xref: /sqlite-3.40.0/src/prepare.c (revision 79d5bc80)
1 /*
2 ** 2005 May 25
3 **
4 ** The author disclaims copyright to this source code.  In place of
5 ** a legal notice, here is a blessing:
6 **
7 **    May you do good and not evil.
8 **    May you find forgiveness for yourself and forgive others.
9 **    May you share freely, never taking more than you give.
10 **
11 *************************************************************************
12 ** This file contains the implementation of the sqlite3_prepare()
13 ** interface, and routines that contribute to loading the database schema
14 ** from disk.
15 */
16 #include "sqliteInt.h"
17 
18 /*
19 ** Fill the InitData structure with an error message that indicates
20 ** that the database is corrupt.
21 */
22 static void corruptSchema(
23   InitData *pData,     /* Initialization context */
24   const char *zObj,    /* Object being parsed at the point of error */
25   const char *zExtra   /* Error information */
26 ){
27   sqlite3 *db = pData->db;
28   if( db->mallocFailed ){
29     pData->rc = SQLITE_NOMEM_BKPT;
30   }else if( pData->pzErrMsg[0]!=0 ){
31     /* A error message has already been generated.  Do not overwrite it */
32   }else if( pData->mInitFlags & INITFLAG_AlterTable ){
33     *pData->pzErrMsg = sqlite3DbStrDup(db, zExtra);
34     pData->rc = SQLITE_ERROR;
35   }else if( db->flags & SQLITE_WriteSchema ){
36     pData->rc = SQLITE_CORRUPT_BKPT;
37   }else{
38     char *z;
39     if( zObj==0 ) zObj = "?";
40     z = sqlite3MPrintf(db, "malformed database schema (%s)", zObj);
41     if( zExtra && zExtra[0] ) z = sqlite3MPrintf(db, "%z - %s", z, zExtra);
42     *pData->pzErrMsg = z;
43     pData->rc = SQLITE_CORRUPT_BKPT;
44   }
45 }
46 
47 /*
48 ** Check to see if any sibling index (another index on the same table)
49 ** of pIndex has the same root page number, and if it does, return true.
50 ** This would indicate a corrupt schema.
51 */
52 int sqlite3IndexHasDuplicateRootPage(Index *pIndex){
53   Index *p;
54   for(p=pIndex->pTable->pIndex; p; p=p->pNext){
55     if( p->tnum==pIndex->tnum && p!=pIndex ) return 1;
56   }
57   return 0;
58 }
59 
60 /* forward declaration */
61 static int sqlite3Prepare(
62   sqlite3 *db,              /* Database handle. */
63   const char *zSql,         /* UTF-8 encoded SQL statement. */
64   int nBytes,               /* Length of zSql in bytes. */
65   u32 prepFlags,            /* Zero or more SQLITE_PREPARE_* flags */
66   Vdbe *pReprepare,         /* VM being reprepared */
67   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
68   const char **pzTail       /* OUT: End of parsed string */
69 );
70 
71 
72 /*
73 ** This is the callback routine for the code that initializes the
74 ** database.  See sqlite3Init() below for additional information.
75 ** This routine is also called from the OP_ParseSchema opcode of the VDBE.
76 **
77 ** Each callback contains the following information:
78 **
79 **     argv[0] = type of object: "table", "index", "trigger", or "view".
80 **     argv[1] = name of thing being created
81 **     argv[2] = associated table if an index or trigger
82 **     argv[3] = root page number for table or index. 0 for trigger or view.
83 **     argv[4] = SQL text for the CREATE statement.
84 **
85 */
86 int sqlite3InitCallback(void *pInit, int argc, char **argv, char **NotUsed){
87   InitData *pData = (InitData*)pInit;
88   sqlite3 *db = pData->db;
89   int iDb = pData->iDb;
90 
91   assert( argc==5 );
92   UNUSED_PARAMETER2(NotUsed, argc);
93   assert( sqlite3_mutex_held(db->mutex) );
94   DbClearProperty(db, iDb, DB_Empty);
95   pData->nInitRow++;
96   if( db->mallocFailed ){
97     corruptSchema(pData, argv[1], 0);
98     return 1;
99   }
100 
101   assert( iDb>=0 && iDb<db->nDb );
102   if( argv==0 ) return 0;   /* Might happen if EMPTY_RESULT_CALLBACKS are on */
103   if( argv[3]==0 ){
104     corruptSchema(pData, argv[1], 0);
105   }else if( sqlite3_strnicmp(argv[4],"create ",7)==0 ){
106     /* Call the parser to process a CREATE TABLE, INDEX or VIEW.
107     ** But because db->init.busy is set to 1, no VDBE code is generated
108     ** or executed.  All the parser does is build the internal data
109     ** structures that describe the table, index, or view.
110     */
111     int rc;
112     u8 saved_iDb = db->init.iDb;
113     sqlite3_stmt *pStmt;
114     TESTONLY(int rcp);            /* Return code from sqlite3_prepare() */
115 
116     assert( db->init.busy );
117     db->init.iDb = iDb;
118     db->init.newTnum = sqlite3Atoi(argv[3]);
119     db->init.orphanTrigger = 0;
120     db->init.azInit = argv;
121     pStmt = 0;
122     TESTONLY(rcp = ) sqlite3Prepare(db, argv[4], -1, 0, 0, &pStmt, 0);
123     rc = db->errCode;
124     assert( (rc&0xFF)==(rcp&0xFF) );
125     db->init.iDb = saved_iDb;
126     /* assert( saved_iDb==0 || (db->mDbFlags & DBFLAG_Vacuum)!=0 ); */
127     if( SQLITE_OK!=rc ){
128       if( db->init.orphanTrigger ){
129         assert( iDb==1 );
130       }else{
131         if( rc > pData->rc ) pData->rc = rc;
132         if( rc==SQLITE_NOMEM ){
133           sqlite3OomFault(db);
134         }else if( rc!=SQLITE_INTERRUPT && (rc&0xFF)!=SQLITE_LOCKED ){
135           corruptSchema(pData, argv[1], sqlite3_errmsg(db));
136         }
137       }
138     }
139     sqlite3_finalize(pStmt);
140   }else if( argv[1]==0 || (argv[4]!=0 && argv[4][0]!=0) ){
141     corruptSchema(pData, argv[1], 0);
142   }else{
143     /* If the SQL column is blank it means this is an index that
144     ** was created to be the PRIMARY KEY or to fulfill a UNIQUE
145     ** constraint for a CREATE TABLE.  The index should have already
146     ** been created when we processed the CREATE TABLE.  All we have
147     ** to do here is record the root page number for that index.
148     */
149     Index *pIndex;
150     pIndex = sqlite3FindIndex(db, argv[1], db->aDb[iDb].zDbSName);
151     if( pIndex==0
152      || sqlite3GetInt32(argv[3],&pIndex->tnum)==0
153      || pIndex->tnum<2
154      || sqlite3IndexHasDuplicateRootPage(pIndex)
155     ){
156       corruptSchema(pData, argv[1], pIndex?"invalid rootpage":"orphan index");
157     }
158   }
159   return 0;
160 }
161 
162 /*
163 ** Attempt to read the database schema and initialize internal
164 ** data structures for a single database file.  The index of the
165 ** database file is given by iDb.  iDb==0 is used for the main
166 ** database.  iDb==1 should never be used.  iDb>=2 is used for
167 ** auxiliary databases.  Return one of the SQLITE_ error codes to
168 ** indicate success or failure.
169 */
170 int sqlite3InitOne(sqlite3 *db, int iDb, char **pzErrMsg, u32 mFlags){
171   int rc;
172   int i;
173 #ifndef SQLITE_OMIT_DEPRECATED
174   int size;
175 #endif
176   Db *pDb;
177   char const *azArg[6];
178   int meta[5];
179   InitData initData;
180   const char *zMasterName;
181   int openedTransaction = 0;
182 
183   assert( (db->mDbFlags & DBFLAG_SchemaKnownOk)==0 );
184   assert( iDb>=0 && iDb<db->nDb );
185   assert( db->aDb[iDb].pSchema );
186   assert( sqlite3_mutex_held(db->mutex) );
187   assert( iDb==1 || sqlite3BtreeHoldsMutex(db->aDb[iDb].pBt) );
188 
189   db->init.busy = 1;
190 
191   /* Construct the in-memory representation schema tables (sqlite_master or
192   ** sqlite_temp_master) by invoking the parser directly.  The appropriate
193   ** table name will be inserted automatically by the parser so we can just
194   ** use the abbreviation "x" here.  The parser will also automatically tag
195   ** the schema table as read-only. */
196   azArg[0] = "table";
197   azArg[1] = zMasterName = SCHEMA_TABLE(iDb);
198   azArg[2] = azArg[1];
199   azArg[3] = "1";
200   azArg[4] = "CREATE TABLE x(type text,name text,tbl_name text,"
201                             "rootpage int,sql text)";
202   azArg[5] = 0;
203   initData.db = db;
204   initData.iDb = iDb;
205   initData.rc = SQLITE_OK;
206   initData.pzErrMsg = pzErrMsg;
207   initData.mInitFlags = mFlags;
208   initData.nInitRow = 0;
209   sqlite3InitCallback(&initData, 5, (char **)azArg, 0);
210   if( initData.rc ){
211     rc = initData.rc;
212     goto error_out;
213   }
214 
215   /* Create a cursor to hold the database open
216   */
217   pDb = &db->aDb[iDb];
218   if( pDb->pBt==0 ){
219     assert( iDb==1 );
220     DbSetProperty(db, 1, DB_SchemaLoaded);
221     rc = SQLITE_OK;
222     goto error_out;
223   }
224 
225   /* If there is not already a read-only (or read-write) transaction opened
226   ** on the b-tree database, open one now. If a transaction is opened, it
227   ** will be closed before this function returns.  */
228   sqlite3BtreeEnter(pDb->pBt);
229   if( !sqlite3BtreeIsInReadTrans(pDb->pBt) ){
230     rc = sqlite3BtreeBeginTrans(pDb->pBt, 0, 0);
231     if( rc!=SQLITE_OK ){
232       sqlite3SetString(pzErrMsg, db, sqlite3ErrStr(rc));
233       goto initone_error_out;
234     }
235     openedTransaction = 1;
236   }
237 
238   /* Get the database meta information.
239   **
240   ** Meta values are as follows:
241   **    meta[0]   Schema cookie.  Changes with each schema change.
242   **    meta[1]   File format of schema layer.
243   **    meta[2]   Size of the page cache.
244   **    meta[3]   Largest rootpage (auto/incr_vacuum mode)
245   **    meta[4]   Db text encoding. 1:UTF-8 2:UTF-16LE 3:UTF-16BE
246   **    meta[5]   User version
247   **    meta[6]   Incremental vacuum mode
248   **    meta[7]   unused
249   **    meta[8]   unused
250   **    meta[9]   unused
251   **
252   ** Note: The #defined SQLITE_UTF* symbols in sqliteInt.h correspond to
253   ** the possible values of meta[4].
254   */
255   for(i=0; i<ArraySize(meta); i++){
256     sqlite3BtreeGetMeta(pDb->pBt, i+1, (u32 *)&meta[i]);
257   }
258   if( (db->flags & SQLITE_ResetDatabase)!=0 ){
259     memset(meta, 0, sizeof(meta));
260   }
261   pDb->pSchema->schema_cookie = meta[BTREE_SCHEMA_VERSION-1];
262 
263   /* If opening a non-empty database, check the text encoding. For the
264   ** main database, set sqlite3.enc to the encoding of the main database.
265   ** For an attached db, it is an error if the encoding is not the same
266   ** as sqlite3.enc.
267   */
268   if( meta[BTREE_TEXT_ENCODING-1] ){  /* text encoding */
269     if( iDb==0 ){
270 #ifndef SQLITE_OMIT_UTF16
271       u8 encoding;
272       /* If opening the main database, set ENC(db). */
273       encoding = (u8)meta[BTREE_TEXT_ENCODING-1] & 3;
274       if( encoding==0 ) encoding = SQLITE_UTF8;
275       ENC(db) = encoding;
276 #else
277       ENC(db) = SQLITE_UTF8;
278 #endif
279     }else{
280       /* If opening an attached database, the encoding much match ENC(db) */
281       if( meta[BTREE_TEXT_ENCODING-1]!=ENC(db) ){
282         sqlite3SetString(pzErrMsg, db, "attached databases must use the same"
283             " text encoding as main database");
284         rc = SQLITE_ERROR;
285         goto initone_error_out;
286       }
287     }
288   }else{
289     DbSetProperty(db, iDb, DB_Empty);
290   }
291   pDb->pSchema->enc = ENC(db);
292 
293   if( pDb->pSchema->cache_size==0 ){
294 #ifndef SQLITE_OMIT_DEPRECATED
295     size = sqlite3AbsInt32(meta[BTREE_DEFAULT_CACHE_SIZE-1]);
296     if( size==0 ){ size = SQLITE_DEFAULT_CACHE_SIZE; }
297     pDb->pSchema->cache_size = size;
298 #else
299     pDb->pSchema->cache_size = SQLITE_DEFAULT_CACHE_SIZE;
300 #endif
301     sqlite3BtreeSetCacheSize(pDb->pBt, pDb->pSchema->cache_size);
302   }
303 
304   /*
305   ** file_format==1    Version 3.0.0.
306   ** file_format==2    Version 3.1.3.  // ALTER TABLE ADD COLUMN
307   ** file_format==3    Version 3.1.4.  // ditto but with non-NULL defaults
308   ** file_format==4    Version 3.3.0.  // DESC indices.  Boolean constants
309   */
310   pDb->pSchema->file_format = (u8)meta[BTREE_FILE_FORMAT-1];
311   if( pDb->pSchema->file_format==0 ){
312     pDb->pSchema->file_format = 1;
313   }
314   if( pDb->pSchema->file_format>SQLITE_MAX_FILE_FORMAT ){
315     sqlite3SetString(pzErrMsg, db, "unsupported file format");
316     rc = SQLITE_ERROR;
317     goto initone_error_out;
318   }
319 
320   /* Ticket #2804:  When we open a database in the newer file format,
321   ** clear the legacy_file_format pragma flag so that a VACUUM will
322   ** not downgrade the database and thus invalidate any descending
323   ** indices that the user might have created.
324   */
325   if( iDb==0 && meta[BTREE_FILE_FORMAT-1]>=4 ){
326     db->flags &= ~(u64)SQLITE_LegacyFileFmt;
327   }
328 
329   /* Read the schema information out of the schema tables
330   */
331   assert( db->init.busy );
332   {
333     char *zSql;
334     zSql = sqlite3MPrintf(db,
335         "SELECT*FROM\"%w\".%s ORDER BY rowid",
336         db->aDb[iDb].zDbSName, zMasterName);
337 #ifndef SQLITE_OMIT_AUTHORIZATION
338     {
339       sqlite3_xauth xAuth;
340       xAuth = db->xAuth;
341       db->xAuth = 0;
342 #endif
343       rc = sqlite3_exec(db, zSql, sqlite3InitCallback, &initData, 0);
344 #ifndef SQLITE_OMIT_AUTHORIZATION
345       db->xAuth = xAuth;
346     }
347 #endif
348     if( rc==SQLITE_OK ) rc = initData.rc;
349     sqlite3DbFree(db, zSql);
350 #ifndef SQLITE_OMIT_ANALYZE
351     if( rc==SQLITE_OK ){
352       sqlite3AnalysisLoad(db, iDb);
353     }
354 #endif
355   }
356   if( db->mallocFailed ){
357     rc = SQLITE_NOMEM_BKPT;
358     sqlite3ResetAllSchemasOfConnection(db);
359   }
360   if( rc==SQLITE_OK || (db->flags&SQLITE_NoSchemaError)){
361     /* Black magic: If the SQLITE_NoSchemaError flag is set, then consider
362     ** the schema loaded, even if errors occurred. In this situation the
363     ** current sqlite3_prepare() operation will fail, but the following one
364     ** will attempt to compile the supplied statement against whatever subset
365     ** of the schema was loaded before the error occurred. The primary
366     ** purpose of this is to allow access to the sqlite_master table
367     ** even when its contents have been corrupted.
368     */
369     DbSetProperty(db, iDb, DB_SchemaLoaded);
370     rc = SQLITE_OK;
371   }
372 
373   /* Jump here for an error that occurs after successfully allocating
374   ** curMain and calling sqlite3BtreeEnter(). For an error that occurs
375   ** before that point, jump to error_out.
376   */
377 initone_error_out:
378   if( openedTransaction ){
379     sqlite3BtreeCommit(pDb->pBt);
380   }
381   sqlite3BtreeLeave(pDb->pBt);
382 
383 error_out:
384   if( rc ){
385     if( rc==SQLITE_NOMEM || rc==SQLITE_IOERR_NOMEM ){
386       sqlite3OomFault(db);
387     }
388     sqlite3ResetOneSchema(db, iDb);
389   }
390   db->init.busy = 0;
391   return rc;
392 }
393 
394 /*
395 ** Initialize all database files - the main database file, the file
396 ** used to store temporary tables, and any additional database files
397 ** created using ATTACH statements.  Return a success code.  If an
398 ** error occurs, write an error message into *pzErrMsg.
399 **
400 ** After a database is initialized, the DB_SchemaLoaded bit is set
401 ** bit is set in the flags field of the Db structure. If the database
402 ** file was of zero-length, then the DB_Empty flag is also set.
403 */
404 int sqlite3Init(sqlite3 *db, char **pzErrMsg){
405   int i, rc;
406   int commit_internal = !(db->mDbFlags&DBFLAG_SchemaChange);
407 
408   assert( sqlite3_mutex_held(db->mutex) );
409   assert( sqlite3BtreeHoldsMutex(db->aDb[0].pBt) );
410   assert( db->init.busy==0 );
411   ENC(db) = SCHEMA_ENC(db);
412   assert( db->nDb>0 );
413   /* Do the main schema first */
414   if( !DbHasProperty(db, 0, DB_SchemaLoaded) ){
415     rc = sqlite3InitOne(db, 0, pzErrMsg, 0);
416     if( rc ) return rc;
417   }
418   /* All other schemas after the main schema. The "temp" schema must be last */
419   for(i=db->nDb-1; i>0; i--){
420     assert( i==1 || sqlite3BtreeHoldsMutex(db->aDb[i].pBt) );
421     if( !DbHasProperty(db, i, DB_SchemaLoaded) ){
422       rc = sqlite3InitOne(db, i, pzErrMsg, 0);
423       if( rc ) return rc;
424     }
425   }
426   if( commit_internal ){
427     sqlite3CommitInternalChanges(db);
428   }
429   return SQLITE_OK;
430 }
431 
432 /*
433 ** This routine is a no-op if the database schema is already initialized.
434 ** Otherwise, the schema is loaded. An error code is returned.
435 */
436 int sqlite3ReadSchema(Parse *pParse){
437   int rc = SQLITE_OK;
438   sqlite3 *db = pParse->db;
439   assert( sqlite3_mutex_held(db->mutex) );
440   if( !db->init.busy ){
441     rc = sqlite3Init(db, &pParse->zErrMsg);
442     if( rc!=SQLITE_OK ){
443       pParse->rc = rc;
444       pParse->nErr++;
445     }else if( db->noSharedCache ){
446       db->mDbFlags |= DBFLAG_SchemaKnownOk;
447     }
448   }
449   return rc;
450 }
451 
452 
453 /*
454 ** Check schema cookies in all databases.  If any cookie is out
455 ** of date set pParse->rc to SQLITE_SCHEMA.  If all schema cookies
456 ** make no changes to pParse->rc.
457 */
458 static void schemaIsValid(Parse *pParse){
459   sqlite3 *db = pParse->db;
460   int iDb;
461   int rc;
462   int cookie;
463 
464   assert( pParse->checkSchema );
465   assert( sqlite3_mutex_held(db->mutex) );
466   for(iDb=0; iDb<db->nDb; iDb++){
467     int openedTransaction = 0;         /* True if a transaction is opened */
468     Btree *pBt = db->aDb[iDb].pBt;     /* Btree database to read cookie from */
469     if( pBt==0 ) continue;
470 
471     /* If there is not already a read-only (or read-write) transaction opened
472     ** on the b-tree database, open one now. If a transaction is opened, it
473     ** will be closed immediately after reading the meta-value. */
474     if( !sqlite3BtreeIsInReadTrans(pBt) ){
475       rc = sqlite3BtreeBeginTrans(pBt, 0, 0);
476       if( rc==SQLITE_NOMEM || rc==SQLITE_IOERR_NOMEM ){
477         sqlite3OomFault(db);
478       }
479       if( rc!=SQLITE_OK ) return;
480       openedTransaction = 1;
481     }
482 
483     /* Read the schema cookie from the database. If it does not match the
484     ** value stored as part of the in-memory schema representation,
485     ** set Parse.rc to SQLITE_SCHEMA. */
486     sqlite3BtreeGetMeta(pBt, BTREE_SCHEMA_VERSION, (u32 *)&cookie);
487     assert( sqlite3SchemaMutexHeld(db, iDb, 0) );
488     if( cookie!=db->aDb[iDb].pSchema->schema_cookie ){
489       sqlite3ResetOneSchema(db, iDb);
490       pParse->rc = SQLITE_SCHEMA;
491     }
492 
493     /* Close the transaction, if one was opened. */
494     if( openedTransaction ){
495       sqlite3BtreeCommit(pBt);
496     }
497   }
498 }
499 
500 /*
501 ** Convert a schema pointer into the iDb index that indicates
502 ** which database file in db->aDb[] the schema refers to.
503 **
504 ** If the same database is attached more than once, the first
505 ** attached database is returned.
506 */
507 int sqlite3SchemaToIndex(sqlite3 *db, Schema *pSchema){
508   int i = -1000000;
509 
510   /* If pSchema is NULL, then return -1000000. This happens when code in
511   ** expr.c is trying to resolve a reference to a transient table (i.e. one
512   ** created by a sub-select). In this case the return value of this
513   ** function should never be used.
514   **
515   ** We return -1000000 instead of the more usual -1 simply because using
516   ** -1000000 as the incorrect index into db->aDb[] is much
517   ** more likely to cause a segfault than -1 (of course there are assert()
518   ** statements too, but it never hurts to play the odds).
519   */
520   assert( sqlite3_mutex_held(db->mutex) );
521   if( pSchema ){
522     for(i=0; 1; i++){
523       assert( i<db->nDb );
524       if( db->aDb[i].pSchema==pSchema ){
525         break;
526       }
527     }
528     assert( i>=0 && i<db->nDb );
529   }
530   return i;
531 }
532 
533 /*
534 ** Free all memory allocations in the pParse object
535 */
536 void sqlite3ParserReset(Parse *pParse){
537   sqlite3 *db = pParse->db;
538   sqlite3DbFree(db, pParse->aLabel);
539   sqlite3ExprListDelete(db, pParse->pConstExpr);
540   if( db ){
541     assert( db->lookaside.bDisable >= pParse->disableLookaside );
542     db->lookaside.bDisable -= pParse->disableLookaside;
543     db->lookaside.sz = db->lookaside.bDisable ? 0 : db->lookaside.szTrue;
544   }
545   pParse->disableLookaside = 0;
546 }
547 
548 /*
549 ** Compile the UTF-8 encoded SQL statement zSql into a statement handle.
550 */
551 static int sqlite3Prepare(
552   sqlite3 *db,              /* Database handle. */
553   const char *zSql,         /* UTF-8 encoded SQL statement. */
554   int nBytes,               /* Length of zSql in bytes. */
555   u32 prepFlags,            /* Zero or more SQLITE_PREPARE_* flags */
556   Vdbe *pReprepare,         /* VM being reprepared */
557   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
558   const char **pzTail       /* OUT: End of parsed string */
559 ){
560   char *zErrMsg = 0;        /* Error message */
561   int rc = SQLITE_OK;       /* Result code */
562   int i;                    /* Loop counter */
563   Parse sParse;             /* Parsing context */
564 
565   memset(&sParse, 0, PARSE_HDR_SZ);
566   memset(PARSE_TAIL(&sParse), 0, PARSE_TAIL_SZ);
567   sParse.pReprepare = pReprepare;
568   assert( ppStmt && *ppStmt==0 );
569   /* assert( !db->mallocFailed ); // not true with SQLITE_USE_ALLOCA */
570   assert( sqlite3_mutex_held(db->mutex) );
571 
572   /* For a long-term use prepared statement avoid the use of
573   ** lookaside memory.
574   */
575   if( prepFlags & SQLITE_PREPARE_PERSISTENT ){
576     sParse.disableLookaside++;
577     DisableLookaside;
578   }
579   sParse.disableVtab = (prepFlags & SQLITE_PREPARE_NO_VTAB)!=0;
580 
581   /* Check to verify that it is possible to get a read lock on all
582   ** database schemas.  The inability to get a read lock indicates that
583   ** some other database connection is holding a write-lock, which in
584   ** turn means that the other connection has made uncommitted changes
585   ** to the schema.
586   **
587   ** Were we to proceed and prepare the statement against the uncommitted
588   ** schema changes and if those schema changes are subsequently rolled
589   ** back and different changes are made in their place, then when this
590   ** prepared statement goes to run the schema cookie would fail to detect
591   ** the schema change.  Disaster would follow.
592   **
593   ** This thread is currently holding mutexes on all Btrees (because
594   ** of the sqlite3BtreeEnterAll() in sqlite3LockAndPrepare()) so it
595   ** is not possible for another thread to start a new schema change
596   ** while this routine is running.  Hence, we do not need to hold
597   ** locks on the schema, we just need to make sure nobody else is
598   ** holding them.
599   **
600   ** Note that setting READ_UNCOMMITTED overrides most lock detection,
601   ** but it does *not* override schema lock detection, so this all still
602   ** works even if READ_UNCOMMITTED is set.
603   */
604   if( !db->noSharedCache ){
605     for(i=0; i<db->nDb; i++) {
606       Btree *pBt = db->aDb[i].pBt;
607       if( pBt ){
608         assert( sqlite3BtreeHoldsMutex(pBt) );
609         rc = sqlite3BtreeSchemaLocked(pBt);
610         if( rc ){
611           const char *zDb = db->aDb[i].zDbSName;
612           sqlite3ErrorWithMsg(db, rc, "database schema is locked: %s", zDb);
613           testcase( db->flags & SQLITE_ReadUncommit );
614           goto end_prepare;
615         }
616       }
617     }
618   }
619 
620   sqlite3VtabUnlockList(db);
621 
622   sParse.db = db;
623   if( nBytes>=0 && (nBytes==0 || zSql[nBytes-1]!=0) ){
624     char *zSqlCopy;
625     int mxLen = db->aLimit[SQLITE_LIMIT_SQL_LENGTH];
626     testcase( nBytes==mxLen );
627     testcase( nBytes==mxLen+1 );
628     if( nBytes>mxLen ){
629       sqlite3ErrorWithMsg(db, SQLITE_TOOBIG, "statement too long");
630       rc = sqlite3ApiExit(db, SQLITE_TOOBIG);
631       goto end_prepare;
632     }
633     zSqlCopy = sqlite3DbStrNDup(db, zSql, nBytes);
634     if( zSqlCopy ){
635       sqlite3RunParser(&sParse, zSqlCopy, &zErrMsg);
636       sParse.zTail = &zSql[sParse.zTail-zSqlCopy];
637       sqlite3DbFree(db, zSqlCopy);
638     }else{
639       sParse.zTail = &zSql[nBytes];
640     }
641   }else{
642     sqlite3RunParser(&sParse, zSql, &zErrMsg);
643   }
644   assert( 0==sParse.nQueryLoop );
645 
646   if( sParse.rc==SQLITE_DONE ){
647     sParse.rc = SQLITE_OK;
648   }
649   if( sParse.checkSchema ){
650     schemaIsValid(&sParse);
651   }
652   if( pzTail ){
653     *pzTail = sParse.zTail;
654   }
655 
656   if( db->init.busy==0 ){
657     sqlite3VdbeSetSql(sParse.pVdbe, zSql, (int)(sParse.zTail-zSql), prepFlags);
658   }
659   if( db->mallocFailed ){
660     sParse.rc = SQLITE_NOMEM_BKPT;
661   }
662   rc = sParse.rc;
663   if( rc!=SQLITE_OK ){
664     if( sParse.pVdbe ) sqlite3VdbeFinalize(sParse.pVdbe);
665     assert(!(*ppStmt));
666   }else{
667     *ppStmt = (sqlite3_stmt*)sParse.pVdbe;
668   }
669 
670   if( zErrMsg ){
671     sqlite3ErrorWithMsg(db, rc, "%s", zErrMsg);
672     sqlite3DbFree(db, zErrMsg);
673   }else{
674     sqlite3Error(db, rc);
675   }
676 
677   /* Delete any TriggerPrg structures allocated while parsing this statement. */
678   while( sParse.pTriggerPrg ){
679     TriggerPrg *pT = sParse.pTriggerPrg;
680     sParse.pTriggerPrg = pT->pNext;
681     sqlite3DbFree(db, pT);
682   }
683 
684 end_prepare:
685 
686   sqlite3ParserReset(&sParse);
687   return rc;
688 }
689 static int sqlite3LockAndPrepare(
690   sqlite3 *db,              /* Database handle. */
691   const char *zSql,         /* UTF-8 encoded SQL statement. */
692   int nBytes,               /* Length of zSql in bytes. */
693   u32 prepFlags,            /* Zero or more SQLITE_PREPARE_* flags */
694   Vdbe *pOld,               /* VM being reprepared */
695   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
696   const char **pzTail       /* OUT: End of parsed string */
697 ){
698   int rc;
699   int cnt = 0;
700 
701 #ifdef SQLITE_ENABLE_API_ARMOR
702   if( ppStmt==0 ) return SQLITE_MISUSE_BKPT;
703 #endif
704   *ppStmt = 0;
705   if( !sqlite3SafetyCheckOk(db)||zSql==0 ){
706     return SQLITE_MISUSE_BKPT;
707   }
708   sqlite3_mutex_enter(db->mutex);
709   sqlite3BtreeEnterAll(db);
710   do{
711     /* Make multiple attempts to compile the SQL, until it either succeeds
712     ** or encounters a permanent error.  A schema problem after one schema
713     ** reset is considered a permanent error. */
714     rc = sqlite3Prepare(db, zSql, nBytes, prepFlags, pOld, ppStmt, pzTail);
715     assert( rc==SQLITE_OK || *ppStmt==0 );
716   }while( rc==SQLITE_ERROR_RETRY
717        || (rc==SQLITE_SCHEMA && (sqlite3ResetOneSchema(db,-1), cnt++)==0) );
718   sqlite3BtreeLeaveAll(db);
719   rc = sqlite3ApiExit(db, rc);
720   assert( (rc&db->errMask)==rc );
721   sqlite3_mutex_leave(db->mutex);
722   return rc;
723 }
724 
725 
726 /*
727 ** Rerun the compilation of a statement after a schema change.
728 **
729 ** If the statement is successfully recompiled, return SQLITE_OK. Otherwise,
730 ** if the statement cannot be recompiled because another connection has
731 ** locked the sqlite3_master table, return SQLITE_LOCKED. If any other error
732 ** occurs, return SQLITE_SCHEMA.
733 */
734 int sqlite3Reprepare(Vdbe *p){
735   int rc;
736   sqlite3_stmt *pNew;
737   const char *zSql;
738   sqlite3 *db;
739   u8 prepFlags;
740 
741   assert( sqlite3_mutex_held(sqlite3VdbeDb(p)->mutex) );
742   zSql = sqlite3_sql((sqlite3_stmt *)p);
743   assert( zSql!=0 );  /* Reprepare only called for prepare_v2() statements */
744   db = sqlite3VdbeDb(p);
745   assert( sqlite3_mutex_held(db->mutex) );
746   prepFlags = sqlite3VdbePrepareFlags(p);
747   rc = sqlite3LockAndPrepare(db, zSql, -1, prepFlags, p, &pNew, 0);
748   if( rc ){
749     if( rc==SQLITE_NOMEM ){
750       sqlite3OomFault(db);
751     }
752     assert( pNew==0 );
753     return rc;
754   }else{
755     assert( pNew!=0 );
756   }
757   sqlite3VdbeSwap((Vdbe*)pNew, p);
758   sqlite3TransferBindings(pNew, (sqlite3_stmt*)p);
759   sqlite3VdbeResetStepResult((Vdbe*)pNew);
760   sqlite3VdbeFinalize((Vdbe*)pNew);
761   return SQLITE_OK;
762 }
763 
764 
765 /*
766 ** Two versions of the official API.  Legacy and new use.  In the legacy
767 ** version, the original SQL text is not saved in the prepared statement
768 ** and so if a schema change occurs, SQLITE_SCHEMA is returned by
769 ** sqlite3_step().  In the new version, the original SQL text is retained
770 ** and the statement is automatically recompiled if an schema change
771 ** occurs.
772 */
773 int sqlite3_prepare(
774   sqlite3 *db,              /* Database handle. */
775   const char *zSql,         /* UTF-8 encoded SQL statement. */
776   int nBytes,               /* Length of zSql in bytes. */
777   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
778   const char **pzTail       /* OUT: End of parsed string */
779 ){
780   int rc;
781   rc = sqlite3LockAndPrepare(db,zSql,nBytes,0,0,ppStmt,pzTail);
782   assert( rc==SQLITE_OK || ppStmt==0 || *ppStmt==0 );  /* VERIFY: F13021 */
783   return rc;
784 }
785 int sqlite3_prepare_v2(
786   sqlite3 *db,              /* Database handle. */
787   const char *zSql,         /* UTF-8 encoded SQL statement. */
788   int nBytes,               /* Length of zSql in bytes. */
789   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
790   const char **pzTail       /* OUT: End of parsed string */
791 ){
792   int rc;
793   /* EVIDENCE-OF: R-37923-12173 The sqlite3_prepare_v2() interface works
794   ** exactly the same as sqlite3_prepare_v3() with a zero prepFlags
795   ** parameter.
796   **
797   ** Proof in that the 5th parameter to sqlite3LockAndPrepare is 0 */
798   rc = sqlite3LockAndPrepare(db,zSql,nBytes,SQLITE_PREPARE_SAVESQL,0,
799                              ppStmt,pzTail);
800   assert( rc==SQLITE_OK || ppStmt==0 || *ppStmt==0 );
801   return rc;
802 }
803 int sqlite3_prepare_v3(
804   sqlite3 *db,              /* Database handle. */
805   const char *zSql,         /* UTF-8 encoded SQL statement. */
806   int nBytes,               /* Length of zSql in bytes. */
807   unsigned int prepFlags,   /* Zero or more SQLITE_PREPARE_* flags */
808   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
809   const char **pzTail       /* OUT: End of parsed string */
810 ){
811   int rc;
812   /* EVIDENCE-OF: R-56861-42673 sqlite3_prepare_v3() differs from
813   ** sqlite3_prepare_v2() only in having the extra prepFlags parameter,
814   ** which is a bit array consisting of zero or more of the
815   ** SQLITE_PREPARE_* flags.
816   **
817   ** Proof by comparison to the implementation of sqlite3_prepare_v2()
818   ** directly above. */
819   rc = sqlite3LockAndPrepare(db,zSql,nBytes,
820                  SQLITE_PREPARE_SAVESQL|(prepFlags&SQLITE_PREPARE_MASK),
821                  0,ppStmt,pzTail);
822   assert( rc==SQLITE_OK || ppStmt==0 || *ppStmt==0 );
823   return rc;
824 }
825 
826 
827 #ifndef SQLITE_OMIT_UTF16
828 /*
829 ** Compile the UTF-16 encoded SQL statement zSql into a statement handle.
830 */
831 static int sqlite3Prepare16(
832   sqlite3 *db,              /* Database handle. */
833   const void *zSql,         /* UTF-16 encoded SQL statement. */
834   int nBytes,               /* Length of zSql in bytes. */
835   u32 prepFlags,            /* Zero or more SQLITE_PREPARE_* flags */
836   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
837   const void **pzTail       /* OUT: End of parsed string */
838 ){
839   /* This function currently works by first transforming the UTF-16
840   ** encoded string to UTF-8, then invoking sqlite3_prepare(). The
841   ** tricky bit is figuring out the pointer to return in *pzTail.
842   */
843   char *zSql8;
844   const char *zTail8 = 0;
845   int rc = SQLITE_OK;
846 
847 #ifdef SQLITE_ENABLE_API_ARMOR
848   if( ppStmt==0 ) return SQLITE_MISUSE_BKPT;
849 #endif
850   *ppStmt = 0;
851   if( !sqlite3SafetyCheckOk(db)||zSql==0 ){
852     return SQLITE_MISUSE_BKPT;
853   }
854   if( nBytes>=0 ){
855     int sz;
856     const char *z = (const char*)zSql;
857     for(sz=0; sz<nBytes && (z[sz]!=0 || z[sz+1]!=0); sz += 2){}
858     nBytes = sz;
859   }
860   sqlite3_mutex_enter(db->mutex);
861   zSql8 = sqlite3Utf16to8(db, zSql, nBytes, SQLITE_UTF16NATIVE);
862   if( zSql8 ){
863     rc = sqlite3LockAndPrepare(db, zSql8, -1, prepFlags, 0, ppStmt, &zTail8);
864   }
865 
866   if( zTail8 && pzTail ){
867     /* If sqlite3_prepare returns a tail pointer, we calculate the
868     ** equivalent pointer into the UTF-16 string by counting the unicode
869     ** characters between zSql8 and zTail8, and then returning a pointer
870     ** the same number of characters into the UTF-16 string.
871     */
872     int chars_parsed = sqlite3Utf8CharLen(zSql8, (int)(zTail8-zSql8));
873     *pzTail = (u8 *)zSql + sqlite3Utf16ByteLen(zSql, chars_parsed);
874   }
875   sqlite3DbFree(db, zSql8);
876   rc = sqlite3ApiExit(db, rc);
877   sqlite3_mutex_leave(db->mutex);
878   return rc;
879 }
880 
881 /*
882 ** Two versions of the official API.  Legacy and new use.  In the legacy
883 ** version, the original SQL text is not saved in the prepared statement
884 ** and so if a schema change occurs, SQLITE_SCHEMA is returned by
885 ** sqlite3_step().  In the new version, the original SQL text is retained
886 ** and the statement is automatically recompiled if an schema change
887 ** occurs.
888 */
889 int sqlite3_prepare16(
890   sqlite3 *db,              /* Database handle. */
891   const void *zSql,         /* UTF-16 encoded SQL statement. */
892   int nBytes,               /* Length of zSql in bytes. */
893   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
894   const void **pzTail       /* OUT: End of parsed string */
895 ){
896   int rc;
897   rc = sqlite3Prepare16(db,zSql,nBytes,0,ppStmt,pzTail);
898   assert( rc==SQLITE_OK || ppStmt==0 || *ppStmt==0 );  /* VERIFY: F13021 */
899   return rc;
900 }
901 int sqlite3_prepare16_v2(
902   sqlite3 *db,              /* Database handle. */
903   const void *zSql,         /* UTF-16 encoded SQL statement. */
904   int nBytes,               /* Length of zSql in bytes. */
905   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
906   const void **pzTail       /* OUT: End of parsed string */
907 ){
908   int rc;
909   rc = sqlite3Prepare16(db,zSql,nBytes,SQLITE_PREPARE_SAVESQL,ppStmt,pzTail);
910   assert( rc==SQLITE_OK || ppStmt==0 || *ppStmt==0 );  /* VERIFY: F13021 */
911   return rc;
912 }
913 int sqlite3_prepare16_v3(
914   sqlite3 *db,              /* Database handle. */
915   const void *zSql,         /* UTF-16 encoded SQL statement. */
916   int nBytes,               /* Length of zSql in bytes. */
917   unsigned int prepFlags,   /* Zero or more SQLITE_PREPARE_* flags */
918   sqlite3_stmt **ppStmt,    /* OUT: A pointer to the prepared statement */
919   const void **pzTail       /* OUT: End of parsed string */
920 ){
921   int rc;
922   rc = sqlite3Prepare16(db,zSql,nBytes,
923          SQLITE_PREPARE_SAVESQL|(prepFlags&SQLITE_PREPARE_MASK),
924          ppStmt,pzTail);
925   assert( rc==SQLITE_OK || ppStmt==0 || *ppStmt==0 );  /* VERIFY: F13021 */
926   return rc;
927 }
928 
929 #endif /* SQLITE_OMIT_UTF16 */
930