07-02 16:17:30 +00009958 /* EVIDENCE-OF: R-02776-14802 The cell pointer array consists of K 2-byte
9959 ** integer offsets to the cell contents. */
9960 for(i=nCell-1; i>=0 && pCheck->mxErr; i--){
drh6f11bef2004-05-13 01:12:56 +00009961 CellInfo info;
drh5eddca62001-06-30 21:53:53 +00009962
drhcbc6b712015-07-02 16:17:30 +00009963 /* Check cell size */
drh867db832014-09-26 02:41:05 +00009964 pCheck->v2 = i;
drhcbc6b712015-07-02 16:17:30 +00009965 assert( pCellIdx==&data[cellStart + i*2] );
9966 pc = get2byteAligned(pCellIdx);
9967 pCellIdx -= 2;
9968 if( pc<contentOffset || pc>usableSize-4 ){
9969 checkAppendMsg(pCheck, "Offset %d out of range %d..%d",
9970 pc, contentOffset, usableSize-4);
9971 doCoverageCheck = 0;
9972 continue;
shaneh195475d2010-02-19 04:28:08 +00009973 }
drhcbc6b712015-07-02 16:17:30 +00009974 pCell = &data[pc];
9975 pPage->xParseCell(pPage, pCell, &info);
9976 if( pc+info.nSize>usableSize ){
9977 checkAppendMsg(pCheck, "Extends off end of page");
9978 doCoverageCheck = 0;
9979 continue;
drh5eddca62001-06-30 21:53:53 +00009980 }
9981
drhcbc6b712015-07-02 16:17:30 +00009982 /* Check for integer primary key out of range */
9983 if( pPage->intKey ){
9984 if( keyCanBeEqual ? (info.nKey > maxKey) : (info.nKey >= maxKey) ){
9985 checkAppendMsg(pCheck, "Rowid %lld out of order", info.nKey);
9986 }
9987 maxKey = info.nKey;
dan4b2667c2017-05-01 18:24:01 +00009988 keyCanBeEqual = 0; /* Only the first key on the page may ==maxKey */
drhcbc6b712015-07-02 16:17:30 +00009989 }
9990
9991 /* Check the content overflow list */
9992 if( info.nPayload>info.nLocal ){
drheaac9992019-02-26 16:17:06 +00009993 u32 nPage; /* Number of pages on the overflow chain */
drhcbc6b712015-07-02 16:17:30 +00009994 Pgno pgnoOvfl; /* First page of the overflow chain */
drh45ac1c72015-12-18 03:59:16 +00009995 assert( pc + info.nSize - 4 <= usableSize );
drhcbc6b712015-07-02 16:17:30 +00009996 nPage = (info.nPayload - info.nLocal + usableSize - 5)/(usableSize - 4);
drh45ac1c72015-12-18 03:59:16 +00009997 pgnoOvfl = get4byte(&pCell[info.nSize - 4]);
drhda200cc2004-05-09 11:51:38 +00009998#ifndef SQLITE_OMIT_AUTOVACUUM
9999 if( pBt->autoVacuum ){
drh867db832014-09-26 02:41:05 +000010000 checkPtrmap(pCheck, pgnoOvfl, PTRMAP_OVERFLOW1, iPage);
drhda200cc2004-05-09 11:51:38 +000010001 }
10002#endif
drh867db832014-09-26 02:41:05 +000010003 checkList(pCheck, 0, pgnoOvfl, nPage);
drh5eddca62001-06-30 21:53:53 +000010004 }
10005
drh5eddca62001-06-30 21:53:53 +000010006 if( !pPage->leaf ){
drhcbc6b712015-07-02 16:17:30 +000010007 /* Check sanity of left child page for internal pages */
drh43605152004-05-29 21:46:49 +000010008 pgno = get4byte(pCell);
danielk1977afcdd022004-10-31 16:25:42 +000010009#ifndef SQLITE_OMIT_AUTOVACUUM
10010 if( pBt->autoVacuum ){
drh867db832014-09-26 02:41:05 +000010011 checkPtrmap(pCheck, pgno, PTRMAP_BTREE, iPage);
danielk1977afcdd022004-10-31 16:25:42 +000010012 }
10013#endif
drhcbc6b712015-07-02 16:17:30 +000010014 d2 = checkTreePage(pCheck, pgno, &maxKey, maxKey);
10015 keyCanBeEqual = 0;
10016 if( d2!=depth ){
drh867db832014-09-26 02:41:05 +000010017 checkAppendMsg(pCheck, "Child page depth differs");
drhcbc6b712015-07-02 16:17:30 +000010018 depth = d2;
drh5eddca62001-06-30 21:53:53 +000010019 }
drhcbc6b712015-07-02 16:17:30 +000010020 }else{
10021 /* Populate the coverage-checking heap for leaf pages */
10022 btreeHeapInsert(heap, (pc<<16)|(pc+info.nSize-1));
drh5eddca62001-06-30 21:53:53 +000010023 }
10024 }
drhcbc6b712015-07-02 16:17:30 +000010025 *piMinKey = maxKey;
shaneh195475d2010-02-19 04:28:08 +000010026
drh5eddca62001-06-30 21:53:53 +000010027 /* Check for complete coverage of the page
10028 */
drh867db832014-09-26 02:41:05 +000010029 pCheck->zPfx = 0;
drhcbc6b712015-07-02 16:17:30 +000010030 if( doCoverageCheck && pCheck->mxErr>0 ){
10031 /* For leaf pages, the min-heap has already been initialized and the
10032 ** cells have already been inserted. But for internal pages, that has
10033 ** not yet been done, so do it now */
10034 if( !pPage->leaf ){
10035 heap = pCheck->heap;
10036 heap[0] = 0;
drhcbc6b712015-07-02 16:17:30 +000010037 for(i=nCell-1; i>=0; i--){
drh1910def2015-07-02 16:29:56 +000010038 u32 size;
10039 pc = get2byteAligned(&data[cellStart+i*2]);
10040 size = pPage->xCellSize(pPage, &data[pc]);
drh67731a92015-04-16 11:56:03 +000010041 btreeHeapInsert(heap, (pc<<16)|(pc+size-1));
danielk19777701e812005-01-10 12:59:51 +000010042 }
drh2e38c322004-09-03 18:38:44 +000010043 }
drhcbc6b712015-07-02 16:17:30 +000010044 /* Add the freeblocks to the min-heap
10045 **
10046 ** EVIDENCE-OF: R-20690-50594 The second field of the b-tree page header
drhfdab0262014-11-20 15:30:50 +000010047 ** is the offset of the first freeblock, or zero if there are no
drhcbc6b712015-07-02 16:17:30 +000010048 ** freeblocks on the page.
10049 */
drh8c2bbb62009-07-10 02:52:20 +000010050 i = get2byte(&data[hdr+1]);
10051 while( i>0 ){
10052 int size, j;
drh5860a612019-02-12 16:58:26 +000010053 assert( (u32)i<=usableSize-4 ); /* Enforced by btreeComputeFreeSpace() */
drh8c2bbb62009-07-10 02:52:20 +000010054 size = get2byte(&data[i+2]);
drh5860a612019-02-12 16:58:26 +000010055 assert( (u32)(i+size)<=usableSize ); /* due to btreeComputeFreeSpace() */
drhe56d4302015-07-08 01:22:52 +000010056 btreeHeapInsert(heap, (((u32)i)<<16)|(i+size-1));
drhfdab0262014-11-20 15:30:50 +000010057 /* EVIDENCE-OF: R-58208-19414 The first 2 bytes of a freeblock are a
10058 ** big-endian integer which is the offset in the b-tree page of the next
10059 ** freeblock in the chain, or zero if the freeblock is the last on the
10060 ** chain. */
drh8c2bbb62009-07-10 02:52:20 +000010061 j = get2byte(&data[i]);
drhfdab0262014-11-20 15:30:50 +000010062 /* EVIDENCE-OF: R-06866-39125 Freeblocks are always connected in order of
10063 ** increasing offset. */
drh5860a612019-02-12 16:58:26 +000010064 assert( j==0 || j>i+size ); /* Enforced by btreeComputeFreeSpace() */
10065 assert( (u32)j<=usableSize-4 ); /* Enforced by btreeComputeFreeSpace() */
drh8c2bbb62009-07-10 02:52:20 +000010066 i = j;
drh2e38c322004-09-03 18:38:44 +000010067 }
drhcbc6b712015-07-02 16:17:30 +000010068 /* Analyze the min-heap looking for overlap between cells and/or
10069 ** freeblocks, and counting the number of untracked bytes in nFrag.
drhd2dc87f2015-07-02 19:47:08 +000010070 **
10071 ** Each min-heap entry is of the form: (start_address<<16)|end_address.
10072 ** There is an implied first entry the covers the page header, the cell
10073 ** pointer index, and the gap between the cell pointer index and the start
10074 ** of cell content.
10075 **
10076 ** The loop below pulls entries from the min-heap in order and compares
10077 ** the start_address against the previous end_address. If there is an
10078 ** overlap, that means bytes are used multiple times. If there is a gap,
10079 ** that gap is added to the fragmentation count.
drhcbc6b712015-07-02 16:17:30 +000010080 */
10081 nFrag = 0;
drhd2dc87f2015-07-02 19:47:08 +000010082 prev = contentOffset - 1; /* Implied first min-heap entry */
drh67731a92015-04-16 11:56:03 +000010083 while( btreeHeapPull(heap,&x) ){
drhd2dc87f2015-07-02 19:47:08 +000010084 if( (prev&0xffff)>=(x>>16) ){
drh867db832014-09-26 02:41:05 +000010085 checkAppendMsg(pCheck,
drhabc38152020-07-22 13:38:04 +000010086 "Multiple uses for byte %u of page %u", x>>16, iPage);
drh2e38c322004-09-03 18:38:44 +000010087 break;
drh67731a92015-04-16 11:56:03 +000010088 }else{
drhcbc6b712015-07-02 16:17:30 +000010089 nFrag += (x>>16) - (prev&0xffff) - 1;
drh67731a92015-04-16 11:56:03 +000010090 prev = x;
drh2e38c322004-09-03 18:38:44 +000010091 }
10092 }
drhcbc6b712015-07-02 16:17:30 +000010093 nFrag += usableSize - (prev&0xffff) - 1;
drhfdab0262014-11-20 15:30:50 +000010094 /* EVIDENCE-OF: R-43263-13491 The total number of bytes in all fragments
10095 ** is stored in the fifth field of the b-tree page header.
10096 ** EVIDENCE-OF: R-07161-27322 The one-byte integer at offset 7 gives the
10097 ** number of fragmented free bytes within the cell content area.
10098 */
drhcbc6b712015-07-02 16:17:30 +000010099 if( heap[0]==0 && nFrag!=data[hdr+7] ){
drh867db832014-09-26 02:41:05 +000010100 checkAppendMsg(pCheck,
drhabc38152020-07-22 13:38:04 +000010101 "Fragmentation of %d bytes reported as %d on page %u",
drhcbc6b712015-07-02 16:17:30 +000010102 nFrag, data[hdr+7], iPage);
drh5eddca62001-06-30 21:53:53 +000010103 }
10104 }
drh867db832014-09-26 02:41:05 +000010105
10106end_of_check:
drh72e191e2015-07-04 11:14:20 +000010107 if( !doCoverageCheck ) pPage->isInit = savedIsInit;
drh4b70f112004-05-02 21:12:19 +000010108 releasePage(pPage);
drh867db832014-09-26 02:41:05 +000010109 pCheck->zPfx = saved_zPfx;
10110 pCheck->v1 = saved_v1;
10111 pCheck->v2 = saved_v2;
drhda200cc2004-05-09 11:51:38 +000010112 return depth+1;
drh5eddca62001-06-30 21:53:53 +000010113}
drhb7f91642004-10-31 02:22:47 +000010114#endif /* SQLITE_OMIT_INTEGRITY_CHECK */
drh5eddca62001-06-30 21:53:53 +000010115
drhb7f91642004-10-31 02:22:47 +000010116#ifndef SQLITE_OMIT_INTEGRITY_CHECK
drh5eddca62001-06-30 21:53:53 +000010117/*
10118** This routine does a complete check of the given BTree file. aRoot[] is
10119** an array of pages numbers were each page number is the root page of
10120** a table. nRoot is the number of entries in aRoot.
10121**
danielk19773509a652009-07-06 18:56:13 +000010122** A read-only or read-write transaction must be opened before calling
10123** this function.
10124**
drhc890fec2008-08-01 20:10:08 +000010125** Write the number of error seen in *pnErr. Except for some memory
drhe43ba702008-12-05 22:40:08 +000010126** allocation errors, an error message held in memory obtained from
drhc890fec2008-08-01 20:10:08 +000010127** malloc is returned if *pnErr is non-zero. If *pnErr==0 then NULL is
drhe43ba702008-12-05 22:40:08 +000010128** returned. If a memory allocation error occurs, NULL is returned.
drh17d2d592020-07-23 00:45:06 +000010129**
10130** If the first entry in aRoot[] is 0, that indicates that the list of
10131** root pages is incomplete. This is a "partial integrity-check". This
10132** happens when performing an integrity check on a single table. The
10133** zero is skipped, of course. But in addition, the freelist checks
10134** and the checks to make sure every page is referenced are also skipped,
10135** since obviously it is not possible to know which pages are covered by
10136** the unverified btrees. Except, if aRoot[1] is 1, then the freelist
10137** checks are still performed.
drh5eddca62001-06-30 21:53:53 +000010138*/
drh1dcdbc02007-01-27 02:24:54 +000010139char *sqlite3BtreeIntegrityCheck(
drh21f6daa2019-10-11 14:21:48 +000010140 sqlite3 *db, /* Database connection that is running the check */
drh1dcdbc02007-01-27 02:24:54 +000010141 Btree *p, /* The btree to be checked */
drhabc38152020-07-22 13:38:04 +000010142 Pgno *aRoot, /* An array of root pages numbers for individual trees */
drh1dcdbc02007-01-27 02:24:54 +000010143 int nRoot, /* Number of entries in aRoot[] */
10144 int mxErr, /* Stop reporting errors after this many */
10145 int *pnErr /* Write number of errors seen to this variable */
10146){
danielk197789d40042008-11-17 14:20:56 +000010147 Pgno i;
drhaaab5722002-02-19 13:39:21 +000010148 IntegrityCk sCheck;
danielk1977aef0bf62005-12-30 16:28:01 +000010149 BtShared *pBt = p->pBt;
drhf10ce632019-01-11 14:46:44 +000010150 u64 savedDbFlags = pBt->db->flags;
drhf089aa42008-07-08 19:34:06 +000010151 char zErr[100];
drh17d2d592020-07-23 00:45:06 +000010152 int bPartial = 0; /* True if not checking all btrees */
10153 int bCkFreelist = 1; /* True to scan the freelist */
drh8deae5a2020-07-29 12:23:20 +000010154 VVA_ONLY( int nRef );
drh17d2d592020-07-23 00:45:06 +000010155 assert( nRoot>0 );
10156
10157 /* aRoot[0]==0 means this is a partial check */
10158 if( aRoot[0]==0 ){
10159 assert( nRoot>1 );
10160 bPartial = 1;
10161 if( aRoot[1]!=1 ) bCkFreelist = 0;
10162 }
drh5eddca62001-06-30 21:53:53 +000010163
drhd677b3d2007-08-20 22:48:41 +000010164 sqlite3BtreeEnter(p);
danielk19773509a652009-07-06 18:56:13 +000010165 assert( p->inTrans>TRANS_NONE && pBt->inTransaction>TRANS_NONE );
drhcc5f8a42016-02-06 22:32:06 +000010166 VVA_ONLY( nRef = sqlite3PagerRefcount(pBt->pPager) );
10167 assert( nRef>=0 );
drh21f6daa2019-10-11 14:21:48 +000010168 sCheck.db = db;
drh5eddca62001-06-30 21:53:53 +000010169 sCheck.pBt = pBt;
10170 sCheck.pPager = pBt->pPager;
drhb1299152010-03-30 22:58:33 +000010171 sCheck.nPage = btreePagecount(sCheck.pBt);
drh1dcdbc02007-01-27 02:24:54 +000010172 sCheck.mxErr = mxErr;
10173 sCheck.nErr = 0;
drh8ddf6352020-06-29 18:30:49 +000010174 sCheck.bOomFault = 0;
drh867db832014-09-26 02:41:05 +000010175 sCheck.zPfx = 0;
10176 sCheck.v1 = 0;
10177 sCheck.v2 = 0;
drhe05b3f82015-07-01 17:53:49 +000010178 sCheck.aPgRef = 0;
10179 sCheck.heap = 0;
10180 sqlite3StrAccumInit(&sCheck.errMsg, 0, zErr, sizeof(zErr), SQLITE_MAX_LENGTH);
drh5f4a6862016-01-30 12:50:25 +000010181 sCheck.errMsg.printfFlags = SQLITE_PRINTF_INTERNAL;
drh0de8c112002-07-06 16:32:14 +000010182 if( sCheck.nPage==0 ){
drhe05b3f82015-07-01 17:53:49 +000010183 goto integrity_ck_cleanup;
drh0de8c112002-07-06 16:32:14 +000010184 }
dan1235bb12012-04-03 17:43:28 +000010185
10186 sCheck.aPgRef = sqlite3MallocZero((sCheck.nPage / 8)+ 1);
10187 if( !sCheck.aPgRef ){
drh8ddf6352020-06-29 18:30:49 +000010188 sCheck.bOomFault = 1;
drhe05b3f82015-07-01 17:53:49 +000010189 goto integrity_ck_cleanup;
danielk1977ac245ec2005-01-14 13:50:11 +000010190 }
drhe05b3f82015-07-01 17:53:49 +000010191 sCheck.heap = (u32*)sqlite3PageMalloc( pBt->pageSize );
10192 if( sCheck.heap==0 ){
drh8ddf6352020-06-29 18:30:49 +000010193 sCheck.bOomFault = 1;
drhe05b3f82015-07-01 17:53:49 +000010194 goto integrity_ck_cleanup;
10195 }
10196
drh42cac6d2004-11-20 20:31:11 +000010197 i = PENDING_BYTE_PAGE(pBt);
dan1235bb12012-04-03 17:43:28 +000010198 if( i<=sCheck.nPage ) setPageReferenced(&sCheck, i);
drh5eddca62001-06-30 21:53:53 +000010199
10200 /* Check the integrity of the freelist
10201 */
drh17d2d592020-07-23 00:45:06 +000010202 if( bCkFreelist ){
10203 sCheck.zPfx = "Main freelist: ";
10204 checkList(&sCheck, 1, get4byte(&pBt->pPage1->aData[32]),
10205 get4byte(&pBt->pPage1->aData[36]));
10206 sCheck.zPfx = 0;
10207 }
drh5eddca62001-06-30 21:53:53 +000010208
10209 /* Check all the tables.
10210 */
drh040d77a2018-07-20 15:44:09 +000010211#ifndef SQLITE_OMIT_AUTOVACUUM
drh17d2d592020-07-23 00:45:06 +000010212 if( !bPartial ){
10213 if( pBt->autoVacuum ){
drhed109c02020-07-23 09:14:25 +000010214 Pgno mx = 0;
10215 Pgno mxInHdr;
drh17d2d592020-07-23 00:45:06 +000010216 for(i=0; (int)i<nRoot; i++) if( mx<aRoot[i] ) mx = aRoot[i];
10217 mxInHdr = get4byte(&pBt->pPage1->aData[52]);
10218 if( mx!=mxInHdr ){
10219 checkAppendMsg(&sCheck,
10220 "max rootpage (%d) disagrees with header (%d)",
10221 mx, mxInHdr
10222 );
10223 }
10224 }else if( get4byte(&pBt->pPage1->aData[64])!=0 ){
drh040d77a2018-07-20 15:44:09 +000010225 checkAppendMsg(&sCheck,
drh17d2d592020-07-23 00:45:06 +000010226 "incremental_vacuum enabled with a max rootpage of zero"
drh040d77a2018-07-20 15:44:09 +000010227 );
10228 }
drh040d77a2018-07-20 15:44:09 +000010229 }
10230#endif
drhcbc6b712015-07-02 16:17:30 +000010231 testcase( pBt->db->flags & SQLITE_CellSizeCk );
drhd5b44d62018-12-06 17:06:02 +000010232 pBt->db->flags &= ~(u64)SQLITE_CellSizeCk;
danielk197789d40042008-11-17 14:20:56 +000010233 for(i=0; (int)i<nRoot && sCheck.mxErr; i++){
drhcbc6b712015-07-02 16:17:30 +000010234 i64 notUsed;
drh4ff6dfa2002-03-03 23:06:00 +000010235 if( aRoot[i]==0 ) continue;
danielk1977687566d2004-11-02 12:56:41 +000010236#ifndef SQLITE_OMIT_AUTOVACUUM
drh17d2d592020-07-23 00:45:06 +000010237 if( pBt->autoVacuum && aRoot[i]>1 && !bPartial ){
drh867db832014-09-26 02:41:05 +000010238 checkPtrmap(&sCheck, aRoot[i], PTRMAP_ROOTPAGE, 0);
danielk1977687566d2004-11-02 12:56:41 +000010239 }
10240#endif
drhcbc6b712015-07-02 16:17:30 +000010241 checkTreePage(&sCheck, aRoot[i], &notUsed, LARGEST_INT64);
drh5eddca62001-06-30 21:53:53 +000010242 }
drhcbc6b712015-07-02 16:17:30 +000010243 pBt->db->flags = savedDbFlags;
drh5eddca62001-06-30 21:53:53 +000010244
10245 /* Make sure every page in the file is referenced
10246 */
drh17d2d592020-07-23 00:45:06 +000010247 if( !bPartial ){
10248 for(i=1; i<=sCheck.nPage && sCheck.mxErr; i++){
danielk1977afcdd022004-10-31 16:25:42 +000010249#ifdef SQLITE_OMIT_AUTOVACUUM
drh17d2d592020-07-23 00:45:06 +000010250 if( getPageReferenced(&sCheck, i)==0 ){
10251 checkAppendMsg(&sCheck, "Page %d is never used", i);
10252 }
danielk1977afcdd022004-10-31 16:25:42 +000010253#else
drh17d2d592020-07-23 00:45:06 +000010254 /* If the database supports auto-vacuum, make sure no tables contain
10255 ** references to pointer-map pages.
10256 */
10257 if( getPageReferenced(&sCheck, i)==0 &&
10258 (PTRMAP_PAGENO(pBt, i)!=i || !pBt->autoVacuum) ){
10259 checkAppendMsg(&sCheck, "Page %d is never used", i);
10260 }
10261 if( getPageReferenced(&sCheck, i)!=0 &&
10262 (PTRMAP_PAGENO(pBt, i)==i && pBt->autoVacuum) ){
10263 checkAppendMsg(&sCheck, "Pointer map page %d is referenced", i);
10264 }
danielk1977afcdd022004-10-31 16:25:42 +000010265#endif
drh47eb5612020-08-10 21:01:32 +000010266 }
drh5eddca62001-06-30 21:53:53 +000010267 }
10268
drh5eddca62001-06-30 21:53:53 +000010269 /* Clean up and report errors.
10270 */
drhe05b3f82015-07-01 17:53:49 +000010271integrity_ck_cleanup:
10272 sqlite3PageFree(sCheck.heap);
dan1235bb12012-04-03 17:43:28 +000010273 sqlite3_free(sCheck.aPgRef);
drh8ddf6352020-06-29 18:30:49 +000010274 if( sCheck.bOomFault ){
drh0cdbe1a2018-05-09 13:46:26 +000010275 sqlite3_str_reset(&sCheck.errMsg);
drhe05b3f82015-07-01 17:53:49 +000010276 sCheck.nErr++;
drhc890fec2008-08-01 20:10:08 +000010277 }
drh1dcdbc02007-01-27 02:24:54 +000010278 *pnErr = sCheck.nErr;
drh0cdbe1a2018-05-09 13:46:26 +000010279 if( sCheck.nErr==0 ) sqlite3_str_reset(&sCheck.errMsg);
drhe05b3f82015-07-01 17:53:49 +000010280 /* Make sure this analysis did not leave any unref() pages. */
10281 assert( nRef==sqlite3PagerRefcount(pBt->pPager) );
10282 sqlite3BtreeLeave(p);
drhf089aa42008-07-08 19:34:06 +000010283 return sqlite3StrAccumFinish(&sCheck.errMsg);
drh5eddca62001-06-30 21:53:53 +000010284}
drhb7f91642004-10-31 02:22:47 +000010285#endif /* SQLITE_OMIT_INTEGRITY_CHECK */
paulb95a8862003-04-01 21:16:41 +000010286
drh73509ee2003-04-06 20:44:45 +000010287/*
drhd4e0bb02012-05-27 01:19:04 +000010288** Return the full pathname of the underlying database file. Return
10289** an empty string if the database is in-memory or a TEMP database.
drhd0679ed2007-08-28 22:24:34 +000010290**
10291** The pager filename is invariant as long as the pager is
10292** open so it is safe to access without the BtShared mutex.
drh73509ee2003-04-06 20:44:45 +000010293*/
danielk1977aef0bf62005-12-30 16:28:01 +000010294const char *sqlite3BtreeGetFilename(Btree *p){
10295 assert( p->pBt->pPager!=0 );
drhd4e0bb02012-05-27 01:19:04 +000010296 return sqlite3PagerFilename(p->pBt->pPager, 1);
drh73509ee2003-04-06 20:44:45 +000010297}
10298
10299/*
danielk19775865e3d2004-06-14 06:03:57 +000010300** Return the pathname of the journal file for this database. The return
10301** value of this routine is the same regardless of whether the journal file
10302** has been created or not.
drhd0679ed2007-08-28 22:24:34 +000010303**
10304** The pager journal filename is invariant as long as the pager is
10305** open so it is safe to access without the BtShared mutex.
danielk19775865e3d2004-06-14 06:03:57 +000010306*/
danielk1977aef0bf62005-12-30 16:28:01 +000010307const char *sqlite3BtreeGetJournalname(Btree *p){
10308 assert( p->pBt->pPager!=0 );
danielk19773b8a05f2007-03-19 17:44:26 +000010309 return sqlite3PagerJournalname(p->pBt->pPager);
danielk19775865e3d2004-06-14 06:03:57 +000010310}
10311
danielk19771d850a72004-05-31 08:26:49 +000010312/*
10313** Return non-zero if a transaction is active.
10314*/
danielk1977aef0bf62005-12-30 16:28:01 +000010315int sqlite3BtreeIsInTrans(Btree *p){
drhe5fe6902007-12-07 18:55:28 +000010316 assert( p==0 || sqlite3_mutex_held(p->db->mutex) );
danielk1977aef0bf62005-12-30 16:28:01 +000010317 return (p && (p->inTrans==TRANS_WRITE));
danielk19771d850a72004-05-31 08:26:49 +000010318}
10319
dana550f2d2010-08-02 10:47:05 +000010320#ifndef SQLITE_OMIT_WAL
10321/*
10322** Run a checkpoint on the Btree passed as the first argument.
10323**
10324** Return SQLITE_LOCKED if this or any other connection has an open
10325** transaction on the shared-cache the argument Btree is connected to.
dana58f26f2010-11-16 18:56:51 +000010326**
dancdc1f042010-11-18 12:11:05 +000010327** Parameter eMode is one of SQLITE_CHECKPOINT_PASSIVE, FULL or RESTART.
dana550f2d2010-08-02 10:47:05 +000010328*/
dancdc1f042010-11-18 12:11:05 +000010329int sqlite3BtreeCheckpoint(Btree *p, int eMode, int *pnLog, int *pnCkpt){
dana550f2d2010-08-02 10:47:05 +000010330 int rc = SQLITE_OK;
10331 if( p ){
10332 BtShared *pBt = p->pBt;
10333 sqlite3BtreeEnter(p);
10334 if( pBt->inTransaction!=TRANS_NONE ){
10335 rc = SQLITE_LOCKED;
10336 }else{
dan7fb89902016-08-12 16:21:15 +000010337 rc = sqlite3PagerCheckpoint(pBt->pPager, p->db, eMode, pnLog, pnCkpt);
dana550f2d2010-08-02 10:47:05 +000010338 }
10339 sqlite3BtreeLeave(p);
10340 }
10341 return rc;
10342}
10343#endif
10344
danielk19771d850a72004-05-31 08:26:49 +000010345/*
danielk19772372c2b2006-06-27 16:34:56 +000010346** Return non-zero if a read (or write) transaction is active.
10347*/
10348int sqlite3BtreeIsInReadTrans(Btree *p){
drh64022502009-01-09 14:11:04 +000010349 assert( p );
drhe5fe6902007-12-07 18:55:28 +000010350 assert( sqlite3_mutex_held(p->db->mutex) );
drh64022502009-01-09 14:11:04 +000010351 return p->inTrans!=TRANS_NONE;
danielk19772372c2b2006-06-27 16:34:56 +000010352}
10353
danielk197704103022009-02-03 16:51:24 +000010354int sqlite3BtreeIsInBackup(Btree *p){
10355 assert( p );
10356 assert( sqlite3_mutex_held(p->db->mutex) );
10357 return p->nBackup!=0;
10358}
10359
danielk19772372c2b2006-06-27 16:34:56 +000010360/*
danielk1977da184232006-01-05 11:34:32 +000010361** This function returns a pointer to a blob of memory associated with
drh85b623f2007-12-13 21:54:09 +000010362** a single shared-btree. The memory is used by client code for its own
danielk1977da184232006-01-05 11:34:32 +000010363** purposes (for example, to store a high-level schema associated with
10364** the shared-btree). The btree layer manages reference counting issues.
10365**
10366** The first time this is called on a shared-btree, nBytes bytes of memory
10367** are allocated, zeroed, and returned to the caller. For each subsequent
10368** call the nBytes parameter is ignored and a pointer to the same blob
10369** of memory returned.
10370**
danielk1977171bfed2008-06-23 09:50:50 +000010371** If the nBytes parameter is 0 and the blob of memory has not yet been
10372** allocated, a null pointer is returned. If the blob has already been
10373** allocated, it is returned as normal.
10374**
danielk1977da184232006-01-05 11:34:32 +000010375** Just before the shared-btree is closed, the function passed as the
10376** xFree argument when the memory allocation was made is invoked on the
drh4fa7d7c2011-04-03 02:41:00 +000010377** blob of allocated memory. The xFree function should not call sqlite3_free()
danielk1977da184232006-01-05 11:34:32 +000010378** on the memory, the btree layer does that.
10379*/
10380void *sqlite3BtreeSchema(Btree *p, int nBytes, void(*xFree)(void *)){
10381 BtShared *pBt = p->pBt;
drh27641702007-08-22 02:56:42 +000010382 sqlite3BtreeEnter(p);
danielk1977171bfed2008-06-23 09:50:50 +000010383 if( !pBt->pSchema && nBytes ){
drhb9755982010-07-24 16:34:37 +000010384 pBt->pSchema = sqlite3DbMallocZero(0, nBytes);
danielk1977da184232006-01-05 11:34:32 +000010385 pBt->xFreeSchema = xFree;
10386 }
drh27641702007-08-22 02:56:42 +000010387 sqlite3BtreeLeave(p);
danielk1977da184232006-01-05 11:34:32 +000010388 return pBt->pSchema;
10389}
10390
danielk1977c87d34d2006-01-06 13:00:28 +000010391/*
danielk1977404ca072009-03-16 13:19:36 +000010392** Return SQLITE_LOCKED_SHAREDCACHE if another user of the same shared
10393** btree as the argument handle holds an exclusive lock on the
drh1e32bed2020-06-19 13:33:53 +000010394** sqlite_schema table. Otherwise SQLITE_OK.
danielk1977c87d34d2006-01-06 13:00:28 +000010395*/
10396int sqlite3BtreeSchemaLocked(Btree *p){
drh27641702007-08-22 02:56:42 +000010397 int rc;
drhe5fe6902007-12-07 18:55:28 +000010398 assert( sqlite3_mutex_held(p->db->mutex) );
drh27641702007-08-22 02:56:42 +000010399 sqlite3BtreeEnter(p);
drh346a70c2020-06-15 20:27:35 +000010400 rc = querySharedCacheTableLock(p, SCHEMA_ROOT, READ_LOCK);
danielk1977404ca072009-03-16 13:19:36 +000010401 assert( rc==SQLITE_OK || rc==SQLITE_LOCKED_SHAREDCACHE );
drh27641702007-08-22 02:56:42 +000010402 sqlite3BtreeLeave(p);
10403 return rc;
danielk1977c87d34d2006-01-06 13:00:28 +000010404}
10405
drha154dcd2006-03-22 22:10:07 +000010406
10407#ifndef SQLITE_OMIT_SHARED_CACHE
10408/*
10409** Obtain a lock on the table whose root page is iTab. The
10410** lock is a write lock if isWritelock is true or a read lock
10411** if it is false.
10412*/
danielk1977c00da102006-01-07 13:21:04 +000010413int sqlite3BtreeLockTable(Btree *p, int iTab, u8 isWriteLock){
danielk19772e94d4d2006-01-09 05:36:27 +000010414 int rc = SQLITE_OK;
danielk1977602b4662009-07-02 07:47:33 +000010415 assert( p->inTrans!=TRANS_NONE );
drh6a9ad3d2008-04-02 16:29:30 +000010416 if( p->sharable ){
10417 u8 lockType = READ_LOCK + isWriteLock;
10418 assert( READ_LOCK+1==WRITE_LOCK );
10419 assert( isWriteLock==0 || isWriteLock==1 );
danielk1977602b4662009-07-02 07:47:33 +000010420
drh6a9ad3d2008-04-02 16:29:30 +000010421 sqlite3BtreeEnter(p);
drhc25eabe2009-02-24 18:57:31 +000010422 rc = querySharedCacheTableLock(p, iTab, lockType);
drh6a9ad3d2008-04-02 16:29:30 +000010423 if( rc==SQLITE_OK ){
drhc25eabe2009-02-24 18:57:31 +000010424 rc = setSharedCacheTableLock(p, iTab, lockType);
drh6a9ad3d2008-04-02 16:29:30 +000010425 }
10426 sqlite3BtreeLeave(p);
danielk1977c00da102006-01-07 13:21:04 +000010427 }
10428 return rc;
10429}
drha154dcd2006-03-22 22:10:07 +000010430#endif
danielk1977b82e7ed2006-01-11 14:09:31 +000010431
danielk1977b4e9af92007-05-01 17:49:49 +000010432#ifndef SQLITE_OMIT_INCRBLOB
10433/*
10434** Argument pCsr must be a cursor opened for writing on an
10435** INTKEY table currently pointing at a valid table entry.
10436** This function modifies the data stored as part of that entry.
danielk1977ecaecf92009-07-08 08:05:35 +000010437**
10438** Only the data content may only be modified, it is not possible to
10439** change the length of the data stored. If this function is called with
10440** parameters that attempt to write past the end of the existing data,
10441** no modifications are made and SQLITE_CORRUPT is returned.
danielk1977b4e9af92007-05-01 17:49:49 +000010442*/
danielk1977dcbb5d32007-05-04 18:36:44 +000010443int sqlite3BtreePutData(BtCursor *pCsr, u32 offset, u32 amt, void *z){
danielk1977c9000e62009-07-08 13:55:28 +000010444 int rc;
dan7a2347e2016-01-07 16:43:54 +000010445 assert( cursorOwnsBtShared(pCsr) );
drhe5fe6902007-12-07 18:55:28 +000010446 assert( sqlite3_mutex_held(pCsr->pBtree->db->mutex) );
drh036dbec2014-03-11 23:40:44 +000010447 assert( pCsr->curFlags & BTCF_Incrblob );
danielk19773588ceb2008-06-10 17:30:26 +000010448
danielk1977c9000e62009-07-08 13:55:28 +000010449 rc = restoreCursorPosition(pCsr);
10450 if( rc!=SQLITE_OK ){
10451 return rc;
10452 }
danielk19773588ceb2008-06-10 17:30:26 +000010453 assert( pCsr->eState!=CURSOR_REQUIRESEEK );
10454 if( pCsr->eState!=CURSOR_VALID ){
10455 return SQLITE_ABORT;
danielk1977dcbb5d32007-05-04 18:36:44 +000010456 }
10457
dan227a1c42013-04-03 11:17:39 +000010458 /* Save the positions of all other cursors open on this table. This is
10459 ** required in case any of them are holding references to an xFetch
10460 ** version of the b-tree page modified by the accessPayload call below.
drh370c9f42013-04-03 20:04:04 +000010461 **
drh3f387402014-09-24 01:23:00 +000010462 ** Note that pCsr must be open on a INTKEY table and saveCursorPosition()
drh370c9f42013-04-03 20:04:04 +000010463 ** and hence saveAllCursors() cannot fail on a BTREE_INTKEY table, hence
10464 ** saveAllCursors can only return SQLITE_OK.
dan227a1c42013-04-03 11:17:39 +000010465 */
drh370c9f42013-04-03 20:04:04 +000010466 VVA_ONLY(rc =) saveAllCursors(pCsr->pBt, pCsr->pgnoRoot, pCsr);
10467 assert( rc==SQLITE_OK );
dan227a1c42013-04-03 11:17:39 +000010468
danielk1977c9000e62009-07-08 13:55:28 +000010469 /* Check some assumptions:
danielk1977dcbb5d32007-05-04 18:36:44 +000010470 ** (a) the cursor is open for writing,
danielk1977c9000e62009-07-08 13:55:28 +000010471 ** (b) there is a read/write transaction open,
10472 ** (c) the connection holds a write-lock on the table (if required),
10473 ** (d) there are no conflicting read-locks, and
10474 ** (e) the cursor points at a valid row of an intKey table.
danielk1977d04417962007-05-02 13:16:30 +000010475 */
drh036dbec2014-03-11 23:40:44 +000010476 if( (pCsr->curFlags & BTCF_WriteFlag)==0 ){
danielk19774f029602009-07-08 18:45:37 +000010477 return SQLITE_READONLY;
10478 }
drhc9166342012-01-05 23:32:06 +000010479 assert( (pCsr->pBt->btsFlags & BTS_READ_ONLY)==0
10480 && pCsr->pBt->inTransaction==TRANS_WRITE );
danielk197796d48e92009-06-29 06:00:37 +000010481 assert( hasSharedCacheTableLock(pCsr->pBtree, pCsr->pgnoRoot, 0, 2) );
10482 assert( !hasReadConflicts(pCsr->pBtree, pCsr->pgnoRoot) );
drh352a35a2017-08-15 03:46:47 +000010483 assert( pCsr->pPage->intKey );
danielk1977b4e9af92007-05-01 17:49:49 +000010484
drhfb192682009-07-11 18:26:28 +000010485 return accessPayload(pCsr, offset, amt, (unsigned char *)z, 1);
danielk1977b4e9af92007-05-01 17:49:49 +000010486}
danielk19772dec9702007-05-02 16:48:37 +000010487
10488/*
dan5a500af2014-03-11 20:33:04 +000010489** Mark this cursor as an incremental blob cursor.
danielk19772dec9702007-05-02 16:48:37 +000010490*/
dan5a500af2014-03-11 20:33:04 +000010491void sqlite3BtreeIncrblobCursor(BtCursor *pCur){
drh036dbec2014-03-11 23:40:44 +000010492 pCur->curFlags |= BTCF_Incrblob;
drh69180952015-06-25 13:03:10 +000010493 pCur->pBtree->hasIncrblobCur = 1;
danielk19772dec9702007-05-02 16:48:37 +000010494}
danielk1977b4e9af92007-05-01 17:49:49 +000010495#endif
dane04dc882010-04-20 18:53:15 +000010496
10497/*
10498** Set both the "read version" (single byte at byte offset 18) and
10499** "write version" (single byte at byte offset 19) fields in the database
10500** header to iVersion.
10501*/
10502int sqlite3BtreeSetVersion(Btree *pBtree, int iVersion){
10503 BtShared *pBt = pBtree->pBt;
10504 int rc; /* Return code */
10505
dane04dc882010-04-20 18:53:15 +000010506 assert( iVersion==1 || iVersion==2 );
10507
danb9780022010-04-21 18:37:57 +000010508 /* If setting the version fields to 1, do not automatically open the
10509 ** WAL connection, even if the version fields are currently set to 2.
10510 */
drhc9166342012-01-05 23:32:06 +000010511 pBt->btsFlags &= ~BTS_NO_WAL;
10512 if( iVersion==1 ) pBt->btsFlags |= BTS_NO_WAL;
danb9780022010-04-21 18:37:57 +000010513
drhbb2d9b12018-06-06 16:28:40 +000010514 rc = sqlite3BtreeBeginTrans(pBtree, 0, 0);
dane04dc882010-04-20 18:53:15 +000010515 if( rc==SQLITE_OK ){
10516 u8 *aData = pBt->pPage1->aData;
danb9780022010-04-21 18:37:57 +000010517 if( aData[18]!=(u8)iVersion || aData[19]!=(u8)iVersion ){
drhbb2d9b12018-06-06 16:28:40 +000010518 rc = sqlite3BtreeBeginTrans(pBtree, 2, 0);
danb9780022010-04-21 18:37:57 +000010519 if( rc==SQLITE_OK ){
10520 rc = sqlite3PagerWrite(pBt->pPage1->pDbPage);
10521 if( rc==SQLITE_OK ){
10522 aData[18] = (u8)iVersion;
10523 aData[19] = (u8)iVersion;
10524 }
10525 }
10526 }
dane04dc882010-04-20 18:53:15 +000010527 }
10528
drhc9166342012-01-05 23:32:06 +000010529 pBt->btsFlags &= ~BTS_NO_WAL;
dane04dc882010-04-20 18:53:15 +000010530 return rc;
10531}
dan428c2182012-08-06 18:50:11 +000010532
drhe0997b32015-03-20 14:57:50 +000010533/*
10534** Return true if the cursor has a hint specified. This routine is
10535** only used from within assert() statements
10536*/
10537int sqlite3BtreeCursorHasHint(BtCursor *pCsr, unsigned int mask){
10538 return (pCsr->hints & mask)!=0;
10539}
drhe0997b32015-03-20 14:57:50 +000010540
drh781597f2014-05-21 08:21:07 +000010541/*
10542** Return true if the given Btree is read-only.
10543*/
10544int sqlite3BtreeIsReadonly(Btree *p){
10545 return (p->pBt->btsFlags & BTS_READ_ONLY)!=0;
10546}
drhdef68892014-11-04 12:11:23 +000010547
10548/*
10549** Return the size of the header added to each page by this module.
10550*/
drh37c057b2014-12-30 00:57:29 +000010551int sqlite3HeaderSizeBtree(void){ return ROUND8(sizeof(MemPage)); }
dan20d876f2016-01-07 16:06:22 +000010552
drh5a1fb182016-01-08 19:34:39 +000010553#if !defined(SQLITE_OMIT_SHARED_CACHE)
dan20d876f2016-01-07 16:06:22 +000010554/*
10555** Return true if the Btree passed as the only argument is sharable.
10556*/
10557int sqlite3BtreeSharable(Btree *p){
10558 return p->sharable;
10559}
dan272989b2016-07-06 10:12:02 +000010560
10561/*
10562** Return the number of connections to the BtShared object accessed by
10563** the Btree handle passed as the only argument. For private caches
10564** this is always 1. For shared caches it may be 1 or greater.
10565*/
10566int sqlite3BtreeConnectionCount(Btree *p){
10567 testcase( p->sharable );
10568 return p->pBt->nRef;
10569}
drh5a1fb182016-01-08 19:34:39 +000010570#endif