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